wmi.c 69 KB

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  1. /*
  2. * Copyright (c) 2004-2011 Atheros Communications Inc.
  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
  11. * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
  12. * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
  13. * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
  14. * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
  15. */
  16. #include <linux/ip.h>
  17. #include "core.h"
  18. #include "debug.h"
  19. static int ath6kl_wmi_sync_point(struct wmi *wmi);
  20. static const s32 wmi_rate_tbl[][2] = {
  21. /* {W/O SGI, with SGI} */
  22. {1000, 1000},
  23. {2000, 2000},
  24. {5500, 5500},
  25. {11000, 11000},
  26. {6000, 6000},
  27. {9000, 9000},
  28. {12000, 12000},
  29. {18000, 18000},
  30. {24000, 24000},
  31. {36000, 36000},
  32. {48000, 48000},
  33. {54000, 54000},
  34. {6500, 7200},
  35. {13000, 14400},
  36. {19500, 21700},
  37. {26000, 28900},
  38. {39000, 43300},
  39. {52000, 57800},
  40. {58500, 65000},
  41. {65000, 72200},
  42. {13500, 15000},
  43. {27000, 30000},
  44. {40500, 45000},
  45. {54000, 60000},
  46. {81000, 90000},
  47. {108000, 120000},
  48. {121500, 135000},
  49. {135000, 150000},
  50. {0, 0}
  51. };
  52. /* 802.1d to AC mapping. Refer pg 57 of WMM-test-plan-v1.2 */
  53. static const u8 up_to_ac[] = {
  54. WMM_AC_BE,
  55. WMM_AC_BK,
  56. WMM_AC_BK,
  57. WMM_AC_BE,
  58. WMM_AC_VI,
  59. WMM_AC_VI,
  60. WMM_AC_VO,
  61. WMM_AC_VO,
  62. };
  63. void ath6kl_wmi_set_control_ep(struct wmi *wmi, enum htc_endpoint_id ep_id)
  64. {
  65. if (WARN_ON(ep_id == ENDPOINT_UNUSED || ep_id >= ENDPOINT_MAX))
  66. return;
  67. wmi->ep_id = ep_id;
  68. }
  69. enum htc_endpoint_id ath6kl_wmi_get_control_ep(struct wmi *wmi)
  70. {
  71. return wmi->ep_id;
  72. }
  73. /* Performs DIX to 802.3 encapsulation for transmit packets.
  74. * Assumes the entire DIX header is contigous and that there is
  75. * enough room in the buffer for a 802.3 mac header and LLC+SNAP headers.
  76. */
  77. int ath6kl_wmi_dix_2_dot3(struct wmi *wmi, struct sk_buff *skb)
  78. {
  79. struct ath6kl_llc_snap_hdr *llc_hdr;
  80. struct ethhdr *eth_hdr;
  81. size_t new_len;
  82. __be16 type;
  83. u8 *datap;
  84. u16 size;
  85. if (WARN_ON(skb == NULL))
  86. return -EINVAL;
  87. size = sizeof(struct ath6kl_llc_snap_hdr) + sizeof(struct wmi_data_hdr);
  88. if (skb_headroom(skb) < size)
  89. return -ENOMEM;
  90. eth_hdr = (struct ethhdr *) skb->data;
  91. type = eth_hdr->h_proto;
  92. if (!is_ethertype(be16_to_cpu(type))) {
  93. ath6kl_dbg(ATH6KL_DBG_WMI,
  94. "%s: pkt is already in 802.3 format\n", __func__);
  95. return 0;
  96. }
  97. new_len = skb->len - sizeof(*eth_hdr) + sizeof(*llc_hdr);
  98. skb_push(skb, sizeof(struct ath6kl_llc_snap_hdr));
  99. datap = skb->data;
  100. eth_hdr->h_proto = cpu_to_be16(new_len);
  101. memcpy(datap, eth_hdr, sizeof(*eth_hdr));
  102. llc_hdr = (struct ath6kl_llc_snap_hdr *)(datap + sizeof(*eth_hdr));
  103. llc_hdr->dsap = 0xAA;
  104. llc_hdr->ssap = 0xAA;
  105. llc_hdr->cntl = 0x03;
  106. llc_hdr->org_code[0] = 0x0;
  107. llc_hdr->org_code[1] = 0x0;
  108. llc_hdr->org_code[2] = 0x0;
  109. llc_hdr->eth_type = type;
  110. return 0;
  111. }
  112. static int ath6kl_wmi_meta_add(struct wmi *wmi, struct sk_buff *skb,
  113. u8 *version, void *tx_meta_info)
  114. {
  115. struct wmi_tx_meta_v1 *v1;
  116. struct wmi_tx_meta_v2 *v2;
  117. if (WARN_ON(skb == NULL || version == NULL))
  118. return -EINVAL;
  119. switch (*version) {
  120. case WMI_META_VERSION_1:
  121. skb_push(skb, WMI_MAX_TX_META_SZ);
  122. v1 = (struct wmi_tx_meta_v1 *) skb->data;
  123. v1->pkt_id = 0;
  124. v1->rate_plcy_id = 0;
  125. *version = WMI_META_VERSION_1;
  126. break;
  127. case WMI_META_VERSION_2:
  128. skb_push(skb, WMI_MAX_TX_META_SZ);
  129. v2 = (struct wmi_tx_meta_v2 *) skb->data;
  130. memcpy(v2, (struct wmi_tx_meta_v2 *) tx_meta_info,
  131. sizeof(struct wmi_tx_meta_v2));
  132. break;
  133. }
  134. return 0;
  135. }
  136. int ath6kl_wmi_data_hdr_add(struct wmi *wmi, struct sk_buff *skb,
  137. u8 msg_type, bool more_data,
  138. enum wmi_data_hdr_data_type data_type,
  139. u8 meta_ver, void *tx_meta_info)
  140. {
  141. struct wmi_data_hdr *data_hdr;
  142. int ret;
  143. if (WARN_ON(skb == NULL))
  144. return -EINVAL;
  145. ret = ath6kl_wmi_meta_add(wmi, skb, &meta_ver, tx_meta_info);
  146. if (ret)
  147. return ret;
  148. skb_push(skb, sizeof(struct wmi_data_hdr));
  149. data_hdr = (struct wmi_data_hdr *)skb->data;
  150. memset(data_hdr, 0, sizeof(struct wmi_data_hdr));
  151. data_hdr->info = msg_type << WMI_DATA_HDR_MSG_TYPE_SHIFT;
  152. data_hdr->info |= data_type << WMI_DATA_HDR_DATA_TYPE_SHIFT;
  153. if (more_data)
  154. data_hdr->info |=
  155. WMI_DATA_HDR_MORE_MASK << WMI_DATA_HDR_MORE_SHIFT;
  156. data_hdr->info2 = cpu_to_le16(meta_ver << WMI_DATA_HDR_META_SHIFT);
  157. data_hdr->info3 = 0;
  158. return 0;
  159. }
  160. static u8 ath6kl_wmi_determine_user_priority(u8 *pkt, u32 layer2_pri)
  161. {
  162. struct iphdr *ip_hdr = (struct iphdr *) pkt;
  163. u8 ip_pri;
  164. /*
  165. * Determine IPTOS priority
  166. *
  167. * IP-TOS - 8bits
  168. * : DSCP(6-bits) ECN(2-bits)
  169. * : DSCP - P2 P1 P0 X X X
  170. * where (P2 P1 P0) form 802.1D
  171. */
  172. ip_pri = ip_hdr->tos >> 5;
  173. ip_pri &= 0x7;
  174. if ((layer2_pri & 0x7) > ip_pri)
  175. return (u8) layer2_pri & 0x7;
  176. else
  177. return ip_pri;
  178. }
  179. int ath6kl_wmi_implicit_create_pstream(struct wmi *wmi, struct sk_buff *skb,
  180. u32 layer2_priority, bool wmm_enabled,
  181. u8 *ac)
  182. {
  183. struct wmi_data_hdr *data_hdr;
  184. struct ath6kl_llc_snap_hdr *llc_hdr;
  185. struct wmi_create_pstream_cmd cmd;
  186. u32 meta_size, hdr_size;
  187. u16 ip_type = IP_ETHERTYPE;
  188. u8 stream_exist, usr_pri;
  189. u8 traffic_class = WMM_AC_BE;
  190. u8 *datap;
  191. if (WARN_ON(skb == NULL))
  192. return -EINVAL;
  193. datap = skb->data;
  194. data_hdr = (struct wmi_data_hdr *) datap;
  195. meta_size = ((le16_to_cpu(data_hdr->info2) >> WMI_DATA_HDR_META_SHIFT) &
  196. WMI_DATA_HDR_META_MASK) ? WMI_MAX_TX_META_SZ : 0;
  197. if (!wmm_enabled) {
  198. /* If WMM is disabled all traffic goes as BE traffic */
  199. usr_pri = 0;
  200. } else {
  201. hdr_size = sizeof(struct ethhdr);
  202. llc_hdr = (struct ath6kl_llc_snap_hdr *)(datap +
  203. sizeof(struct
  204. wmi_data_hdr) +
  205. meta_size + hdr_size);
  206. if (llc_hdr->eth_type == htons(ip_type)) {
  207. /*
  208. * Extract the endpoint info from the TOS field
  209. * in the IP header.
  210. */
  211. usr_pri =
  212. ath6kl_wmi_determine_user_priority(((u8 *) llc_hdr) +
  213. sizeof(struct ath6kl_llc_snap_hdr),
  214. layer2_priority);
  215. } else
  216. usr_pri = layer2_priority & 0x7;
  217. }
  218. /* workaround for WMM S5 */
  219. if ((wmi->traffic_class == WMM_AC_VI) &&
  220. ((usr_pri == 5) || (usr_pri == 4)))
  221. usr_pri = 1;
  222. /* Convert user priority to traffic class */
  223. traffic_class = up_to_ac[usr_pri & 0x7];
  224. wmi_data_hdr_set_up(data_hdr, usr_pri);
  225. spin_lock_bh(&wmi->lock);
  226. stream_exist = wmi->fat_pipe_exist;
  227. spin_unlock_bh(&wmi->lock);
  228. if (!(stream_exist & (1 << traffic_class))) {
  229. memset(&cmd, 0, sizeof(cmd));
  230. cmd.traffic_class = traffic_class;
  231. cmd.user_pri = usr_pri;
  232. cmd.inactivity_int =
  233. cpu_to_le32(WMI_IMPLICIT_PSTREAM_INACTIVITY_INT);
  234. /* Implicit streams are created with TSID 0xFF */
  235. cmd.tsid = WMI_IMPLICIT_PSTREAM;
  236. ath6kl_wmi_create_pstream_cmd(wmi, &cmd);
  237. }
  238. *ac = traffic_class;
  239. return 0;
  240. }
  241. int ath6kl_wmi_dot11_hdr_remove(struct wmi *wmi, struct sk_buff *skb)
  242. {
  243. struct ieee80211_hdr_3addr *pwh, wh;
  244. struct ath6kl_llc_snap_hdr *llc_hdr;
  245. struct ethhdr eth_hdr;
  246. u32 hdr_size;
  247. u8 *datap;
  248. __le16 sub_type;
  249. if (WARN_ON(skb == NULL))
  250. return -EINVAL;
  251. datap = skb->data;
  252. pwh = (struct ieee80211_hdr_3addr *) datap;
  253. sub_type = pwh->frame_control & cpu_to_le16(IEEE80211_FCTL_STYPE);
  254. memcpy((u8 *) &wh, datap, sizeof(struct ieee80211_hdr_3addr));
  255. /* Strip off the 802.11 header */
  256. if (sub_type == cpu_to_le16(IEEE80211_STYPE_QOS_DATA)) {
  257. hdr_size = roundup(sizeof(struct ieee80211_qos_hdr),
  258. sizeof(u32));
  259. skb_pull(skb, hdr_size);
  260. } else if (sub_type == cpu_to_le16(IEEE80211_STYPE_DATA))
  261. skb_pull(skb, sizeof(struct ieee80211_hdr_3addr));
  262. datap = skb->data;
  263. llc_hdr = (struct ath6kl_llc_snap_hdr *)(datap);
  264. memset(&eth_hdr, 0, sizeof(eth_hdr));
  265. eth_hdr.h_proto = llc_hdr->eth_type;
  266. switch ((le16_to_cpu(wh.frame_control)) &
  267. (IEEE80211_FCTL_FROMDS | IEEE80211_FCTL_TODS)) {
  268. case 0:
  269. memcpy(eth_hdr.h_dest, wh.addr1, ETH_ALEN);
  270. memcpy(eth_hdr.h_source, wh.addr2, ETH_ALEN);
  271. break;
  272. case IEEE80211_FCTL_TODS:
  273. memcpy(eth_hdr.h_dest, wh.addr3, ETH_ALEN);
  274. memcpy(eth_hdr.h_source, wh.addr2, ETH_ALEN);
  275. break;
  276. case IEEE80211_FCTL_FROMDS:
  277. memcpy(eth_hdr.h_dest, wh.addr1, ETH_ALEN);
  278. memcpy(eth_hdr.h_source, wh.addr3, ETH_ALEN);
  279. break;
  280. case IEEE80211_FCTL_FROMDS | IEEE80211_FCTL_TODS:
  281. break;
  282. }
  283. skb_pull(skb, sizeof(struct ath6kl_llc_snap_hdr));
  284. skb_push(skb, sizeof(eth_hdr));
  285. datap = skb->data;
  286. memcpy(datap, &eth_hdr, sizeof(eth_hdr));
  287. return 0;
  288. }
  289. /*
  290. * Performs 802.3 to DIX encapsulation for received packets.
  291. * Assumes the entire 802.3 header is contigous.
