iwlagn: enable 11n aggregation without checking traffic load
[linux-2.6/linux-acpi-2.6/ibm-acpi-2.6.git] / drivers / net / wireless / iwlwifi / iwl-agn-lib.c
blob6cfd236209738fd7b6885efd3d65a9a9edcba6e0
1 /******************************************************************************
3 * GPL LICENSE SUMMARY
5 * Copyright(c) 2008 - 2011 Intel Corporation. All rights reserved.
7 * This program is free software; you can redistribute it and/or modify
8 * it under the terms of version 2 of the GNU General Public License as
9 * published by the Free Software Foundation.
11 * This program is distributed in the hope that it will be useful, but
12 * WITHOUT ANY WARRANTY; without even the implied warranty of
13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
14 * General Public License for more details.
16 * You should have received a copy of the GNU General Public License
17 * along with this program; if not, write to the Free Software
18 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110,
19 * USA
21 * The full GNU General Public License is included in this distribution
22 * in the file called LICENSE.GPL.
24 * Contact Information:
25 * Intel Linux Wireless <ilw@linux.intel.com>
26 * Intel Corporation, 5200 N.E. Elam Young Parkway, Hillsboro, OR 97124-6497
28 *****************************************************************************/
29 #include <linux/etherdevice.h>
30 #include <linux/kernel.h>
31 #include <linux/module.h>
32 #include <linux/init.h>
33 #include <linux/sched.h>
35 #include "iwl-dev.h"
36 #include "iwl-core.h"
37 #include "iwl-io.h"
38 #include "iwl-helpers.h"
39 #include "iwl-agn-hw.h"
40 #include "iwl-agn.h"
41 #include "iwl-sta.h"
42 #include "iwl-trans.h"
43 #include "iwl-shared.h"
45 static inline u32 iwlagn_get_scd_ssn(struct iwlagn_tx_resp *tx_resp)
47 return le32_to_cpup((__le32 *)&tx_resp->status +
48 tx_resp->frame_count) & MAX_SN;
51 static void iwlagn_count_tx_err_status(struct iwl_priv *priv, u16 status)
53 status &= TX_STATUS_MSK;
55 switch (status) {
56 case TX_STATUS_POSTPONE_DELAY:
57 priv->reply_tx_stats.pp_delay++;
58 break;
59 case TX_STATUS_POSTPONE_FEW_BYTES:
60 priv->reply_tx_stats.pp_few_bytes++;
61 break;
62 case TX_STATUS_POSTPONE_BT_PRIO:
63 priv->reply_tx_stats.pp_bt_prio++;
64 break;
65 case TX_STATUS_POSTPONE_QUIET_PERIOD:
66 priv->reply_tx_stats.pp_quiet_period++;
67 break;
68 case TX_STATUS_POSTPONE_CALC_TTAK:
69 priv->reply_tx_stats.pp_calc_ttak++;
70 break;
71 case TX_STATUS_FAIL_INTERNAL_CROSSED_RETRY:
72 priv->reply_tx_stats.int_crossed_retry++;
73 break;
74 case TX_STATUS_FAIL_SHORT_LIMIT:
75 priv->reply_tx_stats.short_limit++;
76 break;
77 case TX_STATUS_FAIL_LONG_LIMIT:
78 priv->reply_tx_stats.long_limit++;
79 break;
80 case TX_STATUS_FAIL_FIFO_UNDERRUN:
81 priv->reply_tx_stats.fifo_underrun++;
82 break;
83 case TX_STATUS_FAIL_DRAIN_FLOW:
84 priv->reply_tx_stats.drain_flow++;
85 break;
86 case TX_STATUS_FAIL_RFKILL_FLUSH:
87 priv->reply_tx_stats.rfkill_flush++;
88 break;
89 case TX_STATUS_FAIL_LIFE_EXPIRE:
90 priv->reply_tx_stats.life_expire++;
91 break;
92 case TX_STATUS_FAIL_DEST_PS:
93 priv->reply_tx_stats.dest_ps++;
94 break;
95 case TX_STATUS_FAIL_HOST_ABORTED:
96 priv->reply_tx_stats.host_abort++;
97 break;
98 case TX_STATUS_FAIL_BT_RETRY:
99 priv->reply_tx_stats.bt_retry++;
100 break;
101 case TX_STATUS_FAIL_STA_INVALID:
102 priv->reply_tx_stats.sta_invalid++;
103 break;
104 case TX_STATUS_FAIL_FRAG_DROPPED:
105 priv->reply_tx_stats.frag_drop++;
106 break;
107 case TX_STATUS_FAIL_TID_DISABLE:
108 priv->reply_tx_stats.tid_disable++;
109 break;
110 case TX_STATUS_FAIL_FIFO_FLUSHED:
111 priv->reply_tx_stats.fifo_flush++;
112 break;
113 case TX_STATUS_FAIL_INSUFFICIENT_CF_POLL:
114 priv->reply_tx_stats.insuff_cf_poll++;
115 break;
116 case TX_STATUS_FAIL_PASSIVE_NO_RX:
117 priv->reply_tx_stats.fail_hw_drop++;
118 break;
119 case TX_STATUS_FAIL_NO_BEACON_ON_RADAR:
120 priv->reply_tx_stats.sta_color_mismatch++;
121 break;
122 default:
123 priv->reply_tx_stats.unknown++;
124 break;
128 static void iwlagn_count_agg_tx_err_status(struct iwl_priv *priv, u16 status)
130 status &= AGG_TX_STATUS_MSK;
132 switch (status) {
133 case AGG_TX_STATE_UNDERRUN_MSK:
134 priv->reply_agg_tx_stats.underrun++;
135 break;
136 case AGG_TX_STATE_BT_PRIO_MSK:
137 priv->reply_agg_tx_stats.bt_prio++;
138 break;
139 case AGG_TX_STATE_FEW_BYTES_MSK:
140 priv->reply_agg_tx_stats.few_bytes++;
141 break;
142 case AGG_TX_STATE_ABORT_MSK:
143 priv->reply_agg_tx_stats.abort++;
144 break;
145 case AGG_TX_STATE_LAST_SENT_TTL_MSK:
146 priv->reply_agg_tx_stats.last_sent_ttl++;
147 break;
148 case AGG_TX_STATE_LAST_SENT_TRY_CNT_MSK:
149 priv->reply_agg_tx_stats.last_sent_try++;
150 break;
151 case AGG_TX_STATE_LAST_SENT_BT_KILL_MSK:
152 priv->reply_agg_tx_stats.last_sent_bt_kill++;
153 break;
154 case AGG_TX_STATE_SCD_QUERY_MSK:
155 priv->reply_agg_tx_stats.scd_query++;
156 break;
157 case AGG_TX_STATE_TEST_BAD_CRC32_MSK:
158 priv->reply_agg_tx_stats.bad_crc32++;
159 break;
160 case AGG_TX_STATE_RESPONSE_MSK:
161 priv->reply_agg_tx_stats.response++;
162 break;
163 case AGG_TX_STATE_DUMP_TX_MSK:
164 priv->reply_agg_tx_stats.dump_tx++;
165 break;
166 case AGG_TX_STATE_DELAY_TX_MSK:
167 priv->reply_agg_tx_stats.delay_tx++;
168 break;
169 default:
170 priv->reply_agg_tx_stats.unknown++;
171 break;
175 static void iwlagn_set_tx_status(struct iwl_priv *priv,
176 struct ieee80211_tx_info *info,
177 struct iwl_rxon_context *ctx,
178 struct iwlagn_tx_resp *tx_resp,
179 int txq_id, bool is_agg)
181 u16 status = le16_to_cpu(tx_resp->status.status);
183 info->status.rates[0].count = tx_resp->failure_frame + 1;
184 if (is_agg)
185 info->flags &= ~IEEE80211_TX_CTL_AMPDU;
186 info->flags |= iwl_tx_status_to_mac80211(status);
187 iwlagn_hwrate_to_tx_control(priv, le32_to_cpu(tx_resp->rate_n_flags),
188 info);
189 if (!iwl_is_tx_success(status))
190 iwlagn_count_tx_err_status(priv, status);
192 if (status == TX_STATUS_FAIL_PASSIVE_NO_RX &&
193 iwl_is_associated_ctx(ctx) && ctx->vif &&
194 ctx->vif->type == NL80211_IFTYPE_STATION) {
195 ctx->last_tx_rejected = true;
196 iwl_stop_queue(priv, &priv->txq[txq_id]);
199 IWL_DEBUG_TX_REPLY(priv, "TXQ %d status %s (0x%08x) rate_n_flags "
200 "0x%x retries %d\n",
201 txq_id,
202 iwl_get_tx_fail_reason(status), status,
203 le32_to_cpu(tx_resp->rate_n_flags),
204 tx_resp->failure_frame);
207 #ifdef CONFIG_IWLWIFI_DEBUG
208 #define AGG_TX_STATE_FAIL(x) case AGG_TX_STATE_ ## x: return #x
210 const char *iwl_get_agg_tx_fail_reason(u16 status)
212 status &= AGG_TX_STATUS_MSK;
213 switch (status) {
214 case AGG_TX_STATE_TRANSMITTED:
215 return "SUCCESS";
216 AGG_TX_STATE_FAIL(UNDERRUN_MSK);
217 AGG_TX_STATE_FAIL(BT_PRIO_MSK);
218 AGG_TX_STATE_FAIL(FEW_BYTES_MSK);
219 AGG_TX_STATE_FAIL(ABORT_MSK);
220 AGG_TX_STATE_FAIL(LAST_SENT_TTL_MSK);
221 AGG_TX_STATE_FAIL(LAST_SENT_TRY_CNT_MSK);
222 AGG_TX_STATE_FAIL(LAST_SENT_BT_KILL_MSK);
223 AGG_TX_STATE_FAIL(SCD_QUERY_MSK);
224 AGG_TX_STATE_FAIL(TEST_BAD_CRC32_MSK);
225 AGG_TX_STATE_FAIL(RESPONSE_MSK);
226 AGG_TX_STATE_FAIL(DUMP_TX_MSK);
227 AGG_TX_STATE_FAIL(DELAY_TX_MSK);
230 return "UNKNOWN";
232 #endif /* CONFIG_IWLWIFI_DEBUG */
234 static int iwlagn_tx_status_reply_tx(struct iwl_priv *priv,
235 struct iwl_ht_agg *agg,
236 struct iwlagn_tx_resp *tx_resp,
237 int txq_id, u16 start_idx)
239 u16 status;
240 struct agg_tx_status *frame_status = &tx_resp->status;
241 struct ieee80211_hdr *hdr = NULL;
242 int i, sh, idx;
243 u16 seq;
245 if (agg->wait_for_ba)
246 IWL_DEBUG_TX_REPLY(priv, "got tx response w/o block-ack\n");
248 agg->frame_count = tx_resp->frame_count;
249 agg->start_idx = start_idx;
250 agg->rate_n_flags = le32_to_cpu(tx_resp->rate_n_flags);
251 agg->bitmap = 0;
253 /* # frames attempted by Tx command */
254 if (agg->frame_count == 1) {
255 struct iwl_tx_info *txb;
257 /* Only one frame was attempted; no block-ack will arrive */
258 idx = start_idx;
260 IWL_DEBUG_TX_REPLY(priv, "FrameCnt = %d, StartIdx=%d idx=%d\n",
261 agg->frame_count, agg->start_idx, idx);
262 txb = &priv->txq[txq_id].txb[idx];
263 iwlagn_set_tx_status(priv, IEEE80211_SKB_CB(txb->skb),
264 txb->ctx, tx_resp, txq_id, true);
265 agg->wait_for_ba = 0;
266 } else {
267 /* Two or more frames were attempted; expect block-ack */
268 u64 bitmap = 0;
271 * Start is the lowest frame sent. It may not be the first
272 * frame in the batch; we figure this out dynamically during
273 * the following loop.
