util.c 44 KB

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  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. */
  8. #include <linux/export.h>
  9. #include <linux/bitops.h>
  10. #include <linux/etherdevice.h>
  11. #include <linux/slab.h>
  12. #include <net/cfg80211.h>
  13. #include <net/ip.h>
  14. #include <net/dsfield.h>
  15. #include <linux/if_vlan.h>
  16. #include <linux/mpls.h>
  17. #include <linux/gcd.h>
  18. #include "core.h"
  19. #include "rdev-ops.h"
  20. struct ieee80211_rate *
  21. ieee80211_get_response_rate(struct ieee80211_supported_band *sband,
  22. u32 basic_rates, int bitrate)
  23. {
  24. struct ieee80211_rate *result = &sband->bitrates[0];
  25. int i;
  26. for (i = 0; i < sband->n_bitrates; i++) {
  27. if (!(basic_rates & BIT(i)))
  28. continue;
  29. if (sband->bitrates[i].bitrate > bitrate)
  30. continue;
  31. result = &sband->bitrates[i];
  32. }
  33. return result;
  34. }
  35. EXPORT_SYMBOL(ieee80211_get_response_rate);
  36. u32 ieee80211_mandatory_rates(struct ieee80211_supported_band *sband,
  37. enum nl80211_bss_scan_width scan_width)
  38. {
  39. struct ieee80211_rate *bitrates;
  40. u32 mandatory_rates = 0;
  41. enum ieee80211_rate_flags mandatory_flag;
  42. int i;
  43. if (WARN_ON(!sband))
  44. return 1;
  45. if (sband->band == NL80211_BAND_2GHZ) {
  46. if (scan_width == NL80211_BSS_CHAN_WIDTH_5 ||
  47. scan_width == NL80211_BSS_CHAN_WIDTH_10)
  48. mandatory_flag = IEEE80211_RATE_MANDATORY_G;
  49. else
  50. mandatory_flag = IEEE80211_RATE_MANDATORY_B;
  51. } else {
  52. mandatory_flag = IEEE80211_RATE_MANDATORY_A;
  53. }
  54. bitrates = sband->bitrates;
  55. for (i = 0; i < sband->n_bitrates; i++)
  56. if (bitrates[i].flags & mandatory_flag)
  57. mandatory_rates |= BIT(i);
  58. return mandatory_rates;
  59. }
  60. EXPORT_SYMBOL(ieee80211_mandatory_rates);
  61. int ieee80211_channel_to_frequency(int chan, enum nl80211_band band)
  62. {
  63. /* see 802.11 17.3.8.3.2 and Annex J
  64. * there are overlapping channel numbers in 5GHz and 2GHz bands */
  65. if (chan <= 0)
  66. return 0; /* not supported */
  67. switch (band) {
  68. case NL80211_BAND_2GHZ:
  69. if (chan == 14)
  70. return 2484;
  71. else if (chan < 14)
  72. return 2407 + chan * 5;
  73. break;
  74. case NL80211_BAND_5GHZ:
  75. if (chan >= 182 && chan <= 196)
  76. return 4000 + chan * 5;
  77. else
  78. return 5000 + chan * 5;
  79. break;
  80. case NL80211_BAND_60GHZ:
  81. if (chan < 5)
  82. return 56160 + chan * 2160;
  83. break;
  84. default:
  85. ;
  86. }
  87. return 0; /* not supported */
  88. }
  89. EXPORT_SYMBOL(ieee80211_channel_to_frequency);
  90. int ieee80211_frequency_to_channel(int freq)
  91. {
  92. /* see 802.11 17.3.8.3.2 and Annex J */
  93. if (freq == 2484)
  94. return 14;
  95. else if (freq < 2484)
  96. return (freq - 2407) / 5;
  97. else if (freq >= 4910 && freq <= 4980)
  98. return (freq - 4000) / 5;
  99. else if (freq <= 45000) /* DMG band lower limit */
  100. return (freq - 5000) / 5;
  101. else if (freq >= 58320 && freq <= 64800)
  102. return (freq - 56160) / 2160;
  103. else
  104. return 0;
  105. }
  106. EXPORT_SYMBOL(ieee80211_frequency_to_channel);
  107. struct ieee80211_channel *ieee80211_get_channel(struct wiphy *wiphy, int freq)
  108. {
  109. enum nl80211_band band;
  110. struct ieee80211_supported_band *sband;
  111. int i;
  112. for (band = 0; band < NUM_NL80211_BANDS; band++) {
  113. sband = wiphy->bands[band];
  114. if (!sband)
  115. continue;
  116. for (i = 0; i < sband->n_channels; i++) {
  117. if (sband->channels[i].center_freq == freq)
  118. return &sband->channels[i];
  119. }
  120. }
  121. return NULL;
  122. }
  123. EXPORT_SYMBOL(ieee80211_get_channel);
  124. static void set_mandatory_flags_band(struct ieee80211_supported_band *sband)
  125. {
  126. int i, want;
  127. switch (sband->band) {
  128. case NL80211_BAND_5GHZ:
  129. want = 3;
  130. for (i = 0; i < sband->n_bitrates; i++) {
  131. if (sband->bitrates[i].bitrate == 60 ||
  132. sband->bitrates[i].bitrate == 120 ||
  133. sband->bitrates[i].bitrate == 240) {
  134. sband->bitrates[i].flags |=
  135. IEEE80211_RATE_MANDATORY_A;
  136. want--;
  137. }
  138. }
  139. WARN_ON(want);
  140. break;
  141. case NL80211_BAND_2GHZ:
  142. want = 7;
  143. for (i = 0; i < sband->n_bitrates; i++) {
  144. if (sband->bitrates[i].bitrate == 10) {
  145. sband->bitrates[i].flags |=
  146. IEEE80211_RATE_MANDATORY_B |
  147. IEEE80211_RATE_MANDATORY_G;
  148. want--;
  149. }
  150. if (sband->bitrates[i].bitrate == 20 ||
  151. sband->bitrates[i].bitrate == 55 ||
  152. sband->bitrates[i].bitrate == 110 ||
  153. sband->bitrates[i].bitrate == 60 ||
  154. sband->bitrates[i].bitrate == 120 ||
  155. sband->bitrates[i].bitrate == 240) {
  156. sband->bitrates[i].flags |=
  157. IEEE80211_RATE_MANDATORY_G;
  158. want--;
  159. }
  160. if (sband->bitrates[i].bitrate != 10 &&
  161. sband->bitrates[i].bitrate != 20 &&
  162. sband->bitrates[i].bitrate != 55 &&
  163. sband->bitrates[i].bitrate != 110)
  164. sband->bitrates[i].flags |=
  165. IEEE80211_RATE_ERP_G;
  166. }
  167. WARN_ON(want != 0 && want != 3 && want != 6);
  168. break;
  169. case NL80211_BAND_60GHZ:
  170. /* check for mandatory HT MCS 1..4 */
  171. WARN_ON(!sband->ht_cap.ht_supported);
  172. WARN_ON((sband->ht_cap.mcs.rx_mask[0] & 0x1e) != 0x1e);
  173. break;
  174. case NUM_NL80211_BANDS:
  175. default:
  176. WARN_ON(1);
  177. break;
  178. }
  179. }
  180. void ieee80211_set_bitrate_flags(struct wiphy *wiphy)
  181. {
  182. enum nl80211_band band;
  183. for (band = 0; band < NUM_NL80211_BANDS; band++)
  184. if (wiphy->bands[band])
  185. set_mandatory_flags_band(wiphy->bands[band]);
  186. }
  187. bool cfg80211_supported_cipher_suite(struct wiphy *wiphy, u32 cipher)
  188. {
  189. int i;
  190. for (i = 0; i < wiphy->n_cipher_suites; i++)
  191. if (cipher == wiphy->cipher_suites[i])
  192. return true;
  193. return false;
  194. }
  195. int cfg80211_validate_key_settings(struct cfg80211_registered_device *rdev,
  196. struct key_params *params, int key_idx,
  197. bool pairwise, const u8 *mac_addr)
  198. {
