Merge tag 'dm-4.4-changes' of git://git.kernel.org/pub/scm/linux/kernel/git/device...
[deliverable/linux.git] / drivers / net / wireless / mwifiex / wmm.c
1 /*
2 * Marvell Wireless LAN device driver: WMM
3 *
4 * Copyright (C) 2011-2014, 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 static bool disable_tx_amsdu;
41 module_param(disable_tx_amsdu, bool, 0644);
42
43 /* WMM information IE */
44 static const u8 wmm_info_ie[] = { WLAN_EID_VENDOR_SPECIFIC, 0x07,
45 0x00, 0x50, 0xf2, 0x02,
46 0x00, 0x01, 0x00
47 };
48
49 static const u8 wmm_aci_to_qidx_map[] = { WMM_AC_BE,
50 WMM_AC_BK,
51 WMM_AC_VI,
52 WMM_AC_VO
53 };
54
55 static u8 tos_to_tid[] = {
56 /* TID DSCP_P2 DSCP_P1 DSCP_P0 WMM_AC */
57 0x01, /* 0 1 0 AC_BK */
58 0x02, /* 0 0 0 AC_BK */
59 0x00, /* 0 0 1 AC_BE */
60 0x03, /* 0 1 1 AC_BE */
61 0x04, /* 1 0 0 AC_VI */
62 0x05, /* 1 0 1 AC_VI */
63 0x06, /* 1 1 0 AC_VO */
64 0x07 /* 1 1 1 AC_VO */
65 };
66
67 static u8 ac_to_tid[4][2] = { {1, 2}, {0, 3}, {4, 5}, {6, 7} };
68
69 /*
70 * This function debug prints the priority parameters for a WMM AC.
71 */
72 static void
73 mwifiex_wmm_ac_debug_print(const struct ieee_types_wmm_ac_parameters *ac_param)
74 {
75 const char *ac_str[] = { "BK", "BE", "VI", "VO" };
76
77 pr_debug("info: WMM AC_%s: ACI=%d, ACM=%d, Aifsn=%d, "
78 "EcwMin=%d, EcwMax=%d, TxopLimit=%d\n",
79 ac_str[wmm_aci_to_qidx_map[(ac_param->aci_aifsn_bitmap
80 & MWIFIEX_ACI) >> 5]],
81 (ac_param->aci_aifsn_bitmap & MWIFIEX_ACI) >> 5,
82 (ac_param->aci_aifsn_bitmap & MWIFIEX_ACM) >> 4,
83 ac_param->aci_aifsn_bitmap & MWIFIEX_AIFSN,
84 ac_param->ecw_bitmap & MWIFIEX_ECW_MIN,
85 (ac_param->ecw_bitmap & MWIFIEX_ECW_MAX) >> 4,
86 le16_to_cpu(ac_param->tx_op_limit));
87 }
88
89 /*
90 * This function allocates a route address list.
91 *
92 * The function also initializes the list with the provided RA.
93 */
94 static struct mwifiex_ra_list_tbl *
95 mwifiex_wmm_allocate_ralist_node(struct mwifiex_adapter *adapter, const u8 *ra)
96 {
97 struct mwifiex_ra_list_tbl *ra_list;
98
99 ra_list = kzalloc(sizeof(struct mwifiex_ra_list_tbl), GFP_ATOMIC);
100 if (!ra_list)
101 return NULL;
102
103 INIT_LIST_HEAD(&ra_list->list);
104 skb_queue_head_init(&ra_list->skb_head);
105
106 memcpy(ra_list->ra, ra, ETH_ALEN);
107
108 ra_list->total_pkt_count = 0;
109
110 mwifiex_dbg(adapter, INFO, "info: allocated ra_list %p\n", ra_list);
111
112 return ra_list;
113 }
114
115 /* This function returns random no between 16 and 32 to be used as threshold
116 * for no of packets after which BA setup is initiated.
117 */
118 static u8 mwifiex_get_random_ba_threshold(void)
119 {
120 u64 ns;
121 /* setup ba_packet_threshold here random number between
122 * [BA_SETUP_PACKET_OFFSET,
123 * BA_SETUP_PACKET_OFFSET+BA_SETUP_MAX_PACKET_THRESHOLD-1]
124 */
125 ns = ktime_get_ns();
126 ns += (ns >> 32) + (ns >> 16);
127
128 return ((u8)ns % BA_SETUP_MAX_PACKET_THRESHOLD) + BA_SETUP_PACKET_OFFSET;
129 }
130
131 /*
132 * This function allocates and adds a RA list for all TIDs
133 * with the given RA.
134 */
135 void mwifiex_ralist_add(struct mwifiex_private *priv, const u8 *ra)
136 {
137 int i;
138 struct mwifiex_ra_list_tbl *ra_list;
139 struct mwifiex_adapter *adapter = priv->adapter;
140 struct mwifiex_sta_node *node;
141 unsigned long flags;
142
143
144 for (i = 0; i < MAX_NUM_TID; ++i) {
145 ra_list = mwifiex_wmm_allocate_ralist_node(adapter, ra);
146 mwifiex_dbg(adapter, INFO,
147 "info: created ra_list %p\n", ra_list);
148
149 if (!ra_list)
150 break;
151
152 ra_list->is_11n_enabled = 0;
153 ra_list->tdls_link = false;
154 ra_list->ba_status = BA_SETUP_NONE;
155 ra_list->amsdu_in_ampdu = false;
156 if (!mwifiex_queuing_ra_based(priv)) {
157 if (mwifiex_is_tdls_link_setup
158 (mwifiex_get_tdls_link_status(priv, ra))) {
159 ra_list->tdls_link = true;
160 ra_list->is_11n_enabled =
161 mwifiex_tdls_peer_11n_enabled(priv, ra);
162 } else {
163 ra_list->is_11n_enabled = IS_11N_ENABLED(priv);
164 }
165 } else {
166 spin_lock_irqsave(&priv->sta_list_spinlock, flags);
167 node = mwifiex_get_sta_entry(priv, ra);
168 if (node)
169 ra_list->tx_paused = node->tx_pause;
170 ra_list->is_11n_enabled =
171 mwifiex_is_sta_11n_enabled(priv, node);
172 if (ra_list->is_11n_enabled)
173 ra_list->max_amsdu = node->max_amsdu;
174 spin_unlock_irqrestore(&priv->sta_list_spinlock, flags);
175 }
176
177 mwifiex_dbg(adapter, DATA, "data: ralist %p: is_11n_enabled=%d\n",
178 ra_list, ra_list->is_11n_enabled);
179
180 if (ra_list->is_11n_enabled) {
181 ra_list->ba_pkt_count = 0;
182 ra_list->ba_packet_thr =
183 mwifiex_get_random_ba_threshold();
184 }
185 list_add_tail(&ra_list->list,
186 &priv->wmm.tid_tbl_ptr[i].ra_list);
187 }
188 }
189
190 /*
191 * This function sets the WMM queue priorities to their default values.
192 */
193 static void mwifiex_wmm_default_queue_priorities(struct mwifiex_private *priv)
194 {
195 /* Default queue priorities: VO->VI->BE->BK */
196 priv->wmm.queue_priority[0] = WMM_AC_VO;
197 priv->wmm.queue_priority[1] = WMM_AC_VI;
198 priv->wmm.queue_priority[2] = WMM_AC_BE;
199 priv->wmm.queue_priority[3] = WMM_AC_BK;
200 }
201
202 /*
203 * This function map ACs to TIDs.