  292. */
  293. int ath6kl_wmi_dot3_2_dix(struct sk_buff *skb)
  294. {
  295. struct ath6kl_llc_snap_hdr *llc_hdr;
  296. struct ethhdr eth_hdr;
  297. u8 *datap;
  298. if (WARN_ON(skb == NULL))
  299. return -EINVAL;
  300. datap = skb->data;
  301. memcpy(&eth_hdr, datap, sizeof(eth_hdr));
  302. llc_hdr = (struct ath6kl_llc_snap_hdr *) (datap + sizeof(eth_hdr));
  303. eth_hdr.h_proto = llc_hdr->eth_type;
  304. skb_pull(skb, sizeof(struct ath6kl_llc_snap_hdr));
  305. datap = skb->data;
  306. memcpy(datap, &eth_hdr, sizeof(eth_hdr));
  307. return 0;
  308. }
  309. int ath6kl_wmi_data_hdr_remove(struct wmi *wmi, struct sk_buff *skb)
  310. {
  311. if (WARN_ON(skb == NULL))
  312. return -EINVAL;
  313. skb_pull(skb, sizeof(struct wmi_data_hdr));
  314. return 0;
  315. }
  316. void ath6kl_wmi_iterate_nodes(struct wmi *wmi,
  317. void (*f) (void *arg, struct bss *),
  318. void *arg)
  319. {
  320. wlan_iterate_nodes(&wmi->parent_dev->scan_table, f, arg);
  321. }
  322. static void ath6kl_wmi_convert_bssinfo_hdr2_to_hdr(struct sk_buff *skb,
  323. u8 *datap)
  324. {
  325. struct wmi_bss_info_hdr2 bih2;
  326. struct wmi_bss_info_hdr *bih;
  327. memcpy(&bih2, datap, sizeof(struct wmi_bss_info_hdr2));
  328. skb_push(skb, 4);
  329. bih = (struct wmi_bss_info_hdr *) skb->data;
  330. bih->ch = bih2.ch;
  331. bih->frame_type = bih2.frame_type;
  332. bih->snr = bih2.snr;
  333. bih->rssi = a_cpu_to_sle16(bih2.snr - 95);
  334. bih->ie_mask = cpu_to_le32(le16_to_cpu(bih2.ie_mask));
  335. memcpy(bih->bssid, bih2.bssid, ETH_ALEN);
  336. }
  337. static int ath6kl_wmi_tx_complete_event_rx(u8 *datap, int len)
  338. {
  339. struct tx_complete_msg_v1 *msg_v1;
  340. struct wmi_tx_complete_event *evt;
  341. int index;
  342. u16 size;
  343. evt = (struct wmi_tx_complete_event *) datap;
  344. ath6kl_dbg(ATH6KL_DBG_WMI, "comp: %d %d %d\n",
  345. evt->num_msg, evt->msg_len, evt->msg_type);
  346. if (!AR_DBG_LVL_CHECK(ATH6KL_DBG_WMI))
  347. return 0;
  348. for (index = 0; index < evt->num_msg; index++) {
  349. size = sizeof(struct wmi_tx_complete_event) +
  350. (index * sizeof(struct tx_complete_msg_v1));
  351. msg_v1 = (struct tx_complete_msg_v1 *)(datap + size);
  352. ath6kl_dbg(ATH6KL_DBG_WMI, "msg: %d %d %d %d\n",
  353. msg_v1->status, msg_v1->pkt_id,
  354. msg_v1->rate_idx, msg_v1->ack_failures);
  355. }
  356. return 0;
  357. }
  358. static inline struct sk_buff *ath6kl_wmi_get_new_buf(u32 size)
  359. {
  360. struct sk_buff *skb;
  361. skb = ath6kl_buf_alloc(size);
  362. if (!skb)
  363. return NULL;
  364. skb_put(skb, size);
  365. if (size)
  366. memset(skb->data, 0, size);
  367. return skb;
  368. }
  369. /* Send a "simple" wmi command -- one with no arguments */
  370. static int ath6kl_wmi_simple_cmd(struct wmi *wmi, enum wmi_cmd_id cmd_id)
  371. {
  372. struct sk_buff *skb;
  373. int ret;
  374. skb = ath6kl_wmi_get_new_buf(0);
  375. if (!skb)
  376. return -ENOMEM;
  377. ret = ath6kl_wmi_cmd_send(wmi, skb, cmd_id, NO_SYNC_WMIFLAG);
  378. return ret;
  379. }
  380. static int ath6kl_wmi_ready_event_rx(struct wmi *wmi, u8 *datap, int len)
  381. {
  382. struct wmi_ready_event_2 *ev = (struct wmi_ready_event_2 *) datap;
  383. if (len < sizeof(struct wmi_ready_event_2))
  384. return -EINVAL;
  385. wmi->ready = true;
  386. ath6kl_ready_event(wmi->parent_dev, ev->mac_addr,
  387. le32_to_cpu(ev->sw_version),
  388. le32_to_cpu(ev->abi_version));
  389. return 0;
  390. }
  391. static int ath6kl_wmi_connect_event_rx(struct wmi *wmi, u8 *datap, int len)
  392. {
  393. struct wmi_connect_event *ev;
  394. u8 *pie, *peie;
  395. if (len < sizeof(struct wmi_connect_event))
  396. return -EINVAL;
  397. ev = (struct wmi_connect_event *) datap;
  398. ath6kl_dbg(ATH6KL_DBG_WMI, "%s: freq %d bssid %pM\n",
  399. __func__, ev->ch, ev->bssid);
  400. memcpy(wmi->bssid, ev->bssid, ETH_ALEN);
  401. /* Start of assoc rsp IEs */
  402. pie = ev->assoc_info + ev->beacon_ie_len +
  403. ev->assoc_req_len + (sizeof(u16) * 3); /* capinfo, status, aid */
  404. /* End of assoc rsp IEs */
  405. peie = ev->assoc_info + ev->beacon_ie_len + ev->assoc_req_len +
  406. ev->assoc_resp_len;
  407. while (pie < peie) {
  408. switch (*pie) {
  409. case WLAN_EID_VENDOR_SPECIFIC:
  410. if (pie[1] > 3 && pie[2] == 0x00 && pie[3] == 0x50 &&
  411. pie[4] == 0xf2 && pie[5] == WMM_OUI_TYPE) {
  412. /* WMM OUT (00:50:F2) */
  413. if (pie[1] > 5
  414. && pie[6] == WMM_PARAM_OUI_SUBTYPE)
  415. wmi->is_wmm_enabled = true;
  416. }
  417. break;
  418. }
  419. if (wmi->is_wmm_enabled)
  420. break;
  421. pie += pie[1] + 2;
  422. }
  423. ath6kl_connect_event(wmi->parent_dev, le16_to_cpu(ev->ch), ev->bssid,
  424. le16_to_cpu(ev->listen_intvl),
  425. le16_to_cpu(ev->beacon_intvl),
  426. le32_to_cpu(ev->nw_type),
  427. ev->beacon_ie_len, ev->assoc_req_len,
  428. ev->assoc_resp_len, ev->assoc_info);
  429. return 0;
  430. }
  431. static int ath6kl_wmi_disconnect_event_rx(struct wmi *wmi, u8 *datap, int len)
  432. {
  433. struct wmi_disconnect_event *ev;
  434. wmi->traffic_class = 100;
  435. if (len < sizeof(struct wmi_disconnect_event))
  436. return -EINVAL;
  437. ev = (struct wmi_disconnect_event *) datap;
  438. memset(wmi->bssid, 0, sizeof(wmi->bssid));
  439. wmi->is_wmm_enabled = false;
  440. wmi->pair_crypto_type = NONE_CRYPT;
  441. wmi->grp_crypto_type = NONE_CRYPT;
  442. ath6kl_disconnect_event(wmi->parent_dev, ev->disconn_reason,
  443. ev->bssid, ev->assoc_resp_len, ev->assoc_info,
  444. le16_to_cpu(ev->proto_reason_status));
  445. return 0;
  446. }
  447. static int ath6kl_wmi_peer_node_event_rx(struct wmi *wmi, u8 *datap, int len)
  448. {
  449. struct wmi_peer_node_event *ev;
  450. if (len < sizeof(struct wmi_peer_node_event))
  451. return -EINVAL;
  452. ev = (struct wmi_peer_node_event *) datap;
  453. if (ev->event_code == PEER_NODE_JOIN_EVENT)
  454. ath6kl_dbg(ATH6KL_DBG_WMI, "joined node with mac addr: %pM\n",
  455. ev->peer_mac_addr);
  456. else if (ev->event_code == PEER_NODE_LEAVE_EVENT)
  457. ath6kl_dbg(ATH6KL_DBG_WMI, "left node with mac addr: %pM\n",
  458. ev->peer_mac_addr);
  459. return 0;
  460. }
  461. static int ath6kl_wmi_tkip_micerr_event_rx(struct wmi *wmi, u8 *datap, int len)
  462. {
  463. struct wmi_tkip_micerr_event *ev;
  464. if (len < sizeof(struct wmi_tkip_micerr_event))
  465. return -EINVAL;
  466. ev = (struct wmi_tkip_micerr_event *) datap;
  467. ath6kl_tkip_micerr_event(wmi->parent_dev, ev->key_id, ev->is_mcast);
  468. return 0;
  469. }
  470. static int ath6kl_wlan_parse_beacon(u8 *buf, int frame_len,
  471. struct ath6kl_common_ie *cie)
  472. {
  473. u8 *frm, *efrm;
  474. u8 elemid_ssid = false;
  475. frm = buf;
  476. efrm = (u8 *) (frm + frame_len);
  477. /*
  478. * beacon/probe response frame format
  479. * [8] time stamp
  480. * [2] beacon interval
  481. * [2] capability information
  482. * [tlv] ssid
  483. * [tlv] supported rates
  484. * [tlv] country information
  485. * [tlv] parameter set (FH/DS)
  486. * [tlv] erp information
  487. * [tlv] extended supported rates
  488. * [tlv] WMM
  489. * [tlv] WPA or RSN
  490. * [tlv] Atheros Advanced Capabilities
  491. */
  492. if ((efrm - frm) < 12)
  493. return -EINVAL;
  494. memset(cie, 0, sizeof(*cie));
  495. cie->ie_tstamp = frm;
  496. frm += 8;
  497. cie->ie_beaconInt = *(u16 *) frm;
  498. frm += 2;
  499. cie->ie_capInfo = *(u16 *) frm;
  500. frm += 2;
  501. cie->ie_chan = 0;
  502. while (frm < efrm) {
  503. switch (*frm) {
  504. case WLAN_EID_SSID:
  505. if (!elemid_ssid) {
  506. cie->ie_ssid = frm;
  507. elemid_ssid = true;
  508. }
  509. break;
  510. case WLAN_EID_SUPP_RATES:
  511. cie->ie_rates = frm;
  512. break;
  513. case WLAN_EID_COUNTRY:
  514. cie->ie_country = frm;
  515. break;
  516. case WLAN_EID_FH_PARAMS:
  517. break;
  518. case WLAN_EID_DS_PARAMS:
  519. cie->ie_chan = frm[2];
  520. break;
  521. case WLAN_EID_TIM:
  522. cie->ie_tim = frm;
  523. break;
  524. case WLAN_EID_IBSS_PARAMS:
  525. break;
  526. case WLAN_EID_EXT_SUPP_RATES:
  527. cie->ie_xrates = frm;
  528. break;
  529. case WLAN_EID_ERP_INFO:
  530. if (frm[1] != 1)
  531. return -EINVAL;
  532. cie->ie_erp = frm[2];
  533. break;
  534. case WLAN_EID_RSN:
  535. cie->ie_rsn = frm;
  536. break;
  537. case WLAN_EID_HT_CAPABILITY:
  538. cie->ie_htcap = frm;
  539. break;
  540. case WLAN_EID_HT_INFORMATION:
  541. cie->ie_htop = frm;
  542. break;
  543. case WLAN_EID_VENDOR_SPECIFIC:
  544. if (frm[1] > 3 && frm[2] == 0x00 && frm[3] == 0x50 &&
  545. frm[4] == 0xf2) {
  546. /* OUT Type (00:50:F2) */
  547. if (frm[5] == WPA_OUI_TYPE) {
  548. /* WPA OUT */
  549. cie->ie_wpa = frm;
  550. } else if (frm[5] == WMM_OUI_TYPE) {
  551. /* WMM OUT */
  552. cie->ie_wmm = frm;
  553. } else if (frm[5] == WSC_OUT_TYPE) {
  554. /* WSC OUT */
  555. cie->ie_wsc = frm;
  556. }
  557. } else if (frm[1] > 3 && frm[2] == 0x00
  558. && frm[3] == 0x03 && frm[4] == 0x7f
  559. && frm[5] == ATH_OUI_TYPE) {
  560. /* Atheros OUI (00:03:7f) */
  561. cie->ie_ath = frm;
  562. }
  563. break;
  564. default:
  565. break;
  566. }
  567. frm += frm[1] + 2;
  568. }
  569. if ((cie->ie_rates == NULL)
  570. || (cie->ie_rates[1] > ATH6KL_RATE_MAXSIZE))
  571. return -EINVAL;
  572. if ((cie->ie_ssid == NULL)
  573. || (cie->ie_ssid[1] > IEEE80211_MAX_SSID_LEN))
  574. return -EINVAL;
  575. return 0;
  576. }
  577. static int ath6kl_wmi_bssinfo_event_rx(struct wmi *wmi, u8 *datap, int len)
  578. {
  579. struct bss *bss = NULL;
  580. struct wmi_bss_info_hdr *bih;
  581. u8 cached_ssid_len = 0;
  582. u8 cached_ssid[IEEE80211_MAX_SSID_LEN] = { 0 };
  583. u8 beacon_ssid_len = 0;
  584. u8 *buf, *ie_ssid;
  585. u8 *ni_buf;
  586. int buf_len;
  587. int ret;
  588. if (len <= sizeof(struct wmi_bss_info_hdr))
  589. return -EINVAL;
  590. bih = (struct wmi_bss_info_hdr *) datap;
  591. bss = wlan_find_node(&wmi->parent_dev->scan_table, bih->bssid);
  592. if (a_sle16_to_cpu(bih->rssi) > 0) {
  593. if (bss == NULL)
  594. return 0;
  595. else
  596. bih->rssi = a_cpu_to_sle16(bss->ni_rssi);
  597. }
  598. buf = datap + sizeof(struct wmi_bss_info_hdr);
  599. len -= sizeof(struct wmi_bss_info_hdr);
  600. ath6kl_dbg(ATH6KL_DBG_WMI,
  601. "bss info evt - ch %u, rssi %02x, bssid \"%pM\"\n",
  602. bih->ch, a_sle16_to_cpu(bih->rssi), bih->bssid);
  603. if (bss != NULL) {
  604. /*
  605. * Free up the node. We are about to allocate a new node.
