p2p.c 122 KB

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  1. /*
  2. * Wi-Fi Direct - P2P module
  3. * Copyright (c) 2009-2010, Atheros Communications
  4. *
  5. * This software may be distributed under the terms of the BSD license.
  6. * See README for more details.
  7. */
  8. #include "includes.h"
  9. #include "common.h"
  10. #include "eloop.h"
  11. #include "common/ieee802_11_defs.h"
  12. #include "common/ieee802_11_common.h"
  13. #include "wps/wps_i.h"
  14. #include "p2p_i.h"
  15. #include "p2p.h"
  16. static void p2p_state_timeout(void *eloop_ctx, void *timeout_ctx);
  17. static void p2p_device_free(struct p2p_data *p2p, struct p2p_device *dev);
  18. static void p2p_process_presence_req(struct p2p_data *p2p, const u8 *da,
  19. const u8 *sa, const u8 *data, size_t len,
  20. int rx_freq);
  21. static void p2p_process_presence_resp(struct p2p_data *p2p, const u8 *da,
  22. const u8 *sa, const u8 *data,
  23. size_t len);
  24. static void p2p_ext_listen_timeout(void *eloop_ctx, void *timeout_ctx);
  25. static void p2p_scan_timeout(void *eloop_ctx, void *timeout_ctx);
  26. /*
  27. * p2p_scan recovery timeout
  28. *
  29. * Many drivers are using 30 second timeout on scan results. Allow a bit larger
  30. * timeout for this to avoid hitting P2P timeout unnecessarily.
  31. */
  32. #define P2P_SCAN_TIMEOUT 35
  33. /**
  34. * P2P_PEER_EXPIRATION_AGE - Number of seconds after which inactive peer
  35. * entries will be removed
  36. */
  37. #ifndef P2P_PEER_EXPIRATION_AGE
  38. #define P2P_PEER_EXPIRATION_AGE 60
  39. #endif /* P2P_PEER_EXPIRATION_AGE */
  40. #define P2P_PEER_EXPIRATION_INTERVAL (P2P_PEER_EXPIRATION_AGE / 2)
  41. static void p2p_expire_peers(struct p2p_data *p2p)
  42. {
  43. struct p2p_device *dev, *n;
  44. struct os_reltime now;
  45. size_t i;
  46. os_get_reltime(&now);
  47. dl_list_for_each_safe(dev, n, &p2p->devices, struct p2p_device, list) {
  48. if (dev->last_seen.sec + P2P_PEER_EXPIRATION_AGE >= now.sec)
  49. continue;
  50. if (dev == p2p->go_neg_peer) {
  51. /*
  52. * GO Negotiation is in progress with the peer, so
  53. * don't expire the peer entry until GO Negotiation
  54. * fails or times out.
  55. */
  56. continue;
  57. }
  58. if (p2p->cfg->go_connected &&
  59. p2p->cfg->go_connected(p2p->cfg->cb_ctx,
  60. dev->info.p2p_device_addr)) {
  61. /*
  62. * We are connected as a client to a group in which the
  63. * peer is the GO, so do not expire the peer entry.
  64. */
  65. os_get_reltime(&dev->last_seen);
  66. continue;
  67. }
  68. for (i = 0; i < p2p->num_groups; i++) {
  69. if (p2p_group_is_client_connected(
  70. p2p->groups[i], dev->info.p2p_device_addr))
  71. break;
  72. }
  73. if (i < p2p->num_groups) {
  74. /*
  75. * The peer is connected as a client in a group where
  76. * we are the GO, so do not expire the peer entry.
  77. */
  78. os_get_reltime(&dev->last_seen);
  79. continue;
  80. }
  81. p2p_dbg(p2p, "Expiring old peer entry " MACSTR,
  82. MAC2STR(dev->info.p2p_device_addr));
  83. dl_list_del(&dev->list);
  84. p2p_device_free(p2p, dev);
  85. }
  86. }
  87. static void p2p_expiration_timeout(void *eloop_ctx, void *timeout_ctx)
  88. {
  89. struct p2p_data *p2p = eloop_ctx;
  90. p2p_expire_peers(p2p);
  91. eloop_register_timeout(P2P_PEER_EXPIRATION_INTERVAL, 0,
  92. p2p_expiration_timeout, p2p, NULL);
  93. }
  94. static const char * p2p_state_txt(int state)
  95. {
  96. switch (state) {
  97. case P2P_IDLE:
  98. return "IDLE";
  99. case P2P_SEARCH:
  100. return "SEARCH";
  101. case P2P_CONNECT:
  102. return "CONNECT";
  103. case P2P_CONNECT_LISTEN:
  104. return "CONNECT_LISTEN";
  105. case P2P_GO_NEG:
  106. return "GO_NEG";
  107. case P2P_LISTEN_ONLY:
  108. return "LISTEN_ONLY";
  109. case P2P_WAIT_PEER_CONNECT:
  110. return "WAIT_PEER_CONNECT";
  111. case P2P_WAIT_PEER_IDLE:
  112. return "WAIT_PEER_IDLE";
  113. case P2P_SD_DURING_FIND:
  114. return "SD_DURING_FIND";
  115. case P2P_PROVISIONING:
  116. return "PROVISIONING";
  117. case P2P_PD_DURING_FIND:
  118. return "PD_DURING_FIND";
  119. case P2P_INVITE:
  120. return "INVITE";
  121. case P2P_INVITE_LISTEN:
  122. return "INVITE_LISTEN";
  123. default:
  124. return "?";
  125. }
  126. }
  127. const char * p2p_get_state_txt(struct p2p_data *p2p)
  128. {
  129. return p2p_state_txt(p2p->state);
  130. }
  131. u16 p2p_get_provisioning_info(struct p2p_data *p2p, const u8 *addr)
  132. {
  133. struct p2p_device *dev = NULL;
  134. if (!addr || !p2p)
  135. return 0;
  136. dev = p2p_get_device(p2p, addr);
  137. if (dev)
  138. return dev->wps_prov_info;
  139. else
  140. return 0;
  141. }
  142. void p2p_clear_provisioning_info(struct p2p_data *p2p, const u8 *addr)
  143. {
  144. struct p2p_device *dev = NULL;
  145. if (!addr || !p2p)
  146. return;
  147. dev = p2p_get_device(p2p, addr);
  148. if (dev)
  149. dev->wps_prov_info = 0;
  150. }
  151. void p2p_set_state(struct p2p_data *p2p, int new_state)
  152. {
  153. p2p_dbg(p2p, "State %s -> %s",
  154. p2p_state_txt(p2p->state), p2p_state_txt(new_state));
  155. p2p->state = new_state;
  156. }
  157. void p2p_set_timeout(struct p2p_data *p2p, unsigned int sec, unsigned int usec)
  158. {
  159. p2p_dbg(p2p, "Set timeout (state=%s): %u.%06u sec",
  160. p2p_state_txt(p2p->state), sec, usec);
  161. eloop_cancel_timeout(p2p_state_timeout, p2p, NULL);
  162. eloop_register_timeout(sec, usec, p2p_state_timeout, p2p, NULL);
  163. }
  164. void p2p_clear_timeout(struct p2p_data *p2p)
  165. {
  166. p2p_dbg(p2p, "Clear timeout (state=%s)", p2p_state_txt(p2p->state));
  167. eloop_cancel_timeout(p2p_state_timeout, p2p, NULL);
  168. }
  169. void p2p_go_neg_failed(struct p2p_data *p2p, struct p2p_device *peer,
  170. int status)
  171. {
  172. struct p2p_go_neg_results res;
  173. p2p_clear_timeout(p2p);
  174. p2p_set_state(p2p, P2P_IDLE);
  175. if (p2p->go_neg_peer) {
  176. p2p->go_neg_peer->flags &= ~P2P_DEV_PEER_WAITING_RESPONSE;
  177. p2p->go_neg_peer->wps_method = WPS_NOT_READY;
  178. p2p->go_neg_peer->oob_pw_id = 0;
  179. }
  180. p2p->go_neg_peer = NULL;
  181. os_memset(&res, 0, sizeof(res));
  182. res.status = status;
  183. if (peer) {
  184. wpabuf_free(peer->go_neg_conf);
  185. peer->go_neg_conf = NULL;
  186. os_memcpy(res.peer_device_addr, peer->info.p2p_device_addr,
  187. ETH_ALEN);
  188. os_memcpy(res.peer_interface_addr, peer->intended_addr,
  189. ETH_ALEN);
  190. }
  191. p2p->cfg->go_neg_completed(p2p->cfg->cb_ctx, &res);
  192. }
  193. static void p2p_listen_in_find(struct p2p_data *p2p, int dev_disc)
  194. {
  195. unsigned int r, tu;
  196. int freq;
  197. struct wpabuf *ies;
  198. p2p_dbg(p2p, "Starting short listen state (state=%s)",
  199. p2p_state_txt(p2p->state));
  200. freq = p2p_channel_to_freq(p2p->cfg->reg_class, p2p->cfg->channel);
  201. if (freq < 0) {
  202. p2p_dbg(p2p, "Unknown regulatory class/channel");
  203. return;
  204. }
  205. os_get_random((u8 *) &r, sizeof(r));
  206. tu = (r % ((p2p->max_disc_int - p2p->min_disc_int) + 1) +
  207. p2p->min_disc_int) * 100;
  208. if (p2p->max_disc_tu >= 0 && tu > (unsigned int) p2p->max_disc_tu)
  209. tu = p2p->max_disc_tu;
  210. if (!dev_disc && tu < 100)
  211. tu = 100; /* Need to wait in non-device discovery use cases */
  212. if (p2p->cfg->max_listen && 1024 * tu / 1000 > p2p->cfg->max_listen)
  213. tu = p2p->cfg->max_listen * 1000 / 1024;
  214. if (tu == 0) {
  215. p2p_dbg(p2p, "Skip listen state since duration was 0 TU");
  216. p2p_set_timeout(p2p, 0, 0);
  217. return;
  218. }
  219. p2p->pending_listen_freq = freq;
  220. p2p->pending_listen_sec = 0;
  221. p2p->pending_listen_usec = 1024 * tu;
  222. ies = p2p_build_probe_resp_ies(p2p);
  223. if (ies == NULL)
  224. return;
  225. if (p2p->cfg->start_listen(p2p->cfg->cb_ctx, freq, 1024 * tu / 1000,
  226. ies) < 0) {
  227. p2p_dbg(p2p, "Failed to start listen mode");
  228. p2p->pending_listen_freq = 0;
  229. }
  230. wpabuf_free(ies);
  231. }
  232. int p2p_listen(struct p2p_data *p2p, unsigned int timeout)
  233. {
  234. int freq;
  235. struct wpabuf *ies;
  236. p2p_dbg(p2p, "Going to listen(only) state");
  237. freq = p2p_channel_to_freq(p2p->cfg->reg_class, p2p->cfg->channel);
  238. if (freq < 0) {
  239. p2p_dbg(p2p, "Unknown regulatory class/channel");
  240. return -1;
  241. }
  242. p2p->pending_listen_freq = freq;
  243. p2p->pending_listen_sec = timeout / 1000;
  244. p2p->pending_listen_usec = (timeout % 1000) * 1000;
  245. if (p2p->p2p_scan_running) {
  246. if (p2p->start_after_scan == P2P_AFTER_SCAN_CONNECT) {
  247. p2p_dbg(p2p, "p2p_scan running - connect is already pending - skip listen");
  248. return 0;
  249. }
  250. p2p_dbg(p2p, "p2p_scan running - delay start of listen state");
  251. p2p->start_after_scan = P2P_AFTER_SCAN_LISTEN;
  252. return 0;
  253. }
  254. ies = p2p_build_probe_resp_ies(p2p);
  255. if (ies == NULL)
  256. return -1;
  257. if (p2p->cfg->start_listen(p2p->cfg->cb_ctx, freq, timeout, ies) < 0) {
  258. p2p_dbg(p2p, "Failed to start listen mode");
  259. p2p->pending_listen_freq = 0;
  260. wpabuf_free(ies);
  261. return -1;
  262. }
  263. wpabuf_free(ies);
  264. p2p_set_state(p2p, P2P_LISTEN_ONLY);
  265. return 0;
  266. }
  267. static void p2p_device_clear_reported(struct p2p_data *p2p)
  268. {
  269. struct p2p_device *dev;
  270. dl_list_for_each(dev, &p2p->devices, struct p2p_device, list)
  271. dev->flags &= ~P2P_DEV_REPORTED;
  272. }
  273. /**
  274. * p2p_get_device - Fetch a peer entry
  275. * @p2p: P2P module context from p2p_init()
  276. * @addr: P2P Device Address of the peer
  277. * Returns: Pointer to the device entry or %NULL if not found
  278. */
  279. struct p2p_device * p2p_get_device(struct p2p_data *p2p, const u8 *addr)
  280. {
  281. struct p2p_device *dev;
  282. dl_list_for_each(dev, &p2p->devices, struct p2p_device, list) {
  283. if (os_memcmp(dev->info.p2p_device_addr, addr, ETH_ALEN) == 0)
  284. return dev;
  285. }
  286. return NULL;
  287. }
  288. /**
  289. * p2p_get_device_interface - Fetch a peer entry based on P2P Interface Address
  290. * @p2p: P2P module context from p2p_init()
  291. * @addr: P2P Interface Address of the peer
  292. * Returns: Pointer to the device entry or %NULL if not found
  293. */
  294. struct p2p_device * p2p_get_device_interface(struct p2p_data *p2p,
  295. const u8 *addr)
  296. {
  297. struct p2p_device *dev;
  298. dl_list_for_each(dev, &p2p->devices, struct p2p_device, list) {
  299. if (os_memcmp(dev->interface_addr, addr, ETH_ALEN) == 0)
  300. return dev;
  301. }
  302. return NULL;
  303. }
  304. /**
  305. * p2p_create_device - Create a peer entry
  306. * @p2p: P2P module context from p2p_init()
  307. * @addr: P2P Device Address of the peer
  308. * Returns: Pointer to the device entry or %NULL on failure
  309. *
  310. * If there is already an entry for the peer, it will be returned instead of
  311. * creating a new one.
  312. */
  313. static struct p2p_device * p2p_create_device(struct p2p_data *p2p,
  314. const u8 *addr)
  315. {
  316. struct p2p_device *dev, *oldest = NULL;
  317. size_t count = 0;
  318. dev = p2p_get_device(p2p, addr);
  319. if (dev)
  320. return dev;
  321. dl_list_for_each(dev, &p2p->devices, struct p2p_device, list) {
  322. count++;
  323. if (oldest == NULL ||
  324. os_reltime_before(&dev->last_seen, &oldest->last_seen))
  325. oldest = dev;
  326. }
  327. if (count + 1 > p2p->cfg->max_peers && oldest) {
  328. p2p_dbg(p2p, "Remove oldest peer entry to make room for a new peer");
  329. dl_list_del(&oldest->list);
  330. p2p_device_free(p2p, oldest);
  331. }
  332. dev = os_zalloc(sizeof(*dev));
  333. if (dev == NULL)
  334. return NULL;
  335. dl_list_add(&p2p->devices, &dev->list);
  336. os_memcpy(dev->info.p2p_device_addr, addr, ETH_ALEN);
  337. return dev;
  338. }
  339. static void p2p_copy_client_info(struct p2p_device *dev,
  340. struct p2p_client_info *cli)
  341. {
  342. os_memcpy(dev->info.device_name, cli->dev_name, cli->dev_name_len);
  343. dev->info.device_name[cli->dev_name_len] = '\0';
  344. dev->info.dev_capab = cli->dev_capab;
  345. dev->info.config_methods = cli->config_methods;
  346. os_memcpy(dev->info.pri_dev_type, cli->pri_dev_type, 8);
  347. dev->info.wps_sec_dev_type_list_len = 8 * cli->num_sec_dev_types;
  348. os_memcpy(dev->info.wps_sec_dev_type_list, cli->sec_dev_types,
  349. dev->info.wps_sec_dev_type_list_len);
  350. }
  351. static int p2p_add_group_clients(struct p2p_data *p2p, const u8 *go_dev_addr,
  352. const u8 *go_interface_addr, int freq,
  353. const u8 *gi, size_t gi_len)
  354. {
  355. struct p2p_group_info info;
  356. size_t c;
  357. struct p2p_device *dev;
  358. if (gi == NULL)
  359. return 0;
  360. if (p2p_group_info_parse(gi, gi_len, &info) < 0)
  361. return -1;
  362. /*
  363. * Clear old data for this group; if the devices are still in the
  364. * group, the information will be restored in the loop following this.
  365. */
  366. dl_list_for_each(dev, &p2p->devices, struct p2p_device, list) {
  367. if (os_memcmp(dev->member_in_go_iface, go_interface_addr,
  368. ETH_ALEN) == 0) {
  369. os_memset(dev->member_in_go_iface, 0, ETH_ALEN);
  370. os_memset(dev->member_in_go_dev, 0, ETH_ALEN);
  371. }
  372. }
  373. for (c = 0; c < info.num_clients; c++) {
  374. struct p2p_client_info *cli = &info.client[c];
  375. if (os_memcmp(cli->p2p_device_addr, p2p->cfg->dev_addr,
  376. ETH_ALEN) == 0)
  377. continue; /* ignore our own entry */
  378. dev = p2p_get_device(p2p, cli->p2p_device_addr);
  379. if (dev) {
  380. if (dev->flags & (P2P_DEV_GROUP_CLIENT_ONLY |
  381. P2P_DEV_PROBE_REQ_ONLY)) {
  382. /*
  383. * Update information since we have not
  384. * received this directly from the client.
  385. */
  386. p2p_copy_client_info(dev, cli);
  387. } else {
  388. /*
  389. * Need to update P2P Client Discoverability
  390. * flag since it is valid only in P2P Group
  391. * Info attribute.
  392. */
  393. dev->info.dev_capab &=
  394. ~P2P_DEV_CAPAB_CLIENT_DISCOVERABILITY;
  395. dev->info.dev_capab |=
  396. cli->dev_capab &
  397. P2P_DEV_CAPAB_CLIENT_DISCOVERABILITY;
  398. }
  399. if (dev->flags & P2P_DEV_PROBE_REQ_ONLY) {
  400. dev->flags &= ~P2P_DEV_PROBE_REQ_ONLY;
  401. }
  402. } else {
  403. dev = p2p_create_device(p2p, cli->p2p_device_addr);
  404. if (dev == NULL)
  405. continue;
  406. dev->flags |= P2P_DEV_GROUP_CLIENT_ONLY;
  407. p2p_copy_client_info(dev, cli);
  408. dev->oper_freq = freq;
  409. p2p->cfg->dev_found(p2p->cfg->cb_ctx,
  410. dev->info.p2p_device_addr,
  411. &dev->info, 1);
  412. dev->flags |= P2P_DEV_REPORTED | P2P_DEV_REPORTED_ONCE;
  413. }
  414. os_memcpy(dev->interface_addr, cli->p2p_interface_addr,
  415. ETH_ALEN);
  416. os_get_reltime(&dev->last_seen);
  417. os_memcpy(dev->member_in_go_dev, go_dev_addr, ETH_ALEN);
  418. os_memcpy(dev->member_in_go_iface, go_interface_addr,
  419. ETH_ALEN);
  420. }
  421. return 0;
  422. }
  423. static void p2p_copy_wps_info(struct p2p_data *p2p, struct p2p_device *dev,
  424. int probe_req, const struct p2p_message *msg)
  425. {
  426. os_memcpy(dev->info.device_name, msg->device_name,
  427. sizeof(dev->info.device_name));
  428. if (msg->manufacturer &&
  429. msg->manufacturer_len < sizeof(dev->info.manufacturer)) {
  430. os_memset(dev->info.manufacturer, 0,
  431. sizeof(dev->info.manufacturer));
  432. os_memcpy(dev->info.manufacturer, msg->manufacturer,
  433. msg->manufacturer_len);
  434. }
  435. if (msg->model_name &&
  436. msg->model_name_len < sizeof(dev->info.model_name)) {
  437. os_memset(dev->info.model_name, 0,
  438. sizeof(dev->info.model_name));
  439. os_memcpy(dev->info.model_name, msg->model_name,
  440. msg->model_name_len);
  441. }
  442. if (msg->model_number &&
  443. msg->model_number_len < sizeof(dev->info.model_number)) {
  444. os_memset(dev->info.model_number, 0,
  445. sizeof(dev->info.model_number));
  446. os_memcpy(dev->info.model_number, msg->model_number,
  447. msg->model_number_len);
  448. }
  449. if (msg->serial_number &&
  450. msg->serial_number_len < sizeof(dev->info.serial_number)) {
  451. os_memset(dev->info.serial_number, 0,
  452. sizeof(dev->info.serial_number));
  453. os_memcpy(dev->info.serial_number, msg->serial_number,
  454. msg->serial_number_len);
  455. }
  456. if (msg->pri_dev_type)
  457. os_memcpy(dev->info.pri_dev_type, msg->pri_dev_type,
  458. sizeof(dev->info.pri_dev_type));
  459. else if (msg->wps_pri_dev_type)
  460. os_memcpy(dev->info.pri_dev_type, msg->wps_pri_dev_type,
  461. sizeof(dev->info.pri_dev_type));
  462. if (msg->wps_sec_dev_type_list) {
  463. os_memcpy(dev->info.wps_sec_dev_type_list,
  464. msg->wps_sec_dev_type_list,
  465. msg->wps_sec_dev_type_list_len);
  466. dev->info.wps_sec_dev_type_list_len =
  467. msg->wps_sec_dev_type_list_len;
  468. }
  469. if (msg->capability) {
  470. /*
  471. * P2P Client Discoverability bit is reserved in all frames
  472. * that use this function, so do not change its value here.
  473. */
  474. dev->info.dev_capab &= P2P_DEV_CAPAB_CLIENT_DISCOVERABILITY;
  475. dev->info.dev_capab |= msg->capability[0] &
  476. ~P2P_DEV_CAPAB_CLIENT_DISCOVERABILITY;
  477. dev->info.group_capab = msg->capability[1];
  478. }
  479. if (msg->ext_listen_timing) {
  480. dev->ext_listen_period = WPA_GET_LE16(msg->ext_listen_timing);
  481. dev->ext_listen_interval =
  482. WPA_GET_LE16(msg->ext_listen_timing + 2);
  483. }
  484. if (!probe_req) {
  485. u16 new_config_methods;
  486. new_config_methods = msg->config_methods ?
  487. msg->config_methods : msg->wps_config_methods;
  488. if (new_config_methods &&
  489. dev->info.config_methods != new_config_methods) {
  490. p2p_dbg(p2p, "Update peer " MACSTR
  491. " config_methods 0x%x -> 0x%x",
  492. MAC2STR(dev->info.p2p_device_addr),
  493. dev->info.config_methods,
  494. new_config_methods);
  495. dev->info.config_methods = new_config_methods;
  496. }
  497. }
  498. }
  499. /**
  500. * p2p_add_device - Add peer entries based on scan results or P2P frames
  501. * @p2p: P2P module context from p2p_init()
  502. * @addr: Source address of Beacon or Probe Response frame (may be either
  503. * P2P Device Address or P2P Interface Address)
  504. * @level: Signal level (signal strength of the received frame from the peer)
  505. * @freq: Frequency on which the Beacon or Probe Response frame was received
  506. * @rx_time: Time when the result was received
  507. * @ies: IEs from the Beacon or Probe Response frame
  508. * @ies_len: Length of ies buffer in octets
  509. * @scan_res: Whether this was based on scan results
  510. * Returns: 0 on success, -1 on failure
  511. *
  512. * If the scan result is for a GO, the clients in the group will also be added
  513. * to the peer table. This function can also be used with some other frames
  514. * like Provision Discovery Request that contains P2P Capability and P2P Device
  515. * Info attributes.
