iwlegacy: get rid of tx/rx traffic log
[firefly-linux-kernel-4.4.55.git] / drivers / net / wireless / iwlegacy / common.c
1 /******************************************************************************
2  *
3  * GPL LICENSE SUMMARY
4  *
5  * Copyright(c) 2008 - 2011 Intel Corporation. All rights reserved.
6  *
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.
10  *
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.
15  *
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
20  *
21  * The full GNU General Public License is included in this distribution
22  * in the file called LICENSE.GPL.
23  *
24  * Contact Information:
25  *  Intel Linux Wireless <ilw@linux.intel.com>
26  * Intel Corporation, 5200 N.E. Elam Young Parkway, Hillsboro, OR 97124-6497
27  *****************************************************************************/
28
29 #include <linux/kernel.h>
30 #include <linux/module.h>
31 #include <linux/etherdevice.h>
32 #include <linux/sched.h>
33 #include <linux/slab.h>
34 #include <linux/types.h>
35 #include <linux/lockdep.h>
36 #include <linux/init.h>
37 #include <linux/pci.h>
38 #include <linux/dma-mapping.h>
39 #include <linux/delay.h>
40 #include <linux/skbuff.h>
41 #include <net/mac80211.h>
42
43 #include "common.h"
44
45 int
46 _il_poll_bit(struct il_priv *il, u32 addr, u32 bits, u32 mask, int timeout)
47 {
48         const int interval = 10; /* microseconds */
49         int t = 0;
50
51         do {
52                 if ((_il_rd(il, addr) & mask) == (bits & mask))
53                         return t;
54                 udelay(interval);
55                 t += interval;
56         } while (t < timeout);
57
58         return -ETIMEDOUT;
59 }
60 EXPORT_SYMBOL(_il_poll_bit);
61
62 void
63 il_set_bit(struct il_priv *p, u32 r, u32 m)
64 {
65         unsigned long reg_flags;
66
67         spin_lock_irqsave(&p->reg_lock, reg_flags);
68         _il_set_bit(p, r, m);
69         spin_unlock_irqrestore(&p->reg_lock, reg_flags);
70 }
71 EXPORT_SYMBOL(il_set_bit);
72
73 void
74 il_clear_bit(struct il_priv *p, u32 r, u32 m)
75 {
76         unsigned long reg_flags;
77
78         spin_lock_irqsave(&p->reg_lock, reg_flags);
79         _il_clear_bit(p, r, m);
80         spin_unlock_irqrestore(&p->reg_lock, reg_flags);
81 }
82 EXPORT_SYMBOL(il_clear_bit);
83
84 bool
85 _il_grab_nic_access(struct il_priv *il)
86 {
87         int ret;
88         u32 val;
89
90         /* this bit wakes up the NIC */
91         _il_set_bit(il, CSR_GP_CNTRL, CSR_GP_CNTRL_REG_FLAG_MAC_ACCESS_REQ);
92
93         /*
94          * These bits say the device is running, and should keep running for
95          * at least a short while (at least as long as MAC_ACCESS_REQ stays 1),
96          * but they do not indicate that embedded SRAM is restored yet;
97          * 3945 and 4965 have volatile SRAM, and must save/restore contents
98          * to/from host DRAM when sleeping/waking for power-saving.
99          * Each direction takes approximately 1/4 millisecond; with this
100          * overhead, it's a good idea to grab and hold MAC_ACCESS_REQUEST if a
101          * series of register accesses are expected (e.g. reading Event Log),
102          * to keep device from sleeping.
103          *
104          * CSR_UCODE_DRV_GP1 register bit MAC_SLEEP == 0 indicates that
105          * SRAM is okay/restored.  We don't check that here because this call
106          * is just for hardware register access; but GP1 MAC_SLEEP check is a
107          * good idea before accessing 3945/4965 SRAM (e.g. reading Event Log).
108          *
109          */
110         ret =
111             _il_poll_bit(il, CSR_GP_CNTRL, CSR_GP_CNTRL_REG_VAL_MAC_ACCESS_EN,
112                          (CSR_GP_CNTRL_REG_FLAG_MAC_CLOCK_READY |
113                           CSR_GP_CNTRL_REG_FLAG_GOING_TO_SLEEP), 15000);
114         if (unlikely(ret < 0)) {
115                 val = _il_rd(il, CSR_GP_CNTRL);
116                 WARN_ONCE(1, "Timeout waiting for ucode processor access "
117                              "(CSR_GP_CNTRL 0x%08x)\n", val);
118                 _il_wr(il, CSR_RESET, CSR_RESET_REG_FLAG_FORCE_NMI);
119                 return false;
120         }
121
122         return true;
123 }
124 EXPORT_SYMBOL_GPL(_il_grab_nic_access);
125
126 int
127 il_poll_bit(struct il_priv *il, u32 addr, u32 mask, int timeout)
128 {
129         const int interval = 10; /* microseconds */
130         int t = 0;
131
132         do {
133                 if ((il_rd(il, addr) & mask) == mask)
134                         return t;
135                 udelay(interval);
136                 t += interval;
137         } while (t < timeout);
138
139         return -ETIMEDOUT;
140 }
141 EXPORT_SYMBOL(il_poll_bit);
142
143 u32
144 il_rd_prph(struct il_priv *il, u32 reg)
145 {
146         unsigned long reg_flags;
147         u32 val;
148
149         spin_lock_irqsave(&il->reg_lock, reg_flags);
150         _il_grab_nic_access(il);
151         val = _il_rd_prph(il, reg);
152         _il_release_nic_access(il);
153         spin_unlock_irqrestore(&il->reg_lock, reg_flags);
154         return val;
155 }
156 EXPORT_SYMBOL(il_rd_prph);
157
158 void
159 il_wr_prph(struct il_priv *il, u32 addr, u32 val)
160 {
161         unsigned long reg_flags;
162
163         spin_lock_irqsave(&il->reg_lock, reg_flags);
164         if (likely(_il_grab_nic_access(il))) {
165                 _il_wr_prph(il, addr, val);
166                 _il_release_nic_access(il);
167         }
168         spin_unlock_irqrestore(&il->reg_lock, reg_flags);
169 }
170 EXPORT_SYMBOL(il_wr_prph);
171
172 u32
173 il_read_targ_mem(struct il_priv *il, u32 addr)
174 {
175         unsigned long reg_flags;
176         u32 value;
177
178         spin_lock_irqsave(&il->reg_lock, reg_flags);
179         _il_grab_nic_access(il);
180
181         _il_wr(il, HBUS_TARG_MEM_RADDR, addr);
182         value = _il_rd(il, HBUS_TARG_MEM_RDAT);
183
184         _il_release_nic_access(il);
185         spin_unlock_irqrestore(&il->reg_lock, reg_flags);
186         return value;
187 }
188 EXPORT_SYMBOL(il_read_targ_mem);
189
190 void
191 il_write_targ_mem(struct il_priv *il, u32 addr, u32 val)
192 {
193         unsigned long reg_flags;
194
195         spin_lock_irqsave(&il->reg_lock, reg_flags);
196         if (likely(_il_grab_nic_access(il))) {
197                 _il_wr(il, HBUS_TARG_MEM_WADDR, addr);
198                 _il_wr(il, HBUS_TARG_MEM_WDAT, val);
199                 _il_release_nic_access(il);
200         }
201         spin_unlock_irqrestore(&il->reg_lock, reg_flags);
202 }
203 EXPORT_SYMBOL(il_write_targ_mem);
204
205 const char *
206 il_get_cmd_string(u8 cmd)
207 {
208         switch (cmd) {
209                 IL_CMD(N_ALIVE);
210                 IL_CMD(N_ERROR);
211                 IL_CMD(C_RXON);
212                 IL_CMD(C_RXON_ASSOC);
213                 IL_CMD(C_QOS_PARAM);
214                 IL_CMD(C_RXON_TIMING);
215                 IL_CMD(C_ADD_STA);
216                 IL_CMD(C_REM_STA);
217                 IL_CMD(C_WEPKEY);
218                 IL_CMD(N_3945_RX);
219                 IL_CMD(C_TX);
220                 IL_CMD(C_RATE_SCALE);
221                 IL_CMD(C_LEDS);
222                 IL_CMD(C_TX_LINK_QUALITY_CMD);
223                 IL_CMD(C_CHANNEL_SWITCH);
224                 IL_CMD(N_CHANNEL_SWITCH);
225                 IL_CMD(C_SPECTRUM_MEASUREMENT);
226                 IL_CMD(N_SPECTRUM_MEASUREMENT);
227                 IL_CMD(C_POWER_TBL);
228                 IL_CMD(N_PM_SLEEP);
229                 IL_CMD(N_PM_DEBUG_STATS);
230                 IL_CMD(C_SCAN);
231                 IL_CMD(C_SCAN_ABORT);
232                 IL_CMD(N_SCAN_START);
233                 IL_CMD(N_SCAN_RESULTS);
234                 IL_CMD(N_SCAN_COMPLETE);
235                 IL_CMD(N_BEACON);
236                 IL_CMD(C_TX_BEACON);
237                 IL_CMD(C_TX_PWR_TBL);
238                 IL_CMD(C_BT_CONFIG);
239                 IL_CMD(C_STATS);
240                 IL_CMD(N_STATS);
241                 IL_CMD(N_CARD_STATE);
242                 IL_CMD(N_MISSED_BEACONS);
243                 IL_CMD(C_CT_KILL_CONFIG);
244                 IL_CMD(C_SENSITIVITY);
245                 IL_CMD(C_PHY_CALIBRATION);
246                 IL_CMD(N_RX_PHY);
247                 IL_CMD(N_RX_MPDU);
248                 IL_CMD(N_RX);
249                 IL_CMD(N_COMPRESSED_BA);
250         default:
251                 return "UNKNOWN";
252
253         }
254 }
255 EXPORT_SYMBOL(il_get_cmd_string);
256
257 #define HOST_COMPLETE_TIMEOUT (HZ / 2)
258
259 static void
260 il_generic_cmd_callback(struct il_priv *il, struct il_device_cmd *cmd,
261                         struct il_rx_pkt *pkt)
262 {
263         if (pkt->hdr.flags & IL_CMD_FAILED_MSK) {
264                 IL_ERR("Bad return from %s (0x%08X)\n",
265                        il_get_cmd_string(cmd->hdr.cmd), pkt->hdr.flags);
266                 return;
267         }
268 #ifdef CONFIG_IWLEGACY_DEBUG
269         switch (cmd->hdr.cmd) {
270         case C_TX_LINK_QUALITY_CMD:
271         case C_SENSITIVITY:
272                 D_HC_DUMP("back from %s (0x%08X)\n",
273                           il_get_cmd_string(cmd->hdr.cmd), pkt->hdr.flags);
274                 break;
275         default:
276                 D_HC("back from %s (0x%08X)\n", il_get_cmd_string(cmd->hdr.cmd),
277                      pkt->hdr.flags);
278         }
279 #endif
280 }
281
282 static int
283 il_send_cmd_async(struct il_priv *il, struct il_host_cmd *cmd)
284 {
285         int ret;
286
287         BUG_ON(!(cmd->flags & CMD_ASYNC));
288
289         /* An asynchronous command can not expect an SKB to be set. */
290         BUG_ON(cmd->flags & CMD_WANT_SKB);
291
292         /* Assign a generic callback if one is not provided */
293         if (!cmd->callback)
294                 cmd->callback = il_generic_cmd_callback;
295
296         if (test_bit(S_EXIT_PENDING, &il->status))
297                 return -EBUSY;
298
299         ret = il_enqueue_hcmd(il, cmd);
300         if (ret < 0) {
301                 IL_ERR("Error sending %s: enqueue_hcmd failed: %d\n",
302                        il_get_cmd_string(cmd->id), ret);
303                 return ret;
304         }
305         return 0;
306 }
307
308 int
309 il_send_cmd_sync(struct il_priv *il, struct il_host_cmd *cmd)
310 {
311         int cmd_idx;
312         int ret;
313
314         lockdep_assert_held(&il->mutex);
315
316         BUG_ON(cmd->flags & CMD_ASYNC);
317
318         /* A synchronous command can not have a callback set. */
319         BUG_ON(cmd->callback);
320
321         D_INFO("Attempting to send sync command %s\n",
322                il_get_cmd_string(cmd->id));
323
324         set_bit(S_HCMD_ACTIVE, &il->status);
325         D_INFO("Setting HCMD_ACTIVE for command %s\n",
326                il_get_cmd_string(cmd->id));
327
328         cmd_idx = il_enqueue_hcmd(il, cmd);
329         if (cmd_idx < 0) {
330                 ret = cmd_idx;
331                 IL_ERR("Error sending %s: enqueue_hcmd failed: %d\n",
332                        il_get_cmd_string(cmd->id), ret);
333                 goto out;
334         }
335
336         ret = wait_event_timeout(il->wait_command_queue,
337                                  !test_bit(S_HCMD_ACTIVE, &il->status),
338                                  HOST_COMPLETE_TIMEOUT);
339         if (!ret) {
340                 if (test_bit(S_HCMD_ACTIVE, &il->status)) {
341                         IL_ERR("Error sending %s: time out after %dms.\n",
342                                il_get_cmd_string(cmd->id),
343                                jiffies_to_msecs(HOST_COMPLETE_TIMEOUT));
344
345                         clear_bit(S_HCMD_ACTIVE, &il->status);
346                         D_INFO("Clearing HCMD_ACTIVE for command %s\n",
347                                il_get_cmd_string(cmd->id));
348                         ret = -ETIMEDOUT;
349                         goto cancel;
350                 }
351         }
352
353         if (test_bit(S_RF_KILL_HW, &il->status)) {
354                 IL_ERR("Command %s aborted: RF KILL Switch\n",
355                        il_get_cmd_string(cmd->id));
356                 ret = -ECANCELED;
357                 goto fail;
358         }
359         if (test_bit(S_FW_ERROR, &il->status)) {
360                 IL_ERR("Command %s failed: FW Error\n",
361                        il_get_cmd_string(cmd->id));
362                 ret = -EIO;
363                 goto fail;
364         }
365         if ((cmd->flags & CMD_WANT_SKB) && !cmd->reply_page) {
366                 IL_ERR("Error: Response NULL in '%s'\n",
367                        il_get_cmd_string(cmd->id));
368                 ret = -EIO;
369                 goto cancel;
370         }
371
372         ret = 0;
373         goto out;
374
375 cancel:
376         if (cmd->flags & CMD_WANT_SKB) {
377                 /*
378                  * Cancel the CMD_WANT_SKB flag for the cmd in the
379                  * TX cmd queue. Otherwise in case the cmd comes
380                  * in later, it will possibly set an invalid
381                  * address (cmd->meta.source).
382                  */
383                 il->txq[il->cmd_queue].meta[cmd_idx].flags &= ~CMD_WANT_SKB;
384         }
385 fail:
386         if (cmd->reply_page) {
387                 il_free_pages(il, cmd->reply_page);
388                 cmd->reply_page = 0;
389         }
390 out:
391         return ret;
392 }
393 EXPORT_SYMBOL(il_send_cmd_sync);
394
395 int
396 il_send_cmd(struct il_priv *il, struct il_host_cmd *cmd)
397 {
398         if (cmd->flags & CMD_ASYNC)
399                 return il_send_cmd_async(il, cmd);
400
401         return il_send_cmd_sync(il, cmd);
402 }
403 EXPORT_SYMBOL(il_send_cmd);
404
405 int
406 il_send_cmd_pdu(struct il_priv *il, u8 id, u16 len, const void *data)
407 {
408         struct il_host_cmd cmd = {
409                 .id = id,
410                 .len = len,
411                 .data = data,
412         };
413
414         return il_send_cmd_sync(il, &cmd);
415 }
416 EXPORT_SYMBOL(il_send_cmd_pdu);
417
418 int
419 il_send_cmd_pdu_async(struct il_priv *il, u8 id, u16 len, const void *data,
420                       void (*callback) (struct il_priv *il,
421                                         struct il_device_cmd *cmd,
422                                         struct il_rx_pkt *pkt))
423 {
424         struct il_host_cmd cmd = {
425                 .id = id,
426                 .len = len,
427                 .data = data,
428         };
429
430         cmd.flags |= CMD_ASYNC;
431         cmd.callback = callback;
432
433         return il_send_cmd_async(il, &cmd);
434 }
435 EXPORT_SYMBOL(il_send_cmd_pdu_async);
436
437 /* default: IL_LED_BLINK(0) using blinking idx table */
438 static int led_mode;
439 module_param(led_mode, int, S_IRUGO);
440 MODULE_PARM_DESC(led_mode,
441                  "0=system default, " "1=On(RF On)/Off(RF Off), 2=blinking");
442
443 /* Throughput           OFF time(ms)    ON time (ms)
444  *      >300                    25              25
445  *      >200 to 300             40              40
446  *      >100 to 200             55              55
447  *      >70 to 100              65              65
448  *      >50 to 70               75              75
449  *      >20 to 50               85              85
450  *      >10 to 20               95              95
451  *      >5 to 10                110             110
452  *      >1 to 5                 130             130
453  *      >0 to 1                 167             167
454  *      <=0                                     SOLID ON
455  */
456 static const struct ieee80211_tpt_blink il_blink[] = {
457         {.throughput = 0,               .blink_time = 334},
458         {.throughput = 1 * 1024 - 1,    .blink_time = 260},
459         {.throughput = 5 * 1024 - 1,    .blink_time = 220},
460         {.throughput = 10 * 1024 - 1,   .blink_time = 190},
461         {.throughput = 20 * 1024 - 1,   .blink_time = 170},
462         {.throughput = 50 * 1024 - 1,   .blink_time = 150},
463         {.throughput = 70 * 1024 - 1,   .blink_time = 130},
464         {.throughput = 100 * 1024 - 1,  .blink_time = 110},
465         {.throughput = 200 * 1024 - 1,  .blink_time = 80},
466         {.throughput = 300 * 1024 - 1,  .blink_time = 50},
467 };
468
469 /*
470  * Adjust led blink rate to compensate on a MAC Clock difference on every HW
471  * Led blink rate analysis showed an average deviation of 0% on 3945,
472  * 5% on 4965 HW.
473  * Need to compensate on the led on/off time per HW according to the deviation
474  * to achieve the desired led frequency
475  * The calculation is: (100-averageDeviation)/100 * blinkTime
476  * For code efficiency the calculation will be:
477  *     compensation = (100 - averageDeviation) * 64 / 100
478  *     NewBlinkTime = (compensation * BlinkTime) / 64
479  */
480 static inline u8
481 il_blink_compensation(struct il_priv *il, u8 time, u16 compensation)
482 {
483         if (!compensation) {
484                 IL_ERR("undefined blink compensation: "
485                        "use pre-defined blinking time\n");
486                 return time;
487         }
488
489         return (u8) ((time * compensation) >> 6);
490 }
491
492 /* Set led pattern command */
493 static int
494 il_led_cmd(struct il_priv *il, unsigned long on, unsigned long off)
495 {
496         struct il_led_cmd led_cmd = {
497                 .id = IL_LED_LINK,
498                 .interval = IL_DEF_LED_INTRVL
499         };
500         int ret;
501
502         if (!test_bit(S_READY, &il->status))
503                 return -EBUSY;
504
505         if (il->blink_on == on && il->blink_off == off)
506                 return 0;
507
508         if (off == 0) {
509                 /* led is SOLID_ON */
510                 on = IL_LED_SOLID;
511         }
512
513         D_LED("Led blink time compensation=%u\n",
514               il->cfg->led_compensation);
515         led_cmd.on =
516             il_blink_compensation(il, on,
517                                   il->cfg->led_compensation);
518         led_cmd.off =
519             il_blink_compensation(il, off,
520                                   il->cfg->led_compensation);
521
522         ret = il->ops->send_led_cmd(il, &led_cmd);
523         if (!ret) {
524                 il->blink_on = on;
525                 il->blink_off = off;
526         }
527         return ret;
528 }
529
530 static void
531 il_led_brightness_set(struct led_classdev *led_cdev,
532                       enum led_brightness brightness)
533 {
534         struct il_priv *il = container_of(led_cdev, struct il_priv, led);
535         unsigned long on = 0;
536
537         if (brightness > 0)
538                 on = IL_LED_SOLID;
539
540         il_led_cmd(il, on, 0);
541 }
542
543 static int
544 il_led_blink_set(struct led_classdev *led_cdev, unsigned long *delay_on,
545                  unsigned long *delay_off)
546 {
547         struct il_priv *il = container_of(led_cdev, struct il_priv, led);
548
549         return il_led_cmd(il, *delay_on, *delay_off);
550 }
551
552 void
553 il_leds_init(struct il_priv *il)
554 {
555         int mode = led_mode;
556         int ret;
557
558         if (mode == IL_LED_DEFAULT)
559                 mode = il->cfg->led_mode;
560
561         il->led.name =
562             kasprintf(GFP_KERNEL, "%s-led", wiphy_name(il->hw->wiphy));
563         il->led.brightness_set = il_led_brightness_set;
564         il->led.blink_set = il_led_blink_set;
565         il->led.max_brightness = 1;
566
567         switch (mode) {
568         case IL_LED_DEFAULT:
569                 WARN_ON(1);
570                 break;
571         case IL_LED_BLINK:
572                 il->led.default_trigger =
573                     ieee80211_create_tpt_led_trigger(il->hw,
574                                                      IEEE80211_TPT_LEDTRIG_FL_CONNECTED,
575                                                      il_blink,
576                                                      ARRAY_SIZE(il_blink));
577                 break;
578         case IL_LED_RF_STATE:
579                 il->led.default_trigger = ieee80211_get_radio_led_name(il->hw);
580                 break;
581         }
582
583         ret = led_classdev_register(&il->pci_dev->dev, &il->led);
584         if (ret) {
585                 kfree(il->led.name);
586                 return;
587         }
588
589         il->led_registered = true;
590 }
591 EXPORT_SYMBOL(il_leds_init);
592
593 void
594 il_leds_exit(struct il_priv *il)
595 {
596         if (!il->led_registered)
597                 return;
598
599         led_classdev_unregister(&il->led);
600         kfree(il->led.name);
601 }
602 EXPORT_SYMBOL(il_leds_exit);
603
604 /************************** EEPROM BANDS ****************************
605  *
606  * The il_eeprom_band definitions below provide the mapping from the
607  * EEPROM contents to the specific channel number supported for each
608  * band.
609  *
610  * For example, il_priv->eeprom.band_3_channels[4] from the band_3
611  * definition below maps to physical channel 42 in the 5.2GHz spectrum.
612  * The specific geography and calibration information for that channel
613  * is contained in the eeprom map itself.
614  *
615  * During init, we copy the eeprom information and channel map
616  * information into il->channel_info_24/52 and il->channel_map_24/52
617  *
618  * channel_map_24/52 provides the idx in the channel_info array for a
619  * given channel.  We have to have two separate maps as there is channel
620  * overlap with the 2.4GHz and 5.2GHz spectrum as seen in band_1 and
621  * band_2
622  *
623  * A value of 0xff stored in the channel_map indicates that the channel
624  * is not supported by the hardware at all.
625  *
626  * A value of 0xfe in the channel_map indicates that the channel is not
627  * valid for Tx with the current hardware.  This means that
628  * while the system can tune and receive on a given channel, it may not
629  * be able to associate or transmit any frames on that
630  * channel.  There is no corresponding channel information for that
631  * entry.
632  *
633  *********************************************************************/
634
635 /* 2.4 GHz */
636 const u8 il_eeprom_band_1[14] = {
637         1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14
638 };
639
640 /* 5.2 GHz bands */
641 static const u8 il_eeprom_band_2[] = {  /* 4915-5080MHz */
642         183, 184, 185, 187, 188, 189, 192, 196, 7, 8, 11, 12, 16
643 };
644
645 static const u8 il_eeprom_band_3[] = {  /* 5170-5320MHz */
646         34, 36, 38, 40, 42, 44, 46, 48, 52, 56, 60, 64
647 };
648
649 static const u8 il_eeprom_band_4[] = {  /* 5500-5700MHz */
650         100, 104, 108, 112, 116, 120, 124, 128, 132, 136, 140
651 };
652
653 static const u8 il_eeprom_band_5[] = {  /* 5725-5825MHz */
654         145, 149, 153, 157, 161, 165
655 };
656
657 static const u8 il_eeprom_band_6[] = {  /* 2.4 ht40 channel */
658         1, 2, 3, 4, 5, 6, 7
659 };
660
661 static const u8 il_eeprom_band_7[] = {  /* 5.2 ht40 channel */
662         36, 44, 52, 60, 100, 108, 116, 124, 132, 149, 157
663 };
664
665 /******************************************************************************
666  *
667  * EEPROM related functions
668  *
669 ******************************************************************************/
670
671 static int
672 il_eeprom_verify_signature(struct il_priv *il)
673 {
674         u32 gp = _il_rd(il, CSR_EEPROM_GP) & CSR_EEPROM_GP_VALID_MSK;
675         int ret = 0;
676
677         D_EEPROM("EEPROM signature=0x%08x\n", gp);
678         switch (gp) {
679         case CSR_EEPROM_GP_GOOD_SIG_EEP_LESS_THAN_4K:
680         case CSR_EEPROM_GP_GOOD_SIG_EEP_MORE_THAN_4K:
681                 break;
682         default:
683                 IL_ERR("bad EEPROM signature," "EEPROM_GP=0x%08x\n", gp);
684                 ret = -ENOENT;
685                 break;
686         }
687         return ret;
688 }
689
690 const u8 *
691 il_eeprom_query_addr(const struct il_priv *il, size_t offset)
692 {
693         BUG_ON(offset >= il->cfg->eeprom_size);
694         return &il->eeprom[offset];
695 }
696 EXPORT_SYMBOL(il_eeprom_query_addr);
697
698 u16
699 il_eeprom_query16(const struct il_priv *il, size_t offset)
700 {
701         if (!il->eeprom)
702                 return 0;
703         return (u16) il->eeprom[offset] | ((u16) il->eeprom[offset + 1] << 8);
704 }
705 EXPORT_SYMBOL(il_eeprom_query16);
706
707 /**
708  * il_eeprom_init - read EEPROM contents
709  *
710  * Load the EEPROM contents from adapter into il->eeprom
711  *
712  * NOTE:  This routine uses the non-debug IO access functions.
