synx_util.c 38 KB

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  1. // SPDX-License-Identifier: GPL-2.0-only
  2. /*
  3. * Copyright (c) 2019-2021, The Linux Foundation. All rights reserved.
  4. * Copyright (c) 2022-2023, Qualcomm Innovation Center, Inc. All rights reserved.
  5. */
  6. #include <linux/slab.h>
  7. #include <linux/random.h>
  8. #include <linux/vmalloc.h>
  9. #include "synx_debugfs.h"
  10. #include "synx_util.h"
  11. extern void synx_external_callback(s32 sync_obj, int status, void *data);
  12. int synx_util_init_coredata(struct synx_coredata *synx_obj,
  13. struct synx_create_params *params,
  14. struct dma_fence_ops *ops,
  15. u64 dma_context)
  16. {
  17. int rc = -SYNX_INVALID;
  18. spinlock_t *fence_lock;
  19. struct dma_fence *fence;
  20. struct synx_fence_entry *entry;
  21. if (IS_ERR_OR_NULL(synx_obj) || IS_ERR_OR_NULL(params) ||
  22. IS_ERR_OR_NULL(ops) || IS_ERR_OR_NULL(params->h_synx))
  23. return -SYNX_INVALID;
  24. if (params->flags & SYNX_CREATE_GLOBAL_FENCE &&
  25. *params->h_synx != 0) {
  26. rc = synx_global_get_ref(
  27. synx_util_global_idx(*params->h_synx));
  28. synx_obj->global_idx = synx_util_global_idx(*params->h_synx);
  29. } else if (params->flags & SYNX_CREATE_GLOBAL_FENCE) {
  30. rc = synx_alloc_global_handle(params->h_synx);
  31. synx_obj->global_idx = synx_util_global_idx(*params->h_synx);
  32. } else {
  33. rc = synx_alloc_local_handle(params->h_synx);
  34. }
  35. if (rc != SYNX_SUCCESS)
  36. return rc;
  37. synx_obj->map_count = 1;
  38. synx_obj->num_bound_synxs = 0;
  39. synx_obj->type |= params->flags;
  40. kref_init(&synx_obj->refcount);
  41. mutex_init(&synx_obj->obj_lock);
  42. INIT_LIST_HEAD(&synx_obj->reg_cbs_list);
  43. if (params->name)
  44. strlcpy(synx_obj->name, params->name, sizeof(synx_obj->name));
  45. if (params->flags & SYNX_CREATE_DMA_FENCE) {
  46. fence = params->fence;
  47. if (IS_ERR_OR_NULL(fence)) {
  48. dprintk(SYNX_ERR, "invalid external fence\n");
  49. goto free;
  50. }
  51. dma_fence_get(fence);
  52. synx_obj->fence = fence;
  53. } else {
  54. /*
  55. * lock and fence memory will be released in fence
  56. * release function
  57. */
  58. fence_lock = kzalloc(sizeof(*fence_lock), GFP_KERNEL);
  59. if (IS_ERR_OR_NULL(fence_lock)) {
  60. rc = -SYNX_NOMEM;
  61. goto free;
  62. }
  63. fence = kzalloc(sizeof(*fence), GFP_KERNEL);
  64. if (IS_ERR_OR_NULL(fence)) {
  65. kfree(fence_lock);
  66. rc = -SYNX_NOMEM;
  67. goto free;
  68. }
  69. spin_lock_init(fence_lock);
  70. dma_fence_init(fence, ops, fence_lock, dma_context, 1);
  71. synx_obj->fence = fence;
  72. synx_util_activate(synx_obj);
  73. dprintk(SYNX_MEM,
  74. "allocated backing fence %pK\n", fence);
  75. entry = kzalloc(sizeof(*entry), GFP_KERNEL);
  76. if (IS_ERR_OR_NULL(entry)) {
  77. rc = -SYNX_NOMEM;
  78. goto clean;
  79. }
  80. entry->key = (u64)fence;
  81. if (params->flags & SYNX_CREATE_GLOBAL_FENCE)
  82. entry->g_handle = *params->h_synx;
  83. else
  84. entry->l_handle = *params->h_synx;
  85. rc = synx_util_insert_fence_entry(entry,
  86. params->h_synx,
  87. params->flags & SYNX_CREATE_GLOBAL_FENCE);
  88. BUG_ON(rc != SYNX_SUCCESS);
  89. }
  90. if (rc != SYNX_SUCCESS)
  91. goto clean;
  92. return SYNX_SUCCESS;
  93. clean:
  94. dma_fence_put(fence);
  95. free:
  96. if (params->flags & SYNX_CREATE_GLOBAL_FENCE)
  97. synx_global_put_ref(
  98. synx_util_global_idx(*params->h_synx));
  99. else
  100. clear_bit(synx_util_global_idx(*params->h_synx),
  101. synx_dev->native->bitmap);
  102. return rc;
  103. }
  104. int synx_util_add_callback(struct synx_coredata *synx_obj,
  105. u32 h_synx)
  106. {
  107. int rc;
  108. struct synx_signal_cb *signal_cb;
  109. if (IS_ERR_OR_NULL(synx_obj))
  110. return -SYNX_INVALID;
  111. signal_cb = kzalloc(sizeof(*signal_cb), GFP_KERNEL);
  112. if (IS_ERR_OR_NULL(signal_cb))
  113. return -SYNX_NOMEM;
  114. signal_cb->handle = h_synx;
  115. signal_cb->flag = SYNX_SIGNAL_FROM_FENCE;
  116. signal_cb->synx_obj = synx_obj;
  117. /* get reference on synx coredata for signal cb */
  118. synx_util_get_object(synx_obj);
  119. /*
  120. * adding callback enables synx framework to
  121. * get notified on signal from clients using
  122. * native dma fence operations.
