rtw_cfgvendor.c 60 KB

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  1. /******************************************************************************
  2. *
  3. * Copyright(c) 2007 - 2017 Realtek Corporation.
  4. *
  5. * This program is free software; you can redistribute it and/or modify it
  6. * under the terms of version 2 of the GNU General Public License as
  7. * published by the Free Software Foundation.
  8. *
  9. * This program is distributed in the hope that it will be useful, but WITHOUT
  10. * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
  11. * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
  12. * more details.
  13. *
  14. *****************************************************************************/
  15. #include <drv_types.h>
  16. #ifdef CONFIG_IOCTL_CFG80211
  17. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(3, 14, 0)) || defined(RTW_VENDOR_EXT_SUPPORT)
  18. /*
  19. #include <linux/kernel.h>
  20. #include <linux/if_arp.h>
  21. #include <asm/uaccess.h>
  22. #include <linux/kernel.h>
  23. #include <linux/kthread.h>
  24. #include <linux/netdevice.h>
  25. #include <linux/sched.h>
  26. #include <linux/etherdevice.h>
  27. #include <linux/wireless.h>
  28. #include <linux/ieee80211.h>
  29. #include <linux/wait.h>
  30. #include <net/cfg80211.h>
  31. */
  32. #include <net/rtnetlink.h>
  33. #ifdef DBG_MEM_ALLOC
  34. extern bool match_mstat_sniff_rules(const enum mstat_f flags, const size_t size);
  35. struct sk_buff *dbg_rtw_cfg80211_vendor_event_alloc(struct wiphy *wiphy, struct wireless_dev *wdev, int len, int event_id, gfp_t gfp
  36. , const enum mstat_f flags, const char *func, const int line)
  37. {
  38. struct sk_buff *skb;
  39. unsigned int truesize = 0;
  40. #if (LINUX_VERSION_CODE < KERNEL_VERSION(4, 1, 0))
  41. skb = cfg80211_vendor_event_alloc(wiphy, len, event_id, gfp);
  42. #else
  43. skb = cfg80211_vendor_event_alloc(wiphy, wdev, len, event_id, gfp);
  44. #endif
  45. if (skb)
  46. truesize = skb->truesize;
  47. if (!skb || truesize < len || match_mstat_sniff_rules(flags, truesize))
  48. RTW_INFO("DBG_MEM_ALLOC %s:%d %s(%d), skb:%p, truesize=%u\n", func, line, __FUNCTION__, len, skb, truesize);
  49. rtw_mstat_update(
  50. flags
  51. , skb ? MSTAT_ALLOC_SUCCESS : MSTAT_ALLOC_FAIL
  52. , truesize
  53. );
  54. return skb;
  55. }
  56. void dbg_rtw_cfg80211_vendor_event(struct sk_buff *skb, gfp_t gfp
  57. , const enum mstat_f flags, const char *func, const int line)
  58. {
  59. unsigned int truesize = skb->truesize;
  60. if (match_mstat_sniff_rules(flags, truesize))
  61. RTW_INFO("DBG_MEM_ALLOC %s:%d %s, truesize=%u\n", func, line, __FUNCTION__, truesize);
  62. cfg80211_vendor_event(skb, gfp);
  63. rtw_mstat_update(
  64. flags
  65. , MSTAT_FREE
  66. , truesize
  67. );
  68. }
  69. struct sk_buff *dbg_rtw_cfg80211_vendor_cmd_alloc_reply_skb(struct wiphy *wiphy, int len
  70. , const enum mstat_f flags, const char *func, const int line)
  71. {
  72. struct sk_buff *skb;
  73. unsigned int truesize = 0;
  74. skb = cfg80211_vendor_cmd_alloc_reply_skb(wiphy, len);
  75. if (skb)
  76. truesize = skb->truesize;
  77. if (!skb || truesize < len || match_mstat_sniff_rules(flags, truesize))
  78. RTW_INFO("DBG_MEM_ALLOC %s:%d %s(%d), skb:%p, truesize=%u\n", func, line, __FUNCTION__, len, skb, truesize);
  79. rtw_mstat_update(
  80. flags
  81. , skb ? MSTAT_ALLOC_SUCCESS : MSTAT_ALLOC_FAIL
  82. , truesize
  83. );
  84. return skb;
  85. }
  86. int dbg_rtw_cfg80211_vendor_cmd_reply(struct sk_buff *skb
  87. , const enum mstat_f flags, const char *func, const int line)
  88. {
  89. unsigned int truesize = skb->truesize;
  90. int ret;
  91. if (match_mstat_sniff_rules(flags, truesize))
  92. RTW_INFO("DBG_MEM_ALLOC %s:%d %s, truesize=%u\n", func, line, __FUNCTION__, truesize);
  93. ret = cfg80211_vendor_cmd_reply(skb);
  94. rtw_mstat_update(
  95. flags
  96. , MSTAT_FREE
  97. , truesize
  98. );
  99. return ret;
  100. }
  101. #define rtw_cfg80211_vendor_event_alloc(wiphy, wdev, len, event_id, gfp) \
  102. dbg_rtw_cfg80211_vendor_event_alloc(wiphy, wdev, len, event_id, gfp, MSTAT_FUNC_CFG_VENDOR | MSTAT_TYPE_SKB, __FUNCTION__, __LINE__)
  103. #define rtw_cfg80211_vendor_event(skb, gfp) \
  104. dbg_rtw_cfg80211_vendor_event(skb, gfp, MSTAT_FUNC_CFG_VENDOR | MSTAT_TYPE_SKB, __FUNCTION__, __LINE__)
  105. #define rtw_cfg80211_vendor_cmd_alloc_reply_skb(wiphy, len) \
  106. dbg_rtw_cfg80211_vendor_cmd_alloc_reply_skb(wiphy, len, MSTAT_FUNC_CFG_VENDOR | MSTAT_TYPE_SKB, __FUNCTION__, __LINE__)
  107. #define rtw_cfg80211_vendor_cmd_reply(skb) \
  108. dbg_rtw_cfg80211_vendor_cmd_reply(skb, MSTAT_FUNC_CFG_VENDOR | MSTAT_TYPE_SKB, __FUNCTION__, __LINE__)
  109. #else
  110. struct sk_buff *rtw_cfg80211_vendor_event_alloc(
  111. struct wiphy *wiphy, struct wireless_dev *wdev, int len, int event_id, gfp_t gfp)
  112. {
  113. struct sk_buff *skb;
  114. #if (LINUX_VERSION_CODE < KERNEL_VERSION(4, 1, 0))
  115. skb = cfg80211_vendor_event_alloc(wiphy, len, event_id, gfp);
  116. #else
  117. skb = cfg80211_vendor_event_alloc(wiphy, wdev, len, event_id, gfp);
  118. #endif
  119. return skb;
  120. }
  121. #define rtw_cfg80211_vendor_event(skb, gfp) \
  122. cfg80211_vendor_event(skb, gfp)
  123. #define rtw_cfg80211_vendor_cmd_alloc_reply_skb(wiphy, len) \
  124. cfg80211_vendor_cmd_alloc_reply_skb(wiphy, len)
  125. #define rtw_cfg80211_vendor_cmd_reply(skb) \
  126. cfg80211_vendor_cmd_reply(skb)
  127. #endif /* DBG_MEM_ALLOC */
  128. /*
  129. * This API is to be used for asynchronous vendor events. This
  130. * shouldn't be used in response to a vendor command from its
  131. * do_it handler context (instead rtw_cfgvendor_send_cmd_reply should
  132. * be used).
  133. */
  134. int rtw_cfgvendor_send_async_event(struct wiphy *wiphy,
  135. struct net_device *dev, int event_id, const void *data, int len)
  136. {
  137. u16 kflags;
  138. struct sk_buff *skb;
  139. kflags = in_atomic() ? GFP_ATOMIC : GFP_KERNEL;
  140. /* Alloc the SKB for vendor_event */
  141. skb = rtw_cfg80211_vendor_event_alloc(wiphy, ndev_to_wdev(dev), len, event_id, kflags);
  142. if (!skb) {
  143. RTW_ERR(FUNC_NDEV_FMT" skb alloc failed", FUNC_NDEV_ARG(dev));
  144. return -ENOMEM;
  145. }
  146. /* Push the data to the skb */
  147. nla_put_nohdr(skb, len, data);
  148. rtw_cfg80211_vendor_event(skb, kflags);
  149. return 0;
  150. }
  151. static int rtw_cfgvendor_send_cmd_reply(struct wiphy *wiphy,
  152. struct net_device *dev, const void *data, int len)
  153. {
  154. struct sk_buff *skb;
  155. /* Alloc the SKB for vendor_event */
  156. skb = rtw_cfg80211_vendor_cmd_alloc_reply_skb(wiphy, len);
  157. if (unlikely(!skb)) {
  158. RTW_ERR(FUNC_NDEV_FMT" skb alloc failed", FUNC_NDEV_ARG(dev));
  159. return -ENOMEM;
  160. }
  161. /* Push the data to the skb */
  162. nla_put_nohdr(skb, len, data);
  163. return rtw_cfg80211_vendor_cmd_reply(skb);
  164. }
  165. /* Feature enums */
  166. #define WIFI_FEATURE_INFRA 0x0001 // Basic infrastructure mode
  167. #define WIFI_FEATURE_INFRA_5G 0x0002 // Support for 5 GHz Band
  168. #define WIFI_FEATURE_HOTSPOT 0x0004 // Support for GAS/ANQP
  169. #define WIFI_FEATURE_P2P 0x0008 // Wifi-Direct
  170. #define WIFI_FEATURE_SOFT_AP 0x0010 // Soft AP
  171. #define WIFI_FEATURE_GSCAN 0x0020 // Google-Scan APIs
  172. #define WIFI_FEATURE_NAN 0x0040 // Neighbor Awareness Networking
  173. #define WIFI_FEATURE_D2D_RTT 0x0080 // Device-to-device RTT
  174. #define WIFI_FEATURE_D2AP_RTT 0x0100 // Device-to-AP RTT
  175. #define WIFI_FEATURE_BATCH_SCAN 0x0200 // Batched Scan (legacy)
  176. #define WIFI_FEATURE_PNO 0x0400 // Preferred network offload
  177. #define WIFI_FEATURE_ADDITIONAL_STA 0x0800 // Support for two STAs
  178. #define WIFI_FEATURE_TDLS 0x1000 // Tunnel directed link setup
  179. #define WIFI_FEATURE_TDLS_OFFCHANNEL 0x2000 // Support for TDLS off channel
  180. #define WIFI_FEATURE_EPR 0x4000 // Enhanced power reporting
  181. #define WIFI_FEATURE_AP_STA 0x8000 // Support for AP STA Concurrency
  182. #define WIFI_FEATURE_LINK_LAYER_STATS 0x10000 // Link layer stats collection
  183. #define WIFI_FEATURE_LOGGER 0x20000 // WiFi Logger
  184. #define WIFI_FEATURE_HAL_EPNO 0x40000 // WiFi PNO enhanced
  185. #define WIFI_FEATURE_RSSI_MONITOR 0x80000 // RSSI Monitor
  186. #define WIFI_FEATURE_MKEEP_ALIVE 0x100000 // WiFi mkeep_alive
  187. #define WIFI_FEATURE_CONFIG_NDO 0x200000 // ND offload configure
  188. #define WIFI_FEATURE_TX_TRANSMIT_POWER 0x400000 // Capture Tx transmit power levels
  189. #define WIFI_FEATURE_CONTROL_ROAMING 0x800000 // Enable/Disable firmware roaming
  190. #define WIFI_FEATURE_IE_WHITELIST 0x1000000 // Support Probe IE white listing
  191. #define WIFI_FEATURE_SCAN_RAND 0x2000000 // Support MAC & Probe Sequence Number randomization
