1 /*
2 * Copyright 2002-2005, Instant802 Networks, Inc.
3 * Copyright 2005-2006, Devicescape Software, Inc.
4 * Copyright 2007 Johannes Berg <johannes@sipsolutions.net>
5 * Copyright 2008-2011 Luis R. Rodriguez <mcgrof@qca.qualcomm.com>
6 * Copyright 2013-2014 Intel Mobile Communications GmbH
7 * Copyright 2017 Intel Deutschland GmbH
8 * Copyright (C) 2018 - 2026 Intel Corporation
9 *
10 * Permission to use, copy, modify, and/or distribute this software for any
11 * purpose with or without fee is hereby granted, provided that the above
12 * copyright notice and this permission notice appear in all copies.
13 *
14 * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
15 * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
16 * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
17 * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
18 * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
19 * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
20 * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
21 */
22
23
24 /**
25 * DOC: Wireless regulatory infrastructure
26 *
27 * The usual implementation is for a driver to read a device EEPROM to
28 * determine which regulatory domain it should be operating under, then
29 * looking up the allowable channels in a driver-local table and finally
30 * registering those channels in the wiphy structure.
31 *
32 * Another set of compliance enforcement is for drivers to use their
33 * own compliance limits which can be stored on the EEPROM. The host
34 * driver or firmware may ensure these are used.
35 *
36 * In addition to all this we provide an extra layer of regulatory
37 * conformance. For drivers which do not have any regulatory
38 * information CRDA provides the complete regulatory solution.
39 * For others it provides a community effort on further restrictions
40 * to enhance compliance.
41 *
42 * Note: When number of rules --> infinity we will not be able to
43 * index on alpha2 any more, instead we'll probably have to
44 * rely on some SHA1 checksum of the regdomain for example.
45 *
46 */
47
48 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
49
50 #include <linux/kernel.h>
51 #include <linux/export.h>
52 #include <linux/slab.h>
53 #include <linux/list.h>
54 #include <linux/ctype.h>
55 #include <linux/nl80211.h>
56 #include <linux/device/faux.h>
57 #include <linux/verification.h>
58 #include <linux/moduleparam.h>
59 #include <linux/firmware.h>
60 #include <linux/units.h>
61
62 #include <net/cfg80211.h>
63 #include "core.h"
64 #include "reg.h"
65 #include "rdev-ops.h"
66 #include "nl80211.h"
67
68 /*
69 * Grace period we give before making sure all current interfaces reside on
70 * channels allowed by the current regulatory domain.
71 */
72 #define REG_ENFORCE_GRACE_MS 60000
73
74 /**
75 * enum reg_request_treatment - regulatory request treatment
76 *
77 * @REG_REQ_OK: continue processing the regulatory request
78 * @REG_REQ_IGNORE: ignore the regulatory request
79 * @REG_REQ_INTERSECT: the regulatory domain resulting from this request should
80 * be intersected with the current one.
81 * @REG_REQ_ALREADY_SET: the regulatory request will not change the current
82 * regulatory settings, and no further processing is required.
83 */
84 enum reg_request_treatment {
85 REG_REQ_OK,
86 REG_REQ_IGNORE,
87 REG_REQ_INTERSECT,
88 REG_REQ_ALREADY_SET,
89 };
90
91 static struct regulatory_request core_request_world = {
92 .initiator = NL80211_REGDOM_SET_BY_CORE,
93 .alpha2[0] = '0',
94 .alpha2[1] = '0',
95 .intersect = false,
96 .processed = true,
97 .country_ie_env = ENVIRON_ANY,
98 };
99
100 /*
101 * Receipt of information from last regulatory request,
102 * protected by RTNL (and can be accessed with RCU protection)
103 */
104 static struct regulatory_request __rcu *last_request =
105 (void __force __rcu *)&core_request_world;
106
107 /* To trigger userspace events and load firmware */
108 static struct faux_device *reg_fdev;
109
110 /*
111 * Central wireless core regulatory domains, we only need two,
112 * the current one and a world regulatory domain in case we have no
113 * information to give us an alpha2.
114 * (protected by RTNL, can be read under RCU)
115 */
116 const struct ieee80211_regdomain __rcu *cfg80211_regdomain;
117
118 /*
119 * Number of devices that registered to the core
120 * that support cellular base station regulatory hints
121 * (protected by RTNL)
122 */
123 static int reg_num_devs_support_basehint;
124
125 /*
126 * State variable indicating if the platform on which the devices
127 * are attached is operating in an indoor environment. The state variable
128 * is relevant for all registered devices.
129 */
130 static bool reg_is_indoor;
131 static DEFINE_SPINLOCK(reg_indoor_lock);
132
133 /* Used to track the userspace process controlling the indoor setting */
134 static u32 reg_is_indoor_portid;
135
136 static void restore_regulatory_settings(bool reset_user, bool cached);
137 static void print_regdomain(const struct ieee80211_regdomain *rd);
138 static void reg_process_hint(struct regulatory_request *reg_request);
139
get_cfg80211_regdom(void)140 static const struct ieee80211_regdomain *get_cfg80211_regdom(void)
141 {
142 return rcu_dereference_rtnl(cfg80211_regdomain);
143 }
144
145 /*
146 * Returns the regulatory domain associated with the wiphy.
147 *
148 * Requires any of RTNL, wiphy mutex or RCU protection.
149 */
get_wiphy_regdom(struct wiphy * wiphy)150 const struct ieee80211_regdomain *get_wiphy_regdom(struct wiphy *wiphy)
151 {
152 return rcu_dereference_check(wiphy->regd,
153 lockdep_is_held(&wiphy->mtx) ||
154 lockdep_rtnl_is_held());
155 }
156 EXPORT_SYMBOL(get_wiphy_regdom);
157
reg_dfs_region_str(enum nl80211_dfs_regions dfs_region)158 static const char *reg_dfs_region_str(enum nl80211_dfs_regions dfs_region)
159 {
160 switch (dfs_region) {
161 case NL80211_DFS_UNSET:
162 return "unset";
163 case NL80211_DFS_FCC:
164 return "FCC";
165 case NL80211_DFS_ETSI:
166 return "ETSI";
167 case NL80211_DFS_JP:
168 return "JP";
169 }
170 return "Unknown";
171 }
172
reg_get_dfs_region(struct wiphy * wiphy)173 enum nl80211_dfs_regions reg_get_dfs_region(struct wiphy *wiphy)
174 {
175 const struct ieee80211_regdomain *regd = NULL;
176 const struct ieee80211_regdomain *wiphy_regd = NULL;
177 enum nl80211_dfs_regions dfs_region;
178
179 rcu_read_lock();
180 regd = get_cfg80211_regdom();
181 dfs_region = regd->dfs_region;
182
183 if (!wiphy)
184 goto out;
185
186 wiphy_regd = get_wiphy_regdom(wiphy);
187 if (!wiphy_regd)
188 goto out;
189
190 if (wiphy->regulatory_flags & REGULATORY_WIPHY_SELF_MANAGED) {
191 dfs_region = wiphy_regd->dfs_region;
192 goto out;
193 }
194
195 if (wiphy_regd->dfs_region == regd->dfs_region)
196 goto out;
197
198 pr_debug("%s: device specific dfs_region (%s) disagrees with cfg80211's central dfs_region (%s)\n",
199 dev_name(&wiphy->dev),
200 reg_dfs_region_str(wiphy_regd->dfs_region),
201 reg_dfs_region_str(regd->dfs_region));
202
203 out:
204 rcu_read_unlock();
205
206 return dfs_region;
207 }
208
rcu_free_regdom(const struct ieee80211_regdomain * r)209 static void rcu_free_regdom(const struct ieee80211_regdomain *r)
210 {
211 if (!r)
212 return;
213 kfree_rcu((struct ieee80211_regdomain *)r, rcu_head);
214 }
215
get_last_request(void)216 static struct regulatory_request *get_last_request(void)
217 {
218 return rcu_dereference_rtnl(last_request);
219 }
220
221 /* Used to queue up regulatory hints */
222 static LIST_HEAD(reg_requests_list);
223 static DEFINE_SPINLOCK(reg_requests_lock);
224
225 /* Used to queue up beacon hints for review */
226 static LIST_HEAD(reg_pending_beacons);
227 static DEFINE_SPINLOCK(reg_pending_beacons_lock);
228
229 /* Used to keep track of processed beacon hints */
230 static LIST_HEAD(reg_beacon_list);
231
232 struct reg_beacon {
233 struct list_head list;
234 struct ieee80211_channel chan;
235 };
236
237 static void reg_check_chans_work(struct work_struct *work);
238 static DECLARE_DELAYED_WORK(reg_check_chans, reg_check_chans_work);
239
240 static void reg_todo(struct work_struct *work);
241 static DECLARE_WORK(reg_work, reg_todo);
242
243 /* We keep a static world regulatory domain in case of the absence of CRDA */
244 static const struct ieee80211_regdomain world_regdom = {
245 .n_reg_rules = 8,
246 .alpha2 = "00",
247 .reg_rules = {
248 /* IEEE 802.11b/g, channels 1..11 */
249 REG_RULE(2412-10, 2462+10, 40, 6, 20, 0),
250 /* IEEE 802.11b/g, channels 12..13. */
251 REG_RULE(2467-10, 2472+10, 20, 6, 20,
252 NL80211_RRF_NO_IR | NL80211_RRF_AUTO_BW),
253 /* IEEE 802.11 channel 14 - Only JP enables
254 * this and for 802.11b only */
255 REG_RULE(2484-10, 2484+10, 20, 6, 20,
256 NL80211_RRF_NO_IR |
257 NL80211_RRF_NO_OFDM),
258 /* IEEE 802.11a, channel 36..48 */
259 REG_RULE(5180-10, 5240+10, 80, 6, 20,
260 NL80211_RRF_NO_IR |
261 NL80211_RRF_AUTO_BW),
262
263 /* IEEE 802.11a, channel 52..64 - DFS required */
264 REG_RULE(5260-10, 5320+10, 80, 6, 20,
265 NL80211_RRF_NO_IR |
266 NL80211_RRF_AUTO_BW |
267 NL80211_RRF_DFS),
268
269 /* IEEE 802.11a, channel 100..144 - DFS required */
270 REG_RULE(5500-10, 5720+10, 160, 6, 20,
271 NL80211_RRF_NO_IR |
272 NL80211_RRF_DFS),
273
274 /* IEEE 802.11a, channel 149..165 */
275 REG_RULE(5745-10, 5825+10, 80, 6, 20,
276 NL80211_RRF_NO_IR),
277
278 /* IEEE 802.11ad (60GHz), channels 1..3 */
279 REG_RULE(56160+2160*1-1080, 56160+2160*3+1080, 2160, 0, 0, 0),
280 }
281 };
282
283 /* protected by RTNL */
284 static const struct ieee80211_regdomain *cfg80211_world_regdom =
285 &world_regdom;
286
287 static char *ieee80211_regdom = "00";
288 static char user_alpha2[2];
289 static const struct ieee80211_regdomain *cfg80211_user_regdom;
290
291 module_param(ieee80211_regdom, charp, 0444);
292 MODULE_PARM_DESC(ieee80211_regdom, "IEEE 802.11 regulatory domain code");
293
reg_free_request(struct regulatory_request * request)294 static void reg_free_request(struct regulatory_request *request)
295 {
296 if (request == &core_request_world)
297 return;
298
299 if (request != get_last_request())
300 kfree(request);
301 }
302
reg_free_last_request(void)303 static void reg_free_last_request(void)
304 {
305 struct regulatory_request *lr = get_last_request();
306
307 if (lr != &core_request_world && lr)
308 kfree_rcu(lr, rcu_head);
309 }
310
reg_update_last_request(struct regulatory_request * request)311 static void reg_update_last_request(struct regulatory_request *request)
312 {
313 struct regulatory_request *lr;
314
315 lr = get_last_request();
316 if (lr == request)
317 return;
318
319 reg_free_last_request();
320 rcu_assign_pointer(last_request, request);
321 }
322
reset_regdomains(bool full_reset,const struct ieee80211_regdomain * new_regdom)323 static void reset_regdomains(bool full_reset,
324 const struct ieee80211_regdomain *new_regdom)
325 {
326 const struct ieee80211_regdomain *r;
327
328 ASSERT_RTNL();
329
330 r = get_cfg80211_regdom();
331
332 /* avoid freeing static information or freeing something twice */
333 if (r == cfg80211_world_regdom)
334 r = NULL;
335 if (cfg80211_world_regdom == &world_regdom)
336 cfg80211_world_regdom = NULL;
337 if (r == &world_regdom)
338 r = NULL;
339
340 rcu_free_regdom(r);
341 rcu_free_regdom(cfg80211_world_regdom);
342
343 cfg80211_world_regdom = &world_regdom;
344 rcu_assign_pointer(cfg80211_regdomain, new_regdom);
345
346 if (!full_reset)
347 return;
348
349 reg_update_last_request(&core_request_world);
350 }
351
352 /*
353 * Dynamic world regulatory domain requested by the wireless
354 * core upon initialization
355 */
update_world_regdomain(const struct ieee80211_regdomain * rd)356 static void update_world_regdomain(const struct ieee80211_regdomain *rd)
357 {
358 struct regulatory_request *lr;
359
360 lr = get_last_request();
361
362 WARN_ON(!lr);
363
364 reset_regdomains(false, rd);
365
366 cfg80211_world_regdom = rd;
367 }
368
is_world_regdom(const char * alpha2)369 bool is_world_regdom(const char *alpha2)
370 {
371 if (!alpha2)
372 return false;
373 return alpha2[0] == '0' && alpha2[1] == '0';
374 }
375
is_alpha2_set(const char * alpha2)376 static bool is_alpha2_set(const char *alpha2)
377 {
378 if (!alpha2)
379 return false;
380 return alpha2[0] && alpha2[1];
381 }
382
is_unknown_alpha2(const char * alpha2)383 static bool is_unknown_alpha2(const char *alpha2)
384 {
385 if (!alpha2)
386 return false;
387 /*
388 * Special case where regulatory domain was built by driver
389 * but a specific alpha2 cannot be determined
390 */
391 return alpha2[0] == '9' && alpha2[1] == '9';
392 }
393
is_intersected_alpha2(const char * alpha2)394 static bool is_intersected_alpha2(const char *alpha2)
395 {
396 if (!alpha2)
397 return false;
398 /*
399 * Special case where regulatory domain is the
400 * result of an intersection between two regulatory domain
401 * structures
402 */
403 return alpha2[0] == '9' && alpha2[1] == '8';
404 }
405
is_an_alpha2(const char * alpha2)406 static bool is_an_alpha2(const char *alpha2)
407 {
408 if (!alpha2)
409 return false;
410 return isascii(alpha2[0]) && isalpha(alpha2[0]) &&
411 isascii(alpha2[1]) && isalpha(alpha2[1]);
412 }
413
alpha2_equal(const char * alpha2_x,const char * alpha2_y)414 static bool alpha2_equal(const char *alpha2_x, const char *alpha2_y)
415 {
416 if (!alpha2_x || !alpha2_y)
417 return false;
418 return alpha2_x[0] == alpha2_y[0] && alpha2_x[1] == alpha2_y[1];
419 }
420
regdom_changes(const char * alpha2)421 static bool regdom_changes(const char *alpha2)
422 {
423 const struct ieee80211_regdomain *r = get_cfg80211_regdom();
424
425 if (!r)
426 return true;
427 return !alpha2_equal(r->alpha2, alpha2);
428 }
429
430 /*
431 * The NL80211_REGDOM_SET_BY_USER regdom alpha2 is cached, this lets
432 * you know if a valid regulatory hint with NL80211_REGDOM_SET_BY_USER
433 * has ever been issued.
434 */
is_user_regdom_saved(void)435 static bool is_user_regdom_saved(void)
436 {
437 if (user_alpha2[0] == '9' && user_alpha2[1] == '7')
438 return false;
439
440 /* This would indicate a mistake on the design */
441 if (WARN(!is_world_regdom(user_alpha2) && !is_an_alpha2(user_alpha2),
442 "Unexpected user alpha2: %c%c\n",
443 user_alpha2[0], user_alpha2[1]))
444 return false;
445
446 return true;
447 }
448
449 static const struct ieee80211_regdomain *
reg_copy_regd(const struct ieee80211_regdomain * src_regd)450 reg_copy_regd(const struct ieee80211_regdomain *src_regd)
451 {
452 struct ieee80211_regdomain *regd;
453 unsigned int i;
454
455 regd = kzalloc_flex(*regd, reg_rules, src_regd->n_reg_rules);
456 if (!regd)
457 return ERR_PTR(-ENOMEM);
458
459 memcpy(regd, src_regd, sizeof(struct ieee80211_regdomain));
460
461 for (i = 0; i < src_regd->n_reg_rules; i++)
462 memcpy(®d->reg_rules[i], &src_regd->reg_rules[i],
463 sizeof(struct ieee80211_reg_rule));
464
465 return regd;
466 }
467
cfg80211_save_user_regdom(const struct ieee80211_regdomain * rd)468 static void cfg80211_save_user_regdom(const struct ieee80211_regdomain *rd)
469 {
470 ASSERT_RTNL();
471
472 if (!IS_ERR(cfg80211_user_regdom))
473 kfree(cfg80211_user_regdom);
474 cfg80211_user_regdom = reg_copy_regd(rd);
475 }
476
477 struct reg_regdb_apply_request {
478 struct list_head list;
479 const struct ieee80211_regdomain *regdom;
480 };
481
482 static LIST_HEAD(reg_regdb_apply_list);
483 static DEFINE_MUTEX(reg_regdb_apply_mutex);
484
reg_regdb_apply(struct work_struct * work)485 static void reg_regdb_apply(struct work_struct *work)
486 {
487 struct reg_regdb_apply_request *request;
488
489 rtnl_lock();
490
491 mutex_lock(®_regdb_apply_mutex);
492 while (!list_empty(®_regdb_apply_list)) {
493 request = list_first_entry(®_regdb_apply_list,
494 struct reg_regdb_apply_request,
495 list);
496 list_del(&request->list);
497
498 set_regdom(request->regdom, REGD_SOURCE_INTERNAL_DB);
499 kfree(request);
500 }
501 mutex_unlock(®_regdb_apply_mutex);
502
503 rtnl_unlock();
504 }
505
506 static DECLARE_WORK(reg_regdb_work, reg_regdb_apply);
507
reg_schedule_apply(const struct ieee80211_regdomain * regdom)508 static int reg_schedule_apply(const struct ieee80211_regdomain *regdom)
509 {
510 struct reg_regdb_apply_request *request;
511
512 request = kzalloc_obj(struct reg_regdb_apply_request);
513 if (!request) {
514 kfree(regdom);
515 return -ENOMEM;
516 }
517
518 request->regdom = regdom;
519
520 mutex_lock(®_regdb_apply_mutex);
521 list_add_tail(&request->list, ®_regdb_apply_list);
522 mutex_unlock(®_regdb_apply_mutex);
523
524 schedule_work(®_regdb_work);
525 return 0;
526 }
527
528 #ifdef CONFIG_CFG80211_CRDA_SUPPORT
529 /* Max number of consecutive attempts to communicate with CRDA */
530 #define REG_MAX_CRDA_TIMEOUTS 10
531
532 static u32 reg_crda_timeouts;
533
534 static void crda_timeout_work(struct work_struct *work);
535 static DECLARE_DELAYED_WORK(crda_timeout, crda_timeout_work);
536
crda_timeout_work(struct work_struct * work)537 static void crda_timeout_work(struct work_struct *work)
538 {
539 pr_debug("Timeout while waiting for CRDA to reply, restoring regulatory settings\n");
540 rtnl_lock();
541 reg_crda_timeouts++;
542 restore_regulatory_settings(true, false);
543 rtnl_unlock();
544 }
545
cancel_crda_timeout(void)546 static void cancel_crda_timeout(void)
547 {
548 cancel_delayed_work(&crda_timeout);
549 }
550
cancel_crda_timeout_sync(void)551 static void cancel_crda_timeout_sync(void)
552 {
553 cancel_delayed_work_sync(&crda_timeout);
554 }
555
reset_crda_timeouts(void)556 static void reset_crda_timeouts(void)
557 {
558 reg_crda_timeouts = 0;
559 }
560
561 /*
562 * This lets us keep regulatory code which is updated on a regulatory
563 * basis in userspace.
