iwlwifi: add ucode init flow handling for iwl5000
[deliverable/linux.git] / drivers / net / wireless / iwlwifi / iwl-commands.h
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1/******************************************************************************
2 *
3 * This file is provided under a dual BSD/GPLv2 license. When using or
4 * redistributing this file, you may do so under either license.
5 *
6 * GPL LICENSE SUMMARY
7 *
eb7ae89c 8 * Copyright(c) 2005 - 2008 Intel Corporation. All rights reserved.
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9 *
10 * This program is free software; you can redistribute it and/or modify
01ebd063 11 * it under the terms of version 2 of the GNU General Public License as
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12 * published by the Free Software Foundation.
13 *
14 * This program is distributed in the hope that it will be useful, but
15 * WITHOUT ANY WARRANTY; without even the implied warranty of
16 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
17 * General Public License for more details.
18 *
19 * You should have received a copy of the GNU General Public License
20 * along with this program; if not, write to the Free Software
21 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110,
22 * USA
23 *
24 * The full GNU General Public License is included in this distribution
25 * in the file called LICENSE.GPL.
26 *
27 * Contact Information:
28 * James P. Ketrenos <ipw2100-admin@linux.intel.com>
29 * Intel Corporation, 5200 N.E. Elam Young Parkway, Hillsboro, OR 97124-6497
30 *
31 * BSD LICENSE
32 *
eb7ae89c 33 * Copyright(c) 2005 - 2008 Intel Corporation. All rights reserved.
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34 * All rights reserved.
35 *
36 * Redistribution and use in source and binary forms, with or without
37 * modification, are permitted provided that the following conditions
38 * are met:
39 *
40 * * Redistributions of source code must retain the above copyright
41 * notice, this list of conditions and the following disclaimer.
42 * * Redistributions in binary form must reproduce the above copyright
43 * notice, this list of conditions and the following disclaimer in
44 * the documentation and/or other materials provided with the
45 * distribution.
46 * * Neither the name Intel Corporation nor the names of its
47 * contributors may be used to endorse or promote products derived
48 * from this software without specific prior written permission.
49 *
50 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
51 * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
52 * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
53 * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
54 * OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
55 * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
56 * LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
57 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
58 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
59 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
60 * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
61 *
62 *****************************************************************************/
fcd427bb 63/*
5a36ba0e 64 * Please use this file (iwl-commands.h) only for uCode API definitions.
fcd427bb 65 * Please use iwl-4965-hw.h for hardware-related definitions.
3e0d4cb1 66 * Please use iwl-dev.h for driver implementation definitions.
fcd427bb 67 */
b481de9c 68
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69#ifndef __iwl4965_commands_h__
70#define __iwl4965_commands_h__
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71
72enum {
73 REPLY_ALIVE = 0x1,
74 REPLY_ERROR = 0x2,
75
76 /* RXON and QOS commands */
77 REPLY_RXON = 0x10,
78 REPLY_RXON_ASSOC = 0x11,
79 REPLY_QOS_PARAM = 0x13,
80 REPLY_RXON_TIMING = 0x14,
81
82 /* Multi-Station support */
83 REPLY_ADD_STA = 0x18,
84 REPLY_REMOVE_STA = 0x19, /* not used */
85 REPLY_REMOVE_ALL_STA = 0x1a, /* not used */
86
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87 /* Security */
88 REPLY_WEPKEY = 0x20,
89
b481de9c 90 /* RX, TX, LEDs */
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91 REPLY_TX = 0x1c,
92 REPLY_RATE_SCALE = 0x47, /* 3945 only */
93 REPLY_LEDS_CMD = 0x48,
94 REPLY_TX_LINK_QUALITY_CMD = 0x4e, /* 4965 only */
95
96 /* 802.11h related */
97 RADAR_NOTIFICATION = 0x70, /* not used */
98 REPLY_QUIET_CMD = 0x71, /* not used */
99 REPLY_CHANNEL_SWITCH = 0x72,
100 CHANNEL_SWITCH_NOTIFICATION = 0x73,
101 REPLY_SPECTRUM_MEASUREMENT_CMD = 0x74,
102 SPECTRUM_MEASURE_NOTIFICATION = 0x75,
103
104 /* Power Management */
105 POWER_TABLE_CMD = 0x77,
106 PM_SLEEP_NOTIFICATION = 0x7A,
107 PM_DEBUG_STATISTIC_NOTIFIC = 0x7B,
108
109 /* Scan commands and notifications */
110 REPLY_SCAN_CMD = 0x80,
111 REPLY_SCAN_ABORT_CMD = 0x81,
112 SCAN_START_NOTIFICATION = 0x82,
113 SCAN_RESULTS_NOTIFICATION = 0x83,
114 SCAN_COMPLETE_NOTIFICATION = 0x84,
115
116 /* IBSS/AP commands */
117 BEACON_NOTIFICATION = 0x90,
118 REPLY_TX_BEACON = 0x91,
119 WHO_IS_AWAKE_NOTIFICATION = 0x94, /* not used */
120
121 /* Miscellaneous commands */
122 QUIET_NOTIFICATION = 0x96, /* not used */
123 REPLY_TX_PWR_TABLE_CMD = 0x97,
124 MEASURE_ABORT_NOTIFICATION = 0x99, /* not used */
125
075416cd 126 /* Bluetooth device coexistance config command */
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127 REPLY_BT_CONFIG = 0x9b,
128
80cc0c38 129 /* Statistics */
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130 REPLY_STATISTICS_CMD = 0x9c,
131 STATISTICS_NOTIFICATION = 0x9d,
132
133 /* RF-KILL commands and notifications */
134 REPLY_CARD_STATE_CMD = 0xa0,
135 CARD_STATE_NOTIFICATION = 0xa1,
136
137 /* Missed beacons notification */
138 MISSED_BEACONS_NOTIFICATION = 0xa2,
139
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140 REPLY_CT_KILL_CONFIG_CMD = 0xa4,
141 SENSITIVITY_CMD = 0xa8,
142 REPLY_PHY_CALIBRATION_CMD = 0xb0,
143 REPLY_RX_PHY_CMD = 0xc0,
144 REPLY_RX_MPDU_CMD = 0xc1,
857485c0 145 REPLY_RX = 0xc3,
b481de9c 146 REPLY_COMPRESSED_BA = 0xc5,
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147 REPLY_MAX = 0xff
148};
149
150/******************************************************************************
151 * (0)
abceddb4 152 * Commonly used structures and definitions:
80cc0c38 153 * Command header, rate_n_flags, txpower
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154 *
155 *****************************************************************************/
156
857485c0 157/* iwl_cmd_header flags value */
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158#define IWL_CMD_FAILED_MSK 0x40
159
075416cd 160/**
857485c0 161 * struct iwl_cmd_header
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162 *
163 * This header format appears in the beginning of each command sent from the
164 * driver, and each response/notification received from uCode.
165 */
857485c0 166struct iwl_cmd_header {
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167 u8 cmd; /* Command ID: REPLY_RXON, etc. */
168 u8 flags; /* IWL_CMD_* */
169 /*
170 * The driver sets up the sequence number to values of its chosing.
171 * uCode does not use this value, but passes it back to the driver
172 * when sending the response to each driver-originated command, so
173 * the driver can match the response to the command. Since the values
174 * don't get used by uCode, the driver may set up an arbitrary format.
b481de9c 175 *
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176 * There is one exception: uCode sets bit 15 when it originates
177 * the response/notification, i.e. when the response/notification
178 * is not a direct response to a command sent by the driver. For
179 * example, uCode issues REPLY_3945_RX when it sends a received frame
180 * to the driver; it is not a direct response to any driver command.
b481de9c 181 *
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182 * The Linux driver uses the following format:
183 *
184 * 0:7 index/position within Tx queue
185 * 8:13 Tx queue selection
186 * 14:14 driver sets this to indicate command is in the 'huge'
187 * storage at the end of the command buffers, i.e. scan cmd
188 * 15:15 uCode sets this in uCode-originated response/notification
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189 */
190 __le16 sequence;
191
075416cd 192 /* command or response/notification data follows immediately */
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193 u8 data[0];
194} __attribute__ ((packed));
195
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196/**
197 * 4965 rate_n_flags bit fields
198 *
199 * rate_n_flags format is used in following 4965 commands:
857485c0 200 * REPLY_RX (response only)
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201 * REPLY_TX (both command and response)
202 * REPLY_TX_LINK_QUALITY_CMD
203 *
204 * High-throughput (HT) rate format for bits 7:0 (bit 8 must be "1"):
205 * 2-0: 0) 6 Mbps
206 * 1) 12 Mbps
207 * 2) 18 Mbps
208 * 3) 24 Mbps
209 * 4) 36 Mbps
210 * 5) 48 Mbps
211 * 6) 54 Mbps
212 * 7) 60 Mbps
213 *
214 * 3: 0) Single stream (SISO)
215 * 1) Dual stream (MIMO)
216 *
217 * 5: Value of 0x20 in bits 7:0 indicates 6 Mbps FAT duplicate data
218 *
219 * Legacy OFDM rate format for bits 7:0 (bit 8 must be "0", bit 9 "0"):
220 * 3-0: 0xD) 6 Mbps
221 * 0xF) 9 Mbps
222 * 0x5) 12 Mbps
223 * 0x7) 18 Mbps
224 * 0x9) 24 Mbps
225 * 0xB) 36 Mbps
226 * 0x1) 48 Mbps
227 * 0x3) 54 Mbps
228 *
229 * Legacy CCK rate format for bits 7:0 (bit 8 must be "0", bit 9 "1"):
230 * 3-0: 10) 1 Mbps
231 * 20) 2 Mbps
232 * 55) 5.5 Mbps
233 * 110) 11 Mbps
234 */
235#define RATE_MCS_CODE_MSK 0x7
236#define RATE_MCS_MIMO_POS 3
237#define RATE_MCS_MIMO_MSK 0x8
238#define RATE_MCS_HT_DUP_POS 5
239#define RATE_MCS_HT_DUP_MSK 0x20
240
075416cd 241/* Bit 8: (1) HT format, (0) legacy format in bits 7:0 */
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242#define RATE_MCS_FLAGS_POS 8
243#define RATE_MCS_HT_POS 8
244#define RATE_MCS_HT_MSK 0x100
245
075416cd 246/* Bit 9: (1) CCK, (0) OFDM. HT (bit 8) must be "0" for this bit to be valid */
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247#define RATE_MCS_CCK_POS 9
248#define RATE_MCS_CCK_MSK 0x200
249
075416cd 250/* Bit 10: (1) Use Green Field preamble */
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251#define RATE_MCS_GF_POS 10
252#define RATE_MCS_GF_MSK 0x400
253
075416cd 254/* Bit 11: (1) Use 40Mhz FAT chnl width, (0) use 20 MHz legacy chnl width */
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255#define RATE_MCS_FAT_POS 11
256#define RATE_MCS_FAT_MSK 0x800
257
075416cd 258/* Bit 12: (1) Duplicate data on both 20MHz chnls. FAT (bit 11) must be set. */
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259#define RATE_MCS_DUP_POS 12
260#define RATE_MCS_DUP_MSK 0x1000
261
075416cd 262/* Bit 13: (1) Short guard interval (0.4 usec), (0) normal GI (0.8 usec) */
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263#define RATE_MCS_SGI_POS 13
264#define RATE_MCS_SGI_MSK 0x2000
265
266/**
267 * rate_n_flags Tx antenna masks (4965 has 2 transmitters):
268 * bit14:15 01 B inactive, A active
269 * 10 B active, A inactive
270 * 11 Both active
271 */
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272#define RATE_MCS_ANT_POS 14
273#define RATE_MCS_ANT_A_MSK 0x04000
274#define RATE_MCS_ANT_B_MSK 0x08000
275#define RATE_MCS_ANT_C_MSK 0x10000
276#define RATE_MCS_ANT_ABC_MSK 0x1C000
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277
278
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279/**
280 * struct iwl4965_tx_power - txpower format used in REPLY_SCAN_CMD
281 *
282 * Scan uses only one transmitter, so only one analog/dsp gain pair is needed.
283 */
284struct iwl4965_tx_power {
285 u8 tx_gain; /* gain for analog radio */
286 u8 dsp_atten; /* gain for DSP */
287} __attribute__ ((packed));
288
289#define POWER_TABLE_NUM_ENTRIES 33
290#define POWER_TABLE_NUM_HT_OFDM_ENTRIES 32
291#define POWER_TABLE_CCK_ENTRY 32
292
293/**
294 * union iwl4965_tx_power_dual_stream
295 *
296 * Host format used for REPLY_TX_PWR_TABLE_CMD, REPLY_CHANNEL_SWITCH
297 * Use __le32 version (struct tx_power_dual_stream) when building command.
298 *
299 * Driver provides radio gain and DSP attenuation settings to device in pairs,
300 * one value for each transmitter chain. The first value is for transmitter A,
301 * second for transmitter B.
302 *
303 * For SISO bit rates, both values in a pair should be identical.
304 * For MIMO rates, one value may be different from the other,
305 * in order to balance the Tx output between the two transmitters.
306 *
307 * See more details in doc for TXPOWER in iwl-4965-hw.h.
308 */
309union iwl4965_tx_power_dual_stream {
310 struct {
311 u8 radio_tx_gain[2];
312 u8 dsp_predis_atten[2];
313 } s;
314 u32 dw;
315};
316
317/**
318 * struct tx_power_dual_stream
319 *
320 * Table entries in REPLY_TX_PWR_TABLE_CMD, REPLY_CHANNEL_SWITCH
321 *
322 * Same format as iwl_tx_power_dual_stream, but __le32
323 */
324struct tx_power_dual_stream {
325 __le32 dw;
326} __attribute__ ((packed));
327
328/**
329 * struct iwl4965_tx_power_db
330 *
331 * Entire table within REPLY_TX_PWR_TABLE_CMD, REPLY_CHANNEL_SWITCH
332 */
333struct iwl4965_tx_power_db {
334 struct tx_power_dual_stream power_tbl[POWER_TABLE_NUM_ENTRIES];
335} __attribute__ ((packed));
336
337
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338/******************************************************************************
339 * (0a)
340 * Alive and Error Commands & Responses:
341 *
342 *****************************************************************************/
343
344#define UCODE_VALID_OK __constant_cpu_to_le32(0x1)
345#define INITIALIZE_SUBTYPE (9)
346
347/*
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348 * ("Initialize") REPLY_ALIVE = 0x1 (response only, not a command)
349 *
350 * uCode issues this "initialize alive" notification once the initialization
351 * uCode image has completed its work, and is ready to load the runtime image.
352 * This is the *first* "alive" notification that the driver will receive after
353 * rebooting uCode; the "initialize" alive is indicated by subtype field == 9.
354 *
355 * See comments documenting "BSM" (bootstrap state machine).
356 *
357 * For 4965, this notification contains important calibration data for
358 * calculating txpower settings:
359 *
360 * 1) Power supply voltage indication. The voltage sensor outputs higher
361 * values for lower voltage, and vice versa.
362 *
363 * 2) Temperature measurement parameters, for each of two channel widths
364 * (20 MHz and 40 MHz) supported by the radios. Temperature sensing
365 * is done via one of the receiver chains, and channel width influences
366 * the results.
367 *
368 * 3) Tx gain compensation to balance 4965's 2 Tx chains for MIMO operation,
369 * for each of 5 frequency ranges.
b481de9c 370 */
075416cd 371struct iwl4965_init_alive_resp {
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372 u8 ucode_minor;
373 u8 ucode_major;
374 __le16 reserved1;
375 u8 sw_rev[8];
376 u8 ver_type;
075416cd 377 u8 ver_subtype; /* "9" for initialize alive */
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378 __le16 reserved2;
379 __le32 log_event_table_ptr;
380 __le32 error_event_table_ptr;
381 __le32 timestamp;
382 __le32 is_valid;
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383
384 /* calibration values from "initialize" uCode */
385 __le32 voltage; /* signed, higher value is lower voltage */
386 __le32 therm_r1[2]; /* signed, 1st for normal, 2nd for FAT channel*/
387 __le32 therm_r2[2]; /* signed */
388 __le32 therm_r3[2]; /* signed */
389 __le32 therm_r4[2]; /* signed */
390 __le32 tx_atten[5][2]; /* signed MIMO gain comp, 5 freq groups,
391 * 2 Tx chains */
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392} __attribute__ ((packed));
393
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394
395/**
396 * REPLY_ALIVE = 0x1 (response only, not a command)
397 *
398 * uCode issues this "alive" notification once the runtime image is ready
399 * to receive commands from the driver. This is the *second* "alive"
400 * notification that the driver will receive after rebooting uCode;
401 * this "alive" is indicated by subtype field != 9.
402 *
403 * See comments documenting "BSM" (bootstrap state machine).
404 *
405 * This response includes two pointers to structures within the device's
406 * data SRAM (access via HBUS_TARG_MEM_* regs) that are useful for debugging:
407 *
408 * 1) log_event_table_ptr indicates base of the event log. This traces
409 * a 256-entry history of uCode execution within a circular buffer.
