msm_cvp_dsp.c 58 KB

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  1. // SPDX-License-Identifier: GPL-2.0-only
  2. /*
  3. * Copyright (c) 2018-2021, The Linux Foundation. All rights reserved.
  4. */
  5. #include <linux/module.h>
  6. #include <linux/rpmsg.h>
  7. #include <linux/of_platform.h>
  8. #include <linux/of_fdt.h>
  9. #include <linux/qcom_scm.h>
  10. #include <soc/qcom/secure_buffer.h>
  11. #include "msm_cvp_core.h"
  12. #include "msm_cvp.h"
  13. #include "cvp_hfi.h"
  14. #include "cvp_dump.h"
  15. static atomic_t nr_maps;
  16. struct cvp_dsp_apps gfa_cv;
  17. static int cvp_reinit_dsp(void);
  18. static void cvp_remove_dsp_sessions(void);
  19. static int __fastrpc_driver_register(struct fastrpc_driver *driver)
  20. {
  21. #ifdef CVP_FASTRPC_ENABLED
  22. return fastrpc_driver_register(driver);
  23. #else
  24. return -ENODEV;
  25. #endif
  26. }
  27. static void __fastrpc_driver_unregister(struct fastrpc_driver *driver)
  28. {
  29. #ifdef CVP_FASTRPC_ENABLED
  30. return fastrpc_driver_unregister(driver);
  31. #endif
  32. }
  33. #ifdef CVP_FASTRPC_ENABLED
  34. static int __fastrpc_driver_invoke(struct fastrpc_device *dev,
  35. enum fastrpc_driver_invoke_nums invoke_num,
  36. unsigned long invoke_param)
  37. {
  38. return fastrpc_driver_invoke(dev, invoke_num, invoke_param);
  39. }
  40. #endif /* End of CVP_FASTRPC_ENABLED */
  41. static int cvp_dsp_send_cmd(struct cvp_dsp_cmd_msg *cmd, uint32_t len)
  42. {
  43. int rc = 0;
  44. struct cvp_dsp_apps *me = &gfa_cv;
  45. dprintk(CVP_DSP, "%s: cmd = %d\n", __func__, cmd->type);
  46. if (IS_ERR_OR_NULL(me->chan)) {
  47. dprintk(CVP_ERR, "%s: DSP GLink is not ready\n", __func__);
  48. rc = -EINVAL;
  49. goto exit;
  50. }
  51. rc = rpmsg_send(me->chan->ept, cmd, len);
  52. if (rc) {
  53. dprintk(CVP_ERR, "%s: DSP rpmsg_send failed rc=%d\n",
  54. __func__, rc);
  55. goto exit;
  56. }
  57. exit:
  58. return rc;
  59. }
  60. static int cvp_dsp_send_cmd_sync(struct cvp_dsp_cmd_msg *cmd,
  61. uint32_t len, struct cvp_dsp_rsp_msg *rsp)
  62. {
  63. int rc = 0;
  64. struct cvp_dsp_apps *me = &gfa_cv;
  65. dprintk(CVP_DSP, "%s: cmd = %d\n", __func__, cmd->type);
  66. me->pending_dsp2cpu_rsp.type = cmd->type;
  67. rc = cvp_dsp_send_cmd(cmd, len);
  68. if (rc) {
  69. dprintk(CVP_ERR, "%s: cvp_dsp_send_cmd failed rc=%d\n",
  70. __func__, rc);
  71. goto exit;
  72. }
  73. if (!wait_for_completion_timeout(&me->completions[cmd->type],
  74. msecs_to_jiffies(CVP_DSP_RESPONSE_TIMEOUT))) {
  75. dprintk(CVP_ERR, "%s cmd %d timeout\n", __func__, cmd->type);
  76. rc = -ETIMEDOUT;
  77. goto exit;
  78. }
  79. exit:
  80. rsp->ret = me->pending_dsp2cpu_rsp.ret;
  81. rsp->dsp_state = me->pending_dsp2cpu_rsp.dsp_state;
  82. me->pending_dsp2cpu_rsp.type = CVP_INVALID_RPMSG_TYPE;
  83. return rc;
  84. }
  85. static int cvp_dsp_send_cmd_hfi_queue(phys_addr_t *phys_addr,
  86. uint32_t size_in_bytes,
  87. struct cvp_dsp_rsp_msg *rsp)
  88. {
  89. int rc = 0;
  90. struct cvp_dsp_cmd_msg cmd;
  91. cmd.type = CPU2DSP_SEND_HFI_QUEUE;
  92. cmd.msg_ptr = (uint64_t)phys_addr;
  93. cmd.msg_ptr_len = size_in_bytes;
  94. cmd.ddr_type = cvp_of_fdt_get_ddrtype();
  95. if (cmd.ddr_type < 0) {
  96. dprintk(CVP_WARN,
  97. "%s: Incorrect DDR type value %d, use default %d\n",
  98. __func__, cmd.ddr_type, DDR_TYPE_LPDDR5);
  99. /*return -EINVAL;*/
  100. cmd.ddr_type = DDR_TYPE_LPDDR5;
  101. }
  102. dprintk(CVP_DSP,
  103. "%s: address of buffer, PA=0x%pK size_buff=%d ddr_type=%d\n",
  104. __func__, phys_addr, size_in_bytes, cmd.ddr_type);
  105. rc = cvp_dsp_send_cmd_sync(&cmd, sizeof(struct cvp_dsp_cmd_msg), rsp);
  106. if (rc) {
  107. dprintk(CVP_ERR,
  108. "%s: cvp_dsp_send_cmd failed rc = %d\n",
  109. __func__, rc);
  110. goto exit;
  111. }
  112. exit:
  113. return rc;
  114. }
  115. static int cvp_hyp_assign_to_dsp(uint64_t addr, uint32_t size)
  116. {
  117. int rc = 0;
  118. struct cvp_dsp_apps *me = &gfa_cv;
  119. uint64_t hlosVMid = BIT(VMID_HLOS);
  120. struct qcom_scm_vmperm dspVM[DSP_VM_NUM] = {
  121. {VMID_HLOS, PERM_READ | PERM_WRITE | PERM_EXEC},
  122. {VMID_CDSP_Q6, PERM_READ | PERM_WRITE | PERM_EXEC}
  123. };
  124. if (!me->hyp_assigned) {
  125. rc = qcom_scm_assign_mem(addr, size, &hlosVMid, dspVM, DSP_VM_NUM);
  126. if (rc) {
  127. dprintk(CVP_ERR, "%s failed. rc=%d\n", __func__, rc);
  128. return rc;
  129. }
  130. me->addr = addr;
  131. me->size = size;
  132. me->hyp_assigned = true;
  133. }
  134. return rc;
  135. }
  136. static int cvp_hyp_assign_from_dsp(void)
  137. {
  138. int rc = 0;
  139. struct cvp_dsp_apps *me = &gfa_cv;
  140. uint64_t dspVMids = BIT(VMID_HLOS) | BIT(VMID_CDSP_Q6);
  141. struct qcom_scm_vmperm hlosVM[HLOS_VM_NUM] = {
  142. {VMID_HLOS, PERM_READ | PERM_WRITE | PERM_EXEC},
  143. };
  144. if (me->hyp_assigned) {
  145. rc = qcom_scm_assign_mem(me->addr, me->size, &dspVMids, hlosVM, HLOS_VM_NUM);
  146. if (rc) {
  147. dprintk(CVP_ERR, "%s failed. rc=%d\n", __func__, rc);
  148. return rc;
  149. }
  150. me->addr = 0;
  151. me->size = 0;
  152. me->hyp_assigned = false;
  153. }
  154. return rc;
  155. }
  156. static int cvp_dsp_rpmsg_probe(struct rpmsg_device *rpdev)
  157. {
  158. struct cvp_dsp_apps *me = &gfa_cv;
  159. const char *edge_name = NULL;
  160. int ret = 0;
  161. ret = of_property_read_string(rpdev->dev.parent->of_node,
  162. "label", &edge_name);
  163. if (ret) {
  164. dprintk(CVP_ERR, "glink edge 'label' not found in node\n");
  165. return ret;
  166. }
  167. if (strcmp(edge_name, "cdsp")) {
  168. dprintk(CVP_ERR,
  169. "%s: Failed to probe rpmsg device.Node name:%s\n",
  170. __func__, edge_name);
  171. return -EINVAL;
  172. }
  173. mutex_lock(&me->tx_lock);
  174. me->chan = rpdev;
  175. me->state = DSP_PROBED;
  176. mutex_unlock(&me->tx_lock);
  177. complete(&me->completions[CPU2DSP_MAX_CMD]);
  178. return ret;
  179. }
  180. static int eva_fastrpc_dev_unmap_dma(
  181. struct fastrpc_device *frpc_device,
  182. struct cvp_internal_buf *buf);
  183. static int delete_dsp_session(struct msm_cvp_inst *inst,
  184. struct cvp_dsp_fastrpc_driver_entry *frpc_node)
  185. {
  186. struct msm_cvp_list *buf_list = NULL;
  187. struct list_head *ptr_dsp_buf = NULL, *next_dsp_buf = NULL;
  188. struct cvp_internal_buf *buf = NULL;
  189. struct task_struct *task = NULL;
  190. struct cvp_hfi_device *hdev;
  191. int rc;
  192. if (!inst)
  193. return -EINVAL;
  194. buf_list = &inst->cvpdspbufs;
  195. mutex_lock(&buf_list->lock);
  196. ptr_dsp_buf = &buf_list->list;
  197. list_for_each_safe(ptr_dsp_buf, next_dsp_buf, &buf_list->list) {
  198. buf = list_entry(ptr_dsp_buf, struct cvp_internal_buf, list);
  199. if (buf) {
  200. dprintk(CVP_DSP, "fd in list 0x%x\n", buf->fd);
  201. if (!buf->smem) {
  202. dprintk(CVP_DSP, "Empyt smem\n");
  203. continue;
  204. }
  205. dprintk(CVP_DSP, "%s find device addr 0x%x\n",
  206. __func__, buf->smem->device_addr);
  207. rc = eva_fastrpc_dev_unmap_dma(
  208. frpc_node->cvp_fastrpc_device,
  209. buf);
  210. if (rc)
  211. dprintk_rl(CVP_WARN,
  212. "%s Failed to unmap buffer 0x%x\n",
  213. __func__, rc);
  214. rc = cvp_release_dsp_buffers(inst, buf);
  215. if (rc)
  216. dprintk(CVP_ERR,
  217. "%s Failed to free buffer 0x%x\n",
  218. __func__, rc);
  219. list_del(&buf->list);
  220. cvp_kmem_cache_free(&cvp_driver->buf_cache, buf);
  221. }
  222. }
  223. mutex_unlock(&buf_list->lock);
  224. task = inst->task;
  225. spin_lock(&inst->core->resources.pm_qos.lock);
  226. if (inst->core->resources.pm_qos.off_vote_cnt > 0)
  227. inst->core->resources.pm_qos.off_vote_cnt--;
  228. else
  229. dprintk(CVP_WARN, "%s Unexpected pm_qos off vote %d\n",
  230. __func__,
  231. inst->core->resources.pm_qos.off_vote_cnt);
  232. spin_unlock(&inst->core->resources.pm_qos.lock);
  233. hdev = inst->core->device;
  234. call_hfi_op(hdev, pm_qos_update, hdev->hfi_device_data);
  235. rc = msm_cvp_close(inst);
  236. if (rc)
  237. dprintk(CVP_ERR, "Warning: Failed to close cvp instance\n");
  238. if (task)
  239. put_task_struct(task);
  240. dprintk(CVP_DSP, "%s DSP2CPU_DETELE_SESSION Done\n", __func__);
  241. return rc;
  242. }
  243. static int eva_fastrpc_driver_get_name(
  244. struct cvp_dsp_fastrpc_driver_entry *frpc_node)
  245. {
  246. int i = 0;
  247. struct cvp_dsp_apps *me = &gfa_cv;
  248. for (i = 0; i < MAX_FASTRPC_DRIVER_NUM; i++) {
  249. if (me->cvp_fastrpc_name[i].status == DRIVER_NAME_AVAILABLE) {
  250. frpc_node->driver_name_idx = i;
  251. frpc_node->cvp_fastrpc_driver.driver.name =
  252. me->cvp_fastrpc_name[i].name;
  253. me->cvp_fastrpc_name[i].status = DRIVER_NAME_USED;
  254. dprintk(CVP_DSP, "%s -> handle 0x%x get name %s\n",
