rt2800usb: remove PWR_PIN_CFG=0x3 during init
[deliverable/linux.git] / drivers / net / wireless / mwifiex / wmm.c
CommitLineData
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1/*
2 * Marvell Wireless LAN device driver: WMM
3 *
4 * Copyright (C) 2011, Marvell International Ltd.
5 *
6 * This software file (the "File") is distributed by Marvell International
7 * Ltd. under the terms of the GNU General Public License Version 2, June 1991
8 * (the "License"). You may use, redistribute and/or modify this File in
9 * accordance with the terms and conditions of the License, a copy of which
10 * is available by writing to the Free Software Foundation, Inc.,
11 * 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA or on the
12 * worldwide web at http://www.gnu.org/licenses/old-licenses/gpl-2.0.txt.
13 *
14 * THE FILE IS DISTRIBUTED AS-IS, WITHOUT WARRANTY OF ANY KIND, AND THE
15 * IMPLIED WARRANTIES OF MERCHANTABILITY OR FITNESS FOR A PARTICULAR PURPOSE
16 * ARE EXPRESSLY DISCLAIMED. The License provides additional details about
17 * this warranty disclaimer.
18 */
19
20#include "decl.h"
21#include "ioctl.h"
22#include "util.h"
23#include "fw.h"
24#include "main.h"
25#include "wmm.h"
26#include "11n.h"
27
28
29/* Maximum value FW can accept for driver delay in packet transmission */
30#define DRV_PKT_DELAY_TO_FW_MAX 512
31
32
33#define WMM_QUEUED_PACKET_LOWER_LIMIT 180
34
35#define WMM_QUEUED_PACKET_UPPER_LIMIT 200
36
37/* Offset for TOS field in the IP header */
38#define IPTOS_OFFSET 5
39
40/* WMM information IE */
41static const u8 wmm_info_ie[] = { WLAN_EID_VENDOR_SPECIFIC, 0x07,
42 0x00, 0x50, 0xf2, 0x02,
43 0x00, 0x01, 0x00
44};
45
46static const u8 wmm_aci_to_qidx_map[] = { WMM_AC_BE,
47 WMM_AC_BK,
48 WMM_AC_VI,
49 WMM_AC_VO
50};
51
52static u8 tos_to_tid[] = {
53 /* TID DSCP_P2 DSCP_P1 DSCP_P0 WMM_AC */
54 0x01, /* 0 1 0 AC_BK */
55 0x02, /* 0 0 0 AC_BK */
56 0x00, /* 0 0 1 AC_BE */
57 0x03, /* 0 1 1 AC_BE */
58 0x04, /* 1 0 0 AC_VI */
59 0x05, /* 1 0 1 AC_VI */
60 0x06, /* 1 1 0 AC_VO */
61 0x07 /* 1 1 1 AC_VO */
62};
63
64/*
65 * This table inverses the tos_to_tid operation to get a priority
66 * which is in sequential order, and can be compared.
67 * Use this to compare the priority of two different TIDs.
68 */
69static u8 tos_to_tid_inv[] = {
70 0x02, /* from tos_to_tid[2] = 0 */
71 0x00, /* from tos_to_tid[0] = 1 */
72 0x01, /* from tos_to_tid[1] = 2 */
73 0x03,
74 0x04,
75 0x05,
76 0x06,
77 0x07};
78
79static u8 ac_to_tid[4][2] = { {1, 2}, {0, 3}, {4, 5}, {6, 7} };
80
81/*
82 * This function debug prints the priority parameters for a WMM AC.
83 */
84static void
85mwifiex_wmm_ac_debug_print(const struct ieee_types_wmm_ac_parameters *ac_param)
86{
87 const char *ac_str[] = { "BK", "BE", "VI", "VO" };
88
89 pr_debug("info: WMM AC_%s: ACI=%d, ACM=%d, Aifsn=%d, "
90 "EcwMin=%d, EcwMax=%d, TxopLimit=%d\n",
91 ac_str[wmm_aci_to_qidx_map[(ac_param->aci_aifsn_bitmap
92 & MWIFIEX_ACI) >> 5]],
93 (ac_param->aci_aifsn_bitmap & MWIFIEX_ACI) >> 5,
94 (ac_param->aci_aifsn_bitmap & MWIFIEX_ACM) >> 4,
95 ac_param->aci_aifsn_bitmap & MWIFIEX_AIFSN,
96 ac_param->ecw_bitmap & MWIFIEX_ECW_MIN,
97 (ac_param->ecw_bitmap & MWIFIEX_ECW_MAX) >> 4,
98 le16_to_cpu(ac_param->tx_op_limit));
99}
100
101/*
102 * This function allocates a route address list.
103 *
104 * The function also initializes the list with the provided RA.
105 */
106static struct mwifiex_ra_list_tbl *
107mwifiex_wmm_allocate_ralist_node(struct mwifiex_adapter *adapter, u8 *ra)
108{
109 struct mwifiex_ra_list_tbl *ra_list;
110
111 ra_list = kzalloc(sizeof(struct mwifiex_ra_list_tbl), GFP_ATOMIC);
112
113 if (!ra_list) {
114 dev_err(adapter->dev, "%s: failed to alloc ra_list\n",
115 __func__);
116 return NULL;
117 }
118 INIT_LIST_HEAD(&ra_list->list);
119 skb_queue_head_init(&ra_list->skb_head);
120
121 memcpy(ra_list->ra, ra, ETH_ALEN);
122
123 ra_list->total_pkts_size = 0;
124
125 dev_dbg(adapter->dev, "info: allocated ra_list %p\n", ra_list);
126
127 return ra_list;
128}
129
130/*
131 * This function allocates and adds a RA list for all TIDs
132 * with the given RA.
133 */
134void
135mwifiex_ralist_add(struct mwifiex_private *priv, u8 *ra)
136{
137 int i;
138 struct mwifiex_ra_list_tbl *ra_list;
139 struct mwifiex_adapter *adapter = priv->adapter;
140
141 for (i = 0; i < MAX_NUM_TID; ++i) {
142 ra_list = mwifiex_wmm_allocate_ralist_node(adapter, ra);
143 dev_dbg(adapter->dev, "info: created ra_list %p\n", ra_list);
144
145 if (!ra_list)
146 break;
147
148 if (!mwifiex_queuing_ra_based(priv))
149 ra_list->is_11n_enabled = IS_11N_ENABLED(priv);
150 else
151 ra_list->is_11n_enabled = false;
152
153 dev_dbg(adapter->dev, "data: ralist %p: is_11n_enabled=%d\n",
154 ra_list, ra_list->is_11n_enabled);
155
156 list_add_tail(&ra_list->list,
157 &priv->wmm.tid_tbl_ptr[i].ra_list);
158
159 if (!priv->wmm.tid_tbl_ptr[i].ra_list_curr)
160 priv->wmm.tid_tbl_ptr[i].ra_list_curr = ra_list;
161 }
162}
163
164/*
165 * This function sets the WMM queue priorities to their default values.
