Merge tag 'master-2014-11-25' of git://git.kernel.org/pub/scm/linux/kernel/git/linvil...
[deliverable/linux.git] / drivers / net / ethernet / broadcom / tg3.c
1 /*
2 * tg3.c: Broadcom Tigon3 ethernet driver.
3 *
4 * Copyright (C) 2001, 2002, 2003, 2004 David S. Miller (davem@redhat.com)
5 * Copyright (C) 2001, 2002, 2003 Jeff Garzik (jgarzik@pobox.com)
6 * Copyright (C) 2004 Sun Microsystems Inc.
7 * Copyright (C) 2005-2014 Broadcom Corporation.
8 *
9 * Firmware is:
10 * Derived from proprietary unpublished source code,
11 * Copyright (C) 2000-2003 Broadcom Corporation.
12 *
13 * Permission is hereby granted for the distribution of this firmware
14 * data in hexadecimal or equivalent format, provided this copyright
15 * notice is accompanying it.
16 */
17
18
19 #include <linux/module.h>
20 #include <linux/moduleparam.h>
21 #include <linux/stringify.h>
22 #include <linux/kernel.h>
23 #include <linux/types.h>
24 #include <linux/compiler.h>
25 #include <linux/slab.h>
26 #include <linux/delay.h>
27 #include <linux/in.h>
28 #include <linux/interrupt.h>
29 #include <linux/ioport.h>
30 #include <linux/pci.h>
31 #include <linux/netdevice.h>
32 #include <linux/etherdevice.h>
33 #include <linux/skbuff.h>
34 #include <linux/ethtool.h>
35 #include <linux/mdio.h>
36 #include <linux/mii.h>
37 #include <linux/phy.h>
38 #include <linux/brcmphy.h>
39 #include <linux/if.h>
40 #include <linux/if_vlan.h>
41 #include <linux/ip.h>
42 #include <linux/tcp.h>
43 #include <linux/workqueue.h>
44 #include <linux/prefetch.h>
45 #include <linux/dma-mapping.h>
46 #include <linux/firmware.h>
47 #include <linux/ssb/ssb_driver_gige.h>
48 #include <linux/hwmon.h>
49 #include <linux/hwmon-sysfs.h>
50
51 #include <net/checksum.h>
52 #include <net/ip.h>
53
54 #include <linux/io.h>
55 #include <asm/byteorder.h>
56 #include <linux/uaccess.h>
57
58 #include <uapi/linux/net_tstamp.h>
59 #include <linux/ptp_clock_kernel.h>
60
61 #ifdef CONFIG_SPARC
62 #include <asm/idprom.h>
63 #include <asm/prom.h>
64 #endif
65
66 #define BAR_0 0
67 #define BAR_2 2
68
69 #include "tg3.h"
70
71 /* Functions & macros to verify TG3_FLAGS types */
72
73 static inline int _tg3_flag(enum TG3_FLAGS flag, unsigned long *bits)
74 {
75 return test_bit(flag, bits);
76 }
77
78 static inline void _tg3_flag_set(enum TG3_FLAGS flag, unsigned long *bits)
79 {
80 set_bit(flag, bits);
81 }
82
83 static inline void _tg3_flag_clear(enum TG3_FLAGS flag, unsigned long *bits)
84 {
85 clear_bit(flag, bits);
86 }
87
88 #define tg3_flag(tp, flag) \
89 _tg3_flag(TG3_FLAG_##flag, (tp)->tg3_flags)
90 #define tg3_flag_set(tp, flag) \
91 _tg3_flag_set(TG3_FLAG_##flag, (tp)->tg3_flags)
92 #define tg3_flag_clear(tp, flag) \
93 _tg3_flag_clear(TG3_FLAG_##flag, (tp)->tg3_flags)
94
95 #define DRV_MODULE_NAME "tg3"
96 #define TG3_MAJ_NUM 3
97 #define TG3_MIN_NUM 137
98 #define DRV_MODULE_VERSION \
99 __stringify(TG3_MAJ_NUM) "." __stringify(TG3_MIN_NUM)
100 #define DRV_MODULE_RELDATE "May 11, 2014"
101
102 #define RESET_KIND_SHUTDOWN 0
103 #define RESET_KIND_INIT 1
104 #define RESET_KIND_SUSPEND 2
105
106 #define TG3_DEF_RX_MODE 0
107 #define TG3_DEF_TX_MODE 0
108 #define TG3_DEF_MSG_ENABLE \
109 (NETIF_MSG_DRV | \
110 NETIF_MSG_PROBE | \
111 NETIF_MSG_LINK | \
112 NETIF_MSG_TIMER | \
113 NETIF_MSG_IFDOWN | \
114 NETIF_MSG_IFUP | \
115 NETIF_MSG_RX_ERR | \
116 NETIF_MSG_TX_ERR)
117
118 #define TG3_GRC_LCLCTL_PWRSW_DELAY 100
119
120 /* length of time before we decide the hardware is borked,
121 * and dev->tx_timeout() should be called to fix the problem
122 */
123
124 #define TG3_TX_TIMEOUT (5 * HZ)
125
126 /* hardware minimum and maximum for a single frame's data payload */
127 #define TG3_MIN_MTU 60
128 #define TG3_MAX_MTU(tp) \
129 (tg3_flag(tp, JUMBO_CAPABLE) ? 9000 : 1500)
130
131 /* These numbers seem to be hard coded in the NIC firmware somehow.
132 * You can't change the ring sizes, but you can change where you place
133 * them in the NIC onboard memory.
134 */
135 #define TG3_RX_STD_RING_SIZE(tp) \
136 (tg3_flag(tp, LRG_PROD_RING_CAP) ? \
137 TG3_RX_STD_MAX_SIZE_5717 : TG3_RX_STD_MAX_SIZE_5700)
138 #define TG3_DEF_RX_RING_PENDING 200
139 #define TG3_RX_JMB_RING_SIZE(tp) \
140 (tg3_flag(tp, LRG_PROD_RING_CAP) ? \
141 TG3_RX_JMB_MAX_SIZE_5717 : TG3_RX_JMB_MAX_SIZE_5700)
142 #define TG3_DEF_RX_JUMBO_RING_PENDING 100
143
144 /* Do not place this n-ring entries value into the tp struct itself,
145 * we really want to expose these constants to GCC so that modulo et
146 * al. operations are done with shifts and masks instead of with
147 * hw multiply/modulo instructions. Another solution would be to
148 * replace things like '% foo' with '& (foo - 1)'.
149 */
150
151 #define TG3_TX_RING_SIZE 512
152 #define TG3_DEF_TX_RING_PENDING (TG3_TX_RING_SIZE - 1)
153
154 #define TG3_RX_STD_RING_BYTES(tp) \
155 (sizeof(struct tg3_rx_buffer_desc) * TG3_RX_STD_RING_SIZE(tp))
156 #define TG3_RX_JMB_RING_BYTES(tp) \
157 (sizeof(struct tg3_ext_rx_buffer_desc) * TG3_RX_JMB_RING_SIZE(tp))
158 #define TG3_RX_RCB_RING_BYTES(tp) \
159 (sizeof(struct tg3_rx_buffer_desc) * (tp->rx_ret_ring_mask + 1))
160 #define TG3_TX_RING_BYTES (sizeof(struct tg3_tx_buffer_desc) * \
161 TG3_TX_RING_SIZE)
162 #define NEXT_TX(N) (((N) + 1) & (TG3_TX_RING_SIZE - 1))
163
164 #define TG3_DMA_BYTE_ENAB 64
165
166 #define TG3_RX_STD_DMA_SZ 1536
167 #define TG3_RX_JMB_DMA_SZ 9046
168
169 #define TG3_RX_DMA_TO_MAP_SZ(x) ((x) + TG3_DMA_BYTE_ENAB)
170
171 #define TG3_RX_STD_MAP_SZ TG3_RX_DMA_TO_MAP_SZ(TG3_RX_STD_DMA_SZ)
172 #define TG3_RX_JMB_MAP_SZ TG3_RX_DMA_TO_MAP_SZ(TG3_RX_JMB_DMA_SZ)
173
174 #define TG3_RX_STD_BUFF_RING_SIZE(tp) \
175 (sizeof(struct ring_info) * TG3_RX_STD_RING_SIZE(tp))
176
177 #define TG3_RX_JMB_BUFF_RING_SIZE(tp) \
178 (sizeof(struct ring_info) * TG3_RX_JMB_RING_SIZE(tp))
179
180 /* Due to a hardware bug, the 5701 can only DMA to memory addresses
181 * that are at least dword aligned when used in PCIX mode. The driver
182 * works around this bug by double copying the packet. This workaround
183 * is built into the normal double copy length check for efficiency.
184 *
185 * However, the double copy is only necessary on those architectures
186 * where unaligned memory accesses are inefficient. For those architectures
187 * where unaligned memory accesses incur little penalty, we can reintegrate
188 * the 5701 in the normal rx path. Doing so saves a device structure
189 * dereference by hardcoding the double copy threshold in place.
190 */
191 #define TG3_RX_COPY_THRESHOLD 256
192 #if NET_IP_ALIGN == 0 || defined(CONFIG_HAVE_EFFICIENT_UNALIGNED_ACCESS)
193 #define TG3_RX_COPY_THRESH(tp) TG3_RX_COPY_THRESHOLD
194 #else
195 #define TG3_RX_COPY_THRESH(tp) ((tp)->rx_copy_thresh)
196 #endif
197
198 #if (NET_IP_ALIGN != 0)
199 #define TG3_RX_OFFSET(tp) ((tp)->rx_offset)
200 #else
201 #define TG3_RX_OFFSET(tp) (NET_SKB_PAD)
202 #endif
203
204 /* minimum number of free TX descriptors required to wake up TX process */
205 #define TG3_TX_WAKEUP_THRESH(tnapi) ((tnapi)->tx_pending / 4)
206 #define TG3_TX_BD_DMA_MAX_2K 2048
207 #define TG3_TX_BD_DMA_MAX_4K 4096
208
209 #define TG3_RAW_IP_ALIGN 2
210
211 #define TG3_MAX_UCAST_ADDR(tp) (tg3_flag((tp), ENABLE_ASF) ? 2 : 3)
212 #define TG3_UCAST_ADDR_IDX(tp) (tg3_flag((tp), ENABLE_ASF) ? 2 : 1)
213
214 #define TG3_FW_UPDATE_TIMEOUT_SEC 5
215 #define TG3_FW_UPDATE_FREQ_SEC (TG3_FW_UPDATE_TIMEOUT_SEC / 2)
216
217 #define FIRMWARE_TG3 "tigon/tg3.bin"
218 #define FIRMWARE_TG357766 "tigon/tg357766.bin"
219 #define FIRMWARE_TG3TSO "tigon/tg3_tso.bin"
220 #define FIRMWARE_TG3TSO5 "tigon/tg3_tso5.bin"
221
222 static char version[] =
223 DRV_MODULE_NAME ".c:v" DRV_MODULE_VERSION " (" DRV_MODULE_RELDATE ")";
224
225 MODULE_AUTHOR("David S. Miller (davem@redhat.com) and Jeff Garzik (jgarzik@pobox.com)");
226 MODULE_DESCRIPTION("Broadcom Tigon3 ethernet driver");
227 MODULE_LICENSE("GPL");
228 MODULE_VERSION(DRV_MODULE_VERSION);
229 MODULE_FIRMWARE(FIRMWARE_TG3);
230 MODULE_FIRMWARE(FIRMWARE_TG3TSO);
231 MODULE_FIRMWARE(FIRMWARE_TG3TSO5);
232
233 static int tg3_debug = -1; /* -1 == use TG3_DEF_MSG_ENABLE as value */
234 module_param(tg3_debug, int, 0);
235 MODULE_PARM_DESC(tg3_debug, "Tigon3 bitmapped debugging message enable value");
236
237 #define TG3_DRV_DATA_FLAG_10_100_ONLY 0x0001
238 #define TG3_DRV_DATA_FLAG_5705_10_100 0x0002
239
240 static const struct pci_device_id tg3_pci_tbl[] = {
241 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5700)},
242 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5701)},
243 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5702)},
244 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5703)},
245 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5704)},
246 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5702FE)},
247 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5705)},
248 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5705_2)},
249 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5705M)},
250 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5705M_2)},
251 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5702X)},
252 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5703X)},
253 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5704S)},
254 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5702A3)},
255 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5703A3)},
256 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5782)},
257 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5788)},
258 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5789)},
259 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5901),
260 .driver_data = TG3_DRV_DATA_FLAG_10_100_ONLY |
261 TG3_DRV_DATA_FLAG_5705_10_100},
262 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5901_2),
263 .driver_data = TG3_DRV_DATA_FLAG_10_100_ONLY |
264 TG3_DRV_DATA_FLAG_5705_10_100},
265 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5704S_2)},
266 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5705F),
267 .driver_data = TG3_DRV_DATA_FLAG_10_100_ONLY |
268 TG3_DRV_DATA_FLAG_5705_10_100},
269 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5721)},
270 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5722)},
271 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5750)},
272 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5751)},
273 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5751M)},
274 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5751F),
275 .driver_data = TG3_DRV_DATA_FLAG_10_100_ONLY},
276 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5752)},
277 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5752M)},
278 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5753)},
279 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5753M)},
280 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5753F),
281 .driver_data = TG3_DRV_DATA_FLAG_10_100_ONLY},
282 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5754)},
283 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5754M)},
284 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5755)},
285 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5755M)},
286 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5756)},
287 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5786)},
288 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5787)},
289 {PCI_DEVICE_SUB(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_5787M,
290 PCI_VENDOR_ID_LENOVO,
291 TG3PCI_SUBDEVICE_ID_LENOVO_5787M),
292 .driver_data = TG3_DRV_DATA_FLAG_10_100_ONLY},
293 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5787M)},
294 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5787F),
295 .driver_data = TG3_DRV_DATA_FLAG_10_100_ONLY},
296 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5714)},
297 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5714S)},
298 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5715)},
299 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5715S)},
300 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5780)},
301 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5780S)},
302 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5781)},
303 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5906)},
304 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5906M)},
305 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5784)},
306 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5764)},
307 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5723)},
308 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5761)},
309 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, PCI_DEVICE_ID_TIGON3_5761E)},
310 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_5761S)},
311 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_5761SE)},
312 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_5785_G)},
313 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_5785_F)},
314 {PCI_DEVICE_SUB(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_57780,
315 PCI_VENDOR_ID_AI, TG3PCI_SUBDEVICE_ID_ACER_57780_A),
316 .driver_data = TG3_DRV_DATA_FLAG_10_100_ONLY},
317 {PCI_DEVICE_SUB(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_57780,
318 PCI_VENDOR_ID_AI, TG3PCI_SUBDEVICE_ID_ACER_57780_B),
319 .driver_data = TG3_DRV_DATA_FLAG_10_100_ONLY},
320 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_57780)},
321 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_57760)},
322 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_57790),
323 .driver_data = TG3_DRV_DATA_FLAG_10_100_ONLY},
324 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_57788)},
325 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_5717)},
326 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_5717_C)},
327 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_5718)},
328 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_57781)},
329 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_57785)},
330 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_57761)},
331 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_57765)},
332 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_57791),
333 .driver_data = TG3_DRV_DATA_FLAG_10_100_ONLY},
334 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_57795),
335 .driver_data = TG3_DRV_DATA_FLAG_10_100_ONLY},
336 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_5719)},
337 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_5720)},
338 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_57762)},
339 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_57766)},
340 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_5762)},
341 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_5725)},
342 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_5727)},
343 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_57764)},
344 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_57767)},
345 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_57787)},
346 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_57782)},
347 {PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, TG3PCI_DEVICE_TIGON3_57786)},
348 {PCI_DEVICE(PCI_VENDOR_ID_SYSKONNECT, PCI_DEVICE_ID_SYSKONNECT_9DXX)},
349 {PCI_DEVICE(PCI_VENDOR_ID_SYSKONNECT, PCI_DEVICE_ID_SYSKONNECT_9MXX)},
350 {PCI_DEVICE(PCI_VENDOR_ID_ALTIMA, PCI_DEVICE_ID_ALTIMA_AC1000)},
351 {PCI_DEVICE(PCI_VENDOR_ID_ALTIMA, PCI_DEVICE_ID_ALTIMA_AC1001)},
352 {PCI_DEVICE(PCI_VENDOR_ID_ALTIMA, PCI_DEVICE_ID_ALTIMA_AC1003)},
353 {PCI_DEVICE(PCI_VENDOR_ID_ALTIMA, PCI_DEVICE_ID_ALTIMA_AC9100)},
354 {PCI_DEVICE(PCI_VENDOR_ID_APPLE, PCI_DEVICE_ID_APPLE_TIGON3)},
355 {PCI_DEVICE(0x10cf, 0x11a2)}, /* Fujitsu 1000base-SX with BCM5703SKHB */
356 {}
357 };
358
359 MODULE_DEVICE_TABLE(pci, tg3_pci_tbl);
360
361 static const struct {
362 const char string[ETH_GSTRING_LEN];
363 } ethtool_stats_keys[] = {
364 { "rx_octets" },
365 { "rx_fragments" },
366 { "rx_ucast_packets" },
367 { "rx_mcast_packets" },
368 { "rx_bcast_packets" },
369 { "rx_fcs_errors" },
370 { "rx_align_errors" },
371 { "rx_xon_pause_rcvd" },
372 { "rx_xoff_pause_rcvd" },
373 { "rx_mac_ctrl_rcvd" },
374 { "rx_xoff_entered" },
375 { "rx_frame_too_long_errors" },
376 { "rx_jabbers" },
377 { "rx_undersize_packets" },
378 { "rx_in_length_errors" },
379 { "rx_out_length_errors" },
380 { "rx_64_or_less_octet_packets" },
381 { "rx_65_to_127_octet_packets" },
382 { "rx_128_to_255_octet_packets" },
383 { "rx_256_to_511_octet_packets" },
384 { "rx_512_to_1023_octet_packets" },
385 { "rx_1024_to_1522_octet_packets" },
386 { "rx_1523_to_2047_octet_packets" },
387 { "rx_2048_to_4095_octet_packets" },
388 { "rx_4096_to_8191_octet_packets" },
389 { "rx_8192_to_9022_octet_packets" },
390
391 { "tx_octets" },
392 { "tx_collisions" },
393
394 { "tx_xon_sent" },
395 { "tx_xoff_sent" },
396 { "tx_flow_control" },
397 { "tx_mac_errors" },
398 { "tx_single_collisions" },
399 { "tx_mult_collisions" },
400 { "tx_deferred" },
401 { "tx_excessive_collisions" },
402 { "tx_late_collisions" },
403 { "tx_collide_2times" },
404 { "tx_collide_3times" },
405 { "tx_collide_4times" },
406 { "tx_collide_5times" },
407 { "tx_collide_6times" },
408 { "tx_collide_7times" },
409 { "tx_collide_8times" },
410 { "tx_collide_9times" },
411 { "tx_collide_10times" },
412 { "tx_collide_11times" },
413 { "tx_collide_12times" },
414 { "tx_collide_13times" },
415 { "tx_collide_14times" },
416 { "tx_collide_15times" },
417 { "tx_ucast_packets" },
418 { "tx_mcast_packets" },
419 { "tx_bcast_packets" },
420 { "tx_carrier_sense_errors" },
421 { "tx_discards" },
422 { "tx_errors" },
423
424 { "dma_writeq_full" },
425 { "dma_write_prioq_full" },
426 { "rxbds_empty" },
427 { "rx_discards" },
428 { "rx_errors" },
429 { "rx_threshold_hit" },
430
431 { "dma_readq_full" },
432 { "dma_read_prioq_full" },
433 { "tx_comp_queue_full" },
434
435 { "ring_set_send_prod_index" },
436 { "ring_status_update" },
437 { "nic_irqs" },
438 { "nic_avoided_irqs" },
439 { "nic_tx_threshold_hit" },
440
441 { "mbuf_lwm_thresh_hit" },
442 };
443
444 #define TG3_NUM_STATS ARRAY_SIZE(ethtool_stats_keys)
445 #define TG3_NVRAM_TEST 0
446 #define TG3_LINK_TEST 1
447 #define TG3_REGISTER_TEST 2
448 #define TG3_MEMORY_TEST 3
449 #define TG3_MAC_LOOPB_TEST 4
450 #define TG3_PHY_LOOPB_TEST 5
451 #define TG3_EXT_LOOPB_TEST 6
452 #define TG3_INTERRUPT_TEST 7
453
454
455 static const struct {
456 const char string[ETH_GSTRING_LEN];
457 } ethtool_test_keys[] = {
458 [TG3_NVRAM_TEST] = { "nvram test (online) " },
459 [TG3_LINK_TEST] = { "link test (online) " },
460 [TG3_REGISTER_TEST] = { "register test (offline)" },
461 [TG3_MEMORY_TEST] = { "memory test (offline)" },
462 [TG3_MAC_LOOPB_TEST] = { "mac loopback test (offline)" },
463 [TG3_PHY_LOOPB_TEST] = { "phy loopback test (offline)" },
464 [TG3_EXT_LOOPB_TEST] = { "ext loopback test (offline)" },
465 [TG3_INTERRUPT_TEST] = { "interrupt test (offline)" },
466 };
467
468 #define TG3_NUM_TEST ARRAY_SIZE(ethtool_test_keys)
469
470
471 static void tg3_write32(struct tg3 *tp, u32 off, u32 val)
472 {
473 writel(val, tp->regs + off);
474 }
475
476 static u32 tg3_read32(struct tg3 *tp, u32 off)
477 {
478 return readl(tp->regs + off);
479 }
480
481 static void tg3_ape_write32(struct tg3 *tp, u32 off, u32 val)
482 {
483 writel(val, tp->aperegs + off);
484 }
485
486 static u32 tg3_ape_read32(struct tg3 *tp, u32 off)
487 {
488 return readl(tp->aperegs + off);
489 }
490
491 static void tg3_write_indirect_reg32(struct tg3 *tp, u32 off, u32 val)
492 {
493 unsigned long flags;
494
495 spin_lock_irqsave(&tp->indirect_lock, flags);
496 pci_write_config_dword(tp->pdev, TG3PCI_REG_BASE_ADDR, off);
497 pci_write_config_dword(tp->pdev, TG3PCI_REG_DATA, val);
498 spin_unlock_irqrestore(&tp->indirect_lock, flags);
499 }
500
501 static void tg3_write_flush_reg32(struct tg3 *tp, u32 off, u32 val)
502 {
503 writel(val, tp->regs + off);
504 readl(tp->regs + off);
505 }
506
507 static u32 tg3_read_indirect_reg32(struct tg3 *tp, u32 off)
508 {
509 unsigned long flags;
510 u32 val;
511
512 spin_lock_irqsave(&tp->indirect_lock, flags);
513 pci_write_config_dword(tp->pdev, TG3PCI_REG_BASE_ADDR, off);
514 pci_read_config_dword(tp->pdev, TG3PCI_REG_DATA, &val);
515 spin_unlock_irqrestore(&tp->indirect_lock, flags);
516 return val;
517 }
518
519 static void tg3_write_indirect_mbox(struct tg3 *tp, u32 off, u32 val)
520 {
521 unsigned long flags;
522
523 if (off == (MAILBOX_RCVRET_CON_IDX_0 + TG3_64BIT_REG_LOW)) {
524 pci_write_config_dword(tp->pdev, TG3PCI_RCV_RET_RING_CON_IDX +
525 TG3_64BIT_REG_LOW, val);
526 return;
527 }
528 if (off == TG3_RX_STD_PROD_IDX_REG) {
529 pci_write_config_dword(tp->pdev, TG3PCI_STD_RING_PROD_IDX +
530 TG3_64BIT_REG_LOW, val);
531 return;
532 }
533
534 spin_lock_irqsave(&tp->indirect_lock, flags);
535 pci_write_config_dword(tp->pdev, TG3PCI_REG_BASE_ADDR, off + 0x5600);
536 pci_write_config_dword(tp->pdev, TG3PCI_REG_DATA, val);
537 spin_unlock_irqrestore(&tp->indirect_lock, flags);
538
539 /* In indirect mode when disabling interrupts, we also need
540 * to clear the interrupt bit in the GRC local ctrl register.
541 */
542 if ((off == (MAILBOX_INTERRUPT_0 + TG3_64BIT_REG_LOW)) &&
543 (val == 0x1)) {
544 pci_write_config_dword(tp->pdev, TG3PCI_MISC_LOCAL_CTRL,
545 tp->grc_local_ctrl|GRC_LCLCTRL_CLEARINT);
546 }
547 }
548
549 static u32 tg3_read_indirect_mbox(struct tg3 *tp, u32 off)
550 {
551 unsigned long flags;
552 u32 val;
553
554 spin_lock_irqsave(&tp->indirect_lock, flags);
555 pci_write_config_dword(tp->pdev, TG3PCI_REG_BASE_ADDR, off + 0x5600);
556 pci_read_config_dword(tp->pdev, TG3PCI_REG_DATA, &val);
557 spin_unlock_irqrestore(&tp->indirect_lock, flags);
558 return val;
559 }
560
561 /* usec_wait specifies the wait time in usec when writing to certain registers
562 * where it is unsafe to read back the register without some delay.
563 * GRC_LOCAL_CTRL is one example if the GPIOs are toggled to switch power.
564 * TG3PCI_CLOCK_CTRL is another example if the clock frequencies are changed.
565 */
566 static void _tw32_flush(struct tg3 *tp, u32 off, u32 val, u32 usec_wait)
567 {
568 if (tg3_flag(tp, PCIX_TARGET_HWBUG) || tg3_flag(tp, ICH_WORKAROUND))
569 /* Non-posted methods */
570 tp->write32(tp, off, val);
571 else {
572 /* Posted method */
573 tg3_write32(tp, off, val);
574 if (usec_wait)
575 udelay(usec_wait);
576 tp->read32(tp, off);
577 }
578 /* Wait again after the read for the posted method to guarantee that
579 * the wait time is met.
580 */
581 if (usec_wait)
582 udelay(usec_wait);
583 }
584
585 static inline void tw32_mailbox_flush(struct tg3 *tp, u32 off, u32 val)
586 {
587 tp->write32_mbox(tp, off, val);
588 if (tg3_flag(tp, FLUSH_POSTED_WRITES) ||
589 (!tg3_flag(tp, MBOX_WRITE_REORDER) &&
590 !tg3_flag(tp, ICH_WORKAROUND)))
591 tp->read32_mbox(tp, off);
592 }
593
594 static void tg3_write32_tx_mbox(struct tg3 *tp, u32 off, u32 val)
595 {
596 void __iomem *mbox = tp->regs + off;
597 writel(val, mbox);
598 if (tg3_flag(tp, TXD_MBOX_HWBUG))
599 writel(val, mbox);
600 if (tg3_flag(tp, MBOX_WRITE_REORDER) ||
601 tg3_flag(tp, FLUSH_POSTED_WRITES))
602 readl(mbox);
603 }
604
605 static u32 tg3_read32_mbox_5906(struct tg3 *tp, u32 off)
606 {
607 return readl(tp->regs + off + GRCMBOX_BASE);
608 }
609
610 static void tg3_write32_mbox_5906(struct tg3 *tp, u32 off, u32 val)
611 {
612 writel(val, tp->regs + off + GRCMBOX_BASE);
613 }
614
615 #define tw32_mailbox(reg, val) tp->write32_mbox(tp, reg, val)
616 #define tw32_mailbox_f(reg, val) tw32_mailbox_flush(tp, (reg), (val))
617 #define tw32_rx_mbox(reg, val) tp->write32_rx_mbox(tp, reg, val)
618 #define tw32_tx_mbox(reg, val) tp->write32_tx_mbox(tp, reg, val)
619 #define tr32_mailbox(reg) tp->read32_mbox(tp, reg)
620
621 #define tw32(reg, val) tp->write32(tp, reg, val)
622 #define tw32_f(reg, val) _tw32_flush(tp, (reg), (val), 0)
623 #define tw32_wait_f(reg, val, us) _tw32_flush(tp, (reg), (val), (us))
624 #define tr32(reg) tp->read32(tp, reg)
625
626 static void tg3_write_mem(struct tg3 *tp, u32 off, u32 val)
627 {
628 unsigned long flags;
629
630 if (tg3_asic_rev(tp) == ASIC_REV_5906 &&
631 (off >= NIC_SRAM_STATS_BLK) && (off < NIC_SRAM_TX_BUFFER_DESC))
632 return;
633
634 spin_lock_irqsave(&tp->indirect_lock, flags);
635 if (tg3_flag(tp, SRAM_USE_CONFIG)) {
636 pci_write_config_dword(tp->pdev, TG3PCI_MEM_WIN_BASE_ADDR, off);
637 pci_write_config_dword(tp->pdev, TG3PCI_MEM_WIN_DATA, val);
638
639 /* Always leave this as zero. */
640 pci_write_config_dword(tp->pdev, TG3PCI_MEM_WIN_BASE_ADDR, 0);
641 } else {
642 tw32_f(TG3PCI_MEM_WIN_BASE_ADDR, off);
643 tw32_f(TG3PCI_MEM_WIN_DATA, val);
644
645 /* Always leave this as zero. */
646 tw32_f(TG3PCI_MEM_WIN_BASE_ADDR, 0);
647 }
648 spin_unlock_irqrestore(&tp->indirect_lock, flags);
649 }
650
651 static void tg3_read_mem(struct tg3 *tp, u32 off, u32 *val)
652 {
653 unsigned long flags;
654
655 if (tg3_asic_rev(tp) == ASIC_REV_5906 &&
656 (off >= NIC_SRAM_STATS_BLK) && (off < NIC_SRAM_TX_BUFFER_DESC)) {
657 *val = 0;
658 return;
659 }
660
661 spin_lock_irqsave(&tp->indirect_lock, flags);
662 if (tg3_flag(tp, SRAM_USE_CONFIG)) {
663 pci_write_config_dword(tp->pdev, TG3PCI_MEM_WIN_BASE_ADDR, off);
664 pci_read_config_dword(tp->pdev, TG3PCI_MEM_WIN_DATA, val);
665
666 /* Always leave this as zero. */
667 pci_write_config_dword(tp->pdev, TG3PCI_MEM_WIN_BASE_ADDR, 0);
668 } else {
669 tw32_f(TG3PCI_MEM_WIN_BASE_ADDR, off);
670 *val = tr32(TG3PCI_MEM_WIN_DATA);
671
672 /* Always leave this as zero. */
673 tw32_f(TG3PCI_MEM_WIN_BASE_ADDR, 0);
674 }
675 spin_unlock_irqrestore(&tp->indirect_lock, flags);
676 }
677
678 static void tg3_ape_lock_init(struct tg3 *tp)
679 {
680 int i;
681 u32 regbase, bit;
682
683 if (tg3_asic_rev(tp) == ASIC_REV_5761)
684 regbase = TG3_APE_LOCK_GRANT;
685 else
686 regbase = TG3_APE_PER_LOCK_GRANT;
687
688 /* Make sure the driver hasn't any stale locks. */
689 for (i = TG3_APE_LOCK_PHY0; i <= TG3_APE_LOCK_GPIO; i++) {
690 switch (i) {
691 case TG3_APE_LOCK_PHY0:
692 case TG3_APE_LOCK_PHY1:
693 case TG3_APE_LOCK_PHY2:
694 case TG3_APE_LOCK_PHY3:
695 bit = APE_LOCK_GRANT_DRIVER;
696 break;
697 default:
698 if (!tp->pci_fn)
699 bit = APE_LOCK_GRANT_DRIVER;
700 else
701 bit = 1 << tp->pci_fn;
702 }
703 tg3_ape_write32(tp, regbase + 4 * i, bit);
704 }
705
706 }
707
708 static int tg3_ape_lock(struct tg3 *tp, int locknum)
709 {
710 int i, off;
711 int ret = 0;
712 u32 status, req, gnt, bit;
713
714 if (!tg3_flag(tp, ENABLE_APE))
715 return 0;
716
717 switch (locknum) {
718 case TG3_APE_LOCK_GPIO:
719 if (tg3_asic_rev(tp) == ASIC_REV_5761)
720 return 0;
721 case TG3_APE_LOCK_GRC:
722 case TG3_APE_LOCK_MEM:
723 if (!tp->pci_fn)
724 bit = APE_LOCK_REQ_DRIVER;
725 else
726 bit = 1 << tp->pci_fn;
727 break;
728 case TG3_APE_LOCK_PHY0:
729 case TG3_APE_LOCK_PHY1:
730 case TG3_APE_LOCK_PHY2:
731 case TG3_APE_LOCK_PHY3:
732 bit = APE_LOCK_REQ_DRIVER;
733 break;
734 default:
735 return -EINVAL;
736 }
737
738 if (tg3_asic_rev(tp) == ASIC_REV_5761) {
739 req = TG3_APE_LOCK_REQ;
740 gnt = TG3_APE_LOCK_GRANT;
741 } else {
742 req = TG3_APE_PER_LOCK_REQ;
743 gnt = TG3_APE_PER_LOCK_GRANT;
744 }
745
746 off = 4 * locknum;
747
748 tg3_ape_write32(tp, req + off, bit);
749
750 /* Wait for up to 1 millisecond to acquire lock. */
751 for (i = 0; i < 100; i++) {
752 status = tg3_ape_read32(tp, gnt + off);
753 if (status == bit)
754 break;
755 if (pci_channel_offline(tp->pdev))
756 break;
757
758 udelay(10);
759 }
760
761 if (status != bit) {
762 /* Revoke the lock request. */
763 tg3_ape_write32(tp, gnt + off, bit);
764 ret = -EBUSY;
765 }
766
767 return ret;
768 }
769
770 static void tg3_ape_unlock(struct tg3 *tp, int locknum)
771 {
772 u32 gnt, bit;
773
774 if (!tg3_flag(tp, ENABLE_APE))
775 return;
776
777 switch (locknum) {
778 case TG3_APE_LOCK_GPIO:
779 if (tg3_asic_rev(tp) == ASIC_REV_5761)
780 return;
781 case TG3_APE_LOCK_GRC:
782 case TG3_APE_LOCK_MEM:
783 if (!tp->pci_fn)
784 bit = APE_LOCK_GRANT_DRIVER;
785 else
786 bit = 1 << tp->pci_fn;
787 break;
788 case TG3_APE_LOCK_PHY0:
789 case TG3_APE_LOCK_PHY1:
790 case TG3_APE_LOCK_PHY2:
791 case TG3_APE_LOCK_PHY3:
792 bit = APE_LOCK_GRANT_DRIVER;
793 break;
794 default:
795 return;
796 }
797
798 if (tg3_asic_rev(tp) == ASIC_REV_5761)
799 gnt = TG3_APE_LOCK_GRANT;
800 else
801 gnt = TG3_APE_PER_LOCK_GRANT;
802
803 tg3_ape_write32(tp, gnt + 4 * locknum, bit);
804 }
805
806 static int tg3_ape_event_lock(struct tg3 *tp, u32 timeout_us)
807 {
808 u32 apedata;
809
810 while (timeout_us) {
811 if (tg3_ape_lock(tp, TG3_APE_LOCK_MEM))
812 return -EBUSY;
813
814 apedata = tg3_ape_read32(tp, TG3_APE_EVENT_STATUS);
815 if (!(apedata & APE_EVENT_STATUS_EVENT_PENDING))
816 break;
817
818 tg3_ape_unlock(tp, TG3_APE_LOCK_MEM);
819
820 udelay(10);
821 timeout_us -= (timeout_us > 10) ? 10 : timeout_us;
822 }
823
824 return timeout_us ? 0 : -EBUSY;
825 }
826
827 static int tg3_ape_wait_for_event(struct tg3 *tp, u32 timeout_us)
828 {
829 u32 i, apedata;
830
831 for (i = 0; i < timeout_us / 10; i++) {
832 apedata = tg3_ape_read32(tp, TG3_APE_EVENT_STATUS);
833
834 if (!(apedata & APE_EVENT_STATUS_EVENT_PENDING))
835 break;
836
837 udelay(10);
838 }
839
840 return i == timeout_us / 10;
841 }
842
843 static int tg3_ape_scratchpad_read(struct tg3 *tp, u32 *data, u32 base_off,
844 u32 len)
845 {
846 int err;
847 u32 i, bufoff, msgoff, maxlen, apedata;
848
849 if (!tg3_flag(tp, APE_HAS_NCSI))
850 return 0;
851
852 apedata = tg3_ape_read32(tp, TG3_APE_SEG_SIG);
853 if (apedata != APE_SEG_SIG_MAGIC)
854 return -ENODEV;
855
856 apedata = tg3_ape_read32(tp, TG3_APE_FW_STATUS);
857 if (!(apedata & APE_FW_STATUS_READY))
858 return -EAGAIN;
859
860 bufoff = tg3_ape_read32(tp, TG3_APE_SEG_MSG_BUF_OFF) +
861 TG3_APE_SHMEM_BASE;
862 msgoff = bufoff + 2 * sizeof(u32);
863 maxlen = tg3_ape_read32(tp, TG3_APE_SEG_MSG_BUF_LEN);
864
865 while (len) {
866 u32 length;
867
868 /* Cap xfer sizes to scratchpad limits. */
869 length = (len > maxlen) ? maxlen : len;
870 len -= length;
871
872 apedata = tg3_ape_read32(tp, TG3_APE_FW_STATUS);
873 if (!(apedata & APE_FW_STATUS_READY))
874 return -EAGAIN;
875
876 /* Wait for up to 1 msec for APE to service previous event. */
877 err = tg3_ape_event_lock(tp, 1000);
878 if (err)
879 return err;
880
881 apedata = APE_EVENT_STATUS_DRIVER_EVNT |
882 APE_EVENT_STATUS_SCRTCHPD_READ |
883 APE_EVENT_STATUS_EVENT_PENDING;
884 tg3_ape_write32(tp, TG3_APE_EVENT_STATUS, apedata);
885
886 tg3_ape_write32(tp, bufoff, base_off);
887 tg3_ape_write32(tp, bufoff + sizeof(u32), length);
888
889 tg3_ape_unlock(tp, TG3_APE_LOCK_MEM);
890 tg3_ape_write32(tp, TG3_APE_EVENT, APE_EVENT_1);
891
892 base_off += length;
893
894 if (tg3_ape_wait_for_event(tp, 30000))
895 return -EAGAIN;
896
897 for (i = 0; length; i += 4, length -= 4) {
898 u32 val = tg3_ape_read32(tp, msgoff + i);
899 memcpy(data, &val, sizeof(u32));
900 data++;
901 }
902 }
903
904 return 0;
905 }
906
907 static int tg3_ape_send_event(struct tg3 *tp, u32 event)
908 {
909 int err;
910 u32 apedata;
911
912 apedata = tg3_ape_read32(tp, TG3_APE_SEG_SIG);
913 if (apedata != APE_SEG_SIG_MAGIC)
914 return -EAGAIN;
915
916 apedata = tg3_ape_read32(tp, TG3_APE_FW_STATUS);
917 if (!(apedata & APE_FW_STATUS_READY))
918 return -EAGAIN;
919
920 /* Wait for up to 1 millisecond for APE to service previous event. */
921 err = tg3_ape_event_lock(tp, 1000);
922 if (err)
923 return err;
924
925 tg3_ape_write32(tp, TG3_APE_EVENT_STATUS,
926 event | APE_EVENT_STATUS_EVENT_PENDING);
927
928 tg3_ape_unlock(tp, TG3_APE_LOCK_MEM);
929 tg3_ape_write32(tp, TG3_APE_EVENT, APE_EVENT_1);
930
931 return 0;
932 }
933
934 static void tg3_ape_driver_state_change(struct tg3 *tp, int kind)
935 {
936 u32 event;
937 u32 apedata;
938
939 if (!tg3_flag(tp, ENABLE_APE))
940 return;
941
942 switch (kind) {
943 case RESET_KIND_INIT:
944 tg3_ape_write32(tp, TG3_APE_HOST_SEG_SIG,
945 APE_HOST_SEG_SIG_MAGIC);
946 tg3_ape_write32(tp, TG3_APE_HOST_SEG_LEN,
947 APE_HOST_SEG_LEN_MAGIC);
948 apedata = tg3_ape_read32(tp, TG3_APE_HOST_INIT_COUNT);
949 tg3_ape_write32(tp, TG3_APE_HOST_INIT_COUNT, ++apedata);
950 tg3_ape_write32(tp, TG3_APE_HOST_DRIVER_ID,
951 APE_HOST_DRIVER_ID_MAGIC(TG3_MAJ_NUM, TG3_MIN_NUM));
952 tg3_ape_write32(tp, TG3_APE_HOST_BEHAVIOR,
953 APE_HOST_BEHAV_NO_PHYLOCK);
954 tg3_ape_write32(tp, TG3_APE_HOST_DRVR_STATE,
955 TG3_APE_HOST_DRVR_STATE_START);
956
957 event = APE_EVENT_STATUS_STATE_START;
958 break;
959 case RESET_KIND_SHUTDOWN:
960 /* With the interface we are currently using,
961 * APE does not track driver state. Wiping
962 * out the HOST SEGMENT SIGNATURE forces
963 * the APE to assume OS absent status.
964 */
965 tg3_ape_write32(tp, TG3_APE_HOST_SEG_SIG, 0x0);
966
967 if (device_may_wakeup(&tp->pdev->dev) &&
968 tg3_flag(tp, WOL_ENABLE)) {
969 tg3_ape_write32(tp, TG3_APE_HOST_WOL_SPEED,
970 TG3_APE_HOST_WOL_SPEED_AUTO);
971 apedata = TG3_APE_HOST_DRVR_STATE_WOL;
972 } else
973 apedata = TG3_APE_HOST_DRVR_STATE_UNLOAD;
974
975 tg3_ape_write32(tp, TG3_APE_HOST_DRVR_STATE, apedata);
976
977 event = APE_EVENT_STATUS_STATE_UNLOAD;
978 break;
979 default:
980 return;
981 }
982
983 event |= APE_EVENT_STATUS_DRIVER_EVNT | APE_EVENT_STATUS_STATE_CHNGE;
984
985 tg3_ape_send_event(tp, event);
986 }
987
988 static void tg3_disable_ints(struct tg3 *tp)
989 {
990 int i;
991
992 tw32(TG3PCI_MISC_HOST_CTRL,
993 (tp->misc_host_ctrl | MISC_HOST_CTRL_MASK_PCI_INT));
994 for (i = 0; i < tp->irq_max; i++)
995 tw32_mailbox_f(tp->napi[i].int_mbox, 0x00000001);
996 }
997
998 static void tg3_enable_ints(struct tg3 *tp)
999 {
1000 int i;
1001
1002 tp->irq_sync = 0;
1003 wmb();
1004
1005 tw32(TG3PCI_MISC_HOST_CTRL,
1006 (tp->misc_host_ctrl & ~MISC_HOST_CTRL_MASK_PCI_INT));
1007
1008 tp->coal_now = tp->coalesce_mode | HOSTCC_MODE_ENABLE;
1009 for (i = 0; i < tp->irq_cnt; i++) {
1010 struct tg3_napi *tnapi = &tp->napi[i];
1011
1012 tw32_mailbox_f(tnapi->int_mbox, tnapi->last_tag << 24);
1013 if (tg3_flag(tp, 1SHOT_MSI))
1014 tw32_mailbox_f(tnapi->int_mbox, tnapi->last_tag << 24);
1015
1016 tp->coal_now |= tnapi->coal_now;
1017 }
1018
1019 /* Force an initial interrupt */
1020 if (!tg3_flag(tp, TAGGED_STATUS) &&
1021 (tp->napi[0].hw_status->status & SD_STATUS_UPDATED))
1022 tw32(GRC_LOCAL_CTRL, tp->grc_local_ctrl | GRC_LCLCTRL_SETINT);
1023 else
1024 tw32(HOSTCC_MODE, tp->coal_now);
1025
1026 tp->coal_now &= ~(tp->napi[0].coal_now | tp->napi[1].coal_now);
1027 }
1028
1029 static inline unsigned int tg3_has_work(struct tg3_napi *tnapi)
1030 {
1031 struct tg3 *tp = tnapi->tp;
1032 struct tg3_hw_status *sblk = tnapi->hw_status;
1033 unsigned int work_exists = 0;
1034
1035 /* check for phy events */
1036 if (!(tg3_flag(tp, USE_LINKCHG_REG) || tg3_flag(tp, POLL_SERDES))) {
1037 if (sblk->status & SD_STATUS_LINK_CHG)
1038 work_exists = 1;
1039 }
1040
1041 /* check for TX work to do */
1042 if (sblk->idx[0].tx_consumer != tnapi->tx_cons)
1043 work_exists = 1;
1044
1045 /* check for RX work to do */
1046 if (tnapi->rx_rcb_prod_idx &&
1047 *(tnapi->rx_rcb_prod_idx) != tnapi->rx_rcb_ptr)
1048 work_exists = 1;
1049
1050 return work_exists;
1051 }
1052
1053 /* tg3_int_reenable
1054 * similar to tg3_enable_ints, but it accurately determines whether there
1055 * is new work pending and can return without flushing the PIO write
1056 * which reenables interrupts
1057 */
1058 static void tg3_int_reenable(struct tg3_napi *tnapi)
1059 {
1060 struct tg3 *tp = tnapi->tp;
1061
1062 tw32_mailbox(tnapi->int_mbox, tnapi->last_tag << 24);
1063 mmiowb();
1064
1065 /* When doing tagged status, this work check is unnecessary.
1066 * The last_tag we write above tells the chip which piece of
1067 * work we've completed.
1068 */
1069 if (!tg3_flag(tp, TAGGED_STATUS) && tg3_has_work(tnapi))
1070 tw32(HOSTCC_MODE, tp->coalesce_mode |
1071 HOSTCC_MODE_ENABLE | tnapi->coal_now);
1072 }
1073
1074 static void tg3_switch_clocks(struct tg3 *tp)
1075 {
1076 u32 clock_ctrl;
1077 u32 orig_clock_ctrl;
1078
1079 if (tg3_flag(tp, CPMU_PRESENT) || tg3_flag(tp, 5780_CLASS))
1080 return;
1081
1082 clock_ctrl = tr32(TG3PCI_CLOCK_CTRL);
1083
1084 orig_clock_ctrl = clock_ctrl;
1085 clock_ctrl &= (CLOCK_CTRL_FORCE_CLKRUN |
1086 CLOCK_CTRL_CLKRUN_OENABLE |
1087 0x1f);
1088 tp->pci_clock_ctrl = clock_ctrl;
1089
1090 if (tg3_flag(tp, 5705_PLUS)) {
1091 if (orig_clock_ctrl & CLOCK_CTRL_625_CORE) {
1092 tw32_wait_f(TG3PCI_CLOCK_CTRL,
1093 clock_ctrl | CLOCK_CTRL_625_CORE, 40);
1094 }
1095 } else if ((orig_clock_ctrl & CLOCK_CTRL_44MHZ_CORE) != 0) {
1096 tw32_wait_f(TG3PCI_CLOCK_CTRL,
1097 clock_ctrl |
1098 (CLOCK_CTRL_44MHZ_CORE | CLOCK_CTRL_ALTCLK),
1099 40);
1100 tw32_wait_f(TG3PCI_CLOCK_CTRL,
1101 clock_ctrl | (CLOCK_CTRL_ALTCLK),
1102 40);
1103 }
1104 tw32_wait_f(TG3PCI_CLOCK_CTRL, clock_ctrl, 40);
1105 }
1106
1107 #define PHY_BUSY_LOOPS 5000
1108
1109 static int __tg3_readphy(struct tg3 *tp, unsigned int phy_addr, int reg,
1110 u32 *val)
1111 {
1112 u32 frame_val;
1113 unsigned int loops;
1114 int ret;
1115
1116 if ((tp->mi_mode & MAC_MI_MODE_AUTO_POLL) != 0) {
1117 tw32_f(MAC_MI_MODE,
1118 (tp->mi_mode & ~MAC_MI_MODE_AUTO_POLL));
1119 udelay(80);
1120 }
1121
1122 tg3_ape_lock(tp, tp->phy_ape_lock);
1123
1124 *val = 0x0;
1125
1126 frame_val = ((phy_addr << MI_COM_PHY_ADDR_SHIFT) &
1127 MI_COM_PHY_ADDR_MASK);
1128 frame_val |= ((reg << MI_COM_REG_ADDR_SHIFT) &
1129 MI_COM_REG_ADDR_MASK);
1130 frame_val |= (MI_COM_CMD_READ | MI_COM_START);
1131
1132 tw32_f(MAC_MI_COM, frame_val);
1133
1134 loops = PHY_BUSY_LOOPS;
1135 while (loops != 0) {
1136 udelay(10);
1137 frame_val = tr32(MAC_MI_COM);
1138
1139 if ((frame_val & MI_COM_BUSY) == 0) {
1140 udelay(5);
1141 frame_val = tr32(MAC_MI_COM);
1142 break;
1143 }
1144 loops -= 1;
1145 }
1146
1147 ret = -EBUSY;
1148 if (loops != 0) {
1149 *val = frame_val & MI_COM_DATA_MASK;
1150 ret = 0;
1151 }
1152
1153 if ((tp->mi_mode & MAC_MI_MODE_AUTO_POLL) != 0) {
1154 tw32_f(MAC_MI_MODE, tp->mi_mode);
1155 udelay(80);
1156 }
1157
1158 tg3_ape_unlock(tp, tp->phy_ape_lock);
1159
1160 return ret;
1161 }
1162
1163 static int tg3_readphy(struct tg3 *tp, int reg, u32 *val)
1164 {
1165 return __tg3_readphy(tp, tp->phy_addr, reg, val);
1166 }
1167
1168 static int __tg3_writephy(struct tg3 *tp, unsigned int phy_addr, int reg,
1169 u32 val)
1170 {
1171 u32 frame_val;
1172 unsigned int loops;
1173 int ret;
1174
1175 if ((tp->phy_flags & TG3_PHYFLG_IS_FET) &&
1176 (reg == MII_CTRL1000 || reg == MII_TG3_AUX_CTRL))
1177 return 0;
1178
1179 if ((tp->mi_mode & MAC_MI_MODE_AUTO_POLL) != 0) {
1180 tw32_f(MAC_MI_MODE,
1181 (tp->mi_mode & ~MAC_MI_MODE_AUTO_POLL));
1182 udelay(80);
1183 }
1184
1185 tg3_ape_lock(tp, tp->phy_ape_lock);
1186
1187 frame_val = ((phy_addr << MI_COM_PHY_ADDR_SHIFT) &
1188 MI_COM_PHY_ADDR_MASK);
1189 frame_val |= ((reg << MI_COM_REG_ADDR_SHIFT) &
1190 MI_COM_REG_ADDR_MASK);
1191 frame_val |= (val & MI_COM_DATA_MASK);
1192 frame_val |= (MI_COM_CMD_WRITE | MI_COM_START);
1193
1194 tw32_f(MAC_MI_COM, frame_val);
1195
1196 loops = PHY_BUSY_LOOPS;
1197 while (loops != 0) {
1198 udelay(10);
1199 frame_val = tr32(MAC_MI_COM);
1200 if ((frame_val & MI_COM_BUSY) == 0) {
1201 udelay(5);
1202 frame_val = tr32(MAC_MI_COM);
1203 break;
1204 }
1205 loops -= 1;
1206 }
1207
1208 ret = -EBUSY;
1209 if (loops != 0)
1210 ret = 0;
1211
1212 if ((tp->mi_mode & MAC_MI_MODE_AUTO_POLL) != 0) {
1213 tw32_f(MAC_MI_MODE, tp->mi_mode);
1214 udelay(80);
1215 }
1216
1217 tg3_ape_unlock(tp, tp->phy_ape_lock);
1218
1219 return ret;
1220 }
1221
1222 static int tg3_writephy(struct tg3 *tp, int reg, u32 val)
1223 {
1224 return __tg3_writephy(tp, tp->phy_addr, reg, val);
1225 }
1226
1227 static int tg3_phy_cl45_write(struct tg3 *tp, u32 devad, u32 addr, u32 val)
1228 {
1229 int err;
1230
1231 err = tg3_writephy(tp, MII_TG3_MMD_CTRL, devad);
1232 if (err)
1233 goto done;
1234
1235 err = tg3_writephy(tp, MII_TG3_MMD_ADDRESS, addr);
1236 if (err)
1237 goto done;
1238
1239 err = tg3_writephy(tp, MII_TG3_MMD_CTRL,
1240 MII_TG3_MMD_CTRL_DATA_NOINC | devad);
1241 if (err)
1242 goto done;
1243
1244 err = tg3_writephy(tp, MII_TG3_MMD_ADDRESS, val);
1245
1246 done:
1247 return err;
1248 }
1249
1250 static int tg3_phy_cl45_read(struct tg3 *tp, u32 devad, u32 addr, u32 *val)
1251 {
1252 int err;
1253
1254 err = tg3_writephy(tp, MII_TG3_MMD_CTRL, devad);
1255 if (err)
1256 goto done;
1257
1258 err = tg3_writephy(tp, MII_TG3_MMD_ADDRESS, addr);
1259 if (err)
1260 goto done;
1261
1262 err = tg3_writephy(tp, MII_TG3_MMD_CTRL,
1263 MII_TG3_MMD_CTRL_DATA_NOINC | devad);
1264 if (err)
1265 goto done;
1266
1267 err = tg3_readphy(tp, MII_TG3_MMD_ADDRESS, val);
1268
1269 done:
1270 return err;
1271 }
1272
1273 static int tg3_phydsp_read(struct tg3 *tp, u32 reg, u32 *val)
1274 {
1275 int err;
1276
1277 err = tg3_writephy(tp, MII_TG3_DSP_ADDRESS, reg);
1278 if (!err)
1279 err = tg3_readphy(tp, MII_TG3_DSP_RW_PORT, val);
1280
1281 return err;
1282 }
1283
1284 static int tg3_phydsp_write(struct tg3 *tp, u32 reg, u32 val)
1285 {
1286 int err;
1287
1288 err = tg3_writephy(tp, MII_TG3_DSP_ADDRESS, reg);
1289 if (!err)
1290 err = tg3_writephy(tp, MII_TG3_DSP_RW_PORT, val);
1291
1292 return err;
1293 }
1294
1295 static int tg3_phy_auxctl_read(struct tg3 *tp, int reg, u32 *val)
1296 {
1297 int err;
1298
1299 err = tg3_writephy(tp, MII_TG3_AUX_CTRL,
1300 (reg << MII_TG3_AUXCTL_MISC_RDSEL_SHIFT) |
1301 MII_TG3_AUXCTL_SHDWSEL_MISC);
1302 if (!err)
1303 err = tg3_readphy(tp, MII_TG3_AUX_CTRL, val);
1304
1305 return err;
1306 }
1307
1308 static int tg3_phy_auxctl_write(struct tg3 *tp, int reg, u32 set)
1309 {
1310 if (reg == MII_TG3_AUXCTL_SHDWSEL_MISC)
1311 set |= MII_TG3_AUXCTL_MISC_WREN;
1312
1313 return tg3_writephy(tp, MII_TG3_AUX_CTRL, set | reg);
1314 }
1315
1316 static int tg3_phy_toggle_auxctl_smdsp(struct tg3 *tp, bool enable)
1317 {
1318 u32 val;
1319 int err;
1320
1321 err = tg3_phy_auxctl_read(tp, MII_TG3_AUXCTL_SHDWSEL_AUXCTL, &val);
1322
1323 if (err)
1324 return err;
1325
1326 if (enable)
1327 val |= MII_TG3_AUXCTL_ACTL_SMDSP_ENA;
1328 else
1329 val &= ~MII_TG3_AUXCTL_ACTL_SMDSP_ENA;
1330
1331 err = tg3_phy_auxctl_write((tp), MII_TG3_AUXCTL_SHDWSEL_AUXCTL,
1332 val | MII_TG3_AUXCTL_ACTL_TX_6DB);
1333
1334 return err;
1335 }
1336
1337 static int tg3_phy_shdw_write(struct tg3 *tp, int reg, u32 val)
1338 {
1339 return tg3_writephy(tp, MII_TG3_MISC_SHDW,
1340 reg | val | MII_TG3_MISC_SHDW_WREN);
1341 }
1342
1343 static int tg3_bmcr_reset(struct tg3 *tp)
1344 {
1345 u32 phy_control;
1346 int limit, err;
1347
1348 /* OK, reset it, and poll the BMCR_RESET bit until it
1349 * clears or we time out.
1350 */
1351 phy_control = BMCR_RESET;
1352 err = tg3_writephy(tp, MII_BMCR, phy_control);
1353 if (err != 0)
1354 return -EBUSY;
1355
1356 limit = 5000;
1357 while (limit--) {
1358 err = tg3_readphy(tp, MII_BMCR, &phy_control);
1359 if (err != 0)
1360 return -EBUSY;
1361
1362 if ((phy_control & BMCR_RESET) == 0) {
1363 udelay(40);
1364 break;
1365 }
1366 udelay(10);
1367 }
1368 if (limit < 0)
1369 return -EBUSY;
1370
1371 return 0;
1372 }
1373
1374 static int tg3_mdio_read(struct mii_bus *bp, int mii_id, int reg)
1375 {
1376 struct tg3 *tp = bp->priv;
1377 u32 val;
1378
1379 spin_lock_bh(&tp->lock);
1380
1381 if (__tg3_readphy(tp, mii_id, reg, &val))
1382 val = -EIO;
1383
1384 spin_unlock_bh(&tp->lock);
1385
1386 return val;
1387 }
1388
1389 static int tg3_mdio_write(struct mii_bus *bp, int mii_id, int reg, u16 val)
1390 {
1391 struct tg3 *tp = bp->priv;
1392 u32 ret = 0;
1393
1394 spin_lock_bh(&tp->lock);
1395
1396 if (__tg3_writephy(tp, mii_id, reg, val))
1397 ret = -EIO;
1398
1399 spin_unlock_bh(&tp->lock);
1400
1401 return ret;
1402 }
1403
1404 static void tg3_mdio_config_5785(struct tg3 *tp)
1405 {
1406 u32 val;
1407 struct phy_device *phydev;
1408
1409 phydev = tp->mdio_bus->phy_map[tp->phy_addr];
1410 switch (phydev->drv->phy_id & phydev->drv->phy_id_mask) {
1411 case PHY_ID_BCM50610:
1412 case PHY_ID_BCM50610M:
1413 val = MAC_PHYCFG2_50610_LED_MODES;
1414 break;
1415 case PHY_ID_BCMAC131:
1416 val = MAC_PHYCFG2_AC131_LED_MODES;
1417 break;
1418 case PHY_ID_RTL8211C:
1419 val = MAC_PHYCFG2_RTL8211C_LED_MODES;
1420 break;
1421 case PHY_ID_RTL8201E:
1422 val = MAC_PHYCFG2_RTL8201E_LED_MODES;
1423 break;
1424 default:
1425 return;
1426 }
1427
1428 if (phydev->interface != PHY_INTERFACE_MODE_RGMII) {
1429 tw32(MAC_PHYCFG2, val);
1430
1431 val = tr32(MAC_PHYCFG1);
1432 val &= ~(MAC_PHYCFG1_RGMII_INT |
1433 MAC_PHYCFG1_RXCLK_TO_MASK | MAC_PHYCFG1_TXCLK_TO_MASK);
1434 val |= MAC_PHYCFG1_RXCLK_TIMEOUT | MAC_PHYCFG1_TXCLK_TIMEOUT;
1435 tw32(MAC_PHYCFG1, val);
1436
1437 return;
1438 }
1439
1440 if (!tg3_flag(tp, RGMII_INBAND_DISABLE))
1441 val |= MAC_PHYCFG2_EMODE_MASK_MASK |
1442 MAC_PHYCFG2_FMODE_MASK_MASK |
1443 MAC_PHYCFG2_GMODE_MASK_MASK |
1444 MAC_PHYCFG2_ACT_MASK_MASK |
1445 MAC_PHYCFG2_QUAL_MASK_MASK |
1446 MAC_PHYCFG2_INBAND_ENABLE;
1447
1448 tw32(MAC_PHYCFG2, val);
1449
1450 val = tr32(MAC_PHYCFG1);
1451 val &= ~(MAC_PHYCFG1_RXCLK_TO_MASK | MAC_PHYCFG1_TXCLK_TO_MASK |
1452 MAC_PHYCFG1_RGMII_EXT_RX_DEC | MAC_PHYCFG1_RGMII_SND_STAT_EN);
1453 if (!tg3_flag(tp, RGMII_INBAND_DISABLE)) {
1454 if (tg3_flag(tp, RGMII_EXT_IBND_RX_EN))
1455 val |= MAC_PHYCFG1_RGMII_EXT_RX_DEC;
1456 if (tg3_flag(tp, RGMII_EXT_IBND_TX_EN))
1457 val |= MAC_PHYCFG1_RGMII_SND_STAT_EN;
1458 }
1459 val |= MAC_PHYCFG1_RXCLK_TIMEOUT | MAC_PHYCFG1_TXCLK_TIMEOUT |
1460 MAC_PHYCFG1_RGMII_INT | MAC_PHYCFG1_TXC_DRV;
1461 tw32(MAC_PHYCFG1, val);
1462
1463 val = tr32(MAC_EXT_RGMII_MODE);
1464 val &= ~(MAC_RGMII_MODE_RX_INT_B |
1465 MAC_RGMII_MODE_RX_QUALITY |
1466 MAC_RGMII_MODE_RX_ACTIVITY |
1467 MAC_RGMII_MODE_RX_ENG_DET |
1468 MAC_RGMII_MODE_TX_ENABLE |
1469 MAC_RGMII_MODE_TX_LOWPWR |
1470 MAC_RGMII_MODE_TX_RESET);
1471 if (!tg3_flag(tp, RGMII_INBAND_DISABLE)) {
1472 if (tg3_flag(tp, RGMII_EXT_IBND_RX_EN))
1473 val |= MAC_RGMII_MODE_RX_INT_B |
1474 MAC_RGMII_MODE_RX_QUALITY |
1475 MAC_RGMII_MODE_RX_ACTIVITY |
1476 MAC_RGMII_MODE_RX_ENG_DET;
1477 if (tg3_flag(tp, RGMII_EXT_IBND_TX_EN))
1478 val |= MAC_RGMII_MODE_TX_ENABLE |
1479 MAC_RGMII_MODE_TX_LOWPWR |
1480 MAC_RGMII_MODE_TX_RESET;
1481 }
1482 tw32(MAC_EXT_RGMII_MODE, val);
1483 }
1484
1485 static void tg3_mdio_start(struct tg3 *tp)
1486 {
1487 tp->mi_mode &= ~MAC_MI_MODE_AUTO_POLL;
1488 tw32_f(MAC_MI_MODE, tp->mi_mode);
1489 udelay(80);
1490
1491 if (tg3_flag(tp, MDIOBUS_INITED) &&
1492 tg3_asic_rev(tp) == ASIC_REV_5785)
1493 tg3_mdio_config_5785(tp);
1494 }
1495
1496 static int tg3_mdio_init(struct tg3 *tp)
1497 {
1498 int i;
1499 u32 reg;
1500 struct phy_device *phydev;
1501
1502 if (tg3_flag(tp, 5717_PLUS)) {
1503 u32 is_serdes;
1504
1505 tp->phy_addr = tp->pci_fn + 1;
1506
1507 if (tg3_chip_rev_id(tp) != CHIPREV_ID_5717_A0)
1508 is_serdes = tr32(SG_DIG_STATUS) & SG_DIG_IS_SERDES;
1509 else
1510 is_serdes = tr32(TG3_CPMU_PHY_STRAP) &
1511 TG3_CPMU_PHY_STRAP_IS_SERDES;
1512 if (is_serdes)
1513 tp->phy_addr += 7;
1514 } else if (tg3_flag(tp, IS_SSB_CORE) && tg3_flag(tp, ROBOSWITCH)) {
1515 int addr;
1516
1517 addr = ssb_gige_get_phyaddr(tp->pdev);
1518 if (addr < 0)
1519 return addr;
1520 tp->phy_addr = addr;
1521 } else
1522 tp->phy_addr = TG3_PHY_MII_ADDR;
1523
1524 tg3_mdio_start(tp);
1525
1526 if (!tg3_flag(tp, USE_PHYLIB) || tg3_flag(tp, MDIOBUS_INITED))
1527 return 0;
1528
1529 tp->mdio_bus = mdiobus_alloc();
1530 if (tp->mdio_bus == NULL)
1531 return -ENOMEM;
1532
1533 tp->mdio_bus->name = "tg3 mdio bus";
1534 snprintf(tp->mdio_bus->id, MII_BUS_ID_SIZE, "%x",
1535 (tp->pdev->bus->number << 8) | tp->pdev->devfn);
1536 tp->mdio_bus->priv = tp;
1537 tp->mdio_bus->parent = &tp->pdev->dev;
1538 tp->mdio_bus->read = &tg3_mdio_read;
1539 tp->mdio_bus->write = &tg3_mdio_write;
1540 tp->mdio_bus->phy_mask = ~(1 << tp->phy_addr);
1541 tp->mdio_bus->irq = &tp->mdio_irq[0];
1542
1543 for (i = 0; i < PHY_MAX_ADDR; i++)
1544 tp->mdio_bus->irq[i] = PHY_POLL;
1545
1546 /* The bus registration will look for all the PHYs on the mdio bus.
1547 * Unfortunately, it does not ensure the PHY is powered up before
1548 * accessing the PHY ID registers. A chip reset is the
1549 * quickest way to bring the device back to an operational state..
1550 */
1551 if (tg3_readphy(tp, MII_BMCR, &reg) || (reg & BMCR_PDOWN))
1552 tg3_bmcr_reset(tp);
1553
1554 i = mdiobus_register(tp->mdio_bus);
1555 if (i) {
1556 dev_warn(&tp->pdev->dev, "mdiobus_reg failed (0x%x)\n", i);
1557 mdiobus_free(tp->mdio_bus);
1558 return i;
1559 }
1560
1561 phydev = tp->mdio_bus->phy_map[tp->phy_addr];
1562
1563 if (!phydev || !phydev->drv) {
1564 dev_warn(&tp->pdev->dev, "No PHY devices\n");
1565 mdiobus_unregister(tp->mdio_bus);
1566 mdiobus_free(tp->mdio_bus);
1567 return -ENODEV;
1568 }
1569
1570 switch (phydev->drv->phy_id & phydev->drv->phy_id_mask) {
1571 case PHY_ID_BCM57780:
1572 phydev->interface = PHY_INTERFACE_MODE_GMII;
1573 phydev->dev_flags |= PHY_BRCM_AUTO_PWRDWN_ENABLE;
1574 break;
1575 case PHY_ID_BCM50610:
1576 case PHY_ID_BCM50610M:
1577 phydev->dev_flags |= PHY_BRCM_CLEAR_RGMII_MODE |
1578 PHY_BRCM_RX_REFCLK_UNUSED |
1579 PHY_BRCM_DIS_TXCRXC_NOENRGY |
1580 PHY_BRCM_AUTO_PWRDWN_ENABLE;
1581 if (tg3_flag(tp, RGMII_INBAND_DISABLE))
1582 phydev->dev_flags |= PHY_BRCM_STD_IBND_DISABLE;
1583 if (tg3_flag(tp, RGMII_EXT_IBND_RX_EN))
1584 phydev->dev_flags |= PHY_BRCM_EXT_IBND_RX_ENABLE;
1585 if (tg3_flag(tp, RGMII_EXT_IBND_TX_EN))
1586 phydev->dev_flags |= PHY_BRCM_EXT_IBND_TX_ENABLE;
1587 /* fallthru */
1588 case PHY_ID_RTL8211C:
1589 phydev->interface = PHY_INTERFACE_MODE_RGMII;
1590 break;
1591 case PHY_ID_RTL8201E:
1592 case PHY_ID_BCMAC131:
1593 phydev->interface = PHY_INTERFACE_MODE_MII;
1594 phydev->dev_flags |= PHY_BRCM_AUTO_PWRDWN_ENABLE;
1595 tp->phy_flags |= TG3_PHYFLG_IS_FET;
1596 break;
1597 }
1598
1599 tg3_flag_set(tp, MDIOBUS_INITED);
1600
1601 if (tg3_asic_rev(tp) == ASIC_REV_5785)
1602 tg3_mdio_config_5785(tp);
1603
1604 return 0;
1605 }
1606
1607 static void tg3_mdio_fini(struct tg3 *tp)
1608 {
1609 if (tg3_flag(tp, MDIOBUS_INITED)) {
1610 tg3_flag_clear(tp, MDIOBUS_INITED);
1611 mdiobus_unregister(tp->mdio_bus);
1612 mdiobus_free(tp->mdio_bus);
1613 }
1614 }
1615
1616 /* tp->lock is held. */
1617 static inline void tg3_generate_fw_event(struct tg3 *tp)
1618 {
1619 u32 val;
1620
1621 val = tr32(GRC_RX_CPU_EVENT);
1622 val |= GRC_RX_CPU_DRIVER_EVENT;
1623 tw32_f(GRC_RX_CPU_EVENT, val);
1624
1625 tp->last_event_jiffies = jiffies;
1626 }
1627
1628 #define TG3_FW_EVENT_TIMEOUT_USEC 2500
1629
1630 /* tp->lock is held. */
1631 static void tg3_wait_for_event_ack(struct tg3 *tp)
1632 {
1633 int i;
1634 unsigned int delay_cnt;
1635 long time_remain;
1636
1637 /* If enough time has passed, no wait is necessary. */
1638 time_remain = (long)(tp->last_event_jiffies + 1 +
1639 usecs_to_jiffies(TG3_FW_EVENT_TIMEOUT_USEC)) -
1640 (long)jiffies;
1641 if (time_remain < 0)
1642 return;
1643
1644 /* Check if we can shorten the wait time. */
1645 delay_cnt = jiffies_to_usecs(time_remain);
1646 if (delay_cnt > TG3_FW_EVENT_TIMEOUT_USEC)
1647 delay_cnt = TG3_FW_EVENT_TIMEOUT_USEC;
1648 delay_cnt = (delay_cnt >> 3) + 1;
1649
1650 for (i = 0; i < delay_cnt; i++) {
1651 if (!(tr32(GRC_RX_CPU_EVENT) & GRC_RX_CPU_DRIVER_EVENT))
1652 break;
1653 if (pci_channel_offline(tp->pdev))
1654 break;
1655
1656 udelay(8);
1657 }
1658 }
1659
1660 /* tp->lock is held. */
1661 static void tg3_phy_gather_ump_data(struct tg3 *tp, u32 *data)
1662 {
1663 u32 reg, val;
1664
1665 val = 0;
1666 if (!tg3_readphy(tp, MII_BMCR, &reg))
1667 val = reg << 16;
1668 if (!tg3_readphy(tp, MII_BMSR, &reg))
1669 val |= (reg & 0xffff);
1670 *data++ = val;
1671
1672 val = 0;
1673 if (!tg3_readphy(tp, MII_ADVERTISE, &reg))
1674 val = reg << 16;
1675 if (!tg3_readphy(tp, MII_LPA, &reg))
1676 val |= (reg & 0xffff);
1677 *data++ = val;
1678
1679 val = 0;
1680 if (!(tp->phy_flags & TG3_PHYFLG_MII_SERDES)) {
1681 if (!tg3_readphy(tp, MII_CTRL1000, &reg))
1682 val = reg << 16;
1683 if (!tg3_readphy(tp, MII_STAT1000, &reg))
1684 val |= (reg & 0xffff);
1685 }
1686 *data++ = val;
1687
1688 if (!tg3_readphy(tp, MII_PHYADDR, &reg))
1689 val = reg << 16;
1690 else
1691 val = 0;
1692 *data++ = val;
1693 }
1694
1695 /* tp->lock is held. */
1696 static void tg3_ump_link_report(struct tg3 *tp)
1697 {
1698 u32 data[4];
1699
1700 if (!tg3_flag(tp, 5780_CLASS) || !tg3_flag(tp, ENABLE_ASF))
1701 return;
1702
1703 tg3_phy_gather_ump_data(tp, data);
1704
1705 tg3_wait_for_event_ack(tp);
1706
1707 tg3_write_mem(tp, NIC_SRAM_FW_CMD_MBOX, FWCMD_NICDRV_LINK_UPDATE);
1708 tg3_write_mem(tp, NIC_SRAM_FW_CMD_LEN_MBOX, 14);
1709 tg3_write_mem(tp, NIC_SRAM_FW_CMD_DATA_MBOX + 0x0, data[0]);
1710 tg3_write_mem(tp, NIC_SRAM_FW_CMD_DATA_MBOX + 0x4, data[1]);
1711 tg3_write_mem(tp, NIC_SRAM_FW_CMD_DATA_MBOX + 0x8, data[2]);
1712 tg3_write_mem(tp, NIC_SRAM_FW_CMD_DATA_MBOX + 0xc, data[3]);
1713
1714 tg3_generate_fw_event(tp);
1715 }
1716
1717 /* tp->lock is held. */
1718 static void tg3_stop_fw(struct tg3 *tp)
1719 {
1720 if (tg3_flag(tp, ENABLE_ASF) && !tg3_flag(tp, ENABLE_APE)) {
1721 /* Wait for RX cpu to ACK the previous event. */
1722 tg3_wait_for_event_ack(tp);
1723
1724 tg3_write_mem(tp, NIC_SRAM_FW_CMD_MBOX, FWCMD_NICDRV_PAUSE_FW);
1725
1726 tg3_generate_fw_event(tp);
1727
1728 /* Wait for RX cpu to ACK this event. */
1729 tg3_wait_for_event_ack(tp);
1730 }
1731 }
1732
1733 /* tp->lock is held. */
1734 static void tg3_write_sig_pre_reset(struct tg3 *tp, int kind)
1735 {
1736 tg3_write_mem(tp, NIC_SRAM_FIRMWARE_MBOX,
1737 NIC_SRAM_FIRMWARE_MBOX_MAGIC1);
1738
1739 if (tg3_flag(tp, ASF_NEW_HANDSHAKE)) {
1740 switch (kind) {
1741 case RESET_KIND_INIT:
1742 tg3_write_mem(tp, NIC_SRAM_FW_DRV_STATE_MBOX,
1743 DRV_STATE_START);
1744 break;
1745
1746 case RESET_KIND_SHUTDOWN:
1747 tg3_write_mem(tp, NIC_SRAM_FW_DRV_STATE_MBOX,
1748 DRV_STATE_UNLOAD);
1749 break;
1750
1751 case RESET_KIND_SUSPEND:
1752 tg3_write_mem(tp, NIC_SRAM_FW_DRV_STATE_MBOX,
1753 DRV_STATE_SUSPEND);
1754 break;
1755
1756 default:
1757 break;
1758 }
1759 }
1760 }
1761
1762 /* tp->lock is held. */
1763 static void tg3_write_sig_post_reset(struct tg3 *tp, int kind)
1764 {
1765 if (tg3_flag(tp, ASF_NEW_HANDSHAKE)) {
1766 switch (kind) {
1767 case RESET_KIND_INIT:
1768 tg3_write_mem(tp, NIC_SRAM_FW_DRV_STATE_MBOX,
1769 DRV_STATE_START_DONE);
1770 break;
1771
1772 case RESET_KIND_SHUTDOWN:
1773 tg3_write_mem(tp, NIC_SRAM_FW_DRV_STATE_MBOX,
1774 DRV_STATE_UNLOAD_DONE);
1775 break;
1776
1777 default:
1778 break;
1779 }
1780 }
1781 }
1782
1783 /* tp->lock is held. */
1784 static void tg3_write_sig_legacy(struct tg3 *tp, int kind)
1785 {
1786 if (tg3_flag(tp, ENABLE_ASF)) {
1787 switch (kind) {
1788 case RESET_KIND_INIT:
1789 tg3_write_mem(tp, NIC_SRAM_FW_DRV_STATE_MBOX,
1790 DRV_STATE_START);
1791 break;
1792
1793 case RESET_KIND_SHUTDOWN:
1794 tg3_write_mem(tp, NIC_SRAM_FW_DRV_STATE_MBOX,
1795 DRV_STATE_UNLOAD);
1796 break;
1797
1798 case RESET_KIND_SUSPEND:
1799 tg3_write_mem(tp, NIC_SRAM_FW_DRV_STATE_MBOX,
1800 DRV_STATE_SUSPEND);
1801 break;
1802
1803 default:
1804 break;
1805 }
1806 }
1807 }
1808
1809 static int tg3_poll_fw(struct tg3 *tp)
1810 {
1811 int i;
1812 u32 val;
1813
1814 if (tg3_flag(tp, NO_FWARE_REPORTED))
1815 return 0;
1816
1817 if (tg3_flag(tp, IS_SSB_CORE)) {
1818 /* We don't use firmware. */
1819 return 0;
1820 }
1821
1822 if (tg3_asic_rev(tp) == ASIC_REV_5906) {
1823 /* Wait up to 20ms for init done. */
1824 for (i = 0; i < 200; i++) {
1825 if (tr32(VCPU_STATUS) & VCPU_STATUS_INIT_DONE)
1826 return 0;
1827 if (pci_channel_offline(tp->pdev))
1828 return -ENODEV;
1829
1830 udelay(100);
1831 }
1832 return -ENODEV;
1833 }
1834
1835 /* Wait for firmware initialization to complete. */
1836 for (i = 0; i < 100000; i++) {
1837 tg3_read_mem(tp, NIC_SRAM_FIRMWARE_MBOX, &val);
1838 if (val == ~NIC_SRAM_FIRMWARE_MBOX_MAGIC1)
1839 break;
1840 if (pci_channel_offline(tp->pdev)) {
1841 if (!tg3_flag(tp, NO_FWARE_REPORTED)) {
1842 tg3_flag_set(tp, NO_FWARE_REPORTED);
1843 netdev_info(tp->dev, "No firmware running\n");
1844 }
1845
1846 break;
1847 }
1848
1849 udelay(10);
1850 }
1851
1852 /* Chip might not be fitted with firmware. Some Sun onboard
1853 * parts are configured like that. So don't signal the timeout
1854 * of the above loop as an error, but do report the lack of
1855 * running firmware once.
1856 */
1857 if (i >= 100000 && !tg3_flag(tp, NO_FWARE_REPORTED)) {
1858 tg3_flag_set(tp, NO_FWARE_REPORTED);
1859
1860 netdev_info(tp->dev, "No firmware running\n");
1861 }
1862
1863 if (tg3_chip_rev_id(tp) == CHIPREV_ID_57765_A0) {
1864 /* The 57765 A0 needs a little more
1865 * time to do some important work.
1866 */
1867 mdelay(10);
1868 }
1869
1870 return 0;
1871 }
1872
1873 static void tg3_link_report(struct tg3 *tp)
1874 {
1875 if (!netif_carrier_ok(tp->dev)) {
1876 netif_info(tp, link, tp->dev, "Link is down\n");
1877 tg3_ump_link_report(tp);
1878 } else if (netif_msg_link(tp)) {
1879 netdev_info(tp->dev, "Link is up at %d Mbps, %s duplex\n",
1880 (tp->link_config.active_speed == SPEED_1000 ?
1881 1000 :
1882 (tp->link_config.active_speed == SPEED_100 ?
1883 100 : 10)),
1884 (tp->link_config.active_duplex == DUPLEX_FULL ?
1885 "full" : "half"));
1886
1887 netdev_info(tp->dev, "Flow control is %s for TX and %s for RX\n",
1888 (tp->link_config.active_flowctrl & FLOW_CTRL_TX) ?
1889 "on" : "off",
1890 (tp->link_config.active_flowctrl & FLOW_CTRL_RX) ?
1891 "on" : "off");
1892
1893 if (tp->phy_flags & TG3_PHYFLG_EEE_CAP)
1894 netdev_info(tp->dev, "EEE is %s\n",
1895 tp->setlpicnt ? "enabled" : "disabled");
1896
1897 tg3_ump_link_report(tp);
1898 }
1899
1900 tp->link_up = netif_carrier_ok(tp->dev);
1901 }
1902
1903 static u32 tg3_decode_flowctrl_1000T(u32 adv)
1904 {
1905 u32 flowctrl = 0;
1906
1907 if (adv & ADVERTISE_PAUSE_CAP) {
1908 flowctrl |= FLOW_CTRL_RX;
1909 if (!(adv & ADVERTISE_PAUSE_ASYM))
1910 flowctrl |= FLOW_CTRL_TX;
1911 } else if (adv & ADVERTISE_PAUSE_ASYM)
1912 flowctrl |= FLOW_CTRL_TX;
1913
1914 return flowctrl;
1915 }
1916
1917 static u16 tg3_advert_flowctrl_1000X(u8 flow_ctrl)
1918 {
1919 u16 miireg;
1920
1921 if ((flow_ctrl & FLOW_CTRL_TX) && (flow_ctrl & FLOW_CTRL_RX))
1922 miireg = ADVERTISE_1000XPAUSE;
1923 else if (flow_ctrl & FLOW_CTRL_TX)
1924 miireg = ADVERTISE_1000XPSE_ASYM;
1925 else if (flow_ctrl & FLOW_CTRL_RX)
1926 miireg = ADVERTISE_1000XPAUSE | ADVERTISE_1000XPSE_ASYM;
1927 else
1928 miireg = 0;
1929
1930 return miireg;
1931 }
1932
1933 static u32 tg3_decode_flowctrl_1000X(u32 adv)
1934 {
1935 u32 flowctrl = 0;
1936
1937 if (adv & ADVERTISE_1000XPAUSE) {
1938 flowctrl |= FLOW_CTRL_RX;
1939 if (!(adv & ADVERTISE_1000XPSE_ASYM))
1940 flowctrl |= FLOW_CTRL_TX;
1941 } else if (adv & ADVERTISE_1000XPSE_ASYM)
1942 flowctrl |= FLOW_CTRL_TX;
1943
1944 return flowctrl;
1945 }
1946
1947 static u8 tg3_resolve_flowctrl_1000X(u16 lcladv, u16 rmtadv)
1948 {
1949 u8 cap = 0;
1950
1951 if (lcladv & rmtadv & ADVERTISE_1000XPAUSE) {
1952 cap = FLOW_CTRL_TX | FLOW_CTRL_RX;
1953 } else if (lcladv & rmtadv & ADVERTISE_1000XPSE_ASYM) {
1954 if (lcladv & ADVERTISE_1000XPAUSE)
1955 cap = FLOW_CTRL_RX;
1956 if (rmtadv & ADVERTISE_1000XPAUSE)
1957 cap = FLOW_CTRL_TX;
1958 }
1959
1960 return cap;
1961 }
1962
1963 static void tg3_setup_flow_control(struct tg3 *tp, u32 lcladv, u32 rmtadv)
1964 {
1965 u8 autoneg;
1966 u8 flowctrl = 0;
1967 u32 old_rx_mode = tp->rx_mode;
1968 u32 old_tx_mode = tp->tx_mode;
1969
1970 if (tg3_flag(tp, USE_PHYLIB))
1971 autoneg = tp->mdio_bus->phy_map[tp->phy_addr]->autoneg;
1972 else
1973 autoneg = tp->link_config.autoneg;
1974
1975 if (autoneg == AUTONEG_ENABLE && tg3_flag(tp, PAUSE_AUTONEG)) {
1976 if (tp->phy_flags & TG3_PHYFLG_ANY_SERDES)
1977 flowctrl = tg3_resolve_flowctrl_1000X(lcladv, rmtadv);
1978 else
1979 flowctrl = mii_resolve_flowctrl_fdx(lcladv, rmtadv);
1980 } else
1981 flowctrl = tp->link_config.flowctrl;
1982
1983 tp->link_config.active_flowctrl = flowctrl;
1984
1985 if (flowctrl & FLOW_CTRL_RX)
1986 tp->rx_mode |= RX_MODE_FLOW_CTRL_ENABLE;
1987 else
1988 tp->rx_mode &= ~RX_MODE_FLOW_CTRL_ENABLE;
1989
1990 if (old_rx_mode != tp->rx_mode)
1991 tw32_f(MAC_RX_MODE, tp->rx_mode);
1992
1993 if (flowctrl & FLOW_CTRL_TX)
1994 tp->tx_mode |= TX_MODE_FLOW_CTRL_ENABLE;
1995 else
1996 tp->tx_mode &= ~TX_MODE_FLOW_CTRL_ENABLE;
1997
1998 if (old_tx_mode != tp->tx_mode)
1999 tw32_f(MAC_TX_MODE, tp->tx_mode);
2000 }
2001
2002 static void tg3_adjust_link(struct net_device *dev)
2003 {
2004 u8 oldflowctrl, linkmesg = 0;
2005 u32 mac_mode, lcl_adv, rmt_adv;
2006 struct tg3 *tp = netdev_priv(dev);
2007 struct phy_device *phydev = tp->mdio_bus->phy_map[tp->phy_addr];
2008
2009 spin_lock_bh(&tp->lock);
2010
2011 mac_mode = tp->mac_mode & ~(MAC_MODE_PORT_MODE_MASK |
2012 MAC_MODE_HALF_DUPLEX);
2013
2014 oldflowctrl = tp->link_config.active_flowctrl;
2015
2016 if (phydev->link) {
2017 lcl_adv = 0;
2018 rmt_adv = 0;
2019
2020 if (phydev->speed == SPEED_100 || phydev->speed == SPEED_10)
2021 mac_mode |= MAC_MODE_PORT_MODE_MII;
2022 else if (phydev->speed == SPEED_1000 ||
2023 tg3_asic_rev(tp) != ASIC_REV_5785)
2024 mac_mode |= MAC_MODE_PORT_MODE_GMII;
2025 else
2026 mac_mode |= MAC_MODE_PORT_MODE_MII;
2027
2028 if (phydev->duplex == DUPLEX_HALF)
2029 mac_mode |= MAC_MODE_HALF_DUPLEX;
2030 else {
2031 lcl_adv = mii_advertise_flowctrl(
2032 tp->link_config.flowctrl);
2033
2034 if (phydev->pause)
2035 rmt_adv = LPA_PAUSE_CAP;
2036 if (phydev->asym_pause)
2037 rmt_adv |= LPA_PAUSE_ASYM;
2038 }
2039
2040 tg3_setup_flow_control(tp, lcl_adv, rmt_adv);
2041 } else
2042 mac_mode |= MAC_MODE_PORT_MODE_GMII;
2043
2044 if (mac_mode != tp->mac_mode) {
2045 tp->mac_mode = mac_mode;
2046 tw32_f(MAC_MODE, tp->mac_mode);
2047 udelay(40);
2048 }
2049
2050 if (tg3_asic_rev(tp) == ASIC_REV_5785) {
2051 if (phydev->speed == SPEED_10)
2052 tw32(MAC_MI_STAT,
2053 MAC_MI_STAT_10MBPS_MODE |
2054 MAC_MI_STAT_LNKSTAT_ATTN_ENAB);
2055 else
2056 tw32(MAC_MI_STAT, MAC_MI_STAT_LNKSTAT_ATTN_ENAB);
2057 }
2058
2059 if (phydev->speed == SPEED_1000 && phydev->duplex == DUPLEX_HALF)
2060 tw32(MAC_TX_LENGTHS,
2061 ((2 << TX_LENGTHS_IPG_CRS_SHIFT) |
2062 (6 << TX_LENGTHS_IPG_SHIFT) |
2063 (0xff << TX_LENGTHS_SLOT_TIME_SHIFT)));
2064 else
2065 tw32(MAC_TX_LENGTHS,
2066 ((2 << TX_LENGTHS_IPG_CRS_SHIFT) |
2067 (6 << TX_LENGTHS_IPG_SHIFT) |
2068 (32 << TX_LENGTHS_SLOT_TIME_SHIFT)));
2069
2070 if (phydev->link != tp->old_link ||
2071 phydev->speed != tp->link_config.active_speed ||
2072 phydev->duplex != tp->link_config.active_duplex ||
2073 oldflowctrl != tp->link_config.active_flowctrl)
2074 linkmesg = 1;
2075
2076 tp->old_link = phydev->link;
2077 tp->link_config.active_speed = phydev->speed;
2078 tp->link_config.active_duplex = phydev->duplex;
2079
2080 spin_unlock_bh(&tp->lock);
2081
2082 if (linkmesg)
2083 tg3_link_report(tp);
2084 }
2085
2086 static int tg3_phy_init(struct tg3 *tp)
2087 {
2088 struct phy_device *phydev;
2089
2090 if (tp->phy_flags & TG3_PHYFLG_IS_CONNECTED)
2091 return 0;
2092
2093 /* Bring the PHY back to a known state. */
2094 tg3_bmcr_reset(tp);
2095
2096 phydev = tp->mdio_bus->phy_map[tp->phy_addr];
2097
2098 /* Attach the MAC to the PHY. */
2099 phydev = phy_connect(tp->dev, dev_name(&phydev->dev),
2100 tg3_adjust_link, phydev->interface);
2101 if (IS_ERR(phydev)) {
2102 dev_err(&tp->pdev->dev, "Could not attach to PHY\n");
2103 return PTR_ERR(phydev);
2104 }
2105
2106 /* Mask with MAC supported features. */
2107 switch (phydev->interface) {
2108 case PHY_INTERFACE_MODE_GMII:
2109 case PHY_INTERFACE_MODE_RGMII:
2110 if (!(tp->phy_flags & TG3_PHYFLG_10_100_ONLY)) {
2111 phydev->supported &= (PHY_GBIT_FEATURES |
2112 SUPPORTED_Pause |
2113 SUPPORTED_Asym_Pause);
2114 break;
2115 }
2116 /* fallthru */
2117 case PHY_INTERFACE_MODE_MII:
2118 phydev->supported &= (PHY_BASIC_FEATURES |
2119 SUPPORTED_Pause |
2120 SUPPORTED_Asym_Pause);
2121 break;
2122 default:
2123 phy_disconnect(tp->mdio_bus->phy_map[tp->phy_addr]);
2124 return -EINVAL;
2125 }
2126
2127 tp->phy_flags |= TG3_PHYFLG_IS_CONNECTED;
2128
2129 phydev->advertising = phydev->supported;
2130
2131 return 0;
2132 }
2133
2134 static void tg3_phy_start(struct tg3 *tp)
2135 {
2136 struct phy_device *phydev;
2137
2138 if (!(tp->phy_flags & TG3_PHYFLG_IS_CONNECTED))
2139 return;
2140
2141 phydev = tp->mdio_bus->phy_map[tp->phy_addr];
2142
2143 if (tp->phy_flags & TG3_PHYFLG_IS_LOW_POWER) {
2144 tp->phy_flags &= ~TG3_PHYFLG_IS_LOW_POWER;
2145 phydev->speed = tp->link_config.speed;
2146 phydev->duplex = tp->link_config.duplex;
2147 phydev->autoneg = tp->link_config.autoneg;
2148 phydev->advertising = tp->link_config.advertising;
2149 }
2150
2151 phy_start(phydev);
2152
2153 phy_start_aneg(phydev);
2154 }
2155
2156 static void tg3_phy_stop(struct tg3 *tp)
2157 {
2158 if (!(tp->phy_flags & TG3_PHYFLG_IS_CONNECTED))
2159 return;
2160
2161 phy_stop(tp->mdio_bus->phy_map[tp->phy_addr]);
2162 }
2163
2164 static void tg3_phy_fini(struct tg3 *tp)
2165 {
2166 if (tp->phy_flags & TG3_PHYFLG_IS_CONNECTED) {
2167 phy_disconnect(tp->mdio_bus->phy_map[tp->phy_addr]);
2168 tp->phy_flags &= ~TG3_PHYFLG_IS_CONNECTED;
2169 }
2170 }
2171
2172 static int tg3_phy_set_extloopbk(struct tg3 *tp)
2173 {
2174 int err;
2175 u32 val;
2176
2177 if (tp->phy_flags & TG3_PHYFLG_IS_FET)
2178 return 0;
2179
2180 if ((tp->phy_id & TG3_PHY_ID_MASK) == TG3_PHY_ID_BCM5401) {
2181 /* Cannot do read-modify-write on 5401 */
2182 err = tg3_phy_auxctl_write(tp,
2183 MII_TG3_AUXCTL_SHDWSEL_AUXCTL,
2184 MII_TG3_AUXCTL_ACTL_EXTLOOPBK |
2185 0x4c20);
2186 goto done;
2187 }
2188
2189 err = tg3_phy_auxctl_read(tp,
2190 MII_TG3_AUXCTL_SHDWSEL_AUXCTL, &val);
2191 if (err)
2192 return err;
2193
2194 val |= MII_TG3_AUXCTL_ACTL_EXTLOOPBK;
2195 err = tg3_phy_auxctl_write(tp,
2196 MII_TG3_AUXCTL_SHDWSEL_AUXCTL, val);
2197
2198 done:
2199 return err;
2200 }
2201
2202 static void tg3_phy_fet_toggle_apd(struct tg3 *tp, bool enable)
2203 {
2204 u32 phytest;
2205
2206 if (!tg3_readphy(tp, MII_TG3_FET_TEST, &phytest)) {
2207 u32 phy;
2208
2209 tg3_writephy(tp, MII_TG3_FET_TEST,
2210 phytest | MII_TG3_FET_SHADOW_EN);
2211 if (!tg3_readphy(tp, MII_TG3_FET_SHDW_AUXSTAT2, &phy)) {
2212 if (enable)
2213 phy |= MII_TG3_FET_SHDW_AUXSTAT2_APD;
2214 else
2215 phy &= ~MII_TG3_FET_SHDW_AUXSTAT2_APD;
2216 tg3_writephy(tp, MII_TG3_FET_SHDW_AUXSTAT2, phy);
2217 }
2218 tg3_writephy(tp, MII_TG3_FET_TEST, phytest);
2219 }
2220 }
2221
2222 static void tg3_phy_toggle_apd(struct tg3 *tp, bool enable)
2223 {
2224 u32 reg;
2225
2226 if (!tg3_flag(tp, 5705_PLUS) ||
2227 (tg3_flag(tp, 5717_PLUS) &&
2228 (tp->phy_flags & TG3_PHYFLG_MII_SERDES)))
2229 return;
2230
2231 if (tp->phy_flags & TG3_PHYFLG_IS_FET) {
2232 tg3_phy_fet_toggle_apd(tp, enable);
2233 return;
2234 }
2235
2236 reg = MII_TG3_MISC_SHDW_SCR5_LPED |
2237 MII_TG3_MISC_SHDW_SCR5_DLPTLM |
2238 MII_TG3_MISC_SHDW_SCR5_SDTL |
2239 MII_TG3_MISC_SHDW_SCR5_C125OE;
2240 if (tg3_asic_rev(tp) != ASIC_REV_5784 || !enable)
2241 reg |= MII_TG3_MISC_SHDW_SCR5_DLLAPD;
2242
2243 tg3_phy_shdw_write(tp, MII_TG3_MISC_SHDW_SCR5_SEL, reg);
2244
2245
2246 reg = MII_TG3_MISC_SHDW_APD_WKTM_84MS;
2247 if (enable)
2248 reg |= MII_TG3_MISC_SHDW_APD_ENABLE;
2249
2250 tg3_phy_shdw_write(tp, MII_TG3_MISC_SHDW_APD_SEL, reg);
2251 }
2252
2253 static void tg3_phy_toggle_automdix(struct tg3 *tp, bool enable)
2254 {
2255 u32 phy;
2256
2257 if (!tg3_flag(tp, 5705_PLUS) ||
2258 (tp->phy_flags & TG3_PHYFLG_ANY_SERDES))
2259 return;
2260
2261 if (tp->phy_flags & TG3_PHYFLG_IS_FET) {
2262 u32 ephy;
2263
2264 if (!tg3_readphy(tp, MII_TG3_FET_TEST, &ephy)) {
2265 u32 reg = MII_TG3_FET_SHDW_MISCCTRL;
2266
2267 tg3_writephy(tp, MII_TG3_FET_TEST,
2268 ephy | MII_TG3_FET_SHADOW_EN);
2269 if (!tg3_readphy(tp, reg, &phy)) {
2270 if (enable)
2271 phy |= MII_TG3_FET_SHDW_MISCCTRL_MDIX;
2272 else
2273 phy &= ~MII_TG3_FET_SHDW_MISCCTRL_MDIX;
2274 tg3_writephy(tp, reg, phy);
2275 }
2276 tg3_writephy(tp, MII_TG3_FET_TEST, ephy);
2277 }
2278 } else {
2279 int ret;
2280
2281 ret = tg3_phy_auxctl_read(tp,
2282 MII_TG3_AUXCTL_SHDWSEL_MISC, &phy);
2283 if (!ret) {
2284 if (enable)
2285 phy |= MII_TG3_AUXCTL_MISC_FORCE_AMDIX;
2286 else
2287 phy &= ~MII_TG3_AUXCTL_MISC_FORCE_AMDIX;
2288 tg3_phy_auxctl_write(tp,
2289 MII_TG3_AUXCTL_SHDWSEL_MISC, phy);
2290 }
2291 }
2292 }
2293
2294 static void tg3_phy_set_wirespeed(struct tg3 *tp)
2295 {
2296 int ret;
2297 u32 val;
2298
2299 if (tp->phy_flags & TG3_PHYFLG_NO_ETH_WIRE_SPEED)
2300 return;
2301
2302 ret = tg3_phy_auxctl_read(tp, MII_TG3_AUXCTL_SHDWSEL_MISC, &val);
2303 if (!ret)
2304 tg3_phy_auxctl_write(tp, MII_TG3_AUXCTL_SHDWSEL_MISC,
2305 val | MII_TG3_AUXCTL_MISC_WIRESPD_EN);
2306 }
2307
2308 static void tg3_phy_apply_otp(struct tg3 *tp)
2309 {
2310 u32 otp, phy;
2311
2312 if (!tp->phy_otp)
2313 return;
2314
2315 otp = tp->phy_otp;
2316
2317 if (tg3_phy_toggle_auxctl_smdsp(tp, true))
2318 return;
2319
2320 phy = ((otp & TG3_OTP_AGCTGT_MASK) >> TG3_OTP_AGCTGT_SHIFT);
2321 phy |= MII_TG3_DSP_TAP1_AGCTGT_DFLT;
2322 tg3_phydsp_write(tp, MII_TG3_DSP_TAP1, phy);
2323
2324 phy = ((otp & TG3_OTP_HPFFLTR_MASK) >> TG3_OTP_HPFFLTR_SHIFT) |
2325 ((otp & TG3_OTP_HPFOVER_MASK) >> TG3_OTP_HPFOVER_SHIFT);
2326 tg3_phydsp_write(tp, MII_TG3_DSP_AADJ1CH0, phy);
2327
2328 phy = ((otp & TG3_OTP_LPFDIS_MASK) >> TG3_OTP_LPFDIS_SHIFT);
2329 phy |= MII_TG3_DSP_AADJ1CH3_ADCCKADJ;
2330 tg3_phydsp_write(tp, MII_TG3_DSP_AADJ1CH3, phy);
2331
2332 phy = ((otp & TG3_OTP_VDAC_MASK) >> TG3_OTP_VDAC_SHIFT);
2333 tg3_phydsp_write(tp, MII_TG3_DSP_EXP75, phy);
2334
2335 phy = ((otp & TG3_OTP_10BTAMP_MASK) >> TG3_OTP_10BTAMP_SHIFT);
2336 tg3_phydsp_write(tp, MII_TG3_DSP_EXP96, phy);
2337
2338 phy = ((otp & TG3_OTP_ROFF_MASK) >> TG3_OTP_ROFF_SHIFT) |
2339 ((otp & TG3_OTP_RCOFF_MASK) >> TG3_OTP_RCOFF_SHIFT);
2340 tg3_phydsp_write(tp, MII_TG3_DSP_EXP97, phy);
2341
2342 tg3_phy_toggle_auxctl_smdsp(tp, false);
2343 }
2344
2345 static void tg3_eee_pull_config(struct tg3 *tp, struct ethtool_eee *eee)
2346 {
2347 u32 val;
2348 struct ethtool_eee *dest = &tp->eee;
2349
2350 if (!(tp->phy_flags & TG3_PHYFLG_EEE_CAP))
2351 return;
2352
2353 if (eee)
2354 dest = eee;
2355
2356 if (tg3_phy_cl45_read(tp, MDIO_MMD_AN, TG3_CL45_D7_EEERES_STAT, &val))
2357 return;
2358
2359 /* Pull eee_active */
2360 if (val == TG3_CL45_D7_EEERES_STAT_LP_1000T ||
2361 val == TG3_CL45_D7_EEERES_STAT_LP_100TX) {
2362 dest->eee_active = 1;
2363 } else
2364 dest->eee_active = 0;
2365
2366 /* Pull lp advertised settings */
2367 if (tg3_phy_cl45_read(tp, MDIO_MMD_AN, MDIO_AN_EEE_LPABLE, &val))
2368 return;
2369 dest->lp_advertised = mmd_eee_adv_to_ethtool_adv_t(val);
2370
2371 /* Pull advertised and eee_enabled settings */
2372 if (tg3_phy_cl45_read(tp, MDIO_MMD_AN, MDIO_AN_EEE_ADV, &val))
2373 return;
2374 dest->eee_enabled = !!val;
2375 dest->advertised = mmd_eee_adv_to_ethtool_adv_t(val);
2376
2377 /* Pull tx_lpi_enabled */
2378 val = tr32(TG3_CPMU_EEE_MODE);
2379 dest->tx_lpi_enabled = !!(val & TG3_CPMU_EEEMD_LPI_IN_TX);
2380
2381 /* Pull lpi timer value */
2382 dest->tx_lpi_timer = tr32(TG3_CPMU_EEE_DBTMR1) & 0xffff;
2383 }
2384
2385 static void tg3_phy_eee_adjust(struct tg3 *tp, bool current_link_up)
2386 {
2387 u32 val;
2388
2389 if (!(tp->phy_flags & TG3_PHYFLG_EEE_CAP))
2390 return;
2391
2392 tp->setlpicnt = 0;
2393
2394 if (tp->link_config.autoneg == AUTONEG_ENABLE &&
2395 current_link_up &&
2396 tp->link_config.active_duplex == DUPLEX_FULL &&
2397 (tp->link_config.active_speed == SPEED_100 ||
2398 tp->link_config.active_speed == SPEED_1000)) {
2399 u32 eeectl;
2400
2401 if (tp->link_config.active_speed == SPEED_1000)
2402 eeectl = TG3_CPMU_EEE_CTRL_EXIT_16_5_US;
2403 else
2404 eeectl = TG3_CPMU_EEE_CTRL_EXIT_36_US;
2405
2406 tw32(TG3_CPMU_EEE_CTRL, eeectl);
2407
2408 tg3_eee_pull_config(tp, NULL);
2409 if (tp->eee.eee_active)
2410 tp->setlpicnt = 2;
2411 }
2412
2413 if (!tp->setlpicnt) {
2414 if (current_link_up &&
2415 !tg3_phy_toggle_auxctl_smdsp(tp, true)) {
2416 tg3_phydsp_write(tp, MII_TG3_DSP_TAP26, 0x0000);
2417 tg3_phy_toggle_auxctl_smdsp(tp, false);
2418 }
2419
2420 val = tr32(TG3_CPMU_EEE_MODE);
2421 tw32(TG3_CPMU_EEE_MODE, val & ~TG3_CPMU_EEEMD_LPI_ENABLE);
2422 }
2423 }
2424
2425 static void tg3_phy_eee_enable(struct tg3 *tp)
2426 {
2427 u32 val;
2428
2429 if (tp->link_config.active_speed == SPEED_1000 &&
2430 (tg3_asic_rev(tp) == ASIC_REV_5717 ||
2431 tg3_asic_rev(tp) == ASIC_REV_5719 ||
2432 tg3_flag(tp, 57765_CLASS)) &&
2433 !tg3_phy_toggle_auxctl_smdsp(tp, true)) {
2434 val = MII_TG3_DSP_TAP26_ALNOKO |
2435 MII_TG3_DSP_TAP26_RMRXSTO;
2436 tg3_phydsp_write(tp, MII_TG3_DSP_TAP26, val);
2437 tg3_phy_toggle_auxctl_smdsp(tp, false);
2438 }
2439
2440 val = tr32(TG3_CPMU_EEE_MODE);
2441 tw32(TG3_CPMU_EEE_MODE, val | TG3_CPMU_EEEMD_LPI_ENABLE);
2442 }
2443
2444 static int tg3_wait_macro_done(struct tg3 *tp)
2445 {
2446 int limit = 100;
2447
2448 while (limit--) {
2449 u32 tmp32;
2450
2451 if (!tg3_readphy(tp, MII_TG3_DSP_CONTROL, &tmp32)) {
2452 if ((tmp32 & 0x1000) == 0)
2453 break;
2454 }
2455 }
2456 if (limit < 0)
2457 return -EBUSY;
2458
2459 return 0;
2460 }
2461
2462 static int tg3_phy_write_and_check_testpat(struct tg3 *tp, int *resetp)
2463 {
2464 static const u32 test_pat[4][6] = {
2465 { 0x00005555, 0x00000005, 0x00002aaa, 0x0000000a, 0x00003456, 0x00000003 },
2466 { 0x00002aaa, 0x0000000a, 0x00003333, 0x00000003, 0x0000789a, 0x00000005 },
2467 { 0x00005a5a, 0x00000005, 0x00002a6a, 0x0000000a, 0x00001bcd, 0x00000003 },
2468 { 0x00002a5a, 0x0000000a, 0x000033c3, 0x00000003, 0x00002ef1, 0x00000005 }
2469 };
2470 int chan;
2471
2472 for (chan = 0; chan < 4; chan++) {
2473 int i;
2474
2475 tg3_writephy(tp, MII_TG3_DSP_ADDRESS,
2476 (chan * 0x2000) | 0x0200);
2477 tg3_writephy(tp, MII_TG3_DSP_CONTROL, 0x0002);
2478
2479 for (i = 0; i < 6; i++)
2480 tg3_writephy(tp, MII_TG3_DSP_RW_PORT,
2481 test_pat[chan][i]);
2482
2483 tg3_writephy(tp, MII_TG3_DSP_CONTROL, 0x0202);
2484 if (tg3_wait_macro_done(tp)) {
2485 *resetp = 1;
2486 return -EBUSY;
2487 }
2488
2489 tg3_writephy(tp, MII_TG3_DSP_ADDRESS,
2490 (chan * 0x2000) | 0x0200);
2491 tg3_writephy(tp, MII_TG3_DSP_CONTROL, 0x0082);
2492 if (tg3_wait_macro_done(tp)) {
2493 *resetp = 1;
2494 return -EBUSY;
2495 }
2496
2497 tg3_writephy(tp, MII_TG3_DSP_CONTROL, 0x0802);
2498 if (tg3_wait_macro_done(tp)) {
2499 *resetp = 1;
2500 return -EBUSY;
2501 }
2502
2503 for (i = 0; i < 6; i += 2) {
2504 u32 low, high;
2505
2506 if (tg3_readphy(tp, MII_TG3_DSP_RW_PORT, &low) ||
2507 tg3_readphy(tp, MII_TG3_DSP_RW_PORT, &high) ||
2508 tg3_wait_macro_done(tp)) {
2509 *resetp = 1;
2510 return -EBUSY;
2511 }
2512 low &= 0x7fff;
2513 high &= 0x000f;
2514 if (low != test_pat[chan][i] ||
2515 high != test_pat[chan][i+1]) {
2516 tg3_writephy(tp, MII_TG3_DSP_ADDRESS, 0x000b);
2517 tg3_writephy(tp, MII_TG3_DSP_RW_PORT, 0x4001);
2518 tg3_writephy(tp, MII_TG3_DSP_RW_PORT, 0x4005);
2519
2520 return -EBUSY;
2521 }
2522 }
2523 }
2524
2525 return 0;
2526 }
2527
2528 static int tg3_phy_reset_chanpat(struct tg3 *tp)
2529 {
2530 int chan;
2531
2532 for (chan = 0; chan < 4; chan++) {
2533 int i;
2534
2535 tg3_writephy(tp, MII_TG3_DSP_ADDRESS,
2536 (chan * 0x2000) | 0x0200);
2537 tg3_writephy(tp, MII_TG3_DSP_CONTROL, 0x0002);
2538 for (i = 0; i < 6; i++)
2539 tg3_writephy(tp, MII_TG3_DSP_RW_PORT, 0x000);
2540 tg3_writephy(tp, MII_TG3_DSP_CONTROL, 0x0202);
2541 if (tg3_wait_macro_done(tp))
2542 return -EBUSY;
2543 }
2544
2545 return 0;
2546 }
2547
2548 static int tg3_phy_reset_5703_4_5(struct tg3 *tp)
2549 {
2550 u32 reg32, phy9_orig;
2551 int retries, do_phy_reset, err;
2552
2553 retries = 10;
2554 do_phy_reset = 1;
2555 do {
2556 if (do_phy_reset) {
2557 err = tg3_bmcr_reset(tp);
2558 if (err)
2559 return err;
2560 do_phy_reset = 0;
2561 }
2562
2563 /* Disable transmitter and interrupt. */
2564 if (tg3_readphy(tp, MII_TG3_EXT_CTRL, &reg32))
2565 continue;
2566
2567 reg32 |= 0x3000;
2568 tg3_writephy(tp, MII_TG3_EXT_CTRL, reg32);
2569
2570 /* Set full-duplex, 1000 mbps. */
2571 tg3_writephy(tp, MII_BMCR,
2572 BMCR_FULLDPLX | BMCR_SPEED1000);
2573
2574 /* Set to master mode. */
2575 if (tg3_readphy(tp, MII_CTRL1000, &phy9_orig))
2576 continue;
2577
2578 tg3_writephy(tp, MII_CTRL1000,
2579 CTL1000_AS_MASTER | CTL1000_ENABLE_MASTER);
2580
2581 err = tg3_phy_toggle_auxctl_smdsp(tp, true);
2582 if (err)
2583 return err;
2584
2585 /* Block the PHY control access. */
2586 tg3_phydsp_write(tp, 0x8005, 0x0800);
2587
2588 err = tg3_phy_write_and_check_testpat(tp, &do_phy_reset);
2589 if (!err)
2590 break;
2591 } while (--retries);
2592
2593 err = tg3_phy_reset_chanpat(tp);
2594 if (err)
2595 return err;
2596
2597 tg3_phydsp_write(tp, 0x8005, 0x0000);
2598
2599 tg3_writephy(tp, MII_TG3_DSP_ADDRESS, 0x8200);
2600 tg3_writephy(tp, MII_TG3_DSP_CONTROL, 0x0000);
2601
2602 tg3_phy_toggle_auxctl_smdsp(tp, false);
2603
2604 tg3_writephy(tp, MII_CTRL1000, phy9_orig);
2605
2606 err = tg3_readphy(tp, MII_TG3_EXT_CTRL, &reg32);
2607 if (err)
2608 return err;
2609
2610 reg32 &= ~0x3000;
2611 tg3_writephy(tp, MII_TG3_EXT_CTRL, reg32);
2612
2613 return 0;
2614 }
2615
2616 static void tg3_carrier_off(struct tg3 *tp)
2617 {
2618 netif_carrier_off(tp->dev);
2619 tp->link_up = false;
2620 }
2621
2622 static void tg3_warn_mgmt_link_flap(struct tg3 *tp)
2623 {
2624 if (tg3_flag(tp, ENABLE_ASF))
2625 netdev_warn(tp->dev,
2626 "Management side-band traffic will be interrupted during phy settings change\n");
2627 }
2628
2629 /* This will reset the tigon3 PHY if there is no valid
2630 * link unless the FORCE argument is non-zero.