  192. // Add more features here
  193. #define MAX_FEATURE_SET_CONCURRRENT_GROUPS 3
  194. #include <hal_data.h>
  195. int rtw_dev_get_feature_set(struct net_device *dev)
  196. {
  197. _adapter *adapter = (_adapter *)rtw_netdev_priv(dev);
  198. HAL_DATA_TYPE *HalData = GET_HAL_DATA(adapter);
  199. HAL_VERSION *hal_ver = &HalData->version_id;
  200. int feature_set = 0;
  201. feature_set |= WIFI_FEATURE_INFRA;
  202. #ifdef CONFIG_IEEE80211_BAND_5GHZ
  203. if (is_supported_5g(adapter_to_regsty(adapter)->wireless_mode))
  204. feature_set |= WIFI_FEATURE_INFRA_5G;
  205. #endif
  206. feature_set |= WIFI_FEATURE_P2P;
  207. feature_set |= WIFI_FEATURE_SOFT_AP;
  208. feature_set |= WIFI_FEATURE_ADDITIONAL_STA;
  209. #ifdef CONFIG_RTW_CFGVEDNOR_LLSTATS
  210. feature_set |= WIFI_FEATURE_LINK_LAYER_STATS;
  211. #endif /* CONFIG_RTW_CFGVEDNOR_LLSTATS */
  212. #ifdef CONFIG_RTW_CFGVEDNOR_RSSIMONITOR
  213. feature_set |= WIFI_FEATURE_RSSI_MONITOR;
  214. #endif
  215. #ifdef CONFIG_RTW_CFGVENDOR_WIFI_LOGGER
  216. feature_set |= WIFI_FEATURE_LOGGER;
  217. #endif
  218. #ifdef CONFIG_RTW_WIFI_HAL
  219. feature_set |= WIFI_FEATURE_CONFIG_NDO;
  220. feature_set |= WIFI_FEATURE_SCAN_RAND;
  221. #endif
  222. return feature_set;
  223. }
  224. int *rtw_dev_get_feature_set_matrix(struct net_device *dev, int *num)
  225. {
  226. int feature_set_full, mem_needed;
  227. int *ret;
  228. *num = 0;
  229. mem_needed = sizeof(int) * MAX_FEATURE_SET_CONCURRRENT_GROUPS;
  230. ret = (int *)rtw_malloc(mem_needed);
  231. if (!ret) {
  232. RTW_ERR(FUNC_NDEV_FMT" failed to allocate %d bytes\n"
  233. , FUNC_NDEV_ARG(dev), mem_needed);
  234. return ret;
  235. }
  236. feature_set_full = rtw_dev_get_feature_set(dev);
  237. ret[0] = (feature_set_full & WIFI_FEATURE_INFRA) |
  238. (feature_set_full & WIFI_FEATURE_INFRA_5G) |
  239. (feature_set_full & WIFI_FEATURE_NAN) |
  240. (feature_set_full & WIFI_FEATURE_D2D_RTT) |
  241. (feature_set_full & WIFI_FEATURE_D2AP_RTT) |
  242. (feature_set_full & WIFI_FEATURE_PNO) |
  243. (feature_set_full & WIFI_FEATURE_BATCH_SCAN) |
  244. (feature_set_full & WIFI_FEATURE_GSCAN) |
  245. (feature_set_full & WIFI_FEATURE_HOTSPOT) |
  246. (feature_set_full & WIFI_FEATURE_ADDITIONAL_STA) |
  247. (feature_set_full & WIFI_FEATURE_EPR);
  248. ret[1] = (feature_set_full & WIFI_FEATURE_INFRA) |
  249. (feature_set_full & WIFI_FEATURE_INFRA_5G) |
  250. /* Not yet verified NAN with P2P */
  251. /* (feature_set_full & WIFI_FEATURE_NAN) | */
  252. (feature_set_full & WIFI_FEATURE_P2P) |
  253. (feature_set_full & WIFI_FEATURE_D2AP_RTT) |
  254. (feature_set_full & WIFI_FEATURE_D2D_RTT) |
  255. (feature_set_full & WIFI_FEATURE_EPR);
  256. ret[2] = (feature_set_full & WIFI_FEATURE_INFRA) |
  257. (feature_set_full & WIFI_FEATURE_INFRA_5G) |
  258. (feature_set_full & WIFI_FEATURE_NAN) |
  259. (feature_set_full & WIFI_FEATURE_D2D_RTT) |
  260. (feature_set_full & WIFI_FEATURE_D2AP_RTT) |
  261. (feature_set_full & WIFI_FEATURE_TDLS) |
  262. (feature_set_full & WIFI_FEATURE_TDLS_OFFCHANNEL) |
  263. (feature_set_full & WIFI_FEATURE_EPR);
  264. *num = MAX_FEATURE_SET_CONCURRRENT_GROUPS;
  265. return ret;
  266. }
  267. static int rtw_cfgvendor_get_feature_set(struct wiphy *wiphy,
  268. struct wireless_dev *wdev, const void *data, int len)
  269. {
  270. int err = 0;
  271. int reply;
  272. reply = rtw_dev_get_feature_set(wdev_to_ndev(wdev));
  273. err = rtw_cfgvendor_send_cmd_reply(wiphy, wdev_to_ndev(wdev), &reply, sizeof(int));
  274. if (unlikely(err))
  275. RTW_ERR(FUNC_NDEV_FMT" Vendor Command reply failed ret:%d\n"
  276. , FUNC_NDEV_ARG(wdev_to_ndev(wdev)), err);
  277. return err;
  278. }
  279. static int rtw_cfgvendor_get_feature_set_matrix(struct wiphy *wiphy,
  280. struct wireless_dev *wdev, const void *data, int len)
  281. {
  282. int err = 0;
  283. struct sk_buff *skb;
  284. int *reply;
  285. int num, mem_needed, i;
  286. reply = rtw_dev_get_feature_set_matrix(wdev_to_ndev(wdev), &num);
  287. if (!reply) {
  288. RTW_ERR(FUNC_NDEV_FMT" Could not get feature list matrix\n"
  289. , FUNC_NDEV_ARG(wdev_to_ndev(wdev)));
  290. err = -EINVAL;
  291. return err;
  292. }
  293. mem_needed = VENDOR_REPLY_OVERHEAD + (ATTRIBUTE_U32_LEN * num) +
  294. ATTRIBUTE_U32_LEN;
  295. /* Alloc the SKB for vendor_event */
  296. skb = rtw_cfg80211_vendor_cmd_alloc_reply_skb(wiphy, mem_needed);
  297. if (unlikely(!skb)) {
  298. RTW_ERR(FUNC_NDEV_FMT" skb alloc failed", FUNC_NDEV_ARG(wdev_to_ndev(wdev)));
  299. err = -ENOMEM;
  300. goto exit;
  301. }
  302. nla_put_u32(skb, ANDR_WIFI_ATTRIBUTE_NUM_FEATURE_SET, num);
  303. for (i = 0; i < num; i++)
  304. nla_put_u32(skb, ANDR_WIFI_ATTRIBUTE_FEATURE_SET, reply[i]);
  305. err = rtw_cfg80211_vendor_cmd_reply(skb);
  306. if (unlikely(err))
  307. RTW_ERR(FUNC_NDEV_FMT" Vendor Command reply failed ret:%d\n"
  308. , FUNC_NDEV_ARG(wdev_to_ndev(wdev)), err);
  309. exit:
  310. rtw_mfree((u8 *)reply, sizeof(int) * num);
  311. return err;
  312. }
  313. #if defined(GSCAN_SUPPORT) && 0
  314. int rtw_cfgvendor_send_hotlist_event(struct wiphy *wiphy,
  315. struct net_device *dev, void *data, int len, rtw_vendor_event_t event)
  316. {
  317. u16 kflags;
  318. const void *ptr;
  319. struct sk_buff *skb;
  320. int malloc_len, total, iter_cnt_to_send, cnt;
  321. gscan_results_cache_t *cache = (gscan_results_cache_t *)data;
  322. total = len / sizeof(wifi_gscan_result_t);
  323. while (total > 0) {
  324. malloc_len = (total * sizeof(wifi_gscan_result_t)) + VENDOR_DATA_OVERHEAD;
  325. if (malloc_len > NLMSG_DEFAULT_SIZE)
  326. malloc_len = NLMSG_DEFAULT_SIZE;
  327. iter_cnt_to_send =
  328. (malloc_len - VENDOR_DATA_OVERHEAD) / sizeof(wifi_gscan_result_t);
  329. total = total - iter_cnt_to_send;
  330. kflags = in_atomic() ? GFP_ATOMIC : GFP_KERNEL;
  331. /* Alloc the SKB for vendor_event */
  332. skb = rtw_cfg80211_vendor_event_alloc(wiphy, ndev_to_wdev(dev), malloc_len, event, kflags);
  333. if (!skb) {
  334. WL_ERR(("skb alloc failed"));
  335. return -ENOMEM;
  336. }
  337. while (cache && iter_cnt_to_send) {
  338. ptr = (const void *) &cache->results[cache->tot_consumed];
  339. if (iter_cnt_to_send < (cache->tot_count - cache->tot_consumed))
  340. cnt = iter_cnt_to_send;
  341. else
  342. cnt = (cache->tot_count - cache->tot_consumed);
  343. iter_cnt_to_send -= cnt;
  344. cache->tot_consumed += cnt;
  345. /* Push the data to the skb */
  346. nla_append(skb, cnt * sizeof(wifi_gscan_result_t), ptr);
  347. if (cache->tot_consumed == cache->tot_count)
  348. cache = cache->next;
  349. }
  350. rtw_cfg80211_vendor_event(skb, kflags);
  351. }
  352. return 0;
  353. }
  354. static int rtw_cfgvendor_gscan_get_capabilities(struct wiphy *wiphy,
  355. struct wireless_dev *wdev, const void *data, int len)
  356. {
  357. int err = 0;
  358. struct bcm_cfg80211 *cfg = wiphy_priv(wiphy);
  359. dhd_pno_gscan_capabilities_t *reply = NULL;
  360. uint32 reply_len = 0;
  361. reply = dhd_dev_pno_get_gscan(bcmcfg_to_prmry_ndev(cfg),
  362. DHD_PNO_GET_CAPABILITIES, NULL, &reply_len);
  363. if (!reply) {
  364. WL_ERR(("Could not get capabilities\n"));
  365. err = -EINVAL;
  366. return err;
  367. }
  368. err = rtw_cfgvendor_send_cmd_reply(wiphy, bcmcfg_to_prmry_ndev(cfg),
  369. reply, reply_len);
  370. if (unlikely(err))
  371. WL_ERR(("Vendor Command reply failed ret:%d\n", err));
  372. kfree(reply);
  373. return err;
  374. }
  375. static int rtw_cfgvendor_gscan_get_channel_list(struct wiphy *wiphy,
  376. struct wireless_dev *wdev, const void *data, int len)
  377. {
  378. int err = 0, type, band;
  379. struct bcm_cfg80211 *cfg = wiphy_priv(wiphy);
  380. uint16 *reply = NULL;
  381. uint32 reply_len = 0, num_channels, mem_needed;
  382. struct sk_buff *skb;
  383. type = nla_type(data);
  384. if (type == GSCAN_ATTRIBUTE_BAND)
  385. band = nla_get_u32(data);
  386. else
  387. return -1;
  388. reply = dhd_dev_pno_get_gscan(bcmcfg_to_prmry_ndev(cfg),
  389. DHD_PNO_GET_CHANNEL_LIST, &band, &reply_len);
  390. if (!reply) {
  391. WL_ERR(("Could not get channel list\n"));
  392. err = -EINVAL;
  393. return err;
  394. }
  395. num_channels = reply_len / sizeof(uint32);
  396. mem_needed = reply_len + VENDOR_REPLY_OVERHEAD + (ATTRIBUTE_U32_LEN * 2);
  397. /* Alloc the SKB for vendor_event */
  398. skb = rtw_cfg80211_vendor_cmd_alloc_reply_skb(wiphy, mem_needed);
  399. if (unlikely(!skb)) {
  400. WL_ERR(("skb alloc failed"));
  401. err = -ENOMEM;
  402. goto exit;
  403. }
  404. nla_put_u32(skb, GSCAN_ATTRIBUTE_NUM_CHANNELS, num_channels);
  405. nla_put(skb, GSCAN_ATTRIBUTE_CHANNEL_LIST, reply_len, reply);
  406. err = rtw_cfg80211_vendor_cmd_reply(skb);
  407. if (unlikely(err))
  408. WL_ERR(("Vendor Command reply failed ret:%d\n", err));
