wcd_cpe_services.c 72 KB

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  1. /* Copyright (c) 2014-2017, The Linux Foundation. All rights reserved.
  2. *
  3. * This program is free software; you can redistribute it and/or modify
  4. * it under the terms of the GNU General Public License version 2 and
  5. * only version 2 as published by the Free Software Foundation.
  6. *
  7. * This program is distributed in the hope that it will be useful,
  8. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  9. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  10. * GNU General Public License for more details.
  11. */
  12. #include <linux/module.h>
  13. #include <linux/kernel.h>
  14. #include <linux/slab.h>
  15. #include <linux/sched.h>
  16. #include <linux/completion.h>
  17. #include <linux/kthread.h>
  18. #include <linux/delay.h>
  19. #include <linux/mfd/wcd9xxx/core.h>
  20. #include <sound/cpe_cmi.h>
  21. #include <sound/soc.h>
  22. #include <linux/mfd/wcd9xxx/wcd9330_registers.h>
  23. #include <linux/mfd/wcd9335/registers.h>
  24. #include "wcd_cpe_services.h"
  25. #include "wcd_cmi_api.h"
  26. #define CPE_MSG_BUFFER_SIZE 132
  27. #define CPE_NO_SERVICE 0
  28. #define CMI_DRIVER_SUPPORTED_VERSION 0
  29. #define CMI_API_SUCCESS 0
  30. #define CMI_MSG_TRANSPORT (0x0002)
  31. #define CPE_SVC_INACTIVE_STATE_RETRIES_MAX 10
  32. #define TOMTOM_A_SVASS_SPE_DRAM_OFFSET 0x50000
  33. #define TOMTOM_A_SVASS_SPE_DRAM_SIZE 0x30000
  34. #define TOMTOM_A_SVASS_SPE_IRAM_OFFSET 0x80000
  35. #define TOMTOM_A_SVASS_SPE_IRAM_SIZE 0xC000
  36. #define TOMTOM_A_SVASS_SPE_INBOX_SIZE 12
  37. #define TOMTOM_A_SVASS_SPE_OUTBOX_SIZE 12
  38. #define MEM_ACCESS_NONE_VAL 0x0
  39. #define MEM_ACCESS_IRAM_VAL 0x1
  40. #define MEM_ACCESS_DRAM_VAL 0x2
  41. #define LISTEN_CTL_SPE_VAL 0x0
  42. #define LISTEN_CTL_MSM_VAL 0x1
  43. #define TOMTOM_A_SVASS_SPE_INBOX(N) (TOMTOM_A_SVASS_SPE_INBOX_0 + (N))
  44. #define TOMTOM_A_SVASS_SPE_OUTBOX(N) (TOMTOM_A_SVASS_SPE_OUTBOX_0 + (N))
  45. #define WCD9335_CPE_SS_SPE_DRAM_OFFSET 0x48000
  46. #define WCD9335_CPE_SS_SPE_DRAM_SIZE 0x34000
  47. #define WCD9335_CPE_SS_SPE_IRAM_OFFSET 0x80000
  48. #define WCD9335_CPE_SS_SPE_IRAM_SIZE 0x20000
  49. #define WCD9335_CPE_SS_SPE_INBOX_SIZE 16
  50. #define WCD9335_CPE_SS_SPE_OUTBOX_SIZE 16
  51. #define WCD9335_CPE_SS_SPE_MEM_BANK_SIZ 16
  52. #define WCD9335_CPE_SS_SPE_INBOX1(N) (WCD9335_CPE_SS_INBOX1_0 + (N))
  53. #define WCD9335_CPE_SS_SPE_OUTBOX1(N) (WCD9335_CPE_SS_OUTBOX1_0 + (N))
  54. #define WCD9335_CPE_SS_MEM_BANK(N) (WCD9335_CPE_SS_MEM_BANK_0 + (N))
  55. #define CHUNK_SIZE 16
  56. #define CPE_SVC_GRAB_LOCK(lock, name) \
  57. { \
  58. pr_debug("%s: %s lock acquire\n", \
  59. __func__, name); \
  60. mutex_lock(lock); \
  61. }
  62. #define CPE_SVC_REL_LOCK(lock, name) \
  63. { \
  64. pr_debug("%s: %s lock release\n", \
  65. __func__, name); \
  66. mutex_unlock(lock); \
  67. }
  68. static const struct cpe_svc_hw_cfg cpe_svc_tomtom_info = {
  69. TOMTOM_A_SVASS_SPE_DRAM_SIZE,
  70. TOMTOM_A_SVASS_SPE_DRAM_OFFSET,
  71. TOMTOM_A_SVASS_SPE_IRAM_SIZE,
  72. TOMTOM_A_SVASS_SPE_IRAM_OFFSET,
  73. TOMTOM_A_SVASS_SPE_INBOX_SIZE,
  74. TOMTOM_A_SVASS_SPE_OUTBOX_SIZE
  75. };
  76. static const struct cpe_svc_hw_cfg cpe_svc_wcd9335_info = {
  77. WCD9335_CPE_SS_SPE_DRAM_SIZE,
  78. WCD9335_CPE_SS_SPE_DRAM_OFFSET,
  79. WCD9335_CPE_SS_SPE_IRAM_SIZE,
  80. WCD9335_CPE_SS_SPE_IRAM_OFFSET,
  81. WCD9335_CPE_SS_SPE_INBOX_SIZE,
  82. WCD9335_CPE_SS_SPE_OUTBOX_SIZE
  83. };
  84. enum cpe_state {
  85. CPE_STATE_UNINITIALIZED = 0,
  86. CPE_STATE_INITIALIZED,
  87. CPE_STATE_IDLE,
  88. CPE_STATE_DOWNLOADING,
  89. CPE_STATE_BOOTING,
  90. CPE_STATE_SENDING_MSG,
  91. CPE_STATE_OFFLINE,
  92. CPE_STATE_BUFFERING,
  93. CPE_STATE_BUFFERING_CANCELLED
  94. };
  95. enum cpe_substate {
  96. CPE_SS_IDLE = 0,
  97. CPE_SS_MSG_REQUEST_ACCESS,
  98. CPE_SS_MSG_SEND_INBOX,
  99. CPE_SS_MSG_SENT,
  100. CPE_SS_DL_DOWNLOADING,
  101. CPE_SS_DL_COMPLETED,
  102. CPE_SS_BOOT,
  103. CPE_SS_BOOT_INIT,
  104. CPE_SS_ONLINE
  105. };
  106. enum cpe_command {
  107. CPE_CMD_KILL_THREAD = 0,
  108. CPE_CMD_BOOT,
  109. CPE_CMD_BOOT_INITIALIZE,
  110. CPE_CMD_BOOT_COMPLETE,
  111. CPE_CMD_SEND_MSG,
  112. CPE_CMD_SEND_TRANS_MSG,
  113. CPE_CMD_SEND_MSG_COMPLETE,
  114. CPE_CMD_PROCESS_IRQ,
  115. CPE_CMD_RAMDUMP,
  116. CPE_CMD_DL_SEGMENT,
  117. CPE_CMD_SHUTDOWN,
  118. CPE_CMD_RESET,
  119. CPE_CMD_DEINITIALIZE,
  120. CPE_CMD_READ,
  121. CPE_CMD_ENABLE_LAB,
  122. CPE_CMD_DISABLE_LAB,
  123. CPE_CMD_SWAP_BUFFER,
  124. CPE_LAB_CFG_SB,
  125. CPE_CMD_CANCEL_MEMACCESS,
  126. CPE_CMD_PROC_INCOMING_MSG,
  127. CPE_CMD_FTM_TEST,
  128. };
  129. enum cpe_process_result {
  130. CPE_PROC_SUCCESS = 0,
  131. CPE_PROC_FAILED,
  132. CPE_PROC_KILLED,
  133. CPE_PROC_QUEUED,
  134. };
  135. struct cpe_command_node {
  136. enum cpe_command command;
  137. enum cpe_svc_result result;
  138. void *data;
  139. struct list_head list;
  140. };
  141. struct cpe_info {
  142. struct list_head main_queue;
  143. struct completion cmd_complete;
  144. struct completion thread_comp;
  145. void *thread_handler;
  146. bool stop_thread;
  147. struct mutex msg_lock;
  148. enum cpe_state state;
  149. enum cpe_substate substate;
  150. struct list_head client_list;
  151. enum cpe_process_result (*cpe_process_command)
  152. (struct cpe_command_node *command_node);
  153. enum cpe_svc_result (*cpe_cmd_validate)
  154. (const struct cpe_info *i,
  155. enum cpe_command command);
  156. enum cpe_svc_result (*cpe_start_notification)
  157. (struct cpe_info *i);
  158. u32 initialized;
  159. struct cpe_svc_tgt_abstraction *tgt;
  160. void *pending;
  161. void *data;
  162. void *client_context;
  163. u32 codec_id;
  164. struct work_struct clk_plan_work;
  165. struct completion core_svc_cmd_compl;
  166. };
  167. struct cpe_tgt_waiti_info {
  168. u8 tgt_waiti_size;
  169. u8 *tgt_waiti_data;
  170. };
  171. struct cpe_svc_tgt_abstraction {
  172. enum cpe_svc_result (*tgt_boot)(int debug_mode);
  173. u32 (*tgt_cpar_init_done)(void);
  174. u32 (*tgt_is_active)(void);
  175. enum cpe_svc_result (*tgt_reset)(void);
  176. enum cpe_svc_result (*tgt_stop)(void);
  177. enum cpe_svc_result (*tgt_read_mailbox)
  178. (u8 *buffer, size_t size);
  179. enum cpe_svc_result (*tgt_write_mailbox)
  180. (u8 *buffer, size_t size);
  181. enum cpe_svc_result (*tgt_read_ram)
  182. (struct cpe_info *c,
  183. struct cpe_svc_mem_segment *data);
  184. enum cpe_svc_result (*tgt_write_ram)
  185. (struct cpe_info *c,
  186. const struct cpe_svc_mem_segment *data);
  187. enum cpe_svc_result (*tgt_route_notification)
  188. (enum cpe_svc_module module,
  189. enum cpe_svc_route_dest dest);
  190. enum cpe_svc_result (*tgt_set_debug_mode)(u32 enable);
  191. const struct cpe_svc_hw_cfg *(*tgt_get_cpe_info)(void);
  192. enum cpe_svc_result (*tgt_deinit)
  193. (struct cpe_svc_tgt_abstraction *param);
  194. enum cpe_svc_result (*tgt_voice_tx_lab)
  195. (bool);
  196. u8 *inbox;
  197. u8 *outbox;
  198. struct cpe_tgt_waiti_info *tgt_waiti_info;
  199. };
  200. static enum cpe_svc_result cpe_tgt_tomtom_init(
  201. struct cpe_svc_codec_info_v1 *codec_info,
  202. struct cpe_svc_tgt_abstraction *param);
  203. static enum cpe_svc_result cpe_tgt_wcd9335_init(
  204. struct cpe_svc_codec_info_v1 *codec_info,
  205. struct cpe_svc_tgt_abstraction *param);
  206. struct cpe_send_msg {
  207. u8 *payload;
  208. u32 isobm;
  209. u32 address;
  210. size_t size;
  211. };
  212. struct cpe_read_handle {
  213. void *registration;
  214. struct cpe_info t_info;
  215. struct list_head buffers;
  216. void *config;
  217. };
  218. struct generic_notification {
  219. void (*notification)
  220. (const struct cpe_svc_notification *parameter);
  221. void (*cmi_notification)
  222. (const struct cmi_api_notification *parameter);
  223. };
  224. struct cpe_notif_node {
  225. struct generic_notification notif;
  226. u32 mask;
  227. u32 service;
  228. const struct cpe_info *context;
  229. const char *name;
  230. u32 disabled;
  231. struct list_head list;
  232. };
  233. struct cpe_priv {
  234. struct cpe_info *cpe_default_handle;
  235. void (*cpe_irq_control_callback)(u32 enable);
  236. void (*cpe_query_freq_plans_cb)
  237. (void *cdc_priv,
  238. struct cpe_svc_cfg_clk_plan *clk_freq);
  239. void (*cpe_change_freq_plan_cb)(void *cdc_priv,
  240. u32 clk_freq);
  241. u32 cpe_msg_buffer;
  242. void *cpe_cmi_handle;
  243. struct mutex cpe_api_mutex;
  244. struct mutex cpe_svc_lock;
  245. struct cpe_svc_boot_event cpe_debug_vector;
  246. void *cdc_priv;
  247. };
  248. static struct cpe_priv cpe_d;
  249. static enum cpe_svc_result __cpe_svc_shutdown(void *cpe_handle);
  250. static enum cpe_svc_result cpe_is_command_valid(
  251. const struct cpe_info *t_info,
  252. enum cpe_command command);
  253. static int cpe_register_read(u32 reg, u8 *val)
  254. {
  255. *(val) = snd_soc_read(cpe_d.cdc_priv, reg);
  256. return 0;
  257. }
  258. static enum cpe_svc_result cpe_update_bits(u32 reg,
  259. u32 mask, u32 value)
  260. {
  261. int ret = 0;
  262. ret = snd_soc_update_bits(cpe_d.cdc_priv, reg,
  263. mask, value);
  264. if (ret < 0)
  265. return CPE_SVC_FAILED;
  266. return CPE_SVC_SUCCESS;
  267. }
  268. static int cpe_register_write(u32 reg, u32 val)
  269. {
  270. int ret = 0;
  271. if (reg != TOMTOM_A_SVASS_MEM_BANK &&
  272. reg != WCD9335_CPE_SS_MEM_BANK_0)
  273. pr_debug("%s: reg = 0x%x, value = 0x%x\n",
  274. __func__, reg, val);
  275. ret = snd_soc_write(cpe_d.cdc_priv, reg, val);
  276. if (ret < 0)
  277. return CPE_SVC_FAILED;
  278. return CPE_SVC_SUCCESS;
  279. }
  280. static int cpe_register_write_repeat(u32 reg, u8 *ptr, u32 to_write)
  281. {
  282. struct snd_soc_codec *codec = cpe_d.cdc_priv;
  283. struct wcd9xxx *wcd9xxx = dev_get_drvdata(codec->dev->parent);
  284. int ret = 0;
  285. ret = wcd9xxx_slim_write_repeat(wcd9xxx, reg, to_write, ptr);
  286. if (ret != 0)
  287. pr_err("%s: slim_write_repeat failed\n", __func__);
  288. if (ret < 0)
  289. return CPE_SVC_FAILED;
  290. return CPE_SVC_SUCCESS;
  291. }
  292. static bool cpe_register_read_autoinc_supported(void)
  293. {
  294. return true;
  295. }
  296. /* Called under msgq locked context */
  297. static void cpe_cmd_received(struct cpe_info *t_info)
  298. {
  299. struct cpe_command_node *node = NULL;
  300. enum cpe_process_result proc_rc = CPE_PROC_SUCCESS;
  301. if (!t_info) {
  302. pr_err("%s: Invalid thread info\n",
  303. __func__);
  304. return;
  305. }
  306. while (!list_empty(&t_info->main_queue)) {
  307. if (proc_rc != CPE_PROC_SUCCESS)
  308. break;
  309. node = list_first_entry(&t_info->main_queue,
  310. struct cpe_command_node, list);
  311. if (!node)
  312. break;
  313. list_del(&node->list);
  314. proc_rc = t_info->cpe_process_command(node);
  315. pr_debug("%s: process command return %d\n",
  316. __func__, proc_rc);
  317. switch (proc_rc) {
  318. case CPE_PROC_SUCCESS:
  319. kfree(node);
  320. break;
  321. case CPE_PROC_FAILED:
  322. kfree(node);
  323. pr_err("%s: cmd failed\n", __func__);
  324. break;
  325. case CPE_PROC_KILLED:
  326. break;
  327. default:
  328. list_add(&node->list, &(t_info->main_queue));
  329. }
  330. }
  331. }
  332. static int cpe_worker_thread(void *context)
  333. {
  334. struct cpe_info *t_info = (struct cpe_info *)context;
  335. /*
  336. * Thread will run until requested to stop explicitly
  337. * by setting the t_info->stop_thread flag
  338. */
  339. while (1) {
  340. /* Wait for command to be processed */
  341. wait_for_completion(&t_info->cmd_complete);
  342. CPE_SVC_GRAB_LOCK(&t_info->msg_lock, "msg_lock");
  343. cpe_cmd_received(t_info);
  344. reinit_completion(&t_info->cmd_complete);
  345. /* Check if thread needs to be stopped */
  346. if (t_info->stop_thread)
  347. goto unlock_and_exit;
  348. CPE_SVC_REL_LOCK(&t_info->msg_lock, "msg_lock");
  349. };
  350. unlock_and_exit:
  351. pr_debug("%s: thread stopped\n", __func__);
  352. CPE_SVC_REL_LOCK(&t_info->msg_lock, "msg_lock");
  353. complete_and_exit(&t_info->thread_comp, 0);
  354. }
  355. static void cpe_create_worker_thread(struct cpe_info *t_info)
  356. {
  357. INIT_LIST_HEAD(&t_info->main_queue);
  358. init_completion(&t_info->cmd_complete);
  359. init_completion(&t_info->thread_comp);
  360. t_info->stop_thread = false;
  361. t_info->thread_handler = kthread_run(cpe_worker_thread,
  362. (void *)t_info, "cpe-worker-thread");
  363. pr_debug("%s: Created new worker thread\n",
  364. __func__);
  365. }
  366. static void cpe_cleanup_worker_thread(struct cpe_info *t_info)
  367. {
  368. if (!t_info->thread_handler) {
  369. pr_err("%s: thread not created\n", __func__);
  370. return;
  371. }
  372. /*
  373. * Wake up the command handler in case
  374. * it is waiting for an command to be processed.