  123. */
  124. rc = dma_fence_add_callback(synx_obj->fence,
  125. &signal_cb->fence_cb, synx_fence_callback);
  126. if (rc != 0) {
  127. if (rc == -ENOENT) {
  128. if (synx_util_is_global_object(synx_obj)) {
  129. /* signal (if) global handle */
  130. rc = synx_global_update_status(
  131. synx_obj->global_idx,
  132. synx_util_get_object_status(synx_obj));
  133. if (rc != SYNX_SUCCESS)
  134. dprintk(SYNX_ERR,
  135. "status update of %u with fence %pK\n",
  136. synx_obj->global_idx, synx_obj->fence);
  137. } else {
  138. rc = SYNX_SUCCESS;
  139. }
  140. } else {
  141. dprintk(SYNX_ERR,
  142. "error adding callback for %pK err %d\n",
  143. synx_obj->fence, rc);
  144. }
  145. synx_util_put_object(synx_obj);
  146. kfree(signal_cb);
  147. return rc;
  148. }
  149. synx_obj->signal_cb = signal_cb;
  150. dprintk(SYNX_VERB, "added callback %pK to fence %pK\n",
  151. signal_cb, synx_obj->fence);
  152. return SYNX_SUCCESS;
  153. }
  154. int synx_util_init_group_coredata(struct synx_coredata *synx_obj,
  155. struct dma_fence **fences,
  156. struct synx_merge_params *params,
  157. u32 num_objs,
  158. u64 dma_context)
  159. {
  160. int rc;
  161. struct dma_fence_array *array;
  162. if (IS_ERR_OR_NULL(synx_obj))
  163. return -SYNX_INVALID;
  164. if (params->flags & SYNX_MERGE_GLOBAL_FENCE) {
  165. rc = synx_alloc_global_handle(params->h_merged_obj);
  166. synx_obj->global_idx =
  167. synx_util_global_idx(*params->h_merged_obj);
  168. } else {
  169. rc = synx_alloc_local_handle(params->h_merged_obj);
  170. }
  171. if (rc != SYNX_SUCCESS)
  172. return rc;
  173. array = dma_fence_array_create(num_objs, fences,
  174. dma_context, 1, false);
  175. if (IS_ERR_OR_NULL(array))
  176. return -SYNX_INVALID;
  177. synx_obj->fence = &array->base;
  178. synx_obj->map_count = 1;
  179. synx_obj->type = params->flags;
  180. synx_obj->type |= SYNX_CREATE_MERGED_FENCE;
  181. synx_obj->num_bound_synxs = 0;
  182. kref_init(&synx_obj->refcount);
  183. mutex_init(&synx_obj->obj_lock);
  184. INIT_LIST_HEAD(&synx_obj->reg_cbs_list);
  185. synx_util_activate(synx_obj);
  186. return rc;
  187. }
  188. static void synx_util_destroy_coredata(struct kref *kref)
  189. {
  190. int rc;
  191. struct synx_coredata *synx_obj =
  192. container_of(kref, struct synx_coredata, refcount);
  193. if (synx_util_is_global_object(synx_obj)) {
  194. rc = synx_global_clear_subscribed_core(synx_obj->global_idx, SYNX_CORE_APSS);
  195. if (rc)
  196. dprintk(SYNX_ERR, "Failed to clear subscribers");
  197. synx_global_put_ref(synx_obj->global_idx);
  198. }
  199. synx_util_object_destroy(synx_obj);
  200. }
  201. void synx_util_get_object(struct synx_coredata *synx_obj)
  202. {
  203. kref_get(&synx_obj->refcount);
  204. }
  205. void synx_util_put_object(struct synx_coredata *synx_obj)
  206. {
  207. kref_put(&synx_obj->refcount, synx_util_destroy_coredata);
  208. }
  209. void synx_util_object_destroy(struct synx_coredata *synx_obj)
  210. {
  211. int rc;
  212. u32 i;
  213. s32 sync_id;
  214. u32 type;
  215. unsigned long flags;
  216. struct synx_cb_data *synx_cb, *synx_cb_temp;
  217. struct synx_bind_desc *bind_desc;
  218. struct bind_operations *bind_ops;
  219. struct synx_external_data *data;
  220. /* clear all the undispatched callbacks */
  221. list_for_each_entry_safe(synx_cb,
  222. synx_cb_temp, &synx_obj->reg_cbs_list, node) {
  223. dprintk(SYNX_ERR,
  224. "cleaning up callback of session %pK\n",
  225. synx_cb->session);
  226. list_del_init(&synx_cb->node);
  227. kfree(synx_cb);
  228. }
  229. for (i = 0; i < synx_obj->num_bound_synxs; i++) {
  230. bind_desc = &synx_obj->bound_synxs[i];
  231. sync_id = bind_desc->external_desc.id;
  232. type = bind_desc->external_desc.type;
  233. data = bind_desc->external_data;
  234. bind_ops = synx_util_get_bind_ops(type);
  235. if (IS_ERR_OR_NULL(bind_ops)) {
  236. dprintk(SYNX_ERR,
  237. "bind ops fail id: %d, type: %u, err: %d\n",
  238. sync_id, type, rc);
  239. continue;
  240. }
  241. /* clear the hash table entry */
  242. synx_util_remove_data(&sync_id, type);
  243. rc = bind_ops->deregister_callback(
  244. synx_external_callback, data, sync_id);
  245. if (rc < 0) {
  246. dprintk(SYNX_ERR,
  247. "de-registration fail id: %d, type: %u, err: %d\n",
  248. sync_id, type, rc);
  249. continue;
  250. }
  251. /*
  252. * release the memory allocated for external data.
  253. * It is safe to release this memory
  254. * only if deregistration is successful.
  255. */
  256. kfree(data);
  257. }
  258. mutex_destroy(&synx_obj->obj_lock);
  259. synx_util_release_fence_entry((u64)synx_obj->fence);
  260. /* dma fence framework expects handles are signaled before release,
  261. * so signal if active handle and has last refcount. Synx handles
  262. * on other cores are still active to carry out usual callflow.
  263. */
  264. if (!IS_ERR_OR_NULL(synx_obj->fence)) {
  265. spin_lock_irqsave(synx_obj->fence->lock, flags);
  266. if (kref_read(&synx_obj->fence->refcount) == 1 &&
  267. (synx_util_get_object_status_locked(synx_obj) ==
  268. SYNX_STATE_ACTIVE)) {
  269. // set fence error to cancel
  270. dma_fence_set_error(synx_obj->fence,
  271. -SYNX_STATE_SIGNALED_CANCEL);
  272. rc = dma_fence_signal_locked(synx_obj->fence);
  273. if (rc)
  274. dprintk(SYNX_ERR,
  275. "signaling fence %pK failed=%d\n",
  276. synx_obj->fence, rc);
  277. }
  278. spin_unlock_irqrestore(synx_obj->fence->lock, flags);
  279. }
  280. dma_fence_put(synx_obj->fence);
  281. kfree(synx_obj);
  282. dprintk(SYNX_MEM, "released synx object %pK\n", synx_obj);
  283. }
  284. long synx_util_get_free_handle(unsigned long *bitmap, unsigned int size)
  285. {
  286. bool bit;
  287. long idx;
  288. do {
  289. idx = find_first_zero_bit(bitmap, size);
  290. if (idx >= size)
  291. break;
  292. bit = test_and_set_bit(idx, bitmap);