564 */
call_crda(const char * alpha2)565 static int call_crda(const char *alpha2)
566 {
567 char country[12];
568 char *env[] = { country, NULL };
569 int ret;
570
571 snprintf(country, sizeof(country), "COUNTRY=%c%c",
572 alpha2[0], alpha2[1]);
573
574 if (reg_crda_timeouts > REG_MAX_CRDA_TIMEOUTS) {
575 pr_debug("Exceeded CRDA call max attempts. Not calling CRDA\n");
576 return -EINVAL;
577 }
578
579 if (!is_world_regdom((char *) alpha2))
580 pr_debug("Calling CRDA for country: %c%c\n",
581 alpha2[0], alpha2[1]);
582 else
583 pr_debug("Calling CRDA to update world regulatory domain\n");
584
585 ret = kobject_uevent_env(®_fdev->dev.kobj, KOBJ_CHANGE, env);
586 if (ret)
587 return ret;
588
589 queue_delayed_work(system_power_efficient_wq,
590 &crda_timeout, msecs_to_jiffies(3142));
591 return 0;
592 }
593 #else
cancel_crda_timeout(void)594 static inline void cancel_crda_timeout(void) {}
cancel_crda_timeout_sync(void)595 static inline void cancel_crda_timeout_sync(void) {}
reset_crda_timeouts(void)596 static inline void reset_crda_timeouts(void) {}
call_crda(const char * alpha2)597 static inline int call_crda(const char *alpha2)
598 {
599 return -ENODATA;
600 }
601 #endif /* CONFIG_CFG80211_CRDA_SUPPORT */
602
603 /* code to directly load a firmware database through request_firmware */
604 static const struct fwdb_header *regdb;
605
606 struct fwdb_country {
607 u8 alpha2[2];
608 __be16 coll_ptr;
609 /* this struct cannot be extended */
610 } __packed __aligned(4);
611
612 struct fwdb_collection {
613 u8 len;
614 u8 n_rules;
615 u8 dfs_region;
616 /* no optional data yet */
617 /* aligned to 2, then followed by __be16 array of rule pointers */
618 } __packed __aligned(4);
619
620 enum fwdb_flags {
621 FWDB_FLAG_NO_OFDM = BIT(0),
622 FWDB_FLAG_NO_OUTDOOR = BIT(1),
623 FWDB_FLAG_DFS = BIT(2),
624 FWDB_FLAG_NO_IR = BIT(3),
625 FWDB_FLAG_AUTO_BW = BIT(4),
626 };
627
628 struct fwdb_wmm_ac {
629 u8 ecw;
630 u8 aifsn;
631 __be16 cot;
632 } __packed;
633
634 struct fwdb_wmm_rule {
635 struct fwdb_wmm_ac client[IEEE80211_NUM_ACS];
636 struct fwdb_wmm_ac ap[IEEE80211_NUM_ACS];
637 } __packed;
638
639 struct fwdb_rule {
640 u8 len;
641 u8 flags;
642 __be16 max_eirp;
643 __be32 start, end, max_bw;
644 /* start of optional data */
645 __be16 cac_timeout;
646 __be16 wmm_ptr;
647 } __packed __aligned(4);
648
649 #define FWDB_MAGIC 0x52474442
650 #define FWDB_VERSION 20
651
652 struct fwdb_header {
653 __be32 magic;
654 __be32 version;
655 struct fwdb_country country[];
656 } __packed __aligned(4);
657
ecw2cw(int ecw)658 static int ecw2cw(int ecw)
659 {
660 return (1 << ecw) - 1;
661 }
662
valid_wmm(struct fwdb_wmm_rule * rule)663 static bool valid_wmm(struct fwdb_wmm_rule *rule)
664 {
665 struct fwdb_wmm_ac *ac = (struct fwdb_wmm_ac *)rule;
666 int i;
667
668 for (i = 0; i < IEEE80211_NUM_ACS * 2; i++) {
669 u16 cw_min = ecw2cw((ac[i].ecw & 0xf0) >> 4);
670 u16 cw_max = ecw2cw(ac[i].ecw & 0x0f);
671 u8 aifsn = ac[i].aifsn;
672
673 if (cw_min >= cw_max)
674 return false;
675
676 if (aifsn < 1)
677 return false;
678 }
679
680 return true;
681 }
682
valid_rule(const u8 * data,unsigned int size,u16 rule_ptr)683 static bool valid_rule(const u8 *data, unsigned int size, u16 rule_ptr)
684 {
685 struct fwdb_rule *rule = (void *)(data + (rule_ptr << 2));
686
687 if ((u8 *)rule + sizeof(rule->len) > data + size)
688 return false;
689
690 /* mandatory fields */
691 if (rule->len < offsetofend(struct fwdb_rule, max_bw))
692 return false;
693 if (rule->len >= offsetofend(struct fwdb_rule, wmm_ptr)) {
694 u32 wmm_ptr = be16_to_cpu(rule->wmm_ptr) << 2;
695 struct fwdb_wmm_rule *wmm;
696
697 if (wmm_ptr + sizeof(struct fwdb_wmm_rule) > size)
698 return false;
699
700 wmm = (void *)(data + wmm_ptr);
701
702 if (!valid_wmm(wmm))
703 return false;
704 }
705 return true;
706 }
707
valid_country(const u8 * data,unsigned int size,const struct fwdb_country * country)708 static bool valid_country(const u8 *data, unsigned int size,
709 const struct fwdb_country *country)
710 {
711 unsigned int ptr = be16_to_cpu(country->coll_ptr) << 2;
712 struct fwdb_collection *coll = (void *)(data + ptr);
713 __be16 *rules_ptr;
714 unsigned int i;
715
716 /* make sure we can read len/n_rules */
717 if ((u8 *)coll + offsetofend(typeof(*coll), n_rules) > data + size)
718 return false;
719
720 /* make sure base struct and all rules fit */
721 if ((u8 *)coll + ALIGN(coll->len, 2) +
722 (coll->n_rules * 2) > data + size)
723 return false;
724
725 /* mandatory fields must exist */
726 if (coll->len < offsetofend(struct fwdb_collection, dfs_region))
727 return false;
728
729 rules_ptr = (void *)((u8 *)coll + ALIGN(coll->len, 2));
730
731 for (i = 0; i < coll->n_rules; i++) {
732 u16 rule_ptr = be16_to_cpu(rules_ptr[i]);
733
734 if (!valid_rule(data, size, rule_ptr))
735 return false;
736 }
737
738 return true;
739 }
740
741 #ifdef CONFIG_CFG80211_REQUIRE_SIGNED_REGDB
742 #include <keys/asymmetric-type.h>
743
744 static struct key *builtin_regdb_keys;
745
load_builtin_regdb_keys(void)746 static int __init load_builtin_regdb_keys(void)
747 {
748 builtin_regdb_keys =
749 keyring_alloc(".builtin_regdb_keys",
750 KUIDT_INIT(0), KGIDT_INIT(0), current_cred(),
751 ((KEY_POS_ALL & ~KEY_POS_SETATTR) |
752 KEY_USR_VIEW | KEY_USR_READ | KEY_USR_SEARCH),
753 KEY_ALLOC_NOT_IN_QUOTA, NULL, NULL);
754 if (IS_ERR(builtin_regdb_keys))
755 return PTR_ERR(builtin_regdb_keys);
756
757 pr_notice("Loading compiled-in X.509 certificates for regulatory database\n");
758
759 #ifdef CONFIG_CFG80211_USE_KERNEL_REGDB_KEYS
760 x509_load_certificate_list(shipped_regdb_certs,
761 shipped_regdb_certs_len,
762 builtin_regdb_keys);
763 #endif
764 #ifdef CONFIG_CFG80211_EXTRA_REGDB_KEYDIR
765 if (CONFIG_CFG80211_EXTRA_REGDB_KEYDIR[0] != '\0')
766 x509_load_certificate_list(extra_regdb_certs,
767 extra_regdb_certs_len,
768 builtin_regdb_keys);
769 #endif
770
771 return 0;
772 }
773
774 MODULE_FIRMWARE("regulatory.db.p7s");
775
regdb_has_valid_signature(const u8 * data,unsigned int size)776 static bool regdb_has_valid_signature(const u8 *data, unsigned int size)
777 {
778 const struct firmware *sig;
779 bool result;
780
781 if (request_firmware(&sig, "regulatory.db.p7s", ®_fdev->dev))
782 return false;
783
784 result = verify_pkcs7_signature(data, size, sig->data, sig->size,
785 builtin_regdb_keys,
786 VERIFYING_UNSPECIFIED_SIGNATURE,
787 NULL, NULL) == 0;
788
789 release_firmware(sig);
790
791 return result;
792 }
793
free_regdb_keyring(void)794 static void free_regdb_keyring(void)
795 {
796 key_put(builtin_regdb_keys);
797 }
798 #else
load_builtin_regdb_keys(void)799 static int load_builtin_regdb_keys(void)
800 {
801 return 0;
802 }
803
regdb_has_valid_signature(const u8 * data,unsigned int size)804 static bool regdb_has_valid_signature(const u8 *data, unsigned int size)
805 {
806 return true;
807 }
808
free_regdb_keyring(void)809 static void free_regdb_keyring(void)
810 {
811 }
812 #endif /* CONFIG_CFG80211_REQUIRE_SIGNED_REGDB */
813
valid_regdb(const u8 * data,unsigned int size)814 static bool valid_regdb(const u8 *data, unsigned int size)
815 {
816 const struct fwdb_header *hdr = (void *)data;
817 const struct fwdb_country *country;
818
819 if (size < sizeof(*hdr))
820 return false;
821
822 if (hdr->magic != cpu_to_be32(FWDB_MAGIC))
823 return false;
824
825 if (hdr->version != cpu_to_be32(FWDB_VERSION))
826 return false;
827
828 if (!regdb_has_valid_signature(data, size))
829 return false;
830
831 country = &hdr->country[0];
832 while ((u8 *)(country + 1) <= data + size) {
833 if (!country->coll_ptr)
834 break;
835 if (!valid_country(data, size, country))
836 return false;
837 country++;
838 }
839
840 return true;
841 }
842
set_wmm_rule(const struct fwdb_header * db,const struct fwdb_country * country,const struct fwdb_rule * rule,struct ieee80211_reg_rule * rrule)843 static void set_wmm_rule(const struct fwdb_header *db,
844 const struct fwdb_country *country,
845 const struct fwdb_rule *rule,
846 struct ieee80211_reg_rule *rrule)
847 {
848 struct ieee80211_wmm_rule *wmm_rule = &rrule->wmm_rule;
849 struct fwdb_wmm_rule *wmm;
850 unsigned int i, wmm_ptr;
851
852 wmm_ptr = be16_to_cpu(rule->wmm_ptr) << 2;
853 wmm = (void *)((u8 *)db + wmm_ptr);
854
855 if (!valid_wmm(wmm)) {
856 pr_err("Invalid regulatory WMM rule %u-%u in domain %c%c\n",
857 be32_to_cpu(rule->start), be32_to_cpu(rule->end),
858 country->alpha2[0], country->alpha2[1]);
859 return;
860 }
861
862 for (i = 0; i < IEEE80211_NUM_ACS; i++) {
863 wmm_rule->client[i].cw_min =
864 ecw2cw((wmm->client[i].ecw & 0xf0) >> 4);
865 wmm_rule->client[i].cw_max = ecw2cw(wmm->client[i].ecw & 0x0f);
866 wmm_rule->client[i].aifsn = wmm->client[i].aifsn;
867 wmm_rule->client[i].cot =
868 1000 * be16_to_cpu(wmm->client[i].cot);
869 wmm_rule->ap[i].cw_min = ecw2cw((wmm->ap[i].ecw & 0xf0) >> 4);
870 wmm_rule->ap[i].cw_max = ecw2cw(wmm->ap[i].ecw & 0x0f);
871 wmm_rule->ap[i].aifsn = wmm->ap[i].aifsn;
872 wmm_rule->ap[i].cot = 1000 * be16_to_cpu(wmm->ap[i].cot);
873 }
874
875 rrule->has_wmm = true;
876 }
877
__regdb_query_wmm(const struct fwdb_header * db,const struct fwdb_country * country,int freq,struct ieee80211_reg_rule * rrule)878 static int __regdb_query_wmm(const struct fwdb_header *db,
879 const struct fwdb_country *country, int freq,
880 struct ieee80211_reg_rule *rrule)
881 {
882 unsigned int ptr = be16_to_cpu(country->coll_ptr) << 2;
883 struct fwdb_collection *coll = (void *)((u8 *)db + ptr);
884 int i;
885
886 for (i = 0; i < coll->n_rules; i++) {
887 __be16 *rules_ptr = (void *)((u8 *)coll + ALIGN(coll->len, 2));
888 unsigned int rule_ptr = be16_to_cpu(rules_ptr[i]) << 2;
889 struct fwdb_rule *rule = (void *)((u8 *)db + rule_ptr);
890
891 if (rule->len < offsetofend(struct fwdb_rule, wmm_ptr))
892 continue;
893
894 if (freq >= KHZ_TO_MHZ(be32_to_cpu(rule->start)) &&
895 freq <= KHZ_TO_MHZ(be32_to_cpu(rule->end))) {
896 set_wmm_rule(db, country, rule, rrule);
897 return 0;
898 }
899 }
900
901 return -ENODATA;
902 }
903
reg_query_regdb_wmm(char * alpha2,int freq,struct ieee80211_reg_rule * rule)904 int reg_query_regdb_wmm(char *alpha2, int freq, struct ieee80211_reg_rule *rule)
905 {
906 const struct fwdb_header *hdr = regdb;
907 const struct fwdb_country *country;
908
909 if (!regdb)
910 return -ENODATA;
911
912 if (IS_ERR(regdb))
913 return PTR_ERR(regdb);
914
915 country = &hdr->country[0];
916 while (country->coll_ptr) {
917 if (alpha2_equal(alpha2, country->alpha2))
918 return __regdb_query_wmm(regdb, country, freq, rule);
919
920 country++;
921 }
922
923 return -ENODATA;
924 }
925 EXPORT_SYMBOL(reg_query_regdb_wmm);
926
regdb_query_country(const struct fwdb_header * db,const struct fwdb_country * country)927 static int regdb_query_country(const struct fwdb_header *db,
928 const struct fwdb_country *country)
929 {
930 unsigned int ptr = be16_to_cpu(country->coll_ptr) << 2;
931 struct fwdb_collection *coll = (void *)((u8 *)db + ptr);
932 struct ieee80211_regdomain *regdom;
933 unsigned int i;
934
935 regdom = kzalloc_flex(*regdom, reg_rules, coll->n_rules);
936 if (!regdom)
937 return -ENOMEM;
938
939 regdom->n_reg_rules = coll->n_rules;
940 regdom->alpha2[0] = country->alpha2[0];
941 regdom->alpha2[1] = country->alpha2[1];
942 regdom->dfs_region = coll->dfs_region;
943
944 for (i = 0; i < regdom->n_reg_rules; i++) {
945 __be16 *rules_ptr = (void *)((u8 *)coll + ALIGN(coll->len, 2));
946 unsigned int rule_ptr = be16_to_cpu(rules_ptr[i]) << 2;
947 struct fwdb_rule *rule = (void *)((u8 *)db + rule_ptr);
948 struct ieee80211_reg_rule *rrule = ®dom->reg_rules[i];
949
950 rrule->freq_range.start_freq_khz = be32_to_cpu(rule->start);
951 rrule->freq_range.end_freq_khz = be32_to_cpu(rule->end);
952 rrule->freq_range.max_bandwidth_khz = be32_to_cpu(rule->max_bw);
953
954 rrule->power_rule.max_antenna_gain = 0;
955 rrule->power_rule.max_eirp = be16_to_cpu(rule->max_eirp);
956
957 rrule->flags = 0;
958 if (rule->flags & FWDB_FLAG_NO_OFDM)
959 rrule->flags |= NL80211_RRF_NO_OFDM;
960 if (rule->flags & FWDB_FLAG_NO_OUTDOOR)
961 rrule->flags |= NL80211_RRF_NO_OUTDOOR;
962 if (rule->flags & FWDB_FLAG_DFS)
963 rrule->flags |= NL80211_RRF_DFS;
964 if (rule->flags & FWDB_FLAG_NO_IR)
965 rrule->flags |= NL80211_RRF_NO_IR;
966 if (rule->flags & FWDB_FLAG_AUTO_BW)
967 rrule->flags |= NL80211_RRF_AUTO_BW;
968
969 rrule->dfs_cac_ms = 0;
970
971 /* handle optional data */
972 if (rule->len >= offsetofend(struct fwdb_rule, cac_timeout))
973 rrule->dfs_cac_ms =
974 1000 * be16_to_cpu(rule->cac_timeout);
975 if (rule->len >= offsetofend(struct fwdb_rule, wmm_ptr))
976 set_wmm_rule(db, country, rule, rrule);
977 }
978
979 return reg_schedule_apply(regdom);
980 }
981
query_regdb(const char * alpha2)982 static int query_regdb(const char *alpha2)
983 {
984 const struct fwdb_header *hdr = regdb;
985 const struct fwdb_country *country;
986
987 ASSERT_RTNL();
988
989 if (IS_ERR(regdb))
990 return PTR_ERR(regdb);
991
992 country = &hdr->country[0];
993 while (country->coll_ptr) {
994 if (alpha2_equal(alpha2, country->alpha2))
995 return regdb_query_country(regdb, country);
996 country++;
997 }
998
999 return -ENODATA;
1000 }
1001
regdb_fw_cb(const struct firmware * fw,void * context)1002 static void regdb_fw_cb(const struct firmware *fw, void *context)
1003 {
1004 int set_error = 0;
1005 bool restore = true;
1006 void *db;
1007
1008 if (!fw) {
1009 pr_info("failed to load regulatory.db\n");
1010 set_error = -ENODATA;
1011 } else if (!valid_regdb(fw->data, fw->size)) {
1012 pr_info("loaded regulatory.db is malformed or signature is missing/invalid\n");
1013 set_error = -EINVAL;
1014 }
1015
1016 rtnl_lock();
1017 if (regdb && !IS_ERR(regdb)) {
1018 /* negative case - a bug
1019 * positive case - can happen due to race in case of multiple cb's in
1020 * queue, due to usage of asynchronous callback
1021 *
1022 * Either case, just restore and free new db.
1023 */
1024 } else if (set_error) {
1025 regdb = ERR_PTR(set_error);
1026 } else if (fw) {
1027 db = kmemdup(fw->data, fw->size, GFP_KERNEL);
1028 if (db) {
1029 regdb = db;
1030 restore = context && query_regdb(context);
1031 } else {
1032 restore = true;
1033 }
1034 }
1035
1036 if (restore)
1037 restore_regulatory_settings(true, false);
1038
1039 rtnl_unlock();
1040
1041 kfree(context);
1042
1043 release_firmware(fw);
1044 }
1045
1046 MODULE_FIRMWARE("regulatory.db");
1047
query_regdb_file(const char * alpha2)1048 static int query_regdb_file(const char *alpha2)
1049 {
1050 int err;
1051
1052 ASSERT_RTNL();
1053
1054 if (regdb)
1055 return query_regdb(alpha2);
1056
1057 alpha2 = kmemdup(alpha2, 2, GFP_KERNEL);
1058 if (!alpha2)
1059 return -ENOMEM;
1060
1061 err = request_firmware_nowait(THIS_MODULE, true, "regulatory.db",
1062 ®_fdev->dev, GFP_KERNEL,
1063 (void *)alpha2, regdb_fw_cb);
1064 if (err)
1065 kfree(alpha2);
1066
1067 return err;
1068 }
1069
reg_reload_regdb(void)1070 int reg_reload_regdb(void)
1071 {
1072 const struct firmware *fw;
1073 void *db;
1074 int err;
1075 const struct ieee80211_regdomain *current_regdomain;
1076 struct regulatory_request *request;
1077
1078 err = request_firmware(&fw, "regulatory.db", ®_fdev->dev);
1079 if (err)
1080 return err;
1081
1082 if (!valid_regdb(fw->data, fw->size)) {
1083 err = -ENODATA;
1084 goto out;
1085 }
1086
1087 db = kmemdup(fw->data, fw->size, GFP_KERNEL);
1088 if (!db) {
1089 err = -ENOMEM;
1090 goto out;
1091 }
1092
1093 rtnl_lock();
1094 if (!IS_ERR_OR_NULL(regdb))
1095 kfree(regdb);
1096 regdb = db;
1097
1098 /* reset regulatory domain */
1099 current_regdomain = get_cfg80211_regdom();
1100
1101 request = kzalloc_obj(*request);
1102 if (!request) {
1103 err = -ENOMEM;
1104 goto out_unlock;
1105 }
1106
1107 request->wiphy_idx = WIPHY_IDX_INVALID;
1108 request->alpha2[0] = current_regdomain->alpha2[0];
1109 request->alpha2[1] = current_regdomain->alpha2[1];
1110 request->initiator = NL80211_REGDOM_SET_BY_CORE;
1111 request->user_reg_hint_type = NL80211_USER_REG_HINT_USER;
1112
1113 reg_process_hint(request);
1114
1115 out_unlock:
1116 rtnl_unlock();
1117 out:
1118 release_firmware(fw);
1119 return err;
1120 }
1121
reg_query_database(struct regulatory_request * request)1122 static bool reg_query_database(struct regulatory_request *request)
1123 {
1124 if (query_regdb_file(request->alpha2) == 0)
1125 return true;
1126
1127 if (call_crda(request->alpha2) == 0)
1128 return true;
1129
1130 return false;
1131 }
1132
reg_is_valid_request(const char * alpha2)1133 bool reg_is_valid_request(const char *alpha2)
1134 {
1135 struct regulatory_request *lr = get_last_request();
1136
1137 if (!lr || lr->processed)
1138 return false;
1139
1140 return alpha2_equal(lr->alpha2, alpha2);
1141 }
1142
reg_get_regdomain(struct wiphy * wiphy)1143 static const struct ieee80211_regdomain *reg_get_regdomain(struct wiphy *wiphy)
1144 {
1145 struct regulatory_request *lr = get_last_request();
1146
1147 /*
1148 * Follow the driver's regulatory domain, if present, unless a country
1149 * IE has been processed or a user wants to help compliance further
1150 */
1151 if (lr->initiator != NL80211_REGDOM_SET_BY_COUNTRY_IE &&
1152 lr->initiator != NL80211_REGDOM_SET_BY_USER &&
1153 wiphy->regd)
1154 return get_wiphy_regdom(wiphy);
1155
1156 return get_cfg80211_regdom();
1157 }
1158
1159 static unsigned int
reg_get_max_bandwidth_from_range(const struct ieee80211_regdomain * rd,const struct ieee80211_reg_rule * rule)1160 reg_get_max_bandwidth_from_range(const struct ieee80211_regdomain *rd,
1161 const struct ieee80211_reg_rule *rule)
1162 {
1163 const struct ieee80211_freq_range *freq_range = &rule->freq_range;
1164 const struct ieee80211_freq_range *freq_range_tmp;
1165 const struct ieee80211_reg_rule *tmp;
1166 u32 start_freq, end_freq, idx, no;
1167
1168 for (idx = 0; idx < rd->n_reg_rules; idx++)
1169 if (rule == &rd->reg_rules[idx])
1170 break;
1171
1172 if (idx == rd->n_reg_rules)
1173 return 0;
1174
1175 /* get start_freq */
1176 no = idx;
1177
1178 while (no) {
1179 tmp = &rd->reg_rules[--no];
1180 freq_range_tmp = &tmp->freq_range;
1181
1182 if (freq_range_tmp->end_freq_khz < freq_range->start_freq_khz)
1183 break;
1184
1185 freq_range = freq_range_tmp;
1186 }
1187
1188 start_freq = freq_range->start_freq_khz;
1189
1190 /* get end_freq */
1191 freq_range = &rule->freq_range;
1192 no = idx;
1193
1194 while (no < rd->n_reg_rules - 1) {
1195 tmp = &rd->reg_rules[++no];
1196 freq_range_tmp = &tmp->freq_range;
1197
1198 if (freq_range_tmp->start_freq_khz > freq_range->end_freq_khz)
1199 break;
1200
1201 freq_range = freq_range_tmp;
1202 }
1203
1204 end_freq = freq_range->end_freq_khz;
1205
1206 return end_freq - start_freq;
1207 }
1208
reg_get_max_bandwidth(const struct ieee80211_regdomain * rd,const struct ieee80211_reg_rule * rule)1209 unsigned int reg_get_max_bandwidth(const struct ieee80211_regdomain *rd,
1210 const struct ieee80211_reg_rule *rule)
1211 {
1212 unsigned int bw = reg_get_max_bandwidth_from_range(rd, rule);
1213
1214 if (rule->flags & NL80211_RRF_NO_320MHZ)
1215 bw = min_t(unsigned int, bw, MHZ_TO_KHZ(160));
1216 if (rule->flags & NL80211_RRF_NO_160MHZ)
1217 bw = min_t(unsigned int, bw, MHZ_TO_KHZ(80));
1218 if (rule->flags & NL80211_RRF_NO_80MHZ)
1219 bw = min_t(unsigned int, bw, MHZ_TO_KHZ(40));
1220
1221 /*
1222 * HT40+/HT40- limits are handled per-channel. Only limit BW if both
1223 * are not allowed.