2631 */
2632 static int tg3_phy_reset(struct tg3 *tp)
2633 {
2634 u32 val, cpmuctrl;
2635 int err;
2636
2637 if (tg3_asic_rev(tp) == ASIC_REV_5906) {
2638 val = tr32(GRC_MISC_CFG);
2639 tw32_f(GRC_MISC_CFG, val & ~GRC_MISC_CFG_EPHY_IDDQ);
2640 udelay(40);
2641 }
2642 err = tg3_readphy(tp, MII_BMSR, &val);
2643 err |= tg3_readphy(tp, MII_BMSR, &val);
2644 if (err != 0)
2645 return -EBUSY;
2646
2647 if (netif_running(tp->dev) && tp->link_up) {
2648 netif_carrier_off(tp->dev);
2649 tg3_link_report(tp);
2650 }
2651
2652 if (tg3_asic_rev(tp) == ASIC_REV_5703 ||
2653 tg3_asic_rev(tp) == ASIC_REV_5704 ||
2654 tg3_asic_rev(tp) == ASIC_REV_5705) {
2655 err = tg3_phy_reset_5703_4_5(tp);
2656 if (err)
2657 return err;
2658 goto out;
2659 }
2660
2661 cpmuctrl = 0;
2662 if (tg3_asic_rev(tp) == ASIC_REV_5784 &&
2663 tg3_chip_rev(tp) != CHIPREV_5784_AX) {
2664 cpmuctrl = tr32(TG3_CPMU_CTRL);
2665 if (cpmuctrl & CPMU_CTRL_GPHY_10MB_RXONLY)
2666 tw32(TG3_CPMU_CTRL,
2667 cpmuctrl & ~CPMU_CTRL_GPHY_10MB_RXONLY);
2668 }
2669
2670 err = tg3_bmcr_reset(tp);
2671 if (err)
2672 return err;
2673
2674 if (cpmuctrl & CPMU_CTRL_GPHY_10MB_RXONLY) {
2675 val = MII_TG3_DSP_EXP8_AEDW | MII_TG3_DSP_EXP8_REJ2MHz;
2676 tg3_phydsp_write(tp, MII_TG3_DSP_EXP8, val);
2677
2678 tw32(TG3_CPMU_CTRL, cpmuctrl);
2679 }
2680
2681 if (tg3_chip_rev(tp) == CHIPREV_5784_AX ||
2682 tg3_chip_rev(tp) == CHIPREV_5761_AX) {
2683 val = tr32(TG3_CPMU_LSPD_1000MB_CLK);
2684 if ((val & CPMU_LSPD_1000MB_MACCLK_MASK) ==
2685 CPMU_LSPD_1000MB_MACCLK_12_5) {
2686 val &= ~CPMU_LSPD_1000MB_MACCLK_MASK;
2687 udelay(40);
2688 tw32_f(TG3_CPMU_LSPD_1000MB_CLK, val);
2689 }
2690 }
2691
2692 if (tg3_flag(tp, 5717_PLUS) &&
2693 (tp->phy_flags & TG3_PHYFLG_MII_SERDES))
2694 return 0;
2695
2696 tg3_phy_apply_otp(tp);
2697
2698 if (tp->phy_flags & TG3_PHYFLG_ENABLE_APD)
2699 tg3_phy_toggle_apd(tp, true);
2700 else
2701 tg3_phy_toggle_apd(tp, false);
2702
2703 out:
2704 if ((tp->phy_flags & TG3_PHYFLG_ADC_BUG) &&
2705 !tg3_phy_toggle_auxctl_smdsp(tp, true)) {
2706 tg3_phydsp_write(tp, 0x201f, 0x2aaa);
2707 tg3_phydsp_write(tp, 0x000a, 0x0323);
2708 tg3_phy_toggle_auxctl_smdsp(tp, false);
2709 }
2710
2711 if (tp->phy_flags & TG3_PHYFLG_5704_A0_BUG) {
2712 tg3_writephy(tp, MII_TG3_MISC_SHDW, 0x8d68);
2713 tg3_writephy(tp, MII_TG3_MISC_SHDW, 0x8d68);
2714 }
2715
2716 if (tp->phy_flags & TG3_PHYFLG_BER_BUG) {
2717 if (!tg3_phy_toggle_auxctl_smdsp(tp, true)) {
2718 tg3_phydsp_write(tp, 0x000a, 0x310b);
2719 tg3_phydsp_write(tp, 0x201f, 0x9506);
2720 tg3_phydsp_write(tp, 0x401f, 0x14e2);
2721 tg3_phy_toggle_auxctl_smdsp(tp, false);
2722 }
2723 } else if (tp->phy_flags & TG3_PHYFLG_JITTER_BUG) {
2724 if (!tg3_phy_toggle_auxctl_smdsp(tp, true)) {
2725 tg3_writephy(tp, MII_TG3_DSP_ADDRESS, 0x000a);
2726 if (tp->phy_flags & TG3_PHYFLG_ADJUST_TRIM) {
2727 tg3_writephy(tp, MII_TG3_DSP_RW_PORT, 0x110b);
2728 tg3_writephy(tp, MII_TG3_TEST1,
2729 MII_TG3_TEST1_TRIM_EN | 0x4);
2730 } else
2731 tg3_writephy(tp, MII_TG3_DSP_RW_PORT, 0x010b);
2732
2733 tg3_phy_toggle_auxctl_smdsp(tp, false);
2734 }
2735 }
2736
2737 /* Set Extended packet length bit (bit 14) on all chips that */
2738 /* support jumbo frames */
2739 if ((tp->phy_id & TG3_PHY_ID_MASK) == TG3_PHY_ID_BCM5401) {
2740 /* Cannot do read-modify-write on 5401 */
2741 tg3_phy_auxctl_write(tp, MII_TG3_AUXCTL_SHDWSEL_AUXCTL, 0x4c20);
2742 } else if (tg3_flag(tp, JUMBO_CAPABLE)) {
2743 /* Set bit 14 with read-modify-write to preserve other bits */
2744 err = tg3_phy_auxctl_read(tp,
2745 MII_TG3_AUXCTL_SHDWSEL_AUXCTL, &val);
2746 if (!err)
2747 tg3_phy_auxctl_write(tp, MII_TG3_AUXCTL_SHDWSEL_AUXCTL,
2748 val | MII_TG3_AUXCTL_ACTL_EXTPKTLEN);
2749 }
2750
2751 /* Set phy register 0x10 bit 0 to high fifo elasticity to support
2752 * jumbo frames transmission.
2753 */
2754 if (tg3_flag(tp, JUMBO_CAPABLE)) {
2755 if (!tg3_readphy(tp, MII_TG3_EXT_CTRL, &val))
2756 tg3_writephy(tp, MII_TG3_EXT_CTRL,
2757 val | MII_TG3_EXT_CTRL_FIFO_ELASTIC);
2758 }
2759
2760 if (tg3_asic_rev(tp) == ASIC_REV_5906) {
2761 /* adjust output voltage */
2762 tg3_writephy(tp, MII_TG3_FET_PTEST, 0x12);
2763 }
2764
2765 if (tg3_chip_rev_id(tp) == CHIPREV_ID_5762_A0)
2766 tg3_phydsp_write(tp, 0xffb, 0x4000);
2767
2768 tg3_phy_toggle_automdix(tp, true);
2769 tg3_phy_set_wirespeed(tp);
2770 return 0;
2771 }
2772
2773 #define TG3_GPIO_MSG_DRVR_PRES 0x00000001
2774 #define TG3_GPIO_MSG_NEED_VAUX 0x00000002
2775 #define TG3_GPIO_MSG_MASK (TG3_GPIO_MSG_DRVR_PRES | \
2776 TG3_GPIO_MSG_NEED_VAUX)
2777 #define TG3_GPIO_MSG_ALL_DRVR_PRES_MASK \
2778 ((TG3_GPIO_MSG_DRVR_PRES << 0) | \
2779 (TG3_GPIO_MSG_DRVR_PRES << 4) | \
2780 (TG3_GPIO_MSG_DRVR_PRES << 8) | \
2781 (TG3_GPIO_MSG_DRVR_PRES << 12))
2782
2783 #define TG3_GPIO_MSG_ALL_NEED_VAUX_MASK \
2784 ((TG3_GPIO_MSG_NEED_VAUX << 0) | \
2785 (TG3_GPIO_MSG_NEED_VAUX << 4) | \
2786 (TG3_GPIO_MSG_NEED_VAUX << 8) | \
2787 (TG3_GPIO_MSG_NEED_VAUX << 12))
2788
2789 static inline u32 tg3_set_function_status(struct tg3 *tp, u32 newstat)
2790 {
2791 u32 status, shift;
2792
2793 if (tg3_asic_rev(tp) == ASIC_REV_5717 ||
2794 tg3_asic_rev(tp) == ASIC_REV_5719)
2795 status = tg3_ape_read32(tp, TG3_APE_GPIO_MSG);
2796 else
2797 status = tr32(TG3_CPMU_DRV_STATUS);
2798
2799 shift = TG3_APE_GPIO_MSG_SHIFT + 4 * tp->pci_fn;
2800 status &= ~(TG3_GPIO_MSG_MASK << shift);
2801 status |= (newstat << shift);
2802
2803 if (tg3_asic_rev(tp) == ASIC_REV_5717 ||
2804 tg3_asic_rev(tp) == ASIC_REV_5719)
2805 tg3_ape_write32(tp, TG3_APE_GPIO_MSG, status);
2806 else
2807 tw32(TG3_CPMU_DRV_STATUS, status);
2808
2809 return status >> TG3_APE_GPIO_MSG_SHIFT;
2810 }
2811
2812 static inline int tg3_pwrsrc_switch_to_vmain(struct tg3 *tp)
2813 {
2814 if (!tg3_flag(tp, IS_NIC))
2815 return 0;
2816
2817 if (tg3_asic_rev(tp) == ASIC_REV_5717 ||
2818 tg3_asic_rev(tp) == ASIC_REV_5719 ||
2819 tg3_asic_rev(tp) == ASIC_REV_5720) {
2820 if (tg3_ape_lock(tp, TG3_APE_LOCK_GPIO))
2821 return -EIO;
2822
2823 tg3_set_function_status(tp, TG3_GPIO_MSG_DRVR_PRES);
2824
2825 tw32_wait_f(GRC_LOCAL_CTRL, tp->grc_local_ctrl,
2826 TG3_GRC_LCLCTL_PWRSW_DELAY);
2827
2828 tg3_ape_unlock(tp, TG3_APE_LOCK_GPIO);
2829 } else {
2830 tw32_wait_f(GRC_LOCAL_CTRL, tp->grc_local_ctrl,
2831 TG3_GRC_LCLCTL_PWRSW_DELAY);
2832 }
2833
2834 return 0;
2835 }
2836
2837 static void tg3_pwrsrc_die_with_vmain(struct tg3 *tp)
2838 {
2839 u32 grc_local_ctrl;
2840
2841 if (!tg3_flag(tp, IS_NIC) ||
2842 tg3_asic_rev(tp) == ASIC_REV_5700 ||
2843 tg3_asic_rev(tp) == ASIC_REV_5701)
2844 return;
2845
2846 grc_local_ctrl = tp->grc_local_ctrl | GRC_LCLCTRL_GPIO_OE1;
2847
2848 tw32_wait_f(GRC_LOCAL_CTRL,
2849 grc_local_ctrl | GRC_LCLCTRL_GPIO_OUTPUT1,
2850 TG3_GRC_LCLCTL_PWRSW_DELAY);
2851
2852 tw32_wait_f(GRC_LOCAL_CTRL,
2853 grc_local_ctrl,
2854 TG3_GRC_LCLCTL_PWRSW_DELAY);
2855
2856 tw32_wait_f(GRC_LOCAL_CTRL,
2857 grc_local_ctrl | GRC_LCLCTRL_GPIO_OUTPUT1,
2858 TG3_GRC_LCLCTL_PWRSW_DELAY);
2859 }
2860
2861 static void tg3_pwrsrc_switch_to_vaux(struct tg3 *tp)
2862 {
2863 if (!tg3_flag(tp, IS_NIC))
2864 return;
2865
2866 if (tg3_asic_rev(tp) == ASIC_REV_5700 ||
2867 tg3_asic_rev(tp) == ASIC_REV_5701) {
2868 tw32_wait_f(GRC_LOCAL_CTRL, tp->grc_local_ctrl |
2869 (GRC_LCLCTRL_GPIO_OE0 |
2870 GRC_LCLCTRL_GPIO_OE1 |
2871 GRC_LCLCTRL_GPIO_OE2 |
2872 GRC_LCLCTRL_GPIO_OUTPUT0 |
2873 GRC_LCLCTRL_GPIO_OUTPUT1),
2874 TG3_GRC_LCLCTL_PWRSW_DELAY);
2875 } else if (tp->pdev->device == PCI_DEVICE_ID_TIGON3_5761 ||
2876 tp->pdev->device == TG3PCI_DEVICE_TIGON3_5761S) {
2877 /* The 5761 non-e device swaps GPIO 0 and GPIO 2. */
2878 u32 grc_local_ctrl = GRC_LCLCTRL_GPIO_OE0 |
2879 GRC_LCLCTRL_GPIO_OE1 |
2880 GRC_LCLCTRL_GPIO_OE2 |
2881 GRC_LCLCTRL_GPIO_OUTPUT0 |
2882 GRC_LCLCTRL_GPIO_OUTPUT1 |
2883 tp->grc_local_ctrl;
2884 tw32_wait_f(GRC_LOCAL_CTRL, grc_local_ctrl,
2885 TG3_GRC_LCLCTL_PWRSW_DELAY);
2886
2887 grc_local_ctrl |= GRC_LCLCTRL_GPIO_OUTPUT2;
2888 tw32_wait_f(GRC_LOCAL_CTRL, grc_local_ctrl,
2889 TG3_GRC_LCLCTL_PWRSW_DELAY);
2890
2891 grc_local_ctrl &= ~GRC_LCLCTRL_GPIO_OUTPUT0;
2892 tw32_wait_f(GRC_LOCAL_CTRL, grc_local_ctrl,
2893 TG3_GRC_LCLCTL_PWRSW_DELAY);
2894 } else {
2895 u32 no_gpio2;
2896 u32 grc_local_ctrl = 0;
2897
2898 /* Workaround to prevent overdrawing Amps. */
2899 if (tg3_asic_rev(tp) == ASIC_REV_5714) {
2900 grc_local_ctrl |= GRC_LCLCTRL_GPIO_OE3;
2901 tw32_wait_f(GRC_LOCAL_CTRL, tp->grc_local_ctrl |
2902 grc_local_ctrl,
2903 TG3_GRC_LCLCTL_PWRSW_DELAY);
2904 }
2905
2906 /* On 5753 and variants, GPIO2 cannot be used. */
2907 no_gpio2 = tp->nic_sram_data_cfg &
2908 NIC_SRAM_DATA_CFG_NO_GPIO2;
2909
2910 grc_local_ctrl |= GRC_LCLCTRL_GPIO_OE0 |
2911 GRC_LCLCTRL_GPIO_OE1 |
2912 GRC_LCLCTRL_GPIO_OE2 |
2913 GRC_LCLCTRL_GPIO_OUTPUT1 |
2914 GRC_LCLCTRL_GPIO_OUTPUT2;
2915 if (no_gpio2) {
2916 grc_local_ctrl &= ~(GRC_LCLCTRL_GPIO_OE2 |
2917 GRC_LCLCTRL_GPIO_OUTPUT2);
2918 }
2919 tw32_wait_f(GRC_LOCAL_CTRL,
2920 tp->grc_local_ctrl | grc_local_ctrl,
2921 TG3_GRC_LCLCTL_PWRSW_DELAY);
2922
2923 grc_local_ctrl |= GRC_LCLCTRL_GPIO_OUTPUT0;
2924
2925 tw32_wait_f(GRC_LOCAL_CTRL,
2926 tp->grc_local_ctrl | grc_local_ctrl,
2927 TG3_GRC_LCLCTL_PWRSW_DELAY);
2928
2929 if (!no_gpio2) {
2930 grc_local_ctrl &= ~GRC_LCLCTRL_GPIO_OUTPUT2;
2931 tw32_wait_f(GRC_LOCAL_CTRL,
2932 tp->grc_local_ctrl | grc_local_ctrl,
2933 TG3_GRC_LCLCTL_PWRSW_DELAY);
2934 }
2935 }
2936 }
2937
2938 static void tg3_frob_aux_power_5717(struct tg3 *tp, bool wol_enable)
2939 {
2940 u32 msg = 0;
2941
2942 /* Serialize power state transitions */
2943 if (tg3_ape_lock(tp, TG3_APE_LOCK_GPIO))
2944 return;
2945
2946 if (tg3_flag(tp, ENABLE_ASF) || tg3_flag(tp, ENABLE_APE) || wol_enable)
2947 msg = TG3_GPIO_MSG_NEED_VAUX;
2948
2949 msg = tg3_set_function_status(tp, msg);
2950
2951 if (msg & TG3_GPIO_MSG_ALL_DRVR_PRES_MASK)
2952 goto done;
2953
2954 if (msg & TG3_GPIO_MSG_ALL_NEED_VAUX_MASK)
2955 tg3_pwrsrc_switch_to_vaux(tp);
2956 else
2957 tg3_pwrsrc_die_with_vmain(tp);
2958
2959 done:
2960 tg3_ape_unlock(tp, TG3_APE_LOCK_GPIO);
2961 }
2962
2963 static void tg3_frob_aux_power(struct tg3 *tp, bool include_wol)
2964 {
2965 bool need_vaux = false;
2966
2967 /* The GPIOs do something completely different on 57765. */
2968 if (!tg3_flag(tp, IS_NIC) || tg3_flag(tp, 57765_CLASS))
2969 return;
2970
2971 if (tg3_asic_rev(tp) == ASIC_REV_5717 ||
2972 tg3_asic_rev(tp) == ASIC_REV_5719 ||
2973 tg3_asic_rev(tp) == ASIC_REV_5720) {
2974 tg3_frob_aux_power_5717(tp, include_wol ?
2975 tg3_flag(tp, WOL_ENABLE) != 0 : 0);
2976 return;
2977 }
2978
2979 if (tp->pdev_peer && tp->pdev_peer != tp->pdev) {
2980 struct net_device *dev_peer;
2981
2982 dev_peer = pci_get_drvdata(tp->pdev_peer);
2983
2984 /* remove_one() may have been run on the peer. */
2985 if (dev_peer) {
2986 struct tg3 *tp_peer = netdev_priv(dev_peer);
2987
2988 if (tg3_flag(tp_peer, INIT_COMPLETE))
2989 return;
2990
2991 if ((include_wol && tg3_flag(tp_peer, WOL_ENABLE)) ||
2992 tg3_flag(tp_peer, ENABLE_ASF))
2993 need_vaux = true;
2994 }
2995 }
2996
2997 if ((include_wol && tg3_flag(tp, WOL_ENABLE)) ||
2998 tg3_flag(tp, ENABLE_ASF))
2999 need_vaux = true;
3000
3001 if (need_vaux)
3002 tg3_pwrsrc_switch_to_vaux(tp);
3003 else
3004 tg3_pwrsrc_die_with_vmain(tp);
3005 }
3006
3007 static int tg3_5700_link_polarity(struct tg3 *tp, u32 speed)
3008 {
3009 if (tp->led_ctrl == LED_CTRL_MODE_PHY_2)
3010 return 1;
3011 else if ((tp->phy_id & TG3_PHY_ID_MASK) == TG3_PHY_ID_BCM5411) {
3012 if (speed != SPEED_10)
3013 return 1;
3014 } else if (speed == SPEED_10)
3015 return 1;
3016
3017 return 0;
3018 }
3019
3020 static bool tg3_phy_power_bug(struct tg3 *tp)
3021 {
3022 switch (tg3_asic_rev(tp)) {
3023 case ASIC_REV_5700:
3024 case ASIC_REV_5704:
3025 return true;
3026 case ASIC_REV_5780:
3027 if (tp->phy_flags & TG3_PHYFLG_MII_SERDES)
3028 return true;
3029 return false;
3030 case ASIC_REV_5717:
3031 if (!tp->pci_fn)
3032 return true;
3033 return false;
3034 case ASIC_REV_5719:
3035 case ASIC_REV_5720:
3036 if ((tp->phy_flags & TG3_PHYFLG_PHY_SERDES) &&
3037 !tp->pci_fn)
3038 return true;
3039 return false;
3040 }
3041
3042 return false;
3043 }
3044
3045 static bool tg3_phy_led_bug(struct tg3 *tp)
3046 {
3047 switch (tg3_asic_rev(tp)) {
3048 case ASIC_REV_5719:
3049 case ASIC_REV_5720:
3050 if ((tp->phy_flags & TG3_PHYFLG_MII_SERDES) &&
3051 !tp->pci_fn)
3052 return true;
3053 return false;
3054 }
3055
3056 return false;
3057 }
3058
3059 static void tg3_power_down_phy(struct tg3 *tp, bool do_low_power)
3060 {
3061 u32 val;
3062
3063 if (tp->phy_flags & TG3_PHYFLG_KEEP_LINK_ON_PWRDN)
3064 return;
3065
3066 if (tp->phy_flags & TG3_PHYFLG_PHY_SERDES) {
3067 if (tg3_asic_rev(tp) == ASIC_REV_5704) {
3068 u32 sg_dig_ctrl = tr32(SG_DIG_CTRL);
3069 u32 serdes_cfg = tr32(MAC_SERDES_CFG);
3070
3071 sg_dig_ctrl |=
3072 SG_DIG_USING_HW_AUTONEG | SG_DIG_SOFT_RESET;
3073 tw32(SG_DIG_CTRL, sg_dig_ctrl);
3074 tw32(MAC_SERDES_CFG, serdes_cfg | (1 << 15));
3075 }
3076 return;
3077 }
3078
3079 if (tg3_asic_rev(tp) == ASIC_REV_5906) {
3080 tg3_bmcr_reset(tp);
3081 val = tr32(GRC_MISC_CFG);
3082 tw32_f(GRC_MISC_CFG, val | GRC_MISC_CFG_EPHY_IDDQ);
3083 udelay(40);
3084 return;
3085 } else if (tp->phy_flags & TG3_PHYFLG_IS_FET) {
3086 u32 phytest;
3087 if (!tg3_readphy(tp, MII_TG3_FET_TEST, &phytest)) {
3088 u32 phy;
3089
3090 tg3_writephy(tp, MII_ADVERTISE, 0);
3091 tg3_writephy(tp, MII_BMCR,
3092 BMCR_ANENABLE | BMCR_ANRESTART);
3093
3094 tg3_writephy(tp, MII_TG3_FET_TEST,
3095 phytest | MII_TG3_FET_SHADOW_EN);
3096 if (!tg3_readphy(tp, MII_TG3_FET_SHDW_AUXMODE4, &phy)) {
3097 phy |= MII_TG3_FET_SHDW_AUXMODE4_SBPD;
3098 tg3_writephy(tp,
3099 MII_TG3_FET_SHDW_AUXMODE4,
3100 phy);
3101 }
3102 tg3_writephy(tp, MII_TG3_FET_TEST, phytest);
3103 }
3104 return;
3105 } else if (do_low_power) {
3106 if (!tg3_phy_led_bug(tp))
3107 tg3_writephy(tp, MII_TG3_EXT_CTRL,
3108 MII_TG3_EXT_CTRL_FORCE_LED_OFF);
3109
3110 val = MII_TG3_AUXCTL_PCTL_100TX_LPWR |
3111 MII_TG3_AUXCTL_PCTL_SPR_ISOLATE |
3112 MII_TG3_AUXCTL_PCTL_VREG_11V;
3113 tg3_phy_auxctl_write(tp, MII_TG3_AUXCTL_SHDWSEL_PWRCTL, val);
3114 }
3115
3116 /* The PHY should not be powered down on some chips because
3117 * of bugs.
3118 */
3119 if (tg3_phy_power_bug(tp))
3120 return;
3121
3122 if (tg3_chip_rev(tp) == CHIPREV_5784_AX ||
3123 tg3_chip_rev(tp) == CHIPREV_5761_AX) {
3124 val = tr32(TG3_CPMU_LSPD_1000MB_CLK);
3125 val &= ~CPMU_LSPD_1000MB_MACCLK_MASK;
3126 val |= CPMU_LSPD_1000MB_MACCLK_12_5;
3127 tw32_f(TG3_CPMU_LSPD_1000MB_CLK, val);
3128 }
3129
3130 tg3_writephy(tp, MII_BMCR, BMCR_PDOWN);
3131 }
3132
3133 /* tp->lock is held. */
3134 static int tg3_nvram_lock(struct tg3 *tp)
3135 {
3136 if (tg3_flag(tp, NVRAM)) {
3137 int i;
3138
3139 if (tp->nvram_lock_cnt == 0) {
3140 tw32(NVRAM_SWARB, SWARB_REQ_SET1);
3141 for (i = 0; i < 8000; i++) {
3142 if (tr32(NVRAM_SWARB) & SWARB_GNT1)
3143 break;
3144 udelay(20);
3145 }
3146 if (i == 8000) {
3147 tw32(NVRAM_SWARB, SWARB_REQ_CLR1);
3148 return -ENODEV;
3149 }
3150 }
3151 tp->nvram_lock_cnt++;
3152 }
3153 return 0;
3154 }
3155
3156 /* tp->lock is held. */
3157 static void tg3_nvram_unlock(struct tg3 *tp)
3158 {
3159 if (tg3_flag(tp, NVRAM)) {
3160 if (tp->nvram_lock_cnt > 0)
3161 tp->nvram_lock_cnt--;
3162 if (tp->nvram_lock_cnt == 0)
3163 tw32_f(NVRAM_SWARB, SWARB_REQ_CLR1);
3164 }
3165 }
3166
3167 /* tp->lock is held. */
3168 static void tg3_enable_nvram_access(struct tg3 *tp)
3169 {
3170 if (tg3_flag(tp, 5750_PLUS) && !tg3_flag(tp, PROTECTED_NVRAM)) {
3171 u32 nvaccess = tr32(NVRAM_ACCESS);
3172
3173 tw32(NVRAM_ACCESS, nvaccess | ACCESS_ENABLE);
3174 }
3175 }
3176
3177 /* tp->lock is held. */
3178 static void tg3_disable_nvram_access(struct tg3 *tp)
3179 {
3180 if (tg3_flag(tp, 5750_PLUS) && !tg3_flag(tp, PROTECTED_NVRAM)) {
3181 u32 nvaccess = tr32(NVRAM_ACCESS);
3182
3183 tw32(NVRAM_ACCESS, nvaccess & ~ACCESS_ENABLE);
3184 }
3185 }
3186
3187 static int tg3_nvram_read_using_eeprom(struct tg3 *tp,
3188 u32 offset, u32 *val)
3189 {
3190 u32 tmp;
3191 int i;
3192
3193 if (offset > EEPROM_ADDR_ADDR_MASK || (offset % 4) != 0)
3194 return -EINVAL;
3195
3196 tmp = tr32(GRC_EEPROM_ADDR) & ~(EEPROM_ADDR_ADDR_MASK |
3197 EEPROM_ADDR_DEVID_MASK |
3198 EEPROM_ADDR_READ);
3199 tw32(GRC_EEPROM_ADDR,
3200 tmp |
3201 (0 << EEPROM_ADDR_DEVID_SHIFT) |
3202 ((offset << EEPROM_ADDR_ADDR_SHIFT) &
3203 EEPROM_ADDR_ADDR_MASK) |
3204 EEPROM_ADDR_READ | EEPROM_ADDR_START);
3205
3206 for (i = 0; i < 1000; i++) {
3207 tmp = tr32(GRC_EEPROM_ADDR);
3208
3209 if (tmp & EEPROM_ADDR_COMPLETE)
3210 break;
3211 msleep(1);
3212 }
3213 if (!(tmp & EEPROM_ADDR_COMPLETE))
3214 return -EBUSY;
3215
3216 tmp = tr32(GRC_EEPROM_DATA);
3217
3218 /*
3219 * The data will always be opposite the native endian
3220 * format. Perform a blind byteswap to compensate.
3221 */
3222 *val = swab32(tmp);
3223
3224 return 0;
3225 }
3226
3227 #define NVRAM_CMD_TIMEOUT 5000
3228
3229 static int tg3_nvram_exec_cmd(struct tg3 *tp, u32 nvram_cmd)
3230 {
3231 int i;
3232
3233 tw32(NVRAM_CMD, nvram_cmd);
3234 for (i = 0; i < NVRAM_CMD_TIMEOUT; i++) {
3235 usleep_range(10, 40);
3236 if (tr32(NVRAM_CMD) & NVRAM_CMD_DONE) {
3237 udelay(10);
3238 break;
3239 }
3240 }
3241
3242 if (i == NVRAM_CMD_TIMEOUT)
3243 return -EBUSY;
3244
3245 return 0;
3246 }
3247
3248 static u32 tg3_nvram_phys_addr(struct tg3 *tp, u32 addr)
3249 {
3250 if (tg3_flag(tp, NVRAM) &&
3251 tg3_flag(tp, NVRAM_BUFFERED) &&
3252 tg3_flag(tp, FLASH) &&
3253 !tg3_flag(tp, NO_NVRAM_ADDR_TRANS) &&
3254 (tp->nvram_jedecnum == JEDEC_ATMEL))
3255
3256 addr = ((addr / tp->nvram_pagesize) <<
3257 ATMEL_AT45DB0X1B_PAGE_POS) +
3258 (addr % tp->nvram_pagesize);
3259
3260 return addr;
3261 }
3262
3263 static u32 tg3_nvram_logical_addr(struct tg3 *tp, u32 addr)
3264 {
3265 if (tg3_flag(tp, NVRAM) &&
3266 tg3_flag(tp, NVRAM_BUFFERED) &&
3267 tg3_flag(tp, FLASH) &&
3268 !tg3_flag(tp, NO_NVRAM_ADDR_TRANS) &&
3269 (tp->nvram_jedecnum == JEDEC_ATMEL))
3270
3271 addr = ((addr >> ATMEL_AT45DB0X1B_PAGE_POS) *
3272 tp->nvram_pagesize) +
3273 (addr & ((1 << ATMEL_AT45DB0X1B_PAGE_POS) - 1));
3274
3275 return addr;
3276 }
3277
3278 /* NOTE: Data read in from NVRAM is byteswapped according to
3279 * the byteswapping settings for all other register accesses.
3280 * tg3 devices are BE devices, so on a BE machine, the data
3281 * returned will be exactly as it is seen in NVRAM. On a LE
3282 * machine, the 32-bit value will be byteswapped.
3283 */
3284 static int tg3_nvram_read(struct tg3 *tp, u32 offset, u32 *val)
3285 {
3286 int ret;
3287
3288 if (!tg3_flag(tp, NVRAM))
3289 return tg3_nvram_read_using_eeprom(tp, offset, val);
3290
3291 offset = tg3_nvram_phys_addr(tp, offset);
3292
3293 if (offset > NVRAM_ADDR_MSK)
3294 return -EINVAL;
3295
3296 ret = tg3_nvram_lock(tp);
3297 if (ret)
3298 return ret;
3299
3300 tg3_enable_nvram_access(tp);
3301
3302 tw32(NVRAM_ADDR, offset);
3303 ret = tg3_nvram_exec_cmd(tp, NVRAM_CMD_RD | NVRAM_CMD_GO |
3304 NVRAM_CMD_FIRST | NVRAM_CMD_LAST | NVRAM_CMD_DONE);
3305
3306 if (ret == 0)
3307 *val = tr32(NVRAM_RDDATA);
3308
3309 tg3_disable_nvram_access(tp);
3310
3311 tg3_nvram_unlock(tp);
3312
3313 return ret;
3314 }
3315
3316 /* Ensures NVRAM data is in bytestream format. */
3317 static int tg3_nvram_read_be32(struct tg3 *tp, u32 offset, __be32 *val)
3318 {
3319 u32 v;
3320 int res = tg3_nvram_read(tp, offset, &v);
3321 if (!res)
3322 *val = cpu_to_be32(v);
3323 return res;
3324 }
3325
3326 static int tg3_nvram_write_block_using_eeprom(struct tg3 *tp,
3327 u32 offset, u32 len, u8 *buf)
3328 {
3329 int i, j, rc = 0;
3330 u32 val;
3331
3332 for (i = 0; i < len; i += 4) {
3333 u32 addr;
3334 __be32 data;
3335
3336 addr = offset + i;
3337
3338 memcpy(&data, buf + i, 4);
3339
3340 /*
3341 * The SEEPROM interface expects the data to always be opposite
3342 * the native endian format. We accomplish this by reversing
3343 * all the operations that would have been performed on the
3344 * data from a call to tg3_nvram_read_be32().
3345 */
3346 tw32(GRC_EEPROM_DATA, swab32(be32_to_cpu(data)));
3347
3348 val = tr32(GRC_EEPROM_ADDR);
3349 tw32(GRC_EEPROM_ADDR, val | EEPROM_ADDR_COMPLETE);
3350
3351 val &= ~(EEPROM_ADDR_ADDR_MASK | EEPROM_ADDR_DEVID_MASK |
3352 EEPROM_ADDR_READ);
3353 tw32(GRC_EEPROM_ADDR, val |
3354 (0 << EEPROM_ADDR_DEVID_SHIFT) |
3355 (addr & EEPROM_ADDR_ADDR_MASK) |
3356 EEPROM_ADDR_START |
3357 EEPROM_ADDR_WRITE);
3358
3359 for (j = 0; j < 1000; j++) {
3360 val = tr32(GRC_EEPROM_ADDR);
3361
3362 if (val & EEPROM_ADDR_COMPLETE)
3363 break;
3364 msleep(1);
3365 }
3366 if (!(val & EEPROM_ADDR_COMPLETE)) {
3367 rc = -EBUSY;
3368 break;
3369 }
3370 }
3371
3372 return rc;
3373 }
3374
3375 /* offset and length are dword aligned */
3376 static int tg3_nvram_write_block_unbuffered(struct tg3 *tp, u32 offset, u32 len,
3377 u8 *buf)
3378 {
3379 int ret = 0;
3380 u32 pagesize = tp->nvram_pagesize;
3381 u32 pagemask = pagesize - 1;
3382 u32 nvram_cmd;
3383 u8 *tmp;
3384
3385 tmp = kmalloc(pagesize, GFP_KERNEL);
3386 if (tmp == NULL)
3387 return -ENOMEM;
3388
3389 while (len) {
3390 int j;
3391 u32 phy_addr, page_off, size;
3392
3393 phy_addr = offset & ~pagemask;
3394
3395 for (j = 0; j < pagesize; j += 4) {
3396 ret = tg3_nvram_read_be32(tp, phy_addr + j,
3397 (__be32 *) (tmp + j));
3398 if (ret)
3399 break;
3400 }
3401 if (ret)
3402 break;
3403
3404 page_off = offset & pagemask;
3405 size = pagesize;
3406 if (len < size)
3407 size = len;
3408
3409 len -= size;
3410
3411 memcpy(tmp + page_off, buf, size);
3412
3413 offset = offset + (pagesize - page_off);
3414
3415 tg3_enable_nvram_access(tp);
3416
3417 /*
3418 * Before we can erase the flash page, we need
3419 * to issue a special "write enable" command.
3420 */
3421 nvram_cmd = NVRAM_CMD_WREN | NVRAM_CMD_GO | NVRAM_CMD_DONE;
3422
3423 if (tg3_nvram_exec_cmd(tp, nvram_cmd))
3424 break;
3425
3426 /* Erase the target page */
3427 tw32(NVRAM_ADDR, phy_addr);
3428
3429 nvram_cmd = NVRAM_CMD_GO | NVRAM_CMD_DONE | NVRAM_CMD_WR |
3430 NVRAM_CMD_FIRST | NVRAM_CMD_LAST | NVRAM_CMD_ERASE;
3431
3432 if (tg3_nvram_exec_cmd(tp, nvram_cmd))
3433 break;
3434
3435 /* Issue another write enable to start the write. */
3436 nvram_cmd = NVRAM_CMD_WREN | NVRAM_CMD_GO | NVRAM_CMD_DONE;
3437
3438 if (tg3_nvram_exec_cmd(tp, nvram_cmd))
3439 break;
3440
3441 for (j = 0; j < pagesize; j += 4) {
3442 __be32 data;
3443
3444 data = *((__be32 *) (tmp + j));
3445
3446 tw32(NVRAM_WRDATA, be32_to_cpu(data));
3447
3448 tw32(NVRAM_ADDR, phy_addr + j);
3449
3450 nvram_cmd = NVRAM_CMD_GO | NVRAM_CMD_DONE |
3451 NVRAM_CMD_WR;
3452
3453 if (j == 0)
3454 nvram_cmd |= NVRAM_CMD_FIRST;
3455 else if (j == (pagesize - 4))
3456 nvram_cmd |= NVRAM_CMD_LAST;
3457
3458 ret = tg3_nvram_exec_cmd(tp, nvram_cmd);
3459 if (ret)
3460 break;
3461 }
3462 if (ret)
3463 break;
3464 }
3465
3466 nvram_cmd = NVRAM_CMD_WRDI | NVRAM_CMD_GO | NVRAM_CMD_DONE;
3467 tg3_nvram_exec_cmd(tp, nvram_cmd);
3468
3469 kfree(tmp);
3470
3471 return ret;
3472 }
3473
3474 /* offset and length are dword aligned */
3475 static int tg3_nvram_write_block_buffered(struct tg3 *tp, u32 offset, u32 len,
3476 u8 *buf)
3477 {
3478 int i, ret = 0;
3479
3480 for (i = 0; i < len; i += 4, offset += 4) {
3481 u32 page_off, phy_addr, nvram_cmd;
3482 __be32 data;
3483
3484 memcpy(&data, buf + i, 4);
3485 tw32(NVRAM_WRDATA, be32_to_cpu(data));
3486
3487 page_off = offset % tp->nvram_pagesize;
3488
3489 phy_addr = tg3_nvram_phys_addr(tp, offset);
3490
3491 nvram_cmd = NVRAM_CMD_GO | NVRAM_CMD_DONE | NVRAM_CMD_WR;
3492
3493 if (page_off == 0 || i == 0)
3494 nvram_cmd |= NVRAM_CMD_FIRST;
3495 if (page_off == (tp->nvram_pagesize - 4))
3496 nvram_cmd |= NVRAM_CMD_LAST;
3497
3498 if (i == (len - 4))
3499 nvram_cmd |= NVRAM_CMD_LAST;
3500
3501 if ((nvram_cmd & NVRAM_CMD_FIRST) ||
3502 !tg3_flag(tp, FLASH) ||
3503 !tg3_flag(tp, 57765_PLUS))
3504 tw32(NVRAM_ADDR, phy_addr);
3505
3506 if (tg3_asic_rev(tp) != ASIC_REV_5752 &&
3507 !tg3_flag(tp, 5755_PLUS) &&
3508 (tp->nvram_jedecnum == JEDEC_ST) &&
3509 (nvram_cmd & NVRAM_CMD_FIRST)) {
3510 u32 cmd;
3511
3512 cmd = NVRAM_CMD_WREN | NVRAM_CMD_GO | NVRAM_CMD_DONE;
3513 ret = tg3_nvram_exec_cmd(tp, cmd);
3514 if (ret)
3515 break;
3516 }
3517 if (!tg3_flag(tp, FLASH)) {
3518 /* We always do complete word writes to eeprom. */
3519 nvram_cmd |= (NVRAM_CMD_FIRST | NVRAM_CMD_LAST);
3520 }
3521
3522 ret = tg3_nvram_exec_cmd(tp, nvram_cmd);
3523 if (ret)
3524 break;
3525 }
3526 return ret;
3527 }
3528
3529 /* offset and length are dword aligned */
3530 static int tg3_nvram_write_block(struct tg3 *tp, u32 offset, u32 len, u8 *buf)
3531 {
3532 int ret;
3533
3534 if (tg3_flag(tp, EEPROM_WRITE_PROT)) {
3535 tw32_f(GRC_LOCAL_CTRL, tp->grc_local_ctrl &
3536 ~GRC_LCLCTRL_GPIO_OUTPUT1);
3537 udelay(40);
3538 }
3539
3540 if (!tg3_flag(tp, NVRAM)) {
3541 ret = tg3_nvram_write_block_using_eeprom(tp, offset, len, buf);
3542 } else {
3543 u32 grc_mode;
3544
3545 ret = tg3_nvram_lock(tp);
3546 if (ret)
3547 return ret;
3548
3549 tg3_enable_nvram_access(tp);
3550 if (tg3_flag(tp, 5750_PLUS) && !tg3_flag(tp, PROTECTED_NVRAM))
3551 tw32(NVRAM_WRITE1, 0x406);
3552
3553 grc_mode = tr32(GRC_MODE);
3554 tw32(GRC_MODE, grc_mode | GRC_MODE_NVRAM_WR_ENABLE);
3555
3556 if (tg3_flag(tp, NVRAM_BUFFERED) || !tg3_flag(tp, FLASH)) {
3557 ret = tg3_nvram_write_block_buffered(tp, offset, len,
3558 buf);
3559 } else {
3560 ret = tg3_nvram_write_block_unbuffered(tp, offset, len,
3561 buf);
3562 }
3563
3564 grc_mode = tr32(GRC_MODE);
3565 tw32(GRC_MODE, grc_mode & ~GRC_MODE_NVRAM_WR_ENABLE);
3566
3567 tg3_disable_nvram_access(tp);
3568 tg3_nvram_unlock(tp);
3569 }
3570
3571 if (tg3_flag(tp, EEPROM_WRITE_PROT)) {
3572 tw32_f(GRC_LOCAL_CTRL, tp->grc_local_ctrl);
3573 udelay(40);
3574 }
3575
3576 return ret;
3577 }
3578
3579 #define RX_CPU_SCRATCH_BASE 0x30000
3580 #define RX_CPU_SCRATCH_SIZE 0x04000
3581 #define TX_CPU_SCRATCH_BASE 0x34000
3582 #define TX_CPU_SCRATCH_SIZE 0x04000
3583
3584 /* tp->lock is held. */
3585 static int tg3_pause_cpu(struct tg3 *tp, u32 cpu_base)
3586 {
3587 int i;
3588 const int iters = 10000;
3589
3590 for (i = 0; i < iters; i++) {
3591 tw32(cpu_base + CPU_STATE, 0xffffffff);
3592 tw32(cpu_base + CPU_MODE, CPU_MODE_HALT);
3593 if (tr32(cpu_base + CPU_MODE) & CPU_MODE_HALT)
3594 break;
3595 if (pci_channel_offline(tp->pdev))
3596 return -EBUSY;
3597 }
3598
3599 return (i == iters) ? -EBUSY : 0;
3600 }
3601
3602 /* tp->lock is held. */
3603 static int tg3_rxcpu_pause(struct tg3 *tp)
3604 {
3605 int rc = tg3_pause_cpu(tp, RX_CPU_BASE);
3606
3607 tw32(RX_CPU_BASE + CPU_STATE, 0xffffffff);
3608 tw32_f(RX_CPU_BASE + CPU_MODE, CPU_MODE_HALT);
3609 udelay(10);
3610
3611 return rc;
3612 }
3613
3614 /* tp->lock is held. */
3615 static int tg3_txcpu_pause(struct tg3 *tp)
3616 {
3617 return tg3_pause_cpu(tp, TX_CPU_BASE);
3618 }
3619
3620 /* tp->lock is held. */
3621 static void tg3_resume_cpu(struct tg3 *tp, u32 cpu_base)
3622 {
3623 tw32(cpu_base + CPU_STATE, 0xffffffff);
3624 tw32_f(cpu_base + CPU_MODE, 0x00000000);
3625 }
3626
3627 /* tp->lock is held. */
3628 static void tg3_rxcpu_resume(struct tg3 *tp)
3629 {
3630 tg3_resume_cpu(tp, RX_CPU_BASE);
3631 }
3632
3633 /* tp->lock is held. */
3634 static int tg3_halt_cpu(struct tg3 *tp, u32 cpu_base)
3635 {
3636 int rc;
3637
3638 BUG_ON(cpu_base == TX_CPU_BASE && tg3_flag(tp, 5705_PLUS));
3639
3640 if (tg3_asic_rev(tp) == ASIC_REV_5906) {
3641 u32 val = tr32(GRC_VCPU_EXT_CTRL);
3642
3643 tw32(GRC_VCPU_EXT_CTRL, val | GRC_VCPU_EXT_CTRL_HALT_CPU);
3644 return 0;
3645 }
3646 if (cpu_base == RX_CPU_BASE) {
3647 rc = tg3_rxcpu_pause(tp);
3648 } else {
3649 /*
3650 * There is only an Rx CPU for the 5750 derivative in the
3651 * BCM4785.
3652 */
3653 if (tg3_flag(tp, IS_SSB_CORE))
3654 return 0;
3655
3656 rc = tg3_txcpu_pause(tp);
3657 }
3658
3659 if (rc) {
3660 netdev_err(tp->dev, "%s timed out, %s CPU\n",
3661 __func__, cpu_base == RX_CPU_BASE ? "RX" : "TX");
3662 return -ENODEV;
3663 }
3664
3665 /* Clear firmware's nvram arbitration. */
3666 if (tg3_flag(tp, NVRAM))
3667 tw32(NVRAM_SWARB, SWARB_REQ_CLR0);
3668 return 0;
3669 }
3670
3671 static int tg3_fw_data_len(struct tg3 *tp,
3672 const struct tg3_firmware_hdr *fw_hdr)
3673 {
3674 int fw_len;
3675
3676 /* Non fragmented firmware have one firmware header followed by a
3677 * contiguous chunk of data to be written. The length field in that
3678 * header is not the length of data to be written but the complete
3679 * length of the bss. The data length is determined based on
3680 * tp->fw->size minus headers.
3681 *
3682 * Fragmented firmware have a main header followed by multiple
3683 * fragments. Each fragment is identical to non fragmented firmware
3684 * with a firmware header followed by a contiguous chunk of data. In
3685 * the main header, the length field is unused and set to 0xffffffff.
3686 * In each fragment header the length is the entire size of that
3687 * fragment i.e. fragment data + header length. Data length is
3688 * therefore length field in the header minus TG3_FW_HDR_LEN.
3689 */
3690 if (tp->fw_len == 0xffffffff)
3691 fw_len = be32_to_cpu(fw_hdr->len);
3692 else
3693 fw_len = tp->fw->size;
3694
3695 return (fw_len - TG3_FW_HDR_LEN) / sizeof(u32);
3696 }
3697
3698 /* tp->lock is held. */
3699 static int tg3_load_firmware_cpu(struct tg3 *tp, u32 cpu_base,
3700 u32 cpu_scratch_base, int cpu_scratch_size,
3701 const struct tg3_firmware_hdr *fw_hdr)
3702 {
3703 int err, i;
3704 void (*write_op)(struct tg3 *, u32, u32);
3705 int total_len = tp->fw->size;
3706
3707 if (cpu_base == TX_CPU_BASE && tg3_flag(tp, 5705_PLUS)) {
3708 netdev_err(tp->dev,
3709 "%s: Trying to load TX cpu firmware which is 5705\n",
3710 __func__);
3711 return -EINVAL;
3712 }
3713
3714 if (tg3_flag(tp, 5705_PLUS) && tg3_asic_rev(tp) != ASIC_REV_57766)
3715 write_op = tg3_write_mem;
3716 else
3717 write_op = tg3_write_indirect_reg32;
3718
3719 if (tg3_asic_rev(tp) != ASIC_REV_57766) {
3720 /* It is possible that bootcode is still loading at this point.
3721 * Get the nvram lock first before halting the cpu.
3722 */
3723 int lock_err = tg3_nvram_lock(tp);
3724 err = tg3_halt_cpu(tp, cpu_base);
3725 if (!lock_err)
3726 tg3_nvram_unlock(tp);
3727 if (err)
3728 goto out;
3729
3730 for (i = 0; i < cpu_scratch_size; i += sizeof(u32))
3731 write_op(tp, cpu_scratch_base + i, 0);
3732 tw32(cpu_base + CPU_STATE, 0xffffffff);
3733 tw32(cpu_base + CPU_MODE,
3734 tr32(cpu_base + CPU_MODE) | CPU_MODE_HALT);
3735 } else {
3736 /* Subtract additional main header for fragmented firmware and
3737 * advance to the first fragment
3738 */
3739 total_len -= TG3_FW_HDR_LEN;
3740 fw_hdr++;
3741 }
3742
3743 do {
3744 u32 *fw_data = (u32 *)(fw_hdr + 1);
3745 for (i = 0; i < tg3_fw_data_len(tp, fw_hdr); i++)
3746 write_op(tp, cpu_scratch_base +
3747 (be32_to_cpu(fw_hdr->base_addr) & 0xffff) +
3748 (i * sizeof(u32)),
3749 be32_to_cpu(fw_data[i]));
3750
3751 total_len -= be32_to_cpu(fw_hdr->len);
3752
3753 /* Advance to next fragment */
3754 fw_hdr = (struct tg3_firmware_hdr *)
3755 ((void *)fw_hdr + be32_to_cpu(fw_hdr->len));
3756 } while (total_len > 0);
3757
3758 err = 0;
3759
3760 out:
3761 return err;
3762 }
3763
3764 /* tp->lock is held. */
3765 static int tg3_pause_cpu_and_set_pc(struct tg3 *tp, u32 cpu_base, u32 pc)
3766 {
3767 int i;
3768 const int iters = 5;
3769
3770 tw32(cpu_base + CPU_STATE, 0xffffffff);
3771 tw32_f(cpu_base + CPU_PC, pc);
3772
3773 for (i = 0; i < iters; i++) {
3774 if (tr32(cpu_base + CPU_PC) == pc)
3775 break;
3776 tw32(cpu_base + CPU_STATE, 0xffffffff);
3777 tw32(cpu_base + CPU_MODE, CPU_MODE_HALT);
3778 tw32_f(cpu_base + CPU_PC, pc);
3779 udelay(1000);
3780 }
3781
3782 return (i == iters) ? -EBUSY : 0;
3783 }
3784
3785 /* tp->lock is held. */
3786 static int tg3_load_5701_a0_firmware_fix(struct tg3 *tp)
3787 {
3788 const struct tg3_firmware_hdr *fw_hdr;
3789 int err;
3790
3791 fw_hdr = (struct tg3_firmware_hdr *)tp->fw->data;
3792
3793 /* Firmware blob starts with version numbers, followed by
3794 start address and length. We are setting complete length.
3795 length = end_address_of_bss - start_address_of_text.
3796 Remainder is the blob to be loaded contiguously
3797 from start address. */
3798
3799 err = tg3_load_firmware_cpu(tp, RX_CPU_BASE,
3800 RX_CPU_SCRATCH_BASE, RX_CPU_SCRATCH_SIZE,
3801 fw_hdr);
3802 if (err)
3803 return err;
3804
3805 err = tg3_load_firmware_cpu(tp, TX_CPU_BASE,
3806 TX_CPU_SCRATCH_BASE, TX_CPU_SCRATCH_SIZE,
3807 fw_hdr);
3808 if (err)
3809 return err;
3810
3811 /* Now startup only the RX cpu. */
3812 err = tg3_pause_cpu_and_set_pc(tp, RX_CPU_BASE,
3813 be32_to_cpu(fw_hdr->base_addr));
3814 if (err) {
3815 netdev_err(tp->dev, "%s fails to set RX CPU PC, is %08x "
3816 "should be %08x\n", __func__,
3817 tr32(RX_CPU_BASE + CPU_PC),
3818 be32_to_cpu(fw_hdr->base_addr));
3819 return -ENODEV;
3820 }
3821
3822 tg3_rxcpu_resume(tp);
3823
3824 return 0;
3825 }
3826
3827 static int tg3_validate_rxcpu_state(struct tg3 *tp)
3828 {
3829 const int iters = 1000;
3830 int i;
3831 u32 val;
3832
3833 /* Wait for boot code to complete initialization and enter service
3834 * loop. It is then safe to download service patches
3835 */
3836 for (i = 0; i < iters; i++) {
3837 if (tr32(RX_CPU_HWBKPT) == TG3_SBROM_IN_SERVICE_LOOP)
3838 break;
3839
3840 udelay(10);
3841 }
3842
3843 if (i == iters) {
3844 netdev_err(tp->dev, "Boot code not ready for service patches\n");
3845 return -EBUSY;
3846 }
3847
3848 val = tg3_read_indirect_reg32(tp, TG3_57766_FW_HANDSHAKE);
3849 if (val & 0xff) {
3850 netdev_warn(tp->dev,
3851 "Other patches exist. Not downloading EEE patch\n");
3852 return -EEXIST;
3853 }
3854
3855 return 0;
3856 }
3857
3858 /* tp->lock is held. */
3859 static void tg3_load_57766_firmware(struct tg3 *tp)
3860 {
3861 struct tg3_firmware_hdr *fw_hdr;
3862
3863 if (!tg3_flag(tp, NO_NVRAM))
3864 return;
3865
3866 if (tg3_validate_rxcpu_state(tp))
3867 return;
3868
3869 if (!tp->fw)
3870 return;
3871
3872 /* This firmware blob has a different format than older firmware
3873 * releases as given below. The main difference is we have fragmented
3874 * data to be written to non-contiguous locations.
3875 *
3876 * In the beginning we have a firmware header identical to other
3877 * firmware which consists of version, base addr and length. The length
3878 * here is unused and set to 0xffffffff.
3879 *
3880 * This is followed by a series of firmware fragments which are
3881 * individually identical to previous firmware. i.e. they have the
3882 * firmware header and followed by data for that fragment. The version
3883 * field of the individual fragment header is unused.
3884 */
3885
3886 fw_hdr = (struct tg3_firmware_hdr *)tp->fw->data;
3887 if (be32_to_cpu(fw_hdr->base_addr) != TG3_57766_FW_BASE_ADDR)
3888 return;
3889
3890 if (tg3_rxcpu_pause(tp))
3891 return;
3892
3893 /* tg3_load_firmware_cpu() will always succeed for the 57766 */
3894 tg3_load_firmware_cpu(tp, 0, TG3_57766_FW_BASE_ADDR, 0, fw_hdr);
3895
3896 tg3_rxcpu_resume(tp);
3897 }
3898
3899 /* tp->lock is held. */
3900 static int tg3_load_tso_firmware(struct tg3 *tp)
3901 {
3902 const struct tg3_firmware_hdr *fw_hdr;
3903 unsigned long cpu_base, cpu_scratch_base, cpu_scratch_size;
3904 int err;
3905
3906 if (!tg3_flag(tp, FW_TSO))
3907 return 0;
3908
3909 fw_hdr = (struct tg3_firmware_hdr *)tp->fw->data;
3910
3911 /* Firmware blob starts with version numbers, followed by
3912 start address and length. We are setting complete length.
3913 length = end_address_of_bss - start_address_of_text.
3914 Remainder is the blob to be loaded contiguously
3915 from start address. */
3916
3917 cpu_scratch_size = tp->fw_len;
3918
3919 if (tg3_asic_rev(tp) == ASIC_REV_5705) {
3920 cpu_base = RX_CPU_BASE;
3921 cpu_scratch_base = NIC_SRAM_MBUF_POOL_BASE5705;
3922 } else {
3923 cpu_base = TX_CPU_BASE;
3924 cpu_scratch_base = TX_CPU_SCRATCH_BASE;
3925 cpu_scratch_size = TX_CPU_SCRATCH_SIZE;
3926 }
3927
3928 err = tg3_load_firmware_cpu(tp, cpu_base,
3929 cpu_scratch_base, cpu_scratch_size,
3930 fw_hdr);
3931 if (err)
3932 return err;
3933
3934 /* Now startup the cpu. */
3935 err = tg3_pause_cpu_and_set_pc(tp, cpu_base,
3936 be32_to_cpu(fw_hdr->base_addr));
3937 if (err) {
3938 netdev_err(tp->dev,
3939 "%s fails to set CPU PC, is %08x should be %08x\n",
3940 __func__, tr32(cpu_base + CPU_PC),
3941 be32_to_cpu(fw_hdr->base_addr));
3942 return -ENODEV;
3943 }
3944
3945 tg3_resume_cpu(tp, cpu_base);
3946 return 0;
3947 }
3948
3949 /* tp->lock is held. */
3950 static void __tg3_set_one_mac_addr(struct tg3 *tp, u8 *mac_addr, int index)
3951 {
3952 u32 addr_high, addr_low;
3953
3954 addr_high = ((mac_addr[0] << 8) | mac_addr[1]);
3955 addr_low = ((mac_addr[2] << 24) | (mac_addr[3] << 16) |
3956 (mac_addr[4] << 8) | mac_addr[5]);
3957
3958 if (index < 4) {
3959 tw32(MAC_ADDR_0_HIGH + (index * 8), addr_high);
3960 tw32(MAC_ADDR_0_LOW + (index * 8), addr_low);
3961 } else {
3962 index -= 4;
3963 tw32(MAC_EXTADDR_0_HIGH + (index * 8), addr_high);
3964 tw32(MAC_EXTADDR_0_LOW + (index * 8), addr_low);
3965 }
3966 }
3967
3968 /* tp->lock is held. */
3969 static void __tg3_set_mac_addr(struct tg3 *tp, bool skip_mac_1)
3970 {
3971 u32 addr_high;
3972 int i;
3973
3974 for (i = 0; i < 4; i++) {
3975 if (i == 1 && skip_mac_1)
3976 continue;
3977 __tg3_set_one_mac_addr(tp, tp->dev->dev_addr, i);
3978 }
3979
3980 if (tg3_asic_rev(tp) == ASIC_REV_5703 ||
3981 tg3_asic_rev(tp) == ASIC_REV_5704) {
3982 for (i = 4; i < 16; i++)
3983 __tg3_set_one_mac_addr(tp, tp->dev->dev_addr, i);
3984 }
3985
3986 addr_high = (tp->dev->dev_addr[0] +
3987 tp->dev->dev_addr[1] +
3988 tp->dev->dev_addr[2] +
3989 tp->dev->dev_addr[3] +
3990 tp->dev->dev_addr[4] +
3991 tp->dev->dev_addr[5]) &
3992 TX_BACKOFF_SEED_MASK;
3993 tw32(MAC_TX_BACKOFF_SEED, addr_high);
3994 }
3995
3996 static void tg3_enable_register_access(struct tg3 *tp)
3997 {
3998 /*
3999 * Make sure register accesses (indirect or otherwise) will function
4000 * correctly.
4001 */
4002 pci_write_config_dword(tp->pdev,
4003 TG3PCI_MISC_HOST_CTRL, tp->misc_host_ctrl);
4004 }
4005
4006 static int tg3_power_up(struct tg3 *tp)
4007 {
4008 int err;
4009
4010 tg3_enable_register_access(tp);
4011
4012 err = pci_set_power_state(tp->pdev, PCI_D0);
4013 if (!err) {
4014 /* Switch out of Vaux if it is a NIC */
4015 tg3_pwrsrc_switch_to_vmain(tp);
4016 } else {
4017 netdev_err(tp->dev, "Transition to D0 failed\n");
4018 }
4019
4020 return err;
4021 }
4022
4023 static int tg3_setup_phy(struct tg3 *, bool);
4024
4025 static int tg3_power_down_prepare(struct tg3 *tp)
4026 {
4027 u32 misc_host_ctrl;
4028 bool device_should_wake, do_low_power;
4029
4030 tg3_enable_register_access(tp);
4031
4032 /* Restore the CLKREQ setting. */
4033 if (tg3_flag(tp, CLKREQ_BUG))
4034 pcie_capability_set_word(tp->pdev, PCI_EXP_LNKCTL,
4035 PCI_EXP_LNKCTL_CLKREQ_EN);
4036
4037 misc_host_ctrl = tr32(TG3PCI_MISC_HOST_CTRL);
4038 tw32(TG3PCI_MISC_HOST_CTRL,
4039 misc_host_ctrl | MISC_HOST_CTRL_MASK_PCI_INT);
4040
4041 device_should_wake = device_may_wakeup(&tp->pdev->dev) &&
4042 tg3_flag(tp, WOL_ENABLE);
4043
4044 if (tg3_flag(tp, USE_PHYLIB)) {
4045 do_low_power = false;
4046 if ((tp->phy_flags & TG3_PHYFLG_IS_CONNECTED) &&
4047 !(tp->phy_flags & TG3_PHYFLG_IS_LOW_POWER)) {
4048 struct phy_device *phydev;
4049 u32 phyid, advertising;
4050
4051 phydev = tp->mdio_bus->phy_map[tp->phy_addr];
4052
4053 tp->phy_flags |= TG3_PHYFLG_IS_LOW_POWER;
4054
4055 tp->link_config.speed = phydev->speed;
4056 tp->link_config.duplex = phydev->duplex;
4057 tp->link_config.autoneg = phydev->autoneg;
4058 tp->link_config.advertising = phydev->advertising;
4059
4060 advertising = ADVERTISED_TP |
4061 ADVERTISED_Pause |
4062 ADVERTISED_Autoneg |
4063 ADVERTISED_10baseT_Half;
4064
4065 if (tg3_flag(tp, ENABLE_ASF) || device_should_wake) {
4066 if (tg3_flag(tp, WOL_SPEED_100MB))
4067 advertising |=
4068 ADVERTISED_100baseT_Half |
4069 ADVERTISED_100baseT_Full |
4070 ADVERTISED_10baseT_Full;
4071 else
4072 advertising |= ADVERTISED_10baseT_Full;
4073 }
4074
4075 phydev->advertising = advertising;
4076
4077 phy_start_aneg(phydev);
4078
4079 phyid = phydev->drv->phy_id & phydev->drv->phy_id_mask;
4080 if (phyid != PHY_ID_BCMAC131) {
4081 phyid &= PHY_BCM_OUI_MASK;
4082 if (phyid == PHY_BCM_OUI_1 ||
4083 phyid == PHY_BCM_OUI_2 ||
4084 phyid == PHY_BCM_OUI_3)
4085 do_low_power = true;
4086 }
4087 }
4088 } else {
4089 do_low_power = true;
4090
4091 if (!(tp->phy_flags & TG3_PHYFLG_IS_LOW_POWER))
4092 tp->phy_flags |= TG3_PHYFLG_IS_LOW_POWER;
4093
4094 if (!(tp->phy_flags & TG3_PHYFLG_ANY_SERDES))
4095 tg3_setup_phy(tp, false);
4096 }
4097
4098 if (tg3_asic_rev(tp) == ASIC_REV_5906) {
4099 u32 val;
4100
4101 val = tr32(GRC_VCPU_EXT_CTRL);
4102 tw32(GRC_VCPU_EXT_CTRL, val | GRC_VCPU_EXT_CTRL_DISABLE_WOL);
4103 } else if (!tg3_flag(tp, ENABLE_ASF)) {
4104 int i;
4105 u32 val;
4106
4107 for (i = 0; i < 200; i++) {
4108 tg3_read_mem(tp, NIC_SRAM_FW_ASF_STATUS_MBOX, &val);
4109 if (val == ~NIC_SRAM_FIRMWARE_MBOX_MAGIC1)
4110 break;
4111 msleep(1);
4112 }
4113 }
4114 if (tg3_flag(tp, WOL_CAP))
4115 tg3_write_mem(tp, NIC_SRAM_WOL_MBOX, WOL_SIGNATURE |
4116 WOL_DRV_STATE_SHUTDOWN |
4117 WOL_DRV_WOL |
4118 WOL_SET_MAGIC_PKT);
4119
4120 if (device_should_wake) {
4121 u32 mac_mode;
4122
4123 if (!(tp->phy_flags & TG3_PHYFLG_PHY_SERDES)) {
4124 if (do_low_power &&
4125 !(tp->phy_flags & TG3_PHYFLG_IS_FET)) {
4126 tg3_phy_auxctl_write(tp,
4127 MII_TG3_AUXCTL_SHDWSEL_PWRCTL,
4128 MII_TG3_AUXCTL_PCTL_WOL_EN |
4129 MII_TG3_AUXCTL_PCTL_100TX_LPWR |
4130 MII_TG3_AUXCTL_PCTL_CL_AB_TXDAC);
4131 udelay(40);
4132 }
4133
4134 if (tp->phy_flags & TG3_PHYFLG_MII_SERDES)
4135 mac_mode = MAC_MODE_PORT_MODE_GMII;
4136 else if (tp->phy_flags &
4137 TG3_PHYFLG_KEEP_LINK_ON_PWRDN) {
4138 if (tp->link_config.active_speed == SPEED_1000)
4139 mac_mode = MAC_MODE_PORT_MODE_GMII;
4140 else
4141 mac_mode = MAC_MODE_PORT_MODE_MII;
4142 } else
4143 mac_mode = MAC_MODE_PORT_MODE_MII;
4144
4145 mac_mode |= tp->mac_mode & MAC_MODE_LINK_POLARITY;
4146 if (tg3_asic_rev(tp) == ASIC_REV_5700) {
4147 u32 speed = tg3_flag(tp, WOL_SPEED_100MB) ?
4148 SPEED_100 : SPEED_10;
4149 if (tg3_5700_link_polarity(tp, speed))
4150 mac_mode |= MAC_MODE_LINK_POLARITY;
4151 else
4152 mac_mode &= ~MAC_MODE_LINK_POLARITY;
4153 }
4154 } else {
4155 mac_mode = MAC_MODE_PORT_MODE_TBI;
4156 }
4157
4158 if (!tg3_flag(tp, 5750_PLUS))
4159 tw32(MAC_LED_CTRL, tp->led_ctrl);
4160
4161 mac_mode |= MAC_MODE_MAGIC_PKT_ENABLE;
4162 if ((tg3_flag(tp, 5705_PLUS) && !tg3_flag(tp, 5780_CLASS)) &&
4163 (tg3_flag(tp, ENABLE_ASF) || tg3_flag(tp, ENABLE_APE)))
4164 mac_mode |= MAC_MODE_KEEP_FRAME_IN_WOL;
4165
4166 if (tg3_flag(tp, ENABLE_APE))
4167 mac_mode |= MAC_MODE_APE_TX_EN |
4168 MAC_MODE_APE_RX_EN |
4169 MAC_MODE_TDE_ENABLE;
4170
4171 tw32_f(MAC_MODE, mac_mode);
4172 udelay(100);
4173
4174 tw32_f(MAC_RX_MODE, RX_MODE_ENABLE);
4175 udelay(10);
4176 }
4177
4178 if (!tg3_flag(tp, WOL_SPEED_100MB) &&
4179 (tg3_asic_rev(tp) == ASIC_REV_5700 ||
4180 tg3_asic_rev(tp) == ASIC_REV_5701)) {
4181 u32 base_val;
4182
4183 base_val = tp->pci_clock_ctrl;
4184 base_val |= (CLOCK_CTRL_RXCLK_DISABLE |
4185 CLOCK_CTRL_TXCLK_DISABLE);
4186
4187 tw32_wait_f(TG3PCI_CLOCK_CTRL, base_val | CLOCK_CTRL_ALTCLK |
4188 CLOCK_CTRL_PWRDOWN_PLL133, 40);
4189 } else if (tg3_flag(tp, 5780_CLASS) ||
4190 tg3_flag(tp, CPMU_PRESENT) ||
4191 tg3_asic_rev(tp) == ASIC_REV_5906) {
4192 /* do nothing */
4193 } else if (!(tg3_flag(tp, 5750_PLUS) && tg3_flag(tp, ENABLE_ASF))) {
4194 u32 newbits1, newbits2;
4195
4196 if (tg3_asic_rev(tp) == ASIC_REV_5700 ||
4197 tg3_asic_rev(tp) == ASIC_REV_5701) {
4198 newbits1 = (CLOCK_CTRL_RXCLK_DISABLE |
4199 CLOCK_CTRL_TXCLK_DISABLE |
4200 CLOCK_CTRL_ALTCLK);
4201 newbits2 = newbits1 | CLOCK_CTRL_44MHZ_CORE;
4202 } else if (tg3_flag(tp, 5705_PLUS)) {
4203 newbits1 = CLOCK_CTRL_625_CORE;
4204 newbits2 = newbits1 | CLOCK_CTRL_ALTCLK;
4205 } else {
4206 newbits1 = CLOCK_CTRL_ALTCLK;
4207 newbits2 = newbits1 | CLOCK_CTRL_44MHZ_CORE;
4208 }
4209
4210 tw32_wait_f(TG3PCI_CLOCK_CTRL, tp->pci_clock_ctrl | newbits1,
4211 40);
4212
4213 tw32_wait_f(TG3PCI_CLOCK_CTRL, tp->pci_clock_ctrl | newbits2,
4214 40);
4215
4216 if (!tg3_flag(tp, 5705_PLUS)) {
4217 u32 newbits3;
4218
4219 if (tg3_asic_rev(tp) == ASIC_REV_5700 ||
4220 tg3_asic_rev(tp) == ASIC_REV_5701) {
4221 newbits3 = (CLOCK_CTRL_RXCLK_DISABLE |
4222 CLOCK_CTRL_TXCLK_DISABLE |
4223 CLOCK_CTRL_44MHZ_CORE);
4224 } else {
4225 newbits3 = CLOCK_CTRL_44MHZ_CORE;
4226 }
4227
4228 tw32_wait_f(TG3PCI_CLOCK_CTRL,
4229 tp->pci_clock_ctrl | newbits3, 40);
4230 }
4231 }
4232
4233 if (!(device_should_wake) && !tg3_flag(tp, ENABLE_ASF))
4234 tg3_power_down_phy(tp, do_low_power);
4235
4236 tg3_frob_aux_power(tp, true);
4237
4238 /* Workaround for unstable PLL clock */
4239 if ((!tg3_flag(tp, IS_SSB_CORE)) &&
4240 ((tg3_chip_rev(tp) == CHIPREV_5750_AX) ||
4241 (tg3_chip_rev(tp) == CHIPREV_5750_BX))) {
4242 u32 val = tr32(0x7d00);
4243
4244 val &= ~((1 << 16) | (1 << 4) | (1 << 2) | (1 << 1) | 1);
4245 tw32(0x7d00, val);
4246 if (!tg3_flag(tp, ENABLE_ASF)) {
4247 int err;
4248
4249 err = tg3_nvram_lock(tp);
4250 tg3_halt_cpu(tp, RX_CPU_BASE);
4251 if (!err)
4252 tg3_nvram_unlock(tp);
4253 }
4254 }
4255
4256 tg3_write_sig_post_reset(tp, RESET_KIND_SHUTDOWN);
4257
4258 tg3_ape_driver_state_change(tp, RESET_KIND_SHUTDOWN);
4259
4260 return 0;
4261 }
4262
4263 static void tg3_power_down(struct tg3 *tp)
4264 {
4265 pci_wake_from_d3(tp->pdev, tg3_flag(tp, WOL_ENABLE));
4266 pci_set_power_state(tp->pdev, PCI_D3hot);
4267 }
4268
4269 static void tg3_aux_stat_to_speed_duplex(struct tg3 *tp, u32 val, u16 *speed, u8 *duplex)
4270 {
4271 switch (val & MII_TG3_AUX_STAT_SPDMASK) {
4272 case MII_TG3_AUX_STAT_10HALF:
4273 *speed = SPEED_10;
4274 *duplex = DUPLEX_HALF;
4275 break;
4276
4277 case MII_TG3_AUX_STAT_10FULL:
4278 *speed = SPEED_10;
4279 *duplex = DUPLEX_FULL;
4280 break;
4281
4282 case MII_TG3_AUX_STAT_100HALF:
4283 *speed = SPEED_100;
4284 *duplex = DUPLEX_HALF;
4285 break;
4286
4287 case MII_TG3_AUX_STAT_100FULL:
4288 *speed = SPEED_100;
4289 *duplex = DUPLEX_FULL;
4290 break;
4291
4292 case MII_TG3_AUX_STAT_1000HALF:
4293 *speed = SPEED_1000;
4294 *duplex = DUPLEX_HALF;
4295 break;
4296
4297 case MII_TG3_AUX_STAT_1000FULL:
4298 *speed = SPEED_1000;
4299 *duplex = DUPLEX_FULL;
4300 break;
4301
4302 default:
4303 if (tp->phy_flags & TG3_PHYFLG_IS_FET) {
4304 *speed = (val & MII_TG3_AUX_STAT_100) ? SPEED_100 :
4305 SPEED_10;
4306 *duplex = (val & MII_TG3_AUX_STAT_FULL) ? DUPLEX_FULL :
4307 DUPLEX_HALF;
4308 break;
4309 }
4310 *speed = SPEED_UNKNOWN;
4311 *duplex = DUPLEX_UNKNOWN;
4312 break;
4313 }
4314 }
4315
4316 static int tg3_phy_autoneg_cfg(struct tg3 *tp, u32 advertise, u32 flowctrl)
4317 {
4318 int err = 0;
4319 u32 val, new_adv;
4320
4321 new_adv = ADVERTISE_CSMA;
4322 new_adv |= ethtool_adv_to_mii_adv_t(advertise) & ADVERTISE_ALL;
4323 new_adv |= mii_advertise_flowctrl(flowctrl);
4324
4325 err = tg3_writephy(tp, MII_ADVERTISE, new_adv);
4326 if (err)
4327 goto done;
4328
4329 if (!(tp->phy_flags & TG3_PHYFLG_10_100_ONLY)) {
4330 new_adv = ethtool_adv_to_mii_ctrl1000_t(advertise);
4331
4332 if (tg3_chip_rev_id(tp) == CHIPREV_ID_5701_A0 ||
4333 tg3_chip_rev_id(tp) == CHIPREV_ID_5701_B0)
4334 new_adv |= CTL1000_AS_MASTER | CTL1000_ENABLE_MASTER;
4335
4336 err = tg3_writephy(tp, MII_CTRL1000, new_adv);
4337 if (err)
4338 goto done;
4339 }
4340
4341 if (!(tp->phy_flags & TG3_PHYFLG_EEE_CAP))
4342 goto done;
4343
4344 tw32(TG3_CPMU_EEE_MODE,
4345 tr32(TG3_CPMU_EEE_MODE) & ~TG3_CPMU_EEEMD_LPI_ENABLE);
4346
4347 err = tg3_phy_toggle_auxctl_smdsp(tp, true);
4348 if (!err) {
4349 u32 err2;
4350
4351 val = 0;
4352 /* Advertise 100-BaseTX EEE ability */
4353 if (advertise & ADVERTISED_100baseT_Full)
4354 val |= MDIO_AN_EEE_ADV_100TX;
4355 /* Advertise 1000-BaseT EEE ability */
4356 if (advertise & ADVERTISED_1000baseT_Full)
4357 val |= MDIO_AN_EEE_ADV_1000T;
4358
4359 if (!tp->eee.eee_enabled) {
4360 val = 0;
4361 tp->eee.advertised = 0;
4362 } else {
4363 tp->eee.advertised = advertise &
4364 (ADVERTISED_100baseT_Full |
4365 ADVERTISED_1000baseT_Full);
4366 }
4367
4368 err = tg3_phy_cl45_write(tp, MDIO_MMD_AN, MDIO_AN_EEE_ADV, val);
4369 if (err)
4370 val = 0;
4371
4372 switch (tg3_asic_rev(tp)) {
4373 case ASIC_REV_5717:
4374 case ASIC_REV_57765:
4375 case ASIC_REV_57766:
4376 case ASIC_REV_5719:
4377 /* If we advertised any eee advertisements above... */
4378 if (val)
4379 val = MII_TG3_DSP_TAP26_ALNOKO |
4380 MII_TG3_DSP_TAP26_RMRXSTO |
4381 MII_TG3_DSP_TAP26_OPCSINPT;
4382 tg3_phydsp_write(tp, MII_TG3_DSP_TAP26, val);
4383 /* Fall through */
4384 case ASIC_REV_5720:
4385 case ASIC_REV_5762:
4386 if (!tg3_phydsp_read(tp, MII_TG3_DSP_CH34TP2, &val))
4387 tg3_phydsp_write(tp, MII_TG3_DSP_CH34TP2, val |
4388 MII_TG3_DSP_CH34TP2_HIBW01);
4389 }
4390
4391 err2 = tg3_phy_toggle_auxctl_smdsp(tp, false);
4392 if (!err)
4393 err = err2;
4394 }
4395
4396 done:
4397 return err;
4398 }
4399
4400 static void tg3_phy_copper_begin(struct tg3 *tp)
4401 {
4402 if (tp->link_config.autoneg == AUTONEG_ENABLE ||
4403 (tp->phy_flags & TG3_PHYFLG_IS_LOW_POWER)) {
4404 u32 adv, fc;
4405
4406 if ((tp->phy_flags & TG3_PHYFLG_IS_LOW_POWER) &&
4407 !(tp->phy_flags & TG3_PHYFLG_KEEP_LINK_ON_PWRDN)) {
4408 adv = ADVERTISED_10baseT_Half |
4409 ADVERTISED_10baseT_Full;
4410 if (tg3_flag(tp, WOL_SPEED_100MB))
4411 adv |= ADVERTISED_100baseT_Half |
4412 ADVERTISED_100baseT_Full;
4413 if (tp->phy_flags & TG3_PHYFLG_1G_ON_VAUX_OK) {
4414 if (!(tp->phy_flags &
4415 TG3_PHYFLG_DISABLE_1G_HD_ADV))
4416 adv |= ADVERTISED_1000baseT_Half;
4417 adv |= ADVERTISED_1000baseT_Full;
4418 }
4419
4420 fc = FLOW_CTRL_TX | FLOW_CTRL_RX;
4421 } else {
4422 adv = tp->link_config.advertising;
4423 if (tp->phy_flags & TG3_PHYFLG_10_100_ONLY)
4424 adv &= ~(ADVERTISED_1000baseT_Half |
4425 ADVERTISED_1000baseT_Full);
4426
4427 fc = tp->link_config.flowctrl;
4428 }
4429
4430 tg3_phy_autoneg_cfg(tp, adv, fc);
4431
4432 if ((tp->phy_flags & TG3_PHYFLG_IS_LOW_POWER) &&
4433 (tp->phy_flags & TG3_PHYFLG_KEEP_LINK_ON_PWRDN)) {
4434 /* Normally during power down we want to autonegotiate
4435 * the lowest possible speed for WOL. However, to avoid
4436 * link flap, we leave it untouched.
4437 */
4438 return;
4439 }
4440
4441 tg3_writephy(tp, MII_BMCR,
4442 BMCR_ANENABLE | BMCR_ANRESTART);
4443 } else {
4444 int i;
4445 u32 bmcr, orig_bmcr;
4446
4447 tp->link_config.active_speed = tp->link_config.speed;
4448 tp->link_config.active_duplex = tp->link_config.duplex;
4449
4450 if (tg3_asic_rev(tp) == ASIC_REV_5714) {
4451 /* With autoneg disabled, 5715 only links up when the
4452 * advertisement register has the configured speed
4453 * enabled.
4454 */
4455 tg3_writephy(tp, MII_ADVERTISE, ADVERTISE_ALL);
4456 }
4457
4458 bmcr = 0;
4459 switch (tp->link_config.speed) {
4460 default:
4461 case SPEED_10:
4462 break;
4463
4464 case SPEED_100:
4465 bmcr |= BMCR_SPEED100;
4466 break;
4467
4468 case SPEED_1000:
4469 bmcr |= BMCR_SPEED1000;
4470 break;
4471 }
4472
4473 if (tp->link_config.duplex == DUPLEX_FULL)
4474 bmcr |= BMCR_FULLDPLX;
4475
4476 if (!tg3_readphy(tp, MII_BMCR, &orig_bmcr) &&
4477 (bmcr != orig_bmcr)) {
4478 tg3_writephy(tp, MII_BMCR, BMCR_LOOPBACK);
4479 for (i = 0; i < 1500; i++) {
4480 u32 tmp;
4481
4482 udelay(10);
4483 if (tg3_readphy(tp, MII_BMSR, &tmp) ||
4484 tg3_readphy(tp, MII_BMSR, &tmp))
4485 continue;
4486 if (!(tmp & BMSR_LSTATUS)) {
4487 udelay(40);
4488 break;
4489 }
4490 }
4491 tg3_writephy(tp, MII_BMCR, bmcr);
4492 udelay(40);
4493 }
4494 }
4495 }
4496
4497 static int tg3_phy_pull_config(struct tg3 *tp)
4498 {
4499 int err;
4500 u32 val;
4501
4502 err = tg3_readphy(tp, MII_BMCR, &val);
4503 if (err)
4504 goto done;
4505
4506 if (!(val & BMCR_ANENABLE)) {
4507 tp->link_config.autoneg = AUTONEG_DISABLE;
4508 tp->link_config.advertising = 0;
4509 tg3_flag_clear(tp, PAUSE_AUTONEG);
4510
4511 err = -EIO;
4512
4513 switch (val & (BMCR_SPEED1000 | BMCR_SPEED100)) {
4514 case 0:
4515 if (tp->phy_flags & TG3_PHYFLG_ANY_SERDES)
4516 goto done;
4517
4518 tp->link_config.speed = SPEED_10;
4519 break;
4520 case BMCR_SPEED100:
4521 if (tp->phy_flags & TG3_PHYFLG_ANY_SERDES)
4522 goto done;
4523
4524 tp->link_config.speed = SPEED_100;
4525 break;
4526 case BMCR_SPEED1000:
4527 if (!(tp->phy_flags & TG3_PHYFLG_10_100_ONLY)) {
4528 tp->link_config.speed = SPEED_1000;
4529 break;
4530 }
4531 /* Fall through */
4532 default:
4533 goto done;
4534 }
4535
4536 if (val & BMCR_FULLDPLX)
4537 tp->link_config.duplex = DUPLEX_FULL;
4538 else
4539 tp->link_config.duplex = DUPLEX_HALF;
4540
4541 tp->link_config.flowctrl = FLOW_CTRL_RX | FLOW_CTRL_TX;
4542
4543 err = 0;
4544 goto done;
4545 }
4546
4547 tp->link_config.autoneg = AUTONEG_ENABLE;
4548 tp->link_config.advertising = ADVERTISED_Autoneg;
4549 tg3_flag_set(tp, PAUSE_AUTONEG);
4550
4551 if (!(tp->phy_flags & TG3_PHYFLG_ANY_SERDES)) {
4552 u32 adv;
4553
4554 err = tg3_readphy(tp, MII_ADVERTISE, &val);
4555 if (err)
4556 goto done;
4557
4558 adv = mii_adv_to_ethtool_adv_t(val & ADVERTISE_ALL);
4559 tp->link_config.advertising |= adv | ADVERTISED_TP;
4560
4561 tp->link_config.flowctrl = tg3_decode_flowctrl_1000T(val);
4562 } else {
4563 tp->link_config.advertising |= ADVERTISED_FIBRE;
4564 }
4565
4566 if (!(tp->phy_flags & TG3_PHYFLG_10_100_ONLY)) {
4567 u32 adv;
4568
4569 if (!(tp->phy_flags & TG3_PHYFLG_ANY_SERDES)) {
4570 err = tg3_readphy(tp, MII_CTRL1000, &val);
4571 if (err)
4572 goto done;
4573
4574 adv = mii_ctrl1000_to_ethtool_adv_t(val);
4575 } else {
4576 err = tg3_readphy(tp, MII_ADVERTISE, &val);
4577 if (err)
4578 goto done;
4579
4580 adv = tg3_decode_flowctrl_1000X(val);
4581 tp->link_config.flowctrl = adv;
4582
4583 val &= (ADVERTISE_1000XHALF | ADVERTISE_1000XFULL);
4584 adv = mii_adv_to_ethtool_adv_x(val);
4585 }
4586
4587 tp->link_config.advertising |= adv;
4588 }
4589
4590 done:
4591 return err;
4592 }
4593
4594 static int tg3_init_5401phy_dsp(struct tg3 *tp)
4595 {
4596 int err;
4597
4598 /* Turn off tap power management. */
4599 /* Set Extended packet length bit */
4600 err = tg3_phy_auxctl_write(tp, MII_TG3_AUXCTL_SHDWSEL_AUXCTL, 0x4c20);
4601
4602 err |= tg3_phydsp_write(tp, 0x0012, 0x1804);
4603 err |= tg3_phydsp_write(tp, 0x0013, 0x1204);
4604 err |= tg3_phydsp_write(tp, 0x8006, 0x0132);
4605 err |= tg3_phydsp_write(tp, 0x8006, 0x0232);
4606 err |= tg3_phydsp_write(tp, 0x201f, 0x0a20);
4607
4608 udelay(40);
4609
4610 return err;
4611 }
4612
4613 static bool tg3_phy_eee_config_ok(struct tg3 *tp)
4614 {
4615 struct ethtool_eee eee;
4616
4617 if (!(tp->phy_flags & TG3_PHYFLG_EEE_CAP))
4618 return true;
4619
4620 tg3_eee_pull_config(tp, &eee);
4621
4622 if (tp->eee.eee_enabled) {
4623 if (tp->eee.advertised != eee.advertised ||
4624 tp->eee.tx_lpi_timer != eee.tx_lpi_timer ||
4625 tp->eee.tx_lpi_enabled != eee.tx_lpi_enabled)
4626 return false;
4627 } else {
4628 /* EEE is disabled but we're advertising */
4629 if (eee.advertised)
4630 return false;
4631 }
4632
4633 return true;
4634 }
4635
4636 static bool tg3_phy_copper_an_config_ok(struct tg3 *tp, u32 *lcladv)
4637 {
4638 u32 advmsk, tgtadv, advertising;
4639
4640 advertising = tp->link_config.advertising;
4641 tgtadv = ethtool_adv_to_mii_adv_t(advertising) & ADVERTISE_ALL;
4642
4643 advmsk = ADVERTISE_ALL;
4644 if (tp->link_config.active_duplex == DUPLEX_FULL) {
4645 tgtadv |= mii_advertise_flowctrl(tp->link_config.flowctrl);
4646 advmsk |= ADVERTISE_PAUSE_CAP | ADVERTISE_PAUSE_ASYM;
4647 }
4648
4649 if (tg3_readphy(tp, MII_ADVERTISE, lcladv))
4650 return false;
4651
4652 if ((*lcladv & advmsk) != tgtadv)
4653 return false;
4654
4655 if (!(tp->phy_flags & TG3_PHYFLG_10_100_ONLY)) {
4656 u32 tg3_ctrl;
4657
4658 tgtadv = ethtool_adv_to_mii_ctrl1000_t(advertising);
4659
4660 if (tg3_readphy(tp, MII_CTRL1000, &tg3_ctrl))
4661 return false;
4662
4663 if (tgtadv &&
4664 (tg3_chip_rev_id(tp) == CHIPREV_ID_5701_A0 ||
4665 tg3_chip_rev_id(tp) == CHIPREV_ID_5701_B0)) {
4666 tgtadv |= CTL1000_AS_MASTER | CTL1000_ENABLE_MASTER;
4667 tg3_ctrl &= (ADVERTISE_1000HALF | ADVERTISE_1000FULL |
4668 CTL1000_AS_MASTER | CTL1000_ENABLE_MASTER);
4669 } else {
4670 tg3_ctrl &= (ADVERTISE_1000HALF | ADVERTISE_1000FULL);
4671 }
4672
4673 if (tg3_ctrl != tgtadv)
4674 return false;
4675 }
4676
4677 return true;
4678 }
4679
4680 static bool tg3_phy_copper_fetch_rmtadv(struct tg3 *tp, u32 *rmtadv)
4681 {
4682 u32 lpeth = 0;
4683
4684 if (!(tp->phy_flags & TG3_PHYFLG_10_100_ONLY)) {
4685 u32 val;
4686
4687 if (tg3_readphy(tp, MII_STAT1000, &val))
4688 return false;
4689
4690 lpeth = mii_stat1000_to_ethtool_lpa_t(val);
4691 }
4692
4693 if (tg3_readphy(tp, MII_LPA, rmtadv))
4694 return false;
4695
4696 lpeth |= mii_lpa_to_ethtool_lpa_t(*rmtadv);
4697 tp->link_config.rmt_adv = lpeth;
4698
4699 return true;
4700 }
4701
4702 static bool tg3_test_and_report_link_chg(struct tg3 *tp, bool curr_link_up)
4703 {
4704 if (curr_link_up != tp->link_up) {
4705 if (curr_link_up) {
4706 netif_carrier_on(tp->dev);
4707 } else {
4708 netif_carrier_off(tp->dev);
4709 if (tp->phy_flags & TG3_PHYFLG_MII_SERDES)
4710 tp->phy_flags &= ~TG3_PHYFLG_PARALLEL_DETECT;
4711 }
4712
4713 tg3_link_report(tp);
4714 return true;
4715 }
4716
4717 return false;
4718 }
4719
4720 static void tg3_clear_mac_status(struct tg3 *tp)
4721 {
4722 tw32(MAC_EVENT, 0);
4723
4724 tw32_f(MAC_STATUS,
4725 MAC_STATUS_SYNC_CHANGED |
4726 MAC_STATUS_CFG_CHANGED |
4727 MAC_STATUS_MI_COMPLETION |
4728 MAC_STATUS_LNKSTATE_CHANGED);
4729 udelay(40);
4730 }
4731
4732 static void tg3_setup_eee(struct tg3 *tp)
4733 {
4734 u32 val;
4735
4736 val = TG3_CPMU_EEE_LNKIDL_PCIE_NL0 |
4737 TG3_CPMU_EEE_LNKIDL_UART_IDL;
4738 if (tg3_chip_rev_id(tp) == CHIPREV_ID_57765_A0)
4739 val |= TG3_CPMU_EEE_LNKIDL_APE_TX_MT;
4740
4741 tw32_f(TG3_CPMU_EEE_LNKIDL_CTRL, val);
4742
4743 tw32_f(TG3_CPMU_EEE_CTRL,
4744 TG3_CPMU_EEE_CTRL_EXIT_20_1_US);
4745
4746 val = TG3_CPMU_EEEMD_ERLY_L1_XIT_DET |
4747 (tp->eee.tx_lpi_enabled ? TG3_CPMU_EEEMD_LPI_IN_TX : 0) |
4748 TG3_CPMU_EEEMD_LPI_IN_RX |
4749 TG3_CPMU_EEEMD_EEE_ENABLE;
4750
4751 if (tg3_asic_rev(tp) != ASIC_REV_5717)
4752 val |= TG3_CPMU_EEEMD_SND_IDX_DET_EN;
4753
4754 if (tg3_flag(tp, ENABLE_APE))
4755 val |= TG3_CPMU_EEEMD_APE_TX_DET_EN;
4756
4757 tw32_f(TG3_CPMU_EEE_MODE, tp->eee.eee_enabled ? val : 0);
4758
4759 tw32_f(TG3_CPMU_EEE_DBTMR1,
4760 TG3_CPMU_DBTMR1_PCIEXIT_2047US |
4761 (tp->eee.tx_lpi_timer & 0xffff));
4762
4763 tw32_f(TG3_CPMU_EEE_DBTMR2,
4764 TG3_CPMU_DBTMR2_APE_TX_2047US |
4765 TG3_CPMU_DBTMR2_TXIDXEQ_2047US);
4766 }
4767
4768 static int tg3_setup_copper_phy(struct tg3 *tp, bool force_reset)
4769 {
4770 bool current_link_up;
4771 u32 bmsr, val;
4772 u32 lcl_adv, rmt_adv;
4773 u16 current_speed;
4774 u8 current_duplex;
4775 int i, err;
4776
4777 tg3_clear_mac_status(tp);
4778
4779 if ((tp->mi_mode & MAC_MI_MODE_AUTO_POLL) != 0) {
4780 tw32_f(MAC_MI_MODE,
4781 (tp->mi_mode & ~MAC_MI_MODE_AUTO_POLL));
4782 udelay(80);
4783 }
4784
4785 tg3_phy_auxctl_write(tp, MII_TG3_AUXCTL_SHDWSEL_PWRCTL, 0);
4786
4787 /* Some third-party PHYs need to be reset on link going
4788 * down.