713  */
714 int
715 il_eeprom_init(struct il_priv *il)
716 {
717         __le16 *e;
718         u32 gp = _il_rd(il, CSR_EEPROM_GP);
719         int sz;
720         int ret;
721         u16 addr;
722
723         /* allocate eeprom */
724         sz = il->cfg->eeprom_size;
725         D_EEPROM("NVM size = %d\n", sz);
726         il->eeprom = kzalloc(sz, GFP_KERNEL);
727         if (!il->eeprom) {
728                 ret = -ENOMEM;
729                 goto alloc_err;
730         }
731         e = (__le16 *) il->eeprom;
732
733         il->ops->apm_init(il);
734
735         ret = il_eeprom_verify_signature(il);
736         if (ret < 0) {
737                 IL_ERR("EEPROM not found, EEPROM_GP=0x%08x\n", gp);
738                 ret = -ENOENT;
739                 goto err;
740         }
741
742         /* Make sure driver (instead of uCode) is allowed to read EEPROM */
743         ret = il->ops->eeprom_acquire_semaphore(il);
744         if (ret < 0) {
745                 IL_ERR("Failed to acquire EEPROM semaphore.\n");
746                 ret = -ENOENT;
747                 goto err;
748         }
749
750         /* eeprom is an array of 16bit values */
751         for (addr = 0; addr < sz; addr += sizeof(u16)) {
752                 u32 r;
753
754                 _il_wr(il, CSR_EEPROM_REG,
755                        CSR_EEPROM_REG_MSK_ADDR & (addr << 1));
756
757                 ret =
758                     _il_poll_bit(il, CSR_EEPROM_REG,
759                                  CSR_EEPROM_REG_READ_VALID_MSK,
760                                  CSR_EEPROM_REG_READ_VALID_MSK,
761                                  IL_EEPROM_ACCESS_TIMEOUT);
762                 if (ret < 0) {
763                         IL_ERR("Time out reading EEPROM[%d]\n", addr);
764                         goto done;
765                 }
766                 r = _il_rd(il, CSR_EEPROM_REG);
767                 e[addr / 2] = cpu_to_le16(r >> 16);
768         }
769
770         D_EEPROM("NVM Type: %s, version: 0x%x\n", "EEPROM",
771                  il_eeprom_query16(il, EEPROM_VERSION));
772
773         ret = 0;
774 done:
775         il->ops->eeprom_release_semaphore(il);
776
777 err:
778         if (ret)
779                 il_eeprom_free(il);
780         /* Reset chip to save power until we load uCode during "up". */
781         il_apm_stop(il);
782 alloc_err:
783         return ret;
784 }
785 EXPORT_SYMBOL(il_eeprom_init);
786
787 void
788 il_eeprom_free(struct il_priv *il)
789 {
790         kfree(il->eeprom);
791         il->eeprom = NULL;
792 }
793 EXPORT_SYMBOL(il_eeprom_free);
794
795 static void
796 il_init_band_reference(const struct il_priv *il, int eep_band,
797                        int *eeprom_ch_count,
798                        const struct il_eeprom_channel **eeprom_ch_info,
799                        const u8 **eeprom_ch_idx)
800 {
801         u32 offset = il->cfg->regulatory_bands[eep_band - 1];
802
803         switch (eep_band) {
804         case 1:         /* 2.4GHz band */
805                 *eeprom_ch_count = ARRAY_SIZE(il_eeprom_band_1);
806                 *eeprom_ch_info =
807                     (struct il_eeprom_channel *)il_eeprom_query_addr(il,
808                                                                      offset);
809                 *eeprom_ch_idx = il_eeprom_band_1;
810                 break;
811         case 2:         /* 4.9GHz band */
812                 *eeprom_ch_count = ARRAY_SIZE(il_eeprom_band_2);
813                 *eeprom_ch_info =
814                     (struct il_eeprom_channel *)il_eeprom_query_addr(il,
815                                                                      offset);
816                 *eeprom_ch_idx = il_eeprom_band_2;
817                 break;
818         case 3:         /* 5.2GHz band */
819                 *eeprom_ch_count = ARRAY_SIZE(il_eeprom_band_3);
820                 *eeprom_ch_info =
821                     (struct il_eeprom_channel *)il_eeprom_query_addr(il,
822                                                                      offset);
823                 *eeprom_ch_idx = il_eeprom_band_3;
824                 break;
825         case 4:         /* 5.5GHz band */
826                 *eeprom_ch_count = ARRAY_SIZE(il_eeprom_band_4);
827                 *eeprom_ch_info =
828                     (struct il_eeprom_channel *)il_eeprom_query_addr(il,
829                                                                      offset);
830                 *eeprom_ch_idx = il_eeprom_band_4;
831                 break;
832         case 5:         /* 5.7GHz band */
833                 *eeprom_ch_count = ARRAY_SIZE(il_eeprom_band_5);
834                 *eeprom_ch_info =
835                     (struct il_eeprom_channel *)il_eeprom_query_addr(il,
836                                                                      offset);
837                 *eeprom_ch_idx = il_eeprom_band_5;
838                 break;
839         case 6:         /* 2.4GHz ht40 channels */
840                 *eeprom_ch_count = ARRAY_SIZE(il_eeprom_band_6);
841                 *eeprom_ch_info =
842                     (struct il_eeprom_channel *)il_eeprom_query_addr(il,
843                                                                      offset);
844                 *eeprom_ch_idx = il_eeprom_band_6;
845                 break;
846         case 7:         /* 5 GHz ht40 channels */
847                 *eeprom_ch_count = ARRAY_SIZE(il_eeprom_band_7);
848                 *eeprom_ch_info =
849                     (struct il_eeprom_channel *)il_eeprom_query_addr(il,
850                                                                      offset);
851                 *eeprom_ch_idx = il_eeprom_band_7;
852                 break;
853         default:
854                 BUG();
855         }
856 }
857
858 #define CHECK_AND_PRINT(x) ((eeprom_ch->flags & EEPROM_CHANNEL_##x) \
859                             ? # x " " : "")
860 /**
861  * il_mod_ht40_chan_info - Copy ht40 channel info into driver's il.
862  *
863  * Does not set up a command, or touch hardware.
864  */
865 static int
866 il_mod_ht40_chan_info(struct il_priv *il, enum ieee80211_band band, u16 channel,
867                       const struct il_eeprom_channel *eeprom_ch,
868                       u8 clear_ht40_extension_channel)
869 {
870         struct il_channel_info *ch_info;
871
872         ch_info =
873             (struct il_channel_info *)il_get_channel_info(il, band, channel);
874
875         if (!il_is_channel_valid(ch_info))
876                 return -1;
877
878         D_EEPROM("HT40 Ch. %d [%sGHz] %s%s%s%s%s(0x%02x %ddBm):"
879                  " Ad-Hoc %ssupported\n", ch_info->channel,
880                  il_is_channel_a_band(ch_info) ? "5.2" : "2.4",
881                  CHECK_AND_PRINT(IBSS), CHECK_AND_PRINT(ACTIVE),
882                  CHECK_AND_PRINT(RADAR), CHECK_AND_PRINT(WIDE),
883                  CHECK_AND_PRINT(DFS), eeprom_ch->flags,
884                  eeprom_ch->max_power_avg,
885                  ((eeprom_ch->flags & EEPROM_CHANNEL_IBSS) &&
886                   !(eeprom_ch->flags & EEPROM_CHANNEL_RADAR)) ? "" : "not ");
887
888         ch_info->ht40_eeprom = *eeprom_ch;
889         ch_info->ht40_max_power_avg = eeprom_ch->max_power_avg;
890         ch_info->ht40_flags = eeprom_ch->flags;
891         if (eeprom_ch->flags & EEPROM_CHANNEL_VALID)
892                 ch_info->ht40_extension_channel &=
893                     ~clear_ht40_extension_channel;
894
895         return 0;
896 }
897
898 #define CHECK_AND_PRINT_I(x) ((eeprom_ch_info[ch].flags & EEPROM_CHANNEL_##x) \
899                             ? # x " " : "")
900
901 /**
902  * il_init_channel_map - Set up driver's info for all possible channels
903  */
904 int
905 il_init_channel_map(struct il_priv *il)
906 {
907         int eeprom_ch_count = 0;
908         const u8 *eeprom_ch_idx = NULL;
909         const struct il_eeprom_channel *eeprom_ch_info = NULL;
910         int band, ch;
911         struct il_channel_info *ch_info;
912
913         if (il->channel_count) {
914                 D_EEPROM("Channel map already initialized.\n");
915                 return 0;
916         }
917
918         D_EEPROM("Initializing regulatory info from EEPROM\n");
919
920         il->channel_count =
921             ARRAY_SIZE(il_eeprom_band_1) + ARRAY_SIZE(il_eeprom_band_2) +
922             ARRAY_SIZE(il_eeprom_band_3) + ARRAY_SIZE(il_eeprom_band_4) +
923             ARRAY_SIZE(il_eeprom_band_5);
924
925         D_EEPROM("Parsing data for %d channels.\n", il->channel_count);
926
927         il->channel_info =
928             kzalloc(sizeof(struct il_channel_info) * il->channel_count,
929                     GFP_KERNEL);
930         if (!il->channel_info) {
931                 IL_ERR("Could not allocate channel_info\n");
932                 il->channel_count = 0;
933                 return -ENOMEM;
934         }
935
936         ch_info = il->channel_info;
937
938         /* Loop through the 5 EEPROM bands adding them in order to the
939          * channel map we maintain (that contains additional information than
940          * what just in the EEPROM) */
941         for (band = 1; band <= 5; band++) {
942
943                 il_init_band_reference(il, band, &eeprom_ch_count,
944                                        &eeprom_ch_info, &eeprom_ch_idx);
945
946                 /* Loop through each band adding each of the channels */
947                 for (ch = 0; ch < eeprom_ch_count; ch++) {
948                         ch_info->channel = eeprom_ch_idx[ch];
949                         ch_info->band =
950                             (band ==
951                              1) ? IEEE80211_BAND_2GHZ : IEEE80211_BAND_5GHZ;
952
953                         /* permanently store EEPROM's channel regulatory flags
954                          *   and max power in channel info database. */
955                         ch_info->eeprom = eeprom_ch_info[ch];
956
957                         /* Copy the run-time flags so they are there even on
958                          * invalid channels */
959                         ch_info->flags = eeprom_ch_info[ch].flags;
960                         /* First write that ht40 is not enabled, and then enable
961                          * one by one */
962                         ch_info->ht40_extension_channel =
963                             IEEE80211_CHAN_NO_HT40;
964
965                         if (!(il_is_channel_valid(ch_info))) {
966                                 D_EEPROM("Ch. %d Flags %x [%sGHz] - "
967                                          "No traffic\n", ch_info->channel,
968                                          ch_info->flags,
969                                          il_is_channel_a_band(ch_info) ? "5.2" :
970                                          "2.4");
971                                 ch_info++;
972                                 continue;
973                         }
974
975                         /* Initialize regulatory-based run-time data */
976                         ch_info->max_power_avg = ch_info->curr_txpow =
977                             eeprom_ch_info[ch].max_power_avg;
978                         ch_info->scan_power = eeprom_ch_info[ch].max_power_avg;
979                         ch_info->min_power = 0;
980
981                         D_EEPROM("Ch. %d [%sGHz] " "%s%s%s%s%s%s(0x%02x %ddBm):"
982                                  " Ad-Hoc %ssupported\n", ch_info->channel,
983                                  il_is_channel_a_band(ch_info) ? "5.2" : "2.4",
984                                  CHECK_AND_PRINT_I(VALID),
985                                  CHECK_AND_PRINT_I(IBSS),
986                                  CHECK_AND_PRINT_I(ACTIVE),
987                                  CHECK_AND_PRINT_I(RADAR),
988                                  CHECK_AND_PRINT_I(WIDE),
989                                  CHECK_AND_PRINT_I(DFS),
990                                  eeprom_ch_info[ch].flags,
991                                  eeprom_ch_info[ch].max_power_avg,
992                                  ((eeprom_ch_info[ch].
993                                    flags & EEPROM_CHANNEL_IBSS) &&
994                                   !(eeprom_ch_info[ch].
995                                     flags & EEPROM_CHANNEL_RADAR)) ? "" :
996                                  "not ");
997
998                         ch_info++;
999                 }
1000         }
1001
1002         /* Check if we do have HT40 channels */
1003         if (il->cfg->regulatory_bands[5] == EEPROM_REGULATORY_BAND_NO_HT40 &&
1004             il->cfg->regulatory_bands[6] == EEPROM_REGULATORY_BAND_NO_HT40)
1005                 return 0;
1006
1007         /* Two additional EEPROM bands for 2.4 and 5 GHz HT40 channels */
1008         for (band = 6; band <= 7; band++) {
1009                 enum ieee80211_band ieeeband;
1010
1011                 il_init_band_reference(il, band, &eeprom_ch_count,
1012                                        &eeprom_ch_info, &eeprom_ch_idx);
1013
1014                 /* EEPROM band 6 is 2.4, band 7 is 5 GHz */
1015                 ieeeband =
1016                     (band == 6) ? IEEE80211_BAND_2GHZ : IEEE80211_BAND_5GHZ;
1017
1018                 /* Loop through each band adding each of the channels */
1019                 for (ch = 0; ch < eeprom_ch_count; ch++) {
1020                         /* Set up driver's info for lower half */
1021                         il_mod_ht40_chan_info(il, ieeeband, eeprom_ch_idx[ch],
1022                                               &eeprom_ch_info[ch],
1023                                               IEEE80211_CHAN_NO_HT40PLUS);
1024
1025                         /* Set up driver's info for upper half */
1026                         il_mod_ht40_chan_info(il, ieeeband,
1027                                               eeprom_ch_idx[ch] + 4,
1028                                               &eeprom_ch_info[ch],
1029                                               IEEE80211_CHAN_NO_HT40MINUS);
1030                 }
1031         }
1032
1033         return 0;
1034 }
1035 EXPORT_SYMBOL(il_init_channel_map);
1036
1037 /*
1038  * il_free_channel_map - undo allocations in il_init_channel_map
1039  */
1040 void
1041 il_free_channel_map(struct il_priv *il)
1042 {
1043         kfree(il->channel_info);
1044         il->channel_count = 0;
1045 }
1046 EXPORT_SYMBOL(il_free_channel_map);
1047
1048 /**
1049  * il_get_channel_info - Find driver's ilate channel info
1050  *
1051  * Based on band and channel number.
1052  */
1053 const struct il_channel_info *
1054 il_get_channel_info(const struct il_priv *il, enum ieee80211_band band,
1055                     u16 channel)
1056 {
1057         int i;
1058
1059         switch (band) {
1060         case IEEE80211_BAND_5GHZ:
1061                 for (i = 14; i < il->channel_count; i++) {
1062                         if (il->channel_info[i].channel == channel)
1063                                 return &il->channel_info[i];
1064                 }
1065                 break;
1066         case IEEE80211_BAND_2GHZ:
1067                 if (channel >= 1 && channel <= 14)
1068                         return &il->channel_info[channel - 1];
1069                 break;
1070         default:
1071                 BUG();
1072         }
1073
1074         return NULL;
1075 }
1076 EXPORT_SYMBOL(il_get_channel_info);
1077
1078 /*
1079  * Setting power level allows the card to go to sleep when not busy.
1080  *
1081  * We calculate a sleep command based on the required latency, which
1082  * we get from mac80211. In order to handle thermal throttling, we can
1083  * also use pre-defined power levels.
1084  */
1085
1086 /*
1087  * This defines the old power levels. They are still used by default
1088  * (level 1) and for thermal throttle (levels 3 through 5)
1089  */
1090
1091 struct il_power_vec_entry {
1092         struct il_powertable_cmd cmd;
1093         u8 no_dtim;             /* number of skip dtim */
1094 };
1095
1096 static void
1097 il_power_sleep_cam_cmd(struct il_priv *il, struct il_powertable_cmd *cmd)
1098 {
1099         memset(cmd, 0, sizeof(*cmd));
1100
1101         if (il->power_data.pci_pm)
1102                 cmd->flags |= IL_POWER_PCI_PM_MSK;
1103
1104         D_POWER("Sleep command for CAM\n");
1105 }
1106
1107 static int
1108 il_set_power(struct il_priv *il, struct il_powertable_cmd *cmd)
1109 {
1110         D_POWER("Sending power/sleep command\n");
1111         D_POWER("Flags value = 0x%08X\n", cmd->flags);
1112         D_POWER("Tx timeout = %u\n", le32_to_cpu(cmd->tx_data_timeout));
1113         D_POWER("Rx timeout = %u\n", le32_to_cpu(cmd->rx_data_timeout));
1114         D_POWER("Sleep interval vector = { %d , %d , %d , %d , %d }\n",
1115                 le32_to_cpu(cmd->sleep_interval[0]),
1116                 le32_to_cpu(cmd->sleep_interval[1]),
1117                 le32_to_cpu(cmd->sleep_interval[2]),
1118                 le32_to_cpu(cmd->sleep_interval[3]),
1119                 le32_to_cpu(cmd->sleep_interval[4]));
1120
1121         return il_send_cmd_pdu(il, C_POWER_TBL,
1122                                sizeof(struct il_powertable_cmd), cmd);
1123 }
1124
1125 int
1126 il_power_set_mode(struct il_priv *il, struct il_powertable_cmd *cmd, bool force)
1127 {
1128         int ret;
1129         bool update_chains;
1130
1131         lockdep_assert_held(&il->mutex);
1132
1133         /* Don't update the RX chain when chain noise calibration is running */
1134         update_chains = il->chain_noise_data.state == IL_CHAIN_NOISE_DONE ||
1135             il->chain_noise_data.state == IL_CHAIN_NOISE_ALIVE;
1136
1137         if (!memcmp(&il->power_data.sleep_cmd, cmd, sizeof(*cmd)) && !force)
1138                 return 0;
1139
1140         if (!il_is_ready_rf(il))
1141                 return -EIO;
1142
1143         /* scan complete use sleep_power_next, need to be updated */
1144         memcpy(&il->power_data.sleep_cmd_next, cmd, sizeof(*cmd));
1145         if (test_bit(S_SCANNING, &il->status) && !force) {
1146                 D_INFO("Defer power set mode while scanning\n");
1147                 return 0;
1148         }
1149
1150         if (cmd->flags & IL_POWER_DRIVER_ALLOW_SLEEP_MSK)
1151                 set_bit(S_POWER_PMI, &il->status);
1152
1153         ret = il_set_power(il, cmd);
1154         if (!ret) {
1155                 if (!(cmd->flags & IL_POWER_DRIVER_ALLOW_SLEEP_MSK))
1156                         clear_bit(S_POWER_PMI, &il->status);
1157
1158                 if (il->ops->update_chain_flags && update_chains)
1159                         il->ops->update_chain_flags(il);
1160                 else if (il->ops->update_chain_flags)
1161                         D_POWER("Cannot update the power, chain noise "
1162                                 "calibration running: %d\n",
1163                                 il->chain_noise_data.state);
1164
1165                 memcpy(&il->power_data.sleep_cmd, cmd, sizeof(*cmd));
1166         } else
1167                 IL_ERR("set power fail, ret = %d", ret);
1168
1169         return ret;
1170 }
1171
1172 int
1173 il_power_update_mode(struct il_priv *il, bool force)
1174 {
1175         struct il_powertable_cmd cmd;
1176
1177         il_power_sleep_cam_cmd(il, &cmd);
1178         return il_power_set_mode(il, &cmd, force);
1179 }
1180 EXPORT_SYMBOL(il_power_update_mode);
1181
1182 /* initialize to default */
1183 void
1184 il_power_initialize(struct il_priv *il)
1185 {
1186         u16 lctl = il_pcie_link_ctl(il);
1187
1188         il->power_data.pci_pm = !(lctl & PCI_CFG_LINK_CTRL_VAL_L0S_EN);
1189
1190         il->power_data.debug_sleep_level_override = -1;
1191
1192         memset(&il->power_data.sleep_cmd, 0, sizeof(il->power_data.sleep_cmd));
1193 }
1194 EXPORT_SYMBOL(il_power_initialize);
1195
1196 /* For active scan, listen ACTIVE_DWELL_TIME (msec) on each channel after
1197  * sending probe req.  This should be set long enough to hear probe responses
1198  * from more than one AP.  */
1199 #define IL_ACTIVE_DWELL_TIME_24    (30) /* all times in msec */
1200 #define IL_ACTIVE_DWELL_TIME_52    (20)
1201
1202 #define IL_ACTIVE_DWELL_FACTOR_24GHZ (3)
1203 #define IL_ACTIVE_DWELL_FACTOR_52GHZ (2)
1204
1205 /* For passive scan, listen PASSIVE_DWELL_TIME (msec) on each channel.
1206  * Must be set longer than active dwell time.
1207  * For the most reliable scan, set > AP beacon interval (typically 100msec). */
1208 #define IL_PASSIVE_DWELL_TIME_24   (20) /* all times in msec */
1209 #define IL_PASSIVE_DWELL_TIME_52   (10)
1210 #define IL_PASSIVE_DWELL_BASE      (100)
1211 #define IL_CHANNEL_TUNE_TIME       5
1212
1213 static int
1214 il_send_scan_abort(struct il_priv *il)
1215 {
1216         int ret;
1217         struct il_rx_pkt *pkt;
1218         struct il_host_cmd cmd = {
1219                 .id = C_SCAN_ABORT,
1220                 .flags = CMD_WANT_SKB,
1221         };
1222
1223         /* Exit instantly with error when device is not ready
1224          * to receive scan abort command or it does not perform
1225          * hardware scan currently */
1226         if (!test_bit(S_READY, &il->status) ||
1227             !test_bit(S_GEO_CONFIGURED, &il->status) ||
1228             !test_bit(S_SCAN_HW, &il->status) ||
1229             test_bit(S_FW_ERROR, &il->status) ||
1230             test_bit(S_EXIT_PENDING, &il->status))
1231                 return -EIO;
1232
1233         ret = il_send_cmd_sync(il, &cmd);
1234         if (ret)
1235                 return ret;
1236
1237         pkt = (struct il_rx_pkt *)cmd.reply_page;
1238         if (pkt->u.status != CAN_ABORT_STATUS) {
1239                 /* The scan abort will return 1 for success or
1240                  * 2 for "failure".  A failure condition can be
1241                  * due to simply not being in an active scan which
1242                  * can occur if we send the scan abort before we
1243                  * the microcode has notified us that a scan is
1244                  * completed. */
1245                 D_SCAN("SCAN_ABORT ret %d.\n", pkt->u.status);
1246                 ret = -EIO;
1247         }
1248
1249         il_free_pages(il, cmd.reply_page);
1250         return ret;
1251 }
1252
1253 static void
1254 il_complete_scan(struct il_priv *il, bool aborted)
1255 {
1256         /* check if scan was requested from mac80211 */
1257         if (il->scan_request) {
1258                 D_SCAN("Complete scan in mac80211\n");
1259                 ieee80211_scan_completed(il->hw, aborted);
1260         }
1261
1262         il->scan_vif = NULL;
1263         il->scan_request = NULL;
1264 }
1265
1266 void
1267 il_force_scan_end(struct il_priv *il)
1268 {
1269         lockdep_assert_held(&il->mutex);
1270
1271         if (!test_bit(S_SCANNING, &il->status)) {
1272                 D_SCAN("Forcing scan end while not scanning\n");
1273                 return;
1274         }
1275
1276         D_SCAN("Forcing scan end\n");
1277         clear_bit(S_SCANNING, &il->status);
1278         clear_bit(S_SCAN_HW, &il->status);
1279         clear_bit(S_SCAN_ABORTING, &il->status);
1280         il_complete_scan(il, true);
1281 }
1282
1283 static void
1284 il_do_scan_abort(struct il_priv *il)
1285 {
1286         int ret;
1287
1288         lockdep_assert_held(&il->mutex);
1289
1290         if (!test_bit(S_SCANNING, &il->status)) {
1291                 D_SCAN("Not performing scan to abort\n");
1292                 return;
1293         }
1294
1295         if (test_and_set_bit(S_SCAN_ABORTING, &il->status)) {
1296                 D_SCAN("Scan abort in progress\n");
1297                 return;
1298         }
1299
1300         ret = il_send_scan_abort(il);
1301         if (ret) {
1302                 D_SCAN("Send scan abort failed %d\n", ret);
1303                 il_force_scan_end(il);
1304         } else
1305                 D_SCAN("Successfully send scan abort\n");
1306 }
1307
1308 /**
1309  * il_scan_cancel - Cancel any currently executing HW scan
1310  */
1311 int
1312 il_scan_cancel(struct il_priv *il)
1313 {
1314         D_SCAN("Queuing abort scan\n");
1315         queue_work(il->workqueue, &il->abort_scan);
1316         return 0;
1317 }
1318 EXPORT_SYMBOL(il_scan_cancel);
1319
1320 /**
1321  * il_scan_cancel_timeout - Cancel any currently executing HW scan
1322  * @ms: amount of time to wait (in milliseconds) for scan to abort
1323  *
1324  */
1325 int
1326 il_scan_cancel_timeout(struct il_priv *il, unsigned long ms)
1327 {
1328         unsigned long timeout = jiffies + msecs_to_jiffies(ms);
1329
1330         lockdep_assert_held(&il->mutex);
1331
1332         D_SCAN("Scan cancel timeout\n");
1333
1334         il_do_scan_abort(il);
1335
1336         while (time_before_eq(jiffies, timeout)) {
1337                 if (!test_bit(S_SCAN_HW, &il->status))
1338                         break;
1339                 msleep(20);
1340         }
1341
1342         return test_bit(S_SCAN_HW, &il->status);
1343 }
1344 EXPORT_SYMBOL(il_scan_cancel_timeout);
1345
1346 /* Service response to C_SCAN (0x80) */
1347 static void
1348 il_hdl_scan(struct il_priv *il, struct il_rx_buf *rxb)
1349 {
1350 #ifdef CONFIG_IWLEGACY_DEBUG
1351         struct il_rx_pkt *pkt = rxb_addr(rxb);
1352         struct il_scanreq_notification *notif =
1353             (struct il_scanreq_notification *)pkt->u.raw;
1354
1355         D_SCAN("Scan request status = 0x%x\n", notif->status);
1356 #endif
1357 }
1358
1359 /* Service N_SCAN_START (0x82) */
1360 static void
1361 il_hdl_scan_start(struct il_priv *il, struct il_rx_buf *rxb)
1362 {
1363         struct il_rx_pkt *pkt = rxb_addr(rxb);
1364         struct il_scanstart_notification *notif =
1365             (struct il_scanstart_notification *)pkt->u.raw;
1366         il->scan_start_tsf = le32_to_cpu(notif->tsf_low);
1367         D_SCAN("Scan start: " "%d [802.11%s] "
1368                "(TSF: 0x%08X:%08X) - %d (beacon timer %u)\n", notif->channel,
1369                notif->band ? "bg" : "a", le32_to_cpu(notif->tsf_high),
1370                le32_to_cpu(notif->tsf_low), notif->status, notif->beacon_timer);
1371 }
1372
1373 /* Service N_SCAN_RESULTS (0x83) */
1374 static void
1375 il_hdl_scan_results(struct il_priv *il, struct il_rx_buf *rxb)
1376 {
1377 #ifdef CONFIG_IWLEGACY_DEBUG
1378         struct il_rx_pkt *pkt = rxb_addr(rxb);
1379         struct il_scanresults_notification *notif =