  293. } while (bit);
  294. return idx;
  295. }
  296. u32 synx_encode_handle(u32 idx, u32 core_id, bool global_idx)
  297. {
  298. u32 handle = 0;
  299. if (idx >= SYNX_MAX_OBJS)
  300. return 0;
  301. if (global_idx) {
  302. handle = 1;
  303. handle <<= SYNX_HANDLE_CORE_BITS;
  304. }
  305. handle |= core_id;
  306. handle <<= SYNX_HANDLE_INDEX_BITS;
  307. handle |= idx;
  308. return handle;
  309. }
  310. int synx_alloc_global_handle(u32 *new_synx)
  311. {
  312. int rc;
  313. u32 idx;
  314. rc = synx_global_alloc_index(&idx);
  315. if (rc != SYNX_SUCCESS)
  316. return rc;
  317. *new_synx = synx_encode_handle(idx, SYNX_CORE_APSS, true);
  318. dprintk(SYNX_DBG, "allocated global handle %u (0x%x)\n",
  319. *new_synx, *new_synx);
  320. rc = synx_global_init_coredata(*new_synx);
  321. return rc;
  322. }
  323. int synx_alloc_local_handle(u32 *new_synx)
  324. {
  325. u32 idx;
  326. idx = synx_util_get_free_handle(synx_dev->native->bitmap,
  327. SYNX_MAX_OBJS);
  328. if (idx >= SYNX_MAX_OBJS)
  329. return -SYNX_NOMEM;
  330. *new_synx = synx_encode_handle(idx, SYNX_CORE_APSS, false);
  331. dprintk(SYNX_DBG, "allocated local handle %u (0x%x)\n",
  332. *new_synx, *new_synx);
  333. return SYNX_SUCCESS;
  334. }
  335. int synx_util_init_handle(struct synx_client *client,
  336. struct synx_coredata *synx_obj, u32 *new_h_synx,
  337. void *map_entry)
  338. {
  339. int rc = SYNX_SUCCESS;
  340. bool found = false;
  341. struct synx_handle_coredata *synx_data, *curr;
  342. if (IS_ERR_OR_NULL(client) || IS_ERR_OR_NULL(synx_obj) ||
  343. IS_ERR_OR_NULL(new_h_synx) || IS_ERR_OR_NULL(map_entry))
  344. return -SYNX_INVALID;
  345. synx_data = kzalloc(sizeof(*synx_data), GFP_ATOMIC);
  346. if (IS_ERR_OR_NULL(synx_data))
  347. return -SYNX_NOMEM;
  348. synx_data->client = client;
  349. synx_data->synx_obj = synx_obj;
  350. synx_data->key = *new_h_synx;
  351. synx_data->map_entry = map_entry;
  352. kref_init(&synx_data->refcount);
  353. synx_data->rel_count = 1;
  354. spin_lock_bh(&client->handle_map_lock);
  355. hash_for_each_possible(client->handle_map,
  356. curr, node, *new_h_synx) {
  357. if (curr->key == *new_h_synx) {
  358. if (curr->synx_obj != synx_obj) {
  359. rc = -SYNX_INVALID;
  360. dprintk(SYNX_ERR,
  361. "inconsistent data in handle map\n");
  362. } else {
  363. kref_get(&curr->refcount);
  364. curr->rel_count++;
  365. }
  366. found = true;
  367. break;
  368. }
  369. }
  370. if (unlikely(found))
  371. kfree(synx_data);
  372. else
  373. hash_add(client->handle_map,
  374. &synx_data->node, *new_h_synx);
  375. spin_unlock_bh(&client->handle_map_lock);
  376. return rc;
  377. }
  378. int synx_util_activate(struct synx_coredata *synx_obj)
  379. {
  380. if (IS_ERR_OR_NULL(synx_obj))
  381. return -SYNX_INVALID;
  382. /* move synx to ACTIVE state and register cb for merged object */
  383. dma_fence_enable_sw_signaling(synx_obj->fence);
  384. return 0;
  385. }
  386. static u32 synx_util_get_references(struct synx_coredata *synx_obj)
  387. {
  388. u32 count = 0;
  389. u32 i = 0;
  390. struct dma_fence_array *array = NULL;
  391. /* obtain dma fence reference */
  392. if (dma_fence_is_array(synx_obj->fence)) {
  393. array = to_dma_fence_array(synx_obj->fence);
  394. if (IS_ERR_OR_NULL(array))
  395. return 0;
  396. for (i = 0; i < array->num_fences; i++)
  397. dma_fence_get(array->fences[i]);
  398. count = array->num_fences;
  399. } else {
  400. dma_fence_get(synx_obj->fence);
  401. count = 1;
  402. }
  403. return count;
  404. }
  405. static void synx_util_put_references(struct synx_coredata *synx_obj)
  406. {
  407. u32 i = 0;
  408. struct dma_fence_array *array = NULL;
  409. if (dma_fence_is_array(synx_obj->fence)) {
  410. array = to_dma_fence_array(synx_obj->fence);
  411. if (IS_ERR_OR_NULL(array))
  412. return;
  413. for (i = 0; i < array->num_fences; i++)
  414. dma_fence_put(array->fences[i]);
  415. } else {
  416. dma_fence_put(synx_obj->fence);
  417. }
  418. }
  419. static u32 synx_util_add_fence(struct synx_coredata *synx_obj,
  420. struct dma_fence **fences,
  421. u32 idx)
  422. {
  423. struct dma_fence_array *array = NULL;
  424. u32 i = 0;
  425. if (dma_fence_is_array(synx_obj->fence)) {
  426. array = to_dma_fence_array(synx_obj->fence);
  427. if (IS_ERR_OR_NULL(array))
  428. return 0;
  429. for (i = 0; i < array->num_fences; i++)
  430. fences[idx+i] = array->fences[i];
  431. return array->num_fences;
  432. }
  433. fences[idx] = synx_obj->fence;
  434. return 1;
  435. }
  436. static u32 synx_util_remove_duplicates(struct dma_fence **arr, u32 num)
  437. {
  438. int i, j;
  439. u32 wr_idx = 1;
  440. if (IS_ERR_OR_NULL(arr)) {
  441. dprintk(SYNX_ERR, "invalid input array\n");
  442. return 0;
  443. }
  444. for (i = 1; i < num; i++) {
  445. for (j = 0; j < wr_idx ; j++) {
  446. if (arr[i] == arr[j]) {
  447. /* release reference obtained for duplicate */
  448. dprintk(SYNX_DBG,
  449. "releasing duplicate reference\n");
  450. dma_fence_put(arr[i]);
  451. break;
  452. }
  453. }
  454. if (j == wr_idx)
  455. arr[wr_idx++] = arr[i];
  456. }
  457. return wr_idx;
  458. }
  459. s32 synx_util_merge_error(struct synx_client *client,
  460. u32 *h_synxs,
  461. u32 num_objs)
  462. {
  463. u32 i = 0;
  464. struct synx_handle_coredata *synx_data;
  465. struct synx_coredata *synx_obj;
  466. if (IS_ERR_OR_NULL(client) || IS_ERR_OR_NULL(h_synxs))
  467. return -SYNX_INVALID;
  468. for (i = 0; i < num_objs; i++) {
  469. synx_data = synx_util_acquire_handle(client, h_synxs[i]);
  470. synx_obj = synx_util_obtain_object(synx_data);
  471. if (IS_ERR_OR_NULL(synx_obj) ||
  472. IS_ERR_OR_NULL(synx_obj->fence)) {
  473. dprintk(SYNX_ERR,
  474. "[sess :%llu] invalid handle %d in cleanup\n",
  475. client->id, h_synxs[i]);
  476. continue;
  477. }
