1 // SPDX-License-Identifier: GPL-2.0 OR BSD-3-Clause
2 /*
3 * Copyright (C) 2012-2014, 2018-2021 Intel Corporation
4 * Copyright (C) 2013-2014 Intel Mobile Communications GmbH
5 * Copyright (C) 2015-2017 Intel Deutschland GmbH
6 */
7 #include <net/mac80211.h>
8
9 #include "iwl-debug.h"
10 #include "iwl-io.h"
11 #include "iwl-prph.h"
12 #include "iwl-csr.h"
13 #include "mvm.h"
14 #include "fw/api/rs.h"
15 #include "fw/img.h"
16
17 /*
18 * Will return 0 even if the cmd failed when RFKILL is asserted unless
19 * CMD_WANT_SKB is set in cmd->flags.
20 */
iwl_mvm_send_cmd(struct iwl_mvm * mvm,struct iwl_host_cmd * cmd)21 int iwl_mvm_send_cmd(struct iwl_mvm *mvm, struct iwl_host_cmd *cmd)
22 {
23 int ret;
24
25 #if defined(CONFIG_IWLWIFI_DEBUGFS) && defined(CONFIG_PM_SLEEP)
26 if (WARN_ON(mvm->d3_test_active))
27 return -EIO;
28 #endif
29
30 /*
31 * Synchronous commands from this op-mode must hold
32 * the mutex, this ensures we don't try to send two
33 * (or more) synchronous commands at a time.
34 */
35 if (!(cmd->flags & CMD_ASYNC))
36 lockdep_assert_held(&mvm->mutex);
37
38 ret = iwl_trans_send_cmd(mvm->trans, cmd);
39
40 /*
41 * If the caller wants the SKB, then don't hide any problems, the
42 * caller might access the response buffer which will be NULL if
43 * the command failed.
44 */
45 if (cmd->flags & CMD_WANT_SKB)
46 return ret;
47
48 /*
49 * Silently ignore failures if RFKILL is asserted or
50 * we are in suspend\resume process
51 */
52 if (!ret || ret == -ERFKILL || ret == -EHOSTDOWN)
53 return 0;
54 return ret;
55 }
56
iwl_mvm_send_cmd_pdu(struct iwl_mvm * mvm,u32 id,u32 flags,u16 len,const void * data)57 int iwl_mvm_send_cmd_pdu(struct iwl_mvm *mvm, u32 id,
58 u32 flags, u16 len, const void *data)
59 {
60 struct iwl_host_cmd cmd = {
61 .id = id,
62 .len = { len, },
63 .data = { data, },
64 .flags = flags,
65 };
66
67 return iwl_mvm_send_cmd(mvm, &cmd);
68 }
69
70 /*
71 * We assume that the caller set the status to the success value
72 */
iwl_mvm_send_cmd_status(struct iwl_mvm * mvm,struct iwl_host_cmd * cmd,u32 * status)73 int iwl_mvm_send_cmd_status(struct iwl_mvm *mvm, struct iwl_host_cmd *cmd,
74 u32 *status)
75 {
76 struct iwl_rx_packet *pkt;
77 struct iwl_cmd_response *resp;
78 int ret, resp_len;
79
80 lockdep_assert_held(&mvm->mutex);
81
82 #if defined(CONFIG_IWLWIFI_DEBUGFS) && defined(CONFIG_PM_SLEEP)
83 if (WARN_ON(mvm->d3_test_active))
84 return -EIO;
85 #endif
86
87 /*
88 * Only synchronous commands can wait for status,
89 * we use WANT_SKB so the caller can't.
90 */
91 if (WARN_ONCE(cmd->flags & (CMD_ASYNC | CMD_WANT_SKB),
92 "cmd flags %x", cmd->flags))
93 return -EINVAL;
94
95 cmd->flags |= CMD_WANT_SKB;
96
97 ret = iwl_trans_send_cmd(mvm->trans, cmd);
98 if (ret == -ERFKILL) {
99 /*
100 * The command failed because of RFKILL, don't update
101 * the status, leave it as success and return 0.
102 */
103 return 0;
104 } else if (ret) {
105 return ret;
106 }
107
108 pkt = cmd->resp_pkt;
109
110 resp_len = iwl_rx_packet_payload_len(pkt);
111 if (WARN_ON_ONCE(resp_len != sizeof(*resp))) {
112 ret = -EIO;
113 goto out_free_resp;
114 }
115
116 resp = (void *)pkt->data;
117 *status = le32_to_cpu(resp->status);
118 out_free_resp:
119 iwl_free_resp(cmd);
120 return ret;
121 }
122
123 /*
124 * We assume that the caller set the status to the sucess value
125 */
iwl_mvm_send_cmd_pdu_status(struct iwl_mvm * mvm,u32 id,u16 len,const void * data,u32 * status)126 int iwl_mvm_send_cmd_pdu_status(struct iwl_mvm *mvm, u32 id, u16 len,
127 const void *data, u32 *status)
128 {
129 struct iwl_host_cmd cmd = {
130 .id = id,
131 .len = { len, },
132 .data = { data, },
133 };
134
135 return iwl_mvm_send_cmd_status(mvm, &cmd, status);
136 }
137
138 #define IWL_DECLARE_RATE_INFO(r) \
139 [IWL_RATE_##r##M_INDEX] = IWL_RATE_##r##M_PLCP
140
141 /*
142 * Translate from fw_rate_index (IWL_RATE_XXM_INDEX) to PLCP
143 */
144 static const u8 fw_rate_idx_to_plcp[IWL_RATE_COUNT] = {
145 IWL_DECLARE_RATE_INFO(1),
146 IWL_DECLARE_RATE_INFO(2),
147 IWL_DECLARE_RATE_INFO(5),
148 IWL_DECLARE_RATE_INFO(11),
149 IWL_DECLARE_RATE_INFO(6),
150 IWL_DECLARE_RATE_INFO(9),
151 IWL_DECLARE_RATE_INFO(12),
152 IWL_DECLARE_RATE_INFO(18),
153 IWL_DECLARE_RATE_INFO(24),
154 IWL_DECLARE_RATE_INFO(36),
155 IWL_DECLARE_RATE_INFO(48),
156 IWL_DECLARE_RATE_INFO(54),
157 };
158
iwl_mvm_legacy_rate_to_mac80211_idx(u32 rate_n_flags,enum nl80211_band band)159 int iwl_mvm_legacy_rate_to_mac80211_idx(u32 rate_n_flags,
160 enum nl80211_band band)
161 {
162 int rate = rate_n_flags & RATE_LEGACY_RATE_MSK;
163 int idx;
