knav_qmss_queue.c 46 KB

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  1. // SPDX-License-Identifier: GPL-2.0-only
  2. /*
  3. * Keystone Queue Manager subsystem driver
  4. *
  5. * Copyright (C) 2014 Texas Instruments Incorporated - http://www.ti.com
  6. * Authors: Sandeep Nair <sandeep_n@ti.com>
  7. * Cyril Chemparathy <cyril@ti.com>
  8. * Santosh Shilimkar <santosh.shilimkar@ti.com>
  9. */
  10. #include <linux/debugfs.h>
  11. #include <linux/dma-mapping.h>
  12. #include <linux/firmware.h>
  13. #include <linux/interrupt.h>
  14. #include <linux/io.h>
  15. #include <linux/module.h>
  16. #include <linux/of.h>
  17. #include <linux/of_address.h>
  18. #include <linux/of_irq.h>
  19. #include <linux/platform_device.h>
  20. #include <linux/pm_runtime.h>
  21. #include <linux/property.h>
  22. #include <linux/slab.h>
  23. #include <linux/soc/ti/knav_qmss.h>
  24. #include "knav_qmss.h"
  25. static struct knav_device *kdev;
  26. static DEFINE_MUTEX(knav_dev_lock);
  27. #define knav_dev_lock_held() \
  28. lockdep_is_held(&knav_dev_lock)
  29. /* Queue manager register indices in DTS */
  30. #define KNAV_QUEUE_PEEK_REG_INDEX 0
  31. #define KNAV_QUEUE_STATUS_REG_INDEX 1
  32. #define KNAV_QUEUE_CONFIG_REG_INDEX 2
  33. #define KNAV_QUEUE_REGION_REG_INDEX 3
  34. #define KNAV_QUEUE_PUSH_REG_INDEX 4
  35. #define KNAV_QUEUE_POP_REG_INDEX 5
  36. /* Queue manager register indices in DTS for QMSS in K2G NAVSS.
  37. * There are no status and vbusm push registers on this version
  38. * of QMSS. Push registers are same as pop, So all indices above 1
  39. * are to be re-defined
  40. */
  41. #define KNAV_L_QUEUE_CONFIG_REG_INDEX 1
  42. #define KNAV_L_QUEUE_REGION_REG_INDEX 2
  43. #define KNAV_L_QUEUE_PUSH_REG_INDEX 3
  44. /* PDSP register indices in DTS */
  45. #define KNAV_QUEUE_PDSP_IRAM_REG_INDEX 0
  46. #define KNAV_QUEUE_PDSP_REGS_REG_INDEX 1
  47. #define KNAV_QUEUE_PDSP_INTD_REG_INDEX 2
  48. #define KNAV_QUEUE_PDSP_CMD_REG_INDEX 3
  49. #define knav_queue_idx_to_inst(kdev, idx) \
  50. (kdev->instances + (idx << kdev->inst_shift))
  51. #define for_each_handle_rcu(qh, inst) \
  52. list_for_each_entry_rcu(qh, &inst->handles, list, \
  53. knav_dev_lock_held())
  54. #define for_each_instance(idx, inst, kdev) \
  55. for (idx = 0, inst = kdev->instances; \
  56. idx < (kdev)->num_queues_in_use; \
  57. idx++, inst = knav_queue_idx_to_inst(kdev, idx))
  58. /* All firmware file names end up here. List the firmware file names below.
  59. * Newest followed by older ones. Search is done from start of the array
  60. * until a firmware file is found.
  61. */
  62. static const char * const knav_acc_firmwares[] = {"ks2_qmss_pdsp_acc48.bin"};
  63. static bool device_ready;
  64. bool knav_qmss_device_ready(void)
  65. {
  66. return device_ready;
  67. }
  68. EXPORT_SYMBOL_GPL(knav_qmss_device_ready);
  69. /**
  70. * knav_queue_notify: qmss queue notfier call
  71. *
  72. * @inst: - qmss queue instance like accumulator
  73. */
  74. void knav_queue_notify(struct knav_queue_inst *inst)
  75. {
  76. struct knav_queue *qh;
  77. if (!inst)
  78. return;
  79. rcu_read_lock();
  80. for_each_handle_rcu(qh, inst) {
  81. if (atomic_read(&qh->notifier_enabled) <= 0)
  82. continue;
  83. if (WARN_ON(!qh->notifier_fn))
  84. continue;
  85. this_cpu_inc(qh->stats->notifies);
  86. qh->notifier_fn(qh->notifier_fn_arg);
  87. }
  88. rcu_read_unlock();
  89. }
  90. EXPORT_SYMBOL_GPL(knav_queue_notify);
  91. static irqreturn_t knav_queue_int_handler(int irq, void *_instdata)
  92. {
  93. struct knav_queue_inst *inst = _instdata;
  94. knav_queue_notify(inst);
  95. return IRQ_HANDLED;
  96. }
  97. static int knav_queue_setup_irq(struct knav_range_info *range,
  98. struct knav_queue_inst *inst)
  99. {
  100. unsigned queue = inst->id - range->queue_base;
  101. int ret = 0, irq;
  102. if (range->flags & RANGE_HAS_IRQ) {
  103. irq = range->irqs[queue].irq;
  104. ret = request_irq(irq, knav_queue_int_handler, IRQF_NO_AUTOEN,
  105. inst->irq_name, inst);
  106. if (ret)
  107. return ret;
  108. if (range->irqs[queue].cpu_mask) {
  109. ret = irq_set_affinity_hint(irq, range->irqs[queue].cpu_mask);
  110. if (ret) {
  111. dev_warn(range->kdev->dev,
  112. "Failed to set IRQ affinity\n");
  113. return ret;
  114. }
  115. }
  116. }
  117. return ret;
  118. }
  119. static void knav_queue_free_irq(struct knav_queue_inst *inst)
  120. {
  121. struct knav_range_info *range = inst->range;
  122. unsigned queue = inst->id - inst->range->queue_base;
  123. int irq;
  124. if (range->flags & RANGE_HAS_IRQ) {
  125. irq = range->irqs[queue].irq;
  126. irq_set_affinity_hint(irq, NULL);
  127. free_irq(irq, inst);
  128. }
  129. }
  130. static inline bool knav_queue_is_busy(struct knav_queue_inst *inst)
  131. {
  132. return !list_empty(&inst->handles);
  133. }
  134. static inline bool knav_queue_is_reserved(struct knav_queue_inst *inst)
  135. {
  136. return inst->range->flags & RANGE_RESERVED;
  137. }
  138. static inline bool knav_queue_is_shared(struct knav_queue_inst *inst)
  139. {
  140. struct knav_queue *tmp;
  141. rcu_read_lock();
  142. for_each_handle_rcu(tmp, inst) {
  143. if (tmp->flags & KNAV_QUEUE_SHARED) {
  144. rcu_read_unlock();
  145. return true;
  146. }
  147. }
  148. rcu_read_unlock();
  149. return false;
  150. }
  151. static inline bool knav_queue_match_type(struct knav_queue_inst *inst,
  152. unsigned type)
  153. {
  154. if ((type == KNAV_QUEUE_QPEND) &&
  155. (inst->range->flags & RANGE_HAS_IRQ)) {
  156. return true;
  157. } else if ((type == KNAV_QUEUE_ACC) &&
  158. (inst->range->flags & RANGE_HAS_ACCUMULATOR)) {
  159. return true;
  160. } else if ((type == KNAV_QUEUE_GP) &&
  161. !(inst->range->flags &
  162. (RANGE_HAS_ACCUMULATOR | RANGE_HAS_IRQ))) {
  163. return true;
  164. }
  165. return false;
  166. }
  167. static inline struct knav_queue_inst *
  168. knav_queue_match_id_to_inst(struct knav_device *kdev, unsigned id)
  169. {
  170. struct knav_queue_inst *inst;
  171. int idx;
  172. for_each_instance(idx, inst, kdev) {
  173. if (inst->id == id)
  174. return inst;
  175. }
  176. return NULL;
  177. }
  178. static inline struct knav_queue_inst *knav_queue_find_by_id(int id)
  179. {
  180. if (kdev->base_id <= id &&
  181. kdev->base_id + kdev->num_queues > id) {
  182. id -= kdev->base_id;
  183. return knav_queue_match_id_to_inst(kdev, id);
  184. }
  185. return NULL;
  186. }
  187. static struct knav_queue *__knav_queue_open(struct knav_queue_inst *inst,
  188. const char *name, unsigned flags)
  189. {
  190. struct knav_queue *qh;
  191. unsigned id;
  192. int ret = 0;
  193. qh = devm_kzalloc(inst->kdev->dev, sizeof(*qh), GFP_KERNEL);
  194. if (!qh)
  195. return ERR_PTR(-ENOMEM);
  196. qh->stats = alloc_percpu(struct knav_queue_stats);
  197. if (!qh->stats) {
  198. ret = -ENOMEM;
  199. goto err;
  200. }
  201. qh->flags = flags;
  202. qh->inst = inst;
  203. id = inst->id - inst->qmgr->start_queue;
  204. qh->reg_push = &inst->qmgr->reg_push[id];
  205. qh->reg_pop = &inst->qmgr->reg_pop[id];
  206. qh->reg_peek = &inst->qmgr->reg_peek[id];
  207. /* first opener? */
  208. if (!knav_queue_is_busy(inst)) {
  209. struct knav_range_info *range = inst->range;
  210. inst->name = kstrndup(name, KNAV_NAME_SIZE - 1, GFP_KERNEL);
  211. if (range->ops && range->ops->open_queue)