  516. */
  517. int p2p_add_device(struct p2p_data *p2p, const u8 *addr, int freq,
  518. struct os_reltime *rx_time, int level, const u8 *ies,
  519. size_t ies_len, int scan_res)
  520. {
  521. struct p2p_device *dev;
  522. struct p2p_message msg;
  523. const u8 *p2p_dev_addr;
  524. int i;
  525. struct os_reltime time_now;
  526. os_memset(&msg, 0, sizeof(msg));
  527. if (p2p_parse_ies(ies, ies_len, &msg)) {
  528. p2p_dbg(p2p, "Failed to parse P2P IE for a device entry");
  529. p2p_parse_free(&msg);
  530. return -1;
  531. }
  532. if (msg.p2p_device_addr)
  533. p2p_dev_addr = msg.p2p_device_addr;
  534. else if (msg.device_id)
  535. p2p_dev_addr = msg.device_id;
  536. else {
  537. p2p_dbg(p2p, "Ignore scan data without P2P Device Info or P2P Device Id");
  538. p2p_parse_free(&msg);
  539. return -1;
  540. }
  541. if (!is_zero_ether_addr(p2p->peer_filter) &&
  542. os_memcmp(p2p_dev_addr, p2p->peer_filter, ETH_ALEN) != 0) {
  543. p2p_dbg(p2p, "Do not add peer filter for " MACSTR
  544. " due to peer filter", MAC2STR(p2p_dev_addr));
  545. p2p_parse_free(&msg);
  546. return 0;
  547. }
  548. dev = p2p_create_device(p2p, p2p_dev_addr);
  549. if (dev == NULL) {
  550. p2p_parse_free(&msg);
  551. return -1;
  552. }
  553. if (rx_time == NULL) {
  554. os_get_reltime(&time_now);
  555. rx_time = &time_now;
  556. }
  557. /*
  558. * Update the device entry only if the new peer
  559. * entry is newer than the one previously stored.
  560. */
  561. if (dev->last_seen.sec > 0 &&
  562. os_reltime_before(rx_time, &dev->last_seen)) {
  563. p2p_dbg(p2p, "Do not update peer entry based on old frame (rx_time=%u.%06u last_seen=%u.%06u)",
  564. (unsigned int) rx_time->sec,
  565. (unsigned int) rx_time->usec,
  566. (unsigned int) dev->last_seen.sec,
  567. (unsigned int) dev->last_seen.usec);
  568. p2p_parse_free(&msg);
  569. return -1;
  570. }
  571. os_memcpy(&dev->last_seen, rx_time, sizeof(struct os_reltime));
  572. dev->flags &= ~(P2P_DEV_PROBE_REQ_ONLY | P2P_DEV_GROUP_CLIENT_ONLY);
  573. if (os_memcmp(addr, p2p_dev_addr, ETH_ALEN) != 0)
  574. os_memcpy(dev->interface_addr, addr, ETH_ALEN);
  575. if (msg.ssid &&
  576. (msg.ssid[1] != P2P_WILDCARD_SSID_LEN ||
  577. os_memcmp(msg.ssid + 2, P2P_WILDCARD_SSID, P2P_WILDCARD_SSID_LEN)
  578. != 0)) {
  579. os_memcpy(dev->oper_ssid, msg.ssid + 2, msg.ssid[1]);
  580. dev->oper_ssid_len = msg.ssid[1];
  581. }
  582. if (freq >= 2412 && freq <= 2484 && msg.ds_params &&
  583. *msg.ds_params >= 1 && *msg.ds_params <= 14) {
  584. int ds_freq;
  585. if (*msg.ds_params == 14)
  586. ds_freq = 2484;
  587. else
  588. ds_freq = 2407 + *msg.ds_params * 5;
  589. if (freq != ds_freq) {
  590. p2p_dbg(p2p, "Update Listen frequency based on DS Parameter Set IE: %d -> %d MHz",
  591. freq, ds_freq);
  592. freq = ds_freq;
  593. }
  594. }
  595. if (dev->listen_freq && dev->listen_freq != freq && scan_res) {
  596. p2p_dbg(p2p, "Update Listen frequency based on scan results ("
  597. MACSTR " %d -> %d MHz (DS param %d)",
  598. MAC2STR(dev->info.p2p_device_addr), dev->listen_freq,
  599. freq, msg.ds_params ? *msg.ds_params : -1);
  600. }
  601. if (scan_res) {
  602. dev->listen_freq = freq;
  603. if (msg.group_info)
  604. dev->oper_freq = freq;
  605. }
  606. dev->info.level = level;
  607. p2p_copy_wps_info(p2p, dev, 0, &msg);
  608. for (i = 0; i < P2P_MAX_WPS_VENDOR_EXT; i++) {
  609. wpabuf_free(dev->info.wps_vendor_ext[i]);
  610. dev->info.wps_vendor_ext[i] = NULL;
  611. }
  612. for (i = 0; i < P2P_MAX_WPS_VENDOR_EXT; i++) {
  613. if (msg.wps_vendor_ext[i] == NULL)
  614. break;
  615. dev->info.wps_vendor_ext[i] = wpabuf_alloc_copy(
  616. msg.wps_vendor_ext[i], msg.wps_vendor_ext_len[i]);
  617. if (dev->info.wps_vendor_ext[i] == NULL)
  618. break;
  619. }
  620. if (msg.wfd_subelems) {
  621. wpabuf_free(dev->info.wfd_subelems);
  622. dev->info.wfd_subelems = wpabuf_dup(msg.wfd_subelems);
  623. }
  624. if (scan_res) {
  625. p2p_add_group_clients(p2p, p2p_dev_addr, addr, freq,
  626. msg.group_info, msg.group_info_len);
  627. }
  628. p2p_parse_free(&msg);
  629. if (dev->flags & P2P_DEV_REPORTED)
  630. return 0;
  631. p2p_dbg(p2p, "Peer found with Listen frequency %d MHz (rx_time=%u.%06u)",
  632. freq, (unsigned int) rx_time->sec,
  633. (unsigned int) rx_time->usec);
  634. if (dev->flags & P2P_DEV_USER_REJECTED) {
  635. p2p_dbg(p2p, "Do not report rejected device");
  636. return 0;
  637. }
  638. if (dev->info.config_methods == 0 &&
  639. (freq == 2412 || freq == 2437 || freq == 2462)) {
  640. /*
  641. * If we have only seen a Beacon frame from a GO, we do not yet
  642. * know what WPS config methods it supports. Since some
  643. * applications use config_methods value from P2P-DEVICE-FOUND
  644. * events, postpone reporting this peer until we've fully
  645. * discovered its capabilities.
  646. *
  647. * At least for now, do this only if the peer was detected on
  648. * one of the social channels since that peer can be easily be
  649. * found again and there are no limitations of having to use
  650. * passive scan on this channels, so this can be done through
  651. * Probe Response frame that includes the config_methods
  652. * information.
  653. */
  654. p2p_dbg(p2p, "Do not report peer " MACSTR
  655. " with unknown config methods", MAC2STR(addr));
  656. return 0;
  657. }
  658. p2p->cfg->dev_found(p2p->cfg->cb_ctx, addr, &dev->info,
  659. !(dev->flags & P2P_DEV_REPORTED_ONCE));
  660. dev->flags |= P2P_DEV_REPORTED | P2P_DEV_REPORTED_ONCE;
  661. return 0;
  662. }
  663. static void p2p_device_free(struct p2p_data *p2p, struct p2p_device *dev)
  664. {
  665. int i;
  666. if (p2p->go_neg_peer == dev) {
  667. /*
  668. * If GO Negotiation is in progress, report that it has failed.
  669. */
  670. p2p_go_neg_failed(p2p, dev, -1);
  671. p2p->go_neg_peer = NULL;
  672. }
  673. if (p2p->invite_peer == dev)
  674. p2p->invite_peer = NULL;
  675. if (p2p->sd_peer == dev)
  676. p2p->sd_peer = NULL;
  677. if (p2p->pending_client_disc_go == dev)
  678. p2p->pending_client_disc_go = NULL;
  679. /* dev_lost() device, but only if it was previously dev_found() */
  680. if (dev->flags & P2P_DEV_REPORTED_ONCE)
  681. p2p->cfg->dev_lost(p2p->cfg->cb_ctx,
  682. dev->info.p2p_device_addr);
  683. for (i = 0; i < P2P_MAX_WPS_VENDOR_EXT; i++) {
  684. wpabuf_free(dev->info.wps_vendor_ext[i]);
  685. dev->info.wps_vendor_ext[i] = NULL;
  686. }
  687. wpabuf_free(dev->info.wfd_subelems);
  688. wpabuf_free(dev->go_neg_conf);
  689. os_free(dev);
  690. }
  691. static int p2p_get_next_prog_freq(struct p2p_data *p2p)
  692. {
  693. struct p2p_channels *c;
  694. struct p2p_reg_class *cla;
  695. size_t cl, ch;
  696. int found = 0;
  697. u8 reg_class;
  698. u8 channel;
  699. int freq;
  700. c = &p2p->cfg->channels;
  701. for (cl = 0; cl < c->reg_classes; cl++) {
  702. cla = &c->reg_class[cl];
  703. if (cla->reg_class != p2p->last_prog_scan_class)
  704. continue;
  705. for (ch = 0; ch < cla->channels; ch++) {
  706. if (cla->channel[ch] == p2p->last_prog_scan_chan) {
  707. found = 1;
  708. break;
  709. }
  710. }
  711. if (found)
  712. break;
  713. }
  714. if (!found) {
  715. /* Start from beginning */
  716. reg_class = c->reg_class[0].reg_class;
  717. channel = c->reg_class[0].channel[0];
  718. } else {
  719. /* Pick the next channel */
  720. ch++;
  721. if (ch == cla->channels) {
  722. cl++;
  723. if (cl == c->reg_classes)
  724. cl = 0;
  725. ch = 0;
  726. }
  727. reg_class = c->reg_class[cl].reg_class;
  728. channel = c->reg_class[cl].channel[ch];
  729. }
  730. freq = p2p_channel_to_freq(reg_class, channel);
  731. p2p_dbg(p2p, "Next progressive search channel: reg_class %u channel %u -> %d MHz",
  732. reg_class, channel, freq);
  733. p2p->last_prog_scan_class = reg_class;
  734. p2p->last_prog_scan_chan = channel;
  735. if (freq == 2412 || freq == 2437 || freq == 2462)
  736. return 0; /* No need to add social channels */
  737. return freq;
  738. }
  739. static void p2p_search(struct p2p_data *p2p)
  740. {
  741. int freq = 0;
  742. enum p2p_scan_type type;
  743. u16 pw_id = DEV_PW_DEFAULT;
  744. int res;
  745. if (p2p->drv_in_listen) {
  746. p2p_dbg(p2p, "Driver is still in Listen state - wait for it to end before continuing");
  747. return;
  748. }
  749. p2p->cfg->stop_listen(p2p->cfg->cb_ctx);
  750. if (p2p->find_type == P2P_FIND_PROGRESSIVE &&
  751. (freq = p2p_get_next_prog_freq(p2p)) > 0) {
  752. type = P2P_SCAN_SOCIAL_PLUS_ONE;
  753. p2p_dbg(p2p, "Starting search (+ freq %u)", freq);
  754. } else {
  755. type = P2P_SCAN_SOCIAL;
  756. p2p_dbg(p2p, "Starting search");
  757. }
  758. res = p2p->cfg->p2p_scan(p2p->cfg->cb_ctx, type, freq,
  759. p2p->num_req_dev_types, p2p->req_dev_types,
  760. p2p->find_dev_id, pw_id);
  761. if (res < 0) {
  762. p2p_dbg(p2p, "Scan request failed");
  763. p2p_continue_find(p2p);
  764. } else {
  765. p2p_dbg(p2p, "Running p2p_scan");
  766. p2p->p2p_scan_running = 1;
  767. eloop_cancel_timeout(p2p_scan_timeout, p2p, NULL);
  768. eloop_register_timeout(P2P_SCAN_TIMEOUT, 0, p2p_scan_timeout,
  769. p2p, NULL);
  770. }
  771. }
  772. static void p2p_find_timeout(void *eloop_ctx, void *timeout_ctx)
  773. {
  774. struct p2p_data *p2p = eloop_ctx;
  775. p2p_dbg(p2p, "Find timeout -> stop");
  776. p2p_stop_find(p2p);
  777. }
  778. static int p2p_run_after_scan(struct p2p_data *p2p)
  779. {
  780. struct p2p_device *dev;
  781. enum p2p_after_scan op;
  782. if (p2p->after_scan_tx) {
  783. p2p->after_scan_tx_in_progress = 1;
  784. p2p_dbg(p2p, "Send pending Action frame at p2p_scan completion");
  785. p2p->cfg->send_action(p2p->cfg->cb_ctx,
  786. p2p->after_scan_tx->freq,
  787. p2p->after_scan_tx->dst,
  788. p2p->after_scan_tx->src,
  789. p2p->after_scan_tx->bssid,
  790. (u8 *) (p2p->after_scan_tx + 1),
  791. p2p->after_scan_tx->len,
  792. p2p->after_scan_tx->wait_time);
  793. os_free(p2p->after_scan_tx);
  794. p2p->after_scan_tx = NULL;
  795. return 1;
  796. }
  797. op = p2p->start_after_scan;
  798. p2p->start_after_scan = P2P_AFTER_SCAN_NOTHING;
  799. switch (op) {
  800. case P2P_AFTER_SCAN_NOTHING:
  801. break;
  802. case P2P_AFTER_SCAN_LISTEN:
  803. p2p_dbg(p2p, "Start previously requested Listen state");
  804. p2p_listen(p2p, p2p->pending_listen_sec * 1000 +
  805. p2p->pending_listen_usec / 1000);
  806. return 1;
  807. case P2P_AFTER_SCAN_CONNECT:
  808. p2p_dbg(p2p, "Start previously requested connect with " MACSTR,
  809. MAC2STR(p2p->after_scan_peer));
  810. dev = p2p_get_device(p2p, p2p->after_scan_peer);
  811. if (dev == NULL) {
  812. p2p_dbg(p2p, "Peer not known anymore");
  813. break;
  814. }
  815. p2p_connect_send(p2p, dev);
  816. return 1;
  817. }
  818. return 0;
  819. }
  820. static void p2p_scan_timeout(void *eloop_ctx, void *timeout_ctx)
  821. {
  822. struct p2p_data *p2p = eloop_ctx;
  823. int running;
  824. p2p_dbg(p2p, "p2p_scan timeout (running=%d)", p2p->p2p_scan_running);
  825. running = p2p->p2p_scan_running;
  826. /* Make sure we recover from missed scan results callback */
  827. p2p->p2p_scan_running = 0;
  828. if (running)
  829. p2p_run_after_scan(p2p);
  830. }
  831. static void p2p_free_req_dev_types(struct p2p_data *p2p)
  832. {
  833. p2p->num_req_dev_types = 0;
  834. os_free(p2p->req_dev_types);
  835. p2p->req_dev_types = NULL;
  836. }
  837. int p2p_find(struct p2p_data *p2p, unsigned int timeout,
  838. enum p2p_discovery_type type,
  839. unsigned int num_req_dev_types, const u8 *req_dev_types,
  840. const u8 *dev_id, unsigned int search_delay)
  841. {
  842. int res;
  843. p2p_dbg(p2p, "Starting find (type=%d)", type);
  844. os_get_reltime(&p2p->find_start);
  845. if (p2p->p2p_scan_running) {
  846. p2p_dbg(p2p, "p2p_scan is already running");
  847. }
  848. p2p_free_req_dev_types(p2p);
  849. if (req_dev_types && num_req_dev_types) {
  850. p2p->req_dev_types = os_malloc(num_req_dev_types *
  851. WPS_DEV_TYPE_LEN);
  852. if (p2p->req_dev_types == NULL)
  853. return -1;
  854. os_memcpy(p2p->req_dev_types, req_dev_types,
  855. num_req_dev_types * WPS_DEV_TYPE_LEN);
  856. p2p->num_req_dev_types = num_req_dev_types;
  857. }
  858. if (dev_id) {
  859. os_memcpy(p2p->find_dev_id_buf, dev_id, ETH_ALEN);
  860. p2p->find_dev_id = p2p->find_dev_id_buf;
  861. } else
  862. p2p->find_dev_id = NULL;
  863. p2p->start_after_scan = P2P_AFTER_SCAN_NOTHING;
  864. p2p_clear_timeout(p2p);
  865. p2p->cfg->stop_listen(p2p->cfg->cb_ctx);
  866. p2p->find_type = type;
  867. p2p_device_clear_reported(p2p);
  868. p2p_set_state(p2p, P2P_SEARCH);
  869. p2p->search_delay = search_delay;
  870. p2p->in_search_delay = 0;
  871. eloop_cancel_timeout(p2p_find_timeout, p2p, NULL);
  872. p2p->last_p2p_find_timeout = timeout;
  873. if (timeout)
  874. eloop_register_timeout(timeout, 0, p2p_find_timeout,
  875. p2p, NULL);
  876. switch (type) {
  877. case P2P_FIND_START_WITH_FULL:
  878. case P2P_FIND_PROGRESSIVE:
  879. res = p2p->cfg->p2p_scan(p2p->cfg->cb_ctx, P2P_SCAN_FULL, 0,
  880. p2p->num_req_dev_types,
  881. p2p->req_dev_types, dev_id,
  882. DEV_PW_DEFAULT);
  883. break;
  884. case P2P_FIND_ONLY_SOCIAL:
  885. res = p2p->cfg->p2p_scan(p2p->cfg->cb_ctx, P2P_SCAN_SOCIAL, 0,
  886. p2p->num_req_dev_types,
  887. p2p->req_dev_types, dev_id,
  888. DEV_PW_DEFAULT);
  889. break;
  890. default:
  891. return -1;
  892. }
  893. if (res == 0) {
  894. p2p_dbg(p2p, "Running p2p_scan");
  895. p2p->p2p_scan_running = 1;
  896. eloop_cancel_timeout(p2p_scan_timeout, p2p, NULL);
  897. eloop_register_timeout(P2P_SCAN_TIMEOUT, 0, p2p_scan_timeout,
  898. p2p, NULL);
  899. } else if (p2p->p2p_scan_running) {
  900. p2p_dbg(p2p, "Failed to start p2p_scan - another p2p_scan was already running");
  901. /* wait for the previous p2p_scan to complete */
  902. res = 0; /* do not report failure */
  903. } else {
  904. p2p_dbg(p2p, "Failed to start p2p_scan");
  905. p2p_set_state(p2p, P2P_IDLE);
  906. eloop_cancel_timeout(p2p_find_timeout, p2p, NULL);
  907. }
  908. return res;
  909. }
  910. void p2p_stop_find_for_freq(struct p2p_data *p2p, int freq)
  911. {
  912. p2p_dbg(p2p, "Stopping find");
  913. eloop_cancel_timeout(p2p_find_timeout, p2p, NULL);
  914. p2p_clear_timeout(p2p);
  915. if (p2p->state == P2P_SEARCH)
  916. p2p->cfg->find_stopped(p2p->cfg->cb_ctx);
  917. p2p_set_state(p2p, P2P_IDLE);
  918. p2p_free_req_dev_types(p2p);
  919. p2p->start_after_scan = P2P_AFTER_SCAN_NOTHING;
  920. if (p2p->go_neg_peer)
  921. p2p->go_neg_peer->flags &= ~P2P_DEV_PEER_WAITING_RESPONSE;
  922. p2p->go_neg_peer = NULL;
  923. p2p->sd_peer = NULL;
  924. p2p->invite_peer = NULL;
  925. p2p_stop_listen_for_freq(p2p, freq);
  926. }
  927. void p2p_stop_listen_for_freq(struct p2p_data *p2p, int freq)
  928. {
  929. if (freq > 0 && p2p->drv_in_listen == freq && p2p->in_listen) {
  930. p2p_dbg(p2p, "Skip stop_listen since we are on correct channel for response");
  931. return;
  932. }
  933. if (p2p->in_listen) {
  934. p2p->in_listen = 0;
  935. p2p_clear_timeout(p2p);
  936. }
  937. if (p2p->drv_in_listen) {
  938. /*
  939. * The driver may not deliver callback to p2p_listen_end()
  940. * when the operation gets canceled, so clear the internal
  941. * variable that is tracking driver state.
  942. */
  943. p2p_dbg(p2p, "Clear drv_in_listen (%d)", p2p->drv_in_listen);
  944. p2p->drv_in_listen = 0;
  945. }
  946. p2p->cfg->stop_listen(p2p->cfg->cb_ctx);
  947. }
  948. void p2p_stop_listen(struct p2p_data *p2p)
  949. {
  950. if (p2p->state != P2P_LISTEN_ONLY) {
  951. p2p_dbg(p2p, "Skip stop_listen since not in listen_only state.");
  952. return;
  953. }
  954. p2p_stop_listen_for_freq(p2p, 0);
  955. p2p_set_state(p2p, P2P_IDLE);
  956. }
  957. void p2p_stop_find(struct p2p_data *p2p)
  958. {
  959. p2p_stop_find_for_freq(p2p, 0);
  960. }
  961. static int p2p_prepare_channel_pref(struct p2p_data *p2p,
  962. unsigned int force_freq,
  963. unsigned int pref_freq, int go)
  964. {
  965. u8 op_class, op_channel;
  966. unsigned int freq = force_freq ? force_freq : pref_freq;
  967. p2p_dbg(p2p, "Prepare channel pref - force_freq=%u pref_freq=%u go=%d",
  968. force_freq, pref_freq, go);
  969. if (p2p_freq_to_channel(freq, &op_class, &op_channel) < 0) {
  970. p2p_dbg(p2p, "Unsupported frequency %u MHz", freq);
  971. return -1;
  972. }
  973. if (!p2p_channels_includes(&p2p->cfg->channels, op_class, op_channel) &&
  974. (go || !p2p_channels_includes(&p2p->cfg->cli_channels, op_class,
  975. op_channel))) {
  976. p2p_dbg(p2p, "Frequency %u MHz (oper_class %u channel %u) not allowed for P2P",
  977. freq, op_class, op_channel);
  978. return -1;
  979. }
  980. p2p->op_reg_class = op_class;
  981. p2p->op_channel = op_channel;
  982. if (force_freq) {
  983. p2p->channels.reg_classes = 1;
  984. p2p->channels.reg_class[0].channels = 1;
  985. p2p->channels.reg_class[0].reg_class = p2p->op_reg_class;
  986. p2p->channels.reg_class[0].channel[0] = p2p->op_channel;
  987. } else {
  988. os_memcpy(&p2p->channels, &p2p->cfg->channels,
  989. sizeof(struct p2p_channels));
  990. }
  991. return 0;
  992. }
  993. static void p2p_prepare_channel_best(struct p2p_data *p2p)
  994. {
  995. u8 op_class, op_channel;
  996. const int op_classes_5ghz[] = { 124, 115, 0 };
  997. const int op_classes_ht40[] = { 126, 127, 116, 117, 0 };
  998. const int op_classes_vht[] = { 128, 0 };
  999. p2p_dbg(p2p, "Prepare channel best");
  1000. if (!p2p->cfg->cfg_op_channel && p2p->best_freq_overall > 0 &&
  1001. p2p_supported_freq(p2p, p2p->best_freq_overall) &&
  1002. p2p_freq_to_channel(p2p->best_freq_overall, &op_class, &op_channel)
  1003. == 0) {
  1004. p2p_dbg(p2p, "Select best overall channel as operating channel preference");
  1005. p2p->op_reg_class = op_class;
  1006. p2p->op_channel = op_channel;
  1007. } else if (!p2p->cfg->cfg_op_channel && p2p->best_freq_5 > 0 &&
  1008. p2p_supported_freq(p2p, p2p->best_freq_5) &&
  1009. p2p_freq_to_channel(p2p->best_freq_5, &op_class, &op_channel)
  1010. == 0) {
  1011. p2p_dbg(p2p, "Select best 5 GHz channel as operating channel preference");
  1012. p2p->op_reg_class = op_class;
  1013. p2p->op_channel = op_channel;
  1014. } else if (!p2p->cfg->cfg_op_channel && p2p->best_freq_24 > 0 &&
  1015. p2p_supported_freq(p2p, p2p->best_freq_24) &&
  1016. p2p_freq_to_channel(p2p->best_freq_24, &op_class,
  1017. &op_channel) == 0) {
  1018. p2p_dbg(p2p, "Select best 2.4 GHz channel as operating channel preference");
  1019. p2p->op_reg_class = op_class;
  1020. p2p->op_channel = op_channel;
  1021. } else if (p2p->cfg->num_pref_chan > 0 &&
  1022. p2p_channels_includes(&p2p->cfg->channels,
  1023. p2p->cfg->pref_chan[0].op_class,
  1024. p2p->cfg->pref_chan[0].chan)) {
  1025. p2p_dbg(p2p, "Select first pref_chan entry as operating channel preference");
  1026. p2p->op_reg_class = p2p->cfg->pref_chan[0].op_class;
  1027. p2p->op_channel = p2p->cfg->pref_chan[0].chan;
  1028. } else if (p2p_channel_select(&p2p->cfg->channels, op_classes_vht,
  1029. &p2p->op_reg_class, &p2p->op_channel) ==
  1030. 0) {
  1031. p2p_dbg(p2p, "Select possible VHT channel (op_class %u channel %u) as operating channel preference",
  1032. p2p->op_reg_class, p2p->op_channel);
  1033. } else if (p2p_channel_select(&p2p->cfg->channels, op_classes_ht40,
  1034. &p2p->op_reg_class, &p2p->op_channel) ==
  1035. 0) {
  1036. p2p_dbg(p2p, "Select possible HT40 channel (op_class %u channel %u) as operating channel preference",
  1037. p2p->op_reg_class, p2p->op_channel);
  1038. } else if (p2p_channel_select(&p2p->cfg->channels, op_classes_5ghz,
  1039. &p2p->op_reg_class, &p2p->op_channel) ==
  1040. 0) {
  1041. p2p_dbg(p2p, "Select possible 5 GHz channel (op_class %u channel %u) as operating channel preference",
  1042. p2p->op_reg_class, p2p->op_channel);
  1043. } else if (p2p_channels_includes(&p2p->cfg->channels,
  1044. p2p->cfg->op_reg_class,
  1045. p2p->cfg->op_channel)) {
  1046. p2p_dbg(p2p, "Select pre-configured channel as operating channel preference");
  1047. p2p->op_reg_class = p2p->cfg->op_reg_class;
  1048. p2p->op_channel = p2p->cfg->op_channel;
  1049. } else if (p2p_channel_random_social(&p2p->cfg->channels,
  1050. &p2p->op_reg_class,
  1051. &p2p->op_channel) == 0) {
  1052. p2p_dbg(p2p, "Select random available social channel %d from 2.4 GHz band as operating channel preference",
  1053. p2p->op_channel);
  1054. } else {
  1055. /* Select any random available channel from the first available
  1056. * operating class */
  1057. p2p_channel_select(&p2p->cfg->channels, NULL,
  1058. &p2p->op_reg_class,
  1059. &p2p->op_channel);
  1060. p2p_dbg(p2p, "Select random available channel %d from operating class %d as operating channel preference",
  1061. p2p->op_channel, p2p->op_reg_class);
  1062. }
  1063. os_memcpy(&p2p->channels, &p2p->cfg->channels,
  1064. sizeof(struct p2p_channels));
  1065. }
  1066. /**
  1067. * p2p_prepare_channel - Select operating channel for GO Negotiation
  1068. * @p2p: P2P module context from p2p_init()
  1069. * @dev: Selected peer device
  1070. * @force_freq: Forced frequency in MHz or 0 if not forced
  1071. * @pref_freq: Preferred frequency in MHz or 0 if no preference
  1072. * @go: Whether the local end will be forced to be GO
  1073. * Returns: 0 on success, -1 on failure (channel not supported for P2P)
  1074. *
  1075. * This function is used to do initial operating channel selection for GO
  1076. * Negotiation prior to having received peer information. The selected channel
  1077. * may be further optimized in p2p_reselect_channel() once the peer information
  1078. * is available.