1224 */
1225 if (rule->flags & NL80211_RRF_NO_HT40MINUS &&
1226 rule->flags & NL80211_RRF_NO_HT40PLUS)
1227 bw = min_t(unsigned int, bw, MHZ_TO_KHZ(20));
1228
1229 return bw;
1230 }
1231
1232 /* Sanity check on a regulatory rule */
is_valid_reg_rule(const struct ieee80211_reg_rule * rule)1233 static bool is_valid_reg_rule(const struct ieee80211_reg_rule *rule)
1234 {
1235 const struct ieee80211_freq_range *freq_range = &rule->freq_range;
1236 u32 freq_diff;
1237
1238 if (freq_range->start_freq_khz <= 0 || freq_range->end_freq_khz <= 0)
1239 return false;
1240
1241 if (freq_range->start_freq_khz > freq_range->end_freq_khz)
1242 return false;
1243
1244 freq_diff = freq_range->end_freq_khz - freq_range->start_freq_khz;
1245
1246 if (freq_range->end_freq_khz <= freq_range->start_freq_khz ||
1247 freq_range->max_bandwidth_khz > freq_diff)
1248 return false;
1249
1250 return true;
1251 }
1252
is_valid_rd(const struct ieee80211_regdomain * rd)1253 static bool is_valid_rd(const struct ieee80211_regdomain *rd)
1254 {
1255 const struct ieee80211_reg_rule *reg_rule = NULL;
1256 unsigned int i;
1257
1258 if (!rd->n_reg_rules)
1259 return false;
1260
1261 if (WARN_ON(rd->n_reg_rules > NL80211_MAX_SUPP_REG_RULES))
1262 return false;
1263
1264 for (i = 0; i < rd->n_reg_rules; i++) {
1265 reg_rule = &rd->reg_rules[i];
1266 if (!is_valid_reg_rule(reg_rule))
1267 return false;
1268 }
1269
1270 return true;
1271 }
1272
1273 /**
1274 * freq_in_rule_band - tells us if a frequency is in a frequency band
1275 * @freq_range: frequency rule we want to query
1276 * @freq_khz: frequency we are inquiring about
1277 *
1278 * This lets us know if a specific frequency rule is or is not relevant to
1279 * a specific frequency's band. Bands are device specific and artificial
1280 * definitions (the "2.4 GHz band", the "5 GHz band" and the "60GHz band"),
1281 * however it is safe for now to assume that a frequency rule should not be
1282 * part of a frequency's band if the start freq or end freq are off by more
1283 * than 2 GHz for the 2.4 and 5 GHz bands, and by more than 20 GHz for the
1284 * 60 GHz band.
1285 * This resolution can be lowered and should be considered as we add
1286 * regulatory rule support for other "bands".
1287 *
1288 * Returns: whether or not the frequency is in the range
1289 */
freq_in_rule_band(const struct ieee80211_freq_range * freq_range,u32 freq_khz)1290 static bool freq_in_rule_band(const struct ieee80211_freq_range *freq_range,
1291 u32 freq_khz)
1292 {
1293 /*
1294 * From 802.11ad: directional multi-gigabit (DMG):
1295 * Pertaining to operation in a frequency band containing a channel
1296 * with the Channel starting frequency above 45 GHz.
1297 */
1298 u32 limit = freq_khz > 45 * KHZ_PER_GHZ ? 20 * KHZ_PER_GHZ : 2 * KHZ_PER_GHZ;
1299 if (abs(freq_khz - freq_range->start_freq_khz) <= limit)
1300 return true;
1301 if (abs(freq_khz - freq_range->end_freq_khz) <= limit)
1302 return true;
1303 return false;
1304 }
1305
1306 /*
1307 * Later on we can perhaps use the more restrictive DFS
1308 * region but we don't have information for that yet so
1309 * for now simply disallow conflicts.
1310 */
1311 static enum nl80211_dfs_regions
reg_intersect_dfs_region(const enum nl80211_dfs_regions dfs_region1,const enum nl80211_dfs_regions dfs_region2)1312 reg_intersect_dfs_region(const enum nl80211_dfs_regions dfs_region1,
1313 const enum nl80211_dfs_regions dfs_region2)
1314 {
1315 if (dfs_region1 != dfs_region2)
1316 return NL80211_DFS_UNSET;
1317 return dfs_region1;
1318 }
1319
reg_wmm_rules_intersect(const struct ieee80211_wmm_ac * wmm_ac1,const struct ieee80211_wmm_ac * wmm_ac2,struct ieee80211_wmm_ac * intersect)1320 static void reg_wmm_rules_intersect(const struct ieee80211_wmm_ac *wmm_ac1,
1321 const struct ieee80211_wmm_ac *wmm_ac2,
1322 struct ieee80211_wmm_ac *intersect)
1323 {
1324 intersect->cw_min = max_t(u16, wmm_ac1->cw_min, wmm_ac2->cw_min);
1325 intersect->cw_max = max_t(u16, wmm_ac1->cw_max, wmm_ac2->cw_max);
1326 intersect->cot = min_t(u16, wmm_ac1->cot, wmm_ac2->cot);
1327 intersect->aifsn = max_t(u8, wmm_ac1->aifsn, wmm_ac2->aifsn);
1328 }
1329
1330 /*
1331 * Helper for regdom_intersect(), this does the real
1332 * mathematical intersection fun
1333 */
reg_rules_intersect(const struct ieee80211_regdomain * rd1,const struct ieee80211_regdomain * rd2,const struct ieee80211_reg_rule * rule1,const struct ieee80211_reg_rule * rule2,struct ieee80211_reg_rule * intersected_rule)1334 static int reg_rules_intersect(const struct ieee80211_regdomain *rd1,
1335 const struct ieee80211_regdomain *rd2,
1336 const struct ieee80211_reg_rule *rule1,
1337 const struct ieee80211_reg_rule *rule2,
1338 struct ieee80211_reg_rule *intersected_rule)
1339 {
1340 const struct ieee80211_freq_range *freq_range1, *freq_range2;
1341 struct ieee80211_freq_range *freq_range;
1342 const struct ieee80211_power_rule *power_rule1, *power_rule2;
1343 struct ieee80211_power_rule *power_rule;
1344 const struct ieee80211_wmm_rule *wmm_rule1, *wmm_rule2;
1345 struct ieee80211_wmm_rule *wmm_rule;
1346 u32 freq_diff, max_bandwidth1, max_bandwidth2;
1347
1348 freq_range1 = &rule1->freq_range;
1349 freq_range2 = &rule2->freq_range;
1350 freq_range = &intersected_rule->freq_range;
1351
1352 power_rule1 = &rule1->power_rule;
1353 power_rule2 = &rule2->power_rule;
1354 power_rule = &intersected_rule->power_rule;
1355
1356 wmm_rule1 = &rule1->wmm_rule;
1357 wmm_rule2 = &rule2->wmm_rule;
1358 wmm_rule = &intersected_rule->wmm_rule;
1359
1360 freq_range->start_freq_khz = max(freq_range1->start_freq_khz,
1361 freq_range2->start_freq_khz);
1362 freq_range->end_freq_khz = min(freq_range1->end_freq_khz,
1363 freq_range2->end_freq_khz);
1364
1365 max_bandwidth1 = freq_range1->max_bandwidth_khz;
1366 max_bandwidth2 = freq_range2->max_bandwidth_khz;
1367
1368 if (rule1->flags & NL80211_RRF_AUTO_BW)
1369 max_bandwidth1 = reg_get_max_bandwidth(rd1, rule1);
1370 if (rule2->flags & NL80211_RRF_AUTO_BW)
1371 max_bandwidth2 = reg_get_max_bandwidth(rd2, rule2);
1372
1373 freq_range->max_bandwidth_khz = min(max_bandwidth1, max_bandwidth2);
1374
1375 intersected_rule->flags = rule1->flags | rule2->flags;
1376
1377 /*
1378 * In case NL80211_RRF_AUTO_BW requested for both rules
1379 * set AUTO_BW in intersected rule also. Next we will
1380 * calculate BW correctly in handle_channel function.
1381 * In other case remove AUTO_BW flag while we calculate
1382 * maximum bandwidth correctly and auto calculation is
1383 * not required.
1384 */
1385 if ((rule1->flags & NL80211_RRF_AUTO_BW) &&
1386 (rule2->flags & NL80211_RRF_AUTO_BW))
1387 intersected_rule->flags |= NL80211_RRF_AUTO_BW;
1388 else
1389 intersected_rule->flags &= ~NL80211_RRF_AUTO_BW;
1390
1391 freq_diff = freq_range->end_freq_khz - freq_range->start_freq_khz;
1392 if (freq_range->max_bandwidth_khz > freq_diff)
1393 freq_range->max_bandwidth_khz = freq_diff;
1394
1395 power_rule->max_eirp = min(power_rule1->max_eirp,
1396 power_rule2->max_eirp);
1397 power_rule->max_antenna_gain = min(power_rule1->max_antenna_gain,
1398 power_rule2->max_antenna_gain);
1399
1400 intersected_rule->dfs_cac_ms = max(rule1->dfs_cac_ms,
1401 rule2->dfs_cac_ms);
1402
1403 if (rule1->has_wmm && rule2->has_wmm) {
1404 u8 ac;
1405
1406 for (ac = 0; ac < IEEE80211_NUM_ACS; ac++) {
1407 reg_wmm_rules_intersect(&wmm_rule1->client[ac],
1408 &wmm_rule2->client[ac],
1409 &wmm_rule->client[ac]);
1410 reg_wmm_rules_intersect(&wmm_rule1->ap[ac],
1411 &wmm_rule2->ap[ac],
1412 &wmm_rule->ap[ac]);
1413 }
1414
1415 intersected_rule->has_wmm = true;
1416 } else if (rule1->has_wmm) {
1417 *wmm_rule = *wmm_rule1;
1418 intersected_rule->has_wmm = true;
1419 } else if (rule2->has_wmm) {
1420 *wmm_rule = *wmm_rule2;
1421 intersected_rule->has_wmm = true;
1422 } else {
1423 intersected_rule->has_wmm = false;
1424 }
1425
1426 if (!is_valid_reg_rule(intersected_rule))
1427 return -EINVAL;
1428
1429 return 0;
1430 }
1431
1432 /* check whether old rule contains new rule */
rule_contains(struct ieee80211_reg_rule * r1,struct ieee80211_reg_rule * r2)1433 static bool rule_contains(struct ieee80211_reg_rule *r1,
1434 struct ieee80211_reg_rule *r2)
1435 {
1436 /* for simplicity, currently consider only same flags */
1437 if (r1->flags != r2->flags)
1438 return false;
1439
1440 /* verify r1 is more restrictive */
1441 if ((r1->power_rule.max_antenna_gain >
1442 r2->power_rule.max_antenna_gain) ||
1443 r1->power_rule.max_eirp > r2->power_rule.max_eirp)
1444 return false;
1445
1446 /* make sure r2's range is contained within r1 */
1447 if (r1->freq_range.start_freq_khz > r2->freq_range.start_freq_khz ||
1448 r1->freq_range.end_freq_khz < r2->freq_range.end_freq_khz)
1449 return false;
1450
1451 /* and finally verify that r1.max_bw >= r2.max_bw */
1452 if (r1->freq_range.max_bandwidth_khz <
1453 r2->freq_range.max_bandwidth_khz)
1454 return false;
1455
1456 return true;
1457 }
1458
1459 /* add or extend current rules. do nothing if rule is already contained */
add_rule(struct ieee80211_reg_rule * rule,struct ieee80211_reg_rule * reg_rules,u32 * n_rules)1460 static void add_rule(struct ieee80211_reg_rule *rule,
1461 struct ieee80211_reg_rule *reg_rules, u32 *n_rules)
1462 {
1463 struct ieee80211_reg_rule *tmp_rule;
1464 int i;
1465
1466 for (i = 0; i < *n_rules; i++) {
1467 tmp_rule = ®_rules[i];
1468 /* rule is already contained - do nothing */
1469 if (rule_contains(tmp_rule, rule))
1470 return;
1471
1472 /* extend rule if possible */
1473 if (rule_contains(rule, tmp_rule)) {
1474 memcpy(tmp_rule, rule, sizeof(*rule));
1475 return;
1476 }
1477 }
1478
1479 memcpy(®_rules[*n_rules], rule, sizeof(*rule));
1480 (*n_rules)++;
1481 }
1482
1483 /**
1484 * regdom_intersect - do the intersection between two regulatory domains
1485 * @rd1: first regulatory domain
1486 * @rd2: second regulatory domain
1487 *
1488 * Use this function to get the intersection between two regulatory domains.
1489 * Once completed we will mark the alpha2 for the rd as intersected, "98",
1490 * as no one single alpha2 can represent this regulatory domain.
1491 *
1492 * Returns a pointer to the regulatory domain structure which will hold the
1493 * resulting intersection of rules between rd1 and rd2. We will
1494 * kzalloc() this structure for you.
1495 *
1496 * Returns: the intersected regdomain
1497 */
1498 static struct ieee80211_regdomain *
regdom_intersect(const struct ieee80211_regdomain * rd1,const struct ieee80211_regdomain * rd2)1499 regdom_intersect(const struct ieee80211_regdomain *rd1,
1500 const struct ieee80211_regdomain *rd2)
1501 {
1502 int r;
1503 unsigned int x, y;
1504 unsigned int num_rules = 0;
1505 const struct ieee80211_reg_rule *rule1, *rule2;
1506 struct ieee80211_reg_rule intersected_rule;
1507 struct ieee80211_regdomain *rd;
1508
1509 if (!rd1 || !rd2)
1510 return NULL;
1511
1512 /*
1513 * First we get a count of the rules we'll need, then we actually
1514 * build them. This is to so we can malloc() and free() a
1515 * regdomain once. The reason we use reg_rules_intersect() here
1516 * is it will return -EINVAL if the rule computed makes no sense.
1517 * All rules that do check out OK are valid.
1518 */
1519
1520 for (x = 0; x < rd1->n_reg_rules; x++) {
1521 rule1 = &rd1->reg_rules[x];
1522 for (y = 0; y < rd2->n_reg_rules; y++) {
1523 rule2 = &rd2->reg_rules[y];
1524 if (!reg_rules_intersect(rd1, rd2, rule1, rule2,
1525 &intersected_rule))
1526 num_rules++;
1527 }
1528 }
1529
1530 if (!num_rules)
1531 return NULL;
1532
1533 rd = kzalloc_flex(*rd, reg_rules, num_rules);
1534 if (!rd)
1535 return NULL;
1536
1537 for (x = 0; x < rd1->n_reg_rules; x++) {
1538 rule1 = &rd1->reg_rules[x];
1539 for (y = 0; y < rd2->n_reg_rules; y++) {
1540 rule2 = &rd2->reg_rules[y];
1541 r = reg_rules_intersect(rd1, rd2, rule1, rule2,
1542 &intersected_rule);
1543 /*
1544 * No need to memset here the intersected rule here as
1545 * we're not using the stack anymore
1546 */
1547 if (r)
1548 continue;
1549
1550 add_rule(&intersected_rule, rd->reg_rules,
1551 &rd->n_reg_rules);
1552 }
1553 }
1554
1555 rd->alpha2[0] = '9';
1556 rd->alpha2[1] = '8';
1557 rd->dfs_region = reg_intersect_dfs_region(rd1->dfs_region,
1558 rd2->dfs_region);
1559
1560 return rd;
1561 }
1562
1563 /*
1564 * XXX: add support for the rest of enum nl80211_reg_rule_flags, we may
1565 * want to just have the channel structure use these
1566 */
map_regdom_flags(u32 rd_flags)1567 static u32 map_regdom_flags(u32 rd_flags)
1568 {
1569 u32 channel_flags = 0;
1570 if (rd_flags & NL80211_RRF_NO_IR_ALL)
1571 channel_flags |= IEEE80211_CHAN_NO_IR;
1572 if (rd_flags & NL80211_RRF_DFS)
1573 channel_flags |= IEEE80211_CHAN_RADAR;
1574 if (rd_flags & NL80211_RRF_NO_OFDM)
1575 channel_flags |= IEEE80211_CHAN_NO_OFDM;
1576 if (rd_flags & NL80211_RRF_NO_OUTDOOR)
1577 channel_flags |= IEEE80211_CHAN_INDOOR_ONLY;
1578 if (rd_flags & NL80211_RRF_IR_CONCURRENT)
1579 channel_flags |= IEEE80211_CHAN_IR_CONCURRENT;
1580 if (rd_flags & NL80211_RRF_NO_HT40MINUS)
1581 channel_flags |= IEEE80211_CHAN_NO_HT40MINUS;
1582 if (rd_flags & NL80211_RRF_NO_HT40PLUS)
1583 channel_flags |= IEEE80211_CHAN_NO_HT40PLUS;
1584 if (rd_flags & NL80211_RRF_NO_80MHZ)
1585 channel_flags |= IEEE80211_CHAN_NO_80MHZ;
1586 if (rd_flags & NL80211_RRF_NO_160MHZ)
1587 channel_flags |= IEEE80211_CHAN_NO_160MHZ;
1588 if (rd_flags & NL80211_RRF_NO_HE)
1589 channel_flags |= IEEE80211_CHAN_NO_HE;
1590 if (rd_flags & NL80211_RRF_NO_320MHZ)
1591 channel_flags |= IEEE80211_CHAN_NO_320MHZ;
1592 if (rd_flags & NL80211_RRF_NO_EHT)
1593 channel_flags |= IEEE80211_CHAN_NO_EHT;
1594 if (rd_flags & NL80211_RRF_DFS_CONCURRENT)
1595 channel_flags |= IEEE80211_CHAN_DFS_CONCURRENT;
1596 if (rd_flags & NL80211_RRF_NO_6GHZ_VLP_CLIENT)
1597 channel_flags |= IEEE80211_CHAN_NO_6GHZ_VLP_CLIENT;
1598 if (rd_flags & NL80211_RRF_NO_6GHZ_AFC_CLIENT)
1599 channel_flags |= IEEE80211_CHAN_NO_6GHZ_AFC_CLIENT;
1600 if (rd_flags & NL80211_RRF_PSD)
1601 channel_flags |= IEEE80211_CHAN_PSD;
1602 if (rd_flags & NL80211_RRF_ALLOW_6GHZ_VLP_AP)
1603 channel_flags |= IEEE80211_CHAN_ALLOW_6GHZ_VLP_AP;
1604 if (rd_flags & NL80211_RRF_ALLOW_20MHZ_ACTIVITY)
1605 channel_flags |= IEEE80211_CHAN_ALLOW_20MHZ_ACTIVITY;
1606 if (rd_flags & NL80211_RRF_NO_UHR)
1607 channel_flags |= IEEE80211_CHAN_NO_UHR;
1608 return channel_flags;
1609 }
1610
1611 static const struct ieee80211_reg_rule *
freq_reg_info_regd(u32 center_freq,const struct ieee80211_regdomain * regd,u32 bw)1612 freq_reg_info_regd(u32 center_freq,
1613 const struct ieee80211_regdomain *regd, u32 bw)
1614 {
1615 int i;
1616 bool band_rule_found = false;
1617 bool bw_fits = false;
1618
1619 if (!regd)
1620 return ERR_PTR(-EINVAL);
1621
1622 for (i = 0; i < regd->n_reg_rules; i++) {
1623 const struct ieee80211_reg_rule *rr;
1624 const struct ieee80211_freq_range *fr = NULL;
1625
1626 rr = ®d->reg_rules[i];
1627 fr = &rr->freq_range;
1628
1629 /*
1630 * We only need to know if one frequency rule was
1631 * in center_freq's band, that's enough, so let's
1632 * not overwrite it once found
1633 */
1634 if (!band_rule_found)
1635 band_rule_found = freq_in_rule_band(fr, center_freq);
1636
1637 bw_fits = cfg80211_does_bw_fit_range(fr, center_freq, bw);
1638
1639 if (band_rule_found && bw_fits)
1640 return rr;
1641 }
1642
1643 if (!band_rule_found)
1644 return ERR_PTR(-ERANGE);
1645
1646 return ERR_PTR(-EINVAL);
1647 }
1648
1649 static const struct ieee80211_reg_rule *
__freq_reg_info(struct wiphy * wiphy,u32 center_freq,u32 min_bw)1650 __freq_reg_info(struct wiphy *wiphy, u32 center_freq, u32 min_bw)
1651 {
1652 const struct ieee80211_regdomain *regd = reg_get_regdomain(wiphy);
1653 static const u32 bws[] = {0, 1, 2, 4, 5, 8, 10, 16, 20};
1654 const struct ieee80211_reg_rule *reg_rule = ERR_PTR(-ERANGE);
1655 int i = ARRAY_SIZE(bws) - 1;
1656 u32 bw;
1657
1658 for (bw = MHZ_TO_KHZ(bws[i]); bw >= min_bw; bw = MHZ_TO_KHZ(bws[i--])) {
1659 reg_rule = freq_reg_info_regd(center_freq, regd, bw);
1660 if (!IS_ERR(reg_rule))
1661 return reg_rule;
1662 }
1663
1664 return reg_rule;
1665 }
1666
freq_reg_info(struct wiphy * wiphy,u32 center_freq)1667 const struct ieee80211_reg_rule *freq_reg_info(struct wiphy *wiphy,
1668 u32 center_freq)
1669 {
1670 u32 min_bw = center_freq < MHZ_TO_KHZ(1000) ? 1 : 20;
1671
1672 return __freq_reg_info(wiphy, center_freq, MHZ_TO_KHZ(min_bw));
1673 }
1674 EXPORT_SYMBOL(freq_reg_info);
1675
reg_initiator_name(enum nl80211_reg_initiator initiator)1676 const char *reg_initiator_name(enum nl80211_reg_initiator initiator)
1677 {
1678 switch (initiator) {
1679 case NL80211_REGDOM_SET_BY_CORE:
1680 return "core";
1681 case NL80211_REGDOM_SET_BY_USER:
1682 return "user";
1683 case NL80211_REGDOM_SET_BY_DRIVER:
1684 return "driver";
1685 case NL80211_REGDOM_SET_BY_COUNTRY_IE:
1686 return "country element";
1687 default:
1688 WARN_ON(1);
1689 return "bug";
1690 }
1691 }
1692 EXPORT_SYMBOL(reg_initiator_name);
1693
reg_rule_to_chan_bw_flags(const struct ieee80211_regdomain * regd,const struct ieee80211_reg_rule * reg_rule,const struct ieee80211_channel * chan)1694 static uint32_t reg_rule_to_chan_bw_flags(const struct ieee80211_regdomain *regd,
1695 const struct ieee80211_reg_rule *reg_rule,
1696 const struct ieee80211_channel *chan)
1697 {
1698 const struct ieee80211_freq_range *freq_range = NULL;
1699 u32 max_bandwidth_khz, center_freq_khz, bw_flags = 0;
1700 bool is_s1g = chan->band == NL80211_BAND_S1GHZ;
1701
1702 freq_range = ®_rule->freq_range;
1703
1704 max_bandwidth_khz = freq_range->max_bandwidth_khz;
1705 center_freq_khz = ieee80211_channel_to_khz(chan);
1706 /* Check if auto calculation requested */
1707 if (reg_rule->flags & NL80211_RRF_AUTO_BW)
1708 max_bandwidth_khz = reg_get_max_bandwidth(regd, reg_rule);
1709
1710 if (is_s1g) {
1711 if (max_bandwidth_khz < MHZ_TO_KHZ(16))
1712 bw_flags |= IEEE80211_CHAN_NO_16MHZ;
1713 if (max_bandwidth_khz < MHZ_TO_KHZ(8))
1714 bw_flags |= IEEE80211_CHAN_NO_8MHZ;
1715 if (max_bandwidth_khz < MHZ_TO_KHZ(4))
1716 bw_flags |= IEEE80211_CHAN_NO_4MHZ;
1717 return bw_flags;
1718 }
1719
1720 /* If we get a reg_rule we can assume that at least 5Mhz fit */
1721 if (!cfg80211_does_bw_fit_range(freq_range,
1722 center_freq_khz,
1723 MHZ_TO_KHZ(10)))
1724 bw_flags |= IEEE80211_CHAN_NO_10MHZ;
