bluetooth.c 124 KB

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  1. // SPDX-License-Identifier: LGPL-2.1-or-later
  2. /*
  3. *
  4. * BlueZ - Bluetooth protocol stack for Linux
  5. *
  6. * Copyright (C) 2013-2014 Intel Corporation. All rights reserved.
  7. *
  8. *
  9. */
  10. #ifdef HAVE_CONFIG_H
  11. #include <config.h>
  12. #endif
  13. #include <errno.h>
  14. #include <stdlib.h>
  15. #include <unistd.h>
  16. #include <inttypes.h>
  17. #include <sys/types.h>
  18. #include <sys/stat.h>
  19. #include <fcntl.h>
  20. #include <glib.h>
  21. #include "lib/bluetooth.h"
  22. #include "lib/sdp.h"
  23. #include "lib/mgmt.h"
  24. #include "lib/uuid.h"
  25. #include "src/shared/util.h"
  26. #include "src/shared/mgmt.h"
  27. #include "src/shared/queue.h"
  28. #include "src/shared/ad.h"
  29. #include "src/eir.h"
  30. #include "lib/sdp.h"
  31. #include "lib/sdp_lib.h"
  32. #include "src/sdp-client.h"
  33. #include "src/sdpd.h"
  34. #include "src/log.h"
  35. #include "hal-msg.h"
  36. #include "ipc-common.h"
  37. #include "ipc.h"
  38. #include "utils.h"
  39. #include "bluetooth.h"
  40. #define DUT_MODE_FILE "/sys/kernel/debug/bluetooth/hci%u/dut_mode"
  41. #define SETTINGS_FILE ANDROID_STORAGEDIR"/settings"
  42. #define DEVICES_FILE ANDROID_STORAGEDIR"/devices"
  43. #define CACHE_FILE ANDROID_STORAGEDIR"/cache"
  44. #define ADAPTER_MAJOR_CLASS 0x02 /* Phone */
  45. #define ADAPTER_MINOR_CLASS 0x03 /* Smartphone */
  46. /* Default to DisplayYesNo */
  47. #define DEFAULT_IO_CAPABILITY 0x01
  48. /* Default discoverable timeout 120sec as in Android */
  49. #define DEFAULT_DISCOVERABLE_TIMEOUT 120
  50. #define DEVICES_CACHE_MAX 300
  51. #define BASELEN_PROP_CHANGED (sizeof(struct hal_ev_adapter_props_changed) \
  52. + sizeof(struct hal_property))
  53. #define BASELEN_REMOTE_DEV_PROP (sizeof(struct hal_ev_remote_device_props) \
  54. + sizeof(struct hal_property))
  55. #define SCAN_TYPE_NONE 0
  56. #define SCAN_TYPE_BREDR (1 << BDADDR_BREDR)
  57. #define SCAN_TYPE_LE ((1 << BDADDR_LE_PUBLIC) | (1 << BDADDR_LE_RANDOM))
  58. #define SCAN_TYPE_DUAL (SCAN_TYPE_BREDR | SCAN_TYPE_LE)
  59. #define BDADDR_LE (BDADDR_LE_RANDOM | BDADDR_LE_PUBLIC)
  60. struct device {
  61. bdaddr_t bdaddr;
  62. uint8_t bdaddr_type;
  63. bdaddr_t rpa;
  64. uint8_t rpa_type;
  65. bool le;
  66. bool bredr;
  67. bool pairing;
  68. bool bredr_paired;
  69. bool bredr_bonded;
  70. bool le_paired;
  71. bool le_bonded;
  72. bool in_white_list;
  73. bool connected;
  74. char *name;
  75. char *friendly_name;
  76. uint32_t class;
  77. int32_t rssi;
  78. time_t bredr_seen;
  79. time_t le_seen;
  80. GSList *uuids;
  81. bool found; /* if device is found in current discovery session */
  82. unsigned int confirm_id; /* mgtm command id if command pending */
  83. bool valid_remote_csrk;
  84. bool remote_csrk_auth;
  85. uint8_t remote_csrk[16];
  86. uint32_t remote_sign_cnt;
  87. bool valid_local_csrk;
  88. bool local_csrk_auth;
  89. uint8_t local_csrk[16];
  90. uint32_t local_sign_cnt;
  91. uint16_t gatt_ccc;
  92. };
  93. struct browse_req {
  94. bdaddr_t bdaddr;
  95. GSList *uuids;
  96. int search_uuid;
  97. int reconnect_attempt;
  98. };
  99. static struct {
  100. uint16_t index;
  101. bdaddr_t bdaddr;
  102. uint32_t dev_class;
  103. char *name;
  104. uint8_t max_advert_instance;
  105. uint8_t rpa_offload_supported;
  106. uint8_t max_irk_list_size;
  107. uint8_t max_scan_filters_supported;
  108. uint16_t scan_result_storage_size;
  109. uint8_t activity_energy_info_supported;
  110. uint32_t current_settings;
  111. uint32_t supported_settings;
  112. bool le_scanning;
  113. uint8_t cur_discovery_type;
  114. uint8_t exp_discovery_type;
  115. uint32_t discoverable_timeout;
  116. GSList *uuids;
  117. } adapter = {
  118. .index = MGMT_INDEX_NONE,
  119. .dev_class = 0,
  120. .name = NULL,
  121. .max_advert_instance = 0,
  122. .rpa_offload_supported = 0,
  123. .max_irk_list_size = 0,
  124. .max_scan_filters_supported = 0,
  125. .scan_result_storage_size = 0,
  126. .activity_energy_info_supported = 0,
  127. .current_settings = 0,
  128. .supported_settings = 0,
  129. .cur_discovery_type = SCAN_TYPE_NONE,
  130. .exp_discovery_type = SCAN_TYPE_NONE,
  131. .discoverable_timeout = DEFAULT_DISCOVERABLE_TIMEOUT,
  132. .uuids = NULL,
  133. };
  134. static const uint16_t uuid_list[] = {
  135. L2CAP_UUID,
  136. PNP_INFO_SVCLASS_ID,
  137. PUBLIC_BROWSE_GROUP,
  138. 0
  139. };
  140. static uint16_t option_index = MGMT_INDEX_NONE;
  141. static struct mgmt *mgmt_if = NULL;
  142. static GSList *bonded_devices = NULL;
  143. static GSList *cached_devices = NULL;
  144. static bt_le_device_found gatt_device_found_cb = NULL;
  145. static bt_le_discovery_stopped gatt_discovery_stopped_cb = NULL;
  146. /* This list contains addresses which are asked for records */
  147. static GSList *browse_reqs;
  148. static struct ipc *hal_ipc = NULL;
  149. static bool kernel_conn_control = false;
  150. static struct queue *unpaired_cb_list = NULL;
  151. static struct queue *paired_cb_list = NULL;
  152. static void get_device_android_addr(struct device *dev, uint8_t *addr)
  153. {
  154. /*
  155. * If RPA is set it means that IRK was received and ID address is being
  156. * used. Android Framework is still using old RPA and it needs to be
  157. * used in notifications.
  158. */
  159. if (bacmp(&dev->rpa, BDADDR_ANY))
  160. bdaddr2android(&dev->rpa, addr);
  161. else
  162. bdaddr2android(&dev->bdaddr, addr);
  163. }
  164. static void mgmt_debug(const char *str, void *user_data)
  165. {
  166. const char *prefix = user_data;
  167. info("%s%s", prefix, str);
  168. }
  169. static void store_adapter_config(void)
  170. {
  171. GKeyFile *key_file;
  172. gsize length = 0;
  173. char addr[18];
  174. char *data;
  175. key_file = g_key_file_new();
  176. g_key_file_load_from_file(key_file, SETTINGS_FILE, 0, NULL);
  177. ba2str(&adapter.bdaddr, addr);
  178. g_key_file_set_string(key_file, "General", "Address", addr);
  179. if (adapter.name)
  180. g_key_file_set_string(key_file, "General", "Name",
  181. adapter.name);
  182. g_key_file_set_integer(key_file, "General", "DiscoverableTimeout",
  183. adapter.discoverable_timeout);
  184. data = g_key_file_to_data(key_file, &length, NULL);
  185. g_file_set_contents(SETTINGS_FILE, data, length, NULL);
  186. g_free(data);
  187. g_key_file_free(key_file);
  188. }
  189. static void load_adapter_config(void)
  190. {
  191. GError *gerr = NULL;
  192. GKeyFile *key_file;
  193. char *str;
  194. key_file = g_key_file_new();
  195. g_key_file_load_from_file(key_file, SETTINGS_FILE, 0, NULL);
  196. str = g_key_file_get_string(key_file, "General", "Address", NULL);
  197. if (!str) {
  198. g_key_file_free(key_file);
  199. return;
  200. }
  201. str2ba(str, &adapter.bdaddr);
  202. g_free(str);
  203. adapter.name = g_key_file_get_string(key_file, "General", "Name", NULL);
  204. adapter.discoverable_timeout = g_key_file_get_integer(key_file,
  205. "General", "DiscoverableTimeout", &gerr);
  206. if (gerr) {
  207. adapter.discoverable_timeout = DEFAULT_DISCOVERABLE_TIMEOUT;
  208. g_clear_error(&gerr);
  209. }
  210. g_key_file_free(key_file);
  211. }
  212. static void store_device_info(struct device *dev, const char *path)
  213. {
  214. GKeyFile *key_file;
  215. char addr[18];
  216. gsize length = 0;
  217. char **uuids = NULL;
  218. char *str;
  219. ba2str(&dev->bdaddr, addr);
  220. key_file = g_key_file_new();
  221. g_key_file_load_from_file(key_file, path, 0, NULL);
  222. g_key_file_set_boolean(key_file, addr, "BREDR", dev->bredr);
  223. if (dev->le)
  224. g_key_file_set_integer(key_file, addr, "AddressType",
  225. dev->bdaddr_type);
  226. g_key_file_set_string(key_file, addr, "Name", dev->name);
  227. if (dev->friendly_name)
  228. g_key_file_set_string(key_file, addr, "FriendlyName",
  229. dev->friendly_name);
  230. else
  231. g_key_file_remove_key(key_file, addr, "FriendlyName", NULL);
  232. if (dev->class)
  233. g_key_file_set_integer(key_file, addr, "Class", dev->class);
  234. else
  235. g_key_file_remove_key(key_file, addr, "Class", NULL);
  236. if (dev->bredr_seen > dev->le_seen)
  237. g_key_file_set_integer(key_file, addr, "Timestamp",
  238. dev->bredr_seen);
  239. else
  240. g_key_file_set_integer(key_file, addr, "Timestamp",
  241. dev->le_seen);
  242. if (dev->uuids) {
  243. GSList *l;
  244. int i;
  245. uuids = g_new0(char *, g_slist_length(dev->uuids) + 1);
  246. for (i = 0, l = dev->uuids; l; l = g_slist_next(l), i++) {
  247. int j;
  248. uint8_t *u = l->data;
  249. char *uuid_str = g_malloc0(33);
  250. for (j = 0; j < 16; j++)
  251. sprintf(uuid_str + (j * 2), "%2.2X", u[j]);
  252. uuids[i] = uuid_str;
  253. }
  254. g_key_file_set_string_list(key_file, addr, "Services",
  255. (const char **)uuids, i);
  256. } else {
  257. g_key_file_remove_key(key_file, addr, "Services", NULL);
  258. }
  259. str = g_key_file_to_data(key_file, &length, NULL);
  260. g_file_set_contents(path, str, length, NULL);
  261. g_free(str);
  262. g_key_file_free(key_file);
  263. g_strfreev(uuids);
  264. }
  265. static void remove_device_info(struct device *dev, const char *path)
  266. {
  267. GKeyFile *key_file;
  268. gsize length = 0;
  269. char addr[18];
  270. char *str;
  271. ba2str(&dev->bdaddr, addr);
  272. key_file = g_key_file_new();
  273. g_key_file_load_from_file(key_file, path, 0, NULL);
  274. g_key_file_remove_group(key_file, addr, NULL);
  275. str = g_key_file_to_data(key_file, &length, NULL);
  276. g_file_set_contents(path, str, length, NULL);
  277. g_free(str);
  278. g_key_file_free(key_file);
  279. }
  280. static int device_match(gconstpointer a, gconstpointer b)
  281. {
  282. const struct device *dev = a;
  283. const bdaddr_t *bdaddr = b;
  284. /* Android is using RPA even if IRK was received and ID addr resolved */
  285. if (!bacmp(&dev->rpa, bdaddr))
  286. return 0;
  287. return bacmp(&dev->bdaddr, bdaddr);
  288. }
  289. static struct device *find_device(const bdaddr_t *bdaddr)
  290. {
  291. GSList *l;
  292. l = g_slist_find_custom(bonded_devices, bdaddr, device_match);
  293. if (l)
  294. return l->data;
  295. l = g_slist_find_custom(cached_devices, bdaddr, device_match);
  296. if (l)
  297. return l->data;
  298. return NULL;
  299. }
  300. static void free_device(struct device *dev)
  301. {
  302. if (dev->confirm_id)
  303. mgmt_cancel(mgmt_if, dev->confirm_id);
  304. g_free(dev->name);
  305. g_free(dev->friendly_name);
  306. g_slist_free_full(dev->uuids, g_free);
  307. g_free(dev);
  308. }
  309. static void cache_device(struct device *new_dev)
  310. {
  311. struct device *dev;
  312. GSList *l;
  313. l = g_slist_find(cached_devices, new_dev);
  314. if (l) {
  315. cached_devices = g_slist_remove(cached_devices, new_dev);
  316. goto cache;
  317. }
  318. if (g_slist_length(cached_devices) < DEVICES_CACHE_MAX)
  319. goto cache;
  320. l = g_slist_last(cached_devices);
  321. dev = l->data;
  322. cached_devices = g_slist_remove(cached_devices, dev);
  323. remove_device_info(dev, CACHE_FILE);
  324. free_device(dev);
  325. cache:
  326. cached_devices = g_slist_prepend(cached_devices, new_dev);
  327. store_device_info(new_dev, CACHE_FILE);
  328. }
  329. static struct device *create_device(const bdaddr_t *bdaddr, uint8_t bdaddr_type)
  330. {
  331. struct device *dev;
  332. char addr[18];
  333. ba2str(bdaddr, addr);
  334. DBG("%s", addr);
  335. dev = g_new0(struct device, 1);
  336. bacpy(&dev->bdaddr, bdaddr);
  337. if (bdaddr_type == BDADDR_BREDR) {
  338. dev->bredr = true;
  339. dev->bredr_seen = time(NULL);
  340. } else {
  341. dev->le = true;
  342. dev->bdaddr_type = bdaddr_type;
  343. dev->le_seen = time(NULL);
  344. }
  345. /*
  346. * Use address for name, will be change if one is present
  347. * eg. in EIR or set by set_property.
  348. */
  349. dev->name = g_strdup(addr);
  350. return dev;
  351. }
  352. static struct device *get_device(const bdaddr_t *bdaddr, uint8_t type)
  353. {
  354. struct device *dev;
  355. dev = find_device(bdaddr);
  356. if (dev)
  357. return dev;
  358. dev = create_device(bdaddr, type);
  359. cache_device(dev);
  360. return dev;
  361. }
  362. static struct device *find_device_android(const uint8_t *addr)
  363. {
  364. bdaddr_t bdaddr;
  365. android2bdaddr(addr, &bdaddr);
  366. return find_device(&bdaddr);
  367. }
  368. static struct device *get_device_android(const uint8_t *addr)
  369. {
  370. bdaddr_t bdaddr;
  371. android2bdaddr(addr, &bdaddr);
  372. return get_device(&bdaddr, BDADDR_BREDR);
  373. }
  374. static void send_adapter_property(uint8_t type, uint16_t len, const void *val)
  375. {
  376. uint8_t buf[BASELEN_PROP_CHANGED + len];
  377. struct hal_ev_adapter_props_changed *ev = (void *) buf;
  378. ev->status = HAL_STATUS_SUCCESS;
  379. ev->num_props = 1;
  380. ev->props[0].type = type;
  381. ev->props[0].len = len;
  382. memcpy(ev->props[0].val, val, len);
  383. ipc_send_notif(hal_ipc, HAL_SERVICE_ID_BLUETOOTH,
  384. HAL_EV_ADAPTER_PROPS_CHANGED, sizeof(buf), buf);
  385. }
  386. static void adapter_name_changed(const uint8_t *name)
  387. {
  388. /* Android expects string value without NULL terminator */
  389. send_adapter_property(HAL_PROP_ADAPTER_NAME,
  390. strlen((const char *) name), name);
  391. }
  392. static void adapter_set_name(const uint8_t *name)
  393. {
  394. if (!g_strcmp0(adapter.name, (const char *) name))
  395. return;
  396. DBG("%s", name);
  397. g_free(adapter.name);
  398. adapter.name = g_strdup((const char *) name);
  399. store_adapter_config();
  400. adapter_name_changed(name);
  401. }
  402. static void mgmt_local_name_changed_event(uint16_t index, uint16_t length,
  403. const void *param, void *user_data)
  404. {
  405. const struct mgmt_cp_set_local_name *rp = param;
  406. if (length < sizeof(*rp)) {
  407. error("Wrong size of local name changed parameters");
  408. return;
  409. }
  410. adapter_set_name(rp->name);
  411. /* TODO Update services if needed */
  412. }
  413. static void powered_changed(void)
  414. {
  415. struct hal_ev_adapter_state_changed ev;
  416. ev.state = (adapter.current_settings & MGMT_SETTING_POWERED) ?
  417. HAL_POWER_ON : HAL_POWER_OFF;
  418. DBG("%u", ev.state);
  419. ipc_send_notif(hal_ipc, HAL_SERVICE_ID_BLUETOOTH,
  420. HAL_EV_ADAPTER_STATE_CHANGED, sizeof(ev), &ev);
  421. }
  422. static uint8_t settings2scan_mode(void)
  423. {
  424. bool connectable, discoverable;
  425. connectable = adapter.current_settings & MGMT_SETTING_CONNECTABLE;
  426. discoverable = adapter.current_settings & MGMT_SETTING_DISCOVERABLE;
  427. if (connectable && discoverable)
  428. return HAL_ADAPTER_SCAN_MODE_CONN_DISC;
  429. if (connectable)
  430. return HAL_ADAPTER_SCAN_MODE_CONN;
  431. return HAL_ADAPTER_SCAN_MODE_NONE;
  432. }
  433. static void scan_mode_changed(void)
  434. {
  435. uint8_t mode;
  436. mode = settings2scan_mode();
  437. DBG("mode %u", mode);
  438. send_adapter_property(HAL_PROP_ADAPTER_SCAN_MODE, sizeof(mode), &mode);
  439. }
  440. static void adapter_class_changed(void)
  441. {
  442. send_adapter_property(HAL_PROP_ADAPTER_CLASS, sizeof(adapter.dev_class),
  443. &adapter.dev_class);
  444. }
  445. static void settings_changed(uint32_t settings)
  446. {
  447. uint32_t changed_mask;
  448. uint32_t scan_mode_mask;
  449. changed_mask = adapter.current_settings ^ settings;
  450. adapter.current_settings = settings;
  451. DBG("0x%08x", changed_mask);
  452. if (changed_mask & MGMT_SETTING_POWERED)
  453. powered_changed();
  454. scan_mode_mask = MGMT_SETTING_CONNECTABLE |
  455. MGMT_SETTING_DISCOVERABLE;
  456. /*
  457. * Only when powered, the connectable and discoverable
  458. * state changes should be communicated.
  459. */
  460. if (adapter.current_settings & MGMT_SETTING_POWERED)
  461. if (changed_mask & scan_mode_mask)
  462. scan_mode_changed();
  463. }
  464. static void new_settings_callback(uint16_t index, uint16_t length,
  465. const void *param, void *user_data)
  466. {
  467. uint32_t settings;
  468. if (length < sizeof(settings)) {
  469. error("Wrong size of new settings parameters");
  470. return;
  471. }
  472. settings = get_le32(param);
  473. DBG("settings: 0x%8.8x -> 0x%8.8x", adapter.current_settings,
  474. settings);
  475. if (settings == adapter.current_settings)
  476. return;
  477. settings_changed(settings);
  478. }
  479. static void mgmt_dev_class_changed_event(uint16_t index, uint16_t length,
  480. const void *param, void *user_data)
  481. {
  482. const struct mgmt_cod *rp = param;
  483. uint32_t dev_class;
  484. if (length < sizeof(*rp)) {
  485. error("Wrong size of class of device changed parameters");
  486. return;
  487. }
  488. dev_class = rp->val[0] | (rp->val[1] << 8) | (rp->val[2] << 16);
  489. if (dev_class == adapter.dev_class)
  490. return;
  491. DBG("Class: 0x%06x", dev_class);
  492. adapter.dev_class = dev_class;
  493. adapter_class_changed();
  494. /* TODO: Gatt attrib set*/
  495. }
  496. void bt_store_gatt_ccc(const bdaddr_t *dst, uint16_t value)
  497. {
  498. struct device *dev;
  499. GKeyFile *key_file;
  500. gsize length = 0;
  501. char addr[18];
  502. char *data;
  503. dev = find_device(dst);
  504. if (!dev)
  505. return;
  506. key_file = g_key_file_new();
  507. if (!g_key_file_load_from_file(key_file, DEVICES_FILE, 0, NULL)) {
  508. g_key_file_free(key_file);
  509. return;
  510. }
  511. ba2str(&dev->bdaddr, addr);
  512. DBG("%s Gatt CCC %d", addr, value);
  513. g_key_file_set_integer(key_file, addr, "GattCCC", value);
  514. data = g_key_file_to_data(key_file, &length, NULL);
  515. g_file_set_contents(DEVICES_FILE, data, length, NULL);
  516. g_free(data);
  517. g_key_file_free(key_file);
  518. dev->gatt_ccc = value;
  519. }
  520. uint16_t bt_get_gatt_ccc(const bdaddr_t *addr)
  521. {
  522. struct device *dev;
  523. dev = find_device(addr);
  524. if (!dev)
  525. return 0;
  526. return dev->gatt_ccc;
  527. }
  528. static void store_link_key(const bdaddr_t *dst, const uint8_t *key,
  529. uint8_t type, uint8_t pin_length)
  530. {
  531. GKeyFile *key_file;
  532. char key_str[33];
  533. gsize length = 0;
  534. char addr[18];
  535. char *data;
  536. int i;
  537. key_file = g_key_file_new();
  538. if (!g_key_file_load_from_file(key_file, DEVICES_FILE, 0, NULL)) {
  539. g_key_file_free(key_file);
  540. return;
  541. }
  542. ba2str(dst, addr);
  543. DBG("%s type %u pin_len %u", addr, type, pin_length);
  544. for (i = 0; i < 16; i++)
  545. sprintf(key_str + (i * 2), "%2.2X", key[i]);
  546. g_key_file_set_string(key_file, addr, "LinkKey", key_str);
  547. g_key_file_set_integer(key_file, addr, "LinkKeyType", type);
  548. g_key_file_set_integer(key_file, addr, "LinkKeyPinLength", pin_length);
  549. data = g_key_file_to_data(key_file, &length, NULL);
  550. g_file_set_contents(DEVICES_FILE, data, length, NULL);
  551. g_free(data);
  552. g_key_file_free(key_file);
  553. }
  554. static void send_bond_state_change(struct device *dev, uint8_t status,
  555. uint8_t state)
  556. {
  557. struct hal_ev_bond_state_changed ev;
  558. ev.status = status;
  559. ev.state = state;
  560. get_device_android_addr(dev, ev.bdaddr);
  561. ipc_send_notif(hal_ipc, HAL_SERVICE_ID_BLUETOOTH,
  562. HAL_EV_BOND_STATE_CHANGED, sizeof(ev), &ev);
  563. }
  564. static void update_bredr_state(struct device *dev, bool pairing, bool paired,
  565. bool bonded)
  566. {
  567. if (pairing == dev->pairing && paired == dev->bredr_paired &&
  568. bonded == dev->bredr_bonded)
  569. return;
  570. /* avoid unpairing device on incoming pairing request */
  571. if (pairing && dev->bredr_paired)
  572. goto done;
  573. /* avoid unpairing device if pairing failed */
  574. if (!pairing && !paired && dev->pairing && dev->bredr_paired)
  575. goto done;
  576. if (paired && !dev->le_paired && !dev->bredr_paired) {
  577. cached_devices = g_slist_remove(cached_devices, dev);
  578. bonded_devices = g_slist_prepend(bonded_devices, dev);
  579. remove_device_info(dev, CACHE_FILE);
  580. store_device_info(dev, DEVICES_FILE);
  581. } else if (!paired && !dev->le_paired) {
  582. bonded_devices = g_slist_remove(bonded_devices, dev);
  583. remove_device_info(dev, DEVICES_FILE);
  584. cache_device(dev);
  585. }
  586. dev->bredr_paired = paired;
  587. if (dev->bredr_paired)
  588. dev->bredr_bonded = dev->bredr_bonded || bonded;
  589. else
  590. dev->bredr_bonded = false;
  591. done:
  592. dev->pairing = pairing;
  593. }
  594. static void update_le_state(struct device *dev, bool pairing, bool paired,
  595. bool bonded)
  596. {
  597. if (pairing == dev->pairing && paired == dev->le_paired &&
  598. bonded == dev->le_bonded)
  599. return;
  600. /* avoid unpairing device on incoming pairing request */
  601. if (pairing && dev->le_paired)
  602. goto done;
  603. /* avoid unpairing device if pairing failed */
  604. if (!pairing && !paired && dev->pairing && dev->le_paired)
  605. goto done;
  606. if (paired && !dev->bredr_paired && !dev->le_paired) {
  607. cached_devices = g_slist_remove(cached_devices, dev);
  608. bonded_devices = g_slist_prepend(bonded_devices, dev);
  609. remove_device_info(dev, CACHE_FILE);
  610. store_device_info(dev, DEVICES_FILE);
  611. } else if (!paired && !dev->bredr_paired) {
  612. bonded_devices = g_slist_remove(bonded_devices, dev);
  613. remove_device_info(dev, DEVICES_FILE);
  614. dev->valid_local_csrk = false;
  615. dev->valid_remote_csrk = false;
  616. dev->local_sign_cnt = 0;
  617. dev->remote_sign_cnt = 0;
  618. memset(dev->local_csrk, 0, sizeof(dev->local_csrk));
  619. memset(dev->remote_csrk, 0, sizeof(dev->remote_csrk));
  620. cache_device(dev);
  621. }
  622. dev->le_paired = paired;
  623. if (dev->le_paired)
  624. dev->le_bonded = dev->le_bonded || bonded;
  625. else
  626. dev->le_bonded = false;
  627. done:
  628. dev->pairing = pairing;
  629. }
  630. static uint8_t device_bond_state(struct device *dev)
  631. {
  632. if (dev->pairing)
  633. return HAL_BOND_STATE_BONDING;
  634. /*
  635. * We are checking for paired here instead of bonded as HAL API is
  636. * using BOND state also if there was no bonding pairing.