  409. exit:
  410. kfree(reply);
  411. return err;
  412. }
  413. static int rtw_cfgvendor_gscan_get_batch_results(struct wiphy *wiphy,
  414. struct wireless_dev *wdev, const void *data, int len)
  415. {
  416. int err = 0;
  417. struct bcm_cfg80211 *cfg = wiphy_priv(wiphy);
  418. gscan_results_cache_t *results, *iter;
  419. uint32 reply_len, complete = 0, num_results_iter;
  420. int32 mem_needed;
  421. wifi_gscan_result_t *ptr;
  422. uint16 num_scan_ids, num_results;
  423. struct sk_buff *skb;
  424. struct nlattr *scan_hdr;
  425. dhd_dev_wait_batch_results_complete(bcmcfg_to_prmry_ndev(cfg));
  426. dhd_dev_pno_lock_access_batch_results(bcmcfg_to_prmry_ndev(cfg));
  427. results = dhd_dev_pno_get_gscan(bcmcfg_to_prmry_ndev(cfg),
  428. DHD_PNO_GET_BATCH_RESULTS, NULL, &reply_len);
  429. if (!results) {
  430. WL_ERR(("No results to send %d\n", err));
  431. err = rtw_cfgvendor_send_cmd_reply(wiphy, bcmcfg_to_prmry_ndev(cfg),
  432. results, 0);
  433. if (unlikely(err))
  434. WL_ERR(("Vendor Command reply failed ret:%d\n", err));
  435. dhd_dev_pno_unlock_access_batch_results(bcmcfg_to_prmry_ndev(cfg));
  436. return err;
  437. }
  438. num_scan_ids = reply_len & 0xFFFF;
  439. num_results = (reply_len & 0xFFFF0000) >> 16;
  440. mem_needed = (num_results * sizeof(wifi_gscan_result_t)) +
  441. (num_scan_ids * GSCAN_BATCH_RESULT_HDR_LEN) +
  442. VENDOR_REPLY_OVERHEAD + SCAN_RESULTS_COMPLETE_FLAG_LEN;
  443. if (mem_needed > (int32)NLMSG_DEFAULT_SIZE) {
  444. mem_needed = (int32)NLMSG_DEFAULT_SIZE;
  445. complete = 0;
  446. } else
  447. complete = 1;
  448. WL_TRACE(("complete %d mem_needed %d max_mem %d\n", complete, mem_needed,
  449. (int)NLMSG_DEFAULT_SIZE));
  450. /* Alloc the SKB for vendor_event */
  451. skb = rtw_cfg80211_vendor_cmd_alloc_reply_skb(wiphy, mem_needed);
  452. if (unlikely(!skb)) {
  453. WL_ERR(("skb alloc failed"));
  454. dhd_dev_pno_unlock_access_batch_results(bcmcfg_to_prmry_ndev(cfg));
  455. return -ENOMEM;
  456. }
  457. iter = results;
  458. nla_put_u32(skb, GSCAN_ATTRIBUTE_SCAN_RESULTS_COMPLETE, complete);
  459. mem_needed = mem_needed - (SCAN_RESULTS_COMPLETE_FLAG_LEN + VENDOR_REPLY_OVERHEAD);
  460. while (iter && ((mem_needed - GSCAN_BATCH_RESULT_HDR_LEN) > 0)) {
  461. scan_hdr = nla_nest_start(skb, GSCAN_ATTRIBUTE_SCAN_RESULTS);
  462. nla_put_u32(skb, GSCAN_ATTRIBUTE_SCAN_ID, iter->scan_id);
  463. nla_put_u8(skb, GSCAN_ATTRIBUTE_SCAN_FLAGS, iter->flag);
  464. num_results_iter =
  465. (mem_needed - GSCAN_BATCH_RESULT_HDR_LEN) / sizeof(wifi_gscan_result_t);
  466. if ((iter->tot_count - iter->tot_consumed) < num_results_iter)
  467. num_results_iter = iter->tot_count - iter->tot_consumed;
  468. nla_put_u32(skb, GSCAN_ATTRIBUTE_NUM_OF_RESULTS, num_results_iter);
  469. if (num_results_iter) {
  470. ptr = &iter->results[iter->tot_consumed];
  471. iter->tot_consumed += num_results_iter;
  472. nla_put(skb, GSCAN_ATTRIBUTE_SCAN_RESULTS,
  473. num_results_iter * sizeof(wifi_gscan_result_t), ptr);
  474. }
  475. nla_nest_end(skb, scan_hdr);
  476. mem_needed -= GSCAN_BATCH_RESULT_HDR_LEN +
  477. (num_results_iter * sizeof(wifi_gscan_result_t));
  478. iter = iter->next;
  479. }
  480. dhd_dev_gscan_batch_cache_cleanup(bcmcfg_to_prmry_ndev(cfg));
  481. dhd_dev_pno_unlock_access_batch_results(bcmcfg_to_prmry_ndev(cfg));
  482. return rtw_cfg80211_vendor_cmd_reply(skb);
  483. }
  484. static int rtw_cfgvendor_initiate_gscan(struct wiphy *wiphy,
  485. struct wireless_dev *wdev, const void *data, int len)
  486. {
  487. int err = 0;
  488. struct bcm_cfg80211 *cfg = wiphy_priv(wiphy);
  489. int type, tmp = len;
  490. int run = 0xFF;
  491. int flush = 0;
  492. const struct nlattr *iter;
  493. nla_for_each_attr(iter, data, len, tmp) {
  494. type = nla_type(iter);
  495. if (type == GSCAN_ATTRIBUTE_ENABLE_FEATURE)
  496. run = nla_get_u32(iter);
  497. else if (type == GSCAN_ATTRIBUTE_FLUSH_FEATURE)
  498. flush = nla_get_u32(iter);
  499. }
  500. if (run != 0xFF) {
  501. err = dhd_dev_pno_run_gscan(bcmcfg_to_prmry_ndev(cfg), run, flush);
  502. if (unlikely(err))
  503. WL_ERR(("Could not run gscan:%d\n", err));
  504. return err;
  505. } else
  506. return -1;
  507. }
  508. static int rtw_cfgvendor_enable_full_scan_result(struct wiphy *wiphy,
  509. struct wireless_dev *wdev, const void *data, int len)
  510. {
  511. int err = 0;
  512. struct bcm_cfg80211 *cfg = wiphy_priv(wiphy);
  513. int type;
  514. bool real_time = FALSE;
  515. type = nla_type(data);
  516. if (type == GSCAN_ATTRIBUTE_ENABLE_FULL_SCAN_RESULTS) {
  517. real_time = nla_get_u32(data);
  518. err = dhd_dev_pno_enable_full_scan_result(bcmcfg_to_prmry_ndev(cfg), real_time);
  519. if (unlikely(err))
  520. WL_ERR(("Could not run gscan:%d\n", err));
  521. } else
  522. err = -1;
  523. return err;
  524. }
  525. static int rtw_cfgvendor_set_scan_cfg(struct wiphy *wiphy,
  526. struct wireless_dev *wdev, const void *data, int len)
  527. {
  528. int err = 0;
  529. struct bcm_cfg80211 *cfg = wiphy_priv(wiphy);
  530. gscan_scan_params_t *scan_param;
  531. int j = 0;
  532. int type, tmp, tmp1, tmp2, k = 0;
  533. const struct nlattr *iter, *iter1, *iter2;
  534. struct dhd_pno_gscan_channel_bucket *ch_bucket;
  535. scan_param = kzalloc(sizeof(gscan_scan_params_t), GFP_KERNEL);
  536. if (!scan_param) {
  537. WL_ERR(("Could not set GSCAN scan cfg, mem alloc failure\n"));
  538. err = -EINVAL;
  539. return err;
  540. }
  541. scan_param->scan_fr = PNO_SCAN_MIN_FW_SEC;
  542. nla_for_each_attr(iter, data, len, tmp) {
  543. type = nla_type(iter);
  544. if (j >= GSCAN_MAX_CH_BUCKETS)
  545. break;
  546. switch (type) {
  547. case GSCAN_ATTRIBUTE_BASE_PERIOD:
  548. scan_param->scan_fr = nla_get_u32(iter) / 1000;
  549. break;
  550. case GSCAN_ATTRIBUTE_NUM_BUCKETS:
  551. scan_param->nchannel_buckets = nla_get_u32(iter);
  552. break;
  553. case GSCAN_ATTRIBUTE_CH_BUCKET_1:
  554. case GSCAN_ATTRIBUTE_CH_BUCKET_2:
  555. case GSCAN_ATTRIBUTE_CH_BUCKET_3:
  556. case GSCAN_ATTRIBUTE_CH_BUCKET_4:
  557. case GSCAN_ATTRIBUTE_CH_BUCKET_5:
  558. case GSCAN_ATTRIBUTE_CH_BUCKET_6:
  559. case GSCAN_ATTRIBUTE_CH_BUCKET_7:
  560. nla_for_each_nested(iter1, iter, tmp1) {
  561. type = nla_type(iter1);
  562. ch_bucket =
  563. scan_param->channel_bucket;
  564. switch (type) {
  565. case GSCAN_ATTRIBUTE_BUCKET_ID:
  566. break;
  567. case GSCAN_ATTRIBUTE_BUCKET_PERIOD:
  568. ch_bucket[j].bucket_freq_multiple =
  569. nla_get_u32(iter1) / 1000;
  570. break;
  571. case GSCAN_ATTRIBUTE_BUCKET_NUM_CHANNELS:
  572. ch_bucket[j].num_channels =
  573. nla_get_u32(iter1);
  574. break;
  575. case GSCAN_ATTRIBUTE_BUCKET_CHANNELS:
  576. nla_for_each_nested(iter2, iter1, tmp2) {
  577. if (k >= PFN_SWC_RSSI_WINDOW_MAX)
  578. break;
  579. ch_bucket[j].chan_list[k] =
  580. nla_get_u32(iter2);
  581. k++;
  582. }
  583. k = 0;
  584. break;
  585. case GSCAN_ATTRIBUTE_BUCKETS_BAND:
  586. ch_bucket[j].band = (uint16)
  587. nla_get_u32(iter1);
  588. break;
  589. case GSCAN_ATTRIBUTE_REPORT_EVENTS:
  590. ch_bucket[j].report_flag = (uint8)
  591. nla_get_u32(iter1);
  592. break;
  593. }
  594. }
  595. j++;
  596. break;
  597. }
  598. }
  599. if (dhd_dev_pno_set_cfg_gscan(bcmcfg_to_prmry_ndev(cfg),
  600. DHD_PNO_SCAN_CFG_ID, scan_param, 0) < 0) {
  601. WL_ERR(("Could not set GSCAN scan cfg\n"));
  602. err = -EINVAL;
  603. }
  604. kfree(scan_param);
  605. return err;
  606. }
  607. static int rtw_cfgvendor_hotlist_cfg(struct wiphy *wiphy,
  608. struct wireless_dev *wdev, const void *data, int len)
  609. {
  610. int err = 0;
  611. struct bcm_cfg80211 *cfg = wiphy_priv(wiphy);
  612. gscan_hotlist_scan_params_t *hotlist_params;
  613. int tmp, tmp1, tmp2, type, j = 0, dummy;
  614. const struct nlattr *outer, *inner, *iter;
  615. uint8 flush = 0;
  616. struct bssid_t *pbssid;
  617. hotlist_params = (gscan_hotlist_scan_params_t *)kzalloc(len, GFP_KERNEL);
  618. if (!hotlist_params) {
  619. WL_ERR(("Cannot Malloc mem to parse config commands size - %d bytes\n", len));
  620. return -1;
  621. }
  622. hotlist_params->lost_ap_window = GSCAN_LOST_AP_WINDOW_DEFAULT;
  623. nla_for_each_attr(iter, data, len, tmp2) {
  624. type = nla_type(iter);
  625. switch (type) {
  626. case GSCAN_ATTRIBUTE_HOTLIST_BSSIDS:
  627. pbssid = hotlist_params->bssid;
  628. nla_for_each_nested(outer, iter, tmp) {
  629. nla_for_each_nested(inner, outer, tmp1) {
  630. type = nla_type(inner);
  631. switch (type) {
  632. case GSCAN_ATTRIBUTE_BSSID:
  633. memcpy(&(pbssid[j].macaddr),
  634. nla_data(inner), ETHER_ADDR_LEN);
  635. break;
  636. case GSCAN_ATTRIBUTE_RSSI_LOW:
  637. pbssid[j].rssi_reporting_threshold =
  638. (int8) nla_get_u8(inner);
  639. break;
  640. case GSCAN_ATTRIBUTE_RSSI_HIGH:
  641. dummy = (int8) nla_get_u8(inner);
  642. break;
  643. }
  644. }
  645. j++;
  646. }
  647. hotlist_params->nbssid = j;
  648. break;
  649. case GSCAN_ATTRIBUTE_HOTLIST_FLUSH:
  650. flush = nla_get_u8(iter);
  651. break;
  652. case GSCAN_ATTRIBUTE_LOST_AP_SAMPLE_SIZE:
  653. hotlist_params->lost_ap_window = nla_get_u32(iter);
  654. break;
  655. }
  656. }
  657. if (dhd_dev_pno_set_cfg_gscan(bcmcfg_to_prmry_ndev(cfg),
  658. DHD_PNO_GEOFENCE_SCAN_CFG_ID, hotlist_params, flush) < 0) {
  659. WL_ERR(("Could not set GSCAN HOTLIST cfg\n"));
  660. err = -EINVAL;
  661. goto exit;
  662. }
  663. exit:
  664. kfree(hotlist_params);
  665. return err;
  666. }
  667. static int rtw_cfgvendor_set_batch_scan_cfg(struct wiphy *wiphy,
  668. struct wireless_dev *wdev, const void *data, int len)
  669. {
  670. int err = 0, tmp, type;
  671. struct bcm_cfg80211 *cfg = wiphy_priv(wiphy);
  672. gscan_batch_params_t batch_param;
  673. const struct nlattr *iter;
  674. batch_param.mscan = batch_param.bestn = 0;
  675. batch_param.buffer_threshold = GSCAN_BATCH_NO_THR_SET;
  676. nla_for_each_attr(iter, data, len, tmp) {
  677. type = nla_type(iter);
  678. switch (type) {
  679. case GSCAN_ATTRIBUTE_NUM_AP_PER_SCAN:
  680. batch_param.bestn = nla_get_u32(iter);
  681. break;
  682. case GSCAN_ATTRIBUTE_NUM_SCANS_TO_CACHE:
  683. batch_param.mscan = nla_get_u32(iter);
  684. break;
  685. case GSCAN_ATTRIBUTE_REPORT_THRESHOLD:
  686. batch_param.buffer_threshold = nla_get_u32(iter);
  687. break;
  688. }
  689. }
  690. if (dhd_dev_pno_set_cfg_gscan(bcmcfg_to_prmry_ndev(cfg),
  691. DHD_PNO_BATCH_SCAN_CFG_ID, &batch_param, 0) < 0) {
  692. WL_ERR(("Could not set batch cfg\n"));
  693. err = -EINVAL;
  694. return err;
  695. }
  696. return err;
  697. }
  698. static int rtw_cfgvendor_significant_change_cfg(struct wiphy *wiphy,
  699. struct wireless_dev *wdev, const void *data, int len)
  700. {
  701. int err = 0;
  702. struct bcm_cfg80211 *cfg = wiphy_priv(wiphy);
  703. gscan_swc_params_t *significant_params;
  704. int tmp, tmp1, tmp2, type, j = 0;
  705. const struct nlattr *outer, *inner, *iter;
  706. uint8 flush = 0;
  707. wl_pfn_significant_bssid_t *pbssid;
  708. significant_params = (gscan_swc_params_t *) kzalloc(len, GFP_KERNEL);
  709. if (!significant_params) {
  710. WL_ERR(("Cannot Malloc mem to parse config commands size - %d bytes\n", len));
  711. return -1;
  712. }
  713. nla_for_each_attr(iter, data, len, tmp2) {
  714. type = nla_type(iter);
  715. switch (type) {
  716. case GSCAN_ATTRIBUTE_SIGNIFICANT_CHANGE_FLUSH:
  717. flush = nla_get_u8(iter);
  718. break;
  719. case GSCAN_ATTRIBUTE_RSSI_SAMPLE_SIZE:
  720. significant_params->rssi_window = nla_get_u16(iter);
  721. break;
  722. case GSCAN_ATTRIBUTE_LOST_AP_SAMPLE_SIZE:
  723. significant_params->lost_ap_window = nla_get_u16(iter);
  724. break;
  725. case GSCAN_ATTRIBUTE_MIN_BREACHING:
  726. significant_params->swc_threshold = nla_get_u16(iter);
  727. break;
  728. case GSCAN_ATTRIBUTE_SIGNIFICANT_CHANGE_BSSIDS:
  729. pbssid = significant_params->bssid_elem_list;
  730. nla_for_each_nested(outer, iter, tmp) {
  731. nla_for_each_nested(inner, outer, tmp1) {
  732. switch (nla_type(inner)) {
  733. case GSCAN_ATTRIBUTE_BSSID:
  734. memcpy(&(pbssid[j].macaddr),
  735. nla_data(inner),
  736. ETHER_ADDR_LEN);
  737. break;
  738. case GSCAN_ATTRIBUTE_RSSI_HIGH:
  739. pbssid[j].rssi_high_threshold =
  740. (int8) nla_get_u8(inner);
  741. break;
  742. case GSCAN_ATTRIBUTE_RSSI_LOW:
  743. pbssid[j].rssi_low_threshold =
  744. (int8) nla_get_u8(inner);
  745. break;
  746. }
  747. }
  748. j++;
  749. }
  750. break;
  751. }
  752. }
  753. significant_params->nbssid = j;
  754. if (dhd_dev_pno_set_cfg_gscan(bcmcfg_to_prmry_ndev(cfg),
  755. DHD_PNO_SIGNIFICANT_SCAN_CFG_ID, significant_params, flush) < 0) {
  756. WL_ERR(("Could not set GSCAN significant cfg\n"));
  757. err = -EINVAL;
  758. goto exit;
  759. }
  760. exit:
  761. kfree(significant_params);
  762. return err;
  763. }
  764. #endif /* GSCAN_SUPPORT */
  765. #if defined(RTT_SUPPORT) && 0
  766. void rtw_cfgvendor_rtt_evt(void *ctx, void *rtt_data)
  767. {
  768. struct wireless_dev *wdev = (struct wireless_dev *)ctx;
  769. struct wiphy *wiphy;
  770. struct sk_buff *skb;
  771. uint32 tot_len = NLMSG_DEFAULT_SIZE, entry_len = 0;
  772. gfp_t kflags;
  773. rtt_report_t *rtt_report = NULL;
  774. rtt_result_t *rtt_result = NULL;
  775. struct list_head *rtt_list;
  776. wiphy = wdev->wiphy;
  777. WL_DBG(("In\n"));
  778. /* Push the data to the skb */
  779. if (!rtt_data) {
  780. WL_ERR(("rtt_data is NULL\n"));
  781. goto exit;
  782. }
  783. rtt_list = (struct list_head *)rtt_data;
  784. kflags = in_atomic() ? GFP_ATOMIC : GFP_KERNEL;
  785. /* Alloc the SKB for vendor_event */
  786. skb = rtw_cfg80211_vendor_event_alloc(wiphy, wdev, tot_len, GOOGLE_RTT_COMPLETE_EVENT, kflags);
  787. if (!skb) {
  788. WL_ERR(("skb alloc failed"));
  789. goto exit;
  790. }
  791. /* fill in the rtt results on each entry */
  792. list_for_each_entry(rtt_result, rtt_list, list) {
  793. entry_len = 0;
  794. if (rtt_result->TOF_type == TOF_TYPE_ONE_WAY) {
  795. entry_len = sizeof(rtt_report_t);
  796. rtt_report = kzalloc(entry_len, kflags);
  797. if (!rtt_report) {
  798. WL_ERR(("rtt_report alloc failed"));
  799. goto exit;
  800. }
  801. rtt_report->addr = rtt_result->peer_mac;
  802. rtt_report->num_measurement = 1; /* ONE SHOT */
  803. rtt_report->status = rtt_result->err_code;
  804. rtt_report->type = (rtt_result->TOF_type == TOF_TYPE_ONE_WAY) ? RTT_ONE_WAY : RTT_TWO_WAY;
  805. rtt_report->peer = rtt_result->target_info->peer;
  806. rtt_report->channel = rtt_result->target_info->channel;
  807. rtt_report->rssi = rtt_result->avg_rssi;
  808. /* tx_rate */
  809. rtt_report->tx_rate = rtt_result->tx_rate;
  810. /* RTT */
  811. rtt_report->rtt = rtt_result->meanrtt;
  812. rtt_report->rtt_sd = rtt_result->sdrtt;
  813. /* convert to centi meter */
  814. if (rtt_result->distance != 0xffffffff)
  815. rtt_report->distance = (rtt_result->distance >> 2) * 25;
  816. else /* invalid distance */
  817. rtt_report->distance = -1;
  818. rtt_report->ts = rtt_result->ts;
  819. nla_append(skb, entry_len, rtt_report);
  820. kfree(rtt_report);
  821. }
  822. }
  823. rtw_cfg80211_vendor_event(skb, kflags);
  824. exit:
  825. return;
  826. }
  827. static int rtw_cfgvendor_rtt_set_config(struct wiphy *wiphy, struct wireless_dev *wdev,
  828. const void *data, int len)
  829. {
  830. int err = 0, rem, rem1, rem2, type;
  831. rtt_config_params_t rtt_param;
  832. rtt_target_info_t *rtt_target = NULL;
  833. const struct nlattr *iter, *iter1, *iter2;
  834. int8 eabuf[ETHER_ADDR_STR_LEN];
  835. int8 chanbuf[CHANSPEC_STR_LEN];
  836. struct bcm_cfg80211 *cfg = wiphy_priv(wiphy);
  837. WL_DBG(("In\n"));
  838. err = dhd_dev_rtt_register_noti_callback(wdev->netdev, wdev, wl_cfgvendor_rtt_evt);
  839. if (err < 0) {
  840. WL_ERR(("failed to register rtt_noti_callback\n"));
  841. goto exit;
  842. }
  843. memset(&rtt_param, 0, sizeof(rtt_param));
  844. nla_for_each_attr(iter, data, len, rem) {
  845. type = nla_type(iter);
  846. switch (type) {
  847. case RTT_ATTRIBUTE_TARGET_CNT:
  848. rtt_param.rtt_target_cnt = nla_get_u8(iter);
  849. if (rtt_param.rtt_target_cnt > RTT_MAX_TARGET_CNT) {
  850. WL_ERR(("exceed max target count : %d\n",
  851. rtt_param.rtt_target_cnt));
  852. err = BCME_RANGE;
  853. }
  854. break;
  855. case RTT_ATTRIBUTE_TARGET_INFO:
  856. rtt_target = rtt_param.target_info;
  857. nla_for_each_nested(iter1, iter, rem1) {
  858. nla_for_each_nested(iter2, iter1, rem2) {
  859. type = nla_type(iter2);
  860. switch (type) {
  861. case RTT_ATTRIBUTE_TARGET_MAC:
  862. memcpy(&rtt_target->addr, nla_data(iter2), ETHER_ADDR_LEN);
  863. break;
  864. case RTT_ATTRIBUTE_TARGET_TYPE:
  865. rtt_target->type = nla_get_u8(iter2);
  866. break;
  867. case RTT_ATTRIBUTE_TARGET_PEER:
  868. rtt_target->peer = nla_get_u8(iter2);
  869. break;
  870. case RTT_ATTRIBUTE_TARGET_CHAN:
  871. memcpy(&rtt_target->channel, nla_data(iter2),
  872. sizeof(rtt_target->channel));
  873. break;
  874. case RTT_ATTRIBUTE_TARGET_MODE:
  875. rtt_target->continuous = nla_get_u8(iter2);
  876. break;
  877. case RTT_ATTRIBUTE_TARGET_INTERVAL:
  878. rtt_target->interval = nla_get_u32(iter2);
  879. break;
  880. case RTT_ATTRIBUTE_TARGET_NUM_MEASUREMENT:
  881. rtt_target->measure_cnt = nla_get_u32(iter2);
  882. break;
  883. case RTT_ATTRIBUTE_TARGET_NUM_PKT:
  884. rtt_target->ftm_cnt = nla_get_u32(iter2);
  885. break;
  886. case RTT_ATTRIBUTE_TARGET_NUM_RETRY:
  887. rtt_target->retry_cnt = nla_get_u32(iter2);
  888. }
  889. }
  890. /* convert to chanspec value */
  891. rtt_target->chanspec = dhd_rtt_convert_to_chspec(rtt_target->channel);