1725 if (!cfg80211_does_bw_fit_range(freq_range,
1726 center_freq_khz,
1727 MHZ_TO_KHZ(20)))
1728 bw_flags |= IEEE80211_CHAN_NO_20MHZ;
1729
1730 if (max_bandwidth_khz < MHZ_TO_KHZ(10))
1731 bw_flags |= IEEE80211_CHAN_NO_10MHZ;
1732 if (max_bandwidth_khz < MHZ_TO_KHZ(20))
1733 bw_flags |= IEEE80211_CHAN_NO_20MHZ;
1734 if (max_bandwidth_khz < MHZ_TO_KHZ(40))
1735 bw_flags |= IEEE80211_CHAN_NO_HT40;
1736 if (max_bandwidth_khz < MHZ_TO_KHZ(80))
1737 bw_flags |= IEEE80211_CHAN_NO_80MHZ;
1738 if (max_bandwidth_khz < MHZ_TO_KHZ(160))
1739 bw_flags |= IEEE80211_CHAN_NO_160MHZ;
1740 if (max_bandwidth_khz < MHZ_TO_KHZ(320))
1741 bw_flags |= IEEE80211_CHAN_NO_320MHZ;
1742
1743 return bw_flags;
1744 }
1745
handle_channel_single_rule(struct wiphy * wiphy,enum nl80211_reg_initiator initiator,struct ieee80211_channel * chan,u32 flags,struct regulatory_request * lr,struct wiphy * request_wiphy,const struct ieee80211_reg_rule * reg_rule)1746 static void handle_channel_single_rule(struct wiphy *wiphy,
1747 enum nl80211_reg_initiator initiator,
1748 struct ieee80211_channel *chan,
1749 u32 flags,
1750 struct regulatory_request *lr,
1751 struct wiphy *request_wiphy,
1752 const struct ieee80211_reg_rule *reg_rule)
1753 {
1754 u32 bw_flags = 0;
1755 const struct ieee80211_power_rule *power_rule = NULL;
1756 const struct ieee80211_regdomain *regd;
1757
1758 regd = reg_get_regdomain(wiphy);
1759
1760 power_rule = ®_rule->power_rule;
1761 bw_flags = reg_rule_to_chan_bw_flags(regd, reg_rule, chan);
1762
1763 if (lr->initiator == NL80211_REGDOM_SET_BY_DRIVER &&
1764 request_wiphy && request_wiphy == wiphy &&
1765 request_wiphy->regulatory_flags & REGULATORY_STRICT_REG) {
1766 /*
1767 * This guarantees the driver's requested regulatory domain
1768 * will always be used as a base for further regulatory
1769 * settings
1770 */
1771 chan->flags = chan->orig_flags =
1772 map_regdom_flags(reg_rule->flags) | bw_flags;
1773 chan->max_antenna_gain = chan->orig_mag =
1774 (int) MBI_TO_DBI(power_rule->max_antenna_gain);
1775 chan->max_reg_power = chan->max_power = chan->orig_mpwr =
1776 (int) MBM_TO_DBM(power_rule->max_eirp);
1777
1778 if (chan->flags & IEEE80211_CHAN_RADAR) {
1779 chan->dfs_cac_ms = IEEE80211_DFS_MIN_CAC_TIME_MS;
1780 if (reg_rule->dfs_cac_ms)
1781 chan->dfs_cac_ms = reg_rule->dfs_cac_ms;
1782 }
1783
1784 if (chan->flags & IEEE80211_CHAN_PSD)
1785 chan->psd = reg_rule->psd;
1786
1787 return;
1788 }
1789
1790 chan->dfs_state = NL80211_DFS_USABLE;
1791 chan->dfs_state_entered = jiffies;
1792
1793 chan->beacon_found = false;
1794 chan->flags = flags | bw_flags | map_regdom_flags(reg_rule->flags);
1795 chan->max_antenna_gain =
1796 min_t(int, chan->orig_mag,
1797 MBI_TO_DBI(power_rule->max_antenna_gain));
1798 chan->max_reg_power = (int) MBM_TO_DBM(power_rule->max_eirp);
1799
1800 if (chan->flags & IEEE80211_CHAN_RADAR) {
1801 if (reg_rule->dfs_cac_ms)
1802 chan->dfs_cac_ms = reg_rule->dfs_cac_ms;
1803 else
1804 chan->dfs_cac_ms = IEEE80211_DFS_MIN_CAC_TIME_MS;
1805 }
1806
1807 if (chan->flags & IEEE80211_CHAN_PSD)
1808 chan->psd = reg_rule->psd;
1809
1810 if (chan->orig_mpwr) {
1811 /*
1812 * Devices that use REGULATORY_COUNTRY_IE_FOLLOW_POWER
1813 * will always follow the passed country IE power settings.
1814 */
1815 if (initiator == NL80211_REGDOM_SET_BY_COUNTRY_IE &&
1816 wiphy->regulatory_flags & REGULATORY_COUNTRY_IE_FOLLOW_POWER)
1817 chan->max_power = chan->max_reg_power;
1818 else
1819 chan->max_power = min(chan->orig_mpwr,
1820 chan->max_reg_power);
1821 } else
1822 chan->max_power = chan->max_reg_power;
1823 }
1824
handle_channel_adjacent_rules(struct wiphy * wiphy,enum nl80211_reg_initiator initiator,struct ieee80211_channel * chan,u32 flags,struct regulatory_request * lr,struct wiphy * request_wiphy,const struct ieee80211_reg_rule * rrule1,const struct ieee80211_reg_rule * rrule2,struct ieee80211_freq_range * comb_range)1825 static void handle_channel_adjacent_rules(struct wiphy *wiphy,
1826 enum nl80211_reg_initiator initiator,
1827 struct ieee80211_channel *chan,
1828 u32 flags,
1829 struct regulatory_request *lr,
1830 struct wiphy *request_wiphy,
1831 const struct ieee80211_reg_rule *rrule1,
1832 const struct ieee80211_reg_rule *rrule2,
1833 struct ieee80211_freq_range *comb_range)
1834 {
1835 u32 bw_flags1 = 0;
1836 u32 bw_flags2 = 0;
1837 const struct ieee80211_power_rule *power_rule1 = NULL;
1838 const struct ieee80211_power_rule *power_rule2 = NULL;
1839 const struct ieee80211_regdomain *regd;
1840
1841 regd = reg_get_regdomain(wiphy);
1842
1843 power_rule1 = &rrule1->power_rule;
1844 power_rule2 = &rrule2->power_rule;
1845 bw_flags1 = reg_rule_to_chan_bw_flags(regd, rrule1, chan);
1846 bw_flags2 = reg_rule_to_chan_bw_flags(regd, rrule2, chan);
1847
1848 if (lr->initiator == NL80211_REGDOM_SET_BY_DRIVER &&
1849 request_wiphy && request_wiphy == wiphy &&
1850 request_wiphy->regulatory_flags & REGULATORY_STRICT_REG) {
1851 /* This guarantees the driver's requested regulatory domain
1852 * will always be used as a base for further regulatory
1853 * settings
1854 */
1855 chan->flags =
1856 map_regdom_flags(rrule1->flags) |
1857 map_regdom_flags(rrule2->flags) |
1858 bw_flags1 |
1859 bw_flags2;
1860 chan->orig_flags = chan->flags;
1861 chan->max_antenna_gain =
1862 min_t(int, MBI_TO_DBI(power_rule1->max_antenna_gain),
1863 MBI_TO_DBI(power_rule2->max_antenna_gain));
1864 chan->orig_mag = chan->max_antenna_gain;
1865 chan->max_reg_power =
1866 min_t(int, MBM_TO_DBM(power_rule1->max_eirp),
1867 MBM_TO_DBM(power_rule2->max_eirp));
1868 chan->max_power = chan->max_reg_power;
1869 chan->orig_mpwr = chan->max_reg_power;
1870
1871 if (chan->flags & IEEE80211_CHAN_RADAR) {
1872 chan->dfs_cac_ms = IEEE80211_DFS_MIN_CAC_TIME_MS;
1873 if (rrule1->dfs_cac_ms || rrule2->dfs_cac_ms)
1874 chan->dfs_cac_ms = max_t(unsigned int,
1875 rrule1->dfs_cac_ms,
1876 rrule2->dfs_cac_ms);
1877 }
1878
1879 if ((rrule1->flags & NL80211_RRF_PSD) &&
1880 (rrule2->flags & NL80211_RRF_PSD))
1881 chan->psd = min_t(s8, rrule1->psd, rrule2->psd);
1882 else
1883 chan->flags &= ~NL80211_RRF_PSD;
1884
1885 return;
1886 }
1887
1888 chan->dfs_state = NL80211_DFS_USABLE;
1889 chan->dfs_state_entered = jiffies;
1890
1891 chan->beacon_found = false;
1892 chan->flags = flags | bw_flags1 | bw_flags2 |
1893 map_regdom_flags(rrule1->flags) |
1894 map_regdom_flags(rrule2->flags);
1895
1896 /* reg_rule_to_chan_bw_flags may forbids 10 and forbids 20 MHz
1897 * (otherwise no adj. rule case), recheck therefore
1898 */
1899 if (cfg80211_does_bw_fit_range(comb_range,
1900 ieee80211_channel_to_khz(chan),
1901 MHZ_TO_KHZ(10)))
1902 chan->flags &= ~IEEE80211_CHAN_NO_10MHZ;
1903 if (cfg80211_does_bw_fit_range(comb_range,
1904 ieee80211_channel_to_khz(chan),
1905 MHZ_TO_KHZ(20)))
1906 chan->flags &= ~IEEE80211_CHAN_NO_20MHZ;
1907
1908 chan->max_antenna_gain =
1909 min_t(int, chan->orig_mag,
1910 min_t(int,
1911 MBI_TO_DBI(power_rule1->max_antenna_gain),
1912 MBI_TO_DBI(power_rule2->max_antenna_gain)));
1913 chan->max_reg_power = min_t(int,
1914 MBM_TO_DBM(power_rule1->max_eirp),
1915 MBM_TO_DBM(power_rule2->max_eirp));
1916
1917 if (chan->flags & IEEE80211_CHAN_RADAR) {
1918 if (rrule1->dfs_cac_ms || rrule2->dfs_cac_ms)
1919 chan->dfs_cac_ms = max_t(unsigned int,
1920 rrule1->dfs_cac_ms,
1921 rrule2->dfs_cac_ms);
1922 else
1923 chan->dfs_cac_ms = IEEE80211_DFS_MIN_CAC_TIME_MS;
1924 }
1925
1926 if (chan->orig_mpwr) {
1927 /* Devices that use REGULATORY_COUNTRY_IE_FOLLOW_POWER
1928 * will always follow the passed country IE power settings.
1929 */
1930 if (initiator == NL80211_REGDOM_SET_BY_COUNTRY_IE &&
1931 wiphy->regulatory_flags & REGULATORY_COUNTRY_IE_FOLLOW_POWER)
1932 chan->max_power = chan->max_reg_power;
1933 else
1934 chan->max_power = min(chan->orig_mpwr,
1935 chan->max_reg_power);
1936 } else {
1937 chan->max_power = chan->max_reg_power;
1938 }
1939 }
1940
1941 /* Note that right now we assume the desired channel bandwidth
1942 * is always 20 MHz for each individual channel (HT40 uses 20 MHz
1943 * per channel, the primary and the extension channel).
1944 */
handle_channel(struct wiphy * wiphy,enum nl80211_reg_initiator initiator,struct ieee80211_channel * chan)1945 static void handle_channel(struct wiphy *wiphy,
1946 enum nl80211_reg_initiator initiator,
1947 struct ieee80211_channel *chan)
1948 {
1949 const u32 orig_chan_freq = ieee80211_channel_to_khz(chan);
1950 struct regulatory_request *lr = get_last_request();
1951 struct wiphy *request_wiphy = wiphy_idx_to_wiphy(lr->wiphy_idx);
1952 const struct ieee80211_reg_rule *rrule = NULL;
1953 const struct ieee80211_reg_rule *rrule1 = NULL;
1954 const struct ieee80211_reg_rule *rrule2 = NULL;
1955
1956 u32 flags = chan->orig_flags;
1957
1958 rrule = freq_reg_info(wiphy, orig_chan_freq);
1959 if (IS_ERR(rrule)) {
1960 /* check for adjacent match, therefore get rules for
1961 * chan - 20 MHz and chan + 20 MHz and test
1962 * if reg rules are adjacent
1963 */
1964 rrule1 = freq_reg_info(wiphy,
1965 orig_chan_freq - MHZ_TO_KHZ(20));
1966 rrule2 = freq_reg_info(wiphy,
1967 orig_chan_freq + MHZ_TO_KHZ(20));
1968 if (!IS_ERR(rrule1) && !IS_ERR(rrule2)) {
1969 struct ieee80211_freq_range comb_range;
1970
1971 if (rrule1->freq_range.end_freq_khz !=
1972 rrule2->freq_range.start_freq_khz)
1973 goto disable_chan;
1974
1975 comb_range.start_freq_khz =
1976 rrule1->freq_range.start_freq_khz;
1977 comb_range.end_freq_khz =
1978 rrule2->freq_range.end_freq_khz;
1979 comb_range.max_bandwidth_khz =
1980 min_t(u32,
1981 rrule1->freq_range.max_bandwidth_khz,
1982 rrule2->freq_range.max_bandwidth_khz);
1983
1984 if (!cfg80211_does_bw_fit_range(&comb_range,
1985 orig_chan_freq,
1986 MHZ_TO_KHZ(20)))
1987 goto disable_chan;
1988
1989 handle_channel_adjacent_rules(wiphy, initiator, chan,
1990 flags, lr, request_wiphy,
1991 rrule1, rrule2,
1992 &comb_range);
1993 return;
1994 }
1995
1996 disable_chan:
1997 /* We will disable all channels that do not match our
1998 * received regulatory rule unless the hint is coming
1999 * from a Country IE and the Country IE had no information
2000 * about a band. The IEEE 802.11 spec allows for an AP
2001 * to send only a subset of the regulatory rules allowed,
2002 * so an AP in the US that only supports 2.4 GHz may only send
2003 * a country IE with information for the 2.4 GHz band
2004 * while 5 GHz is still supported.
2005 */
2006 if (initiator == NL80211_REGDOM_SET_BY_COUNTRY_IE &&
2007 PTR_ERR(rrule) == -ERANGE)
2008 return;
2009
2010 if (lr->initiator == NL80211_REGDOM_SET_BY_DRIVER &&
2011 request_wiphy && request_wiphy == wiphy &&
2012 request_wiphy->regulatory_flags & REGULATORY_STRICT_REG) {
2013 pr_debug("Disabling freq %d.%03d MHz for good\n",
2014 chan->center_freq, chan->freq_offset);
2015 chan->orig_flags |= IEEE80211_CHAN_DISABLED;
2016 chan->flags = chan->orig_flags;
2017 } else {
2018 pr_debug("Disabling freq %d.%03d MHz\n",
2019 chan->center_freq, chan->freq_offset);
2020 chan->flags |= IEEE80211_CHAN_DISABLED;
2021 }
2022 return;
2023 }
2024
2025 handle_channel_single_rule(wiphy, initiator, chan, flags, lr,
2026 request_wiphy, rrule);
2027 }
2028
handle_band(struct wiphy * wiphy,enum nl80211_reg_initiator initiator,struct ieee80211_supported_band * sband)2029 static void handle_band(struct wiphy *wiphy,
2030 enum nl80211_reg_initiator initiator,
2031 struct ieee80211_supported_band *sband)
2032 {
2033 unsigned int i;
2034
2035 if (!sband)
2036 return;
2037
2038 for (i = 0; i < sband->n_channels; i++)
2039 handle_channel(wiphy, initiator, &sband->channels[i]);
2040 }
2041
reg_request_cell_base(struct regulatory_request * request)2042 static bool reg_request_cell_base(struct regulatory_request *request)
2043 {
2044 if (request->initiator != NL80211_REGDOM_SET_BY_USER)
2045 return false;
2046 return request->user_reg_hint_type == NL80211_USER_REG_HINT_CELL_BASE;
2047 }
2048
reg_last_request_cell_base(void)2049 bool reg_last_request_cell_base(void)
2050 {
2051 return reg_request_cell_base(get_last_request());
2052 }
2053
2054 #ifdef CONFIG_CFG80211_REG_CELLULAR_HINTS
2055 /* Core specific check */
2056 static enum reg_request_treatment
reg_ignore_cell_hint(struct regulatory_request * pending_request)2057 reg_ignore_cell_hint(struct regulatory_request *pending_request)
2058 {
2059 struct regulatory_request *lr = get_last_request();
2060
2061 if (!reg_num_devs_support_basehint)
2062 return REG_REQ_IGNORE;
2063
2064 if (reg_request_cell_base(lr) &&
2065 !regdom_changes(pending_request->alpha2))
2066 return REG_REQ_ALREADY_SET;
2067
2068 return REG_REQ_OK;
2069 }
2070
2071 /* Device specific check */
reg_dev_ignore_cell_hint(struct wiphy * wiphy)2072 static bool reg_dev_ignore_cell_hint(struct wiphy *wiphy)
2073 {
2074 return !(wiphy->features & NL80211_FEATURE_CELL_BASE_REG_HINTS);
2075 }
2076 #else
2077 static enum reg_request_treatment
reg_ignore_cell_hint(struct regulatory_request * pending_request)2078 reg_ignore_cell_hint(struct regulatory_request *pending_request)
2079 {
2080 return REG_REQ_IGNORE;
2081 }
2082
reg_dev_ignore_cell_hint(struct wiphy * wiphy)2083 static bool reg_dev_ignore_cell_hint(struct wiphy *wiphy)
2084 {
2085 return true;
2086 }
2087 #endif
2088
wiphy_strict_alpha2_regd(struct wiphy * wiphy)2089 static bool wiphy_strict_alpha2_regd(struct wiphy *wiphy)
2090 {
2091 if (wiphy->regulatory_flags & REGULATORY_STRICT_REG &&
2092 !(wiphy->regulatory_flags & REGULATORY_CUSTOM_REG))
2093 return true;
2094 return false;
2095 }
2096
ignore_reg_update(struct wiphy * wiphy,enum nl80211_reg_initiator initiator)2097 static bool ignore_reg_update(struct wiphy *wiphy,
2098 enum nl80211_reg_initiator initiator)
2099 {
2100 struct regulatory_request *lr = get_last_request();
2101
2102 if (wiphy->regulatory_flags & REGULATORY_WIPHY_SELF_MANAGED)
2103 return true;
2104
2105 if (!lr) {
2106 pr_debug("Ignoring regulatory request set by %s since last_request is not set\n",
2107 reg_initiator_name(initiator));
2108 return true;
2109 }
2110
2111 if (initiator == NL80211_REGDOM_SET_BY_CORE &&
2112 wiphy->regulatory_flags & REGULATORY_CUSTOM_REG) {
2113 pr_debug("Ignoring regulatory request set by %s since the driver uses its own custom regulatory domain\n",
2114 reg_initiator_name(initiator));
2115 return true;
2116 }
2117
2118 /*
2119 * wiphy->regd will be set once the device has its own
2120 * desired regulatory domain set
2121 */
2122 if (wiphy_strict_alpha2_regd(wiphy) && !wiphy->regd &&
2123 initiator != NL80211_REGDOM_SET_BY_COUNTRY_IE &&
2124 !is_world_regdom(lr->alpha2)) {
2125 pr_debug("Ignoring regulatory request set by %s since the driver requires its own regulatory domain to be set first\n",
2126 reg_initiator_name(initiator));
2127 return true;
2128 }
2129
2130 if (reg_request_cell_base(lr))
2131 return reg_dev_ignore_cell_hint(wiphy);
2132
2133 return false;
2134 }
2135
reg_is_world_roaming(struct wiphy * wiphy)2136 static bool reg_is_world_roaming(struct wiphy *wiphy)
2137 {
2138 const struct ieee80211_regdomain *cr = get_cfg80211_regdom();
2139 const struct ieee80211_regdomain *wr = get_wiphy_regdom(wiphy);
2140 struct regulatory_request *lr = get_last_request();
2141
2142 if (is_world_regdom(cr->alpha2) || (wr && is_world_regdom(wr->alpha2)))
2143 return true;
2144
2145 if (lr && lr->initiator != NL80211_REGDOM_SET_BY_COUNTRY_IE &&
2146 wiphy->regulatory_flags & REGULATORY_CUSTOM_REG)
2147 return true;
2148
2149 return false;
2150 }
2151
reg_call_notifier(struct wiphy * wiphy,struct regulatory_request * request)2152 static void reg_call_notifier(struct wiphy *wiphy,
2153 struct regulatory_request *request)
2154 {
2155 if (wiphy->reg_notifier)
2156 wiphy->reg_notifier(wiphy, request);
2157 }
2158
handle_reg_beacon(struct wiphy * wiphy,unsigned int chan_idx,struct reg_beacon * reg_beacon)2159 static void handle_reg_beacon(struct wiphy *wiphy, unsigned int chan_idx,
2160 struct reg_beacon *reg_beacon)
2161 {
2162 struct ieee80211_supported_band *sband;
2163 struct ieee80211_channel *chan;
2164 bool channel_changed = false;
2165 struct ieee80211_channel chan_before;
2166 struct regulatory_request *lr = get_last_request();
2167
2168 sband = wiphy->bands[reg_beacon->chan.band];
2169 chan = &sband->channels[chan_idx];
2170
2171 if (likely(!ieee80211_channel_equal(chan, ®_beacon->chan)))
2172 return;
2173
2174 if (chan->beacon_found)
2175 return;
2176
2177 chan->beacon_found = true;
2178
2179 if (!reg_is_world_roaming(wiphy))
2180 return;
2181
2182 if (wiphy->regulatory_flags & REGULATORY_DISABLE_BEACON_HINTS)
2183 return;
2184
2185 chan_before = *chan;
2186
2187 if (chan->flags & IEEE80211_CHAN_NO_IR) {
2188 chan->flags &= ~IEEE80211_CHAN_NO_IR;
2189 channel_changed = true;
2190 }
2191
2192 if (channel_changed) {
2193 nl80211_send_beacon_hint_event(wiphy, &chan_before, chan);
2194 if (wiphy->flags & WIPHY_FLAG_CHANNEL_CHANGE_ON_BEACON)
2195 reg_call_notifier(wiphy, lr);
2196 }
2197 }
2198
2199 /*
2200 * Called when a scan on a wiphy finds a beacon on
2201 * new channel
2202 */
wiphy_update_new_beacon(struct wiphy * wiphy,struct reg_beacon * reg_beacon)2203 static void wiphy_update_new_beacon(struct wiphy *wiphy,
2204 struct reg_beacon *reg_beacon)
2205 {
2206 unsigned int i;
2207 struct ieee80211_supported_band *sband;
2208
2209 if (!wiphy->bands[reg_beacon->chan.band])
2210 return;
2211
2212 sband = wiphy->bands[reg_beacon->chan.band];
2213
2214 for (i = 0; i < sband->n_channels; i++)
2215 handle_reg_beacon(wiphy, i, reg_beacon);
2216 }
2217
2218 /*
2219 * Called upon reg changes or a new wiphy is added
2220 */
wiphy_update_beacon_reg(struct wiphy * wiphy)2221 static void wiphy_update_beacon_reg(struct wiphy *wiphy)
2222 {
2223 unsigned int i;
2224 struct ieee80211_supported_band *sband;
2225 struct reg_beacon *reg_beacon;
2226
2227 list_for_each_entry(reg_beacon, ®_beacon_list, list) {
2228 if (!wiphy->bands[reg_beacon->chan.band])
2229 continue;
2230 sband = wiphy->bands[reg_beacon->chan.band];
2231 for (i = 0; i < sband->n_channels; i++)
2232 handle_reg_beacon(wiphy, i, reg_beacon);
2233 }
2234 }
2235
2236 /* Reap the advantages of previously found beacons */
reg_process_beacons(struct wiphy * wiphy)2237 static void reg_process_beacons(struct wiphy *wiphy)
2238 {
2239 /*
2240 * Means we are just firing up cfg80211, so no beacons would
2241 * have been processed yet.