204 */
205 static void
206 mwifiex_wmm_queue_priorities_tid(struct mwifiex_private *priv)
207 {
208 struct mwifiex_wmm_desc *wmm = &priv->wmm;
209 u8 *queue_priority = wmm->queue_priority;
210 int i;
211
212 for (i = 0; i < 4; ++i) {
213 tos_to_tid[7 - (i * 2)] = ac_to_tid[queue_priority[i]][1];
214 tos_to_tid[6 - (i * 2)] = ac_to_tid[queue_priority[i]][0];
215 }
216
217 for (i = 0; i < MAX_NUM_TID; ++i)
218 priv->tos_to_tid_inv[tos_to_tid[i]] = (u8)i;
219
220 atomic_set(&wmm->highest_queued_prio, HIGH_PRIO_TID);
221 }
222
223 /*
224 * This function initializes WMM priority queues.
225 */
226 void
227 mwifiex_wmm_setup_queue_priorities(struct mwifiex_private *priv,
228 struct ieee_types_wmm_parameter *wmm_ie)
229 {
230 u16 cw_min, avg_back_off, tmp[4];
231 u32 i, j, num_ac;
232 u8 ac_idx;
233
234 if (!wmm_ie || !priv->wmm_enabled) {
235 /* WMM is not enabled, just set the defaults and return */
236 mwifiex_wmm_default_queue_priorities(priv);
237 return;
238 }
239
240 mwifiex_dbg(priv->adapter, INFO,
241 "info: WMM Parameter IE: version=%d,\t"
242 "qos_info Parameter Set Count=%d, Reserved=%#x\n",
243 wmm_ie->vend_hdr.version, wmm_ie->qos_info_bitmap &
244 IEEE80211_WMM_IE_AP_QOSINFO_PARAM_SET_CNT_MASK,
245 wmm_ie->reserved);
246
247 for (num_ac = 0; num_ac < ARRAY_SIZE(wmm_ie->ac_params); num_ac++) {
248 u8 ecw = wmm_ie->ac_params[num_ac].ecw_bitmap;
249 u8 aci_aifsn = wmm_ie->ac_params[num_ac].aci_aifsn_bitmap;
250 cw_min = (1 << (ecw & MWIFIEX_ECW_MIN)) - 1;
251 avg_back_off = (cw_min >> 1) + (aci_aifsn & MWIFIEX_AIFSN);
252
253 ac_idx = wmm_aci_to_qidx_map[(aci_aifsn & MWIFIEX_ACI) >> 5];
254 priv->wmm.queue_priority[ac_idx] = ac_idx;
255 tmp[ac_idx] = avg_back_off;
256
257 mwifiex_dbg(priv->adapter, INFO,
258 "info: WMM: CWmax=%d CWmin=%d Avg Back-off=%d\n",
259 (1 << ((ecw & MWIFIEX_ECW_MAX) >> 4)) - 1,
260 cw_min, avg_back_off);
261 mwifiex_wmm_ac_debug_print(&wmm_ie->ac_params[num_ac]);
262 }
263
264 /* Bubble sort */
265 for (i = 0; i < num_ac; i++) {
266 for (j = 1; j < num_ac - i; j++) {
267 if (tmp[j - 1] > tmp[j]) {
268 swap(tmp[j - 1], tmp[j]);
269 swap(priv->wmm.queue_priority[j - 1],
270 priv->wmm.queue_priority[j]);
271 } else if (tmp[j - 1] == tmp[j]) {
272 if (priv->wmm.queue_priority[j - 1]
273 < priv->wmm.queue_priority[j])
274 swap(priv->wmm.queue_priority[j - 1],
275 priv->wmm.queue_priority[j]);
276 }
277 }
278 }
279
280 mwifiex_wmm_queue_priorities_tid(priv);
281 }
282
283 /*
284 * This function evaluates whether or not an AC is to be downgraded.
285 *
286 * In case the AC is not enabled, the highest AC is returned that is
287 * enabled and does not require admission control.
288 */
289 static enum mwifiex_wmm_ac_e
290 mwifiex_wmm_eval_downgrade_ac(struct mwifiex_private *priv,
291 enum mwifiex_wmm_ac_e eval_ac)
292 {
293 int down_ac;
294 enum mwifiex_wmm_ac_e ret_ac;
295 struct mwifiex_wmm_ac_status *ac_status;
296
297 ac_status = &priv->wmm.ac_status[eval_ac];
298
299 if (!ac_status->disabled)
300 /* Okay to use this AC, its enabled */
301 return eval_ac;
302
303 /* Setup a default return value of the lowest priority */
304 ret_ac = WMM_AC_BK;
305
306 /*
307 * Find the highest AC that is enabled and does not require
308 * admission control. The spec disallows downgrading to an AC,
309 * which is enabled due to a completed admission control.
310 * Unadmitted traffic is not to be sent on an AC with admitted
311 * traffic.
312 */
313 for (down_ac = WMM_AC_BK; down_ac < eval_ac; down_ac++) {
314 ac_status = &priv->wmm.ac_status[down_ac];
315
316 if (!ac_status->disabled && !ac_status->flow_required)
317 /* AC is enabled and does not require admission
318 control */
319 ret_ac = (enum mwifiex_wmm_ac_e) down_ac;
320 }
321
322 return ret_ac;
323 }
324
325 /*
326 * This function downgrades WMM priority queue.
327 */
328 void
329 mwifiex_wmm_setup_ac_downgrade(struct mwifiex_private *priv)
330 {
331 int ac_val;
332
333 mwifiex_dbg(priv->adapter, INFO, "info: WMM: AC Priorities:\t"
334 "BK(0), BE(1), VI(2), VO(3)\n");
335
336 if (!priv->wmm_enabled) {
337 /* WMM is not enabled, default priorities */
338 for (ac_val = WMM_AC_BK; ac_val <= WMM_AC_VO; ac_val++)
339 priv->wmm.ac_down_graded_vals[ac_val] =
340 (enum mwifiex_wmm_ac_e) ac_val;
341 } else {
342 for (ac_val = WMM_AC_BK; ac_val <= WMM_AC_VO; ac_val++) {
343 priv->wmm.ac_down_graded_vals[ac_val]
344 = mwifiex_wmm_eval_downgrade_ac(priv,
345 (enum mwifiex_wmm_ac_e) ac_val);
346 mwifiex_dbg(priv->adapter, INFO,
347 "info: WMM: AC PRIO %d maps to %d\n",
348 ac_val,
349 priv->wmm.ac_down_graded_vals[ac_val]);
350 }
351 }
352 }
353
354 /*
355 * This function converts the IP TOS field to an WMM AC
356 * Queue assignment.
357 */
358 static enum mwifiex_wmm_ac_e
359 mwifiex_wmm_convert_tos_to_ac(struct mwifiex_adapter *adapter, u32 tos)
360 {
361 /* Map of TOS UP values to WMM AC */
362 const enum mwifiex_wmm_ac_e tos_to_ac[] = { WMM_AC_BE,
363 WMM_AC_BK,
364 WMM_AC_BK,
365 WMM_AC_BE,
366 WMM_AC_VI,
367 WMM_AC_VI,
368 WMM_AC_VO,
369 WMM_AC_VO
370 };
371
372 if (tos >= ARRAY_SIZE(tos_to_ac))
373 return WMM_AC_BE;
374
375 return tos_to_ac[tos];
376 }
377
378 /*
379 * This function evaluates a given TID and downgrades it to a lower
380 * TID if the WMM Parameter IE received from the AP indicates that the
381 * AP is disabled (due to call admission control (ACM bit). Mapping
382 * of TID to AC is taken care of internally.