  199. if (key_idx < 0 || key_idx > 5)
  200. return -EINVAL;
  201. if (!pairwise && mac_addr && !(rdev->wiphy.flags & WIPHY_FLAG_IBSS_RSN))
  202. return -EINVAL;
  203. if (pairwise && !mac_addr)
  204. return -EINVAL;
  205. switch (params->cipher) {
  206. case WLAN_CIPHER_SUITE_TKIP:
  207. case WLAN_CIPHER_SUITE_CCMP:
  208. case WLAN_CIPHER_SUITE_CCMP_256:
  209. case WLAN_CIPHER_SUITE_GCMP:
  210. case WLAN_CIPHER_SUITE_GCMP_256:
  211. /* Disallow pairwise keys with non-zero index unless it's WEP
  212. * or a vendor specific cipher (because current deployments use
  213. * pairwise WEP keys with non-zero indices and for vendor
  214. * specific ciphers this should be validated in the driver or
  215. * hardware level - but 802.11i clearly specifies to use zero)
  216. */
  217. if (pairwise && key_idx)
  218. return -EINVAL;
  219. break;
  220. case WLAN_CIPHER_SUITE_AES_CMAC:
  221. case WLAN_CIPHER_SUITE_BIP_CMAC_256:
  222. case WLAN_CIPHER_SUITE_BIP_GMAC_128:
  223. case WLAN_CIPHER_SUITE_BIP_GMAC_256:
  224. /* Disallow BIP (group-only) cipher as pairwise cipher */
  225. if (pairwise)
  226. return -EINVAL;
  227. if (key_idx < 4)
  228. return -EINVAL;
  229. break;
  230. case WLAN_CIPHER_SUITE_WEP40:
  231. case WLAN_CIPHER_SUITE_WEP104:
  232. if (key_idx > 3)
  233. return -EINVAL;
  234. default:
  235. break;
  236. }
  237. switch (params->cipher) {
  238. case WLAN_CIPHER_SUITE_WEP40:
  239. if (params->key_len != WLAN_KEY_LEN_WEP40)
  240. return -EINVAL;
  241. break;
  242. case WLAN_CIPHER_SUITE_TKIP:
  243. if (params->key_len != WLAN_KEY_LEN_TKIP)
  244. return -EINVAL;
  245. break;
  246. case WLAN_CIPHER_SUITE_CCMP:
  247. if (params->key_len != WLAN_KEY_LEN_CCMP)
  248. return -EINVAL;
  249. break;
  250. case WLAN_CIPHER_SUITE_CCMP_256:
  251. if (params->key_len != WLAN_KEY_LEN_CCMP_256)
  252. return -EINVAL;
  253. break;
  254. case WLAN_CIPHER_SUITE_GCMP:
  255. if (params->key_len != WLAN_KEY_LEN_GCMP)
  256. return -EINVAL;
  257. break;
  258. case WLAN_CIPHER_SUITE_GCMP_256:
  259. if (params->key_len != WLAN_KEY_LEN_GCMP_256)
  260. return -EINVAL;
  261. break;
  262. case WLAN_CIPHER_SUITE_WEP104:
  263. if (params->key_len != WLAN_KEY_LEN_WEP104)
  264. return -EINVAL;
  265. break;
  266. case WLAN_CIPHER_SUITE_AES_CMAC:
  267. if (params->key_len != WLAN_KEY_LEN_AES_CMAC)
  268. return -EINVAL;
  269. break;
  270. case WLAN_CIPHER_SUITE_BIP_CMAC_256:
  271. if (params->key_len != WLAN_KEY_LEN_BIP_CMAC_256)
  272. return -EINVAL;
  273. break;
  274. case WLAN_CIPHER_SUITE_BIP_GMAC_128:
  275. if (params->key_len != WLAN_KEY_LEN_BIP_GMAC_128)
  276. return -EINVAL;
  277. break;
  278. case WLAN_CIPHER_SUITE_BIP_GMAC_256:
  279. if (params->key_len != WLAN_KEY_LEN_BIP_GMAC_256)
  280. return -EINVAL;
  281. break;
  282. default:
  283. /*
  284. * We don't know anything about this algorithm,
  285. * allow using it -- but the driver must check
  286. * all parameters! We still check below whether
  287. * or not the driver supports this algorithm,
  288. * of course.
  289. */
  290. break;
  291. }
  292. if (params->seq) {
  293. switch (params->cipher) {
  294. case WLAN_CIPHER_SUITE_WEP40:
  295. case WLAN_CIPHER_SUITE_WEP104:
  296. /* These ciphers do not use key sequence */
  297. return -EINVAL;
  298. case WLAN_CIPHER_SUITE_TKIP:
  299. case WLAN_CIPHER_SUITE_CCMP:
  300. case WLAN_CIPHER_SUITE_CCMP_256:
  301. case WLAN_CIPHER_SUITE_GCMP:
  302. case WLAN_CIPHER_SUITE_GCMP_256:
  303. case WLAN_CIPHER_SUITE_AES_CMAC:
  304. case WLAN_CIPHER_SUITE_BIP_CMAC_256:
  305. case WLAN_CIPHER_SUITE_BIP_GMAC_128:
  306. case WLAN_CIPHER_SUITE_BIP_GMAC_256:
  307. if (params->seq_len != 6)
  308. return -EINVAL;
  309. break;
  310. }
  311. }
  312. if (!cfg80211_supported_cipher_suite(&rdev->wiphy, params->cipher))
  313. return -EINVAL;
  314. return 0;
  315. }
  316. unsigned int __attribute_const__ ieee80211_hdrlen(__le16 fc)
  317. {
  318. unsigned int hdrlen = 24;
  319. if (ieee80211_is_data(fc)) {
  320. if (ieee80211_has_a4(fc))
  321. hdrlen = 30;
  322. if (ieee80211_is_data_qos(fc)) {
  323. hdrlen += IEEE80211_QOS_CTL_LEN;
  324. if (ieee80211_has_order(fc))
  325. hdrlen += IEEE80211_HT_CTL_LEN;
  326. }
  327. goto out;
  328. }
  329. if (ieee80211_is_mgmt(fc)) {
  330. if (ieee80211_has_order(fc))
  331. hdrlen += IEEE80211_HT_CTL_LEN;
  332. goto out;
  333. }
  334. if (ieee80211_is_ctl(fc)) {
  335. /*
  336. * ACK and CTS are 10 bytes, all others 16. To see how
  337. * to get this condition consider
  338. * subtype mask: 0b0000000011110000 (0x00F0)
  339. * ACK subtype: 0b0000000011010000 (0x00D0)
  340. * CTS subtype: 0b0000000011000000 (0x00C0)
  341. * bits that matter: ^^^ (0x00E0)
  342. * value of those: 0b0000000011000000 (0x00C0)
  343. */
  344. if ((fc & cpu_to_le16(0x00E0)) == cpu_to_le16(0x00C0))
  345. hdrlen = 10;
  346. else
  347. hdrlen = 16;
  348. }
  349. out:
  350. return hdrlen;
  351. }
  352. EXPORT_SYMBOL(ieee80211_hdrlen);
  353. unsigned int ieee80211_get_hdrlen_from_skb(const struct sk_buff *skb)
  354. {
  355. const struct ieee80211_hdr *hdr =
  356. (const struct ieee80211_hdr *)skb->data;
  357. unsigned int hdrlen;
  358. if (unlikely(skb->len < 10))
  359. return 0;
  360. hdrlen = ieee80211_hdrlen(hdr->frame_control);
  361. if (unlikely(hdrlen > skb->len))
  362. return 0;
  363. return hdrlen;
  364. }
  365. EXPORT_SYMBOL(ieee80211_get_hdrlen_from_skb);
  366. static unsigned int __ieee80211_get_mesh_hdrlen(u8 flags)
  367. {
  368. int ae = flags & MESH_FLAGS_AE;
  369. /* 802.11-2012, 8.2.4.7.3 */
  370. switch (ae) {
  371. default:
  372. case 0:
  373. return 6;
  374. case MESH_FLAGS_AE_A4:
  375. return 12;
  376. case MESH_FLAGS_AE_A5_A6:
  377. return 18;
  378. }
  379. }
  380. unsigned int ieee80211_get_mesh_hdrlen(struct ieee80211s_hdr *meshhdr)
  381. {
  382. return __ieee80211_get_mesh_hdrlen(meshhdr->flags);
  383. }
  384. EXPORT_SYMBOL(ieee80211_get_mesh_hdrlen);
  385. int ieee80211_data_to_8023_exthdr(struct sk_buff *skb, struct ethhdr *ehdr,
  386. const u8 *addr, enum nl80211_iftype iftype)
  387. {
  388. struct ieee80211_hdr *hdr = (struct ieee80211_hdr *) skb->data;