1380             (struct il_scanresults_notification *)pkt->u.raw;
1381
1382         D_SCAN("Scan ch.res: " "%d [802.11%s] " "(TSF: 0x%08X:%08X) - %d "
1383                "elapsed=%lu usec\n", notif->channel, notif->band ? "bg" : "a",
1384                le32_to_cpu(notif->tsf_high), le32_to_cpu(notif->tsf_low),
1385                le32_to_cpu(notif->stats[0]),
1386                le32_to_cpu(notif->tsf_low) - il->scan_start_tsf);
1387 #endif
1388 }
1389
1390 /* Service N_SCAN_COMPLETE (0x84) */
1391 static void
1392 il_hdl_scan_complete(struct il_priv *il, struct il_rx_buf *rxb)
1393 {
1394
1395 #ifdef CONFIG_IWLEGACY_DEBUG
1396         struct il_rx_pkt *pkt = rxb_addr(rxb);
1397         struct il_scancomplete_notification *scan_notif = (void *)pkt->u.raw;
1398 #endif
1399
1400         D_SCAN("Scan complete: %d channels (TSF 0x%08X:%08X) - %d\n",
1401                scan_notif->scanned_channels, scan_notif->tsf_low,
1402                scan_notif->tsf_high, scan_notif->status);
1403
1404         /* The HW is no longer scanning */
1405         clear_bit(S_SCAN_HW, &il->status);
1406
1407         D_SCAN("Scan on %sGHz took %dms\n",
1408                (il->scan_band == IEEE80211_BAND_2GHZ) ? "2.4" : "5.2",
1409                jiffies_to_msecs(jiffies - il->scan_start));
1410
1411         queue_work(il->workqueue, &il->scan_completed);
1412 }
1413
1414 void
1415 il_setup_rx_scan_handlers(struct il_priv *il)
1416 {
1417         /* scan handlers */
1418         il->handlers[C_SCAN] = il_hdl_scan;
1419         il->handlers[N_SCAN_START] = il_hdl_scan_start;
1420         il->handlers[N_SCAN_RESULTS] = il_hdl_scan_results;
1421         il->handlers[N_SCAN_COMPLETE] = il_hdl_scan_complete;
1422 }
1423 EXPORT_SYMBOL(il_setup_rx_scan_handlers);
1424
1425 inline u16
1426 il_get_active_dwell_time(struct il_priv *il, enum ieee80211_band band,
1427                          u8 n_probes)
1428 {
1429         if (band == IEEE80211_BAND_5GHZ)
1430                 return IL_ACTIVE_DWELL_TIME_52 +
1431                     IL_ACTIVE_DWELL_FACTOR_52GHZ * (n_probes + 1);
1432         else
1433                 return IL_ACTIVE_DWELL_TIME_24 +
1434                     IL_ACTIVE_DWELL_FACTOR_24GHZ * (n_probes + 1);
1435 }
1436 EXPORT_SYMBOL(il_get_active_dwell_time);
1437
1438 u16
1439 il_get_passive_dwell_time(struct il_priv *il, enum ieee80211_band band,
1440                           struct ieee80211_vif *vif)
1441 {
1442         u16 value;
1443
1444         u16 passive =
1445             (band ==
1446              IEEE80211_BAND_2GHZ) ? IL_PASSIVE_DWELL_BASE +
1447             IL_PASSIVE_DWELL_TIME_24 : IL_PASSIVE_DWELL_BASE +
1448             IL_PASSIVE_DWELL_TIME_52;
1449
1450         if (il_is_any_associated(il)) {
1451                 /*
1452                  * If we're associated, we clamp the maximum passive
1453                  * dwell time to be 98% of the smallest beacon interval
1454                  * (minus 2 * channel tune time)
1455                  */
1456                 value = il->vif ? il->vif->bss_conf.beacon_int : 0;
1457                 if (value > IL_PASSIVE_DWELL_BASE || !value)
1458                         value = IL_PASSIVE_DWELL_BASE;
1459                 value = (value * 98) / 100 - IL_CHANNEL_TUNE_TIME * 2;
1460                 passive = min(value, passive);
1461         }
1462
1463         return passive;
1464 }
1465 EXPORT_SYMBOL(il_get_passive_dwell_time);
1466
1467 void
1468 il_init_scan_params(struct il_priv *il)
1469 {
1470         u8 ant_idx = fls(il->hw_params.valid_tx_ant) - 1;
1471         if (!il->scan_tx_ant[IEEE80211_BAND_5GHZ])
1472                 il->scan_tx_ant[IEEE80211_BAND_5GHZ] = ant_idx;
1473         if (!il->scan_tx_ant[IEEE80211_BAND_2GHZ])
1474                 il->scan_tx_ant[IEEE80211_BAND_2GHZ] = ant_idx;
1475 }
1476 EXPORT_SYMBOL(il_init_scan_params);
1477
1478 static int
1479 il_scan_initiate(struct il_priv *il, struct ieee80211_vif *vif)
1480 {
1481         int ret;
1482
1483         lockdep_assert_held(&il->mutex);
1484
1485         cancel_delayed_work(&il->scan_check);
1486
1487         if (!il_is_ready_rf(il)) {
1488                 IL_WARN("Request scan called when driver not ready.\n");
1489                 return -EIO;
1490         }
1491
1492         if (test_bit(S_SCAN_HW, &il->status)) {
1493                 D_SCAN("Multiple concurrent scan requests in parallel.\n");
1494                 return -EBUSY;
1495         }
1496
1497         if (test_bit(S_SCAN_ABORTING, &il->status)) {
1498                 D_SCAN("Scan request while abort pending.\n");
1499                 return -EBUSY;
1500         }
1501
1502         D_SCAN("Starting scan...\n");
1503
1504         set_bit(S_SCANNING, &il->status);
1505         il->scan_start = jiffies;
1506
1507         ret = il->ops->request_scan(il, vif);
1508         if (ret) {
1509                 clear_bit(S_SCANNING, &il->status);
1510                 return ret;
1511         }
1512
1513         queue_delayed_work(il->workqueue, &il->scan_check,
1514                            IL_SCAN_CHECK_WATCHDOG);
1515
1516         return 0;
1517 }
1518
1519 int
1520 il_mac_hw_scan(struct ieee80211_hw *hw, struct ieee80211_vif *vif,
1521                struct cfg80211_scan_request *req)
1522 {
1523         struct il_priv *il = hw->priv;
1524         int ret;
1525
1526         D_MAC80211("enter\n");
1527
1528         if (req->n_channels == 0)
1529                 return -EINVAL;
1530
1531         mutex_lock(&il->mutex);
1532
1533         if (test_bit(S_SCANNING, &il->status)) {
1534                 D_SCAN("Scan already in progress.\n");
1535                 ret = -EAGAIN;
1536                 goto out_unlock;
1537         }
1538
1539         /* mac80211 will only ask for one band at a time */
1540         il->scan_request = req;
1541         il->scan_vif = vif;
1542         il->scan_band = req->channels[0]->band;
1543
1544         ret = il_scan_initiate(il, vif);
1545
1546         D_MAC80211("leave\n");
1547
1548 out_unlock:
1549         mutex_unlock(&il->mutex);
1550
1551         return ret;
1552 }
1553 EXPORT_SYMBOL(il_mac_hw_scan);
1554
1555 static void
1556 il_bg_scan_check(struct work_struct *data)
1557 {
1558         struct il_priv *il =
1559             container_of(data, struct il_priv, scan_check.work);
1560
1561         D_SCAN("Scan check work\n");
1562
1563         /* Since we are here firmware does not finish scan and
1564          * most likely is in bad shape, so we don't bother to
1565          * send abort command, just force scan complete to mac80211 */
1566         mutex_lock(&il->mutex);
1567         il_force_scan_end(il);
1568         mutex_unlock(&il->mutex);
1569 }
1570
1571 /**
1572  * il_fill_probe_req - fill in all required fields and IE for probe request
1573  */
1574
1575 u16
1576 il_fill_probe_req(struct il_priv *il, struct ieee80211_mgmt *frame,
1577                   const u8 *ta, const u8 *ies, int ie_len, int left)
1578 {
1579         int len = 0;
1580         u8 *pos = NULL;
1581
1582         /* Make sure there is enough space for the probe request,
1583          * two mandatory IEs and the data */
1584         left -= 24;
1585         if (left < 0)
1586                 return 0;
1587
1588         frame->frame_control = cpu_to_le16(IEEE80211_STYPE_PROBE_REQ);
1589         memcpy(frame->da, il_bcast_addr, ETH_ALEN);
1590         memcpy(frame->sa, ta, ETH_ALEN);
1591         memcpy(frame->bssid, il_bcast_addr, ETH_ALEN);
1592         frame->seq_ctrl = 0;
1593
1594         len += 24;
1595
1596         /* ...next IE... */
1597         pos = &frame->u.probe_req.variable[0];
1598
1599         /* fill in our indirect SSID IE */
1600         left -= 2;
1601         if (left < 0)
1602                 return 0;
1603         *pos++ = WLAN_EID_SSID;
1604         *pos++ = 0;
1605
1606         len += 2;
1607
1608         if (WARN_ON(left < ie_len))
1609                 return len;
1610
1611         if (ies && ie_len) {
1612                 memcpy(pos, ies, ie_len);
1613                 len += ie_len;
1614         }
1615
1616         return (u16) len;
1617 }
1618 EXPORT_SYMBOL(il_fill_probe_req);
1619
1620 static void
1621 il_bg_abort_scan(struct work_struct *work)
1622 {
1623         struct il_priv *il = container_of(work, struct il_priv, abort_scan);
1624
1625         D_SCAN("Abort scan work\n");
1626
1627         /* We keep scan_check work queued in case when firmware will not
1628          * report back scan completed notification */
1629         mutex_lock(&il->mutex);
1630         il_scan_cancel_timeout(il, 200);
1631         mutex_unlock(&il->mutex);
1632 }
1633
1634 static void
1635 il_bg_scan_completed(struct work_struct *work)
1636 {
1637         struct il_priv *il = container_of(work, struct il_priv, scan_completed);
1638         bool aborted;
1639
1640         D_SCAN("Completed scan.\n");
1641
1642         cancel_delayed_work(&il->scan_check);
1643
1644         mutex_lock(&il->mutex);
1645
1646         aborted = test_and_clear_bit(S_SCAN_ABORTING, &il->status);
1647         if (aborted)
1648                 D_SCAN("Aborted scan completed.\n");
1649
1650         if (!test_and_clear_bit(S_SCANNING, &il->status)) {
1651                 D_SCAN("Scan already completed.\n");
1652                 goto out_settings;
1653         }
1654
1655         il_complete_scan(il, aborted);
1656
1657 out_settings:
1658         /* Can we still talk to firmware ? */
1659         if (!il_is_ready_rf(il))
1660                 goto out;
1661
1662         /*
1663          * We do not commit power settings while scan is pending,
1664          * do it now if the settings changed.
1665          */
1666         il_power_set_mode(il, &il->power_data.sleep_cmd_next, false);
1667         il_set_tx_power(il, il->tx_power_next, false);
1668
1669         il->ops->post_scan(il);
1670
1671 out:
1672         mutex_unlock(&il->mutex);
1673 }
1674
1675 void
1676 il_setup_scan_deferred_work(struct il_priv *il)
1677 {
1678         INIT_WORK(&il->scan_completed, il_bg_scan_completed);
1679         INIT_WORK(&il->abort_scan, il_bg_abort_scan);
1680         INIT_DELAYED_WORK(&il->scan_check, il_bg_scan_check);
1681 }
1682 EXPORT_SYMBOL(il_setup_scan_deferred_work);
1683
1684 void
1685 il_cancel_scan_deferred_work(struct il_priv *il)
1686 {
1687         cancel_work_sync(&il->abort_scan);
1688         cancel_work_sync(&il->scan_completed);
1689
1690         if (cancel_delayed_work_sync(&il->scan_check)) {
1691                 mutex_lock(&il->mutex);
1692                 il_force_scan_end(il);
1693                 mutex_unlock(&il->mutex);
1694         }
1695 }
1696 EXPORT_SYMBOL(il_cancel_scan_deferred_work);
1697
1698 /* il->sta_lock must be held */
1699 static void
1700 il_sta_ucode_activate(struct il_priv *il, u8 sta_id)
1701 {
1702
1703         if (!(il->stations[sta_id].used & IL_STA_DRIVER_ACTIVE))
1704                 IL_ERR("ACTIVATE a non DRIVER active station id %u addr %pM\n",
1705                        sta_id, il->stations[sta_id].sta.sta.addr);
1706
1707         if (il->stations[sta_id].used & IL_STA_UCODE_ACTIVE) {
1708                 D_ASSOC("STA id %u addr %pM already present"
1709                         " in uCode (according to driver)\n", sta_id,
1710                         il->stations[sta_id].sta.sta.addr);
1711         } else {
1712                 il->stations[sta_id].used |= IL_STA_UCODE_ACTIVE;
1713                 D_ASSOC("Added STA id %u addr %pM to uCode\n", sta_id,
1714                         il->stations[sta_id].sta.sta.addr);
1715         }
1716 }
1717
1718 static int
1719 il_process_add_sta_resp(struct il_priv *il, struct il_addsta_cmd *addsta,
1720                         struct il_rx_pkt *pkt, bool sync)
1721 {
1722         u8 sta_id = addsta->sta.sta_id;
1723         unsigned long flags;
1724         int ret = -EIO;
1725
1726         if (pkt->hdr.flags & IL_CMD_FAILED_MSK) {
1727                 IL_ERR("Bad return from C_ADD_STA (0x%08X)\n", pkt->hdr.flags);
1728                 return ret;
1729         }
1730
1731         D_INFO("Processing response for adding station %u\n", sta_id);
1732
1733         spin_lock_irqsave(&il->sta_lock, flags);
1734
1735         switch (pkt->u.add_sta.status) {
1736         case ADD_STA_SUCCESS_MSK:
1737                 D_INFO("C_ADD_STA PASSED\n");
1738                 il_sta_ucode_activate(il, sta_id);
1739                 ret = 0;
1740                 break;
1741         case ADD_STA_NO_ROOM_IN_TBL:
1742                 IL_ERR("Adding station %d failed, no room in table.\n", sta_id);
1743                 break;
1744         case ADD_STA_NO_BLOCK_ACK_RESOURCE:
1745                 IL_ERR("Adding station %d failed, no block ack resource.\n",
1746                        sta_id);
1747                 break;
1748         case ADD_STA_MODIFY_NON_EXIST_STA:
1749                 IL_ERR("Attempting to modify non-existing station %d\n",
1750                        sta_id);
1751                 break;
1752         default:
1753                 D_ASSOC("Received C_ADD_STA:(0x%08X)\n", pkt->u.add_sta.status);
1754                 break;
1755         }
1756
1757         D_INFO("%s station id %u addr %pM\n",
1758                il->stations[sta_id].sta.mode ==
1759                STA_CONTROL_MODIFY_MSK ? "Modified" : "Added", sta_id,
1760                il->stations[sta_id].sta.sta.addr);
1761
1762         /*
1763          * XXX: The MAC address in the command buffer is often changed from
1764          * the original sent to the device. That is, the MAC address
1765          * written to the command buffer often is not the same MAC address
1766          * read from the command buffer when the command returns. This
1767          * issue has not yet been resolved and this debugging is left to
1768          * observe the problem.
1769          */
1770         D_INFO("%s station according to cmd buffer %pM\n",
1771                il->stations[sta_id].sta.mode ==
1772                STA_CONTROL_MODIFY_MSK ? "Modified" : "Added", addsta->sta.addr);
1773         spin_unlock_irqrestore(&il->sta_lock, flags);
1774
1775         return ret;
1776 }
1777
1778 static void
1779 il_add_sta_callback(struct il_priv *il, struct il_device_cmd *cmd,
1780                     struct il_rx_pkt *pkt)
1781 {
1782         struct il_addsta_cmd *addsta = (struct il_addsta_cmd *)cmd->cmd.payload;
1783
1784         il_process_add_sta_resp(il, addsta, pkt, false);
1785
1786 }
1787
1788 int
1789 il_send_add_sta(struct il_priv *il, struct il_addsta_cmd *sta, u8 flags)
1790 {
1791         struct il_rx_pkt *pkt = NULL;
1792         int ret = 0;
1793         u8 data[sizeof(*sta)];
1794         struct il_host_cmd cmd = {
1795                 .id = C_ADD_STA,
1796                 .flags = flags,
1797                 .data = data,
1798         };
1799         u8 sta_id __maybe_unused = sta->sta.sta_id;
1800
1801         D_INFO("Adding sta %u (%pM) %ssynchronously\n", sta_id, sta->sta.addr,
1802                flags & CMD_ASYNC ? "a" : "");
1803
1804         if (flags & CMD_ASYNC)
1805                 cmd.callback = il_add_sta_callback;
1806         else {
1807                 cmd.flags |= CMD_WANT_SKB;
1808                 might_sleep();
1809         }
1810
1811         cmd.len = il->ops->build_addsta_hcmd(sta, data);
1812         ret = il_send_cmd(il, &cmd);
1813
1814         if (ret || (flags & CMD_ASYNC))
1815                 return ret;
1816
1817         if (ret == 0) {
1818                 pkt = (struct il_rx_pkt *)cmd.reply_page;
1819                 ret = il_process_add_sta_resp(il, sta, pkt, true);
1820         }
1821         il_free_pages(il, cmd.reply_page);
1822
1823         return ret;
1824 }
1825 EXPORT_SYMBOL(il_send_add_sta);
1826
1827 static void
1828 il_set_ht_add_station(struct il_priv *il, u8 idx, struct ieee80211_sta *sta)
1829 {
1830         struct ieee80211_sta_ht_cap *sta_ht_inf = &sta->ht_cap;
1831         __le32 sta_flags;
1832         u8 mimo_ps_mode;
1833
1834         if (!sta || !sta_ht_inf->ht_supported)
1835                 goto done;
1836
1837         mimo_ps_mode = (sta_ht_inf->cap & IEEE80211_HT_CAP_SM_PS) >> 2;
1838         D_ASSOC("spatial multiplexing power save mode: %s\n",
1839                 (mimo_ps_mode == WLAN_HT_CAP_SM_PS_STATIC) ? "static" :
1840                 (mimo_ps_mode == WLAN_HT_CAP_SM_PS_DYNAMIC) ? "dynamic" :
1841                 "disabled");
1842
1843         sta_flags = il->stations[idx].sta.station_flags;
1844
1845         sta_flags &= ~(STA_FLG_RTS_MIMO_PROT_MSK | STA_FLG_MIMO_DIS_MSK);
1846
1847         switch (mimo_ps_mode) {
1848         case WLAN_HT_CAP_SM_PS_STATIC:
1849                 sta_flags |= STA_FLG_MIMO_DIS_MSK;
1850                 break;
1851         case WLAN_HT_CAP_SM_PS_DYNAMIC:
1852                 sta_flags |= STA_FLG_RTS_MIMO_PROT_MSK;
1853                 break;
1854         case WLAN_HT_CAP_SM_PS_DISABLED:
1855                 break;
1856         default:
1857                 IL_WARN("Invalid MIMO PS mode %d\n", mimo_ps_mode);
1858                 break;
1859         }
1860
1861         sta_flags |=
1862             cpu_to_le32((u32) sta_ht_inf->
1863                         ampdu_factor << STA_FLG_MAX_AGG_SIZE_POS);
1864
1865         sta_flags |=
1866             cpu_to_le32((u32) sta_ht_inf->
1867                         ampdu_density << STA_FLG_AGG_MPDU_DENSITY_POS);
1868
1869         if (il_is_ht40_tx_allowed(il, &sta->ht_cap))
1870                 sta_flags |= STA_FLG_HT40_EN_MSK;
1871         else
1872                 sta_flags &= ~STA_FLG_HT40_EN_MSK;
1873
1874         il->stations[idx].sta.station_flags = sta_flags;
1875 done:
1876         return;
1877 }
1878
1879 /**
1880  * il_prep_station - Prepare station information for addition
1881  *
1882  * should be called with sta_lock held
1883  */
1884 u8
1885 il_prep_station(struct il_priv *il, const u8 *addr, bool is_ap,
1886                 struct ieee80211_sta *sta)
1887 {
1888         struct il_station_entry *station;
1889         int i;
1890         u8 sta_id = IL_INVALID_STATION;
1891         u16 rate;
1892
1893         if (is_ap)
1894                 sta_id = IL_AP_ID;
1895         else if (is_broadcast_ether_addr(addr))
1896                 sta_id = il->hw_params.bcast_id;
1897         else
1898                 for (i = IL_STA_ID; i < il->hw_params.max_stations; i++) {
1899                         if (!compare_ether_addr
1900                             (il->stations[i].sta.sta.addr, addr)) {
1901                                 sta_id = i;
1902                                 break;
1903                         }
1904
1905                         if (!il->stations[i].used &&
1906                             sta_id == IL_INVALID_STATION)
1907                                 sta_id = i;
1908                 }
1909
1910         /*
1911          * These two conditions have the same outcome, but keep them
1912          * separate
1913          */
1914         if (unlikely(sta_id == IL_INVALID_STATION))
1915                 return sta_id;
1916
1917         /*
1918          * uCode is not able to deal with multiple requests to add a
1919          * station. Keep track if one is in progress so that we do not send
1920          * another.
1921          */
1922         if (il->stations[sta_id].used & IL_STA_UCODE_INPROGRESS) {
1923                 D_INFO("STA %d already in process of being added.\n", sta_id);
1924                 return sta_id;
1925         }
1926
1927         if ((il->stations[sta_id].used & IL_STA_DRIVER_ACTIVE) &&
1928             (il->stations[sta_id].used & IL_STA_UCODE_ACTIVE) &&
1929             !compare_ether_addr(il->stations[sta_id].sta.sta.addr, addr)) {
1930                 D_ASSOC("STA %d (%pM) already added, not adding again.\n",
1931                         sta_id, addr);
1932                 return sta_id;
1933         }
1934
1935         station = &il->stations[sta_id];
1936         station->used = IL_STA_DRIVER_ACTIVE;
1937         D_ASSOC("Add STA to driver ID %d: %pM\n", sta_id, addr);
1938         il->num_stations++;
1939
1940         /* Set up the C_ADD_STA command to send to device */
1941         memset(&station->sta, 0, sizeof(struct il_addsta_cmd));
1942         memcpy(station->sta.sta.addr, addr, ETH_ALEN);
1943         station->sta.mode = 0;
1944         station->sta.sta.sta_id = sta_id;
1945         station->sta.station_flags = 0;
1946
1947         /*
1948          * OK to call unconditionally, since local stations (IBSS BSSID
1949          * STA and broadcast STA) pass in a NULL sta, and mac80211
1950          * doesn't allow HT IBSS.
1951          */
1952         il_set_ht_add_station(il, sta_id, sta);
1953
1954         /* 3945 only */
1955         rate = (il->band == IEEE80211_BAND_5GHZ) ? RATE_6M_PLCP : RATE_1M_PLCP;
1956         /* Turn on both antennas for the station... */
1957         station->sta.rate_n_flags = cpu_to_le16(rate | RATE_MCS_ANT_AB_MSK);
1958
1959         return sta_id;
1960
1961 }
1962 EXPORT_SYMBOL_GPL(il_prep_station);
1963
1964 #define STA_WAIT_TIMEOUT (HZ/2)
1965
1966 /**
1967  * il_add_station_common -
1968  */
1969 int
1970 il_add_station_common(struct il_priv *il, const u8 *addr, bool is_ap,
1971                       struct ieee80211_sta *sta, u8 *sta_id_r)
1972 {
1973         unsigned long flags_spin;
1974         int ret = 0;
1975         u8 sta_id;
1976         struct il_addsta_cmd sta_cmd;
1977
1978         *sta_id_r = 0;
1979         spin_lock_irqsave(&il->sta_lock, flags_spin);
1980         sta_id = il_prep_station(il, addr, is_ap, sta);
1981         if (sta_id == IL_INVALID_STATION) {
1982                 IL_ERR("Unable to prepare station %pM for addition\n", addr);
1983                 spin_unlock_irqrestore(&il->sta_lock, flags_spin);
1984                 return -EINVAL;
1985         }
1986
1987         /*
1988          * uCode is not able to deal with multiple requests to add a
1989          * station. Keep track if one is in progress so that we do not send
1990          * another.
1991          */
1992         if (il->stations[sta_id].used & IL_STA_UCODE_INPROGRESS) {
1993                 D_INFO("STA %d already in process of being added.\n", sta_id);
1994                 spin_unlock_irqrestore(&il->sta_lock, flags_spin);
1995                 return -EEXIST;
1996         }
1997
1998         if ((il->stations[sta_id].used & IL_STA_DRIVER_ACTIVE) &&
1999             (il->stations[sta_id].used & IL_STA_UCODE_ACTIVE)) {
2000                 D_ASSOC("STA %d (%pM) already added, not adding again.\n",
2001                         sta_id, addr);
2002                 spin_unlock_irqrestore(&il->sta_lock, flags_spin);
2003                 return -EEXIST;
2004         }
2005
2006         il->stations[sta_id].used |= IL_STA_UCODE_INPROGRESS;
2007         memcpy(&sta_cmd, &il->stations[sta_id].sta,
2008                sizeof(struct il_addsta_cmd));
2009         spin_unlock_irqrestore(&il->sta_lock, flags_spin);
2010
2011         /* Add station to device's station table */
2012         ret = il_send_add_sta(il, &sta_cmd, CMD_SYNC);
2013         if (ret) {
2014                 spin_lock_irqsave(&il->sta_lock, flags_spin);
2015                 IL_ERR("Adding station %pM failed.\n",
2016                        il->stations[sta_id].sta.sta.addr);
2017                 il->stations[sta_id].used &= ~IL_STA_DRIVER_ACTIVE;
2018                 il->stations[sta_id].used &= ~IL_STA_UCODE_INPROGRESS;
2019                 spin_unlock_irqrestore(&il->sta_lock, flags_spin);
2020         }
2021         *sta_id_r = sta_id;
2022         return ret;
2023 }
2024 EXPORT_SYMBOL(il_add_station_common);
2025
2026 /**
2027  * il_sta_ucode_deactivate - deactivate ucode status for a station
2028  *
2029  * il->sta_lock must be held
2030  */
2031 static void
2032 il_sta_ucode_deactivate(struct il_priv *il, u8 sta_id)
2033 {
2034         /* Ucode must be active and driver must be non active */
2035         if ((il->stations[sta_id].
2036              used & (IL_STA_UCODE_ACTIVE | IL_STA_DRIVER_ACTIVE)) !=
2037             IL_STA_UCODE_ACTIVE)
2038                 IL_ERR("removed non active STA %u\n", sta_id);
2039
2040         il->stations[sta_id].used &= ~IL_STA_UCODE_ACTIVE;
2041
2042         memset(&il->stations[sta_id], 0, sizeof(struct il_station_entry));
2043         D_ASSOC("Removed STA %u\n", sta_id);
2044 }
2045
2046 static int
2047 il_send_remove_station(struct il_priv *il, const u8 * addr, int sta_id,
2048                        bool temporary)
2049 {
2050         struct il_rx_pkt *pkt;
2051         int ret;
2052
2053         unsigned long flags_spin;
2054         struct il_rem_sta_cmd rm_sta_cmd;
2055
2056         struct il_host_cmd cmd = {
2057                 .id = C_REM_STA,
2058                 .len = sizeof(struct il_rem_sta_cmd),
2059                 .flags = CMD_SYNC,
2060                 .data = &rm_sta_cmd,
2061         };
2062
2063         memset(&rm_sta_cmd, 0, sizeof(rm_sta_cmd));
2064         rm_sta_cmd.num_sta = 1;
2065         memcpy(&rm_sta_cmd.addr, addr, ETH_ALEN);
2066
2067         cmd.flags |= CMD_WANT_SKB;
2068
2069         ret = il_send_cmd(il, &cmd);
2070
2071         if (ret)
2072                 return ret;
2073
2074         pkt = (struct il_rx_pkt *)cmd.reply_page;
2075         if (pkt->hdr.flags & IL_CMD_FAILED_MSK) {
2076                 IL_ERR("Bad return from C_REM_STA (0x%08X)\n", pkt->hdr.flags);
2077                 ret = -EIO;
2078         }
2079
2080         if (!ret) {
2081                 switch (pkt->u.rem_sta.status) {
2082                 case REM_STA_SUCCESS_MSK:
2083                         if (!temporary) {
2084                                 spin_lock_irqsave(&il->sta_lock, flags_spin);
2085                                 il_sta_ucode_deactivate(il, sta_id);
2086                                 spin_unlock_irqrestore(&il->sta_lock,
2087                                                        flags_spin);
2088                         }
2089                         D_ASSOC("C_REM_STA PASSED\n");
2090                         break;
2091                 default:
2092                         ret = -EIO;
2093                         IL_ERR("C_REM_STA failed\n");
2094                         break;
2095                 }
2096         }
2097         il_free_pages(il, cmd.reply_page);
2098
2099         return ret;
2100 }
2101
2102 /**
2103  * il_remove_station - Remove driver's knowledge of station.