  478. /* release all references obtained during merge validatation */
  479. synx_util_put_references(synx_obj);
  480. synx_util_release_handle(synx_data);
  481. }
  482. return 0;
  483. }
  484. int synx_util_validate_merge(struct synx_client *client,
  485. u32 *h_synxs,
  486. u32 num_objs,
  487. struct dma_fence ***fence_list,
  488. u32 *fence_cnt)
  489. {
  490. u32 count = 0;
  491. u32 i = 0;
  492. struct synx_handle_coredata **synx_datas;
  493. struct synx_coredata **synx_objs;
  494. struct dma_fence **fences = NULL;
  495. if (num_objs <= 1) {
  496. dprintk(SYNX_ERR, "single handle merge is not allowed\n");
  497. return -SYNX_INVALID;
  498. }
  499. synx_datas = kcalloc(num_objs, sizeof(*synx_datas), GFP_KERNEL);
  500. if (IS_ERR_OR_NULL(synx_datas))
  501. return -SYNX_NOMEM;
  502. synx_objs = kcalloc(num_objs, sizeof(*synx_objs), GFP_KERNEL);
  503. if (IS_ERR_OR_NULL(synx_objs)) {
  504. kfree(synx_datas);
  505. return -SYNX_NOMEM;
  506. }
  507. for (i = 0; i < num_objs; i++) {
  508. synx_datas[i] = synx_util_acquire_handle(client, h_synxs[i]);
  509. synx_objs[i] = synx_util_obtain_object(synx_datas[i]);
  510. if (IS_ERR_OR_NULL(synx_objs[i]) ||
  511. IS_ERR_OR_NULL(synx_objs[i]->fence)) {
  512. dprintk(SYNX_ERR,
  513. "[sess :%llu] invalid handle %d in merge list\n",
  514. client->id, h_synxs[i]);
  515. *fence_cnt = i;
  516. goto error;
  517. }
  518. count += synx_util_get_references(synx_objs[i]);
  519. }
  520. fences = kcalloc(count, sizeof(*fences), GFP_KERNEL);
  521. if (IS_ERR_OR_NULL(fences)) {
  522. *fence_cnt = num_objs;
  523. goto error;
  524. }
  525. /* memory will be released later in the invoking function */
  526. *fence_list = fences;
  527. count = 0;
  528. for (i = 0; i < num_objs; i++) {
  529. count += synx_util_add_fence(synx_objs[i], fences, count);
  530. /* release the reference obtained earlier in the function */
  531. synx_util_release_handle(synx_datas[i]);
  532. }
  533. *fence_cnt = synx_util_remove_duplicates(fences, count);
  534. kfree(synx_objs);
  535. kfree(synx_datas);
  536. return 0;
  537. error:
  538. /* release the reference/s obtained earlier in the function */
  539. for (i = 0; i < *fence_cnt; i++) {
  540. synx_util_put_references(synx_objs[i]);
  541. synx_util_release_handle(synx_datas[i]);
  542. }
  543. *fence_cnt = 0;
  544. kfree(synx_objs);
  545. kfree(synx_datas);
  546. return -SYNX_INVALID;
  547. }
  548. static u32 __fence_state(struct dma_fence *fence, bool locked)
  549. {
  550. s32 status;
  551. u32 state = SYNX_STATE_INVALID;
  552. if (IS_ERR_OR_NULL(fence)) {
  553. dprintk(SYNX_ERR, "invalid fence\n");
  554. return SYNX_STATE_INVALID;
  555. }
  556. if (locked)
  557. status = dma_fence_get_status_locked(fence);
  558. else
  559. status = dma_fence_get_status(fence);
  560. /* convert fence status to synx state */
  561. switch (status) {
  562. case 0:
  563. state = SYNX_STATE_ACTIVE;
  564. break;
  565. case 1:
  566. state = SYNX_STATE_SIGNALED_SUCCESS;
  567. break;
  568. case -SYNX_STATE_SIGNALED_CANCEL:
  569. state = SYNX_STATE_SIGNALED_CANCEL;
  570. break;
  571. case -SYNX_STATE_SIGNALED_EXTERNAL:
  572. state = SYNX_STATE_SIGNALED_EXTERNAL;
  573. break;
  574. case -SYNX_STATE_SIGNALED_ERROR:
  575. state = SYNX_STATE_SIGNALED_ERROR;
  576. break;
  577. default:
  578. state = (u32)(-status);
  579. }
  580. return state;
  581. }
  582. static u32 __fence_group_state(struct dma_fence *fence, bool locked)
  583. {
  584. u32 i = 0;
  585. u32 state = SYNX_STATE_INVALID;
  586. struct dma_fence_array *array = NULL;
  587. u32 intr, actv_cnt, sig_cnt, err_cnt;
  588. if (IS_ERR_OR_NULL(fence)) {
  589. dprintk(SYNX_ERR, "invalid fence\n");
  590. return SYNX_STATE_INVALID;
  591. }
  592. actv_cnt = sig_cnt = err_cnt = 0;
  593. array = to_dma_fence_array(fence);
  594. if (IS_ERR_OR_NULL(array))
  595. return SYNX_STATE_INVALID;
  596. for (i = 0; i < array->num_fences; i++) {
  597. intr = __fence_state(array->fences[i], locked);
  598. switch (intr) {
  599. case SYNX_STATE_ACTIVE:
  600. actv_cnt++;
  601. break;
  602. case SYNX_STATE_SIGNALED_SUCCESS:
  603. sig_cnt++;
  604. break;
  605. default:
  606. err_cnt++;
  607. }
  608. }
  609. dprintk(SYNX_DBG,
  610. "group cnt stats act:%u, sig: %u, err: %u\n",
  611. actv_cnt, sig_cnt, err_cnt);
  612. if (err_cnt)
  613. state = SYNX_STATE_SIGNALED_ERROR;
  614. else if (actv_cnt)
  615. state = SYNX_STATE_ACTIVE;
  616. else if (sig_cnt == array->num_fences)
  617. state = SYNX_STATE_SIGNALED_SUCCESS;
  618. return state;
  619. }
  620. /*
  621. * WARN: Should not hold the fence spinlock when invoking
  622. * this function. Use synx_fence_state_locked instead
  623. */
  624. u32 synx_util_get_object_status(struct synx_coredata *synx_obj)
  625. {
  626. u32 state;
  627. if (IS_ERR_OR_NULL(synx_obj))
  628. return SYNX_STATE_INVALID;
  629. if (synx_util_is_merged_object(synx_obj))
  630. state = __fence_group_state(synx_obj->fence, false);
  631. else
  632. state = __fence_state(synx_obj->fence, false);
  633. return state;
  634. }
  635. /* use this for status check when holding on to metadata spinlock */
  636. u32 synx_util_get_object_status_locked(struct synx_coredata *synx_obj)
  637. {
  638. u32 state;
  639. if (IS_ERR_OR_NULL(synx_obj))
  640. return SYNX_STATE_INVALID;
  641. if (synx_util_is_merged_object(synx_obj))
  642. state = __fence_group_state(synx_obj->fence, true);
  643. else
  644. state = __fence_state(synx_obj->fence, true);
  645. return state;
  646. }
  647. struct synx_handle_coredata *synx_util_acquire_handle(
  648. struct synx_client *client, u32 h_synx)
  649. {
  650. struct synx_handle_coredata *synx_data = NULL;
  651. struct synx_handle_coredata *synx_handle =
  652. ERR_PTR(-SYNX_NOENT);
  653. if (IS_ERR_OR_NULL(client))
  654. return ERR_PTR(-SYNX_INVALID);