275 int start = agg->start_idx;
277 /* Construct bit-map of pending frames within Tx window */
278 for (i = 0; i < agg->frame_count; i++) {
279 u16 sc;
280 status = le16_to_cpu(frame_status[i].status);
281 seq = le16_to_cpu(frame_status[i].sequence);
282 idx = SEQ_TO_INDEX(seq);
283 txq_id = SEQ_TO_QUEUE(seq);
285 if (status & AGG_TX_STATUS_MSK)
286 iwlagn_count_agg_tx_err_status(priv, status);
288 if (status & (AGG_TX_STATE_FEW_BYTES_MSK |
289 AGG_TX_STATE_ABORT_MSK))
290 continue;
292 IWL_DEBUG_TX_REPLY(priv, "FrameCnt = %d, txq_id=%d idx=%d\n",
293 agg->frame_count, txq_id, idx);
294 IWL_DEBUG_TX_REPLY(priv, "status %s (0x%08x), "
295 "try-count (0x%08x)\n",
296 iwl_get_agg_tx_fail_reason(status),
297 status & AGG_TX_STATUS_MSK,
298 status & AGG_TX_TRY_MSK);
300 hdr = iwl_tx_queue_get_hdr(priv, txq_id, idx);
301 if (!hdr) {
302 IWL_ERR(priv,
303 "BUG_ON idx doesn't point to valid skb"
304 " idx=%d, txq_id=%d\n", idx, txq_id);
305 return -1;
308 sc = le16_to_cpu(hdr->seq_ctrl);
309 if (idx != (SEQ_TO_SN(sc) & 0xff)) {
310 IWL_ERR(priv,
311 "BUG_ON idx doesn't match seq control"
312 " idx=%d, seq_idx=%d, seq=%d\n",
313 idx, SEQ_TO_SN(sc),
314 hdr->seq_ctrl);
315 return -1;
318 IWL_DEBUG_TX_REPLY(priv, "AGG Frame i=%d idx %d seq=%d\n",
319 i, idx, SEQ_TO_SN(sc));
322 * sh -> how many frames ahead of the starting frame is
323 * the current one?
325 * Note that all frames sent in the batch must be in a
326 * 64-frame window, so this number should be in [0,63].
327 * If outside of this window, then we've found a new
328 * "first" frame in the batch and need to change start.
330 sh = idx - start;
333 * If >= 64, out of window. start must be at the front
334 * of the circular buffer, idx must be near the end of
335 * the buffer, and idx is the new "first" frame. Shift
336 * the indices around.
338 if (sh >= 64) {
339 /* Shift bitmap by start - idx, wrapped */
340 sh = 0x100 - idx + start;
341 bitmap = bitmap << sh;
342 /* Now idx is the new start so sh = 0 */
343 sh = 0;
344 start = idx;
346 * If <= -64 then wraps the 256-pkt circular buffer
347 * (e.g., start = 255 and idx = 0, sh should be 1)
349 } else if (sh <= -64) {
350 sh = 0x100 - start + idx;
352 * If < 0 but > -64, out of window. idx is before start
353 * but not wrapped. Shift the indices around.
355 } else if (sh < 0) {
356 /* Shift by how far start is ahead of idx */
357 sh = start - idx;
358 bitmap = bitmap << sh;
359 /* Now idx is the new start so sh = 0 */
360 start = idx;
361 sh = 0;
363 /* Sequence number start + sh was sent in this batch */
364 bitmap |= 1ULL << sh;
365 IWL_DEBUG_TX_REPLY(priv, "start=%d bitmap=0x%llx\n",
366 start, (unsigned long long)bitmap);
370 * Store the bitmap and possibly the new start, if we wrapped
371 * the buffer above
373 agg->bitmap = bitmap;
374 agg->start_idx = start;
375 IWL_DEBUG_TX_REPLY(priv, "Frames %d start_idx=%d bitmap=0x%llx\n",
376 agg->frame_count, agg->start_idx,
377 (unsigned long long)agg->bitmap);
379 if (bitmap)
380 agg->wait_for_ba = 1;
382 return 0;
385 void iwl_check_abort_status(struct iwl_priv *priv,
386 u8 frame_count, u32 status)
388 if (frame_count == 1 && status == TX_STATUS_FAIL_RFKILL_FLUSH) {
389 IWL_ERR(priv, "Tx flush command to flush out all frames\n");
390 if (!test_bit(STATUS_EXIT_PENDING, &priv->shrd->status))
391 queue_work(priv->shrd->workqueue, &priv->tx_flush);
395 void iwlagn_rx_reply_tx(struct iwl_priv *priv, struct iwl_rx_mem_buffer *rxb)
397 struct iwl_rx_packet *pkt = rxb_addr(rxb);
398 u16 sequence = le16_to_cpu(pkt->hdr.sequence);
399 int txq_id = SEQ_TO_QUEUE(sequence);
400 int index = SEQ_TO_INDEX(sequence);
401 struct iwl_tx_queue *txq = &priv->txq[txq_id];
402 struct ieee80211_tx_info *info;
403 struct iwlagn_tx_resp *tx_resp = (void *)&pkt->u.raw[0];
404 struct ieee80211_hdr *hdr;
405 struct iwl_tx_info *txb;
406 u32 status = le16_to_cpu(tx_resp->status.status);
407 int tid;
408 int sta_id;
409 int freed;
410 unsigned long flags;
412 if ((index >= txq->q.n_bd) || (iwl_queue_used(&txq->q, index) == 0)) {
413 IWL_ERR(priv, "%s: Read index for DMA queue txq_id (%d) "
414 "index %d is out of range [0-%d] %d %d\n", __func__,
415 txq_id, index, txq->q.n_bd, txq->q.write_ptr,
416 txq->q.read_ptr);
417 return;
420 txq->time_stamp = jiffies;
421 txb = &txq->txb[txq->q.read_ptr];
422 info = IEEE80211_SKB_CB(txb->skb);
423 memset(&info->status, 0, sizeof(info->status));
425 tid = (tx_resp->ra_tid & IWLAGN_TX_RES_TID_MSK) >>
426 IWLAGN_TX_RES_TID_POS;
427 sta_id = (tx_resp->ra_tid & IWLAGN_TX_RES_RA_MSK) >>
428 IWLAGN_TX_RES_RA_POS;
430 spin_lock_irqsave(&priv->shrd->sta_lock, flags);
432 hdr = (void *)txb->skb->data;
433 if (!ieee80211_is_data_qos(hdr->frame_control))
434 priv->last_seq_ctl = tx_resp->seq_ctl;
436 if (txq->sched_retry) {
437 const u32 scd_ssn = iwlagn_get_scd_ssn(tx_resp);
438 struct iwl_ht_agg *agg;
440 agg = &priv->stations[sta_id].tid[tid].agg;
442 * If the BT kill count is non-zero, we'll get this
443 * notification again.
445 if (tx_resp->bt_kill_count && tx_resp->frame_count == 1 &&
446 priv->cfg->bt_params &&
447 priv->cfg->bt_params->advanced_bt_coexist) {
448 IWL_DEBUG_COEX(priv, "receive reply tx with bt_kill\n");
450 iwlagn_tx_status_reply_tx(priv, agg, tx_resp, txq_id, index);
452 /* check if BAR is needed */
453 if ((tx_resp->frame_count == 1) && !iwl_is_tx_success(status))
454 info->flags |= IEEE80211_TX_STAT_AMPDU_NO_BACK;
456 if (txq->q.read_ptr != (scd_ssn & 0xff)) {
457 index = iwl_queue_dec_wrap(scd_ssn & 0xff, txq->q.n_bd);
458 IWL_DEBUG_TX_REPLY(priv, "Retry scheduler reclaim "
459 "scd_ssn=%d idx=%d txq=%d swq=%d\n",
460 scd_ssn , index, txq_id, txq->swq_id);
462 freed = iwlagn_tx_queue_reclaim(priv, txq_id, index);
463 iwl_free_tfds_in_queue(priv, sta_id, tid, freed);
465 if (priv->mac80211_registered &&
466 (iwl_queue_space(&txq->q) > txq->q.low_mark) &&
467 (agg->state != IWL_EMPTYING_HW_QUEUE_DELBA))
468 iwl_wake_queue(priv, txq);
470 } else {
471 iwlagn_set_tx_status(priv, info, txb->ctx, tx_resp,
472 txq_id, false);
473 freed = iwlagn_tx_queue_reclaim(priv, txq_id, index);
474 iwl_free_tfds_in_queue(priv, sta_id, tid, freed);
476 if (priv->mac80211_registered &&
477 iwl_queue_space(&txq->q) > txq->q.low_mark &&
478 status != TX_STATUS_FAIL_PASSIVE_NO_RX)
479 iwl_wake_queue(priv, txq);
482 iwlagn_txq_check_empty(priv, sta_id, tid, txq_id);
484 iwl_check_abort_status(priv, tx_resp->frame_count, status);
485 spin_unlock_irqrestore(&priv->shrd->sta_lock, flags);
488 int iwlagn_hw_valid_rtc_data_addr(u32 addr)
490 return (addr >= IWLAGN_RTC_DATA_LOWER_BOUND) &&
491 (addr < IWLAGN_RTC_DATA_UPPER_BOUND);
494 int iwlagn_send_tx_power(struct iwl_priv *priv)
496 struct iwlagn_tx_power_dbm_cmd tx_power_cmd;
497 u8 tx_ant_cfg_cmd;
499 if (WARN_ONCE(test_bit(STATUS_SCAN_HW, &priv->shrd->status),
500 "TX Power requested while scanning!\n"))
501 return -EAGAIN;
503 /* half dBm need to multiply */
504 tx_power_cmd.global_lmt = (s8)(2 * priv->tx_power_user_lmt);
506 if (priv->tx_power_lmt_in_half_dbm &&
507 priv->tx_power_lmt_in_half_dbm < tx_power_cmd.global_lmt) {
509 * For the newer devices which using enhanced/extend tx power
510 * table in EEPROM, the format is in half dBm. driver need to
511 * convert to dBm format before report to mac80211.