  892. if (rtt_target->chanspec == 0) {
  893. WL_ERR(("Channel is not valid\n"));
  894. goto exit;
  895. }
  896. WL_INFORM(("Target addr %s, Channel : %s for RTT\n",
  897. bcm_ether_ntoa((const struct ether_addr *)&rtt_target->addr, eabuf),
  898. wf_chspec_ntoa(rtt_target->chanspec, chanbuf)));
  899. rtt_target++;
  900. }
  901. break;
  902. }
  903. }
  904. WL_DBG(("leave :target_cnt : %d\n", rtt_param.rtt_target_cnt));
  905. if (dhd_dev_rtt_set_cfg(bcmcfg_to_prmry_ndev(cfg), &rtt_param) < 0) {
  906. WL_ERR(("Could not set RTT configuration\n"));
  907. err = -EINVAL;
  908. }
  909. exit:
  910. return err;
  911. }
  912. static int rtw_cfgvendor_rtt_cancel_config(struct wiphy *wiphy, struct wireless_dev *wdev,
  913. const void *data, int len)
  914. {
  915. int err = 0, rem, type, target_cnt = 0;
  916. const struct nlattr *iter;
  917. struct ether_addr *mac_list = NULL, *mac_addr = NULL;
  918. struct bcm_cfg80211 *cfg = wiphy_priv(wiphy);
  919. nla_for_each_attr(iter, data, len, rem) {
  920. type = nla_type(iter);
  921. switch (type) {
  922. case RTT_ATTRIBUTE_TARGET_CNT:
  923. target_cnt = nla_get_u8(iter);
  924. mac_list = (struct ether_addr *)kzalloc(target_cnt * ETHER_ADDR_LEN , GFP_KERNEL);
  925. if (mac_list == NULL) {
  926. WL_ERR(("failed to allocate mem for mac list\n"));
  927. goto exit;
  928. }
  929. mac_addr = &mac_list[0];
  930. break;
  931. case RTT_ATTRIBUTE_TARGET_MAC:
  932. if (mac_addr)
  933. memcpy(mac_addr++, nla_data(iter), ETHER_ADDR_LEN);
  934. else {
  935. WL_ERR(("mac_list is NULL\n"));
  936. goto exit;
  937. }
  938. break;
  939. }
  940. if (dhd_dev_rtt_cancel_cfg(bcmcfg_to_prmry_ndev(cfg), mac_list, target_cnt) < 0) {
  941. WL_ERR(("Could not cancel RTT configuration\n"));
  942. err = -EINVAL;
  943. goto exit;
  944. }
  945. }
  946. exit:
  947. if (mac_list)
  948. kfree(mac_list);
  949. return err;
  950. }
  951. static int rtw_cfgvendor_rtt_get_capability(struct wiphy *wiphy, struct wireless_dev *wdev,
  952. const void *data, int len)
  953. {
  954. int err = 0;
  955. struct bcm_cfg80211 *cfg = wiphy_priv(wiphy);
  956. rtt_capabilities_t capability;
  957. err = dhd_dev_rtt_capability(bcmcfg_to_prmry_ndev(cfg), &capability);
  958. if (unlikely(err)) {
  959. WL_ERR(("Vendor Command reply failed ret:%d\n", err));
  960. goto exit;
  961. }
  962. err = rtw_cfgvendor_send_cmd_reply(wiphy, bcmcfg_to_prmry_ndev(cfg),
  963. &capability, sizeof(capability));
  964. if (unlikely(err))
  965. WL_ERR(("Vendor Command reply failed ret:%d\n", err));
  966. exit:
  967. return err;
  968. }
  969. #endif /* RTT_SUPPORT */
  970. #ifdef CONFIG_RTW_CFGVEDNOR_LLSTATS
  971. enum {
  972. LSTATS_SUBCMD_GET_INFO = ANDROID_NL80211_SUBCMD_LSTATS_RANGE_START,
  973. LSTATS_SUBCMD_SET_INFO,
  974. LSTATS_SUBCMD_CLEAR_INFO,
  975. };
  976. static void LinkLayerStats(_adapter *padapter)
  977. {
  978. struct xmit_priv *pxmitpriv = &(padapter->xmitpriv);
  979. struct recv_priv *precvpriv = &(padapter->recvpriv);
  980. struct pwrctrl_priv *pwrpriv = adapter_to_pwrctl(padapter);
  981. struct dvobj_priv *pdvobjpriv = adapter_to_dvobj(padapter);
  982. u32 ps_time, trx_total_time;
  983. u64 tx_bytes, rx_bytes, trx_total_bytes = 0;
  984. u64 tmp = 0;
  985. RTW_DBG("%s adapter type : %u\n", __func__, padapter->adapter_type);
  986. tx_bytes = 0;
  987. rx_bytes = 0;
  988. ps_time = 0;
  989. trx_total_time = 0;
  990. if ( padapter->netif_up == _TRUE ) {
  991. pwrpriv->on_time = rtw_get_passing_time_ms(pwrpriv->radio_on_start_time);
  992. if (rtw_mi_check_fwstate(padapter, _FW_LINKED)) {
  993. if ( pwrpriv->bpower_saving == _TRUE ) {
  994. pwrpriv->pwr_saving_time += rtw_get_passing_time_ms(pwrpriv->pwr_saving_start_time);
  995. pwrpriv->pwr_saving_start_time = rtw_get_current_time();
  996. }
  997. } else {
  998. #ifdef CONFIG_IPS
  999. if ( pwrpriv->bpower_saving == _TRUE ) {
  1000. pwrpriv->pwr_saving_time += rtw_get_passing_time_ms(pwrpriv->pwr_saving_start_time);
  1001. pwrpriv->pwr_saving_start_time = rtw_get_current_time();
  1002. }
  1003. #else
  1004. pwrpriv->pwr_saving_time = pwrpriv->on_time;
  1005. #endif
  1006. }
  1007. ps_time = pwrpriv->pwr_saving_time;
  1008. /* Deviation caused by caculation start time */
  1009. if ( ps_time > pwrpriv->on_time )
  1010. ps_time = pwrpriv->on_time;
  1011. tx_bytes = pdvobjpriv->traffic_stat.last_tx_bytes;
  1012. rx_bytes = pdvobjpriv->traffic_stat.last_rx_bytes;
  1013. trx_total_bytes = tx_bytes + rx_bytes;
  1014. trx_total_time = pwrpriv->on_time - ps_time;
  1015. if ( trx_total_bytes == 0) {
  1016. pwrpriv->tx_time = 0;
  1017. pwrpriv->rx_time = 0;
  1018. } else {
  1019. /* tx_time = (trx_total_time * tx_total_bytes) / trx_total_bytes; */
  1020. /* rx_time = (trx_total_time * rx_total_bytes) / trx_total_bytes; */
  1021. tmp = (tx_bytes * trx_total_time);
  1022. tmp = rtw_division64(tmp, trx_total_bytes);
  1023. pwrpriv->tx_time = tmp;
  1024. tmp = (rx_bytes * trx_total_time);
  1025. tmp = rtw_division64(tmp, trx_total_bytes);
  1026. pwrpriv->rx_time = tmp;
  1027. }
  1028. }
  1029. else {
  1030. pwrpriv->on_time = 0;
  1031. pwrpriv->tx_time = 0;
  1032. pwrpriv->rx_time = 0;
  1033. }
  1034. #ifdef CONFIG_RTW_WIFI_HAL_DEBUG
  1035. RTW_INFO("- tx_bytes : %llu rx_bytes : %llu total bytes : %llu\n", tx_bytes, rx_bytes, trx_total_bytes);
  1036. RTW_INFO("- netif_up = %s, on_time : %u ms\n", padapter->netif_up ? "1":"0", pwrpriv->on_time);
  1037. RTW_INFO("- pwr_saving_time : %u (%u) ms\n", pwrpriv->pwr_saving_time, ps_time);
  1038. RTW_INFO("- trx_total_time : %u ms\n", trx_total_time);
  1039. RTW_INFO("- tx_time : %u ms\n", pwrpriv->tx_time);
  1040. RTW_INFO("- rx_time : %u ms\n", pwrpriv->rx_time);
  1041. #endif /* CONFIG_RTW_WIFI_HAL_DEBUG */
  1042. }
  1043. #define DUMMY_TIME_STATICS 99
  1044. static int rtw_cfgvendor_lstats_get_info(struct wiphy *wiphy,
  1045. struct wireless_dev *wdev, const void *data, int len)
  1046. {
  1047. int err = 0;
  1048. _adapter *padapter = GET_PRIMARY_ADAPTER(wiphy_to_adapter(wiphy));
  1049. struct pwrctrl_priv *pwrpriv = adapter_to_pwrctl(padapter);
  1050. wifi_radio_stat_internal *radio;
  1051. wifi_iface_stat *iface;
  1052. char *output;
  1053. output = rtw_malloc(sizeof(wifi_radio_stat_internal) + sizeof(wifi_iface_stat));
  1054. if (output == NULL) {
  1055. RTW_DBG("Allocate lstats info buffer fail!\n");
  1056. }
  1057. radio = (wifi_radio_stat_internal *)output;
  1058. radio->num_channels = 0;
  1059. radio->radio = 1;
  1060. /* to get on_time, tx_time, rx_time */
  1061. LinkLayerStats(padapter);
  1062. radio->on_time = pwrpriv->on_time;
  1063. radio->tx_time = pwrpriv->tx_time;
  1064. radio->rx_time = pwrpriv->rx_time;
  1065. radio->on_time_scan = 0;
  1066. radio->on_time_nbd = 0;
  1067. radio->on_time_gscan = 0;
  1068. radio->on_time_pno_scan = 0;
  1069. radio->on_time_hs20 = 0;
  1070. #ifdef CONFIG_RTW_WIFI_HAL_DEBUG
  1071. RTW_INFO("==== %s ====\n", __func__);
  1072. RTW_INFO("radio->radio : %d\n", (radio->radio));
  1073. RTW_INFO("pwrpriv->on_time : %u ms\n", (pwrpriv->on_time));
  1074. RTW_INFO("pwrpriv->tx_time : %u ms\n", (pwrpriv->tx_time));
  1075. RTW_INFO("pwrpriv->rx_time : %u ms\n", (pwrpriv->rx_time));
  1076. RTW_INFO("radio->on_time : %u ms\n", (radio->on_time));
  1077. RTW_INFO("radio->tx_time : %u ms\n", (radio->tx_time));
  1078. RTW_INFO("radio->rx_time : %u ms\n", (radio->rx_time));
  1079. #endif /* CONFIG_RTW_WIFI_HAL_DEBUG */
  1080. RTW_DBG(FUNC_NDEV_FMT" %s\n", FUNC_NDEV_ARG(wdev_to_ndev(wdev)), (char*)data);
  1081. err = rtw_cfgvendor_send_cmd_reply(wiphy, wdev_to_ndev(wdev),
  1082. output, sizeof(wifi_iface_stat) + sizeof(wifi_radio_stat_internal));
  1083. if (unlikely(err))
  1084. RTW_ERR(FUNC_NDEV_FMT"Vendor Command reply failed ret:%d \n"
  1085. , FUNC_NDEV_ARG(wdev_to_ndev(wdev)), err);
  1086. rtw_mfree(output, sizeof(wifi_iface_stat) + sizeof(wifi_radio_stat_internal));
  1087. return err;
  1088. }
  1089. static int rtw_cfgvendor_lstats_set_info(struct wiphy *wiphy,
  1090. struct wireless_dev *wdev, const void *data, int len)
  1091. {
  1092. int err = 0;
  1093. RTW_INFO("%s\n", __func__);
  1094. return err;
  1095. }
  1096. static int rtw_cfgvendor_lstats_clear_info(struct wiphy *wiphy,
  1097. struct wireless_dev *wdev, const void *data, int len)
  1098. {
  1099. int err = 0;
  1100. RTW_INFO("%s\n", __func__);
  1101. return err;
  1102. }
  1103. #endif /* CONFIG_RTW_CFGVEDNOR_LLSTATS */
  1104. #ifdef CONFIG_RTW_CFGVEDNOR_RSSIMONITOR
  1105. static int rtw_cfgvendor_set_rssi_monitor(struct wiphy *wiphy,
  1106. struct wireless_dev *wdev, const void *data, int len)
  1107. {
  1108. _adapter *padapter = GET_PRIMARY_ADAPTER(wiphy_to_adapter(wiphy));