4789 */
4790 if ((tg3_asic_rev(tp) == ASIC_REV_5703 ||
4791 tg3_asic_rev(tp) == ASIC_REV_5704 ||
4792 tg3_asic_rev(tp) == ASIC_REV_5705) &&
4793 tp->link_up) {
4794 tg3_readphy(tp, MII_BMSR, &bmsr);
4795 if (!tg3_readphy(tp, MII_BMSR, &bmsr) &&
4796 !(bmsr & BMSR_LSTATUS))
4797 force_reset = true;
4798 }
4799 if (force_reset)
4800 tg3_phy_reset(tp);
4801
4802 if ((tp->phy_id & TG3_PHY_ID_MASK) == TG3_PHY_ID_BCM5401) {
4803 tg3_readphy(tp, MII_BMSR, &bmsr);
4804 if (tg3_readphy(tp, MII_BMSR, &bmsr) ||
4805 !tg3_flag(tp, INIT_COMPLETE))
4806 bmsr = 0;
4807
4808 if (!(bmsr & BMSR_LSTATUS)) {
4809 err = tg3_init_5401phy_dsp(tp);
4810 if (err)
4811 return err;
4812
4813 tg3_readphy(tp, MII_BMSR, &bmsr);
4814 for (i = 0; i < 1000; i++) {
4815 udelay(10);
4816 if (!tg3_readphy(tp, MII_BMSR, &bmsr) &&
4817 (bmsr & BMSR_LSTATUS)) {
4818 udelay(40);
4819 break;
4820 }
4821 }
4822
4823 if ((tp->phy_id & TG3_PHY_ID_REV_MASK) ==
4824 TG3_PHY_REV_BCM5401_B0 &&
4825 !(bmsr & BMSR_LSTATUS) &&
4826 tp->link_config.active_speed == SPEED_1000) {
4827 err = tg3_phy_reset(tp);
4828 if (!err)
4829 err = tg3_init_5401phy_dsp(tp);
4830 if (err)
4831 return err;
4832 }
4833 }
4834 } else if (tg3_chip_rev_id(tp) == CHIPREV_ID_5701_A0 ||
4835 tg3_chip_rev_id(tp) == CHIPREV_ID_5701_B0) {
4836 /* 5701 {A0,B0} CRC bug workaround */
4837 tg3_writephy(tp, 0x15, 0x0a75);
4838 tg3_writephy(tp, MII_TG3_MISC_SHDW, 0x8c68);
4839 tg3_writephy(tp, MII_TG3_MISC_SHDW, 0x8d68);
4840 tg3_writephy(tp, MII_TG3_MISC_SHDW, 0x8c68);
4841 }
4842
4843 /* Clear pending interrupts... */
4844 tg3_readphy(tp, MII_TG3_ISTAT, &val);
4845 tg3_readphy(tp, MII_TG3_ISTAT, &val);
4846
4847 if (tp->phy_flags & TG3_PHYFLG_USE_MI_INTERRUPT)
4848 tg3_writephy(tp, MII_TG3_IMASK, ~MII_TG3_INT_LINKCHG);
4849 else if (!(tp->phy_flags & TG3_PHYFLG_IS_FET))
4850 tg3_writephy(tp, MII_TG3_IMASK, ~0);
4851
4852 if (tg3_asic_rev(tp) == ASIC_REV_5700 ||
4853 tg3_asic_rev(tp) == ASIC_REV_5701) {
4854 if (tp->led_ctrl == LED_CTRL_MODE_PHY_1)
4855 tg3_writephy(tp, MII_TG3_EXT_CTRL,
4856 MII_TG3_EXT_CTRL_LNK3_LED_MODE);
4857 else
4858 tg3_writephy(tp, MII_TG3_EXT_CTRL, 0);
4859 }
4860
4861 current_link_up = false;
4862 current_speed = SPEED_UNKNOWN;
4863 current_duplex = DUPLEX_UNKNOWN;
4864 tp->phy_flags &= ~TG3_PHYFLG_MDIX_STATE;
4865 tp->link_config.rmt_adv = 0;
4866
4867 if (tp->phy_flags & TG3_PHYFLG_CAPACITIVE_COUPLING) {
4868 err = tg3_phy_auxctl_read(tp,
4869 MII_TG3_AUXCTL_SHDWSEL_MISCTEST,
4870 &val);
4871 if (!err && !(val & (1 << 10))) {
4872 tg3_phy_auxctl_write(tp,
4873 MII_TG3_AUXCTL_SHDWSEL_MISCTEST,
4874 val | (1 << 10));
4875 goto relink;
4876 }
4877 }
4878
4879 bmsr = 0;
4880 for (i = 0; i < 100; i++) {
4881 tg3_readphy(tp, MII_BMSR, &bmsr);
4882 if (!tg3_readphy(tp, MII_BMSR, &bmsr) &&
4883 (bmsr & BMSR_LSTATUS))
4884 break;
4885 udelay(40);
4886 }
4887
4888 if (bmsr & BMSR_LSTATUS) {
4889 u32 aux_stat, bmcr;
4890
4891 tg3_readphy(tp, MII_TG3_AUX_STAT, &aux_stat);
4892 for (i = 0; i < 2000; i++) {
4893 udelay(10);
4894 if (!tg3_readphy(tp, MII_TG3_AUX_STAT, &aux_stat) &&
4895 aux_stat)
4896 break;
4897 }
4898
4899 tg3_aux_stat_to_speed_duplex(tp, aux_stat,
4900 &current_speed,
4901 &current_duplex);
4902
4903 bmcr = 0;
4904 for (i = 0; i < 200; i++) {
4905 tg3_readphy(tp, MII_BMCR, &bmcr);
4906 if (tg3_readphy(tp, MII_BMCR, &bmcr))
4907 continue;
4908 if (bmcr && bmcr != 0x7fff)
4909 break;
4910 udelay(10);
4911 }
4912
4913 lcl_adv = 0;
4914 rmt_adv = 0;
4915
4916 tp->link_config.active_speed = current_speed;
4917 tp->link_config.active_duplex = current_duplex;
4918
4919 if (tp->link_config.autoneg == AUTONEG_ENABLE) {
4920 bool eee_config_ok = tg3_phy_eee_config_ok(tp);
4921
4922 if ((bmcr & BMCR_ANENABLE) &&
4923 eee_config_ok &&
4924 tg3_phy_copper_an_config_ok(tp, &lcl_adv) &&
4925 tg3_phy_copper_fetch_rmtadv(tp, &rmt_adv))
4926 current_link_up = true;
4927
4928 /* EEE settings changes take effect only after a phy
4929 * reset. If we have skipped a reset due to Link Flap
4930 * Avoidance being enabled, do it now.
4931 */
4932 if (!eee_config_ok &&
4933 (tp->phy_flags & TG3_PHYFLG_KEEP_LINK_ON_PWRDN) &&
4934 !force_reset) {
4935 tg3_setup_eee(tp);
4936 tg3_phy_reset(tp);
4937 }
4938 } else {
4939 if (!(bmcr & BMCR_ANENABLE) &&
4940 tp->link_config.speed == current_speed &&
4941 tp->link_config.duplex == current_duplex) {
4942 current_link_up = true;
4943 }
4944 }
4945
4946 if (current_link_up &&
4947 tp->link_config.active_duplex == DUPLEX_FULL) {
4948 u32 reg, bit;
4949
4950 if (tp->phy_flags & TG3_PHYFLG_IS_FET) {
4951 reg = MII_TG3_FET_GEN_STAT;
4952 bit = MII_TG3_FET_GEN_STAT_MDIXSTAT;
4953 } else {
4954 reg = MII_TG3_EXT_STAT;
4955 bit = MII_TG3_EXT_STAT_MDIX;
4956 }
4957
4958 if (!tg3_readphy(tp, reg, &val) && (val & bit))
4959 tp->phy_flags |= TG3_PHYFLG_MDIX_STATE;
4960
4961 tg3_setup_flow_control(tp, lcl_adv, rmt_adv);
4962 }
4963 }
4964
4965 relink:
4966 if (!current_link_up || (tp->phy_flags & TG3_PHYFLG_IS_LOW_POWER)) {
4967 tg3_phy_copper_begin(tp);
4968
4969 if (tg3_flag(tp, ROBOSWITCH)) {
4970 current_link_up = true;
4971 /* FIXME: when BCM5325 switch is used use 100 MBit/s */
4972 current_speed = SPEED_1000;
4973 current_duplex = DUPLEX_FULL;
4974 tp->link_config.active_speed = current_speed;
4975 tp->link_config.active_duplex = current_duplex;
4976 }
4977
4978 tg3_readphy(tp, MII_BMSR, &bmsr);
4979 if ((!tg3_readphy(tp, MII_BMSR, &bmsr) && (bmsr & BMSR_LSTATUS)) ||
4980 (tp->mac_mode & MAC_MODE_PORT_INT_LPBACK))
4981 current_link_up = true;
4982 }
4983
4984 tp->mac_mode &= ~MAC_MODE_PORT_MODE_MASK;
4985 if (current_link_up) {
4986 if (tp->link_config.active_speed == SPEED_100 ||
4987 tp->link_config.active_speed == SPEED_10)
4988 tp->mac_mode |= MAC_MODE_PORT_MODE_MII;
4989 else
4990 tp->mac_mode |= MAC_MODE_PORT_MODE_GMII;
4991 } else if (tp->phy_flags & TG3_PHYFLG_IS_FET)
4992 tp->mac_mode |= MAC_MODE_PORT_MODE_MII;
4993 else
4994 tp->mac_mode |= MAC_MODE_PORT_MODE_GMII;
4995
4996 /* In order for the 5750 core in BCM4785 chip to work properly
4997 * in RGMII mode, the Led Control Register must be set up.
4998 */
4999 if (tg3_flag(tp, RGMII_MODE)) {
5000 u32 led_ctrl = tr32(MAC_LED_CTRL);
5001 led_ctrl &= ~(LED_CTRL_1000MBPS_ON | LED_CTRL_100MBPS_ON);
5002
5003 if (tp->link_config.active_speed == SPEED_10)
5004 led_ctrl |= LED_CTRL_LNKLED_OVERRIDE;
5005 else if (tp->link_config.active_speed == SPEED_100)
5006 led_ctrl |= (LED_CTRL_LNKLED_OVERRIDE |
5007 LED_CTRL_100MBPS_ON);
5008 else if (tp->link_config.active_speed == SPEED_1000)
5009 led_ctrl |= (LED_CTRL_LNKLED_OVERRIDE |
5010 LED_CTRL_1000MBPS_ON);
5011
5012 tw32(MAC_LED_CTRL, led_ctrl);
5013 udelay(40);
5014 }
5015
5016 tp->mac_mode &= ~MAC_MODE_HALF_DUPLEX;
5017 if (tp->link_config.active_duplex == DUPLEX_HALF)
5018 tp->mac_mode |= MAC_MODE_HALF_DUPLEX;
5019
5020 if (tg3_asic_rev(tp) == ASIC_REV_5700) {
5021 if (current_link_up &&
5022 tg3_5700_link_polarity(tp, tp->link_config.active_speed))
5023 tp->mac_mode |= MAC_MODE_LINK_POLARITY;
5024 else
5025 tp->mac_mode &= ~MAC_MODE_LINK_POLARITY;
5026 }
5027
5028 /* ??? Without this setting Netgear GA302T PHY does not
5029 * ??? send/receive packets...
5030 */
5031 if ((tp->phy_id & TG3_PHY_ID_MASK) == TG3_PHY_ID_BCM5411 &&
5032 tg3_chip_rev_id(tp) == CHIPREV_ID_5700_ALTIMA) {
5033 tp->mi_mode |= MAC_MI_MODE_AUTO_POLL;
5034 tw32_f(MAC_MI_MODE, tp->mi_mode);
5035 udelay(80);
5036 }
5037
5038 tw32_f(MAC_MODE, tp->mac_mode);
5039 udelay(40);
5040
5041 tg3_phy_eee_adjust(tp, current_link_up);
5042
5043 if (tg3_flag(tp, USE_LINKCHG_REG)) {
5044 /* Polled via timer. */
5045 tw32_f(MAC_EVENT, 0);
5046 } else {
5047 tw32_f(MAC_EVENT, MAC_EVENT_LNKSTATE_CHANGED);
5048 }
5049 udelay(40);
5050
5051 if (tg3_asic_rev(tp) == ASIC_REV_5700 &&
5052 current_link_up &&
5053 tp->link_config.active_speed == SPEED_1000 &&
5054 (tg3_flag(tp, PCIX_MODE) || tg3_flag(tp, PCI_HIGH_SPEED))) {
5055 udelay(120);
5056 tw32_f(MAC_STATUS,
5057 (MAC_STATUS_SYNC_CHANGED |
5058 MAC_STATUS_CFG_CHANGED));
5059 udelay(40);
5060 tg3_write_mem(tp,
5061 NIC_SRAM_FIRMWARE_MBOX,
5062 NIC_SRAM_FIRMWARE_MBOX_MAGIC2);
5063 }
5064
5065 /* Prevent send BD corruption. */
5066 if (tg3_flag(tp, CLKREQ_BUG)) {
5067 if (tp->link_config.active_speed == SPEED_100 ||
5068 tp->link_config.active_speed == SPEED_10)
5069 pcie_capability_clear_word(tp->pdev, PCI_EXP_LNKCTL,
5070 PCI_EXP_LNKCTL_CLKREQ_EN);
5071 else
5072 pcie_capability_set_word(tp->pdev, PCI_EXP_LNKCTL,
5073 PCI_EXP_LNKCTL_CLKREQ_EN);
5074 }
5075
5076 tg3_test_and_report_link_chg(tp, current_link_up);
5077
5078 return 0;
5079 }
5080
5081 struct tg3_fiber_aneginfo {
5082 int state;
5083 #define ANEG_STATE_UNKNOWN 0
5084 #define ANEG_STATE_AN_ENABLE 1
5085 #define ANEG_STATE_RESTART_INIT 2
5086 #define ANEG_STATE_RESTART 3
5087 #define ANEG_STATE_DISABLE_LINK_OK 4
5088 #define ANEG_STATE_ABILITY_DETECT_INIT 5
5089 #define ANEG_STATE_ABILITY_DETECT 6
5090 #define ANEG_STATE_ACK_DETECT_INIT 7
5091 #define ANEG_STATE_ACK_DETECT 8
5092 #define ANEG_STATE_COMPLETE_ACK_INIT 9
5093 #define ANEG_STATE_COMPLETE_ACK 10
5094 #define ANEG_STATE_IDLE_DETECT_INIT 11
5095 #define ANEG_STATE_IDLE_DETECT 12
5096 #define ANEG_STATE_LINK_OK 13
5097 #define ANEG_STATE_NEXT_PAGE_WAIT_INIT 14
5098 #define ANEG_STATE_NEXT_PAGE_WAIT 15
5099
5100 u32 flags;
5101 #define MR_AN_ENABLE 0x00000001
5102 #define MR_RESTART_AN 0x00000002
5103 #define MR_AN_COMPLETE 0x00000004
5104 #define MR_PAGE_RX 0x00000008
5105 #define MR_NP_LOADED 0x00000010
5106 #define MR_TOGGLE_TX 0x00000020
5107 #define MR_LP_ADV_FULL_DUPLEX 0x00000040
5108 #define MR_LP_ADV_HALF_DUPLEX 0x00000080
5109 #define MR_LP_ADV_SYM_PAUSE 0x00000100
5110 #define MR_LP_ADV_ASYM_PAUSE 0x00000200
5111 #define MR_LP_ADV_REMOTE_FAULT1 0x00000400
5112 #define MR_LP_ADV_REMOTE_FAULT2 0x00000800
5113 #define MR_LP_ADV_NEXT_PAGE 0x00001000
5114 #define MR_TOGGLE_RX 0x00002000
5115 #define MR_NP_RX 0x00004000
5116
5117 #define MR_LINK_OK 0x80000000
5118
5119 unsigned long link_time, cur_time;
5120
5121 u32 ability_match_cfg;
5122 int ability_match_count;
5123
5124 char ability_match, idle_match, ack_match;
5125
5126 u32 txconfig, rxconfig;
5127 #define ANEG_CFG_NP 0x00000080
5128 #define ANEG_CFG_ACK 0x00000040
5129 #define ANEG_CFG_RF2 0x00000020
5130 #define ANEG_CFG_RF1 0x00000010
5131 #define ANEG_CFG_PS2 0x00000001
5132 #define ANEG_CFG_PS1 0x00008000
5133 #define ANEG_CFG_HD 0x00004000
5134 #define ANEG_CFG_FD 0x00002000
5135 #define ANEG_CFG_INVAL 0x00001f06
5136
5137 };
5138 #define ANEG_OK 0
5139 #define ANEG_DONE 1
5140 #define ANEG_TIMER_ENAB 2
5141 #define ANEG_FAILED -1
5142
5143 #define ANEG_STATE_SETTLE_TIME 10000
5144
5145 static int tg3_fiber_aneg_smachine(struct tg3 *tp,
5146 struct tg3_fiber_aneginfo *ap)
5147 {
5148 u16 flowctrl;
5149 unsigned long delta;
5150 u32 rx_cfg_reg;
5151 int ret;
5152
5153 if (ap->state == ANEG_STATE_UNKNOWN) {
5154 ap->rxconfig = 0;
5155 ap->link_time = 0;
5156 ap->cur_time = 0;
5157 ap->ability_match_cfg = 0;
5158 ap->ability_match_count = 0;
5159 ap->ability_match = 0;
5160 ap->idle_match = 0;
5161 ap->ack_match = 0;
5162 }
5163 ap->cur_time++;
5164
5165 if (tr32(MAC_STATUS) & MAC_STATUS_RCVD_CFG) {
5166 rx_cfg_reg = tr32(MAC_RX_AUTO_NEG);
5167
5168 if (rx_cfg_reg != ap->ability_match_cfg) {
5169 ap->ability_match_cfg = rx_cfg_reg;
5170 ap->ability_match = 0;
5171 ap->ability_match_count = 0;
5172 } else {
5173 if (++ap->ability_match_count > 1) {
5174 ap->ability_match = 1;
5175 ap->ability_match_cfg = rx_cfg_reg;
5176 }
5177 }
5178 if (rx_cfg_reg & ANEG_CFG_ACK)
5179 ap->ack_match = 1;
5180 else
5181 ap->ack_match = 0;
5182
5183 ap->idle_match = 0;
5184 } else {
5185 ap->idle_match = 1;
5186 ap->ability_match_cfg = 0;
5187 ap->ability_match_count = 0;
5188 ap->ability_match = 0;
5189 ap->ack_match = 0;
5190
5191 rx_cfg_reg = 0;
5192 }
5193
5194 ap->rxconfig = rx_cfg_reg;
5195 ret = ANEG_OK;
5196
5197 switch (ap->state) {
5198 case ANEG_STATE_UNKNOWN:
5199 if (ap->flags & (MR_AN_ENABLE | MR_RESTART_AN))
5200 ap->state = ANEG_STATE_AN_ENABLE;
5201
5202 /* fallthru */
5203 case ANEG_STATE_AN_ENABLE:
5204 ap->flags &= ~(MR_AN_COMPLETE | MR_PAGE_RX);
5205 if (ap->flags & MR_AN_ENABLE) {
5206 ap->link_time = 0;
5207 ap->cur_time = 0;
5208 ap->ability_match_cfg = 0;
5209 ap->ability_match_count = 0;
5210 ap->ability_match = 0;
5211 ap->idle_match = 0;
5212 ap->ack_match = 0;
5213
5214 ap->state = ANEG_STATE_RESTART_INIT;
5215 } else {
5216 ap->state = ANEG_STATE_DISABLE_LINK_OK;
5217 }
5218 break;
5219
5220 case ANEG_STATE_RESTART_INIT:
5221 ap->link_time = ap->cur_time;
5222 ap->flags &= ~(MR_NP_LOADED);
5223 ap->txconfig = 0;
5224 tw32(MAC_TX_AUTO_NEG, 0);
5225 tp->mac_mode |= MAC_MODE_SEND_CONFIGS;
5226 tw32_f(MAC_MODE, tp->mac_mode);
5227 udelay(40);
5228
5229 ret = ANEG_TIMER_ENAB;
5230 ap->state = ANEG_STATE_RESTART;
5231
5232 /* fallthru */
5233 case ANEG_STATE_RESTART:
5234 delta = ap->cur_time - ap->link_time;
5235 if (delta > ANEG_STATE_SETTLE_TIME)
5236 ap->state = ANEG_STATE_ABILITY_DETECT_INIT;
5237 else
5238 ret = ANEG_TIMER_ENAB;
5239 break;
5240
5241 case ANEG_STATE_DISABLE_LINK_OK:
5242 ret = ANEG_DONE;
5243 break;
5244
5245 case ANEG_STATE_ABILITY_DETECT_INIT:
5246 ap->flags &= ~(MR_TOGGLE_TX);
5247 ap->txconfig = ANEG_CFG_FD;
5248 flowctrl = tg3_advert_flowctrl_1000X(tp->link_config.flowctrl);
5249 if (flowctrl & ADVERTISE_1000XPAUSE)
5250 ap->txconfig |= ANEG_CFG_PS1;
5251 if (flowctrl & ADVERTISE_1000XPSE_ASYM)
5252 ap->txconfig |= ANEG_CFG_PS2;
5253 tw32(MAC_TX_AUTO_NEG, ap->txconfig);
5254 tp->mac_mode |= MAC_MODE_SEND_CONFIGS;
5255 tw32_f(MAC_MODE, tp->mac_mode);
5256 udelay(40);
5257
5258 ap->state = ANEG_STATE_ABILITY_DETECT;
5259 break;
5260
5261 case ANEG_STATE_ABILITY_DETECT:
5262 if (ap->ability_match != 0 && ap->rxconfig != 0)
5263 ap->state = ANEG_STATE_ACK_DETECT_INIT;
5264 break;
5265
5266 case ANEG_STATE_ACK_DETECT_INIT:
5267 ap->txconfig |= ANEG_CFG_ACK;
5268 tw32(MAC_TX_AUTO_NEG, ap->txconfig);
5269 tp->mac_mode |= MAC_MODE_SEND_CONFIGS;
5270 tw32_f(MAC_MODE, tp->mac_mode);
5271 udelay(40);
5272
5273 ap->state = ANEG_STATE_ACK_DETECT;
5274
5275 /* fallthru */
5276 case ANEG_STATE_ACK_DETECT:
5277 if (ap->ack_match != 0) {
5278 if ((ap->rxconfig & ~ANEG_CFG_ACK) ==
5279 (ap->ability_match_cfg & ~ANEG_CFG_ACK)) {
5280 ap->state = ANEG_STATE_COMPLETE_ACK_INIT;
5281 } else {
5282 ap->state = ANEG_STATE_AN_ENABLE;
5283 }
5284 } else if (ap->ability_match != 0 &&
5285 ap->rxconfig == 0) {
5286 ap->state = ANEG_STATE_AN_ENABLE;
5287 }
5288 break;
5289
5290 case ANEG_STATE_COMPLETE_ACK_INIT:
5291 if (ap->rxconfig & ANEG_CFG_INVAL) {
5292 ret = ANEG_FAILED;
5293 break;
5294 }
5295 ap->flags &= ~(MR_LP_ADV_FULL_DUPLEX |
5296 MR_LP_ADV_HALF_DUPLEX |
5297 MR_LP_ADV_SYM_PAUSE |
5298 MR_LP_ADV_ASYM_PAUSE |
5299 MR_LP_ADV_REMOTE_FAULT1 |
5300 MR_LP_ADV_REMOTE_FAULT2 |
5301 MR_LP_ADV_NEXT_PAGE |
5302 MR_TOGGLE_RX |
5303 MR_NP_RX);
5304 if (ap->rxconfig & ANEG_CFG_FD)
5305 ap->flags |= MR_LP_ADV_FULL_DUPLEX;
5306 if (ap->rxconfig & ANEG_CFG_HD)
5307 ap->flags |= MR_LP_ADV_HALF_DUPLEX;
5308 if (ap->rxconfig & ANEG_CFG_PS1)
5309 ap->flags |= MR_LP_ADV_SYM_PAUSE;
5310 if (ap->rxconfig & ANEG_CFG_PS2)
5311 ap->flags |= MR_LP_ADV_ASYM_PAUSE;
5312 if (ap->rxconfig & ANEG_CFG_RF1)
5313 ap->flags |= MR_LP_ADV_REMOTE_FAULT1;
5314 if (ap->rxconfig & ANEG_CFG_RF2)
5315 ap->flags |= MR_LP_ADV_REMOTE_FAULT2;
5316 if (ap->rxconfig & ANEG_CFG_NP)
5317 ap->flags |= MR_LP_ADV_NEXT_PAGE;
5318
5319 ap->link_time = ap->cur_time;
5320
5321 ap->flags ^= (MR_TOGGLE_TX);
5322 if (ap->rxconfig & 0x0008)
5323 ap->flags |= MR_TOGGLE_RX;
5324 if (ap->rxconfig & ANEG_CFG_NP)
5325 ap->flags |= MR_NP_RX;
5326 ap->flags |= MR_PAGE_RX;
5327
5328 ap->state = ANEG_STATE_COMPLETE_ACK;
5329 ret = ANEG_TIMER_ENAB;
5330 break;
5331
5332 case ANEG_STATE_COMPLETE_ACK:
5333 if (ap->ability_match != 0 &&
5334 ap->rxconfig == 0) {
5335 ap->state = ANEG_STATE_AN_ENABLE;
5336 break;
5337 }
5338 delta = ap->cur_time - ap->link_time;
5339 if (delta > ANEG_STATE_SETTLE_TIME) {
5340 if (!(ap->flags & (MR_LP_ADV_NEXT_PAGE))) {
5341 ap->state = ANEG_STATE_IDLE_DETECT_INIT;
5342 } else {
5343 if ((ap->txconfig & ANEG_CFG_NP) == 0 &&
5344 !(ap->flags & MR_NP_RX)) {
5345 ap->state = ANEG_STATE_IDLE_DETECT_INIT;
5346 } else {
5347 ret = ANEG_FAILED;
5348 }
5349 }
5350 }
5351 break;
5352
5353 case ANEG_STATE_IDLE_DETECT_INIT:
5354 ap->link_time = ap->cur_time;
5355 tp->mac_mode &= ~MAC_MODE_SEND_CONFIGS;
5356 tw32_f(MAC_MODE, tp->mac_mode);
5357 udelay(40);
5358
5359 ap->state = ANEG_STATE_IDLE_DETECT;
5360 ret = ANEG_TIMER_ENAB;
5361 break;
5362
5363 case ANEG_STATE_IDLE_DETECT:
5364 if (ap->ability_match != 0 &&
5365 ap->rxconfig == 0) {
5366 ap->state = ANEG_STATE_AN_ENABLE;
5367 break;
5368 }
5369 delta = ap->cur_time - ap->link_time;
5370 if (delta > ANEG_STATE_SETTLE_TIME) {
5371 /* XXX another gem from the Broadcom driver :( */
5372 ap->state = ANEG_STATE_LINK_OK;
5373 }
5374 break;
5375
5376 case ANEG_STATE_LINK_OK:
5377 ap->flags |= (MR_AN_COMPLETE | MR_LINK_OK);
5378 ret = ANEG_DONE;
5379 break;
5380
5381 case ANEG_STATE_NEXT_PAGE_WAIT_INIT:
5382 /* ??? unimplemented */
5383 break;
5384
5385 case ANEG_STATE_NEXT_PAGE_WAIT:
5386 /* ??? unimplemented */
5387 break;
5388
5389 default:
5390 ret = ANEG_FAILED;
5391 break;
5392 }
5393
5394 return ret;
5395 }
5396
5397 static int fiber_autoneg(struct tg3 *tp, u32 *txflags, u32 *rxflags)
5398 {
5399 int res = 0;
5400 struct tg3_fiber_aneginfo aninfo;
5401 int status = ANEG_FAILED;
5402 unsigned int tick;
5403 u32 tmp;
5404
5405 tw32_f(MAC_TX_AUTO_NEG, 0);
5406
5407 tmp = tp->mac_mode & ~MAC_MODE_PORT_MODE_MASK;
5408 tw32_f(MAC_MODE, tmp | MAC_MODE_PORT_MODE_GMII);
5409 udelay(40);
5410
5411 tw32_f(MAC_MODE, tp->mac_mode | MAC_MODE_SEND_CONFIGS);
5412 udelay(40);
5413
5414 memset(&aninfo, 0, sizeof(aninfo));
5415 aninfo.flags |= MR_AN_ENABLE;
5416 aninfo.state = ANEG_STATE_UNKNOWN;
5417 aninfo.cur_time = 0;
5418 tick = 0;
5419 while (++tick < 195000) {
5420 status = tg3_fiber_aneg_smachine(tp, &aninfo);
5421 if (status == ANEG_DONE || status == ANEG_FAILED)
5422 break;
5423
5424 udelay(1);
5425 }
5426
5427 tp->mac_mode &= ~MAC_MODE_SEND_CONFIGS;
5428 tw32_f(MAC_MODE, tp->mac_mode);
5429 udelay(40);
5430
5431 *txflags = aninfo.txconfig;
5432 *rxflags = aninfo.flags;
5433
5434 if (status == ANEG_DONE &&
5435 (aninfo.flags & (MR_AN_COMPLETE | MR_LINK_OK |
5436 MR_LP_ADV_FULL_DUPLEX)))
5437 res = 1;
5438
5439 return res;
5440 }
5441
5442 static void tg3_init_bcm8002(struct tg3 *tp)
5443 {
5444 u32 mac_status = tr32(MAC_STATUS);
5445 int i;
5446
5447 /* Reset when initting first time or we have a link. */
5448 if (tg3_flag(tp, INIT_COMPLETE) &&
5449 !(mac_status & MAC_STATUS_PCS_SYNCED))
5450 return;
5451
5452 /* Set PLL lock range. */
5453 tg3_writephy(tp, 0x16, 0x8007);
5454
5455 /* SW reset */
5456 tg3_writephy(tp, MII_BMCR, BMCR_RESET);
5457
5458 /* Wait for reset to complete. */
5459 /* XXX schedule_timeout() ... */
5460 for (i = 0; i < 500; i++)
5461 udelay(10);
5462
5463 /* Config mode; select PMA/Ch 1 regs. */
5464 tg3_writephy(tp, 0x10, 0x8411);
5465
5466 /* Enable auto-lock and comdet, select txclk for tx. */
5467 tg3_writephy(tp, 0x11, 0x0a10);
5468
5469 tg3_writephy(tp, 0x18, 0x00a0);
5470 tg3_writephy(tp, 0x16, 0x41ff);
5471
5472 /* Assert and deassert POR. */
5473 tg3_writephy(tp, 0x13, 0x0400);
5474 udelay(40);
5475 tg3_writephy(tp, 0x13, 0x0000);
5476
5477 tg3_writephy(tp, 0x11, 0x0a50);
5478 udelay(40);
5479 tg3_writephy(tp, 0x11, 0x0a10);
5480
5481 /* Wait for signal to stabilize */
5482 /* XXX schedule_timeout() ... */
5483 for (i = 0; i < 15000; i++)
5484 udelay(10);
5485
5486 /* Deselect the channel register so we can read the PHYID
5487 * later.
5488 */
5489 tg3_writephy(tp, 0x10, 0x8011);
5490 }
5491
5492 static bool tg3_setup_fiber_hw_autoneg(struct tg3 *tp, u32 mac_status)
5493 {
5494 u16 flowctrl;
5495 bool current_link_up;
5496 u32 sg_dig_ctrl, sg_dig_status;
5497 u32 serdes_cfg, expected_sg_dig_ctrl;
5498 int workaround, port_a;
5499
5500 serdes_cfg = 0;
5501 expected_sg_dig_ctrl = 0;
5502 workaround = 0;
5503 port_a = 1;
5504 current_link_up = false;
5505
5506 if (tg3_chip_rev_id(tp) != CHIPREV_ID_5704_A0 &&
5507 tg3_chip_rev_id(tp) != CHIPREV_ID_5704_A1) {
5508 workaround = 1;
5509 if (tr32(TG3PCI_DUAL_MAC_CTRL) & DUAL_MAC_CTRL_ID)
5510 port_a = 0;
5511
5512 /* preserve bits 0-11,13,14 for signal pre-emphasis */
5513 /* preserve bits 20-23 for voltage regulator */
5514 serdes_cfg = tr32(MAC_SERDES_CFG) & 0x00f06fff;
5515 }
5516
5517 sg_dig_ctrl = tr32(SG_DIG_CTRL);
5518
5519 if (tp->link_config.autoneg != AUTONEG_ENABLE) {
5520 if (sg_dig_ctrl & SG_DIG_USING_HW_AUTONEG) {
5521 if (workaround) {
5522 u32 val = serdes_cfg;
5523
5524 if (port_a)
5525 val |= 0xc010000;
5526 else
5527 val |= 0x4010000;
5528 tw32_f(MAC_SERDES_CFG, val);
5529 }
5530
5531 tw32_f(SG_DIG_CTRL, SG_DIG_COMMON_SETUP);
5532 }
5533 if (mac_status & MAC_STATUS_PCS_SYNCED) {
5534 tg3_setup_flow_control(tp, 0, 0);
5535 current_link_up = true;
5536 }
5537 goto out;
5538 }
5539
5540 /* Want auto-negotiation. */
5541 expected_sg_dig_ctrl = SG_DIG_USING_HW_AUTONEG | SG_DIG_COMMON_SETUP;
5542
5543 flowctrl = tg3_advert_flowctrl_1000X(tp->link_config.flowctrl);
5544 if (flowctrl & ADVERTISE_1000XPAUSE)
5545 expected_sg_dig_ctrl |= SG_DIG_PAUSE_CAP;
5546 if (flowctrl & ADVERTISE_1000XPSE_ASYM)
5547 expected_sg_dig_ctrl |= SG_DIG_ASYM_PAUSE;
5548
5549 if (sg_dig_ctrl != expected_sg_dig_ctrl) {
5550 if ((tp->phy_flags & TG3_PHYFLG_PARALLEL_DETECT) &&
5551 tp->serdes_counter &&
5552 ((mac_status & (MAC_STATUS_PCS_SYNCED |
5553 MAC_STATUS_RCVD_CFG)) ==
5554 MAC_STATUS_PCS_SYNCED)) {
5555 tp->serdes_counter--;
5556 current_link_up = true;
5557 goto out;
5558 }
5559 restart_autoneg:
5560 if (workaround)
5561 tw32_f(MAC_SERDES_CFG, serdes_cfg | 0xc011000);
5562 tw32_f(SG_DIG_CTRL, expected_sg_dig_ctrl | SG_DIG_SOFT_RESET);
5563 udelay(5);
5564 tw32_f(SG_DIG_CTRL, expected_sg_dig_ctrl);
5565
5566 tp->serdes_counter = SERDES_AN_TIMEOUT_5704S;
5567 tp->phy_flags &= ~TG3_PHYFLG_PARALLEL_DETECT;
5568 } else if (mac_status & (MAC_STATUS_PCS_SYNCED |
5569 MAC_STATUS_SIGNAL_DET)) {
5570 sg_dig_status = tr32(SG_DIG_STATUS);
5571 mac_status = tr32(MAC_STATUS);
5572
5573 if ((sg_dig_status & SG_DIG_AUTONEG_COMPLETE) &&
5574 (mac_status & MAC_STATUS_PCS_SYNCED)) {
5575 u32 local_adv = 0, remote_adv = 0;
5576
5577 if (sg_dig_ctrl & SG_DIG_PAUSE_CAP)
5578 local_adv |= ADVERTISE_1000XPAUSE;
5579 if (sg_dig_ctrl & SG_DIG_ASYM_PAUSE)
5580 local_adv |= ADVERTISE_1000XPSE_ASYM;
5581
5582 if (sg_dig_status & SG_DIG_PARTNER_PAUSE_CAPABLE)
5583 remote_adv |= LPA_1000XPAUSE;
5584 if (sg_dig_status & SG_DIG_PARTNER_ASYM_PAUSE)
5585 remote_adv |= LPA_1000XPAUSE_ASYM;
5586
5587 tp->link_config.rmt_adv =
5588 mii_adv_to_ethtool_adv_x(remote_adv);
5589
5590 tg3_setup_flow_control(tp, local_adv, remote_adv);
5591 current_link_up = true;
5592 tp->serdes_counter = 0;
5593 tp->phy_flags &= ~TG3_PHYFLG_PARALLEL_DETECT;
5594 } else if (!(sg_dig_status & SG_DIG_AUTONEG_COMPLETE)) {
5595 if (tp->serdes_counter)
5596 tp->serdes_counter--;
5597 else {
5598 if (workaround) {
5599 u32 val = serdes_cfg;
5600
5601 if (port_a)
5602 val |= 0xc010000;
5603 else
5604 val |= 0x4010000;
5605
5606 tw32_f(MAC_SERDES_CFG, val);
5607 }
5608
5609 tw32_f(SG_DIG_CTRL, SG_DIG_COMMON_SETUP);
5610 udelay(40);
5611
5612 /* Link parallel detection - link is up */
5613 /* only if we have PCS_SYNC and not */
5614 /* receiving config code words */
5615 mac_status = tr32(MAC_STATUS);
5616 if ((mac_status & MAC_STATUS_PCS_SYNCED) &&
5617 !(mac_status & MAC_STATUS_RCVD_CFG)) {
5618 tg3_setup_flow_control(tp, 0, 0);
5619 current_link_up = true;
5620 tp->phy_flags |=
5621 TG3_PHYFLG_PARALLEL_DETECT;
5622 tp->serdes_counter =
5623 SERDES_PARALLEL_DET_TIMEOUT;
5624 } else
5625 goto restart_autoneg;
5626 }
5627 }
5628 } else {
5629 tp->serdes_counter = SERDES_AN_TIMEOUT_5704S;
5630 tp->phy_flags &= ~TG3_PHYFLG_PARALLEL_DETECT;
5631 }
5632
5633 out:
5634 return current_link_up;
5635 }
5636
5637 static bool tg3_setup_fiber_by_hand(struct tg3 *tp, u32 mac_status)
5638 {
5639 bool current_link_up = false;
5640
5641 if (!(mac_status & MAC_STATUS_PCS_SYNCED))
5642 goto out;
5643
5644 if (tp->link_config.autoneg == AUTONEG_ENABLE) {
5645 u32 txflags, rxflags;
5646 int i;
5647
5648 if (fiber_autoneg(tp, &txflags, &rxflags)) {
5649 u32 local_adv = 0, remote_adv = 0;
5650
5651 if (txflags & ANEG_CFG_PS1)
5652 local_adv |= ADVERTISE_1000XPAUSE;
5653 if (txflags & ANEG_CFG_PS2)
5654 local_adv |= ADVERTISE_1000XPSE_ASYM;
5655
5656 if (rxflags & MR_LP_ADV_SYM_PAUSE)
5657 remote_adv |= LPA_1000XPAUSE;
5658 if (rxflags & MR_LP_ADV_ASYM_PAUSE)
5659 remote_adv |= LPA_1000XPAUSE_ASYM;
5660
5661 tp->link_config.rmt_adv =
5662 mii_adv_to_ethtool_adv_x(remote_adv);
5663
5664 tg3_setup_flow_control(tp, local_adv, remote_adv);
5665
5666 current_link_up = true;
5667 }
5668 for (i = 0; i < 30; i++) {
5669 udelay(20);
5670 tw32_f(MAC_STATUS,
5671 (MAC_STATUS_SYNC_CHANGED |
5672 MAC_STATUS_CFG_CHANGED));
5673 udelay(40);
5674 if ((tr32(MAC_STATUS) &
5675 (MAC_STATUS_SYNC_CHANGED |
5676 MAC_STATUS_CFG_CHANGED)) == 0)
5677 break;
5678 }
5679
5680 mac_status = tr32(MAC_STATUS);
5681 if (!current_link_up &&
5682 (mac_status & MAC_STATUS_PCS_SYNCED) &&
5683 !(mac_status & MAC_STATUS_RCVD_CFG))
5684 current_link_up = true;
5685 } else {
5686 tg3_setup_flow_control(tp, 0, 0);
5687
5688 /* Forcing 1000FD link up. */
5689 current_link_up = true;
5690
5691 tw32_f(MAC_MODE, (tp->mac_mode | MAC_MODE_SEND_CONFIGS));
5692 udelay(40);
5693
5694 tw32_f(MAC_MODE, tp->mac_mode);
5695 udelay(40);
5696 }
5697
5698 out:
5699 return current_link_up;
5700 }
5701
5702 static int tg3_setup_fiber_phy(struct tg3 *tp, bool force_reset)
5703 {
5704 u32 orig_pause_cfg;
5705 u16 orig_active_speed;
5706 u8 orig_active_duplex;
5707 u32 mac_status;
5708 bool current_link_up;
5709 int i;
5710
5711 orig_pause_cfg = tp->link_config.active_flowctrl;
5712 orig_active_speed = tp->link_config.active_speed;
5713 orig_active_duplex = tp->link_config.active_duplex;
5714
5715 if (!tg3_flag(tp, HW_AUTONEG) &&
5716 tp->link_up &&
5717 tg3_flag(tp, INIT_COMPLETE)) {
5718 mac_status = tr32(MAC_STATUS);
5719 mac_status &= (MAC_STATUS_PCS_SYNCED |
5720 MAC_STATUS_SIGNAL_DET |
5721 MAC_STATUS_CFG_CHANGED |
5722 MAC_STATUS_RCVD_CFG);
5723 if (mac_status == (MAC_STATUS_PCS_SYNCED |
5724 MAC_STATUS_SIGNAL_DET)) {
5725 tw32_f(MAC_STATUS, (MAC_STATUS_SYNC_CHANGED |
5726 MAC_STATUS_CFG_CHANGED));
5727 return 0;
5728 }
5729 }
5730
5731 tw32_f(MAC_TX_AUTO_NEG, 0);
5732
5733 tp->mac_mode &= ~(MAC_MODE_PORT_MODE_MASK | MAC_MODE_HALF_DUPLEX);
5734 tp->mac_mode |= MAC_MODE_PORT_MODE_TBI;
5735 tw32_f(MAC_MODE, tp->mac_mode);
5736 udelay(40);
5737
5738 if (tp->phy_id == TG3_PHY_ID_BCM8002)
5739 tg3_init_bcm8002(tp);
5740
5741 /* Enable link change event even when serdes polling. */
5742 tw32_f(MAC_EVENT, MAC_EVENT_LNKSTATE_CHANGED);
5743 udelay(40);
5744
5745 current_link_up = false;
5746 tp->link_config.rmt_adv = 0;
5747 mac_status = tr32(MAC_STATUS);
5748
5749 if (tg3_flag(tp, HW_AUTONEG))
5750 current_link_up = tg3_setup_fiber_hw_autoneg(tp, mac_status);
5751 else
5752 current_link_up = tg3_setup_fiber_by_hand(tp, mac_status);
5753
5754 tp->napi[0].hw_status->status =
5755 (SD_STATUS_UPDATED |
5756 (tp->napi[0].hw_status->status & ~SD_STATUS_LINK_CHG));
5757
5758 for (i = 0; i < 100; i++) {
5759 tw32_f(MAC_STATUS, (MAC_STATUS_SYNC_CHANGED |
5760 MAC_STATUS_CFG_CHANGED));
5761 udelay(5);
5762 if ((tr32(MAC_STATUS) & (MAC_STATUS_SYNC_CHANGED |
5763 MAC_STATUS_CFG_CHANGED |
5764 MAC_STATUS_LNKSTATE_CHANGED)) == 0)
5765 break;
5766 }
5767
5768 mac_status = tr32(MAC_STATUS);
5769 if ((mac_status & MAC_STATUS_PCS_SYNCED) == 0) {
5770 current_link_up = false;
5771 if (tp->link_config.autoneg == AUTONEG_ENABLE &&
5772 tp->serdes_counter == 0) {
5773 tw32_f(MAC_MODE, (tp->mac_mode |
5774 MAC_MODE_SEND_CONFIGS));
5775 udelay(1);
5776 tw32_f(MAC_MODE, tp->mac_mode);
5777 }
5778 }
5779
5780 if (current_link_up) {
5781 tp->link_config.active_speed = SPEED_1000;
5782 tp->link_config.active_duplex = DUPLEX_FULL;
5783 tw32(MAC_LED_CTRL, (tp->led_ctrl |
5784 LED_CTRL_LNKLED_OVERRIDE |
5785 LED_CTRL_1000MBPS_ON));
5786 } else {
5787 tp->link_config.active_speed = SPEED_UNKNOWN;
5788 tp->link_config.active_duplex = DUPLEX_UNKNOWN;
5789 tw32(MAC_LED_CTRL, (tp->led_ctrl |
5790 LED_CTRL_LNKLED_OVERRIDE |
5791 LED_CTRL_TRAFFIC_OVERRIDE));
5792 }
5793
5794 if (!tg3_test_and_report_link_chg(tp, current_link_up)) {
5795 u32 now_pause_cfg = tp->link_config.active_flowctrl;
5796 if (orig_pause_cfg != now_pause_cfg ||
5797 orig_active_speed != tp->link_config.active_speed ||
5798 orig_active_duplex != tp->link_config.active_duplex)
5799 tg3_link_report(tp);
5800 }
5801
5802 return 0;
5803 }
5804
5805 static int tg3_setup_fiber_mii_phy(struct tg3 *tp, bool force_reset)
5806 {
5807 int err = 0;
5808 u32 bmsr, bmcr;
5809 u16 current_speed = SPEED_UNKNOWN;
5810 u8 current_duplex = DUPLEX_UNKNOWN;
5811 bool current_link_up = false;
5812 u32 local_adv, remote_adv, sgsr;
5813
5814 if ((tg3_asic_rev(tp) == ASIC_REV_5719 ||
5815 tg3_asic_rev(tp) == ASIC_REV_5720) &&
5816 !tg3_readphy(tp, SERDES_TG3_1000X_STATUS, &sgsr) &&
5817 (sgsr & SERDES_TG3_SGMII_MODE)) {
5818
5819 if (force_reset)
5820 tg3_phy_reset(tp);
5821
5822 tp->mac_mode &= ~MAC_MODE_PORT_MODE_MASK;
5823
5824 if (!(sgsr & SERDES_TG3_LINK_UP)) {
5825 tp->mac_mode |= MAC_MODE_PORT_MODE_GMII;
5826 } else {
5827 current_link_up = true;
5828 if (sgsr & SERDES_TG3_SPEED_1000) {
5829 current_speed = SPEED_1000;
5830 tp->mac_mode |= MAC_MODE_PORT_MODE_GMII;
5831 } else if (sgsr & SERDES_TG3_SPEED_100) {
5832 current_speed = SPEED_100;
5833 tp->mac_mode |= MAC_MODE_PORT_MODE_MII;
5834 } else {
5835 current_speed = SPEED_10;
5836 tp->mac_mode |= MAC_MODE_PORT_MODE_MII;
5837 }
5838
5839 if (sgsr & SERDES_TG3_FULL_DUPLEX)
5840 current_duplex = DUPLEX_FULL;
5841 else
5842 current_duplex = DUPLEX_HALF;
5843 }
5844
5845 tw32_f(MAC_MODE, tp->mac_mode);
5846 udelay(40);
5847
5848 tg3_clear_mac_status(tp);
5849
5850 goto fiber_setup_done;
5851 }
5852
5853 tp->mac_mode |= MAC_MODE_PORT_MODE_GMII;
5854 tw32_f(MAC_MODE, tp->mac_mode);
5855 udelay(40);
5856
5857 tg3_clear_mac_status(tp);
5858
5859 if (force_reset)
5860 tg3_phy_reset(tp);
5861
5862 tp->link_config.rmt_adv = 0;
5863
5864 err |= tg3_readphy(tp, MII_BMSR, &bmsr);
5865 err |= tg3_readphy(tp, MII_BMSR, &bmsr);
5866 if (tg3_asic_rev(tp) == ASIC_REV_5714) {
5867 if (tr32(MAC_TX_STATUS) & TX_STATUS_LINK_UP)
5868 bmsr |= BMSR_LSTATUS;
5869 else
5870 bmsr &= ~BMSR_LSTATUS;
5871 }
5872
5873 err |= tg3_readphy(tp, MII_BMCR, &bmcr);
5874
5875 if ((tp->link_config.autoneg == AUTONEG_ENABLE) && !force_reset &&
5876 (tp->phy_flags & TG3_PHYFLG_PARALLEL_DETECT)) {
5877 /* do nothing, just check for link up at the end */
5878 } else if (tp->link_config.autoneg == AUTONEG_ENABLE) {
5879 u32 adv, newadv;
5880
5881 err |= tg3_readphy(tp, MII_ADVERTISE, &adv);
5882 newadv = adv & ~(ADVERTISE_1000XFULL | ADVERTISE_1000XHALF |
5883 ADVERTISE_1000XPAUSE |
5884 ADVERTISE_1000XPSE_ASYM |
5885 ADVERTISE_SLCT);
5886
5887 newadv |= tg3_advert_flowctrl_1000X(tp->link_config.flowctrl);
5888 newadv |= ethtool_adv_to_mii_adv_x(tp->link_config.advertising);
5889
5890 if ((newadv != adv) || !(bmcr & BMCR_ANENABLE)) {
5891 tg3_writephy(tp, MII_ADVERTISE, newadv);
5892 bmcr |= BMCR_ANENABLE | BMCR_ANRESTART;
5893 tg3_writephy(tp, MII_BMCR, bmcr);
5894
5895 tw32_f(MAC_EVENT, MAC_EVENT_LNKSTATE_CHANGED);
5896 tp->serdes_counter = SERDES_AN_TIMEOUT_5714S;
5897 tp->phy_flags &= ~TG3_PHYFLG_PARALLEL_DETECT;
5898
5899 return err;
5900 }
5901 } else {
5902 u32 new_bmcr;
5903
5904 bmcr &= ~BMCR_SPEED1000;
5905 new_bmcr = bmcr & ~(BMCR_ANENABLE | BMCR_FULLDPLX);
5906
5907 if (tp->link_config.duplex == DUPLEX_FULL)
5908 new_bmcr |= BMCR_FULLDPLX;
5909
5910 if (new_bmcr != bmcr) {
5911 /* BMCR_SPEED1000 is a reserved bit that needs
5912 * to be set on write.
5913 */
5914 new_bmcr |= BMCR_SPEED1000;
5915
5916 /* Force a linkdown */
5917 if (tp->link_up) {
5918 u32 adv;
5919
5920 err |= tg3_readphy(tp, MII_ADVERTISE, &adv);
5921 adv &= ~(ADVERTISE_1000XFULL |
5922 ADVERTISE_1000XHALF |
5923 ADVERTISE_SLCT);
5924 tg3_writephy(tp, MII_ADVERTISE, adv);
5925 tg3_writephy(tp, MII_BMCR, bmcr |
5926 BMCR_ANRESTART |
5927 BMCR_ANENABLE);
5928 udelay(10);
5929 tg3_carrier_off(tp);
5930 }
5931 tg3_writephy(tp, MII_BMCR, new_bmcr);
5932 bmcr = new_bmcr;
5933 err |= tg3_readphy(tp, MII_BMSR, &bmsr);
5934 err |= tg3_readphy(tp, MII_BMSR, &bmsr);
5935 if (tg3_asic_rev(tp) == ASIC_REV_5714) {
5936 if (tr32(MAC_TX_STATUS) & TX_STATUS_LINK_UP)
5937 bmsr |= BMSR_LSTATUS;
5938 else
5939 bmsr &= ~BMSR_LSTATUS;
5940 }
5941 tp->phy_flags &= ~TG3_PHYFLG_PARALLEL_DETECT;
5942 }
5943 }
5944
5945 if (bmsr & BMSR_LSTATUS) {
5946 current_speed = SPEED_1000;
5947 current_link_up = true;
5948 if (bmcr & BMCR_FULLDPLX)
5949 current_duplex = DUPLEX_FULL;
5950 else
5951 current_duplex = DUPLEX_HALF;
5952
5953 local_adv = 0;
5954 remote_adv = 0;
5955
5956 if (bmcr & BMCR_ANENABLE) {
5957 u32 common;
5958
5959 err |= tg3_readphy(tp, MII_ADVERTISE, &local_adv);
5960 err |= tg3_readphy(tp, MII_LPA, &remote_adv);
5961 common = local_adv & remote_adv;
5962 if (common & (ADVERTISE_1000XHALF |
5963 ADVERTISE_1000XFULL)) {
5964 if (common & ADVERTISE_1000XFULL)
5965 current_duplex = DUPLEX_FULL;
5966 else
5967 current_duplex = DUPLEX_HALF;
5968
5969 tp->link_config.rmt_adv =
5970 mii_adv_to_ethtool_adv_x(remote_adv);
5971 } else if (!tg3_flag(tp, 5780_CLASS)) {
5972 /* Link is up via parallel detect */
5973 } else {
5974 current_link_up = false;
5975 }
5976 }
5977 }
5978
5979 fiber_setup_done:
5980 if (current_link_up && current_duplex == DUPLEX_FULL)
5981 tg3_setup_flow_control(tp, local_adv, remote_adv);
5982
5983 tp->mac_mode &= ~MAC_MODE_HALF_DUPLEX;
5984 if (tp->link_config.active_duplex == DUPLEX_HALF)
5985 tp->mac_mode |= MAC_MODE_HALF_DUPLEX;
5986
5987 tw32_f(MAC_MODE, tp->mac_mode);
5988 udelay(40);
5989
5990 tw32_f(MAC_EVENT, MAC_EVENT_LNKSTATE_CHANGED);
5991
5992 tp->link_config.active_speed = current_speed;
5993 tp->link_config.active_duplex = current_duplex;
5994
5995 tg3_test_and_report_link_chg(tp, current_link_up);
5996 return err;
5997 }
5998
5999 static void tg3_serdes_parallel_detect(struct tg3 *tp)
6000 {
6001 if (tp->serdes_counter) {
6002 /* Give autoneg time to complete. */
6003 tp->serdes_counter--;
6004 return;
6005 }
6006
6007 if (!tp->link_up &&
6008 (tp->link_config.autoneg == AUTONEG_ENABLE)) {
6009 u32 bmcr;
6010
6011 tg3_readphy(tp, MII_BMCR, &bmcr);
6012 if (bmcr & BMCR_ANENABLE) {
6013 u32 phy1, phy2;
6014
6015 /* Select shadow register 0x1f */
6016 tg3_writephy(tp, MII_TG3_MISC_SHDW, 0x7c00);
6017 tg3_readphy(tp, MII_TG3_MISC_SHDW, &phy1);
6018
6019 /* Select expansion interrupt status register */
6020 tg3_writephy(tp, MII_TG3_DSP_ADDRESS,
6021 MII_TG3_DSP_EXP1_INT_STAT);
6022 tg3_readphy(tp, MII_TG3_DSP_RW_PORT, &phy2);
6023 tg3_readphy(tp, MII_TG3_DSP_RW_PORT, &phy2);
6024
6025 if ((phy1 & 0x10) && !(phy2 & 0x20)) {
6026 /* We have signal detect and not receiving
6027 * config code words, link is up by parallel
6028 * detection.
6029 */
6030
6031 bmcr &= ~BMCR_ANENABLE;
6032 bmcr |= BMCR_SPEED1000 | BMCR_FULLDPLX;
6033 tg3_writephy(tp, MII_BMCR, bmcr);
6034 tp->phy_flags |= TG3_PHYFLG_PARALLEL_DETECT;
6035 }
6036 }
6037 } else if (tp->link_up &&
6038 (tp->link_config.autoneg == AUTONEG_ENABLE) &&
6039 (tp->phy_flags & TG3_PHYFLG_PARALLEL_DETECT)) {
6040 u32 phy2;
6041
6042 /* Select expansion interrupt status register */
6043 tg3_writephy(tp, MII_TG3_DSP_ADDRESS,
6044 MII_TG3_DSP_EXP1_INT_STAT);
6045 tg3_readphy(tp, MII_TG3_DSP_RW_PORT, &phy2);
6046 if (phy2 & 0x20) {
6047 u32 bmcr;
6048
6049 /* Config code words received, turn on autoneg. */
6050 tg3_readphy(tp, MII_BMCR, &bmcr);
6051 tg3_writephy(tp, MII_BMCR, bmcr | BMCR_ANENABLE);
6052
6053 tp->phy_flags &= ~TG3_PHYFLG_PARALLEL_DETECT;
6054
6055 }
6056 }
6057 }
6058
6059 static int tg3_setup_phy(struct tg3 *tp, bool force_reset)
6060 {
6061 u32 val;
6062 int err;
6063
6064 if (tp->phy_flags & TG3_PHYFLG_PHY_SERDES)
6065 err = tg3_setup_fiber_phy(tp, force_reset);
6066 else if (tp->phy_flags & TG3_PHYFLG_MII_SERDES)
6067 err = tg3_setup_fiber_mii_phy(tp, force_reset);
6068 else
6069 err = tg3_setup_copper_phy(tp, force_reset);
6070
6071 if (tg3_chip_rev(tp) == CHIPREV_5784_AX) {
6072 u32 scale;
6073
6074 val = tr32(TG3_CPMU_CLCK_STAT) & CPMU_CLCK_STAT_MAC_CLCK_MASK;
6075 if (val == CPMU_CLCK_STAT_MAC_CLCK_62_5)
6076 scale = 65;
6077 else if (val == CPMU_CLCK_STAT_MAC_CLCK_6_25)
6078 scale = 6;
6079 else
6080 scale = 12;
6081
6082 val = tr32(GRC_MISC_CFG) & ~GRC_MISC_CFG_PRESCALAR_MASK;
6083 val |= (scale << GRC_MISC_CFG_PRESCALAR_SHIFT);
6084 tw32(GRC_MISC_CFG, val);
6085 }
6086
6087 val = (2 << TX_LENGTHS_IPG_CRS_SHIFT) |
6088 (6 << TX_LENGTHS_IPG_SHIFT);
6089 if (tg3_asic_rev(tp) == ASIC_REV_5720 ||
6090 tg3_asic_rev(tp) == ASIC_REV_5762)
6091 val |= tr32(MAC_TX_LENGTHS) &
6092 (TX_LENGTHS_JMB_FRM_LEN_MSK |
6093 TX_LENGTHS_CNT_DWN_VAL_MSK);
6094
6095 if (tp->link_config.active_speed == SPEED_1000 &&
6096 tp->link_config.active_duplex == DUPLEX_HALF)
6097 tw32(MAC_TX_LENGTHS, val |
6098 (0xff << TX_LENGTHS_SLOT_TIME_SHIFT));
6099 else
6100 tw32(MAC_TX_LENGTHS, val |
6101 (32 << TX_LENGTHS_SLOT_TIME_SHIFT));
6102
6103 if (!tg3_flag(tp, 5705_PLUS)) {
6104 if (tp->link_up) {
6105 tw32(HOSTCC_STAT_COAL_TICKS,
6106 tp->coal.stats_block_coalesce_usecs);
6107 } else {
6108 tw32(HOSTCC_STAT_COAL_TICKS, 0);
6109 }
6110 }
6111
6112 if (tg3_flag(tp, ASPM_WORKAROUND)) {
6113 val = tr32(PCIE_PWR_MGMT_THRESH);
6114 if (!tp->link_up)
6115 val = (val & ~PCIE_PWR_MGMT_L1_THRESH_MSK) |
6116 tp->pwrmgmt_thresh;
6117 else
6118 val |= PCIE_PWR_MGMT_L1_THRESH_MSK;
6119 tw32(PCIE_PWR_MGMT_THRESH, val);
6120 }
6121
6122 return err;
6123 }
6124
6125 /* tp->lock must be held */
6126 static u64 tg3_refclk_read(struct tg3 *tp)
6127 {
6128 u64 stamp = tr32(TG3_EAV_REF_CLCK_LSB);
6129 return stamp | (u64)tr32(TG3_EAV_REF_CLCK_MSB) << 32;
6130 }
6131
6132 /* tp->lock must be held */
6133 static void tg3_refclk_write(struct tg3 *tp, u64 newval)
6134 {
6135 u32 clock_ctl = tr32(TG3_EAV_REF_CLCK_CTL);
6136
6137 tw32(TG3_EAV_REF_CLCK_CTL, clock_ctl | TG3_EAV_REF_CLCK_CTL_STOP);
6138 tw32(TG3_EAV_REF_CLCK_LSB, newval & 0xffffffff);
6139 tw32(TG3_EAV_REF_CLCK_MSB, newval >> 32);
6140 tw32_f(TG3_EAV_REF_CLCK_CTL, clock_ctl | TG3_EAV_REF_CLCK_CTL_RESUME);
6141 }
6142
6143 static inline void tg3_full_lock(struct tg3 *tp, int irq_sync);
6144 static inline void tg3_full_unlock(struct tg3 *tp);
6145 static int tg3_get_ts_info(struct net_device *dev, struct ethtool_ts_info *info)
6146 {
6147 struct tg3 *tp = netdev_priv(dev);
6148
6149 info->so_timestamping = SOF_TIMESTAMPING_TX_SOFTWARE |
6150 SOF_TIMESTAMPING_RX_SOFTWARE |
6151 SOF_TIMESTAMPING_SOFTWARE;
6152
6153 if (tg3_flag(tp, PTP_CAPABLE)) {
6154 info->so_timestamping |= SOF_TIMESTAMPING_TX_HARDWARE |
6155 SOF_TIMESTAMPING_RX_HARDWARE |
6156 SOF_TIMESTAMPING_RAW_HARDWARE;
6157 }
6158
6159 if (tp->ptp_clock)
6160 info->phc_index = ptp_clock_index(tp->ptp_clock);
6161 else
6162 info->phc_index = -1;
6163
6164 info->tx_types = (1 << HWTSTAMP_TX_OFF) | (1 << HWTSTAMP_TX_ON);
6165
6166 info->rx_filters = (1 << HWTSTAMP_FILTER_NONE) |
6167 (1 << HWTSTAMP_FILTER_PTP_V1_L4_EVENT) |
6168 (1 << HWTSTAMP_FILTER_PTP_V2_L2_EVENT) |
6169 (1 << HWTSTAMP_FILTER_PTP_V2_L4_EVENT);
6170 return 0;
6171 }
6172
6173 static int tg3_ptp_adjfreq(struct ptp_clock_info *ptp, s32 ppb)
6174 {
6175 struct tg3 *tp = container_of(ptp, struct tg3, ptp_info);
6176 bool neg_adj = false;
6177 u32 correction = 0;
6178
6179 if (ppb < 0) {
6180 neg_adj = true;
6181 ppb = -ppb;
6182 }
6183
6184 /* Frequency adjustment is performed using hardware with a 24 bit
6185 * accumulator and a programmable correction value. On each clk, the
6186 * correction value gets added to the accumulator and when it
6187 * overflows, the time counter is incremented/decremented.
6188 *
6189 * So conversion from ppb to correction value is
6190 * ppb * (1 << 24) / 1000000000
6191 */
6192 correction = div_u64((u64)ppb * (1 << 24), 1000000000ULL) &
6193 TG3_EAV_REF_CLK_CORRECT_MASK;
6194
6195 tg3_full_lock(tp, 0);
6196
6197 if (correction)
6198 tw32(TG3_EAV_REF_CLK_CORRECT_CTL,
6199 TG3_EAV_REF_CLK_CORRECT_EN |
6200 (neg_adj ? TG3_EAV_REF_CLK_CORRECT_NEG : 0) | correction);
6201 else
6202 tw32(TG3_EAV_REF_CLK_CORRECT_CTL, 0);
6203
6204 tg3_full_unlock(tp);
6205
6206 return 0;
6207 }
6208
6209 static int tg3_ptp_adjtime(struct ptp_clock_info *ptp, s64 delta)
6210 {
6211 struct tg3 *tp = container_of(ptp, struct tg3, ptp_info);
6212
6213 tg3_full_lock(tp, 0);
6214 tp->ptp_adjust += delta;
6215 tg3_full_unlock(tp);
6216
6217 return 0;
6218 }
6219
6220 static int tg3_ptp_gettime(struct ptp_clock_info *ptp, struct timespec *ts)
6221 {
6222 u64 ns;
6223 u32 remainder;
6224 struct tg3 *tp = container_of(ptp, struct tg3, ptp_info);
6225
6226 tg3_full_lock(tp, 0);
6227 ns = tg3_refclk_read(tp);
6228 ns += tp->ptp_adjust;
6229 tg3_full_unlock(tp);
6230
6231 ts->tv_sec = div_u64_rem(ns, 1000000000, &remainder);
6232 ts->tv_nsec = remainder;
6233
6234 return 0;
6235 }
6236
6237 static int tg3_ptp_settime(struct ptp_clock_info *ptp,
6238 const struct timespec *ts)
6239 {
6240 u64 ns;
6241 struct tg3 *tp = container_of(ptp, struct tg3, ptp_info);
6242
6243 ns = timespec_to_ns(ts);
6244
6245 tg3_full_lock(tp, 0);
6246 tg3_refclk_write(tp, ns);
6247 tp->ptp_adjust = 0;
6248 tg3_full_unlock(tp);
6249
6250 return 0;
6251 }
6252
6253 static int tg3_ptp_enable(struct ptp_clock_info *ptp,
6254 struct ptp_clock_request *rq, int on)
6255 {
6256 struct tg3 *tp = container_of(ptp, struct tg3, ptp_info);
6257 u32 clock_ctl;
6258 int rval = 0;
6259
6260 switch (rq->type) {
6261 case PTP_CLK_REQ_PEROUT:
6262 if (rq->perout.index != 0)
6263 return -EINVAL;
6264
6265 tg3_full_lock(tp, 0);
6266 clock_ctl = tr32(TG3_EAV_REF_CLCK_CTL);
6267 clock_ctl &= ~TG3_EAV_CTL_TSYNC_GPIO_MASK;
6268
6269 if (on) {
6270 u64 nsec;
6271
6272 nsec = rq->perout.start.sec * 1000000000ULL +
6273 rq->perout.start.nsec;
6274
6275 if (rq->perout.period.sec || rq->perout.period.nsec) {
6276 netdev_warn(tp->dev,
6277 "Device supports only a one-shot timesync output, period must be 0\n");
6278 rval = -EINVAL;
6279 goto err_out;
6280 }
6281
6282 if (nsec & (1ULL << 63)) {
6283 netdev_warn(tp->dev,
6284 "Start value (nsec) is over limit. Maximum size of start is only 63 bits\n");
6285 rval = -EINVAL;
6286 goto err_out;
6287 }
6288
6289 tw32(TG3_EAV_WATCHDOG0_LSB, (nsec & 0xffffffff));
6290 tw32(TG3_EAV_WATCHDOG0_MSB,
6291 TG3_EAV_WATCHDOG0_EN |
6292 ((nsec >> 32) & TG3_EAV_WATCHDOG_MSB_MASK));
6293
6294 tw32(TG3_EAV_REF_CLCK_CTL,
6295 clock_ctl | TG3_EAV_CTL_TSYNC_WDOG0);
6296 } else {
6297 tw32(TG3_EAV_WATCHDOG0_MSB, 0);
6298 tw32(TG3_EAV_REF_CLCK_CTL, clock_ctl);
6299 }
6300
6301 err_out:
6302 tg3_full_unlock(tp);
6303 return rval;
6304
6305 default:
6306 break;
6307 }
6308
6309 return -EOPNOTSUPP;
6310 }
6311
6312 static const struct ptp_clock_info tg3_ptp_caps = {
6313 .owner = THIS_MODULE,
6314 .name = "tg3 clock",
6315 .max_adj = 250000000,
6316 .n_alarm = 0,
6317 .n_ext_ts = 0,
6318 .n_per_out = 1,
6319 .n_pins = 0,
6320 .pps = 0,
6321 .adjfreq = tg3_ptp_adjfreq,
6322 .adjtime = tg3_ptp_adjtime,
6323 .gettime = tg3_ptp_gettime,
6324 .settime = tg3_ptp_settime,
6325 .enable = tg3_ptp_enable,
6326 };
6327
6328 static void tg3_hwclock_to_timestamp(struct tg3 *tp, u64 hwclock,
6329 struct skb_shared_hwtstamps *timestamp)
6330 {
6331 memset(timestamp, 0, sizeof(struct skb_shared_hwtstamps));
6332 timestamp->hwtstamp = ns_to_ktime((hwclock & TG3_TSTAMP_MASK) +
6333 tp->ptp_adjust);
6334 }
6335
6336 /* tp->lock must be held */
6337 static void tg3_ptp_init(struct tg3 *tp)
6338 {
6339 if (!tg3_flag(tp, PTP_CAPABLE))
6340 return;
6341
6342 /* Initialize the hardware clock to the system time. */
6343 tg3_refclk_write(tp, ktime_to_ns(ktime_get_real()));
6344 tp->ptp_adjust = 0;
6345 tp->ptp_info = tg3_ptp_caps;
6346 }
6347
6348 /* tp->lock must be held */
6349 static void tg3_ptp_resume(struct tg3 *tp)
6350 {
6351 if (!tg3_flag(tp, PTP_CAPABLE))
6352 return;
6353
6354 tg3_refclk_write(tp, ktime_to_ns(ktime_get_real()) + tp->ptp_adjust);
6355 tp->ptp_adjust = 0;
6356 }
6357
6358 static void tg3_ptp_fini(struct tg3 *tp)
6359 {
6360 if (!tg3_flag(tp, PTP_CAPABLE) || !tp->ptp_clock)
6361 return;
6362
6363 ptp_clock_unregister(tp->ptp_clock);
6364 tp->ptp_clock = NULL;
6365 tp->ptp_adjust = 0;
6366 }
6367
6368 static inline int tg3_irq_sync(struct tg3 *tp)
6369 {
6370 return tp->irq_sync;
6371 }
6372
6373 static inline void tg3_rd32_loop(struct tg3 *tp, u32 *dst, u32 off, u32 len)
6374 {
6375 int i;
6376
6377 dst = (u32 *)((u8 *)dst + off);
6378 for (i = 0; i < len; i += sizeof(u32))
6379 *dst++ = tr32(off + i);
6380 }
6381
6382 static void tg3_dump_legacy_regs(struct tg3 *tp, u32 *regs)
6383 {
6384 tg3_rd32_loop(tp, regs, TG3PCI_VENDOR, 0xb0);
6385 tg3_rd32_loop(tp, regs, MAILBOX_INTERRUPT_0, 0x200);
6386 tg3_rd32_loop(tp, regs, MAC_MODE, 0x4f0);
6387 tg3_rd32_loop(tp, regs, SNDDATAI_MODE, 0xe0);
6388 tg3_rd32_loop(tp, regs, SNDDATAC_MODE, 0x04);
6389 tg3_rd32_loop(tp, regs, SNDBDS_MODE, 0x80);
6390 tg3_rd32_loop(tp, regs, SNDBDI_MODE, 0x48);
6391 tg3_rd32_loop(tp, regs, SNDBDC_MODE, 0x04);
6392 tg3_rd32_loop(tp, regs, RCVLPC_MODE, 0x20);
6393 tg3_rd32_loop(tp, regs, RCVLPC_SELLST_BASE, 0x15c);
6394 tg3_rd32_loop(tp, regs, RCVDBDI_MODE, 0x0c);
6395 tg3_rd32_loop(tp, regs, RCVDBDI_JUMBO_BD, 0x3c);
6396 tg3_rd32_loop(tp, regs, RCVDBDI_BD_PROD_IDX_0, 0x44);
6397 tg3_rd32_loop(tp, regs, RCVDCC_MODE, 0x04);
6398 tg3_rd32_loop(tp, regs, RCVBDI_MODE, 0x20);
6399 tg3_rd32_loop(tp, regs, RCVCC_MODE, 0x14);
6400 tg3_rd32_loop(tp, regs, RCVLSC_MODE, 0x08);
6401 tg3_rd32_loop(tp, regs, MBFREE_MODE, 0x08);
6402 tg3_rd32_loop(tp, regs, HOSTCC_MODE, 0x100);
6403
6404 if (tg3_flag(tp, SUPPORT_MSIX))
6405 tg3_rd32_loop(tp, regs, HOSTCC_RXCOL_TICKS_VEC1, 0x180);
6406
6407 tg3_rd32_loop(tp, regs, MEMARB_MODE, 0x10);
6408 tg3_rd32_loop(tp, regs, BUFMGR_MODE, 0x58);
6409 tg3_rd32_loop(tp, regs, RDMAC_MODE, 0x08);
6410 tg3_rd32_loop(tp, regs, WDMAC_MODE, 0x08);
6411 tg3_rd32_loop(tp, regs, RX_CPU_MODE, 0x04);
6412 tg3_rd32_loop(tp, regs, RX_CPU_STATE, 0x04);
6413 tg3_rd32_loop(tp, regs, RX_CPU_PGMCTR, 0x04);
6414 tg3_rd32_loop(tp, regs, RX_CPU_HWBKPT, 0x04);
6415
6416 if (!tg3_flag(tp, 5705_PLUS)) {
6417 tg3_rd32_loop(tp, regs, TX_CPU_MODE, 0x04);
6418 tg3_rd32_loop(tp, regs, TX_CPU_STATE, 0x04);
6419 tg3_rd32_loop(tp, regs, TX_CPU_PGMCTR, 0x04);
6420 }
6421
6422 tg3_rd32_loop(tp, regs, GRCMBOX_INTERRUPT_0, 0x110);
6423 tg3_rd32_loop(tp, regs, FTQ_RESET, 0x120);
6424 tg3_rd32_loop(tp, regs, MSGINT_MODE, 0x0c);
6425 tg3_rd32_loop(tp, regs, DMAC_MODE, 0x04);
6426 tg3_rd32_loop(tp, regs, GRC_MODE, 0x4c);
6427
6428 if (tg3_flag(tp, NVRAM))
6429 tg3_rd32_loop(tp, regs, NVRAM_CMD, 0x24);
6430 }
6431
6432 static void tg3_dump_state(struct tg3 *tp)
6433 {
6434 int i;
6435 u32 *regs;
6436
6437 regs = kzalloc(TG3_REG_BLK_SIZE, GFP_ATOMIC);
6438 if (!regs)
6439 return;
6440
6441 if (tg3_flag(tp, PCI_EXPRESS)) {
6442 /* Read up to but not including private PCI registers */
6443 for (i = 0; i < TG3_PCIE_TLDLPL_PORT; i += sizeof(u32))
6444 regs[i / sizeof(u32)] = tr32(i);
6445 } else
6446 tg3_dump_legacy_regs(tp, regs);
6447
6448 for (i = 0; i < TG3_REG_BLK_SIZE / sizeof(u32); i += 4) {
6449 if (!regs[i + 0] && !regs[i + 1] &&
6450 !regs[i + 2] && !regs[i + 3])
6451 continue;
6452
6453 netdev_err(tp->dev, "0x%08x: 0x%08x, 0x%08x, 0x%08x, 0x%08x\n",
6454 i * 4,
6455 regs[i + 0], regs[i + 1], regs[i + 2], regs[i + 3]);
6456 }
6457
6458 kfree(regs);
6459
6460 for (i = 0; i < tp->irq_cnt; i++) {
6461 struct tg3_napi *tnapi = &tp->napi[i];
6462
6463 /* SW status block */
6464 netdev_err(tp->dev,
6465 "%d: Host status block [%08x:%08x:(%04x:%04x:%04x):(%04x:%04x)]\n",
6466 i,
6467 tnapi->hw_status->status,
6468 tnapi->hw_status->status_tag,
6469 tnapi->hw_status->rx_jumbo_consumer,
6470 tnapi->hw_status->rx_consumer,
6471 tnapi->hw_status->rx_mini_consumer,
6472 tnapi->hw_status->idx[0].rx_producer,
6473 tnapi->hw_status->idx[0].tx_consumer);
6474
6475 netdev_err(tp->dev,
6476 "%d: NAPI info [%08x:%08x:(%04x:%04x:%04x):%04x:(%04x:%04x:%04x:%04x)]\n",
6477 i,
6478 tnapi->last_tag, tnapi->last_irq_tag,
6479 tnapi->tx_prod, tnapi->tx_cons, tnapi->tx_pending,
6480 tnapi->rx_rcb_ptr,
6481 tnapi->prodring.rx_std_prod_idx,
6482 tnapi->prodring.rx_std_cons_idx,
6483 tnapi->prodring.rx_jmb_prod_idx,
6484 tnapi->prodring.rx_jmb_cons_idx);
6485 }
6486 }
6487
6488 /* This is called whenever we suspect that the system chipset is re-
6489 * ordering the sequence of MMIO to the tx send mailbox. The symptom
6490 * is bogus tx completions. We try to recover by setting the
6491 * TG3_FLAG_MBOX_WRITE_REORDER flag and resetting the chip later
6492 * in the workqueue.
6493 */
6494 static void tg3_tx_recover(struct tg3 *tp)
6495 {
6496 BUG_ON(tg3_flag(tp, MBOX_WRITE_REORDER) ||
6497 tp->write32_tx_mbox == tg3_write_indirect_mbox);
6498
6499 netdev_warn(tp->dev,
6500 "The system may be re-ordering memory-mapped I/O "
6501 "cycles to the network device, attempting to recover. "
6502 "Please report the problem to the driver maintainer "
6503 "and include system chipset information.\n");
6504
6505 tg3_flag_set(tp, TX_RECOVERY_PENDING);
6506 }
6507
6508 static inline u32 tg3_tx_avail(struct tg3_napi *tnapi)
6509 {
6510 /* Tell compiler to fetch tx indices from memory. */
6511 barrier();
6512 return tnapi->tx_pending -
6513 ((tnapi->tx_prod - tnapi->tx_cons) & (TG3_TX_RING_SIZE - 1));
6514 }
6515
6516 /* Tigon3 never reports partial packet sends. So we do not
6517 * need special logic to handle SKBs that have not had all
6518 * of their frags sent yet, like SunGEM does.
6519 */
6520 static void tg3_tx(struct tg3_napi *tnapi)
6521 {
6522 struct tg3 *tp = tnapi->tp;
6523 u32 hw_idx = tnapi->hw_status->idx[0].tx_consumer;
6524 u32 sw_idx = tnapi->tx_cons;
6525 struct netdev_queue *txq;
6526 int index = tnapi - tp->napi;
6527 unsigned int pkts_compl = 0, bytes_compl = 0;
6528
6529 if (tg3_flag(tp, ENABLE_TSS))
6530 index--;
6531
6532 txq = netdev_get_tx_queue(tp->dev, index);
6533
6534 while (sw_idx != hw_idx) {
6535 struct tg3_tx_ring_info *ri = &tnapi->tx_buffers[sw_idx];
6536 struct sk_buff *skb = ri->skb;
6537 int i, tx_bug = 0;
6538
6539 if (unlikely(skb == NULL)) {
6540 tg3_tx_recover(tp);
6541 return;
6542 }
6543
6544 if (tnapi->tx_ring[sw_idx].len_flags & TXD_FLAG_HWTSTAMP) {
6545 struct skb_shared_hwtstamps timestamp;
6546 u64 hwclock = tr32(TG3_TX_TSTAMP_LSB);
6547 hwclock |= (u64)tr32(TG3_TX_TSTAMP_MSB) << 32;
6548
6549 tg3_hwclock_to_timestamp(tp, hwclock, &timestamp);
6550
6551 skb_tstamp_tx(skb, &timestamp);
6552 }
6553
6554 pci_unmap_single(tp->pdev,
6555 dma_unmap_addr(ri, mapping),
6556 skb_headlen(skb),
6557 PCI_DMA_TODEVICE);
6558
6559 ri->skb = NULL;
6560
6561 while (ri->fragmented) {
6562 ri->fragmented = false;
6563 sw_idx = NEXT_TX(sw_idx);
6564 ri = &tnapi->tx_buffers[sw_idx];
6565 }
6566
6567 sw_idx = NEXT_TX(sw_idx);
6568
6569 for (i = 0; i < skb_shinfo(skb)->nr_frags; i++) {
6570 ri = &tnapi->tx_buffers[sw_idx];
6571 if (unlikely(ri->skb != NULL || sw_idx == hw_idx))
6572 tx_bug = 1;
6573
6574 pci_unmap_page(tp->pdev,
6575 dma_unmap_addr(ri, mapping),
6576 skb_frag_size(&skb_shinfo(skb)->frags[i]),
6577 PCI_DMA_TODEVICE);
6578
6579 while (ri->fragmented) {
6580 ri->fragmented = false;
6581 sw_idx = NEXT_TX(sw_idx);
6582 ri = &tnapi->tx_buffers[sw_idx];
6583 }
6584
6585 sw_idx = NEXT_TX(sw_idx);
6586 }
6587
6588 pkts_compl++;
6589 bytes_compl += skb->len;
6590
6591 dev_kfree_skb_any(skb);
6592
6593 if (unlikely(tx_bug)) {
6594 tg3_tx_recover(tp);
6595 return;
6596 }
6597 }
6598
6599 netdev_tx_completed_queue(txq, pkts_compl, bytes_compl);
6600
6601 tnapi->tx_cons = sw_idx;
6602
6603 /* Need to make the tx_cons update visible to tg3_start_xmit()
6604 * before checking for netif_queue_stopped(). Without the
6605 * memory barrier, there is a small possibility that tg3_start_xmit()
6606 * will miss it and cause the queue to be stopped forever.
6607 */
6608 smp_mb();
6609
6610 if (unlikely(netif_tx_queue_stopped(txq) &&
6611 (tg3_tx_avail(tnapi) > TG3_TX_WAKEUP_THRESH(tnapi)))) {
6612 __netif_tx_lock(txq, smp_processor_id());
6613 if (netif_tx_queue_stopped(txq) &&
6614 (tg3_tx_avail(tnapi) > TG3_TX_WAKEUP_THRESH(tnapi)))
6615 netif_tx_wake_queue(txq);
6616 __netif_tx_unlock(txq);
6617 }
6618 }
6619
6620 static void tg3_frag_free(bool is_frag, void *data)
6621 {
6622 if (is_frag)
6623 put_page(virt_to_head_page(data));
6624 else
6625 kfree(data);
6626 }
6627
6628 static void tg3_rx_data_free(struct tg3 *tp, struct ring_info *ri, u32 map_sz)
6629 {
6630 unsigned int skb_size = SKB_DATA_ALIGN(map_sz + TG3_RX_OFFSET(tp)) +
6631 SKB_DATA_ALIGN(sizeof(struct skb_shared_info));
6632
6633 if (!ri->data)
6634 return;
6635
6636 pci_unmap_single(tp->pdev, dma_unmap_addr(ri, mapping),
6637 map_sz, PCI_DMA_FROMDEVICE);
6638 tg3_frag_free(skb_size <= PAGE_SIZE, ri->data);
6639 ri->data = NULL;
6640 }
6641
6642
6643 /* Returns size of skb allocated or < 0 on error.
6644 *
6645 * We only need to fill in the address because the other members
6646 * of the RX descriptor are invariant, see tg3_init_rings.
6647 *
6648 * Note the purposeful assymetry of cpu vs. chip accesses. For
6649 * posting buffers we only dirty the first cache line of the RX
6650 * descriptor (containing the address). Whereas for the RX status
6651 * buffers the cpu only reads the last cacheline of the RX descriptor
6652 * (to fetch the error flags, vlan tag, checksum, and opaque cookie).
6653 */
6654 static int tg3_alloc_rx_data(struct tg3 *tp, struct tg3_rx_prodring_set *tpr,
6655 u32 opaque_key, u32 dest_idx_unmasked,
6656 unsigned int *frag_size)
6657 {
6658 struct tg3_rx_buffer_desc *desc;
6659 struct ring_info *map;
6660 u8 *data;
6661 dma_addr_t mapping;
6662 int skb_size, data_size, dest_idx;
6663
6664 switch (opaque_key) {
6665 case RXD_OPAQUE_RING_STD:
6666 dest_idx = dest_idx_unmasked & tp->rx_std_ring_mask;
6667 desc = &tpr->rx_std[dest_idx];
6668 map = &tpr->rx_std_buffers[dest_idx];
6669 data_size = tp->rx_pkt_map_sz;
6670 break;
6671
6672 case RXD_OPAQUE_RING_JUMBO:
6673 dest_idx = dest_idx_unmasked & tp->rx_jmb_ring_mask;
6674 desc = &tpr->rx_jmb[dest_idx].std;
6675 map = &tpr->rx_jmb_buffers[dest_idx];
6676 data_size = TG3_RX_JMB_MAP_SZ;
6677 break;
6678
6679 default:
6680 return -EINVAL;
6681 }
6682
6683 /* Do not overwrite any of the map or rp information
6684 * until we are sure we can commit to a new buffer.
6685 *
6686 * Callers depend upon this behavior and assume that
6687 * we leave everything unchanged if we fail.
6688 */
6689 skb_size = SKB_DATA_ALIGN(data_size + TG3_RX_OFFSET(tp)) +
6690 SKB_DATA_ALIGN(sizeof(struct skb_shared_info));
6691 if (skb_size <= PAGE_SIZE) {
6692 data = netdev_alloc_frag(skb_size);
6693 *frag_size = skb_size;
6694 } else {
6695 data = kmalloc(skb_size, GFP_ATOMIC);
6696 *frag_size = 0;
6697 }
6698 if (!data)
6699 return -ENOMEM;
6700
6701 mapping = pci_map_single(tp->pdev,
6702 data + TG3_RX_OFFSET(tp),
6703 data_size,
6704 PCI_DMA_FROMDEVICE);
6705 if (unlikely(pci_dma_mapping_error(tp->pdev, mapping))) {
6706 tg3_frag_free(skb_size <= PAGE_SIZE, data);
6707 return -EIO;
6708 }
6709
6710 map->data = data;
6711 dma_unmap_addr_set(map, mapping, mapping);
6712
6713 desc->addr_hi = ((u64)mapping >> 32);
6714 desc->addr_lo = ((u64)mapping & 0xffffffff);
6715
6716 return data_size;
6717 }
6718
6719 /* We only need to move over in the address because the other
6720 * members of the RX descriptor are invariant. See notes above
6721 * tg3_alloc_rx_data for full details.
6722 */
6723 static void tg3_recycle_rx(struct tg3_napi *tnapi,
6724 struct tg3_rx_prodring_set *dpr,
6725 u32 opaque_key, int src_idx,
6726 u32 dest_idx_unmasked)
6727 {
6728 struct tg3 *tp = tnapi->tp;
6729 struct tg3_rx_buffer_desc *src_desc, *dest_desc;
6730 struct ring_info *src_map, *dest_map;
6731 struct tg3_rx_prodring_set *spr = &tp->napi[0].prodring;
6732 int dest_idx;
6733
6734 switch (opaque_key) {
6735 case RXD_OPAQUE_RING_STD:
6736 dest_idx = dest_idx_unmasked & tp->rx_std_ring_mask;
6737 dest_desc = &dpr->rx_std[dest_idx];
6738 dest_map = &dpr->rx_std_buffers[dest_idx];
6739 src_desc = &spr->rx_std[src_idx];
6740 src_map = &spr->rx_std_buffers[src_idx];
6741 break;
6742
6743 case RXD_OPAQUE_RING_JUMBO:
6744 dest_idx = dest_idx_unmasked & tp->rx_jmb_ring_mask;
6745 dest_desc = &dpr->rx_jmb[dest_idx].std;
6746 dest_map = &dpr->rx_jmb_buffers[dest_idx];
6747 src_desc = &spr->rx_jmb[src_idx].std;
6748 src_map = &spr->rx_jmb_buffers[src_idx];
6749 break;
6750
6751 default:
6752 return;
6753 }
6754
6755 dest_map->data = src_map->data;
6756 dma_unmap_addr_set(dest_map, mapping,
6757 dma_unmap_addr(src_map, mapping));
6758 dest_desc->addr_hi = src_desc->addr_hi;
6759 dest_desc->addr_lo = src_desc->addr_lo;
6760
6761 /* Ensure that the update to the skb happens after the physical
6762 * addresses have been transferred to the new BD location.
6763 */
6764 smp_wmb();
6765
6766 src_map->data = NULL;
6767 }
6768
6769 /* The RX ring scheme is composed of multiple rings which post fresh
6770 * buffers to the chip, and one special ring the chip uses to report
6771 * status back to the host.
6772 *
6773 * The special ring reports the status of received packets to the
6774 * host. The chip does not write into the original descriptor the
6775 * RX buffer was obtained from. The chip simply takes the original
6776 * descriptor as provided by the host, updates the status and length
6777 * field, then writes this into the next status ring entry.
6778 *
6779 * Each ring the host uses to post buffers to the chip is described
6780 * by a TG3_BDINFO entry in the chips SRAM area. When a packet arrives,
6781 * it is first placed into the on-chip ram. When the packet's length
6782 * is known, it walks down the TG3_BDINFO entries to select the ring.
6783 * Each TG3_BDINFO specifies a MAXLEN field and the first TG3_BDINFO
6784 * which is within the range of the new packet's length is chosen.
6785 *
6786 * The "separate ring for rx status" scheme may sound queer, but it makes
6787 * sense from a cache coherency perspective. If only the host writes
6788 * to the buffer post rings, and only the chip writes to the rx status
6789 * rings, then cache lines never move beyond shared-modified state.
6790 * If both the host and chip were to write into the same ring, cache line
6791 * eviction could occur since both entities want it in an exclusive state.
6792 */
6793 static int tg3_rx(struct tg3_napi *tnapi, int budget)
6794 {
6795 struct tg3 *tp = tnapi->tp;
6796 u32 work_mask, rx_std_posted = 0;
6797 u32 std_prod_idx, jmb_prod_idx;
6798 u32 sw_idx = tnapi->rx_rcb_ptr;
6799 u16 hw_idx;
6800 int received;
6801 struct tg3_rx_prodring_set *tpr = &tnapi->prodring;
6802
6803 hw_idx = *(tnapi->rx_rcb_prod_idx);
6804 /*
6805 * We need to order the read of hw_idx and the read of
6806 * the opaque cookie.
6807 */
6808 rmb();
6809 work_mask = 0;
6810 received = 0;
6811 std_prod_idx = tpr->rx_std_prod_idx;
6812 jmb_prod_idx = tpr->rx_jmb_prod_idx;
6813 while (sw_idx != hw_idx && budget > 0) {
6814 struct ring_info *ri;
6815 struct tg3_rx_buffer_desc *desc = &tnapi->rx_rcb[sw_idx];
6816 unsigned int len;
6817 struct sk_buff *skb;
6818 dma_addr_t dma_addr;
6819 u32 opaque_key, desc_idx, *post_ptr;
6820 u8 *data;
6821 u64 tstamp = 0;
6822
6823 desc_idx = desc->opaque & RXD_OPAQUE_INDEX_MASK;
6824 opaque_key = desc->opaque & RXD_OPAQUE_RING_MASK;
6825 if (opaque_key == RXD_OPAQUE_RING_STD) {
6826 ri = &tp->napi[0].prodring.rx_std_buffers[desc_idx];
6827 dma_addr = dma_unmap_addr(ri, mapping);
6828 data = ri->data;
6829 post_ptr = &std_prod_idx;
6830 rx_std_posted++;
6831 } else if (opaque_key == RXD_OPAQUE_RING_JUMBO) {
6832 ri = &tp->napi[0].prodring.rx_jmb_buffers[desc_idx];
6833 dma_addr = dma_unmap_addr(ri, mapping);
6834 data = ri->data;
6835 post_ptr = &jmb_prod_idx;
6836 } else
6837 goto next_pkt_nopost;
6838
6839 work_mask |= opaque_key;
6840
6841 if (desc->err_vlan & RXD_ERR_MASK) {
6842 drop_it:
6843 tg3_recycle_rx(tnapi, tpr, opaque_key,
6844 desc_idx, *post_ptr);
6845 drop_it_no_recycle:
6846 /* Other statistics kept track of by card. */
6847 tp->rx_dropped++;
6848 goto next_pkt;
6849 }
6850
6851 prefetch(data + TG3_RX_OFFSET(tp));
6852 len = ((desc->idx_len & RXD_LEN_MASK) >> RXD_LEN_SHIFT) -
6853 ETH_FCS_LEN;
6854
6855 if ((desc->type_flags & RXD_FLAG_PTPSTAT_MASK) ==
6856 RXD_FLAG_PTPSTAT_PTPV1 ||
6857 (desc->type_flags & RXD_FLAG_PTPSTAT_MASK) ==
6858 RXD_FLAG_PTPSTAT_PTPV2) {
6859 tstamp = tr32(TG3_RX_TSTAMP_LSB);
6860 tstamp |= (u64)tr32(TG3_RX_TSTAMP_MSB) << 32;
6861 }
6862
6863 if (len > TG3_RX_COPY_THRESH(tp)) {
6864 int skb_size;
6865 unsigned int frag_size;
6866
6867 skb_size = tg3_alloc_rx_data(tp, tpr, opaque_key,
6868 *post_ptr, &frag_size);
6869 if (skb_size < 0)
6870 goto drop_it;
6871
6872 pci_unmap_single(tp->pdev, dma_addr, skb_size,
6873 PCI_DMA_FROMDEVICE);
6874
6875 /* Ensure that the update to the data happens
6876 * after the usage of the old DMA mapping.
6877 */
6878 smp_wmb();
6879
6880 ri->data = NULL;
6881
6882 skb = build_skb(data, frag_size);
6883 if (!skb) {
6884 tg3_frag_free(frag_size != 0, data);
6885 goto drop_it_no_recycle;
6886 }
6887 skb_reserve(skb, TG3_RX_OFFSET(tp));
6888 } else {
6889 tg3_recycle_rx(tnapi, tpr, opaque_key,
6890 desc_idx, *post_ptr);
6891
6892 skb = netdev_alloc_skb(tp->dev,
6893 len + TG3_RAW_IP_ALIGN);
6894 if (skb == NULL)
6895 goto drop_it_no_recycle;
6896
6897 skb_reserve(skb, TG3_RAW_IP_ALIGN);
6898 pci_dma_sync_single_for_cpu(tp->pdev, dma_addr, len, PCI_DMA_FROMDEVICE);
6899 memcpy(skb->data,
6900 data + TG3_RX_OFFSET(tp),
6901 len);
6902 pci_dma_sync_single_for_device(tp->pdev, dma_addr, len, PCI_DMA_FROMDEVICE);
6903 }
6904
6905 skb_put(skb, len);
6906 if (tstamp)
6907 tg3_hwclock_to_timestamp(tp, tstamp,
6908 skb_hwtstamps(skb));
6909
6910 if ((tp->dev->features & NETIF_F_RXCSUM) &&
6911 (desc->type_flags & RXD_FLAG_TCPUDP_CSUM) &&
6912 (((desc->ip_tcp_csum & RXD_TCPCSUM_MASK)
6913 >> RXD_TCPCSUM_SHIFT) == 0xffff))
6914 skb->ip_summed = CHECKSUM_UNNECESSARY;
6915 else
6916 skb_checksum_none_assert(skb);
6917
6918 skb->protocol = eth_type_trans(skb, tp->dev);
6919
6920 if (len > (tp->dev->mtu + ETH_HLEN) &&
6921 skb->protocol != htons(ETH_P_8021Q) &&
6922 skb->protocol != htons(ETH_P_8021AD)) {
6923 dev_kfree_skb_any(skb);
6924 goto drop_it_no_recycle;
6925 }
6926
6927 if (desc->type_flags & RXD_FLAG_VLAN &&
6928 !(tp->rx_mode & RX_MODE_KEEP_VLAN_TAG))
6929 __vlan_hwaccel_put_tag(skb, htons(ETH_P_8021Q),
6930 desc->err_vlan & RXD_VLAN_MASK);
6931
6932 napi_gro_receive(&tnapi->napi, skb);
6933
6934 received++;
6935 budget--;
6936
6937 next_pkt:
6938 (*post_ptr)++;
6939
6940 if (unlikely(rx_std_posted >= tp->rx_std_max_post)) {
6941 tpr->rx_std_prod_idx = std_prod_idx &
6942 tp->rx_std_ring_mask;
6943 tw32_rx_mbox(TG3_RX_STD_PROD_IDX_REG,
6944 tpr->rx_std_prod_idx);
6945 work_mask &= ~RXD_OPAQUE_RING_STD;
6946 rx_std_posted = 0;
6947 }
6948 next_pkt_nopost:
6949 sw_idx++;
6950 sw_idx &= tp->rx_ret_ring_mask;
6951
6952 /* Refresh hw_idx to see if there is new work */
6953 if (sw_idx == hw_idx) {
6954 hw_idx = *(tnapi->rx_rcb_prod_idx);
6955 rmb();
6956 }
6957 }
6958
6959 /* ACK the status ring. */
6960 tnapi->rx_rcb_ptr = sw_idx;
6961 tw32_rx_mbox(tnapi->consmbox, sw_idx);
6962
6963 /* Refill RX ring(s). */
6964 if (!tg3_flag(tp, ENABLE_RSS)) {
6965 /* Sync BD data before updating mailbox */
6966 wmb();
6967
6968 if (work_mask & RXD_OPAQUE_RING_STD) {
6969 tpr->rx_std_prod_idx = std_prod_idx &
6970 tp->rx_std_ring_mask;
6971 tw32_rx_mbox(TG3_RX_STD_PROD_IDX_REG,
6972 tpr->rx_std_prod_idx);
6973 }
6974 if (work_mask & RXD_OPAQUE_RING_JUMBO) {
6975 tpr->rx_jmb_prod_idx = jmb_prod_idx &
6976 tp->rx_jmb_ring_mask;
6977 tw32_rx_mbox(TG3_RX_JMB_PROD_IDX_REG,
6978 tpr->rx_jmb_prod_idx);
6979 }
6980 mmiowb();
6981 } else if (work_mask) {
6982 /* rx_std_buffers[] and rx_jmb_buffers[] entries must be
6983 * updated before the producer indices can be updated.
6984 */
6985 smp_wmb();
6986
6987 tpr->rx_std_prod_idx = std_prod_idx & tp->rx_std_ring_mask;
6988 tpr->rx_jmb_prod_idx = jmb_prod_idx & tp->rx_jmb_ring_mask;
6989
6990 if (tnapi != &tp->napi[1]) {
6991 tp->rx_refill = true;
6992 napi_schedule(&tp->napi[1].napi);
6993 }
6994 }
6995
6996 return received;
6997 }
6998
6999 static void tg3_poll_link(struct tg3 *tp)
7000 {
7001 /* handle link change and other phy events */
7002 if (!(tg3_flag(tp, USE_LINKCHG_REG) || tg3_flag(tp, POLL_SERDES))) {
7003 struct tg3_hw_status *sblk = tp->napi[0].hw_status;
7004
7005 if (sblk->status & SD_STATUS_LINK_CHG) {
7006 sblk->status = SD_STATUS_UPDATED |
7007 (sblk->status & ~SD_STATUS_LINK_CHG);
7008 spin_lock(&tp->lock);
7009 if (tg3_flag(tp, USE_PHYLIB)) {
7010 tw32_f(MAC_STATUS,
7011 (MAC_STATUS_SYNC_CHANGED |
7012 MAC_STATUS_CFG_CHANGED |
7013 MAC_STATUS_MI_COMPLETION |
7014 MAC_STATUS_LNKSTATE_CHANGED));
7015 udelay(40);
7016 } else
7017 tg3_setup_phy(tp, false);
7018 spin_unlock(&tp->lock);
7019 }
7020 }
7021 }
7022
7023 static int tg3_rx_prodring_xfer(struct tg3 *tp,
7024 struct tg3_rx_prodring_set *dpr,
7025 struct tg3_rx_prodring_set *spr)
7026 {
7027 u32 si, di, cpycnt, src_prod_idx;
7028 int i, err = 0;
7029
7030 while (1) {
7031 src_prod_idx = spr->rx_std_prod_idx;
7032
7033 /* Make sure updates to the rx_std_buffers[] entries and the
7034 * standard producer index are seen in the correct order.
7035 */
7036 smp_rmb();
7037
7038 if (spr->rx_std_cons_idx == src_prod_idx)
7039 break;
7040
7041 if (spr->rx_std_cons_idx < src_prod_idx)
7042 cpycnt = src_prod_idx - spr->rx_std_cons_idx;
7043 else
7044 cpycnt = tp->rx_std_ring_mask + 1 -
7045 spr->rx_std_cons_idx;
7046
7047 cpycnt = min(cpycnt,
7048 tp->rx_std_ring_mask + 1 - dpr->rx_std_prod_idx);
7049
7050 si = spr->rx_std_cons_idx;
7051 di = dpr->rx_std_prod_idx;
7052
7053 for (i = di; i < di + cpycnt; i++) {
7054 if (dpr->rx_std_buffers[i].data) {
7055 cpycnt = i - di;
7056 err = -ENOSPC;
7057 break;
7058 }
7059 }
7060
7061 if (!cpycnt)
7062 break;
7063
7064 /* Ensure that updates to the rx_std_buffers ring and the
7065 * shadowed hardware producer ring from tg3_recycle_skb() are
7066 * ordered correctly WRT the skb check above.
7067 */
7068 smp_rmb();
7069
7070 memcpy(&dpr->rx_std_buffers[di],
7071 &spr->rx_std_buffers[si],
7072 cpycnt * sizeof(struct ring_info));
7073
7074 for (i = 0; i < cpycnt; i++, di++, si++) {
7075 struct tg3_rx_buffer_desc *sbd, *dbd;
7076 sbd = &spr->rx_std[si];
7077 dbd = &dpr->rx_std[di];
7078 dbd->addr_hi = sbd->addr_hi;
7079 dbd->addr_lo = sbd->addr_lo;
7080 }
7081
7082 spr->rx_std_cons_idx = (spr->rx_std_cons_idx + cpycnt) &
7083 tp->rx_std_ring_mask;
7084 dpr->rx_std_prod_idx = (dpr->rx_std_prod_idx + cpycnt) &
7085 tp->rx_std_ring_mask;
7086 }
7087
7088 while (1) {
7089 src_prod_idx = spr->rx_jmb_prod_idx;
7090
7091 /* Make sure updates to the rx_jmb_buffers[] entries and
7092 * the jumbo producer index are seen in the correct order.