383 */
384 u8 mwifiex_wmm_downgrade_tid(struct mwifiex_private *priv, u32 tid)
385 {
386 enum mwifiex_wmm_ac_e ac, ac_down;
387 u8 new_tid;
388
389 ac = mwifiex_wmm_convert_tos_to_ac(priv->adapter, tid);
390 ac_down = priv->wmm.ac_down_graded_vals[ac];
391
392 /* Send the index to tid array, picking from the array will be
393 * taken care by dequeuing function
394 */
395 new_tid = ac_to_tid[ac_down][tid % 2];
396
397 return new_tid;
398 }
399
400 /*
401 * This function initializes the WMM state information and the
402 * WMM data path queues.
403 */
404 void
405 mwifiex_wmm_init(struct mwifiex_adapter *adapter)
406 {
407 int i, j;
408 struct mwifiex_private *priv;
409
410 for (j = 0; j < adapter->priv_num; ++j) {
411 priv = adapter->priv[j];
412 if (!priv)
413 continue;
414
415 for (i = 0; i < MAX_NUM_TID; ++i) {
416 if (!disable_tx_amsdu &&
417 adapter->tx_buf_size > MWIFIEX_TX_DATA_BUF_SIZE_2K)
418 priv->aggr_prio_tbl[i].amsdu =
419 priv->tos_to_tid_inv[i];
420 else
421 priv->aggr_prio_tbl[i].amsdu =
422 BA_STREAM_NOT_ALLOWED;
423 priv->aggr_prio_tbl[i].ampdu_ap =
424 priv->tos_to_tid_inv[i];
425 priv->aggr_prio_tbl[i].ampdu_user =
426 priv->tos_to_tid_inv[i];
427 }
428
429 priv->aggr_prio_tbl[6].amsdu
430 = priv->aggr_prio_tbl[6].ampdu_ap
431 = priv->aggr_prio_tbl[6].ampdu_user
432 = BA_STREAM_NOT_ALLOWED;
433
434 priv->aggr_prio_tbl[7].amsdu = priv->aggr_prio_tbl[7].ampdu_ap
435 = priv->aggr_prio_tbl[7].ampdu_user
436 = BA_STREAM_NOT_ALLOWED;
437
438 mwifiex_set_ba_params(priv);
439 mwifiex_reset_11n_rx_seq_num(priv);
440
441 atomic_set(&priv->wmm.tx_pkts_queued, 0);
442 atomic_set(&priv->wmm.highest_queued_prio, HIGH_PRIO_TID);
443 }
444 }
445
446 int mwifiex_bypass_txlist_empty(struct mwifiex_adapter *adapter)
447 {
448 struct mwifiex_private *priv;
449 int i;
450
451 for (i = 0; i < adapter->priv_num; i++) {
452 priv = adapter->priv[i];
453 if (!priv)
454 continue;
455 if (adapter->if_ops.is_port_ready &&
456 !adapter->if_ops.is_port_ready(priv))
457 continue;
458 if (!skb_queue_empty(&priv->bypass_txq))
459 return false;
460 }
461
462 return true;
463 }
464
465 /*
466 * This function checks if WMM Tx queue is empty.
467 */
468 int
469 mwifiex_wmm_lists_empty(struct mwifiex_adapter *adapter)
470 {
471 int i;
472 struct mwifiex_private *priv;
473
474 for (i = 0; i < adapter->priv_num; ++i) {
475 priv = adapter->priv[i];
476 if (!priv)
477 continue;
478 if (!priv->port_open)
479 continue;
480 if (adapter->if_ops.is_port_ready &&
481 !adapter->if_ops.is_port_ready(priv))
482 continue;
483 if (atomic_read(&priv->wmm.tx_pkts_queued))
484 return false;
485 }
486
487 return true;
488 }
489
490 /*
491 * This function deletes all packets in an RA list node.
492 *
493 * The packet sent completion callback handler are called with
494 * status failure, after they are dequeued to ensure proper
495 * cleanup. The RA list node itself is freed at the end.
496 */
497 static void
498 mwifiex_wmm_del_pkts_in_ralist_node(struct mwifiex_private *priv,
499 struct mwifiex_ra_list_tbl *ra_list)
500 {
501 struct mwifiex_adapter *adapter = priv->adapter;
502 struct sk_buff *skb, *tmp;
503
504 skb_queue_walk_safe(&ra_list->skb_head, skb, tmp)
505 mwifiex_write_data_complete(adapter, skb, 0, -1);
506 }
507
508 /*
509 * This function deletes all packets in an RA list.
510 *
511 * Each nodes in the RA list are freed individually first, and then
512 * the RA list itself is freed.
513 */
514 static void
515 mwifiex_wmm_del_pkts_in_ralist(struct mwifiex_private *priv,
516 struct list_head *ra_list_head)
517 {
518 struct mwifiex_ra_list_tbl *ra_list;
519
520 list_for_each_entry(ra_list, ra_list_head, list)
521 mwifiex_wmm_del_pkts_in_ralist_node(priv, ra_list);
522 }
523
524 /*
525 * This function deletes all packets in all RA lists.
526 */
527 static void mwifiex_wmm_cleanup_queues(struct mwifiex_private *priv)
528 {
529 int i;
530
531 for (i = 0; i < MAX_NUM_TID; i++)
532 mwifiex_wmm_del_pkts_in_ralist(priv, &priv->wmm.tid_tbl_ptr[i].
533 ra_list);
534
535 atomic_set(&priv->wmm.tx_pkts_queued, 0);
536 atomic_set(&priv->wmm.highest_queued_prio, HIGH_PRIO_TID);
537 }
538
539 /*
540 * This function deletes all route addresses from all RA lists.
541 */
542 static void mwifiex_wmm_delete_all_ralist(struct mwifiex_private *priv)
543 {
544 struct mwifiex_ra_list_tbl *ra_list, *tmp_node;
545 int i;
546
547 for (i = 0; i < MAX_NUM_TID; ++i) {
548 mwifiex_dbg(priv->adapter, INFO,
549 "info: ra_list: freeing buf for tid %d\n", i);
550 list_for_each_entry_safe(ra_list, tmp_node,
551 &priv->wmm.tid_tbl_ptr[i].ra_list,
552 list) {
553 list_del(&ra_list->list);
554 kfree(ra_list);
555 }
556
557 INIT_LIST_HEAD(&priv->wmm.tid_tbl_ptr[i].ra_list);
558 }
559 }
560
561 static int mwifiex_free_ack_frame(int id, void *p, void *data)
562 {
563 pr_warn("Have pending ack frames!\n");
564 kfree_skb(p);
565 return 0;
566 }
567
568 /*
569 * This function cleans up the Tx and Rx queues.
570 *
571 * Cleanup includes -
572 * - All packets in RA lists
573 * - All entries in Rx reorder table
574 * - All entries in Tx BA stream table
575 * - MPA buffer (if required)
576 * - All RA lists
577 */
578 void
579 mwifiex_clean_txrx(struct mwifiex_private *priv)
580 {
581 unsigned long flags;
582 struct sk_buff *skb, *tmp;
583
584 mwifiex_11n_cleanup_reorder_tbl(priv);
585 spin_lock_irqsave(&priv->wmm.ra_list_spinlock, flags);
586
587 mwifiex_wmm_cleanup_queues(priv);
588 mwifiex_11n_delete_all_tx_ba_stream_tbl(priv);
589
590 if (priv->adapter->if_ops.cleanup_mpa_buf)
591 priv->adapter->if_ops.cleanup_mpa_buf(priv->adapter);
592
593 mwifiex_wmm_delete_all_ralist(priv);
594 memcpy(tos_to_tid, ac_to_tid, sizeof(tos_to_tid));
595
596 if (priv->adapter->if_ops.clean_pcie_ring &&
597 !priv->adapter->surprise_removed)
598 priv->adapter->if_ops.clean_pcie_ring(priv->adapter);
599 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock, flags);
600
601 skb_queue_walk_safe(&priv->tdls_txq, skb, tmp)
602 mwifiex_write_data_complete(priv->adapter, skb, 0, -1);
603
604 skb_queue_walk_safe(&priv->bypass_txq, skb, tmp)
605 mwifiex_write_data_complete(priv->adapter, skb, 0, -1);
606 atomic_set(&priv->adapter->bypass_tx_pending, 0);
607
608 idr_for_each(&priv->ack_status_frames, mwifiex_free_ack_frame, NULL);
609 idr_destroy(&priv->ack_status_frames);
610 }
611
612 /*
613 * This function retrieves a particular RA list node, matching with the
614 * given TID and RA address.