164 int band_offset = 0;
165
166 /* Legacy rate format, search for match in table */
167 if (band != NL80211_BAND_2GHZ)
168 band_offset = IWL_FIRST_OFDM_RATE;
169 for (idx = band_offset; idx < IWL_RATE_COUNT_LEGACY; idx++)
170 if (fw_rate_idx_to_plcp[idx] == rate)
171 return idx - band_offset;
172
173 return -1;
174 }
175
iwl_mvm_mac80211_idx_to_hwrate(int rate_idx)176 u8 iwl_mvm_mac80211_idx_to_hwrate(int rate_idx)
177 {
178 /* Get PLCP rate for tx_cmd->rate_n_flags */
179 return fw_rate_idx_to_plcp[rate_idx];
180 }
181
iwl_mvm_mac80211_ac_to_ucode_ac(enum ieee80211_ac_numbers ac)182 u8 iwl_mvm_mac80211_ac_to_ucode_ac(enum ieee80211_ac_numbers ac)
183 {
184 static const u8 mac80211_ac_to_ucode_ac[] = {
185 AC_VO,
186 AC_VI,
187 AC_BE,
188 AC_BK
189 };
190
191 return mac80211_ac_to_ucode_ac[ac];
192 }
193
iwl_mvm_rx_fw_error(struct iwl_mvm * mvm,struct iwl_rx_cmd_buffer * rxb)194 void iwl_mvm_rx_fw_error(struct iwl_mvm *mvm, struct iwl_rx_cmd_buffer *rxb)
195 {
196 struct iwl_rx_packet *pkt = rxb_addr(rxb);
197 struct iwl_error_resp *err_resp = (void *)pkt->data;
198
199 IWL_ERR(mvm, "FW Error notification: type 0x%08X cmd_id 0x%02X\n",
200 le32_to_cpu(err_resp->error_type), err_resp->cmd_id);
201 IWL_ERR(mvm, "FW Error notification: seq 0x%04X service 0x%08X\n",
202 le16_to_cpu(err_resp->bad_cmd_seq_num),
203 le32_to_cpu(err_resp->error_service));
204 IWL_ERR(mvm, "FW Error notification: timestamp 0x%016llX\n",
205 le64_to_cpu(err_resp->timestamp));
206 }
207
208 /*
209 * Returns the first antenna as ANT_[ABC], as defined in iwl-config.h.
210 * The parameter should also be a combination of ANT_[ABC].
211 */
first_antenna(u8 mask)212 u8 first_antenna(u8 mask)
213 {
214 BUILD_BUG_ON(ANT_A != BIT(0)); /* using ffs is wrong if not */
215 if (WARN_ON_ONCE(!mask)) /* ffs will return 0 if mask is zeroed */
216 return BIT(0);
217 return BIT(ffs(mask) - 1);
218 }
219
220 /*
221 * Toggles between TX antennas to send the probe request on.
222 * Receives the bitmask of valid TX antennas and the *index* used
223 * for the last TX, and returns the next valid *index* to use.
224 * In order to set it in the tx_cmd, must do BIT(idx).
225 */
iwl_mvm_next_antenna(struct iwl_mvm * mvm,u8 valid,u8 last_idx)226 u8 iwl_mvm_next_antenna(struct iwl_mvm *mvm, u8 valid, u8 last_idx)
227 {
228 u8 ind = last_idx;
229 int i;
230
231 for (i = 0; i < MAX_ANT_NUM; i++) {
232 ind = (ind + 1) % MAX_ANT_NUM;
233 if (valid & BIT(ind))
234 return ind;
235 }
236
237 WARN_ONCE(1, "Failed to toggle between antennas 0x%x", valid);
238 return last_idx;
239 }
240
iwl_mvm_reconfig_scd(struct iwl_mvm * mvm,int queue,int fifo,int sta_id,int tid,int frame_limit,u16 ssn)241 int iwl_mvm_reconfig_scd(struct iwl_mvm *mvm, int queue, int fifo, int sta_id,
242 int tid, int frame_limit, u16 ssn)
243 {
244 struct iwl_scd_txq_cfg_cmd cmd = {
245 .scd_queue = queue,
246 .action = SCD_CFG_ENABLE_QUEUE,
247 .window = frame_limit,
248 .sta_id = sta_id,
249 .ssn = cpu_to_le16(ssn),
250 .tx_fifo = fifo,
251 .aggregate = (queue >= IWL_MVM_DQA_MIN_DATA_QUEUE ||
252 queue == IWL_MVM_DQA_BSS_CLIENT_QUEUE),
253 .tid = tid,
254 };
255 int ret;
256
257 if (WARN_ON(iwl_mvm_has_new_tx_api(mvm)))
258 return -EINVAL;
259
260 if (WARN(mvm->queue_info[queue].tid_bitmap == 0,
261 "Trying to reconfig unallocated queue %d\n", queue))
262 return -ENXIO;
263
264 IWL_DEBUG_TX_QUEUES(mvm, "Reconfig SCD for TXQ #%d\n", queue);
265
266 ret = iwl_mvm_send_cmd_pdu(mvm, SCD_QUEUE_CFG, 0, sizeof(cmd), &cmd);
267 WARN_ONCE(ret, "Failed to re-configure queue %d on FIFO %d, ret=%d\n",
268 queue, fifo, ret);
269
270 return ret;
271 }
272
273 /**
274 * iwl_mvm_send_lq_cmd() - Send link quality command
275 * @mvm: Driver data.
276 * @lq: Link quality command to send.
277 *
278 * The link quality command is sent as the last step of station creation.
279 * This is the special case in which init is set and we call a callback in
280 * this case to clear the state indicating that station creation is in
281 * progress.
282 */
iwl_mvm_send_lq_cmd(struct iwl_mvm * mvm,struct iwl_lq_cmd * lq)283 int iwl_mvm_send_lq_cmd(struct iwl_mvm *mvm, struct iwl_lq_cmd *lq)
284 {
285 struct iwl_host_cmd cmd = {
286 .id = LQ_CMD,
287 .len = { sizeof(struct iwl_lq_cmd), },
288 .flags = CMD_ASYNC,
289 .data = { lq, },
290 };
291
292 if (WARN_ON(lq->sta_id == IWL_MVM_INVALID_STA ||
293 iwl_mvm_has_tlc_offload(mvm)))
294 return -EINVAL;
295
296 return iwl_mvm_send_cmd(mvm, &cmd);
297 }
298
299 /**
300 * iwl_mvm_update_smps - Get a request to change the SMPS mode
301 * @mvm: Driver data.
