k3-ringacc.c 41 KB

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  1. // SPDX-License-Identifier: GPL-2.0
  2. /*
  3. * TI K3 NAVSS Ring Accelerator subsystem driver
  4. *
  5. * Copyright (C) 2019 Texas Instruments Incorporated - http://www.ti.com
  6. */
  7. #include <linux/dma-mapping.h>
  8. #include <linux/io.h>
  9. #include <linux/module.h>
  10. #include <linux/of.h>
  11. #include <linux/platform_device.h>
  12. #include <linux/sys_soc.h>
  13. #include <linux/dma/ti-cppi5.h>
  14. #include <linux/soc/ti/k3-ringacc.h>
  15. #include <linux/soc/ti/ti_sci_protocol.h>
  16. #include <linux/soc/ti/ti_sci_inta_msi.h>
  17. #include <linux/of_irq.h>
  18. #include <linux/irqdomain.h>
  19. static LIST_HEAD(k3_ringacc_list);
  20. static DEFINE_MUTEX(k3_ringacc_list_lock);
  21. #define K3_RINGACC_CFG_RING_SIZE_ELCNT_MASK GENMASK(19, 0)
  22. #define K3_DMARING_CFG_RING_SIZE_ELCNT_MASK GENMASK(15, 0)
  23. /**
  24. * struct k3_ring_rt_regs - The RA realtime Control/Status Registers region
  25. *
  26. * @resv_16: Reserved
  27. * @db: Ring Doorbell Register
  28. * @resv_4: Reserved
  29. * @occ: Ring Occupancy Register
  30. * @indx: Ring Current Index Register
  31. * @hwocc: Ring Hardware Occupancy Register
  32. * @hwindx: Ring Hardware Current Index Register
  33. */
  34. struct k3_ring_rt_regs {
  35. u32 resv_16[4];
  36. u32 db;
  37. u32 resv_4[1];
  38. u32 occ;
  39. u32 indx;
  40. u32 hwocc;
  41. u32 hwindx;
  42. };
  43. #define K3_RINGACC_RT_REGS_STEP 0x1000
  44. #define K3_DMARING_RT_REGS_STEP 0x2000
  45. #define K3_DMARING_RT_REGS_REVERSE_OFS 0x1000
  46. #define K3_RINGACC_RT_OCC_MASK GENMASK(20, 0)
  47. #define K3_DMARING_RT_OCC_TDOWN_COMPLETE BIT(31)
  48. #define K3_DMARING_RT_DB_ENTRY_MASK GENMASK(7, 0)
  49. #define K3_DMARING_RT_DB_TDOWN_ACK BIT(31)
  50. /**
  51. * struct k3_ring_fifo_regs - The Ring Accelerator Queues Registers region
  52. *
  53. * @head_data: Ring Head Entry Data Registers
  54. * @tail_data: Ring Tail Entry Data Registers
  55. * @peek_head_data: Ring Peek Head Entry Data Regs
  56. * @peek_tail_data: Ring Peek Tail Entry Data Regs
  57. */
  58. struct k3_ring_fifo_regs {
  59. u32 head_data[128];
  60. u32 tail_data[128];
  61. u32 peek_head_data[128];
  62. u32 peek_tail_data[128];
  63. };
  64. /**
  65. * struct k3_ringacc_proxy_gcfg_regs - RA Proxy Global Config MMIO Region
  66. *
  67. * @revision: Revision Register
  68. * @config: Config Register
  69. */
  70. struct k3_ringacc_proxy_gcfg_regs {
  71. u32 revision;
  72. u32 config;
  73. };
  74. #define K3_RINGACC_PROXY_CFG_THREADS_MASK GENMASK(15, 0)
  75. /**
  76. * struct k3_ringacc_proxy_target_regs - Proxy Datapath MMIO Region
  77. *
  78. * @control: Proxy Control Register
  79. * @status: Proxy Status Register
  80. * @resv_512: Reserved
  81. * @data: Proxy Data Register
  82. */
  83. struct k3_ringacc_proxy_target_regs {
  84. u32 control;
  85. u32 status;
  86. u8 resv_512[504];
  87. u32 data[128];
  88. };
  89. #define K3_RINGACC_PROXY_TARGET_STEP 0x1000
  90. #define K3_RINGACC_PROXY_NOT_USED (-1)
  91. enum k3_ringacc_proxy_access_mode {
  92. PROXY_ACCESS_MODE_HEAD = 0,
  93. PROXY_ACCESS_MODE_TAIL = 1,