410 * Its header format is:
411 *
412 * __le32 log_size; log capacity (in number of entries)
413 * __le32 type; (1) timestamp with each entry, (0) no timestamp
414 * __le32 wraps; # times uCode has wrapped to top of circular buffer
415 * __le32 write_index; next circular buffer entry that uCode would fill
416 *
417 * The header is followed by the circular buffer of log entries. Entries
418 * with timestamps have the following format:
419 *
420 * __le32 event_id; range 0 - 1500
421 * __le32 timestamp; low 32 bits of TSF (of network, if associated)
422 * __le32 data; event_id-specific data value
423 *
424 * Entries without timestamps contain only event_id and data.
425 *
426 * 2) error_event_table_ptr indicates base of the error log. This contains
427 * information about any uCode error that occurs. For 4965, the format
428 * of the error log is:
429 *
430 * __le32 valid; (nonzero) valid, (0) log is empty
431 * __le32 error_id; type of error
432 * __le32 pc; program counter
433 * __le32 blink1; branch link
434 * __le32 blink2; branch link
435 * __le32 ilink1; interrupt link
436 * __le32 ilink2; interrupt link
437 * __le32 data1; error-specific data
438 * __le32 data2; error-specific data
439 * __le32 line; source code line of error
440 * __le32 bcon_time; beacon timer
441 * __le32 tsf_low; network timestamp function timer
442 * __le32 tsf_hi; network timestamp function timer
443 *
444 * The Linux driver can print both logs to the system log when a uCode error
445 * occurs.
446 */
447struct iwl4965_alive_resp {
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448 u8 ucode_minor;
449 u8 ucode_major;
450 __le16 reserved1;
451 u8 sw_rev[8];
452 u8 ver_type;
075416cd 453 u8 ver_subtype; /* not "9" for runtime alive */
b481de9c 454 __le16 reserved2;
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455 __le32 log_event_table_ptr; /* SRAM address for event log */
456 __le32 error_event_table_ptr; /* SRAM address for error log */
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457 __le32 timestamp;
458 __le32 is_valid;
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459} __attribute__ ((packed));
460
075416cd 461
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462union tsf {
463 u8 byte[8];
464 __le16 word[4];
465 __le32 dw[2];
466};
467
468/*
469 * REPLY_ERROR = 0x2 (response only, not a command)
470 */
bb8c093b 471struct iwl4965_error_resp {
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472 __le32 error_type;
473 u8 cmd_id;
474 u8 reserved1;
475 __le16 bad_cmd_seq_num;
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476 __le32 error_info;
477 union tsf timestamp;
478} __attribute__ ((packed));
479
480/******************************************************************************
481 * (1)
482 * RXON Commands & Responses:
483 *
484 *****************************************************************************/
485
486/*
487 * Rx config defines & structure
488 */
489/* rx_config device types */
490enum {
491 RXON_DEV_TYPE_AP = 1,
492 RXON_DEV_TYPE_ESS = 3,
493 RXON_DEV_TYPE_IBSS = 4,
494 RXON_DEV_TYPE_SNIFFER = 6,
495};
496
14519a0b 497
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498#define RXON_RX_CHAIN_DRIVER_FORCE_MSK __constant_cpu_to_le16(0x1 << 0)
499#define RXON_RX_CHAIN_VALID_MSK __constant_cpu_to_le16(0x7 << 1)
14519a0b 500#define RXON_RX_CHAIN_VALID_POS (1)
8a1b0245 501#define RXON_RX_CHAIN_FORCE_SEL_MSK __constant_cpu_to_le16(0x7 << 4)
14519a0b 502#define RXON_RX_CHAIN_FORCE_SEL_POS (4)
8a1b0245 503#define RXON_RX_CHAIN_FORCE_MIMO_SEL_MSK __constant_cpu_to_le16(0x7 << 7)
14519a0b 504#define RXON_RX_CHAIN_FORCE_MIMO_SEL_POS (7)
8a1b0245 505#define RXON_RX_CHAIN_CNT_MSK __constant_cpu_to_le16(0x3 << 10)
14519a0b 506#define RXON_RX_CHAIN_CNT_POS (10)
8a1b0245 507#define RXON_RX_CHAIN_MIMO_CNT_MSK __constant_cpu_to_le16(0x3 << 12)
14519a0b 508#define RXON_RX_CHAIN_MIMO_CNT_POS (12)
8a1b0245 509#define RXON_RX_CHAIN_MIMO_FORCE_MSK __constant_cpu_to_le16(0x1 << 14)
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510#define RXON_RX_CHAIN_MIMO_FORCE_POS (14)
511
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512/* rx_config flags */
513/* band & modulation selection */
514#define RXON_FLG_BAND_24G_MSK __constant_cpu_to_le32(1 << 0)
515#define RXON_FLG_CCK_MSK __constant_cpu_to_le32(1 << 1)
516/* auto detection enable */
517#define RXON_FLG_AUTO_DETECT_MSK __constant_cpu_to_le32(1 << 2)
518/* TGg protection when tx */
519#define RXON_FLG_TGG_PROTECT_MSK __constant_cpu_to_le32(1 << 3)
520/* cck short slot & preamble */
521#define RXON_FLG_SHORT_SLOT_MSK __constant_cpu_to_le32(1 << 4)
522#define RXON_FLG_SHORT_PREAMBLE_MSK __constant_cpu_to_le32(1 << 5)
523/* antenna selection */
524#define RXON_FLG_DIS_DIV_MSK __constant_cpu_to_le32(1 << 7)
525#define RXON_FLG_ANT_SEL_MSK __constant_cpu_to_le32(0x0f00)
526#define RXON_FLG_ANT_A_MSK __constant_cpu_to_le32(1 << 8)
527#define RXON_FLG_ANT_B_MSK __constant_cpu_to_le32(1 << 9)
528/* radar detection enable */
529#define RXON_FLG_RADAR_DETECT_MSK __constant_cpu_to_le32(1 << 12)
530#define RXON_FLG_TGJ_NARROW_BAND_MSK __constant_cpu_to_le32(1 << 13)
531/* rx response to host with 8-byte TSF
532* (according to ON_AIR deassertion) */
533#define RXON_FLG_TSF2HOST_MSK __constant_cpu_to_le32(1 << 15)
534
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535
536/* HT flags */
537#define RXON_FLG_CTRL_CHANNEL_LOC_POS (22)
8a1b0245 538#define RXON_FLG_CTRL_CHANNEL_LOC_HI_MSK __constant_cpu_to_le32(0x1 << 22)
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539
540#define RXON_FLG_HT_OPERATING_MODE_POS (23)
541
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542#define RXON_FLG_HT_PROT_MSK __constant_cpu_to_le32(0x1 << 23)
543#define RXON_FLG_FAT_PROT_MSK __constant_cpu_to_le32(0x2 << 23)
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544
545#define RXON_FLG_CHANNEL_MODE_POS (25)
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546#define RXON_FLG_CHANNEL_MODE_MSK __constant_cpu_to_le32(0x3 << 25)
547#define RXON_FLG_CHANNEL_MODE_PURE_40_MSK __constant_cpu_to_le32(0x1 << 25)
548#define RXON_FLG_CHANNEL_MODE_MIXED_MSK __constant_cpu_to_le32(0x2 << 25)
14519a0b 549
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550/* rx_config filter flags */
551/* accept all data frames */
552#define RXON_FILTER_PROMISC_MSK __constant_cpu_to_le32(1 << 0)
553/* pass control & management to host */
554#define RXON_FILTER_CTL2HOST_MSK __constant_cpu_to_le32(1 << 1)
555/* accept multi-cast */
556#define RXON_FILTER_ACCEPT_GRP_MSK __constant_cpu_to_le32(1 << 2)
557/* don't decrypt uni-cast frames */
558#define RXON_FILTER_DIS_DECRYPT_MSK __constant_cpu_to_le32(1 << 3)
559/* don't decrypt multi-cast frames */
560#define RXON_FILTER_DIS_GRP_DECRYPT_MSK __constant_cpu_to_le32(1 << 4)
561/* STA is associated */
562#define RXON_FILTER_ASSOC_MSK __constant_cpu_to_le32(1 << 5)
563/* transfer to host non bssid beacons in associated state */
564#define RXON_FILTER_BCON_AWARE_MSK __constant_cpu_to_le32(1 << 6)
565
80cc0c38 566/**
b481de9c 567 * REPLY_RXON = 0x10 (command, has simple generic response)
80cc0c38
BC
568 *
569 * RXON tunes the radio tuner to a service channel, and sets up a number
570 * of parameters that are used primarily for Rx, but also for Tx operations.
571 *
572 * NOTE: When tuning to a new channel, driver must set the
573 * RXON_FILTER_ASSOC_MSK to 0. This will clear station-dependent
574 * info within the device, including the station tables, tx retry
575 * rate tables, and txpower tables. Driver must build a new station
576 * table and txpower table before transmitting anything on the RXON
577 * channel.
578 *
579 * NOTE: All RXONs wipe clean the internal txpower table. Driver must
580 * issue a new REPLY_TX_PWR_TABLE_CMD after each REPLY_RXON (0x10),
581 * regardless of whether RXON_FILTER_ASSOC_MSK is set.
b481de9c 582 */
bb8c093b 583struct iwl4965_rxon_cmd {
b481de9c
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584 u8 node_addr[6];
585 __le16 reserved1;
586 u8 bssid_addr[6];
587 __le16 reserved2;
588 u8 wlap_bssid_addr[6];
589 __le16 reserved3;
590 u8 dev_type;
591 u8 air_propagation;
b481de9c 592 __le16 rx_chain;
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593 u8 ofdm_basic_rates;
594 u8 cck_basic_rates;
595 __le16 assoc_id;
596 __le32 flags;
597 __le32 filter_flags;
598 __le16 channel;
b481de9c
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599 u8 ofdm_ht_single_stream_basic_rates;
600 u8 ofdm_ht_dual_stream_basic_rates;
b481de9c
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601} __attribute__ ((packed));
602
c1adf9fb
GG
603/* 5000 HW just extend this cmmand */
604struct iwl_rxon_cmd {
605 u8 node_addr[6];
606 __le16 reserved1;
607 u8 bssid_addr[6];
608 __le16 reserved2;
609 u8 wlap_bssid_addr[6];
610 __le16 reserved3;
611 u8 dev_type;
612 u8 air_propagation;
613 __le16 rx_chain;
614 u8 ofdm_basic_rates;
615 u8 cck_basic_rates;
616 __le16 assoc_id;
617 __le32 flags;
618 __le32 filter_flags;
619 __le16 channel;
620 u8 ofdm_ht_single_stream_basic_rates;
621 u8 ofdm_ht_dual_stream_basic_rates;
622 u8 ofdm_ht_triple_stream_basic_rates;
623 u8 reserved5;
624 __le16 acquisition_data;
625 __le16 reserved6;
626} __attribute__ ((packed));
627
628
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629/*
630 * REPLY_RXON_ASSOC = 0x11 (command, has simple generic response)
631 */
bb8c093b 632struct iwl4965_rxon_assoc_cmd {
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633 __le32 flags;
634 __le32 filter_flags;
635 u8 ofdm_basic_rates;
636 u8 cck_basic_rates;
b481de9c
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637 u8 ofdm_ht_single_stream_basic_rates;
638 u8 ofdm_ht_dual_stream_basic_rates;
639 __le16 rx_chain_select_flags;
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640 __le16 reserved;
641} __attribute__ ((packed));
642
643/*
644 * REPLY_RXON_TIMING = 0x14 (command, has simple generic response)
645 */
bb8c093b 646struct iwl4965_rxon_time_cmd {
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647 union tsf timestamp;
648 __le16 beacon_interval;
649 __le16 atim_window;
650 __le32 beacon_init_val;
651 __le16 listen_interval;
652 __le16 reserved;
653} __attribute__ ((packed));
654
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655/*
656 * REPLY_CHANNEL_SWITCH = 0x72 (command, has simple generic response)
657 */
bb8c093b 658struct iwl4965_channel_switch_cmd {
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659 u8 band;
660 u8 expect_beacon;
661 __le16 channel;
662 __le32 rxon_flags;
663 __le32 rxon_filter_flags;
664 __le32 switch_time;
bb8c093b 665 struct iwl4965_tx_power_db tx_power;
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666} __attribute__ ((packed));
667
668/*
669 * CHANNEL_SWITCH_NOTIFICATION = 0x73 (notification only, not a command)
670 */
bb8c093b 671struct iwl4965_csa_notification {
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672 __le16 band;
673 __le16 channel;
674 __le32 status; /* 0 - OK, 1 - fail */
675} __attribute__ ((packed));
676
677/******************************************************************************
678 * (2)
679 * Quality-of-Service (QOS) Commands & Responses:
680 *
681 *****************************************************************************/
2054a00b
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682
683/**
684 * struct iwl_ac_qos -- QOS timing params for REPLY_QOS_PARAM
685 * One for each of 4 EDCA access categories in struct iwl_qosparam_cmd
686 *
687 * @cw_min: Contention window, start value in numbers of slots.
688 * Should be a power-of-2, minus 1. Device's default is 0x0f.
689 * @cw_max: Contention window, max value in numbers of slots.
690 * Should be a power-of-2, minus 1. Device's default is 0x3f.
691 * @aifsn: Number of slots in Arbitration Interframe Space (before
692 * performing random backoff timing prior to Tx). Device default 1.
693 * @edca_txop: Length of Tx opportunity, in uSecs. Device default is 0.
694 *
695 * Device will automatically increase contention window by (2*CW) + 1 for each
696 * transmission retry. Device uses cw_max as a bit mask, ANDed with new CW
697 * value, to cap the CW value.
698 */
bb8c093b 699struct iwl4965_ac_qos {
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700 __le16 cw_min;
701 __le16 cw_max;
702 u8 aifsn;
703 u8 reserved1;
704 __le16 edca_txop;
705} __attribute__ ((packed));
706
707/* QoS flags defines */
708#define QOS_PARAM_FLG_UPDATE_EDCA_MSK __constant_cpu_to_le32(0x01)
709#define QOS_PARAM_FLG_TGN_MSK __constant_cpu_to_le32(0x02)
710#define QOS_PARAM_FLG_TXOP_TYPE_MSK __constant_cpu_to_le32(0x10)
711
2054a00b 712/* Number of Access Categories (AC) (EDCA), queues 0..3 */
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713#define AC_NUM 4
714
715/*
716 * REPLY_QOS_PARAM = 0x13 (command, has simple generic response)
2054a00b
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717 *
718 * This command sets up timings for each of the 4 prioritized EDCA Tx FIFOs
719 * 0: Background, 1: Best Effort, 2: Video, 3: Voice.