  375. */
  376. CPE_SVC_GRAB_LOCK(&t_info->msg_lock, "msg_lock");
  377. t_info->stop_thread = true;
  378. complete(&t_info->cmd_complete);
  379. CPE_SVC_REL_LOCK(&t_info->msg_lock, "msg_lock");
  380. /* Wait for the thread to exit */
  381. wait_for_completion(&t_info->thread_comp);
  382. t_info->thread_handler = NULL;
  383. pr_debug("%s: Thread cleaned up successfully\n",
  384. __func__);
  385. }
  386. static enum cpe_svc_result
  387. cpe_send_cmd_to_thread(struct cpe_info *t_info,
  388. enum cpe_command command, void *data,
  389. bool high_prio)
  390. {
  391. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  392. struct cpe_command_node *cmd = NULL;
  393. rc = cpe_is_command_valid(t_info, command);
  394. if (rc != CPE_SVC_SUCCESS) {
  395. pr_err("%s: Invalid command %d\n",
  396. __func__, command);
  397. return rc;
  398. }
  399. cmd = kzalloc(sizeof(struct cpe_command_node),
  400. GFP_ATOMIC);
  401. if (!cmd)
  402. return CPE_SVC_NO_MEMORY;
  403. cmd->command = command;
  404. cmd->data = data;
  405. CPE_SVC_GRAB_LOCK(&t_info->msg_lock, "msg_lock");
  406. if (high_prio)
  407. list_add(&(cmd->list),
  408. &(t_info->main_queue));
  409. else
  410. list_add_tail(&(cmd->list),
  411. &(t_info->main_queue));
  412. complete(&t_info->cmd_complete);
  413. CPE_SVC_REL_LOCK(&t_info->msg_lock, "msg_lock");
  414. return rc;
  415. }
  416. static enum cpe_svc_result cpe_change_state(
  417. struct cpe_info *t_info,
  418. enum cpe_state state, enum cpe_substate ss)
  419. {
  420. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  421. if (!t_info)
  422. t_info = cpe_d.cpe_default_handle;
  423. t_info->state = state;
  424. t_info->substate = ss;
  425. pr_debug("%s: current state: %d,%d, new_state: %d,%d\n",
  426. __func__, t_info->state, t_info->substate,
  427. state, ss);
  428. return rc;
  429. }
  430. static enum cpe_svc_result
  431. cpe_is_command_valid(const struct cpe_info *t_info,
  432. enum cpe_command command)
  433. {
  434. enum cpe_svc_result rc = CPE_SVC_INVALID_HANDLE;
  435. if (t_info && t_info->cpe_cmd_validate)
  436. rc = t_info->cpe_cmd_validate(t_info, command);
  437. else
  438. pr_err("%s: invalid handle or callback\n",
  439. __func__);
  440. return rc;
  441. }
  442. static void cpe_notify_client(struct cpe_notif_node *client,
  443. struct cpe_svc_notification *payload)
  444. {
  445. if (!client || !payload) {
  446. pr_err("%s: invalid client or payload\n",
  447. __func__);
  448. return;
  449. }
  450. if (!(client->mask & payload->event)) {
  451. pr_debug("%s: client mask 0x%x not registered for event 0x%x\n",
  452. __func__, client->mask, payload->event);
  453. return;
  454. }
  455. if (client->notif.notification && !client->disabled)
  456. client->notif.notification(payload);
  457. if ((client->mask & CPE_SVC_CMI_MSG) &&
  458. client->notif.cmi_notification)
  459. client->notif.cmi_notification(
  460. (const struct cmi_api_notification *)payload);
  461. }
  462. static void cpe_broadcast_notification(const struct cpe_info *t_info,
  463. struct cpe_svc_notification *payload)
  464. {
  465. struct cpe_notif_node *n = NULL;
  466. if (!t_info || !payload) {
  467. pr_err("%s: invalid handle\n", __func__);
  468. return;
  469. }
  470. pr_debug("%s: notify clients, event = %d\n",
  471. __func__, payload->event);
  472. payload->private_data = cpe_d.cdc_priv;
  473. CPE_SVC_GRAB_LOCK(&cpe_d.cpe_svc_lock, "cpe_svc");
  474. list_for_each_entry(n, &t_info->client_list, list) {
  475. if (!(n->mask & CPE_SVC_CMI_MSG))
  476. cpe_notify_client(n, payload);
  477. }
  478. CPE_SVC_REL_LOCK(&cpe_d.cpe_svc_lock, "cpe_svc");
  479. }
  480. static void *cpe_register_generic(struct cpe_info *t_info,
  481. void notification_callback(
  482. const struct cpe_svc_notification *parameter),
  483. void cmi_callback(
  484. const struct cmi_api_notification *parameter),
  485. u32 mask, u32 service, const char *name)
  486. {
  487. struct cpe_notif_node *n = NULL;
  488. n = kzalloc(sizeof(struct cpe_notif_node),
  489. GFP_KERNEL);
  490. if (!n)
  491. return NULL;
  492. n->mask = mask;
  493. n->service = service;
  494. n->notif.notification = notification_callback;
  495. n->notif.cmi_notification = cmi_callback;
  496. n->context = t_info;
  497. n->disabled = false;
  498. n->name = name;
  499. CPE_SVC_GRAB_LOCK(&cpe_d.cpe_svc_lock, "cpe_svc");
  500. /* Make sure CPE core service is first */
  501. if (service == CMI_CPE_CORE_SERVICE_ID)
  502. list_add(&n->list, &t_info->client_list);
  503. else
  504. list_add_tail(&n->list, &t_info->client_list);
  505. CPE_SVC_REL_LOCK(&cpe_d.cpe_svc_lock, "cpe_svc");
  506. return n;
  507. }
  508. static enum cpe_svc_result cpe_deregister_generic(struct cpe_info *t_info,
  509. void *reg_handle)
  510. {
  511. struct cpe_notif_node *n = (struct cpe_notif_node *)reg_handle;
  512. if (!t_info || !reg_handle) {
  513. pr_err("%s: invalid handle\n", __func__);
  514. return CPE_SVC_INVALID_HANDLE;
  515. }
  516. list_del(&(n->list));
  517. kfree(reg_handle);
  518. return CPE_SVC_SUCCESS;
  519. }
  520. static enum cpe_svc_result cpe_svc_tgt_init(struct cpe_svc_codec_info_v1 *i,
  521. struct cpe_svc_tgt_abstraction *abs)
  522. {
  523. if (!i || !abs) {
  524. pr_err("%s: Incorrect information provided\n",
  525. __func__);
  526. return CPE_SVC_FAILED;
  527. }
  528. switch (i->id) {
  529. case CPE_SVC_CODEC_TOMTOM:
  530. return cpe_tgt_tomtom_init(i, abs);
  531. case CPE_SVC_CODEC_WCD9335:
  532. return cpe_tgt_wcd9335_init(i, abs);
  533. default:
  534. pr_err("%s: Codec type %d not supported\n",
  535. __func__, i->id);
  536. return CPE_SVC_FAILED;
  537. }
  538. return CPE_SVC_SUCCESS;
  539. }
  540. static void cpe_notify_cmi_client(struct cpe_info *t_info, u8 *payload,
  541. enum cpe_svc_result result)
  542. {
  543. struct cpe_notif_node *n = NULL;
  544. struct cmi_api_notification notif;
  545. struct cmi_hdr *hdr;
  546. u8 service = 0;
  547. if (!t_info || !payload) {
  548. pr_err("%s: invalid payload/handle\n",
  549. __func__);
  550. return;
  551. }
  552. hdr = CMI_GET_HEADER(payload);
  553. service = CMI_HDR_GET_SERVICE(hdr);
  554. notif.event = CPE_SVC_CMI_MSG;
  555. notif.result = result;
  556. notif.message = payload;
  557. CPE_SVC_GRAB_LOCK(&cpe_d.cpe_svc_lock, "cpe_svc");
  558. list_for_each_entry(n, &t_info->client_list, list) {
  559. if ((n->mask & CPE_SVC_CMI_MSG) &&
  560. n->service == service &&
  561. n->notif.cmi_notification) {
  562. n->notif.cmi_notification(&notif);
  563. break;
  564. }
  565. }
  566. CPE_SVC_REL_LOCK(&cpe_d.cpe_svc_lock, "cpe_svc");
  567. }
  568. static void cpe_toggle_irq_notification(struct cpe_info *t_info, u32 value)
  569. {
  570. if (cpe_d.cpe_irq_control_callback)
  571. cpe_d.cpe_irq_control_callback(value);
  572. }
  573. static void cpe_command_cleanup(struct cpe_command_node *command_node)
  574. {
  575. switch (command_node->command) {
  576. case CPE_CMD_SEND_MSG:
  577. case CPE_CMD_SEND_TRANS_MSG:
  578. case CPE_CMD_SEND_MSG_COMPLETE:
  579. case CPE_CMD_SHUTDOWN:
  580. case CPE_CMD_READ:
  581. kfree(command_node->data);
  582. command_node->data = NULL;
  583. break;
  584. default:
  585. pr_err("%s: unhandled command\n",
  586. __func__);
  587. break;
  588. }
  589. }
  590. static enum cpe_svc_result cpe_send_msg_to_inbox(
  591. struct cpe_info *t_info, u32 opcode,
  592. struct cpe_send_msg *msg)
  593. {
  594. size_t bytes = 0;
  595. size_t inbox_size =
  596. t_info->tgt->tgt_get_cpe_info()->inbox_size;
  597. struct cmi_hdr *hdr;
  598. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  599. memset(t_info->tgt->inbox, 0, inbox_size);
  600. hdr = CMI_GET_HEADER(t_info->tgt->inbox);
  601. CMI_HDR_SET_SESSION(hdr, 1);
  602. CMI_HDR_SET_SERVICE(hdr, CMI_CPE_CORE_SERVICE_ID);
  603. CMI_HDR_SET_VERSION(hdr, CMI_DRIVER_SUPPORTED_VERSION);
  604. CMI_HDR_SET_OBM(hdr, CMI_OBM_FLAG_IN_BAND);
  605. switch (opcode) {
  606. case CPE_CORE_SVC_CMD_SHARED_MEM_ALLOC: {
  607. struct cmi_core_svc_cmd_shared_mem_alloc *m;
  608. CMI_HDR_SET_OPCODE(hdr,
  609. CPE_CORE_SVC_CMD_SHARED_MEM_ALLOC);
  610. CMI_HDR_SET_PAYLOAD_SIZE(hdr,
  611. sizeof(struct cmi_core_svc_cmd_shared_mem_alloc));
  612. m = (struct cmi_core_svc_cmd_shared_mem_alloc *)
  613. CMI_GET_PAYLOAD(t_info->tgt->inbox);
  614. m->size = CPE_MSG_BUFFER_SIZE;
  615. pr_debug("send shared mem alloc msg to cpe inbox\n");
  616. }
  617. break;
  618. case CPE_CORE_SVC_CMD_DRAM_ACCESS_REQ:
  619. CMI_HDR_SET_OPCODE(hdr,
  620. CPE_CORE_SVC_CMD_DRAM_ACCESS_REQ);
  621. CMI_HDR_SET_PAYLOAD_SIZE(hdr, 0);
  622. pr_debug("%s: Creating DRAM acces request msg\n",
  623. __func__);
  624. break;
  625. case CPE_CMI_BASIC_RSP_OPCODE: {
  626. struct cmi_basic_rsp_result *rsp;
  627. CMI_HDR_SET_OPCODE(hdr,
  628. CPE_CMI_BASIC_RSP_OPCODE);
  629. CMI_HDR_SET_PAYLOAD_SIZE(hdr,
  630. sizeof(struct cmi_basic_rsp_result));
  631. rsp = (struct cmi_basic_rsp_result *)
  632. CMI_GET_PAYLOAD(t_info->tgt->inbox);
  633. rsp->status = 0;
  634. pr_debug("%s: send basic response\n", __func__);
  635. }
  636. break;
  637. default:
  638. if (msg->address != 0) {
  639. struct cmi_msg_transport *m = NULL;
  640. struct cpe_svc_mem_segment mem_seg;
  641. mem_seg.type = CPE_SVC_DATA_MEM;
  642. if (msg->isobm) {
  643. struct cmi_obm *obm = (struct cmi_obm *)
  644. CMI_GET_PAYLOAD(msg->payload);
  645. mem_seg.cpe_addr = obm->mem_handle;
  646. mem_seg.data = (u8 *)obm->data_ptr.kvaddr;
  647. mem_seg.size = obm->size;
  648. t_info->tgt->tgt_write_ram(t_info, &mem_seg);
  649. }
  650. mem_seg.cpe_addr = msg->address;
  651. mem_seg.data = msg->payload;
  652. mem_seg.size = msg->size;
  653. t_info->tgt->tgt_write_ram(t_info, &mem_seg);
  654. hdr = CMI_GET_HEADER(t_info->tgt->inbox);
  655. CMI_HDR_SET_OPCODE(hdr, CMI_MSG_TRANSPORT);
  656. m = (struct cmi_msg_transport *)
  657. CMI_GET_PAYLOAD(t_info->tgt->inbox);
  658. m->addr = msg->address;
  659. m->size = msg->size;
  660. CMI_HDR_SET_PAYLOAD_SIZE(hdr,
  661. sizeof(struct cmi_msg_transport));
  662. } else {
  663. memcpy(t_info->tgt->inbox, msg->payload,
  664. msg->size);
  665. }
  666. break;
  667. }
  668. pr_debug("%s: sending message to cpe inbox\n",
  669. __func__);
  670. bytes = sizeof(struct cmi_hdr);
  671. hdr = CMI_GET_HEADER(t_info->tgt->inbox);
  672. bytes += CMI_HDR_GET_PAYLOAD_SIZE(hdr);
  673. rc = t_info->tgt->tgt_write_mailbox(t_info->tgt->inbox, bytes);
  674. return rc;
  675. }
  676. static bool cpe_is_cmd_clk_req(void *cmd)
  677. {
  678. struct cmi_hdr *hdr;
  679. hdr = CMI_GET_HEADER(cmd);
  680. if ((CMI_HDR_GET_SERVICE(hdr) ==
  681. CMI_CPE_CORE_SERVICE_ID)) {