2242 */
2243 if (!last_request)
2244 return;
2245 wiphy_update_beacon_reg(wiphy);
2246 }
2247
is_ht40_allowed(struct ieee80211_channel * chan)2248 static bool is_ht40_allowed(struct ieee80211_channel *chan)
2249 {
2250 if (!chan)
2251 return false;
2252 if (chan->flags & IEEE80211_CHAN_DISABLED)
2253 return false;
2254 /* This would happen when regulatory rules disallow HT40 completely */
2255 if ((chan->flags & IEEE80211_CHAN_NO_HT40) == IEEE80211_CHAN_NO_HT40)
2256 return false;
2257 return true;
2258 }
2259
reg_process_ht_flags_channel(struct wiphy * wiphy,struct ieee80211_channel * channel)2260 static void reg_process_ht_flags_channel(struct wiphy *wiphy,
2261 struct ieee80211_channel *channel)
2262 {
2263 struct ieee80211_supported_band *sband = wiphy->bands[channel->band];
2264 struct ieee80211_channel *channel_before = NULL, *channel_after = NULL;
2265 const struct ieee80211_regdomain *regd;
2266 unsigned int i;
2267 u32 flags;
2268
2269 if (!is_ht40_allowed(channel)) {
2270 channel->flags |= IEEE80211_CHAN_NO_HT40;
2271 return;
2272 }
2273
2274 /*
2275 * We need to ensure the extension channels exist to
2276 * be able to use HT40- or HT40+, this finds them (or not)
2277 */
2278 for (i = 0; i < sband->n_channels; i++) {
2279 struct ieee80211_channel *c = &sband->channels[i];
2280
2281 if (c->center_freq == (channel->center_freq - 20))
2282 channel_before = c;
2283 if (c->center_freq == (channel->center_freq + 20))
2284 channel_after = c;
2285 }
2286
2287 flags = 0;
2288 regd = get_wiphy_regdom(wiphy);
2289 if (regd) {
2290 const struct ieee80211_reg_rule *reg_rule =
2291 freq_reg_info_regd(MHZ_TO_KHZ(channel->center_freq),
2292 regd, MHZ_TO_KHZ(20));
2293
2294 if (!IS_ERR(reg_rule))
2295 flags = reg_rule->flags;
2296 }
2297
2298 /*
2299 * Please note that this assumes target bandwidth is 20 MHz,
2300 * if that ever changes we also need to change the below logic
2301 * to include that as well.
2302 */
2303 if (!is_ht40_allowed(channel_before) ||
2304 flags & NL80211_RRF_NO_HT40MINUS)
2305 channel->flags |= IEEE80211_CHAN_NO_HT40MINUS;
2306 else
2307 channel->flags &= ~IEEE80211_CHAN_NO_HT40MINUS;
2308
2309 if (!is_ht40_allowed(channel_after) ||
2310 flags & NL80211_RRF_NO_HT40PLUS)
2311 channel->flags |= IEEE80211_CHAN_NO_HT40PLUS;
2312 else
2313 channel->flags &= ~IEEE80211_CHAN_NO_HT40PLUS;
2314 }
2315
reg_process_ht_flags_band(struct wiphy * wiphy,struct ieee80211_supported_band * sband)2316 static void reg_process_ht_flags_band(struct wiphy *wiphy,
2317 struct ieee80211_supported_band *sband)
2318 {
2319 unsigned int i;
2320
2321 if (!sband)
2322 return;
2323
2324 for (i = 0; i < sband->n_channels; i++)
2325 reg_process_ht_flags_channel(wiphy, &sband->channels[i]);
2326 }
2327
reg_process_ht_flags(struct wiphy * wiphy)2328 static void reg_process_ht_flags(struct wiphy *wiphy)
2329 {
2330 enum nl80211_band band;
2331
2332 if (!wiphy)
2333 return;
2334
2335 for (band = 0; band < NUM_NL80211_BANDS; band++) {
2336 /*
2337 * Don't apply HT flags to channels within the S1G band.
2338 * Each bonded channel will instead be validated individually
2339 * within cfg80211_s1g_usable().
2340 */
2341 if (band == NL80211_BAND_S1GHZ)
2342 continue;
2343
2344 reg_process_ht_flags_band(wiphy, wiphy->bands[band]);
2345 }
2346 }
2347
reg_wdev_chan_valid(struct wiphy * wiphy,struct wireless_dev * wdev)2348 static bool reg_wdev_chan_valid(struct wiphy *wiphy, struct wireless_dev *wdev)
2349 {
2350 struct cfg80211_chan_def chandef = {};
2351 struct cfg80211_registered_device *rdev = wiphy_to_rdev(wiphy);
2352 enum nl80211_iftype iftype;
2353 bool ret;
2354 int link;
2355
2356 iftype = wdev->iftype;
2357
2358 /* make sure the interface is active */
2359 if (!wdev->netdev || !netif_running(wdev->netdev))
2360 return true;
2361
2362 for (link = 0; link < ARRAY_SIZE(wdev->links); link++) {
2363 struct ieee80211_channel *chan;
2364
2365 if (!wdev->valid_links && link > 0)
2366 break;
2367 if (wdev->valid_links && !(wdev->valid_links & BIT(link)))
2368 continue;
2369 switch (iftype) {
2370 case NL80211_IFTYPE_AP:
2371 case NL80211_IFTYPE_P2P_GO:
2372 if (!wdev->links[link].ap.beacon_interval)
2373 continue;
2374 chandef = wdev->links[link].ap.chandef;
2375 break;
2376 case NL80211_IFTYPE_MESH_POINT:
2377 if (!wdev->u.mesh.beacon_interval)
2378 continue;
2379 chandef = wdev->u.mesh.chandef;
2380 break;
2381 case NL80211_IFTYPE_ADHOC:
2382 if (!wdev->u.ibss.ssid_len)
2383 continue;
2384 chandef = wdev->u.ibss.chandef;
2385 break;
2386 case NL80211_IFTYPE_STATION:
2387 case NL80211_IFTYPE_P2P_CLIENT:
2388 /* Maybe we could consider disabling that link only? */
2389 if (!wdev->links[link].client.current_bss)
2390 continue;
2391
2392 chan = wdev->links[link].client.current_bss->pub.channel;
2393 if (!chan)
2394 continue;
2395
2396 if (!rdev->ops->get_channel ||
2397 rdev_get_channel(rdev, wdev, link, &chandef))
2398 cfg80211_chandef_create(&chandef, chan,
2399 NL80211_CHAN_NO_HT);
2400 break;
2401 case NL80211_IFTYPE_MONITOR:
2402 case NL80211_IFTYPE_AP_VLAN:
2403 case NL80211_IFTYPE_P2P_DEVICE:
2404 /* no enforcement required */
2405 break;
2406 case NL80211_IFTYPE_OCB:
2407 if (!wdev->u.ocb.chandef.chan)
2408 continue;
2409 chandef = wdev->u.ocb.chandef;
2410 break;
2411 case NL80211_IFTYPE_NAN:
2412 /* we have no info, but NAN is also pretty universal */
2413 continue;
2414 default:
2415 /* others not implemented for now */
2416 WARN_ON_ONCE(1);
2417 break;
2418 }
2419
2420 switch (iftype) {
2421 case NL80211_IFTYPE_AP:
2422 case NL80211_IFTYPE_P2P_GO:
2423 case NL80211_IFTYPE_ADHOC:
2424 case NL80211_IFTYPE_MESH_POINT:
2425 ret = cfg80211_reg_can_beacon_relax(wiphy, &chandef,
2426 iftype);
2427 if (!ret)
2428 return ret;
2429 break;
2430 case NL80211_IFTYPE_STATION:
2431 case NL80211_IFTYPE_P2P_CLIENT:
2432 ret = cfg80211_chandef_usable(wiphy, &chandef,
2433 IEEE80211_CHAN_DISABLED);
2434 if (!ret)
2435 return ret;
2436 break;
2437 default:
2438 break;
2439 }
2440 }
2441
2442 return true;
2443 }
2444
reg_leave_invalid_chans(struct wiphy * wiphy)2445 static void reg_leave_invalid_chans(struct wiphy *wiphy)
2446 {
2447 struct wireless_dev *wdev;
2448 struct cfg80211_registered_device *rdev = wiphy_to_rdev(wiphy);
2449
2450 guard(wiphy)(wiphy);
2451
2452 list_for_each_entry(wdev, &rdev->wiphy.wdev_list, list)
2453 if (!reg_wdev_chan_valid(wiphy, wdev))
2454 cfg80211_leave(rdev, wdev, -1);
2455 }
2456
reg_check_chans_work(struct work_struct * work)2457 static void reg_check_chans_work(struct work_struct *work)
2458 {
2459 struct cfg80211_registered_device *rdev;
2460
2461 pr_debug("Verifying active interfaces after reg change\n");
2462 rtnl_lock();
2463
2464 for_each_rdev(rdev)
2465 reg_leave_invalid_chans(&rdev->wiphy);
2466
2467 rtnl_unlock();
2468 }
2469
reg_check_channels(void)2470 void reg_check_channels(void)
2471 {
2472 /*
2473 * Give usermode a chance to do something nicer (move to another
2474 * channel, orderly disconnection), before forcing a disconnection.
2475 */
2476 mod_delayed_work(system_power_efficient_wq,
2477 ®_check_chans,
2478 msecs_to_jiffies(REG_ENFORCE_GRACE_MS));
2479 }
2480
wiphy_update_regulatory(struct wiphy * wiphy,enum nl80211_reg_initiator initiator)2481 static void wiphy_update_regulatory(struct wiphy *wiphy,
2482 enum nl80211_reg_initiator initiator)
2483 {
2484 enum nl80211_band band;
2485 struct regulatory_request *lr = get_last_request();
2486
2487 if (ignore_reg_update(wiphy, initiator)) {
2488 /*
2489 * Regulatory updates set by CORE are ignored for custom
2490 * regulatory cards. Let us notify the changes to the driver,
2491 * as some drivers used this to restore its orig_* reg domain.
2492 */
2493 if (initiator == NL80211_REGDOM_SET_BY_CORE &&
2494 wiphy->regulatory_flags & REGULATORY_CUSTOM_REG &&
2495 !(wiphy->regulatory_flags &
2496 REGULATORY_WIPHY_SELF_MANAGED))
2497 reg_call_notifier(wiphy, lr);
2498 return;
2499 }
2500
2501 lr->dfs_region = get_cfg80211_regdom()->dfs_region;
2502
2503 for (band = 0; band < NUM_NL80211_BANDS; band++)
2504 handle_band(wiphy, initiator, wiphy->bands[band]);
2505
2506 reg_process_beacons(wiphy);
2507 reg_process_ht_flags(wiphy);
2508 reg_call_notifier(wiphy, lr);
2509 }
2510
update_all_wiphy_regulatory(enum nl80211_reg_initiator initiator)2511 static void update_all_wiphy_regulatory(enum nl80211_reg_initiator initiator)
2512 {
2513 struct cfg80211_registered_device *rdev;
2514 struct wiphy *wiphy;
2515
2516 ASSERT_RTNL();
2517
2518 for_each_rdev(rdev) {
2519 wiphy = &rdev->wiphy;
2520 wiphy_update_regulatory(wiphy, initiator);
2521 }
2522
2523 reg_check_channels();
2524 }
2525
handle_channel_custom(struct wiphy * wiphy,struct ieee80211_channel * chan,const struct ieee80211_regdomain * regd,u32 min_bw)2526 static void handle_channel_custom(struct wiphy *wiphy,
2527 struct ieee80211_channel *chan,
2528 const struct ieee80211_regdomain *regd,
2529 u32 min_bw)
2530 {
2531 u32 bw_flags = 0;
2532 const struct ieee80211_reg_rule *reg_rule = NULL;
2533 const struct ieee80211_power_rule *power_rule = NULL;
2534 u32 bw, center_freq_khz;
2535
2536 center_freq_khz = ieee80211_channel_to_khz(chan);
2537 for (bw = MHZ_TO_KHZ(20); bw >= min_bw; bw = bw / 2) {
2538 reg_rule = freq_reg_info_regd(center_freq_khz, regd, bw);
2539 if (!IS_ERR(reg_rule))
2540 break;
2541 }
2542
2543 if (IS_ERR_OR_NULL(reg_rule)) {
2544 pr_debug("Disabling freq %d.%03d MHz as custom regd has no rule that fits it\n",
2545 chan->center_freq, chan->freq_offset);
2546 if (wiphy->regulatory_flags & REGULATORY_WIPHY_SELF_MANAGED) {
2547 chan->flags |= IEEE80211_CHAN_DISABLED;
2548 } else {
2549 chan->orig_flags |= IEEE80211_CHAN_DISABLED;
2550 chan->flags = chan->orig_flags;
2551 }
2552 return;
2553 }
2554
2555 power_rule = ®_rule->power_rule;
2556 bw_flags = reg_rule_to_chan_bw_flags(regd, reg_rule, chan);
2557
2558 chan->dfs_state_entered = jiffies;
2559 chan->dfs_state = NL80211_DFS_USABLE;
2560
2561 chan->beacon_found = false;
2562
2563 if (wiphy->regulatory_flags & REGULATORY_WIPHY_SELF_MANAGED)
2564 chan->flags = chan->orig_flags | bw_flags |
2565 map_regdom_flags(reg_rule->flags);
2566 else
2567 chan->flags |= map_regdom_flags(reg_rule->flags) | bw_flags;
2568
2569 chan->max_antenna_gain = (int) MBI_TO_DBI(power_rule->max_antenna_gain);
2570 chan->max_reg_power = chan->max_power =
2571 (int) MBM_TO_DBM(power_rule->max_eirp);
2572
2573 if (chan->flags & IEEE80211_CHAN_RADAR) {
2574 if (reg_rule->dfs_cac_ms)
2575 chan->dfs_cac_ms = reg_rule->dfs_cac_ms;
2576 else
2577 chan->dfs_cac_ms = IEEE80211_DFS_MIN_CAC_TIME_MS;
2578 }
2579
2580 if (chan->flags & IEEE80211_CHAN_PSD)
2581 chan->psd = reg_rule->psd;
2582
2583 chan->max_power = chan->max_reg_power;
2584 }
2585
handle_band_custom(struct wiphy * wiphy,struct ieee80211_supported_band * sband,const struct ieee80211_regdomain * regd)2586 static void handle_band_custom(struct wiphy *wiphy,
2587 struct ieee80211_supported_band *sband,
2588 const struct ieee80211_regdomain *regd)
2589 {
2590 unsigned int i;
2591
2592 if (!sband)
2593 return;
2594
2595 /*
2596 * We currently assume that you always want at least 20 MHz,
2597 * otherwise channel 12 might get enabled if this rule is
2598 * compatible to US, which permits 2402 - 2472 MHz.
2599 */
2600 for (i = 0; i < sband->n_channels; i++)
2601 handle_channel_custom(wiphy, &sband->channels[i], regd,
2602 MHZ_TO_KHZ(20));
2603 }
2604
2605 /* Used by drivers prior to wiphy registration */
wiphy_apply_custom_regulatory(struct wiphy * wiphy,const struct ieee80211_regdomain * regd)2606 void wiphy_apply_custom_regulatory(struct wiphy *wiphy,
2607 const struct ieee80211_regdomain *regd)
2608 {
2609 const struct ieee80211_regdomain *new_regd, *tmp;
2610 enum nl80211_band band;
2611 unsigned int bands_set = 0;
2612
2613 WARN(!(wiphy->regulatory_flags & REGULATORY_CUSTOM_REG),
2614 "wiphy should have REGULATORY_CUSTOM_REG\n");
2615 wiphy->regulatory_flags |= REGULATORY_CUSTOM_REG;
2616
2617 for (band = 0; band < NUM_NL80211_BANDS; band++) {
2618 if (!wiphy->bands[band])
2619 continue;
2620 handle_band_custom(wiphy, wiphy->bands[band], regd);
2621 bands_set++;
2622 }
2623
2624 /*
2625 * no point in calling this if it won't have any effect
2626 * on your device's supported bands.
2627 */
2628 WARN_ON(!bands_set);
2629 new_regd = reg_copy_regd(regd);
2630 if (IS_ERR(new_regd))
2631 return;
2632
2633 rtnl_lock();
2634 scoped_guard(wiphy, wiphy) {
2635 tmp = get_wiphy_regdom(wiphy);
2636 rcu_assign_pointer(wiphy->regd, new_regd);
2637 rcu_free_regdom(tmp);
2638 }
2639 rtnl_unlock();
2640 }
2641 EXPORT_SYMBOL(wiphy_apply_custom_regulatory);
2642
reg_set_request_processed(void)2643 static void reg_set_request_processed(void)
2644 {
2645 bool need_more_processing = false;
2646 struct regulatory_request *lr = get_last_request();
2647
2648 lr->processed = true;
2649
2650 spin_lock(®_requests_lock);
2651 if (!list_empty(®_requests_list))
2652 need_more_processing = true;
2653 spin_unlock(®_requests_lock);
2654
2655 cancel_crda_timeout();
2656
2657 if (need_more_processing)
2658 schedule_work(®_work);
2659 }
2660
2661 /**
2662 * reg_process_hint_core - process core regulatory requests
2663 * @core_request: a pending core regulatory request
2664 *
2665 * The wireless subsystem can use this function to process
2666 * a regulatory request issued by the regulatory core.