b481de9c 720 */
bb8c093b 721struct iwl4965_qosparam_cmd {
b481de9c 722 __le32 qos_flags;
bb8c093b 723 struct iwl4965_ac_qos ac[AC_NUM];
b481de9c
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724} __attribute__ ((packed));
725
726/******************************************************************************
727 * (3)
728 * Add/Modify Stations Commands & Responses:
729 *
730 *****************************************************************************/
731/*
732 * Multi station support
733 */
2054a00b
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734
735/* Special, dedicated locations within device's station table */
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736#define IWL_AP_ID 0
737#define IWL_MULTICAST_ID 1
738#define IWL_STA_ID 2
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739#define IWL4965_BROADCAST_ID 31
740#define IWL4965_STATION_COUNT 32
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741#define IWL5000_BROADCAST_ID 15
742#define IWL5000_STATION_COUNT 16
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743
744#define IWL_STATION_COUNT 32 /* MAX(3945,4965)*/
745#define IWL_INVALID_STATION 255
746
8a1b0245 747#define STA_FLG_PWR_SAVE_MSK __constant_cpu_to_le32(1 << 8);
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BC
748#define STA_FLG_RTS_MIMO_PROT_MSK __constant_cpu_to_le32(1 << 17)
749#define STA_FLG_AGG_MPDU_8US_MSK __constant_cpu_to_le32(1 << 18)
750#define STA_FLG_MAX_AGG_SIZE_POS (19)
751#define STA_FLG_MAX_AGG_SIZE_MSK __constant_cpu_to_le32(3 << 19)
752#define STA_FLG_FAT_EN_MSK __constant_cpu_to_le32(1 << 21)
753#define STA_FLG_MIMO_DIS_MSK __constant_cpu_to_le32(1 << 22)
754#define STA_FLG_AGG_MPDU_DENSITY_POS (23)
755#define STA_FLG_AGG_MPDU_DENSITY_MSK __constant_cpu_to_le32(7 << 23)
b481de9c 756
2054a00b 757/* Use in mode field. 1: modify existing entry, 0: add new station entry */
b481de9c
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758#define STA_CONTROL_MODIFY_MSK 0x01
759
760/* key flags __le16*/
eaaf7894
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761#define STA_KEY_FLG_ENCRYPT_MSK __constant_cpu_to_le16(0x0007)
762#define STA_KEY_FLG_NO_ENC __constant_cpu_to_le16(0x0000)
763#define STA_KEY_FLG_WEP __constant_cpu_to_le16(0x0001)
764#define STA_KEY_FLG_CCMP __constant_cpu_to_le16(0x0002)
765#define STA_KEY_FLG_TKIP __constant_cpu_to_le16(0x0003)
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766
767#define STA_KEY_FLG_KEYID_POS 8
768#define STA_KEY_FLG_INVALID __constant_cpu_to_le16(0x0800)
eaaf7894
EG
769/* wep key is either from global key (0) or from station info array (1) */
770#define STA_KEY_FLG_MAP_KEY_MSK __constant_cpu_to_le16(0x0008)
771
772/* wep key in STA: 5-bytes (0) or 13-bytes (1) */
773#define STA_KEY_FLG_KEY_SIZE_MSK __constant_cpu_to_le16(0x1000)
774#define STA_KEY_MULTICAST_MSK __constant_cpu_to_le16(0x4000)
deb09c43 775#define STA_KEY_MAX_NUM 8
b481de9c 776
2054a00b 777/* Flags indicate whether to modify vs. don't change various station params */
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778#define STA_MODIFY_KEY_MASK 0x01
779#define STA_MODIFY_TID_DISABLE_TX 0x02
780#define STA_MODIFY_TX_RATE_MSK 0x04
781#define STA_MODIFY_ADDBA_TID_MSK 0x08
782#define STA_MODIFY_DELBA_TID_MSK 0x10
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783
784/* Receiver address (actually, Rx station's index into station table),
785 * combined with Traffic ID (QOS priority), in format used by Tx Scheduler */
b481de9c
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786#define BUILD_RAxTID(sta_id, tid) (((sta_id) << 4) + (tid))
787
bb8c093b 788struct iwl4965_keyinfo {
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789 __le16 key_flags;
790 u8 tkip_rx_tsc_byte2; /* TSC[2] for key mix ph1 detection */
791 u8 reserved1;
792 __le16 tkip_rx_ttak[5]; /* 10-byte unicast TKIP TTAK */
eaaf7894
EG
793 u8 key_offset;
794 u8 reserved2;
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ZY
795 u8 key[16]; /* 16-byte unicast decryption key */
796} __attribute__ ((packed));
797
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798/* 5000 */
799struct iwl_keyinfo {
800 __le16 key_flags;
801 u8 tkip_rx_tsc_byte2; /* TSC[2] for key mix ph1 detection */
802 u8 reserved1;
803 __le16 tkip_rx_ttak[5]; /* 10-byte unicast TKIP TTAK */
804 u8 key_offset;
805 u8 reserved2;
806 u8 key[16]; /* 16-byte unicast decryption key */
807 __le64 tx_secur_seq_cnt;
808 __le64 hw_tkip_mic_rx_key;
809 __le64 hw_tkip_mic_tx_key;
810} __attribute__ ((packed));
811
2054a00b
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812/**
813 * struct sta_id_modify
814 * @addr[ETH_ALEN]: station's MAC address
815 * @sta_id: index of station in uCode's station table
816 * @modify_mask: STA_MODIFY_*, 1: modify, 0: don't change
817 *
818 * Driver selects unused table index when adding new station,
819 * or the index to a pre-existing station entry when modifying that station.
820 * Some indexes have special purposes (IWL_AP_ID, index 0, is for AP).
821 *
822 * modify_mask flags select which parameters to modify vs. leave alone.
823 */
b481de9c
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824struct sta_id_modify {
825 u8 addr[ETH_ALEN];
826 __le16 reserved1;
827 u8 sta_id;
828 u8 modify_mask;
829 __le16 reserved2;
830} __attribute__ ((packed));
831
832/*
833 * REPLY_ADD_STA = 0x18 (command)
2054a00b
BC
834 *
835 * The device contains an internal table of per-station information,
836 * with info on security keys, aggregation parameters, and Tx rates for
837 * initial Tx attempt and any retries (4965 uses REPLY_TX_LINK_QUALITY_CMD,
838 * 3945 uses REPLY_RATE_SCALE to set up rate tables).
839 *
840 * REPLY_ADD_STA sets up the table entry for one station, either creating
841 * a new entry, or modifying a pre-existing one.
842 *
843 * NOTE: RXON command (without "associated" bit set) wipes the station table
844 * clean. Moving into RF_KILL state does this also. Driver must set up
845 * new station table before transmitting anything on the RXON channel
846 * (except active scans or active measurements; those commands carry
847 * their own txpower/rate setup data).
848 *
849 * When getting started on a new channel, driver must set up the
850 * IWL_BROADCAST_ID entry (last entry in the table). For a client
851 * station in a BSS, once an AP is selected, driver sets up the AP STA
852 * in the IWL_AP_ID entry (1st entry in the table). BROADCAST and AP
853 * are all that are needed for a BSS client station. If the device is
854 * used as AP, or in an IBSS network, driver must set up station table
855 * entries for all STAs in network, starting with index IWL_STA_ID.
b481de9c 856 */
bb8c093b 857struct iwl4965_addsta_cmd {
2054a00b 858 u8 mode; /* 1: modify existing, 0: add new station */
b481de9c
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859 u8 reserved[3];
860 struct sta_id_modify sta;
bb8c093b 861 struct iwl4965_keyinfo key;
2054a00b
BC
862 __le32 station_flags; /* STA_FLG_* */
863 __le32 station_flags_msk; /* STA_FLG_* */
864
865 /* bit field to disable (1) or enable (0) Tx for Traffic ID (TID)
866 * corresponding to bit (e.g. bit 5 controls TID 5).
867 * Set modify_mask bit STA_MODIFY_TID_DISABLE_TX to use this field. */
b481de9c 868 __le16 tid_disable_tx;
2054a00b 869
b481de9c 870 __le16 reserved1;
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BC
871
872 /* TID for which to add block-ack support.
873 * Set modify_mask bit STA_MODIFY_ADDBA_TID_MSK to use this field. */
b481de9c 874 u8 add_immediate_ba_tid;
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BC
875
876 /* TID for which to remove block-ack support.
877 * Set modify_mask bit STA_MODIFY_DELBA_TID_MSK to use this field. */
b481de9c 878 u8 remove_immediate_ba_tid;
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BC
879
880 /* Starting Sequence Number for added block-ack support.
881 * Set modify_mask bit STA_MODIFY_ADDBA_TID_MSK to use this field. */
b481de9c 882 __le16 add_immediate_ba_ssn;
2054a00b 883
b481de9c 884 __le32 reserved2;
b481de9c
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885} __attribute__ ((packed));
886
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887/* 5000 */
888struct iwl_addsta_cmd {
889 u8 mode; /* 1: modify existing, 0: add new station */
890 u8 reserved[3];
891 struct sta_id_modify sta;
892 struct iwl_keyinfo key;
893 __le32 station_flags; /* STA_FLG_* */
894 __le32 station_flags_msk; /* STA_FLG_* */
895
896 /* bit field to disable (1) or enable (0) Tx for Traffic ID (TID)
897 * corresponding to bit (e.g. bit 5 controls TID 5).
898 * Set modify_mask bit STA_MODIFY_TID_DISABLE_TX to use this field. */
899 __le16 tid_disable_tx;
900
901 __le16 reserved1;
902
903 /* TID for which to add block-ack support.
904 * Set modify_mask bit STA_MODIFY_ADDBA_TID_MSK to use this field. */
905 u8 add_immediate_ba_tid;
906
907 /* TID for which to remove block-ack support.
908 * Set modify_mask bit STA_MODIFY_DELBA_TID_MSK to use this field. */
909 u8 remove_immediate_ba_tid;
910
911 /* Starting Sequence Number for added block-ack support.
912 * Set modify_mask bit STA_MODIFY_ADDBA_TID_MSK to use this field. */
913 __le16 add_immediate_ba_ssn;
914
915 __le32 reserved2;
916} __attribute__ ((packed));
917
918
2054a00b
BC
919#define ADD_STA_SUCCESS_MSK 0x1
920#define ADD_STA_NO_ROOM_IN_TABLE 0x2
921#define ADD_STA_NO_BLOCK_ACK_RESOURCE 0x4
922#define ADD_STA_MODIFY_NON_EXIST_STA 0x8
b481de9c
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923/*
924 * REPLY_ADD_STA = 0x18 (response)
925 */
bb8c093b 926struct iwl4965_add_sta_resp {
2054a00b 927 u8 status; /* ADD_STA_* */
b481de9c
ZY
928} __attribute__ ((packed));
929
0a0bed1d
EG
930/*
931 * REPLY_WEP_KEY = 0x20
932 */
933struct iwl_wep_key {
934 u8 key_index;
935 u8 key_offset;
936 u8 reserved1[2];
937 u8 key_size;
938 u8 reserved2[3];
939 u8 key[16];
940} __attribute__ ((packed));
941
942struct iwl_wep_cmd {
943 u8 num_keys;
944 u8 global_key_type;
945 u8 flags;
946 u8 reserved;
947 struct iwl_wep_key key[0];
948} __attribute__ ((packed));
949
950#define WEP_KEY_WEP_TYPE 1
951#define WEP_KEYS_MAX 4
952#define WEP_INVALID_OFFSET 0xff
953#define WEP_KEY_LEN_128 13
b481de9c
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954
955/******************************************************************************
956 * (4)
957 * Rx Responses:
958 *
959 *****************************************************************************/
960
bb8c093b 961struct iwl4965_rx_frame_stats {
b481de9c
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962 u8 phy_count;
963 u8 id;
964 u8 rssi;
965 u8 agc;
966 __le16 sig_avg;
967 __le16 noise_diff;
968 u8 payload[0];
969} __attribute__ ((packed));
970
bb8c093b 971struct iwl4965_rx_frame_hdr {
b481de9c
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972 __le16 channel;
973 __le16 phy_flags;
974 u8 reserved1;
975 u8 rate;
976 __le16 len;
977 u8 payload[0];
978} __attribute__ ((packed));
979
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980#define RX_RES_STATUS_NO_CRC32_ERROR __constant_cpu_to_le32(1 << 0)
981#define RX_RES_STATUS_NO_RXE_OVERFLOW __constant_cpu_to_le32(1 << 1)
982
983#define RX_RES_PHY_FLAGS_BAND_24_MSK __constant_cpu_to_le16(1 << 0)
984#define RX_RES_PHY_FLAGS_MOD_CCK_MSK __constant_cpu_to_le16(1 << 1)
985#define RX_RES_PHY_FLAGS_SHORT_PREAMBLE_MSK __constant_cpu_to_le16(1 << 2)
986#define RX_RES_PHY_FLAGS_NARROW_BAND_MSK __constant_cpu_to_le16(1 << 3)
987#define RX_RES_PHY_FLAGS_ANTENNA_MSK __constant_cpu_to_le16(0xf0)
988
989#define RX_RES_STATUS_SEC_TYPE_MSK (0x7 << 8)
990#define RX_RES_STATUS_SEC_TYPE_NONE (0x0 << 8)
991#define RX_RES_STATUS_SEC_TYPE_WEP (0x1 << 8)
992#define RX_RES_STATUS_SEC_TYPE_CCMP (0x2 << 8)
993#define RX_RES_STATUS_SEC_TYPE_TKIP (0x3 << 8)
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EG
994#define RX_RES_STATUS_SEC_TYPE_ERR (0x7 << 8)
995
996#define RX_RES_STATUS_STATION_FOUND (1<<6)
997#define RX_RES_STATUS_NO_STATION_INFO_MISMATCH (1<<7)
8211ef78
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998
999#define RX_RES_STATUS_DECRYPT_TYPE_MSK (0x3 << 11)
1000#define RX_RES_STATUS_NOT_DECRYPT (0x0 << 11)
1001#define RX_RES_STATUS_DECRYPT_OK (0x3 << 11)
1002#define RX_RES_STATUS_BAD_ICV_MIC (0x1 << 11)
1003#define RX_RES_STATUS_BAD_KEY_TTAK (0x2 << 11)
b481de9c 1004
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EG
1005#define RX_MPDU_RES_STATUS_ICV_OK (0x20)
1006#define RX_MPDU_RES_STATUS_MIC_OK (0x40)
1007#define RX_MPDU_RES_STATUS_TTAK_OK (1 << 7)
1008#define RX_MPDU_RES_STATUS_DEC_DONE_MSK (0x800)
1009
bb8c093b 1010struct iwl4965_rx_frame_end {
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1011 __le32 status;
1012 __le64 timestamp;
1013 __le32 beacon_timestamp;
1014} __attribute__ ((packed));
1015
1016/*
1017 * REPLY_3945_RX = 0x1b (response only, not a command)
1018 *
1019 * NOTE: DO NOT dereference from casts to this structure
1020 * It is provided only for calculating minimum data set size.
1021 * The actual offsets of the hdr and end are dynamic based on
1022 * stats.phy_count
1023 */
bb8c093b
CH
1024struct iwl4965_rx_frame {
1025 struct iwl4965_rx_frame_stats stats;
1026 struct iwl4965_rx_frame_hdr hdr;
1027 struct iwl4965_rx_frame_end end;
b481de9c
ZY
1028} __attribute__ ((packed));
1029
1030/* Fixed (non-configurable) rx data from phy */
1031#define RX_PHY_FLAGS_ANTENNAE_OFFSET (4)
1032#define RX_PHY_FLAGS_ANTENNAE_MASK (0x70)
1033#define IWL_AGC_DB_MASK (0x3f80) /* MASK(7,13) */
1034#define IWL_AGC_DB_POS (7)
1035struct iwl4965_rx_non_cfg_phy {
1036 __le16 ant_selection; /* ant A bit 4, ant B bit 5, ant C bit 6 */
1037 __le16 agc_info; /* agc code 0:6, agc dB 7:13, reserved 14:15 */
1038 u8 rssi_info[6]; /* we use even entries, 0/2/4 for A/B/C rssi */
1039 u8 pad[0];
1040} __attribute__ ((packed));
1041
1042/*
857485c0 1043 * REPLY_RX = 0xc3 (response only, not a command)
b481de9c
ZY
1044 * Used only for legacy (non 11n) frames.
1045 */
1046#define RX_RES_PHY_CNT 14
1047struct iwl4965_rx_phy_res {
1048 u8 non_cfg_phy_cnt; /* non configurable DSP phy data byte count */
1049 u8 cfg_phy_cnt; /* configurable DSP phy data byte count */
1050 u8 stat_id; /* configurable DSP phy data set ID */
1051 u8 reserved1;
1052 __le64 timestamp; /* TSF at on air rise */
1053 __le32 beacon_time_stamp; /* beacon at on-air rise */
1054 __le16 phy_flags; /* general phy flags: band, modulation, ... */
1055 __le16 channel; /* channel number */
1056 __le16 non_cfg_phy[RX_RES_PHY_CNT]; /* upto 14 phy entries */
1057 __le32 reserved2;
52969981
BC
1058 __le32 rate_n_flags; /* RATE_MCS_* */
1059 __le16 byte_count; /* frame's byte-count */
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1060 __le16 reserved3;
1061} __attribute__ ((packed));
1062
1063struct iwl4965_rx_mpdu_res_start {
1064 __le16 byte_count;
1065 __le16 reserved;
1066} __attribute__ ((packed));
1067
1068
1069/******************************************************************************
1070 * (5)
1071 * Tx Commands & Responses:
1072 *
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1073 * Driver must place each REPLY_TX command into one of the prioritized Tx
1074 * queues in host DRAM, shared between driver and device (see comments for
1075 * SCD registers and Tx/Rx Queues). When the device's Tx scheduler and uCode
1076 * are preparing to transmit, the device pulls the Tx command over the PCI
1077 * bus via one of the device's Tx DMA channels, to fill an internal FIFO
1078 * from which data will be transmitted.
1079 *
1080 * uCode handles all timing and protocol related to control frames
1081 * (RTS/CTS/ACK), based on flags in the Tx command. uCode and Tx scheduler
1082 * handle reception of block-acks; uCode updates the host driver via
1083 * REPLY_COMPRESSED_BA (4965).
1084 *
1085 * uCode handles retrying Tx when an ACK is expected but not received.
1086 * This includes trying lower data rates than the one requested in the Tx
1087 * command, as set up by the REPLY_RATE_SCALE (for 3945) or
1088 * REPLY_TX_LINK_QUALITY_CMD (4965).
1089 *
1090 * Driver sets up transmit power for various rates via REPLY_TX_PWR_TABLE_CMD.
1091 * This command must be executed after every RXON command, before Tx can occur.
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1092 *****************************************************************************/
1093
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1094/* REPLY_TX Tx flags field */
1095
1096/* 1: Use Request-To-Send protocol before this frame.
1097 * Mutually exclusive vs. TX_CMD_FLG_CTS_MSK. */
b481de9c 1098#define TX_CMD_FLG_RTS_MSK __constant_cpu_to_le32(1 << 1)
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1099
1100/* 1: Transmit Clear-To-Send to self before this frame.
1101 * Driver should set this for AUTH/DEAUTH/ASSOC-REQ/REASSOC mgmnt frames.
1102 * Mutually exclusive vs. TX_CMD_FLG_RTS_MSK. */
b481de9c 1103#define TX_CMD_FLG_CTS_MSK __constant_cpu_to_le32(1 << 2)
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1104
1105/* 1: Expect ACK from receiving station
1106 * 0: Don't expect ACK (MAC header's duration field s/b 0)
1107 * Set this for unicast frames, but not broadcast/multicast. */
b481de9c 1108#define TX_CMD_FLG_ACK_MSK __constant_cpu_to_le32(1 << 3)
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1109
1110/* For 4965:
1111 * 1: Use rate scale table (see REPLY_TX_LINK_QUALITY_CMD).