7093 */
7094 smp_rmb();
7095
7096 if (spr->rx_jmb_cons_idx == src_prod_idx)
7097 break;
7098
7099 if (spr->rx_jmb_cons_idx < src_prod_idx)
7100 cpycnt = src_prod_idx - spr->rx_jmb_cons_idx;
7101 else
7102 cpycnt = tp->rx_jmb_ring_mask + 1 -
7103 spr->rx_jmb_cons_idx;
7104
7105 cpycnt = min(cpycnt,
7106 tp->rx_jmb_ring_mask + 1 - dpr->rx_jmb_prod_idx);
7107
7108 si = spr->rx_jmb_cons_idx;
7109 di = dpr->rx_jmb_prod_idx;
7110
7111 for (i = di; i < di + cpycnt; i++) {
7112 if (dpr->rx_jmb_buffers[i].data) {
7113 cpycnt = i - di;
7114 err = -ENOSPC;
7115 break;
7116 }
7117 }
7118
7119 if (!cpycnt)
7120 break;
7121
7122 /* Ensure that updates to the rx_jmb_buffers ring and the
7123 * shadowed hardware producer ring from tg3_recycle_skb() are
7124 * ordered correctly WRT the skb check above.
7125 */
7126 smp_rmb();
7127
7128 memcpy(&dpr->rx_jmb_buffers[di],
7129 &spr->rx_jmb_buffers[si],
7130 cpycnt * sizeof(struct ring_info));
7131
7132 for (i = 0; i < cpycnt; i++, di++, si++) {
7133 struct tg3_rx_buffer_desc *sbd, *dbd;
7134 sbd = &spr->rx_jmb[si].std;
7135 dbd = &dpr->rx_jmb[di].std;
7136 dbd->addr_hi = sbd->addr_hi;
7137 dbd->addr_lo = sbd->addr_lo;
7138 }
7139
7140 spr->rx_jmb_cons_idx = (spr->rx_jmb_cons_idx + cpycnt) &
7141 tp->rx_jmb_ring_mask;
7142 dpr->rx_jmb_prod_idx = (dpr->rx_jmb_prod_idx + cpycnt) &
7143 tp->rx_jmb_ring_mask;
7144 }
7145
7146 return err;
7147 }
7148
7149 static int tg3_poll_work(struct tg3_napi *tnapi, int work_done, int budget)
7150 {
7151 struct tg3 *tp = tnapi->tp;
7152
7153 /* run TX completion thread */
7154 if (tnapi->hw_status->idx[0].tx_consumer != tnapi->tx_cons) {
7155 tg3_tx(tnapi);
7156 if (unlikely(tg3_flag(tp, TX_RECOVERY_PENDING)))
7157 return work_done;
7158 }
7159
7160 if (!tnapi->rx_rcb_prod_idx)
7161 return work_done;
7162
7163 /* run RX thread, within the bounds set by NAPI.
7164 * All RX "locking" is done by ensuring outside
7165 * code synchronizes with tg3->napi.poll()
7166 */
7167 if (*(tnapi->rx_rcb_prod_idx) != tnapi->rx_rcb_ptr)
7168 work_done += tg3_rx(tnapi, budget - work_done);
7169
7170 if (tg3_flag(tp, ENABLE_RSS) && tnapi == &tp->napi[1]) {
7171 struct tg3_rx_prodring_set *dpr = &tp->napi[0].prodring;
7172 int i, err = 0;
7173 u32 std_prod_idx = dpr->rx_std_prod_idx;
7174 u32 jmb_prod_idx = dpr->rx_jmb_prod_idx;
7175
7176 tp->rx_refill = false;
7177 for (i = 1; i <= tp->rxq_cnt; i++)
7178 err |= tg3_rx_prodring_xfer(tp, dpr,
7179 &tp->napi[i].prodring);
7180
7181 wmb();
7182
7183 if (std_prod_idx != dpr->rx_std_prod_idx)
7184 tw32_rx_mbox(TG3_RX_STD_PROD_IDX_REG,
7185 dpr->rx_std_prod_idx);
7186
7187 if (jmb_prod_idx != dpr->rx_jmb_prod_idx)
7188 tw32_rx_mbox(TG3_RX_JMB_PROD_IDX_REG,
7189 dpr->rx_jmb_prod_idx);
7190
7191 mmiowb();
7192
7193 if (err)
7194 tw32_f(HOSTCC_MODE, tp->coal_now);
7195 }
7196
7197 return work_done;
7198 }
7199
7200 static inline void tg3_reset_task_schedule(struct tg3 *tp)
7201 {
7202 if (!test_and_set_bit(TG3_FLAG_RESET_TASK_PENDING, tp->tg3_flags))
7203 schedule_work(&tp->reset_task);
7204 }
7205
7206 static inline void tg3_reset_task_cancel(struct tg3 *tp)
7207 {
7208 cancel_work_sync(&tp->reset_task);
7209 tg3_flag_clear(tp, RESET_TASK_PENDING);
7210 tg3_flag_clear(tp, TX_RECOVERY_PENDING);
7211 }
7212
7213 static int tg3_poll_msix(struct napi_struct *napi, int budget)
7214 {
7215 struct tg3_napi *tnapi = container_of(napi, struct tg3_napi, napi);
7216 struct tg3 *tp = tnapi->tp;
7217 int work_done = 0;
7218 struct tg3_hw_status *sblk = tnapi->hw_status;
7219
7220 while (1) {
7221 work_done = tg3_poll_work(tnapi, work_done, budget);
7222
7223 if (unlikely(tg3_flag(tp, TX_RECOVERY_PENDING)))
7224 goto tx_recovery;
7225
7226 if (unlikely(work_done >= budget))
7227 break;
7228
7229 /* tp->last_tag is used in tg3_int_reenable() below
7230 * to tell the hw how much work has been processed,
7231 * so we must read it before checking for more work.
7232 */
7233 tnapi->last_tag = sblk->status_tag;
7234 tnapi->last_irq_tag = tnapi->last_tag;
7235 rmb();
7236
7237 /* check for RX/TX work to do */
7238 if (likely(sblk->idx[0].tx_consumer == tnapi->tx_cons &&
7239 *(tnapi->rx_rcb_prod_idx) == tnapi->rx_rcb_ptr)) {
7240
7241 /* This test here is not race free, but will reduce
7242 * the number of interrupts by looping again.
7243 */
7244 if (tnapi == &tp->napi[1] && tp->rx_refill)
7245 continue;
7246
7247 napi_complete(napi);
7248 /* Reenable interrupts. */
7249 tw32_mailbox(tnapi->int_mbox, tnapi->last_tag << 24);
7250
7251 /* This test here is synchronized by napi_schedule()
7252 * and napi_complete() to close the race condition.
7253 */
7254 if (unlikely(tnapi == &tp->napi[1] && tp->rx_refill)) {
7255 tw32(HOSTCC_MODE, tp->coalesce_mode |
7256 HOSTCC_MODE_ENABLE |
7257 tnapi->coal_now);
7258 }
7259 mmiowb();
7260 break;
7261 }
7262 }
7263
7264 return work_done;
7265
7266 tx_recovery:
7267 /* work_done is guaranteed to be less than budget. */
7268 napi_complete(napi);
7269 tg3_reset_task_schedule(tp);
7270 return work_done;
7271 }
7272
7273 static void tg3_process_error(struct tg3 *tp)
7274 {
7275 u32 val;
7276 bool real_error = false;
7277
7278 if (tg3_flag(tp, ERROR_PROCESSED))
7279 return;
7280
7281 /* Check Flow Attention register */
7282 val = tr32(HOSTCC_FLOW_ATTN);
7283 if (val & ~HOSTCC_FLOW_ATTN_MBUF_LWM) {
7284 netdev_err(tp->dev, "FLOW Attention error. Resetting chip.\n");
7285 real_error = true;
7286 }
7287
7288 if (tr32(MSGINT_STATUS) & ~MSGINT_STATUS_MSI_REQ) {
7289 netdev_err(tp->dev, "MSI Status error. Resetting chip.\n");
7290 real_error = true;
7291 }
7292
7293 if (tr32(RDMAC_STATUS) || tr32(WDMAC_STATUS)) {
7294 netdev_err(tp->dev, "DMA Status error. Resetting chip.\n");
7295 real_error = true;
7296 }
7297
7298 if (!real_error)
7299 return;
7300
7301 tg3_dump_state(tp);
7302
7303 tg3_flag_set(tp, ERROR_PROCESSED);
7304 tg3_reset_task_schedule(tp);
7305 }
7306
7307 static int tg3_poll(struct napi_struct *napi, int budget)
7308 {
7309 struct tg3_napi *tnapi = container_of(napi, struct tg3_napi, napi);
7310 struct tg3 *tp = tnapi->tp;
7311 int work_done = 0;
7312 struct tg3_hw_status *sblk = tnapi->hw_status;
7313
7314 while (1) {
7315 if (sblk->status & SD_STATUS_ERROR)
7316 tg3_process_error(tp);
7317
7318 tg3_poll_link(tp);
7319
7320 work_done = tg3_poll_work(tnapi, work_done, budget);
7321
7322 if (unlikely(tg3_flag(tp, TX_RECOVERY_PENDING)))
7323 goto tx_recovery;
7324
7325 if (unlikely(work_done >= budget))
7326 break;
7327
7328 if (tg3_flag(tp, TAGGED_STATUS)) {
7329 /* tp->last_tag is used in tg3_int_reenable() below
7330 * to tell the hw how much work has been processed,
7331 * so we must read it before checking for more work.
7332 */
7333 tnapi->last_tag = sblk->status_tag;
7334 tnapi->last_irq_tag = tnapi->last_tag;
7335 rmb();
7336 } else
7337 sblk->status &= ~SD_STATUS_UPDATED;
7338
7339 if (likely(!tg3_has_work(tnapi))) {
7340 napi_complete(napi);
7341 tg3_int_reenable(tnapi);
7342 break;
7343 }
7344 }
7345
7346 return work_done;
7347
7348 tx_recovery:
7349 /* work_done is guaranteed to be less than budget. */
7350 napi_complete(napi);
7351 tg3_reset_task_schedule(tp);
7352 return work_done;
7353 }
7354
7355 static void tg3_napi_disable(struct tg3 *tp)
7356 {
7357 int i;
7358
7359 for (i = tp->irq_cnt - 1; i >= 0; i--)
7360 napi_disable(&tp->napi[i].napi);
7361 }
7362
7363 static void tg3_napi_enable(struct tg3 *tp)
7364 {
7365 int i;
7366
7367 for (i = 0; i < tp->irq_cnt; i++)
7368 napi_enable(&tp->napi[i].napi);
7369 }
7370
7371 static void tg3_napi_init(struct tg3 *tp)
7372 {
7373 int i;
7374
7375 netif_napi_add(tp->dev, &tp->napi[0].napi, tg3_poll, 64);
7376 for (i = 1; i < tp->irq_cnt; i++)
7377 netif_napi_add(tp->dev, &tp->napi[i].napi, tg3_poll_msix, 64);
7378 }
7379
7380 static void tg3_napi_fini(struct tg3 *tp)
7381 {
7382 int i;
7383
7384 for (i = 0; i < tp->irq_cnt; i++)
7385 netif_napi_del(&tp->napi[i].napi);
7386 }
7387
7388 static inline void tg3_netif_stop(struct tg3 *tp)
7389 {
7390 tp->dev->trans_start = jiffies; /* prevent tx timeout */
7391 tg3_napi_disable(tp);
7392 netif_carrier_off(tp->dev);
7393 netif_tx_disable(tp->dev);
7394 }
7395
7396 /* tp->lock must be held */
7397 static inline void tg3_netif_start(struct tg3 *tp)
7398 {
7399 tg3_ptp_resume(tp);
7400
7401 /* NOTE: unconditional netif_tx_wake_all_queues is only
7402 * appropriate so long as all callers are assured to
7403 * have free tx slots (such as after tg3_init_hw)
7404 */
7405 netif_tx_wake_all_queues(tp->dev);
7406
7407 if (tp->link_up)
7408 netif_carrier_on(tp->dev);
7409
7410 tg3_napi_enable(tp);
7411 tp->napi[0].hw_status->status |= SD_STATUS_UPDATED;
7412 tg3_enable_ints(tp);
7413 }
7414
7415 static void tg3_irq_quiesce(struct tg3 *tp)
7416 {
7417 int i;
7418
7419 BUG_ON(tp->irq_sync);
7420
7421 tp->irq_sync = 1;
7422 smp_mb();
7423
7424 for (i = 0; i < tp->irq_cnt; i++)
7425 synchronize_irq(tp->napi[i].irq_vec);
7426 }
7427
7428 /* Fully shutdown all tg3 driver activity elsewhere in the system.
7429 * If irq_sync is non-zero, then the IRQ handler must be synchronized
7430 * with as well. Most of the time, this is not necessary except when
7431 * shutting down the device.
7432 */
7433 static inline void tg3_full_lock(struct tg3 *tp, int irq_sync)
7434 {
7435 spin_lock_bh(&tp->lock);
7436 if (irq_sync)
7437 tg3_irq_quiesce(tp);
7438 }
7439
7440 static inline void tg3_full_unlock(struct tg3 *tp)
7441 {
7442 spin_unlock_bh(&tp->lock);
7443 }
7444
7445 /* One-shot MSI handler - Chip automatically disables interrupt
7446 * after sending MSI so driver doesn't have to do it.
7447 */
7448 static irqreturn_t tg3_msi_1shot(int irq, void *dev_id)
7449 {
7450 struct tg3_napi *tnapi = dev_id;
7451 struct tg3 *tp = tnapi->tp;
7452
7453 prefetch(tnapi->hw_status);
7454 if (tnapi->rx_rcb)
7455 prefetch(&tnapi->rx_rcb[tnapi->rx_rcb_ptr]);
7456
7457 if (likely(!tg3_irq_sync(tp)))
7458 napi_schedule(&tnapi->napi);
7459
7460 return IRQ_HANDLED;
7461 }
7462
7463 /* MSI ISR - No need to check for interrupt sharing and no need to
7464 * flush status block and interrupt mailbox. PCI ordering rules
7465 * guarantee that MSI will arrive after the status block.
7466 */
7467 static irqreturn_t tg3_msi(int irq, void *dev_id)
7468 {
7469 struct tg3_napi *tnapi = dev_id;
7470 struct tg3 *tp = tnapi->tp;
7471
7472 prefetch(tnapi->hw_status);
7473 if (tnapi->rx_rcb)
7474 prefetch(&tnapi->rx_rcb[tnapi->rx_rcb_ptr]);
7475 /*
7476 * Writing any value to intr-mbox-0 clears PCI INTA# and
7477 * chip-internal interrupt pending events.
7478 * Writing non-zero to intr-mbox-0 additional tells the
7479 * NIC to stop sending us irqs, engaging "in-intr-handler"
7480 * event coalescing.
7481 */
7482 tw32_mailbox(tnapi->int_mbox, 0x00000001);
7483 if (likely(!tg3_irq_sync(tp)))
7484 napi_schedule(&tnapi->napi);
7485
7486 return IRQ_RETVAL(1);
7487 }
7488
7489 static irqreturn_t tg3_interrupt(int irq, void *dev_id)
7490 {
7491 struct tg3_napi *tnapi = dev_id;
7492 struct tg3 *tp = tnapi->tp;
7493 struct tg3_hw_status *sblk = tnapi->hw_status;
7494 unsigned int handled = 1;
7495
7496 /* In INTx mode, it is possible for the interrupt to arrive at
7497 * the CPU before the status block posted prior to the interrupt.
7498 * Reading the PCI State register will confirm whether the
7499 * interrupt is ours and will flush the status block.
7500 */
7501 if (unlikely(!(sblk->status & SD_STATUS_UPDATED))) {
7502 if (tg3_flag(tp, CHIP_RESETTING) ||
7503 (tr32(TG3PCI_PCISTATE) & PCISTATE_INT_NOT_ACTIVE)) {
7504 handled = 0;
7505 goto out;
7506 }
7507 }
7508
7509 /*
7510 * Writing any value to intr-mbox-0 clears PCI INTA# and
7511 * chip-internal interrupt pending events.
7512 * Writing non-zero to intr-mbox-0 additional tells the
7513 * NIC to stop sending us irqs, engaging "in-intr-handler"
7514 * event coalescing.
7515 *
7516 * Flush the mailbox to de-assert the IRQ immediately to prevent
7517 * spurious interrupts. The flush impacts performance but
7518 * excessive spurious interrupts can be worse in some cases.
7519 */
7520 tw32_mailbox_f(MAILBOX_INTERRUPT_0 + TG3_64BIT_REG_LOW, 0x00000001);
7521 if (tg3_irq_sync(tp))
7522 goto out;
7523 sblk->status &= ~SD_STATUS_UPDATED;
7524 if (likely(tg3_has_work(tnapi))) {
7525 prefetch(&tnapi->rx_rcb[tnapi->rx_rcb_ptr]);
7526 napi_schedule(&tnapi->napi);
7527 } else {
7528 /* No work, shared interrupt perhaps? re-enable
7529 * interrupts, and flush that PCI write
7530 */
7531 tw32_mailbox_f(MAILBOX_INTERRUPT_0 + TG3_64BIT_REG_LOW,
7532 0x00000000);
7533 }
7534 out:
7535 return IRQ_RETVAL(handled);
7536 }
7537
7538 static irqreturn_t tg3_interrupt_tagged(int irq, void *dev_id)
7539 {
7540 struct tg3_napi *tnapi = dev_id;
7541 struct tg3 *tp = tnapi->tp;
7542 struct tg3_hw_status *sblk = tnapi->hw_status;
7543 unsigned int handled = 1;
7544
7545 /* In INTx mode, it is possible for the interrupt to arrive at
7546 * the CPU before the status block posted prior to the interrupt.
7547 * Reading the PCI State register will confirm whether the
7548 * interrupt is ours and will flush the status block.
7549 */
7550 if (unlikely(sblk->status_tag == tnapi->last_irq_tag)) {
7551 if (tg3_flag(tp, CHIP_RESETTING) ||
7552 (tr32(TG3PCI_PCISTATE) & PCISTATE_INT_NOT_ACTIVE)) {
7553 handled = 0;
7554 goto out;
7555 }
7556 }
7557
7558 /*
7559 * writing any value to intr-mbox-0 clears PCI INTA# and
7560 * chip-internal interrupt pending events.
7561 * writing non-zero to intr-mbox-0 additional tells the
7562 * NIC to stop sending us irqs, engaging "in-intr-handler"
7563 * event coalescing.
7564 *
7565 * Flush the mailbox to de-assert the IRQ immediately to prevent
7566 * spurious interrupts. The flush impacts performance but
7567 * excessive spurious interrupts can be worse in some cases.
7568 */
7569 tw32_mailbox_f(MAILBOX_INTERRUPT_0 + TG3_64BIT_REG_LOW, 0x00000001);
7570
7571 /*
7572 * In a shared interrupt configuration, sometimes other devices'
7573 * interrupts will scream. We record the current status tag here
7574 * so that the above check can report that the screaming interrupts
7575 * are unhandled. Eventually they will be silenced.
7576 */
7577 tnapi->last_irq_tag = sblk->status_tag;
7578
7579 if (tg3_irq_sync(tp))
7580 goto out;
7581
7582 prefetch(&tnapi->rx_rcb[tnapi->rx_rcb_ptr]);
7583
7584 napi_schedule(&tnapi->napi);
7585
7586 out:
7587 return IRQ_RETVAL(handled);
7588 }
7589
7590 /* ISR for interrupt test */
7591 static irqreturn_t tg3_test_isr(int irq, void *dev_id)
7592 {
7593 struct tg3_napi *tnapi = dev_id;
7594 struct tg3 *tp = tnapi->tp;
7595 struct tg3_hw_status *sblk = tnapi->hw_status;
7596
7597 if ((sblk->status & SD_STATUS_UPDATED) ||
7598 !(tr32(TG3PCI_PCISTATE) & PCISTATE_INT_NOT_ACTIVE)) {
7599 tg3_disable_ints(tp);
7600 return IRQ_RETVAL(1);
7601 }
7602 return IRQ_RETVAL(0);
7603 }
7604
7605 #ifdef CONFIG_NET_POLL_CONTROLLER
7606 static void tg3_poll_controller(struct net_device *dev)
7607 {
7608 int i;
7609 struct tg3 *tp = netdev_priv(dev);
7610
7611 if (tg3_irq_sync(tp))
7612 return;
7613
7614 for (i = 0; i < tp->irq_cnt; i++)
7615 tg3_interrupt(tp->napi[i].irq_vec, &tp->napi[i]);
7616 }
7617 #endif
7618
7619 static void tg3_tx_timeout(struct net_device *dev)
7620 {
7621 struct tg3 *tp = netdev_priv(dev);
7622
7623 if (netif_msg_tx_err(tp)) {
7624 netdev_err(dev, "transmit timed out, resetting\n");
7625 tg3_dump_state(tp);
7626 }
7627
7628 tg3_reset_task_schedule(tp);
7629 }
7630
7631 /* Test for DMA buffers crossing any 4GB boundaries: 4G, 8G, etc */
7632 static inline int tg3_4g_overflow_test(dma_addr_t mapping, int len)
7633 {
7634 u32 base = (u32) mapping & 0xffffffff;
7635
7636 return base + len + 8 < base;
7637 }
7638
7639 /* Test for TSO DMA buffers that cross into regions which are within MSS bytes
7640 * of any 4GB boundaries: 4G, 8G, etc
7641 */
7642 static inline int tg3_4g_tso_overflow_test(struct tg3 *tp, dma_addr_t mapping,
7643 u32 len, u32 mss)
7644 {
7645 if (tg3_asic_rev(tp) == ASIC_REV_5762 && mss) {
7646 u32 base = (u32) mapping & 0xffffffff;
7647
7648 return ((base + len + (mss & 0x3fff)) < base);
7649 }
7650 return 0;
7651 }
7652
7653 /* Test for DMA addresses > 40-bit */
7654 static inline int tg3_40bit_overflow_test(struct tg3 *tp, dma_addr_t mapping,
7655 int len)
7656 {
7657 #if defined(CONFIG_HIGHMEM) && (BITS_PER_LONG == 64)
7658 if (tg3_flag(tp, 40BIT_DMA_BUG))
7659 return ((u64) mapping + len) > DMA_BIT_MASK(40);
7660 return 0;
7661 #else
7662 return 0;
7663 #endif
7664 }
7665
7666 static inline void tg3_tx_set_bd(struct tg3_tx_buffer_desc *txbd,
7667 dma_addr_t mapping, u32 len, u32 flags,
7668 u32 mss, u32 vlan)
7669 {
7670 txbd->addr_hi = ((u64) mapping >> 32);
7671 txbd->addr_lo = ((u64) mapping & 0xffffffff);
7672 txbd->len_flags = (len << TXD_LEN_SHIFT) | (flags & 0x0000ffff);
7673 txbd->vlan_tag = (mss << TXD_MSS_SHIFT) | (vlan << TXD_VLAN_TAG_SHIFT);
7674 }
7675
7676 static bool tg3_tx_frag_set(struct tg3_napi *tnapi, u32 *entry, u32 *budget,
7677 dma_addr_t map, u32 len, u32 flags,
7678 u32 mss, u32 vlan)
7679 {
7680 struct tg3 *tp = tnapi->tp;
7681 bool hwbug = false;
7682
7683 if (tg3_flag(tp, SHORT_DMA_BUG) && len <= 8)
7684 hwbug = true;
7685
7686 if (tg3_4g_overflow_test(map, len))
7687 hwbug = true;
7688
7689 if (tg3_4g_tso_overflow_test(tp, map, len, mss))
7690 hwbug = true;
7691
7692 if (tg3_40bit_overflow_test(tp, map, len))
7693 hwbug = true;
7694
7695 if (tp->dma_limit) {
7696 u32 prvidx = *entry;
7697 u32 tmp_flag = flags & ~TXD_FLAG_END;
7698 while (len > tp->dma_limit && *budget) {
7699 u32 frag_len = tp->dma_limit;
7700 len -= tp->dma_limit;
7701
7702 /* Avoid the 8byte DMA problem */
7703 if (len <= 8) {
7704 len += tp->dma_limit / 2;
7705 frag_len = tp->dma_limit / 2;
7706 }
7707
7708 tnapi->tx_buffers[*entry].fragmented = true;
7709
7710 tg3_tx_set_bd(&tnapi->tx_ring[*entry], map,
7711 frag_len, tmp_flag, mss, vlan);
7712 *budget -= 1;
7713 prvidx = *entry;
7714 *entry = NEXT_TX(*entry);
7715
7716 map += frag_len;
7717 }
7718
7719 if (len) {
7720 if (*budget) {
7721 tg3_tx_set_bd(&tnapi->tx_ring[*entry], map,
7722 len, flags, mss, vlan);
7723 *budget -= 1;
7724 *entry = NEXT_TX(*entry);
7725 } else {
7726 hwbug = true;
7727 tnapi->tx_buffers[prvidx].fragmented = false;
7728 }
7729 }
7730 } else {
7731 tg3_tx_set_bd(&tnapi->tx_ring[*entry], map,
7732 len, flags, mss, vlan);
7733 *entry = NEXT_TX(*entry);
7734 }
7735
7736 return hwbug;
7737 }
7738
7739 static void tg3_tx_skb_unmap(struct tg3_napi *tnapi, u32 entry, int last)
7740 {
7741 int i;
7742 struct sk_buff *skb;
7743 struct tg3_tx_ring_info *txb = &tnapi->tx_buffers[entry];
7744
7745 skb = txb->skb;
7746 txb->skb = NULL;
7747
7748 pci_unmap_single(tnapi->tp->pdev,
7749 dma_unmap_addr(txb, mapping),
7750 skb_headlen(skb),
7751 PCI_DMA_TODEVICE);
7752
7753 while (txb->fragmented) {
7754 txb->fragmented = false;
7755 entry = NEXT_TX(entry);
7756 txb = &tnapi->tx_buffers[entry];
7757 }
7758
7759 for (i = 0; i <= last; i++) {
7760 const skb_frag_t *frag = &skb_shinfo(skb)->frags[i];
7761
7762 entry = NEXT_TX(entry);
7763 txb = &tnapi->tx_buffers[entry];
7764
7765 pci_unmap_page(tnapi->tp->pdev,
7766 dma_unmap_addr(txb, mapping),
7767 skb_frag_size(frag), PCI_DMA_TODEVICE);
7768
7769 while (txb->fragmented) {
7770 txb->fragmented = false;
7771 entry = NEXT_TX(entry);
7772 txb = &tnapi->tx_buffers[entry];
7773 }
7774 }
7775 }
7776
7777 /* Workaround 4GB and 40-bit hardware DMA bugs. */
7778 static int tigon3_dma_hwbug_workaround(struct tg3_napi *tnapi,
7779 struct sk_buff **pskb,
7780 u32 *entry, u32 *budget,
7781 u32 base_flags, u32 mss, u32 vlan)
7782 {
7783 struct tg3 *tp = tnapi->tp;
7784 struct sk_buff *new_skb, *skb = *pskb;
7785 dma_addr_t new_addr = 0;
7786 int ret = 0;
7787
7788 if (tg3_asic_rev(tp) != ASIC_REV_5701)
7789 new_skb = skb_copy(skb, GFP_ATOMIC);
7790 else {
7791 int more_headroom = 4 - ((unsigned long)skb->data & 3);
7792
7793 new_skb = skb_copy_expand(skb,
7794 skb_headroom(skb) + more_headroom,
7795 skb_tailroom(skb), GFP_ATOMIC);
7796 }
7797
7798 if (!new_skb) {
7799 ret = -1;
7800 } else {
7801 /* New SKB is guaranteed to be linear. */
7802 new_addr = pci_map_single(tp->pdev, new_skb->data, new_skb->len,
7803 PCI_DMA_TODEVICE);
7804 /* Make sure the mapping succeeded */
7805 if (pci_dma_mapping_error(tp->pdev, new_addr)) {
7806 dev_kfree_skb_any(new_skb);
7807 ret = -1;
7808 } else {
7809 u32 save_entry = *entry;
7810
7811 base_flags |= TXD_FLAG_END;
7812
7813 tnapi->tx_buffers[*entry].skb = new_skb;
7814 dma_unmap_addr_set(&tnapi->tx_buffers[*entry],
7815 mapping, new_addr);
7816
7817 if (tg3_tx_frag_set(tnapi, entry, budget, new_addr,
7818 new_skb->len, base_flags,
7819 mss, vlan)) {
7820 tg3_tx_skb_unmap(tnapi, save_entry, -1);
7821 dev_kfree_skb_any(new_skb);
7822 ret = -1;
7823 }
7824 }
7825 }
7826
7827 dev_kfree_skb_any(skb);
7828 *pskb = new_skb;
7829 return ret;
7830 }
7831
7832 static netdev_tx_t tg3_start_xmit(struct sk_buff *, struct net_device *);
7833
7834 /* Use GSO to workaround all TSO packets that meet HW bug conditions
7835 * indicated in tg3_tx_frag_set()
7836 */
7837 static int tg3_tso_bug(struct tg3 *tp, struct tg3_napi *tnapi,
7838 struct netdev_queue *txq, struct sk_buff *skb)
7839 {
7840 struct sk_buff *segs, *nskb;
7841 u32 frag_cnt_est = skb_shinfo(skb)->gso_segs * 3;
7842
7843 /* Estimate the number of fragments in the worst case */
7844 if (unlikely(tg3_tx_avail(tnapi) <= frag_cnt_est)) {
7845 netif_tx_stop_queue(txq);
7846
7847 /* netif_tx_stop_queue() must be done before checking
7848 * checking tx index in tg3_tx_avail() below, because in
7849 * tg3_tx(), we update tx index before checking for
7850 * netif_tx_queue_stopped().
7851 */
7852 smp_mb();
7853 if (tg3_tx_avail(tnapi) <= frag_cnt_est)
7854 return NETDEV_TX_BUSY;
7855
7856 netif_tx_wake_queue(txq);
7857 }
7858
7859 segs = skb_gso_segment(skb, tp->dev->features &
7860 ~(NETIF_F_TSO | NETIF_F_TSO6));
7861 if (IS_ERR(segs) || !segs)
7862 goto tg3_tso_bug_end;
7863
7864 do {
7865 nskb = segs;
7866 segs = segs->next;
7867 nskb->next = NULL;
7868 tg3_start_xmit(nskb, tp->dev);
7869 } while (segs);
7870
7871 tg3_tso_bug_end:
7872 dev_kfree_skb_any(skb);
7873
7874 return NETDEV_TX_OK;
7875 }
7876
7877 /* hard_start_xmit for all devices */
7878 static netdev_tx_t tg3_start_xmit(struct sk_buff *skb, struct net_device *dev)
7879 {
7880 struct tg3 *tp = netdev_priv(dev);
7881 u32 len, entry, base_flags, mss, vlan = 0;
7882 u32 budget;
7883 int i = -1, would_hit_hwbug;
7884 dma_addr_t mapping;
7885 struct tg3_napi *tnapi;
7886 struct netdev_queue *txq;
7887 unsigned int last;
7888 struct iphdr *iph = NULL;
7889 struct tcphdr *tcph = NULL;
7890 __sum16 tcp_csum = 0, ip_csum = 0;
7891 __be16 ip_tot_len = 0;
7892
7893 txq = netdev_get_tx_queue(dev, skb_get_queue_mapping(skb));
7894 tnapi = &tp->napi[skb_get_queue_mapping(skb)];
7895 if (tg3_flag(tp, ENABLE_TSS))
7896 tnapi++;
7897
7898 budget = tg3_tx_avail(tnapi);
7899
7900 /* We are running in BH disabled context with netif_tx_lock
7901 * and TX reclaim runs via tp->napi.poll inside of a software
7902 * interrupt. Furthermore, IRQ processing runs lockless so we have
7903 * no IRQ context deadlocks to worry about either. Rejoice!
7904 */
7905 if (unlikely(budget <= (skb_shinfo(skb)->nr_frags + 1))) {
7906 if (!netif_tx_queue_stopped(txq)) {
7907 netif_tx_stop_queue(txq);
7908
7909 /* This is a hard error, log it. */
7910 netdev_err(dev,
7911 "BUG! Tx Ring full when queue awake!\n");
7912 }
7913 return NETDEV_TX_BUSY;
7914 }
7915
7916 entry = tnapi->tx_prod;
7917 base_flags = 0;
7918
7919 mss = skb_shinfo(skb)->gso_size;
7920 if (mss) {
7921 u32 tcp_opt_len, hdr_len;
7922
7923 if (skb_cow_head(skb, 0))
7924 goto drop;
7925
7926 iph = ip_hdr(skb);
7927 tcp_opt_len = tcp_optlen(skb);
7928
7929 hdr_len = skb_transport_offset(skb) + tcp_hdrlen(skb) - ETH_HLEN;
7930
7931 /* HW/FW can not correctly segment packets that have been
7932 * vlan encapsulated.
7933 */
7934 if (skb->protocol == htons(ETH_P_8021Q) ||
7935 skb->protocol == htons(ETH_P_8021AD))
7936 return tg3_tso_bug(tp, tnapi, txq, skb);
7937
7938 if (!skb_is_gso_v6(skb)) {
7939 if (unlikely((ETH_HLEN + hdr_len) > 80) &&
7940 tg3_flag(tp, TSO_BUG))
7941 return tg3_tso_bug(tp, tnapi, txq, skb);
7942
7943 ip_csum = iph->check;
7944 ip_tot_len = iph->tot_len;
7945 iph->check = 0;
7946 iph->tot_len = htons(mss + hdr_len);
7947 }
7948
7949 base_flags |= (TXD_FLAG_CPU_PRE_DMA |
7950 TXD_FLAG_CPU_POST_DMA);
7951
7952 tcph = tcp_hdr(skb);
7953 tcp_csum = tcph->check;
7954
7955 if (tg3_flag(tp, HW_TSO_1) ||
7956 tg3_flag(tp, HW_TSO_2) ||
7957 tg3_flag(tp, HW_TSO_3)) {
7958 tcph->check = 0;
7959 base_flags &= ~TXD_FLAG_TCPUDP_CSUM;
7960 } else {
7961 tcph->check = ~csum_tcpudp_magic(iph->saddr, iph->daddr,
7962 0, IPPROTO_TCP, 0);
7963 }
7964
7965 if (tg3_flag(tp, HW_TSO_3)) {
7966 mss |= (hdr_len & 0xc) << 12;
7967 if (hdr_len & 0x10)
7968 base_flags |= 0x00000010;
7969 base_flags |= (hdr_len & 0x3e0) << 5;
7970 } else if (tg3_flag(tp, HW_TSO_2))
7971 mss |= hdr_len << 9;
7972 else if (tg3_flag(tp, HW_TSO_1) ||
7973 tg3_asic_rev(tp) == ASIC_REV_5705) {
7974 if (tcp_opt_len || iph->ihl > 5) {
7975 int tsflags;
7976
7977 tsflags = (iph->ihl - 5) + (tcp_opt_len >> 2);
7978 mss |= (tsflags << 11);
7979 }
7980 } else {
7981 if (tcp_opt_len || iph->ihl > 5) {
7982 int tsflags;
7983
7984 tsflags = (iph->ihl - 5) + (tcp_opt_len >> 2);
7985 base_flags |= tsflags << 12;
7986 }
7987 }
7988 } else if (skb->ip_summed == CHECKSUM_PARTIAL) {
7989 /* HW/FW can not correctly checksum packets that have been
7990 * vlan encapsulated.
7991 */
7992 if (skb->protocol == htons(ETH_P_8021Q) ||
7993 skb->protocol == htons(ETH_P_8021AD)) {
7994 if (skb_checksum_help(skb))
7995 goto drop;
7996 } else {
7997 base_flags |= TXD_FLAG_TCPUDP_CSUM;
7998 }
7999 }
8000
8001 if (tg3_flag(tp, USE_JUMBO_BDFLAG) &&
8002 !mss && skb->len > VLAN_ETH_FRAME_LEN)
8003 base_flags |= TXD_FLAG_JMB_PKT;
8004
8005 if (vlan_tx_tag_present(skb)) {
8006 base_flags |= TXD_FLAG_VLAN;
8007 vlan = vlan_tx_tag_get(skb);
8008 }
8009
8010 if ((unlikely(skb_shinfo(skb)->tx_flags & SKBTX_HW_TSTAMP)) &&
8011 tg3_flag(tp, TX_TSTAMP_EN)) {
8012 skb_shinfo(skb)->tx_flags |= SKBTX_IN_PROGRESS;
8013 base_flags |= TXD_FLAG_HWTSTAMP;
8014 }
8015
8016 len = skb_headlen(skb);
8017
8018 mapping = pci_map_single(tp->pdev, skb->data, len, PCI_DMA_TODEVICE);
8019 if (pci_dma_mapping_error(tp->pdev, mapping))
8020 goto drop;
8021
8022
8023 tnapi->tx_buffers[entry].skb = skb;
8024 dma_unmap_addr_set(&tnapi->tx_buffers[entry], mapping, mapping);
8025
8026 would_hit_hwbug = 0;
8027
8028 if (tg3_flag(tp, 5701_DMA_BUG))
8029 would_hit_hwbug = 1;
8030
8031 if (tg3_tx_frag_set(tnapi, &entry, &budget, mapping, len, base_flags |
8032 ((skb_shinfo(skb)->nr_frags == 0) ? TXD_FLAG_END : 0),
8033 mss, vlan)) {
8034 would_hit_hwbug = 1;
8035 } else if (skb_shinfo(skb)->nr_frags > 0) {
8036 u32 tmp_mss = mss;
8037
8038 if (!tg3_flag(tp, HW_TSO_1) &&
8039 !tg3_flag(tp, HW_TSO_2) &&
8040 !tg3_flag(tp, HW_TSO_3))
8041 tmp_mss = 0;
8042
8043 /* Now loop through additional data
8044 * fragments, and queue them.
8045 */
8046 last = skb_shinfo(skb)->nr_frags - 1;
8047 for (i = 0; i <= last; i++) {
8048 skb_frag_t *frag = &skb_shinfo(skb)->frags[i];
8049
8050 len = skb_frag_size(frag);
8051 mapping = skb_frag_dma_map(&tp->pdev->dev, frag, 0,
8052 len, DMA_TO_DEVICE);
8053
8054 tnapi->tx_buffers[entry].skb = NULL;
8055 dma_unmap_addr_set(&tnapi->tx_buffers[entry], mapping,
8056 mapping);
8057 if (dma_mapping_error(&tp->pdev->dev, mapping))
8058 goto dma_error;
8059
8060 if (!budget ||
8061 tg3_tx_frag_set(tnapi, &entry, &budget, mapping,
8062 len, base_flags |
8063 ((i == last) ? TXD_FLAG_END : 0),
8064 tmp_mss, vlan)) {
8065 would_hit_hwbug = 1;
8066 break;
8067 }
8068 }
8069 }
8070
8071 if (would_hit_hwbug) {
8072 tg3_tx_skb_unmap(tnapi, tnapi->tx_prod, i);
8073
8074 if (mss) {
8075 /* If it's a TSO packet, do GSO instead of
8076 * allocating and copying to a large linear SKB
8077 */
8078 if (ip_tot_len) {
8079 iph->check = ip_csum;
8080 iph->tot_len = ip_tot_len;
8081 }
8082 tcph->check = tcp_csum;
8083 return tg3_tso_bug(tp, tnapi, txq, skb);
8084 }
8085
8086 /* If the workaround fails due to memory/mapping
8087 * failure, silently drop this packet.
8088 */
8089 entry = tnapi->tx_prod;
8090 budget = tg3_tx_avail(tnapi);
8091 if (tigon3_dma_hwbug_workaround(tnapi, &skb, &entry, &budget,
8092 base_flags, mss, vlan))
8093 goto drop_nofree;
8094 }
8095
8096 skb_tx_timestamp(skb);
8097 netdev_tx_sent_queue(txq, skb->len);
8098
8099 /* Sync BD data before updating mailbox */
8100 wmb();
8101
8102 tnapi->tx_prod = entry;
8103 if (unlikely(tg3_tx_avail(tnapi) <= (MAX_SKB_FRAGS + 1))) {
8104 netif_tx_stop_queue(txq);
8105
8106 /* netif_tx_stop_queue() must be done before checking
8107 * checking tx index in tg3_tx_avail() below, because in
8108 * tg3_tx(), we update tx index before checking for
8109 * netif_tx_queue_stopped().
8110 */
8111 smp_mb();
8112 if (tg3_tx_avail(tnapi) > TG3_TX_WAKEUP_THRESH(tnapi))
8113 netif_tx_wake_queue(txq);
8114 }
8115
8116 if (!skb->xmit_more || netif_xmit_stopped(txq)) {
8117 /* Packets are ready, update Tx producer idx on card. */
8118 tw32_tx_mbox(tnapi->prodmbox, entry);
8119 mmiowb();
8120 }
8121
8122 return NETDEV_TX_OK;
8123
8124 dma_error:
8125 tg3_tx_skb_unmap(tnapi, tnapi->tx_prod, --i);
8126 tnapi->tx_buffers[tnapi->tx_prod].skb = NULL;
8127 drop:
8128 dev_kfree_skb_any(skb);
8129 drop_nofree:
8130 tp->tx_dropped++;
8131 return NETDEV_TX_OK;
8132 }
8133
8134 static void tg3_mac_loopback(struct tg3 *tp, bool enable)
8135 {
8136 if (enable) {
8137 tp->mac_mode &= ~(MAC_MODE_HALF_DUPLEX |
8138 MAC_MODE_PORT_MODE_MASK);
8139
8140 tp->mac_mode |= MAC_MODE_PORT_INT_LPBACK;
8141
8142 if (!tg3_flag(tp, 5705_PLUS))
8143 tp->mac_mode |= MAC_MODE_LINK_POLARITY;
8144
8145 if (tp->phy_flags & TG3_PHYFLG_10_100_ONLY)
8146 tp->mac_mode |= MAC_MODE_PORT_MODE_MII;
8147 else
8148 tp->mac_mode |= MAC_MODE_PORT_MODE_GMII;
8149 } else {
8150 tp->mac_mode &= ~MAC_MODE_PORT_INT_LPBACK;
8151
8152 if (tg3_flag(tp, 5705_PLUS) ||
8153 (tp->phy_flags & TG3_PHYFLG_PHY_SERDES) ||
8154 tg3_asic_rev(tp) == ASIC_REV_5700)
8155 tp->mac_mode &= ~MAC_MODE_LINK_POLARITY;
8156 }
8157
8158 tw32(MAC_MODE, tp->mac_mode);
8159 udelay(40);
8160 }
8161
8162 static int tg3_phy_lpbk_set(struct tg3 *tp, u32 speed, bool extlpbk)
8163 {
8164 u32 val, bmcr, mac_mode, ptest = 0;
8165
8166 tg3_phy_toggle_apd(tp, false);
8167 tg3_phy_toggle_automdix(tp, false);
8168
8169 if (extlpbk && tg3_phy_set_extloopbk(tp))
8170 return -EIO;
8171
8172 bmcr = BMCR_FULLDPLX;
8173 switch (speed) {
8174 case SPEED_10:
8175 break;
8176 case SPEED_100:
8177 bmcr |= BMCR_SPEED100;
8178 break;
8179 case SPEED_1000:
8180 default:
8181 if (tp->phy_flags & TG3_PHYFLG_IS_FET) {
8182 speed = SPEED_100;
8183 bmcr |= BMCR_SPEED100;
8184 } else {
8185 speed = SPEED_1000;
8186 bmcr |= BMCR_SPEED1000;
8187 }
8188 }
8189
8190 if (extlpbk) {
8191 if (!(tp->phy_flags & TG3_PHYFLG_IS_FET)) {
8192 tg3_readphy(tp, MII_CTRL1000, &val);
8193 val |= CTL1000_AS_MASTER |
8194 CTL1000_ENABLE_MASTER;
8195 tg3_writephy(tp, MII_CTRL1000, val);
8196 } else {
8197 ptest = MII_TG3_FET_PTEST_TRIM_SEL |
8198 MII_TG3_FET_PTEST_TRIM_2;
8199 tg3_writephy(tp, MII_TG3_FET_PTEST, ptest);
8200 }
8201 } else
8202 bmcr |= BMCR_LOOPBACK;
8203
8204 tg3_writephy(tp, MII_BMCR, bmcr);
8205
8206 /* The write needs to be flushed for the FETs */
8207 if (tp->phy_flags & TG3_PHYFLG_IS_FET)
8208 tg3_readphy(tp, MII_BMCR, &bmcr);
8209
8210 udelay(40);
8211
8212 if ((tp->phy_flags & TG3_PHYFLG_IS_FET) &&
8213 tg3_asic_rev(tp) == ASIC_REV_5785) {
8214 tg3_writephy(tp, MII_TG3_FET_PTEST, ptest |
8215 MII_TG3_FET_PTEST_FRC_TX_LINK |
8216 MII_TG3_FET_PTEST_FRC_TX_LOCK);
8217
8218 /* The write needs to be flushed for the AC131 */
8219 tg3_readphy(tp, MII_TG3_FET_PTEST, &val);
8220 }
8221
8222 /* Reset to prevent losing 1st rx packet intermittently */
8223 if ((tp->phy_flags & TG3_PHYFLG_MII_SERDES) &&
8224 tg3_flag(tp, 5780_CLASS)) {
8225 tw32_f(MAC_RX_MODE, RX_MODE_RESET);
8226 udelay(10);
8227 tw32_f(MAC_RX_MODE, tp->rx_mode);
8228 }
8229
8230 mac_mode = tp->mac_mode &
8231 ~(MAC_MODE_PORT_MODE_MASK | MAC_MODE_HALF_DUPLEX);
8232 if (speed == SPEED_1000)
8233 mac_mode |= MAC_MODE_PORT_MODE_GMII;
8234 else
8235 mac_mode |= MAC_MODE_PORT_MODE_MII;
8236
8237 if (tg3_asic_rev(tp) == ASIC_REV_5700) {
8238 u32 masked_phy_id = tp->phy_id & TG3_PHY_ID_MASK;
8239
8240 if (masked_phy_id == TG3_PHY_ID_BCM5401)
8241 mac_mode &= ~MAC_MODE_LINK_POLARITY;
8242 else if (masked_phy_id == TG3_PHY_ID_BCM5411)
8243 mac_mode |= MAC_MODE_LINK_POLARITY;
8244
8245 tg3_writephy(tp, MII_TG3_EXT_CTRL,
8246 MII_TG3_EXT_CTRL_LNK3_LED_MODE);
8247 }
8248
8249 tw32(MAC_MODE, mac_mode);
8250 udelay(40);
8251
8252 return 0;
8253 }
8254
8255 static void tg3_set_loopback(struct net_device *dev, netdev_features_t features)
8256 {
8257 struct tg3 *tp = netdev_priv(dev);
8258
8259 if (features & NETIF_F_LOOPBACK) {
8260 if (tp->mac_mode & MAC_MODE_PORT_INT_LPBACK)
8261 return;
8262
8263 spin_lock_bh(&tp->lock);
8264 tg3_mac_loopback(tp, true);
8265 netif_carrier_on(tp->dev);
8266 spin_unlock_bh(&tp->lock);
8267 netdev_info(dev, "Internal MAC loopback mode enabled.\n");
8268 } else {
8269 if (!(tp->mac_mode & MAC_MODE_PORT_INT_LPBACK))
8270 return;
8271
8272 spin_lock_bh(&tp->lock);
8273 tg3_mac_loopback(tp, false);
8274 /* Force link status check */
8275 tg3_setup_phy(tp, true);
8276 spin_unlock_bh(&tp->lock);
8277 netdev_info(dev, "Internal MAC loopback mode disabled.\n");
8278 }
8279 }
8280
8281 static netdev_features_t tg3_fix_features(struct net_device *dev,
8282 netdev_features_t features)
8283 {
8284 struct tg3 *tp = netdev_priv(dev);
8285
8286 if (dev->mtu > ETH_DATA_LEN && tg3_flag(tp, 5780_CLASS))
8287 features &= ~NETIF_F_ALL_TSO;
8288
8289 return features;
8290 }
8291
8292 static int tg3_set_features(struct net_device *dev, netdev_features_t features)
8293 {
8294 netdev_features_t changed = dev->features ^ features;
8295
8296 if ((changed & NETIF_F_LOOPBACK) && netif_running(dev))
8297 tg3_set_loopback(dev, features);
8298
8299 return 0;
8300 }
8301
8302 static void tg3_rx_prodring_free(struct tg3 *tp,
8303 struct tg3_rx_prodring_set *tpr)
8304 {
8305 int i;
8306
8307 if (tpr != &tp->napi[0].prodring) {
8308 for (i = tpr->rx_std_cons_idx; i != tpr->rx_std_prod_idx;
8309 i = (i + 1) & tp->rx_std_ring_mask)
8310 tg3_rx_data_free(tp, &tpr->rx_std_buffers[i],
8311 tp->rx_pkt_map_sz);
8312
8313 if (tg3_flag(tp, JUMBO_CAPABLE)) {
8314 for (i = tpr->rx_jmb_cons_idx;
8315 i != tpr->rx_jmb_prod_idx;
8316 i = (i + 1) & tp->rx_jmb_ring_mask) {
8317 tg3_rx_data_free(tp, &tpr->rx_jmb_buffers[i],
8318 TG3_RX_JMB_MAP_SZ);
8319 }
8320 }
8321
8322 return;
8323 }
8324
8325 for (i = 0; i <= tp->rx_std_ring_mask; i++)
8326 tg3_rx_data_free(tp, &tpr->rx_std_buffers[i],
8327 tp->rx_pkt_map_sz);
8328
8329 if (tg3_flag(tp, JUMBO_CAPABLE) && !tg3_flag(tp, 5780_CLASS)) {
8330 for (i = 0; i <= tp->rx_jmb_ring_mask; i++)
8331 tg3_rx_data_free(tp, &tpr->rx_jmb_buffers[i],
8332 TG3_RX_JMB_MAP_SZ);
8333 }
8334 }
8335
8336 /* Initialize rx rings for packet processing.
8337 *
8338 * The chip has been shut down and the driver detached from
8339 * the networking, so no interrupts or new tx packets will
8340 * end up in the driver. tp->{tx,}lock are held and thus
8341 * we may not sleep.
8342 */
8343 static int tg3_rx_prodring_alloc(struct tg3 *tp,
8344 struct tg3_rx_prodring_set *tpr)
8345 {
8346 u32 i, rx_pkt_dma_sz;
8347
8348 tpr->rx_std_cons_idx = 0;
8349 tpr->rx_std_prod_idx = 0;
8350 tpr->rx_jmb_cons_idx = 0;
8351 tpr->rx_jmb_prod_idx = 0;
8352
8353 if (tpr != &tp->napi[0].prodring) {
8354 memset(&tpr->rx_std_buffers[0], 0,
8355 TG3_RX_STD_BUFF_RING_SIZE(tp));
8356 if (tpr->rx_jmb_buffers)
8357 memset(&tpr->rx_jmb_buffers[0], 0,
8358 TG3_RX_JMB_BUFF_RING_SIZE(tp));
8359 goto done;
8360 }
8361
8362 /* Zero out all descriptors. */
8363 memset(tpr->rx_std, 0, TG3_RX_STD_RING_BYTES(tp));
8364
8365 rx_pkt_dma_sz = TG3_RX_STD_DMA_SZ;
8366 if (tg3_flag(tp, 5780_CLASS) &&
8367 tp->dev->mtu > ETH_DATA_LEN)
8368 rx_pkt_dma_sz = TG3_RX_JMB_DMA_SZ;
8369 tp->rx_pkt_map_sz = TG3_RX_DMA_TO_MAP_SZ(rx_pkt_dma_sz);
8370
8371 /* Initialize invariants of the rings, we only set this
8372 * stuff once. This works because the card does not
8373 * write into the rx buffer posting rings.
8374 */
8375 for (i = 0; i <= tp->rx_std_ring_mask; i++) {
8376 struct tg3_rx_buffer_desc *rxd;
8377
8378 rxd = &tpr->rx_std[i];
8379 rxd->idx_len = rx_pkt_dma_sz << RXD_LEN_SHIFT;
8380 rxd->type_flags = (RXD_FLAG_END << RXD_FLAGS_SHIFT);
8381 rxd->opaque = (RXD_OPAQUE_RING_STD |
8382 (i << RXD_OPAQUE_INDEX_SHIFT));
8383 }
8384
8385 /* Now allocate fresh SKBs for each rx ring. */
8386 for (i = 0; i < tp->rx_pending; i++) {
8387 unsigned int frag_size;
8388
8389 if (tg3_alloc_rx_data(tp, tpr, RXD_OPAQUE_RING_STD, i,
8390 &frag_size) < 0) {
8391 netdev_warn(tp->dev,
8392 "Using a smaller RX standard ring. Only "
8393 "%d out of %d buffers were allocated "
8394 "successfully\n", i, tp->rx_pending);
8395 if (i == 0)
8396 goto initfail;
8397 tp->rx_pending = i;
8398 break;
8399 }
8400 }
8401
8402 if (!tg3_flag(tp, JUMBO_CAPABLE) || tg3_flag(tp, 5780_CLASS))
8403 goto done;
8404
8405 memset(tpr->rx_jmb, 0, TG3_RX_JMB_RING_BYTES(tp));
8406
8407 if (!tg3_flag(tp, JUMBO_RING_ENABLE))
8408 goto done;
8409
8410 for (i = 0; i <= tp->rx_jmb_ring_mask; i++) {
8411 struct tg3_rx_buffer_desc *rxd;
8412
8413 rxd = &tpr->rx_jmb[i].std;
8414 rxd->idx_len = TG3_RX_JMB_DMA_SZ << RXD_LEN_SHIFT;
8415 rxd->type_flags = (RXD_FLAG_END << RXD_FLAGS_SHIFT) |
8416 RXD_FLAG_JUMBO;
8417 rxd->opaque = (RXD_OPAQUE_RING_JUMBO |
8418 (i << RXD_OPAQUE_INDEX_SHIFT));
8419 }
8420
8421 for (i = 0; i < tp->rx_jumbo_pending; i++) {
8422 unsigned int frag_size;
8423
8424 if (tg3_alloc_rx_data(tp, tpr, RXD_OPAQUE_RING_JUMBO, i,
8425 &frag_size) < 0) {
8426 netdev_warn(tp->dev,
8427 "Using a smaller RX jumbo ring. Only %d "
8428 "out of %d buffers were allocated "
8429 "successfully\n", i, tp->rx_jumbo_pending);
8430 if (i == 0)
8431 goto initfail;
8432 tp->rx_jumbo_pending = i;
8433 break;
8434 }
8435 }
8436
8437 done:
8438 return 0;
8439
8440 initfail:
8441 tg3_rx_prodring_free(tp, tpr);
8442 return -ENOMEM;
8443 }
8444
8445 static void tg3_rx_prodring_fini(struct tg3 *tp,
8446 struct tg3_rx_prodring_set *tpr)
8447 {
8448 kfree(tpr->rx_std_buffers);
8449 tpr->rx_std_buffers = NULL;
8450 kfree(tpr->rx_jmb_buffers);
8451 tpr->rx_jmb_buffers = NULL;
8452 if (tpr->rx_std) {
8453 dma_free_coherent(&tp->pdev->dev, TG3_RX_STD_RING_BYTES(tp),
8454 tpr->rx_std, tpr->rx_std_mapping);
8455 tpr->rx_std = NULL;
8456 }
8457 if (tpr->rx_jmb) {
8458 dma_free_coherent(&tp->pdev->dev, TG3_RX_JMB_RING_BYTES(tp),
8459 tpr->rx_jmb, tpr->rx_jmb_mapping);
8460 tpr->rx_jmb = NULL;
8461 }
8462 }
8463
8464 static int tg3_rx_prodring_init(struct tg3 *tp,
8465 struct tg3_rx_prodring_set *tpr)
8466 {
8467 tpr->rx_std_buffers = kzalloc(TG3_RX_STD_BUFF_RING_SIZE(tp),
8468 GFP_KERNEL);
8469 if (!tpr->rx_std_buffers)
8470 return -ENOMEM;
8471
8472 tpr->rx_std = dma_alloc_coherent(&tp->pdev->dev,
8473 TG3_RX_STD_RING_BYTES(tp),
8474 &tpr->rx_std_mapping,
8475 GFP_KERNEL);
8476 if (!tpr->rx_std)
8477 goto err_out;
8478
8479 if (tg3_flag(tp, JUMBO_CAPABLE) && !tg3_flag(tp, 5780_CLASS)) {
8480 tpr->rx_jmb_buffers = kzalloc(TG3_RX_JMB_BUFF_RING_SIZE(tp),
8481 GFP_KERNEL);
8482 if (!tpr->rx_jmb_buffers)
8483 goto err_out;
8484
8485 tpr->rx_jmb = dma_alloc_coherent(&tp->pdev->dev,
8486 TG3_RX_JMB_RING_BYTES(tp),
8487 &tpr->rx_jmb_mapping,
8488 GFP_KERNEL);
8489 if (!tpr->rx_jmb)
8490 goto err_out;
8491 }
8492
8493 return 0;
8494
8495 err_out:
8496 tg3_rx_prodring_fini(tp, tpr);
8497 return -ENOMEM;
8498 }
8499
8500 /* Free up pending packets in all rx/tx rings.
8501 *
8502 * The chip has been shut down and the driver detached from
8503 * the networking, so no interrupts or new tx packets will
8504 * end up in the driver. tp->{tx,}lock is not held and we are not
8505 * in an interrupt context and thus may sleep.
8506 */
8507 static void tg3_free_rings(struct tg3 *tp)
8508 {
8509 int i, j;
8510
8511 for (j = 0; j < tp->irq_cnt; j++) {
8512 struct tg3_napi *tnapi = &tp->napi[j];
8513
8514 tg3_rx_prodring_free(tp, &tnapi->prodring);
8515
8516 if (!tnapi->tx_buffers)
8517 continue;
8518
8519 for (i = 0; i < TG3_TX_RING_SIZE; i++) {
8520 struct sk_buff *skb = tnapi->tx_buffers[i].skb;
8521
8522 if (!skb)
8523 continue;
8524
8525 tg3_tx_skb_unmap(tnapi, i,
8526 skb_shinfo(skb)->nr_frags - 1);
8527
8528 dev_kfree_skb_any(skb);
8529 }
8530 netdev_tx_reset_queue(netdev_get_tx_queue(tp->dev, j));
8531 }
8532 }
8533
8534 /* Initialize tx/rx rings for packet processing.
8535 *
8536 * The chip has been shut down and the driver detached from
8537 * the networking, so no interrupts or new tx packets will
8538 * end up in the driver. tp->{tx,}lock are held and thus
8539 * we may not sleep.
8540 */
8541 static int tg3_init_rings(struct tg3 *tp)
8542 {
8543 int i;
8544
8545 /* Free up all the SKBs. */
8546 tg3_free_rings(tp);
8547
8548 for (i = 0; i < tp->irq_cnt; i++) {
8549 struct tg3_napi *tnapi = &tp->napi[i];
8550
8551 tnapi->last_tag = 0;
8552 tnapi->last_irq_tag = 0;
8553 tnapi->hw_status->status = 0;
8554 tnapi->hw_status->status_tag = 0;
8555 memset(tnapi->hw_status, 0, TG3_HW_STATUS_SIZE);
8556
8557 tnapi->tx_prod = 0;
8558 tnapi->tx_cons = 0;
8559 if (tnapi->tx_ring)
8560 memset(tnapi->tx_ring, 0, TG3_TX_RING_BYTES);
8561
8562 tnapi->rx_rcb_ptr = 0;
8563 if (tnapi->rx_rcb)
8564 memset(tnapi->rx_rcb, 0, TG3_RX_RCB_RING_BYTES(tp));
8565
8566 if (tnapi->prodring.rx_std &&
8567 tg3_rx_prodring_alloc(tp, &tnapi->prodring)) {
8568 tg3_free_rings(tp);
8569 return -ENOMEM;
8570 }
8571 }
8572
8573 return 0;
8574 }
8575
8576 static void tg3_mem_tx_release(struct tg3 *tp)
8577 {
8578 int i;
8579
8580 for (i = 0; i < tp->irq_max; i++) {
8581 struct tg3_napi *tnapi = &tp->napi[i];
8582
8583 if (tnapi->tx_ring) {
8584 dma_free_coherent(&tp->pdev->dev, TG3_TX_RING_BYTES,
8585 tnapi->tx_ring, tnapi->tx_desc_mapping);
8586 tnapi->tx_ring = NULL;
8587 }
8588
8589 kfree(tnapi->tx_buffers);
8590 tnapi->tx_buffers = NULL;
8591 }
8592 }
8593
8594 static int tg3_mem_tx_acquire(struct tg3 *tp)
8595 {
8596 int i;
8597 struct tg3_napi *tnapi = &tp->napi[0];
8598
8599 /* If multivector TSS is enabled, vector 0 does not handle
8600 * tx interrupts. Don't allocate any resources for it.
8601 */
8602 if (tg3_flag(tp, ENABLE_TSS))
8603 tnapi++;
8604
8605 for (i = 0; i < tp->txq_cnt; i++, tnapi++) {
8606 tnapi->tx_buffers = kzalloc(sizeof(struct tg3_tx_ring_info) *
8607 TG3_TX_RING_SIZE, GFP_KERNEL);
8608 if (!tnapi->tx_buffers)
8609 goto err_out;
8610
8611 tnapi->tx_ring = dma_alloc_coherent(&tp->pdev->dev,
8612 TG3_TX_RING_BYTES,
8613 &tnapi->tx_desc_mapping,
8614 GFP_KERNEL);
8615 if (!tnapi->tx_ring)
8616 goto err_out;
8617 }
8618
8619 return 0;
8620
8621 err_out:
8622 tg3_mem_tx_release(tp);
8623 return -ENOMEM;
8624 }
8625
8626 static void tg3_mem_rx_release(struct tg3 *tp)
8627 {
8628 int i;
8629
8630 for (i = 0; i < tp->irq_max; i++) {
8631 struct tg3_napi *tnapi = &tp->napi[i];
8632
8633 tg3_rx_prodring_fini(tp, &tnapi->prodring);
8634
8635 if (!tnapi->rx_rcb)
8636 continue;
8637
8638 dma_free_coherent(&tp->pdev->dev,
8639 TG3_RX_RCB_RING_BYTES(tp),
8640 tnapi->rx_rcb,
8641 tnapi->rx_rcb_mapping);
8642 tnapi->rx_rcb = NULL;
8643 }
8644 }
8645
8646 static int tg3_mem_rx_acquire(struct tg3 *tp)
8647 {
8648 unsigned int i, limit;
8649
8650 limit = tp->rxq_cnt;
8651
8652 /* If RSS is enabled, we need a (dummy) producer ring
8653 * set on vector zero. This is the true hw prodring.
8654 */
8655 if (tg3_flag(tp, ENABLE_RSS))
8656 limit++;
8657
8658 for (i = 0; i < limit; i++) {
8659 struct tg3_napi *tnapi = &tp->napi[i];
8660
8661 if (tg3_rx_prodring_init(tp, &tnapi->prodring))
8662 goto err_out;
8663
8664 /* If multivector RSS is enabled, vector 0
8665 * does not handle rx or tx interrupts.
8666 * Don't allocate any resources for it.
8667 */
8668 if (!i && tg3_flag(tp, ENABLE_RSS))
8669 continue;
8670
8671 tnapi->rx_rcb = dma_zalloc_coherent(&tp->pdev->dev,
8672 TG3_RX_RCB_RING_BYTES(tp),
8673 &tnapi->rx_rcb_mapping,
8674 GFP_KERNEL);
8675 if (!tnapi->rx_rcb)
8676 goto err_out;
8677 }
8678
8679 return 0;
8680
8681 err_out:
8682 tg3_mem_rx_release(tp);
8683 return -ENOMEM;
8684 }
8685
8686 /*
8687 * Must not be invoked with interrupt sources disabled and
8688 * the hardware shutdown down.
8689 */
8690 static void tg3_free_consistent(struct tg3 *tp)
8691 {
8692 int i;
8693
8694 for (i = 0; i < tp->irq_cnt; i++) {
8695 struct tg3_napi *tnapi = &tp->napi[i];
8696
8697 if (tnapi->hw_status) {
8698 dma_free_coherent(&tp->pdev->dev, TG3_HW_STATUS_SIZE,
8699 tnapi->hw_status,
8700 tnapi->status_mapping);
8701 tnapi->hw_status = NULL;
8702 }
8703 }
8704
8705 tg3_mem_rx_release(tp);
8706 tg3_mem_tx_release(tp);
8707
8708 if (tp->hw_stats) {
8709 dma_free_coherent(&tp->pdev->dev, sizeof(struct tg3_hw_stats),
8710 tp->hw_stats, tp->stats_mapping);
8711 tp->hw_stats = NULL;
8712 }
8713 }
8714
8715 /*
8716 * Must not be invoked with interrupt sources disabled and
8717 * the hardware shutdown down. Can sleep.
8718 */
8719 static int tg3_alloc_consistent(struct tg3 *tp)
8720 {
8721 int i;
8722
8723 tp->hw_stats = dma_zalloc_coherent(&tp->pdev->dev,
8724 sizeof(struct tg3_hw_stats),
8725 &tp->stats_mapping, GFP_KERNEL);
8726 if (!tp->hw_stats)
8727 goto err_out;
8728
8729 for (i = 0; i < tp->irq_cnt; i++) {
8730 struct tg3_napi *tnapi = &tp->napi[i];
8731 struct tg3_hw_status *sblk;
8732
8733 tnapi->hw_status = dma_zalloc_coherent(&tp->pdev->dev,
8734 TG3_HW_STATUS_SIZE,
8735 &tnapi->status_mapping,
8736 GFP_KERNEL);
8737 if (!tnapi->hw_status)
8738 goto err_out;
8739
8740 sblk = tnapi->hw_status;
8741
8742 if (tg3_flag(tp, ENABLE_RSS)) {
8743 u16 *prodptr = NULL;
8744
8745 /*
8746 * When RSS is enabled, the status block format changes
8747 * slightly. The "rx_jumbo_consumer", "reserved",
8748 * and "rx_mini_consumer" members get mapped to the
8749 * other three rx return ring producer indexes.
8750 */
8751 switch (i) {
8752 case 1:
8753 prodptr = &sblk->idx[0].rx_producer;
8754 break;
8755 case 2:
8756 prodptr = &sblk->rx_jumbo_consumer;
8757 break;
8758 case 3:
8759 prodptr = &sblk->reserved;
8760 break;
8761 case 4:
8762 prodptr = &sblk->rx_mini_consumer;
8763 break;
8764 }
8765 tnapi->rx_rcb_prod_idx = prodptr;
8766 } else {
8767 tnapi->rx_rcb_prod_idx = &sblk->idx[0].rx_producer;
8768 }
8769 }
8770
8771 if (tg3_mem_tx_acquire(tp) || tg3_mem_rx_acquire(tp))
8772 goto err_out;
8773
8774 return 0;
8775
8776 err_out:
8777 tg3_free_consistent(tp);
8778 return -ENOMEM;
8779 }
8780
8781 #define MAX_WAIT_CNT 1000
8782
8783 /* To stop a block, clear the enable bit and poll till it
8784 * clears. tp->lock is held.
8785 */
8786 static int tg3_stop_block(struct tg3 *tp, unsigned long ofs, u32 enable_bit, bool silent)
8787 {
8788 unsigned int i;
8789 u32 val;
8790
8791 if (tg3_flag(tp, 5705_PLUS)) {
8792 switch (ofs) {
8793 case RCVLSC_MODE:
8794 case DMAC_MODE:
8795 case MBFREE_MODE:
8796 case BUFMGR_MODE:
8797 case MEMARB_MODE:
8798 /* We can't enable/disable these bits of the
8799 * 5705/5750, just say success.
8800 */
8801 return 0;
8802
8803 default:
8804 break;
8805 }
8806 }
8807
8808 val = tr32(ofs);
8809 val &= ~enable_bit;
8810 tw32_f(ofs, val);
8811
8812 for (i = 0; i < MAX_WAIT_CNT; i++) {
8813 if (pci_channel_offline(tp->pdev)) {
8814 dev_err(&tp->pdev->dev,
8815 "tg3_stop_block device offline, "
8816 "ofs=%lx enable_bit=%x\n",
8817 ofs, enable_bit);
8818 return -ENODEV;
8819 }
8820
8821 udelay(100);
8822 val = tr32(ofs);
8823 if ((val & enable_bit) == 0)
8824 break;
8825 }
8826
8827 if (i == MAX_WAIT_CNT && !silent) {
8828 dev_err(&tp->pdev->dev,
8829 "tg3_stop_block timed out, ofs=%lx enable_bit=%x\n",
8830 ofs, enable_bit);
8831 return -ENODEV;
8832 }
8833
8834 return 0;
8835 }
8836
8837 /* tp->lock is held. */
8838 static int tg3_abort_hw(struct tg3 *tp, bool silent)
8839 {
8840 int i, err;
8841
8842 tg3_disable_ints(tp);
8843
8844 if (pci_channel_offline(tp->pdev)) {
8845 tp->rx_mode &= ~(RX_MODE_ENABLE | TX_MODE_ENABLE);
8846 tp->mac_mode &= ~MAC_MODE_TDE_ENABLE;
8847 err = -ENODEV;
8848 goto err_no_dev;
8849 }
8850
8851 tp->rx_mode &= ~RX_MODE_ENABLE;
8852 tw32_f(MAC_RX_MODE, tp->rx_mode);
8853 udelay(10);
8854
8855 err = tg3_stop_block(tp, RCVBDI_MODE, RCVBDI_MODE_ENABLE, silent);
8856 err |= tg3_stop_block(tp, RCVLPC_MODE, RCVLPC_MODE_ENABLE, silent);
8857 err |= tg3_stop_block(tp, RCVLSC_MODE, RCVLSC_MODE_ENABLE, silent);
8858 err |= tg3_stop_block(tp, RCVDBDI_MODE, RCVDBDI_MODE_ENABLE, silent);
8859 err |= tg3_stop_block(tp, RCVDCC_MODE, RCVDCC_MODE_ENABLE, silent);
8860 err |= tg3_stop_block(tp, RCVCC_MODE, RCVCC_MODE_ENABLE, silent);
8861
8862 err |= tg3_stop_block(tp, SNDBDS_MODE, SNDBDS_MODE_ENABLE, silent);
8863 err |= tg3_stop_block(tp, SNDBDI_MODE, SNDBDI_MODE_ENABLE, silent);
8864 err |= tg3_stop_block(tp, SNDDATAI_MODE, SNDDATAI_MODE_ENABLE, silent);
8865 err |= tg3_stop_block(tp, RDMAC_MODE, RDMAC_MODE_ENABLE, silent);
8866 err |= tg3_stop_block(tp, SNDDATAC_MODE, SNDDATAC_MODE_ENABLE, silent);
8867 err |= tg3_stop_block(tp, DMAC_MODE, DMAC_MODE_ENABLE, silent);
8868 err |= tg3_stop_block(tp, SNDBDC_MODE, SNDBDC_MODE_ENABLE, silent);
8869
8870 tp->mac_mode &= ~MAC_MODE_TDE_ENABLE;
8871 tw32_f(MAC_MODE, tp->mac_mode);
8872 udelay(40);
8873
8874 tp->tx_mode &= ~TX_MODE_ENABLE;
8875 tw32_f(MAC_TX_MODE, tp->tx_mode);
8876
8877 for (i = 0; i < MAX_WAIT_CNT; i++) {
8878 udelay(100);
8879 if (!(tr32(MAC_TX_MODE) & TX_MODE_ENABLE))
8880 break;
8881 }
8882 if (i >= MAX_WAIT_CNT) {
8883 dev_err(&tp->pdev->dev,
8884 "%s timed out, TX_MODE_ENABLE will not clear "
8885 "MAC_TX_MODE=%08x\n", __func__, tr32(MAC_TX_MODE));
8886 err |= -ENODEV;
8887 }
8888
8889 err |= tg3_stop_block(tp, HOSTCC_MODE, HOSTCC_MODE_ENABLE, silent);
8890 err |= tg3_stop_block(tp, WDMAC_MODE, WDMAC_MODE_ENABLE, silent);
8891 err |= tg3_stop_block(tp, MBFREE_MODE, MBFREE_MODE_ENABLE, silent);
8892
8893 tw32(FTQ_RESET, 0xffffffff);
8894 tw32(FTQ_RESET, 0x00000000);
8895
8896 err |= tg3_stop_block(tp, BUFMGR_MODE, BUFMGR_MODE_ENABLE, silent);
8897 err |= tg3_stop_block(tp, MEMARB_MODE, MEMARB_MODE_ENABLE, silent);
8898
8899 err_no_dev:
8900 for (i = 0; i < tp->irq_cnt; i++) {
8901 struct tg3_napi *tnapi = &tp->napi[i];
8902 if (tnapi->hw_status)
8903 memset(tnapi->hw_status, 0, TG3_HW_STATUS_SIZE);
8904 }
8905
8906 return err;
8907 }
8908
8909 /* Save PCI command register before chip reset */
8910 static void tg3_save_pci_state(struct tg3 *tp)
8911 {
8912 pci_read_config_word(tp->pdev, PCI_COMMAND, &tp->pci_cmd);
8913 }
8914
8915 /* Restore PCI state after chip reset */
8916 static void tg3_restore_pci_state(struct tg3 *tp)
8917 {
8918 u32 val;
8919
8920 /* Re-enable indirect register accesses. */
8921 pci_write_config_dword(tp->pdev, TG3PCI_MISC_HOST_CTRL,
8922 tp->misc_host_ctrl);
8923
8924 /* Set MAX PCI retry to zero. */
8925 val = (PCISTATE_ROM_ENABLE | PCISTATE_ROM_RETRY_ENABLE);
8926 if (tg3_chip_rev_id(tp) == CHIPREV_ID_5704_A0 &&
8927 tg3_flag(tp, PCIX_MODE))
8928 val |= PCISTATE_RETRY_SAME_DMA;
8929 /* Allow reads and writes to the APE register and memory space. */
8930 if (tg3_flag(tp, ENABLE_APE))
8931 val |= PCISTATE_ALLOW_APE_CTLSPC_WR |
8932 PCISTATE_ALLOW_APE_SHMEM_WR |
8933 PCISTATE_ALLOW_APE_PSPACE_WR;
8934 pci_write_config_dword(tp->pdev, TG3PCI_PCISTATE, val);
8935
8936 pci_write_config_word(tp->pdev, PCI_COMMAND, tp->pci_cmd);
8937
8938 if (!tg3_flag(tp, PCI_EXPRESS)) {
8939 pci_write_config_byte(tp->pdev, PCI_CACHE_LINE_SIZE,
8940 tp->pci_cacheline_sz);
8941 pci_write_config_byte(tp->pdev, PCI_LATENCY_TIMER,
8942 tp->pci_lat_timer);
8943 }
8944
8945 /* Make sure PCI-X relaxed ordering bit is clear. */
8946 if (tg3_flag(tp, PCIX_MODE)) {
8947 u16 pcix_cmd;
8948
8949 pci_read_config_word(tp->pdev, tp->pcix_cap + PCI_X_CMD,
8950 &pcix_cmd);
8951 pcix_cmd &= ~PCI_X_CMD_ERO;
8952 pci_write_config_word(tp->pdev, tp->pcix_cap + PCI_X_CMD,
8953 pcix_cmd);
8954 }
8955
8956 if (tg3_flag(tp, 5780_CLASS)) {
8957
8958 /* Chip reset on 5780 will reset MSI enable bit,
8959 * so need to restore it.
8960 */
8961 if (tg3_flag(tp, USING_MSI)) {
8962 u16 ctrl;
8963
8964 pci_read_config_word(tp->pdev,
8965 tp->msi_cap + PCI_MSI_FLAGS,
8966 &ctrl);
8967 pci_write_config_word(tp->pdev,
8968 tp->msi_cap + PCI_MSI_FLAGS,
8969 ctrl | PCI_MSI_FLAGS_ENABLE);
8970 val = tr32(MSGINT_MODE);
8971 tw32(MSGINT_MODE, val | MSGINT_MODE_ENABLE);
8972 }
8973 }
8974 }
8975
8976 static void tg3_override_clk(struct tg3 *tp)
8977 {
8978 u32 val;
8979
8980 switch (tg3_asic_rev(tp)) {
8981 case ASIC_REV_5717:
8982 val = tr32(TG3_CPMU_CLCK_ORIDE_ENABLE);
8983 tw32(TG3_CPMU_CLCK_ORIDE_ENABLE, val |
8984 TG3_CPMU_MAC_ORIDE_ENABLE);
8985 break;
8986
8987 case ASIC_REV_5719:
8988 case ASIC_REV_5720:
8989 tw32(TG3_CPMU_CLCK_ORIDE, CPMU_CLCK_ORIDE_MAC_ORIDE_EN);
8990 break;
8991
8992 default:
8993 return;
8994 }
8995 }
8996
8997 static void tg3_restore_clk(struct tg3 *tp)
8998 {
8999 u32 val;
9000
9001 switch (tg3_asic_rev(tp)) {
9002 case ASIC_REV_5717:
9003 val = tr32(TG3_CPMU_CLCK_ORIDE_ENABLE);
9004 tw32(TG3_CPMU_CLCK_ORIDE_ENABLE,
9005 val & ~TG3_CPMU_MAC_ORIDE_ENABLE);
9006 break;
9007
9008 case ASIC_REV_5719:
9009 case ASIC_REV_5720:
9010 val = tr32(TG3_CPMU_CLCK_ORIDE);
9011 tw32(TG3_CPMU_CLCK_ORIDE, val & ~CPMU_CLCK_ORIDE_MAC_ORIDE_EN);
9012 break;
9013
9014 default:
9015 return;
9016 }
9017 }
9018
9019 /* tp->lock is held. */
9020 static int tg3_chip_reset(struct tg3 *tp)
9021 {
9022 u32 val;
9023 void (*write_op)(struct tg3 *, u32, u32);
9024 int i, err;
9025
9026 if (!pci_device_is_present(tp->pdev))
9027 return -ENODEV;
9028
9029 tg3_nvram_lock(tp);
9030
9031 tg3_ape_lock(tp, TG3_APE_LOCK_GRC);
9032
9033 /* No matching tg3_nvram_unlock() after this because
9034 * chip reset below will undo the nvram lock.
9035 */
9036 tp->nvram_lock_cnt = 0;
9037
9038 /* GRC_MISC_CFG core clock reset will clear the memory
9039 * enable bit in PCI register 4 and the MSI enable bit
9040 * on some chips, so we save relevant registers here.
9041 */
9042 tg3_save_pci_state(tp);
9043
9044 if (tg3_asic_rev(tp) == ASIC_REV_5752 ||
9045 tg3_flag(tp, 5755_PLUS))
9046 tw32(GRC_FASTBOOT_PC, 0);
9047
9048 /*
9049 * We must avoid the readl() that normally takes place.
9050 * It locks machines, causes machine checks, and other
9051 * fun things. So, temporarily disable the 5701
9052 * hardware workaround, while we do the reset.
9053 */
9054 write_op = tp->write32;
9055 if (write_op == tg3_write_flush_reg32)
9056 tp->write32 = tg3_write32;
9057
9058 /* Prevent the irq handler from reading or writing PCI registers
9059 * during chip reset when the memory enable bit in the PCI command
9060 * register may be cleared. The chip does not generate interrupt
9061 * at this time, but the irq handler may still be called due to irq
9062 * sharing or irqpoll.
9063 */
9064 tg3_flag_set(tp, CHIP_RESETTING);
9065 for (i = 0; i < tp->irq_cnt; i++) {
9066 struct tg3_napi *tnapi = &tp->napi[i];
9067 if (tnapi->hw_status) {
9068 tnapi->hw_status->status = 0;
9069 tnapi->hw_status->status_tag = 0;
9070 }
9071 tnapi->last_tag = 0;
9072 tnapi->last_irq_tag = 0;
9073 }
9074 smp_mb();
9075
9076 for (i = 0; i < tp->irq_cnt; i++)
9077 synchronize_irq(tp->napi[i].irq_vec);
9078
9079 if (tg3_asic_rev(tp) == ASIC_REV_57780) {
9080 val = tr32(TG3_PCIE_LNKCTL) & ~TG3_PCIE_LNKCTL_L1_PLL_PD_EN;
9081 tw32(TG3_PCIE_LNKCTL, val | TG3_PCIE_LNKCTL_L1_PLL_PD_DIS);
9082 }
9083
9084 /* do the reset */
9085 val = GRC_MISC_CFG_CORECLK_RESET;
9086
9087 if (tg3_flag(tp, PCI_EXPRESS)) {
9088 /* Force PCIe 1.0a mode */
9089 if (tg3_asic_rev(tp) != ASIC_REV_5785 &&
9090 !tg3_flag(tp, 57765_PLUS) &&
9091 tr32(TG3_PCIE_PHY_TSTCTL) ==
9092 (TG3_PCIE_PHY_TSTCTL_PCIE10 | TG3_PCIE_PHY_TSTCTL_PSCRAM))
9093 tw32(TG3_PCIE_PHY_TSTCTL, TG3_PCIE_PHY_TSTCTL_PSCRAM);
9094
9095 if (tg3_chip_rev_id(tp) != CHIPREV_ID_5750_A0) {
9096 tw32(GRC_MISC_CFG, (1 << 29));
9097 val |= (1 << 29);
9098 }
9099 }
9100
9101 if (tg3_asic_rev(tp) == ASIC_REV_5906) {
9102 tw32(VCPU_STATUS, tr32(VCPU_STATUS) | VCPU_STATUS_DRV_RESET);
9103 tw32(GRC_VCPU_EXT_CTRL,
9104 tr32(GRC_VCPU_EXT_CTRL) & ~GRC_VCPU_EXT_CTRL_HALT_CPU);
9105 }
9106
9107 /* Set the clock to the highest frequency to avoid timeouts. With link
9108 * aware mode, the clock speed could be slow and bootcode does not
9109 * complete within the expected time. Override the clock to allow the
9110 * bootcode to finish sooner and then restore it.
9111 */
9112 tg3_override_clk(tp);
9113
9114 /* Manage gphy power for all CPMU absent PCIe devices. */
9115 if (tg3_flag(tp, 5705_PLUS) && !tg3_flag(tp, CPMU_PRESENT))
9116 val |= GRC_MISC_CFG_KEEP_GPHY_POWER;
9117
9118 tw32(GRC_MISC_CFG, val);
9119
9120 /* restore 5701 hardware bug workaround write method */
9121 tp->write32 = write_op;
9122
9123 /* Unfortunately, we have to delay before the PCI read back.
9124 * Some 575X chips even will not respond to a PCI cfg access
9125 * when the reset command is given to the chip.
9126 *
9127 * How do these hardware designers expect things to work
9128 * properly if the PCI write is posted for a long period
9129 * of time? It is always necessary to have some method by
9130 * which a register read back can occur to push the write
9131 * out which does the reset.
9132 *
9133 * For most tg3 variants the trick below was working.
9134 * Ho hum...
9135 */
9136 udelay(120);
9137
9138 /* Flush PCI posted writes. The normal MMIO registers
9139 * are inaccessible at this time so this is the only
9140 * way to make this reliably (actually, this is no longer
9141 * the case, see above). I tried to use indirect
9142 * register read/write but this upset some 5701 variants.
9143 */
9144 pci_read_config_dword(tp->pdev, PCI_COMMAND, &val);
9145
9146 udelay(120);
9147
9148 if (tg3_flag(tp, PCI_EXPRESS) && pci_is_pcie(tp->pdev)) {
9149 u16 val16;
9150
9151 if (tg3_chip_rev_id(tp) == CHIPREV_ID_5750_A0) {
9152 int j;
9153 u32 cfg_val;
9154
9155 /* Wait for link training to complete. */
9156 for (j = 0; j < 5000; j++)
9157 udelay(100);
9158
9159 pci_read_config_dword(tp->pdev, 0xc4, &cfg_val);
9160 pci_write_config_dword(tp->pdev, 0xc4,
9161 cfg_val | (1 << 15));
9162 }
9163
9164 /* Clear the "no snoop" and "relaxed ordering" bits. */
9165 val16 = PCI_EXP_DEVCTL_RELAX_EN | PCI_EXP_DEVCTL_NOSNOOP_EN;
9166 /*
9167 * Older PCIe devices only support the 128 byte
9168 * MPS setting. Enforce the restriction.
9169 */
9170 if (!tg3_flag(tp, CPMU_PRESENT))
9171 val16 |= PCI_EXP_DEVCTL_PAYLOAD;
9172 pcie_capability_clear_word(tp->pdev, PCI_EXP_DEVCTL, val16);
9173
9174 /* Clear error status */
9175 pcie_capability_write_word(tp->pdev, PCI_EXP_DEVSTA,
9176 PCI_EXP_DEVSTA_CED |
9177 PCI_EXP_DEVSTA_NFED |
9178 PCI_EXP_DEVSTA_FED |
9179 PCI_EXP_DEVSTA_URD);
9180 }
9181
9182 tg3_restore_pci_state(tp);
9183
9184 tg3_flag_clear(tp, CHIP_RESETTING);
9185 tg3_flag_clear(tp, ERROR_PROCESSED);
9186
9187 val = 0;
9188 if (tg3_flag(tp, 5780_CLASS))
9189 val = tr32(MEMARB_MODE);
9190 tw32(MEMARB_MODE, val | MEMARB_MODE_ENABLE);
9191
9192 if (tg3_chip_rev_id(tp) == CHIPREV_ID_5750_A3) {
9193 tg3_stop_fw(tp);
9194 tw32(0x5000, 0x400);
9195 }
9196
9197 if (tg3_flag(tp, IS_SSB_CORE)) {
9198 /*
9199 * BCM4785: In order to avoid repercussions from using
9200 * potentially defective internal ROM, stop the Rx RISC CPU,
9201 * which is not required.
9202 */
9203 tg3_stop_fw(tp);
9204 tg3_halt_cpu(tp, RX_CPU_BASE);
9205 }
9206
9207 err = tg3_poll_fw(tp);
9208 if (err)
9209 return err;
9210
9211 tw32(GRC_MODE, tp->grc_mode);
9212
9213 if (tg3_chip_rev_id(tp) == CHIPREV_ID_5705_A0) {
9214 val = tr32(0xc4);
9215
9216 tw32(0xc4, val | (1 << 15));
9217 }
9218
9219 if ((tp->nic_sram_data_cfg & NIC_SRAM_DATA_CFG_MINI_PCI) != 0 &&
9220 tg3_asic_rev(tp) == ASIC_REV_5705) {
9221 tp->pci_clock_ctrl |= CLOCK_CTRL_CLKRUN_OENABLE;
9222 if (tg3_chip_rev_id(tp) == CHIPREV_ID_5705_A0)
9223 tp->pci_clock_ctrl |= CLOCK_CTRL_FORCE_CLKRUN;
9224 tw32(TG3PCI_CLOCK_CTRL, tp->pci_clock_ctrl);
9225 }
9226
9227 if (tp->phy_flags & TG3_PHYFLG_PHY_SERDES) {
9228 tp->mac_mode = MAC_MODE_PORT_MODE_TBI;
9229 val = tp->mac_mode;
9230 } else if (tp->phy_flags & TG3_PHYFLG_MII_SERDES) {
9231 tp->mac_mode = MAC_MODE_PORT_MODE_GMII;
9232 val = tp->mac_mode;
9233 } else
9234 val = 0;
9235
9236 tw32_f(MAC_MODE, val);
9237 udelay(40);
9238
9239 tg3_ape_unlock(tp, TG3_APE_LOCK_GRC);
9240
9241 tg3_mdio_start(tp);
9242
9243 if (tg3_flag(tp, PCI_EXPRESS) &&
9244 tg3_chip_rev_id(tp) != CHIPREV_ID_5750_A0 &&
9245 tg3_asic_rev(tp) != ASIC_REV_5785 &&
9246 !tg3_flag(tp, 57765_PLUS)) {
9247 val = tr32(0x7c00);
9248
9249 tw32(0x7c00, val | (1 << 25));
9250 }
9251
9252 tg3_restore_clk(tp);
9253
9254 /* Reprobe ASF enable state. */
9255 tg3_flag_clear(tp, ENABLE_ASF);
9256 tp->phy_flags &= ~(TG3_PHYFLG_1G_ON_VAUX_OK |
9257 TG3_PHYFLG_KEEP_LINK_ON_PWRDN);
9258
9259 tg3_flag_clear(tp, ASF_NEW_HANDSHAKE);
9260 tg3_read_mem(tp, NIC_SRAM_DATA_SIG, &val);
9261 if (val == NIC_SRAM_DATA_SIG_MAGIC) {
9262 u32 nic_cfg;
9263
9264 tg3_read_mem(tp, NIC_SRAM_DATA_CFG, &nic_cfg);
9265 if (nic_cfg & NIC_SRAM_DATA_CFG_ASF_ENABLE) {
9266 tg3_flag_set(tp, ENABLE_ASF);
9267 tp->last_event_jiffies = jiffies;
9268 if (tg3_flag(tp, 5750_PLUS))
9269 tg3_flag_set(tp, ASF_NEW_HANDSHAKE);
9270
9271 tg3_read_mem(tp, NIC_SRAM_DATA_CFG_3, &nic_cfg);
9272 if (nic_cfg & NIC_SRAM_1G_ON_VAUX_OK)
9273 tp->phy_flags |= TG3_PHYFLG_1G_ON_VAUX_OK;
9274 if (nic_cfg & NIC_SRAM_LNK_FLAP_AVOID)
9275 tp->phy_flags |= TG3_PHYFLG_KEEP_LINK_ON_PWRDN;
9276 }
9277 }
9278
9279 return 0;
9280 }
9281
9282 static void tg3_get_nstats(struct tg3 *, struct rtnl_link_stats64 *);
9283 static void tg3_get_estats(struct tg3 *, struct tg3_ethtool_stats *);
9284 static void __tg3_set_rx_mode(struct net_device *);
9285
9286 /* tp->lock is held. */
9287 static int tg3_halt(struct tg3 *tp, int kind, bool silent)
9288 {
9289 int err;
9290
9291 tg3_stop_fw(tp);
9292
9293 tg3_write_sig_pre_reset(tp, kind);
9294
9295 tg3_abort_hw(tp, silent);
9296 err = tg3_chip_reset(tp);
9297
9298 __tg3_set_mac_addr(tp, false);
9299
9300 tg3_write_sig_legacy(tp, kind);
9301 tg3_write_sig_post_reset(tp, kind);
9302
9303 if (tp->hw_stats) {
9304 /* Save the stats across chip resets... */
9305 tg3_get_nstats(tp, &tp->net_stats_prev);
9306 tg3_get_estats(tp, &tp->estats_prev);
9307
9308 /* And make sure the next sample is new data */
9309 memset(tp->hw_stats, 0, sizeof(struct tg3_hw_stats));
9310 }
9311
9312 return err;
9313 }
9314
9315 static int tg3_set_mac_addr(struct net_device *dev, void *p)
9316 {
9317 struct tg3 *tp = netdev_priv(dev);
9318 struct sockaddr *addr = p;
9319 int err = 0;
9320 bool skip_mac_1 = false;
9321
9322 if (!is_valid_ether_addr(addr->sa_data))
9323 return -EADDRNOTAVAIL;
9324
9325 memcpy(dev->dev_addr, addr->sa_data, dev->addr_len);
9326
9327 if (!netif_running(dev))
9328 return 0;
9329
9330 if (tg3_flag(tp, ENABLE_ASF)) {
9331 u32 addr0_high, addr0_low, addr1_high, addr1_low;
9332
9333 addr0_high = tr32(MAC_ADDR_0_HIGH);
9334 addr0_low = tr32(MAC_ADDR_0_LOW);
9335 addr1_high = tr32(MAC_ADDR_1_HIGH);
9336 addr1_low = tr32(MAC_ADDR_1_LOW);
9337
9338 /* Skip MAC addr 1 if ASF is using it. */
9339 if ((addr0_high != addr1_high || addr0_low != addr1_low) &&
9340 !(addr1_high == 0 && addr1_low == 0))
9341 skip_mac_1 = true;
9342 }
9343 spin_lock_bh(&tp->lock);
9344 __tg3_set_mac_addr(tp, skip_mac_1);
9345 __tg3_set_rx_mode(dev);
9346 spin_unlock_bh(&tp->lock);
9347
9348 return err;
9349 }
9350
9351 /* tp->lock is held. */
9352 static void tg3_set_bdinfo(struct tg3 *tp, u32 bdinfo_addr,
9353 dma_addr_t mapping, u32 maxlen_flags,
9354 u32 nic_addr)
9355 {
9356 tg3_write_mem(tp,
9357 (bdinfo_addr + TG3_BDINFO_HOST_ADDR + TG3_64BIT_REG_HIGH),
9358 ((u64) mapping >> 32));
9359 tg3_write_mem(tp,
9360 (bdinfo_addr + TG3_BDINFO_HOST_ADDR + TG3_64BIT_REG_LOW),
9361 ((u64) mapping & 0xffffffff));
9362 tg3_write_mem(tp,
9363 (bdinfo_addr + TG3_BDINFO_MAXLEN_FLAGS),
9364 maxlen_flags);
9365
9366 if (!tg3_flag(tp, 5705_PLUS))
9367 tg3_write_mem(tp,
9368 (bdinfo_addr + TG3_BDINFO_NIC_ADDR),
9369 nic_addr);
9370 }
9371
9372
9373 static void tg3_coal_tx_init(struct tg3 *tp, struct ethtool_coalesce *ec)
9374 {
9375 int i = 0;
9376
9377 if (!tg3_flag(tp, ENABLE_TSS)) {
9378 tw32(HOSTCC_TXCOL_TICKS, ec->tx_coalesce_usecs);
9379 tw32(HOSTCC_TXMAX_FRAMES, ec->tx_max_coalesced_frames);
9380 tw32(HOSTCC_TXCOAL_MAXF_INT, ec->tx_max_coalesced_frames_irq);
9381 } else {
9382 tw32(HOSTCC_TXCOL_TICKS, 0);
9383 tw32(HOSTCC_TXMAX_FRAMES, 0);
9384 tw32(HOSTCC_TXCOAL_MAXF_INT, 0);
9385
9386 for (; i < tp->txq_cnt; i++) {
9387 u32 reg;
9388
9389 reg = HOSTCC_TXCOL_TICKS_VEC1 + i * 0x18;
9390 tw32(reg, ec->tx_coalesce_usecs);
9391 reg = HOSTCC_TXMAX_FRAMES_VEC1 + i * 0x18;
9392 tw32(reg, ec->tx_max_coalesced_frames);
9393 reg = HOSTCC_TXCOAL_MAXF_INT_VEC1 + i * 0x18;
9394 tw32(reg, ec->tx_max_coalesced_frames_irq);
9395 }
9396 }
9397
9398 for (; i < tp->irq_max - 1; i++) {
9399 tw32(HOSTCC_TXCOL_TICKS_VEC1 + i * 0x18, 0);
9400 tw32(HOSTCC_TXMAX_FRAMES_VEC1 + i * 0x18, 0);
9401 tw32(HOSTCC_TXCOAL_MAXF_INT_VEC1 + i * 0x18, 0);
9402 }
9403 }
9404
9405 static void tg3_coal_rx_init(struct tg3 *tp, struct ethtool_coalesce *ec)
9406 {
9407 int i = 0;
9408 u32 limit = tp->rxq_cnt;
9409
9410 if (!tg3_flag(tp, ENABLE_RSS)) {
9411 tw32(HOSTCC_RXCOL_TICKS, ec->rx_coalesce_usecs);
9412 tw32(HOSTCC_RXMAX_FRAMES, ec->rx_max_coalesced_frames);
9413 tw32(HOSTCC_RXCOAL_MAXF_INT, ec->rx_max_coalesced_frames_irq);
9414 limit--;
9415 } else {
9416 tw32(HOSTCC_RXCOL_TICKS, 0);
9417 tw32(HOSTCC_RXMAX_FRAMES, 0);
9418 tw32(HOSTCC_RXCOAL_MAXF_INT, 0);
9419 }
9420
9421 for (; i < limit; i++) {
9422 u32 reg;
9423
9424 reg = HOSTCC_RXCOL_TICKS_VEC1 + i * 0x18;
9425 tw32(reg, ec->rx_coalesce_usecs);
9426 reg = HOSTCC_RXMAX_FRAMES_VEC1 + i * 0x18;
9427 tw32(reg, ec->rx_max_coalesced_frames);
9428 reg = HOSTCC_RXCOAL_MAXF_INT_VEC1 + i * 0x18;
9429 tw32(reg, ec->rx_max_coalesced_frames_irq);
9430 }
9431
9432 for (; i < tp->irq_max - 1; i++) {
9433 tw32(HOSTCC_RXCOL_TICKS_VEC1 + i * 0x18, 0);
9434 tw32(HOSTCC_RXMAX_FRAMES_VEC1 + i * 0x18, 0);
9435 tw32(HOSTCC_RXCOAL_MAXF_INT_VEC1 + i * 0x18, 0);
9436 }
9437 }
9438
9439 static void __tg3_set_coalesce(struct tg3 *tp, struct ethtool_coalesce *ec)
9440 {
9441 tg3_coal_tx_init(tp, ec);
9442 tg3_coal_rx_init(tp, ec);
9443
9444 if (!tg3_flag(tp, 5705_PLUS)) {
9445 u32 val = ec->stats_block_coalesce_usecs;
9446
9447 tw32(HOSTCC_RXCOAL_TICK_INT, ec->rx_coalesce_usecs_irq);
9448 tw32(HOSTCC_TXCOAL_TICK_INT, ec->tx_coalesce_usecs_irq);
9449
9450 if (!tp->link_up)
9451 val = 0;
9452
9453 tw32(HOSTCC_STAT_COAL_TICKS, val);
9454 }
9455 }
9456
9457 /* tp->lock is held. */
9458 static void tg3_tx_rcbs_disable(struct tg3 *tp)
9459 {
9460 u32 txrcb, limit;
9461
9462 /* Disable all transmit rings but the first. */
9463 if (!tg3_flag(tp, 5705_PLUS))
9464 limit = NIC_SRAM_SEND_RCB + TG3_BDINFO_SIZE * 16;
9465 else if (tg3_flag(tp, 5717_PLUS))
9466 limit = NIC_SRAM_SEND_RCB + TG3_BDINFO_SIZE * 4;
9467 else if (tg3_flag(tp, 57765_CLASS) ||
9468 tg3_asic_rev(tp) == ASIC_REV_5762)
9469 limit = NIC_SRAM_SEND_RCB + TG3_BDINFO_SIZE * 2;
9470 else
9471 limit = NIC_SRAM_SEND_RCB + TG3_BDINFO_SIZE;
9472
9473 for (txrcb = NIC_SRAM_SEND_RCB + TG3_BDINFO_SIZE;
9474 txrcb < limit; txrcb += TG3_BDINFO_SIZE)
9475 tg3_write_mem(tp, txrcb + TG3_BDINFO_MAXLEN_FLAGS,
9476 BDINFO_FLAGS_DISABLED);
9477 }
9478
9479 /* tp->lock is held. */
9480 static void tg3_tx_rcbs_init(struct tg3 *tp)
9481 {
9482 int i = 0;
9483 u32 txrcb = NIC_SRAM_SEND_RCB;
9484
9485 if (tg3_flag(tp, ENABLE_TSS))
9486 i++;
9487
9488 for (; i < tp->irq_max; i++, txrcb += TG3_BDINFO_SIZE) {
9489 struct tg3_napi *tnapi = &tp->napi[i];
9490
9491 if (!tnapi->tx_ring)
9492 continue;
9493
9494 tg3_set_bdinfo(tp, txrcb, tnapi->tx_desc_mapping,
9495 (TG3_TX_RING_SIZE << BDINFO_FLAGS_MAXLEN_SHIFT),
9496 NIC_SRAM_TX_BUFFER_DESC);
9497 }
9498 }
9499
9500 /* tp->lock is held. */
9501 static void tg3_rx_ret_rcbs_disable(struct tg3 *tp)
9502 {
9503 u32 rxrcb, limit;
9504
9505 /* Disable all receive return rings but the first. */
9506 if (tg3_flag(tp, 5717_PLUS))
9507 limit = NIC_SRAM_RCV_RET_RCB + TG3_BDINFO_SIZE * 17;
9508 else if (!tg3_flag(tp, 5705_PLUS))
9509 limit = NIC_SRAM_RCV_RET_RCB + TG3_BDINFO_SIZE * 16;
9510 else if (tg3_asic_rev(tp) == ASIC_REV_5755 ||
9511 tg3_asic_rev(tp) == ASIC_REV_5762 ||
9512 tg3_flag(tp, 57765_CLASS))
9513 limit = NIC_SRAM_RCV_RET_RCB + TG3_BDINFO_SIZE * 4;
9514 else
9515 limit = NIC_SRAM_RCV_RET_RCB + TG3_BDINFO_SIZE;
9516
9517 for (rxrcb = NIC_SRAM_RCV_RET_RCB + TG3_BDINFO_SIZE;
9518 rxrcb < limit; rxrcb += TG3_BDINFO_SIZE)
9519 tg3_write_mem(tp, rxrcb + TG3_BDINFO_MAXLEN_FLAGS,
9520 BDINFO_FLAGS_DISABLED);
9521 }
9522
9523 /* tp->lock is held. */
9524 static void tg3_rx_ret_rcbs_init(struct tg3 *tp)
9525 {
9526 int i = 0;
9527 u32 rxrcb = NIC_SRAM_RCV_RET_RCB;
9528
9529 if (tg3_flag(tp, ENABLE_RSS))
9530 i++;
9531
9532 for (; i < tp->irq_max; i++, rxrcb += TG3_BDINFO_SIZE) {
9533 struct tg3_napi *tnapi = &tp->napi[i];
9534
9535 if (!tnapi->rx_rcb)
9536 continue;
9537
9538 tg3_set_bdinfo(tp, rxrcb, tnapi->rx_rcb_mapping,
9539 (tp->rx_ret_ring_mask + 1) <<
9540 BDINFO_FLAGS_MAXLEN_SHIFT, 0);
9541 }
9542 }
9543
9544 /* tp->lock is held. */
9545 static void tg3_rings_reset(struct tg3 *tp)
9546 {
9547 int i;
9548 u32 stblk;
9549 struct tg3_napi *tnapi = &tp->napi[0];
9550
9551 tg3_tx_rcbs_disable(tp);
9552
9553 tg3_rx_ret_rcbs_disable(tp);
9554
9555 /* Disable interrupts */
9556 tw32_mailbox_f(tp->napi[0].int_mbox, 1);
9557 tp->napi[0].chk_msi_cnt = 0;
9558 tp->napi[0].last_rx_cons = 0;
9559 tp->napi[0].last_tx_cons = 0;
9560
9561 /* Zero mailbox registers. */
9562 if (tg3_flag(tp, SUPPORT_MSIX)) {
9563 for (i = 1; i < tp->irq_max; i++) {
9564 tp->napi[i].tx_prod = 0;
9565 tp->napi[i].tx_cons = 0;
9566 if (tg3_flag(tp, ENABLE_TSS))
9567 tw32_mailbox(tp->napi[i].prodmbox, 0);
9568 tw32_rx_mbox(tp->napi[i].consmbox, 0);
9569 tw32_mailbox_f(tp->napi[i].int_mbox, 1);
9570 tp->napi[i].chk_msi_cnt = 0;
9571 tp->napi[i].last_rx_cons = 0;
9572 tp->napi[i].last_tx_cons = 0;
9573 }
9574 if (!tg3_flag(tp, ENABLE_TSS))
9575 tw32_mailbox(tp->napi[0].prodmbox, 0);
9576 } else {
9577 tp->napi[0].tx_prod = 0;
9578 tp->napi[0].tx_cons = 0;
9579 tw32_mailbox(tp->napi[0].prodmbox, 0);
9580 tw32_rx_mbox(tp->napi[0].consmbox, 0);
9581 }
9582
9583 /* Make sure the NIC-based send BD rings are disabled. */
9584 if (!tg3_flag(tp, 5705_PLUS)) {
9585 u32 mbox = MAILBOX_SNDNIC_PROD_IDX_0 + TG3_64BIT_REG_LOW;
9586 for (i = 0; i < 16; i++)
9587 tw32_tx_mbox(mbox + i * 8, 0);
9588 }
9589
9590 /* Clear status block in ram. */
9591 memset(tnapi->hw_status, 0, TG3_HW_STATUS_SIZE);
9592
9593 /* Set status block DMA address */
9594 tw32(HOSTCC_STATUS_BLK_HOST_ADDR + TG3_64BIT_REG_HIGH,
9595 ((u64) tnapi->status_mapping >> 32));
9596 tw32(HOSTCC_STATUS_BLK_HOST_ADDR + TG3_64BIT_REG_LOW,
9597 ((u64) tnapi->status_mapping & 0xffffffff));
9598
9599 stblk = HOSTCC_STATBLCK_RING1;
9600
9601 for (i = 1, tnapi++; i < tp->irq_cnt; i++, tnapi++) {
9602 u64 mapping = (u64)tnapi->status_mapping;
9603 tw32(stblk + TG3_64BIT_REG_HIGH, mapping >> 32);
9604 tw32(stblk + TG3_64BIT_REG_LOW, mapping & 0xffffffff);
9605 stblk += 8;
9606
9607 /* Clear status block in ram. */
9608 memset(tnapi->hw_status, 0, TG3_HW_STATUS_SIZE);
9609 }
9610
9611 tg3_tx_rcbs_init(tp);
9612 tg3_rx_ret_rcbs_init(tp);
9613 }
9614
9615 static void tg3_setup_rxbd_thresholds(struct tg3 *tp)
9616 {
9617 u32 val, bdcache_maxcnt, host_rep_thresh, nic_rep_thresh;
9618
9619 if (!tg3_flag(tp, 5750_PLUS) ||
9620 tg3_flag(tp, 5780_CLASS) ||
9621 tg3_asic_rev(tp) == ASIC_REV_5750 ||
9622 tg3_asic_rev(tp) == ASIC_REV_5752 ||
9623 tg3_flag(tp, 57765_PLUS))
9624 bdcache_maxcnt = TG3_SRAM_RX_STD_BDCACHE_SIZE_5700;
9625 else if (tg3_asic_rev(tp) == ASIC_REV_5755 ||
9626 tg3_asic_rev(tp) == ASIC_REV_5787)
9627 bdcache_maxcnt = TG3_SRAM_RX_STD_BDCACHE_SIZE_5755;
9628 else
9629 bdcache_maxcnt = TG3_SRAM_RX_STD_BDCACHE_SIZE_5906;
9630
9631 nic_rep_thresh = min(bdcache_maxcnt / 2, tp->rx_std_max_post);
9632 host_rep_thresh = max_t(u32, tp->rx_pending / 8, 1);
9633
9634 val = min(nic_rep_thresh, host_rep_thresh);
9635 tw32(RCVBDI_STD_THRESH, val);
9636
9637 if (tg3_flag(tp, 57765_PLUS))
9638 tw32(STD_REPLENISH_LWM, bdcache_maxcnt);
9639
9640 if (!tg3_flag(tp, JUMBO_CAPABLE) || tg3_flag(tp, 5780_CLASS))
9641 return;
9642
9643 bdcache_maxcnt = TG3_SRAM_RX_JMB_BDCACHE_SIZE_5700;
9644
9645 host_rep_thresh = max_t(u32, tp->rx_jumbo_pending / 8, 1);
9646
9647 val = min(bdcache_maxcnt / 2, host_rep_thresh);
9648 tw32(RCVBDI_JUMBO_THRESH, val);
9649
9650 if (tg3_flag(tp, 57765_PLUS))
9651 tw32(JMB_REPLENISH_LWM, bdcache_maxcnt);
9652 }
9653
9654 static inline u32 calc_crc(unsigned char *buf, int len)
9655 {
9656 u32 reg;
9657 u32 tmp;
9658 int j, k;
9659
9660 reg = 0xffffffff;
9661
9662 for (j = 0; j < len; j++) {
9663 reg ^= buf[j];
9664
9665 for (k = 0; k < 8; k++) {
9666 tmp = reg & 0x01;
9667
9668 reg >>= 1;
9669
9670 if (tmp)
9671 reg ^= 0xedb88320;
9672 }
9673 }
9674
9675 return ~reg;
9676 }
9677
9678 static void tg3_set_multi(struct tg3 *tp, unsigned int accept_all)
9679 {
9680 /* accept or reject all multicast frames */
9681 tw32(MAC_HASH_REG_0, accept_all ? 0xffffffff : 0);
9682 tw32(MAC_HASH_REG_1, accept_all ? 0xffffffff : 0);
9683 tw32(MAC_HASH_REG_2, accept_all ? 0xffffffff : 0);
9684 tw32(MAC_HASH_REG_3, accept_all ? 0xffffffff : 0);
9685 }
9686
9687 static void __tg3_set_rx_mode(struct net_device *dev)
9688 {
9689 struct tg3 *tp = netdev_priv(dev);
9690 u32 rx_mode;
9691
9692 rx_mode = tp->rx_mode & ~(RX_MODE_PROMISC |
9693 RX_MODE_KEEP_VLAN_TAG);
9694
9695 #if !defined(CONFIG_VLAN_8021Q) && !defined(CONFIG_VLAN_8021Q_MODULE)
9696 /* When ASF is in use, we always keep the RX_MODE_KEEP_VLAN_TAG
9697 * flag clear.