512 * By doing so, there is a possibility of 1/2 dBm resolution
513 * lost. driver will perform "round-up" operation before
514 * reporting, but it will cause 1/2 dBm tx power over the
515 * regulatory limit. Perform the checking here, if the
516 * "tx_power_user_lmt" is higher than EEPROM value (in
517 * half-dBm format), lower the tx power based on EEPROM
519 tx_power_cmd.global_lmt = priv->tx_power_lmt_in_half_dbm;
521 tx_power_cmd.flags = IWLAGN_TX_POWER_NO_CLOSED;
522 tx_power_cmd.srv_chan_lmt = IWLAGN_TX_POWER_AUTO;
524 if (IWL_UCODE_API(priv->ucode_ver) == 1)
525 tx_ant_cfg_cmd = REPLY_TX_POWER_DBM_CMD_V1;
526 else
527 tx_ant_cfg_cmd = REPLY_TX_POWER_DBM_CMD;
529 return iwl_trans_send_cmd_pdu(trans(priv), tx_ant_cfg_cmd, CMD_SYNC,
530 sizeof(tx_power_cmd), &tx_power_cmd);
533 void iwlagn_temperature(struct iwl_priv *priv)
535 /* store temperature from correct statistics (in Celsius) */
536 priv->temperature = le32_to_cpu(priv->statistics.common.temperature);
537 iwl_tt_handler(priv);
540 u16 iwlagn_eeprom_calib_version(struct iwl_priv *priv)
542 struct iwl_eeprom_calib_hdr {
543 u8 version;
544 u8 pa_type;
545 u16 voltage;
546 } *hdr;
548 hdr = (struct iwl_eeprom_calib_hdr *)iwl_eeprom_query_addr(priv,
549 EEPROM_CALIB_ALL);
550 return hdr->version;
555 * EEPROM
557 static u32 eeprom_indirect_address(const struct iwl_priv *priv, u32 address)
559 u16 offset = 0;
561 if ((address & INDIRECT_ADDRESS) == 0)
562 return address;
564 switch (address & INDIRECT_TYPE_MSK) {
565 case INDIRECT_HOST:
566 offset = iwl_eeprom_query16(priv, EEPROM_LINK_HOST);
567 break;
568 case INDIRECT_GENERAL:
569 offset = iwl_eeprom_query16(priv, EEPROM_LINK_GENERAL);
570 break;
571 case INDIRECT_REGULATORY:
572 offset = iwl_eeprom_query16(priv, EEPROM_LINK_REGULATORY);
573 break;
574 case INDIRECT_TXP_LIMIT:
575 offset = iwl_eeprom_query16(priv, EEPROM_LINK_TXP_LIMIT);
576 break;
577 case INDIRECT_TXP_LIMIT_SIZE:
578 offset = iwl_eeprom_query16(priv, EEPROM_LINK_TXP_LIMIT_SIZE);
579 break;
580 case INDIRECT_CALIBRATION:
581 offset = iwl_eeprom_query16(priv, EEPROM_LINK_CALIBRATION);
582 break;
583 case INDIRECT_PROCESS_ADJST:
584 offset = iwl_eeprom_query16(priv, EEPROM_LINK_PROCESS_ADJST);
585 break;
586 case INDIRECT_OTHERS:
587 offset = iwl_eeprom_query16(priv, EEPROM_LINK_OTHERS);
588 break;
589 default:
590 IWL_ERR(priv, "illegal indirect type: 0x%X\n",
591 address & INDIRECT_TYPE_MSK);
592 break;
595 /* translate the offset from words to byte */
596 return (address & ADDRESS_MSK) + (offset << 1);
599 const u8 *iwl_eeprom_query_addr(const struct iwl_priv *priv, size_t offset)
601 u32 address = eeprom_indirect_address(priv, offset);
602 BUG_ON(address >= priv->cfg->base_params->eeprom_size);
603 return &priv->eeprom[address];
606 struct iwl_mod_params iwlagn_mod_params = {
607 .amsdu_size_8K = 1,
608 .restart_fw = 1,
609 .plcp_check = true,
610 .bt_coex_active = true,
611 .no_sleep_autoadjust = true,
612 .power_level = IWL_POWER_INDEX_1,
613 .bt_ch_announce = 1,
614 .wanted_ucode_alternative = 1,
615 .auto_agg = true,
616 /* the rest are 0 by default */
619 int iwlagn_hwrate_to_mac80211_idx(u32 rate_n_flags, enum ieee80211_band band)
621 int idx = 0;
622 int band_offset = 0;
624 /* HT rate format: mac80211 wants an MCS number, which is just LSB */
625 if (rate_n_flags & RATE_MCS_HT_MSK) {
626 idx = (rate_n_flags & 0xff);
627 return idx;
628 /* Legacy rate format, search for match in table */
629 } else {
630 if (band == IEEE80211_BAND_5GHZ)
631 band_offset = IWL_FIRST_OFDM_RATE;
632 for (idx = band_offset; idx < IWL_RATE_COUNT_LEGACY; idx++)
633 if (iwl_rates[idx].plcp == (rate_n_flags & 0xFF))
634 return idx - band_offset;
637 return -1;
640 static int iwl_get_single_channel_for_scan(struct iwl_priv *priv,
641 struct ieee80211_vif *vif,
642 enum ieee80211_band band,
643 struct iwl_scan_channel *scan_ch)
645 const struct ieee80211_supported_band *sband;
646 u16 passive_dwell = 0;
647 u16 active_dwell = 0;
648 int added = 0;
649 u16 channel = 0;
651 sband = iwl_get_hw_mode(priv, band);
652 if (!sband) {
653 IWL_ERR(priv, "invalid band\n");
654 return added;
657 active_dwell = iwl_get_active_dwell_time(priv, band, 0);
658 passive_dwell = iwl_get_passive_dwell_time(priv, band, vif);
660 if (passive_dwell <= active_dwell)
661 passive_dwell = active_dwell + 1;
663 channel = iwl_get_single_channel_number(priv, band);
664 if (channel) {
665 scan_ch->channel = cpu_to_le16(channel);
666 scan_ch->type = SCAN_CHANNEL_TYPE_PASSIVE;
667 scan_ch->active_dwell = cpu_to_le16(active_dwell);
668 scan_ch->passive_dwell = cpu_to_le16(passive_dwell);
669 /* Set txpower levels to defaults */
670 scan_ch->dsp_atten = 110;
671 if (band == IEEE80211_BAND_5GHZ)
672 scan_ch->tx_gain = ((1 << 5) | (3 << 3)) | 3;
673 else
674 scan_ch->tx_gain = ((1 << 5) | (5 << 3));
675 added++;
676 } else
677 IWL_ERR(priv, "no valid channel found\n");
678 return added;
681 static int iwl_get_channels_for_scan(struct iwl_priv *priv,
682 struct ieee80211_vif *vif,
683 enum ieee80211_band band,
684 u8 is_active, u8 n_probes,
685 struct iwl_scan_channel *scan_ch)
687 struct ieee80211_channel *chan;
688 const struct ieee80211_supported_band *sband;
689 const struct iwl_channel_info *ch_info;
690 u16 passive_dwell = 0;
691 u16 active_dwell = 0;
692 int added, i;
693 u16 channel;
695 sband = iwl_get_hw_mode(priv, band);
696 if (!sband)
697 return 0;
699 active_dwell = iwl_get_active_dwell_time(priv, band, n_probes);
700 passive_dwell = iwl_get_passive_dwell_time(priv, band, vif);
702 if (passive_dwell <= active_dwell)
703 passive_dwell = active_dwell + 1;
705 for (i = 0, added = 0; i < priv->scan_request->n_channels; i++) {
706 chan = priv->scan_request->channels[i];
708 if (chan->band != band)
709 continue;
711 channel = chan->hw_value;
712 scan_ch->channel = cpu_to_le16(channel);
714 ch_info = iwl_get_channel_info(priv, band, channel);
715 if (!is_channel_valid(ch_info)) {
716 IWL_DEBUG_SCAN(priv, "Channel %d is INVALID for this band.\n",
717 channel);
718 continue;
721 if (!is_active || is_channel_passive(ch_info) ||
722 (chan->flags & IEEE80211_CHAN_PASSIVE_SCAN))
723 scan_ch->type = SCAN_CHANNEL_TYPE_PASSIVE;
724 else
725 scan_ch->type = SCAN_CHANNEL_TYPE_ACTIVE;
727 if (n_probes)
728 scan_ch->type |= IWL_SCAN_PROBE_MASK(n_probes);
730 scan_ch->active_dwell = cpu_to_le16(active_dwell);
731 scan_ch->passive_dwell = cpu_to_le16(passive_dwell);
733 /* Set txpower levels to defaults */
734 scan_ch->dsp_atten = 110;
736 /* NOTE: if we were doing 6Mb OFDM for scans we'd use
737 * power level:
738 * scan_ch->tx_gain = ((1 << 5) | (2 << 3)) | 3;
740 if (band == IEEE80211_BAND_5GHZ)
741 scan_ch->tx_gain = ((1 << 5) | (3 << 3)) | 3;
742 else
743 scan_ch->tx_gain = ((1 << 5) | (5 << 3));
745 IWL_DEBUG_SCAN(priv, "Scanning ch=%d prob=0x%X [%s %d]\n",
746 channel, le32_to_cpu(scan_ch->type),
747 (scan_ch->type & SCAN_CHANNEL_TYPE_ACTIVE) ?
748 "ACTIVE" : "PASSIVE",
749 (scan_ch->type & SCAN_CHANNEL_TYPE_ACTIVE) ?
750 active_dwell : passive_dwell);
752 scan_ch++;
753 added++;
756 IWL_DEBUG_SCAN(priv, "total channels to scan %d\n", added);
757 return added;
760 int iwlagn_request_scan(struct iwl_priv *priv, struct ieee80211_vif *vif)
762 struct iwl_host_cmd cmd = {
763 .id = REPLY_SCAN_CMD,
764 .len = { sizeof(struct iwl_scan_cmd), },
765 .flags = CMD_SYNC,
767 struct iwl_scan_cmd *scan;
768 struct iwl_rxon_context *ctx = &priv->contexts[IWL_RXON_CTX_BSS];
769 u32 rate_flags = 0;
770 u16 cmd_len;
771 u16 rx_chain = 0;
772 enum ieee80211_band band;
773 u8 n_probes = 0;
774 u8 rx_ant = hw_params(priv).valid_rx_ant;
775 u8 rate;
776 bool is_active = false;
777 int chan_mod;
778 u8 active_chains;
779 u8 scan_tx_antennas = hw_params(priv).valid_tx_ant;
780 int ret;
782 lockdep_assert_held(&priv->shrd->mutex);
784 if (vif)
785 ctx = iwl_rxon_ctx_from_vif(vif);
787 if (!priv->scan_cmd) {
788 priv->scan_cmd = kmalloc(sizeof(struct iwl_scan_cmd) +
789 IWL_MAX_SCAN_SIZE, GFP_KERNEL);
790 if (!priv->scan_cmd) {
791 IWL_DEBUG_SCAN(priv,
792 "fail to allocate memory for scan\n");
793 return -ENOMEM;
796 scan = priv->scan_cmd;
797 memset(scan, 0, sizeof(struct iwl_scan_cmd) + IWL_MAX_SCAN_SIZE);
799 scan->quiet_plcp_th = IWL_PLCP_QUIET_THRESH;
800 scan->quiet_time = IWL_ACTIVE_QUIET_TIME;
802 if (priv->scan_type != IWL_SCAN_ROC &&
803 iwl_is_any_associated(priv)) {
804 u16 interval = 0;
805 u32 extra;
806 u32 suspend_time = 100;
807 u32 scan_suspend_time = 100;
809 IWL_DEBUG_INFO(priv, "Scanning while associated...\n");
810 switch (priv->scan_type) {
811 case IWL_SCAN_ROC:
812 WARN_ON(1);
813 break;
814 case IWL_SCAN_RADIO_RESET:
815 interval = 0;
816 break;
817 case IWL_SCAN_NORMAL:
818 interval = vif->bss_conf.beacon_int;
819 break;
822 scan->suspend_time = 0;
823 scan->max_out_time = cpu_to_le32(200 * 1024);
824 if (!interval)
825 interval = suspend_time;
827 extra = (suspend_time / interval) << 22;
828 scan_suspend_time = (extra |
829 ((suspend_time % interval) * 1024));
830 scan->suspend_time = cpu_to_le32(scan_suspend_time);
831 IWL_DEBUG_SCAN(priv, "suspend_time 0x%X beacon interval %d\n",
832 scan_suspend_time, interval);
833 } else if (priv->scan_type == IWL_SCAN_ROC) {
834 scan->suspend_time = 0;
835 scan->max_out_time = 0;
836 scan->quiet_time = 0;
837 scan->quiet_plcp_th = 0;
840 switch (priv->scan_type) {
841 case IWL_SCAN_RADIO_RESET:
842 IWL_DEBUG_SCAN(priv, "Start internal passive scan.\n");
843 break;
844 case IWL_SCAN_NORMAL:
845 if (priv->scan_request->n_ssids) {
846 int i, p = 0;
847 IWL_DEBUG_SCAN(priv, "Kicking off active scan\n");
848 for (i = 0; i < priv->scan_request->n_ssids; i++) {
849 /* always does wildcard anyway */
850 if (!priv->scan_request->ssids[i].ssid_len)
851 continue;
852 scan->direct_scan[p].id = WLAN_EID_SSID;
853 scan->direct_scan[p].len =
854 priv->scan_request->ssids[i].ssid_len;
855 memcpy(scan->direct_scan[p].ssid,
856 priv->scan_request->ssids[i].ssid,
857 priv->scan_request->ssids[i].ssid_len);
858 n_probes++;
859 p++;
861 is_active = true;
862 } else
863 IWL_DEBUG_SCAN(priv, "Start passive scan.\n");
864 break;
865 case IWL_SCAN_ROC:
866 IWL_DEBUG_SCAN(priv, "Start ROC scan.\n");
867 break;
870 scan->tx_cmd.tx_flags = TX_CMD_FLG_SEQ_CTL_MSK;
871 scan->tx_cmd.sta_id = ctx->bcast_sta_id;
872 scan->tx_cmd.stop_time.life_time = TX_CMD_LIFE_TIME_INFINITE;
874 switch (priv->scan_band) {
875 case IEEE80211_BAND_2GHZ:
876 scan->flags = RXON_FLG_BAND_24G_MSK | RXON_FLG_AUTO_DETECT_MSK;
877 chan_mod = le32_to_cpu(
878 priv->contexts[IWL_RXON_CTX_BSS].active.flags &
879 RXON_FLG_CHANNEL_MODE_MSK)
880 >> RXON_FLG_CHANNEL_MODE_POS;
881 if (chan_mod == CHANNEL_MODE_PURE_40) {
882 rate = IWL_RATE_6M_PLCP;
883 } else {
884 rate = IWL_RATE_1M_PLCP;
885 rate_flags = RATE_MCS_CCK_MSK;
888 * Internal scans are passive, so we can indiscriminately set
889 * the BT ignore flag on 2.4 GHz since it applies to TX only.