166 */
167static void mwifiex_wmm_default_queue_priorities(struct mwifiex_private *priv)
168{
169 /* Default queue priorities: VO->VI->BE->BK */
170 priv->wmm.queue_priority[0] = WMM_AC_VO;
171 priv->wmm.queue_priority[1] = WMM_AC_VI;
172 priv->wmm.queue_priority[2] = WMM_AC_BE;
173 priv->wmm.queue_priority[3] = WMM_AC_BK;
174}
175
176/*
177 * This function map ACs to TIDs.
178 */
179static void
49729ff6 180mwifiex_wmm_queue_priorities_tid(struct mwifiex_wmm_desc *wmm)
5e6e3a92 181{
49729ff6 182 u8 *queue_priority = wmm->queue_priority;
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183 int i;
184
185 for (i = 0; i < 4; ++i) {
186 tos_to_tid[7 - (i * 2)] = ac_to_tid[queue_priority[i]][1];
187 tos_to_tid[6 - (i * 2)] = ac_to_tid[queue_priority[i]][0];
188 }
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189
190 for (i = 0; i < MAX_NUM_TID; ++i)
191 tos_to_tid_inv[tos_to_tid[i]] = (u8)i;
192
193 atomic_set(&wmm->highest_queued_prio, HIGH_PRIO_TID);
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194}
195
196/*
197 * This function initializes WMM priority queues.
198 */
199void
200mwifiex_wmm_setup_queue_priorities(struct mwifiex_private *priv,
201 struct ieee_types_wmm_parameter *wmm_ie)
202{
203 u16 cw_min, avg_back_off, tmp[4];
204 u32 i, j, num_ac;
205 u8 ac_idx;
206
207 if (!wmm_ie || !priv->wmm_enabled) {
208 /* WMM is not enabled, just set the defaults and return */
209 mwifiex_wmm_default_queue_priorities(priv);
210 return;
211 }
212
213 dev_dbg(priv->adapter->dev, "info: WMM Parameter IE: version=%d, "
214 "qos_info Parameter Set Count=%d, Reserved=%#x\n",
215 wmm_ie->vend_hdr.version, wmm_ie->qos_info_bitmap &
216 IEEE80211_WMM_IE_AP_QOSINFO_PARAM_SET_CNT_MASK,
217 wmm_ie->reserved);
218
219 for (num_ac = 0; num_ac < ARRAY_SIZE(wmm_ie->ac_params); num_ac++) {
220 cw_min = (1 << (wmm_ie->ac_params[num_ac].ecw_bitmap &
221 MWIFIEX_ECW_MIN)) - 1;
222 avg_back_off = (cw_min >> 1) +
223 (wmm_ie->ac_params[num_ac].aci_aifsn_bitmap &
224 MWIFIEX_AIFSN);
225
226 ac_idx = wmm_aci_to_qidx_map[(wmm_ie->ac_params[num_ac].
227 aci_aifsn_bitmap &
228 MWIFIEX_ACI) >> 5];
229 priv->wmm.queue_priority[ac_idx] = ac_idx;
230 tmp[ac_idx] = avg_back_off;
231
232 dev_dbg(priv->adapter->dev, "info: WMM: CWmax=%d CWmin=%d Avg Back-off=%d\n",
233 (1 << ((wmm_ie->ac_params[num_ac].ecw_bitmap &
234 MWIFIEX_ECW_MAX) >> 4)) - 1,
235 cw_min, avg_back_off);
236 mwifiex_wmm_ac_debug_print(&wmm_ie->ac_params[num_ac]);
237 }
238
239 /* Bubble sort */
240 for (i = 0; i < num_ac; i++) {
241 for (j = 1; j < num_ac - i; j++) {
242 if (tmp[j - 1] > tmp[j]) {
243 swap(tmp[j - 1], tmp[j]);
244 swap(priv->wmm.queue_priority[j - 1],
245 priv->wmm.queue_priority[j]);
246 } else if (tmp[j - 1] == tmp[j]) {
247 if (priv->wmm.queue_priority[j - 1]
248 < priv->wmm.queue_priority[j])
249 swap(priv->wmm.queue_priority[j - 1],
250 priv->wmm.queue_priority[j]);
251 }
252 }
253 }
254
49729ff6 255 mwifiex_wmm_queue_priorities_tid(&priv->wmm);
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256}
257
258/*
259 * This function evaluates whether or not an AC is to be downgraded.
260 *
261 * In case the AC is not enabled, the highest AC is returned that is
262 * enabled and does not require admission control.
263 */
264static enum mwifiex_wmm_ac_e
265mwifiex_wmm_eval_downgrade_ac(struct mwifiex_private *priv,
266 enum mwifiex_wmm_ac_e eval_ac)
267{
268 int down_ac;
269 enum mwifiex_wmm_ac_e ret_ac;
270 struct mwifiex_wmm_ac_status *ac_status;
271
272 ac_status = &priv->wmm.ac_status[eval_ac];
273
274 if (!ac_status->disabled)
275 /* Okay to use this AC, its enabled */
276 return eval_ac;
277
278 /* Setup a default return value of the lowest priority */
279 ret_ac = WMM_AC_BK;
280
281 /*
282 * Find the highest AC that is enabled and does not require
283 * admission control. The spec disallows downgrading to an AC,
284 * which is enabled due to a completed admission control.
285 * Unadmitted traffic is not to be sent on an AC with admitted
286 * traffic.
287 */
288 for (down_ac = WMM_AC_BK; down_ac < eval_ac; down_ac++) {
289 ac_status = &priv->wmm.ac_status[down_ac];
290
291 if (!ac_status->disabled && !ac_status->flow_required)
292 /* AC is enabled and does not require admission
293 control */
294 ret_ac = (enum mwifiex_wmm_ac_e) down_ac;
295 }
296
297 return ret_ac;
298}
299
300/*
301 * This function downgrades WMM priority queue.