  637. */
  638. if (dev->bredr_paired || dev->le_paired)
  639. return HAL_BOND_STATE_BONDED;
  640. return HAL_BOND_STATE_NONE;
  641. }
  642. static void update_bond_state(struct device *dev, uint8_t status,
  643. uint8_t old_bond, uint8_t new_bond)
  644. {
  645. if (old_bond == new_bond)
  646. return;
  647. /*
  648. * When internal bond state changes from bond to non-bond or other way,
  649. * BfA needs to send bonding state to Android in the middle. Otherwise
  650. * Android will not handle it correctly
  651. */
  652. if ((old_bond == HAL_BOND_STATE_NONE &&
  653. new_bond == HAL_BOND_STATE_BONDED) ||
  654. (old_bond == HAL_BOND_STATE_BONDED &&
  655. new_bond == HAL_BOND_STATE_NONE))
  656. send_bond_state_change(dev, HAL_STATUS_SUCCESS,
  657. HAL_BOND_STATE_BONDING);
  658. send_bond_state_change(dev, status, new_bond);
  659. }
  660. static void send_paired_notification(void *data, void *user_data)
  661. {
  662. bt_paired_device_cb cb = data;
  663. struct device *dev = user_data;
  664. cb(&dev->bdaddr);
  665. }
  666. static void update_device_state(struct device *dev, uint8_t addr_type,
  667. uint8_t status, bool pairing, bool paired,
  668. bool bonded)
  669. {
  670. uint8_t old_bond, new_bond;
  671. old_bond = device_bond_state(dev);
  672. if (addr_type == BDADDR_BREDR)
  673. update_bredr_state(dev, pairing, paired, bonded);
  674. else
  675. update_le_state(dev, pairing, paired, bonded);
  676. new_bond = device_bond_state(dev);
  677. update_bond_state(dev, status, old_bond, new_bond);
  678. }
  679. static void send_device_property(struct device *dev, uint8_t type,
  680. uint16_t len, const void *val)
  681. {
  682. uint8_t buf[BASELEN_REMOTE_DEV_PROP + len];
  683. struct hal_ev_remote_device_props *ev = (void *) buf;
  684. ev->status = HAL_STATUS_SUCCESS;
  685. get_device_android_addr(dev, ev->bdaddr);
  686. ev->num_props = 1;
  687. ev->props[0].type = type;
  688. ev->props[0].len = len;
  689. memcpy(ev->props[0].val, val, len);
  690. ipc_send_notif(hal_ipc, HAL_SERVICE_ID_BLUETOOTH,
  691. HAL_EV_REMOTE_DEVICE_PROPS, sizeof(buf), buf);
  692. }
  693. static void send_device_uuids_notif(struct device *dev)
  694. {
  695. uint8_t buf[sizeof(uint128_t) * g_slist_length(dev->uuids)];
  696. uint8_t *ptr = buf;
  697. GSList *l;
  698. for (l = dev->uuids; l; l = g_slist_next(l)) {
  699. memcpy(ptr, l->data, sizeof(uint128_t));
  700. ptr += sizeof(uint128_t);
  701. }
  702. send_device_property(dev, HAL_PROP_DEVICE_UUIDS, sizeof(buf), buf);
  703. }
  704. static void set_device_uuids(struct device *dev, GSList *uuids)
  705. {
  706. g_slist_free_full(dev->uuids, g_free);
  707. dev->uuids = uuids;
  708. if (dev->le_paired || dev->bredr_paired)
  709. store_device_info(dev, DEVICES_FILE);
  710. else
  711. store_device_info(dev, CACHE_FILE);
  712. send_device_uuids_notif(dev);
  713. }
  714. static void browse_req_free(struct browse_req *req)
  715. {
  716. g_slist_free_full(req->uuids, g_free);
  717. g_free(req);
  718. }
  719. static int uuid_128_cmp(gconstpointer a, gconstpointer b)
  720. {
  721. return memcmp(a, b, sizeof(uint128_t));
  722. }
  723. static void update_records(struct browse_req *req, sdp_list_t *recs)
  724. {
  725. for (; recs; recs = recs->next) {
  726. sdp_record_t *rec = (sdp_record_t *) recs->data;
  727. sdp_list_t *svcclass = NULL;
  728. uuid_t uuid128;
  729. uuid_t *tmp;
  730. uint8_t *new_uuid;
  731. if (!rec)
  732. break;
  733. if (sdp_get_service_classes(rec, &svcclass) < 0)
  734. continue;
  735. if (!svcclass)
  736. continue;
  737. tmp = svcclass->data;
  738. switch (tmp->type) {
  739. case SDP_UUID16:
  740. sdp_uuid16_to_uuid128(&uuid128, tmp);
  741. break;
  742. case SDP_UUID32:
  743. sdp_uuid32_to_uuid128(&uuid128, tmp);
  744. break;
  745. case SDP_UUID128:
  746. memcpy(&uuid128, tmp, sizeof(uuid_t));
  747. break;
  748. default:
  749. sdp_list_free(svcclass, free);
  750. continue;
  751. }
  752. new_uuid = g_malloc(16);/* size of 128 bit uuid */
  753. memcpy(new_uuid, &uuid128.value.uuid128,
  754. sizeof(uuid128.value.uuid128));
  755. /* Check if uuid is already added */
  756. if (g_slist_find_custom(req->uuids, new_uuid, uuid_128_cmp))
  757. g_free(new_uuid);
  758. else
  759. req->uuids = g_slist_append(req->uuids, new_uuid);
  760. sdp_list_free(svcclass, free);
  761. }
  762. }
  763. static void browse_cb(sdp_list_t *recs, int err, gpointer user_data)
  764. {
  765. struct browse_req *req = user_data;
  766. struct device *dev;
  767. uuid_t uuid;
  768. /*
  769. * If we have a valid response and req->search_uuid == 2, then L2CAP
  770. * UUID & PNP searching was successful -- we are done
  771. */
  772. if (err < 0 || req->search_uuid == 2) {
  773. if (err == -ECONNRESET && req->reconnect_attempt < 1) {
  774. req->search_uuid--;
  775. req->reconnect_attempt++;
  776. } else {
  777. goto done;
  778. }
  779. }
  780. update_records(req, recs);
  781. /* Search for mandatory uuids */
  782. if (uuid_list[req->search_uuid]) {
  783. sdp_uuid16_create(&uuid, uuid_list[req->search_uuid++]);
  784. bt_search_service(&adapter.bdaddr, &req->bdaddr, &uuid,
  785. browse_cb, user_data, NULL, 0);
  786. return;
  787. }
  788. done:
  789. dev = find_device(&req->bdaddr);
  790. if (dev) {
  791. set_device_uuids(dev, req->uuids);
  792. req->uuids = NULL;
  793. }
  794. browse_reqs = g_slist_remove(browse_reqs, req);
  795. browse_req_free(req);
  796. }
  797. static int req_cmp(gconstpointer a, gconstpointer b)
  798. {
  799. const struct browse_req *req = a;
  800. const bdaddr_t *bdaddr = b;
  801. return bacmp(&req->bdaddr, bdaddr);
  802. }
  803. static uint8_t browse_remote_sdp(const bdaddr_t *addr)
  804. {
  805. struct browse_req *req;
  806. uuid_t uuid;
  807. if (g_slist_find_custom(browse_reqs, addr, req_cmp))
  808. return HAL_STATUS_SUCCESS;
  809. req = g_new0(struct browse_req, 1);
  810. bacpy(&req->bdaddr, addr);
  811. sdp_uuid16_create(&uuid, uuid_list[req->search_uuid++]);
  812. if (bt_search_service(&adapter.bdaddr,
  813. &req->bdaddr, &uuid, browse_cb, req, NULL , 0) < 0) {
  814. browse_req_free(req);
  815. return HAL_STATUS_FAILED;
  816. }
  817. browse_reqs = g_slist_append(browse_reqs, req);
  818. return HAL_STATUS_SUCCESS;
  819. }
  820. static void send_remote_sdp_rec_notify(bt_uuid_t *uuid, int channel,
  821. char *name, uint8_t name_len,
  822. uint8_t status, bdaddr_t *bdaddr)
  823. {
  824. struct hal_prop_device_service_rec *prop;
  825. uint8_t buf[BASELEN_REMOTE_DEV_PROP + name_len + sizeof(*prop)];
  826. struct hal_ev_remote_device_props *ev = (void *) buf;
  827. size_t prop_len = sizeof(*prop) + name_len;
  828. memset(buf, 0, sizeof(buf));
  829. if (uuid && status == HAL_STATUS_SUCCESS) {
  830. prop = (void *) &ev->props[0].val;
  831. prop->name_len = name_len;
  832. prop->channel = (uint16_t)channel;
  833. memcpy(prop->name, name, name_len);
  834. memcpy(prop->uuid, &uuid->value.u128, sizeof(prop->uuid));
  835. }
  836. ev->num_props = 1;
  837. ev->status = status;
  838. ev->props[0].len = prop_len;
  839. bdaddr2android(bdaddr, ev->bdaddr);
  840. ev->props[0].type = HAL_PROP_DEVICE_SERVICE_REC;
  841. ipc_send_notif(hal_ipc, HAL_SERVICE_ID_BLUETOOTH,
  842. HAL_EV_REMOTE_DEVICE_PROPS,
  843. sizeof(buf), buf);
  844. }
  845. static void find_remote_sdp_rec_cb(sdp_list_t *recs, int err,
  846. gpointer user_data)
  847. {
  848. bdaddr_t *addr = user_data;
  849. uint8_t name_len;
  850. uint8_t status;
  851. char name_buf[256];
  852. int channel;
  853. bt_uuid_t uuid;
  854. uuid_t uuid128_sdp;
  855. sdp_list_t *protos;
  856. sdp_record_t *sdp_rec;
  857. if (err < 0) {
  858. error("error while search remote sdp records");
  859. status = HAL_STATUS_FAILED;
  860. send_remote_sdp_rec_notify(NULL, 0, NULL, 0, status, addr);
  861. goto done;
  862. }
  863. if (!recs) {
  864. info("No service records found on remote");
  865. status = HAL_STATUS_SUCCESS;
  866. send_remote_sdp_rec_notify(NULL, 0, NULL, 0, status, addr);
  867. goto done;
  868. }
  869. for ( ; recs; recs = recs->next) {
  870. sdp_rec = recs->data;
  871. switch (sdp_rec->svclass.type) {
  872. case SDP_UUID16:
  873. sdp_uuid16_to_uuid128(&uuid128_sdp,
  874. &sdp_rec->svclass);
  875. break;
  876. case SDP_UUID32:
  877. sdp_uuid32_to_uuid128(&uuid128_sdp,
  878. &sdp_rec->svclass);
  879. break;
  880. case SDP_UUID128:
  881. break;
  882. default:
  883. error("wrong sdp uuid type");
  884. goto done;
  885. }
  886. if (!sdp_get_access_protos(sdp_rec, &protos)) {
  887. channel = sdp_get_proto_port(protos, RFCOMM_UUID);
  888. sdp_list_foreach(protos,
  889. (sdp_list_func_t) sdp_list_free,
  890. NULL);
  891. sdp_list_free(protos, NULL);
  892. } else
  893. channel = -1;
  894. if (channel < 0) {
  895. error("can't get channel for sdp record");
  896. channel = 0;
  897. }
  898. if (!sdp_get_service_name(sdp_rec, name_buf, sizeof(name_buf)))
  899. name_len = strlen(name_buf);
  900. else
  901. name_len = 0;
  902. uuid.type = BT_UUID128;
  903. memcpy(&uuid.value.u128, uuid128_sdp.value.uuid128.data,
  904. sizeof(uuid.value.u128));
  905. status = HAL_STATUS_SUCCESS;
  906. send_remote_sdp_rec_notify(&uuid, channel, name_buf, name_len,
  907. status, addr);
  908. }
  909. done:
  910. g_free(addr);
  911. }
  912. static uint8_t find_remote_sdp_rec(const bdaddr_t *addr,
  913. const uint8_t *find_uuid)
  914. {
  915. bdaddr_t *bdaddr;
  916. uuid_t uuid;
  917. /* from android we always get full 128bit length uuid */
  918. sdp_uuid128_create(&uuid, find_uuid);
  919. bdaddr = g_new(bdaddr_t, 1);
  920. if (!bdaddr)
  921. return HAL_STATUS_NOMEM;
  922. memcpy(bdaddr, addr, sizeof(*bdaddr));
  923. if (bt_search_service(&adapter.bdaddr, addr, &uuid,
  924. find_remote_sdp_rec_cb, bdaddr, NULL, 0) < 0) {
  925. g_free(bdaddr);
  926. return HAL_STATUS_FAILED;
  927. }
  928. return HAL_STATUS_SUCCESS;
  929. }
  930. static void new_link_key_callback(uint16_t index, uint16_t length,
  931. const void *param, void *user_data)
  932. {
  933. const struct mgmt_ev_new_link_key *ev = param;
  934. const struct mgmt_addr_info *addr = &ev->key.addr;
  935. struct device *dev;
  936. char dst[18];
  937. if (length < sizeof(*ev)) {
  938. error("Too small new link key event");
  939. return;
  940. }
  941. ba2str(&addr->bdaddr, dst);
  942. DBG("new key for %s type %u pin_len %u",
  943. dst, ev->key.type, ev->key.pin_len);
  944. if (ev->key.pin_len > 16) {
  945. error("Invalid PIN length (%u) in new_key event",
  946. ev->key.pin_len);
  947. return;
  948. }
  949. dev = get_device(&ev->key.addr.bdaddr, ev->key.addr.type);
  950. if (!dev)
  951. return;
  952. update_device_state(dev, ev->key.addr.type, HAL_STATUS_SUCCESS, false,
  953. true, !!ev->store_hint);
  954. if (ev->store_hint) {
  955. const struct mgmt_link_key_info *key = &ev->key;
  956. store_link_key(&addr->bdaddr, key->val, key->type,
  957. key->pin_len);
  958. }
  959. browse_remote_sdp(&addr->bdaddr);
  960. }
  961. static uint8_t get_device_name(struct device *dev)
  962. {
  963. send_device_property(dev, HAL_PROP_DEVICE_NAME,
  964. strlen(dev->name), dev->name);
  965. return HAL_STATUS_SUCCESS;
  966. }
  967. static void pin_code_request_callback(uint16_t index, uint16_t length,
  968. const void *param, void *user_data)
  969. {
  970. const struct mgmt_ev_pin_code_request *ev = param;
  971. struct hal_ev_pin_request hal_ev;
  972. struct device *dev;
  973. char dst[18];
  974. if (length < sizeof(*ev)) {
  975. error("Too small PIN code request event");
  976. return;
  977. }
  978. ba2str(&ev->addr.bdaddr, dst);
  979. dev = get_device(&ev->addr.bdaddr, BDADDR_BREDR);
  980. /*
  981. * Workaround for Android Bluetooth.apk issue: send remote
  982. * device property
  983. */
  984. get_device_name(dev);
  985. update_device_state(dev, ev->addr.type, HAL_STATUS_SUCCESS, true,
  986. false, false);
  987. DBG("%s type %u secure %u", dst, ev->addr.type, ev->secure);
  988. /* Name already sent in remote device prop */
  989. memset(&hal_ev, 0, sizeof(hal_ev));
  990. get_device_android_addr(dev, hal_ev.bdaddr);
  991. hal_ev.class_of_dev = dev->class;
  992. ipc_send_notif(hal_ipc, HAL_SERVICE_ID_BLUETOOTH, HAL_EV_PIN_REQUEST,
  993. sizeof(hal_ev), &hal_ev);
  994. }
  995. static void send_ssp_request(struct device *dev, uint8_t variant,
  996. uint32_t passkey)
  997. {
  998. struct hal_ev_ssp_request ev;
  999. memset(&ev, 0, sizeof(ev));
  1000. get_device_android_addr(dev, ev.bdaddr);
  1001. memcpy(ev.name, dev->name, strlen(dev->name));
  1002. ev.class_of_dev = dev->class;
  1003. ev.pairing_variant = variant;
  1004. ev.passkey = passkey;
  1005. ipc_send_notif(hal_ipc, HAL_SERVICE_ID_BLUETOOTH, HAL_EV_SSP_REQUEST,
  1006. sizeof(ev), &ev);
  1007. }
  1008. static void user_confirm_request_callback(uint16_t index, uint16_t length,
  1009. const void *param, void *user_data)
  1010. {
  1011. const struct mgmt_ev_user_confirm_request *ev = param;
  1012. struct device *dev;
  1013. char dst[18];
  1014. if (length < sizeof(*ev)) {
  1015. error("Too small user confirm request event");
  1016. return;
  1017. }
  1018. ba2str(&ev->addr.bdaddr, dst);
  1019. DBG("%s confirm_hint %u", dst, ev->confirm_hint);
  1020. dev = get_device(&ev->addr.bdaddr, ev->addr.type);
  1021. if (!dev)
  1022. return;
  1023. update_device_state(dev, ev->addr.type, HAL_STATUS_SUCCESS, true,
  1024. false, false);
  1025. if (ev->confirm_hint)
  1026. send_ssp_request(dev, HAL_SSP_VARIANT_CONSENT, 0);
  1027. else
  1028. send_ssp_request(dev, HAL_SSP_VARIANT_CONFIRM, ev->value);
  1029. }
  1030. static void user_passkey_request_callback(uint16_t index, uint16_t length,
  1031. const void *param, void *user_data)
  1032. {
  1033. const struct mgmt_ev_user_passkey_request *ev = param;
  1034. struct device *dev;
  1035. char dst[18];
  1036. if (length < sizeof(*ev)) {
  1037. error("Too small passkey request event");
  1038. return;
  1039. }
  1040. ba2str(&ev->addr.bdaddr, dst);
  1041. DBG("%s", dst);
  1042. dev = get_device(&ev->addr.bdaddr, ev->addr.type);
  1043. if (!dev)
  1044. return;
  1045. update_device_state(dev, ev->addr.type, HAL_STATUS_SUCCESS, true,
  1046. false, false);
  1047. send_ssp_request(dev, HAL_SSP_VARIANT_ENTRY, 0);
  1048. }
  1049. static void user_passkey_notify_callback(uint16_t index, uint16_t length,
  1050. const void *param,
  1051. void *user_data)
  1052. {
  1053. const struct mgmt_ev_passkey_notify *ev = param;
  1054. struct device *dev;
  1055. char dst[18];
  1056. if (length < sizeof(*ev)) {
  1057. error("Too small passkey notify event");
  1058. return;
  1059. }
  1060. ba2str(&ev->addr.bdaddr, dst);
  1061. DBG("%s entered %u", dst, ev->entered);
  1062. /* HAL seems to not support entered characters */
  1063. if (ev->entered)
  1064. return;
  1065. dev = find_device(&ev->addr.bdaddr);
  1066. if (!dev)
  1067. return;
  1068. update_device_state(dev, ev->addr.type, HAL_STATUS_SUCCESS, true,
  1069. false, false);
  1070. send_ssp_request(dev, HAL_SSP_VARIANT_NOTIF, ev->passkey);
  1071. }
  1072. static void clear_device_found(gpointer data, gpointer user_data)
  1073. {
  1074. struct device *dev = data;
  1075. dev->found = false;
  1076. }
  1077. static uint8_t get_supported_discovery_type(void)
  1078. {
  1079. uint8_t type = SCAN_TYPE_NONE;
  1080. if (adapter.current_settings & MGMT_SETTING_BREDR)
  1081. type |= SCAN_TYPE_BREDR;
  1082. if (adapter.current_settings & MGMT_SETTING_LE)
  1083. type |= SCAN_TYPE_LE;
  1084. return type;
  1085. }
  1086. static bool start_discovery(uint8_t type)
  1087. {
  1088. struct mgmt_cp_start_discovery cp;
  1089. cp.type = get_supported_discovery_type() & type;
  1090. DBG("type=0x%x", cp.type);
  1091. if (cp.type == SCAN_TYPE_NONE)
  1092. return false;
  1093. if (mgmt_send(mgmt_if, MGMT_OP_START_DISCOVERY, adapter.index,
  1094. sizeof(cp), &cp, NULL, NULL, NULL) > 0)
  1095. return true;
  1096. error("Failed to start discovery");
  1097. return false;
  1098. }
  1099. /*
  1100. * Send discovery state change event only if it is related to dual type
  1101. * discovery session (triggered by start/cancel discovery commands)
  1102. */
  1103. static void check_discovery_state(uint8_t new_type, uint8_t old_type)
  1104. {
  1105. struct hal_ev_discovery_state_changed ev;
  1106. DBG("%u %u", new_type, old_type);
  1107. if (new_type == get_supported_discovery_type()) {
  1108. g_slist_foreach(bonded_devices, clear_device_found, NULL);
  1109. g_slist_foreach(cached_devices, clear_device_found, NULL);
  1110. ev.state = HAL_DISCOVERY_STATE_STARTED;
  1111. goto done;
  1112. }
  1113. if (old_type != get_supported_discovery_type())
  1114. return;
  1115. ev.state = HAL_DISCOVERY_STATE_STOPPED;
  1116. done:
  1117. ipc_send_notif(hal_ipc, HAL_SERVICE_ID_BLUETOOTH,
  1118. HAL_EV_DISCOVERY_STATE_CHANGED, sizeof(ev), &ev);
  1119. }
  1120. static void mgmt_discovering_event(uint16_t index, uint16_t length,
  1121. const void *param, void *user_data)
  1122. {
  1123. const struct mgmt_ev_discovering *ev = param;
  1124. uint8_t type;
  1125. if (length < sizeof(*ev)) {
  1126. error("Too small discovering event");
  1127. return;
  1128. }
  1129. DBG("type %u discovering %u", ev->type, ev->discovering);
  1130. if (!!adapter.cur_discovery_type == !!ev->discovering)
  1131. return;
  1132. type = ev->discovering ? ev->type : SCAN_TYPE_NONE;
  1133. check_discovery_state(type, adapter.cur_discovery_type);
  1134. adapter.cur_discovery_type = type;
  1135. if (ev->discovering) {
  1136. adapter.exp_discovery_type = adapter.le_scanning ?