  212. ret = range->ops->open_queue(range, inst, flags);
  213. if (ret)
  214. goto err;
  215. }
  216. list_add_tail_rcu(&qh->list, &inst->handles);
  217. return qh;
  218. err:
  219. free_percpu(qh->stats);
  220. devm_kfree(inst->kdev->dev, qh);
  221. return ERR_PTR(ret);
  222. }
  223. static struct knav_queue *
  224. knav_queue_open_by_id(const char *name, unsigned id, unsigned flags)
  225. {
  226. struct knav_queue_inst *inst;
  227. struct knav_queue *qh;
  228. mutex_lock(&knav_dev_lock);
  229. qh = ERR_PTR(-ENODEV);
  230. inst = knav_queue_find_by_id(id);
  231. if (!inst)
  232. goto unlock_ret;
  233. qh = ERR_PTR(-EEXIST);
  234. if (!(flags & KNAV_QUEUE_SHARED) && knav_queue_is_busy(inst))
  235. goto unlock_ret;
  236. qh = ERR_PTR(-EBUSY);
  237. if ((flags & KNAV_QUEUE_SHARED) &&
  238. (knav_queue_is_busy(inst) && !knav_queue_is_shared(inst)))
  239. goto unlock_ret;
  240. qh = __knav_queue_open(inst, name, flags);
  241. unlock_ret:
  242. mutex_unlock(&knav_dev_lock);
  243. return qh;
  244. }
  245. static struct knav_queue *knav_queue_open_by_type(const char *name,
  246. unsigned type, unsigned flags)
  247. {
  248. struct knav_queue_inst *inst;
  249. struct knav_queue *qh = ERR_PTR(-EINVAL);
  250. int idx;
  251. mutex_lock(&knav_dev_lock);
  252. for_each_instance(idx, inst, kdev) {
  253. if (knav_queue_is_reserved(inst))
  254. continue;
  255. if (!knav_queue_match_type(inst, type))
  256. continue;
  257. if (knav_queue_is_busy(inst))
  258. continue;
  259. qh = __knav_queue_open(inst, name, flags);
  260. goto unlock_ret;
  261. }
  262. unlock_ret:
  263. mutex_unlock(&knav_dev_lock);
  264. return qh;
  265. }
  266. static void knav_queue_set_notify(struct knav_queue_inst *inst, bool enabled)
  267. {
  268. struct knav_range_info *range = inst->range;
  269. if (range->ops && range->ops->set_notify)
  270. range->ops->set_notify(range, inst, enabled);
  271. }
  272. static int knav_queue_enable_notifier(struct knav_queue *qh)
  273. {
  274. struct knav_queue_inst *inst = qh->inst;
  275. bool first;
  276. if (WARN_ON(!qh->notifier_fn))
  277. return -EINVAL;
  278. /* Adjust the per handle notifier count */
  279. first = (atomic_inc_return(&qh->notifier_enabled) == 1);
  280. if (!first)
  281. return 0; /* nothing to do */
  282. /* Now adjust the per instance notifier count */
  283. first = (atomic_inc_return(&inst->num_notifiers) == 1);
  284. if (first)
  285. knav_queue_set_notify(inst, true);
  286. return 0;
  287. }
  288. static int knav_queue_disable_notifier(struct knav_queue *qh)
  289. {
  290. struct knav_queue_inst *inst = qh->inst;
  291. bool last;
  292. last = (atomic_dec_return(&qh->notifier_enabled) == 0);
  293. if (!last)
  294. return 0; /* nothing to do */
  295. last = (atomic_dec_return(&inst->num_notifiers) == 0);
  296. if (last)
  297. knav_queue_set_notify(inst, false);
  298. return 0;
  299. }
  300. static int knav_queue_set_notifier(struct knav_queue *qh,
  301. struct knav_queue_notify_config *cfg)
  302. {
  303. knav_queue_notify_fn old_fn = qh->notifier_fn;
  304. if (!cfg)
  305. return -EINVAL;
  306. if (!(qh->inst->range->flags & (RANGE_HAS_ACCUMULATOR | RANGE_HAS_IRQ)))
  307. return -ENOTSUPP;
  308. if (!cfg->fn && old_fn)
  309. knav_queue_disable_notifier(qh);
  310. qh->notifier_fn = cfg->fn;
  311. qh->notifier_fn_arg = cfg->fn_arg;
  312. if (cfg->fn && !old_fn)
  313. knav_queue_enable_notifier(qh);
  314. return 0;
  315. }
  316. static int knav_gp_set_notify(struct knav_range_info *range,
  317. struct knav_queue_inst *inst,
  318. bool enabled)
  319. {
  320. unsigned queue;
  321. if (range->flags & RANGE_HAS_IRQ) {
  322. queue = inst->id - range->queue_base;
  323. if (enabled)
  324. enable_irq(range->irqs[queue].irq);
  325. else
  326. disable_irq_nosync(range->irqs[queue].irq);
  327. }
  328. return 0;
  329. }
  330. static int knav_gp_open_queue(struct knav_range_info *range,
  331. struct knav_queue_inst *inst, unsigned flags)
  332. {
  333. return knav_queue_setup_irq(range, inst);
  334. }
  335. static int knav_gp_close_queue(struct knav_range_info *range,
  336. struct knav_queue_inst *inst)
  337. {
  338. knav_queue_free_irq(inst);
  339. return 0;
  340. }
  341. static const struct knav_range_ops knav_gp_range_ops = {
  342. .set_notify = knav_gp_set_notify,
  343. .open_queue = knav_gp_open_queue,
  344. .close_queue = knav_gp_close_queue,
  345. };
  346. static int knav_queue_get_count(void *qhandle)
  347. {
  348. struct knav_queue *qh = qhandle;
  349. struct knav_queue_inst *inst = qh->inst;
  350. return readl_relaxed(&qh->reg_peek[0].entry_count) +
  351. atomic_read(&inst->desc_count);
  352. }
  353. static void knav_queue_debug_show_instance(struct seq_file *s,
  354. struct knav_queue_inst *inst)
  355. {
  356. struct knav_device *kdev = inst->kdev;
  357. struct knav_queue *qh;
  358. int cpu = 0;
  359. int pushes = 0;
  360. int pops = 0;
  361. int push_errors = 0;
  362. int pop_errors = 0;
  363. int notifies = 0;
  364. if (!knav_queue_is_busy(inst))
  365. return;
  366. seq_printf(s, "\tqueue id %d (%s)\n",
  367. kdev->base_id + inst->id, inst->name);
  368. for_each_handle_rcu(qh, inst) {
  369. for_each_possible_cpu(cpu) {
  370. pushes += per_cpu_ptr(qh->stats, cpu)->pushes;
  371. pops += per_cpu_ptr(qh->stats, cpu)->pops;
  372. push_errors += per_cpu_ptr(qh->stats, cpu)->push_errors;
  373. pop_errors += per_cpu_ptr(qh->stats, cpu)->pop_errors;
  374. notifies += per_cpu_ptr(qh->stats, cpu)->notifies;
  375. }
  376. seq_printf(s, "\t\thandle %p: pushes %8d, pops %8d, count %8d, notifies %8d, push errors %8d, pop errors %8d\n",
  377. qh,
  378. pushes,
  379. pops,
  380. knav_queue_get_count(qh),
  381. notifies,
  382. push_errors,
  383. pop_errors);
  384. }
  385. }
  386. static int knav_queue_debug_show(struct seq_file *s, void *v)
  387. {
  388. struct knav_queue_inst *inst;
  389. int idx;
  390. mutex_lock(&knav_dev_lock);
  391. seq_printf(s, "%s: %u-%u\n",
  392. dev_name(kdev->dev), kdev->base_id,
  393. kdev->base_id + kdev->num_queues - 1);
  394. for_each_instance(idx, inst, kdev)
  395. knav_queue_debug_show_instance(s, inst);
  396. mutex_unlock(&knav_dev_lock);
  397. return 0;
  398. }
  399. DEFINE_SHOW_ATTRIBUTE(knav_queue_debug);
  400. static inline int knav_queue_pdsp_wait(u32 * __iomem addr, unsigned timeout,
  401. u32 flags)
  402. {
  403. unsigned long end;
  404. u32 val = 0;
  405. end = jiffies + msecs_to_jiffies(timeout);
  406. while (time_after(end, jiffies)) {
  407. val = readl_relaxed(addr);
  408. if (flags)
  409. val &= flags;
  410. if (!val)
  411. break;
  412. cpu_relax();
  413. }
  414. return val ? -ETIMEDOUT : 0;
  415. }
  416. static int knav_queue_flush(struct knav_queue *qh)
  417. {
  418. struct knav_queue_inst *inst = qh->inst;
  419. unsigned id = inst->id - inst->qmgr->start_queue;
  420. atomic_set(&inst->desc_count, 0);
  421. writel_relaxed(0, &inst->qmgr->reg_push[id].ptr_size_thresh);
  422. return 0;
  423. }
  424. /**
  425. * knav_queue_open() - open a hardware queue
  426. * @name: - name to give the queue handle
  427. * @id: - desired queue number if any or specifes the type
  428. * of queue
  429. * @flags: - the following flags are applicable to queues:
  430. * KNAV_QUEUE_SHARED - allow the queue to be shared. Queues are
  431. * exclusive by default.
