xref: /linux/net/wireless/util.c (revision 708f9d43d6a2eb9c6b83fe62af628de9dffd9314)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * Wireless utility functions
4  *
5  * Copyright 2007-2009	Johannes Berg <johannes@sipsolutions.net>
6  * Copyright 2013-2014  Intel Mobile Communications GmbH
7  * Copyright 2017	Intel Deutschland GmbH
8  * Copyright (C) 2018-2023, 2025-2026 Intel Corporation
9  */
10 #include <linux/export.h>
11 #include <linux/bitops.h>
12 #include <linux/etherdevice.h>
13 #include <linux/slab.h>
14 #include <linux/ieee80211.h>
15 #include <net/cfg80211.h>
16 #include <net/ip.h>
17 #include <net/dsfield.h>
18 #include <linux/if_vlan.h>
19 #include <linux/mpls.h>
20 #include <linux/gcd.h>
21 #include <linux/bitfield.h>
22 #include <linux/nospec.h>
23 #include "core.h"
24 #include "rdev-ops.h"
25 
26 
27 const struct ieee80211_rate *
28 ieee80211_get_response_rate(struct ieee80211_supported_band *sband,
29 			    u32 basic_rates, int bitrate)
30 {
31 	struct ieee80211_rate *result = &sband->bitrates[0];
32 	int i;
33 
34 	for (i = 0; i < sband->n_bitrates; i++) {
35 		if (!(basic_rates & BIT(i)))
36 			continue;
37 		if (sband->bitrates[i].bitrate > bitrate)
38 			continue;
39 		result = &sband->bitrates[i];
40 	}
41 
42 	return result;
43 }
44 EXPORT_SYMBOL(ieee80211_get_response_rate);
45 
46 u32 ieee80211_mandatory_rates(struct ieee80211_supported_band *sband)
47 {
48 	struct ieee80211_rate *bitrates;
49 	u32 mandatory_rates = 0;
50 	enum ieee80211_rate_flags mandatory_flag;
51 	int i;
52 
53 	if (WARN_ON(!sband))
54 		return 1;
55 
56 	if (sband->band == NL80211_BAND_2GHZ)
57 		mandatory_flag = IEEE80211_RATE_MANDATORY_B;
58 	else
59 		mandatory_flag = IEEE80211_RATE_MANDATORY_A;
60 
61 	bitrates = sband->bitrates;
62 	for (i = 0; i < sband->n_bitrates; i++)
63 		if (bitrates[i].flags & mandatory_flag)
64 			mandatory_rates |= BIT(i);
65 	return mandatory_rates;
66 }
67 EXPORT_SYMBOL(ieee80211_mandatory_rates);
68 
69 u32 ieee80211_channel_to_freq_khz(int chan, enum nl80211_band band)
70 {
71 	/* see 802.11 17.3.8.3.2 and Annex J
72 	 * there are overlapping channel numbers in 5GHz and 2GHz bands */
73 	if (chan <= 0)
74 		return 0; /* not supported */
75 	switch (band) {
76 	case NL80211_BAND_2GHZ:
77 	case NL80211_BAND_LC:
78 		if (chan == 14)
79 			return MHZ_TO_KHZ(2484);
80 		else if (chan < 14)
81 			return MHZ_TO_KHZ(2407 + chan * 5);
82 		break;
83 	case NL80211_BAND_5GHZ:
84 		if (chan >= 182 && chan <= 196)
85 			return MHZ_TO_KHZ(4000 + chan * 5);
86 		else
87 			return MHZ_TO_KHZ(5000 + chan * 5);
88 		break;
89 	case NL80211_BAND_6GHZ:
90 		/* see 802.11ax D6.1 27.3.23.2 */
91 		if (chan == 2)
92 			return MHZ_TO_KHZ(5935);
93 		if (chan <= 253)
94 			return MHZ_TO_KHZ(5950 + chan * 5);
95 		break;
96 	case NL80211_BAND_60GHZ:
97 		if (chan < 7)
98 			return MHZ_TO_KHZ(56160 + chan * 2160);
99 		break;
100 	case NL80211_BAND_S1GHZ:
101 		return 902000 + chan * 500;
102 	default:
103 		;
104 	}
105 	return 0; /* not supported */
106 }
107 EXPORT_SYMBOL(ieee80211_channel_to_freq_khz);
108 
109 int ieee80211_freq_khz_to_channel(u32 freq)
110 {
111 	/* TODO: just handle MHz for now */
112 	freq = KHZ_TO_MHZ(freq);
113 
114 	/* see 802.11 17.3.8.3.2 and Annex J */
115 	if (freq == 2484)
116 		return 14;
117 	else if (freq < 2484)
118 		return (freq - 2407) / 5;
119 	else if (freq >= 4910 && freq <= 4980)
120 		return (freq - 4000) / 5;
121 	else if (freq < 5925)
122 		return (freq - 5000) / 5;
123 	else if (freq == 5935)
124 		return 2;
125 	else if (freq <= 45000) /* DMG band lower limit */
126 		/* see 802.11ax D6.1 27.3.22.2 */
127 		return (freq - 5950) / 5;
128 	else if (freq >= 58320 && freq <= 70200)
129 		return (freq - 56160) / 2160;
130 	else
131 		return 0;
132 }
133 EXPORT_SYMBOL(ieee80211_freq_khz_to_channel);
134 
135 struct ieee80211_channel *ieee80211_get_channel_khz(struct wiphy *wiphy,
136 						    u32 freq)
137 {
138 	enum nl80211_band band;
139 	struct ieee80211_supported_band *sband;
140 	int i;
141 
142 	for (band = 0; band < NUM_NL80211_BANDS; band++) {
143 		sband = wiphy->bands[band];
144 
145 		if (!sband)
146 			continue;
147 
148 		for (i = 0; i < sband->n_channels; i++) {
149 			struct ieee80211_channel *chan = &sband->channels[i];
150 
151 			if (ieee80211_channel_to_khz(chan) == freq)
152 				return chan;
153 		}
154 	}
155 
156 	return NULL;
157 }
158 EXPORT_SYMBOL(ieee80211_get_channel_khz);
159 
160 static void set_mandatory_flags_band(struct ieee80211_supported_band *sband)
161 {
162 	int i, want;
163 
164 	switch (sband->band) {
165 	case NL80211_BAND_5GHZ:
166 	case NL80211_BAND_6GHZ:
167 		want = 3;
168 		for (i = 0; i < sband->n_bitrates; i++) {
169 			if (sband->bitrates[i].bitrate == 60 ||
170 			    sband->bitrates[i].bitrate == 120 ||
171 			    sband->bitrates[i].bitrate == 240) {
172 				sband->bitrates[i].flags |=
173 					IEEE80211_RATE_MANDATORY_A;
174 				want--;
175 			}
176 		}
177 		WARN_ON(want);
178 		break;
179 	case NL80211_BAND_2GHZ:
180 	case NL80211_BAND_LC:
181 		want = 7;
182 		for (i = 0; i < sband->n_bitrates; i++) {
183 			switch (sband->bitrates[i].bitrate) {
184 			case 10:
185 			case 20:
186 			case 55:
187 			case 110:
188 				sband->bitrates[i].flags |=
189 					IEEE80211_RATE_MANDATORY_B |
190 					IEEE80211_RATE_MANDATORY_G;
191 				want--;
192 				break;
193 			case 60:
194 			case 120:
195 			case 240:
196 				sband->bitrates[i].flags |=
197 					IEEE80211_RATE_MANDATORY_G;
198 				want--;
199 				fallthrough;
200 			default:
201 				sband->bitrates[i].flags |=
202 					IEEE80211_RATE_ERP_G;
203 				break;
204 			}
205 		}
206 		WARN_ON(want != 0 && want != 3);
207 		break;
208 	case NL80211_BAND_60GHZ:
209 		/* check for mandatory HT MCS 1..4 */
210 		WARN_ON(!sband->ht_cap.ht_supported);
211 		WARN_ON((sband->ht_cap.mcs.rx_mask[0] & 0x1e) != 0x1e);
212 		break;
213 	case NL80211_BAND_S1GHZ:
214 		/* Figure 9-589bd: 3 means unsupported, so != 3 means at least
215 		 * mandatory is ok.
216 		 */
217 		WARN_ON((sband->s1g_cap.nss_mcs[0] & 0x3) == 0x3);
218 		break;
219 	case NUM_NL80211_BANDS:
220 	default:
221 		WARN_ON(1);
222 		break;
223 	}
224 }
225 
226 void ieee80211_set_bitrate_flags(struct wiphy *wiphy)
227 {
228 	enum nl80211_band band;
229 
230 	for (band = 0; band < NUM_NL80211_BANDS; band++)
231 		if (wiphy->bands[band])
232 			set_mandatory_flags_band(wiphy->bands[band]);
233 }
234 
235 bool cfg80211_supported_cipher_suite(struct wiphy *wiphy, u32 cipher)
236 {
237 	int i;
238 	for (i = 0; i < wiphy->n_cipher_suites; i++)
239 		if (cipher == wiphy->cipher_suites[i])
240 			return true;
241 	return false;
242 }
243 
244 static bool cfg80211_igtk_cipher_supported(struct wiphy *wiphy)
245 {
246 	int i;
247 
248 	for (i = 0; i < wiphy->n_cipher_suites; i++) {
249 		switch (wiphy->cipher_suites[i]) {
250 		case WLAN_CIPHER_SUITE_AES_CMAC:
251 		case WLAN_CIPHER_SUITE_BIP_CMAC_256:
252 		case WLAN_CIPHER_SUITE_BIP_GMAC_128:
253 		case WLAN_CIPHER_SUITE_BIP_GMAC_256:
254 			return true;
255 		}
256 	}
257 
258 	return false;
259 }
260 
261 bool cfg80211_valid_key_idx(struct wireless_dev *wdev,
262 			    int key_idx, bool pairwise,
263 			    const u8 *mac_addr)
264 {
265 	if (WARN_ON(!wdev))
266 		return false;
267 
268 	if (key_idx < 0)
269 		return false;
270 
271 	/*
272 	 * Can't differentiate ciphers here so allow 0..3.
273 	 * Pairwise keys must be for a station (MAC address given).
274 	 */
275 	if (pairwise) {
276 		if (!mac_addr)
277 			return false;
278 
279 		return key_idx < 4;
280 	}
281 
282 	/*
283 	 * For group keys, mac_addr==NULL means setting a group key
284 	 * for TX, which is only supported on some interface types,
285 	 * except for STATION/P2P_CLIENT, where it's setting the RX
286 	 * key with the current AP (for legacy reasons.)
287 	 *
288 	 * Apart from that exception, a non-NULL mac_addr means RX
289 	 * key being set.
290 	 */
291 
292 	switch (wdev->iftype) {
293 	case NL80211_IFTYPE_ADHOC:
294 		if (!(wdev->wiphy->flags & WIPHY_FLAG_IBSS_RSN))
295 			return false;
296 		fallthrough;
297 	case NL80211_IFTYPE_MESH_POINT:
298 		/* no support for IGTK/BIGTK (yet?) */
299 		return key_idx < 4;
300 	case NL80211_IFTYPE_NAN_DATA:
301 		/* these always need to support per-STA GTK */
302 		return key_idx < 4;
303 	case NL80211_IFTYPE_NAN:
304 		/* no data */
305 		if (key_idx < 4)
306 			return false;
307 		/* NAN reused this flag */
308 		if (wiphy_ext_feature_isset(wdev->wiphy,
309 					    NL80211_EXT_FEATURE_BEACON_PROTECTION))
310 			return key_idx <= 7;
311 		return key_idx <= 5;
312 	case NL80211_IFTYPE_STATION:
313 	case NL80211_IFTYPE_P2P_CLIENT:
314 		/* see note about exception above */
315 		if (mac_addr)
316 			return false;
317 		/* BIGTK support implies IGTK support */
318 		if (wiphy_ext_feature_isset(wdev->wiphy,
319 					    NL80211_EXT_FEATURE_BEACON_PROTECTION_CLIENT))
320 			return key_idx <= 7;
321 		fallthrough;
322 	case NL80211_IFTYPE_AP:
323 	case NL80211_IFTYPE_P2P_GO:
324 		/* no RX with [B]IGTK */
325 		if (mac_addr)
326 			return false;
327 		if (wiphy_ext_feature_isset(wdev->wiphy,
328 					    NL80211_EXT_FEATURE_BEACON_PROTECTION))
329 			return key_idx <= 7;
330 		fallthrough;
331 	case NL80211_IFTYPE_AP_VLAN:
332 		/* no RX with GTK */
333 		if (mac_addr)
334 			return false;
335 		if (cfg80211_igtk_cipher_supported(wdev->wiphy))
336 			return key_idx <= 5;
337 		return key_idx <= 3;
338 	default:
339 		return false;
340 	}
341 }
342 
343 int cfg80211_validate_key_settings(struct cfg80211_registered_device *rdev,
344 				   struct wireless_dev *wdev,
345 				   struct key_params *params, int key_idx,
346 				   bool pairwise, const u8 *mac_addr)
347 {
348 	if (!cfg80211_valid_key_idx(wdev, key_idx, pairwise, mac_addr))
349 		return -EINVAL;
350 
351 	switch (params->cipher) {
352 	case WLAN_CIPHER_SUITE_TKIP:
353 		/* Extended Key ID can only be used with CCMP/GCMP ciphers */
354 		if ((pairwise && key_idx) ||
355 		    params->mode != NL80211_KEY_RX_TX)
356 			return -EINVAL;
357 		break;
358 	case WLAN_CIPHER_SUITE_CCMP:
359 	case WLAN_CIPHER_SUITE_CCMP_256:
360 	case WLAN_CIPHER_SUITE_GCMP:
361 	case WLAN_CIPHER_SUITE_GCMP_256:
362 		/* IEEE802.11-2016 allows only 0 and - when supporting
363 		 * Extended Key ID - 1 as index for pairwise keys.
364 		 * @NL80211_KEY_NO_TX is only allowed for pairwise keys when
365 		 * the driver supports Extended Key ID.
366 		 * @NL80211_KEY_SET_TX can't be set when installing and
367 		 * validating a key.
368 		 */
369 		if ((params->mode == NL80211_KEY_NO_TX && !pairwise) ||
370 		    params->mode == NL80211_KEY_SET_TX)
371 			return -EINVAL;
372 		if (wiphy_ext_feature_isset(&rdev->wiphy,
373 					    NL80211_EXT_FEATURE_EXT_KEY_ID)) {
374 			if (pairwise && (key_idx < 0 || key_idx > 1))
375 				return -EINVAL;
376 		} else if (pairwise && key_idx) {
377 			return -EINVAL;
378 		}
379 		break;
380 	case WLAN_CIPHER_SUITE_AES_CMAC:
381 	case WLAN_CIPHER_SUITE_BIP_CMAC_256:
382 	case WLAN_CIPHER_SUITE_BIP_GMAC_128:
383 	case WLAN_CIPHER_SUITE_BIP_GMAC_256:
384 		/* Disallow BIP (group-only) cipher as pairwise cipher */
385 		if (pairwise)
386 			return -EINVAL;
387 		if (key_idx < 4)
388 			return -EINVAL;
389 		break;
390 	case WLAN_CIPHER_SUITE_WEP40:
391 	case WLAN_CIPHER_SUITE_WEP104:
392 		if (key_idx > 3)
393 			return -EINVAL;
394 		break;
395 	default:
396 		break;
397 	}
398 
399 	/*
400 	 * Per Wi-Fi Aware v4.0 section 7.1.2, NAN Data interfaces
401 	 * shall only use CCMP-128 or GCMP-256.