9698 */
9699 if (!tg3_flag(tp, ENABLE_ASF))
9700 rx_mode |= RX_MODE_KEEP_VLAN_TAG;
9701 #endif
9702
9703 if (dev->flags & IFF_PROMISC) {
9704 /* Promiscuous mode. */
9705 rx_mode |= RX_MODE_PROMISC;
9706 } else if (dev->flags & IFF_ALLMULTI) {
9707 /* Accept all multicast. */
9708 tg3_set_multi(tp, 1);
9709 } else if (netdev_mc_empty(dev)) {
9710 /* Reject all multicast. */
9711 tg3_set_multi(tp, 0);
9712 } else {
9713 /* Accept one or more multicast(s). */
9714 struct netdev_hw_addr *ha;
9715 u32 mc_filter[4] = { 0, };
9716 u32 regidx;
9717 u32 bit;
9718 u32 crc;
9719
9720 netdev_for_each_mc_addr(ha, dev) {
9721 crc = calc_crc(ha->addr, ETH_ALEN);
9722 bit = ~crc & 0x7f;
9723 regidx = (bit & 0x60) >> 5;
9724 bit &= 0x1f;
9725 mc_filter[regidx] |= (1 << bit);
9726 }
9727
9728 tw32(MAC_HASH_REG_0, mc_filter[0]);
9729 tw32(MAC_HASH_REG_1, mc_filter[1]);
9730 tw32(MAC_HASH_REG_2, mc_filter[2]);
9731 tw32(MAC_HASH_REG_3, mc_filter[3]);
9732 }
9733
9734 if (netdev_uc_count(dev) > TG3_MAX_UCAST_ADDR(tp)) {
9735 rx_mode |= RX_MODE_PROMISC;
9736 } else if (!(dev->flags & IFF_PROMISC)) {
9737 /* Add all entries into to the mac addr filter list */
9738 int i = 0;
9739 struct netdev_hw_addr *ha;
9740
9741 netdev_for_each_uc_addr(ha, dev) {
9742 __tg3_set_one_mac_addr(tp, ha->addr,
9743 i + TG3_UCAST_ADDR_IDX(tp));
9744 i++;
9745 }
9746 }
9747
9748 if (rx_mode != tp->rx_mode) {
9749 tp->rx_mode = rx_mode;
9750 tw32_f(MAC_RX_MODE, rx_mode);
9751 udelay(10);
9752 }
9753 }
9754
9755 static void tg3_rss_init_dflt_indir_tbl(struct tg3 *tp, u32 qcnt)
9756 {
9757 int i;
9758
9759 for (i = 0; i < TG3_RSS_INDIR_TBL_SIZE; i++)
9760 tp->rss_ind_tbl[i] = ethtool_rxfh_indir_default(i, qcnt);
9761 }
9762
9763 static void tg3_rss_check_indir_tbl(struct tg3 *tp)
9764 {
9765 int i;
9766
9767 if (!tg3_flag(tp, SUPPORT_MSIX))
9768 return;
9769
9770 if (tp->rxq_cnt == 1) {
9771 memset(&tp->rss_ind_tbl[0], 0, sizeof(tp->rss_ind_tbl));
9772 return;
9773 }
9774
9775 /* Validate table against current IRQ count */
9776 for (i = 0; i < TG3_RSS_INDIR_TBL_SIZE; i++) {
9777 if (tp->rss_ind_tbl[i] >= tp->rxq_cnt)
9778 break;
9779 }
9780
9781 if (i != TG3_RSS_INDIR_TBL_SIZE)
9782 tg3_rss_init_dflt_indir_tbl(tp, tp->rxq_cnt);
9783 }
9784
9785 static void tg3_rss_write_indir_tbl(struct tg3 *tp)
9786 {
9787 int i = 0;
9788 u32 reg = MAC_RSS_INDIR_TBL_0;
9789
9790 while (i < TG3_RSS_INDIR_TBL_SIZE) {
9791 u32 val = tp->rss_ind_tbl[i];
9792 i++;
9793 for (; i % 8; i++) {
9794 val <<= 4;
9795 val |= tp->rss_ind_tbl[i];
9796 }
9797 tw32(reg, val);
9798 reg += 4;
9799 }
9800 }
9801
9802 static inline u32 tg3_lso_rd_dma_workaround_bit(struct tg3 *tp)
9803 {
9804 if (tg3_asic_rev(tp) == ASIC_REV_5719)
9805 return TG3_LSO_RD_DMA_TX_LENGTH_WA_5719;
9806 else
9807 return TG3_LSO_RD_DMA_TX_LENGTH_WA_5720;
9808 }
9809
9810 /* tp->lock is held. */
9811 static int tg3_reset_hw(struct tg3 *tp, bool reset_phy)
9812 {
9813 u32 val, rdmac_mode;
9814 int i, err, limit;
9815 struct tg3_rx_prodring_set *tpr = &tp->napi[0].prodring;
9816
9817 tg3_disable_ints(tp);
9818
9819 tg3_stop_fw(tp);
9820
9821 tg3_write_sig_pre_reset(tp, RESET_KIND_INIT);
9822
9823 if (tg3_flag(tp, INIT_COMPLETE))
9824 tg3_abort_hw(tp, 1);
9825
9826 if ((tp->phy_flags & TG3_PHYFLG_KEEP_LINK_ON_PWRDN) &&
9827 !(tp->phy_flags & TG3_PHYFLG_USER_CONFIGURED)) {
9828 tg3_phy_pull_config(tp);
9829 tg3_eee_pull_config(tp, NULL);
9830 tp->phy_flags |= TG3_PHYFLG_USER_CONFIGURED;
9831 }
9832
9833 /* Enable MAC control of LPI */
9834 if (tp->phy_flags & TG3_PHYFLG_EEE_CAP)
9835 tg3_setup_eee(tp);
9836
9837 if (reset_phy)
9838 tg3_phy_reset(tp);
9839
9840 err = tg3_chip_reset(tp);
9841 if (err)
9842 return err;
9843
9844 tg3_write_sig_legacy(tp, RESET_KIND_INIT);
9845
9846 if (tg3_chip_rev(tp) == CHIPREV_5784_AX) {
9847 val = tr32(TG3_CPMU_CTRL);
9848 val &= ~(CPMU_CTRL_LINK_AWARE_MODE | CPMU_CTRL_LINK_IDLE_MODE);
9849 tw32(TG3_CPMU_CTRL, val);
9850
9851 val = tr32(TG3_CPMU_LSPD_10MB_CLK);
9852 val &= ~CPMU_LSPD_10MB_MACCLK_MASK;
9853 val |= CPMU_LSPD_10MB_MACCLK_6_25;
9854 tw32(TG3_CPMU_LSPD_10MB_CLK, val);
9855
9856 val = tr32(TG3_CPMU_LNK_AWARE_PWRMD);
9857 val &= ~CPMU_LNK_AWARE_MACCLK_MASK;
9858 val |= CPMU_LNK_AWARE_MACCLK_6_25;
9859 tw32(TG3_CPMU_LNK_AWARE_PWRMD, val);
9860
9861 val = tr32(TG3_CPMU_HST_ACC);
9862 val &= ~CPMU_HST_ACC_MACCLK_MASK;
9863 val |= CPMU_HST_ACC_MACCLK_6_25;
9864 tw32(TG3_CPMU_HST_ACC, val);
9865 }
9866
9867 if (tg3_asic_rev(tp) == ASIC_REV_57780) {
9868 val = tr32(PCIE_PWR_MGMT_THRESH) & ~PCIE_PWR_MGMT_L1_THRESH_MSK;
9869 val |= PCIE_PWR_MGMT_EXT_ASPM_TMR_EN |
9870 PCIE_PWR_MGMT_L1_THRESH_4MS;
9871 tw32(PCIE_PWR_MGMT_THRESH, val);
9872
9873 val = tr32(TG3_PCIE_EIDLE_DELAY) & ~TG3_PCIE_EIDLE_DELAY_MASK;
9874 tw32(TG3_PCIE_EIDLE_DELAY, val | TG3_PCIE_EIDLE_DELAY_13_CLKS);
9875
9876 tw32(TG3_CORR_ERR_STAT, TG3_CORR_ERR_STAT_CLEAR);
9877
9878 val = tr32(TG3_PCIE_LNKCTL) & ~TG3_PCIE_LNKCTL_L1_PLL_PD_EN;
9879 tw32(TG3_PCIE_LNKCTL, val | TG3_PCIE_LNKCTL_L1_PLL_PD_DIS);
9880 }
9881
9882 if (tg3_flag(tp, L1PLLPD_EN)) {
9883 u32 grc_mode = tr32(GRC_MODE);
9884
9885 /* Access the lower 1K of PL PCIE block registers. */
9886 val = grc_mode & ~GRC_MODE_PCIE_PORT_MASK;
9887 tw32(GRC_MODE, val | GRC_MODE_PCIE_PL_SEL);
9888
9889 val = tr32(TG3_PCIE_TLDLPL_PORT + TG3_PCIE_PL_LO_PHYCTL1);
9890 tw32(TG3_PCIE_TLDLPL_PORT + TG3_PCIE_PL_LO_PHYCTL1,
9891 val | TG3_PCIE_PL_LO_PHYCTL1_L1PLLPD_EN);
9892
9893 tw32(GRC_MODE, grc_mode);
9894 }
9895
9896 if (tg3_flag(tp, 57765_CLASS)) {
9897 if (tg3_chip_rev_id(tp) == CHIPREV_ID_57765_A0) {
9898 u32 grc_mode = tr32(GRC_MODE);
9899
9900 /* Access the lower 1K of PL PCIE block registers. */
9901 val = grc_mode & ~GRC_MODE_PCIE_PORT_MASK;
9902 tw32(GRC_MODE, val | GRC_MODE_PCIE_PL_SEL);
9903
9904 val = tr32(TG3_PCIE_TLDLPL_PORT +
9905 TG3_PCIE_PL_LO_PHYCTL5);
9906 tw32(TG3_PCIE_TLDLPL_PORT + TG3_PCIE_PL_LO_PHYCTL5,
9907 val | TG3_PCIE_PL_LO_PHYCTL5_DIS_L2CLKREQ);
9908
9909 tw32(GRC_MODE, grc_mode);
9910 }
9911
9912 if (tg3_chip_rev(tp) != CHIPREV_57765_AX) {
9913 u32 grc_mode;
9914
9915 /* Fix transmit hangs */
9916 val = tr32(TG3_CPMU_PADRNG_CTL);
9917 val |= TG3_CPMU_PADRNG_CTL_RDIV2;
9918 tw32(TG3_CPMU_PADRNG_CTL, val);
9919
9920 grc_mode = tr32(GRC_MODE);
9921
9922 /* Access the lower 1K of DL PCIE block registers. */
9923 val = grc_mode & ~GRC_MODE_PCIE_PORT_MASK;
9924 tw32(GRC_MODE, val | GRC_MODE_PCIE_DL_SEL);
9925
9926 val = tr32(TG3_PCIE_TLDLPL_PORT +
9927 TG3_PCIE_DL_LO_FTSMAX);
9928 val &= ~TG3_PCIE_DL_LO_FTSMAX_MSK;
9929 tw32(TG3_PCIE_TLDLPL_PORT + TG3_PCIE_DL_LO_FTSMAX,
9930 val | TG3_PCIE_DL_LO_FTSMAX_VAL);
9931
9932 tw32(GRC_MODE, grc_mode);
9933 }
9934
9935 val = tr32(TG3_CPMU_LSPD_10MB_CLK);
9936 val &= ~CPMU_LSPD_10MB_MACCLK_MASK;
9937 val |= CPMU_LSPD_10MB_MACCLK_6_25;
9938 tw32(TG3_CPMU_LSPD_10MB_CLK, val);
9939 }
9940
9941 /* This works around an issue with Athlon chipsets on
9942 * B3 tigon3 silicon. This bit has no effect on any
9943 * other revision. But do not set this on PCI Express
9944 * chips and don't even touch the clocks if the CPMU is present.
9945 */
9946 if (!tg3_flag(tp, CPMU_PRESENT)) {
9947 if (!tg3_flag(tp, PCI_EXPRESS))
9948 tp->pci_clock_ctrl |= CLOCK_CTRL_DELAY_PCI_GRANT;
9949 tw32_f(TG3PCI_CLOCK_CTRL, tp->pci_clock_ctrl);
9950 }
9951
9952 if (tg3_chip_rev_id(tp) == CHIPREV_ID_5704_A0 &&
9953 tg3_flag(tp, PCIX_MODE)) {
9954 val = tr32(TG3PCI_PCISTATE);
9955 val |= PCISTATE_RETRY_SAME_DMA;
9956 tw32(TG3PCI_PCISTATE, val);
9957 }
9958
9959 if (tg3_flag(tp, ENABLE_APE)) {
9960 /* Allow reads and writes to the
9961 * APE register and memory space.
9962 */
9963 val = tr32(TG3PCI_PCISTATE);
9964 val |= PCISTATE_ALLOW_APE_CTLSPC_WR |
9965 PCISTATE_ALLOW_APE_SHMEM_WR |
9966 PCISTATE_ALLOW_APE_PSPACE_WR;
9967 tw32(TG3PCI_PCISTATE, val);
9968 }
9969
9970 if (tg3_chip_rev(tp) == CHIPREV_5704_BX) {
9971 /* Enable some hw fixes. */
9972 val = tr32(TG3PCI_MSI_DATA);
9973 val |= (1 << 26) | (1 << 28) | (1 << 29);
9974 tw32(TG3PCI_MSI_DATA, val);
9975 }
9976
9977 /* Descriptor ring init may make accesses to the
9978 * NIC SRAM area to setup the TX descriptors, so we
9979 * can only do this after the hardware has been
9980 * successfully reset.
9981 */
9982 err = tg3_init_rings(tp);
9983 if (err)
9984 return err;
9985
9986 if (tg3_flag(tp, 57765_PLUS)) {
9987 val = tr32(TG3PCI_DMA_RW_CTRL) &
9988 ~DMA_RWCTRL_DIS_CACHE_ALIGNMENT;
9989 if (tg3_chip_rev_id(tp) == CHIPREV_ID_57765_A0)
9990 val &= ~DMA_RWCTRL_CRDRDR_RDMA_MRRS_MSK;
9991 if (!tg3_flag(tp, 57765_CLASS) &&
9992 tg3_asic_rev(tp) != ASIC_REV_5717 &&
9993 tg3_asic_rev(tp) != ASIC_REV_5762)
9994 val |= DMA_RWCTRL_TAGGED_STAT_WA;
9995 tw32(TG3PCI_DMA_RW_CTRL, val | tp->dma_rwctrl);
9996 } else if (tg3_asic_rev(tp) != ASIC_REV_5784 &&
9997 tg3_asic_rev(tp) != ASIC_REV_5761) {
9998 /* This value is determined during the probe time DMA
9999 * engine test, tg3_test_dma.
10000 */
10001 tw32(TG3PCI_DMA_RW_CTRL, tp->dma_rwctrl);
10002 }
10003
10004 tp->grc_mode &= ~(GRC_MODE_HOST_SENDBDS |
10005 GRC_MODE_4X_NIC_SEND_RINGS |
10006 GRC_MODE_NO_TX_PHDR_CSUM |
10007 GRC_MODE_NO_RX_PHDR_CSUM);
10008 tp->grc_mode |= GRC_MODE_HOST_SENDBDS;
10009
10010 /* Pseudo-header checksum is done by hardware logic and not
10011 * the offload processers, so make the chip do the pseudo-
10012 * header checksums on receive. For transmit it is more
10013 * convenient to do the pseudo-header checksum in software
10014 * as Linux does that on transmit for us in all cases.
10015 */
10016 tp->grc_mode |= GRC_MODE_NO_TX_PHDR_CSUM;
10017
10018 val = GRC_MODE_IRQ_ON_MAC_ATTN | GRC_MODE_HOST_STACKUP;
10019 if (tp->rxptpctl)
10020 tw32(TG3_RX_PTP_CTL,
10021 tp->rxptpctl | TG3_RX_PTP_CTL_HWTS_INTERLOCK);
10022
10023 if (tg3_flag(tp, PTP_CAPABLE))
10024 val |= GRC_MODE_TIME_SYNC_ENABLE;
10025
10026 tw32(GRC_MODE, tp->grc_mode | val);
10027
10028 /* Setup the timer prescalar register. Clock is always 66Mhz. */
10029 val = tr32(GRC_MISC_CFG);
10030 val &= ~0xff;
10031 val |= (65 << GRC_MISC_CFG_PRESCALAR_SHIFT);
10032 tw32(GRC_MISC_CFG, val);
10033
10034 /* Initialize MBUF/DESC pool. */
10035 if (tg3_flag(tp, 5750_PLUS)) {
10036 /* Do nothing. */
10037 } else if (tg3_asic_rev(tp) != ASIC_REV_5705) {
10038 tw32(BUFMGR_MB_POOL_ADDR, NIC_SRAM_MBUF_POOL_BASE);
10039 if (tg3_asic_rev(tp) == ASIC_REV_5704)
10040 tw32(BUFMGR_MB_POOL_SIZE, NIC_SRAM_MBUF_POOL_SIZE64);
10041 else
10042 tw32(BUFMGR_MB_POOL_SIZE, NIC_SRAM_MBUF_POOL_SIZE96);
10043 tw32(BUFMGR_DMA_DESC_POOL_ADDR, NIC_SRAM_DMA_DESC_POOL_BASE);
10044 tw32(BUFMGR_DMA_DESC_POOL_SIZE, NIC_SRAM_DMA_DESC_POOL_SIZE);
10045 } else if (tg3_flag(tp, TSO_CAPABLE)) {
10046 int fw_len;
10047
10048 fw_len = tp->fw_len;
10049 fw_len = (fw_len + (0x80 - 1)) & ~(0x80 - 1);
10050 tw32(BUFMGR_MB_POOL_ADDR,
10051 NIC_SRAM_MBUF_POOL_BASE5705 + fw_len);
10052 tw32(BUFMGR_MB_POOL_SIZE,
10053 NIC_SRAM_MBUF_POOL_SIZE5705 - fw_len - 0xa00);
10054 }
10055
10056 if (tp->dev->mtu <= ETH_DATA_LEN) {
10057 tw32(BUFMGR_MB_RDMA_LOW_WATER,
10058 tp->bufmgr_config.mbuf_read_dma_low_water);
10059 tw32(BUFMGR_MB_MACRX_LOW_WATER,
10060 tp->bufmgr_config.mbuf_mac_rx_low_water);
10061 tw32(BUFMGR_MB_HIGH_WATER,
10062 tp->bufmgr_config.mbuf_high_water);
10063 } else {
10064 tw32(BUFMGR_MB_RDMA_LOW_WATER,
10065 tp->bufmgr_config.mbuf_read_dma_low_water_jumbo);
10066 tw32(BUFMGR_MB_MACRX_LOW_WATER,
10067 tp->bufmgr_config.mbuf_mac_rx_low_water_jumbo);
10068 tw32(BUFMGR_MB_HIGH_WATER,
10069 tp->bufmgr_config.mbuf_high_water_jumbo);
10070 }
10071 tw32(BUFMGR_DMA_LOW_WATER,
10072 tp->bufmgr_config.dma_low_water);
10073 tw32(BUFMGR_DMA_HIGH_WATER,
10074 tp->bufmgr_config.dma_high_water);
10075
10076 val = BUFMGR_MODE_ENABLE | BUFMGR_MODE_ATTN_ENABLE;
10077 if (tg3_asic_rev(tp) == ASIC_REV_5719)
10078 val |= BUFMGR_MODE_NO_TX_UNDERRUN;
10079 if (tg3_asic_rev(tp) == ASIC_REV_5717 ||
10080 tg3_asic_rev(tp) == ASIC_REV_5762 ||
10081 tg3_chip_rev_id(tp) == CHIPREV_ID_5719_A0 ||
10082 tg3_chip_rev_id(tp) == CHIPREV_ID_5720_A0)
10083 val |= BUFMGR_MODE_MBLOW_ATTN_ENAB;
10084 tw32(BUFMGR_MODE, val);
10085 for (i = 0; i < 2000; i++) {
10086 if (tr32(BUFMGR_MODE) & BUFMGR_MODE_ENABLE)
10087 break;
10088 udelay(10);
10089 }
10090 if (i >= 2000) {
10091 netdev_err(tp->dev, "%s cannot enable BUFMGR\n", __func__);
10092 return -ENODEV;
10093 }
10094
10095 if (tg3_chip_rev_id(tp) == CHIPREV_ID_5906_A1)
10096 tw32(ISO_PKT_TX, (tr32(ISO_PKT_TX) & ~0x3) | 0x2);
10097
10098 tg3_setup_rxbd_thresholds(tp);
10099
10100 /* Initialize TG3_BDINFO's at:
10101 * RCVDBDI_STD_BD: standard eth size rx ring
10102 * RCVDBDI_JUMBO_BD: jumbo frame rx ring
10103 * RCVDBDI_MINI_BD: small frame rx ring (??? does not work)
10104 *
10105 * like so:
10106 * TG3_BDINFO_HOST_ADDR: high/low parts of DMA address of ring
10107 * TG3_BDINFO_MAXLEN_FLAGS: (rx max buffer size << 16) |
10108 * ring attribute flags
10109 * TG3_BDINFO_NIC_ADDR: location of descriptors in nic SRAM
10110 *
10111 * Standard receive ring @ NIC_SRAM_RX_BUFFER_DESC, 512 entries.
10112 * Jumbo receive ring @ NIC_SRAM_RX_JUMBO_BUFFER_DESC, 256 entries.
10113 *
10114 * The size of each ring is fixed in the firmware, but the location is
10115 * configurable.
10116 */
10117 tw32(RCVDBDI_STD_BD + TG3_BDINFO_HOST_ADDR + TG3_64BIT_REG_HIGH,
10118 ((u64) tpr->rx_std_mapping >> 32));
10119 tw32(RCVDBDI_STD_BD + TG3_BDINFO_HOST_ADDR + TG3_64BIT_REG_LOW,
10120 ((u64) tpr->rx_std_mapping & 0xffffffff));
10121 if (!tg3_flag(tp, 5717_PLUS))
10122 tw32(RCVDBDI_STD_BD + TG3_BDINFO_NIC_ADDR,
10123 NIC_SRAM_RX_BUFFER_DESC);
10124
10125 /* Disable the mini ring */
10126 if (!tg3_flag(tp, 5705_PLUS))
10127 tw32(RCVDBDI_MINI_BD + TG3_BDINFO_MAXLEN_FLAGS,
10128 BDINFO_FLAGS_DISABLED);
10129
10130 /* Program the jumbo buffer descriptor ring control
10131 * blocks on those devices that have them.
10132 */
10133 if (tg3_chip_rev_id(tp) == CHIPREV_ID_5719_A0 ||
10134 (tg3_flag(tp, JUMBO_CAPABLE) && !tg3_flag(tp, 5780_CLASS))) {
10135
10136 if (tg3_flag(tp, JUMBO_RING_ENABLE)) {
10137 tw32(RCVDBDI_JUMBO_BD + TG3_BDINFO_HOST_ADDR + TG3_64BIT_REG_HIGH,
10138 ((u64) tpr->rx_jmb_mapping >> 32));
10139 tw32(RCVDBDI_JUMBO_BD + TG3_BDINFO_HOST_ADDR + TG3_64BIT_REG_LOW,
10140 ((u64) tpr->rx_jmb_mapping & 0xffffffff));
10141 val = TG3_RX_JMB_RING_SIZE(tp) <<
10142 BDINFO_FLAGS_MAXLEN_SHIFT;
10143 tw32(RCVDBDI_JUMBO_BD + TG3_BDINFO_MAXLEN_FLAGS,
10144 val | BDINFO_FLAGS_USE_EXT_RECV);
10145 if (!tg3_flag(tp, USE_JUMBO_BDFLAG) ||
10146 tg3_flag(tp, 57765_CLASS) ||
10147 tg3_asic_rev(tp) == ASIC_REV_5762)
10148 tw32(RCVDBDI_JUMBO_BD + TG3_BDINFO_NIC_ADDR,
10149 NIC_SRAM_RX_JUMBO_BUFFER_DESC);
10150 } else {
10151 tw32(RCVDBDI_JUMBO_BD + TG3_BDINFO_MAXLEN_FLAGS,
10152 BDINFO_FLAGS_DISABLED);
10153 }
10154
10155 if (tg3_flag(tp, 57765_PLUS)) {
10156 val = TG3_RX_STD_RING_SIZE(tp);
10157 val <<= BDINFO_FLAGS_MAXLEN_SHIFT;
10158 val |= (TG3_RX_STD_DMA_SZ << 2);
10159 } else
10160 val = TG3_RX_STD_DMA_SZ << BDINFO_FLAGS_MAXLEN_SHIFT;
10161 } else
10162 val = TG3_RX_STD_MAX_SIZE_5700 << BDINFO_FLAGS_MAXLEN_SHIFT;
10163
10164 tw32(RCVDBDI_STD_BD + TG3_BDINFO_MAXLEN_FLAGS, val);
10165
10166 tpr->rx_std_prod_idx = tp->rx_pending;
10167 tw32_rx_mbox(TG3_RX_STD_PROD_IDX_REG, tpr->rx_std_prod_idx);
10168
10169 tpr->rx_jmb_prod_idx =
10170 tg3_flag(tp, JUMBO_RING_ENABLE) ? tp->rx_jumbo_pending : 0;
10171 tw32_rx_mbox(TG3_RX_JMB_PROD_IDX_REG, tpr->rx_jmb_prod_idx);
10172
10173 tg3_rings_reset(tp);
10174
10175 /* Initialize MAC address and backoff seed. */
10176 __tg3_set_mac_addr(tp, false);
10177
10178 /* MTU + ethernet header + FCS + optional VLAN tag */
10179 tw32(MAC_RX_MTU_SIZE,
10180 tp->dev->mtu + ETH_HLEN + ETH_FCS_LEN + VLAN_HLEN);
10181
10182 /* The slot time is changed by tg3_setup_phy if we
10183 * run at gigabit with half duplex.
10184 */
10185 val = (2 << TX_LENGTHS_IPG_CRS_SHIFT) |
10186 (6 << TX_LENGTHS_IPG_SHIFT) |
10187 (32 << TX_LENGTHS_SLOT_TIME_SHIFT);
10188
10189 if (tg3_asic_rev(tp) == ASIC_REV_5720 ||
10190 tg3_asic_rev(tp) == ASIC_REV_5762)
10191 val |= tr32(MAC_TX_LENGTHS) &
10192 (TX_LENGTHS_JMB_FRM_LEN_MSK |
10193 TX_LENGTHS_CNT_DWN_VAL_MSK);
10194
10195 tw32(MAC_TX_LENGTHS, val);
10196
10197 /* Receive rules. */
10198 tw32(MAC_RCV_RULE_CFG, RCV_RULE_CFG_DEFAULT_CLASS);
10199 tw32(RCVLPC_CONFIG, 0x0181);
10200
10201 /* Calculate RDMAC_MODE setting early, we need it to determine
10202 * the RCVLPC_STATE_ENABLE mask.
10203 */
10204 rdmac_mode = (RDMAC_MODE_ENABLE | RDMAC_MODE_TGTABORT_ENAB |
10205 RDMAC_MODE_MSTABORT_ENAB | RDMAC_MODE_PARITYERR_ENAB |
10206 RDMAC_MODE_ADDROFLOW_ENAB | RDMAC_MODE_FIFOOFLOW_ENAB |
10207 RDMAC_MODE_FIFOURUN_ENAB | RDMAC_MODE_FIFOOREAD_ENAB |
10208 RDMAC_MODE_LNGREAD_ENAB);
10209
10210 if (tg3_asic_rev(tp) == ASIC_REV_5717)
10211 rdmac_mode |= RDMAC_MODE_MULT_DMA_RD_DIS;
10212
10213 if (tg3_asic_rev(tp) == ASIC_REV_5784 ||
10214 tg3_asic_rev(tp) == ASIC_REV_5785 ||
10215 tg3_asic_rev(tp) == ASIC_REV_57780)
10216 rdmac_mode |= RDMAC_MODE_BD_SBD_CRPT_ENAB |
10217 RDMAC_MODE_MBUF_RBD_CRPT_ENAB |
10218 RDMAC_MODE_MBUF_SBD_CRPT_ENAB;
10219
10220 if (tg3_asic_rev(tp) == ASIC_REV_5705 &&
10221 tg3_chip_rev_id(tp) != CHIPREV_ID_5705_A0) {
10222 if (tg3_flag(tp, TSO_CAPABLE) &&
10223 tg3_asic_rev(tp) == ASIC_REV_5705) {
10224 rdmac_mode |= RDMAC_MODE_FIFO_SIZE_128;
10225 } else if (!(tr32(TG3PCI_PCISTATE) & PCISTATE_BUS_SPEED_HIGH) &&
10226 !tg3_flag(tp, IS_5788)) {
10227 rdmac_mode |= RDMAC_MODE_FIFO_LONG_BURST;
10228 }
10229 }
10230
10231 if (tg3_flag(tp, PCI_EXPRESS))
10232 rdmac_mode |= RDMAC_MODE_FIFO_LONG_BURST;
10233
10234 if (tg3_asic_rev(tp) == ASIC_REV_57766) {
10235 tp->dma_limit = 0;
10236 if (tp->dev->mtu <= ETH_DATA_LEN) {
10237 rdmac_mode |= RDMAC_MODE_JMB_2K_MMRR;
10238 tp->dma_limit = TG3_TX_BD_DMA_MAX_2K;
10239 }
10240 }
10241
10242 if (tg3_flag(tp, HW_TSO_1) ||
10243 tg3_flag(tp, HW_TSO_2) ||
10244 tg3_flag(tp, HW_TSO_3))
10245 rdmac_mode |= RDMAC_MODE_IPV4_LSO_EN;
10246
10247 if (tg3_flag(tp, 57765_PLUS) ||
10248 tg3_asic_rev(tp) == ASIC_REV_5785 ||
10249 tg3_asic_rev(tp) == ASIC_REV_57780)
10250 rdmac_mode |= RDMAC_MODE_IPV6_LSO_EN;
10251
10252 if (tg3_asic_rev(tp) == ASIC_REV_5720 ||
10253 tg3_asic_rev(tp) == ASIC_REV_5762)
10254 rdmac_mode |= tr32(RDMAC_MODE) & RDMAC_MODE_H2BNC_VLAN_DET;
10255
10256 if (tg3_asic_rev(tp) == ASIC_REV_5761 ||
10257 tg3_asic_rev(tp) == ASIC_REV_5784 ||
10258 tg3_asic_rev(tp) == ASIC_REV_5785 ||
10259 tg3_asic_rev(tp) == ASIC_REV_57780 ||
10260 tg3_flag(tp, 57765_PLUS)) {
10261 u32 tgtreg;
10262
10263 if (tg3_asic_rev(tp) == ASIC_REV_5762)
10264 tgtreg = TG3_RDMA_RSRVCTRL_REG2;
10265 else
10266 tgtreg = TG3_RDMA_RSRVCTRL_REG;
10267
10268 val = tr32(tgtreg);
10269 if (tg3_chip_rev_id(tp) == CHIPREV_ID_5719_A0 ||
10270 tg3_asic_rev(tp) == ASIC_REV_5762) {
10271 val &= ~(TG3_RDMA_RSRVCTRL_TXMRGN_MASK |
10272 TG3_RDMA_RSRVCTRL_FIFO_LWM_MASK |
10273 TG3_RDMA_RSRVCTRL_FIFO_HWM_MASK);
10274 val |= TG3_RDMA_RSRVCTRL_TXMRGN_320B |
10275 TG3_RDMA_RSRVCTRL_FIFO_LWM_1_5K |
10276 TG3_RDMA_RSRVCTRL_FIFO_HWM_1_5K;
10277 }
10278 tw32(tgtreg, val | TG3_RDMA_RSRVCTRL_FIFO_OFLW_FIX);
10279 }
10280
10281 if (tg3_asic_rev(tp) == ASIC_REV_5719 ||
10282 tg3_asic_rev(tp) == ASIC_REV_5720 ||
10283 tg3_asic_rev(tp) == ASIC_REV_5762) {
10284 u32 tgtreg;
10285
10286 if (tg3_asic_rev(tp) == ASIC_REV_5762)
10287 tgtreg = TG3_LSO_RD_DMA_CRPTEN_CTRL2;
10288 else
10289 tgtreg = TG3_LSO_RD_DMA_CRPTEN_CTRL;
10290
10291 val = tr32(tgtreg);
10292 tw32(tgtreg, val |
10293 TG3_LSO_RD_DMA_CRPTEN_CTRL_BLEN_BD_4K |
10294 TG3_LSO_RD_DMA_CRPTEN_CTRL_BLEN_LSO_4K);
10295 }
10296
10297 /* Receive/send statistics. */
10298 if (tg3_flag(tp, 5750_PLUS)) {
10299 val = tr32(RCVLPC_STATS_ENABLE);
10300 val &= ~RCVLPC_STATSENAB_DACK_FIX;
10301 tw32(RCVLPC_STATS_ENABLE, val);
10302 } else if ((rdmac_mode & RDMAC_MODE_FIFO_SIZE_128) &&
10303 tg3_flag(tp, TSO_CAPABLE)) {
10304 val = tr32(RCVLPC_STATS_ENABLE);
10305 val &= ~RCVLPC_STATSENAB_LNGBRST_RFIX;
10306 tw32(RCVLPC_STATS_ENABLE, val);
10307 } else {
10308 tw32(RCVLPC_STATS_ENABLE, 0xffffff);
10309 }
10310 tw32(RCVLPC_STATSCTRL, RCVLPC_STATSCTRL_ENABLE);
10311 tw32(SNDDATAI_STATSENAB, 0xffffff);
10312 tw32(SNDDATAI_STATSCTRL,
10313 (SNDDATAI_SCTRL_ENABLE |
10314 SNDDATAI_SCTRL_FASTUPD));
10315
10316 /* Setup host coalescing engine. */
10317 tw32(HOSTCC_MODE, 0);
10318 for (i = 0; i < 2000; i++) {
10319 if (!(tr32(HOSTCC_MODE) & HOSTCC_MODE_ENABLE))
10320 break;
10321 udelay(10);
10322 }
10323
10324 __tg3_set_coalesce(tp, &tp->coal);
10325
10326 if (!tg3_flag(tp, 5705_PLUS)) {
10327 /* Status/statistics block address. See tg3_timer,
10328 * the tg3_periodic_fetch_stats call there, and
10329 * tg3_get_stats to see how this works for 5705/5750 chips.
10330 */
10331 tw32(HOSTCC_STATS_BLK_HOST_ADDR + TG3_64BIT_REG_HIGH,
10332 ((u64) tp->stats_mapping >> 32));
10333 tw32(HOSTCC_STATS_BLK_HOST_ADDR + TG3_64BIT_REG_LOW,
10334 ((u64) tp->stats_mapping & 0xffffffff));
10335 tw32(HOSTCC_STATS_BLK_NIC_ADDR, NIC_SRAM_STATS_BLK);
10336
10337 tw32(HOSTCC_STATUS_BLK_NIC_ADDR, NIC_SRAM_STATUS_BLK);
10338
10339 /* Clear statistics and status block memory areas */
10340 for (i = NIC_SRAM_STATS_BLK;
10341 i < NIC_SRAM_STATUS_BLK + TG3_HW_STATUS_SIZE;
10342 i += sizeof(u32)) {
10343 tg3_write_mem(tp, i, 0);
10344 udelay(40);
10345 }
10346 }
10347
10348 tw32(HOSTCC_MODE, HOSTCC_MODE_ENABLE | tp->coalesce_mode);
10349
10350 tw32(RCVCC_MODE, RCVCC_MODE_ENABLE | RCVCC_MODE_ATTN_ENABLE);
10351 tw32(RCVLPC_MODE, RCVLPC_MODE_ENABLE);
10352 if (!tg3_flag(tp, 5705_PLUS))
10353 tw32(RCVLSC_MODE, RCVLSC_MODE_ENABLE | RCVLSC_MODE_ATTN_ENABLE);
10354
10355 if (tp->phy_flags & TG3_PHYFLG_MII_SERDES) {
10356 tp->phy_flags &= ~TG3_PHYFLG_PARALLEL_DETECT;
10357 /* reset to prevent losing 1st rx packet intermittently */
10358 tw32_f(MAC_RX_MODE, RX_MODE_RESET);
10359 udelay(10);
10360 }
10361
10362 tp->mac_mode |= MAC_MODE_TXSTAT_ENABLE | MAC_MODE_RXSTAT_ENABLE |
10363 MAC_MODE_TDE_ENABLE | MAC_MODE_RDE_ENABLE |
10364 MAC_MODE_FHDE_ENABLE;
10365 if (tg3_flag(tp, ENABLE_APE))
10366 tp->mac_mode |= MAC_MODE_APE_TX_EN | MAC_MODE_APE_RX_EN;
10367 if (!tg3_flag(tp, 5705_PLUS) &&
10368 !(tp->phy_flags & TG3_PHYFLG_PHY_SERDES) &&
10369 tg3_asic_rev(tp) != ASIC_REV_5700)
10370 tp->mac_mode |= MAC_MODE_LINK_POLARITY;
10371 tw32_f(MAC_MODE, tp->mac_mode | MAC_MODE_RXSTAT_CLEAR | MAC_MODE_TXSTAT_CLEAR);
10372 udelay(40);
10373
10374 /* tp->grc_local_ctrl is partially set up during tg3_get_invariants().
10375 * If TG3_FLAG_IS_NIC is zero, we should read the
10376 * register to preserve the GPIO settings for LOMs. The GPIOs,
10377 * whether used as inputs or outputs, are set by boot code after
10378 * reset.
10379 */
10380 if (!tg3_flag(tp, IS_NIC)) {
10381 u32 gpio_mask;
10382
10383 gpio_mask = GRC_LCLCTRL_GPIO_OE0 | GRC_LCLCTRL_GPIO_OE1 |
10384 GRC_LCLCTRL_GPIO_OE2 | GRC_LCLCTRL_GPIO_OUTPUT0 |
10385 GRC_LCLCTRL_GPIO_OUTPUT1 | GRC_LCLCTRL_GPIO_OUTPUT2;
10386
10387 if (tg3_asic_rev(tp) == ASIC_REV_5752)
10388 gpio_mask |= GRC_LCLCTRL_GPIO_OE3 |
10389 GRC_LCLCTRL_GPIO_OUTPUT3;
10390
10391 if (tg3_asic_rev(tp) == ASIC_REV_5755)
10392 gpio_mask |= GRC_LCLCTRL_GPIO_UART_SEL;
10393
10394 tp->grc_local_ctrl &= ~gpio_mask;
10395 tp->grc_local_ctrl |= tr32(GRC_LOCAL_CTRL) & gpio_mask;
10396
10397 /* GPIO1 must be driven high for eeprom write protect */
10398 if (tg3_flag(tp, EEPROM_WRITE_PROT))
10399 tp->grc_local_ctrl |= (GRC_LCLCTRL_GPIO_OE1 |
10400 GRC_LCLCTRL_GPIO_OUTPUT1);
10401 }
10402 tw32_f(GRC_LOCAL_CTRL, tp->grc_local_ctrl);
10403 udelay(100);
10404
10405 if (tg3_flag(tp, USING_MSIX)) {
10406 val = tr32(MSGINT_MODE);
10407 val |= MSGINT_MODE_ENABLE;
10408 if (tp->irq_cnt > 1)
10409 val |= MSGINT_MODE_MULTIVEC_EN;
10410 if (!tg3_flag(tp, 1SHOT_MSI))
10411 val |= MSGINT_MODE_ONE_SHOT_DISABLE;
10412 tw32(MSGINT_MODE, val);
10413 }
10414
10415 if (!tg3_flag(tp, 5705_PLUS)) {
10416 tw32_f(DMAC_MODE, DMAC_MODE_ENABLE);
10417 udelay(40);
10418 }
10419
10420 val = (WDMAC_MODE_ENABLE | WDMAC_MODE_TGTABORT_ENAB |
10421 WDMAC_MODE_MSTABORT_ENAB | WDMAC_MODE_PARITYERR_ENAB |
10422 WDMAC_MODE_ADDROFLOW_ENAB | WDMAC_MODE_FIFOOFLOW_ENAB |
10423 WDMAC_MODE_FIFOURUN_ENAB | WDMAC_MODE_FIFOOREAD_ENAB |
10424 WDMAC_MODE_LNGREAD_ENAB);
10425
10426 if (tg3_asic_rev(tp) == ASIC_REV_5705 &&
10427 tg3_chip_rev_id(tp) != CHIPREV_ID_5705_A0) {
10428 if (tg3_flag(tp, TSO_CAPABLE) &&
10429 (tg3_chip_rev_id(tp) == CHIPREV_ID_5705_A1 ||
10430 tg3_chip_rev_id(tp) == CHIPREV_ID_5705_A2)) {
10431 /* nothing */
10432 } else if (!(tr32(TG3PCI_PCISTATE) & PCISTATE_BUS_SPEED_HIGH) &&
10433 !tg3_flag(tp, IS_5788)) {
10434 val |= WDMAC_MODE_RX_ACCEL;
10435 }
10436 }
10437
10438 /* Enable host coalescing bug fix */
10439 if (tg3_flag(tp, 5755_PLUS))
10440 val |= WDMAC_MODE_STATUS_TAG_FIX;
10441
10442 if (tg3_asic_rev(tp) == ASIC_REV_5785)
10443 val |= WDMAC_MODE_BURST_ALL_DATA;
10444
10445 tw32_f(WDMAC_MODE, val);
10446 udelay(40);
10447
10448 if (tg3_flag(tp, PCIX_MODE)) {
10449 u16 pcix_cmd;
10450
10451 pci_read_config_word(tp->pdev, tp->pcix_cap + PCI_X_CMD,
10452 &pcix_cmd);
10453 if (tg3_asic_rev(tp) == ASIC_REV_5703) {
10454 pcix_cmd &= ~PCI_X_CMD_MAX_READ;
10455 pcix_cmd |= PCI_X_CMD_READ_2K;
10456 } else if (tg3_asic_rev(tp) == ASIC_REV_5704) {
10457 pcix_cmd &= ~(PCI_X_CMD_MAX_SPLIT | PCI_X_CMD_MAX_READ);
10458 pcix_cmd |= PCI_X_CMD_READ_2K;
10459 }
10460 pci_write_config_word(tp->pdev, tp->pcix_cap + PCI_X_CMD,
10461 pcix_cmd);
10462 }
10463
10464 tw32_f(RDMAC_MODE, rdmac_mode);
10465 udelay(40);
10466
10467 if (tg3_asic_rev(tp) == ASIC_REV_5719 ||
10468 tg3_asic_rev(tp) == ASIC_REV_5720) {
10469 for (i = 0; i < TG3_NUM_RDMA_CHANNELS; i++) {
10470 if (tr32(TG3_RDMA_LENGTH + (i << 2)) > TG3_MAX_MTU(tp))
10471 break;
10472 }
10473 if (i < TG3_NUM_RDMA_CHANNELS) {
10474 val = tr32(TG3_LSO_RD_DMA_CRPTEN_CTRL);
10475 val |= tg3_lso_rd_dma_workaround_bit(tp);
10476 tw32(TG3_LSO_RD_DMA_CRPTEN_CTRL, val);
10477 tg3_flag_set(tp, 5719_5720_RDMA_BUG);
10478 }
10479 }
10480
10481 tw32(RCVDCC_MODE, RCVDCC_MODE_ENABLE | RCVDCC_MODE_ATTN_ENABLE);
10482 if (!tg3_flag(tp, 5705_PLUS))
10483 tw32(MBFREE_MODE, MBFREE_MODE_ENABLE);
10484
10485 if (tg3_asic_rev(tp) == ASIC_REV_5761)
10486 tw32(SNDDATAC_MODE,
10487 SNDDATAC_MODE_ENABLE | SNDDATAC_MODE_CDELAY);
10488 else
10489 tw32(SNDDATAC_MODE, SNDDATAC_MODE_ENABLE);
10490
10491 tw32(SNDBDC_MODE, SNDBDC_MODE_ENABLE | SNDBDC_MODE_ATTN_ENABLE);
10492 tw32(RCVBDI_MODE, RCVBDI_MODE_ENABLE | RCVBDI_MODE_RCB_ATTN_ENAB);
10493 val = RCVDBDI_MODE_ENABLE | RCVDBDI_MODE_INV_RING_SZ;
10494 if (tg3_flag(tp, LRG_PROD_RING_CAP))
10495 val |= RCVDBDI_MODE_LRG_RING_SZ;
10496 tw32(RCVDBDI_MODE, val);
10497 tw32(SNDDATAI_MODE, SNDDATAI_MODE_ENABLE);
10498 if (tg3_flag(tp, HW_TSO_1) ||
10499 tg3_flag(tp, HW_TSO_2) ||
10500 tg3_flag(tp, HW_TSO_3))
10501 tw32(SNDDATAI_MODE, SNDDATAI_MODE_ENABLE | 0x8);
10502 val = SNDBDI_MODE_ENABLE | SNDBDI_MODE_ATTN_ENABLE;
10503 if (tg3_flag(tp, ENABLE_TSS))
10504 val |= SNDBDI_MODE_MULTI_TXQ_EN;
10505 tw32(SNDBDI_MODE, val);
10506 tw32(SNDBDS_MODE, SNDBDS_MODE_ENABLE | SNDBDS_MODE_ATTN_ENABLE);
10507
10508 if (tg3_chip_rev_id(tp) == CHIPREV_ID_5701_A0) {
10509 err = tg3_load_5701_a0_firmware_fix(tp);
10510 if (err)
10511 return err;
10512 }
10513
10514 if (tg3_asic_rev(tp) == ASIC_REV_57766) {
10515 /* Ignore any errors for the firmware download. If download
10516 * fails, the device will operate with EEE disabled
10517 */
10518 tg3_load_57766_firmware(tp);
10519 }
10520
10521 if (tg3_flag(tp, TSO_CAPABLE)) {
10522 err = tg3_load_tso_firmware(tp);
10523 if (err)
10524 return err;
10525 }
10526
10527 tp->tx_mode = TX_MODE_ENABLE;
10528
10529 if (tg3_flag(tp, 5755_PLUS) ||
10530 tg3_asic_rev(tp) == ASIC_REV_5906)
10531 tp->tx_mode |= TX_MODE_MBUF_LOCKUP_FIX;
10532
10533 if (tg3_asic_rev(tp) == ASIC_REV_5720 ||
10534 tg3_asic_rev(tp) == ASIC_REV_5762) {
10535 val = TX_MODE_JMB_FRM_LEN | TX_MODE_CNT_DN_MODE;
10536 tp->tx_mode &= ~val;
10537 tp->tx_mode |= tr32(MAC_TX_MODE) & val;
10538 }
10539
10540 tw32_f(MAC_TX_MODE, tp->tx_mode);
10541 udelay(100);
10542
10543 if (tg3_flag(tp, ENABLE_RSS)) {
10544 tg3_rss_write_indir_tbl(tp);
10545
10546 /* Setup the "secret" hash key. */
10547 tw32(MAC_RSS_HASH_KEY_0, 0x5f865437);
10548 tw32(MAC_RSS_HASH_KEY_1, 0xe4ac62cc);
10549 tw32(MAC_RSS_HASH_KEY_2, 0x50103a45);
10550 tw32(MAC_RSS_HASH_KEY_3, 0x36621985);
10551 tw32(MAC_RSS_HASH_KEY_4, 0xbf14c0e8);
10552 tw32(MAC_RSS_HASH_KEY_5, 0x1bc27a1e);
10553 tw32(MAC_RSS_HASH_KEY_6, 0x84f4b556);
10554 tw32(MAC_RSS_HASH_KEY_7, 0x094ea6fe);
10555 tw32(MAC_RSS_HASH_KEY_8, 0x7dda01e7);
10556 tw32(MAC_RSS_HASH_KEY_9, 0xc04d7481);
10557 }
10558
10559 tp->rx_mode = RX_MODE_ENABLE;
10560 if (tg3_flag(tp, 5755_PLUS))
10561 tp->rx_mode |= RX_MODE_IPV6_CSUM_ENABLE;
10562
10563 if (tg3_asic_rev(tp) == ASIC_REV_5762)
10564 tp->rx_mode |= RX_MODE_IPV4_FRAG_FIX;
10565
10566 if (tg3_flag(tp, ENABLE_RSS))
10567 tp->rx_mode |= RX_MODE_RSS_ENABLE |
10568 RX_MODE_RSS_ITBL_HASH_BITS_7 |
10569 RX_MODE_RSS_IPV6_HASH_EN |
10570 RX_MODE_RSS_TCP_IPV6_HASH_EN |
10571 RX_MODE_RSS_IPV4_HASH_EN |
10572 RX_MODE_RSS_TCP_IPV4_HASH_EN;
10573
10574 tw32_f(MAC_RX_MODE, tp->rx_mode);
10575 udelay(10);
10576
10577 tw32(MAC_LED_CTRL, tp->led_ctrl);
10578
10579 tw32(MAC_MI_STAT, MAC_MI_STAT_LNKSTAT_ATTN_ENAB);
10580 if (tp->phy_flags & TG3_PHYFLG_PHY_SERDES) {
10581 tw32_f(MAC_RX_MODE, RX_MODE_RESET);
10582 udelay(10);
10583 }
10584 tw32_f(MAC_RX_MODE, tp->rx_mode);
10585 udelay(10);
10586
10587 if (tp->phy_flags & TG3_PHYFLG_PHY_SERDES) {
10588 if ((tg3_asic_rev(tp) == ASIC_REV_5704) &&
10589 !(tp->phy_flags & TG3_PHYFLG_SERDES_PREEMPHASIS)) {
10590 /* Set drive transmission level to 1.2V */
10591 /* only if the signal pre-emphasis bit is not set */
10592 val = tr32(MAC_SERDES_CFG);
10593 val &= 0xfffff000;
10594 val |= 0x880;
10595 tw32(MAC_SERDES_CFG, val);
10596 }
10597 if (tg3_chip_rev_id(tp) == CHIPREV_ID_5703_A1)
10598 tw32(MAC_SERDES_CFG, 0x616000);
10599 }
10600
10601 /* Prevent chip from dropping frames when flow control
10602 * is enabled.
10603 */
10604 if (tg3_flag(tp, 57765_CLASS))
10605 val = 1;
10606 else
10607 val = 2;
10608 tw32_f(MAC_LOW_WMARK_MAX_RX_FRAME, val);
10609
10610 if (tg3_asic_rev(tp) == ASIC_REV_5704 &&
10611 (tp->phy_flags & TG3_PHYFLG_PHY_SERDES)) {
10612 /* Use hardware link auto-negotiation */
10613 tg3_flag_set(tp, HW_AUTONEG);
10614 }
10615
10616 if ((tp->phy_flags & TG3_PHYFLG_MII_SERDES) &&
10617 tg3_asic_rev(tp) == ASIC_REV_5714) {
10618 u32 tmp;
10619
10620 tmp = tr32(SERDES_RX_CTRL);
10621 tw32(SERDES_RX_CTRL, tmp | SERDES_RX_SIG_DETECT);
10622 tp->grc_local_ctrl &= ~GRC_LCLCTRL_USE_EXT_SIG_DETECT;
10623 tp->grc_local_ctrl |= GRC_LCLCTRL_USE_SIG_DETECT;
10624 tw32(GRC_LOCAL_CTRL, tp->grc_local_ctrl);
10625 }
10626
10627 if (!tg3_flag(tp, USE_PHYLIB)) {
10628 if (tp->phy_flags & TG3_PHYFLG_IS_LOW_POWER)
10629 tp->phy_flags &= ~TG3_PHYFLG_IS_LOW_POWER;
10630
10631 err = tg3_setup_phy(tp, false);
10632 if (err)
10633 return err;
10634
10635 if (!(tp->phy_flags & TG3_PHYFLG_PHY_SERDES) &&
10636 !(tp->phy_flags & TG3_PHYFLG_IS_FET)) {
10637 u32 tmp;
10638
10639 /* Clear CRC stats. */
10640 if (!tg3_readphy(tp, MII_TG3_TEST1, &tmp)) {
10641 tg3_writephy(tp, MII_TG3_TEST1,
10642 tmp | MII_TG3_TEST1_CRC_EN);
10643 tg3_readphy(tp, MII_TG3_RXR_COUNTERS, &tmp);
10644 }
10645 }
10646 }
10647
10648 __tg3_set_rx_mode(tp->dev);
10649
10650 /* Initialize receive rules. */
10651 tw32(MAC_RCV_RULE_0, 0xc2000000 & RCV_RULE_DISABLE_MASK);
10652 tw32(MAC_RCV_VALUE_0, 0xffffffff & RCV_RULE_DISABLE_MASK);
10653 tw32(MAC_RCV_RULE_1, 0x86000004 & RCV_RULE_DISABLE_MASK);
10654 tw32(MAC_RCV_VALUE_1, 0xffffffff & RCV_RULE_DISABLE_MASK);
10655
10656 if (tg3_flag(tp, 5705_PLUS) && !tg3_flag(tp, 5780_CLASS))
10657 limit = 8;
10658 else
10659 limit = 16;
10660 if (tg3_flag(tp, ENABLE_ASF))
10661 limit -= 4;
10662 switch (limit) {
10663 case 16:
10664 tw32(MAC_RCV_RULE_15, 0); tw32(MAC_RCV_VALUE_15, 0);
10665 case 15:
10666 tw32(MAC_RCV_RULE_14, 0); tw32(MAC_RCV_VALUE_14, 0);
10667 case 14:
10668 tw32(MAC_RCV_RULE_13, 0); tw32(MAC_RCV_VALUE_13, 0);
10669 case 13:
10670 tw32(MAC_RCV_RULE_12, 0); tw32(MAC_RCV_VALUE_12, 0);
10671 case 12:
10672 tw32(MAC_RCV_RULE_11, 0); tw32(MAC_RCV_VALUE_11, 0);
10673 case 11:
10674 tw32(MAC_RCV_RULE_10, 0); tw32(MAC_RCV_VALUE_10, 0);
10675 case 10:
10676 tw32(MAC_RCV_RULE_9, 0); tw32(MAC_RCV_VALUE_9, 0);
10677 case 9:
10678 tw32(MAC_RCV_RULE_8, 0); tw32(MAC_RCV_VALUE_8, 0);
10679 case 8:
10680 tw32(MAC_RCV_RULE_7, 0); tw32(MAC_RCV_VALUE_7, 0);
10681 case 7:
10682 tw32(MAC_RCV_RULE_6, 0); tw32(MAC_RCV_VALUE_6, 0);
10683 case 6:
10684 tw32(MAC_RCV_RULE_5, 0); tw32(MAC_RCV_VALUE_5, 0);
10685 case 5:
10686 tw32(MAC_RCV_RULE_4, 0); tw32(MAC_RCV_VALUE_4, 0);
10687 case 4:
10688 /* tw32(MAC_RCV_RULE_3, 0); tw32(MAC_RCV_VALUE_3, 0); */
10689 case 3:
10690 /* tw32(MAC_RCV_RULE_2, 0); tw32(MAC_RCV_VALUE_2, 0); */
10691 case 2:
10692 case 1:
10693
10694 default:
10695 break;
10696 }
10697
10698 if (tg3_flag(tp, ENABLE_APE))
10699 /* Write our heartbeat update interval to APE. */
10700 tg3_ape_write32(tp, TG3_APE_HOST_HEARTBEAT_INT_MS,
10701 APE_HOST_HEARTBEAT_INT_DISABLE);
10702
10703 tg3_write_sig_post_reset(tp, RESET_KIND_INIT);
10704
10705 return 0;
10706 }
10707
10708 /* Called at device open time to get the chip ready for
10709 * packet processing. Invoked with tp->lock held.
10710 */
10711 static int tg3_init_hw(struct tg3 *tp, bool reset_phy)
10712 {
10713 /* Chip may have been just powered on. If so, the boot code may still
10714 * be running initialization. Wait for it to finish to avoid races in
10715 * accessing the hardware.
10716 */
10717 tg3_enable_register_access(tp);
10718 tg3_poll_fw(tp);
10719
10720 tg3_switch_clocks(tp);
10721
10722 tw32(TG3PCI_MEM_WIN_BASE_ADDR, 0);
10723
10724 return tg3_reset_hw(tp, reset_phy);
10725 }
10726
10727 static void tg3_sd_scan_scratchpad(struct tg3 *tp, struct tg3_ocir *ocir)
10728 {
10729 int i;
10730
10731 for (i = 0; i < TG3_SD_NUM_RECS; i++, ocir++) {
10732 u32 off = i * TG3_OCIR_LEN, len = TG3_OCIR_LEN;
10733
10734 tg3_ape_scratchpad_read(tp, (u32 *) ocir, off, len);
10735 off += len;
10736
10737 if (ocir->signature != TG3_OCIR_SIG_MAGIC ||
10738 !(ocir->version_flags & TG3_OCIR_FLAG_ACTIVE))
10739 memset(ocir, 0, TG3_OCIR_LEN);
10740 }
10741 }
10742
10743 /* sysfs attributes for hwmon */
10744 static ssize_t tg3_show_temp(struct device *dev,
10745 struct device_attribute *devattr, char *buf)
10746 {
10747 struct sensor_device_attribute *attr = to_sensor_dev_attr(devattr);
10748 struct tg3 *tp = dev_get_drvdata(dev);
10749 u32 temperature;
10750
10751 spin_lock_bh(&tp->lock);
10752 tg3_ape_scratchpad_read(tp, &temperature, attr->index,
10753 sizeof(temperature));
10754 spin_unlock_bh(&tp->lock);
10755 return sprintf(buf, "%u\n", temperature);
10756 }
10757
10758
10759 static SENSOR_DEVICE_ATTR(temp1_input, S_IRUGO, tg3_show_temp, NULL,
10760 TG3_TEMP_SENSOR_OFFSET);
10761 static SENSOR_DEVICE_ATTR(temp1_crit, S_IRUGO, tg3_show_temp, NULL,
10762 TG3_TEMP_CAUTION_OFFSET);
10763 static SENSOR_DEVICE_ATTR(temp1_max, S_IRUGO, tg3_show_temp, NULL,
10764 TG3_TEMP_MAX_OFFSET);
10765
10766 static struct attribute *tg3_attrs[] = {
10767 &sensor_dev_attr_temp1_input.dev_attr.attr,
10768 &sensor_dev_attr_temp1_crit.dev_attr.attr,
10769 &sensor_dev_attr_temp1_max.dev_attr.attr,
10770 NULL
10771 };
10772 ATTRIBUTE_GROUPS(tg3);
10773
10774 static void tg3_hwmon_close(struct tg3 *tp)
10775 {
10776 if (tp->hwmon_dev) {
10777 hwmon_device_unregister(tp->hwmon_dev);
10778 tp->hwmon_dev = NULL;
10779 }
10780 }
10781
10782 static void tg3_hwmon_open(struct tg3 *tp)
10783 {
10784 int i;
10785 u32 size = 0;
10786 struct pci_dev *pdev = tp->pdev;
10787 struct tg3_ocir ocirs[TG3_SD_NUM_RECS];
10788
10789 tg3_sd_scan_scratchpad(tp, ocirs);
10790
10791 for (i = 0; i < TG3_SD_NUM_RECS; i++) {
10792 if (!ocirs[i].src_data_length)
10793 continue;
10794
10795 size += ocirs[i].src_hdr_length;
10796 size += ocirs[i].src_data_length;
10797 }
10798
10799 if (!size)
10800 return;
10801
10802 tp->hwmon_dev = hwmon_device_register_with_groups(&pdev->dev, "tg3",
10803 tp, tg3_groups);
10804 if (IS_ERR(tp->hwmon_dev)) {
10805 tp->hwmon_dev = NULL;
10806 dev_err(&pdev->dev, "Cannot register hwmon device, aborting\n");
10807 }
10808 }
10809
10810
10811 #define TG3_STAT_ADD32(PSTAT, REG) \
10812 do { u32 __val = tr32(REG); \
10813 (PSTAT)->low += __val; \
10814 if ((PSTAT)->low < __val) \
10815 (PSTAT)->high += 1; \
10816 } while (0)
10817
10818 static void tg3_periodic_fetch_stats(struct tg3 *tp)
10819 {
10820 struct tg3_hw_stats *sp = tp->hw_stats;
10821
10822 if (!tp->link_up)
10823 return;
10824
10825 TG3_STAT_ADD32(&sp->tx_octets, MAC_TX_STATS_OCTETS);
10826 TG3_STAT_ADD32(&sp->tx_collisions, MAC_TX_STATS_COLLISIONS);
10827 TG3_STAT_ADD32(&sp->tx_xon_sent, MAC_TX_STATS_XON_SENT);
10828 TG3_STAT_ADD32(&sp->tx_xoff_sent, MAC_TX_STATS_XOFF_SENT);
10829 TG3_STAT_ADD32(&sp->tx_mac_errors, MAC_TX_STATS_MAC_ERRORS);
10830 TG3_STAT_ADD32(&sp->tx_single_collisions, MAC_TX_STATS_SINGLE_COLLISIONS);
10831 TG3_STAT_ADD32(&sp->tx_mult_collisions, MAC_TX_STATS_MULT_COLLISIONS);
10832 TG3_STAT_ADD32(&sp->tx_deferred, MAC_TX_STATS_DEFERRED);
10833 TG3_STAT_ADD32(&sp->tx_excessive_collisions, MAC_TX_STATS_EXCESSIVE_COL);
10834 TG3_STAT_ADD32(&sp->tx_late_collisions, MAC_TX_STATS_LATE_COL);
10835 TG3_STAT_ADD32(&sp->tx_ucast_packets, MAC_TX_STATS_UCAST);
10836 TG3_STAT_ADD32(&sp->tx_mcast_packets, MAC_TX_STATS_MCAST);
10837 TG3_STAT_ADD32(&sp->tx_bcast_packets, MAC_TX_STATS_BCAST);
10838 if (unlikely(tg3_flag(tp, 5719_5720_RDMA_BUG) &&
10839 (sp->tx_ucast_packets.low + sp->tx_mcast_packets.low +
10840 sp->tx_bcast_packets.low) > TG3_NUM_RDMA_CHANNELS)) {
10841 u32 val;
10842
10843 val = tr32(TG3_LSO_RD_DMA_CRPTEN_CTRL);
10844 val &= ~tg3_lso_rd_dma_workaround_bit(tp);
10845 tw32(TG3_LSO_RD_DMA_CRPTEN_CTRL, val);
10846 tg3_flag_clear(tp, 5719_5720_RDMA_BUG);
10847 }
10848
10849 TG3_STAT_ADD32(&sp->rx_octets, MAC_RX_STATS_OCTETS);
10850 TG3_STAT_ADD32(&sp->rx_fragments, MAC_RX_STATS_FRAGMENTS);
10851 TG3_STAT_ADD32(&sp->rx_ucast_packets, MAC_RX_STATS_UCAST);
10852 TG3_STAT_ADD32(&sp->rx_mcast_packets, MAC_RX_STATS_MCAST);
10853 TG3_STAT_ADD32(&sp->rx_bcast_packets, MAC_RX_STATS_BCAST);
10854 TG3_STAT_ADD32(&sp->rx_fcs_errors, MAC_RX_STATS_FCS_ERRORS);
10855 TG3_STAT_ADD32(&sp->rx_align_errors, MAC_RX_STATS_ALIGN_ERRORS);
10856 TG3_STAT_ADD32(&sp->rx_xon_pause_rcvd, MAC_RX_STATS_XON_PAUSE_RECVD);
10857 TG3_STAT_ADD32(&sp->rx_xoff_pause_rcvd, MAC_RX_STATS_XOFF_PAUSE_RECVD);
10858 TG3_STAT_ADD32(&sp->rx_mac_ctrl_rcvd, MAC_RX_STATS_MAC_CTRL_RECVD);
10859 TG3_STAT_ADD32(&sp->rx_xoff_entered, MAC_RX_STATS_XOFF_ENTERED);
10860 TG3_STAT_ADD32(&sp->rx_frame_too_long_errors, MAC_RX_STATS_FRAME_TOO_LONG);
10861 TG3_STAT_ADD32(&sp->rx_jabbers, MAC_RX_STATS_JABBERS);
10862 TG3_STAT_ADD32(&sp->rx_undersize_packets, MAC_RX_STATS_UNDERSIZE);
10863
10864 TG3_STAT_ADD32(&sp->rxbds_empty, RCVLPC_NO_RCV_BD_CNT);
10865 if (tg3_asic_rev(tp) != ASIC_REV_5717 &&
10866 tg3_asic_rev(tp) != ASIC_REV_5762 &&
10867 tg3_chip_rev_id(tp) != CHIPREV_ID_5719_A0 &&
10868 tg3_chip_rev_id(tp) != CHIPREV_ID_5720_A0) {
10869 TG3_STAT_ADD32(&sp->rx_discards, RCVLPC_IN_DISCARDS_CNT);
10870 } else {
10871 u32 val = tr32(HOSTCC_FLOW_ATTN);
10872 val = (val & HOSTCC_FLOW_ATTN_MBUF_LWM) ? 1 : 0;
10873 if (val) {
10874 tw32(HOSTCC_FLOW_ATTN, HOSTCC_FLOW_ATTN_MBUF_LWM);
10875 sp->rx_discards.low += val;
10876 if (sp->rx_discards.low < val)
10877 sp->rx_discards.high += 1;
10878 }
10879 sp->mbuf_lwm_thresh_hit = sp->rx_discards;
10880 }
10881 TG3_STAT_ADD32(&sp->rx_errors, RCVLPC_IN_ERRORS_CNT);
10882 }
10883
10884 static void tg3_chk_missed_msi(struct tg3 *tp)
10885 {
10886 u32 i;
10887
10888 for (i = 0; i < tp->irq_cnt; i++) {
10889 struct tg3_napi *tnapi = &tp->napi[i];
10890
10891 if (tg3_has_work(tnapi)) {
10892 if (tnapi->last_rx_cons == tnapi->rx_rcb_ptr &&
10893 tnapi->last_tx_cons == tnapi->tx_cons) {
10894 if (tnapi->chk_msi_cnt < 1) {
10895 tnapi->chk_msi_cnt++;
10896 return;
10897 }
10898 tg3_msi(0, tnapi);
10899 }
10900 }
10901 tnapi->chk_msi_cnt = 0;
10902 tnapi->last_rx_cons = tnapi->rx_rcb_ptr;
10903 tnapi->last_tx_cons = tnapi->tx_cons;
10904 }
10905 }
10906
10907 static void tg3_timer(unsigned long __opaque)
10908 {
10909 struct tg3 *tp = (struct tg3 *) __opaque;
10910
10911 if (tp->irq_sync || tg3_flag(tp, RESET_TASK_PENDING))
10912 goto restart_timer;
10913
10914 spin_lock(&tp->lock);
10915
10916 if (tg3_asic_rev(tp) == ASIC_REV_5717 ||
10917 tg3_flag(tp, 57765_CLASS))
10918 tg3_chk_missed_msi(tp);
10919
10920 if (tg3_flag(tp, FLUSH_POSTED_WRITES)) {
10921 /* BCM4785: Flush posted writes from GbE to host memory. */
10922 tr32(HOSTCC_MODE);
10923 }
10924
10925 if (!tg3_flag(tp, TAGGED_STATUS)) {
10926 /* All of this garbage is because when using non-tagged
10927 * IRQ status the mailbox/status_block protocol the chip
10928 * uses with the cpu is race prone.
10929 */
10930 if (tp->napi[0].hw_status->status & SD_STATUS_UPDATED) {
10931 tw32(GRC_LOCAL_CTRL,
10932 tp->grc_local_ctrl | GRC_LCLCTRL_SETINT);
10933 } else {
10934 tw32(HOSTCC_MODE, tp->coalesce_mode |
10935 HOSTCC_MODE_ENABLE | HOSTCC_MODE_NOW);
10936 }
10937
10938 if (!(tr32(WDMAC_MODE) & WDMAC_MODE_ENABLE)) {
10939 spin_unlock(&tp->lock);
10940 tg3_reset_task_schedule(tp);
10941 goto restart_timer;
10942 }
10943 }
10944
10945 /* This part only runs once per second. */
10946 if (!--tp->timer_counter) {
10947 if (tg3_flag(tp, 5705_PLUS))
10948 tg3_periodic_fetch_stats(tp);
10949
10950 if (tp->setlpicnt && !--tp->setlpicnt)
10951 tg3_phy_eee_enable(tp);
10952
10953 if (tg3_flag(tp, USE_LINKCHG_REG)) {
10954 u32 mac_stat;
10955 int phy_event;
10956
10957 mac_stat = tr32(MAC_STATUS);
10958
10959 phy_event = 0;
10960 if (tp->phy_flags & TG3_PHYFLG_USE_MI_INTERRUPT) {
10961 if (mac_stat & MAC_STATUS_MI_INTERRUPT)
10962 phy_event = 1;
10963 } else if (mac_stat & MAC_STATUS_LNKSTATE_CHANGED)
10964 phy_event = 1;
10965
10966 if (phy_event)
10967 tg3_setup_phy(tp, false);
10968 } else if (tg3_flag(tp, POLL_SERDES)) {
10969 u32 mac_stat = tr32(MAC_STATUS);
10970 int need_setup = 0;
10971
10972 if (tp->link_up &&
10973 (mac_stat & MAC_STATUS_LNKSTATE_CHANGED)) {
10974 need_setup = 1;
10975 }
10976 if (!tp->link_up &&
10977 (mac_stat & (MAC_STATUS_PCS_SYNCED |
10978 MAC_STATUS_SIGNAL_DET))) {
10979 need_setup = 1;
10980 }
10981 if (need_setup) {
10982 if (!tp->serdes_counter) {
10983 tw32_f(MAC_MODE,
10984 (tp->mac_mode &
10985 ~MAC_MODE_PORT_MODE_MASK));
10986 udelay(40);
10987 tw32_f(MAC_MODE, tp->mac_mode);
10988 udelay(40);
10989 }
10990 tg3_setup_phy(tp, false);
10991 }
10992 } else if ((tp->phy_flags & TG3_PHYFLG_MII_SERDES) &&
10993 tg3_flag(tp, 5780_CLASS)) {
10994 tg3_serdes_parallel_detect(tp);
10995 } else if (tg3_flag(tp, POLL_CPMU_LINK)) {
10996 u32 cpmu = tr32(TG3_CPMU_STATUS);
10997 bool link_up = !((cpmu & TG3_CPMU_STATUS_LINK_MASK) ==
10998 TG3_CPMU_STATUS_LINK_MASK);
10999
11000 if (link_up != tp->link_up)
11001 tg3_setup_phy(tp, false);
11002 }
11003
11004 tp->timer_counter = tp->timer_multiplier;
11005 }
11006
11007 /* Heartbeat is only sent once every 2 seconds.
11008 *
11009 * The heartbeat is to tell the ASF firmware that the host
11010 * driver is still alive. In the event that the OS crashes,
11011 * ASF needs to reset the hardware to free up the FIFO space
11012 * that may be filled with rx packets destined for the host.
11013 * If the FIFO is full, ASF will no longer function properly.
11014 *
11015 * Unintended resets have been reported on real time kernels
11016 * where the timer doesn't run on time. Netpoll will also have
11017 * same problem.
11018 *
11019 * The new FWCMD_NICDRV_ALIVE3 command tells the ASF firmware
11020 * to check the ring condition when the heartbeat is expiring
11021 * before doing the reset. This will prevent most unintended
11022 * resets.
11023 */
11024 if (!--tp->asf_counter) {
11025 if (tg3_flag(tp, ENABLE_ASF) && !tg3_flag(tp, ENABLE_APE)) {
11026 tg3_wait_for_event_ack(tp);
11027
11028 tg3_write_mem(tp, NIC_SRAM_FW_CMD_MBOX,
11029 FWCMD_NICDRV_ALIVE3);
11030 tg3_write_mem(tp, NIC_SRAM_FW_CMD_LEN_MBOX, 4);
11031 tg3_write_mem(tp, NIC_SRAM_FW_CMD_DATA_MBOX,
11032 TG3_FW_UPDATE_TIMEOUT_SEC);
11033
11034 tg3_generate_fw_event(tp);
11035 }
11036 tp->asf_counter = tp->asf_multiplier;
11037 }
11038
11039 spin_unlock(&tp->lock);
11040
11041 restart_timer:
11042 tp->timer.expires = jiffies + tp->timer_offset;
11043 add_timer(&tp->timer);
11044 }
11045
11046 static void tg3_timer_init(struct tg3 *tp)
11047 {
11048 if (tg3_flag(tp, TAGGED_STATUS) &&
11049 tg3_asic_rev(tp) != ASIC_REV_5717 &&
11050 !tg3_flag(tp, 57765_CLASS))
11051 tp->timer_offset = HZ;
11052 else
11053 tp->timer_offset = HZ / 10;
11054
11055 BUG_ON(tp->timer_offset > HZ);
11056
11057 tp->timer_multiplier = (HZ / tp->timer_offset);
11058 tp->asf_multiplier = (HZ / tp->timer_offset) *
11059 TG3_FW_UPDATE_FREQ_SEC;
11060
11061 init_timer(&tp->timer);
11062 tp->timer.data = (unsigned long) tp;
11063 tp->timer.function = tg3_timer;
11064 }
11065
11066 static void tg3_timer_start(struct tg3 *tp)
11067 {
11068 tp->asf_counter = tp->asf_multiplier;
11069 tp->timer_counter = tp->timer_multiplier;
11070
11071 tp->timer.expires = jiffies + tp->timer_offset;
11072 add_timer(&tp->timer);
11073 }
11074
11075 static void tg3_timer_stop(struct tg3 *tp)
11076 {
11077 del_timer_sync(&tp->timer);
11078 }
11079
11080 /* Restart hardware after configuration changes, self-test, etc.
11081 * Invoked with tp->lock held.
11082 */
11083 static int tg3_restart_hw(struct tg3 *tp, bool reset_phy)
11084 __releases(tp->lock)
11085 __acquires(tp->lock)
11086 {
11087 int err;
11088
11089 err = tg3_init_hw(tp, reset_phy);
11090 if (err) {
11091 netdev_err(tp->dev,
11092 "Failed to re-initialize device, aborting\n");
11093 tg3_halt(tp, RESET_KIND_SHUTDOWN, 1);
11094 tg3_full_unlock(tp);
11095 tg3_timer_stop(tp);
11096 tp->irq_sync = 0;
11097 tg3_napi_enable(tp);
11098 dev_close(tp->dev);
11099 tg3_full_lock(tp, 0);
11100 }
11101 return err;
11102 }
11103
11104 static void tg3_reset_task(struct work_struct *work)
11105 {
11106 struct tg3 *tp = container_of(work, struct tg3, reset_task);
11107 int err;
11108
11109 tg3_full_lock(tp, 0);
11110
11111 if (!netif_running(tp->dev)) {
11112 tg3_flag_clear(tp, RESET_TASK_PENDING);
11113 tg3_full_unlock(tp);
11114 return;
11115 }
11116
11117 tg3_full_unlock(tp);
11118
11119 tg3_phy_stop(tp);
11120
11121 tg3_netif_stop(tp);
11122
11123 tg3_full_lock(tp, 1);
11124
11125 if (tg3_flag(tp, TX_RECOVERY_PENDING)) {
11126 tp->write32_tx_mbox = tg3_write32_tx_mbox;
11127 tp->write32_rx_mbox = tg3_write_flush_reg32;
11128 tg3_flag_set(tp, MBOX_WRITE_REORDER);
11129 tg3_flag_clear(tp, TX_RECOVERY_PENDING);
11130 }
11131
11132 tg3_halt(tp, RESET_KIND_SHUTDOWN, 0);
11133 err = tg3_init_hw(tp, true);
11134 if (err)
11135 goto out;
11136
11137 tg3_netif_start(tp);
11138
11139 out:
11140 tg3_full_unlock(tp);
11141
11142 if (!err)
11143 tg3_phy_start(tp);
11144
11145 tg3_flag_clear(tp, RESET_TASK_PENDING);
11146 }
11147
11148 static int tg3_request_irq(struct tg3 *tp, int irq_num)
11149 {
11150 irq_handler_t fn;
11151 unsigned long flags;
11152 char *name;
11153 struct tg3_napi *tnapi = &tp->napi[irq_num];
11154
11155 if (tp->irq_cnt == 1)
11156 name = tp->dev->name;
11157 else {
11158 name = &tnapi->irq_lbl[0];
11159 if (tnapi->tx_buffers && tnapi->rx_rcb)
11160 snprintf(name, IFNAMSIZ,
11161 "%s-txrx-%d", tp->dev->name, irq_num);
11162 else if (tnapi->tx_buffers)
11163 snprintf(name, IFNAMSIZ,
11164 "%s-tx-%d", tp->dev->name, irq_num);
11165 else if (tnapi->rx_rcb)
11166 snprintf(name, IFNAMSIZ,
11167 "%s-rx-%d", tp->dev->name, irq_num);
11168 else
11169 snprintf(name, IFNAMSIZ,
11170 "%s-%d", tp->dev->name, irq_num);
11171 name[IFNAMSIZ-1] = 0;
11172 }
11173
11174 if (tg3_flag(tp, USING_MSI) || tg3_flag(tp, USING_MSIX)) {
11175 fn = tg3_msi;
11176 if (tg3_flag(tp, 1SHOT_MSI))
11177 fn = tg3_msi_1shot;
11178 flags = 0;
11179 } else {
11180 fn = tg3_interrupt;
11181 if (tg3_flag(tp, TAGGED_STATUS))
11182 fn = tg3_interrupt_tagged;
11183 flags = IRQF_SHARED;
11184 }
11185
11186 return request_irq(tnapi->irq_vec, fn, flags, name, tnapi);
11187 }
11188
11189 static int tg3_test_interrupt(struct tg3 *tp)
11190 {
11191 struct tg3_napi *tnapi = &tp->napi[0];
11192 struct net_device *dev = tp->dev;
11193 int err, i, intr_ok = 0;
11194 u32 val;
11195
11196 if (!netif_running(dev))
11197 return -ENODEV;
11198
11199 tg3_disable_ints(tp);
11200
11201 free_irq(tnapi->irq_vec, tnapi);
11202
11203 /*
11204 * Turn off MSI one shot mode. Otherwise this test has no
11205 * observable way to know whether the interrupt was delivered.
11206 */
11207 if (tg3_flag(tp, 57765_PLUS)) {
11208 val = tr32(MSGINT_MODE) | MSGINT_MODE_ONE_SHOT_DISABLE;
11209 tw32(MSGINT_MODE, val);
11210 }
11211
11212 err = request_irq(tnapi->irq_vec, tg3_test_isr,
11213 IRQF_SHARED, dev->name, tnapi);
11214 if (err)
11215 return err;
11216
11217 tnapi->hw_status->status &= ~SD_STATUS_UPDATED;
11218 tg3_enable_ints(tp);
11219
11220 tw32_f(HOSTCC_MODE, tp->coalesce_mode | HOSTCC_MODE_ENABLE |
11221 tnapi->coal_now);
11222
11223 for (i = 0; i < 5; i++) {
11224 u32 int_mbox, misc_host_ctrl;
11225
11226 int_mbox = tr32_mailbox(tnapi->int_mbox);
11227 misc_host_ctrl = tr32(TG3PCI_MISC_HOST_CTRL);
11228
11229 if ((int_mbox != 0) ||
11230 (misc_host_ctrl & MISC_HOST_CTRL_MASK_PCI_INT)) {
11231 intr_ok = 1;
11232 break;
11233 }
11234
11235 if (tg3_flag(tp, 57765_PLUS) &&
11236 tnapi->hw_status->status_tag != tnapi->last_tag)
11237 tw32_mailbox_f(tnapi->int_mbox, tnapi->last_tag << 24);
11238
11239 msleep(10);
11240 }
11241
11242 tg3_disable_ints(tp);
11243
11244 free_irq(tnapi->irq_vec, tnapi);
11245
11246 err = tg3_request_irq(tp, 0);
11247
11248 if (err)
11249 return err;
11250
11251 if (intr_ok) {
11252 /* Reenable MSI one shot mode. */
11253 if (tg3_flag(tp, 57765_PLUS) && tg3_flag(tp, 1SHOT_MSI)) {
11254 val = tr32(MSGINT_MODE) & ~MSGINT_MODE_ONE_SHOT_DISABLE;
11255 tw32(MSGINT_MODE, val);
11256 }
11257 return 0;
11258 }
11259
11260 return -EIO;
11261 }
11262
11263 /* Returns 0 if MSI test succeeds or MSI test fails and INTx mode is
11264 * successfully restored
11265 */
11266 static int tg3_test_msi(struct tg3 *tp)
11267 {
11268 int err;
11269 u16 pci_cmd;
11270
11271 if (!tg3_flag(tp, USING_MSI))
11272 return 0;
11273
11274 /* Turn off SERR reporting in case MSI terminates with Master
11275 * Abort.
11276 */
11277 pci_read_config_word(tp->pdev, PCI_COMMAND, &pci_cmd);
11278 pci_write_config_word(tp->pdev, PCI_COMMAND,
11279 pci_cmd & ~PCI_COMMAND_SERR);
11280
11281 err = tg3_test_interrupt(tp);
11282
11283 pci_write_config_word(tp->pdev, PCI_COMMAND, pci_cmd);
11284
11285 if (!err)
11286 return 0;
11287
11288 /* other failures */
11289 if (err != -EIO)
11290 return err;
11291
11292 /* MSI test failed, go back to INTx mode */
11293 netdev_warn(tp->dev, "No interrupt was generated using MSI. Switching "
11294 "to INTx mode. Please report this failure to the PCI "
11295 "maintainer and include system chipset information\n");
11296
11297 free_irq(tp->napi[0].irq_vec, &tp->napi[0]);
11298
11299 pci_disable_msi(tp->pdev);
11300
11301 tg3_flag_clear(tp, USING_MSI);
11302 tp->napi[0].irq_vec = tp->pdev->irq;
11303
11304 err = tg3_request_irq(tp, 0);
11305 if (err)
11306 return err;
11307
11308 /* Need to reset the chip because the MSI cycle may have terminated
11309 * with Master Abort.
11310 */
11311 tg3_full_lock(tp, 1);
11312
11313 tg3_halt(tp, RESET_KIND_SHUTDOWN, 1);
11314 err = tg3_init_hw(tp, true);
11315
11316 tg3_full_unlock(tp);
11317
11318 if (err)
11319 free_irq(tp->napi[0].irq_vec, &tp->napi[0]);
11320
11321 return err;
11322 }
11323
11324 static int tg3_request_firmware(struct tg3 *tp)
11325 {
11326 const struct tg3_firmware_hdr *fw_hdr;
11327
11328 if (request_firmware(&tp->fw, tp->fw_needed, &tp->pdev->dev)) {
11329 netdev_err(tp->dev, "Failed to load firmware \"%s\"\n",
11330 tp->fw_needed);
11331 return -ENOENT;
11332 }
11333
11334 fw_hdr = (struct tg3_firmware_hdr *)tp->fw->data;
11335
11336 /* Firmware blob starts with version numbers, followed by
11337 * start address and _full_ length including BSS sections
11338 * (which must be longer than the actual data, of course
11339 */
11340
11341 tp->fw_len = be32_to_cpu(fw_hdr->len); /* includes bss */
11342 if (tp->fw_len < (tp->fw->size - TG3_FW_HDR_LEN)) {
11343 netdev_err(tp->dev, "bogus length %d in \"%s\"\n",
11344 tp->fw_len, tp->fw_needed);
11345 release_firmware(tp->fw);
11346 tp->fw = NULL;
11347 return -EINVAL;
11348 }
11349
11350 /* We no longer need firmware; we have it. */
11351 tp->fw_needed = NULL;
11352 return 0;
11353 }
11354
11355 static u32 tg3_irq_count(struct tg3 *tp)
11356 {
11357 u32 irq_cnt = max(tp->rxq_cnt, tp->txq_cnt);
11358
11359 if (irq_cnt > 1) {
11360 /* We want as many rx rings enabled as there are cpus.
11361 * In multiqueue MSI-X mode, the first MSI-X vector
11362 * only deals with link interrupts, etc, so we add
11363 * one to the number of vectors we are requesting.
11364 */
11365 irq_cnt = min_t(unsigned, irq_cnt + 1, tp->irq_max);
11366 }
11367
11368 return irq_cnt;
11369 }
11370
11371 static bool tg3_enable_msix(struct tg3 *tp)
11372 {
11373 int i, rc;
11374 struct msix_entry msix_ent[TG3_IRQ_MAX_VECS];
11375
11376 tp->txq_cnt = tp->txq_req;
11377 tp->rxq_cnt = tp->rxq_req;
11378 if (!tp->rxq_cnt)
11379 tp->rxq_cnt = netif_get_num_default_rss_queues();
11380 if (tp->rxq_cnt > tp->rxq_max)
11381 tp->rxq_cnt = tp->rxq_max;
11382
11383 /* Disable multiple TX rings by default. Simple round-robin hardware
11384 * scheduling of the TX rings can cause starvation of rings with
11385 * small packets when other rings have TSO or jumbo packets.
11386 */
11387 if (!tp->txq_req)
11388 tp->txq_cnt = 1;
11389
11390 tp->irq_cnt = tg3_irq_count(tp);
11391
11392 for (i = 0; i < tp->irq_max; i++) {
11393 msix_ent[i].entry = i;
11394 msix_ent[i].vector = 0;
11395 }
11396
11397 rc = pci_enable_msix_range(tp->pdev, msix_ent, 1, tp->irq_cnt);
11398 if (rc < 0) {
11399 return false;
11400 } else if (rc < tp->irq_cnt) {
11401 netdev_notice(tp->dev, "Requested %d MSI-X vectors, received %d\n",
11402 tp->irq_cnt, rc);
11403 tp->irq_cnt = rc;
11404 tp->rxq_cnt = max(rc - 1, 1);
11405 if (tp->txq_cnt)
11406 tp->txq_cnt = min(tp->rxq_cnt, tp->txq_max);
11407 }
11408
11409 for (i = 0; i < tp->irq_max; i++)
11410 tp->napi[i].irq_vec = msix_ent[i].vector;
11411
11412 if (netif_set_real_num_rx_queues(tp->dev, tp->rxq_cnt)) {
11413 pci_disable_msix(tp->pdev);
11414 return false;
11415 }
11416
11417 if (tp->irq_cnt == 1)
11418 return true;
11419
11420 tg3_flag_set(tp, ENABLE_RSS);
11421
11422 if (tp->txq_cnt > 1)
11423 tg3_flag_set(tp, ENABLE_TSS);
11424
11425 netif_set_real_num_tx_queues(tp->dev, tp->txq_cnt);
11426
11427 return true;
11428 }
11429
11430 static void tg3_ints_init(struct tg3 *tp)
11431 {
11432 if ((tg3_flag(tp, SUPPORT_MSI) || tg3_flag(tp, SUPPORT_MSIX)) &&
11433 !tg3_flag(tp, TAGGED_STATUS)) {
11434 /* All MSI supporting chips should support tagged
11435 * status. Assert that this is the case.
11436 */
11437 netdev_warn(tp->dev,
11438 "MSI without TAGGED_STATUS? Not using MSI\n");
11439 goto defcfg;
11440 }
11441
11442 if (tg3_flag(tp, SUPPORT_MSIX) && tg3_enable_msix(tp))
11443 tg3_flag_set(tp, USING_MSIX);
11444 else if (tg3_flag(tp, SUPPORT_MSI) && pci_enable_msi(tp->pdev) == 0)
11445 tg3_flag_set(tp, USING_MSI);
11446
11447 if (tg3_flag(tp, USING_MSI) || tg3_flag(tp, USING_MSIX)) {
11448 u32 msi_mode = tr32(MSGINT_MODE);
11449 if (tg3_flag(tp, USING_MSIX) && tp->irq_cnt > 1)
11450 msi_mode |= MSGINT_MODE_MULTIVEC_EN;
11451 if (!tg3_flag(tp, 1SHOT_MSI))
11452 msi_mode |= MSGINT_MODE_ONE_SHOT_DISABLE;
11453 tw32(MSGINT_MODE, msi_mode | MSGINT_MODE_ENABLE);
11454 }
11455 defcfg:
11456 if (!tg3_flag(tp, USING_MSIX)) {
11457 tp->irq_cnt = 1;
11458 tp->napi[0].irq_vec = tp->pdev->irq;
11459 }
11460
11461 if (tp->irq_cnt == 1) {
11462 tp->txq_cnt = 1;
11463 tp->rxq_cnt = 1;
11464 netif_set_real_num_tx_queues(tp->dev, 1);
11465 netif_set_real_num_rx_queues(tp->dev, 1);
11466 }
11467 }
11468
11469 static void tg3_ints_fini(struct tg3 *tp)
11470 {
11471 if (tg3_flag(tp, USING_MSIX))
11472 pci_disable_msix(tp->pdev);
11473 else if (tg3_flag(tp, USING_MSI))
11474 pci_disable_msi(tp->pdev);
11475 tg3_flag_clear(tp, USING_MSI);
11476 tg3_flag_clear(tp, USING_MSIX);
11477 tg3_flag_clear(tp, ENABLE_RSS);
11478 tg3_flag_clear(tp, ENABLE_TSS);
11479 }
11480
11481 static int tg3_start(struct tg3 *tp, bool reset_phy, bool test_irq,
11482 bool init)
11483 {
11484 struct net_device *dev = tp->dev;
11485 int i, err;
11486
11487 /*
11488 * Setup interrupts first so we know how
11489 * many NAPI resources to allocate
11490 */
11491 tg3_ints_init(tp);
11492
11493 tg3_rss_check_indir_tbl(tp);
11494
11495 /* The placement of this call is tied
11496 * to the setup and use of Host TX descriptors.
11497 */
11498 err = tg3_alloc_consistent(tp);
11499 if (err)
11500 goto out_ints_fini;
11501
11502 tg3_napi_init(tp);
11503
11504 tg3_napi_enable(tp);
11505
11506 for (i = 0; i < tp->irq_cnt; i++) {
11507 struct tg3_napi *tnapi = &tp->napi[i];
11508 err = tg3_request_irq(tp, i);
11509 if (err) {
11510 for (i--; i >= 0; i--) {
11511 tnapi = &tp->napi[i];
11512 free_irq(tnapi->irq_vec, tnapi);
11513 }
11514 goto out_napi_fini;
11515 }
11516 }
11517
11518 tg3_full_lock(tp, 0);
11519
11520 if (init)
11521 tg3_ape_driver_state_change(tp, RESET_KIND_INIT);
11522
11523 err = tg3_init_hw(tp, reset_phy);
11524 if (err) {
11525 tg3_halt(tp, RESET_KIND_SHUTDOWN, 1);
11526 tg3_free_rings(tp);
11527 }
11528
11529 tg3_full_unlock(tp);
11530
11531 if (err)
11532 goto out_free_irq;
11533
11534 if (test_irq && tg3_flag(tp, USING_MSI)) {
11535 err = tg3_test_msi(tp);
11536
11537 if (err) {
11538 tg3_full_lock(tp, 0);
11539 tg3_halt(tp, RESET_KIND_SHUTDOWN, 1);
11540 tg3_free_rings(tp);
11541 tg3_full_unlock(tp);
11542
11543 goto out_napi_fini;
11544 }
11545
11546 if (!tg3_flag(tp, 57765_PLUS) && tg3_flag(tp, USING_MSI)) {
11547 u32 val = tr32(PCIE_TRANSACTION_CFG);
11548
11549 tw32(PCIE_TRANSACTION_CFG,
11550 val | PCIE_TRANS_CFG_1SHOT_MSI);
11551 }
11552 }
11553
11554 tg3_phy_start(tp);
11555
11556 tg3_hwmon_open(tp);
11557
11558 tg3_full_lock(tp, 0);
11559
11560 tg3_timer_start(tp);
11561 tg3_flag_set(tp, INIT_COMPLETE);
11562 tg3_enable_ints(tp);
11563
11564 if (init)
11565 tg3_ptp_init(tp);
11566 else
11567 tg3_ptp_resume(tp);
11568
11569
11570 tg3_full_unlock(tp);
11571
11572 netif_tx_start_all_queues(dev);
11573
11574 /*
11575 * Reset loopback feature if it was turned on while the device was down
11576 * make sure that it's installed properly now.