  94. PROXY_ACCESS_MODE_PEEK_HEAD = 2,
  95. PROXY_ACCESS_MODE_PEEK_TAIL = 3,
  96. };
  97. #define K3_RINGACC_FIFO_WINDOW_SIZE_BYTES (512U)
  98. #define K3_RINGACC_FIFO_REGS_STEP 0x1000
  99. #define K3_RINGACC_MAX_DB_RING_CNT (127U)
  100. struct k3_ring_ops {
  101. int (*push_tail)(struct k3_ring *ring, void *elm);
  102. int (*push_head)(struct k3_ring *ring, void *elm);
  103. int (*pop_tail)(struct k3_ring *ring, void *elm);
  104. int (*pop_head)(struct k3_ring *ring, void *elm);
  105. };
  106. /**
  107. * struct k3_ring_state - Internal state tracking structure
  108. *
  109. * @free: Number of free entries
  110. * @occ: Occupancy
  111. * @windex: Write index
  112. * @rindex: Read index
  113. * @tdown_complete: Tear down complete state
  114. */
  115. struct k3_ring_state {
  116. u32 free;
  117. u32 occ;
  118. u32 windex;
  119. u32 rindex;
  120. u32 tdown_complete:1;
  121. };
  122. /**
  123. * struct k3_ring - RA Ring descriptor
  124. *
  125. * @rt: Ring control/status registers
  126. * @fifos: Ring queues registers
  127. * @proxy: Ring Proxy Datapath registers
  128. * @ring_mem_dma: Ring buffer dma address
  129. * @ring_mem_virt: Ring buffer virt address
  130. * @ops: Ring operations
  131. * @size: Ring size in elements
  132. * @elm_size: Size of the ring element
  133. * @mode: Ring mode
  134. * @flags: flags
  135. * @state: Ring state
  136. * @ring_id: Ring Id
  137. * @parent: Pointer on struct @k3_ringacc
  138. * @use_count: Use count for shared rings
  139. * @proxy_id: RA Ring Proxy Id (only if @K3_RINGACC_RING_USE_PROXY)
  140. * @dma_dev: device to be used for DMA API (allocation, mapping)
  141. * @asel: Address Space Select value for physical addresses
  142. */
  143. struct k3_ring {
  144. struct k3_ring_rt_regs __iomem *rt;
  145. struct k3_ring_fifo_regs __iomem *fifos;
  146. struct k3_ringacc_proxy_target_regs __iomem *proxy;
  147. dma_addr_t ring_mem_dma;
  148. void *ring_mem_virt;
  149. const struct k3_ring_ops *ops;
  150. u32 size;
  151. enum k3_ring_size elm_size;
  152. enum k3_ring_mode mode;
  153. u32 flags;
  154. #define K3_RING_FLAG_BUSY BIT(1)
  155. #define K3_RING_FLAG_SHARED BIT(2)
  156. #define K3_RING_FLAG_REVERSE BIT(3)
  157. struct k3_ring_state state;
  158. u32 ring_id;
  159. struct k3_ringacc *parent;
  160. u32 use_count;
  161. int proxy_id;
  162. struct device *dma_dev;
  163. u32 asel;
  164. #define K3_ADDRESS_ASEL_SHIFT 48
  165. };
  166. struct k3_ringacc_ops {
  167. int (*init)(struct platform_device *pdev, struct k3_ringacc *ringacc);
  168. };
  169. /**
  170. * struct k3_ringacc - Rings accelerator descriptor
  171. *
  172. * @dev: pointer on RA device
  173. * @proxy_gcfg: RA proxy global config registers
  174. * @proxy_target_base: RA proxy datapath region
  175. * @num_rings: number of ring in RA
  176. * @rings_inuse: bitfield for ring usage tracking
  177. * @rm_gp_range: general purpose rings range from tisci
  178. * @dma_ring_reset_quirk: DMA reset workaround enable
  179. * @num_proxies: number of RA proxies
  180. * @proxy_inuse: bitfield for proxy usage tracking
  181. * @rings: array of rings descriptors (struct @k3_ring)