  389. struct {
  390. u8 hdr[ETH_ALEN] __aligned(2);
  391. __be16 proto;
  392. } payload;
  393. struct ethhdr tmp;
  394. u16 hdrlen;
  395. u8 mesh_flags = 0;
  396. if (unlikely(!ieee80211_is_data_present(hdr->frame_control)))
  397. return -1;
  398. hdrlen = ieee80211_hdrlen(hdr->frame_control);
  399. if (skb->len < hdrlen + 8)
  400. return -1;
  401. /* convert IEEE 802.11 header + possible LLC headers into Ethernet
  402. * header
  403. * IEEE 802.11 address fields:
  404. * ToDS FromDS Addr1 Addr2 Addr3 Addr4
  405. * 0 0 DA SA BSSID n/a
  406. * 0 1 DA BSSID SA n/a
  407. * 1 0 BSSID SA DA n/a
  408. * 1 1 RA TA DA SA
  409. */
  410. memcpy(tmp.h_dest, ieee80211_get_DA(hdr), ETH_ALEN);
  411. memcpy(tmp.h_source, ieee80211_get_SA(hdr), ETH_ALEN);
  412. if (iftype == NL80211_IFTYPE_MESH_POINT)
  413. skb_copy_bits(skb, hdrlen, &mesh_flags, 1);
  414. mesh_flags &= MESH_FLAGS_AE;
  415. switch (hdr->frame_control &
  416. cpu_to_le16(IEEE80211_FCTL_TODS | IEEE80211_FCTL_FROMDS)) {
  417. case cpu_to_le16(IEEE80211_FCTL_TODS):
  418. if (unlikely(iftype != NL80211_IFTYPE_AP &&
  419. iftype != NL80211_IFTYPE_AP_VLAN &&
  420. iftype != NL80211_IFTYPE_P2P_GO))
  421. return -1;
  422. break;
  423. case cpu_to_le16(IEEE80211_FCTL_TODS | IEEE80211_FCTL_FROMDS):
  424. if (unlikely(iftype != NL80211_IFTYPE_WDS &&
  425. iftype != NL80211_IFTYPE_MESH_POINT &&
  426. iftype != NL80211_IFTYPE_AP_VLAN &&
  427. iftype != NL80211_IFTYPE_STATION))
  428. return -1;
  429. if (iftype == NL80211_IFTYPE_MESH_POINT) {
  430. if (mesh_flags == MESH_FLAGS_AE_A4)
  431. return -1;
  432. if (mesh_flags == MESH_FLAGS_AE_A5_A6) {
  433. skb_copy_bits(skb, hdrlen +
  434. offsetof(struct ieee80211s_hdr, eaddr1),
  435. tmp.h_dest, 2 * ETH_ALEN);
  436. }
  437. hdrlen += __ieee80211_get_mesh_hdrlen(mesh_flags);
  438. }
  439. break;
  440. case cpu_to_le16(IEEE80211_FCTL_FROMDS):
  441. if ((iftype != NL80211_IFTYPE_STATION &&
  442. iftype != NL80211_IFTYPE_P2P_CLIENT &&
  443. iftype != NL80211_IFTYPE_MESH_POINT) ||
  444. (is_multicast_ether_addr(tmp.h_dest) &&
  445. ether_addr_equal(tmp.h_source, addr)))
  446. return -1;
  447. if (iftype == NL80211_IFTYPE_MESH_POINT) {
  448. if (mesh_flags == MESH_FLAGS_AE_A5_A6)
  449. return -1;
  450. if (mesh_flags == MESH_FLAGS_AE_A4)
  451. skb_copy_bits(skb, hdrlen +
  452. offsetof(struct ieee80211s_hdr, eaddr1),
  453. tmp.h_source, ETH_ALEN);
  454. hdrlen += __ieee80211_get_mesh_hdrlen(mesh_flags);
  455. }
  456. break;
  457. case cpu_to_le16(0):
  458. if (iftype != NL80211_IFTYPE_ADHOC &&
  459. iftype != NL80211_IFTYPE_STATION &&
  460. iftype != NL80211_IFTYPE_OCB)
  461. return -1;
  462. break;
  463. }
  464. skb_copy_bits(skb, hdrlen, &payload, sizeof(payload));
  465. tmp.h_proto = payload.proto;
  466. if (likely((ether_addr_equal(payload.hdr, rfc1042_header) &&
  467. tmp.h_proto != htons(ETH_P_AARP) &&
  468. tmp.h_proto != htons(ETH_P_IPX)) ||
  469. ether_addr_equal(payload.hdr, bridge_tunnel_header)))
  470. /* remove RFC1042 or Bridge-Tunnel encapsulation and
  471. * replace EtherType */
  472. hdrlen += ETH_ALEN + 2;
  473. else
  474. tmp.h_proto = htons(skb->len - hdrlen);
  475. pskb_pull(skb, hdrlen);
  476. if (!ehdr)
  477. ehdr = skb_push(skb, sizeof(struct ethhdr));
  478. memcpy(ehdr, &tmp, sizeof(tmp));
  479. return 0;
  480. }
  481. EXPORT_SYMBOL(ieee80211_data_to_8023_exthdr);
  482. int ieee80211_data_from_8023(struct sk_buff *skb, const u8 *addr,
  483. enum nl80211_iftype iftype,
  484. const u8 *bssid, bool qos)
  485. {
  486. struct ieee80211_hdr hdr;
  487. u16 hdrlen, ethertype;
  488. __le16 fc;
  489. const u8 *encaps_data;
  490. int encaps_len, skip_header_bytes;
  491. int nh_pos, h_pos;
  492. int head_need;
  493. if (unlikely(skb->len < ETH_HLEN))
  494. return -EINVAL;
  495. nh_pos = skb_network_header(skb) - skb->data;
  496. h_pos = skb_transport_header(skb) - skb->data;
  497. /* convert Ethernet header to proper 802.11 header (based on
  498. * operation mode) */
  499. ethertype = (skb->data[12] << 8) | skb->data[13];
  500. fc = cpu_to_le16(IEEE80211_FTYPE_DATA | IEEE80211_STYPE_DATA);
  501. switch (iftype) {
  502. case NL80211_IFTYPE_AP:
  503. case NL80211_IFTYPE_AP_VLAN:
  504. case NL80211_IFTYPE_P2P_GO:
  505. fc |= cpu_to_le16(IEEE80211_FCTL_FROMDS);
  506. /* DA BSSID SA */
  507. memcpy(hdr.addr1, skb->data, ETH_ALEN);
  508. memcpy(hdr.addr2, addr, ETH_ALEN);
  509. memcpy(hdr.addr3, skb->data + ETH_ALEN, ETH_ALEN);
  510. hdrlen = 24;
  511. break;
  512. case NL80211_IFTYPE_STATION:
  513. case NL80211_IFTYPE_P2P_CLIENT:
  514. fc |= cpu_to_le16(IEEE80211_FCTL_TODS);
  515. /* BSSID SA DA */
  516. memcpy(hdr.addr1, bssid, ETH_ALEN);
  517. memcpy(hdr.addr2, skb->data + ETH_ALEN, ETH_ALEN);
  518. memcpy(hdr.addr3, skb->data, ETH_ALEN);
  519. hdrlen = 24;
  520. break;
  521. case NL80211_IFTYPE_OCB:
  522. case NL80211_IFTYPE_ADHOC:
  523. /* DA SA BSSID */
  524. memcpy(hdr.addr1, skb->data, ETH_ALEN);
  525. memcpy(hdr.addr2, skb->data + ETH_ALEN, ETH_ALEN);
  526. memcpy(hdr.addr3, bssid, ETH_ALEN);
  527. hdrlen = 24;
  528. break;
  529. default:
  530. return -EOPNOTSUPP;
  531. }
  532. if (qos) {
  533. fc |= cpu_to_le16(IEEE80211_STYPE_QOS_DATA);
  534. hdrlen += 2;
  535. }
  536. hdr.frame_control = fc;
  537. hdr.duration_id = 0;
  538. hdr.seq_ctrl = 0;
  539. skip_header_bytes = ETH_HLEN;
  540. if (ethertype == ETH_P_AARP || ethertype == ETH_P_IPX) {
  541. encaps_data = bridge_tunnel_header;
  542. encaps_len = sizeof(bridge_tunnel_header);
  543. skip_header_bytes -= 2;
  544. } else if (ethertype >= ETH_P_802_3_MIN) {
  545. encaps_data = rfc1042_header;
  546. encaps_len = sizeof(rfc1042_header);
  547. skip_header_bytes -= 2;
  548. } else {
  549. encaps_data = NULL;
  550. encaps_len = 0;
  551. }
  552. skb_pull(skb, skip_header_bytes);
  553. nh_pos -= skip_header_bytes;
  554. h_pos -= skip_header_bytes;
  555. head_need = hdrlen + encaps_len - skb_headroom(skb);
  556. if (head_need > 0 || skb_cloned(skb)) {
  557. head_need = max(head_need, 0);
  558. if (head_need)
  559. skb_orphan(skb);
  560. if (pskb_expand_head(skb, head_need, 0, GFP_ATOMIC))
  561. return -ENOMEM;