  1137. SCAN_TYPE_LE : SCAN_TYPE_NONE;
  1138. return;
  1139. }
  1140. /* One shot notification about discovery stopped */
  1141. if (gatt_discovery_stopped_cb) {
  1142. gatt_discovery_stopped_cb();
  1143. gatt_discovery_stopped_cb = NULL;
  1144. }
  1145. type = adapter.exp_discovery_type;
  1146. adapter.exp_discovery_type = adapter.le_scanning ? SCAN_TYPE_LE :
  1147. SCAN_TYPE_NONE;
  1148. if (type != SCAN_TYPE_NONE)
  1149. start_discovery(type);
  1150. }
  1151. static void confirm_device_name_cb(uint8_t status, uint16_t length,
  1152. const void *param, void *user_data)
  1153. {
  1154. const struct mgmt_rp_confirm_name *rp = param;
  1155. struct device *dev;
  1156. DBG("Confirm name status: %s (0x%02x)", mgmt_errstr(status), status);
  1157. if (length < sizeof(*rp)) {
  1158. error("Wrong size of confirm name response");
  1159. return;
  1160. }
  1161. dev = find_device(&rp->addr.bdaddr);
  1162. if (!dev)
  1163. return;
  1164. dev->confirm_id = 0;
  1165. }
  1166. static unsigned int confirm_device_name(const bdaddr_t *addr, uint8_t addr_type,
  1167. bool resolve_name)
  1168. {
  1169. struct mgmt_cp_confirm_name cp;
  1170. unsigned int res;
  1171. memset(&cp, 0, sizeof(cp));
  1172. bacpy(&cp.addr.bdaddr, addr);
  1173. cp.addr.type = addr_type;
  1174. if (!resolve_name)
  1175. cp.name_known = 1;
  1176. res = mgmt_send(mgmt_if, MGMT_OP_CONFIRM_NAME, adapter.index,
  1177. sizeof(cp), &cp, confirm_device_name_cb,
  1178. NULL, NULL);
  1179. if (!res)
  1180. error("Failed to send confirm name request");
  1181. return res;
  1182. }
  1183. static int fill_hal_prop(void *buf, uint8_t type, uint16_t len,
  1184. const void *val)
  1185. {
  1186. struct hal_property *prop = buf;
  1187. prop->type = type;
  1188. prop->len = len;
  1189. if (len)
  1190. memcpy(prop->val, val, len);
  1191. return sizeof(*prop) + len;
  1192. }
  1193. static uint8_t get_device_android_type(struct device *dev)
  1194. {
  1195. if (dev->bredr && dev->le)
  1196. return HAL_TYPE_DUAL;
  1197. if (dev->le)
  1198. return HAL_TYPE_LE;
  1199. return HAL_TYPE_BREDR;
  1200. }
  1201. uint8_t bt_get_device_android_type(const bdaddr_t *addr)
  1202. {
  1203. struct device *dev;
  1204. dev = get_device(addr, BDADDR_BREDR);
  1205. return get_device_android_type(dev);
  1206. }
  1207. bool bt_is_device_le(const bdaddr_t *addr)
  1208. {
  1209. struct device *dev;
  1210. dev = find_device(addr);
  1211. if (!dev)
  1212. return false;
  1213. return dev->le;
  1214. }
  1215. const bdaddr_t *bt_get_id_addr(const bdaddr_t *addr, uint8_t *type)
  1216. {
  1217. struct device *dev;
  1218. dev = find_device(addr);
  1219. if (!dev)
  1220. return NULL;
  1221. if (type)
  1222. *type = dev->bdaddr_type;
  1223. return &dev->bdaddr;
  1224. }
  1225. const char *bt_get_adapter_name(void)
  1226. {
  1227. return adapter.name;
  1228. }
  1229. bool bt_device_is_bonded(const bdaddr_t *bdaddr)
  1230. {
  1231. if (g_slist_find_custom(bonded_devices, bdaddr, device_match))
  1232. return true;
  1233. return false;
  1234. }
  1235. bool bt_device_set_uuids(const bdaddr_t *addr, GSList *uuids)
  1236. {
  1237. struct device *dev;
  1238. dev = find_device(addr);
  1239. if (!dev)
  1240. return false;
  1241. set_device_uuids(dev, uuids);
  1242. return true;
  1243. }
  1244. bool bt_kernel_conn_control(void)
  1245. {
  1246. return kernel_conn_control;
  1247. }
  1248. bool bt_auto_connect_add(const bdaddr_t *addr)
  1249. {
  1250. struct mgmt_cp_add_device cp;
  1251. struct device *dev;
  1252. if (!kernel_conn_control)
  1253. return false;
  1254. dev = find_device(addr);
  1255. if (!dev)
  1256. return false;
  1257. if (dev->bdaddr_type == BDADDR_BREDR) {
  1258. DBG("auto-connection feature is not available for BR/EDR");
  1259. return false;
  1260. }
  1261. if (dev->in_white_list) {
  1262. DBG("Device already in white list");
  1263. return true;
  1264. }
  1265. memset(&cp, 0, sizeof(cp));
  1266. bacpy(&cp.addr.bdaddr, addr);
  1267. cp.addr.type = dev->bdaddr_type;
  1268. cp.action = 0x02;
  1269. if (mgmt_send(mgmt_if, MGMT_OP_ADD_DEVICE, adapter.index, sizeof(cp),
  1270. &cp, NULL, NULL, NULL) > 0) {
  1271. dev->in_white_list = true;
  1272. return true;
  1273. }
  1274. error("Failed to add device");
  1275. return false;
  1276. }
  1277. void bt_auto_connect_remove(const bdaddr_t *addr)
  1278. {
  1279. struct mgmt_cp_remove_device cp;
  1280. struct device *dev;
  1281. if (!kernel_conn_control)
  1282. return;
  1283. dev = find_device(addr);
  1284. if (!dev)
  1285. return;
  1286. if (dev->bdaddr_type == BDADDR_BREDR) {
  1287. DBG("auto-connection feature is not available for BR/EDR");
  1288. return;
  1289. }
  1290. if (!dev->in_white_list) {
  1291. DBG("Device already removed from white list");
  1292. return;
  1293. }
  1294. memset(&cp, 0, sizeof(cp));
  1295. bacpy(&cp.addr.bdaddr, addr);
  1296. cp.addr.type = dev->bdaddr_type;
  1297. if (mgmt_send(mgmt_if, MGMT_OP_REMOVE_DEVICE, adapter.index,
  1298. sizeof(cp), &cp, NULL, NULL, NULL) > 0) {
  1299. dev->in_white_list = false;
  1300. return;
  1301. }
  1302. error("Failed to remove device");
  1303. }
  1304. static bool match_by_value(const void *data, const void *user_data)
  1305. {
  1306. return data == user_data;
  1307. }
  1308. bool bt_unpaired_register(bt_unpaired_device_cb cb)
  1309. {
  1310. if (queue_find(unpaired_cb_list, match_by_value, cb))
  1311. return false;
  1312. return queue_push_head(unpaired_cb_list, cb);
  1313. }
  1314. void bt_unpaired_unregister(bt_unpaired_device_cb cb)
  1315. {
  1316. queue_remove(unpaired_cb_list, cb);
  1317. }
  1318. bool bt_paired_register(bt_paired_device_cb cb)
  1319. {
  1320. if (queue_find(paired_cb_list, match_by_value, cb))
  1321. return false;
  1322. return queue_push_head(paired_cb_list, cb);
  1323. }
  1324. void bt_paired_unregister(bt_paired_device_cb cb)
  1325. {
  1326. queue_remove(paired_cb_list, cb);
  1327. }
  1328. bool bt_is_pairing(const bdaddr_t *addr)
  1329. {
  1330. struct device *dev;
  1331. dev = find_device(addr);
  1332. if (!dev)
  1333. return false;
  1334. return dev->pairing;
  1335. }
  1336. static bool rssi_above_threshold(int old, int new)
  1337. {
  1338. /* only 8 dBm or more */
  1339. return abs(old - new) >= 8;
  1340. }
  1341. static void update_new_device(struct device *dev, int8_t rssi,
  1342. const struct eir_data *eir)
  1343. {
  1344. uint8_t buf[IPC_MTU];
  1345. struct hal_ev_device_found *ev = (void *) buf;
  1346. uint8_t android_bdaddr[6];
  1347. uint8_t android_type;
  1348. size_t size;
  1349. memset(buf, 0, sizeof(buf));
  1350. if (adapter.cur_discovery_type)
  1351. dev->found = true;
  1352. size = sizeof(*ev);
  1353. get_device_android_addr(dev, android_bdaddr);
  1354. size += fill_hal_prop(buf + size, HAL_PROP_DEVICE_ADDR,
  1355. sizeof(android_bdaddr), android_bdaddr);
  1356. ev->num_props++;
  1357. android_type = get_device_android_type(dev);
  1358. size += fill_hal_prop(buf + size, HAL_PROP_DEVICE_TYPE,
  1359. sizeof(android_type), &android_type);
  1360. ev->num_props++;
  1361. if (eir->class)
  1362. dev->class = eir->class;
  1363. if (dev->class) {
  1364. size += fill_hal_prop(buf + size, HAL_PROP_DEVICE_CLASS,
  1365. sizeof(dev->class), &dev->class);
  1366. ev->num_props++;
  1367. }
  1368. if (rssi && rssi_above_threshold(dev->rssi, rssi))
  1369. dev->rssi = rssi;
  1370. if (dev->rssi) {
  1371. size += fill_hal_prop(buf + size, HAL_PROP_DEVICE_RSSI,
  1372. sizeof(dev->rssi), &dev->rssi);
  1373. ev->num_props++;
  1374. }
  1375. if (eir->name && strlen(eir->name)) {
  1376. g_free(dev->name);
  1377. dev->name = g_strdup(eir->name);
  1378. }
  1379. if (dev->name) {
  1380. size += fill_hal_prop(buf + size, HAL_PROP_DEVICE_NAME,
  1381. strlen(dev->name), dev->name);
  1382. ev->num_props++;
  1383. /* when updating name also send stored friendly name */
  1384. if (dev->friendly_name) {
  1385. size += fill_hal_prop(buf + size,
  1386. HAL_PROP_DEVICE_FRIENDLY_NAME,
  1387. strlen(dev->friendly_name),
  1388. dev->friendly_name);
  1389. ev->num_props++;
  1390. }
  1391. }
  1392. ipc_send_notif(hal_ipc, HAL_SERVICE_ID_BLUETOOTH, HAL_EV_DEVICE_FOUND,
  1393. size, buf);
  1394. }
  1395. static void update_device(struct device *dev, int8_t rssi,
  1396. const struct eir_data *eir)
  1397. {
  1398. uint8_t buf[IPC_MTU];
  1399. struct hal_ev_remote_device_props *ev = (void *) buf;
  1400. uint8_t old_type, new_type;
  1401. size_t size;
  1402. memset(buf, 0, sizeof(buf));
  1403. size = sizeof(*ev);
  1404. ev->status = HAL_STATUS_SUCCESS;
  1405. get_device_android_addr(dev, ev->bdaddr);
  1406. old_type = get_device_android_type(dev);
  1407. new_type = get_device_android_type(dev);
  1408. if (old_type != new_type) {
  1409. size += fill_hal_prop(buf + size, HAL_PROP_DEVICE_TYPE,
  1410. sizeof(new_type), &new_type);
  1411. ev->num_props++;
  1412. }
  1413. if (eir->class && dev->class != eir->class) {
  1414. dev->class = eir->class;
  1415. size += fill_hal_prop(buf + size, HAL_PROP_DEVICE_CLASS,
  1416. sizeof(dev->class), &dev->class);
  1417. ev->num_props++;
  1418. }
  1419. if (rssi && rssi_above_threshold(dev->rssi, rssi)) {
  1420. dev->rssi = rssi;
  1421. size += fill_hal_prop(buf + size, HAL_PROP_DEVICE_RSSI,
  1422. sizeof(dev->rssi), &dev->rssi);
  1423. ev->num_props++;
  1424. }
  1425. if (eir->name && strlen(eir->name) && strcmp(dev->name, eir->name)) {
  1426. g_free(dev->name);
  1427. dev->name = g_strdup(eir->name);
  1428. size += fill_hal_prop(buf + size, HAL_PROP_DEVICE_NAME,
  1429. strlen(dev->name), dev->name);
  1430. ev->num_props++;
  1431. /* when updating name also send stored friendly name */
  1432. if (dev->friendly_name) {
  1433. size += fill_hal_prop(buf + size,
  1434. HAL_PROP_DEVICE_FRIENDLY_NAME,
  1435. strlen(dev->friendly_name),
  1436. dev->friendly_name);
  1437. ev->num_props++;
  1438. }
  1439. }
  1440. if (ev->num_props)
  1441. ipc_send_notif(hal_ipc, HAL_SERVICE_ID_BLUETOOTH,
  1442. HAL_EV_REMOTE_DEVICE_PROPS, size, buf);
  1443. }
  1444. static bool is_new_device(const struct device *dev, unsigned int flags,
  1445. uint8_t bdaddr_type)
  1446. {
  1447. if (dev->found)
  1448. return false;
  1449. if (dev->bredr_paired || dev->le_paired)
  1450. return false;
  1451. if (bdaddr_type != BDADDR_BREDR &&
  1452. !(flags & (EIR_LIM_DISC | EIR_GEN_DISC)))
  1453. return false;
  1454. return true;
  1455. }
  1456. static void update_found_device(const bdaddr_t *bdaddr, uint8_t bdaddr_type,
  1457. int8_t rssi, bool confirm,
  1458. bool connectable,
  1459. const uint8_t *data, uint8_t data_len)
  1460. {
  1461. struct eir_data eir;
  1462. struct device *dev;
  1463. memset(&eir, 0, sizeof(eir));
  1464. eir_parse(&eir, data, data_len);
  1465. dev = get_device(bdaddr, bdaddr_type);
  1466. if (bdaddr_type == BDADDR_BREDR) {
  1467. dev->bredr = true;
  1468. dev->bredr_seen = time(NULL);
  1469. } else {
  1470. dev->le = true;
  1471. dev->bdaddr_type = bdaddr_type;
  1472. dev->le_seen = time(NULL);
  1473. }
  1474. /*
  1475. * Device found event needs to be send also for known device if this is
  1476. * new discovery session. Otherwise framework will ignore it.
  1477. */
  1478. if (is_new_device(dev, eir.flags, bdaddr_type))
  1479. update_new_device(dev, rssi, &eir);
  1480. else
  1481. update_device(dev, rssi, &eir);
  1482. eir_data_free(&eir);
  1483. /* Notify Gatt if its registered for LE events */
  1484. if (bdaddr_type != BDADDR_BREDR && gatt_device_found_cb) {
  1485. const bdaddr_t *addr;
  1486. /*
  1487. * If RPA is set it means that IRK was received and ID address
  1488. * is being used. Android Framework is still using old RPA and
  1489. * it needs to be used also in GATT notifications. Also GATT
  1490. * HAL implementation is using RPA for devices matching.
  1491. */
  1492. if (bacmp(&dev->rpa, BDADDR_ANY))
  1493. addr = &dev->rpa;
  1494. else
  1495. addr = &dev->bdaddr;
  1496. gatt_device_found_cb(addr, rssi, data_len, data, connectable,
  1497. dev->le_bonded);
  1498. }
  1499. if (!dev->bredr_paired && !dev->le_paired)
  1500. cache_device(dev);
  1501. if (confirm) {
  1502. char addr[18];
  1503. bool resolve_name = true;
  1504. ba2str(bdaddr, addr);
  1505. /*
  1506. * Don't need to confirm name if we have it already in cache
  1507. * Just check if device name is different than bdaddr
  1508. */
  1509. if (g_strcmp0(dev->name, addr)) {
  1510. get_device_name(dev);
  1511. resolve_name = false;
  1512. }
  1513. info("Device %s needs name confirmation (resolve_name=%d)",
  1514. addr, resolve_name);
  1515. dev->confirm_id = confirm_device_name(bdaddr, bdaddr_type,
  1516. resolve_name);
  1517. }
  1518. }
  1519. static void mgmt_device_found_event(uint16_t index, uint16_t length,
  1520. const void *param, void *user_data)
  1521. {
  1522. const struct mgmt_ev_device_found *ev = param;
  1523. const uint8_t *eir;
  1524. uint16_t eir_len;
  1525. uint32_t flags;
  1526. bool confirm_name;
  1527. bool connectable;
  1528. char addr[18];
  1529. if (length < sizeof(*ev)) {
  1530. error("Too short device found event (%u bytes)", length);
  1531. return;
  1532. }
  1533. eir_len = le16_to_cpu(ev->eir_len);
  1534. if (length != sizeof(*ev) + eir_len) {
  1535. error("Device found event size mismatch (%u != %zu)",
  1536. length, sizeof(*ev) + eir_len);
  1537. return;
  1538. }
  1539. if (eir_len == 0)
  1540. eir = NULL;
  1541. else
  1542. eir = ev->eir;
  1543. flags = le32_to_cpu(ev->flags);
  1544. ba2str(&ev->addr.bdaddr, addr);
  1545. DBG("hci%u addr %s, rssi %d flags 0x%04x eir_len %u",
  1546. index, addr, ev->rssi, flags, eir_len);
  1547. confirm_name = flags & MGMT_DEV_FOUND_CONFIRM_NAME;
  1548. connectable = !(flags & MGMT_DEV_FOUND_NOT_CONNECTABLE);
  1549. update_found_device(&ev->addr.bdaddr, ev->addr.type, ev->rssi,
  1550. confirm_name, connectable, eir, eir_len);
  1551. }
  1552. static void mgmt_device_connected_event(uint16_t index, uint16_t length,
  1553. const void *param, void *user_data)
  1554. {
  1555. const struct mgmt_ev_device_connected *ev = param;
  1556. struct hal_ev_acl_state_changed hal_ev;
  1557. struct device *dev;
  1558. char addr[18];
  1559. if (length < sizeof(*ev)) {
  1560. error("Too short device connected event (%u bytes)", length);
  1561. return;
  1562. }
  1563. ba2str(&ev->addr.bdaddr, addr);
  1564. DBG("%s type %u", addr, ev->addr.type);
  1565. update_found_device(&ev->addr.bdaddr, ev->addr.type, 0, false, false,
  1566. &ev->eir[0], le16_to_cpu(ev->eir_len));
  1567. hal_ev.status = HAL_STATUS_SUCCESS;
  1568. hal_ev.state = HAL_ACL_STATE_CONNECTED;
  1569. dev = find_device(&ev->addr.bdaddr);
  1570. if (!dev)
  1571. return;
  1572. dev->connected = true;
  1573. get_device_android_addr(dev, hal_ev.bdaddr);
  1574. ipc_send_notif(hal_ipc, HAL_SERVICE_ID_BLUETOOTH,
  1575. HAL_EV_ACL_STATE_CHANGED, sizeof(hal_ev), &hal_ev);
  1576. }
  1577. static bool device_is_paired(struct device *dev, uint8_t addr_type)
  1578. {
  1579. if (addr_type == BDADDR_BREDR)
  1580. return dev->bredr_paired;
  1581. return dev->le_paired;
  1582. }
  1583. static bool device_is_bonded(struct device *dev)
  1584. {
  1585. return dev->bredr_bonded || dev->le_bonded;
  1586. }
  1587. static void mgmt_device_disconnected_event(uint16_t index, uint16_t length,
  1588. const void *param,
  1589. void *user_data)
  1590. {
  1591. const struct mgmt_ev_device_disconnected *ev = param;
  1592. struct hal_ev_acl_state_changed hal_ev;
  1593. struct device *dev;
  1594. uint8_t type = ev->addr.type;
  1595. if (length < sizeof(*ev)) {
  1596. error("Too short device disconnected event (%u bytes)", length);
  1597. return;
  1598. }
  1599. dev = find_device(&ev->addr.bdaddr);
  1600. if (!dev)
  1601. return;
  1602. hal_ev.status = HAL_STATUS_SUCCESS;
  1603. hal_ev.state = HAL_ACL_STATE_DISCONNECTED;
  1604. get_device_android_addr(dev, hal_ev.bdaddr);
  1605. ipc_send_notif(hal_ipc, HAL_SERVICE_ID_BLUETOOTH,
  1606. HAL_EV_ACL_STATE_CHANGED, sizeof(hal_ev), &hal_ev);
  1607. if (device_is_paired(dev, type) && !device_is_bonded(dev))
  1608. update_device_state(dev, type, HAL_STATUS_SUCCESS, false,
  1609. false, false);
  1610. dev->connected = false;
  1611. }
  1612. static uint8_t status_mgmt2hal(uint8_t mgmt)
  1613. {
  1614. switch (mgmt) {
  1615. case MGMT_STATUS_SUCCESS:
  1616. return HAL_STATUS_SUCCESS;
  1617. case MGMT_STATUS_NO_RESOURCES:
  1618. return HAL_STATUS_NOMEM;
  1619. case MGMT_STATUS_BUSY:
  1620. return HAL_STATUS_BUSY;
  1621. case MGMT_STATUS_NOT_SUPPORTED:
  1622. return HAL_STATUS_UNSUPPORTED;
  1623. case MGMT_STATUS_INVALID_PARAMS:
  1624. return HAL_STATUS_INVALID;
  1625. case MGMT_STATUS_AUTH_FAILED:
  1626. return HAL_STATUS_AUTH_FAILURE;
  1627. case MGMT_STATUS_NOT_CONNECTED:
  1628. return HAL_STATUS_REMOTE_DEVICE_DOWN;
  1629. default:
  1630. return HAL_STATUS_FAILED;
  1631. }
  1632. }
  1633. static void mgmt_connect_failed_event(uint16_t index, uint16_t length,
  1634. const void *param, void *user_data)
  1635. {
  1636. const struct mgmt_ev_connect_failed *ev = param;
  1637. struct device *dev;
  1638. if (length < sizeof(*ev)) {
  1639. error("Too short connect failed event (%u bytes)", length);
  1640. return;
  1641. }
  1642. DBG("");
  1643. dev = find_device(&ev->addr.bdaddr);
  1644. if (!dev)
  1645. return;
  1646. /*
  1647. * In case security mode 3 pairing we will get connect failed event
  1648. * in case e.g wrong PIN code entered. Let's check if device is
  1649. * bonding, if so update bond state
  1650. */
  1651. if (!dev->pairing)
  1652. return;
  1653. update_device_state(dev, ev->addr.type, status_mgmt2hal(ev->status),
  1654. false, false, false);
  1655. }
  1656. static void mgmt_auth_failed_event(uint16_t index, uint16_t length,
  1657. const void *param, void *user_data)
  1658. {
  1659. const struct mgmt_ev_auth_failed *ev = param;
  1660. struct device *dev;
  1661. if (length < sizeof(*ev)) {
  1662. error("Too small auth failed mgmt event (%u bytes)", length);
  1663. return;
  1664. }
  1665. DBG("");
  1666. dev = find_device(&ev->addr.bdaddr);
  1667. if (!dev)
  1668. return;
  1669. if (!dev->pairing)
  1670. return;
  1671. update_device_state(dev, ev->addr.type, status_mgmt2hal(ev->status),