891 if (priv->cfg->bt_params &&
892 priv->cfg->bt_params->advanced_bt_coexist)
893 scan->tx_cmd.tx_flags |= TX_CMD_FLG_IGNORE_BT;
894 break;
895 case IEEE80211_BAND_5GHZ:
896 rate = IWL_RATE_6M_PLCP;
897 break;
898 default:
899 IWL_WARN(priv, "Invalid scan band\n");
900 return -EIO;
904 * If active scanning is requested but a certain channel is
905 * marked passive, we can do active scanning if we detect
906 * transmissions.
908 * There is an issue with some firmware versions that triggers
909 * a sysassert on a "good CRC threshold" of zero (== disabled),
910 * on a radar channel even though this means that we should NOT
911 * send probes.
913 * The "good CRC threshold" is the number of frames that we
914 * need to receive during our dwell time on a channel before
915 * sending out probes -- setting this to a huge value will
916 * mean we never reach it, but at the same time work around
917 * the aforementioned issue. Thus use IWL_GOOD_CRC_TH_NEVER
918 * here instead of IWL_GOOD_CRC_TH_DISABLED.
920 * This was fixed in later versions along with some other
921 * scan changes, and the threshold behaves as a flag in those
922 * versions.
924 if (priv->new_scan_threshold_behaviour)
925 scan->good_CRC_th = is_active ? IWL_GOOD_CRC_TH_DEFAULT :
926 IWL_GOOD_CRC_TH_DISABLED;
927 else
928 scan->good_CRC_th = is_active ? IWL_GOOD_CRC_TH_DEFAULT :
929 IWL_GOOD_CRC_TH_NEVER;
931 band = priv->scan_band;
933 if (priv->cfg->scan_rx_antennas[band])
934 rx_ant = priv->cfg->scan_rx_antennas[band];
936 if (band == IEEE80211_BAND_2GHZ &&
937 priv->cfg->bt_params &&
938 priv->cfg->bt_params->advanced_bt_coexist) {
939 /* transmit 2.4 GHz probes only on first antenna */
940 scan_tx_antennas = first_antenna(scan_tx_antennas);
943 priv->scan_tx_ant[band] = iwl_toggle_tx_ant(priv, priv->scan_tx_ant[band],
944 scan_tx_antennas);
945 rate_flags |= iwl_ant_idx_to_flags(priv->scan_tx_ant[band]);
946 scan->tx_cmd.rate_n_flags = iwl_hw_set_rate_n_flags(rate, rate_flags);
948 /* In power save mode use one chain, otherwise use all chains */
949 if (test_bit(STATUS_POWER_PMI, &priv->shrd->status)) {
950 /* rx_ant has been set to all valid chains previously */
951 active_chains = rx_ant &
952 ((u8)(priv->chain_noise_data.active_chains));
953 if (!active_chains)
954 active_chains = rx_ant;
956 IWL_DEBUG_SCAN(priv, "chain_noise_data.active_chains: %u\n",
957 priv->chain_noise_data.active_chains);
959 rx_ant = first_antenna(active_chains);
961 if (priv->cfg->bt_params &&
962 priv->cfg->bt_params->advanced_bt_coexist &&
963 priv->bt_full_concurrent) {
964 /* operated as 1x1 in full concurrency mode */
965 rx_ant = first_antenna(rx_ant);
968 /* MIMO is not used here, but value is required */
969 rx_chain |=
970 hw_params(priv).valid_rx_ant << RXON_RX_CHAIN_VALID_POS;
971 rx_chain |= rx_ant << RXON_RX_CHAIN_FORCE_MIMO_SEL_POS;
972 rx_chain |= rx_ant << RXON_RX_CHAIN_FORCE_SEL_POS;
973 rx_chain |= 0x1 << RXON_RX_CHAIN_DRIVER_FORCE_POS;
974 scan->rx_chain = cpu_to_le16(rx_chain);
975 switch (priv->scan_type) {
976 case IWL_SCAN_NORMAL:
977 cmd_len = iwl_fill_probe_req(priv,
978 (struct ieee80211_mgmt *)scan->data,
979 vif->addr,
980 priv->scan_request->ie,
981 priv->scan_request->ie_len,
982 IWL_MAX_SCAN_SIZE - sizeof(*scan));
983 break;
984 case IWL_SCAN_RADIO_RESET:
985 case IWL_SCAN_ROC:
986 /* use bcast addr, will not be transmitted but must be valid */
987 cmd_len = iwl_fill_probe_req(priv,
988 (struct ieee80211_mgmt *)scan->data,
989 iwl_bcast_addr, NULL, 0,
990 IWL_MAX_SCAN_SIZE - sizeof(*scan));
991 break;
992 default:
993 BUG();
995 scan->tx_cmd.len = cpu_to_le16(cmd_len);
997 scan->filter_flags |= (RXON_FILTER_ACCEPT_GRP_MSK |
998 RXON_FILTER_BCON_AWARE_MSK);
1000 switch (priv->scan_type) {
1001 case IWL_SCAN_RADIO_RESET:
1002 scan->channel_count =
1003 iwl_get_single_channel_for_scan(priv, vif, band,
1004 (void *)&scan->data[cmd_len]);
1005 break;
1006 case IWL_SCAN_NORMAL:
1007 scan->channel_count =
1008 iwl_get_channels_for_scan(priv, vif, band,
1009 is_active, n_probes,
1010 (void *)&scan->data[cmd_len]);
1011 break;
1012 case IWL_SCAN_ROC: {
1013 struct iwl_scan_channel *scan_ch;
1015 scan->channel_count = 1;
1017 scan_ch = (void *)&scan->data[cmd_len];
1018 scan_ch->type = SCAN_CHANNEL_TYPE_PASSIVE;
1019 scan_ch->channel =
1020 cpu_to_le16(priv->hw_roc_channel->hw_value);
1021 scan_ch->active_dwell =
1022 scan_ch->passive_dwell =
1023 cpu_to_le16(priv->hw_roc_duration);
1025 /* Set txpower levels to defaults */
1026 scan_ch->dsp_atten = 110;
1028 /* NOTE: if we were doing 6Mb OFDM for scans we'd use
1029 * power level:
1030 * scan_ch->tx_gain = ((1 << 5) | (2 << 3)) | 3;
1032 if (priv->hw_roc_channel->band == IEEE80211_BAND_5GHZ)
1033 scan_ch->tx_gain = ((1 << 5) | (3 << 3)) | 3;
1034 else
1035 scan_ch->tx_gain = ((1 << 5) | (5 << 3));
1037 break;
1040 if (scan->channel_count == 0) {
1041 IWL_DEBUG_SCAN(priv, "channel count %d\n", scan->channel_count);
1042 return -EIO;
1045 cmd.len[0] += le16_to_cpu(scan->tx_cmd.len) +
1046 scan->channel_count * sizeof(struct iwl_scan_channel);
1047 cmd.data[0] = scan;
1048 cmd.dataflags[0] = IWL_HCMD_DFL_NOCOPY;
1049 scan->len = cpu_to_le16(cmd.len[0]);
1051 /* set scan bit here for PAN params */
1052 set_bit(STATUS_SCAN_HW, &priv->shrd->status);
1054 ret = iwlagn_set_pan_params(priv);
1055 if (ret)
1056 return ret;
1058 ret = iwl_trans_send_cmd(trans(priv), &cmd);
1059 if (ret) {
1060 clear_bit(STATUS_SCAN_HW, &priv->shrd->status);
1061 iwlagn_set_pan_params(priv);
1064 return ret;
1067 int iwlagn_manage_ibss_station(struct iwl_priv *priv,
1068 struct ieee80211_vif *vif, bool add)
1070 struct iwl_vif_priv *vif_priv = (void *)vif->drv_priv;
1072 if (add)
1073 return iwlagn_add_bssid_station(priv, vif_priv->ctx,
1074 vif->bss_conf.bssid,
1075 &vif_priv->ibss_bssid_sta_id);
1076 return iwl_remove_station(priv, vif_priv->ibss_bssid_sta_id,
1077 vif->bss_conf.bssid);
1080 void iwl_free_tfds_in_queue(struct iwl_priv *priv,
1081 int sta_id, int tid, int freed)
1083 lockdep_assert_held(&priv->shrd->sta_lock);
1085 if (priv->stations[sta_id].tid[tid].tfds_in_queue >= freed)
1086 priv->stations[sta_id].tid[tid].tfds_in_queue -= freed;
1087 else {
1088 IWL_DEBUG_TX(priv, "free more than tfds_in_queue (%u:%d)\n",
1089 priv->stations[sta_id].tid[tid].tfds_in_queue,
1090 freed);
1091 priv->stations[sta_id].tid[tid].tfds_in_queue = 0;
1095 #define IWL_FLUSH_WAIT_MS 2000
1097 int iwlagn_wait_tx_queue_empty(struct iwl_priv *priv)
1099 struct iwl_tx_queue *txq;
1100 struct iwl_queue *q;
1101 int cnt;
1102 unsigned long now = jiffies;
1103 int ret = 0;
1105 /* waiting for all the tx frames complete might take a while */
1106 for (cnt = 0; cnt < hw_params(priv).max_txq_num; cnt++) {
1107 if (cnt == priv->shrd->cmd_queue)
1108 continue;
1109 txq = &priv->txq[cnt];
1110 q = &txq->q;
1111 while (q->read_ptr != q->write_ptr && !time_after(jiffies,
1112 now + msecs_to_jiffies(IWL_FLUSH_WAIT_MS)))
1113 msleep(1);
1115 if (q->read_ptr != q->write_ptr) {
1116 IWL_ERR(priv, "fail to flush all tx fifo queues\n");
1117 ret = -ETIMEDOUT;
1118 break;
1121 return ret;
1124 #define IWL_TX_QUEUE_MSK 0xfffff
1127 * iwlagn_txfifo_flush: send REPLY_TXFIFO_FLUSH command to uCode
1129 * pre-requirements:
1130 * 1. acquire mutex before calling