302 * @vif: Pointer to the ieee80211_vif structure
303 * @req_type: The part of the driver who call for a change.
304 * @smps_request: The request to change the SMPS mode.
305 *
306 * Get a requst to change the SMPS mode,
307 * and change it according to all other requests in the driver.
308 */
iwl_mvm_update_smps(struct iwl_mvm * mvm,struct ieee80211_vif * vif,enum iwl_mvm_smps_type_request req_type,enum ieee80211_smps_mode smps_request)309 void iwl_mvm_update_smps(struct iwl_mvm *mvm, struct ieee80211_vif *vif,
310 enum iwl_mvm_smps_type_request req_type,
311 enum ieee80211_smps_mode smps_request)
312 {
313 struct iwl_mvm_vif *mvmvif;
314 enum ieee80211_smps_mode smps_mode = IEEE80211_SMPS_AUTOMATIC;
315 int i;
316
317 lockdep_assert_held(&mvm->mutex);
318
319 /* SMPS is irrelevant for NICs that don't have at least 2 RX antenna */
320 if (num_of_ant(iwl_mvm_get_valid_rx_ant(mvm)) == 1)
321 return;
322
323 if (vif->type != NL80211_IFTYPE_STATION)
324 return;
325
326 mvmvif = iwl_mvm_vif_from_mac80211(vif);
327 mvmvif->smps_requests[req_type] = smps_request;
328 for (i = 0; i < NUM_IWL_MVM_SMPS_REQ; i++) {
329 if (mvmvif->smps_requests[i] == IEEE80211_SMPS_STATIC) {
330 smps_mode = IEEE80211_SMPS_STATIC;
331 break;
332 }
333 if (mvmvif->smps_requests[i] == IEEE80211_SMPS_DYNAMIC)
334 smps_mode = IEEE80211_SMPS_DYNAMIC;
335 }
336
337 ieee80211_request_smps(vif, smps_mode);
338 }
339
iwl_mvm_request_statistics(struct iwl_mvm * mvm,bool clear)340 int iwl_mvm_request_statistics(struct iwl_mvm *mvm, bool clear)
341 {
342 struct iwl_statistics_cmd scmd = {
343 .flags = clear ? cpu_to_le32(IWL_STATISTICS_FLG_CLEAR) : 0,
344 };
345 struct iwl_host_cmd cmd = {
346 .id = STATISTICS_CMD,
347 .len[0] = sizeof(scmd),
348 .data[0] = &scmd,
349 .flags = CMD_WANT_SKB,
350 };
351 int ret;
352
353 ret = iwl_mvm_send_cmd(mvm, &cmd);
354 if (ret)
355 return ret;
356
357 iwl_mvm_handle_rx_statistics(mvm, cmd.resp_pkt);
358 iwl_free_resp(&cmd);
359
360 if (clear)
361 iwl_mvm_accu_radio_stats(mvm);
362
363 return 0;
364 }
365
iwl_mvm_accu_radio_stats(struct iwl_mvm * mvm)366 void iwl_mvm_accu_radio_stats(struct iwl_mvm *mvm)
367 {
368 mvm->accu_radio_stats.rx_time += mvm->radio_stats.rx_time;
369 mvm->accu_radio_stats.tx_time += mvm->radio_stats.tx_time;
370 mvm->accu_radio_stats.on_time_rf += mvm->radio_stats.on_time_rf;
371 mvm->accu_radio_stats.on_time_scan += mvm->radio_stats.on_time_scan;
372 }
373
374 struct iwl_mvm_diversity_iter_data {
375 struct iwl_mvm_phy_ctxt *ctxt;
376 bool result;
377 };
378
iwl_mvm_diversity_iter(void * _data,u8 * mac,struct ieee80211_vif * vif)379 static void iwl_mvm_diversity_iter(void *_data, u8 *mac,
380 struct ieee80211_vif *vif)
381 {
382 struct iwl_mvm_vif *mvmvif = iwl_mvm_vif_from_mac80211(vif);
383 struct iwl_mvm_diversity_iter_data *data = _data;
384 int i;
385
386 if (mvmvif->phy_ctxt != data->ctxt)
387 return;
388
389 for (i = 0; i < NUM_IWL_MVM_SMPS_REQ; i++) {
390 if (mvmvif->smps_requests[i] == IEEE80211_SMPS_STATIC ||
391 mvmvif->smps_requests[i] == IEEE80211_SMPS_DYNAMIC) {
392 data->result = false;
393 break;
394 }
395 }
396 }
397
iwl_mvm_rx_diversity_allowed(struct iwl_mvm * mvm,struct iwl_mvm_phy_ctxt * ctxt)398 bool iwl_mvm_rx_diversity_allowed(struct iwl_mvm *mvm,
399 struct iwl_mvm_phy_ctxt *ctxt)
400 {
401 struct iwl_mvm_diversity_iter_data data = {
402 .ctxt = ctxt,
403 .result = true,
404 };
405
406 lockdep_assert_held(&mvm->mutex);
407
408 if (iwlmvm_mod_params.power_scheme != IWL_POWER_SCHEME_CAM)
409 return false;
410
411 if (num_of_ant(iwl_mvm_get_valid_rx_ant(mvm)) == 1)
412 return false;
413
414 if (mvm->cfg->rx_with_siso_diversity)
415 return false;
416
417 ieee80211_iterate_active_interfaces_atomic(
418 mvm->hw, IEEE80211_IFACE_ITER_NORMAL,
419 iwl_mvm_diversity_iter, &data);
420
421 return data.result;
422 }
423
iwl_mvm_send_low_latency_cmd(struct iwl_mvm * mvm,bool low_latency,u16 mac_id)424 void iwl_mvm_send_low_latency_cmd(struct iwl_mvm *mvm,
425 bool low_latency, u16 mac_id)
426 {
427 struct iwl_mac_low_latency_cmd cmd = {
428 .mac_id = cpu_to_le32(mac_id)
429 };
430
431 if (!fw_has_capa(&mvm->fw->ucode_capa,
432 IWL_UCODE_TLV_CAPA_DYNAMIC_QUOTA))
433 return;
434
435 if (low_latency) {
436 /* currently we don't care about the direction */
437 cmd.low_latency_rx = 1;
438 cmd.low_latency_tx = 1;
439 }
440
441 if (iwl_mvm_send_cmd_pdu(mvm, iwl_cmd_id(LOW_LATENCY_CMD,
442 MAC_CONF_GROUP, 0),
443 0, sizeof(cmd), &cmd))
444 IWL_ERR(mvm, "Failed to send low latency command\n");
445 }
446
iwl_mvm_update_low_latency(struct iwl_mvm * mvm,struct ieee80211_vif * vif,bool low_latency,enum iwl_mvm_low_latency_cause cause)447 int iwl_mvm_update_low_latency(struct iwl_mvm *mvm, struct ieee80211_vif *vif,
448 bool low_latency,
449 enum iwl_mvm_low_latency_cause cause)
450 {
451 struct iwl_mvm_vif *mvmvif = iwl_mvm_vif_from_mac80211(vif);