  1109. struct rtw_wdev_priv *pwdev_priv = adapter_wdev_data(padapter);
  1110. struct recv_priv *precvpriv = &padapter->recvpriv;
  1111. int err = 0, rem, type;
  1112. const struct nlattr *iter;
  1113. RTW_DBG(FUNC_NDEV_FMT" %s\n", FUNC_NDEV_ARG(wdev_to_ndev(wdev)), (char*)data);
  1114. nla_for_each_attr(iter, data, len, rem) {
  1115. type = nla_type(iter);
  1116. switch (type) {
  1117. case RSSI_MONITOR_ATTRIBUTE_MAX_RSSI:
  1118. pwdev_priv->rssi_monitor_max = (s8)nla_get_u32(iter);;
  1119. break;
  1120. case RSSI_MONITOR_ATTRIBUTE_MIN_RSSI:
  1121. pwdev_priv->rssi_monitor_min = (s8)nla_get_u32(iter);
  1122. break;
  1123. case RSSI_MONITOR_ATTRIBUTE_START:
  1124. pwdev_priv->rssi_monitor_enable = (u8)nla_get_u32(iter);
  1125. break;
  1126. }
  1127. }
  1128. return err;
  1129. }
  1130. void rtw_cfgvendor_rssi_monitor_evt(_adapter *padapter) {
  1131. struct wireless_dev *wdev = padapter->rtw_wdev;
  1132. struct wiphy *wiphy= wdev->wiphy;
  1133. struct recv_priv *precvpriv = &padapter->recvpriv;
  1134. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  1135. struct wlan_network *pcur_network = &pmlmepriv->cur_network;
  1136. struct rtw_wdev_priv *pwdev_priv = adapter_wdev_data(padapter);
  1137. struct sk_buff *skb;
  1138. u32 tot_len = NLMSG_DEFAULT_SIZE;
  1139. gfp_t kflags;
  1140. rssi_monitor_evt data ;
  1141. s8 rssi = precvpriv->rssi;
  1142. if (pwdev_priv->rssi_monitor_enable == 0 || check_fwstate(pmlmepriv, _FW_LINKED) != _TRUE)
  1143. return;
  1144. if (rssi < pwdev_priv->rssi_monitor_max || rssi > pwdev_priv->rssi_monitor_min)
  1145. return;
  1146. kflags = in_atomic() ? GFP_ATOMIC : GFP_KERNEL;
  1147. /* Alloc the SKB for vendor_event */
  1148. skb = rtw_cfg80211_vendor_event_alloc(wiphy, wdev, tot_len, GOOGLE_RSSI_MONITOR_EVENT, kflags);
  1149. if (!skb) {
  1150. goto exit;
  1151. }
  1152. _rtw_memset(&data, 0, sizeof(data));
  1153. data.version = RSSI_MONITOR_EVT_VERSION;
  1154. data.cur_rssi = rssi;
  1155. _rtw_memcpy(data.BSSID, pcur_network->network.MacAddress, sizeof(mac_addr));
  1156. nla_append(skb, sizeof(data), &data);
  1157. rtw_cfg80211_vendor_event(skb, kflags);
  1158. exit:
  1159. return;
  1160. }
  1161. #endif /* CONFIG_RTW_CFGVEDNOR_RSSIMONITR */
  1162. #ifdef CONFIG_RTW_CFGVENDOR_WIFI_LOGGER
  1163. static int rtw_cfgvendor_logger_start_logging(struct wiphy *wiphy,
  1164. struct wireless_dev *wdev, const void *data, int len)
  1165. {
  1166. int ret = 0, rem, type;
  1167. char ring_name[32] = {0};
  1168. int log_level = 0, flags = 0, time_intval = 0, threshold = 0;
  1169. const struct nlattr *iter;
  1170. nla_for_each_attr(iter, data, len, rem) {
  1171. type = nla_type(iter);
  1172. switch (type) {
  1173. case LOGGER_ATTRIBUTE_RING_NAME:
  1174. strncpy(ring_name, nla_data(iter),
  1175. MIN(sizeof(ring_name) -1, nla_len(iter)));
  1176. break;
  1177. case LOGGER_ATTRIBUTE_LOG_LEVEL:
  1178. log_level = nla_get_u32(iter);
  1179. break;
  1180. case LOGGER_ATTRIBUTE_RING_FLAGS:
  1181. flags = nla_get_u32(iter);
  1182. break;
  1183. case LOGGER_ATTRIBUTE_LOG_TIME_INTVAL:
  1184. time_intval = nla_get_u32(iter);
  1185. break;
  1186. case LOGGER_ATTRIBUTE_LOG_MIN_DATA_SIZE:
  1187. threshold = nla_get_u32(iter);
  1188. break;
  1189. default:
  1190. RTW_ERR("Unknown type: %d\n", type);
  1191. ret = WIFI_ERROR_INVALID_ARGS;
  1192. goto exit;
  1193. }
  1194. }
  1195. exit:
  1196. return ret;
  1197. }
  1198. static int rtw_cfgvendor_logger_get_feature(struct wiphy *wiphy,
  1199. struct wireless_dev *wdev, const void *data, int len)
  1200. {
  1201. int err = 0;
  1202. u32 supported_features = 0;
  1203. err = rtw_cfgvendor_send_cmd_reply(wiphy, wdev_to_ndev(wdev), &supported_features, sizeof(supported_features));
  1204. if (unlikely(err))
  1205. RTW_ERR(FUNC_NDEV_FMT" Vendor Command reply failed ret:%d\n"
  1206. , FUNC_NDEV_ARG(wdev_to_ndev(wdev)), err);
  1207. return err;
  1208. }
  1209. static int rtw_cfgvendor_logger_get_version(struct wiphy *wiphy,
  1210. struct wireless_dev *wdev, const void *data, int len)
  1211. {
  1212. _adapter *padapter = GET_PRIMARY_ADAPTER(wiphy_to_adapter(wiphy));
  1213. HAL_DATA_TYPE *hal = GET_HAL_DATA(padapter);
  1214. int ret = 0, rem, type;
  1215. int buf_len = 1024;
  1216. char *buf_ptr;
  1217. const struct nlattr *iter;
  1218. gfp_t kflags;
  1219. kflags = in_atomic() ? GFP_ATOMIC : GFP_KERNEL;
  1220. buf_ptr = kzalloc(buf_len, kflags);
  1221. if (!buf_ptr) {
  1222. RTW_ERR("failed to allocate the buffer for version n");
  1223. ret = -ENOMEM;
  1224. goto exit;
  1225. }
  1226. nla_for_each_attr(iter, data, len, rem) {
  1227. type = nla_type(iter);
  1228. switch (type) {
  1229. case LOGGER_ATTRIBUTE_GET_DRIVER:
  1230. memcpy(buf_ptr, DRIVERVERSION, strlen(DRIVERVERSION)+1);
  1231. break;
  1232. case LOGGER_ATTRIBUTE_GET_FW:
  1233. sprintf(buf_ptr, "v%d.%d", hal->firmware_version, hal->firmware_sub_version);
  1234. break;
  1235. default:
  1236. RTW_ERR("Unknown type: %d\n", type);
  1237. ret = -EINVAL;
  1238. goto exit;
  1239. }
  1240. }
  1241. if (ret < 0) {
  1242. RTW_ERR("failed to get the version %d\n", ret);
  1243. goto exit;
  1244. }
  1245. ret = rtw_cfgvendor_send_cmd_reply(wiphy, wdev_to_ndev(wdev), buf_ptr, strlen(buf_ptr));
  1246. exit:
  1247. kfree(buf_ptr);
  1248. return ret;
  1249. }
  1250. static int rtw_cfgvendor_logger_get_ring_status(struct wiphy *wiphy,
  1251. struct wireless_dev *wdev, const void *data, int len)
  1252. {
  1253. int ret = 0;
  1254. int ring_id;
  1255. char ring_buf_name[] = "RTW_RING_BUFFER";
  1256. struct sk_buff *skb;
  1257. wifi_ring_buffer_status ring_status;
  1258. _rtw_memcpy(ring_status.name, ring_buf_name, strlen(ring_buf_name)+1);
  1259. ring_status.ring_id = 1;
  1260. /* Alloc the SKB for vendor_event */
  1261. skb = cfg80211_vendor_cmd_alloc_reply_skb(wiphy,
  1262. sizeof(wifi_ring_buffer_status));
  1263. if (!skb) {
  1264. RTW_ERR("skb allocation is failed\n");
  1265. ret = FAIL;
  1266. goto exit;
  1267. }
  1268. nla_put_u32(skb, LOGGER_ATTRIBUTE_RING_NUM, 1);
  1269. nla_put(skb, LOGGER_ATTRIBUTE_RING_STATUS, sizeof(wifi_ring_buffer_status),
  1270. &ring_status);
  1271. ret = cfg80211_vendor_cmd_reply(skb);
  1272. if (ret) {
  1273. RTW_ERR("Vendor Command reply failed ret:%d \n", ret);
  1274. }
  1275. exit:
  1276. return ret;
  1277. }
  1278. static int rtw_cfgvendor_logger_get_ring_data(struct wiphy *wiphy,
  1279. struct wireless_dev *wdev, const void *data, int len)
  1280. {
  1281. int ret = 0, rem, type;
  1282. char ring_name[32] = {0};
  1283. const struct nlattr *iter;
  1284. nla_for_each_attr(iter, data, len, rem) {
  1285. type = nla_type(iter);
  1286. switch (type) {
  1287. case LOGGER_ATTRIBUTE_RING_NAME:
  1288. strncpy(ring_name, nla_data(iter),
  1289. MIN(sizeof(ring_name) -1, nla_len(iter)));
  1290. RTW_INFO(" %s LOGGER_ATTRIBUTE_RING_NAME : %s\n", __func__, ring_name);
  1291. break;
  1292. default:
  1293. RTW_ERR("Unknown type: %d\n", type);
  1294. return ret;
  1295. }
  1296. }
  1297. return ret;
  1298. }
  1299. static int rtw_cfgvendor_logger_get_firmware_memory_dump(struct wiphy *wiphy,
  1300. struct wireless_dev *wdev, const void *data, int len)
  1301. {
  1302. int ret = WIFI_ERROR_NOT_SUPPORTED;
  1303. return ret;
  1304. }
  1305. static int rtw_cfgvendor_logger_start_pkt_fate_monitoring(struct wiphy *wiphy,
  1306. struct wireless_dev *wdev, const void *data, int len)
  1307. {
  1308. int ret = WIFI_SUCCESS;
  1309. return ret;
  1310. }
  1311. static int rtw_cfgvendor_logger_get_tx_pkt_fates(struct wiphy *wiphy,
  1312. struct wireless_dev *wdev, const void *data, int len)
  1313. {
  1314. int ret = WIFI_SUCCESS;
  1315. return ret;
  1316. }
  1317. static int rtw_cfgvendor_logger_get_rx_pkt_fates(struct wiphy *wiphy,
  1318. struct wireless_dev *wdev, const void *data, int len)
  1319. {
  1320. int ret = WIFI_SUCCESS;
  1321. return ret;
  1322. }
  1323. #endif /* CONFIG_RTW_CFGVENDOR_WIFI_LOGGER */
  1324. #ifdef CONFIG_RTW_WIFI_HAL
  1325. #ifdef CONFIG_RTW_CFGVENDOR_RANDOM_MAC_OUI
  1326. #ifndef ETHER_ISMULTI
  1327. #define ETHER_ISMULTI(ea) (((const u8 *)(ea))[0] & 1)
  1328. #endif
  1329. static u8 null_addr[ETH_ALEN] = {0};
  1330. static void rtw_hal_random_gen_mac_addr(u8 *mac_addr)
  1331. {
  1332. do {
  1333. get_random_bytes(&mac_addr[3], ETH_ALEN-3);
  1334. if (memcmp(mac_addr, null_addr, ETH_ALEN) != 0)
  1335. break;
  1336. } while(1);
  1337. }
  1338. void rtw_hal_pno_random_gen_mac_addr(PADAPTER adapter)
  1339. {
  1340. u8 mac_addr[ETH_ALEN];
  1341. struct rtw_wdev_priv *pwdev_priv = adapter_wdev_data(adapter);
  1342. memcpy(mac_addr, pwdev_priv->pno_mac_addr, ETH_ALEN);
  1343. if (mac_addr[0] == 0xFF) return;
  1344. rtw_hal_random_gen_mac_addr(mac_addr);