615 */
616 struct mwifiex_ra_list_tbl *
617 mwifiex_wmm_get_ralist_node(struct mwifiex_private *priv, u8 tid,
618 const u8 *ra_addr)
619 {
620 struct mwifiex_ra_list_tbl *ra_list;
621
622 list_for_each_entry(ra_list, &priv->wmm.tid_tbl_ptr[tid].ra_list,
623 list) {
624 if (!memcmp(ra_list->ra, ra_addr, ETH_ALEN))
625 return ra_list;
626 }
627
628 return NULL;
629 }
630
631 void mwifiex_update_ralist_tx_pause(struct mwifiex_private *priv, u8 *mac,
632 u8 tx_pause)
633 {
634 struct mwifiex_ra_list_tbl *ra_list;
635 u32 pkt_cnt = 0, tx_pkts_queued;
636 unsigned long flags;
637 int i;
638
639 spin_lock_irqsave(&priv->wmm.ra_list_spinlock, flags);
640
641 for (i = 0; i < MAX_NUM_TID; ++i) {
642 ra_list = mwifiex_wmm_get_ralist_node(priv, i, mac);
643 if (ra_list && ra_list->tx_paused != tx_pause) {
644 pkt_cnt += ra_list->total_pkt_count;
645 ra_list->tx_paused = tx_pause;
646 if (tx_pause)
647 priv->wmm.pkts_paused[i] +=
648 ra_list->total_pkt_count;
649 else
650 priv->wmm.pkts_paused[i] -=
651 ra_list->total_pkt_count;
652 }
653 }
654
655 if (pkt_cnt) {
656 tx_pkts_queued = atomic_read(&priv->wmm.tx_pkts_queued);
657 if (tx_pause)
658 tx_pkts_queued -= pkt_cnt;
659 else
660 tx_pkts_queued += pkt_cnt;
661
662 atomic_set(&priv->wmm.tx_pkts_queued, tx_pkts_queued);
663 atomic_set(&priv->wmm.highest_queued_prio, HIGH_PRIO_TID);
664 }
665 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock, flags);
666 }
667
668 /* This function update non-tdls peer ralist tx_pause while
669 * tdls channel swithing
670 */
671 void mwifiex_update_ralist_tx_pause_in_tdls_cs(struct mwifiex_private *priv,
672 u8 *mac, u8 tx_pause)
673 {
674 struct mwifiex_ra_list_tbl *ra_list;
675 u32 pkt_cnt = 0, tx_pkts_queued;
676 unsigned long flags;
677 int i;
678
679 spin_lock_irqsave(&priv->wmm.ra_list_spinlock, flags);
680
681 for (i = 0; i < MAX_NUM_TID; ++i) {
682 list_for_each_entry(ra_list, &priv->wmm.tid_tbl_ptr[i].ra_list,
683 list) {
684 if (!memcmp(ra_list->ra, mac, ETH_ALEN))
685 continue;
686
687 if (ra_list->tx_paused != tx_pause) {
688 pkt_cnt += ra_list->total_pkt_count;
689 ra_list->tx_paused = tx_pause;
690 if (tx_pause)
691 priv->wmm.pkts_paused[i] +=
692 ra_list->total_pkt_count;
693 else
694 priv->wmm.pkts_paused[i] -=
695 ra_list->total_pkt_count;
696 }
697 }
698 }
699
700 if (pkt_cnt) {
701 tx_pkts_queued = atomic_read(&priv->wmm.tx_pkts_queued);
702 if (tx_pause)
703 tx_pkts_queued -= pkt_cnt;
704 else
705 tx_pkts_queued += pkt_cnt;
706
707 atomic_set(&priv->wmm.tx_pkts_queued, tx_pkts_queued);
708 atomic_set(&priv->wmm.highest_queued_prio, HIGH_PRIO_TID);
709 }
710 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock, flags);
711 }
712
713 /*
714 * This function retrieves an RA list node for a given TID and
715 * RA address pair.
716 *
717 * If no such node is found, a new node is added first and then
718 * retrieved.
719 */
720 struct mwifiex_ra_list_tbl *
721 mwifiex_wmm_get_queue_raptr(struct mwifiex_private *priv, u8 tid,
722 const u8 *ra_addr)
723 {
724 struct mwifiex_ra_list_tbl *ra_list;
725
726 ra_list = mwifiex_wmm_get_ralist_node(priv, tid, ra_addr);
727 if (ra_list)
728 return ra_list;
729 mwifiex_ralist_add(priv, ra_addr);
730
731 return mwifiex_wmm_get_ralist_node(priv, tid, ra_addr);
732 }
733
734 /*
735 * This function deletes RA list nodes for given mac for all TIDs.
736 * Function also decrements TX pending count accordingly.
737 */
738 void
739 mwifiex_wmm_del_peer_ra_list(struct mwifiex_private *priv, const u8 *ra_addr)
740 {
741 struct mwifiex_ra_list_tbl *ra_list;
742 unsigned long flags;
743 int i;
744
745 spin_lock_irqsave(&priv->wmm.ra_list_spinlock, flags);
746
747 for (i = 0; i < MAX_NUM_TID; ++i) {
748 ra_list = mwifiex_wmm_get_ralist_node(priv, i, ra_addr);
749
750 if (!ra_list)
751 continue;
752 mwifiex_wmm_del_pkts_in_ralist_node(priv, ra_list);
753 if (ra_list->tx_paused)
754 priv->wmm.pkts_paused[i] -= ra_list->total_pkt_count;
755 else
756 atomic_sub(ra_list->total_pkt_count,
757 &priv->wmm.tx_pkts_queued);
758 list_del(&ra_list->list);
759 kfree(ra_list);
760 }
761 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock, flags);
762 }
763
764 /*
765 * This function checks if a particular RA list node exists in a given TID
766 * table index.
767 */
768 int
769 mwifiex_is_ralist_valid(struct mwifiex_private *priv,
770 struct mwifiex_ra_list_tbl *ra_list, int ptr_index)
771 {
772 struct mwifiex_ra_list_tbl *rlist;
773
774 list_for_each_entry(rlist, &priv->wmm.tid_tbl_ptr[ptr_index].ra_list,
775 list) {
776 if (rlist == ra_list)
777 return true;
778 }
779
780 return false;
781 }
782
783 /*
784 * This function adds a packet to bypass TX queue.
785 * This is special TX queue for packets which can be sent even when port_open
786 * is false.
787 */
788 void
789 mwifiex_wmm_add_buf_bypass_txqueue(struct mwifiex_private *priv,
790 struct sk_buff *skb)
791 {
792 skb_queue_tail(&priv->bypass_txq, skb);
793 }
794
795 /*
796 * This function adds a packet to WMM queue.