1131 * 2. make sure rf is on and not in exit state
1133 int iwlagn_txfifo_flush(struct iwl_priv *priv, u16 flush_control)
1135 struct iwl_txfifo_flush_cmd flush_cmd;
1136 struct iwl_host_cmd cmd = {
1137 .id = REPLY_TXFIFO_FLUSH,
1138 .len = { sizeof(struct iwl_txfifo_flush_cmd), },
1139 .flags = CMD_SYNC,
1140 .data = { &flush_cmd, },
1143 might_sleep();
1145 memset(&flush_cmd, 0, sizeof(flush_cmd));
1146 if (flush_control & BIT(IWL_RXON_CTX_BSS))
1147 flush_cmd.fifo_control = IWL_SCD_VO_MSK | IWL_SCD_VI_MSK |
1148 IWL_SCD_BE_MSK | IWL_SCD_BK_MSK |
1149 IWL_SCD_MGMT_MSK;
1150 if ((flush_control & BIT(IWL_RXON_CTX_PAN)) &&
1151 (priv->valid_contexts != BIT(IWL_RXON_CTX_BSS)))
1152 flush_cmd.fifo_control |= IWL_PAN_SCD_VO_MSK |
1153 IWL_PAN_SCD_VI_MSK | IWL_PAN_SCD_BE_MSK |
1154 IWL_PAN_SCD_BK_MSK | IWL_PAN_SCD_MGMT_MSK |
1155 IWL_PAN_SCD_MULTICAST_MSK;
1157 if (priv->cfg->sku & EEPROM_SKU_CAP_11N_ENABLE)
1158 flush_cmd.fifo_control |= IWL_AGG_TX_QUEUE_MSK;
1160 IWL_DEBUG_INFO(priv, "fifo queue control: 0X%x\n",
1161 flush_cmd.fifo_control);
1162 flush_cmd.flush_control = cpu_to_le16(flush_control);
1164 return iwl_trans_send_cmd(trans(priv), &cmd);
1167 void iwlagn_dev_txfifo_flush(struct iwl_priv *priv, u16 flush_control)
1169 mutex_lock(&priv->shrd->mutex);
1170 ieee80211_stop_queues(priv->hw);
1171 if (iwlagn_txfifo_flush(priv, IWL_DROP_ALL)) {
1172 IWL_ERR(priv, "flush request fail\n");
1173 goto done;
1175 IWL_DEBUG_INFO(priv, "wait transmit/flush all frames\n");
1176 iwlagn_wait_tx_queue_empty(priv);
1177 done:
1178 ieee80211_wake_queues(priv->hw);
1179 mutex_unlock(&priv->shrd->mutex);
1183 * BT coex
1186 * Macros to access the lookup table.
1188 * The lookup table has 7 inputs: bt3_prio, bt3_txrx, bt_rf_act, wifi_req,
1189 * wifi_prio, wifi_txrx and wifi_sh_ant_req.
1191 * It has three outputs: WLAN_ACTIVE, WLAN_KILL and ANT_SWITCH
1193 * The format is that "registers" 8 through 11 contain the WLAN_ACTIVE bits
1194 * one after another in 32-bit registers, and "registers" 0 through 7 contain
1195 * the WLAN_KILL and ANT_SWITCH bits interleaved (in that order).
1197 * These macros encode that format.
1199 #define LUT_VALUE(bt3_prio, bt3_txrx, bt_rf_act, wifi_req, wifi_prio, \
1200 wifi_txrx, wifi_sh_ant_req) \
1201 (bt3_prio | (bt3_txrx << 1) | (bt_rf_act << 2) | (wifi_req << 3) | \
1202 (wifi_prio << 4) | (wifi_txrx << 5) | (wifi_sh_ant_req << 6))
1204 #define LUT_PTA_WLAN_ACTIVE_OP(lut, op, val) \
1205 lut[8 + ((val) >> 5)] op (cpu_to_le32(BIT((val) & 0x1f)))
1206 #define LUT_TEST_PTA_WLAN_ACTIVE(lut, bt3_prio, bt3_txrx, bt_rf_act, wifi_req, \
1207 wifi_prio, wifi_txrx, wifi_sh_ant_req) \
1208 (!!(LUT_PTA_WLAN_ACTIVE_OP(lut, &, LUT_VALUE(bt3_prio, bt3_txrx, \
1209 bt_rf_act, wifi_req, wifi_prio, wifi_txrx, \
1210 wifi_sh_ant_req))))
1211 #define LUT_SET_PTA_WLAN_ACTIVE(lut, bt3_prio, bt3_txrx, bt_rf_act, wifi_req, \
1212 wifi_prio, wifi_txrx, wifi_sh_ant_req) \
1213 LUT_PTA_WLAN_ACTIVE_OP(lut, |=, LUT_VALUE(bt3_prio, bt3_txrx, \
1214 bt_rf_act, wifi_req, wifi_prio, wifi_txrx, \
1215 wifi_sh_ant_req))
1216 #define LUT_CLEAR_PTA_WLAN_ACTIVE(lut, bt3_prio, bt3_txrx, bt_rf_act, \
1217 wifi_req, wifi_prio, wifi_txrx, \
1218 wifi_sh_ant_req) \
1219 LUT_PTA_WLAN_ACTIVE_OP(lut, &= ~, LUT_VALUE(bt3_prio, bt3_txrx, \
1220 bt_rf_act, wifi_req, wifi_prio, wifi_txrx, \
1221 wifi_sh_ant_req))
1223 #define LUT_WLAN_KILL_OP(lut, op, val) \
1224 lut[(val) >> 4] op (cpu_to_le32(BIT(((val) << 1) & 0x1e)))
1225 #define LUT_TEST_WLAN_KILL(lut, bt3_prio, bt3_txrx, bt_rf_act, wifi_req, \
1226 wifi_prio, wifi_txrx, wifi_sh_ant_req) \
1227 (!!(LUT_WLAN_KILL_OP(lut, &, LUT_VALUE(bt3_prio, bt3_txrx, bt_rf_act, \
1228 wifi_req, wifi_prio, wifi_txrx, wifi_sh_ant_req))))
1229 #define LUT_SET_WLAN_KILL(lut, bt3_prio, bt3_txrx, bt_rf_act, wifi_req, \
1230 wifi_prio, wifi_txrx, wifi_sh_ant_req) \
1231 LUT_WLAN_KILL_OP(lut, |=, LUT_VALUE(bt3_prio, bt3_txrx, bt_rf_act, \
1232 wifi_req, wifi_prio, wifi_txrx, wifi_sh_ant_req))
1233 #define LUT_CLEAR_WLAN_KILL(lut, bt3_prio, bt3_txrx, bt_rf_act, wifi_req, \
1234 wifi_prio, wifi_txrx, wifi_sh_ant_req) \
1235 LUT_WLAN_KILL_OP(lut, &= ~, LUT_VALUE(bt3_prio, bt3_txrx, bt_rf_act, \
1236 wifi_req, wifi_prio, wifi_txrx, wifi_sh_ant_req))
1238 #define LUT_ANT_SWITCH_OP(lut, op, val) \
1239 lut[(val) >> 4] op (cpu_to_le32(BIT((((val) << 1) & 0x1e) + 1)))
1240 #define LUT_TEST_ANT_SWITCH(lut, bt3_prio, bt3_txrx, bt_rf_act, wifi_req, \
1241 wifi_prio, wifi_txrx, wifi_sh_ant_req) \
1242 (!!(LUT_ANT_SWITCH_OP(lut, &, LUT_VALUE(bt3_prio, bt3_txrx, bt_rf_act, \
1243 wifi_req, wifi_prio, wifi_txrx, \
1244 wifi_sh_ant_req))))
1245 #define LUT_SET_ANT_SWITCH(lut, bt3_prio, bt3_txrx, bt_rf_act, wifi_req, \
1246 wifi_prio, wifi_txrx, wifi_sh_ant_req) \
1247 LUT_ANT_SWITCH_OP(lut, |=, LUT_VALUE(bt3_prio, bt3_txrx, bt_rf_act, \
1248 wifi_req, wifi_prio, wifi_txrx, wifi_sh_ant_req))
1249 #define LUT_CLEAR_ANT_SWITCH(lut, bt3_prio, bt3_txrx, bt_rf_act, wifi_req, \
1250 wifi_prio, wifi_txrx, wifi_sh_ant_req) \
1251 LUT_ANT_SWITCH_OP(lut, &= ~, LUT_VALUE(bt3_prio, bt3_txrx, bt_rf_act, \
1252 wifi_req, wifi_prio, wifi_txrx, wifi_sh_ant_req))
1254 static const __le32 iwlagn_def_3w_lookup[12] = {
1255 cpu_to_le32(0xaaaaaaaa),
1256 cpu_to_le32(0xaaaaaaaa),
1257 cpu_to_le32(0xaeaaaaaa),
1258 cpu_to_le32(0xaaaaaaaa),
1259 cpu_to_le32(0xcc00ff28),
1260 cpu_to_le32(0x0000aaaa),
1261 cpu_to_le32(0xcc00aaaa),
1262 cpu_to_le32(0x0000aaaa),
1263 cpu_to_le32(0xc0004000),
1264 cpu_to_le32(0x00004000),
1265 cpu_to_le32(0xf0005000),
1266 cpu_to_le32(0xf0005000),
1269 static const __le32 iwlagn_concurrent_lookup[12] = {
1270 cpu_to_le32(0xaaaaaaaa),
1271 cpu_to_le32(0xaaaaaaaa),
1272 cpu_to_le32(0xaaaaaaaa),
1273 cpu_to_le32(0xaaaaaaaa),
1274 cpu_to_le32(0xaaaaaaaa),
1275 cpu_to_le32(0xaaaaaaaa),
1276 cpu_to_le32(0xaaaaaaaa),
1277 cpu_to_le32(0xaaaaaaaa),
1278 cpu_to_le32(0x00000000),
1279 cpu_to_le32(0x00000000),
1280 cpu_to_le32(0x00000000),
1281 cpu_to_le32(0x00000000),
1284 void iwlagn_send_advance_bt_config(struct iwl_priv *priv)
1286 struct iwl_basic_bt_cmd basic = {
1287 .max_kill = IWLAGN_BT_MAX_KILL_DEFAULT,
1288 .bt3_timer_t7_value = IWLAGN_BT3_T7_DEFAULT,
1289 .bt3_prio_sample_time = IWLAGN_BT3_PRIO_SAMPLE_DEFAULT,
1290 .bt3_timer_t2_value = IWLAGN_BT3_T2_DEFAULT,
1292 struct iwl6000_bt_cmd bt_cmd_6000;
1293 struct iwl2000_bt_cmd bt_cmd_2000;
1294 int ret;
1296 BUILD_BUG_ON(sizeof(iwlagn_def_3w_lookup) !=
1297 sizeof(basic.bt3_lookup_table));
1299 if (priv->cfg->bt_params) {
1300 if (priv->cfg->bt_params->bt_session_2) {
1301 bt_cmd_2000.prio_boost = cpu_to_le32(
1302 priv->cfg->bt_params->bt_prio_boost);
1303 bt_cmd_2000.tx_prio_boost = 0;
1304 bt_cmd_2000.rx_prio_boost = 0;
1305 } else {
1306 bt_cmd_6000.prio_boost =
1307 priv->cfg->bt_params->bt_prio_boost;
1308 bt_cmd_6000.tx_prio_boost = 0;
1309 bt_cmd_6000.rx_prio_boost = 0;
1311 } else {
1312 IWL_ERR(priv, "failed to construct BT Coex Config\n");
1313 return;
1316 basic.kill_ack_mask = priv->kill_ack_mask;
1317 basic.kill_cts_mask = priv->kill_cts_mask;
1318 basic.valid = priv->bt_valid;
1321 * Configure BT coex mode to "no coexistence" when the
1322 * user disabled BT coexistence, we have no interface
1323 * (might be in monitor mode), or the interface is in
1324 * IBSS mode (no proper uCode support for coex then).