  432. * Subsequent attempts to open a shared queue should
  433. * also have this flag.
  434. *
  435. * Returns a handle to the open hardware queue if successful. Use IS_ERR()
  436. * to check the returned value for error codes.
  437. */
  438. void *knav_queue_open(const char *name, unsigned id,
  439. unsigned flags)
  440. {
  441. struct knav_queue *qh = ERR_PTR(-EINVAL);
  442. switch (id) {
  443. case KNAV_QUEUE_QPEND:
  444. case KNAV_QUEUE_ACC:
  445. case KNAV_QUEUE_GP:
  446. qh = knav_queue_open_by_type(name, id, flags);
  447. break;
  448. default:
  449. qh = knav_queue_open_by_id(name, id, flags);
  450. break;
  451. }
  452. return qh;
  453. }
  454. EXPORT_SYMBOL_GPL(knav_queue_open);
  455. /**
  456. * knav_queue_close() - close a hardware queue handle
  457. * @qhandle: - handle to close
  458. */
  459. void knav_queue_close(void *qhandle)
  460. {
  461. struct knav_queue *qh = qhandle;
  462. struct knav_queue_inst *inst = qh->inst;
  463. while (atomic_read(&qh->notifier_enabled) > 0)
  464. knav_queue_disable_notifier(qh);
  465. mutex_lock(&knav_dev_lock);
  466. list_del_rcu(&qh->list);
  467. mutex_unlock(&knav_dev_lock);
  468. synchronize_rcu();
  469. if (!knav_queue_is_busy(inst)) {
  470. struct knav_range_info *range = inst->range;
  471. if (range->ops && range->ops->close_queue)
  472. range->ops->close_queue(range, inst);
  473. }
  474. free_percpu(qh->stats);
  475. devm_kfree(inst->kdev->dev, qh);
  476. }
  477. EXPORT_SYMBOL_GPL(knav_queue_close);
  478. /**
  479. * knav_queue_device_control() - Perform control operations on a queue
  480. * @qhandle: - queue handle
  481. * @cmd: - control commands
  482. * @arg: - command argument
  483. *
  484. * Returns 0 on success, errno otherwise.
  485. */
  486. int knav_queue_device_control(void *qhandle, enum knav_queue_ctrl_cmd cmd,
  487. unsigned long arg)
  488. {
  489. struct knav_queue *qh = qhandle;
  490. struct knav_queue_notify_config *cfg;
  491. int ret;
  492. switch ((int)cmd) {
  493. case KNAV_QUEUE_GET_ID:
  494. ret = qh->inst->kdev->base_id + qh->inst->id;
  495. break;
  496. case KNAV_QUEUE_FLUSH:
  497. ret = knav_queue_flush(qh);
  498. break;
  499. case KNAV_QUEUE_SET_NOTIFIER:
  500. cfg = (void *)arg;
  501. ret = knav_queue_set_notifier(qh, cfg);
  502. break;
  503. case KNAV_QUEUE_ENABLE_NOTIFY:
  504. ret = knav_queue_enable_notifier(qh);
  505. break;
  506. case KNAV_QUEUE_DISABLE_NOTIFY:
  507. ret = knav_queue_disable_notifier(qh);
  508. break;
  509. case KNAV_QUEUE_GET_COUNT:
  510. ret = knav_queue_get_count(qh);
  511. break;
  512. default:
  513. ret = -ENOTSUPP;
  514. break;
  515. }
  516. return ret;
  517. }
  518. EXPORT_SYMBOL_GPL(knav_queue_device_control);
  519. /**
  520. * knav_queue_push() - push data (or descriptor) to the tail of a queue
  521. * @qhandle: - hardware queue handle
  522. * @dma: - DMA data to push
  523. * @size: - size of data to push
  524. * @flags: - can be used to pass additional information
  525. *
  526. * Returns 0 on success, errno otherwise.
  527. */
  528. int knav_queue_push(void *qhandle, dma_addr_t dma,
  529. unsigned size, unsigned flags)
  530. {
  531. struct knav_queue *qh = qhandle;
  532. u32 val;
  533. val = (u32)dma | ((size / 16) - 1);
  534. writel_relaxed(val, &qh->reg_push[0].ptr_size_thresh);
  535. this_cpu_inc(qh->stats->pushes);
  536. return 0;
  537. }
  538. EXPORT_SYMBOL_GPL(knav_queue_push);
  539. /**
  540. * knav_queue_pop() - pop data (or descriptor) from the head of a queue
  541. * @qhandle: - hardware queue handle
  542. * @size: - (optional) size of the data pop'ed.
  543. *
  544. * Returns a DMA address on success, 0 on failure.
  545. */
  546. dma_addr_t knav_queue_pop(void *qhandle, unsigned *size)
  547. {
  548. struct knav_queue *qh = qhandle;
  549. struct knav_queue_inst *inst = qh->inst;
  550. dma_addr_t dma;
  551. u32 val, idx;
  552. /* are we accumulated? */
  553. if (inst->descs) {
  554. if (unlikely(atomic_dec_return(&inst->desc_count) < 0)) {
  555. atomic_inc(&inst->desc_count);
  556. return 0;
  557. }
  558. idx = atomic_inc_return(&inst->desc_head);
  559. idx &= ACC_DESCS_MASK;
  560. val = inst->descs[idx];
  561. } else {
  562. val = readl_relaxed(&qh->reg_pop[0].ptr_size_thresh);
  563. if (unlikely(!val))
  564. return 0;
  565. }
  566. dma = val & DESC_PTR_MASK;
  567. if (size)
  568. *size = ((val & DESC_SIZE_MASK) + 1) * 16;
  569. this_cpu_inc(qh->stats->pops);
  570. return dma;
  571. }
  572. EXPORT_SYMBOL_GPL(knav_queue_pop);
  573. /* carve out descriptors and push into queue */
  574. static void kdesc_fill_pool(struct knav_pool *pool)
  575. {
  576. struct knav_region *region;
  577. int i;
  578. region = pool->region;
  579. pool->desc_size = region->desc_size;
  580. for (i = 0; i < pool->num_desc; i++) {
  581. int index = pool->region_offset + i;
  582. dma_addr_t dma_addr;
  583. unsigned dma_size;
  584. dma_addr = region->dma_start + (region->desc_size * index);
  585. dma_size = ALIGN(pool->desc_size, SMP_CACHE_BYTES);
  586. dma_sync_single_for_device(pool->dev, dma_addr, dma_size,
  587. DMA_TO_DEVICE);
  588. knav_queue_push(pool->queue, dma_addr, dma_size, 0);
  589. }
  590. }
  591. /* pop out descriptors and close the queue */
  592. static void kdesc_empty_pool(struct knav_pool *pool)
  593. {
  594. dma_addr_t dma;
  595. unsigned size;
  596. void *desc;
  597. int i;
  598. if (!pool->queue)
  599. return;
  600. for (i = 0;; i++) {
  601. dma = knav_queue_pop(pool->queue, &size);
  602. if (!dma)
  603. break;
  604. desc = knav_pool_desc_dma_to_virt(pool, dma);
  605. if (!desc) {
  606. dev_dbg(pool->kdev->dev,
  607. "couldn't unmap desc, continuing\n");
  608. }
  609. }
  610. WARN_ON(i != pool->num_desc);
  611. knav_queue_close(pool->queue);
  612. }
  613. /* Get the DMA address of a descriptor */
  614. dma_addr_t knav_pool_desc_virt_to_dma(void *ph, void *virt)
  615. {
  616. struct knav_pool *pool = ph;
  617. return pool->region->dma_start + (virt - pool->region->virt_start);
  618. }
  619. EXPORT_SYMBOL_GPL(knav_pool_desc_virt_to_dma);
  620. void *knav_pool_desc_dma_to_virt(void *ph, dma_addr_t dma)
  621. {
  622. struct knav_pool *pool = ph;
  623. return pool->region->virt_start + (dma - pool->region->dma_start);
  624. }
  625. EXPORT_SYMBOL_GPL(knav_pool_desc_dma_to_virt);
  626. /**
  627. * knav_pool_create() - Create a pool of descriptors
  628. * @name: - name to give the pool handle
  629. * @num_desc: - numbers of descriptors in the pool
  630. * @region_id: - QMSS region id from which the descriptors are to be
  631. * allocated.