11577 */
11578 if (dev->features & NETIF_F_LOOPBACK)
11579 tg3_set_loopback(dev, dev->features);
11580
11581 return 0;
11582
11583 out_free_irq:
11584 for (i = tp->irq_cnt - 1; i >= 0; i--) {
11585 struct tg3_napi *tnapi = &tp->napi[i];
11586 free_irq(tnapi->irq_vec, tnapi);
11587 }
11588
11589 out_napi_fini:
11590 tg3_napi_disable(tp);
11591 tg3_napi_fini(tp);
11592 tg3_free_consistent(tp);
11593
11594 out_ints_fini:
11595 tg3_ints_fini(tp);
11596
11597 return err;
11598 }
11599
11600 static void tg3_stop(struct tg3 *tp)
11601 {
11602 int i;
11603
11604 tg3_reset_task_cancel(tp);
11605 tg3_netif_stop(tp);
11606
11607 tg3_timer_stop(tp);
11608
11609 tg3_hwmon_close(tp);
11610
11611 tg3_phy_stop(tp);
11612
11613 tg3_full_lock(tp, 1);
11614
11615 tg3_disable_ints(tp);
11616
11617 tg3_halt(tp, RESET_KIND_SHUTDOWN, 1);
11618 tg3_free_rings(tp);
11619 tg3_flag_clear(tp, INIT_COMPLETE);
11620
11621 tg3_full_unlock(tp);
11622
11623 for (i = tp->irq_cnt - 1; i >= 0; i--) {
11624 struct tg3_napi *tnapi = &tp->napi[i];
11625 free_irq(tnapi->irq_vec, tnapi);
11626 }
11627
11628 tg3_ints_fini(tp);
11629
11630 tg3_napi_fini(tp);
11631
11632 tg3_free_consistent(tp);
11633 }
11634
11635 static int tg3_open(struct net_device *dev)
11636 {
11637 struct tg3 *tp = netdev_priv(dev);
11638 int err;
11639
11640 if (tp->pcierr_recovery) {
11641 netdev_err(dev, "Failed to open device. PCI error recovery "
11642 "in progress\n");
11643 return -EAGAIN;
11644 }
11645
11646 if (tp->fw_needed) {
11647 err = tg3_request_firmware(tp);
11648 if (tg3_asic_rev(tp) == ASIC_REV_57766) {
11649 if (err) {
11650 netdev_warn(tp->dev, "EEE capability disabled\n");
11651 tp->phy_flags &= ~TG3_PHYFLG_EEE_CAP;
11652 } else if (!(tp->phy_flags & TG3_PHYFLG_EEE_CAP)) {
11653 netdev_warn(tp->dev, "EEE capability restored\n");
11654 tp->phy_flags |= TG3_PHYFLG_EEE_CAP;
11655 }
11656 } else if (tg3_chip_rev_id(tp) == CHIPREV_ID_5701_A0) {
11657 if (err)
11658 return err;
11659 } else if (err) {
11660 netdev_warn(tp->dev, "TSO capability disabled\n");
11661 tg3_flag_clear(tp, TSO_CAPABLE);
11662 } else if (!tg3_flag(tp, TSO_CAPABLE)) {
11663 netdev_notice(tp->dev, "TSO capability restored\n");
11664 tg3_flag_set(tp, TSO_CAPABLE);
11665 }
11666 }
11667
11668 tg3_carrier_off(tp);
11669
11670 err = tg3_power_up(tp);
11671 if (err)
11672 return err;
11673
11674 tg3_full_lock(tp, 0);
11675
11676 tg3_disable_ints(tp);
11677 tg3_flag_clear(tp, INIT_COMPLETE);
11678
11679 tg3_full_unlock(tp);
11680
11681 err = tg3_start(tp,
11682 !(tp->phy_flags & TG3_PHYFLG_KEEP_LINK_ON_PWRDN),
11683 true, true);
11684 if (err) {
11685 tg3_frob_aux_power(tp, false);
11686 pci_set_power_state(tp->pdev, PCI_D3hot);
11687 }
11688
11689 if (tg3_flag(tp, PTP_CAPABLE)) {
11690 tp->ptp_clock = ptp_clock_register(&tp->ptp_info,
11691 &tp->pdev->dev);
11692 if (IS_ERR(tp->ptp_clock))
11693 tp->ptp_clock = NULL;
11694 }
11695
11696 return err;
11697 }
11698
11699 static int tg3_close(struct net_device *dev)
11700 {
11701 struct tg3 *tp = netdev_priv(dev);
11702
11703 if (tp->pcierr_recovery) {
11704 netdev_err(dev, "Failed to close device. PCI error recovery "
11705 "in progress\n");
11706 return -EAGAIN;
11707 }
11708
11709 tg3_ptp_fini(tp);
11710
11711 tg3_stop(tp);
11712
11713 /* Clear stats across close / open calls */
11714 memset(&tp->net_stats_prev, 0, sizeof(tp->net_stats_prev));
11715 memset(&tp->estats_prev, 0, sizeof(tp->estats_prev));
11716
11717 if (pci_device_is_present(tp->pdev)) {
11718 tg3_power_down_prepare(tp);
11719
11720 tg3_carrier_off(tp);
11721 }
11722 return 0;
11723 }
11724
11725 static inline u64 get_stat64(tg3_stat64_t *val)
11726 {
11727 return ((u64)val->high << 32) | ((u64)val->low);
11728 }
11729
11730 static u64 tg3_calc_crc_errors(struct tg3 *tp)
11731 {
11732 struct tg3_hw_stats *hw_stats = tp->hw_stats;
11733
11734 if (!(tp->phy_flags & TG3_PHYFLG_PHY_SERDES) &&
11735 (tg3_asic_rev(tp) == ASIC_REV_5700 ||
11736 tg3_asic_rev(tp) == ASIC_REV_5701)) {
11737 u32 val;
11738
11739 if (!tg3_readphy(tp, MII_TG3_TEST1, &val)) {
11740 tg3_writephy(tp, MII_TG3_TEST1,
11741 val | MII_TG3_TEST1_CRC_EN);
11742 tg3_readphy(tp, MII_TG3_RXR_COUNTERS, &val);
11743 } else
11744 val = 0;
11745
11746 tp->phy_crc_errors += val;
11747
11748 return tp->phy_crc_errors;
11749 }
11750
11751 return get_stat64(&hw_stats->rx_fcs_errors);
11752 }
11753
11754 #define ESTAT_ADD(member) \
11755 estats->member = old_estats->member + \
11756 get_stat64(&hw_stats->member)
11757
11758 static void tg3_get_estats(struct tg3 *tp, struct tg3_ethtool_stats *estats)
11759 {
11760 struct tg3_ethtool_stats *old_estats = &tp->estats_prev;
11761 struct tg3_hw_stats *hw_stats = tp->hw_stats;
11762
11763 ESTAT_ADD(rx_octets);
11764 ESTAT_ADD(rx_fragments);
11765 ESTAT_ADD(rx_ucast_packets);
11766 ESTAT_ADD(rx_mcast_packets);
11767 ESTAT_ADD(rx_bcast_packets);
11768 ESTAT_ADD(rx_fcs_errors);
11769 ESTAT_ADD(rx_align_errors);
11770 ESTAT_ADD(rx_xon_pause_rcvd);
11771 ESTAT_ADD(rx_xoff_pause_rcvd);
11772 ESTAT_ADD(rx_mac_ctrl_rcvd);
11773 ESTAT_ADD(rx_xoff_entered);
11774 ESTAT_ADD(rx_frame_too_long_errors);
11775 ESTAT_ADD(rx_jabbers);
11776 ESTAT_ADD(rx_undersize_packets);
11777 ESTAT_ADD(rx_in_length_errors);
11778 ESTAT_ADD(rx_out_length_errors);
11779 ESTAT_ADD(rx_64_or_less_octet_packets);
11780 ESTAT_ADD(rx_65_to_127_octet_packets);
11781 ESTAT_ADD(rx_128_to_255_octet_packets);
11782 ESTAT_ADD(rx_256_to_511_octet_packets);
11783 ESTAT_ADD(rx_512_to_1023_octet_packets);
11784 ESTAT_ADD(rx_1024_to_1522_octet_packets);
11785 ESTAT_ADD(rx_1523_to_2047_octet_packets);
11786 ESTAT_ADD(rx_2048_to_4095_octet_packets);
11787 ESTAT_ADD(rx_4096_to_8191_octet_packets);
11788 ESTAT_ADD(rx_8192_to_9022_octet_packets);
11789
11790 ESTAT_ADD(tx_octets);
11791 ESTAT_ADD(tx_collisions);
11792 ESTAT_ADD(tx_xon_sent);
11793 ESTAT_ADD(tx_xoff_sent);
11794 ESTAT_ADD(tx_flow_control);
11795 ESTAT_ADD(tx_mac_errors);
11796 ESTAT_ADD(tx_single_collisions);
11797 ESTAT_ADD(tx_mult_collisions);
11798 ESTAT_ADD(tx_deferred);
11799 ESTAT_ADD(tx_excessive_collisions);
11800 ESTAT_ADD(tx_late_collisions);
11801 ESTAT_ADD(tx_collide_2times);
11802 ESTAT_ADD(tx_collide_3times);
11803 ESTAT_ADD(tx_collide_4times);
11804 ESTAT_ADD(tx_collide_5times);
11805 ESTAT_ADD(tx_collide_6times);
11806 ESTAT_ADD(tx_collide_7times);
11807 ESTAT_ADD(tx_collide_8times);
11808 ESTAT_ADD(tx_collide_9times);
11809 ESTAT_ADD(tx_collide_10times);
11810 ESTAT_ADD(tx_collide_11times);
11811 ESTAT_ADD(tx_collide_12times);
11812 ESTAT_ADD(tx_collide_13times);
11813 ESTAT_ADD(tx_collide_14times);
11814 ESTAT_ADD(tx_collide_15times);
11815 ESTAT_ADD(tx_ucast_packets);
11816 ESTAT_ADD(tx_mcast_packets);
11817 ESTAT_ADD(tx_bcast_packets);
11818 ESTAT_ADD(tx_carrier_sense_errors);
11819 ESTAT_ADD(tx_discards);
11820 ESTAT_ADD(tx_errors);
11821
11822 ESTAT_ADD(dma_writeq_full);
11823 ESTAT_ADD(dma_write_prioq_full);
11824 ESTAT_ADD(rxbds_empty);
11825 ESTAT_ADD(rx_discards);
11826 ESTAT_ADD(rx_errors);
11827 ESTAT_ADD(rx_threshold_hit);
11828
11829 ESTAT_ADD(dma_readq_full);
11830 ESTAT_ADD(dma_read_prioq_full);
11831 ESTAT_ADD(tx_comp_queue_full);
11832
11833 ESTAT_ADD(ring_set_send_prod_index);
11834 ESTAT_ADD(ring_status_update);
11835 ESTAT_ADD(nic_irqs);
11836 ESTAT_ADD(nic_avoided_irqs);
11837 ESTAT_ADD(nic_tx_threshold_hit);
11838
11839 ESTAT_ADD(mbuf_lwm_thresh_hit);
11840 }
11841
11842 static void tg3_get_nstats(struct tg3 *tp, struct rtnl_link_stats64 *stats)
11843 {
11844 struct rtnl_link_stats64 *old_stats = &tp->net_stats_prev;
11845 struct tg3_hw_stats *hw_stats = tp->hw_stats;
11846
11847 stats->rx_packets = old_stats->rx_packets +
11848 get_stat64(&hw_stats->rx_ucast_packets) +
11849 get_stat64(&hw_stats->rx_mcast_packets) +
11850 get_stat64(&hw_stats->rx_bcast_packets);
11851
11852 stats->tx_packets = old_stats->tx_packets +
11853 get_stat64(&hw_stats->tx_ucast_packets) +
11854 get_stat64(&hw_stats->tx_mcast_packets) +
11855 get_stat64(&hw_stats->tx_bcast_packets);
11856
11857 stats->rx_bytes = old_stats->rx_bytes +
11858 get_stat64(&hw_stats->rx_octets);
11859 stats->tx_bytes = old_stats->tx_bytes +
11860 get_stat64(&hw_stats->tx_octets);
11861
11862 stats->rx_errors = old_stats->rx_errors +
11863 get_stat64(&hw_stats->rx_errors);
11864 stats->tx_errors = old_stats->tx_errors +
11865 get_stat64(&hw_stats->tx_errors) +
11866 get_stat64(&hw_stats->tx_mac_errors) +
11867 get_stat64(&hw_stats->tx_carrier_sense_errors) +
11868 get_stat64(&hw_stats->tx_discards);
11869
11870 stats->multicast = old_stats->multicast +
11871 get_stat64(&hw_stats->rx_mcast_packets);
11872 stats->collisions = old_stats->collisions +
11873 get_stat64(&hw_stats->tx_collisions);
11874
11875 stats->rx_length_errors = old_stats->rx_length_errors +
11876 get_stat64(&hw_stats->rx_frame_too_long_errors) +
11877 get_stat64(&hw_stats->rx_undersize_packets);
11878
11879 stats->rx_frame_errors = old_stats->rx_frame_errors +
11880 get_stat64(&hw_stats->rx_align_errors);
11881 stats->tx_aborted_errors = old_stats->tx_aborted_errors +
11882 get_stat64(&hw_stats->tx_discards);
11883 stats->tx_carrier_errors = old_stats->tx_carrier_errors +
11884 get_stat64(&hw_stats->tx_carrier_sense_errors);
11885
11886 stats->rx_crc_errors = old_stats->rx_crc_errors +
11887 tg3_calc_crc_errors(tp);
11888
11889 stats->rx_missed_errors = old_stats->rx_missed_errors +
11890 get_stat64(&hw_stats->rx_discards);
11891
11892 stats->rx_dropped = tp->rx_dropped;
11893 stats->tx_dropped = tp->tx_dropped;
11894 }
11895
11896 static int tg3_get_regs_len(struct net_device *dev)
11897 {
11898 return TG3_REG_BLK_SIZE;
11899 }
11900
11901 static void tg3_get_regs(struct net_device *dev,
11902 struct ethtool_regs *regs, void *_p)
11903 {
11904 struct tg3 *tp = netdev_priv(dev);
11905
11906 regs->version = 0;
11907
11908 memset(_p, 0, TG3_REG_BLK_SIZE);
11909
11910 if (tp->phy_flags & TG3_PHYFLG_IS_LOW_POWER)
11911 return;
11912
11913 tg3_full_lock(tp, 0);
11914
11915 tg3_dump_legacy_regs(tp, (u32 *)_p);
11916
11917 tg3_full_unlock(tp);
11918 }
11919
11920 static int tg3_get_eeprom_len(struct net_device *dev)
11921 {
11922 struct tg3 *tp = netdev_priv(dev);
11923
11924 return tp->nvram_size;
11925 }
11926
11927 static int tg3_get_eeprom(struct net_device *dev, struct ethtool_eeprom *eeprom, u8 *data)
11928 {
11929 struct tg3 *tp = netdev_priv(dev);
11930 int ret, cpmu_restore = 0;
11931 u8 *pd;
11932 u32 i, offset, len, b_offset, b_count, cpmu_val = 0;
11933 __be32 val;
11934
11935 if (tg3_flag(tp, NO_NVRAM))
11936 return -EINVAL;
11937
11938 offset = eeprom->offset;
11939 len = eeprom->len;
11940 eeprom->len = 0;
11941
11942 eeprom->magic = TG3_EEPROM_MAGIC;
11943
11944 /* Override clock, link aware and link idle modes */
11945 if (tg3_flag(tp, CPMU_PRESENT)) {
11946 cpmu_val = tr32(TG3_CPMU_CTRL);
11947 if (cpmu_val & (CPMU_CTRL_LINK_AWARE_MODE |
11948 CPMU_CTRL_LINK_IDLE_MODE)) {
11949 tw32(TG3_CPMU_CTRL, cpmu_val &
11950 ~(CPMU_CTRL_LINK_AWARE_MODE |
11951 CPMU_CTRL_LINK_IDLE_MODE));
11952 cpmu_restore = 1;
11953 }
11954 }
11955 tg3_override_clk(tp);
11956
11957 if (offset & 3) {
11958 /* adjustments to start on required 4 byte boundary */
11959 b_offset = offset & 3;
11960 b_count = 4 - b_offset;
11961 if (b_count > len) {
11962 /* i.e. offset=1 len=2 */
11963 b_count = len;
11964 }
11965 ret = tg3_nvram_read_be32(tp, offset-b_offset, &val);
11966 if (ret)
11967 goto eeprom_done;
11968 memcpy(data, ((char *)&val) + b_offset, b_count);
11969 len -= b_count;
11970 offset += b_count;
11971 eeprom->len += b_count;
11972 }
11973
11974 /* read bytes up to the last 4 byte boundary */
11975 pd = &data[eeprom->len];
11976 for (i = 0; i < (len - (len & 3)); i += 4) {
11977 ret = tg3_nvram_read_be32(tp, offset + i, &val);
11978 if (ret) {
11979 if (i)
11980 i -= 4;
11981 eeprom->len += i;
11982 goto eeprom_done;
11983 }
11984 memcpy(pd + i, &val, 4);
11985 if (need_resched()) {
11986 if (signal_pending(current)) {
11987 eeprom->len += i;
11988 ret = -EINTR;
11989 goto eeprom_done;
11990 }
11991 cond_resched();
11992 }
11993 }
11994 eeprom->len += i;
11995
11996 if (len & 3) {
11997 /* read last bytes not ending on 4 byte boundary */
11998 pd = &data[eeprom->len];
11999 b_count = len & 3;
12000 b_offset = offset + len - b_count;
12001 ret = tg3_nvram_read_be32(tp, b_offset, &val);
12002 if (ret)
12003 goto eeprom_done;
12004 memcpy(pd, &val, b_count);
12005 eeprom->len += b_count;
12006 }
12007 ret = 0;
12008
12009 eeprom_done:
12010 /* Restore clock, link aware and link idle modes */
12011 tg3_restore_clk(tp);
12012 if (cpmu_restore)
12013 tw32(TG3_CPMU_CTRL, cpmu_val);
12014
12015 return ret;
12016 }
12017
12018 static int tg3_set_eeprom(struct net_device *dev, struct ethtool_eeprom *eeprom, u8 *data)
12019 {
12020 struct tg3 *tp = netdev_priv(dev);
12021 int ret;
12022 u32 offset, len, b_offset, odd_len;
12023 u8 *buf;
12024 __be32 start, end;
12025
12026 if (tg3_flag(tp, NO_NVRAM) ||
12027 eeprom->magic != TG3_EEPROM_MAGIC)
12028 return -EINVAL;
12029
12030 offset = eeprom->offset;
12031 len = eeprom->len;
12032
12033 if ((b_offset = (offset & 3))) {
12034 /* adjustments to start on required 4 byte boundary */
12035 ret = tg3_nvram_read_be32(tp, offset-b_offset, &start);
12036 if (ret)
12037 return ret;
12038 len += b_offset;
12039 offset &= ~3;
12040 if (len < 4)
12041 len = 4;
12042 }
12043
12044 odd_len = 0;
12045 if (len & 3) {
12046 /* adjustments to end on required 4 byte boundary */
12047 odd_len = 1;
12048 len = (len + 3) & ~3;
12049 ret = tg3_nvram_read_be32(tp, offset+len-4, &end);
12050 if (ret)
12051 return ret;
12052 }
12053
12054 buf = data;
12055 if (b_offset || odd_len) {
12056 buf = kmalloc(len, GFP_KERNEL);
12057 if (!buf)
12058 return -ENOMEM;
12059 if (b_offset)
12060 memcpy(buf, &start, 4);
12061 if (odd_len)
12062 memcpy(buf+len-4, &end, 4);
12063 memcpy(buf + b_offset, data, eeprom->len);
12064 }
12065
12066 ret = tg3_nvram_write_block(tp, offset, len, buf);
12067
12068 if (buf != data)
12069 kfree(buf);
12070
12071 return ret;
12072 }
12073
12074 static int tg3_get_settings(struct net_device *dev, struct ethtool_cmd *cmd)
12075 {
12076 struct tg3 *tp = netdev_priv(dev);
12077
12078 if (tg3_flag(tp, USE_PHYLIB)) {
12079 struct phy_device *phydev;
12080 if (!(tp->phy_flags & TG3_PHYFLG_IS_CONNECTED))
12081 return -EAGAIN;
12082 phydev = tp->mdio_bus->phy_map[tp->phy_addr];
12083 return phy_ethtool_gset(phydev, cmd);
12084 }
12085
12086 cmd->supported = (SUPPORTED_Autoneg);
12087
12088 if (!(tp->phy_flags & TG3_PHYFLG_10_100_ONLY))
12089 cmd->supported |= (SUPPORTED_1000baseT_Half |
12090 SUPPORTED_1000baseT_Full);
12091
12092 if (!(tp->phy_flags & TG3_PHYFLG_ANY_SERDES)) {
12093 cmd->supported |= (SUPPORTED_100baseT_Half |
12094 SUPPORTED_100baseT_Full |
12095 SUPPORTED_10baseT_Half |
12096 SUPPORTED_10baseT_Full |
12097 SUPPORTED_TP);
12098 cmd->port = PORT_TP;
12099 } else {
12100 cmd->supported |= SUPPORTED_FIBRE;
12101 cmd->port = PORT_FIBRE;
12102 }
12103
12104 cmd->advertising = tp->link_config.advertising;
12105 if (tg3_flag(tp, PAUSE_AUTONEG)) {
12106 if (tp->link_config.flowctrl & FLOW_CTRL_RX) {
12107 if (tp->link_config.flowctrl & FLOW_CTRL_TX) {
12108 cmd->advertising |= ADVERTISED_Pause;
12109 } else {
12110 cmd->advertising |= ADVERTISED_Pause |
12111 ADVERTISED_Asym_Pause;
12112 }
12113 } else if (tp->link_config.flowctrl & FLOW_CTRL_TX) {
12114 cmd->advertising |= ADVERTISED_Asym_Pause;
12115 }
12116 }
12117 if (netif_running(dev) && tp->link_up) {
12118 ethtool_cmd_speed_set(cmd, tp->link_config.active_speed);
12119 cmd->duplex = tp->link_config.active_duplex;
12120 cmd->lp_advertising = tp->link_config.rmt_adv;
12121 if (!(tp->phy_flags & TG3_PHYFLG_ANY_SERDES)) {
12122 if (tp->phy_flags & TG3_PHYFLG_MDIX_STATE)
12123 cmd->eth_tp_mdix = ETH_TP_MDI_X;
12124 else
12125 cmd->eth_tp_mdix = ETH_TP_MDI;
12126 }
12127 } else {
12128 ethtool_cmd_speed_set(cmd, SPEED_UNKNOWN);
12129 cmd->duplex = DUPLEX_UNKNOWN;
12130 cmd->eth_tp_mdix = ETH_TP_MDI_INVALID;
12131 }
12132 cmd->phy_address = tp->phy_addr;
12133 cmd->transceiver = XCVR_INTERNAL;
12134 cmd->autoneg = tp->link_config.autoneg;
12135 cmd->maxtxpkt = 0;
12136 cmd->maxrxpkt = 0;
12137 return 0;
12138 }
12139
12140 static int tg3_set_settings(struct net_device *dev, struct ethtool_cmd *cmd)
12141 {
12142 struct tg3 *tp = netdev_priv(dev);
12143 u32 speed = ethtool_cmd_speed(cmd);
12144
12145 if (tg3_flag(tp, USE_PHYLIB)) {
12146 struct phy_device *phydev;
12147 if (!(tp->phy_flags & TG3_PHYFLG_IS_CONNECTED))
12148 return -EAGAIN;
12149 phydev = tp->mdio_bus->phy_map[tp->phy_addr];
12150 return phy_ethtool_sset(phydev, cmd);
12151 }
12152
12153 if (cmd->autoneg != AUTONEG_ENABLE &&
12154 cmd->autoneg != AUTONEG_DISABLE)
12155 return -EINVAL;
12156
12157 if (cmd->autoneg == AUTONEG_DISABLE &&
12158 cmd->duplex != DUPLEX_FULL &&
12159 cmd->duplex != DUPLEX_HALF)
12160 return -EINVAL;
12161
12162 if (cmd->autoneg == AUTONEG_ENABLE) {
12163 u32 mask = ADVERTISED_Autoneg |
12164 ADVERTISED_Pause |
12165 ADVERTISED_Asym_Pause;
12166
12167 if (!(tp->phy_flags & TG3_PHYFLG_10_100_ONLY))
12168 mask |= ADVERTISED_1000baseT_Half |
12169 ADVERTISED_1000baseT_Full;
12170
12171 if (!(tp->phy_flags & TG3_PHYFLG_ANY_SERDES))
12172 mask |= ADVERTISED_100baseT_Half |
12173 ADVERTISED_100baseT_Full |
12174 ADVERTISED_10baseT_Half |
12175 ADVERTISED_10baseT_Full |
12176 ADVERTISED_TP;
12177 else
12178 mask |= ADVERTISED_FIBRE;
12179
12180 if (cmd->advertising & ~mask)
12181 return -EINVAL;
12182
12183 mask &= (ADVERTISED_1000baseT_Half |
12184 ADVERTISED_1000baseT_Full |
12185 ADVERTISED_100baseT_Half |
12186 ADVERTISED_100baseT_Full |
12187 ADVERTISED_10baseT_Half |
12188 ADVERTISED_10baseT_Full);
12189
12190 cmd->advertising &= mask;
12191 } else {
12192 if (tp->phy_flags & TG3_PHYFLG_ANY_SERDES) {
12193 if (speed != SPEED_1000)
12194 return -EINVAL;
12195
12196 if (cmd->duplex != DUPLEX_FULL)
12197 return -EINVAL;
12198 } else {
12199 if (speed != SPEED_100 &&
12200 speed != SPEED_10)
12201 return -EINVAL;
12202 }
12203 }
12204
12205 tg3_full_lock(tp, 0);
12206
12207 tp->link_config.autoneg = cmd->autoneg;
12208 if (cmd->autoneg == AUTONEG_ENABLE) {
12209 tp->link_config.advertising = (cmd->advertising |
12210 ADVERTISED_Autoneg);
12211 tp->link_config.speed = SPEED_UNKNOWN;
12212 tp->link_config.duplex = DUPLEX_UNKNOWN;
12213 } else {
12214 tp->link_config.advertising = 0;
12215 tp->link_config.speed = speed;
12216 tp->link_config.duplex = cmd->duplex;
12217 }
12218
12219 tp->phy_flags |= TG3_PHYFLG_USER_CONFIGURED;
12220
12221 tg3_warn_mgmt_link_flap(tp);
12222
12223 if (netif_running(dev))
12224 tg3_setup_phy(tp, true);
12225
12226 tg3_full_unlock(tp);
12227
12228 return 0;
12229 }
12230
12231 static void tg3_get_drvinfo(struct net_device *dev, struct ethtool_drvinfo *info)
12232 {
12233 struct tg3 *tp = netdev_priv(dev);
12234
12235 strlcpy(info->driver, DRV_MODULE_NAME, sizeof(info->driver));
12236 strlcpy(info->version, DRV_MODULE_VERSION, sizeof(info->version));
12237 strlcpy(info->fw_version, tp->fw_ver, sizeof(info->fw_version));
12238 strlcpy(info->bus_info, pci_name(tp->pdev), sizeof(info->bus_info));
12239 }
12240
12241 static void tg3_get_wol(struct net_device *dev, struct ethtool_wolinfo *wol)
12242 {
12243 struct tg3 *tp = netdev_priv(dev);
12244
12245 if (tg3_flag(tp, WOL_CAP) && device_can_wakeup(&tp->pdev->dev))
12246 wol->supported = WAKE_MAGIC;
12247 else
12248 wol->supported = 0;
12249 wol->wolopts = 0;
12250 if (tg3_flag(tp, WOL_ENABLE) && device_can_wakeup(&tp->pdev->dev))
12251 wol->wolopts = WAKE_MAGIC;
12252 memset(&wol->sopass, 0, sizeof(wol->sopass));
12253 }
12254
12255 static int tg3_set_wol(struct net_device *dev, struct ethtool_wolinfo *wol)
12256 {
12257 struct tg3 *tp = netdev_priv(dev);
12258 struct device *dp = &tp->pdev->dev;
12259
12260 if (wol->wolopts & ~WAKE_MAGIC)
12261 return -EINVAL;
12262 if ((wol->wolopts & WAKE_MAGIC) &&
12263 !(tg3_flag(tp, WOL_CAP) && device_can_wakeup(dp)))
12264 return -EINVAL;
12265
12266 device_set_wakeup_enable(dp, wol->wolopts & WAKE_MAGIC);
12267
12268 if (device_may_wakeup(dp))
12269 tg3_flag_set(tp, WOL_ENABLE);
12270 else
12271 tg3_flag_clear(tp, WOL_ENABLE);
12272
12273 return 0;
12274 }
12275
12276 static u32 tg3_get_msglevel(struct net_device *dev)
12277 {
12278 struct tg3 *tp = netdev_priv(dev);
12279 return tp->msg_enable;
12280 }
12281
12282 static void tg3_set_msglevel(struct net_device *dev, u32 value)
12283 {
12284 struct tg3 *tp = netdev_priv(dev);
12285 tp->msg_enable = value;
12286 }
12287
12288 static int tg3_nway_reset(struct net_device *dev)
12289 {
12290 struct tg3 *tp = netdev_priv(dev);
12291 int r;
12292
12293 if (!netif_running(dev))
12294 return -EAGAIN;
12295
12296 if (tp->phy_flags & TG3_PHYFLG_PHY_SERDES)
12297 return -EINVAL;
12298
12299 tg3_warn_mgmt_link_flap(tp);
12300
12301 if (tg3_flag(tp, USE_PHYLIB)) {
12302 if (!(tp->phy_flags & TG3_PHYFLG_IS_CONNECTED))
12303 return -EAGAIN;
12304 r = phy_start_aneg(tp->mdio_bus->phy_map[tp->phy_addr]);
12305 } else {
12306 u32 bmcr;
12307
12308 spin_lock_bh(&tp->lock);
12309 r = -EINVAL;
12310 tg3_readphy(tp, MII_BMCR, &bmcr);
12311 if (!tg3_readphy(tp, MII_BMCR, &bmcr) &&
12312 ((bmcr & BMCR_ANENABLE) ||
12313 (tp->phy_flags & TG3_PHYFLG_PARALLEL_DETECT))) {
12314 tg3_writephy(tp, MII_BMCR, bmcr | BMCR_ANRESTART |
12315 BMCR_ANENABLE);
12316 r = 0;
12317 }
12318 spin_unlock_bh(&tp->lock);
12319 }
12320
12321 return r;
12322 }
12323
12324 static void tg3_get_ringparam(struct net_device *dev, struct ethtool_ringparam *ering)
12325 {
12326 struct tg3 *tp = netdev_priv(dev);
12327
12328 ering->rx_max_pending = tp->rx_std_ring_mask;
12329 if (tg3_flag(tp, JUMBO_RING_ENABLE))
12330 ering->rx_jumbo_max_pending = tp->rx_jmb_ring_mask;
12331 else
12332 ering->rx_jumbo_max_pending = 0;
12333
12334 ering->tx_max_pending = TG3_TX_RING_SIZE - 1;
12335
12336 ering->rx_pending = tp->rx_pending;
12337 if (tg3_flag(tp, JUMBO_RING_ENABLE))
12338 ering->rx_jumbo_pending = tp->rx_jumbo_pending;
12339 else
12340 ering->rx_jumbo_pending = 0;
12341
12342 ering->tx_pending = tp->napi[0].tx_pending;
12343 }
12344
12345 static int tg3_set_ringparam(struct net_device *dev, struct ethtool_ringparam *ering)
12346 {
12347 struct tg3 *tp = netdev_priv(dev);
12348 int i, irq_sync = 0, err = 0;
12349
12350 if ((ering->rx_pending > tp->rx_std_ring_mask) ||
12351 (ering->rx_jumbo_pending > tp->rx_jmb_ring_mask) ||
12352 (ering->tx_pending > TG3_TX_RING_SIZE - 1) ||
12353 (ering->tx_pending <= MAX_SKB_FRAGS) ||
12354 (tg3_flag(tp, TSO_BUG) &&
12355 (ering->tx_pending <= (MAX_SKB_FRAGS * 3))))
12356 return -EINVAL;
12357
12358 if (netif_running(dev)) {
12359 tg3_phy_stop(tp);
12360 tg3_netif_stop(tp);
12361 irq_sync = 1;
12362 }
12363
12364 tg3_full_lock(tp, irq_sync);
12365
12366 tp->rx_pending = ering->rx_pending;
12367
12368 if (tg3_flag(tp, MAX_RXPEND_64) &&
12369 tp->rx_pending > 63)
12370 tp->rx_pending = 63;
12371
12372 if (tg3_flag(tp, JUMBO_RING_ENABLE))
12373 tp->rx_jumbo_pending = ering->rx_jumbo_pending;
12374
12375 for (i = 0; i < tp->irq_max; i++)
12376 tp->napi[i].tx_pending = ering->tx_pending;
12377
12378 if (netif_running(dev)) {
12379 tg3_halt(tp, RESET_KIND_SHUTDOWN, 1);
12380 err = tg3_restart_hw(tp, false);
12381 if (!err)
12382 tg3_netif_start(tp);
12383 }
12384
12385 tg3_full_unlock(tp);
12386
12387 if (irq_sync && !err)
12388 tg3_phy_start(tp);
12389
12390 return err;
12391 }
12392
12393 static void tg3_get_pauseparam(struct net_device *dev, struct ethtool_pauseparam *epause)
12394 {
12395 struct tg3 *tp = netdev_priv(dev);
12396
12397 epause->autoneg = !!tg3_flag(tp, PAUSE_AUTONEG);
12398
12399 if (tp->link_config.flowctrl & FLOW_CTRL_RX)
12400 epause->rx_pause = 1;
12401 else
12402 epause->rx_pause = 0;
12403
12404 if (tp->link_config.flowctrl & FLOW_CTRL_TX)
12405 epause->tx_pause = 1;
12406 else
12407 epause->tx_pause = 0;
12408 }
12409
12410 static int tg3_set_pauseparam(struct net_device *dev, struct ethtool_pauseparam *epause)
12411 {
12412 struct tg3 *tp = netdev_priv(dev);
12413 int err = 0;
12414
12415 if (tp->link_config.autoneg == AUTONEG_ENABLE)
12416 tg3_warn_mgmt_link_flap(tp);
12417
12418 if (tg3_flag(tp, USE_PHYLIB)) {
12419 u32 newadv;
12420 struct phy_device *phydev;
12421
12422 phydev = tp->mdio_bus->phy_map[tp->phy_addr];
12423
12424 if (!(phydev->supported & SUPPORTED_Pause) ||
12425 (!(phydev->supported & SUPPORTED_Asym_Pause) &&
12426 (epause->rx_pause != epause->tx_pause)))
12427 return -EINVAL;
12428
12429 tp->link_config.flowctrl = 0;
12430 if (epause->rx_pause) {
12431 tp->link_config.flowctrl |= FLOW_CTRL_RX;
12432
12433 if (epause->tx_pause) {
12434 tp->link_config.flowctrl |= FLOW_CTRL_TX;
12435 newadv = ADVERTISED_Pause;
12436 } else
12437 newadv = ADVERTISED_Pause |
12438 ADVERTISED_Asym_Pause;
12439 } else if (epause->tx_pause) {
12440 tp->link_config.flowctrl |= FLOW_CTRL_TX;
12441 newadv = ADVERTISED_Asym_Pause;
12442 } else
12443 newadv = 0;
12444
12445 if (epause->autoneg)
12446 tg3_flag_set(tp, PAUSE_AUTONEG);
12447 else
12448 tg3_flag_clear(tp, PAUSE_AUTONEG);
12449
12450 if (tp->phy_flags & TG3_PHYFLG_IS_CONNECTED) {
12451 u32 oldadv = phydev->advertising &
12452 (ADVERTISED_Pause | ADVERTISED_Asym_Pause);
12453 if (oldadv != newadv) {
12454 phydev->advertising &=
12455 ~(ADVERTISED_Pause |
12456 ADVERTISED_Asym_Pause);
12457 phydev->advertising |= newadv;
12458 if (phydev->autoneg) {
12459 /*
12460 * Always renegotiate the link to
12461 * inform our link partner of our
12462 * flow control settings, even if the
12463 * flow control is forced. Let
12464 * tg3_adjust_link() do the final
12465 * flow control setup.
12466 */
12467 return phy_start_aneg(phydev);
12468 }
12469 }
12470
12471 if (!epause->autoneg)
12472 tg3_setup_flow_control(tp, 0, 0);
12473 } else {
12474 tp->link_config.advertising &=
12475 ~(ADVERTISED_Pause |
12476 ADVERTISED_Asym_Pause);
12477 tp->link_config.advertising |= newadv;
12478 }
12479 } else {
12480 int irq_sync = 0;
12481
12482 if (netif_running(dev)) {
12483 tg3_netif_stop(tp);
12484 irq_sync = 1;
12485 }
12486
12487 tg3_full_lock(tp, irq_sync);
12488
12489 if (epause->autoneg)
12490 tg3_flag_set(tp, PAUSE_AUTONEG);
12491 else
12492 tg3_flag_clear(tp, PAUSE_AUTONEG);
12493 if (epause->rx_pause)
12494 tp->link_config.flowctrl |= FLOW_CTRL_RX;
12495 else
12496 tp->link_config.flowctrl &= ~FLOW_CTRL_RX;
12497 if (epause->tx_pause)
12498 tp->link_config.flowctrl |= FLOW_CTRL_TX;
12499 else
12500 tp->link_config.flowctrl &= ~FLOW_CTRL_TX;
12501
12502 if (netif_running(dev)) {
12503 tg3_halt(tp, RESET_KIND_SHUTDOWN, 1);
12504 err = tg3_restart_hw(tp, false);
12505 if (!err)
12506 tg3_netif_start(tp);
12507 }
12508
12509 tg3_full_unlock(tp);
12510 }
12511
12512 tp->phy_flags |= TG3_PHYFLG_USER_CONFIGURED;
12513
12514 return err;
12515 }
12516
12517 static int tg3_get_sset_count(struct net_device *dev, int sset)
12518 {
12519 switch (sset) {
12520 case ETH_SS_TEST:
12521 return TG3_NUM_TEST;
12522 case ETH_SS_STATS:
12523 return TG3_NUM_STATS;
12524 default:
12525 return -EOPNOTSUPP;
12526 }
12527 }
12528
12529 static int tg3_get_rxnfc(struct net_device *dev, struct ethtool_rxnfc *info,
12530 u32 *rules __always_unused)
12531 {
12532 struct tg3 *tp = netdev_priv(dev);
12533
12534 if (!tg3_flag(tp, SUPPORT_MSIX))
12535 return -EOPNOTSUPP;
12536
12537 switch (info->cmd) {
12538 case ETHTOOL_GRXRINGS:
12539 if (netif_running(tp->dev))
12540 info->data = tp->rxq_cnt;
12541 else {
12542 info->data = num_online_cpus();
12543 if (info->data > TG3_RSS_MAX_NUM_QS)
12544 info->data = TG3_RSS_MAX_NUM_QS;
12545 }
12546
12547 /* The first interrupt vector only
12548 * handles link interrupts.
12549 */
12550 info->data -= 1;
12551 return 0;
12552
12553 default:
12554 return -EOPNOTSUPP;
12555 }
12556 }
12557
12558 static u32 tg3_get_rxfh_indir_size(struct net_device *dev)
12559 {
12560 u32 size = 0;
12561 struct tg3 *tp = netdev_priv(dev);
12562
12563 if (tg3_flag(tp, SUPPORT_MSIX))
12564 size = TG3_RSS_INDIR_TBL_SIZE;
12565
12566 return size;
12567 }
12568
12569 static int tg3_get_rxfh(struct net_device *dev, u32 *indir, u8 *key)
12570 {
12571 struct tg3 *tp = netdev_priv(dev);
12572 int i;
12573
12574 for (i = 0; i < TG3_RSS_INDIR_TBL_SIZE; i++)
12575 indir[i] = tp->rss_ind_tbl[i];
12576
12577 return 0;
12578 }
12579
12580 static int tg3_set_rxfh(struct net_device *dev, const u32 *indir, const u8 *key)
12581 {
12582 struct tg3 *tp = netdev_priv(dev);
12583 size_t i;
12584
12585 for (i = 0; i < TG3_RSS_INDIR_TBL_SIZE; i++)
12586 tp->rss_ind_tbl[i] = indir[i];
12587
12588 if (!netif_running(dev) || !tg3_flag(tp, ENABLE_RSS))
12589 return 0;
12590
12591 /* It is legal to write the indirection
12592 * table while the device is running.
12593 */
12594 tg3_full_lock(tp, 0);
12595 tg3_rss_write_indir_tbl(tp);
12596 tg3_full_unlock(tp);
12597
12598 return 0;
12599 }
12600
12601 static void tg3_get_channels(struct net_device *dev,
12602 struct ethtool_channels *channel)
12603 {
12604 struct tg3 *tp = netdev_priv(dev);
12605 u32 deflt_qs = netif_get_num_default_rss_queues();
12606
12607 channel->max_rx = tp->rxq_max;
12608 channel->max_tx = tp->txq_max;
12609
12610 if (netif_running(dev)) {
12611 channel->rx_count = tp->rxq_cnt;
12612 channel->tx_count = tp->txq_cnt;
12613 } else {
12614 if (tp->rxq_req)
12615 channel->rx_count = tp->rxq_req;
12616 else
12617 channel->rx_count = min(deflt_qs, tp->rxq_max);
12618
12619 if (tp->txq_req)
12620 channel->tx_count = tp->txq_req;
12621 else
12622 channel->tx_count = min(deflt_qs, tp->txq_max);
12623 }
12624 }
12625
12626 static int tg3_set_channels(struct net_device *dev,
12627 struct ethtool_channels *channel)
12628 {
12629 struct tg3 *tp = netdev_priv(dev);
12630
12631 if (!tg3_flag(tp, SUPPORT_MSIX))
12632 return -EOPNOTSUPP;
12633
12634 if (channel->rx_count > tp->rxq_max ||
12635 channel->tx_count > tp->txq_max)
12636 return -EINVAL;
12637
12638 tp->rxq_req = channel->rx_count;
12639 tp->txq_req = channel->tx_count;
12640
12641 if (!netif_running(dev))
12642 return 0;
12643
12644 tg3_stop(tp);
12645
12646 tg3_carrier_off(tp);
12647
12648 tg3_start(tp, true, false, false);
12649
12650 return 0;
12651 }
12652
12653 static void tg3_get_strings(struct net_device *dev, u32 stringset, u8 *buf)
12654 {
12655 switch (stringset) {
12656 case ETH_SS_STATS:
12657 memcpy(buf, &ethtool_stats_keys, sizeof(ethtool_stats_keys));
12658 break;
12659 case ETH_SS_TEST:
12660 memcpy(buf, &ethtool_test_keys, sizeof(ethtool_test_keys));
12661 break;
12662 default:
12663 WARN_ON(1); /* we need a WARN() */
12664 break;
12665 }
12666 }
12667
12668 static int tg3_set_phys_id(struct net_device *dev,
12669 enum ethtool_phys_id_state state)
12670 {
12671 struct tg3 *tp = netdev_priv(dev);
12672
12673 if (!netif_running(tp->dev))
12674 return -EAGAIN;
12675
12676 switch (state) {
12677 case ETHTOOL_ID_ACTIVE:
12678 return 1; /* cycle on/off once per second */
12679
12680 case ETHTOOL_ID_ON:
12681 tw32(MAC_LED_CTRL, LED_CTRL_LNKLED_OVERRIDE |
12682 LED_CTRL_1000MBPS_ON |
12683 LED_CTRL_100MBPS_ON |
12684 LED_CTRL_10MBPS_ON |
12685 LED_CTRL_TRAFFIC_OVERRIDE |
12686 LED_CTRL_TRAFFIC_BLINK |
12687 LED_CTRL_TRAFFIC_LED);
12688 break;
12689
12690 case ETHTOOL_ID_OFF:
12691 tw32(MAC_LED_CTRL, LED_CTRL_LNKLED_OVERRIDE |
12692 LED_CTRL_TRAFFIC_OVERRIDE);
12693 break;
12694
12695 case ETHTOOL_ID_INACTIVE:
12696 tw32(MAC_LED_CTRL, tp->led_ctrl);
12697 break;
12698 }
12699
12700 return 0;
12701 }
12702
12703 static void tg3_get_ethtool_stats(struct net_device *dev,
12704 struct ethtool_stats *estats, u64 *tmp_stats)
12705 {
12706 struct tg3 *tp = netdev_priv(dev);
12707
12708 if (tp->hw_stats)
12709 tg3_get_estats(tp, (struct tg3_ethtool_stats *)tmp_stats);
12710 else
12711 memset(tmp_stats, 0, sizeof(struct tg3_ethtool_stats));
12712 }
12713
12714 static __be32 *tg3_vpd_readblock(struct tg3 *tp, u32 *vpdlen)
12715 {
12716 int i;
12717 __be32 *buf;
12718 u32 offset = 0, len = 0;
12719 u32 magic, val;
12720
12721 if (tg3_flag(tp, NO_NVRAM) || tg3_nvram_read(tp, 0, &magic))
12722 return NULL;
12723
12724 if (magic == TG3_EEPROM_MAGIC) {
12725 for (offset = TG3_NVM_DIR_START;
12726 offset < TG3_NVM_DIR_END;
12727 offset += TG3_NVM_DIRENT_SIZE) {
12728 if (tg3_nvram_read(tp, offset, &val))
12729 return NULL;
12730
12731 if ((val >> TG3_NVM_DIRTYPE_SHIFT) ==
12732 TG3_NVM_DIRTYPE_EXTVPD)
12733 break;
12734 }
12735
12736 if (offset != TG3_NVM_DIR_END) {
12737 len = (val & TG3_NVM_DIRTYPE_LENMSK) * 4;
12738 if (tg3_nvram_read(tp, offset + 4, &offset))
12739 return NULL;
12740
12741 offset = tg3_nvram_logical_addr(tp, offset);
12742 }
12743 }
12744
12745 if (!offset || !len) {
12746 offset = TG3_NVM_VPD_OFF;
12747 len = TG3_NVM_VPD_LEN;
12748 }
12749
12750 buf = kmalloc(len, GFP_KERNEL);
12751 if (buf == NULL)
12752 return NULL;
12753
12754 if (magic == TG3_EEPROM_MAGIC) {
12755 for (i = 0; i < len; i += 4) {
12756 /* The data is in little-endian format in NVRAM.
12757 * Use the big-endian read routines to preserve
12758 * the byte order as it exists in NVRAM.
12759 */
12760 if (tg3_nvram_read_be32(tp, offset + i, &buf[i/4]))
12761 goto error;
12762 }
12763 } else {
12764 u8 *ptr;
12765 ssize_t cnt;
12766 unsigned int pos = 0;
12767
12768 ptr = (u8 *)&buf[0];
12769 for (i = 0; pos < len && i < 3; i++, pos += cnt, ptr += cnt) {
12770 cnt = pci_read_vpd(tp->pdev, pos,
12771 len - pos, ptr);
12772 if (cnt == -ETIMEDOUT || cnt == -EINTR)
12773 cnt = 0;
12774 else if (cnt < 0)
12775 goto error;
12776 }
12777 if (pos != len)
12778 goto error;
12779 }
12780
12781 *vpdlen = len;
12782
12783 return buf;
12784
12785 error:
12786 kfree(buf);
12787 return NULL;
12788 }
12789
12790 #define NVRAM_TEST_SIZE 0x100
12791 #define NVRAM_SELFBOOT_FORMAT1_0_SIZE 0x14
12792 #define NVRAM_SELFBOOT_FORMAT1_2_SIZE 0x18
12793 #define NVRAM_SELFBOOT_FORMAT1_3_SIZE 0x1c
12794 #define NVRAM_SELFBOOT_FORMAT1_4_SIZE 0x20
12795 #define NVRAM_SELFBOOT_FORMAT1_5_SIZE 0x24
12796 #define NVRAM_SELFBOOT_FORMAT1_6_SIZE 0x50
12797 #define NVRAM_SELFBOOT_HW_SIZE 0x20
12798 #define NVRAM_SELFBOOT_DATA_SIZE 0x1c
12799
12800 static int tg3_test_nvram(struct tg3 *tp)
12801 {
12802 u32 csum, magic, len;
12803 __be32 *buf;
12804 int i, j, k, err = 0, size;
12805
12806 if (tg3_flag(tp, NO_NVRAM))
12807 return 0;
12808
12809 if (tg3_nvram_read(tp, 0, &magic) != 0)
12810 return -EIO;
12811
12812 if (magic == TG3_EEPROM_MAGIC)
12813 size = NVRAM_TEST_SIZE;
12814 else if ((magic & TG3_EEPROM_MAGIC_FW_MSK) == TG3_EEPROM_MAGIC_FW) {
12815 if ((magic & TG3_EEPROM_SB_FORMAT_MASK) ==
12816 TG3_EEPROM_SB_FORMAT_1) {
12817 switch (magic & TG3_EEPROM_SB_REVISION_MASK) {
12818 case TG3_EEPROM_SB_REVISION_0:
12819 size = NVRAM_SELFBOOT_FORMAT1_0_SIZE;
12820 break;
12821 case TG3_EEPROM_SB_REVISION_2:
12822 size = NVRAM_SELFBOOT_FORMAT1_2_SIZE;
12823 break;
12824 case TG3_EEPROM_SB_REVISION_3:
12825 size = NVRAM_SELFBOOT_FORMAT1_3_SIZE;
12826 break;
12827 case TG3_EEPROM_SB_REVISION_4:
12828 size = NVRAM_SELFBOOT_FORMAT1_4_SIZE;
12829 break;
12830 case TG3_EEPROM_SB_REVISION_5:
12831 size = NVRAM_SELFBOOT_FORMAT1_5_SIZE;
12832 break;
12833 case TG3_EEPROM_SB_REVISION_6:
12834 size = NVRAM_SELFBOOT_FORMAT1_6_SIZE;
12835 break;
12836 default:
12837 return -EIO;
12838 }
12839 } else
12840 return 0;
12841 } else if ((magic & TG3_EEPROM_MAGIC_HW_MSK) == TG3_EEPROM_MAGIC_HW)
12842 size = NVRAM_SELFBOOT_HW_SIZE;
12843 else
12844 return -EIO;
12845
12846 buf = kmalloc(size, GFP_KERNEL);
12847 if (buf == NULL)
12848 return -ENOMEM;
12849
12850 err = -EIO;
12851 for (i = 0, j = 0; i < size; i += 4, j++) {
12852 err = tg3_nvram_read_be32(tp, i, &buf[j]);
12853 if (err)
12854 break;
12855 }
12856 if (i < size)
12857 goto out;
12858
12859 /* Selfboot format */
12860 magic = be32_to_cpu(buf[0]);
12861 if ((magic & TG3_EEPROM_MAGIC_FW_MSK) ==
12862 TG3_EEPROM_MAGIC_FW) {
12863 u8 *buf8 = (u8 *) buf, csum8 = 0;
12864
12865 if ((magic & TG3_EEPROM_SB_REVISION_MASK) ==
12866 TG3_EEPROM_SB_REVISION_2) {
12867 /* For rev 2, the csum doesn't include the MBA. */
12868 for (i = 0; i < TG3_EEPROM_SB_F1R2_MBA_OFF; i++)
12869 csum8 += buf8[i];
12870 for (i = TG3_EEPROM_SB_F1R2_MBA_OFF + 4; i < size; i++)
12871 csum8 += buf8[i];
12872 } else {
12873 for (i = 0; i < size; i++)
12874 csum8 += buf8[i];
12875 }
12876
12877 if (csum8 == 0) {
12878 err = 0;
12879 goto out;
12880 }
12881
12882 err = -EIO;
12883 goto out;
12884 }
12885
12886 if ((magic & TG3_EEPROM_MAGIC_HW_MSK) ==
12887 TG3_EEPROM_MAGIC_HW) {
12888 u8 data[NVRAM_SELFBOOT_DATA_SIZE];
12889 u8 parity[NVRAM_SELFBOOT_DATA_SIZE];
12890 u8 *buf8 = (u8 *) buf;
12891
12892 /* Separate the parity bits and the data bytes. */
12893 for (i = 0, j = 0, k = 0; i < NVRAM_SELFBOOT_HW_SIZE; i++) {
12894 if ((i == 0) || (i == 8)) {
12895 int l;
12896 u8 msk;
12897
12898 for (l = 0, msk = 0x80; l < 7; l++, msk >>= 1)
12899 parity[k++] = buf8[i] & msk;
12900 i++;
12901 } else if (i == 16) {
12902 int l;
12903 u8 msk;
12904
12905 for (l = 0, msk = 0x20; l < 6; l++, msk >>= 1)
12906 parity[k++] = buf8[i] & msk;
12907 i++;
12908
12909 for (l = 0, msk = 0x80; l < 8; l++, msk >>= 1)
12910 parity[k++] = buf8[i] & msk;
12911 i++;
12912 }
12913 data[j++] = buf8[i];
12914 }
12915
12916 err = -EIO;
12917 for (i = 0; i < NVRAM_SELFBOOT_DATA_SIZE; i++) {
12918 u8 hw8 = hweight8(data[i]);
12919
12920 if ((hw8 & 0x1) && parity[i])
12921 goto out;
12922 else if (!(hw8 & 0x1) && !parity[i])
12923 goto out;
12924 }
12925 err = 0;
12926 goto out;
12927 }
12928
12929 err = -EIO;
12930
12931 /* Bootstrap checksum at offset 0x10 */
12932 csum = calc_crc((unsigned char *) buf, 0x10);
12933 if (csum != le32_to_cpu(buf[0x10/4]))
12934 goto out;
12935
12936 /* Manufacturing block starts at offset 0x74, checksum at 0xfc */
12937 csum = calc_crc((unsigned char *) &buf[0x74/4], 0x88);
12938 if (csum != le32_to_cpu(buf[0xfc/4]))
12939 goto out;
12940
12941 kfree(buf);
12942
12943 buf = tg3_vpd_readblock(tp, &len);
12944 if (!buf)
12945 return -ENOMEM;
12946
12947 i = pci_vpd_find_tag((u8 *)buf, 0, len, PCI_VPD_LRDT_RO_DATA);
12948 if (i > 0) {
12949 j = pci_vpd_lrdt_size(&((u8 *)buf)[i]);
12950 if (j < 0)
12951 goto out;
12952
12953 if (i + PCI_VPD_LRDT_TAG_SIZE + j > len)
12954 goto out;
12955
12956 i += PCI_VPD_LRDT_TAG_SIZE;
12957 j = pci_vpd_find_info_keyword((u8 *)buf, i, j,
12958 PCI_VPD_RO_KEYWORD_CHKSUM);
12959 if (j > 0) {
12960 u8 csum8 = 0;
12961
12962 j += PCI_VPD_INFO_FLD_HDR_SIZE;
12963
12964 for (i = 0; i <= j; i++)
12965 csum8 += ((u8 *)buf)[i];
12966
12967 if (csum8)
12968 goto out;
12969 }
12970 }
12971
12972 err = 0;
12973
12974 out:
12975 kfree(buf);
12976 return err;
12977 }
12978
12979 #define TG3_SERDES_TIMEOUT_SEC 2
12980 #define TG3_COPPER_TIMEOUT_SEC 6
12981
12982 static int tg3_test_link(struct tg3 *tp)
12983 {
12984 int i, max;
12985
12986 if (!netif_running(tp->dev))
12987 return -ENODEV;
12988
12989 if (tp->phy_flags & TG3_PHYFLG_ANY_SERDES)
12990 max = TG3_SERDES_TIMEOUT_SEC;
12991 else
12992 max = TG3_COPPER_TIMEOUT_SEC;
12993
12994 for (i = 0; i < max; i++) {
12995 if (tp->link_up)
12996 return 0;
12997
12998 if (msleep_interruptible(1000))
12999 break;
13000 }
13001
13002 return -EIO;
13003 }
13004
13005 /* Only test the commonly used registers */
13006 static int tg3_test_registers(struct tg3 *tp)
13007 {
13008 int i, is_5705, is_5750;
13009 u32 offset, read_mask, write_mask, val, save_val, read_val;
13010 static struct {
13011 u16 offset;
13012 u16 flags;
13013 #define TG3_FL_5705 0x1
13014 #define TG3_FL_NOT_5705 0x2
13015 #define TG3_FL_NOT_5788 0x4
13016 #define TG3_FL_NOT_5750 0x8
13017 u32 read_mask;
13018 u32 write_mask;
13019 } reg_tbl[] = {
13020 /* MAC Control Registers */
13021 { MAC_MODE, TG3_FL_NOT_5705,
13022 0x00000000, 0x00ef6f8c },
13023 { MAC_MODE, TG3_FL_5705,
13024 0x00000000, 0x01ef6b8c },
13025 { MAC_STATUS, TG3_FL_NOT_5705,
13026 0x03800107, 0x00000000 },
13027 { MAC_STATUS, TG3_FL_5705,
13028 0x03800100, 0x00000000 },
13029 { MAC_ADDR_0_HIGH, 0x0000,
13030 0x00000000, 0x0000ffff },
13031 { MAC_ADDR_0_LOW, 0x0000,
13032 0x00000000, 0xffffffff },
13033 { MAC_RX_MTU_SIZE, 0x0000,
13034 0x00000000, 0x0000ffff },
13035 { MAC_TX_MODE, 0x0000,
13036 0x00000000, 0x00000070 },
13037 { MAC_TX_LENGTHS, 0x0000,
13038 0x00000000, 0x00003fff },
13039 { MAC_RX_MODE, TG3_FL_NOT_5705,
13040 0x00000000, 0x000007fc },
13041 { MAC_RX_MODE, TG3_FL_5705,
13042 0x00000000, 0x000007dc },
13043 { MAC_HASH_REG_0, 0x0000,
13044 0x00000000, 0xffffffff },
13045 { MAC_HASH_REG_1, 0x0000,
13046 0x00000000, 0xffffffff },
13047 { MAC_HASH_REG_2, 0x0000,
13048 0x00000000, 0xffffffff },
13049 { MAC_HASH_REG_3, 0x0000,
13050 0x00000000, 0xffffffff },
13051
13052 /* Receive Data and Receive BD Initiator Control Registers. */
13053 { RCVDBDI_JUMBO_BD+0, TG3_FL_NOT_5705,
13054 0x00000000, 0xffffffff },
13055 { RCVDBDI_JUMBO_BD+4, TG3_FL_NOT_5705,
13056 0x00000000, 0xffffffff },
13057 { RCVDBDI_JUMBO_BD+8, TG3_FL_NOT_5705,
13058 0x00000000, 0x00000003 },
13059 { RCVDBDI_JUMBO_BD+0xc, TG3_FL_NOT_5705,
13060 0x00000000, 0xffffffff },
13061 { RCVDBDI_STD_BD+0, 0x0000,
13062 0x00000000, 0xffffffff },
13063 { RCVDBDI_STD_BD+4, 0x0000,
13064 0x00000000, 0xffffffff },
13065 { RCVDBDI_STD_BD+8, 0x0000,
13066 0x00000000, 0xffff0002 },
13067 { RCVDBDI_STD_BD+0xc, 0x0000,
13068 0x00000000, 0xffffffff },
13069
13070 /* Receive BD Initiator Control Registers. */
13071 { RCVBDI_STD_THRESH, TG3_FL_NOT_5705,
13072 0x00000000, 0xffffffff },
13073 { RCVBDI_STD_THRESH, TG3_FL_5705,
13074 0x00000000, 0x000003ff },
13075 { RCVBDI_JUMBO_THRESH, TG3_FL_NOT_5705,
13076 0x00000000, 0xffffffff },
13077
13078 /* Host Coalescing Control Registers. */
13079 { HOSTCC_MODE, TG3_FL_NOT_5705,
13080 0x00000000, 0x00000004 },
13081 { HOSTCC_MODE, TG3_FL_5705,
13082 0x00000000, 0x000000f6 },
13083 { HOSTCC_RXCOL_TICKS, TG3_FL_NOT_5705,
13084 0x00000000, 0xffffffff },
13085 { HOSTCC_RXCOL_TICKS, TG3_FL_5705,
13086 0x00000000, 0x000003ff },
13087 { HOSTCC_TXCOL_TICKS, TG3_FL_NOT_5705,
13088 0x00000000, 0xffffffff },
13089 { HOSTCC_TXCOL_TICKS, TG3_FL_5705,
13090 0x00000000, 0x000003ff },
13091 { HOSTCC_RXMAX_FRAMES, TG3_FL_NOT_5705,
13092 0x00000000, 0xffffffff },
13093 { HOSTCC_RXMAX_FRAMES, TG3_FL_5705 | TG3_FL_NOT_5788,
13094 0x00000000, 0x000000ff },
13095 { HOSTCC_TXMAX_FRAMES, TG3_FL_NOT_5705,
13096 0x00000000, 0xffffffff },
13097 { HOSTCC_TXMAX_FRAMES, TG3_FL_5705 | TG3_FL_NOT_5788,
13098 0x00000000, 0x000000ff },
13099 { HOSTCC_RXCOAL_TICK_INT, TG3_FL_NOT_5705,
13100 0x00000000, 0xffffffff },
13101 { HOSTCC_TXCOAL_TICK_INT, TG3_FL_NOT_5705,
13102 0x00000000, 0xffffffff },
13103 { HOSTCC_RXCOAL_MAXF_INT, TG3_FL_NOT_5705,
13104 0x00000000, 0xffffffff },
13105 { HOSTCC_RXCOAL_MAXF_INT, TG3_FL_5705 | TG3_FL_NOT_5788,
13106 0x00000000, 0x000000ff },
13107 { HOSTCC_TXCOAL_MAXF_INT, TG3_FL_NOT_5705,
13108 0x00000000, 0xffffffff },
13109 { HOSTCC_TXCOAL_MAXF_INT, TG3_FL_5705 | TG3_FL_NOT_5788,
13110 0x00000000, 0x000000ff },
13111 { HOSTCC_STAT_COAL_TICKS, TG3_FL_NOT_5705,
13112 0x00000000, 0xffffffff },
13113 { HOSTCC_STATS_BLK_HOST_ADDR, TG3_FL_NOT_5705,
13114 0x00000000, 0xffffffff },
13115 { HOSTCC_STATS_BLK_HOST_ADDR+4, TG3_FL_NOT_5705,
13116 0x00000000, 0xffffffff },
13117 { HOSTCC_STATUS_BLK_HOST_ADDR, 0x0000,
13118 0x00000000, 0xffffffff },
13119 { HOSTCC_STATUS_BLK_HOST_ADDR+4, 0x0000,
13120 0x00000000, 0xffffffff },
13121 { HOSTCC_STATS_BLK_NIC_ADDR, 0x0000,
13122 0xffffffff, 0x00000000 },
13123 { HOSTCC_STATUS_BLK_NIC_ADDR, 0x0000,
13124 0xffffffff, 0x00000000 },
13125
13126 /* Buffer Manager Control Registers. */
13127 { BUFMGR_MB_POOL_ADDR, TG3_FL_NOT_5750,
13128 0x00000000, 0x007fff80 },
13129 { BUFMGR_MB_POOL_SIZE, TG3_FL_NOT_5750,
13130 0x00000000, 0x007fffff },
13131 { BUFMGR_MB_RDMA_LOW_WATER, 0x0000,
13132 0x00000000, 0x0000003f },
13133 { BUFMGR_MB_MACRX_LOW_WATER, 0x0000,
13134 0x00000000, 0x000001ff },
13135 { BUFMGR_MB_HIGH_WATER, 0x0000,
13136 0x00000000, 0x000001ff },
13137 { BUFMGR_DMA_DESC_POOL_ADDR, TG3_FL_NOT_5705,
13138 0xffffffff, 0x00000000 },
13139 { BUFMGR_DMA_DESC_POOL_SIZE, TG3_FL_NOT_5705,
13140 0xffffffff, 0x00000000 },
13141
13142 /* Mailbox Registers */
13143 { GRCMBOX_RCVSTD_PROD_IDX+4, 0x0000,
13144 0x00000000, 0x000001ff },
13145 { GRCMBOX_RCVJUMBO_PROD_IDX+4, TG3_FL_NOT_5705,
13146 0x00000000, 0x000001ff },
13147 { GRCMBOX_RCVRET_CON_IDX_0+4, 0x0000,
13148 0x00000000, 0x000007ff },
13149 { GRCMBOX_SNDHOST_PROD_IDX_0+4, 0x0000,
13150 0x00000000, 0x000001ff },
13151
13152 { 0xffff, 0x0000, 0x00000000, 0x00000000 },
13153 };
13154
13155 is_5705 = is_5750 = 0;
13156 if (tg3_flag(tp, 5705_PLUS)) {
13157 is_5705 = 1;
13158 if (tg3_flag(tp, 5750_PLUS))
13159 is_5750 = 1;
13160 }
13161
13162 for (i = 0; reg_tbl[i].offset != 0xffff; i++) {
13163 if (is_5705 && (reg_tbl[i].flags & TG3_FL_NOT_5705))
13164 continue;
13165
13166 if (!is_5705 && (reg_tbl[i].flags & TG3_FL_5705))
13167 continue;
13168
13169 if (tg3_flag(tp, IS_5788) &&
13170 (reg_tbl[i].flags & TG3_FL_NOT_5788))
13171 continue;
13172
13173 if (is_5750 && (reg_tbl[i].flags & TG3_FL_NOT_5750))
13174 continue;
13175
13176 offset = (u32) reg_tbl[i].offset;
13177 read_mask = reg_tbl[i].read_mask;
13178 write_mask = reg_tbl[i].write_mask;
13179
13180 /* Save the original register content */
13181 save_val = tr32(offset);
13182
13183 /* Determine the read-only value. */
13184 read_val = save_val & read_mask;
13185
13186 /* Write zero to the register, then make sure the read-only bits
13187 * are not changed and the read/write bits are all zeros.
13188 */
13189 tw32(offset, 0);
13190
13191 val = tr32(offset);
13192
13193 /* Test the read-only and read/write bits. */
13194 if (((val & read_mask) != read_val) || (val & write_mask))
13195 goto out;
13196
13197 /* Write ones to all the bits defined by RdMask and WrMask, then
13198 * make sure the read-only bits are not changed and the
13199 * read/write bits are all ones.
13200 */
13201 tw32(offset, read_mask | write_mask);
13202
13203 val = tr32(offset);
13204
13205 /* Test the read-only bits. */
13206 if ((val & read_mask) != read_val)
13207 goto out;
13208
13209 /* Test the read/write bits. */
13210 if ((val & write_mask) != write_mask)
13211 goto out;
13212
13213 tw32(offset, save_val);
13214 }
13215
13216 return 0;
13217
13218 out:
13219 if (netif_msg_hw(tp))
13220 netdev_err(tp->dev,
13221 "Register test failed at offset %x\n", offset);
13222 tw32(offset, save_val);
13223 return -EIO;
13224 }
13225
13226 static int tg3_do_mem_test(struct tg3 *tp, u32 offset, u32 len)
13227 {
13228 static const u32 test_pattern[] = { 0x00000000, 0xffffffff, 0xaa55a55a };
13229 int i;
13230 u32 j;
13231
13232 for (i = 0; i < ARRAY_SIZE(test_pattern); i++) {
13233 for (j = 0; j < len; j += 4) {
13234 u32 val;
13235
13236 tg3_write_mem(tp, offset + j, test_pattern[i]);
13237 tg3_read_mem(tp, offset + j, &val);
13238 if (val != test_pattern[i])
13239 return -EIO;
13240 }
13241 }
13242 return 0;
13243 }
13244
13245 static int tg3_test_memory(struct tg3 *tp)
13246 {
13247 static struct mem_entry {
13248 u32 offset;
13249 u32 len;
13250 } mem_tbl_570x[] = {
13251 { 0x00000000, 0x00b50},
13252 { 0x00002000, 0x1c000},
13253 { 0xffffffff, 0x00000}
13254 }, mem_tbl_5705[] = {
13255 { 0x00000100, 0x0000c},
13256 { 0x00000200, 0x00008},
13257 { 0x00004000, 0x00800},
13258 { 0x00006000, 0x01000},
13259 { 0x00008000, 0x02000},
13260 { 0x00010000, 0x0e000},
13261 { 0xffffffff, 0x00000}
13262 }, mem_tbl_5755[] = {
13263 { 0x00000200, 0x00008},
13264 { 0x00004000, 0x00800},
13265 { 0x00006000, 0x00800},
13266 { 0x00008000, 0x02000},
13267 { 0x00010000, 0x0c000},
13268 { 0xffffffff, 0x00000}
13269 }, mem_tbl_5906[] = {
13270 { 0x00000200, 0x00008},
13271 { 0x00004000, 0x00400},
13272 { 0x00006000, 0x00400},
13273 { 0x00008000, 0x01000},
13274 { 0x00010000, 0x01000},
13275 { 0xffffffff, 0x00000}
13276 }, mem_tbl_5717[] = {
13277 { 0x00000200, 0x00008},
13278 { 0x00010000, 0x0a000},
13279 { 0x00020000, 0x13c00},
13280 { 0xffffffff, 0x00000}
13281 }, mem_tbl_57765[] = {
13282 { 0x00000200, 0x00008},
13283 { 0x00004000, 0x00800},
13284 { 0x00006000, 0x09800},
13285 { 0x00010000, 0x0a000},
13286 { 0xffffffff, 0x00000}
13287 };
13288 struct mem_entry *mem_tbl;
13289 int err = 0;
13290 int i;
13291
13292 if (tg3_flag(tp, 5717_PLUS))
13293 mem_tbl = mem_tbl_5717;
13294 else if (tg3_flag(tp, 57765_CLASS) ||
13295 tg3_asic_rev(tp) == ASIC_REV_5762)
13296 mem_tbl = mem_tbl_57765;
13297 else if (tg3_flag(tp, 5755_PLUS))
13298 mem_tbl = mem_tbl_5755;
13299 else if (tg3_asic_rev(tp) == ASIC_REV_5906)
13300 mem_tbl = mem_tbl_5906;
13301 else if (tg3_flag(tp, 5705_PLUS))
13302 mem_tbl = mem_tbl_5705;
13303 else
13304 mem_tbl = mem_tbl_570x;
13305
13306 for (i = 0; mem_tbl[i].offset != 0xffffffff; i++) {
13307 err = tg3_do_mem_test(tp, mem_tbl[i].offset, mem_tbl[i].len);
13308 if (err)
13309 break;
13310 }
13311
13312 return err;
13313 }
13314
13315 #define TG3_TSO_MSS 500
13316
13317 #define TG3_TSO_IP_HDR_LEN 20
13318 #define TG3_TSO_TCP_HDR_LEN 20
13319 #define TG3_TSO_TCP_OPT_LEN 12
13320
13321 static const u8 tg3_tso_header[] = {
13322 0x08, 0x00,
13323 0x45, 0x00, 0x00, 0x00,
13324 0x00, 0x00, 0x40, 0x00,
13325 0x40, 0x06, 0x00, 0x00,
13326 0x0a, 0x00, 0x00, 0x01,
13327 0x0a, 0x00, 0x00, 0x02,
13328 0x0d, 0x00, 0xe0, 0x00,
13329 0x00, 0x00, 0x01, 0x00,
13330 0x00, 0x00, 0x02, 0x00,
13331 0x80, 0x10, 0x10, 0x00,
13332 0x14, 0x09, 0x00, 0x00,
13333 0x01, 0x01, 0x08, 0x0a,
13334 0x11, 0x11, 0x11, 0x11,
13335 0x11, 0x11, 0x11, 0x11,
13336 };
13337
13338 static int tg3_run_loopback(struct tg3 *tp, u32 pktsz, bool tso_loopback)
13339 {
13340 u32 rx_start_idx, rx_idx, tx_idx, opaque_key;
13341 u32 base_flags = 0, mss = 0, desc_idx, coal_now, data_off, val;
13342 u32 budget;
13343 struct sk_buff *skb;
13344 u8 *tx_data, *rx_data;
13345 dma_addr_t map;
13346 int num_pkts, tx_len, rx_len, i, err;
13347 struct tg3_rx_buffer_desc *desc;
13348 struct tg3_napi *tnapi, *rnapi;
13349 struct tg3_rx_prodring_set *tpr = &tp->napi[0].prodring;
13350
13351 tnapi = &tp->napi[0];
13352 rnapi = &tp->napi[0];
13353 if (tp->irq_cnt > 1) {
13354 if (tg3_flag(tp, ENABLE_RSS))
13355 rnapi = &tp->napi[1];
13356 if (tg3_flag(tp, ENABLE_TSS))
13357 tnapi = &tp->napi[1];
13358 }
13359 coal_now = tnapi->coal_now | rnapi->coal_now;
13360
13361 err = -EIO;
13362
13363 tx_len = pktsz;
13364 skb = netdev_alloc_skb(tp->dev, tx_len);
13365 if (!skb)
13366 return -ENOMEM;
13367
13368 tx_data = skb_put(skb, tx_len);
13369 memcpy(tx_data, tp->dev->dev_addr, ETH_ALEN);
13370 memset(tx_data + ETH_ALEN, 0x0, 8);
13371
13372 tw32(MAC_RX_MTU_SIZE, tx_len + ETH_FCS_LEN);
13373
13374 if (tso_loopback) {
13375 struct iphdr *iph = (struct iphdr *)&tx_data[ETH_HLEN];
13376
13377 u32 hdr_len = TG3_TSO_IP_HDR_LEN + TG3_TSO_TCP_HDR_LEN +
13378 TG3_TSO_TCP_OPT_LEN;
13379
13380 memcpy(tx_data + ETH_ALEN * 2, tg3_tso_header,
13381 sizeof(tg3_tso_header));
13382 mss = TG3_TSO_MSS;
13383
13384 val = tx_len - ETH_ALEN * 2 - sizeof(tg3_tso_header);
13385 num_pkts = DIV_ROUND_UP(val, TG3_TSO_MSS);
13386
13387 /* Set the total length field in the IP header */
13388 iph->tot_len = htons((u16)(mss + hdr_len));
13389
13390 base_flags = (TXD_FLAG_CPU_PRE_DMA |
13391 TXD_FLAG_CPU_POST_DMA);
13392
13393 if (tg3_flag(tp, HW_TSO_1) ||
13394 tg3_flag(tp, HW_TSO_2) ||
13395 tg3_flag(tp, HW_TSO_3)) {
13396 struct tcphdr *th;
13397 val = ETH_HLEN + TG3_TSO_IP_HDR_LEN;
13398 th = (struct tcphdr *)&tx_data[val];
13399 th->check = 0;
13400 } else
13401 base_flags |= TXD_FLAG_TCPUDP_CSUM;
13402
13403 if (tg3_flag(tp, HW_TSO_3)) {
13404 mss |= (hdr_len & 0xc) << 12;
13405 if (hdr_len & 0x10)
13406 base_flags |= 0x00000010;
13407 base_flags |= (hdr_len & 0x3e0) << 5;
13408 } else if (tg3_flag(tp, HW_TSO_2))
13409 mss |= hdr_len << 9;
13410 else if (tg3_flag(tp, HW_TSO_1) ||
13411 tg3_asic_rev(tp) == ASIC_REV_5705) {
13412 mss |= (TG3_TSO_TCP_OPT_LEN << 9);
13413 } else {
13414 base_flags |= (TG3_TSO_TCP_OPT_LEN << 10);
13415 }
13416
13417 data_off = ETH_ALEN * 2 + sizeof(tg3_tso_header);
13418 } else {
13419 num_pkts = 1;
13420 data_off = ETH_HLEN;
13421
13422 if (tg3_flag(tp, USE_JUMBO_BDFLAG) &&
13423 tx_len > VLAN_ETH_FRAME_LEN)
13424 base_flags |= TXD_FLAG_JMB_PKT;
13425 }
13426
13427 for (i = data_off; i < tx_len; i++)
13428 tx_data[i] = (u8) (i & 0xff);
13429
13430 map = pci_map_single(tp->pdev, skb->data, tx_len, PCI_DMA_TODEVICE);
13431 if (pci_dma_mapping_error(tp->pdev, map)) {
13432 dev_kfree_skb(skb);
13433 return -EIO;
13434 }
13435
13436 val = tnapi->tx_prod;
13437 tnapi->tx_buffers[val].skb = skb;
13438 dma_unmap_addr_set(&tnapi->tx_buffers[val], mapping, map);
13439
13440 tw32_f(HOSTCC_MODE, tp->coalesce_mode | HOSTCC_MODE_ENABLE |
13441 rnapi->coal_now);
13442
13443 udelay(10);
13444
13445 rx_start_idx = rnapi->hw_status->idx[0].rx_producer;
13446
13447 budget = tg3_tx_avail(tnapi);
13448 if (tg3_tx_frag_set(tnapi, &val, &budget, map, tx_len,
13449 base_flags | TXD_FLAG_END, mss, 0)) {
13450 tnapi->tx_buffers[val].skb = NULL;
13451 dev_kfree_skb(skb);
13452 return -EIO;
13453 }
13454
13455 tnapi->tx_prod++;
13456
13457 /* Sync BD data before updating mailbox */
13458 wmb();
13459
13460 tw32_tx_mbox(tnapi->prodmbox, tnapi->tx_prod);
13461 tr32_mailbox(tnapi->prodmbox);
13462
13463 udelay(10);
13464
13465 /* 350 usec to allow enough time on some 10/100 Mbps devices. */
13466 for (i = 0; i < 35; i++) {
13467 tw32_f(HOSTCC_MODE, tp->coalesce_mode | HOSTCC_MODE_ENABLE |
13468 coal_now);
13469
13470 udelay(10);
13471
13472 tx_idx = tnapi->hw_status->idx[0].tx_consumer;
13473 rx_idx = rnapi->hw_status->idx[0].rx_producer;
13474 if ((tx_idx == tnapi->tx_prod) &&
13475 (rx_idx == (rx_start_idx + num_pkts)))
13476 break;
13477 }
13478
13479 tg3_tx_skb_unmap(tnapi, tnapi->tx_prod - 1, -1);
13480 dev_kfree_skb(skb);
13481
13482 if (tx_idx != tnapi->tx_prod)
13483 goto out;
13484
13485 if (rx_idx != rx_start_idx + num_pkts)
13486 goto out;
13487
13488 val = data_off;
13489 while (rx_idx != rx_start_idx) {
13490 desc = &rnapi->rx_rcb[rx_start_idx++];
13491 desc_idx = desc->opaque & RXD_OPAQUE_INDEX_MASK;
13492 opaque_key = desc->opaque & RXD_OPAQUE_RING_MASK;
13493
13494 if ((desc->err_vlan & RXD_ERR_MASK) != 0 &&
13495 (desc->err_vlan != RXD_ERR_ODD_NIBBLE_RCVD_MII))
13496 goto out;
13497
13498 rx_len = ((desc->idx_len & RXD_LEN_MASK) >> RXD_LEN_SHIFT)
13499 - ETH_FCS_LEN;
13500
13501 if (!tso_loopback) {
13502 if (rx_len != tx_len)
13503 goto out;
13504
13505 if (pktsz <= TG3_RX_STD_DMA_SZ - ETH_FCS_LEN) {
13506 if (opaque_key != RXD_OPAQUE_RING_STD)
13507 goto out;
13508 } else {
13509 if (opaque_key != RXD_OPAQUE_RING_JUMBO)
13510 goto out;
13511 }
13512 } else if ((desc->type_flags & RXD_FLAG_TCPUDP_CSUM) &&
13513 (desc->ip_tcp_csum & RXD_TCPCSUM_MASK)
13514 >> RXD_TCPCSUM_SHIFT != 0xffff) {
13515 goto out;
13516 }
13517
13518 if (opaque_key == RXD_OPAQUE_RING_STD) {
13519 rx_data = tpr->rx_std_buffers[desc_idx].data;
13520 map = dma_unmap_addr(&tpr->rx_std_buffers[desc_idx],
13521 mapping);
13522 } else if (opaque_key == RXD_OPAQUE_RING_JUMBO) {
13523 rx_data = tpr->rx_jmb_buffers[desc_idx].data;
13524 map = dma_unmap_addr(&tpr->rx_jmb_buffers[desc_idx],
13525 mapping);
13526 } else
13527 goto out;
13528
13529 pci_dma_sync_single_for_cpu(tp->pdev, map, rx_len,
13530 PCI_DMA_FROMDEVICE);
13531
13532 rx_data += TG3_RX_OFFSET(tp);
13533 for (i = data_off; i < rx_len; i++, val++) {
13534 if (*(rx_data + i) != (u8) (val & 0xff))
13535 goto out;
13536 }
13537 }
13538
13539 err = 0;
13540
13541 /* tg3_free_rings will unmap and free the rx_data */
13542 out:
13543 return err;
13544 }
13545
13546 #define TG3_STD_LOOPBACK_FAILED 1
13547 #define TG3_JMB_LOOPBACK_FAILED 2
13548 #define TG3_TSO_LOOPBACK_FAILED 4
13549 #define TG3_LOOPBACK_FAILED \
13550 (TG3_STD_LOOPBACK_FAILED | \
13551 TG3_JMB_LOOPBACK_FAILED | \
13552 TG3_TSO_LOOPBACK_FAILED)
13553
13554 static int tg3_test_loopback(struct tg3 *tp, u64 *data, bool do_extlpbk)
13555 {
13556 int err = -EIO;
13557 u32 eee_cap;
13558 u32 jmb_pkt_sz = 9000;
13559
13560 if (tp->dma_limit)
13561 jmb_pkt_sz = tp->dma_limit - ETH_HLEN;
13562
13563 eee_cap = tp->phy_flags & TG3_PHYFLG_EEE_CAP;
13564 tp->phy_flags &= ~TG3_PHYFLG_EEE_CAP;
13565
13566 if (!netif_running(tp->dev)) {
13567 data[TG3_MAC_LOOPB_TEST] = TG3_LOOPBACK_FAILED;
13568 data[TG3_PHY_LOOPB_TEST] = TG3_LOOPBACK_FAILED;
13569 if (do_extlpbk)
13570 data[TG3_EXT_LOOPB_TEST] = TG3_LOOPBACK_FAILED;
13571 goto done;
13572 }
13573
13574 err = tg3_reset_hw(tp, true);
13575 if (err) {
13576 data[TG3_MAC_LOOPB_TEST] = TG3_LOOPBACK_FAILED;
13577 data[TG3_PHY_LOOPB_TEST] = TG3_LOOPBACK_FAILED;
13578 if (do_extlpbk)
13579 data[TG3_EXT_LOOPB_TEST] = TG3_LOOPBACK_FAILED;
13580 goto done;
13581 }
13582
13583 if (tg3_flag(tp, ENABLE_RSS)) {
13584 int i;
13585
13586 /* Reroute all rx packets to the 1st queue */
13587 for (i = MAC_RSS_INDIR_TBL_0;
13588 i < MAC_RSS_INDIR_TBL_0 + TG3_RSS_INDIR_TBL_SIZE; i += 4)
13589 tw32(i, 0x0);
13590 }
13591
13592 /* HW errata - mac loopback fails in some cases on 5780.
13593 * Normal traffic and PHY loopback are not affected by
13594 * errata. Also, the MAC loopback test is deprecated for
13595 * all newer ASIC revisions.
13596 */
13597 if (tg3_asic_rev(tp) != ASIC_REV_5780 &&
13598 !tg3_flag(tp, CPMU_PRESENT)) {
13599 tg3_mac_loopback(tp, true);
13600
13601 if (tg3_run_loopback(tp, ETH_FRAME_LEN, false))
13602 data[TG3_MAC_LOOPB_TEST] |= TG3_STD_LOOPBACK_FAILED;
13603
13604 if (tg3_flag(tp, JUMBO_RING_ENABLE) &&
13605 tg3_run_loopback(tp, jmb_pkt_sz + ETH_HLEN, false))
13606 data[TG3_MAC_LOOPB_TEST] |= TG3_JMB_LOOPBACK_FAILED;
13607
13608 tg3_mac_loopback(tp, false);
13609 }
13610
13611 if (!(tp->phy_flags & TG3_PHYFLG_PHY_SERDES) &&
13612 !tg3_flag(tp, USE_PHYLIB)) {
13613 int i;
13614
13615 tg3_phy_lpbk_set(tp, 0, false);
13616
13617 /* Wait for link */
13618 for (i = 0; i < 100; i++) {
13619 if (tr32(MAC_TX_STATUS) & TX_STATUS_LINK_UP)
13620 break;
13621 mdelay(1);
13622 }
13623
13624 if (tg3_run_loopback(tp, ETH_FRAME_LEN, false))
13625 data[TG3_PHY_LOOPB_TEST] |= TG3_STD_LOOPBACK_FAILED;
13626 if (tg3_flag(tp, TSO_CAPABLE) &&
13627 tg3_run_loopback(tp, ETH_FRAME_LEN, true))
13628 data[TG3_PHY_LOOPB_TEST] |= TG3_TSO_LOOPBACK_FAILED;
13629 if (tg3_flag(tp, JUMBO_RING_ENABLE) &&
13630 tg3_run_loopback(tp, jmb_pkt_sz + ETH_HLEN, false))
13631 data[TG3_PHY_LOOPB_TEST] |= TG3_JMB_LOOPBACK_FAILED;
13632
13633 if (do_extlpbk) {
13634 tg3_phy_lpbk_set(tp, 0, true);
13635
13636 /* All link indications report up, but the hardware
13637 * isn't really ready for about 20 msec. Double it
13638 * to be sure.
13639 */
13640 mdelay(40);
13641
13642 if (tg3_run_loopback(tp, ETH_FRAME_LEN, false))
13643 data[TG3_EXT_LOOPB_TEST] |=
13644 TG3_STD_LOOPBACK_FAILED;
13645 if (tg3_flag(tp, TSO_CAPABLE) &&
13646 tg3_run_loopback(tp, ETH_FRAME_LEN, true))
13647 data[TG3_EXT_LOOPB_TEST] |=
13648 TG3_TSO_LOOPBACK_FAILED;
13649 if (tg3_flag(tp, JUMBO_RING_ENABLE) &&
13650 tg3_run_loopback(tp, jmb_pkt_sz + ETH_HLEN, false))
13651 data[TG3_EXT_LOOPB_TEST] |=
13652 TG3_JMB_LOOPBACK_FAILED;
13653 }
13654
13655 /* Re-enable gphy autopowerdown. */
13656 if (tp->phy_flags & TG3_PHYFLG_ENABLE_APD)
13657 tg3_phy_toggle_apd(tp, true);
13658 }
13659
13660 err = (data[TG3_MAC_LOOPB_TEST] | data[TG3_PHY_LOOPB_TEST] |
13661 data[TG3_EXT_LOOPB_TEST]) ? -EIO : 0;
13662
13663 done:
13664 tp->phy_flags |= eee_cap;
13665
13666 return err;
13667 }
13668
13669 static void tg3_self_test(struct net_device *dev, struct ethtool_test *etest,
13670 u64 *data)
13671 {
13672 struct tg3 *tp = netdev_priv(dev);
13673 bool doextlpbk = etest->flags & ETH_TEST_FL_EXTERNAL_LB;
13674
13675 if (tp->phy_flags & TG3_PHYFLG_IS_LOW_POWER) {
13676 if (tg3_power_up(tp)) {
13677 etest->flags |= ETH_TEST_FL_FAILED;
13678 memset(data, 1, sizeof(u64) * TG3_NUM_TEST);
13679 return;
13680 }
13681 tg3_ape_driver_state_change(tp, RESET_KIND_INIT);
13682 }
13683
13684 memset(data, 0, sizeof(u64) * TG3_NUM_TEST);
13685
13686 if (tg3_test_nvram(tp) != 0) {
13687 etest->flags |= ETH_TEST_FL_FAILED;
13688 data[TG3_NVRAM_TEST] = 1;
13689 }
13690 if (!doextlpbk && tg3_test_link(tp)) {
13691 etest->flags |= ETH_TEST_FL_FAILED;
13692 data[TG3_LINK_TEST] = 1;
13693 }
13694 if (etest->flags & ETH_TEST_FL_OFFLINE) {
13695 int err, err2 = 0, irq_sync = 0;
13696
13697 if (netif_running(dev)) {
13698 tg3_phy_stop(tp);
13699 tg3_netif_stop(tp);
13700 irq_sync = 1;
13701 }
13702
13703 tg3_full_lock(tp, irq_sync);
13704 tg3_halt(tp, RESET_KIND_SUSPEND, 1);
13705 err = tg3_nvram_lock(tp);
13706 tg3_halt_cpu(tp, RX_CPU_BASE);
13707 if (!tg3_flag(tp, 5705_PLUS))
13708 tg3_halt_cpu(tp, TX_CPU_BASE);
13709 if (!err)
13710 tg3_nvram_unlock(tp);
13711
13712 if (tp->phy_flags & TG3_PHYFLG_MII_SERDES)
13713 tg3_phy_reset(tp);
13714
13715 if (tg3_test_registers(tp) != 0) {
13716 etest->flags |= ETH_TEST_FL_FAILED;
13717 data[TG3_REGISTER_TEST] = 1;
13718 }
13719
13720 if (tg3_test_memory(tp) != 0) {
13721 etest->flags |= ETH_TEST_FL_FAILED;
13722 data[TG3_MEMORY_TEST] = 1;
13723 }
13724
13725 if (doextlpbk)
13726 etest->flags |= ETH_TEST_FL_EXTERNAL_LB_DONE;
13727
13728 if (tg3_test_loopback(tp, data, doextlpbk))
13729 etest->flags |= ETH_TEST_FL_FAILED;
13730
13731 tg3_full_unlock(tp);
13732
13733 if (tg3_test_interrupt(tp) != 0) {
13734 etest->flags |= ETH_TEST_FL_FAILED;
13735 data[TG3_INTERRUPT_TEST] = 1;
13736 }
13737
13738 tg3_full_lock(tp, 0);
13739
13740 tg3_halt(tp, RESET_KIND_SHUTDOWN, 1);
13741 if (netif_running(dev)) {
13742 tg3_flag_set(tp, INIT_COMPLETE);
13743 err2 = tg3_restart_hw(tp, true);
13744 if (!err2)
13745 tg3_netif_start(tp);
13746 }
13747
13748 tg3_full_unlock(tp);
13749
13750 if (irq_sync && !err2)
13751 tg3_phy_start(tp);
13752 }
13753 if (tp->phy_flags & TG3_PHYFLG_IS_LOW_POWER)
13754 tg3_power_down_prepare(tp);
13755
13756 }
13757
13758 static int tg3_hwtstamp_set(struct net_device *dev, struct ifreq *ifr)
13759 {
13760 struct tg3 *tp = netdev_priv(dev);
13761 struct hwtstamp_config stmpconf;
13762
13763 if (!tg3_flag(tp, PTP_CAPABLE))
13764 return -EOPNOTSUPP;
13765
13766 if (copy_from_user(&stmpconf, ifr->ifr_data, sizeof(stmpconf)))
13767 return -EFAULT;
13768
13769 if (stmpconf.flags)
13770 return -EINVAL;
13771
13772 if (stmpconf.tx_type != HWTSTAMP_TX_ON &&
13773 stmpconf.tx_type != HWTSTAMP_TX_OFF)
13774 return -ERANGE;
13775
13776 switch (stmpconf.rx_filter) {
13777 case HWTSTAMP_FILTER_NONE:
13778 tp->rxptpctl = 0;
13779 break;
13780 case HWTSTAMP_FILTER_PTP_V1_L4_EVENT:
13781 tp->rxptpctl = TG3_RX_PTP_CTL_RX_PTP_V1_EN |
13782 TG3_RX_PTP_CTL_ALL_V1_EVENTS;
13783 break;
13784 case HWTSTAMP_FILTER_PTP_V1_L4_SYNC:
13785 tp->rxptpctl = TG3_RX_PTP_CTL_RX_PTP_V1_EN |
13786 TG3_RX_PTP_CTL_SYNC_EVNT;
13787 break;
13788 case HWTSTAMP_FILTER_PTP_V1_L4_DELAY_REQ:
13789 tp->rxptpctl = TG3_RX_PTP_CTL_RX_PTP_V1_EN |
13790 TG3_RX_PTP_CTL_DELAY_REQ;
13791 break;
13792 case HWTSTAMP_FILTER_PTP_V2_EVENT:
13793 tp->rxptpctl = TG3_RX_PTP_CTL_RX_PTP_V2_EN |
13794 TG3_RX_PTP_CTL_ALL_V2_EVENTS;
13795 break;
13796 case HWTSTAMP_FILTER_PTP_V2_L2_EVENT:
13797 tp->rxptpctl = TG3_RX_PTP_CTL_RX_PTP_V2_L2_EN |
13798 TG3_RX_PTP_CTL_ALL_V2_EVENTS;
13799 break;
13800 case HWTSTAMP_FILTER_PTP_V2_L4_EVENT:
13801 tp->rxptpctl = TG3_RX_PTP_CTL_RX_PTP_V2_L4_EN |
13802 TG3_RX_PTP_CTL_ALL_V2_EVENTS;
13803 break;
13804 case HWTSTAMP_FILTER_PTP_V2_SYNC:
13805 tp->rxptpctl = TG3_RX_PTP_CTL_RX_PTP_V2_EN |
13806 TG3_RX_PTP_CTL_SYNC_EVNT;
13807 break;
13808 case HWTSTAMP_FILTER_PTP_V2_L2_SYNC:
13809 tp->rxptpctl = TG3_RX_PTP_CTL_RX_PTP_V2_L2_EN |
13810 TG3_RX_PTP_CTL_SYNC_EVNT;
13811 break;
13812 case HWTSTAMP_FILTER_PTP_V2_L4_SYNC:
13813 tp->rxptpctl = TG3_RX_PTP_CTL_RX_PTP_V2_L4_EN |
13814 TG3_RX_PTP_CTL_SYNC_EVNT;
13815 break;
13816 case HWTSTAMP_FILTER_PTP_V2_DELAY_REQ:
13817 tp->rxptpctl = TG3_RX_PTP_CTL_RX_PTP_V2_EN |
13818 TG3_RX_PTP_CTL_DELAY_REQ;
13819 break;
13820 case HWTSTAMP_FILTER_PTP_V2_L2_DELAY_REQ:
13821 tp->rxptpctl = TG3_RX_PTP_CTL_RX_PTP_V2_L2_EN |
13822 TG3_RX_PTP_CTL_DELAY_REQ;
13823 break;
13824 case HWTSTAMP_FILTER_PTP_V2_L4_DELAY_REQ:
13825 tp->rxptpctl = TG3_RX_PTP_CTL_RX_PTP_V2_L4_EN |
13826 TG3_RX_PTP_CTL_DELAY_REQ;
13827 break;
13828 default:
13829 return -ERANGE;
13830 }
13831
13832 if (netif_running(dev) && tp->rxptpctl)
13833 tw32(TG3_RX_PTP_CTL,
13834 tp->rxptpctl | TG3_RX_PTP_CTL_HWTS_INTERLOCK);
13835
13836 if (stmpconf.tx_type == HWTSTAMP_TX_ON)
13837 tg3_flag_set(tp, TX_TSTAMP_EN);
13838 else
13839 tg3_flag_clear(tp, TX_TSTAMP_EN);
13840
13841 return copy_to_user(ifr->ifr_data, &stmpconf, sizeof(stmpconf)) ?
13842 -EFAULT : 0;
13843 }
13844
13845 static int tg3_hwtstamp_get(struct net_device *dev, struct ifreq *ifr)
13846 {
13847 struct tg3 *tp = netdev_priv(dev);
13848 struct hwtstamp_config stmpconf;
13849
13850 if (!tg3_flag(tp, PTP_CAPABLE))
13851 return -EOPNOTSUPP;
13852
13853 stmpconf.flags = 0;
13854 stmpconf.tx_type = (tg3_flag(tp, TX_TSTAMP_EN) ?
13855 HWTSTAMP_TX_ON : HWTSTAMP_TX_OFF);
13856
13857 switch (tp->rxptpctl) {
13858 case 0:
13859 stmpconf.rx_filter = HWTSTAMP_FILTER_NONE;
13860 break;
13861 case TG3_RX_PTP_CTL_RX_PTP_V1_EN | TG3_RX_PTP_CTL_ALL_V1_EVENTS:
13862 stmpconf.rx_filter = HWTSTAMP_FILTER_PTP_V1_L4_EVENT;
13863 break;
13864 case TG3_RX_PTP_CTL_RX_PTP_V1_EN | TG3_RX_PTP_CTL_SYNC_EVNT:
13865 stmpconf.rx_filter = HWTSTAMP_FILTER_PTP_V1_L4_SYNC;
13866 break;
13867 case TG3_RX_PTP_CTL_RX_PTP_V1_EN | TG3_RX_PTP_CTL_DELAY_REQ:
13868 stmpconf.rx_filter = HWTSTAMP_FILTER_PTP_V1_L4_DELAY_REQ;
13869 break;
13870 case TG3_RX_PTP_CTL_RX_PTP_V2_EN | TG3_RX_PTP_CTL_ALL_V2_EVENTS:
13871 stmpconf.rx_filter = HWTSTAMP_FILTER_PTP_V2_EVENT;
13872 break;
13873 case TG3_RX_PTP_CTL_RX_PTP_V2_L2_EN | TG3_RX_PTP_CTL_ALL_V2_EVENTS:
13874 stmpconf.rx_filter = HWTSTAMP_FILTER_PTP_V2_L2_EVENT;
13875 break;
13876 case TG3_RX_PTP_CTL_RX_PTP_V2_L4_EN | TG3_RX_PTP_CTL_ALL_V2_EVENTS:
13877 stmpconf.rx_filter = HWTSTAMP_FILTER_PTP_V2_L4_EVENT;
13878 break;
13879 case TG3_RX_PTP_CTL_RX_PTP_V2_EN | TG3_RX_PTP_CTL_SYNC_EVNT:
13880 stmpconf.rx_filter = HWTSTAMP_FILTER_PTP_V2_SYNC;
13881 break;
13882 case TG3_RX_PTP_CTL_RX_PTP_V2_L2_EN | TG3_RX_PTP_CTL_SYNC_EVNT:
13883 stmpconf.rx_filter = HWTSTAMP_FILTER_PTP_V2_L2_SYNC;
13884 break;
13885 case TG3_RX_PTP_CTL_RX_PTP_V2_L4_EN | TG3_RX_PTP_CTL_SYNC_EVNT:
13886 stmpconf.rx_filter = HWTSTAMP_FILTER_PTP_V2_L4_SYNC;
13887 break;
13888 case TG3_RX_PTP_CTL_RX_PTP_V2_EN | TG3_RX_PTP_CTL_DELAY_REQ:
13889 stmpconf.rx_filter = HWTSTAMP_FILTER_PTP_V2_DELAY_REQ;
13890 break;
13891 case TG3_RX_PTP_CTL_RX_PTP_V2_L2_EN | TG3_RX_PTP_CTL_DELAY_REQ:
13892 stmpconf.rx_filter = HWTSTAMP_FILTER_PTP_V2_L2_DELAY_REQ;
13893 break;
13894 case TG3_RX_PTP_CTL_RX_PTP_V2_L4_EN | TG3_RX_PTP_CTL_DELAY_REQ:
13895 stmpconf.rx_filter = HWTSTAMP_FILTER_PTP_V2_L4_DELAY_REQ;
13896 break;
13897 default:
13898 WARN_ON_ONCE(1);
13899 return -ERANGE;
13900 }
13901
13902 return copy_to_user(ifr->ifr_data, &stmpconf, sizeof(stmpconf)) ?