302 */
303void
304mwifiex_wmm_setup_ac_downgrade(struct mwifiex_private *priv)
305{
306 int ac_val;
307
308 dev_dbg(priv->adapter->dev, "info: WMM: AC Priorities:"
309 "BK(0), BE(1), VI(2), VO(3)\n");
310
311 if (!priv->wmm_enabled) {
312 /* WMM is not enabled, default priorities */
313 for (ac_val = WMM_AC_BK; ac_val <= WMM_AC_VO; ac_val++)
314 priv->wmm.ac_down_graded_vals[ac_val] =
315 (enum mwifiex_wmm_ac_e) ac_val;
316 } else {
317 for (ac_val = WMM_AC_BK; ac_val <= WMM_AC_VO; ac_val++) {
318 priv->wmm.ac_down_graded_vals[ac_val]
319 = mwifiex_wmm_eval_downgrade_ac(priv,
320 (enum mwifiex_wmm_ac_e) ac_val);
321 dev_dbg(priv->adapter->dev, "info: WMM: AC PRIO %d maps to %d\n",
322 ac_val, priv->wmm.ac_down_graded_vals[ac_val]);
323 }
324 }
325}
326
327/*
328 * This function converts the IP TOS field to an WMM AC
329 * Queue assignment.
330 */
331static enum mwifiex_wmm_ac_e
332mwifiex_wmm_convert_tos_to_ac(struct mwifiex_adapter *adapter, u32 tos)
333{
334 /* Map of TOS UP values to WMM AC */
335 const enum mwifiex_wmm_ac_e tos_to_ac[] = { WMM_AC_BE,
336 WMM_AC_BK,
337 WMM_AC_BK,
338 WMM_AC_BE,
339 WMM_AC_VI,
340 WMM_AC_VI,
341 WMM_AC_VO,
342 WMM_AC_VO
343 };
344
345 if (tos >= ARRAY_SIZE(tos_to_ac))
346 return WMM_AC_BE;
347
348 return tos_to_ac[tos];
349}
350
351/*
352 * This function evaluates a given TID and downgrades it to a lower
353 * TID if the WMM Parameter IE received from the AP indicates that the
354 * AP is disabled (due to call admission control (ACM bit). Mapping
355 * of TID to AC is taken care of internally.
356 */
357static u8
358mwifiex_wmm_downgrade_tid(struct mwifiex_private *priv, u32 tid)
359{
360 enum mwifiex_wmm_ac_e ac, ac_down;
361 u8 new_tid;
362
363 ac = mwifiex_wmm_convert_tos_to_ac(priv->adapter, tid);
364 ac_down = priv->wmm.ac_down_graded_vals[ac];
365
366 /* Send the index to tid array, picking from the array will be
367 * taken care by dequeuing function
368 */
369 new_tid = ac_to_tid[ac_down][tid % 2];
370
371 return new_tid;
372}
373
374/*
375 * This function initializes the WMM state information and the
376 * WMM data path queues.
377 */
378void
379mwifiex_wmm_init(struct mwifiex_adapter *adapter)
380{
381 int i, j;
382 struct mwifiex_private *priv;
383
384 for (j = 0; j < adapter->priv_num; ++j) {
385 priv = adapter->priv[j];
386 if (!priv)
387 continue;
388
389 for (i = 0; i < MAX_NUM_TID; ++i) {
390 priv->aggr_prio_tbl[i].amsdu = tos_to_tid_inv[i];
391 priv->aggr_prio_tbl[i].ampdu_ap = tos_to_tid_inv[i];
392 priv->aggr_prio_tbl[i].ampdu_user = tos_to_tid_inv[i];
393 priv->wmm.tid_tbl_ptr[i].ra_list_curr = NULL;
394 }
395
396 priv->aggr_prio_tbl[6].amsdu
397 = priv->aggr_prio_tbl[6].ampdu_ap
398 = priv->aggr_prio_tbl[6].ampdu_user
399 = BA_STREAM_NOT_ALLOWED;
400
401 priv->aggr_prio_tbl[7].amsdu = priv->aggr_prio_tbl[7].ampdu_ap
402 = priv->aggr_prio_tbl[7].ampdu_user
403 = BA_STREAM_NOT_ALLOWED;
404
405 priv->add_ba_param.timeout = MWIFIEX_DEFAULT_BLOCK_ACK_TIMEOUT;
406 priv->add_ba_param.tx_win_size = MWIFIEX_AMPDU_DEF_TXWINSIZE;
407 priv->add_ba_param.rx_win_size = MWIFIEX_AMPDU_DEF_RXWINSIZE;
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408
409 atomic_set(&priv->wmm.tx_pkts_queued, 0);
49729ff6 410 atomic_set(&priv->wmm.highest_queued_prio, HIGH_PRIO_TID);
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411 }
412}
413
414/*
415 * This function checks if WMM Tx queue is empty.
416 */
417int
418mwifiex_wmm_lists_empty(struct mwifiex_adapter *adapter)
419{
f699254c 420 int i;
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421 struct mwifiex_private *priv;
422
f699254c
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423 for (i = 0; i < adapter->priv_num; ++i) {
424 priv = adapter->priv[i];
425 if (priv && atomic_read(&priv->wmm.tx_pkts_queued))
426 return false;
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427 }
428
429 return true;
430}
431
432/*
433 * This function deletes all packets in an RA list node.
434 *
435 * The packet sent completion callback handler are called with
436 * status failure, after they are dequeued to ensure proper
437 * cleanup. The RA list node itself is freed at the end.
438 */
439static void
440mwifiex_wmm_del_pkts_in_ralist_node(struct mwifiex_private *priv,
441 struct mwifiex_ra_list_tbl *ra_list)
442{
443 struct mwifiex_adapter *adapter = priv->adapter;
444 struct sk_buff *skb, *tmp;
445
446 skb_queue_walk_safe(&ra_list->skb_head, skb, tmp)
447 mwifiex_write_data_complete(adapter, skb, -1);
448}
449
450/*
451 * This function deletes all packets in an RA list.
452 *
453 * Each nodes in the RA list are freed individually first, and then
454 * the RA list itself is freed.
455 */
456static void
457mwifiex_wmm_del_pkts_in_ralist(struct mwifiex_private *priv,
458 struct list_head *ra_list_head)
459{
460 struct mwifiex_ra_list_tbl *ra_list;
461
462 list_for_each_entry(ra_list, ra_list_head, list)
463 mwifiex_wmm_del_pkts_in_ralist_node(priv, ra_list);
464}
465
466/*
467 * This function deletes all packets in all RA lists.