797 *
798 * In disconnected state the packet is immediately dropped and the
799 * packet send completion callback is called with status failure.
800 *
801 * Otherwise, the correct RA list node is located and the packet
802 * is queued at the list tail.
803 */
804 void
805 mwifiex_wmm_add_buf_txqueue(struct mwifiex_private *priv,
806 struct sk_buff *skb)
807 {
808 struct mwifiex_adapter *adapter = priv->adapter;
809 u32 tid;
810 struct mwifiex_ra_list_tbl *ra_list;
811 u8 ra[ETH_ALEN], tid_down;
812 unsigned long flags;
813 struct list_head list_head;
814 int tdls_status = TDLS_NOT_SETUP;
815 struct ethhdr *eth_hdr = (struct ethhdr *)skb->data;
816 struct mwifiex_txinfo *tx_info = MWIFIEX_SKB_TXCB(skb);
817
818 memcpy(ra, eth_hdr->h_dest, ETH_ALEN);
819
820 if (GET_BSS_ROLE(priv) == MWIFIEX_BSS_ROLE_STA &&
821 ISSUPP_TDLS_ENABLED(adapter->fw_cap_info)) {
822 if (ntohs(eth_hdr->h_proto) == ETH_P_TDLS)
823 mwifiex_dbg(adapter, DATA,
824 "TDLS setup packet for %pM.\t"
825 "Don't block\n", ra);
826 else if (memcmp(priv->cfg_bssid, ra, ETH_ALEN))
827 tdls_status = mwifiex_get_tdls_link_status(priv, ra);
828 }
829
830 if (!priv->media_connected && !mwifiex_is_skb_mgmt_frame(skb)) {
831 mwifiex_dbg(adapter, DATA, "data: drop packet in disconnect\n");
832 mwifiex_write_data_complete(adapter, skb, 0, -1);
833 return;
834 }
835
836 tid = skb->priority;
837
838 spin_lock_irqsave(&priv->wmm.ra_list_spinlock, flags);
839
840 tid_down = mwifiex_wmm_downgrade_tid(priv, tid);
841
842 /* In case of infra as we have already created the list during
843 association we just don't have to call get_queue_raptr, we will
844 have only 1 raptr for a tid in case of infra */
845 if (!mwifiex_queuing_ra_based(priv) &&
846 !mwifiex_is_skb_mgmt_frame(skb)) {
847 switch (tdls_status) {
848 case TDLS_SETUP_COMPLETE:
849 case TDLS_CHAN_SWITCHING:
850 case TDLS_IN_BASE_CHAN:
851 case TDLS_IN_OFF_CHAN:
852 ra_list = mwifiex_wmm_get_queue_raptr(priv, tid_down,
853 ra);
854 tx_info->flags |= MWIFIEX_BUF_FLAG_TDLS_PKT;
855 break;
856 case TDLS_SETUP_INPROGRESS:
857 skb_queue_tail(&priv->tdls_txq, skb);
858 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock,
859 flags);
860 return;
861 default:
862 list_head = priv->wmm.tid_tbl_ptr[tid_down].ra_list;
863 if (!list_empty(&list_head))
864 ra_list = list_first_entry(
865 &list_head, struct mwifiex_ra_list_tbl,
866 list);
867 else
868 ra_list = NULL;
869 break;
870 }
871 } else {
872 memcpy(ra, skb->data, ETH_ALEN);
873 if (ra[0] & 0x01 || mwifiex_is_skb_mgmt_frame(skb))
874 eth_broadcast_addr(ra);
875 ra_list = mwifiex_wmm_get_queue_raptr(priv, tid_down, ra);
876 }
877
878 if (!ra_list) {
879 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock, flags);
880 mwifiex_write_data_complete(adapter, skb, 0, -1);
881 return;
882 }
883
884 skb_queue_tail(&ra_list->skb_head, skb);
885
886 ra_list->ba_pkt_count++;
887 ra_list->total_pkt_count++;
888
889 if (atomic_read(&priv->wmm.highest_queued_prio) <
890 priv->tos_to_tid_inv[tid_down])
891 atomic_set(&priv->wmm.highest_queued_prio,
892 priv->tos_to_tid_inv[tid_down]);
893
894 if (ra_list->tx_paused)
895 priv->wmm.pkts_paused[tid_down]++;
896 else
897 atomic_inc(&priv->wmm.tx_pkts_queued);
898
899 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock, flags);
900 }
901
902 /*
903 * This function processes the get WMM status command response from firmware.
904 *
905 * The response may contain multiple TLVs -
906 * - AC Queue status TLVs
907 * - Current WMM Parameter IE TLV
908 * - Admission Control action frame TLVs
909 *
910 * This function parses the TLVs and then calls further specific functions
911 * to process any changes in the queue prioritize or state.
912 */
913 int mwifiex_ret_wmm_get_status(struct mwifiex_private *priv,
914 const struct host_cmd_ds_command *resp)
915 {
916 u8 *curr = (u8 *) &resp->params.get_wmm_status;
917 uint16_t resp_len = le16_to_cpu(resp->size), tlv_len;
918 int mask = IEEE80211_WMM_IE_AP_QOSINFO_PARAM_SET_CNT_MASK;
919 bool valid = true;
920
921 struct mwifiex_ie_types_data *tlv_hdr;
922 struct mwifiex_ie_types_wmm_queue_status *tlv_wmm_qstatus;
923 struct ieee_types_wmm_parameter *wmm_param_ie = NULL;
924 struct mwifiex_wmm_ac_status *ac_status;
925
926 mwifiex_dbg(priv->adapter, INFO,
927 "info: WMM: WMM_GET_STATUS cmdresp received: %d\n",
928 resp_len);
929
930 while ((resp_len >= sizeof(tlv_hdr->header)) && valid) {
931 tlv_hdr = (struct mwifiex_ie_types_data *) curr;
932 tlv_len = le16_to_cpu(tlv_hdr->header.len);
933
934 if (resp_len < tlv_len + sizeof(tlv_hdr->header))
935 break;
936
937 switch (le16_to_cpu(tlv_hdr->header.type)) {
938 case TLV_TYPE_WMMQSTATUS:
939 tlv_wmm_qstatus =
940 (struct mwifiex_ie_types_wmm_queue_status *)
941 tlv_hdr;
942 mwifiex_dbg(priv->adapter, CMD,
943 "info: CMD_RESP: WMM_GET_STATUS:\t"
944 "QSTATUS TLV: %d, %d, %d\n",
945 tlv_wmm_qstatus->queue_index,
946 tlv_wmm_qstatus->flow_required,
947 tlv_wmm_qstatus->disabled);
948
949 ac_status = &priv->wmm.ac_status[tlv_wmm_qstatus->
950 queue_index];
951 ac_status->disabled = tlv_wmm_qstatus->disabled;
952 ac_status->flow_required =
953 tlv_wmm_qstatus->flow_required;
954 ac_status->flow_created = tlv_wmm_qstatus->flow_created;
955 break;
956
957 case WLAN_EID_VENDOR_SPECIFIC:
958 /*
959 * Point the regular IEEE IE 2 bytes into the Marvell IE
960 * and setup the IEEE IE type and length byte fields
961 */
962
963 wmm_param_ie =
964 (struct ieee_types_wmm_parameter *) (curr +
965 2);
966 wmm_param_ie->vend_hdr.len = (u8) tlv_len;
967 wmm_param_ie->vend_hdr.element_id =
968 WLAN_EID_VENDOR_SPECIFIC;
969
970 mwifiex_dbg(priv->adapter, CMD,
971 "info: CMD_RESP: WMM_GET_STATUS:\t"
972 "WMM Parameter Set Count: %d\n",
973 wmm_param_ie->qos_info_bitmap & mask);
974
975 memcpy((u8 *) &priv->curr_bss_params.bss_descriptor.