1112 * Tx command's initial_rate_index indicates first rate to try;
1113 * uCode walks through table for additional Tx attempts.
1114 * 0: Use Tx rate/MCS from Tx command's rate_n_flags field.
1115 * This rate will be used for all Tx attempts; it will not be scaled. */
b481de9c 1116#define TX_CMD_FLG_STA_RATE_MSK __constant_cpu_to_le32(1 << 4)
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1117
1118/* 1: Expect immediate block-ack.
1119 * Set when Txing a block-ack request frame. Also set TX_CMD_FLG_ACK_MSK. */
b481de9c 1120#define TX_CMD_FLG_IMM_BA_RSP_MASK __constant_cpu_to_le32(1 << 6)
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1121
1122/* 1: Frame requires full Tx-Op protection.
1123 * Set this if either RTS or CTS Tx Flag gets set. */
b481de9c 1124#define TX_CMD_FLG_FULL_TXOP_PROT_MSK __constant_cpu_to_le32(1 << 7)
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1125
1126/* Tx antenna selection field; used only for 3945, reserved (0) for 4965.
1127 * Set field to "0" to allow 3945 uCode to select antenna (normal usage). */
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1128#define TX_CMD_FLG_ANT_SEL_MSK __constant_cpu_to_le32(0xf00)
1129#define TX_CMD_FLG_ANT_A_MSK __constant_cpu_to_le32(1 << 8)
1130#define TX_CMD_FLG_ANT_B_MSK __constant_cpu_to_le32(1 << 9)
1131
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1132/* 1: Ignore Bluetooth priority for this frame.
1133 * 0: Delay Tx until Bluetooth device is done (normal usage). */
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1134#define TX_CMD_FLG_BT_DIS_MSK __constant_cpu_to_le32(1 << 12)
1135
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1136/* 1: uCode overrides sequence control field in MAC header.
1137 * 0: Driver provides sequence control field in MAC header.
1138 * Set this for management frames, non-QOS data frames, non-unicast frames,
1139 * and also in Tx command embedded in REPLY_SCAN_CMD for active scans. */
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1140#define TX_CMD_FLG_SEQ_CTL_MSK __constant_cpu_to_le32(1 << 13)
1141
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1142/* 1: This frame is non-last MPDU; more fragments are coming.
1143 * 0: Last fragment, or not using fragmentation. */
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1144#define TX_CMD_FLG_MORE_FRAG_MSK __constant_cpu_to_le32(1 << 14)
1145
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1146/* 1: uCode calculates and inserts Timestamp Function (TSF) in outgoing frame.
1147 * 0: No TSF required in outgoing frame.
1148 * Set this for transmitting beacons and probe responses. */
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1149#define TX_CMD_FLG_TSF_MSK __constant_cpu_to_le32(1 << 16)
1150
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1151/* 1: Driver inserted 2 bytes pad after the MAC header, for (required) dword
1152 * alignment of frame's payload data field.
1153 * 0: No pad
1154 * Set this for MAC headers with 26 or 30 bytes, i.e. those with QOS or ADDR4
1155 * field (but not both). Driver must align frame data (i.e. data following
1156 * MAC header) to DWORD boundary. */
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1157#define TX_CMD_FLG_MH_PAD_MSK __constant_cpu_to_le32(1 << 20)
1158
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1159/* accelerate aggregation support
1160 * 0 - no CCMP encryption; 1 - CCMP encryption */
1161#define TX_CMD_FLG_AGG_CCMP_MSK __constant_cpu_to_le32(1 << 22)
1162
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1163/* HCCA-AP - disable duration overwriting. */
1164#define TX_CMD_FLG_DUR_MSK __constant_cpu_to_le32(1 << 25)
1165
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1167/*
1168 * TX command security control
1169 */
1170#define TX_CMD_SEC_WEP 0x01
1171#define TX_CMD_SEC_CCM 0x02
1172#define TX_CMD_SEC_TKIP 0x03
1173#define TX_CMD_SEC_MSK 0x03
1174#define TX_CMD_SEC_SHIFT 6
1175#define TX_CMD_SEC_KEY128 0x08
1176
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1177/*
1178 * security overhead sizes
1179 */
1180#define WEP_IV_LEN 4
1181#define WEP_ICV_LEN 4
1182#define CCMP_MIC_LEN 8
1183#define TKIP_ICV_LEN 4
1184
b481de9c 1185/*
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1186 * 4965 uCode updates these Tx attempt count values in host DRAM.
1187 * Used for managing Tx retries when expecting block-acks.
1188 * Driver should set these fields to 0.
b481de9c 1189 */
bb8c093b 1190struct iwl4965_dram_scratch {
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1191 u8 try_cnt; /* Tx attempts */
1192 u8 bt_kill_cnt; /* Tx attempts blocked by Bluetooth device */
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1193 __le16 reserved;
1194} __attribute__ ((packed));
1195
1196/*
1197 * REPLY_TX = 0x1c (command)
1198 */
83d527d9 1199struct iwl_tx_cmd {
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1200 /*
1201 * MPDU byte count:
1202 * MAC header (24/26/30/32 bytes) + 2 bytes pad if 26/30 header size,
1203 * + 8 byte IV for CCM or TKIP (not used for WEP)
1204 * + Data payload
1205 * + 8-byte MIC (not used for CCM/WEP)
1206 * NOTE: Does not include Tx command bytes, post-MAC pad bytes,
1207 * MIC (CCM) 8 bytes, ICV (WEP/TKIP/CKIP) 4 bytes, CRC 4 bytes.i
1208 * Range: 14-2342 bytes.
1209 */
b481de9c 1210 __le16 len;
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1211
1212 /*
1213 * MPDU or MSDU byte count for next frame.
1214 * Used for fragmentation and bursting, but not 11n aggregation.
1215 * Same as "len", but for next frame. Set to 0 if not applicable.
1216 */
b481de9c 1217 __le16 next_frame_len;
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1218
1219 __le32 tx_flags; /* TX_CMD_FLG_* */
1220
1221 /* 4965's uCode may modify this field of the Tx command (in host DRAM!).
1222 * Driver must also set dram_lsb_ptr and dram_msb_ptr in this cmd. */
bb8c093b 1223 struct iwl4965_dram_scratch scratch;
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1224
1225 /* Rate for *all* Tx attempts, if TX_CMD_FLG_STA_RATE_MSK is cleared. */
1226 __le32 rate_n_flags; /* RATE_MCS_* */
1227
1228 /* Index of destination station in uCode's station table */
b481de9c 1229 u8 sta_id;
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1230
1231 /* Type of security encryption: CCM or TKIP */
1232 u8 sec_ctl; /* TX_CMD_SEC_* */
1233
1234 /*
1235 * Index into rate table (see REPLY_TX_LINK_QUALITY_CMD) for initial
1236 * Tx attempt, if TX_CMD_FLG_STA_RATE_MSK is set. Normally "0" for
1237 * data frames, this field may be used to selectively reduce initial
1238 * rate (via non-0 value) for special frames (e.g. management), while
1239 * still supporting rate scaling for all frames.
1240 */
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1241 u8 initial_rate_index;
1242 u8 reserved;
b481de9c 1243 u8 key[16];
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1244 __le16 next_frame_flags;
1245 __le16 reserved2;
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1246 union {
1247 __le32 life_time;
1248 __le32 attempt;
1249 } stop_time;
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1250
1251 /* Host DRAM physical address pointer to "scratch" in this command.
1252 * Must be dword aligned. "0" in dram_lsb_ptr disables usage. */
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1253 __le32 dram_lsb_ptr;
1254 u8 dram_msb_ptr;
52969981 1255
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1256 u8 rts_retry_limit; /*byte 50 */
1257 u8 data_retry_limit; /*byte 51 */
b481de9c 1258 u8 tid_tspec;
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1259 union {
1260 __le16 pm_frame_timeout;
1261 __le16 attempt_duration;
1262 } timeout;
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1263
1264 /*
1265 * Duration of EDCA burst Tx Opportunity, in 32-usec units.
1266 * Set this if txop time is not specified by HCCA protocol (e.g. by AP).
1267 */
b481de9c 1268 __le16 driver_txop;
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1269
1270 /*
1271 * MAC header goes here, followed by 2 bytes padding if MAC header
1272 * length is 26 or 30 bytes, followed by payload data
1273 */
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1274 u8 payload[0];
1275 struct ieee80211_hdr hdr[0];
1276} __attribute__ ((packed));
1277
1278/* TX command response is sent after *all* transmission attempts.
1279 *
1280 * NOTES:
1281 *
1282 * TX_STATUS_FAIL_NEXT_FRAG
1283 *
1284 * If the fragment flag in the MAC header for the frame being transmitted
1285 * is set and there is insufficient time to transmit the next frame, the
1286 * TX status will be returned with 'TX_STATUS_FAIL_NEXT_FRAG'.
1287 *
1288 * TX_STATUS_FIFO_UNDERRUN
1289 *
1290 * Indicates the host did not provide bytes to the FIFO fast enough while
1291 * a TX was in progress.
1292 *
1293 * TX_STATUS_FAIL_MGMNT_ABORT
1294 *
1295 * This status is only possible if the ABORT ON MGMT RX parameter was
1296 * set to true with the TX command.
1297 *
1298 * If the MSB of the status parameter is set then an abort sequence is
1299 * required. This sequence consists of the host activating the TX Abort
1300 * control line, and then waiting for the TX Abort command response. This
1301 * indicates that a the device is no longer in a transmit state, and that the
1302 * command FIFO has been cleared. The host must then deactivate the TX Abort
1303 * control line. Receiving is still allowed in this case.
1304 */
1305enum {
1306 TX_STATUS_SUCCESS = 0x01,
1307 TX_STATUS_DIRECT_DONE = 0x02,
1308 TX_STATUS_FAIL_SHORT_LIMIT = 0x82,
1309 TX_STATUS_FAIL_LONG_LIMIT = 0x83,
1310 TX_STATUS_FAIL_FIFO_UNDERRUN = 0x84,
1311 TX_STATUS_FAIL_MGMNT_ABORT = 0x85,
1312 TX_STATUS_FAIL_NEXT_FRAG = 0x86,
1313 TX_STATUS_FAIL_LIFE_EXPIRE = 0x87,
1314 TX_STATUS_FAIL_DEST_PS = 0x88,
1315 TX_STATUS_FAIL_ABORTED = 0x89,
1316 TX_STATUS_FAIL_BT_RETRY = 0x8a,
1317 TX_STATUS_FAIL_STA_INVALID = 0x8b,
1318 TX_STATUS_FAIL_FRAG_DROPPED = 0x8c,
1319 TX_STATUS_FAIL_TID_DISABLE = 0x8d,
1320 TX_STATUS_FAIL_FRAME_FLUSHED = 0x8e,
1321 TX_STATUS_FAIL_INSUFFICIENT_CF_POLL = 0x8f,
1322 TX_STATUS_FAIL_TX_LOCKED = 0x90,
1323 TX_STATUS_FAIL_NO_BEACON_ON_RADAR = 0x91,
1324};
1325
1326#define TX_PACKET_MODE_REGULAR 0x0000
1327#define TX_PACKET_MODE_BURST_SEQ 0x0100
1328#define TX_PACKET_MODE_BURST_FIRST 0x0200
1329
1330enum {
1331 TX_POWER_PA_NOT_ACTIVE = 0x0,
1332};
1333
1334enum {
1335 TX_STATUS_MSK = 0x000000ff, /* bits 0:7 */
1336 TX_STATUS_DELAY_MSK = 0x00000040,
1337 TX_STATUS_ABORT_MSK = 0x00000080,
1338 TX_PACKET_MODE_MSK = 0x0000ff00, /* bits 8:15 */
1339 TX_FIFO_NUMBER_MSK = 0x00070000, /* bits 16:18 */
1340 TX_RESERVED = 0x00780000, /* bits 19:22 */
1341 TX_POWER_PA_DETECT_MSK = 0x7f800000, /* bits 23:30 */
1342 TX_ABORT_REQUIRED_MSK = 0x80000000, /* bits 31:31 */
1343};
1344
1345/* *******************************
52969981 1346 * TX aggregation status
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1347 ******************************* */
1348
1349enum {
1350 AGG_TX_STATE_TRANSMITTED = 0x00,
1351 AGG_TX_STATE_UNDERRUN_MSK = 0x01,
1352 AGG_TX_STATE_BT_PRIO_MSK = 0x02,
1353 AGG_TX_STATE_FEW_BYTES_MSK = 0x04,
1354 AGG_TX_STATE_ABORT_MSK = 0x08,
1355 AGG_TX_STATE_LAST_SENT_TTL_MSK = 0x10,
1356 AGG_TX_STATE_LAST_SENT_TRY_CNT_MSK = 0x20,
1357 AGG_TX_STATE_LAST_SENT_BT_KILL_MSK = 0x40,
1358 AGG_TX_STATE_SCD_QUERY_MSK = 0x80,
1359 AGG_TX_STATE_TEST_BAD_CRC32_MSK = 0x100,
1360 AGG_TX_STATE_RESPONSE_MSK = 0x1ff,
1361 AGG_TX_STATE_DUMP_TX_MSK = 0x200,
1362 AGG_TX_STATE_DELAY_TX_MSK = 0x400
1363};
1364
1365#define AGG_TX_STATE_LAST_SENT_MSK \
1366(AGG_TX_STATE_LAST_SENT_TTL_MSK | \
1367 AGG_TX_STATE_LAST_SENT_TRY_CNT_MSK | \
1368 AGG_TX_STATE_LAST_SENT_BT_KILL_MSK)
1369
52969981 1370/* # tx attempts for first frame in aggregation */
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1371#define AGG_TX_STATE_TRY_CNT_POS 12
1372#define AGG_TX_STATE_TRY_CNT_MSK 0xf000
1373
52969981 1374/* Command ID and sequence number of Tx command for this frame */
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1375#define AGG_TX_STATE_SEQ_NUM_POS 16
1376#define AGG_TX_STATE_SEQ_NUM_MSK 0xffff0000
1377
1378/*
1379 * REPLY_TX = 0x1c (response)
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1380 *
1381 * This response may be in one of two slightly different formats, indicated
1382 * by the frame_count field:
1383 *
1384 * 1) No aggregation (frame_count == 1). This reports Tx results for
1385 * a single frame. Multiple attempts, at various bit rates, may have
1386 * been made for this frame.
1387 *
1388 * 2) Aggregation (frame_count > 1). This reports Tx results for
1389 * 2 or more frames that used block-acknowledge. All frames were
1390 * transmitted at same rate. Rate scaling may have been used if first
1391 * frame in this new agg block failed in previous agg block(s).
1392 *
1393 * Note that, for aggregation, ACK (block-ack) status is not delivered here;
1394 * block-ack has not been received by the time the 4965 records this status.
1395 * This status relates to reasons the tx might have been blocked or aborted
1396 * within the sending station (this 4965), rather than whether it was
1397 * received successfully by the destination station.
b481de9c 1398 */
bb8c093b 1399struct iwl4965_tx_resp {
b481de9c 1400 u8 frame_count; /* 1 no aggregation, >1 aggregation */
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1401 u8 bt_kill_count; /* # blocked by bluetooth (unused for agg) */
1402 u8 failure_rts; /* # failures due to unsuccessful RTS */
1403 u8 failure_frame; /* # failures due to no ACK (unused for agg) */
1404
1405 /* For non-agg: Rate at which frame was successful.
1406 * For agg: Rate at which all frames were transmitted. */
1407 __le32 rate_n_flags; /* RATE_MCS_* */
1408
1409 /* For non-agg: RTS + CTS + frame tx attempts time + ACK.
1410 * For agg: RTS + CTS + aggregation tx time + block-ack time. */
1411 __le16 wireless_media_time; /* uSecs */
1412
b481de9c 1413 __le16 reserved;
52969981 1414 __le32 pa_power1; /* RF power amplifier measurement (not used) */
b481de9c 1415 __le32 pa_power2;
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1416
1417 /*
1418 * For non-agg: frame status TX_STATUS_*
1419 * For agg: status of 1st frame, AGG_TX_STATE_*; other frame status
1420 * fields follow this one, up to frame_count.
1421 * Bit fields:
1422 * 11- 0: AGG_TX_STATE_* status code
1423 * 15-12: Retry count for 1st frame in aggregation (retries
1424 * occur if tx failed for this frame when it was a
1425 * member of a previous aggregation block). If rate
1426 * scaling is used, retry count indicates the rate
1427 * table entry used for all frames in the new agg.
1428 * 31-16: Sequence # for this frame's Tx cmd (not SSN!)