  682. if (CMI_GET_OPCODE(cmd) ==
  683. CPE_CORE_SVC_CMD_CLK_FREQ_REQUEST)
  684. return true;
  685. }
  686. return false;
  687. }
  688. static enum cpe_svc_result cpe_process_clk_change_req(
  689. struct cpe_info *t_info)
  690. {
  691. struct cmi_core_svc_cmd_clk_freq_request *req;
  692. req = (struct cmi_core_svc_cmd_clk_freq_request *)
  693. CMI_GET_PAYLOAD(t_info->tgt->outbox);
  694. if (!cpe_d.cpe_change_freq_plan_cb) {
  695. pr_err("%s: No support for clk freq change\n",
  696. __func__);
  697. return CPE_SVC_FAILED;
  698. }
  699. cpe_d.cpe_change_freq_plan_cb(cpe_d.cdc_priv,
  700. req->clk_freq);
  701. /*send a basic response*/
  702. cpe_send_msg_to_inbox(t_info,
  703. CPE_CMI_BASIC_RSP_OPCODE, NULL);
  704. return CPE_SVC_SUCCESS;
  705. }
  706. static void cpe_process_irq_int(u32 irq,
  707. struct cpe_info *t_info)
  708. {
  709. struct cpe_command_node temp_node;
  710. struct cpe_send_msg *m;
  711. u8 size = 0;
  712. bool err_irq = false;
  713. struct cmi_hdr *hdr;
  714. pr_debug("%s: irq = %u\n", __func__, irq);
  715. if (!t_info) {
  716. pr_err("%s: Invalid handle\n",
  717. __func__);
  718. return;
  719. }
  720. CPE_SVC_GRAB_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  721. switch (irq) {
  722. case CPE_IRQ_OUTBOX_IRQ:
  723. size = t_info->tgt->tgt_get_cpe_info()->outbox_size;
  724. t_info->tgt->tgt_read_mailbox(t_info->tgt->outbox, size);
  725. break;
  726. case CPE_IRQ_MEM_ACCESS_ERROR:
  727. err_irq = true;
  728. cpe_change_state(t_info, CPE_STATE_OFFLINE, CPE_SS_IDLE);
  729. break;
  730. case CPE_IRQ_WDOG_BITE:
  731. case CPE_IRQ_RCO_WDOG_INT:
  732. err_irq = true;
  733. __cpe_svc_shutdown(t_info);
  734. break;
  735. case CPE_IRQ_FLL_LOCK_LOST:
  736. default:
  737. err_irq = true;
  738. break;
  739. }
  740. if (err_irq) {
  741. pr_err("%s: CPE error IRQ %u occurred\n",
  742. __func__, irq);
  743. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  744. return;
  745. }
  746. switch (t_info->state) {
  747. case CPE_STATE_BOOTING:
  748. switch (t_info->substate) {
  749. case CPE_SS_BOOT:
  750. temp_node.command = CPE_CMD_BOOT_INITIALIZE;
  751. temp_node.result = CPE_SVC_SUCCESS;
  752. t_info->substate = CPE_SS_BOOT_INIT;
  753. t_info->cpe_process_command(&temp_node);
  754. break;
  755. case CPE_SS_BOOT_INIT:
  756. temp_node.command = CPE_CMD_BOOT_COMPLETE;
  757. temp_node.result = CPE_SVC_SUCCESS;
  758. t_info->substate = CPE_SS_ONLINE;
  759. t_info->cpe_process_command(&temp_node);
  760. break;
  761. default:
  762. pr_debug("%s: unhandled substate %d for state %d\n",
  763. __func__, t_info->state, t_info->substate);
  764. break;
  765. }
  766. break;
  767. case CPE_STATE_SENDING_MSG:
  768. hdr = CMI_GET_HEADER(t_info->tgt->outbox);
  769. if (CMI_GET_OPCODE(t_info->tgt->outbox) ==
  770. CPE_LSM_SESSION_EVENT_DETECTION_STATUS_V2) {
  771. pr_debug("%s: session_id: %u, state: %d,%d, event received\n",
  772. __func__, CMI_HDR_GET_SESSION_ID(hdr),
  773. t_info->state, t_info->substate);
  774. temp_node.command = CPE_CMD_PROC_INCOMING_MSG;
  775. temp_node.data = NULL;
  776. t_info->cpe_process_command(&temp_node);
  777. break;
  778. }
  779. m = (struct cpe_send_msg *)t_info->pending;
  780. switch (t_info->substate) {
  781. case CPE_SS_MSG_REQUEST_ACCESS:
  782. cpe_send_cmd_to_thread(t_info,
  783. CPE_CMD_SEND_TRANS_MSG, m, true);
  784. break;
  785. case CPE_SS_MSG_SEND_INBOX:
  786. if (cpe_is_cmd_clk_req(t_info->tgt->outbox))
  787. cpe_process_clk_change_req(t_info);
  788. else
  789. cpe_send_cmd_to_thread(t_info,
  790. CPE_CMD_SEND_MSG_COMPLETE, m, true);
  791. break;
  792. default:
  793. pr_debug("%s: unhandled substate %d for state %d\n",
  794. __func__, t_info->state, t_info->substate);
  795. break;
  796. }
  797. break;
  798. case CPE_STATE_IDLE:
  799. pr_debug("%s: Message received, notifying client\n",
  800. __func__);
  801. temp_node.command = CPE_CMD_PROC_INCOMING_MSG;
  802. temp_node.data = NULL;
  803. t_info->cpe_process_command(&temp_node);
  804. break;
  805. default:
  806. pr_debug("%s: unhandled state %d\n",
  807. __func__, t_info->state);
  808. break;
  809. }
  810. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  811. }
  812. static void broacast_boot_failed(void)
  813. {
  814. struct cpe_info *t_info = cpe_d.cpe_default_handle;
  815. struct cpe_svc_notification payload;
  816. payload.event = CPE_SVC_BOOT_FAILED;
  817. payload.result = CPE_SVC_FAILED;
  818. payload.payload = NULL;
  819. if (t_info)
  820. payload.private_data =
  821. t_info->client_context;
  822. cpe_broadcast_notification(t_info, &payload);
  823. }
  824. static enum cpe_svc_result broadcast_boot_event(
  825. struct cpe_info *t_info)
  826. {
  827. struct cpe_svc_notification payload;
  828. payload.event = CPE_SVC_ONLINE;
  829. payload.result = CPE_SVC_SUCCESS;
  830. payload.payload = NULL;
  831. if (t_info)
  832. payload.private_data =
  833. t_info->client_context;
  834. cpe_broadcast_notification(t_info, &payload);
  835. return CPE_SVC_SUCCESS;
  836. }
  837. static enum cpe_process_result cpe_boot_initialize(struct cpe_info *t_info,
  838. enum cpe_svc_result *cpe_rc)
  839. {
  840. enum cpe_process_result rc = CPE_SVC_FAILED;
  841. struct cpe_svc_notification payload;
  842. struct cmi_core_svc_event_system_boot *p = NULL;
  843. if (CMI_GET_OPCODE(t_info->tgt->outbox) !=
  844. CPE_CORE_SVC_EVENT_SYSTEM_BOOT) {
  845. broacast_boot_failed();
  846. return rc;
  847. }
  848. p = (struct cmi_core_svc_event_system_boot *)
  849. CMI_GET_PAYLOAD(t_info->tgt->outbox);
  850. if (p->status != CPE_BOOT_SUCCESS) {
  851. pr_err("%s: cpe boot failed, status = %d\n",
  852. __func__, p->status);
  853. broacast_boot_failed();
  854. return rc;
  855. }
  856. /* boot was successful */
  857. if (p->version ==
  858. CPE_CORE_VERSION_SYSTEM_BOOT_EVENT) {
  859. cpe_d.cpe_debug_vector.debug_address =
  860. p->sfr_buff_address;
  861. cpe_d.cpe_debug_vector.debug_buffer_size =
  862. p->sfr_buff_size;
  863. cpe_d.cpe_debug_vector.status = p->status;
  864. payload.event = CPE_SVC_BOOT;
  865. payload.result = CPE_SVC_SUCCESS;
  866. payload.payload = (void *)&cpe_d.cpe_debug_vector;
  867. payload.private_data = t_info->client_context;
  868. cpe_broadcast_notification(t_info, &payload);
  869. }
  870. cpe_change_state(t_info, CPE_STATE_BOOTING,
  871. CPE_SS_BOOT_INIT);
  872. (*cpe_rc) = cpe_send_msg_to_inbox(t_info,
  873. CPE_CORE_SVC_CMD_SHARED_MEM_ALLOC, NULL);
  874. rc = CPE_PROC_SUCCESS;
  875. return rc;
  876. }
  877. static void cpe_svc_core_cmi_handler(
  878. const struct cmi_api_notification *parameter)
  879. {
  880. struct cmi_hdr *hdr;
  881. if (!parameter)
  882. return;
  883. pr_debug("%s: event = %d\n",
  884. __func__, parameter->event);
  885. if (parameter->event != CMI_API_MSG)
  886. return;
  887. hdr = (struct cmi_hdr *) parameter->message;
  888. if (hdr->opcode == CPE_CMI_BASIC_RSP_OPCODE) {
  889. struct cmi_basic_rsp_result *result;
  890. result = (struct cmi_basic_rsp_result *)
  891. ((u8 *)parameter->message) + (sizeof(*hdr));
  892. if (result->status)
  893. pr_err("%s: error response, error code = %u\n",
  894. __func__, result->status);
  895. complete(&cpe_d.cpe_default_handle->core_svc_cmd_compl);
  896. }
  897. }
  898. static void cpe_clk_plan_work(struct work_struct *work)
  899. {
  900. struct cpe_info *t_info = NULL;
  901. size_t size = 0;
  902. struct cpe_svc_cfg_clk_plan plan;
  903. u8 *cmi_msg;
  904. struct cmi_hdr *hdr;
  905. int rc;
  906. t_info = container_of(work, struct cpe_info, clk_plan_work);
  907. if (!t_info) {
  908. pr_err("%s: Invalid handle for cpe_info\n",
  909. __func__);
  910. return;
  911. }
  912. /* Register the core service */
  913. cpe_d.cpe_cmi_handle = cmi_register(
  914. cpe_svc_core_cmi_handler,
  915. CMI_CPE_CORE_SERVICE_ID);
  916. /* send the clk plan command */
  917. if (!cpe_d.cpe_query_freq_plans_cb) {
  918. pr_err("%s: No support for querying clk plans\n",
  919. __func__);
  920. return;
  921. }
  922. cpe_d.cpe_query_freq_plans_cb(cpe_d.cdc_priv, &plan);
  923. size = sizeof(plan.current_clk_feq) +
  924. sizeof(plan.num_clk_freqs);
  925. size += plan.num_clk_freqs *
  926. sizeof(plan.clk_freqs[0]);
  927. cmi_msg = kzalloc(size + sizeof(struct cmi_hdr),
  928. GFP_KERNEL);
  929. if (!cmi_msg)
  930. return;
  931. hdr = (struct cmi_hdr *) cmi_msg;
  932. CMI_HDR_SET_OPCODE(hdr,
  933. CPE_CORE_SVC_CMD_CFG_CLK_PLAN);
  934. CMI_HDR_SET_SERVICE(hdr, CMI_CPE_CORE_SERVICE_ID);
  935. CMI_HDR_SET_SESSION(hdr, 1);
  936. CMI_HDR_SET_VERSION(hdr, CMI_DRIVER_SUPPORTED_VERSION);
  937. CMI_HDR_SET_PAYLOAD_SIZE(hdr, size);
  938. memcpy(CMI_GET_PAYLOAD(cmi_msg), &plan,
  939. size);
  940. cmi_send_msg(cmi_msg);
  941. /* Wait for clk plan command to complete */
  942. rc = wait_for_completion_timeout(&t_info->core_svc_cmd_compl,
  943. (10 * HZ));
  944. if (!rc) {
  945. pr_err("%s: clk plan cmd timed out\n",
  946. __func__);
  947. goto cmd_fail;
  948. }
  949. /* clk plan cmd is successful, send start notification */
  950. if (t_info->cpe_start_notification)
  951. t_info->cpe_start_notification(t_info);
  952. else
  953. pr_err("%s: no start notification\n",
  954. __func__);
  955. cmd_fail:
  956. kfree(cmi_msg);
  957. cmi_deregister(cpe_d.cpe_cmi_handle);
  958. }
  959. static enum cpe_process_result cpe_boot_complete(
  960. struct cpe_info *t_info)
  961. {
  962. struct cmi_core_svc_cmdrsp_shared_mem_alloc *p = NULL;
  963. if (CMI_GET_OPCODE(t_info->tgt->outbox) !=
  964. CPE_CORE_SVC_CMDRSP_SHARED_MEM_ALLOC) {
  965. broacast_boot_failed();
  966. return CPE_PROC_FAILED;
  967. }
  968. p = (struct cmi_core_svc_cmdrsp_shared_mem_alloc *)
  969. CMI_GET_PAYLOAD(t_info->tgt->outbox);
  970. cpe_d.cpe_msg_buffer = p->addr;
  971. if (cpe_d.cpe_msg_buffer == 0) {
  972. pr_err("%s: Invalid cpe buffer for message\n",
  973. __func__);
  974. broacast_boot_failed();
  975. return CPE_PROC_FAILED;
  976. }
  977. cpe_change_state(t_info, CPE_STATE_IDLE, CPE_SS_IDLE);
  978. cpe_create_worker_thread(t_info);
  979. if (t_info->codec_id != CPE_SVC_CODEC_TOMTOM) {
  980. schedule_work(&t_info->clk_plan_work);
  981. } else {
  982. if (t_info->cpe_start_notification)
  983. t_info->cpe_start_notification(t_info);
  984. else
  985. pr_err("%s: no start notification\n",
  986. __func__);
  987. }
  988. pr_debug("%s: boot complete\n", __func__);
  989. return CPE_SVC_SUCCESS;
  990. }
  991. static enum cpe_process_result cpe_process_send_msg(
  992. struct cpe_info *t_info,
  993. enum cpe_svc_result *cpe_rc,
  994. struct cpe_command_node *command_node)
  995. {
  996. enum cpe_process_result rc = CPE_PROC_SUCCESS;