2667 *
2668 * Returns: %REG_REQ_OK or %REG_REQ_IGNORE, indicating if the
2669 * hint was processed or ignored
2670 */
2671 static enum reg_request_treatment
reg_process_hint_core(struct regulatory_request * core_request)2672 reg_process_hint_core(struct regulatory_request *core_request)
2673 {
2674 if (reg_query_database(core_request)) {
2675 core_request->intersect = false;
2676 core_request->processed = false;
2677 reg_update_last_request(core_request);
2678 return REG_REQ_OK;
2679 }
2680
2681 return REG_REQ_IGNORE;
2682 }
2683
2684 static enum reg_request_treatment
__reg_process_hint_user(struct regulatory_request * user_request)2685 __reg_process_hint_user(struct regulatory_request *user_request)
2686 {
2687 struct regulatory_request *lr = get_last_request();
2688
2689 if (reg_request_cell_base(user_request))
2690 return reg_ignore_cell_hint(user_request);
2691
2692 if (reg_request_cell_base(lr))
2693 return REG_REQ_IGNORE;
2694
2695 if (lr->initiator == NL80211_REGDOM_SET_BY_COUNTRY_IE)
2696 return REG_REQ_INTERSECT;
2697 /*
2698 * If the user knows better the user should set the regdom
2699 * to their country before the IE is picked up
2700 */
2701 if (lr->initiator == NL80211_REGDOM_SET_BY_USER &&
2702 lr->intersect)
2703 return REG_REQ_IGNORE;
2704 /*
2705 * Process user requests only after previous user/driver/core
2706 * requests have been processed
2707 */
2708 if ((lr->initiator == NL80211_REGDOM_SET_BY_CORE ||
2709 lr->initiator == NL80211_REGDOM_SET_BY_DRIVER ||
2710 lr->initiator == NL80211_REGDOM_SET_BY_USER) &&
2711 regdom_changes(lr->alpha2))
2712 return REG_REQ_IGNORE;
2713
2714 if (!regdom_changes(user_request->alpha2))
2715 return REG_REQ_ALREADY_SET;
2716
2717 return REG_REQ_OK;
2718 }
2719
2720 /**
2721 * reg_process_hint_user - process user regulatory requests
2722 * @user_request: a pending user regulatory request
2723 *
2724 * The wireless subsystem can use this function to process
2725 * a regulatory request initiated by userspace.
2726 *
2727 * Returns: %REG_REQ_OK or %REG_REQ_IGNORE, indicating if the
2728 * hint was processed or ignored
2729 */
2730 static enum reg_request_treatment
reg_process_hint_user(struct regulatory_request * user_request)2731 reg_process_hint_user(struct regulatory_request *user_request)
2732 {
2733 enum reg_request_treatment treatment;
2734
2735 treatment = __reg_process_hint_user(user_request);
2736 if (treatment == REG_REQ_IGNORE ||
2737 treatment == REG_REQ_ALREADY_SET)
2738 return REG_REQ_IGNORE;
2739
2740 user_request->intersect = treatment == REG_REQ_INTERSECT;
2741 user_request->processed = false;
2742
2743 if (reg_query_database(user_request)) {
2744 reg_update_last_request(user_request);
2745 user_alpha2[0] = user_request->alpha2[0];
2746 user_alpha2[1] = user_request->alpha2[1];
2747 return REG_REQ_OK;
2748 }
2749
2750 return REG_REQ_IGNORE;
2751 }
2752
2753 static enum reg_request_treatment
__reg_process_hint_driver(struct regulatory_request * driver_request)2754 __reg_process_hint_driver(struct regulatory_request *driver_request)
2755 {
2756 struct regulatory_request *lr = get_last_request();
2757
2758 if (lr->initiator == NL80211_REGDOM_SET_BY_CORE) {
2759 if (regdom_changes(driver_request->alpha2))
2760 return REG_REQ_OK;
2761 return REG_REQ_ALREADY_SET;
2762 }
2763
2764 /*
2765 * This would happen if you unplug and plug your card
2766 * back in or if you add a new device for which the previously
2767 * loaded card also agrees on the regulatory domain.
2768 */
2769 if (lr->initiator == NL80211_REGDOM_SET_BY_DRIVER &&
2770 !regdom_changes(driver_request->alpha2))
2771 return REG_REQ_ALREADY_SET;
2772
2773 return REG_REQ_INTERSECT;
2774 }
2775
2776 /**
2777 * reg_process_hint_driver - process driver regulatory requests
2778 * @wiphy: the wireless device for the regulatory request
2779 * @driver_request: a pending driver regulatory request
2780 *
2781 * The wireless subsystem can use this function to process
2782 * a regulatory request issued by an 802.11 driver.
2783 *
2784 * Returns: one of the different reg request treatment values.
2785 */
2786 static enum reg_request_treatment
reg_process_hint_driver(struct wiphy * wiphy,struct regulatory_request * driver_request)2787 reg_process_hint_driver(struct wiphy *wiphy,
2788 struct regulatory_request *driver_request)
2789 {
2790 const struct ieee80211_regdomain *regd, *tmp;
2791 enum reg_request_treatment treatment;
2792
2793 treatment = __reg_process_hint_driver(driver_request);
2794
2795 switch (treatment) {
2796 case REG_REQ_OK:
2797 break;
2798 case REG_REQ_IGNORE:
2799 return REG_REQ_IGNORE;
2800 case REG_REQ_INTERSECT:
2801 case REG_REQ_ALREADY_SET:
2802 regd = reg_copy_regd(get_cfg80211_regdom());
2803 if (IS_ERR(regd))
2804 return REG_REQ_IGNORE;
2805
2806 tmp = get_wiphy_regdom(wiphy);
2807 ASSERT_RTNL();
2808 scoped_guard(wiphy, wiphy) {
2809 rcu_assign_pointer(wiphy->regd, regd);
2810 }
2811 rcu_free_regdom(tmp);
2812 }
2813
2814
2815 driver_request->intersect = treatment == REG_REQ_INTERSECT;
2816 driver_request->processed = false;
2817
2818 /*
2819 * Since CRDA will not be called in this case as we already
2820 * have applied the requested regulatory domain before we just
2821 * inform userspace we have processed the request
2822 */
2823 if (treatment == REG_REQ_ALREADY_SET) {
2824 nl80211_send_reg_change_event(driver_request);
2825 reg_update_last_request(driver_request);
2826 reg_set_request_processed();
2827 return REG_REQ_ALREADY_SET;
2828 }
2829
2830 if (reg_query_database(driver_request)) {
2831 reg_update_last_request(driver_request);
2832 return REG_REQ_OK;
2833 }
2834
2835 return REG_REQ_IGNORE;
2836 }
2837
2838 static enum reg_request_treatment
__reg_process_hint_country_ie(struct wiphy * wiphy,struct regulatory_request * country_ie_request)2839 __reg_process_hint_country_ie(struct wiphy *wiphy,
2840 struct regulatory_request *country_ie_request)
2841 {
2842 struct wiphy *last_wiphy = NULL;
2843 struct regulatory_request *lr = get_last_request();
2844
2845 if (reg_request_cell_base(lr)) {
2846 /* Trust a Cell base station over the AP's country IE */
2847 if (regdom_changes(country_ie_request->alpha2))
2848 return REG_REQ_IGNORE;
2849 return REG_REQ_ALREADY_SET;
2850 } else {
2851 if (wiphy->regulatory_flags & REGULATORY_COUNTRY_IE_IGNORE)
2852 return REG_REQ_IGNORE;
2853 }
2854
2855 if (unlikely(!is_an_alpha2(country_ie_request->alpha2)))
2856 return -EINVAL;
2857
2858 if (lr->initiator != NL80211_REGDOM_SET_BY_COUNTRY_IE)
2859 return REG_REQ_OK;
2860
2861 last_wiphy = wiphy_idx_to_wiphy(lr->wiphy_idx);
2862
2863 if (last_wiphy != wiphy) {
2864 /*
2865 * Two cards with two APs claiming different
2866 * Country IE alpha2s. We could
2867 * intersect them, but that seems unlikely
2868 * to be correct. Reject second one for now.
2869 */
2870 if (regdom_changes(country_ie_request->alpha2))
2871 return REG_REQ_IGNORE;
2872 return REG_REQ_ALREADY_SET;
2873 }
2874
2875 if (regdom_changes(country_ie_request->alpha2))
2876 return REG_REQ_OK;
2877 return REG_REQ_ALREADY_SET;
2878 }
2879
2880 /**
2881 * reg_process_hint_country_ie - process regulatory requests from country IEs
2882 * @wiphy: the wireless device for the regulatory request
2883 * @country_ie_request: a regulatory request from a country IE
2884 *
2885 * The wireless subsystem can use this function to process
2886 * a regulatory request issued by a country Information Element.
2887 *
2888 * Returns: one of the different reg request treatment values.
2889 */
2890 static enum reg_request_treatment
reg_process_hint_country_ie(struct wiphy * wiphy,struct regulatory_request * country_ie_request)2891 reg_process_hint_country_ie(struct wiphy *wiphy,
2892 struct regulatory_request *country_ie_request)
2893 {
2894 enum reg_request_treatment treatment;
2895
2896 treatment = __reg_process_hint_country_ie(wiphy, country_ie_request);
2897
2898 switch (treatment) {
2899 case REG_REQ_OK:
2900 break;
2901 case REG_REQ_IGNORE:
2902 return REG_REQ_IGNORE;
2903 case REG_REQ_ALREADY_SET:
2904 reg_free_request(country_ie_request);
2905 return REG_REQ_ALREADY_SET;
2906 case REG_REQ_INTERSECT:
2907 /*
2908 * This doesn't happen yet, not sure we
2909 * ever want to support it for this case.
2910 */
2911 WARN_ONCE(1, "Unexpected intersection for country elements");
2912 return REG_REQ_IGNORE;
2913 }
2914
2915 country_ie_request->intersect = false;
2916 country_ie_request->processed = false;
2917
2918 if (reg_query_database(country_ie_request)) {
2919 reg_update_last_request(country_ie_request);
2920 return REG_REQ_OK;
2921 }
2922
2923 return REG_REQ_IGNORE;
2924 }
2925
reg_dfs_domain_same(struct wiphy * wiphy1,struct wiphy * wiphy2)2926 bool reg_dfs_domain_same(struct wiphy *wiphy1, struct wiphy *wiphy2)
2927 {
2928 const struct ieee80211_regdomain *wiphy1_regd = NULL;
2929 const struct ieee80211_regdomain *wiphy2_regd = NULL;
2930 const struct ieee80211_regdomain *cfg80211_regd = NULL;
2931 bool dfs_domain_same;
2932
2933 rcu_read_lock();
2934
2935 cfg80211_regd = rcu_dereference(cfg80211_regdomain);
2936 wiphy1_regd = rcu_dereference(wiphy1->regd);
2937 if (!wiphy1_regd)
2938 wiphy1_regd = cfg80211_regd;
2939
2940 wiphy2_regd = rcu_dereference(wiphy2->regd);
2941 if (!wiphy2_regd)
2942 wiphy2_regd = cfg80211_regd;
2943
2944 dfs_domain_same = wiphy1_regd->dfs_region == wiphy2_regd->dfs_region;
2945
2946 rcu_read_unlock();
2947
2948 return dfs_domain_same;
2949 }
2950
reg_copy_dfs_chan_state(struct ieee80211_channel * dst_chan,struct ieee80211_channel * src_chan)2951 static void reg_copy_dfs_chan_state(struct ieee80211_channel *dst_chan,
2952 struct ieee80211_channel *src_chan)
2953 {
2954 if (!(dst_chan->flags & IEEE80211_CHAN_RADAR) ||
2955 !(src_chan->flags & IEEE80211_CHAN_RADAR))
2956 return;
2957
2958 if (dst_chan->flags & IEEE80211_CHAN_DISABLED ||
2959 src_chan->flags & IEEE80211_CHAN_DISABLED)
2960 return;
2961
2962 if (src_chan->center_freq == dst_chan->center_freq &&
2963 dst_chan->dfs_state == NL80211_DFS_USABLE) {
2964 dst_chan->dfs_state = src_chan->dfs_state;
2965 dst_chan->dfs_state_entered = src_chan->dfs_state_entered;
2966 }
2967 }
2968
wiphy_share_dfs_chan_state(struct wiphy * dst_wiphy,struct wiphy * src_wiphy)2969 static void wiphy_share_dfs_chan_state(struct wiphy *dst_wiphy,
2970 struct wiphy *src_wiphy)
2971 {
2972 struct ieee80211_supported_band *src_sband, *dst_sband;
2973 struct ieee80211_channel *src_chan, *dst_chan;
2974 int i, j, band;
2975
2976 if (!reg_dfs_domain_same(dst_wiphy, src_wiphy))
2977 return;
2978
2979 for (band = 0; band < NUM_NL80211_BANDS; band++) {
2980 dst_sband = dst_wiphy->bands[band];
2981 src_sband = src_wiphy->bands[band];
2982 if (!dst_sband || !src_sband)
2983 continue;
2984
2985 for (i = 0; i < dst_sband->n_channels; i++) {
2986 dst_chan = &dst_sband->channels[i];
2987 for (j = 0; j < src_sband->n_channels; j++) {
2988 src_chan = &src_sband->channels[j];
2989 reg_copy_dfs_chan_state(dst_chan, src_chan);
2990 }
2991 }
2992 }
2993 }
2994
wiphy_all_share_dfs_chan_state(struct wiphy * wiphy)2995 static void wiphy_all_share_dfs_chan_state(struct wiphy *wiphy)
2996 {
2997 struct cfg80211_registered_device *rdev;
2998
2999 ASSERT_RTNL();
3000
3001 for_each_rdev(rdev) {
3002 if (wiphy == &rdev->wiphy)
3003 continue;
3004 wiphy_share_dfs_chan_state(wiphy, &rdev->wiphy);
3005 }
3006 }
3007
3008 /* This processes *all* regulatory hints */
reg_process_hint(struct regulatory_request * reg_request)3009 static void reg_process_hint(struct regulatory_request *reg_request)
3010 {
3011 struct wiphy *wiphy = NULL;
3012 enum reg_request_treatment treatment;
3013 enum nl80211_reg_initiator initiator = reg_request->initiator;
3014
3015 if (reg_request->wiphy_idx != WIPHY_IDX_INVALID)
3016 wiphy = wiphy_idx_to_wiphy(reg_request->wiphy_idx);
3017
3018 switch (initiator) {
3019 case NL80211_REGDOM_SET_BY_CORE:
3020 treatment = reg_process_hint_core(reg_request);
3021 break;
3022 case NL80211_REGDOM_SET_BY_USER:
3023 treatment = reg_process_hint_user(reg_request);
3024 break;
3025 case NL80211_REGDOM_SET_BY_DRIVER:
3026 if (!wiphy)
3027 goto out_free;
3028 treatment = reg_process_hint_driver(wiphy, reg_request);
3029 break;
3030 case NL80211_REGDOM_SET_BY_COUNTRY_IE:
3031 if (!wiphy)
3032 goto out_free;
3033 treatment = reg_process_hint_country_ie(wiphy, reg_request);
3034 break;
3035 default:
3036 WARN(1, "invalid initiator %d\n", initiator);
3037 goto out_free;
3038 }
3039
3040 if (treatment == REG_REQ_IGNORE)
3041 goto out_free;
3042
3043 WARN(treatment != REG_REQ_OK && treatment != REG_REQ_ALREADY_SET,
3044 "unexpected treatment value %d\n", treatment);
3045
3046 /* This is required so that the orig_* parameters are saved.
3047 * NOTE: treatment must be set for any case that reaches here!
3048 */
3049 if (treatment == REG_REQ_ALREADY_SET && wiphy &&
3050 wiphy->regulatory_flags & REGULATORY_STRICT_REG) {
3051 wiphy_update_regulatory(wiphy, initiator);
3052 wiphy_all_share_dfs_chan_state(wiphy);
3053 reg_check_channels();
3054 }
3055
3056 return;
3057
3058 out_free:
3059 reg_free_request(reg_request);
3060 }
3061
notify_self_managed_wiphys(struct regulatory_request * request)3062 static void notify_self_managed_wiphys(struct regulatory_request *request)
3063 {
3064 struct cfg80211_registered_device *rdev;
3065 struct wiphy *wiphy;
3066
3067 for_each_rdev(rdev) {
3068 wiphy = &rdev->wiphy;
3069 if (wiphy->regulatory_flags & REGULATORY_WIPHY_SELF_MANAGED &&
3070 request->initiator == NL80211_REGDOM_SET_BY_USER)
3071 reg_call_notifier(wiphy, request);
3072 }
3073 }
3074
3075 /*
3076 * Processes regulatory hints, this is all the NL80211_REGDOM_SET_BY_*
3077 * Regulatory hints come on a first come first serve basis and we
3078 * must process each one atomically.
3079 */
reg_process_pending_hints(void)3080 static void reg_process_pending_hints(void)
3081 {
3082 struct regulatory_request *reg_request, *lr;
3083
3084 lr = get_last_request();
3085
3086 /* When last_request->processed becomes true this will be rescheduled */
3087 if (lr && !lr->processed) {
3088 pr_debug("Pending regulatory request, waiting for it to be processed...\n");
3089 return;
3090 }
3091
3092 spin_lock(®_requests_lock);
3093
3094 if (list_empty(®_requests_list)) {
3095 spin_unlock(®_requests_lock);
3096 return;
3097 }
3098
3099 reg_request = list_first_entry(®_requests_list,
3100 struct regulatory_request,
3101 list);
3102 list_del_init(®_request->list);
3103
3104 spin_unlock(®_requests_lock);
3105
3106 notify_self_managed_wiphys(reg_request);
3107
3108 reg_process_hint(reg_request);
3109
3110 lr = get_last_request();
3111
3112 spin_lock(®_requests_lock);
3113 if (!list_empty(®_requests_list) && lr && lr->processed)
3114 schedule_work(®_work);
3115 spin_unlock(®_requests_lock);
3116 }
3117
3118 /* Processes beacon hints -- this has nothing to do with country IEs */
reg_process_pending_beacon_hints(void)3119 static void reg_process_pending_beacon_hints(void)
3120 {
3121 struct cfg80211_registered_device *rdev;
3122 struct reg_beacon *pending_beacon, *tmp;
3123
3124 /* This goes through the _pending_ beacon list */
3125 spin_lock_bh(®_pending_beacons_lock);
3126
3127 list_for_each_entry_safe(pending_beacon, tmp,
3128 ®_pending_beacons, list) {
3129 list_del_init(&pending_beacon->list);
3130
3131 /* Applies the beacon hint to current wiphys */
3132 for_each_rdev(rdev)
3133 wiphy_update_new_beacon(&rdev->wiphy, pending_beacon);
3134
3135 /* Remembers the beacon hint for new wiphys or reg changes */
3136 list_add_tail(&pending_beacon->list, ®_beacon_list);
3137 }
3138
3139 spin_unlock_bh(®_pending_beacons_lock);
3140 }
3141
reg_process_self_managed_hint(struct wiphy * wiphy)3142 static void reg_process_self_managed_hint(struct wiphy *wiphy)
3143 {
3144 struct cfg80211_registered_device *rdev = wiphy_to_rdev(wiphy);
3145 const struct ieee80211_regdomain *tmp;
3146 const struct ieee80211_regdomain *regd;
3147 enum nl80211_band band;
3148 struct regulatory_request request = {};
3149
3150 ASSERT_RTNL();
3151 lockdep_assert_wiphy(wiphy);
3152
3153 spin_lock(®_requests_lock);
3154 regd = rdev->requested_regd;
3155 rdev->requested_regd = NULL;
3156 spin_unlock(®_requests_lock);
3157
3158 if (!regd)
3159 return;
3160
3161 tmp = get_wiphy_regdom(wiphy);
3162 rcu_assign_pointer(wiphy->regd, regd);
3163 rcu_free_regdom(tmp);
3164
3165 for (band = 0; band < NUM_NL80211_BANDS; band++)
3166 handle_band_custom(wiphy, wiphy->bands[band], regd);
3167
3168 reg_process_ht_flags(wiphy);
3169
3170 request.wiphy_idx = get_wiphy_idx(wiphy);
3171 request.alpha2[0] = regd->alpha2[0];
3172 request.alpha2[1] = regd->alpha2[1];
3173 request.initiator = NL80211_REGDOM_SET_BY_DRIVER;
3174
3175 if (wiphy->flags & WIPHY_FLAG_NOTIFY_REGDOM_BY_DRIVER)
3176 reg_call_notifier(wiphy, &request);
3177
3178 nl80211_send_wiphy_reg_change_event(&request);
3179 }
3180
reg_process_self_managed_hints(void)3181 static void reg_process_self_managed_hints(void)
3182 {
3183 struct cfg80211_registered_device *rdev;
3184
3185 ASSERT_RTNL();
3186
3187 for_each_rdev(rdev) {
3188 guard(wiphy)(&rdev->wiphy);
3189
3190 reg_process_self_managed_hint(&rdev->wiphy);
3191 }
3192
3193 reg_check_channels();
3194 }
3195
reg_todo(struct work_struct * work)3196 static void reg_todo(struct work_struct *work)
3197 {
3198 rtnl_lock();
3199 reg_process_pending_hints();
3200 reg_process_pending_beacon_hints();
3201 reg_process_self_managed_hints();
3202 rtnl_unlock();
3203 }
3204
queue_regulatory_request(struct regulatory_request * request)3205 static void queue_regulatory_request(struct regulatory_request *request)
3206 {
3207 request->alpha2[0] = toupper(request->alpha2[0]);
3208 request->alpha2[1] = toupper(request->alpha2[1]);
3209
3210 spin_lock(®_requests_lock);
3211 list_add_tail(&request->list, ®_requests_list);
3212 spin_unlock(®_requests_lock);
3213
3214 schedule_work(®_work);
3215 }
3216
3217 /*
3218 * Core regulatory hint -- happens during cfg80211_init()
3219 * and when we restore regulatory settings.