  255. __func__, frpc_node->cvp_fastrpc_driver.handle,
  256. frpc_node->cvp_fastrpc_driver.driver.name);
  257. return 0;
  258. }
  259. }
  260. return -1;
  261. }
  262. static void eva_fastrpc_driver_release_name(
  263. struct cvp_dsp_fastrpc_driver_entry *frpc_node)
  264. {
  265. struct cvp_dsp_apps *me = &gfa_cv;
  266. me->cvp_fastrpc_name[frpc_node->driver_name_idx].status =
  267. DRIVER_NAME_AVAILABLE;
  268. }
  269. /* The function may not return for up to 50ms */
  270. static bool dequeue_frpc_node(struct cvp_dsp_fastrpc_driver_entry *node)
  271. {
  272. struct cvp_dsp_apps *me = &gfa_cv;
  273. struct cvp_dsp_fastrpc_driver_entry *frpc_node = NULL;
  274. struct list_head *ptr = NULL, *next = NULL;
  275. u32 refcount, max_count = 10;
  276. bool rc = false;
  277. if (!node)
  278. return rc;
  279. search_again:
  280. ptr = &me->fastrpc_driver_list.list;
  281. mutex_lock(&me->fastrpc_driver_list.lock);
  282. list_for_each_safe(ptr, next, &me->fastrpc_driver_list.list) {
  283. frpc_node = list_entry(ptr,
  284. struct cvp_dsp_fastrpc_driver_entry, list);
  285. if (frpc_node == node) {
  286. refcount = atomic_read(&frpc_node->refcount);
  287. if (refcount > 0) {
  288. mutex_unlock(&me->fastrpc_driver_list.lock);
  289. usleep_range(5000, 10000);
  290. if (max_count-- == 0) {
  291. dprintk(CVP_ERR, "%s timeout\n",
  292. __func__);
  293. goto exit;
  294. }
  295. goto search_again;
  296. }
  297. list_del(&frpc_node->list);
  298. rc = true;
  299. break;
  300. }
  301. }
  302. mutex_unlock(&me->fastrpc_driver_list.lock);
  303. exit:
  304. return rc;
  305. }
  306. /* The function may not return for up to 50ms */
  307. static struct cvp_dsp_fastrpc_driver_entry *pop_frpc_node(void)
  308. {
  309. struct cvp_dsp_apps *me = &gfa_cv;
  310. struct cvp_dsp_fastrpc_driver_entry *frpc_node = NULL;
  311. struct list_head *ptr = NULL, *next = NULL;
  312. u32 refcount, max_count = 10;
  313. search_again:
  314. ptr = &me->fastrpc_driver_list.list;
  315. if (!ptr) {
  316. frpc_node = NULL;
  317. goto exit;
  318. }
  319. mutex_lock(&me->fastrpc_driver_list.lock);
  320. list_for_each_safe(ptr, next, &me->fastrpc_driver_list.list) {
  321. frpc_node = list_entry(ptr,
  322. struct cvp_dsp_fastrpc_driver_entry, list);
  323. if (frpc_node) {
  324. refcount = atomic_read(&frpc_node->refcount);
  325. if (refcount > 0) {
  326. mutex_unlock(&me->fastrpc_driver_list.lock);
  327. usleep_range(5000, 10000);
  328. if (max_count-- == 0) {
  329. dprintk(CVP_ERR, "%s timeout\n",
  330. __func__);
  331. frpc_node = NULL;
  332. goto exit;
  333. }
  334. goto search_again;
  335. }
  336. list_del(&frpc_node->list);
  337. break;
  338. }
  339. }
  340. mutex_unlock(&me->fastrpc_driver_list.lock);
  341. exit:
  342. return frpc_node;
  343. }
  344. static void cvp_dsp_rpmsg_remove(struct rpmsg_device *rpdev)
  345. {
  346. struct cvp_dsp_apps *me = &gfa_cv;
  347. u32 max_num_retries = 100;
  348. dprintk(CVP_WARN, "%s: CDSP SSR triggered\n", __func__);
  349. mutex_lock(&me->rx_lock);
  350. while (max_num_retries > 0) {
  351. if (me->pending_dsp2cpu_cmd.type !=
  352. CVP_INVALID_RPMSG_TYPE) {
  353. mutex_unlock(&me->rx_lock);
  354. usleep_range(1000, 5000);
  355. mutex_lock(&me->rx_lock);
  356. } else {
  357. break;
  358. }
  359. max_num_retries--;
  360. }
  361. if (!max_num_retries)
  362. dprintk(CVP_ERR, "stuck processing pending DSP cmds\n");
  363. mutex_lock(&me->tx_lock);
  364. cvp_hyp_assign_from_dsp();
  365. me->chan = NULL;
  366. me->state = DSP_UNINIT;
  367. mutex_unlock(&me->tx_lock);
  368. mutex_unlock(&me->rx_lock);
  369. /* Wait HW finish current frame processing */
  370. usleep_range(20000, 50000);
  371. cvp_remove_dsp_sessions();
  372. dprintk(CVP_WARN, "%s: CDSP SSR handled nr_maps %d\n", __func__,
  373. atomic_read(&nr_maps));
  374. }
  375. static int cvp_dsp_rpmsg_callback(struct rpmsg_device *rpdev,
  376. void *data, int len, void *priv, u32 addr)
  377. {
  378. struct cvp_dsp_rsp_msg *rsp = (struct cvp_dsp_rsp_msg *)data;
  379. struct cvp_dsp_apps *me = &gfa_cv;
  380. dprintk(CVP_DSP, "%s: type = 0x%x ret = 0x%x len = 0x%x\n",
  381. __func__, rsp->type, rsp->ret, len);
  382. if (rsp->type < CPU2DSP_MAX_CMD && len == sizeof(*rsp)) {
  383. if (me->pending_dsp2cpu_rsp.type == rsp->type) {
  384. memcpy(&me->pending_dsp2cpu_rsp, rsp,
  385. sizeof(struct cvp_dsp_rsp_msg));
  386. complete(&me->completions[rsp->type]);
  387. } else {
  388. dprintk(CVP_ERR, "%s: CPU2DSP resp %d, pending %d\n",
  389. __func__, rsp->type,
  390. me->pending_dsp2cpu_rsp.type);
  391. goto exit;
  392. }
  393. } else if (rsp->type < CVP_DSP_MAX_CMD &&
  394. len == sizeof(struct cvp_dsp2cpu_cmd)) {
  395. if (me->pending_dsp2cpu_cmd.type != CVP_INVALID_RPMSG_TYPE) {
  396. dprintk(CVP_ERR,
  397. "%s: DSP2CPU cmd:%d pending %d %d expect %d\n",
  398. __func__, rsp->type,
  399. me->pending_dsp2cpu_cmd.type, len,
  400. sizeof(struct cvp_dsp2cpu_cmd));
  401. goto exit;
  402. }
  403. memcpy(&me->pending_dsp2cpu_cmd, rsp,
  404. sizeof(struct cvp_dsp2cpu_cmd));
  405. complete(&me->completions[CPU2DSP_MAX_CMD]);
  406. } else {
  407. dprintk(CVP_ERR, "%s: Invalid type: %d\n", __func__, rsp->type);
  408. return 0;
  409. }
  410. return 0;
  411. exit:
  412. dprintk(CVP_ERR, "concurrent dsp cmd type = %d, rsp type = %d\n",
  413. me->pending_dsp2cpu_cmd.type,
  414. me->pending_dsp2cpu_rsp.type);
  415. return 0;
  416. }
  417. static bool dsp_session_exist(void)
  418. {
  419. struct msm_cvp_core *core;
  420. struct msm_cvp_inst *inst = NULL;
  421. core = list_first_entry(&cvp_driver->cores, struct msm_cvp_core, list);
  422. if (core) {
  423. mutex_lock(&core->lock);
  424. list_for_each_entry(inst, &core->instances, list) {
  425. if (inst->session_type == MSM_CVP_DSP) {
  426. mutex_unlock(&core->lock);
  427. return true;
  428. }
  429. }
  430. mutex_unlock(&core->lock);
  431. }
  432. return false;
  433. }
  434. int cvp_dsp_suspend(bool force)
  435. {
  436. int rc = 0;
  437. struct cvp_dsp_cmd_msg cmd;
  438. struct cvp_dsp_apps *me = &gfa_cv;
  439. struct cvp_dsp_rsp_msg rsp;
  440. bool retried = false;
  441. /* If not forced to suspend, check if DSP requested PC earlier */
  442. if (force == false)
  443. if (dsp_session_exist())
  444. if (me->state != DSP_SUSPEND)
  445. return -EBUSY;
  446. cmd.type = CPU2DSP_SUSPEND;
  447. mutex_lock(&me->tx_lock);
  448. if (me->state != DSP_READY)
  449. goto exit;
  450. retry:
  451. /* Use cvp_dsp_send_cmd_sync after dsp driver is ready */
  452. rc = cvp_dsp_send_cmd_sync(&cmd,
  453. sizeof(struct cvp_dsp_cmd_msg),
  454. &rsp);
  455. if (rc) {
  456. dprintk(CVP_ERR,
  457. "%s: cvp_dsp_send_cmd failed rc = %d\n",
  458. __func__, rc);
  459. goto exit;
  460. }
  461. if (rsp.ret == CPU2DSP_EUNAVAILABLE)
  462. goto fatal_exit;
  463. if (rsp.ret == CPU2DSP_EFATAL) {
  464. dprintk(CVP_ERR, "%s: suspend dsp got EFATAL error\n",
  465. __func__);
  466. if (!retried) {
  467. mutex_unlock(&me->tx_lock);
  468. retried = true;
  469. rc = cvp_reinit_dsp();
  470. mutex_lock(&me->tx_lock);
  471. if (rc)
  472. goto fatal_exit;
  473. else
  474. goto retry;
  475. } else {
  476. goto fatal_exit;
  477. }
  478. }
  479. me->state = DSP_SUSPEND;
  480. dprintk(CVP_DSP, "DSP suspended, nr_map: %d\n", atomic_read(&nr_maps));
  481. goto exit;
  482. fatal_exit:
  483. me->state = DSP_INVALID;
  484. cvp_hyp_assign_from_dsp();
  485. rc = -ENOTSUPP;
  486. exit:
  487. mutex_unlock(&me->tx_lock);
  488. return rc;
  489. }
  490. int cvp_dsp_resume(void)
  491. {
  492. int rc = 0;
  493. struct cvp_dsp_cmd_msg cmd;
  494. struct cvp_dsp_apps *me = &gfa_cv;
  495. cmd.type = CPU2DSP_RESUME;
  496. /*
  497. * Deadlock against DSP2CPU_CREATE_SESSION in dsp_thread
  498. * Probably get rid of this entirely as discussed before
  499. */
  500. if (me->state != DSP_SUSPEND)
  501. dprintk(CVP_WARN, "%s DSP not in SUSPEND state\n", __func__);
  502. return rc;
  503. }
  504. static void cvp_remove_dsp_sessions(void)
  505. {
  506. struct cvp_dsp_apps *me = &gfa_cv;
  507. struct cvp_dsp_fastrpc_driver_entry *frpc_node = NULL;
  508. struct msm_cvp_inst *inst = NULL;
  509. struct list_head *s = NULL, *next_s = NULL;
  510. while ((frpc_node = pop_frpc_node())) {
  511. s = &frpc_node->dsp_sessions.list;
  512. if (!s || !(s->next))
  513. return;
  514. list_for_each_safe(s, next_s,
  515. &frpc_node->dsp_sessions.list) {
  516. if (!s || !next_s)
  517. return;
  518. inst = list_entry(s, struct msm_cvp_inst,
  519. dsp_list);
  520. if (inst) {
  521. delete_dsp_session(inst, frpc_node);
  522. mutex_lock(&frpc_node->dsp_sessions.lock);
  523. list_del(&inst->dsp_list);
  524. frpc_node->session_cnt--;