  997. struct cpe_send_msg *m =
  998. (struct cpe_send_msg *)command_node->data;
  999. u32 size = m->size;
  1000. if (t_info->pending) {
  1001. pr_debug("%s: message queued\n", __func__);
  1002. *cpe_rc = CPE_SVC_SUCCESS;
  1003. return CPE_PROC_QUEUED;
  1004. }
  1005. pr_debug("%s: Send CMI message, size = %u\n",
  1006. __func__, size);
  1007. if (size <= t_info->tgt->tgt_get_cpe_info()->inbox_size) {
  1008. pr_debug("%s: Msg fits mailbox, size %u\n",
  1009. __func__, size);
  1010. cpe_change_state(t_info, CPE_STATE_SENDING_MSG,
  1011. CPE_SS_MSG_SEND_INBOX);
  1012. t_info->pending = m;
  1013. *cpe_rc = cpe_send_msg_to_inbox(t_info, 0, m);
  1014. } else if (size < CPE_MSG_BUFFER_SIZE) {
  1015. m->address = cpe_d.cpe_msg_buffer;
  1016. pr_debug("%s: Message req CMI mem access\n",
  1017. __func__);
  1018. t_info->pending = m;
  1019. cpe_change_state(t_info, CPE_STATE_SENDING_MSG,
  1020. CPE_SS_MSG_REQUEST_ACCESS);
  1021. *cpe_rc = cpe_send_msg_to_inbox(t_info,
  1022. CPE_CORE_SVC_CMD_DRAM_ACCESS_REQ, m);
  1023. } else {
  1024. pr_debug("%s: Invalid msg size %u\n",
  1025. __func__, size);
  1026. cpe_command_cleanup(command_node);
  1027. rc = CPE_PROC_FAILED;
  1028. cpe_change_state(t_info, CPE_STATE_IDLE,
  1029. CPE_SS_IDLE);
  1030. }
  1031. return rc;
  1032. }
  1033. static enum cpe_process_result cpe_process_incoming(
  1034. struct cpe_info *t_info)
  1035. {
  1036. enum cpe_process_result rc = CPE_PROC_FAILED;
  1037. struct cmi_hdr *hdr;
  1038. hdr = CMI_GET_HEADER(t_info->tgt->outbox);
  1039. if (CMI_HDR_GET_SERVICE(hdr) ==
  1040. CMI_CPE_CORE_SERVICE_ID) {
  1041. pr_debug("%s: core service message received\n",
  1042. __func__);
  1043. switch (CMI_GET_OPCODE(t_info->tgt->outbox)) {
  1044. case CPE_CORE_SVC_CMD_CLK_FREQ_REQUEST:
  1045. cpe_process_clk_change_req(t_info);
  1046. rc = CPE_PROC_SUCCESS;
  1047. break;
  1048. case CMI_MSG_TRANSPORT:
  1049. pr_debug("%s: transport msg received\n",
  1050. __func__);
  1051. rc = CPE_PROC_SUCCESS;
  1052. break;
  1053. case CPE_CMI_BASIC_RSP_OPCODE:
  1054. pr_debug("%s: received basic rsp\n",
  1055. __func__);
  1056. rc = CPE_PROC_SUCCESS;
  1057. break;
  1058. default:
  1059. pr_debug("%s: unknown message received\n",
  1060. __func__);
  1061. break;
  1062. }
  1063. } else {
  1064. /* if service id if for a CMI client, notify client */
  1065. pr_debug("%s: Message received, notifying client\n",
  1066. __func__);
  1067. cpe_notify_cmi_client(t_info,
  1068. t_info->tgt->outbox, CPE_SVC_SUCCESS);
  1069. rc = CPE_PROC_SUCCESS;
  1070. }
  1071. return rc;
  1072. }
  1073. static enum cpe_process_result cpe_process_kill_thread(
  1074. struct cpe_info *t_info,
  1075. struct cpe_command_node *command_node)
  1076. {
  1077. struct cpe_svc_notification payload;
  1078. cpe_d.cpe_msg_buffer = 0;
  1079. payload.result = CPE_SVC_SHUTTING_DOWN;
  1080. payload.event = CPE_SVC_OFFLINE;
  1081. payload.payload = NULL;
  1082. payload.private_data = t_info->client_context;
  1083. /*
  1084. * Make state as offline before broadcasting
  1085. * the message to clients.
  1086. */
  1087. cpe_change_state(t_info, CPE_STATE_OFFLINE,
  1088. CPE_SS_IDLE);
  1089. cpe_broadcast_notification(t_info, &payload);
  1090. return CPE_PROC_KILLED;
  1091. }
  1092. static enum cpe_process_result cpe_mt_process_cmd(
  1093. struct cpe_command_node *command_node)
  1094. {
  1095. struct cpe_info *t_info = cpe_d.cpe_default_handle;
  1096. enum cpe_svc_result cpe_rc = CPE_SVC_SUCCESS;
  1097. enum cpe_process_result rc = CPE_PROC_SUCCESS;
  1098. struct cpe_send_msg *m;
  1099. struct cmi_hdr *hdr;
  1100. u8 service = 0;
  1101. u8 retries = 0;
  1102. if (!t_info || !command_node) {
  1103. pr_err("%s: Invalid handle/command node\n",
  1104. __func__);
  1105. return CPE_PROC_FAILED;
  1106. }
  1107. pr_debug("%s: cmd = %u\n", __func__, command_node->command);
  1108. cpe_rc = cpe_is_command_valid(t_info, command_node->command);
  1109. if (cpe_rc != CPE_SVC_SUCCESS) {
  1110. pr_err("%s: Invalid command %d, err = %d\n",
  1111. __func__, command_node->command, cpe_rc);
  1112. return CPE_PROC_FAILED;
  1113. }
  1114. switch (command_node->command) {
  1115. case CPE_CMD_BOOT_INITIALIZE:
  1116. rc = cpe_boot_initialize(t_info, &cpe_rc);
  1117. break;
  1118. case CPE_CMD_BOOT_COMPLETE:
  1119. rc = cpe_boot_complete(t_info);
  1120. break;
  1121. case CPE_CMD_SEND_MSG:
  1122. rc = cpe_process_send_msg(t_info, &cpe_rc,
  1123. command_node);
  1124. break;
  1125. case CPE_CMD_SEND_TRANS_MSG:
  1126. m = (struct cpe_send_msg *)command_node->data;
  1127. while (retries < CPE_SVC_INACTIVE_STATE_RETRIES_MAX) {
  1128. if (t_info->tgt->tgt_is_active()) {
  1129. ++retries;
  1130. /* Wait for CPE to be inactive */
  1131. usleep_range(5000, 5100);
  1132. } else {
  1133. break;
  1134. }
  1135. }
  1136. pr_debug("%s: cpe inactive after %d attempts\n",
  1137. __func__, retries);
  1138. cpe_change_state(t_info, CPE_STATE_SENDING_MSG,
  1139. CPE_SS_MSG_SEND_INBOX);
  1140. rc = cpe_send_msg_to_inbox(t_info, 0, m);
  1141. break;
  1142. case CPE_CMD_SEND_MSG_COMPLETE:
  1143. hdr = CMI_GET_HEADER(t_info->tgt->outbox);
  1144. service = CMI_HDR_GET_SERVICE(hdr);
  1145. pr_debug("%s: msg send success, notifying clients\n",
  1146. __func__);
  1147. cpe_command_cleanup(command_node);
  1148. t_info->pending = NULL;
  1149. cpe_change_state(t_info,
  1150. CPE_STATE_IDLE, CPE_SS_IDLE);
  1151. cpe_notify_cmi_client(t_info,
  1152. t_info->tgt->outbox, CPE_SVC_SUCCESS);
  1153. break;
  1154. case CPE_CMD_PROC_INCOMING_MSG:
  1155. rc = cpe_process_incoming(t_info);
  1156. break;
  1157. case CPE_CMD_KILL_THREAD:
  1158. rc = cpe_process_kill_thread(t_info, command_node);
  1159. break;
  1160. default:
  1161. pr_err("%s: unhandled cpe cmd = %d\n",
  1162. __func__, command_node->command);
  1163. break;
  1164. }
  1165. if (cpe_rc != CPE_SVC_SUCCESS) {
  1166. pr_err("%s: failed to execute command\n", __func__);
  1167. if (t_info->pending) {
  1168. m = (struct cpe_send_msg *)t_info->pending;
  1169. cpe_notify_cmi_client(t_info, m->payload,
  1170. CPE_SVC_FAILED);
  1171. t_info->pending = NULL;
  1172. }
  1173. cpe_command_cleanup(command_node);
  1174. rc = CPE_PROC_FAILED;
  1175. cpe_change_state(t_info, CPE_STATE_IDLE,
  1176. CPE_SS_IDLE);
  1177. }
  1178. return rc;
  1179. }
  1180. static enum cpe_svc_result cpe_mt_validate_cmd(
  1181. const struct cpe_info *t_info,
  1182. enum cpe_command command)
  1183. {
  1184. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  1185. if ((t_info == NULL) || t_info->initialized == false) {
  1186. pr_err("%s: cpe service is not ready\n",
  1187. __func__);
  1188. return CPE_SVC_NOT_READY;
  1189. }
  1190. switch (t_info->state) {
  1191. case CPE_STATE_UNINITIALIZED:
  1192. case CPE_STATE_INITIALIZED:
  1193. switch (command) {
  1194. case CPE_CMD_RESET:
  1195. case CPE_CMD_DL_SEGMENT:
  1196. case CPE_CMD_RAMDUMP:
  1197. case CPE_CMD_PROCESS_IRQ:
  1198. case CPE_CMD_KILL_THREAD:
  1199. case CPE_CMD_DEINITIALIZE:
  1200. case CPE_CMD_FTM_TEST:
  1201. rc = CPE_SVC_SUCCESS;
  1202. break;
  1203. default:
  1204. rc = CPE_SVC_NOT_READY;
  1205. break;
  1206. }
  1207. break;
  1208. case CPE_STATE_DOWNLOADING:
  1209. switch (command) {
  1210. case CPE_CMD_RESET:
  1211. case CPE_CMD_DL_SEGMENT:
  1212. case CPE_CMD_BOOT:
  1213. case CPE_CMD_FTM_TEST:
  1214. rc = CPE_SVC_SUCCESS;
  1215. break;
  1216. default:
  1217. rc = CPE_SVC_NOT_READY;
  1218. break;
  1219. }
  1220. break;
  1221. case CPE_STATE_BOOTING:
  1222. switch (command) {
  1223. case CPE_CMD_PROCESS_IRQ:
  1224. case CPE_CMD_BOOT_INITIALIZE:
  1225. case CPE_CMD_BOOT_COMPLETE:
  1226. case CPE_CMD_SHUTDOWN:
  1227. rc = CPE_SVC_SUCCESS;
  1228. break;
  1229. case CPE_CMD_FTM_TEST:
  1230. rc = CPE_SVC_BUSY;
  1231. break;
  1232. default:
  1233. rc = CPE_SVC_NOT_READY;
  1234. break;
  1235. }
  1236. break;
  1237. case CPE_STATE_IDLE:
  1238. switch (command) {
  1239. case CPE_CMD_SEND_MSG:
  1240. case CPE_CMD_SEND_TRANS_MSG:
  1241. case CPE_CMD_SEND_MSG_COMPLETE:
  1242. case CPE_CMD_PROCESS_IRQ:
  1243. case CPE_CMD_RESET:
  1244. case CPE_CMD_SHUTDOWN:
  1245. case CPE_CMD_KILL_THREAD:
  1246. case CPE_CMD_PROC_INCOMING_MSG:
  1247. rc = CPE_SVC_SUCCESS;
  1248. break;
  1249. case CPE_CMD_FTM_TEST:
  1250. rc = CPE_SVC_BUSY;
  1251. break;
  1252. default:
  1253. rc = CPE_SVC_FAILED;
  1254. break;
  1255. }
  1256. break;
  1257. case CPE_STATE_SENDING_MSG:
  1258. switch (command) {
  1259. case CPE_CMD_SEND_MSG:
  1260. case CPE_CMD_SEND_TRANS_MSG:
  1261. case CPE_CMD_SEND_MSG_COMPLETE:
  1262. case CPE_CMD_PROCESS_IRQ:
  1263. case CPE_CMD_SHUTDOWN:
  1264. case CPE_CMD_KILL_THREAD:
  1265. case CPE_CMD_PROC_INCOMING_MSG:
  1266. rc = CPE_SVC_SUCCESS;
  1267. break;
  1268. case CPE_CMD_FTM_TEST:
  1269. rc = CPE_SVC_BUSY;
  1270. break;
  1271. default:
  1272. rc = CPE_SVC_FAILED;
  1273. break;
  1274. }
  1275. break;
  1276. case CPE_STATE_OFFLINE:
  1277. switch (command) {
  1278. case CPE_CMD_RESET:
  1279. case CPE_CMD_RAMDUMP:
  1280. case CPE_CMD_KILL_THREAD:
  1281. rc = CPE_SVC_SUCCESS;
  1282. break;
  1283. default:
  1284. rc = CPE_SVC_NOT_READY;
  1285. break;
  1286. }
  1287. break;
  1288. default:
  1289. pr_debug("%s: unhandled state %d\n",
  1290. __func__, t_info->state);
  1291. break;
  1292. }
  1293. if (rc != CPE_SVC_SUCCESS)
  1294. pr_err("%s: invalid command %d, state = %d\n",
  1295. __func__, command, t_info->state);
  1296. return rc;
  1297. }
  1298. void *cpe_svc_initialize(
  1299. void irq_control_callback(u32 enable),
  1300. const void *codec_info, void *context)
  1301. {
  1302. struct cpe_info *t_info = NULL;
  1303. const struct cpe_svc_hw_cfg *cap = NULL;
  1304. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  1305. struct cpe_svc_init_param *init_context =
  1306. (struct cpe_svc_init_param *) context;
  1307. void *client_context = NULL;
  1308. if (cpe_d.cpe_default_handle &&
  1309. cpe_d.cpe_default_handle->initialized == true)
  1310. return (void *)cpe_d.cpe_default_handle;
  1311. cpe_d.cpe_query_freq_plans_cb = NULL;
  1312. cpe_d.cpe_change_freq_plan_cb = NULL;
  1313. if (context) {
  1314. client_context = init_context->context;
  1315. switch (init_context->version) {
  1316. case CPE_SVC_INIT_PARAM_V1:
  1317. cpe_d.cpe_query_freq_plans_cb =
  1318. init_context->query_freq_plans_cb;
  1319. cpe_d.cpe_change_freq_plan_cb =
  1320. init_context->change_freq_plan_cb;
  1321. break;
  1322. default:
  1323. break;
  1324. }
  1325. }
  1326. if (!cpe_d.cpe_default_handle) {
  1327. cpe_d.cpe_default_handle = kzalloc(sizeof(struct cpe_info),