  632. *
  633. * Returns a pool handle on success.
  634. * Use IS_ERR_OR_NULL() to identify error values on return.
  635. */
  636. void *knav_pool_create(const char *name,
  637. int num_desc, int region_id)
  638. {
  639. struct knav_region *reg_itr, *region = NULL;
  640. struct knav_pool *pool, *pi = NULL, *iter;
  641. struct list_head *node;
  642. unsigned last_offset;
  643. int ret;
  644. if (!kdev)
  645. return ERR_PTR(-EPROBE_DEFER);
  646. if (!kdev->dev)
  647. return ERR_PTR(-ENODEV);
  648. pool = devm_kzalloc(kdev->dev, sizeof(*pool), GFP_KERNEL);
  649. if (!pool) {
  650. dev_err(kdev->dev, "out of memory allocating pool\n");
  651. return ERR_PTR(-ENOMEM);
  652. }
  653. for_each_region(kdev, reg_itr) {
  654. if (reg_itr->id != region_id)
  655. continue;
  656. region = reg_itr;
  657. break;
  658. }
  659. if (!region) {
  660. dev_err(kdev->dev, "region-id(%d) not found\n", region_id);
  661. ret = -EINVAL;
  662. goto err;
  663. }
  664. pool->queue = knav_queue_open(name, KNAV_QUEUE_GP, 0);
  665. if (IS_ERR(pool->queue)) {
  666. dev_err(kdev->dev,
  667. "failed to open queue for pool(%s), error %ld\n",
  668. name, PTR_ERR(pool->queue));
  669. ret = PTR_ERR(pool->queue);
  670. goto err;
  671. }
  672. pool->name = kstrndup(name, KNAV_NAME_SIZE - 1, GFP_KERNEL);
  673. pool->kdev = kdev;
  674. pool->dev = kdev->dev;
  675. mutex_lock(&knav_dev_lock);
  676. if (num_desc > (region->num_desc - region->used_desc)) {
  677. dev_err(kdev->dev, "out of descs in region(%d) for pool(%s)\n",
  678. region_id, name);
  679. ret = -ENOMEM;
  680. goto err_unlock;
  681. }
  682. /* Region maintains a sorted (by region offset) list of pools
  683. * use the first free slot which is large enough to accomodate
  684. * the request
  685. */
  686. last_offset = 0;
  687. node = &region->pools;
  688. list_for_each_entry(iter, &region->pools, region_inst) {
  689. if ((iter->region_offset - last_offset) >= num_desc) {
  690. pi = iter;
  691. break;
  692. }
  693. last_offset = iter->region_offset + iter->num_desc;
  694. }
  695. if (pi) {
  696. node = &pi->region_inst;
  697. pool->region = region;
  698. pool->num_desc = num_desc;
  699. pool->region_offset = last_offset;
  700. region->used_desc += num_desc;
  701. list_add_tail(&pool->list, &kdev->pools);
  702. list_add_tail(&pool->region_inst, node);
  703. } else {
  704. dev_err(kdev->dev, "pool(%s) create failed: fragmented desc pool in region(%d)\n",
  705. name, region_id);
  706. ret = -ENOMEM;
  707. goto err_unlock;
  708. }
  709. mutex_unlock(&knav_dev_lock);
  710. kdesc_fill_pool(pool);
  711. return pool;
  712. err_unlock:
  713. mutex_unlock(&knav_dev_lock);
  714. err:
  715. kfree(pool->name);
  716. devm_kfree(kdev->dev, pool);
  717. return ERR_PTR(ret);
  718. }
  719. EXPORT_SYMBOL_GPL(knav_pool_create);
  720. /**
  721. * knav_pool_destroy() - Free a pool of descriptors
  722. * @ph: - pool handle
  723. */
  724. void knav_pool_destroy(void *ph)
  725. {
  726. struct knav_pool *pool = ph;
  727. if (!pool)
  728. return;
  729. if (!pool->region)
  730. return;
  731. kdesc_empty_pool(pool);
  732. mutex_lock(&knav_dev_lock);
  733. pool->region->used_desc -= pool->num_desc;
  734. list_del(&pool->region_inst);
  735. list_del(&pool->list);
  736. mutex_unlock(&knav_dev_lock);
  737. kfree(pool->name);
  738. devm_kfree(kdev->dev, pool);
  739. }
  740. EXPORT_SYMBOL_GPL(knav_pool_destroy);
  741. /**
  742. * knav_pool_desc_get() - Get a descriptor from the pool
  743. * @ph: - pool handle
  744. *
  745. * Returns descriptor from the pool.
  746. */
  747. void *knav_pool_desc_get(void *ph)
  748. {
  749. struct knav_pool *pool = ph;
  750. dma_addr_t dma;
  751. unsigned size;
  752. void *data;
  753. dma = knav_queue_pop(pool->queue, &size);
  754. if (unlikely(!dma))
  755. return ERR_PTR(-ENOMEM);
  756. data = knav_pool_desc_dma_to_virt(pool, dma);
  757. return data;
  758. }
  759. EXPORT_SYMBOL_GPL(knav_pool_desc_get);
  760. /**
  761. * knav_pool_desc_put() - return a descriptor to the pool
  762. * @ph: - pool handle
  763. * @desc: - virtual address
  764. */
  765. void knav_pool_desc_put(void *ph, void *desc)
  766. {
  767. struct knav_pool *pool = ph;
  768. dma_addr_t dma;
  769. dma = knav_pool_desc_virt_to_dma(pool, desc);
  770. knav_queue_push(pool->queue, dma, pool->region->desc_size, 0);
  771. }
  772. EXPORT_SYMBOL_GPL(knav_pool_desc_put);
  773. /**
  774. * knav_pool_desc_map() - Map descriptor for DMA transfer
  775. * @ph: - pool handle
  776. * @desc: - address of descriptor to map
  777. * @size: - size of descriptor to map
  778. * @dma: - DMA address return pointer
  779. * @dma_sz: - adjusted return pointer
  780. *
  781. * Returns 0 on success, errno otherwise.
  782. */
  783. int knav_pool_desc_map(void *ph, void *desc, unsigned size,
  784. dma_addr_t *dma, unsigned *dma_sz)
  785. {
  786. struct knav_pool *pool = ph;
  787. *dma = knav_pool_desc_virt_to_dma(pool, desc);
  788. size = min(size, pool->region->desc_size);
  789. size = ALIGN(size, SMP_CACHE_BYTES);
  790. *dma_sz = size;
  791. dma_sync_single_for_device(pool->dev, *dma, size, DMA_TO_DEVICE);
  792. /* Ensure the descriptor reaches to the memory */
  793. __iowmb();
  794. return 0;
  795. }
  796. EXPORT_SYMBOL_GPL(knav_pool_desc_map);
  797. /**
  798. * knav_pool_desc_unmap() - Unmap descriptor after DMA transfer
  799. * @ph: - pool handle
  800. * @dma: - DMA address of descriptor to unmap
  801. * @dma_sz: - size of descriptor to unmap
  802. *
  803. * Returns descriptor address on success, Use IS_ERR_OR_NULL() to identify
  804. * error values on return.
  805. */
  806. void *knav_pool_desc_unmap(void *ph, dma_addr_t dma, unsigned dma_sz)
  807. {
  808. struct knav_pool *pool = ph;
  809. unsigned desc_sz;
  810. void *desc;
  811. desc_sz = min(dma_sz, pool->region->desc_size);
  812. desc = knav_pool_desc_dma_to_virt(pool, dma);
  813. dma_sync_single_for_cpu(pool->dev, dma, desc_sz, DMA_FROM_DEVICE);
  814. prefetch(desc);
  815. return desc;
  816. }
  817. EXPORT_SYMBOL_GPL(knav_pool_desc_unmap);
  818. /**
  819. * knav_pool_count() - Get the number of descriptors in pool.
  820. * @ph: - pool handle
  821. * Returns number of elements in the pool.