1429 */
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1430 __le32 status; /* TX status (for aggregation status of 1st frame) */
1431} __attribute__ ((packed));
1432
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1433struct agg_tx_status {
1434 __le16 status;
1435 __le16 sequence;
1436} __attribute__ ((packed));
1437
1438struct iwl4965_tx_resp_agg {
1439 u8 frame_count; /* 1 no aggregation, >1 aggregation */
1440 u8 reserved1;
1441 u8 failure_rts;
1442 u8 failure_frame;
1443 __le32 rate_n_flags;
1444 __le16 wireless_media_time;
1445 __le16 reserved3;
1446 __le32 pa_power1;
1447 __le32 pa_power2;
1448 struct agg_tx_status status; /* TX status (for aggregation status */
1449 /* of 1st frame) */
1450} __attribute__ ((packed));
1451
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1452/*
1453 * REPLY_COMPRESSED_BA = 0xc5 (response only, not a command)
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1454 *
1455 * Reports Block-Acknowledge from recipient station
b481de9c 1456 */
bb8c093b 1457struct iwl4965_compressed_ba_resp {
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1458 __le32 sta_addr_lo32;
1459 __le16 sta_addr_hi16;
1460 __le16 reserved;
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1461
1462 /* Index of recipient (BA-sending) station in uCode's station table */
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1463 u8 sta_id;
1464 u8 tid;
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1465 __le16 seq_ctl;
1466 __le64 bitmap;
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1467 __le16 scd_flow;
1468 __le16 scd_ssn;
1469} __attribute__ ((packed));
1470
1471/*
1472 * REPLY_TX_PWR_TABLE_CMD = 0x97 (command, has simple generic response)
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1473 *
1474 * See details under "TXPOWER" in iwl-4965-hw.h.
b481de9c 1475 */
bb8c093b 1476struct iwl4965_txpowertable_cmd {
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1477 u8 band; /* 0: 5 GHz, 1: 2.4 GHz */
1478 u8 reserved;
1479 __le16 channel;
bb8c093b 1480 struct iwl4965_tx_power_db tx_power;
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1481} __attribute__ ((packed));
1482
b481de9c 1483/*RS_NEW_API: only TLC_RTS remains and moved to bit 0 */
8a1b0245 1484#define LINK_QUAL_FLAGS_SET_STA_TLC_RTS_MSK (1 << 0)
b481de9c 1485
2bdc7031 1486/* # of EDCA prioritized tx fifos */
b481de9c 1487#define LINK_QUAL_AC_NUM AC_NUM
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1488
1489/* # entries in rate scale table to support Tx retries */
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1490#define LINK_QUAL_MAX_RETRY_NUM 16
1491
2bdc7031 1492/* Tx antenna selection values */
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1493#define LINK_QUAL_ANT_A_MSK (1 << 0)
1494#define LINK_QUAL_ANT_B_MSK (1 << 1)
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1495#define LINK_QUAL_ANT_MSK (LINK_QUAL_ANT_A_MSK|LINK_QUAL_ANT_B_MSK)
1496
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1497
1498/**
66c73db7 1499 * struct iwl_link_qual_general_params
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1500 *
1501 * Used in REPLY_TX_LINK_QUALITY_CMD
1502 */
66c73db7 1503struct iwl_link_qual_general_params {
b481de9c 1504 u8 flags;
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1505
1506 /* No entries at or above this (driver chosen) index contain MIMO */
b481de9c 1507 u8 mimo_delimiter;
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1508
1509 /* Best single antenna to use for single stream (legacy, SISO). */
1510 u8 single_stream_ant_msk; /* LINK_QUAL_ANT_* */
1511
1512 /* Best antennas to use for MIMO (unused for 4965, assumes both). */
1513 u8 dual_stream_ant_msk; /* LINK_QUAL_ANT_* */
1514
1515 /*
1516 * If driver needs to use different initial rates for different
1517 * EDCA QOS access categories (as implemented by tx fifos 0-3),
1518 * this table will set that up, by indicating the indexes in the
1519 * rs_table[LINK_QUAL_MAX_RETRY_NUM] rate table at which to start.
1520 * Otherwise, driver should set all entries to 0.
1521 *
1522 * Entry usage:
1523 * 0 = Background, 1 = Best Effort (normal), 2 = Video, 3 = Voice
1524 * TX FIFOs above 3 use same value (typically 0) as TX FIFO 3.
1525 */
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1526 u8 start_rate_index[LINK_QUAL_AC_NUM];
1527} __attribute__ ((packed));
1528
2bdc7031 1529/**
66c73db7 1530 * struct iwl_link_qual_agg_params
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1531 *
1532 * Used in REPLY_TX_LINK_QUALITY_CMD
1533 */
66c73db7 1534struct iwl_link_qual_agg_params {
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1535
1536 /* Maximum number of uSec in aggregation.
1537 * Driver should set this to 4000 (4 milliseconds). */
b481de9c 1538 __le16 agg_time_limit;
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1539
1540 /*
1541 * Number of Tx retries allowed for a frame, before that frame will
1542 * no longer be considered for the start of an aggregation sequence
1543 * (scheduler will then try to tx it as single frame).
1544 * Driver should set this to 3.
1545 */
b481de9c 1546 u8 agg_dis_start_th;
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1547
1548 /*
1549 * Maximum number of frames in aggregation.
1550 * 0 = no limit (default). 1 = no aggregation.
1551 * Other values = max # frames in aggregation.
1552 */
b481de9c 1553 u8 agg_frame_cnt_limit;
2bdc7031 1554
b481de9c
ZY
1555 __le32 reserved;
1556} __attribute__ ((packed));
1557
1558/*
1559 * REPLY_TX_LINK_QUALITY_CMD = 0x4e (command, has simple generic response)
2bdc7031
BC
1560 *
1561 * For 4965 only; 3945 uses REPLY_RATE_SCALE.
1562 *
1563 * Each station in the 4965's internal station table has its own table of 16
1564 * Tx rates and modulation modes (e.g. legacy/SISO/MIMO) for retrying Tx when
1565 * an ACK is not received. This command replaces the entire table for
1566 * one station.
1567 *
1568 * NOTE: Station must already be in 4965's station table. Use REPLY_ADD_STA.
1569 *
1570 * The rate scaling procedures described below work well. Of course, other
1571 * procedures are possible, and may work better for particular environments.
1572 *
1573 *
1574 * FILLING THE RATE TABLE
1575 *
1576 * Given a particular initial rate and mode, as determined by the rate
1577 * scaling algorithm described below, the Linux driver uses the following
1578 * formula to fill the rs_table[LINK_QUAL_MAX_RETRY_NUM] rate table in the
1579 * Link Quality command:
1580 *
1581 *
1582 * 1) If using High-throughput (HT) (SISO or MIMO) initial rate:
1583 * a) Use this same initial rate for first 3 entries.
1584 * b) Find next lower available rate using same mode (SISO or MIMO),
1585 * use for next 3 entries. If no lower rate available, switch to
1586 * legacy mode (no FAT channel, no MIMO, no short guard interval).
1587 * c) If using MIMO, set command's mimo_delimiter to number of entries
1588 * using MIMO (3 or 6).
1589 * d) After trying 2 HT rates, switch to legacy mode (no FAT channel,
1590 * no MIMO, no short guard interval), at the next lower bit rate
1591 * (e.g. if second HT bit rate was 54, try 48 legacy), and follow
1592 * legacy procedure for remaining table entries.
1593 *
1594 * 2) If using legacy initial rate:
1595 * a) Use the initial rate for only one entry.
1596 * b) For each following entry, reduce the rate to next lower available
1597 * rate, until reaching the lowest available rate.
1598 * c) When reducing rate, also switch antenna selection.
1599 * d) Once lowest available rate is reached, repeat this rate until
1600 * rate table is filled (16 entries), switching antenna each entry.
1601 *
1602 *
1603 * ACCUMULATING HISTORY
1604 *
1605 * The rate scaling algorithm for 4965, as implemented in Linux driver, uses
1606 * two sets of frame Tx success history: One for the current/active modulation
1607 * mode, and one for a speculative/search mode that is being attempted. If the
1608 * speculative mode turns out to be more effective (i.e. actual transfer
1609 * rate is better), then the driver continues to use the speculative mode
1610 * as the new current active mode.
1611 *
1612 * Each history set contains, separately for each possible rate, data for a
1613 * sliding window of the 62 most recent tx attempts at that rate. The data
1614 * includes a shifting bitmap of success(1)/failure(0), and sums of successful
1615 * and attempted frames, from which the driver can additionally calculate a
1616 * success ratio (success / attempted) and number of failures
1617 * (attempted - success), and control the size of the window (attempted).
1618 * The driver uses the bit map to remove successes from the success sum, as
1619 * the oldest tx attempts fall out of the window.
1620 *
1621 * When the 4965 makes multiple tx attempts for a given frame, each attempt
1622 * might be at a different rate, and have different modulation characteristics
1623 * (e.g. antenna, fat channel, short guard interval), as set up in the rate
1624 * scaling table in the Link Quality command. The driver must determine
1625 * which rate table entry was used for each tx attempt, to determine which
1626 * rate-specific history to update, and record only those attempts that
1627 * match the modulation characteristics of the history set.
1628 *
1629 * When using block-ack (aggregation), all frames are transmitted at the same
1630 * rate, since there is no per-attempt acknowledgement from the destination
1631 * station. The Tx response struct iwl_tx_resp indicates the Tx rate in
1632 * rate_n_flags field. After receiving a block-ack, the driver can update
1633 * history for the entire block all at once.
1634 *
1635 *
1636 * FINDING BEST STARTING RATE:
1637 *
1638 * When working with a selected initial modulation mode (see below), the
1639 * driver attempts to find a best initial rate. The initial rate is the
1640 * first entry in the Link Quality command's rate table.
1641 *
1642 * 1) Calculate actual throughput (success ratio * expected throughput, see
1643 * table below) for current initial rate. Do this only if enough frames
1644 * have been attempted to make the value meaningful: at least 6 failed
1645 * tx attempts, or at least 8 successes. If not enough, don't try rate
1646 * scaling yet.
1647 *
1648 * 2) Find available rates adjacent to current initial rate. Available means:
1649 * a) supported by hardware &&
1650 * b) supported by association &&
1651 * c) within any constraints selected by user
1652 *
1653 * 3) Gather measured throughputs for adjacent rates. These might not have
1654 * enough history to calculate a throughput. That's okay, we might try
1655 * using one of them anyway!
1656 *
1657 * 4) Try decreasing rate if, for current rate:
1658 * a) success ratio is < 15% ||
1659 * b) lower adjacent rate has better measured throughput ||
1660 * c) higher adjacent rate has worse throughput, and lower is unmeasured
1661 *
1662 * As a sanity check, if decrease was determined above, leave rate
1663 * unchanged if:
1664 * a) lower rate unavailable
1665 * b) success ratio at current rate > 85% (very good)
1666 * c) current measured throughput is better than expected throughput
1667 * of lower rate (under perfect 100% tx conditions, see table below)
1668 *
1669 * 5) Try increasing rate if, for current rate:
1670 * a) success ratio is < 15% ||
1671 * b) both adjacent rates' throughputs are unmeasured (try it!) ||
1672 * b) higher adjacent rate has better measured throughput ||
1673 * c) lower adjacent rate has worse throughput, and higher is unmeasured
1674 *
1675 * As a sanity check, if increase was determined above, leave rate
1676 * unchanged if:
1677 * a) success ratio at current rate < 70%. This is not particularly
1678 * good performance; higher rate is sure to have poorer success.
1679 *
1680 * 6) Re-evaluate the rate after each tx frame. If working with block-
1681 * acknowledge, history and statistics may be calculated for the entire
1682 * block (including prior history that fits within the history windows),
1683 * before re-evaluation.
1684 *
1685 * FINDING BEST STARTING MODULATION MODE:
1686 *
1687 * After working with a modulation mode for a "while" (and doing rate scaling),
1688 * the driver searches for a new initial mode in an attempt to improve
1689 * throughput. The "while" is measured by numbers of attempted frames:
1690 *
1691 * For legacy mode, search for new mode after:
1692 * 480 successful frames, or 160 failed frames
1693 * For high-throughput modes (SISO or MIMO), search for new mode after:
1694 * 4500 successful frames, or 400 failed frames
1695 *
1696 * Mode switch possibilities are (3 for each mode):
1697 *
1698 * For legacy:
1699 * Change antenna, try SISO (if HT association), try MIMO (if HT association)
1700 * For SISO:
1701 * Change antenna, try MIMO, try shortened guard interval (SGI)
1702 * For MIMO:
1703 * Try SISO antenna A, SISO antenna B, try shortened guard interval (SGI)
1704 *
1705 * When trying a new mode, use the same bit rate as the old/current mode when
1706 * trying antenna switches and shortened guard interval. When switching to
1707 * SISO from MIMO or legacy, or to MIMO from SISO or legacy, use a rate
1708 * for which the expected throughput (under perfect conditions) is about the
1709 * same or slightly better than the actual measured throughput delivered by
1710 * the old/current mode.
1711 *
1712 * Actual throughput can be estimated by multiplying the expected throughput
1713 * by the success ratio (successful / attempted tx frames). Frame size is
1714 * not considered in this calculation; it assumes that frame size will average
1715 * out to be fairly consistent over several samples. The following are
1716 * metric values for expected throughput assuming 100% success ratio.
1717 * Only G band has support for CCK rates:
1718 *
1719 * RATE: 1 2 5 11 6 9 12 18 24 36 48 54 60
1720 *
1721 * G: 7 13 35 58 40 57 72 98 121 154 177 186 186
1722 * A: 0 0 0 0 40 57 72 98 121 154 177 186 186
1723 * SISO 20MHz: 0 0 0 0 42 42 76 102 124 159 183 193 202
1724 * SGI SISO 20MHz: 0 0 0 0 46 46 82 110 132 168 192 202 211
1725 * MIMO 20MHz: 0 0 0 0 74 74 123 155 179 214 236 244 251
1726 * SGI MIMO 20MHz: 0 0 0 0 81 81 131 164 188 222 243 251 257
1727 * SISO 40MHz: 0 0 0 0 77 77 127 160 184 220 242 250 257
1728 * SGI SISO 40MHz: 0 0 0 0 83 83 135 169 193 229 250 257 264
1729 * MIMO 40MHz: 0 0 0 0 123 123 182 214 235 264 279 285 289
1730 * SGI MIMO 40MHz: 0 0 0 0 131 131 191 222 242 270 284 289 293
1731 *
1732 * After the new mode has been tried for a short while (minimum of 6 failed
1733 * frames or 8 successful frames), compare success ratio and actual throughput
1734 * estimate of the new mode with the old. If either is better with the new
1735 * mode, continue to use the new mode.
1736 *
1737 * Continue comparing modes until all 3 possibilities have been tried.
1738 * If moving from legacy to HT, try all 3 possibilities from the new HT
1739 * mode. After trying all 3, a best mode is found. Continue to use this mode
1740 * for the longer "while" described above (e.g. 480 successful frames for
1741 * legacy), and then repeat the search process.
1742 *
b481de9c 1743 */
66c73db7 1744struct iwl_link_quality_cmd {
2bdc7031
BC
1745
1746 /* Index of destination/recipient station in uCode's station table */
b481de9c
ZY
1747 u8 sta_id;
1748 u8 reserved1;
2bdc7031 1749 __le16 control; /* not used */
66c73db7
TW
1750 struct iwl_link_qual_general_params general_params;
1751 struct iwl_link_qual_agg_params agg_params;
2bdc7031
BC
1752
1753 /*
1754 * Rate info; when using rate-scaling, Tx command's initial_rate_index
1755 * specifies 1st Tx rate attempted, via index into this table.
1756 * 4965 works its way through table when retrying Tx.