1326 if (!iwlagn_mod_params.bt_coex_active ||
1327 priv->iw_mode == NL80211_IFTYPE_ADHOC) {
1328 basic.flags = IWLAGN_BT_FLAG_COEX_MODE_DISABLED;
1329 } else {
1330 basic.flags = IWLAGN_BT_FLAG_COEX_MODE_3W <<
1331 IWLAGN_BT_FLAG_COEX_MODE_SHIFT;
1333 if (!priv->bt_enable_pspoll)
1334 basic.flags |= IWLAGN_BT_FLAG_SYNC_2_BT_DISABLE;
1335 else
1336 basic.flags &= ~IWLAGN_BT_FLAG_SYNC_2_BT_DISABLE;
1338 if (priv->bt_ch_announce)
1339 basic.flags |= IWLAGN_BT_FLAG_CHANNEL_INHIBITION;
1340 IWL_DEBUG_COEX(priv, "BT coex flag: 0X%x\n", basic.flags);
1342 priv->bt_enable_flag = basic.flags;
1343 if (priv->bt_full_concurrent)
1344 memcpy(basic.bt3_lookup_table, iwlagn_concurrent_lookup,
1345 sizeof(iwlagn_concurrent_lookup));
1346 else
1347 memcpy(basic.bt3_lookup_table, iwlagn_def_3w_lookup,
1348 sizeof(iwlagn_def_3w_lookup));
1350 IWL_DEBUG_COEX(priv, "BT coex %s in %s mode\n",
1351 basic.flags ? "active" : "disabled",
1352 priv->bt_full_concurrent ?
1353 "full concurrency" : "3-wire");
1355 if (priv->cfg->bt_params->bt_session_2) {
1356 memcpy(&bt_cmd_2000.basic, &basic,
1357 sizeof(basic));
1358 ret = iwl_trans_send_cmd_pdu(trans(priv), REPLY_BT_CONFIG,
1359 CMD_SYNC, sizeof(bt_cmd_2000), &bt_cmd_2000);
1360 } else {
1361 memcpy(&bt_cmd_6000.basic, &basic,
1362 sizeof(basic));
1363 ret = iwl_trans_send_cmd_pdu(trans(priv), REPLY_BT_CONFIG,
1364 CMD_SYNC, sizeof(bt_cmd_6000), &bt_cmd_6000);
1366 if (ret)
1367 IWL_ERR(priv, "failed to send BT Coex Config\n");
1371 void iwlagn_bt_adjust_rssi_monitor(struct iwl_priv *priv, bool rssi_ena)
1373 struct iwl_rxon_context *ctx, *found_ctx = NULL;
1374 bool found_ap = false;
1376 lockdep_assert_held(&priv->shrd->mutex);
1378 /* Check whether AP or GO mode is active. */
1379 if (rssi_ena) {
1380 for_each_context(priv, ctx) {
1381 if (ctx->vif && ctx->vif->type == NL80211_IFTYPE_AP &&
1382 iwl_is_associated_ctx(ctx)) {
1383 found_ap = true;
1384 break;
1390 * If disable was received or If GO/AP mode, disable RSSI
1391 * measurements.
1393 if (!rssi_ena || found_ap) {
1394 if (priv->cur_rssi_ctx) {
1395 ctx = priv->cur_rssi_ctx;
1396 ieee80211_disable_rssi_reports(ctx->vif);
1397 priv->cur_rssi_ctx = NULL;
1399 return;
1403 * If rssi measurements need to be enabled, consider all cases now.
1404 * Figure out how many contexts are active.
1406 for_each_context(priv, ctx) {
1407 if (ctx->vif && ctx->vif->type == NL80211_IFTYPE_STATION &&
1408 iwl_is_associated_ctx(ctx)) {
1409 found_ctx = ctx;
1410 break;
1415 * rssi monitor already enabled for the correct interface...nothing
1416 * to do.
1418 if (found_ctx == priv->cur_rssi_ctx)
1419 return;
1422 * Figure out if rssi monitor is currently enabled, and needs
1423 * to be changed. If rssi monitor is already enabled, disable
1424 * it first else just enable rssi measurements on the
1425 * interface found above.
1427 if (priv->cur_rssi_ctx) {
1428 ctx = priv->cur_rssi_ctx;
1429 if (ctx->vif)
1430 ieee80211_disable_rssi_reports(ctx->vif);
1433 priv->cur_rssi_ctx = found_ctx;
1435 if (!found_ctx)
1436 return;
1438 ieee80211_enable_rssi_reports(found_ctx->vif,
1439 IWLAGN_BT_PSP_MIN_RSSI_THRESHOLD,
1440 IWLAGN_BT_PSP_MAX_RSSI_THRESHOLD);
1443 static bool iwlagn_bt_traffic_is_sco(struct iwl_bt_uart_msg *uart_msg)
1445 return BT_UART_MSG_FRAME3SCOESCO_MSK & uart_msg->frame3 >>
1446 BT_UART_MSG_FRAME3SCOESCO_POS;
1449 static void iwlagn_bt_traffic_change_work(struct work_struct *work)
1451 struct iwl_priv *priv =
1452 container_of(work, struct iwl_priv, bt_traffic_change_work);
1453 struct iwl_rxon_context *ctx;
1454 int smps_request = -1;
1456 if (priv->bt_enable_flag == IWLAGN_BT_FLAG_COEX_MODE_DISABLED) {
1457 /* bt coex disabled */
1458 return;
1462 * Note: bt_traffic_load can be overridden by scan complete and
1463 * coex profile notifications. Ignore that since only bad consequence
1464 * can be not matching debug print with actual state.
1466 IWL_DEBUG_COEX(priv, "BT traffic load changes: %d\n",
1467 priv->bt_traffic_load);
1469 switch (priv->bt_traffic_load) {
1470 case IWL_BT_COEX_TRAFFIC_LOAD_NONE:
1471 if (priv->bt_status)
1472 smps_request = IEEE80211_SMPS_DYNAMIC;
1473 else
1474 smps_request = IEEE80211_SMPS_AUTOMATIC;
1475 break;
1476 case IWL_BT_COEX_TRAFFIC_LOAD_LOW:
1477 smps_request = IEEE80211_SMPS_DYNAMIC;
1478 break;
1479 case IWL_BT_COEX_TRAFFIC_LOAD_HIGH:
1480 case IWL_BT_COEX_TRAFFIC_LOAD_CONTINUOUS:
1481 smps_request = IEEE80211_SMPS_STATIC;
1482 break;
1483 default:
1484 IWL_ERR(priv, "Invalid BT traffic load: %d\n",
1485 priv->bt_traffic_load);
1486 break;
1489 mutex_lock(&priv->shrd->mutex);
1492 * We can not send command to firmware while scanning. When the scan
1493 * complete we will schedule this work again. We do check with mutex
1494 * locked to prevent new scan request to arrive. We do not check
1495 * STATUS_SCANNING to avoid race when queue_work two times from
1496 * different notifications, but quit and not perform any work at all.
1498 if (test_bit(STATUS_SCAN_HW, &priv->shrd->status))
1499 goto out;
1501 iwl_update_chain_flags(priv);
1503 if (smps_request != -1) {
1504 priv->current_ht_config.smps = smps_request;
1505 for_each_context(priv, ctx) {
1506 if (ctx->vif && ctx->vif->type == NL80211_IFTYPE_STATION)
1507 ieee80211_request_smps(ctx->vif, smps_request);
1512 * Dynamic PS poll related functionality. Adjust RSSI measurements if
1513 * necessary.
1515 iwlagn_bt_coex_rssi_monitor(priv);
1516 out:
1517 mutex_unlock(&priv->shrd->mutex);
1521 * If BT sco traffic, and RSSI monitor is enabled, move measurements to the
1522 * correct interface or disable it if this is the last interface to be
1523 * removed.