468 */
469static void mwifiex_wmm_cleanup_queues(struct mwifiex_private *priv)
470{
471 int i;
472
473 for (i = 0; i < MAX_NUM_TID; i++)
474 mwifiex_wmm_del_pkts_in_ralist(priv, &priv->wmm.tid_tbl_ptr[i].
475 ra_list);
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476
477 atomic_set(&priv->wmm.tx_pkts_queued, 0);
49729ff6 478 atomic_set(&priv->wmm.highest_queued_prio, HIGH_PRIO_TID);
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479}
480
481/*
482 * This function deletes all route addresses from all RA lists.
483 */
484static void mwifiex_wmm_delete_all_ralist(struct mwifiex_private *priv)
485{
486 struct mwifiex_ra_list_tbl *ra_list, *tmp_node;
487 int i;
488
489 for (i = 0; i < MAX_NUM_TID; ++i) {
490 dev_dbg(priv->adapter->dev,
491 "info: ra_list: freeing buf for tid %d\n", i);
492 list_for_each_entry_safe(ra_list, tmp_node,
493 &priv->wmm.tid_tbl_ptr[i].ra_list, list) {
494 list_del(&ra_list->list);
495 kfree(ra_list);
496 }
497
498 INIT_LIST_HEAD(&priv->wmm.tid_tbl_ptr[i].ra_list);
499
500 priv->wmm.tid_tbl_ptr[i].ra_list_curr = NULL;
501 }
502}
503
504/*
505 * This function cleans up the Tx and Rx queues.
506 *
507 * Cleanup includes -
508 * - All packets in RA lists
509 * - All entries in Rx reorder table
510 * - All entries in Tx BA stream table
511 * - MPA buffer (if required)
512 * - All RA lists
513 */
514void
515mwifiex_clean_txrx(struct mwifiex_private *priv)
516{
517 unsigned long flags;
518
519 mwifiex_11n_cleanup_reorder_tbl(priv);
520 spin_lock_irqsave(&priv->wmm.ra_list_spinlock, flags);
521
522 mwifiex_wmm_cleanup_queues(priv);
523 mwifiex_11n_delete_all_tx_ba_stream_tbl(priv);
524
525 if (priv->adapter->if_ops.cleanup_mpa_buf)
526 priv->adapter->if_ops.cleanup_mpa_buf(priv->adapter);
527
528 mwifiex_wmm_delete_all_ralist(priv);
529 memcpy(tos_to_tid, ac_to_tid, sizeof(tos_to_tid));
530
531 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock, flags);
532}
533
534/*
535 * This function retrieves a particular RA list node, matching with the
536 * given TID and RA address.
537 */
538static struct mwifiex_ra_list_tbl *
539mwifiex_wmm_get_ralist_node(struct mwifiex_private *priv, u8 tid,
540 u8 *ra_addr)
541{
542 struct mwifiex_ra_list_tbl *ra_list;
543
544 list_for_each_entry(ra_list, &priv->wmm.tid_tbl_ptr[tid].ra_list,
545 list) {
546 if (!memcmp(ra_list->ra, ra_addr, ETH_ALEN))
547 return ra_list;
548 }
549
550 return NULL;
551}
552
553/*
554 * This function retrieves an RA list node for a given TID and
555 * RA address pair.
556 *
557 * If no such node is found, a new node is added first and then
558 * retrieved.
559 */
560static struct mwifiex_ra_list_tbl *
561mwifiex_wmm_get_queue_raptr(struct mwifiex_private *priv, u8 tid, u8 *ra_addr)
562{
563 struct mwifiex_ra_list_tbl *ra_list;
564
565 ra_list = mwifiex_wmm_get_ralist_node(priv, tid, ra_addr);
566 if (ra_list)
567 return ra_list;
568 mwifiex_ralist_add(priv, ra_addr);
569
570 return mwifiex_wmm_get_ralist_node(priv, tid, ra_addr);
571}
572
573/*
574 * This function checks if a particular RA list node exists in a given TID
575 * table index.
576 */
577int
578mwifiex_is_ralist_valid(struct mwifiex_private *priv,
579 struct mwifiex_ra_list_tbl *ra_list, int ptr_index)
580{
581 struct mwifiex_ra_list_tbl *rlist;
582
583 list_for_each_entry(rlist, &priv->wmm.tid_tbl_ptr[ptr_index].ra_list,
584 list) {
585 if (rlist == ra_list)
586 return true;
587 }
588
589 return false;
590}
591
592/*
593 * This function adds a packet to WMM queue.
594 *
595 * In disconnected state the packet is immediately dropped and the
596 * packet send completion callback is called with status failure.
597 *
598 * Otherwise, the correct RA list node is located and the packet
599 * is queued at the list tail.
600 */
601void
602mwifiex_wmm_add_buf_txqueue(struct mwifiex_adapter *adapter,
603 struct sk_buff *skb)
604{
605 struct mwifiex_txinfo *tx_info = MWIFIEX_SKB_TXCB(skb);
9da9a3b2
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606 struct mwifiex_private *priv = mwifiex_get_priv_by_id(adapter,
607 tx_info->bss_num, tx_info->bss_type);
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608 u32 tid;
609 struct mwifiex_ra_list_tbl *ra_list;
610 u8 ra[ETH_ALEN], tid_down;
611 unsigned long flags;
612
613 if (!priv->media_connected) {
614 dev_dbg(adapter->dev, "data: drop packet in disconnect\n");
615 mwifiex_write_data_complete(adapter, skb, -1);
616 return;
617 }
618
619 tid = skb->priority;
620
621 spin_lock_irqsave(&priv->wmm.ra_list_spinlock, flags);
622
623 tid_down = mwifiex_wmm_downgrade_tid(priv, tid);
624
625 /* In case of infra as we have already created the list during
626 association we just don't have to call get_queue_raptr, we will
627 have only 1 raptr for a tid in case of infra */
628 if (!mwifiex_queuing_ra_based(priv)) {
629 if (!list_empty(&priv->wmm.tid_tbl_ptr[tid_down].ra_list))
630 ra_list = list_first_entry(
631 &priv->wmm.tid_tbl_ptr[tid_down].ra_list,
632 struct mwifiex_ra_list_tbl, list);
633 else
634 ra_list = NULL;
635 } else {
636 memcpy(ra, skb->data, ETH_ALEN);
4e3c4420
AK
637 if (ra[0] & 0x01)
638 memset(ra, 0xff, ETH_ALEN);
5e6e3a92
BZ
639 ra_list = mwifiex_wmm_get_queue_raptr(priv, tid_down, ra);
640 }
641
642 if (!ra_list) {
643 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock, flags);
644 mwifiex_write_data_complete(adapter, skb, -1);
645 return;
646 }
647
648 skb_queue_tail(&ra_list->skb_head, skb);
649
650 ra_list->total_pkts_size += skb->len;
651
f699254c
MY
652 atomic_inc(&priv->wmm.tx_pkts_queued);
653
49729ff6
MY
654 if (atomic_read(&priv->wmm.highest_queued_prio) <
655 tos_to_tid_inv[tid_down])
656 atomic_set(&priv->wmm.highest_queued_prio,
657 tos_to_tid_inv[tid_down]);
658
5e6e3a92
BZ
659 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock, flags);
660}
661
662/*
663 * This function processes the get WMM status command response from firmware.
