wl_cfg80211.c 98 KB

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  1. /*
  2. * Copyright (c) 2010 Broadcom Corporation
  3. *
  4. * Permission to use, copy, modify, and/or distribute this software for any
  5. * purpose with or without fee is hereby granted, provided that the above
  6. * copyright notice and this permission notice appear in all copies.
  7. *
  8. * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
  9. * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
  10. * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY
  11. * SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
  12. * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN ACTION
  13. * OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF OR IN
  14. * CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
  15. */
  16. /* Toplevel file. Relies on dhd_linux.c to send commands to the dongle. */
  17. #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
  18. #include <linux/kernel.h>
  19. #include <linux/if_arp.h>
  20. #include <linux/sched.h>
  21. #include <linux/kthread.h>
  22. #include <linux/netdevice.h>
  23. #include <linux/bitops.h>
  24. #include <linux/etherdevice.h>
  25. #include <linux/ieee80211.h>
  26. #include <linux/uaccess.h>
  27. #include <net/cfg80211.h>
  28. #include <net/netlink.h>
  29. #include <brcmu_utils.h>
  30. #include <defs.h>
  31. #include <brcmu_wifi.h>
  32. #include "dhd.h"
  33. #include "wl_cfg80211.h"
  34. #define BRCMF_ASSOC_PARAMS_FIXED_SIZE \
  35. (sizeof(struct brcmf_assoc_params_le) - sizeof(u16))
  36. static const u8 ether_bcast[ETH_ALEN] = {255, 255, 255, 255, 255, 255};
  37. static u32 brcmf_dbg_level = WL_DBG_ERR;
  38. static void brcmf_set_drvdata(struct brcmf_cfg80211_dev *dev, void *data)
  39. {
  40. dev->driver_data = data;
  41. }
  42. static void *brcmf_get_drvdata(struct brcmf_cfg80211_dev *dev)
  43. {
  44. void *data = NULL;
  45. if (dev)
  46. data = dev->driver_data;
  47. return data;
  48. }
  49. static
  50. struct brcmf_cfg80211_priv *brcmf_priv_get(struct brcmf_cfg80211_dev *cfg_dev)
  51. {
  52. struct brcmf_cfg80211_iface *ci = brcmf_get_drvdata(cfg_dev);
  53. return ci->cfg_priv;
  54. }
  55. static bool check_sys_up(struct wiphy *wiphy)
  56. {
  57. struct brcmf_cfg80211_priv *cfg_priv = wiphy_to_cfg(wiphy);
  58. if (!test_bit(WL_STATUS_READY, &cfg_priv->status)) {
  59. WL_INFO("device is not ready : status (%d)\n",
  60. (int)cfg_priv->status);
  61. return false;
  62. }
  63. return true;
  64. }
  65. #define CHAN2G(_channel, _freq, _flags) { \
  66. .band = IEEE80211_BAND_2GHZ, \
  67. .center_freq = (_freq), \
  68. .hw_value = (_channel), \
  69. .flags = (_flags), \
  70. .max_antenna_gain = 0, \
  71. .max_power = 30, \
  72. }
  73. #define CHAN5G(_channel, _flags) { \
  74. .band = IEEE80211_BAND_5GHZ, \
  75. .center_freq = 5000 + (5 * (_channel)), \
  76. .hw_value = (_channel), \
  77. .flags = (_flags), \
  78. .max_antenna_gain = 0, \
  79. .max_power = 30, \
  80. }
  81. #define RATE_TO_BASE100KBPS(rate) (((rate) * 10) / 2)
  82. #define RATETAB_ENT(_rateid, _flags) \
  83. { \
  84. .bitrate = RATE_TO_BASE100KBPS(_rateid), \
  85. .hw_value = (_rateid), \
  86. .flags = (_flags), \
  87. }
  88. static struct ieee80211_rate __wl_rates[] = {
  89. RATETAB_ENT(BRCM_RATE_1M, 0),
  90. RATETAB_ENT(BRCM_RATE_2M, IEEE80211_RATE_SHORT_PREAMBLE),
  91. RATETAB_ENT(BRCM_RATE_5M5, IEEE80211_RATE_SHORT_PREAMBLE),
  92. RATETAB_ENT(BRCM_RATE_11M, IEEE80211_RATE_SHORT_PREAMBLE),
  93. RATETAB_ENT(BRCM_RATE_6M, 0),
  94. RATETAB_ENT(BRCM_RATE_9M, 0),
  95. RATETAB_ENT(BRCM_RATE_12M, 0),
  96. RATETAB_ENT(BRCM_RATE_18M, 0),
  97. RATETAB_ENT(BRCM_RATE_24M, 0),
  98. RATETAB_ENT(BRCM_RATE_36M, 0),
  99. RATETAB_ENT(BRCM_RATE_48M, 0),
  100. RATETAB_ENT(BRCM_RATE_54M, 0),
  101. };
  102. #define wl_a_rates (__wl_rates + 4)
  103. #define wl_a_rates_size 8
  104. #define wl_g_rates (__wl_rates + 0)
  105. #define wl_g_rates_size 12
  106. static struct ieee80211_channel __wl_2ghz_channels[] = {
  107. CHAN2G(1, 2412, 0),
  108. CHAN2G(2, 2417, 0),
  109. CHAN2G(3, 2422, 0),
  110. CHAN2G(4, 2427, 0),
  111. CHAN2G(5, 2432, 0),
  112. CHAN2G(6, 2437, 0),
  113. CHAN2G(7, 2442, 0),
  114. CHAN2G(8, 2447, 0),
  115. CHAN2G(9, 2452, 0),
  116. CHAN2G(10, 2457, 0),
  117. CHAN2G(11, 2462, 0),
  118. CHAN2G(12, 2467, 0),
  119. CHAN2G(13, 2472, 0),
  120. CHAN2G(14, 2484, 0),
  121. };
  122. static struct ieee80211_channel __wl_5ghz_a_channels[] = {
  123. CHAN5G(34, 0), CHAN5G(36, 0),
  124. CHAN5G(38, 0), CHAN5G(40, 0),
  125. CHAN5G(42, 0), CHAN5G(44, 0),
  126. CHAN5G(46, 0), CHAN5G(48, 0),
  127. CHAN5G(52, 0), CHAN5G(56, 0),
  128. CHAN5G(60, 0), CHAN5G(64, 0),
  129. CHAN5G(100, 0), CHAN5G(104, 0),
  130. CHAN5G(108, 0), CHAN5G(112, 0),
  131. CHAN5G(116, 0), CHAN5G(120, 0),
  132. CHAN5G(124, 0), CHAN5G(128, 0),
  133. CHAN5G(132, 0), CHAN5G(136, 0),
  134. CHAN5G(140, 0), CHAN5G(149, 0),
  135. CHAN5G(153, 0), CHAN5G(157, 0),
  136. CHAN5G(161, 0), CHAN5G(165, 0),
  137. CHAN5G(184, 0), CHAN5G(188, 0),
  138. CHAN5G(192, 0), CHAN5G(196, 0),
  139. CHAN5G(200, 0), CHAN5G(204, 0),
  140. CHAN5G(208, 0), CHAN5G(212, 0),
  141. CHAN5G(216, 0),
  142. };
  143. static struct ieee80211_channel __wl_5ghz_n_channels[] = {
  144. CHAN5G(32, 0), CHAN5G(34, 0),
  145. CHAN5G(36, 0), CHAN5G(38, 0),
  146. CHAN5G(40, 0), CHAN5G(42, 0),
  147. CHAN5G(44, 0), CHAN5G(46, 0),
  148. CHAN5G(48, 0), CHAN5G(50, 0),
  149. CHAN5G(52, 0), CHAN5G(54, 0),
  150. CHAN5G(56, 0), CHAN5G(58, 0),
  151. CHAN5G(60, 0), CHAN5G(62, 0),
  152. CHAN5G(64, 0), CHAN5G(66, 0),
  153. CHAN5G(68, 0), CHAN5G(70, 0),
  154. CHAN5G(72, 0), CHAN5G(74, 0),
  155. CHAN5G(76, 0), CHAN5G(78, 0),
  156. CHAN5G(80, 0), CHAN5G(82, 0),
  157. CHAN5G(84, 0), CHAN5G(86, 0),
  158. CHAN5G(88, 0), CHAN5G(90, 0),
  159. CHAN5G(92, 0), CHAN5G(94, 0),
  160. CHAN5G(96, 0), CHAN5G(98, 0),
  161. CHAN5G(100, 0), CHAN5G(102, 0),
  162. CHAN5G(104, 0), CHAN5G(106, 0),
  163. CHAN5G(108, 0), CHAN5G(110, 0),
  164. CHAN5G(112, 0), CHAN5G(114, 0),
  165. CHAN5G(116, 0), CHAN5G(118, 0),
  166. CHAN5G(120, 0), CHAN5G(122, 0),
  167. CHAN5G(124, 0), CHAN5G(126, 0),
  168. CHAN5G(128, 0), CHAN5G(130, 0),
  169. CHAN5G(132, 0), CHAN5G(134, 0),
  170. CHAN5G(136, 0), CHAN5G(138, 0),
  171. CHAN5G(140, 0), CHAN5G(142, 0),
  172. CHAN5G(144, 0), CHAN5G(145, 0),
  173. CHAN5G(146, 0), CHAN5G(147, 0),
  174. CHAN5G(148, 0), CHAN5G(149, 0),
  175. CHAN5G(150, 0), CHAN5G(151, 0),
  176. CHAN5G(152, 0), CHAN5G(153, 0),
  177. CHAN5G(154, 0), CHAN5G(155, 0),
  178. CHAN5G(156, 0), CHAN5G(157, 0),
  179. CHAN5G(158, 0), CHAN5G(159, 0),
  180. CHAN5G(160, 0), CHAN5G(161, 0),
  181. CHAN5G(162, 0), CHAN5G(163, 0),
  182. CHAN5G(164, 0), CHAN5G(165, 0),
  183. CHAN5G(166, 0), CHAN5G(168, 0),
  184. CHAN5G(170, 0), CHAN5G(172, 0),
  185. CHAN5G(174, 0), CHAN5G(176, 0),
  186. CHAN5G(178, 0), CHAN5G(180, 0),
  187. CHAN5G(182, 0), CHAN5G(184, 0),
  188. CHAN5G(186, 0), CHAN5G(188, 0),
  189. CHAN5G(190, 0), CHAN5G(192, 0),
  190. CHAN5G(194, 0), CHAN5G(196, 0),
  191. CHAN5G(198, 0), CHAN5G(200, 0),
  192. CHAN5G(202, 0), CHAN5G(204, 0),
  193. CHAN5G(206, 0), CHAN5G(208, 0),
  194. CHAN5G(210, 0), CHAN5G(212, 0),
  195. CHAN5G(214, 0), CHAN5G(216, 0),
  196. CHAN5G(218, 0), CHAN5G(220, 0),
  197. CHAN5G(222, 0), CHAN5G(224, 0),
  198. CHAN5G(226, 0), CHAN5G(228, 0),
  199. };
  200. static struct ieee80211_supported_band __wl_band_2ghz = {
  201. .band = IEEE80211_BAND_2GHZ,
  202. .channels = __wl_2ghz_channels,
  203. .n_channels = ARRAY_SIZE(__wl_2ghz_channels),
  204. .bitrates = wl_g_rates,
  205. .n_bitrates = wl_g_rates_size,
  206. };
  207. static struct ieee80211_supported_band __wl_band_5ghz_a = {
  208. .band = IEEE80211_BAND_5GHZ,
  209. .channels = __wl_5ghz_a_channels,
  210. .n_channels = ARRAY_SIZE(__wl_5ghz_a_channels),
  211. .bitrates = wl_a_rates,
  212. .n_bitrates = wl_a_rates_size,
  213. };
  214. static struct ieee80211_supported_band __wl_band_5ghz_n = {
  215. .band = IEEE80211_BAND_5GHZ,
  216. .channels = __wl_5ghz_n_channels,
  217. .n_channels = ARRAY_SIZE(__wl_5ghz_n_channels),
  218. .bitrates = wl_a_rates,
  219. .n_bitrates = wl_a_rates_size,
  220. };
  221. static const u32 __wl_cipher_suites[] = {
  222. WLAN_CIPHER_SUITE_WEP40,
  223. WLAN_CIPHER_SUITE_WEP104,
  224. WLAN_CIPHER_SUITE_TKIP,
  225. WLAN_CIPHER_SUITE_CCMP,
  226. WLAN_CIPHER_SUITE_AES_CMAC,
  227. };
  228. /* tag_ID/length/value_buffer tuple */
  229. struct brcmf_tlv {
  230. u8 id;
  231. u8 len;
  232. u8 data[1];
  233. };
  234. /* Quarter dBm units to mW
  235. * Table starts at QDBM_OFFSET, so the first entry is mW for qdBm=153
  236. * Table is offset so the last entry is largest mW value that fits in
  237. * a u16.
  238. */
  239. #define QDBM_OFFSET 153 /* Offset for first entry */
  240. #define QDBM_TABLE_LEN 40 /* Table size */
  241. /* Smallest mW value that will round up to the first table entry, QDBM_OFFSET.
  242. * Value is ( mW(QDBM_OFFSET - 1) + mW(QDBM_OFFSET) ) / 2
  243. */
  244. #define QDBM_TABLE_LOW_BOUND 6493 /* Low bound */
  245. /* Largest mW value that will round down to the last table entry,
  246. * QDBM_OFFSET + QDBM_TABLE_LEN-1.
  247. * Value is ( mW(QDBM_OFFSET + QDBM_TABLE_LEN - 1) +
  248. * mW(QDBM_OFFSET + QDBM_TABLE_LEN) ) / 2.
  249. */
  250. #define QDBM_TABLE_HIGH_BOUND 64938 /* High bound */
  251. static const u16 nqdBm_to_mW_map[QDBM_TABLE_LEN] = {
  252. /* qdBm: +0 +1 +2 +3 +4 +5 +6 +7 */
  253. /* 153: */ 6683, 7079, 7499, 7943, 8414, 8913, 9441, 10000,
  254. /* 161: */ 10593, 11220, 11885, 12589, 13335, 14125, 14962, 15849,
  255. /* 169: */ 16788, 17783, 18836, 19953, 21135, 22387, 23714, 25119,
  256. /* 177: */ 26607, 28184, 29854, 31623, 33497, 35481, 37584, 39811,
  257. /* 185: */ 42170, 44668, 47315, 50119, 53088, 56234, 59566, 63096
  258. };
  259. static u16 brcmf_qdbm_to_mw(u8 qdbm)
  260. {
  261. uint factor = 1;
  262. int idx = qdbm - QDBM_OFFSET;
  263. if (idx >= QDBM_TABLE_LEN)
  264. /* clamp to max u16 mW value */
  265. return 0xFFFF;
  266. /* scale the qdBm index up to the range of the table 0-40
  267. * where an offset of 40 qdBm equals a factor of 10 mW.
  268. */
  269. while (idx < 0) {
  270. idx += 40;
  271. factor *= 10;
  272. }
  273. /* return the mW value scaled down to the correct factor of 10,
  274. * adding in factor/2 to get proper rounding.