  1328. GFP_KERNEL);
  1329. if (!cpe_d.cpe_default_handle)
  1330. goto err_register;
  1331. memset(cpe_d.cpe_default_handle, 0,
  1332. sizeof(struct cpe_info));
  1333. }
  1334. t_info = cpe_d.cpe_default_handle;
  1335. t_info->client_context = client_context;
  1336. INIT_LIST_HEAD(&t_info->client_list);
  1337. cpe_d.cdc_priv = client_context;
  1338. INIT_WORK(&t_info->clk_plan_work, cpe_clk_plan_work);
  1339. init_completion(&t_info->core_svc_cmd_compl);
  1340. t_info->tgt = kzalloc(sizeof(struct cpe_svc_tgt_abstraction),
  1341. GFP_KERNEL);
  1342. if (!t_info->tgt)
  1343. goto err_tgt_alloc;
  1344. t_info->codec_id =
  1345. ((struct cpe_svc_codec_info_v1 *) codec_info)->id;
  1346. rc = cpe_svc_tgt_init((struct cpe_svc_codec_info_v1 *)codec_info,
  1347. t_info->tgt);
  1348. if (rc != CPE_SVC_SUCCESS)
  1349. goto err_tgt_init;
  1350. cap = t_info->tgt->tgt_get_cpe_info();
  1351. memset(t_info->tgt->outbox, 0, cap->outbox_size);
  1352. memset(t_info->tgt->inbox, 0, cap->inbox_size);
  1353. mutex_init(&t_info->msg_lock);
  1354. cpe_d.cpe_irq_control_callback = irq_control_callback;
  1355. t_info->cpe_process_command = cpe_mt_process_cmd;
  1356. t_info->cpe_cmd_validate = cpe_mt_validate_cmd;
  1357. t_info->cpe_start_notification = broadcast_boot_event;
  1358. mutex_init(&cpe_d.cpe_api_mutex);
  1359. mutex_init(&cpe_d.cpe_svc_lock);
  1360. pr_debug("%s: cpe services initialized\n", __func__);
  1361. t_info->state = CPE_STATE_INITIALIZED;
  1362. t_info->initialized = true;
  1363. return t_info;
  1364. err_tgt_init:
  1365. kfree(t_info->tgt);
  1366. err_tgt_alloc:
  1367. kfree(cpe_d.cpe_default_handle);
  1368. cpe_d.cpe_default_handle = NULL;
  1369. err_register:
  1370. return NULL;
  1371. }
  1372. enum cpe_svc_result cpe_svc_deinitialize(void *cpe_handle)
  1373. {
  1374. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  1375. struct cpe_info *t_info = (struct cpe_info *)cpe_handle;
  1376. if (!t_info)
  1377. t_info = cpe_d.cpe_default_handle;
  1378. rc = cpe_is_command_valid(t_info, CPE_CMD_DEINITIALIZE);
  1379. if (rc != CPE_SVC_SUCCESS) {
  1380. pr_err("%s: Invalid command %d\n",
  1381. __func__, CPE_CMD_DEINITIALIZE);
  1382. return rc;
  1383. }
  1384. if (cpe_d.cpe_default_handle == t_info)
  1385. cpe_d.cpe_default_handle = NULL;
  1386. t_info->tgt->tgt_deinit(t_info->tgt);
  1387. cpe_change_state(t_info, CPE_STATE_UNINITIALIZED,
  1388. CPE_SS_IDLE);
  1389. mutex_destroy(&t_info->msg_lock);
  1390. kfree(t_info->tgt);
  1391. kfree(t_info);
  1392. mutex_destroy(&cpe_d.cpe_api_mutex);
  1393. mutex_destroy(&cpe_d.cpe_svc_lock);
  1394. return rc;
  1395. }
  1396. void *cpe_svc_register(void *cpe_handle,
  1397. void (*notification_callback)
  1398. (const struct cpe_svc_notification *parameter),
  1399. u32 mask, const char *name)
  1400. {
  1401. void *reg_handle;
  1402. CPE_SVC_GRAB_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1403. if (!cpe_d.cpe_default_handle) {
  1404. cpe_d.cpe_default_handle = kzalloc(sizeof(struct cpe_info),
  1405. GFP_KERNEL);
  1406. if (!cpe_d.cpe_default_handle) {
  1407. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1408. return NULL;
  1409. }
  1410. memset(cpe_d.cpe_default_handle, 0,
  1411. sizeof(struct cpe_info));
  1412. }
  1413. if (!cpe_handle)
  1414. cpe_handle = cpe_d.cpe_default_handle;
  1415. reg_handle = cpe_register_generic((struct cpe_info *)cpe_handle,
  1416. notification_callback,
  1417. NULL,
  1418. mask, CPE_NO_SERVICE, name);
  1419. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1420. return reg_handle;
  1421. }
  1422. enum cpe_svc_result cpe_svc_deregister(void *cpe_handle, void *reg_handle)
  1423. {
  1424. enum cpe_svc_result rc;
  1425. CPE_SVC_GRAB_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1426. if (!cpe_handle)
  1427. cpe_handle = cpe_d.cpe_default_handle;
  1428. rc = cpe_deregister_generic((struct cpe_info *)cpe_handle,
  1429. reg_handle);
  1430. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1431. return rc;
  1432. }
  1433. enum cpe_svc_result cpe_svc_download_segment(void *cpe_handle,
  1434. const struct cpe_svc_mem_segment *segment)
  1435. {
  1436. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  1437. struct cpe_info *t_info = (struct cpe_info *)cpe_handle;
  1438. CPE_SVC_GRAB_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1439. if (!t_info)
  1440. t_info = cpe_d.cpe_default_handle;
  1441. rc = cpe_is_command_valid(t_info, CPE_CMD_DL_SEGMENT);
  1442. if (rc != CPE_SVC_SUCCESS) {
  1443. pr_err("%s: cmd validation fail, cmd = %d\n",
  1444. __func__, CPE_CMD_DL_SEGMENT);
  1445. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1446. return rc;
  1447. }
  1448. cpe_toggle_irq_notification(t_info, false);
  1449. t_info->state = CPE_STATE_DOWNLOADING;
  1450. t_info->substate = CPE_SS_DL_DOWNLOADING;
  1451. rc = t_info->tgt->tgt_write_ram(t_info, segment);
  1452. cpe_toggle_irq_notification(t_info, true);
  1453. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1454. return rc;
  1455. }
  1456. enum cpe_svc_result cpe_svc_boot(void *cpe_handle, int debug_mode)
  1457. {
  1458. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  1459. struct cpe_info *t_info = (struct cpe_info *)cpe_handle;
  1460. CPE_SVC_GRAB_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1461. if (!t_info)
  1462. t_info = cpe_d.cpe_default_handle;
  1463. rc = cpe_is_command_valid(t_info, CPE_CMD_BOOT);
  1464. if (rc != CPE_SVC_SUCCESS) {
  1465. pr_err("%s: cmd validation fail, cmd = %d\n",
  1466. __func__, CPE_CMD_BOOT);
  1467. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1468. return rc;
  1469. }
  1470. if (rc == CPE_SVC_SUCCESS) {
  1471. t_info->tgt->tgt_boot(debug_mode);
  1472. t_info->state = CPE_STATE_BOOTING;
  1473. t_info->substate = CPE_SS_BOOT;
  1474. pr_debug("%s: cpe service booting\n",
  1475. __func__);
  1476. }
  1477. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1478. return rc;
  1479. }
  1480. enum cpe_svc_result cpe_svc_process_irq(void *cpe_handle, u32 cpe_irq)
  1481. {
  1482. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  1483. struct cpe_info *t_info = (struct cpe_info *)cpe_handle;
  1484. if (!t_info)
  1485. t_info = cpe_d.cpe_default_handle;
  1486. cpe_toggle_irq_notification(t_info, false);
  1487. cpe_process_irq_int(cpe_irq, t_info);
  1488. cpe_toggle_irq_notification(t_info, true);
  1489. return rc;
  1490. }
  1491. enum cpe_svc_result cpe_svc_route_notification(void *cpe_handle,
  1492. enum cpe_svc_module module, enum cpe_svc_route_dest dest)
  1493. {
  1494. struct cpe_info *t_info = (struct cpe_info *)cpe_handle;
  1495. enum cpe_svc_result rc = CPE_SVC_NOT_READY;
  1496. CPE_SVC_GRAB_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1497. if (!t_info)
  1498. t_info = cpe_d.cpe_default_handle;
  1499. if (t_info->tgt)
  1500. rc = t_info->tgt->tgt_route_notification(module, dest);
  1501. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1502. return rc;
  1503. }
  1504. static enum cpe_svc_result __cpe_svc_shutdown(void *cpe_handle)
  1505. {
  1506. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  1507. struct cpe_info *t_info = (struct cpe_info *)cpe_handle;
  1508. struct cpe_command_node *n = NULL;
  1509. struct cpe_command_node kill_cmd;
  1510. if (!t_info)
  1511. t_info = cpe_d.cpe_default_handle;
  1512. rc = cpe_is_command_valid(t_info, CPE_CMD_SHUTDOWN);
  1513. if (rc != CPE_SVC_SUCCESS) {
  1514. pr_err("%s: cmd validation fail, cmd = %d\n",
  1515. __func__, CPE_CMD_SHUTDOWN);
  1516. return rc;
  1517. }
  1518. while (!list_empty(&t_info->main_queue)) {
  1519. n = list_first_entry(&t_info->main_queue,
  1520. struct cpe_command_node, list);
  1521. if (n->command == CPE_CMD_SEND_MSG) {
  1522. cpe_notify_cmi_client(t_info, (u8 *)n->data,
  1523. CPE_SVC_SHUTTING_DOWN);
  1524. }
  1525. /*
  1526. * Since command cannot be processed,
  1527. * delete it from the list and perform cleanup
  1528. */
  1529. list_del(&n->list);
  1530. cpe_command_cleanup(n);
  1531. kfree(n);
  1532. }
  1533. pr_debug("%s: cpe service OFFLINE state\n", __func__);
  1534. t_info->state = CPE_STATE_OFFLINE;
  1535. t_info->substate = CPE_SS_IDLE;
  1536. memset(&kill_cmd, 0, sizeof(kill_cmd));
  1537. kill_cmd.command = CPE_CMD_KILL_THREAD;
  1538. if (t_info->pending) {
  1539. struct cpe_send_msg *m =
  1540. (struct cpe_send_msg *)t_info->pending;
  1541. cpe_notify_cmi_client(t_info, m->payload,
  1542. CPE_SVC_SHUTTING_DOWN);
  1543. kfree(t_info->pending);
  1544. t_info->pending = NULL;
  1545. }
  1546. cpe_cleanup_worker_thread(t_info);
  1547. t_info->cpe_process_command(&kill_cmd);
  1548. return rc;
  1549. }
  1550. enum cpe_svc_result cpe_svc_shutdown(void *cpe_handle)
  1551. {
  1552. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  1553. CPE_SVC_GRAB_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1554. rc = __cpe_svc_shutdown(cpe_handle);
  1555. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1556. return rc;
  1557. }
  1558. enum cpe_svc_result cpe_svc_reset(void *cpe_handle)
  1559. {
  1560. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  1561. struct cpe_info *t_info = (struct cpe_info *)cpe_handle;
  1562. CPE_SVC_GRAB_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1563. if (!t_info)
  1564. t_info = cpe_d.cpe_default_handle;
  1565. rc = cpe_is_command_valid(t_info, CPE_CMD_RESET);
  1566. if (rc != CPE_SVC_SUCCESS) {
  1567. pr_err("%s: cmd validation fail, cmd = %d\n",
  1568. __func__, CPE_CMD_RESET);
  1569. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1570. return rc;
  1571. }
  1572. if (t_info && t_info->tgt) {
  1573. rc = t_info->tgt->tgt_reset();
  1574. pr_debug("%s: cpe services in INITIALIZED state\n",
  1575. __func__);
  1576. t_info->state = CPE_STATE_INITIALIZED;
  1577. t_info->substate = CPE_SS_IDLE;
  1578. }
  1579. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1580. return rc;
  1581. }
  1582. enum cpe_svc_result cpe_svc_ramdump(void *cpe_handle,
  1583. struct cpe_svc_mem_segment *buffer)
  1584. {
  1585. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  1586. struct cpe_info *t_info = (struct cpe_info *)cpe_handle;
  1587. CPE_SVC_GRAB_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1588. if (!t_info)
  1589. t_info = cpe_d.cpe_default_handle;
  1590. rc = cpe_is_command_valid(t_info, CPE_CMD_RAMDUMP);
  1591. if (rc != CPE_SVC_SUCCESS) {
  1592. pr_err("%s: cmd validation fail, cmd = %d\n",
  1593. __func__, CPE_CMD_RAMDUMP);
  1594. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1595. return rc;
  1596. }
  1597. if (t_info->tgt) {