  606. * In case of hidden AP, beacon will not have ssid,
  607. * but a directed probe response will have it,
  608. * so cache the probe-resp-ssid if already present.
  609. */
  610. if (wmi->is_probe_ssid && (bih->frame_type == BEACON_FTYPE)) {
  611. ie_ssid = bss->ni_cie.ie_ssid;
  612. if (ie_ssid && (ie_ssid[1] <= IEEE80211_MAX_SSID_LEN) &&
  613. (ie_ssid[2] != 0)) {
  614. cached_ssid_len = ie_ssid[1];
  615. memcpy(cached_ssid, ie_ssid + 2,
  616. cached_ssid_len);
  617. }
  618. }
  619. /*
  620. * Use the current average rssi of associated AP base on
  621. * assumption
  622. * 1. Most os with GUI will update RSSI by
  623. * ath6kl_wmi_get_stats_cmd() periodically.
  624. * 2. ath6kl_wmi_get_stats_cmd(..) will be called when calling
  625. * ath6kl_wmi_startscan_cmd(...)
  626. * The average value of RSSI give end-user better feeling for
  627. * instance value of scan result. It also sync up RSSI info
  628. * in GUI between scan result and RSSI signal icon.
  629. */
  630. if (memcmp(wmi->bssid, bih->bssid, ETH_ALEN) == 0) {
  631. bih->rssi = a_cpu_to_sle16(bss->ni_rssi);
  632. bih->snr = bss->ni_snr;
  633. }
  634. wlan_node_reclaim(&wmi->parent_dev->scan_table, bss);
  635. }
  636. /*
  637. * beacon/probe response frame format
  638. * [8] time stamp
  639. * [2] beacon interval
  640. * [2] capability information
  641. * [tlv] ssid
  642. */
  643. beacon_ssid_len = buf[SSID_IE_LEN_INDEX];
  644. /*
  645. * If ssid is cached for this hidden AP, then change
  646. * buffer len accordingly.
  647. */
  648. if (wmi->is_probe_ssid && (bih->frame_type == BEACON_FTYPE) &&
  649. (cached_ssid_len != 0) &&
  650. (beacon_ssid_len == 0 || (cached_ssid_len > beacon_ssid_len &&
  651. buf[SSID_IE_LEN_INDEX + 1] == 0))) {
  652. len += (cached_ssid_len - beacon_ssid_len);
  653. }
  654. bss = wlan_node_alloc(len);
  655. if (!bss)
  656. return -ENOMEM;
  657. bss->ni_snr = bih->snr;
  658. bss->ni_rssi = a_sle16_to_cpu(bih->rssi);
  659. if (WARN_ON(!bss->ni_buf))
  660. return -EINVAL;
  661. /*
  662. * In case of hidden AP, beacon will not have ssid,
  663. * but a directed probe response will have it,
  664. * so place the cached-ssid(probe-resp) in the bss info.
  665. */
  666. if (wmi->is_probe_ssid && (bih->frame_type == BEACON_FTYPE) &&
  667. (cached_ssid_len != 0) &&
  668. (beacon_ssid_len == 0 || (beacon_ssid_len &&
  669. buf[SSID_IE_LEN_INDEX + 1] == 0))) {
  670. ni_buf = bss->ni_buf;
  671. buf_len = len;
  672. /*
  673. * Copy the first 14 bytes:
  674. * time-stamp(8), beacon-interval(2),
  675. * cap-info(2), ssid-id(1), ssid-len(1).
  676. */
  677. memcpy(ni_buf, buf, SSID_IE_LEN_INDEX + 1);
  678. ni_buf[SSID_IE_LEN_INDEX] = cached_ssid_len;
  679. ni_buf += (SSID_IE_LEN_INDEX + 1);
  680. buf += (SSID_IE_LEN_INDEX + 1);
  681. buf_len -= (SSID_IE_LEN_INDEX + 1);
  682. memcpy(ni_buf, cached_ssid, cached_ssid_len);
  683. ni_buf += cached_ssid_len;
  684. buf += beacon_ssid_len;
  685. buf_len -= beacon_ssid_len;
  686. if (cached_ssid_len > beacon_ssid_len)
  687. buf_len -= (cached_ssid_len - beacon_ssid_len);
  688. memcpy(ni_buf, buf, buf_len);
  689. } else
  690. memcpy(bss->ni_buf, buf, len);
  691. bss->ni_framelen = len;
  692. ret = ath6kl_wlan_parse_beacon(bss->ni_buf, len, &bss->ni_cie);
  693. if (ret) {
  694. wlan_node_free(bss);
  695. return -EINVAL;
  696. }
  697. /*
  698. * Update the frequency in ie_chan, overwriting of channel number
  699. * which is done in ath6kl_wlan_parse_beacon
  700. */
  701. bss->ni_cie.ie_chan = le16_to_cpu(bih->ch);
  702. wlan_setup_node(&wmi->parent_dev->scan_table, bss, bih->bssid);
  703. return 0;
  704. }
  705. static int ath6kl_wmi_opt_frame_event_rx(struct wmi *wmi, u8 *datap, int len)
  706. {
  707. struct bss *bss;
  708. struct wmi_opt_rx_info_hdr *bih;
  709. u8 *buf;
  710. if (len <= sizeof(struct wmi_opt_rx_info_hdr))
  711. return -EINVAL;
  712. bih = (struct wmi_opt_rx_info_hdr *) datap;
  713. buf = datap + sizeof(struct wmi_opt_rx_info_hdr);
  714. len -= sizeof(struct wmi_opt_rx_info_hdr);
  715. ath6kl_dbg(ATH6KL_DBG_WMI, "opt frame event %2.2x:%2.2x\n",
  716. bih->bssid[4], bih->bssid[5]);
  717. bss = wlan_find_node(&wmi->parent_dev->scan_table, bih->bssid);
  718. if (bss != NULL) {
  719. /* Free up the node. We are about to allocate a new node. */
  720. wlan_node_reclaim(&wmi->parent_dev->scan_table, bss);
  721. }
  722. bss = wlan_node_alloc(len);
  723. if (!bss)
  724. return -ENOMEM;
  725. bss->ni_snr = bih->snr;
  726. bss->ni_cie.ie_chan = le16_to_cpu(bih->ch);
  727. if (WARN_ON(!bss->ni_buf))
  728. return -EINVAL;
  729. memcpy(bss->ni_buf, buf, len);
  730. wlan_setup_node(&wmi->parent_dev->scan_table, bss, bih->bssid);
  731. return 0;
  732. }
  733. /* Inactivity timeout of a fatpipe(pstream) at the target */
  734. static int ath6kl_wmi_pstream_timeout_event_rx(struct wmi *wmi, u8 *datap,
  735. int len)
  736. {
  737. struct wmi_pstream_timeout_event *ev;
  738. if (len < sizeof(struct wmi_pstream_timeout_event))
  739. return -EINVAL;
  740. ev = (struct wmi_pstream_timeout_event *) datap;
  741. /*
  742. * When the pstream (fat pipe == AC) timesout, it means there were
  743. * no thinStreams within this pstream & it got implicitly created
  744. * due to data flow on this AC. We start the inactivity timer only
  745. * for implicitly created pstream. Just reset the host state.
  746. */
  747. spin_lock_bh(&wmi->lock);
  748. wmi->stream_exist_for_ac[ev->traffic_class] = 0;
  749. wmi->fat_pipe_exist &= ~(1 << ev->traffic_class);
  750. spin_unlock_bh(&wmi->lock);
  751. /* Indicate inactivity to driver layer for this fatpipe (pstream) */
  752. ath6kl_indicate_tx_activity(wmi->parent_dev, ev->traffic_class, false);
  753. return 0;
  754. }
  755. static int ath6kl_wmi_bitrate_reply_rx(struct wmi *wmi, u8 *datap, int len)
  756. {
  757. struct wmi_bit_rate_reply *reply;
  758. s32 rate;
  759. u32 sgi, index;
  760. if (len < sizeof(struct wmi_bit_rate_reply))
  761. return -EINVAL;
  762. reply = (struct wmi_bit_rate_reply *) datap;
  763. ath6kl_dbg(ATH6KL_DBG_WMI, "rateindex %d\n", reply->rate_index);
  764. if (reply->rate_index == (s8) RATE_AUTO) {
  765. rate = RATE_AUTO;
  766. } else {
  767. index = reply->rate_index & 0x7f;
  768. sgi = (reply->rate_index & 0x80) ? 1 : 0;
  769. rate = wmi_rate_tbl[index][sgi];
  770. }
  771. ath6kl_wakeup_event(wmi->parent_dev);
  772. return 0;
  773. }
  774. static int ath6kl_wmi_ratemask_reply_rx(struct wmi *wmi, u8 *datap, int len)
  775. {
  776. if (len < sizeof(struct wmi_fix_rates_reply))
  777. return -EINVAL;
  778. ath6kl_wakeup_event(wmi->parent_dev);
  779. return 0;
  780. }
  781. static int ath6kl_wmi_ch_list_reply_rx(struct wmi *wmi, u8 *datap, int len)
  782. {
  783. if (len < sizeof(struct wmi_channel_list_reply))
  784. return -EINVAL;
  785. ath6kl_wakeup_event(wmi->parent_dev);
  786. return 0;
  787. }
  788. static int ath6kl_wmi_tx_pwr_reply_rx(struct wmi *wmi, u8 *datap, int len)
  789. {
  790. struct wmi_tx_pwr_reply *reply;
  791. if (len < sizeof(struct wmi_tx_pwr_reply))
  792. return -EINVAL;
  793. reply = (struct wmi_tx_pwr_reply *) datap;
  794. ath6kl_txpwr_rx_evt(wmi->parent_dev, reply->dbM);
  795. return 0;
  796. }
  797. static int ath6kl_wmi_keepalive_reply_rx(struct wmi *wmi, u8 *datap, int len)
  798. {
  799. if (len < sizeof(struct wmi_get_keepalive_cmd))
  800. return -EINVAL;
  801. ath6kl_wakeup_event(wmi->parent_dev);
  802. return 0;
  803. }
  804. static int ath6kl_wmi_scan_complete_rx(struct wmi *wmi, u8 *datap, int len)
  805. {
  806. struct wmi_scan_complete_event *ev;
  807. ev = (struct wmi_scan_complete_event *) datap;
  808. if (a_sle32_to_cpu(ev->status) == 0)
  809. wlan_refresh_inactive_nodes(wmi->parent_dev);
  810. ath6kl_scan_complete_evt(wmi->parent_dev, a_sle32_to_cpu(ev->status));
  811. wmi->is_probe_ssid = false;
  812. return 0;
  813. }
  814. /*
  815. * Target is reporting a programming error. This is for
  816. * developer aid only. Target only checks a few common violations
  817. * and it is responsibility of host to do all error checking.
  818. * Behavior of target after wmi error event is undefined.
  819. * A reset is recommended.
  820. */
  821. static int ath6kl_wmi_error_event_rx(struct wmi *wmi, u8 *datap, int len)
  822. {
  823. const char *type = "unknown error";
  824. struct wmi_cmd_error_event *ev;
  825. ev = (struct wmi_cmd_error_event *) datap;
  826. switch (ev->err_code) {
  827. case INVALID_PARAM:
  828. type = "invalid parameter";
  829. break;
  830. case ILLEGAL_STATE:
  831. type = "invalid state";
  832. break;
  833. case INTERNAL_ERROR:
  834. type = "internal error";
  835. break;
  836. }
  837. ath6kl_dbg(ATH6KL_DBG_WMI, "programming error, cmd=%d %s\n",
  838. ev->cmd_id, type);
  839. return 0;
  840. }
  841. static int ath6kl_wmi_stats_event_rx(struct wmi *wmi, u8 *datap, int len)
  842. {
  843. ath6kl_tgt_stats_event(wmi->parent_dev, datap, len);
  844. return 0;
  845. }
  846. static u8 ath6kl_wmi_get_upper_threshold(s16 rssi,
  847. struct sq_threshold_params *sq_thresh,
  848. u32 size)
  849. {
  850. u32 index;
  851. u8 threshold = (u8) sq_thresh->upper_threshold[size - 1];
  852. /* The list is already in sorted order. Get the next lower value */
  853. for (index = 0; index < size; index++) {
  854. if (rssi < sq_thresh->upper_threshold[index]) {
  855. threshold = (u8) sq_thresh->upper_threshold[index];
  856. break;
  857. }
  858. }
  859. return threshold;
  860. }
  861. static u8 ath6kl_wmi_get_lower_threshold(s16 rssi,
  862. struct sq_threshold_params *sq_thresh,
  863. u32 size)
  864. {
  865. u32 index;
  866. u8 threshold = (u8) sq_thresh->lower_threshold[size - 1];
  867. /* The list is already in sorted order. Get the next lower value */
  868. for (index = 0; index < size; index++) {
  869. if (rssi > sq_thresh->lower_threshold[index]) {
  870. threshold = (u8) sq_thresh->lower_threshold[index];
  871. break;
  872. }
  873. }
  874. return threshold;
  875. }
  876. static int ath6kl_wmi_send_rssi_threshold_params(struct wmi *wmi,
  877. struct wmi_rssi_threshold_params_cmd *rssi_cmd)
  878. {
  879. struct sk_buff *skb;
  880. struct wmi_rssi_threshold_params_cmd *cmd;
  881. skb = ath6kl_wmi_get_new_buf(sizeof(*cmd));
  882. if (!skb)
  883. return -ENOMEM;
  884. cmd = (struct wmi_rssi_threshold_params_cmd *) skb->data;
  885. memcpy(cmd, rssi_cmd, sizeof(struct wmi_rssi_threshold_params_cmd));
  886. return ath6kl_wmi_cmd_send(wmi, skb, WMI_RSSI_THRESHOLD_PARAMS_CMDID,
  887. NO_SYNC_WMIFLAG);
  888. }
  889. static int ath6kl_wmi_rssi_threshold_event_rx(struct wmi *wmi, u8 *datap,
  890. int len)
  891. {
  892. struct wmi_rssi_threshold_event *reply;
  893. struct wmi_rssi_threshold_params_cmd cmd;
  894. struct sq_threshold_params *sq_thresh;
  895. enum wmi_rssi_threshold_val new_threshold;
  896. u8 upper_rssi_threshold, lower_rssi_threshold;
  897. s16 rssi;
  898. int ret;
  899. if (len < sizeof(struct wmi_rssi_threshold_event))
  900. return -EINVAL;
  901. reply = (struct wmi_rssi_threshold_event *) datap;
  902. new_threshold = (enum wmi_rssi_threshold_val) reply->range;
  903. rssi = a_sle16_to_cpu(reply->rssi);
  904. sq_thresh = &wmi->sq_threshld[SIGNAL_QUALITY_METRICS_RSSI];
  905. /*
  906. * Identify the threshold breached and communicate that to the app.