  1079. */
  1080. int p2p_prepare_channel(struct p2p_data *p2p, struct p2p_device *dev,
  1081. unsigned int force_freq, unsigned int pref_freq, int go)
  1082. {
  1083. p2p_dbg(p2p, "Prepare channel - force_freq=%u pref_freq=%u go=%d",
  1084. force_freq, pref_freq, go);
  1085. if (force_freq || pref_freq) {
  1086. if (p2p_prepare_channel_pref(p2p, force_freq, pref_freq, go) <
  1087. 0)
  1088. return -1;
  1089. } else {
  1090. p2p_prepare_channel_best(p2p);
  1091. }
  1092. p2p_channels_dump(p2p, "prepared channels", &p2p->channels);
  1093. if (go)
  1094. p2p_channels_remove_freqs(&p2p->channels, &p2p->no_go_freq);
  1095. else if (!force_freq)
  1096. p2p_channels_union(&p2p->channels, &p2p->cfg->cli_channels,
  1097. &p2p->channels);
  1098. p2p_channels_dump(p2p, "after go/cli filter/add", &p2p->channels);
  1099. p2p_dbg(p2p, "Own preference for operation channel: Operating Class %u Channel %u%s",
  1100. p2p->op_reg_class, p2p->op_channel,
  1101. force_freq ? " (forced)" : "");
  1102. if (force_freq)
  1103. dev->flags |= P2P_DEV_FORCE_FREQ;
  1104. else
  1105. dev->flags &= ~P2P_DEV_FORCE_FREQ;
  1106. return 0;
  1107. }
  1108. static void p2p_set_dev_persistent(struct p2p_device *dev,
  1109. int persistent_group)
  1110. {
  1111. switch (persistent_group) {
  1112. case 0:
  1113. dev->flags &= ~(P2P_DEV_PREFER_PERSISTENT_GROUP |
  1114. P2P_DEV_PREFER_PERSISTENT_RECONN);
  1115. break;
  1116. case 1:
  1117. dev->flags |= P2P_DEV_PREFER_PERSISTENT_GROUP;
  1118. dev->flags &= ~P2P_DEV_PREFER_PERSISTENT_RECONN;
  1119. break;
  1120. case 2:
  1121. dev->flags |= P2P_DEV_PREFER_PERSISTENT_GROUP |
  1122. P2P_DEV_PREFER_PERSISTENT_RECONN;
  1123. break;
  1124. }
  1125. }
  1126. int p2p_connect(struct p2p_data *p2p, const u8 *peer_addr,
  1127. enum p2p_wps_method wps_method,
  1128. int go_intent, const u8 *own_interface_addr,
  1129. unsigned int force_freq, int persistent_group,
  1130. const u8 *force_ssid, size_t force_ssid_len,
  1131. int pd_before_go_neg, unsigned int pref_freq, u16 oob_pw_id)
  1132. {
  1133. struct p2p_device *dev;
  1134. p2p_dbg(p2p, "Request to start group negotiation - peer=" MACSTR
  1135. " GO Intent=%d Intended Interface Address=" MACSTR
  1136. " wps_method=%d persistent_group=%d pd_before_go_neg=%d "
  1137. "oob_pw_id=%u",
  1138. MAC2STR(peer_addr), go_intent, MAC2STR(own_interface_addr),
  1139. wps_method, persistent_group, pd_before_go_neg, oob_pw_id);
  1140. dev = p2p_get_device(p2p, peer_addr);
  1141. if (dev == NULL || (dev->flags & P2P_DEV_PROBE_REQ_ONLY)) {
  1142. p2p_dbg(p2p, "Cannot connect to unknown P2P Device " MACSTR,
  1143. MAC2STR(peer_addr));
  1144. return -1;
  1145. }
  1146. if (p2p_prepare_channel(p2p, dev, force_freq, pref_freq,
  1147. go_intent == 15) < 0)
  1148. return -1;
  1149. if (dev->flags & P2P_DEV_GROUP_CLIENT_ONLY) {
  1150. if (!(dev->info.dev_capab &
  1151. P2P_DEV_CAPAB_CLIENT_DISCOVERABILITY)) {
  1152. p2p_dbg(p2p, "Cannot connect to P2P Device " MACSTR
  1153. " that is in a group and is not discoverable",
  1154. MAC2STR(peer_addr));
  1155. return -1;
  1156. }
  1157. if (dev->oper_freq <= 0) {
  1158. p2p_dbg(p2p, "Cannot connect to P2P Device " MACSTR
  1159. " with incomplete information",
  1160. MAC2STR(peer_addr));
  1161. return -1;
  1162. }
  1163. /*
  1164. * First, try to connect directly. If the peer does not
  1165. * acknowledge frames, assume it is sleeping and use device
  1166. * discoverability via the GO at that point.
  1167. */
  1168. }
  1169. p2p->ssid_set = 0;
  1170. if (force_ssid) {
  1171. wpa_hexdump_ascii(MSG_DEBUG, "P2P: Forced SSID",
  1172. force_ssid, force_ssid_len);
  1173. os_memcpy(p2p->ssid, force_ssid, force_ssid_len);
  1174. p2p->ssid_len = force_ssid_len;
  1175. p2p->ssid_set = 1;
  1176. }
  1177. dev->flags &= ~P2P_DEV_NOT_YET_READY;
  1178. dev->flags &= ~P2P_DEV_USER_REJECTED;
  1179. dev->flags &= ~P2P_DEV_WAIT_GO_NEG_RESPONSE;
  1180. dev->flags &= ~P2P_DEV_WAIT_GO_NEG_CONFIRM;
  1181. if (pd_before_go_neg)
  1182. dev->flags |= P2P_DEV_PD_BEFORE_GO_NEG;
  1183. else {
  1184. dev->flags &= ~P2P_DEV_PD_BEFORE_GO_NEG;
  1185. /*
  1186. * Assign dialog token and tie breaker here to use the same
  1187. * values in each retry within the same GO Negotiation exchange.
  1188. */
  1189. dev->dialog_token++;
  1190. if (dev->dialog_token == 0)
  1191. dev->dialog_token = 1;
  1192. dev->tie_breaker = p2p->next_tie_breaker;
  1193. p2p->next_tie_breaker = !p2p->next_tie_breaker;
  1194. }
  1195. dev->connect_reqs = 0;
  1196. dev->go_neg_req_sent = 0;
  1197. dev->go_state = UNKNOWN_GO;
  1198. p2p_set_dev_persistent(dev, persistent_group);
  1199. p2p->go_intent = go_intent;
  1200. os_memcpy(p2p->intended_addr, own_interface_addr, ETH_ALEN);
  1201. if (p2p->state != P2P_IDLE)
  1202. p2p_stop_find(p2p);
  1203. if (p2p->after_scan_tx) {
  1204. /*
  1205. * We need to drop the pending frame to avoid issues with the
  1206. * new GO Negotiation, e.g., when the pending frame was from a
  1207. * previous attempt at starting a GO Negotiation.
  1208. */
  1209. p2p_dbg(p2p, "Dropped previous pending Action frame TX that was waiting for p2p_scan completion");
  1210. os_free(p2p->after_scan_tx);
  1211. p2p->after_scan_tx = NULL;
  1212. }
  1213. dev->wps_method = wps_method;
  1214. dev->oob_pw_id = oob_pw_id;
  1215. dev->status = P2P_SC_SUCCESS;
  1216. if (p2p->p2p_scan_running) {
  1217. p2p_dbg(p2p, "p2p_scan running - delay connect send");
  1218. p2p->start_after_scan = P2P_AFTER_SCAN_CONNECT;
  1219. os_memcpy(p2p->after_scan_peer, peer_addr, ETH_ALEN);
  1220. return 0;
  1221. }
  1222. p2p->start_after_scan = P2P_AFTER_SCAN_NOTHING;
  1223. return p2p_connect_send(p2p, dev);
  1224. }
  1225. int p2p_authorize(struct p2p_data *p2p, const u8 *peer_addr,
  1226. enum p2p_wps_method wps_method,
  1227. int go_intent, const u8 *own_interface_addr,
  1228. unsigned int force_freq, int persistent_group,
  1229. const u8 *force_ssid, size_t force_ssid_len,
  1230. unsigned int pref_freq, u16 oob_pw_id)
  1231. {
  1232. struct p2p_device *dev;
  1233. p2p_dbg(p2p, "Request to authorize group negotiation - peer=" MACSTR
  1234. " GO Intent=%d Intended Interface Address=" MACSTR
  1235. " wps_method=%d persistent_group=%d oob_pw_id=%u",
  1236. MAC2STR(peer_addr), go_intent, MAC2STR(own_interface_addr),
  1237. wps_method, persistent_group, oob_pw_id);
  1238. dev = p2p_get_device(p2p, peer_addr);
  1239. if (dev == NULL) {
  1240. p2p_dbg(p2p, "Cannot authorize unknown P2P Device " MACSTR,
  1241. MAC2STR(peer_addr));
  1242. return -1;
  1243. }
  1244. if (p2p_prepare_channel(p2p, dev, force_freq, pref_freq, go_intent ==
  1245. 15) < 0)
  1246. return -1;
  1247. p2p->ssid_set = 0;
  1248. if (force_ssid) {
  1249. wpa_hexdump_ascii(MSG_DEBUG, "P2P: Forced SSID",
  1250. force_ssid, force_ssid_len);
  1251. os_memcpy(p2p->ssid, force_ssid, force_ssid_len);
  1252. p2p->ssid_len = force_ssid_len;
  1253. p2p->ssid_set = 1;
  1254. }
  1255. dev->flags &= ~P2P_DEV_NOT_YET_READY;
  1256. dev->flags &= ~P2P_DEV_USER_REJECTED;
  1257. dev->go_neg_req_sent = 0;
  1258. dev->go_state = UNKNOWN_GO;
  1259. p2p_set_dev_persistent(dev, persistent_group);
  1260. p2p->go_intent = go_intent;
  1261. os_memcpy(p2p->intended_addr, own_interface_addr, ETH_ALEN);
  1262. dev->wps_method = wps_method;
  1263. dev->oob_pw_id = oob_pw_id;
  1264. dev->status = P2P_SC_SUCCESS;
  1265. return 0;
  1266. }
  1267. void p2p_add_dev_info(struct p2p_data *p2p, const u8 *addr,
  1268. struct p2p_device *dev, struct p2p_message *msg)
  1269. {
  1270. os_get_reltime(&dev->last_seen);
  1271. p2p_copy_wps_info(p2p, dev, 0, msg);
  1272. if (msg->listen_channel) {
  1273. int freq;
  1274. freq = p2p_channel_to_freq(msg->listen_channel[3],
  1275. msg->listen_channel[4]);
  1276. if (freq < 0) {
  1277. p2p_dbg(p2p, "Unknown peer Listen channel: "
  1278. "country=%c%c(0x%02x) reg_class=%u channel=%u",
  1279. msg->listen_channel[0],
  1280. msg->listen_channel[1],
  1281. msg->listen_channel[2],
  1282. msg->listen_channel[3],
  1283. msg->listen_channel[4]);
  1284. } else {
  1285. p2p_dbg(p2p, "Update peer " MACSTR
  1286. " Listen channel: %u -> %u MHz",
  1287. MAC2STR(dev->info.p2p_device_addr),
  1288. dev->listen_freq, freq);
  1289. dev->listen_freq = freq;
  1290. }
  1291. }
  1292. if (msg->wfd_subelems) {
  1293. wpabuf_free(dev->info.wfd_subelems);
  1294. dev->info.wfd_subelems = wpabuf_dup(msg->wfd_subelems);
  1295. }
  1296. if (dev->flags & P2P_DEV_PROBE_REQ_ONLY) {
  1297. dev->flags &= ~P2P_DEV_PROBE_REQ_ONLY;
  1298. p2p_dbg(p2p, "Completed device entry based on data from GO Negotiation Request");
  1299. } else {
  1300. p2p_dbg(p2p, "Created device entry based on GO Neg Req: "
  1301. MACSTR " dev_capab=0x%x group_capab=0x%x name='%s' "
  1302. "listen_freq=%d",
  1303. MAC2STR(dev->info.p2p_device_addr),
  1304. dev->info.dev_capab, dev->info.group_capab,
  1305. dev->info.device_name, dev->listen_freq);
  1306. }
  1307. dev->flags &= ~P2P_DEV_GROUP_CLIENT_ONLY;
  1308. if (dev->flags & P2P_DEV_USER_REJECTED) {
  1309. p2p_dbg(p2p, "Do not report rejected device");
  1310. return;
  1311. }
  1312. p2p->cfg->dev_found(p2p->cfg->cb_ctx, addr, &dev->info,
  1313. !(dev->flags & P2P_DEV_REPORTED_ONCE));
  1314. dev->flags |= P2P_DEV_REPORTED | P2P_DEV_REPORTED_ONCE;
  1315. }
  1316. void p2p_build_ssid(struct p2p_data *p2p, u8 *ssid, size_t *ssid_len)
  1317. {
  1318. os_memcpy(ssid, P2P_WILDCARD_SSID, P2P_WILDCARD_SSID_LEN);
  1319. p2p_random((char *) &ssid[P2P_WILDCARD_SSID_LEN], 2);
  1320. os_memcpy(&ssid[P2P_WILDCARD_SSID_LEN + 2],
  1321. p2p->cfg->ssid_postfix, p2p->cfg->ssid_postfix_len);
  1322. *ssid_len = P2P_WILDCARD_SSID_LEN + 2 + p2p->cfg->ssid_postfix_len;
  1323. }
  1324. int p2p_go_params(struct p2p_data *p2p, struct p2p_go_neg_results *params)
  1325. {
  1326. p2p_build_ssid(p2p, params->ssid, &params->ssid_len);
  1327. p2p_random(params->passphrase, 8);
  1328. return 0;
  1329. }
  1330. void p2p_go_complete(struct p2p_data *p2p, struct p2p_device *peer)
  1331. {
  1332. struct p2p_go_neg_results res;
  1333. int go = peer->go_state == LOCAL_GO;
  1334. struct p2p_channels intersection;
  1335. int freqs;
  1336. size_t i, j;
  1337. p2p_dbg(p2p, "GO Negotiation with " MACSTR " completed (%s will be GO)",
  1338. MAC2STR(peer->info.p2p_device_addr), go ? "local end" : "peer");
  1339. os_memset(&res, 0, sizeof(res));
  1340. res.role_go = go;
  1341. os_memcpy(res.peer_device_addr, peer->info.p2p_device_addr, ETH_ALEN);
  1342. os_memcpy(res.peer_interface_addr, peer->intended_addr, ETH_ALEN);
  1343. res.wps_method = peer->wps_method;
  1344. if (peer->flags & P2P_DEV_PREFER_PERSISTENT_GROUP) {
  1345. if (peer->flags & P2P_DEV_PREFER_PERSISTENT_RECONN)
  1346. res.persistent_group = 2;
  1347. else
  1348. res.persistent_group = 1;
  1349. }
  1350. if (go) {
  1351. /* Setup AP mode for WPS provisioning */
  1352. res.freq = p2p_channel_to_freq(p2p->op_reg_class,
  1353. p2p->op_channel);
  1354. os_memcpy(res.ssid, p2p->ssid, p2p->ssid_len);
  1355. res.ssid_len = p2p->ssid_len;
  1356. p2p_random(res.passphrase, 8);
  1357. } else {
  1358. res.freq = peer->oper_freq;
  1359. if (p2p->ssid_len) {
  1360. os_memcpy(res.ssid, p2p->ssid, p2p->ssid_len);
  1361. res.ssid_len = p2p->ssid_len;
  1362. }
  1363. }
  1364. p2p_channels_dump(p2p, "own channels", &p2p->channels);
  1365. p2p_channels_dump(p2p, "peer channels", &peer->channels);
  1366. p2p_channels_intersect(&p2p->channels, &peer->channels,
  1367. &intersection);
  1368. if (go) {
  1369. p2p_channels_remove_freqs(&intersection, &p2p->no_go_freq);
  1370. p2p_channels_dump(p2p, "intersection after no-GO removal",
  1371. &intersection);
  1372. }
  1373. freqs = 0;
  1374. for (i = 0; i < intersection.reg_classes; i++) {
  1375. struct p2p_reg_class *c = &intersection.reg_class[i];
  1376. if (freqs + 1 == P2P_MAX_CHANNELS)
  1377. break;
  1378. for (j = 0; j < c->channels; j++) {
  1379. int freq;
  1380. if (freqs + 1 == P2P_MAX_CHANNELS)
  1381. break;
  1382. freq = p2p_channel_to_freq(c->reg_class, c->channel[j]);
  1383. if (freq < 0)
  1384. continue;
  1385. res.freq_list[freqs++] = freq;
  1386. }
  1387. }
  1388. res.peer_config_timeout = go ? peer->client_timeout : peer->go_timeout;
  1389. p2p_clear_timeout(p2p);
  1390. p2p->ssid_set = 0;
  1391. peer->go_neg_req_sent = 0;
  1392. peer->wps_method = WPS_NOT_READY;
  1393. peer->oob_pw_id = 0;
  1394. wpabuf_free(peer->go_neg_conf);
  1395. peer->go_neg_conf = NULL;
  1396. p2p_set_state(p2p, P2P_PROVISIONING);
  1397. p2p->cfg->go_neg_completed(p2p->cfg->cb_ctx, &res);
  1398. }
  1399. static void p2p_rx_p2p_action(struct p2p_data *p2p, const u8 *sa,
  1400. const u8 *data, size_t len, int rx_freq)
  1401. {
  1402. p2p_dbg(p2p, "RX P2P Public Action from " MACSTR, MAC2STR(sa));
  1403. wpa_hexdump(MSG_MSGDUMP, "P2P: P2P Public Action contents", data, len);
  1404. if (len < 1)
  1405. return;
  1406. switch (data[0]) {
  1407. case P2P_GO_NEG_REQ:
  1408. p2p_process_go_neg_req(p2p, sa, data + 1, len - 1, rx_freq);
  1409. break;
  1410. case P2P_GO_NEG_RESP:
  1411. p2p_process_go_neg_resp(p2p, sa, data + 1, len - 1, rx_freq);
  1412. break;
  1413. case P2P_GO_NEG_CONF:
  1414. p2p_process_go_neg_conf(p2p, sa, data + 1, len - 1);
  1415. break;
  1416. case P2P_INVITATION_REQ:
  1417. p2p_process_invitation_req(p2p, sa, data + 1, len - 1,
  1418. rx_freq);
  1419. break;
  1420. case P2P_INVITATION_RESP:
  1421. p2p->cfg->send_action_done(p2p->cfg->cb_ctx);
  1422. p2p_process_invitation_resp(p2p, sa, data + 1, len - 1);
  1423. break;
  1424. case P2P_PROV_DISC_REQ:
  1425. p2p_process_prov_disc_req(p2p, sa, data + 1, len - 1, rx_freq);
  1426. break;
  1427. case P2P_PROV_DISC_RESP:
  1428. p2p_process_prov_disc_resp(p2p, sa, data + 1, len - 1);
  1429. break;
  1430. case P2P_DEV_DISC_REQ:
  1431. p2p_process_dev_disc_req(p2p, sa, data + 1, len - 1, rx_freq);
  1432. break;
  1433. case P2P_DEV_DISC_RESP:
  1434. p2p_process_dev_disc_resp(p2p, sa, data + 1, len - 1);
  1435. break;
  1436. default:
  1437. p2p_dbg(p2p, "Unsupported P2P Public Action frame type %d",
  1438. data[0]);
  1439. break;
  1440. }
  1441. }
  1442. static void p2p_rx_action_public(struct p2p_data *p2p, const u8 *da,
  1443. const u8 *sa, const u8 *bssid, const u8 *data,
  1444. size_t len, int freq)
  1445. {
  1446. if (len < 1)
  1447. return;
  1448. switch (data[0]) {
  1449. case WLAN_PA_VENDOR_SPECIFIC:
  1450. data++;
  1451. len--;
  1452. if (len < 4)
  1453. return;
  1454. if (WPA_GET_BE32(data) != P2P_IE_VENDOR_TYPE)
  1455. return;
  1456. data += 4;
  1457. len -= 4;
  1458. p2p_rx_p2p_action(p2p, sa, data, len, freq);
  1459. break;
  1460. case WLAN_PA_GAS_INITIAL_REQ:
  1461. p2p_rx_gas_initial_req(p2p, sa, data + 1, len - 1, freq);
  1462. break;
  1463. case WLAN_PA_GAS_INITIAL_RESP:
  1464. p2p_rx_gas_initial_resp(p2p, sa, data + 1, len - 1, freq);
  1465. break;
  1466. case WLAN_PA_GAS_COMEBACK_REQ:
  1467. p2p_rx_gas_comeback_req(p2p, sa, data + 1, len - 1, freq);
  1468. break;
  1469. case WLAN_PA_GAS_COMEBACK_RESP:
  1470. p2p_rx_gas_comeback_resp(p2p, sa, data + 1, len - 1, freq);
  1471. break;
  1472. }
  1473. }
  1474. void p2p_rx_action(struct p2p_data *p2p, const u8 *da, const u8 *sa,
  1475. const u8 *bssid, u8 category,
  1476. const u8 *data, size_t len, int freq)
  1477. {
  1478. if (category == WLAN_ACTION_PUBLIC) {
  1479. p2p_rx_action_public(p2p, da, sa, bssid, data, len, freq);
  1480. return;
  1481. }
  1482. if (category != WLAN_ACTION_VENDOR_SPECIFIC)
  1483. return;
  1484. if (len < 4)
  1485. return;
  1486. if (WPA_GET_BE32(data) != P2P_IE_VENDOR_TYPE)
  1487. return;
  1488. data += 4;
  1489. len -= 4;
  1490. /* P2P action frame */
  1491. p2p_dbg(p2p, "RX P2P Action from " MACSTR, MAC2STR(sa));
  1492. wpa_hexdump(MSG_MSGDUMP, "P2P: P2P Action contents", data, len);
  1493. if (len < 1)
  1494. return;
  1495. switch (data[0]) {
  1496. case P2P_NOA:
  1497. p2p_dbg(p2p, "Received P2P Action - Notice of Absence");
  1498. /* TODO */
  1499. break;
  1500. case P2P_PRESENCE_REQ:
  1501. p2p_process_presence_req(p2p, da, sa, data + 1, len - 1, freq);
  1502. break;
  1503. case P2P_PRESENCE_RESP:
  1504. p2p_process_presence_resp(p2p, da, sa, data + 1, len - 1);
  1505. break;
  1506. case P2P_GO_DISC_REQ:
  1507. p2p_process_go_disc_req(p2p, da, sa, data + 1, len - 1, freq);
  1508. break;
  1509. default:
  1510. p2p_dbg(p2p, "Received P2P Action - unknown type %u", data[0]);
  1511. break;
  1512. }
  1513. }
  1514. static void p2p_go_neg_start(void *eloop_ctx, void *timeout_ctx)
  1515. {
  1516. struct p2p_data *p2p = eloop_ctx;
  1517. if (p2p->go_neg_peer == NULL)
  1518. return;
  1519. p2p->cfg->stop_listen(p2p->cfg->cb_ctx);
  1520. p2p->go_neg_peer->status = P2P_SC_SUCCESS;
  1521. p2p_connect_send(p2p, p2p->go_neg_peer);
  1522. }
  1523. static void p2p_invite_start(void *eloop_ctx, void *timeout_ctx)
  1524. {
  1525. struct p2p_data *p2p = eloop_ctx;
  1526. if (p2p->invite_peer == NULL)
  1527. return;
  1528. p2p->cfg->stop_listen(p2p->cfg->cb_ctx);
  1529. p2p_invite_send(p2p, p2p->invite_peer, p2p->invite_go_dev_addr,
  1530. p2p->invite_dev_pw_id);
  1531. }
  1532. static void p2p_add_dev_from_probe_req(struct p2p_data *p2p, const u8 *addr,
  1533. const u8 *ie, size_t ie_len)
  1534. {
  1535. struct p2p_message msg;
  1536. struct p2p_device *dev;
  1537. os_memset(&msg, 0, sizeof(msg));
  1538. if (p2p_parse_ies(ie, ie_len, &msg) < 0 || msg.p2p_attributes == NULL)
  1539. {
  1540. p2p_parse_free(&msg);
  1541. return; /* not a P2P probe */
  1542. }
  1543. if (msg.ssid == NULL || msg.ssid[1] != P2P_WILDCARD_SSID_LEN ||
  1544. os_memcmp(msg.ssid + 2, P2P_WILDCARD_SSID, P2P_WILDCARD_SSID_LEN)
  1545. != 0) {
  1546. /* The Probe Request is not part of P2P Device Discovery. It is
  1547. * not known whether the source address of the frame is the P2P
  1548. * Device Address or P2P Interface Address. Do not add a new
  1549. * peer entry based on this frames.