  1598. rc = t_info->tgt->tgt_read_ram(t_info, buffer);
  1599. } else {
  1600. pr_err("%s: cpe service not ready\n", __func__);
  1601. rc = CPE_SVC_NOT_READY;
  1602. }
  1603. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1604. return rc;
  1605. }
  1606. enum cpe_svc_result cpe_svc_set_debug_mode(void *cpe_handle, u32 mode)
  1607. {
  1608. struct cpe_info *t_info = (struct cpe_info *)cpe_handle;
  1609. enum cpe_svc_result rc = CPE_SVC_INVALID_HANDLE;
  1610. CPE_SVC_GRAB_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1611. if (!t_info)
  1612. t_info = cpe_d.cpe_default_handle;
  1613. if (t_info->tgt)
  1614. rc = t_info->tgt->tgt_set_debug_mode(mode);
  1615. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1616. return rc;
  1617. }
  1618. const struct cpe_svc_hw_cfg *cpe_svc_get_hw_cfg(void *cpe_handle)
  1619. {
  1620. struct cpe_info *t_info = (struct cpe_info *)cpe_handle;
  1621. if (!t_info)
  1622. t_info = cpe_d.cpe_default_handle;
  1623. if (t_info->tgt)
  1624. return t_info->tgt->tgt_get_cpe_info();
  1625. return NULL;
  1626. }
  1627. void *cmi_register(
  1628. void notification_callback(
  1629. const struct cmi_api_notification *parameter),
  1630. u32 service)
  1631. {
  1632. void *reg_handle = NULL;
  1633. CPE_SVC_GRAB_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1634. reg_handle = cpe_register_generic(cpe_d.cpe_default_handle,
  1635. NULL,
  1636. notification_callback,
  1637. (CPE_SVC_CMI_MSG | CPE_SVC_OFFLINE |
  1638. CPE_SVC_ONLINE),
  1639. service,
  1640. "CMI_CLIENT");
  1641. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1642. return reg_handle;
  1643. }
  1644. enum cmi_api_result cmi_deregister(void *reg_handle)
  1645. {
  1646. u32 clients = 0;
  1647. struct cpe_notif_node *n = NULL;
  1648. enum cmi_api_result rc = CMI_API_SUCCESS;
  1649. struct cpe_svc_notification payload;
  1650. CPE_SVC_GRAB_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1651. rc = (enum cmi_api_result) cpe_deregister_generic(
  1652. cpe_d.cpe_default_handle, reg_handle);
  1653. CPE_SVC_GRAB_LOCK(&cpe_d.cpe_svc_lock, "cpe_svc");
  1654. list_for_each_entry(n, &cpe_d.cpe_default_handle->client_list, list) {
  1655. if (n->mask & CPE_SVC_CMI_MSG)
  1656. clients++;
  1657. }
  1658. CPE_SVC_REL_LOCK(&cpe_d.cpe_svc_lock, "cpe_svc");
  1659. if (clients == 0) {
  1660. payload.event = CPE_SVC_CMI_CLIENTS_DEREG;
  1661. payload.payload = NULL;
  1662. payload.result = CPE_SVC_SUCCESS;
  1663. cpe_broadcast_notification(cpe_d.cpe_default_handle, &payload);
  1664. }
  1665. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1666. return rc;
  1667. }
  1668. enum cmi_api_result cmi_send_msg(void *message)
  1669. {
  1670. enum cmi_api_result rc = CMI_API_SUCCESS;
  1671. struct cpe_send_msg *msg = NULL;
  1672. struct cmi_hdr *hdr;
  1673. CPE_SVC_GRAB_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1674. hdr = CMI_GET_HEADER(message);
  1675. msg = kzalloc(sizeof(struct cpe_send_msg),
  1676. GFP_ATOMIC);
  1677. if (!msg) {
  1678. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1679. return CPE_SVC_NO_MEMORY;
  1680. }
  1681. if (CMI_HDR_GET_OBM_FLAG(hdr) == CMI_OBM_FLAG_OUT_BAND)
  1682. msg->isobm = 1;
  1683. else
  1684. msg->isobm = 0;
  1685. msg->size = sizeof(struct cmi_hdr) +
  1686. CMI_HDR_GET_PAYLOAD_SIZE(hdr);
  1687. msg->payload = kzalloc(msg->size, GFP_ATOMIC);
  1688. if (!msg->payload) {
  1689. kfree(msg);
  1690. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1691. return CPE_SVC_NO_MEMORY;
  1692. }
  1693. msg->address = 0;
  1694. memcpy((void *)msg->payload, message, msg->size);
  1695. rc = (enum cmi_api_result) cpe_send_cmd_to_thread(
  1696. cpe_d.cpe_default_handle,
  1697. CPE_CMD_SEND_MSG,
  1698. (void *)msg, false);
  1699. if (rc != 0) {
  1700. pr_err("%s: Failed to queue message\n", __func__);
  1701. kfree(msg->payload);
  1702. kfree(msg);
  1703. }
  1704. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1705. return rc;
  1706. }
  1707. enum cpe_svc_result cpe_svc_ftm_test(void *cpe_handle, u32 *status)
  1708. {
  1709. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  1710. struct cpe_info *t_info = (struct cpe_info *)cpe_handle;
  1711. struct cpe_svc_mem_segment backup_seg;
  1712. struct cpe_svc_mem_segment waiti_seg;
  1713. u8 *backup_data = NULL;
  1714. CPE_SVC_GRAB_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1715. if (!t_info)
  1716. t_info = cpe_d.cpe_default_handle;
  1717. rc = cpe_is_command_valid(t_info, CPE_CMD_FTM_TEST);
  1718. if (rc != CPE_SVC_SUCCESS) {
  1719. pr_err("%s: cmd validation fail, cmd = %d\n",
  1720. __func__, CPE_CMD_FTM_TEST);
  1721. goto fail_cmd;
  1722. }
  1723. if (t_info && t_info->tgt) {
  1724. backup_data = kzalloc(
  1725. t_info->tgt->tgt_waiti_info->tgt_waiti_size,
  1726. GFP_KERNEL);
  1727. /* CPE reset */
  1728. rc = t_info->tgt->tgt_reset();
  1729. if (rc != CPE_SVC_SUCCESS) {
  1730. pr_err("%s: CPE reset fail! err = %d\n",
  1731. __func__, rc);
  1732. goto err_return;
  1733. }
  1734. /* Back up the 4 byte IRAM data first */
  1735. backup_seg.type = CPE_SVC_INSTRUCTION_MEM;
  1736. backup_seg.cpe_addr =
  1737. t_info->tgt->tgt_get_cpe_info()->IRAM_offset;
  1738. backup_seg.size = t_info->tgt->tgt_waiti_info->tgt_waiti_size;
  1739. backup_seg.data = backup_data;
  1740. pr_debug("%s: Backing up IRAM data from CPE\n",
  1741. __func__);
  1742. rc = t_info->tgt->tgt_read_ram(t_info, &backup_seg);
  1743. if (rc != CPE_SVC_SUCCESS) {
  1744. pr_err("%s: Fail to backup CPE IRAM data, err = %d\n",
  1745. __func__, rc);
  1746. goto err_return;
  1747. }
  1748. pr_debug("%s: Complete backing up IRAM data from CPE\n",
  1749. __func__);
  1750. /* Write the WAITI instruction data */
  1751. waiti_seg.type = CPE_SVC_INSTRUCTION_MEM;
  1752. waiti_seg.cpe_addr =
  1753. t_info->tgt->tgt_get_cpe_info()->IRAM_offset;
  1754. waiti_seg.size = t_info->tgt->tgt_waiti_info->tgt_waiti_size;
  1755. waiti_seg.data = t_info->tgt->tgt_waiti_info->tgt_waiti_data;
  1756. rc = t_info->tgt->tgt_write_ram(t_info, &waiti_seg);
  1757. if (rc != CPE_SVC_SUCCESS) {
  1758. pr_err("%s: Fail to write the WAITI data, err = %d\n",
  1759. __func__, rc);
  1760. goto restore_iram;
  1761. }
  1762. /* Boot up cpe to execute the WAITI instructions */
  1763. rc = t_info->tgt->tgt_boot(1);
  1764. if (rc != CPE_SVC_SUCCESS) {
  1765. pr_err("%s: Fail to boot CPE, err = %d\n",
  1766. __func__, rc);
  1767. goto reset;
  1768. }
  1769. /*
  1770. * 1ms delay is suggested by the hw team to
  1771. * wait for cpe to boot up.
  1772. */
  1773. usleep_range(1000, 1100);
  1774. /* Check if the cpe init is done after executing the WAITI */
  1775. *status = t_info->tgt->tgt_cpar_init_done();
  1776. reset:
  1777. /* Set the cpe back to reset state */
  1778. rc = t_info->tgt->tgt_reset();
  1779. if (rc != CPE_SVC_SUCCESS) {
  1780. pr_err("%s: CPE reset fail! err = %d\n",
  1781. __func__, rc);
  1782. goto restore_iram;
  1783. }
  1784. restore_iram:
  1785. /* Restore the IRAM 4 bytes data */
  1786. rc = t_info->tgt->tgt_write_ram(t_info, &backup_seg);
  1787. if (rc != CPE_SVC_SUCCESS) {
  1788. pr_err("%s: Fail to restore the IRAM data, err = %d\n",
  1789. __func__, rc);
  1790. goto err_return;
  1791. }
  1792. }
  1793. err_return:
  1794. kfree(backup_data);
  1795. fail_cmd:
  1796. CPE_SVC_REL_LOCK(&cpe_d.cpe_api_mutex, "cpe_api");
  1797. return rc;
  1798. }
  1799. static enum cpe_svc_result cpe_tgt_tomtom_boot(int debug_mode)
  1800. {
  1801. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  1802. if (!debug_mode)
  1803. rc = cpe_update_bits(TOMTOM_A_SVASS_CPAR_WDOG_CFG,
  1804. 0x3F, 0x31);
  1805. else
  1806. pr_info("%s: CPE in debug mode, WDOG disabled\n",
  1807. __func__);
  1808. rc = cpe_update_bits(TOMTOM_A_SVASS_CLKRST_CTL,
  1809. 0x02, 0x00);
  1810. rc = cpe_update_bits(TOMTOM_A_SVASS_CLKRST_CTL,
  1811. 0x0C, 0x04);
  1812. rc = cpe_update_bits(TOMTOM_A_SVASS_CPAR_CFG,
  1813. 0x01, 0x01);
  1814. return rc;
  1815. }
  1816. static u32 cpe_tgt_tomtom_is_cpar_init_done(void)
  1817. {
  1818. u8 status = 0;
  1819. cpe_register_read(TOMTOM_A_SVASS_STATUS, &status);
  1820. return status & 0x01;
  1821. }
  1822. static u32 cpe_tgt_tomtom_is_active(void)
  1823. {
  1824. u8 status = 0;
  1825. cpe_register_read(TOMTOM_A_SVASS_STATUS, &status);
  1826. return status & 0x04;
  1827. }
  1828. static enum cpe_svc_result cpe_tgt_tomtom_reset(void)
  1829. {
  1830. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  1831. rc = cpe_update_bits(TOMTOM_A_SVASS_CPAR_WDOG_CFG,
  1832. 0x30, 0x00);
  1833. rc = cpe_update_bits(TOMTOM_A_SVASS_CPAR_CFG,
  1834. 0x01, 0x00);
  1835. rc = cpe_update_bits(TOMTOM_A_MEM_LEAKAGE_CTL,
  1836. 0x07, 0x03);
  1837. rc = cpe_update_bits(TOMTOM_A_SVASS_CLKRST_CTL,
  1838. 0x08, 0x08);
  1839. rc = cpe_update_bits(TOMTOM_A_SVASS_CLKRST_CTL,
  1840. 0x02, 0x02);
  1841. return rc;
  1842. }
  1843. enum cpe_svc_result cpe_tgt_tomtom_voicetx(bool enable)
  1844. {
  1845. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  1846. u8 val = 0;
  1847. if (enable)
  1848. val = 0x02;
  1849. else
  1850. val = 0x00;
  1851. rc = cpe_update_bits(TOMTOM_A_SVASS_CFG,
  1852. 0x02, val);
  1853. val = 0;
  1854. cpe_register_read(TOMTOM_A_SVASS_CFG, &val);
  1855. return rc;
  1856. }
  1857. enum cpe_svc_result cpe_svc_toggle_lab(void *cpe_handle, bool enable)
  1858. {
  1859. struct cpe_info *t_info = (struct cpe_info *)cpe_handle;
  1860. if (!t_info)
  1861. t_info = cpe_d.cpe_default_handle;
  1862. if (t_info->tgt)
  1863. return t_info->tgt->tgt_voice_tx_lab(enable);
  1864. else
  1865. return CPE_SVC_INVALID_HANDLE;
  1866. }
  1867. static enum cpe_svc_result cpe_tgt_tomtom_read_mailbox(u8 *buffer,
  1868. size_t size)
  1869. {
  1870. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  1871. u32 cnt = 0;
  1872. if (size >= TOMTOM_A_SVASS_SPE_OUTBOX_SIZE)
  1873. size = TOMTOM_A_SVASS_SPE_OUTBOX_SIZE - 1;
  1874. for (cnt = 0; (cnt < size) && (rc == CPE_SVC_SUCCESS); cnt++) {
  1875. rc = cpe_register_read(TOMTOM_A_SVASS_SPE_OUTBOX(cnt),
  1876. &(buffer[cnt]));
  1877. }
  1878. return rc;
  1879. }
  1880. static enum cpe_svc_result cpe_tgt_tomtom_write_mailbox(u8 *buffer,
  1881. size_t size)
  1882. {
  1883. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  1884. u32 cnt = 0;
  1885. if (size >= TOMTOM_A_SVASS_SPE_INBOX_SIZE)
  1886. size = TOMTOM_A_SVASS_SPE_INBOX_SIZE - 1;
  1887. for (cnt = 0; (cnt < size) && (rc == CPE_SVC_SUCCESS); cnt++) {
  1888. rc = cpe_register_write(TOMTOM_A_SVASS_SPE_INBOX(cnt),
  1889. buffer[cnt]);
  1890. }
  1891. if (rc == CPE_SVC_SUCCESS)