976 wmm_ie, wmm_param_ie,
977 wmm_param_ie->vend_hdr.len + 2);
978
979 break;
980
981 default:
982 valid = false;
983 break;
984 }
985
986 curr += (tlv_len + sizeof(tlv_hdr->header));
987 resp_len -= (tlv_len + sizeof(tlv_hdr->header));
988 }
989
990 mwifiex_wmm_setup_queue_priorities(priv, wmm_param_ie);
991 mwifiex_wmm_setup_ac_downgrade(priv);
992
993 return 0;
994 }
995
996 /*
997 * Callback handler from the command module to allow insertion of a WMM TLV.
998 *
999 * If the BSS we are associating to supports WMM, this function adds the
1000 * required WMM Information IE to the association request command buffer in
1001 * the form of a Marvell extended IEEE IE.
1002 */
1003 u32
1004 mwifiex_wmm_process_association_req(struct mwifiex_private *priv,
1005 u8 **assoc_buf,
1006 struct ieee_types_wmm_parameter *wmm_ie,
1007 struct ieee80211_ht_cap *ht_cap)
1008 {
1009 struct mwifiex_ie_types_wmm_param_set *wmm_tlv;
1010 u32 ret_len = 0;
1011
1012 /* Null checks */
1013 if (!assoc_buf)
1014 return 0;
1015 if (!(*assoc_buf))
1016 return 0;
1017
1018 if (!wmm_ie)
1019 return 0;
1020
1021 mwifiex_dbg(priv->adapter, INFO,
1022 "info: WMM: process assoc req: bss->wmm_ie=%#x\n",
1023 wmm_ie->vend_hdr.element_id);
1024
1025 if ((priv->wmm_required ||
1026 (ht_cap && (priv->adapter->config_bands & BAND_GN ||
1027 priv->adapter->config_bands & BAND_AN))) &&
1028 wmm_ie->vend_hdr.element_id == WLAN_EID_VENDOR_SPECIFIC) {
1029 wmm_tlv = (struct mwifiex_ie_types_wmm_param_set *) *assoc_buf;
1030 wmm_tlv->header.type = cpu_to_le16((u16) wmm_info_ie[0]);
1031 wmm_tlv->header.len = cpu_to_le16((u16) wmm_info_ie[1]);
1032 memcpy(wmm_tlv->wmm_ie, &wmm_info_ie[2],
1033 le16_to_cpu(wmm_tlv->header.len));
1034 if (wmm_ie->qos_info_bitmap & IEEE80211_WMM_IE_AP_QOSINFO_UAPSD)
1035 memcpy((u8 *) (wmm_tlv->wmm_ie
1036 + le16_to_cpu(wmm_tlv->header.len)
1037 - sizeof(priv->wmm_qosinfo)),
1038 &priv->wmm_qosinfo, sizeof(priv->wmm_qosinfo));
1039
1040 ret_len = sizeof(wmm_tlv->header)
1041 + le16_to_cpu(wmm_tlv->header.len);
1042
1043 *assoc_buf += ret_len;
1044 }
1045
1046 return ret_len;
1047 }
1048
1049 /*
1050 * This function computes the time delay in the driver queues for a
1051 * given packet.
1052 *
1053 * When the packet is received at the OS/Driver interface, the current
1054 * time is set in the packet structure. The difference between the present
1055 * time and that received time is computed in this function and limited
1056 * based on pre-compiled limits in the driver.
1057 */
1058 u8
1059 mwifiex_wmm_compute_drv_pkt_delay(struct mwifiex_private *priv,
1060 const struct sk_buff *skb)
1061 {
1062 u32 queue_delay = ktime_to_ms(net_timedelta(skb->tstamp));
1063 u8 ret_val;
1064
1065 /*
1066 * Queue delay is passed as a uint8 in units of 2ms (ms shifted
1067 * by 1). Min value (other than 0) is therefore 2ms, max is 510ms.
1068 *
1069 * Pass max value if queue_delay is beyond the uint8 range
1070 */
1071 ret_val = (u8) (min(queue_delay, priv->wmm.drv_pkt_delay_max) >> 1);
1072
1073 mwifiex_dbg(priv->adapter, DATA, "data: WMM: Pkt Delay: %d ms,\t"
1074 "%d ms sent to FW\n", queue_delay, ret_val);
1075
1076 return ret_val;
1077 }
1078
1079 /*
1080 * This function retrieves the highest priority RA list table pointer.
1081 */
1082 static struct mwifiex_ra_list_tbl *
1083 mwifiex_wmm_get_highest_priolist_ptr(struct mwifiex_adapter *adapter,
1084 struct mwifiex_private **priv, int *tid)
1085 {
1086 struct mwifiex_private *priv_tmp;
1087 struct mwifiex_ra_list_tbl *ptr;
1088 struct mwifiex_tid_tbl *tid_ptr;
1089 atomic_t *hqp;
1090 unsigned long flags_ra;
1091 int i, j;
1092
1093 /* check the BSS with highest priority first */
1094 for (j = adapter->priv_num - 1; j >= 0; --j) {
1095 /* iterate over BSS with the equal priority */
1096 list_for_each_entry(adapter->bss_prio_tbl[j].bss_prio_cur,
1097 &adapter->bss_prio_tbl[j].bss_prio_head,
1098 list) {
1099
1100 priv_tmp = adapter->bss_prio_tbl[j].bss_prio_cur->priv;
1101
1102 if (!priv_tmp->port_open ||
1103 (atomic_read(&priv_tmp->wmm.tx_pkts_queued) == 0))
1104 continue;
1105
1106 if (adapter->if_ops.is_port_ready &&
1107 !adapter->if_ops.is_port_ready(priv_tmp))
1108 continue;
1109
1110 /* iterate over the WMM queues of the BSS */
1111 hqp = &priv_tmp->wmm.highest_queued_prio;
1112 for (i = atomic_read(hqp); i >= LOW_PRIO_TID; --i) {
1113
1114 spin_lock_irqsave(&priv_tmp->wmm.
1115 ra_list_spinlock, flags_ra);
1116
1117 tid_ptr = &(priv_tmp)->wmm.
1118 tid_tbl_ptr[tos_to_tid[i]];
1119
1120 /* iterate over receiver addresses */
1121 list_for_each_entry(ptr, &tid_ptr->ra_list,
1122 list) {
1123
1124 if (!ptr->tx_paused &&
1125 !skb_queue_empty(&ptr->skb_head))
1126 /* holds both locks */
1127 goto found;
1128 }
1129
1130 spin_unlock_irqrestore(&priv_tmp->wmm.
1131 ra_list_spinlock,
1132 flags_ra);
1133 }
1134 }
1135
1136 }
1137
1138 return NULL;
1139
1140 found:
1141 /* holds ra_list_spinlock */
1142 if (atomic_read(hqp) > i)
1143 atomic_set(hqp, i);
1144 spin_unlock_irqrestore(&priv_tmp->wmm.ra_list_spinlock, flags_ra);
1145
1146 *priv = priv_tmp;
1147 *tid = tos_to_tid[i];
1148
1149 return ptr;
1150 }
1151
1152 /* This functions rotates ra and bss lists so packets are picked round robin.
1153 *
1154 * After a packet is successfully transmitted, rotate the ra list, so the ra
1155 * next to the one transmitted, will come first in the list. This way we pick
1156 * the ra' in a round robin fashion. Same applies to bss nodes of equal
1157 * priority.