402 	 */
403 	if (wdev->iftype == NL80211_IFTYPE_NAN_DATA &&
404 	    params->cipher != WLAN_CIPHER_SUITE_CCMP &&
405 	    params->cipher != WLAN_CIPHER_SUITE_GCMP_256)
406 		return -EINVAL;
407 
408 	switch (params->cipher) {
409 	case WLAN_CIPHER_SUITE_WEP40:
410 		if (params->key_len != WLAN_KEY_LEN_WEP40)
411 			return -EINVAL;
412 		break;
413 	case WLAN_CIPHER_SUITE_TKIP:
414 		if (params->key_len != WLAN_KEY_LEN_TKIP)
415 			return -EINVAL;
416 		break;
417 	case WLAN_CIPHER_SUITE_CCMP:
418 		if (params->key_len != WLAN_KEY_LEN_CCMP)
419 			return -EINVAL;
420 		break;
421 	case WLAN_CIPHER_SUITE_CCMP_256:
422 		if (params->key_len != WLAN_KEY_LEN_CCMP_256)
423 			return -EINVAL;
424 		break;
425 	case WLAN_CIPHER_SUITE_GCMP:
426 		if (params->key_len != WLAN_KEY_LEN_GCMP)
427 			return -EINVAL;
428 		break;
429 	case WLAN_CIPHER_SUITE_GCMP_256:
430 		if (params->key_len != WLAN_KEY_LEN_GCMP_256)
431 			return -EINVAL;
432 		break;
433 	case WLAN_CIPHER_SUITE_WEP104:
434 		if (params->key_len != WLAN_KEY_LEN_WEP104)
435 			return -EINVAL;
436 		break;
437 	case WLAN_CIPHER_SUITE_AES_CMAC:
438 		if (params->key_len != WLAN_KEY_LEN_AES_CMAC)
439 			return -EINVAL;
440 		break;
441 	case WLAN_CIPHER_SUITE_BIP_CMAC_256:
442 		if (params->key_len != WLAN_KEY_LEN_BIP_CMAC_256)
443 			return -EINVAL;
444 		break;
445 	case WLAN_CIPHER_SUITE_BIP_GMAC_128:
446 		if (params->key_len != WLAN_KEY_LEN_BIP_GMAC_128)
447 			return -EINVAL;
448 		break;
449 	case WLAN_CIPHER_SUITE_BIP_GMAC_256:
450 		if (params->key_len != WLAN_KEY_LEN_BIP_GMAC_256)
451 			return -EINVAL;
452 		break;
453 	default:
454 		/*
455 		 * We don't know anything about this algorithm,
456 		 * allow using it -- but the driver must check
457 		 * all parameters! We still check below whether
458 		 * or not the driver supports this algorithm,
459 		 * of course.
460 		 */
461 		break;
462 	}
463 
464 	if (params->seq) {
465 		switch (params->cipher) {
466 		case WLAN_CIPHER_SUITE_WEP40:
467 		case WLAN_CIPHER_SUITE_WEP104:
468 			/* These ciphers do not use key sequence */
469 			return -EINVAL;
470 		case WLAN_CIPHER_SUITE_TKIP:
471 		case WLAN_CIPHER_SUITE_CCMP:
472 		case WLAN_CIPHER_SUITE_CCMP_256:
473 		case WLAN_CIPHER_SUITE_GCMP:
474 		case WLAN_CIPHER_SUITE_GCMP_256:
475 		case WLAN_CIPHER_SUITE_AES_CMAC:
476 		case WLAN_CIPHER_SUITE_BIP_CMAC_256:
477 		case WLAN_CIPHER_SUITE_BIP_GMAC_128:
478 		case WLAN_CIPHER_SUITE_BIP_GMAC_256:
479 			if (params->seq_len != 6)
480 				return -EINVAL;
481 			break;
482 		}
483 	}
484 
485 	if (!cfg80211_supported_cipher_suite(&rdev->wiphy, params->cipher))
486 		return -EINVAL;
487 
488 	if (params->ltf_keyseed) {
489 		if (!wiphy_ext_feature_isset(&rdev->wiphy,
490 					     NL80211_EXT_FEATURE_SECURE_LTF) ||
491 		    !wiphy_ext_feature_isset(&rdev->wiphy,
492 					     NL80211_EXT_FEATURE_SET_KEY_LTF_SEED))
493 			return -EOPNOTSUPP;
494 
495 		/*
496 		 * LTF key seed is pairwise key material and must only be
497 		 * used with a pairwise key
498 		 */
499 		if (!pairwise)
500 			return -EINVAL;
501 	}
502 
503 	return 0;
504 }
505 
506 unsigned int __attribute_const__ ieee80211_hdrlen(__le16 fc)
507 {
508 	unsigned int hdrlen = 24;
509 
510 	if (ieee80211_is_ext(fc)) {
511 		hdrlen = 4;
512 		goto out;
513 	}
514 
515 	if (ieee80211_is_data(fc)) {
516 		if (ieee80211_has_a4(fc))
517 			hdrlen = 30;
518 		if (ieee80211_is_data_qos(fc)) {
519 			hdrlen += IEEE80211_QOS_CTL_LEN;
520 			if (ieee80211_has_order(fc))
521 				hdrlen += IEEE80211_HT_CTL_LEN;
522 		}
523 		goto out;
524 	}
525 
526 	if (ieee80211_is_mgmt(fc)) {
527 		if (ieee80211_has_order(fc))
528 			hdrlen += IEEE80211_HT_CTL_LEN;
529 		goto out;
530 	}
531 
532 	if (ieee80211_is_ctl(fc)) {
533 		/*
534 		 * ACK and CTS are 10 bytes, all others 16. To see how
535 		 * to get this condition consider
536 		 *   subtype mask:   0b0000000011110000 (0x00F0)
537 		 *   ACK subtype:    0b0000000011010000 (0x00D0)
538 		 *   CTS subtype:    0b0000000011000000 (0x00C0)
539 		 *   bits that matter:         ^^^      (0x00E0)
540 		 *   value of those: 0b0000000011000000 (0x00C0)
541 		 */
542 		if ((fc & cpu_to_le16(0x00E0)) == cpu_to_le16(0x00C0))
543 			hdrlen = 10;
544 		else
545 			hdrlen = 16;
546 	}
547 out:
548 	return hdrlen;
549 }
550 EXPORT_SYMBOL(ieee80211_hdrlen);
551 
552 unsigned int ieee80211_get_hdrlen_from_skb(const struct sk_buff *skb)
553 {
554 	const struct ieee80211_hdr *hdr =
555 			(const struct ieee80211_hdr *)skb->data;
556 	unsigned int hdrlen;
557 
558 	if (unlikely(skb->len < 10))
559 		return 0;
560 	hdrlen = ieee80211_hdrlen(hdr->frame_control);
561 	if (unlikely(hdrlen > skb->len))
562 		return 0;
563 	return hdrlen;
564 }
565 EXPORT_SYMBOL(ieee80211_get_hdrlen_from_skb);
566 
567 static unsigned int __ieee80211_get_mesh_hdrlen(u8 flags)
568 {
569 	int ae = flags & MESH_FLAGS_AE;
570 	/* 802.11-2012, 8.2.4.7.3 */
571 	switch (ae) {
572 	default:
573 	case 0:
574 		return 6;
575 	case MESH_FLAGS_AE_A4:
576 		return 12;
577 	case MESH_FLAGS_AE_A5_A6:
578 		return 18;
579 	}
580 }
581 
582 unsigned int ieee80211_get_mesh_hdrlen(struct ieee80211s_hdr *meshhdr)
583 {
584 	return __ieee80211_get_mesh_hdrlen(meshhdr->flags);
585 }
586 EXPORT_SYMBOL(ieee80211_get_mesh_hdrlen);
587 
588 bool ieee80211_get_8023_tunnel_proto(const void *hdr, __be16 *proto)
589 {
590 	const __be16 *hdr_proto = hdr + ETH_ALEN;
591 
592 	if (!(ether_addr_equal(hdr, rfc1042_header) &&
593 	      *hdr_proto != htons(ETH_P_AARP) &&
594 	      *hdr_proto != htons(ETH_P_IPX)) &&
595 	    !ether_addr_equal(hdr, bridge_tunnel_header))
596 		return false;
597 
598 	*proto = *hdr_proto;
599 
600 	return true;
601 }
602 EXPORT_SYMBOL(ieee80211_get_8023_tunnel_proto);
603 
604 int ieee80211_strip_8023_mesh_hdr(struct sk_buff *skb)
605 {
606 	const void *mesh_addr;
607 	struct {
608 		struct ethhdr eth;
609 		u8 flags;
610 	} payload;
611 	int hdrlen;
612 	int ret;
613 
614 	ret = skb_copy_bits(skb, 0, &payload, sizeof(payload));
615 	if (ret)
616 		return ret;
617 
618 	hdrlen = sizeof(payload.eth) + __ieee80211_get_mesh_hdrlen(payload.flags);
619 
620 	if (likely(pskb_may_pull(skb, hdrlen + 8) &&
621 		   ieee80211_get_8023_tunnel_proto(skb->data + hdrlen,
622 						   &payload.eth.h_proto)))
623 		hdrlen += ETH_ALEN + 2;
624 	else if (!pskb_may_pull(skb, hdrlen))
625 		return -EINVAL;
626 	else
627 		payload.eth.h_proto = htons(skb->len - hdrlen);
628 
629 	mesh_addr = skb->data + sizeof(payload.eth) + ETH_ALEN;
630 	switch (payload.flags & MESH_FLAGS_AE) {
631 	case MESH_FLAGS_AE_A4:
632 		memcpy(&payload.eth.h_source, mesh_addr, ETH_ALEN);
633 		break;
634 	case MESH_FLAGS_AE_A5_A6:
635 		memcpy(&payload.eth, mesh_addr, 2 * ETH_ALEN);
636 		break;
637 	default:
638 		break;
639 	}
640 
641 	pskb_pull(skb, hdrlen - sizeof(payload.eth));
642 	memcpy(skb->data, &payload.eth, sizeof(payload.eth));
643 
644 	return 0;
645 }
646 EXPORT_SYMBOL(ieee80211_strip_8023_mesh_hdr);
647 
648 int ieee80211_data_to_8023_exthdr(struct sk_buff *skb, struct ethhdr *ehdr,
649 				  const u8 *addr, enum nl80211_iftype iftype,
650 				  u8 data_offset, bool is_amsdu)
651 {
652 	struct ieee80211_hdr *hdr = (struct ieee80211_hdr *) skb->data;
653 	struct {
654 		u8 hdr[ETH_ALEN] __aligned(2);
655 		__be16 proto;
656 	} payload;
657 	struct ethhdr tmp;
658 	u16 hdrlen;
659 
660 	if (unlikely(!ieee80211_is_data_present(hdr->frame_control)))
661 		return -1;
662 
663 	hdrlen = ieee80211_hdrlen(hdr->frame_control) + data_offset;
664 	if (skb->len < hdrlen)
665 		return -1;
666 
667 	/* convert IEEE 802.11 header + possible LLC headers into Ethernet
668 	 * header
669 	 * IEEE 802.11 address fields:
670 	 * ToDS FromDS Addr1 Addr2 Addr3 Addr4
671 	 *   0     0   DA    SA    BSSID n/a
672 	 *   0     1   DA    BSSID SA    n/a
673 	 *   1     0   BSSID SA    DA    n/a
674 	 *   1     1   RA    TA    DA    SA
675 	 */
676 	memcpy(tmp.h_dest, ieee80211_get_DA(hdr), ETH_ALEN);
677 	memcpy(tmp.h_source, ieee80211_get_SA(hdr), ETH_ALEN);
678 
679 	switch (hdr->frame_control &
680 		cpu_to_le16(IEEE80211_FCTL_TODS | IEEE80211_FCTL_FROMDS)) {
681 	case cpu_to_le16(IEEE80211_FCTL_TODS):
682 		if (unlikely(iftype != NL80211_IFTYPE_AP &&
683 			     iftype != NL80211_IFTYPE_AP_VLAN &&
684 			     iftype != NL80211_IFTYPE_P2P_GO))
685 			return -1;
686 		break;
687 	case cpu_to_le16(IEEE80211_FCTL_TODS | IEEE80211_FCTL_FROMDS):
688 		if (unlikely(iftype != NL80211_IFTYPE_MESH_POINT &&
689 			     iftype != NL80211_IFTYPE_AP_VLAN &&
690 			     iftype != NL80211_IFTYPE_STATION))
691 			return -1;
692 		break;
693 	case cpu_to_le16(IEEE80211_FCTL_FROMDS):
694 		if ((iftype != NL80211_IFTYPE_STATION &&
695 		     iftype != NL80211_IFTYPE_P2P_CLIENT &&
696 		     iftype != NL80211_IFTYPE_MESH_POINT) ||
697 		    (is_multicast_ether_addr(tmp.h_dest) &&
698 		     ether_addr_equal(tmp.h_source, addr)))
699 			return -1;
700 		break;
701 	case cpu_to_le16(0):
702 		if (iftype != NL80211_IFTYPE_ADHOC &&
703 		    iftype != NL80211_IFTYPE_STATION &&
704 		    iftype != NL80211_IFTYPE_OCB &&
705 		    iftype != NL80211_IFTYPE_NAN_DATA)
706 			return -1;
707 		break;
708 	}
709 
710 	if (likely(!is_amsdu && iftype != NL80211_IFTYPE_MESH_POINT &&
711 		   skb_copy_bits(skb, hdrlen, &payload, sizeof(payload)) == 0 &&
712 		   ieee80211_get_8023_tunnel_proto(&payload, &tmp.h_proto))) {
713 		/* remove RFC1042 or Bridge-Tunnel encapsulation */
714 		hdrlen += ETH_ALEN + 2;
715 		skb_postpull_rcsum(skb, &payload, ETH_ALEN + 2);
716 	} else {
717 		tmp.h_proto = htons(skb->len - hdrlen);
718 	}
719 
720 	pskb_pull(skb, hdrlen);
721 
722 	if (!ehdr)
723 		ehdr = skb_push(skb, sizeof(struct ethhdr));
724 	memcpy(ehdr, &tmp, sizeof(tmp));
725 
726 	return 0;
727 }
728 EXPORT_SYMBOL(ieee80211_data_to_8023_exthdr);
729 
730 static void
731 __frame_add_frag(struct sk_buff *skb, struct page *page,
732 		 void *ptr, int len, int size)
733 {
734 	struct skb_shared_info *sh = skb_shinfo(skb);
735 	int page_offset;
736 
737 	get_page(page);
738 	page_offset = ptr - page_address(page);
739 	skb_add_rx_frag(skb, sh->nr_frags, page, page_offset, len, size);
740 }
741 
742 static void
743 __ieee80211_amsdu_copy_frag(struct sk_buff *skb, struct sk_buff *frame,
744 			    int offset, int len)
745 {
746 	struct skb_shared_info *sh = skb_shinfo(skb);
747 	const skb_frag_t *frag = &sh->frags[0];
748 	struct page *frag_page;
749 	void *frag_ptr;
750 	int frag_len, frag_size;
751 	int head_size = skb->len - skb->data_len;
752 	int cur_len;
753 
754 	frag_page = virt_to_head_page(skb->head);
755 	frag_ptr = skb->data;
756 	frag_size = head_size;
757 
758 	while (offset >= frag_size) {
759 		offset -= frag_size;
760 		frag_page = skb_frag_page(frag);
761 		frag_ptr = skb_frag_address(frag);
762 		frag_size = skb_frag_size(frag);
763 		frag++;
764 	}
765 
766 	frag_ptr += offset;
767 	frag_len = frag_size - offset;
768 
769 	cur_len = min(len, frag_len);
770 
771 	__frame_add_frag(frame, frag_page, frag_ptr, cur_len, frag_size);
772 	len -= cur_len;
773 
774 	while (len > 0) {
775 		frag_len = skb_frag_size(frag);
776 		cur_len = min(len, frag_len);
777 		__frame_add_frag(frame, skb_frag_page(frag),
778 				 skb_frag_address(frag), cur_len, frag_len);
779 		len -= cur_len;
780 		frag++;
781 	}
782 }
783 
784 static struct sk_buff *
785 __ieee80211_amsdu_copy(struct sk_buff *skb, unsigned int hlen,
786 		       int offset, int len, bool reuse_frag,
787 		       int min_len)
788 {
789 	struct sk_buff *frame;
790 	int cur_len = len;
791 
792 	if (skb->len - offset < len)
793 		return NULL;
794 
795 	/*
796 	 * When reusing fragments, copy some data to the head to simplify
797 	 * ethernet header handling and speed up protocol header processing
798 	 * in the stack later.