664 *
665 * The response may contain multiple TLVs -
666 * - AC Queue status TLVs
667 * - Current WMM Parameter IE TLV
668 * - Admission Control action frame TLVs
669 *
670 * This function parses the TLVs and then calls further specific functions
671 * to process any changes in the queue prioritize or state.
672 */
673int mwifiex_ret_wmm_get_status(struct mwifiex_private *priv,
674 const struct host_cmd_ds_command *resp)
675{
676 u8 *curr = (u8 *) &resp->params.get_wmm_status;
677 uint16_t resp_len = le16_to_cpu(resp->size), tlv_len;
678 int valid = true;
679
680 struct mwifiex_ie_types_data *tlv_hdr;
681 struct mwifiex_ie_types_wmm_queue_status *tlv_wmm_qstatus;
682 struct ieee_types_wmm_parameter *wmm_param_ie = NULL;
683 struct mwifiex_wmm_ac_status *ac_status;
684
685 dev_dbg(priv->adapter->dev, "info: WMM: WMM_GET_STATUS cmdresp received: %d\n",
686 resp_len);
687
688 while ((resp_len >= sizeof(tlv_hdr->header)) && valid) {
689 tlv_hdr = (struct mwifiex_ie_types_data *) curr;
690 tlv_len = le16_to_cpu(tlv_hdr->header.len);
691
692 switch (le16_to_cpu(tlv_hdr->header.type)) {
693 case TLV_TYPE_WMMQSTATUS:
694 tlv_wmm_qstatus =
695 (struct mwifiex_ie_types_wmm_queue_status *)
696 tlv_hdr;
697 dev_dbg(priv->adapter->dev,
698 "info: CMD_RESP: WMM_GET_STATUS:"
699 " QSTATUS TLV: %d, %d, %d\n",
700 tlv_wmm_qstatus->queue_index,
701 tlv_wmm_qstatus->flow_required,
702 tlv_wmm_qstatus->disabled);
703
704 ac_status = &priv->wmm.ac_status[tlv_wmm_qstatus->
705 queue_index];
706 ac_status->disabled = tlv_wmm_qstatus->disabled;
707 ac_status->flow_required =
708 tlv_wmm_qstatus->flow_required;
709 ac_status->flow_created = tlv_wmm_qstatus->flow_created;
710 break;
711
712 case WLAN_EID_VENDOR_SPECIFIC:
713 /*
714 * Point the regular IEEE IE 2 bytes into the Marvell IE
715 * and setup the IEEE IE type and length byte fields
716 */
717
718 wmm_param_ie =
719 (struct ieee_types_wmm_parameter *) (curr +
720 2);
721 wmm_param_ie->vend_hdr.len = (u8) tlv_len;
722 wmm_param_ie->vend_hdr.element_id =
723 WLAN_EID_VENDOR_SPECIFIC;
724
725 dev_dbg(priv->adapter->dev,
726 "info: CMD_RESP: WMM_GET_STATUS:"
727 " WMM Parameter Set Count: %d\n",
728 wmm_param_ie->qos_info_bitmap &
729 IEEE80211_WMM_IE_AP_QOSINFO_PARAM_SET_CNT_MASK);
730
731 memcpy((u8 *) &priv->curr_bss_params.bss_descriptor.
732 wmm_ie, wmm_param_ie,
733 wmm_param_ie->vend_hdr.len + 2);
734
735 break;
736
737 default:
738 valid = false;
739 break;
740 }
741
742 curr += (tlv_len + sizeof(tlv_hdr->header));
743 resp_len -= (tlv_len + sizeof(tlv_hdr->header));
744 }
745
746 mwifiex_wmm_setup_queue_priorities(priv, wmm_param_ie);
747 mwifiex_wmm_setup_ac_downgrade(priv);
748
749 return 0;
750}
751
752/*
753 * Callback handler from the command module to allow insertion of a WMM TLV.
754 *
755 * If the BSS we are associating to supports WMM, this function adds the
756 * required WMM Information IE to the association request command buffer in
757 * the form of a Marvell extended IEEE IE.
758 */
759u32
760mwifiex_wmm_process_association_req(struct mwifiex_private *priv,
761 u8 **assoc_buf,
762 struct ieee_types_wmm_parameter *wmm_ie,
763 struct ieee80211_ht_cap *ht_cap)
764{
765 struct mwifiex_ie_types_wmm_param_set *wmm_tlv;
766 u32 ret_len = 0;
767
768 /* Null checks */
769 if (!assoc_buf)
770 return 0;
771 if (!(*assoc_buf))
772 return 0;
773
774 if (!wmm_ie)
775 return 0;
776
777 dev_dbg(priv->adapter->dev, "info: WMM: process assoc req:"
778 "bss->wmmIe=0x%x\n",
779 wmm_ie->vend_hdr.element_id);
780
781 if ((priv->wmm_required
782 || (ht_cap && (priv->adapter->config_bands & BAND_GN
783 || priv->adapter->config_bands & BAND_AN))
784 )
785 && wmm_ie->vend_hdr.element_id == WLAN_EID_VENDOR_SPECIFIC) {
786 wmm_tlv = (struct mwifiex_ie_types_wmm_param_set *) *assoc_buf;
787 wmm_tlv->header.type = cpu_to_le16((u16) wmm_info_ie[0]);
788 wmm_tlv->header.len = cpu_to_le16((u16) wmm_info_ie[1]);
789 memcpy(wmm_tlv->wmm_ie, &wmm_info_ie[2],
790 le16_to_cpu(wmm_tlv->header.len));
791 if (wmm_ie->qos_info_bitmap & IEEE80211_WMM_IE_AP_QOSINFO_UAPSD)
792 memcpy((u8 *) (wmm_tlv->wmm_ie
793 + le16_to_cpu(wmm_tlv->header.len)
794 - sizeof(priv->wmm_qosinfo)),
795 &priv->wmm_qosinfo,
796 sizeof(priv->wmm_qosinfo));
797
798 ret_len = sizeof(wmm_tlv->header)
799 + le16_to_cpu(wmm_tlv->header.len);
800
801 *assoc_buf += ret_len;
802 }
803
804 return ret_len;
805}
806
807/*
808 * This function computes the time delay in the driver queues for a
809 * given packet.