  1672. false, false, false);
  1673. }
  1674. static void mgmt_device_unpaired_event(uint16_t index, uint16_t length,
  1675. const void *param, void *user_data)
  1676. {
  1677. const struct mgmt_ev_device_unpaired *ev = param;
  1678. struct device *dev;
  1679. if (length < sizeof(*ev)) {
  1680. error("Too small device unpaired event (%u bytes)", length);
  1681. return;
  1682. }
  1683. DBG("");
  1684. /* TODO should device be disconnected ? */
  1685. dev = find_device(&ev->addr.bdaddr);
  1686. if (!dev)
  1687. return;
  1688. update_device_state(dev, ev->addr.type, HAL_STATUS_SUCCESS, false,
  1689. false, false);
  1690. /* Unpaired device is removed from the white list */
  1691. dev->in_white_list = false;
  1692. }
  1693. static void store_ltk(const bdaddr_t *dst, uint8_t bdaddr_type, bool master,
  1694. const uint8_t *key, uint8_t key_type, uint8_t enc_size,
  1695. uint16_t ediv, uint64_t rand)
  1696. {
  1697. const char *key_s, *keytype_s, *encsize_s, *ediv_s, *rand_s;
  1698. GKeyFile *key_file;
  1699. char key_str[33];
  1700. gsize length = 0;
  1701. char addr[18];
  1702. char *data;
  1703. int i;
  1704. key_file = g_key_file_new();
  1705. if (!g_key_file_load_from_file(key_file, DEVICES_FILE, 0, NULL)) {
  1706. g_key_file_free(key_file);
  1707. return;
  1708. }
  1709. ba2str(dst, addr);
  1710. key_s = master ? "LongTermKey" : "SlaveLongTermKey";
  1711. keytype_s = master ? "LongTermKeyType" : "SlaveLongTermKeyType";
  1712. encsize_s = master ? "LongTermKeyEncSize" : "SlaveLongTermKeyEncSize";
  1713. ediv_s = master ? "LongTermKeyEDiv" : "SlaveLongTermKeyEDiv";
  1714. rand_s = master ? "LongTermKeyRand" : "SlaveLongTermKeyRand";
  1715. for (i = 0; i < 16; i++)
  1716. sprintf(key_str + (i * 2), "%2.2X", key[i]);
  1717. g_key_file_set_string(key_file, addr, key_s, key_str);
  1718. g_key_file_set_integer(key_file, addr, keytype_s, key_type);
  1719. g_key_file_set_integer(key_file, addr, encsize_s, enc_size);
  1720. g_key_file_set_integer(key_file, addr, ediv_s, ediv);
  1721. g_key_file_set_uint64(key_file, addr, rand_s, rand);
  1722. data = g_key_file_to_data(key_file, &length, NULL);
  1723. g_file_set_contents(DEVICES_FILE, data, length, NULL);
  1724. g_free(data);
  1725. g_key_file_free(key_file);
  1726. }
  1727. static void new_long_term_key_event(uint16_t index, uint16_t length,
  1728. const void *param, void *user_data)
  1729. {
  1730. const struct mgmt_ev_new_long_term_key *ev = param;
  1731. struct device *dev;
  1732. char dst[18];
  1733. if (length < sizeof(*ev)) {
  1734. error("Too small long term key event (%u bytes)", length);
  1735. return;
  1736. }
  1737. ba2str(&ev->key.addr.bdaddr, dst);
  1738. DBG("new LTK for %s type %u enc_size %u store_hint %u",
  1739. dst, ev->key.type, ev->key.enc_size, ev->store_hint);
  1740. dev = find_device(&ev->key.addr.bdaddr);
  1741. if (!dev)
  1742. return;
  1743. update_device_state(dev, ev->key.addr.type, HAL_STATUS_SUCCESS, false,
  1744. true, !!ev->store_hint);
  1745. if (ev->store_hint) {
  1746. const struct mgmt_ltk_info *key = &ev->key;
  1747. uint16_t ediv;
  1748. uint64_t rand;
  1749. ediv = le16_to_cpu(key->ediv);
  1750. rand = le64_to_cpu(key->rand);
  1751. store_ltk(&key->addr.bdaddr, key->addr.type, key->central,
  1752. key->val, key->type, key->enc_size, ediv, rand);
  1753. }
  1754. /* TODO browse services here? */
  1755. }
  1756. static void store_csrk(struct device *dev)
  1757. {
  1758. GKeyFile *key_file;
  1759. char key_str[33];
  1760. char addr[18];
  1761. int i;
  1762. gsize length = 0;
  1763. char *data;
  1764. ba2str(&dev->bdaddr, addr);
  1765. key_file = g_key_file_new();
  1766. if (!g_key_file_load_from_file(key_file, DEVICES_FILE, 0, NULL)) {
  1767. g_key_file_free(key_file);
  1768. return;
  1769. }
  1770. if (dev->valid_local_csrk) {
  1771. for (i = 0; i < 16; i++)
  1772. sprintf(key_str + (i * 2), "%2.2X",
  1773. dev->local_csrk[i]);
  1774. g_key_file_set_string(key_file, addr, "LocalCSRK", key_str);
  1775. g_key_file_set_boolean(key_file, addr, "LocalCSRKAuthenticated",
  1776. dev->local_csrk_auth);
  1777. }
  1778. if (dev->valid_remote_csrk) {
  1779. for (i = 0; i < 16; i++)
  1780. sprintf(key_str + (i * 2), "%2.2X",
  1781. dev->remote_csrk[i]);
  1782. g_key_file_set_string(key_file, addr, "RemoteCSRK", key_str);
  1783. g_key_file_set_boolean(key_file, addr,
  1784. "RemoteCSRKAuthenticated",
  1785. dev->remote_csrk_auth);
  1786. }
  1787. data = g_key_file_to_data(key_file, &length, NULL);
  1788. g_file_set_contents(DEVICES_FILE, data, length, NULL);
  1789. g_free(data);
  1790. g_key_file_free(key_file);
  1791. }
  1792. static void new_csrk_callback(uint16_t index, uint16_t length,
  1793. const void *param, void *user_data)
  1794. {
  1795. const struct mgmt_ev_new_csrk *ev = param;
  1796. struct device *dev;
  1797. char dst[18];
  1798. if (length < sizeof(*ev)) {
  1799. error("Too small csrk event (%u bytes)", length);
  1800. return;
  1801. }
  1802. ba2str(&ev->key.addr.bdaddr, dst);
  1803. dev = get_device(&ev->key.addr.bdaddr, ev->key.addr.type);
  1804. if (!dev)
  1805. return;
  1806. switch (ev->key.type) {
  1807. case 0x00:
  1808. case 0x02:
  1809. memcpy(dev->local_csrk, ev->key.val, 16);
  1810. dev->local_sign_cnt = 0;
  1811. dev->valid_local_csrk = true;
  1812. dev->local_csrk_auth = ev->key.type == 0x02;
  1813. break;
  1814. case 0x01:
  1815. case 0x03:
  1816. memcpy(dev->remote_csrk, ev->key.val, 16);
  1817. dev->remote_sign_cnt = 0;
  1818. dev->valid_remote_csrk = true;
  1819. dev->remote_csrk_auth = ev->key.type == 0x03;
  1820. break;
  1821. default:
  1822. error("Unknown CSRK key type 02%02x", ev->key.type);
  1823. return;
  1824. }
  1825. update_device_state(dev, ev->key.addr.type, HAL_STATUS_SUCCESS, false,
  1826. true, !!ev->store_hint);
  1827. if (ev->store_hint)
  1828. store_csrk(dev);
  1829. }
  1830. static void store_irk(struct device *dev, const uint8_t *val)
  1831. {
  1832. GKeyFile *key_file;
  1833. char key_str[33];
  1834. char addr[18];
  1835. int i;
  1836. gsize length = 0;
  1837. char *data;
  1838. ba2str(&dev->bdaddr, addr);
  1839. key_file = g_key_file_new();
  1840. if (!g_key_file_load_from_file(key_file, DEVICES_FILE, 0, NULL)) {
  1841. g_key_file_free(key_file);
  1842. return;
  1843. }
  1844. for (i = 0; i < 16; i++)
  1845. sprintf(key_str + (i * 2), "%2.2X", val[i]);
  1846. g_key_file_set_string(key_file, addr, "IdentityResolvingKey", key_str);
  1847. data = g_key_file_to_data(key_file, &length, NULL);
  1848. g_file_set_contents(DEVICES_FILE, data, length, NULL);
  1849. g_free(data);
  1850. g_key_file_free(key_file);
  1851. }
  1852. static void new_irk_callback(uint16_t index, uint16_t length,
  1853. const void *param, void *user_data)
  1854. {
  1855. const struct mgmt_ev_new_irk *ev = param;
  1856. const struct mgmt_addr_info *addr = &ev->key.addr;
  1857. struct device *dev;
  1858. char dst[18], rpa[18];
  1859. if (length < sizeof(*ev)) {
  1860. error("To small New Irk Event (%u bytes)", length);
  1861. return;
  1862. }
  1863. ba2str(&ev->key.addr.bdaddr, dst);
  1864. ba2str(&ev->rpa, rpa);
  1865. DBG("new IRK for %s, RPA %s", dst, rpa);
  1866. if (!bacmp(&ev->rpa, BDADDR_ANY)) {
  1867. dev = get_device(&addr->bdaddr, addr->type);
  1868. if (!dev)
  1869. return;
  1870. } else {
  1871. dev = find_device(&addr->bdaddr);
  1872. if (dev && dev->bredr_paired) {
  1873. bacpy(&dev->rpa, &addr->bdaddr);
  1874. dev->rpa_type = addr->type;
  1875. /* TODO merge properties ie. UUIDs */
  1876. } else {
  1877. dev = find_device(&ev->rpa);
  1878. if (!dev)
  1879. return;
  1880. /* don't leave garbage in cache file */
  1881. remove_device_info(dev, CACHE_FILE);
  1882. /*
  1883. * RPA resolution is transparent for Android Framework
  1884. * ie. device is still access by RPA so it need to be
  1885. * keep. After bluetoothd restart device is advertised
  1886. * to Android with IDA and RPA is not set.
  1887. */
  1888. bacpy(&dev->rpa, &dev->bdaddr);
  1889. dev->rpa_type = dev->bdaddr_type;
  1890. bacpy(&dev->bdaddr, &addr->bdaddr);
  1891. dev->bdaddr_type = addr->type;
  1892. }
  1893. }
  1894. update_device_state(dev, ev->key.addr.type, HAL_STATUS_SUCCESS, false,
  1895. true, !!ev->store_hint);
  1896. if (ev->store_hint)
  1897. store_irk(dev, ev->key.val);
  1898. }
  1899. static void register_mgmt_handlers(void)
  1900. {
  1901. mgmt_register(mgmt_if, MGMT_EV_NEW_SETTINGS, adapter.index,
  1902. new_settings_callback, NULL, NULL);
  1903. mgmt_register(mgmt_if, MGMT_EV_CLASS_OF_DEV_CHANGED, adapter.index,
  1904. mgmt_dev_class_changed_event, NULL, NULL);
  1905. mgmt_register(mgmt_if, MGMT_EV_LOCAL_NAME_CHANGED, adapter.index,
  1906. mgmt_local_name_changed_event, NULL, NULL);
  1907. mgmt_register(mgmt_if, MGMT_EV_NEW_LINK_KEY, adapter.index,
  1908. new_link_key_callback, NULL, NULL);
  1909. mgmt_register(mgmt_if, MGMT_EV_PIN_CODE_REQUEST, adapter.index,
  1910. pin_code_request_callback, NULL, NULL);
  1911. mgmt_register(mgmt_if, MGMT_EV_USER_CONFIRM_REQUEST, adapter.index,
  1912. user_confirm_request_callback, NULL, NULL);
  1913. mgmt_register(mgmt_if, MGMT_EV_USER_PASSKEY_REQUEST, adapter.index,
  1914. user_passkey_request_callback, NULL, NULL);
  1915. mgmt_register(mgmt_if, MGMT_EV_PASSKEY_NOTIFY, adapter.index,
  1916. user_passkey_notify_callback, NULL, NULL);
  1917. mgmt_register(mgmt_if, MGMT_EV_DISCOVERING, adapter.index,
  1918. mgmt_discovering_event, NULL, NULL);
  1919. mgmt_register(mgmt_if, MGMT_EV_DEVICE_FOUND, adapter.index,
  1920. mgmt_device_found_event, NULL, NULL);
  1921. mgmt_register(mgmt_if, MGMT_EV_DEVICE_CONNECTED, adapter.index,
  1922. mgmt_device_connected_event, NULL, NULL);
  1923. mgmt_register(mgmt_if, MGMT_EV_DEVICE_DISCONNECTED, adapter.index,
  1924. mgmt_device_disconnected_event, NULL, NULL);
  1925. mgmt_register(mgmt_if, MGMT_EV_CONNECT_FAILED, adapter.index,
  1926. mgmt_connect_failed_event, NULL, NULL);
  1927. mgmt_register(mgmt_if, MGMT_EV_AUTH_FAILED, adapter.index,
  1928. mgmt_auth_failed_event, NULL, NULL);
  1929. mgmt_register(mgmt_if, MGMT_EV_DEVICE_UNPAIRED, adapter.index,
  1930. mgmt_device_unpaired_event, NULL, NULL);
  1931. mgmt_register(mgmt_if, MGMT_EV_NEW_LONG_TERM_KEY, adapter.index,
  1932. new_long_term_key_event, NULL, NULL);
  1933. mgmt_register(mgmt_if, MGMT_EV_NEW_CSRK, adapter.index,
  1934. new_csrk_callback, NULL, NULL);
  1935. mgmt_register(mgmt_if, MGMT_EV_NEW_IRK, adapter.index, new_irk_callback,
  1936. NULL, NULL);
  1937. }
  1938. static void load_link_keys_complete(uint8_t status, uint16_t length,
  1939. const void *param, void *user_data)
  1940. {
  1941. bt_bluetooth_ready cb = user_data;
  1942. int err;
  1943. if (status) {
  1944. error("Failed to load link keys for index %u: %s (0x%02x)",
  1945. adapter.index, mgmt_errstr(status), status);
  1946. err = -EIO;
  1947. goto failed;
  1948. }
  1949. DBG("status %u", status);
  1950. cb(0, &adapter.bdaddr);
  1951. return;
  1952. failed:
  1953. cb(err, NULL);
  1954. }
  1955. static void load_link_keys(GSList *keys, bt_bluetooth_ready cb)
  1956. {
  1957. struct mgmt_cp_load_link_keys *cp;
  1958. struct mgmt_link_key_info *key;
  1959. size_t key_count, cp_size;
  1960. unsigned int id;
  1961. key_count = g_slist_length(keys);
  1962. DBG("keys %zu ", key_count);
  1963. cp_size = sizeof(*cp) + (key_count * sizeof(*key));
  1964. cp = g_malloc0(cp_size);
  1965. /*
  1966. * Even if the list of stored keys is empty, it is important to
  1967. * load an empty list into the kernel. That way it is ensured
  1968. * that no old keys from a previous daemon are present.
  1969. */
  1970. cp->key_count = cpu_to_le16(key_count);
  1971. for (key = cp->keys; keys != NULL; keys = g_slist_next(keys), key++)
  1972. memcpy(key, keys->data, sizeof(*key));
  1973. id = mgmt_send(mgmt_if, MGMT_OP_LOAD_LINK_KEYS, adapter.index,
  1974. cp_size, cp, load_link_keys_complete, cb, NULL);
  1975. g_free(cp);
  1976. if (id == 0) {
  1977. error("Failed to load link keys");
  1978. cb(-EIO, NULL);
  1979. }
  1980. }
  1981. static void load_ltk_complete(uint8_t status, uint16_t length,
  1982. const void *param, void *user_data)
  1983. {
  1984. if (status == MGMT_STATUS_SUCCESS)
  1985. return;
  1986. info("Failed to load LTKs: %s (0x%02x)", mgmt_errstr(status), status);
  1987. }
  1988. static void load_ltks(GSList *ltks)
  1989. {
  1990. struct mgmt_cp_load_long_term_keys *cp;
  1991. struct mgmt_ltk_info *ltk;
  1992. size_t ltk_count, cp_size;
  1993. GSList *l;
  1994. ltk_count = g_slist_length(ltks);
  1995. DBG("ltks %zu", ltk_count);
  1996. cp_size = sizeof(*cp) + (ltk_count * sizeof(*ltk));
  1997. cp = g_malloc0(cp_size);
  1998. /*
  1999. * Even if the list of stored keys is empty, it is important to load
  2000. * an empty list into the kernel. That way it is ensured that no old
  2001. * keys from a previous daemon are present.
  2002. */
  2003. cp->key_count = cpu_to_le16(ltk_count);
  2004. for (l = ltks, ltk = cp->keys; l != NULL; l = g_slist_next(l), ltk++)
  2005. memcpy(ltk, l->data, sizeof(*ltk));
  2006. if (mgmt_send(mgmt_if, MGMT_OP_LOAD_LONG_TERM_KEYS, adapter.index,
  2007. cp_size, cp, load_ltk_complete, NULL, NULL) == 0)
  2008. error("Failed to load LTKs");
  2009. g_free(cp);
  2010. }
  2011. static void load_irk_complete(uint8_t status, uint16_t length,
  2012. const void *param, void *user_data)
  2013. {
  2014. if (status == MGMT_STATUS_SUCCESS)
  2015. return;
  2016. info("Failed to load IRKs: %s (0x%02x)", mgmt_errstr(status), status);
  2017. }
  2018. static void load_irks(GSList *irks)
  2019. {
  2020. struct mgmt_cp_load_irks *cp;
  2021. struct mgmt_irk_info *irk;
  2022. size_t irk_count, cp_size;
  2023. GSList *l;
  2024. irk_count = g_slist_length(irks);
  2025. DBG("irks %zu", irk_count);
  2026. cp_size = sizeof(*cp) + (irk_count * sizeof(*irk));
  2027. cp = g_malloc0(cp_size);
  2028. cp->irk_count = cpu_to_le16(irk_count);
  2029. for (l = irks, irk = cp->irks; l != NULL; l = g_slist_next(l), irk++)
  2030. memcpy(irk, irks->data, sizeof(*irk));
  2031. if (mgmt_send(mgmt_if, MGMT_OP_LOAD_IRKS, adapter.index, cp_size, cp,
  2032. load_irk_complete, NULL, NULL) == 0)
  2033. error("Failed to load IRKs");
  2034. g_free(cp);
  2035. }
  2036. static uint8_t get_adapter_uuids(void)
  2037. {
  2038. struct hal_ev_adapter_props_changed *ev;
  2039. GSList *list = adapter.uuids;
  2040. size_t uuid_count = g_slist_length(list);
  2041. size_t len = uuid_count * sizeof(uint128_t);
  2042. uint8_t buf[BASELEN_PROP_CHANGED + len];
  2043. uint8_t *p;
  2044. memset(buf, 0, sizeof(buf));
  2045. ev = (void *) buf;
  2046. ev->num_props = 1;
  2047. ev->status = HAL_STATUS_SUCCESS;
  2048. ev->props[0].type = HAL_PROP_ADAPTER_UUIDS;
  2049. ev->props[0].len = len;
  2050. p = ev->props->val;
  2051. for (; list; list = g_slist_next(list)) {
  2052. uuid_t *uuid = list->data;
  2053. memcpy(p, &uuid->value.uuid128, sizeof(uint128_t));
  2054. p += sizeof(uint128_t);
  2055. }
  2056. ipc_send_notif(hal_ipc, HAL_SERVICE_ID_BLUETOOTH,
  2057. HAL_EV_ADAPTER_PROPS_CHANGED, sizeof(buf), ev);
  2058. return HAL_STATUS_SUCCESS;
  2059. }
  2060. static void remove_uuid_complete(uint8_t status, uint16_t length,
  2061. const void *param, void *user_data)
  2062. {
  2063. if (status != MGMT_STATUS_SUCCESS) {
  2064. error("Failed to remove UUID: %s (0x%02x)", mgmt_errstr(status),
  2065. status);
  2066. return;
  2067. }
  2068. mgmt_dev_class_changed_event(adapter.index, length, param, NULL);
  2069. get_adapter_uuids();
  2070. }
  2071. static void remove_uuid(uuid_t *uuid)
  2072. {
  2073. uint128_t uint128;
  2074. struct mgmt_cp_remove_uuid cp;
  2075. ntoh128((uint128_t *) uuid->value.uuid128.data, &uint128);
  2076. htob128(&uint128, (uint128_t *) cp.uuid);
  2077. mgmt_send(mgmt_if, MGMT_OP_REMOVE_UUID, adapter.index, sizeof(cp), &cp,
  2078. remove_uuid_complete, NULL, NULL);
  2079. }
  2080. static void add_uuid_complete(uint8_t status, uint16_t length,
  2081. const void *param, void *user_data)
  2082. {
  2083. if (status != MGMT_STATUS_SUCCESS) {
  2084. error("Failed to add UUID: %s (0x%02x)", mgmt_errstr(status),
  2085. status);
  2086. return;
  2087. }
  2088. mgmt_dev_class_changed_event(adapter.index, length, param, NULL);
  2089. get_adapter_uuids();
  2090. }
  2091. static void add_uuid(uint8_t svc_hint, uuid_t *uuid)
  2092. {
  2093. uint128_t uint128;
  2094. struct mgmt_cp_add_uuid cp;
  2095. ntoh128((uint128_t *) uuid->value.uuid128.data, &uint128);
  2096. htob128(&uint128, (uint128_t *) cp.uuid);
  2097. cp.svc_hint = svc_hint;
  2098. mgmt_send(mgmt_if, MGMT_OP_ADD_UUID, adapter.index, sizeof(cp), &cp,
  2099. add_uuid_complete, NULL, NULL);
  2100. }
  2101. int bt_adapter_add_record(sdp_record_t *rec, uint8_t svc_hint)
  2102. {
  2103. uuid_t *uuid;
  2104. uuid = sdp_uuid_to_uuid128(&rec->svclass);
  2105. if (g_slist_find_custom(adapter.uuids, uuid, sdp_uuid_cmp)) {
  2106. char uuid_str[32];
  2107. sdp_uuid2strn(uuid, uuid_str, sizeof(uuid_str));
  2108. DBG("UUID %s already added", uuid_str);
  2109. bt_free(uuid);
  2110. return -EALREADY;
  2111. }
  2112. adapter.uuids = g_slist_prepend(adapter.uuids, uuid);
  2113. add_uuid(svc_hint, uuid);
  2114. return add_record_to_server(&adapter.bdaddr, rec);
  2115. }
  2116. void bt_adapter_remove_record(uint32_t handle)
  2117. {
  2118. sdp_record_t *rec;
  2119. GSList *uuid_found;
  2120. rec = sdp_record_find(handle);
  2121. if (!rec)
  2122. return;
  2123. uuid_found = g_slist_find_custom(adapter.uuids, &rec->svclass,
  2124. sdp_uuid_cmp);
  2125. if (uuid_found) {
  2126. uuid_t *uuid = uuid_found->data;
  2127. remove_uuid(uuid);
  2128. adapter.uuids = g_slist_remove(adapter.uuids, uuid);
  2129. free(uuid);
  2130. }
  2131. remove_record_from_server(handle);
  2132. }
  2133. static void set_mode_complete(uint8_t status, uint16_t length,
  2134. const void *param, void *user_data)
  2135. {
  2136. if (status != MGMT_STATUS_SUCCESS) {
  2137. error("Failed to set mode: %s (0x%02x)",
  2138. mgmt_errstr(status), status);
  2139. return;
  2140. }
  2141. /*
  2142. * The parameters are identical and also the task that is
  2143. * required in both cases. So it is safe to just call the
  2144. * event handling functions here.