  562. }
  563. if (encaps_data) {
  564. memcpy(skb_push(skb, encaps_len), encaps_data, encaps_len);
  565. nh_pos += encaps_len;
  566. h_pos += encaps_len;
  567. }
  568. memcpy(skb_push(skb, hdrlen), &hdr, hdrlen);
  569. nh_pos += hdrlen;
  570. h_pos += hdrlen;
  571. /* Update skb pointers to various headers since this modified frame
  572. * is going to go through Linux networking code that may potentially
  573. * need things like pointer to IP header. */
  574. skb_reset_mac_header(skb);
  575. skb_set_network_header(skb, nh_pos);
  576. skb_set_transport_header(skb, h_pos);
  577. return 0;
  578. }
  579. EXPORT_SYMBOL(ieee80211_data_from_8023);
  580. static void
  581. __frame_add_frag(struct sk_buff *skb, struct page *page,
  582. void *ptr, int len, int size)
  583. {
  584. struct skb_shared_info *sh = skb_shinfo(skb);
  585. int page_offset;
  586. page_ref_inc(page);
  587. page_offset = ptr - page_address(page);
  588. skb_add_rx_frag(skb, sh->nr_frags, page, page_offset, len, size);
  589. }
  590. static void
  591. __ieee80211_amsdu_copy_frag(struct sk_buff *skb, struct sk_buff *frame,
  592. int offset, int len)
  593. {
  594. struct skb_shared_info *sh = skb_shinfo(skb);
  595. const skb_frag_t *frag = &sh->frags[0];
  596. struct page *frag_page;
  597. void *frag_ptr;
  598. int frag_len, frag_size;
  599. int head_size = skb->len - skb->data_len;
  600. int cur_len;
  601. frag_page = virt_to_head_page(skb->head);
  602. frag_ptr = skb->data;
  603. frag_size = head_size;
  604. while (offset >= frag_size) {
  605. offset -= frag_size;
  606. frag_page = skb_frag_page(frag);
  607. frag_ptr = skb_frag_address(frag);
  608. frag_size = skb_frag_size(frag);
  609. frag++;
  610. }
  611. frag_ptr += offset;
  612. frag_len = frag_size - offset;
  613. cur_len = min(len, frag_len);
  614. __frame_add_frag(frame, frag_page, frag_ptr, cur_len, frag_size);
  615. len -= cur_len;
  616. while (len > 0) {
  617. frag_len = skb_frag_size(frag);
  618. cur_len = min(len, frag_len);
  619. __frame_add_frag(frame, skb_frag_page(frag),
  620. skb_frag_address(frag), cur_len, frag_len);
  621. len -= cur_len;
  622. frag++;
  623. }
  624. }
  625. static struct sk_buff *
  626. __ieee80211_amsdu_copy(struct sk_buff *skb, unsigned int hlen,
  627. int offset, int len, bool reuse_frag)
  628. {
  629. struct sk_buff *frame;
  630. int cur_len = len;
  631. if (skb->len - offset < len)
  632. return NULL;
  633. /*
  634. * When reusing framents, copy some data to the head to simplify
  635. * ethernet header handling and speed up protocol header processing
  636. * in the stack later.
  637. */
  638. if (reuse_frag)
  639. cur_len = min_t(int, len, 32);
  640. /*
  641. * Allocate and reserve two bytes more for payload
  642. * alignment since sizeof(struct ethhdr) is 14.
  643. */
  644. frame = dev_alloc_skb(hlen + sizeof(struct ethhdr) + 2 + cur_len);
  645. if (!frame)
  646. return NULL;
  647. skb_reserve(frame, hlen + sizeof(struct ethhdr) + 2);
  648. skb_copy_bits(skb, offset, skb_put(frame, cur_len), cur_len);
  649. len -= cur_len;
  650. if (!len)
  651. return frame;
  652. offset += cur_len;
  653. __ieee80211_amsdu_copy_frag(skb, frame, offset, len);
  654. return frame;
  655. }
  656. void ieee80211_amsdu_to_8023s(struct sk_buff *skb, struct sk_buff_head *list,
  657. const u8 *addr, enum nl80211_iftype iftype,
  658. const unsigned int extra_headroom,
  659. const u8 *check_da, const u8 *check_sa)
  660. {
  661. unsigned int hlen = ALIGN(extra_headroom, 4);
  662. struct sk_buff *frame = NULL;
  663. u16 ethertype;
  664. u8 *payload;
  665. int offset = 0, remaining;
  666. struct ethhdr eth;
  667. bool reuse_frag = skb->head_frag && !skb_has_frag_list(skb);
  668. bool reuse_skb = false;
  669. bool last = false;
  670. while (!last) {
  671. unsigned int subframe_len;
  672. int len;
  673. u8 padding;
  674. skb_copy_bits(skb, offset, &eth, sizeof(eth));
  675. len = ntohs(eth.h_proto);
  676. subframe_len = sizeof(struct ethhdr) + len;
  677. padding = (4 - subframe_len) & 0x3;
  678. /* the last MSDU has no padding */
  679. remaining = skb->len - offset;
  680. if (subframe_len > remaining)
  681. goto purge;
  682. offset += sizeof(struct ethhdr);
  683. last = remaining <= subframe_len + padding;
  684. /* FIXME: should we really accept multicast DA? */
  685. if ((check_da && !is_multicast_ether_addr(eth.h_dest) &&
  686. !ether_addr_equal(check_da, eth.h_dest)) ||
  687. (check_sa && !ether_addr_equal(check_sa, eth.h_source))) {
  688. offset += len + padding;
  689. continue;
  690. }
  691. /* reuse skb for the last subframe */
  692. if (!skb_is_nonlinear(skb) && !reuse_frag && last) {
  693. skb_pull(skb, offset);
  694. frame = skb;
  695. reuse_skb = true;
  696. } else {
  697. frame = __ieee80211_amsdu_copy(skb, hlen, offset, len,
  698. reuse_frag);
  699. if (!frame)
  700. goto purge;
  701. offset += len + padding;
  702. }
  703. skb_reset_network_header(frame);
  704. frame->dev = skb->dev;
  705. frame->priority = skb->priority;
  706. payload = frame->data;
  707. ethertype = (payload[6] << 8) | payload[7];
  708. if (likely((ether_addr_equal(payload, rfc1042_header) &&
  709. ethertype != ETH_P_AARP && ethertype != ETH_P_IPX) ||
  710. ether_addr_equal(payload, bridge_tunnel_header))) {
  711. eth.h_proto = htons(ethertype);
  712. skb_pull(frame, ETH_ALEN + 2);
  713. }
  714. memcpy(skb_push(frame, sizeof(eth)), &eth, sizeof(eth));
  715. __skb_queue_tail(list, frame);
  716. }
  717. if (!reuse_skb)
  718. dev_kfree_skb(skb);
  719. return;
  720. purge:
  721. __skb_queue_purge(list);
  722. dev_kfree_skb(skb);
  723. }
  724. EXPORT_SYMBOL(ieee80211_amsdu_to_8023s);
  725. /* Given a data frame determine the 802.1p/1d tag to use. */
  726. unsigned int cfg80211_classify8021d(struct sk_buff *skb,
  727. struct cfg80211_qos_map *qos_map)
  728. {
  729. unsigned int dscp;
  730. unsigned char vlan_priority;
  731. /* skb->priority values from 256->263 are magic values to
  732. * directly indicate a specific 802.1d priority. This is used
  733. * to allow 802.1d priority to be passed directly in from VLAN
  734. * tags, etc.