  1345. memcpy(pwdev_priv->pno_mac_addr, mac_addr, ETH_ALEN);
  1346. #ifdef CONFIG_RTW_DEBUG
  1347. print_hex_dump(KERN_DEBUG, "pno_mac_addr: ",
  1348. DUMP_PREFIX_OFFSET, 16, 1, pwdev_priv->pno_mac_addr,
  1349. ETH_ALEN, 1);
  1350. #endif
  1351. }
  1352. void rtw_hal_set_hw_mac_addr(PADAPTER adapter, u8 *mac_addr)
  1353. {
  1354. rtw_ps_deny(adapter, PS_DENY_IOCTL);
  1355. LeaveAllPowerSaveModeDirect(adapter);
  1356. rtw_hal_set_hwreg(adapter, HW_VAR_MAC_ADDR, mac_addr);
  1357. #ifdef CONFIG_RTW_DEBUG
  1358. rtw_hal_dump_macaddr(RTW_DBGDUMP, adapter);
  1359. #endif
  1360. rtw_ps_deny_cancel(adapter, PS_DENY_IOCTL);
  1361. }
  1362. static int rtw_cfgvendor_set_rand_mac_oui(struct wiphy *wiphy,
  1363. struct wireless_dev *wdev, const void *data, int len)
  1364. {
  1365. int err = 0;
  1366. PADAPTER adapter;
  1367. void *devaddr;
  1368. struct net_device *netdev;
  1369. int type, mac_len;
  1370. u8 pno_random_mac_oui[3];
  1371. u8 mac_addr[ETH_ALEN] = {0};
  1372. struct pwrctrl_priv *pwrctl;
  1373. struct rtw_wdev_priv *pwdev_priv;
  1374. type = nla_type(data);
  1375. mac_len = nla_len(data);
  1376. if (mac_len != 3) {
  1377. RTW_ERR("%s oui len error %d != 3\n", __func__, mac_len);
  1378. return -1;
  1379. }
  1380. if (type == ANDR_WIFI_ATTRIBUTE_RANDOM_MAC_OUI) {
  1381. memcpy(pno_random_mac_oui, nla_data(data), 3);
  1382. print_hex_dump(KERN_DEBUG, "pno_random_mac_oui: ",
  1383. DUMP_PREFIX_OFFSET, 16, 1, pno_random_mac_oui,
  1384. 3, 1);
  1385. if (ETHER_ISMULTI(pno_random_mac_oui)) {
  1386. pr_err("%s: oui is multicast address\n", __func__);
  1387. return -1;
  1388. }
  1389. adapter = wiphy_to_adapter(wiphy);
  1390. if (adapter == NULL) {
  1391. pr_err("%s: wiphy_to_adapter == NULL\n", __func__);
  1392. return -1;
  1393. }
  1394. pwdev_priv = adapter_wdev_data(adapter);
  1395. memcpy(mac_addr, pno_random_mac_oui, 3);
  1396. rtw_hal_random_gen_mac_addr(mac_addr);
  1397. memcpy(pwdev_priv->pno_mac_addr, mac_addr, ETH_ALEN);
  1398. #ifdef CONFIG_RTW_DEBUG
  1399. print_hex_dump(KERN_DEBUG, "pno_mac_addr: ",
  1400. DUMP_PREFIX_OFFSET, 16, 1, pwdev_priv->pno_mac_addr,
  1401. ETH_ALEN, 1);
  1402. #endif
  1403. } else {
  1404. RTW_ERR("%s oui type error %x != 0x2\n", __func__, type);
  1405. err = -1;
  1406. }
  1407. return err;
  1408. }
  1409. #endif
  1410. static int rtw_cfgvendor_set_nodfs_flag(struct wiphy *wiphy,
  1411. struct wireless_dev *wdev, const void *data, int len)
  1412. {
  1413. int err = 0;
  1414. int type;
  1415. u32 nodfs = 0;
  1416. _adapter *padapter = GET_PRIMARY_ADAPTER(wiphy_to_adapter(wiphy));
  1417. RTW_DBG(FUNC_NDEV_FMT" %s\n", FUNC_NDEV_ARG(wdev_to_ndev(wdev)), (char*)data);
  1418. type = nla_type(data);
  1419. if (type == ANDR_WIFI_ATTRIBUTE_NODFS_SET) {
  1420. nodfs = nla_get_u32(data);
  1421. adapter_to_dvobj(padapter)->nodfs = nodfs;
  1422. } else {
  1423. err = -EINVAL;
  1424. }
  1425. RTW_INFO("%s nodfs=%d, err=%d\n", __func__, nodfs, err);
  1426. return err;
  1427. }
  1428. static int rtw_cfgvendor_set_country(struct wiphy *wiphy,
  1429. struct wireless_dev *wdev, const void *data, int len)
  1430. {
  1431. #define CNTRY_BUF_SZ 4 /* Country string is 3 bytes + NUL */
  1432. int err = 0, rem, type;
  1433. char country_code[CNTRY_BUF_SZ] = {0};
  1434. const struct nlattr *iter;
  1435. _adapter *padapter = GET_PRIMARY_ADAPTER(wiphy_to_adapter(wiphy));
  1436. RTW_DBG(FUNC_NDEV_FMT" %s\n", FUNC_NDEV_ARG(wdev_to_ndev(wdev)), (char*)data);
  1437. nla_for_each_attr(iter, data, len, rem) {
  1438. type = nla_type(iter);
  1439. switch (type) {
  1440. case ANDR_WIFI_ATTRIBUTE_COUNTRY:
  1441. _rtw_memcpy(country_code, nla_data(iter),
  1442. MIN(nla_len(iter), CNTRY_BUF_SZ));
  1443. break;
  1444. default:
  1445. RTW_ERR("Unknown type: %d\n", type);
  1446. return -EINVAL;
  1447. }
  1448. }
  1449. RTW_INFO("%s country_code:\"%c%c\" \n", __func__, country_code[0], country_code[1]);
  1450. rtw_set_country(padapter, country_code);
  1451. return err;
  1452. }
  1453. static int rtw_cfgvendor_set_nd_offload(struct wiphy *wiphy,
  1454. struct wireless_dev *wdev, const void *data, int len)
  1455. {
  1456. int err = 0;
  1457. int type;
  1458. u8 nd_en = 0;
  1459. _adapter *padapter = GET_PRIMARY_ADAPTER(wiphy_to_adapter(wiphy));
  1460. RTW_DBG(FUNC_NDEV_FMT" %s\n", FUNC_NDEV_ARG(wdev_to_ndev(wdev)), (char*)data);
  1461. type = nla_type(data);
  1462. if (type == ANDR_WIFI_ATTRIBUTE_ND_OFFLOAD_VALUE) {
  1463. nd_en = nla_get_u8(data);
  1464. /* ND has been enabled when wow is enabled */
  1465. } else {
  1466. err = -EINVAL;
  1467. }
  1468. RTW_INFO("%s nd_en=%d, err=%d\n", __func__, nd_en, err);
  1469. return err;
  1470. }
  1471. #endif /* CONFIG_RTW_WIFI_HAL */
  1472. static const struct wiphy_vendor_command rtw_vendor_cmds[] = {
  1473. #if defined(GSCAN_SUPPORT) && 0
  1474. {
  1475. {
  1476. .vendor_id = OUI_GOOGLE,
  1477. .subcmd = GSCAN_SUBCMD_GET_CAPABILITIES
  1478. },
  1479. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1480. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1481. .policy = VENDOR_CMD_RAW_DATA,
  1482. #endif
  1483. .doit = rtw_cfgvendor_gscan_get_capabilities
  1484. },
  1485. {
  1486. {
  1487. .vendor_id = OUI_GOOGLE,
  1488. .subcmd = GSCAN_SUBCMD_SET_CONFIG
  1489. },
  1490. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1491. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1492. .policy = VENDOR_CMD_RAW_DATA,
  1493. #endif
  1494. .doit = rtw_cfgvendor_set_scan_cfg
  1495. },
  1496. {
  1497. {
  1498. .vendor_id = OUI_GOOGLE,
  1499. .subcmd = GSCAN_SUBCMD_SET_SCAN_CONFIG
  1500. },
  1501. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1502. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1503. .policy = VENDOR_CMD_RAW_DATA,
  1504. #endif
  1505. .doit = rtw_cfgvendor_set_batch_scan_cfg
  1506. },
  1507. {
  1508. {
  1509. .vendor_id = OUI_GOOGLE,
  1510. .subcmd = GSCAN_SUBCMD_ENABLE_GSCAN
  1511. },
  1512. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1513. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1514. .policy = VENDOR_CMD_RAW_DATA,
  1515. #endif
  1516. .doit = rtw_cfgvendor_initiate_gscan
  1517. },
  1518. {
  1519. {
  1520. .vendor_id = OUI_GOOGLE,
  1521. .subcmd = GSCAN_SUBCMD_ENABLE_FULL_SCAN_RESULTS
  1522. },
  1523. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1524. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1525. .policy = VENDOR_CMD_RAW_DATA,
  1526. #endif
  1527. .doit = rtw_cfgvendor_enable_full_scan_result
  1528. },
  1529. {
  1530. {
  1531. .vendor_id = OUI_GOOGLE,
  1532. .subcmd = GSCAN_SUBCMD_SET_HOTLIST
  1533. },
  1534. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1535. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1536. .policy = VENDOR_CMD_RAW_DATA,
  1537. #endif
  1538. .doit = rtw_cfgvendor_hotlist_cfg
  1539. },
  1540. {
  1541. {
  1542. .vendor_id = OUI_GOOGLE,
  1543. .subcmd = GSCAN_SUBCMD_SET_SIGNIFICANT_CHANGE_CONFIG
  1544. },
  1545. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1546. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1547. .policy = VENDOR_CMD_RAW_DATA,
  1548. #endif
  1549. .doit = rtw_cfgvendor_significant_change_cfg
  1550. },
  1551. {
  1552. {
  1553. .vendor_id = OUI_GOOGLE,
  1554. .subcmd = GSCAN_SUBCMD_GET_SCAN_RESULTS
  1555. },
  1556. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1557. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1558. .policy = VENDOR_CMD_RAW_DATA,
  1559. #endif
  1560. .doit = rtw_cfgvendor_gscan_get_batch_results
  1561. },
  1562. {
  1563. {
  1564. .vendor_id = OUI_GOOGLE,
  1565. .subcmd = GSCAN_SUBCMD_GET_CHANNEL_LIST
  1566. },
  1567. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1568. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1569. .policy = VENDOR_CMD_RAW_DATA,
  1570. #endif
  1571. .doit = rtw_cfgvendor_gscan_get_channel_list
  1572. },
  1573. #endif /* GSCAN_SUPPORT */
  1574. #if defined(RTT_SUPPORT) && 0
  1575. {
  1576. {
  1577. .vendor_id = OUI_GOOGLE,
  1578. .subcmd = RTT_SUBCMD_SET_CONFIG
  1579. },
  1580. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1581. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1582. .policy = VENDOR_CMD_RAW_DATA,
  1583. #endif
  1584. .doit = rtw_cfgvendor_rtt_set_config
  1585. },
  1586. {
  1587. {
  1588. .vendor_id = OUI_GOOGLE,
  1589. .subcmd = RTT_SUBCMD_CANCEL_CONFIG
  1590. },
  1591. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1592. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1593. .policy = VENDOR_CMD_RAW_DATA,
  1594. #endif
  1595. .doit = rtw_cfgvendor_rtt_cancel_config
  1596. },
  1597. {
  1598. {
  1599. .vendor_id = OUI_GOOGLE,
  1600. .subcmd = RTT_SUBCMD_GETCAPABILITY
  1601. },