452 int res;
453 bool prev;
454
455 lockdep_assert_held(&mvm->mutex);
456
457 prev = iwl_mvm_vif_low_latency(mvmvif);
458 iwl_mvm_vif_set_low_latency(mvmvif, low_latency, cause);
459
460 low_latency = iwl_mvm_vif_low_latency(mvmvif);
461
462 if (low_latency == prev)
463 return 0;
464
465 iwl_mvm_send_low_latency_cmd(mvm, low_latency, mvmvif->id);
466
467 res = iwl_mvm_update_quotas(mvm, false, NULL);
468 if (res)
469 return res;
470
471 iwl_mvm_bt_coex_vif_change(mvm);
472
473 return iwl_mvm_power_update_mac(mvm);
474 }
475
476 struct iwl_mvm_low_latency_iter {
477 bool result;
478 bool result_per_band[NUM_NL80211_BANDS];
479 };
480
iwl_mvm_ll_iter(void * _data,u8 * mac,struct ieee80211_vif * vif)481 static void iwl_mvm_ll_iter(void *_data, u8 *mac, struct ieee80211_vif *vif)
482 {
483 struct iwl_mvm_low_latency_iter *result = _data;
484 struct iwl_mvm_vif *mvmvif = iwl_mvm_vif_from_mac80211(vif);
485 enum nl80211_band band;
486
487 if (iwl_mvm_vif_low_latency(mvmvif)) {
488 result->result = true;
489
490 if (!mvmvif->phy_ctxt)
491 return;
492
493 band = mvmvif->phy_ctxt->channel->band;
494 result->result_per_band[band] = true;
495 }
496 }
497
iwl_mvm_low_latency(struct iwl_mvm * mvm)498 bool iwl_mvm_low_latency(struct iwl_mvm *mvm)
499 {
500 struct iwl_mvm_low_latency_iter data = {};
501
502 ieee80211_iterate_active_interfaces_atomic(
503 mvm->hw, IEEE80211_IFACE_ITER_NORMAL,
504 iwl_mvm_ll_iter, &data);
505
506 return data.result;
507 }
508
iwl_mvm_low_latency_band(struct iwl_mvm * mvm,enum nl80211_band band)509 bool iwl_mvm_low_latency_band(struct iwl_mvm *mvm, enum nl80211_band band)
510 {
511 struct iwl_mvm_low_latency_iter data = {};
512
513 ieee80211_iterate_active_interfaces_atomic(
514 mvm->hw, IEEE80211_IFACE_ITER_NORMAL,
515 iwl_mvm_ll_iter, &data);
516
517 return data.result_per_band[band];
518 }
519
520 struct iwl_bss_iter_data {
521 struct ieee80211_vif *vif;
522 bool error;
523 };
524
iwl_mvm_bss_iface_iterator(void * _data,u8 * mac,struct ieee80211_vif * vif)525 static void iwl_mvm_bss_iface_iterator(void *_data, u8 *mac,
526 struct ieee80211_vif *vif)
527 {
528 struct iwl_bss_iter_data *data = _data;
529
530 if (vif->type != NL80211_IFTYPE_STATION || vif->p2p)
531 return;
532
533 if (data->vif) {
534 data->error = true;
535 return;
536 }
537
538 data->vif = vif;
539 }
540
iwl_mvm_get_bss_vif(struct iwl_mvm * mvm)541 struct ieee80211_vif *iwl_mvm_get_bss_vif(struct iwl_mvm *mvm)
542 {
543 struct iwl_bss_iter_data bss_iter_data = {};
544
545 ieee80211_iterate_active_interfaces_atomic(
546 mvm->hw, IEEE80211_IFACE_ITER_NORMAL,
547 iwl_mvm_bss_iface_iterator, &bss_iter_data);
548
549 if (bss_iter_data.error) {
550 IWL_ERR(mvm, "More than one managed interface active!\n");
551 return ERR_PTR(-EINVAL);
552 }
553
554 return bss_iter_data.vif;
555 }
556
557 struct iwl_bss_find_iter_data {
558 struct ieee80211_vif *vif;
559 u32 macid;
560 };
561
iwl_mvm_bss_find_iface_iterator(void * _data,u8 * mac,struct ieee80211_vif * vif)562 static void iwl_mvm_bss_find_iface_iterator(void *_data, u8 *mac,
563 struct ieee80211_vif *vif)
564 {
565 struct iwl_bss_find_iter_data *data = _data;
566 struct iwl_mvm_vif *mvmvif = iwl_mvm_vif_from_mac80211(vif);
567
568 if (mvmvif->id == data->macid)
569 data->vif = vif;
570 }
571
iwl_mvm_get_vif_by_macid(struct iwl_mvm * mvm,u32 macid)572 struct ieee80211_vif *iwl_mvm_get_vif_by_macid(struct iwl_mvm *mvm, u32 macid)
573 {
574 struct iwl_bss_find_iter_data data = {
575 .macid = macid,
576 };
577
578 lockdep_assert_held(&mvm->mutex);
579
580 ieee80211_iterate_active_interfaces_atomic(
581 mvm->hw, IEEE80211_IFACE_ITER_NORMAL,
582 iwl_mvm_bss_find_iface_iterator, &data);
583
584 return data.vif;
585 }
586
587 struct iwl_sta_iter_data {
588 bool assoc;
589 };
590
iwl_mvm_sta_iface_iterator(void * _data,u8 * mac,struct ieee80211_vif * vif)591 static void iwl_mvm_sta_iface_iterator(void *_data, u8 *mac,
592 struct ieee80211_vif *vif)
593 {
594 struct iwl_sta_iter_data *data = _data;
595
596 if (vif->type != NL80211_IFTYPE_STATION)
597 return;
598
599 if (vif->bss_conf.assoc)
600 data->assoc = true;
601 }
602
iwl_mvm_is_vif_assoc(struct iwl_mvm * mvm)603 bool iwl_mvm_is_vif_assoc(struct iwl_mvm *mvm)
604 {
605 struct iwl_sta_iter_data data = {
606 .assoc = false,
607 };
608
609 ieee80211_iterate_active_interfaces_atomic(mvm->hw,
610 IEEE80211_IFACE_ITER_NORMAL,
611 iwl_mvm_sta_iface_iterator,
612 &data);
613 return data.assoc;
614 }
615
iwl_mvm_get_wd_timeout(struct iwl_mvm * mvm,struct ieee80211_vif * vif,bool tdls,bool cmd_q)616 unsigned int iwl_mvm_get_wd_timeout(struct iwl_mvm *mvm,
617 struct ieee80211_vif *vif,
618 bool tdls, bool cmd_q)
619 {
620 struct iwl_fw_dbg_trigger_tlv *trigger;
621 struct iwl_fw_dbg_trigger_txq_timer *txq_timer;
622 unsigned int default_timeout = cmd_q ?