  525. mutex_unlock(&frpc_node->dsp_sessions.lock);
  526. }
  527. }
  528. dprintk(CVP_DSP, "%s DEINIT_MSM_CVP_LIST 0x%x\n",
  529. __func__, frpc_node->dsp_sessions);
  530. DEINIT_MSM_CVP_LIST(&frpc_node->dsp_sessions);
  531. dprintk(CVP_DSP, "%s list_del fastrpc node 0x%x\n",
  532. __func__, frpc_node);
  533. __fastrpc_driver_unregister(
  534. &frpc_node->cvp_fastrpc_driver);
  535. dprintk(CVP_DSP,
  536. "%s Unregistered fastrpc handle 0x%x\n",
  537. __func__, frpc_node->handle);
  538. mutex_lock(&me->driver_name_lock);
  539. eva_fastrpc_driver_release_name(frpc_node);
  540. mutex_unlock(&me->driver_name_lock);
  541. kfree(frpc_node);
  542. frpc_node = NULL;
  543. }
  544. dprintk(CVP_WARN, "%s: EVA SSR handled for CDSP\n", __func__);
  545. }
  546. int cvp_dsp_shutdown(void)
  547. {
  548. struct cvp_dsp_apps *me = &gfa_cv;
  549. int rc = 0;
  550. struct cvp_dsp_cmd_msg cmd;
  551. struct cvp_dsp_rsp_msg rsp;
  552. cmd.type = CPU2DSP_SHUTDOWN;
  553. mutex_lock(&me->tx_lock);
  554. if (me->state == DSP_INVALID)
  555. goto exit;
  556. me->state = DSP_INACTIVE;
  557. rc = cvp_dsp_send_cmd_sync(&cmd, sizeof(struct cvp_dsp_cmd_msg), &rsp);
  558. if (rc) {
  559. dprintk(CVP_ERR,
  560. "%s: cvp_dsp_send_cmd failed with rc = %d\n",
  561. __func__, rc);
  562. cvp_hyp_assign_from_dsp();
  563. goto exit;
  564. }
  565. rc = cvp_hyp_assign_from_dsp();
  566. exit:
  567. mutex_unlock(&me->tx_lock);
  568. return rc;
  569. }
  570. int cvp_dsp_register_buffer(uint32_t session_id, uint32_t buff_fd,
  571. uint32_t buff_fd_size, uint32_t buff_size,
  572. uint32_t buff_offset, uint32_t buff_index,
  573. uint32_t buff_fd_iova)
  574. {
  575. struct cvp_dsp_cmd_msg cmd;
  576. int rc;
  577. struct cvp_dsp_apps *me = &gfa_cv;
  578. struct cvp_dsp_rsp_msg rsp;
  579. bool retried = false;
  580. cmd.type = CPU2DSP_REGISTER_BUFFER;
  581. cmd.session_id = session_id;
  582. cmd.buff_fd = buff_fd;
  583. cmd.buff_fd_size = buff_fd_size;
  584. cmd.buff_size = buff_size;
  585. cmd.buff_offset = buff_offset;
  586. cmd.buff_index = buff_index;
  587. cmd.buff_fd_iova = buff_fd_iova;
  588. dprintk(CVP_DSP,
  589. "%s: type=0x%x, buff_fd_iova=0x%x buff_index=0x%x\n",
  590. __func__, cmd.type, buff_fd_iova,
  591. cmd.buff_index);
  592. dprintk(CVP_DSP, "%s: buff_size=0x%x session_id=0x%x\n",
  593. __func__, cmd.buff_size, cmd.session_id);
  594. mutex_lock(&me->tx_lock);
  595. retry:
  596. rc = cvp_dsp_send_cmd_sync(&cmd, sizeof(struct cvp_dsp_cmd_msg), &rsp);
  597. if (rc) {
  598. dprintk(CVP_ERR, "%s send failed rc = %d\n", __func__, rc);
  599. goto exit;
  600. }
  601. if (rsp.ret == CPU2DSP_EFAIL || rsp.ret == CPU2DSP_EUNSUPPORTED) {
  602. dprintk(CVP_WARN, "%s, DSP return err %d\n", __func__, rsp.ret);
  603. rc = -EINVAL;
  604. goto exit;
  605. }
  606. if (rsp.ret == CPU2DSP_EUNAVAILABLE)
  607. goto fatal_exit;
  608. if (rsp.ret == CPU2DSP_EFATAL) {
  609. if (!retried) {
  610. mutex_unlock(&me->tx_lock);
  611. retried = true;
  612. rc = cvp_reinit_dsp();
  613. mutex_lock(&me->tx_lock);
  614. if (rc)
  615. goto fatal_exit;
  616. else
  617. goto retry;
  618. } else {
  619. goto fatal_exit;
  620. }
  621. }
  622. goto exit;
  623. fatal_exit:
  624. me->state = DSP_INVALID;
  625. cvp_hyp_assign_from_dsp();
  626. rc = -ENOTSUPP;
  627. exit:
  628. mutex_unlock(&me->tx_lock);
  629. return rc;
  630. }
  631. int cvp_dsp_deregister_buffer(uint32_t session_id, uint32_t buff_fd,
  632. uint32_t buff_fd_size, uint32_t buff_size,
  633. uint32_t buff_offset, uint32_t buff_index,
  634. uint32_t buff_fd_iova)
  635. {
  636. struct cvp_dsp_cmd_msg cmd;
  637. int rc;
  638. struct cvp_dsp_apps *me = &gfa_cv;
  639. struct cvp_dsp_rsp_msg rsp;
  640. bool retried = false;
  641. cmd.type = CPU2DSP_DEREGISTER_BUFFER;
  642. cmd.session_id = session_id;
  643. cmd.buff_fd = buff_fd;
  644. cmd.buff_fd_size = buff_fd_size;
  645. cmd.buff_size = buff_size;
  646. cmd.buff_offset = buff_offset;
  647. cmd.buff_index = buff_index;
  648. cmd.buff_fd_iova = buff_fd_iova;
  649. dprintk(CVP_DSP,
  650. "%s: type=0x%x, buff_fd_iova=0x%x buff_index=0x%x\n",
  651. __func__, cmd.type, buff_fd_iova,
  652. cmd.buff_index);
  653. dprintk(CVP_DSP, "%s: buff_size=0x%x session_id=0x%x\n",
  654. __func__, cmd.buff_size, cmd.session_id);
  655. mutex_lock(&me->tx_lock);
  656. retry:
  657. rc = cvp_dsp_send_cmd_sync(&cmd, sizeof(struct cvp_dsp_cmd_msg), &rsp);
  658. if (rc) {
  659. dprintk(CVP_ERR, "%s send failed rc = %d\n", __func__, rc);
  660. goto exit;
  661. }
  662. if (rsp.ret == CPU2DSP_EFAIL || rsp.ret == CPU2DSP_EUNSUPPORTED) {
  663. dprintk(CVP_WARN, "%s, DSP return err %d\n", __func__, rsp.ret);
  664. rc = -EINVAL;
  665. goto exit;
  666. }
  667. if (rsp.ret == CPU2DSP_EUNAVAILABLE)
  668. goto fatal_exit;
  669. if (rsp.ret == CPU2DSP_EFATAL) {
  670. if (!retried) {
  671. mutex_unlock(&me->tx_lock);
  672. retried = true;
  673. rc = cvp_reinit_dsp();
  674. mutex_lock(&me->tx_lock);
  675. if (rc)
  676. goto fatal_exit;
  677. else
  678. goto retry;
  679. } else {
  680. goto fatal_exit;
  681. }
  682. }
  683. goto exit;
  684. fatal_exit:
  685. me->state = DSP_INVALID;
  686. cvp_hyp_assign_from_dsp();
  687. rc = -ENOTSUPP;
  688. exit:
  689. mutex_unlock(&me->tx_lock);
  690. return rc;
  691. }
  692. static const struct rpmsg_device_id cvp_dsp_rpmsg_match[] = {
  693. { CVP_APPS_DSP_GLINK_GUID },
  694. { },
  695. };
  696. static struct rpmsg_driver cvp_dsp_rpmsg_client = {
  697. .id_table = cvp_dsp_rpmsg_match,
  698. .probe = cvp_dsp_rpmsg_probe,
  699. .remove = cvp_dsp_rpmsg_remove,
  700. .callback = cvp_dsp_rpmsg_callback,
  701. .drv = {
  702. .name = "qcom,msm_cvp_dsp_rpmsg",
  703. },
  704. };
  705. static void cvp_dsp_set_queue_hdr_defaults(struct cvp_hfi_queue_header *q_hdr)
  706. {
  707. q_hdr->qhdr_status = 0x1;
  708. q_hdr->qhdr_type = CVP_IFACEQ_DFLT_QHDR;
  709. q_hdr->qhdr_q_size = CVP_IFACEQ_QUEUE_SIZE / 4;
  710. q_hdr->qhdr_pkt_size = 0;
  711. q_hdr->qhdr_rx_wm = 0x1;
  712. q_hdr->qhdr_tx_wm = 0x1;
  713. q_hdr->qhdr_rx_req = 0x1;
  714. q_hdr->qhdr_tx_req = 0x0;
  715. q_hdr->qhdr_rx_irq_status = 0x0;
  716. q_hdr->qhdr_tx_irq_status = 0x0;
  717. q_hdr->qhdr_read_idx = 0x0;
  718. q_hdr->qhdr_write_idx = 0x0;
  719. }
  720. void cvp_dsp_init_hfi_queue_hdr(struct iris_hfi_device *device)
  721. {
  722. u32 i;
  723. struct cvp_hfi_queue_table_header *q_tbl_hdr;
  724. struct cvp_hfi_queue_header *q_hdr;
  725. struct cvp_iface_q_info *iface_q;
  726. for (i = 0; i < CVP_IFACEQ_NUMQ; i++) {
  727. iface_q = &device->dsp_iface_queues[i];
  728. iface_q->q_hdr = CVP_IFACEQ_GET_QHDR_START_ADDR(
  729. device->dsp_iface_q_table.align_virtual_addr, i);
  730. cvp_dsp_set_queue_hdr_defaults(iface_q->q_hdr);
  731. }
  732. q_tbl_hdr = (struct cvp_hfi_queue_table_header *)
  733. device->dsp_iface_q_table.align_virtual_addr;
  734. q_tbl_hdr->qtbl_version = 0;
  735. q_tbl_hdr->device_addr = (void *)device;
  736. strlcpy(q_tbl_hdr->name, "msm_cvp", sizeof(q_tbl_hdr->name));
  737. q_tbl_hdr->qtbl_size = CVP_IFACEQ_TABLE_SIZE;
  738. q_tbl_hdr->qtbl_qhdr0_offset =
  739. sizeof(struct cvp_hfi_queue_table_header);
  740. q_tbl_hdr->qtbl_qhdr_size = sizeof(struct cvp_hfi_queue_header);
  741. q_tbl_hdr->qtbl_num_q = CVP_IFACEQ_NUMQ;
  742. q_tbl_hdr->qtbl_num_active_q = CVP_IFACEQ_NUMQ;
  743. iface_q = &device->dsp_iface_queues[CVP_IFACEQ_CMDQ_IDX];
  744. q_hdr = iface_q->q_hdr;
  745. q_hdr->qhdr_start_addr = iface_q->q_array.align_device_addr;
  746. q_hdr->qhdr_type |= HFI_Q_ID_HOST_TO_CTRL_CMD_Q;
  747. iface_q = &device->dsp_iface_queues[CVP_IFACEQ_MSGQ_IDX];
  748. q_hdr = iface_q->q_hdr;
  749. q_hdr->qhdr_start_addr = iface_q->q_array.align_device_addr;
  750. q_hdr->qhdr_type |= HFI_Q_ID_CTRL_TO_HOST_MSG_Q;
  751. iface_q = &device->dsp_iface_queues[CVP_IFACEQ_DBGQ_IDX];
  752. q_hdr = iface_q->q_hdr;
  753. q_hdr->qhdr_start_addr = iface_q->q_array.align_device_addr;
  754. q_hdr->qhdr_type |= HFI_Q_ID_CTRL_TO_HOST_DEBUG_Q;
  755. /*
  756. * Set receive request to zero on debug queue as there is no
  757. * need of interrupt from cvp hardware for debug messages
  758. */
  759. q_hdr->qhdr_rx_req = 0;
  760. }
  761. static int __reinit_dsp(void)
  762. {
  763. int rc;
  764. uint64_t addr;
  765. uint32_t size;
  766. struct cvp_dsp_apps *me = &gfa_cv;
  767. struct cvp_dsp_rsp_msg rsp;
  768. struct msm_cvp_core *core;
  769. struct iris_hfi_device *device;
  770. core = list_first_entry(&cvp_driver->cores, struct msm_cvp_core, list);
  771. if (core && core->device)
  772. device = core->device->hfi_device_data;
  773. else
  774. return -EINVAL;
  775. if (!device) {
  776. dprintk(CVP_ERR, "%s: NULL device\n", __func__);