  2145. */
  2146. new_settings_callback(adapter.index, length, param, NULL);
  2147. }
  2148. static bool set_mode(uint16_t opcode, uint8_t mode)
  2149. {
  2150. struct mgmt_mode cp;
  2151. memset(&cp, 0, sizeof(cp));
  2152. cp.val = mode;
  2153. DBG("opcode=0x%x mode=0x%x", opcode, mode);
  2154. if (mgmt_send(mgmt_if, opcode, adapter.index, sizeof(cp), &cp,
  2155. set_mode_complete, NULL, NULL) > 0)
  2156. return true;
  2157. error("Failed to set mode");
  2158. return false;
  2159. }
  2160. static void set_io_capability(void)
  2161. {
  2162. struct mgmt_cp_set_io_capability cp;
  2163. memset(&cp, 0, sizeof(cp));
  2164. cp.io_capability = DEFAULT_IO_CAPABILITY;
  2165. if (mgmt_send(mgmt_if, MGMT_OP_SET_IO_CAPABILITY, adapter.index,
  2166. sizeof(cp), &cp, NULL, NULL, NULL) == 0)
  2167. error("Failed to set IO capability");
  2168. }
  2169. static void set_device_id(void)
  2170. {
  2171. struct mgmt_cp_set_device_id cp;
  2172. memset(&cp, 0, sizeof(cp));
  2173. cp.source = cpu_to_le16(bt_config_get_pnp_source());
  2174. cp.vendor = cpu_to_le16(bt_config_get_pnp_vendor());
  2175. cp.product = cpu_to_le16(bt_config_get_pnp_product());
  2176. cp.version = cpu_to_le16(bt_config_get_pnp_version());
  2177. if (mgmt_send(mgmt_if, MGMT_OP_SET_DEVICE_ID, adapter.index,
  2178. sizeof(cp), &cp, NULL, NULL, NULL) == 0)
  2179. error("Failed to set device id");
  2180. register_device_id(bt_config_get_pnp_source(),
  2181. bt_config_get_pnp_vendor(),
  2182. bt_config_get_pnp_product(),
  2183. bt_config_get_pnp_version());
  2184. bt_adapter_add_record(sdp_record_find(0x10000), 0x00);
  2185. }
  2186. static void set_adapter_name_complete(uint8_t status, uint16_t length,
  2187. const void *param, void *user_data)
  2188. {
  2189. const struct mgmt_cp_set_local_name *rp = param;
  2190. if (status != MGMT_STATUS_SUCCESS) {
  2191. error("Failed to set name: %s (0x%02x)", mgmt_errstr(status),
  2192. status);
  2193. return;
  2194. }
  2195. adapter_set_name(rp->name);
  2196. }
  2197. static uint8_t set_adapter_name(const uint8_t *name, uint16_t len)
  2198. {
  2199. struct mgmt_cp_set_local_name cp;
  2200. memset(&cp, 0, sizeof(cp));
  2201. memcpy(cp.name, name, len);
  2202. if (mgmt_send(mgmt_if, MGMT_OP_SET_LOCAL_NAME, adapter.index,
  2203. sizeof(cp), &cp, set_adapter_name_complete,
  2204. NULL, NULL) > 0)
  2205. return HAL_STATUS_SUCCESS;
  2206. error("Failed to set name");
  2207. return HAL_STATUS_FAILED;
  2208. }
  2209. static uint8_t set_adapter_discoverable_timeout(const void *buf, uint16_t len)
  2210. {
  2211. const uint32_t *timeout = buf;
  2212. if (len != sizeof(*timeout)) {
  2213. error("Invalid set disc timeout size (%u bytes), terminating",
  2214. len);
  2215. raise(SIGTERM);
  2216. return HAL_STATUS_FAILED;
  2217. }
  2218. /*
  2219. * Android handles discoverable timeout in Settings app.
  2220. * There is no need to use kernel feature for that.
  2221. * Just need to store this value here
  2222. */
  2223. memcpy(&adapter.discoverable_timeout, timeout, sizeof(uint32_t));
  2224. store_adapter_config();
  2225. send_adapter_property(HAL_PROP_ADAPTER_DISC_TIMEOUT,
  2226. sizeof(adapter.discoverable_timeout),
  2227. &adapter.discoverable_timeout);
  2228. return HAL_STATUS_SUCCESS;
  2229. }
  2230. static void clear_uuids(void)
  2231. {
  2232. struct mgmt_cp_remove_uuid cp;
  2233. memset(&cp, 0, sizeof(cp));
  2234. mgmt_send(mgmt_if, MGMT_OP_REMOVE_UUID, adapter.index, sizeof(cp),
  2235. &cp, NULL, NULL, NULL);
  2236. }
  2237. static struct device *create_device_from_info(GKeyFile *key_file,
  2238. const char *peer)
  2239. {
  2240. struct device *dev;
  2241. uint8_t type;
  2242. bdaddr_t bdaddr;
  2243. char **uuids;
  2244. char *str;
  2245. /* BREDR if not present */
  2246. type = g_key_file_get_integer(key_file, peer, "AddressType", NULL);
  2247. str2ba(peer, &bdaddr);
  2248. dev = create_device(&bdaddr, type);
  2249. if (type != BDADDR_BREDR)
  2250. dev->bredr = g_key_file_get_boolean(key_file, peer, "BREDR",
  2251. NULL);
  2252. str = g_key_file_get_string(key_file, peer, "LocalCSRK", NULL);
  2253. if (str) {
  2254. int i;
  2255. dev->valid_local_csrk = true;
  2256. for (i = 0; i < 16; i++)
  2257. sscanf(str + (i * 2), "%02hhX", &dev->local_csrk[i]);
  2258. g_free(str);
  2259. dev->local_sign_cnt = g_key_file_get_integer(key_file, peer,
  2260. "LocalCSRKSignCounter", NULL);
  2261. dev->local_csrk_auth = g_key_file_get_boolean(key_file, peer,
  2262. "LocalCSRKAuthenticated", NULL);
  2263. }
  2264. str = g_key_file_get_string(key_file, peer, "RemoteCSRK", NULL);
  2265. if (str) {
  2266. int i;
  2267. dev->valid_remote_csrk = true;
  2268. for (i = 0; i < 16; i++)
  2269. sscanf(str + (i * 2), "%02hhX", &dev->remote_csrk[i]);
  2270. g_free(str);
  2271. dev->remote_sign_cnt = g_key_file_get_integer(key_file, peer,
  2272. "RemoteCSRKSignCounter", NULL);
  2273. dev->remote_csrk_auth = g_key_file_get_boolean(key_file, peer,
  2274. "RemoteCSRKAuthenticated",
  2275. NULL);
  2276. }
  2277. str = g_key_file_get_string(key_file, peer, "GattCCC", NULL);
  2278. if (str) {
  2279. dev->gatt_ccc = atoi(str);
  2280. g_free(str);
  2281. }
  2282. str = g_key_file_get_string(key_file, peer, "Name", NULL);
  2283. if (str) {
  2284. g_free(dev->name);
  2285. dev->name = str;
  2286. }
  2287. str = g_key_file_get_string(key_file, peer, "FriendlyName", NULL);
  2288. if (str) {
  2289. g_free(dev->friendly_name);
  2290. dev->friendly_name = str;
  2291. }
  2292. dev->class = g_key_file_get_integer(key_file, peer, "Class", NULL);
  2293. if (dev->bredr)
  2294. dev->bredr_seen = g_key_file_get_integer(key_file, peer,
  2295. "Timestamp",
  2296. NULL);
  2297. else
  2298. dev->le_seen = g_key_file_get_integer(key_file, peer,
  2299. "Timestamp", NULL);
  2300. uuids = g_key_file_get_string_list(key_file, peer, "Services", NULL,
  2301. NULL);
  2302. if (uuids) {
  2303. char **uuid;
  2304. for (uuid = uuids; *uuid; uuid++) {
  2305. uint8_t *u = g_malloc0(16);
  2306. int i;
  2307. for (i = 0; i < 16; i++)
  2308. sscanf((*uuid) + (i * 2), "%02hhX", &u[i]);
  2309. dev->uuids = g_slist_append(dev->uuids, u);
  2310. }
  2311. g_strfreev(uuids);
  2312. }
  2313. return dev;
  2314. }
  2315. static struct mgmt_link_key_info *get_key_info(GKeyFile *key_file,
  2316. const char *peer)
  2317. {
  2318. struct mgmt_link_key_info *info = NULL;
  2319. char *str;
  2320. unsigned int i;
  2321. str = g_key_file_get_string(key_file, peer, "LinkKey", NULL);
  2322. if (!str || strlen(str) != 32)
  2323. goto failed;
  2324. info = g_new0(struct mgmt_link_key_info, 1);
  2325. str2ba(peer, &info->addr.bdaddr);
  2326. for (i = 0; i < sizeof(info->val); i++)
  2327. sscanf(str + (i * 2), "%02hhX", &info->val[i]);
  2328. info->type = g_key_file_get_integer(key_file, peer, "LinkKeyType",
  2329. NULL);
  2330. info->pin_len = g_key_file_get_integer(key_file, peer,
  2331. "LinkKeyPinLength", NULL);
  2332. failed:
  2333. g_free(str);
  2334. return info;
  2335. }
  2336. static struct mgmt_ltk_info *get_ltk_info(GKeyFile *key_file, const char *peer,
  2337. bool master)
  2338. {
  2339. const char *key_s, *keytype_s, *encsize_s, *ediv_s, *rand_s;
  2340. struct mgmt_ltk_info *info = NULL;
  2341. char *key;
  2342. unsigned int i;
  2343. key_s = master ? "LongTermKey" : "SlaveLongTermKey";
  2344. keytype_s = master ? "LongTermKeyType" : "SlaveLongTermKeyType";
  2345. encsize_s = master ? "LongTermKeyEncSize" : "SlaveLongTermKeyEncSize";
  2346. ediv_s = master ? "LongTermKeyEDiv" : "SlaveLongTermKeyEDiv";
  2347. rand_s = master ? "LongTermKeyRand" : "SlaveLongTermKeyRand";
  2348. key = g_key_file_get_string(key_file, peer, key_s, NULL);
  2349. if (!key || strlen(key) != 32)
  2350. goto failed;
  2351. info = g_new0(struct mgmt_ltk_info, 1);
  2352. str2ba(peer, &info->addr.bdaddr);
  2353. info->addr.type = g_key_file_get_integer(key_file, peer, "AddressType",
  2354. NULL);
  2355. for (i = 0; i < sizeof(info->val); i++)
  2356. sscanf(key + (i * 2), "%02hhX", &info->val[i]);
  2357. info->type = g_key_file_get_integer(key_file, peer, keytype_s, NULL);
  2358. info->enc_size = g_key_file_get_integer(key_file, peer, encsize_s,
  2359. NULL);
  2360. info->rand = g_key_file_get_uint64(key_file, peer, rand_s, NULL);
  2361. info->rand = cpu_to_le64(info->rand);
  2362. info->ediv = g_key_file_get_integer(key_file, peer, ediv_s, NULL);
  2363. info->ediv = cpu_to_le16(info->ediv);
  2364. info->central = master;
  2365. failed:
  2366. g_free(key);
  2367. return info;
  2368. }
  2369. static struct mgmt_irk_info *get_irk_info(GKeyFile *key_file, const char *peer)
  2370. {
  2371. struct mgmt_irk_info *info = NULL;
  2372. unsigned int i;
  2373. char *str;
  2374. str = g_key_file_get_string(key_file, peer, "IdentityResolvingKey",
  2375. NULL);
  2376. if (!str || strlen(str) != 32)
  2377. goto failed;
  2378. info = g_new0(struct mgmt_irk_info, 1);
  2379. str2ba(peer, &info->addr.bdaddr);
  2380. info->addr.type = g_key_file_get_integer(key_file, peer, "AddressType",
  2381. NULL);
  2382. for (i = 0; i < sizeof(info->val); i++)
  2383. sscanf(str + (i * 2), "%02hhX", &info->val[i]);
  2384. failed:
  2385. g_free(str);
  2386. return info;
  2387. }
  2388. static time_t device_timestamp(const struct device *dev)
  2389. {
  2390. if (dev->bredr && dev->le) {
  2391. if (dev->le_seen > dev->bredr_seen)
  2392. return dev->le_seen;
  2393. return dev->bredr_seen;
  2394. }
  2395. if (dev->bredr)
  2396. return dev->bredr_seen;
  2397. return dev->le_seen;
  2398. }
  2399. static int device_timestamp_cmp(gconstpointer a, gconstpointer b)
  2400. {
  2401. const struct device *deva = a;
  2402. const struct device *devb = b;
  2403. return device_timestamp(deva) < device_timestamp(devb);
  2404. }
  2405. static void load_devices_cache(void)
  2406. {
  2407. GKeyFile *key_file;
  2408. gchar **devs;
  2409. gsize len = 0;
  2410. unsigned int i;
  2411. key_file = g_key_file_new();
  2412. g_key_file_load_from_file(key_file, CACHE_FILE, 0, NULL);
  2413. devs = g_key_file_get_groups(key_file, &len);
  2414. for (i = 0; i < len; i++) {
  2415. struct device *dev;
  2416. dev = create_device_from_info(key_file, devs[i]);
  2417. cached_devices = g_slist_prepend(cached_devices, dev);
  2418. }
  2419. cached_devices = g_slist_sort(cached_devices, device_timestamp_cmp);
  2420. g_strfreev(devs);
  2421. g_key_file_free(key_file);
  2422. }
  2423. static void load_devices_info(bt_bluetooth_ready cb)
  2424. {
  2425. GKeyFile *key_file;
  2426. gchar **devs;
  2427. gsize len = 0;
  2428. unsigned int i;
  2429. GSList *keys = NULL;
  2430. GSList *ltks = NULL;
  2431. GSList *irks = NULL;
  2432. key_file = g_key_file_new();
  2433. g_key_file_load_from_file(key_file, DEVICES_FILE, 0, NULL);
  2434. devs = g_key_file_get_groups(key_file, &len);
  2435. for (i = 0; i < len; i++) {
  2436. struct mgmt_link_key_info *key_info;
  2437. struct mgmt_ltk_info *ltk_info;
  2438. struct mgmt_irk_info *irk_info;
  2439. struct mgmt_ltk_info *slave_ltk_info;
  2440. struct device *dev;
  2441. dev = create_device_from_info(key_file, devs[i]);
  2442. key_info = get_key_info(key_file, devs[i]);
  2443. irk_info = get_irk_info(key_file, devs[i]);
  2444. ltk_info = get_ltk_info(key_file, devs[i], true);
  2445. slave_ltk_info = get_ltk_info(key_file, devs[i], false);
  2446. /*
  2447. * Skip devices that have no permanent keys
  2448. * (CSRKs are loaded by create_device_from_info())
  2449. */
  2450. if (!dev->valid_local_csrk && !dev->valid_remote_csrk &&
  2451. !key_info && !ltk_info &&
  2452. !slave_ltk_info && !irk_info) {
  2453. error("Failed to load keys for %s, skipping", devs[i]);
  2454. free_device(dev);
  2455. continue;
  2456. }
  2457. if (key_info) {
  2458. keys = g_slist_prepend(keys, key_info);
  2459. dev->bredr_paired = true;
  2460. dev->bredr_bonded = true;
  2461. }
  2462. if (irk_info)
  2463. irks = g_slist_prepend(irks, irk_info);
  2464. if (ltk_info)
  2465. ltks = g_slist_prepend(ltks, ltk_info);
  2466. if (slave_ltk_info)
  2467. ltks = g_slist_prepend(ltks, slave_ltk_info);
  2468. if (dev->valid_local_csrk || dev->valid_remote_csrk ||
  2469. irk_info || ltk_info || slave_ltk_info) {
  2470. dev->le_paired = true;
  2471. dev->le_bonded = true;
  2472. }
  2473. bonded_devices = g_slist_prepend(bonded_devices, dev);
  2474. }
  2475. load_ltks(ltks);
  2476. g_slist_free_full(ltks, g_free);
  2477. load_irks(irks);
  2478. g_slist_free_full(irks, g_free);
  2479. if (adapter.supported_settings & MGMT_SETTING_BREDR)
  2480. load_link_keys(keys, cb);
  2481. else
  2482. cb(0, &adapter.bdaddr);
  2483. g_slist_free_full(keys, g_free);
  2484. g_strfreev(devs);
  2485. g_key_file_free(key_file);
  2486. }
  2487. static void set_adapter_class(void)
  2488. {
  2489. struct mgmt_cp_set_dev_class cp;
  2490. memset(&cp, 0, sizeof(cp));
  2491. /*
  2492. * kernel assign the major and minor numbers straight to dev_class[0]
  2493. * and dev_class[1] without considering the proper bit shifting.
  2494. */
  2495. cp.major = ADAPTER_MAJOR_CLASS & 0x1f;
  2496. cp.minor = ADAPTER_MINOR_CLASS << 2;
  2497. if (mgmt_send(mgmt_if, MGMT_OP_SET_DEV_CLASS, adapter.index, sizeof(cp),
  2498. &cp, NULL, NULL, NULL) > 0)
  2499. return;
  2500. error("Failed to set class of device");
  2501. }
  2502. static void enable_mps(void)
  2503. {
  2504. uuid_t uuid, *uuid128;
  2505. sdp_uuid16_create(&uuid, MPS_SVCLASS_ID);
  2506. uuid128 = sdp_uuid_to_uuid128(&uuid);
  2507. if (!uuid128)
  2508. return;
  2509. register_mps(true);
  2510. adapter.uuids = g_slist_prepend(adapter.uuids, uuid128);
  2511. add_uuid(0, uuid128);
  2512. }
  2513. static void clear_auto_connect_list_complete(uint8_t status,
  2514. uint16_t length,
  2515. const void *param,
  2516. void *user_data)
  2517. {
  2518. if (status != MGMT_STATUS_SUCCESS)
  2519. error("Failed to clear auto connect list: %s (0x%02x)",
  2520. mgmt_errstr(status), status);
  2521. }
  2522. static void clear_auto_connect_list(void)
  2523. {
  2524. struct mgmt_cp_remove_device cp;
  2525. if (!kernel_conn_control)
  2526. return;
  2527. memset(&cp, 0, sizeof(cp));
  2528. if (mgmt_send(mgmt_if, MGMT_OP_REMOVE_DEVICE, adapter.index, sizeof(cp),
  2529. &cp, clear_auto_connect_list_complete, NULL, NULL) > 0)
  2530. return;
  2531. error("Could not clear auto connect list");
  2532. }
  2533. static void read_adv_features_complete(uint8_t status, uint16_t length,
  2534. const void *param, void *user_data)
  2535. {
  2536. const struct mgmt_rp_read_adv_features *rp = param;
  2537. bt_bluetooth_ready cb = user_data;
  2538. int err;
  2539. if (status) {
  2540. error("Failed to read advertising features for index %u: %s (0x%02x)",
  2541. adapter.index, mgmt_errstr(status), status);
  2542. err = -EIO;
  2543. goto failed;
  2544. }
  2545. if (length < sizeof(*rp)) {
  2546. error("Too small read advertising features response");
  2547. err = -EIO;
  2548. goto failed;
  2549. }
  2550. adapter.max_advert_instance = rp->max_instances;
  2551. info("Max LE advertising instances: %d", adapter.max_advert_instance);
  2552. load_devices_info(cb);
  2553. return;
  2554. failed:
  2555. cb(err, NULL);
  2556. }
  2557. static void read_info_complete(uint8_t status, uint16_t length,
  2558. const void *param, void *user_data)
  2559. {
  2560. const struct mgmt_rp_read_info *rp = param;
  2561. bt_bluetooth_ready cb = user_data;
  2562. uint32_t missing_settings;
  2563. int err;
  2564. DBG("");
  2565. if (status) {
  2566. error("Failed to read info for index %u: %s (0x%02x)",
  2567. adapter.index, mgmt_errstr(status), status);
  2568. err = -EIO;
  2569. goto failed;
  2570. }
  2571. if (length < sizeof(*rp)) {
  2572. error("Too small read info complete response");
  2573. err = -EIO;
  2574. goto failed;
  2575. }
  2576. if (!bacmp(&rp->bdaddr, BDADDR_ANY)) {
  2577. error("No Bluetooth address");
  2578. err = -ENODEV;
  2579. goto failed;
  2580. }
  2581. load_adapter_config();
  2582. if (!bacmp(&adapter.bdaddr, BDADDR_ANY)) {
  2583. bacpy(&adapter.bdaddr, &rp->bdaddr);
  2584. store_adapter_config();
  2585. } else if (bacmp(&adapter.bdaddr, &rp->bdaddr)) {
  2586. error("Bluetooth address mismatch");
  2587. err = -ENODEV;
  2588. goto failed;
  2589. }
  2590. if (adapter.name && g_strcmp0(adapter.name, (const char *) rp->name))
  2591. set_adapter_name((uint8_t *)adapter.name, strlen(adapter.name));
  2592. set_adapter_class();
  2593. /* Store adapter information */
  2594. adapter.dev_class = rp->dev_class[0] | (rp->dev_class[1] << 8) |
  2595. (rp->dev_class[2] << 16);
  2596. adapter.supported_settings = le32_to_cpu(rp->supported_settings);
  2597. adapter.current_settings = le32_to_cpu(rp->current_settings);
  2598. /* TODO: Register all event notification handlers */
  2599. register_mgmt_handlers();
  2600. clear_uuids();
  2601. clear_auto_connect_list();
  2602. set_io_capability();
  2603. set_device_id();
  2604. enable_mps();
  2605. missing_settings = adapter.current_settings ^
  2606. adapter.supported_settings;
  2607. if (missing_settings & MGMT_SETTING_SSP)
  2608. set_mode(MGMT_OP_SET_SSP, 0x01);
  2609. if (missing_settings & MGMT_SETTING_BONDABLE)
  2610. set_mode(MGMT_OP_SET_BONDABLE, 0x01);
  2611. if (adapter.supported_settings & MGMT_SETTING_LE) {
  2612. if (mgmt_send(mgmt_if, MGMT_OP_READ_ADV_FEATURES, adapter.index,
  2613. 0, NULL,
  2614. read_adv_features_complete, cb, NULL) == 0) {
  2615. error("Cannot get LE adv features");
  2616. err = -EIO;
  2617. goto failed;
  2618. }
  2619. } else {
  2620. load_devices_info(cb);
  2621. }
  2622. load_devices_cache();
  2623. return;
  2624. failed:
  2625. cb(err, NULL);
  2626. }
  2627. static void mgmt_index_added_event(uint16_t index, uint16_t length,
  2628. const void *param, void *user_data)
  2629. {
  2630. bt_bluetooth_ready cb = user_data;
  2631. DBG("index %u", index);
  2632. if (adapter.index != MGMT_INDEX_NONE) {
  2633. DBG("skip event for index %u", index);
  2634. return;
  2635. }
  2636. if (option_index != MGMT_INDEX_NONE && option_index != index) {
  2637. DBG("skip event for index %u (option %u)", index, option_index);
  2638. return;
  2639. }
  2640. adapter.index = index;
  2641. if (mgmt_send(mgmt_if, MGMT_OP_READ_INFO, index, 0, NULL,
  2642. read_info_complete, cb, NULL) == 0) {
  2643. cb(-EIO, NULL);
  2644. return;
  2645. }
  2646. }
  2647. static void mgmt_index_removed_event(uint16_t index, uint16_t length,
  2648. const void *param, void *user_data)
  2649. {
  2650. DBG("index %u", index);
  2651. if (index != adapter.index)
  2652. return;
  2653. error("Adapter was removed. Exiting.");
  2654. raise(SIGTERM);
  2655. }