  275. */
  276. return (nqdBm_to_mW_map[idx] + factor / 2) / factor;
  277. }
  278. static u8 brcmf_mw_to_qdbm(u16 mw)
  279. {
  280. u8 qdbm;
  281. int offset;
  282. uint mw_uint = mw;
  283. uint boundary;
  284. /* handle boundary case */
  285. if (mw_uint <= 1)
  286. return 0;
  287. offset = QDBM_OFFSET;
  288. /* move mw into the range of the table */
  289. while (mw_uint < QDBM_TABLE_LOW_BOUND) {
  290. mw_uint *= 10;
  291. offset -= 40;
  292. }
  293. for (qdbm = 0; qdbm < QDBM_TABLE_LEN - 1; qdbm++) {
  294. boundary = nqdBm_to_mW_map[qdbm] + (nqdBm_to_mW_map[qdbm + 1] -
  295. nqdBm_to_mW_map[qdbm]) / 2;
  296. if (mw_uint < boundary)
  297. break;
  298. }
  299. qdbm += (u8) offset;
  300. return qdbm;
  301. }
  302. /* function for reading/writing a single u32 from/to the dongle */
  303. static int
  304. brcmf_exec_dcmd_u32(struct net_device *ndev, u32 cmd, u32 *par)
  305. {
  306. int err;
  307. __le32 par_le = cpu_to_le32(*par);
  308. err = brcmf_exec_dcmd(ndev, cmd, &par_le, sizeof(__le32));
  309. *par = le32_to_cpu(par_le);
  310. return err;
  311. }
  312. static void convert_key_from_CPU(struct brcmf_wsec_key *key,
  313. struct brcmf_wsec_key_le *key_le)
  314. {
  315. key_le->index = cpu_to_le32(key->index);
  316. key_le->len = cpu_to_le32(key->len);
  317. key_le->algo = cpu_to_le32(key->algo);
  318. key_le->flags = cpu_to_le32(key->flags);
  319. key_le->rxiv.hi = cpu_to_le32(key->rxiv.hi);
  320. key_le->rxiv.lo = cpu_to_le16(key->rxiv.lo);
  321. key_le->iv_initialized = cpu_to_le32(key->iv_initialized);
  322. memcpy(key_le->data, key->data, sizeof(key->data));
  323. memcpy(key_le->ea, key->ea, sizeof(key->ea));
  324. }
  325. static int send_key_to_dongle(struct net_device *ndev,
  326. struct brcmf_wsec_key *key)
  327. {
  328. int err;
  329. struct brcmf_wsec_key_le key_le;
  330. convert_key_from_CPU(key, &key_le);
  331. err = brcmf_exec_dcmd(ndev, BRCMF_C_SET_KEY, &key_le, sizeof(key_le));
  332. if (err)
  333. WL_ERR("WLC_SET_KEY error (%d)\n", err);
  334. return err;
  335. }
  336. static s32
  337. brcmf_cfg80211_change_iface(struct wiphy *wiphy, struct net_device *ndev,
  338. enum nl80211_iftype type, u32 *flags,
  339. struct vif_params *params)
  340. {
  341. struct brcmf_cfg80211_priv *cfg_priv = wiphy_to_cfg(wiphy);
  342. struct wireless_dev *wdev;
  343. s32 infra = 0;
  344. s32 err = 0;
  345. WL_TRACE("Enter\n");
  346. if (!check_sys_up(wiphy))
  347. return -EIO;
  348. switch (type) {
  349. case NL80211_IFTYPE_MONITOR:
  350. case NL80211_IFTYPE_WDS:
  351. WL_ERR("type (%d) : currently we do not support this type\n",
  352. type);
  353. return -EOPNOTSUPP;
  354. case NL80211_IFTYPE_ADHOC:
  355. cfg_priv->conf->mode = WL_MODE_IBSS;
  356. infra = 0;
  357. break;
  358. case NL80211_IFTYPE_STATION:
  359. cfg_priv->conf->mode = WL_MODE_BSS;
  360. infra = 1;
  361. break;
  362. default:
  363. err = -EINVAL;
  364. goto done;
  365. }
  366. err = brcmf_exec_dcmd_u32(ndev, BRCMF_C_SET_INFRA, &infra);
  367. if (err) {
  368. WL_ERR("WLC_SET_INFRA error (%d)\n", err);
  369. err = -EAGAIN;
  370. } else {
  371. wdev = ndev->ieee80211_ptr;
  372. wdev->iftype = type;
  373. }
  374. WL_INFO("IF Type = %s\n",
  375. (cfg_priv->conf->mode == WL_MODE_IBSS) ? "Adhoc" : "Infra");
  376. done:
  377. WL_TRACE("Exit\n");
  378. return err;
  379. }
  380. static s32 brcmf_dev_intvar_set(struct net_device *ndev, s8 *name, s32 val)
  381. {
  382. s8 buf[BRCMF_DCMD_SMLEN];
  383. u32 len;
  384. s32 err = 0;
  385. __le32 val_le;
  386. val_le = cpu_to_le32(val);
  387. len = brcmf_c_mkiovar(name, (char *)(&val_le), sizeof(val_le), buf,
  388. sizeof(buf));
  389. BUG_ON(!len);
  390. err = brcmf_exec_dcmd(ndev, BRCMF_C_SET_VAR, buf, len);
  391. if (err)
  392. WL_ERR("error (%d)\n", err);
  393. return err;
  394. }
  395. static s32
  396. brcmf_dev_intvar_get(struct net_device *ndev, s8 *name, s32 *retval)
  397. {
  398. union {
  399. s8 buf[BRCMF_DCMD_SMLEN];
  400. __le32 val;
  401. } var;
  402. u32 len;
  403. u32 data_null;
  404. s32 err = 0;
  405. len =
  406. brcmf_c_mkiovar(name, (char *)(&data_null), 0, (char *)(&var),
  407. sizeof(var.buf));
  408. BUG_ON(!len);
  409. err = brcmf_exec_dcmd(ndev, BRCMF_C_GET_VAR, &var, len);
  410. if (err)
  411. WL_ERR("error (%d)\n", err);
  412. *retval = le32_to_cpu(var.val);
  413. return err;
  414. }
  415. static void brcmf_set_mpc(struct net_device *ndev, int mpc)
  416. {
  417. s32 err = 0;
  418. struct brcmf_cfg80211_priv *cfg_priv = ndev_to_cfg(ndev);
  419. if (test_bit(WL_STATUS_READY, &cfg_priv->status)) {
  420. err = brcmf_dev_intvar_set(ndev, "mpc", mpc);
  421. if (err) {
  422. WL_ERR("fail to set mpc\n");
  423. return;
  424. }
  425. WL_INFO("MPC : %d\n", mpc);
  426. }
  427. }
  428. static void wl_iscan_prep(struct brcmf_scan_params_le *params_le,
  429. struct brcmf_ssid *ssid)
  430. {
  431. memcpy(params_le->bssid, ether_bcast, ETH_ALEN);
  432. params_le->bss_type = DOT11_BSSTYPE_ANY;
  433. params_le->scan_type = 0;
  434. params_le->channel_num = 0;
  435. params_le->nprobes = cpu_to_le32(-1);
  436. params_le->active_time = cpu_to_le32(-1);
  437. params_le->passive_time = cpu_to_le32(-1);
  438. params_le->home_time = cpu_to_le32(-1);
  439. if (ssid && ssid->SSID_len)
  440. memcpy(&params_le->ssid_le, ssid, sizeof(struct brcmf_ssid));
  441. }
  442. static s32
  443. brcmf_dev_iovar_setbuf(struct net_device *ndev, s8 * iovar, void *param,
  444. s32 paramlen, void *bufptr, s32 buflen)
  445. {
  446. s32 iolen;
  447. iolen = brcmf_c_mkiovar(iovar, param, paramlen, bufptr, buflen);
  448. BUG_ON(!iolen);
  449. return brcmf_exec_dcmd(ndev, BRCMF_C_SET_VAR, bufptr, iolen);
  450. }
  451. static s32
  452. brcmf_dev_iovar_getbuf(struct net_device *ndev, s8 * iovar, void *param,
  453. s32 paramlen, void *bufptr, s32 buflen)
  454. {
  455. s32 iolen;
  456. iolen = brcmf_c_mkiovar(iovar, param, paramlen, bufptr, buflen);
  457. BUG_ON(!iolen);
  458. return brcmf_exec_dcmd(ndev, BRCMF_C_GET_VAR, bufptr, buflen);
  459. }
  460. static s32
  461. brcmf_run_iscan(struct brcmf_cfg80211_iscan_ctrl *iscan,
  462. struct brcmf_ssid *ssid, u16 action)
  463. {
  464. s32 params_size = BRCMF_SCAN_PARAMS_FIXED_SIZE +
  465. offsetof(struct brcmf_iscan_params_le, params_le);
  466. struct brcmf_iscan_params_le *params;
  467. s32 err = 0;
  468. if (ssid && ssid->SSID_len)
  469. params_size += sizeof(struct brcmf_ssid);
  470. params = kzalloc(params_size, GFP_KERNEL);
  471. if (!params)
  472. return -ENOMEM;
  473. BUG_ON(params_size >= BRCMF_DCMD_SMLEN);
  474. wl_iscan_prep(&params->params_le, ssid);
  475. params->version = cpu_to_le32(BRCMF_ISCAN_REQ_VERSION);
  476. params->action = cpu_to_le16(action);
  477. params->scan_duration = cpu_to_le16(0);
  478. err = brcmf_dev_iovar_setbuf(iscan->ndev, "iscan", params, params_size,
  479. iscan->dcmd_buf, BRCMF_DCMD_SMLEN);
  480. if (err) {
  481. if (err == -EBUSY)
  482. WL_INFO("system busy : iscan canceled\n");
  483. else
  484. WL_ERR("error (%d)\n", err);
  485. }
  486. kfree(params);
  487. return err;
  488. }
  489. static s32 brcmf_do_iscan(struct brcmf_cfg80211_priv *cfg_priv)
  490. {
  491. struct brcmf_cfg80211_iscan_ctrl *iscan = cfg_to_iscan(cfg_priv);
  492. struct net_device *ndev = cfg_to_ndev(cfg_priv);
  493. struct brcmf_ssid ssid;
  494. __le32 passive_scan;
  495. s32 err = 0;
  496. /* Broadcast scan by default */
  497. memset(&ssid, 0, sizeof(ssid));
  498. iscan->state = WL_ISCAN_STATE_SCANING;
  499. passive_scan = cfg_priv->active_scan ? 0 : cpu_to_le32(1);
  500. err = brcmf_exec_dcmd(cfg_to_ndev(cfg_priv), BRCMF_C_SET_PASSIVE_SCAN,
  501. &passive_scan, sizeof(passive_scan));
  502. if (err) {
  503. WL_ERR("error (%d)\n", err);
  504. return err;
  505. }
  506. brcmf_set_mpc(ndev, 0);
  507. cfg_priv->iscan_kickstart = true;
  508. err = brcmf_run_iscan(iscan, &ssid, BRCMF_SCAN_ACTION_START);
  509. if (err) {
  510. brcmf_set_mpc(ndev, 1);
  511. cfg_priv->iscan_kickstart = false;
  512. return err;
  513. }
  514. mod_timer(&iscan->timer, jiffies + iscan->timer_ms * HZ / 1000);
  515. iscan->timer_on = 1;
  516. return err;
  517. }
  518. static s32
  519. __brcmf_cfg80211_scan(struct wiphy *wiphy, struct net_device *ndev,
  520. struct cfg80211_scan_request *request,
  521. struct cfg80211_ssid *this_ssid)
  522. {
  523. struct brcmf_cfg80211_priv *cfg_priv = ndev_to_cfg(ndev);
  524. struct cfg80211_ssid *ssids;
  525. struct brcmf_cfg80211_scan_req *sr = cfg_priv->scan_req_int;
  526. __le32 passive_scan;
  527. bool iscan_req;
  528. bool spec_scan;
  529. s32 err = 0;
  530. u32 SSID_len;
  531. if (test_bit(WL_STATUS_SCANNING, &cfg_priv->status)) {
  532. WL_ERR("Scanning already : status (%lu)\n", cfg_priv->status);
  533. return -EAGAIN;
  534. }
  535. if (test_bit(WL_STATUS_SCAN_ABORTING, &cfg_priv->status)) {
  536. WL_ERR("Scanning being aborted : status (%lu)\n",
  537. cfg_priv->status);
  538. return -EAGAIN;
  539. }
  540. if (test_bit(WL_STATUS_CONNECTING, &cfg_priv->status)) {
  541. WL_ERR("Connecting : status (%lu)\n",
  542. cfg_priv->status);
  543. return -EAGAIN;
  544. }
  545. iscan_req = false;
  546. spec_scan = false;
  547. if (request) {
  548. /* scan bss */
  549. ssids = request->ssids;
  550. if (cfg_priv->iscan_on && (!ssids || !ssids->ssid_len))
  551. iscan_req = true;
  552. } else {
  553. /* scan in ibss */
  554. /* we don't do iscan in ibss */
  555. ssids = this_ssid;
  556. }
  557. cfg_priv->scan_request = request;
  558. set_bit(WL_STATUS_SCANNING, &cfg_priv->status);
  559. if (iscan_req) {
  560. err = brcmf_do_iscan(cfg_priv);
  561. if (!err)
  562. return err;
  563. else
  564. goto scan_out;
  565. } else {
  566. WL_SCAN("ssid \"%s\", ssid_len (%d)\n",
  567. ssids->ssid, ssids->ssid_len);
  568. memset(&sr->ssid_le, 0, sizeof(sr->ssid_le));
  569. SSID_len = min_t(u8, sizeof(sr->ssid_le.SSID), ssids->ssid_len);
  570. sr->ssid_le.SSID_len = cpu_to_le32(0);
  571. if (SSID_len) {
  572. memcpy(sr->ssid_le.SSID, ssids->ssid, SSID_len);
  573. sr->ssid_le.SSID_len = cpu_to_le32(SSID_len);
  574. spec_scan = true;
  575. } else {
  576. WL_SCAN("Broadcast scan\n");
  577. }
  578. passive_scan = cfg_priv->active_scan ? 0 : cpu_to_le32(1);
  579. err = brcmf_exec_dcmd(ndev, BRCMF_C_SET_PASSIVE_SCAN,
  580. &passive_scan, sizeof(passive_scan));
  581. if (err) {
  582. WL_ERR("WLC_SET_PASSIVE_SCAN error (%d)\n", err);
  583. goto scan_out;
  584. }
  585. brcmf_set_mpc(ndev, 0);
  586. err = brcmf_exec_dcmd(ndev, BRCMF_C_SCAN, &sr->ssid_le,
  587. sizeof(sr->ssid_le));
  588. if (err) {
  589. if (err == -EBUSY)
  590. WL_INFO("system busy : scan for \"%s\" "
  591. "canceled\n", sr->ssid_le.SSID);
  592. else
  593. WL_ERR("WLC_SCAN error (%d)\n", err);
  594. brcmf_set_mpc(ndev, 1);
  595. goto scan_out;
  596. }
  597. }
  598. return 0;
  599. scan_out:
  600. clear_bit(WL_STATUS_SCANNING, &cfg_priv->status);
  601. cfg_priv->scan_request = NULL;
  602. return err;
  603. }
  604. static s32
  605. brcmf_cfg80211_scan(struct wiphy *wiphy,
  606. struct cfg80211_scan_request *request)
  607. {
  608. struct net_device *ndev = request->wdev->netdev;
  609. s32 err = 0;
  610. WL_TRACE("Enter\n");
  611. if (!check_sys_up(wiphy))
  612. return -EIO;
  613. err = __brcmf_cfg80211_scan(wiphy, ndev, request, NULL);
  614. if (err)
  615. WL_ERR("scan error (%d)\n", err);
  616. WL_TRACE("Exit\n");
  617. return err;
  618. }
  619. static s32 brcmf_set_rts(struct net_device *ndev, u32 rts_threshold)
  620. {
  621. s32 err = 0;
  622. err = brcmf_dev_intvar_set(ndev, "rtsthresh", rts_threshold);
  623. if (err)
  624. WL_ERR("Error (%d)\n", err);
  625. return err;
  626. }
  627. static s32 brcmf_set_frag(struct net_device *ndev, u32 frag_threshold)
  628. {
  629. s32 err = 0;
  630. err = brcmf_dev_intvar_set(ndev, "fragthresh", frag_threshold);
  631. if (err)
  632. WL_ERR("Error (%d)\n", err);
  633. return err;
  634. }
  635. static s32 brcmf_set_retry(struct net_device *ndev, u32 retry, bool l)
  636. {
  637. s32 err = 0;
  638. u32 cmd = (l ? BRCM_SET_LRL : BRCM_SET_SRL);
  639. err = brcmf_exec_dcmd_u32(ndev, cmd, &retry);
  640. if (err) {
  641. WL_ERR("cmd (%d) , error (%d)\n", cmd, err);
  642. return err;
  643. }
  644. return err;
  645. }
  646. static s32 brcmf_cfg80211_set_wiphy_params(struct wiphy *wiphy, u32 changed)
  647. {
  648. struct brcmf_cfg80211_priv *cfg_priv = wiphy_to_cfg(wiphy);
  649. struct net_device *ndev = cfg_to_ndev(cfg_priv);
  650. s32 err = 0;
  651. WL_TRACE("Enter\n");
  652. if (!check_sys_up(wiphy))
  653. return -EIO;
  654. if (changed & WIPHY_PARAM_RTS_THRESHOLD &&
  655. (cfg_priv->conf->rts_threshold != wiphy->rts_threshold)) {
  656. cfg_priv->conf->rts_threshold = wiphy->rts_threshold;
  657. err = brcmf_set_rts(ndev, cfg_priv->conf->rts_threshold);
  658. if (!err)
  659. goto done;
  660. }
  661. if (changed & WIPHY_PARAM_FRAG_THRESHOLD &&
  662. (cfg_priv->conf->frag_threshold != wiphy->frag_threshold)) {
  663. cfg_priv->conf->frag_threshold = wiphy->frag_threshold;
  664. err = brcmf_set_frag(ndev, cfg_priv->conf->frag_threshold);
  665. if (!err)
  666. goto done;
  667. }
  668. if (changed & WIPHY_PARAM_RETRY_LONG
  669. && (cfg_priv->conf->retry_long != wiphy->retry_long)) {
  670. cfg_priv->conf->retry_long = wiphy->retry_long;
  671. err = brcmf_set_retry(ndev, cfg_priv->conf->retry_long, true);
  672. if (!err)
  673. goto done;
  674. }
  675. if (changed & WIPHY_PARAM_RETRY_SHORT
  676. && (cfg_priv->conf->retry_short != wiphy->retry_short)) {
  677. cfg_priv->conf->retry_short = wiphy->retry_short;
  678. err = brcmf_set_retry(ndev, cfg_priv->conf->retry_short, false);
  679. if (!err)
  680. goto done;
  681. }
  682. done:
  683. WL_TRACE("Exit\n");
  684. return err;
  685. }
  686. static void *brcmf_read_prof(struct brcmf_cfg80211_priv *cfg_priv, s32 item)
  687. {
  688. switch (item) {
  689. case WL_PROF_SEC:
  690. return &cfg_priv->profile->sec;
  691. case WL_PROF_BSSID:
  692. return &cfg_priv->profile->bssid;
  693. case WL_PROF_SSID:
  694. return &cfg_priv->profile->ssid;
  695. }
  696. WL_ERR("invalid item (%d)\n", item);
  697. return NULL;
  698. }
  699. static s32
  700. brcmf_update_prof(struct brcmf_cfg80211_priv *cfg_priv,
  701. const struct brcmf_event_msg *e, void *data, s32 item)
  702. {
  703. s32 err = 0;
  704. struct brcmf_ssid *ssid;
  705. switch (item) {
  706. case WL_PROF_SSID:
  707. ssid = (struct brcmf_ssid *) data;
  708. memset(cfg_priv->profile->ssid.SSID, 0,
  709. sizeof(cfg_priv->profile->ssid.SSID));
  710. memcpy(cfg_priv->profile->ssid.SSID,
  711. ssid->SSID, ssid->SSID_len);
  712. cfg_priv->profile->ssid.SSID_len = ssid->SSID_len;
  713. break;
  714. case WL_PROF_BSSID:
  715. if (data)
  716. memcpy(cfg_priv->profile->bssid, data, ETH_ALEN);
  717. else
  718. memset(cfg_priv->profile->bssid, 0, ETH_ALEN);
  719. break;
  720. case WL_PROF_SEC:
  721. memcpy(&cfg_priv->profile->sec, data,
  722. sizeof(cfg_priv->profile->sec));
  723. break;
  724. case WL_PROF_BEACONINT:
  725. cfg_priv->profile->beacon_interval = *(u16 *)data;
  726. break;
  727. case WL_PROF_DTIMPERIOD:
  728. cfg_priv->profile->dtim_period = *(u8 *)data;
  729. break;
  730. default:
  731. WL_ERR("unsupported item (%d)\n", item);
  732. err = -EOPNOTSUPP;
  733. break;
  734. }
  735. return err;
  736. }
  737. static void brcmf_init_prof(struct brcmf_cfg80211_profile *prof)
  738. {
  739. memset(prof, 0, sizeof(*prof));
  740. }
  741. static void brcmf_ch_to_chanspec(int ch, struct brcmf_join_params *join_params,
  742. size_t *join_params_size)
  743. {
  744. u16 chanspec = 0;
  745. if (ch != 0) {
  746. if (ch <= CH_MAX_2G_CHANNEL)
  747. chanspec |= WL_CHANSPEC_BAND_2G;
  748. else
  749. chanspec |= WL_CHANSPEC_BAND_5G;
  750. chanspec |= WL_CHANSPEC_BW_20;
  751. chanspec |= WL_CHANSPEC_CTL_SB_NONE;
  752. *join_params_size += BRCMF_ASSOC_PARAMS_FIXED_SIZE +
  753. sizeof(u16);
  754. chanspec |= (ch & WL_CHANSPEC_CHAN_MASK);
  755. join_params->params_le.chanspec_list[0] = cpu_to_le16(chanspec);
  756. join_params->params_le.chanspec_num = cpu_to_le32(1);
  757. WL_CONN("join_params->params.chanspec_list[0]= %#X,"