  777. return -EINVAL;
  778. }
  779. /* Force shutdown DSP */
  780. rc = cvp_dsp_shutdown();
  781. if (rc)
  782. return rc;
  783. /*
  784. * Workaround to force delete DSP session resources
  785. * To be removed after DSP optimization ready
  786. */
  787. cvp_remove_dsp_sessions();
  788. dprintk(CVP_WARN, "Reinit EVA DSP interface: nr_map %d\n",
  789. atomic_read(&nr_maps));
  790. /* Resend HFI queue */
  791. mutex_lock(&me->tx_lock);
  792. if (!device->dsp_iface_q_table.align_virtual_addr) {
  793. dprintk(CVP_ERR, "%s: DSP HFI queue released\n", __func__);
  794. rc = -EINVAL;
  795. goto exit;
  796. }
  797. addr = (uint64_t)device->dsp_iface_q_table.mem_data.dma_handle;
  798. size = device->dsp_iface_q_table.mem_data.size;
  799. if (!addr || !size) {
  800. dprintk(CVP_DSP, "%s: HFI queue is not ready\n", __func__);
  801. goto exit;
  802. }
  803. rc = cvp_hyp_assign_to_dsp(addr, size);
  804. if (rc) {
  805. dprintk(CVP_ERR, "%s: cvp_hyp_assign_to_dsp. rc=%d\n",
  806. __func__, rc);
  807. goto exit;
  808. }
  809. rc = cvp_dsp_send_cmd_hfi_queue((phys_addr_t *)addr, size, &rsp);
  810. if (rc) {
  811. dprintk(CVP_WARN, "%s: Send HFI Queue failed rc = %d\n",
  812. __func__, rc);
  813. goto exit;
  814. }
  815. if (rsp.ret) {
  816. dprintk(CVP_ERR, "%s: DSP error %d %d\n", __func__,
  817. rsp.ret, rsp.dsp_state);
  818. rc = -ENODEV;
  819. }
  820. exit:
  821. mutex_unlock(&me->tx_lock);
  822. return rc;
  823. }
  824. static int cvp_reinit_dsp(void)
  825. {
  826. int rc;
  827. struct cvp_dsp_apps *me = &gfa_cv;
  828. rc = __reinit_dsp();
  829. if (rc) {
  830. mutex_lock(&me->tx_lock);
  831. me->state = DSP_INVALID;
  832. cvp_hyp_assign_from_dsp();
  833. mutex_unlock(&me->tx_lock);
  834. }
  835. return rc;
  836. }
  837. static void cvp_put_fastrpc_node(struct cvp_dsp_fastrpc_driver_entry *node)
  838. {
  839. if (node && (atomic_read(&node->refcount) > 0))
  840. atomic_dec(&node->refcount);
  841. }
  842. static struct cvp_dsp_fastrpc_driver_entry *cvp_get_fastrpc_node_with_handle(
  843. uint32_t handle)
  844. {
  845. struct cvp_dsp_apps *me = &gfa_cv;
  846. struct list_head *ptr = NULL, *next = NULL;
  847. struct cvp_dsp_fastrpc_driver_entry *frpc_node = NULL, *tmp_node = NULL;
  848. mutex_lock(&me->fastrpc_driver_list.lock);
  849. list_for_each_safe(ptr, next, &me->fastrpc_driver_list.list) {
  850. tmp_node = list_entry(ptr,
  851. struct cvp_dsp_fastrpc_driver_entry, list);
  852. if (handle == tmp_node->handle) {
  853. frpc_node = tmp_node;
  854. atomic_inc(&frpc_node->refcount);
  855. dprintk(CVP_DSP, "Find tmp_node with handle 0x%x\n",
  856. handle);
  857. break;
  858. }
  859. }
  860. mutex_unlock(&me->fastrpc_driver_list.lock);
  861. dprintk(CVP_DSP, "%s found fastrpc probe handle %pK pid 0x%x\n",
  862. __func__, frpc_node, handle);
  863. return frpc_node;
  864. }
  865. static void eva_fastrpc_driver_unregister(uint32_t handle, bool force_exit);
  866. static int cvp_fastrpc_probe(struct fastrpc_device *rpc_dev)
  867. {
  868. struct cvp_dsp_fastrpc_driver_entry *frpc_node = NULL;
  869. dprintk(CVP_DSP, "%s fastrpc probe handle 0x%x\n",
  870. __func__, rpc_dev->handle);
  871. frpc_node = cvp_get_fastrpc_node_with_handle(rpc_dev->handle);
  872. if (frpc_node) {
  873. frpc_node->cvp_fastrpc_device = rpc_dev;
  874. complete(&frpc_node->fastrpc_probe_completion);
  875. cvp_put_fastrpc_node(frpc_node);
  876. }
  877. return 0;
  878. }
  879. static int cvp_fastrpc_callback(struct fastrpc_device *rpc_dev,
  880. enum fastrpc_driver_status fastrpc_proc_num)
  881. {
  882. dprintk(CVP_DSP, "%s handle 0x%x, proc %d\n", __func__,
  883. rpc_dev->handle, fastrpc_proc_num);
  884. /* fastrpc drive down when process gone
  885. * any handling can happen here, such as
  886. * eva_fastrpc_driver_unregister(rpc_dev->handle, true);
  887. */
  888. eva_fastrpc_driver_unregister(rpc_dev->handle, true);
  889. return 0;
  890. }
  891. static struct fastrpc_driver cvp_fastrpc_client = {
  892. .probe = cvp_fastrpc_probe,
  893. .callback = cvp_fastrpc_callback,
  894. };
  895. static int eva_fastrpc_dev_map_dma(struct fastrpc_device *frpc_device,
  896. struct cvp_internal_buf *buf,
  897. uint32_t dsp_remote_map,
  898. uint64_t *v_dsp_addr)
  899. {
  900. #ifdef CVP_FASTRPC_ENABLED
  901. struct fastrpc_dev_map_dma frpc_map_buf = {0};
  902. int rc = 0;
  903. if (dsp_remote_map == 1) {
  904. frpc_map_buf.buf = buf->smem->dma_buf;
  905. frpc_map_buf.size = buf->smem->size;
  906. frpc_map_buf.attrs = 0;
  907. dprintk(CVP_DSP,
  908. "%s frpc_map_buf size %d, dma_buf %pK, map %pK, 0x%x\n",
  909. __func__, frpc_map_buf.size, frpc_map_buf.buf,
  910. &frpc_map_buf, (unsigned long)&frpc_map_buf);
  911. rc = __fastrpc_driver_invoke(frpc_device, FASTRPC_DEV_MAP_DMA,
  912. (unsigned long)(&frpc_map_buf));
  913. if (rc) {
  914. dprintk(CVP_ERR,
  915. "%s Failed to map buffer 0x%x\n", __func__, rc);
  916. return rc;
  917. }
  918. buf->fd = (s32)frpc_map_buf.v_dsp_addr;
  919. *v_dsp_addr = frpc_map_buf.v_dsp_addr;
  920. atomic_inc(&nr_maps);
  921. } else {
  922. dprintk(CVP_DSP, "%s Buffer not mapped to dsp\n", __func__);
  923. buf->fd = 0;
  924. }
  925. return rc;
  926. #else
  927. return -ENODEV;
  928. #endif /* End of CVP_FASTRPC_ENABLED */
  929. }
  930. static int eva_fastrpc_dev_unmap_dma(struct fastrpc_device *frpc_device,
  931. struct cvp_internal_buf *buf)
  932. {
  933. #ifdef CVP_FASTRPC_ENABLED
  934. struct fastrpc_dev_unmap_dma frpc_unmap_buf = {0};
  935. int rc = 0;
  936. /* Only if buffer is mapped to dsp */
  937. if (buf->fd != 0) {
  938. frpc_unmap_buf.buf = buf->smem->dma_buf;
  939. rc = __fastrpc_driver_invoke(frpc_device, FASTRPC_DEV_UNMAP_DMA,
  940. (unsigned long)(&frpc_unmap_buf));
  941. if (rc) {
  942. dprintk(CVP_ERR, "%s Failed to unmap buffer 0x%x\n",
  943. __func__, rc);
  944. return rc;
  945. }
  946. if (atomic_read(&nr_maps) > 0)
  947. atomic_dec(&nr_maps);
  948. } else {
  949. dprintk(CVP_DSP, "%s buffer not mapped to dsp\n", __func__);
  950. }
  951. return rc;
  952. #else
  953. return -ENODEV;
  954. #endif /* End of CVP_FASTRPC_ENABLED */
  955. }
  956. static int eva_fastrpc_dev_get_pid(struct fastrpc_device *frpc_device, int *pid)
  957. {
  958. #ifdef CVP_FASTRPC_ENABLED
  959. struct fastrpc_dev_get_hlos_pid get_pid = {0};
  960. int rc = 0;
  961. rc = __fastrpc_driver_invoke(frpc_device, FASTRPC_DEV_GET_HLOS_PID,
  962. (unsigned long)(&get_pid));
  963. if (rc) {
  964. dprintk(CVP_ERR, "%s Failed to get PID %x\n",
  965. __func__, rc);
  966. return rc;
  967. }
  968. *pid = get_pid.hlos_pid;
  969. return rc;
  970. #else
  971. return -ENODEV;
  972. #endif /* End of CVP_FASTRPC_ENABLED */
  973. }
  974. static void eva_fastrpc_driver_add_sess(
  975. struct cvp_dsp_fastrpc_driver_entry *frpc,
  976. struct msm_cvp_inst *inst)
  977. {
  978. mutex_lock(&frpc->dsp_sessions.lock);
  979. if (inst)
  980. list_add_tail(&inst->dsp_list, &frpc->dsp_sessions.list);
  981. else
  982. dprintk(CVP_ERR, "%s incorrect input %pK\n", __func__, inst);
  983. frpc->session_cnt++;
  984. mutex_unlock(&frpc->dsp_sessions.lock);
  985. dprintk(CVP_DSP, "add dsp sess %pK fastrpc_driver %pK\n", inst, frpc);
  986. }
  987. int cvp_dsp_fastrpc_unmap(uint32_t handle, struct cvp_internal_buf *buf)
  988. {
  989. struct cvp_dsp_fastrpc_driver_entry *frpc_node = NULL;
  990. struct fastrpc_device *frpc_device = NULL;
  991. int rc = 0;
  992. frpc_node = cvp_get_fastrpc_node_with_handle(handle);
  993. if (!frpc_node) {
  994. dprintk(CVP_ERR, "%s no frpc node for dsp handle %d\n",
  995. __func__, handle);
  996. return -EINVAL;
  997. }
  998. frpc_device = frpc_node->cvp_fastrpc_device;
  999. rc = eva_fastrpc_dev_unmap_dma(frpc_device, buf);
  1000. if (rc)
  1001. dprintk(CVP_ERR, "%s Fail to unmap buffer 0x%x\n",
  1002. __func__, rc);
  1003. cvp_put_fastrpc_node(frpc_node);
  1004. return rc;
  1005. }
  1006. int cvp_dsp_del_sess(uint32_t handle, struct msm_cvp_inst *inst)
  1007. {
  1008. struct cvp_dsp_fastrpc_driver_entry *frpc_node = NULL;
  1009. struct list_head *ptr = NULL, *next = NULL;
  1010. struct msm_cvp_inst *sess;
  1011. bool found = false;
  1012. frpc_node = cvp_get_fastrpc_node_with_handle(handle);
  1013. if (!frpc_node) {
  1014. dprintk(CVP_ERR, "%s no frpc node for dsp handle %d\n",
  1015. __func__, handle);
  1016. return -EINVAL;
  1017. }
  1018. mutex_lock(&frpc_node->dsp_sessions.lock);
  1019. list_for_each_safe(ptr, next, &frpc_node->dsp_sessions.list) {
  1020. sess = list_entry(ptr, struct msm_cvp_inst, dsp_list);
  1021. if (sess == inst) {
  1022. dprintk(CVP_DSP, "%s Find sess %pK to be deleted\n",
  1023. __func__, inst);