  907. * After that install a new set of thresholds based on the signal
  908. * quality reported by the target
  909. */
  910. if (new_threshold) {
  911. /* Upper threshold breached */
  912. if (rssi < sq_thresh->upper_threshold[0]) {
  913. ath6kl_dbg(ATH6KL_DBG_WMI,
  914. "spurious upper rssi threshold event: %d\n",
  915. rssi);
  916. } else if ((rssi < sq_thresh->upper_threshold[1]) &&
  917. (rssi >= sq_thresh->upper_threshold[0])) {
  918. new_threshold = WMI_RSSI_THRESHOLD1_ABOVE;
  919. } else if ((rssi < sq_thresh->upper_threshold[2]) &&
  920. (rssi >= sq_thresh->upper_threshold[1])) {
  921. new_threshold = WMI_RSSI_THRESHOLD2_ABOVE;
  922. } else if ((rssi < sq_thresh->upper_threshold[3]) &&
  923. (rssi >= sq_thresh->upper_threshold[2])) {
  924. new_threshold = WMI_RSSI_THRESHOLD3_ABOVE;
  925. } else if ((rssi < sq_thresh->upper_threshold[4]) &&
  926. (rssi >= sq_thresh->upper_threshold[3])) {
  927. new_threshold = WMI_RSSI_THRESHOLD4_ABOVE;
  928. } else if ((rssi < sq_thresh->upper_threshold[5]) &&
  929. (rssi >= sq_thresh->upper_threshold[4])) {
  930. new_threshold = WMI_RSSI_THRESHOLD5_ABOVE;
  931. } else if (rssi >= sq_thresh->upper_threshold[5]) {
  932. new_threshold = WMI_RSSI_THRESHOLD6_ABOVE;
  933. }
  934. } else {
  935. /* Lower threshold breached */
  936. if (rssi > sq_thresh->lower_threshold[0]) {
  937. ath6kl_dbg(ATH6KL_DBG_WMI,
  938. "spurious lower rssi threshold event: %d %d\n",
  939. rssi, sq_thresh->lower_threshold[0]);
  940. } else if ((rssi > sq_thresh->lower_threshold[1]) &&
  941. (rssi <= sq_thresh->lower_threshold[0])) {
  942. new_threshold = WMI_RSSI_THRESHOLD6_BELOW;
  943. } else if ((rssi > sq_thresh->lower_threshold[2]) &&
  944. (rssi <= sq_thresh->lower_threshold[1])) {
  945. new_threshold = WMI_RSSI_THRESHOLD5_BELOW;
  946. } else if ((rssi > sq_thresh->lower_threshold[3]) &&
  947. (rssi <= sq_thresh->lower_threshold[2])) {
  948. new_threshold = WMI_RSSI_THRESHOLD4_BELOW;
  949. } else if ((rssi > sq_thresh->lower_threshold[4]) &&
  950. (rssi <= sq_thresh->lower_threshold[3])) {
  951. new_threshold = WMI_RSSI_THRESHOLD3_BELOW;
  952. } else if ((rssi > sq_thresh->lower_threshold[5]) &&
  953. (rssi <= sq_thresh->lower_threshold[4])) {
  954. new_threshold = WMI_RSSI_THRESHOLD2_BELOW;
  955. } else if (rssi <= sq_thresh->lower_threshold[5]) {
  956. new_threshold = WMI_RSSI_THRESHOLD1_BELOW;
  957. }
  958. }
  959. /* Calculate and install the next set of thresholds */
  960. lower_rssi_threshold = ath6kl_wmi_get_lower_threshold(rssi, sq_thresh,
  961. sq_thresh->lower_threshold_valid_count);
  962. upper_rssi_threshold = ath6kl_wmi_get_upper_threshold(rssi, sq_thresh,
  963. sq_thresh->upper_threshold_valid_count);
  964. /* Issue a wmi command to install the thresholds */
  965. cmd.thresh_above1_val = a_cpu_to_sle16(upper_rssi_threshold);
  966. cmd.thresh_below1_val = a_cpu_to_sle16(lower_rssi_threshold);
  967. cmd.weight = sq_thresh->weight;
  968. cmd.poll_time = cpu_to_le32(sq_thresh->polling_interval);
  969. ret = ath6kl_wmi_send_rssi_threshold_params(wmi, &cmd);
  970. if (ret) {
  971. ath6kl_err("unable to configure rssi thresholds\n");
  972. return -EIO;
  973. }
  974. return 0;
  975. }
  976. static int ath6kl_wmi_cac_event_rx(struct wmi *wmi, u8 *datap, int len)
  977. {
  978. struct wmi_cac_event *reply;
  979. struct ieee80211_tspec_ie *ts;
  980. u16 active_tsids, tsinfo;
  981. u8 tsid, index;
  982. u8 ts_id;
  983. if (len < sizeof(struct wmi_cac_event))
  984. return -EINVAL;
  985. reply = (struct wmi_cac_event *) datap;
  986. if ((reply->cac_indication == CAC_INDICATION_ADMISSION_RESP) &&
  987. (reply->status_code != IEEE80211_TSPEC_STATUS_ADMISS_ACCEPTED)) {
  988. ts = (struct ieee80211_tspec_ie *) &(reply->tspec_suggestion);
  989. tsinfo = le16_to_cpu(ts->tsinfo);
  990. tsid = (tsinfo >> IEEE80211_WMM_IE_TSPEC_TID_SHIFT) &
  991. IEEE80211_WMM_IE_TSPEC_TID_MASK;
  992. ath6kl_wmi_delete_pstream_cmd(wmi, reply->ac, tsid);
  993. } else if (reply->cac_indication == CAC_INDICATION_NO_RESP) {
  994. /*
  995. * Following assumes that there is only one outstanding
  996. * ADDTS request when this event is received
  997. */
  998. spin_lock_bh(&wmi->lock);
  999. active_tsids = wmi->stream_exist_for_ac[reply->ac];
  1000. spin_unlock_bh(&wmi->lock);
  1001. for (index = 0; index < sizeof(active_tsids) * 8; index++) {
  1002. if ((active_tsids >> index) & 1)
  1003. break;
  1004. }
  1005. if (index < (sizeof(active_tsids) * 8))
  1006. ath6kl_wmi_delete_pstream_cmd(wmi, reply->ac, index);
  1007. }
  1008. /*
  1009. * Clear active tsids and Add missing handling
  1010. * for delete qos stream from AP
  1011. */
  1012. else if (reply->cac_indication == CAC_INDICATION_DELETE) {
  1013. ts = (struct ieee80211_tspec_ie *) &(reply->tspec_suggestion);
  1014. tsinfo = le16_to_cpu(ts->tsinfo);
  1015. ts_id = ((tsinfo >> IEEE80211_WMM_IE_TSPEC_TID_SHIFT) &
  1016. IEEE80211_WMM_IE_TSPEC_TID_MASK);
  1017. spin_lock_bh(&wmi->lock);
  1018. wmi->stream_exist_for_ac[reply->ac] &= ~(1 << ts_id);
  1019. active_tsids = wmi->stream_exist_for_ac[reply->ac];
  1020. spin_unlock_bh(&wmi->lock);
  1021. /* Indicate stream inactivity to driver layer only if all tsids
  1022. * within this AC are deleted.
  1023. */
  1024. if (!active_tsids) {
  1025. ath6kl_indicate_tx_activity(wmi->parent_dev, reply->ac,
  1026. false);
  1027. wmi->fat_pipe_exist &= ~(1 << reply->ac);
  1028. }
  1029. }
  1030. return 0;
  1031. }
  1032. static int ath6kl_wmi_send_snr_threshold_params(struct wmi *wmi,
  1033. struct wmi_snr_threshold_params_cmd *snr_cmd)
  1034. {
  1035. struct sk_buff *skb;
  1036. struct wmi_snr_threshold_params_cmd *cmd;
  1037. skb = ath6kl_wmi_get_new_buf(sizeof(*cmd));
  1038. if (!skb)
  1039. return -ENOMEM;
  1040. cmd = (struct wmi_snr_threshold_params_cmd *) skb->data;
  1041. memcpy(cmd, snr_cmd, sizeof(struct wmi_snr_threshold_params_cmd));
  1042. return ath6kl_wmi_cmd_send(wmi, skb, WMI_SNR_THRESHOLD_PARAMS_CMDID,
  1043. NO_SYNC_WMIFLAG);
  1044. }
  1045. static int ath6kl_wmi_snr_threshold_event_rx(struct wmi *wmi, u8 *datap,
  1046. int len)
  1047. {
  1048. struct wmi_snr_threshold_event *reply;
  1049. struct sq_threshold_params *sq_thresh;
  1050. struct wmi_snr_threshold_params_cmd cmd;
  1051. enum wmi_snr_threshold_val new_threshold;
  1052. u8 upper_snr_threshold, lower_snr_threshold;
  1053. s16 snr;
  1054. int ret;
  1055. if (len < sizeof(struct wmi_snr_threshold_event))
  1056. return -EINVAL;
  1057. reply = (struct wmi_snr_threshold_event *) datap;
  1058. new_threshold = (enum wmi_snr_threshold_val) reply->range;
  1059. snr = reply->snr;
  1060. sq_thresh = &wmi->sq_threshld[SIGNAL_QUALITY_METRICS_SNR];
  1061. /*
  1062. * Identify the threshold breached and communicate that to the app.
  1063. * After that install a new set of thresholds based on the signal
  1064. * quality reported by the target.
  1065. */
  1066. if (new_threshold) {
  1067. /* Upper threshold breached */
  1068. if (snr < sq_thresh->upper_threshold[0]) {
  1069. ath6kl_dbg(ATH6KL_DBG_WMI,
  1070. "spurious upper snr threshold event: %d\n",
  1071. snr);
  1072. } else if ((snr < sq_thresh->upper_threshold[1]) &&
  1073. (snr >= sq_thresh->upper_threshold[0])) {
  1074. new_threshold = WMI_SNR_THRESHOLD1_ABOVE;
  1075. } else if ((snr < sq_thresh->upper_threshold[2]) &&
  1076. (snr >= sq_thresh->upper_threshold[1])) {
  1077. new_threshold = WMI_SNR_THRESHOLD2_ABOVE;
  1078. } else if ((snr < sq_thresh->upper_threshold[3]) &&
  1079. (snr >= sq_thresh->upper_threshold[2])) {
  1080. new_threshold = WMI_SNR_THRESHOLD3_ABOVE;
  1081. } else if (snr >= sq_thresh->upper_threshold[3]) {
  1082. new_threshold = WMI_SNR_THRESHOLD4_ABOVE;
  1083. }
  1084. } else {
  1085. /* Lower threshold breached */
  1086. if (snr > sq_thresh->lower_threshold[0]) {
  1087. ath6kl_dbg(ATH6KL_DBG_WMI,
  1088. "spurious lower snr threshold event: %d\n",
  1089. sq_thresh->lower_threshold[0]);
  1090. } else if ((snr > sq_thresh->lower_threshold[1]) &&
  1091. (snr <= sq_thresh->lower_threshold[0])) {
  1092. new_threshold = WMI_SNR_THRESHOLD4_BELOW;
  1093. } else if ((snr > sq_thresh->lower_threshold[2]) &&
  1094. (snr <= sq_thresh->lower_threshold[1])) {
  1095. new_threshold = WMI_SNR_THRESHOLD3_BELOW;
  1096. } else if ((snr > sq_thresh->lower_threshold[3]) &&
  1097. (snr <= sq_thresh->lower_threshold[2])) {
  1098. new_threshold = WMI_SNR_THRESHOLD2_BELOW;
  1099. } else if (snr <= sq_thresh->lower_threshold[3]) {
  1100. new_threshold = WMI_SNR_THRESHOLD1_BELOW;
  1101. }
  1102. }
  1103. /* Calculate and install the next set of thresholds */
  1104. lower_snr_threshold = ath6kl_wmi_get_lower_threshold(snr, sq_thresh,
  1105. sq_thresh->lower_threshold_valid_count);
  1106. upper_snr_threshold = ath6kl_wmi_get_upper_threshold(snr, sq_thresh,
  1107. sq_thresh->upper_threshold_valid_count);
  1108. /* Issue a wmi command to install the thresholds */
  1109. cmd.thresh_above1_val = upper_snr_threshold;
  1110. cmd.thresh_below1_val = lower_snr_threshold;
  1111. cmd.weight = sq_thresh->weight;
  1112. cmd.poll_time = cpu_to_le32(sq_thresh->polling_interval);
  1113. ath6kl_dbg(ATH6KL_DBG_WMI,
  1114. "snr: %d, threshold: %d, lower: %d, upper: %d\n",
  1115. snr, new_threshold,
  1116. lower_snr_threshold, upper_snr_threshold);
  1117. ret = ath6kl_wmi_send_snr_threshold_params(wmi, &cmd);
  1118. if (ret) {
  1119. ath6kl_err("unable to configure snr threshold\n");
  1120. return -EIO;
  1121. }
  1122. return 0;
  1123. }
  1124. static int ath6kl_wmi_aplist_event_rx(struct wmi *wmi, u8 *datap, int len)
  1125. {
  1126. u16 ap_info_entry_size;
  1127. struct wmi_aplist_event *ev = (struct wmi_aplist_event *) datap;
  1128. struct wmi_ap_info_v1 *ap_info_v1;
  1129. u8 index;
  1130. if (len < sizeof(struct wmi_aplist_event) ||
  1131. ev->ap_list_ver != APLIST_VER1)
  1132. return -EINVAL;
  1133. ap_info_entry_size = sizeof(struct wmi_ap_info_v1);
  1134. ap_info_v1 = (struct wmi_ap_info_v1 *) ev->ap_list;
  1135. ath6kl_dbg(ATH6KL_DBG_WMI,
  1136. "number of APs in aplist event: %d\n", ev->num_ap);
  1137. if (len < (int) (sizeof(struct wmi_aplist_event) +
  1138. (ev->num_ap - 1) * ap_info_entry_size))
  1139. return -EINVAL;
  1140. /* AP list version 1 contents */
  1141. for (index = 0; index < ev->num_ap; index++) {
  1142. ath6kl_dbg(ATH6KL_DBG_WMI, "AP#%d BSSID %pM Channel %d\n",
  1143. index, ap_info_v1->bssid, ap_info_v1->channel);
  1144. ap_info_v1++;
  1145. }
  1146. return 0;
  1147. }
  1148. int ath6kl_wmi_cmd_send(struct wmi *wmi, struct sk_buff *skb,
  1149. enum wmi_cmd_id cmd_id, enum wmi_sync_flag sync_flag)
  1150. {
  1151. struct wmi_cmd_hdr *cmd_hdr;
  1152. enum htc_endpoint_id ep_id = wmi->ep_id;
  1153. int ret;
  1154. if (WARN_ON(skb == NULL))
  1155. return -EINVAL;
  1156. if (sync_flag >= END_WMIFLAG) {
  1157. dev_kfree_skb(skb);
  1158. return -EINVAL;
  1159. }
  1160. if ((sync_flag == SYNC_BEFORE_WMIFLAG) ||
  1161. (sync_flag == SYNC_BOTH_WMIFLAG)) {
  1162. /*
  1163. * Make sure all data currently queued is transmitted before
  1164. * the cmd execution. Establish a new sync point.