799 	 */
800 	if (reuse_frag)
801 		cur_len = min_t(int, len, min_len);
802 
803 	/*
804 	 * Allocate and reserve two bytes more for payload
805 	 * alignment since sizeof(struct ethhdr) is 14.
806 	 */
807 	frame = dev_alloc_skb(hlen + sizeof(struct ethhdr) + 2 + cur_len);
808 	if (!frame)
809 		return NULL;
810 
811 	frame->priority = skb->priority;
812 	skb_reserve(frame, hlen + sizeof(struct ethhdr) + 2);
813 	skb_copy_bits(skb, offset, skb_put(frame, cur_len), cur_len);
814 
815 	len -= cur_len;
816 	if (!len)
817 		return frame;
818 
819 	offset += cur_len;
820 	__ieee80211_amsdu_copy_frag(skb, frame, offset, len);
821 
822 	return frame;
823 }
824 
825 static u16
826 ieee80211_amsdu_subframe_length(void *field, u8 mesh_flags, u8 hdr_type)
827 {
828 	__le16 *field_le = field;
829 	__be16 *field_be = field;
830 	u16 len;
831 
832 	if (hdr_type >= 2)
833 		len = le16_to_cpu(*field_le);
834 	else
835 		len = be16_to_cpu(*field_be);
836 	if (hdr_type)
837 		len += __ieee80211_get_mesh_hdrlen(mesh_flags);
838 
839 	return len;
840 }
841 
842 bool ieee80211_is_valid_amsdu(struct sk_buff *skb, u8 mesh_hdr)
843 {
844 	int offset = 0, subframe_len, padding;
845 
846 	for (offset = 0; offset < skb->len; offset += subframe_len + padding) {
847 		int remaining = skb->len - offset;
848 		struct {
849 		    __be16 len;
850 		    u8 mesh_flags;
851 		} hdr;
852 		u16 len;
853 
854 		if (sizeof(hdr) > remaining)
855 			return false;
856 
857 		if (skb_copy_bits(skb, offset + 2 * ETH_ALEN, &hdr, sizeof(hdr)) < 0)
858 			return false;
859 
860 		len = ieee80211_amsdu_subframe_length(&hdr.len, hdr.mesh_flags,
861 						      mesh_hdr);
862 		subframe_len = sizeof(struct ethhdr) + len;
863 		padding = (4 - subframe_len) & 0x3;
864 
865 		if (subframe_len > remaining)
866 			return false;
867 	}
868 
869 	return true;
870 }
871 EXPORT_SYMBOL(ieee80211_is_valid_amsdu);
872 
873 
874 /*
875  * Detects if an MSDU frame was maliciously converted into an A-MSDU
876  * frame by an adversary. This is done by parsing the received frame
877  * as if it were a regular MSDU, even though the A-MSDU flag is set.
878  *
879  * For non-mesh interfaces, detection involves checking whether the
880  * payload, when interpreted as an MSDU, begins with a valid RFC1042
881  * header. This is done by comparing the A-MSDU subheader's destination
882  * address to the start of the RFC1042 header.
883  *
884  * For mesh interfaces, the MSDU includes a 6-byte Mesh Control field
885  * and an optional variable-length Mesh Address Extension field before
886  * the RFC1042 header. The position of the RFC1042 header must therefore
887  * be calculated based on the mesh header length.
888  *
889  * Since this function intentionally parses an A-MSDU frame as an MSDU,
890  * it only assumes that the A-MSDU subframe header is present, and
891  * beyond this it performs its own bounds checks under the assumption
892  * that the frame is instead parsed as a non-aggregated MSDU.
893  */
894 static bool
895 is_amsdu_aggregation_attack(struct ethhdr *eth, struct sk_buff *skb,
896 			    enum nl80211_iftype iftype)
897 {
898 	int offset;
899 
900 	/* Non-mesh case can be directly compared */
901 	if (iftype != NL80211_IFTYPE_MESH_POINT)
902 		return ether_addr_equal(eth->h_dest, rfc1042_header);
903 
904 	offset = __ieee80211_get_mesh_hdrlen(eth->h_dest[0]);
905 	if (offset == 6) {
906 		/* Mesh case with empty address extension field */
907 		return ether_addr_equal(eth->h_source, rfc1042_header);
908 	} else if (offset + ETH_ALEN <= skb->len) {
909 		/* Mesh case with non-empty address extension field */
910 		u8 temp[ETH_ALEN];
911 
912 		skb_copy_bits(skb, offset, temp, ETH_ALEN);
913 		return ether_addr_equal(temp, rfc1042_header);
914 	}
915 
916 	return false;
917 }
918 
919 void ieee80211_amsdu_to_8023s(struct sk_buff *skb, struct sk_buff_head *list,
920 			      const u8 *addr, enum nl80211_iftype iftype,
921 			      const unsigned int extra_headroom,
922 			      const u8 *check_da, const u8 *check_sa,
923 			      u8 mesh_control)
924 {
925 	unsigned int hlen = ALIGN(extra_headroom, 4);
926 	struct sk_buff *frame = NULL;
927 	int offset = 0;
928 	struct {
929 		struct ethhdr eth;
930 		uint8_t flags;
931 	} hdr;
932 	bool reuse_frag = skb->head_frag && !skb_has_frag_list(skb);
933 	bool reuse_skb = false;
934 	bool last = false;
935 	int copy_len = sizeof(hdr.eth);
936 
937 	if (iftype == NL80211_IFTYPE_MESH_POINT)
938 		copy_len = sizeof(hdr);
939 
940 	while (!last) {
941 		int remaining = skb->len - offset;
942 		unsigned int subframe_len;
943 		int len, mesh_len = 0;
944 		u8 padding;
945 
946 		if (copy_len > remaining)
947 			goto purge;
948 
949 		skb_copy_bits(skb, offset, &hdr, copy_len);
950 		if (iftype == NL80211_IFTYPE_MESH_POINT)
951 			mesh_len = __ieee80211_get_mesh_hdrlen(hdr.flags);
952 		len = ieee80211_amsdu_subframe_length(&hdr.eth.h_proto, hdr.flags,
953 						      mesh_control);
954 		subframe_len = sizeof(struct ethhdr) + len;
955 		padding = (4 - subframe_len) & 0x3;
956 
957 		/* the last MSDU has no padding */
958 		if (subframe_len > remaining)
959 			goto purge;
960 		/* mitigate A-MSDU aggregation injection attacks, to be
961 		 * checked when processing first subframe (offset == 0).
962 		 */
963 		if (offset == 0 && is_amsdu_aggregation_attack(&hdr.eth, skb, iftype))
964 			goto purge;
965 
966 		offset += sizeof(struct ethhdr);
967 		last = remaining <= subframe_len + padding;
968 
969 		/* FIXME: should we really accept multicast DA? */
970 		if ((check_da && !is_multicast_ether_addr(hdr.eth.h_dest) &&
971 		     !ether_addr_equal(check_da, hdr.eth.h_dest)) ||
972 		    (check_sa && !ether_addr_equal(check_sa, hdr.eth.h_source))) {
973 			offset += len + padding;
974 			continue;
975 		}
976 
977 		/* reuse skb for the last subframe */
978 		if (!skb_is_nonlinear(skb) && !reuse_frag && last) {
979 			skb_pull(skb, offset);
980 			frame = skb;
981 			reuse_skb = true;
982 		} else {
983 			frame = __ieee80211_amsdu_copy(skb, hlen, offset, len,
984 						       reuse_frag, 32 + mesh_len);
985 			if (!frame)
986 				goto purge;
987 
988 			offset += len + padding;
989 		}
990 
991 		skb_reset_network_header(frame);
992 		frame->dev = skb->dev;
993 		frame->priority = skb->priority;
994 
995 		if (likely(iftype != NL80211_IFTYPE_MESH_POINT &&
996 			   ieee80211_get_8023_tunnel_proto(frame->data, &hdr.eth.h_proto)))
997 			skb_pull(frame, ETH_ALEN + 2);
998 
999 		memcpy(skb_push(frame, sizeof(hdr.eth)), &hdr.eth, sizeof(hdr.eth));
1000 		__skb_queue_tail(list, frame);
1001 	}
1002 
1003 	if (!reuse_skb)
1004 		dev_kfree_skb(skb);
1005 
1006 	return;
1007 
1008  purge:
1009 	__skb_queue_purge(list);
1010 	dev_kfree_skb(skb);
1011 }
1012 EXPORT_SYMBOL(ieee80211_amsdu_to_8023s);
1013 
1014 /* Given a data frame determine the 802.1p/1d tag to use. */
1015 unsigned int cfg80211_classify8021d(struct sk_buff *skb,
1016 				    struct cfg80211_qos_map *qos_map)
1017 {
1018 	unsigned int dscp;
1019 	unsigned char vlan_priority;
1020 	unsigned int ret;
1021 
1022 	/* skb->priority values from 256->263 are magic values to
1023 	 * directly indicate a specific 802.1d priority.  This is used
1024 	 * to allow 802.1d priority to be passed directly in from VLAN
1025 	 * tags, etc.
1026 	 */
1027 	if (skb->priority >= 256 && skb->priority <= 263) {
1028 		ret = skb->priority - 256;
1029 		goto out;
1030 	}
1031 
1032 	if (skb_vlan_tag_present(skb)) {
1033 		vlan_priority = (skb_vlan_tag_get(skb) & VLAN_PRIO_MASK)
1034 			>> VLAN_PRIO_SHIFT;
1035 		if (vlan_priority > 0) {
1036 			ret = vlan_priority;
1037 			goto out;
1038 		}
1039 	}
1040 
1041 	switch (skb->protocol) {
1042 	case htons(ETH_P_IP): {
1043 		const struct iphdr *iph;
1044 		struct iphdr _iph;
1045 
1046 		iph = skb_header_pointer(skb, sizeof(struct ethhdr),
1047 					 sizeof(*iph), &_iph);
1048 		if (!iph)
1049 			return 0;
1050 
1051 		dscp = ipv4_get_dsfield(iph) & 0xfc;
1052 		break;
1053 	}
1054 	case htons(ETH_P_IPV6): {
1055 		const struct ipv6hdr *ip6h;
1056 		struct ipv6hdr _ip6h;
1057 
1058 		ip6h = skb_header_pointer(skb, sizeof(struct ethhdr),
1059 					  sizeof(*ip6h), &_ip6h);
1060 		if (!ip6h)
1061 			return 0;
1062 
1063 		dscp = ipv6_get_dsfield(ip6h) & 0xfc;
1064 		break;
1065 	}
1066 	case htons(ETH_P_MPLS_UC):
1067 	case htons(ETH_P_MPLS_MC): {
1068 		struct mpls_label mpls_tmp, *mpls;
1069 
1070 		mpls = skb_header_pointer(skb, sizeof(struct ethhdr),
1071 					  sizeof(*mpls), &mpls_tmp);
1072 		if (!mpls)
1073 			return 0;
1074 
1075 		ret = (ntohl(mpls->entry) & MPLS_LS_TC_MASK)
1076 			>> MPLS_LS_TC_SHIFT;
1077 		goto out;
1078 	}
1079 	case htons(ETH_P_80221):
1080 		/* 802.21 is always network control traffic */
1081 		return 7;
1082 	default:
1083 		return 0;
1084 	}
1085 
1086 	if (qos_map) {
1087 		unsigned int i, tmp_dscp = dscp >> 2;
1088 
1089 		for (i = 0; i < qos_map->num_des; i++) {
1090 			if (tmp_dscp == qos_map->dscp_exception[i].dscp) {
1091 				ret = qos_map->dscp_exception[i].up;
1092 				goto out;
1093 			}
1094 		}
1095 
1096 		for (i = 0; i < 8; i++) {
1097 			if (tmp_dscp >= qos_map->up[i].low &&
1098 			    tmp_dscp <= qos_map->up[i].high) {
1099 				ret = i;
1100 				goto out;
1101 			}
1102 		}
1103 	}
1104 
1105 	/* The default mapping as defined Section 2.3 in RFC8325: The three
1106 	 * Most Significant Bits (MSBs) of the DSCP are used as the
1107 	 * corresponding L2 markings.
1108 	 */
1109 	ret = dscp >> 5;
1110 
1111 	/* Handle specific DSCP values for which the default mapping (as
1112 	 * described above) doesn't adhere to the intended usage of the DSCP
1113 	 * value. See section 4 in RFC8325. Specifically, for the following
1114 	 * Diffserv Service Classes no update is needed:
1115 	 * - Standard: DF
1116 	 * - Low Priority Data: CS1
1117 	 * - Multimedia Conferencing: AF41, AF42, AF43
1118 	 * - Network Control Traffic: CS7
1119 	 * - Real-Time Interactive: CS4
1120 	 * - Signaling: CS5
1121 	 */
1122 	switch (dscp >> 2) {
1123 	case 10:
1124 	case 12:
1125 	case 14:
1126 		/* High throughput data: AF11, AF12, AF13 */
1127 		ret = 0;
1128 		break;
1129 	case 16:
1130 		/* Operations, Administration, and Maintenance and Provisioning:
1131 		 * CS2
1132 		 */
1133 		ret = 0;
1134 		break;
1135 	case 18:
1136 	case 20:
1137 	case 22:
1138 		/* Low latency data: AF21, AF22, AF23 */
1139 		ret = 3;
1140 		break;
1141 	case 24:
1142 		/* Broadcasting video: CS3 */
1143 		ret = 4;
1144 		break;
1145 	case 26:
1146 	case 28:
1147 	case 30:
1148 		/* Multimedia Streaming: AF31, AF32, AF33 */
1149 		ret = 4;
1150 		break;
1151 	case 44:
1152 		/* Voice Admit: VA */
1153 		ret = 6;
1154 		break;
1155 	case 46:
1156 		/* Telephony traffic: EF */
1157 		ret = 6;
1158 		break;
1159 	case 48:
1160 		/* Network Control Traffic: CS6 */
1161 		ret = 7;
1162 		break;
1163 	}
1164 out:
1165 	return array_index_nospec(ret, IEEE80211_NUM_TIDS);
1166 }
1167 EXPORT_SYMBOL(cfg80211_classify8021d);
1168 
1169 const struct element *ieee80211_bss_get_elem(struct cfg80211_bss *bss, u8 id)
1170 {
1171 	const struct cfg80211_bss_ies *ies;
1172 
1173 	ies = rcu_dereference(bss->ies);
1174 	if (!ies)
1175 		return NULL;
1176 
1177 	return cfg80211_find_elem(id, ies->data, ies->len);
1178 }
1179 EXPORT_SYMBOL(ieee80211_bss_get_elem);
1180 
1181 void cfg80211_upload_connect_keys(struct wireless_dev *wdev)
1182 {
1183 	struct cfg80211_registered_device *rdev = wiphy_to_rdev(wdev->wiphy);
1184 	struct net_device *dev = wdev->netdev;
1185 	int i;
1186 
1187 	if (!wdev->connect_keys)
1188 		return;
1189 
1190 	for (i = 0; i < 4; i++) {
1191 		if (!wdev->connect_keys->params[i].cipher)
1192 			continue;
1193 		if (rdev_add_key(rdev, wdev, -1, i, false, NULL,
1194 				 &wdev->connect_keys->params[i])) {
1195 			netdev_err(dev, "failed to set key %d\n", i);
1196 			continue;
1197 		}
1198 		if (wdev->connect_keys->def == i &&
1199 		    rdev_set_default_key(rdev, dev, -1, i, true, true)) {
1200 			netdev_err(dev, "failed to set defkey %d\n", i);
1201 			continue;
1202 		}
1203 	}
1204 
1205 	kfree_sensitive(wdev->connect_keys);
1206 	wdev->connect_keys = NULL;
1207 }
1208 
1209 void cfg80211_process_wdev_events(struct wireless_dev *wdev)
1210 {
1211 	struct cfg80211_event *ev;
1212 	unsigned long flags;
1213 
1214 	spin_lock_irqsave(&wdev->event_lock, flags);
1215 	while (!list_empty(&wdev->event_list)) {
1216 		ev = list_first_entry(&wdev->event_list,
1217 				      struct cfg80211_event, list);
1218 		list_del(&ev->list);
1219 		spin_unlock_irqrestore(&wdev->event_lock, flags);
1220 
1221 		switch (ev->type) {
1222 		case EVENT_CONNECT_RESULT:
1223 			__cfg80211_connect_result(
1224 				wdev->netdev,
1225 				&ev->cr,
1226 				ev->cr.status == WLAN_STATUS_SUCCESS);
1227 			break;
1228 		case EVENT_ROAMED:
1229 			__cfg80211_roamed(wdev, &ev->rm);
1230 			break;
1231 		case EVENT_DISCONNECTED:
1232 			__cfg80211_disconnected(wdev->netdev,
1233 						ev->dc.ie, ev->dc.ie_len,
1234 						ev->dc.reason,
1235 						!ev->dc.locally_generated);
1236 			break;
1237 		case EVENT_IBSS_JOINED:
1238 			__cfg80211_ibss_joined(wdev->netdev, ev->ij.bss);
1239 			break;
1240 		case EVENT_STOPPED:
1241 			/*
1242 			 * for NAN interfaces cfg80211_leave must be called but
1243 			 * locking here doesn't allow this.