  822. */
  823. int knav_pool_count(void *ph)
  824. {
  825. struct knav_pool *pool = ph;
  826. return knav_queue_get_count(pool->queue);
  827. }
  828. EXPORT_SYMBOL_GPL(knav_pool_count);
  829. static void knav_queue_setup_region(struct knav_device *kdev,
  830. struct knav_region *region)
  831. {
  832. unsigned hw_num_desc, hw_desc_size, size;
  833. struct knav_reg_region __iomem *regs;
  834. struct knav_qmgr_info *qmgr;
  835. struct knav_pool *pool;
  836. int id = region->id;
  837. struct page *page;
  838. /* unused region? */
  839. if (!region->num_desc) {
  840. dev_warn(kdev->dev, "unused region %s\n", region->name);
  841. return;
  842. }
  843. /* get hardware descriptor value */
  844. hw_num_desc = ilog2(region->num_desc - 1) + 1;
  845. /* did we force fit ourselves into nothingness? */
  846. if (region->num_desc < 32) {
  847. region->num_desc = 0;
  848. dev_warn(kdev->dev, "too few descriptors in region %s\n",
  849. region->name);
  850. return;
  851. }
  852. size = region->num_desc * region->desc_size;
  853. region->virt_start = alloc_pages_exact(size, GFP_KERNEL | GFP_DMA |
  854. GFP_DMA32);
  855. if (!region->virt_start) {
  856. region->num_desc = 0;
  857. dev_err(kdev->dev, "memory alloc failed for region %s\n",
  858. region->name);
  859. return;
  860. }
  861. region->virt_end = region->virt_start + size;
  862. page = virt_to_page(region->virt_start);
  863. region->dma_start = dma_map_page(kdev->dev, page, 0, size,
  864. DMA_BIDIRECTIONAL);
  865. if (dma_mapping_error(kdev->dev, region->dma_start)) {
  866. dev_err(kdev->dev, "dma map failed for region %s\n",
  867. region->name);
  868. goto fail;
  869. }
  870. region->dma_end = region->dma_start + size;
  871. pool = devm_kzalloc(kdev->dev, sizeof(*pool), GFP_KERNEL);
  872. if (!pool) {
  873. dev_err(kdev->dev, "out of memory allocating dummy pool\n");
  874. goto fail;
  875. }
  876. pool->num_desc = 0;
  877. pool->region_offset = region->num_desc;
  878. list_add(&pool->region_inst, &region->pools);
  879. dev_dbg(kdev->dev,
  880. "region %s (%d): size:%d, link:%d@%d, dma:%pad-%pad, virt:%p-%p\n",
  881. region->name, id, region->desc_size, region->num_desc,
  882. region->link_index, &region->dma_start, &region->dma_end,
  883. region->virt_start, region->virt_end);
  884. hw_desc_size = (region->desc_size / 16) - 1;
  885. hw_num_desc -= 5;
  886. for_each_qmgr(kdev, qmgr) {
  887. regs = qmgr->reg_region + id;
  888. writel_relaxed((u32)region->dma_start, &regs->base);
  889. writel_relaxed(region->link_index, &regs->start_index);
  890. writel_relaxed(hw_desc_size << 16 | hw_num_desc,
  891. &regs->size_count);
  892. }
  893. return;
  894. fail:
  895. if (region->dma_start)
  896. dma_unmap_page(kdev->dev, region->dma_start, size,
  897. DMA_BIDIRECTIONAL);
  898. if (region->virt_start)
  899. free_pages_exact(region->virt_start, size);
  900. region->num_desc = 0;
  901. return;
  902. }
  903. static const char *knav_queue_find_name(struct device_node *node)
  904. {
  905. const char *name;
  906. if (of_property_read_string(node, "label", &name) < 0)
  907. name = node->name;
  908. if (!name)
  909. name = "unknown";
  910. return name;
  911. }
  912. static int knav_queue_setup_regions(struct knav_device *kdev,
  913. struct device_node *node)
  914. {
  915. struct device *dev = kdev->dev;
  916. struct device_node *regions __free(device_node) =
  917. of_get_child_by_name(node, "descriptor-regions");
  918. struct knav_region *region;
  919. u32 temp[2];
  920. int ret;
  921. if (!regions)
  922. return dev_err_probe(dev, -ENODEV,
  923. "descriptor-regions not specified\n");
  924. for_each_child_of_node_scoped(regions, child) {
  925. region = devm_kzalloc(dev, sizeof(*region), GFP_KERNEL);
  926. if (!region)
  927. return -ENOMEM;
  928. region->name = knav_queue_find_name(child);
  929. of_property_read_u32(child, "id", &region->id);
  930. ret = of_property_read_u32_array(child, "region-spec", temp, 2);
  931. if (!ret) {
  932. region->num_desc = temp[0];
  933. region->desc_size = temp[1];
  934. } else {
  935. dev_err(dev, "invalid region info %s\n", region->name);
  936. devm_kfree(dev, region);
  937. continue;
  938. }
  939. ret = of_property_read_u32(child, "link-index",
  940. &region->link_index);
  941. if (ret) {
  942. dev_err(dev, "link index not found for %s\n",
  943. region->name);
  944. devm_kfree(dev, region);
  945. continue;
  946. }
  947. INIT_LIST_HEAD(&region->pools);
  948. list_add_tail(&region->list, &kdev->regions);
  949. }
  950. if (list_empty(&kdev->regions))
  951. return dev_err_probe(dev, -ENODEV,
  952. "no valid region information found\n");
  953. /* Next, we run through the regions and set things up */
  954. for_each_region(kdev, region)
  955. knav_queue_setup_region(kdev, region);
  956. return 0;
  957. }
  958. static int knav_get_link_ram(struct knav_device *kdev,
  959. const char *name,
  960. struct knav_link_ram_block *block)
  961. {
  962. struct platform_device *pdev = to_platform_device(kdev->dev);
  963. struct device_node *node = pdev->dev.of_node;
  964. u32 temp[2];
  965. /*
  966. * Note: link ram resources are specified in "entry" sized units. In
  967. * reality, although entries are ~40bits in hardware, we treat them as
  968. * 64-bit entities here.
  969. *
  970. * For example, to specify the internal link ram for Keystone-I class
  971. * devices, we would set the linkram0 resource to 0x80000-0x83fff.
  972. *
  973. * This gets a bit weird when other link rams are used. For example,
  974. * if the range specified is 0x0c000000-0x0c003fff (i.e., 16K entries
  975. * in MSMC SRAM), the actual memory used is 0x0c000000-0x0c020000,
  976. * which accounts for 64-bits per entry, for 16K entries.
  977. */
  978. if (!of_property_read_u32_array(node, name , temp, 2)) {
  979. if (temp[0]) {
  980. /*
  981. * queue_base specified => using internal or onchip
  982. * link ram WARNING - we do not "reserve" this block
  983. */
  984. block->dma = (dma_addr_t)temp[0];
  985. block->virt = NULL;
  986. block->size = temp[1];
  987. } else {
  988. block->size = temp[1];
  989. /* queue_base not specific => allocate requested size */
  990. block->virt = dmam_alloc_coherent(kdev->dev,
  991. 8 * block->size, &block->dma,
  992. GFP_KERNEL);
  993. if (!block->virt) {
  994. dev_err(kdev->dev, "failed to alloc linkram\n");
  995. return -ENOMEM;
  996. }
  997. }
  998. } else {
  999. return -ENODEV;
  1000. }
  1001. return 0;
  1002. }
  1003. static int knav_queue_setup_link_ram(struct knav_device *kdev)
  1004. {
  1005. struct knav_link_ram_block *block;
  1006. struct knav_qmgr_info *qmgr;
  1007. for_each_qmgr(kdev, qmgr) {
  1008. block = &kdev->link_rams[0];
  1009. dev_dbg(kdev->dev, "linkram0: dma:%pad, virt:%p, size:%x\n",
  1010. &block->dma, block->virt, block->size);
  1011. writel_relaxed((u32)block->dma, &qmgr->reg_config->link_ram_base0);
  1012. if (kdev->version == QMSS_66AK2G)
  1013. writel_relaxed(block->size,
  1014. &qmgr->reg_config->link_ram_size0);
  1015. else
  1016. writel_relaxed(block->size - 1,
  1017. &qmgr->reg_config->link_ram_size0);
  1018. block++;
  1019. if (!block->size)
  1020. continue;
  1021. dev_dbg(kdev->dev, "linkram1: dma:%pad, virt:%p, size:%x\n",
  1022. &block->dma, block->virt, block->size);
  1023. writel_relaxed(block->dma, &qmgr->reg_config->link_ram_base1);
  1024. }
  1025. return 0;