623 IWL_DEF_WD_TIMEOUT :
624 mvm->trans->trans_cfg->base_params->wd_timeout;
625
626 if (!iwl_fw_dbg_trigger_enabled(mvm->fw, FW_DBG_TRIGGER_TXQ_TIMERS)) {
627 /*
628 * We can't know when the station is asleep or awake, so we
629 * must disable the queue hang detection.
630 */
631 if (fw_has_capa(&mvm->fw->ucode_capa,
632 IWL_UCODE_TLV_CAPA_STA_PM_NOTIF) &&
633 vif && vif->type == NL80211_IFTYPE_AP)
634 return IWL_WATCHDOG_DISABLED;
635 return default_timeout;
636 }
637
638 trigger = iwl_fw_dbg_get_trigger(mvm->fw, FW_DBG_TRIGGER_TXQ_TIMERS);
639 txq_timer = (void *)trigger->data;
640
641 if (tdls)
642 return le32_to_cpu(txq_timer->tdls);
643
644 if (cmd_q)
645 return le32_to_cpu(txq_timer->command_queue);
646
647 if (WARN_ON(!vif))
648 return default_timeout;
649
650 switch (ieee80211_vif_type_p2p(vif)) {
651 case NL80211_IFTYPE_ADHOC:
652 return le32_to_cpu(txq_timer->ibss);
653 case NL80211_IFTYPE_STATION:
654 return le32_to_cpu(txq_timer->bss);
655 case NL80211_IFTYPE_AP:
656 return le32_to_cpu(txq_timer->softap);
657 case NL80211_IFTYPE_P2P_CLIENT:
658 return le32_to_cpu(txq_timer->p2p_client);
659 case NL80211_IFTYPE_P2P_GO:
660 return le32_to_cpu(txq_timer->p2p_go);
661 case NL80211_IFTYPE_P2P_DEVICE:
662 return le32_to_cpu(txq_timer->p2p_device);
663 case NL80211_IFTYPE_MONITOR:
664 return default_timeout;
665 default:
666 WARN_ON(1);
667 return mvm->trans->trans_cfg->base_params->wd_timeout;
668 }
669 }
670
iwl_mvm_connection_loss(struct iwl_mvm * mvm,struct ieee80211_vif * vif,const char * errmsg)671 void iwl_mvm_connection_loss(struct iwl_mvm *mvm, struct ieee80211_vif *vif,
672 const char *errmsg)
673 {
674 struct iwl_fw_dbg_trigger_tlv *trig;
675 struct iwl_fw_dbg_trigger_mlme *trig_mlme;
676
677 trig = iwl_fw_dbg_trigger_on(&mvm->fwrt, ieee80211_vif_to_wdev(vif),
678 FW_DBG_TRIGGER_MLME);
679 if (!trig)
680 goto out;
681
682 trig_mlme = (void *)trig->data;
683
684 if (trig_mlme->stop_connection_loss &&
685 --trig_mlme->stop_connection_loss)
686 goto out;
687
688 iwl_fw_dbg_collect_trig(&mvm->fwrt, trig, "%s", errmsg);
689
690 out:
691 ieee80211_connection_loss(vif);
692 }
693
iwl_mvm_event_frame_timeout_callback(struct iwl_mvm * mvm,struct ieee80211_vif * vif,const struct ieee80211_sta * sta,u16 tid)694 void iwl_mvm_event_frame_timeout_callback(struct iwl_mvm *mvm,
695 struct ieee80211_vif *vif,
696 const struct ieee80211_sta *sta,
697 u16 tid)
698 {
699 struct iwl_fw_dbg_trigger_tlv *trig;
700 struct iwl_fw_dbg_trigger_ba *ba_trig;
701
702 trig = iwl_fw_dbg_trigger_on(&mvm->fwrt, ieee80211_vif_to_wdev(vif),
703 FW_DBG_TRIGGER_BA);
704 if (!trig)
705 return;
706
707 ba_trig = (void *)trig->data;
708
709 if (!(le16_to_cpu(ba_trig->frame_timeout) & BIT(tid)))
710 return;
711
712 iwl_fw_dbg_collect_trig(&mvm->fwrt, trig,
713 "Frame from %pM timed out, tid %d",
714 sta->addr, tid);
715 }
716
iwl_mvm_tcm_load_percentage(u32 airtime,u32 elapsed)717 u8 iwl_mvm_tcm_load_percentage(u32 airtime, u32 elapsed)
718 {
719 if (!elapsed)
720 return 0;
721
722 return (100 * airtime / elapsed) / USEC_PER_MSEC;
723 }
724
725 static enum iwl_mvm_traffic_load
iwl_mvm_tcm_load(struct iwl_mvm * mvm,u32 airtime,unsigned long elapsed)726 iwl_mvm_tcm_load(struct iwl_mvm *mvm, u32 airtime, unsigned long elapsed)
727 {
728 u8 load = iwl_mvm_tcm_load_percentage(airtime, elapsed);
729
730 if (load > IWL_MVM_TCM_LOAD_HIGH_THRESH)
731 return IWL_MVM_TRAFFIC_HIGH;
732 if (load > IWL_MVM_TCM_LOAD_MEDIUM_THRESH)
733 return IWL_MVM_TRAFFIC_MEDIUM;
734
735 return IWL_MVM_TRAFFIC_LOW;
736 }
737
iwl_mvm_tcm_iter(void * _data,u8 * mac,struct ieee80211_vif * vif)738 static void iwl_mvm_tcm_iter(void *_data, u8 *mac, struct ieee80211_vif *vif)
739 {
740 struct iwl_mvm *mvm = _data;
741 struct iwl_mvm_vif *mvmvif = iwl_mvm_vif_from_mac80211(vif);
742 bool low_latency, prev = mvmvif->low_latency & LOW_LATENCY_TRAFFIC;
743
744 if (mvmvif->id >= NUM_MAC_INDEX_DRIVER)
745 return;
746
747 low_latency = mvm->tcm.result.low_latency[mvmvif->id];