1158 *
1159 * Function also increments wmm.packets_out counter.
1160 */
1161 void mwifiex_rotate_priolists(struct mwifiex_private *priv,
1162 struct mwifiex_ra_list_tbl *ra,
1163 int tid)
1164 {
1165 struct mwifiex_adapter *adapter = priv->adapter;
1166 struct mwifiex_bss_prio_tbl *tbl = adapter->bss_prio_tbl;
1167 struct mwifiex_tid_tbl *tid_ptr = &priv->wmm.tid_tbl_ptr[tid];
1168 unsigned long flags;
1169
1170 spin_lock_irqsave(&tbl[priv->bss_priority].bss_prio_lock, flags);
1171 /*
1172 * dirty trick: we remove 'head' temporarily and reinsert it after
1173 * curr bss node. imagine list to stay fixed while head is moved
1174 */
1175 list_move(&tbl[priv->bss_priority].bss_prio_head,
1176 &tbl[priv->bss_priority].bss_prio_cur->list);
1177 spin_unlock_irqrestore(&tbl[priv->bss_priority].bss_prio_lock, flags);
1178
1179 spin_lock_irqsave(&priv->wmm.ra_list_spinlock, flags);
1180 if (mwifiex_is_ralist_valid(priv, ra, tid)) {
1181 priv->wmm.packets_out[tid]++;
1182 /* same as above */
1183 list_move(&tid_ptr->ra_list, &ra->list);
1184 }
1185 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock, flags);
1186 }
1187
1188 /*
1189 * This function checks if 11n aggregation is possible.
1190 */
1191 static int
1192 mwifiex_is_11n_aggragation_possible(struct mwifiex_private *priv,
1193 struct mwifiex_ra_list_tbl *ptr,
1194 int max_buf_size)
1195 {
1196 int count = 0, total_size = 0;
1197 struct sk_buff *skb, *tmp;
1198 int max_amsdu_size;
1199
1200 if (priv->bss_role == MWIFIEX_BSS_ROLE_UAP && priv->ap_11n_enabled &&
1201 ptr->is_11n_enabled)
1202 max_amsdu_size = min_t(int, ptr->max_amsdu, max_buf_size);
1203 else
1204 max_amsdu_size = max_buf_size;
1205
1206 skb_queue_walk_safe(&ptr->skb_head, skb, tmp) {
1207 total_size += skb->len;
1208 if (total_size >= max_amsdu_size)
1209 break;
1210 if (++count >= MIN_NUM_AMSDU)
1211 return true;
1212 }
1213
1214 return false;
1215 }
1216
1217 /*
1218 * This function sends a single packet to firmware for transmission.
1219 */
1220 static void
1221 mwifiex_send_single_packet(struct mwifiex_private *priv,
1222 struct mwifiex_ra_list_tbl *ptr, int ptr_index,
1223 unsigned long ra_list_flags)
1224 __releases(&priv->wmm.ra_list_spinlock)
1225 {
1226 struct sk_buff *skb, *skb_next;
1227 struct mwifiex_tx_param tx_param;
1228 struct mwifiex_adapter *adapter = priv->adapter;
1229 struct mwifiex_txinfo *tx_info;
1230
1231 if (skb_queue_empty(&ptr->skb_head)) {
1232 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock,
1233 ra_list_flags);
1234 mwifiex_dbg(adapter, DATA, "data: nothing to send\n");
1235 return;
1236 }
1237
1238 skb = skb_dequeue(&ptr->skb_head);
1239
1240 tx_info = MWIFIEX_SKB_TXCB(skb);
1241 mwifiex_dbg(adapter, DATA,
1242 "data: dequeuing the packet %p %p\n", ptr, skb);
1243
1244 ptr->total_pkt_count--;
1245
1246 if (!skb_queue_empty(&ptr->skb_head))
1247 skb_next = skb_peek(&ptr->skb_head);
1248 else
1249 skb_next = NULL;
1250
1251 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock, ra_list_flags);
1252
1253 tx_param.next_pkt_len = ((skb_next) ? skb_next->len +
1254 sizeof(struct txpd) : 0);
1255
1256 if (mwifiex_process_tx(priv, skb, &tx_param) == -EBUSY) {
1257 /* Queue the packet back at the head */
1258 spin_lock_irqsave(&priv->wmm.ra_list_spinlock, ra_list_flags);
1259
1260 if (!mwifiex_is_ralist_valid(priv, ptr, ptr_index)) {
1261 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock,
1262 ra_list_flags);
1263 mwifiex_write_data_complete(adapter, skb, 0, -1);
1264 return;
1265 }
1266
1267 skb_queue_tail(&ptr->skb_head, skb);
1268
1269 ptr->total_pkt_count++;
1270 ptr->ba_pkt_count++;
1271 tx_info->flags |= MWIFIEX_BUF_FLAG_REQUEUED_PKT;
1272 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock,
1273 ra_list_flags);
1274 } else {
1275 mwifiex_rotate_priolists(priv, ptr, ptr_index);
1276 atomic_dec(&priv->wmm.tx_pkts_queued);
1277 }
1278 }
1279
1280 /*
1281 * This function checks if the first packet in the given RA list
1282 * is already processed or not.
1283 */
1284 static int
1285 mwifiex_is_ptr_processed(struct mwifiex_private *priv,
1286 struct mwifiex_ra_list_tbl *ptr)
1287 {
1288 struct sk_buff *skb;
1289 struct mwifiex_txinfo *tx_info;
1290
1291 if (skb_queue_empty(&ptr->skb_head))
1292 return false;
1293
1294 skb = skb_peek(&ptr->skb_head);
1295
1296 tx_info = MWIFIEX_SKB_TXCB(skb);
1297 if (tx_info->flags & MWIFIEX_BUF_FLAG_REQUEUED_PKT)
1298 return true;
1299
1300 return false;
1301 }
1302
1303 /*
1304 * This function sends a single processed packet to firmware for
1305 * transmission.