  1165. */
  1166. ath6kl_wmi_sync_point(wmi);
  1167. }
  1168. skb_push(skb, sizeof(struct wmi_cmd_hdr));
  1169. cmd_hdr = (struct wmi_cmd_hdr *) skb->data;
  1170. cmd_hdr->cmd_id = cpu_to_le16(cmd_id);
  1171. cmd_hdr->info1 = 0; /* added for virtual interface */
  1172. /* Only for OPT_TX_CMD, use BE endpoint. */
  1173. if (cmd_id == WMI_OPT_TX_FRAME_CMDID) {
  1174. ret = ath6kl_wmi_data_hdr_add(wmi, skb, OPT_MSGTYPE,
  1175. false, false, 0, NULL);
  1176. if (ret) {
  1177. dev_kfree_skb(skb);
  1178. return ret;
  1179. }
  1180. ep_id = ath6kl_ac2_endpoint_id(wmi->parent_dev, WMM_AC_BE);
  1181. }
  1182. ath6kl_control_tx(wmi->parent_dev, skb, ep_id);
  1183. if ((sync_flag == SYNC_AFTER_WMIFLAG) ||
  1184. (sync_flag == SYNC_BOTH_WMIFLAG)) {
  1185. /*
  1186. * Make sure all new data queued waits for the command to
  1187. * execute. Establish a new sync point.
  1188. */
  1189. ath6kl_wmi_sync_point(wmi);
  1190. }
  1191. return 0;
  1192. }
  1193. int ath6kl_wmi_connect_cmd(struct wmi *wmi, enum network_type nw_type,
  1194. enum dot11_auth_mode dot11_auth_mode,
  1195. enum auth_mode auth_mode,
  1196. enum crypto_type pairwise_crypto,
  1197. u8 pairwise_crypto_len,
  1198. enum crypto_type group_crypto,
  1199. u8 group_crypto_len, int ssid_len, u8 *ssid,
  1200. u8 *bssid, u16 channel, u32 ctrl_flags)
  1201. {
  1202. struct sk_buff *skb;
  1203. struct wmi_connect_cmd *cc;
  1204. int ret;
  1205. wmi->traffic_class = 100;
  1206. if ((pairwise_crypto == NONE_CRYPT) && (group_crypto != NONE_CRYPT))
  1207. return -EINVAL;
  1208. if ((pairwise_crypto != NONE_CRYPT) && (group_crypto == NONE_CRYPT))
  1209. return -EINVAL;
  1210. skb = ath6kl_wmi_get_new_buf(sizeof(struct wmi_connect_cmd));
  1211. if (!skb)
  1212. return -ENOMEM;
  1213. cc = (struct wmi_connect_cmd *) skb->data;
  1214. if (ssid_len)
  1215. memcpy(cc->ssid, ssid, ssid_len);
  1216. cc->ssid_len = ssid_len;
  1217. cc->nw_type = nw_type;
  1218. cc->dot11_auth_mode = dot11_auth_mode;
  1219. cc->auth_mode = auth_mode;
  1220. cc->prwise_crypto_type = pairwise_crypto;
  1221. cc->prwise_crypto_len = pairwise_crypto_len;
  1222. cc->grp_crypto_type = group_crypto;
  1223. cc->grp_crypto_len = group_crypto_len;
  1224. cc->ch = cpu_to_le16(channel);
  1225. cc->ctrl_flags = cpu_to_le32(ctrl_flags);
  1226. if (bssid != NULL)
  1227. memcpy(cc->bssid, bssid, ETH_ALEN);
  1228. wmi->pair_crypto_type = pairwise_crypto;
  1229. wmi->grp_crypto_type = group_crypto;
  1230. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_CONNECT_CMDID, NO_SYNC_WMIFLAG);
  1231. return ret;
  1232. }
  1233. int ath6kl_wmi_reconnect_cmd(struct wmi *wmi, u8 *bssid, u16 channel)
  1234. {
  1235. struct sk_buff *skb;
  1236. struct wmi_reconnect_cmd *cc;
  1237. int ret;
  1238. wmi->traffic_class = 100;
  1239. skb = ath6kl_wmi_get_new_buf(sizeof(struct wmi_reconnect_cmd));
  1240. if (!skb)
  1241. return -ENOMEM;
  1242. cc = (struct wmi_reconnect_cmd *) skb->data;
  1243. cc->channel = cpu_to_le16(channel);
  1244. if (bssid != NULL)
  1245. memcpy(cc->bssid, bssid, ETH_ALEN);
  1246. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_RECONNECT_CMDID,
  1247. NO_SYNC_WMIFLAG);
  1248. return ret;
  1249. }
  1250. int ath6kl_wmi_disconnect_cmd(struct wmi *wmi)
  1251. {
  1252. int ret;
  1253. wmi->traffic_class = 100;
  1254. /* Disconnect command does not need to do a SYNC before. */
  1255. ret = ath6kl_wmi_simple_cmd(wmi, WMI_DISCONNECT_CMDID);
  1256. return ret;
  1257. }
  1258. int ath6kl_wmi_startscan_cmd(struct wmi *wmi, enum wmi_scan_type scan_type,
  1259. u32 force_fgscan, u32 is_legacy,
  1260. u32 home_dwell_time, u32 force_scan_interval,
  1261. s8 num_chan, u16 *ch_list)
  1262. {
  1263. struct sk_buff *skb;
  1264. struct wmi_start_scan_cmd *sc;
  1265. s8 size;
  1266. int ret;
  1267. size = sizeof(struct wmi_start_scan_cmd);
  1268. if ((scan_type != WMI_LONG_SCAN) && (scan_type != WMI_SHORT_SCAN))
  1269. return -EINVAL;
  1270. if (num_chan > WMI_MAX_CHANNELS)
  1271. return -EINVAL;
  1272. if (num_chan)
  1273. size += sizeof(u16) * (num_chan - 1);
  1274. skb = ath6kl_wmi_get_new_buf(size);
  1275. if (!skb)
  1276. return -ENOMEM;
  1277. sc = (struct wmi_start_scan_cmd *) skb->data;
  1278. sc->scan_type = scan_type;
  1279. sc->force_fg_scan = cpu_to_le32(force_fgscan);
  1280. sc->is_legacy = cpu_to_le32(is_legacy);
  1281. sc->home_dwell_time = cpu_to_le32(home_dwell_time);
  1282. sc->force_scan_intvl = cpu_to_le32(force_scan_interval);
  1283. sc->num_ch = num_chan;
  1284. if (num_chan)
  1285. memcpy(sc->ch_list, ch_list, num_chan * sizeof(u16));
  1286. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_START_SCAN_CMDID,
  1287. NO_SYNC_WMIFLAG);
  1288. return ret;
  1289. }
  1290. int ath6kl_wmi_scanparams_cmd(struct wmi *wmi, u16 fg_start_sec,
  1291. u16 fg_end_sec, u16 bg_sec,
  1292. u16 minact_chdw_msec, u16 maxact_chdw_msec,
  1293. u16 pas_chdw_msec, u8 short_scan_ratio,
  1294. u8 scan_ctrl_flag, u32 max_dfsch_act_time,
  1295. u16 maxact_scan_per_ssid)
  1296. {
  1297. struct sk_buff *skb;
  1298. struct wmi_scan_params_cmd *sc;
  1299. int ret;
  1300. skb = ath6kl_wmi_get_new_buf(sizeof(*sc));
  1301. if (!skb)
  1302. return -ENOMEM;
  1303. sc = (struct wmi_scan_params_cmd *) skb->data;
  1304. sc->fg_start_period = cpu_to_le16(fg_start_sec);
  1305. sc->fg_end_period = cpu_to_le16(fg_end_sec);
  1306. sc->bg_period = cpu_to_le16(bg_sec);
  1307. sc->minact_chdwell_time = cpu_to_le16(minact_chdw_msec);
  1308. sc->maxact_chdwell_time = cpu_to_le16(maxact_chdw_msec);
  1309. sc->pas_chdwell_time = cpu_to_le16(pas_chdw_msec);
  1310. sc->short_scan_ratio = short_scan_ratio;
  1311. sc->scan_ctrl_flags = scan_ctrl_flag;
  1312. sc->max_dfsch_act_time = cpu_to_le32(max_dfsch_act_time);
  1313. sc->maxact_scan_per_ssid = cpu_to_le16(maxact_scan_per_ssid);
  1314. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_SET_SCAN_PARAMS_CMDID,
  1315. NO_SYNC_WMIFLAG);
  1316. return ret;
  1317. }
  1318. int ath6kl_wmi_bssfilter_cmd(struct wmi *wmi, u8 filter, u32 ie_mask)
  1319. {
  1320. struct sk_buff *skb;
  1321. struct wmi_bss_filter_cmd *cmd;
  1322. int ret;
  1323. if (filter >= LAST_BSS_FILTER)
  1324. return -EINVAL;
  1325. skb = ath6kl_wmi_get_new_buf(sizeof(*cmd));
  1326. if (!skb)
  1327. return -ENOMEM;
  1328. cmd = (struct wmi_bss_filter_cmd *) skb->data;
  1329. cmd->bss_filter = filter;
  1330. cmd->ie_mask = cpu_to_le32(ie_mask);
  1331. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_SET_BSS_FILTER_CMDID,
  1332. NO_SYNC_WMIFLAG);
  1333. return ret;
  1334. }
  1335. int ath6kl_wmi_probedssid_cmd(struct wmi *wmi, u8 index, u8 flag,
  1336. u8 ssid_len, u8 *ssid)
  1337. {
  1338. struct sk_buff *skb;
  1339. struct wmi_probed_ssid_cmd *cmd;
  1340. int ret;
  1341. if (index > MAX_PROBED_SSID_INDEX)
  1342. return -EINVAL;
  1343. if (ssid_len > sizeof(cmd->ssid))
  1344. return -EINVAL;
  1345. if ((flag & (DISABLE_SSID_FLAG | ANY_SSID_FLAG)) && (ssid_len > 0))
  1346. return -EINVAL;
  1347. if ((flag & SPECIFIC_SSID_FLAG) && !ssid_len)
  1348. return -EINVAL;
  1349. if (flag & SPECIFIC_SSID_FLAG)
  1350. wmi->is_probe_ssid = true;
  1351. skb = ath6kl_wmi_get_new_buf(sizeof(*cmd));
  1352. if (!skb)
  1353. return -ENOMEM;
  1354. cmd = (struct wmi_probed_ssid_cmd *) skb->data;
  1355. cmd->entry_index = index;
  1356. cmd->flag = flag;
  1357. cmd->ssid_len = ssid_len;
  1358. memcpy(cmd->ssid, ssid, ssid_len);
  1359. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_SET_PROBED_SSID_CMDID,
  1360. NO_SYNC_WMIFLAG);
  1361. return ret;
  1362. }
  1363. int ath6kl_wmi_listeninterval_cmd(struct wmi *wmi, u16 listen_interval,
  1364. u16 listen_beacons)
  1365. {
  1366. struct sk_buff *skb;
  1367. struct wmi_listen_int_cmd *cmd;
  1368. int ret;
  1369. skb = ath6kl_wmi_get_new_buf(sizeof(*cmd));
  1370. if (!skb)
  1371. return -ENOMEM;
  1372. cmd = (struct wmi_listen_int_cmd *) skb->data;
  1373. cmd->listen_intvl = cpu_to_le16(listen_interval);
  1374. cmd->num_beacons = cpu_to_le16(listen_beacons);
  1375. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_SET_LISTEN_INT_CMDID,
  1376. NO_SYNC_WMIFLAG);
  1377. return ret;
  1378. }
  1379. int ath6kl_wmi_powermode_cmd(struct wmi *wmi, u8 pwr_mode)
  1380. {
  1381. struct sk_buff *skb;
  1382. struct wmi_power_mode_cmd *cmd;
  1383. int ret;
  1384. skb = ath6kl_wmi_get_new_buf(sizeof(*cmd));
  1385. if (!skb)
  1386. return -ENOMEM;
  1387. cmd = (struct wmi_power_mode_cmd *) skb->data;
  1388. cmd->pwr_mode = pwr_mode;
  1389. wmi->pwr_mode = pwr_mode;
  1390. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_SET_POWER_MODE_CMDID,
  1391. NO_SYNC_WMIFLAG);
  1392. return ret;
  1393. }
  1394. int ath6kl_wmi_pmparams_cmd(struct wmi *wmi, u16 idle_period,
  1395. u16 ps_poll_num, u16 dtim_policy,
  1396. u16 tx_wakeup_policy, u16 num_tx_to_wakeup,
  1397. u16 ps_fail_event_policy)
  1398. {
  1399. struct sk_buff *skb;
  1400. struct wmi_power_params_cmd *pm;
  1401. int ret;
  1402. skb = ath6kl_wmi_get_new_buf(sizeof(*pm));
  1403. if (!skb)
  1404. return -ENOMEM;
  1405. pm = (struct wmi_power_params_cmd *)skb->data;
  1406. pm->idle_period = cpu_to_le16(idle_period);
  1407. pm->pspoll_number = cpu_to_le16(ps_poll_num);
  1408. pm->dtim_policy = cpu_to_le16(dtim_policy);
  1409. pm->tx_wakeup_policy = cpu_to_le16(tx_wakeup_policy);
  1410. pm->num_tx_to_wakeup = cpu_to_le16(num_tx_to_wakeup);
  1411. pm->ps_fail_event_policy = cpu_to_le16(ps_fail_event_policy);
  1412. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_SET_POWER_PARAMS_CMDID,
  1413. NO_SYNC_WMIFLAG);
  1414. return ret;
  1415. }
  1416. int ath6kl_wmi_disctimeout_cmd(struct wmi *wmi, u8 timeout)