748
749 if (!mvm->tcm.result.change[mvmvif->id] &&
750 prev == low_latency) {
751 iwl_mvm_update_quotas(mvm, false, NULL);
752 return;
753 }
754
755 if (prev != low_latency) {
756 /* this sends traffic load and updates quota as well */
757 iwl_mvm_update_low_latency(mvm, vif, low_latency,
758 LOW_LATENCY_TRAFFIC);
759 } else {
760 iwl_mvm_update_quotas(mvm, false, NULL);
761 }
762 }
763
iwl_mvm_tcm_results(struct iwl_mvm * mvm)764 static void iwl_mvm_tcm_results(struct iwl_mvm *mvm)
765 {
766 mutex_lock(&mvm->mutex);
767
768 ieee80211_iterate_active_interfaces(
769 mvm->hw, IEEE80211_IFACE_ITER_NORMAL,
770 iwl_mvm_tcm_iter, mvm);
771
772 if (fw_has_capa(&mvm->fw->ucode_capa, IWL_UCODE_TLV_CAPA_UMAC_SCAN))
773 iwl_mvm_config_scan(mvm);
774
775 mutex_unlock(&mvm->mutex);
776 }
777
iwl_mvm_tcm_uapsd_nonagg_detected_wk(struct work_struct * wk)778 static void iwl_mvm_tcm_uapsd_nonagg_detected_wk(struct work_struct *wk)
779 {
780 struct iwl_mvm *mvm;
781 struct iwl_mvm_vif *mvmvif;
782 struct ieee80211_vif *vif;
783
784 mvmvif = container_of(wk, struct iwl_mvm_vif,
785 uapsd_nonagg_detected_wk.work);
786 vif = container_of((void *)mvmvif, struct ieee80211_vif, drv_priv);
787 mvm = mvmvif->mvm;
788
789 if (mvm->tcm.data[mvmvif->id].opened_rx_ba_sessions)
790 return;
791
792 /* remember that this AP is broken */
793 memcpy(mvm->uapsd_noagg_bssids[mvm->uapsd_noagg_bssid_write_idx].addr,
794 vif->bss_conf.bssid, ETH_ALEN);
795 mvm->uapsd_noagg_bssid_write_idx++;
796 if (mvm->uapsd_noagg_bssid_write_idx >= IWL_MVM_UAPSD_NOAGG_LIST_LEN)
797 mvm->uapsd_noagg_bssid_write_idx = 0;
798
799 iwl_mvm_connection_loss(mvm, vif,
800 "AP isn't using AMPDU with uAPSD enabled");
801 }
802
iwl_mvm_uapsd_agg_disconnect(struct iwl_mvm * mvm,struct ieee80211_vif * vif)803 static void iwl_mvm_uapsd_agg_disconnect(struct iwl_mvm *mvm,
804 struct ieee80211_vif *vif)
805 {
806 struct iwl_mvm_vif *mvmvif = iwl_mvm_vif_from_mac80211(vif);
807
808 if (vif->type != NL80211_IFTYPE_STATION)
809 return;
810
811 if (!vif->bss_conf.assoc)
812 return;
813
814 if (!mvmvif->queue_params[IEEE80211_AC_VO].uapsd &&
815 !mvmvif->queue_params[IEEE80211_AC_VI].uapsd &&
816 !mvmvif->queue_params[IEEE80211_AC_BE].uapsd &&
817 !mvmvif->queue_params[IEEE80211_AC_BK].uapsd)
818 return;
819
820 if (mvm->tcm.data[mvmvif->id].uapsd_nonagg_detect.detected)
821 return;
822
823 mvm->tcm.data[mvmvif->id].uapsd_nonagg_detect.detected = true;
824 IWL_INFO(mvm,
825 "detected AP should do aggregation but isn't, likely due to U-APSD\n");
826 schedule_delayed_work(&mvmvif->uapsd_nonagg_detected_wk, 15 * HZ);
827 }
828
iwl_mvm_check_uapsd_agg_expected_tpt(struct iwl_mvm * mvm,unsigned int elapsed,int mac)829 static void iwl_mvm_check_uapsd_agg_expected_tpt(struct iwl_mvm *mvm,
830 unsigned int elapsed,
831 int mac)
832 {
833 u64 bytes = mvm->tcm.data[mac].uapsd_nonagg_detect.rx_bytes;
834 u64 tpt;
835 unsigned long rate;
836 struct ieee80211_vif *vif;
837
838 rate = ewma_rate_read(&mvm->tcm.data[mac].uapsd_nonagg_detect.rate);
839
840 if (!rate || mvm->tcm.data[mac].opened_rx_ba_sessions ||
841 mvm->tcm.data[mac].uapsd_nonagg_detect.detected)
842 return;
843
844 if (iwl_mvm_has_new_rx_api(mvm)) {
845 tpt = 8 * bytes; /* kbps */
846 do_div(tpt, elapsed);
847 rate *= 1000; /* kbps */
848 if (tpt < 22 * rate / 100)
849 return;
850 } else {
851 /*
852 * the rate here is actually the threshold, in 100Kbps units,
853 * so do the needed conversion from bytes to 100Kbps:
854 * 100kb = bits / (100 * 1000),
855 * 100kbps = 100kb / (msecs / 1000) ==
856 * (bits / (100 * 1000)) / (msecs / 1000) ==
857 * bits / (100 * msecs)
858 */
859 tpt = (8 * bytes);
860 do_div(tpt, elapsed * 100);
861 if (tpt < rate)
862 return;
863 }
864
865 rcu_read_lock();
866 vif = rcu_dereference(mvm->vif_id_to_mac[mac]);
867 if (vif)
868 iwl_mvm_uapsd_agg_disconnect(mvm, vif);
869 rcu_read_unlock();
870 }
871