  2656. static void read_index_list_complete(uint8_t status, uint16_t length,
  2657. const void *param, void *user_data)
  2658. {
  2659. const struct mgmt_rp_read_index_list *rp = param;
  2660. bt_bluetooth_ready cb = user_data;
  2661. uint16_t num;
  2662. int i;
  2663. DBG("");
  2664. if (status) {
  2665. error("%s: Failed to read index list: %s (0x%02x)", __func__,
  2666. mgmt_errstr(status), status);
  2667. goto failed;
  2668. }
  2669. if (length < sizeof(*rp)) {
  2670. error("%s: Wrong size of read index list response", __func__);
  2671. goto failed;
  2672. }
  2673. num = le16_to_cpu(rp->num_controllers);
  2674. DBG("Number of controllers: %u", num);
  2675. if (num * sizeof(uint16_t) + sizeof(*rp) != length) {
  2676. error("%s: Incorrect pkt size for index list rsp", __func__);
  2677. goto failed;
  2678. }
  2679. if (adapter.index != MGMT_INDEX_NONE)
  2680. return;
  2681. for (i = 0; i < num; i++) {
  2682. uint16_t index = le16_to_cpu(rp->index[i]);
  2683. if (option_index != MGMT_INDEX_NONE && option_index != index)
  2684. continue;
  2685. if (mgmt_send(mgmt_if, MGMT_OP_READ_INFO, index, 0, NULL,
  2686. read_info_complete, cb, NULL) == 0)
  2687. goto failed;
  2688. adapter.index = index;
  2689. return;
  2690. }
  2691. return;
  2692. failed:
  2693. cb(-EIO, NULL);
  2694. }
  2695. static void read_version_complete(uint8_t status, uint16_t length,
  2696. const void *param, void *user_data)
  2697. {
  2698. const struct mgmt_rp_read_version *rp = param;
  2699. uint8_t mgmt_version, mgmt_revision;
  2700. bt_bluetooth_ready cb = user_data;
  2701. DBG("");
  2702. if (status) {
  2703. error("Failed to read version information: %s (0x%02x)",
  2704. mgmt_errstr(status), status);
  2705. goto failed;
  2706. }
  2707. if (length < sizeof(*rp)) {
  2708. error("Wrong size response");
  2709. goto failed;
  2710. }
  2711. mgmt_version = rp->version;
  2712. mgmt_revision = le16_to_cpu(rp->revision);
  2713. info("Bluetooth management interface %u.%u initialized",
  2714. mgmt_version, mgmt_revision);
  2715. if (MGMT_VERSION(mgmt_version, mgmt_revision) < MGMT_VERSION(1, 3)) {
  2716. error("Version 1.3 or later of management interface required");
  2717. goto failed;
  2718. }
  2719. /* Starting from mgmt 1.7, kernel can handle connection control */
  2720. if (MGMT_VERSION(mgmt_version, mgmt_revision) >= MGMT_VERSION(1, 7)) {
  2721. info("Kernel connection control will be used");
  2722. kernel_conn_control = true;
  2723. }
  2724. mgmt_register(mgmt_if, MGMT_EV_INDEX_ADDED, MGMT_INDEX_NONE,
  2725. mgmt_index_added_event, cb, NULL);
  2726. mgmt_register(mgmt_if, MGMT_EV_INDEX_REMOVED, MGMT_INDEX_NONE,
  2727. mgmt_index_removed_event, NULL, NULL);
  2728. if (mgmt_send(mgmt_if, MGMT_OP_READ_INDEX_LIST, MGMT_INDEX_NONE, 0,
  2729. NULL, read_index_list_complete, cb, NULL) > 0)
  2730. return;
  2731. error("Failed to read controller index list");
  2732. failed:
  2733. cb(-EIO, NULL);
  2734. }
  2735. bool bt_bluetooth_start(int index, bool mgmt_dbg, bt_bluetooth_ready cb)
  2736. {
  2737. DBG("index %d", index);
  2738. mgmt_if = mgmt_new_default();
  2739. if (!mgmt_if) {
  2740. error("Failed to access management interface");
  2741. return false;
  2742. }
  2743. if (mgmt_dbg)
  2744. mgmt_set_debug(mgmt_if, mgmt_debug, "mgmt_if: ", NULL);
  2745. if (mgmt_send(mgmt_if, MGMT_OP_READ_VERSION, MGMT_INDEX_NONE, 0, NULL,
  2746. read_version_complete, cb, NULL) == 0) {
  2747. error("Error sending READ_VERSION mgmt command");
  2748. mgmt_unref(mgmt_if);
  2749. mgmt_if = NULL;
  2750. return false;
  2751. }
  2752. if (index >= 0)
  2753. option_index = index;
  2754. return true;
  2755. }
  2756. static void shutdown_complete(uint8_t status, uint16_t length,
  2757. const void *param, void *user_data)
  2758. {
  2759. bt_bluetooth_stopped cb = user_data;
  2760. if (status != MGMT_STATUS_SUCCESS)
  2761. error("Clean controller shutdown failed");
  2762. cb();
  2763. }
  2764. bool bt_bluetooth_stop(bt_bluetooth_stopped cb)
  2765. {
  2766. struct mgmt_mode cp;
  2767. if (adapter.index == MGMT_INDEX_NONE)
  2768. return false;
  2769. info("Switching controller off");
  2770. memset(&cp, 0, sizeof(cp));
  2771. return mgmt_send(mgmt_if, MGMT_OP_SET_POWERED, adapter.index,
  2772. sizeof(cp), &cp, shutdown_complete, (void *)cb,
  2773. NULL) > 0;
  2774. }
  2775. void bt_bluetooth_cleanup(void)
  2776. {
  2777. g_free(adapter.name);
  2778. adapter.name = NULL;
  2779. mgmt_unref(mgmt_if);
  2780. mgmt_if = NULL;
  2781. }
  2782. static bool set_discoverable(uint8_t mode, uint16_t timeout)
  2783. {
  2784. struct mgmt_cp_set_discoverable cp;
  2785. memset(&cp, 0, sizeof(cp));
  2786. cp.val = mode;
  2787. cp.timeout = cpu_to_le16(timeout);
  2788. DBG("mode %u timeout %u", mode, timeout);
  2789. if (mgmt_send(mgmt_if, MGMT_OP_SET_DISCOVERABLE, adapter.index,
  2790. sizeof(cp), &cp, set_mode_complete, NULL, NULL) > 0)
  2791. return true;
  2792. error("Failed to set mode discoverable");
  2793. return false;
  2794. }
  2795. static uint8_t get_adapter_address(void)
  2796. {
  2797. uint8_t buf[6];
  2798. bdaddr2android(&adapter.bdaddr, buf);
  2799. send_adapter_property(HAL_PROP_ADAPTER_ADDR, sizeof(buf), buf);
  2800. return HAL_STATUS_SUCCESS;
  2801. }
  2802. static uint8_t get_adapter_name(void)
  2803. {
  2804. if (!adapter.name)
  2805. return HAL_STATUS_FAILED;
  2806. adapter_name_changed((uint8_t *) adapter.name);
  2807. return HAL_STATUS_SUCCESS;
  2808. }
  2809. static uint8_t get_adapter_class(void)
  2810. {
  2811. DBG("");
  2812. adapter_class_changed();
  2813. return HAL_STATUS_SUCCESS;
  2814. }
  2815. static uint8_t settings2type(void)
  2816. {
  2817. bool bredr, le;
  2818. bredr = adapter.current_settings & MGMT_SETTING_BREDR;
  2819. le = adapter.current_settings & MGMT_SETTING_LE;
  2820. if (bredr && le)
  2821. return HAL_TYPE_DUAL;
  2822. if (bredr && !le)
  2823. return HAL_TYPE_BREDR;
  2824. if (!bredr && le)
  2825. return HAL_TYPE_LE;
  2826. return 0;
  2827. }
  2828. static uint8_t get_adapter_type(void)
  2829. {
  2830. uint8_t type;
  2831. DBG("");
  2832. type = settings2type();
  2833. if (!type)
  2834. return HAL_STATUS_FAILED;
  2835. send_adapter_property(HAL_PROP_ADAPTER_TYPE, sizeof(type), &type);
  2836. return HAL_STATUS_SUCCESS;
  2837. }
  2838. static uint8_t get_adapter_service_rec(void)
  2839. {
  2840. DBG("Not implemented");
  2841. /* TODO: Add implementation */
  2842. return HAL_STATUS_FAILED;
  2843. }
  2844. static uint8_t get_adapter_scan_mode(void)
  2845. {
  2846. DBG("");
  2847. scan_mode_changed();
  2848. return HAL_STATUS_SUCCESS;
  2849. }
  2850. static uint8_t get_adapter_bonded_devices(void)
  2851. {
  2852. uint8_t buf[sizeof(bdaddr_t) * g_slist_length(bonded_devices)];
  2853. int i = 0;
  2854. GSList *l;
  2855. DBG("");
  2856. for (l = bonded_devices; l; l = g_slist_next(l)) {
  2857. struct device *dev = l->data;
  2858. get_device_android_addr(dev, buf + (i * sizeof(bdaddr_t)));
  2859. i++;
  2860. }
  2861. send_adapter_property(HAL_PROP_ADAPTER_BONDED_DEVICES,
  2862. i * sizeof(bdaddr_t), buf);
  2863. return HAL_STATUS_SUCCESS;
  2864. }
  2865. static uint8_t get_adapter_discoverable_timeout(void)
  2866. {
  2867. send_adapter_property(HAL_PROP_ADAPTER_DISC_TIMEOUT,
  2868. sizeof(adapter.discoverable_timeout),
  2869. &adapter.discoverable_timeout);
  2870. return HAL_STATUS_SUCCESS;
  2871. }
  2872. static void prepare_le_features(uint8_t *le_features)
  2873. {
  2874. le_features[0] = !!(adapter.current_settings & MGMT_SETTING_PRIVACY);
  2875. le_features[1] = adapter.max_advert_instance;
  2876. le_features[2] = adapter.rpa_offload_supported;
  2877. le_features[3] = adapter.max_irk_list_size;
  2878. le_features[4] = adapter.max_scan_filters_supported;
  2879. /* lo byte */
  2880. le_features[5] = adapter.scan_result_storage_size;
  2881. /* hi byte */
  2882. le_features[6] = adapter.scan_result_storage_size >> 8;
  2883. le_features[7] = adapter.activity_energy_info_supported;
  2884. }
  2885. static uint8_t get_adapter_le_features(void)
  2886. {
  2887. uint8_t le_features[8];
  2888. prepare_le_features(le_features);
  2889. send_adapter_property(HAL_PROP_ADAPTER_LOCAL_LE_FEAT,
  2890. sizeof(le_features), le_features);
  2891. return HAL_STATUS_SUCCESS;
  2892. }
  2893. static void handle_get_adapter_prop_cmd(const void *buf, uint16_t len)
  2894. {
  2895. const struct hal_cmd_get_adapter_prop *cmd = buf;
  2896. uint8_t status;
  2897. switch (cmd->type) {
  2898. case HAL_PROP_ADAPTER_ADDR:
  2899. status = get_adapter_address();
  2900. break;
  2901. case HAL_PROP_ADAPTER_NAME:
  2902. status = get_adapter_name();
  2903. break;
  2904. case HAL_PROP_ADAPTER_UUIDS:
  2905. status = get_adapter_uuids();
  2906. break;
  2907. case HAL_PROP_ADAPTER_CLASS:
  2908. status = get_adapter_class();
  2909. break;
  2910. case HAL_PROP_ADAPTER_TYPE:
  2911. status = get_adapter_type();
  2912. break;
  2913. case HAL_PROP_ADAPTER_SERVICE_REC:
  2914. status = get_adapter_service_rec();
  2915. break;
  2916. case HAL_PROP_ADAPTER_SCAN_MODE:
  2917. status = get_adapter_scan_mode();
  2918. break;
  2919. case HAL_PROP_ADAPTER_BONDED_DEVICES:
  2920. status = get_adapter_bonded_devices();
  2921. break;
  2922. case HAL_PROP_ADAPTER_DISC_TIMEOUT:
  2923. status = get_adapter_discoverable_timeout();
  2924. break;
  2925. case HAL_PROP_ADAPTER_LOCAL_LE_FEAT:
  2926. status = get_adapter_le_features();
  2927. break;
  2928. default:
  2929. status = HAL_STATUS_FAILED;
  2930. break;
  2931. }
  2932. if (status != HAL_STATUS_SUCCESS)
  2933. error("Failed to get adapter property (type %u status %u)",
  2934. cmd->type, status);
  2935. ipc_send_rsp(hal_ipc, HAL_SERVICE_ID_BLUETOOTH, HAL_OP_GET_ADAPTER_PROP,
  2936. status);
  2937. }
  2938. static void get_adapter_properties(void)
  2939. {
  2940. uint8_t buf[IPC_MTU];
  2941. struct hal_ev_adapter_props_changed *ev = (void *) buf;
  2942. uint8_t bonded[g_slist_length(bonded_devices) * sizeof(bdaddr_t)];
  2943. uint128_t uuids[g_slist_length(adapter.uuids)];
  2944. uint8_t android_bdaddr[6];
  2945. uint8_t le_features[8];
  2946. uint8_t type, mode;
  2947. size_t size, i;
  2948. GSList *l;
  2949. size = sizeof(*ev);
  2950. ev->status = HAL_STATUS_SUCCESS;
  2951. ev->num_props = 0;
  2952. bdaddr2android(&adapter.bdaddr, &android_bdaddr);
  2953. size += fill_hal_prop(buf + size, HAL_PROP_ADAPTER_ADDR,
  2954. sizeof(android_bdaddr), android_bdaddr);
  2955. ev->num_props++;
  2956. if (adapter.name) {
  2957. size += fill_hal_prop(buf + size, HAL_PROP_ADAPTER_NAME,
  2958. strlen(adapter.name), adapter.name);
  2959. ev->num_props++;
  2960. }
  2961. size += fill_hal_prop(buf + size, HAL_PROP_ADAPTER_CLASS,
  2962. sizeof(adapter.dev_class), &adapter.dev_class);
  2963. ev->num_props++;
  2964. type = settings2type();
  2965. if (type) {
  2966. size += fill_hal_prop(buf + size, HAL_PROP_ADAPTER_TYPE,
  2967. sizeof(type), &type);
  2968. ev->num_props++;
  2969. }
  2970. mode = settings2scan_mode();
  2971. size += fill_hal_prop(buf + size, HAL_PROP_ADAPTER_SCAN_MODE,
  2972. sizeof(mode), &mode);
  2973. ev->num_props++;
  2974. size += fill_hal_prop(buf + size, HAL_PROP_ADAPTER_DISC_TIMEOUT,
  2975. sizeof(adapter.discoverable_timeout),
  2976. &adapter.discoverable_timeout);
  2977. ev->num_props++;
  2978. for (i = 0, l = bonded_devices; l; l = g_slist_next(l), i++) {
  2979. struct device *dev = l->data;
  2980. get_device_android_addr(dev, bonded + (i * sizeof(bdaddr_t)));
  2981. }
  2982. size += fill_hal_prop(buf + size, HAL_PROP_ADAPTER_BONDED_DEVICES,
  2983. sizeof(bonded), bonded);
  2984. ev->num_props++;
  2985. for (i = 0, l = adapter.uuids; l; l = g_slist_next(l), i++) {
  2986. uuid_t *uuid = l->data;
  2987. memcpy(&uuids[i], &uuid->value.uuid128, sizeof(uint128_t));
  2988. }
  2989. size += fill_hal_prop(buf + size, HAL_PROP_ADAPTER_UUIDS, sizeof(uuids),
  2990. uuids);
  2991. ev->num_props++;
  2992. prepare_le_features(le_features);
  2993. size += fill_hal_prop(buf + size, HAL_PROP_ADAPTER_LOCAL_LE_FEAT,
  2994. sizeof(le_features), le_features);
  2995. ev->num_props++;
  2996. ipc_send_notif(hal_ipc, HAL_SERVICE_ID_BLUETOOTH,
  2997. HAL_EV_ADAPTER_PROPS_CHANGED, size, buf);
  2998. }
  2999. static void cancel_pending_confirm_name(gpointer data, gpointer user_data)
  3000. {
  3001. struct device *dev = data;
  3002. mgmt_cancel(mgmt_if, dev->confirm_id);
  3003. dev->confirm_id = 0;
  3004. }
  3005. static bool stop_discovery(uint8_t type)
  3006. {
  3007. struct mgmt_cp_stop_discovery cp;
  3008. cp.type = get_supported_discovery_type() & type;
  3009. DBG("type=0x%x", cp.type);
  3010. if (cp.type == SCAN_TYPE_NONE)
  3011. return false;
  3012. /* Lets drop all confirm name request as we don't need it anymore */
  3013. g_slist_foreach(cached_devices, cancel_pending_confirm_name, NULL);
  3014. if (mgmt_send(mgmt_if, MGMT_OP_STOP_DISCOVERY, adapter.index,
  3015. sizeof(cp), &cp, NULL, NULL, NULL) > 0)
  3016. return true;
  3017. error("Failed to stop discovery");
  3018. return false;
  3019. }
  3020. struct adv_user_data {
  3021. bt_le_set_advertising_done cb;
  3022. void *user_data;
  3023. };
  3024. static void set_advertising_cb(uint8_t status, uint16_t length,
  3025. const void *param, void *user_data)
  3026. {
  3027. struct adv_user_data *data = user_data;
  3028. DBG("");
  3029. if (status)
  3030. error("Failed to set adverising %s (0x%02x))",
  3031. mgmt_errstr(status), status);
  3032. data->cb(status, data->user_data);
  3033. }
  3034. bool bt_le_set_advertising(bool advertising, bt_le_set_advertising_done cb,
  3035. void *user_data)
  3036. {
  3037. struct adv_user_data *data;
  3038. uint8_t adv = advertising ? 0x01 : 0x00;
  3039. data = new0(struct adv_user_data, 1);
  3040. data->cb = cb;
  3041. data->user_data = user_data;
  3042. if (mgmt_send(mgmt_if, MGMT_OP_SET_ADVERTISING, adapter.index,
  3043. sizeof(adv), &adv, set_advertising_cb, data, free) > 0)
  3044. return true;
  3045. error("Failed to set advertising");
  3046. free(data);
  3047. return false;
  3048. }
  3049. struct addrm_adv_user_data {
  3050. bt_le_addrm_advertising_done cb;
  3051. void *user_data;
  3052. };
  3053. static void add_advertising_cb(uint8_t status, uint16_t length,
  3054. const void *param, void *user_data)
  3055. {
  3056. struct addrm_adv_user_data *data = user_data;
  3057. DBG("");
  3058. if (status)
  3059. error("Failed to add advertising %s (0x%02x))",
  3060. mgmt_errstr(status), status);
  3061. data->cb(status, data->user_data);
  3062. }
  3063. bool bt_le_add_advertising(struct adv_instance *adv,
  3064. bt_le_addrm_advertising_done cb, void *user_data)
  3065. {
  3066. struct mgmt_cp_add_advertising *cp;
  3067. struct addrm_adv_user_data *cb_data;
  3068. size_t len;
  3069. size_t adv_data_len = 0;
  3070. size_t sr_data_len = 0;
  3071. uint8_t *dst, *adv_data, *sr_data;
  3072. bool ok = false;
  3073. /* These accept NULL and return NULL */
  3074. adv_data = bt_ad_generate(adv->ad, &adv_data_len);
  3075. sr_data = bt_ad_generate(adv->sr, &sr_data_len);
  3076. len = sizeof(*cp) + adv_data_len + sr_data_len;
  3077. cp = malloc0(len);
  3078. if (!cp)
  3079. goto out;
  3080. cp->instance = adv->instance;
  3081. cp->timeout = adv->timeout;
  3082. /* XXX: how should we set duration? (kernel defaults to 2s) */
  3083. switch (adv->type) {
  3084. case ANDROID_ADVERTISING_EVENT_TYPE_CONNECTABLE:
  3085. cp->flags |= MGMT_ADV_FLAG_CONNECTABLE;
  3086. break;
  3087. case ANDROID_ADVERTISING_EVENT_TYPE_SCANNABLE:
  3088. case ANDROID_ADVERTISING_EVENT_TYPE_NON_CONNECTABLE:
  3089. default:
  3090. break;
  3091. }
  3092. if (adv->include_tx_power)
  3093. cp->flags |= MGMT_ADV_FLAG_TX_POWER;
  3094. dst = cp->data;
  3095. if (adv_data) {
  3096. cp->adv_data_len = adv_data_len;
  3097. memcpy(dst, adv_data, adv_data_len);
  3098. dst += adv_data_len;
  3099. }
  3100. if (sr_data) {
  3101. cp->scan_rsp_len = sr_data_len;
  3102. memcpy(dst, sr_data, sr_data_len);
  3103. dst += sr_data_len;
  3104. }
  3105. DBG("lens: adv=%u sr=%u total=%zu",
  3106. cp->adv_data_len, cp->scan_rsp_len, len);
  3107. cb_data = new0(__typeof__(*cb_data), 1);
  3108. cb_data->cb = cb;
  3109. cb_data->user_data = user_data;
  3110. ok = (mgmt_send(mgmt_if, MGMT_OP_ADD_ADVERTISING, adapter.index,
  3111. len, cp, add_advertising_cb, cb_data, free) > 0);
  3112. if (!ok)
  3113. free(cb_data);
  3114. out:
  3115. free(adv_data);
  3116. free(sr_data);
  3117. free(cp);
  3118. return ok;
  3119. }
  3120. static void remove_advertising_cb(uint8_t status, uint16_t length,
  3121. const void *param, void *user_data)
  3122. {
  3123. struct addrm_adv_user_data *data = user_data;
  3124. DBG("");
  3125. if (status)
  3126. error("Failed to remove advertising %s (0x%02x))",
  3127. mgmt_errstr(status), status);
  3128. data->cb(status, data->user_data);
  3129. }
  3130. bool bt_le_remove_advertising(struct adv_instance *adv,
  3131. bt_le_addrm_advertising_done cb, void *user_data)
  3132. {
  3133. struct mgmt_cp_remove_advertising cp = {
  3134. .instance = adv->instance,
  3135. };
  3136. struct addrm_adv_user_data *cb_data;
  3137. bool ok;
  3138. cb_data = new0(__typeof__(*cb_data), 1);
  3139. cb_data->cb = cb;
  3140. cb_data->user_data = user_data;
  3141. ok = (mgmt_send(mgmt_if, MGMT_OP_REMOVE_ADVERTISING, adapter.index,
  3142. sizeof(cp), &cp,
  3143. remove_advertising_cb, cb_data, free) > 0);
  3144. if (!ok)
  3145. free(cb_data);
  3146. return ok;
  3147. }
  3148. bool bt_le_register(bt_le_device_found cb)
  3149. {
  3150. if (gatt_device_found_cb)
  3151. return false;
  3152. gatt_device_found_cb = cb;
  3153. return true;
  3154. }
  3155. void bt_le_unregister(void)
  3156. {
  3157. gatt_device_found_cb = NULL;
  3158. }
  3159. bool bt_le_discovery_stop(bt_le_discovery_stopped cb)
  3160. {
  3161. if (!(adapter.current_settings & MGMT_SETTING_POWERED))
  3162. return false;
  3163. adapter.le_scanning = false;
  3164. if (adapter.cur_discovery_type != SCAN_TYPE_LE) {
  3165. if (cb)
  3166. cb();
  3167. return true;
  3168. }
  3169. if (!stop_discovery(SCAN_TYPE_LE))
  3170. return false;
  3171. gatt_discovery_stopped_cb = cb;
  3172. adapter.exp_discovery_type = SCAN_TYPE_NONE;
  3173. return true;
  3174. }
  3175. bool bt_le_discovery_start(void)
  3176. {
  3177. if (!(adapter.current_settings & MGMT_SETTING_POWERED))
  3178. return false;
  3179. adapter.le_scanning = true;
  3180. /*
  3181. * If core is discovering - just set expected next scan type.
  3182. * It will be triggered in case current scan session is almost done
  3183. * i.e. we missed LE phase in interleaved scan, or we're trying to
  3184. * connect to device that was already discovered.