1306 */
1307 static void
1308 mwifiex_send_processed_packet(struct mwifiex_private *priv,
1309 struct mwifiex_ra_list_tbl *ptr, int ptr_index,
1310 unsigned long ra_list_flags)
1311 __releases(&priv->wmm.ra_list_spinlock)
1312 {
1313 struct mwifiex_tx_param tx_param;
1314 struct mwifiex_adapter *adapter = priv->adapter;
1315 int ret = -1;
1316 struct sk_buff *skb, *skb_next;
1317 struct mwifiex_txinfo *tx_info;
1318
1319 if (skb_queue_empty(&ptr->skb_head)) {
1320 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock,
1321 ra_list_flags);
1322 return;
1323 }
1324
1325 skb = skb_dequeue(&ptr->skb_head);
1326
1327 if (adapter->data_sent || adapter->tx_lock_flag) {
1328 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock,
1329 ra_list_flags);
1330 skb_queue_tail(&adapter->tx_data_q, skb);
1331 atomic_inc(&adapter->tx_queued);
1332 return;
1333 }
1334
1335 if (!skb_queue_empty(&ptr->skb_head))
1336 skb_next = skb_peek(&ptr->skb_head);
1337 else
1338 skb_next = NULL;
1339
1340 tx_info = MWIFIEX_SKB_TXCB(skb);
1341
1342 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock, ra_list_flags);
1343
1344 if (adapter->iface_type == MWIFIEX_USB) {
1345 ret = adapter->if_ops.host_to_card(adapter, priv->usb_port,
1346 skb, NULL);
1347 } else {
1348 tx_param.next_pkt_len =
1349 ((skb_next) ? skb_next->len +
1350 sizeof(struct txpd) : 0);
1351 ret = adapter->if_ops.host_to_card(adapter, MWIFIEX_TYPE_DATA,
1352 skb, &tx_param);
1353 }
1354
1355 switch (ret) {
1356 case -EBUSY:
1357 mwifiex_dbg(adapter, ERROR, "data: -EBUSY is returned\n");
1358 spin_lock_irqsave(&priv->wmm.ra_list_spinlock, ra_list_flags);
1359
1360 if (!mwifiex_is_ralist_valid(priv, ptr, ptr_index)) {
1361 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock,
1362 ra_list_flags);
1363 mwifiex_write_data_complete(adapter, skb, 0, -1);
1364 return;
1365 }
1366
1367 skb_queue_tail(&ptr->skb_head, skb);
1368
1369 tx_info->flags |= MWIFIEX_BUF_FLAG_REQUEUED_PKT;
1370 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock,
1371 ra_list_flags);
1372 break;
1373 case -1:
1374 mwifiex_dbg(adapter, ERROR, "host_to_card failed: %#x\n", ret);
1375 adapter->dbg.num_tx_host_to_card_failure++;
1376 mwifiex_write_data_complete(adapter, skb, 0, ret);
1377 break;
1378 case -EINPROGRESS:
1379 break;
1380 case 0:
1381 mwifiex_write_data_complete(adapter, skb, 0, ret);
1382 default:
1383 break;
1384 }
1385 if (ret != -EBUSY) {
1386 mwifiex_rotate_priolists(priv, ptr, ptr_index);
1387 atomic_dec(&priv->wmm.tx_pkts_queued);
1388 }
1389 }
1390
1391 /*
1392 * This function dequeues a packet from the highest priority list
1393 * and transmits it.
1394 */
1395 static int
1396 mwifiex_dequeue_tx_packet(struct mwifiex_adapter *adapter)
1397 {
1398 struct mwifiex_ra_list_tbl *ptr;
1399 struct mwifiex_private *priv = NULL;
1400 int ptr_index = 0;
1401 u8 ra[ETH_ALEN];
1402 int tid_del = 0, tid = 0;
1403 unsigned long flags;
1404
1405 ptr = mwifiex_wmm_get_highest_priolist_ptr(adapter, &priv, &ptr_index);
1406 if (!ptr)
1407 return -1;
1408
1409 tid = mwifiex_get_tid(ptr);
1410
1411 mwifiex_dbg(adapter, DATA, "data: tid=%d\n", tid);
1412
1413 spin_lock_irqsave(&priv->wmm.ra_list_spinlock, flags);
1414 if (!mwifiex_is_ralist_valid(priv, ptr, ptr_index)) {
1415 spin_unlock_irqrestore(&priv->wmm.ra_list_spinlock, flags);
1416 return -1;
1417 }
1418
1419 if (mwifiex_is_ptr_processed(priv, ptr)) {
1420 mwifiex_send_processed_packet(priv, ptr, ptr_index, flags);
1421 /* ra_list_spinlock has been freed in
1422 mwifiex_send_processed_packet() */
1423 return 0;
1424 }
1425
1426 if (!ptr->is_11n_enabled ||
1427 ptr->ba_status ||
1428 priv->wps.session_enable) {
1429 if (ptr->is_11n_enabled &&
1430 ptr->ba_status &&
1431 ptr->amsdu_in_ampdu &&
1432 mwifiex_is_amsdu_allowed(priv, tid) &&
1433 mwifiex_is_11n_aggragation_possible(priv, ptr,
1434 adapter->tx_buf_size))
1435 mwifiex_11n_aggregate_pkt(priv, ptr, ptr_index, flags);
1436 /* ra_list_spinlock has been freed in
1437 * mwifiex_11n_aggregate_pkt()
1438 */
1439 else
1440 mwifiex_send_single_packet(priv, ptr, ptr_index, flags);
1441 /* ra_list_spinlock has been freed in
1442 * mwifiex_send_single_packet()
1443 */
1444 } else {
1445 if (mwifiex_is_ampdu_allowed(priv, ptr, tid) &&
1446 ptr->ba_pkt_count > ptr->ba_packet_thr) {
1447 if (mwifiex_space_avail_for_new_ba_stream(adapter)) {
1448 mwifiex_create_ba_tbl(priv, ptr->ra, tid,
1449 BA_SETUP_INPROGRESS);
1450 mwifiex_send_addba(priv, tid, ptr->ra);
1451 } else if (mwifiex_find_stream_to_delete
1452 (priv, tid, &tid_del, ra)) {
1453 mwifiex_create_ba_tbl(priv, ptr->ra, tid,
1454 BA_SETUP_INPROGRESS);
1455 mwifiex_send_delba(priv, tid_del, ra, 1);
1456 }
1457 }
1458 if (mwifiex_is_amsdu_allowed(priv, tid) &&
1459 mwifiex_is_11n_aggragation_possible(priv, ptr,
1460 adapter->tx_buf_size))
1461 mwifiex_11n_aggregate_pkt(priv, ptr, ptr_index, flags);
1462 /* ra_list_spinlock has been freed in
1463 mwifiex_11n_aggregate_pkt() */
1464 else
1465 mwifiex_send_single_packet(priv, ptr, ptr_index, flags);
1466 /* ra_list_spinlock has been freed in
1467 mwifiex_send_single_packet() */
1468 }
1469 return 0;
1470 }
1471
1472 void mwifiex_process_bypass_tx(struct mwifiex_adapter *adapter)
1473 {
1474 struct mwifiex_tx_param tx_param;
1475 struct sk_buff *skb;
1476 struct mwifiex_txinfo *tx_info;
1477 struct mwifiex_private *priv;
1478 int i;
1479
1480 if (adapter->data_sent || adapter->tx_lock_flag)
1481 return;
1482
1483 for (i = 0; i < adapter->priv_num; ++i) {
1484 priv = adapter->priv[i];
1485
1486 if (!priv)
1487 continue;
1488
1489 if (adapter->if_ops.is_port_ready &&
1490 !adapter->if_ops.is_port_ready(priv))
1491 continue;
1492
1493 if (skb_queue_empty(&priv->bypass_txq))
1494 continue;
1495
1496 skb = skb_dequeue(&priv->bypass_txq);
1497 tx_info = MWIFIEX_SKB_TXCB(skb);
1498
1499 /* no aggregation for bypass packets */
1500 tx_param.next_pkt_len = 0;
1501
1502 if (mwifiex_process_tx(priv, skb, &tx_param) == -EBUSY) {
1503 skb_queue_head(&priv->bypass_txq, skb);
1504 tx_info->flags |= MWIFIEX_BUF_FLAG_REQUEUED_PKT;
1505 } else {
1506 atomic_dec(&adapter->bypass_tx_pending);
1507 }
1508 }
1509 }
1510
1511 /*
1512 * This function transmits the highest priority packet awaiting in the
1513 * WMM Queues.
1514 */
1515 void
1516 mwifiex_wmm_process_tx(struct mwifiex_adapter *adapter)
1517 {
1518 do {
1519 if (mwifiex_dequeue_tx_packet(adapter))
1520 break;
1521 if (adapter->iface_type != MWIFIEX_SDIO) {
1522 if (adapter->data_sent ||
1523 adapter->tx_lock_flag)
1524 break;
1525 } else {
1526 if (atomic_read(&adapter->tx_queued) >=
1527 MWIFIEX_MAX_PKTS_TXQ)
1528 break;
1529 }
1530 } while (!mwifiex_wmm_lists_empty(adapter));
1531 }
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