1757 */
b481de9c 1758 struct {
2bdc7031 1759 __le32 rate_n_flags; /* RATE_MCS_*, IWL_RATE_* */
b481de9c
ZY
1760 } rs_table[LINK_QUAL_MAX_RETRY_NUM];
1761 __le32 reserved2;
1762} __attribute__ ((packed));
b481de9c
ZY
1763
1764/*
1765 * REPLY_BT_CONFIG = 0x9b (command, has simple generic response)
3058f021
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1766 *
1767 * 3945 and 4965 support hardware handshake with Bluetooth device on
1768 * same platform. Bluetooth device alerts wireless device when it will Tx;
1769 * wireless device can delay or kill its own Tx to accomodate.
b481de9c 1770 */
bb8c093b 1771struct iwl4965_bt_cmd {
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ZY
1772 u8 flags;
1773 u8 lead_time;
1774 u8 max_kill;
1775 u8 reserved;
1776 __le32 kill_ack_mask;
1777 __le32 kill_cts_mask;
1778} __attribute__ ((packed));
1779
1780/******************************************************************************
1781 * (6)
1782 * Spectrum Management (802.11h) Commands, Responses, Notifications:
1783 *
1784 *****************************************************************************/
1785
1786/*
1787 * Spectrum Management
1788 */
1789#define MEASUREMENT_FILTER_FLAG (RXON_FILTER_PROMISC_MSK | \
1790 RXON_FILTER_CTL2HOST_MSK | \
1791 RXON_FILTER_ACCEPT_GRP_MSK | \
1792 RXON_FILTER_DIS_DECRYPT_MSK | \
1793 RXON_FILTER_DIS_GRP_DECRYPT_MSK | \
1794 RXON_FILTER_ASSOC_MSK | \
1795 RXON_FILTER_BCON_AWARE_MSK)
1796
bb8c093b 1797struct iwl4965_measure_channel {
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1798 __le32 duration; /* measurement duration in extended beacon
1799 * format */
1800 u8 channel; /* channel to measure */
bb8c093b 1801 u8 type; /* see enum iwl4965_measure_type */
b481de9c
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1802 __le16 reserved;
1803} __attribute__ ((packed));
1804
1805/*
1806 * REPLY_SPECTRUM_MEASUREMENT_CMD = 0x74 (command)
1807 */
bb8c093b 1808struct iwl4965_spectrum_cmd {
b481de9c
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1809 __le16 len; /* number of bytes starting from token */
1810 u8 token; /* token id */
1811 u8 id; /* measurement id -- 0 or 1 */
1812 u8 origin; /* 0 = TGh, 1 = other, 2 = TGk */
1813 u8 periodic; /* 1 = periodic */
1814 __le16 path_loss_timeout;
1815 __le32 start_time; /* start time in extended beacon format */
1816 __le32 reserved2;
1817 __le32 flags; /* rxon flags */
1818 __le32 filter_flags; /* rxon filter flags */
1819 __le16 channel_count; /* minimum 1, maximum 10 */
1820 __le16 reserved3;
bb8c093b 1821 struct iwl4965_measure_channel channels[10];
b481de9c
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1822} __attribute__ ((packed));
1823
1824/*
1825 * REPLY_SPECTRUM_MEASUREMENT_CMD = 0x74 (response)
1826 */
bb8c093b 1827struct iwl4965_spectrum_resp {
b481de9c
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1828 u8 token;
1829 u8 id; /* id of the prior command replaced, or 0xff */
1830 __le16 status; /* 0 - command will be handled
1831 * 1 - cannot handle (conflicts with another
1832 * measurement) */
1833} __attribute__ ((packed));
1834
bb8c093b 1835enum iwl4965_measurement_state {
b481de9c
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1836 IWL_MEASUREMENT_START = 0,
1837 IWL_MEASUREMENT_STOP = 1,
1838};
1839
bb8c093b 1840enum iwl4965_measurement_status {
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1841 IWL_MEASUREMENT_OK = 0,
1842 IWL_MEASUREMENT_CONCURRENT = 1,
1843 IWL_MEASUREMENT_CSA_CONFLICT = 2,
1844 IWL_MEASUREMENT_TGH_CONFLICT = 3,
1845 /* 4-5 reserved */
1846 IWL_MEASUREMENT_STOPPED = 6,
1847 IWL_MEASUREMENT_TIMEOUT = 7,
1848 IWL_MEASUREMENT_PERIODIC_FAILED = 8,
1849};
1850
1851#define NUM_ELEMENTS_IN_HISTOGRAM 8
1852
bb8c093b 1853struct iwl4965_measurement_histogram {
b481de9c
ZY
1854 __le32 ofdm[NUM_ELEMENTS_IN_HISTOGRAM]; /* in 0.8usec counts */
1855 __le32 cck[NUM_ELEMENTS_IN_HISTOGRAM]; /* in 1usec counts */
1856} __attribute__ ((packed));
1857
1858/* clear channel availability counters */
bb8c093b 1859struct iwl4965_measurement_cca_counters {
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1860 __le32 ofdm;
1861 __le32 cck;
1862} __attribute__ ((packed));
1863
bb8c093b 1864enum iwl4965_measure_type {
b481de9c
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1865 IWL_MEASURE_BASIC = (1 << 0),
1866 IWL_MEASURE_CHANNEL_LOAD = (1 << 1),
1867 IWL_MEASURE_HISTOGRAM_RPI = (1 << 2),
1868 IWL_MEASURE_HISTOGRAM_NOISE = (1 << 3),
1869 IWL_MEASURE_FRAME = (1 << 4),
1870 /* bits 5:6 are reserved */
1871 IWL_MEASURE_IDLE = (1 << 7),
1872};
1873
1874/*
1875 * SPECTRUM_MEASURE_NOTIFICATION = 0x75 (notification only, not a command)
1876 */
bb8c093b 1877struct iwl4965_spectrum_notification {
b481de9c
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1878 u8 id; /* measurement id -- 0 or 1 */
1879 u8 token;
1880 u8 channel_index; /* index in measurement channel list */
1881 u8 state; /* 0 - start, 1 - stop */
1882 __le32 start_time; /* lower 32-bits of TSF */
1883 u8 band; /* 0 - 5.2GHz, 1 - 2.4GHz */
1884 u8 channel;
bb8c093b 1885 u8 type; /* see enum iwl4965_measurement_type */
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1886 u8 reserved1;
1887 /* NOTE: cca_ofdm, cca_cck, basic_type, and histogram are only only
1888 * valid if applicable for measurement type requested. */
1889 __le32 cca_ofdm; /* cca fraction time in 40Mhz clock periods */
1890 __le32 cca_cck; /* cca fraction time in 44Mhz clock periods */
1891 __le32 cca_time; /* channel load time in usecs */
1892 u8 basic_type; /* 0 - bss, 1 - ofdm preamble, 2 -
1893 * unidentified */
1894 u8 reserved2[3];
bb8c093b 1895 struct iwl4965_measurement_histogram histogram;
b481de9c 1896 __le32 stop_time; /* lower 32-bits of TSF */
bb8c093b 1897 __le32 status; /* see iwl4965_measurement_status */
b481de9c
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1898} __attribute__ ((packed));
1899
1900/******************************************************************************
1901 * (7)
1902 * Power Management Commands, Responses, Notifications:
1903 *
1904 *****************************************************************************/
1905
1906/**
bb8c093b 1907 * struct iwl4965_powertable_cmd - Power Table Command
b481de9c
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1908 * @flags: See below:
1909 *
1910 * POWER_TABLE_CMD = 0x77 (command, has simple generic response)
1911 *
1912 * PM allow:
1913 * bit 0 - '0' Driver not allow power management
1914 * '1' Driver allow PM (use rest of parameters)
1915 * uCode send sleep notifications:
1916 * bit 1 - '0' Don't send sleep notification
1917 * '1' send sleep notification (SEND_PM_NOTIFICATION)
1918 * Sleep over DTIM
1919 * bit 2 - '0' PM have to walk up every DTIM
1920 * '1' PM could sleep over DTIM till listen Interval.
1921 * PCI power managed
1922 * bit 3 - '0' (PCI_LINK_CTRL & 0x1)
1923 * '1' !(PCI_LINK_CTRL & 0x1)
1924 * Force sleep Modes
1925 * bit 31/30- '00' use both mac/xtal sleeps
1926 * '01' force Mac sleep
1927 * '10' force xtal sleep
1928 * '11' Illegal set
1929 *
1930 * NOTE: if sleep_interval[SLEEP_INTRVL_TABLE_SIZE-1] > DTIM period then
1931 * ucode assume sleep over DTIM is allowed and we don't need to wakeup
1932 * for every DTIM.
1933 */
1934#define IWL_POWER_VEC_SIZE 5
1935
8a1b0245
RC
1936#define IWL_POWER_DRIVER_ALLOW_SLEEP_MSK __constant_cpu_to_le16(1 << 0)
1937#define IWL_POWER_SLEEP_OVER_DTIM_MSK __constant_cpu_to_le16(1 << 2)
1938#define IWL_POWER_PCI_PM_MSK __constant_cpu_to_le16(1 << 3)
5da4b55f 1939#define IWL_POWER_FAST_PD __constant_cpu_to_le16(1 << 4)
b481de9c 1940
bb8c093b 1941struct iwl4965_powertable_cmd {
b481de9c
ZY
1942 __le16 flags;
1943 u8 keep_alive_seconds;
1944 u8 debug_flags;
1945 __le32 rx_data_timeout;
1946 __le32 tx_data_timeout;
1947 __le32 sleep_interval[IWL_POWER_VEC_SIZE];
1948 __le32 keep_alive_beacons;
1949} __attribute__ ((packed));
b481de9c
ZY
1950
1951/*
1952 * PM_SLEEP_NOTIFICATION = 0x7A (notification only, not a command)
1953 * 3945 and 4965 identical.
1954 */
bb8c093b 1955struct iwl4965_sleep_notification {
b481de9c
ZY
1956 u8 pm_sleep_mode;
1957 u8 pm_wakeup_src;
1958 __le16 reserved;
1959 __le32 sleep_time;
1960 __le32 tsf_low;
1961 __le32 bcon_timer;
1962} __attribute__ ((packed));
1963
1964/* Sleep states. 3945 and 4965 identical. */
1965enum {
1966 IWL_PM_NO_SLEEP = 0,
1967 IWL_PM_SLP_MAC = 1,
1968 IWL_PM_SLP_FULL_MAC_UNASSOCIATE = 2,
1969 IWL_PM_SLP_FULL_MAC_CARD_STATE = 3,
1970 IWL_PM_SLP_PHY = 4,
1971 IWL_PM_SLP_REPENT = 5,
1972 IWL_PM_WAKEUP_BY_TIMER = 6,
1973 IWL_PM_WAKEUP_BY_DRIVER = 7,
1974 IWL_PM_WAKEUP_BY_RFKILL = 8,
1975 /* 3 reserved */
1976 IWL_PM_NUM_OF_MODES = 12,
1977};
1978
1979/*
1980 * REPLY_CARD_STATE_CMD = 0xa0 (command, has simple generic response)
1981 */
1982#define CARD_STATE_CMD_DISABLE 0x00 /* Put card to sleep */
1983#define CARD_STATE_CMD_ENABLE 0x01 /* Wake up card */
1984#define CARD_STATE_CMD_HALT 0x02 /* Power down permanently */
bb8c093b 1985struct iwl4965_card_state_cmd {
b481de9c
ZY
1986 __le32 status; /* CARD_STATE_CMD_* request new power state */
1987} __attribute__ ((packed));
1988
1989/*
1990 * CARD_STATE_NOTIFICATION = 0xa1 (notification only, not a command)
1991 */
bb8c093b 1992struct iwl4965_card_state_notif {
b481de9c
ZY
1993 __le32 flags;
1994} __attribute__ ((packed));
1995
1996#define HW_CARD_DISABLED 0x01
1997#define SW_CARD_DISABLED 0x02
1998#define RF_CARD_DISABLED 0x04
1999#define RXON_CARD_DISABLED 0x10
2000
bb8c093b 2001struct iwl4965_ct_kill_config {
b481de9c
ZY
2002 __le32 reserved;
2003 __le32 critical_temperature_M;
2004 __le32 critical_temperature_R;
2005} __attribute__ ((packed));
2006
2007/******************************************************************************
2008 * (8)
2009 * Scan Commands, Responses, Notifications:
2010 *
2011 *****************************************************************************/
2012
3058f021
BC
2013/**
2014 * struct iwl4965_scan_channel - entry in REPLY_SCAN_CMD channel table
2015 *
2016 * One for each channel in the scan list.
2017 * Each channel can independently select:
2018 * 1) SSID for directed active scans
2019 * 2) Txpower setting (for rate specified within Tx command)
2020 * 3) How long to stay on-channel (behavior may be modified by quiet_time,
2021 * quiet_plcp_th, good_CRC_th)
2022 *
2023 * To avoid uCode errors, make sure the following are true (see comments
2024 * under struct iwl4965_scan_cmd about max_out_time and quiet_time):
2025 * 1) If using passive_dwell (i.e. passive_dwell != 0):
2026 * active_dwell <= passive_dwell (< max_out_time if max_out_time != 0)
2027 * 2) quiet_time <= active_dwell
2028 * 3) If restricting off-channel time (i.e. max_out_time !=0):
2029 * passive_dwell < max_out_time
2030 * active_dwell < max_out_time
2031 */
bb8c093b 2032struct iwl4965_scan_channel {
3058f021
BC
2033 /*
2034 * type is defined as:
2035 * 0:0 1 = active, 0 = passive
2036 * 1:4 SSID direct bit map; if a bit is set, then corresponding
2037 * SSID IE is transmitted in probe request.
b481de9c
ZY
2038 * 5:7 reserved
2039 */
2040 u8 type;
3058f021 2041 u8 channel; /* band is selected by iwl4965_scan_cmd "flags" field */
bb8c093b 2042 struct iwl4965_tx_power tpc;
3058f021
BC
2043 __le16 active_dwell; /* in 1024-uSec TU (time units), typ 5-50 */
2044 __le16 passive_dwell; /* in 1024-uSec TU (time units), typ 20-500 */
b481de9c
ZY
2045} __attribute__ ((packed));
2046
3058f021
BC
2047/**
2048 * struct iwl4965_ssid_ie - directed scan network information element
2049 *
2050 * Up to 4 of these may appear in REPLY_SCAN_CMD, selected by "type" field
2051 * in struct iwl4965_scan_channel; each channel may select different ssids from
2052 * among the 4 entries. SSID IEs get transmitted in reverse order of entry.
2053 */
bb8c093b 2054struct iwl4965_ssid_ie {
b481de9c
ZY
2055 u8 id;
2056 u8 len;
2057 u8 ssid[32];
2058} __attribute__ ((packed));
2059
2060#define PROBE_OPTION_MAX 0x4
2061#define TX_CMD_LIFE_TIME_INFINITE __constant_cpu_to_le32(0xFFFFFFFF)
2062#define IWL_GOOD_CRC_TH __constant_cpu_to_le16(1)
2063#define IWL_MAX_SCAN_SIZE 1024
2064
2065/*
2066 * REPLY_SCAN_CMD = 0x80 (command)
3058f021
BC
2067 *
2068 * The hardware scan command is very powerful; the driver can set it up to
2069 * maintain (relatively) normal network traffic while doing a scan in the
2070 * background. The max_out_time and suspend_time control the ratio of how
2071 * long the device stays on an associated network channel ("service channel")
2072 * vs. how long it's away from the service channel, i.e. tuned to other channels
2073 * for scanning.
2074 *
2075 * max_out_time is the max time off-channel (in usec), and suspend_time
2076 * is how long (in "extended beacon" format) that the scan is "suspended"
2077 * after returning to the service channel. That is, suspend_time is the
2078 * time that we stay on the service channel, doing normal work, between
2079 * scan segments. The driver may set these parameters differently to support
2080 * scanning when associated vs. not associated, and light vs. heavy traffic
2081 * loads when associated.
2082 *
2083 * After receiving this command, the device's scan engine does the following;
2084 *
2085 * 1) Sends SCAN_START notification to driver
2086 * 2) Checks to see if it has time to do scan for one channel
2087 * 3) Sends NULL packet, with power-save (PS) bit set to 1,
2088 * to tell AP that we're going off-channel
2089 * 4) Tunes to first channel in scan list, does active or passive scan
2090 * 5) Sends SCAN_RESULT notification to driver
2091 * 6) Checks to see if it has time to do scan on *next* channel in list
2092 * 7) Repeats 4-6 until it no longer has time to scan the next channel
2093 * before max_out_time expires
2094 * 8) Returns to service channel
2095 * 9) Sends NULL packet with PS=0 to tell AP that we're back
2096 * 10) Stays on service channel until suspend_time expires
2097 * 11) Repeats entire process 2-10 until list is complete
2098 * 12) Sends SCAN_COMPLETE notification
2099 *
2100 * For fast, efficient scans, the scan command also has support for staying on
2101 * a channel for just a short time, if doing active scanning and getting no
2102 * responses to the transmitted probe request. This time is controlled by
2103 * quiet_time, and the number of received packets below which a channel is
2104 * considered "quiet" is controlled by quiet_plcp_threshold.
2105 *
2106 * For active scanning on channels that have regulatory restrictions against
2107 * blindly transmitting, the scan can listen before transmitting, to make sure
2108 * that there is already legitimate activity on the channel. If enough
2109 * packets are cleanly received on the channel (controlled by good_CRC_th,
2110 * typical value 1), the scan engine starts transmitting probe requests.
2111 *
2112 * Driver must use separate scan commands for 2.4 vs. 5 GHz bands.
2113 *
2114 * To avoid uCode errors, see timing restrictions described under
2115 * struct iwl4965_scan_channel.
b481de9c 2116 */
bb8c093b 2117struct iwl4965_scan_cmd {
b481de9c
ZY
2118 __le16 len;
2119 u8 reserved0;
3058f021
BC
2120 u8 channel_count; /* # channels in channel list */
2121 __le16 quiet_time; /* dwell only this # millisecs on quiet channel
2122 * (only for active scan) */
2123 __le16 quiet_plcp_th; /* quiet chnl is < this # pkts (typ. 1) */
2124 __le16 good_CRC_th; /* passive -> active promotion threshold */
2125 __le16 rx_chain; /* RXON_RX_CHAIN_* */
2126 __le32 max_out_time; /* max usec to be away from associated (service)
2127 * channel */
2128 __le32 suspend_time; /* pause scan this long (in "extended beacon
2129 * format") when returning to service chnl:
2130 * 3945; 31:24 # beacons, 19:0 additional usec,
2131 * 4965; 31:22 # beacons, 21:0 additional usec.
2132 */
2133 __le32 flags; /* RXON_FLG_* */
2134 __le32 filter_flags; /* RXON_FILTER_* */
2135
2136 /* For active scans (set to all-0s for passive scans).