  1024. found = true;
  1025. break;
  1026. }
  1027. }
  1028. if (found) {
  1029. list_del(&inst->dsp_list);
  1030. frpc_node->session_cnt--;
  1031. }
  1032. mutex_unlock(&frpc_node->dsp_sessions.lock);
  1033. cvp_put_fastrpc_node(frpc_node);
  1034. return 0;
  1035. }
  1036. static int eva_fastrpc_driver_register(uint32_t handle)
  1037. {
  1038. struct cvp_dsp_apps *me = &gfa_cv;
  1039. int rc = 0;
  1040. struct cvp_dsp_fastrpc_driver_entry *frpc_node = NULL;
  1041. bool skip_deregister = true;
  1042. dprintk(CVP_DSP, "%s -> cvp_get_fastrpc_node_with_handle hdl 0x%x\n",
  1043. __func__, handle);
  1044. frpc_node = cvp_get_fastrpc_node_with_handle(handle);
  1045. if (frpc_node == NULL) {
  1046. dprintk(CVP_DSP, "%s new fastrpc node hdl 0x%x\n",
  1047. __func__, handle);
  1048. frpc_node = kzalloc(sizeof(*frpc_node), GFP_KERNEL);
  1049. if (!frpc_node) {
  1050. dprintk(CVP_DSP, "%s allocate frpc node fail\n",
  1051. __func__);
  1052. return -EINVAL;
  1053. }
  1054. memset(frpc_node, 0, sizeof(*frpc_node));
  1055. /* Setup fastrpc_node */
  1056. frpc_node->handle = handle;
  1057. frpc_node->cvp_fastrpc_driver = cvp_fastrpc_client;
  1058. frpc_node->cvp_fastrpc_driver.handle = handle;
  1059. mutex_lock(&me->driver_name_lock);
  1060. rc = eva_fastrpc_driver_get_name(frpc_node);
  1061. mutex_unlock(&me->driver_name_lock);
  1062. if (rc) {
  1063. dprintk(CVP_ERR, "%s fastrpc get name fail err %d\n",
  1064. __func__, rc);
  1065. goto fail_fastrpc_driver_get_name;
  1066. }
  1067. /* Init completion */
  1068. init_completion(&frpc_node->fastrpc_probe_completion);
  1069. mutex_lock(&me->fastrpc_driver_list.lock);
  1070. list_add_tail(&frpc_node->list, &me->fastrpc_driver_list.list);
  1071. INIT_MSM_CVP_LIST(&frpc_node->dsp_sessions);
  1072. mutex_unlock(&me->fastrpc_driver_list.lock);
  1073. dprintk(CVP_DSP, "Add frpc node 0x%x to list\n", frpc_node);
  1074. /* register fastrpc device to this session */
  1075. rc = __fastrpc_driver_register(&frpc_node->cvp_fastrpc_driver);
  1076. if (rc) {
  1077. dprintk(CVP_ERR, "%s fastrpc driver reg fail err %d\n",
  1078. __func__, rc);
  1079. skip_deregister = true;
  1080. goto fail_fastrpc_driver_register;
  1081. }
  1082. /* signal wait reuse dsp timeout setup for now */
  1083. if (!wait_for_completion_timeout(
  1084. &frpc_node->fastrpc_probe_completion,
  1085. msecs_to_jiffies(CVP_DSP_RESPONSE_TIMEOUT))) {
  1086. dprintk(CVP_ERR, "%s fastrpc driver_register timeout %#x\n",
  1087. __func__, frpc_node->handle);
  1088. skip_deregister = false;
  1089. goto fail_fastrpc_driver_register;
  1090. }
  1091. } else {
  1092. dprintk(CVP_DSP, "%s fastrpc probe frpc_node %pK hdl 0x%x\n",
  1093. __func__, frpc_node, handle);
  1094. cvp_put_fastrpc_node(frpc_node);
  1095. }
  1096. return rc;
  1097. fail_fastrpc_driver_register:
  1098. dequeue_frpc_node(frpc_node);
  1099. if (!skip_deregister)
  1100. __fastrpc_driver_unregister(&frpc_node->cvp_fastrpc_driver);
  1101. mutex_lock(&me->driver_name_lock);
  1102. eva_fastrpc_driver_release_name(frpc_node);
  1103. mutex_unlock(&me->driver_name_lock);
  1104. fail_fastrpc_driver_get_name:
  1105. kfree(frpc_node);
  1106. return -EINVAL;
  1107. }
  1108. static void eva_fastrpc_driver_unregister(uint32_t handle, bool force_exit)
  1109. {
  1110. struct cvp_dsp_apps *me = &gfa_cv;
  1111. struct cvp_dsp_fastrpc_driver_entry *frpc_node = NULL;
  1112. struct cvp_dsp2cpu_cmd *dsp2cpu_cmd = &me->pending_dsp2cpu_cmd;
  1113. dprintk(CVP_DSP, "%s Unregister fastrpc driver hdl %#x hdl %#x, f %d\n",
  1114. __func__, handle, dsp2cpu_cmd->pid, (uint32_t)force_exit);
  1115. if (handle != dsp2cpu_cmd->pid)
  1116. dprintk(CVP_ERR, "Unregister pid != hndl %#x %#x\n",
  1117. handle, dsp2cpu_cmd->pid);
  1118. /* Foundd fastrpc node */
  1119. frpc_node = cvp_get_fastrpc_node_with_handle(handle);
  1120. if (frpc_node == NULL) {
  1121. dprintk(CVP_DSP, "%s fastrpc handle 0x%x unregistered\n",
  1122. __func__, handle);
  1123. return;
  1124. }
  1125. if ((frpc_node->session_cnt == 0) || force_exit) {
  1126. dprintk(CVP_DSP, "%s session cnt %d, force %d\n",
  1127. __func__, frpc_node->session_cnt, (uint32_t)force_exit);
  1128. DEINIT_MSM_CVP_LIST(&frpc_node->dsp_sessions);
  1129. cvp_put_fastrpc_node(frpc_node);
  1130. if (!dequeue_frpc_node(frpc_node))
  1131. /* Don't find the node */
  1132. return;
  1133. __fastrpc_driver_unregister(&frpc_node->cvp_fastrpc_driver);
  1134. mutex_lock(&me->driver_name_lock);
  1135. eva_fastrpc_driver_release_name(frpc_node);
  1136. mutex_unlock(&me->driver_name_lock);
  1137. kfree(frpc_node);
  1138. } else {
  1139. cvp_put_fastrpc_node(frpc_node);
  1140. }
  1141. }
  1142. void cvp_dsp_send_debug_mask(void)
  1143. {
  1144. struct cvp_dsp_cmd_msg cmd;
  1145. struct cvp_dsp_apps *me = &gfa_cv;
  1146. struct cvp_dsp_rsp_msg rsp;
  1147. int rc;
  1148. cmd.type = CPU2DSP_SET_DEBUG_LEVEL;
  1149. cmd.eva_dsp_debug_mask = me->debug_mask;
  1150. dprintk(CVP_DSP,
  1151. "%s: debug mask 0x%x\n",
  1152. __func__, cmd.eva_dsp_debug_mask);
  1153. rc = cvp_dsp_send_cmd_sync(&cmd, sizeof(struct cvp_dsp_cmd_msg), &rsp);
  1154. if (rc)
  1155. dprintk(CVP_ERR,
  1156. "%s: cvp_dsp_send_cmd failed rc = %d\n",
  1157. __func__, rc);
  1158. }
  1159. void cvp_dsp_send_hfi_queue(void)
  1160. {
  1161. struct msm_cvp_core *core;
  1162. struct iris_hfi_device *device;
  1163. struct cvp_dsp_apps *me = &gfa_cv;
  1164. struct cvp_dsp_rsp_msg rsp = {0};
  1165. uint64_t addr;
  1166. uint32_t size;
  1167. int rc;
  1168. core = list_first_entry(&cvp_driver->cores, struct msm_cvp_core, list);
  1169. if (core && core->device)
  1170. device = core->device->hfi_device_data;
  1171. else
  1172. return;
  1173. if (!device) {
  1174. dprintk(CVP_ERR, "%s: NULL device\n", __func__);
  1175. return;
  1176. }
  1177. dprintk(CVP_DSP, "Entering %s\n", __func__);
  1178. mutex_lock(&device->lock);
  1179. mutex_lock(&me->tx_lock);
  1180. if (!device->dsp_iface_q_table.align_virtual_addr) {
  1181. dprintk(CVP_ERR, "%s: DSP HFI queue released\n", __func__);
  1182. goto exit;
  1183. }
  1184. addr = (uint64_t)device->dsp_iface_q_table.mem_data.dma_handle;
  1185. size = device->dsp_iface_q_table.mem_data.size;
  1186. if (!addr || !size) {
  1187. dprintk(CVP_DSP, "%s: HFI queue is not ready\n", __func__);
  1188. goto exit;
  1189. }
  1190. if (me->state != DSP_PROBED && me->state != DSP_INACTIVE)
  1191. goto exit;
  1192. rc = cvp_hyp_assign_to_dsp(addr, size);
  1193. if (rc) {
  1194. dprintk(CVP_ERR, "%s: cvp_hyp_assign_to_dsp. rc=%d\n",
  1195. __func__, rc);
  1196. goto exit;
  1197. }
  1198. if (me->state == DSP_PROBED) {
  1199. cvp_dsp_init_hfi_queue_hdr(device);
  1200. dprintk(CVP_WARN,
  1201. "%s: Done init of HFI queue headers\n", __func__);
  1202. }
  1203. rc = cvp_dsp_send_cmd_hfi_queue((phys_addr_t *)addr, size, &rsp);
  1204. if (rc) {
  1205. dprintk(CVP_WARN, "%s: Send HFI Queue failed rc = %d\n",
  1206. __func__, rc);
  1207. goto exit;
  1208. }
  1209. if (rsp.ret == CPU2DSP_EUNSUPPORTED) {
  1210. dprintk(CVP_WARN, "%s unsupported cmd %d\n",
  1211. __func__, rsp.type);
  1212. goto exit;
  1213. }
  1214. if (rsp.ret == CPU2DSP_EFATAL || rsp.ret == CPU2DSP_EUNAVAILABLE) {
  1215. dprintk(CVP_ERR, "%s fatal error returned %d %d\n",
  1216. __func__, rsp.dsp_state, rsp.ret);
  1217. me->state = DSP_INVALID;
  1218. cvp_hyp_assign_from_dsp();
  1219. goto exit;
  1220. } else if (rsp.ret == CPU2DSP_EINVALSTATE) {
  1221. dprintk(CVP_ERR, "%s dsp invalid state %d\n",
  1222. __func__, rsp.dsp_state);
  1223. mutex_unlock(&me->tx_lock);
  1224. if (cvp_reinit_dsp()) {
  1225. dprintk(CVP_ERR, "%s reinit dsp fail\n", __func__);
  1226. mutex_unlock(&device->lock);
  1227. return;
  1228. }
  1229. mutex_lock(&me->tx_lock);
  1230. }
  1231. dprintk(CVP_DSP, "%s: dsp initialized\n", __func__);
  1232. me->state = DSP_READY;
  1233. exit:
  1234. mutex_unlock(&me->tx_lock);
  1235. mutex_unlock(&device->lock);
  1236. }
  1237. /* 32 or 64 bit CPU Side Ptr <-> 2 32 bit DSP Pointers. Dirty Fix. */
  1238. static void *get_inst_from_dsp(uint32_t session_cpu_high, uint32_t session_cpu_low)
  1239. {
  1240. struct msm_cvp_core *core;
  1241. struct msm_cvp_inst *sess_inst;
  1242. void *inst;
  1243. if ((session_cpu_high == 0) && (sizeof(void *) == BITPTRSIZE32)) {
  1244. inst = (void *)((uintptr_t)session_cpu_low);
  1245. } else if ((session_cpu_high != 0) && (sizeof(void *) == BITPTRSIZE64)) {
  1246. inst = (void *)((uintptr_t)(((uint64_t)session_cpu_high) << 32
  1247. | session_cpu_low));
  1248. } else {
  1249. dprintk(CVP_ERR,
  1250. "%s Invalid _cpu_high = 0x%x _cpu_low = 0x%x\n",
  1251. __func__, session_cpu_high, session_cpu_low);