1244 			 */
1245 			if (WARN_ON(wdev->iftype == NL80211_IFTYPE_NAN))
1246 				break;
1247 
1248 			cfg80211_leave_locked(wiphy_to_rdev(wdev->wiphy), wdev,
1249 					      ev->link_id);
1250 			break;
1251 		case EVENT_PORT_AUTHORIZED:
1252 			__cfg80211_port_authorized(wdev, ev->pa.peer_addr,
1253 						   ev->pa.td_bitmap,
1254 						   ev->pa.td_bitmap_len);
1255 			break;
1256 		}
1257 
1258 		kfree(ev);
1259 
1260 		spin_lock_irqsave(&wdev->event_lock, flags);
1261 	}
1262 	spin_unlock_irqrestore(&wdev->event_lock, flags);
1263 }
1264 
1265 void cfg80211_process_rdev_events(struct cfg80211_registered_device *rdev)
1266 {
1267 	struct wireless_dev *wdev;
1268 
1269 	lockdep_assert_held(&rdev->wiphy.mtx);
1270 
1271 	list_for_each_entry(wdev, &rdev->wiphy.wdev_list, list)
1272 		cfg80211_process_wdev_events(wdev);
1273 }
1274 
1275 int cfg80211_change_iface(struct cfg80211_registered_device *rdev,
1276 			  struct net_device *dev, enum nl80211_iftype ntype,
1277 			  struct vif_params *params)
1278 {
1279 	int err;
1280 	enum nl80211_iftype otype = dev->ieee80211_ptr->iftype;
1281 
1282 	lockdep_assert_held(&rdev->wiphy.mtx);
1283 
1284 	/* don't support changing VLANs, you just re-create them */
1285 	if (otype == NL80211_IFTYPE_AP_VLAN)
1286 		return -EOPNOTSUPP;
1287 
1288 	/*
1289 	 * for NAN interfaces cfg80211_leave must be called for leaving,
1290 	 * but locking here doesn't allow this.
1291 	 */
1292 	if (otype == NL80211_IFTYPE_NAN)
1293 		return -EOPNOTSUPP;
1294 
1295 	/* cannot change into P2P device or NAN */
1296 	if (ntype == NL80211_IFTYPE_P2P_DEVICE ||
1297 	    ntype == NL80211_IFTYPE_NAN ||
1298 	    ntype == NL80211_IFTYPE_PD)
1299 		return -EOPNOTSUPP;
1300 
1301 	if (!rdev->ops->change_virtual_intf ||
1302 	    !(rdev->wiphy.interface_modes & (1 << ntype)))
1303 		return -EOPNOTSUPP;
1304 
1305 	if (ntype != otype) {
1306 		/* if it's part of a bridge, reject changing type to station/ibss */
1307 		if (netif_is_bridge_port(dev) &&
1308 		    (ntype == NL80211_IFTYPE_ADHOC ||
1309 		     ntype == NL80211_IFTYPE_STATION ||
1310 		     ntype == NL80211_IFTYPE_P2P_CLIENT))
1311 			return -EBUSY;
1312 
1313 		dev->ieee80211_ptr->use_4addr = false;
1314 		rdev_set_qos_map(rdev, dev, NULL);
1315 
1316 		cfg80211_leave_locked(rdev, dev->ieee80211_ptr, -1);
1317 
1318 		cfg80211_process_rdev_events(rdev);
1319 		cfg80211_mlme_purge_registrations(dev->ieee80211_ptr);
1320 
1321 		memset(&dev->ieee80211_ptr->u, 0,
1322 		       sizeof(dev->ieee80211_ptr->u));
1323 		memset(&dev->ieee80211_ptr->links, 0,
1324 		       sizeof(dev->ieee80211_ptr->links));
1325 	}
1326 
1327 	err = rdev_change_virtual_intf(rdev, dev, ntype, params);
1328 
1329 	WARN_ON(!err && dev->ieee80211_ptr->iftype != ntype);
1330 
1331 	if (!err && params && params->use_4addr != -1)
1332 		dev->ieee80211_ptr->use_4addr = params->use_4addr;
1333 
1334 	if (!err) {
1335 		dev->priv_flags &= ~IFF_DONT_BRIDGE;
1336 		switch (ntype) {
1337 		case NL80211_IFTYPE_STATION:
1338 			if (dev->ieee80211_ptr->use_4addr)
1339 				break;
1340 			fallthrough;
1341 		case NL80211_IFTYPE_OCB:
1342 		case NL80211_IFTYPE_P2P_CLIENT:
1343 		case NL80211_IFTYPE_ADHOC:
1344 		case NL80211_IFTYPE_NAN_DATA:
1345 			dev->priv_flags |= IFF_DONT_BRIDGE;
1346 			break;
1347 		case NL80211_IFTYPE_P2P_GO:
1348 		case NL80211_IFTYPE_AP:
1349 		case NL80211_IFTYPE_AP_VLAN:
1350 		case NL80211_IFTYPE_MESH_POINT:
1351 			/* bridging OK */
1352 			break;
1353 		case NL80211_IFTYPE_MONITOR:
1354 			/* monitor can't bridge anyway */
1355 			break;
1356 		case NL80211_IFTYPE_UNSPECIFIED:
1357 		case NUM_NL80211_IFTYPES:
1358 			/* not happening */
1359 			break;
1360 		case NL80211_IFTYPE_P2P_DEVICE:
1361 		case NL80211_IFTYPE_WDS:
1362 		case NL80211_IFTYPE_NAN:
1363 		case NL80211_IFTYPE_PD:
1364 			WARN_ON(1);
1365 			break;
1366 		}
1367 	}
1368 
1369 	if (!err && ntype != otype && netif_running(dev)) {
1370 		cfg80211_update_iface_num(rdev, ntype, 1);
1371 		cfg80211_update_iface_num(rdev, otype, -1);
1372 	}
1373 
1374 	return err;
1375 }
1376 
1377 static u32 cfg80211_calculate_bitrate_ht(struct rate_info *rate)
1378 {
1379 	int modulation, streams, bitrate;
1380 
1381 	/* the formula below does only work for MCS values smaller than 32 */
1382 	if (WARN_ON_ONCE(rate->mcs >= 32))
1383 		return 0;
1384 
1385 	modulation = rate->mcs & 7;
1386 	streams = (rate->mcs >> 3) + 1;
1387 
1388 	bitrate = (rate->bw == RATE_INFO_BW_40) ? 13500000 : 6500000;
1389 
1390 	if (modulation < 4)
1391 		bitrate *= (modulation + 1);
1392 	else if (modulation == 4)
1393 		bitrate *= (modulation + 2);
1394 	else
1395 		bitrate *= (modulation + 3);
1396 
1397 	bitrate *= streams;
1398 
1399 	if (rate->flags & RATE_INFO_FLAGS_SHORT_GI)
1400 		bitrate = (bitrate / 9) * 10;
1401 
1402 	/* do NOT round down here */
1403 	return (bitrate + 50000) / 100000;
1404 }
1405 
1406 static u32 cfg80211_calculate_bitrate_dmg(struct rate_info *rate)
1407 {
1408 	static const u32 __mcs2bitrate[] = {
1409 		/* control PHY */
1410 		[0] =   275,
1411 		/* SC PHY */
1412 		[1] =  3850,
1413 		[2] =  7700,
1414 		[3] =  9625,
1415 		[4] = 11550,
1416 		[5] = 12512, /* 1251.25 mbps */
1417 		[6] = 15400,
1418 		[7] = 19250,
1419 		[8] = 23100,
1420 		[9] = 25025,
1421 		[10] = 30800,
1422 		[11] = 38500,
1423 		[12] = 46200,
1424 		/* OFDM PHY */
1425 		[13] =  6930,
1426 		[14] =  8662, /* 866.25 mbps */
1427 		[15] = 13860,
1428 		[16] = 17325,
1429 		[17] = 20790,
1430 		[18] = 27720,
1431 		[19] = 34650,
1432 		[20] = 41580,
1433 		[21] = 45045,
1434 		[22] = 51975,
1435 		[23] = 62370,
1436 		[24] = 67568, /* 6756.75 mbps */
1437 		/* LP-SC PHY */
1438 		[25] =  6260,
1439 		[26] =  8340,
1440 		[27] = 11120,
1441 		[28] = 12510,
1442 		[29] = 16680,
1443 		[30] = 22240,
1444 		[31] = 25030,
1445 	};
1446 
1447 	if (WARN_ON_ONCE(rate->mcs >= ARRAY_SIZE(__mcs2bitrate)))
1448 		return 0;
1449 
1450 	return __mcs2bitrate[rate->mcs];
1451 }
1452 
1453 static u32 cfg80211_calculate_bitrate_extended_sc_dmg(struct rate_info *rate)
1454 {
1455 	static const u32 __mcs2bitrate[] = {
1456 		[6 - 6] = 26950, /* MCS 9.1 : 2695.0 mbps */
1457 		[7 - 6] = 50050, /* MCS 12.1 */
1458 		[8 - 6] = 53900,
1459 		[9 - 6] = 57750,
1460 		[10 - 6] = 63900,
1461 		[11 - 6] = 75075,
1462 		[12 - 6] = 80850,
1463 	};
1464 
1465 	/* Extended SC MCS not defined for base MCS below 6 or above 12 */
1466 	if (WARN_ON_ONCE(rate->mcs < 6 || rate->mcs > 12))
1467 		return 0;
1468 
1469 	return __mcs2bitrate[rate->mcs - 6];
1470 }
1471 
1472 static u32 cfg80211_calculate_bitrate_edmg(struct rate_info *rate)
1473 {
1474 	static const u32 __mcs2bitrate[] = {
1475 		/* control PHY */
1476 		[0] =   275,
1477 		/* SC PHY */
1478 		[1] =  3850,
1479 		[2] =  7700,
1480 		[3] =  9625,
1481 		[4] = 11550,
1482 		[5] = 12512, /* 1251.25 mbps */
1483 		[6] = 13475,
1484 		[7] = 15400,
1485 		[8] = 19250,
1486 		[9] = 23100,
1487 		[10] = 25025,
1488 		[11] = 26950,
1489 		[12] = 30800,
1490 		[13] = 38500,
1491 		[14] = 46200,
1492 		[15] = 50050,
1493 		[16] = 53900,
1494 		[17] = 57750,
1495 		[18] = 69300,
1496 		[19] = 75075,
1497 		[20] = 80850,
1498 	};
1499 
1500 	if (WARN_ON_ONCE(rate->mcs >= ARRAY_SIZE(__mcs2bitrate)))
1501 		return 0;
1502 
1503 	return __mcs2bitrate[rate->mcs] * rate->n_bonded_ch;
1504 }
1505 
1506 static u32 cfg80211_calculate_bitrate_vht(struct rate_info *rate)
1507 {
1508 	static const u32 base[4][12] = {
1509 		{   6500000,
1510 		   13000000,
1511 		   19500000,
1512 		   26000000,
1513 		   39000000,
1514 		   52000000,
1515 		   58500000,
1516 		   65000000,
1517 		   78000000,
1518 		/* not in the spec, but some devices use this: */
1519 		   86700000,
1520 		   97500000,
1521 		  108300000,
1522 		},
1523 		{  13500000,
1524 		   27000000,
1525 		   40500000,
1526 		   54000000,
1527 		   81000000,
1528 		  108000000,
1529 		  121500000,
1530 		  135000000,
1531 		  162000000,
1532 		  180000000,
1533 		  202500000,
1534 		  225000000,
1535 		},
1536 		{  29300000,
1537 		   58500000,
1538 		   87800000,
1539 		  117000000,
1540 		  175500000,
1541 		  234000000,
1542 		  263300000,
1543 		  292500000,
1544 		  351000000,
1545 		  390000000,
1546 		  438800000,
1547 		  487500000,
1548 		},
1549 		{  58500000,
1550 		  117000000,
1551 		  175500000,
1552 		  234000000,
1553 		  351000000,
1554 		  468000000,
1555 		  526500000,
1556 		  585000000,
1557 		  702000000,
1558 		  780000000,
1559 		  877500000,
1560 		  975000000,
1561 		},
1562 	};
1563 	u32 bitrate;
1564 	int idx;
1565 
1566 	if (rate->mcs > 11)
1567 		goto warn;
1568 
1569 	switch (rate->bw) {
1570 	case RATE_INFO_BW_160:
1571 		idx = 3;
1572 		break;
1573 	case RATE_INFO_BW_80:
1574 		idx = 2;
1575 		break;
1576 	case RATE_INFO_BW_40:
1577 		idx = 1;
1578 		break;
1579 	case RATE_INFO_BW_5:
1580 	case RATE_INFO_BW_10:
1581 	default:
1582 		goto warn;
1583 	case RATE_INFO_BW_20:
1584 		idx = 0;
1585 	}
1586 
1587 	bitrate = base[idx][rate->mcs];
1588 	bitrate *= rate->nss;
1589 
1590 	if (rate->flags & RATE_INFO_FLAGS_SHORT_GI)
1591 		bitrate = (bitrate / 9) * 10;
1592 
1593 	/* do NOT round down here */
1594 	return (bitrate + 50000) / 100000;
1595  warn:
1596 	WARN_ONCE(1, "invalid rate bw=%d, mcs=%d, nss=%d\n",
1597 		  rate->bw, rate->mcs, rate->nss);
1598 	return 0;
1599 }
1600 
1601 static u32 cfg80211_calculate_bitrate_he(struct rate_info *rate)
1602 {
1603 #define SCALE 6144
1604 	u32 mcs_divisors[14] = {
1605 		102399, /* 16.666666... */
1606 		 51201, /*  8.333333... */
1607 		 34134, /*  5.555555... */
1608 		 25599, /*  4.166666... */
1609 		 17067, /*  2.777777... */
1610 		 12801, /*  2.083333... */
1611 		 11377, /*  1.851725... */
1612 		 10239, /*  1.666666... */
1613 		  8532, /*  1.388888... */
1614 		  7680, /*  1.250000... */
1615 		  6828, /*  1.111111... */
1616 		  6144, /*  1.000000... */
1617 		  5690, /*  0.926106... */
1618 		  5120, /*  0.833333... */
1619 	};
1620 	u32 rates_160M[3] = { 960777777, 907400000, 816666666 };
1621 	u32 rates_996[3] =  { 480388888, 453700000, 408333333 };
1622 	u32 rates_484[3] =  { 229411111, 216666666, 195000000 };
1623 	u32 rates_242[3] =  { 114711111, 108333333,  97500000 };
1624 	u32 rates_106[3] =  {  40000000,  37777777,  34000000 };
1625 	u32 rates_52[3]  =  {  18820000,  17777777,  16000000 };
1626 	u32 rates_26[3]  =  {   9411111,   8888888,   8000000 };
1627 	u64 tmp;
1628 	u32 result;
1629 
1630 	if (WARN_ON_ONCE(rate->mcs > 13))
1631 		return 0;
1632 
1633 	if (WARN_ON_ONCE(rate->he_gi > NL80211_RATE_INFO_HE_GI_3_2))
1634 		return 0;