2137 * Does not include payload. Must specify Tx rate; no rate scaling. */
83d527d9 2138 struct iwl_tx_cmd tx_cmd;
3058f021
BC
2139
2140 /* For directed active scans (set to all-0s otherwise) */
bb8c093b 2141 struct iwl4965_ssid_ie direct_scan[PROBE_OPTION_MAX];
b481de9c 2142
b481de9c 2143 /*
3058f021
BC
2144 * Probe request frame, followed by channel list.
2145 *
2146 * Size of probe request frame is specified by byte count in tx_cmd.
2147 * Channel list follows immediately after probe request frame.
2148 * Number of channels in list is specified by channel_count.
2149 * Each channel in list is of type:
b481de9c 2150 *
bb8c093b 2151 * struct iwl4965_scan_channel channels[0];
b481de9c
ZY
2152 *
2153 * NOTE: Only one band of channels can be scanned per pass. You
3058f021
BC
2154 * must not mix 2.4GHz channels and 5.2GHz channels, and you must wait
2155 * for one scan to complete (i.e. receive SCAN_COMPLETE_NOTIFICATION)
2156 * before requesting another scan.
b481de9c 2157 */
3058f021 2158 u8 data[0];
b481de9c
ZY
2159} __attribute__ ((packed));
2160
2161/* Can abort will notify by complete notification with abort status. */
2162#define CAN_ABORT_STATUS __constant_cpu_to_le32(0x1)
2163/* complete notification statuses */
2164#define ABORT_STATUS 0x2
2165
2166/*
2167 * REPLY_SCAN_CMD = 0x80 (response)
2168 */
bb8c093b 2169struct iwl4965_scanreq_notification {
b481de9c
ZY
2170 __le32 status; /* 1: okay, 2: cannot fulfill request */
2171} __attribute__ ((packed));
2172
2173/*
2174 * SCAN_START_NOTIFICATION = 0x82 (notification only, not a command)
2175 */
bb8c093b 2176struct iwl4965_scanstart_notification {
b481de9c
ZY
2177 __le32 tsf_low;
2178 __le32 tsf_high;
2179 __le32 beacon_timer;
2180 u8 channel;
2181 u8 band;
2182 u8 reserved[2];
2183 __le32 status;
2184} __attribute__ ((packed));
2185
2186#define SCAN_OWNER_STATUS 0x1;
2187#define MEASURE_OWNER_STATUS 0x2;
2188
2189#define NUMBER_OF_STATISTICS 1 /* first __le32 is good CRC */
2190/*
2191 * SCAN_RESULTS_NOTIFICATION = 0x83 (notification only, not a command)
2192 */
bb8c093b 2193struct iwl4965_scanresults_notification {
b481de9c
ZY
2194 u8 channel;
2195 u8 band;
2196 u8 reserved[2];
2197 __le32 tsf_low;
2198 __le32 tsf_high;
2199 __le32 statistics[NUMBER_OF_STATISTICS];
2200} __attribute__ ((packed));
2201
2202/*
2203 * SCAN_COMPLETE_NOTIFICATION = 0x84 (notification only, not a command)
2204 */
bb8c093b 2205struct iwl4965_scancomplete_notification {
b481de9c
ZY
2206 u8 scanned_channels;
2207 u8 status;
2208 u8 reserved;
2209 u8 last_channel;
2210 __le32 tsf_low;
2211 __le32 tsf_high;
2212} __attribute__ ((packed));
2213
2214
2215/******************************************************************************
2216 * (9)
2217 * IBSS/AP Commands and Notifications:
2218 *
2219 *****************************************************************************/
2220
2221/*
2222 * BEACON_NOTIFICATION = 0x90 (notification only, not a command)
2223 */
bb8c093b
CH
2224struct iwl4965_beacon_notif {
2225 struct iwl4965_tx_resp beacon_notify_hdr;
b481de9c
ZY
2226 __le32 low_tsf;
2227 __le32 high_tsf;
2228 __le32 ibss_mgr_status;
2229} __attribute__ ((packed));
2230
2231/*
2232 * REPLY_TX_BEACON = 0x91 (command, has simple generic response)
2233 */
bb8c093b 2234struct iwl4965_tx_beacon_cmd {
83d527d9 2235 struct iwl_tx_cmd tx;
b481de9c
ZY
2236 __le16 tim_idx;
2237 u8 tim_size;
2238 u8 reserved1;
2239 struct ieee80211_hdr frame[0]; /* beacon frame */
2240} __attribute__ ((packed));
2241
2242/******************************************************************************
2243 * (10)
2244 * Statistics Commands and Notifications:
2245 *
2246 *****************************************************************************/
2247
2248#define IWL_TEMP_CONVERT 260
2249
2250#define SUP_RATE_11A_MAX_NUM_CHANNELS 8
2251#define SUP_RATE_11B_MAX_NUM_CHANNELS 4
2252#define SUP_RATE_11G_MAX_NUM_CHANNELS 12
2253
2254/* Used for passing to driver number of successes and failures per rate */
2255struct rate_histogram {
2256 union {
2257 __le32 a[SUP_RATE_11A_MAX_NUM_CHANNELS];
2258 __le32 b[SUP_RATE_11B_MAX_NUM_CHANNELS];
2259 __le32 g[SUP_RATE_11G_MAX_NUM_CHANNELS];
2260 } success;
2261 union {
2262 __le32 a[SUP_RATE_11A_MAX_NUM_CHANNELS];
2263 __le32 b[SUP_RATE_11B_MAX_NUM_CHANNELS];
2264 __le32 g[SUP_RATE_11G_MAX_NUM_CHANNELS];
2265 } failed;
2266} __attribute__ ((packed));
2267
2268/* statistics command response */
2269
2270struct statistics_rx_phy {
2271 __le32 ina_cnt;
2272 __le32 fina_cnt;
2273 __le32 plcp_err;
2274 __le32 crc32_err;
2275 __le32 overrun_err;
2276 __le32 early_overrun_err;
2277 __le32 crc32_good;
2278 __le32 false_alarm_cnt;
2279 __le32 fina_sync_err_cnt;
2280 __le32 sfd_timeout;
2281 __le32 fina_timeout;
2282 __le32 unresponded_rts;
2283 __le32 rxe_frame_limit_overrun;
2284 __le32 sent_ack_cnt;
2285 __le32 sent_cts_cnt;
b481de9c
ZY
2286 __le32 sent_ba_rsp_cnt;
2287 __le32 dsp_self_kill;
2288 __le32 mh_format_err;
2289 __le32 re_acq_main_rssi_sum;
2290 __le32 reserved3;
b481de9c
ZY
2291} __attribute__ ((packed));
2292
b481de9c
ZY
2293struct statistics_rx_ht_phy {
2294 __le32 plcp_err;
2295 __le32 overrun_err;
2296 __le32 early_overrun_err;
2297 __le32 crc32_good;
2298 __le32 crc32_err;
2299 __le32 mh_format_err;
2300 __le32 agg_crc32_good;
2301 __le32 agg_mpdu_cnt;
2302 __le32 agg_cnt;
2303 __le32 reserved2;
2304} __attribute__ ((packed));
b481de9c
ZY
2305
2306struct statistics_rx_non_phy {
2307 __le32 bogus_cts; /* CTS received when not expecting CTS */
2308 __le32 bogus_ack; /* ACK received when not expecting ACK */
2309 __le32 non_bssid_frames; /* number of frames with BSSID that
2310 * doesn't belong to the STA BSSID */
2311 __le32 filtered_frames; /* count frames that were dumped in the
2312 * filtering process */
2313 __le32 non_channel_beacons; /* beacons with our bss id but not on
2314 * our serving channel */
b481de9c
ZY
2315 __le32 channel_beacons; /* beacons with our bss id and in our
2316 * serving channel */
2317 __le32 num_missed_bcon; /* number of missed beacons */
2318 __le32 adc_rx_saturation_time; /* count in 0.8us units the time the
2319 * ADC was in saturation */
2320 __le32 ina_detection_search_time;/* total time (in 0.8us) searched
2321 * for INA */
2322 __le32 beacon_silence_rssi_a; /* RSSI silence after beacon frame */
2323 __le32 beacon_silence_rssi_b; /* RSSI silence after beacon frame */
2324 __le32 beacon_silence_rssi_c; /* RSSI silence after beacon frame */
2325 __le32 interference_data_flag; /* flag for interference data
2326 * availability. 1 when data is
2327 * available. */
3058f021 2328 __le32 channel_load; /* counts RX Enable time in uSec */
b481de9c
ZY
2329 __le32 dsp_false_alarms; /* DSP false alarm (both OFDM
2330 * and CCK) counter */
2331 __le32 beacon_rssi_a;
2332 __le32 beacon_rssi_b;
2333 __le32 beacon_rssi_c;
2334 __le32 beacon_energy_a;
2335 __le32 beacon_energy_b;
2336 __le32 beacon_energy_c;
b481de9c
ZY
2337} __attribute__ ((packed));
2338
2339struct statistics_rx {
2340 struct statistics_rx_phy ofdm;
2341 struct statistics_rx_phy cck;
2342 struct statistics_rx_non_phy general;
b481de9c 2343 struct statistics_rx_ht_phy ofdm_ht;
b481de9c
ZY
2344} __attribute__ ((packed));
2345
b481de9c
ZY
2346struct statistics_tx_non_phy_agg {
2347 __le32 ba_timeout;
2348 __le32 ba_reschedule_frames;
2349 __le32 scd_query_agg_frame_cnt;
2350 __le32 scd_query_no_agg;
2351 __le32 scd_query_agg;
2352 __le32 scd_query_mismatch;
2353 __le32 frame_not_ready;
2354 __le32 underrun;
2355 __le32 bt_prio_kill;
2356 __le32 rx_ba_rsp_cnt;
2357 __le32 reserved2;
2358 __le32 reserved3;
2359} __attribute__ ((packed));
b481de9c
ZY
2360
2361struct statistics_tx {
2362 __le32 preamble_cnt;
2363 __le32 rx_detected_cnt;
2364 __le32 bt_prio_defer_cnt;
2365 __le32 bt_prio_kill_cnt;
2366 __le32 few_bytes_cnt;
2367 __le32 cts_timeout;
2368 __le32 ack_timeout;
2369 __le32 expected_ack_cnt;
2370 __le32 actual_ack_cnt;
b481de9c
ZY
2371 __le32 dump_msdu_cnt;
2372 __le32 burst_abort_next_frame_mismatch_cnt;
2373 __le32 burst_abort_missing_next_frame_cnt;
2374 __le32 cts_timeout_collision;
2375 __le32 ack_or_ba_timeout_collision;
2376 struct statistics_tx_non_phy_agg agg;
b481de9c
ZY
2377} __attribute__ ((packed));
2378
2379struct statistics_dbg {
2380 __le32 burst_check;
2381 __le32 burst_count;
2382 __le32 reserved[4];
2383} __attribute__ ((packed));
2384
2385struct statistics_div {
2386 __le32 tx_on_a;
2387 __le32 tx_on_b;
2388 __le32 exec_time;
2389 __le32 probe_time;
b481de9c
ZY
2390 __le32 reserved1;
2391 __le32 reserved2;
b481de9c
ZY
2392} __attribute__ ((packed));
2393
2394struct statistics_general {
2395 __le32 temperature;
b481de9c 2396 __le32 temperature_m;
b481de9c
ZY
2397 struct statistics_dbg dbg;
2398 __le32 sleep_time;
2399 __le32 slots_out;
2400 __le32 slots_idle;
2401 __le32 ttl_timestamp;
2402 struct statistics_div div;
b481de9c
ZY
2403 __le32 rx_enable_counter;
2404 __le32 reserved1;
2405 __le32 reserved2;
2406 __le32 reserved3;
b481de9c
ZY
2407} __attribute__ ((packed));
2408
2409/*
2410 * REPLY_STATISTICS_CMD = 0x9c,
2411 * 3945 and 4965 identical.
2412 *
2413 * This command triggers an immediate response containing uCode statistics.
2414 * The response is in the same format as STATISTICS_NOTIFICATION 0x9d, below.
2415 *
2416 * If the CLEAR_STATS configuration flag is set, uCode will clear its
2417 * internal copy of the statistics (counters) after issuing the response.
2418 * This flag does not affect STATISTICS_NOTIFICATIONs after beacons (see below).
2419 *
2420 * If the DISABLE_NOTIF configuration flag is set, uCode will not issue
2421 * STATISTICS_NOTIFICATIONs after received beacons (see below). This flag
2422 * does not affect the response to the REPLY_STATISTICS_CMD 0x9c itself.
2423 */
2424#define IWL_STATS_CONF_CLEAR_STATS __constant_cpu_to_le32(0x1) /* see above */
2425#define IWL_STATS_CONF_DISABLE_NOTIF __constant_cpu_to_le32(0x2)/* see above */
bb8c093b 2426struct iwl4965_statistics_cmd {
b481de9c
ZY
2427 __le32 configuration_flags; /* IWL_STATS_CONF_* */
2428} __attribute__ ((packed));
2429
2430/*
2431 * STATISTICS_NOTIFICATION = 0x9d (notification only, not a command)
2432 *
2433 * By default, uCode issues this notification after receiving a beacon
2434 * while associated. To disable this behavior, set DISABLE_NOTIF flag in the
2435 * REPLY_STATISTICS_CMD 0x9c, above.
2436 *
2437 * Statistics counters continue to increment beacon after beacon, but are
2438 * cleared when changing channels or when driver issues REPLY_STATISTICS_CMD
2439 * 0x9c with CLEAR_STATS bit set (see above).
2440 *
2441 * uCode also issues this notification during scans. uCode clears statistics
2442 * appropriately so that each notification contains statistics for only the
2443 * one channel that has just been scanned.
2444 */
2445#define STATISTICS_REPLY_FLG_BAND_24G_MSK __constant_cpu_to_le32(0x2)
2446#define STATISTICS_REPLY_FLG_FAT_MODE_MSK __constant_cpu_to_le32(0x8)
bb8c093b 2447struct iwl4965_notif_statistics {
b481de9c
ZY
2448 __le32 flag;
2449 struct statistics_rx rx;
2450 struct statistics_tx tx;
2451 struct statistics_general general;
2452} __attribute__ ((packed));
2453
2454
2455/*
2456 * MISSED_BEACONS_NOTIFICATION = 0xa2 (notification only, not a command)
2457 */
2458/* if ucode missed CONSECUTIVE_MISSED_BCONS_TH beacons in a row,
2459 * then this notification will be sent. */
2460#define CONSECUTIVE_MISSED_BCONS_TH 20
2461
bb8c093b 2462struct iwl4965_missed_beacon_notif {
b481de9c
ZY
2463 __le32 consequtive_missed_beacons;
2464 __le32 total_missed_becons;
2465 __le32 num_expected_beacons;
2466 __le32 num_recvd_beacons;
2467} __attribute__ ((packed));
2468
f7d09d7c 2469
b481de9c
ZY
2470/******************************************************************************
2471 * (11)
2472 * Rx Calibration Commands:
2473 *
f7d09d7c
BC
2474 * With the uCode used for open source drivers, most Tx calibration (except
2475 * for Tx Power) and most Rx calibration is done by uCode during the
2476 * "initialize" phase of uCode boot. Driver must calibrate only:
2477 *
2478 * 1) Tx power (depends on temperature), described elsewhere
2479 * 2) Receiver gain balance (optimize MIMO, and detect disconnected antennas)
2480 * 3) Receiver sensitivity (to optimize signal detection)
2481 *
b481de9c
ZY
2482 *****************************************************************************/
2483
f7d09d7c
BC
2484/**
2485 * SENSITIVITY_CMD = 0xa8 (command, has simple generic response)
2486 *
2487 * This command sets up the Rx signal detector for a sensitivity level that
2488 * is high enough to lock onto all signals within the associated network,
2489 * but low enough to ignore signals that are below a certain threshold, so as
2490 * not to have too many "false alarms". False alarms are signals that the
2491 * Rx DSP tries to lock onto, but then discards after determining that they
2492 * are noise.
2493 *
2494 * The optimum number of false alarms is between 5 and 50 per 200 TUs
2495 * (200 * 1024 uSecs, i.e. 204.8 milliseconds) of actual Rx time (i.e.
2496 * time listening, not transmitting). Driver must adjust sensitivity so that
2497 * the ratio of actual false alarms to actual Rx time falls within this range.
2498 *
2499 * While associated, uCode delivers STATISTICS_NOTIFICATIONs after each
2500 * received beacon. These provide information to the driver to analyze the
2501 * sensitivity. Don't analyze statistics that come in from scanning, or any
2502 * other non-associated-network source. Pertinent statistics include:
2503 *
2504 * From "general" statistics (struct statistics_rx_non_phy):
2505 *
2506 * (beacon_energy_[abc] & 0x0FF00) >> 8 (unsigned, higher value is lower level)
2507 * Measure of energy of desired signal. Used for establishing a level
2508 * below which the device does not detect signals.
2509 *
2510 * (beacon_silence_rssi_[abc] & 0x0FF00) >> 8 (unsigned, units in dB)
2511 * Measure of background noise in silent period after beacon.
2512 *
2513 * channel_load
2514 * uSecs of actual Rx time during beacon period (varies according to
2515 * how much time was spent transmitting).