  735. */
  736. if (skb->priority >= 256 && skb->priority <= 263)
  737. return skb->priority - 256;
  738. if (skb_vlan_tag_present(skb)) {
  739. vlan_priority = (skb_vlan_tag_get(skb) & VLAN_PRIO_MASK)
  740. >> VLAN_PRIO_SHIFT;
  741. if (vlan_priority > 0)
  742. return vlan_priority;
  743. }
  744. switch (skb->protocol) {
  745. case htons(ETH_P_IP):
  746. dscp = ipv4_get_dsfield(ip_hdr(skb)) & 0xfc;
  747. break;
  748. case htons(ETH_P_IPV6):
  749. dscp = ipv6_get_dsfield(ipv6_hdr(skb)) & 0xfc;
  750. break;
  751. case htons(ETH_P_MPLS_UC):
  752. case htons(ETH_P_MPLS_MC): {
  753. struct mpls_label mpls_tmp, *mpls;
  754. mpls = skb_header_pointer(skb, sizeof(struct ethhdr),
  755. sizeof(*mpls), &mpls_tmp);
  756. if (!mpls)
  757. return 0;
  758. return (ntohl(mpls->entry) & MPLS_LS_TC_MASK)
  759. >> MPLS_LS_TC_SHIFT;
  760. }
  761. case htons(ETH_P_80221):
  762. /* 802.21 is always network control traffic */
  763. return 7;
  764. default:
  765. return 0;
  766. }
  767. if (qos_map) {
  768. unsigned int i, tmp_dscp = dscp >> 2;
  769. for (i = 0; i < qos_map->num_des; i++) {
  770. if (tmp_dscp == qos_map->dscp_exception[i].dscp)
  771. return qos_map->dscp_exception[i].up;
  772. }
  773. for (i = 0; i < 8; i++) {
  774. if (tmp_dscp >= qos_map->up[i].low &&
  775. tmp_dscp <= qos_map->up[i].high)
  776. return i;
  777. }
  778. }
  779. return dscp >> 5;
  780. }
  781. EXPORT_SYMBOL(cfg80211_classify8021d);
  782. const u8 *ieee80211_bss_get_ie(struct cfg80211_bss *bss, u8 ie)
  783. {
  784. const struct cfg80211_bss_ies *ies;
  785. ies = rcu_dereference(bss->ies);
  786. if (!ies)
  787. return NULL;
  788. return cfg80211_find_ie(ie, ies->data, ies->len);
  789. }
  790. EXPORT_SYMBOL(ieee80211_bss_get_ie);
  791. void cfg80211_upload_connect_keys(struct wireless_dev *wdev)
  792. {
  793. struct cfg80211_registered_device *rdev = wiphy_to_rdev(wdev->wiphy);
  794. struct net_device *dev = wdev->netdev;
  795. int i;
  796. if (!wdev->connect_keys)
  797. return;
  798. for (i = 0; i < CFG80211_MAX_WEP_KEYS; i++) {
  799. if (!wdev->connect_keys->params[i].cipher)
  800. continue;
  801. if (rdev_add_key(rdev, dev, i, false, NULL,
  802. &wdev->connect_keys->params[i])) {
  803. netdev_err(dev, "failed to set key %d\n", i);
  804. continue;
  805. }
  806. if (wdev->connect_keys->def == i &&
  807. rdev_set_default_key(rdev, dev, i, true, true)) {
  808. netdev_err(dev, "failed to set defkey %d\n", i);
  809. continue;
  810. }
  811. }
  812. kzfree(wdev->connect_keys);
  813. wdev->connect_keys = NULL;
  814. }
  815. void cfg80211_process_wdev_events(struct wireless_dev *wdev)
  816. {
  817. struct cfg80211_event *ev;
  818. unsigned long flags;
  819. spin_lock_irqsave(&wdev->event_lock, flags);
  820. while (!list_empty(&wdev->event_list)) {
  821. ev = list_first_entry(&wdev->event_list,
  822. struct cfg80211_event, list);
  823. list_del(&ev->list);
  824. spin_unlock_irqrestore(&wdev->event_lock, flags);
  825. wdev_lock(wdev);
  826. switch (ev->type) {
  827. case EVENT_CONNECT_RESULT:
  828. __cfg80211_connect_result(
  829. wdev->netdev,
  830. &ev->cr,
  831. ev->cr.status == WLAN_STATUS_SUCCESS);
  832. break;
  833. case EVENT_ROAMED:
  834. __cfg80211_roamed(wdev, &ev->rm);
  835. break;
  836. case EVENT_DISCONNECTED:
  837. __cfg80211_disconnected(wdev->netdev,
  838. ev->dc.ie, ev->dc.ie_len,
  839. ev->dc.reason,
  840. !ev->dc.locally_generated);
  841. break;
  842. case EVENT_IBSS_JOINED:
  843. __cfg80211_ibss_joined(wdev->netdev, ev->ij.bssid,
  844. ev->ij.channel);
  845. break;
  846. case EVENT_STOPPED:
  847. __cfg80211_leave(wiphy_to_rdev(wdev->wiphy), wdev);
  848. break;
  849. }
  850. wdev_unlock(wdev);
  851. kfree(ev);
  852. spin_lock_irqsave(&wdev->event_lock, flags);
  853. }
  854. spin_unlock_irqrestore(&wdev->event_lock, flags);
  855. }
  856. void cfg80211_process_rdev_events(struct cfg80211_registered_device *rdev)
  857. {
  858. struct wireless_dev *wdev;
  859. ASSERT_RTNL();
  860. list_for_each_entry(wdev, &rdev->wiphy.wdev_list, list)
  861. cfg80211_process_wdev_events(wdev);
  862. }
  863. int cfg80211_change_iface(struct cfg80211_registered_device *rdev,
  864. struct net_device *dev, enum nl80211_iftype ntype,
  865. struct vif_params *params)
  866. {
  867. int err;
  868. enum nl80211_iftype otype = dev->ieee80211_ptr->iftype;
  869. ASSERT_RTNL();
  870. /* don't support changing VLANs, you just re-create them */
  871. if (otype == NL80211_IFTYPE_AP_VLAN)
  872. return -EOPNOTSUPP;
  873. /* cannot change into P2P device or NAN */
  874. if (ntype == NL80211_IFTYPE_P2P_DEVICE ||
  875. ntype == NL80211_IFTYPE_NAN)
  876. return -EOPNOTSUPP;
  877. if (!rdev->ops->change_virtual_intf ||
  878. !(rdev->wiphy.interface_modes & (1 << ntype)))
  879. return -EOPNOTSUPP;
  880. /* if it's part of a bridge, reject changing type to station/ibss */
  881. if ((dev->priv_flags & IFF_BRIDGE_PORT) &&
  882. (ntype == NL80211_IFTYPE_ADHOC ||
  883. ntype == NL80211_IFTYPE_STATION ||
  884. ntype == NL80211_IFTYPE_P2P_CLIENT))
  885. return -EBUSY;
  886. if (ntype != otype) {
  887. dev->ieee80211_ptr->use_4addr = false;
  888. dev->ieee80211_ptr->mesh_id_up_len = 0;
  889. wdev_lock(dev->ieee80211_ptr);
  890. rdev_set_qos_map(rdev, dev, NULL);
  891. wdev_unlock(dev->ieee80211_ptr);
  892. switch (otype) {
  893. case NL80211_IFTYPE_AP:
  894. cfg80211_stop_ap(rdev, dev, true);
  895. break;
  896. case NL80211_IFTYPE_ADHOC:
  897. cfg80211_leave_ibss(rdev, dev, false);
  898. break;
  899. case NL80211_IFTYPE_STATION:
  900. case NL80211_IFTYPE_P2P_CLIENT:
  901. wdev_lock(dev->ieee80211_ptr);
  902. cfg80211_disconnect(rdev, dev,
  903. WLAN_REASON_DEAUTH_LEAVING, true);
  904. wdev_unlock(dev->ieee80211_ptr);
  905. break;
  906. case NL80211_IFTYPE_MESH_POINT:
  907. /* mesh should be handled? */
  908. break;
  909. default:
  910. break;
  911. }
  912. cfg80211_process_rdev_events(rdev);
  913. }
  914. err = rdev_change_virtual_intf(rdev, dev, ntype, params);
  915. WARN_ON(!err && dev->ieee80211_ptr->iftype != ntype);
  916. if (!err && params && params->use_4addr != -1)
  917. dev->ieee80211_ptr->use_4addr = params->use_4addr;
  918. if (!err) {
  919. dev->priv_flags &= ~IFF_DONT_BRIDGE;
  920. switch (ntype) {
  921. case NL80211_IFTYPE_STATION:
  922. if (dev->ieee80211_ptr->use_4addr)
  923. break;
  924. /* fall through */
  925. case NL80211_IFTYPE_OCB:
  926. case NL80211_IFTYPE_P2P_CLIENT:
  927. case NL80211_IFTYPE_ADHOC:
  928. dev->priv_flags |= IFF_DONT_BRIDGE;
  929. break;
  930. case NL80211_IFTYPE_P2P_GO:
  931. case NL80211_IFTYPE_AP:
  932. case NL80211_IFTYPE_AP_VLAN:
  933. case NL80211_IFTYPE_WDS:
  934. case NL80211_IFTYPE_MESH_POINT:
  935. /* bridging OK */
  936. break;
  937. case NL80211_IFTYPE_MONITOR:
  938. /* monitor can't bridge anyway */
  939. break;
  940. case NL80211_IFTYPE_UNSPECIFIED:
  941. case NUM_NL80211_IFTYPES:
  942. /* not happening */
  943. break;
  944. case NL80211_IFTYPE_P2P_DEVICE:
  945. case NL80211_IFTYPE_NAN:
  946. WARN_ON(1);
  947. break;
  948. }
  949. }
  950. if (!err && ntype != otype && netif_running(dev)) {
  951. cfg80211_update_iface_num(rdev, ntype, 1);
  952. cfg80211_update_iface_num(rdev, otype, -1);
  953. }
  954. return err;
  955. }
  956. static u32 cfg80211_calculate_bitrate_ht(struct rate_info *rate)
  957. {
  958. int modulation, streams, bitrate;
  959. /* the formula below does only work for MCS values smaller than 32 */
  960. if (WARN_ON_ONCE(rate->mcs >= 32))
  961. return 0;
  962. modulation = rate->mcs & 7;
  963. streams = (rate->mcs >> 3) + 1;
  964. bitrate = (rate->bw == RATE_INFO_BW_40) ? 13500000 : 6500000;
  965. if (modulation < 4)
  966. bitrate *= (modulation + 1);
  967. else if (modulation == 4)
  968. bitrate *= (modulation + 2);
  969. else
  970. bitrate *= (modulation + 3);
  971. bitrate *= streams;
  972. if (rate->flags & RATE_INFO_FLAGS_SHORT_GI)
  973. bitrate = (bitrate / 9) * 10;
  974. /* do NOT round down here */
  975. return (bitrate + 50000) / 100000;
  976. }
  977. static u32 cfg80211_calculate_bitrate_60g(struct rate_info *rate)
  978. {
  979. static const u32 __mcs2bitrate[] = {
  980. /* control PHY */
  981. [0] = 275,
  982. /* SC PHY */
  983. [1] = 3850,
  984. [2] = 7700,
  985. [3] = 9625,
  986. [4] = 11550,
  987. [5] = 12512, /* 1251.25 mbps */
  988. [6] = 15400,
  989. [7] = 19250,
  990. [8] = 23100,
  991. [9] = 25025,
  992. [10] = 30800,
  993. [11] = 38500,
  994. [12] = 46200,
  995. /* OFDM PHY */
  996. [13] = 6930,
  997. [14] = 8662, /* 866.25 mbps */
  998. [15] = 13860,
  999. [16] = 17325,
  1000. [17] = 20790,
  1001. [18] = 27720,
  1002. [19] = 34650,
  1003. [20] = 41580,
  1004. [21] = 45045,
  1005. [22] = 51975,
  1006. [23] = 62370,
  1007. [24] = 67568, /* 6756.75 mbps */
  1008. /* LP-SC PHY */
  1009. [25] = 6260,
  1010. [26] = 8340,
  1011. [27] = 11120,
  1012. [28] = 12510,
  1013. [29] = 16680,
  1014. [30] = 22240,
  1015. [31] = 25030,
  1016. };
  1017. if (WARN_ON_ONCE(rate->mcs >= ARRAY_SIZE(__mcs2bitrate)))
  1018. return 0;
  1019. return __mcs2bitrate[rate->mcs];
  1020. }
  1021. static u32 cfg80211_calculate_bitrate_vht(struct rate_info *rate)
  1022. {
  1023. static const u32 base[4][10] = {
  1024. { 6500000,
  1025. 13000000,
  1026. 19500000,
  1027. 26000000,
  1028. 39000000,
  1029. 52000000,
  1030. 58500000,
  1031. 65000000,
  1032. 78000000,
  1033. /* not in the spec, but some devices use this: */
  1034. 86500000,
  1035. },
  1036. { 13500000,
  1037. 27000000,
  1038. 40500000,
  1039. 54000000,
  1040. 81000000,
  1041. 108000000,
  1042. 121500000,
  1043. 135000000,
  1044. 162000000,
  1045. 180000000,
  1046. },
  1047. { 29300000,
  1048. 58500000,
  1049. 87800000,
  1050. 117000000,
  1051. 175500000,
  1052. 234000000,
  1053. 263300000,
  1054. 292500000,
  1055. 351000000,
  1056. 390000000,
  1057. },
  1058. { 58500000,
  1059. 117000000,
  1060. 175500000,
  1061. 234000000,
  1062. 351000000,
  1063. 468000000,
  1064. 526500000,
  1065. 585000000,
  1066. 702000000,
  1067. 780000000,
  1068. },
  1069. };
  1070. u32 bitrate;
  1071. int idx;
  1072. if (rate->mcs > 9)
  1073. goto warn;
  1074. switch (rate->bw) {
  1075. case RATE_INFO_BW_160:
  1076. idx = 3;
  1077. break;
  1078. case RATE_INFO_BW_80:
  1079. idx = 2;
  1080. break;
  1081. case RATE_INFO_BW_40:
  1082. idx = 1;
  1083. break;
  1084. case RATE_INFO_BW_5:
  1085. case RATE_INFO_BW_10:
  1086. default:
  1087. goto warn;
  1088. case RATE_INFO_BW_20:
  1089. idx = 0;
  1090. }
  1091. bitrate = base[idx][rate->mcs];
  1092. bitrate *= rate->nss;
  1093. if (rate->flags & RATE_INFO_FLAGS_SHORT_GI)
  1094. bitrate = (bitrate / 9) * 10;
  1095. /* do NOT round down here */
  1096. return (bitrate + 50000) / 100000;
  1097. warn:
  1098. WARN_ONCE(1, "invalid rate bw=%d, mcs=%d, nss=%d\n",
  1099. rate->bw, rate->mcs, rate->nss);
  1100. return 0;
  1101. }
  1102. u32 cfg80211_calculate_bitrate(struct rate_info *rate)
  1103. {
  1104. if (rate->flags & RATE_INFO_FLAGS_MCS)
  1105. return cfg80211_calculate_bitrate_ht(rate);
  1106. if (rate->flags & RATE_INFO_FLAGS_60G)
  1107. return cfg80211_calculate_bitrate_60g(rate);
  1108. if (rate->flags & RATE_INFO_FLAGS_VHT_MCS)
  1109. return cfg80211_calculate_bitrate_vht(rate);
  1110. return rate->legacy;
  1111. }
  1112. EXPORT_SYMBOL(cfg80211_calculate_bitrate);
  1113. int cfg80211_get_p2p_attr(const u8 *ies, unsigned int len,
  1114. enum ieee80211_p2p_attr_id attr,
  1115. u8 *buf, unsigned int bufsize)
  1116. {
  1117. u8 *out = buf;
  1118. u16 attr_remaining = 0;
  1119. bool desired_attr = false;
  1120. u16 desired_len = 0;
  1121. while (len > 0) {
  1122. unsigned int iedatalen;
  1123. unsigned int copy;
  1124. const u8 *iedata;
  1125. if (len < 2)
  1126. return -EILSEQ;
  1127. iedatalen = ies[1];
  1128. if (iedatalen + 2 > len)
  1129. return -EILSEQ;
  1130. if (ies[0] != WLAN_EID_VENDOR_SPECIFIC)
  1131. goto cont;
  1132. if (iedatalen < 4)
  1133. goto cont;
  1134. iedata = ies + 2;
  1135. /* check WFA OUI, P2P subtype */
  1136. if (iedata[0] != 0x50 || iedata[1] != 0x6f ||
  1137. iedata[2] != 0x9a || iedata[3] != 0x09)
  1138. goto cont;
  1139. iedatalen -= 4;
  1140. iedata += 4;
  1141. /* check attribute continuation into this IE */
  1142. copy = min_t(unsigned int, attr_remaining, iedatalen);
  1143. if (copy && desired_attr) {
  1144. desired_len += copy;
  1145. if (out) {
  1146. memcpy(out, iedata, min(bufsize, copy));
  1147. out += min(bufsize, copy);
  1148. bufsize -= min(bufsize, copy);
  1149. }
  1150. if (copy == attr_remaining)
  1151. return desired_len;
  1152. }
  1153. attr_remaining -= copy;
  1154. if (attr_remaining)
  1155. goto cont;
  1156. iedatalen -= copy;
  1157. iedata += copy;
  1158. while (iedatalen > 0) {
  1159. u16 attr_len;
  1160. /* P2P attribute ID & size must fit */
  1161. if (iedatalen < 3)
  1162. return -EILSEQ;
  1163. desired_attr = iedata[0] == attr;
  1164. attr_len = get_unaligned_le16(iedata + 1);
  1165. iedatalen -= 3;
  1166. iedata += 3;
  1167. copy = min_t(unsigned int, attr_len, iedatalen);
  1168. if (desired_attr) {
  1169. desired_len += copy;
  1170. if (out) {
  1171. memcpy(out, iedata, min(bufsize, copy));
  1172. out += min(bufsize, copy);
  1173. bufsize -= min(bufsize, copy);
  1174. }
  1175. if (copy == attr_len)
  1176. return desired_len;
  1177. }
  1178. iedata += copy;
  1179. iedatalen -= copy;
  1180. attr_remaining = attr_len - copy;
  1181. }
  1182. cont:
  1183. len -= ies[1] + 2;
  1184. ies += ies[1] + 2;
  1185. }
  1186. if (attr_remaining && desired_attr)
  1187. return -EILSEQ;
  1188. return -ENOENT;
  1189. }
  1190. EXPORT_SYMBOL(cfg80211_get_p2p_attr);
  1191. static bool ieee80211_id_in_list(const u8 *ids, int n_ids, u8 id)
  1192. {
  1193. int i;
  1194. for (i = 0; i < n_ids; i++)
  1195. if (ids[i] == id)
  1196. return true;
  1197. return false;
  1198. }
  1199. static size_t skip_ie(const u8 *ies, size_t ielen, size_t pos)
  1200. {