iwl_mvm_tcm_iterator(void * _data,u8 * mac,struct ieee80211_vif * vif)872 static void iwl_mvm_tcm_iterator(void *_data, u8 *mac,
873 struct ieee80211_vif *vif)
874 {
875 struct iwl_mvm_vif *mvmvif = iwl_mvm_vif_from_mac80211(vif);
876 u32 *band = _data;
877
878 if (!mvmvif->phy_ctxt)
879 return;
880
881 band[mvmvif->id] = mvmvif->phy_ctxt->channel->band;
882 }
883
iwl_mvm_calc_tcm_stats(struct iwl_mvm * mvm,unsigned long ts,bool handle_uapsd)884 static unsigned long iwl_mvm_calc_tcm_stats(struct iwl_mvm *mvm,
885 unsigned long ts,
886 bool handle_uapsd)
887 {
888 unsigned int elapsed = jiffies_to_msecs(ts - mvm->tcm.ts);
889 unsigned int uapsd_elapsed =
890 jiffies_to_msecs(ts - mvm->tcm.uapsd_nonagg_ts);
891 u32 total_airtime = 0;
892 u32 band_airtime[NUM_NL80211_BANDS] = {0};
893 u32 band[NUM_MAC_INDEX_DRIVER] = {0};
894 int ac, mac, i;
895 bool low_latency = false;
896 enum iwl_mvm_traffic_load load, band_load;
897 bool handle_ll = time_after(ts, mvm->tcm.ll_ts + MVM_LL_PERIOD);
898
899 if (handle_ll)
900 mvm->tcm.ll_ts = ts;
901 if (handle_uapsd)
902 mvm->tcm.uapsd_nonagg_ts = ts;
903
904 mvm->tcm.result.elapsed = elapsed;
905
906 ieee80211_iterate_active_interfaces_atomic(mvm->hw,
907 IEEE80211_IFACE_ITER_NORMAL,
908 iwl_mvm_tcm_iterator,
909 &band);
910
911 for (mac = 0; mac < NUM_MAC_INDEX_DRIVER; mac++) {
912 struct iwl_mvm_tcm_mac *mdata = &mvm->tcm.data[mac];
913 u32 vo_vi_pkts = 0;
914 u32 airtime = mdata->rx.airtime + mdata->tx.airtime;
915
916 total_airtime += airtime;
917 band_airtime[band[mac]] += airtime;
918
919 load = iwl_mvm_tcm_load(mvm, airtime, elapsed);
920 mvm->tcm.result.change[mac] = load != mvm->tcm.result.load[mac];
921 mvm->tcm.result.load[mac] = load;
922 mvm->tcm.result.airtime[mac] = airtime;
923
924 for (ac = IEEE80211_AC_VO; ac <= IEEE80211_AC_VI; ac++)
925 vo_vi_pkts += mdata->rx.pkts[ac] +
926 mdata->tx.pkts[ac];
927
928 /* enable immediately with enough packets but defer disabling */
929 if (vo_vi_pkts > IWL_MVM_TCM_LOWLAT_ENABLE_THRESH)
930 mvm->tcm.result.low_latency[mac] = true;
931 else if (handle_ll)
932 mvm->tcm.result.low_latency[mac] = false;
933
934 if (handle_ll) {
935 /* clear old data */
936 memset(&mdata->rx.pkts, 0, sizeof(mdata->rx.pkts));
937 memset(&mdata->tx.pkts, 0, sizeof(mdata->tx.pkts));
938 }
939 low_latency |= mvm->tcm.result.low_latency[mac];
940
941 if (!mvm->tcm.result.low_latency[mac] && handle_uapsd)
942 iwl_mvm_check_uapsd_agg_expected_tpt(mvm, uapsd_elapsed,
943 mac);
944 /* clear old data */
945 if (handle_uapsd)
946 mdata->uapsd_nonagg_detect.rx_bytes = 0;
947 memset(&mdata->rx.airtime, 0, sizeof(mdata->rx.airtime));
948 memset(&mdata->tx.airtime, 0, sizeof(mdata->tx.airtime));
949 }
950
951 load = iwl_mvm_tcm_load(mvm, total_airtime, elapsed);
952 mvm->tcm.result.global_load = load;
953
954 for (i = 0; i < NUM_NL80211_BANDS; i++) {
955 band_load = iwl_mvm_tcm_load(mvm, band_airtime[i], elapsed);
956 mvm->tcm.result.band_load[i] = band_load;
957 }
958
959 /*
960 * If the current load isn't low we need to force re-evaluation
961 * in the TCM period, so that we can return to low load if there
962 * was no traffic at all (and thus iwl_mvm_recalc_tcm didn't get
963 * triggered by traffic).
964 */
965 if (load != IWL_MVM_TRAFFIC_LOW)
966 return MVM_TCM_PERIOD;
967 /*
968 * If low-latency is active we need to force re-evaluation after
969 * (the longer) MVM_LL_PERIOD, so that we can disable low-latency
970 * when there's no traffic at all.
971 */
972 if (low_latency)
973 return MVM_LL_PERIOD;
974 /*
975 * Otherwise, we don't need to run the work struct because we're
976 * in the default "idle" state - traffic indication is low (which
977 * also covers the "no traffic" case) and low-latency is disabled
978 * so there's no state that may need to be disabled when there's
979 * no traffic at all.
980 *
981 * Note that this has no impact on the regular scheduling of the
982 * updates triggered by traffic - those happen whenever one of the
983 * two timeouts expire (if there's traffic at all.)