  758. "channel %d, chanspec %#X\n",
  759. chanspec, ch, chanspec);
  760. }
  761. }
  762. static void brcmf_link_down(struct brcmf_cfg80211_priv *cfg_priv)
  763. {
  764. struct net_device *ndev = NULL;
  765. s32 err = 0;
  766. WL_TRACE("Enter\n");
  767. if (cfg_priv->link_up) {
  768. ndev = cfg_to_ndev(cfg_priv);
  769. WL_INFO("Call WLC_DISASSOC to stop excess roaming\n ");
  770. err = brcmf_exec_dcmd(ndev, BRCMF_C_DISASSOC, NULL, 0);
  771. if (err)
  772. WL_ERR("WLC_DISASSOC failed (%d)\n", err);
  773. cfg_priv->link_up = false;
  774. }
  775. WL_TRACE("Exit\n");
  776. }
  777. static s32
  778. brcmf_cfg80211_join_ibss(struct wiphy *wiphy, struct net_device *ndev,
  779. struct cfg80211_ibss_params *params)
  780. {
  781. struct brcmf_cfg80211_priv *cfg_priv = wiphy_to_cfg(wiphy);
  782. struct brcmf_join_params join_params;
  783. size_t join_params_size = 0;
  784. s32 err = 0;
  785. s32 wsec = 0;
  786. s32 bcnprd;
  787. struct brcmf_ssid ssid;
  788. WL_TRACE("Enter\n");
  789. if (!check_sys_up(wiphy))
  790. return -EIO;
  791. if (params->ssid)
  792. WL_CONN("SSID: %s\n", params->ssid);
  793. else {
  794. WL_CONN("SSID: NULL, Not supported\n");
  795. return -EOPNOTSUPP;
  796. }
  797. set_bit(WL_STATUS_CONNECTING, &cfg_priv->status);
  798. if (params->bssid)
  799. WL_CONN("BSSID: %pM\n", params->bssid);
  800. else
  801. WL_CONN("No BSSID specified\n");
  802. if (params->channel)
  803. WL_CONN("channel: %d\n", params->channel->center_freq);
  804. else
  805. WL_CONN("no channel specified\n");
  806. if (params->channel_fixed)
  807. WL_CONN("fixed channel required\n");
  808. else
  809. WL_CONN("no fixed channel required\n");
  810. if (params->ie && params->ie_len)
  811. WL_CONN("ie len: %d\n", params->ie_len);
  812. else
  813. WL_CONN("no ie specified\n");
  814. if (params->beacon_interval)
  815. WL_CONN("beacon interval: %d\n", params->beacon_interval);
  816. else
  817. WL_CONN("no beacon interval specified\n");
  818. if (params->basic_rates)
  819. WL_CONN("basic rates: %08X\n", params->basic_rates);
  820. else
  821. WL_CONN("no basic rates specified\n");
  822. if (params->privacy)
  823. WL_CONN("privacy required\n");
  824. else
  825. WL_CONN("no privacy required\n");
  826. /* Configure Privacy for starter */
  827. if (params->privacy)
  828. wsec |= WEP_ENABLED;
  829. err = brcmf_dev_intvar_set(ndev, "wsec", wsec);
  830. if (err) {
  831. WL_ERR("wsec failed (%d)\n", err);
  832. goto done;
  833. }
  834. /* Configure Beacon Interval for starter */
  835. if (params->beacon_interval)
  836. bcnprd = params->beacon_interval;
  837. else
  838. bcnprd = 100;
  839. err = brcmf_exec_dcmd_u32(ndev, BRCM_SET_BCNPRD, &bcnprd);
  840. if (err) {
  841. WL_ERR("WLC_SET_BCNPRD failed (%d)\n", err);
  842. goto done;
  843. }
  844. /* Configure required join parameter */
  845. memset(&join_params, 0, sizeof(struct brcmf_join_params));
  846. /* SSID */
  847. ssid.SSID_len = min_t(u32, params->ssid_len, 32);
  848. memcpy(ssid.SSID, params->ssid, ssid.SSID_len);
  849. memcpy(join_params.ssid_le.SSID, params->ssid, ssid.SSID_len);
  850. join_params.ssid_le.SSID_len = cpu_to_le32(ssid.SSID_len);
  851. join_params_size = sizeof(join_params.ssid_le);
  852. brcmf_update_prof(cfg_priv, NULL, &ssid, WL_PROF_SSID);
  853. /* BSSID */
  854. if (params->bssid) {
  855. memcpy(join_params.params_le.bssid, params->bssid, ETH_ALEN);
  856. join_params_size = sizeof(join_params.ssid_le) +
  857. BRCMF_ASSOC_PARAMS_FIXED_SIZE;
  858. } else {
  859. memcpy(join_params.params_le.bssid, ether_bcast, ETH_ALEN);
  860. }
  861. brcmf_update_prof(cfg_priv, NULL,
  862. &join_params.params_le.bssid, WL_PROF_BSSID);
  863. /* Channel */
  864. if (params->channel) {
  865. u32 target_channel;
  866. cfg_priv->channel =
  867. ieee80211_frequency_to_channel(
  868. params->channel->center_freq);
  869. if (params->channel_fixed) {
  870. /* adding chanspec */
  871. brcmf_ch_to_chanspec(cfg_priv->channel,
  872. &join_params, &join_params_size);
  873. }
  874. /* set channel for starter */
  875. target_channel = cfg_priv->channel;
  876. err = brcmf_exec_dcmd_u32(ndev, BRCM_SET_CHANNEL,
  877. &target_channel);
  878. if (err) {
  879. WL_ERR("WLC_SET_CHANNEL failed (%d)\n", err);
  880. goto done;
  881. }
  882. } else
  883. cfg_priv->channel = 0;
  884. cfg_priv->ibss_starter = false;
  885. err = brcmf_exec_dcmd(ndev, BRCMF_C_SET_SSID,
  886. &join_params, join_params_size);
  887. if (err) {
  888. WL_ERR("WLC_SET_SSID failed (%d)\n", err);
  889. goto done;
  890. }
  891. done:
  892. if (err)
  893. clear_bit(WL_STATUS_CONNECTING, &cfg_priv->status);
  894. WL_TRACE("Exit\n");
  895. return err;
  896. }
  897. static s32
  898. brcmf_cfg80211_leave_ibss(struct wiphy *wiphy, struct net_device *ndev)
  899. {
  900. struct brcmf_cfg80211_priv *cfg_priv = wiphy_to_cfg(wiphy);
  901. s32 err = 0;
  902. WL_TRACE("Enter\n");
  903. if (!check_sys_up(wiphy))
  904. return -EIO;
  905. brcmf_link_down(cfg_priv);
  906. WL_TRACE("Exit\n");
  907. return err;
  908. }
  909. static s32 brcmf_set_wpa_version(struct net_device *ndev,
  910. struct cfg80211_connect_params *sme)
  911. {
  912. struct brcmf_cfg80211_priv *cfg_priv = ndev_to_cfg(ndev);
  913. struct brcmf_cfg80211_security *sec;
  914. s32 val = 0;
  915. s32 err = 0;
  916. if (sme->crypto.wpa_versions & NL80211_WPA_VERSION_1)
  917. val = WPA_AUTH_PSK | WPA_AUTH_UNSPECIFIED;
  918. else if (sme->crypto.wpa_versions & NL80211_WPA_VERSION_2)
  919. val = WPA2_AUTH_PSK | WPA2_AUTH_UNSPECIFIED;
  920. else
  921. val = WPA_AUTH_DISABLED;
  922. WL_CONN("setting wpa_auth to 0x%0x\n", val);
  923. err = brcmf_dev_intvar_set(ndev, "wpa_auth", val);
  924. if (err) {
  925. WL_ERR("set wpa_auth failed (%d)\n", err);
  926. return err;
  927. }
  928. sec = brcmf_read_prof(cfg_priv, WL_PROF_SEC);
  929. sec->wpa_versions = sme->crypto.wpa_versions;
  930. return err;
  931. }
  932. static s32 brcmf_set_auth_type(struct net_device *ndev,
  933. struct cfg80211_connect_params *sme)
  934. {
  935. struct brcmf_cfg80211_priv *cfg_priv = ndev_to_cfg(ndev);
  936. struct brcmf_cfg80211_security *sec;
  937. s32 val = 0;
  938. s32 err = 0;
  939. switch (sme->auth_type) {
  940. case NL80211_AUTHTYPE_OPEN_SYSTEM:
  941. val = 0;
  942. WL_CONN("open system\n");
  943. break;
  944. case NL80211_AUTHTYPE_SHARED_KEY:
  945. val = 1;
  946. WL_CONN("shared key\n");
  947. break;
  948. case NL80211_AUTHTYPE_AUTOMATIC:
  949. val = 2;
  950. WL_CONN("automatic\n");
  951. break;
  952. case NL80211_AUTHTYPE_NETWORK_EAP:
  953. WL_CONN("network eap\n");
  954. default:
  955. val = 2;
  956. WL_ERR("invalid auth type (%d)\n", sme->auth_type);
  957. break;
  958. }
  959. err = brcmf_dev_intvar_set(ndev, "auth", val);
  960. if (err) {
  961. WL_ERR("set auth failed (%d)\n", err);
  962. return err;
  963. }
  964. sec = brcmf_read_prof(cfg_priv, WL_PROF_SEC);
  965. sec->auth_type = sme->auth_type;
  966. return err;
  967. }
  968. static s32
  969. brcmf_set_set_cipher(struct net_device *ndev,
  970. struct cfg80211_connect_params *sme)
  971. {
  972. struct brcmf_cfg80211_priv *cfg_priv = ndev_to_cfg(ndev);
  973. struct brcmf_cfg80211_security *sec;
  974. s32 pval = 0;
  975. s32 gval = 0;
  976. s32 err = 0;
  977. if (sme->crypto.n_ciphers_pairwise) {
  978. switch (sme->crypto.ciphers_pairwise[0]) {
  979. case WLAN_CIPHER_SUITE_WEP40:
  980. case WLAN_CIPHER_SUITE_WEP104:
  981. pval = WEP_ENABLED;
  982. break;
  983. case WLAN_CIPHER_SUITE_TKIP:
  984. pval = TKIP_ENABLED;
  985. break;
  986. case WLAN_CIPHER_SUITE_CCMP:
  987. pval = AES_ENABLED;
  988. break;
  989. case WLAN_CIPHER_SUITE_AES_CMAC:
  990. pval = AES_ENABLED;
  991. break;
  992. default:
  993. WL_ERR("invalid cipher pairwise (%d)\n",
  994. sme->crypto.ciphers_pairwise[0]);
  995. return -EINVAL;
  996. }
  997. }
  998. if (sme->crypto.cipher_group) {
  999. switch (sme->crypto.cipher_group) {
  1000. case WLAN_CIPHER_SUITE_WEP40:
  1001. case WLAN_CIPHER_SUITE_WEP104:
  1002. gval = WEP_ENABLED;
  1003. break;
  1004. case WLAN_CIPHER_SUITE_TKIP:
  1005. gval = TKIP_ENABLED;
  1006. break;
  1007. case WLAN_CIPHER_SUITE_CCMP:
  1008. gval = AES_ENABLED;
  1009. break;
  1010. case WLAN_CIPHER_SUITE_AES_CMAC:
  1011. gval = AES_ENABLED;
  1012. break;
  1013. default:
  1014. WL_ERR("invalid cipher group (%d)\n",
  1015. sme->crypto.cipher_group);
  1016. return -EINVAL;
  1017. }
  1018. }
  1019. WL_CONN("pval (%d) gval (%d)\n", pval, gval);
  1020. err = brcmf_dev_intvar_set(ndev, "wsec", pval | gval);
  1021. if (err) {
  1022. WL_ERR("error (%d)\n", err);
  1023. return err;
  1024. }
  1025. sec = brcmf_read_prof(cfg_priv, WL_PROF_SEC);
  1026. sec->cipher_pairwise = sme->crypto.ciphers_pairwise[0];
  1027. sec->cipher_group = sme->crypto.cipher_group;
  1028. return err;
  1029. }
  1030. static s32
  1031. brcmf_set_key_mgmt(struct net_device *ndev, struct cfg80211_connect_params *sme)
  1032. {
  1033. struct brcmf_cfg80211_priv *cfg_priv = ndev_to_cfg(ndev);
  1034. struct brcmf_cfg80211_security *sec;
  1035. s32 val = 0;
  1036. s32 err = 0;
  1037. if (sme->crypto.n_akm_suites) {
  1038. err = brcmf_dev_intvar_get(ndev, "wpa_auth", &val);
  1039. if (err) {
  1040. WL_ERR("could not get wpa_auth (%d)\n", err);
  1041. return err;
  1042. }
  1043. if (val & (WPA_AUTH_PSK | WPA_AUTH_UNSPECIFIED)) {
  1044. switch (sme->crypto.akm_suites[0]) {
  1045. case WLAN_AKM_SUITE_8021X:
  1046. val = WPA_AUTH_UNSPECIFIED;
  1047. break;
  1048. case WLAN_AKM_SUITE_PSK:
  1049. val = WPA_AUTH_PSK;
  1050. break;
  1051. default:
  1052. WL_ERR("invalid cipher group (%d)\n",
  1053. sme->crypto.cipher_group);
  1054. return -EINVAL;
  1055. }
  1056. } else if (val & (WPA2_AUTH_PSK | WPA2_AUTH_UNSPECIFIED)) {
  1057. switch (sme->crypto.akm_suites[0]) {
  1058. case WLAN_AKM_SUITE_8021X:
  1059. val = WPA2_AUTH_UNSPECIFIED;
  1060. break;
  1061. case WLAN_AKM_SUITE_PSK:
  1062. val = WPA2_AUTH_PSK;
  1063. break;
  1064. default:
  1065. WL_ERR("invalid cipher group (%d)\n",
  1066. sme->crypto.cipher_group);
  1067. return -EINVAL;
  1068. }
  1069. }
  1070. WL_CONN("setting wpa_auth to %d\n", val);
  1071. err = brcmf_dev_intvar_set(ndev, "wpa_auth", val);
  1072. if (err) {
  1073. WL_ERR("could not set wpa_auth (%d)\n", err);
  1074. return err;
  1075. }
  1076. }
  1077. sec = brcmf_read_prof(cfg_priv, WL_PROF_SEC);
  1078. sec->wpa_auth = sme->crypto.akm_suites[0];
  1079. return err;
  1080. }
  1081. static s32
  1082. brcmf_set_wep_sharedkey(struct net_device *ndev,
  1083. struct cfg80211_connect_params *sme)
  1084. {
  1085. struct brcmf_cfg80211_priv *cfg_priv = ndev_to_cfg(ndev);
  1086. struct brcmf_cfg80211_security *sec;
  1087. struct brcmf_wsec_key key;
  1088. s32 val;
  1089. s32 err = 0;
  1090. WL_CONN("key len (%d)\n", sme->key_len);
  1091. if (sme->key_len == 0)
  1092. return 0;
  1093. sec = brcmf_read_prof(cfg_priv, WL_PROF_SEC);
  1094. WL_CONN("wpa_versions 0x%x cipher_pairwise 0x%x\n",
  1095. sec->wpa_versions, sec->cipher_pairwise);
  1096. if (sec->wpa_versions & (NL80211_WPA_VERSION_1 | NL80211_WPA_VERSION_2))
  1097. return 0;
  1098. if (sec->cipher_pairwise &
  1099. (WLAN_CIPHER_SUITE_WEP40 | WLAN_CIPHER_SUITE_WEP104)) {
  1100. memset(&key, 0, sizeof(key));
  1101. key.len = (u32) sme->key_len;
  1102. key.index = (u32) sme->key_idx;
  1103. if (key.len > sizeof(key.data)) {
  1104. WL_ERR("Too long key length (%u)\n", key.len);
  1105. return -EINVAL;
  1106. }
  1107. memcpy(key.data, sme->key, key.len);
  1108. key.flags = BRCMF_PRIMARY_KEY;
  1109. switch (sec->cipher_pairwise) {
  1110. case WLAN_CIPHER_SUITE_WEP40:
  1111. key.algo = CRYPTO_ALGO_WEP1;
  1112. break;
  1113. case WLAN_CIPHER_SUITE_WEP104:
  1114. key.algo = CRYPTO_ALGO_WEP128;
  1115. break;
  1116. default:
  1117. WL_ERR("Invalid algorithm (%d)\n",
  1118. sme->crypto.ciphers_pairwise[0]);
  1119. return -EINVAL;
  1120. }
  1121. /* Set the new key/index */
  1122. WL_CONN("key length (%d) key index (%d) algo (%d)\n",
  1123. key.len, key.index, key.algo);
  1124. WL_CONN("key \"%s\"\n", key.data);
  1125. err = send_key_to_dongle(ndev, &key);
  1126. if (err)
  1127. return err;
  1128. if (sec->auth_type == NL80211_AUTHTYPE_OPEN_SYSTEM) {
  1129. WL_CONN("set auth_type to shared key\n");
  1130. val = 1; /* shared key */
  1131. err = brcmf_dev_intvar_set(ndev, "auth", val);
  1132. if (err) {
  1133. WL_ERR("set auth failed (%d)\n", err);
  1134. return err;
  1135. }
  1136. }
  1137. }
  1138. return err;
  1139. }
  1140. static s32
  1141. brcmf_cfg80211_connect(struct wiphy *wiphy, struct net_device *ndev,
  1142. struct cfg80211_connect_params *sme)
  1143. {
  1144. struct brcmf_cfg80211_priv *cfg_priv = wiphy_to_cfg(wiphy);
  1145. struct ieee80211_channel *chan = sme->channel;
  1146. struct brcmf_join_params join_params;
  1147. size_t join_params_size;
  1148. struct brcmf_ssid ssid;
  1149. s32 err = 0;
  1150. WL_TRACE("Enter\n");
  1151. if (!check_sys_up(wiphy))
  1152. return -EIO;
  1153. if (!sme->ssid) {
  1154. WL_ERR("Invalid ssid\n");
  1155. return -EOPNOTSUPP;
  1156. }
  1157. set_bit(WL_STATUS_CONNECTING, &cfg_priv->status);
  1158. if (chan) {
  1159. cfg_priv->channel =
  1160. ieee80211_frequency_to_channel(chan->center_freq);
  1161. WL_CONN("channel (%d), center_req (%d)\n",
  1162. cfg_priv->channel, chan->center_freq);
  1163. } else
  1164. cfg_priv->channel = 0;
  1165. WL_INFO("ie (%p), ie_len (%zd)\n", sme->ie, sme->ie_len);
  1166. err = brcmf_set_wpa_version(ndev, sme);
  1167. if (err) {
  1168. WL_ERR("wl_set_wpa_version failed (%d)\n", err);
  1169. goto done;
  1170. }
  1171. err = brcmf_set_auth_type(ndev, sme);
  1172. if (err) {
  1173. WL_ERR("wl_set_auth_type failed (%d)\n", err);
  1174. goto done;
  1175. }
  1176. err = brcmf_set_set_cipher(ndev, sme);
  1177. if (err) {
  1178. WL_ERR("wl_set_set_cipher failed (%d)\n", err);
  1179. goto done;
  1180. }
  1181. err = brcmf_set_key_mgmt(ndev, sme);
  1182. if (err) {
  1183. WL_ERR("wl_set_key_mgmt failed (%d)\n", err);
  1184. goto done;
  1185. }
  1186. err = brcmf_set_wep_sharedkey(ndev, sme);
  1187. if (err) {
  1188. WL_ERR("brcmf_set_wep_sharedkey failed (%d)\n", err);
  1189. goto done;
  1190. }
  1191. memset(&join_params, 0, sizeof(join_params));
  1192. join_params_size = sizeof(join_params.ssid_le);
  1193. ssid.SSID_len = min_t(u32, sizeof(ssid.SSID), (u32)sme->ssid_len);
  1194. memcpy(&join_params.ssid_le.SSID, sme->ssid, ssid.SSID_len);
  1195. memcpy(&ssid.SSID, sme->ssid, ssid.SSID_len);
  1196. join_params.ssid_le.SSID_len = cpu_to_le32(ssid.SSID_len);
  1197. brcmf_update_prof(cfg_priv, NULL, &ssid, WL_PROF_SSID);
  1198. memcpy(join_params.params_le.bssid, ether_bcast, ETH_ALEN);
  1199. if (ssid.SSID_len < IEEE80211_MAX_SSID_LEN)
  1200. WL_CONN("ssid \"%s\", len (%d)\n",
  1201. ssid.SSID, ssid.SSID_len);
  1202. brcmf_ch_to_chanspec(cfg_priv->channel,
  1203. &join_params, &join_params_size);
  1204. err = brcmf_exec_dcmd(ndev, BRCMF_C_SET_SSID,
  1205. &join_params, join_params_size);
  1206. if (err)
  1207. WL_ERR("WLC_SET_SSID failed (%d)\n", err);
  1208. done:
  1209. if (err)
  1210. clear_bit(WL_STATUS_CONNECTING, &cfg_priv->status);
  1211. WL_TRACE("Exit\n");
  1212. return err;
  1213. }
  1214. static s32
  1215. brcmf_cfg80211_disconnect(struct wiphy *wiphy, struct net_device *ndev,
  1216. u16 reason_code)
  1217. {
  1218. struct brcmf_cfg80211_priv *cfg_priv = wiphy_to_cfg(wiphy);
  1219. struct brcmf_scb_val_le scbval;
  1220. s32 err = 0;
  1221. WL_TRACE("Enter. Reason code = %d\n", reason_code);
  1222. if (!check_sys_up(wiphy))
  1223. return -EIO;
  1224. clear_bit(WL_STATUS_CONNECTED, &cfg_priv->status);
  1225. memcpy(&scbval.ea, brcmf_read_prof(cfg_priv, WL_PROF_BSSID), ETH_ALEN);
  1226. scbval.val = cpu_to_le32(reason_code);
  1227. err = brcmf_exec_dcmd(ndev, BRCMF_C_DISASSOC, &scbval,
  1228. sizeof(struct brcmf_scb_val_le));
  1229. if (err)
  1230. WL_ERR("error (%d)\n", err);
  1231. cfg_priv->link_up = false;
  1232. WL_TRACE("Exit\n");
  1233. return err;
  1234. }
  1235. static s32
  1236. brcmf_cfg80211_set_tx_power(struct wiphy *wiphy,