810 *
811 * When the packet is received at the OS/Driver interface, the current
812 * time is set in the packet structure. The difference between the present
813 * time and that received time is computed in this function and limited
814 * based on pre-compiled limits in the driver.
815 */
816u8
817mwifiex_wmm_compute_drv_pkt_delay(struct mwifiex_private *priv,
818 const struct sk_buff *skb)
819{
270e58e8 820 u8 ret_val;
5e6e3a92
BZ
821 struct timeval out_tstamp, in_tstamp;
822 u32 queue_delay;
823
824 do_gettimeofday(&out_tstamp);
825 in_tstamp = ktime_to_timeval(skb->tstamp);
826
827 queue_delay = (out_tstamp.tv_sec - in_tstamp.tv_sec) * 1000;
828 queue_delay += (out_tstamp.tv_usec - in_tstamp.tv_usec) / 1000;
829
830 /*
831 * Queue delay is passed as a uint8 in units of 2ms (ms shifted
832 * by 1). Min value (other than 0) is therefore 2ms, max is 510ms.
833 *
834 * Pass max value if queue_delay is beyond the uint8 range
835 */
836 ret_val = (u8) (min(queue_delay, priv->wmm.drv_pkt_delay_max) >> 1);
837
838 dev_dbg(priv->adapter->dev, "data: WMM: Pkt Delay: %d ms,"
839 " %d ms sent to FW\n", queue_delay, ret_val);
840
841 return ret_val;
842}
843
844/*
845 * This function retrieves the highest priority RA list table pointer.
846 */
847static struct mwifiex_ra_list_tbl *
848mwifiex_wmm_get_highest_priolist_ptr(struct mwifiex_adapter *adapter,
849 struct mwifiex_private **priv, int *tid)
850{
851 struct mwifiex_private *priv_tmp;
852 struct mwifiex_ra_list_tbl *ptr, *head;
853 struct mwifiex_bss_prio_node *bssprio_node, *bssprio_head;
854 struct mwifiex_tid_tbl *tid_ptr;
855 int is_list_empty;
856 unsigned long flags;
857 int i, j;
858
859 for (j = adapter->priv_num - 1; j >= 0; --j) {
860 spin_lock_irqsave(&adapter->bss_prio_tbl[j].bss_prio_lock,
861 flags);
862 is_list_empty = list_empty(&adapter->bss_prio_tbl[j]
863 .bss_prio_head);
864 spin_unlock_irqrestore(&adapter->bss_prio_tbl[j].bss_prio_lock,
865 flags);
866 if (is_list_empty)
867 continue;
868
869 if (adapter->bss_prio_tbl[j].bss_prio_cur ==
870 (struct mwifiex_bss_prio_node *)
871 &adapter->bss_prio_tbl[j].bss_prio_head) {
872 bssprio_node =
873 list_first_entry(&adapter->bss_prio_tbl[j]
874 .bss_prio_head,
875 struct mwifiex_bss_prio_node,
876 list);
877 bssprio_head = bssprio_node;
878 } else {
879 bssprio_node = adapter->bss_prio_tbl[j].bss_prio_cur;
880 bssprio_head = bssprio_node;
881 }
882
883 do {
49729ff6
MY
884 atomic_t *hqp;
885 spinlock_t *lock;
886
5e6e3a92 887 priv_tmp = bssprio_node->priv;
49729ff6
MY
888 hqp = &priv_tmp->wmm.highest_queued_prio;
889 lock = &priv_tmp->wmm.ra_list_spinlock;
5e6e3a92 890
49729ff6 891 for (i = atomic_read(hqp); i >= LOW_PRIO_TID; --i) {
5e6e3a92
BZ
892
893 tid_ptr = &(priv_tmp)->wmm.
894 tid_tbl_ptr[tos_to_tid[i]];
895
896 spin_lock_irqsave(&tid_ptr->tid_tbl_lock,
897 flags);
898 is_list_empty =
899 list_empty(&adapter->bss_prio_tbl[j]
900 .bss_prio_head);
901 spin_unlock_irqrestore(&tid_ptr->tid_tbl_lock,
902 flags);
903 if (is_list_empty)
904 continue;
905
906 /*
907 * Always choose the next ra we transmitted
908 * last time, this way we pick the ra's in
909 * round robin fashion.
910 */
911 ptr = list_first_entry(
912 &tid_ptr->ra_list_curr->list,
913 struct mwifiex_ra_list_tbl,
914 list);
915
916 head = ptr;
917 if (ptr == (struct mwifiex_ra_list_tbl *)
918 &tid_ptr->ra_list) {
919 /* Get next ra */
920 ptr = list_first_entry(&ptr->list,
921 struct mwifiex_ra_list_tbl, list);
922 head = ptr;
923 }
924
925 do {
926 is_list_empty =
927 skb_queue_empty(&ptr->skb_head);
928 if (!is_list_empty) {
49729ff6
MY
929 spin_lock_irqsave(lock, flags);
930 if (atomic_read(hqp) > i)
931 atomic_set(hqp, i);
932 spin_unlock_irqrestore(lock,
933 flags);
5e6e3a92
BZ
934 *priv = priv_tmp;
935 *tid = tos_to_tid[i];
936 return ptr;
937 }
938 /* Get next ra */
939 ptr = list_first_entry(&ptr->list,
940 struct mwifiex_ra_list_tbl,
941 list);
942 if (ptr ==
943 (struct mwifiex_ra_list_tbl *)
944 &tid_ptr->ra_list)
945 ptr = list_first_entry(
946 &ptr->list,
947 struct mwifiex_ra_list_tbl,
948 list);
949 } while (ptr != head);
950 }
951
17e8cec8
MY
952 /* No packet at any TID for this priv. Mark as such
953 * to skip checking TIDs for this priv (until pkt is
954 * added).