  1026. }
  1027. static int knav_setup_queue_range(struct knav_device *kdev,
  1028. struct device_node *node)
  1029. {
  1030. struct device *dev = kdev->dev;
  1031. struct knav_range_info *range;
  1032. struct knav_qmgr_info *qmgr;
  1033. u32 temp[2], start, end, id, index;
  1034. int ret, i;
  1035. range = devm_kzalloc(dev, sizeof(*range), GFP_KERNEL);
  1036. if (!range) {
  1037. dev_err(dev, "out of memory allocating range\n");
  1038. return -ENOMEM;
  1039. }
  1040. range->kdev = kdev;
  1041. range->name = knav_queue_find_name(node);
  1042. ret = of_property_read_u32_array(node, "qrange", temp, 2);
  1043. if (!ret) {
  1044. range->queue_base = temp[0] - kdev->base_id;
  1045. range->num_queues = temp[1];
  1046. } else {
  1047. dev_err(dev, "invalid queue range %s\n", range->name);
  1048. devm_kfree(dev, range);
  1049. return -EINVAL;
  1050. }
  1051. for (i = 0; i < RANGE_MAX_IRQS; i++) {
  1052. struct of_phandle_args oirq;
  1053. if (of_irq_parse_one(node, i, &oirq))
  1054. break;
  1055. range->irqs[i].irq = irq_create_of_mapping(&oirq);
  1056. if (range->irqs[i].irq == IRQ_NONE)
  1057. break;
  1058. range->num_irqs++;
  1059. if (IS_ENABLED(CONFIG_SMP) && oirq.args_count == 3) {
  1060. unsigned long mask;
  1061. int bit;
  1062. range->irqs[i].cpu_mask = devm_kzalloc(dev,
  1063. cpumask_size(), GFP_KERNEL);
  1064. if (!range->irqs[i].cpu_mask)
  1065. return -ENOMEM;
  1066. mask = (oirq.args[2] & 0x0000ff00) >> 8;
  1067. for_each_set_bit(bit, &mask, BITS_PER_LONG)
  1068. cpumask_set_cpu(bit, range->irqs[i].cpu_mask);
  1069. }
  1070. }
  1071. range->num_irqs = min(range->num_irqs, range->num_queues);
  1072. if (range->num_irqs)
  1073. range->flags |= RANGE_HAS_IRQ;
  1074. if (of_property_read_bool(node, "qalloc-by-id"))
  1075. range->flags |= RANGE_RESERVED;
  1076. if (of_property_present(node, "accumulator")) {
  1077. ret = knav_init_acc_range(kdev, node, range);
  1078. if (ret < 0) {
  1079. devm_kfree(dev, range);
  1080. return ret;
  1081. }
  1082. } else {
  1083. range->ops = &knav_gp_range_ops;
  1084. }
  1085. /* set threshold to 1, and flush out the queues */
  1086. for_each_qmgr(kdev, qmgr) {
  1087. start = max(qmgr->start_queue, range->queue_base);
  1088. end = min(qmgr->start_queue + qmgr->num_queues,
  1089. range->queue_base + range->num_queues);
  1090. for (id = start; id < end; id++) {
  1091. index = id - qmgr->start_queue;
  1092. writel_relaxed(THRESH_GTE | 1,
  1093. &qmgr->reg_peek[index].ptr_size_thresh);
  1094. writel_relaxed(0,
  1095. &qmgr->reg_push[index].ptr_size_thresh);
  1096. }
  1097. }
  1098. list_add_tail(&range->list, &kdev->queue_ranges);
  1099. dev_dbg(dev, "added range %s: %d-%d, %d irqs%s%s%s\n",
  1100. range->name, range->queue_base,
  1101. range->queue_base + range->num_queues - 1,
  1102. range->num_irqs,
  1103. (range->flags & RANGE_HAS_IRQ) ? ", has irq" : "",
  1104. (range->flags & RANGE_RESERVED) ? ", reserved" : "",
  1105. (range->flags & RANGE_HAS_ACCUMULATOR) ? ", acc" : "");
  1106. kdev->num_queues_in_use += range->num_queues;
  1107. return 0;
  1108. }
  1109. static int knav_setup_queue_pools(struct knav_device *kdev,
  1110. struct device_node *node)
  1111. {
  1112. struct device_node *queue_pools __free(device_node) =
  1113. of_get_child_by_name(node, "queue-pools");
  1114. struct device_node *type, *range;
  1115. if (!queue_pools)
  1116. return dev_err_probe(kdev->dev, -ENODEV,
  1117. "queue-pools not specified\n");
  1118. for_each_child_of_node(queue_pools, type) {
  1119. for_each_child_of_node(type, range) {
  1120. /* return value ignored, we init the rest... */
  1121. knav_setup_queue_range(kdev, range);
  1122. }
  1123. }
  1124. /* ... and barf if they all failed! */
  1125. if (list_empty(&kdev->queue_ranges))
  1126. return dev_err_probe(kdev->dev, -ENODEV,
  1127. "no valid queue range found\n");
  1128. return 0;
  1129. }
  1130. static void knav_free_queue_range(struct knav_device *kdev,
  1131. struct knav_range_info *range)
  1132. {
  1133. if (range->ops && range->ops->free_range)
  1134. range->ops->free_range(range);
  1135. list_del(&range->list);
  1136. devm_kfree(kdev->dev, range);
  1137. }
  1138. static void knav_free_queue_ranges(struct knav_device *kdev)
  1139. {
  1140. struct knav_range_info *range;
  1141. for (;;) {
  1142. range = first_queue_range(kdev);
  1143. if (!range)
  1144. break;
  1145. knav_free_queue_range(kdev, range);
  1146. }
  1147. }
  1148. static void knav_queue_free_regions(struct knav_device *kdev)
  1149. {
  1150. struct knav_region *region;
  1151. struct knav_pool *pool, *tmp;
  1152. unsigned size;
  1153. for (;;) {
  1154. region = first_region(kdev);
  1155. if (!region)
  1156. break;
  1157. list_for_each_entry_safe(pool, tmp, &region->pools, region_inst)
  1158. knav_pool_destroy(pool);
  1159. size = region->virt_end - region->virt_start;
  1160. if (size)
  1161. free_pages_exact(region->virt_start, size);
  1162. list_del(&region->list);
  1163. devm_kfree(kdev->dev, region);
  1164. }
  1165. }
  1166. static void __iomem *knav_queue_map_reg(struct knav_device *kdev,
  1167. struct device_node *node, int index)
  1168. {
  1169. struct resource res;
  1170. void __iomem *regs;
  1171. int ret;
  1172. ret = of_address_to_resource(node, index, &res);
  1173. if (ret) {
  1174. dev_err(kdev->dev, "Can't translate of node(%pOFn) address for index(%d)\n",
  1175. node, index);
  1176. return ERR_PTR(ret);
  1177. }
  1178. regs = devm_ioremap_resource(kdev->dev, &res);
  1179. if (IS_ERR(regs))
  1180. dev_err(kdev->dev, "Failed to map register base for index(%d) node(%pOFn)\n",
  1181. index, node);
  1182. return regs;
  1183. }
  1184. static int knav_queue_init_qmgrs(struct knav_device *kdev,
  1185. struct device_node *node)
  1186. {
  1187. struct device *dev = kdev->dev;
  1188. struct device_node *qmgrs __free(device_node) =
  1189. of_get_child_by_name(node, "qmgrs");
  1190. struct knav_qmgr_info *qmgr;
  1191. u32 temp[2];
  1192. int ret;
  1193. if (!qmgrs)
  1194. return dev_err_probe(dev, -ENODEV,
  1195. "queue manager info not specified\n");
  1196. for_each_child_of_node_scoped(qmgrs, child) {
  1197. qmgr = devm_kzalloc(dev, sizeof(*qmgr), GFP_KERNEL);
  1198. if (!qmgr)
  1199. return -ENOMEM;
  1200. ret = of_property_read_u32_array(child, "managed-queues",
  1201. temp, 2);
  1202. if (!ret) {
  1203. qmgr->start_queue = temp[0];
  1204. qmgr->num_queues = temp[1];
  1205. } else {
  1206. dev_err(dev, "invalid qmgr queue range\n");
  1207. devm_kfree(dev, qmgr);
  1208. continue;
  1209. }
  1210. dev_info(dev, "qmgr start queue %d, number of queues %d\n",
  1211. qmgr->start_queue, qmgr->num_queues);
  1212. qmgr->reg_peek =
  1213. knav_queue_map_reg(kdev, child,
  1214. KNAV_QUEUE_PEEK_REG_INDEX);
  1215. if (kdev->version == QMSS) {
  1216. qmgr->reg_status =
  1217. knav_queue_map_reg(kdev, child,
  1218. KNAV_QUEUE_STATUS_REG_INDEX);
  1219. }
  1220. qmgr->reg_config =
  1221. knav_queue_map_reg(kdev, child,
  1222. (kdev->version == QMSS_66AK2G) ?
  1223. KNAV_L_QUEUE_CONFIG_REG_INDEX :
  1224. KNAV_QUEUE_CONFIG_REG_INDEX);
  1225. qmgr->reg_region =
  1226. knav_queue_map_reg(kdev, child,
  1227. (kdev->version == QMSS_66AK2G) ?
  1228. KNAV_L_QUEUE_REGION_REG_INDEX :
  1229. KNAV_QUEUE_REGION_REG_INDEX);
  1230. qmgr->reg_push =
  1231. knav_queue_map_reg(kdev, child,
  1232. (kdev->version == QMSS_66AK2G) ?