  1237. enum nl80211_tx_power_setting type, s32 mbm)
  1238. {
  1239. struct brcmf_cfg80211_priv *cfg_priv = wiphy_to_cfg(wiphy);
  1240. struct net_device *ndev = cfg_to_ndev(cfg_priv);
  1241. u16 txpwrmw;
  1242. s32 err = 0;
  1243. s32 disable = 0;
  1244. s32 dbm = MBM_TO_DBM(mbm);
  1245. WL_TRACE("Enter\n");
  1246. if (!check_sys_up(wiphy))
  1247. return -EIO;
  1248. switch (type) {
  1249. case NL80211_TX_POWER_AUTOMATIC:
  1250. break;
  1251. case NL80211_TX_POWER_LIMITED:
  1252. case NL80211_TX_POWER_FIXED:
  1253. if (dbm < 0) {
  1254. WL_ERR("TX_POWER_FIXED - dbm is negative\n");
  1255. err = -EINVAL;
  1256. goto done;
  1257. }
  1258. break;
  1259. }
  1260. /* Make sure radio is off or on as far as software is concerned */
  1261. disable = WL_RADIO_SW_DISABLE << 16;
  1262. err = brcmf_exec_dcmd_u32(ndev, BRCMF_C_SET_RADIO, &disable);
  1263. if (err)
  1264. WL_ERR("WLC_SET_RADIO error (%d)\n", err);
  1265. if (dbm > 0xffff)
  1266. txpwrmw = 0xffff;
  1267. else
  1268. txpwrmw = (u16) dbm;
  1269. err = brcmf_dev_intvar_set(ndev, "qtxpower",
  1270. (s32) (brcmf_mw_to_qdbm(txpwrmw)));
  1271. if (err)
  1272. WL_ERR("qtxpower error (%d)\n", err);
  1273. cfg_priv->conf->tx_power = dbm;
  1274. done:
  1275. WL_TRACE("Exit\n");
  1276. return err;
  1277. }
  1278. static s32 brcmf_cfg80211_get_tx_power(struct wiphy *wiphy, s32 *dbm)
  1279. {
  1280. struct brcmf_cfg80211_priv *cfg_priv = wiphy_to_cfg(wiphy);
  1281. struct net_device *ndev = cfg_to_ndev(cfg_priv);
  1282. s32 txpwrdbm;
  1283. u8 result;
  1284. s32 err = 0;
  1285. WL_TRACE("Enter\n");
  1286. if (!check_sys_up(wiphy))
  1287. return -EIO;
  1288. err = brcmf_dev_intvar_get(ndev, "qtxpower", &txpwrdbm);
  1289. if (err) {
  1290. WL_ERR("error (%d)\n", err);
  1291. goto done;
  1292. }
  1293. result = (u8) (txpwrdbm & ~WL_TXPWR_OVERRIDE);
  1294. *dbm = (s32) brcmf_qdbm_to_mw(result);
  1295. done:
  1296. WL_TRACE("Exit\n");
  1297. return err;
  1298. }
  1299. static s32
  1300. brcmf_cfg80211_config_default_key(struct wiphy *wiphy, struct net_device *ndev,
  1301. u8 key_idx, bool unicast, bool multicast)
  1302. {
  1303. u32 index;
  1304. u32 wsec;
  1305. s32 err = 0;
  1306. WL_TRACE("Enter\n");
  1307. WL_CONN("key index (%d)\n", key_idx);
  1308. if (!check_sys_up(wiphy))
  1309. return -EIO;
  1310. err = brcmf_exec_dcmd_u32(ndev, BRCMF_C_GET_WSEC, &wsec);
  1311. if (err) {
  1312. WL_ERR("WLC_GET_WSEC error (%d)\n", err);
  1313. goto done;
  1314. }
  1315. if (wsec & WEP_ENABLED) {
  1316. /* Just select a new current key */
  1317. index = key_idx;
  1318. err = brcmf_exec_dcmd_u32(ndev, BRCMF_C_SET_KEY_PRIMARY,
  1319. &index);
  1320. if (err)
  1321. WL_ERR("error (%d)\n", err);
  1322. }
  1323. done:
  1324. WL_TRACE("Exit\n");
  1325. return err;
  1326. }
  1327. static s32
  1328. brcmf_add_keyext(struct wiphy *wiphy, struct net_device *ndev,
  1329. u8 key_idx, const u8 *mac_addr, struct key_params *params)
  1330. {
  1331. struct brcmf_wsec_key key;
  1332. struct brcmf_wsec_key_le key_le;
  1333. s32 err = 0;
  1334. memset(&key, 0, sizeof(key));
  1335. key.index = (u32) key_idx;
  1336. /* Instead of bcast for ea address for default wep keys,
  1337. driver needs it to be Null */
  1338. if (!is_multicast_ether_addr(mac_addr))
  1339. memcpy((char *)&key.ea, (void *)mac_addr, ETH_ALEN);
  1340. key.len = (u32) params->key_len;
  1341. /* check for key index change */
  1342. if (key.len == 0) {
  1343. /* key delete */
  1344. err = send_key_to_dongle(ndev, &key);
  1345. if (err)
  1346. return err;
  1347. } else {
  1348. if (key.len > sizeof(key.data)) {
  1349. WL_ERR("Invalid key length (%d)\n", key.len);
  1350. return -EINVAL;
  1351. }
  1352. WL_CONN("Setting the key index %d\n", key.index);
  1353. memcpy(key.data, params->key, key.len);
  1354. if (params->cipher == WLAN_CIPHER_SUITE_TKIP) {
  1355. u8 keybuf[8];
  1356. memcpy(keybuf, &key.data[24], sizeof(keybuf));
  1357. memcpy(&key.data[24], &key.data[16], sizeof(keybuf));
  1358. memcpy(&key.data[16], keybuf, sizeof(keybuf));
  1359. }
  1360. /* if IW_ENCODE_EXT_RX_SEQ_VALID set */
  1361. if (params->seq && params->seq_len == 6) {
  1362. /* rx iv */
  1363. u8 *ivptr;
  1364. ivptr = (u8 *) params->seq;
  1365. key.rxiv.hi = (ivptr[5] << 24) | (ivptr[4] << 16) |
  1366. (ivptr[3] << 8) | ivptr[2];
  1367. key.rxiv.lo = (ivptr[1] << 8) | ivptr[0];
  1368. key.iv_initialized = true;
  1369. }
  1370. switch (params->cipher) {
  1371. case WLAN_CIPHER_SUITE_WEP40:
  1372. key.algo = CRYPTO_ALGO_WEP1;
  1373. WL_CONN("WLAN_CIPHER_SUITE_WEP40\n");
  1374. break;
  1375. case WLAN_CIPHER_SUITE_WEP104:
  1376. key.algo = CRYPTO_ALGO_WEP128;
  1377. WL_CONN("WLAN_CIPHER_SUITE_WEP104\n");
  1378. break;
  1379. case WLAN_CIPHER_SUITE_TKIP:
  1380. key.algo = CRYPTO_ALGO_TKIP;
  1381. WL_CONN("WLAN_CIPHER_SUITE_TKIP\n");
  1382. break;
  1383. case WLAN_CIPHER_SUITE_AES_CMAC:
  1384. key.algo = CRYPTO_ALGO_AES_CCM;
  1385. WL_CONN("WLAN_CIPHER_SUITE_AES_CMAC\n");
  1386. break;
  1387. case WLAN_CIPHER_SUITE_CCMP:
  1388. key.algo = CRYPTO_ALGO_AES_CCM;
  1389. WL_CONN("WLAN_CIPHER_SUITE_CCMP\n");
  1390. break;
  1391. default:
  1392. WL_ERR("Invalid cipher (0x%x)\n", params->cipher);
  1393. return -EINVAL;
  1394. }
  1395. convert_key_from_CPU(&key, &key_le);
  1396. brcmf_netdev_wait_pend8021x(ndev);
  1397. err = brcmf_exec_dcmd(ndev, BRCMF_C_SET_KEY, &key_le,
  1398. sizeof(key_le));
  1399. if (err) {
  1400. WL_ERR("WLC_SET_KEY error (%d)\n", err);
  1401. return err;
  1402. }
  1403. }
  1404. return err;
  1405. }
  1406. static s32
  1407. brcmf_cfg80211_add_key(struct wiphy *wiphy, struct net_device *ndev,
  1408. u8 key_idx, bool pairwise, const u8 *mac_addr,
  1409. struct key_params *params)
  1410. {
  1411. struct brcmf_wsec_key key;
  1412. s32 val;
  1413. s32 wsec;
  1414. s32 err = 0;
  1415. u8 keybuf[8];
  1416. WL_TRACE("Enter\n");
  1417. WL_CONN("key index (%d)\n", key_idx);
  1418. if (!check_sys_up(wiphy))
  1419. return -EIO;
  1420. if (mac_addr) {
  1421. WL_TRACE("Exit");
  1422. return brcmf_add_keyext(wiphy, ndev, key_idx, mac_addr, params);
  1423. }
  1424. memset(&key, 0, sizeof(key));
  1425. key.len = (u32) params->key_len;
  1426. key.index = (u32) key_idx;
  1427. if (key.len > sizeof(key.data)) {
  1428. WL_ERR("Too long key length (%u)\n", key.len);
  1429. err = -EINVAL;
  1430. goto done;
  1431. }
  1432. memcpy(key.data, params->key, key.len);
  1433. key.flags = BRCMF_PRIMARY_KEY;
  1434. switch (params->cipher) {
  1435. case WLAN_CIPHER_SUITE_WEP40:
  1436. key.algo = CRYPTO_ALGO_WEP1;
  1437. WL_CONN("WLAN_CIPHER_SUITE_WEP40\n");
  1438. break;
  1439. case WLAN_CIPHER_SUITE_WEP104:
  1440. key.algo = CRYPTO_ALGO_WEP128;
  1441. WL_CONN("WLAN_CIPHER_SUITE_WEP104\n");
  1442. break;
  1443. case WLAN_CIPHER_SUITE_TKIP:
  1444. memcpy(keybuf, &key.data[24], sizeof(keybuf));
  1445. memcpy(&key.data[24], &key.data[16], sizeof(keybuf));
  1446. memcpy(&key.data[16], keybuf, sizeof(keybuf));
  1447. key.algo = CRYPTO_ALGO_TKIP;
  1448. WL_CONN("WLAN_CIPHER_SUITE_TKIP\n");
  1449. break;
  1450. case WLAN_CIPHER_SUITE_AES_CMAC:
  1451. key.algo = CRYPTO_ALGO_AES_CCM;
  1452. WL_CONN("WLAN_CIPHER_SUITE_AES_CMAC\n");
  1453. break;
  1454. case WLAN_CIPHER_SUITE_CCMP:
  1455. key.algo = CRYPTO_ALGO_AES_CCM;
  1456. WL_CONN("WLAN_CIPHER_SUITE_CCMP\n");
  1457. break;
  1458. default:
  1459. WL_ERR("Invalid cipher (0x%x)\n", params->cipher);
  1460. err = -EINVAL;
  1461. goto done;
  1462. }
  1463. err = send_key_to_dongle(ndev, &key); /* Set the new key/index */
  1464. if (err)
  1465. goto done;
  1466. val = WEP_ENABLED;
  1467. err = brcmf_dev_intvar_get(ndev, "wsec", &wsec);
  1468. if (err) {
  1469. WL_ERR("get wsec error (%d)\n", err);
  1470. goto done;
  1471. }
  1472. wsec &= ~(WEP_ENABLED);
  1473. wsec |= val;
  1474. err = brcmf_dev_intvar_set(ndev, "wsec", wsec);
  1475. if (err) {
  1476. WL_ERR("set wsec error (%d)\n", err);
  1477. goto done;
  1478. }
  1479. val = 1; /* assume shared key. otherwise 0 */
  1480. err = brcmf_exec_dcmd_u32(ndev, BRCMF_C_SET_AUTH, &val);
  1481. if (err)
  1482. WL_ERR("WLC_SET_AUTH error (%d)\n", err);
  1483. done:
  1484. WL_TRACE("Exit\n");
  1485. return err;
  1486. }
  1487. static s32
  1488. brcmf_cfg80211_del_key(struct wiphy *wiphy, struct net_device *ndev,
  1489. u8 key_idx, bool pairwise, const u8 *mac_addr)
  1490. {
  1491. struct brcmf_wsec_key key;
  1492. s32 err = 0;
  1493. s32 val;
  1494. s32 wsec;
  1495. WL_TRACE("Enter\n");
  1496. if (!check_sys_up(wiphy))
  1497. return -EIO;
  1498. memset(&key, 0, sizeof(key));
  1499. key.index = (u32) key_idx;
  1500. key.flags = BRCMF_PRIMARY_KEY;
  1501. key.algo = CRYPTO_ALGO_OFF;
  1502. WL_CONN("key index (%d)\n", key_idx);
  1503. /* Set the new key/index */
  1504. err = send_key_to_dongle(ndev, &key);
  1505. if (err) {
  1506. if (err == -EINVAL) {
  1507. if (key.index >= DOT11_MAX_DEFAULT_KEYS)
  1508. /* we ignore this key index in this case */
  1509. WL_ERR("invalid key index (%d)\n", key_idx);
  1510. }
  1511. /* Ignore this error, may happen during DISASSOC */
  1512. err = -EAGAIN;
  1513. goto done;
  1514. }
  1515. val = 0;
  1516. err = brcmf_dev_intvar_get(ndev, "wsec", &wsec);
  1517. if (err) {
  1518. WL_ERR("get wsec error (%d)\n", err);
  1519. /* Ignore this error, may happen during DISASSOC */
  1520. err = -EAGAIN;
  1521. goto done;
  1522. }
  1523. wsec &= ~(WEP_ENABLED);
  1524. wsec |= val;
  1525. err = brcmf_dev_intvar_set(ndev, "wsec", wsec);
  1526. if (err) {
  1527. WL_ERR("set wsec error (%d)\n", err);
  1528. /* Ignore this error, may happen during DISASSOC */
  1529. err = -EAGAIN;
  1530. goto done;
  1531. }
  1532. val = 0; /* assume open key. otherwise 1 */
  1533. err = brcmf_exec_dcmd_u32(ndev, BRCMF_C_SET_AUTH, &val);
  1534. if (err) {
  1535. WL_ERR("WLC_SET_AUTH error (%d)\n", err);
  1536. /* Ignore this error, may happen during DISASSOC */
  1537. err = -EAGAIN;
  1538. }
  1539. done:
  1540. WL_TRACE("Exit\n");
  1541. return err;
  1542. }
  1543. static s32
  1544. brcmf_cfg80211_get_key(struct wiphy *wiphy, struct net_device *ndev,
  1545. u8 key_idx, bool pairwise, const u8 *mac_addr, void *cookie,
  1546. void (*callback) (void *cookie, struct key_params * params))
  1547. {
  1548. struct key_params params;
  1549. struct brcmf_cfg80211_priv *cfg_priv = wiphy_to_cfg(wiphy);
  1550. struct brcmf_cfg80211_security *sec;
  1551. s32 wsec;
  1552. s32 err = 0;
  1553. WL_TRACE("Enter\n");
  1554. WL_CONN("key index (%d)\n", key_idx);
  1555. if (!check_sys_up(wiphy))
  1556. return -EIO;
  1557. memset(&params, 0, sizeof(params));
  1558. err = brcmf_exec_dcmd_u32(ndev, BRCMF_C_GET_WSEC, &wsec);
  1559. if (err) {
  1560. WL_ERR("WLC_GET_WSEC error (%d)\n", err);
  1561. /* Ignore this error, may happen during DISASSOC */
  1562. err = -EAGAIN;
  1563. goto done;
  1564. }
  1565. switch (wsec) {
  1566. case WEP_ENABLED:
  1567. sec = brcmf_read_prof(cfg_priv, WL_PROF_SEC);
  1568. if (sec->cipher_pairwise & WLAN_CIPHER_SUITE_WEP40) {
  1569. params.cipher = WLAN_CIPHER_SUITE_WEP40;
  1570. WL_CONN("WLAN_CIPHER_SUITE_WEP40\n");
  1571. } else if (sec->cipher_pairwise & WLAN_CIPHER_SUITE_WEP104) {
  1572. params.cipher = WLAN_CIPHER_SUITE_WEP104;
  1573. WL_CONN("WLAN_CIPHER_SUITE_WEP104\n");
  1574. }
  1575. break;
  1576. case TKIP_ENABLED:
  1577. params.cipher = WLAN_CIPHER_SUITE_TKIP;
  1578. WL_CONN("WLAN_CIPHER_SUITE_TKIP\n");
  1579. break;
  1580. case AES_ENABLED:
  1581. params.cipher = WLAN_CIPHER_SUITE_AES_CMAC;
  1582. WL_CONN("WLAN_CIPHER_SUITE_AES_CMAC\n");
  1583. break;
  1584. default:
  1585. WL_ERR("Invalid algo (0x%x)\n", wsec);
  1586. err = -EINVAL;
  1587. goto done;
  1588. }
  1589. callback(cookie, &params);
  1590. done:
  1591. WL_TRACE("Exit\n");
  1592. return err;
  1593. }
  1594. static s32
  1595. brcmf_cfg80211_config_default_mgmt_key(struct wiphy *wiphy,
  1596. struct net_device *ndev, u8 key_idx)
  1597. {
  1598. WL_INFO("Not supported\n");
  1599. return -EOPNOTSUPP;
  1600. }
  1601. static s32
  1602. brcmf_cfg80211_get_station(struct wiphy *wiphy, struct net_device *ndev,
  1603. u8 *mac, struct station_info *sinfo)
  1604. {
  1605. struct brcmf_cfg80211_priv *cfg_priv = wiphy_to_cfg(wiphy);
  1606. struct brcmf_scb_val_le scb_val;
  1607. int rssi;
  1608. s32 rate;
  1609. s32 err = 0;
  1610. u8 *bssid = brcmf_read_prof(cfg_priv, WL_PROF_BSSID);
  1611. WL_TRACE("Enter\n");
  1612. if (!check_sys_up(wiphy))
  1613. return -EIO;
  1614. if (memcmp(mac, bssid, ETH_ALEN)) {
  1615. WL_ERR("Wrong Mac address cfg_mac-%X:%X:%X:%X:%X:%X"
  1616. "wl_bssid-%X:%X:%X:%X:%X:%X\n",
  1617. mac[0], mac[1], mac[2], mac[3], mac[4], mac[5],
  1618. bssid[0], bssid[1], bssid[2], bssid[3],
  1619. bssid[4], bssid[5]);
  1620. err = -ENOENT;
  1621. goto done;
  1622. }
  1623. /* Report the current tx rate */
  1624. err = brcmf_exec_dcmd_u32(ndev, BRCMF_C_GET_RATE, &rate);
  1625. if (err) {
  1626. WL_ERR("Could not get rate (%d)\n", err);
  1627. } else {
  1628. sinfo->filled |= STATION_INFO_TX_BITRATE;
  1629. sinfo->txrate.legacy = rate * 5;
  1630. WL_CONN("Rate %d Mbps\n", rate / 2);
  1631. }
  1632. if (test_bit(WL_STATUS_CONNECTED, &cfg_priv->status)) {
  1633. scb_val.val = cpu_to_le32(0);
  1634. err = brcmf_exec_dcmd(ndev, BRCMF_C_GET_RSSI, &scb_val,
  1635. sizeof(struct brcmf_scb_val_le));
  1636. if (err)
  1637. WL_ERR("Could not get rssi (%d)\n", err);
  1638. rssi = le32_to_cpu(scb_val.val);
  1639. sinfo->filled |= STATION_INFO_SIGNAL;
  1640. sinfo->signal = rssi;
  1641. WL_CONN("RSSI %d dBm\n", rssi);
  1642. }
  1643. done:
  1644. WL_TRACE("Exit\n");
  1645. return err;
  1646. }
  1647. static s32
  1648. brcmf_cfg80211_set_power_mgmt(struct wiphy *wiphy, struct net_device *ndev,
  1649. bool enabled, s32 timeout)
  1650. {
  1651. s32 pm;
  1652. s32 err = 0;
  1653. struct brcmf_cfg80211_priv *cfg_priv = wiphy_to_cfg(wiphy);
  1654. WL_TRACE("Enter\n");
  1655. /*
  1656. * Powersave enable/disable request is coming from the
  1657. * cfg80211 even before the interface is up. In that
  1658. * scenario, driver will be storing the power save
  1659. * preference in cfg_priv struct to apply this to
  1660. * FW later while initializing the dongle
  1661. */
  1662. cfg_priv->pwr_save = enabled;
  1663. if (!test_bit(WL_STATUS_READY, &cfg_priv->status)) {
  1664. WL_INFO("Device is not ready,"
  1665. "storing the value in cfg_priv struct\n");
  1666. goto done;
  1667. }
  1668. pm = enabled ? PM_FAST : PM_OFF;
  1669. WL_INFO("power save %s\n", (pm ? "enabled" : "disabled"));
  1670. err = brcmf_exec_dcmd_u32(ndev, BRCMF_C_SET_PM, &pm);
  1671. if (err) {
  1672. if (err == -ENODEV)
  1673. WL_ERR("net_device is not ready yet\n");
  1674. else
  1675. WL_ERR("error (%d)\n", err);
  1676. }
  1677. done:
  1678. WL_TRACE("Exit\n");
  1679. return err;
  1680. }
  1681. static s32
  1682. brcmf_cfg80211_set_bitrate_mask(struct wiphy *wiphy, struct net_device *ndev,
  1683. const u8 *addr,
  1684. const struct cfg80211_bitrate_mask *mask)
  1685. {
  1686. struct brcm_rateset_le rateset_le;
  1687. s32 rate;
  1688. s32 val;
  1689. s32 err_bg;
  1690. s32 err_a;
  1691. u32 legacy;
  1692. s32 err = 0;
  1693. WL_TRACE("Enter\n");
  1694. if (!check_sys_up(wiphy))
  1695. return -EIO;
  1696. /* addr param is always NULL. ignore it */
  1697. /* Get current rateset */
  1698. err = brcmf_exec_dcmd(ndev, BRCM_GET_CURR_RATESET, &rateset_le,
  1699. sizeof(rateset_le));
  1700. if (err) {
  1701. WL_ERR("could not get current rateset (%d)\n", err);
  1702. goto done;
  1703. }
  1704. legacy = ffs(mask->control[IEEE80211_BAND_2GHZ].legacy & 0xFFFF);
  1705. if (!legacy)
  1706. legacy = ffs(mask->control[IEEE80211_BAND_5GHZ].legacy &
  1707. 0xFFFF);
  1708. val = wl_g_rates[legacy - 1].bitrate * 100000;
  1709. if (val < le32_to_cpu(rateset_le.count))
  1710. /* Select rate by rateset index */
  1711. rate = rateset_le.rates[val] & 0x7f;
  1712. else
  1713. /* Specified rate in bps */
  1714. rate = val / 500000;
  1715. WL_CONN("rate %d mbps\n", rate / 2);
  1716. /*
  1717. *
  1718. * Set rate override,
  1719. * Since the is a/b/g-blind, both a/bg_rate are enforced.