  1417. {
  1418. struct sk_buff *skb;
  1419. struct wmi_disc_timeout_cmd *cmd;
  1420. int ret;
  1421. skb = ath6kl_wmi_get_new_buf(sizeof(*cmd));
  1422. if (!skb)
  1423. return -ENOMEM;
  1424. cmd = (struct wmi_disc_timeout_cmd *) skb->data;
  1425. cmd->discon_timeout = timeout;
  1426. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_SET_DISC_TIMEOUT_CMDID,
  1427. NO_SYNC_WMIFLAG);
  1428. return ret;
  1429. }
  1430. int ath6kl_wmi_addkey_cmd(struct wmi *wmi, u8 key_index,
  1431. enum crypto_type key_type,
  1432. u8 key_usage, u8 key_len,
  1433. u8 *key_rsc, u8 *key_material,
  1434. u8 key_op_ctrl, u8 *mac_addr,
  1435. enum wmi_sync_flag sync_flag)
  1436. {
  1437. struct sk_buff *skb;
  1438. struct wmi_add_cipher_key_cmd *cmd;
  1439. int ret;
  1440. if ((key_index > WMI_MAX_KEY_INDEX) || (key_len > WMI_MAX_KEY_LEN) ||
  1441. (key_material == NULL))
  1442. return -EINVAL;
  1443. if ((WEP_CRYPT != key_type) && (NULL == key_rsc))
  1444. return -EINVAL;
  1445. skb = ath6kl_wmi_get_new_buf(sizeof(*cmd));
  1446. if (!skb)
  1447. return -ENOMEM;
  1448. cmd = (struct wmi_add_cipher_key_cmd *) skb->data;
  1449. cmd->key_index = key_index;
  1450. cmd->key_type = key_type;
  1451. cmd->key_usage = key_usage;
  1452. cmd->key_len = key_len;
  1453. memcpy(cmd->key, key_material, key_len);
  1454. if (key_rsc != NULL)
  1455. memcpy(cmd->key_rsc, key_rsc, sizeof(cmd->key_rsc));
  1456. cmd->key_op_ctrl = key_op_ctrl;
  1457. if (mac_addr)
  1458. memcpy(cmd->key_mac_addr, mac_addr, ETH_ALEN);
  1459. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_ADD_CIPHER_KEY_CMDID,
  1460. sync_flag);
  1461. return ret;
  1462. }
  1463. int ath6kl_wmi_add_krk_cmd(struct wmi *wmi, u8 *krk)
  1464. {
  1465. struct sk_buff *skb;
  1466. struct wmi_add_krk_cmd *cmd;
  1467. int ret;
  1468. skb = ath6kl_wmi_get_new_buf(sizeof(*cmd));
  1469. if (!skb)
  1470. return -ENOMEM;
  1471. cmd = (struct wmi_add_krk_cmd *) skb->data;
  1472. memcpy(cmd->krk, krk, WMI_KRK_LEN);
  1473. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_ADD_KRK_CMDID, NO_SYNC_WMIFLAG);
  1474. return ret;
  1475. }
  1476. int ath6kl_wmi_deletekey_cmd(struct wmi *wmi, u8 key_index)
  1477. {
  1478. struct sk_buff *skb;
  1479. struct wmi_delete_cipher_key_cmd *cmd;
  1480. int ret;
  1481. if (key_index > WMI_MAX_KEY_INDEX)
  1482. return -EINVAL;
  1483. skb = ath6kl_wmi_get_new_buf(sizeof(*cmd));
  1484. if (!skb)
  1485. return -ENOMEM;
  1486. cmd = (struct wmi_delete_cipher_key_cmd *) skb->data;
  1487. cmd->key_index = key_index;
  1488. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_DELETE_CIPHER_KEY_CMDID,
  1489. NO_SYNC_WMIFLAG);
  1490. return ret;
  1491. }
  1492. int ath6kl_wmi_setpmkid_cmd(struct wmi *wmi, const u8 *bssid,
  1493. const u8 *pmkid, bool set)
  1494. {
  1495. struct sk_buff *skb;
  1496. struct wmi_setpmkid_cmd *cmd;
  1497. int ret;
  1498. if (bssid == NULL)
  1499. return -EINVAL;
  1500. if (set && pmkid == NULL)
  1501. return -EINVAL;
  1502. skb = ath6kl_wmi_get_new_buf(sizeof(*cmd));
  1503. if (!skb)
  1504. return -ENOMEM;
  1505. cmd = (struct wmi_setpmkid_cmd *) skb->data;
  1506. memcpy(cmd->bssid, bssid, ETH_ALEN);
  1507. if (set) {
  1508. memcpy(cmd->pmkid, pmkid, sizeof(cmd->pmkid));
  1509. cmd->enable = PMKID_ENABLE;
  1510. } else {
  1511. memset(cmd->pmkid, 0, sizeof(cmd->pmkid));
  1512. cmd->enable = PMKID_DISABLE;
  1513. }
  1514. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_SET_PMKID_CMDID,
  1515. NO_SYNC_WMIFLAG);
  1516. return ret;
  1517. }
  1518. static int ath6kl_wmi_data_sync_send(struct wmi *wmi, struct sk_buff *skb,
  1519. enum htc_endpoint_id ep_id)
  1520. {
  1521. struct wmi_data_hdr *data_hdr;
  1522. int ret;
  1523. if (WARN_ON(skb == NULL || ep_id == wmi->ep_id))
  1524. return -EINVAL;
  1525. skb_push(skb, sizeof(struct wmi_data_hdr));
  1526. data_hdr = (struct wmi_data_hdr *) skb->data;
  1527. data_hdr->info = SYNC_MSGTYPE << WMI_DATA_HDR_MSG_TYPE_SHIFT;
  1528. data_hdr->info3 = 0;
  1529. ret = ath6kl_control_tx(wmi->parent_dev, skb, ep_id);
  1530. return ret;
  1531. }
  1532. static int ath6kl_wmi_sync_point(struct wmi *wmi)
  1533. {
  1534. struct sk_buff *skb;
  1535. struct wmi_sync_cmd *cmd;
  1536. struct wmi_data_sync_bufs data_sync_bufs[WMM_NUM_AC];
  1537. enum htc_endpoint_id ep_id;
  1538. u8 index, num_pri_streams = 0;
  1539. int ret = 0;
  1540. memset(data_sync_bufs, 0, sizeof(data_sync_bufs));
  1541. spin_lock_bh(&wmi->lock);
  1542. for (index = 0; index < WMM_NUM_AC; index++) {
  1543. if (wmi->fat_pipe_exist & (1 << index)) {
  1544. num_pri_streams++;
  1545. data_sync_bufs[num_pri_streams - 1].traffic_class =
  1546. index;
  1547. }
  1548. }
  1549. spin_unlock_bh(&wmi->lock);
  1550. skb = ath6kl_wmi_get_new_buf(sizeof(*cmd));
  1551. if (!skb) {
  1552. ret = -ENOMEM;
  1553. goto free_skb;
  1554. }
  1555. cmd = (struct wmi_sync_cmd *) skb->data;
  1556. /*
  1557. * In the SYNC cmd sent on the control Ep, send a bitmap
  1558. * of the data eps on which the Data Sync will be sent
  1559. */
  1560. cmd->data_sync_map = wmi->fat_pipe_exist;
  1561. for (index = 0; index < num_pri_streams; index++) {
  1562. data_sync_bufs[index].skb = ath6kl_buf_alloc(0);
  1563. if (data_sync_bufs[index].skb == NULL) {
  1564. ret = -ENOMEM;
  1565. break;
  1566. }
  1567. }
  1568. /*
  1569. * If buffer allocation for any of the dataSync fails,
  1570. * then do not send the Synchronize cmd on the control ep
  1571. */
  1572. if (ret)
  1573. goto free_skb;
  1574. /*
  1575. * Send sync cmd followed by sync data messages on all
  1576. * endpoints being used
  1577. */
  1578. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_SYNCHRONIZE_CMDID,
  1579. NO_SYNC_WMIFLAG);
  1580. if (ret)
  1581. goto free_skb;
  1582. /* cmd buffer sent, we no longer own it */
  1583. skb = NULL;
  1584. for (index = 0; index < num_pri_streams; index++) {
  1585. if (WARN_ON(!data_sync_bufs[index].skb))
  1586. break;
  1587. ep_id = ath6kl_ac2_endpoint_id(wmi->parent_dev,
  1588. data_sync_bufs[index].
  1589. traffic_class);
  1590. ret =
  1591. ath6kl_wmi_data_sync_send(wmi, data_sync_bufs[index].skb,
  1592. ep_id);
  1593. if (ret)
  1594. break;
  1595. data_sync_bufs[index].skb = NULL;
  1596. }
  1597. free_skb:
  1598. /* free up any resources left over (possibly due to an error) */
  1599. if (skb)
  1600. dev_kfree_skb(skb);
  1601. for (index = 0; index < num_pri_streams; index++) {
  1602. if (data_sync_bufs[index].skb != NULL) {
  1603. dev_kfree_skb((struct sk_buff *)data_sync_bufs[index].
  1604. skb);
  1605. }
  1606. }
  1607. return ret;
  1608. }
  1609. int ath6kl_wmi_create_pstream_cmd(struct wmi *wmi,
  1610. struct wmi_create_pstream_cmd *params)
  1611. {
  1612. struct sk_buff *skb;
  1613. struct wmi_create_pstream_cmd *cmd;
  1614. u8 fatpipe_exist_for_ac = 0;
  1615. s32 min_phy = 0;
  1616. s32 nominal_phy = 0;
  1617. int ret;
  1618. if (!((params->user_pri < 8) &&
  1619. (params->user_pri <= 0x7) &&
  1620. (up_to_ac[params->user_pri & 0x7] == params->traffic_class) &&
  1621. (params->traffic_direc == UPLINK_TRAFFIC ||
  1622. params->traffic_direc == DNLINK_TRAFFIC ||
  1623. params->traffic_direc == BIDIR_TRAFFIC) &&
  1624. (params->traffic_type == TRAFFIC_TYPE_APERIODIC ||
  1625. params->traffic_type == TRAFFIC_TYPE_PERIODIC) &&
  1626. (params->voice_psc_cap == DISABLE_FOR_THIS_AC ||
  1627. params->voice_psc_cap == ENABLE_FOR_THIS_AC ||
  1628. params->voice_psc_cap == ENABLE_FOR_ALL_AC) &&
  1629. (params->tsid == WMI_IMPLICIT_PSTREAM ||
  1630. params->tsid <= WMI_MAX_THINSTREAM))) {
  1631. return -EINVAL;
  1632. }
  1633. /*
  1634. * Check nominal PHY rate is >= minimalPHY,
  1635. * so that DUT can allow TSRS IE
  1636. */
  1637. /* Get the physical rate (units of bps) */
  1638. min_phy = ((le32_to_cpu(params->min_phy_rate) / 1000) / 1000);
  1639. /* Check minimal phy < nominal phy rate */
  1640. if (params->nominal_phy >= min_phy) {
  1641. /* unit of 500 kbps */
  1642. nominal_phy = (params->nominal_phy * 1000) / 500;
  1643. ath6kl_dbg(ATH6KL_DBG_WMI,
  1644. "TSRS IE enabled::MinPhy %x->NominalPhy ===> %x\n",
  1645. min_phy, nominal_phy);
  1646. params->nominal_phy = nominal_phy;
  1647. } else {
  1648. params->nominal_phy = 0;
  1649. }
  1650. skb = ath6kl_wmi_get_new_buf(sizeof(*cmd));
  1651. if (!skb)
  1652. return -ENOMEM;
  1653. ath6kl_dbg(ATH6KL_DBG_WMI,
  1654. "sending create_pstream_cmd: ac=%d tsid:%d\n",
  1655. params->traffic_class, params->tsid);
  1656. cmd = (struct wmi_create_pstream_cmd *) skb->data;
  1657. memcpy(cmd, params, sizeof(*cmd));
  1658. /* This is an implicitly created Fat pipe */
  1659. if ((u32) params->tsid == (u32) WMI_IMPLICIT_PSTREAM) {
  1660. spin_lock_bh(&wmi->lock);
  1661. fatpipe_exist_for_ac = (wmi->fat_pipe_exist &
  1662. (1 << params->traffic_class));
  1663. wmi->fat_pipe_exist |= (1 << params->traffic_class);
  1664. spin_unlock_bh(&wmi->lock);
  1665. } else {
  1666. /* explicitly created thin stream within a fat pipe */
  1667. spin_lock_bh(&wmi->lock);
  1668. fatpipe_exist_for_ac = (wmi->fat_pipe_exist &
  1669. (1 << params->traffic_class));
  1670. wmi->stream_exist_for_ac[params->traffic_class] |=
  1671. (1 << params->tsid);
  1672. /*
  1673. * If a thinstream becomes active, the fat pipe automatically
  1674. * becomes active
  1675. */
  1676. wmi->fat_pipe_exist |= (1 << params->traffic_class);
  1677. spin_unlock_bh(&wmi->lock);
  1678. }
  1679. /*
  1680. * Indicate activty change to driver layer only if this is the
  1681. * first TSID to get created in this AC explicitly or an implicit
  1682. * fat pipe is getting created.