  1252. inst = NULL;
  1253. return inst;
  1254. }
  1255. core = list_first_entry(&cvp_driver->cores, struct msm_cvp_core, list);
  1256. if (core) {
  1257. mutex_lock(&core->lock);
  1258. list_for_each_entry(sess_inst, &core->instances, list) {
  1259. if (sess_inst->session_type == MSM_CVP_DSP) {
  1260. if (sess_inst == (struct msm_cvp_inst *)inst) {
  1261. mutex_unlock(&core->lock);
  1262. return inst;
  1263. }
  1264. }
  1265. }
  1266. mutex_unlock(&core->lock);
  1267. inst = NULL;
  1268. } else {
  1269. return NULL;
  1270. }
  1271. return inst;
  1272. }
  1273. static void print_power(const struct eva_power_req *pwr_req)
  1274. {
  1275. if (pwr_req) {
  1276. dprintk(CVP_DSP, "Clock: Fdu %d Ica %d Od %d Mpu %d Fw %d",
  1277. pwr_req->clock_fdu, pwr_req->clock_ica,
  1278. pwr_req->clock_od, pwr_req->clock_mpu,
  1279. pwr_req->clock_fw);
  1280. dprintk(CVP_DSP, "OpClock: Fdu %d Ica %d Od %d Mpu %d Fw %d",
  1281. pwr_req->op_clock_fdu, pwr_req->op_clock_ica,
  1282. pwr_req->op_clock_od, pwr_req->op_clock_mpu,
  1283. pwr_req->op_clock_fw);
  1284. dprintk(CVP_DSP, "Actual Bw: Ddr %d, SysCache %d",
  1285. pwr_req->bw_ddr, pwr_req->bw_sys_cache);
  1286. dprintk(CVP_DSP, "OpBw: Ddr %d, SysCache %d",
  1287. pwr_req->op_bw_ddr, pwr_req->op_bw_sys_cache);
  1288. }
  1289. }
  1290. static void __dsp_cvp_sess_create(struct cvp_dsp_cmd_msg *cmd)
  1291. {
  1292. struct cvp_dsp_apps *me = &gfa_cv;
  1293. struct msm_cvp_inst *inst = NULL;
  1294. uint64_t inst_handle = 0;
  1295. uint32_t pid;
  1296. int rc = 0;
  1297. struct cvp_dsp2cpu_cmd *dsp2cpu_cmd = &me->pending_dsp2cpu_cmd;
  1298. struct cvp_dsp_fastrpc_driver_entry *frpc_node = NULL;
  1299. struct pid *pid_s = NULL;
  1300. struct task_struct *task = NULL;
  1301. struct cvp_hfi_device *hdev;
  1302. struct fastrpc_device *frpc_device;
  1303. cmd->ret = 0;
  1304. dprintk(CVP_DSP,
  1305. "%s sess Type %d Mask %d Prio %d Sec %d hdl 0x%x\n",
  1306. __func__, dsp2cpu_cmd->session_type,
  1307. dsp2cpu_cmd->kernel_mask,
  1308. dsp2cpu_cmd->session_prio,
  1309. dsp2cpu_cmd->is_secure,
  1310. dsp2cpu_cmd->pid);
  1311. rc = eva_fastrpc_driver_register(dsp2cpu_cmd->pid);
  1312. if (rc) {
  1313. dprintk(CVP_ERR, "%s Register fastrpc driver fail\n", __func__);
  1314. cmd->ret = -1;
  1315. return;
  1316. }
  1317. frpc_node = cvp_get_fastrpc_node_with_handle(dsp2cpu_cmd->pid);
  1318. if (!frpc_node || !frpc_node->cvp_fastrpc_device) {
  1319. dprintk(CVP_WARN, "%s cannot get fastrpc node from %x\n",
  1320. __func__, dsp2cpu_cmd->pid);
  1321. goto fail_lookup;
  1322. }
  1323. frpc_device = frpc_node->cvp_fastrpc_device;
  1324. rc = eva_fastrpc_dev_get_pid(frpc_device, &pid);
  1325. if (rc) {
  1326. dprintk(CVP_ERR,
  1327. "%s Failed to map buffer 0x%x\n", __func__, rc);
  1328. goto fail_lookup;
  1329. }
  1330. pid_s = find_get_pid(pid);
  1331. if (pid_s == NULL) {
  1332. dprintk(CVP_WARN, "%s incorrect pid %x\n", __func__, pid);
  1333. goto fail_lookup;
  1334. }
  1335. dprintk(CVP_DSP, "%s get pid_s 0x%x from hdl 0x%x\n", __func__,
  1336. pid_s, dsp2cpu_cmd->pid);
  1337. task = get_pid_task(pid_s, PIDTYPE_TGID);
  1338. if (!task) {
  1339. dprintk(CVP_WARN, "%s task doesn't exist\n", __func__);
  1340. goto fail_lookup;
  1341. }
  1342. inst = msm_cvp_open(MSM_CORE_CVP, MSM_CVP_DSP, task);
  1343. if (!inst) {
  1344. dprintk(CVP_ERR, "%s Failed create instance\n", __func__);
  1345. goto fail_msm_cvp_open;
  1346. }
  1347. inst->dsp_handle = dsp2cpu_cmd->pid;
  1348. inst->prop.kernel_mask = dsp2cpu_cmd->kernel_mask;
  1349. inst->prop.type = dsp2cpu_cmd->session_type;
  1350. inst->prop.priority = dsp2cpu_cmd->session_prio;
  1351. inst->prop.is_secure = dsp2cpu_cmd->is_secure;
  1352. inst->prop.dsp_mask = dsp2cpu_cmd->dsp_access_mask;
  1353. rc = msm_cvp_session_create(inst);
  1354. if (rc) {
  1355. dprintk(CVP_ERR, "Warning: send Session Create failed\n");
  1356. goto fail_session_create;
  1357. } else {
  1358. dprintk(CVP_DSP, "%s DSP Session Create done\n", __func__);
  1359. }
  1360. /* Get session id */
  1361. rc = msm_cvp_get_session_info(inst, &cmd->session_id);
  1362. if (rc) {
  1363. dprintk(CVP_ERR, "Warning: get session index failed %d\n", rc);
  1364. goto fail_get_session_info;
  1365. }
  1366. inst_handle = (uint64_t)inst;
  1367. cmd->session_cpu_high = (uint32_t)((inst_handle & HIGH32) >> 32);
  1368. cmd->session_cpu_low = (uint32_t)(inst_handle & LOW32);
  1369. eva_fastrpc_driver_add_sess(frpc_node, inst);
  1370. cvp_put_fastrpc_node(frpc_node);
  1371. inst->task = task;
  1372. dprintk(CVP_DSP,
  1373. "%s CREATE_SESS id 0x%x, cpu_low 0x%x, cpu_high 0x%x\n",
  1374. __func__, cmd->session_id, cmd->session_cpu_low,
  1375. cmd->session_cpu_high);
  1376. spin_lock(&inst->core->resources.pm_qos.lock);
  1377. inst->core->resources.pm_qos.off_vote_cnt++;
  1378. spin_unlock(&inst->core->resources.pm_qos.lock);
  1379. hdev = inst->core->device;
  1380. call_hfi_op(hdev, pm_qos_update, hdev->hfi_device_data);
  1381. return;
  1382. fail_get_session_info:
  1383. fail_session_create:
  1384. msm_cvp_close(inst);
  1385. fail_msm_cvp_open:
  1386. put_task_struct(task);
  1387. fail_lookup:
  1388. /* unregister fastrpc driver */
  1389. eva_fastrpc_driver_unregister(dsp2cpu_cmd->pid, false);
  1390. cmd->ret = -1;
  1391. }
  1392. static void __dsp_cvp_sess_delete(struct cvp_dsp_cmd_msg *cmd)
  1393. {
  1394. struct cvp_dsp_apps *me = &gfa_cv;
  1395. struct msm_cvp_inst *inst;
  1396. int rc;
  1397. struct cvp_dsp2cpu_cmd *dsp2cpu_cmd = &me->pending_dsp2cpu_cmd;
  1398. struct cvp_dsp_fastrpc_driver_entry *frpc_node = NULL;
  1399. struct task_struct *task = NULL;
  1400. struct cvp_hfi_device *hdev;
  1401. cmd->ret = 0;
  1402. dprintk(CVP_DSP,
  1403. "%s sess id 0x%x low 0x%x high 0x%x, pid 0x%x\n",
  1404. __func__, dsp2cpu_cmd->session_id,
  1405. dsp2cpu_cmd->session_cpu_low,
  1406. dsp2cpu_cmd->session_cpu_high,
  1407. dsp2cpu_cmd->pid);
  1408. frpc_node = cvp_get_fastrpc_node_with_handle(dsp2cpu_cmd->pid);
  1409. if (!frpc_node) {
  1410. dprintk(CVP_ERR, "%s pid 0x%x not registered with fastrpc\n",
  1411. __func__, dsp2cpu_cmd->pid);
  1412. cmd->ret = -1;
  1413. return;
  1414. }
  1415. cvp_put_fastrpc_node(frpc_node);
  1416. inst = (struct msm_cvp_inst *)get_inst_from_dsp(
  1417. dsp2cpu_cmd->session_cpu_high,
  1418. dsp2cpu_cmd->session_cpu_low);
  1419. if (!inst || !is_cvp_inst_valid(inst)) {
  1420. dprintk(CVP_ERR, "%s incorrect session ID\n", __func__);
  1421. cmd->ret = -1;
  1422. goto dsp_fail_delete;
  1423. }
  1424. task = inst->task;
  1425. spin_lock(&inst->core->resources.pm_qos.lock);
  1426. if (inst->core->resources.pm_qos.off_vote_cnt > 0)
  1427. inst->core->resources.pm_qos.off_vote_cnt--;
  1428. else
  1429. dprintk(CVP_WARN, "%s Unexpected pm_qos off vote %d\n",
  1430. __func__,
  1431. inst->core->resources.pm_qos.off_vote_cnt);
  1432. spin_unlock(&inst->core->resources.pm_qos.lock);
  1433. hdev = inst->core->device;
  1434. call_hfi_op(hdev, pm_qos_update, hdev->hfi_device_data);
  1435. rc = msm_cvp_close(inst);
  1436. if (rc) {
  1437. dprintk(CVP_ERR, "Warning: Failed to close cvp instance\n");
  1438. cmd->ret = -1;
  1439. goto dsp_fail_delete;
  1440. }
  1441. /* unregister fastrpc driver */
  1442. eva_fastrpc_driver_unregister(dsp2cpu_cmd->pid, false);
  1443. if (task)
  1444. put_task_struct(task);
  1445. dprintk(CVP_DSP, "%s DSP2CPU_DETELE_SESSION Done, nr_maps %d\n",
  1446. __func__, atomic_read(&nr_maps));
  1447. dsp_fail_delete:
  1448. return;
  1449. }
  1450. static void __dsp_cvp_power_req(struct cvp_dsp_cmd_msg *cmd)
  1451. {
  1452. struct cvp_dsp_apps *me = &gfa_cv;
  1453. struct msm_cvp_inst *inst;
  1454. int rc;
  1455. struct cvp_dsp2cpu_cmd *dsp2cpu_cmd = &me->pending_dsp2cpu_cmd;
  1456. cmd->ret = 0;
  1457. dprintk(CVP_DSP,
  1458. "%s sess id 0x%x, low 0x%x, high 0x%x\n",
  1459. __func__, dsp2cpu_cmd->session_id,
  1460. dsp2cpu_cmd->session_cpu_low,
  1461. dsp2cpu_cmd->session_cpu_high);
  1462. inst = (struct msm_cvp_inst *)get_inst_from_dsp(
  1463. dsp2cpu_cmd->session_cpu_high,
  1464. dsp2cpu_cmd->session_cpu_low);
  1465. if (!inst) {
  1466. cmd->ret = -1;
  1467. goto dsp_fail_power_req;
  1468. }
  1469. print_power(&dsp2cpu_cmd->power_req);
  1470. inst->prop.cycles[HFI_HW_FDU] = dsp2cpu_cmd->power_req.clock_fdu;
  1471. inst->prop.cycles[HFI_HW_ICA] = dsp2cpu_cmd->power_req.clock_ica;
  1472. inst->prop.cycles[HFI_HW_OD] = dsp2cpu_cmd->power_req.clock_od;
  1473. inst->prop.cycles[HFI_HW_MPU] = dsp2cpu_cmd->power_req.clock_mpu;
  1474. inst->prop.fw_cycles = dsp2cpu_cmd->power_req.clock_fw;
  1475. inst->prop.ddr_bw = dsp2cpu_cmd->power_req.bw_ddr;