  3185. */
  3186. if (adapter.cur_discovery_type != SCAN_TYPE_NONE) {
  3187. adapter.exp_discovery_type = SCAN_TYPE_LE;
  3188. return true;
  3189. }
  3190. if (start_discovery(SCAN_TYPE_LE))
  3191. return true;
  3192. return false;
  3193. }
  3194. struct read_rssi_user_data {
  3195. bt_read_device_rssi_done cb;
  3196. void *user_data;
  3197. };
  3198. static void read_device_rssi_cb(uint8_t status, uint16_t length,
  3199. const void *param, void *user_data)
  3200. {
  3201. const struct mgmt_rp_get_conn_info *rp = param;
  3202. struct read_rssi_user_data *data = user_data;
  3203. DBG("");
  3204. if (status)
  3205. error("Failed to get conn info: %s (0x%02x))",
  3206. mgmt_errstr(status), status);
  3207. if (length < sizeof(*rp)) {
  3208. error("Wrong size of get conn info response");
  3209. return;
  3210. }
  3211. data->cb(status, &rp->addr.bdaddr, rp->rssi, data->user_data);
  3212. }
  3213. bool bt_read_device_rssi(const bdaddr_t *addr, bt_read_device_rssi_done cb,
  3214. void *user_data)
  3215. {
  3216. struct device *dev;
  3217. struct read_rssi_user_data *data;
  3218. struct mgmt_cp_get_conn_info cp;
  3219. dev = find_device(addr);
  3220. if (!dev)
  3221. return false;
  3222. memcpy(&cp.addr.bdaddr, addr, sizeof(cp.addr.bdaddr));
  3223. cp.addr.type = dev->bredr ? BDADDR_BREDR : dev->bdaddr_type;
  3224. data = new0(struct read_rssi_user_data, 1);
  3225. data->cb = cb;
  3226. data->user_data = user_data;
  3227. if (!mgmt_send(mgmt_if, MGMT_OP_GET_CONN_INFO, adapter.index,
  3228. sizeof(cp), &cp, read_device_rssi_cb, data, free)) {
  3229. free(data);
  3230. error("Failed to get conn info");
  3231. return false;
  3232. }
  3233. return true;
  3234. }
  3235. bool bt_get_csrk(const bdaddr_t *addr, bool local, uint8_t key[16],
  3236. uint32_t *sign_cnt, bool *authenticated)
  3237. {
  3238. struct device *dev;
  3239. dev = find_device(addr);
  3240. if (!dev)
  3241. return false;
  3242. if (local && dev->valid_local_csrk) {
  3243. if (key)
  3244. memcpy(key, dev->local_csrk, 16);
  3245. if (sign_cnt)
  3246. *sign_cnt = dev->local_sign_cnt;
  3247. if (authenticated)
  3248. *authenticated = dev->local_csrk_auth;
  3249. } else if (!local && dev->valid_remote_csrk) {
  3250. if (key)
  3251. memcpy(key, dev->remote_csrk, 16);
  3252. if (sign_cnt)
  3253. *sign_cnt = dev->remote_sign_cnt;
  3254. if (authenticated)
  3255. *authenticated = dev->remote_csrk_auth;
  3256. } else {
  3257. return false;
  3258. }
  3259. return true;
  3260. }
  3261. static void store_sign_counter(struct device *dev, bool local)
  3262. {
  3263. const char *sign_cnt_s;
  3264. uint32_t sign_cnt;
  3265. GKeyFile *key_file;
  3266. gsize length = 0;
  3267. char addr[18];
  3268. char *data;
  3269. key_file = g_key_file_new();
  3270. if (!g_key_file_load_from_file(key_file, DEVICES_FILE, 0, NULL)) {
  3271. g_key_file_free(key_file);
  3272. return;
  3273. }
  3274. ba2str(&dev->bdaddr, addr);
  3275. sign_cnt_s = local ? "LocalCSRKSignCounter" : "RemoteCSRKSignCounter";
  3276. sign_cnt = local ? dev->local_sign_cnt : dev->remote_sign_cnt;
  3277. g_key_file_set_integer(key_file, addr, sign_cnt_s, sign_cnt);
  3278. data = g_key_file_to_data(key_file, &length, NULL);
  3279. g_file_set_contents(DEVICES_FILE, data, length, NULL);
  3280. g_free(data);
  3281. g_key_file_free(key_file);
  3282. }
  3283. void bt_update_sign_counter(const bdaddr_t *addr, bool local, uint32_t val)
  3284. {
  3285. struct device *dev;
  3286. dev = find_device(addr);
  3287. if (!dev)
  3288. return;
  3289. if (local)
  3290. dev->local_sign_cnt = val;
  3291. else
  3292. dev->remote_sign_cnt = val;
  3293. store_sign_counter(dev, local);
  3294. }
  3295. static uint8_t set_adapter_scan_mode(const void *buf, uint16_t len)
  3296. {
  3297. const uint8_t *mode = buf;
  3298. bool conn, disc, cur_conn, cur_disc;
  3299. if (len != sizeof(*mode)) {
  3300. error("Invalid set scan mode size (%u bytes), terminating",
  3301. len);
  3302. raise(SIGTERM);
  3303. return HAL_STATUS_FAILED;
  3304. }
  3305. cur_conn = adapter.current_settings & MGMT_SETTING_CONNECTABLE;
  3306. cur_disc = adapter.current_settings & MGMT_SETTING_DISCOVERABLE;
  3307. DBG("connectable %u discoverable %d mode %u", cur_conn, cur_disc,
  3308. *mode);
  3309. switch (*mode) {
  3310. case HAL_ADAPTER_SCAN_MODE_NONE:
  3311. if (!cur_conn && !cur_disc)
  3312. goto done;
  3313. conn = false;
  3314. disc = false;
  3315. break;
  3316. case HAL_ADAPTER_SCAN_MODE_CONN:
  3317. if (cur_conn && !cur_disc)
  3318. goto done;
  3319. conn = true;
  3320. disc = false;
  3321. break;
  3322. case HAL_ADAPTER_SCAN_MODE_CONN_DISC:
  3323. if (cur_conn && cur_disc)
  3324. goto done;
  3325. conn = true;
  3326. disc = true;
  3327. break;
  3328. default:
  3329. return HAL_STATUS_FAILED;
  3330. }
  3331. if (cur_conn != conn) {
  3332. if (!set_mode(MGMT_OP_SET_CONNECTABLE, conn ? 0x01 : 0x00))
  3333. return HAL_STATUS_FAILED;
  3334. }
  3335. if (cur_disc != disc && conn) {
  3336. if (!set_discoverable(disc ? 0x01 : 0x00, 0))
  3337. return HAL_STATUS_FAILED;
  3338. }
  3339. return HAL_STATUS_SUCCESS;
  3340. done:
  3341. /* Android expects property changed callback */
  3342. scan_mode_changed();
  3343. return HAL_STATUS_SUCCESS;
  3344. }
  3345. static void handle_set_adapter_prop_cmd(const void *buf, uint16_t len)
  3346. {
  3347. const struct hal_cmd_set_adapter_prop *cmd = buf;
  3348. uint8_t status;
  3349. if (len != sizeof(*cmd) + cmd->len) {
  3350. error("Invalid set adapter prop cmd (0x%x), terminating",
  3351. cmd->type);
  3352. raise(SIGTERM);
  3353. return;
  3354. }
  3355. switch (cmd->type) {
  3356. case HAL_PROP_ADAPTER_SCAN_MODE:
  3357. status = set_adapter_scan_mode(cmd->val, cmd->len);
  3358. break;
  3359. case HAL_PROP_ADAPTER_NAME:
  3360. status = set_adapter_name(cmd->val, cmd->len);
  3361. break;
  3362. case HAL_PROP_ADAPTER_DISC_TIMEOUT:
  3363. status = set_adapter_discoverable_timeout(cmd->val, cmd->len);
  3364. break;
  3365. default:
  3366. DBG("Unhandled property type 0x%x", cmd->type);
  3367. status = HAL_STATUS_FAILED;
  3368. break;
  3369. }
  3370. if (status != HAL_STATUS_SUCCESS)
  3371. error("Failed to set adapter property (type %u status %u)",
  3372. cmd->type, status);
  3373. ipc_send_rsp(hal_ipc, HAL_SERVICE_ID_BLUETOOTH, HAL_OP_SET_ADAPTER_PROP,
  3374. status);
  3375. }
  3376. static void pair_device_complete(uint8_t status, uint16_t length,
  3377. const void *param, void *user_data)
  3378. {
  3379. const struct mgmt_rp_pair_device *rp = param;
  3380. struct device *dev;
  3381. DBG("status %u", status);
  3382. dev = find_device(&rp->addr.bdaddr);
  3383. if (!dev)
  3384. return;
  3385. /*
  3386. * Update pairing and paired status. Bonded status will be updated once
  3387. * any link key come
  3388. */
  3389. update_device_state(dev, rp->addr.type, status_mgmt2hal(status), false,
  3390. !status, false);
  3391. if (status == MGMT_STATUS_SUCCESS)
  3392. queue_foreach(paired_cb_list, send_paired_notification, dev);
  3393. }
  3394. static uint8_t select_device_bearer(struct device *dev)
  3395. {
  3396. uint8_t res;
  3397. if (dev->bredr && dev->le) {
  3398. if (dev->le_seen > dev->bredr_seen)
  3399. res = dev->bdaddr_type;
  3400. else
  3401. res = BDADDR_BREDR;
  3402. } else {
  3403. res = dev->bredr ? BDADDR_BREDR : dev->bdaddr_type;
  3404. }
  3405. DBG("Selected bearer %d", res);
  3406. return res;
  3407. }
  3408. uint8_t bt_device_last_seen_bearer(const bdaddr_t *bdaddr)
  3409. {
  3410. struct device *dev;
  3411. dev = find_device(bdaddr);
  3412. if (!dev)
  3413. return BDADDR_BREDR;
  3414. return select_device_bearer(dev);
  3415. }
  3416. static void handle_create_bond_cmd(const void *buf, uint16_t len)
  3417. {
  3418. const struct hal_cmd_create_bond *cmd = buf;
  3419. struct device *dev;
  3420. uint8_t status;
  3421. struct mgmt_cp_pair_device cp;
  3422. dev = get_device_android(cmd->bdaddr);
  3423. cp.io_cap = DEFAULT_IO_CAPABILITY;
  3424. cp.addr.type = select_device_bearer(dev);
  3425. bacpy(&cp.addr.bdaddr, &dev->bdaddr);
  3426. /* TODO: Handle transport parameter */
  3427. if (cmd->transport > BT_TRANSPORT_LE) {
  3428. status = HAL_STATUS_INVALID;
  3429. goto fail;
  3430. }
  3431. if (device_is_paired(dev, cp.addr.type)) {
  3432. status = HAL_STATUS_FAILED;
  3433. goto fail;
  3434. }
  3435. if (mgmt_send(mgmt_if, MGMT_OP_PAIR_DEVICE, adapter.index, sizeof(cp),
  3436. &cp, pair_device_complete, NULL, NULL) == 0) {
  3437. status = HAL_STATUS_FAILED;
  3438. goto fail;
  3439. }
  3440. status = HAL_STATUS_SUCCESS;
  3441. update_device_state(dev, cp.addr.type, HAL_STATUS_SUCCESS, true, false,
  3442. false);
  3443. fail:
  3444. ipc_send_rsp(hal_ipc, HAL_SERVICE_ID_BLUETOOTH, HAL_OP_CREATE_BOND,
  3445. status);
  3446. }
  3447. static void handle_cancel_bond_cmd(const void *buf, uint16_t len)
  3448. {
  3449. const struct hal_cmd_cancel_bond *cmd = buf;
  3450. struct mgmt_addr_info cp;
  3451. struct device *dev;
  3452. uint8_t status;
  3453. dev = find_device_android(cmd->bdaddr);
  3454. if (!dev) {
  3455. status = HAL_STATUS_FAILED;
  3456. goto failed;
  3457. }
  3458. cp.type = select_device_bearer(dev);
  3459. bacpy(&cp.bdaddr, &dev->bdaddr);
  3460. if (mgmt_reply(mgmt_if, MGMT_OP_CANCEL_PAIR_DEVICE, adapter.index,
  3461. sizeof(cp), &cp, NULL, NULL, NULL) == 0) {
  3462. status = HAL_STATUS_FAILED;
  3463. goto failed;
  3464. }
  3465. status = HAL_STATUS_SUCCESS;
  3466. failed:
  3467. ipc_send_rsp(hal_ipc, HAL_SERVICE_ID_BLUETOOTH, HAL_OP_CANCEL_BOND,
  3468. status);
  3469. }
  3470. static void send_unpaired_notification(void *data, void *user_data)
  3471. {
  3472. bt_unpaired_device_cb cb = data;
  3473. struct mgmt_addr_info *addr = user_data;
  3474. cb(&addr->bdaddr);
  3475. }
  3476. static void unpair_device_complete(uint8_t status, uint16_t length,
  3477. const void *param, void *user_data)
  3478. {
  3479. const struct mgmt_rp_unpair_device *rp = param;
  3480. struct device *dev;
  3481. DBG("status %u", status);
  3482. if (status != MGMT_STATUS_SUCCESS && status != MGMT_STATUS_NOT_PAIRED)
  3483. return;
  3484. dev = find_device(&rp->addr.bdaddr);
  3485. if (!dev)
  3486. return;
  3487. update_device_state(dev, rp->addr.type, HAL_STATUS_SUCCESS, false,
  3488. false, false);
  3489. /* Cast rp->addr to (void *) since queue_foreach don't take const */
  3490. if (!dev->le_paired && !dev->bredr_paired)
  3491. queue_foreach(unpaired_cb_list, send_unpaired_notification,
  3492. (void *)&rp->addr);
  3493. }
  3494. static void handle_remove_bond_cmd(const void *buf, uint16_t len)
  3495. {
  3496. const struct hal_cmd_remove_bond *cmd = buf;
  3497. struct mgmt_cp_unpair_device cp;
  3498. struct device *dev;
  3499. uint8_t status;
  3500. dev = find_device_android(cmd->bdaddr);
  3501. if (!dev) {
  3502. status = HAL_STATUS_FAILED;
  3503. goto failed;
  3504. }
  3505. cp.disconnect = 1;
  3506. bacpy(&cp.addr.bdaddr, &dev->bdaddr);
  3507. if (dev->le_paired) {
  3508. cp.addr.type = dev->bdaddr_type;
  3509. if (mgmt_send(mgmt_if, MGMT_OP_UNPAIR_DEVICE, adapter.index,
  3510. sizeof(cp), &cp, unpair_device_complete,
  3511. NULL, NULL) == 0) {
  3512. status = HAL_STATUS_FAILED;
  3513. goto failed;
  3514. }
  3515. }
  3516. if (dev->bredr_paired) {
  3517. cp.addr.type = BDADDR_BREDR;
  3518. if (mgmt_send(mgmt_if, MGMT_OP_UNPAIR_DEVICE, adapter.index,
  3519. sizeof(cp), &cp, unpair_device_complete,
  3520. NULL, NULL) == 0) {
  3521. status = HAL_STATUS_FAILED;
  3522. goto failed;
  3523. }
  3524. }
  3525. status = HAL_STATUS_SUCCESS;
  3526. failed:
  3527. ipc_send_rsp(hal_ipc, HAL_SERVICE_ID_BLUETOOTH, HAL_OP_REMOVE_BOND,
  3528. status);
  3529. }
  3530. static void handle_pin_reply_cmd(const void *buf, uint16_t len)
  3531. {
  3532. const struct hal_cmd_pin_reply *cmd = buf;
  3533. uint8_t status;
  3534. bdaddr_t bdaddr;
  3535. char addr[18];
  3536. android2bdaddr(cmd->bdaddr, &bdaddr);
  3537. ba2str(&bdaddr, addr);
  3538. DBG("%s accept %u pin_len %u", addr, cmd->accept, cmd->pin_len);
  3539. if (!cmd->accept && cmd->pin_len) {
  3540. status = HAL_STATUS_INVALID;
  3541. goto failed;
  3542. }
  3543. if (cmd->accept) {
  3544. struct mgmt_cp_pin_code_reply rp;
  3545. memset(&rp, 0, sizeof(rp));
  3546. bacpy(&rp.addr.bdaddr, &bdaddr);
  3547. rp.addr.type = BDADDR_BREDR;
  3548. rp.pin_len = cmd->pin_len;
  3549. memcpy(rp.pin_code, cmd->pin_code, rp.pin_len);
  3550. if (mgmt_reply(mgmt_if, MGMT_OP_PIN_CODE_REPLY, adapter.index,
  3551. sizeof(rp), &rp, NULL, NULL, NULL) == 0) {
  3552. status = HAL_STATUS_FAILED;
  3553. goto failed;
  3554. }
  3555. } else {
  3556. struct mgmt_cp_pin_code_neg_reply rp;
  3557. bacpy(&rp.addr.bdaddr, &bdaddr);
  3558. rp.addr.type = BDADDR_BREDR;
  3559. if (mgmt_reply(mgmt_if, MGMT_OP_PIN_CODE_NEG_REPLY,
  3560. adapter.index, sizeof(rp), &rp,
  3561. NULL, NULL, NULL) == 0) {
  3562. status = HAL_STATUS_FAILED;
  3563. goto failed;
  3564. }
  3565. }
  3566. status = HAL_STATUS_SUCCESS;
  3567. failed:
  3568. ipc_send_rsp(hal_ipc, HAL_SERVICE_ID_BLUETOOTH, HAL_OP_PIN_REPLY,
  3569. status);
  3570. }
  3571. static uint8_t user_confirm_reply(const bdaddr_t *bdaddr, uint8_t type,
  3572. bool accept)
  3573. {
  3574. struct mgmt_addr_info cp;
  3575. uint16_t opcode;
  3576. if (accept)
  3577. opcode = MGMT_OP_USER_CONFIRM_REPLY;
  3578. else
  3579. opcode = MGMT_OP_USER_CONFIRM_NEG_REPLY;
  3580. bacpy(&cp.bdaddr, bdaddr);
  3581. cp.type = type;
  3582. if (mgmt_reply(mgmt_if, opcode, adapter.index, sizeof(cp), &cp,
  3583. NULL, NULL, NULL) > 0)
  3584. return HAL_STATUS_SUCCESS;
  3585. return HAL_STATUS_FAILED;
  3586. }
  3587. static uint8_t user_passkey_reply(const bdaddr_t *bdaddr, uint8_t type,
  3588. bool accept, uint32_t passkey)
  3589. {
  3590. unsigned int id;
  3591. if (accept) {
  3592. struct mgmt_cp_user_passkey_reply cp;
  3593. memset(&cp, 0, sizeof(cp));
  3594. bacpy(&cp.addr.bdaddr, bdaddr);
  3595. cp.addr.type = type;
  3596. cp.passkey = cpu_to_le32(passkey);
  3597. id = mgmt_reply(mgmt_if, MGMT_OP_USER_PASSKEY_REPLY,
  3598. adapter.index, sizeof(cp), &cp,
  3599. NULL, NULL, NULL);
  3600. } else {
  3601. struct mgmt_cp_user_passkey_neg_reply cp;
  3602. memset(&cp, 0, sizeof(cp));
  3603. bacpy(&cp.addr.bdaddr, bdaddr);
  3604. cp.addr.type = type;
  3605. id = mgmt_reply(mgmt_if, MGMT_OP_USER_PASSKEY_NEG_REPLY,
  3606. adapter.index, sizeof(cp), &cp,
  3607. NULL, NULL, NULL);
  3608. }
  3609. if (id == 0)
  3610. return HAL_STATUS_FAILED;
  3611. return HAL_STATUS_SUCCESS;
  3612. }
  3613. static void handle_ssp_reply_cmd(const void *buf, uint16_t len)
  3614. {
  3615. const struct hal_cmd_ssp_reply *cmd = buf;
  3616. struct device *dev;
  3617. uint8_t status;
  3618. char addr[18];
  3619. /* TODO should parameters sanity be verified here? */
  3620. dev = find_device_android(cmd->bdaddr);
  3621. if (!dev)
  3622. return;
  3623. ba2str(&dev->bdaddr, addr);
  3624. DBG("%s variant %u accept %u", addr, cmd->ssp_variant, cmd->accept);
  3625. switch (cmd->ssp_variant) {
  3626. case HAL_SSP_VARIANT_CONFIRM:
  3627. case HAL_SSP_VARIANT_CONSENT:
  3628. status = user_confirm_reply(&dev->bdaddr,
  3629. select_device_bearer(dev),
  3630. cmd->accept);
  3631. break;
  3632. case HAL_SSP_VARIANT_ENTRY:
  3633. status = user_passkey_reply(&dev->bdaddr,
  3634. select_device_bearer(dev),
  3635. cmd->accept, cmd->passkey);
  3636. break;
  3637. case HAL_SSP_VARIANT_NOTIF:
  3638. status = HAL_STATUS_SUCCESS;
  3639. break;
  3640. default:
  3641. status = HAL_STATUS_INVALID;
  3642. break;
  3643. }
  3644. ipc_send_rsp(hal_ipc, HAL_SERVICE_ID_BLUETOOTH, HAL_OP_SSP_REPLY,
  3645. status);
  3646. }
  3647. static void handle_get_remote_services_cmd(const void *buf, uint16_t len)
  3648. {
  3649. const struct hal_cmd_get_remote_services *cmd = buf;
  3650. uint8_t status;
  3651. bdaddr_t addr;
  3652. android2bdaddr(&cmd->bdaddr, &addr);
  3653. status = browse_remote_sdp(&addr);
  3654. ipc_send_rsp(hal_ipc, HAL_SERVICE_ID_BLUETOOTH,
  3655. HAL_OP_GET_REMOTE_SERVICES, status);
  3656. }
  3657. static uint8_t get_device_uuids(struct device *dev)
  3658. {
  3659. send_device_uuids_notif(dev);
  3660. return HAL_STATUS_SUCCESS;
  3661. }
  3662. static uint8_t get_device_class(struct device *dev)
  3663. {
  3664. send_device_property(dev, HAL_PROP_DEVICE_CLASS, sizeof(dev->class),
  3665. &dev->class);
  3666. return HAL_STATUS_SUCCESS;
  3667. }
  3668. static uint8_t get_device_type(struct device *dev)
  3669. {
  3670. uint8_t type = get_device_android_type(dev);
  3671. send_device_property(dev, HAL_PROP_DEVICE_TYPE, sizeof(type), &type);
  3672. return HAL_STATUS_SUCCESS;
  3673. }
  3674. static uint8_t get_device_service_rec(struct device *dev)
  3675. {
  3676. DBG("Not implemented");
  3677. /* TODO */
  3678. return HAL_STATUS_FAILED;
  3679. }
  3680. static uint8_t get_device_friendly_name(struct device *dev)
  3681. {
  3682. if (!dev->friendly_name)
  3683. return HAL_STATUS_FAILED;
  3684. send_device_property(dev, HAL_PROP_DEVICE_FRIENDLY_NAME,
  3685. strlen(dev->friendly_name), dev->friendly_name);
  3686. return HAL_STATUS_SUCCESS;
  3687. }
  3688. static uint8_t get_device_rssi(struct device *dev)
  3689. {
  3690. if (!dev->rssi)
  3691. return HAL_STATUS_FAILED;
  3692. send_device_property(dev, HAL_PROP_DEVICE_RSSI, sizeof(dev->rssi),
  3693. &dev->rssi);
  3694. return HAL_STATUS_SUCCESS;
  3695. }
  3696. static uint8_t get_device_version_info(struct device *dev)
  3697. {
  3698. DBG("Not implemented");
  3699. /* TODO */
  3700. return HAL_STATUS_FAILED;
  3701. }
  3702. static uint8_t get_device_timestamp(struct device *dev)
  3703. {
  3704. uint32_t timestamp;
  3705. timestamp = device_timestamp(dev);
  3706. send_device_property(dev, HAL_PROP_DEVICE_TIMESTAMP, sizeof(timestamp),
  3707. &timestamp);
  3708. return HAL_STATUS_SUCCESS;
  3709. }
  3710. static void get_remote_device_props(struct device *dev)
  3711. {
  3712. uint8_t buf[IPC_MTU];
  3713. struct hal_ev_remote_device_props *ev = (void *) buf;
  3714. uint128_t uuids[g_slist_length(dev->uuids)];
  3715. uint8_t android_type;
  3716. uint32_t timestamp;
  3717. size_t size, i;
  3718. GSList *l;