13903 -EFAULT : 0;
13904 }
13905
13906 static int tg3_ioctl(struct net_device *dev, struct ifreq *ifr, int cmd)
13907 {
13908 struct mii_ioctl_data *data = if_mii(ifr);
13909 struct tg3 *tp = netdev_priv(dev);
13910 int err;
13911
13912 if (tg3_flag(tp, USE_PHYLIB)) {
13913 struct phy_device *phydev;
13914 if (!(tp->phy_flags & TG3_PHYFLG_IS_CONNECTED))
13915 return -EAGAIN;
13916 phydev = tp->mdio_bus->phy_map[tp->phy_addr];
13917 return phy_mii_ioctl(phydev, ifr, cmd);
13918 }
13919
13920 switch (cmd) {
13921 case SIOCGMIIPHY:
13922 data->phy_id = tp->phy_addr;
13923
13924 /* fallthru */
13925 case SIOCGMIIREG: {
13926 u32 mii_regval;
13927
13928 if (tp->phy_flags & TG3_PHYFLG_PHY_SERDES)
13929 break; /* We have no PHY */
13930
13931 if (!netif_running(dev))
13932 return -EAGAIN;
13933
13934 spin_lock_bh(&tp->lock);
13935 err = __tg3_readphy(tp, data->phy_id & 0x1f,
13936 data->reg_num & 0x1f, &mii_regval);
13937 spin_unlock_bh(&tp->lock);
13938
13939 data->val_out = mii_regval;
13940
13941 return err;
13942 }
13943
13944 case SIOCSMIIREG:
13945 if (tp->phy_flags & TG3_PHYFLG_PHY_SERDES)
13946 break; /* We have no PHY */
13947
13948 if (!netif_running(dev))
13949 return -EAGAIN;
13950
13951 spin_lock_bh(&tp->lock);
13952 err = __tg3_writephy(tp, data->phy_id & 0x1f,
13953 data->reg_num & 0x1f, data->val_in);
13954 spin_unlock_bh(&tp->lock);
13955
13956 return err;
13957
13958 case SIOCSHWTSTAMP:
13959 return tg3_hwtstamp_set(dev, ifr);
13960
13961 case SIOCGHWTSTAMP:
13962 return tg3_hwtstamp_get(dev, ifr);
13963
13964 default:
13965 /* do nothing */
13966 break;
13967 }
13968 return -EOPNOTSUPP;
13969 }
13970
13971 static int tg3_get_coalesce(struct net_device *dev, struct ethtool_coalesce *ec)
13972 {
13973 struct tg3 *tp = netdev_priv(dev);
13974
13975 memcpy(ec, &tp->coal, sizeof(*ec));
13976 return 0;
13977 }
13978
13979 static int tg3_set_coalesce(struct net_device *dev, struct ethtool_coalesce *ec)
13980 {
13981 struct tg3 *tp = netdev_priv(dev);
13982 u32 max_rxcoal_tick_int = 0, max_txcoal_tick_int = 0;
13983 u32 max_stat_coal_ticks = 0, min_stat_coal_ticks = 0;
13984
13985 if (!tg3_flag(tp, 5705_PLUS)) {
13986 max_rxcoal_tick_int = MAX_RXCOAL_TICK_INT;
13987 max_txcoal_tick_int = MAX_TXCOAL_TICK_INT;
13988 max_stat_coal_ticks = MAX_STAT_COAL_TICKS;
13989 min_stat_coal_ticks = MIN_STAT_COAL_TICKS;
13990 }
13991
13992 if ((ec->rx_coalesce_usecs > MAX_RXCOL_TICKS) ||
13993 (ec->tx_coalesce_usecs > MAX_TXCOL_TICKS) ||
13994 (ec->rx_max_coalesced_frames > MAX_RXMAX_FRAMES) ||
13995 (ec->tx_max_coalesced_frames > MAX_TXMAX_FRAMES) ||
13996 (ec->rx_coalesce_usecs_irq > max_rxcoal_tick_int) ||
13997 (ec->tx_coalesce_usecs_irq > max_txcoal_tick_int) ||
13998 (ec->rx_max_coalesced_frames_irq > MAX_RXCOAL_MAXF_INT) ||
13999 (ec->tx_max_coalesced_frames_irq > MAX_TXCOAL_MAXF_INT) ||
14000 (ec->stats_block_coalesce_usecs > max_stat_coal_ticks) ||
14001 (ec->stats_block_coalesce_usecs < min_stat_coal_ticks))
14002 return -EINVAL;
14003
14004 /* No rx interrupts will be generated if both are zero */
14005 if ((ec->rx_coalesce_usecs == 0) &&
14006 (ec->rx_max_coalesced_frames == 0))
14007 return -EINVAL;
14008
14009 /* No tx interrupts will be generated if both are zero */
14010 if ((ec->tx_coalesce_usecs == 0) &&
14011 (ec->tx_max_coalesced_frames == 0))
14012 return -EINVAL;
14013
14014 /* Only copy relevant parameters, ignore all others. */
14015 tp->coal.rx_coalesce_usecs = ec->rx_coalesce_usecs;
14016 tp->coal.tx_coalesce_usecs = ec->tx_coalesce_usecs;
14017 tp->coal.rx_max_coalesced_frames = ec->rx_max_coalesced_frames;
14018 tp->coal.tx_max_coalesced_frames = ec->tx_max_coalesced_frames;
14019 tp->coal.rx_coalesce_usecs_irq = ec->rx_coalesce_usecs_irq;
14020 tp->coal.tx_coalesce_usecs_irq = ec->tx_coalesce_usecs_irq;
14021 tp->coal.rx_max_coalesced_frames_irq = ec->rx_max_coalesced_frames_irq;
14022 tp->coal.tx_max_coalesced_frames_irq = ec->tx_max_coalesced_frames_irq;
14023 tp->coal.stats_block_coalesce_usecs = ec->stats_block_coalesce_usecs;
14024
14025 if (netif_running(dev)) {
14026 tg3_full_lock(tp, 0);
14027 __tg3_set_coalesce(tp, &tp->coal);
14028 tg3_full_unlock(tp);
14029 }
14030 return 0;
14031 }
14032
14033 static int tg3_set_eee(struct net_device *dev, struct ethtool_eee *edata)
14034 {
14035 struct tg3 *tp = netdev_priv(dev);
14036
14037 if (!(tp->phy_flags & TG3_PHYFLG_EEE_CAP)) {
14038 netdev_warn(tp->dev, "Board does not support EEE!\n");
14039 return -EOPNOTSUPP;
14040 }
14041
14042 if (edata->advertised != tp->eee.advertised) {
14043 netdev_warn(tp->dev,
14044 "Direct manipulation of EEE advertisement is not supported\n");
14045 return -EINVAL;
14046 }
14047
14048 if (edata->tx_lpi_timer > TG3_CPMU_DBTMR1_LNKIDLE_MAX) {
14049 netdev_warn(tp->dev,
14050 "Maximal Tx Lpi timer supported is %#x(u)\n",
14051 TG3_CPMU_DBTMR1_LNKIDLE_MAX);
14052 return -EINVAL;
14053 }
14054
14055 tp->eee = *edata;
14056
14057 tp->phy_flags |= TG3_PHYFLG_USER_CONFIGURED;
14058 tg3_warn_mgmt_link_flap(tp);
14059
14060 if (netif_running(tp->dev)) {
14061 tg3_full_lock(tp, 0);
14062 tg3_setup_eee(tp);
14063 tg3_phy_reset(tp);
14064 tg3_full_unlock(tp);
14065 }
14066
14067 return 0;
14068 }
14069
14070 static int tg3_get_eee(struct net_device *dev, struct ethtool_eee *edata)
14071 {
14072 struct tg3 *tp = netdev_priv(dev);
14073
14074 if (!(tp->phy_flags & TG3_PHYFLG_EEE_CAP)) {
14075 netdev_warn(tp->dev,
14076 "Board does not support EEE!\n");
14077 return -EOPNOTSUPP;
14078 }
14079
14080 *edata = tp->eee;
14081 return 0;
14082 }
14083
14084 static const struct ethtool_ops tg3_ethtool_ops = {
14085 .get_settings = tg3_get_settings,
14086 .set_settings = tg3_set_settings,
14087 .get_drvinfo = tg3_get_drvinfo,
14088 .get_regs_len = tg3_get_regs_len,
14089 .get_regs = tg3_get_regs,
14090 .get_wol = tg3_get_wol,
14091 .set_wol = tg3_set_wol,
14092 .get_msglevel = tg3_get_msglevel,
14093 .set_msglevel = tg3_set_msglevel,
14094 .nway_reset = tg3_nway_reset,
14095 .get_link = ethtool_op_get_link,
14096 .get_eeprom_len = tg3_get_eeprom_len,
14097 .get_eeprom = tg3_get_eeprom,
14098 .set_eeprom = tg3_set_eeprom,
14099 .get_ringparam = tg3_get_ringparam,
14100 .set_ringparam = tg3_set_ringparam,
14101 .get_pauseparam = tg3_get_pauseparam,
14102 .set_pauseparam = tg3_set_pauseparam,
14103 .self_test = tg3_self_test,
14104 .get_strings = tg3_get_strings,
14105 .set_phys_id = tg3_set_phys_id,
14106 .get_ethtool_stats = tg3_get_ethtool_stats,
14107 .get_coalesce = tg3_get_coalesce,
14108 .set_coalesce = tg3_set_coalesce,
14109 .get_sset_count = tg3_get_sset_count,
14110 .get_rxnfc = tg3_get_rxnfc,
14111 .get_rxfh_indir_size = tg3_get_rxfh_indir_size,
14112 .get_rxfh = tg3_get_rxfh,
14113 .set_rxfh = tg3_set_rxfh,
14114 .get_channels = tg3_get_channels,
14115 .set_channels = tg3_set_channels,
14116 .get_ts_info = tg3_get_ts_info,
14117 .get_eee = tg3_get_eee,
14118 .set_eee = tg3_set_eee,
14119 };
14120
14121 static struct rtnl_link_stats64 *tg3_get_stats64(struct net_device *dev,
14122 struct rtnl_link_stats64 *stats)
14123 {
14124 struct tg3 *tp = netdev_priv(dev);
14125
14126 spin_lock_bh(&tp->lock);
14127 if (!tp->hw_stats) {
14128 *stats = tp->net_stats_prev;
14129 spin_unlock_bh(&tp->lock);
14130 return stats;
14131 }
14132
14133 tg3_get_nstats(tp, stats);
14134 spin_unlock_bh(&tp->lock);
14135
14136 return stats;
14137 }
14138
14139 static void tg3_set_rx_mode(struct net_device *dev)
14140 {
14141 struct tg3 *tp = netdev_priv(dev);
14142
14143 if (!netif_running(dev))
14144 return;
14145
14146 tg3_full_lock(tp, 0);
14147 __tg3_set_rx_mode(dev);
14148 tg3_full_unlock(tp);
14149 }
14150
14151 static inline void tg3_set_mtu(struct net_device *dev, struct tg3 *tp,
14152 int new_mtu)
14153 {
14154 dev->mtu = new_mtu;
14155
14156 if (new_mtu > ETH_DATA_LEN) {
14157 if (tg3_flag(tp, 5780_CLASS)) {
14158 netdev_update_features(dev);
14159 tg3_flag_clear(tp, TSO_CAPABLE);
14160 } else {
14161 tg3_flag_set(tp, JUMBO_RING_ENABLE);
14162 }
14163 } else {
14164 if (tg3_flag(tp, 5780_CLASS)) {
14165 tg3_flag_set(tp, TSO_CAPABLE);
14166 netdev_update_features(dev);
14167 }
14168 tg3_flag_clear(tp, JUMBO_RING_ENABLE);
14169 }
14170 }
14171
14172 static int tg3_change_mtu(struct net_device *dev, int new_mtu)
14173 {
14174 struct tg3 *tp = netdev_priv(dev);
14175 int err;
14176 bool reset_phy = false;
14177
14178 if (new_mtu < TG3_MIN_MTU || new_mtu > TG3_MAX_MTU(tp))
14179 return -EINVAL;
14180
14181 if (!netif_running(dev)) {
14182 /* We'll just catch it later when the
14183 * device is up'd.
14184 */
14185 tg3_set_mtu(dev, tp, new_mtu);
14186 return 0;
14187 }
14188
14189 tg3_phy_stop(tp);
14190
14191 tg3_netif_stop(tp);
14192
14193 tg3_set_mtu(dev, tp, new_mtu);
14194
14195 tg3_full_lock(tp, 1);
14196
14197 tg3_halt(tp, RESET_KIND_SHUTDOWN, 1);
14198
14199 /* Reset PHY, otherwise the read DMA engine will be in a mode that
14200 * breaks all requests to 256 bytes.
14201 */
14202 if (tg3_asic_rev(tp) == ASIC_REV_57766)
14203 reset_phy = true;
14204
14205 err = tg3_restart_hw(tp, reset_phy);
14206
14207 if (!err)
14208 tg3_netif_start(tp);
14209
14210 tg3_full_unlock(tp);
14211
14212 if (!err)
14213 tg3_phy_start(tp);
14214
14215 return err;
14216 }
14217
14218 static const struct net_device_ops tg3_netdev_ops = {
14219 .ndo_open = tg3_open,
14220 .ndo_stop = tg3_close,
14221 .ndo_start_xmit = tg3_start_xmit,
14222 .ndo_get_stats64 = tg3_get_stats64,
14223 .ndo_validate_addr = eth_validate_addr,
14224 .ndo_set_rx_mode = tg3_set_rx_mode,
14225 .ndo_set_mac_address = tg3_set_mac_addr,
14226 .ndo_do_ioctl = tg3_ioctl,
14227 .ndo_tx_timeout = tg3_tx_timeout,
14228 .ndo_change_mtu = tg3_change_mtu,
14229 .ndo_fix_features = tg3_fix_features,
14230 .ndo_set_features = tg3_set_features,
14231 #ifdef CONFIG_NET_POLL_CONTROLLER
14232 .ndo_poll_controller = tg3_poll_controller,
14233 #endif
14234 };
14235
14236 static void tg3_get_eeprom_size(struct tg3 *tp)
14237 {
14238 u32 cursize, val, magic;
14239
14240 tp->nvram_size = EEPROM_CHIP_SIZE;
14241
14242 if (tg3_nvram_read(tp, 0, &magic) != 0)
14243 return;
14244
14245 if ((magic != TG3_EEPROM_MAGIC) &&
14246 ((magic & TG3_EEPROM_MAGIC_FW_MSK) != TG3_EEPROM_MAGIC_FW) &&
14247 ((magic & TG3_EEPROM_MAGIC_HW_MSK) != TG3_EEPROM_MAGIC_HW))
14248 return;
14249
14250 /*
14251 * Size the chip by reading offsets at increasing powers of two.
14252 * When we encounter our validation signature, we know the addressing
14253 * has wrapped around, and thus have our chip size.
14254 */
14255 cursize = 0x10;
14256
14257 while (cursize < tp->nvram_size) {
14258 if (tg3_nvram_read(tp, cursize, &val) != 0)
14259 return;
14260
14261 if (val == magic)
14262 break;
14263
14264 cursize <<= 1;
14265 }
14266
14267 tp->nvram_size = cursize;
14268 }
14269
14270 static void tg3_get_nvram_size(struct tg3 *tp)
14271 {
14272 u32 val;
14273
14274 if (tg3_flag(tp, NO_NVRAM) || tg3_nvram_read(tp, 0, &val) != 0)
14275 return;
14276
14277 /* Selfboot format */
14278 if (val != TG3_EEPROM_MAGIC) {
14279 tg3_get_eeprom_size(tp);
14280 return;
14281 }
14282
14283 if (tg3_nvram_read(tp, 0xf0, &val) == 0) {
14284 if (val != 0) {
14285 /* This is confusing. We want to operate on the
14286 * 16-bit value at offset 0xf2. The tg3_nvram_read()
14287 * call will read from NVRAM and byteswap the data
14288 * according to the byteswapping settings for all
14289 * other register accesses. This ensures the data we
14290 * want will always reside in the lower 16-bits.
14291 * However, the data in NVRAM is in LE format, which
14292 * means the data from the NVRAM read will always be
14293 * opposite the endianness of the CPU. The 16-bit
14294 * byteswap then brings the data to CPU endianness.
14295 */
14296 tp->nvram_size = swab16((u16)(val & 0x0000ffff)) * 1024;
14297 return;
14298 }
14299 }
14300 tp->nvram_size = TG3_NVRAM_SIZE_512KB;
14301 }
14302
14303 static void tg3_get_nvram_info(struct tg3 *tp)
14304 {
14305 u32 nvcfg1;
14306
14307 nvcfg1 = tr32(NVRAM_CFG1);
14308 if (nvcfg1 & NVRAM_CFG1_FLASHIF_ENAB) {
14309 tg3_flag_set(tp, FLASH);
14310 } else {
14311 nvcfg1 &= ~NVRAM_CFG1_COMPAT_BYPASS;
14312 tw32(NVRAM_CFG1, nvcfg1);
14313 }
14314
14315 if (tg3_asic_rev(tp) == ASIC_REV_5750 ||
14316 tg3_flag(tp, 5780_CLASS)) {
14317 switch (nvcfg1 & NVRAM_CFG1_VENDOR_MASK) {
14318 case FLASH_VENDOR_ATMEL_FLASH_BUFFERED:
14319 tp->nvram_jedecnum = JEDEC_ATMEL;
14320 tp->nvram_pagesize = ATMEL_AT45DB0X1B_PAGE_SIZE;
14321 tg3_flag_set(tp, NVRAM_BUFFERED);
14322 break;
14323 case FLASH_VENDOR_ATMEL_FLASH_UNBUFFERED:
14324 tp->nvram_jedecnum = JEDEC_ATMEL;
14325 tp->nvram_pagesize = ATMEL_AT25F512_PAGE_SIZE;
14326 break;
14327 case FLASH_VENDOR_ATMEL_EEPROM:
14328 tp->nvram_jedecnum = JEDEC_ATMEL;
14329 tp->nvram_pagesize = ATMEL_AT24C512_CHIP_SIZE;
14330 tg3_flag_set(tp, NVRAM_BUFFERED);
14331 break;
14332 case FLASH_VENDOR_ST:
14333 tp->nvram_jedecnum = JEDEC_ST;
14334 tp->nvram_pagesize = ST_M45PEX0_PAGE_SIZE;
14335 tg3_flag_set(tp, NVRAM_BUFFERED);
14336 break;
14337 case FLASH_VENDOR_SAIFUN:
14338 tp->nvram_jedecnum = JEDEC_SAIFUN;
14339 tp->nvram_pagesize = SAIFUN_SA25F0XX_PAGE_SIZE;
14340 break;
14341 case FLASH_VENDOR_SST_SMALL:
14342 case FLASH_VENDOR_SST_LARGE:
14343 tp->nvram_jedecnum = JEDEC_SST;
14344 tp->nvram_pagesize = SST_25VF0X0_PAGE_SIZE;
14345 break;
14346 }
14347 } else {
14348 tp->nvram_jedecnum = JEDEC_ATMEL;
14349 tp->nvram_pagesize = ATMEL_AT45DB0X1B_PAGE_SIZE;
14350 tg3_flag_set(tp, NVRAM_BUFFERED);
14351 }
14352 }
14353
14354 static void tg3_nvram_get_pagesize(struct tg3 *tp, u32 nvmcfg1)
14355 {
14356 switch (nvmcfg1 & NVRAM_CFG1_5752PAGE_SIZE_MASK) {
14357 case FLASH_5752PAGE_SIZE_256:
14358 tp->nvram_pagesize = 256;
14359 break;
14360 case FLASH_5752PAGE_SIZE_512:
14361 tp->nvram_pagesize = 512;
14362 break;
14363 case FLASH_5752PAGE_SIZE_1K:
14364 tp->nvram_pagesize = 1024;
14365 break;
14366 case FLASH_5752PAGE_SIZE_2K:
14367 tp->nvram_pagesize = 2048;
14368 break;
14369 case FLASH_5752PAGE_SIZE_4K:
14370 tp->nvram_pagesize = 4096;
14371 break;
14372 case FLASH_5752PAGE_SIZE_264:
14373 tp->nvram_pagesize = 264;
14374 break;
14375 case FLASH_5752PAGE_SIZE_528:
14376 tp->nvram_pagesize = 528;
14377 break;
14378 }
14379 }
14380
14381 static void tg3_get_5752_nvram_info(struct tg3 *tp)
14382 {
14383 u32 nvcfg1;
14384
14385 nvcfg1 = tr32(NVRAM_CFG1);
14386
14387 /* NVRAM protection for TPM */
14388 if (nvcfg1 & (1 << 27))
14389 tg3_flag_set(tp, PROTECTED_NVRAM);
14390
14391 switch (nvcfg1 & NVRAM_CFG1_5752VENDOR_MASK) {
14392 case FLASH_5752VENDOR_ATMEL_EEPROM_64KHZ:
14393 case FLASH_5752VENDOR_ATMEL_EEPROM_376KHZ:
14394 tp->nvram_jedecnum = JEDEC_ATMEL;
14395 tg3_flag_set(tp, NVRAM_BUFFERED);
14396 break;
14397 case FLASH_5752VENDOR_ATMEL_FLASH_BUFFERED:
14398 tp->nvram_jedecnum = JEDEC_ATMEL;
14399 tg3_flag_set(tp, NVRAM_BUFFERED);
14400 tg3_flag_set(tp, FLASH);
14401 break;
14402 case FLASH_5752VENDOR_ST_M45PE10:
14403 case FLASH_5752VENDOR_ST_M45PE20:
14404 case FLASH_5752VENDOR_ST_M45PE40:
14405 tp->nvram_jedecnum = JEDEC_ST;
14406 tg3_flag_set(tp, NVRAM_BUFFERED);
14407 tg3_flag_set(tp, FLASH);
14408 break;
14409 }
14410
14411 if (tg3_flag(tp, FLASH)) {
14412 tg3_nvram_get_pagesize(tp, nvcfg1);
14413 } else {
14414 /* For eeprom, set pagesize to maximum eeprom size */
14415 tp->nvram_pagesize = ATMEL_AT24C512_CHIP_SIZE;
14416
14417 nvcfg1 &= ~NVRAM_CFG1_COMPAT_BYPASS;
14418 tw32(NVRAM_CFG1, nvcfg1);
14419 }
14420 }
14421
14422 static void tg3_get_5755_nvram_info(struct tg3 *tp)
14423 {
14424 u32 nvcfg1, protect = 0;
14425
14426 nvcfg1 = tr32(NVRAM_CFG1);
14427
14428 /* NVRAM protection for TPM */
14429 if (nvcfg1 & (1 << 27)) {
14430 tg3_flag_set(tp, PROTECTED_NVRAM);
14431 protect = 1;
14432 }
14433
14434 nvcfg1 &= NVRAM_CFG1_5752VENDOR_MASK;
14435 switch (nvcfg1) {
14436 case FLASH_5755VENDOR_ATMEL_FLASH_1:
14437 case FLASH_5755VENDOR_ATMEL_FLASH_2:
14438 case FLASH_5755VENDOR_ATMEL_FLASH_3:
14439 case FLASH_5755VENDOR_ATMEL_FLASH_5:
14440 tp->nvram_jedecnum = JEDEC_ATMEL;
14441 tg3_flag_set(tp, NVRAM_BUFFERED);
14442 tg3_flag_set(tp, FLASH);
14443 tp->nvram_pagesize = 264;
14444 if (nvcfg1 == FLASH_5755VENDOR_ATMEL_FLASH_1 ||
14445 nvcfg1 == FLASH_5755VENDOR_ATMEL_FLASH_5)
14446 tp->nvram_size = (protect ? 0x3e200 :
14447 TG3_NVRAM_SIZE_512KB);
14448 else if (nvcfg1 == FLASH_5755VENDOR_ATMEL_FLASH_2)
14449 tp->nvram_size = (protect ? 0x1f200 :
14450 TG3_NVRAM_SIZE_256KB);
14451 else
14452 tp->nvram_size = (protect ? 0x1f200 :
14453 TG3_NVRAM_SIZE_128KB);
14454 break;
14455 case FLASH_5752VENDOR_ST_M45PE10:
14456 case FLASH_5752VENDOR_ST_M45PE20:
14457 case FLASH_5752VENDOR_ST_M45PE40:
14458 tp->nvram_jedecnum = JEDEC_ST;
14459 tg3_flag_set(tp, NVRAM_BUFFERED);
14460 tg3_flag_set(tp, FLASH);
14461 tp->nvram_pagesize = 256;
14462 if (nvcfg1 == FLASH_5752VENDOR_ST_M45PE10)
14463 tp->nvram_size = (protect ?
14464 TG3_NVRAM_SIZE_64KB :
14465 TG3_NVRAM_SIZE_128KB);
14466 else if (nvcfg1 == FLASH_5752VENDOR_ST_M45PE20)
14467 tp->nvram_size = (protect ?
14468 TG3_NVRAM_SIZE_64KB :
14469 TG3_NVRAM_SIZE_256KB);
14470 else
14471 tp->nvram_size = (protect ?
14472 TG3_NVRAM_SIZE_128KB :
14473 TG3_NVRAM_SIZE_512KB);
14474 break;
14475 }
14476 }
14477
14478 static void tg3_get_5787_nvram_info(struct tg3 *tp)
14479 {
14480 u32 nvcfg1;
14481
14482 nvcfg1 = tr32(NVRAM_CFG1);
14483
14484 switch (nvcfg1 & NVRAM_CFG1_5752VENDOR_MASK) {
14485 case FLASH_5787VENDOR_ATMEL_EEPROM_64KHZ:
14486 case FLASH_5787VENDOR_ATMEL_EEPROM_376KHZ:
14487 case FLASH_5787VENDOR_MICRO_EEPROM_64KHZ:
14488 case FLASH_5787VENDOR_MICRO_EEPROM_376KHZ:
14489 tp->nvram_jedecnum = JEDEC_ATMEL;
14490 tg3_flag_set(tp, NVRAM_BUFFERED);
14491 tp->nvram_pagesize = ATMEL_AT24C512_CHIP_SIZE;
14492
14493 nvcfg1 &= ~NVRAM_CFG1_COMPAT_BYPASS;
14494 tw32(NVRAM_CFG1, nvcfg1);
14495 break;
14496 case FLASH_5752VENDOR_ATMEL_FLASH_BUFFERED:
14497 case FLASH_5755VENDOR_ATMEL_FLASH_1:
14498 case FLASH_5755VENDOR_ATMEL_FLASH_2:
14499 case FLASH_5755VENDOR_ATMEL_FLASH_3:
14500 tp->nvram_jedecnum = JEDEC_ATMEL;
14501 tg3_flag_set(tp, NVRAM_BUFFERED);
14502 tg3_flag_set(tp, FLASH);
14503 tp->nvram_pagesize = 264;
14504 break;
14505 case FLASH_5752VENDOR_ST_M45PE10:
14506 case FLASH_5752VENDOR_ST_M45PE20:
14507 case FLASH_5752VENDOR_ST_M45PE40:
14508 tp->nvram_jedecnum = JEDEC_ST;
14509 tg3_flag_set(tp, NVRAM_BUFFERED);
14510 tg3_flag_set(tp, FLASH);
14511 tp->nvram_pagesize = 256;
14512 break;
14513 }
14514 }
14515
14516 static void tg3_get_5761_nvram_info(struct tg3 *tp)
14517 {
14518 u32 nvcfg1, protect = 0;
14519
14520 nvcfg1 = tr32(NVRAM_CFG1);
14521
14522 /* NVRAM protection for TPM */
14523 if (nvcfg1 & (1 << 27)) {
14524 tg3_flag_set(tp, PROTECTED_NVRAM);
14525 protect = 1;
14526 }
14527
14528 nvcfg1 &= NVRAM_CFG1_5752VENDOR_MASK;
14529 switch (nvcfg1) {
14530 case FLASH_5761VENDOR_ATMEL_ADB021D:
14531 case FLASH_5761VENDOR_ATMEL_ADB041D:
14532 case FLASH_5761VENDOR_ATMEL_ADB081D:
14533 case FLASH_5761VENDOR_ATMEL_ADB161D:
14534 case FLASH_5761VENDOR_ATMEL_MDB021D:
14535 case FLASH_5761VENDOR_ATMEL_MDB041D:
14536 case FLASH_5761VENDOR_ATMEL_MDB081D:
14537 case FLASH_5761VENDOR_ATMEL_MDB161D:
14538 tp->nvram_jedecnum = JEDEC_ATMEL;
14539 tg3_flag_set(tp, NVRAM_BUFFERED);
14540 tg3_flag_set(tp, FLASH);
14541 tg3_flag_set(tp, NO_NVRAM_ADDR_TRANS);
14542 tp->nvram_pagesize = 256;
14543 break;
14544 case FLASH_5761VENDOR_ST_A_M45PE20:
14545 case FLASH_5761VENDOR_ST_A_M45PE40:
14546 case FLASH_5761VENDOR_ST_A_M45PE80:
14547 case FLASH_5761VENDOR_ST_A_M45PE16:
14548 case FLASH_5761VENDOR_ST_M_M45PE20:
14549 case FLASH_5761VENDOR_ST_M_M45PE40:
14550 case FLASH_5761VENDOR_ST_M_M45PE80:
14551 case FLASH_5761VENDOR_ST_M_M45PE16:
14552 tp->nvram_jedecnum = JEDEC_ST;
14553 tg3_flag_set(tp, NVRAM_BUFFERED);
14554 tg3_flag_set(tp, FLASH);
14555 tp->nvram_pagesize = 256;
14556 break;
14557 }
14558
14559 if (protect) {
14560 tp->nvram_size = tr32(NVRAM_ADDR_LOCKOUT);
14561 } else {
14562 switch (nvcfg1) {
14563 case FLASH_5761VENDOR_ATMEL_ADB161D:
14564 case FLASH_5761VENDOR_ATMEL_MDB161D:
14565 case FLASH_5761VENDOR_ST_A_M45PE16:
14566 case FLASH_5761VENDOR_ST_M_M45PE16:
14567 tp->nvram_size = TG3_NVRAM_SIZE_2MB;
14568 break;
14569 case FLASH_5761VENDOR_ATMEL_ADB081D:
14570 case FLASH_5761VENDOR_ATMEL_MDB081D:
14571 case FLASH_5761VENDOR_ST_A_M45PE80:
14572 case FLASH_5761VENDOR_ST_M_M45PE80:
14573 tp->nvram_size = TG3_NVRAM_SIZE_1MB;
14574 break;
14575 case FLASH_5761VENDOR_ATMEL_ADB041D:
14576 case FLASH_5761VENDOR_ATMEL_MDB041D:
14577 case FLASH_5761VENDOR_ST_A_M45PE40:
14578 case FLASH_5761VENDOR_ST_M_M45PE40:
14579 tp->nvram_size = TG3_NVRAM_SIZE_512KB;
14580 break;
14581 case FLASH_5761VENDOR_ATMEL_ADB021D:
14582 case FLASH_5761VENDOR_ATMEL_MDB021D:
14583 case FLASH_5761VENDOR_ST_A_M45PE20:
14584 case FLASH_5761VENDOR_ST_M_M45PE20:
14585 tp->nvram_size = TG3_NVRAM_SIZE_256KB;
14586 break;
14587 }
14588 }
14589 }
14590
14591 static void tg3_get_5906_nvram_info(struct tg3 *tp)
14592 {
14593 tp->nvram_jedecnum = JEDEC_ATMEL;
14594 tg3_flag_set(tp, NVRAM_BUFFERED);
14595 tp->nvram_pagesize = ATMEL_AT24C512_CHIP_SIZE;
14596 }
14597
14598 static void tg3_get_57780_nvram_info(struct tg3 *tp)
14599 {
14600 u32 nvcfg1;
14601
14602 nvcfg1 = tr32(NVRAM_CFG1);
14603
14604 switch (nvcfg1 & NVRAM_CFG1_5752VENDOR_MASK) {
14605 case FLASH_5787VENDOR_ATMEL_EEPROM_376KHZ:
14606 case FLASH_5787VENDOR_MICRO_EEPROM_376KHZ:
14607 tp->nvram_jedecnum = JEDEC_ATMEL;
14608 tg3_flag_set(tp, NVRAM_BUFFERED);
14609 tp->nvram_pagesize = ATMEL_AT24C512_CHIP_SIZE;
14610
14611 nvcfg1 &= ~NVRAM_CFG1_COMPAT_BYPASS;
14612 tw32(NVRAM_CFG1, nvcfg1);
14613 return;
14614 case FLASH_5752VENDOR_ATMEL_FLASH_BUFFERED:
14615 case FLASH_57780VENDOR_ATMEL_AT45DB011D:
14616 case FLASH_57780VENDOR_ATMEL_AT45DB011B:
14617 case FLASH_57780VENDOR_ATMEL_AT45DB021D:
14618 case FLASH_57780VENDOR_ATMEL_AT45DB021B:
14619 case FLASH_57780VENDOR_ATMEL_AT45DB041D:
14620 case FLASH_57780VENDOR_ATMEL_AT45DB041B:
14621 tp->nvram_jedecnum = JEDEC_ATMEL;
14622 tg3_flag_set(tp, NVRAM_BUFFERED);
14623 tg3_flag_set(tp, FLASH);
14624
14625 switch (nvcfg1 & NVRAM_CFG1_5752VENDOR_MASK) {
14626 case FLASH_5752VENDOR_ATMEL_FLASH_BUFFERED:
14627 case FLASH_57780VENDOR_ATMEL_AT45DB011D:
14628 case FLASH_57780VENDOR_ATMEL_AT45DB011B:
14629 tp->nvram_size = TG3_NVRAM_SIZE_128KB;
14630 break;
14631 case FLASH_57780VENDOR_ATMEL_AT45DB021D:
14632 case FLASH_57780VENDOR_ATMEL_AT45DB021B:
14633 tp->nvram_size = TG3_NVRAM_SIZE_256KB;
14634 break;
14635 case FLASH_57780VENDOR_ATMEL_AT45DB041D:
14636 case FLASH_57780VENDOR_ATMEL_AT45DB041B:
14637 tp->nvram_size = TG3_NVRAM_SIZE_512KB;
14638 break;
14639 }
14640 break;
14641 case FLASH_5752VENDOR_ST_M45PE10:
14642 case FLASH_5752VENDOR_ST_M45PE20:
14643 case FLASH_5752VENDOR_ST_M45PE40:
14644 tp->nvram_jedecnum = JEDEC_ST;
14645 tg3_flag_set(tp, NVRAM_BUFFERED);
14646 tg3_flag_set(tp, FLASH);
14647
14648 switch (nvcfg1 & NVRAM_CFG1_5752VENDOR_MASK) {
14649 case FLASH_5752VENDOR_ST_M45PE10:
14650 tp->nvram_size = TG3_NVRAM_SIZE_128KB;
14651 break;
14652 case FLASH_5752VENDOR_ST_M45PE20:
14653 tp->nvram_size = TG3_NVRAM_SIZE_256KB;
14654 break;
14655 case FLASH_5752VENDOR_ST_M45PE40:
14656 tp->nvram_size = TG3_NVRAM_SIZE_512KB;
14657 break;
14658 }
14659 break;
14660 default:
14661 tg3_flag_set(tp, NO_NVRAM);
14662 return;
14663 }
14664
14665 tg3_nvram_get_pagesize(tp, nvcfg1);
14666 if (tp->nvram_pagesize != 264 && tp->nvram_pagesize != 528)
14667 tg3_flag_set(tp, NO_NVRAM_ADDR_TRANS);
14668 }
14669
14670
14671 static void tg3_get_5717_nvram_info(struct tg3 *tp)
14672 {
14673 u32 nvcfg1;
14674
14675 nvcfg1 = tr32(NVRAM_CFG1);
14676
14677 switch (nvcfg1 & NVRAM_CFG1_5752VENDOR_MASK) {
14678 case FLASH_5717VENDOR_ATMEL_EEPROM:
14679 case FLASH_5717VENDOR_MICRO_EEPROM:
14680 tp->nvram_jedecnum = JEDEC_ATMEL;
14681 tg3_flag_set(tp, NVRAM_BUFFERED);
14682 tp->nvram_pagesize = ATMEL_AT24C512_CHIP_SIZE;
14683
14684 nvcfg1 &= ~NVRAM_CFG1_COMPAT_BYPASS;
14685 tw32(NVRAM_CFG1, nvcfg1);
14686 return;
14687 case FLASH_5717VENDOR_ATMEL_MDB011D:
14688 case FLASH_5717VENDOR_ATMEL_ADB011B:
14689 case FLASH_5717VENDOR_ATMEL_ADB011D:
14690 case FLASH_5717VENDOR_ATMEL_MDB021D:
14691 case FLASH_5717VENDOR_ATMEL_ADB021B:
14692 case FLASH_5717VENDOR_ATMEL_ADB021D:
14693 case FLASH_5717VENDOR_ATMEL_45USPT:
14694 tp->nvram_jedecnum = JEDEC_ATMEL;
14695 tg3_flag_set(tp, NVRAM_BUFFERED);
14696 tg3_flag_set(tp, FLASH);
14697
14698 switch (nvcfg1 & NVRAM_CFG1_5752VENDOR_MASK) {
14699 case FLASH_5717VENDOR_ATMEL_MDB021D:
14700 /* Detect size with tg3_nvram_get_size() */
14701 break;
14702 case FLASH_5717VENDOR_ATMEL_ADB021B:
14703 case FLASH_5717VENDOR_ATMEL_ADB021D:
14704 tp->nvram_size = TG3_NVRAM_SIZE_256KB;
14705 break;
14706 default:
14707 tp->nvram_size = TG3_NVRAM_SIZE_128KB;
14708 break;
14709 }
14710 break;
14711 case FLASH_5717VENDOR_ST_M_M25PE10:
14712 case FLASH_5717VENDOR_ST_A_M25PE10:
14713 case FLASH_5717VENDOR_ST_M_M45PE10:
14714 case FLASH_5717VENDOR_ST_A_M45PE10:
14715 case FLASH_5717VENDOR_ST_M_M25PE20:
14716 case FLASH_5717VENDOR_ST_A_M25PE20:
14717 case FLASH_5717VENDOR_ST_M_M45PE20:
14718 case FLASH_5717VENDOR_ST_A_M45PE20:
14719 case FLASH_5717VENDOR_ST_25USPT:
14720 case FLASH_5717VENDOR_ST_45USPT:
14721 tp->nvram_jedecnum = JEDEC_ST;
14722 tg3_flag_set(tp, NVRAM_BUFFERED);
14723 tg3_flag_set(tp, FLASH);
14724
14725 switch (nvcfg1 & NVRAM_CFG1_5752VENDOR_MASK) {
14726 case FLASH_5717VENDOR_ST_M_M25PE20:
14727 case FLASH_5717VENDOR_ST_M_M45PE20:
14728 /* Detect size with tg3_nvram_get_size() */
14729 break;
14730 case FLASH_5717VENDOR_ST_A_M25PE20:
14731 case FLASH_5717VENDOR_ST_A_M45PE20:
14732 tp->nvram_size = TG3_NVRAM_SIZE_256KB;
14733 break;
14734 default:
14735 tp->nvram_size = TG3_NVRAM_SIZE_128KB;
14736 break;
14737 }
14738 break;
14739 default:
14740 tg3_flag_set(tp, NO_NVRAM);
14741 return;
14742 }
14743
14744 tg3_nvram_get_pagesize(tp, nvcfg1);
14745 if (tp->nvram_pagesize != 264 && tp->nvram_pagesize != 528)
14746 tg3_flag_set(tp, NO_NVRAM_ADDR_TRANS);
14747 }
14748
14749 static void tg3_get_5720_nvram_info(struct tg3 *tp)
14750 {
14751 u32 nvcfg1, nvmpinstrp;
14752
14753 nvcfg1 = tr32(NVRAM_CFG1);
14754 nvmpinstrp = nvcfg1 & NVRAM_CFG1_5752VENDOR_MASK;
14755
14756 if (tg3_asic_rev(tp) == ASIC_REV_5762) {
14757 if (!(nvcfg1 & NVRAM_CFG1_5762VENDOR_MASK)) {
14758 tg3_flag_set(tp, NO_NVRAM);
14759 return;
14760 }
14761
14762 switch (nvmpinstrp) {
14763 case FLASH_5762_EEPROM_HD:
14764 nvmpinstrp = FLASH_5720_EEPROM_HD;
14765 break;
14766 case FLASH_5762_EEPROM_LD:
14767 nvmpinstrp = FLASH_5720_EEPROM_LD;
14768 break;
14769 case FLASH_5720VENDOR_M_ST_M45PE20:
14770 /* This pinstrap supports multiple sizes, so force it
14771 * to read the actual size from location 0xf0.
14772 */
14773 nvmpinstrp = FLASH_5720VENDOR_ST_45USPT;
14774 break;
14775 }
14776 }
14777
14778 switch (nvmpinstrp) {
14779 case FLASH_5720_EEPROM_HD:
14780 case FLASH_5720_EEPROM_LD:
14781 tp->nvram_jedecnum = JEDEC_ATMEL;
14782 tg3_flag_set(tp, NVRAM_BUFFERED);
14783
14784 nvcfg1 &= ~NVRAM_CFG1_COMPAT_BYPASS;
14785 tw32(NVRAM_CFG1, nvcfg1);
14786 if (nvmpinstrp == FLASH_5720_EEPROM_HD)
14787 tp->nvram_pagesize = ATMEL_AT24C512_CHIP_SIZE;
14788 else
14789 tp->nvram_pagesize = ATMEL_AT24C02_CHIP_SIZE;
14790 return;
14791 case FLASH_5720VENDOR_M_ATMEL_DB011D:
14792 case FLASH_5720VENDOR_A_ATMEL_DB011B:
14793 case FLASH_5720VENDOR_A_ATMEL_DB011D:
14794 case FLASH_5720VENDOR_M_ATMEL_DB021D:
14795 case FLASH_5720VENDOR_A_ATMEL_DB021B:
14796 case FLASH_5720VENDOR_A_ATMEL_DB021D:
14797 case FLASH_5720VENDOR_M_ATMEL_DB041D:
14798 case FLASH_5720VENDOR_A_ATMEL_DB041B:
14799 case FLASH_5720VENDOR_A_ATMEL_DB041D:
14800 case FLASH_5720VENDOR_M_ATMEL_DB081D:
14801 case FLASH_5720VENDOR_A_ATMEL_DB081D:
14802 case FLASH_5720VENDOR_ATMEL_45USPT:
14803 tp->nvram_jedecnum = JEDEC_ATMEL;
14804 tg3_flag_set(tp, NVRAM_BUFFERED);
14805 tg3_flag_set(tp, FLASH);
14806
14807 switch (nvmpinstrp) {
14808 case FLASH_5720VENDOR_M_ATMEL_DB021D:
14809 case FLASH_5720VENDOR_A_ATMEL_DB021B:
14810 case FLASH_5720VENDOR_A_ATMEL_DB021D:
14811 tp->nvram_size = TG3_NVRAM_SIZE_256KB;
14812 break;
14813 case FLASH_5720VENDOR_M_ATMEL_DB041D:
14814 case FLASH_5720VENDOR_A_ATMEL_DB041B:
14815 case FLASH_5720VENDOR_A_ATMEL_DB041D:
14816 tp->nvram_size = TG3_NVRAM_SIZE_512KB;
14817 break;
14818 case FLASH_5720VENDOR_M_ATMEL_DB081D:
14819 case FLASH_5720VENDOR_A_ATMEL_DB081D:
14820 tp->nvram_size = TG3_NVRAM_SIZE_1MB;
14821 break;
14822 default:
14823 if (tg3_asic_rev(tp) != ASIC_REV_5762)
14824 tp->nvram_size = TG3_NVRAM_SIZE_128KB;
14825 break;
14826 }
14827 break;
14828 case FLASH_5720VENDOR_M_ST_M25PE10:
14829 case FLASH_5720VENDOR_M_ST_M45PE10:
14830 case FLASH_5720VENDOR_A_ST_M25PE10:
14831 case FLASH_5720VENDOR_A_ST_M45PE10:
14832 case FLASH_5720VENDOR_M_ST_M25PE20:
14833 case FLASH_5720VENDOR_M_ST_M45PE20:
14834 case FLASH_5720VENDOR_A_ST_M25PE20:
14835 case FLASH_5720VENDOR_A_ST_M45PE20:
14836 case FLASH_5720VENDOR_M_ST_M25PE40:
14837 case FLASH_5720VENDOR_M_ST_M45PE40:
14838 case FLASH_5720VENDOR_A_ST_M25PE40:
14839 case FLASH_5720VENDOR_A_ST_M45PE40:
14840 case FLASH_5720VENDOR_M_ST_M25PE80:
14841 case FLASH_5720VENDOR_M_ST_M45PE80:
14842 case FLASH_5720VENDOR_A_ST_M25PE80:
14843 case FLASH_5720VENDOR_A_ST_M45PE80:
14844 case FLASH_5720VENDOR_ST_25USPT:
14845 case FLASH_5720VENDOR_ST_45USPT:
14846 tp->nvram_jedecnum = JEDEC_ST;
14847 tg3_flag_set(tp, NVRAM_BUFFERED);
14848 tg3_flag_set(tp, FLASH);
14849
14850 switch (nvmpinstrp) {
14851 case FLASH_5720VENDOR_M_ST_M25PE20:
14852 case FLASH_5720VENDOR_M_ST_M45PE20:
14853 case FLASH_5720VENDOR_A_ST_M25PE20:
14854 case FLASH_5720VENDOR_A_ST_M45PE20:
14855 tp->nvram_size = TG3_NVRAM_SIZE_256KB;
14856 break;
14857 case FLASH_5720VENDOR_M_ST_M25PE40:
14858 case FLASH_5720VENDOR_M_ST_M45PE40:
14859 case FLASH_5720VENDOR_A_ST_M25PE40:
14860 case FLASH_5720VENDOR_A_ST_M45PE40:
14861 tp->nvram_size = TG3_NVRAM_SIZE_512KB;
14862 break;
14863 case FLASH_5720VENDOR_M_ST_M25PE80:
14864 case FLASH_5720VENDOR_M_ST_M45PE80:
14865 case FLASH_5720VENDOR_A_ST_M25PE80:
14866 case FLASH_5720VENDOR_A_ST_M45PE80:
14867 tp->nvram_size = TG3_NVRAM_SIZE_1MB;
14868 break;
14869 default:
14870 if (tg3_asic_rev(tp) != ASIC_REV_5762)
14871 tp->nvram_size = TG3_NVRAM_SIZE_128KB;
14872 break;
14873 }
14874 break;
14875 default:
14876 tg3_flag_set(tp, NO_NVRAM);
14877 return;
14878 }
14879
14880 tg3_nvram_get_pagesize(tp, nvcfg1);
14881 if (tp->nvram_pagesize != 264 && tp->nvram_pagesize != 528)
14882 tg3_flag_set(tp, NO_NVRAM_ADDR_TRANS);
14883
14884 if (tg3_asic_rev(tp) == ASIC_REV_5762) {
14885 u32 val;
14886
14887 if (tg3_nvram_read(tp, 0, &val))
14888 return;
14889
14890 if (val != TG3_EEPROM_MAGIC &&
14891 (val & TG3_EEPROM_MAGIC_FW_MSK) != TG3_EEPROM_MAGIC_FW)
14892 tg3_flag_set(tp, NO_NVRAM);
14893 }
14894 }
14895
14896 /* Chips other than 5700/5701 use the NVRAM for fetching info. */
14897 static void tg3_nvram_init(struct tg3 *tp)
14898 {
14899 if (tg3_flag(tp, IS_SSB_CORE)) {
14900 /* No NVRAM and EEPROM on the SSB Broadcom GigE core. */
14901 tg3_flag_clear(tp, NVRAM);
14902 tg3_flag_clear(tp, NVRAM_BUFFERED);
14903 tg3_flag_set(tp, NO_NVRAM);
14904 return;
14905 }
14906
14907 tw32_f(GRC_EEPROM_ADDR,
14908 (EEPROM_ADDR_FSM_RESET |
14909 (EEPROM_DEFAULT_CLOCK_PERIOD <<
14910 EEPROM_ADDR_CLKPERD_SHIFT)));
14911
14912 msleep(1);
14913
14914 /* Enable seeprom accesses. */
14915 tw32_f(GRC_LOCAL_CTRL,
14916 tr32(GRC_LOCAL_CTRL) | GRC_LCLCTRL_AUTO_SEEPROM);
14917 udelay(100);
14918
14919 if (tg3_asic_rev(tp) != ASIC_REV_5700 &&
14920 tg3_asic_rev(tp) != ASIC_REV_5701) {
14921 tg3_flag_set(tp, NVRAM);
14922
14923 if (tg3_nvram_lock(tp)) {
14924 netdev_warn(tp->dev,
14925 "Cannot get nvram lock, %s failed\n",
14926 __func__);
14927 return;
14928 }
14929 tg3_enable_nvram_access(tp);
14930
14931 tp->nvram_size = 0;
14932
14933 if (tg3_asic_rev(tp) == ASIC_REV_5752)
14934 tg3_get_5752_nvram_info(tp);
14935 else if (tg3_asic_rev(tp) == ASIC_REV_5755)
14936 tg3_get_5755_nvram_info(tp);
14937 else if (tg3_asic_rev(tp) == ASIC_REV_5787 ||
14938 tg3_asic_rev(tp) == ASIC_REV_5784 ||
14939 tg3_asic_rev(tp) == ASIC_REV_5785)
14940 tg3_get_5787_nvram_info(tp);
14941 else if (tg3_asic_rev(tp) == ASIC_REV_5761)
14942 tg3_get_5761_nvram_info(tp);
14943 else if (tg3_asic_rev(tp) == ASIC_REV_5906)
14944 tg3_get_5906_nvram_info(tp);
14945 else if (tg3_asic_rev(tp) == ASIC_REV_57780 ||
14946 tg3_flag(tp, 57765_CLASS))
14947 tg3_get_57780_nvram_info(tp);
14948 else if (tg3_asic_rev(tp) == ASIC_REV_5717 ||
14949 tg3_asic_rev(tp) == ASIC_REV_5719)
14950 tg3_get_5717_nvram_info(tp);
14951 else if (tg3_asic_rev(tp) == ASIC_REV_5720 ||
14952 tg3_asic_rev(tp) == ASIC_REV_5762)
14953 tg3_get_5720_nvram_info(tp);
14954 else
14955 tg3_get_nvram_info(tp);
14956
14957 if (tp->nvram_size == 0)
14958 tg3_get_nvram_size(tp);
14959
14960 tg3_disable_nvram_access(tp);
14961 tg3_nvram_unlock(tp);
14962
14963 } else {
14964 tg3_flag_clear(tp, NVRAM);
14965 tg3_flag_clear(tp, NVRAM_BUFFERED);
14966
14967 tg3_get_eeprom_size(tp);
14968 }
14969 }
14970
14971 struct subsys_tbl_ent {
14972 u16 subsys_vendor, subsys_devid;
14973 u32 phy_id;
14974 };
14975
14976 static struct subsys_tbl_ent subsys_id_to_phy_id[] = {
14977 /* Broadcom boards. */
14978 { TG3PCI_SUBVENDOR_ID_BROADCOM,
14979 TG3PCI_SUBDEVICE_ID_BROADCOM_95700A6, TG3_PHY_ID_BCM5401 },
14980 { TG3PCI_SUBVENDOR_ID_BROADCOM,
14981 TG3PCI_SUBDEVICE_ID_BROADCOM_95701A5, TG3_PHY_ID_BCM5701 },
14982 { TG3PCI_SUBVENDOR_ID_BROADCOM,
14983 TG3PCI_SUBDEVICE_ID_BROADCOM_95700T6, TG3_PHY_ID_BCM8002 },
14984 { TG3PCI_SUBVENDOR_ID_BROADCOM,
14985 TG3PCI_SUBDEVICE_ID_BROADCOM_95700A9, 0 },
14986 { TG3PCI_SUBVENDOR_ID_BROADCOM,
14987 TG3PCI_SUBDEVICE_ID_BROADCOM_95701T1, TG3_PHY_ID_BCM5701 },
14988 { TG3PCI_SUBVENDOR_ID_BROADCOM,
14989 TG3PCI_SUBDEVICE_ID_BROADCOM_95701T8, TG3_PHY_ID_BCM5701 },
14990 { TG3PCI_SUBVENDOR_ID_BROADCOM,
14991 TG3PCI_SUBDEVICE_ID_BROADCOM_95701A7, 0 },
14992 { TG3PCI_SUBVENDOR_ID_BROADCOM,
14993 TG3PCI_SUBDEVICE_ID_BROADCOM_95701A10, TG3_PHY_ID_BCM5701 },
14994 { TG3PCI_SUBVENDOR_ID_BROADCOM,
14995 TG3PCI_SUBDEVICE_ID_BROADCOM_95701A12, TG3_PHY_ID_BCM5701 },
14996 { TG3PCI_SUBVENDOR_ID_BROADCOM,
14997 TG3PCI_SUBDEVICE_ID_BROADCOM_95703AX1, TG3_PHY_ID_BCM5703 },
14998 { TG3PCI_SUBVENDOR_ID_BROADCOM,
14999 TG3PCI_SUBDEVICE_ID_BROADCOM_95703AX2, TG3_PHY_ID_BCM5703 },
15000
15001 /* 3com boards. */
15002 { TG3PCI_SUBVENDOR_ID_3COM,
15003 TG3PCI_SUBDEVICE_ID_3COM_3C996T, TG3_PHY_ID_BCM5401 },
15004 { TG3PCI_SUBVENDOR_ID_3COM,
15005 TG3PCI_SUBDEVICE_ID_3COM_3C996BT, TG3_PHY_ID_BCM5701 },
15006 { TG3PCI_SUBVENDOR_ID_3COM,
15007 TG3PCI_SUBDEVICE_ID_3COM_3C996SX, 0 },
15008 { TG3PCI_SUBVENDOR_ID_3COM,
15009 TG3PCI_SUBDEVICE_ID_3COM_3C1000T, TG3_PHY_ID_BCM5701 },
15010 { TG3PCI_SUBVENDOR_ID_3COM,
15011 TG3PCI_SUBDEVICE_ID_3COM_3C940BR01, TG3_PHY_ID_BCM5701 },
15012
15013 /* DELL boards. */
15014 { TG3PCI_SUBVENDOR_ID_DELL,
15015 TG3PCI_SUBDEVICE_ID_DELL_VIPER, TG3_PHY_ID_BCM5401 },
15016 { TG3PCI_SUBVENDOR_ID_DELL,
15017 TG3PCI_SUBDEVICE_ID_DELL_JAGUAR, TG3_PHY_ID_BCM5401 },
15018 { TG3PCI_SUBVENDOR_ID_DELL,
15019 TG3PCI_SUBDEVICE_ID_DELL_MERLOT, TG3_PHY_ID_BCM5411 },
15020 { TG3PCI_SUBVENDOR_ID_DELL,
15021 TG3PCI_SUBDEVICE_ID_DELL_SLIM_MERLOT, TG3_PHY_ID_BCM5411 },
15022
15023 /* Compaq boards. */
15024 { TG3PCI_SUBVENDOR_ID_COMPAQ,
15025 TG3PCI_SUBDEVICE_ID_COMPAQ_BANSHEE, TG3_PHY_ID_BCM5701 },
15026 { TG3PCI_SUBVENDOR_ID_COMPAQ,
15027 TG3PCI_SUBDEVICE_ID_COMPAQ_BANSHEE_2, TG3_PHY_ID_BCM5701 },
15028 { TG3PCI_SUBVENDOR_ID_COMPAQ,
15029 TG3PCI_SUBDEVICE_ID_COMPAQ_CHANGELING, 0 },
15030 { TG3PCI_SUBVENDOR_ID_COMPAQ,
15031 TG3PCI_SUBDEVICE_ID_COMPAQ_NC7780, TG3_PHY_ID_BCM5701 },
15032 { TG3PCI_SUBVENDOR_ID_COMPAQ,
15033 TG3PCI_SUBDEVICE_ID_COMPAQ_NC7780_2, TG3_PHY_ID_BCM5701 },
15034
15035 /* IBM boards. */
15036 { TG3PCI_SUBVENDOR_ID_IBM,
15037 TG3PCI_SUBDEVICE_ID_IBM_5703SAX2, 0 }
15038 };
15039
15040 static struct subsys_tbl_ent *tg3_lookup_by_subsys(struct tg3 *tp)
15041 {
15042 int i;
15043
15044 for (i = 0; i < ARRAY_SIZE(subsys_id_to_phy_id); i++) {
15045 if ((subsys_id_to_phy_id[i].subsys_vendor ==
15046 tp->pdev->subsystem_vendor) &&
15047 (subsys_id_to_phy_id[i].subsys_devid ==
15048 tp->pdev->subsystem_device))
15049 return &subsys_id_to_phy_id[i];
15050 }
15051 return NULL;
15052 }
15053
15054 static void tg3_get_eeprom_hw_cfg(struct tg3 *tp)
15055 {
15056 u32 val;
15057
15058 tp->phy_id = TG3_PHY_ID_INVALID;
15059 tp->led_ctrl = LED_CTRL_MODE_PHY_1;
15060
15061 /* Assume an onboard device and WOL capable by default. */
15062 tg3_flag_set(tp, EEPROM_WRITE_PROT);
15063 tg3_flag_set(tp, WOL_CAP);
15064
15065 if (tg3_asic_rev(tp) == ASIC_REV_5906) {
15066 if (!(tr32(PCIE_TRANSACTION_CFG) & PCIE_TRANS_CFG_LOM)) {
15067 tg3_flag_clear(tp, EEPROM_WRITE_PROT);
15068 tg3_flag_set(tp, IS_NIC);
15069 }
15070 val = tr32(VCPU_CFGSHDW);
15071 if (val & VCPU_CFGSHDW_ASPM_DBNC)
15072 tg3_flag_set(tp, ASPM_WORKAROUND);
15073 if ((val & VCPU_CFGSHDW_WOL_ENABLE) &&
15074 (val & VCPU_CFGSHDW_WOL_MAGPKT)) {
15075 tg3_flag_set(tp, WOL_ENABLE);
15076 device_set_wakeup_enable(&tp->pdev->dev, true);
15077 }
15078 goto done;
15079 }
15080
15081 tg3_read_mem(tp, NIC_SRAM_DATA_SIG, &val);
15082 if (val == NIC_SRAM_DATA_SIG_MAGIC) {
15083 u32 nic_cfg, led_cfg;
15084 u32 cfg2 = 0, cfg4 = 0, cfg5 = 0;
15085 u32 nic_phy_id, ver, eeprom_phy_id;
15086 int eeprom_phy_serdes = 0;
15087
15088 tg3_read_mem(tp, NIC_SRAM_DATA_CFG, &nic_cfg);
15089 tp->nic_sram_data_cfg = nic_cfg;
15090
15091 tg3_read_mem(tp, NIC_SRAM_DATA_VER, &ver);
15092 ver >>= NIC_SRAM_DATA_VER_SHIFT;
15093 if (tg3_asic_rev(tp) != ASIC_REV_5700 &&
15094 tg3_asic_rev(tp) != ASIC_REV_5701 &&
15095 tg3_asic_rev(tp) != ASIC_REV_5703 &&
15096 (ver > 0) && (ver < 0x100))
15097 tg3_read_mem(tp, NIC_SRAM_DATA_CFG_2, &cfg2);
15098
15099 if (tg3_asic_rev(tp) == ASIC_REV_5785)
15100 tg3_read_mem(tp, NIC_SRAM_DATA_CFG_4, &cfg4);
15101
15102 if (tg3_asic_rev(tp) == ASIC_REV_5717 ||
15103 tg3_asic_rev(tp) == ASIC_REV_5719 ||
15104 tg3_asic_rev(tp) == ASIC_REV_5720)
15105 tg3_read_mem(tp, NIC_SRAM_DATA_CFG_5, &cfg5);
15106
15107 if ((nic_cfg & NIC_SRAM_DATA_CFG_PHY_TYPE_MASK) ==
15108 NIC_SRAM_DATA_CFG_PHY_TYPE_FIBER)
15109 eeprom_phy_serdes = 1;
15110
15111 tg3_read_mem(tp, NIC_SRAM_DATA_PHY_ID, &nic_phy_id);
15112 if (nic_phy_id != 0) {
15113 u32 id1 = nic_phy_id & NIC_SRAM_DATA_PHY_ID1_MASK;
15114 u32 id2 = nic_phy_id & NIC_SRAM_DATA_PHY_ID2_MASK;
15115
15116 eeprom_phy_id = (id1 >> 16) << 10;
15117 eeprom_phy_id |= (id2 & 0xfc00) << 16;
15118 eeprom_phy_id |= (id2 & 0x03ff) << 0;
15119 } else
15120 eeprom_phy_id = 0;
15121
15122 tp->phy_id = eeprom_phy_id;
15123 if (eeprom_phy_serdes) {
15124 if (!tg3_flag(tp, 5705_PLUS))
15125 tp->phy_flags |= TG3_PHYFLG_PHY_SERDES;
15126 else
15127 tp->phy_flags |= TG3_PHYFLG_MII_SERDES;
15128 }
15129
15130 if (tg3_flag(tp, 5750_PLUS))
15131 led_cfg = cfg2 & (NIC_SRAM_DATA_CFG_LED_MODE_MASK |
15132 SHASTA_EXT_LED_MODE_MASK);
15133 else
15134 led_cfg = nic_cfg & NIC_SRAM_DATA_CFG_LED_MODE_MASK;
15135
15136 switch (led_cfg) {
15137 default:
15138 case NIC_SRAM_DATA_CFG_LED_MODE_PHY_1:
15139 tp->led_ctrl = LED_CTRL_MODE_PHY_1;
15140 break;
15141
15142 case NIC_SRAM_DATA_CFG_LED_MODE_PHY_2:
15143 tp->led_ctrl = LED_CTRL_MODE_PHY_2;
15144 break;
15145
15146 case NIC_SRAM_DATA_CFG_LED_MODE_MAC:
15147 tp->led_ctrl = LED_CTRL_MODE_MAC;
15148
15149 /* Default to PHY_1_MODE if 0 (MAC_MODE) is
15150 * read on some older 5700/5701 bootcode.
15151 */
15152 if (tg3_asic_rev(tp) == ASIC_REV_5700 ||
15153 tg3_asic_rev(tp) == ASIC_REV_5701)
15154 tp->led_ctrl = LED_CTRL_MODE_PHY_1;
15155
15156 break;
15157
15158 case SHASTA_EXT_LED_SHARED:
15159 tp->led_ctrl = LED_CTRL_MODE_SHARED;
15160 if (tg3_chip_rev_id(tp) != CHIPREV_ID_5750_A0 &&
15161 tg3_chip_rev_id(tp) != CHIPREV_ID_5750_A1)
15162 tp->led_ctrl |= (LED_CTRL_MODE_PHY_1 |
15163 LED_CTRL_MODE_PHY_2);
15164
15165 if (tg3_flag(tp, 5717_PLUS) ||
15166 tg3_asic_rev(tp) == ASIC_REV_5762)
15167 tp->led_ctrl |= LED_CTRL_BLINK_RATE_OVERRIDE |
15168 LED_CTRL_BLINK_RATE_MASK;
15169
15170 break;
15171
15172 case SHASTA_EXT_LED_MAC:
15173 tp->led_ctrl = LED_CTRL_MODE_SHASTA_MAC;
15174 break;
15175
15176 case SHASTA_EXT_LED_COMBO:
15177 tp->led_ctrl = LED_CTRL_MODE_COMBO;
15178 if (tg3_chip_rev_id(tp) != CHIPREV_ID_5750_A0)
15179 tp->led_ctrl |= (LED_CTRL_MODE_PHY_1 |
15180 LED_CTRL_MODE_PHY_2);
15181 break;
15182
15183 }
15184
15185 if ((tg3_asic_rev(tp) == ASIC_REV_5700 ||
15186 tg3_asic_rev(tp) == ASIC_REV_5701) &&
15187 tp->pdev->subsystem_vendor == PCI_VENDOR_ID_DELL)
15188 tp->led_ctrl = LED_CTRL_MODE_PHY_2;
15189
15190 if (tg3_chip_rev(tp) == CHIPREV_5784_AX)
15191 tp->led_ctrl = LED_CTRL_MODE_PHY_1;
15192
15193 if (nic_cfg & NIC_SRAM_DATA_CFG_EEPROM_WP) {
15194 tg3_flag_set(tp, EEPROM_WRITE_PROT);
15195 if ((tp->pdev->subsystem_vendor ==
15196 PCI_VENDOR_ID_ARIMA) &&
15197 (tp->pdev->subsystem_device == 0x205a ||
15198 tp->pdev->subsystem_device == 0x2063))
15199 tg3_flag_clear(tp, EEPROM_WRITE_PROT);
15200 } else {
15201 tg3_flag_clear(tp, EEPROM_WRITE_PROT);
15202 tg3_flag_set(tp, IS_NIC);
15203 }
15204
15205 if (nic_cfg & NIC_SRAM_DATA_CFG_ASF_ENABLE) {
15206 tg3_flag_set(tp, ENABLE_ASF);
15207 if (tg3_flag(tp, 5750_PLUS))
15208 tg3_flag_set(tp, ASF_NEW_HANDSHAKE);
15209 }
15210
15211 if ((nic_cfg & NIC_SRAM_DATA_CFG_APE_ENABLE) &&
15212 tg3_flag(tp, 5750_PLUS))
15213 tg3_flag_set(tp, ENABLE_APE);
15214
15215 if (tp->phy_flags & TG3_PHYFLG_ANY_SERDES &&
15216 !(nic_cfg & NIC_SRAM_DATA_CFG_FIBER_WOL))
15217 tg3_flag_clear(tp, WOL_CAP);
15218
15219 if (tg3_flag(tp, WOL_CAP) &&
15220 (nic_cfg & NIC_SRAM_DATA_CFG_WOL_ENABLE)) {
15221 tg3_flag_set(tp, WOL_ENABLE);
15222 device_set_wakeup_enable(&tp->pdev->dev, true);
15223 }
15224
15225 if (cfg2 & (1 << 17))
15226 tp->phy_flags |= TG3_PHYFLG_CAPACITIVE_COUPLING;
15227
15228 /* serdes signal pre-emphasis in register 0x590 set by */
15229 /* bootcode if bit 18 is set */
15230 if (cfg2 & (1 << 18))
15231 tp->phy_flags |= TG3_PHYFLG_SERDES_PREEMPHASIS;
15232
15233 if ((tg3_flag(tp, 57765_PLUS) ||
15234 (tg3_asic_rev(tp) == ASIC_REV_5784 &&
15235 tg3_chip_rev(tp) != CHIPREV_5784_AX)) &&
15236 (cfg2 & NIC_SRAM_DATA_CFG_2_APD_EN))
15237 tp->phy_flags |= TG3_PHYFLG_ENABLE_APD;
15238
15239 if (tg3_flag(tp, PCI_EXPRESS)) {
15240 u32 cfg3;
15241
15242 tg3_read_mem(tp, NIC_SRAM_DATA_CFG_3, &cfg3);
15243 if (tg3_asic_rev(tp) != ASIC_REV_5785 &&
15244 !tg3_flag(tp, 57765_PLUS) &&
15245 (cfg3 & NIC_SRAM_ASPM_DEBOUNCE))
15246 tg3_flag_set(tp, ASPM_WORKAROUND);
15247 if (cfg3 & NIC_SRAM_LNK_FLAP_AVOID)
15248 tp->phy_flags |= TG3_PHYFLG_KEEP_LINK_ON_PWRDN;
15249 if (cfg3 & NIC_SRAM_1G_ON_VAUX_OK)
15250 tp->phy_flags |= TG3_PHYFLG_1G_ON_VAUX_OK;
15251 }
15252
15253 if (cfg4 & NIC_SRAM_RGMII_INBAND_DISABLE)
15254 tg3_flag_set(tp, RGMII_INBAND_DISABLE);
15255 if (cfg4 & NIC_SRAM_RGMII_EXT_IBND_RX_EN)
15256 tg3_flag_set(tp, RGMII_EXT_IBND_RX_EN);
15257 if (cfg4 & NIC_SRAM_RGMII_EXT_IBND_TX_EN)
15258 tg3_flag_set(tp, RGMII_EXT_IBND_TX_EN);
15259
15260 if (cfg5 & NIC_SRAM_DISABLE_1G_HALF_ADV)
15261 tp->phy_flags |= TG3_PHYFLG_DISABLE_1G_HD_ADV;
15262 }
15263 done:
15264 if (tg3_flag(tp, WOL_CAP))
15265 device_set_wakeup_enable(&tp->pdev->dev,
15266 tg3_flag(tp, WOL_ENABLE));
15267 else
15268 device_set_wakeup_capable(&tp->pdev->dev, false);
15269 }
15270
15271 static int tg3_ape_otp_read(struct tg3 *tp, u32 offset, u32 *val)
15272 {
15273 int i, err;
15274 u32 val2, off = offset * 8;
15275
15276 err = tg3_nvram_lock(tp);
15277 if (err)
15278 return err;
15279
15280 tg3_ape_write32(tp, TG3_APE_OTP_ADDR, off | APE_OTP_ADDR_CPU_ENABLE);
15281 tg3_ape_write32(tp, TG3_APE_OTP_CTRL, APE_OTP_CTRL_PROG_EN |
15282 APE_OTP_CTRL_CMD_RD | APE_OTP_CTRL_START);
15283 tg3_ape_read32(tp, TG3_APE_OTP_CTRL);
15284 udelay(10);
15285
15286 for (i = 0; i < 100; i++) {
15287 val2 = tg3_ape_read32(tp, TG3_APE_OTP_STATUS);
15288 if (val2 & APE_OTP_STATUS_CMD_DONE) {
15289 *val = tg3_ape_read32(tp, TG3_APE_OTP_RD_DATA);
15290 break;
15291 }
15292 udelay(10);
15293 }
15294
15295 tg3_ape_write32(tp, TG3_APE_OTP_CTRL, 0);
15296
15297 tg3_nvram_unlock(tp);
15298 if (val2 & APE_OTP_STATUS_CMD_DONE)
15299 return 0;
15300
15301 return -EBUSY;
15302 }
15303
15304 static int tg3_issue_otp_command(struct tg3 *tp, u32 cmd)
15305 {
15306 int i;
15307 u32 val;
15308
15309 tw32(OTP_CTRL, cmd | OTP_CTRL_OTP_CMD_START);
15310 tw32(OTP_CTRL, cmd);
15311
15312 /* Wait for up to 1 ms for command to execute. */
15313 for (i = 0; i < 100; i++) {
15314 val = tr32(OTP_STATUS);
15315 if (val & OTP_STATUS_CMD_DONE)
15316 break;
15317 udelay(10);
15318 }
15319
15320 return (val & OTP_STATUS_CMD_DONE) ? 0 : -EBUSY;
15321 }
15322
15323 /* Read the gphy configuration from the OTP region of the chip. The gphy
15324 * configuration is a 32-bit value that straddles the alignment boundary.
15325 * We do two 32-bit reads and then shift and merge the results.
15326 */
15327 static u32 tg3_read_otp_phycfg(struct tg3 *tp)
15328 {
15329 u32 bhalf_otp, thalf_otp;
15330
15331 tw32(OTP_MODE, OTP_MODE_OTP_THRU_GRC);
15332
15333 if (tg3_issue_otp_command(tp, OTP_CTRL_OTP_CMD_INIT))
15334 return 0;
15335
15336 tw32(OTP_ADDRESS, OTP_ADDRESS_MAGIC1);
15337
15338 if (tg3_issue_otp_command(tp, OTP_CTRL_OTP_CMD_READ))
15339 return 0;
15340
15341 thalf_otp = tr32(OTP_READ_DATA);
15342
15343 tw32(OTP_ADDRESS, OTP_ADDRESS_MAGIC2);
15344
15345 if (tg3_issue_otp_command(tp, OTP_CTRL_OTP_CMD_READ))
15346 return 0;
15347
15348 bhalf_otp = tr32(OTP_READ_DATA);
15349
15350 return ((thalf_otp & 0x0000ffff) << 16) | (bhalf_otp >> 16);
15351 }
15352
15353 static void tg3_phy_init_link_config(struct tg3 *tp)
15354 {
15355 u32 adv = ADVERTISED_Autoneg;
15356
15357 if (!(tp->phy_flags & TG3_PHYFLG_10_100_ONLY)) {
15358 if (!(tp->phy_flags & TG3_PHYFLG_DISABLE_1G_HD_ADV))
15359 adv |= ADVERTISED_1000baseT_Half;
15360 adv |= ADVERTISED_1000baseT_Full;
15361 }
15362
15363 if (!(tp->phy_flags & TG3_PHYFLG_ANY_SERDES))
15364 adv |= ADVERTISED_100baseT_Half |
15365 ADVERTISED_100baseT_Full |
15366 ADVERTISED_10baseT_Half |
15367 ADVERTISED_10baseT_Full |
15368 ADVERTISED_TP;
15369 else
15370 adv |= ADVERTISED_FIBRE;
15371
15372 tp->link_config.advertising = adv;
15373 tp->link_config.speed = SPEED_UNKNOWN;
15374 tp->link_config.duplex = DUPLEX_UNKNOWN;
15375 tp->link_config.autoneg = AUTONEG_ENABLE;
15376 tp->link_config.active_speed = SPEED_UNKNOWN;
15377 tp->link_config.active_duplex = DUPLEX_UNKNOWN;
15378
15379 tp->old_link = -1;
15380 }
15381
15382 static int tg3_phy_probe(struct tg3 *tp)
15383 {
15384 u32 hw_phy_id_1, hw_phy_id_2;
15385 u32 hw_phy_id, hw_phy_id_masked;
15386 int err;
15387
15388 /* flow control autonegotiation is default behavior */
15389 tg3_flag_set(tp, PAUSE_AUTONEG);
15390 tp->link_config.flowctrl = FLOW_CTRL_TX | FLOW_CTRL_RX;
15391
15392 if (tg3_flag(tp, ENABLE_APE)) {
15393 switch (tp->pci_fn) {
15394 case 0:
15395 tp->phy_ape_lock = TG3_APE_LOCK_PHY0;
15396 break;
15397 case 1:
15398 tp->phy_ape_lock = TG3_APE_LOCK_PHY1;
15399 break;
15400 case 2:
15401 tp->phy_ape_lock = TG3_APE_LOCK_PHY2;
15402 break;
15403 case 3:
15404 tp->phy_ape_lock = TG3_APE_LOCK_PHY3;
15405 break;
15406 }
15407 }
15408
15409 if (!tg3_flag(tp, ENABLE_ASF) &&
15410 !(tp->phy_flags & TG3_PHYFLG_ANY_SERDES) &&
15411 !(tp->phy_flags & TG3_PHYFLG_10_100_ONLY))
15412 tp->phy_flags &= ~(TG3_PHYFLG_1G_ON_VAUX_OK |
15413 TG3_PHYFLG_KEEP_LINK_ON_PWRDN);
15414
15415 if (tg3_flag(tp, USE_PHYLIB))
15416 return tg3_phy_init(tp);
15417
15418 /* Reading the PHY ID register can conflict with ASF
15419 * firmware access to the PHY hardware.
15420 */
15421 err = 0;
15422 if (tg3_flag(tp, ENABLE_ASF) || tg3_flag(tp, ENABLE_APE)) {
15423 hw_phy_id = hw_phy_id_masked = TG3_PHY_ID_INVALID;
15424 } else {
15425 /* Now read the physical PHY_ID from the chip and verify
15426 * that it is sane. If it doesn't look good, we fall back
15427 * to either the hard-coded table based PHY_ID and failing
15428 * that the value found in the eeprom area.
15429 */
15430 err |= tg3_readphy(tp, MII_PHYSID1, &hw_phy_id_1);
15431 err |= tg3_readphy(tp, MII_PHYSID2, &hw_phy_id_2);
15432
15433 hw_phy_id = (hw_phy_id_1 & 0xffff) << 10;
15434 hw_phy_id |= (hw_phy_id_2 & 0xfc00) << 16;
15435 hw_phy_id |= (hw_phy_id_2 & 0x03ff) << 0;
15436
15437 hw_phy_id_masked = hw_phy_id & TG3_PHY_ID_MASK;
15438 }
15439
15440 if (!err && TG3_KNOWN_PHY_ID(hw_phy_id_masked)) {
15441 tp->phy_id = hw_phy_id;
15442 if (hw_phy_id_masked == TG3_PHY_ID_BCM8002)
15443 tp->phy_flags |= TG3_PHYFLG_PHY_SERDES;
15444 else
15445 tp->phy_flags &= ~TG3_PHYFLG_PHY_SERDES;
15446 } else {
15447 if (tp->phy_id != TG3_PHY_ID_INVALID) {
15448 /* Do nothing, phy ID already set up in
15449 * tg3_get_eeprom_hw_cfg().
15450 */
15451 } else {
15452 struct subsys_tbl_ent *p;
15453
15454 /* No eeprom signature? Try the hardcoded
15455 * subsys device table.
15456 */
15457 p = tg3_lookup_by_subsys(tp);
15458 if (p) {
15459 tp->phy_id = p->phy_id;
15460 } else if (!tg3_flag(tp, IS_SSB_CORE)) {
15461 /* For now we saw the IDs 0xbc050cd0,
15462 * 0xbc050f80 and 0xbc050c30 on devices
15463 * connected to an BCM4785 and there are
15464 * probably more. Just assume that the phy is
15465 * supported when it is connected to a SSB core
15466 * for now.
15467 */
15468 return -ENODEV;
15469 }
15470
15471 if (!tp->phy_id ||
15472 tp->phy_id == TG3_PHY_ID_BCM8002)
15473 tp->phy_flags |= TG3_PHYFLG_PHY_SERDES;
15474 }
15475 }
15476
15477 if (!(tp->phy_flags & TG3_PHYFLG_ANY_SERDES) &&
15478 (tg3_asic_rev(tp) == ASIC_REV_5719 ||
15479 tg3_asic_rev(tp) == ASIC_REV_5720 ||
15480 tg3_asic_rev(tp) == ASIC_REV_57766 ||
15481 tg3_asic_rev(tp) == ASIC_REV_5762 ||
15482 (tg3_asic_rev(tp) == ASIC_REV_5717 &&
15483 tg3_chip_rev_id(tp) != CHIPREV_ID_5717_A0) ||
15484 (tg3_asic_rev(tp) == ASIC_REV_57765 &&
15485 tg3_chip_rev_id(tp) != CHIPREV_ID_57765_A0))) {
15486 tp->phy_flags |= TG3_PHYFLG_EEE_CAP;
15487
15488 tp->eee.supported = SUPPORTED_100baseT_Full |
15489 SUPPORTED_1000baseT_Full;
15490 tp->eee.advertised = ADVERTISED_100baseT_Full |
15491 ADVERTISED_1000baseT_Full;
15492 tp->eee.eee_enabled = 1;
15493 tp->eee.tx_lpi_enabled = 1;
15494 tp->eee.tx_lpi_timer = TG3_CPMU_DBTMR1_LNKIDLE_2047US;
15495 }
15496
15497 tg3_phy_init_link_config(tp);
15498
15499 if (!(tp->phy_flags & TG3_PHYFLG_KEEP_LINK_ON_PWRDN) &&
15500 !(tp->phy_flags & TG3_PHYFLG_ANY_SERDES) &&
15501 !tg3_flag(tp, ENABLE_APE) &&
15502 !tg3_flag(tp, ENABLE_ASF)) {
15503 u32 bmsr, dummy;
15504
15505 tg3_readphy(tp, MII_BMSR, &bmsr);
15506 if (!tg3_readphy(tp, MII_BMSR, &bmsr) &&
15507 (bmsr & BMSR_LSTATUS))
15508 goto skip_phy_reset;
15509
15510 err = tg3_phy_reset(tp);
15511 if (err)
15512 return err;
15513
15514 tg3_phy_set_wirespeed(tp);
15515
15516 if (!tg3_phy_copper_an_config_ok(tp, &dummy)) {
15517 tg3_phy_autoneg_cfg(tp, tp->link_config.advertising,
15518 tp->link_config.flowctrl);
15519
15520 tg3_writephy(tp, MII_BMCR,
15521 BMCR_ANENABLE | BMCR_ANRESTART);
15522 }
15523 }
15524
15525 skip_phy_reset:
15526 if ((tp->phy_id & TG3_PHY_ID_MASK) == TG3_PHY_ID_BCM5401) {
15527 err = tg3_init_5401phy_dsp(tp);
15528 if (err)
15529 return err;
15530
15531 err = tg3_init_5401phy_dsp(tp);
15532 }
15533
15534 return err;
15535 }
15536
15537 static void tg3_read_vpd(struct tg3 *tp)
15538 {
15539 u8 *vpd_data;
15540 unsigned int block_end, rosize, len;
15541 u32 vpdlen;
15542 int j, i = 0;
15543
15544 vpd_data = (u8 *)tg3_vpd_readblock(tp, &vpdlen);
15545 if (!vpd_data)
15546 goto out_no_vpd;
15547
15548 i = pci_vpd_find_tag(vpd_data, 0, vpdlen, PCI_VPD_LRDT_RO_DATA);
15549 if (i < 0)
15550 goto out_not_found;
15551
15552 rosize = pci_vpd_lrdt_size(&vpd_data[i]);
15553 block_end = i + PCI_VPD_LRDT_TAG_SIZE + rosize;
15554 i += PCI_VPD_LRDT_TAG_SIZE;
15555
15556 if (block_end > vpdlen)
15557 goto out_not_found;
15558
15559 j = pci_vpd_find_info_keyword(vpd_data, i, rosize,
15560 PCI_VPD_RO_KEYWORD_MFR_ID);
15561 if (j > 0) {
15562 len = pci_vpd_info_field_size(&vpd_data[j]);
15563
15564 j += PCI_VPD_INFO_FLD_HDR_SIZE;
15565 if (j + len > block_end || len != 4 ||
15566 memcmp(&vpd_data[j], "1028", 4))
15567 goto partno;
15568
15569 j = pci_vpd_find_info_keyword(vpd_data, i, rosize,
15570 PCI_VPD_RO_KEYWORD_VENDOR0);
15571 if (j < 0)
15572 goto partno;
15573
15574 len = pci_vpd_info_field_size(&vpd_data[j]);
15575
15576 j += PCI_VPD_INFO_FLD_HDR_SIZE;
15577 if (j + len > block_end)
15578 goto partno;
15579
15580 if (len >= sizeof(tp->fw_ver))
15581 len = sizeof(tp->fw_ver) - 1;
15582 memset(tp->fw_ver, 0, sizeof(tp->fw_ver));
15583 snprintf(tp->fw_ver, sizeof(tp->fw_ver), "%.*s bc ", len,
15584 &vpd_data[j]);
15585 }
15586
15587 partno:
15588 i = pci_vpd_find_info_keyword(vpd_data, i, rosize,
15589 PCI_VPD_RO_KEYWORD_PARTNO);
15590 if (i < 0)
15591 goto out_not_found;
15592
15593 len = pci_vpd_info_field_size(&vpd_data[i]);
15594
15595 i += PCI_VPD_INFO_FLD_HDR_SIZE;
15596 if (len > TG3_BPN_SIZE ||
15597 (len + i) > vpdlen)
15598 goto out_not_found;
15599
15600 memcpy(tp->board_part_number, &vpd_data[i], len);
15601
15602 out_not_found:
15603 kfree(vpd_data);
15604 if (tp->board_part_number[0])
15605 return;
15606
15607 out_no_vpd:
15608 if (tg3_asic_rev(tp) == ASIC_REV_5717) {
15609 if (tp->pdev->device == TG3PCI_DEVICE_TIGON3_5717 ||
15610 tp->pdev->device == TG3PCI_DEVICE_TIGON3_5717_C)
15611 strcpy(tp->board_part_number, "BCM5717");
15612 else if (tp->pdev->device == TG3PCI_DEVICE_TIGON3_5718)
15613 strcpy(tp->board_part_number, "BCM5718");
15614 else
15615 goto nomatch;
15616 } else if (tg3_asic_rev(tp) == ASIC_REV_57780) {
15617 if (tp->pdev->device == TG3PCI_DEVICE_TIGON3_57780)
15618 strcpy(tp->board_part_number, "BCM57780");
15619 else if (tp->pdev->device == TG3PCI_DEVICE_TIGON3_57760)
15620 strcpy(tp->board_part_number, "BCM57760");
15621 else if (tp->pdev->device == TG3PCI_DEVICE_TIGON3_57790)
15622 strcpy(tp->board_part_number, "BCM57790");
15623 else if (tp->pdev->device == TG3PCI_DEVICE_TIGON3_57788)
15624 strcpy(tp->board_part_number, "BCM57788");
15625 else
15626 goto nomatch;
15627 } else if (tg3_asic_rev(tp) == ASIC_REV_57765) {
15628 if (tp->pdev->device == TG3PCI_DEVICE_TIGON3_57761)
15629 strcpy(tp->board_part_number, "BCM57761");
15630 else if (tp->pdev->device == TG3PCI_DEVICE_TIGON3_57765)
15631 strcpy(tp->board_part_number, "BCM57765");
15632 else if (tp->pdev->device == TG3PCI_DEVICE_TIGON3_57781)
15633 strcpy(tp->board_part_number, "BCM57781");
15634 else if (tp->pdev->device == TG3PCI_DEVICE_TIGON3_57785)
15635 strcpy(tp->board_part_number, "BCM57785");
15636 else if (tp->pdev->device == TG3PCI_DEVICE_TIGON3_57791)
15637 strcpy(tp->board_part_number, "BCM57791");
15638 else if (tp->pdev->device == TG3PCI_DEVICE_TIGON3_57795)
15639 strcpy(tp->board_part_number, "BCM57795");
15640 else
15641 goto nomatch;
15642 } else if (tg3_asic_rev(tp) == ASIC_REV_57766) {
15643 if (tp->pdev->device == TG3PCI_DEVICE_TIGON3_57762)
15644 strcpy(tp->board_part_number, "BCM57762");
15645 else if (tp->pdev->device == TG3PCI_DEVICE_TIGON3_57766)
15646 strcpy(tp->board_part_number, "BCM57766");
15647 else if (tp->pdev->device == TG3PCI_DEVICE_TIGON3_57782)
15648 strcpy(tp->board_part_number, "BCM57782");
15649 else if (tp->pdev->device == TG3PCI_DEVICE_TIGON3_57786)
15650 strcpy(tp->board_part_number, "BCM57786");
15651 else
15652 goto nomatch;
15653 } else if (tg3_asic_rev(tp) == ASIC_REV_5906) {
15654 strcpy(tp->board_part_number, "BCM95906");
15655 } else {
15656 nomatch:
15657 strcpy(tp->board_part_number, "none");
15658 }
15659 }
15660
15661 static int tg3_fw_img_is_valid(struct tg3 *tp, u32 offset)
15662 {
15663 u32 val;
15664
15665 if (tg3_nvram_read(tp, offset, &val) ||
15666 (val & 0xfc000000) != 0x0c000000 ||
15667 tg3_nvram_read(tp, offset + 4, &val) ||
15668 val != 0)
15669 return 0;
15670
15671 return 1;
15672 }
15673
15674 static void tg3_read_bc_ver(struct tg3 *tp)
15675 {
15676 u32 val, offset, start, ver_offset;
15677 int i, dst_off;
15678 bool newver = false;
15679
15680 if (tg3_nvram_read(tp, 0xc, &offset) ||
15681 tg3_nvram_read(tp, 0x4, &start))
15682 return;
15683
15684 offset = tg3_nvram_logical_addr(tp, offset);
15685
15686 if (tg3_nvram_read(tp, offset, &val))
15687 return;
15688
15689 if ((val & 0xfc000000) == 0x0c000000) {
15690 if (tg3_nvram_read(tp, offset + 4, &val))
15691 return;
15692
15693 if (val == 0)
15694 newver = true;
15695 }
15696
15697 dst_off = strlen(tp->fw_ver);
15698
15699 if (newver) {
15700 if (TG3_VER_SIZE - dst_off < 16 ||
15701 tg3_nvram_read(tp, offset + 8, &ver_offset))
15702 return;
15703
15704 offset = offset + ver_offset - start;
15705 for (i = 0; i < 16; i += 4) {
15706 __be32 v;
15707 if (tg3_nvram_read_be32(tp, offset + i, &v))
15708 return;
15709
15710 memcpy(tp->fw_ver + dst_off + i, &v, sizeof(v));
15711 }
15712 } else {
15713 u32 major, minor;
15714
15715 if (tg3_nvram_read(tp, TG3_NVM_PTREV_BCVER, &ver_offset))
15716 return;
15717
15718 major = (ver_offset & TG3_NVM_BCVER_MAJMSK) >>
15719 TG3_NVM_BCVER_MAJSFT;
15720 minor = ver_offset & TG3_NVM_BCVER_MINMSK;
15721 snprintf(&tp->fw_ver[dst_off], TG3_VER_SIZE - dst_off,
15722 "v%d.%02d", major, minor);
15723 }
15724 }
15725
15726 static void tg3_read_hwsb_ver(struct tg3 *tp)
15727 {
15728 u32 val, major, minor;
15729
15730 /* Use native endian representation */
15731 if (tg3_nvram_read(tp, TG3_NVM_HWSB_CFG1, &val))
15732 return;
15733
15734 major = (val & TG3_NVM_HWSB_CFG1_MAJMSK) >>
15735 TG3_NVM_HWSB_CFG1_MAJSFT;
15736 minor = (val & TG3_NVM_HWSB_CFG1_MINMSK) >>
15737 TG3_NVM_HWSB_CFG1_MINSFT;
15738
15739 snprintf(&tp->fw_ver[0], 32, "sb v%d.%02d", major, minor);
15740 }
15741
15742 static void tg3_read_sb_ver(struct tg3 *tp, u32 val)
15743 {
15744 u32 offset, major, minor, build;
15745
15746 strncat(tp->fw_ver, "sb", TG3_VER_SIZE - strlen(tp->fw_ver) - 1);
15747
15748 if ((val & TG3_EEPROM_SB_FORMAT_MASK) != TG3_EEPROM_SB_FORMAT_1)
15749 return;
15750
15751 switch (val & TG3_EEPROM_SB_REVISION_MASK) {
15752 case TG3_EEPROM_SB_REVISION_0:
15753 offset = TG3_EEPROM_SB_F1R0_EDH_OFF;
15754 break;
15755 case TG3_EEPROM_SB_REVISION_2:
15756 offset = TG3_EEPROM_SB_F1R2_EDH_OFF;
15757 break;
15758 case TG3_EEPROM_SB_REVISION_3:
15759 offset = TG3_EEPROM_SB_F1R3_EDH_OFF;
15760 break;
15761 case TG3_EEPROM_SB_REVISION_4:
15762 offset = TG3_EEPROM_SB_F1R4_EDH_OFF;
15763 break;
15764 case TG3_EEPROM_SB_REVISION_5:
15765 offset = TG3_EEPROM_SB_F1R5_EDH_OFF;
15766 break;
15767 case TG3_EEPROM_SB_REVISION_6:
15768 offset = TG3_EEPROM_SB_F1R6_EDH_OFF;
15769 break;
15770 default:
15771 return;
15772 }
15773
15774 if (tg3_nvram_read(tp, offset, &val))
15775 return;
15776
15777 build = (val & TG3_EEPROM_SB_EDH_BLD_MASK) >>
15778 TG3_EEPROM_SB_EDH_BLD_SHFT;
15779 major = (val & TG3_EEPROM_SB_EDH_MAJ_MASK) >>
15780 TG3_EEPROM_SB_EDH_MAJ_SHFT;
15781 minor = val & TG3_EEPROM_SB_EDH_MIN_MASK;
15782
15783 if (minor > 99 || build > 26)
15784 return;
15785
15786 offset = strlen(tp->fw_ver);
15787 snprintf(&tp->fw_ver[offset], TG3_VER_SIZE - offset,
15788 " v%d.%02d", major, minor);
15789
15790 if (build > 0) {
15791 offset = strlen(tp->fw_ver);
15792 if (offset < TG3_VER_SIZE - 1)
15793 tp->fw_ver[offset] = 'a' + build - 1;
15794 }
15795 }
15796
15797 static void tg3_read_mgmtfw_ver(struct tg3 *tp)
15798 {
15799 u32 val, offset, start;
15800 int i, vlen;
15801
15802 for (offset = TG3_NVM_DIR_START;
15803 offset < TG3_NVM_DIR_END;
15804 offset += TG3_NVM_DIRENT_SIZE) {
15805 if (tg3_nvram_read(tp, offset, &val))
15806 return;
15807
15808 if ((val >> TG3_NVM_DIRTYPE_SHIFT) == TG3_NVM_DIRTYPE_ASFINI)
15809 break;
15810 }
15811
15812 if (offset == TG3_NVM_DIR_END)
15813 return;
15814
15815 if (!tg3_flag(tp, 5705_PLUS))
15816 start = 0x08000000;
15817 else if (tg3_nvram_read(tp, offset - 4, &start))
15818 return;
15819
15820 if (tg3_nvram_read(tp, offset + 4, &offset) ||
15821 !tg3_fw_img_is_valid(tp, offset) ||
15822 tg3_nvram_read(tp, offset + 8, &val))
15823 return;
15824
15825 offset += val - start;
15826
15827 vlen = strlen(tp->fw_ver);
15828
15829 tp->fw_ver[vlen++] = ',';
15830 tp->fw_ver[vlen++] = ' ';
15831
15832 for (i = 0; i < 4; i++) {
15833 __be32 v;
15834 if (tg3_nvram_read_be32(tp, offset, &v))
15835 return;
15836
15837 offset += sizeof(v);
15838
15839 if (vlen > TG3_VER_SIZE - sizeof(v)) {
15840 memcpy(&tp->fw_ver[vlen], &v, TG3_VER_SIZE - vlen);
15841 break;
15842 }
15843
15844 memcpy(&tp->fw_ver[vlen], &v, sizeof(v));
15845 vlen += sizeof(v);
15846 }
15847 }
15848
15849 static void tg3_probe_ncsi(struct tg3 *tp)
15850 {
15851 u32 apedata;
15852
15853 apedata = tg3_ape_read32(tp, TG3_APE_SEG_SIG);
15854 if (apedata != APE_SEG_SIG_MAGIC)
15855 return;
15856
15857 apedata = tg3_ape_read32(tp, TG3_APE_FW_STATUS);
15858 if (!(apedata & APE_FW_STATUS_READY))
15859 return;
15860
15861 if (tg3_ape_read32(tp, TG3_APE_FW_FEATURES) & TG3_APE_FW_FEATURE_NCSI)
15862 tg3_flag_set(tp, APE_HAS_NCSI);
15863 }
15864
15865 static void tg3_read_dash_ver(struct tg3 *tp)
15866 {
15867 int vlen;
15868 u32 apedata;
15869 char *fwtype;
15870
15871 apedata = tg3_ape_read32(tp, TG3_APE_FW_VERSION);
15872
15873 if (tg3_flag(tp, APE_HAS_NCSI))
15874 fwtype = "NCSI";
15875 else if (tp->pdev->device == TG3PCI_DEVICE_TIGON3_5725)
15876 fwtype = "SMASH";
15877 else
15878 fwtype = "DASH";
15879
15880 vlen = strlen(tp->fw_ver);
15881
15882 snprintf(&tp->fw_ver[vlen], TG3_VER_SIZE - vlen, " %s v%d.%d.%d.%d",
15883 fwtype,
15884 (apedata & APE_FW_VERSION_MAJMSK) >> APE_FW_VERSION_MAJSFT,
15885 (apedata & APE_FW_VERSION_MINMSK) >> APE_FW_VERSION_MINSFT,
15886 (apedata & APE_FW_VERSION_REVMSK) >> APE_FW_VERSION_REVSFT,
15887 (apedata & APE_FW_VERSION_BLDMSK));
15888 }
15889
15890 static void tg3_read_otp_ver(struct tg3 *tp)
15891 {
15892 u32 val, val2;
15893
15894 if (tg3_asic_rev(tp) != ASIC_REV_5762)
15895 return;
15896
15897 if (!tg3_ape_otp_read(tp, OTP_ADDRESS_MAGIC0, &val) &&
15898 !tg3_ape_otp_read(tp, OTP_ADDRESS_MAGIC0 + 4, &val2) &&
15899 TG3_OTP_MAGIC0_VALID(val)) {
15900 u64 val64 = (u64) val << 32 | val2;
15901 u32 ver = 0;
15902 int i, vlen;
15903
15904 for (i = 0; i < 7; i++) {
15905 if ((val64 & 0xff) == 0)
15906 break;
15907 ver = val64 & 0xff;
15908 val64 >>= 8;
15909 }
15910 vlen = strlen(tp->fw_ver);
15911 snprintf(&tp->fw_ver[vlen], TG3_VER_SIZE - vlen, " .%02d", ver);
15912 }
15913 }
15914
15915 static void tg3_read_fw_ver(struct tg3 *tp)
15916 {
15917 u32 val;
15918 bool vpd_vers = false;
15919
15920 if (tp->fw_ver[0] != 0)
15921 vpd_vers = true;
15922
15923 if (tg3_flag(tp, NO_NVRAM)) {
15924 strcat(tp->fw_ver, "sb");
15925 tg3_read_otp_ver(tp);
15926 return;
15927 }
15928
15929 if (tg3_nvram_read(tp, 0, &val))
15930 return;
15931
15932 if (val == TG3_EEPROM_MAGIC)
15933 tg3_read_bc_ver(tp);
15934 else if ((val & TG3_EEPROM_MAGIC_FW_MSK) == TG3_EEPROM_MAGIC_FW)
15935 tg3_read_sb_ver(tp, val);
15936 else if ((val & TG3_EEPROM_MAGIC_HW_MSK) == TG3_EEPROM_MAGIC_HW)
15937 tg3_read_hwsb_ver(tp);
15938
15939 if (tg3_flag(tp, ENABLE_ASF)) {
15940 if (tg3_flag(tp, ENABLE_APE)) {
15941 tg3_probe_ncsi(tp);
15942 if (!vpd_vers)
15943 tg3_read_dash_ver(tp);
15944 } else if (!vpd_vers) {
15945 tg3_read_mgmtfw_ver(tp);
15946 }
15947 }
15948
15949 tp->fw_ver[TG3_VER_SIZE - 1] = 0;
15950 }
15951
15952 static inline u32 tg3_rx_ret_ring_size(struct tg3 *tp)
15953 {
15954 if (tg3_flag(tp, LRG_PROD_RING_CAP))
15955 return TG3_RX_RET_MAX_SIZE_5717;
15956 else if (tg3_flag(tp, JUMBO_CAPABLE) && !tg3_flag(tp, 5780_CLASS))
15957 return TG3_RX_RET_MAX_SIZE_5700;
15958 else
15959 return TG3_RX_RET_MAX_SIZE_5705;
15960 }
15961
15962 static const struct pci_device_id tg3_write_reorder_chipsets[] = {
15963 { PCI_DEVICE(PCI_VENDOR_ID_AMD, PCI_DEVICE_ID_AMD_FE_GATE_700C) },
15964 { PCI_DEVICE(PCI_VENDOR_ID_AMD, PCI_DEVICE_ID_AMD_8131_BRIDGE) },
15965 { PCI_DEVICE(PCI_VENDOR_ID_VIA, PCI_DEVICE_ID_VIA_8385_0) },
15966 { },
15967 };
15968
15969 static struct pci_dev *tg3_find_peer(struct tg3 *tp)
15970 {
15971 struct pci_dev *peer;
15972 unsigned int func, devnr = tp->pdev->devfn & ~7;
15973
15974 for (func = 0; func < 8; func++) {
15975 peer = pci_get_slot(tp->pdev->bus, devnr | func);
15976 if (peer && peer != tp->pdev)
15977 break;
15978 pci_dev_put(peer);
15979 }
15980 /* 5704 can be configured in single-port mode, set peer to
15981 * tp->pdev in that case.
15982 */
15983 if (!peer) {
15984 peer = tp->pdev;
15985 return peer;
15986 }
15987
15988 /*
15989 * We don't need to keep the refcount elevated; there's no way
15990 * to remove one half of this device without removing the other
15991 */
15992 pci_dev_put(peer);
15993
15994 return peer;
15995 }
15996
15997 static void tg3_detect_asic_rev(struct tg3 *tp, u32 misc_ctrl_reg)
15998 {
15999 tp->pci_chip_rev_id = misc_ctrl_reg >> MISC_HOST_CTRL_CHIPREV_SHIFT;
16000 if (tg3_asic_rev(tp) == ASIC_REV_USE_PROD_ID_REG) {
16001 u32 reg;
16002
16003 /* All devices that use the alternate
16004 * ASIC REV location have a CPMU.
16005 */
16006 tg3_flag_set(tp, CPMU_PRESENT);
16007
16008 if (tp->pdev->device == TG3PCI_DEVICE_TIGON3_5717 ||
16009 tp->pdev->device == TG3PCI_DEVICE_TIGON3_5717_C ||
16010 tp->pdev->device == TG3PCI_DEVICE_TIGON3_5718 ||
16011 tp->pdev->device == TG3PCI_DEVICE_TIGON3_5719 ||
16012 tp->pdev->device == TG3PCI_DEVICE_TIGON3_5720 ||
16013 tp->pdev->device == TG3PCI_DEVICE_TIGON3_57767 ||
16014 tp->pdev->device == TG3PCI_DEVICE_TIGON3_57764 ||
16015 tp->pdev->device == TG3PCI_DEVICE_TIGON3_5762 ||
16016 tp->pdev->device == TG3PCI_DEVICE_TIGON3_5725 ||
16017 tp->pdev->device == TG3PCI_DEVICE_TIGON3_5727 ||
16018 tp->pdev->device == TG3PCI_DEVICE_TIGON3_57787)
16019 reg = TG3PCI_GEN2_PRODID_ASICREV;
16020 else if (tp->pdev->device == TG3PCI_DEVICE_TIGON3_57781 ||
16021 tp->pdev->device == TG3PCI_DEVICE_TIGON3_57785 ||
16022 tp->pdev->device == TG3PCI_DEVICE_TIGON3_57761 ||
16023 tp->pdev->device == TG3PCI_DEVICE_TIGON3_57765 ||
16024 tp->pdev->device == TG3PCI_DEVICE_TIGON3_57791 ||
16025 tp->pdev->device == TG3PCI_DEVICE_TIGON3_57795 ||
16026 tp->pdev->device == TG3PCI_DEVICE_TIGON3_57762 ||
16027 tp->pdev->device == TG3PCI_DEVICE_TIGON3_57766 ||
16028 tp->pdev->device == TG3PCI_DEVICE_TIGON3_57782 ||
16029 tp->pdev->device == TG3PCI_DEVICE_TIGON3_57786)
16030 reg = TG3PCI_GEN15_PRODID_ASICREV;
16031 else
16032 reg = TG3PCI_PRODID_ASICREV;
16033
16034 pci_read_config_dword(tp->pdev, reg, &tp->pci_chip_rev_id);
16035 }
16036
16037 /* Wrong chip ID in 5752 A0. This code can be removed later
16038 * as A0 is not in production.