  1550. */
  1551. p2p_parse_free(&msg);
  1552. return;
  1553. }
  1554. dev = p2p_get_device(p2p, addr);
  1555. if (dev) {
  1556. if (dev->country[0] == 0 && msg.listen_channel)
  1557. os_memcpy(dev->country, msg.listen_channel, 3);
  1558. os_get_reltime(&dev->last_seen);
  1559. p2p_parse_free(&msg);
  1560. return; /* already known */
  1561. }
  1562. dev = p2p_create_device(p2p, addr);
  1563. if (dev == NULL) {
  1564. p2p_parse_free(&msg);
  1565. return;
  1566. }
  1567. os_get_reltime(&dev->last_seen);
  1568. dev->flags |= P2P_DEV_PROBE_REQ_ONLY;
  1569. if (msg.listen_channel) {
  1570. os_memcpy(dev->country, msg.listen_channel, 3);
  1571. dev->listen_freq = p2p_channel_to_freq(msg.listen_channel[3],
  1572. msg.listen_channel[4]);
  1573. }
  1574. p2p_copy_wps_info(p2p, dev, 1, &msg);
  1575. if (msg.wfd_subelems) {
  1576. wpabuf_free(dev->info.wfd_subelems);
  1577. dev->info.wfd_subelems = wpabuf_dup(msg.wfd_subelems);
  1578. }
  1579. p2p_parse_free(&msg);
  1580. p2p_dbg(p2p, "Created device entry based on Probe Req: " MACSTR
  1581. " dev_capab=0x%x group_capab=0x%x name='%s' listen_freq=%d",
  1582. MAC2STR(dev->info.p2p_device_addr), dev->info.dev_capab,
  1583. dev->info.group_capab, dev->info.device_name,
  1584. dev->listen_freq);
  1585. }
  1586. struct p2p_device * p2p_add_dev_from_go_neg_req(struct p2p_data *p2p,
  1587. const u8 *addr,
  1588. struct p2p_message *msg)
  1589. {
  1590. struct p2p_device *dev;
  1591. dev = p2p_get_device(p2p, addr);
  1592. if (dev) {
  1593. os_get_reltime(&dev->last_seen);
  1594. return dev; /* already known */
  1595. }
  1596. dev = p2p_create_device(p2p, addr);
  1597. if (dev == NULL)
  1598. return NULL;
  1599. p2p_add_dev_info(p2p, addr, dev, msg);
  1600. return dev;
  1601. }
  1602. static int dev_type_match(const u8 *dev_type, const u8 *req_dev_type)
  1603. {
  1604. if (os_memcmp(dev_type, req_dev_type, WPS_DEV_TYPE_LEN) == 0)
  1605. return 1;
  1606. if (os_memcmp(dev_type, req_dev_type, 2) == 0 &&
  1607. WPA_GET_BE32(&req_dev_type[2]) == 0 &&
  1608. WPA_GET_BE16(&req_dev_type[6]) == 0)
  1609. return 1; /* Category match with wildcard OUI/sub-category */
  1610. return 0;
  1611. }
  1612. int dev_type_list_match(const u8 *dev_type, const u8 *req_dev_type[],
  1613. size_t num_req_dev_type)
  1614. {
  1615. size_t i;
  1616. for (i = 0; i < num_req_dev_type; i++) {
  1617. if (dev_type_match(dev_type, req_dev_type[i]))
  1618. return 1;
  1619. }
  1620. return 0;
  1621. }
  1622. /**
  1623. * p2p_match_dev_type - Match local device type with requested type
  1624. * @p2p: P2P module context from p2p_init()
  1625. * @wps: WPS TLVs from Probe Request frame (concatenated WPS IEs)
  1626. * Returns: 1 on match, 0 on mismatch
  1627. *
  1628. * This function can be used to match the Requested Device Type attribute in
  1629. * WPS IE with the local device types for deciding whether to reply to a Probe
  1630. * Request frame.
  1631. */
  1632. int p2p_match_dev_type(struct p2p_data *p2p, struct wpabuf *wps)
  1633. {
  1634. struct wps_parse_attr attr;
  1635. size_t i;
  1636. if (wps_parse_msg(wps, &attr))
  1637. return 1; /* assume no Requested Device Type attributes */
  1638. if (attr.num_req_dev_type == 0)
  1639. return 1; /* no Requested Device Type attributes -> match */
  1640. if (dev_type_list_match(p2p->cfg->pri_dev_type, attr.req_dev_type,
  1641. attr.num_req_dev_type))
  1642. return 1; /* Own Primary Device Type matches */
  1643. for (i = 0; i < p2p->cfg->num_sec_dev_types; i++)
  1644. if (dev_type_list_match(p2p->cfg->sec_dev_type[i],
  1645. attr.req_dev_type,
  1646. attr.num_req_dev_type))
  1647. return 1; /* Own Secondary Device Type matches */
  1648. /* No matching device type found */
  1649. return 0;
  1650. }
  1651. struct wpabuf * p2p_build_probe_resp_ies(struct p2p_data *p2p)
  1652. {
  1653. struct wpabuf *buf;
  1654. u8 *len;
  1655. int pw_id = -1;
  1656. size_t extra = 0;
  1657. #ifdef CONFIG_WIFI_DISPLAY
  1658. if (p2p->wfd_ie_probe_resp)
  1659. extra = wpabuf_len(p2p->wfd_ie_probe_resp);
  1660. #endif /* CONFIG_WIFI_DISPLAY */
  1661. buf = wpabuf_alloc(1000 + extra);
  1662. if (buf == NULL)
  1663. return NULL;
  1664. if (p2p->go_neg_peer) {
  1665. /* Advertise immediate availability of WPS credential */
  1666. pw_id = p2p_wps_method_pw_id(p2p->go_neg_peer->wps_method);
  1667. }
  1668. if (p2p_build_wps_ie(p2p, buf, pw_id, 1) < 0) {
  1669. p2p_dbg(p2p, "Failed to build WPS IE for Probe Response");
  1670. wpabuf_free(buf);
  1671. return NULL;
  1672. }
  1673. #ifdef CONFIG_WIFI_DISPLAY
  1674. if (p2p->wfd_ie_probe_resp)
  1675. wpabuf_put_buf(buf, p2p->wfd_ie_probe_resp);
  1676. #endif /* CONFIG_WIFI_DISPLAY */
  1677. /* P2P IE */
  1678. len = p2p_buf_add_ie_hdr(buf);
  1679. p2p_buf_add_capability(buf, p2p->dev_capab &
  1680. ~P2P_DEV_CAPAB_CLIENT_DISCOVERABILITY, 0);
  1681. if (p2p->ext_listen_interval)
  1682. p2p_buf_add_ext_listen_timing(buf, p2p->ext_listen_period,
  1683. p2p->ext_listen_interval);
  1684. p2p_buf_add_device_info(buf, p2p, NULL);
  1685. p2p_buf_update_ie_hdr(buf, len);
  1686. return buf;
  1687. }
  1688. static enum p2p_probe_req_status
  1689. p2p_reply_probe(struct p2p_data *p2p, const u8 *addr, const u8 *dst,
  1690. const u8 *bssid, const u8 *ie, size_t ie_len)
  1691. {
  1692. struct ieee802_11_elems elems;
  1693. struct wpabuf *buf;
  1694. struct ieee80211_mgmt *resp;
  1695. struct p2p_message msg;
  1696. struct wpabuf *ies;
  1697. if (!p2p->in_listen || !p2p->drv_in_listen) {
  1698. /* not in Listen state - ignore Probe Request */
  1699. p2p_dbg(p2p, "Not in Listen state (in_listen=%d drv_in_listen=%d) - ignore Probe Request",
  1700. p2p->in_listen, p2p->drv_in_listen);
  1701. return P2P_PREQ_NOT_LISTEN;
  1702. }
  1703. if (ieee802_11_parse_elems((u8 *) ie, ie_len, &elems, 0) ==
  1704. ParseFailed) {
  1705. /* Ignore invalid Probe Request frames */
  1706. p2p_dbg(p2p, "Could not parse Probe Request frame - ignore it");
  1707. return P2P_PREQ_MALFORMED;
  1708. }
  1709. if (elems.p2p == NULL) {
  1710. /* not a P2P probe - ignore it */
  1711. p2p_dbg(p2p, "Not a P2P probe - ignore it");
  1712. return P2P_PREQ_NOT_P2P;
  1713. }
  1714. if (dst && !is_broadcast_ether_addr(dst) &&
  1715. os_memcmp(dst, p2p->cfg->dev_addr, ETH_ALEN) != 0) {
  1716. /* Not sent to the broadcast address or our P2P Device Address
  1717. */
  1718. p2p_dbg(p2p, "Probe Req DA " MACSTR " not ours - ignore it",
  1719. MAC2STR(dst));
  1720. return P2P_PREQ_NOT_PROCESSED;
  1721. }
  1722. if (bssid && !is_broadcast_ether_addr(bssid)) {
  1723. /* Not sent to the Wildcard BSSID */
  1724. p2p_dbg(p2p, "Probe Req BSSID " MACSTR " not wildcard - ignore it",
  1725. MAC2STR(bssid));
  1726. return P2P_PREQ_NOT_PROCESSED;
  1727. }
  1728. if (elems.ssid == NULL || elems.ssid_len != P2P_WILDCARD_SSID_LEN ||
  1729. os_memcmp(elems.ssid, P2P_WILDCARD_SSID, P2P_WILDCARD_SSID_LEN) !=
  1730. 0) {
  1731. /* not using P2P Wildcard SSID - ignore */
  1732. p2p_dbg(p2p, "Probe Req not using P2P Wildcard SSID - ignore it");
  1733. return P2P_PREQ_NOT_PROCESSED;
  1734. }
  1735. if (supp_rates_11b_only(&elems)) {
  1736. /* Indicates support for 11b rates only */
  1737. p2p_dbg(p2p, "Probe Req with 11b rates only supported - ignore it");
  1738. return P2P_PREQ_NOT_P2P;
  1739. }
  1740. os_memset(&msg, 0, sizeof(msg));
  1741. if (p2p_parse_ies(ie, ie_len, &msg) < 0) {
  1742. /* Could not parse P2P attributes */
  1743. p2p_dbg(p2p, "Could not parse P2P attributes in Probe Req - ignore it");
  1744. return P2P_PREQ_NOT_P2P;
  1745. }
  1746. if (msg.device_id &&
  1747. os_memcmp(msg.device_id, p2p->cfg->dev_addr, ETH_ALEN) != 0) {
  1748. /* Device ID did not match */
  1749. p2p_dbg(p2p, "Probe Req requested Device ID " MACSTR " did not match - ignore it",
  1750. MAC2STR(msg.device_id));
  1751. p2p_parse_free(&msg);
  1752. return P2P_PREQ_NOT_PROCESSED;
  1753. }
  1754. /* Check Requested Device Type match */
  1755. if (msg.wps_attributes &&
  1756. !p2p_match_dev_type(p2p, msg.wps_attributes)) {
  1757. /* No match with Requested Device Type */
  1758. p2p_dbg(p2p, "Probe Req requestred Device Type did not match - ignore it");
  1759. p2p_parse_free(&msg);
  1760. return P2P_PREQ_NOT_PROCESSED;
  1761. }
  1762. p2p_parse_free(&msg);
  1763. if (!p2p->cfg->send_probe_resp) {
  1764. /* Response generated elsewhere */
  1765. p2p_dbg(p2p, "Probe Resp generated elsewhere - do not generate additional response");
  1766. return P2P_PREQ_NOT_PROCESSED;
  1767. }
  1768. p2p_dbg(p2p, "Reply to P2P Probe Request in Listen state");
  1769. /*
  1770. * We do not really have a specific BSS that this frame is advertising,
  1771. * so build a frame that has some information in valid format. This is
  1772. * really only used for discovery purposes, not to learn exact BSS
  1773. * parameters.
  1774. */
  1775. ies = p2p_build_probe_resp_ies(p2p);
  1776. if (ies == NULL)
  1777. return P2P_PREQ_NOT_PROCESSED;
  1778. buf = wpabuf_alloc(200 + wpabuf_len(ies));
  1779. if (buf == NULL) {
  1780. wpabuf_free(ies);
  1781. return P2P_PREQ_NOT_PROCESSED;
  1782. }
  1783. resp = NULL;
  1784. resp = wpabuf_put(buf, resp->u.probe_resp.variable - (u8 *) resp);
  1785. resp->frame_control = host_to_le16((WLAN_FC_TYPE_MGMT << 2) |
  1786. (WLAN_FC_STYPE_PROBE_RESP << 4));
  1787. os_memcpy(resp->da, addr, ETH_ALEN);
  1788. os_memcpy(resp->sa, p2p->cfg->dev_addr, ETH_ALEN);
  1789. os_memcpy(resp->bssid, p2p->cfg->dev_addr, ETH_ALEN);
  1790. resp->u.probe_resp.beacon_int = host_to_le16(100);
  1791. /* hardware or low-level driver will setup seq_ctrl and timestamp */
  1792. resp->u.probe_resp.capab_info =
  1793. host_to_le16(WLAN_CAPABILITY_SHORT_PREAMBLE |
  1794. WLAN_CAPABILITY_PRIVACY |
  1795. WLAN_CAPABILITY_SHORT_SLOT_TIME);
  1796. wpabuf_put_u8(buf, WLAN_EID_SSID);
  1797. wpabuf_put_u8(buf, P2P_WILDCARD_SSID_LEN);
  1798. wpabuf_put_data(buf, P2P_WILDCARD_SSID, P2P_WILDCARD_SSID_LEN);
  1799. wpabuf_put_u8(buf, WLAN_EID_SUPP_RATES);
  1800. wpabuf_put_u8(buf, 8);
  1801. wpabuf_put_u8(buf, (60 / 5) | 0x80);
  1802. wpabuf_put_u8(buf, 90 / 5);
  1803. wpabuf_put_u8(buf, (120 / 5) | 0x80);
  1804. wpabuf_put_u8(buf, 180 / 5);
  1805. wpabuf_put_u8(buf, (240 / 5) | 0x80);
  1806. wpabuf_put_u8(buf, 360 / 5);
  1807. wpabuf_put_u8(buf, 480 / 5);
  1808. wpabuf_put_u8(buf, 540 / 5);
  1809. wpabuf_put_u8(buf, WLAN_EID_DS_PARAMS);
  1810. wpabuf_put_u8(buf, 1);
  1811. wpabuf_put_u8(buf, p2p->cfg->channel);
  1812. wpabuf_put_buf(buf, ies);
  1813. wpabuf_free(ies);
  1814. p2p->cfg->send_probe_resp(p2p->cfg->cb_ctx, buf);
  1815. wpabuf_free(buf);
  1816. return P2P_PREQ_NOT_PROCESSED;
  1817. }
  1818. enum p2p_probe_req_status
  1819. p2p_probe_req_rx(struct p2p_data *p2p, const u8 *addr, const u8 *dst,
  1820. const u8 *bssid, const u8 *ie, size_t ie_len)
  1821. {
  1822. enum p2p_probe_req_status res;
  1823. p2p_add_dev_from_probe_req(p2p, addr, ie, ie_len);
  1824. res = p2p_reply_probe(p2p, addr, dst, bssid, ie, ie_len);
  1825. if ((p2p->state == P2P_CONNECT || p2p->state == P2P_CONNECT_LISTEN) &&
  1826. p2p->go_neg_peer &&
  1827. os_memcmp(addr, p2p->go_neg_peer->info.p2p_device_addr, ETH_ALEN)
  1828. == 0 &&
  1829. !(p2p->go_neg_peer->flags & P2P_DEV_WAIT_GO_NEG_CONFIRM)) {
  1830. /* Received a Probe Request from GO Negotiation peer */
  1831. p2p_dbg(p2p, "Found GO Negotiation peer - try to start GO negotiation from timeout");
  1832. eloop_cancel_timeout(p2p_go_neg_start, p2p, NULL);
  1833. eloop_register_timeout(0, 0, p2p_go_neg_start, p2p, NULL);
  1834. return P2P_PREQ_PROCESSED;
  1835. }
  1836. if ((p2p->state == P2P_INVITE || p2p->state == P2P_INVITE_LISTEN) &&
  1837. p2p->invite_peer &&
  1838. (p2p->invite_peer->flags & P2P_DEV_WAIT_INV_REQ_ACK) &&
  1839. os_memcmp(addr, p2p->invite_peer->info.p2p_device_addr, ETH_ALEN)
  1840. == 0) {
  1841. /* Received a Probe Request from Invite peer */
  1842. p2p_dbg(p2p, "Found Invite peer - try to start Invite from timeout");
  1843. eloop_cancel_timeout(p2p_invite_start, p2p, NULL);
  1844. eloop_register_timeout(0, 0, p2p_invite_start, p2p, NULL);
  1845. return P2P_PREQ_PROCESSED;
  1846. }
  1847. return res;
  1848. }
  1849. static int p2p_assoc_req_ie_wlan_ap(struct p2p_data *p2p, const u8 *bssid,
  1850. u8 *buf, size_t len, struct wpabuf *p2p_ie)
  1851. {
  1852. struct wpabuf *tmp;
  1853. u8 *lpos;
  1854. size_t tmplen;
  1855. int res;
  1856. u8 group_capab;
  1857. if (p2p_ie == NULL)
  1858. return 0; /* WLAN AP is not a P2P manager */
  1859. /*
  1860. * (Re)Association Request - P2P IE
  1861. * P2P Capability attribute (shall be present)
  1862. * P2P Interface attribute (present if concurrent device and
  1863. * P2P Management is enabled)
  1864. */
  1865. tmp = wpabuf_alloc(200);
  1866. if (tmp == NULL)
  1867. return -1;
  1868. lpos = p2p_buf_add_ie_hdr(tmp);
  1869. group_capab = 0;
  1870. if (p2p->num_groups > 0) {
  1871. group_capab |= P2P_GROUP_CAPAB_GROUP_OWNER;
  1872. if ((p2p->dev_capab & P2P_DEV_CAPAB_CONCURRENT_OPER) &&
  1873. (p2p->dev_capab & P2P_DEV_CAPAB_INFRA_MANAGED) &&
  1874. p2p->cross_connect)
  1875. group_capab |= P2P_GROUP_CAPAB_CROSS_CONN;
  1876. }
  1877. p2p_buf_add_capability(tmp, p2p->dev_capab, group_capab);
  1878. if ((p2p->dev_capab & P2P_DEV_CAPAB_CONCURRENT_OPER) &&
  1879. (p2p->dev_capab & P2P_DEV_CAPAB_INFRA_MANAGED))
  1880. p2p_buf_add_p2p_interface(tmp, p2p);
  1881. p2p_buf_update_ie_hdr(tmp, lpos);
  1882. tmplen = wpabuf_len(tmp);
  1883. if (tmplen > len)
  1884. res = -1;
  1885. else {
  1886. os_memcpy(buf, wpabuf_head(tmp), tmplen);
  1887. res = tmplen;
  1888. }
  1889. wpabuf_free(tmp);
  1890. return res;
  1891. }
  1892. int p2p_assoc_req_ie(struct p2p_data *p2p, const u8 *bssid, u8 *buf,
  1893. size_t len, int p2p_group, struct wpabuf *p2p_ie)
  1894. {
  1895. struct wpabuf *tmp;
  1896. u8 *lpos;
  1897. struct p2p_device *peer;
  1898. size_t tmplen;
  1899. int res;
  1900. size_t extra = 0;
  1901. if (!p2p_group)
  1902. return p2p_assoc_req_ie_wlan_ap(p2p, bssid, buf, len, p2p_ie);
  1903. #ifdef CONFIG_WIFI_DISPLAY
  1904. if (p2p->wfd_ie_assoc_req)
  1905. extra = wpabuf_len(p2p->wfd_ie_assoc_req);
  1906. #endif /* CONFIG_WIFI_DISPLAY */
  1907. /*
  1908. * (Re)Association Request - P2P IE
  1909. * P2P Capability attribute (shall be present)
  1910. * Extended Listen Timing (may be present)
  1911. * P2P Device Info attribute (shall be present)
  1912. */
  1913. tmp = wpabuf_alloc(200 + extra);
  1914. if (tmp == NULL)
  1915. return -1;
  1916. #ifdef CONFIG_WIFI_DISPLAY
  1917. if (p2p->wfd_ie_assoc_req)
  1918. wpabuf_put_buf(tmp, p2p->wfd_ie_assoc_req);
  1919. #endif /* CONFIG_WIFI_DISPLAY */
  1920. peer = bssid ? p2p_get_device(p2p, bssid) : NULL;
  1921. lpos = p2p_buf_add_ie_hdr(tmp);
  1922. p2p_buf_add_capability(tmp, p2p->dev_capab, 0);
  1923. if (p2p->ext_listen_interval)
  1924. p2p_buf_add_ext_listen_timing(tmp, p2p->ext_listen_period,
  1925. p2p->ext_listen_interval);
  1926. p2p_buf_add_device_info(tmp, p2p, peer);
  1927. p2p_buf_update_ie_hdr(tmp, lpos);
  1928. tmplen = wpabuf_len(tmp);
  1929. if (tmplen > len)
  1930. res = -1;
  1931. else {
  1932. os_memcpy(buf, wpabuf_head(tmp), tmplen);
  1933. res = tmplen;
  1934. }
  1935. wpabuf_free(tmp);
  1936. return res;
  1937. }
  1938. int p2p_scan_result_text(const u8 *ies, size_t ies_len, char *buf, char *end)
  1939. {
  1940. struct wpabuf *p2p_ie;
  1941. int ret;
  1942. p2p_ie = ieee802_11_vendor_ie_concat(ies, ies_len, P2P_IE_VENDOR_TYPE);
  1943. if (p2p_ie == NULL)
  1944. return 0;
  1945. ret = p2p_attr_text(p2p_ie, buf, end);
  1946. wpabuf_free(p2p_ie);
  1947. return ret;
  1948. }
  1949. int p2p_parse_dev_addr_in_p2p_ie(struct wpabuf *p2p_ie, u8 *dev_addr)
  1950. {
  1951. struct p2p_message msg;
  1952. os_memset(&msg, 0, sizeof(msg));
  1953. if (p2p_parse_p2p_ie(p2p_ie, &msg))
  1954. return -1;
  1955. if (msg.p2p_device_addr) {
  1956. os_memcpy(dev_addr, msg.p2p_device_addr, ETH_ALEN);
  1957. return 0;
  1958. } else if (msg.device_id) {
  1959. os_memcpy(dev_addr, msg.device_id, ETH_ALEN);
  1960. return 0;
  1961. }
  1962. return -1;
  1963. }
  1964. int p2p_parse_dev_addr(const u8 *ies, size_t ies_len, u8 *dev_addr)
  1965. {
  1966. struct wpabuf *p2p_ie;
  1967. int ret;
  1968. p2p_ie = ieee802_11_vendor_ie_concat(ies, ies_len,
  1969. P2P_IE_VENDOR_TYPE);
  1970. if (p2p_ie == NULL)
  1971. return -1;
  1972. ret = p2p_parse_dev_addr_in_p2p_ie(p2p_ie, dev_addr);
  1973. wpabuf_free(p2p_ie);
  1974. return ret;
  1975. }
  1976. static void p2p_clear_go_neg(struct p2p_data *p2p)
  1977. {
  1978. p2p->go_neg_peer = NULL;
  1979. p2p_clear_timeout(p2p);
  1980. p2p_set_state(p2p, P2P_IDLE);
  1981. }
  1982. void p2p_wps_success_cb(struct p2p_data *p2p, const u8 *mac_addr)
  1983. {
  1984. if (p2p->go_neg_peer == NULL) {
  1985. p2p_dbg(p2p, "No pending Group Formation - ignore WPS registration success notification");
  1986. return; /* No pending Group Formation */
  1987. }