  3719. memset(buf, 0, sizeof(buf));
  3720. size = sizeof(*ev);
  3721. ev->status = HAL_STATUS_SUCCESS;
  3722. get_device_android_addr(dev, ev->bdaddr);
  3723. android_type = get_device_android_type(dev);
  3724. size += fill_hal_prop(buf + size, HAL_PROP_DEVICE_TYPE,
  3725. sizeof(android_type), &android_type);
  3726. ev->num_props++;
  3727. size += fill_hal_prop(buf + size, HAL_PROP_DEVICE_CLASS,
  3728. sizeof(dev->class), &dev->class);
  3729. ev->num_props++;
  3730. if (dev->rssi) {
  3731. size += fill_hal_prop(buf + size, HAL_PROP_DEVICE_RSSI,
  3732. sizeof(dev->rssi), &dev->rssi);
  3733. ev->num_props++;
  3734. }
  3735. size += fill_hal_prop(buf + size, HAL_PROP_DEVICE_NAME,
  3736. strlen(dev->name), dev->name);
  3737. ev->num_props++;
  3738. if (dev->friendly_name) {
  3739. size += fill_hal_prop(buf + size,
  3740. HAL_PROP_DEVICE_FRIENDLY_NAME,
  3741. strlen(dev->friendly_name),
  3742. dev->friendly_name);
  3743. ev->num_props++;
  3744. }
  3745. for (i = 0, l = dev->uuids; l; l = g_slist_next(l), i++)
  3746. memcpy(&uuids[i], l->data, sizeof(uint128_t));
  3747. size += fill_hal_prop(buf + size, HAL_PROP_DEVICE_UUIDS, sizeof(uuids),
  3748. uuids);
  3749. ev->num_props++;
  3750. timestamp = get_device_timestamp(dev);
  3751. size += fill_hal_prop(buf + size, HAL_PROP_DEVICE_TIMESTAMP,
  3752. sizeof(timestamp), &timestamp);
  3753. ev->num_props++;
  3754. ipc_send_notif(hal_ipc, HAL_SERVICE_ID_BLUETOOTH,
  3755. HAL_EV_REMOTE_DEVICE_PROPS, size, buf);
  3756. }
  3757. static void send_bonded_devices_props(void)
  3758. {
  3759. GSList *l;
  3760. for (l = bonded_devices; l; l = g_slist_next(l)) {
  3761. struct device *dev = l->data;
  3762. get_remote_device_props(dev);
  3763. }
  3764. }
  3765. static void handle_enable_cmd(const void *buf, uint16_t len)
  3766. {
  3767. uint8_t status;
  3768. /*
  3769. * Framework expects all properties to be emitted while enabling
  3770. * adapter
  3771. */
  3772. get_adapter_properties();
  3773. /* Sent also properties of bonded devices */
  3774. send_bonded_devices_props();
  3775. if (adapter.current_settings & MGMT_SETTING_POWERED) {
  3776. status = HAL_STATUS_SUCCESS;
  3777. goto reply;
  3778. }
  3779. if (!set_mode(MGMT_OP_SET_POWERED, 0x01)) {
  3780. status = HAL_STATUS_FAILED;
  3781. goto reply;
  3782. }
  3783. status = HAL_STATUS_SUCCESS;
  3784. reply:
  3785. ipc_send_rsp(hal_ipc, HAL_SERVICE_ID_BLUETOOTH, HAL_OP_ENABLE, status);
  3786. }
  3787. static void handle_disable_cmd(const void *buf, uint16_t len)
  3788. {
  3789. uint8_t status;
  3790. if (!(adapter.current_settings & MGMT_SETTING_POWERED)) {
  3791. status = HAL_STATUS_SUCCESS;
  3792. goto reply;
  3793. }
  3794. /* Cancel all pending requests. Need it in case of ongoing paring */
  3795. mgmt_cancel_index(mgmt_if, adapter.index);
  3796. if (!set_mode(MGMT_OP_SET_POWERED, 0x00)) {
  3797. status = HAL_STATUS_FAILED;
  3798. goto reply;
  3799. }
  3800. status = HAL_STATUS_SUCCESS;
  3801. reply:
  3802. ipc_send_rsp(hal_ipc, HAL_SERVICE_ID_BLUETOOTH, HAL_OP_DISABLE, status);
  3803. }
  3804. static void handle_get_adapter_props_cmd(const void *buf, uint16_t len)
  3805. {
  3806. get_adapter_properties();
  3807. ipc_send_rsp(hal_ipc, HAL_SERVICE_ID_BLUETOOTH,
  3808. HAL_OP_GET_ADAPTER_PROPS, HAL_STATUS_SUCCESS);
  3809. }
  3810. static void handle_get_remote_device_props_cmd(const void *buf, uint16_t len)
  3811. {
  3812. const struct hal_cmd_get_remote_device_props *cmd = buf;
  3813. struct device *dev;
  3814. uint8_t status;
  3815. dev = find_device_android(cmd->bdaddr);
  3816. if (!dev) {
  3817. status = HAL_STATUS_INVALID;
  3818. goto failed;
  3819. }
  3820. get_remote_device_props(dev);
  3821. status = HAL_STATUS_SUCCESS;
  3822. failed:
  3823. ipc_send_rsp(hal_ipc, HAL_SERVICE_ID_BLUETOOTH,
  3824. HAL_OP_GET_REMOTE_DEVICE_PROPS, status);
  3825. }
  3826. static void handle_get_remote_device_prop_cmd(const void *buf, uint16_t len)
  3827. {
  3828. const struct hal_cmd_get_remote_device_prop *cmd = buf;
  3829. struct device *dev;
  3830. uint8_t status;
  3831. dev = find_device_android(cmd->bdaddr);
  3832. if (!dev) {
  3833. status = HAL_STATUS_INVALID;
  3834. goto failed;
  3835. }
  3836. switch (cmd->type) {
  3837. case HAL_PROP_DEVICE_NAME:
  3838. status = get_device_name(dev);
  3839. break;
  3840. case HAL_PROP_DEVICE_UUIDS:
  3841. status = get_device_uuids(dev);
  3842. break;
  3843. case HAL_PROP_DEVICE_CLASS:
  3844. status = get_device_class(dev);
  3845. break;
  3846. case HAL_PROP_DEVICE_TYPE:
  3847. status = get_device_type(dev);
  3848. break;
  3849. case HAL_PROP_DEVICE_SERVICE_REC:
  3850. status = get_device_service_rec(dev);
  3851. break;
  3852. case HAL_PROP_DEVICE_FRIENDLY_NAME:
  3853. status = get_device_friendly_name(dev);
  3854. break;
  3855. case HAL_PROP_DEVICE_RSSI:
  3856. status = get_device_rssi(dev);
  3857. break;
  3858. case HAL_PROP_DEVICE_VERSION_INFO:
  3859. status = get_device_version_info(dev);
  3860. break;
  3861. case HAL_PROP_DEVICE_TIMESTAMP:
  3862. status = get_device_timestamp(dev);
  3863. break;
  3864. default:
  3865. status = HAL_STATUS_FAILED;
  3866. break;
  3867. }
  3868. if (status != HAL_STATUS_SUCCESS)
  3869. error("Failed to get device property (type %u status %u)",
  3870. cmd->type, status);
  3871. failed:
  3872. ipc_send_rsp(hal_ipc, HAL_SERVICE_ID_BLUETOOTH,
  3873. HAL_OP_GET_REMOTE_DEVICE_PROP, status);
  3874. }
  3875. static uint8_t set_device_friendly_name(struct device *dev, const uint8_t *val,
  3876. uint16_t len)
  3877. {
  3878. DBG("");
  3879. g_free(dev->friendly_name);
  3880. dev->friendly_name = g_strndup((const char *) val, len);
  3881. if (dev->bredr_paired || dev->le_paired)
  3882. store_device_info(dev, DEVICES_FILE);
  3883. else
  3884. store_device_info(dev, CACHE_FILE);
  3885. return HAL_STATUS_SUCCESS;
  3886. }
  3887. static uint8_t set_device_version_info(struct device *dev)
  3888. {
  3889. DBG("Not implemented");
  3890. /* TODO */
  3891. return HAL_STATUS_FAILED;
  3892. }
  3893. static void handle_set_remote_device_prop_cmd(const void *buf, uint16_t len)
  3894. {
  3895. const struct hal_cmd_set_remote_device_prop *cmd = buf;
  3896. struct device *dev;
  3897. uint8_t status;
  3898. if (len != sizeof(*cmd) + cmd->len) {
  3899. error("Invalid set remote device prop cmd (0x%x), terminating",
  3900. cmd->type);
  3901. raise(SIGTERM);
  3902. return;
  3903. }
  3904. dev = find_device_android(cmd->bdaddr);
  3905. if (!dev) {
  3906. status = HAL_STATUS_INVALID;
  3907. goto failed;
  3908. }
  3909. switch (cmd->type) {
  3910. case HAL_PROP_DEVICE_FRIENDLY_NAME:
  3911. status = set_device_friendly_name(dev, cmd->val, cmd->len);
  3912. break;
  3913. case HAL_PROP_DEVICE_VERSION_INFO:
  3914. status = set_device_version_info(dev);
  3915. break;
  3916. default:
  3917. status = HAL_STATUS_FAILED;
  3918. break;
  3919. }
  3920. if (status != HAL_STATUS_SUCCESS)
  3921. error("Failed to set device property (type %u status %u)",
  3922. cmd->type, status);
  3923. failed:
  3924. ipc_send_rsp(hal_ipc, HAL_SERVICE_ID_BLUETOOTH,
  3925. HAL_OP_SET_REMOTE_DEVICE_PROP, status);
  3926. }
  3927. static void handle_get_remote_service_rec_cmd(const void *buf, uint16_t len)
  3928. {
  3929. const struct hal_cmd_get_remote_service_rec *cmd = buf;
  3930. uint8_t status;
  3931. bdaddr_t addr;
  3932. android2bdaddr(&cmd->bdaddr, &addr);
  3933. status = find_remote_sdp_rec(&addr, cmd->uuid);
  3934. ipc_send_rsp(hal_ipc, HAL_SERVICE_ID_BLUETOOTH,
  3935. HAL_OP_GET_REMOTE_SERVICE_REC, status);
  3936. }
  3937. static void handle_start_discovery_cmd(const void *buf, uint16_t len)
  3938. {
  3939. uint8_t status;
  3940. if (!(adapter.current_settings & MGMT_SETTING_POWERED)) {
  3941. status = HAL_STATUS_NOT_READY;
  3942. goto failed;
  3943. }
  3944. switch (adapter.cur_discovery_type) {
  3945. case SCAN_TYPE_DUAL:
  3946. case SCAN_TYPE_BREDR:
  3947. break;
  3948. case SCAN_TYPE_NONE:
  3949. if (!start_discovery(SCAN_TYPE_DUAL)) {
  3950. status = HAL_STATUS_FAILED;
  3951. goto failed;
  3952. }
  3953. break;
  3954. case SCAN_TYPE_LE:
  3955. if (get_supported_discovery_type() == SCAN_TYPE_LE)
  3956. break;
  3957. if (!stop_discovery(SCAN_TYPE_LE)) {
  3958. status = HAL_STATUS_FAILED;
  3959. goto failed;
  3960. }
  3961. adapter.exp_discovery_type = SCAN_TYPE_DUAL;
  3962. break;
  3963. }
  3964. status = HAL_STATUS_SUCCESS;
  3965. failed:
  3966. ipc_send_rsp(hal_ipc, HAL_SERVICE_ID_BLUETOOTH, HAL_OP_START_DISCOVERY,
  3967. status);
  3968. }
  3969. static void handle_cancel_discovery_cmd(const void *buf, uint16_t len)
  3970. {
  3971. uint8_t status;
  3972. if (!(adapter.current_settings & MGMT_SETTING_POWERED)) {
  3973. status = HAL_STATUS_NOT_READY;
  3974. goto failed;
  3975. }
  3976. switch (adapter.cur_discovery_type) {
  3977. case SCAN_TYPE_NONE:
  3978. break;
  3979. case SCAN_TYPE_LE:
  3980. if (get_supported_discovery_type() != SCAN_TYPE_LE)
  3981. break;
  3982. if (adapter.exp_discovery_type == SCAN_TYPE_LE) {
  3983. status = HAL_STATUS_BUSY;
  3984. goto failed;
  3985. }
  3986. if (!stop_discovery(SCAN_TYPE_LE)) {
  3987. status = HAL_STATUS_FAILED;
  3988. goto failed;
  3989. }
  3990. break;
  3991. case SCAN_TYPE_DUAL:
  3992. case SCAN_TYPE_BREDR:
  3993. if (!stop_discovery(SCAN_TYPE_DUAL)) {
  3994. status = HAL_STATUS_FAILED;
  3995. goto failed;
  3996. }
  3997. if (adapter.exp_discovery_type != SCAN_TYPE_LE)
  3998. adapter.exp_discovery_type = SCAN_TYPE_NONE;
  3999. break;
  4000. }
  4001. status = HAL_STATUS_SUCCESS;
  4002. failed:
  4003. ipc_send_rsp(hal_ipc, HAL_SERVICE_ID_BLUETOOTH, HAL_OP_CANCEL_DISCOVERY,
  4004. status);
  4005. }
  4006. static void handle_dut_mode_conf_cmd(const void *buf, uint16_t len)
  4007. {
  4008. const struct hal_cmd_dut_mode_conf *cmd = buf;
  4009. char path[FILENAME_MAX];
  4010. uint8_t status;
  4011. int fd, ret;
  4012. DBG("enable %u", cmd->enable);
  4013. snprintf(path, sizeof(path), DUT_MODE_FILE, adapter.index);
  4014. fd = open(path, O_WRONLY);
  4015. if (fd < 0) {
  4016. status = HAL_STATUS_FAILED;
  4017. goto failed;
  4018. }
  4019. if (cmd->enable)
  4020. ret = write(fd, "1", sizeof("1"));
  4021. else
  4022. ret = write(fd, "0", sizeof("0"));
  4023. if (ret < 0)
  4024. status = HAL_STATUS_FAILED;
  4025. else
  4026. status = HAL_STATUS_SUCCESS;
  4027. close(fd);
  4028. failed:
  4029. ipc_send_rsp(hal_ipc, HAL_SERVICE_ID_BLUETOOTH, HAL_OP_DUT_MODE_CONF,
  4030. status);
  4031. }
  4032. static void handle_dut_mode_send_cmd(const void *buf, uint16_t len)
  4033. {
  4034. const struct hal_cmd_dut_mode_send *cmd = buf;
  4035. if (len != sizeof(*cmd) + cmd->len) {
  4036. error("Invalid dut mode send cmd, terminating");
  4037. raise(SIGTERM);
  4038. return;
  4039. }
  4040. error("dut_mode_send not supported (cmd opcode %u)", cmd->opcode);
  4041. /* TODO */
  4042. ipc_send_rsp(hal_ipc, HAL_SERVICE_ID_BLUETOOTH, HAL_OP_DUT_MODE_SEND,
  4043. HAL_STATUS_FAILED);
  4044. }
  4045. static void handle_le_test_mode_cmd(const void *buf, uint16_t len)
  4046. {
  4047. const struct hal_cmd_le_test_mode *cmd = buf;
  4048. if (len != sizeof(*cmd) + cmd->len) {
  4049. error("Invalid le test mode cmd, terminating");
  4050. raise(SIGTERM);
  4051. return;
  4052. }
  4053. error("le_test_mode not supported (cmd opcode %u)", cmd->opcode);
  4054. /* TODO */
  4055. ipc_send_rsp(hal_ipc, HAL_SERVICE_ID_BLUETOOTH, HAL_OP_LE_TEST_MODE,
  4056. HAL_STATUS_FAILED);
  4057. }
  4058. static void handle_get_connection_state(const void *buf, uint16_t len)
  4059. {
  4060. const struct hal_cmd_get_connection_state *cmd = buf;
  4061. struct hal_rsp_get_connection_state rsp;
  4062. struct device *dev;
  4063. char address[18];
  4064. bdaddr_t bdaddr;
  4065. android2bdaddr(cmd->bdaddr, &bdaddr);
  4066. ba2str(&bdaddr, address);
  4067. dev = find_device_android(cmd->bdaddr);
  4068. if (dev && dev->connected)
  4069. rsp.connection_state = 1;
  4070. else
  4071. rsp.connection_state = 0;
  4072. DBG("%s %u", address, rsp.connection_state);
  4073. ipc_send_rsp_full(hal_ipc, HAL_SERVICE_ID_BLUETOOTH,
  4074. HAL_OP_GET_CONNECTION_STATE, sizeof(rsp), &rsp,
  4075. -1);
  4076. }
  4077. static void handle_read_energy_info(const void *buf, uint16_t len)
  4078. {
  4079. DBG("");
  4080. /* TODO */
  4081. ipc_send_rsp(hal_ipc, HAL_SERVICE_ID_BLUETOOTH, HAL_OP_READ_ENERGY_INFO,
  4082. HAL_STATUS_UNSUPPORTED);
  4083. }
  4084. static const struct ipc_handler cmd_handlers[] = {
  4085. /* HAL_OP_ENABLE */
  4086. { handle_enable_cmd, false, 0 },
  4087. /* HAL_OP_DISABLE */
  4088. { handle_disable_cmd, false, 0 },
  4089. /* HAL_OP_GET_ADAPTER_PROPS */
  4090. { handle_get_adapter_props_cmd, false, 0 },
  4091. /* HAL_OP_GET_ADAPTER_PROP */
  4092. { handle_get_adapter_prop_cmd, false,
  4093. sizeof(struct hal_cmd_get_adapter_prop) },
  4094. /* HAL_OP_SET_ADAPTER_PROP */
  4095. { handle_set_adapter_prop_cmd, true,
  4096. sizeof(struct hal_cmd_set_adapter_prop) },
  4097. /* HAL_OP_GET_REMOTE_DEVICE_PROPS */
  4098. { handle_get_remote_device_props_cmd, false,
  4099. sizeof(struct hal_cmd_get_remote_device_props) },
  4100. /* HAL_OP_GET_REMOTE_DEVICE_PROP */
  4101. { handle_get_remote_device_prop_cmd, false,
  4102. sizeof(struct hal_cmd_get_remote_device_prop) },
  4103. /* HAL_OP_SET_REMOTE_DEVICE_PROP */
  4104. { handle_set_remote_device_prop_cmd, true,
  4105. sizeof(struct hal_cmd_set_remote_device_prop) },
  4106. /* HAL_OP_GET_REMOTE_SERVICE_REC */
  4107. { handle_get_remote_service_rec_cmd, false,
  4108. sizeof(struct hal_cmd_get_remote_service_rec) },
  4109. /* HAL_OP_GET_REMOTE_SERVICES */
  4110. { handle_get_remote_services_cmd, false,
  4111. sizeof(struct hal_cmd_get_remote_services) },
  4112. /* HAL_OP_START_DISCOVERY */
  4113. { handle_start_discovery_cmd, false, 0 },
  4114. /* HAL_OP_CANCEL_DISCOVERY */
  4115. { handle_cancel_discovery_cmd, false, 0 },
  4116. /* HAL_OP_CREATE_BOND */
  4117. { handle_create_bond_cmd, false, sizeof(struct hal_cmd_create_bond) },
  4118. /* HAL_OP_REMOVE_BOND */
  4119. { handle_remove_bond_cmd, false, sizeof(struct hal_cmd_remove_bond) },
  4120. /* HAL_OP_CANCEL_BOND */
  4121. {handle_cancel_bond_cmd, false, sizeof(struct hal_cmd_cancel_bond) },
  4122. /* HAL_OP_PIN_REPLY */
  4123. { handle_pin_reply_cmd, false, sizeof(struct hal_cmd_pin_reply) },
  4124. /* HAL_OP_SSP_REPLY */
  4125. { handle_ssp_reply_cmd, false, sizeof(struct hal_cmd_ssp_reply) },
  4126. /* HAL_OP_DUT_MODE_CONF */
  4127. { handle_dut_mode_conf_cmd, false,
  4128. sizeof(struct hal_cmd_dut_mode_conf) },
  4129. /* HAL_OP_DUT_MODE_SEND */
  4130. { handle_dut_mode_send_cmd, true,
  4131. sizeof(struct hal_cmd_dut_mode_send) },
  4132. /* HAL_OP_LE_TEST_MODE */
  4133. { handle_le_test_mode_cmd, true, sizeof(struct hal_cmd_le_test_mode) },
  4134. /* HAL_OP_GET_CONNECTION_STATE */
  4135. { handle_get_connection_state, false,
  4136. sizeof(struct hal_cmd_get_connection_state) },
  4137. /* HAL_OP_READ_ENERGY_INFO */
  4138. { handle_read_energy_info, false, 0 },
  4139. };
  4140. bool bt_bluetooth_register(struct ipc *ipc, uint8_t mode)
  4141. {
  4142. uint32_t missing_settings;
  4143. DBG("mode 0x%x", mode);
  4144. unpaired_cb_list = queue_new();
  4145. paired_cb_list = queue_new();
  4146. missing_settings = adapter.current_settings ^
  4147. adapter.supported_settings;
  4148. switch (mode) {
  4149. case HAL_MODE_DEFAULT:
  4150. if (missing_settings & MGMT_SETTING_BREDR)
  4151. set_mode(MGMT_OP_SET_BREDR, 0x01);
  4152. if (missing_settings & MGMT_SETTING_LE)
  4153. set_mode(MGMT_OP_SET_LE, 0x01);
  4154. break;
  4155. case HAL_MODE_LE:
  4156. /* Fail if controller does not support LE */
  4157. if (!(adapter.supported_settings & MGMT_SETTING_LE)) {
  4158. error("LE Mode not supported by controller");
  4159. goto failed;
  4160. }
  4161. /* If LE it is not yet enabled then enable it */
  4162. if (!(adapter.current_settings & MGMT_SETTING_LE))
  4163. set_mode(MGMT_OP_SET_LE, 0x01);
  4164. /* Disable BR/EDR if it is enabled */
  4165. if (adapter.current_settings & MGMT_SETTING_BREDR)
  4166. set_mode(MGMT_OP_SET_BREDR, 0x00);
  4167. break;
  4168. case HAL_MODE_BREDR:
  4169. /* Fail if controller does not support BR/EDR */
  4170. if (!(adapter.supported_settings & MGMT_SETTING_BREDR)) {
  4171. error("BR/EDR Mode not supported");
  4172. goto failed;
  4173. }
  4174. /* Enable BR/EDR if it is not enabled */
  4175. if (missing_settings & MGMT_SETTING_BREDR)
  4176. set_mode(MGMT_OP_SET_BREDR, 0x01);
  4177. /*
  4178. * According to Core Spec 4.0 host should not disable LE in
  4179. * controller if it was enabled (Vol 2. Part E. 7.3.79).
  4180. * Core Spec 4.1 removed this limitation and chips seem to be
  4181. * handling this just fine anyway.
  4182. */
  4183. if (adapter.current_settings & MGMT_SETTING_LE)
  4184. set_mode(MGMT_OP_SET_LE, 0x00);
  4185. break;
  4186. default:
  4187. error("Unknown mode 0x%x", mode);
  4188. goto failed;
  4189. }
  4190. /* Requested mode is set now, let's enable secure connection */
  4191. if (missing_settings & MGMT_SETTING_SECURE_CONN)
  4192. set_mode(MGMT_OP_SET_SECURE_CONN, 0x01);
  4193. /* Set initial default name */
  4194. if (!adapter.name) {
  4195. adapter.name = g_strdup(bt_config_get_model());
  4196. set_adapter_name((uint8_t *)adapter.name, strlen(adapter.name));
  4197. }
  4198. hal_ipc = ipc;
  4199. ipc_register(hal_ipc, HAL_SERVICE_ID_BLUETOOTH, cmd_handlers,
  4200. G_N_ELEMENTS(cmd_handlers));
  4201. return true;
  4202. failed:
  4203. queue_destroy(unpaired_cb_list, NULL);
  4204. unpaired_cb_list = NULL;
  4205. queue_destroy(paired_cb_list, NULL);
  4206. paired_cb_list = NULL;
  4207. return false;
  4208. }
  4209. void bt_bluetooth_unregister(void)
  4210. {
  4211. DBG("");
  4212. g_slist_free_full(bonded_devices, (GDestroyNotify) free_device);
  4213. bonded_devices = NULL;
  4214. g_slist_free_full(cached_devices, (GDestroyNotify) free_device);
  4215. cached_devices = NULL;
  4216. ipc_unregister(hal_ipc, HAL_SERVICE_ID_CORE);
  4217. hal_ipc = NULL;
  4218. queue_destroy(unpaired_cb_list, NULL);
  4219. unpaired_cb_list = NULL;
  4220. queue_destroy(paired_cb_list, NULL);
  4221. paired_cb_list = NULL;
  4222. }