  655. spin_lock_bh(&client->handle_map_lock);
  656. hash_for_each_possible(client->handle_map,
  657. synx_data, node, h_synx) {
  658. if (synx_data->key == h_synx &&
  659. synx_data->rel_count != 0) {
  660. kref_get(&synx_data->refcount);
  661. synx_handle = synx_data;
  662. break;
  663. }
  664. }
  665. spin_unlock_bh(&client->handle_map_lock);
  666. return synx_handle;
  667. }
  668. struct synx_map_entry *synx_util_insert_to_map(
  669. struct synx_coredata *synx_obj,
  670. u32 h_synx, u32 flags)
  671. {
  672. struct synx_map_entry *map_entry;
  673. map_entry = kzalloc(sizeof(*map_entry), GFP_KERNEL);
  674. if (IS_ERR_OR_NULL(map_entry))
  675. return ERR_PTR(-SYNX_NOMEM);
  676. kref_init(&map_entry->refcount);
  677. map_entry->synx_obj = synx_obj;
  678. map_entry->flags = flags;
  679. map_entry->key = h_synx;
  680. if (synx_util_is_global_handle(h_synx)) {
  681. spin_lock_bh(&synx_dev->native->global_map_lock);
  682. hash_add(synx_dev->native->global_map,
  683. &map_entry->node, h_synx);
  684. spin_unlock_bh(&synx_dev->native->global_map_lock);
  685. dprintk(SYNX_MEM,
  686. "added handle %u to global map %pK\n",
  687. h_synx, map_entry);
  688. } else {
  689. spin_lock_bh(&synx_dev->native->local_map_lock);
  690. hash_add(synx_dev->native->local_map,
  691. &map_entry->node, h_synx);
  692. spin_unlock_bh(&synx_dev->native->local_map_lock);
  693. dprintk(SYNX_MEM,
  694. "added handle %u to local map %pK\n",
  695. h_synx, map_entry);
  696. }
  697. return map_entry;
  698. }
  699. struct synx_map_entry *synx_util_get_map_entry(u32 h_synx)
  700. {
  701. struct synx_map_entry *curr;
  702. struct synx_map_entry *map_entry = ERR_PTR(-SYNX_NOENT);
  703. if (h_synx == 0)
  704. return ERR_PTR(-SYNX_INVALID);
  705. if (synx_util_is_global_handle(h_synx)) {
  706. spin_lock_bh(&synx_dev->native->global_map_lock);
  707. hash_for_each_possible(synx_dev->native->global_map,
  708. curr, node, h_synx) {
  709. if (curr->key == h_synx) {
  710. kref_get(&curr->refcount);
  711. map_entry = curr;
  712. break;
  713. }
  714. }
  715. spin_unlock_bh(&synx_dev->native->global_map_lock);
  716. } else {
  717. spin_lock_bh(&synx_dev->native->local_map_lock);
  718. hash_for_each_possible(synx_dev->native->local_map,
  719. curr, node, h_synx) {
  720. if (curr->key == h_synx) {
  721. kref_get(&curr->refcount);
  722. map_entry = curr;
  723. break;
  724. }
  725. }
  726. spin_unlock_bh(&synx_dev->native->local_map_lock);
  727. }
  728. /* should we allocate if entry not found? */
  729. return map_entry;
  730. }
  731. static void synx_util_cleanup_fence(
  732. struct synx_coredata *synx_obj)
  733. {
  734. struct synx_signal_cb *signal_cb;
  735. unsigned long flags;
  736. u32 g_status;
  737. u32 f_status;
  738. mutex_lock(&synx_obj->obj_lock);
  739. synx_obj->map_count--;
  740. signal_cb = synx_obj->signal_cb;
  741. f_status = synx_util_get_object_status(synx_obj);
  742. dprintk(SYNX_VERB, "f_status:%u, signal_cb:%p, map:%u, idx:%u\n",
  743. f_status, signal_cb, synx_obj->map_count, synx_obj->global_idx);
  744. if (synx_obj->map_count == 0 &&
  745. (signal_cb != NULL) &&
  746. (synx_obj->global_idx != 0) &&
  747. (f_status == SYNX_STATE_ACTIVE)) {
  748. /*
  749. * no more clients interested for notification
  750. * on handle on local core.
  751. * remove reference held by callback on synx
  752. * coredata structure and update cb (if still
  753. * un-signaled) with global handle idx to
  754. * notify any cross-core clients waiting on
  755. * handle.
  756. */
  757. g_status = synx_global_get_status(synx_obj->global_idx);
  758. if (g_status > SYNX_STATE_ACTIVE) {
  759. dprintk(SYNX_DBG, "signaling fence %pK with status %u\n",
  760. synx_obj->fence, g_status);
  761. synx_native_signal_fence(synx_obj, g_status);
  762. } else {
  763. spin_lock_irqsave(synx_obj->fence->lock, flags);
  764. if (synx_util_get_object_status_locked(synx_obj) ==
  765. SYNX_STATE_ACTIVE) {
  766. signal_cb->synx_obj = NULL;
  767. synx_obj->signal_cb = NULL;
  768. /*
  769. * release reference held by signal cb and
  770. * get reference on global index instead.
  771. */
  772. synx_util_put_object(synx_obj);
  773. synx_global_get_ref(synx_obj->global_idx);
  774. }
  775. spin_unlock_irqrestore(synx_obj->fence->lock, flags);
  776. }
  777. } else if (synx_obj->map_count == 0 && signal_cb &&
  778. (f_status == SYNX_STATE_ACTIVE)) {
  779. if (dma_fence_remove_callback(synx_obj->fence,
  780. &signal_cb->fence_cb)) {
  781. kfree(signal_cb);
  782. synx_obj->signal_cb = NULL;
  783. /*
  784. * release reference held by signal cb and
  785. * get reference on global index instead.
  786. */
  787. synx_util_put_object(synx_obj);
  788. dprintk(SYNX_MEM, "signal cb destroyed %pK\n",
  789. synx_obj->signal_cb);
  790. }
  791. }
  792. mutex_unlock(&synx_obj->obj_lock);
  793. }
  794. static void synx_util_destroy_map_entry_worker(
  795. struct work_struct *dispatch)
  796. {
  797. struct synx_map_entry *map_entry =
  798. container_of(dispatch, struct synx_map_entry, dispatch);
  799. struct synx_coredata *synx_obj;
  800. synx_obj = map_entry->synx_obj;
  801. if (!IS_ERR_OR_NULL(synx_obj)) {
  802. synx_util_cleanup_fence(synx_obj);
  803. /* release reference held by map entry */
  804. synx_util_put_object(synx_obj);
  805. }
  806. if (!synx_util_is_global_handle(map_entry->key))
  807. clear_bit(synx_util_global_idx(map_entry->key),
  808. synx_dev->native->bitmap);
  809. dprintk(SYNX_VERB, "map entry for %u destroyed %pK\n",
  810. map_entry->key, map_entry);
  811. kfree(map_entry);
  812. }
  813. static void synx_util_destroy_map_entry(struct kref *kref)
  814. {
  815. struct synx_map_entry *map_entry =
  816. container_of(kref, struct synx_map_entry, refcount);
  817. hash_del(&map_entry->node);
  818. dprintk(SYNX_MEM, "map entry for %u removed %pK\n",