2516 *
2517 * From "cck" and "ofdm" statistics (struct statistics_rx_phy), separately:
2518 *
2519 * false_alarm_cnt
2520 * Signal locks abandoned early (before phy-level header).
2521 *
2522 * plcp_err
2523 * Signal locks abandoned late (during phy-level header).
2524 *
2525 * NOTE: Both false_alarm_cnt and plcp_err increment monotonically from
2526 * beacon to beacon, i.e. each value is an accumulation of all errors
2527 * before and including the latest beacon. Values will wrap around to 0
2528 * after counting up to 2^32 - 1. Driver must differentiate vs.
2529 * previous beacon's values to determine # false alarms in the current
2530 * beacon period.
2531 *
2532 * Total number of false alarms = false_alarms + plcp_errs
2533 *
2534 * For OFDM, adjust the following table entries in struct iwl_sensitivity_cmd
2535 * (notice that the start points for OFDM are at or close to settings for
2536 * maximum sensitivity):
2537 *
2538 * START / MIN / MAX
2539 * HD_AUTO_CORR32_X1_TH_ADD_MIN_INDEX 90 / 85 / 120
2540 * HD_AUTO_CORR32_X1_TH_ADD_MIN_MRC_INDEX 170 / 170 / 210
2541 * HD_AUTO_CORR32_X4_TH_ADD_MIN_INDEX 105 / 105 / 140
2542 * HD_AUTO_CORR32_X4_TH_ADD_MIN_MRC_INDEX 220 / 220 / 270
2543 *
2544 * If actual rate of OFDM false alarms (+ plcp_errors) is too high
2545 * (greater than 50 for each 204.8 msecs listening), reduce sensitivity
2546 * by *adding* 1 to all 4 of the table entries above, up to the max for
2547 * each entry. Conversely, if false alarm rate is too low (less than 5
2548 * for each 204.8 msecs listening), *subtract* 1 from each entry to
2549 * increase sensitivity.
2550 *
2551 * For CCK sensitivity, keep track of the following:
2552 *
2553 * 1). 20-beacon history of maximum background noise, indicated by
2554 * (beacon_silence_rssi_[abc] & 0x0FF00), units in dB, across the
2555 * 3 receivers. For any given beacon, the "silence reference" is
2556 * the maximum of last 60 samples (20 beacons * 3 receivers).
2557 *
2558 * 2). 10-beacon history of strongest signal level, as indicated
2559 * by (beacon_energy_[abc] & 0x0FF00) >> 8, across the 3 receivers,
2560 * i.e. the strength of the signal through the best receiver at the
2561 * moment. These measurements are "upside down", with lower values
2562 * for stronger signals, so max energy will be *minimum* value.
2563 *
2564 * Then for any given beacon, the driver must determine the *weakest*
2565 * of the strongest signals; this is the minimum level that needs to be
2566 * successfully detected, when using the best receiver at the moment.
2567 * "Max cck energy" is the maximum (higher value means lower energy!)
2568 * of the last 10 minima. Once this is determined, driver must add
2569 * a little margin by adding "6" to it.
2570 *
2571 * 3). Number of consecutive beacon periods with too few false alarms.
2572 * Reset this to 0 at the first beacon period that falls within the
2573 * "good" range (5 to 50 false alarms per 204.8 milliseconds rx).
2574 *
2575 * Then, adjust the following CCK table entries in struct iwl_sensitivity_cmd
2576 * (notice that the start points for CCK are at maximum sensitivity):
2577 *
2578 * START / MIN / MAX
2579 * HD_AUTO_CORR40_X4_TH_ADD_MIN_INDEX 125 / 125 / 200
2580 * HD_AUTO_CORR40_X4_TH_ADD_MIN_MRC_INDEX 200 / 200 / 400
2581 * HD_MIN_ENERGY_CCK_DET_INDEX 100 / 0 / 100
2582 *
2583 * If actual rate of CCK false alarms (+ plcp_errors) is too high
2584 * (greater than 50 for each 204.8 msecs listening), method for reducing
2585 * sensitivity is:
2586 *
2587 * 1) *Add* 3 to value in HD_AUTO_CORR40_X4_TH_ADD_MIN_MRC_INDEX,
2588 * up to max 400.
2589 *
2590 * 2) If current value in HD_AUTO_CORR40_X4_TH_ADD_MIN_INDEX is < 160,
2591 * sensitivity has been reduced a significant amount; bring it up to
2592 * a moderate 161. Otherwise, *add* 3, up to max 200.
2593 *
2594 * 3) a) If current value in HD_AUTO_CORR40_X4_TH_ADD_MIN_INDEX is > 160,
2595 * sensitivity has been reduced only a moderate or small amount;
2596 * *subtract* 2 from value in HD_MIN_ENERGY_CCK_DET_INDEX,
2597 * down to min 0. Otherwise (if gain has been significantly reduced),
2598 * don't change the HD_MIN_ENERGY_CCK_DET_INDEX value.
2599 *
2600 * b) Save a snapshot of the "silence reference".
2601 *
2602 * If actual rate of CCK false alarms (+ plcp_errors) is too low
2603 * (less than 5 for each 204.8 msecs listening), method for increasing
2604 * sensitivity is used only if:
2605 *
2606 * 1a) Previous beacon did not have too many false alarms
2607 * 1b) AND difference between previous "silence reference" and current
2608 * "silence reference" (prev - current) is 2 or more,
2609 * OR 2) 100 or more consecutive beacon periods have had rate of
2610 * less than 5 false alarms per 204.8 milliseconds rx time.
2611 *
2612 * Method for increasing sensitivity:
2613 *
2614 * 1) *Subtract* 3 from value in HD_AUTO_CORR40_X4_TH_ADD_MIN_INDEX,
2615 * down to min 125.
2616 *
2617 * 2) *Subtract* 3 from value in HD_AUTO_CORR40_X4_TH_ADD_MIN_MRC_INDEX,
2618 * down to min 200.
2619 *
2620 * 3) *Add* 2 to value in HD_MIN_ENERGY_CCK_DET_INDEX, up to max 100.
2621 *
2622 * If actual rate of CCK false alarms (+ plcp_errors) is within good range
2623 * (between 5 and 50 for each 204.8 msecs listening):
2624 *
2625 * 1) Save a snapshot of the silence reference.
2626 *
2627 * 2) If previous beacon had too many CCK false alarms (+ plcp_errors),
2628 * give some extra margin to energy threshold by *subtracting* 8
2629 * from value in HD_MIN_ENERGY_CCK_DET_INDEX.
2630 *
2631 * For all cases (too few, too many, good range), make sure that the CCK
2632 * detection threshold (energy) is below the energy level for robust
2633 * detection over the past 10 beacon periods, the "Max cck energy".
2634 * Lower values mean higher energy; this means making sure that the value
2635 * in HD_MIN_ENERGY_CCK_DET_INDEX is at or *above* "Max cck energy".
2636 *
2637 * Driver should set the following entries to fixed values:
2638 *
2639 * HD_MIN_ENERGY_OFDM_DET_INDEX 100
2640 * HD_BARKER_CORR_TH_ADD_MIN_INDEX 190
2641 * HD_BARKER_CORR_TH_ADD_MIN_MRC_INDEX 390
2642 * HD_OFDM_ENERGY_TH_IN_INDEX 62
2643 */
2644
2645/*
f0832f13 2646 * Table entries in SENSITIVITY_CMD (struct iwl_sensitivity_cmd)
f7d09d7c
BC
2647 */
2648#define HD_TABLE_SIZE (11) /* number of entries */
2649#define HD_MIN_ENERGY_CCK_DET_INDEX (0) /* table indexes */
2650#define HD_MIN_ENERGY_OFDM_DET_INDEX (1)
2651#define HD_AUTO_CORR32_X1_TH_ADD_MIN_INDEX (2)
2652#define HD_AUTO_CORR32_X1_TH_ADD_MIN_MRC_INDEX (3)
2653#define HD_AUTO_CORR40_X4_TH_ADD_MIN_MRC_INDEX (4)
2654#define HD_AUTO_CORR32_X4_TH_ADD_MIN_INDEX (5)
2655#define HD_AUTO_CORR32_X4_TH_ADD_MIN_MRC_INDEX (6)
2656#define HD_BARKER_CORR_TH_ADD_MIN_INDEX (7)
2657#define HD_BARKER_CORR_TH_ADD_MIN_MRC_INDEX (8)
2658#define HD_AUTO_CORR40_X4_TH_ADD_MIN_INDEX (9)
2659#define HD_OFDM_ENERGY_TH_IN_INDEX (10)
2660
f0832f13 2661/* Control field in struct iwl_sensitivity_cmd */
f7d09d7c
BC
2662#define SENSITIVITY_CMD_CONTROL_DEFAULT_TABLE __constant_cpu_to_le16(0)
2663#define SENSITIVITY_CMD_CONTROL_WORK_TABLE __constant_cpu_to_le16(1)
b481de9c 2664
f7d09d7c 2665/**
f0832f13 2666 * struct iwl_sensitivity_cmd
f7d09d7c
BC
2667 * @control: (1) updates working table, (0) updates default table
2668 * @table: energy threshold values, use HD_* as index into table
2669 *
2670 * Always use "1" in "control" to update uCode's working table and DSP.
2671 */
f0832f13 2672struct iwl_sensitivity_cmd {
f7d09d7c
BC
2673 __le16 control; /* always use "1" */
2674 __le16 table[HD_TABLE_SIZE]; /* use HD_* as index */
b481de9c
ZY
2675} __attribute__ ((packed));
2676
f7d09d7c
BC
2677
2678/**
2679 * REPLY_PHY_CALIBRATION_CMD = 0xb0 (command, has simple generic response)
2680 *
2681 * This command sets the relative gains of 4965's 3 radio receiver chains.
2682 *
2683 * After the first association, driver should accumulate signal and noise
2684 * statistics from the STATISTICS_NOTIFICATIONs that follow the first 20
2685 * beacons from the associated network (don't collect statistics that come
2686 * in from scanning, or any other non-network source).
2687 *
2688 * DISCONNECTED ANTENNA:
2689 *
2690 * Driver should determine which antennas are actually connected, by comparing
2691 * average beacon signal levels for the 3 Rx chains. Accumulate (add) the
2692 * following values over 20 beacons, one accumulator for each of the chains
2693 * a/b/c, from struct statistics_rx_non_phy:
2694 *
2695 * beacon_rssi_[abc] & 0x0FF (unsigned, units in dB)
2696 *
2697 * Find the strongest signal from among a/b/c. Compare the other two to the
2698 * strongest. If any signal is more than 15 dB (times 20, unless you
2699 * divide the accumulated values by 20) below the strongest, the driver
2700 * considers that antenna to be disconnected, and should not try to use that
2701 * antenna/chain for Rx or Tx. If both A and B seem to be disconnected,
2702 * driver should declare the stronger one as connected, and attempt to use it
2703 * (A and B are the only 2 Tx chains!).
2704 *
2705 *
2706 * RX BALANCE:
2707 *
2708 * Driver should balance the 3 receivers (but just the ones that are connected
2709 * to antennas, see above) for gain, by comparing the average signal levels
2710 * detected during the silence after each beacon (background noise).
2711 * Accumulate (add) the following values over 20 beacons, one accumulator for
2712 * each of the chains a/b/c, from struct statistics_rx_non_phy:
2713 *
2714 * beacon_silence_rssi_[abc] & 0x0FF (unsigned, units in dB)
2715 *
2716 * Find the weakest background noise level from among a/b/c. This Rx chain
2717 * will be the reference, with 0 gain adjustment. Attenuate other channels by
2718 * finding noise difference:
2719 *
2720 * (accum_noise[i] - accum_noise[reference]) / 30
2721 *
2722 * The "30" adjusts the dB in the 20 accumulated samples to units of 1.5 dB.
2723 * For use in diff_gain_[abc] fields of struct iwl_calibration_cmd, the
2724 * driver should limit the difference results to a range of 0-3 (0-4.5 dB),
2725 * and set bit 2 to indicate "reduce gain". The value for the reference
2726 * (weakest) chain should be "0".
2727 *
2728 * diff_gain_[abc] bit fields:
2729 * 2: (1) reduce gain, (0) increase gain
2730 * 1-0: amount of gain, units of 1.5 dB
2731 */
2732
2733/* "Differential Gain" opcode used in REPLY_PHY_CALIBRATION_CMD. */
2734#define PHY_CALIBRATE_DIFF_GAIN_CMD (7)
2735
bb8c093b 2736struct iwl4965_calibration_cmd {
f7d09d7c
BC
2737 u8 opCode; /* PHY_CALIBRATE_DIFF_GAIN_CMD (7) */
2738 u8 flags; /* not used */
b481de9c 2739 __le16 reserved;
f7d09d7c 2740 s8 diff_gain_a; /* see above */
b481de9c
ZY
2741 s8 diff_gain_b;
2742 s8 diff_gain_c;
2743 u8 reserved1;
2744} __attribute__ ((packed));
2745
33fd5033
EG
2746/* Phy calibration command for 5000 series */
2747
2748enum {
2749 IWL5000_PHY_CALIBRATE_DC_CMD = 8,
2750 IWL5000_PHY_CALIBRATE_LO_CMD = 9,
2751 IWL5000_PHY_CALIBRATE_RX_BB_CMD = 10,
2752 IWL5000_PHY_CALIBRATE_TX_IQ_CMD = 11,
2753 IWL5000_PHY_CALIBRATE_RX_IQ_CMD = 12,
2754 IWL5000_PHY_CALIBRATION_NOISE_CMD = 13,
2755 IWL5000_PHY_CALIBRATE_AGC_TABLE_CMD = 14,
2756 IWL5000_PHY_CALIBRATE_CRYSTAL_FRQ_CMD = 15,
2757 IWL5000_PHY_CALIBRATE_BASE_BAND_CMD = 16,
2758 IWL5000_PHY_CALIBRATE_CHAIN_NOISE_RESET_CMD = 18,
2759 IWL5000_PHY_CALIBRATE_CHAIN_NOISE_GAIN_CMD = 19,
2760};
2761
2762struct iwl5000_calibration_chain_noise_reset_cmd {
2763 u8 op_code; /* IWL5000_PHY_CALIBRATE_CHAIN_NOISE_RESET_CMD */
2764 u8 flags; /* not used */
2765 __le16 reserved;
2766} __attribute__ ((packed));
2767
2768struct iwl5000_calibration_chain_noise_gain_cmd {
2769 u8 op_code; /* IWL5000_PHY_CALIBRATE_CHAIN_NOISE_GAIN_CMD */
2770 u8 flags; /* not used */
2771 __le16 reserved;
2772 u8 delta_gain_1;
2773 u8 delta_gain_2;
2774 __le16 reserved1;
2775} __attribute__ ((packed));
2776
b481de9c
ZY
2777/******************************************************************************
2778 * (12)
2779 * Miscellaneous Commands:
2780 *
2781 *****************************************************************************/
2782
2783/*
2784 * LEDs Command & Response
2785 * REPLY_LEDS_CMD = 0x48 (command, has simple generic response)
2786 *
2787 * For each of 3 possible LEDs (Activity/Link/Tech, selected by "id" field),
2788 * this command turns it on or off, or sets up a periodic blinking cycle.
2789 */
bb8c093b 2790struct iwl4965_led_cmd {
b481de9c
ZY
2791 __le32 interval; /* "interval" in uSec */
2792 u8 id; /* 1: Activity, 2: Link, 3: Tech */
2793 u8 off; /* # intervals off while blinking;
2794 * "0", with >0 "on" value, turns LED on */
2795 u8 on; /* # intervals on while blinking;
2796 * "0", regardless of "off", turns LED off */
2797 u8 reserved;
2798} __attribute__ ((packed));
2799
2800/******************************************************************************
2801 * (13)
2802 * Union of all expected notifications/responses:
2803 *
2804 *****************************************************************************/
2805
db11d634 2806struct iwl_rx_packet {
b481de9c 2807 __le32 len;
857485c0 2808 struct iwl_cmd_header hdr;
b481de9c 2809 union {
bb8c093b
CH
2810 struct iwl4965_alive_resp alive_frame;
2811 struct iwl4965_rx_frame rx_frame;
2812 struct iwl4965_tx_resp tx_resp;
2813 struct iwl4965_spectrum_notification spectrum_notif;
2814 struct iwl4965_csa_notification csa_notif;
2815 struct iwl4965_error_resp err_resp;
2816 struct iwl4965_card_state_notif card_state_notif;
2817 struct iwl4965_beacon_notif beacon_status;
2818 struct iwl4965_add_sta_resp add_sta;
2819 struct iwl4965_sleep_notification sleep_notif;
2820 struct iwl4965_spectrum_resp spectrum;
2821 struct iwl4965_notif_statistics stats;
2822 struct iwl4965_compressed_ba_resp compressed_ba;
2823 struct iwl4965_missed_beacon_notif missed_beacon;
b481de9c
ZY
2824 __le32 status;
2825 u8 raw[0];
2826 } u;
2827} __attribute__ ((packed));
2828
bb8c093b 2829#define IWL_RX_FRAME_SIZE (4 + sizeof(struct iwl4965_rx_frame))
b481de9c 2830
bb8c093b 2831#endif /* __iwl4965_commands_h__ */
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