  1201. /* we assume a validly formed IEs buffer */
  1202. u8 len = ies[pos + 1];
  1203. pos += 2 + len;
  1204. /* the IE itself must have 255 bytes for fragments to follow */
  1205. if (len < 255)
  1206. return pos;
  1207. while (pos < ielen && ies[pos] == WLAN_EID_FRAGMENT) {
  1208. len = ies[pos + 1];
  1209. pos += 2 + len;
  1210. }
  1211. return pos;
  1212. }
  1213. size_t ieee80211_ie_split_ric(const u8 *ies, size_t ielen,
  1214. const u8 *ids, int n_ids,
  1215. const u8 *after_ric, int n_after_ric,
  1216. size_t offset)
  1217. {
  1218. size_t pos = offset;
  1219. while (pos < ielen && ieee80211_id_in_list(ids, n_ids, ies[pos])) {
  1220. if (ies[pos] == WLAN_EID_RIC_DATA && n_after_ric) {
  1221. pos = skip_ie(ies, ielen, pos);
  1222. while (pos < ielen &&
  1223. !ieee80211_id_in_list(after_ric, n_after_ric,
  1224. ies[pos]))
  1225. pos = skip_ie(ies, ielen, pos);
  1226. } else {
  1227. pos = skip_ie(ies, ielen, pos);
  1228. }
  1229. }
  1230. return pos;
  1231. }
  1232. EXPORT_SYMBOL(ieee80211_ie_split_ric);
  1233. bool ieee80211_operating_class_to_band(u8 operating_class,
  1234. enum nl80211_band *band)
  1235. {
  1236. switch (operating_class) {
  1237. case 112:
  1238. case 115 ... 127:
  1239. case 128 ... 130:
  1240. *band = NL80211_BAND_5GHZ;
  1241. return true;
  1242. case 81:
  1243. case 82:
  1244. case 83:
  1245. case 84:
  1246. *band = NL80211_BAND_2GHZ;
  1247. return true;
  1248. case 180:
  1249. *band = NL80211_BAND_60GHZ;
  1250. return true;
  1251. }
  1252. return false;
  1253. }
  1254. EXPORT_SYMBOL(ieee80211_operating_class_to_band);
  1255. bool ieee80211_chandef_to_operating_class(struct cfg80211_chan_def *chandef,
  1256. u8 *op_class)
  1257. {
  1258. u8 vht_opclass;
  1259. u16 freq = chandef->center_freq1;
  1260. if (freq >= 2412 && freq <= 2472) {
  1261. if (chandef->width > NL80211_CHAN_WIDTH_40)
  1262. return false;
  1263. /* 2.407 GHz, channels 1..13 */
  1264. if (chandef->width == NL80211_CHAN_WIDTH_40) {
  1265. if (freq > chandef->chan->center_freq)
  1266. *op_class = 83; /* HT40+ */
  1267. else
  1268. *op_class = 84; /* HT40- */
  1269. } else {
  1270. *op_class = 81;
  1271. }
  1272. return true;
  1273. }
  1274. if (freq == 2484) {
  1275. if (chandef->width > NL80211_CHAN_WIDTH_40)
  1276. return false;
  1277. *op_class = 82; /* channel 14 */
  1278. return true;
  1279. }
  1280. switch (chandef->width) {
  1281. case NL80211_CHAN_WIDTH_80:
  1282. vht_opclass = 128;
  1283. break;
  1284. case NL80211_CHAN_WIDTH_160:
  1285. vht_opclass = 129;
  1286. break;
  1287. case NL80211_CHAN_WIDTH_80P80:
  1288. vht_opclass = 130;
  1289. break;
  1290. case NL80211_CHAN_WIDTH_10:
  1291. case NL80211_CHAN_WIDTH_5:
  1292. return false; /* unsupported for now */
  1293. default:
  1294. vht_opclass = 0;
  1295. break;
  1296. }
  1297. /* 5 GHz, channels 36..48 */
  1298. if (freq >= 5180 && freq <= 5240) {
  1299. if (vht_opclass) {
  1300. *op_class = vht_opclass;
  1301. } else if (chandef->width == NL80211_CHAN_WIDTH_40) {
  1302. if (freq > chandef->chan->center_freq)
  1303. *op_class = 116;
  1304. else
  1305. *op_class = 117;
  1306. } else {
  1307. *op_class = 115;
  1308. }
  1309. return true;
  1310. }
  1311. /* 5 GHz, channels 52..64 */
  1312. if (freq >= 5260 && freq <= 5320) {
  1313. if (vht_opclass) {
  1314. *op_class = vht_opclass;
  1315. } else if (chandef->width == NL80211_CHAN_WIDTH_40) {
  1316. if (freq > chandef->chan->center_freq)
  1317. *op_class = 119;
  1318. else
  1319. *op_class = 120;
  1320. } else {
  1321. *op_class = 118;
  1322. }
  1323. return true;
  1324. }
  1325. /* 5 GHz, channels 100..144 */
  1326. if (freq >= 5500 && freq <= 5720) {
  1327. if (vht_opclass) {
  1328. *op_class = vht_opclass;
  1329. } else if (chandef->width == NL80211_CHAN_WIDTH_40) {
  1330. if (freq > chandef->chan->center_freq)
  1331. *op_class = 122;
  1332. else
  1333. *op_class = 123;
  1334. } else {
  1335. *op_class = 121;
  1336. }
  1337. return true;
  1338. }
  1339. /* 5 GHz, channels 149..169 */
  1340. if (freq >= 5745 && freq <= 5845) {
  1341. if (vht_opclass) {
  1342. *op_class = vht_opclass;
  1343. } else if (chandef->width == NL80211_CHAN_WIDTH_40) {
  1344. if (freq > chandef->chan->center_freq)
  1345. *op_class = 126;
  1346. else
  1347. *op_class = 127;
  1348. } else if (freq <= 5805) {
  1349. *op_class = 124;
  1350. } else {
  1351. *op_class = 125;
  1352. }
  1353. return true;
  1354. }
  1355. /* 56.16 GHz, channel 1..4 */
  1356. if (freq >= 56160 + 2160 * 1 && freq <= 56160 + 2160 * 4) {
  1357. if (chandef->width >= NL80211_CHAN_WIDTH_40)
  1358. return false;
  1359. *op_class = 180;
  1360. return true;
  1361. }
  1362. /* not supported yet */
  1363. return false;
  1364. }
  1365. EXPORT_SYMBOL(ieee80211_chandef_to_operating_class);
  1366. static void cfg80211_calculate_bi_data(struct wiphy *wiphy, u32 new_beacon_int,
  1367. u32 *beacon_int_gcd,
  1368. bool *beacon_int_different)
  1369. {
  1370. struct wireless_dev *wdev;
  1371. *beacon_int_gcd = 0;
  1372. *beacon_int_different = false;
  1373. list_for_each_entry(wdev, &wiphy->wdev_list, list) {
  1374. if (!wdev->beacon_interval)
  1375. continue;
  1376. if (!*beacon_int_gcd) {
  1377. *beacon_int_gcd = wdev->beacon_interval;
  1378. continue;
  1379. }
  1380. if (wdev->beacon_interval == *beacon_int_gcd)
  1381. continue;
  1382. *beacon_int_different = true;
  1383. *beacon_int_gcd = gcd(*beacon_int_gcd, wdev->beacon_interval);
  1384. }
  1385. if (new_beacon_int && *beacon_int_gcd != new_beacon_int) {
  1386. if (*beacon_int_gcd)
  1387. *beacon_int_different = true;
  1388. *beacon_int_gcd = gcd(*beacon_int_gcd, new_beacon_int);
  1389. }
  1390. }
  1391. int cfg80211_validate_beacon_int(struct cfg80211_registered_device *rdev,
  1392. enum nl80211_iftype iftype, u32 beacon_int)
  1393. {
  1394. /*
  1395. * This is just a basic pre-condition check; if interface combinations
  1396. * are possible the driver must already be checking those with a call
  1397. * to cfg80211_check_combinations(), in which case we'll validate more
  1398. * through the cfg80211_calculate_bi_data() call and code in
  1399. * cfg80211_iter_combinations().
  1400. */
  1401. if (beacon_int < 10 || beacon_int > 10000)
  1402. return -EINVAL;
  1403. return 0;
  1404. }
  1405. int cfg80211_iter_combinations(struct wiphy *wiphy,
  1406. struct iface_combination_params *params,
  1407. void (*iter)(const struct ieee80211_iface_combination *c,
  1408. void *data),
  1409. void *data)
  1410. {
  1411. const struct ieee80211_regdomain *regdom;
  1412. enum nl80211_dfs_regions region = 0;
  1413. int i, j, iftype;
  1414. int num_interfaces = 0;
  1415. u32 used_iftypes = 0;
  1416. u32 beacon_int_gcd;
  1417. bool beacon_int_different;
  1418. /*
  1419. * This is a bit strange, since the iteration used to rely only on
  1420. * the data given by the driver, but here it now relies on context,
  1421. * in form of the currently operating interfaces.