3220 */
regulatory_hint_core(const char * alpha2)3221 static int regulatory_hint_core(const char *alpha2)
3222 {
3223 struct regulatory_request *request;
3224
3225 request = kzalloc_obj(struct regulatory_request);
3226 if (!request)
3227 return -ENOMEM;
3228
3229 request->alpha2[0] = alpha2[0];
3230 request->alpha2[1] = alpha2[1];
3231 request->initiator = NL80211_REGDOM_SET_BY_CORE;
3232 request->wiphy_idx = WIPHY_IDX_INVALID;
3233
3234 queue_regulatory_request(request);
3235
3236 return 0;
3237 }
3238
3239 /* User hints */
regulatory_hint_user(const char * alpha2,enum nl80211_user_reg_hint_type user_reg_hint_type)3240 int regulatory_hint_user(const char *alpha2,
3241 enum nl80211_user_reg_hint_type user_reg_hint_type)
3242 {
3243 struct regulatory_request *request;
3244
3245 if (WARN_ON(!alpha2))
3246 return -EINVAL;
3247
3248 if (!is_world_regdom(alpha2) && !is_an_alpha2(alpha2))
3249 return -EINVAL;
3250
3251 request = kzalloc_obj(struct regulatory_request);
3252 if (!request)
3253 return -ENOMEM;
3254
3255 request->wiphy_idx = WIPHY_IDX_INVALID;
3256 request->alpha2[0] = alpha2[0];
3257 request->alpha2[1] = alpha2[1];
3258 request->initiator = NL80211_REGDOM_SET_BY_USER;
3259 request->user_reg_hint_type = user_reg_hint_type;
3260
3261 /* Allow calling CRDA again */
3262 reset_crda_timeouts();
3263
3264 queue_regulatory_request(request);
3265
3266 return 0;
3267 }
3268
regulatory_hint_indoor(bool is_indoor,u32 portid)3269 void regulatory_hint_indoor(bool is_indoor, u32 portid)
3270 {
3271 spin_lock(®_indoor_lock);
3272
3273 /* It is possible that more than one user space process is trying to
3274 * configure the indoor setting. To handle such cases, clear the indoor
3275 * setting in case that some process does not think that the device
3276 * is operating in an indoor environment. In addition, if a user space
3277 * process indicates that it is controlling the indoor setting, save its
3278 * portid, i.e., make it the owner.
3279 */
3280 reg_is_indoor = is_indoor;
3281 if (reg_is_indoor) {
3282 if (!reg_is_indoor_portid)
3283 reg_is_indoor_portid = portid;
3284 } else {
3285 reg_is_indoor_portid = 0;
3286 }
3287
3288 spin_unlock(®_indoor_lock);
3289
3290 if (!is_indoor)
3291 reg_check_channels();
3292 }
3293
regulatory_netlink_notify(u32 portid)3294 void regulatory_netlink_notify(u32 portid)
3295 {
3296 spin_lock(®_indoor_lock);
3297
3298 if (reg_is_indoor_portid != portid) {
3299 spin_unlock(®_indoor_lock);
3300 return;
3301 }
3302
3303 reg_is_indoor = false;
3304 reg_is_indoor_portid = 0;
3305
3306 spin_unlock(®_indoor_lock);
3307
3308 reg_check_channels();
3309 }
3310
3311 /* Driver hints */
regulatory_hint(struct wiphy * wiphy,const char * alpha2)3312 int regulatory_hint(struct wiphy *wiphy, const char *alpha2)
3313 {
3314 struct regulatory_request *request;
3315
3316 if (WARN_ON(!alpha2 || !wiphy))
3317 return -EINVAL;
3318
3319 wiphy->regulatory_flags &= ~REGULATORY_CUSTOM_REG;
3320
3321 request = kzalloc_obj(struct regulatory_request);
3322 if (!request)
3323 return -ENOMEM;
3324
3325 request->wiphy_idx = get_wiphy_idx(wiphy);
3326
3327 request->alpha2[0] = alpha2[0];
3328 request->alpha2[1] = alpha2[1];
3329 request->initiator = NL80211_REGDOM_SET_BY_DRIVER;
3330
3331 /* Allow calling CRDA again */
3332 reset_crda_timeouts();
3333
3334 queue_regulatory_request(request);
3335
3336 return 0;
3337 }
3338 EXPORT_SYMBOL(regulatory_hint);
3339
regulatory_hint_country_ie(struct wiphy * wiphy,enum nl80211_band band,const u8 * country_ie,u8 country_ie_len)3340 void regulatory_hint_country_ie(struct wiphy *wiphy, enum nl80211_band band,
3341 const u8 *country_ie, u8 country_ie_len)
3342 {
3343 char alpha2[2];
3344 enum environment_cap env = ENVIRON_ANY;
3345 struct regulatory_request *request = NULL, *lr;
3346
3347 /* IE len must be evenly divisible by 2 */
3348 if (country_ie_len & 0x01)
3349 return;
3350
3351 if (country_ie_len < IEEE80211_COUNTRY_IE_MIN_LEN)
3352 return;
3353
3354 request = kzalloc_obj(*request);
3355 if (!request)
3356 return;
3357
3358 alpha2[0] = country_ie[0];
3359 alpha2[1] = country_ie[1];
3360
3361 if (country_ie[2] == 'I')
3362 env = ENVIRON_INDOOR;
3363 else if (country_ie[2] == 'O')
3364 env = ENVIRON_OUTDOOR;
3365
3366 rcu_read_lock();
3367 lr = get_last_request();
3368
3369 if (unlikely(!lr))
3370 goto out;
3371
3372 /*
3373 * We will run this only upon a successful connection on cfg80211.
3374 * We leave conflict resolution to the workqueue, where can hold
3375 * the RTNL.
3376 */
3377 if (lr->initiator == NL80211_REGDOM_SET_BY_COUNTRY_IE &&
3378 lr->wiphy_idx != WIPHY_IDX_INVALID)
3379 goto out;
3380
3381 request->wiphy_idx = get_wiphy_idx(wiphy);
3382 request->alpha2[0] = alpha2[0];
3383 request->alpha2[1] = alpha2[1];
3384 request->initiator = NL80211_REGDOM_SET_BY_COUNTRY_IE;
3385 request->country_ie_env = env;
3386
3387 /* Allow calling CRDA again */
3388 reset_crda_timeouts();
3389
3390 queue_regulatory_request(request);
3391 request = NULL;
3392 out:
3393 kfree(request);
3394 rcu_read_unlock();
3395 }
3396
restore_alpha2(char * alpha2,bool reset_user)3397 static void restore_alpha2(char *alpha2, bool reset_user)
3398 {
3399 /* indicates there is no alpha2 to consider for restoration */
3400 alpha2[0] = '9';
3401 alpha2[1] = '7';
3402
3403 /* The user setting has precedence over the module parameter */
3404 if (is_user_regdom_saved()) {
3405 /* Unless we're asked to ignore it and reset it */
3406 if (reset_user) {
3407 pr_debug("Restoring regulatory settings including user preference\n");
3408 user_alpha2[0] = '9';
3409 user_alpha2[1] = '7';
3410
3411 /*
3412 * If we're ignoring user settings, we still need to
3413 * check the module parameter to ensure we put things
3414 * back as they were for a full restore.
3415 */
3416 if (!is_world_regdom(ieee80211_regdom)) {
3417 pr_debug("Keeping preference on module parameter ieee80211_regdom: %c%c\n",
3418 ieee80211_regdom[0], ieee80211_regdom[1]);
3419 alpha2[0] = ieee80211_regdom[0];
3420 alpha2[1] = ieee80211_regdom[1];
3421 }
3422 } else {
3423 pr_debug("Restoring regulatory settings while preserving user preference for: %c%c\n",
3424 user_alpha2[0], user_alpha2[1]);
3425 alpha2[0] = user_alpha2[0];
3426 alpha2[1] = user_alpha2[1];
3427 }
3428 } else if (!is_world_regdom(ieee80211_regdom)) {
3429 pr_debug("Keeping preference on module parameter ieee80211_regdom: %c%c\n",
3430 ieee80211_regdom[0], ieee80211_regdom[1]);
3431 alpha2[0] = ieee80211_regdom[0];
3432 alpha2[1] = ieee80211_regdom[1];
3433 } else
3434 pr_debug("Restoring regulatory settings\n");
3435 }
3436
restore_custom_reg_settings(struct wiphy * wiphy)3437 static void restore_custom_reg_settings(struct wiphy *wiphy)
3438 {
3439 struct ieee80211_supported_band *sband;
3440 enum nl80211_band band;
3441 struct ieee80211_channel *chan;
3442 int i;
3443
3444 for (band = 0; band < NUM_NL80211_BANDS; band++) {
3445 sband = wiphy->bands[band];
3446 if (!sband)
3447 continue;
3448 for (i = 0; i < sband->n_channels; i++) {
3449 chan = &sband->channels[i];
3450 chan->flags = chan->orig_flags;
3451 chan->max_antenna_gain = chan->orig_mag;
3452 chan->max_power = chan->orig_mpwr;
3453 chan->beacon_found = false;
3454 }
3455 }
3456 }
3457
3458 /*
3459 * Restoring regulatory settings involves ignoring any
3460 * possibly stale country IE information and user regulatory
3461 * settings if so desired, this includes any beacon hints
3462 * learned as we could have traveled outside to another country
3463 * after disconnection. To restore regulatory settings we do
3464 * exactly what we did at bootup:
3465 *
3466 * - send a core regulatory hint
3467 * - send a user regulatory hint if applicable
3468 *
3469 * Device drivers that send a regulatory hint for a specific country
3470 * keep their own regulatory domain on wiphy->regd so that does
3471 * not need to be remembered.
3472 */
restore_regulatory_settings(bool reset_user,bool cached)3473 static void restore_regulatory_settings(bool reset_user, bool cached)
3474 {
3475 char alpha2[2];
3476 char world_alpha2[2];
3477 struct reg_beacon *reg_beacon, *btmp;
3478 LIST_HEAD(tmp_reg_req_list);
3479 struct cfg80211_registered_device *rdev;
3480
3481 ASSERT_RTNL();
3482
3483 /*
3484 * Clear the indoor setting in case that it is not controlled by user
3485 * space, as otherwise there is no guarantee that the device is still
3486 * operating in an indoor environment.
3487 */
3488 spin_lock(®_indoor_lock);
3489 if (reg_is_indoor && !reg_is_indoor_portid) {
3490 reg_is_indoor = false;
3491 reg_check_channels();
3492 }
3493 spin_unlock(®_indoor_lock);
3494
3495 reset_regdomains(true, &world_regdom);
3496 restore_alpha2(alpha2, reset_user);
3497
3498 /*
3499 * If there's any pending requests we simply
3500 * stash them to a temporary pending queue and
3501 * add then after we've restored regulatory
3502 * settings.
3503 */
3504 spin_lock(®_requests_lock);
3505 list_splice_tail_init(®_requests_list, &tmp_reg_req_list);
3506 spin_unlock(®_requests_lock);
3507
3508 /* Clear beacon hints */
3509 spin_lock_bh(®_pending_beacons_lock);
3510 list_for_each_entry_safe(reg_beacon, btmp, ®_pending_beacons, list) {
3511 list_del(®_beacon->list);
3512 kfree(reg_beacon);
3513 }
3514 spin_unlock_bh(®_pending_beacons_lock);
3515
3516 list_for_each_entry_safe(reg_beacon, btmp, ®_beacon_list, list) {
3517 list_del(®_beacon->list);
3518 kfree(reg_beacon);
3519 }
3520
3521 /* First restore to the basic regulatory settings */
3522 world_alpha2[0] = cfg80211_world_regdom->alpha2[0];
3523 world_alpha2[1] = cfg80211_world_regdom->alpha2[1];
3524
3525 for_each_rdev(rdev) {
3526 if (rdev->wiphy.regulatory_flags & REGULATORY_WIPHY_SELF_MANAGED)
3527 continue;
3528 if (rdev->wiphy.regulatory_flags & REGULATORY_CUSTOM_REG)
3529 restore_custom_reg_settings(&rdev->wiphy);
3530 }
3531
3532 if (cached && (!is_an_alpha2(alpha2) ||
3533 !IS_ERR_OR_NULL(cfg80211_user_regdom))) {
3534 reset_regdomains(false, cfg80211_world_regdom);
3535 update_all_wiphy_regulatory(NL80211_REGDOM_SET_BY_CORE);
3536 print_regdomain(get_cfg80211_regdom());
3537 nl80211_send_reg_change_event(&core_request_world);
3538 reg_set_request_processed();
3539
3540 if (is_an_alpha2(alpha2) &&
3541 !regulatory_hint_user(alpha2, NL80211_USER_REG_HINT_USER)) {
3542 struct regulatory_request *ureq;
3543
3544 spin_lock(®_requests_lock);
3545 ureq = list_last_entry(®_requests_list,
3546 struct regulatory_request,
3547 list);
3548 list_del(&ureq->list);
3549 spin_unlock(®_requests_lock);
3550
3551 notify_self_managed_wiphys(ureq);
3552 reg_update_last_request(ureq);
3553 set_regdom(reg_copy_regd(cfg80211_user_regdom),
3554 REGD_SOURCE_CACHED);
3555 }
3556 } else {
3557 regulatory_hint_core(world_alpha2);
3558
3559 /*
3560 * This restores the ieee80211_regdom module parameter
3561 * preference or the last user requested regulatory
3562 * settings, user regulatory settings takes precedence.
3563 */
3564 if (is_an_alpha2(alpha2))
3565 regulatory_hint_user(alpha2, NL80211_USER_REG_HINT_USER);
3566 }
3567
3568 spin_lock(®_requests_lock);
3569 list_splice_tail_init(&tmp_reg_req_list, ®_requests_list);
3570 spin_unlock(®_requests_lock);
3571
3572 pr_debug("Kicking the queue\n");
3573
3574 schedule_work(®_work);
3575 }
3576
is_wiphy_all_set_reg_flag(enum ieee80211_regulatory_flags flag)3577 static bool is_wiphy_all_set_reg_flag(enum ieee80211_regulatory_flags flag)
3578 {
3579 struct cfg80211_registered_device *rdev;
3580 struct wireless_dev *wdev;
3581
3582 for_each_rdev(rdev) {
3583 guard(wiphy)(&rdev->wiphy);
3584
3585 list_for_each_entry(wdev, &rdev->wiphy.wdev_list, list) {
3586 if (!(wdev->wiphy->regulatory_flags & flag))
3587 return false;
3588 }
3589 }
3590
3591 return true;
3592 }
3593
regulatory_hint_disconnect(void)3594 void regulatory_hint_disconnect(void)
3595 {
3596 /* Restore of regulatory settings is not required when wiphy(s)
3597 * ignore IE from connected access point but clearance of beacon hints
3598 * is required when wiphy(s) supports beacon hints.
3599 */
3600 if (is_wiphy_all_set_reg_flag(REGULATORY_COUNTRY_IE_IGNORE)) {
3601 struct reg_beacon *reg_beacon, *btmp;
3602
3603 if (is_wiphy_all_set_reg_flag(REGULATORY_DISABLE_BEACON_HINTS))
3604 return;
3605
3606 spin_lock_bh(®_pending_beacons_lock);
3607 list_for_each_entry_safe(reg_beacon, btmp,
3608 ®_pending_beacons, list) {
3609 list_del(®_beacon->list);
3610 kfree(reg_beacon);
3611 }
3612 spin_unlock_bh(®_pending_beacons_lock);
3613
3614 list_for_each_entry_safe(reg_beacon, btmp,
3615 ®_beacon_list, list) {
3616 list_del(®_beacon->list);
3617 kfree(reg_beacon);
3618 }
3619
3620 return;
3621 }
3622
3623 pr_debug("All devices are disconnected, going to restore regulatory settings\n");
3624 restore_regulatory_settings(false, true);
3625 }
3626
freq_is_chan_12_13_14(u32 freq)3627 static bool freq_is_chan_12_13_14(u32 freq)
3628 {
3629 if (freq == ieee80211_channel_to_frequency(12, NL80211_BAND_2GHZ) ||
3630 freq == ieee80211_channel_to_frequency(13, NL80211_BAND_2GHZ) ||
3631 freq == ieee80211_channel_to_frequency(14, NL80211_BAND_2GHZ))
3632 return true;
3633 return false;
3634 }
3635
pending_reg_beacon(struct ieee80211_channel * beacon_chan)3636 static bool pending_reg_beacon(struct ieee80211_channel *beacon_chan)
3637 {
3638 struct reg_beacon *pending_beacon;
3639
3640 list_for_each_entry(pending_beacon, ®_pending_beacons, list)
3641 if (ieee80211_channel_equal(beacon_chan,
3642 &pending_beacon->chan))
3643 return true;
3644 return false;
3645 }
3646
regulatory_hint_found_beacon(struct wiphy * wiphy,struct ieee80211_channel * beacon_chan,gfp_t gfp)3647 void regulatory_hint_found_beacon(struct wiphy *wiphy,
3648 struct ieee80211_channel *beacon_chan,
3649 gfp_t gfp)
3650 {
3651 struct reg_beacon *reg_beacon;
3652 bool processing;
3653
3654 if (beacon_chan->beacon_found ||
3655 beacon_chan->flags & IEEE80211_CHAN_RADAR ||
3656 (beacon_chan->band == NL80211_BAND_2GHZ &&
3657 !freq_is_chan_12_13_14(beacon_chan->center_freq)))
3658 return;
3659
3660 spin_lock_bh(®_pending_beacons_lock);
3661 processing = pending_reg_beacon(beacon_chan);
3662 spin_unlock_bh(®_pending_beacons_lock);
3663
3664 if (processing)
3665 return;
3666
3667 reg_beacon = kzalloc_obj(struct reg_beacon, gfp);
3668 if (!reg_beacon)
3669 return;
3670
3671 pr_debug("Found new beacon on frequency: %d.%03d MHz (Ch %d) on %s\n",
3672 beacon_chan->center_freq, beacon_chan->freq_offset,
3673 ieee80211_freq_khz_to_channel(
3674 ieee80211_channel_to_khz(beacon_chan)),
3675 wiphy_name(wiphy));
3676
3677 memcpy(®_beacon->chan, beacon_chan,
3678 sizeof(struct ieee80211_channel));
3679
3680 /*
3681 * Since we can be called from BH or and non-BH context
3682 * we must use spin_lock_bh()
3683 */
3684 spin_lock_bh(®_pending_beacons_lock);
3685 list_add_tail(®_beacon->list, ®_pending_beacons);
3686 spin_unlock_bh(®_pending_beacons_lock);
3687
3688 schedule_work(®_work);
3689 }
3690
print_rd_rules(const struct ieee80211_regdomain * rd)3691 static void print_rd_rules(const struct ieee80211_regdomain *rd)
3692 {
3693 unsigned int i;
3694 const struct ieee80211_reg_rule *reg_rule = NULL;
3695 const struct ieee80211_freq_range *freq_range = NULL;
3696 const struct ieee80211_power_rule *power_rule = NULL;
3697 char bw[32], cac_time[32];
3698
3699 pr_debug(" (start_freq - end_freq @ bandwidth), (max_antenna_gain, max_eirp), (dfs_cac_time)\n");
3700
3701 for (i = 0; i < rd->n_reg_rules; i++) {
3702 reg_rule = &rd->reg_rules[i];
3703 freq_range = ®_rule->freq_range;
3704 power_rule = ®_rule->power_rule;
3705
3706 if (reg_rule->flags & NL80211_RRF_AUTO_BW)
3707 snprintf(bw, sizeof(bw), "%d KHz, %u KHz AUTO",
3708 freq_range->max_bandwidth_khz,
3709 reg_get_max_bandwidth(rd, reg_rule));
3710 else
3711 snprintf(bw, sizeof(bw), "%d KHz",
3712 freq_range->max_bandwidth_khz);
3713
3714 if (reg_rule->flags & NL80211_RRF_DFS)
3715 scnprintf(cac_time, sizeof(cac_time), "%u s",
3716 reg_rule->dfs_cac_ms/1000);
3717 else
3718 scnprintf(cac_time, sizeof(cac_time), "N/A");
3719
3720
3721 /*
3722 * There may not be documentation for max antenna gain
3723 * in certain regions
3724 */
3725 if (power_rule->max_antenna_gain)
3726 pr_debug(" (%d KHz - %d KHz @ %s), (%d mBi, %d mBm), (%s)\n",
3727 freq_range->start_freq_khz,
3728 freq_range->end_freq_khz,
3729 bw,
3730 power_rule->max_antenna_gain,
3731 power_rule->max_eirp,
3732 cac_time);
3733 else
3734 pr_debug(" (%d KHz - %d KHz @ %s), (N/A, %d mBm), (%s)\n",
3735 freq_range->start_freq_khz,
3736 freq_range->end_freq_khz,
3737 bw,
3738 power_rule->max_eirp,
3739 cac_time);
3740 }
3741 }
3742
reg_supported_dfs_region(enum nl80211_dfs_regions dfs_region)3743 bool reg_supported_dfs_region(enum nl80211_dfs_regions dfs_region)
3744 {
3745 switch (dfs_region) {
3746 case NL80211_DFS_UNSET:
3747 case NL80211_DFS_FCC:
3748 case NL80211_DFS_ETSI:
3749 case NL80211_DFS_JP:
3750 return true;
3751 default:
3752 pr_debug("Ignoring unknown DFS master region: %d\n", dfs_region);
3753 return false;
3754 }
3755 }
3756
print_regdomain(const struct ieee80211_regdomain * rd)3757 static void print_regdomain(const struct ieee80211_regdomain *rd)
3758 {
3759 struct regulatory_request *lr = get_last_request();
3760
3761 if (is_intersected_alpha2(rd->alpha2)) {
3762 if (lr->initiator == NL80211_REGDOM_SET_BY_COUNTRY_IE) {
3763 struct cfg80211_registered_device *rdev;
3764 rdev = cfg80211_rdev_by_wiphy_idx(lr->wiphy_idx);
3765 if (rdev) {
3766 pr_debug("Current regulatory domain updated by AP to: %c%c\n",
3767 rdev->country_ie_alpha2[0],
3768 rdev->country_ie_alpha2[1]);
3769 } else
3770 pr_debug("Current regulatory domain intersected:\n");
3771 } else
3772 pr_debug("Current regulatory domain intersected:\n");
3773 } else if (is_world_regdom(rd->alpha2)) {
3774 pr_debug("World regulatory domain updated:\n");
3775 } else {
3776 if (is_unknown_alpha2(rd->alpha2))
3777 pr_debug("Regulatory domain changed to driver built-in settings (unknown country)\n");
3778 else {
3779 if (reg_request_cell_base(lr))
3780 pr_debug("Regulatory domain changed to country: %c%c by Cell Station\n",
3781 rd->alpha2[0], rd->alpha2[1]);
3782 else
3783 pr_debug("Regulatory domain changed to country: %c%c\n",
3784 rd->alpha2[0], rd->alpha2[1]);
3785 }
3786 }
3787
3788 pr_debug(" DFS Master region: %s", reg_dfs_region_str(rd->dfs_region));
3789 print_rd_rules(rd);
3790 }
3791
print_regdomain_info(const struct ieee80211_regdomain * rd)3792 static void print_regdomain_info(const struct ieee80211_regdomain *rd)
3793 {
3794 pr_debug("Regulatory domain: %c%c\n", rd->alpha2[0], rd->alpha2[1]);
3795 print_rd_rules(rd);
3796 }
3797
reg_set_rd_core(const struct ieee80211_regdomain * rd)3798 static int reg_set_rd_core(const struct ieee80211_regdomain *rd)
3799 {
3800 if (!is_world_regdom(rd->alpha2))
3801 return -EINVAL;
3802 update_world_regdomain(rd);
3803 return 0;
3804 }
3805
reg_set_rd_user(const struct ieee80211_regdomain * rd,struct regulatory_request * user_request)3806 static int reg_set_rd_user(const struct ieee80211_regdomain *rd,
3807 struct regulatory_request *user_request)
3808 {
3809 const struct ieee80211_regdomain *intersected_rd = NULL;
3810
3811 if (!regdom_changes(rd->alpha2))
3812 return -EALREADY;
3813
3814 if (!is_valid_rd(rd)) {
3815 pr_err("Invalid regulatory domain detected: %c%c\n",
3816 rd->alpha2[0], rd->alpha2[1]);
3817 print_regdomain_info(rd);
3818 return -EINVAL;
3819 }
3820
3821 if (!user_request->intersect) {
3822 reset_regdomains(false, rd);
3823 return 0;
3824 }
3825
3826 intersected_rd = regdom_intersect(rd, get_cfg80211_regdom());
3827 if (!intersected_rd)
3828 return -EINVAL;
3829
3830 kfree(rd);
3831 rd = NULL;
3832 reset_regdomains(false, intersected_rd);
3833
3834 return 0;
3835 }
3836
reg_set_rd_driver(const struct ieee80211_regdomain * rd,struct regulatory_request * driver_request)3837 static int reg_set_rd_driver(const struct ieee80211_regdomain *rd,
3838 struct regulatory_request *driver_request)
3839 {
3840 const struct ieee80211_regdomain *regd;
3841 const struct ieee80211_regdomain *intersected_rd = NULL;
3842 const struct ieee80211_regdomain *tmp = NULL;
3843 struct wiphy *request_wiphy;
3844
3845 if (is_world_regdom(rd->alpha2))
3846 return -EINVAL;
3847
3848 if (!regdom_changes(rd->alpha2))
3849 return -EALREADY;
3850
3851 if (!is_valid_rd(rd)) {
3852 pr_err("Invalid regulatory domain detected: %c%c\n",
3853 rd->alpha2[0], rd->alpha2[1]);
3854 print_regdomain_info(rd);
3855 return -EINVAL;
3856 }
3857
3858 request_wiphy = wiphy_idx_to_wiphy(driver_request->wiphy_idx);
3859 if (!request_wiphy)
3860 return -ENODEV;
3861
3862 if (!driver_request->intersect) {
3863 ASSERT_RTNL();
3864 scoped_guard(wiphy, request_wiphy) {
3865 if (request_wiphy->regd)
3866 tmp = get_wiphy_regdom(request_wiphy);
3867
3868 regd = reg_copy_regd(rd);
3869 if (IS_ERR(regd))
3870 return PTR_ERR(regd);
3871
3872 rcu_assign_pointer(request_wiphy->regd, regd);
3873 rcu_free_regdom(tmp);
3874 }
3875
3876 reset_regdomains(false, rd);
3877 return 0;
3878 }
3879
3880 intersected_rd = regdom_intersect(rd, get_cfg80211_regdom());
3881 if (!intersected_rd)
3882 return -EINVAL;
3883
3884 /*
3885 * We can trash what CRDA provided now.