  1683. */
  1684. if (!fatpipe_exist_for_ac)
  1685. ath6kl_indicate_tx_activity(wmi->parent_dev,
  1686. params->traffic_class, true);
  1687. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_CREATE_PSTREAM_CMDID,
  1688. NO_SYNC_WMIFLAG);
  1689. return ret;
  1690. }
  1691. int ath6kl_wmi_delete_pstream_cmd(struct wmi *wmi, u8 traffic_class, u8 tsid)
  1692. {
  1693. struct sk_buff *skb;
  1694. struct wmi_delete_pstream_cmd *cmd;
  1695. u16 active_tsids = 0;
  1696. int ret;
  1697. if (traffic_class > 3) {
  1698. ath6kl_err("invalid traffic class: %d\n", traffic_class);
  1699. return -EINVAL;
  1700. }
  1701. skb = ath6kl_wmi_get_new_buf(sizeof(*cmd));
  1702. if (!skb)
  1703. return -ENOMEM;
  1704. cmd = (struct wmi_delete_pstream_cmd *) skb->data;
  1705. cmd->traffic_class = traffic_class;
  1706. cmd->tsid = tsid;
  1707. spin_lock_bh(&wmi->lock);
  1708. active_tsids = wmi->stream_exist_for_ac[traffic_class];
  1709. spin_unlock_bh(&wmi->lock);
  1710. if (!(active_tsids & (1 << tsid))) {
  1711. dev_kfree_skb(skb);
  1712. ath6kl_dbg(ATH6KL_DBG_WMI,
  1713. "TSID %d doesn't exist for traffic class: %d\n",
  1714. tsid, traffic_class);
  1715. return -ENODATA;
  1716. }
  1717. ath6kl_dbg(ATH6KL_DBG_WMI,
  1718. "sending delete_pstream_cmd: traffic class: %d tsid=%d\n",
  1719. traffic_class, tsid);
  1720. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_DELETE_PSTREAM_CMDID,
  1721. SYNC_BEFORE_WMIFLAG);
  1722. spin_lock_bh(&wmi->lock);
  1723. wmi->stream_exist_for_ac[traffic_class] &= ~(1 << tsid);
  1724. active_tsids = wmi->stream_exist_for_ac[traffic_class];
  1725. spin_unlock_bh(&wmi->lock);
  1726. /*
  1727. * Indicate stream inactivity to driver layer only if all tsids
  1728. * within this AC are deleted.
  1729. */
  1730. if (!active_tsids) {
  1731. ath6kl_indicate_tx_activity(wmi->parent_dev,
  1732. traffic_class, false);
  1733. wmi->fat_pipe_exist &= ~(1 << traffic_class);
  1734. }
  1735. return ret;
  1736. }
  1737. int ath6kl_wmi_set_ip_cmd(struct wmi *wmi, struct wmi_set_ip_cmd *ip_cmd)
  1738. {
  1739. struct sk_buff *skb;
  1740. struct wmi_set_ip_cmd *cmd;
  1741. int ret;
  1742. /* Multicast address are not valid */
  1743. if ((*((u8 *) &ip_cmd->ips[0]) >= 0xE0) ||
  1744. (*((u8 *) &ip_cmd->ips[1]) >= 0xE0))
  1745. return -EINVAL;
  1746. skb = ath6kl_wmi_get_new_buf(sizeof(struct wmi_set_ip_cmd));
  1747. if (!skb)
  1748. return -ENOMEM;
  1749. cmd = (struct wmi_set_ip_cmd *) skb->data;
  1750. memcpy(cmd, ip_cmd, sizeof(struct wmi_set_ip_cmd));
  1751. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_SET_IP_CMDID, NO_SYNC_WMIFLAG);
  1752. return ret;
  1753. }
  1754. static int ath6kl_wmi_get_wow_list_event_rx(struct wmi *wmi, u8 * datap,
  1755. int len)
  1756. {
  1757. if (len < sizeof(struct wmi_get_wow_list_reply))
  1758. return -EINVAL;
  1759. return 0;
  1760. }
  1761. static int ath6kl_wmi_cmd_send_xtnd(struct wmi *wmi, struct sk_buff *skb,
  1762. enum wmix_command_id cmd_id,
  1763. enum wmi_sync_flag sync_flag)
  1764. {
  1765. struct wmix_cmd_hdr *cmd_hdr;
  1766. int ret;
  1767. skb_push(skb, sizeof(struct wmix_cmd_hdr));
  1768. cmd_hdr = (struct wmix_cmd_hdr *) skb->data;
  1769. cmd_hdr->cmd_id = cpu_to_le32(cmd_id);
  1770. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_EXTENSION_CMDID, sync_flag);
  1771. return ret;
  1772. }
  1773. int ath6kl_wmi_get_challenge_resp_cmd(struct wmi *wmi, u32 cookie, u32 source)
  1774. {
  1775. struct sk_buff *skb;
  1776. struct wmix_hb_challenge_resp_cmd *cmd;
  1777. int ret;
  1778. skb = ath6kl_wmi_get_new_buf(sizeof(*cmd));
  1779. if (!skb)
  1780. return -ENOMEM;
  1781. cmd = (struct wmix_hb_challenge_resp_cmd *) skb->data;
  1782. cmd->cookie = cpu_to_le32(cookie);
  1783. cmd->source = cpu_to_le32(source);
  1784. ret = ath6kl_wmi_cmd_send_xtnd(wmi, skb, WMIX_HB_CHALLENGE_RESP_CMDID,
  1785. NO_SYNC_WMIFLAG);
  1786. return ret;
  1787. }
  1788. int ath6kl_wmi_get_stats_cmd(struct wmi *wmi)
  1789. {
  1790. return ath6kl_wmi_simple_cmd(wmi, WMI_GET_STATISTICS_CMDID);
  1791. }
  1792. int ath6kl_wmi_set_tx_pwr_cmd(struct wmi *wmi, u8 dbM)
  1793. {
  1794. struct sk_buff *skb;
  1795. struct wmi_set_tx_pwr_cmd *cmd;
  1796. int ret;
  1797. skb = ath6kl_wmi_get_new_buf(sizeof(struct wmi_set_tx_pwr_cmd));
  1798. if (!skb)
  1799. return -ENOMEM;
  1800. cmd = (struct wmi_set_tx_pwr_cmd *) skb->data;
  1801. cmd->dbM = dbM;
  1802. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_SET_TX_PWR_CMDID,
  1803. NO_SYNC_WMIFLAG);
  1804. return ret;
  1805. }
  1806. int ath6kl_wmi_get_tx_pwr_cmd(struct wmi *wmi)
  1807. {
  1808. return ath6kl_wmi_simple_cmd(wmi, WMI_GET_TX_PWR_CMDID);
  1809. }
  1810. void ath6kl_wmi_get_current_bssid(struct wmi *wmi, u8 *bssid)
  1811. {
  1812. if (bssid)
  1813. memcpy(bssid, wmi->bssid, ETH_ALEN);
  1814. }
  1815. int ath6kl_wmi_set_lpreamble_cmd(struct wmi *wmi, u8 status, u8 preamble_policy)
  1816. {
  1817. struct sk_buff *skb;
  1818. struct wmi_set_lpreamble_cmd *cmd;
  1819. int ret;
  1820. skb = ath6kl_wmi_get_new_buf(sizeof(struct wmi_set_lpreamble_cmd));
  1821. if (!skb)
  1822. return -ENOMEM;
  1823. cmd = (struct wmi_set_lpreamble_cmd *) skb->data;
  1824. cmd->status = status;
  1825. cmd->preamble_policy = preamble_policy;
  1826. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_SET_LPREAMBLE_CMDID,
  1827. NO_SYNC_WMIFLAG);
  1828. return ret;
  1829. }
  1830. int ath6kl_wmi_set_rts_cmd(struct wmi *wmi, u16 threshold)
  1831. {
  1832. struct sk_buff *skb;
  1833. struct wmi_set_rts_cmd *cmd;
  1834. int ret;
  1835. skb = ath6kl_wmi_get_new_buf(sizeof(struct wmi_set_rts_cmd));
  1836. if (!skb)
  1837. return -ENOMEM;
  1838. cmd = (struct wmi_set_rts_cmd *) skb->data;
  1839. cmd->threshold = cpu_to_le16(threshold);
  1840. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_SET_RTS_CMDID, NO_SYNC_WMIFLAG);
  1841. return ret;
  1842. }
  1843. int ath6kl_wmi_set_wmm_txop(struct wmi *wmi, enum wmi_txop_cfg cfg)
  1844. {
  1845. struct sk_buff *skb;
  1846. struct wmi_set_wmm_txop_cmd *cmd;
  1847. int ret;
  1848. if (!((cfg == WMI_TXOP_DISABLED) || (cfg == WMI_TXOP_ENABLED)))
  1849. return -EINVAL;
  1850. skb = ath6kl_wmi_get_new_buf(sizeof(struct wmi_set_wmm_txop_cmd));
  1851. if (!skb)
  1852. return -ENOMEM;
  1853. cmd = (struct wmi_set_wmm_txop_cmd *) skb->data;
  1854. cmd->txop_enable = cfg;
  1855. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_SET_WMM_TXOP_CMDID,
  1856. NO_SYNC_WMIFLAG);
  1857. return ret;
  1858. }
  1859. int ath6kl_wmi_set_keepalive_cmd(struct wmi *wmi, u8 keep_alive_intvl)
  1860. {
  1861. struct sk_buff *skb;
  1862. struct wmi_set_keepalive_cmd *cmd;
  1863. int ret;
  1864. skb = ath6kl_wmi_get_new_buf(sizeof(*cmd));
  1865. if (!skb)
  1866. return -ENOMEM;
  1867. cmd = (struct wmi_set_keepalive_cmd *) skb->data;
  1868. cmd->keep_alive_intvl = keep_alive_intvl;
  1869. wmi->keep_alive_intvl = keep_alive_intvl;
  1870. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_SET_KEEPALIVE_CMDID,
  1871. NO_SYNC_WMIFLAG);
  1872. return ret;
  1873. }
  1874. s32 ath6kl_wmi_get_rate(s8 rate_index)
  1875. {
  1876. if (rate_index == RATE_AUTO)
  1877. return 0;
  1878. return wmi_rate_tbl[(u32) rate_index][0];
  1879. }
  1880. void ath6kl_wmi_node_return(struct wmi *wmi, struct bss *bss)
  1881. {
  1882. if (bss)
  1883. wlan_node_return(&wmi->parent_dev->scan_table, bss);
  1884. }
  1885. struct bss *ath6kl_wmi_find_ssid_node(struct wmi *wmi, u8 * ssid,
  1886. u32 ssid_len, bool is_wpa2,
  1887. bool match_ssid)
  1888. {
  1889. struct bss *node = NULL;
  1890. node = wlan_find_ssid_node(&wmi->parent_dev->scan_table, ssid,
  1891. ssid_len, is_wpa2, match_ssid);
  1892. return node;
  1893. }
  1894. struct bss *ath6kl_wmi_find_node(struct wmi *wmi, const u8 * mac_addr)
  1895. {
  1896. struct bss *ni = NULL;
  1897. ni = wlan_find_node(&wmi->parent_dev->scan_table, mac_addr);
  1898. return ni;
  1899. }
  1900. void ath6kl_wmi_node_free(struct wmi *wmi, const u8 * mac_addr)
  1901. {
  1902. struct bss *ni = NULL;
  1903. ni = wlan_find_node(&wmi->parent_dev->scan_table, mac_addr);
  1904. if (ni != NULL)
  1905. wlan_node_reclaim(&wmi->parent_dev->scan_table, ni);
  1906. return;
  1907. }
  1908. static int ath6kl_wmi_get_pmkid_list_event_rx(struct wmi *wmi, u8 *datap,
  1909. u32 len)
  1910. {
  1911. struct wmi_pmkid_list_reply *reply;
  1912. u32 expected_len;
  1913. if (len < sizeof(struct wmi_pmkid_list_reply))
  1914. return -EINVAL;
  1915. reply = (struct wmi_pmkid_list_reply *)datap;
  1916. expected_len = sizeof(reply->num_pmkid) +
  1917. le32_to_cpu(reply->num_pmkid) * WMI_PMKID_LEN;
  1918. if (len < expected_len)
  1919. return -EINVAL;
  1920. return 0;
  1921. }
  1922. static int ath6kl_wmi_addba_req_event_rx(struct wmi *wmi, u8 *datap, int len)
  1923. {
  1924. struct wmi_addba_req_event *cmd = (struct wmi_addba_req_event *) datap;
  1925. aggr_recv_addba_req_evt(wmi->parent_dev, cmd->tid,
  1926. le16_to_cpu(cmd->st_seq_no), cmd->win_sz);
  1927. return 0;
  1928. }
  1929. static int ath6kl_wmi_delba_req_event_rx(struct wmi *wmi, u8 *datap, int len)
  1930. {
  1931. struct wmi_delba_event *cmd = (struct wmi_delba_event *) datap;
  1932. aggr_recv_delba_req_evt(wmi->parent_dev, cmd->tid);
  1933. return 0;
  1934. }
  1935. /* AP mode functions */
  1936. static int ath6kl_wmi_pspoll_event_rx(struct wmi *wmi, u8 *datap, int len)
  1937. {
  1938. struct wmi_pspoll_event *ev;
  1939. if (len < sizeof(struct wmi_pspoll_event))
  1940. return -EINVAL;
  1941. ev = (struct wmi_pspoll_event *) datap;
  1942. ath6kl_pspoll_event(wmi->parent_dev, le16_to_cpu(ev->aid));
  1943. return 0;
  1944. }
  1945. static int ath6kl_wmi_dtimexpiry_event_rx(struct wmi *wmi, u8 *datap, int len)
  1946. {
  1947. ath6kl_dtimexpiry_event(wmi->parent_dev);
  1948. return 0;
  1949. }
  1950. int ath6kl_wmi_set_pvb_cmd(struct wmi *wmi, u16 aid, bool flag)
  1951. {
  1952. struct sk_buff *skb;
  1953. struct wmi_ap_set_pvb_cmd *cmd;
  1954. int ret;
  1955. skb = ath6kl_wmi_get_new_buf(sizeof(struct wmi_ap_set_pvb_cmd));
  1956. if (!skb)
  1957. return -ENOMEM;
  1958. cmd = (struct wmi_ap_set_pvb_cmd *) skb->data;
  1959. cmd->aid = cpu_to_le16(aid);
  1960. cmd->flag = cpu_to_le32(flag);
  1961. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_AP_SET_PVB_CMDID,
  1962. NO_SYNC_WMIFLAG);
  1963. return 0;
  1964. }
  1965. int ath6kl_wmi_set_rx_frame_format_cmd(struct wmi *wmi, u8 rx_meta_ver,
  1966. bool rx_dot11_hdr, bool defrag_on_host)
  1967. {
  1968. struct sk_buff *skb;
  1969. struct wmi_rx_frame_format_cmd *cmd;
  1970. int ret;
  1971. skb = ath6kl_wmi_get_new_buf(sizeof(*cmd));