2104  */
2105 int
2106 il_remove_station(struct il_priv *il, const u8 sta_id, const u8 * addr)
2107 {
2108         unsigned long flags;
2109
2110         if (!il_is_ready(il)) {
2111                 D_INFO("Unable to remove station %pM, device not ready.\n",
2112                        addr);
2113                 /*
2114                  * It is typical for stations to be removed when we are
2115                  * going down. Return success since device will be down
2116                  * soon anyway
2117                  */
2118                 return 0;
2119         }
2120
2121         D_ASSOC("Removing STA from driver:%d  %pM\n", sta_id, addr);
2122
2123         if (WARN_ON(sta_id == IL_INVALID_STATION))
2124                 return -EINVAL;
2125
2126         spin_lock_irqsave(&il->sta_lock, flags);
2127
2128         if (!(il->stations[sta_id].used & IL_STA_DRIVER_ACTIVE)) {
2129                 D_INFO("Removing %pM but non DRIVER active\n", addr);
2130                 goto out_err;
2131         }
2132
2133         if (!(il->stations[sta_id].used & IL_STA_UCODE_ACTIVE)) {
2134                 D_INFO("Removing %pM but non UCODE active\n", addr);
2135                 goto out_err;
2136         }
2137
2138         if (il->stations[sta_id].used & IL_STA_LOCAL) {
2139                 kfree(il->stations[sta_id].lq);
2140                 il->stations[sta_id].lq = NULL;
2141         }
2142
2143         il->stations[sta_id].used &= ~IL_STA_DRIVER_ACTIVE;
2144
2145         il->num_stations--;
2146
2147         BUG_ON(il->num_stations < 0);
2148
2149         spin_unlock_irqrestore(&il->sta_lock, flags);
2150
2151         return il_send_remove_station(il, addr, sta_id, false);
2152 out_err:
2153         spin_unlock_irqrestore(&il->sta_lock, flags);
2154         return -EINVAL;
2155 }
2156 EXPORT_SYMBOL_GPL(il_remove_station);
2157
2158 /**
2159  * il_clear_ucode_stations - clear ucode station table bits
2160  *
2161  * This function clears all the bits in the driver indicating
2162  * which stations are active in the ucode. Call when something
2163  * other than explicit station management would cause this in
2164  * the ucode, e.g. unassociated RXON.
2165  */
2166 void
2167 il_clear_ucode_stations(struct il_priv *il)
2168 {
2169         int i;
2170         unsigned long flags_spin;
2171         bool cleared = false;
2172
2173         D_INFO("Clearing ucode stations in driver\n");
2174
2175         spin_lock_irqsave(&il->sta_lock, flags_spin);
2176         for (i = 0; i < il->hw_params.max_stations; i++) {
2177                 if (il->stations[i].used & IL_STA_UCODE_ACTIVE) {
2178                         D_INFO("Clearing ucode active for station %d\n", i);
2179                         il->stations[i].used &= ~IL_STA_UCODE_ACTIVE;
2180                         cleared = true;
2181                 }
2182         }
2183         spin_unlock_irqrestore(&il->sta_lock, flags_spin);
2184
2185         if (!cleared)
2186                 D_INFO("No active stations found to be cleared\n");
2187 }
2188 EXPORT_SYMBOL(il_clear_ucode_stations);
2189
2190 /**
2191  * il_restore_stations() - Restore driver known stations to device
2192  *
2193  * All stations considered active by driver, but not present in ucode, is
2194  * restored.
2195  *
2196  * Function sleeps.
2197  */
2198 void
2199 il_restore_stations(struct il_priv *il)
2200 {
2201         struct il_addsta_cmd sta_cmd;
2202         struct il_link_quality_cmd lq;
2203         unsigned long flags_spin;
2204         int i;
2205         bool found = false;
2206         int ret;
2207         bool send_lq;
2208
2209         if (!il_is_ready(il)) {
2210                 D_INFO("Not ready yet, not restoring any stations.\n");
2211                 return;
2212         }
2213
2214         D_ASSOC("Restoring all known stations ... start.\n");
2215         spin_lock_irqsave(&il->sta_lock, flags_spin);
2216         for (i = 0; i < il->hw_params.max_stations; i++) {
2217                 if ((il->stations[i].used & IL_STA_DRIVER_ACTIVE) &&
2218                     !(il->stations[i].used & IL_STA_UCODE_ACTIVE)) {
2219                         D_ASSOC("Restoring sta %pM\n",
2220                                 il->stations[i].sta.sta.addr);
2221                         il->stations[i].sta.mode = 0;
2222                         il->stations[i].used |= IL_STA_UCODE_INPROGRESS;
2223                         found = true;
2224                 }
2225         }
2226
2227         for (i = 0; i < il->hw_params.max_stations; i++) {
2228                 if ((il->stations[i].used & IL_STA_UCODE_INPROGRESS)) {
2229                         memcpy(&sta_cmd, &il->stations[i].sta,
2230                                sizeof(struct il_addsta_cmd));
2231                         send_lq = false;
2232                         if (il->stations[i].lq) {
2233                                 memcpy(&lq, il->stations[i].lq,
2234                                        sizeof(struct il_link_quality_cmd));
2235                                 send_lq = true;
2236                         }
2237                         spin_unlock_irqrestore(&il->sta_lock, flags_spin);
2238                         ret = il_send_add_sta(il, &sta_cmd, CMD_SYNC);
2239                         if (ret) {
2240                                 spin_lock_irqsave(&il->sta_lock, flags_spin);
2241                                 IL_ERR("Adding station %pM failed.\n",
2242                                        il->stations[i].sta.sta.addr);
2243                                 il->stations[i].used &= ~IL_STA_DRIVER_ACTIVE;
2244                                 il->stations[i].used &=
2245                                     ~IL_STA_UCODE_INPROGRESS;
2246                                 spin_unlock_irqrestore(&il->sta_lock,
2247                                                        flags_spin);
2248                         }
2249                         /*
2250                          * Rate scaling has already been initialized, send
2251                          * current LQ command
2252                          */
2253                         if (send_lq)
2254                                 il_send_lq_cmd(il, &lq, CMD_SYNC, true);
2255                         spin_lock_irqsave(&il->sta_lock, flags_spin);
2256                         il->stations[i].used &= ~IL_STA_UCODE_INPROGRESS;
2257                 }
2258         }
2259
2260         spin_unlock_irqrestore(&il->sta_lock, flags_spin);
2261         if (!found)
2262                 D_INFO("Restoring all known stations"
2263                        " .... no stations to be restored.\n");
2264         else
2265                 D_INFO("Restoring all known stations" " .... complete.\n");
2266 }
2267 EXPORT_SYMBOL(il_restore_stations);
2268
2269 int
2270 il_get_free_ucode_key_idx(struct il_priv *il)
2271 {
2272         int i;
2273
2274         for (i = 0; i < il->sta_key_max_num; i++)
2275                 if (!test_and_set_bit(i, &il->ucode_key_table))
2276                         return i;
2277
2278         return WEP_INVALID_OFFSET;
2279 }
2280 EXPORT_SYMBOL(il_get_free_ucode_key_idx);
2281
2282 void
2283 il_dealloc_bcast_stations(struct il_priv *il)
2284 {
2285         unsigned long flags;
2286         int i;
2287
2288         spin_lock_irqsave(&il->sta_lock, flags);
2289         for (i = 0; i < il->hw_params.max_stations; i++) {
2290                 if (!(il->stations[i].used & IL_STA_BCAST))
2291                         continue;
2292
2293                 il->stations[i].used &= ~IL_STA_UCODE_ACTIVE;
2294                 il->num_stations--;
2295                 BUG_ON(il->num_stations < 0);
2296                 kfree(il->stations[i].lq);
2297                 il->stations[i].lq = NULL;
2298         }
2299         spin_unlock_irqrestore(&il->sta_lock, flags);
2300 }
2301 EXPORT_SYMBOL_GPL(il_dealloc_bcast_stations);
2302
2303 #ifdef CONFIG_IWLEGACY_DEBUG
2304 static void
2305 il_dump_lq_cmd(struct il_priv *il, struct il_link_quality_cmd *lq)
2306 {
2307         int i;
2308         D_RATE("lq station id 0x%x\n", lq->sta_id);
2309         D_RATE("lq ant 0x%X 0x%X\n", lq->general_params.single_stream_ant_msk,
2310                lq->general_params.dual_stream_ant_msk);
2311
2312         for (i = 0; i < LINK_QUAL_MAX_RETRY_NUM; i++)
2313                 D_RATE("lq idx %d 0x%X\n", i, lq->rs_table[i].rate_n_flags);
2314 }
2315 #else
2316 static inline void
2317 il_dump_lq_cmd(struct il_priv *il, struct il_link_quality_cmd *lq)
2318 {
2319 }
2320 #endif
2321
2322 /**
2323  * il_is_lq_table_valid() - Test one aspect of LQ cmd for validity
2324  *
2325  * It sometimes happens when a HT rate has been in use and we
2326  * loose connectivity with AP then mac80211 will first tell us that the
2327  * current channel is not HT anymore before removing the station. In such a
2328  * scenario the RXON flags will be updated to indicate we are not
2329  * communicating HT anymore, but the LQ command may still contain HT rates.
2330  * Test for this to prevent driver from sending LQ command between the time
2331  * RXON flags are updated and when LQ command is updated.
2332  */
2333 static bool
2334 il_is_lq_table_valid(struct il_priv *il, struct il_link_quality_cmd *lq)
2335 {
2336         int i;
2337
2338         if (il->ht.enabled)
2339                 return true;
2340
2341         D_INFO("Channel %u is not an HT channel\n", il->active.channel);
2342         for (i = 0; i < LINK_QUAL_MAX_RETRY_NUM; i++) {
2343                 if (le32_to_cpu(lq->rs_table[i].rate_n_flags) & RATE_MCS_HT_MSK) {
2344                         D_INFO("idx %d of LQ expects HT channel\n", i);
2345                         return false;
2346                 }
2347         }
2348         return true;
2349 }
2350
2351 /**
2352  * il_send_lq_cmd() - Send link quality command
2353  * @init: This command is sent as part of station initialization right
2354  *        after station has been added.
2355  *
2356  * The link quality command is sent as the last step of station creation.
2357  * This is the special case in which init is set and we call a callback in
2358  * this case to clear the state indicating that station creation is in
2359  * progress.
2360  */
2361 int
2362 il_send_lq_cmd(struct il_priv *il, struct il_link_quality_cmd *lq,
2363                u8 flags, bool init)
2364 {
2365         int ret = 0;
2366         unsigned long flags_spin;
2367
2368         struct il_host_cmd cmd = {
2369                 .id = C_TX_LINK_QUALITY_CMD,
2370                 .len = sizeof(struct il_link_quality_cmd),
2371                 .flags = flags,
2372                 .data = lq,
2373         };
2374
2375         if (WARN_ON(lq->sta_id == IL_INVALID_STATION))
2376                 return -EINVAL;
2377
2378         spin_lock_irqsave(&il->sta_lock, flags_spin);
2379         if (!(il->stations[lq->sta_id].used & IL_STA_DRIVER_ACTIVE)) {
2380                 spin_unlock_irqrestore(&il->sta_lock, flags_spin);
2381                 return -EINVAL;
2382         }
2383         spin_unlock_irqrestore(&il->sta_lock, flags_spin);
2384
2385         il_dump_lq_cmd(il, lq);
2386         BUG_ON(init && (cmd.flags & CMD_ASYNC));
2387
2388         if (il_is_lq_table_valid(il, lq))
2389                 ret = il_send_cmd(il, &cmd);
2390         else
2391                 ret = -EINVAL;
2392
2393         if (cmd.flags & CMD_ASYNC)
2394                 return ret;
2395
2396         if (init) {
2397                 D_INFO("init LQ command complete,"
2398                        " clearing sta addition status for sta %d\n",
2399                        lq->sta_id);
2400                 spin_lock_irqsave(&il->sta_lock, flags_spin);
2401                 il->stations[lq->sta_id].used &= ~IL_STA_UCODE_INPROGRESS;
2402                 spin_unlock_irqrestore(&il->sta_lock, flags_spin);
2403         }
2404         return ret;
2405 }
2406 EXPORT_SYMBOL(il_send_lq_cmd);
2407
2408 int
2409 il_mac_sta_remove(struct ieee80211_hw *hw, struct ieee80211_vif *vif,
2410                   struct ieee80211_sta *sta)
2411 {
2412         struct il_priv *il = hw->priv;
2413         struct il_station_priv_common *sta_common = (void *)sta->drv_priv;
2414         int ret;
2415
2416         D_INFO("received request to remove station %pM\n", sta->addr);
2417         mutex_lock(&il->mutex);
2418         D_INFO("proceeding to remove station %pM\n", sta->addr);
2419         ret = il_remove_station(il, sta_common->sta_id, sta->addr);
2420         if (ret)
2421                 IL_ERR("Error removing station %pM\n", sta->addr);
2422         mutex_unlock(&il->mutex);
2423         return ret;
2424 }
2425 EXPORT_SYMBOL(il_mac_sta_remove);
2426
2427 /************************** RX-FUNCTIONS ****************************/
2428 /*
2429  * Rx theory of operation
2430  *
2431  * Driver allocates a circular buffer of Receive Buffer Descriptors (RBDs),
2432  * each of which point to Receive Buffers to be filled by the NIC.  These get
2433  * used not only for Rx frames, but for any command response or notification
2434  * from the NIC.  The driver and NIC manage the Rx buffers by means
2435  * of idxes into the circular buffer.
2436  *
2437  * Rx Queue Indexes
2438  * The host/firmware share two idx registers for managing the Rx buffers.
2439  *
2440  * The READ idx maps to the first position that the firmware may be writing
2441  * to -- the driver can read up to (but not including) this position and get
2442  * good data.
2443  * The READ idx is managed by the firmware once the card is enabled.
2444  *
2445  * The WRITE idx maps to the last position the driver has read from -- the
2446  * position preceding WRITE is the last slot the firmware can place a packet.
2447  *
2448  * The queue is empty (no good data) if WRITE = READ - 1, and is full if
2449  * WRITE = READ.
2450  *
2451  * During initialization, the host sets up the READ queue position to the first
2452  * IDX position, and WRITE to the last (READ - 1 wrapped)
2453  *
2454  * When the firmware places a packet in a buffer, it will advance the READ idx
2455  * and fire the RX interrupt.  The driver can then query the READ idx and
2456  * process as many packets as possible, moving the WRITE idx forward as it
2457  * resets the Rx queue buffers with new memory.
2458  *
2459  * The management in the driver is as follows:
2460  * + A list of pre-allocated SKBs is stored in iwl->rxq->rx_free.  When
2461  *   iwl->rxq->free_count drops to or below RX_LOW_WATERMARK, work is scheduled
2462  *   to replenish the iwl->rxq->rx_free.
2463  * + In il_rx_replenish (scheduled) if 'processed' != 'read' then the
2464  *   iwl->rxq is replenished and the READ IDX is updated (updating the
2465  *   'processed' and 'read' driver idxes as well)
2466  * + A received packet is processed and handed to the kernel network stack,
2467  *   detached from the iwl->rxq.  The driver 'processed' idx is updated.
2468  * + The Host/Firmware iwl->rxq is replenished at tasklet time from the rx_free
2469  *   list. If there are no allocated buffers in iwl->rxq->rx_free, the READ
2470  *   IDX is not incremented and iwl->status(RX_STALLED) is set.  If there
2471  *   were enough free buffers and RX_STALLED is set it is cleared.
2472  *
2473  *
2474  * Driver sequence:
2475  *
2476  * il_rx_queue_alloc()   Allocates rx_free
2477  * il_rx_replenish()     Replenishes rx_free list from rx_used, and calls
2478  *                            il_rx_queue_restock
2479  * il_rx_queue_restock() Moves available buffers from rx_free into Rx
2480  *                            queue, updates firmware pointers, and updates
2481  *                            the WRITE idx.  If insufficient rx_free buffers
2482  *                            are available, schedules il_rx_replenish
2483  *
2484  * -- enable interrupts --
2485  * ISR - il_rx()         Detach il_rx_bufs from pool up to the
2486  *                            READ IDX, detaching the SKB from the pool.
2487  *                            Moves the packet buffer from queue to rx_used.
2488  *                            Calls il_rx_queue_restock to refill any empty
2489  *                            slots.
2490  * ...
2491  *
2492  */
2493
2494 /**
2495  * il_rx_queue_space - Return number of free slots available in queue.
2496  */
2497 int
2498 il_rx_queue_space(const struct il_rx_queue *q)
2499 {
2500         int s = q->read - q->write;
2501         if (s <= 0)
2502                 s += RX_QUEUE_SIZE;
2503         /* keep some buffer to not confuse full and empty queue */
2504         s -= 2;
2505         if (s < 0)
2506                 s = 0;
2507         return s;
2508 }
2509 EXPORT_SYMBOL(il_rx_queue_space);
2510
2511 /**
2512  * il_rx_queue_update_write_ptr - Update the write pointer for the RX queue
2513  */
2514 void
2515 il_rx_queue_update_write_ptr(struct il_priv *il, struct il_rx_queue *q)
2516 {
2517         unsigned long flags;
2518         u32 rx_wrt_ptr_reg = il->hw_params.rx_wrt_ptr_reg;
2519         u32 reg;
2520
2521         spin_lock_irqsave(&q->lock, flags);
2522
2523         if (q->need_update == 0)
2524                 goto exit_unlock;
2525
2526         /* If power-saving is in use, make sure device is awake */
2527         if (test_bit(S_POWER_PMI, &il->status)) {
2528                 reg = _il_rd(il, CSR_UCODE_DRV_GP1);
2529
2530                 if (reg & CSR_UCODE_DRV_GP1_BIT_MAC_SLEEP) {
2531                         D_INFO("Rx queue requesting wakeup," " GP1 = 0x%x\n",
2532                                reg);
2533                         il_set_bit(il, CSR_GP_CNTRL,
2534                                    CSR_GP_CNTRL_REG_FLAG_MAC_ACCESS_REQ);
2535                         goto exit_unlock;
2536                 }
2537
2538                 q->write_actual = (q->write & ~0x7);
2539                 il_wr(il, rx_wrt_ptr_reg, q->write_actual);
2540
2541                 /* Else device is assumed to be awake */
2542         } else {
2543                 /* Device expects a multiple of 8 */
2544                 q->write_actual = (q->write & ~0x7);
2545                 il_wr(il, rx_wrt_ptr_reg, q->write_actual);
2546         }
2547
2548         q->need_update = 0;
2549
2550 exit_unlock:
2551         spin_unlock_irqrestore(&q->lock, flags);
2552 }
2553 EXPORT_SYMBOL(il_rx_queue_update_write_ptr);
2554
2555 int
2556 il_rx_queue_alloc(struct il_priv *il)
2557 {
2558         struct il_rx_queue *rxq = &il->rxq;
2559         struct device *dev = &il->pci_dev->dev;
2560         int i;
2561
2562         spin_lock_init(&rxq->lock);
2563         INIT_LIST_HEAD(&rxq->rx_free);
2564         INIT_LIST_HEAD(&rxq->rx_used);
2565
2566         /* Alloc the circular buffer of Read Buffer Descriptors (RBDs) */
2567         rxq->bd =
2568             dma_alloc_coherent(dev, 4 * RX_QUEUE_SIZE, &rxq->bd_dma,
2569                                GFP_KERNEL);
2570         if (!rxq->bd)
2571                 goto err_bd;
2572
2573         rxq->rb_stts =
2574             dma_alloc_coherent(dev, sizeof(struct il_rb_status),
2575                                &rxq->rb_stts_dma, GFP_KERNEL);
2576         if (!rxq->rb_stts)
2577                 goto err_rb;
2578
2579         /* Fill the rx_used queue with _all_ of the Rx buffers */
2580         for (i = 0; i < RX_FREE_BUFFERS + RX_QUEUE_SIZE; i++)
2581                 list_add_tail(&rxq->pool[i].list, &rxq->rx_used);
2582
2583         /* Set us so that we have processed and used all buffers, but have
2584          * not restocked the Rx queue with fresh buffers */
2585         rxq->read = rxq->write = 0;
2586         rxq->write_actual = 0;
2587         rxq->free_count = 0;
2588         rxq->need_update = 0;
2589         return 0;
2590
2591 err_rb:
2592         dma_free_coherent(&il->pci_dev->dev, 4 * RX_QUEUE_SIZE, rxq->bd,
2593                           rxq->bd_dma);
2594 err_bd:
2595         return -ENOMEM;
2596 }
2597 EXPORT_SYMBOL(il_rx_queue_alloc);
2598
2599 void
2600 il_hdl_spectrum_measurement(struct il_priv *il, struct il_rx_buf *rxb)
2601 {
2602         struct il_rx_pkt *pkt = rxb_addr(rxb);
2603         struct il_spectrum_notification *report = &(pkt->u.spectrum_notif);
2604
2605         if (!report->state) {
2606                 D_11H("Spectrum Measure Notification: Start\n");
2607                 return;
2608         }
2609
2610         memcpy(&il->measure_report, report, sizeof(*report));
2611         il->measurement_status |= MEASUREMENT_READY;
2612 }
2613 EXPORT_SYMBOL(il_hdl_spectrum_measurement);
2614
2615 /*
2616  * returns non-zero if packet should be dropped
2617  */
2618 int
2619 il_set_decrypted_flag(struct il_priv *il, struct ieee80211_hdr *hdr,
2620                       u32 decrypt_res, struct ieee80211_rx_status *stats)
2621 {
2622         u16 fc = le16_to_cpu(hdr->frame_control);
2623
2624         /*
2625          * All contexts have the same setting here due to it being
2626          * a module parameter, so OK to check any context.
2627          */
2628         if (il->active.filter_flags & RXON_FILTER_DIS_DECRYPT_MSK)
2629                 return 0;
2630
2631         if (!(fc & IEEE80211_FCTL_PROTECTED))
2632                 return 0;
2633
2634         D_RX("decrypt_res:0x%x\n", decrypt_res);
2635         switch (decrypt_res & RX_RES_STATUS_SEC_TYPE_MSK) {
2636         case RX_RES_STATUS_SEC_TYPE_TKIP:
2637                 /* The uCode has got a bad phase 1 Key, pushes the packet.
2638                  * Decryption will be done in SW. */
2639                 if ((decrypt_res & RX_RES_STATUS_DECRYPT_TYPE_MSK) ==
2640                     RX_RES_STATUS_BAD_KEY_TTAK)
2641                         break;
2642
2643         case RX_RES_STATUS_SEC_TYPE_WEP:
2644                 if ((decrypt_res & RX_RES_STATUS_DECRYPT_TYPE_MSK) ==
2645                     RX_RES_STATUS_BAD_ICV_MIC) {
2646                         /* bad ICV, the packet is destroyed since the
2647                          * decryption is inplace, drop it */
2648                         D_RX("Packet destroyed\n");
2649                         return -1;
2650                 }
2651         case RX_RES_STATUS_SEC_TYPE_CCMP:
2652                 if ((decrypt_res & RX_RES_STATUS_DECRYPT_TYPE_MSK) ==
2653                     RX_RES_STATUS_DECRYPT_OK) {
2654                         D_RX("hw decrypt successfully!!!\n");
2655                         stats->flag |= RX_FLAG_DECRYPTED;
2656                 }
2657                 break;
2658
2659         default:
2660                 break;
2661         }
2662         return 0;
2663 }
2664 EXPORT_SYMBOL(il_set_decrypted_flag);
2665
2666 /**
2667  * il_txq_update_write_ptr - Send new write idx to hardware
2668  */
2669 void
2670 il_txq_update_write_ptr(struct il_priv *il, struct il_tx_queue *txq)
2671 {
2672         u32 reg = 0;
2673         int txq_id = txq->q.id;
2674
2675         if (txq->need_update == 0)
2676                 return;
2677
2678         /* if we're trying to save power */
2679         if (test_bit(S_POWER_PMI, &il->status)) {
2680                 /* wake up nic if it's powered down ...
2681                  * uCode will wake up, and interrupt us again, so next
2682                  * time we'll skip this part. */
2683                 reg = _il_rd(il, CSR_UCODE_DRV_GP1);
2684
2685                 if (reg & CSR_UCODE_DRV_GP1_BIT_MAC_SLEEP) {
2686                         D_INFO("Tx queue %d requesting wakeup," " GP1 = 0x%x\n",
2687                                txq_id, reg);
2688                         il_set_bit(il, CSR_GP_CNTRL,
2689                                    CSR_GP_CNTRL_REG_FLAG_MAC_ACCESS_REQ);
2690                         return;
2691                 }
2692
2693                 il_wr(il, HBUS_TARG_WRPTR, txq->q.write_ptr | (txq_id << 8));
2694
2695                 /*
2696                  * else not in power-save mode,
2697                  * uCode will never sleep when we're
2698                  * trying to tx (during RFKILL, we're not trying to tx).
2699                  */
2700         } else
2701                 _il_wr(il, HBUS_TARG_WRPTR, txq->q.write_ptr | (txq_id << 8));
2702         txq->need_update = 0;
2703 }
2704 EXPORT_SYMBOL(il_txq_update_write_ptr);
2705
2706 /**
2707  * il_tx_queue_unmap -  Unmap any remaining DMA mappings and free skb's
2708  */
2709 void
2710 il_tx_queue_unmap(struct il_priv *il, int txq_id)
2711 {
2712         struct il_tx_queue *txq = &il->txq[txq_id];
2713         struct il_queue *q = &txq->q;
2714
2715         if (q->n_bd == 0)
2716                 return;
2717
2718         while (q->write_ptr != q->read_ptr) {
2719                 il->ops->txq_free_tfd(il, txq);
2720                 q->read_ptr = il_queue_inc_wrap(q->read_ptr, q->n_bd);
2721         }
2722 }
2723 EXPORT_SYMBOL(il_tx_queue_unmap);
2724
2725 /**
2726  * il_tx_queue_free - Deallocate DMA queue.
2727  * @txq: Transmit queue to deallocate.
2728  *
2729  * Empty queue by removing and destroying all BD's.
2730  * Free all buffers.
2731  * 0-fill, but do not free "txq" descriptor structure.
2732  */
2733 void
2734 il_tx_queue_free(struct il_priv *il, int txq_id)
2735 {
2736         struct il_tx_queue *txq = &il->txq[txq_id];
2737         struct device *dev = &il->pci_dev->dev;
2738         int i;
2739
2740         il_tx_queue_unmap(il, txq_id);
2741
2742         /* De-alloc array of command/tx buffers */
2743         for (i = 0; i < TFD_TX_CMD_SLOTS; i++)
2744                 kfree(txq->cmd[i]);
2745
2746         /* De-alloc circular buffer of TFDs */
2747         if (txq->q.n_bd)
2748                 dma_free_coherent(dev, il->hw_params.tfd_size * txq->q.n_bd,
2749                                   txq->tfds, txq->q.dma_addr);
2750
2751         /* De-alloc array of per-TFD driver data */
2752         kfree(txq->skbs);
2753         txq->skbs = NULL;
2754
2755         /* deallocate arrays */
2756         kfree(txq->cmd);
2757         kfree(txq->meta);
2758         txq->cmd = NULL;
2759         txq->meta = NULL;
2760
2761         /* 0-fill queue descriptor structure */
2762         memset(txq, 0, sizeof(*txq));
2763 }
2764 EXPORT_SYMBOL(il_tx_queue_free);
2765
2766 /**
2767  * il_cmd_queue_unmap - Unmap any remaining DMA mappings from command queue
2768  */
2769 void
2770 il_cmd_queue_unmap(struct il_priv *il)
2771 {
2772         struct il_tx_queue *txq = &il->txq[il->cmd_queue];
2773         struct il_queue *q = &txq->q;
2774         int i;
2775
2776         if (q->n_bd == 0)
2777                 return;
2778
2779         while (q->read_ptr != q->write_ptr) {
2780                 i = il_get_cmd_idx(q, q->read_ptr, 0);
2781
2782                 if (txq->meta[i].flags & CMD_MAPPED) {
2783                         pci_unmap_single(il->pci_dev,
2784                                          dma_unmap_addr(&txq->meta[i], mapping),
2785                                          dma_unmap_len(&txq->meta[i], len),
2786                                          PCI_DMA_BIDIRECTIONAL);
2787                         txq->meta[i].flags = 0;
2788                 }
2789
2790                 q->read_ptr = il_queue_inc_wrap(q->read_ptr, q->n_bd);
2791         }
2792
2793         i = q->n_win;
2794         if (txq->meta[i].flags & CMD_MAPPED) {
2795                 pci_unmap_single(il->pci_dev,
2796                                  dma_unmap_addr(&txq->meta[i], mapping),
2797                                  dma_unmap_len(&txq->meta[i], len),
2798                                  PCI_DMA_BIDIRECTIONAL);
2799                 txq->meta[i].flags = 0;
2800         }
2801 }
2802 EXPORT_SYMBOL(il_cmd_queue_unmap);
2803
2804 /**
2805  * il_cmd_queue_free - Deallocate DMA queue.