1635 	if (WARN_ON_ONCE(rate->he_ru_alloc >
1636 			 NL80211_RATE_INFO_HE_RU_ALLOC_2x996))
1637 		return 0;
1638 	if (WARN_ON_ONCE(rate->nss < 1 || rate->nss > 8))
1639 		return 0;
1640 
1641 	if (rate->bw == RATE_INFO_BW_160 ||
1642 	    (rate->bw == RATE_INFO_BW_HE_RU &&
1643 	     rate->he_ru_alloc == NL80211_RATE_INFO_HE_RU_ALLOC_2x996))
1644 		result = rates_160M[rate->he_gi];
1645 	else if (rate->bw == RATE_INFO_BW_80 ||
1646 		 (rate->bw == RATE_INFO_BW_HE_RU &&
1647 		  rate->he_ru_alloc == NL80211_RATE_INFO_HE_RU_ALLOC_996))
1648 		result = rates_996[rate->he_gi];
1649 	else if (rate->bw == RATE_INFO_BW_40 ||
1650 		 (rate->bw == RATE_INFO_BW_HE_RU &&
1651 		  rate->he_ru_alloc == NL80211_RATE_INFO_HE_RU_ALLOC_484))
1652 		result = rates_484[rate->he_gi];
1653 	else if (rate->bw == RATE_INFO_BW_20 ||
1654 		 (rate->bw == RATE_INFO_BW_HE_RU &&
1655 		  rate->he_ru_alloc == NL80211_RATE_INFO_HE_RU_ALLOC_242))
1656 		result = rates_242[rate->he_gi];
1657 	else if (rate->bw == RATE_INFO_BW_HE_RU &&
1658 		 rate->he_ru_alloc == NL80211_RATE_INFO_HE_RU_ALLOC_106)
1659 		result = rates_106[rate->he_gi];
1660 	else if (rate->bw == RATE_INFO_BW_HE_RU &&
1661 		 rate->he_ru_alloc == NL80211_RATE_INFO_HE_RU_ALLOC_52)
1662 		result = rates_52[rate->he_gi];
1663 	else if (rate->bw == RATE_INFO_BW_HE_RU &&
1664 		 rate->he_ru_alloc == NL80211_RATE_INFO_HE_RU_ALLOC_26)
1665 		result = rates_26[rate->he_gi];
1666 	else {
1667 		WARN(1, "invalid HE MCS: bw:%d, ru:%d\n",
1668 		     rate->bw, rate->he_ru_alloc);
1669 		return 0;
1670 	}
1671 
1672 	/* now scale to the appropriate MCS */
1673 	tmp = result;
1674 	tmp *= SCALE;
1675 	do_div(tmp, mcs_divisors[rate->mcs]);
1676 
1677 	/* and take NSS, DCM into account */
1678 	tmp *= rate->nss;
1679 	do_div(tmp, 8);
1680 	if (rate->he_dcm)
1681 		do_div(tmp, 2);
1682 
1683 	result = tmp;
1684 
1685 	return result / 10000;
1686 }
1687 
1688 static u32 _cfg80211_calculate_bitrate_eht_uhr(struct rate_info *rate)
1689 {
1690 #define SCALE 6144
1691 	static const u32 mcs_divisors[] = {
1692 		[ 0] = 102399, /* 16.666666... */
1693 		[ 1] =  51201, /*  8.333333... */
1694 		[ 2] =  34134, /*  5.555555... */
1695 		[ 3] =  25599, /*  4.166666... */
1696 		[ 4] =  17067, /*  2.777777... */
1697 		[ 5] =  12801, /*  2.083333... */
1698 		[ 6] =  11377, /*  1.851725... */
1699 		[ 7] =  10239, /*  1.666666... */
1700 		[ 8] =   8532, /*  1.388888... */
1701 		[ 9] =   7680, /*  1.250000... */
1702 		[10] =   6828, /*  1.111111... */
1703 		[11] =   6144, /*  1.000000... */
1704 		[12] =   5690, /*  0.926106... */
1705 		[13] =   5120, /*  0.833333... */
1706 		[14] = 409600, /* 66.666666... */
1707 		[15] = 204800, /* 33.333333... */
1708 		[17] =  38400, /*  6.250180... */
1709 		[19] =  19200, /*  3.125090... */
1710 		[20] =  15360, /*  2.500000... */
1711 		[23] =   9600, /*  1.562545... */
1712 	};
1713 	static const u32 rates_996[3] =  { 480388888, 453700000, 408333333 };
1714 	static const u32 rates_484[3] =  { 229411111, 216666666, 195000000 };
1715 	static const u32 rates_242[3] =  { 114711111, 108333333,  97500000 };
1716 	static const u32 rates_106[3] =  {  40000000,  37777777,  34000000 };
1717 	static const u32 rates_52[3]  =  {  18820000,  17777777,  16000000 };
1718 	static const u32 rates_26[3]  =  {   9411111,   8888888,   8000000 };
1719 	u64 tmp;
1720 	u32 result;
1721 
1722 	if (WARN_ON_ONCE(rate->eht_gi > NL80211_RATE_INFO_EHT_GI_3_2))
1723 		return 0;
1724 	if (WARN_ON_ONCE(rate->eht_ru_alloc >
1725 			 NL80211_RATE_INFO_EHT_RU_ALLOC_4x996))
1726 		return 0;
1727 	if (WARN_ON_ONCE(rate->nss < 1 || rate->nss > 8))
1728 		return 0;
1729 
1730 	/* Bandwidth checks for MCS 14 */
1731 	if (rate->mcs == 14) {
1732 		if ((rate->bw != RATE_INFO_BW_EHT_RU &&
1733 		     rate->bw != RATE_INFO_BW_80 &&
1734 		     rate->bw != RATE_INFO_BW_160 &&
1735 		     rate->bw != RATE_INFO_BW_320) ||
1736 		    (rate->bw == RATE_INFO_BW_EHT_RU &&
1737 		     rate->eht_ru_alloc != NL80211_RATE_INFO_EHT_RU_ALLOC_996 &&
1738 		     rate->eht_ru_alloc != NL80211_RATE_INFO_EHT_RU_ALLOC_2x996 &&
1739 		     rate->eht_ru_alloc != NL80211_RATE_INFO_EHT_RU_ALLOC_4x996)) {
1740 			WARN(1, "invalid EHT BW for MCS 14: bw:%d, ru:%d\n",
1741 			     rate->bw, rate->eht_ru_alloc);
1742 			return 0;
1743 		}
1744 	}
1745 
1746 	if (rate->bw == RATE_INFO_BW_320 ||
1747 	    (rate->bw == RATE_INFO_BW_EHT_RU &&
1748 	     rate->eht_ru_alloc == NL80211_RATE_INFO_EHT_RU_ALLOC_4x996))
1749 		result = 4 * rates_996[rate->eht_gi];
1750 	else if (rate->bw == RATE_INFO_BW_EHT_RU &&
1751 		 rate->eht_ru_alloc == NL80211_RATE_INFO_EHT_RU_ALLOC_3x996P484)
1752 		result = 3 * rates_996[rate->eht_gi] + rates_484[rate->eht_gi];
1753 	else if (rate->bw == RATE_INFO_BW_EHT_RU &&
1754 		 rate->eht_ru_alloc == NL80211_RATE_INFO_EHT_RU_ALLOC_3x996)
1755 		result = 3 * rates_996[rate->eht_gi];
1756 	else if (rate->bw == RATE_INFO_BW_EHT_RU &&
1757 		 rate->eht_ru_alloc == NL80211_RATE_INFO_EHT_RU_ALLOC_2x996P484)
1758 		result = 2 * rates_996[rate->eht_gi] + rates_484[rate->eht_gi];
1759 	else if (rate->bw == RATE_INFO_BW_160 ||
1760 		 (rate->bw == RATE_INFO_BW_EHT_RU &&
1761 		  rate->eht_ru_alloc == NL80211_RATE_INFO_EHT_RU_ALLOC_2x996))
1762 		result = 2 * rates_996[rate->eht_gi];
1763 	else if (rate->bw == RATE_INFO_BW_EHT_RU &&
1764 		 rate->eht_ru_alloc ==
1765 		 NL80211_RATE_INFO_EHT_RU_ALLOC_996P484P242)
1766 		result = rates_996[rate->eht_gi] + rates_484[rate->eht_gi]
1767 			 + rates_242[rate->eht_gi];
1768 	else if (rate->bw == RATE_INFO_BW_EHT_RU &&
1769 		 rate->eht_ru_alloc == NL80211_RATE_INFO_EHT_RU_ALLOC_996P484)
1770 		result = rates_996[rate->eht_gi] + rates_484[rate->eht_gi];
1771 	else if (rate->bw == RATE_INFO_BW_80 ||
1772 		 (rate->bw == RATE_INFO_BW_EHT_RU &&
1773 		  rate->eht_ru_alloc == NL80211_RATE_INFO_EHT_RU_ALLOC_996))
1774 		result = rates_996[rate->eht_gi];
1775 	else if (rate->bw == RATE_INFO_BW_EHT_RU &&
1776 		 rate->eht_ru_alloc == NL80211_RATE_INFO_EHT_RU_ALLOC_484P242)
1777 		result = rates_484[rate->eht_gi] + rates_242[rate->eht_gi];
1778 	else if (rate->bw == RATE_INFO_BW_40 ||
1779 		 (rate->bw == RATE_INFO_BW_EHT_RU &&
1780 		  rate->eht_ru_alloc == NL80211_RATE_INFO_EHT_RU_ALLOC_484))
1781 		result = rates_484[rate->eht_gi];
1782 	else if (rate->bw == RATE_INFO_BW_20 ||
1783 		 (rate->bw == RATE_INFO_BW_EHT_RU &&
1784 		  rate->eht_ru_alloc == NL80211_RATE_INFO_EHT_RU_ALLOC_242))
1785 		result = rates_242[rate->eht_gi];
1786 	else if (rate->bw == RATE_INFO_BW_EHT_RU &&
1787 		 rate->eht_ru_alloc == NL80211_RATE_INFO_EHT_RU_ALLOC_106P26)
1788 		result = rates_106[rate->eht_gi] + rates_26[rate->eht_gi];
1789 	else if (rate->bw == RATE_INFO_BW_EHT_RU &&
1790 		 rate->eht_ru_alloc == NL80211_RATE_INFO_EHT_RU_ALLOC_106)
1791 		result = rates_106[rate->eht_gi];
1792 	else if (rate->bw == RATE_INFO_BW_EHT_RU &&
1793 		 rate->eht_ru_alloc == NL80211_RATE_INFO_EHT_RU_ALLOC_52P26)
1794 		result = rates_52[rate->eht_gi] + rates_26[rate->eht_gi];
1795 	else if (rate->bw == RATE_INFO_BW_EHT_RU &&
1796 		 rate->eht_ru_alloc == NL80211_RATE_INFO_EHT_RU_ALLOC_52)
1797 		result = rates_52[rate->eht_gi];
1798 	else if (rate->bw == RATE_INFO_BW_EHT_RU &&
1799 		 rate->eht_ru_alloc == NL80211_RATE_INFO_EHT_RU_ALLOC_26)
1800 		result = rates_26[rate->eht_gi];
1801 	else {
1802 		WARN(1, "invalid EHT or UHR MCS: bw:%d, ru:%d\n",
1803 		     rate->bw, rate->eht_ru_alloc);
1804 		return 0;
1805 	}
1806 
1807 	/* now scale to the appropriate MCS */
1808 	tmp = result;
1809 	tmp *= SCALE;
1810 	do_div(tmp, mcs_divisors[rate->mcs]);
1811 
1812 	/* and take NSS */
1813 	tmp *= rate->nss;
1814 	do_div(tmp, 8);
1815 
1816 	/* and handle interference mitigation - 0.9x */
1817 	if (rate->flags & RATE_INFO_FLAGS_UHR_IM) {
1818 		if (WARN(rate->nss != 1 || rate->mcs == 15,
1819 			 "invalid NSS or MCS for UHR IM\n"))
1820 			return 0;
1821 		tmp *= 9000;
1822 		do_div(tmp, 10000);
1823 	}
1824 
1825 	result = tmp;
1826 
1827 	return result / 10000;
1828 }
1829 
1830 static u32 cfg80211_calculate_bitrate_eht(struct rate_info *rate)
1831 {
1832 	if (WARN_ONCE(rate->mcs > 15, "bad EHT MCS %d\n", rate->mcs))
1833 		return 0;
1834 
1835 	if (WARN_ONCE(rate->flags & (RATE_INFO_FLAGS_UHR_ELR_MCS |
1836 				     RATE_INFO_FLAGS_UHR_IM),
1837 		      "bad EHT MCS flags 0x%x\n", rate->flags))
1838 		return 0;
1839 
1840 	return _cfg80211_calculate_bitrate_eht_uhr(rate);
1841 }
1842 
1843 static u32 cfg80211_calculate_bitrate_uhr(struct rate_info *rate)
1844 {
1845 	if (rate->flags & RATE_INFO_FLAGS_UHR_ELR_MCS) {
1846 		WARN_ONCE(rate->eht_gi != NL80211_RATE_INFO_EHT_GI_1_6,
1847 			  "bad UHR ELR guard interval %d\n",
1848 			  rate->eht_gi);
1849 		WARN_ONCE(rate->mcs > 1, "bad UHR ELR MCS %d\n", rate->mcs);
1850 		WARN_ONCE(rate->nss != 1, "bad UHR ELR NSS %d\n", rate->nss);
1851 		WARN_ONCE(rate->bw != RATE_INFO_BW_20,
1852 			  "bad UHR ELR bandwidth %d\n",
1853 			  rate->bw);
1854 		WARN_ONCE(rate->flags & RATE_INFO_FLAGS_UHR_IM,
1855 			  "bad UHR MCS flags 0x%x\n", rate->flags);
1856 		if (rate->mcs == 0)
1857 			return 17;
1858 		return 33;
1859 	}
1860 
1861 	switch (rate->mcs) {
1862 	case 0 ... 15:
1863 	case 17:
1864 	case 19:
1865 	case 20:
1866 	case 23:
1867 		return _cfg80211_calculate_bitrate_eht_uhr(rate);
1868 	}
1869 
1870 	WARN_ONCE(1, "bad UHR MCS %d\n", rate->mcs);
1871 	return 0;
1872 }
1873 
1874 static u32 cfg80211_calculate_bitrate_s1g(struct rate_info *rate)
1875 {
1876 	/* For 1, 2, 4, 8 and 16 MHz channels */
1877 	static const u32 base[5][11] = {
1878 		{  300000,
1879 		   600000,
1880 		   900000,
1881 		  1200000,
1882 		  1800000,
1883 		  2400000,
1884 		  2700000,
1885 		  3000000,
1886 		  3600000,
1887 		  4000000,
1888 		  /* MCS 10 supported in 1 MHz only */
1889 		  150000,
1890 		},
1891 		{  650000,
1892 		  1300000,
1893 		  1950000,
1894 		  2600000,
1895 		  3900000,
1896 		  5200000,
1897 		  5850000,
1898 		  6500000,
1899 		  7800000,
1900 		  /* MCS 9 not valid */
1901 		},
1902 		{  1350000,
1903 		   2700000,
1904 		   4050000,
1905 		   5400000,
1906 		   8100000,
1907 		  10800000,
1908 		  12150000,
1909 		  13500000,
1910 		  16200000,
1911 		  18000000,
1912 		},
1913 		{  2925000,
1914 		   5850000,
1915 		   8775000,
1916 		  11700000,
1917 		  17550000,
1918 		  23400000,
1919 		  26325000,
1920 		  29250000,
1921 		  35100000,
1922 		  39000000,
1923 		},
1924 		{  8580000,
1925 		  11700000,
1926 		  17550000,
1927 		  23400000,
1928 		  35100000,
1929 		  46800000,
1930 		  52650000,
1931 		  58500000,
1932 		  70200000,
1933 		  78000000,
1934 		},