  1233. KNAV_L_QUEUE_PUSH_REG_INDEX :
  1234. KNAV_QUEUE_PUSH_REG_INDEX);
  1235. if (kdev->version == QMSS) {
  1236. qmgr->reg_pop =
  1237. knav_queue_map_reg(kdev, child,
  1238. KNAV_QUEUE_POP_REG_INDEX);
  1239. }
  1240. if (IS_ERR(qmgr->reg_peek) ||
  1241. ((kdev->version == QMSS) &&
  1242. (IS_ERR(qmgr->reg_status) || IS_ERR(qmgr->reg_pop))) ||
  1243. IS_ERR(qmgr->reg_config) || IS_ERR(qmgr->reg_region) ||
  1244. IS_ERR(qmgr->reg_push)) {
  1245. dev_err(dev, "failed to map qmgr regs\n");
  1246. if (kdev->version == QMSS) {
  1247. if (!IS_ERR(qmgr->reg_status))
  1248. devm_iounmap(dev, qmgr->reg_status);
  1249. if (!IS_ERR(qmgr->reg_pop))
  1250. devm_iounmap(dev, qmgr->reg_pop);
  1251. }
  1252. if (!IS_ERR(qmgr->reg_peek))
  1253. devm_iounmap(dev, qmgr->reg_peek);
  1254. if (!IS_ERR(qmgr->reg_config))
  1255. devm_iounmap(dev, qmgr->reg_config);
  1256. if (!IS_ERR(qmgr->reg_region))
  1257. devm_iounmap(dev, qmgr->reg_region);
  1258. if (!IS_ERR(qmgr->reg_push))
  1259. devm_iounmap(dev, qmgr->reg_push);
  1260. devm_kfree(dev, qmgr);
  1261. continue;
  1262. }
  1263. /* Use same push register for pop as well */
  1264. if (kdev->version == QMSS_66AK2G)
  1265. qmgr->reg_pop = qmgr->reg_push;
  1266. list_add_tail(&qmgr->list, &kdev->qmgrs);
  1267. dev_info(dev, "added qmgr start queue %d, num of queues %d, reg_peek %p, reg_status %p, reg_config %p, reg_region %p, reg_push %p, reg_pop %p\n",
  1268. qmgr->start_queue, qmgr->num_queues,
  1269. qmgr->reg_peek, qmgr->reg_status,
  1270. qmgr->reg_config, qmgr->reg_region,
  1271. qmgr->reg_push, qmgr->reg_pop);
  1272. }
  1273. return 0;
  1274. }
  1275. static int knav_queue_init_pdsps(struct knav_device *kdev,
  1276. struct device_node *pdsps)
  1277. {
  1278. struct device *dev = kdev->dev;
  1279. struct knav_pdsp_info *pdsp;
  1280. for_each_child_of_node_scoped(pdsps, child) {
  1281. pdsp = devm_kzalloc(dev, sizeof(*pdsp), GFP_KERNEL);
  1282. if (!pdsp)
  1283. return -ENOMEM;
  1284. pdsp->name = knav_queue_find_name(child);
  1285. pdsp->iram =
  1286. knav_queue_map_reg(kdev, child,
  1287. KNAV_QUEUE_PDSP_IRAM_REG_INDEX);
  1288. pdsp->regs =
  1289. knav_queue_map_reg(kdev, child,
  1290. KNAV_QUEUE_PDSP_REGS_REG_INDEX);
  1291. pdsp->intd =
  1292. knav_queue_map_reg(kdev, child,
  1293. KNAV_QUEUE_PDSP_INTD_REG_INDEX);
  1294. pdsp->command =
  1295. knav_queue_map_reg(kdev, child,
  1296. KNAV_QUEUE_PDSP_CMD_REG_INDEX);
  1297. if (IS_ERR(pdsp->command) || IS_ERR(pdsp->iram) ||
  1298. IS_ERR(pdsp->regs) || IS_ERR(pdsp->intd)) {
  1299. dev_err(dev, "failed to map pdsp %s regs\n",
  1300. pdsp->name);
  1301. if (!IS_ERR(pdsp->command))
  1302. devm_iounmap(dev, pdsp->command);
  1303. if (!IS_ERR(pdsp->iram))
  1304. devm_iounmap(dev, pdsp->iram);
  1305. if (!IS_ERR(pdsp->regs))
  1306. devm_iounmap(dev, pdsp->regs);
  1307. if (!IS_ERR(pdsp->intd))
  1308. devm_iounmap(dev, pdsp->intd);
  1309. devm_kfree(dev, pdsp);
  1310. continue;
  1311. }
  1312. of_property_read_u32(child, "id", &pdsp->id);
  1313. list_add_tail(&pdsp->list, &kdev->pdsps);
  1314. dev_dbg(dev, "added pdsp %s: command %p, iram %p, regs %p, intd %p\n",
  1315. pdsp->name, pdsp->command, pdsp->iram, pdsp->regs,
  1316. pdsp->intd);
  1317. }
  1318. return 0;
  1319. }
  1320. static int knav_queue_stop_pdsp(struct knav_device *kdev,
  1321. struct knav_pdsp_info *pdsp)
  1322. {
  1323. u32 val, timeout = 1000;
  1324. int ret;
  1325. val = readl_relaxed(&pdsp->regs->control) & ~PDSP_CTRL_ENABLE;
  1326. writel_relaxed(val, &pdsp->regs->control);
  1327. ret = knav_queue_pdsp_wait(&pdsp->regs->control, timeout,
  1328. PDSP_CTRL_RUNNING);
  1329. if (ret < 0) {
  1330. dev_err(kdev->dev, "timed out on pdsp %s stop\n", pdsp->name);
  1331. return ret;
  1332. }
  1333. pdsp->loaded = false;
  1334. pdsp->started = false;
  1335. return 0;
  1336. }
  1337. static int knav_queue_load_pdsp(struct knav_device *kdev,
  1338. struct knav_pdsp_info *pdsp)
  1339. {
  1340. int i, ret, fwlen;
  1341. const struct firmware *fw;
  1342. bool found = false;
  1343. u32 *fwdata;
  1344. for (i = 0; i < ARRAY_SIZE(knav_acc_firmwares); i++) {
  1345. if (knav_acc_firmwares[i]) {
  1346. ret = request_firmware_direct(&fw,
  1347. knav_acc_firmwares[i],
  1348. kdev->dev);
  1349. if (!ret) {
  1350. found = true;
  1351. break;
  1352. }
  1353. }
  1354. }
  1355. if (!found) {
  1356. dev_err(kdev->dev, "failed to get firmware for pdsp\n");
  1357. return -ENODEV;
  1358. }
  1359. dev_info(kdev->dev, "firmware file %s downloaded for PDSP\n",
  1360. knav_acc_firmwares[i]);
  1361. writel_relaxed(pdsp->id + 1, pdsp->command + 0x18);
  1362. /* download the firmware */
  1363. fwdata = (u32 *)fw->data;
  1364. fwlen = (fw->size + sizeof(u32) - 1) / sizeof(u32);
  1365. for (i = 0; i < fwlen; i++)
  1366. writel_relaxed(be32_to_cpu(fwdata[i]), pdsp->iram + i);
  1367. release_firmware(fw);
  1368. return 0;
  1369. }
  1370. static int knav_queue_start_pdsp(struct knav_device *kdev,
  1371. struct knav_pdsp_info *pdsp)
  1372. {
  1373. u32 val, timeout = 1000;
  1374. int ret;
  1375. /* write a command for sync */
  1376. writel_relaxed(0xffffffff, pdsp->command);
  1377. while (readl_relaxed(pdsp->command) != 0xffffffff)
  1378. cpu_relax();
  1379. /* soft reset the PDSP */
  1380. val = readl_relaxed(&pdsp->regs->control);
  1381. val &= ~(PDSP_CTRL_PC_MASK | PDSP_CTRL_SOFT_RESET);
  1382. writel_relaxed(val, &pdsp->regs->control);
  1383. /* enable pdsp */
  1384. val = readl_relaxed(&pdsp->regs->control) | PDSP_CTRL_ENABLE;
  1385. writel_relaxed(val, &pdsp->regs->control);
  1386. /* wait for command register to clear */
  1387. ret = knav_queue_pdsp_wait(pdsp->command, timeout, 0);
  1388. if (ret < 0) {
  1389. dev_err(kdev->dev,
  1390. "timed out on pdsp %s command register wait\n",
  1391. pdsp->name);
  1392. return ret;
  1393. }
  1394. return 0;
  1395. }
  1396. static void knav_queue_stop_pdsps(struct knav_device *kdev)
  1397. {
  1398. struct knav_pdsp_info *pdsp;
  1399. /* disable all pdsps */
  1400. for_each_pdsp(kdev, pdsp)
  1401. knav_queue_stop_pdsp(kdev, pdsp);
  1402. }
  1403. static int knav_queue_start_pdsps(struct knav_device *kdev)
  1404. {
  1405. struct knav_pdsp_info *pdsp;
  1406. int ret;
  1407. knav_queue_stop_pdsps(kdev);
  1408. /* now load them all. We return success even if pdsp
  1409. * is not loaded as acc channels are optional on having
  1410. * firmware availability in the system. We set the loaded
  1411. * and stated flag and when initialize the acc range, check
  1412. * it and init the range only if pdsp is started.