2806  * @txq: Transmit queue to deallocate.
2807  *
2808  * Empty queue by removing and destroying all BD's.
2809  * Free all buffers.
2810  * 0-fill, but do not free "txq" descriptor structure.
2811  */
2812 void
2813 il_cmd_queue_free(struct il_priv *il)
2814 {
2815         struct il_tx_queue *txq = &il->txq[il->cmd_queue];
2816         struct device *dev = &il->pci_dev->dev;
2817         int i;
2818
2819         il_cmd_queue_unmap(il);
2820
2821         /* De-alloc array of command/tx buffers */
2822         for (i = 0; i <= TFD_CMD_SLOTS; i++)
2823                 kfree(txq->cmd[i]);
2824
2825         /* De-alloc circular buffer of TFDs */
2826         if (txq->q.n_bd)
2827                 dma_free_coherent(dev, il->hw_params.tfd_size * txq->q.n_bd,
2828                                   txq->tfds, txq->q.dma_addr);
2829
2830         /* deallocate arrays */
2831         kfree(txq->cmd);
2832         kfree(txq->meta);
2833         txq->cmd = NULL;
2834         txq->meta = NULL;
2835
2836         /* 0-fill queue descriptor structure */
2837         memset(txq, 0, sizeof(*txq));
2838 }
2839 EXPORT_SYMBOL(il_cmd_queue_free);
2840
2841 /*************** DMA-QUEUE-GENERAL-FUNCTIONS  *****
2842  * DMA services
2843  *
2844  * Theory of operation
2845  *
2846  * A Tx or Rx queue resides in host DRAM, and is comprised of a circular buffer
2847  * of buffer descriptors, each of which points to one or more data buffers for
2848  * the device to read from or fill.  Driver and device exchange status of each
2849  * queue via "read" and "write" pointers.  Driver keeps minimum of 2 empty
2850  * entries in each circular buffer, to protect against confusing empty and full
2851  * queue states.
2852  *
2853  * The device reads or writes the data in the queues via the device's several
2854  * DMA/FIFO channels.  Each queue is mapped to a single DMA channel.
2855  *
2856  * For Tx queue, there are low mark and high mark limits. If, after queuing
2857  * the packet for Tx, free space become < low mark, Tx queue stopped. When
2858  * reclaiming packets (on 'tx done IRQ), if free space become > high mark,
2859  * Tx queue resumed.
2860  *
2861  * See more detailed info in 4965.h.
2862  ***************************************************/
2863
2864 int
2865 il_queue_space(const struct il_queue *q)
2866 {
2867         int s = q->read_ptr - q->write_ptr;
2868
2869         if (q->read_ptr > q->write_ptr)
2870                 s -= q->n_bd;
2871
2872         if (s <= 0)
2873                 s += q->n_win;
2874         /* keep some reserve to not confuse empty and full situations */
2875         s -= 2;
2876         if (s < 0)
2877                 s = 0;
2878         return s;
2879 }
2880 EXPORT_SYMBOL(il_queue_space);
2881
2882
2883 /**
2884  * il_queue_init - Initialize queue's high/low-water and read/write idxes
2885  */
2886 static int
2887 il_queue_init(struct il_priv *il, struct il_queue *q, int count, int slots_num,
2888               u32 id)
2889 {
2890         q->n_bd = count;
2891         q->n_win = slots_num;
2892         q->id = id;
2893
2894         /* count must be power-of-two size, otherwise il_queue_inc_wrap
2895          * and il_queue_dec_wrap are broken. */
2896         BUG_ON(!is_power_of_2(count));
2897
2898         /* slots_num must be power-of-two size, otherwise
2899          * il_get_cmd_idx is broken. */
2900         BUG_ON(!is_power_of_2(slots_num));
2901
2902         q->low_mark = q->n_win / 4;
2903         if (q->low_mark < 4)
2904                 q->low_mark = 4;
2905
2906         q->high_mark = q->n_win / 8;
2907         if (q->high_mark < 2)
2908                 q->high_mark = 2;
2909
2910         q->write_ptr = q->read_ptr = 0;
2911
2912         return 0;
2913 }
2914
2915 /**
2916  * il_tx_queue_alloc - Alloc driver data and TFD CB for one Tx/cmd queue
2917  */
2918 static int
2919 il_tx_queue_alloc(struct il_priv *il, struct il_tx_queue *txq, u32 id)
2920 {
2921         struct device *dev = &il->pci_dev->dev;
2922         size_t tfd_sz = il->hw_params.tfd_size * TFD_QUEUE_SIZE_MAX;
2923
2924         /* Driver ilate data, only for Tx (not command) queues,
2925          * not shared with device. */
2926         if (id != il->cmd_queue) {
2927                 txq->skbs = kcalloc(TFD_QUEUE_SIZE_MAX, sizeof(struct skb *),
2928                                     GFP_KERNEL);
2929                 if (!txq->skbs) {
2930                         IL_ERR("Fail to alloc skbs\n");
2931                         goto error;
2932                 }
2933         } else
2934                 txq->skbs = NULL;
2935
2936         /* Circular buffer of transmit frame descriptors (TFDs),
2937          * shared with device */
2938         txq->tfds =
2939             dma_alloc_coherent(dev, tfd_sz, &txq->q.dma_addr, GFP_KERNEL);
2940         if (!txq->tfds) {
2941                 IL_ERR("Fail to alloc TFDs\n");
2942                 goto error;
2943         }
2944         txq->q.id = id;
2945
2946         return 0;
2947
2948 error:
2949         kfree(txq->skbs);
2950         txq->skbs = NULL;
2951
2952         return -ENOMEM;
2953 }
2954
2955 /**
2956  * il_tx_queue_init - Allocate and initialize one tx/cmd queue
2957  */
2958 int
2959 il_tx_queue_init(struct il_priv *il, struct il_tx_queue *txq, int slots_num,
2960                  u32 txq_id)
2961 {
2962         int i, len;
2963         int ret;
2964         int actual_slots = slots_num;
2965
2966         /*
2967          * Alloc buffer array for commands (Tx or other types of commands).
2968          * For the command queue (#4/#9), allocate command space + one big
2969          * command for scan, since scan command is very huge; the system will
2970          * not have two scans at the same time, so only one is needed.
2971          * For normal Tx queues (all other queues), no super-size command
2972          * space is needed.
2973          */
2974         if (txq_id == il->cmd_queue)
2975                 actual_slots++;
2976
2977         txq->meta =
2978             kzalloc(sizeof(struct il_cmd_meta) * actual_slots, GFP_KERNEL);
2979         txq->cmd =
2980             kzalloc(sizeof(struct il_device_cmd *) * actual_slots, GFP_KERNEL);
2981
2982         if (!txq->meta || !txq->cmd)
2983                 goto out_free_arrays;
2984
2985         len = sizeof(struct il_device_cmd);
2986         for (i = 0; i < actual_slots; i++) {
2987                 /* only happens for cmd queue */
2988                 if (i == slots_num)
2989                         len = IL_MAX_CMD_SIZE;
2990
2991                 txq->cmd[i] = kmalloc(len, GFP_KERNEL);
2992                 if (!txq->cmd[i])
2993                         goto err;
2994         }
2995
2996         /* Alloc driver data array and TFD circular buffer */
2997         ret = il_tx_queue_alloc(il, txq, txq_id);
2998         if (ret)
2999                 goto err;
3000
3001         txq->need_update = 0;
3002
3003         /*
3004          * For the default queues 0-3, set up the swq_id
3005          * already -- all others need to get one later
3006          * (if they need one at all).
3007          */
3008         if (txq_id < 4)
3009                 il_set_swq_id(txq, txq_id, txq_id);
3010
3011         /* TFD_QUEUE_SIZE_MAX must be power-of-two size, otherwise
3012          * il_queue_inc_wrap and il_queue_dec_wrap are broken. */
3013         BUILD_BUG_ON(TFD_QUEUE_SIZE_MAX & (TFD_QUEUE_SIZE_MAX - 1));
3014
3015         /* Initialize queue's high/low-water marks, and head/tail idxes */
3016         il_queue_init(il, &txq->q, TFD_QUEUE_SIZE_MAX, slots_num, txq_id);
3017
3018         /* Tell device where to find queue */
3019         il->ops->txq_init(il, txq);
3020
3021         return 0;
3022 err:
3023         for (i = 0; i < actual_slots; i++)
3024                 kfree(txq->cmd[i]);
3025 out_free_arrays:
3026         kfree(txq->meta);
3027         kfree(txq->cmd);
3028
3029         return -ENOMEM;
3030 }
3031 EXPORT_SYMBOL(il_tx_queue_init);
3032
3033 void
3034 il_tx_queue_reset(struct il_priv *il, struct il_tx_queue *txq, int slots_num,
3035                   u32 txq_id)
3036 {
3037         int actual_slots = slots_num;
3038
3039         if (txq_id == il->cmd_queue)
3040                 actual_slots++;
3041
3042         memset(txq->meta, 0, sizeof(struct il_cmd_meta) * actual_slots);
3043
3044         txq->need_update = 0;
3045
3046         /* Initialize queue's high/low-water marks, and head/tail idxes */
3047         il_queue_init(il, &txq->q, TFD_QUEUE_SIZE_MAX, slots_num, txq_id);
3048
3049         /* Tell device where to find queue */
3050         il->ops->txq_init(il, txq);
3051 }
3052 EXPORT_SYMBOL(il_tx_queue_reset);
3053
3054 /*************** HOST COMMAND QUEUE FUNCTIONS   *****/
3055
3056 /**
3057  * il_enqueue_hcmd - enqueue a uCode command
3058  * @il: device ilate data point
3059  * @cmd: a point to the ucode command structure
3060  *
3061  * The function returns < 0 values to indicate the operation is
3062  * failed. On success, it turns the idx (> 0) of command in the
3063  * command queue.
3064  */
3065 int
3066 il_enqueue_hcmd(struct il_priv *il, struct il_host_cmd *cmd)
3067 {
3068         struct il_tx_queue *txq = &il->txq[il->cmd_queue];
3069         struct il_queue *q = &txq->q;
3070         struct il_device_cmd *out_cmd;
3071         struct il_cmd_meta *out_meta;
3072         dma_addr_t phys_addr;
3073         unsigned long flags;
3074         int len;
3075         u32 idx;
3076         u16 fix_size;
3077
3078         cmd->len = il->ops->get_hcmd_size(cmd->id, cmd->len);
3079         fix_size = (u16) (cmd->len + sizeof(out_cmd->hdr));
3080
3081         /* If any of the command structures end up being larger than
3082          * the TFD_MAX_PAYLOAD_SIZE, and it sent as a 'small' command then
3083          * we will need to increase the size of the TFD entries
3084          * Also, check to see if command buffer should not exceed the size
3085          * of device_cmd and max_cmd_size. */
3086         BUG_ON((fix_size > TFD_MAX_PAYLOAD_SIZE) &&
3087                !(cmd->flags & CMD_SIZE_HUGE));
3088         BUG_ON(fix_size > IL_MAX_CMD_SIZE);
3089
3090         if (il_is_rfkill(il) || il_is_ctkill(il)) {
3091                 IL_WARN("Not sending command - %s KILL\n",
3092                         il_is_rfkill(il) ? "RF" : "CT");
3093                 return -EIO;
3094         }
3095
3096         spin_lock_irqsave(&il->hcmd_lock, flags);
3097
3098         if (il_queue_space(q) < ((cmd->flags & CMD_ASYNC) ? 2 : 1)) {
3099                 spin_unlock_irqrestore(&il->hcmd_lock, flags);
3100
3101                 IL_ERR("Restarting adapter due to command queue full\n");
3102                 queue_work(il->workqueue, &il->restart);
3103                 return -ENOSPC;
3104         }
3105
3106         idx = il_get_cmd_idx(q, q->write_ptr, cmd->flags & CMD_SIZE_HUGE);
3107         out_cmd = txq->cmd[idx];
3108         out_meta = &txq->meta[idx];
3109
3110         if (WARN_ON(out_meta->flags & CMD_MAPPED)) {
3111                 spin_unlock_irqrestore(&il->hcmd_lock, flags);
3112                 return -ENOSPC;
3113         }
3114
3115         memset(out_meta, 0, sizeof(*out_meta)); /* re-initialize to NULL */
3116         out_meta->flags = cmd->flags | CMD_MAPPED;
3117         if (cmd->flags & CMD_WANT_SKB)
3118                 out_meta->source = cmd;
3119         if (cmd->flags & CMD_ASYNC)
3120                 out_meta->callback = cmd->callback;
3121
3122         out_cmd->hdr.cmd = cmd->id;
3123         memcpy(&out_cmd->cmd.payload, cmd->data, cmd->len);
3124
3125         /* At this point, the out_cmd now has all of the incoming cmd
3126          * information */
3127
3128         out_cmd->hdr.flags = 0;
3129         out_cmd->hdr.sequence =
3130             cpu_to_le16(QUEUE_TO_SEQ(il->cmd_queue) | IDX_TO_SEQ(q->write_ptr));
3131         if (cmd->flags & CMD_SIZE_HUGE)
3132                 out_cmd->hdr.sequence |= SEQ_HUGE_FRAME;
3133         len = sizeof(struct il_device_cmd);
3134         if (idx == TFD_CMD_SLOTS)
3135                 len = IL_MAX_CMD_SIZE;
3136
3137 #ifdef CONFIG_IWLEGACY_DEBUG
3138         switch (out_cmd->hdr.cmd) {
3139         case C_TX_LINK_QUALITY_CMD:
3140         case C_SENSITIVITY:
3141                 D_HC_DUMP("Sending command %s (#%x), seq: 0x%04X, "
3142                           "%d bytes at %d[%d]:%d\n",
3143                           il_get_cmd_string(out_cmd->hdr.cmd), out_cmd->hdr.cmd,
3144                           le16_to_cpu(out_cmd->hdr.sequence), fix_size,
3145                           q->write_ptr, idx, il->cmd_queue);
3146                 break;
3147         default:
3148                 D_HC("Sending command %s (#%x), seq: 0x%04X, "
3149                      "%d bytes at %d[%d]:%d\n",
3150                      il_get_cmd_string(out_cmd->hdr.cmd), out_cmd->hdr.cmd,
3151                      le16_to_cpu(out_cmd->hdr.sequence), fix_size, q->write_ptr,
3152                      idx, il->cmd_queue);
3153         }
3154 #endif
3155         txq->need_update = 1;
3156
3157         if (il->ops->txq_update_byte_cnt_tbl)
3158                 /* Set up entry in queue's byte count circular buffer */
3159                 il->ops->txq_update_byte_cnt_tbl(il, txq, 0);
3160
3161         phys_addr =
3162             pci_map_single(il->pci_dev, &out_cmd->hdr, fix_size,
3163                            PCI_DMA_BIDIRECTIONAL);
3164         dma_unmap_addr_set(out_meta, mapping, phys_addr);
3165         dma_unmap_len_set(out_meta, len, fix_size);
3166
3167         il->ops->txq_attach_buf_to_tfd(il, txq, phys_addr, fix_size, 1,
3168                                             U32_PAD(cmd->len));
3169
3170         /* Increment and update queue's write idx */
3171         q->write_ptr = il_queue_inc_wrap(q->write_ptr, q->n_bd);
3172         il_txq_update_write_ptr(il, txq);
3173
3174         spin_unlock_irqrestore(&il->hcmd_lock, flags);
3175         return idx;
3176 }
3177
3178 /**
3179  * il_hcmd_queue_reclaim - Reclaim TX command queue entries already Tx'd
3180  *
3181  * When FW advances 'R' idx, all entries between old and new 'R' idx
3182  * need to be reclaimed. As result, some free space forms.  If there is
3183  * enough free space (> low mark), wake the stack that feeds us.
3184  */
3185 static void
3186 il_hcmd_queue_reclaim(struct il_priv *il, int txq_id, int idx, int cmd_idx)
3187 {
3188         struct il_tx_queue *txq = &il->txq[txq_id];
3189         struct il_queue *q = &txq->q;
3190         int nfreed = 0;
3191
3192         if (idx >= q->n_bd || il_queue_used(q, idx) == 0) {
3193                 IL_ERR("Read idx for DMA queue txq id (%d), idx %d, "
3194                        "is out of range [0-%d] %d %d.\n", txq_id, idx, q->n_bd,
3195                        q->write_ptr, q->read_ptr);
3196                 return;
3197         }
3198
3199         for (idx = il_queue_inc_wrap(idx, q->n_bd); q->read_ptr != idx;
3200              q->read_ptr = il_queue_inc_wrap(q->read_ptr, q->n_bd)) {
3201
3202                 if (nfreed++ > 0) {
3203                         IL_ERR("HCMD skipped: idx (%d) %d %d\n", idx,
3204                                q->write_ptr, q->read_ptr);
3205                         queue_work(il->workqueue, &il->restart);
3206                 }
3207
3208         }
3209 }
3210
3211 /**
3212  * il_tx_cmd_complete - Pull unused buffers off the queue and reclaim them
3213  * @rxb: Rx buffer to reclaim
3214  *
3215  * If an Rx buffer has an async callback associated with it the callback
3216  * will be executed.  The attached skb (if present) will only be freed
3217  * if the callback returns 1
3218  */
3219 void
3220 il_tx_cmd_complete(struct il_priv *il, struct il_rx_buf *rxb)
3221 {
3222         struct il_rx_pkt *pkt = rxb_addr(rxb);
3223         u16 sequence = le16_to_cpu(pkt->hdr.sequence);
3224         int txq_id = SEQ_TO_QUEUE(sequence);
3225         int idx = SEQ_TO_IDX(sequence);
3226         int cmd_idx;
3227         bool huge = !!(pkt->hdr.sequence & SEQ_HUGE_FRAME);
3228         struct il_device_cmd *cmd;
3229         struct il_cmd_meta *meta;
3230         struct il_tx_queue *txq = &il->txq[il->cmd_queue];
3231         unsigned long flags;
3232
3233         /* If a Tx command is being handled and it isn't in the actual
3234          * command queue then there a command routing bug has been introduced
3235          * in the queue management code. */
3236         if (WARN
3237             (txq_id != il->cmd_queue,
3238              "wrong command queue %d (should be %d), sequence 0x%X readp=%d writep=%d\n",
3239              txq_id, il->cmd_queue, sequence, il->txq[il->cmd_queue].q.read_ptr,
3240              il->txq[il->cmd_queue].q.write_ptr)) {
3241                 il_print_hex_error(il, pkt, 32);
3242                 return;
3243         }
3244
3245         cmd_idx = il_get_cmd_idx(&txq->q, idx, huge);
3246         cmd = txq->cmd[cmd_idx];
3247         meta = &txq->meta[cmd_idx];
3248
3249         txq->time_stamp = jiffies;
3250
3251         pci_unmap_single(il->pci_dev, dma_unmap_addr(meta, mapping),
3252                          dma_unmap_len(meta, len), PCI_DMA_BIDIRECTIONAL);
3253
3254         /* Input error checking is done when commands are added to queue. */
3255         if (meta->flags & CMD_WANT_SKB) {
3256                 meta->source->reply_page = (unsigned long)rxb_addr(rxb);
3257                 rxb->page = NULL;
3258         } else if (meta->callback)
3259                 meta->callback(il, cmd, pkt);
3260
3261         spin_lock_irqsave(&il->hcmd_lock, flags);
3262
3263         il_hcmd_queue_reclaim(il, txq_id, idx, cmd_idx);
3264
3265         if (!(meta->flags & CMD_ASYNC)) {
3266                 clear_bit(S_HCMD_ACTIVE, &il->status);
3267                 D_INFO("Clearing HCMD_ACTIVE for command %s\n",
3268                        il_get_cmd_string(cmd->hdr.cmd));
3269                 wake_up(&il->wait_command_queue);
3270         }
3271
3272         /* Mark as unmapped */
3273         meta->flags = 0;
3274
3275         spin_unlock_irqrestore(&il->hcmd_lock, flags);
3276 }
3277 EXPORT_SYMBOL(il_tx_cmd_complete);
3278
3279 MODULE_DESCRIPTION("iwl-legacy: common functions for 3945 and 4965");
3280 MODULE_VERSION(IWLWIFI_VERSION);
3281 MODULE_AUTHOR(DRV_COPYRIGHT " " DRV_AUTHOR);
3282 MODULE_LICENSE("GPL");
3283
3284 /*
3285  * set bt_coex_active to true, uCode will do kill/defer
3286  * every time the priority line is asserted (BT is sending signals on the
3287  * priority line in the PCIx).
3288  * set bt_coex_active to false, uCode will ignore the BT activity and
3289  * perform the normal operation
3290  *
3291  * User might experience transmit issue on some platform due to WiFi/BT
3292  * co-exist problem. The possible behaviors are:
3293  *   Able to scan and finding all the available AP
3294  *   Not able to associate with any AP
3295  * On those platforms, WiFi communication can be restored by set
3296  * "bt_coex_active" module parameter to "false"
3297  *
3298  * default: bt_coex_active = true (BT_COEX_ENABLE)
3299  */
3300 static bool bt_coex_active = true;
3301 module_param(bt_coex_active, bool, S_IRUGO);
3302 MODULE_PARM_DESC(bt_coex_active, "enable wifi/bluetooth co-exist");
3303
3304 u32 il_debug_level;
3305 EXPORT_SYMBOL(il_debug_level);
3306
3307 const u8 il_bcast_addr[ETH_ALEN] = { 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF };
3308 EXPORT_SYMBOL(il_bcast_addr);
3309
3310 #define MAX_BIT_RATE_40_MHZ 150 /* Mbps */
3311 #define MAX_BIT_RATE_20_MHZ 72  /* Mbps */
3312 static void
3313 il_init_ht_hw_capab(const struct il_priv *il,
3314                     struct ieee80211_sta_ht_cap *ht_info,
3315                     enum ieee80211_band band)
3316 {
3317         u16 max_bit_rate = 0;
3318         u8 rx_chains_num = il->hw_params.rx_chains_num;
3319         u8 tx_chains_num = il->hw_params.tx_chains_num;
3320
3321         ht_info->cap = 0;
3322         memset(&ht_info->mcs, 0, sizeof(ht_info->mcs));
3323
3324         ht_info->ht_supported = true;
3325
3326         ht_info->cap |= IEEE80211_HT_CAP_SGI_20;
3327         max_bit_rate = MAX_BIT_RATE_20_MHZ;
3328         if (il->hw_params.ht40_channel & BIT(band)) {
3329                 ht_info->cap |= IEEE80211_HT_CAP_SUP_WIDTH_20_40;
3330                 ht_info->cap |= IEEE80211_HT_CAP_SGI_40;
3331                 ht_info->mcs.rx_mask[4] = 0x01;
3332                 max_bit_rate = MAX_BIT_RATE_40_MHZ;
3333         }
3334
3335         if (il->cfg->mod_params->amsdu_size_8K)
3336                 ht_info->cap |= IEEE80211_HT_CAP_MAX_AMSDU;
3337
3338         ht_info->ampdu_factor = CFG_HT_RX_AMPDU_FACTOR_DEF;
3339         ht_info->ampdu_density = CFG_HT_MPDU_DENSITY_DEF;
3340
3341         ht_info->mcs.rx_mask[0] = 0xFF;
3342         if (rx_chains_num >= 2)
3343                 ht_info->mcs.rx_mask[1] = 0xFF;
3344         if (rx_chains_num >= 3)
3345                 ht_info->mcs.rx_mask[2] = 0xFF;
3346
3347         /* Highest supported Rx data rate */
3348         max_bit_rate *= rx_chains_num;
3349         WARN_ON(max_bit_rate & ~IEEE80211_HT_MCS_RX_HIGHEST_MASK);
3350         ht_info->mcs.rx_highest = cpu_to_le16(max_bit_rate);
3351
3352         /* Tx MCS capabilities */
3353         ht_info->mcs.tx_params = IEEE80211_HT_MCS_TX_DEFINED;
3354         if (tx_chains_num != rx_chains_num) {
3355                 ht_info->mcs.tx_params |= IEEE80211_HT_MCS_TX_RX_DIFF;
3356                 ht_info->mcs.tx_params |=
3357                     ((tx_chains_num -
3358                       1) << IEEE80211_HT_MCS_TX_MAX_STREAMS_SHIFT);
3359         }
3360 }
3361
3362 /**
3363  * il_init_geos - Initialize mac80211's geo/channel info based from eeprom
3364  */
3365 int
3366 il_init_geos(struct il_priv *il)
3367 {
3368         struct il_channel_info *ch;
3369         struct ieee80211_supported_band *sband;
3370         struct ieee80211_channel *channels;
3371         struct ieee80211_channel *geo_ch;
3372         struct ieee80211_rate *rates;
3373         int i = 0;
3374         s8 max_tx_power = 0;
3375
3376         if (il->bands[IEEE80211_BAND_2GHZ].n_bitrates ||
3377             il->bands[IEEE80211_BAND_5GHZ].n_bitrates) {
3378                 D_INFO("Geography modes already initialized.\n");
3379                 set_bit(S_GEO_CONFIGURED, &il->status);
3380                 return 0;
3381         }
3382
3383         channels =
3384             kzalloc(sizeof(struct ieee80211_channel) * il->channel_count,
3385                     GFP_KERNEL);
3386         if (!channels)
3387                 return -ENOMEM;
3388
3389         rates =
3390             kzalloc((sizeof(struct ieee80211_rate) * RATE_COUNT_LEGACY),
3391                     GFP_KERNEL);
3392         if (!rates) {
3393                 kfree(channels);
3394                 return -ENOMEM;
3395         }
3396
3397         /* 5.2GHz channels start after the 2.4GHz channels */
3398         sband = &il->bands[IEEE80211_BAND_5GHZ];
3399         sband->channels = &channels[ARRAY_SIZE(il_eeprom_band_1)];
3400         /* just OFDM */
3401         sband->bitrates = &rates[IL_FIRST_OFDM_RATE];
3402         sband->n_bitrates = RATE_COUNT_LEGACY - IL_FIRST_OFDM_RATE;
3403
3404         if (il->cfg->sku & IL_SKU_N)
3405                 il_init_ht_hw_capab(il, &sband->ht_cap, IEEE80211_BAND_5GHZ);
3406
3407         sband = &il->bands[IEEE80211_BAND_2GHZ];
3408         sband->channels = channels;
3409         /* OFDM & CCK */
3410         sband->bitrates = rates;
3411         sband->n_bitrates = RATE_COUNT_LEGACY;
3412
3413         if (il->cfg->sku & IL_SKU_N)
3414                 il_init_ht_hw_capab(il, &sband->ht_cap, IEEE80211_BAND_2GHZ);
3415
3416         il->ieee_channels = channels;
3417         il->ieee_rates = rates;
3418
3419         for (i = 0; i < il->channel_count; i++) {
3420                 ch = &il->channel_info[i];
3421
3422                 if (!il_is_channel_valid(ch))
3423                         continue;
3424
3425                 sband = &il->bands[ch->band];
3426
3427                 geo_ch = &sband->channels[sband->n_channels++];
3428
3429                 geo_ch->center_freq =
3430                     ieee80211_channel_to_frequency(ch->channel, ch->band);
3431                 geo_ch->max_power = ch->max_power_avg;
3432                 geo_ch->max_antenna_gain = 0xff;
3433                 geo_ch->hw_value = ch->channel;
3434
3435                 if (il_is_channel_valid(ch)) {
3436                         if (!(ch->flags & EEPROM_CHANNEL_IBSS))
3437                                 geo_ch->flags |= IEEE80211_CHAN_NO_IBSS;
3438
3439                         if (!(ch->flags & EEPROM_CHANNEL_ACTIVE))
3440                                 geo_ch->flags |= IEEE80211_CHAN_PASSIVE_SCAN;
3441
3442                         if (ch->flags & EEPROM_CHANNEL_RADAR)
3443                                 geo_ch->flags |= IEEE80211_CHAN_RADAR;
3444
3445                         geo_ch->flags |= ch->ht40_extension_channel;
3446
3447                         if (ch->max_power_avg > max_tx_power)
3448                                 max_tx_power = ch->max_power_avg;
3449                 } else {
3450                         geo_ch->flags |= IEEE80211_CHAN_DISABLED;
3451                 }
3452
3453                 D_INFO("Channel %d Freq=%d[%sGHz] %s flag=0x%X\n", ch->channel,
3454                        geo_ch->center_freq,
3455                        il_is_channel_a_band(ch) ? "5.2" : "2.4",
3456                        geo_ch->
3457                        flags & IEEE80211_CHAN_DISABLED ? "restricted" : "valid",
3458                        geo_ch->flags);
3459         }
3460
3461         il->tx_power_device_lmt = max_tx_power;
3462         il->tx_power_user_lmt = max_tx_power;
3463         il->tx_power_next = max_tx_power;
3464
3465         if (il->bands[IEEE80211_BAND_5GHZ].n_channels == 0 &&
3466             (il->cfg->sku & IL_SKU_A)) {
3467                 IL_INFO("Incorrectly detected BG card as ABG. "
3468                         "Please send your PCI ID 0x%04X:0x%04X to maintainer.\n",
3469                         il->pci_dev->device, il->pci_dev->subsystem_device);
3470                 il->cfg->sku &= ~IL_SKU_A;
3471         }
3472
3473         IL_INFO("Tunable channels: %d 802.11bg, %d 802.11a channels\n",
3474                 il->bands[IEEE80211_BAND_2GHZ].n_channels,
3475                 il->bands[IEEE80211_BAND_5GHZ].n_channels);
3476
3477         set_bit(S_GEO_CONFIGURED, &il->status);
3478
3479         return 0;
3480 }
3481 EXPORT_SYMBOL(il_init_geos);
3482
3483 /*
3484  * il_free_geos - undo allocations in il_init_geos
3485  */
3486 void
3487 il_free_geos(struct il_priv *il)
3488 {
3489         kfree(il->ieee_channels);
3490         kfree(il->ieee_rates);
3491         clear_bit(S_GEO_CONFIGURED, &il->status);
3492 }
3493 EXPORT_SYMBOL(il_free_geos);
3494
3495 static bool
3496 il_is_channel_extension(struct il_priv *il, enum ieee80211_band band,
3497                         u16 channel, u8 extension_chan_offset)
3498 {
3499         const struct il_channel_info *ch_info;
3500
3501         ch_info = il_get_channel_info(il, band, channel);
3502         if (!il_is_channel_valid(ch_info))
3503                 return false;
3504
3505         if (extension_chan_offset == IEEE80211_HT_PARAM_CHA_SEC_ABOVE)
3506                 return !(ch_info->
3507                          ht40_extension_channel & IEEE80211_CHAN_NO_HT40PLUS);
3508         else if (extension_chan_offset == IEEE80211_HT_PARAM_CHA_SEC_BELOW)
3509                 return !(ch_info->
3510                          ht40_extension_channel & IEEE80211_CHAN_NO_HT40MINUS);
3511
3512         return false;
3513 }
3514
3515 bool
3516 il_is_ht40_tx_allowed(struct il_priv *il, struct ieee80211_sta_ht_cap *ht_cap)
3517 {
3518         if (!il->ht.enabled || !il->ht.is_40mhz)
3519                 return false;
3520
3521         /*
3522          * We do not check for IEEE80211_HT_CAP_SUP_WIDTH_20_40
3523          * the bit will not set if it is pure 40MHz case
3524          */
3525         if (ht_cap && !ht_cap->ht_supported)
3526                 return false;
3527
3528 #ifdef CONFIG_IWLEGACY_DEBUGFS
3529         if (il->disable_ht40)
3530                 return false;
3531 #endif
3532
3533         return il_is_channel_extension(il, il->band,
3534                                        le16_to_cpu(il->staging.channel),
3535                                        il->ht.extension_chan_offset);
3536 }
3537 EXPORT_SYMBOL(il_is_ht40_tx_allowed);
3538
3539 static u16
3540 il_adjust_beacon_interval(u16 beacon_val, u16 max_beacon_val)
3541 {
3542         u16 new_val;
3543         u16 beacon_factor;
3544
3545         /*
3546          * If mac80211 hasn't given us a beacon interval, program
3547          * the default into the device.