  819. map_entry->key, map_entry);
  820. INIT_WORK(&map_entry->dispatch, synx_util_destroy_map_entry_worker);
  821. queue_work(synx_dev->wq_cleanup, &map_entry->dispatch);
  822. }
  823. void synx_util_release_map_entry(struct synx_map_entry *map_entry)
  824. {
  825. spinlock_t *lock;
  826. if (IS_ERR_OR_NULL(map_entry))
  827. return;
  828. if (synx_util_is_global_handle(map_entry->key))
  829. lock = &synx_dev->native->global_map_lock;
  830. else
  831. lock = &synx_dev->native->local_map_lock;
  832. spin_lock_bh(lock);
  833. kref_put(&map_entry->refcount,
  834. synx_util_destroy_map_entry);
  835. spin_unlock_bh(lock);
  836. }
  837. static void synx_util_destroy_handle_worker(
  838. struct work_struct *dispatch)
  839. {
  840. struct synx_handle_coredata *synx_data =
  841. container_of(dispatch, struct synx_handle_coredata,
  842. dispatch);
  843. synx_util_release_map_entry(synx_data->map_entry);
  844. dprintk(SYNX_VERB, "handle %u destroyed %pK\n",
  845. synx_data->key, synx_data);
  846. kfree(synx_data);
  847. }
  848. static void synx_util_destroy_handle(struct kref *kref)
  849. {
  850. struct synx_handle_coredata *synx_data =
  851. container_of(kref, struct synx_handle_coredata,
  852. refcount);
  853. hash_del(&synx_data->node);
  854. dprintk(SYNX_MEM, "[sess :%llu] handle %u removed %pK\n",
  855. synx_data->client->id, synx_data->key, synx_data);
  856. INIT_WORK(&synx_data->dispatch, synx_util_destroy_handle_worker);
  857. queue_work(synx_dev->wq_cleanup, &synx_data->dispatch);
  858. }
  859. void synx_util_release_handle(struct synx_handle_coredata *synx_data)
  860. {
  861. struct synx_client *client;
  862. if (IS_ERR_OR_NULL(synx_data))
  863. return;
  864. client = synx_data->client;
  865. if (IS_ERR_OR_NULL(client))
  866. return;
  867. spin_lock_bh(&client->handle_map_lock);
  868. kref_put(&synx_data->refcount,
  869. synx_util_destroy_handle);
  870. spin_unlock_bh(&client->handle_map_lock);
  871. }
  872. struct bind_operations *synx_util_get_bind_ops(u32 type)
  873. {
  874. struct synx_registered_ops *client_ops;
  875. if (!synx_util_is_valid_bind_type(type))
  876. return NULL;
  877. mutex_lock(&synx_dev->vtbl_lock);
  878. client_ops = &synx_dev->bind_vtbl[type];
  879. if (!client_ops->valid) {
  880. mutex_unlock(&synx_dev->vtbl_lock);
  881. return NULL;
  882. }
  883. mutex_unlock(&synx_dev->vtbl_lock);
  884. return &client_ops->ops;
  885. }
  886. int synx_util_alloc_cb_entry(struct synx_client *client,
  887. struct synx_kernel_payload *data,
  888. u32 *cb_idx)
  889. {
  890. long idx;
  891. struct synx_client_cb *cb;
  892. if (IS_ERR_OR_NULL(client) || IS_ERR_OR_NULL(data) ||
  893. IS_ERR_OR_NULL(cb_idx))
  894. return -SYNX_INVALID;
  895. idx = synx_util_get_free_handle(client->cb_bitmap, SYNX_MAX_OBJS);
  896. if (idx >= SYNX_MAX_OBJS) {
  897. dprintk(SYNX_ERR,
  898. "[sess :%llu] free cb index not available\n",
  899. client->id);
  900. return -SYNX_NOMEM;
  901. }
  902. cb = &client->cb_table[idx];
  903. memset(cb, 0, sizeof(*cb));
  904. cb->is_valid = true;
  905. cb->client = client;
  906. cb->idx = idx;
  907. memcpy(&cb->kernel_cb, data,
  908. sizeof(cb->kernel_cb));
  909. *cb_idx = idx;
  910. dprintk(SYNX_VERB, "[sess :%llu] allocated cb index %u\n",
  911. client->id, *cb_idx);
  912. return 0;
  913. }
  914. int synx_util_clear_cb_entry(struct synx_client *client,
  915. struct synx_client_cb *cb)
  916. {
  917. int rc = 0;
  918. u32 idx;
  919. if (IS_ERR_OR_NULL(cb))
  920. return -SYNX_INVALID;
  921. idx = cb->idx;
  922. memset(cb, 0, sizeof(*cb));
  923. if (idx && idx < SYNX_MAX_OBJS) {
  924. clear_bit(idx, client->cb_bitmap);
  925. } else {
  926. dprintk(SYNX_ERR, "invalid index\n");
  927. rc = -SYNX_INVALID;
  928. }
  929. return rc;
  930. }
  931. void synx_util_default_user_callback(u32 h_synx,
  932. int status, void *data)
  933. {
  934. struct synx_client_cb *cb = data;
  935. struct synx_client *client = NULL;
  936. if (cb && cb->client) {
  937. client = cb->client;
  938. dprintk(SYNX_VERB,
  939. "[sess :%llu] user cb queued for handle %d\n",
  940. client->id, h_synx);
  941. cb->kernel_cb.status = status;
  942. mutex_lock(&client->event_q_lock);
  943. list_add_tail(&cb->node, &client->event_q);
  944. mutex_unlock(&client->event_q_lock);
  945. wake_up_all(&client->event_wq);
  946. } else {
  947. dprintk(SYNX_ERR, "invalid params\n");
  948. }
  949. }
  950. void synx_util_callback_dispatch(struct synx_coredata *synx_obj, u32 status)
  951. {
  952. struct synx_cb_data *synx_cb, *synx_cb_temp;
  953. if (IS_ERR_OR_NULL(synx_obj)) {
  954. dprintk(SYNX_ERR, "invalid arguments\n");
  955. return;
  956. }
  957. list_for_each_entry_safe(synx_cb,
  958. synx_cb_temp, &synx_obj->reg_cbs_list, node) {
  959. synx_cb->status = status;
  960. list_del_init(&synx_cb->node);
  961. queue_work(synx_dev->wq_cb,
  962. &synx_cb->cb_dispatch);
  963. dprintk(SYNX_VERB, "dispatched callback\n");
  964. }
  965. }
  966. void synx_util_cb_dispatch(struct work_struct *cb_dispatch)
  967. {
  968. struct synx_cb_data *synx_cb =
  969. container_of(cb_dispatch, struct synx_cb_data, cb_dispatch);
  970. struct synx_client *client;
  971. struct synx_client_cb *cb;
  972. struct synx_kernel_payload payload;
  973. u32 status;
  974. client = synx_get_client(synx_cb->session);
  975. if (IS_ERR_OR_NULL(client)) {
  976. dprintk(SYNX_ERR,
  977. "invalid session data %pK in cb payload\n",
  978. synx_cb->session);
  979. goto free;
  980. }
  981. if (synx_cb->idx == 0 ||
  982. synx_cb->idx >= SYNX_MAX_OBJS) {
  983. dprintk(SYNX_ERR,
  984. "[sess :%llu] invalid cb index %u\n",
  985. client->id, synx_cb->idx);
  986. goto fail;
  987. }
  988. status = synx_cb->status;
  989. cb = &client->cb_table[synx_cb->idx];
  990. if (!cb->is_valid) {
  991. dprintk(SYNX_ERR, "invalid cb payload\n");