  1720. */
  1721. err_bg = brcmf_dev_intvar_set(ndev, "bg_rate", rate);
  1722. err_a = brcmf_dev_intvar_set(ndev, "a_rate", rate);
  1723. if (err_bg && err_a) {
  1724. WL_ERR("could not set fixed rate (%d) (%d)\n", err_bg, err_a);
  1725. err = err_bg | err_a;
  1726. }
  1727. done:
  1728. WL_TRACE("Exit\n");
  1729. return err;
  1730. }
  1731. static s32 brcmf_inform_single_bss(struct brcmf_cfg80211_priv *cfg_priv,
  1732. struct brcmf_bss_info_le *bi)
  1733. {
  1734. struct wiphy *wiphy = cfg_to_wiphy(cfg_priv);
  1735. struct ieee80211_channel *notify_channel;
  1736. struct cfg80211_bss *bss;
  1737. struct ieee80211_supported_band *band;
  1738. s32 err = 0;
  1739. u16 channel;
  1740. u32 freq;
  1741. u16 notify_capability;
  1742. u16 notify_interval;
  1743. u8 *notify_ie;
  1744. size_t notify_ielen;
  1745. s32 notify_signal;
  1746. if (le32_to_cpu(bi->length) > WL_BSS_INFO_MAX) {
  1747. WL_ERR("Bss info is larger than buffer. Discarding\n");
  1748. return 0;
  1749. }
  1750. channel = bi->ctl_ch ? bi->ctl_ch :
  1751. CHSPEC_CHANNEL(le16_to_cpu(bi->chanspec));
  1752. if (channel <= CH_MAX_2G_CHANNEL)
  1753. band = wiphy->bands[IEEE80211_BAND_2GHZ];
  1754. else
  1755. band = wiphy->bands[IEEE80211_BAND_5GHZ];
  1756. freq = ieee80211_channel_to_frequency(channel, band->band);
  1757. notify_channel = ieee80211_get_channel(wiphy, freq);
  1758. notify_capability = le16_to_cpu(bi->capability);
  1759. notify_interval = le16_to_cpu(bi->beacon_period);
  1760. notify_ie = (u8 *)bi + le16_to_cpu(bi->ie_offset);
  1761. notify_ielen = le32_to_cpu(bi->ie_length);
  1762. notify_signal = (s16)le16_to_cpu(bi->RSSI) * 100;
  1763. WL_CONN("bssid: %2.2X:%2.2X:%2.2X:%2.2X:%2.2X:%2.2X\n",
  1764. bi->BSSID[0], bi->BSSID[1], bi->BSSID[2],
  1765. bi->BSSID[3], bi->BSSID[4], bi->BSSID[5]);
  1766. WL_CONN("Channel: %d(%d)\n", channel, freq);
  1767. WL_CONN("Capability: %X\n", notify_capability);
  1768. WL_CONN("Beacon interval: %d\n", notify_interval);
  1769. WL_CONN("Signal: %d\n", notify_signal);
  1770. bss = cfg80211_inform_bss(wiphy, notify_channel, (const u8 *)bi->BSSID,
  1771. 0, notify_capability, notify_interval, notify_ie,
  1772. notify_ielen, notify_signal, GFP_KERNEL);
  1773. if (!bss)
  1774. return -ENOMEM;
  1775. cfg80211_put_bss(bss);
  1776. return err;
  1777. }
  1778. static struct brcmf_bss_info_le *
  1779. next_bss_le(struct brcmf_scan_results *list, struct brcmf_bss_info_le *bss)
  1780. {
  1781. if (bss == NULL)
  1782. return list->bss_info_le;
  1783. return (struct brcmf_bss_info_le *)((unsigned long)bss +
  1784. le32_to_cpu(bss->length));
  1785. }
  1786. static s32 brcmf_inform_bss(struct brcmf_cfg80211_priv *cfg_priv)
  1787. {
  1788. struct brcmf_scan_results *bss_list;
  1789. struct brcmf_bss_info_le *bi = NULL; /* must be initialized */
  1790. s32 err = 0;
  1791. int i;
  1792. bss_list = cfg_priv->bss_list;
  1793. if (bss_list->version != BRCMF_BSS_INFO_VERSION) {
  1794. WL_ERR("Version %d != WL_BSS_INFO_VERSION\n",
  1795. bss_list->version);
  1796. return -EOPNOTSUPP;
  1797. }
  1798. WL_SCAN("scanned AP count (%d)\n", bss_list->count);
  1799. for (i = 0; i < bss_list->count && i < WL_AP_MAX; i++) {
  1800. bi = next_bss_le(bss_list, bi);
  1801. err = brcmf_inform_single_bss(cfg_priv, bi);
  1802. if (err)
  1803. break;
  1804. }
  1805. return err;
  1806. }
  1807. static s32 wl_inform_ibss(struct brcmf_cfg80211_priv *cfg_priv,
  1808. struct net_device *ndev, const u8 *bssid)
  1809. {
  1810. struct wiphy *wiphy = cfg_to_wiphy(cfg_priv);
  1811. struct ieee80211_channel *notify_channel;
  1812. struct brcmf_bss_info_le *bi = NULL;
  1813. struct ieee80211_supported_band *band;
  1814. struct cfg80211_bss *bss;
  1815. u8 *buf = NULL;
  1816. s32 err = 0;
  1817. u16 channel;
  1818. u32 freq;
  1819. u16 notify_capability;
  1820. u16 notify_interval;
  1821. u8 *notify_ie;
  1822. size_t notify_ielen;
  1823. s32 notify_signal;
  1824. WL_TRACE("Enter\n");
  1825. buf = kzalloc(WL_BSS_INFO_MAX, GFP_KERNEL);
  1826. if (buf == NULL) {
  1827. err = -ENOMEM;
  1828. goto CleanUp;
  1829. }
  1830. *(__le32 *)buf = cpu_to_le32(WL_BSS_INFO_MAX);
  1831. err = brcmf_exec_dcmd(ndev, BRCMF_C_GET_BSS_INFO, buf, WL_BSS_INFO_MAX);
  1832. if (err) {
  1833. WL_ERR("WLC_GET_BSS_INFO failed: %d\n", err);
  1834. goto CleanUp;
  1835. }
  1836. bi = (struct brcmf_bss_info_le *)(buf + 4);
  1837. channel = bi->ctl_ch ? bi->ctl_ch :
  1838. CHSPEC_CHANNEL(le16_to_cpu(bi->chanspec));
  1839. if (channel <= CH_MAX_2G_CHANNEL)
  1840. band = wiphy->bands[IEEE80211_BAND_2GHZ];
  1841. else
  1842. band = wiphy->bands[IEEE80211_BAND_5GHZ];
  1843. freq = ieee80211_channel_to_frequency(channel, band->band);
  1844. notify_channel = ieee80211_get_channel(wiphy, freq);
  1845. notify_capability = le16_to_cpu(bi->capability);
  1846. notify_interval = le16_to_cpu(bi->beacon_period);
  1847. notify_ie = (u8 *)bi + le16_to_cpu(bi->ie_offset);
  1848. notify_ielen = le32_to_cpu(bi->ie_length);
  1849. notify_signal = (s16)le16_to_cpu(bi->RSSI) * 100;
  1850. WL_CONN("channel: %d(%d)\n", channel, freq);
  1851. WL_CONN("capability: %X\n", notify_capability);
  1852. WL_CONN("beacon interval: %d\n", notify_interval);
  1853. WL_CONN("signal: %d\n", notify_signal);
  1854. bss = cfg80211_inform_bss(wiphy, notify_channel, bssid,
  1855. 0, notify_capability, notify_interval,
  1856. notify_ie, notify_ielen, notify_signal, GFP_KERNEL);
  1857. if (!bss) {
  1858. err = -ENOMEM;
  1859. goto CleanUp;
  1860. }
  1861. cfg80211_put_bss(bss);
  1862. CleanUp:
  1863. kfree(buf);
  1864. WL_TRACE("Exit\n");
  1865. return err;
  1866. }
  1867. static bool brcmf_is_ibssmode(struct brcmf_cfg80211_priv *cfg_priv)
  1868. {
  1869. return cfg_priv->conf->mode == WL_MODE_IBSS;
  1870. }
  1871. /*
  1872. * Traverse a string of 1-byte tag/1-byte length/variable-length value
  1873. * triples, returning a pointer to the substring whose first element
  1874. * matches tag
  1875. */
  1876. static struct brcmf_tlv *brcmf_parse_tlvs(void *buf, int buflen, uint key)
  1877. {
  1878. struct brcmf_tlv *elt;
  1879. int totlen;
  1880. elt = (struct brcmf_tlv *) buf;
  1881. totlen = buflen;
  1882. /* find tagged parameter */
  1883. while (totlen >= 2) {
  1884. int len = elt->len;
  1885. /* validate remaining totlen */
  1886. if ((elt->id == key) && (totlen >= (len + 2)))
  1887. return elt;
  1888. elt = (struct brcmf_tlv *) ((u8 *) elt + (len + 2));
  1889. totlen -= (len + 2);
  1890. }
  1891. return NULL;
  1892. }
  1893. static s32 brcmf_update_bss_info(struct brcmf_cfg80211_priv *cfg_priv)
  1894. {
  1895. struct brcmf_bss_info_le *bi;
  1896. struct brcmf_ssid *ssid;
  1897. struct brcmf_tlv *tim;
  1898. u16 beacon_interval;
  1899. u8 dtim_period;
  1900. size_t ie_len;
  1901. u8 *ie;
  1902. s32 err = 0;
  1903. WL_TRACE("Enter\n");
  1904. if (brcmf_is_ibssmode(cfg_priv))
  1905. return err;
  1906. ssid = (struct brcmf_ssid *)brcmf_read_prof(cfg_priv, WL_PROF_SSID);
  1907. *(__le32 *)cfg_priv->extra_buf = cpu_to_le32(WL_EXTRA_BUF_MAX);
  1908. err = brcmf_exec_dcmd(cfg_to_ndev(cfg_priv), BRCMF_C_GET_BSS_INFO,
  1909. cfg_priv->extra_buf, WL_EXTRA_BUF_MAX);
  1910. if (err) {
  1911. WL_ERR("Could not get bss info %d\n", err);
  1912. goto update_bss_info_out;
  1913. }
  1914. bi = (struct brcmf_bss_info_le *)(cfg_priv->extra_buf + 4);
  1915. err = brcmf_inform_single_bss(cfg_priv, bi);
  1916. if (err)
  1917. goto update_bss_info_out;
  1918. ie = ((u8 *)bi) + le16_to_cpu(bi->ie_offset);
  1919. ie_len = le32_to_cpu(bi->ie_length);
  1920. beacon_interval = le16_to_cpu(bi->beacon_period);
  1921. tim = brcmf_parse_tlvs(ie, ie_len, WLAN_EID_TIM);
  1922. if (tim)
  1923. dtim_period = tim->data[1];
  1924. else {
  1925. /*
  1926. * active scan was done so we could not get dtim
  1927. * information out of probe response.
  1928. * so we speficially query dtim information to dongle.
  1929. */
  1930. u32 var;
  1931. err = brcmf_dev_intvar_get(cfg_to_ndev(cfg_priv),
  1932. "dtim_assoc", &var);
  1933. if (err) {
  1934. WL_ERR("wl dtim_assoc failed (%d)\n", err);
  1935. goto update_bss_info_out;
  1936. }
  1937. dtim_period = (u8)var;
  1938. }
  1939. brcmf_update_prof(cfg_priv, NULL, &beacon_interval, WL_PROF_BEACONINT);
  1940. brcmf_update_prof(cfg_priv, NULL, &dtim_period, WL_PROF_DTIMPERIOD);
  1941. update_bss_info_out:
  1942. WL_TRACE("Exit");
  1943. return err;
  1944. }
  1945. static void brcmf_term_iscan(struct brcmf_cfg80211_priv *cfg_priv)
  1946. {
  1947. struct brcmf_cfg80211_iscan_ctrl *iscan = cfg_to_iscan(cfg_priv);
  1948. struct brcmf_ssid ssid;
  1949. if (cfg_priv->iscan_on) {
  1950. iscan->state = WL_ISCAN_STATE_IDLE;
  1951. if (iscan->timer_on) {
  1952. del_timer_sync(&iscan->timer);
  1953. iscan->timer_on = 0;
  1954. }
  1955. cancel_work_sync(&iscan->work);
  1956. /* Abort iscan running in FW */
  1957. memset(&ssid, 0, sizeof(ssid));
  1958. brcmf_run_iscan(iscan, &ssid, WL_SCAN_ACTION_ABORT);
  1959. }
  1960. }
  1961. static void brcmf_notify_iscan_complete(struct brcmf_cfg80211_iscan_ctrl *iscan,
  1962. bool aborted)
  1963. {
  1964. struct brcmf_cfg80211_priv *cfg_priv = iscan_to_cfg(iscan);
  1965. struct net_device *ndev = cfg_to_ndev(cfg_priv);
  1966. if (!test_and_clear_bit(WL_STATUS_SCANNING, &cfg_priv->status)) {
  1967. WL_ERR("Scan complete while device not scanning\n");
  1968. return;
  1969. }
  1970. if (cfg_priv->scan_request) {
  1971. WL_SCAN("ISCAN Completed scan: %s\n",
  1972. aborted ? "Aborted" : "Done");
  1973. cfg80211_scan_done(cfg_priv->scan_request, aborted);
  1974. brcmf_set_mpc(ndev, 1);
  1975. cfg_priv->scan_request = NULL;
  1976. }
  1977. cfg_priv->iscan_kickstart = false;
  1978. }
  1979. static s32 brcmf_wakeup_iscan(struct brcmf_cfg80211_iscan_ctrl *iscan)
  1980. {
  1981. if (iscan->state != WL_ISCAN_STATE_IDLE) {
  1982. WL_SCAN("wake up iscan\n");
  1983. schedule_work(&iscan->work);
  1984. return 0;
  1985. }
  1986. return -EIO;
  1987. }
  1988. static s32
  1989. brcmf_get_iscan_results(struct brcmf_cfg80211_iscan_ctrl *iscan, u32 *status,
  1990. struct brcmf_scan_results **bss_list)
  1991. {
  1992. struct brcmf_iscan_results list;
  1993. struct brcmf_scan_results *results;
  1994. struct brcmf_scan_results_le *results_le;
  1995. struct brcmf_iscan_results *list_buf;
  1996. s32 err = 0;
  1997. memset(iscan->scan_buf, 0, WL_ISCAN_BUF_MAX);
  1998. list_buf = (struct brcmf_iscan_results *)iscan->scan_buf;
  1999. results = &list_buf->results;
  2000. results_le = &list_buf->results_le;
  2001. results->buflen = BRCMF_ISCAN_RESULTS_FIXED_SIZE;
  2002. results->version = 0;
  2003. results->count = 0;
  2004. memset(&list, 0, sizeof(list));
  2005. list.results_le.buflen = cpu_to_le32(WL_ISCAN_BUF_MAX);
  2006. err = brcmf_dev_iovar_getbuf(iscan->ndev, "iscanresults", &list,
  2007. BRCMF_ISCAN_RESULTS_FIXED_SIZE,
  2008. iscan->scan_buf, WL_ISCAN_BUF_MAX);
  2009. if (err) {
  2010. WL_ERR("error (%d)\n", err);
  2011. return err;
  2012. }
  2013. results->buflen = le32_to_cpu(results_le->buflen);
  2014. results->version = le32_to_cpu(results_le->version);
  2015. results->count = le32_to_cpu(results_le->count);
  2016. WL_SCAN("results->count = %d\n", results_le->count);
  2017. WL_SCAN("results->buflen = %d\n", results_le->buflen);
  2018. *status = le32_to_cpu(list_buf->status_le);
  2019. WL_SCAN("status = %d\n", *status);
  2020. *bss_list = results;
  2021. return err;
  2022. }
  2023. static s32 brcmf_iscan_done(struct brcmf_cfg80211_priv *cfg_priv)
  2024. {
  2025. struct brcmf_cfg80211_iscan_ctrl *iscan = cfg_priv->iscan;
  2026. s32 err = 0;
  2027. iscan->state = WL_ISCAN_STATE_IDLE;
  2028. brcmf_inform_bss(cfg_priv);
  2029. brcmf_notify_iscan_complete(iscan, false);
  2030. return err;
  2031. }
  2032. static s32 brcmf_iscan_pending(struct brcmf_cfg80211_priv *cfg_priv)
  2033. {
  2034. struct brcmf_cfg80211_iscan_ctrl *iscan = cfg_priv->iscan;
  2035. s32 err = 0;
  2036. /* Reschedule the timer */
  2037. mod_timer(&iscan->timer, jiffies + iscan->timer_ms * HZ / 1000);
  2038. iscan->timer_on = 1;
  2039. return err;
  2040. }
  2041. static s32 brcmf_iscan_inprogress(struct brcmf_cfg80211_priv *cfg_priv)
  2042. {
  2043. struct brcmf_cfg80211_iscan_ctrl *iscan = cfg_priv->iscan;
  2044. s32 err = 0;
  2045. brcmf_inform_bss(cfg_priv);
  2046. brcmf_run_iscan(iscan, NULL, BRCMF_SCAN_ACTION_CONTINUE);
  2047. /* Reschedule the timer */
  2048. mod_timer(&iscan->timer, jiffies + iscan->timer_ms * HZ / 1000);
  2049. iscan->timer_on = 1;
  2050. return err;
  2051. }
  2052. static s32 brcmf_iscan_aborted(struct brcmf_cfg80211_priv *cfg_priv)
  2053. {
  2054. struct brcmf_cfg80211_iscan_ctrl *iscan = cfg_priv->iscan;
  2055. s32 err = 0;
  2056. iscan->state = WL_ISCAN_STATE_IDLE;
  2057. brcmf_notify_iscan_complete(iscan, true);
  2058. return err;
  2059. }
  2060. static void brcmf_cfg80211_iscan_handler(struct work_struct *work)
  2061. {
  2062. struct brcmf_cfg80211_iscan_ctrl *iscan =
  2063. container_of(work, struct brcmf_cfg80211_iscan_ctrl,
  2064. work);
  2065. struct brcmf_cfg80211_priv *cfg_priv = iscan_to_cfg(iscan);
  2066. struct brcmf_cfg80211_iscan_eloop *el = &iscan->el;
  2067. u32 status = BRCMF_SCAN_RESULTS_PARTIAL;
  2068. if (iscan->timer_on) {
  2069. del_timer_sync(&iscan->timer);
  2070. iscan->timer_on = 0;
  2071. }
  2072. if (brcmf_get_iscan_results(iscan, &status, &cfg_priv->bss_list)) {
  2073. status = BRCMF_SCAN_RESULTS_ABORTED;
  2074. WL_ERR("Abort iscan\n");
  2075. }
  2076. el->handler[status](cfg_priv);
  2077. }
  2078. static void brcmf_iscan_timer(unsigned long data)
  2079. {
  2080. struct brcmf_cfg80211_iscan_ctrl *iscan =
  2081. (struct brcmf_cfg80211_iscan_ctrl *)data;
  2082. if (iscan) {
  2083. iscan->timer_on = 0;
  2084. WL_SCAN("timer expired\n");
  2085. brcmf_wakeup_iscan(iscan);
  2086. }
  2087. }
  2088. static s32 brcmf_invoke_iscan(struct brcmf_cfg80211_priv *cfg_priv)
  2089. {
  2090. struct brcmf_cfg80211_iscan_ctrl *iscan = cfg_to_iscan(cfg_priv);
  2091. if (cfg_priv->iscan_on) {
  2092. iscan->state = WL_ISCAN_STATE_IDLE;
  2093. INIT_WORK(&iscan->work, brcmf_cfg80211_iscan_handler);
  2094. }
  2095. return 0;
  2096. }
  2097. static void brcmf_init_iscan_eloop(struct brcmf_cfg80211_iscan_eloop *el)