1525 void iwlagn_bt_coex_rssi_monitor(struct iwl_priv *priv)
1527 if (priv->bt_is_sco &&
1528 priv->bt_traffic_load == IWL_BT_COEX_TRAFFIC_LOAD_CONTINUOUS)
1529 iwlagn_bt_adjust_rssi_monitor(priv, true);
1530 else
1531 iwlagn_bt_adjust_rssi_monitor(priv, false);
1534 static void iwlagn_print_uartmsg(struct iwl_priv *priv,
1535 struct iwl_bt_uart_msg *uart_msg)
1537 IWL_DEBUG_COEX(priv, "Message Type = 0x%X, SSN = 0x%X, "
1538 "Update Req = 0x%X",
1539 (BT_UART_MSG_FRAME1MSGTYPE_MSK & uart_msg->frame1) >>
1540 BT_UART_MSG_FRAME1MSGTYPE_POS,
1541 (BT_UART_MSG_FRAME1SSN_MSK & uart_msg->frame1) >>
1542 BT_UART_MSG_FRAME1SSN_POS,
1543 (BT_UART_MSG_FRAME1UPDATEREQ_MSK & uart_msg->frame1) >>
1544 BT_UART_MSG_FRAME1UPDATEREQ_POS);
1546 IWL_DEBUG_COEX(priv, "Open connections = 0x%X, Traffic load = 0x%X, "
1547 "Chl_SeqN = 0x%X, In band = 0x%X",
1548 (BT_UART_MSG_FRAME2OPENCONNECTIONS_MSK & uart_msg->frame2) >>
1549 BT_UART_MSG_FRAME2OPENCONNECTIONS_POS,
1550 (BT_UART_MSG_FRAME2TRAFFICLOAD_MSK & uart_msg->frame2) >>
1551 BT_UART_MSG_FRAME2TRAFFICLOAD_POS,
1552 (BT_UART_MSG_FRAME2CHLSEQN_MSK & uart_msg->frame2) >>
1553 BT_UART_MSG_FRAME2CHLSEQN_POS,
1554 (BT_UART_MSG_FRAME2INBAND_MSK & uart_msg->frame2) >>
1555 BT_UART_MSG_FRAME2INBAND_POS);
1557 IWL_DEBUG_COEX(priv, "SCO/eSCO = 0x%X, Sniff = 0x%X, A2DP = 0x%X, "
1558 "ACL = 0x%X, Master = 0x%X, OBEX = 0x%X",
1559 (BT_UART_MSG_FRAME3SCOESCO_MSK & uart_msg->frame3) >>
1560 BT_UART_MSG_FRAME3SCOESCO_POS,
1561 (BT_UART_MSG_FRAME3SNIFF_MSK & uart_msg->frame3) >>
1562 BT_UART_MSG_FRAME3SNIFF_POS,
1563 (BT_UART_MSG_FRAME3A2DP_MSK & uart_msg->frame3) >>
1564 BT_UART_MSG_FRAME3A2DP_POS,
1565 (BT_UART_MSG_FRAME3ACL_MSK & uart_msg->frame3) >>
1566 BT_UART_MSG_FRAME3ACL_POS,
1567 (BT_UART_MSG_FRAME3MASTER_MSK & uart_msg->frame3) >>
1568 BT_UART_MSG_FRAME3MASTER_POS,
1569 (BT_UART_MSG_FRAME3OBEX_MSK & uart_msg->frame3) >>
1570 BT_UART_MSG_FRAME3OBEX_POS);
1572 IWL_DEBUG_COEX(priv, "Idle duration = 0x%X",
1573 (BT_UART_MSG_FRAME4IDLEDURATION_MSK & uart_msg->frame4) >>
1574 BT_UART_MSG_FRAME4IDLEDURATION_POS);
1576 IWL_DEBUG_COEX(priv, "Tx Activity = 0x%X, Rx Activity = 0x%X, "
1577 "eSCO Retransmissions = 0x%X",
1578 (BT_UART_MSG_FRAME5TXACTIVITY_MSK & uart_msg->frame5) >>
1579 BT_UART_MSG_FRAME5TXACTIVITY_POS,
1580 (BT_UART_MSG_FRAME5RXACTIVITY_MSK & uart_msg->frame5) >>
1581 BT_UART_MSG_FRAME5RXACTIVITY_POS,
1582 (BT_UART_MSG_FRAME5ESCORETRANSMIT_MSK & uart_msg->frame5) >>
1583 BT_UART_MSG_FRAME5ESCORETRANSMIT_POS);
1585 IWL_DEBUG_COEX(priv, "Sniff Interval = 0x%X, Discoverable = 0x%X",
1586 (BT_UART_MSG_FRAME6SNIFFINTERVAL_MSK & uart_msg->frame6) >>
1587 BT_UART_MSG_FRAME6SNIFFINTERVAL_POS,
1588 (BT_UART_MSG_FRAME6DISCOVERABLE_MSK & uart_msg->frame6) >>
1589 BT_UART_MSG_FRAME6DISCOVERABLE_POS);
1591 IWL_DEBUG_COEX(priv, "Sniff Activity = 0x%X, Page = "
1592 "0x%X, Inquiry = 0x%X, Connectable = 0x%X",
1593 (BT_UART_MSG_FRAME7SNIFFACTIVITY_MSK & uart_msg->frame7) >>
1594 BT_UART_MSG_FRAME7SNIFFACTIVITY_POS,
1595 (BT_UART_MSG_FRAME7PAGE_MSK & uart_msg->frame7) >>
1596 BT_UART_MSG_FRAME7PAGE_POS,
1597 (BT_UART_MSG_FRAME7INQUIRY_MSK & uart_msg->frame7) >>
1598 BT_UART_MSG_FRAME7INQUIRY_POS,
1599 (BT_UART_MSG_FRAME7CONNECTABLE_MSK & uart_msg->frame7) >>
1600 BT_UART_MSG_FRAME7CONNECTABLE_POS);
1603 static void iwlagn_set_kill_msk(struct iwl_priv *priv,
1604 struct iwl_bt_uart_msg *uart_msg)
1606 u8 kill_msk;
1607 static const __le32 bt_kill_ack_msg[2] = {
1608 IWLAGN_BT_KILL_ACK_MASK_DEFAULT,
1609 IWLAGN_BT_KILL_ACK_CTS_MASK_SCO };
1610 static const __le32 bt_kill_cts_msg[2] = {
1611 IWLAGN_BT_KILL_CTS_MASK_DEFAULT,
1612 IWLAGN_BT_KILL_ACK_CTS_MASK_SCO };
1614 kill_msk = (BT_UART_MSG_FRAME3SCOESCO_MSK & uart_msg->frame3)
1615 ? 1 : 0;
1616 if (priv->kill_ack_mask != bt_kill_ack_msg[kill_msk] ||
1617 priv->kill_cts_mask != bt_kill_cts_msg[kill_msk]) {
1618 priv->bt_valid |= IWLAGN_BT_VALID_KILL_ACK_MASK;
1619 priv->kill_ack_mask = bt_kill_ack_msg[kill_msk];
1620 priv->bt_valid |= IWLAGN_BT_VALID_KILL_CTS_MASK;
1621 priv->kill_cts_mask = bt_kill_cts_msg[kill_msk];
1623 /* schedule to send runtime bt_config */
1624 queue_work(priv->shrd->workqueue, &priv->bt_runtime_config);
1628 void iwlagn_bt_coex_profile_notif(struct iwl_priv *priv,
1629 struct iwl_rx_mem_buffer *rxb)
1631 unsigned long flags;
1632 struct iwl_rx_packet *pkt = rxb_addr(rxb);
1633 struct iwl_bt_coex_profile_notif *coex = &pkt->u.bt_coex_profile_notif;
1634 struct iwl_bt_uart_msg *uart_msg = &coex->last_bt_uart_msg;
1636 if (priv->bt_enable_flag == IWLAGN_BT_FLAG_COEX_MODE_DISABLED) {
1637 /* bt coex disabled */
1638 return;
1641 IWL_DEBUG_COEX(priv, "BT Coex notification:\n");
1642 IWL_DEBUG_COEX(priv, " status: %d\n", coex->bt_status);
1643 IWL_DEBUG_COEX(priv, " traffic load: %d\n", coex->bt_traffic_load);
1644 IWL_DEBUG_COEX(priv, " CI compliance: %d\n",
1645 coex->bt_ci_compliance);
1646 iwlagn_print_uartmsg(priv, uart_msg);
1648 priv->last_bt_traffic_load = priv->bt_traffic_load;
1649 priv->bt_is_sco = iwlagn_bt_traffic_is_sco(uart_msg);
1651 if (priv->iw_mode != NL80211_IFTYPE_ADHOC) {
1652 if (priv->bt_status != coex->bt_status ||
1653 priv->last_bt_traffic_load != coex->bt_traffic_load) {
1654 if (coex->bt_status) {
1655 /* BT on */
1656 if (!priv->bt_ch_announce)
1657 priv->bt_traffic_load =
1658 IWL_BT_COEX_TRAFFIC_LOAD_HIGH;
1659 else
1660 priv->bt_traffic_load =
1661 coex->bt_traffic_load;
1662 } else {
1663 /* BT off */
1664 priv->bt_traffic_load =
1665 IWL_BT_COEX_TRAFFIC_LOAD_NONE;
1667 priv->bt_status = coex->bt_status;
1668 queue_work(priv->shrd->workqueue,
1669 &priv->bt_traffic_change_work);
1673 iwlagn_set_kill_msk(priv, uart_msg);
1675 /* FIXME: based on notification, adjust the prio_boost */
1677 spin_lock_irqsave(&priv->shrd->lock, flags);
1678 priv->bt_ci_compliance = coex->bt_ci_compliance;
1679 spin_unlock_irqrestore(&priv->shrd->lock, flags);
1682 void iwlagn_bt_rx_handler_setup(struct iwl_priv *priv)
1684 priv->rx_handlers[REPLY_BT_COEX_PROFILE_NOTIF] =
1685 iwlagn_bt_coex_profile_notif;
1688 void iwlagn_bt_setup_deferred_work(struct iwl_priv *priv)
1690 INIT_WORK(&priv->bt_traffic_change_work,
1691 iwlagn_bt_traffic_change_work);
1694 void iwlagn_bt_cancel_deferred_work(struct iwl_priv *priv)
1696 cancel_work_sync(&priv->bt_traffic_change_work);
1699 static bool is_single_rx_stream(struct iwl_priv *priv)
1701 return priv->current_ht_config.smps == IEEE80211_SMPS_STATIC ||
1702 priv->current_ht_config.single_chain_sufficient;
1705 #define IWL_NUM_RX_CHAINS_MULTIPLE 3
1706 #define IWL_NUM_RX_CHAINS_SINGLE 2
1707 #define IWL_NUM_IDLE_CHAINS_DUAL 2
1708 #define IWL_NUM_IDLE_CHAINS_SINGLE 1
1711 * Determine how many receiver/antenna chains to use.
1713 * More provides better reception via diversity. Fewer saves power
1714 * at the expense of throughput, but only when not in powersave to
1715 * start with.
1717 * MIMO (dual stream) requires at least 2, but works better with 3.
1718 * This does not determine *which* chains to use, just how many.
1720 static int iwl_get_active_rx_chain_count(struct iwl_priv *priv)
1722 if (priv->cfg->bt_params &&
1723 priv->cfg->bt_params->advanced_bt_coexist &&
1724 (priv->bt_full_concurrent ||
1725 priv->bt_traffic_load >= IWL_BT_COEX_TRAFFIC_LOAD_HIGH)) {
1727 * only use chain 'A' in bt high traffic load or
1728 * full concurrency mode
1730 return IWL_NUM_RX_CHAINS_SINGLE;
1732 /* # of Rx chains to use when expecting MIMO. */
1733 if (is_single_rx_stream(priv))
1734 return IWL_NUM_RX_CHAINS_SINGLE;
1735 else
1736 return IWL_NUM_RX_CHAINS_MULTIPLE;
1740 * When we are in power saving mode, unless device support spatial
1741 * multiplexing power save, use the active count for rx chain count.
1743 static int iwl_get_idle_rx_chain_count(struct iwl_priv *priv, int active_cnt)
1745 /* # Rx chains when idling, depending on SMPS mode */
1746 switch (priv->current_ht_config.smps) {
1747 case IEEE80211_SMPS_STATIC:
1748 case IEEE80211_SMPS_DYNAMIC:
1749 return IWL_NUM_IDLE_CHAINS_SINGLE;
1750 case IEEE80211_SMPS_OFF:
1751 return active_cnt;
1752 default:
1753 WARN(1, "invalid SMPS mode %d",
1754 priv->current_ht_config.smps);
1755 return active_cnt;
1759 /* up to 4 chains */
1760 static u8 iwl_count_chain_bitmap(u32 chain_bitmap)
1762 u8 res;
1763 res = (chain_bitmap & BIT(0)) >> 0;
1764 res += (chain_bitmap & BIT(1)) >> 1;
1765 res += (chain_bitmap & BIT(2)) >> 2;
1766 res += (chain_bitmap & BIT(3)) >> 3;
1767 return res;
1771 * iwlagn_set_rxon_chain - Set up Rx chain usage in "staging" RXON image
1773 * Selects how many and which Rx receivers/antennas/chains to use.
1774 * This should not be used for scan command ... it puts data in wrong place.