  1892. rc = cpe_register_write(TOMTOM_A_SVASS_SPE_INBOX_TRG, 1);
  1893. return rc;
  1894. }
  1895. static enum cpe_svc_result cpe_get_mem_addr(struct cpe_info *t_info,
  1896. const struct cpe_svc_mem_segment *mem_seg,
  1897. u32 *addr, u8 *mem)
  1898. {
  1899. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  1900. u32 offset, mem_sz, address;
  1901. u8 mem_type;
  1902. switch (mem_seg->type) {
  1903. case CPE_SVC_DATA_MEM:
  1904. mem_type = MEM_ACCESS_DRAM_VAL;
  1905. offset = TOMTOM_A_SVASS_SPE_DRAM_OFFSET;
  1906. mem_sz = TOMTOM_A_SVASS_SPE_DRAM_SIZE;
  1907. break;
  1908. case CPE_SVC_INSTRUCTION_MEM:
  1909. mem_type = MEM_ACCESS_IRAM_VAL;
  1910. offset = TOMTOM_A_SVASS_SPE_IRAM_OFFSET;
  1911. mem_sz = TOMTOM_A_SVASS_SPE_IRAM_SIZE;
  1912. break;
  1913. default:
  1914. pr_err("%s: Invalid mem type = %u\n",
  1915. __func__, mem_seg->type);
  1916. return CPE_SVC_INVALID_HANDLE;
  1917. }
  1918. if (mem_seg->cpe_addr < offset) {
  1919. pr_err("%s: Invalid addr %x for mem type %u\n",
  1920. __func__, mem_seg->cpe_addr, mem_type);
  1921. return CPE_SVC_INVALID_HANDLE;
  1922. }
  1923. address = mem_seg->cpe_addr - offset;
  1924. if (address + mem_seg->size > mem_sz) {
  1925. pr_err("%s: wrong size %zu, start address %x, mem_type %u\n",
  1926. __func__, mem_seg->size, address, mem_type);
  1927. return CPE_SVC_INVALID_HANDLE;
  1928. }
  1929. (*addr) = address;
  1930. (*mem) = mem_type;
  1931. return rc;
  1932. }
  1933. static enum cpe_svc_result cpe_tgt_tomtom_read_RAM(struct cpe_info *t_info,
  1934. struct cpe_svc_mem_segment *mem_seg)
  1935. {
  1936. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  1937. u8 mem_reg_val = 0;
  1938. u32 cnt = 0;
  1939. bool autoinc;
  1940. u8 mem = MEM_ACCESS_NONE_VAL;
  1941. u32 addr = 0;
  1942. u32 ptr_update = true;
  1943. if (!mem_seg) {
  1944. pr_err("%s: Invalid mem segment\n",
  1945. __func__);
  1946. return CPE_SVC_INVALID_HANDLE;
  1947. }
  1948. rc = cpe_get_mem_addr(t_info, mem_seg, &addr, &mem);
  1949. if (rc != CPE_SVC_SUCCESS) {
  1950. pr_err("%s: Cannot obtain address, mem_type %u\n",
  1951. __func__, mem_seg->type);
  1952. return rc;
  1953. }
  1954. rc = cpe_register_write(TOMTOM_A_SVASS_MEM_CTL, 0);
  1955. autoinc = cpe_register_read_autoinc_supported();
  1956. if (autoinc)
  1957. mem_reg_val |= 0x04;
  1958. mem_reg_val |= 0x08;
  1959. mem_reg_val |= mem;
  1960. do {
  1961. if (!autoinc || ptr_update) {
  1962. rc = cpe_register_write(TOMTOM_A_SVASS_MEM_PTR0,
  1963. (addr & 0xFF));
  1964. rc = cpe_register_write(TOMTOM_A_SVASS_MEM_PTR1,
  1965. ((addr >> 8) & 0xFF));
  1966. rc = cpe_register_write(TOMTOM_A_SVASS_MEM_PTR2,
  1967. ((addr >> 16) & 0xFF));
  1968. rc = cpe_register_write(TOMTOM_A_SVASS_MEM_CTL,
  1969. mem_reg_val);
  1970. ptr_update = false;
  1971. }
  1972. rc = cpe_register_read(TOMTOM_A_SVASS_MEM_BANK,
  1973. &mem_seg->data[cnt]);
  1974. if (!autoinc)
  1975. rc = cpe_register_write(TOMTOM_A_SVASS_MEM_CTL, 0);
  1976. } while (++cnt < mem_seg->size);
  1977. rc = cpe_register_write(TOMTOM_A_SVASS_MEM_CTL, 0);
  1978. return rc;
  1979. }
  1980. static enum cpe_svc_result cpe_tgt_tomtom_write_RAM(struct cpe_info *t_info,
  1981. const struct cpe_svc_mem_segment *mem_seg)
  1982. {
  1983. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  1984. u8 mem_reg_val = 0;
  1985. u8 mem = MEM_ACCESS_NONE_VAL;
  1986. u32 addr = 0;
  1987. u8 *temp_ptr = NULL;
  1988. u32 temp_size = 0;
  1989. bool autoinc;
  1990. if (!mem_seg) {
  1991. pr_err("%s: Invalid mem segment\n",
  1992. __func__);
  1993. return CPE_SVC_INVALID_HANDLE;
  1994. }
  1995. rc = cpe_get_mem_addr(t_info, mem_seg, &addr, &mem);
  1996. if (rc != CPE_SVC_SUCCESS) {
  1997. pr_err("%s: Cannot obtain address, mem_type %u\n",
  1998. __func__, mem_seg->type);
  1999. return rc;
  2000. }
  2001. autoinc = cpe_register_read_autoinc_supported();
  2002. if (autoinc)
  2003. mem_reg_val |= 0x04;
  2004. mem_reg_val |= mem;
  2005. rc = cpe_update_bits(TOMTOM_A_SVASS_MEM_CTL,
  2006. 0x0F, mem_reg_val);
  2007. rc = cpe_register_write(TOMTOM_A_SVASS_MEM_PTR0,
  2008. (addr & 0xFF));
  2009. rc = cpe_register_write(TOMTOM_A_SVASS_MEM_PTR1,
  2010. ((addr >> 8) & 0xFF));
  2011. rc = cpe_register_write(TOMTOM_A_SVASS_MEM_PTR2,
  2012. ((addr >> 16) & 0xFF));
  2013. temp_size = 0;
  2014. temp_ptr = mem_seg->data;
  2015. while (temp_size <= mem_seg->size) {
  2016. u32 to_write = (mem_seg->size >= temp_size+CHUNK_SIZE)
  2017. ? CHUNK_SIZE : (mem_seg->size-temp_size);
  2018. if (t_info->state == CPE_STATE_OFFLINE) {
  2019. pr_err("%s: CPE is offline\n", __func__);
  2020. return CPE_SVC_FAILED;
  2021. }
  2022. cpe_register_write_repeat(TOMTOM_A_SVASS_MEM_BANK,
  2023. temp_ptr, to_write);
  2024. temp_size += CHUNK_SIZE;
  2025. temp_ptr += CHUNK_SIZE;
  2026. }
  2027. rc = cpe_register_write(TOMTOM_A_SVASS_MEM_CTL, 0);
  2028. return rc;
  2029. }
  2030. static enum cpe_svc_result cpe_tgt_tomtom_route_notification(
  2031. enum cpe_svc_module module,
  2032. enum cpe_svc_route_dest dest)
  2033. {
  2034. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  2035. u8 ctl_reg_val = 0;
  2036. switch (module) {
  2037. case CPE_SVC_LISTEN_PROC:
  2038. switch (dest) {
  2039. case CPE_SVC_EXTERNAL:
  2040. ctl_reg_val = LISTEN_CTL_MSM_VAL;
  2041. break;
  2042. case CPE_SVC_INTERNAL:
  2043. ctl_reg_val = LISTEN_CTL_SPE_VAL;
  2044. break;
  2045. default:
  2046. pr_err("%s: Invalid dest %d\n",
  2047. __func__, dest);
  2048. return CPE_SVC_FAILED;
  2049. }
  2050. rc = cpe_update_bits(TOMTOM_A_SVASS_CFG,
  2051. 0x01, ctl_reg_val);
  2052. break;
  2053. default:
  2054. pr_err("%s: Invalid module %d\n",
  2055. __func__, module);
  2056. rc = CPE_SVC_FAILED;
  2057. break;
  2058. }
  2059. return rc;
  2060. }
  2061. static enum cpe_svc_result cpe_tgt_tomtom_set_debug_mode(u32 enable)
  2062. {
  2063. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  2064. u8 dbg_reg_val = 0x00;
  2065. if (enable)
  2066. dbg_reg_val = 0x08;
  2067. rc = cpe_update_bits(TOMTOM_A_SVASS_DEBUG,
  2068. 0x08, dbg_reg_val);
  2069. return rc;
  2070. }
  2071. static const struct cpe_svc_hw_cfg *cpe_tgt_tomtom_get_cpe_info(void)
  2072. {
  2073. return &cpe_svc_tomtom_info;
  2074. }
  2075. static enum cpe_svc_result cpe_tgt_tomtom_deinit(
  2076. struct cpe_svc_tgt_abstraction *param)
  2077. {
  2078. kfree(param->inbox);
  2079. param->inbox = NULL;
  2080. kfree(param->outbox);
  2081. param->outbox = NULL;
  2082. memset(param, 0, sizeof(struct cpe_svc_tgt_abstraction));
  2083. return CPE_SVC_SUCCESS;
  2084. }
  2085. static u8 cpe_tgt_tomtom_waiti_data[] = {0x00, 0x70, 0x00, 0x00};
  2086. static struct cpe_tgt_waiti_info cpe_tgt_tomtom_waiti_info = {
  2087. .tgt_waiti_size = ARRAY_SIZE(cpe_tgt_tomtom_waiti_data),
  2088. .tgt_waiti_data = cpe_tgt_tomtom_waiti_data,
  2089. };
  2090. static enum cpe_svc_result cpe_tgt_tomtom_init(
  2091. struct cpe_svc_codec_info_v1 *codec_info,
  2092. struct cpe_svc_tgt_abstraction *param)
  2093. {
  2094. if (!codec_info)
  2095. return CPE_SVC_INVALID_HANDLE;
  2096. if (!param)
  2097. return CPE_SVC_INVALID_HANDLE;
  2098. if (codec_info->id == CPE_SVC_CODEC_TOMTOM) {
  2099. param->tgt_boot = cpe_tgt_tomtom_boot;
  2100. param->tgt_cpar_init_done = cpe_tgt_tomtom_is_cpar_init_done;
  2101. param->tgt_is_active = cpe_tgt_tomtom_is_active;
  2102. param->tgt_reset = cpe_tgt_tomtom_reset;
  2103. param->tgt_read_mailbox = cpe_tgt_tomtom_read_mailbox;
  2104. param->tgt_write_mailbox = cpe_tgt_tomtom_write_mailbox;
  2105. param->tgt_read_ram = cpe_tgt_tomtom_read_RAM;
  2106. param->tgt_write_ram = cpe_tgt_tomtom_write_RAM;
  2107. param->tgt_route_notification =
  2108. cpe_tgt_tomtom_route_notification;
  2109. param->tgt_set_debug_mode = cpe_tgt_tomtom_set_debug_mode;
  2110. param->tgt_get_cpe_info = cpe_tgt_tomtom_get_cpe_info;
  2111. param->tgt_deinit = cpe_tgt_tomtom_deinit;
  2112. param->tgt_voice_tx_lab = cpe_tgt_tomtom_voicetx;
  2113. param->tgt_waiti_info = &cpe_tgt_tomtom_waiti_info;
  2114. param->inbox = kzalloc(TOMTOM_A_SVASS_SPE_INBOX_SIZE,
  2115. GFP_KERNEL);
  2116. if (!param->inbox)
  2117. return CPE_SVC_NO_MEMORY;
  2118. param->outbox = kzalloc(TOMTOM_A_SVASS_SPE_OUTBOX_SIZE,
  2119. GFP_KERNEL);
  2120. if (!param->outbox) {
  2121. kfree(param->inbox);
  2122. return CPE_SVC_NO_MEMORY;
  2123. }
  2124. }
  2125. return CPE_SVC_SUCCESS;
  2126. }
  2127. static enum cpe_svc_result cpe_tgt_wcd9335_boot(int debug_mode)
  2128. {
  2129. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  2130. if (!debug_mode)
  2131. rc |= cpe_update_bits(
  2132. WCD9335_CPE_SS_WDOG_CFG,
  2133. 0x3f, 0x31);
  2134. else
  2135. pr_info("%s: CPE in debug mode, WDOG disabled\n",
  2136. __func__);
  2137. rc |= cpe_register_write(WCD9335_CPE_SS_CPARMAD_BUFRDY_INT_PERIOD, 19);
  2138. rc |= cpe_update_bits(WCD9335_CPE_SS_CPAR_CTL, 0x04, 0x00);
  2139. rc |= cpe_update_bits(WCD9335_CPE_SS_CPAR_CTL, 0x02, 0x02);
  2140. rc |= cpe_update_bits(WCD9335_CPE_SS_CPAR_CTL, 0x01, 0x01);
  2141. if (unlikely(rc)) {
  2142. pr_err("%s: Failed to boot, err = %d\n",
  2143. __func__, rc);
  2144. rc = CPE_SVC_FAILED;
  2145. }
  2146. return rc;
  2147. }
  2148. static u32 cpe_tgt_wcd9335_is_cpar_init_done(void)
  2149. {
  2150. u8 temp = 0;
  2151. cpe_register_read(WCD9335_CPE_SS_STATUS, &temp);
  2152. return temp & 0x1;
  2153. }
  2154. static u32 cpe_tgt_wcd9335_is_active(void)
  2155. {
  2156. u8 temp = 0;
  2157. cpe_register_read(WCD9335_CPE_SS_STATUS, &temp);
  2158. return temp & 0x4;
  2159. }
  2160. static enum cpe_svc_result cpe_tgt_wcd9335_reset(void)
  2161. {
  2162. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  2163. rc |= cpe_update_bits(WCD9335_CPE_SS_CPAR_CFG, 0x01, 0x00);
  2164. rc |= cpe_register_write(
  2165. WCD9335_CODEC_RPM_PWR_CPE_IRAM_SHUTDOWN, 0x00);
  2166. rc |= cpe_register_write(
  2167. WCD9335_CODEC_RPM_PWR_CPE_DRAM1_SHUTDOWN, 0x00);
  2168. rc |= cpe_register_write(
  2169. WCD9335_CODEC_RPM_PWR_CPE_DRAM0_SHUTDOWN_1, 0x00);
  2170. rc |= cpe_register_write(
  2171. WCD9335_CODEC_RPM_PWR_CPE_DRAM0_SHUTDOWN_2, 0x00);
  2172. rc |= cpe_update_bits(WCD9335_CPE_SS_CPAR_CTL, 0x04, 0x04);
  2173. if (unlikely(rc)) {
  2174. pr_err("%s: failed to reset cpe, err = %d\n",
  2175. __func__, rc);
  2176. rc = CPE_SVC_FAILED;
  2177. }
  2178. return rc;
  2179. }
  2180. static enum cpe_svc_result cpe_tgt_wcd9335_read_mailbox(u8 *buffer,
  2181. size_t size)
  2182. {
  2183. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  2184. u32 cnt = 0;
  2185. pr_debug("%s: size=%zd\n", __func__, size);
  2186. if (size > WCD9335_CPE_SS_SPE_OUTBOX_SIZE)
  2187. size = WCD9335_CPE_SS_SPE_OUTBOX_SIZE;