  2098. {
  2099. memset(el, 0, sizeof(*el));
  2100. el->handler[BRCMF_SCAN_RESULTS_SUCCESS] = brcmf_iscan_done;
  2101. el->handler[BRCMF_SCAN_RESULTS_PARTIAL] = brcmf_iscan_inprogress;
  2102. el->handler[BRCMF_SCAN_RESULTS_PENDING] = brcmf_iscan_pending;
  2103. el->handler[BRCMF_SCAN_RESULTS_ABORTED] = brcmf_iscan_aborted;
  2104. el->handler[BRCMF_SCAN_RESULTS_NO_MEM] = brcmf_iscan_aborted;
  2105. }
  2106. static s32 brcmf_init_iscan(struct brcmf_cfg80211_priv *cfg_priv)
  2107. {
  2108. struct brcmf_cfg80211_iscan_ctrl *iscan = cfg_to_iscan(cfg_priv);
  2109. int err = 0;
  2110. if (cfg_priv->iscan_on) {
  2111. iscan->ndev = cfg_to_ndev(cfg_priv);
  2112. brcmf_init_iscan_eloop(&iscan->el);
  2113. iscan->timer_ms = WL_ISCAN_TIMER_INTERVAL_MS;
  2114. init_timer(&iscan->timer);
  2115. iscan->timer.data = (unsigned long) iscan;
  2116. iscan->timer.function = brcmf_iscan_timer;
  2117. err = brcmf_invoke_iscan(cfg_priv);
  2118. if (!err)
  2119. iscan->data = cfg_priv;
  2120. }
  2121. return err;
  2122. }
  2123. static __always_inline void brcmf_delay(u32 ms)
  2124. {
  2125. if (ms < 1000 / HZ) {
  2126. cond_resched();
  2127. mdelay(ms);
  2128. } else {
  2129. msleep(ms);
  2130. }
  2131. }
  2132. static s32 brcmf_cfg80211_resume(struct wiphy *wiphy)
  2133. {
  2134. struct brcmf_cfg80211_priv *cfg_priv = wiphy_to_cfg(wiphy);
  2135. /*
  2136. * Check for WL_STATUS_READY before any function call which
  2137. * could result is bus access. Don't block the resume for
  2138. * any driver error conditions
  2139. */
  2140. WL_TRACE("Enter\n");
  2141. if (test_bit(WL_STATUS_READY, &cfg_priv->status))
  2142. brcmf_invoke_iscan(wiphy_to_cfg(wiphy));
  2143. WL_TRACE("Exit\n");
  2144. return 0;
  2145. }
  2146. static s32 brcmf_cfg80211_suspend(struct wiphy *wiphy,
  2147. struct cfg80211_wowlan *wow)
  2148. {
  2149. struct brcmf_cfg80211_priv *cfg_priv = wiphy_to_cfg(wiphy);
  2150. struct net_device *ndev = cfg_to_ndev(cfg_priv);
  2151. WL_TRACE("Enter\n");
  2152. /*
  2153. * Check for WL_STATUS_READY before any function call which
  2154. * could result is bus access. Don't block the suspend for
  2155. * any driver error conditions
  2156. */
  2157. /*
  2158. * While going to suspend if associated with AP disassociate
  2159. * from AP to save power while system is in suspended state
  2160. */
  2161. if ((test_bit(WL_STATUS_CONNECTED, &cfg_priv->status) ||
  2162. test_bit(WL_STATUS_CONNECTING, &cfg_priv->status)) &&
  2163. test_bit(WL_STATUS_READY, &cfg_priv->status)) {
  2164. WL_INFO("Disassociating from AP"
  2165. " while entering suspend state\n");
  2166. brcmf_link_down(cfg_priv);
  2167. /*
  2168. * Make sure WPA_Supplicant receives all the event
  2169. * generated due to DISASSOC call to the fw to keep
  2170. * the state fw and WPA_Supplicant state consistent
  2171. */
  2172. brcmf_delay(500);
  2173. }
  2174. set_bit(WL_STATUS_SCAN_ABORTING, &cfg_priv->status);
  2175. if (test_bit(WL_STATUS_READY, &cfg_priv->status))
  2176. brcmf_term_iscan(cfg_priv);
  2177. if (cfg_priv->scan_request) {
  2178. /* Indidate scan abort to cfg80211 layer */
  2179. WL_INFO("Terminating scan in progress\n");
  2180. cfg80211_scan_done(cfg_priv->scan_request, true);
  2181. cfg_priv->scan_request = NULL;
  2182. }
  2183. clear_bit(WL_STATUS_SCANNING, &cfg_priv->status);
  2184. clear_bit(WL_STATUS_SCAN_ABORTING, &cfg_priv->status);
  2185. /* Turn off watchdog timer */
  2186. if (test_bit(WL_STATUS_READY, &cfg_priv->status)) {
  2187. WL_INFO("Enable MPC\n");
  2188. brcmf_set_mpc(ndev, 1);
  2189. }
  2190. WL_TRACE("Exit\n");
  2191. return 0;
  2192. }
  2193. static __used s32
  2194. brcmf_dev_bufvar_set(struct net_device *ndev, s8 *name, s8 *buf, s32 len)
  2195. {
  2196. struct brcmf_cfg80211_priv *cfg_priv = ndev_to_cfg(ndev);
  2197. u32 buflen;
  2198. buflen = brcmf_c_mkiovar(name, buf, len, cfg_priv->dcmd_buf,
  2199. WL_DCMD_LEN_MAX);
  2200. BUG_ON(!buflen);
  2201. return brcmf_exec_dcmd(ndev, BRCMF_C_SET_VAR, cfg_priv->dcmd_buf,
  2202. buflen);
  2203. }
  2204. static s32
  2205. brcmf_dev_bufvar_get(struct net_device *ndev, s8 *name, s8 *buf,
  2206. s32 buf_len)
  2207. {
  2208. struct brcmf_cfg80211_priv *cfg_priv = ndev_to_cfg(ndev);
  2209. u32 len;
  2210. s32 err = 0;
  2211. len = brcmf_c_mkiovar(name, NULL, 0, cfg_priv->dcmd_buf,
  2212. WL_DCMD_LEN_MAX);
  2213. BUG_ON(!len);
  2214. err = brcmf_exec_dcmd(ndev, BRCMF_C_GET_VAR, cfg_priv->dcmd_buf,
  2215. WL_DCMD_LEN_MAX);
  2216. if (err) {
  2217. WL_ERR("error (%d)\n", err);
  2218. return err;
  2219. }
  2220. memcpy(buf, cfg_priv->dcmd_buf, buf_len);
  2221. return err;
  2222. }
  2223. static __used s32
  2224. brcmf_update_pmklist(struct net_device *ndev,
  2225. struct brcmf_cfg80211_pmk_list *pmk_list, s32 err)
  2226. {
  2227. int i, j;
  2228. int pmkid_len;
  2229. pmkid_len = le32_to_cpu(pmk_list->pmkids.npmkid);
  2230. WL_CONN("No of elements %d\n", pmkid_len);
  2231. for (i = 0; i < pmkid_len; i++) {
  2232. WL_CONN("PMKID[%d]: %pM =\n", i,
  2233. &pmk_list->pmkids.pmkid[i].BSSID);
  2234. for (j = 0; j < WLAN_PMKID_LEN; j++)
  2235. WL_CONN("%02x\n", pmk_list->pmkids.pmkid[i].PMKID[j]);
  2236. }
  2237. if (!err)
  2238. brcmf_dev_bufvar_set(ndev, "pmkid_info", (char *)pmk_list,
  2239. sizeof(*pmk_list));
  2240. return err;
  2241. }
  2242. static s32
  2243. brcmf_cfg80211_set_pmksa(struct wiphy *wiphy, struct net_device *ndev,
  2244. struct cfg80211_pmksa *pmksa)
  2245. {
  2246. struct brcmf_cfg80211_priv *cfg_priv = wiphy_to_cfg(wiphy);
  2247. struct pmkid_list *pmkids = &cfg_priv->pmk_list->pmkids;
  2248. s32 err = 0;
  2249. int i;
  2250. int pmkid_len;
  2251. WL_TRACE("Enter\n");
  2252. if (!check_sys_up(wiphy))
  2253. return -EIO;
  2254. pmkid_len = le32_to_cpu(pmkids->npmkid);
  2255. for (i = 0; i < pmkid_len; i++)
  2256. if (!memcmp(pmksa->bssid, pmkids->pmkid[i].BSSID, ETH_ALEN))
  2257. break;
  2258. if (i < WL_NUM_PMKIDS_MAX) {
  2259. memcpy(pmkids->pmkid[i].BSSID, pmksa->bssid, ETH_ALEN);
  2260. memcpy(pmkids->pmkid[i].PMKID, pmksa->pmkid, WLAN_PMKID_LEN);
  2261. if (i == pmkid_len) {
  2262. pmkid_len++;
  2263. pmkids->npmkid = cpu_to_le32(pmkid_len);
  2264. }
  2265. } else
  2266. err = -EINVAL;
  2267. WL_CONN("set_pmksa,IW_PMKSA_ADD - PMKID: %pM =\n",
  2268. pmkids->pmkid[pmkid_len].BSSID);
  2269. for (i = 0; i < WLAN_PMKID_LEN; i++)
  2270. WL_CONN("%02x\n", pmkids->pmkid[pmkid_len].PMKID[i]);
  2271. err = brcmf_update_pmklist(ndev, cfg_priv->pmk_list, err);
  2272. WL_TRACE("Exit\n");
  2273. return err;
  2274. }
  2275. static s32
  2276. brcmf_cfg80211_del_pmksa(struct wiphy *wiphy, struct net_device *ndev,
  2277. struct cfg80211_pmksa *pmksa)
  2278. {
  2279. struct brcmf_cfg80211_priv *cfg_priv = wiphy_to_cfg(wiphy);
  2280. struct pmkid_list pmkid;
  2281. s32 err = 0;
  2282. int i, pmkid_len;
  2283. WL_TRACE("Enter\n");
  2284. if (!check_sys_up(wiphy))
  2285. return -EIO;
  2286. memcpy(&pmkid.pmkid[0].BSSID, pmksa->bssid, ETH_ALEN);
  2287. memcpy(&pmkid.pmkid[0].PMKID, pmksa->pmkid, WLAN_PMKID_LEN);
  2288. WL_CONN("del_pmksa,IW_PMKSA_REMOVE - PMKID: %pM =\n",
  2289. &pmkid.pmkid[0].BSSID);
  2290. for (i = 0; i < WLAN_PMKID_LEN; i++)
  2291. WL_CONN("%02x\n", pmkid.pmkid[0].PMKID[i]);
  2292. pmkid_len = le32_to_cpu(cfg_priv->pmk_list->pmkids.npmkid);
  2293. for (i = 0; i < pmkid_len; i++)
  2294. if (!memcmp
  2295. (pmksa->bssid, &cfg_priv->pmk_list->pmkids.pmkid[i].BSSID,
  2296. ETH_ALEN))
  2297. break;
  2298. if ((pmkid_len > 0)
  2299. && (i < pmkid_len)) {
  2300. memset(&cfg_priv->pmk_list->pmkids.pmkid[i], 0,
  2301. sizeof(struct pmkid));
  2302. for (; i < (pmkid_len - 1); i++) {
  2303. memcpy(&cfg_priv->pmk_list->pmkids.pmkid[i].BSSID,
  2304. &cfg_priv->pmk_list->pmkids.pmkid[i + 1].BSSID,
  2305. ETH_ALEN);
  2306. memcpy(&cfg_priv->pmk_list->pmkids.pmkid[i].PMKID,
  2307. &cfg_priv->pmk_list->pmkids.pmkid[i + 1].PMKID,
  2308. WLAN_PMKID_LEN);
  2309. }
  2310. cfg_priv->pmk_list->pmkids.npmkid = cpu_to_le32(pmkid_len - 1);
  2311. } else
  2312. err = -EINVAL;
  2313. err = brcmf_update_pmklist(ndev, cfg_priv->pmk_list, err);
  2314. WL_TRACE("Exit\n");
  2315. return err;
  2316. }
  2317. static s32
  2318. brcmf_cfg80211_flush_pmksa(struct wiphy *wiphy, struct net_device *ndev)
  2319. {
  2320. struct brcmf_cfg80211_priv *cfg_priv = wiphy_to_cfg(wiphy);
  2321. s32 err = 0;
  2322. WL_TRACE("Enter\n");
  2323. if (!check_sys_up(wiphy))
  2324. return -EIO;
  2325. memset(cfg_priv->pmk_list, 0, sizeof(*cfg_priv->pmk_list));
  2326. err = brcmf_update_pmklist(ndev, cfg_priv->pmk_list, err);
  2327. WL_TRACE("Exit\n");
  2328. return err;
  2329. }
  2330. #ifdef CONFIG_NL80211_TESTMODE
  2331. static int brcmf_cfg80211_testmode(struct wiphy *wiphy, void *data, int len)
  2332. {
  2333. struct brcmf_cfg80211_priv *cfg_priv = wiphy_to_cfg(wiphy);
  2334. struct net_device *ndev = cfg_priv->wdev->netdev;
  2335. struct brcmf_dcmd *dcmd = data;
  2336. struct sk_buff *reply;
  2337. int ret;
  2338. ret = brcmf_netlink_dcmd(ndev, dcmd);
  2339. if (ret == 0) {
  2340. reply = cfg80211_testmode_alloc_reply_skb(wiphy, sizeof(*dcmd));
  2341. nla_put(reply, NL80211_ATTR_TESTDATA, sizeof(*dcmd), dcmd);
  2342. ret = cfg80211_testmode_reply(reply);
  2343. }
  2344. return ret;
  2345. }
  2346. #endif
  2347. static struct cfg80211_ops wl_cfg80211_ops = {
  2348. .change_virtual_intf = brcmf_cfg80211_change_iface,
  2349. .scan = brcmf_cfg80211_scan,
  2350. .set_wiphy_params = brcmf_cfg80211_set_wiphy_params,
  2351. .join_ibss = brcmf_cfg80211_join_ibss,
  2352. .leave_ibss = brcmf_cfg80211_leave_ibss,
  2353. .get_station = brcmf_cfg80211_get_station,
  2354. .set_tx_power = brcmf_cfg80211_set_tx_power,
  2355. .get_tx_power = brcmf_cfg80211_get_tx_power,
  2356. .add_key = brcmf_cfg80211_add_key,
  2357. .del_key = brcmf_cfg80211_del_key,
  2358. .get_key = brcmf_cfg80211_get_key,
  2359. .set_default_key = brcmf_cfg80211_config_default_key,
  2360. .set_default_mgmt_key = brcmf_cfg80211_config_default_mgmt_key,
  2361. .set_power_mgmt = brcmf_cfg80211_set_power_mgmt,
  2362. .set_bitrate_mask = brcmf_cfg80211_set_bitrate_mask,
  2363. .connect = brcmf_cfg80211_connect,
  2364. .disconnect = brcmf_cfg80211_disconnect,
  2365. .suspend = brcmf_cfg80211_suspend,
  2366. .resume = brcmf_cfg80211_resume,
  2367. .set_pmksa = brcmf_cfg80211_set_pmksa,
  2368. .del_pmksa = brcmf_cfg80211_del_pmksa,
  2369. .flush_pmksa = brcmf_cfg80211_flush_pmksa,
  2370. #ifdef CONFIG_NL80211_TESTMODE
  2371. .testmode_cmd = brcmf_cfg80211_testmode
  2372. #endif
  2373. };
  2374. static s32 brcmf_mode_to_nl80211_iftype(s32 mode)
  2375. {
  2376. s32 err = 0;
  2377. switch (mode) {
  2378. case WL_MODE_BSS:
  2379. return NL80211_IFTYPE_STATION;
  2380. case WL_MODE_IBSS:
  2381. return NL80211_IFTYPE_ADHOC;
  2382. default:
  2383. return NL80211_IFTYPE_UNSPECIFIED;
  2384. }
  2385. return err;
  2386. }
  2387. static struct wireless_dev *brcmf_alloc_wdev(s32 sizeof_iface,
  2388. struct device *ndev)
  2389. {
  2390. struct wireless_dev *wdev;
  2391. s32 err = 0;
  2392. wdev = kzalloc(sizeof(*wdev), GFP_KERNEL);
  2393. if (!wdev)
  2394. return ERR_PTR(-ENOMEM);
  2395. wdev->wiphy =
  2396. wiphy_new(&wl_cfg80211_ops,
  2397. sizeof(struct brcmf_cfg80211_priv) + sizeof_iface);
  2398. if (!wdev->wiphy) {
  2399. WL_ERR("Could not allocate wiphy device\n");
  2400. err = -ENOMEM;
  2401. goto wiphy_new_out;
  2402. }
  2403. set_wiphy_dev(wdev->wiphy, ndev);
  2404. wdev->wiphy->max_scan_ssids = WL_NUM_SCAN_MAX;
  2405. wdev->wiphy->max_num_pmkids = WL_NUM_PMKIDS_MAX;
  2406. wdev->wiphy->interface_modes =
  2407. BIT(NL80211_IFTYPE_STATION) | BIT(NL80211_IFTYPE_ADHOC);
  2408. wdev->wiphy->bands[IEEE80211_BAND_2GHZ] = &__wl_band_2ghz;
  2409. wdev->wiphy->bands[IEEE80211_BAND_5GHZ] = &__wl_band_5ghz_a; /* Set
  2410. * it as 11a by default.
  2411. * This will be updated with
  2412. * 11n phy tables in
  2413. * "ifconfig up"
  2414. * if phy has 11n capability
  2415. */
  2416. wdev->wiphy->signal_type = CFG80211_SIGNAL_TYPE_MBM;
  2417. wdev->wiphy->cipher_suites = __wl_cipher_suites;
  2418. wdev->wiphy->n_cipher_suites = ARRAY_SIZE(__wl_cipher_suites);
  2419. wdev->wiphy->flags |= WIPHY_FLAG_PS_ON_BY_DEFAULT; /* enable power
  2420. * save mode
  2421. * by default
  2422. */
  2423. err = wiphy_register(wdev->wiphy);
  2424. if (err < 0) {
  2425. WL_ERR("Could not register wiphy device (%d)\n", err);
  2426. goto wiphy_register_out;
  2427. }
  2428. return wdev;
  2429. wiphy_register_out:
  2430. wiphy_free(wdev->wiphy);
  2431. wiphy_new_out:
  2432. kfree(wdev);
  2433. return ERR_PTR(err);
  2434. }
  2435. static void brcmf_free_wdev(struct brcmf_cfg80211_priv *cfg_priv)
  2436. {
  2437. struct wireless_dev *wdev = cfg_priv->wdev;
  2438. if (!wdev) {
  2439. WL_ERR("wdev is invalid\n");
  2440. return;
  2441. }
  2442. wiphy_unregister(wdev->wiphy);
  2443. wiphy_free(wdev->wiphy);
  2444. kfree(wdev);
  2445. cfg_priv->wdev = NULL;
  2446. }
  2447. static bool brcmf_is_linkup(struct brcmf_cfg80211_priv *cfg_priv,
  2448. const struct brcmf_event_msg *e)
  2449. {
  2450. u32 event = be32_to_cpu(e->event_type);
  2451. u32 status = be32_to_cpu(e->status);
  2452. if (event == BRCMF_E_SET_SSID && status == BRCMF_E_STATUS_SUCCESS) {
  2453. WL_CONN("Processing set ssid\n");
  2454. cfg_priv->link_up = true;
  2455. return true;
  2456. }
  2457. return false;
  2458. }
  2459. static bool brcmf_is_linkdown(struct brcmf_cfg80211_priv *cfg_priv,
  2460. const struct brcmf_event_msg *e)
  2461. {
  2462. u32 event = be32_to_cpu(e->event_type);
  2463. u16 flags = be16_to_cpu(e->flags);
  2464. if (event == BRCMF_E_LINK && (!(flags & BRCMF_EVENT_MSG_LINK))) {
  2465. WL_CONN("Processing link down\n");
  2466. return true;
  2467. }
  2468. return false;
  2469. }
  2470. static bool brcmf_is_nonetwork(struct brcmf_cfg80211_priv *cfg_priv,
  2471. const struct brcmf_event_msg *e)
  2472. {
  2473. u32 event = be32_to_cpu(e->event_type);
  2474. u32 status = be32_to_cpu(e->status);
  2475. if (event == BRCMF_E_LINK && status == BRCMF_E_STATUS_NO_NETWORKS) {
  2476. WL_CONN("Processing Link %s & no network found\n",
  2477. be16_to_cpu(e->flags) & BRCMF_EVENT_MSG_LINK ?