  1988. if (os_memcmp(mac_addr, p2p->go_neg_peer->intended_addr, ETH_ALEN) !=
  1989. 0) {
  1990. p2p_dbg(p2p, "Ignore WPS registration success notification for "
  1991. MACSTR " (GO Negotiation peer " MACSTR ")",
  1992. MAC2STR(mac_addr),
  1993. MAC2STR(p2p->go_neg_peer->intended_addr));
  1994. return; /* Ignore unexpected peer address */
  1995. }
  1996. p2p_dbg(p2p, "Group Formation completed successfully with " MACSTR,
  1997. MAC2STR(mac_addr));
  1998. p2p_clear_go_neg(p2p);
  1999. }
  2000. void p2p_group_formation_failed(struct p2p_data *p2p)
  2001. {
  2002. if (p2p->go_neg_peer == NULL) {
  2003. p2p_dbg(p2p, "No pending Group Formation - ignore group formation failure notification");
  2004. return; /* No pending Group Formation */
  2005. }
  2006. p2p_dbg(p2p, "Group Formation failed with " MACSTR,
  2007. MAC2STR(p2p->go_neg_peer->intended_addr));
  2008. p2p_clear_go_neg(p2p);
  2009. }
  2010. struct p2p_data * p2p_init(const struct p2p_config *cfg)
  2011. {
  2012. struct p2p_data *p2p;
  2013. if (cfg->max_peers < 1)
  2014. return NULL;
  2015. p2p = os_zalloc(sizeof(*p2p) + sizeof(*cfg));
  2016. if (p2p == NULL)
  2017. return NULL;
  2018. p2p->cfg = (struct p2p_config *) (p2p + 1);
  2019. os_memcpy(p2p->cfg, cfg, sizeof(*cfg));
  2020. if (cfg->dev_name)
  2021. p2p->cfg->dev_name = os_strdup(cfg->dev_name);
  2022. if (cfg->manufacturer)
  2023. p2p->cfg->manufacturer = os_strdup(cfg->manufacturer);
  2024. if (cfg->model_name)
  2025. p2p->cfg->model_name = os_strdup(cfg->model_name);
  2026. if (cfg->model_number)
  2027. p2p->cfg->model_number = os_strdup(cfg->model_number);
  2028. if (cfg->serial_number)
  2029. p2p->cfg->serial_number = os_strdup(cfg->serial_number);
  2030. if (cfg->pref_chan) {
  2031. p2p->cfg->pref_chan = os_malloc(cfg->num_pref_chan *
  2032. sizeof(struct p2p_channel));
  2033. if (p2p->cfg->pref_chan) {
  2034. os_memcpy(p2p->cfg->pref_chan, cfg->pref_chan,
  2035. cfg->num_pref_chan *
  2036. sizeof(struct p2p_channel));
  2037. } else
  2038. p2p->cfg->num_pref_chan = 0;
  2039. }
  2040. p2p->min_disc_int = 1;
  2041. p2p->max_disc_int = 3;
  2042. p2p->max_disc_tu = -1;
  2043. os_get_random(&p2p->next_tie_breaker, 1);
  2044. p2p->next_tie_breaker &= 0x01;
  2045. if (cfg->sd_request)
  2046. p2p->dev_capab |= P2P_DEV_CAPAB_SERVICE_DISCOVERY;
  2047. p2p->dev_capab |= P2P_DEV_CAPAB_INVITATION_PROCEDURE;
  2048. if (cfg->concurrent_operations)
  2049. p2p->dev_capab |= P2P_DEV_CAPAB_CONCURRENT_OPER;
  2050. p2p->dev_capab |= P2P_DEV_CAPAB_CLIENT_DISCOVERABILITY;
  2051. dl_list_init(&p2p->devices);
  2052. eloop_register_timeout(P2P_PEER_EXPIRATION_INTERVAL, 0,
  2053. p2p_expiration_timeout, p2p, NULL);
  2054. p2p->go_timeout = 100;
  2055. p2p->client_timeout = 20;
  2056. p2p->num_p2p_sd_queries = 0;
  2057. p2p_dbg(p2p, "initialized");
  2058. p2p_channels_dump(p2p, "channels", &p2p->cfg->channels);
  2059. p2p_channels_dump(p2p, "cli_channels", &p2p->cfg->cli_channels);
  2060. return p2p;
  2061. }
  2062. void p2p_deinit(struct p2p_data *p2p)
  2063. {
  2064. #ifdef CONFIG_WIFI_DISPLAY
  2065. wpabuf_free(p2p->wfd_ie_beacon);
  2066. wpabuf_free(p2p->wfd_ie_probe_req);
  2067. wpabuf_free(p2p->wfd_ie_probe_resp);
  2068. wpabuf_free(p2p->wfd_ie_assoc_req);
  2069. wpabuf_free(p2p->wfd_ie_invitation);
  2070. wpabuf_free(p2p->wfd_ie_prov_disc_req);
  2071. wpabuf_free(p2p->wfd_ie_prov_disc_resp);
  2072. wpabuf_free(p2p->wfd_ie_go_neg);
  2073. wpabuf_free(p2p->wfd_dev_info);
  2074. wpabuf_free(p2p->wfd_assoc_bssid);
  2075. wpabuf_free(p2p->wfd_coupled_sink_info);
  2076. #endif /* CONFIG_WIFI_DISPLAY */
  2077. eloop_cancel_timeout(p2p_expiration_timeout, p2p, NULL);
  2078. eloop_cancel_timeout(p2p_ext_listen_timeout, p2p, NULL);
  2079. eloop_cancel_timeout(p2p_scan_timeout, p2p, NULL);
  2080. eloop_cancel_timeout(p2p_go_neg_start, p2p, NULL);
  2081. p2p_flush(p2p);
  2082. p2p_free_req_dev_types(p2p);
  2083. os_free(p2p->cfg->dev_name);
  2084. os_free(p2p->cfg->manufacturer);
  2085. os_free(p2p->cfg->model_name);
  2086. os_free(p2p->cfg->model_number);
  2087. os_free(p2p->cfg->serial_number);
  2088. os_free(p2p->cfg->pref_chan);
  2089. os_free(p2p->groups);
  2090. wpabuf_free(p2p->sd_resp);
  2091. os_free(p2p->after_scan_tx);
  2092. p2p_remove_wps_vendor_extensions(p2p);
  2093. os_free(p2p->no_go_freq.range);
  2094. os_free(p2p);
  2095. }
  2096. void p2p_flush(struct p2p_data *p2p)
  2097. {
  2098. struct p2p_device *dev, *prev;
  2099. p2p_stop_find(p2p);
  2100. dl_list_for_each_safe(dev, prev, &p2p->devices, struct p2p_device,
  2101. list) {
  2102. dl_list_del(&dev->list);
  2103. p2p_device_free(p2p, dev);
  2104. }
  2105. p2p_free_sd_queries(p2p);
  2106. os_free(p2p->after_scan_tx);
  2107. p2p->after_scan_tx = NULL;
  2108. }
  2109. int p2p_unauthorize(struct p2p_data *p2p, const u8 *addr)
  2110. {
  2111. struct p2p_device *dev;
  2112. dev = p2p_get_device(p2p, addr);
  2113. if (dev == NULL)
  2114. return -1;
  2115. p2p_dbg(p2p, "Unauthorizing " MACSTR, MAC2STR(addr));
  2116. if (p2p->go_neg_peer == dev)
  2117. p2p->go_neg_peer = NULL;
  2118. dev->wps_method = WPS_NOT_READY;
  2119. dev->oob_pw_id = 0;
  2120. dev->flags &= ~P2P_DEV_WAIT_GO_NEG_RESPONSE;
  2121. dev->flags &= ~P2P_DEV_WAIT_GO_NEG_CONFIRM;
  2122. /* Check if after_scan_tx is for this peer. If so free it */
  2123. if (p2p->after_scan_tx &&
  2124. os_memcmp(addr, p2p->after_scan_tx->dst, ETH_ALEN) == 0) {
  2125. os_free(p2p->after_scan_tx);
  2126. p2p->after_scan_tx = NULL;
  2127. }
  2128. return 0;
  2129. }
  2130. int p2p_set_dev_name(struct p2p_data *p2p, const char *dev_name)
  2131. {
  2132. os_free(p2p->cfg->dev_name);
  2133. if (dev_name) {
  2134. p2p->cfg->dev_name = os_strdup(dev_name);
  2135. if (p2p->cfg->dev_name == NULL)
  2136. return -1;
  2137. } else
  2138. p2p->cfg->dev_name = NULL;
  2139. return 0;
  2140. }
  2141. int p2p_set_manufacturer(struct p2p_data *p2p, const char *manufacturer)
  2142. {
  2143. os_free(p2p->cfg->manufacturer);
  2144. p2p->cfg->manufacturer = NULL;
  2145. if (manufacturer) {
  2146. p2p->cfg->manufacturer = os_strdup(manufacturer);
  2147. if (p2p->cfg->manufacturer == NULL)
  2148. return -1;
  2149. }
  2150. return 0;
  2151. }
  2152. int p2p_set_model_name(struct p2p_data *p2p, const char *model_name)
  2153. {
  2154. os_free(p2p->cfg->model_name);
  2155. p2p->cfg->model_name = NULL;
  2156. if (model_name) {
  2157. p2p->cfg->model_name = os_strdup(model_name);
  2158. if (p2p->cfg->model_name == NULL)
  2159. return -1;
  2160. }
  2161. return 0;
  2162. }
  2163. int p2p_set_model_number(struct p2p_data *p2p, const char *model_number)
  2164. {
  2165. os_free(p2p->cfg->model_number);
  2166. p2p->cfg->model_number = NULL;
  2167. if (model_number) {
  2168. p2p->cfg->model_number = os_strdup(model_number);
  2169. if (p2p->cfg->model_number == NULL)
  2170. return -1;
  2171. }
  2172. return 0;
  2173. }
  2174. int p2p_set_serial_number(struct p2p_data *p2p, const char *serial_number)
  2175. {
  2176. os_free(p2p->cfg->serial_number);
  2177. p2p->cfg->serial_number = NULL;
  2178. if (serial_number) {
  2179. p2p->cfg->serial_number = os_strdup(serial_number);
  2180. if (p2p->cfg->serial_number == NULL)
  2181. return -1;
  2182. }
  2183. return 0;
  2184. }
  2185. void p2p_set_config_methods(struct p2p_data *p2p, u16 config_methods)
  2186. {
  2187. p2p->cfg->config_methods = config_methods;
  2188. }
  2189. void p2p_set_uuid(struct p2p_data *p2p, const u8 *uuid)
  2190. {
  2191. os_memcpy(p2p->cfg->uuid, uuid, 16);
  2192. }
  2193. int p2p_set_pri_dev_type(struct p2p_data *p2p, const u8 *pri_dev_type)
  2194. {
  2195. os_memcpy(p2p->cfg->pri_dev_type, pri_dev_type, 8);
  2196. return 0;
  2197. }
  2198. int p2p_set_sec_dev_types(struct p2p_data *p2p, const u8 dev_types[][8],
  2199. size_t num_dev_types)
  2200. {
  2201. if (num_dev_types > P2P_SEC_DEVICE_TYPES)
  2202. num_dev_types = P2P_SEC_DEVICE_TYPES;
  2203. p2p->cfg->num_sec_dev_types = num_dev_types;
  2204. os_memcpy(p2p->cfg->sec_dev_type, dev_types, num_dev_types * 8);
  2205. return 0;
  2206. }
  2207. void p2p_remove_wps_vendor_extensions(struct p2p_data *p2p)
  2208. {
  2209. int i;
  2210. for (i = 0; i < P2P_MAX_WPS_VENDOR_EXT; i++) {
  2211. wpabuf_free(p2p->wps_vendor_ext[i]);
  2212. p2p->wps_vendor_ext[i] = NULL;
  2213. }
  2214. }
  2215. int p2p_add_wps_vendor_extension(struct p2p_data *p2p,
  2216. const struct wpabuf *vendor_ext)
  2217. {
  2218. int i;
  2219. if (vendor_ext == NULL)
  2220. return -1;
  2221. for (i = 0; i < P2P_MAX_WPS_VENDOR_EXT; i++) {
  2222. if (p2p->wps_vendor_ext[i] == NULL)
  2223. break;
  2224. }
  2225. if (i >= P2P_MAX_WPS_VENDOR_EXT)
  2226. return -1;
  2227. p2p->wps_vendor_ext[i] = wpabuf_dup(vendor_ext);
  2228. if (p2p->wps_vendor_ext[i] == NULL)
  2229. return -1;
  2230. return 0;
  2231. }
  2232. int p2p_set_country(struct p2p_data *p2p, const char *country)
  2233. {
  2234. os_memcpy(p2p->cfg->country, country, 3);
  2235. return 0;
  2236. }
  2237. void p2p_continue_find(struct p2p_data *p2p)
  2238. {
  2239. struct p2p_device *dev;
  2240. p2p_set_state(p2p, P2P_SEARCH);
  2241. dl_list_for_each(dev, &p2p->devices, struct p2p_device, list) {
  2242. if (dev->sd_pending_bcast_queries == 0) {
  2243. /* Initialize with total number of registered broadcast
  2244. * SD queries. */
  2245. dev->sd_pending_bcast_queries = p2p->num_p2p_sd_queries;
  2246. }
  2247. if (p2p_start_sd(p2p, dev) == 0)
  2248. return;
  2249. if (dev->req_config_methods &&
  2250. !(dev->flags & P2P_DEV_PD_FOR_JOIN)) {
  2251. p2p_dbg(p2p, "Send pending Provision Discovery Request to "
  2252. MACSTR " (config methods 0x%x)",
  2253. MAC2STR(dev->info.p2p_device_addr),
  2254. dev->req_config_methods);
  2255. if (p2p_send_prov_disc_req(p2p, dev, 0, 0) == 0)
  2256. return;
  2257. }
  2258. }
  2259. p2p_listen_in_find(p2p, 1);
  2260. }
  2261. static void p2p_sd_cb(struct p2p_data *p2p, int success)
  2262. {
  2263. p2p_dbg(p2p, "Service Discovery Query TX callback: success=%d",
  2264. success);
  2265. p2p->pending_action_state = P2P_NO_PENDING_ACTION;
  2266. if (!success) {
  2267. p2p->sd_peer = NULL;
  2268. p2p_continue_find(p2p);
  2269. return;
  2270. }
  2271. if (p2p->sd_peer == NULL) {
  2272. p2p_dbg(p2p, "No SD peer entry known");
  2273. p2p_continue_find(p2p);
  2274. return;
  2275. }
  2276. /* Wait for response from the peer */
  2277. p2p_set_state(p2p, P2P_SD_DURING_FIND);
  2278. p2p_set_timeout(p2p, 0, 200000);
  2279. }
  2280. /**
  2281. * p2p_retry_pd - Retry any pending provision disc requests in IDLE state
  2282. * @p2p: P2P module context from p2p_init()
  2283. */
  2284. static void p2p_retry_pd(struct p2p_data *p2p)
  2285. {
  2286. struct p2p_device *dev;
  2287. if (p2p->state != P2P_IDLE)
  2288. return;
  2289. /*
  2290. * Retry the prov disc req attempt only for the peer that the user had
  2291. * requested.
  2292. */
  2293. dl_list_for_each(dev, &p2p->devices, struct p2p_device, list) {
  2294. if (os_memcmp(p2p->pending_pd_devaddr,
  2295. dev->info.p2p_device_addr, ETH_ALEN) != 0)
  2296. continue;
  2297. if (!dev->req_config_methods)
  2298. continue;
  2299. p2p_dbg(p2p, "Send pending Provision Discovery Request to "
  2300. MACSTR " (config methods 0x%x)",
  2301. MAC2STR(dev->info.p2p_device_addr),
  2302. dev->req_config_methods);
  2303. p2p_send_prov_disc_req(p2p, dev,
  2304. dev->flags & P2P_DEV_PD_FOR_JOIN,
  2305. p2p->pd_force_freq);
  2306. return;
  2307. }
  2308. }
  2309. static void p2p_prov_disc_cb(struct p2p_data *p2p, int success)
  2310. {
  2311. p2p_dbg(p2p, "Provision Discovery Request TX callback: success=%d",
  2312. success);
  2313. /*
  2314. * Postpone resetting the pending action state till after we actually
  2315. * time out. This allows us to take some action like notifying any
  2316. * interested parties about no response to the request.
  2317. *
  2318. * When the timer (below) goes off we check in IDLE, SEARCH, or
  2319. * LISTEN_ONLY state, which are the only allowed states to issue a PD
  2320. * requests in, if this was still pending and then raise notification.
  2321. */
  2322. if (!success) {
  2323. p2p->pending_action_state = P2P_NO_PENDING_ACTION;
  2324. if (p2p->user_initiated_pd &&
  2325. (p2p->state == P2P_SEARCH || p2p->state == P2P_LISTEN_ONLY))
  2326. {
  2327. /* Retry request from timeout to avoid busy loops */
  2328. p2p->pending_action_state = P2P_PENDING_PD;
  2329. p2p_set_timeout(p2p, 0, 50000);
  2330. } else if (p2p->state != P2P_IDLE)
  2331. p2p_continue_find(p2p);
  2332. else if (p2p->user_initiated_pd) {
  2333. p2p->pending_action_state = P2P_PENDING_PD;
  2334. p2p_set_timeout(p2p, 0, 300000);
  2335. }
  2336. return;
  2337. }
  2338. /*
  2339. * This postponing, of resetting pending_action_state, needs to be
  2340. * done only for user initiated PD requests and not internal ones.
  2341. */
  2342. if (p2p->user_initiated_pd)
  2343. p2p->pending_action_state = P2P_PENDING_PD;
  2344. else
  2345. p2p->pending_action_state = P2P_NO_PENDING_ACTION;
  2346. /* Wait for response from the peer */
  2347. if (p2p->state == P2P_SEARCH)
  2348. p2p_set_state(p2p, P2P_PD_DURING_FIND);
  2349. p2p_set_timeout(p2p, 0, 200000);
  2350. }
  2351. int p2p_scan_res_handler(struct p2p_data *p2p, const u8 *bssid, int freq,
  2352. struct os_reltime *rx_time, int level, const u8 *ies,
  2353. size_t ies_len)
  2354. {
  2355. if (os_reltime_before(rx_time, &p2p->find_start)) {
  2356. /*
  2357. * The driver may have cached (e.g., in cfg80211 BSS table) the
  2358. * scan results for relatively long time. To avoid reporting
  2359. * stale information, update P2P peers only based on results
  2360. * that have based on frames received after the last p2p_find
  2361. * operation was started.
  2362. */
  2363. p2p_dbg(p2p, "Ignore old scan result for " MACSTR
  2364. " (rx_time=%u.%06u)",
  2365. MAC2STR(bssid), (unsigned int) rx_time->sec,
  2366. (unsigned int) rx_time->usec);
  2367. return 0;
  2368. }
  2369. p2p_add_device(p2p, bssid, freq, rx_time, level, ies, ies_len, 1);
  2370. return 0;
  2371. }
  2372. void p2p_scan_res_handled(struct p2p_data *p2p)
  2373. {
  2374. if (!p2p->p2p_scan_running) {
  2375. p2p_dbg(p2p, "p2p_scan was not running, but scan results received");
  2376. }
  2377. p2p->p2p_scan_running = 0;
  2378. eloop_cancel_timeout(p2p_scan_timeout, p2p, NULL);
  2379. if (p2p_run_after_scan(p2p))
  2380. return;
  2381. if (p2p->state == P2P_SEARCH)
  2382. p2p_continue_find(p2p);
  2383. }
  2384. void p2p_scan_ie(struct p2p_data *p2p, struct wpabuf *ies, const u8 *dev_id)
  2385. {
  2386. u8 *len;
  2387. #ifdef CONFIG_WIFI_DISPLAY
  2388. if (p2p->wfd_ie_probe_req)
  2389. wpabuf_put_buf(ies, p2p->wfd_ie_probe_req);
  2390. #endif /* CONFIG_WIFI_DISPLAY */
  2391. len = p2p_buf_add_ie_hdr(ies);
  2392. p2p_buf_add_capability(ies, p2p->dev_capab &
  2393. ~P2P_DEV_CAPAB_CLIENT_DISCOVERABILITY, 0);
  2394. if (dev_id)
  2395. p2p_buf_add_device_id(ies, dev_id);
  2396. if (p2p->cfg->reg_class && p2p->cfg->channel)
  2397. p2p_buf_add_listen_channel(ies, p2p->cfg->country,
  2398. p2p->cfg->reg_class,
  2399. p2p->cfg->channel);
  2400. if (p2p->ext_listen_interval)
  2401. p2p_buf_add_ext_listen_timing(ies, p2p->ext_listen_period,
  2402. p2p->ext_listen_interval);
  2403. /* TODO: p2p_buf_add_operating_channel() if GO */
  2404. p2p_buf_update_ie_hdr(ies, len);
  2405. }
  2406. size_t p2p_scan_ie_buf_len(struct p2p_data *p2p)
  2407. {
  2408. size_t len = 100;
  2409. #ifdef CONFIG_WIFI_DISPLAY
  2410. if (p2p && p2p->wfd_ie_probe_req)
  2411. len += wpabuf_len(p2p->wfd_ie_probe_req);
  2412. #endif /* CONFIG_WIFI_DISPLAY */
  2413. return len;
  2414. }
  2415. int p2p_ie_text(struct wpabuf *p2p_ie, char *buf, char *end)
  2416. {
  2417. return p2p_attr_text(p2p_ie, buf, end);
  2418. }
  2419. static void p2p_go_neg_req_cb(struct p2p_data *p2p, int success)
  2420. {
  2421. struct p2p_device *dev = p2p->go_neg_peer;
  2422. int timeout;
  2423. p2p_dbg(p2p, "GO Negotiation Request TX callback: success=%d", success);
  2424. if (dev == NULL) {
  2425. p2p_dbg(p2p, "No pending GO Negotiation");
  2426. return;
  2427. }
  2428. if (success) {
  2429. if (dev->flags & P2P_DEV_USER_REJECTED) {
  2430. p2p_set_state(p2p, P2P_IDLE);
  2431. return;
  2432. }
  2433. } else if (dev->go_neg_req_sent) {
  2434. /* Cancel the increment from p2p_connect_send() on failure */
  2435. dev->go_neg_req_sent--;
  2436. }
  2437. if (!success &&
  2438. (dev->info.dev_capab & P2P_DEV_CAPAB_CLIENT_DISCOVERABILITY) &&
  2439. !is_zero_ether_addr(dev->member_in_go_dev)) {
  2440. p2p_dbg(p2p, "Peer " MACSTR " did not acknowledge request - try to use device discoverability through its GO",
  2441. MAC2STR(dev->info.p2p_device_addr));
  2442. p2p->cfg->send_action_done(p2p->cfg->cb_ctx);
  2443. p2p_send_dev_disc_req(p2p, dev);
  2444. return;
  2445. }
  2446. /*
  2447. * Use P2P find, if needed, to find the other device from its listen
  2448. * channel.