  1422. * This is OK for all current users, and saves us from having to
  1423. * push the GCD calculations into all the drivers.
  1424. * In the future, this should probably rely more on data that's in
  1425. * cfg80211 already - the only thing not would appear to be any new
  1426. * interfaces (while being brought up) and channel/radar data.
  1427. */
  1428. cfg80211_calculate_bi_data(wiphy, params->new_beacon_int,
  1429. &beacon_int_gcd, &beacon_int_different);
  1430. if (params->radar_detect) {
  1431. rcu_read_lock();
  1432. regdom = rcu_dereference(cfg80211_regdomain);
  1433. if (regdom)
  1434. region = regdom->dfs_region;
  1435. rcu_read_unlock();
  1436. }
  1437. for (iftype = 0; iftype < NUM_NL80211_IFTYPES; iftype++) {
  1438. num_interfaces += params->iftype_num[iftype];
  1439. if (params->iftype_num[iftype] > 0 &&
  1440. !(wiphy->software_iftypes & BIT(iftype)))
  1441. used_iftypes |= BIT(iftype);
  1442. }
  1443. for (i = 0; i < wiphy->n_iface_combinations; i++) {
  1444. const struct ieee80211_iface_combination *c;
  1445. struct ieee80211_iface_limit *limits;
  1446. u32 all_iftypes = 0;
  1447. c = &wiphy->iface_combinations[i];
  1448. if (num_interfaces > c->max_interfaces)
  1449. continue;
  1450. if (params->num_different_channels > c->num_different_channels)
  1451. continue;
  1452. limits = kmemdup(c->limits, sizeof(limits[0]) * c->n_limits,
  1453. GFP_KERNEL);
  1454. if (!limits)
  1455. return -ENOMEM;
  1456. for (iftype = 0; iftype < NUM_NL80211_IFTYPES; iftype++) {
  1457. if (wiphy->software_iftypes & BIT(iftype))
  1458. continue;
  1459. for (j = 0; j < c->n_limits; j++) {
  1460. all_iftypes |= limits[j].types;
  1461. if (!(limits[j].types & BIT(iftype)))
  1462. continue;
  1463. if (limits[j].max < params->iftype_num[iftype])
  1464. goto cont;
  1465. limits[j].max -= params->iftype_num[iftype];
  1466. }
  1467. }
  1468. if (params->radar_detect !=
  1469. (c->radar_detect_widths & params->radar_detect))
  1470. goto cont;
  1471. if (params->radar_detect && c->radar_detect_regions &&
  1472. !(c->radar_detect_regions & BIT(region)))
  1473. goto cont;
  1474. /* Finally check that all iftypes that we're currently
  1475. * using are actually part of this combination. If they
  1476. * aren't then we can't use this combination and have
  1477. * to continue to the next.
  1478. */
  1479. if ((all_iftypes & used_iftypes) != used_iftypes)
  1480. goto cont;
  1481. if (beacon_int_gcd) {
  1482. if (c->beacon_int_min_gcd &&
  1483. beacon_int_gcd < c->beacon_int_min_gcd)
  1484. goto cont;
  1485. if (!c->beacon_int_min_gcd && beacon_int_different)
  1486. goto cont;
  1487. }
  1488. /* This combination covered all interface types and
  1489. * supported the requested numbers, so we're good.
  1490. */
  1491. (*iter)(c, data);
  1492. cont:
  1493. kfree(limits);
  1494. }
  1495. return 0;
  1496. }
  1497. EXPORT_SYMBOL(cfg80211_iter_combinations);
  1498. static void
  1499. cfg80211_iter_sum_ifcombs(const struct ieee80211_iface_combination *c,
  1500. void *data)
  1501. {
  1502. int *num = data;
  1503. (*num)++;
  1504. }
  1505. int cfg80211_check_combinations(struct wiphy *wiphy,
  1506. struct iface_combination_params *params)
  1507. {
  1508. int err, num = 0;
  1509. err = cfg80211_iter_combinations(wiphy, params,
  1510. cfg80211_iter_sum_ifcombs, &num);
  1511. if (err)
  1512. return err;
  1513. if (num == 0)
  1514. return -EBUSY;
  1515. return 0;
  1516. }
  1517. EXPORT_SYMBOL(cfg80211_check_combinations);
  1518. int ieee80211_get_ratemask(struct ieee80211_supported_band *sband,
  1519. const u8 *rates, unsigned int n_rates,
  1520. u32 *mask)
  1521. {
  1522. int i, j;
  1523. if (!sband)
  1524. return -EINVAL;
  1525. if (n_rates == 0 || n_rates > NL80211_MAX_SUPP_RATES)
  1526. return -EINVAL;
  1527. *mask = 0;
  1528. for (i = 0; i < n_rates; i++) {
  1529. int rate = (rates[i] & 0x7f) * 5;
  1530. bool found = false;
  1531. for (j = 0; j < sband->n_bitrates; j++) {
  1532. if (sband->bitrates[j].bitrate == rate) {
  1533. found = true;
  1534. *mask |= BIT(j);
  1535. break;
  1536. }
  1537. }
  1538. if (!found)
  1539. return -EINVAL;
  1540. }
  1541. /*
  1542. * mask must have at least one bit set here since we
  1543. * didn't accept a 0-length rates array nor allowed
  1544. * entries in the array that didn't exist
  1545. */
  1546. return 0;
  1547. }
  1548. unsigned int ieee80211_get_num_supported_channels(struct wiphy *wiphy)
  1549. {
  1550. enum nl80211_band band;
  1551. unsigned int n_channels = 0;
  1552. for (band = 0; band < NUM_NL80211_BANDS; band++)
  1553. if (wiphy->bands[band])
  1554. n_channels += wiphy->bands[band]->n_channels;
  1555. return n_channels;
  1556. }
  1557. EXPORT_SYMBOL(ieee80211_get_num_supported_channels);
  1558. int cfg80211_get_station(struct net_device *dev, const u8 *mac_addr,
  1559. struct station_info *sinfo)
  1560. {
  1561. struct cfg80211_registered_device *rdev;
  1562. struct wireless_dev *wdev;
  1563. wdev = dev->ieee80211_ptr;
  1564. if (!wdev)
  1565. return -EOPNOTSUPP;
  1566. rdev = wiphy_to_rdev(wdev->wiphy);
  1567. if (!rdev->ops->get_station)
  1568. return -EOPNOTSUPP;
  1569. return rdev_get_station(rdev, dev, mac_addr, sinfo);
  1570. }
  1571. EXPORT_SYMBOL(cfg80211_get_station);
  1572. void cfg80211_free_nan_func(struct cfg80211_nan_func *f)
  1573. {
  1574. int i;
  1575. if (!f)
  1576. return;
  1577. kfree(f->serv_spec_info);
  1578. kfree(f->srf_bf);
  1579. kfree(f->srf_macs);
  1580. for (i = 0; i < f->num_rx_filters; i++)
  1581. kfree(f->rx_filters[i].filter);
  1582. for (i = 0; i < f->num_tx_filters; i++)
  1583. kfree(f->tx_filters[i].filter);
  1584. kfree(f->rx_filters);
  1585. kfree(f->tx_filters);
  1586. kfree(f);
  1587. }
  1588. EXPORT_SYMBOL(cfg80211_free_nan_func);
  1589. bool cfg80211_does_bw_fit_range(const struct ieee80211_freq_range *freq_range,
  1590. u32 center_freq_khz, u32 bw_khz)
  1591. {
  1592. u32 start_freq_khz, end_freq_khz;
  1593. start_freq_khz = center_freq_khz - (bw_khz / 2);
  1594. end_freq_khz = center_freq_khz + (bw_khz / 2);
  1595. if (start_freq_khz >= freq_range->start_freq_khz &&
  1596. end_freq_khz <= freq_range->end_freq_khz)
  1597. return true;
  1598. return false;
  1599. }
  1600. /* See IEEE 802.1H for LLC/SNAP encapsulation/decapsulation */
  1601. /* Ethernet-II snap header (RFC1042 for most EtherTypes) */
  1602. const unsigned char rfc1042_header[] __aligned(2) =
  1603. { 0xaa, 0xaa, 0x03, 0x00, 0x00, 0x00 };
  1604. EXPORT_SYMBOL(rfc1042_header);
  1605. /* Bridge-Tunnel header (for EtherTypes ETH_P_AARP and ETH_P_IPX) */
  1606. const unsigned char bridge_tunnel_header[] __aligned(2) =
  1607. { 0xaa, 0xaa, 0x03, 0x00, 0x00, 0xf8 };
  1608. EXPORT_SYMBOL(bridge_tunnel_header);