  1413. */
  1414. for_each_pdsp(kdev, pdsp) {
  1415. ret = knav_queue_load_pdsp(kdev, pdsp);
  1416. if (!ret)
  1417. pdsp->loaded = true;
  1418. }
  1419. for_each_pdsp(kdev, pdsp) {
  1420. if (pdsp->loaded) {
  1421. ret = knav_queue_start_pdsp(kdev, pdsp);
  1422. if (!ret)
  1423. pdsp->started = true;
  1424. }
  1425. }
  1426. return 0;
  1427. }
  1428. static int knav_queue_setup_pdsps(struct knav_device *kdev,
  1429. struct device_node *node)
  1430. {
  1431. struct device_node *pdsps __free(device_node) =
  1432. of_get_child_by_name(node, "pdsps");
  1433. if (pdsps) {
  1434. int ret;
  1435. ret = knav_queue_init_pdsps(kdev, pdsps);
  1436. if (ret)
  1437. return ret;
  1438. ret = knav_queue_start_pdsps(kdev);
  1439. if (ret)
  1440. return ret;
  1441. }
  1442. return 0;
  1443. }
  1444. static inline struct knav_qmgr_info *knav_find_qmgr(unsigned id)
  1445. {
  1446. struct knav_qmgr_info *qmgr;
  1447. for_each_qmgr(kdev, qmgr) {
  1448. if ((id >= qmgr->start_queue) &&
  1449. (id < qmgr->start_queue + qmgr->num_queues))
  1450. return qmgr;
  1451. }
  1452. return NULL;
  1453. }
  1454. static int knav_queue_init_queue(struct knav_device *kdev,
  1455. struct knav_range_info *range,
  1456. struct knav_queue_inst *inst,
  1457. unsigned id)
  1458. {
  1459. char irq_name[KNAV_NAME_SIZE];
  1460. inst->qmgr = knav_find_qmgr(id);
  1461. if (!inst->qmgr)
  1462. return -1;
  1463. INIT_LIST_HEAD(&inst->handles);
  1464. inst->kdev = kdev;
  1465. inst->range = range;
  1466. inst->irq_num = -1;
  1467. inst->id = id;
  1468. scnprintf(irq_name, sizeof(irq_name), "hwqueue-%d", id);
  1469. inst->irq_name = kstrndup(irq_name, sizeof(irq_name), GFP_KERNEL);
  1470. if (range->ops && range->ops->init_queue)
  1471. return range->ops->init_queue(range, inst);
  1472. else
  1473. return 0;
  1474. }
  1475. static int knav_queue_init_queues(struct knav_device *kdev)
  1476. {
  1477. struct knav_range_info *range;
  1478. int size, id, base_idx;
  1479. int idx = 0, ret = 0;
  1480. /* how much do we need for instance data? */
  1481. size = sizeof(struct knav_queue_inst);
  1482. /* round this up to a power of 2, keep the index to instance
  1483. * arithmetic fast.
  1484. * */
  1485. kdev->inst_shift = order_base_2(size);
  1486. size = (1 << kdev->inst_shift) * kdev->num_queues_in_use;
  1487. kdev->instances = devm_kzalloc(kdev->dev, size, GFP_KERNEL);
  1488. if (!kdev->instances)
  1489. return -ENOMEM;
  1490. for_each_queue_range(kdev, range) {
  1491. if (range->ops && range->ops->init_range)
  1492. range->ops->init_range(range);
  1493. base_idx = idx;
  1494. for (id = range->queue_base;
  1495. id < range->queue_base + range->num_queues; id++, idx++) {
  1496. ret = knav_queue_init_queue(kdev, range,
  1497. knav_queue_idx_to_inst(kdev, idx), id);
  1498. if (ret < 0)
  1499. return ret;
  1500. }
  1501. range->queue_base_inst =
  1502. knav_queue_idx_to_inst(kdev, base_idx);
  1503. }
  1504. return 0;
  1505. }
  1506. /* Match table for of_platform binding */
  1507. static const struct of_device_id keystone_qmss_of_match[] = {
  1508. {
  1509. .compatible = "ti,keystone-navigator-qmss",
  1510. },
  1511. {
  1512. .compatible = "ti,66ak2g-navss-qm",
  1513. .data = (void *)QMSS_66AK2G,
  1514. },
  1515. {},
  1516. };
  1517. MODULE_DEVICE_TABLE(of, keystone_qmss_of_match);
  1518. static int knav_queue_probe(struct platform_device *pdev)
  1519. {
  1520. struct device_node *node = pdev->dev.of_node;
  1521. struct device *dev = &pdev->dev;
  1522. u32 temp[2];
  1523. int ret;
  1524. if (!node) {
  1525. dev_err(dev, "device tree info unavailable\n");
  1526. return -ENODEV;
  1527. }
  1528. kdev = devm_kzalloc(dev, sizeof(struct knav_device), GFP_KERNEL);
  1529. if (!kdev) {
  1530. dev_err(dev, "memory allocation failed\n");
  1531. return -ENOMEM;
  1532. }
  1533. if (device_get_match_data(dev))
  1534. kdev->version = QMSS_66AK2G;
  1535. platform_set_drvdata(pdev, kdev);
  1536. kdev->dev = dev;
  1537. INIT_LIST_HEAD(&kdev->queue_ranges);
  1538. INIT_LIST_HEAD(&kdev->qmgrs);
  1539. INIT_LIST_HEAD(&kdev->pools);
  1540. INIT_LIST_HEAD(&kdev->regions);
  1541. INIT_LIST_HEAD(&kdev->pdsps);
  1542. pm_runtime_enable(&pdev->dev);
  1543. ret = pm_runtime_resume_and_get(&pdev->dev);
  1544. if (ret < 0) {
  1545. pm_runtime_disable(&pdev->dev);
  1546. dev_err(dev, "Failed to enable QMSS\n");
  1547. return ret;
  1548. }
  1549. if (of_property_read_u32_array(node, "queue-range", temp, 2)) {
  1550. dev_err(dev, "queue-range not specified\n");
  1551. ret = -ENODEV;
  1552. goto err;
  1553. }
  1554. kdev->base_id = temp[0];
  1555. kdev->num_queues = temp[1];
  1556. /* Initialize queue managers using device tree configuration */
  1557. ret = knav_queue_init_qmgrs(kdev, node);
  1558. if (ret)
  1559. goto err;
  1560. /* get pdsp configuration values from device tree */
  1561. ret = knav_queue_setup_pdsps(kdev, node);
  1562. if (ret)
  1563. goto err;
  1564. /* get usable queue range values from device tree */
  1565. ret = knav_setup_queue_pools(kdev, node);
  1566. if (ret)
  1567. goto err;
  1568. ret = knav_get_link_ram(kdev, "linkram0", &kdev->link_rams[0]);
  1569. if (ret) {
  1570. dev_err(kdev->dev, "could not setup linking ram\n");
  1571. goto err;
  1572. }
  1573. ret = knav_get_link_ram(kdev, "linkram1", &kdev->link_rams[1]);
  1574. if (ret) {
  1575. /*
  1576. * nothing really, we have one linking ram already, so we just
  1577. * live within our means
  1578. */
  1579. }
  1580. ret = knav_queue_setup_link_ram(kdev);
  1581. if (ret)
  1582. goto err;
  1583. ret = knav_queue_setup_regions(kdev, node);
  1584. if (ret)
  1585. goto err;
  1586. ret = knav_queue_init_queues(kdev);
  1587. if (ret < 0) {
  1588. dev_err(dev, "hwqueue initialization failed\n");
  1589. goto err;
  1590. }
  1591. debugfs_create_file("qmss", S_IFREG | S_IRUGO, NULL, NULL,
  1592. &knav_queue_debug_fops);
  1593. device_ready = true;
  1594. return 0;
  1595. err:
  1596. knav_queue_stop_pdsps(kdev);
  1597. knav_queue_free_regions(kdev);
  1598. knav_free_queue_ranges(kdev);
  1599. pm_runtime_put_sync(&pdev->dev);
  1600. pm_runtime_disable(&pdev->dev);
  1601. return ret;
  1602. }
  1603. static void knav_queue_remove(struct platform_device *pdev)
  1604. {
  1605. /* TODO: Free resources */
  1606. pm_runtime_put_sync(&pdev->dev);
  1607. pm_runtime_disable(&pdev->dev);
  1608. }
  1609. static struct platform_driver keystone_qmss_driver = {
  1610. .probe = knav_queue_probe,
  1611. .remove = knav_queue_remove,
  1612. .driver = {
  1613. .name = "keystone-navigator-qmss",
  1614. .of_match_table = keystone_qmss_of_match,
  1615. },
  1616. };
  1617. module_platform_driver(keystone_qmss_driver);
  1618. MODULE_LICENSE("GPL v2");
  1619. MODULE_DESCRIPTION("TI QMSS driver for Keystone SOCs");
  1620. MODULE_AUTHOR("Sandeep Nair <sandeep_n@ti.com>");
  1621. MODULE_AUTHOR("Santosh Shilimkar <santosh.shilimkar@ti.com>");