  992. goto fail;
  993. }
  994. memcpy(&payload, &cb->kernel_cb, sizeof(cb->kernel_cb));
  995. payload.status = status;
  996. if (payload.cb_func == synx_util_default_user_callback) {
  997. /*
  998. * need to send client cb data for default
  999. * user cb (userspace cb)
  1000. */
  1001. payload.data = cb;
  1002. } else {
  1003. /*
  1004. * clear the cb entry. userspace cb entry
  1005. * will be cleared after data read by the
  1006. * polling thread or when client is destroyed
  1007. */
  1008. if (synx_util_clear_cb_entry(client, cb))
  1009. dprintk(SYNX_ERR,
  1010. "[sess :%llu] error clearing cb entry\n",
  1011. client->id);
  1012. }
  1013. dprintk(SYNX_DBG,
  1014. "callback dispatched for handle %u, status %u, data %pK\n",
  1015. payload.h_synx, payload.status, payload.data);
  1016. /* dispatch kernel callback */
  1017. payload.cb_func(payload.h_synx,
  1018. payload.status, payload.data);
  1019. fail:
  1020. synx_put_client(client);
  1021. free:
  1022. kfree(synx_cb);
  1023. }
  1024. int synx_get_child_coredata(struct synx_coredata *synx_obj, struct synx_coredata ***child_synx_obj, int *num_fences)
  1025. {
  1026. int rc = SYNX_SUCCESS;
  1027. int i = 0, handle_count = 0;
  1028. u32 h_child = 0;
  1029. struct dma_fence_array *array = NULL;
  1030. struct synx_coredata **synx_datas = NULL;
  1031. struct synx_map_entry *fence_entry = NULL;
  1032. if (IS_ERR_OR_NULL(synx_obj) || IS_ERR_OR_NULL(num_fences))
  1033. return -SYNX_INVALID;
  1034. if (dma_fence_is_array(synx_obj->fence)) {
  1035. array = to_dma_fence_array(synx_obj->fence);
  1036. if (IS_ERR_OR_NULL(array))
  1037. return -SYNX_INVALID;
  1038. synx_datas = kcalloc(array->num_fences, sizeof(*synx_datas), GFP_KERNEL);
  1039. if (IS_ERR_OR_NULL(synx_datas))
  1040. return -SYNX_NOMEM;
  1041. for (i = 0; i < array->num_fences; i++) {
  1042. h_child = synx_util_get_fence_entry((u64)array->fences[i], 1);
  1043. fence_entry = synx_util_get_map_entry(h_child);
  1044. if (IS_ERR_OR_NULL(fence_entry) || IS_ERR_OR_NULL(fence_entry->synx_obj))
  1045. {
  1046. dprintk(SYNX_ERR, "Invalid handle access %u", h_child);
  1047. rc = -SYNX_NOENT;
  1048. goto fail;
  1049. }
  1050. synx_datas[handle_count++] = fence_entry->synx_obj;
  1051. synx_util_release_map_entry(fence_entry);
  1052. }
  1053. }
  1054. *child_synx_obj = synx_datas;
  1055. *num_fences = handle_count;
  1056. return rc;
  1057. fail:
  1058. kfree(synx_datas);
  1059. return rc;
  1060. }
  1061. u32 synx_util_get_fence_entry(u64 key, u32 global)
  1062. {
  1063. u32 h_synx = 0;
  1064. struct synx_fence_entry *curr;
  1065. spin_lock_bh(&synx_dev->native->fence_map_lock);
  1066. hash_for_each_possible(synx_dev->native->fence_map,
  1067. curr, node, key) {
  1068. if (curr->key == key) {
  1069. if (global)
  1070. h_synx = curr->g_handle;
  1071. /* return local handle if global not available */
  1072. if (h_synx == 0)
  1073. h_synx = curr->l_handle;
  1074. break;
  1075. }
  1076. }
  1077. spin_unlock_bh(&synx_dev->native->fence_map_lock);
  1078. return h_synx;
  1079. }
  1080. void synx_util_release_fence_entry(u64 key)
  1081. {
  1082. struct synx_fence_entry *entry = NULL, *curr;
  1083. spin_lock_bh(&synx_dev->native->fence_map_lock);
  1084. hash_for_each_possible(synx_dev->native->fence_map,
  1085. curr, node, key) {
  1086. if (curr->key == key) {
  1087. entry = curr;
  1088. break;
  1089. }
  1090. }
  1091. if (entry) {
  1092. hash_del(&entry->node);
  1093. dprintk(SYNX_MEM,
  1094. "released fence entry %pK for fence %pK\n",
  1095. entry, (void *)key);
  1096. kfree(entry);
  1097. }
  1098. spin_unlock_bh(&synx_dev->native->fence_map_lock);
  1099. }
  1100. int synx_util_insert_fence_entry(struct synx_fence_entry *entry,
  1101. u32 *h_synx, u32 global)
  1102. {
  1103. int rc = SYNX_SUCCESS;
  1104. struct synx_fence_entry *curr;
  1105. if (IS_ERR_OR_NULL(entry) || IS_ERR_OR_NULL(h_synx))
  1106. return -SYNX_INVALID;
  1107. spin_lock_bh(&synx_dev->native->fence_map_lock);
  1108. hash_for_each_possible(synx_dev->native->fence_map,
  1109. curr, node, entry->key) {
  1110. /* raced with import from another process on same fence */
  1111. if (curr->key == entry->key) {
  1112. if (global)
  1113. *h_synx = curr->g_handle;
  1114. if (*h_synx == 0 || !global)
  1115. *h_synx = curr->l_handle;
  1116. rc = -SYNX_ALREADY;
  1117. break;
  1118. }
  1119. }
  1120. /* add entry only if its not present in the map */
  1121. if (rc == SYNX_SUCCESS) {
  1122. hash_add(synx_dev->native->fence_map,
  1123. &entry->node, entry->key);
  1124. dprintk(SYNX_MEM,
  1125. "added fence entry %pK for fence %pK\n",
  1126. entry, (void *)entry->key);
  1127. }
  1128. spin_unlock_bh(&synx_dev->native->fence_map_lock);
  1129. return rc;
  1130. }
  1131. struct synx_client *synx_get_client(struct synx_session *session)
  1132. {
  1133. struct synx_client *client = NULL;
  1134. struct synx_client *curr;
  1135. if (IS_ERR_OR_NULL(session))
  1136. return ERR_PTR(-SYNX_INVALID);
  1137. spin_lock_bh(&synx_dev->native->metadata_map_lock);
  1138. hash_for_each_possible(synx_dev->native->client_metadata_map,
  1139. curr, node, (u64)session) {
  1140. if (curr == (struct synx_client *)session) {
  1141. if (curr->active) {
  1142. kref_get(&curr->refcount);
  1143. client = curr;
  1144. }
  1145. break;
  1146. }
  1147. }
  1148. spin_unlock_bh(&synx_dev->native->metadata_map_lock);
  1149. return client;
  1150. }
  1151. static void synx_client_cleanup(struct work_struct *dispatch)
  1152. {
  1153. int i, j;
  1154. struct synx_client *client =
  1155. container_of(dispatch, struct synx_client, dispatch);
  1156. struct synx_handle_coredata *curr;
  1157. struct hlist_node *tmp;
  1158. /*
  1159. * go over all the remaining synx obj handles
  1160. * un-released from this session and remove them.