16039 */
16040 if (tg3_chip_rev_id(tp) == CHIPREV_ID_5752_A0_HW)
16041 tp->pci_chip_rev_id = CHIPREV_ID_5752_A0;
16042
16043 if (tg3_chip_rev_id(tp) == CHIPREV_ID_5717_C0)
16044 tp->pci_chip_rev_id = CHIPREV_ID_5720_A0;
16045
16046 if (tg3_asic_rev(tp) == ASIC_REV_5717 ||
16047 tg3_asic_rev(tp) == ASIC_REV_5719 ||
16048 tg3_asic_rev(tp) == ASIC_REV_5720)
16049 tg3_flag_set(tp, 5717_PLUS);
16050
16051 if (tg3_asic_rev(tp) == ASIC_REV_57765 ||
16052 tg3_asic_rev(tp) == ASIC_REV_57766)
16053 tg3_flag_set(tp, 57765_CLASS);
16054
16055 if (tg3_flag(tp, 57765_CLASS) || tg3_flag(tp, 5717_PLUS) ||
16056 tg3_asic_rev(tp) == ASIC_REV_5762)
16057 tg3_flag_set(tp, 57765_PLUS);
16058
16059 /* Intentionally exclude ASIC_REV_5906 */
16060 if (tg3_asic_rev(tp) == ASIC_REV_5755 ||
16061 tg3_asic_rev(tp) == ASIC_REV_5787 ||
16062 tg3_asic_rev(tp) == ASIC_REV_5784 ||
16063 tg3_asic_rev(tp) == ASIC_REV_5761 ||
16064 tg3_asic_rev(tp) == ASIC_REV_5785 ||
16065 tg3_asic_rev(tp) == ASIC_REV_57780 ||
16066 tg3_flag(tp, 57765_PLUS))
16067 tg3_flag_set(tp, 5755_PLUS);
16068
16069 if (tg3_asic_rev(tp) == ASIC_REV_5780 ||
16070 tg3_asic_rev(tp) == ASIC_REV_5714)
16071 tg3_flag_set(tp, 5780_CLASS);
16072
16073 if (tg3_asic_rev(tp) == ASIC_REV_5750 ||
16074 tg3_asic_rev(tp) == ASIC_REV_5752 ||
16075 tg3_asic_rev(tp) == ASIC_REV_5906 ||
16076 tg3_flag(tp, 5755_PLUS) ||
16077 tg3_flag(tp, 5780_CLASS))
16078 tg3_flag_set(tp, 5750_PLUS);
16079
16080 if (tg3_asic_rev(tp) == ASIC_REV_5705 ||
16081 tg3_flag(tp, 5750_PLUS))
16082 tg3_flag_set(tp, 5705_PLUS);
16083 }
16084
16085 static bool tg3_10_100_only_device(struct tg3 *tp,
16086 const struct pci_device_id *ent)
16087 {
16088 u32 grc_misc_cfg = tr32(GRC_MISC_CFG) & GRC_MISC_CFG_BOARD_ID_MASK;
16089
16090 if ((tg3_asic_rev(tp) == ASIC_REV_5703 &&
16091 (grc_misc_cfg == 0x8000 || grc_misc_cfg == 0x4000)) ||
16092 (tp->phy_flags & TG3_PHYFLG_IS_FET))
16093 return true;
16094
16095 if (ent->driver_data & TG3_DRV_DATA_FLAG_10_100_ONLY) {
16096 if (tg3_asic_rev(tp) == ASIC_REV_5705) {
16097 if (ent->driver_data & TG3_DRV_DATA_FLAG_5705_10_100)
16098 return true;
16099 } else {
16100 return true;
16101 }
16102 }
16103
16104 return false;
16105 }
16106
16107 static int tg3_get_invariants(struct tg3 *tp, const struct pci_device_id *ent)
16108 {
16109 u32 misc_ctrl_reg;
16110 u32 pci_state_reg, grc_misc_cfg;
16111 u32 val;
16112 u16 pci_cmd;
16113 int err;
16114
16115 /* Force memory write invalidate off. If we leave it on,
16116 * then on 5700_BX chips we have to enable a workaround.
16117 * The workaround is to set the TG3PCI_DMA_RW_CTRL boundary
16118 * to match the cacheline size. The Broadcom driver have this
16119 * workaround but turns MWI off all the times so never uses
16120 * it. This seems to suggest that the workaround is insufficient.
16121 */
16122 pci_read_config_word(tp->pdev, PCI_COMMAND, &pci_cmd);
16123 pci_cmd &= ~PCI_COMMAND_INVALIDATE;
16124 pci_write_config_word(tp->pdev, PCI_COMMAND, pci_cmd);
16125
16126 /* Important! -- Make sure register accesses are byteswapped
16127 * correctly. Also, for those chips that require it, make
16128 * sure that indirect register accesses are enabled before
16129 * the first operation.
16130 */
16131 pci_read_config_dword(tp->pdev, TG3PCI_MISC_HOST_CTRL,
16132 &misc_ctrl_reg);
16133 tp->misc_host_ctrl |= (misc_ctrl_reg &
16134 MISC_HOST_CTRL_CHIPREV);
16135 pci_write_config_dword(tp->pdev, TG3PCI_MISC_HOST_CTRL,
16136 tp->misc_host_ctrl);
16137
16138 tg3_detect_asic_rev(tp, misc_ctrl_reg);
16139
16140 /* If we have 5702/03 A1 or A2 on certain ICH chipsets,
16141 * we need to disable memory and use config. cycles
16142 * only to access all registers. The 5702/03 chips
16143 * can mistakenly decode the special cycles from the
16144 * ICH chipsets as memory write cycles, causing corruption
16145 * of register and memory space. Only certain ICH bridges
16146 * will drive special cycles with non-zero data during the
16147 * address phase which can fall within the 5703's address
16148 * range. This is not an ICH bug as the PCI spec allows
16149 * non-zero address during special cycles. However, only
16150 * these ICH bridges are known to drive non-zero addresses
16151 * during special cycles.
16152 *
16153 * Since special cycles do not cross PCI bridges, we only
16154 * enable this workaround if the 5703 is on the secondary
16155 * bus of these ICH bridges.
16156 */
16157 if ((tg3_chip_rev_id(tp) == CHIPREV_ID_5703_A1) ||
16158 (tg3_chip_rev_id(tp) == CHIPREV_ID_5703_A2)) {
16159 static struct tg3_dev_id {
16160 u32 vendor;
16161 u32 device;
16162 u32 rev;
16163 } ich_chipsets[] = {
16164 { PCI_VENDOR_ID_INTEL, PCI_DEVICE_ID_INTEL_82801AA_8,
16165 PCI_ANY_ID },
16166 { PCI_VENDOR_ID_INTEL, PCI_DEVICE_ID_INTEL_82801AB_8,
16167 PCI_ANY_ID },
16168 { PCI_VENDOR_ID_INTEL, PCI_DEVICE_ID_INTEL_82801BA_11,
16169 0xa },
16170 { PCI_VENDOR_ID_INTEL, PCI_DEVICE_ID_INTEL_82801BA_6,
16171 PCI_ANY_ID },
16172 { },
16173 };
16174 struct tg3_dev_id *pci_id = &ich_chipsets[0];
16175 struct pci_dev *bridge = NULL;
16176
16177 while (pci_id->vendor != 0) {
16178 bridge = pci_get_device(pci_id->vendor, pci_id->device,
16179 bridge);
16180 if (!bridge) {
16181 pci_id++;
16182 continue;
16183 }
16184 if (pci_id->rev != PCI_ANY_ID) {
16185 if (bridge->revision > pci_id->rev)
16186 continue;
16187 }
16188 if (bridge->subordinate &&
16189 (bridge->subordinate->number ==
16190 tp->pdev->bus->number)) {
16191 tg3_flag_set(tp, ICH_WORKAROUND);
16192 pci_dev_put(bridge);
16193 break;
16194 }
16195 }
16196 }
16197
16198 if (tg3_asic_rev(tp) == ASIC_REV_5701) {
16199 static struct tg3_dev_id {
16200 u32 vendor;
16201 u32 device;
16202 } bridge_chipsets[] = {
16203 { PCI_VENDOR_ID_INTEL, PCI_DEVICE_ID_INTEL_PXH_0 },
16204 { PCI_VENDOR_ID_INTEL, PCI_DEVICE_ID_INTEL_PXH_1 },
16205 { },
16206 };
16207 struct tg3_dev_id *pci_id = &bridge_chipsets[0];
16208 struct pci_dev *bridge = NULL;
16209
16210 while (pci_id->vendor != 0) {
16211 bridge = pci_get_device(pci_id->vendor,
16212 pci_id->device,
16213 bridge);
16214 if (!bridge) {
16215 pci_id++;
16216 continue;
16217 }
16218 if (bridge->subordinate &&
16219 (bridge->subordinate->number <=
16220 tp->pdev->bus->number) &&
16221 (bridge->subordinate->busn_res.end >=
16222 tp->pdev->bus->number)) {
16223 tg3_flag_set(tp, 5701_DMA_BUG);
16224 pci_dev_put(bridge);
16225 break;
16226 }
16227 }
16228 }
16229
16230 /* The EPB bridge inside 5714, 5715, and 5780 cannot support
16231 * DMA addresses > 40-bit. This bridge may have other additional
16232 * 57xx devices behind it in some 4-port NIC designs for example.
16233 * Any tg3 device found behind the bridge will also need the 40-bit
16234 * DMA workaround.
16235 */
16236 if (tg3_flag(tp, 5780_CLASS)) {
16237 tg3_flag_set(tp, 40BIT_DMA_BUG);
16238 tp->msi_cap = tp->pdev->msi_cap;
16239 } else {
16240 struct pci_dev *bridge = NULL;
16241
16242 do {
16243 bridge = pci_get_device(PCI_VENDOR_ID_SERVERWORKS,
16244 PCI_DEVICE_ID_SERVERWORKS_EPB,
16245 bridge);
16246 if (bridge && bridge->subordinate &&
16247 (bridge->subordinate->number <=
16248 tp->pdev->bus->number) &&
16249 (bridge->subordinate->busn_res.end >=
16250 tp->pdev->bus->number)) {
16251 tg3_flag_set(tp, 40BIT_DMA_BUG);
16252 pci_dev_put(bridge);
16253 break;
16254 }
16255 } while (bridge);
16256 }
16257
16258 if (tg3_asic_rev(tp) == ASIC_REV_5704 ||
16259 tg3_asic_rev(tp) == ASIC_REV_5714)
16260 tp->pdev_peer = tg3_find_peer(tp);
16261
16262 /* Determine TSO capabilities */
16263 if (tg3_chip_rev_id(tp) == CHIPREV_ID_5719_A0)
16264 ; /* Do nothing. HW bug. */
16265 else if (tg3_flag(tp, 57765_PLUS))
16266 tg3_flag_set(tp, HW_TSO_3);
16267 else if (tg3_flag(tp, 5755_PLUS) ||
16268 tg3_asic_rev(tp) == ASIC_REV_5906)
16269 tg3_flag_set(tp, HW_TSO_2);
16270 else if (tg3_flag(tp, 5750_PLUS)) {
16271 tg3_flag_set(tp, HW_TSO_1);
16272 tg3_flag_set(tp, TSO_BUG);
16273 if (tg3_asic_rev(tp) == ASIC_REV_5750 &&
16274 tg3_chip_rev_id(tp) >= CHIPREV_ID_5750_C2)
16275 tg3_flag_clear(tp, TSO_BUG);
16276 } else if (tg3_asic_rev(tp) != ASIC_REV_5700 &&
16277 tg3_asic_rev(tp) != ASIC_REV_5701 &&
16278 tg3_chip_rev_id(tp) != CHIPREV_ID_5705_A0) {
16279 tg3_flag_set(tp, FW_TSO);
16280 tg3_flag_set(tp, TSO_BUG);
16281 if (tg3_asic_rev(tp) == ASIC_REV_5705)
16282 tp->fw_needed = FIRMWARE_TG3TSO5;
16283 else
16284 tp->fw_needed = FIRMWARE_TG3TSO;
16285 }
16286
16287 /* Selectively allow TSO based on operating conditions */
16288 if (tg3_flag(tp, HW_TSO_1) ||
16289 tg3_flag(tp, HW_TSO_2) ||
16290 tg3_flag(tp, HW_TSO_3) ||
16291 tg3_flag(tp, FW_TSO)) {
16292 /* For firmware TSO, assume ASF is disabled.
16293 * We'll disable TSO later if we discover ASF
16294 * is enabled in tg3_get_eeprom_hw_cfg().
16295 */
16296 tg3_flag_set(tp, TSO_CAPABLE);
16297 } else {
16298 tg3_flag_clear(tp, TSO_CAPABLE);
16299 tg3_flag_clear(tp, TSO_BUG);
16300 tp->fw_needed = NULL;
16301 }
16302
16303 if (tg3_chip_rev_id(tp) == CHIPREV_ID_5701_A0)
16304 tp->fw_needed = FIRMWARE_TG3;
16305
16306 if (tg3_asic_rev(tp) == ASIC_REV_57766)
16307 tp->fw_needed = FIRMWARE_TG357766;
16308
16309 tp->irq_max = 1;
16310
16311 if (tg3_flag(tp, 5750_PLUS)) {
16312 tg3_flag_set(tp, SUPPORT_MSI);
16313 if (tg3_chip_rev(tp) == CHIPREV_5750_AX ||
16314 tg3_chip_rev(tp) == CHIPREV_5750_BX ||
16315 (tg3_asic_rev(tp) == ASIC_REV_5714 &&
16316 tg3_chip_rev_id(tp) <= CHIPREV_ID_5714_A2 &&
16317 tp->pdev_peer == tp->pdev))
16318 tg3_flag_clear(tp, SUPPORT_MSI);
16319
16320 if (tg3_flag(tp, 5755_PLUS) ||
16321 tg3_asic_rev(tp) == ASIC_REV_5906) {
16322 tg3_flag_set(tp, 1SHOT_MSI);
16323 }
16324
16325 if (tg3_flag(tp, 57765_PLUS)) {
16326 tg3_flag_set(tp, SUPPORT_MSIX);
16327 tp->irq_max = TG3_IRQ_MAX_VECS;
16328 }
16329 }
16330
16331 tp->txq_max = 1;
16332 tp->rxq_max = 1;
16333 if (tp->irq_max > 1) {
16334 tp->rxq_max = TG3_RSS_MAX_NUM_QS;
16335 tg3_rss_init_dflt_indir_tbl(tp, TG3_RSS_MAX_NUM_QS);
16336
16337 if (tg3_asic_rev(tp) == ASIC_REV_5719 ||
16338 tg3_asic_rev(tp) == ASIC_REV_5720)
16339 tp->txq_max = tp->irq_max - 1;
16340 }
16341
16342 if (tg3_flag(tp, 5755_PLUS) ||
16343 tg3_asic_rev(tp) == ASIC_REV_5906)
16344 tg3_flag_set(tp, SHORT_DMA_BUG);
16345
16346 if (tg3_asic_rev(tp) == ASIC_REV_5719)
16347 tp->dma_limit = TG3_TX_BD_DMA_MAX_4K;
16348
16349 if (tg3_asic_rev(tp) == ASIC_REV_5717 ||
16350 tg3_asic_rev(tp) == ASIC_REV_5719 ||
16351 tg3_asic_rev(tp) == ASIC_REV_5720 ||
16352 tg3_asic_rev(tp) == ASIC_REV_5762)
16353 tg3_flag_set(tp, LRG_PROD_RING_CAP);
16354
16355 if (tg3_flag(tp, 57765_PLUS) &&
16356 tg3_chip_rev_id(tp) != CHIPREV_ID_5719_A0)
16357 tg3_flag_set(tp, USE_JUMBO_BDFLAG);
16358
16359 if (!tg3_flag(tp, 5705_PLUS) ||
16360 tg3_flag(tp, 5780_CLASS) ||
16361 tg3_flag(tp, USE_JUMBO_BDFLAG))
16362 tg3_flag_set(tp, JUMBO_CAPABLE);
16363
16364 pci_read_config_dword(tp->pdev, TG3PCI_PCISTATE,
16365 &pci_state_reg);
16366
16367 if (pci_is_pcie(tp->pdev)) {
16368 u16 lnkctl;
16369
16370 tg3_flag_set(tp, PCI_EXPRESS);
16371
16372 pcie_capability_read_word(tp->pdev, PCI_EXP_LNKCTL, &lnkctl);
16373 if (lnkctl & PCI_EXP_LNKCTL_CLKREQ_EN) {
16374 if (tg3_asic_rev(tp) == ASIC_REV_5906) {
16375 tg3_flag_clear(tp, HW_TSO_2);
16376 tg3_flag_clear(tp, TSO_CAPABLE);
16377 }
16378 if (tg3_asic_rev(tp) == ASIC_REV_5784 ||
16379 tg3_asic_rev(tp) == ASIC_REV_5761 ||
16380 tg3_chip_rev_id(tp) == CHIPREV_ID_57780_A0 ||
16381 tg3_chip_rev_id(tp) == CHIPREV_ID_57780_A1)
16382 tg3_flag_set(tp, CLKREQ_BUG);
16383 } else if (tg3_chip_rev_id(tp) == CHIPREV_ID_5717_A0) {
16384 tg3_flag_set(tp, L1PLLPD_EN);
16385 }
16386 } else if (tg3_asic_rev(tp) == ASIC_REV_5785) {
16387 /* BCM5785 devices are effectively PCIe devices, and should
16388 * follow PCIe codepaths, but do not have a PCIe capabilities
16389 * section.
16390 */
16391 tg3_flag_set(tp, PCI_EXPRESS);
16392 } else if (!tg3_flag(tp, 5705_PLUS) ||
16393 tg3_flag(tp, 5780_CLASS)) {
16394 tp->pcix_cap = pci_find_capability(tp->pdev, PCI_CAP_ID_PCIX);
16395 if (!tp->pcix_cap) {
16396 dev_err(&tp->pdev->dev,
16397 "Cannot find PCI-X capability, aborting\n");
16398 return -EIO;
16399 }
16400
16401 if (!(pci_state_reg & PCISTATE_CONV_PCI_MODE))
16402 tg3_flag_set(tp, PCIX_MODE);
16403 }
16404
16405 /* If we have an AMD 762 or VIA K8T800 chipset, write
16406 * reordering to the mailbox registers done by the host
16407 * controller can cause major troubles. We read back from
16408 * every mailbox register write to force the writes to be
16409 * posted to the chip in order.
16410 */
16411 if (pci_dev_present(tg3_write_reorder_chipsets) &&
16412 !tg3_flag(tp, PCI_EXPRESS))
16413 tg3_flag_set(tp, MBOX_WRITE_REORDER);
16414
16415 pci_read_config_byte(tp->pdev, PCI_CACHE_LINE_SIZE,
16416 &tp->pci_cacheline_sz);
16417 pci_read_config_byte(tp->pdev, PCI_LATENCY_TIMER,
16418 &tp->pci_lat_timer);
16419 if (tg3_asic_rev(tp) == ASIC_REV_5703 &&
16420 tp->pci_lat_timer < 64) {
16421 tp->pci_lat_timer = 64;
16422 pci_write_config_byte(tp->pdev, PCI_LATENCY_TIMER,
16423 tp->pci_lat_timer);
16424 }
16425
16426 /* Important! -- It is critical that the PCI-X hw workaround
16427 * situation is decided before the first MMIO register access.
16428 */
16429 if (tg3_chip_rev(tp) == CHIPREV_5700_BX) {
16430 /* 5700 BX chips need to have their TX producer index
16431 * mailboxes written twice to workaround a bug.
16432 */
16433 tg3_flag_set(tp, TXD_MBOX_HWBUG);
16434
16435 /* If we are in PCI-X mode, enable register write workaround.
16436 *
16437 * The workaround is to use indirect register accesses
16438 * for all chip writes not to mailbox registers.
16439 */
16440 if (tg3_flag(tp, PCIX_MODE)) {
16441 u32 pm_reg;
16442
16443 tg3_flag_set(tp, PCIX_TARGET_HWBUG);
16444
16445 /* The chip can have it's power management PCI config
16446 * space registers clobbered due to this bug.
16447 * So explicitly force the chip into D0 here.
16448 */
16449 pci_read_config_dword(tp->pdev,
16450 tp->pdev->pm_cap + PCI_PM_CTRL,
16451 &pm_reg);
16452 pm_reg &= ~PCI_PM_CTRL_STATE_MASK;
16453 pm_reg |= PCI_PM_CTRL_PME_ENABLE | 0 /* D0 */;
16454 pci_write_config_dword(tp->pdev,
16455 tp->pdev->pm_cap + PCI_PM_CTRL,
16456 pm_reg);
16457
16458 /* Also, force SERR#/PERR# in PCI command. */
16459 pci_read_config_word(tp->pdev, PCI_COMMAND, &pci_cmd);
16460 pci_cmd |= PCI_COMMAND_PARITY | PCI_COMMAND_SERR;
16461 pci_write_config_word(tp->pdev, PCI_COMMAND, pci_cmd);
16462 }
16463 }
16464
16465 if ((pci_state_reg & PCISTATE_BUS_SPEED_HIGH) != 0)
16466 tg3_flag_set(tp, PCI_HIGH_SPEED);
16467 if ((pci_state_reg & PCISTATE_BUS_32BIT) != 0)
16468 tg3_flag_set(tp, PCI_32BIT);
16469
16470 /* Chip-specific fixup from Broadcom driver */
16471 if ((tg3_chip_rev_id(tp) == CHIPREV_ID_5704_A0) &&
16472 (!(pci_state_reg & PCISTATE_RETRY_SAME_DMA))) {
16473 pci_state_reg |= PCISTATE_RETRY_SAME_DMA;
16474 pci_write_config_dword(tp->pdev, TG3PCI_PCISTATE, pci_state_reg);
16475 }
16476
16477 /* Default fast path register access methods */
16478 tp->read32 = tg3_read32;
16479 tp->write32 = tg3_write32;
16480 tp->read32_mbox = tg3_read32;
16481 tp->write32_mbox = tg3_write32;
16482 tp->write32_tx_mbox = tg3_write32;
16483 tp->write32_rx_mbox = tg3_write32;
16484
16485 /* Various workaround register access methods */
16486 if (tg3_flag(tp, PCIX_TARGET_HWBUG))
16487 tp->write32 = tg3_write_indirect_reg32;
16488 else if (tg3_asic_rev(tp) == ASIC_REV_5701 ||
16489 (tg3_flag(tp, PCI_EXPRESS) &&
16490 tg3_chip_rev_id(tp) == CHIPREV_ID_5750_A0)) {
16491 /*
16492 * Back to back register writes can cause problems on these
16493 * chips, the workaround is to read back all reg writes
16494 * except those to mailbox regs.
16495 *
16496 * See tg3_write_indirect_reg32().
16497 */
16498 tp->write32 = tg3_write_flush_reg32;
16499 }
16500
16501 if (tg3_flag(tp, TXD_MBOX_HWBUG) || tg3_flag(tp, MBOX_WRITE_REORDER)) {
16502 tp->write32_tx_mbox = tg3_write32_tx_mbox;
16503 if (tg3_flag(tp, MBOX_WRITE_REORDER))
16504 tp->write32_rx_mbox = tg3_write_flush_reg32;
16505 }
16506
16507 if (tg3_flag(tp, ICH_WORKAROUND)) {
16508 tp->read32 = tg3_read_indirect_reg32;
16509 tp->write32 = tg3_write_indirect_reg32;
16510 tp->read32_mbox = tg3_read_indirect_mbox;
16511 tp->write32_mbox = tg3_write_indirect_mbox;
16512 tp->write32_tx_mbox = tg3_write_indirect_mbox;
16513 tp->write32_rx_mbox = tg3_write_indirect_mbox;
16514
16515 iounmap(tp->regs);
16516 tp->regs = NULL;
16517
16518 pci_read_config_word(tp->pdev, PCI_COMMAND, &pci_cmd);
16519 pci_cmd &= ~PCI_COMMAND_MEMORY;
16520 pci_write_config_word(tp->pdev, PCI_COMMAND, pci_cmd);
16521 }
16522 if (tg3_asic_rev(tp) == ASIC_REV_5906) {
16523 tp->read32_mbox = tg3_read32_mbox_5906;
16524 tp->write32_mbox = tg3_write32_mbox_5906;
16525 tp->write32_tx_mbox = tg3_write32_mbox_5906;
16526 tp->write32_rx_mbox = tg3_write32_mbox_5906;
16527 }
16528
16529 if (tp->write32 == tg3_write_indirect_reg32 ||
16530 (tg3_flag(tp, PCIX_MODE) &&
16531 (tg3_asic_rev(tp) == ASIC_REV_5700 ||
16532 tg3_asic_rev(tp) == ASIC_REV_5701)))
16533 tg3_flag_set(tp, SRAM_USE_CONFIG);
16534
16535 /* The memory arbiter has to be enabled in order for SRAM accesses
16536 * to succeed. Normally on powerup the tg3 chip firmware will make
16537 * sure it is enabled, but other entities such as system netboot
16538 * code might disable it.
16539 */
16540 val = tr32(MEMARB_MODE);
16541 tw32(MEMARB_MODE, val | MEMARB_MODE_ENABLE);
16542
16543 tp->pci_fn = PCI_FUNC(tp->pdev->devfn) & 3;
16544 if (tg3_asic_rev(tp) == ASIC_REV_5704 ||
16545 tg3_flag(tp, 5780_CLASS)) {
16546 if (tg3_flag(tp, PCIX_MODE)) {
16547 pci_read_config_dword(tp->pdev,
16548 tp->pcix_cap + PCI_X_STATUS,
16549 &val);
16550 tp->pci_fn = val & 0x7;
16551 }
16552 } else if (tg3_asic_rev(tp) == ASIC_REV_5717 ||
16553 tg3_asic_rev(tp) == ASIC_REV_5719 ||
16554 tg3_asic_rev(tp) == ASIC_REV_5720) {
16555 tg3_read_mem(tp, NIC_SRAM_CPMU_STATUS, &val);
16556 if ((val & NIC_SRAM_CPMUSTAT_SIG_MSK) != NIC_SRAM_CPMUSTAT_SIG)
16557 val = tr32(TG3_CPMU_STATUS);
16558
16559 if (tg3_asic_rev(tp) == ASIC_REV_5717)
16560 tp->pci_fn = (val & TG3_CPMU_STATUS_FMSK_5717) ? 1 : 0;
16561 else
16562 tp->pci_fn = (val & TG3_CPMU_STATUS_FMSK_5719) >>
16563 TG3_CPMU_STATUS_FSHFT_5719;
16564 }
16565
16566 if (tg3_flag(tp, FLUSH_POSTED_WRITES)) {
16567 tp->write32_tx_mbox = tg3_write_flush_reg32;
16568 tp->write32_rx_mbox = tg3_write_flush_reg32;
16569 }
16570
16571 /* Get eeprom hw config before calling tg3_set_power_state().
16572 * In particular, the TG3_FLAG_IS_NIC flag must be
16573 * determined before calling tg3_set_power_state() so that
16574 * we know whether or not to switch out of Vaux power.
16575 * When the flag is set, it means that GPIO1 is used for eeprom
16576 * write protect and also implies that it is a LOM where GPIOs
16577 * are not used to switch power.
16578 */
16579 tg3_get_eeprom_hw_cfg(tp);
16580
16581 if (tg3_flag(tp, FW_TSO) && tg3_flag(tp, ENABLE_ASF)) {
16582 tg3_flag_clear(tp, TSO_CAPABLE);
16583 tg3_flag_clear(tp, TSO_BUG);
16584 tp->fw_needed = NULL;
16585 }
16586
16587 if (tg3_flag(tp, ENABLE_APE)) {
16588 /* Allow reads and writes to the
16589 * APE register and memory space.
16590 */
16591 pci_state_reg |= PCISTATE_ALLOW_APE_CTLSPC_WR |
16592 PCISTATE_ALLOW_APE_SHMEM_WR |
16593 PCISTATE_ALLOW_APE_PSPACE_WR;
16594 pci_write_config_dword(tp->pdev, TG3PCI_PCISTATE,
16595 pci_state_reg);
16596
16597 tg3_ape_lock_init(tp);
16598 }
16599
16600 /* Set up tp->grc_local_ctrl before calling
16601 * tg3_pwrsrc_switch_to_vmain(). GPIO1 driven high
16602 * will bring 5700's external PHY out of reset.
16603 * It is also used as eeprom write protect on LOMs.
16604 */
16605 tp->grc_local_ctrl = GRC_LCLCTRL_INT_ON_ATTN | GRC_LCLCTRL_AUTO_SEEPROM;
16606 if (tg3_asic_rev(tp) == ASIC_REV_5700 ||
16607 tg3_flag(tp, EEPROM_WRITE_PROT))
16608 tp->grc_local_ctrl |= (GRC_LCLCTRL_GPIO_OE1 |
16609 GRC_LCLCTRL_GPIO_OUTPUT1);
16610 /* Unused GPIO3 must be driven as output on 5752 because there
16611 * are no pull-up resistors on unused GPIO pins.
16612 */
16613 else if (tg3_asic_rev(tp) == ASIC_REV_5752)
16614 tp->grc_local_ctrl |= GRC_LCLCTRL_GPIO_OE3;
16615
16616 if (tg3_asic_rev(tp) == ASIC_REV_5755 ||
16617 tg3_asic_rev(tp) == ASIC_REV_57780 ||
16618 tg3_flag(tp, 57765_CLASS))
16619 tp->grc_local_ctrl |= GRC_LCLCTRL_GPIO_UART_SEL;
16620
16621 if (tp->pdev->device == PCI_DEVICE_ID_TIGON3_5761 ||
16622 tp->pdev->device == TG3PCI_DEVICE_TIGON3_5761S) {
16623 /* Turn off the debug UART. */
16624 tp->grc_local_ctrl |= GRC_LCLCTRL_GPIO_UART_SEL;
16625 if (tg3_flag(tp, IS_NIC))
16626 /* Keep VMain power. */
16627 tp->grc_local_ctrl |= GRC_LCLCTRL_GPIO_OE0 |
16628 GRC_LCLCTRL_GPIO_OUTPUT0;
16629 }
16630
16631 if (tg3_asic_rev(tp) == ASIC_REV_5762)
16632 tp->grc_local_ctrl |=
16633 tr32(GRC_LOCAL_CTRL) & GRC_LCLCTRL_GPIO_UART_SEL;
16634
16635 /* Switch out of Vaux if it is a NIC */
16636 tg3_pwrsrc_switch_to_vmain(tp);
16637
16638 /* Derive initial jumbo mode from MTU assigned in
16639 * ether_setup() via the alloc_etherdev() call
16640 */
16641 if (tp->dev->mtu > ETH_DATA_LEN && !tg3_flag(tp, 5780_CLASS))
16642 tg3_flag_set(tp, JUMBO_RING_ENABLE);
16643
16644 /* Determine WakeOnLan speed to use. */
16645 if (tg3_asic_rev(tp) == ASIC_REV_5700 ||
16646 tg3_chip_rev_id(tp) == CHIPREV_ID_5701_A0 ||
16647 tg3_chip_rev_id(tp) == CHIPREV_ID_5701_B0 ||
16648 tg3_chip_rev_id(tp) == CHIPREV_ID_5701_B2) {
16649 tg3_flag_clear(tp, WOL_SPEED_100MB);
16650 } else {
16651 tg3_flag_set(tp, WOL_SPEED_100MB);
16652 }
16653
16654 if (tg3_asic_rev(tp) == ASIC_REV_5906)
16655 tp->phy_flags |= TG3_PHYFLG_IS_FET;
16656
16657 /* A few boards don't want Ethernet@WireSpeed phy feature */
16658 if (tg3_asic_rev(tp) == ASIC_REV_5700 ||
16659 (tg3_asic_rev(tp) == ASIC_REV_5705 &&
16660 (tg3_chip_rev_id(tp) != CHIPREV_ID_5705_A0) &&
16661 (tg3_chip_rev_id(tp) != CHIPREV_ID_5705_A1)) ||
16662 (tp->phy_flags & TG3_PHYFLG_IS_FET) ||
16663 (tp->phy_flags & TG3_PHYFLG_ANY_SERDES))
16664 tp->phy_flags |= TG3_PHYFLG_NO_ETH_WIRE_SPEED;
16665
16666 if (tg3_chip_rev(tp) == CHIPREV_5703_AX ||
16667 tg3_chip_rev(tp) == CHIPREV_5704_AX)
16668 tp->phy_flags |= TG3_PHYFLG_ADC_BUG;
16669 if (tg3_chip_rev_id(tp) == CHIPREV_ID_5704_A0)
16670 tp->phy_flags |= TG3_PHYFLG_5704_A0_BUG;
16671
16672 if (tg3_flag(tp, 5705_PLUS) &&
16673 !(tp->phy_flags & TG3_PHYFLG_IS_FET) &&
16674 tg3_asic_rev(tp) != ASIC_REV_5785 &&
16675 tg3_asic_rev(tp) != ASIC_REV_57780 &&
16676 !tg3_flag(tp, 57765_PLUS)) {
16677 if (tg3_asic_rev(tp) == ASIC_REV_5755 ||
16678 tg3_asic_rev(tp) == ASIC_REV_5787 ||
16679 tg3_asic_rev(tp) == ASIC_REV_5784 ||
16680 tg3_asic_rev(tp) == ASIC_REV_5761) {
16681 if (tp->pdev->device != PCI_DEVICE_ID_TIGON3_5756 &&
16682 tp->pdev->device != PCI_DEVICE_ID_TIGON3_5722)
16683 tp->phy_flags |= TG3_PHYFLG_JITTER_BUG;
16684 if (tp->pdev->device == PCI_DEVICE_ID_TIGON3_5755M)
16685 tp->phy_flags |= TG3_PHYFLG_ADJUST_TRIM;
16686 } else
16687 tp->phy_flags |= TG3_PHYFLG_BER_BUG;
16688 }
16689
16690 if (tg3_asic_rev(tp) == ASIC_REV_5784 &&
16691 tg3_chip_rev(tp) != CHIPREV_5784_AX) {
16692 tp->phy_otp = tg3_read_otp_phycfg(tp);
16693 if (tp->phy_otp == 0)
16694 tp->phy_otp = TG3_OTP_DEFAULT;
16695 }
16696
16697 if (tg3_flag(tp, CPMU_PRESENT))
16698 tp->mi_mode = MAC_MI_MODE_500KHZ_CONST;
16699 else
16700 tp->mi_mode = MAC_MI_MODE_BASE;
16701
16702 tp->coalesce_mode = 0;
16703 if (tg3_chip_rev(tp) != CHIPREV_5700_AX &&
16704 tg3_chip_rev(tp) != CHIPREV_5700_BX)
16705 tp->coalesce_mode |= HOSTCC_MODE_32BYTE;
16706
16707 /* Set these bits to enable statistics workaround. */
16708 if (tg3_asic_rev(tp) == ASIC_REV_5717 ||
16709 tg3_asic_rev(tp) == ASIC_REV_5762 ||
16710 tg3_chip_rev_id(tp) == CHIPREV_ID_5719_A0 ||
16711 tg3_chip_rev_id(tp) == CHIPREV_ID_5720_A0) {
16712 tp->coalesce_mode |= HOSTCC_MODE_ATTN;
16713 tp->grc_mode |= GRC_MODE_IRQ_ON_FLOW_ATTN;
16714 }
16715
16716 if (tg3_asic_rev(tp) == ASIC_REV_5785 ||
16717 tg3_asic_rev(tp) == ASIC_REV_57780)
16718 tg3_flag_set(tp, USE_PHYLIB);
16719
16720 err = tg3_mdio_init(tp);
16721 if (err)
16722 return err;
16723
16724 /* Initialize data/descriptor byte/word swapping. */
16725 val = tr32(GRC_MODE);
16726 if (tg3_asic_rev(tp) == ASIC_REV_5720 ||
16727 tg3_asic_rev(tp) == ASIC_REV_5762)
16728 val &= (GRC_MODE_BYTE_SWAP_B2HRX_DATA |
16729 GRC_MODE_WORD_SWAP_B2HRX_DATA |
16730 GRC_MODE_B2HRX_ENABLE |
16731 GRC_MODE_HTX2B_ENABLE |
16732 GRC_MODE_HOST_STACKUP);
16733 else
16734 val &= GRC_MODE_HOST_STACKUP;
16735
16736 tw32(GRC_MODE, val | tp->grc_mode);
16737
16738 tg3_switch_clocks(tp);
16739
16740 /* Clear this out for sanity. */
16741 tw32(TG3PCI_MEM_WIN_BASE_ADDR, 0);
16742
16743 /* Clear TG3PCI_REG_BASE_ADDR to prevent hangs. */
16744 tw32(TG3PCI_REG_BASE_ADDR, 0);
16745
16746 pci_read_config_dword(tp->pdev, TG3PCI_PCISTATE,
16747 &pci_state_reg);
16748 if ((pci_state_reg & PCISTATE_CONV_PCI_MODE) == 0 &&
16749 !tg3_flag(tp, PCIX_TARGET_HWBUG)) {
16750 if (tg3_chip_rev_id(tp) == CHIPREV_ID_5701_A0 ||
16751 tg3_chip_rev_id(tp) == CHIPREV_ID_5701_B0 ||
16752 tg3_chip_rev_id(tp) == CHIPREV_ID_5701_B2 ||
16753 tg3_chip_rev_id(tp) == CHIPREV_ID_5701_B5) {
16754 void __iomem *sram_base;
16755
16756 /* Write some dummy words into the SRAM status block
16757 * area, see if it reads back correctly. If the return
16758 * value is bad, force enable the PCIX workaround.
16759 */
16760 sram_base = tp->regs + NIC_SRAM_WIN_BASE + NIC_SRAM_STATS_BLK;
16761
16762 writel(0x00000000, sram_base);
16763 writel(0x00000000, sram_base + 4);
16764 writel(0xffffffff, sram_base + 4);
16765 if (readl(sram_base) != 0x00000000)
16766 tg3_flag_set(tp, PCIX_TARGET_HWBUG);
16767 }
16768 }
16769
16770 udelay(50);
16771 tg3_nvram_init(tp);
16772
16773 /* If the device has an NVRAM, no need to load patch firmware */
16774 if (tg3_asic_rev(tp) == ASIC_REV_57766 &&
16775 !tg3_flag(tp, NO_NVRAM))
16776 tp->fw_needed = NULL;
16777
16778 grc_misc_cfg = tr32(GRC_MISC_CFG);
16779 grc_misc_cfg &= GRC_MISC_CFG_BOARD_ID_MASK;
16780
16781 if (tg3_asic_rev(tp) == ASIC_REV_5705 &&
16782 (grc_misc_cfg == GRC_MISC_CFG_BOARD_ID_5788 ||
16783 grc_misc_cfg == GRC_MISC_CFG_BOARD_ID_5788M))
16784 tg3_flag_set(tp, IS_5788);
16785
16786 if (!tg3_flag(tp, IS_5788) &&
16787 tg3_asic_rev(tp) != ASIC_REV_5700)
16788 tg3_flag_set(tp, TAGGED_STATUS);
16789 if (tg3_flag(tp, TAGGED_STATUS)) {
16790 tp->coalesce_mode |= (HOSTCC_MODE_CLRTICK_RXBD |
16791 HOSTCC_MODE_CLRTICK_TXBD);
16792
16793 tp->misc_host_ctrl |= MISC_HOST_CTRL_TAGGED_STATUS;
16794 pci_write_config_dword(tp->pdev, TG3PCI_MISC_HOST_CTRL,
16795 tp->misc_host_ctrl);
16796 }
16797
16798 /* Preserve the APE MAC_MODE bits */
16799 if (tg3_flag(tp, ENABLE_APE))
16800 tp->mac_mode = MAC_MODE_APE_TX_EN | MAC_MODE_APE_RX_EN;
16801 else
16802 tp->mac_mode = 0;
16803
16804 if (tg3_10_100_only_device(tp, ent))
16805 tp->phy_flags |= TG3_PHYFLG_10_100_ONLY;
16806
16807 err = tg3_phy_probe(tp);
16808 if (err) {
16809 dev_err(&tp->pdev->dev, "phy probe failed, err %d\n", err);
16810 /* ... but do not return immediately ... */
16811 tg3_mdio_fini(tp);
16812 }
16813
16814 tg3_read_vpd(tp);
16815 tg3_read_fw_ver(tp);
16816
16817 if (tp->phy_flags & TG3_PHYFLG_PHY_SERDES) {
16818 tp->phy_flags &= ~TG3_PHYFLG_USE_MI_INTERRUPT;
16819 } else {
16820 if (tg3_asic_rev(tp) == ASIC_REV_5700)
16821 tp->phy_flags |= TG3_PHYFLG_USE_MI_INTERRUPT;
16822 else
16823 tp->phy_flags &= ~TG3_PHYFLG_USE_MI_INTERRUPT;
16824 }
16825
16826 /* 5700 {AX,BX} chips have a broken status block link
16827 * change bit implementation, so we must use the
16828 * status register in those cases.
16829 */
16830 if (tg3_asic_rev(tp) == ASIC_REV_5700)
16831 tg3_flag_set(tp, USE_LINKCHG_REG);
16832 else
16833 tg3_flag_clear(tp, USE_LINKCHG_REG);
16834
16835 /* The led_ctrl is set during tg3_phy_probe, here we might
16836 * have to force the link status polling mechanism based
16837 * upon subsystem IDs.
16838 */
16839 if (tp->pdev->subsystem_vendor == PCI_VENDOR_ID_DELL &&
16840 tg3_asic_rev(tp) == ASIC_REV_5701 &&
16841 !(tp->phy_flags & TG3_PHYFLG_PHY_SERDES)) {
16842 tp->phy_flags |= TG3_PHYFLG_USE_MI_INTERRUPT;
16843 tg3_flag_set(tp, USE_LINKCHG_REG);
16844 }
16845
16846 /* For all SERDES we poll the MAC status register. */
16847 if (tp->phy_flags & TG3_PHYFLG_PHY_SERDES)
16848 tg3_flag_set(tp, POLL_SERDES);
16849 else
16850 tg3_flag_clear(tp, POLL_SERDES);
16851
16852 if (tg3_flag(tp, ENABLE_APE) && tg3_flag(tp, ENABLE_ASF))
16853 tg3_flag_set(tp, POLL_CPMU_LINK);
16854
16855 tp->rx_offset = NET_SKB_PAD + NET_IP_ALIGN;
16856 tp->rx_copy_thresh = TG3_RX_COPY_THRESHOLD;
16857 if (tg3_asic_rev(tp) == ASIC_REV_5701 &&
16858 tg3_flag(tp, PCIX_MODE)) {
16859 tp->rx_offset = NET_SKB_PAD;
16860 #ifndef CONFIG_HAVE_EFFICIENT_UNALIGNED_ACCESS
16861 tp->rx_copy_thresh = ~(u16)0;
16862 #endif
16863 }
16864
16865 tp->rx_std_ring_mask = TG3_RX_STD_RING_SIZE(tp) - 1;
16866 tp->rx_jmb_ring_mask = TG3_RX_JMB_RING_SIZE(tp) - 1;
16867 tp->rx_ret_ring_mask = tg3_rx_ret_ring_size(tp) - 1;
16868
16869 tp->rx_std_max_post = tp->rx_std_ring_mask + 1;
16870
16871 /* Increment the rx prod index on the rx std ring by at most
16872 * 8 for these chips to workaround hw errata.
16873 */
16874 if (tg3_asic_rev(tp) == ASIC_REV_5750 ||
16875 tg3_asic_rev(tp) == ASIC_REV_5752 ||
16876 tg3_asic_rev(tp) == ASIC_REV_5755)
16877 tp->rx_std_max_post = 8;
16878
16879 if (tg3_flag(tp, ASPM_WORKAROUND))
16880 tp->pwrmgmt_thresh = tr32(PCIE_PWR_MGMT_THRESH) &
16881 PCIE_PWR_MGMT_L1_THRESH_MSK;
16882
16883 return err;
16884 }
16885
16886 #ifdef CONFIG_SPARC
16887 static int tg3_get_macaddr_sparc(struct tg3 *tp)
16888 {
16889 struct net_device *dev = tp->dev;
16890 struct pci_dev *pdev = tp->pdev;
16891 struct device_node *dp = pci_device_to_OF_node(pdev);
16892 const unsigned char *addr;
16893 int len;
16894
16895 addr = of_get_property(dp, "local-mac-address", &len);
16896 if (addr && len == ETH_ALEN) {
16897 memcpy(dev->dev_addr, addr, ETH_ALEN);
16898 return 0;
16899 }
16900 return -ENODEV;
16901 }
16902
16903 static int tg3_get_default_macaddr_sparc(struct tg3 *tp)
16904 {
16905 struct net_device *dev = tp->dev;
16906
16907 memcpy(dev->dev_addr, idprom->id_ethaddr, ETH_ALEN);
16908 return 0;
16909 }
16910 #endif
16911
16912 static int tg3_get_device_address(struct tg3 *tp)
16913 {
16914 struct net_device *dev = tp->dev;
16915 u32 hi, lo, mac_offset;
16916 int addr_ok = 0;
16917 int err;
16918
16919 #ifdef CONFIG_SPARC
16920 if (!tg3_get_macaddr_sparc(tp))
16921 return 0;
16922 #endif
16923
16924 if (tg3_flag(tp, IS_SSB_CORE)) {
16925 err = ssb_gige_get_macaddr(tp->pdev, &dev->dev_addr[0]);
16926 if (!err && is_valid_ether_addr(&dev->dev_addr[0]))
16927 return 0;
16928 }
16929
16930 mac_offset = 0x7c;
16931 if (tg3_asic_rev(tp) == ASIC_REV_5704 ||
16932 tg3_flag(tp, 5780_CLASS)) {
16933 if (tr32(TG3PCI_DUAL_MAC_CTRL) & DUAL_MAC_CTRL_ID)
16934 mac_offset = 0xcc;
16935 if (tg3_nvram_lock(tp))
16936 tw32_f(NVRAM_CMD, NVRAM_CMD_RESET);
16937 else
16938 tg3_nvram_unlock(tp);
16939 } else if (tg3_flag(tp, 5717_PLUS)) {
16940 if (tp->pci_fn & 1)
16941 mac_offset = 0xcc;
16942 if (tp->pci_fn > 1)
16943 mac_offset += 0x18c;
16944 } else if (tg3_asic_rev(tp) == ASIC_REV_5906)
16945 mac_offset = 0x10;
16946
16947 /* First try to get it from MAC address mailbox. */
16948 tg3_read_mem(tp, NIC_SRAM_MAC_ADDR_HIGH_MBOX, &hi);
16949 if ((hi >> 16) == 0x484b) {
16950 dev->dev_addr[0] = (hi >> 8) & 0xff;
16951 dev->dev_addr[1] = (hi >> 0) & 0xff;
16952
16953 tg3_read_mem(tp, NIC_SRAM_MAC_ADDR_LOW_MBOX, &lo);
16954 dev->dev_addr[2] = (lo >> 24) & 0xff;
16955 dev->dev_addr[3] = (lo >> 16) & 0xff;
16956 dev->dev_addr[4] = (lo >> 8) & 0xff;
16957 dev->dev_addr[5] = (lo >> 0) & 0xff;
16958
16959 /* Some old bootcode may report a 0 MAC address in SRAM */
16960 addr_ok = is_valid_ether_addr(&dev->dev_addr[0]);
16961 }
16962 if (!addr_ok) {
16963 /* Next, try NVRAM. */
16964 if (!tg3_flag(tp, NO_NVRAM) &&
16965 !tg3_nvram_read_be32(tp, mac_offset + 0, &hi) &&
16966 !tg3_nvram_read_be32(tp, mac_offset + 4, &lo)) {
16967 memcpy(&dev->dev_addr[0], ((char *)&hi) + 2, 2);
16968 memcpy(&dev->dev_addr[2], (char *)&lo, sizeof(lo));
16969 }
16970 /* Finally just fetch it out of the MAC control regs. */
16971 else {
16972 hi = tr32(MAC_ADDR_0_HIGH);
16973 lo = tr32(MAC_ADDR_0_LOW);
16974
16975 dev->dev_addr[5] = lo & 0xff;
16976 dev->dev_addr[4] = (lo >> 8) & 0xff;
16977 dev->dev_addr[3] = (lo >> 16) & 0xff;
16978 dev->dev_addr[2] = (lo >> 24) & 0xff;
16979 dev->dev_addr[1] = hi & 0xff;
16980 dev->dev_addr[0] = (hi >> 8) & 0xff;
16981 }
16982 }
16983
16984 if (!is_valid_ether_addr(&dev->dev_addr[0])) {
16985 #ifdef CONFIG_SPARC
16986 if (!tg3_get_default_macaddr_sparc(tp))
16987 return 0;
16988 #endif
16989 return -EINVAL;
16990 }
16991 return 0;
16992 }
16993
16994 #define BOUNDARY_SINGLE_CACHELINE 1
16995 #define BOUNDARY_MULTI_CACHELINE 2
16996
16997 static u32 tg3_calc_dma_bndry(struct tg3 *tp, u32 val)
16998 {
16999 int cacheline_size;
17000 u8 byte;
17001 int goal;
17002
17003 pci_read_config_byte(tp->pdev, PCI_CACHE_LINE_SIZE, &byte);
17004 if (byte == 0)
17005 cacheline_size = 1024;
17006 else
17007 cacheline_size = (int) byte * 4;
17008
17009 /* On 5703 and later chips, the boundary bits have no
17010 * effect.
17011 */
17012 if (tg3_asic_rev(tp) != ASIC_REV_5700 &&
17013 tg3_asic_rev(tp) != ASIC_REV_5701 &&
17014 !tg3_flag(tp, PCI_EXPRESS))
17015 goto out;
17016
17017 #if defined(CONFIG_PPC64) || defined(CONFIG_IA64) || defined(CONFIG_PARISC)
17018 goal = BOUNDARY_MULTI_CACHELINE;
17019 #else
17020 #if defined(CONFIG_SPARC64) || defined(CONFIG_ALPHA)
17021 goal = BOUNDARY_SINGLE_CACHELINE;
17022 #else
17023 goal = 0;
17024 #endif
17025 #endif
17026
17027 if (tg3_flag(tp, 57765_PLUS)) {
17028 val = goal ? 0 : DMA_RWCTRL_DIS_CACHE_ALIGNMENT;
17029 goto out;
17030 }
17031
17032 if (!goal)
17033 goto out;
17034
17035 /* PCI controllers on most RISC systems tend to disconnect
17036 * when a device tries to burst across a cache-line boundary.
17037 * Therefore, letting tg3 do so just wastes PCI bandwidth.
17038 *
17039 * Unfortunately, for PCI-E there are only limited
17040 * write-side controls for this, and thus for reads
17041 * we will still get the disconnects. We'll also waste
17042 * these PCI cycles for both read and write for chips
17043 * other than 5700 and 5701 which do not implement the
17044 * boundary bits.
17045 */
17046 if (tg3_flag(tp, PCIX_MODE) && !tg3_flag(tp, PCI_EXPRESS)) {
17047 switch (cacheline_size) {
17048 case 16:
17049 case 32:
17050 case 64:
17051 case 128:
17052 if (goal == BOUNDARY_SINGLE_CACHELINE) {
17053 val |= (DMA_RWCTRL_READ_BNDRY_128_PCIX |
17054 DMA_RWCTRL_WRITE_BNDRY_128_PCIX);
17055 } else {
17056 val |= (DMA_RWCTRL_READ_BNDRY_384_PCIX |
17057 DMA_RWCTRL_WRITE_BNDRY_384_PCIX);
17058 }
17059 break;
17060
17061 case 256:
17062 val |= (DMA_RWCTRL_READ_BNDRY_256_PCIX |
17063 DMA_RWCTRL_WRITE_BNDRY_256_PCIX);
17064 break;
17065
17066 default:
17067 val |= (DMA_RWCTRL_READ_BNDRY_384_PCIX |
17068 DMA_RWCTRL_WRITE_BNDRY_384_PCIX);
17069 break;
17070 }
17071 } else if (tg3_flag(tp, PCI_EXPRESS)) {
17072 switch (cacheline_size) {
17073 case 16:
17074 case 32:
17075 case 64:
17076 if (goal == BOUNDARY_SINGLE_CACHELINE) {
17077 val &= ~DMA_RWCTRL_WRITE_BNDRY_DISAB_PCIE;
17078 val |= DMA_RWCTRL_WRITE_BNDRY_64_PCIE;
17079 break;
17080 }
17081 /* fallthrough */
17082 case 128:
17083 default:
17084 val &= ~DMA_RWCTRL_WRITE_BNDRY_DISAB_PCIE;
17085 val |= DMA_RWCTRL_WRITE_BNDRY_128_PCIE;
17086 break;
17087 }
17088 } else {
17089 switch (cacheline_size) {
17090 case 16:
17091 if (goal == BOUNDARY_SINGLE_CACHELINE) {
17092 val |= (DMA_RWCTRL_READ_BNDRY_16 |
17093 DMA_RWCTRL_WRITE_BNDRY_16);
17094 break;
17095 }
17096 /* fallthrough */
17097 case 32:
17098 if (goal == BOUNDARY_SINGLE_CACHELINE) {
17099 val |= (DMA_RWCTRL_READ_BNDRY_32 |
17100 DMA_RWCTRL_WRITE_BNDRY_32);
17101 break;
17102 }
17103 /* fallthrough */
17104 case 64:
17105 if (goal == BOUNDARY_SINGLE_CACHELINE) {
17106 val |= (DMA_RWCTRL_READ_BNDRY_64 |
17107 DMA_RWCTRL_WRITE_BNDRY_64);
17108 break;
17109 }
17110 /* fallthrough */
17111 case 128:
17112 if (goal == BOUNDARY_SINGLE_CACHELINE) {
17113 val |= (DMA_RWCTRL_READ_BNDRY_128 |
17114 DMA_RWCTRL_WRITE_BNDRY_128);
17115 break;
17116 }
17117 /* fallthrough */
17118 case 256:
17119 val |= (DMA_RWCTRL_READ_BNDRY_256 |
17120 DMA_RWCTRL_WRITE_BNDRY_256);
17121 break;
17122 case 512:
17123 val |= (DMA_RWCTRL_READ_BNDRY_512 |
17124 DMA_RWCTRL_WRITE_BNDRY_512);
17125 break;
17126 case 1024:
17127 default:
17128 val |= (DMA_RWCTRL_READ_BNDRY_1024 |
17129 DMA_RWCTRL_WRITE_BNDRY_1024);
17130 break;
17131 }
17132 }
17133
17134 out:
17135 return val;
17136 }
17137
17138 static int tg3_do_test_dma(struct tg3 *tp, u32 *buf, dma_addr_t buf_dma,
17139 int size, bool to_device)
17140 {
17141 struct tg3_internal_buffer_desc test_desc;
17142 u32 sram_dma_descs;
17143 int i, ret;
17144
17145 sram_dma_descs = NIC_SRAM_DMA_DESC_POOL_BASE;
17146
17147 tw32(FTQ_RCVBD_COMP_FIFO_ENQDEQ, 0);
17148 tw32(FTQ_RCVDATA_COMP_FIFO_ENQDEQ, 0);
17149 tw32(RDMAC_STATUS, 0);
17150 tw32(WDMAC_STATUS, 0);
17151
17152 tw32(BUFMGR_MODE, 0);
17153 tw32(FTQ_RESET, 0);
17154
17155 test_desc.addr_hi = ((u64) buf_dma) >> 32;
17156 test_desc.addr_lo = buf_dma & 0xffffffff;
17157 test_desc.nic_mbuf = 0x00002100;
17158 test_desc.len = size;
17159
17160 /*
17161 * HP ZX1 was seeing test failures for 5701 cards running at 33Mhz
17162 * the *second* time the tg3 driver was getting loaded after an
17163 * initial scan.
17164 *
17165 * Broadcom tells me:
17166 * ...the DMA engine is connected to the GRC block and a DMA
17167 * reset may affect the GRC block in some unpredictable way...
17168 * The behavior of resets to individual blocks has not been tested.
17169 *
17170 * Broadcom noted the GRC reset will also reset all sub-components.
17171 */
17172 if (to_device) {
17173 test_desc.cqid_sqid = (13 << 8) | 2;
17174
17175 tw32_f(RDMAC_MODE, RDMAC_MODE_ENABLE);
17176 udelay(40);
17177 } else {
17178 test_desc.cqid_sqid = (16 << 8) | 7;
17179
17180 tw32_f(WDMAC_MODE, WDMAC_MODE_ENABLE);
17181 udelay(40);
17182 }
17183 test_desc.flags = 0x00000005;
17184
17185 for (i = 0; i < (sizeof(test_desc) / sizeof(u32)); i++) {
17186 u32 val;
17187
17188 val = *(((u32 *)&test_desc) + i);
17189 pci_write_config_dword(tp->pdev, TG3PCI_MEM_WIN_BASE_ADDR,
17190 sram_dma_descs + (i * sizeof(u32)));
17191 pci_write_config_dword(tp->pdev, TG3PCI_MEM_WIN_DATA, val);
17192 }
17193 pci_write_config_dword(tp->pdev, TG3PCI_MEM_WIN_BASE_ADDR, 0);
17194
17195 if (to_device)
17196 tw32(FTQ_DMA_HIGH_READ_FIFO_ENQDEQ, sram_dma_descs);
17197 else
17198 tw32(FTQ_DMA_HIGH_WRITE_FIFO_ENQDEQ, sram_dma_descs);
17199
17200 ret = -ENODEV;
17201 for (i = 0; i < 40; i++) {
17202 u32 val;
17203
17204 if (to_device)
17205 val = tr32(FTQ_RCVBD_COMP_FIFO_ENQDEQ);
17206 else
17207 val = tr32(FTQ_RCVDATA_COMP_FIFO_ENQDEQ);
17208 if ((val & 0xffff) == sram_dma_descs) {
17209 ret = 0;
17210 break;
17211 }
17212
17213 udelay(100);
17214 }
17215
17216 return ret;
17217 }
17218
17219 #define TEST_BUFFER_SIZE 0x2000
17220
17221 static const struct pci_device_id tg3_dma_wait_state_chipsets[] = {
17222 { PCI_DEVICE(PCI_VENDOR_ID_APPLE, PCI_DEVICE_ID_APPLE_UNI_N_PCI15) },
17223 { },
17224 };
17225
17226 static int tg3_test_dma(struct tg3 *tp)
17227 {
17228 dma_addr_t buf_dma;
17229 u32 *buf, saved_dma_rwctrl;
17230 int ret = 0;
17231
17232 buf = dma_alloc_coherent(&tp->pdev->dev, TEST_BUFFER_SIZE,
17233 &buf_dma, GFP_KERNEL);
17234 if (!buf) {
17235 ret = -ENOMEM;
17236 goto out_nofree;
17237 }
17238
17239 tp->dma_rwctrl = ((0x7 << DMA_RWCTRL_PCI_WRITE_CMD_SHIFT) |
17240 (0x6 << DMA_RWCTRL_PCI_READ_CMD_SHIFT));
17241
17242 tp->dma_rwctrl = tg3_calc_dma_bndry(tp, tp->dma_rwctrl);
17243
17244 if (tg3_flag(tp, 57765_PLUS))
17245 goto out;
17246
17247 if (tg3_flag(tp, PCI_EXPRESS)) {
17248 /* DMA read watermark not used on PCIE */
17249 tp->dma_rwctrl |= 0x00180000;
17250 } else if (!tg3_flag(tp, PCIX_MODE)) {
17251 if (tg3_asic_rev(tp) == ASIC_REV_5705 ||
17252 tg3_asic_rev(tp) == ASIC_REV_5750)
17253 tp->dma_rwctrl |= 0x003f0000;
17254 else
17255 tp->dma_rwctrl |= 0x003f000f;
17256 } else {
17257 if (tg3_asic_rev(tp) == ASIC_REV_5703 ||
17258 tg3_asic_rev(tp) == ASIC_REV_5704) {
17259 u32 ccval = (tr32(TG3PCI_CLOCK_CTRL) & 0x1f);
17260 u32 read_water = 0x7;
17261
17262 /* If the 5704 is behind the EPB bridge, we can
17263 * do the less restrictive ONE_DMA workaround for
17264 * better performance.
17265 */
17266 if (tg3_flag(tp, 40BIT_DMA_BUG) &&
17267 tg3_asic_rev(tp) == ASIC_REV_5704)
17268 tp->dma_rwctrl |= 0x8000;
17269 else if (ccval == 0x6 || ccval == 0x7)
17270 tp->dma_rwctrl |= DMA_RWCTRL_ONE_DMA;
17271
17272 if (tg3_asic_rev(tp) == ASIC_REV_5703)
17273 read_water = 4;
17274 /* Set bit 23 to enable PCIX hw bug fix */
17275 tp->dma_rwctrl |=
17276 (read_water << DMA_RWCTRL_READ_WATER_SHIFT) |
17277 (0x3 << DMA_RWCTRL_WRITE_WATER_SHIFT) |
17278 (1 << 23);
17279 } else if (tg3_asic_rev(tp) == ASIC_REV_5780) {
17280 /* 5780 always in PCIX mode */
17281 tp->dma_rwctrl |= 0x00144000;
17282 } else if (tg3_asic_rev(tp) == ASIC_REV_5714) {
17283 /* 5714 always in PCIX mode */
17284 tp->dma_rwctrl |= 0x00148000;
17285 } else {
17286 tp->dma_rwctrl |= 0x001b000f;
17287 }
17288 }
17289 if (tg3_flag(tp, ONE_DMA_AT_ONCE))
17290 tp->dma_rwctrl |= DMA_RWCTRL_ONE_DMA;
17291
17292 if (tg3_asic_rev(tp) == ASIC_REV_5703 ||
17293 tg3_asic_rev(tp) == ASIC_REV_5704)
17294 tp->dma_rwctrl &= 0xfffffff0;
17295
17296 if (tg3_asic_rev(tp) == ASIC_REV_5700 ||
17297 tg3_asic_rev(tp) == ASIC_REV_5701) {
17298 /* Remove this if it causes problems for some boards. */
17299 tp->dma_rwctrl |= DMA_RWCTRL_USE_MEM_READ_MULT;
17300
17301 /* On 5700/5701 chips, we need to set this bit.
17302 * Otherwise the chip will issue cacheline transactions
17303 * to streamable DMA memory with not all the byte
17304 * enables turned on. This is an error on several
17305 * RISC PCI controllers, in particular sparc64.
17306 *
17307 * On 5703/5704 chips, this bit has been reassigned
17308 * a different meaning. In particular, it is used
17309 * on those chips to enable a PCI-X workaround.
17310 */
17311 tp->dma_rwctrl |= DMA_RWCTRL_ASSERT_ALL_BE;
17312 }
17313
17314 tw32(TG3PCI_DMA_RW_CTRL, tp->dma_rwctrl);
17315
17316
17317 if (tg3_asic_rev(tp) != ASIC_REV_5700 &&
17318 tg3_asic_rev(tp) != ASIC_REV_5701)
17319 goto out;
17320
17321 /* It is best to perform DMA test with maximum write burst size
17322 * to expose the 5700/5701 write DMA bug.
17323 */
17324 saved_dma_rwctrl = tp->dma_rwctrl;
17325 tp->dma_rwctrl &= ~DMA_RWCTRL_WRITE_BNDRY_MASK;
17326 tw32(TG3PCI_DMA_RW_CTRL, tp->dma_rwctrl);
17327
17328 while (1) {
17329 u32 *p = buf, i;
17330
17331 for (i = 0; i < TEST_BUFFER_SIZE / sizeof(u32); i++)
17332 p[i] = i;
17333
17334 /* Send the buffer to the chip. */
17335 ret = tg3_do_test_dma(tp, buf, buf_dma, TEST_BUFFER_SIZE, true);
17336 if (ret) {
17337 dev_err(&tp->pdev->dev,
17338 "%s: Buffer write failed. err = %d\n",
17339 __func__, ret);
17340 break;
17341 }
17342
17343 /* Now read it back. */
17344 ret = tg3_do_test_dma(tp, buf, buf_dma, TEST_BUFFER_SIZE, false);
17345 if (ret) {
17346 dev_err(&tp->pdev->dev, "%s: Buffer read failed. "
17347 "err = %d\n", __func__, ret);
17348 break;
17349 }
17350
17351 /* Verify it. */
17352 for (i = 0; i < TEST_BUFFER_SIZE / sizeof(u32); i++) {
17353 if (p[i] == i)
17354 continue;
17355
17356 if ((tp->dma_rwctrl & DMA_RWCTRL_WRITE_BNDRY_MASK) !=
17357 DMA_RWCTRL_WRITE_BNDRY_16) {
17358 tp->dma_rwctrl &= ~DMA_RWCTRL_WRITE_BNDRY_MASK;
17359 tp->dma_rwctrl |= DMA_RWCTRL_WRITE_BNDRY_16;
17360 tw32(TG3PCI_DMA_RW_CTRL, tp->dma_rwctrl);
17361 break;
17362 } else {
17363 dev_err(&tp->pdev->dev,
17364 "%s: Buffer corrupted on read back! "
17365 "(%d != %d)\n", __func__, p[i], i);
17366 ret = -ENODEV;
17367 goto out;
17368 }
17369 }
17370
17371 if (i == (TEST_BUFFER_SIZE / sizeof(u32))) {
17372 /* Success. */
17373 ret = 0;
17374 break;
17375 }
17376 }
17377 if ((tp->dma_rwctrl & DMA_RWCTRL_WRITE_BNDRY_MASK) !=
17378 DMA_RWCTRL_WRITE_BNDRY_16) {
17379 /* DMA test passed without adjusting DMA boundary,
17380 * now look for chipsets that are known to expose the
17381 * DMA bug without failing the test.
17382 */
17383 if (pci_dev_present(tg3_dma_wait_state_chipsets)) {
17384 tp->dma_rwctrl &= ~DMA_RWCTRL_WRITE_BNDRY_MASK;
17385 tp->dma_rwctrl |= DMA_RWCTRL_WRITE_BNDRY_16;
17386 } else {
17387 /* Safe to use the calculated DMA boundary. */
17388 tp->dma_rwctrl = saved_dma_rwctrl;
17389 }
17390
17391 tw32(TG3PCI_DMA_RW_CTRL, tp->dma_rwctrl);
17392 }
17393
17394 out:
17395 dma_free_coherent(&tp->pdev->dev, TEST_BUFFER_SIZE, buf, buf_dma);
17396 out_nofree:
17397 return ret;
17398 }
17399
17400 static void tg3_init_bufmgr_config(struct tg3 *tp)
17401 {
17402 if (tg3_flag(tp, 57765_PLUS)) {
17403 tp->bufmgr_config.mbuf_read_dma_low_water =
17404 DEFAULT_MB_RDMA_LOW_WATER_5705;
17405 tp->bufmgr_config.mbuf_mac_rx_low_water =
17406 DEFAULT_MB_MACRX_LOW_WATER_57765;
17407 tp->bufmgr_config.mbuf_high_water =
17408 DEFAULT_MB_HIGH_WATER_57765;
17409
17410 tp->bufmgr_config.mbuf_read_dma_low_water_jumbo =
17411 DEFAULT_MB_RDMA_LOW_WATER_5705;
17412 tp->bufmgr_config.mbuf_mac_rx_low_water_jumbo =
17413 DEFAULT_MB_MACRX_LOW_WATER_JUMBO_57765;
17414 tp->bufmgr_config.mbuf_high_water_jumbo =
17415 DEFAULT_MB_HIGH_WATER_JUMBO_57765;
17416 } else if (tg3_flag(tp, 5705_PLUS)) {
17417 tp->bufmgr_config.mbuf_read_dma_low_water =
17418 DEFAULT_MB_RDMA_LOW_WATER_5705;
17419 tp->bufmgr_config.mbuf_mac_rx_low_water =
17420 DEFAULT_MB_MACRX_LOW_WATER_5705;
17421 tp->bufmgr_config.mbuf_high_water =
17422 DEFAULT_MB_HIGH_WATER_5705;
17423 if (tg3_asic_rev(tp) == ASIC_REV_5906) {
17424 tp->bufmgr_config.mbuf_mac_rx_low_water =
17425 DEFAULT_MB_MACRX_LOW_WATER_5906;
17426 tp->bufmgr_config.mbuf_high_water =
17427 DEFAULT_MB_HIGH_WATER_5906;
17428 }
17429
17430 tp->bufmgr_config.mbuf_read_dma_low_water_jumbo =
17431 DEFAULT_MB_RDMA_LOW_WATER_JUMBO_5780;
17432 tp->bufmgr_config.mbuf_mac_rx_low_water_jumbo =
17433 DEFAULT_MB_MACRX_LOW_WATER_JUMBO_5780;
17434 tp->bufmgr_config.mbuf_high_water_jumbo =
17435 DEFAULT_MB_HIGH_WATER_JUMBO_5780;
17436 } else {
17437 tp->bufmgr_config.mbuf_read_dma_low_water =
17438 DEFAULT_MB_RDMA_LOW_WATER;
17439 tp->bufmgr_config.mbuf_mac_rx_low_water =
17440 DEFAULT_MB_MACRX_LOW_WATER;
17441 tp->bufmgr_config.mbuf_high_water =
17442 DEFAULT_MB_HIGH_WATER;
17443
17444 tp->bufmgr_config.mbuf_read_dma_low_water_jumbo =
17445 DEFAULT_MB_RDMA_LOW_WATER_JUMBO;
17446 tp->bufmgr_config.mbuf_mac_rx_low_water_jumbo =
17447 DEFAULT_MB_MACRX_LOW_WATER_JUMBO;
17448 tp->bufmgr_config.mbuf_high_water_jumbo =
17449 DEFAULT_MB_HIGH_WATER_JUMBO;
17450 }
17451
17452 tp->bufmgr_config.dma_low_water = DEFAULT_DMA_LOW_WATER;
17453 tp->bufmgr_config.dma_high_water = DEFAULT_DMA_HIGH_WATER;
17454 }
17455
17456 static char *tg3_phy_string(struct tg3 *tp)
17457 {
17458 switch (tp->phy_id & TG3_PHY_ID_MASK) {
17459 case TG3_PHY_ID_BCM5400: return "5400";
17460 case TG3_PHY_ID_BCM5401: return "5401";
17461 case TG3_PHY_ID_BCM5411: return "5411";
17462 case TG3_PHY_ID_BCM5701: return "5701";
17463 case TG3_PHY_ID_BCM5703: return "5703";
17464 case TG3_PHY_ID_BCM5704: return "5704";
17465 case TG3_PHY_ID_BCM5705: return "5705";
17466 case TG3_PHY_ID_BCM5750: return "5750";
17467 case TG3_PHY_ID_BCM5752: return "5752";
17468 case TG3_PHY_ID_BCM5714: return "5714";
17469 case TG3_PHY_ID_BCM5780: return "5780";
17470 case TG3_PHY_ID_BCM5755: return "5755";
17471 case TG3_PHY_ID_BCM5787: return "5787";
17472 case TG3_PHY_ID_BCM5784: return "5784";
17473 case TG3_PHY_ID_BCM5756: return "5722/5756";
17474 case TG3_PHY_ID_BCM5906: return "5906";
17475 case TG3_PHY_ID_BCM5761: return "5761";
17476 case TG3_PHY_ID_BCM5718C: return "5718C";
17477 case TG3_PHY_ID_BCM5718S: return "5718S";
17478 case TG3_PHY_ID_BCM57765: return "57765";
17479 case TG3_PHY_ID_BCM5719C: return "5719C";
17480 case TG3_PHY_ID_BCM5720C: return "5720C";
17481 case TG3_PHY_ID_BCM5762: return "5762C";
17482 case TG3_PHY_ID_BCM8002: return "8002/serdes";
17483 case 0: return "serdes";
17484 default: return "unknown";
17485 }
17486 }
17487
17488 static char *tg3_bus_string(struct tg3 *tp, char *str)
17489 {
17490 if (tg3_flag(tp, PCI_EXPRESS)) {
17491 strcpy(str, "PCI Express");
17492 return str;
17493 } else if (tg3_flag(tp, PCIX_MODE)) {
17494 u32 clock_ctrl = tr32(TG3PCI_CLOCK_CTRL) & 0x1f;
17495
17496 strcpy(str, "PCIX:");
17497
17498 if ((clock_ctrl == 7) ||
17499 ((tr32(GRC_MISC_CFG) & GRC_MISC_CFG_BOARD_ID_MASK) ==
17500 GRC_MISC_CFG_BOARD_ID_5704CIOBE))
17501 strcat(str, "133MHz");
17502 else if (clock_ctrl == 0)
17503 strcat(str, "33MHz");
17504 else if (clock_ctrl == 2)
17505 strcat(str, "50MHz");
17506 else if (clock_ctrl == 4)
17507 strcat(str, "66MHz");
17508 else if (clock_ctrl == 6)
17509 strcat(str, "100MHz");
17510 } else {
17511 strcpy(str, "PCI:");
17512 if (tg3_flag(tp, PCI_HIGH_SPEED))
17513 strcat(str, "66MHz");
17514 else
17515 strcat(str, "33MHz");
17516 }
17517 if (tg3_flag(tp, PCI_32BIT))
17518 strcat(str, ":32-bit");
17519 else
17520 strcat(str, ":64-bit");
17521 return str;
17522 }
17523
17524 static void tg3_init_coal(struct tg3 *tp)
17525 {
17526 struct ethtool_coalesce *ec = &tp->coal;
17527
17528 memset(ec, 0, sizeof(*ec));
17529 ec->cmd = ETHTOOL_GCOALESCE;
17530 ec->rx_coalesce_usecs = LOW_RXCOL_TICKS;
17531 ec->tx_coalesce_usecs = LOW_TXCOL_TICKS;
17532 ec->rx_max_coalesced_frames = LOW_RXMAX_FRAMES;
17533 ec->tx_max_coalesced_frames = LOW_TXMAX_FRAMES;
17534 ec->rx_coalesce_usecs_irq = DEFAULT_RXCOAL_TICK_INT;
17535 ec->tx_coalesce_usecs_irq = DEFAULT_TXCOAL_TICK_INT;
17536 ec->rx_max_coalesced_frames_irq = DEFAULT_RXCOAL_MAXF_INT;
17537 ec->tx_max_coalesced_frames_irq = DEFAULT_TXCOAL_MAXF_INT;
17538 ec->stats_block_coalesce_usecs = DEFAULT_STAT_COAL_TICKS;
17539
17540 if (tp->coalesce_mode & (HOSTCC_MODE_CLRTICK_RXBD |
17541 HOSTCC_MODE_CLRTICK_TXBD)) {
17542 ec->rx_coalesce_usecs = LOW_RXCOL_TICKS_CLRTCKS;
17543 ec->rx_coalesce_usecs_irq = DEFAULT_RXCOAL_TICK_INT_CLRTCKS;
17544 ec->tx_coalesce_usecs = LOW_TXCOL_TICKS_CLRTCKS;
17545 ec->tx_coalesce_usecs_irq = DEFAULT_TXCOAL_TICK_INT_CLRTCKS;
17546 }
17547
17548 if (tg3_flag(tp, 5705_PLUS)) {
17549 ec->rx_coalesce_usecs_irq = 0;
17550 ec->tx_coalesce_usecs_irq = 0;
17551 ec->stats_block_coalesce_usecs = 0;
17552 }
17553 }
17554
17555 static int tg3_init_one(struct pci_dev *pdev,
17556 const struct pci_device_id *ent)
17557 {
17558 struct net_device *dev;
17559 struct tg3 *tp;
17560 int i, err;
17561 u32 sndmbx, rcvmbx, intmbx;
17562 char str[40];
17563 u64 dma_mask, persist_dma_mask;
17564 netdev_features_t features = 0;
17565
17566 printk_once(KERN_INFO "%s\n", version);
17567
17568 err = pci_enable_device(pdev);
17569 if (err) {
17570 dev_err(&pdev->dev, "Cannot enable PCI device, aborting\n");
17571 return err;
17572 }
17573
17574 err = pci_request_regions(pdev, DRV_MODULE_NAME);
17575 if (err) {
17576 dev_err(&pdev->dev, "Cannot obtain PCI resources, aborting\n");
17577 goto err_out_disable_pdev;
17578 }
17579
17580 pci_set_master(pdev);
17581
17582 dev = alloc_etherdev_mq(sizeof(*tp), TG3_IRQ_MAX_VECS);
17583 if (!dev) {
17584 err = -ENOMEM;
17585 goto err_out_free_res;
17586 }
17587
17588 SET_NETDEV_DEV(dev, &pdev->dev);
17589
17590 tp = netdev_priv(dev);
17591 tp->pdev = pdev;
17592 tp->dev = dev;
17593 tp->rx_mode = TG3_DEF_RX_MODE;
17594 tp->tx_mode = TG3_DEF_TX_MODE;
17595 tp->irq_sync = 1;
17596 tp->pcierr_recovery = false;
17597
17598 if (tg3_debug > 0)
17599 tp->msg_enable = tg3_debug;
17600 else
17601 tp->msg_enable = TG3_DEF_MSG_ENABLE;
17602
17603 if (pdev_is_ssb_gige_core(pdev)) {
17604 tg3_flag_set(tp, IS_SSB_CORE);
17605 if (ssb_gige_must_flush_posted_writes(pdev))
17606 tg3_flag_set(tp, FLUSH_POSTED_WRITES);
17607 if (ssb_gige_one_dma_at_once(pdev))
17608 tg3_flag_set(tp, ONE_DMA_AT_ONCE);
17609 if (ssb_gige_have_roboswitch(pdev)) {
17610 tg3_flag_set(tp, USE_PHYLIB);
17611 tg3_flag_set(tp, ROBOSWITCH);
17612 }
17613 if (ssb_gige_is_rgmii(pdev))
17614 tg3_flag_set(tp, RGMII_MODE);
17615 }
17616
17617 /* The word/byte swap controls here control register access byte
17618 * swapping. DMA data byte swapping is controlled in the GRC_MODE
17619 * setting below.
17620 */
17621 tp->misc_host_ctrl =
17622 MISC_HOST_CTRL_MASK_PCI_INT |
17623 MISC_HOST_CTRL_WORD_SWAP |
17624 MISC_HOST_CTRL_INDIR_ACCESS |
17625 MISC_HOST_CTRL_PCISTATE_RW;
17626
17627 /* The NONFRM (non-frame) byte/word swap controls take effect
17628 * on descriptor entries, anything which isn't packet data.
17629 *
17630 * The StrongARM chips on the board (one for tx, one for rx)
17631 * are running in big-endian mode.
17632 */
17633 tp->grc_mode = (GRC_MODE_WSWAP_DATA | GRC_MODE_BSWAP_DATA |
17634 GRC_MODE_WSWAP_NONFRM_DATA);
17635 #ifdef __BIG_ENDIAN
17636 tp->grc_mode |= GRC_MODE_BSWAP_NONFRM_DATA;
17637 #endif
17638 spin_lock_init(&tp->lock);
17639 spin_lock_init(&tp->indirect_lock);
17640 INIT_WORK(&tp->reset_task, tg3_reset_task);
17641
17642 tp->regs = pci_ioremap_bar(pdev, BAR_0);
17643 if (!tp->regs) {
17644 dev_err(&pdev->dev, "Cannot map device registers, aborting\n");
17645 err = -ENOMEM;
17646 goto err_out_free_dev;
17647 }
17648
17649 if (tp->pdev->device == PCI_DEVICE_ID_TIGON3_5761 ||
17650 tp->pdev->device == PCI_DEVICE_ID_TIGON3_5761E ||
17651 tp->pdev->device == TG3PCI_DEVICE_TIGON3_5761S ||
17652 tp->pdev->device == TG3PCI_DEVICE_TIGON3_5761SE ||
17653 tp->pdev->device == TG3PCI_DEVICE_TIGON3_5717 ||
17654 tp->pdev->device == TG3PCI_DEVICE_TIGON3_5717_C ||
17655 tp->pdev->device == TG3PCI_DEVICE_TIGON3_5718 ||
17656 tp->pdev->device == TG3PCI_DEVICE_TIGON3_5719 ||
17657 tp->pdev->device == TG3PCI_DEVICE_TIGON3_5720 ||
17658 tp->pdev->device == TG3PCI_DEVICE_TIGON3_57767 ||
17659 tp->pdev->device == TG3PCI_DEVICE_TIGON3_57764 ||
17660 tp->pdev->device == TG3PCI_DEVICE_TIGON3_5762 ||
17661 tp->pdev->device == TG3PCI_DEVICE_TIGON3_5725 ||
17662 tp->pdev->device == TG3PCI_DEVICE_TIGON3_5727 ||
17663 tp->pdev->device == TG3PCI_DEVICE_TIGON3_57787) {
17664 tg3_flag_set(tp, ENABLE_APE);
17665 tp->aperegs = pci_ioremap_bar(pdev, BAR_2);
17666 if (!tp->aperegs) {
17667 dev_err(&pdev->dev,
17668 "Cannot map APE registers, aborting\n");
17669 err = -ENOMEM;
17670 goto err_out_iounmap;
17671 }
17672 }
17673
17674 tp->rx_pending = TG3_DEF_RX_RING_PENDING;
17675 tp->rx_jumbo_pending = TG3_DEF_RX_JUMBO_RING_PENDING;
17676
17677 dev->ethtool_ops = &tg3_ethtool_ops;
17678 dev->watchdog_timeo = TG3_TX_TIMEOUT;
17679 dev->netdev_ops = &tg3_netdev_ops;
17680 dev->irq = pdev->irq;
17681
17682 err = tg3_get_invariants(tp, ent);
17683 if (err) {
17684 dev_err(&pdev->dev,
17685 "Problem fetching invariants of chip, aborting\n");
17686 goto err_out_apeunmap;
17687 }
17688
17689 /* The EPB bridge inside 5714, 5715, and 5780 and any
17690 * device behind the EPB cannot support DMA addresses > 40-bit.
17691 * On 64-bit systems with IOMMU, use 40-bit dma_mask.
17692 * On 64-bit systems without IOMMU, use 64-bit dma_mask and
17693 * do DMA address check in tg3_start_xmit().
17694 */
17695 if (tg3_flag(tp, IS_5788))
17696 persist_dma_mask = dma_mask = DMA_BIT_MASK(32);
17697 else if (tg3_flag(tp, 40BIT_DMA_BUG)) {
17698 persist_dma_mask = dma_mask = DMA_BIT_MASK(40);
17699 #ifdef CONFIG_HIGHMEM
17700 dma_mask = DMA_BIT_MASK(64);
17701 #endif
17702 } else
17703 persist_dma_mask = dma_mask = DMA_BIT_MASK(64);
17704
17705 /* Configure DMA attributes. */
17706 if (dma_mask > DMA_BIT_MASK(32)) {
17707 err = pci_set_dma_mask(pdev, dma_mask);
17708 if (!err) {
17709 features |= NETIF_F_HIGHDMA;
17710 err = pci_set_consistent_dma_mask(pdev,
17711 persist_dma_mask);
17712 if (err < 0) {
17713 dev_err(&pdev->dev, "Unable to obtain 64 bit "
17714 "DMA for consistent allocations\n");
17715 goto err_out_apeunmap;
17716 }
17717 }
17718 }
17719 if (err || dma_mask == DMA_BIT_MASK(32)) {
17720 err = pci_set_dma_mask(pdev, DMA_BIT_MASK(32));
17721 if (err) {
17722 dev_err(&pdev->dev,
17723 "No usable DMA configuration, aborting\n");
17724 goto err_out_apeunmap;
17725 }
17726 }
17727
17728 tg3_init_bufmgr_config(tp);
17729
17730 /* 5700 B0 chips do not support checksumming correctly due
17731 * to hardware bugs.
17732 */
17733 if (tg3_chip_rev_id(tp) != CHIPREV_ID_5700_B0) {
17734 features |= NETIF_F_SG | NETIF_F_IP_CSUM | NETIF_F_RXCSUM;
17735
17736 if (tg3_flag(tp, 5755_PLUS))
17737 features |= NETIF_F_IPV6_CSUM;
17738 }
17739
17740 /* TSO is on by default on chips that support hardware TSO.
17741 * Firmware TSO on older chips gives lower performance, so it
17742 * is off by default, but can be enabled using ethtool.
17743 */
17744 if ((tg3_flag(tp, HW_TSO_1) ||
17745 tg3_flag(tp, HW_TSO_2) ||
17746 tg3_flag(tp, HW_TSO_3)) &&
17747 (features & NETIF_F_IP_CSUM))
17748 features |= NETIF_F_TSO;
17749 if (tg3_flag(tp, HW_TSO_2) || tg3_flag(tp, HW_TSO_3)) {
17750 if (features & NETIF_F_IPV6_CSUM)
17751 features |= NETIF_F_TSO6;
17752 if (tg3_flag(tp, HW_TSO_3) ||
17753 tg3_asic_rev(tp) == ASIC_REV_5761 ||
17754 (tg3_asic_rev(tp) == ASIC_REV_5784 &&
17755 tg3_chip_rev(tp) != CHIPREV_5784_AX) ||
17756 tg3_asic_rev(tp) == ASIC_REV_5785 ||
17757 tg3_asic_rev(tp) == ASIC_REV_57780)
17758 features |= NETIF_F_TSO_ECN;
17759 }
17760
17761 dev->features |= features | NETIF_F_HW_VLAN_CTAG_TX |
17762 NETIF_F_HW_VLAN_CTAG_RX;
17763 dev->vlan_features |= features;
17764
17765 /*
17766 * Add loopback capability only for a subset of devices that support
17767 * MAC-LOOPBACK. Eventually this need to be enhanced to allow INT-PHY
17768 * loopback for the remaining devices.
17769 */
17770 if (tg3_asic_rev(tp) != ASIC_REV_5780 &&
17771 !tg3_flag(tp, CPMU_PRESENT))
17772 /* Add the loopback capability */
17773 features |= NETIF_F_LOOPBACK;
17774
17775 dev->hw_features |= features;
17776 dev->priv_flags |= IFF_UNICAST_FLT;
17777
17778 if (tg3_chip_rev_id(tp) == CHIPREV_ID_5705_A1 &&
17779 !tg3_flag(tp, TSO_CAPABLE) &&
17780 !(tr32(TG3PCI_PCISTATE) & PCISTATE_BUS_SPEED_HIGH)) {
17781 tg3_flag_set(tp, MAX_RXPEND_64);
17782 tp->rx_pending = 63;
17783 }
17784
17785 err = tg3_get_device_address(tp);
17786 if (err) {
17787 dev_err(&pdev->dev,
17788 "Could not obtain valid ethernet address, aborting\n");
17789 goto err_out_apeunmap;
17790 }
17791
17792 /*
17793 * Reset chip in case UNDI or EFI driver did not shutdown
17794 * DMA self test will enable WDMAC and we'll see (spurious)
17795 * pending DMA on the PCI bus at that point.
17796 */
17797 if ((tr32(HOSTCC_MODE) & HOSTCC_MODE_ENABLE) ||
17798 (tr32(WDMAC_MODE) & WDMAC_MODE_ENABLE)) {
17799 tw32(MEMARB_MODE, MEMARB_MODE_ENABLE);
17800 tg3_halt(tp, RESET_KIND_SHUTDOWN, 1);
17801 }
17802
17803 err = tg3_test_dma(tp);
17804 if (err) {
17805 dev_err(&pdev->dev, "DMA engine test failed, aborting\n");
17806 goto err_out_apeunmap;
17807 }
17808
17809 intmbx = MAILBOX_INTERRUPT_0 + TG3_64BIT_REG_LOW;
17810 rcvmbx = MAILBOX_RCVRET_CON_IDX_0 + TG3_64BIT_REG_LOW;
17811 sndmbx = MAILBOX_SNDHOST_PROD_IDX_0 + TG3_64BIT_REG_LOW;
17812 for (i = 0; i < tp->irq_max; i++) {
17813 struct tg3_napi *tnapi = &tp->napi[i];
17814
17815 tnapi->tp = tp;
17816 tnapi->tx_pending = TG3_DEF_TX_RING_PENDING;
17817
17818 tnapi->int_mbox = intmbx;
17819 if (i <= 4)
17820 intmbx += 0x8;
17821 else
17822 intmbx += 0x4;
17823
17824 tnapi->consmbox = rcvmbx;
17825 tnapi->prodmbox = sndmbx;
17826
17827 if (i)
17828 tnapi->coal_now = HOSTCC_MODE_COAL_VEC1_NOW << (i - 1);
17829 else
17830 tnapi->coal_now = HOSTCC_MODE_NOW;
17831
17832 if (!tg3_flag(tp, SUPPORT_MSIX))
17833 break;
17834
17835 /*
17836 * If we support MSIX, we'll be using RSS. If we're using
17837 * RSS, the first vector only handles link interrupts and the
17838 * remaining vectors handle rx and tx interrupts. Reuse the
17839 * mailbox values for the next iteration. The values we setup
17840 * above are still useful for the single vectored mode.
17841 */
17842 if (!i)
17843 continue;
17844
17845 rcvmbx += 0x8;
17846
17847 if (sndmbx & 0x4)
17848 sndmbx -= 0x4;
17849 else
17850 sndmbx += 0xc;
17851 }
17852
17853 tg3_init_coal(tp);
17854
17855 pci_set_drvdata(pdev, dev);
17856
17857 if (tg3_asic_rev(tp) == ASIC_REV_5719 ||
17858 tg3_asic_rev(tp) == ASIC_REV_5720 ||
17859 tg3_asic_rev(tp) == ASIC_REV_5762)
17860 tg3_flag_set(tp, PTP_CAPABLE);
17861
17862 tg3_timer_init(tp);
17863
17864 tg3_carrier_off(tp);
17865
17866 err = register_netdev(dev);
17867 if (err) {
17868 dev_err(&pdev->dev, "Cannot register net device, aborting\n");
17869 goto err_out_apeunmap;
17870 }
17871
17872 netdev_info(dev, "Tigon3 [partno(%s) rev %04x] (%s) MAC address %pM\n",
17873 tp->board_part_number,
17874 tg3_chip_rev_id(tp),
17875 tg3_bus_string(tp, str),
17876 dev->dev_addr);
17877
17878 if (tp->phy_flags & TG3_PHYFLG_IS_CONNECTED) {
17879 struct phy_device *phydev;
17880 phydev = tp->mdio_bus->phy_map[tp->phy_addr];
17881 netdev_info(dev,
17882 "attached PHY driver [%s] (mii_bus:phy_addr=%s)\n",
17883 phydev->drv->name, dev_name(&phydev->dev));
17884 } else {
17885 char *ethtype;
17886
17887 if (tp->phy_flags & TG3_PHYFLG_10_100_ONLY)
17888 ethtype = "10/100Base-TX";
17889 else if (tp->phy_flags & TG3_PHYFLG_ANY_SERDES)
17890 ethtype = "1000Base-SX";
17891 else
17892 ethtype = "10/100/1000Base-T";
17893
17894 netdev_info(dev, "attached PHY is %s (%s Ethernet) "
17895 "(WireSpeed[%d], EEE[%d])\n",
17896 tg3_phy_string(tp), ethtype,
17897 (tp->phy_flags & TG3_PHYFLG_NO_ETH_WIRE_SPEED) == 0,
17898 (tp->phy_flags & TG3_PHYFLG_EEE_CAP) != 0);
17899 }
17900
17901 netdev_info(dev, "RXcsums[%d] LinkChgREG[%d] MIirq[%d] ASF[%d] TSOcap[%d]\n",
17902 (dev->features & NETIF_F_RXCSUM) != 0,
17903 tg3_flag(tp, USE_LINKCHG_REG) != 0,
17904 (tp->phy_flags & TG3_PHYFLG_USE_MI_INTERRUPT) != 0,
17905 tg3_flag(tp, ENABLE_ASF) != 0,
17906 tg3_flag(tp, TSO_CAPABLE) != 0);
17907 netdev_info(dev, "dma_rwctrl[%08x] dma_mask[%d-bit]\n",
17908 tp->dma_rwctrl,
17909 pdev->dma_mask == DMA_BIT_MASK(32) ? 32 :
17910 ((u64)pdev->dma_mask) == DMA_BIT_MASK(40) ? 40 : 64);
17911
17912 pci_save_state(pdev);
17913
17914 return 0;
17915
17916 err_out_apeunmap:
17917 if (tp->aperegs) {
17918 iounmap(tp->aperegs);
17919 tp->aperegs = NULL;
17920 }
17921
17922 err_out_iounmap:
17923 if (tp->regs) {
17924 iounmap(tp->regs);
17925 tp->regs = NULL;
17926 }
17927
17928 err_out_free_dev:
17929 free_netdev(dev);
17930
17931 err_out_free_res:
17932 pci_release_regions(pdev);
17933
17934 err_out_disable_pdev:
17935 if (pci_is_enabled(pdev))
17936 pci_disable_device(pdev);
17937 return err;
17938 }
17939
17940 static void tg3_remove_one(struct pci_dev *pdev)
17941 {
17942 struct net_device *dev = pci_get_drvdata(pdev);
17943
17944 if (dev) {
17945 struct tg3 *tp = netdev_priv(dev);
17946
17947 release_firmware(tp->fw);
17948
17949 tg3_reset_task_cancel(tp);
17950
17951 if (tg3_flag(tp, USE_PHYLIB)) {
17952 tg3_phy_fini(tp);
17953 tg3_mdio_fini(tp);
17954 }
17955
17956 unregister_netdev(dev);
17957 if (tp->aperegs) {
17958 iounmap(tp->aperegs);
17959 tp->aperegs = NULL;
17960 }
17961 if (tp->regs) {
17962 iounmap(tp->regs);
17963 tp->regs = NULL;
17964 }
17965 free_netdev(dev);
17966 pci_release_regions(pdev);
17967 pci_disable_device(pdev);
17968 }
17969 }
17970
17971 #ifdef CONFIG_PM_SLEEP
17972 static int tg3_suspend(struct device *device)
17973 {
17974 struct pci_dev *pdev = to_pci_dev(device);
17975 struct net_device *dev = pci_get_drvdata(pdev);
17976 struct tg3 *tp = netdev_priv(dev);
17977 int err = 0;
17978
17979 rtnl_lock();
17980
17981 if (!netif_running(dev))
17982 goto unlock;
17983
17984 tg3_reset_task_cancel(tp);
17985 tg3_phy_stop(tp);
17986 tg3_netif_stop(tp);
17987
17988 tg3_timer_stop(tp);
17989
17990 tg3_full_lock(tp, 1);
17991 tg3_disable_ints(tp);
17992 tg3_full_unlock(tp);
17993
17994 netif_device_detach(dev);
17995
17996 tg3_full_lock(tp, 0);
17997 tg3_halt(tp, RESET_KIND_SHUTDOWN, 1);
17998 tg3_flag_clear(tp, INIT_COMPLETE);
17999 tg3_full_unlock(tp);
18000
18001 err = tg3_power_down_prepare(tp);
18002 if (err) {
18003 int err2;
18004
18005 tg3_full_lock(tp, 0);
18006
18007 tg3_flag_set(tp, INIT_COMPLETE);
18008 err2 = tg3_restart_hw(tp, true);
18009 if (err2)
18010 goto out;
18011
18012 tg3_timer_start(tp);
18013
18014 netif_device_attach(dev);
18015 tg3_netif_start(tp);
18016
18017 out:
18018 tg3_full_unlock(tp);
18019
18020 if (!err2)
18021 tg3_phy_start(tp);
18022 }
18023
18024 unlock:
18025 rtnl_unlock();
18026 return err;
18027 }
18028
18029 static int tg3_resume(struct device *device)
18030 {
18031 struct pci_dev *pdev = to_pci_dev(device);
18032 struct net_device *dev = pci_get_drvdata(pdev);
18033 struct tg3 *tp = netdev_priv(dev);
18034 int err = 0;
18035
18036 rtnl_lock();
18037
18038 if (!netif_running(dev))
18039 goto unlock;
18040
18041 netif_device_attach(dev);
18042
18043 tg3_full_lock(tp, 0);
18044
18045 tg3_ape_driver_state_change(tp, RESET_KIND_INIT);
18046
18047 tg3_flag_set(tp, INIT_COMPLETE);
18048 err = tg3_restart_hw(tp,
18049 !(tp->phy_flags & TG3_PHYFLG_KEEP_LINK_ON_PWRDN));
18050 if (err)
18051 goto out;
18052
18053 tg3_timer_start(tp);
18054
18055 tg3_netif_start(tp);
18056
18057 out:
18058 tg3_full_unlock(tp);
18059
18060 if (!err)
18061 tg3_phy_start(tp);
18062
18063 unlock:
18064 rtnl_unlock();
18065 return err;
18066 }
18067 #endif /* CONFIG_PM_SLEEP */
18068
18069 static SIMPLE_DEV_PM_OPS(tg3_pm_ops, tg3_suspend, tg3_resume);
18070
18071 static void tg3_shutdown(struct pci_dev *pdev)
18072 {
18073 struct net_device *dev = pci_get_drvdata(pdev);
18074 struct tg3 *tp = netdev_priv(dev);
18075
18076 rtnl_lock();
18077 netif_device_detach(dev);
18078
18079 if (netif_running(dev))
18080 dev_close(dev);
18081
18082 if (system_state == SYSTEM_POWER_OFF)
18083 tg3_power_down(tp);
18084
18085 rtnl_unlock();
18086 }
18087
18088 /**
18089 * tg3_io_error_detected - called when PCI error is detected
18090 * @pdev: Pointer to PCI device
18091 * @state: The current pci connection state
18092 *
18093 * This function is called after a PCI bus error affecting
18094 * this device has been detected.
18095 */
18096 static pci_ers_result_t tg3_io_error_detected(struct pci_dev *pdev,
18097 pci_channel_state_t state)
18098 {
18099 struct net_device *netdev = pci_get_drvdata(pdev);
18100 struct tg3 *tp = netdev_priv(netdev);
18101 pci_ers_result_t err = PCI_ERS_RESULT_NEED_RESET;
18102
18103 netdev_info(netdev, "PCI I/O error detected\n");
18104
18105 rtnl_lock();
18106
18107 tp->pcierr_recovery = true;
18108
18109 /* We probably don't have netdev yet */
18110 if (!netdev || !netif_running(netdev))
18111 goto done;
18112
18113 tg3_phy_stop(tp);
18114
18115 tg3_netif_stop(tp);
18116
18117 tg3_timer_stop(tp);
18118
18119 /* Want to make sure that the reset task doesn't run */
18120 tg3_reset_task_cancel(tp);
18121
18122 netif_device_detach(netdev);
18123
18124 /* Clean up software state, even if MMIO is blocked */
18125 tg3_full_lock(tp, 0);
18126 tg3_halt(tp, RESET_KIND_SHUTDOWN, 0);
18127 tg3_full_unlock(tp);
18128
18129 done:
18130 if (state == pci_channel_io_perm_failure) {
18131 if (netdev) {
18132 tg3_napi_enable(tp);
18133 dev_close(netdev);
18134 }
18135 err = PCI_ERS_RESULT_DISCONNECT;
18136 } else {
18137 pci_disable_device(pdev);
18138 }
18139
18140 rtnl_unlock();
18141
18142 return err;
18143 }
18144
18145 /**
18146 * tg3_io_slot_reset - called after the pci bus has been reset.
18147 * @pdev: Pointer to PCI device
18148 *
18149 * Restart the card from scratch, as if from a cold-boot.
18150 * At this point, the card has exprienced a hard reset,
18151 * followed by fixups by BIOS, and has its config space
18152 * set up identically to what it was at cold boot.
18153 */
18154 static pci_ers_result_t tg3_io_slot_reset(struct pci_dev *pdev)
18155 {
18156 struct net_device *netdev = pci_get_drvdata(pdev);
18157 struct tg3 *tp = netdev_priv(netdev);
18158 pci_ers_result_t rc = PCI_ERS_RESULT_DISCONNECT;
18159 int err;
18160
18161 rtnl_lock();
18162
18163 if (pci_enable_device(pdev)) {
18164 dev_err(&pdev->dev,
18165 "Cannot re-enable PCI device after reset.\n");
18166 goto done;
18167 }
18168
18169 pci_set_master(pdev);
18170 pci_restore_state(pdev);
18171 pci_save_state(pdev);
18172
18173 if (!netdev || !netif_running(netdev)) {
18174 rc = PCI_ERS_RESULT_RECOVERED;
18175 goto done;
18176 }
18177
18178 err = tg3_power_up(tp);
18179 if (err)
18180 goto done;
18181
18182 rc = PCI_ERS_RESULT_RECOVERED;
18183
18184 done:
18185 if (rc != PCI_ERS_RESULT_RECOVERED && netdev && netif_running(netdev)) {
18186 tg3_napi_enable(tp);
18187 dev_close(netdev);
18188 }
18189 rtnl_unlock();
18190
18191 return rc;
18192 }
18193
18194 /**
18195 * tg3_io_resume - called when traffic can start flowing again.
18196 * @pdev: Pointer to PCI device
18197 *
18198 * This callback is called when the error recovery driver tells
18199 * us that its OK to resume normal operation.
18200 */
18201 static void tg3_io_resume(struct pci_dev *pdev)
18202 {
18203 struct net_device *netdev = pci_get_drvdata(pdev);
18204 struct tg3 *tp = netdev_priv(netdev);
18205 int err;
18206
18207 rtnl_lock();
18208
18209 if (!netif_running(netdev))
18210 goto done;
18211
18212 tg3_full_lock(tp, 0);
18213 tg3_ape_driver_state_change(tp, RESET_KIND_INIT);
18214 tg3_flag_set(tp, INIT_COMPLETE);
18215 err = tg3_restart_hw(tp, true);
18216 if (err) {
18217 tg3_full_unlock(tp);
18218 netdev_err(netdev, "Cannot restart hardware after reset.\n");
18219 goto done;
18220 }
18221
18222 netif_device_attach(netdev);
18223
18224 tg3_timer_start(tp);
18225
18226 tg3_netif_start(tp);
18227
18228 tg3_full_unlock(tp);
18229
18230 tg3_phy_start(tp);
18231
18232 done:
18233 tp->pcierr_recovery = false;
18234 rtnl_unlock();
18235 }
18236
18237 static const struct pci_error_handlers tg3_err_handler = {
18238 .error_detected = tg3_io_error_detected,
18239 .slot_reset = tg3_io_slot_reset,
18240 .resume = tg3_io_resume
18241 };
18242
18243 static struct pci_driver tg3_driver = {
18244 .name = DRV_MODULE_NAME,
18245 .id_table = tg3_pci_tbl,
18246 .probe = tg3_init_one,
18247 .remove = tg3_remove_one,
18248 .err_handler = &tg3_err_handler,
18249 .driver.pm = &tg3_pm_ops,
18250 .shutdown = tg3_shutdown,
18251 };
18252
18253 module_pci_driver(tg3_driver);
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