  1602. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1603. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1604. .policy = VENDOR_CMD_RAW_DATA,
  1605. #endif
  1606. .doit = rtw_cfgvendor_rtt_get_capability
  1607. },
  1608. #endif /* RTT_SUPPORT */
  1609. #ifdef CONFIG_RTW_CFGVEDNOR_LLSTATS
  1610. {
  1611. {
  1612. .vendor_id = OUI_GOOGLE,
  1613. .subcmd = LSTATS_SUBCMD_GET_INFO
  1614. },
  1615. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1616. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1617. .policy = VENDOR_CMD_RAW_DATA,
  1618. #endif
  1619. .doit = rtw_cfgvendor_lstats_get_info
  1620. },
  1621. {
  1622. {
  1623. .vendor_id = OUI_GOOGLE,
  1624. .subcmd = LSTATS_SUBCMD_SET_INFO
  1625. },
  1626. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1627. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1628. .policy = VENDOR_CMD_RAW_DATA,
  1629. #endif
  1630. .doit = rtw_cfgvendor_lstats_set_info
  1631. },
  1632. {
  1633. {
  1634. .vendor_id = OUI_GOOGLE,
  1635. .subcmd = LSTATS_SUBCMD_CLEAR_INFO
  1636. },
  1637. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1638. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1639. .policy = VENDOR_CMD_RAW_DATA,
  1640. #endif
  1641. .doit = rtw_cfgvendor_lstats_clear_info
  1642. },
  1643. #endif /* CONFIG_RTW_CFGVEDNOR_LLSTATS */
  1644. #ifdef CONFIG_RTW_CFGVEDNOR_RSSIMONITOR
  1645. {
  1646. {
  1647. .vendor_id = OUI_GOOGLE,
  1648. .subcmd = WIFI_SUBCMD_SET_RSSI_MONITOR
  1649. },
  1650. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1651. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1652. .policy = VENDOR_CMD_RAW_DATA,
  1653. #endif
  1654. .doit = rtw_cfgvendor_set_rssi_monitor
  1655. },
  1656. #endif /* CONFIG_RTW_CFGVEDNOR_RSSIMONITOR */
  1657. #ifdef CONFIG_RTW_CFGVENDOR_WIFI_LOGGER
  1658. {
  1659. {
  1660. .vendor_id = OUI_GOOGLE,
  1661. .subcmd = LOGGER_START_LOGGING
  1662. },
  1663. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1664. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1665. .policy = VENDOR_CMD_RAW_DATA,
  1666. #endif
  1667. .doit = rtw_cfgvendor_logger_start_logging
  1668. },
  1669. {
  1670. {
  1671. .vendor_id = OUI_GOOGLE,
  1672. .subcmd = LOGGER_GET_FEATURE
  1673. },
  1674. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1675. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1676. .policy = VENDOR_CMD_RAW_DATA,
  1677. #endif
  1678. .doit = rtw_cfgvendor_logger_get_feature
  1679. },
  1680. {
  1681. {
  1682. .vendor_id = OUI_GOOGLE,
  1683. .subcmd = LOGGER_GET_VER
  1684. },
  1685. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1686. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1687. .policy = VENDOR_CMD_RAW_DATA,
  1688. #endif
  1689. .doit = rtw_cfgvendor_logger_get_version
  1690. },
  1691. {
  1692. {
  1693. .vendor_id = OUI_GOOGLE,
  1694. .subcmd = LOGGER_GET_RING_STATUS
  1695. },
  1696. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1697. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1698. .policy = VENDOR_CMD_RAW_DATA,
  1699. #endif
  1700. .doit = rtw_cfgvendor_logger_get_ring_status
  1701. },
  1702. {
  1703. {
  1704. .vendor_id = OUI_GOOGLE,
  1705. .subcmd = LOGGER_GET_RING_DATA
  1706. },
  1707. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1708. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1709. .policy = VENDOR_CMD_RAW_DATA,
  1710. #endif
  1711. .doit = rtw_cfgvendor_logger_get_ring_data
  1712. },
  1713. {
  1714. {
  1715. .vendor_id = OUI_GOOGLE,
  1716. .subcmd = LOGGER_TRIGGER_MEM_DUMP
  1717. },
  1718. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1719. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1720. .policy = VENDOR_CMD_RAW_DATA,
  1721. #endif
  1722. .doit = rtw_cfgvendor_logger_get_firmware_memory_dump
  1723. },
  1724. {
  1725. {
  1726. .vendor_id = OUI_GOOGLE,
  1727. .subcmd = LOGGER_START_PKT_FATE_MONITORING
  1728. },
  1729. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1730. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1731. .policy = VENDOR_CMD_RAW_DATA,
  1732. #endif
  1733. .doit = rtw_cfgvendor_logger_start_pkt_fate_monitoring
  1734. },
  1735. {
  1736. {
  1737. .vendor_id = OUI_GOOGLE,
  1738. .subcmd = LOGGER_GET_TX_PKT_FATES
  1739. },
  1740. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1741. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1742. .policy = VENDOR_CMD_RAW_DATA,
  1743. #endif
  1744. .doit = rtw_cfgvendor_logger_get_tx_pkt_fates
  1745. },
  1746. {
  1747. {
  1748. .vendor_id = OUI_GOOGLE,
  1749. .subcmd = LOGGER_GET_RX_PKT_FATES
  1750. },
  1751. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1752. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1753. .policy = VENDOR_CMD_RAW_DATA,
  1754. #endif
  1755. .doit = rtw_cfgvendor_logger_get_rx_pkt_fates
  1756. },
  1757. #endif /* CONFIG_RTW_CFGVENDOR_WIFI_LOGGER */
  1758. #ifdef CONFIG_RTW_WIFI_HAL
  1759. #ifdef CONFIG_RTW_CFGVENDOR_RANDOM_MAC_OUI
  1760. {
  1761. {
  1762. .vendor_id = OUI_GOOGLE,
  1763. .subcmd = WIFI_SUBCMD_SET_PNO_RANDOM_MAC_OUI
  1764. },
  1765. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1766. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1767. .policy = VENDOR_CMD_RAW_DATA,
  1768. #endif
  1769. .doit = rtw_cfgvendor_set_rand_mac_oui
  1770. },
  1771. #endif
  1772. {
  1773. {
  1774. .vendor_id = OUI_GOOGLE,
  1775. .subcmd = WIFI_SUBCMD_NODFS_SET
  1776. },
  1777. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1778. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1779. .policy = VENDOR_CMD_RAW_DATA,
  1780. #endif
  1781. .doit = rtw_cfgvendor_set_nodfs_flag
  1782. },
  1783. {
  1784. {
  1785. .vendor_id = OUI_GOOGLE,
  1786. .subcmd = WIFI_SUBCMD_SET_COUNTRY_CODE
  1787. },
  1788. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1789. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1790. .policy = VENDOR_CMD_RAW_DATA,
  1791. #endif
  1792. .doit = rtw_cfgvendor_set_country
  1793. },
  1794. {
  1795. {
  1796. .vendor_id = OUI_GOOGLE,
  1797. .subcmd = WIFI_SUBCMD_CONFIG_ND_OFFLOAD
  1798. },
  1799. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1800. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1801. .policy = VENDOR_CMD_RAW_DATA,
  1802. #endif
  1803. .doit = rtw_cfgvendor_set_nd_offload
  1804. },
  1805. #endif /* CONFIG_RTW_WIFI_HAL */
  1806. {
  1807. {
  1808. .vendor_id = OUI_GOOGLE,
  1809. .subcmd = WIFI_SUBCMD_GET_FEATURE_SET
  1810. },
  1811. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1812. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1813. .policy = VENDOR_CMD_RAW_DATA,
  1814. #endif
  1815. .doit = rtw_cfgvendor_get_feature_set
  1816. },
  1817. {
  1818. {
  1819. .vendor_id = OUI_GOOGLE,
  1820. .subcmd = WIFI_SUBCMD_GET_FEATURE_SET_MATRIX
  1821. },
  1822. .flags = WIPHY_VENDOR_CMD_NEED_WDEV | WIPHY_VENDOR_CMD_NEED_NETDEV,
  1823. #if LINUX_VERSION_CODE >= KERNEL_VERSION(5,3,0)
  1824. .policy = VENDOR_CMD_RAW_DATA,
  1825. #endif
  1826. .doit = rtw_cfgvendor_get_feature_set_matrix
  1827. }
  1828. };
  1829. static const struct nl80211_vendor_cmd_info rtw_vendor_events[] = {
  1830. #if defined(GSCAN_SUPPORT) && 0
  1831. { OUI_GOOGLE, GSCAN_EVENT_SIGNIFICANT_CHANGE_RESULTS },
  1832. { OUI_GOOGLE, GSCAN_EVENT_HOTLIST_RESULTS_FOUND },
  1833. { OUI_GOOGLE, GSCAN_EVENT_SCAN_RESULTS_AVAILABLE },
  1834. { OUI_GOOGLE, GSCAN_EVENT_FULL_SCAN_RESULTS },
  1835. #endif /* GSCAN_SUPPORT */
  1836. #if defined(RTT_SUPPORT) && 0
  1837. { OUI_GOOGLE, RTT_EVENT_COMPLETE },
  1838. #endif /* RTT_SUPPORT */
  1839. #ifdef CONFIG_RTW_CFGVEDNOR_RSSIMONITOR
  1840. { OUI_GOOGLE, GOOGLE_RSSI_MONITOR_EVENT },
  1841. #endif /* RTW_CFGVEDNOR_RSSIMONITR */
  1842. #if defined(GSCAN_SUPPORT) && 0
  1843. { OUI_GOOGLE, GSCAN_EVENT_COMPLETE_SCAN },
  1844. { OUI_GOOGLE, GSCAN_EVENT_HOTLIST_RESULTS_LOST }
  1845. #endif /* GSCAN_SUPPORT */
  1846. };
  1847. int rtw_cfgvendor_attach(struct wiphy *wiphy)
  1848. {
  1849. RTW_INFO("Register RTW cfg80211 vendor cmd(0x%x) interface\n", NL80211_CMD_VENDOR);
  1850. wiphy->vendor_commands = rtw_vendor_cmds;
  1851. wiphy->n_vendor_commands = ARRAY_SIZE(rtw_vendor_cmds);
  1852. wiphy->vendor_events = rtw_vendor_events;
  1853. wiphy->n_vendor_events = ARRAY_SIZE(rtw_vendor_events);
  1854. return 0;
  1855. }
  1856. int rtw_cfgvendor_detach(struct wiphy *wiphy)
  1857. {
  1858. RTW_INFO("Vendor: Unregister RTW cfg80211 vendor interface\n");
  1859. wiphy->vendor_commands = NULL;
  1860. wiphy->vendor_events = NULL;
  1861. wiphy->n_vendor_commands = 0;
  1862. wiphy->n_vendor_events = 0;
  1863. return 0;
  1864. }
  1865. #endif /* (LINUX_VERSION_CODE >= KERNEL_VERSION(3, 14, 0)) || defined(RTW_VENDOR_EXT_SUPPORT) */
  1866. #endif /* CONFIG_IOCTL_CFG80211 */