  1161. */
  1162. hash_for_each_safe(client->handle_map, i, tmp, curr, node) {
  1163. dprintk(SYNX_WARN,
  1164. "[sess :%llu] un-released handle %u\n",
  1165. client->id, curr->key);
  1166. j = kref_read(&curr->refcount);
  1167. /* release pending reference */
  1168. while (j--)
  1169. kref_put(&curr->refcount, synx_util_destroy_handle);
  1170. }
  1171. mutex_destroy(&client->event_q_lock);
  1172. dprintk(SYNX_VERB, "session %llu [%s] destroyed %pK\n",
  1173. client->id, client->name, client);
  1174. vfree(client);
  1175. }
  1176. static void synx_client_destroy(struct kref *kref)
  1177. {
  1178. struct synx_client *client =
  1179. container_of(kref, struct synx_client, refcount);
  1180. hash_del(&client->node);
  1181. dprintk(SYNX_INFO, "[sess :%llu] session removed %s\n",
  1182. client->id, client->name);
  1183. INIT_WORK(&client->dispatch, synx_client_cleanup);
  1184. queue_work(synx_dev->wq_cleanup, &client->dispatch);
  1185. }
  1186. void synx_put_client(struct synx_client *client)
  1187. {
  1188. if (IS_ERR_OR_NULL(client))
  1189. return;
  1190. spin_lock_bh(&synx_dev->native->metadata_map_lock);
  1191. kref_put(&client->refcount, synx_client_destroy);
  1192. spin_unlock_bh(&synx_dev->native->metadata_map_lock);
  1193. }
  1194. void synx_util_generate_timestamp(char *timestamp, size_t size)
  1195. {
  1196. struct timespec64 tv;
  1197. struct tm tm;
  1198. ktime_get_real_ts64(&tv);
  1199. time64_to_tm(tv.tv_sec, 0, &tm);
  1200. snprintf(timestamp, size, "%02d-%02d %02d:%02d:%02d",
  1201. tm.tm_mon + 1, tm.tm_mday, tm.tm_hour,
  1202. tm.tm_min, tm.tm_sec);
  1203. }
  1204. void synx_util_log_error(u32 client_id, u32 h_synx, s32 err)
  1205. {
  1206. struct error_node *err_node;
  1207. if (!synx_dev->debugfs_root)
  1208. return;
  1209. err_node = kzalloc(sizeof(*err_node), GFP_KERNEL);
  1210. if (!err_node)
  1211. return;
  1212. err_node->client_id = client_id;
  1213. err_node->error_code = err;
  1214. err_node->h_synx = h_synx;
  1215. synx_util_generate_timestamp(err_node->timestamp,
  1216. sizeof(err_node->timestamp));
  1217. mutex_lock(&synx_dev->error_lock);
  1218. list_add(&err_node->node,
  1219. &synx_dev->error_list);
  1220. mutex_unlock(&synx_dev->error_lock);
  1221. }
  1222. int synx_util_save_data(void *fence, u32 flags,
  1223. u32 h_synx)
  1224. {
  1225. int rc = SYNX_SUCCESS;
  1226. struct synx_entry_64 *entry, *curr;
  1227. u64 key;
  1228. u32 tbl = synx_util_map_params_to_type(flags);
  1229. switch (tbl) {
  1230. case SYNX_TYPE_CSL:
  1231. key = *(u32 *)fence;
  1232. spin_lock_bh(&synx_dev->native->csl_map_lock);
  1233. /* ensure fence is not already added to map */
  1234. hash_for_each_possible(synx_dev->native->csl_fence_map,
  1235. curr, node, key) {
  1236. if (curr->key == key) {
  1237. rc = -SYNX_ALREADY;
  1238. break;
  1239. }
  1240. }
  1241. if (rc == SYNX_SUCCESS) {
  1242. entry = kzalloc(sizeof(*entry), GFP_ATOMIC);
  1243. if (entry) {
  1244. entry->data[0] = h_synx;
  1245. entry->key = key;
  1246. kref_init(&entry->refcount);
  1247. hash_add(synx_dev->native->csl_fence_map,
  1248. &entry->node, entry->key);
  1249. dprintk(SYNX_MEM, "added csl fence %d to map %pK\n",
  1250. entry->key, entry);
  1251. } else {
  1252. rc = -SYNX_NOMEM;
  1253. }
  1254. }
  1255. spin_unlock_bh(&synx_dev->native->csl_map_lock);
  1256. break;
  1257. default:
  1258. dprintk(SYNX_ERR, "invalid hash table selection\n");
  1259. kfree(entry);
  1260. rc = -SYNX_INVALID;
  1261. }
  1262. return rc;
  1263. }
  1264. struct synx_entry_64 *synx_util_retrieve_data(void *fence,
  1265. u32 type)
  1266. {
  1267. u64 key;
  1268. struct synx_entry_64 *entry = NULL;
  1269. struct synx_entry_64 *curr;
  1270. switch (type) {
  1271. case SYNX_TYPE_CSL:
  1272. key = *(u32 *)fence;
  1273. spin_lock_bh(&synx_dev->native->csl_map_lock);
  1274. hash_for_each_possible(synx_dev->native->csl_fence_map,
  1275. curr, node, key) {
  1276. if (curr->key == key) {
  1277. kref_get(&curr->refcount);
  1278. entry = curr;
  1279. break;
  1280. }
  1281. }
  1282. spin_unlock_bh(&synx_dev->native->csl_map_lock);
  1283. break;
  1284. default:
  1285. dprintk(SYNX_ERR, "invalid hash table selection %u\n",
  1286. type);
  1287. }
  1288. return entry;
  1289. }
  1290. static void synx_util_destroy_data(struct kref *kref)
  1291. {
  1292. struct synx_entry_64 *entry =
  1293. container_of(kref, struct synx_entry_64, refcount);
  1294. hash_del(&entry->node);
  1295. dprintk(SYNX_MEM, "released fence %llu entry %pK\n",
  1296. entry->key, entry);
  1297. kfree(entry);
  1298. }
  1299. void synx_util_remove_data(void *fence,
  1300. u32 type)
  1301. {
  1302. u64 key;
  1303. struct synx_entry_64 *entry = NULL;
  1304. struct synx_entry_64 *curr;
  1305. if (IS_ERR_OR_NULL(fence))
  1306. return;
  1307. switch (type) {
  1308. case SYNX_TYPE_CSL:
  1309. key = *((u32 *)fence);
  1310. spin_lock_bh(&synx_dev->native->csl_map_lock);
  1311. hash_for_each_possible(synx_dev->native->csl_fence_map,
  1312. curr, node, key) {
  1313. if (curr->key == key) {
  1314. entry = curr;
  1315. break;
  1316. }
  1317. }
  1318. if (entry)
  1319. kref_put(&entry->refcount, synx_util_destroy_data);
  1320. spin_unlock_bh(&synx_dev->native->csl_map_lock);
  1321. break;
  1322. default:
  1323. dprintk(SYNX_ERR, "invalid hash table selection %u\n",
  1324. type);
  1325. }
  1326. }
  1327. void synx_util_map_import_params_to_create(
  1328. struct synx_import_indv_params *params,
  1329. struct synx_create_params *c_params)
  1330. {
  1331. if (IS_ERR_OR_NULL(params) || IS_ERR_OR_NULL(c_params))
  1332. return;
  1333. if (params->flags & SYNX_IMPORT_GLOBAL_FENCE)
  1334. c_params->flags |= SYNX_CREATE_GLOBAL_FENCE;
  1335. if (params->flags & SYNX_IMPORT_LOCAL_FENCE)
  1336. c_params->flags |= SYNX_CREATE_LOCAL_FENCE;
  1337. if (params->flags & SYNX_IMPORT_DMA_FENCE)
  1338. c_params->flags |= SYNX_CREATE_DMA_FENCE;
  1339. }
  1340. u32 synx_util_map_client_id_to_core(
  1341. enum synx_client_id id)
  1342. {
  1343. u32 core_id;
  1344. switch (id) {
  1345. case SYNX_CLIENT_NATIVE:
  1346. core_id = SYNX_CORE_APSS; break;
  1347. case SYNX_CLIENT_ICP_CTX0:
  1348. core_id = SYNX_CORE_ICP; break;
  1349. case SYNX_CLIENT_EVA_CTX0:
  1350. core_id = SYNX_CORE_EVA; break;
  1351. case SYNX_CLIENT_VID_CTX0:
  1352. core_id = SYNX_CORE_IRIS; break;
  1353. case SYNX_CLIENT_NSP_CTX0:
  1354. core_id = SYNX_CORE_NSP; break;
  1355. default:
  1356. core_id = SYNX_CORE_MAX;
  1357. }
  1358. return core_id;
  1359. }