1935 	};
1936 	u32 bitrate;
1937 	/* default is 1 MHz index */
1938 	int idx = 0;
1939 
1940 	if (rate->mcs >= 11)
1941 		goto warn;
1942 
1943 	switch (rate->bw) {
1944 	case RATE_INFO_BW_16:
1945 		idx = 4;
1946 		break;
1947 	case RATE_INFO_BW_8:
1948 		idx = 3;
1949 		break;
1950 	case RATE_INFO_BW_4:
1951 		idx = 2;
1952 		break;
1953 	case RATE_INFO_BW_2:
1954 		idx = 1;
1955 		break;
1956 	case RATE_INFO_BW_1:
1957 		idx = 0;
1958 		break;
1959 	case RATE_INFO_BW_5:
1960 	case RATE_INFO_BW_10:
1961 	case RATE_INFO_BW_20:
1962 	case RATE_INFO_BW_40:
1963 	case RATE_INFO_BW_80:
1964 	case RATE_INFO_BW_160:
1965 	default:
1966 		goto warn;
1967 	}
1968 
1969 	bitrate = base[idx][rate->mcs];
1970 	bitrate *= rate->nss;
1971 
1972 	if (rate->flags & RATE_INFO_FLAGS_SHORT_GI)
1973 		bitrate = (bitrate / 9) * 10;
1974 	/* do NOT round down here */
1975 	return (bitrate + 50000) / 100000;
1976 warn:
1977 	WARN_ONCE(1, "invalid rate bw=%d, mcs=%d, nss=%d\n",
1978 		  rate->bw, rate->mcs, rate->nss);
1979 	return 0;
1980 }
1981 
1982 u32 cfg80211_calculate_bitrate(struct rate_info *rate)
1983 {
1984 	if (rate->flags & RATE_INFO_FLAGS_MCS)
1985 		return cfg80211_calculate_bitrate_ht(rate);
1986 	if (rate->flags & RATE_INFO_FLAGS_DMG)
1987 		return cfg80211_calculate_bitrate_dmg(rate);
1988 	if (rate->flags & RATE_INFO_FLAGS_EXTENDED_SC_DMG)
1989 		return cfg80211_calculate_bitrate_extended_sc_dmg(rate);
1990 	if (rate->flags & RATE_INFO_FLAGS_EDMG)
1991 		return cfg80211_calculate_bitrate_edmg(rate);
1992 	if (rate->flags & RATE_INFO_FLAGS_VHT_MCS)
1993 		return cfg80211_calculate_bitrate_vht(rate);
1994 	if (rate->flags & RATE_INFO_FLAGS_HE_MCS)
1995 		return cfg80211_calculate_bitrate_he(rate);
1996 	if (rate->flags & RATE_INFO_FLAGS_EHT_MCS)
1997 		return cfg80211_calculate_bitrate_eht(rate);
1998 	if (rate->flags & RATE_INFO_FLAGS_UHR_MCS)
1999 		return cfg80211_calculate_bitrate_uhr(rate);
2000 	if (rate->flags & RATE_INFO_FLAGS_S1G_MCS)
2001 		return cfg80211_calculate_bitrate_s1g(rate);
2002 
2003 	return rate->legacy;
2004 }
2005 EXPORT_SYMBOL(cfg80211_calculate_bitrate);
2006 
2007 int cfg80211_get_p2p_attr(const u8 *ies, unsigned int len,
2008 			  enum ieee80211_p2p_attr_id attr,
2009 			  u8 *buf, unsigned int bufsize)
2010 {
2011 	u8 *out = buf;
2012 	u16 attr_remaining = 0;
2013 	bool desired_attr = false;
2014 	u16 desired_len = 0;
2015 
2016 	while (len > 0) {
2017 		unsigned int iedatalen;
2018 		unsigned int copy;
2019 		const u8 *iedata;
2020 
2021 		if (len < 2)
2022 			return -EILSEQ;
2023 		iedatalen = ies[1];
2024 		if (iedatalen + 2 > len)
2025 			return -EILSEQ;
2026 
2027 		if (ies[0] != WLAN_EID_VENDOR_SPECIFIC)
2028 			goto cont;
2029 
2030 		if (iedatalen < 4)
2031 			goto cont;
2032 
2033 		iedata = ies + 2;
2034 
2035 		/* check WFA OUI, P2P subtype */
2036 		if (iedata[0] != 0x50 || iedata[1] != 0x6f ||
2037 		    iedata[2] != 0x9a || iedata[3] != 0x09)
2038 			goto cont;
2039 
2040 		iedatalen -= 4;
2041 		iedata += 4;
2042 
2043 		/* check attribute continuation into this IE */
2044 		copy = min_t(unsigned int, attr_remaining, iedatalen);
2045 		if (copy && desired_attr) {
2046 			desired_len += copy;
2047 			if (out) {
2048 				memcpy(out, iedata, min(bufsize, copy));
2049 				out += min(bufsize, copy);
2050 				bufsize -= min(bufsize, copy);
2051 			}
2052 
2053 
2054 			if (copy == attr_remaining)
2055 				return desired_len;
2056 		}
2057 
2058 		attr_remaining -= copy;
2059 		if (attr_remaining)
2060 			goto cont;
2061 
2062 		iedatalen -= copy;
2063 		iedata += copy;
2064 
2065 		while (iedatalen > 0) {
2066 			u16 attr_len;
2067 
2068 			/* P2P attribute ID & size must fit */
2069 			if (iedatalen < 3)
2070 				return -EILSEQ;
2071 			desired_attr = iedata[0] == attr;
2072 			attr_len = get_unaligned_le16(iedata + 1);
2073 			iedatalen -= 3;
2074 			iedata += 3;
2075 
2076 			copy = min_t(unsigned int, attr_len, iedatalen);
2077 
2078 			if (desired_attr) {
2079 				desired_len += copy;
2080 				if (out) {
2081 					memcpy(out, iedata, min(bufsize, copy));
2082 					out += min(bufsize, copy);
2083 					bufsize -= min(bufsize, copy);
2084 				}
2085 
2086 				if (copy == attr_len)
2087 					return desired_len;
2088 			}
2089 
2090 			iedata += copy;
2091 			iedatalen -= copy;
2092 			attr_remaining = attr_len - copy;
2093 		}
2094 
2095  cont:
2096 		len -= ies[1] + 2;
2097 		ies += ies[1] + 2;
2098 	}
2099 
2100 	if (attr_remaining && desired_attr)
2101 		return -EILSEQ;
2102 
2103 	return -ENOENT;
2104 }
2105 EXPORT_SYMBOL(cfg80211_get_p2p_attr);
2106 
2107 static bool ieee80211_id_in_list(const u8 *ids, int n_ids, u8 id, bool id_ext)
2108 {
2109 	int i;
2110 
2111 	/* Make sure array values are legal */
2112 	if (WARN_ON(ids[n_ids - 1] == WLAN_EID_EXTENSION))
2113 		return false;
2114 
2115 	i = 0;
2116 	while (i < n_ids) {
2117 		if (ids[i] == WLAN_EID_EXTENSION) {
2118 			if (id_ext && (ids[i + 1] == id))
2119 				return true;
2120 
2121 			i += 2;
2122 			continue;
2123 		}
2124 
2125 		if (ids[i] == id && !id_ext)
2126 			return true;
2127 
2128 		i++;
2129 	}
2130 	return false;
2131 }
2132 
2133 static size_t skip_ie(const u8 *ies, size_t ielen, size_t pos)
2134 {
2135 	/* we assume a validly formed IEs buffer */
2136 	u8 len = ies[pos + 1];
2137 
2138 	pos += 2 + len;
2139 
2140 	/* the IE itself must have 255 bytes for fragments to follow */
2141 	if (len < 255)
2142 		return pos;
2143 
2144 	while (pos < ielen && ies[pos] == WLAN_EID_FRAGMENT) {
2145 		len = ies[pos + 1];
2146 		pos += 2 + len;
2147 	}
2148 
2149 	return pos;
2150 }
2151 
2152 size_t ieee80211_ie_split_ric(const u8 *ies, size_t ielen,
2153 			      const u8 *ids, int n_ids,
2154 			      const u8 *after_ric, int n_after_ric,
2155 			      size_t offset)
2156 {
2157 	size_t pos = offset;
2158 
2159 	while (pos < ielen) {
2160 		u8 ext = 0;
2161 
2162 		if (ies[pos] == WLAN_EID_EXTENSION)
2163 			ext = 2;
2164 		if ((pos + ext) >= ielen)
2165 			break;
2166 
2167 		if (!ieee80211_id_in_list(ids, n_ids, ies[pos + ext],
2168 					  ies[pos] == WLAN_EID_EXTENSION))
2169 			break;
2170 
2171 		if (ies[pos] == WLAN_EID_RIC_DATA && n_after_ric) {
2172 			pos = skip_ie(ies, ielen, pos);
2173 
2174 			while (pos < ielen) {
2175 				if (ies[pos] == WLAN_EID_EXTENSION)
2176 					ext = 2;
2177 				else
2178 					ext = 0;
2179 
2180 				if ((pos + ext) >= ielen)
2181 					break;
2182 
2183 				if (!ieee80211_id_in_list(after_ric,
2184 							  n_after_ric,
2185 							  ies[pos + ext],
2186 							  ext == 2))
2187 					pos = skip_ie(ies, ielen, pos);
2188 				else
2189 					break;
2190 			}
2191 		} else {
2192 			pos = skip_ie(ies, ielen, pos);
2193 		}
2194 	}
2195 
2196 	return pos;
2197 }
2198 EXPORT_SYMBOL(ieee80211_ie_split_ric);
2199 
2200 void ieee80211_fragment_element(struct sk_buff *skb, u8 *len_pos, u8 frag_id)
2201 {
2202 	unsigned int elem_len;
2203 
2204 	if (!len_pos)
2205 		return;
2206 
2207 	elem_len = skb->data + skb->len - len_pos - 1;
2208 
2209 	while (elem_len > 255) {
2210 		/* this one is 255 */
2211 		*len_pos = 255;
2212 		/* remaining data gets smaller */
2213 		elem_len -= 255;
2214 		/* make space for the fragment ID/len in SKB */
2215 		skb_put(skb, 2);
2216 		/* shift back the remaining data to place fragment ID/len */
2217 		memmove(len_pos + 255 + 3, len_pos + 255 + 1, elem_len);
2218 		/* place the fragment ID */
2219 		len_pos += 255 + 1;
2220 		*len_pos = frag_id;
2221 		/* and point to fragment length to update later */
2222 		len_pos++;
2223 	}
2224 
2225 	*len_pos = elem_len;
2226 }
2227 EXPORT_SYMBOL(ieee80211_fragment_element);
2228 
2229 bool ieee80211_operating_class_to_band(u8 operating_class,
2230 				       enum nl80211_band *band)
2231 {
2232 	switch (operating_class) {
2233 	case 112:
2234 	case 115 ... 127:
2235 	case 128 ... 130:
2236 		*band = NL80211_BAND_5GHZ;
2237 		return true;
2238 	case 131 ... 135:
2239 	case 137:
2240 		*band = NL80211_BAND_6GHZ;
2241 		return true;
2242 	case 81:
2243 	case 82:
2244 	case 83:
2245 	case 84:
2246 		*band = NL80211_BAND_2GHZ;
2247 		return true;
2248 	case 180:
2249 		*band = NL80211_BAND_60GHZ;
2250 		return true;
2251 	}
2252 
2253 	return false;
2254 }
2255 EXPORT_SYMBOL(ieee80211_operating_class_to_band);
2256 
2257 bool ieee80211_operating_class_to_chandef(u8 operating_class,
2258 					  struct ieee80211_channel *chan,
2259 					  struct cfg80211_chan_def *chandef)
2260 {
2261 	u32 control_freq, offset = 0;
2262 	enum nl80211_band band;
2263 
2264 	if (!ieee80211_operating_class_to_band(operating_class, &band) ||
2265 	    !chan || band != chan->band)
2266 		return false;
2267 
2268 	control_freq = chan->center_freq;
2269 	chandef->chan = chan;
2270 
2271 	if (control_freq >= 5955)
2272 		offset = control_freq - 5955;
2273 	else if (control_freq >= 5745)
2274 		offset = control_freq - 5745;
2275 	else if (control_freq >= 5180)
2276 		offset = control_freq - 5180;
2277 	offset /= 20;
2278 
2279 	switch (operating_class) {
2280 	case 81:  /* 2 GHz band; 20 MHz; channels 1..13 */
2281 	case 82:  /* 2 GHz band; 20 MHz; channel 14 */
2282 	case 115: /* 5 GHz band; 20 MHz; channels 36,40,44,48 */
2283 	case 118: /* 5 GHz band; 20 MHz; channels 52,56,60,64 */
2284 	case 121: /* 5 GHz band; 20 MHz; channels 100..144 */
2285 	case 124: /* 5 GHz band; 20 MHz; channels 149,153,157,161 */
2286 	case 125: /* 5 GHz band; 20 MHz; channels 149..177 */
2287 	case 131: /* 6 GHz band; 20 MHz; channels 1..233*/
2288 	case 136: /* 6 GHz band; 20 MHz; channel 2 */
2289 		chandef->center_freq1 = control_freq;
2290 		chandef->width = NL80211_CHAN_WIDTH_20;
2291 		return true;
2292 	case 83:  /* 2 GHz band; 40 MHz; channels 1..9 */
2293 	case 116: /* 5 GHz band; 40 MHz; channels 36,44 */
2294 	case 119: /* 5 GHz band; 40 MHz; channels 52,60 */
2295 	case 122: /* 5 GHz band; 40 MHz; channels 100,108,116,124,132,140 */
2296 	case 126: /* 5 GHz band; 40 MHz; channels 149,157,165,173 */
2297 		chandef->center_freq1 = control_freq + 10;
2298 		chandef->width = NL80211_CHAN_WIDTH_40;
2299 		return true;
2300 	case 84:  /* 2 GHz band; 40 MHz; channels 5..13 */
2301 	case 117: /* 5 GHz band; 40 MHz; channels 40,48 */
2302 	case 120: /* 5 GHz band; 40 MHz; channels 56,64 */
2303 	case 123: /* 5 GHz band; 40 MHz; channels 104,112,120,128,136,144 */
2304 	case 127: /* 5 GHz band; 40 MHz; channels 153,161,169,177 */
2305 		chandef->center_freq1 = control_freq - 10;
2306 		chandef->width = NL80211_CHAN_WIDTH_40;
2307 		return true;
2308 	case 132: /* 6 GHz band; 40 MHz; channels 1,5,..,229*/
2309 		chandef->center_freq1 = control_freq + 10 - (offset & 1) * 20;