  1476. inst->prop.ddr_cache = dsp2cpu_cmd->power_req.bw_sys_cache;
  1477. inst->prop.op_cycles[HFI_HW_FDU] = dsp2cpu_cmd->power_req.op_clock_fdu;
  1478. inst->prop.op_cycles[HFI_HW_ICA] = dsp2cpu_cmd->power_req.op_clock_ica;
  1479. inst->prop.op_cycles[HFI_HW_OD] = dsp2cpu_cmd->power_req.op_clock_od;
  1480. inst->prop.op_cycles[HFI_HW_MPU] = dsp2cpu_cmd->power_req.op_clock_mpu;
  1481. inst->prop.fw_op_cycles = dsp2cpu_cmd->power_req.op_clock_fw;
  1482. inst->prop.ddr_op_bw = dsp2cpu_cmd->power_req.op_bw_ddr;
  1483. inst->prop.ddr_op_cache = dsp2cpu_cmd->power_req.op_bw_sys_cache;
  1484. rc = msm_cvp_update_power(inst);
  1485. if (rc) {
  1486. /*
  1487. *May need to define more error types
  1488. * Check UMD implementation
  1489. */
  1490. dprintk(CVP_ERR, "%s Failed update power\n", __func__);
  1491. cmd->ret = -1;
  1492. goto dsp_fail_power_req;
  1493. }
  1494. dprintk(CVP_DSP, "%s DSP2CPU_POWER_REQUEST Done\n", __func__);
  1495. dsp_fail_power_req:
  1496. return;
  1497. }
  1498. static void __dsp_cvp_buf_register(struct cvp_dsp_cmd_msg *cmd)
  1499. {
  1500. struct cvp_dsp_apps *me = &gfa_cv;
  1501. struct msm_cvp_inst *inst;
  1502. struct eva_kmd_arg *kmd;
  1503. struct eva_kmd_buffer *kmd_buf;
  1504. int rc;
  1505. struct cvp_dsp2cpu_cmd *dsp2cpu_cmd = &me->pending_dsp2cpu_cmd;
  1506. cmd->ret = 0;
  1507. dprintk(CVP_DSP,
  1508. "%s sess id 0x%x, low 0x%x, high 0x%x, pid 0x%x\n",
  1509. __func__, dsp2cpu_cmd->session_id,
  1510. dsp2cpu_cmd->session_cpu_low,
  1511. dsp2cpu_cmd->session_cpu_high,
  1512. dsp2cpu_cmd->pid);
  1513. kmd = kzalloc(sizeof(*kmd), GFP_KERNEL);
  1514. if (!kmd) {
  1515. dprintk(CVP_ERR, "%s kzalloc failure\n", __func__);
  1516. cmd->ret = -1;
  1517. return;
  1518. }
  1519. inst = (struct msm_cvp_inst *)get_inst_from_dsp(
  1520. dsp2cpu_cmd->session_cpu_high,
  1521. dsp2cpu_cmd->session_cpu_low);
  1522. kmd->type = EVA_KMD_REGISTER_BUFFER;
  1523. kmd_buf = (struct eva_kmd_buffer *)&(kmd->data.regbuf);
  1524. kmd_buf->type = EVA_KMD_BUFTYPE_INPUT;
  1525. kmd_buf->index = dsp2cpu_cmd->sbuf.index;
  1526. kmd_buf->fd = dsp2cpu_cmd->sbuf.fd;
  1527. kmd_buf->size = dsp2cpu_cmd->sbuf.size;
  1528. kmd_buf->offset = dsp2cpu_cmd->sbuf.offset;
  1529. kmd_buf->pixelformat = 0;
  1530. kmd_buf->flags = EVA_KMD_FLAG_UNSECURE;
  1531. rc = msm_cvp_register_buffer(inst, kmd_buf);
  1532. if (rc) {
  1533. dprintk(CVP_ERR, "%s Failed to register buffer\n", __func__);
  1534. cmd->ret = -1;
  1535. goto dsp_fail_buf_reg;
  1536. }
  1537. dprintk(CVP_DSP, "%s register buffer done\n", __func__);
  1538. cmd->sbuf.iova = kmd_buf->reserved[0];
  1539. cmd->sbuf.size = kmd_buf->size;
  1540. cmd->sbuf.fd = kmd_buf->fd;
  1541. cmd->sbuf.index = kmd_buf->index;
  1542. cmd->sbuf.offset = kmd_buf->offset;
  1543. dprintk(CVP_DSP, "%s: fd %d, iova 0x%x\n", __func__,
  1544. cmd->sbuf.fd, cmd->sbuf.iova);
  1545. dsp_fail_buf_reg:
  1546. kfree(kmd);
  1547. }
  1548. static void __dsp_cvp_buf_deregister(struct cvp_dsp_cmd_msg *cmd)
  1549. {
  1550. struct cvp_dsp_apps *me = &gfa_cv;
  1551. struct msm_cvp_inst *inst;
  1552. struct eva_kmd_arg *kmd;
  1553. struct eva_kmd_buffer *kmd_buf;
  1554. int rc;
  1555. struct cvp_dsp2cpu_cmd *dsp2cpu_cmd = &me->pending_dsp2cpu_cmd;
  1556. cmd->ret = 0;
  1557. dprintk(CVP_DSP,
  1558. "%s : sess id 0x%x, low 0x%x, high 0x%x, hdl 0x%x\n",
  1559. __func__, dsp2cpu_cmd->session_id,
  1560. dsp2cpu_cmd->session_cpu_low,
  1561. dsp2cpu_cmd->session_cpu_high,
  1562. dsp2cpu_cmd->pid);
  1563. kmd = kzalloc(sizeof(*kmd), GFP_KERNEL);
  1564. if (!kmd) {
  1565. dprintk(CVP_ERR, "%s kzalloc failure\n", __func__);
  1566. cmd->ret = -1;
  1567. return;
  1568. }
  1569. inst = (struct msm_cvp_inst *)get_inst_from_dsp(
  1570. dsp2cpu_cmd->session_cpu_high,
  1571. dsp2cpu_cmd->session_cpu_low);
  1572. kmd->type = EVA_KMD_UNREGISTER_BUFFER;
  1573. kmd_buf = (struct eva_kmd_buffer *)&(kmd->data.regbuf);
  1574. kmd_buf->type = EVA_KMD_UNREGISTER_BUFFER;
  1575. kmd_buf->type = EVA_KMD_BUFTYPE_INPUT;
  1576. kmd_buf->index = dsp2cpu_cmd->sbuf.index;
  1577. kmd_buf->fd = dsp2cpu_cmd->sbuf.fd;
  1578. kmd_buf->size = dsp2cpu_cmd->sbuf.size;
  1579. kmd_buf->offset = dsp2cpu_cmd->sbuf.offset;
  1580. kmd_buf->pixelformat = 0;
  1581. kmd_buf->flags = EVA_KMD_FLAG_UNSECURE;
  1582. rc = msm_cvp_unregister_buffer(inst, kmd_buf);
  1583. if (rc) {
  1584. dprintk(CVP_ERR, "%s Failed to deregister buffer\n", __func__);
  1585. cmd->ret = -1;
  1586. goto fail_dsp_buf_dereg;
  1587. }
  1588. dprintk(CVP_DSP, "%s deregister buffer done\n", __func__);
  1589. fail_dsp_buf_dereg:
  1590. kfree(kmd);
  1591. }
  1592. static void __dsp_cvp_mem_alloc(struct cvp_dsp_cmd_msg *cmd)
  1593. {
  1594. struct cvp_dsp_apps *me = &gfa_cv;
  1595. struct msm_cvp_inst *inst;
  1596. int rc;
  1597. struct cvp_internal_buf *buf = NULL;
  1598. struct cvp_dsp2cpu_cmd *dsp2cpu_cmd = &me->pending_dsp2cpu_cmd;
  1599. uint64_t v_dsp_addr = 0;
  1600. struct fastrpc_device *frpc_device = NULL;
  1601. struct cvp_dsp_fastrpc_driver_entry *frpc_node = NULL;
  1602. cmd->ret = 0;
  1603. dprintk(CVP_DSP,
  1604. "%s sess id 0x%x, low 0x%x, high 0x%x, hdl 0x%x\n",
  1605. __func__, dsp2cpu_cmd->session_id,
  1606. dsp2cpu_cmd->session_cpu_low,
  1607. dsp2cpu_cmd->session_cpu_high,
  1608. dsp2cpu_cmd->pid);
  1609. frpc_node = cvp_get_fastrpc_node_with_handle(dsp2cpu_cmd->pid);
  1610. if (!frpc_node) {
  1611. dprintk(CVP_ERR, "%s Failed to find fastrpc node 0x%x\n",
  1612. __func__, dsp2cpu_cmd->pid);
  1613. goto fail_fastrpc_node;
  1614. }
  1615. frpc_device = frpc_node->cvp_fastrpc_device;
  1616. inst = (struct msm_cvp_inst *)get_inst_from_dsp(
  1617. dsp2cpu_cmd->session_cpu_high,
  1618. dsp2cpu_cmd->session_cpu_low);
  1619. buf = cvp_kmem_cache_zalloc(&cvp_driver->buf_cache, GFP_KERNEL);
  1620. if (!buf)
  1621. goto fail_kzalloc_buf;
  1622. rc = cvp_allocate_dsp_bufs(inst, buf,
  1623. dsp2cpu_cmd->sbuf.size,
  1624. dsp2cpu_cmd->sbuf.type);
  1625. if (rc)
  1626. goto fail_allocate_dsp_buf;
  1627. rc = eva_fastrpc_dev_map_dma(frpc_device, buf,
  1628. dsp2cpu_cmd->sbuf.dsp_remote_map,
  1629. &v_dsp_addr);
  1630. if (rc) {
  1631. dprintk(CVP_ERR, "%s Failed to map buffer 0x%x\n", __func__,
  1632. rc);
  1633. goto fail_fastrpc_dev_map_dma;
  1634. }
  1635. mutex_lock(&inst->cvpdspbufs.lock);
  1636. list_add_tail(&buf->list, &inst->cvpdspbufs.list);
  1637. mutex_unlock(&inst->cvpdspbufs.lock);
  1638. dprintk(CVP_DSP, "%s allocate buffer done, addr 0x%llx\n",
  1639. __func__, v_dsp_addr);
  1640. cmd->sbuf.size = buf->smem->size;
  1641. cmd->sbuf.fd = buf->fd;
  1642. cmd->sbuf.offset = 0;
  1643. cmd->sbuf.iova = buf->smem->device_addr;
  1644. cmd->sbuf.v_dsp_addr = v_dsp_addr;
  1645. dprintk(CVP_DSP, "%s: size %d, iova 0x%x, v_dsp_addr 0x%llx\n",
  1646. __func__, cmd->sbuf.size, cmd->sbuf.iova,
  1647. cmd->sbuf.v_dsp_addr);
  1648. cvp_put_fastrpc_node(frpc_node);
  1649. return;
  1650. fail_fastrpc_dev_map_dma:
  1651. cvp_release_dsp_buffers(inst, buf);
  1652. fail_allocate_dsp_buf:
  1653. cvp_kmem_cache_free(&cvp_driver->buf_cache, buf);
  1654. fail_kzalloc_buf:
  1655. fail_fastrpc_node:
  1656. cmd->ret = -1;
  1657. cvp_put_fastrpc_node(frpc_node);
  1658. return;
  1659. }
  1660. static void __dsp_cvp_mem_free(struct cvp_dsp_cmd_msg *cmd)
  1661. {
  1662. struct cvp_dsp_apps *me = &gfa_cv;
  1663. struct msm_cvp_inst *inst;
  1664. int rc;
  1665. struct cvp_internal_buf *buf = NULL;
  1666. struct list_head *ptr = NULL, *next = NULL;
  1667. struct msm_cvp_list *buf_list = NULL;
  1668. struct cvp_dsp2cpu_cmd *dsp2cpu_cmd = &me->pending_dsp2cpu_cmd;
  1669. struct fastrpc_device *frpc_device = NULL;
  1670. struct cvp_dsp_fastrpc_driver_entry *frpc_node = NULL;
  1671. cmd->ret = 0;
  1672. dprintk(CVP_DSP,
  1673. "%s sess id 0x%x, low 0x%x, high 0x%x, hnl 0x%x\n",
  1674. __func__, dsp2cpu_cmd->session_id,
  1675. dsp2cpu_cmd->session_cpu_low,
  1676. dsp2cpu_cmd->session_cpu_high,
  1677. dsp2cpu_cmd->pid);
  1678. inst = (struct msm_cvp_inst *)get_inst_from_dsp(
  1679. dsp2cpu_cmd->session_cpu_high,
  1680. dsp2cpu_cmd->session_cpu_low);
  1681. if (!inst) {
  1682. dprintk(CVP_ERR, "%s Failed to get inst\n",
  1683. __func__);
  1684. cmd->ret = -1;
  1685. return;
  1686. }
  1687. frpc_node = cvp_get_fastrpc_node_with_handle(dsp2cpu_cmd->pid);
  1688. if (!frpc_node) {
  1689. dprintk(CVP_ERR, "%s Failed to find fastrpc node 0x%x\n",
  1690. __func__, dsp2cpu_cmd->pid);
  1691. cmd->ret = -1;
  1692. return;
  1693. }
  1694. frpc_device = frpc_node->cvp_fastrpc_device;
  1695. buf_list = &inst->cvpdspbufs;
  1696. mutex_lock(&buf_list->lock);
  1697. list_for_each_safe(ptr, next, &buf_list->list) {
  1698. buf = list_entry(ptr, struct cvp_internal_buf, list);