  2449. */
  2450. p2p_set_state(p2p, P2P_CONNECT);
  2451. timeout = success ? 500000 : 100000;
  2452. if (!success && p2p->go_neg_peer &&
  2453. (p2p->go_neg_peer->flags & P2P_DEV_PEER_WAITING_RESPONSE)) {
  2454. unsigned int r;
  2455. /*
  2456. * Peer is expected to wait our response and we will skip the
  2457. * listen phase. Add some randomness to the wait time here to
  2458. * make it less likely to hit cases where we could end up in
  2459. * sync with peer not listening.
  2460. */
  2461. os_get_random((u8 *) &r, sizeof(r));
  2462. timeout += r % 100000;
  2463. }
  2464. p2p_set_timeout(p2p, 0, timeout);
  2465. }
  2466. static void p2p_go_neg_resp_cb(struct p2p_data *p2p, int success)
  2467. {
  2468. p2p_dbg(p2p, "GO Negotiation Response TX callback: success=%d",
  2469. success);
  2470. if (!p2p->go_neg_peer && p2p->state == P2P_PROVISIONING) {
  2471. p2p_dbg(p2p, "Ignore TX callback event - GO Negotiation is not running anymore");
  2472. return;
  2473. }
  2474. p2p_set_state(p2p, P2P_CONNECT);
  2475. p2p_set_timeout(p2p, 0, 500000);
  2476. }
  2477. static void p2p_go_neg_resp_failure_cb(struct p2p_data *p2p, int success,
  2478. const u8 *addr)
  2479. {
  2480. p2p_dbg(p2p, "GO Negotiation Response (failure) TX callback: success=%d", success);
  2481. if (p2p->go_neg_peer && p2p->go_neg_peer->status != P2P_SC_SUCCESS) {
  2482. p2p_go_neg_failed(p2p, p2p->go_neg_peer,
  2483. p2p->go_neg_peer->status);
  2484. } else if (success) {
  2485. struct p2p_device *dev;
  2486. dev = p2p_get_device(p2p, addr);
  2487. if (dev &&
  2488. dev->status == P2P_SC_FAIL_INFO_CURRENTLY_UNAVAILABLE)
  2489. dev->flags |= P2P_DEV_PEER_WAITING_RESPONSE;
  2490. }
  2491. }
  2492. static void p2p_go_neg_conf_cb(struct p2p_data *p2p,
  2493. enum p2p_send_action_result result)
  2494. {
  2495. struct p2p_device *dev;
  2496. p2p_dbg(p2p, "GO Negotiation Confirm TX callback: result=%d", result);
  2497. if (result == P2P_SEND_ACTION_FAILED) {
  2498. p2p->cfg->send_action_done(p2p->cfg->cb_ctx);
  2499. p2p_go_neg_failed(p2p, p2p->go_neg_peer, -1);
  2500. return;
  2501. }
  2502. dev = p2p->go_neg_peer;
  2503. if (result == P2P_SEND_ACTION_NO_ACK) {
  2504. /*
  2505. * Retry GO Negotiation Confirmation
  2506. * P2P_GO_NEG_CNF_MAX_RETRY_COUNT times if we did not receive
  2507. * ACK for confirmation.
  2508. */
  2509. if (dev && dev->go_neg_conf &&
  2510. dev->go_neg_conf_sent <= P2P_GO_NEG_CNF_MAX_RETRY_COUNT) {
  2511. p2p_dbg(p2p, "GO Negotiation Confirm retry %d",
  2512. dev->go_neg_conf_sent);
  2513. p2p->pending_action_state = P2P_PENDING_GO_NEG_CONFIRM;
  2514. if (p2p_send_action(p2p, dev->go_neg_conf_freq,
  2515. dev->info.p2p_device_addr,
  2516. p2p->cfg->dev_addr,
  2517. dev->info.p2p_device_addr,
  2518. wpabuf_head(dev->go_neg_conf),
  2519. wpabuf_len(dev->go_neg_conf), 0) >=
  2520. 0) {
  2521. dev->go_neg_conf_sent++;
  2522. return;
  2523. }
  2524. p2p_dbg(p2p, "Failed to re-send Action frame");
  2525. /*
  2526. * Continue with the assumption that the first attempt
  2527. * went through and just the ACK frame was lost.
  2528. */
  2529. }
  2530. /*
  2531. * It looks like the TX status for GO Negotiation Confirm is
  2532. * often showing failure even when the peer has actually
  2533. * received the frame. Since the peer may change channels
  2534. * immediately after having received the frame, we may not see
  2535. * an Ack for retries, so just dropping a single frame may
  2536. * trigger this. To allow the group formation to succeed if the
  2537. * peer did indeed receive the frame, continue regardless of
  2538. * the TX status.
  2539. */
  2540. p2p_dbg(p2p, "Assume GO Negotiation Confirm TX was actually received by the peer even though Ack was not reported");
  2541. }
  2542. p2p->cfg->send_action_done(p2p->cfg->cb_ctx);
  2543. if (dev == NULL)
  2544. return;
  2545. p2p_go_complete(p2p, dev);
  2546. }
  2547. void p2p_send_action_cb(struct p2p_data *p2p, unsigned int freq, const u8 *dst,
  2548. const u8 *src, const u8 *bssid,
  2549. enum p2p_send_action_result result)
  2550. {
  2551. enum p2p_pending_action_state state;
  2552. int success;
  2553. p2p_dbg(p2p, "Action frame TX callback (state=%d freq=%u dst=" MACSTR
  2554. " src=" MACSTR " bssid=" MACSTR " result=%d",
  2555. p2p->pending_action_state, freq, MAC2STR(dst), MAC2STR(src),
  2556. MAC2STR(bssid), result);
  2557. success = result == P2P_SEND_ACTION_SUCCESS;
  2558. state = p2p->pending_action_state;
  2559. p2p->pending_action_state = P2P_NO_PENDING_ACTION;
  2560. switch (state) {
  2561. case P2P_NO_PENDING_ACTION:
  2562. if (p2p->send_action_in_progress) {
  2563. p2p->send_action_in_progress = 0;
  2564. p2p->cfg->send_action_done(p2p->cfg->cb_ctx);
  2565. }
  2566. if (p2p->after_scan_tx_in_progress) {
  2567. p2p->after_scan_tx_in_progress = 0;
  2568. if (p2p->start_after_scan != P2P_AFTER_SCAN_NOTHING &&
  2569. p2p_run_after_scan(p2p))
  2570. break;
  2571. if (p2p->state == P2P_SEARCH) {
  2572. p2p_dbg(p2p, "Continue find after after_scan_tx completion");
  2573. p2p_continue_find(p2p);
  2574. }
  2575. }
  2576. break;
  2577. case P2P_PENDING_GO_NEG_REQUEST:
  2578. p2p_go_neg_req_cb(p2p, success);
  2579. break;
  2580. case P2P_PENDING_GO_NEG_RESPONSE:
  2581. p2p_go_neg_resp_cb(p2p, success);
  2582. break;
  2583. case P2P_PENDING_GO_NEG_RESPONSE_FAILURE:
  2584. p2p_go_neg_resp_failure_cb(p2p, success, dst);
  2585. break;
  2586. case P2P_PENDING_GO_NEG_CONFIRM:
  2587. p2p_go_neg_conf_cb(p2p, result);
  2588. break;
  2589. case P2P_PENDING_SD:
  2590. p2p_sd_cb(p2p, success);
  2591. break;
  2592. case P2P_PENDING_PD:
  2593. p2p_prov_disc_cb(p2p, success);
  2594. break;
  2595. case P2P_PENDING_INVITATION_REQUEST:
  2596. p2p_invitation_req_cb(p2p, success);
  2597. break;
  2598. case P2P_PENDING_INVITATION_RESPONSE:
  2599. p2p_invitation_resp_cb(p2p, success);
  2600. break;
  2601. case P2P_PENDING_DEV_DISC_REQUEST:
  2602. p2p_dev_disc_req_cb(p2p, success);
  2603. break;
  2604. case P2P_PENDING_DEV_DISC_RESPONSE:
  2605. p2p_dev_disc_resp_cb(p2p, success);
  2606. break;
  2607. case P2P_PENDING_GO_DISC_REQ:
  2608. p2p_go_disc_req_cb(p2p, success);
  2609. break;
  2610. }
  2611. p2p->after_scan_tx_in_progress = 0;
  2612. }
  2613. void p2p_listen_cb(struct p2p_data *p2p, unsigned int freq,
  2614. unsigned int duration)
  2615. {
  2616. if (freq == p2p->pending_client_disc_freq) {
  2617. p2p_dbg(p2p, "Client discoverability remain-awake completed");
  2618. p2p->pending_client_disc_freq = 0;
  2619. return;
  2620. }
  2621. if (freq != p2p->pending_listen_freq) {
  2622. p2p_dbg(p2p, "Unexpected listen callback for freq=%u duration=%u (pending_listen_freq=%u)",
  2623. freq, duration, p2p->pending_listen_freq);
  2624. return;
  2625. }
  2626. p2p_dbg(p2p, "Starting Listen timeout(%u,%u) on freq=%u based on callback",
  2627. p2p->pending_listen_sec, p2p->pending_listen_usec,
  2628. p2p->pending_listen_freq);
  2629. p2p->in_listen = 1;
  2630. p2p->drv_in_listen = freq;
  2631. if (p2p->pending_listen_sec || p2p->pending_listen_usec) {
  2632. /*
  2633. * Add 20 msec extra wait to avoid race condition with driver
  2634. * remain-on-channel end event, i.e., give driver more time to
  2635. * complete the operation before our timeout expires.
  2636. */
  2637. p2p_set_timeout(p2p, p2p->pending_listen_sec,
  2638. p2p->pending_listen_usec + 20000);
  2639. }
  2640. p2p->pending_listen_freq = 0;
  2641. }
  2642. int p2p_listen_end(struct p2p_data *p2p, unsigned int freq)
  2643. {
  2644. p2p_dbg(p2p, "Driver ended Listen state (freq=%u)", freq);
  2645. p2p->drv_in_listen = 0;
  2646. if (p2p->in_listen)
  2647. return 0; /* Internal timeout will trigger the next step */
  2648. if (p2p->state == P2P_CONNECT_LISTEN && p2p->go_neg_peer) {
  2649. if (p2p->go_neg_peer->connect_reqs >= 120) {
  2650. p2p_dbg(p2p, "Timeout on sending GO Negotiation Request without getting response");
  2651. p2p_go_neg_failed(p2p, p2p->go_neg_peer, -1);
  2652. return 0;
  2653. }
  2654. p2p_set_state(p2p, P2P_CONNECT);
  2655. p2p_connect_send(p2p, p2p->go_neg_peer);
  2656. return 1;
  2657. } else if (p2p->state == P2P_SEARCH) {
  2658. if (p2p->p2p_scan_running) {
  2659. /*
  2660. * Search is already in progress. This can happen if
  2661. * an Action frame RX is reported immediately after
  2662. * the end of a remain-on-channel operation and the
  2663. * response frame to that is sent using an offchannel
  2664. * operation while in p2p_find. Avoid an attempt to
  2665. * restart a scan here.
  2666. */
  2667. p2p_dbg(p2p, "p2p_scan already in progress - do not try to start a new one");
  2668. return 1;
  2669. }
  2670. if (p2p->pending_listen_freq) {
  2671. /*
  2672. * Better wait a bit if the driver is unable to start
  2673. * offchannel operation for some reason. p2p_search()
  2674. * will be started from internal timeout.
  2675. */
  2676. p2p_dbg(p2p, "Listen operation did not seem to start - delay search phase to avoid busy loop");
  2677. p2p_set_timeout(p2p, 0, 100000);
  2678. return 1;
  2679. }
  2680. if (p2p->search_delay) {
  2681. p2p_dbg(p2p, "Delay search operation by %u ms",
  2682. p2p->search_delay);
  2683. p2p_set_timeout(p2p, p2p->search_delay / 1000,
  2684. (p2p->search_delay % 1000) * 1000);
  2685. return 1;
  2686. }
  2687. p2p_search(p2p);
  2688. return 1;
  2689. }
  2690. return 0;
  2691. }
  2692. static void p2p_timeout_connect(struct p2p_data *p2p)
  2693. {
  2694. p2p->cfg->send_action_done(p2p->cfg->cb_ctx);
  2695. if (p2p->go_neg_peer &&
  2696. (p2p->go_neg_peer->flags & P2P_DEV_WAIT_GO_NEG_CONFIRM)) {
  2697. p2p_dbg(p2p, "Wait for GO Negotiation Confirm timed out - assume GO Negotiation failed");
  2698. p2p_go_neg_failed(p2p, p2p->go_neg_peer, -1);
  2699. return;
  2700. }
  2701. if (p2p->go_neg_peer &&
  2702. (p2p->go_neg_peer->flags & P2P_DEV_PEER_WAITING_RESPONSE) &&
  2703. p2p->go_neg_peer->connect_reqs < 120) {
  2704. p2p_dbg(p2p, "Peer expected to wait our response - skip listen");
  2705. p2p_connect_send(p2p, p2p->go_neg_peer);
  2706. return;
  2707. }
  2708. if (p2p->go_neg_peer && p2p->go_neg_peer->oob_go_neg_freq > 0) {
  2709. p2p_dbg(p2p, "Skip connect-listen since GO Neg channel known (OOB)");
  2710. p2p_set_state(p2p, P2P_CONNECT_LISTEN);
  2711. p2p_set_timeout(p2p, 0, 30000);
  2712. return;
  2713. }
  2714. p2p_set_state(p2p, P2P_CONNECT_LISTEN);
  2715. p2p_listen_in_find(p2p, 0);
  2716. }
  2717. static void p2p_timeout_connect_listen(struct p2p_data *p2p)
  2718. {
  2719. if (p2p->go_neg_peer) {
  2720. if (p2p->drv_in_listen) {
  2721. p2p_dbg(p2p, "Driver is still in Listen state; wait for it to complete");
  2722. return;
  2723. }
  2724. if (p2p->go_neg_peer->connect_reqs >= 120) {
  2725. p2p_dbg(p2p, "Timeout on sending GO Negotiation Request without getting response");
  2726. p2p_go_neg_failed(p2p, p2p->go_neg_peer, -1);
  2727. return;
  2728. }
  2729. p2p_set_state(p2p, P2P_CONNECT);
  2730. p2p_connect_send(p2p, p2p->go_neg_peer);
  2731. } else
  2732. p2p_set_state(p2p, P2P_IDLE);
  2733. }
  2734. static void p2p_timeout_wait_peer_connect(struct p2p_data *p2p)
  2735. {
  2736. p2p_set_state(p2p, P2P_WAIT_PEER_IDLE);
  2737. if (p2p->cfg->is_concurrent_session_active &&
  2738. p2p->cfg->is_concurrent_session_active(p2p->cfg->cb_ctx))
  2739. p2p_set_timeout(p2p, 0, 500000);
  2740. else
  2741. p2p_set_timeout(p2p, 0, 200000);
  2742. }
  2743. static void p2p_timeout_wait_peer_idle(struct p2p_data *p2p)
  2744. {
  2745. struct p2p_device *dev = p2p->go_neg_peer;
  2746. if (dev == NULL) {
  2747. p2p_dbg(p2p, "Unknown GO Neg peer - stop GO Neg wait");
  2748. return;
  2749. }
  2750. dev->wait_count++;
  2751. if (dev->wait_count >= 120) {
  2752. p2p_dbg(p2p, "Timeout on waiting peer to become ready for GO Negotiation");
  2753. p2p_go_neg_failed(p2p, dev, -1);
  2754. return;
  2755. }
  2756. p2p_dbg(p2p, "Go to Listen state while waiting for the peer to become ready for GO Negotiation");
  2757. p2p_set_state(p2p, P2P_WAIT_PEER_CONNECT);
  2758. p2p_listen_in_find(p2p, 0);
  2759. }
  2760. static void p2p_timeout_sd_during_find(struct p2p_data *p2p)
  2761. {
  2762. p2p_dbg(p2p, "Service Discovery Query timeout");
  2763. if (p2p->sd_peer) {
  2764. p2p->cfg->send_action_done(p2p->cfg->cb_ctx);
  2765. p2p->sd_peer = NULL;
  2766. }
  2767. p2p_continue_find(p2p);
  2768. }
  2769. static void p2p_timeout_prov_disc_during_find(struct p2p_data *p2p)
  2770. {
  2771. p2p_dbg(p2p, "Provision Discovery Request timeout");
  2772. p2p->cfg->send_action_done(p2p->cfg->cb_ctx);
  2773. p2p_continue_find(p2p);
  2774. }
  2775. static void p2p_timeout_prov_disc_req(struct p2p_data *p2p)
  2776. {
  2777. p2p->pending_action_state = P2P_NO_PENDING_ACTION;
  2778. /*
  2779. * For user initiated PD requests that we have not gotten any responses
  2780. * for while in IDLE state, we retry them a couple of times before
  2781. * giving up.
  2782. */
  2783. if (!p2p->user_initiated_pd)
  2784. return;
  2785. p2p_dbg(p2p, "User initiated Provision Discovery Request timeout");
  2786. if (p2p->pd_retries) {
  2787. p2p->pd_retries--;
  2788. p2p_retry_pd(p2p);
  2789. } else {
  2790. struct p2p_device *dev;
  2791. int for_join = 0;
  2792. dl_list_for_each(dev, &p2p->devices, struct p2p_device, list) {
  2793. if (os_memcmp(p2p->pending_pd_devaddr,
  2794. dev->info.p2p_device_addr, ETH_ALEN) != 0)
  2795. continue;
  2796. if (dev->req_config_methods &&
  2797. (dev->flags & P2P_DEV_PD_FOR_JOIN))
  2798. for_join = 1;
  2799. }
  2800. if (p2p->cfg->prov_disc_fail)
  2801. p2p->cfg->prov_disc_fail(p2p->cfg->cb_ctx,
  2802. p2p->pending_pd_devaddr,
  2803. for_join ?
  2804. P2P_PROV_DISC_TIMEOUT_JOIN :
  2805. P2P_PROV_DISC_TIMEOUT);
  2806. p2p_reset_pending_pd(p2p);
  2807. }
  2808. }
  2809. static void p2p_timeout_invite(struct p2p_data *p2p)
  2810. {
  2811. p2p->cfg->send_action_done(p2p->cfg->cb_ctx);
  2812. p2p_set_state(p2p, P2P_INVITE_LISTEN);
  2813. if (p2p->inv_role == P2P_INVITE_ROLE_ACTIVE_GO) {
  2814. /*
  2815. * Better remain on operating channel instead of listen channel
  2816. * when running a group.
  2817. */
  2818. p2p_dbg(p2p, "Inviting in active GO role - wait on operating channel");
  2819. p2p_set_timeout(p2p, 0, 100000);
  2820. return;
  2821. }
  2822. p2p_listen_in_find(p2p, 0);
  2823. }
  2824. static void p2p_timeout_invite_listen(struct p2p_data *p2p)
  2825. {
  2826. if (p2p->invite_peer && p2p->invite_peer->invitation_reqs < 100) {
  2827. p2p_set_state(p2p, P2P_INVITE);
  2828. p2p_invite_send(p2p, p2p->invite_peer,
  2829. p2p->invite_go_dev_addr, p2p->invite_dev_pw_id);
  2830. } else {
  2831. if (p2p->invite_peer) {
  2832. p2p_dbg(p2p, "Invitation Request retry limit reached");
  2833. if (p2p->cfg->invitation_result)
  2834. p2p->cfg->invitation_result(
  2835. p2p->cfg->cb_ctx, -1, NULL, NULL,
  2836. p2p->invite_peer->info.p2p_device_addr,
  2837. 0, 0);
  2838. }
  2839. p2p_set_state(p2p, P2P_IDLE);
  2840. }
  2841. }
  2842. static void p2p_state_timeout(void *eloop_ctx, void *timeout_ctx)
  2843. {
  2844. struct p2p_data *p2p = eloop_ctx;
  2845. p2p_dbg(p2p, "Timeout (state=%s)", p2p_state_txt(p2p->state));
  2846. p2p->in_listen = 0;
  2847. switch (p2p->state) {
  2848. case P2P_IDLE:
  2849. /* Check if we timed out waiting for PD req */
  2850. if (p2p->pending_action_state == P2P_PENDING_PD)
  2851. p2p_timeout_prov_disc_req(p2p);
  2852. break;
  2853. case P2P_SEARCH:
  2854. /* Check if we timed out waiting for PD req */
  2855. if (p2p->pending_action_state == P2P_PENDING_PD)
  2856. p2p_timeout_prov_disc_req(p2p);
  2857. if (p2p->search_delay && !p2p->in_search_delay) {
  2858. p2p_dbg(p2p, "Delay search operation by %u ms",
  2859. p2p->search_delay);
  2860. p2p->in_search_delay = 1;
  2861. p2p_set_timeout(p2p, p2p->search_delay / 1000,
  2862. (p2p->search_delay % 1000) * 1000);
  2863. break;
  2864. }
  2865. p2p->in_search_delay = 0;
  2866. p2p_search(p2p);
  2867. break;
  2868. case P2P_CONNECT:
  2869. p2p_timeout_connect(p2p);
  2870. break;
  2871. case P2P_CONNECT_LISTEN:
  2872. p2p_timeout_connect_listen(p2p);
  2873. break;
  2874. case P2P_GO_NEG:
  2875. break;
  2876. case P2P_LISTEN_ONLY:
  2877. /* Check if we timed out waiting for PD req */
  2878. if (p2p->pending_action_state == P2P_PENDING_PD)
  2879. p2p_timeout_prov_disc_req(p2p);
  2880. if (p2p->ext_listen_only) {
  2881. p2p_dbg(p2p, "Extended Listen Timing - Listen State completed");
  2882. p2p->ext_listen_only = 0;
  2883. p2p_set_state(p2p, P2P_IDLE);
  2884. }
  2885. break;
  2886. case P2P_WAIT_PEER_CONNECT:
  2887. p2p_timeout_wait_peer_connect(p2p);
  2888. break;
  2889. case P2P_WAIT_PEER_IDLE:
  2890. p2p_timeout_wait_peer_idle(p2p);
  2891. break;
  2892. case P2P_SD_DURING_FIND:
  2893. p2p_timeout_sd_during_find(p2p);
  2894. break;
  2895. case P2P_PROVISIONING:
  2896. break;
  2897. case P2P_PD_DURING_FIND:
  2898. p2p_timeout_prov_disc_during_find(p2p);
  2899. break;
  2900. case P2P_INVITE:
  2901. p2p_timeout_invite(p2p);
  2902. break;
  2903. case P2P_INVITE_LISTEN:
  2904. p2p_timeout_invite_listen(p2p);
  2905. break;
  2906. }
  2907. }
  2908. int p2p_reject(struct p2p_data *p2p, const u8 *peer_addr)
  2909. {
  2910. struct p2p_device *dev;
  2911. dev = p2p_get_device(p2p, peer_addr);
  2912. p2p_dbg(p2p, "Local request to reject connection attempts by peer "
  2913. MACSTR, MAC2STR(peer_addr));
  2914. if (dev == NULL) {
  2915. p2p_dbg(p2p, "Peer " MACSTR " unknown", MAC2STR(peer_addr));
  2916. return -1;
  2917. }
  2918. dev->status = P2P_SC_FAIL_REJECTED_BY_USER;
  2919. dev->flags |= P2P_DEV_USER_REJECTED;
  2920. return 0;
  2921. }
  2922. const char * p2p_wps_method_text(enum p2p_wps_method method)
  2923. {
  2924. switch (method) {
  2925. case WPS_NOT_READY:
  2926. return "not-ready";
  2927. case WPS_PIN_DISPLAY:
  2928. return "Display";
  2929. case WPS_PIN_KEYPAD:
  2930. return "Keypad";
  2931. case WPS_PBC:
  2932. return "PBC";
  2933. case WPS_NFC:
  2934. return "NFC";
  2935. }
  2936. return "??";
  2937. }
  2938. static const char * p2p_go_state_text(enum p2p_go_state go_state)
  2939. {
  2940. switch (go_state) {
  2941. case UNKNOWN_GO:
  2942. return "unknown";
  2943. case LOCAL_GO:
  2944. return "local";
  2945. case REMOTE_GO:
  2946. return "remote";
  2947. }
  2948. return "??";
  2949. }
  2950. const struct p2p_peer_info * p2p_get_peer_info(struct p2p_data *p2p,
  2951. const u8 *addr, int next)
  2952. {
  2953. struct p2p_device *dev;
  2954. if (addr)
  2955. dev = p2p_get_device(p2p, addr);
  2956. else
  2957. dev = dl_list_first(&p2p->devices, struct p2p_device, list);
  2958. if (dev && next) {
  2959. dev = dl_list_first(&dev->list, struct p2p_device, list);
  2960. if (&dev->list == &p2p->devices)
  2961. dev = NULL;
  2962. }
  2963. if (dev == NULL)
  2964. return NULL;
  2965. return &dev->info;
  2966. }
  2967. int p2p_get_peer_info_txt(const struct p2p_peer_info *info,
  2968. char *buf, size_t buflen)
  2969. {
  2970. struct p2p_device *dev;
  2971. int res;
  2972. char *pos, *end;
  2973. struct os_reltime now;
  2974. if (info == NULL)
  2975. return -1;
  2976. dev = (struct p2p_device *) (((u8 *) info) -
  2977. offsetof(struct p2p_device, info));
  2978. pos = buf;
  2979. end = buf + buflen;
  2980. os_get_reltime(&now);
  2981. res = os_snprintf(pos, end - pos,
  2982. "age=%d\n"
  2983. "listen_freq=%d\n"
  2984. "wps_method=%s\n"
  2985. "interface_addr=" MACSTR "\n"
  2986. "member_in_go_dev=" MACSTR "\n"
  2987. "member_in_go_iface=" MACSTR "\n"
  2988. "go_neg_req_sent=%d\n"
  2989. "go_state=%s\n"
  2990. "dialog_token=%u\n"
  2991. "intended_addr=" MACSTR "\n"
  2992. "country=%c%c\n"
  2993. "oper_freq=%d\n"
  2994. "req_config_methods=0x%x\n"
  2995. "flags=%s%s%s%s%s%s%s%s%s%s%s%s%s\n"
  2996. "status=%d\n"
  2997. "wait_count=%u\n"
  2998. "invitation_reqs=%u\n",
  2999. (int) (now.sec - dev->last_seen.sec),
  3000. dev->listen_freq,
  3001. p2p_wps_method_text(dev->wps_method),
  3002. MAC2STR(dev->interface_addr),
  3003. MAC2STR(dev->member_in_go_dev),
  3004. MAC2STR(dev->member_in_go_iface),
  3005. dev->go_neg_req_sent,
  3006. p2p_go_state_text(dev->go_state),
  3007. dev->dialog_token,
  3008. MAC2STR(dev->intended_addr),
  3009. dev->country[0] ? dev->country[0] : '_',
  3010. dev->country[1] ? dev->country[1] : '_',
  3011. dev->oper_freq,
  3012. dev->req_config_methods,
  3013. dev->flags & P2P_DEV_PROBE_REQ_ONLY ?