  2478. "up" : "down");
  2479. return true;
  2480. }
  2481. if (event == BRCMF_E_SET_SSID && status != BRCMF_E_STATUS_SUCCESS) {
  2482. WL_CONN("Processing connecting & no network found\n");
  2483. return true;
  2484. }
  2485. return false;
  2486. }
  2487. static void brcmf_clear_assoc_ies(struct brcmf_cfg80211_priv *cfg_priv)
  2488. {
  2489. struct brcmf_cfg80211_connect_info *conn_info = cfg_to_conn(cfg_priv);
  2490. kfree(conn_info->req_ie);
  2491. conn_info->req_ie = NULL;
  2492. conn_info->req_ie_len = 0;
  2493. kfree(conn_info->resp_ie);
  2494. conn_info->resp_ie = NULL;
  2495. conn_info->resp_ie_len = 0;
  2496. }
  2497. static s32 brcmf_get_assoc_ies(struct brcmf_cfg80211_priv *cfg_priv)
  2498. {
  2499. struct net_device *ndev = cfg_to_ndev(cfg_priv);
  2500. struct brcmf_cfg80211_assoc_ielen_le *assoc_info;
  2501. struct brcmf_cfg80211_connect_info *conn_info = cfg_to_conn(cfg_priv);
  2502. u32 req_len;
  2503. u32 resp_len;
  2504. s32 err = 0;
  2505. brcmf_clear_assoc_ies(cfg_priv);
  2506. err = brcmf_dev_bufvar_get(ndev, "assoc_info", cfg_priv->extra_buf,
  2507. WL_ASSOC_INFO_MAX);
  2508. if (err) {
  2509. WL_ERR("could not get assoc info (%d)\n", err);
  2510. return err;
  2511. }
  2512. assoc_info =
  2513. (struct brcmf_cfg80211_assoc_ielen_le *)cfg_priv->extra_buf;
  2514. req_len = le32_to_cpu(assoc_info->req_len);
  2515. resp_len = le32_to_cpu(assoc_info->resp_len);
  2516. if (req_len) {
  2517. err = brcmf_dev_bufvar_get(ndev, "assoc_req_ies",
  2518. cfg_priv->extra_buf,
  2519. WL_ASSOC_INFO_MAX);
  2520. if (err) {
  2521. WL_ERR("could not get assoc req (%d)\n", err);
  2522. return err;
  2523. }
  2524. conn_info->req_ie_len = req_len;
  2525. conn_info->req_ie =
  2526. kmemdup(cfg_priv->extra_buf, conn_info->req_ie_len,
  2527. GFP_KERNEL);
  2528. } else {
  2529. conn_info->req_ie_len = 0;
  2530. conn_info->req_ie = NULL;
  2531. }
  2532. if (resp_len) {
  2533. err = brcmf_dev_bufvar_get(ndev, "assoc_resp_ies",
  2534. cfg_priv->extra_buf,
  2535. WL_ASSOC_INFO_MAX);
  2536. if (err) {
  2537. WL_ERR("could not get assoc resp (%d)\n", err);
  2538. return err;
  2539. }
  2540. conn_info->resp_ie_len = resp_len;
  2541. conn_info->resp_ie =
  2542. kmemdup(cfg_priv->extra_buf, conn_info->resp_ie_len,
  2543. GFP_KERNEL);
  2544. } else {
  2545. conn_info->resp_ie_len = 0;
  2546. conn_info->resp_ie = NULL;
  2547. }
  2548. WL_CONN("req len (%d) resp len (%d)\n",
  2549. conn_info->req_ie_len, conn_info->resp_ie_len);
  2550. return err;
  2551. }
  2552. static s32
  2553. brcmf_bss_roaming_done(struct brcmf_cfg80211_priv *cfg_priv,
  2554. struct net_device *ndev,
  2555. const struct brcmf_event_msg *e)
  2556. {
  2557. struct brcmf_cfg80211_connect_info *conn_info = cfg_to_conn(cfg_priv);
  2558. struct wiphy *wiphy = cfg_to_wiphy(cfg_priv);
  2559. struct brcmf_channel_info_le channel_le;
  2560. struct ieee80211_channel *notify_channel;
  2561. struct ieee80211_supported_band *band;
  2562. u32 freq;
  2563. s32 err = 0;
  2564. u32 target_channel;
  2565. WL_TRACE("Enter\n");
  2566. brcmf_get_assoc_ies(cfg_priv);
  2567. brcmf_update_prof(cfg_priv, NULL, &e->addr, WL_PROF_BSSID);
  2568. brcmf_update_bss_info(cfg_priv);
  2569. brcmf_exec_dcmd(ndev, BRCMF_C_GET_CHANNEL, &channel_le,
  2570. sizeof(channel_le));
  2571. target_channel = le32_to_cpu(channel_le.target_channel);
  2572. WL_CONN("Roamed to channel %d\n", target_channel);
  2573. if (target_channel <= CH_MAX_2G_CHANNEL)
  2574. band = wiphy->bands[IEEE80211_BAND_2GHZ];
  2575. else
  2576. band = wiphy->bands[IEEE80211_BAND_5GHZ];
  2577. freq = ieee80211_channel_to_frequency(target_channel, band->band);
  2578. notify_channel = ieee80211_get_channel(wiphy, freq);
  2579. cfg80211_roamed(ndev, notify_channel,
  2580. (u8 *)brcmf_read_prof(cfg_priv, WL_PROF_BSSID),
  2581. conn_info->req_ie, conn_info->req_ie_len,
  2582. conn_info->resp_ie, conn_info->resp_ie_len, GFP_KERNEL);
  2583. WL_CONN("Report roaming result\n");
  2584. set_bit(WL_STATUS_CONNECTED, &cfg_priv->status);
  2585. WL_TRACE("Exit\n");
  2586. return err;
  2587. }
  2588. static s32
  2589. brcmf_bss_connect_done(struct brcmf_cfg80211_priv *cfg_priv,
  2590. struct net_device *ndev, const struct brcmf_event_msg *e,
  2591. bool completed)
  2592. {
  2593. struct brcmf_cfg80211_connect_info *conn_info = cfg_to_conn(cfg_priv);
  2594. s32 err = 0;
  2595. WL_TRACE("Enter\n");
  2596. if (test_and_clear_bit(WL_STATUS_CONNECTING, &cfg_priv->status)) {
  2597. if (completed) {
  2598. brcmf_get_assoc_ies(cfg_priv);
  2599. brcmf_update_prof(cfg_priv, NULL, &e->addr,
  2600. WL_PROF_BSSID);
  2601. brcmf_update_bss_info(cfg_priv);
  2602. }
  2603. cfg80211_connect_result(ndev,
  2604. (u8 *)brcmf_read_prof(cfg_priv,
  2605. WL_PROF_BSSID),
  2606. conn_info->req_ie,
  2607. conn_info->req_ie_len,
  2608. conn_info->resp_ie,
  2609. conn_info->resp_ie_len,
  2610. completed ? WLAN_STATUS_SUCCESS :
  2611. WLAN_STATUS_AUTH_TIMEOUT,
  2612. GFP_KERNEL);
  2613. if (completed)
  2614. set_bit(WL_STATUS_CONNECTED, &cfg_priv->status);
  2615. WL_CONN("Report connect result - connection %s\n",
  2616. completed ? "succeeded" : "failed");
  2617. }
  2618. WL_TRACE("Exit\n");
  2619. return err;
  2620. }
  2621. static s32
  2622. brcmf_notify_connect_status(struct brcmf_cfg80211_priv *cfg_priv,
  2623. struct net_device *ndev,
  2624. const struct brcmf_event_msg *e, void *data)
  2625. {
  2626. s32 err = 0;
  2627. if (brcmf_is_linkup(cfg_priv, e)) {
  2628. WL_CONN("Linkup\n");
  2629. if (brcmf_is_ibssmode(cfg_priv)) {
  2630. brcmf_update_prof(cfg_priv, NULL, (void *)e->addr,
  2631. WL_PROF_BSSID);
  2632. wl_inform_ibss(cfg_priv, ndev, e->addr);
  2633. cfg80211_ibss_joined(ndev, e->addr, GFP_KERNEL);
  2634. clear_bit(WL_STATUS_CONNECTING, &cfg_priv->status);
  2635. set_bit(WL_STATUS_CONNECTED, &cfg_priv->status);
  2636. } else
  2637. brcmf_bss_connect_done(cfg_priv, ndev, e, true);
  2638. } else if (brcmf_is_linkdown(cfg_priv, e)) {
  2639. WL_CONN("Linkdown\n");
  2640. if (brcmf_is_ibssmode(cfg_priv)) {
  2641. clear_bit(WL_STATUS_CONNECTING, &cfg_priv->status);
  2642. if (test_and_clear_bit(WL_STATUS_CONNECTED,
  2643. &cfg_priv->status))
  2644. brcmf_link_down(cfg_priv);
  2645. } else {
  2646. brcmf_bss_connect_done(cfg_priv, ndev, e, false);
  2647. if (test_and_clear_bit(WL_STATUS_CONNECTED,
  2648. &cfg_priv->status)) {
  2649. cfg80211_disconnected(ndev, 0, NULL, 0,
  2650. GFP_KERNEL);
  2651. brcmf_link_down(cfg_priv);
  2652. }
  2653. }
  2654. brcmf_init_prof(cfg_priv->profile);
  2655. } else if (brcmf_is_nonetwork(cfg_priv, e)) {
  2656. if (brcmf_is_ibssmode(cfg_priv))
  2657. clear_bit(WL_STATUS_CONNECTING, &cfg_priv->status);
  2658. else
  2659. brcmf_bss_connect_done(cfg_priv, ndev, e, false);
  2660. }
  2661. return err;
  2662. }
  2663. static s32
  2664. brcmf_notify_roaming_status(struct brcmf_cfg80211_priv *cfg_priv,
  2665. struct net_device *ndev,
  2666. const struct brcmf_event_msg *e, void *data)
  2667. {
  2668. s32 err = 0;
  2669. u32 event = be32_to_cpu(e->event_type);
  2670. u32 status = be32_to_cpu(e->status);
  2671. if (event == BRCMF_E_ROAM && status == BRCMF_E_STATUS_SUCCESS) {
  2672. if (test_bit(WL_STATUS_CONNECTED, &cfg_priv->status))
  2673. brcmf_bss_roaming_done(cfg_priv, ndev, e);
  2674. else
  2675. brcmf_bss_connect_done(cfg_priv, ndev, e, true);
  2676. }
  2677. return err;
  2678. }
  2679. static s32
  2680. brcmf_notify_mic_status(struct brcmf_cfg80211_priv *cfg_priv,
  2681. struct net_device *ndev,
  2682. const struct brcmf_event_msg *e, void *data)
  2683. {
  2684. u16 flags = be16_to_cpu(e->flags);
  2685. enum nl80211_key_type key_type;
  2686. if (flags & BRCMF_EVENT_MSG_GROUP)
  2687. key_type = NL80211_KEYTYPE_GROUP;
  2688. else
  2689. key_type = NL80211_KEYTYPE_PAIRWISE;
  2690. cfg80211_michael_mic_failure(ndev, (u8 *)&e->addr, key_type, -1,
  2691. NULL, GFP_KERNEL);
  2692. return 0;
  2693. }
  2694. static s32
  2695. brcmf_notify_scan_status(struct brcmf_cfg80211_priv *cfg_priv,
  2696. struct net_device *ndev,
  2697. const struct brcmf_event_msg *e, void *data)
  2698. {
  2699. struct brcmf_channel_info_le channel_inform_le;
  2700. struct brcmf_scan_results_le *bss_list_le;
  2701. u32 len = WL_SCAN_BUF_MAX;
  2702. s32 err = 0;
  2703. bool scan_abort = false;
  2704. u32 scan_channel;
  2705. WL_TRACE("Enter\n");
  2706. if (cfg_priv->iscan_on && cfg_priv->iscan_kickstart) {
  2707. WL_TRACE("Exit\n");
  2708. return brcmf_wakeup_iscan(cfg_to_iscan(cfg_priv));
  2709. }
  2710. if (!test_and_clear_bit(WL_STATUS_SCANNING, &cfg_priv->status)) {
  2711. WL_ERR("Scan complete while device not scanning\n");
  2712. scan_abort = true;
  2713. err = -EINVAL;
  2714. goto scan_done_out;
  2715. }
  2716. err = brcmf_exec_dcmd(ndev, BRCMF_C_GET_CHANNEL, &channel_inform_le,
  2717. sizeof(channel_inform_le));
  2718. if (err) {
  2719. WL_ERR("scan busy (%d)\n", err);
  2720. scan_abort = true;
  2721. goto scan_done_out;
  2722. }
  2723. scan_channel = le32_to_cpu(channel_inform_le.scan_channel);
  2724. if (scan_channel)
  2725. WL_CONN("channel_inform.scan_channel (%d)\n", scan_channel);
  2726. cfg_priv->bss_list = cfg_priv->scan_results;
  2727. bss_list_le = (struct brcmf_scan_results_le *) cfg_priv->bss_list;
  2728. memset(cfg_priv->scan_results, 0, len);
  2729. bss_list_le->buflen = cpu_to_le32(len);
  2730. err = brcmf_exec_dcmd(ndev, BRCMF_C_SCAN_RESULTS,
  2731. cfg_priv->scan_results, len);
  2732. if (err) {
  2733. WL_ERR("%s Scan_results error (%d)\n", ndev->name, err);
  2734. err = -EINVAL;
  2735. scan_abort = true;
  2736. goto scan_done_out;
  2737. }
  2738. cfg_priv->scan_results->buflen = le32_to_cpu(bss_list_le->buflen);
  2739. cfg_priv->scan_results->version = le32_to_cpu(bss_list_le->version);
  2740. cfg_priv->scan_results->count = le32_to_cpu(bss_list_le->count);
  2741. err = brcmf_inform_bss(cfg_priv);
  2742. if (err) {
  2743. scan_abort = true;
  2744. goto scan_done_out;
  2745. }
  2746. scan_done_out:
  2747. if (cfg_priv->scan_request) {
  2748. WL_SCAN("calling cfg80211_scan_done\n");
  2749. cfg80211_scan_done(cfg_priv->scan_request, scan_abort);
  2750. brcmf_set_mpc(ndev, 1);
  2751. cfg_priv->scan_request = NULL;
  2752. }
  2753. WL_TRACE("Exit\n");
  2754. return err;
  2755. }
  2756. static void brcmf_init_conf(struct brcmf_cfg80211_conf *conf)
  2757. {
  2758. conf->mode = (u32)-1;
  2759. conf->frag_threshold = (u32)-1;
  2760. conf->rts_threshold = (u32)-1;
  2761. conf->retry_short = (u32)-1;
  2762. conf->retry_long = (u32)-1;
  2763. conf->tx_power = -1;
  2764. }
  2765. static void brcmf_init_eloop_handler(struct brcmf_cfg80211_event_loop *el)
  2766. {
  2767. memset(el, 0, sizeof(*el));
  2768. el->handler[BRCMF_E_SCAN_COMPLETE] = brcmf_notify_scan_status;
  2769. el->handler[BRCMF_E_LINK] = brcmf_notify_connect_status;
  2770. el->handler[BRCMF_E_ROAM] = brcmf_notify_roaming_status;
  2771. el->handler[BRCMF_E_MIC_ERROR] = brcmf_notify_mic_status;
  2772. el->handler[BRCMF_E_SET_SSID] = brcmf_notify_connect_status;
  2773. }
  2774. static void brcmf_deinit_priv_mem(struct brcmf_cfg80211_priv *cfg_priv)
  2775. {
  2776. kfree(cfg_priv->scan_results);
  2777. cfg_priv->scan_results = NULL;
  2778. kfree(cfg_priv->bss_info);
  2779. cfg_priv->bss_info = NULL;
  2780. kfree(cfg_priv->conf);
  2781. cfg_priv->conf = NULL;
  2782. kfree(cfg_priv->profile);
  2783. cfg_priv->profile = NULL;
  2784. kfree(cfg_priv->scan_req_int);
  2785. cfg_priv->scan_req_int = NULL;
  2786. kfree(cfg_priv->dcmd_buf);
  2787. cfg_priv->dcmd_buf = NULL;
  2788. kfree(cfg_priv->extra_buf);
  2789. cfg_priv->extra_buf = NULL;
  2790. kfree(cfg_priv->iscan);
  2791. cfg_priv->iscan = NULL;
  2792. kfree(cfg_priv->pmk_list);
  2793. cfg_priv->pmk_list = NULL;
  2794. }
  2795. static s32 brcmf_init_priv_mem(struct brcmf_cfg80211_priv *cfg_priv)
  2796. {
  2797. cfg_priv->scan_results = kzalloc(WL_SCAN_BUF_MAX, GFP_KERNEL);
  2798. if (!cfg_priv->scan_results)
  2799. goto init_priv_mem_out;
  2800. cfg_priv->conf = kzalloc(sizeof(*cfg_priv->conf), GFP_KERNEL);
  2801. if (!cfg_priv->conf)
  2802. goto init_priv_mem_out;
  2803. cfg_priv->profile = kzalloc(sizeof(*cfg_priv->profile), GFP_KERNEL);
  2804. if (!cfg_priv->profile)
  2805. goto init_priv_mem_out;
  2806. cfg_priv->bss_info = kzalloc(WL_BSS_INFO_MAX, GFP_KERNEL);
  2807. if (!cfg_priv->bss_info)
  2808. goto init_priv_mem_out;
  2809. cfg_priv->scan_req_int = kzalloc(sizeof(*cfg_priv->scan_req_int),
  2810. GFP_KERNEL);
  2811. if (!cfg_priv->scan_req_int)
  2812. goto init_priv_mem_out;
  2813. cfg_priv->dcmd_buf = kzalloc(WL_DCMD_LEN_MAX, GFP_KERNEL);
  2814. if (!cfg_priv->dcmd_buf)
  2815. goto init_priv_mem_out;
  2816. cfg_priv->extra_buf = kzalloc(WL_EXTRA_BUF_MAX, GFP_KERNEL);
  2817. if (!cfg_priv->extra_buf)
  2818. goto init_priv_mem_out;
  2819. cfg_priv->iscan = kzalloc(sizeof(*cfg_priv->iscan), GFP_KERNEL);
  2820. if (!cfg_priv->iscan)
  2821. goto init_priv_mem_out;
  2822. cfg_priv->pmk_list = kzalloc(sizeof(*cfg_priv->pmk_list), GFP_KERNEL);
  2823. if (!cfg_priv->pmk_list)
  2824. goto init_priv_mem_out;
  2825. return 0;
  2826. init_priv_mem_out:
  2827. brcmf_deinit_priv_mem(cfg_priv);
  2828. return -ENOMEM;
  2829. }
  2830. /*
  2831. * retrieve first queued event from head
  2832. */
  2833. static struct brcmf_cfg80211_event_q *brcmf_deq_event(
  2834. struct brcmf_cfg80211_priv *cfg_priv)
  2835. {
  2836. struct brcmf_cfg80211_event_q *e = NULL;
  2837. spin_lock_irq(&cfg_priv->evt_q_lock);
  2838. if (!list_empty(&cfg_priv->evt_q_list)) {
  2839. e = list_first_entry(&cfg_priv->evt_q_list,
  2840. struct brcmf_cfg80211_event_q, evt_q_list);
  2841. list_del(&e->evt_q_list);
  2842. }
  2843. spin_unlock_irq(&cfg_priv->evt_q_lock);
  2844. return e;
  2845. }
  2846. /*
  2847. * push event to tail of the queue
  2848. *
  2849. * remark: this function may not sleep as it is called in atomic context.
  2850. */
  2851. static s32
  2852. brcmf_enq_event(struct brcmf_cfg80211_priv *cfg_priv, u32 event,
  2853. const struct brcmf_event_msg *msg)
  2854. {
  2855. struct brcmf_cfg80211_event_q *e;
  2856. s32 err = 0;
  2857. ulong flags;
  2858. e = kzalloc(sizeof(struct brcmf_cfg80211_event_q), GFP_ATOMIC);
  2859. if (!e)
  2860. return -ENOMEM;
  2861. e->etype = event;
  2862. memcpy(&e->emsg, msg, sizeof(struct brcmf_event_msg));
  2863. spin_lock_irqsave(&cfg_priv->evt_q_lock, flags);
  2864. list_add_tail(&e->evt_q_list, &cfg_priv->evt_q_list);
  2865. spin_unlock_irqrestore(&cfg_priv->evt_q_lock, flags);
  2866. return err;
  2867. }
  2868. static void brcmf_put_event(struct brcmf_cfg80211_event_q *e)
  2869. {
  2870. kfree(e);
  2871. }
  2872. static void brcmf_cfg80211_event_handler(struct work_struct *work)
  2873. {
  2874. struct brcmf_cfg80211_priv *cfg_priv =
  2875. container_of(work, struct brcmf_cfg80211_priv,
  2876. event_work);
  2877. struct brcmf_cfg80211_event_q *e;
  2878. e = brcmf_deq_event(cfg_priv);
  2879. if (unlikely(!e)) {
  2880. WL_ERR("event queue empty...\n");
  2881. return;
  2882. }
  2883. do {
  2884. WL_INFO("event type (%d)\n", e->etype);
  2885. if (cfg_priv->el.handler[e->etype])
  2886. cfg_priv->el.handler[e->etype](cfg_priv,
  2887. cfg_to_ndev(cfg_priv),
  2888. &e->emsg, e->edata);
  2889. else
  2890. WL_INFO("Unknown Event (%d): ignoring\n", e->etype);
  2891. brcmf_put_event(e);
  2892. } while ((e = brcmf_deq_event(cfg_priv)));
  2893. }
  2894. static void brcmf_init_eq(struct brcmf_cfg80211_priv *cfg_priv)
  2895. {
  2896. spin_lock_init(&cfg_priv->evt_q_lock);
  2897. INIT_LIST_HEAD(&cfg_priv->evt_q_list);
  2898. }
  2899. static void brcmf_flush_eq(struct brcmf_cfg80211_priv *cfg_priv)
  2900. {
  2901. struct brcmf_cfg80211_event_q *e;
  2902. spin_lock_irq(&cfg_priv->evt_q_lock);
  2903. while (!list_empty(&cfg_priv->evt_q_list)) {
  2904. e = list_first_entry(&cfg_priv->evt_q_list,
  2905. struct brcmf_cfg80211_event_q, evt_q_list);
  2906. list_del(&e->evt_q_list);
  2907. kfree(e);
  2908. }
  2909. spin_unlock_irq(&cfg_priv->evt_q_lock);
  2910. }
  2911. static s32 wl_init_priv(struct brcmf_cfg80211_priv *cfg_priv)
  2912. {
  2913. s32 err = 0;
  2914. cfg_priv->scan_request = NULL;
  2915. cfg_priv->pwr_save = true;
  2916. cfg_priv->iscan_on = true; /* iscan on & off switch.
  2917. we enable iscan per default */
  2918. cfg_priv->roam_on = true; /* roam on & off switch.