  1699. if (!buf->smem) {
  1700. dprintk(CVP_DSP, "Empyt smem\n");
  1701. continue;
  1702. }
  1703. /* Verify with device addr */
  1704. if (buf->smem->device_addr == dsp2cpu_cmd->sbuf.iova) {
  1705. dprintk(CVP_DSP, "%s find device addr 0x%x\n",
  1706. __func__, buf->smem->device_addr);
  1707. dprintk(CVP_DSP, "fd in list 0x%x, fd from dsp 0x%x\n",
  1708. buf->fd, dsp2cpu_cmd->sbuf.fd);
  1709. rc = eva_fastrpc_dev_unmap_dma(frpc_device, buf);
  1710. if (rc) {
  1711. dprintk_rl(CVP_ERR,
  1712. "%s Failed to unmap buffer 0x%x\n",
  1713. __func__, rc);
  1714. cmd->ret = -1;
  1715. goto fail_fastrpc_dev_unmap_dma;
  1716. }
  1717. rc = cvp_release_dsp_buffers(inst, buf);
  1718. if (rc) {
  1719. dprintk(CVP_ERR,
  1720. "%s Failed to free buffer 0x%x\n",
  1721. __func__, rc);
  1722. cmd->ret = -1;
  1723. goto fail_release_buf;
  1724. }
  1725. list_del(&buf->list);
  1726. cvp_kmem_cache_free(&cvp_driver->buf_cache, buf);
  1727. break;
  1728. }
  1729. }
  1730. fail_release_buf:
  1731. fail_fastrpc_dev_unmap_dma:
  1732. mutex_unlock(&buf_list->lock);
  1733. cvp_put_fastrpc_node(frpc_node);
  1734. }
  1735. static void __dsp_cvp_sess_start(struct cvp_dsp_cmd_msg *cmd)
  1736. {
  1737. struct cvp_dsp_apps *me = &gfa_cv;
  1738. struct msm_cvp_inst *inst;
  1739. int rc;
  1740. struct cvp_dsp2cpu_cmd *dsp2cpu_cmd = &me->pending_dsp2cpu_cmd;
  1741. cmd->ret = 0;
  1742. dprintk(CVP_DSP,
  1743. "%s sess id 0x%x, low 0x%x, high 0x%x, pid 0x%x\n",
  1744. __func__, dsp2cpu_cmd->session_id,
  1745. dsp2cpu_cmd->session_cpu_low,
  1746. dsp2cpu_cmd->session_cpu_high,
  1747. dsp2cpu_cmd->pid);
  1748. inst = (struct msm_cvp_inst *)get_inst_from_dsp(
  1749. dsp2cpu_cmd->session_cpu_high,
  1750. dsp2cpu_cmd->session_cpu_low);
  1751. rc = msm_cvp_session_start(inst, (struct eva_kmd_arg *)NULL);
  1752. if (rc) {
  1753. dprintk(CVP_ERR, "%s Failed to start session\n", __func__);
  1754. cmd->ret = -1;
  1755. return;
  1756. }
  1757. dprintk(CVP_DSP, "%s session started\n", __func__);
  1758. }
  1759. static void __dsp_cvp_sess_stop(struct cvp_dsp_cmd_msg *cmd)
  1760. {
  1761. struct cvp_dsp_apps *me = &gfa_cv;
  1762. struct msm_cvp_inst *inst;
  1763. int rc;
  1764. struct cvp_dsp2cpu_cmd *dsp2cpu_cmd = &me->pending_dsp2cpu_cmd;
  1765. cmd->ret = 0;
  1766. dprintk(CVP_DSP,
  1767. "%s sess id 0x%x, low 0x%x, high 0x%x, pid 0x%x\n",
  1768. __func__, dsp2cpu_cmd->session_id,
  1769. dsp2cpu_cmd->session_cpu_low,
  1770. dsp2cpu_cmd->session_cpu_high,
  1771. dsp2cpu_cmd->pid);
  1772. inst = (struct msm_cvp_inst *)get_inst_from_dsp(
  1773. dsp2cpu_cmd->session_cpu_high,
  1774. dsp2cpu_cmd->session_cpu_low);
  1775. rc = msm_cvp_session_stop(inst, (struct eva_kmd_arg *)NULL);
  1776. if (rc) {
  1777. dprintk(CVP_ERR, "%s Failed to stop session\n", __func__);
  1778. cmd->ret = -1;
  1779. return;
  1780. }
  1781. dprintk(CVP_DSP, "%s session stoppd\n", __func__);
  1782. }
  1783. static int cvp_dsp_thread(void *data)
  1784. {
  1785. int rc = 0, old_state;
  1786. struct cvp_dsp_apps *me = &gfa_cv;
  1787. struct cvp_dsp_cmd_msg cmd;
  1788. struct cvp_hfi_device *hdev;
  1789. struct msm_cvp_core *core;
  1790. core = list_first_entry(&cvp_driver->cores, struct msm_cvp_core, list);
  1791. if (!core) {
  1792. dprintk(CVP_ERR, "%s: Failed to find core\n", __func__);
  1793. rc = -EINVAL;
  1794. goto exit;
  1795. }
  1796. hdev = (struct cvp_hfi_device *)core->device;
  1797. if (!hdev) {
  1798. dprintk(CVP_ERR, "%s Invalid device handle\n", __func__);
  1799. rc = -EINVAL;
  1800. goto exit;
  1801. }
  1802. wait_dsp:
  1803. rc = wait_for_completion_interruptible(
  1804. &me->completions[CPU2DSP_MAX_CMD]);
  1805. if (me->state == DSP_INVALID)
  1806. goto exit;
  1807. if (me->state == DSP_UNINIT)
  1808. goto wait_dsp;
  1809. if (me->state == DSP_PROBED) {
  1810. cvp_dsp_send_hfi_queue();
  1811. goto wait_dsp;
  1812. }
  1813. cmd.type = me->pending_dsp2cpu_cmd.type;
  1814. if (rc == -ERESTARTSYS) {
  1815. dprintk(CVP_WARN, "%s received interrupt signal\n", __func__);
  1816. } else {
  1817. mutex_lock(&me->rx_lock);
  1818. if (me->state == DSP_UNINIT) {
  1819. /* DSP SSR may have happened */
  1820. mutex_unlock(&me->rx_lock);
  1821. goto wait_dsp;
  1822. }
  1823. switch (me->pending_dsp2cpu_cmd.type) {
  1824. case DSP2CPU_POWERON:
  1825. {
  1826. if (me->state == DSP_READY) {
  1827. cmd.ret = 0;
  1828. break;
  1829. }
  1830. mutex_lock(&me->tx_lock);
  1831. old_state = me->state;
  1832. me->state = DSP_READY;
  1833. rc = call_hfi_op(hdev, resume, hdev->hfi_device_data);
  1834. if (rc) {
  1835. dprintk(CVP_WARN, "%s Failed to resume cvp\n",
  1836. __func__);
  1837. me->state = old_state;
  1838. mutex_unlock(&me->tx_lock);
  1839. cmd.ret = 1;
  1840. break;
  1841. }
  1842. mutex_unlock(&me->tx_lock);
  1843. cmd.ret = 0;
  1844. break;
  1845. }
  1846. case DSP2CPU_POWEROFF:
  1847. {
  1848. me->state = DSP_SUSPEND;
  1849. cmd.ret = 0;
  1850. break;
  1851. }
  1852. case DSP2CPU_CREATE_SESSION:
  1853. {
  1854. __dsp_cvp_sess_create(&cmd);
  1855. break;
  1856. }
  1857. case DSP2CPU_DETELE_SESSION:
  1858. {
  1859. __dsp_cvp_sess_delete(&cmd);
  1860. break;
  1861. }
  1862. case DSP2CPU_POWER_REQUEST:
  1863. {
  1864. __dsp_cvp_power_req(&cmd);
  1865. break;
  1866. }
  1867. case DSP2CPU_REGISTER_BUFFER:
  1868. {
  1869. __dsp_cvp_buf_register(&cmd);
  1870. break;
  1871. }
  1872. case DSP2CPU_DEREGISTER_BUFFER:
  1873. {
  1874. __dsp_cvp_buf_deregister(&cmd);
  1875. break;
  1876. }
  1877. case DSP2CPU_MEM_ALLOC:
  1878. {
  1879. __dsp_cvp_mem_alloc(&cmd);
  1880. break;
  1881. }
  1882. case DSP2CPU_MEM_FREE:
  1883. {
  1884. __dsp_cvp_mem_free(&cmd);
  1885. break;
  1886. }
  1887. case DSP2CPU_START_SESSION:
  1888. {
  1889. __dsp_cvp_sess_start(&cmd);
  1890. break;
  1891. }
  1892. case DSP2CPU_STOP_SESSION:
  1893. {
  1894. __dsp_cvp_sess_stop(&cmd);
  1895. break;
  1896. }
  1897. default:
  1898. dprintk(CVP_ERR, "unrecognaized dsp cmds: %d\n",
  1899. me->pending_dsp2cpu_cmd.type);
  1900. break;
  1901. }
  1902. me->pending_dsp2cpu_cmd.type = CVP_INVALID_RPMSG_TYPE;
  1903. mutex_unlock(&me->rx_lock);
  1904. }
  1905. /* Responds to DSP */
  1906. rc = cvp_dsp_send_cmd(&cmd, sizeof(struct cvp_dsp_cmd_msg));
  1907. if (rc)
  1908. dprintk(CVP_ERR,
  1909. "%s: cvp_dsp_send_cmd failed rc = %d cmd type=%d\n",
  1910. __func__, rc, cmd.type);
  1911. goto wait_dsp;
  1912. exit:
  1913. dprintk(CVP_DBG, "dsp thread exit\n");
  1914. return rc;
  1915. }
  1916. int cvp_dsp_device_init(void)
  1917. {
  1918. struct cvp_dsp_apps *me = &gfa_cv;
  1919. char tname[16];
  1920. int rc;
  1921. int i;
  1922. char name[CVP_FASTRPC_DRIVER_NAME_SIZE] = "qcom,fastcv0\0";
  1923. add_va_node_to_list(CVP_DBG_DUMP, &gfa_cv, sizeof(struct cvp_dsp_apps),
  1924. "cvp_dsp_apps-gfa_cv", false);
  1925. mutex_init(&me->tx_lock);
  1926. mutex_init(&me->rx_lock);
  1927. me->state = DSP_INVALID;
  1928. me->hyp_assigned = false;
  1929. for (i = 0; i <= CPU2DSP_MAX_CMD; i++)
  1930. init_completion(&me->completions[i]);
  1931. me->pending_dsp2cpu_cmd.type = CVP_INVALID_RPMSG_TYPE;
  1932. me->pending_dsp2cpu_rsp.type = CVP_INVALID_RPMSG_TYPE;
  1933. INIT_MSM_CVP_LIST(&me->fastrpc_driver_list);
  1934. mutex_init(&me->driver_name_lock);
  1935. for (i = 0; i < MAX_FASTRPC_DRIVER_NUM; i++) {
  1936. me->cvp_fastrpc_name[i].status = DRIVER_NAME_AVAILABLE;
  1937. snprintf(me->cvp_fastrpc_name[i].name, sizeof(name), name);
  1938. name[11]++;
  1939. }
  1940. rc = register_rpmsg_driver(&cvp_dsp_rpmsg_client);
  1941. if (rc) {
  1942. dprintk(CVP_ERR,
  1943. "%s : register_rpmsg_driver failed rc = %d\n",
  1944. __func__, rc);
  1945. goto register_bail;
  1946. }
  1947. snprintf(tname, sizeof(tname), "cvp-dsp-thread");
  1948. me->state = DSP_UNINIT;
  1949. me->dsp_thread = kthread_run(cvp_dsp_thread, me, tname);
  1950. if (!me->dsp_thread) {
  1951. dprintk(CVP_ERR, "%s create %s fail", __func__, tname);
  1952. rc = -ECHILD;
  1953. me->state = DSP_INVALID;
  1954. goto register_bail;
  1955. }
  1956. return 0;
  1957. register_bail:
  1958. return rc;
  1959. }
  1960. void cvp_dsp_device_exit(void)
  1961. {
  1962. struct cvp_dsp_apps *me = &gfa_cv;
  1963. int i;
  1964. mutex_lock(&me->tx_lock);
  1965. me->state = DSP_INVALID;
  1966. mutex_unlock(&me->tx_lock);
  1967. DEINIT_MSM_CVP_LIST(&me->fastrpc_driver_list);
  1968. for (i = 0; i <= CPU2DSP_MAX_CMD; i++)
  1969. complete_all(&me->completions[i]);
  1970. mutex_destroy(&me->tx_lock);
  1971. mutex_destroy(&me->rx_lock);
  1972. mutex_destroy(&me->driver_name_lock);
  1973. unregister_rpmsg_driver(&cvp_dsp_rpmsg_client);
  1974. }