984 */
985 return 0;
986 }
987
iwl_mvm_recalc_tcm(struct iwl_mvm * mvm)988 void iwl_mvm_recalc_tcm(struct iwl_mvm *mvm)
989 {
990 unsigned long ts = jiffies;
991 bool handle_uapsd =
992 time_after(ts, mvm->tcm.uapsd_nonagg_ts +
993 msecs_to_jiffies(IWL_MVM_UAPSD_NONAGG_PERIOD));
994
995 spin_lock(&mvm->tcm.lock);
996 if (mvm->tcm.paused || !time_after(ts, mvm->tcm.ts + MVM_TCM_PERIOD)) {
997 spin_unlock(&mvm->tcm.lock);
998 return;
999 }
1000 spin_unlock(&mvm->tcm.lock);
1001
1002 if (handle_uapsd && iwl_mvm_has_new_rx_api(mvm)) {
1003 mutex_lock(&mvm->mutex);
1004 if (iwl_mvm_request_statistics(mvm, true))
1005 handle_uapsd = false;
1006 mutex_unlock(&mvm->mutex);
1007 }
1008
1009 spin_lock(&mvm->tcm.lock);
1010 /* re-check if somebody else won the recheck race */
1011 if (!mvm->tcm.paused && time_after(ts, mvm->tcm.ts + MVM_TCM_PERIOD)) {
1012 /* calculate statistics */
1013 unsigned long work_delay = iwl_mvm_calc_tcm_stats(mvm, ts,
1014 handle_uapsd);
1015
1016 /* the memset needs to be visible before the timestamp */
1017 smp_mb();
1018 mvm->tcm.ts = ts;
1019 if (work_delay)
1020 schedule_delayed_work(&mvm->tcm.work, work_delay);
1021 }
1022 spin_unlock(&mvm->tcm.lock);
1023
1024 iwl_mvm_tcm_results(mvm);
1025 }
1026
iwl_mvm_tcm_work(struct work_struct * work)1027 void iwl_mvm_tcm_work(struct work_struct *work)
1028 {
1029 struct delayed_work *delayed_work = to_delayed_work(work);
1030 struct iwl_mvm *mvm = container_of(delayed_work, struct iwl_mvm,
1031 tcm.work);
1032
1033 iwl_mvm_recalc_tcm(mvm);
1034 }
1035
iwl_mvm_pause_tcm(struct iwl_mvm * mvm,bool with_cancel)1036 void iwl_mvm_pause_tcm(struct iwl_mvm *mvm, bool with_cancel)
1037 {
1038 spin_lock_bh(&mvm->tcm.lock);
1039 mvm->tcm.paused = true;
1040 spin_unlock_bh(&mvm->tcm.lock);
1041 if (with_cancel)
1042 cancel_delayed_work_sync(&mvm->tcm.work);
1043 }
1044
iwl_mvm_resume_tcm(struct iwl_mvm * mvm)1045 void iwl_mvm_resume_tcm(struct iwl_mvm *mvm)
1046 {
1047 int mac;
1048 bool low_latency = false;
1049
1050 spin_lock_bh(&mvm->tcm.lock);
1051 mvm->tcm.ts = jiffies;
1052 mvm->tcm.ll_ts = jiffies;
1053 for (mac = 0; mac < NUM_MAC_INDEX_DRIVER; mac++) {
1054 struct iwl_mvm_tcm_mac *mdata = &mvm->tcm.data[mac];
1055
1056 memset(&mdata->rx.pkts, 0, sizeof(mdata->rx.pkts));
1057 memset(&mdata->tx.pkts, 0, sizeof(mdata->tx.pkts));
1058 memset(&mdata->rx.airtime, 0, sizeof(mdata->rx.airtime));
1059 memset(&mdata->tx.airtime, 0, sizeof(mdata->tx.airtime));
1060
1061 if (mvm->tcm.result.low_latency[mac])
1062 low_latency = true;
1063 }
1064 /* The TCM data needs to be reset before "paused" flag changes */
1065 smp_mb();
1066 mvm->tcm.paused = false;
1067
1068 /*
1069 * if the current load is not low or low latency is active, force
1070 * re-evaluation to cover the case of no traffic.
1071 */
1072 if (mvm->tcm.result.global_load > IWL_MVM_TRAFFIC_LOW)
1073 schedule_delayed_work(&mvm->tcm.work, MVM_TCM_PERIOD);
1074 else if (low_latency)
1075 schedule_delayed_work(&mvm->tcm.work, MVM_LL_PERIOD);
1076
1077 spin_unlock_bh(&mvm->tcm.lock);
1078 }
1079
iwl_mvm_tcm_add_vif(struct iwl_mvm * mvm,struct ieee80211_vif * vif)1080 void iwl_mvm_tcm_add_vif(struct iwl_mvm *mvm, struct ieee80211_vif *vif)
1081 {
1082 struct iwl_mvm_vif *mvmvif = iwl_mvm_vif_from_mac80211(vif);
1083
1084 INIT_DELAYED_WORK(&mvmvif->uapsd_nonagg_detected_wk,
1085 iwl_mvm_tcm_uapsd_nonagg_detected_wk);
1086 }
1087
iwl_mvm_tcm_rm_vif(struct iwl_mvm * mvm,struct ieee80211_vif * vif)1088 void iwl_mvm_tcm_rm_vif(struct iwl_mvm *mvm, struct ieee80211_vif *vif)
1089 {
1090 struct iwl_mvm_vif *mvmvif = iwl_mvm_vif_from_mac80211(vif);
1091
1092 cancel_delayed_work_sync(&mvmvif->uapsd_nonagg_detected_wk);
1093 }
1094
iwl_mvm_get_systime(struct iwl_mvm * mvm)1095 u32 iwl_mvm_get_systime(struct iwl_mvm *mvm)
1096 {
1097 u32 reg_addr = DEVICE_SYSTEM_TIME_REG;
1098
1099 if (mvm->trans->trans_cfg->device_family >= IWL_DEVICE_FAMILY_22000 &&
1100 mvm->trans->cfg->gp2_reg_addr)
1101 reg_addr = mvm->trans->cfg->gp2_reg_addr;
1102
1103 return iwl_read_prph(mvm->trans, reg_addr);
1104 }
1105
iwl_mvm_get_sync_time(struct iwl_mvm * mvm,int clock_type,u32 * gp2,u64 * boottime,ktime_t * realtime)1106 void iwl_mvm_get_sync_time(struct iwl_mvm *mvm, int clock_type,
1107 u32 *gp2, u64 *boottime, ktime_t *realtime)
1108 {
1109 bool ps_disabled;
1110
1111 lockdep_assert_held(&mvm->mutex);
1112
1113 /* Disable power save when reading GP2 */
1114 ps_disabled = mvm->ps_disabled;
1115 if (!ps_disabled) {
1116 mvm->ps_disabled = true;
1117 iwl_mvm_power_update_device(mvm);
1118 }
1119
1120 *gp2 = iwl_mvm_get_systime(mvm);
1121
1122 if (clock_type == CLOCK_BOOTTIME && boottime)
1123 *boottime = ktime_get_boottime_ns();
1124 else if (clock_type == CLOCK_REALTIME && realtime)
1125 *realtime = ktime_get_real();
1126
1127 if (!ps_disabled) {
1128 mvm->ps_disabled = ps_disabled;
1129 iwl_mvm_power_update_device(mvm);
1130 }
1131 }
1132