  3014. "[PROBE_REQ_ONLY]" : "",
  3015. dev->flags & P2P_DEV_REPORTED ? "[REPORTED]" : "",
  3016. dev->flags & P2P_DEV_NOT_YET_READY ?
  3017. "[NOT_YET_READY]" : "",
  3018. dev->flags & P2P_DEV_PD_PEER_DISPLAY ?
  3019. "[PD_PEER_DISPLAY]" : "",
  3020. dev->flags & P2P_DEV_PD_PEER_KEYPAD ?
  3021. "[PD_PEER_KEYPAD]" : "",
  3022. dev->flags & P2P_DEV_USER_REJECTED ?
  3023. "[USER_REJECTED]" : "",
  3024. dev->flags & P2P_DEV_PEER_WAITING_RESPONSE ?
  3025. "[PEER_WAITING_RESPONSE]" : "",
  3026. dev->flags & P2P_DEV_PREFER_PERSISTENT_GROUP ?
  3027. "[PREFER_PERSISTENT_GROUP]" : "",
  3028. dev->flags & P2P_DEV_WAIT_GO_NEG_RESPONSE ?
  3029. "[WAIT_GO_NEG_RESPONSE]" : "",
  3030. dev->flags & P2P_DEV_WAIT_GO_NEG_CONFIRM ?
  3031. "[WAIT_GO_NEG_CONFIRM]" : "",
  3032. dev->flags & P2P_DEV_GROUP_CLIENT_ONLY ?
  3033. "[GROUP_CLIENT_ONLY]" : "",
  3034. dev->flags & P2P_DEV_FORCE_FREQ ?
  3035. "[FORCE_FREQ]" : "",
  3036. dev->flags & P2P_DEV_PD_FOR_JOIN ?
  3037. "[PD_FOR_JOIN]" : "",
  3038. dev->status,
  3039. dev->wait_count,
  3040. dev->invitation_reqs);
  3041. if (res < 0 || res >= end - pos)
  3042. return pos - buf;
  3043. pos += res;
  3044. if (dev->ext_listen_period) {
  3045. res = os_snprintf(pos, end - pos,
  3046. "ext_listen_period=%u\n"
  3047. "ext_listen_interval=%u\n",
  3048. dev->ext_listen_period,
  3049. dev->ext_listen_interval);
  3050. if (res < 0 || res >= end - pos)
  3051. return pos - buf;
  3052. pos += res;
  3053. }
  3054. if (dev->oper_ssid_len) {
  3055. res = os_snprintf(pos, end - pos,
  3056. "oper_ssid=%s\n",
  3057. wpa_ssid_txt(dev->oper_ssid,
  3058. dev->oper_ssid_len));
  3059. if (res < 0 || res >= end - pos)
  3060. return pos - buf;
  3061. pos += res;
  3062. }
  3063. #ifdef CONFIG_WIFI_DISPLAY
  3064. if (dev->info.wfd_subelems) {
  3065. res = os_snprintf(pos, end - pos, "wfd_subelems=");
  3066. if (res < 0 || res >= end - pos)
  3067. return pos - buf;
  3068. pos += res;
  3069. pos += wpa_snprintf_hex(pos, end - pos,
  3070. wpabuf_head(dev->info.wfd_subelems),
  3071. wpabuf_len(dev->info.wfd_subelems));
  3072. res = os_snprintf(pos, end - pos, "\n");
  3073. if (res < 0 || res >= end - pos)
  3074. return pos - buf;
  3075. pos += res;
  3076. }
  3077. #endif /* CONFIG_WIFI_DISPLAY */
  3078. return pos - buf;
  3079. }
  3080. int p2p_peer_known(struct p2p_data *p2p, const u8 *addr)
  3081. {
  3082. return p2p_get_device(p2p, addr) != NULL;
  3083. }
  3084. void p2p_set_client_discoverability(struct p2p_data *p2p, int enabled)
  3085. {
  3086. if (enabled) {
  3087. p2p_dbg(p2p, "Client discoverability enabled");
  3088. p2p->dev_capab |= P2P_DEV_CAPAB_CLIENT_DISCOVERABILITY;
  3089. } else {
  3090. p2p_dbg(p2p, "Client discoverability disabled");
  3091. p2p->dev_capab &= ~P2P_DEV_CAPAB_CLIENT_DISCOVERABILITY;
  3092. }
  3093. }
  3094. static struct wpabuf * p2p_build_presence_req(u32 duration1, u32 interval1,
  3095. u32 duration2, u32 interval2)
  3096. {
  3097. struct wpabuf *req;
  3098. struct p2p_noa_desc desc1, desc2, *ptr1 = NULL, *ptr2 = NULL;
  3099. u8 *len;
  3100. req = wpabuf_alloc(100);
  3101. if (req == NULL)
  3102. return NULL;
  3103. if (duration1 || interval1) {
  3104. os_memset(&desc1, 0, sizeof(desc1));
  3105. desc1.count_type = 1;
  3106. desc1.duration = duration1;
  3107. desc1.interval = interval1;
  3108. ptr1 = &desc1;
  3109. if (duration2 || interval2) {
  3110. os_memset(&desc2, 0, sizeof(desc2));
  3111. desc2.count_type = 2;
  3112. desc2.duration = duration2;
  3113. desc2.interval = interval2;
  3114. ptr2 = &desc2;
  3115. }
  3116. }
  3117. p2p_buf_add_action_hdr(req, P2P_PRESENCE_REQ, 1);
  3118. len = p2p_buf_add_ie_hdr(req);
  3119. p2p_buf_add_noa(req, 0, 0, 0, ptr1, ptr2);
  3120. p2p_buf_update_ie_hdr(req, len);
  3121. return req;
  3122. }
  3123. int p2p_presence_req(struct p2p_data *p2p, const u8 *go_interface_addr,
  3124. const u8 *own_interface_addr, unsigned int freq,
  3125. u32 duration1, u32 interval1, u32 duration2,
  3126. u32 interval2)
  3127. {
  3128. struct wpabuf *req;
  3129. p2p_dbg(p2p, "Send Presence Request to GO " MACSTR
  3130. " (own interface " MACSTR ") freq=%u dur1=%u int1=%u "
  3131. "dur2=%u int2=%u",
  3132. MAC2STR(go_interface_addr), MAC2STR(own_interface_addr),
  3133. freq, duration1, interval1, duration2, interval2);
  3134. req = p2p_build_presence_req(duration1, interval1, duration2,
  3135. interval2);
  3136. if (req == NULL)
  3137. return -1;
  3138. p2p->pending_action_state = P2P_NO_PENDING_ACTION;
  3139. if (p2p_send_action(p2p, freq, go_interface_addr, own_interface_addr,
  3140. go_interface_addr,
  3141. wpabuf_head(req), wpabuf_len(req), 200) < 0) {
  3142. p2p_dbg(p2p, "Failed to send Action frame");
  3143. }
  3144. wpabuf_free(req);
  3145. return 0;
  3146. }
  3147. static struct wpabuf * p2p_build_presence_resp(u8 status, const u8 *noa,
  3148. size_t noa_len, u8 dialog_token)
  3149. {
  3150. struct wpabuf *resp;
  3151. u8 *len;
  3152. resp = wpabuf_alloc(100 + noa_len);
  3153. if (resp == NULL)
  3154. return NULL;
  3155. p2p_buf_add_action_hdr(resp, P2P_PRESENCE_RESP, dialog_token);
  3156. len = p2p_buf_add_ie_hdr(resp);
  3157. p2p_buf_add_status(resp, status);
  3158. if (noa) {
  3159. wpabuf_put_u8(resp, P2P_ATTR_NOTICE_OF_ABSENCE);
  3160. wpabuf_put_le16(resp, noa_len);
  3161. wpabuf_put_data(resp, noa, noa_len);
  3162. } else
  3163. p2p_buf_add_noa(resp, 0, 0, 0, NULL, NULL);
  3164. p2p_buf_update_ie_hdr(resp, len);
  3165. return resp;
  3166. }
  3167. static void p2p_process_presence_req(struct p2p_data *p2p, const u8 *da,
  3168. const u8 *sa, const u8 *data, size_t len,
  3169. int rx_freq)
  3170. {
  3171. struct p2p_message msg;
  3172. u8 status;
  3173. struct wpabuf *resp;
  3174. size_t g;
  3175. struct p2p_group *group = NULL;
  3176. int parsed = 0;
  3177. u8 noa[50];
  3178. int noa_len;
  3179. p2p_dbg(p2p, "Received P2P Action - P2P Presence Request");
  3180. for (g = 0; g < p2p->num_groups; g++) {
  3181. if (os_memcmp(da, p2p_group_get_interface_addr(p2p->groups[g]),
  3182. ETH_ALEN) == 0) {
  3183. group = p2p->groups[g];
  3184. break;
  3185. }
  3186. }
  3187. if (group == NULL) {
  3188. p2p_dbg(p2p, "Ignore P2P Presence Request for unknown group "
  3189. MACSTR, MAC2STR(da));
  3190. return;
  3191. }
  3192. if (p2p_parse(data, len, &msg) < 0) {
  3193. p2p_dbg(p2p, "Failed to parse P2P Presence Request");
  3194. status = P2P_SC_FAIL_INVALID_PARAMS;
  3195. goto fail;
  3196. }
  3197. parsed = 1;
  3198. if (msg.noa == NULL) {
  3199. p2p_dbg(p2p, "No NoA attribute in P2P Presence Request");
  3200. status = P2P_SC_FAIL_INVALID_PARAMS;
  3201. goto fail;
  3202. }
  3203. status = p2p_group_presence_req(group, sa, msg.noa, msg.noa_len);
  3204. fail:
  3205. if (p2p->cfg->get_noa)
  3206. noa_len = p2p->cfg->get_noa(p2p->cfg->cb_ctx, da, noa,
  3207. sizeof(noa));
  3208. else
  3209. noa_len = -1;
  3210. resp = p2p_build_presence_resp(status, noa_len > 0 ? noa : NULL,
  3211. noa_len > 0 ? noa_len : 0,
  3212. msg.dialog_token);
  3213. if (parsed)
  3214. p2p_parse_free(&msg);
  3215. if (resp == NULL)
  3216. return;
  3217. p2p->pending_action_state = P2P_NO_PENDING_ACTION;
  3218. if (p2p_send_action(p2p, rx_freq, sa, da, da,
  3219. wpabuf_head(resp), wpabuf_len(resp), 200) < 0) {
  3220. p2p_dbg(p2p, "Failed to send Action frame");
  3221. }
  3222. wpabuf_free(resp);
  3223. }
  3224. static void p2p_process_presence_resp(struct p2p_data *p2p, const u8 *da,
  3225. const u8 *sa, const u8 *data, size_t len)
  3226. {
  3227. struct p2p_message msg;
  3228. p2p_dbg(p2p, "Received P2P Action - P2P Presence Response");
  3229. if (p2p_parse(data, len, &msg) < 0) {
  3230. p2p_dbg(p2p, "Failed to parse P2P Presence Response");
  3231. return;
  3232. }
  3233. if (msg.status == NULL || msg.noa == NULL) {
  3234. p2p_dbg(p2p, "No Status or NoA attribute in P2P Presence Response");
  3235. p2p_parse_free(&msg);
  3236. return;
  3237. }
  3238. if (p2p->cfg->presence_resp) {
  3239. p2p->cfg->presence_resp(p2p->cfg->cb_ctx, sa, *msg.status,
  3240. msg.noa, msg.noa_len);
  3241. }
  3242. if (*msg.status) {
  3243. p2p_dbg(p2p, "P2P Presence Request was rejected: status %u",
  3244. *msg.status);
  3245. p2p_parse_free(&msg);
  3246. return;
  3247. }
  3248. p2p_dbg(p2p, "P2P Presence Request was accepted");
  3249. wpa_hexdump(MSG_DEBUG, "P2P: P2P Presence Response - NoA",
  3250. msg.noa, msg.noa_len);
  3251. /* TODO: process NoA */
  3252. p2p_parse_free(&msg);
  3253. }
  3254. static void p2p_ext_listen_timeout(void *eloop_ctx, void *timeout_ctx)
  3255. {
  3256. struct p2p_data *p2p = eloop_ctx;
  3257. if (p2p->ext_listen_interval) {
  3258. /* Schedule next extended listen timeout */
  3259. eloop_register_timeout(p2p->ext_listen_interval_sec,
  3260. p2p->ext_listen_interval_usec,
  3261. p2p_ext_listen_timeout, p2p, NULL);
  3262. }
  3263. if (p2p->state == P2P_LISTEN_ONLY && p2p->ext_listen_only) {
  3264. /*
  3265. * This should not really happen, but it looks like the Listen
  3266. * command may fail is something else (e.g., a scan) was
  3267. * running at an inconvenient time. As a workaround, allow new
  3268. * Extended Listen operation to be started.
  3269. */
  3270. p2p_dbg(p2p, "Previous Extended Listen operation had not been completed - try again");
  3271. p2p->ext_listen_only = 0;
  3272. p2p_set_state(p2p, P2P_IDLE);
  3273. }
  3274. if (p2p->state != P2P_IDLE) {
  3275. p2p_dbg(p2p, "Skip Extended Listen timeout in active state (%s)", p2p_state_txt(p2p->state));
  3276. return;
  3277. }
  3278. p2p_dbg(p2p, "Extended Listen timeout");
  3279. p2p->ext_listen_only = 1;
  3280. if (p2p_listen(p2p, p2p->ext_listen_period) < 0) {
  3281. p2p_dbg(p2p, "Failed to start Listen state for Extended Listen Timing");
  3282. p2p->ext_listen_only = 0;
  3283. }
  3284. }
  3285. int p2p_ext_listen(struct p2p_data *p2p, unsigned int period,
  3286. unsigned int interval)
  3287. {
  3288. if (period > 65535 || interval > 65535 || period > interval ||
  3289. (period == 0 && interval > 0) || (period > 0 && interval == 0)) {
  3290. p2p_dbg(p2p, "Invalid Extended Listen Timing request: period=%u interval=%u",
  3291. period, interval);
  3292. return -1;
  3293. }
  3294. eloop_cancel_timeout(p2p_ext_listen_timeout, p2p, NULL);
  3295. if (interval == 0) {
  3296. p2p_dbg(p2p, "Disabling Extended Listen Timing");
  3297. p2p->ext_listen_period = 0;
  3298. p2p->ext_listen_interval = 0;
  3299. return 0;
  3300. }
  3301. p2p_dbg(p2p, "Enabling Extended Listen Timing: period %u msec, interval %u msec",
  3302. period, interval);
  3303. p2p->ext_listen_period = period;
  3304. p2p->ext_listen_interval = interval;
  3305. p2p->ext_listen_interval_sec = interval / 1000;
  3306. p2p->ext_listen_interval_usec = (interval % 1000) * 1000;
  3307. eloop_register_timeout(p2p->ext_listen_interval_sec,
  3308. p2p->ext_listen_interval_usec,
  3309. p2p_ext_listen_timeout, p2p, NULL);
  3310. return 0;
  3311. }
  3312. void p2p_deauth_notif(struct p2p_data *p2p, const u8 *bssid, u16 reason_code,
  3313. const u8 *ie, size_t ie_len)
  3314. {
  3315. struct p2p_message msg;
  3316. if (bssid == NULL || ie == NULL)
  3317. return;
  3318. os_memset(&msg, 0, sizeof(msg));
  3319. if (p2p_parse_ies(ie, ie_len, &msg))
  3320. return;
  3321. if (msg.minor_reason_code == NULL) {
  3322. p2p_parse_free(&msg);
  3323. return;
  3324. }
  3325. p2p_dbg(p2p, "Deauthentication notification BSSID " MACSTR
  3326. " reason_code=%u minor_reason_code=%u",
  3327. MAC2STR(bssid), reason_code, *msg.minor_reason_code);
  3328. p2p_parse_free(&msg);
  3329. }
  3330. void p2p_disassoc_notif(struct p2p_data *p2p, const u8 *bssid, u16 reason_code,
  3331. const u8 *ie, size_t ie_len)
  3332. {
  3333. struct p2p_message msg;
  3334. if (bssid == NULL || ie == NULL)
  3335. return;
  3336. os_memset(&msg, 0, sizeof(msg));
  3337. if (p2p_parse_ies(ie, ie_len, &msg))
  3338. return;
  3339. if (msg.minor_reason_code == NULL) {
  3340. p2p_parse_free(&msg);
  3341. return;
  3342. }
  3343. p2p_dbg(p2p, "Disassociation notification BSSID " MACSTR
  3344. " reason_code=%u minor_reason_code=%u",
  3345. MAC2STR(bssid), reason_code, *msg.minor_reason_code);
  3346. p2p_parse_free(&msg);
  3347. }
  3348. void p2p_set_managed_oper(struct p2p_data *p2p, int enabled)
  3349. {
  3350. if (enabled) {
  3351. p2p_dbg(p2p, "Managed P2P Device operations enabled");
  3352. p2p->dev_capab |= P2P_DEV_CAPAB_INFRA_MANAGED;
  3353. } else {
  3354. p2p_dbg(p2p, "Managed P2P Device operations disabled");
  3355. p2p->dev_capab &= ~P2P_DEV_CAPAB_INFRA_MANAGED;
  3356. }
  3357. }
  3358. int p2p_set_listen_channel(struct p2p_data *p2p, u8 reg_class, u8 channel)
  3359. {
  3360. if (p2p_channel_to_freq(reg_class, channel) < 0)
  3361. return -1;
  3362. p2p_dbg(p2p, "Set Listen channel: reg_class %u channel %u",
  3363. reg_class, channel);
  3364. p2p->cfg->reg_class = reg_class;
  3365. p2p->cfg->channel = channel;
  3366. return 0;
  3367. }
  3368. int p2p_set_ssid_postfix(struct p2p_data *p2p, const u8 *postfix, size_t len)
  3369. {
  3370. p2p_dbg(p2p, "New SSID postfix: %s", wpa_ssid_txt(postfix, len));
  3371. if (postfix == NULL) {
  3372. p2p->cfg->ssid_postfix_len = 0;
  3373. return 0;
  3374. }
  3375. if (len > sizeof(p2p->cfg->ssid_postfix))
  3376. return -1;
  3377. os_memcpy(p2p->cfg->ssid_postfix, postfix, len);
  3378. p2p->cfg->ssid_postfix_len = len;
  3379. return 0;
  3380. }
  3381. int p2p_set_oper_channel(struct p2p_data *p2p, u8 op_reg_class, u8 op_channel,
  3382. int cfg_op_channel)
  3383. {
  3384. if (p2p_channel_to_freq(op_reg_class, op_channel) < 0)
  3385. return -1;
  3386. p2p_dbg(p2p, "Set Operating channel: reg_class %u channel %u",
  3387. op_reg_class, op_channel);
  3388. p2p->cfg->op_reg_class = op_reg_class;
  3389. p2p->cfg->op_channel = op_channel;
  3390. p2p->cfg->cfg_op_channel = cfg_op_channel;
  3391. return 0;
  3392. }
  3393. int p2p_set_pref_chan(struct p2p_data *p2p, unsigned int num_pref_chan,
  3394. const struct p2p_channel *pref_chan)
  3395. {
  3396. struct p2p_channel *n;
  3397. if (pref_chan) {
  3398. n = os_malloc(num_pref_chan * sizeof(struct p2p_channel));
  3399. if (n == NULL)
  3400. return -1;
  3401. os_memcpy(n, pref_chan,
  3402. num_pref_chan * sizeof(struct p2p_channel));
  3403. } else
  3404. n = NULL;
  3405. os_free(p2p->cfg->pref_chan);
  3406. p2p->cfg->pref_chan = n;
  3407. p2p->cfg->num_pref_chan = num_pref_chan;
  3408. return 0;
  3409. }
  3410. int p2p_set_no_go_freq(struct p2p_data *p2p,
  3411. const struct wpa_freq_range_list *list)
  3412. {
  3413. struct wpa_freq_range *tmp;
  3414. if (list == NULL || list->num == 0) {
  3415. os_free(p2p->no_go_freq.range);
  3416. p2p->no_go_freq.range = NULL;
  3417. p2p->no_go_freq.num = 0;
  3418. return 0;
  3419. }
  3420. tmp = os_calloc(list->num, sizeof(struct wpa_freq_range));
  3421. if (tmp == NULL)
  3422. return -1;
  3423. os_memcpy(tmp, list->range, list->num * sizeof(struct wpa_freq_range));
  3424. os_free(p2p->no_go_freq.range);
  3425. p2p->no_go_freq.range = tmp;
  3426. p2p->no_go_freq.num = list->num;
  3427. p2p_dbg(p2p, "Updated no GO chan list");
  3428. return 0;
  3429. }
  3430. int p2p_get_interface_addr(struct p2p_data *p2p, const u8 *dev_addr,
  3431. u8 *iface_addr)
  3432. {
  3433. struct p2p_device *dev = p2p_get_device(p2p, dev_addr);
  3434. if (dev == NULL || is_zero_ether_addr(dev->interface_addr))
  3435. return -1;
  3436. os_memcpy(iface_addr, dev->interface_addr, ETH_ALEN);
  3437. return 0;
  3438. }
  3439. int p2p_get_dev_addr(struct p2p_data *p2p, const u8 *iface_addr,
  3440. u8 *dev_addr)
  3441. {
  3442. struct p2p_device *dev = p2p_get_device_interface(p2p, iface_addr);
  3443. if (dev == NULL)
  3444. return -1;
  3445. os_memcpy(dev_addr, dev->info.p2p_device_addr, ETH_ALEN);
  3446. return 0;
  3447. }
  3448. void p2p_set_peer_filter(struct p2p_data *p2p, const u8 *addr)
  3449. {
  3450. os_memcpy(p2p->peer_filter, addr, ETH_ALEN);
  3451. if (is_zero_ether_addr(p2p->peer_filter))
  3452. p2p_dbg(p2p, "Disable peer filter");
  3453. else
  3454. p2p_dbg(p2p, "Enable peer filter for " MACSTR,
  3455. MAC2STR(p2p->peer_filter));
  3456. }
  3457. void p2p_set_cross_connect(struct p2p_data *p2p, int enabled)
  3458. {