3548          */
3549         if (!beacon_val)
3550                 return DEFAULT_BEACON_INTERVAL;
3551
3552         /*
3553          * If the beacon interval we obtained from the peer
3554          * is too large, we'll have to wake up more often
3555          * (and in IBSS case, we'll beacon too much)
3556          *
3557          * For example, if max_beacon_val is 4096, and the
3558          * requested beacon interval is 7000, we'll have to
3559          * use 3500 to be able to wake up on the beacons.
3560          *
3561          * This could badly influence beacon detection stats.
3562          */
3563
3564         beacon_factor = (beacon_val + max_beacon_val) / max_beacon_val;
3565         new_val = beacon_val / beacon_factor;
3566
3567         if (!new_val)
3568                 new_val = max_beacon_val;
3569
3570         return new_val;
3571 }
3572
3573 int
3574 il_send_rxon_timing(struct il_priv *il)
3575 {
3576         u64 tsf;
3577         s32 interval_tm, rem;
3578         struct ieee80211_conf *conf = NULL;
3579         u16 beacon_int;
3580         struct ieee80211_vif *vif = il->vif;
3581
3582         conf = &il->hw->conf;
3583
3584         lockdep_assert_held(&il->mutex);
3585
3586         memset(&il->timing, 0, sizeof(struct il_rxon_time_cmd));
3587
3588         il->timing.timestamp = cpu_to_le64(il->timestamp);
3589         il->timing.listen_interval = cpu_to_le16(conf->listen_interval);
3590
3591         beacon_int = vif ? vif->bss_conf.beacon_int : 0;
3592
3593         /*
3594          * TODO: For IBSS we need to get atim_win from mac80211,
3595          *       for now just always use 0
3596          */
3597         il->timing.atim_win = 0;
3598
3599         beacon_int =
3600             il_adjust_beacon_interval(beacon_int,
3601                                       il->hw_params.max_beacon_itrvl *
3602                                       TIME_UNIT);
3603         il->timing.beacon_interval = cpu_to_le16(beacon_int);
3604
3605         tsf = il->timestamp;    /* tsf is modifed by do_div: copy it */
3606         interval_tm = beacon_int * TIME_UNIT;
3607         rem = do_div(tsf, interval_tm);
3608         il->timing.beacon_init_val = cpu_to_le32(interval_tm - rem);
3609
3610         il->timing.dtim_period = vif ? (vif->bss_conf.dtim_period ? : 1) : 1;
3611
3612         D_ASSOC("beacon interval %d beacon timer %d beacon tim %d\n",
3613                 le16_to_cpu(il->timing.beacon_interval),
3614                 le32_to_cpu(il->timing.beacon_init_val),
3615                 le16_to_cpu(il->timing.atim_win));
3616
3617         return il_send_cmd_pdu(il, C_RXON_TIMING, sizeof(il->timing),
3618                                &il->timing);
3619 }
3620 EXPORT_SYMBOL(il_send_rxon_timing);
3621
3622 void
3623 il_set_rxon_hwcrypto(struct il_priv *il, int hw_decrypt)
3624 {
3625         struct il_rxon_cmd *rxon = &il->staging;
3626
3627         if (hw_decrypt)
3628                 rxon->filter_flags &= ~RXON_FILTER_DIS_DECRYPT_MSK;
3629         else
3630                 rxon->filter_flags |= RXON_FILTER_DIS_DECRYPT_MSK;
3631
3632 }
3633 EXPORT_SYMBOL(il_set_rxon_hwcrypto);
3634
3635 /* validate RXON structure is valid */
3636 int
3637 il_check_rxon_cmd(struct il_priv *il)
3638 {
3639         struct il_rxon_cmd *rxon = &il->staging;
3640         bool error = false;
3641
3642         if (rxon->flags & RXON_FLG_BAND_24G_MSK) {
3643                 if (rxon->flags & RXON_FLG_TGJ_NARROW_BAND_MSK) {
3644                         IL_WARN("check 2.4G: wrong narrow\n");
3645                         error = true;
3646                 }
3647                 if (rxon->flags & RXON_FLG_RADAR_DETECT_MSK) {
3648                         IL_WARN("check 2.4G: wrong radar\n");
3649                         error = true;
3650                 }
3651         } else {
3652                 if (!(rxon->flags & RXON_FLG_SHORT_SLOT_MSK)) {
3653                         IL_WARN("check 5.2G: not short slot!\n");
3654                         error = true;
3655                 }
3656                 if (rxon->flags & RXON_FLG_CCK_MSK) {
3657                         IL_WARN("check 5.2G: CCK!\n");
3658                         error = true;
3659                 }
3660         }
3661         if ((rxon->node_addr[0] | rxon->bssid_addr[0]) & 0x1) {
3662                 IL_WARN("mac/bssid mcast!\n");
3663                 error = true;
3664         }
3665
3666         /* make sure basic rates 6Mbps and 1Mbps are supported */
3667         if ((rxon->ofdm_basic_rates & RATE_6M_MASK) == 0 &&
3668             (rxon->cck_basic_rates & RATE_1M_MASK) == 0) {
3669                 IL_WARN("neither 1 nor 6 are basic\n");
3670                 error = true;
3671         }
3672
3673         if (le16_to_cpu(rxon->assoc_id) > 2007) {
3674                 IL_WARN("aid > 2007\n");
3675                 error = true;
3676         }
3677
3678         if ((rxon->flags & (RXON_FLG_CCK_MSK | RXON_FLG_SHORT_SLOT_MSK)) ==
3679             (RXON_FLG_CCK_MSK | RXON_FLG_SHORT_SLOT_MSK)) {
3680                 IL_WARN("CCK and short slot\n");
3681                 error = true;
3682         }
3683
3684         if ((rxon->flags & (RXON_FLG_CCK_MSK | RXON_FLG_AUTO_DETECT_MSK)) ==
3685             (RXON_FLG_CCK_MSK | RXON_FLG_AUTO_DETECT_MSK)) {
3686                 IL_WARN("CCK and auto detect");
3687                 error = true;
3688         }
3689
3690         if ((rxon->
3691              flags & (RXON_FLG_AUTO_DETECT_MSK | RXON_FLG_TGG_PROTECT_MSK)) ==
3692             RXON_FLG_TGG_PROTECT_MSK) {
3693                 IL_WARN("TGg but no auto-detect\n");
3694                 error = true;
3695         }
3696
3697         if (error)
3698                 IL_WARN("Tuning to channel %d\n", le16_to_cpu(rxon->channel));
3699
3700         if (error) {
3701                 IL_ERR("Invalid RXON\n");
3702                 return -EINVAL;
3703         }
3704         return 0;
3705 }
3706 EXPORT_SYMBOL(il_check_rxon_cmd);
3707
3708 /**
3709  * il_full_rxon_required - check if full RXON (vs RXON_ASSOC) cmd is needed
3710  * @il: staging_rxon is compared to active_rxon
3711  *
3712  * If the RXON structure is changing enough to require a new tune,
3713  * or is clearing the RXON_FILTER_ASSOC_MSK, then return 1 to indicate that
3714  * a new tune (full RXON command, rather than RXON_ASSOC cmd) is required.
3715  */
3716 int
3717 il_full_rxon_required(struct il_priv *il)
3718 {
3719         const struct il_rxon_cmd *staging = &il->staging;
3720         const struct il_rxon_cmd *active = &il->active;
3721
3722 #define CHK(cond)                                                       \
3723         if ((cond)) {                                                   \
3724                 D_INFO("need full RXON - " #cond "\n"); \
3725                 return 1;                                               \
3726         }
3727
3728 #define CHK_NEQ(c1, c2)                                         \
3729         if ((c1) != (c2)) {                                     \
3730                 D_INFO("need full RXON - "      \
3731                                #c1 " != " #c2 " - %d != %d\n",  \
3732                                (c1), (c2));                     \
3733                 return 1;                                       \
3734         }
3735
3736         /* These items are only settable from the full RXON command */
3737         CHK(!il_is_associated(il));
3738         CHK(compare_ether_addr(staging->bssid_addr, active->bssid_addr));
3739         CHK(compare_ether_addr(staging->node_addr, active->node_addr));
3740         CHK(compare_ether_addr
3741             (staging->wlap_bssid_addr, active->wlap_bssid_addr));
3742         CHK_NEQ(staging->dev_type, active->dev_type);
3743         CHK_NEQ(staging->channel, active->channel);
3744         CHK_NEQ(staging->air_propagation, active->air_propagation);
3745         CHK_NEQ(staging->ofdm_ht_single_stream_basic_rates,
3746                 active->ofdm_ht_single_stream_basic_rates);
3747         CHK_NEQ(staging->ofdm_ht_dual_stream_basic_rates,
3748                 active->ofdm_ht_dual_stream_basic_rates);
3749         CHK_NEQ(staging->assoc_id, active->assoc_id);
3750
3751         /* flags, filter_flags, ofdm_basic_rates, and cck_basic_rates can
3752          * be updated with the RXON_ASSOC command -- however only some
3753          * flag transitions are allowed using RXON_ASSOC */
3754
3755         /* Check if we are not switching bands */
3756         CHK_NEQ(staging->flags & RXON_FLG_BAND_24G_MSK,
3757                 active->flags & RXON_FLG_BAND_24G_MSK);
3758
3759         /* Check if we are switching association toggle */
3760         CHK_NEQ(staging->filter_flags & RXON_FILTER_ASSOC_MSK,
3761                 active->filter_flags & RXON_FILTER_ASSOC_MSK);
3762
3763 #undef CHK
3764 #undef CHK_NEQ
3765
3766         return 0;
3767 }
3768 EXPORT_SYMBOL(il_full_rxon_required);
3769
3770 u8
3771 il_get_lowest_plcp(struct il_priv *il)
3772 {
3773         /*
3774          * Assign the lowest rate -- should really get this from
3775          * the beacon skb from mac80211.
3776          */
3777         if (il->staging.flags & RXON_FLG_BAND_24G_MSK)
3778                 return RATE_1M_PLCP;
3779         else
3780                 return RATE_6M_PLCP;
3781 }
3782 EXPORT_SYMBOL(il_get_lowest_plcp);
3783
3784 static void
3785 _il_set_rxon_ht(struct il_priv *il, struct il_ht_config *ht_conf)
3786 {
3787         struct il_rxon_cmd *rxon = &il->staging;
3788
3789         if (!il->ht.enabled) {
3790                 rxon->flags &=
3791                     ~(RXON_FLG_CHANNEL_MODE_MSK |
3792                       RXON_FLG_CTRL_CHANNEL_LOC_HI_MSK | RXON_FLG_HT40_PROT_MSK
3793                       | RXON_FLG_HT_PROT_MSK);
3794                 return;
3795         }
3796
3797         rxon->flags |=
3798             cpu_to_le32(il->ht.protection << RXON_FLG_HT_OPERATING_MODE_POS);
3799
3800         /* Set up channel bandwidth:
3801          * 20 MHz only, 20/40 mixed or pure 40 if ht40 ok */
3802         /* clear the HT channel mode before set the mode */
3803         rxon->flags &=
3804             ~(RXON_FLG_CHANNEL_MODE_MSK | RXON_FLG_CTRL_CHANNEL_LOC_HI_MSK);
3805         if (il_is_ht40_tx_allowed(il, NULL)) {
3806                 /* pure ht40 */
3807                 if (il->ht.protection == IEEE80211_HT_OP_MODE_PROTECTION_20MHZ) {
3808                         rxon->flags |= RXON_FLG_CHANNEL_MODE_PURE_40;
3809                         /* Note: control channel is opposite of extension channel */
3810                         switch (il->ht.extension_chan_offset) {
3811                         case IEEE80211_HT_PARAM_CHA_SEC_ABOVE:
3812                                 rxon->flags &=
3813                                     ~RXON_FLG_CTRL_CHANNEL_LOC_HI_MSK;
3814                                 break;
3815                         case IEEE80211_HT_PARAM_CHA_SEC_BELOW:
3816                                 rxon->flags |= RXON_FLG_CTRL_CHANNEL_LOC_HI_MSK;
3817                                 break;
3818                         }
3819                 } else {
3820                         /* Note: control channel is opposite of extension channel */
3821                         switch (il->ht.extension_chan_offset) {
3822                         case IEEE80211_HT_PARAM_CHA_SEC_ABOVE:
3823                                 rxon->flags &=
3824                                     ~(RXON_FLG_CTRL_CHANNEL_LOC_HI_MSK);
3825                                 rxon->flags |= RXON_FLG_CHANNEL_MODE_MIXED;
3826                                 break;
3827                         case IEEE80211_HT_PARAM_CHA_SEC_BELOW:
3828                                 rxon->flags |= RXON_FLG_CTRL_CHANNEL_LOC_HI_MSK;
3829                                 rxon->flags |= RXON_FLG_CHANNEL_MODE_MIXED;
3830                                 break;
3831                         case IEEE80211_HT_PARAM_CHA_SEC_NONE:
3832                         default:
3833                                 /* channel location only valid if in Mixed mode */
3834                                 IL_ERR("invalid extension channel offset\n");
3835                                 break;
3836                         }
3837                 }
3838         } else {
3839                 rxon->flags |= RXON_FLG_CHANNEL_MODE_LEGACY;
3840         }
3841
3842         if (il->ops->set_rxon_chain)
3843                 il->ops->set_rxon_chain(il);
3844
3845         D_ASSOC("rxon flags 0x%X operation mode :0x%X "
3846                 "extension channel offset 0x%x\n", le32_to_cpu(rxon->flags),
3847                 il->ht.protection, il->ht.extension_chan_offset);
3848 }
3849
3850 void
3851 il_set_rxon_ht(struct il_priv *il, struct il_ht_config *ht_conf)
3852 {
3853         _il_set_rxon_ht(il, ht_conf);
3854 }
3855 EXPORT_SYMBOL(il_set_rxon_ht);
3856
3857 /* Return valid, unused, channel for a passive scan to reset the RF */
3858 u8
3859 il_get_single_channel_number(struct il_priv *il, enum ieee80211_band band)
3860 {
3861         const struct il_channel_info *ch_info;
3862         int i;
3863         u8 channel = 0;
3864         u8 min, max;
3865
3866         if (band == IEEE80211_BAND_5GHZ) {
3867                 min = 14;
3868                 max = il->channel_count;
3869         } else {
3870                 min = 0;
3871                 max = 14;
3872         }
3873
3874         for (i = min; i < max; i++) {
3875                 channel = il->channel_info[i].channel;
3876                 if (channel == le16_to_cpu(il->staging.channel))
3877                         continue;
3878
3879                 ch_info = il_get_channel_info(il, band, channel);
3880                 if (il_is_channel_valid(ch_info))
3881                         break;
3882         }
3883
3884         return channel;
3885 }
3886 EXPORT_SYMBOL(il_get_single_channel_number);
3887
3888 /**
3889  * il_set_rxon_channel - Set the band and channel values in staging RXON
3890  * @ch: requested channel as a pointer to struct ieee80211_channel
3891
3892  * NOTE:  Does not commit to the hardware; it sets appropriate bit fields
3893  * in the staging RXON flag structure based on the ch->band
3894  */
3895 int
3896 il_set_rxon_channel(struct il_priv *il, struct ieee80211_channel *ch)
3897 {
3898         enum ieee80211_band band = ch->band;
3899         u16 channel = ch->hw_value;
3900
3901         if (le16_to_cpu(il->staging.channel) == channel && il->band == band)
3902                 return 0;
3903
3904         il->staging.channel = cpu_to_le16(channel);
3905         if (band == IEEE80211_BAND_5GHZ)
3906                 il->staging.flags &= ~RXON_FLG_BAND_24G_MSK;
3907         else
3908                 il->staging.flags |= RXON_FLG_BAND_24G_MSK;
3909
3910         il->band = band;
3911
3912         D_INFO("Staging channel set to %d [%d]\n", channel, band);
3913
3914         return 0;
3915 }
3916 EXPORT_SYMBOL(il_set_rxon_channel);
3917
3918 void
3919 il_set_flags_for_band(struct il_priv *il, enum ieee80211_band band,
3920                       struct ieee80211_vif *vif)
3921 {
3922         if (band == IEEE80211_BAND_5GHZ) {
3923                 il->staging.flags &=
3924                     ~(RXON_FLG_BAND_24G_MSK | RXON_FLG_AUTO_DETECT_MSK |
3925                       RXON_FLG_CCK_MSK);
3926                 il->staging.flags |= RXON_FLG_SHORT_SLOT_MSK;
3927         } else {
3928                 /* Copied from il_post_associate() */
3929                 if (vif && vif->bss_conf.use_short_slot)
3930                         il->staging.flags |= RXON_FLG_SHORT_SLOT_MSK;
3931                 else
3932                         il->staging.flags &= ~RXON_FLG_SHORT_SLOT_MSK;
3933
3934                 il->staging.flags |= RXON_FLG_BAND_24G_MSK;
3935                 il->staging.flags |= RXON_FLG_AUTO_DETECT_MSK;
3936                 il->staging.flags &= ~RXON_FLG_CCK_MSK;
3937         }
3938 }
3939 EXPORT_SYMBOL(il_set_flags_for_band);
3940
3941 /*
3942  * initialize rxon structure with default values from eeprom
3943  */
3944 void
3945 il_connection_init_rx_config(struct il_priv *il)
3946 {
3947         const struct il_channel_info *ch_info;
3948
3949         memset(&il->staging, 0, sizeof(il->staging));
3950
3951         if (!il->vif) {
3952                 il->staging.dev_type = RXON_DEV_TYPE_ESS;
3953         } else if (il->vif->type == NL80211_IFTYPE_STATION) {
3954                 il->staging.dev_type = RXON_DEV_TYPE_ESS;
3955                 il->staging.filter_flags = RXON_FILTER_ACCEPT_GRP_MSK;
3956         } else if (il->vif->type == NL80211_IFTYPE_ADHOC) {
3957                 il->staging.dev_type = RXON_DEV_TYPE_IBSS;
3958                 il->staging.flags = RXON_FLG_SHORT_PREAMBLE_MSK;
3959                 il->staging.filter_flags =
3960                     RXON_FILTER_BCON_AWARE_MSK | RXON_FILTER_ACCEPT_GRP_MSK;
3961         } else {
3962                 IL_ERR("Unsupported interface type %d\n", il->vif->type);
3963                 return;
3964         }
3965
3966 #if 0
3967         /* TODO:  Figure out when short_preamble would be set and cache from
3968          * that */
3969         if (!hw_to_local(il->hw)->short_preamble)
3970                 il->staging.flags &= ~RXON_FLG_SHORT_PREAMBLE_MSK;
3971         else
3972                 il->staging.flags |= RXON_FLG_SHORT_PREAMBLE_MSK;
3973 #endif
3974
3975         ch_info =
3976             il_get_channel_info(il, il->band, le16_to_cpu(il->active.channel));
3977
3978         if (!ch_info)
3979                 ch_info = &il->channel_info[0];
3980
3981         il->staging.channel = cpu_to_le16(ch_info->channel);
3982         il->band = ch_info->band;
3983
3984         il_set_flags_for_band(il, il->band, il->vif);
3985
3986         il->staging.ofdm_basic_rates =
3987             (IL_OFDM_RATES_MASK >> IL_FIRST_OFDM_RATE) & 0xFF;
3988         il->staging.cck_basic_rates =
3989             (IL_CCK_RATES_MASK >> IL_FIRST_CCK_RATE) & 0xF;
3990
3991         /* clear both MIX and PURE40 mode flag */
3992         il->staging.flags &=
3993             ~(RXON_FLG_CHANNEL_MODE_MIXED | RXON_FLG_CHANNEL_MODE_PURE_40);
3994         if (il->vif)
3995                 memcpy(il->staging.node_addr, il->vif->addr, ETH_ALEN);
3996
3997         il->staging.ofdm_ht_single_stream_basic_rates = 0xff;
3998         il->staging.ofdm_ht_dual_stream_basic_rates = 0xff;
3999 }
4000 EXPORT_SYMBOL(il_connection_init_rx_config);
4001
4002 void
4003 il_set_rate(struct il_priv *il)
4004 {
4005         const struct ieee80211_supported_band *hw = NULL;
4006         struct ieee80211_rate *rate;
4007         int i;
4008
4009         hw = il_get_hw_mode(il, il->band);
4010         if (!hw) {
4011                 IL_ERR("Failed to set rate: unable to get hw mode\n");
4012                 return;
4013         }
4014
4015         il->active_rate = 0;
4016
4017         for (i = 0; i < hw->n_bitrates; i++) {
4018                 rate = &(hw->bitrates[i]);
4019                 if (rate->hw_value < RATE_COUNT_LEGACY)
4020                         il->active_rate |= (1 << rate->hw_value);
4021         }
4022
4023         D_RATE("Set active_rate = %0x\n", il->active_rate);
4024
4025         il->staging.cck_basic_rates =
4026             (IL_CCK_BASIC_RATES_MASK >> IL_FIRST_CCK_RATE) & 0xF;
4027
4028         il->staging.ofdm_basic_rates =
4029             (IL_OFDM_BASIC_RATES_MASK >> IL_FIRST_OFDM_RATE) & 0xFF;
4030 }
4031 EXPORT_SYMBOL(il_set_rate);
4032
4033 void
4034 il_chswitch_done(struct il_priv *il, bool is_success)
4035 {
4036         if (test_bit(S_EXIT_PENDING, &il->status))
4037                 return;
4038
4039         if (test_and_clear_bit(S_CHANNEL_SWITCH_PENDING, &il->status))
4040                 ieee80211_chswitch_done(il->vif, is_success);
4041 }
4042 EXPORT_SYMBOL(il_chswitch_done);
4043
4044 void
4045 il_hdl_csa(struct il_priv *il, struct il_rx_buf *rxb)
4046 {
4047         struct il_rx_pkt *pkt = rxb_addr(rxb);
4048         struct il_csa_notification *csa = &(pkt->u.csa_notif);
4049         struct il_rxon_cmd *rxon = (void *)&il->active;
4050
4051         if (!test_bit(S_CHANNEL_SWITCH_PENDING, &il->status))
4052                 return;
4053
4054         if (!le32_to_cpu(csa->status) && csa->channel == il->switch_channel) {
4055                 rxon->channel = csa->channel;
4056                 il->staging.channel = csa->channel;
4057                 D_11H("CSA notif: channel %d\n", le16_to_cpu(csa->channel));
4058                 il_chswitch_done(il, true);
4059         } else {
4060                 IL_ERR("CSA notif (fail) : channel %d\n",
4061                        le16_to_cpu(csa->channel));
4062                 il_chswitch_done(il, false);
4063         }
4064 }
4065 EXPORT_SYMBOL(il_hdl_csa);
4066
4067 #ifdef CONFIG_IWLEGACY_DEBUG
4068 void
4069 il_print_rx_config_cmd(struct il_priv *il)
4070 {
4071         struct il_rxon_cmd *rxon = &il->staging;
4072
4073         D_RADIO("RX CONFIG:\n");
4074         il_print_hex_dump(il, IL_DL_RADIO, (u8 *) rxon, sizeof(*rxon));
4075         D_RADIO("u16 channel: 0x%x\n", le16_to_cpu(rxon->channel));
4076         D_RADIO("u32 flags: 0x%08X\n", le32_to_cpu(rxon->flags));
4077         D_RADIO("u32 filter_flags: 0x%08x\n", le32_to_cpu(rxon->filter_flags));
4078         D_RADIO("u8 dev_type: 0x%x\n", rxon->dev_type);
4079         D_RADIO("u8 ofdm_basic_rates: 0x%02x\n", rxon->ofdm_basic_rates);
4080         D_RADIO("u8 cck_basic_rates: 0x%02x\n", rxon->cck_basic_rates);
4081         D_RADIO("u8[6] node_addr: %pM\n", rxon->node_addr);
4082         D_RADIO("u8[6] bssid_addr: %pM\n", rxon->bssid_addr);
4083         D_RADIO("u16 assoc_id: 0x%x\n", le16_to_cpu(rxon->assoc_id));
4084 }
4085 EXPORT_SYMBOL(il_print_rx_config_cmd);
4086 #endif
4087 /**
4088  * il_irq_handle_error - called for HW or SW error interrupt from card
4089  */
4090 void
4091 il_irq_handle_error(struct il_priv *il)
4092 {
4093         /* Set the FW error flag -- cleared on il_down */
4094         set_bit(S_FW_ERROR, &il->status);
4095
4096         /* Cancel currently queued command. */
4097         clear_bit(S_HCMD_ACTIVE, &il->status);
4098
4099         IL_ERR("Loaded firmware version: %s\n", il->hw->wiphy->fw_version);
4100
4101         il->ops->dump_nic_error_log(il);
4102         if (il->ops->dump_fh)
4103                 il->ops->dump_fh(il, NULL, false);
4104 #ifdef CONFIG_IWLEGACY_DEBUG
4105         if (il_get_debug_level(il) & IL_DL_FW_ERRORS)
4106                 il_print_rx_config_cmd(il);
4107 #endif
4108
4109         wake_up(&il->wait_command_queue);
4110
4111         /* Keep the restart process from trying to send host
4112          * commands by clearing the INIT status bit */
4113         clear_bit(S_READY, &il->status);
4114
4115         if (!test_bit(S_EXIT_PENDING, &il->status)) {
4116                 IL_DBG(IL_DL_FW_ERRORS,
4117                        "Restarting adapter due to uCode error.\n");
4118
4119                 if (il->cfg->mod_params->restart_fw)
4120                         queue_work(il->workqueue, &il->restart);
4121         }
4122 }
4123 EXPORT_SYMBOL(il_irq_handle_error);
4124
4125 static int
4126 il_apm_stop_master(struct il_priv *il)
4127 {
4128         int ret = 0;
4129
4130         /* stop device's busmaster DMA activity */
4131         il_set_bit(il, CSR_RESET, CSR_RESET_REG_FLAG_STOP_MASTER);
4132
4133         ret =
4134             _il_poll_bit(il, CSR_RESET, CSR_RESET_REG_FLAG_MASTER_DISABLED,
4135                          CSR_RESET_REG_FLAG_MASTER_DISABLED, 100);
4136         if (ret)
4137                 IL_WARN("Master Disable Timed Out, 100 usec\n");
4138
4139         D_INFO("stop master\n");
4140
4141         return ret;
4142 }
4143
4144 void
4145 il_apm_stop(struct il_priv *il)
4146 {
4147         D_INFO("Stop card, put in low power state\n");
4148
4149         /* Stop device's DMA activity */
4150         il_apm_stop_master(il);
4151
4152         /* Reset the entire device */
4153         il_set_bit(il, CSR_RESET, CSR_RESET_REG_FLAG_SW_RESET);
4154
4155         udelay(10);
4156
4157         /*
4158          * Clear "initialization complete" bit to move adapter from
4159          * D0A* (powered-up Active) --> D0U* (Uninitialized) state.