2310 		chandef->width = NL80211_CHAN_WIDTH_40;
2311 		return true;
2312 	case 128: /* 5 GHz band; 80 MHz; channels 36..64,100..144,149..177 */
2313 	case 133: /* 6 GHz band; 80 MHz; channels 1,5,..,229 */
2314 		chandef->center_freq1 = control_freq + 30 - (offset & 3) * 20;
2315 		chandef->width = NL80211_CHAN_WIDTH_80;
2316 		return true;
2317 	case 129: /* 5 GHz band; 160 MHz; channels 36..64,100..144,149..177 */
2318 	case 134: /* 6 GHz band; 160 MHz; channels 1,5,..,229 */
2319 		chandef->center_freq1 = control_freq + 70 - (offset & 7) * 20;
2320 		chandef->width = NL80211_CHAN_WIDTH_160;
2321 		return true;
2322 	case 130: /* 5 GHz band; 80+80 MHz; channels 36..64,100..144,149..177 */
2323 	case 135: /* 6 GHz band; 80+80 MHz; channels 1,5,..,229 */
2324 		  /* The center_freq2 of 80+80 MHz is unknown */
2325 	case 137: /* 6 GHz band; 320 MHz; channels 1,5,..,229 */
2326 		  /* 320-1 or 320-2 channelization is unknown */
2327 	default:
2328 		return false;
2329 	}
2330 }
2331 EXPORT_SYMBOL(ieee80211_operating_class_to_chandef);
2332 
2333 bool ieee80211_chandef_to_operating_class(struct cfg80211_chan_def *chandef,
2334 					  u8 *op_class)
2335 {
2336 	u8 vht_opclass;
2337 	u32 freq = chandef->center_freq1;
2338 
2339 	if (freq >= 2412 && freq <= 2472) {
2340 		if (chandef->width > NL80211_CHAN_WIDTH_40)
2341 			return false;
2342 
2343 		/* 2.407 GHz, channels 1..13 */
2344 		if (chandef->width == NL80211_CHAN_WIDTH_40) {
2345 			if (freq > chandef->chan->center_freq)
2346 				*op_class = 83; /* HT40+ */
2347 			else
2348 				*op_class = 84; /* HT40- */
2349 		} else {
2350 			*op_class = 81;
2351 		}
2352 
2353 		return true;
2354 	}
2355 
2356 	if (freq == 2484) {
2357 		/* channel 14 is only for IEEE 802.11b */
2358 		if (chandef->width != NL80211_CHAN_WIDTH_20_NOHT)
2359 			return false;
2360 
2361 		*op_class = 82; /* channel 14 */
2362 		return true;
2363 	}
2364 
2365 	switch (chandef->width) {
2366 	case NL80211_CHAN_WIDTH_80:
2367 		vht_opclass = 128;
2368 		break;
2369 	case NL80211_CHAN_WIDTH_160:
2370 		vht_opclass = 129;
2371 		break;
2372 	case NL80211_CHAN_WIDTH_80P80:
2373 		vht_opclass = 130;
2374 		break;
2375 	default:
2376 		vht_opclass = 0;
2377 		break;
2378 	}
2379 
2380 	/* 5 GHz, channels 36..48 */
2381 	if (freq >= 5180 && freq <= 5240) {
2382 		if (vht_opclass) {
2383 			*op_class = vht_opclass;
2384 		} else if (chandef->width == NL80211_CHAN_WIDTH_40) {
2385 			if (freq > chandef->chan->center_freq)
2386 				*op_class = 116;
2387 			else
2388 				*op_class = 117;
2389 		} else {
2390 			*op_class = 115;
2391 		}
2392 
2393 		return true;
2394 	}
2395 
2396 	/* 5 GHz, channels 52..64 */
2397 	if (freq >= 5260 && freq <= 5320) {
2398 		if (vht_opclass) {
2399 			*op_class = vht_opclass;
2400 		} else if (chandef->width == NL80211_CHAN_WIDTH_40) {
2401 			if (freq > chandef->chan->center_freq)
2402 				*op_class = 119;
2403 			else
2404 				*op_class = 120;
2405 		} else {
2406 			*op_class = 118;
2407 		}
2408 
2409 		return true;
2410 	}
2411 
2412 	/* 5 GHz, channels 100..144 */
2413 	if (freq >= 5500 && freq <= 5720) {
2414 		if (vht_opclass) {
2415 			*op_class = vht_opclass;
2416 		} else if (chandef->width == NL80211_CHAN_WIDTH_40) {
2417 			if (freq > chandef->chan->center_freq)
2418 				*op_class = 122;
2419 			else
2420 				*op_class = 123;
2421 		} else {
2422 			*op_class = 121;
2423 		}
2424 
2425 		return true;
2426 	}
2427 
2428 	/* 5 GHz, channels 149..169 */
2429 	if (freq >= 5745 && freq <= 5845) {
2430 		if (vht_opclass) {
2431 			*op_class = vht_opclass;
2432 		} else if (chandef->width == NL80211_CHAN_WIDTH_40) {
2433 			if (freq > chandef->chan->center_freq)
2434 				*op_class = 126;
2435 			else
2436 				*op_class = 127;
2437 		} else if (freq <= 5805) {
2438 			*op_class = 124;
2439 		} else {
2440 			*op_class = 125;
2441 		}
2442 
2443 		return true;
2444 	}
2445 
2446 	/* 56.16 GHz, channel 1..4 */
2447 	if (freq >= 56160 + 2160 * 1 && freq <= 56160 + 2160 * 6) {
2448 		if (chandef->width >= NL80211_CHAN_WIDTH_40)
2449 			return false;
2450 
2451 		*op_class = 180;
2452 		return true;
2453 	}
2454 
2455 	/* not supported yet */
2456 	return false;
2457 }
2458 EXPORT_SYMBOL(ieee80211_chandef_to_operating_class);
2459 
2460 static int cfg80211_wdev_bi(struct wireless_dev *wdev)
2461 {
2462 	switch (wdev->iftype) {
2463 	case NL80211_IFTYPE_AP:
2464 	case NL80211_IFTYPE_P2P_GO:
2465 		WARN_ON(wdev->valid_links);
2466 		return wdev->links[0].ap.beacon_interval;
2467 	case NL80211_IFTYPE_MESH_POINT:
2468 		return wdev->u.mesh.beacon_interval;
2469 	case NL80211_IFTYPE_ADHOC:
2470 		return wdev->u.ibss.beacon_interval;
2471 	default:
2472 		break;
2473 	}
2474 
2475 	return 0;
2476 }
2477 
2478 static void cfg80211_calculate_bi_data(struct wiphy *wiphy, u32 new_beacon_int,
2479 				       u32 *beacon_int_gcd,
2480 				       bool *beacon_int_different,
2481 				       int radio_idx)
2482 {
2483 	struct cfg80211_registered_device *rdev;
2484 	struct wireless_dev *wdev;
2485 
2486 	*beacon_int_gcd = 0;
2487 	*beacon_int_different = false;
2488 
2489 	rdev = wiphy_to_rdev(wiphy);
2490 	list_for_each_entry(wdev, &wiphy->wdev_list, list) {
2491 		int wdev_bi;
2492 
2493 		/* this feature isn't supported with MLO */
2494 		if (wdev->valid_links)
2495 			continue;
2496 
2497 		wdev_bi = cfg80211_wdev_bi(wdev);
2498 		if (!wdev_bi)
2499 			continue;
2500 
2501 		/* skip wdevs not active on the given wiphy radio */
2502 		if (radio_idx >= 0 &&
2503 		    !(rdev_get_radio_mask(rdev, wdev->netdev) & BIT(radio_idx)))
2504 			continue;
2505 
2506 		if (!*beacon_int_gcd) {
2507 			*beacon_int_gcd = wdev_bi;
2508 			continue;
2509 		}
2510 
2511 		if (wdev_bi == *beacon_int_gcd)
2512 			continue;
2513 
2514 		*beacon_int_different = true;
2515 		*beacon_int_gcd = gcd(*beacon_int_gcd, wdev_bi);
2516 	}
2517 
2518 	if (new_beacon_int && *beacon_int_gcd != new_beacon_int) {
2519 		if (*beacon_int_gcd)
2520 			*beacon_int_different = true;
2521 		*beacon_int_gcd = gcd(*beacon_int_gcd, new_beacon_int);
2522 	}
2523 }
2524 
2525 int cfg80211_validate_beacon_int(struct cfg80211_registered_device *rdev,
2526 				 enum nl80211_iftype iftype, u32 beacon_int)
2527 {
2528 	/*
2529 	 * This is just a basic pre-condition check; if interface combinations
2530 	 * are possible the driver must already be checking those with a call
2531 	 * to cfg80211_check_combinations(), in which case we'll validate more
2532 	 * through the cfg80211_calculate_bi_data() call and code in
2533 	 * cfg80211_iter_combinations().
2534 	 */
2535 
2536 	if (beacon_int < 10 || beacon_int > 10000)
2537 		return -EINVAL;
2538 
2539 	return 0;
2540 }
2541 
2542 int cfg80211_iter_combinations(struct wiphy *wiphy,
2543 			       struct iface_combination_params *params,
2544 			       void (*iter)(const struct ieee80211_iface_combination *c,
2545 					    void *data),
2546 			       void *data)
2547 {
2548 	const struct wiphy_radio *radio = NULL;
2549 	const struct ieee80211_iface_combination *c, *cs;
2550 	const struct ieee80211_regdomain *regdom;
2551 	enum nl80211_dfs_regions region = 0;
2552 	int i, j, n, iftype;
2553 	int num_interfaces = 0;
2554 	u32 used_iftypes = 0;
2555 	u32 beacon_int_gcd;
2556 	bool beacon_int_different;
2557 
2558 	if (params->radio_idx >= 0)
2559 		radio = &wiphy->radio[params->radio_idx];
2560 
2561 	/*
2562 	 * This is a bit strange, since the iteration used to rely only on
2563 	 * the data given by the driver, but here it now relies on context,
2564 	 * in form of the currently operating interfaces.
2565 	 * This is OK for all current users, and saves us from having to
2566 	 * push the GCD calculations into all the drivers.
2567 	 * In the future, this should probably rely more on data that's in
2568 	 * cfg80211 already - the only thing not would appear to be any new
2569 	 * interfaces (while being brought up) and channel/radar data.
2570 	 */
2571 	cfg80211_calculate_bi_data(wiphy, params->new_beacon_int,
2572 				   &beacon_int_gcd, &beacon_int_different,
2573 				   params->radio_idx);
2574 
2575 	if (params->radar_detect) {
2576 		rcu_read_lock();
2577 		regdom = rcu_dereference(cfg80211_regdomain);
2578 		if (regdom)
2579 			region = regdom->dfs_region;
2580 		rcu_read_unlock();
2581 	}
2582 
2583 	for (iftype = 0; iftype < NUM_NL80211_IFTYPES; iftype++) {
2584 		num_interfaces += params->iftype_num[iftype];
2585 		if (params->iftype_num[iftype] > 0 &&
2586 		    !cfg80211_iftype_allowed(wiphy, iftype, 0, 1))
2587 			used_iftypes |= BIT(iftype);
2588 	}
2589 
2590 	if (radio) {
2591 		cs = radio->iface_combinations;
2592 		n = radio->n_iface_combinations;
2593 	} else {
2594 		cs = wiphy->iface_combinations;
2595 		n = wiphy->n_iface_combinations;
2596 	}
2597 	for (i = 0; i < n; i++) {
2598 		struct ieee80211_iface_limit *limits;
2599 		u32 all_iftypes = 0;
2600 
2601 		c = &cs[i];
2602 		if (num_interfaces > c->max_interfaces)
2603 			continue;
2604 		if (params->num_different_channels > c->num_different_channels)
2605 			continue;
2606 
2607 		limits = kmemdup_array(c->limits, c->n_limits, sizeof(*limits),
2608 				       GFP_KERNEL);
2609 		if (!limits)
2610 			return -ENOMEM;
2611 
2612 		for (iftype = 0; iftype < NUM_NL80211_IFTYPES; iftype++) {
2613 			if (cfg80211_iftype_allowed(wiphy, iftype, 0, 1))
2614 				continue;
2615 			for (j = 0; j < c->n_limits; j++) {
2616 				all_iftypes |= limits[j].types;
2617 				if (!(limits[j].types & BIT(iftype)))
2618 					continue;
2619 				if (limits[j].max < params->iftype_num[iftype])
2620 					goto cont;
2621 				limits[j].max -= params->iftype_num[iftype];
2622 			}
2623 		}
2624 
2625 		if (params->radar_detect !=
2626 			(c->radar_detect_widths & params->radar_detect))
2627 			goto cont;
2628 
2629 		if (params->radar_detect && c->radar_detect_regions &&
2630 		    !(c->radar_detect_regions & BIT(region)))
2631 			goto cont;
2632 
2633 		/* Finally check that all iftypes that we're currently
2634 		 * using are actually part of this combination. If they
2635 		 * aren't then we can't use this combination and have
2636 		 * to continue to the next.
2637 		 */
2638 		if ((all_iftypes & used_iftypes) != used_iftypes)
2639 			goto cont;
2640 
2641 		if (beacon_int_gcd) {
2642 			if (c->beacon_int_min_gcd &&
2643 			    beacon_int_gcd < c->beacon_int_min_gcd)
2644 				goto cont;
2645 			if (!c->beacon_int_min_gcd && beacon_int_different)
2646 				goto cont;
2647 		}
2648 
2649 		/* This combination covered all interface types and
2650 		 * supported the requested numbers, so we're good.