955 */
956 atomic_set(hqp, NO_PKT_PRIO_TID);
957
5e6e3a92
BZ
958 /* Get next bss priority node */
959 bssprio_node = list_first_entry(&bssprio_node->list,
960 struct mwifiex_bss_prio_node,
961 list);
962
963 if (bssprio_node ==
964 (struct mwifiex_bss_prio_node *)
965 &adapter->bss_prio_tbl[j].bss_prio_head)
966 /* Get next bss priority node */
967 bssprio_node = list_first_entry(
968 &bssprio_node->list,
969 struct mwifiex_bss_prio_node,
970 list);
971 } while (bssprio_node != bssprio_head);
972 }
973 return NULL;
974}
975
d85c5fe4
AK
976/*
977 * This function checks if 11n aggregation is possible.
978 */
979static int
980mwifiex_is_11n_aggragation_possible(struct mwifiex_private *priv,
981 struct mwifiex_ra_list_tbl *ptr,
982 int max_buf_size)
983{
984 int count = 0, total_size = 0;
985 struct sk_buff *skb, *tmp;
986
987 skb_queue_walk_safe(&ptr->skb_head, skb, tmp) {
988 total_size += skb->len;
989 if (total_size >= max_buf_size)
990 break;
991 if (++count >= MIN_NUM_AMSDU)
992 return true;
993 }
994
995 return false;
996}
997
5e6e3a92
BZ
998/*
999 * This function sends a single packet to firmware for transmission.
1000 */
1001static void
1002mwifiex_send_single_packet(struct mwifiex_private *priv,
1003 struct mwifiex_ra_list_tbl *ptr, int ptr_index,
1004 unsigned long ra_list_flags)
1005 __releases(&priv->wmm.ra_list_spinlock)
1006{
1007 struct sk_buff *skb, *skb_next;
1008 struct mwifiex_tx_param tx_param;
1009 struct mwifiex_adapter *adapter = priv->adapter;
5e6e3a92
BZ
1010 struct mwifiex_txinfo *tx_info;
1011
1012 if (skb_queue_empty(&ptr->skb_head)) {
1013 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock,
1014 ra_list_flags);
1015 dev_dbg(adapter->dev, "data: nothing to send\n");
1016 return;
1017 }
1018
1019 skb = skb_dequeue(&ptr->skb_head);
1020
1021 tx_info = MWIFIEX_SKB_TXCB(skb);
1022 dev_dbg(adapter->dev, "data: dequeuing the packet %p %p\n", ptr, skb);
1023
1024 ptr->total_pkts_size -= skb->len;
1025
1026 if (!skb_queue_empty(&ptr->skb_head))
1027 skb_next = skb_peek(&ptr->skb_head);
1028 else
1029 skb_next = NULL;
1030
1031 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock, ra_list_flags);
1032
1033 tx_param.next_pkt_len = ((skb_next) ? skb_next->len +
1034 sizeof(struct txpd) : 0);
1035
636c4598 1036 if (mwifiex_process_tx(priv, skb, &tx_param) == -EBUSY) {
5e6e3a92
BZ
1037 /* Queue the packet back at the head */
1038 spin_lock_irqsave(&priv->wmm.ra_list_spinlock, ra_list_flags);
1039
1040 if (!mwifiex_is_ralist_valid(priv, ptr, ptr_index)) {
1041 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock,
1042 ra_list_flags);
1043 mwifiex_write_data_complete(adapter, skb, -1);
1044 return;
1045 }
1046
1047 skb_queue_tail(&ptr->skb_head, skb);
1048
1049 ptr->total_pkts_size += skb->len;
1050 tx_info->flags |= MWIFIEX_BUF_FLAG_REQUEUED_PKT;
1051 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock,
1052 ra_list_flags);
1053 } else {
1054 spin_lock_irqsave(&priv->wmm.ra_list_spinlock, ra_list_flags);
1055 if (mwifiex_is_ralist_valid(priv, ptr, ptr_index)) {
1056 priv->wmm.packets_out[ptr_index]++;
1057 priv->wmm.tid_tbl_ptr[ptr_index].ra_list_curr = ptr;
1058 }
1059 adapter->bss_prio_tbl[priv->bss_priority].bss_prio_cur =
1060 list_first_entry(
1061 &adapter->bss_prio_tbl[priv->bss_priority]
1062 .bss_prio_cur->list,
1063 struct mwifiex_bss_prio_node,
1064 list);
f699254c 1065 atomic_dec(&priv->wmm.tx_pkts_queued);
5e6e3a92
BZ
1066 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock,
1067 ra_list_flags);
1068 }
1069}
1070
1071/*
1072 * This function checks if the first packet in the given RA list
1073 * is already processed or not.
1074 */
1075static int
1076mwifiex_is_ptr_processed(struct mwifiex_private *priv,
1077 struct mwifiex_ra_list_tbl *ptr)
1078{
1079 struct sk_buff *skb;
1080 struct mwifiex_txinfo *tx_info;
1081
1082 if (skb_queue_empty(&ptr->skb_head))
1083 return false;
1084
1085 skb = skb_peek(&ptr->skb_head);
1086
1087 tx_info = MWIFIEX_SKB_TXCB(skb);
1088 if (tx_info->flags & MWIFIEX_BUF_FLAG_REQUEUED_PKT)
1089 return true;
1090
1091 return false;
1092}
1093
1094/*
1095 * This function sends a single processed packet to firmware for
1096 * transmission.