  2919. we enable roam per default */
  2920. cfg_priv->iscan_kickstart = false;
  2921. cfg_priv->active_scan = true; /* we do active scan for
  2922. specific scan per default */
  2923. cfg_priv->dongle_up = false; /* dongle is not up yet */
  2924. brcmf_init_eq(cfg_priv);
  2925. err = brcmf_init_priv_mem(cfg_priv);
  2926. if (err)
  2927. return err;
  2928. INIT_WORK(&cfg_priv->event_work, brcmf_cfg80211_event_handler);
  2929. brcmf_init_eloop_handler(&cfg_priv->el);
  2930. mutex_init(&cfg_priv->usr_sync);
  2931. err = brcmf_init_iscan(cfg_priv);
  2932. if (err)
  2933. return err;
  2934. brcmf_init_conf(cfg_priv->conf);
  2935. brcmf_init_prof(cfg_priv->profile);
  2936. brcmf_link_down(cfg_priv);
  2937. return err;
  2938. }
  2939. static void wl_deinit_priv(struct brcmf_cfg80211_priv *cfg_priv)
  2940. {
  2941. cancel_work_sync(&cfg_priv->event_work);
  2942. cfg_priv->dongle_up = false; /* dongle down */
  2943. brcmf_flush_eq(cfg_priv);
  2944. brcmf_link_down(cfg_priv);
  2945. brcmf_term_iscan(cfg_priv);
  2946. brcmf_deinit_priv_mem(cfg_priv);
  2947. }
  2948. struct brcmf_cfg80211_dev *brcmf_cfg80211_attach(struct net_device *ndev,
  2949. struct device *busdev,
  2950. void *data)
  2951. {
  2952. struct wireless_dev *wdev;
  2953. struct brcmf_cfg80211_priv *cfg_priv;
  2954. struct brcmf_cfg80211_iface *ci;
  2955. struct brcmf_cfg80211_dev *cfg_dev;
  2956. s32 err = 0;
  2957. if (!ndev) {
  2958. WL_ERR("ndev is invalid\n");
  2959. return NULL;
  2960. }
  2961. cfg_dev = kzalloc(sizeof(struct brcmf_cfg80211_dev), GFP_KERNEL);
  2962. if (!cfg_dev)
  2963. return NULL;
  2964. wdev = brcmf_alloc_wdev(sizeof(struct brcmf_cfg80211_iface), busdev);
  2965. if (IS_ERR(wdev)) {
  2966. kfree(cfg_dev);
  2967. return NULL;
  2968. }
  2969. wdev->iftype = brcmf_mode_to_nl80211_iftype(WL_MODE_BSS);
  2970. cfg_priv = wdev_to_cfg(wdev);
  2971. cfg_priv->wdev = wdev;
  2972. cfg_priv->pub = data;
  2973. ci = (struct brcmf_cfg80211_iface *)&cfg_priv->ci;
  2974. ci->cfg_priv = cfg_priv;
  2975. ndev->ieee80211_ptr = wdev;
  2976. SET_NETDEV_DEV(ndev, wiphy_dev(wdev->wiphy));
  2977. wdev->netdev = ndev;
  2978. err = wl_init_priv(cfg_priv);
  2979. if (err) {
  2980. WL_ERR("Failed to init iwm_priv (%d)\n", err);
  2981. goto cfg80211_attach_out;
  2982. }
  2983. brcmf_set_drvdata(cfg_dev, ci);
  2984. return cfg_dev;
  2985. cfg80211_attach_out:
  2986. brcmf_free_wdev(cfg_priv);
  2987. kfree(cfg_dev);
  2988. return NULL;
  2989. }
  2990. void brcmf_cfg80211_detach(struct brcmf_cfg80211_dev *cfg_dev)
  2991. {
  2992. struct brcmf_cfg80211_priv *cfg_priv;
  2993. cfg_priv = brcmf_priv_get(cfg_dev);
  2994. wl_deinit_priv(cfg_priv);
  2995. brcmf_free_wdev(cfg_priv);
  2996. brcmf_set_drvdata(cfg_dev, NULL);
  2997. kfree(cfg_dev);
  2998. }
  2999. void
  3000. brcmf_cfg80211_event(struct net_device *ndev,
  3001. const struct brcmf_event_msg *e, void *data)
  3002. {
  3003. u32 event_type = be32_to_cpu(e->event_type);
  3004. struct brcmf_cfg80211_priv *cfg_priv = ndev_to_cfg(ndev);
  3005. if (!brcmf_enq_event(cfg_priv, event_type, e))
  3006. schedule_work(&cfg_priv->event_work);
  3007. }
  3008. static s32 brcmf_dongle_mode(struct net_device *ndev, s32 iftype)
  3009. {
  3010. s32 infra = 0;
  3011. s32 err = 0;
  3012. switch (iftype) {
  3013. case NL80211_IFTYPE_MONITOR:
  3014. case NL80211_IFTYPE_WDS:
  3015. WL_ERR("type (%d) : currently we do not support this mode\n",
  3016. iftype);
  3017. err = -EINVAL;
  3018. return err;
  3019. case NL80211_IFTYPE_ADHOC:
  3020. infra = 0;
  3021. break;
  3022. case NL80211_IFTYPE_STATION:
  3023. infra = 1;
  3024. break;
  3025. default:
  3026. err = -EINVAL;
  3027. WL_ERR("invalid type (%d)\n", iftype);
  3028. return err;
  3029. }
  3030. err = brcmf_exec_dcmd_u32(ndev, BRCMF_C_SET_INFRA, &infra);
  3031. if (err) {
  3032. WL_ERR("WLC_SET_INFRA error (%d)\n", err);
  3033. return err;
  3034. }
  3035. return 0;
  3036. }
  3037. static s32 brcmf_dongle_eventmsg(struct net_device *ndev)
  3038. {
  3039. /* Room for "event_msgs" + '\0' + bitvec */
  3040. s8 iovbuf[BRCMF_EVENTING_MASK_LEN + 12];
  3041. s8 eventmask[BRCMF_EVENTING_MASK_LEN];
  3042. s32 err = 0;
  3043. WL_TRACE("Enter\n");
  3044. /* Setup event_msgs */
  3045. brcmf_c_mkiovar("event_msgs", eventmask, BRCMF_EVENTING_MASK_LEN,
  3046. iovbuf, sizeof(iovbuf));
  3047. err = brcmf_exec_dcmd(ndev, BRCMF_C_GET_VAR, iovbuf, sizeof(iovbuf));
  3048. if (err) {
  3049. WL_ERR("Get event_msgs error (%d)\n", err);
  3050. goto dongle_eventmsg_out;
  3051. }
  3052. memcpy(eventmask, iovbuf, BRCMF_EVENTING_MASK_LEN);
  3053. setbit(eventmask, BRCMF_E_SET_SSID);
  3054. setbit(eventmask, BRCMF_E_ROAM);
  3055. setbit(eventmask, BRCMF_E_PRUNE);
  3056. setbit(eventmask, BRCMF_E_AUTH);
  3057. setbit(eventmask, BRCMF_E_REASSOC);
  3058. setbit(eventmask, BRCMF_E_REASSOC_IND);
  3059. setbit(eventmask, BRCMF_E_DEAUTH_IND);
  3060. setbit(eventmask, BRCMF_E_DISASSOC_IND);
  3061. setbit(eventmask, BRCMF_E_DISASSOC);
  3062. setbit(eventmask, BRCMF_E_JOIN);
  3063. setbit(eventmask, BRCMF_E_ASSOC_IND);
  3064. setbit(eventmask, BRCMF_E_PSK_SUP);
  3065. setbit(eventmask, BRCMF_E_LINK);
  3066. setbit(eventmask, BRCMF_E_NDIS_LINK);
  3067. setbit(eventmask, BRCMF_E_MIC_ERROR);
  3068. setbit(eventmask, BRCMF_E_PMKID_CACHE);
  3069. setbit(eventmask, BRCMF_E_TXFAIL);
  3070. setbit(eventmask, BRCMF_E_JOIN_START);
  3071. setbit(eventmask, BRCMF_E_SCAN_COMPLETE);
  3072. brcmf_c_mkiovar("event_msgs", eventmask, BRCMF_EVENTING_MASK_LEN,
  3073. iovbuf, sizeof(iovbuf));
  3074. err = brcmf_exec_dcmd(ndev, BRCMF_C_SET_VAR, iovbuf, sizeof(iovbuf));
  3075. if (err) {
  3076. WL_ERR("Set event_msgs error (%d)\n", err);
  3077. goto dongle_eventmsg_out;
  3078. }
  3079. dongle_eventmsg_out:
  3080. WL_TRACE("Exit\n");
  3081. return err;
  3082. }
  3083. static s32
  3084. brcmf_dongle_roam(struct net_device *ndev, u32 roamvar, u32 bcn_timeout)
  3085. {
  3086. s8 iovbuf[32];
  3087. s32 err = 0;
  3088. __le32 roamtrigger[2];
  3089. __le32 roam_delta[2];
  3090. __le32 bcn_to_le;
  3091. __le32 roamvar_le;
  3092. /*
  3093. * Setup timeout if Beacons are lost and roam is
  3094. * off to report link down
  3095. */
  3096. if (roamvar) {
  3097. bcn_to_le = cpu_to_le32(bcn_timeout);
  3098. brcmf_c_mkiovar("bcn_timeout", (char *)&bcn_to_le,
  3099. sizeof(bcn_to_le), iovbuf, sizeof(iovbuf));
  3100. err = brcmf_exec_dcmd(ndev, BRCMF_C_SET_VAR,
  3101. iovbuf, sizeof(iovbuf));
  3102. if (err) {
  3103. WL_ERR("bcn_timeout error (%d)\n", err);
  3104. goto dongle_rom_out;
  3105. }
  3106. }
  3107. /*
  3108. * Enable/Disable built-in roaming to allow supplicant
  3109. * to take care of roaming
  3110. */
  3111. WL_INFO("Internal Roaming = %s\n", roamvar ? "Off" : "On");
  3112. roamvar_le = cpu_to_le32(roamvar);
  3113. brcmf_c_mkiovar("roam_off", (char *)&roamvar_le,
  3114. sizeof(roamvar_le), iovbuf, sizeof(iovbuf));
  3115. err = brcmf_exec_dcmd(ndev, BRCMF_C_SET_VAR, iovbuf, sizeof(iovbuf));
  3116. if (err) {
  3117. WL_ERR("roam_off error (%d)\n", err);
  3118. goto dongle_rom_out;
  3119. }
  3120. roamtrigger[0] = cpu_to_le32(WL_ROAM_TRIGGER_LEVEL);
  3121. roamtrigger[1] = cpu_to_le32(BRCM_BAND_ALL);
  3122. err = brcmf_exec_dcmd(ndev, BRCMF_C_SET_ROAM_TRIGGER,
  3123. (void *)roamtrigger, sizeof(roamtrigger));
  3124. if (err) {
  3125. WL_ERR("WLC_SET_ROAM_TRIGGER error (%d)\n", err);
  3126. goto dongle_rom_out;
  3127. }
  3128. roam_delta[0] = cpu_to_le32(WL_ROAM_DELTA);
  3129. roam_delta[1] = cpu_to_le32(BRCM_BAND_ALL);
  3130. err = brcmf_exec_dcmd(ndev, BRCMF_C_SET_ROAM_DELTA,
  3131. (void *)roam_delta, sizeof(roam_delta));
  3132. if (err) {
  3133. WL_ERR("WLC_SET_ROAM_DELTA error (%d)\n", err);
  3134. goto dongle_rom_out;
  3135. }
  3136. dongle_rom_out:
  3137. return err;
  3138. }
  3139. static s32
  3140. brcmf_dongle_scantime(struct net_device *ndev, s32 scan_assoc_time,
  3141. s32 scan_unassoc_time, s32 scan_passive_time)
  3142. {
  3143. s32 err = 0;
  3144. __le32 scan_assoc_tm_le = cpu_to_le32(scan_assoc_time);
  3145. __le32 scan_unassoc_tm_le = cpu_to_le32(scan_unassoc_time);
  3146. __le32 scan_passive_tm_le = cpu_to_le32(scan_passive_time);
  3147. err = brcmf_exec_dcmd(ndev, BRCMF_C_SET_SCAN_CHANNEL_TIME,
  3148. &scan_assoc_tm_le, sizeof(scan_assoc_tm_le));
  3149. if (err) {
  3150. if (err == -EOPNOTSUPP)
  3151. WL_INFO("Scan assoc time is not supported\n");
  3152. else
  3153. WL_ERR("Scan assoc time error (%d)\n", err);
  3154. goto dongle_scantime_out;
  3155. }
  3156. err = brcmf_exec_dcmd(ndev, BRCMF_C_SET_SCAN_UNASSOC_TIME,
  3157. &scan_unassoc_tm_le, sizeof(scan_unassoc_tm_le));
  3158. if (err) {
  3159. if (err == -EOPNOTSUPP)
  3160. WL_INFO("Scan unassoc time is not supported\n");
  3161. else
  3162. WL_ERR("Scan unassoc time error (%d)\n", err);
  3163. goto dongle_scantime_out;
  3164. }
  3165. err = brcmf_exec_dcmd(ndev, BRCMF_C_SET_SCAN_PASSIVE_TIME,
  3166. &scan_passive_tm_le, sizeof(scan_passive_tm_le));
  3167. if (err) {
  3168. if (err == -EOPNOTSUPP)
  3169. WL_INFO("Scan passive time is not supported\n");
  3170. else
  3171. WL_ERR("Scan passive time error (%d)\n", err);
  3172. goto dongle_scantime_out;
  3173. }
  3174. dongle_scantime_out:
  3175. return err;
  3176. }
  3177. static s32 wl_update_wiphybands(struct brcmf_cfg80211_priv *cfg_priv)
  3178. {
  3179. struct wiphy *wiphy;
  3180. s32 phy_list;
  3181. s8 phy;
  3182. s32 err = 0;
  3183. err = brcmf_exec_dcmd(cfg_to_ndev(cfg_priv), BRCM_GET_PHYLIST,
  3184. &phy_list, sizeof(phy_list));
  3185. if (err) {
  3186. WL_ERR("error (%d)\n", err);
  3187. return err;
  3188. }
  3189. phy = ((char *)&phy_list)[1];
  3190. WL_INFO("%c phy\n", phy);
  3191. if (phy == 'n' || phy == 'a') {
  3192. wiphy = cfg_to_wiphy(cfg_priv);
  3193. wiphy->bands[IEEE80211_BAND_5GHZ] = &__wl_band_5ghz_n;
  3194. }
  3195. return err;
  3196. }
  3197. static s32 brcmf_dongle_probecap(struct brcmf_cfg80211_priv *cfg_priv)
  3198. {
  3199. return wl_update_wiphybands(cfg_priv);
  3200. }
  3201. static s32 brcmf_config_dongle(struct brcmf_cfg80211_priv *cfg_priv)
  3202. {
  3203. struct net_device *ndev;
  3204. struct wireless_dev *wdev;
  3205. s32 power_mode;
  3206. s32 err = 0;
  3207. if (cfg_priv->dongle_up)
  3208. return err;
  3209. ndev = cfg_to_ndev(cfg_priv);
  3210. wdev = ndev->ieee80211_ptr;
  3211. brcmf_dongle_scantime(ndev, WL_SCAN_CHANNEL_TIME,
  3212. WL_SCAN_UNASSOC_TIME, WL_SCAN_PASSIVE_TIME);
  3213. err = brcmf_dongle_eventmsg(ndev);
  3214. if (err)
  3215. goto default_conf_out;
  3216. power_mode = cfg_priv->pwr_save ? PM_FAST : PM_OFF;
  3217. err = brcmf_exec_dcmd_u32(ndev, BRCMF_C_SET_PM, &power_mode);
  3218. if (err)
  3219. goto default_conf_out;
  3220. WL_INFO("power save set to %s\n",
  3221. (power_mode ? "enabled" : "disabled"));
  3222. err = brcmf_dongle_roam(ndev, (cfg_priv->roam_on ? 0 : 1),
  3223. WL_BEACON_TIMEOUT);
  3224. if (err)
  3225. goto default_conf_out;
  3226. err = brcmf_dongle_mode(ndev, wdev->iftype);
  3227. if (err && err != -EINPROGRESS)
  3228. goto default_conf_out;
  3229. err = brcmf_dongle_probecap(cfg_priv);
  3230. if (err)
  3231. goto default_conf_out;
  3232. /* -EINPROGRESS: Call commit handler */
  3233. default_conf_out:
  3234. cfg_priv->dongle_up = true;
  3235. return err;
  3236. }
  3237. static int brcmf_debugfs_add_netdev_params(struct brcmf_cfg80211_priv *cfg_priv)
  3238. {
  3239. char buf[10+IFNAMSIZ];
  3240. struct dentry *fd;
  3241. s32 err = 0;
  3242. sprintf(buf, "netdev:%s", cfg_to_ndev(cfg_priv)->name);
  3243. cfg_priv->debugfsdir = debugfs_create_dir(buf,
  3244. cfg_to_wiphy(cfg_priv)->debugfsdir);
  3245. fd = debugfs_create_u16("beacon_int", S_IRUGO, cfg_priv->debugfsdir,
  3246. (u16 *)&cfg_priv->profile->beacon_interval);
  3247. if (!fd) {
  3248. err = -ENOMEM;
  3249. goto err_out;
  3250. }
  3251. fd = debugfs_create_u8("dtim_period", S_IRUGO, cfg_priv->debugfsdir,
  3252. (u8 *)&cfg_priv->profile->dtim_period);
  3253. if (!fd) {
  3254. err = -ENOMEM;
  3255. goto err_out;
  3256. }
  3257. err_out:
  3258. return err;
  3259. }
  3260. static void brcmf_debugfs_remove_netdev(struct brcmf_cfg80211_priv *cfg_priv)
  3261. {
  3262. debugfs_remove_recursive(cfg_priv->debugfsdir);
  3263. cfg_priv->debugfsdir = NULL;
  3264. }
  3265. static s32 __brcmf_cfg80211_up(struct brcmf_cfg80211_priv *cfg_priv)
  3266. {
  3267. s32 err = 0;
  3268. set_bit(WL_STATUS_READY, &cfg_priv->status);
  3269. brcmf_debugfs_add_netdev_params(cfg_priv);
  3270. err = brcmf_config_dongle(cfg_priv);
  3271. if (err)
  3272. return err;
  3273. brcmf_invoke_iscan(cfg_priv);
  3274. return err;
  3275. }
  3276. static s32 __brcmf_cfg80211_down(struct brcmf_cfg80211_priv *cfg_priv)
  3277. {
  3278. /*
  3279. * While going down, if associated with AP disassociate
  3280. * from AP to save power
  3281. */
  3282. if ((test_bit(WL_STATUS_CONNECTED, &cfg_priv->status) ||
  3283. test_bit(WL_STATUS_CONNECTING, &cfg_priv->status)) &&
  3284. test_bit(WL_STATUS_READY, &cfg_priv->status)) {
  3285. WL_INFO("Disassociating from AP");
  3286. brcmf_link_down(cfg_priv);
  3287. /* Make sure WPA_Supplicant receives all the event
  3288. generated due to DISASSOC call to the fw to keep
  3289. the state fw and WPA_Supplicant state consistent
  3290. */
  3291. brcmf_delay(500);
  3292. }
  3293. set_bit(WL_STATUS_SCAN_ABORTING, &cfg_priv->status);
  3294. brcmf_term_iscan(cfg_priv);
  3295. if (cfg_priv->scan_request) {
  3296. cfg80211_scan_done(cfg_priv->scan_request, true);
  3297. /* May need to perform this to cover rmmod */
  3298. /* wl_set_mpc(cfg_to_ndev(wl), 1); */
  3299. cfg_priv->scan_request = NULL;
  3300. }
  3301. clear_bit(WL_STATUS_READY, &cfg_priv->status);
  3302. clear_bit(WL_STATUS_SCANNING, &cfg_priv->status);
  3303. clear_bit(WL_STATUS_SCAN_ABORTING, &cfg_priv->status);
  3304. brcmf_debugfs_remove_netdev(cfg_priv);
  3305. return 0;
  3306. }
  3307. s32 brcmf_cfg80211_up(struct brcmf_cfg80211_dev *cfg_dev)
  3308. {
  3309. struct brcmf_cfg80211_priv *cfg_priv;
  3310. s32 err = 0;
  3311. cfg_priv = brcmf_priv_get(cfg_dev);
  3312. mutex_lock(&cfg_priv->usr_sync);
  3313. err = __brcmf_cfg80211_up(cfg_priv);
  3314. mutex_unlock(&cfg_priv->usr_sync);
  3315. return err;
  3316. }
  3317. s32 brcmf_cfg80211_down(struct brcmf_cfg80211_dev *cfg_dev)
  3318. {
  3319. struct brcmf_cfg80211_priv *cfg_priv;
  3320. s32 err = 0;
  3321. cfg_priv = brcmf_priv_get(cfg_dev);
  3322. mutex_lock(&cfg_priv->usr_sync);
  3323. err = __brcmf_cfg80211_down(cfg_priv);
  3324. mutex_unlock(&cfg_priv->usr_sync);
  3325. return err;
  3326. }
  3327. static __used s32 brcmf_add_ie(struct brcmf_cfg80211_priv *cfg_priv,
  3328. u8 t, u8 l, u8 *v)
  3329. {
  3330. struct brcmf_cfg80211_ie *ie = &cfg_priv->ie;
  3331. s32 err = 0;
  3332. if (ie->offset + l + 2 > WL_TLV_INFO_MAX) {
  3333. WL_ERR("ei crosses buffer boundary\n");
  3334. return -ENOSPC;
  3335. }
  3336. ie->buf[ie->offset] = t;
  3337. ie->buf[ie->offset + 1] = l;
  3338. memcpy(&ie->buf[ie->offset + 2], v, l);
  3339. ie->offset += l + 2;
  3340. return err;
  3341. }