2651 		 */
2652 
2653 		(*iter)(c, data);
2654  cont:
2655 		kfree(limits);
2656 	}
2657 
2658 	return 0;
2659 }
2660 EXPORT_SYMBOL(cfg80211_iter_combinations);
2661 
2662 static void
2663 cfg80211_iter_sum_ifcombs(const struct ieee80211_iface_combination *c,
2664 			  void *data)
2665 {
2666 	int *num = data;
2667 	(*num)++;
2668 }
2669 
2670 int cfg80211_check_combinations(struct wiphy *wiphy,
2671 				struct iface_combination_params *params)
2672 {
2673 	int err, num = 0;
2674 
2675 	err = cfg80211_iter_combinations(wiphy, params,
2676 					 cfg80211_iter_sum_ifcombs, &num);
2677 	if (err)
2678 		return err;
2679 	if (num == 0)
2680 		return -EBUSY;
2681 
2682 	return 0;
2683 }
2684 EXPORT_SYMBOL(cfg80211_check_combinations);
2685 
2686 int cfg80211_get_radio_idx_by_chan(struct wiphy *wiphy,
2687 				   const struct ieee80211_channel *chan)
2688 {
2689 	const struct wiphy_radio *radio;
2690 	int i, j;
2691 	u32 freq;
2692 
2693 	if (!chan)
2694 		return -EINVAL;
2695 
2696 	freq = ieee80211_channel_to_khz(chan);
2697 	for (i = 0; i < wiphy->n_radio; i++) {
2698 		radio = &wiphy->radio[i];
2699 		for (j = 0; j < radio->n_freq_range; j++) {
2700 			if (freq >= radio->freq_range[j].start_freq &&
2701 			    freq < radio->freq_range[j].end_freq)
2702 				return i;
2703 		}
2704 	}
2705 
2706 	return -EINVAL;
2707 }
2708 EXPORT_SYMBOL(cfg80211_get_radio_idx_by_chan);
2709 
2710 int ieee80211_get_ratemask(struct ieee80211_supported_band *sband,
2711 			   const u8 *rates, unsigned int n_rates,
2712 			   u32 *mask)
2713 {
2714 	int i, j;
2715 
2716 	if (!sband)
2717 		return -EINVAL;
2718 
2719 	if (n_rates == 0 || n_rates > NL80211_MAX_SUPP_RATES)
2720 		return -EINVAL;
2721 
2722 	*mask = 0;
2723 
2724 	for (i = 0; i < n_rates; i++) {
2725 		int rate = (rates[i] & 0x7f) * 5;
2726 		bool found = false;
2727 
2728 		for (j = 0; j < sband->n_bitrates; j++) {
2729 			if (sband->bitrates[j].bitrate == rate) {
2730 				found = true;
2731 				*mask |= BIT(j);
2732 				break;
2733 			}
2734 		}
2735 		if (!found)
2736 			return -EINVAL;
2737 	}
2738 
2739 	/*
2740 	 * mask must have at least one bit set here since we
2741 	 * didn't accept a 0-length rates array nor allowed
2742 	 * entries in the array that didn't exist
2743 	 */
2744 
2745 	return 0;
2746 }
2747 
2748 unsigned int ieee80211_get_num_supported_channels(struct wiphy *wiphy)
2749 {
2750 	enum nl80211_band band;
2751 	unsigned int n_channels = 0;
2752 
2753 	for (band = 0; band < NUM_NL80211_BANDS; band++)
2754 		if (wiphy->bands[band])
2755 			n_channels += wiphy->bands[band]->n_channels;
2756 
2757 	return n_channels;
2758 }
2759 EXPORT_SYMBOL(ieee80211_get_num_supported_channels);
2760 
2761 int cfg80211_get_station(struct net_device *dev, const u8 *mac_addr,
2762 			 struct station_info *sinfo)
2763 {
2764 	struct cfg80211_registered_device *rdev;
2765 	struct wireless_dev *wdev;
2766 
2767 	wdev = dev->ieee80211_ptr;
2768 	if (!wdev)
2769 		return -EOPNOTSUPP;
2770 
2771 	rdev = wiphy_to_rdev(wdev->wiphy);
2772 	if (!rdev->ops->get_station)
2773 		return -EOPNOTSUPP;
2774 
2775 	memset(sinfo, 0, sizeof(*sinfo));
2776 
2777 	guard(wiphy)(&rdev->wiphy);
2778 
2779 	return rdev_get_station(rdev, wdev, mac_addr, sinfo);
2780 }
2781 EXPORT_SYMBOL(cfg80211_get_station);
2782 
2783 void cfg80211_free_nan_func(struct cfg80211_nan_func *f)
2784 {
2785 	int i;
2786 
2787 	if (!f)
2788 		return;
2789 
2790 	kfree(f->serv_spec_info);
2791 	kfree(f->srf_bf);
2792 	kfree(f->srf_macs);
2793 	for (i = 0; i < f->num_rx_filters; i++)
2794 		kfree(f->rx_filters[i].filter);
2795 
2796 	for (i = 0; i < f->num_tx_filters; i++)
2797 		kfree(f->tx_filters[i].filter);
2798 
2799 	kfree(f->rx_filters);
2800 	kfree(f->tx_filters);
2801 	kfree(f);
2802 }
2803 EXPORT_SYMBOL(cfg80211_free_nan_func);
2804 
2805 bool cfg80211_does_bw_fit_range(const struct ieee80211_freq_range *freq_range,
2806 				u32 center_freq_khz, u32 bw_khz)
2807 {
2808 	u32 start_freq_khz, end_freq_khz;
2809 
2810 	start_freq_khz = center_freq_khz - (bw_khz / 2);
2811 	end_freq_khz = center_freq_khz + (bw_khz / 2);
2812 
2813 	if (start_freq_khz >= freq_range->start_freq_khz &&
2814 	    end_freq_khz <= freq_range->end_freq_khz)
2815 		return true;
2816 
2817 	return false;
2818 }
2819 
2820 int cfg80211_link_sinfo_alloc_tid_stats(struct link_station_info *link_sinfo,
2821 					gfp_t gfp)
2822 {
2823 	link_sinfo->pertid = kzalloc_objs(*link_sinfo->pertid,
2824 					  IEEE80211_NUM_TIDS + 1, gfp);
2825 	if (!link_sinfo->pertid)
2826 		return -ENOMEM;
2827 
2828 	return 0;
2829 }
2830 EXPORT_SYMBOL(cfg80211_link_sinfo_alloc_tid_stats);
2831 
2832 int cfg80211_sinfo_alloc_tid_stats(struct station_info *sinfo, gfp_t gfp)
2833 {
2834 	sinfo->pertid = kzalloc_objs(*(sinfo->pertid), IEEE80211_NUM_TIDS + 1,
2835 				     gfp);
2836 	if (!sinfo->pertid)
2837 		return -ENOMEM;
2838 
2839 	return 0;
2840 }
2841 EXPORT_SYMBOL(cfg80211_sinfo_alloc_tid_stats);
2842 
2843 /* See IEEE 802.1H for LLC/SNAP encapsulation/decapsulation */
2844 /* Ethernet-II snap header (RFC1042 for most EtherTypes) */
2845 const unsigned char rfc1042_header[] __aligned(2) =
2846 	{ 0xaa, 0xaa, 0x03, 0x00, 0x00, 0x00 };
2847 EXPORT_SYMBOL(rfc1042_header);
2848 
2849 /* Bridge-Tunnel header (for EtherTypes ETH_P_AARP and ETH_P_IPX) */
2850 const unsigned char bridge_tunnel_header[] __aligned(2) =
2851 	{ 0xaa, 0xaa, 0x03, 0x00, 0x00, 0xf8 };
2852 EXPORT_SYMBOL(bridge_tunnel_header);
2853 
2854 /* Layer 2 Update frame (802.2 Type 1 LLC XID Update response) */
2855 struct iapp_layer2_update {
2856 	u8 da[ETH_ALEN];	/* broadcast */
2857 	u8 sa[ETH_ALEN];	/* STA addr */
2858 	__be16 len;		/* 6 */
2859 	u8 dsap;		/* 0 */
2860 	u8 ssap;		/* 0 */
2861 	u8 control;
2862 	u8 xid_info[3];
2863 } __packed;
2864 
2865 void cfg80211_send_layer2_update(struct net_device *dev, const u8 *addr)
2866 {
2867 	struct iapp_layer2_update *msg;
2868 	struct sk_buff *skb;
2869 
2870 	/* Send Level 2 Update Frame to update forwarding tables in layer 2
2871 	 * bridge devices */
2872 
2873 	skb = dev_alloc_skb(sizeof(*msg));
2874 	if (!skb)
2875 		return;
2876 	msg = skb_put(skb, sizeof(*msg));
2877 
2878 	/* 802.2 Type 1 Logical Link Control (LLC) Exchange Identifier (XID)
2879 	 * Update response frame; IEEE Std 802.2-1998, 5.4.1.2.1 */
2880 
2881 	eth_broadcast_addr(msg->da);
2882 	ether_addr_copy(msg->sa, addr);
2883 	msg->len = htons(6);
2884 	msg->dsap = 0;
2885 	msg->ssap = 0x01;	/* NULL LSAP, CR Bit: Response */
2886 	msg->control = 0xaf;	/* XID response lsb.1111F101.
2887 				 * F=0 (no poll command; unsolicited frame) */
2888 	msg->xid_info[0] = 0x81;	/* XID format identifier */
2889 	msg->xid_info[1] = 1;	/* LLC types/classes: Type 1 LLC */
2890 	msg->xid_info[2] = 0;	/* XID sender's receive window size (RW) */
2891 
2892 	skb->dev = dev;
2893 	skb->protocol = eth_type_trans(skb, dev);
2894 	memset(skb->cb, 0, sizeof(skb->cb));
2895 	netif_rx(skb);
2896 }
2897 EXPORT_SYMBOL(cfg80211_send_layer2_update);
2898 
2899 int ieee80211_get_vht_max_nss(struct ieee80211_vht_cap *cap,
2900 			      enum ieee80211_vht_chanwidth bw,
2901 			      int mcs, bool ext_nss_bw_capable,
2902 			      unsigned int max_vht_nss)
2903 {
2904 	u16 map = le16_to_cpu(cap->supp_mcs.rx_mcs_map);
2905 	int ext_nss_bw;
2906 	int supp_width;
2907 	int i, mcs_encoding;
2908 
2909 	if (map == 0xffff)
2910 		return 0;
2911 
2912 	if (WARN_ON(mcs > 9 || max_vht_nss > 8))
2913 		return 0;
2914 	if (mcs <= 7)
2915 		mcs_encoding = 0;
2916 	else if (mcs == 8)
2917 		mcs_encoding = 1;
2918 	else
2919 		mcs_encoding = 2;
2920 
2921 	if (!max_vht_nss) {
2922 		/* find max_vht_nss for the given MCS */
2923 		for (i = 7; i >= 0; i--) {
2924 			int supp = (map >> (2 * i)) & 3;
2925 
2926 			if (supp == 3)
2927 				continue;
2928 
2929 			if (supp >= mcs_encoding) {
2930 				max_vht_nss = i + 1;
2931 				break;
2932 			}
2933 		}
2934 	}
2935 
2936 	if (!(cap->supp_mcs.tx_mcs_map &
2937 			cpu_to_le16(IEEE80211_VHT_EXT_NSS_BW_CAPABLE)))
2938 		return max_vht_nss;
2939 
2940 	ext_nss_bw = le32_get_bits(cap->vht_cap_info,
2941 				   IEEE80211_VHT_CAP_EXT_NSS_BW_MASK);
2942 	supp_width = le32_get_bits(cap->vht_cap_info,
2943 				   IEEE80211_VHT_CAP_SUPP_CHAN_WIDTH_MASK);
2944 
2945 	/* if not capable, treat ext_nss_bw as 0 */
2946 	if (!ext_nss_bw_capable)
2947 		ext_nss_bw = 0;
2948 
2949 	/* This is invalid */
2950 	if (supp_width == 3)
2951 		return 0;
2952 
2953 	/* This is an invalid combination so pretend nothing is supported */
2954 	if (supp_width == 2 && (ext_nss_bw == 1 || ext_nss_bw == 2))
2955 		return 0;
2956 
2957 	/*
2958 	 * Cover all the special cases according to IEEE 802.11-2016
2959 	 * Table 9-250. All other cases are either factor of 1 or not
2960 	 * valid/supported.
2961 	 */
2962 	switch (bw) {
2963 	case IEEE80211_VHT_CHANWIDTH_USE_HT:
2964 	case IEEE80211_VHT_CHANWIDTH_80MHZ:
2965 		if ((supp_width == 1 || supp_width == 2) &&
2966 		    ext_nss_bw == 3)
2967 			return 2 * max_vht_nss;
2968 		break;
2969 	case IEEE80211_VHT_CHANWIDTH_160MHZ:
2970 		if (supp_width == 0 &&
2971 		    (ext_nss_bw == 1 || ext_nss_bw == 2))
2972 			return max_vht_nss / 2;
2973 		if (supp_width == 0 &&
2974 		    ext_nss_bw == 3)
2975 			return (3 * max_vht_nss) / 4;
2976 		if (supp_width == 1 &&
2977 		    ext_nss_bw == 3)
2978 			return 2 * max_vht_nss;
2979 		break;
2980 	case IEEE80211_VHT_CHANWIDTH_80P80MHZ:
2981 		if (supp_width == 0 && ext_nss_bw == 1)
2982 			return 0; /* not possible */
2983 		if (supp_width == 0 &&
2984 		    ext_nss_bw == 2)
2985 			return max_vht_nss / 2;
2986 		if (supp_width == 0 &&
2987 		    ext_nss_bw == 3)
2988 			return (3 * max_vht_nss) / 4;
2989 		if (supp_width == 1 &&
2990 		    ext_nss_bw == 0)
2991 			return 0; /* not possible */
2992 		if (supp_width == 1 &&
2993 		    ext_nss_bw == 1)
2994 			return max_vht_nss / 2;
2995 		if (supp_width == 1 &&
2996 		    ext_nss_bw == 2)
2997 			return (3 * max_vht_nss) / 4;
2998 		break;
2999 	}
3000 
3001 	/* not covered or invalid combination received */
3002 	return max_vht_nss;
3003 }
3004 EXPORT_SYMBOL(ieee80211_get_vht_max_nss);
3005 
3006 bool cfg80211_iftype_allowed(struct wiphy *wiphy, enum nl80211_iftype iftype,
3007 			     bool is_4addr, u8 check_swif)
3008 
3009 {
3010 	bool is_vlan = iftype == NL80211_IFTYPE_AP_VLAN;
3011 
3012 	switch (check_swif) {
3013 	case 0:
3014 		if (is_vlan && is_4addr)
3015 			return wiphy->flags & WIPHY_FLAG_4ADDR_AP;
3016 		return wiphy->interface_modes & BIT(iftype);
3017 	case 1:
3018 		if (!(wiphy->software_iftypes & BIT(iftype)) && is_vlan)
3019 			return wiphy->flags & WIPHY_FLAG_4ADDR_AP;
3020 		return wiphy->software_iftypes & BIT(iftype);
3021 	default:
3022 		break;
3023 	}
3024 
3025 	return false;
3026 }
3027 EXPORT_SYMBOL(cfg80211_iftype_allowed);
3028 
3029 void cfg80211_remove_link(struct wireless_dev *wdev, unsigned int link_id)
3030 {
3031 	struct cfg80211_registered_device *rdev = wiphy_to_rdev(wdev->wiphy);
3032 
3033 	lockdep_assert_wiphy(wdev->wiphy);
3034 
3035 	switch (wdev->iftype) {
3036 	case NL80211_IFTYPE_AP:
3037 	case NL80211_IFTYPE_P2P_GO:
3038 		cfg80211_stop_ap(rdev, wdev->netdev, link_id, true);
3039 		break;
3040 	default:
3041 		/* per-link not relevant */
3042 		break;
3043 	}
3044 
3045 	rdev_del_intf_link(rdev, wdev, link_id);
3046 
3047 	wdev->valid_links &= ~BIT(link_id);
3048 	eth_zero_addr(wdev->links[link_id].addr);
3049 }
3050 
3051 void cfg80211_remove_links(struct wireless_dev *wdev)
3052 {
3053 	unsigned int link_id;
3054 
3055 	/*
3056 	 * links are controlled by upper layers (userspace/cfg)
3057 	 * only for AP mode, so only remove them here for AP
3058 	 */
3059 	if (wdev->iftype != NL80211_IFTYPE_AP)
3060 		return;
3061 
3062 	if (wdev->valid_links) {
3063 		for_each_valid_link(wdev, link_id)
3064 			cfg80211_remove_link(wdev, link_id);
3065 	}
3066 }
3067 
3068 int cfg80211_remove_virtual_intf(struct cfg80211_registered_device *rdev,
3069 				 struct wireless_dev *wdev)
3070 {
3071 	cfg80211_remove_links(wdev);
3072 
3073 	return rdev_del_virtual_intf(rdev, wdev);
3074 }
3075 
3076 const struct wiphy_iftype_ext_capab *
3077 cfg80211_get_iftype_ext_capa(struct wiphy *wiphy, enum nl80211_iftype type)
3078 {
3079 	int i;
3080 
3081 	for (i = 0; i < wiphy->num_iftype_ext_capab; i++) {
3082 		if (wiphy->iftype_ext_capab[i].iftype == type)
3083 			return &wiphy->iftype_ext_capab[i];
3084 	}
3085 
3086 	return NULL;
3087 }
3088 EXPORT_SYMBOL(cfg80211_get_iftype_ext_capa);
3089 
3090 bool ieee80211_radio_freq_range_valid(const struct wiphy_radio *radio,
3091 				      u32 freq, u32 width)
3092 {
3093 	const struct wiphy_radio_freq_range *r;
3094 	int i;
3095 
3096 	for (i = 0; i < radio->n_freq_range; i++) {
3097 		r = &radio->freq_range[i];
3098 		if (freq - width / 2 >= r->start_freq &&
3099 		    freq + width / 2 <= r->end_freq)
3100 			return true;
3101 	}
3102 
3103 	return false;
3104 }
3105 EXPORT_SYMBOL(ieee80211_radio_freq_range_valid);
3106 
3107 bool cfg80211_radio_chandef_valid(const struct wiphy_radio *radio,
3108 				  const struct cfg80211_chan_def *chandef)
3109 {
3110 	u32 freq, width;
3111 
3112 	freq = ieee80211_chandef_to_khz(chandef);
3113 	width = MHZ_TO_KHZ(cfg80211_chandef_get_width(chandef));
3114 	if (!ieee80211_radio_freq_range_valid(radio, freq, width))
3115 		return false;
3116 
3117 	freq = MHZ_TO_KHZ(chandef->center_freq2);
3118 	if (freq && !ieee80211_radio_freq_range_valid(radio, freq, width))
3119 		return false;
3120 
3121 	return true;
3122 }
3123 EXPORT_SYMBOL(cfg80211_radio_chandef_valid);
3124 
3125 bool cfg80211_wdev_channel_allowed(struct wireless_dev *wdev,
3126 				   struct ieee80211_channel *chan)
3127 {
3128 	struct wiphy *wiphy = wdev->wiphy;
3129 	const struct wiphy_radio *radio;
3130 	struct cfg80211_chan_def chandef;
3131 	u32 radio_mask;
3132 	int i;
3133 
3134 	radio_mask = wdev->radio_mask;
3135 	if (!wiphy->n_radio || radio_mask == BIT(wiphy->n_radio) - 1)
3136 		return true;
3137 
3138 	cfg80211_chandef_create(&chandef, chan, NL80211_CHAN_HT20);
3139 	for (i = 0; i < wiphy->n_radio; i++) {
3140 		if (!(radio_mask & BIT(i)))
3141 			continue;
3142 
3143 		radio = &wiphy->radio[i];
3144 		if (!cfg80211_radio_chandef_valid(radio, &chandef))
3145 			continue;
3146 
3147 		return true;
3148 	}
3149 
3150 	return false;
3151 }
3152 EXPORT_SYMBOL(cfg80211_wdev_channel_allowed);
3153