1097 */
1098static void
1099mwifiex_send_processed_packet(struct mwifiex_private *priv,
1100 struct mwifiex_ra_list_tbl *ptr, int ptr_index,
1101 unsigned long ra_list_flags)
1102 __releases(&priv->wmm.ra_list_spinlock)
1103{
1104 struct mwifiex_tx_param tx_param;
1105 struct mwifiex_adapter *adapter = priv->adapter;
1106 int ret = -1;
1107 struct sk_buff *skb, *skb_next;
1108 struct mwifiex_txinfo *tx_info;
1109
1110 if (skb_queue_empty(&ptr->skb_head)) {
1111 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock,
1112 ra_list_flags);
1113 return;
1114 }
1115
1116 skb = skb_dequeue(&ptr->skb_head);
1117
1118 if (!skb_queue_empty(&ptr->skb_head))
1119 skb_next = skb_peek(&ptr->skb_head);
1120 else
1121 skb_next = NULL;
1122
1123 tx_info = MWIFIEX_SKB_TXCB(skb);
1124
1125 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock, ra_list_flags);
1126 tx_param.next_pkt_len =
1127 ((skb_next) ? skb_next->len +
1128 sizeof(struct txpd) : 0);
d930faee
AK
1129 ret = adapter->if_ops.host_to_card(adapter, MWIFIEX_TYPE_DATA, skb,
1130 &tx_param);
5e6e3a92
BZ
1131 switch (ret) {
1132 case -EBUSY:
1133 dev_dbg(adapter->dev, "data: -EBUSY is returned\n");
1134 spin_lock_irqsave(&priv->wmm.ra_list_spinlock, ra_list_flags);
1135
1136 if (!mwifiex_is_ralist_valid(priv, ptr, ptr_index)) {
1137 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock,
1138 ra_list_flags);
1139 mwifiex_write_data_complete(adapter, skb, -1);
1140 return;
1141 }
1142
1143 skb_queue_tail(&ptr->skb_head, skb);
1144
1145 tx_info->flags |= MWIFIEX_BUF_FLAG_REQUEUED_PKT;
1146 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock,
1147 ra_list_flags);
1148 break;
1149 case -1:
1150 adapter->data_sent = false;
1151 dev_err(adapter->dev, "host_to_card failed: %#x\n", ret);
1152 adapter->dbg.num_tx_host_to_card_failure++;
1153 mwifiex_write_data_complete(adapter, skb, ret);
1154 break;
1155 case -EINPROGRESS:
1156 adapter->data_sent = false;
1157 default:
1158 break;
1159 }
1160 if (ret != -EBUSY) {
1161 spin_lock_irqsave(&priv->wmm.ra_list_spinlock, ra_list_flags);
1162 if (mwifiex_is_ralist_valid(priv, ptr, ptr_index)) {
1163 priv->wmm.packets_out[ptr_index]++;
1164 priv->wmm.tid_tbl_ptr[ptr_index].ra_list_curr = ptr;
1165 }
1166 adapter->bss_prio_tbl[priv->bss_priority].bss_prio_cur =
1167 list_first_entry(
1168 &adapter->bss_prio_tbl[priv->bss_priority]
1169 .bss_prio_cur->list,
1170 struct mwifiex_bss_prio_node,
1171 list);
f699254c 1172 atomic_dec(&priv->wmm.tx_pkts_queued);
5e6e3a92
BZ
1173 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock,
1174 ra_list_flags);
1175 }
1176}
1177
1178/*
1179 * This function dequeues a packet from the highest priority list
1180 * and transmits it.
1181 */
1182static int
1183mwifiex_dequeue_tx_packet(struct mwifiex_adapter *adapter)
1184{
1185 struct mwifiex_ra_list_tbl *ptr;
1186 struct mwifiex_private *priv = NULL;
1187 int ptr_index = 0;
1188 u8 ra[ETH_ALEN];
1189 int tid_del = 0, tid = 0;
1190 unsigned long flags;
1191
1192 ptr = mwifiex_wmm_get_highest_priolist_ptr(adapter, &priv, &ptr_index);
1193 if (!ptr)
1194 return -1;
1195
572e8f3e 1196 tid = mwifiex_get_tid(ptr);
5e6e3a92
BZ
1197
1198 dev_dbg(adapter->dev, "data: tid=%d\n", tid);
1199
1200 spin_lock_irqsave(&priv->wmm.ra_list_spinlock, flags);
1201 if (!mwifiex_is_ralist_valid(priv, ptr, ptr_index)) {
1202 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock, flags);
1203 return -1;
1204 }
1205
1206 if (mwifiex_is_ptr_processed(priv, ptr)) {
1207 mwifiex_send_processed_packet(priv, ptr, ptr_index, flags);
1208 /* ra_list_spinlock has been freed in
1209 mwifiex_send_processed_packet() */
1210 return 0;
1211 }
1212
1213 if (!ptr->is_11n_enabled || mwifiex_is_ba_stream_setup(priv, ptr, tid)
1214 || ((priv->sec_info.wpa_enabled
1215 || priv->sec_info.wpa2_enabled) && !priv->wpa_is_gtk_set)
1216 ) {
1217 mwifiex_send_single_packet(priv, ptr, ptr_index, flags);
1218 /* ra_list_spinlock has been freed in
1219 mwifiex_send_single_packet() */
1220 } else {
572e8f3e 1221 if (mwifiex_is_ampdu_allowed(priv, tid)) {
53d7938e 1222 if (mwifiex_space_avail_for_new_ba_stream(adapter)) {
5e6e3a92
BZ
1223 mwifiex_11n_create_tx_ba_stream_tbl(priv,
1224 ptr->ra, tid,
1225 BA_STREAM_SETUP_INPROGRESS);
1226 mwifiex_send_addba(priv, tid, ptr->ra);
1227 } else if (mwifiex_find_stream_to_delete
572e8f3e 1228 (priv, tid, &tid_del, ra)) {
5e6e3a92
BZ
1229 mwifiex_11n_create_tx_ba_stream_tbl(priv,
1230 ptr->ra, tid,
1231 BA_STREAM_SETUP_INPROGRESS);
1232 mwifiex_send_delba(priv, tid_del, ra, 1);
1233 }
1234 }
572e8f3e 1235 if (mwifiex_is_amsdu_allowed(priv, tid) &&
d85c5fe4
AK
1236 mwifiex_is_11n_aggragation_possible(priv, ptr,
1237 adapter->tx_buf_size))
5e6e3a92
BZ
1238 mwifiex_11n_aggregate_pkt(priv, ptr, INTF_HEADER_LEN,
1239 ptr_index, flags);
1240 /* ra_list_spinlock has been freed in
1241 mwifiex_11n_aggregate_pkt() */
1242 else
1243 mwifiex_send_single_packet(priv, ptr, ptr_index, flags);
1244 /* ra_list_spinlock has been freed in
1245 mwifiex_send_single_packet() */
1246 }
1247 return 0;
1248}
1249
1250/*
1251 * This function transmits the highest priority packet awaiting in the
1252 * WMM Queues.
1253 */
1254void
1255mwifiex_wmm_process_tx(struct mwifiex_adapter *adapter)
1256{
1257 do {
1258 /* Check if busy */
1259 if (adapter->data_sent || adapter->tx_lock_flag)
1260 break;
1261
1262 if (mwifiex_dequeue_tx_packet(adapter))
1263 break;
93968147 1264 } while (!mwifiex_wmm_lists_empty(adapter));
5e6e3a92 1265}
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