  3459. p2p_dbg(p2p, "Cross connection %s", enabled ? "enabled" : "disabled");
  3460. if (p2p->cross_connect == enabled)
  3461. return;
  3462. p2p->cross_connect = enabled;
  3463. /* TODO: may need to tear down any action group where we are GO(?) */
  3464. }
  3465. int p2p_get_oper_freq(struct p2p_data *p2p, const u8 *iface_addr)
  3466. {
  3467. struct p2p_device *dev = p2p_get_device_interface(p2p, iface_addr);
  3468. if (dev == NULL)
  3469. return -1;
  3470. if (dev->oper_freq <= 0)
  3471. return -1;
  3472. return dev->oper_freq;
  3473. }
  3474. void p2p_set_intra_bss_dist(struct p2p_data *p2p, int enabled)
  3475. {
  3476. p2p_dbg(p2p, "Intra BSS distribution %s",
  3477. enabled ? "enabled" : "disabled");
  3478. p2p->cfg->p2p_intra_bss = enabled;
  3479. }
  3480. void p2p_update_channel_list(struct p2p_data *p2p,
  3481. const struct p2p_channels *chan,
  3482. const struct p2p_channels *cli_chan)
  3483. {
  3484. p2p_dbg(p2p, "Update channel list");
  3485. os_memcpy(&p2p->cfg->channels, chan, sizeof(struct p2p_channels));
  3486. p2p_channels_dump(p2p, "channels", &p2p->cfg->channels);
  3487. os_memcpy(&p2p->cfg->cli_channels, cli_chan,
  3488. sizeof(struct p2p_channels));
  3489. p2p_channels_dump(p2p, "cli_channels", &p2p->cfg->cli_channels);
  3490. }
  3491. int p2p_send_action(struct p2p_data *p2p, unsigned int freq, const u8 *dst,
  3492. const u8 *src, const u8 *bssid, const u8 *buf,
  3493. size_t len, unsigned int wait_time)
  3494. {
  3495. if (p2p->p2p_scan_running) {
  3496. p2p_dbg(p2p, "Delay Action frame TX until p2p_scan completes");
  3497. if (p2p->after_scan_tx) {
  3498. p2p_dbg(p2p, "Dropped previous pending Action frame TX");
  3499. os_free(p2p->after_scan_tx);
  3500. }
  3501. p2p->after_scan_tx = os_malloc(sizeof(*p2p->after_scan_tx) +
  3502. len);
  3503. if (p2p->after_scan_tx == NULL)
  3504. return -1;
  3505. p2p->after_scan_tx->freq = freq;
  3506. os_memcpy(p2p->after_scan_tx->dst, dst, ETH_ALEN);
  3507. os_memcpy(p2p->after_scan_tx->src, src, ETH_ALEN);
  3508. os_memcpy(p2p->after_scan_tx->bssid, bssid, ETH_ALEN);
  3509. p2p->after_scan_tx->len = len;
  3510. p2p->after_scan_tx->wait_time = wait_time;
  3511. os_memcpy(p2p->after_scan_tx + 1, buf, len);
  3512. return 0;
  3513. }
  3514. return p2p->cfg->send_action(p2p->cfg->cb_ctx, freq, dst, src, bssid,
  3515. buf, len, wait_time);
  3516. }
  3517. void p2p_set_best_channels(struct p2p_data *p2p, int freq_24, int freq_5,
  3518. int freq_overall)
  3519. {
  3520. p2p_dbg(p2p, "Best channel: 2.4 GHz: %d, 5 GHz: %d, overall: %d",
  3521. freq_24, freq_5, freq_overall);
  3522. p2p->best_freq_24 = freq_24;
  3523. p2p->best_freq_5 = freq_5;
  3524. p2p->best_freq_overall = freq_overall;
  3525. }
  3526. void p2p_set_own_freq_preference(struct p2p_data *p2p, int freq)
  3527. {
  3528. p2p_dbg(p2p, "Own frequency preference: %d MHz", freq);
  3529. p2p->own_freq_preference = freq;
  3530. }
  3531. const u8 * p2p_get_go_neg_peer(struct p2p_data *p2p)
  3532. {
  3533. if (p2p == NULL || p2p->go_neg_peer == NULL)
  3534. return NULL;
  3535. return p2p->go_neg_peer->info.p2p_device_addr;
  3536. }
  3537. const struct p2p_peer_info *
  3538. p2p_get_peer_found(struct p2p_data *p2p, const u8 *addr, int next)
  3539. {
  3540. struct p2p_device *dev;
  3541. if (addr) {
  3542. dev = p2p_get_device(p2p, addr);
  3543. if (!dev)
  3544. return NULL;
  3545. if (!next) {
  3546. if (dev->flags & P2P_DEV_PROBE_REQ_ONLY)
  3547. return NULL;
  3548. return &dev->info;
  3549. } else {
  3550. do {
  3551. dev = dl_list_first(&dev->list,
  3552. struct p2p_device,
  3553. list);
  3554. if (!dev || &dev->list == &p2p->devices)
  3555. return NULL;
  3556. } while (dev->flags & P2P_DEV_PROBE_REQ_ONLY);
  3557. }
  3558. } else {
  3559. dev = dl_list_first(&p2p->devices, struct p2p_device, list);
  3560. if (!dev)
  3561. return NULL;
  3562. while (dev->flags & P2P_DEV_PROBE_REQ_ONLY) {
  3563. dev = dl_list_first(&dev->list,
  3564. struct p2p_device,
  3565. list);
  3566. if (!dev || &dev->list == &p2p->devices)
  3567. return NULL;
  3568. }
  3569. }
  3570. return &dev->info;
  3571. }
  3572. int p2p_in_progress(struct p2p_data *p2p)
  3573. {
  3574. if (p2p == NULL)
  3575. return 0;
  3576. if (p2p->state == P2P_SEARCH)
  3577. return 2;
  3578. return p2p->state != P2P_IDLE && p2p->state != P2P_PROVISIONING;
  3579. }
  3580. void p2p_set_config_timeout(struct p2p_data *p2p, u8 go_timeout,
  3581. u8 client_timeout)
  3582. {
  3583. if (p2p) {
  3584. p2p->go_timeout = go_timeout;
  3585. p2p->client_timeout = client_timeout;
  3586. }
  3587. }
  3588. #ifdef CONFIG_WIFI_DISPLAY
  3589. static void p2p_update_wfd_ie_groups(struct p2p_data *p2p)
  3590. {
  3591. size_t g;
  3592. struct p2p_group *group;
  3593. for (g = 0; g < p2p->num_groups; g++) {
  3594. group = p2p->groups[g];
  3595. p2p_group_force_beacon_update_ies(group);
  3596. }
  3597. }
  3598. int p2p_set_wfd_ie_beacon(struct p2p_data *p2p, struct wpabuf *ie)
  3599. {
  3600. wpabuf_free(p2p->wfd_ie_beacon);
  3601. p2p->wfd_ie_beacon = ie;
  3602. p2p_update_wfd_ie_groups(p2p);
  3603. return 0;
  3604. }
  3605. int p2p_set_wfd_ie_probe_req(struct p2p_data *p2p, struct wpabuf *ie)
  3606. {
  3607. wpabuf_free(p2p->wfd_ie_probe_req);
  3608. p2p->wfd_ie_probe_req = ie;
  3609. return 0;
  3610. }
  3611. int p2p_set_wfd_ie_probe_resp(struct p2p_data *p2p, struct wpabuf *ie)
  3612. {
  3613. wpabuf_free(p2p->wfd_ie_probe_resp);
  3614. p2p->wfd_ie_probe_resp = ie;
  3615. p2p_update_wfd_ie_groups(p2p);
  3616. return 0;
  3617. }
  3618. int p2p_set_wfd_ie_assoc_req(struct p2p_data *p2p, struct wpabuf *ie)
  3619. {
  3620. wpabuf_free(p2p->wfd_ie_assoc_req);
  3621. p2p->wfd_ie_assoc_req = ie;
  3622. return 0;
  3623. }
  3624. int p2p_set_wfd_ie_invitation(struct p2p_data *p2p, struct wpabuf *ie)
  3625. {
  3626. wpabuf_free(p2p->wfd_ie_invitation);
  3627. p2p->wfd_ie_invitation = ie;
  3628. return 0;
  3629. }
  3630. int p2p_set_wfd_ie_prov_disc_req(struct p2p_data *p2p, struct wpabuf *ie)
  3631. {
  3632. wpabuf_free(p2p->wfd_ie_prov_disc_req);
  3633. p2p->wfd_ie_prov_disc_req = ie;
  3634. return 0;
  3635. }
  3636. int p2p_set_wfd_ie_prov_disc_resp(struct p2p_data *p2p, struct wpabuf *ie)
  3637. {
  3638. wpabuf_free(p2p->wfd_ie_prov_disc_resp);
  3639. p2p->wfd_ie_prov_disc_resp = ie;
  3640. return 0;
  3641. }
  3642. int p2p_set_wfd_ie_go_neg(struct p2p_data *p2p, struct wpabuf *ie)
  3643. {
  3644. wpabuf_free(p2p->wfd_ie_go_neg);
  3645. p2p->wfd_ie_go_neg = ie;
  3646. return 0;
  3647. }
  3648. int p2p_set_wfd_dev_info(struct p2p_data *p2p, const struct wpabuf *elem)
  3649. {
  3650. wpabuf_free(p2p->wfd_dev_info);
  3651. if (elem) {
  3652. p2p->wfd_dev_info = wpabuf_dup(elem);
  3653. if (p2p->wfd_dev_info == NULL)
  3654. return -1;
  3655. } else
  3656. p2p->wfd_dev_info = NULL;
  3657. return 0;
  3658. }
  3659. int p2p_set_wfd_assoc_bssid(struct p2p_data *p2p, const struct wpabuf *elem)
  3660. {
  3661. wpabuf_free(p2p->wfd_assoc_bssid);
  3662. if (elem) {
  3663. p2p->wfd_assoc_bssid = wpabuf_dup(elem);
  3664. if (p2p->wfd_assoc_bssid == NULL)
  3665. return -1;
  3666. } else
  3667. p2p->wfd_assoc_bssid = NULL;
  3668. return 0;
  3669. }
  3670. int p2p_set_wfd_coupled_sink_info(struct p2p_data *p2p,
  3671. const struct wpabuf *elem)
  3672. {
  3673. wpabuf_free(p2p->wfd_coupled_sink_info);
  3674. if (elem) {
  3675. p2p->wfd_coupled_sink_info = wpabuf_dup(elem);
  3676. if (p2p->wfd_coupled_sink_info == NULL)
  3677. return -1;
  3678. } else
  3679. p2p->wfd_coupled_sink_info = NULL;
  3680. return 0;
  3681. }
  3682. #endif /* CONFIG_WIFI_DISPLAY */
  3683. int p2p_set_disc_int(struct p2p_data *p2p, int min_disc_int, int max_disc_int,
  3684. int max_disc_tu)
  3685. {
  3686. if (min_disc_int > max_disc_int || min_disc_int < 0 || max_disc_int < 0)
  3687. return -1;
  3688. p2p->min_disc_int = min_disc_int;
  3689. p2p->max_disc_int = max_disc_int;
  3690. p2p->max_disc_tu = max_disc_tu;
  3691. p2p_dbg(p2p, "Set discoverable interval: min=%d max=%d max_tu=%d",
  3692. min_disc_int, max_disc_int, max_disc_tu);
  3693. return 0;
  3694. }
  3695. void p2p_dbg(struct p2p_data *p2p, const char *fmt, ...)
  3696. {
  3697. va_list ap;
  3698. char buf[500];
  3699. if (!p2p->cfg->debug_print)
  3700. return;
  3701. va_start(ap, fmt);
  3702. vsnprintf(buf, sizeof(buf), fmt, ap);
  3703. buf[sizeof(buf) - 1] = '\0';
  3704. va_end(ap);
  3705. p2p->cfg->debug_print(p2p->cfg->cb_ctx, MSG_DEBUG, buf);
  3706. }
  3707. void p2p_info(struct p2p_data *p2p, const char *fmt, ...)
  3708. {
  3709. va_list ap;
  3710. char buf[500];
  3711. if (!p2p->cfg->debug_print)
  3712. return;
  3713. va_start(ap, fmt);
  3714. vsnprintf(buf, sizeof(buf), fmt, ap);
  3715. buf[sizeof(buf) - 1] = '\0';
  3716. va_end(ap);
  3717. p2p->cfg->debug_print(p2p->cfg->cb_ctx, MSG_INFO, buf);
  3718. }
  3719. void p2p_err(struct p2p_data *p2p, const char *fmt, ...)
  3720. {
  3721. va_list ap;
  3722. char buf[500];
  3723. if (!p2p->cfg->debug_print)
  3724. return;
  3725. va_start(ap, fmt);
  3726. vsnprintf(buf, sizeof(buf), fmt, ap);
  3727. buf[sizeof(buf) - 1] = '\0';
  3728. va_end(ap);
  3729. p2p->cfg->debug_print(p2p->cfg->cb_ctx, MSG_ERROR, buf);
  3730. }
  3731. #ifdef CONFIG_WPS_NFC
  3732. static struct wpabuf * p2p_build_nfc_handover(struct p2p_data *p2p,
  3733. int client_freq,
  3734. const u8 *go_dev_addr,
  3735. const u8 *ssid, size_t ssid_len)
  3736. {
  3737. struct wpabuf *buf;
  3738. u8 op_class, channel;
  3739. enum p2p_role_indication role = P2P_DEVICE_NOT_IN_GROUP;
  3740. buf = wpabuf_alloc(1000);
  3741. if (buf == NULL)
  3742. return NULL;
  3743. op_class = p2p->cfg->reg_class;
  3744. channel = p2p->cfg->channel;
  3745. p2p_buf_add_capability(buf, p2p->dev_capab &
  3746. ~P2P_DEV_CAPAB_CLIENT_DISCOVERABILITY, 0);
  3747. p2p_buf_add_device_info(buf, p2p, NULL);
  3748. if (p2p->num_groups > 0) {
  3749. int freq = p2p_group_get_freq(p2p->groups[0]);
  3750. role = P2P_GO_IN_A_GROUP;
  3751. if (p2p_freq_to_channel(freq, &op_class, &channel) < 0) {
  3752. p2p_dbg(p2p,
  3753. "Unknown GO operating frequency %d MHz for NFC handover",
  3754. freq);
  3755. wpabuf_free(buf);
  3756. return NULL;
  3757. }
  3758. } else if (client_freq > 0) {
  3759. role = P2P_CLIENT_IN_A_GROUP;
  3760. if (p2p_freq_to_channel(client_freq, &op_class, &channel) < 0) {
  3761. p2p_dbg(p2p,
  3762. "Unknown client operating frequency %d MHz for NFC handover",
  3763. client_freq);
  3764. wpabuf_free(buf);
  3765. return NULL;
  3766. }
  3767. }
  3768. p2p_buf_add_oob_go_neg_channel(buf, p2p->cfg->country, op_class,
  3769. channel, role);
  3770. if (p2p->num_groups > 0) {
  3771. /* Limit number of clients to avoid very long message */
  3772. p2p_buf_add_group_info(p2p->groups[0], buf, 5);
  3773. p2p_group_buf_add_id(p2p->groups[0], buf);
  3774. } else if (client_freq > 0 &&
  3775. go_dev_addr && !is_zero_ether_addr(go_dev_addr) &&
  3776. ssid && ssid_len > 0) {
  3777. /*
  3778. * Add the optional P2P Group ID to indicate in which group this
  3779. * device is a P2P Client.
  3780. */
  3781. p2p_buf_add_group_id(buf, go_dev_addr, ssid, ssid_len);
  3782. }
  3783. return buf;
  3784. }
  3785. struct wpabuf * p2p_build_nfc_handover_req(struct p2p_data *p2p,
  3786. int client_freq,
  3787. const u8 *go_dev_addr,
  3788. const u8 *ssid, size_t ssid_len)
  3789. {
  3790. return p2p_build_nfc_handover(p2p, client_freq, go_dev_addr, ssid,
  3791. ssid_len);
  3792. }
  3793. struct wpabuf * p2p_build_nfc_handover_sel(struct p2p_data *p2p,
  3794. int client_freq,
  3795. const u8 *go_dev_addr,
  3796. const u8 *ssid, size_t ssid_len)
  3797. {
  3798. return p2p_build_nfc_handover(p2p, client_freq, go_dev_addr, ssid,
  3799. ssid_len);
  3800. }
  3801. int p2p_process_nfc_connection_handover(struct p2p_data *p2p,
  3802. struct p2p_nfc_params *params)
  3803. {
  3804. struct p2p_message msg;
  3805. struct p2p_device *dev;
  3806. const u8 *p2p_dev_addr;
  3807. int freq;
  3808. enum p2p_role_indication role;
  3809. params->next_step = NO_ACTION;
  3810. if (p2p_parse_ies_separate(params->wsc_attr, params->wsc_len,
  3811. params->p2p_attr, params->p2p_len, &msg)) {
  3812. p2p_dbg(p2p, "Failed to parse WSC/P2P attributes from NFC");
  3813. p2p_parse_free(&msg);
  3814. return -1;
  3815. }
  3816. if (msg.p2p_device_addr)
  3817. p2p_dev_addr = msg.p2p_device_addr;
  3818. else if (msg.device_id)
  3819. p2p_dev_addr = msg.device_id;
  3820. else {
  3821. p2p_dbg(p2p, "Ignore scan data without P2P Device Info or P2P Device Id");
  3822. p2p_parse_free(&msg);
  3823. return -1;
  3824. }
  3825. if (msg.oob_dev_password) {
  3826. os_memcpy(params->oob_dev_pw, msg.oob_dev_password,
  3827. msg.oob_dev_password_len);
  3828. params->oob_dev_pw_len = msg.oob_dev_password_len;
  3829. }
  3830. dev = p2p_create_device(p2p, p2p_dev_addr);
  3831. if (dev == NULL) {
  3832. p2p_parse_free(&msg);
  3833. return -1;
  3834. }
  3835. params->peer = &dev->info;
  3836. os_get_reltime(&dev->last_seen);
  3837. dev->flags &= ~(P2P_DEV_PROBE_REQ_ONLY | P2P_DEV_GROUP_CLIENT_ONLY);
  3838. p2p_copy_wps_info(p2p, dev, 0, &msg);
  3839. if (!msg.oob_go_neg_channel) {
  3840. p2p_dbg(p2p, "OOB GO Negotiation Channel attribute not included");
  3841. return -1;
  3842. }
  3843. if (msg.oob_go_neg_channel[3] == 0 &&
  3844. msg.oob_go_neg_channel[4] == 0)
  3845. freq = 0;
  3846. else
  3847. freq = p2p_channel_to_freq(msg.oob_go_neg_channel[3],
  3848. msg.oob_go_neg_channel[4]);
  3849. if (freq < 0) {
  3850. p2p_dbg(p2p, "Unknown peer OOB GO Neg channel");
  3851. return -1;
  3852. }
  3853. role = msg.oob_go_neg_channel[5];
  3854. if (role == P2P_GO_IN_A_GROUP) {
  3855. p2p_dbg(p2p, "Peer OOB GO operating channel: %u MHz", freq);
  3856. params->go_freq = freq;
  3857. } else if (role == P2P_CLIENT_IN_A_GROUP) {
  3858. p2p_dbg(p2p, "Peer (client) OOB GO operating channel: %u MHz",
  3859. freq);
  3860. params->go_freq = freq;
  3861. } else
  3862. p2p_dbg(p2p, "Peer OOB GO Neg channel: %u MHz", freq);
  3863. dev->oob_go_neg_freq = freq;
  3864. if (!params->sel && role != P2P_GO_IN_A_GROUP) {
  3865. freq = p2p_channel_to_freq(p2p->cfg->reg_class,
  3866. p2p->cfg->channel);
  3867. if (freq < 0) {
  3868. p2p_dbg(p2p, "Own listen channel not known");
  3869. return -1;
  3870. }
  3871. p2p_dbg(p2p, "Use own Listen channel as OOB GO Neg channel: %u MHz", freq);
  3872. dev->oob_go_neg_freq = freq;
  3873. }
  3874. if (msg.group_id) {
  3875. os_memcpy(params->go_dev_addr, msg.group_id, ETH_ALEN);
  3876. params->go_ssid_len = msg.group_id_len - ETH_ALEN;
  3877. os_memcpy(params->go_ssid, msg.group_id + ETH_ALEN,
  3878. params->go_ssid_len);
  3879. }
  3880. p2p_parse_free(&msg);
  3881. if (dev->flags & P2P_DEV_USER_REJECTED) {
  3882. p2p_dbg(p2p, "Do not report rejected device");
  3883. return 0;
  3884. }
  3885. if (!(dev->flags & P2P_DEV_REPORTED)) {
  3886. p2p->cfg->dev_found(p2p->cfg->cb_ctx, p2p_dev_addr, &dev->info,
  3887. !(dev->flags & P2P_DEV_REPORTED_ONCE));
  3888. dev->flags |= P2P_DEV_REPORTED | P2P_DEV_REPORTED_ONCE;
  3889. }
  3890. if (role == P2P_GO_IN_A_GROUP && p2p->num_groups > 0)
  3891. params->next_step = BOTH_GO;
  3892. else if (role == P2P_GO_IN_A_GROUP)
  3893. params->next_step = JOIN_GROUP;
  3894. else if (role == P2P_CLIENT_IN_A_GROUP) {
  3895. dev->flags |= P2P_DEV_GROUP_CLIENT_ONLY;
  3896. params->next_step = PEER_CLIENT;
  3897. } else if (p2p->num_groups > 0)
  3898. params->next_step = AUTH_JOIN;
  3899. else if (params->sel)
  3900. params->next_step = INIT_GO_NEG;
  3901. else
  3902. params->next_step = RESP_GO_NEG;
  3903. return 0;
  3904. }
  3905. void p2p_set_authorized_oob_dev_pw_id(struct p2p_data *p2p, u16 dev_pw_id,
  3906. int go_intent,
  3907. const u8 *own_interface_addr)
  3908. {
  3909. p2p->authorized_oob_dev_pw_id = dev_pw_id;
  3910. if (dev_pw_id == 0) {
  3911. p2p_dbg(p2p, "NFC OOB Password unauthorized for static handover");
  3912. return;
  3913. }
  3914. p2p_dbg(p2p, "NFC OOB Password (id=%u) authorized for static handover",
  3915. dev_pw_id);
  3916. p2p->go_intent = go_intent;
  3917. os_memcpy(p2p->intended_addr, own_interface_addr, ETH_ALEN);
  3918. }
  3919. #endif /* CONFIG_WPS_NFC */