1776 void iwlagn_set_rxon_chain(struct iwl_priv *priv, struct iwl_rxon_context *ctx)
1778 bool is_single = is_single_rx_stream(priv);
1779 bool is_cam = !test_bit(STATUS_POWER_PMI, &priv->shrd->status);
1780 u8 idle_rx_cnt, active_rx_cnt, valid_rx_cnt;
1781 u32 active_chains;
1782 u16 rx_chain;
1784 /* Tell uCode which antennas are actually connected.
1785 * Before first association, we assume all antennas are connected.
1786 * Just after first association, iwl_chain_noise_calibration()
1787 * checks which antennas actually *are* connected. */
1788 if (priv->chain_noise_data.active_chains)
1789 active_chains = priv->chain_noise_data.active_chains;
1790 else
1791 active_chains = hw_params(priv).valid_rx_ant;
1793 if (priv->cfg->bt_params &&
1794 priv->cfg->bt_params->advanced_bt_coexist &&
1795 (priv->bt_full_concurrent ||
1796 priv->bt_traffic_load >= IWL_BT_COEX_TRAFFIC_LOAD_HIGH)) {
1798 * only use chain 'A' in bt high traffic load or
1799 * full concurrency mode
1801 active_chains = first_antenna(active_chains);
1804 rx_chain = active_chains << RXON_RX_CHAIN_VALID_POS;
1806 /* How many receivers should we use? */
1807 active_rx_cnt = iwl_get_active_rx_chain_count(priv);
1808 idle_rx_cnt = iwl_get_idle_rx_chain_count(priv, active_rx_cnt);
1811 /* correct rx chain count according hw settings
1812 * and chain noise calibration
1814 valid_rx_cnt = iwl_count_chain_bitmap(active_chains);
1815 if (valid_rx_cnt < active_rx_cnt)
1816 active_rx_cnt = valid_rx_cnt;
1818 if (valid_rx_cnt < idle_rx_cnt)
1819 idle_rx_cnt = valid_rx_cnt;
1821 rx_chain |= active_rx_cnt << RXON_RX_CHAIN_MIMO_CNT_POS;
1822 rx_chain |= idle_rx_cnt << RXON_RX_CHAIN_CNT_POS;
1824 ctx->staging.rx_chain = cpu_to_le16(rx_chain);
1826 if (!is_single && (active_rx_cnt >= IWL_NUM_RX_CHAINS_SINGLE) && is_cam)
1827 ctx->staging.rx_chain |= RXON_RX_CHAIN_MIMO_FORCE_MSK;
1828 else
1829 ctx->staging.rx_chain &= ~RXON_RX_CHAIN_MIMO_FORCE_MSK;
1831 IWL_DEBUG_ASSOC(priv, "rx_chain=0x%X active=%d idle=%d\n",
1832 ctx->staging.rx_chain,
1833 active_rx_cnt, idle_rx_cnt);
1835 WARN_ON(active_rx_cnt == 0 || idle_rx_cnt == 0 ||
1836 active_rx_cnt < idle_rx_cnt);
1839 u8 iwl_toggle_tx_ant(struct iwl_priv *priv, u8 ant, u8 valid)
1841 int i;
1842 u8 ind = ant;
1844 if (priv->band == IEEE80211_BAND_2GHZ &&
1845 priv->bt_traffic_load >= IWL_BT_COEX_TRAFFIC_LOAD_HIGH)
1846 return 0;
1848 for (i = 0; i < RATE_ANT_NUM - 1; i++) {
1849 ind = (ind + 1) < RATE_ANT_NUM ? ind + 1 : 0;
1850 if (valid & BIT(ind))
1851 return ind;
1853 return ant;
1856 static const char *get_csr_string(int cmd)
1858 switch (cmd) {
1859 IWL_CMD(CSR_HW_IF_CONFIG_REG);
1860 IWL_CMD(CSR_INT_COALESCING);
1861 IWL_CMD(CSR_INT);
1862 IWL_CMD(CSR_INT_MASK);
1863 IWL_CMD(CSR_FH_INT_STATUS);
1864 IWL_CMD(CSR_GPIO_IN);
1865 IWL_CMD(CSR_RESET);
1866 IWL_CMD(CSR_GP_CNTRL);
1867 IWL_CMD(CSR_HW_REV);
1868 IWL_CMD(CSR_EEPROM_REG);
1869 IWL_CMD(CSR_EEPROM_GP);
1870 IWL_CMD(CSR_OTP_GP_REG);
1871 IWL_CMD(CSR_GIO_REG);
1872 IWL_CMD(CSR_GP_UCODE_REG);
1873 IWL_CMD(CSR_GP_DRIVER_REG);
1874 IWL_CMD(CSR_UCODE_DRV_GP1);
1875 IWL_CMD(CSR_UCODE_DRV_GP2);
1876 IWL_CMD(CSR_LED_REG);
1877 IWL_CMD(CSR_DRAM_INT_TBL_REG);
1878 IWL_CMD(CSR_GIO_CHICKEN_BITS);
1879 IWL_CMD(CSR_ANA_PLL_CFG);
1880 IWL_CMD(CSR_HW_REV_WA_REG);
1881 IWL_CMD(CSR_DBG_HPET_MEM_REG);
1882 default:
1883 return "UNKNOWN";
1887 void iwl_dump_csr(struct iwl_priv *priv)
1889 int i;
1890 static const u32 csr_tbl[] = {
1891 CSR_HW_IF_CONFIG_REG,
1892 CSR_INT_COALESCING,
1893 CSR_INT,
1894 CSR_INT_MASK,
1895 CSR_FH_INT_STATUS,
1896 CSR_GPIO_IN,
1897 CSR_RESET,
1898 CSR_GP_CNTRL,
1899 CSR_HW_REV,
1900 CSR_EEPROM_REG,
1901 CSR_EEPROM_GP,
1902 CSR_OTP_GP_REG,
1903 CSR_GIO_REG,
1904 CSR_GP_UCODE_REG,
1905 CSR_GP_DRIVER_REG,
1906 CSR_UCODE_DRV_GP1,
1907 CSR_UCODE_DRV_GP2,
1908 CSR_LED_REG,
1909 CSR_DRAM_INT_TBL_REG,
1910 CSR_GIO_CHICKEN_BITS,
1911 CSR_ANA_PLL_CFG,
1912 CSR_HW_REV_WA_REG,
1913 CSR_DBG_HPET_MEM_REG
1915 IWL_ERR(priv, "CSR values:\n");
1916 IWL_ERR(priv, "(2nd byte of CSR_INT_COALESCING is "
1917 "CSR_INT_PERIODIC_REG)\n");
1918 for (i = 0; i < ARRAY_SIZE(csr_tbl); i++) {
1919 IWL_ERR(priv, " %25s: 0X%08x\n",
1920 get_csr_string(csr_tbl[i]),
1921 iwl_read32(priv, csr_tbl[i]));
1925 static const char *get_fh_string(int cmd)
1927 switch (cmd) {
1928 IWL_CMD(FH_RSCSR_CHNL0_STTS_WPTR_REG);
1929 IWL_CMD(FH_RSCSR_CHNL0_RBDCB_BASE_REG);
1930 IWL_CMD(FH_RSCSR_CHNL0_WPTR);
1931 IWL_CMD(FH_MEM_RCSR_CHNL0_CONFIG_REG);
1932 IWL_CMD(FH_MEM_RSSR_SHARED_CTRL_REG);
1933 IWL_CMD(FH_MEM_RSSR_RX_STATUS_REG);
1934 IWL_CMD(FH_MEM_RSSR_RX_ENABLE_ERR_IRQ2DRV);
1935 IWL_CMD(FH_TSSR_TX_STATUS_REG);
1936 IWL_CMD(FH_TSSR_TX_ERROR_REG);
1937 default:
1938 return "UNKNOWN";
1942 int iwl_dump_fh(struct iwl_priv *priv, char **buf, bool display)
1944 int i;
1945 #ifdef CONFIG_IWLWIFI_DEBUG
1946 int pos = 0;
1947 size_t bufsz = 0;
1948 #endif
1949 static const u32 fh_tbl[] = {
1950 FH_RSCSR_CHNL0_STTS_WPTR_REG,
1951 FH_RSCSR_CHNL0_RBDCB_BASE_REG,
1952 FH_RSCSR_CHNL0_WPTR,
1953 FH_MEM_RCSR_CHNL0_CONFIG_REG,
1954 FH_MEM_RSSR_SHARED_CTRL_REG,
1955 FH_MEM_RSSR_RX_STATUS_REG,
1956 FH_MEM_RSSR_RX_ENABLE_ERR_IRQ2DRV,
1957 FH_TSSR_TX_STATUS_REG,
1958 FH_TSSR_TX_ERROR_REG
1960 #ifdef CONFIG_IWLWIFI_DEBUG
1961 if (display) {
1962 bufsz = ARRAY_SIZE(fh_tbl) * 48 + 40;
1963 *buf = kmalloc(bufsz, GFP_KERNEL);
1964 if (!*buf)
1965 return -ENOMEM;
1966 pos += scnprintf(*buf + pos, bufsz - pos,
1967 "FH register values:\n");
1968 for (i = 0; i < ARRAY_SIZE(fh_tbl); i++) {
1969 pos += scnprintf(*buf + pos, bufsz - pos,
1970 " %34s: 0X%08x\n",
1971 get_fh_string(fh_tbl[i]),
1972 iwl_read_direct32(priv, fh_tbl[i]));
1974 return pos;
1976 #endif
1977 IWL_ERR(priv, "FH register values:\n");
1978 for (i = 0; i < ARRAY_SIZE(fh_tbl); i++) {
1979 IWL_ERR(priv, " %34s: 0X%08x\n",
1980 get_fh_string(fh_tbl[i]),
1981 iwl_read_direct32(priv, fh_tbl[i]));
1983 return 0;
1986 /* notification wait support */
1987 void iwlagn_init_notification_wait(struct iwl_priv *priv,
1988 struct iwl_notification_wait *wait_entry,
1989 u8 cmd,
1990 void (*fn)(struct iwl_priv *priv,
1991 struct iwl_rx_packet *pkt,
1992 void *data),
1993 void *fn_data)
1995 wait_entry->fn = fn;
1996 wait_entry->fn_data = fn_data;
1997 wait_entry->cmd = cmd;
1998 wait_entry->triggered = false;
1999 wait_entry->aborted = false;
2001 spin_lock_bh(&priv->notif_wait_lock);
2002 list_add(&wait_entry->list, &priv->notif_waits);
2003 spin_unlock_bh(&priv->notif_wait_lock);
2006 int iwlagn_wait_notification(struct iwl_priv *priv,
2007 struct iwl_notification_wait *wait_entry,
2008 unsigned long timeout)
2010 int ret;
2012 ret = wait_event_timeout(priv->notif_waitq,
2013 wait_entry->triggered || wait_entry->aborted,
2014 timeout);
2016 spin_lock_bh(&priv->notif_wait_lock);
2017 list_del(&wait_entry->list);
2018 spin_unlock_bh(&priv->notif_wait_lock);
2020 if (wait_entry->aborted)
2021 return -EIO;
2023 /* return value is always >= 0 */
2024 if (ret <= 0)
2025 return -ETIMEDOUT;
2026 return 0;
2029 void iwlagn_remove_notification(struct iwl_priv *priv,
2030 struct iwl_notification_wait *wait_entry)
2032 spin_lock_bh(&priv->notif_wait_lock);
2033 list_del(&wait_entry->list);
2034 spin_unlock_bh(&priv->notif_wait_lock);