  1972. if (!skb)
  1973. return -ENOMEM;
  1974. cmd = (struct wmi_rx_frame_format_cmd *) skb->data;
  1975. cmd->dot11_hdr = rx_dot11_hdr ? 1 : 0;
  1976. cmd->defrag_on_host = defrag_on_host ? 1 : 0;
  1977. cmd->meta_ver = rx_meta_ver;
  1978. /* Delete the local aggr state, on host */
  1979. ret = ath6kl_wmi_cmd_send(wmi, skb, WMI_RX_FRAME_FORMAT_CMDID,
  1980. NO_SYNC_WMIFLAG);
  1981. return ret;
  1982. }
  1983. static int ath6kl_wmi_control_rx_xtnd(struct wmi *wmi, struct sk_buff *skb)
  1984. {
  1985. struct wmix_cmd_hdr *cmd;
  1986. u32 len;
  1987. u16 id;
  1988. u8 *datap;
  1989. int ret = 0;
  1990. if (skb->len < sizeof(struct wmix_cmd_hdr)) {
  1991. ath6kl_err("bad packet 1\n");
  1992. wmi->stat.cmd_len_err++;
  1993. return -EINVAL;
  1994. }
  1995. cmd = (struct wmix_cmd_hdr *) skb->data;
  1996. id = le32_to_cpu(cmd->cmd_id);
  1997. skb_pull(skb, sizeof(struct wmix_cmd_hdr));
  1998. datap = skb->data;
  1999. len = skb->len;
  2000. switch (id) {
  2001. case WMIX_HB_CHALLENGE_RESP_EVENTID:
  2002. break;
  2003. case WMIX_DBGLOG_EVENTID:
  2004. break;
  2005. default:
  2006. ath6kl_err("unknown cmd id 0x%x\n", id);
  2007. wmi->stat.cmd_id_err++;
  2008. ret = -EINVAL;
  2009. break;
  2010. }
  2011. return ret;
  2012. }
  2013. /* Control Path */
  2014. int ath6kl_wmi_control_rx(struct wmi *wmi, struct sk_buff *skb)
  2015. {
  2016. struct wmi_cmd_hdr *cmd;
  2017. u32 len;
  2018. u16 id;
  2019. u8 *datap;
  2020. int ret = 0;
  2021. if (WARN_ON(skb == NULL))
  2022. return -EINVAL;
  2023. if (skb->len < sizeof(struct wmi_cmd_hdr)) {
  2024. ath6kl_err("bad packet 1\n");
  2025. dev_kfree_skb(skb);
  2026. wmi->stat.cmd_len_err++;
  2027. return -EINVAL;
  2028. }
  2029. cmd = (struct wmi_cmd_hdr *) skb->data;
  2030. id = le16_to_cpu(cmd->cmd_id);
  2031. skb_pull(skb, sizeof(struct wmi_cmd_hdr));
  2032. datap = skb->data;
  2033. len = skb->len;
  2034. ath6kl_dbg(ATH6KL_DBG_WMI, "%s: wmi id: %d\n", __func__, id);
  2035. ath6kl_dbg_dump(ATH6KL_DBG_RAW_BYTES, "msg payload ", datap, len);
  2036. switch (id) {
  2037. case WMI_GET_BITRATE_CMDID:
  2038. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_GET_BITRATE_CMDID\n");
  2039. ret = ath6kl_wmi_bitrate_reply_rx(wmi, datap, len);
  2040. break;
  2041. case WMI_GET_CHANNEL_LIST_CMDID:
  2042. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_GET_CHANNEL_LIST_CMDID\n");
  2043. ret = ath6kl_wmi_ch_list_reply_rx(wmi, datap, len);
  2044. break;
  2045. case WMI_GET_TX_PWR_CMDID:
  2046. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_GET_TX_PWR_CMDID\n");
  2047. ret = ath6kl_wmi_tx_pwr_reply_rx(wmi, datap, len);
  2048. break;
  2049. case WMI_READY_EVENTID:
  2050. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_READY_EVENTID\n");
  2051. ret = ath6kl_wmi_ready_event_rx(wmi, datap, len);
  2052. break;
  2053. case WMI_CONNECT_EVENTID:
  2054. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_CONNECT_EVENTID\n");
  2055. ret = ath6kl_wmi_connect_event_rx(wmi, datap, len);
  2056. break;
  2057. case WMI_DISCONNECT_EVENTID:
  2058. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_DISCONNECT_EVENTID\n");
  2059. ret = ath6kl_wmi_disconnect_event_rx(wmi, datap, len);
  2060. break;
  2061. case WMI_PEER_NODE_EVENTID:
  2062. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_PEER_NODE_EVENTID\n");
  2063. ret = ath6kl_wmi_peer_node_event_rx(wmi, datap, len);
  2064. break;
  2065. case WMI_TKIP_MICERR_EVENTID:
  2066. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_TKIP_MICERR_EVENTID\n");
  2067. ret = ath6kl_wmi_tkip_micerr_event_rx(wmi, datap, len);
  2068. break;
  2069. case WMI_BSSINFO_EVENTID:
  2070. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_BSSINFO_EVENTID\n");
  2071. ath6kl_wmi_convert_bssinfo_hdr2_to_hdr(skb, datap);
  2072. ret = ath6kl_wmi_bssinfo_event_rx(wmi, skb->data, skb->len);
  2073. break;
  2074. case WMI_REGDOMAIN_EVENTID:
  2075. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_REGDOMAIN_EVENTID\n");
  2076. break;
  2077. case WMI_PSTREAM_TIMEOUT_EVENTID:
  2078. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_PSTREAM_TIMEOUT_EVENTID\n");
  2079. ret = ath6kl_wmi_pstream_timeout_event_rx(wmi, datap, len);
  2080. break;
  2081. case WMI_NEIGHBOR_REPORT_EVENTID:
  2082. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_NEIGHBOR_REPORT_EVENTID\n");
  2083. break;
  2084. case WMI_SCAN_COMPLETE_EVENTID:
  2085. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_SCAN_COMPLETE_EVENTID\n");
  2086. ret = ath6kl_wmi_scan_complete_rx(wmi, datap, len);
  2087. break;
  2088. case WMI_CMDERROR_EVENTID:
  2089. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_CMDERROR_EVENTID\n");
  2090. ret = ath6kl_wmi_error_event_rx(wmi, datap, len);
  2091. break;
  2092. case WMI_REPORT_STATISTICS_EVENTID:
  2093. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_REPORT_STATISTICS_EVENTID\n");
  2094. ret = ath6kl_wmi_stats_event_rx(wmi, datap, len);
  2095. break;
  2096. case WMI_RSSI_THRESHOLD_EVENTID:
  2097. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_RSSI_THRESHOLD_EVENTID\n");
  2098. ret = ath6kl_wmi_rssi_threshold_event_rx(wmi, datap, len);
  2099. break;
  2100. case WMI_ERROR_REPORT_EVENTID:
  2101. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_ERROR_REPORT_EVENTID\n");
  2102. break;
  2103. case WMI_OPT_RX_FRAME_EVENTID:
  2104. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_OPT_RX_FRAME_EVENTID\n");
  2105. ret = ath6kl_wmi_opt_frame_event_rx(wmi, datap, len);
  2106. break;
  2107. case WMI_REPORT_ROAM_TBL_EVENTID:
  2108. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_REPORT_ROAM_TBL_EVENTID\n");
  2109. break;
  2110. case WMI_EXTENSION_EVENTID:
  2111. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_EXTENSION_EVENTID\n");
  2112. ret = ath6kl_wmi_control_rx_xtnd(wmi, skb);
  2113. break;
  2114. case WMI_CAC_EVENTID:
  2115. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_CAC_EVENTID\n");
  2116. ret = ath6kl_wmi_cac_event_rx(wmi, datap, len);
  2117. break;
  2118. case WMI_CHANNEL_CHANGE_EVENTID:
  2119. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_CHANNEL_CHANGE_EVENTID\n");
  2120. break;
  2121. case WMI_REPORT_ROAM_DATA_EVENTID:
  2122. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_REPORT_ROAM_DATA_EVENTID\n");
  2123. break;
  2124. case WMI_GET_FIXRATES_CMDID:
  2125. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_GET_FIXRATES_CMDID\n");
  2126. ret = ath6kl_wmi_ratemask_reply_rx(wmi, datap, len);
  2127. break;
  2128. case WMI_TX_RETRY_ERR_EVENTID:
  2129. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_TX_RETRY_ERR_EVENTID\n");
  2130. break;
  2131. case WMI_SNR_THRESHOLD_EVENTID:
  2132. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_SNR_THRESHOLD_EVENTID\n");
  2133. ret = ath6kl_wmi_snr_threshold_event_rx(wmi, datap, len);
  2134. break;
  2135. case WMI_LQ_THRESHOLD_EVENTID:
  2136. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_LQ_THRESHOLD_EVENTID\n");
  2137. break;
  2138. case WMI_APLIST_EVENTID:
  2139. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_APLIST_EVENTID\n");
  2140. ret = ath6kl_wmi_aplist_event_rx(wmi, datap, len);
  2141. break;
  2142. case WMI_GET_KEEPALIVE_CMDID:
  2143. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_GET_KEEPALIVE_CMDID\n");
  2144. ret = ath6kl_wmi_keepalive_reply_rx(wmi, datap, len);
  2145. break;
  2146. case WMI_GET_WOW_LIST_EVENTID:
  2147. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_GET_WOW_LIST_EVENTID\n");
  2148. ret = ath6kl_wmi_get_wow_list_event_rx(wmi, datap, len);
  2149. break;
  2150. case WMI_GET_PMKID_LIST_EVENTID:
  2151. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_GET_PMKID_LIST_EVENTID\n");
  2152. ret = ath6kl_wmi_get_pmkid_list_event_rx(wmi, datap, len);
  2153. break;
  2154. case WMI_PSPOLL_EVENTID:
  2155. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_PSPOLL_EVENTID\n");
  2156. ret = ath6kl_wmi_pspoll_event_rx(wmi, datap, len);
  2157. break;
  2158. case WMI_DTIMEXPIRY_EVENTID:
  2159. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_DTIMEXPIRY_EVENTID\n");
  2160. ret = ath6kl_wmi_dtimexpiry_event_rx(wmi, datap, len);
  2161. break;
  2162. case WMI_SET_PARAMS_REPLY_EVENTID:
  2163. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_SET_PARAMS_REPLY_EVENTID\n");
  2164. break;
  2165. case WMI_ADDBA_REQ_EVENTID:
  2166. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_ADDBA_REQ_EVENTID\n");
  2167. ret = ath6kl_wmi_addba_req_event_rx(wmi, datap, len);
  2168. break;
  2169. case WMI_ADDBA_RESP_EVENTID:
  2170. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_ADDBA_RESP_EVENTID\n");
  2171. break;
  2172. case WMI_DELBA_REQ_EVENTID:
  2173. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_DELBA_REQ_EVENTID\n");
  2174. ret = ath6kl_wmi_delba_req_event_rx(wmi, datap, len);
  2175. break;
  2176. case WMI_REPORT_BTCOEX_CONFIG_EVENTID:
  2177. ath6kl_dbg(ATH6KL_DBG_WMI,
  2178. "WMI_REPORT_BTCOEX_CONFIG_EVENTID\n");
  2179. break;
  2180. case WMI_REPORT_BTCOEX_STATS_EVENTID:
  2181. ath6kl_dbg(ATH6KL_DBG_WMI,
  2182. "WMI_REPORT_BTCOEX_STATS_EVENTID\n");
  2183. break;
  2184. case WMI_TX_COMPLETE_EVENTID:
  2185. ath6kl_dbg(ATH6KL_DBG_WMI, "WMI_TX_COMPLETE_EVENTID\n");
  2186. ret = ath6kl_wmi_tx_complete_event_rx(datap, len);
  2187. break;
  2188. default:
  2189. ath6kl_dbg(ATH6KL_DBG_WMI, "unknown cmd id 0x%x\n", id);
  2190. wmi->stat.cmd_id_err++;
  2191. ret = -EINVAL;
  2192. break;
  2193. }
  2194. dev_kfree_skb(skb);
  2195. return ret;
  2196. }
  2197. static void ath6kl_wmi_qos_state_init(struct wmi *wmi)
  2198. {
  2199. if (!wmi)
  2200. return;
  2201. spin_lock_bh(&wmi->lock);
  2202. wmi->fat_pipe_exist = 0;
  2203. memset(wmi->stream_exist_for_ac, 0, sizeof(wmi->stream_exist_for_ac));
  2204. spin_unlock_bh(&wmi->lock);
  2205. }
  2206. void *ath6kl_wmi_init(struct ath6kl *dev)
  2207. {
  2208. struct wmi *wmi;
  2209. wmi = kzalloc(sizeof(struct wmi), GFP_KERNEL);
  2210. if (!wmi)
  2211. return NULL;
  2212. spin_lock_init(&wmi->lock);
  2213. wmi->parent_dev = dev;
  2214. wlan_node_table_init(wmi, &dev->scan_table);
  2215. ath6kl_wmi_qos_state_init(wmi);
  2216. wmi->pwr_mode = REC_POWER;
  2217. wmi->phy_mode = WMI_11G_MODE;
  2218. wmi->pair_crypto_type = NONE_CRYPT;
  2219. wmi->grp_crypto_type = NONE_CRYPT;
  2220. wmi->ht_allowed[A_BAND_24GHZ] = 1;
  2221. wmi->ht_allowed[A_BAND_5GHZ] = 1;
  2222. return wmi;
  2223. }
  2224. void ath6kl_wmi_shutdown(struct wmi *wmi)
  2225. {
  2226. if (!wmi)
  2227. return;
  2228. wlan_node_table_cleanup(&wmi->parent_dev->scan_table);
  2229. kfree(wmi);
  2230. }