  2188. for (cnt = 0; (cnt < size) && (rc == CPE_SVC_SUCCESS); cnt++)
  2189. rc = cpe_register_read(WCD9335_CPE_SS_SPE_OUTBOX1(cnt),
  2190. &buffer[cnt]);
  2191. rc = cpe_register_write(WCD9335_CPE_SS_OUTBOX1_ACK, 0x01);
  2192. if (unlikely(rc)) {
  2193. pr_err("%s: failed to ACK outbox, err = %d\n",
  2194. __func__, rc);
  2195. rc = CPE_SVC_FAILED;
  2196. }
  2197. return rc;
  2198. }
  2199. static enum cpe_svc_result cpe_tgt_wcd9335_write_mailbox(u8 *buffer,
  2200. size_t size)
  2201. {
  2202. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  2203. u32 cnt = 0;
  2204. pr_debug("%s: size = %zd\n", __func__, size);
  2205. if (size > WCD9335_CPE_SS_SPE_INBOX_SIZE)
  2206. size = WCD9335_CPE_SS_SPE_INBOX_SIZE;
  2207. for (cnt = 0; (cnt < size) && (rc == CPE_SVC_SUCCESS); cnt++) {
  2208. rc |= cpe_register_write(WCD9335_CPE_SS_SPE_INBOX1(cnt),
  2209. buffer[cnt]);
  2210. }
  2211. if (unlikely(rc)) {
  2212. pr_err("%s: Error %d writing mailbox registers\n",
  2213. __func__, rc);
  2214. return rc;
  2215. }
  2216. rc = cpe_register_write(WCD9335_CPE_SS_INBOX1_TRG, 1);
  2217. return rc;
  2218. }
  2219. static enum cpe_svc_result cpe_wcd9335_get_mem_addr(struct cpe_info *t_info,
  2220. const struct cpe_svc_mem_segment *mem_seg,
  2221. u32 *addr, u8 *mem)
  2222. {
  2223. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  2224. u32 offset, mem_sz, address;
  2225. u8 mem_type;
  2226. switch (mem_seg->type) {
  2227. case CPE_SVC_DATA_MEM:
  2228. mem_type = MEM_ACCESS_DRAM_VAL;
  2229. offset = WCD9335_CPE_SS_SPE_DRAM_OFFSET;
  2230. mem_sz = WCD9335_CPE_SS_SPE_DRAM_SIZE;
  2231. break;
  2232. case CPE_SVC_INSTRUCTION_MEM:
  2233. mem_type = MEM_ACCESS_IRAM_VAL;
  2234. offset = WCD9335_CPE_SS_SPE_IRAM_OFFSET;
  2235. mem_sz = WCD9335_CPE_SS_SPE_IRAM_SIZE;
  2236. break;
  2237. default:
  2238. pr_err("%s: Invalid mem type = %u\n",
  2239. __func__, mem_seg->type);
  2240. return CPE_SVC_INVALID_HANDLE;
  2241. }
  2242. if (mem_seg->cpe_addr < offset) {
  2243. pr_err("%s: Invalid addr %x for mem type %u\n",
  2244. __func__, mem_seg->cpe_addr, mem_type);
  2245. return CPE_SVC_INVALID_HANDLE;
  2246. }
  2247. address = mem_seg->cpe_addr - offset;
  2248. if (address + mem_seg->size > mem_sz) {
  2249. pr_err("%s: wrong size %zu, start address %x, mem_type %u\n",
  2250. __func__, mem_seg->size, address, mem_type);
  2251. return CPE_SVC_INVALID_HANDLE;
  2252. }
  2253. (*addr) = address;
  2254. (*mem) = mem_type;
  2255. return rc;
  2256. }
  2257. static enum cpe_svc_result cpe_tgt_wcd9335_read_RAM(struct cpe_info *t_info,
  2258. struct cpe_svc_mem_segment *mem_seg)
  2259. {
  2260. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  2261. u8 temp = 0;
  2262. u32 cnt = 0;
  2263. u8 mem = 0x0;
  2264. u32 addr = 0;
  2265. u32 lastaddr = 0;
  2266. u32 ptr_update = true;
  2267. bool autoinc;
  2268. if (!mem_seg) {
  2269. pr_err("%s: Invalid buffer\n", __func__);
  2270. return CPE_SVC_INVALID_HANDLE;
  2271. }
  2272. rc = cpe_wcd9335_get_mem_addr(t_info, mem_seg, &addr, &mem);
  2273. if (rc != CPE_SVC_SUCCESS) {
  2274. pr_err("%s: Cannot obtain address, mem_type %u\n",
  2275. __func__, mem_seg->type);
  2276. return rc;
  2277. }
  2278. rc |= cpe_register_write(WCD9335_CPE_SS_MEM_CTRL, 0);
  2279. autoinc = cpe_register_read_autoinc_supported();
  2280. if (autoinc)
  2281. temp = 0x18;
  2282. else
  2283. temp = 0x10;
  2284. temp |= mem;
  2285. lastaddr = ~addr;
  2286. do {
  2287. if (!autoinc || (ptr_update)) {
  2288. /* write LSB only if modified */
  2289. if ((lastaddr & 0xFF) != (addr & 0xFF))
  2290. rc |= cpe_register_write(
  2291. WCD9335_CPE_SS_MEM_PTR_0,
  2292. (addr & 0xFF));
  2293. /* write middle byte only if modified */
  2294. if (((lastaddr >> 8) & 0xFF) != ((addr >> 8) & 0xFF))
  2295. rc |= cpe_register_write(
  2296. WCD9335_CPE_SS_MEM_PTR_1,
  2297. ((addr>>8) & 0xFF));
  2298. /* write MSB only if modified */
  2299. if (((lastaddr >> 16) & 0xFF) != ((addr >> 16) & 0xFF))
  2300. rc |= cpe_register_write(
  2301. WCD9335_CPE_SS_MEM_PTR_2,
  2302. ((addr>>16) & 0xFF));
  2303. rc |= cpe_register_write(WCD9335_CPE_SS_MEM_CTRL, temp);
  2304. lastaddr = addr;
  2305. addr++;
  2306. ptr_update = false;
  2307. }
  2308. rc |= cpe_register_read(WCD9335_CPE_SS_MEM_BANK_0,
  2309. &mem_seg->data[cnt]);
  2310. if (!autoinc)
  2311. rc |= cpe_register_write(WCD9335_CPE_SS_MEM_CTRL, 0);
  2312. } while ((++cnt < mem_seg->size) ||
  2313. (rc != CPE_SVC_SUCCESS));
  2314. rc |= cpe_register_write(WCD9335_CPE_SS_MEM_CTRL, 0);
  2315. if (rc)
  2316. pr_err("%s: Failed to read registers, err = %d\n",
  2317. __func__, rc);
  2318. return rc;
  2319. }
  2320. static enum cpe_svc_result cpe_tgt_wcd9335_write_RAM(struct cpe_info *t_info,
  2321. const struct cpe_svc_mem_segment *mem_seg)
  2322. {
  2323. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  2324. u8 mem_reg_val = 0;
  2325. u8 mem = MEM_ACCESS_NONE_VAL;
  2326. u32 addr = 0;
  2327. u8 *temp_ptr = NULL;
  2328. u32 temp_size = 0;
  2329. bool autoinc;
  2330. if (!mem_seg) {
  2331. pr_err("%s: Invalid mem segment\n",
  2332. __func__);
  2333. return CPE_SVC_INVALID_HANDLE;
  2334. }
  2335. rc = cpe_wcd9335_get_mem_addr(t_info, mem_seg, &addr, &mem);
  2336. if (rc != CPE_SVC_SUCCESS) {
  2337. pr_err("%s: Cannot obtain address, mem_type %u\n",
  2338. __func__, mem_seg->type);
  2339. return rc;
  2340. }
  2341. autoinc = cpe_register_read_autoinc_supported();
  2342. if (autoinc)
  2343. mem_reg_val = 0x18;
  2344. else
  2345. mem_reg_val = 0x10;
  2346. mem_reg_val |= mem;
  2347. rc = cpe_update_bits(WCD9335_CPE_SS_MEM_CTRL,
  2348. 0x0F, mem_reg_val);
  2349. rc = cpe_register_write(WCD9335_CPE_SS_MEM_PTR_0,
  2350. (addr & 0xFF));
  2351. rc = cpe_register_write(WCD9335_CPE_SS_MEM_PTR_1,
  2352. ((addr >> 8) & 0xFF));
  2353. rc = cpe_register_write(WCD9335_CPE_SS_MEM_PTR_2,
  2354. ((addr >> 16) & 0xFF));
  2355. temp_size = 0;
  2356. temp_ptr = mem_seg->data;
  2357. while (temp_size <= mem_seg->size) {
  2358. u32 to_write = (mem_seg->size >= temp_size+CHUNK_SIZE)
  2359. ? CHUNK_SIZE : (mem_seg->size - temp_size);
  2360. if (t_info->state == CPE_STATE_OFFLINE) {
  2361. pr_err("%s: CPE is offline\n", __func__);
  2362. return CPE_SVC_FAILED;
  2363. }
  2364. cpe_register_write_repeat(WCD9335_CPE_SS_MEM_BANK_0,
  2365. temp_ptr, to_write);
  2366. temp_size += CHUNK_SIZE;
  2367. temp_ptr += CHUNK_SIZE;
  2368. }
  2369. rc = cpe_register_write(WCD9335_CPE_SS_MEM_CTRL, 0);
  2370. if (rc)
  2371. pr_err("%s: Failed to write registers, err = %d\n",
  2372. __func__, rc);
  2373. return rc;
  2374. }
  2375. static enum cpe_svc_result cpe_tgt_wcd9335_route_notification(
  2376. enum cpe_svc_module module,
  2377. enum cpe_svc_route_dest dest)
  2378. {
  2379. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  2380. pr_debug("%s: Module = %d, Destination = %d\n",
  2381. __func__, module, dest);
  2382. switch (module) {
  2383. case CPE_SVC_LISTEN_PROC:
  2384. switch (dest) {
  2385. case CPE_SVC_EXTERNAL:
  2386. rc = cpe_update_bits(WCD9335_CPE_SS_CFG, 0x01, 0x01);
  2387. break;
  2388. case CPE_SVC_INTERNAL:
  2389. rc = cpe_update_bits(WCD9335_CPE_SS_CFG, 0x01, 0x00);
  2390. break;
  2391. default:
  2392. pr_err("%s: Invalid destination %d\n",
  2393. __func__, dest);
  2394. return CPE_SVC_FAILED;
  2395. }
  2396. break;
  2397. default:
  2398. pr_err("%s: Invalid module %d\n",
  2399. __func__, module);
  2400. rc = CPE_SVC_FAILED;
  2401. break;
  2402. }
  2403. return rc;
  2404. }
  2405. static enum cpe_svc_result cpe_tgt_wcd9335_set_debug_mode(u32 enable)
  2406. {
  2407. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  2408. pr_debug("%s: enable = %s\n", __func__,
  2409. (enable) ? "true" : "false");
  2410. return rc;
  2411. }
  2412. static const struct cpe_svc_hw_cfg *cpe_tgt_wcd9335_get_cpe_info(void)
  2413. {
  2414. return &cpe_svc_wcd9335_info;
  2415. }
  2416. static enum cpe_svc_result
  2417. cpe_tgt_wcd9335_deinit(struct cpe_svc_tgt_abstraction *param)
  2418. {
  2419. kfree(param->inbox);
  2420. param->inbox = NULL;
  2421. kfree(param->outbox);
  2422. param->outbox = NULL;
  2423. memset(param, 0, sizeof(struct cpe_svc_tgt_abstraction));
  2424. return CPE_SVC_SUCCESS;
  2425. }
  2426. static enum cpe_svc_result
  2427. cpe_tgt_wcd9335_voicetx(bool enable)
  2428. {
  2429. enum cpe_svc_result rc = CPE_SVC_SUCCESS;
  2430. u8 val = 0;
  2431. pr_debug("%s: enable = %u\n", __func__, enable);
  2432. if (enable)
  2433. val = 0x02;
  2434. else
  2435. val = 0x00;
  2436. rc = cpe_update_bits(WCD9335_CPE_SS_CFG, 0x02, val);
  2437. val = 0;
  2438. cpe_register_read(WCD9335_CPE_SS_CFG, &val);
  2439. return rc;
  2440. }
  2441. static u8 cpe_tgt_wcd9335_waiti_data[] = {0x00, 0x70, 0x00, 0x00};
  2442. static struct cpe_tgt_waiti_info cpe_tgt_wcd9335_waiti_info = {
  2443. .tgt_waiti_size = ARRAY_SIZE(cpe_tgt_wcd9335_waiti_data),
  2444. .tgt_waiti_data = cpe_tgt_wcd9335_waiti_data,
  2445. };
  2446. static enum cpe_svc_result cpe_tgt_wcd9335_init(
  2447. struct cpe_svc_codec_info_v1 *codec_info,
  2448. struct cpe_svc_tgt_abstraction *param)
  2449. {
  2450. if (!codec_info)
  2451. return CPE_SVC_INVALID_HANDLE;
  2452. if (!param)
  2453. return CPE_SVC_INVALID_HANDLE;
  2454. if (codec_info->id == CPE_SVC_CODEC_WCD9335) {
  2455. param->tgt_boot = cpe_tgt_wcd9335_boot;
  2456. param->tgt_cpar_init_done = cpe_tgt_wcd9335_is_cpar_init_done;
  2457. param->tgt_is_active = cpe_tgt_wcd9335_is_active;
  2458. param->tgt_reset = cpe_tgt_wcd9335_reset;
  2459. param->tgt_read_mailbox = cpe_tgt_wcd9335_read_mailbox;
  2460. param->tgt_write_mailbox = cpe_tgt_wcd9335_write_mailbox;
  2461. param->tgt_read_ram = cpe_tgt_wcd9335_read_RAM;
  2462. param->tgt_write_ram = cpe_tgt_wcd9335_write_RAM;
  2463. param->tgt_route_notification =
  2464. cpe_tgt_wcd9335_route_notification;
  2465. param->tgt_set_debug_mode = cpe_tgt_wcd9335_set_debug_mode;
  2466. param->tgt_get_cpe_info = cpe_tgt_wcd9335_get_cpe_info;
  2467. param->tgt_deinit = cpe_tgt_wcd9335_deinit;
  2468. param->tgt_voice_tx_lab = cpe_tgt_wcd9335_voicetx;
  2469. param->tgt_waiti_info = &cpe_tgt_wcd9335_waiti_info;
  2470. param->inbox = kzalloc(WCD9335_CPE_SS_SPE_INBOX_SIZE,
  2471. GFP_KERNEL);
  2472. if (!param->inbox)
  2473. return CPE_SVC_NO_MEMORY;
  2474. param->outbox = kzalloc(WCD9335_CPE_SS_SPE_OUTBOX_SIZE,
  2475. GFP_KERNEL);
  2476. if (!param->outbox) {
  2477. kfree(param->inbox);
  2478. return CPE_SVC_NO_MEMORY;
  2479. }
  2480. }
  2481. return CPE_SVC_SUCCESS;
  2482. }
  2483. MODULE_DESCRIPTION("WCD CPE Services");
  2484. MODULE_LICENSE("GPL v2");