4160          */
4161         il_clear_bit(il, CSR_GP_CNTRL, CSR_GP_CNTRL_REG_FLAG_INIT_DONE);
4162 }
4163 EXPORT_SYMBOL(il_apm_stop);
4164
4165 /*
4166  * Start up NIC's basic functionality after it has been reset
4167  * (e.g. after platform boot, or shutdown via il_apm_stop())
4168  * NOTE:  This does not load uCode nor start the embedded processor
4169  */
4170 int
4171 il_apm_init(struct il_priv *il)
4172 {
4173         int ret = 0;
4174         u16 lctl;
4175
4176         D_INFO("Init card's basic functions\n");
4177
4178         /*
4179          * Use "set_bit" below rather than "write", to preserve any hardware
4180          * bits already set by default after reset.
4181          */
4182
4183         /* Disable L0S exit timer (platform NMI Work/Around) */
4184         il_set_bit(il, CSR_GIO_CHICKEN_BITS,
4185                    CSR_GIO_CHICKEN_BITS_REG_BIT_DIS_L0S_EXIT_TIMER);
4186
4187         /*
4188          * Disable L0s without affecting L1;
4189          *  don't wait for ICH L0s (ICH bug W/A)
4190          */
4191         il_set_bit(il, CSR_GIO_CHICKEN_BITS,
4192                    CSR_GIO_CHICKEN_BITS_REG_BIT_L1A_NO_L0S_RX);
4193
4194         /* Set FH wait threshold to maximum (HW error during stress W/A) */
4195         il_set_bit(il, CSR_DBG_HPET_MEM_REG, CSR_DBG_HPET_MEM_REG_VAL);
4196
4197         /*
4198          * Enable HAP INTA (interrupt from management bus) to
4199          * wake device's PCI Express link L1a -> L0s
4200          * NOTE:  This is no-op for 3945 (non-existent bit)
4201          */
4202         il_set_bit(il, CSR_HW_IF_CONFIG_REG,
4203                    CSR_HW_IF_CONFIG_REG_BIT_HAP_WAKE_L1A);
4204
4205         /*
4206          * HW bug W/A for instability in PCIe bus L0->L0S->L1 transition.
4207          * Check if BIOS (or OS) enabled L1-ASPM on this device.
4208          * If so (likely), disable L0S, so device moves directly L0->L1;
4209          *    costs negligible amount of power savings.
4210          * If not (unlikely), enable L0S, so there is at least some
4211          *    power savings, even without L1.
4212          */
4213         if (il->cfg->set_l0s) {
4214                 lctl = il_pcie_link_ctl(il);
4215                 if ((lctl & PCI_CFG_LINK_CTRL_VAL_L1_EN) ==
4216                     PCI_CFG_LINK_CTRL_VAL_L1_EN) {
4217                         /* L1-ASPM enabled; disable(!) L0S  */
4218                         il_set_bit(il, CSR_GIO_REG,
4219                                    CSR_GIO_REG_VAL_L0S_ENABLED);
4220                         D_POWER("L1 Enabled; Disabling L0S\n");
4221                 } else {
4222                         /* L1-ASPM disabled; enable(!) L0S */
4223                         il_clear_bit(il, CSR_GIO_REG,
4224                                      CSR_GIO_REG_VAL_L0S_ENABLED);
4225                         D_POWER("L1 Disabled; Enabling L0S\n");
4226                 }
4227         }
4228
4229         /* Configure analog phase-lock-loop before activating to D0A */
4230         if (il->cfg->pll_cfg_val)
4231                 il_set_bit(il, CSR_ANA_PLL_CFG,
4232                            il->cfg->pll_cfg_val);
4233
4234         /*
4235          * Set "initialization complete" bit to move adapter from
4236          * D0U* --> D0A* (powered-up active) state.
4237          */
4238         il_set_bit(il, CSR_GP_CNTRL, CSR_GP_CNTRL_REG_FLAG_INIT_DONE);
4239
4240         /*
4241          * Wait for clock stabilization; once stabilized, access to
4242          * device-internal resources is supported, e.g. il_wr_prph()
4243          * and accesses to uCode SRAM.
4244          */
4245         ret =
4246             _il_poll_bit(il, CSR_GP_CNTRL,
4247                          CSR_GP_CNTRL_REG_FLAG_MAC_CLOCK_READY,
4248                          CSR_GP_CNTRL_REG_FLAG_MAC_CLOCK_READY, 25000);
4249         if (ret < 0) {
4250                 D_INFO("Failed to init the card\n");
4251                 goto out;
4252         }
4253
4254         /*
4255          * Enable DMA and BSM (if used) clocks, wait for them to stabilize.
4256          * BSM (Boostrap State Machine) is only in 3945 and 4965.
4257          *
4258          * Write to "CLK_EN_REG"; "1" bits enable clocks, while "0" bits
4259          * do not disable clocks.  This preserves any hardware bits already
4260          * set by default in "CLK_CTRL_REG" after reset.
4261          */
4262         if (il->cfg->use_bsm)
4263                 il_wr_prph(il, APMG_CLK_EN_REG,
4264                            APMG_CLK_VAL_DMA_CLK_RQT | APMG_CLK_VAL_BSM_CLK_RQT);
4265         else
4266                 il_wr_prph(il, APMG_CLK_EN_REG, APMG_CLK_VAL_DMA_CLK_RQT);
4267         udelay(20);
4268
4269         /* Disable L1-Active */
4270         il_set_bits_prph(il, APMG_PCIDEV_STT_REG,
4271                          APMG_PCIDEV_STT_VAL_L1_ACT_DIS);
4272
4273 out:
4274         return ret;
4275 }
4276 EXPORT_SYMBOL(il_apm_init);
4277
4278 int
4279 il_set_tx_power(struct il_priv *il, s8 tx_power, bool force)
4280 {
4281         int ret;
4282         s8 prev_tx_power;
4283         bool defer;
4284
4285         lockdep_assert_held(&il->mutex);
4286
4287         if (il->tx_power_user_lmt == tx_power && !force)
4288                 return 0;
4289
4290         if (!il->ops->send_tx_power)
4291                 return -EOPNOTSUPP;
4292
4293         /* 0 dBm mean 1 milliwatt */
4294         if (tx_power < 0) {
4295                 IL_WARN("Requested user TXPOWER %d below 1 mW.\n", tx_power);
4296                 return -EINVAL;
4297         }
4298
4299         if (tx_power > il->tx_power_device_lmt) {
4300                 IL_WARN("Requested user TXPOWER %d above upper limit %d.\n",
4301                         tx_power, il->tx_power_device_lmt);
4302                 return -EINVAL;
4303         }
4304
4305         if (!il_is_ready_rf(il))
4306                 return -EIO;
4307
4308         /* scan complete and commit_rxon use tx_power_next value,
4309          * it always need to be updated for newest request */
4310         il->tx_power_next = tx_power;
4311
4312         /* do not set tx power when scanning or channel changing */
4313         defer = test_bit(S_SCANNING, &il->status) ||
4314             memcmp(&il->active, &il->staging, sizeof(il->staging));
4315         if (defer && !force) {
4316                 D_INFO("Deferring tx power set\n");
4317                 return 0;
4318         }
4319
4320         prev_tx_power = il->tx_power_user_lmt;
4321         il->tx_power_user_lmt = tx_power;
4322
4323         ret = il->ops->send_tx_power(il);
4324
4325         /* if fail to set tx_power, restore the orig. tx power */
4326         if (ret) {
4327                 il->tx_power_user_lmt = prev_tx_power;
4328                 il->tx_power_next = prev_tx_power;
4329         }
4330         return ret;
4331 }
4332 EXPORT_SYMBOL(il_set_tx_power);
4333
4334 void
4335 il_send_bt_config(struct il_priv *il)
4336 {
4337         struct il_bt_cmd bt_cmd = {
4338                 .lead_time = BT_LEAD_TIME_DEF,
4339                 .max_kill = BT_MAX_KILL_DEF,
4340                 .kill_ack_mask = 0,
4341                 .kill_cts_mask = 0,
4342         };
4343
4344         if (!bt_coex_active)
4345                 bt_cmd.flags = BT_COEX_DISABLE;
4346         else
4347                 bt_cmd.flags = BT_COEX_ENABLE;
4348
4349         D_INFO("BT coex %s\n",
4350                (bt_cmd.flags == BT_COEX_DISABLE) ? "disable" : "active");
4351
4352         if (il_send_cmd_pdu(il, C_BT_CONFIG, sizeof(struct il_bt_cmd), &bt_cmd))
4353                 IL_ERR("failed to send BT Coex Config\n");
4354 }
4355 EXPORT_SYMBOL(il_send_bt_config);
4356
4357 int
4358 il_send_stats_request(struct il_priv *il, u8 flags, bool clear)
4359 {
4360         struct il_stats_cmd stats_cmd = {
4361                 .configuration_flags = clear ? IL_STATS_CONF_CLEAR_STATS : 0,
4362         };
4363
4364         if (flags & CMD_ASYNC)
4365                 return il_send_cmd_pdu_async(il, C_STATS, sizeof(struct il_stats_cmd),
4366                                              &stats_cmd, NULL);
4367         else
4368                 return il_send_cmd_pdu(il, C_STATS, sizeof(struct il_stats_cmd),
4369                                        &stats_cmd);
4370 }
4371 EXPORT_SYMBOL(il_send_stats_request);
4372
4373 void
4374 il_hdl_pm_sleep(struct il_priv *il, struct il_rx_buf *rxb)
4375 {
4376 #ifdef CONFIG_IWLEGACY_DEBUG
4377         struct il_rx_pkt *pkt = rxb_addr(rxb);
4378         struct il_sleep_notification *sleep = &(pkt->u.sleep_notif);
4379         D_RX("sleep mode: %d, src: %d\n",
4380              sleep->pm_sleep_mode, sleep->pm_wakeup_src);
4381 #endif
4382 }
4383 EXPORT_SYMBOL(il_hdl_pm_sleep);
4384
4385 void
4386 il_hdl_pm_debug_stats(struct il_priv *il, struct il_rx_buf *rxb)
4387 {
4388         struct il_rx_pkt *pkt = rxb_addr(rxb);
4389         u32 len = le32_to_cpu(pkt->len_n_flags) & IL_RX_FRAME_SIZE_MSK;
4390         D_RADIO("Dumping %d bytes of unhandled notification for %s:\n", len,
4391                 il_get_cmd_string(pkt->hdr.cmd));
4392         il_print_hex_dump(il, IL_DL_RADIO, pkt->u.raw, len);
4393 }
4394 EXPORT_SYMBOL(il_hdl_pm_debug_stats);
4395
4396 void
4397 il_hdl_error(struct il_priv *il, struct il_rx_buf *rxb)
4398 {
4399         struct il_rx_pkt *pkt = rxb_addr(rxb);
4400
4401         IL_ERR("Error Reply type 0x%08X cmd %s (0x%02X) "
4402                "seq 0x%04X ser 0x%08X\n",
4403                le32_to_cpu(pkt->u.err_resp.error_type),
4404                il_get_cmd_string(pkt->u.err_resp.cmd_id),
4405                pkt->u.err_resp.cmd_id,
4406                le16_to_cpu(pkt->u.err_resp.bad_cmd_seq_num),
4407                le32_to_cpu(pkt->u.err_resp.error_info));
4408 }
4409 EXPORT_SYMBOL(il_hdl_error);
4410
4411 void
4412 il_clear_isr_stats(struct il_priv *il)
4413 {
4414         memset(&il->isr_stats, 0, sizeof(il->isr_stats));
4415 }
4416
4417 int
4418 il_mac_conf_tx(struct ieee80211_hw *hw, struct ieee80211_vif *vif, u16 queue,
4419                const struct ieee80211_tx_queue_params *params)
4420 {
4421         struct il_priv *il = hw->priv;
4422         unsigned long flags;
4423         int q;
4424
4425         D_MAC80211("enter\n");
4426
4427         if (!il_is_ready_rf(il)) {
4428                 D_MAC80211("leave - RF not ready\n");
4429                 return -EIO;
4430         }
4431
4432         if (queue >= AC_NUM) {
4433                 D_MAC80211("leave - queue >= AC_NUM %d\n", queue);
4434                 return 0;
4435         }
4436
4437         q = AC_NUM - 1 - queue;
4438
4439         spin_lock_irqsave(&il->lock, flags);
4440
4441         il->qos_data.def_qos_parm.ac[q].cw_min =
4442             cpu_to_le16(params->cw_min);
4443         il->qos_data.def_qos_parm.ac[q].cw_max =
4444             cpu_to_le16(params->cw_max);
4445         il->qos_data.def_qos_parm.ac[q].aifsn = params->aifs;
4446         il->qos_data.def_qos_parm.ac[q].edca_txop =
4447             cpu_to_le16((params->txop * 32));
4448
4449         il->qos_data.def_qos_parm.ac[q].reserved1 = 0;
4450
4451         spin_unlock_irqrestore(&il->lock, flags);
4452
4453         D_MAC80211("leave\n");
4454         return 0;
4455 }
4456 EXPORT_SYMBOL(il_mac_conf_tx);
4457
4458 int
4459 il_mac_tx_last_beacon(struct ieee80211_hw *hw)
4460 {
4461         struct il_priv *il = hw->priv;
4462
4463         return il->ibss_manager == IL_IBSS_MANAGER;
4464 }
4465 EXPORT_SYMBOL_GPL(il_mac_tx_last_beacon);
4466
4467 static int
4468 il_set_mode(struct il_priv *il)
4469 {
4470         il_connection_init_rx_config(il);
4471
4472         if (il->ops->set_rxon_chain)
4473                 il->ops->set_rxon_chain(il);
4474
4475         return il_commit_rxon(il);
4476 }
4477
4478 int
4479 il_mac_add_interface(struct ieee80211_hw *hw, struct ieee80211_vif *vif)
4480 {
4481         struct il_priv *il = hw->priv;
4482         int err;
4483
4484         D_MAC80211("enter: type %d, addr %pM\n", vif->type, vif->addr);
4485
4486         mutex_lock(&il->mutex);
4487
4488         if (!il_is_ready_rf(il)) {
4489                 IL_WARN("Try to add interface when device not ready\n");
4490                 err = -EINVAL;
4491                 goto out;
4492         }
4493
4494         if (il->vif) {
4495                 err = -EOPNOTSUPP;
4496                 goto out;
4497         }
4498
4499         il->vif = vif;
4500         il->iw_mode = vif->type;
4501
4502         err = il_set_mode(il);
4503         if (err) {
4504                 il->vif = NULL;
4505                 il->iw_mode = NL80211_IFTYPE_STATION;
4506         }
4507
4508 out:
4509         mutex_unlock(&il->mutex);
4510
4511         D_MAC80211("leave\n");
4512         return err;
4513 }
4514 EXPORT_SYMBOL(il_mac_add_interface);
4515
4516 static void
4517 il_teardown_interface(struct il_priv *il, struct ieee80211_vif *vif,
4518                       bool mode_change)
4519 {
4520         lockdep_assert_held(&il->mutex);
4521
4522         if (il->scan_vif == vif) {
4523                 il_scan_cancel_timeout(il, 200);
4524                 il_force_scan_end(il);
4525         }
4526
4527         if (!mode_change)
4528                 il_set_mode(il);
4529
4530 }
4531
4532 void
4533 il_mac_remove_interface(struct ieee80211_hw *hw, struct ieee80211_vif *vif)
4534 {
4535         struct il_priv *il = hw->priv;
4536
4537         D_MAC80211("enter\n");
4538
4539         mutex_lock(&il->mutex);
4540
4541         WARN_ON(il->vif != vif);
4542         il->vif = NULL;
4543
4544         il_teardown_interface(il, vif, false);
4545
4546         memset(il->bssid, 0, ETH_ALEN);
4547         mutex_unlock(&il->mutex);
4548
4549         D_MAC80211("leave\n");
4550
4551 }
4552 EXPORT_SYMBOL(il_mac_remove_interface);
4553
4554 int
4555 il_alloc_txq_mem(struct il_priv *il)
4556 {
4557         if (!il->txq)
4558                 il->txq =
4559                     kzalloc(sizeof(struct il_tx_queue) *
4560                             il->cfg->num_of_queues, GFP_KERNEL);
4561         if (!il->txq) {
4562                 IL_ERR("Not enough memory for txq\n");
4563                 return -ENOMEM;
4564         }
4565         return 0;
4566 }
4567 EXPORT_SYMBOL(il_alloc_txq_mem);
4568
4569 void
4570 il_txq_mem(struct il_priv *il)
4571 {
4572         kfree(il->txq);
4573         il->txq = NULL;
4574 }
4575 EXPORT_SYMBOL(il_txq_mem);
4576
4577 int
4578 il_force_reset(struct il_priv *il, bool external)
4579 {
4580         struct il_force_reset *force_reset;
4581
4582         if (test_bit(S_EXIT_PENDING, &il->status))
4583                 return -EINVAL;
4584
4585         force_reset = &il->force_reset;
4586         force_reset->reset_request_count++;
4587         if (!external) {
4588                 if (force_reset->last_force_reset_jiffies &&
4589                     time_after(force_reset->last_force_reset_jiffies +
4590                                force_reset->reset_duration, jiffies)) {
4591                         D_INFO("force reset rejected\n");
4592                         force_reset->reset_reject_count++;
4593                         return -EAGAIN;
4594                 }
4595         }
4596         force_reset->reset_success_count++;
4597         force_reset->last_force_reset_jiffies = jiffies;
4598
4599         /*
4600          * if the request is from external(ex: debugfs),
4601          * then always perform the request in regardless the module
4602          * parameter setting
4603          * if the request is from internal (uCode error or driver
4604          * detect failure), then fw_restart module parameter
4605          * need to be check before performing firmware reload
4606          */
4607
4608         if (!external && !il->cfg->mod_params->restart_fw) {
4609                 D_INFO("Cancel firmware reload based on "
4610                        "module parameter setting\n");
4611                 return 0;
4612         }
4613
4614         IL_ERR("On demand firmware reload\n");
4615
4616         /* Set the FW error flag -- cleared on il_down */
4617         set_bit(S_FW_ERROR, &il->status);
4618         wake_up(&il->wait_command_queue);
4619         /*
4620          * Keep the restart process from trying to send host
4621          * commands by clearing the INIT status bit
4622          */
4623         clear_bit(S_READY, &il->status);
4624         queue_work(il->workqueue, &il->restart);
4625
4626         return 0;
4627 }
4628
4629 int
4630 il_mac_change_interface(struct ieee80211_hw *hw, struct ieee80211_vif *vif,
4631                         enum nl80211_iftype newtype, bool newp2p)
4632 {
4633         struct il_priv *il = hw->priv;
4634         int err;
4635
4636         if (newp2p)
4637                 return -EOPNOTSUPP;
4638
4639         mutex_lock(&il->mutex);
4640
4641         if (!il->vif || !il_is_ready_rf(il)) {
4642                 /*
4643                  * Huh? But wait ... this can maybe happen when
4644                  * we're in the middle of a firmware restart!
4645                  */
4646                 err = -EBUSY;
4647                 goto out;
4648         }
4649
4650         /* success */
4651         il_teardown_interface(il, vif, true);
4652         vif->type = newtype;
4653         vif->p2p = false;
4654         err = il_set_mode(il);
4655         WARN_ON(err);
4656         /*
4657          * We've switched internally, but submitting to the
4658          * device may have failed for some reason. Mask this
4659          * error, because otherwise mac80211 will not switch
4660          * (and set the interface type back) and we'll be
4661          * out of sync with it.
4662          */
4663         err = 0;
4664
4665 out:
4666         mutex_unlock(&il->mutex);
4667         return err;
4668 }
4669 EXPORT_SYMBOL(il_mac_change_interface);
4670
4671 /*
4672  * On every watchdog tick we check (latest) time stamp. If it does not
4673  * change during timeout period and queue is not empty we reset firmware.
4674  */
4675 static int
4676 il_check_stuck_queue(struct il_priv *il, int cnt)
4677 {
4678         struct il_tx_queue *txq = &il->txq[cnt];
4679         struct il_queue *q = &txq->q;
4680         unsigned long timeout;
4681         int ret;
4682
4683         if (q->read_ptr == q->write_ptr) {
4684                 txq->time_stamp = jiffies;
4685                 return 0;
4686         }
4687
4688         timeout =
4689             txq->time_stamp +
4690             msecs_to_jiffies(il->cfg->wd_timeout);
4691
4692         if (time_after(jiffies, timeout)) {
4693                 IL_ERR("Queue %d stuck for %u ms.\n", q->id,
4694                        il->cfg->wd_timeout);
4695                 ret = il_force_reset(il, false);
4696                 return (ret == -EAGAIN) ? 0 : 1;
4697         }
4698
4699         return 0;
4700 }
4701
4702 /*
4703  * Making watchdog tick be a quarter of timeout assure we will
4704  * discover the queue hung between timeout and 1.25*timeout
4705  */
4706 #define IL_WD_TICK(timeout) ((timeout) / 4)
4707
4708 /*
4709  * Watchdog timer callback, we check each tx queue for stuck, if if hung
4710  * we reset the firmware. If everything is fine just rearm the timer.
4711  */
4712 void
4713 il_bg_watchdog(unsigned long data)
4714 {
4715         struct il_priv *il = (struct il_priv *)data;
4716         int cnt;
4717         unsigned long timeout;
4718
4719         if (test_bit(S_EXIT_PENDING, &il->status))
4720                 return;
4721
4722         timeout = il->cfg->wd_timeout;
4723         if (timeout == 0)
4724                 return;
4725
4726         /* monitor and check for stuck cmd queue */
4727         if (il_check_stuck_queue(il, il->cmd_queue))
4728                 return;
4729
4730         /* monitor and check for other stuck queues */
4731         if (il_is_any_associated(il)) {
4732                 for (cnt = 0; cnt < il->hw_params.max_txq_num; cnt++) {
4733                         /* skip as we already checked the command queue */
4734                         if (cnt == il->cmd_queue)
4735                                 continue;
4736                         if (il_check_stuck_queue(il, cnt))
4737                                 return;
4738                 }
4739         }
4740
4741         mod_timer(&il->watchdog,
4742                   jiffies + msecs_to_jiffies(IL_WD_TICK(timeout)));
4743 }
4744 EXPORT_SYMBOL(il_bg_watchdog);
4745
4746 void
4747 il_setup_watchdog(struct il_priv *il)
4748 {
4749         unsigned int timeout = il->cfg->wd_timeout;
4750
4751         if (timeout)
4752                 mod_timer(&il->watchdog,
4753                           jiffies + msecs_to_jiffies(IL_WD_TICK(timeout)));
4754         else
4755                 del_timer(&il->watchdog);
4756 }
4757 EXPORT_SYMBOL(il_setup_watchdog);
4758
4759 /*
4760  * extended beacon time format
4761  * time in usec will be changed into a 32-bit value in extended:internal format
4762  * the extended part is the beacon counts
4763  * the internal part is the time in usec within one beacon interval
4764  */
4765 u32
4766 il_usecs_to_beacons(struct il_priv *il, u32 usec, u32 beacon_interval)
4767 {
4768         u32 quot;
4769         u32 rem;
4770         u32 interval = beacon_interval * TIME_UNIT;
4771
4772         if (!interval || !usec)
4773                 return 0;
4774
4775         quot =
4776             (usec /
4777              interval) & (il_beacon_time_mask_high(il,
4778                                                    il->hw_params.
4779                                                    beacon_time_tsf_bits) >> il->
4780                           hw_params.beacon_time_tsf_bits);
4781         rem =
4782             (usec % interval) & il_beacon_time_mask_low(il,
4783                                                         il->hw_params.