3886 * However if a driver requested this specific regulatory
3887 * domain we keep it for its private use
3888 */
3889 tmp = get_wiphy_regdom(request_wiphy);
3890 rcu_assign_pointer(request_wiphy->regd, rd);
3891 rcu_free_regdom(tmp);
3892
3893 rd = NULL;
3894
3895 reset_regdomains(false, intersected_rd);
3896
3897 return 0;
3898 }
3899
reg_set_rd_country_ie(const struct ieee80211_regdomain * rd,struct regulatory_request * country_ie_request)3900 static int reg_set_rd_country_ie(const struct ieee80211_regdomain *rd,
3901 struct regulatory_request *country_ie_request)
3902 {
3903 struct wiphy *request_wiphy;
3904
3905 if (!is_alpha2_set(rd->alpha2) && !is_an_alpha2(rd->alpha2) &&
3906 !is_unknown_alpha2(rd->alpha2))
3907 return -EINVAL;
3908
3909 /*
3910 * Lets only bother proceeding on the same alpha2 if the current
3911 * rd is non static (it means CRDA was present and was used last)
3912 * and the pending request came in from a country IE
3913 */
3914
3915 if (!is_valid_rd(rd)) {
3916 pr_err("Invalid regulatory domain detected: %c%c\n",
3917 rd->alpha2[0], rd->alpha2[1]);
3918 print_regdomain_info(rd);
3919 return -EINVAL;
3920 }
3921
3922 request_wiphy = wiphy_idx_to_wiphy(country_ie_request->wiphy_idx);
3923 if (!request_wiphy)
3924 return -ENODEV;
3925
3926 if (country_ie_request->intersect)
3927 return -EINVAL;
3928
3929 reset_regdomains(false, rd);
3930 return 0;
3931 }
3932
3933 /*
3934 * Use this call to set the current regulatory domain. Conflicts with
3935 * multiple drivers can be ironed out later. Caller must've already
3936 * kmalloc'd the rd structure.
3937 */
set_regdom(const struct ieee80211_regdomain * rd,enum ieee80211_regd_source regd_src)3938 int set_regdom(const struct ieee80211_regdomain *rd,
3939 enum ieee80211_regd_source regd_src)
3940 {
3941 struct regulatory_request *lr;
3942 bool user_reset = false;
3943 int r;
3944
3945 if (IS_ERR_OR_NULL(rd))
3946 return -ENODATA;
3947
3948 if (!reg_is_valid_request(rd->alpha2)) {
3949 kfree(rd);
3950 return -EINVAL;
3951 }
3952
3953 if (regd_src == REGD_SOURCE_CRDA)
3954 reset_crda_timeouts();
3955
3956 lr = get_last_request();
3957
3958 /* Note that this doesn't update the wiphys, this is done below */
3959 switch (lr->initiator) {
3960 case NL80211_REGDOM_SET_BY_CORE:
3961 r = reg_set_rd_core(rd);
3962 break;
3963 case NL80211_REGDOM_SET_BY_USER:
3964 cfg80211_save_user_regdom(rd);
3965 r = reg_set_rd_user(rd, lr);
3966 user_reset = true;
3967 break;
3968 case NL80211_REGDOM_SET_BY_DRIVER:
3969 r = reg_set_rd_driver(rd, lr);
3970 break;
3971 case NL80211_REGDOM_SET_BY_COUNTRY_IE:
3972 r = reg_set_rd_country_ie(rd, lr);
3973 break;
3974 default:
3975 WARN(1, "invalid initiator %d\n", lr->initiator);
3976 kfree(rd);
3977 return -EINVAL;
3978 }
3979
3980 if (r) {
3981 switch (r) {
3982 case -EALREADY:
3983 reg_set_request_processed();
3984 break;
3985 default:
3986 /* Back to world regulatory in case of errors */
3987 restore_regulatory_settings(user_reset, false);
3988 }
3989
3990 kfree(rd);
3991 return r;
3992 }
3993
3994 /* This would make this whole thing pointless */
3995 if (WARN_ON(!lr->intersect && rd != get_cfg80211_regdom()))
3996 return -EINVAL;
3997
3998 /* update all wiphys now with the new established regulatory domain */
3999 update_all_wiphy_regulatory(lr->initiator);
4000
4001 print_regdomain(get_cfg80211_regdom());
4002
4003 nl80211_send_reg_change_event(lr);
4004
4005 reg_set_request_processed();
4006
4007 return 0;
4008 }
4009
__regulatory_set_wiphy_regd(struct wiphy * wiphy,struct ieee80211_regdomain * rd)4010 static int __regulatory_set_wiphy_regd(struct wiphy *wiphy,
4011 struct ieee80211_regdomain *rd)
4012 {
4013 const struct ieee80211_regdomain *regd;
4014 const struct ieee80211_regdomain *prev_regd;
4015 struct cfg80211_registered_device *rdev;
4016
4017 if (WARN_ON(!wiphy || !rd))
4018 return -EINVAL;
4019
4020 if (WARN(!(wiphy->regulatory_flags & REGULATORY_WIPHY_SELF_MANAGED),
4021 "wiphy should have REGULATORY_WIPHY_SELF_MANAGED\n"))
4022 return -EPERM;
4023
4024 if (WARN(!is_valid_rd(rd),
4025 "Invalid regulatory domain detected: %c%c\n",
4026 rd->alpha2[0], rd->alpha2[1])) {
4027 print_regdomain_info(rd);
4028 return -EINVAL;
4029 }
4030
4031 regd = reg_copy_regd(rd);
4032 if (IS_ERR(regd))
4033 return PTR_ERR(regd);
4034
4035 rdev = wiphy_to_rdev(wiphy);
4036
4037 spin_lock(®_requests_lock);
4038 prev_regd = rdev->requested_regd;
4039 rdev->requested_regd = regd;
4040 spin_unlock(®_requests_lock);
4041
4042 kfree(prev_regd);
4043 return 0;
4044 }
4045
regulatory_set_wiphy_regd(struct wiphy * wiphy,struct ieee80211_regdomain * rd)4046 int regulatory_set_wiphy_regd(struct wiphy *wiphy,
4047 struct ieee80211_regdomain *rd)
4048 {
4049 int ret = __regulatory_set_wiphy_regd(wiphy, rd);
4050
4051 if (ret)
4052 return ret;
4053
4054 schedule_work(®_work);
4055 return 0;
4056 }
4057 EXPORT_SYMBOL(regulatory_set_wiphy_regd);
4058
regulatory_set_wiphy_regd_sync(struct wiphy * wiphy,struct ieee80211_regdomain * rd)4059 int regulatory_set_wiphy_regd_sync(struct wiphy *wiphy,
4060 struct ieee80211_regdomain *rd)
4061 {
4062 int ret;
4063
4064 ASSERT_RTNL();
4065
4066 ret = __regulatory_set_wiphy_regd(wiphy, rd);
4067 if (ret)
4068 return ret;
4069
4070 /* process the request immediately */
4071 reg_process_self_managed_hint(wiphy);
4072 reg_check_channels();
4073 return 0;
4074 }
4075 EXPORT_SYMBOL(regulatory_set_wiphy_regd_sync);
4076
wiphy_regulatory_register(struct wiphy * wiphy)4077 void wiphy_regulatory_register(struct wiphy *wiphy)
4078 {
4079 struct regulatory_request *lr = get_last_request();
4080
4081 /* self-managed devices ignore beacon hints and country IE */
4082 if (wiphy->regulatory_flags & REGULATORY_WIPHY_SELF_MANAGED) {
4083 wiphy->regulatory_flags |= REGULATORY_DISABLE_BEACON_HINTS |
4084 REGULATORY_COUNTRY_IE_IGNORE;
4085
4086 /*
4087 * The last request may have been received before this
4088 * registration call. Call the driver notifier if
4089 * initiator is USER.
4090 */
4091 if (lr->initiator == NL80211_REGDOM_SET_BY_USER)
4092 reg_call_notifier(wiphy, lr);
4093 }
4094
4095 if (!reg_dev_ignore_cell_hint(wiphy))
4096 reg_num_devs_support_basehint++;
4097
4098 wiphy_update_regulatory(wiphy, lr->initiator);
4099 wiphy_all_share_dfs_chan_state(wiphy);
4100 reg_process_self_managed_hints();
4101 }
4102
wiphy_regulatory_deregister(struct wiphy * wiphy)4103 void wiphy_regulatory_deregister(struct wiphy *wiphy)
4104 {
4105 struct wiphy *request_wiphy = NULL;
4106 struct regulatory_request *lr;
4107
4108 lr = get_last_request();
4109
4110 if (!reg_dev_ignore_cell_hint(wiphy))
4111 reg_num_devs_support_basehint--;
4112
4113 rcu_free_regdom(get_wiphy_regdom(wiphy));
4114 RCU_INIT_POINTER(wiphy->regd, NULL);
4115
4116 if (lr)
4117 request_wiphy = wiphy_idx_to_wiphy(lr->wiphy_idx);
4118
4119 if (!request_wiphy || request_wiphy != wiphy)
4120 return;
4121
4122 lr->wiphy_idx = WIPHY_IDX_INVALID;
4123 lr->country_ie_env = ENVIRON_ANY;
4124 }
4125
4126 /*
4127 * See FCC notices for UNII band definitions
4128 * 5GHz: https://www.fcc.gov/document/5-ghz-unlicensed-spectrum-unii
4129 * 6GHz: https://www.fcc.gov/document/fcc-proposes-more-spectrum-unlicensed-use-0
4130 */
cfg80211_get_unii(int freq)4131 int cfg80211_get_unii(int freq)
4132 {
4133 /* UNII-1 */
4134 if (freq >= 5150 && freq <= 5250)
4135 return 0;
4136
4137 /* UNII-2A */
4138 if (freq > 5250 && freq <= 5350)
4139 return 1;
4140
4141 /* UNII-2B */
4142 if (freq > 5350 && freq <= 5470)
4143 return 2;
4144
4145 /* UNII-2C */
4146 if (freq > 5470 && freq <= 5725)
4147 return 3;
4148
4149 /* UNII-3 */
4150 if (freq > 5725 && freq <= 5825)
4151 return 4;
4152
4153 /* UNII-5 */
4154 if (freq > 5925 && freq <= 6425)
4155 return 5;
4156
4157 /* UNII-6 */
4158 if (freq > 6425 && freq <= 6525)
4159 return 6;
4160
4161 /* UNII-7 */
4162 if (freq > 6525 && freq <= 6875)
4163 return 7;
4164
4165 /* UNII-8 */
4166 if (freq > 6875 && freq <= 7125)
4167 return 8;
4168
4169 return -EINVAL;
4170 }
4171
regulatory_indoor_allowed(void)4172 bool regulatory_indoor_allowed(void)
4173 {
4174 return reg_is_indoor;
4175 }
4176
regulatory_pre_cac_allowed(struct wiphy * wiphy)4177 bool regulatory_pre_cac_allowed(struct wiphy *wiphy)
4178 {
4179 const struct ieee80211_regdomain *regd = NULL;
4180 const struct ieee80211_regdomain *wiphy_regd = NULL;
4181 bool pre_cac_allowed = false;
4182
4183 rcu_read_lock();
4184
4185 regd = rcu_dereference(cfg80211_regdomain);
4186 wiphy_regd = rcu_dereference(wiphy->regd);
4187 if (!wiphy_regd) {
4188 if (regd->dfs_region == NL80211_DFS_ETSI)
4189 pre_cac_allowed = true;
4190
4191 rcu_read_unlock();
4192
4193 return pre_cac_allowed;
4194 }
4195
4196 if (regd->dfs_region == wiphy_regd->dfs_region &&
4197 wiphy_regd->dfs_region == NL80211_DFS_ETSI)
4198 pre_cac_allowed = true;
4199
4200 rcu_read_unlock();
4201
4202 return pre_cac_allowed;
4203 }
4204 EXPORT_SYMBOL(regulatory_pre_cac_allowed);
4205
cfg80211_check_and_end_cac(struct cfg80211_registered_device * rdev)4206 static void cfg80211_check_and_end_cac(struct cfg80211_registered_device *rdev)
4207 {
4208 struct wireless_dev *wdev;
4209 unsigned int link_id;
4210
4211 guard(wiphy)(&rdev->wiphy);
4212
4213 /* If we finished CAC or received radar, we should end any
4214 * CAC running on the same channels.
4215 * the check !cfg80211_chandef_dfs_usable contain 2 options:
4216 * either all channels are available - those the CAC_FINISHED
4217 * event has effected another wdev state, or there is a channel
4218 * in unavailable state in wdev chandef - those the RADAR_DETECTED
4219 * event has effected another wdev state.
4220 * In both cases we should end the CAC on the wdev.
4221 */
4222 list_for_each_entry(wdev, &rdev->wiphy.wdev_list, list) {
4223 struct cfg80211_chan_def *chandef;
4224
4225 for_each_valid_link(wdev, link_id) {
4226 if (!wdev->links[link_id].cac_started)
4227 continue;
4228
4229 chandef = wdev_chandef(wdev, link_id);
4230 if (!chandef)
4231 continue;
4232
4233 if (!cfg80211_chandef_dfs_usable(&rdev->wiphy, chandef))
4234 rdev_end_cac(rdev, wdev->netdev, link_id);
4235 }
4236 }
4237 }
4238
regulatory_propagate_dfs_state(struct wiphy * wiphy,struct cfg80211_chan_def * chandef,enum nl80211_dfs_state dfs_state,enum nl80211_radar_event event)4239 void regulatory_propagate_dfs_state(struct wiphy *wiphy,
4240 struct cfg80211_chan_def *chandef,
4241 enum nl80211_dfs_state dfs_state,
4242 enum nl80211_radar_event event)
4243 {
4244 struct cfg80211_registered_device *rdev;
4245
4246 ASSERT_RTNL();
4247
4248 if (WARN_ON(!cfg80211_chandef_valid(chandef)))
4249 return;
4250
4251 for_each_rdev(rdev) {
4252 if (wiphy == &rdev->wiphy)
4253 continue;
4254
4255 if (!reg_dfs_domain_same(wiphy, &rdev->wiphy))
4256 continue;
4257
4258 if (!ieee80211_get_channel(&rdev->wiphy,
4259 chandef->chan->center_freq))
4260 continue;
4261
4262 cfg80211_set_dfs_state(&rdev->wiphy, chandef, dfs_state);
4263
4264 if (event == NL80211_RADAR_DETECTED ||
4265 event == NL80211_RADAR_CAC_FINISHED) {
4266 cfg80211_sched_dfs_chan_update(rdev);
4267 cfg80211_check_and_end_cac(rdev);
4268 }
4269
4270 nl80211_radar_notify(rdev, chandef, event, NULL, GFP_KERNEL);
4271 }
4272 }
4273
regulatory_init_db(void)4274 static int __init regulatory_init_db(void)
4275 {
4276 int err;
4277
4278 /*
4279 * It's possible that - due to other bugs/issues - cfg80211
4280 * never called regulatory_init() below, or that it failed;
4281 * in that case, don't try to do any further work here as
4282 * it's doomed to lead to crashes.
4283 */
4284 if (!reg_fdev)
4285 return -EINVAL;
4286
4287 err = load_builtin_regdb_keys();
4288 if (err) {
4289 faux_device_destroy(reg_fdev);
4290 return err;
4291 }
4292
4293 /* We always try to get an update for the static regdomain */
4294 err = regulatory_hint_core(cfg80211_world_regdom->alpha2);
4295 if (err) {
4296 if (err == -ENOMEM) {
4297 faux_device_destroy(reg_fdev);
4298 return err;
4299 }
4300 /*
4301 * N.B. kobject_uevent_env() can fail mainly for when we're out
4302 * memory which is handled and propagated appropriately above
4303 * but it can also fail during a netlink_broadcast() or during
4304 * early boot for call_usermodehelper(). For now treat these
4305 * errors as non-fatal.
4306 */
4307 pr_err("kobject_uevent_env() was unable to call CRDA during init\n");
4308 }
4309
4310 /*
4311 * Finally, if the user set the module parameter treat it
4312 * as a user hint.
4313 */
4314 if (!is_world_regdom(ieee80211_regdom))
4315 regulatory_hint_user(ieee80211_regdom,
4316 NL80211_USER_REG_HINT_USER);
4317
4318 return 0;
4319 }
4320 #ifndef MODULE
4321 late_initcall(regulatory_init_db);
4322 #endif
4323
regulatory_init(void)4324 int __init regulatory_init(void)
4325 {
4326 reg_fdev = faux_device_create("regulatory", NULL, NULL);
4327 if (!reg_fdev)
4328 return -ENODEV;
4329
4330 rcu_assign_pointer(cfg80211_regdomain, cfg80211_world_regdom);
4331
4332 user_alpha2[0] = '9';
4333 user_alpha2[1] = '7';
4334
4335 #ifdef MODULE
4336 return regulatory_init_db();
4337 #else
4338 return 0;
4339 #endif
4340 }
4341
regulatory_exit(void)4342 void regulatory_exit(void)
4343 {
4344 struct regulatory_request *reg_request, *tmp;
4345 struct reg_beacon *reg_beacon, *btmp;
4346
4347 cancel_work_sync(®_work);
4348 cancel_crda_timeout_sync();
4349 cancel_delayed_work_sync(®_check_chans);
4350
4351 /* Lock to suppress warnings */
4352 rtnl_lock();
4353 reset_regdomains(true, NULL);
4354 rtnl_unlock();
4355
4356 dev_set_uevent_suppress(®_fdev->dev, true);
4357
4358 faux_device_destroy(reg_fdev);
4359
4360 list_for_each_entry_safe(reg_beacon, btmp, ®_pending_beacons, list) {
4361 list_del(®_beacon->list);
4362 kfree(reg_beacon);
4363 }
4364
4365 list_for_each_entry_safe(reg_beacon, btmp, ®_beacon_list, list) {
4366 list_del(®_beacon->list);
4367 kfree(reg_beacon);
4368 }
4369
4370 list_for_each_entry_safe(reg_request, tmp, ®_requests_list, list) {
4371 list_del(®_request->list);
4372 kfree(reg_request);
4373 }
4374
4375 if (!IS_ERR_OR_NULL(regdb))
4376 kfree(regdb);
4377 if (!IS_ERR_OR_NULL(cfg80211_user_regdom))
4378 kfree(cfg80211_user_regdom);
4379
4380 free_regdb_keyring();
4381 }
4382