4784                                                         beacon_time_tsf_bits);
4785
4786         return (quot << il->hw_params.beacon_time_tsf_bits) + rem;
4787 }
4788 EXPORT_SYMBOL(il_usecs_to_beacons);
4789
4790 /* base is usually what we get from ucode with each received frame,
4791  * the same as HW timer counter counting down
4792  */
4793 __le32
4794 il_add_beacon_time(struct il_priv *il, u32 base, u32 addon,
4795                    u32 beacon_interval)
4796 {
4797         u32 base_low = base & il_beacon_time_mask_low(il,
4798                                                       il->hw_params.
4799                                                       beacon_time_tsf_bits);
4800         u32 addon_low = addon & il_beacon_time_mask_low(il,
4801                                                         il->hw_params.
4802                                                         beacon_time_tsf_bits);
4803         u32 interval = beacon_interval * TIME_UNIT;
4804         u32 res = (base & il_beacon_time_mask_high(il,
4805                                                    il->hw_params.
4806                                                    beacon_time_tsf_bits)) +
4807             (addon & il_beacon_time_mask_high(il,
4808                                               il->hw_params.
4809                                               beacon_time_tsf_bits));
4810
4811         if (base_low > addon_low)
4812                 res += base_low - addon_low;
4813         else if (base_low < addon_low) {
4814                 res += interval + base_low - addon_low;
4815                 res += (1 << il->hw_params.beacon_time_tsf_bits);
4816         } else
4817                 res += (1 << il->hw_params.beacon_time_tsf_bits);
4818
4819         return cpu_to_le32(res);
4820 }
4821 EXPORT_SYMBOL(il_add_beacon_time);
4822
4823 #ifdef CONFIG_PM
4824
4825 int
4826 il_pci_suspend(struct device *device)
4827 {
4828         struct pci_dev *pdev = to_pci_dev(device);
4829         struct il_priv *il = pci_get_drvdata(pdev);
4830
4831         /*
4832          * This function is called when system goes into suspend state
4833          * mac80211 will call il_mac_stop() from the mac80211 suspend function
4834          * first but since il_mac_stop() has no knowledge of who the caller is,
4835          * it will not call apm_ops.stop() to stop the DMA operation.
4836          * Calling apm_ops.stop here to make sure we stop the DMA.
4837          */
4838         il_apm_stop(il);
4839
4840         return 0;
4841 }
4842 EXPORT_SYMBOL(il_pci_suspend);
4843
4844 int
4845 il_pci_resume(struct device *device)
4846 {
4847         struct pci_dev *pdev = to_pci_dev(device);
4848         struct il_priv *il = pci_get_drvdata(pdev);
4849         bool hw_rfkill = false;
4850
4851         /*
4852          * We disable the RETRY_TIMEOUT register (0x41) to keep
4853          * PCI Tx retries from interfering with C3 CPU state.
4854          */
4855         pci_write_config_byte(pdev, PCI_CFG_RETRY_TIMEOUT, 0x00);
4856
4857         il_enable_interrupts(il);
4858
4859         if (!(_il_rd(il, CSR_GP_CNTRL) & CSR_GP_CNTRL_REG_FLAG_HW_RF_KILL_SW))
4860                 hw_rfkill = true;
4861
4862         if (hw_rfkill)
4863                 set_bit(S_RF_KILL_HW, &il->status);
4864         else
4865                 clear_bit(S_RF_KILL_HW, &il->status);
4866
4867         wiphy_rfkill_set_hw_state(il->hw->wiphy, hw_rfkill);
4868
4869         return 0;
4870 }
4871 EXPORT_SYMBOL(il_pci_resume);
4872
4873 const struct dev_pm_ops il_pm_ops = {
4874         .suspend = il_pci_suspend,
4875         .resume = il_pci_resume,
4876         .freeze = il_pci_suspend,
4877         .thaw = il_pci_resume,
4878         .poweroff = il_pci_suspend,
4879         .restore = il_pci_resume,
4880 };
4881 EXPORT_SYMBOL(il_pm_ops);
4882
4883 #endif /* CONFIG_PM */
4884
4885 static void
4886 il_update_qos(struct il_priv *il)
4887 {
4888         if (test_bit(S_EXIT_PENDING, &il->status))
4889                 return;
4890
4891         il->qos_data.def_qos_parm.qos_flags = 0;
4892
4893         if (il->qos_data.qos_active)
4894                 il->qos_data.def_qos_parm.qos_flags |=
4895                     QOS_PARAM_FLG_UPDATE_EDCA_MSK;
4896
4897         if (il->ht.enabled)
4898                 il->qos_data.def_qos_parm.qos_flags |= QOS_PARAM_FLG_TGN_MSK;
4899
4900         D_QOS("send QoS cmd with Qos active=%d FLAGS=0x%X\n",
4901               il->qos_data.qos_active, il->qos_data.def_qos_parm.qos_flags);
4902
4903         il_send_cmd_pdu_async(il, C_QOS_PARAM, sizeof(struct il_qosparam_cmd),
4904                               &il->qos_data.def_qos_parm, NULL);
4905 }
4906
4907 /**
4908  * il_mac_config - mac80211 config callback
4909  */
4910 int
4911 il_mac_config(struct ieee80211_hw *hw, u32 changed)
4912 {
4913         struct il_priv *il = hw->priv;
4914         const struct il_channel_info *ch_info;
4915         struct ieee80211_conf *conf = &hw->conf;
4916         struct ieee80211_channel *channel = conf->channel;
4917         struct il_ht_config *ht_conf = &il->current_ht_config;
4918         unsigned long flags = 0;
4919         int ret = 0;
4920         u16 ch;
4921         int scan_active = 0;
4922         bool ht_changed = false;
4923
4924         mutex_lock(&il->mutex);
4925
4926         D_MAC80211("enter to channel %d changed 0x%X\n", channel->hw_value,
4927                    changed);
4928
4929         if (unlikely(test_bit(S_SCANNING, &il->status))) {
4930                 scan_active = 1;
4931                 D_MAC80211("scan active\n");
4932         }
4933
4934         if (changed &
4935             (IEEE80211_CONF_CHANGE_SMPS | IEEE80211_CONF_CHANGE_CHANNEL)) {
4936                 /* mac80211 uses static for non-HT which is what we want */
4937                 il->current_ht_config.smps = conf->smps_mode;
4938
4939                 /*
4940                  * Recalculate chain counts.
4941                  *
4942                  * If monitor mode is enabled then mac80211 will
4943                  * set up the SM PS mode to OFF if an HT channel is
4944                  * configured.
4945                  */
4946                 if (il->ops->set_rxon_chain)
4947                         il->ops->set_rxon_chain(il);
4948         }
4949
4950         /* during scanning mac80211 will delay channel setting until
4951          * scan finish with changed = 0
4952          */
4953         if (!changed || (changed & IEEE80211_CONF_CHANGE_CHANNEL)) {
4954
4955                 if (scan_active)
4956                         goto set_ch_out;
4957
4958                 ch = channel->hw_value;
4959                 ch_info = il_get_channel_info(il, channel->band, ch);
4960                 if (!il_is_channel_valid(ch_info)) {
4961                         D_MAC80211("leave - invalid channel\n");
4962                         ret = -EINVAL;
4963                         goto set_ch_out;
4964                 }
4965
4966                 if (il->iw_mode == NL80211_IFTYPE_ADHOC &&
4967                     !il_is_channel_ibss(ch_info)) {
4968                         D_MAC80211("leave - not IBSS channel\n");
4969                         ret = -EINVAL;
4970                         goto set_ch_out;
4971                 }
4972
4973                 spin_lock_irqsave(&il->lock, flags);
4974
4975                 /* Configure HT40 channels */
4976                 if (il->ht.enabled != conf_is_ht(conf)) {
4977                         il->ht.enabled = conf_is_ht(conf);
4978                         ht_changed = true;
4979                 }
4980                 if (il->ht.enabled) {
4981                         if (conf_is_ht40_minus(conf)) {
4982                                 il->ht.extension_chan_offset =
4983                                     IEEE80211_HT_PARAM_CHA_SEC_BELOW;
4984                                 il->ht.is_40mhz = true;
4985                         } else if (conf_is_ht40_plus(conf)) {
4986                                 il->ht.extension_chan_offset =
4987                                     IEEE80211_HT_PARAM_CHA_SEC_ABOVE;
4988                                 il->ht.is_40mhz = true;
4989                         } else {
4990                                 il->ht.extension_chan_offset =
4991                                     IEEE80211_HT_PARAM_CHA_SEC_NONE;
4992                                 il->ht.is_40mhz = false;
4993                         }
4994                 } else
4995                         il->ht.is_40mhz = false;
4996
4997                 /*
4998                  * Default to no protection. Protection mode will
4999                  * later be set from BSS config in il_ht_conf
5000                  */
5001                 il->ht.protection = IEEE80211_HT_OP_MODE_PROTECTION_NONE;
5002
5003                 /* if we are switching from ht to 2.4 clear flags
5004                  * from any ht related info since 2.4 does not
5005                  * support ht */
5006                 if ((le16_to_cpu(il->staging.channel) != ch))
5007                         il->staging.flags = 0;
5008
5009                 il_set_rxon_channel(il, channel);
5010                 il_set_rxon_ht(il, ht_conf);
5011
5012                 il_set_flags_for_band(il, channel->band, il->vif);
5013
5014                 spin_unlock_irqrestore(&il->lock, flags);
5015
5016                 if (il->ops->update_bcast_stations)
5017                         ret = il->ops->update_bcast_stations(il);
5018
5019 set_ch_out:
5020                 /* The list of supported rates and rate mask can be different
5021                  * for each band; since the band may have changed, reset
5022                  * the rate mask to what mac80211 lists */
5023                 il_set_rate(il);
5024         }
5025
5026         if (changed & (IEEE80211_CONF_CHANGE_PS | IEEE80211_CONF_CHANGE_IDLE)) {
5027                 ret = il_power_update_mode(il, false);
5028                 if (ret)
5029                         D_MAC80211("Error setting sleep level\n");
5030         }
5031
5032         if (changed & IEEE80211_CONF_CHANGE_POWER) {
5033                 D_MAC80211("TX Power old=%d new=%d\n", il->tx_power_user_lmt,
5034                            conf->power_level);
5035
5036                 il_set_tx_power(il, conf->power_level, false);
5037         }
5038
5039         if (!il_is_ready(il)) {
5040                 D_MAC80211("leave - not ready\n");
5041                 goto out;
5042         }
5043
5044         if (scan_active)
5045                 goto out;
5046
5047         if (memcmp(&il->active, &il->staging, sizeof(il->staging)))
5048                 il_commit_rxon(il);
5049         else
5050                 D_INFO("Not re-sending same RXON configuration.\n");
5051         if (ht_changed)
5052                 il_update_qos(il);
5053
5054 out:
5055         D_MAC80211("leave\n");
5056         mutex_unlock(&il->mutex);
5057         return ret;
5058 }
5059 EXPORT_SYMBOL(il_mac_config);
5060
5061 void
5062 il_mac_reset_tsf(struct ieee80211_hw *hw, struct ieee80211_vif *vif)
5063 {
5064         struct il_priv *il = hw->priv;
5065         unsigned long flags;
5066
5067         mutex_lock(&il->mutex);
5068         D_MAC80211("enter\n");
5069
5070         spin_lock_irqsave(&il->lock, flags);
5071         memset(&il->current_ht_config, 0, sizeof(struct il_ht_config));
5072         spin_unlock_irqrestore(&il->lock, flags);
5073
5074         spin_lock_irqsave(&il->lock, flags);
5075
5076         /* new association get rid of ibss beacon skb */
5077         if (il->beacon_skb)
5078                 dev_kfree_skb(il->beacon_skb);
5079
5080         il->beacon_skb = NULL;
5081
5082         il->timestamp = 0;
5083
5084         spin_unlock_irqrestore(&il->lock, flags);
5085
5086         il_scan_cancel_timeout(il, 100);
5087         if (!il_is_ready_rf(il)) {
5088                 D_MAC80211("leave - not ready\n");
5089                 mutex_unlock(&il->mutex);
5090                 return;
5091         }
5092
5093         /* we are restarting association process
5094          * clear RXON_FILTER_ASSOC_MSK bit
5095          */
5096         il->staging.filter_flags &= ~RXON_FILTER_ASSOC_MSK;
5097         il_commit_rxon(il);
5098
5099         il_set_rate(il);
5100
5101         mutex_unlock(&il->mutex);
5102
5103         D_MAC80211("leave\n");
5104 }
5105 EXPORT_SYMBOL(il_mac_reset_tsf);
5106
5107 static void
5108 il_ht_conf(struct il_priv *il, struct ieee80211_vif *vif)
5109 {
5110         struct il_ht_config *ht_conf = &il->current_ht_config;
5111         struct ieee80211_sta *sta;
5112         struct ieee80211_bss_conf *bss_conf = &vif->bss_conf;
5113
5114         D_ASSOC("enter:\n");
5115
5116         if (!il->ht.enabled)
5117                 return;
5118
5119         il->ht.protection =
5120             bss_conf->ht_operation_mode & IEEE80211_HT_OP_MODE_PROTECTION;
5121         il->ht.non_gf_sta_present =
5122             !!(bss_conf->
5123                ht_operation_mode & IEEE80211_HT_OP_MODE_NON_GF_STA_PRSNT);
5124
5125         ht_conf->single_chain_sufficient = false;
5126
5127         switch (vif->type) {
5128         case NL80211_IFTYPE_STATION:
5129                 rcu_read_lock();
5130                 sta = ieee80211_find_sta(vif, bss_conf->bssid);
5131                 if (sta) {
5132                         struct ieee80211_sta_ht_cap *ht_cap = &sta->ht_cap;
5133                         int maxstreams;
5134
5135                         maxstreams =
5136                             (ht_cap->mcs.
5137                              tx_params & IEEE80211_HT_MCS_TX_MAX_STREAMS_MASK)
5138                             >> IEEE80211_HT_MCS_TX_MAX_STREAMS_SHIFT;
5139                         maxstreams += 1;
5140
5141                         if (ht_cap->mcs.rx_mask[1] == 0 &&
5142                             ht_cap->mcs.rx_mask[2] == 0)
5143                                 ht_conf->single_chain_sufficient = true;
5144                         if (maxstreams <= 1)
5145                                 ht_conf->single_chain_sufficient = true;
5146                 } else {
5147                         /*
5148                          * If at all, this can only happen through a race
5149                          * when the AP disconnects us while we're still
5150                          * setting up the connection, in that case mac80211
5151                          * will soon tell us about that.
5152                          */
5153                         ht_conf->single_chain_sufficient = true;
5154                 }
5155                 rcu_read_unlock();
5156                 break;
5157         case NL80211_IFTYPE_ADHOC:
5158                 ht_conf->single_chain_sufficient = true;
5159                 break;
5160         default:
5161                 break;
5162         }
5163
5164         D_ASSOC("leave\n");
5165 }
5166
5167 static inline void
5168 il_set_no_assoc(struct il_priv *il, struct ieee80211_vif *vif)
5169 {
5170         /*
5171          * inform the ucode that there is no longer an
5172          * association and that no more packets should be
5173          * sent
5174          */
5175         il->staging.filter_flags &= ~RXON_FILTER_ASSOC_MSK;
5176         il->staging.assoc_id = 0;
5177         il_commit_rxon(il);
5178 }
5179
5180 static void
5181 il_beacon_update(struct ieee80211_hw *hw, struct ieee80211_vif *vif)
5182 {
5183         struct il_priv *il = hw->priv;
5184         unsigned long flags;
5185         __le64 timestamp;
5186         struct sk_buff *skb = ieee80211_beacon_get(hw, vif);
5187
5188         if (!skb)
5189                 return;
5190
5191         D_MAC80211("enter\n");
5192
5193         lockdep_assert_held(&il->mutex);
5194
5195         if (!il->beacon_enabled) {
5196                 IL_ERR("update beacon with no beaconing enabled\n");
5197                 dev_kfree_skb(skb);
5198                 return;
5199         }
5200
5201         spin_lock_irqsave(&il->lock, flags);
5202
5203         if (il->beacon_skb)
5204                 dev_kfree_skb(il->beacon_skb);
5205
5206         il->beacon_skb = skb;
5207
5208         timestamp = ((struct ieee80211_mgmt *)skb->data)->u.beacon.timestamp;
5209         il->timestamp = le64_to_cpu(timestamp);
5210
5211         D_MAC80211("leave\n");
5212         spin_unlock_irqrestore(&il->lock, flags);
5213
5214         if (!il_is_ready_rf(il)) {
5215                 D_MAC80211("leave - RF not ready\n");
5216                 return;
5217         }
5218
5219         il->ops->post_associate(il);
5220 }
5221
5222 void
5223 il_mac_bss_info_changed(struct ieee80211_hw *hw, struct ieee80211_vif *vif,
5224                         struct ieee80211_bss_conf *bss_conf, u32 changes)
5225 {
5226         struct il_priv *il = hw->priv;
5227         int ret;
5228
5229         D_MAC80211("changes = 0x%X\n", changes);
5230
5231         mutex_lock(&il->mutex);
5232
5233         if (!il_is_alive(il)) {
5234                 mutex_unlock(&il->mutex);
5235                 return;
5236         }
5237
5238         if (changes & BSS_CHANGED_QOS) {
5239                 unsigned long flags;
5240
5241                 spin_lock_irqsave(&il->lock, flags);
5242                 il->qos_data.qos_active = bss_conf->qos;
5243                 il_update_qos(il);
5244                 spin_unlock_irqrestore(&il->lock, flags);
5245         }
5246
5247         if (changes & BSS_CHANGED_BEACON_ENABLED) {
5248                 /* FIXME: can we remove beacon_enabled ? */
5249                 if (vif->bss_conf.enable_beacon)
5250                         il->beacon_enabled = true;
5251                 else
5252                         il->beacon_enabled = false;
5253         }
5254
5255         if (changes & BSS_CHANGED_BSSID) {
5256                 D_MAC80211("BSSID %pM\n", bss_conf->bssid);
5257
5258                 /*
5259                  * If there is currently a HW scan going on in the
5260                  * background then we need to cancel it else the RXON
5261                  * below/in post_associate will fail.
5262                  */
5263                 if (il_scan_cancel_timeout(il, 100)) {
5264                         IL_WARN("Aborted scan still in progress after 100ms\n");
5265                         D_MAC80211("leaving - scan abort failed.\n");
5266                         mutex_unlock(&il->mutex);
5267                         return;
5268                 }
5269
5270                 /* mac80211 only sets assoc when in STATION mode */
5271                 if (vif->type == NL80211_IFTYPE_ADHOC || bss_conf->assoc) {
5272                         memcpy(il->staging.bssid_addr, bss_conf->bssid,
5273                                ETH_ALEN);
5274
5275                         /* currently needed in a few places */
5276                         memcpy(il->bssid, bss_conf->bssid, ETH_ALEN);
5277                 } else {
5278                         il->staging.filter_flags &= ~RXON_FILTER_ASSOC_MSK;
5279                 }
5280
5281         }
5282
5283         /*
5284          * This needs to be after setting the BSSID in case
5285          * mac80211 decides to do both changes at once because
5286          * it will invoke post_associate.
5287          */
5288         if (vif->type == NL80211_IFTYPE_ADHOC && (changes & BSS_CHANGED_BEACON))
5289                 il_beacon_update(hw, vif);
5290
5291         if (changes & BSS_CHANGED_ERP_PREAMBLE) {
5292                 D_MAC80211("ERP_PREAMBLE %d\n", bss_conf->use_short_preamble);
5293                 if (bss_conf->use_short_preamble)
5294                         il->staging.flags |= RXON_FLG_SHORT_PREAMBLE_MSK;
5295                 else
5296                         il->staging.flags &= ~RXON_FLG_SHORT_PREAMBLE_MSK;
5297         }
5298
5299         if (changes & BSS_CHANGED_ERP_CTS_PROT) {
5300                 D_MAC80211("ERP_CTS %d\n", bss_conf->use_cts_prot);
5301                 if (bss_conf->use_cts_prot && il->band != IEEE80211_BAND_5GHZ)
5302                         il->staging.flags |= RXON_FLG_TGG_PROTECT_MSK;
5303                 else
5304                         il->staging.flags &= ~RXON_FLG_TGG_PROTECT_MSK;
5305                 if (bss_conf->use_cts_prot)
5306                         il->staging.flags |= RXON_FLG_SELF_CTS_EN;
5307                 else
5308                         il->staging.flags &= ~RXON_FLG_SELF_CTS_EN;
5309         }
5310
5311         if (changes & BSS_CHANGED_BASIC_RATES) {
5312                 /* XXX use this information
5313                  *
5314                  * To do that, remove code from il_set_rate() and put something
5315                  * like this here:
5316                  *
5317                  if (A-band)
5318                  il->staging.ofdm_basic_rates =
5319                  bss_conf->basic_rates;
5320                  else
5321                  il->staging.ofdm_basic_rates =
5322                  bss_conf->basic_rates >> 4;
5323                  il->staging.cck_basic_rates =
5324                  bss_conf->basic_rates & 0xF;
5325                  */
5326         }
5327
5328         if (changes & BSS_CHANGED_HT) {
5329                 il_ht_conf(il, vif);
5330
5331                 if (il->ops->set_rxon_chain)
5332                         il->ops->set_rxon_chain(il);
5333         }
5334
5335         if (changes & BSS_CHANGED_ASSOC) {
5336                 D_MAC80211("ASSOC %d\n", bss_conf->assoc);
5337                 if (bss_conf->assoc) {
5338                         il->timestamp = bss_conf->timestamp;
5339
5340                         if (!il_is_rfkill(il))
5341                                 il->ops->post_associate(il);
5342                 } else
5343                         il_set_no_assoc(il, vif);
5344         }
5345
5346         if (changes && il_is_associated(il) && bss_conf->aid) {
5347                 D_MAC80211("Changes (%#x) while associated\n", changes);
5348                 ret = il_send_rxon_assoc(il);
5349                 if (!ret) {
5350                         /* Sync active_rxon with latest change. */
5351                         memcpy((void *)&il->active, &il->staging,
5352                                sizeof(struct il_rxon_cmd));
5353                 }
5354         }
5355
5356         if (changes & BSS_CHANGED_BEACON_ENABLED) {
5357                 if (vif->bss_conf.enable_beacon) {
5358                         memcpy(il->staging.bssid_addr, bss_conf->bssid,
5359                                ETH_ALEN);
5360                         memcpy(il->bssid, bss_conf->bssid, ETH_ALEN);
5361                         il->ops->config_ap(il);
5362                 } else
5363                         il_set_no_assoc(il, vif);
5364         }
5365
5366         if (changes & BSS_CHANGED_IBSS) {
5367                 ret =
5368                     il->ops->manage_ibss_station(il, vif,
5369                                                          bss_conf->ibss_joined);
5370                 if (ret)
5371                         IL_ERR("failed to %s IBSS station %pM\n",
5372                                bss_conf->ibss_joined ? "add" : "remove",
5373                                bss_conf->bssid);
5374         }
5375
5376         mutex_unlock(&il->mutex);
5377
5378         D_MAC80211("leave\n");
5379 }
5380 EXPORT_SYMBOL(il_mac_bss_info_changed);
5381
5382 irqreturn_t
5383 il_isr(int irq, void *data)
5384 {
5385         struct il_priv *il = data;
5386         u32 inta, inta_mask;
5387         u32 inta_fh;
5388         unsigned long flags;
5389         if (!il)
5390                 return IRQ_NONE;
5391
5392         spin_lock_irqsave(&il->lock, flags);
5393
5394         /* Disable (but don't clear!) interrupts here to avoid
5395          *    back-to-back ISRs and sporadic interrupts from our NIC.
5396          * If we have something to service, the tasklet will re-enable ints.
5397          * If we *don't* have something, we'll re-enable before leaving here. */
5398         inta_mask = _il_rd(il, CSR_INT_MASK);   /* just for debug */
5399         _il_wr(il, CSR_INT_MASK, 0x00000000);
5400
5401         /* Discover which interrupts are active/pending */
5402         inta = _il_rd(il, CSR_INT);
5403         inta_fh = _il_rd(il, CSR_FH_INT_STATUS);
5404
5405         /* Ignore interrupt if there's nothing in NIC to service.
5406          * This may be due to IRQ shared with another device,
5407          * or due to sporadic interrupts thrown from our NIC. */
5408         if (!inta && !inta_fh) {
5409                 D_ISR("Ignore interrupt, inta == 0, inta_fh == 0\n");
5410                 goto none;
5411         }
5412
5413         if (inta == 0xFFFFFFFF || (inta & 0xFFFFFFF0) == 0xa5a5a5a0) {
5414                 /* Hardware disappeared. It might have already raised
5415                  * an interrupt */
5416                 IL_WARN("HARDWARE GONE?? INTA == 0x%08x\n", inta);
5417                 goto unplugged;
5418         }
5419
5420         D_ISR("ISR inta 0x%08x, enabled 0x%08x, fh 0x%08x\n", inta, inta_mask,
5421               inta_fh);
5422
5423         inta &= ~CSR_INT_BIT_SCD;
5424
5425         /* il_irq_tasklet() will service interrupts and re-enable them */
5426         if (likely(inta || inta_fh))
5427                 tasklet_schedule(&il->irq_tasklet);
5428
5429 unplugged:
5430         spin_unlock_irqrestore(&il->lock, flags);
5431         return IRQ_HANDLED;
5432
5433 none:
5434         /* re-enable interrupts here since we don't have anything to service. */
5435         /* only Re-enable if disabled by irq */
5436         if (test_bit(S_INT_ENABLED, &il->status))
5437                 il_enable_interrupts(il);
5438         spin_unlock_irqrestore(&il->lock, flags);
5439         return IRQ_NONE;
5440 }
5441 EXPORT_SYMBOL(il_isr);
5442
5443 /*
5444  *  il_tx_cmd_protection: Set rts/cts. 3945 and 4965 only share this
5445  *  function.
5446  */
5447 void
5448 il_tx_cmd_protection(struct il_priv *il, struct ieee80211_tx_info *info,
5449                      __le16 fc, __le32 *tx_flags)
5450 {
5451         if (info->control.rates[0].flags & IEEE80211_TX_RC_USE_RTS_CTS) {
5452                 *tx_flags |= TX_CMD_FLG_RTS_MSK;
5453                 *tx_flags &= ~TX_CMD_FLG_CTS_MSK;
5454                 *tx_flags |= TX_CMD_FLG_FULL_TXOP_PROT_MSK;
5455
5456                 if (!ieee80211_is_mgmt(fc))
5457                         return;
5458
5459                 switch (fc & cpu_to_le16(IEEE80211_FCTL_STYPE)) {
5460                 case cpu_to_le16(IEEE80211_STYPE_AUTH):
5461                 case cpu_to_le16(IEEE80211_STYPE_DEAUTH):
5462                 case cpu_to_le16(IEEE80211_STYPE_ASSOC_REQ):
5463                 case cpu_to_le16(IEEE80211_STYPE_REASSOC_REQ):
5464                         *tx_flags &= ~TX_CMD_FLG_RTS_MSK;
5465                         *tx_flags |= TX_CMD_FLG_CTS_MSK;
5466                         break;
5467                 }
5468         } else if (info->control.rates[0].
5469                    flags & IEEE80211_TX_RC_USE_CTS_PROTECT) {
5470                 *tx_flags &= ~TX_CMD_FLG_RTS_MSK;
5471                 *tx_flags |= TX_CMD_FLG_CTS_MSK;
5472                 *tx_flags |= TX_CMD_FLG_FULL_TXOP_PROT_MSK;
5473         }
5474 }
5475 EXPORT_SYMBOL(il_tx_cmd_protection);