  182. * @list: list of RAs in the system
  183. * @req_lock: protect rings allocation
  184. * @tisci: pointer ti-sci handle
  185. * @tisci_ring_ops: ti-sci rings ops
  186. * @tisci_dev_id: ti-sci device id
  187. * @ops: SoC specific ringacc operation
  188. * @dma_rings: indicate DMA ring (dual ring within BCDMA/PKTDMA)
  189. */
  190. struct k3_ringacc {
  191. struct device *dev;
  192. struct k3_ringacc_proxy_gcfg_regs __iomem *proxy_gcfg;
  193. void __iomem *proxy_target_base;
  194. u32 num_rings; /* number of rings in Ringacc module */
  195. unsigned long *rings_inuse;
  196. struct ti_sci_resource *rm_gp_range;
  197. bool dma_ring_reset_quirk;
  198. u32 num_proxies;
  199. unsigned long *proxy_inuse;
  200. struct k3_ring *rings;
  201. struct list_head list;
  202. struct mutex req_lock; /* protect rings allocation */
  203. const struct ti_sci_handle *tisci;
  204. const struct ti_sci_rm_ringacc_ops *tisci_ring_ops;
  205. u32 tisci_dev_id;
  206. const struct k3_ringacc_ops *ops;
  207. bool dma_rings;
  208. };
  209. /**
  210. * struct k3_ringacc_soc_data - Rings accelerator SoC data
  211. *
  212. * @dma_ring_reset_quirk: DMA reset workaround enable
  213. */
  214. struct k3_ringacc_soc_data {
  215. unsigned dma_ring_reset_quirk:1;
  216. };
  217. static int k3_ringacc_ring_read_occ(struct k3_ring *ring)
  218. {
  219. return readl(&ring->rt->occ) & K3_RINGACC_RT_OCC_MASK;
  220. }
  221. static void k3_ringacc_ring_update_occ(struct k3_ring *ring)
  222. {
  223. u32 val;
  224. val = readl(&ring->rt->occ);
  225. ring->state.occ = val & K3_RINGACC_RT_OCC_MASK;
  226. ring->state.tdown_complete = !!(val & K3_DMARING_RT_OCC_TDOWN_COMPLETE);
  227. }
  228. static long k3_ringacc_ring_get_fifo_pos(struct k3_ring *ring)
  229. {
  230. return K3_RINGACC_FIFO_WINDOW_SIZE_BYTES -
  231. (4 << ring->elm_size);
  232. }
  233. static void *k3_ringacc_get_elm_addr(struct k3_ring *ring, u32 idx)
  234. {
  235. return (ring->ring_mem_virt + idx * (4 << ring->elm_size));
  236. }
  237. static int k3_ringacc_ring_push_mem(struct k3_ring *ring, void *elem);
  238. static int k3_ringacc_ring_pop_mem(struct k3_ring *ring, void *elem);
  239. static int k3_dmaring_fwd_pop(struct k3_ring *ring, void *elem);
  240. static int k3_dmaring_reverse_pop(struct k3_ring *ring, void *elem);
  241. static const struct k3_ring_ops k3_ring_mode_ring_ops = {
  242. .push_tail = k3_ringacc_ring_push_mem,
  243. .pop_head = k3_ringacc_ring_pop_mem,
  244. };
  245. static const struct k3_ring_ops k3_dmaring_fwd_ops = {
  246. .push_tail = k3_ringacc_ring_push_mem,
  247. .pop_head = k3_dmaring_fwd_pop,
  248. };
  249. static const struct k3_ring_ops k3_dmaring_reverse_ops = {
  250. /* Reverse side of the DMA ring can only be popped by SW */
  251. .pop_head = k3_dmaring_reverse_pop,
  252. };
  253. static int k3_ringacc_ring_push_io(struct k3_ring *ring, void *elem);
  254. static int k3_ringacc_ring_pop_io(struct k3_ring *ring, void *elem);
  255. static int k3_ringacc_ring_push_head_io(struct k3_ring *ring, void *elem);
  256. static int k3_ringacc_ring_pop_tail_io(struct k3_ring *ring, void *elem);
  257. static const struct k3_ring_ops k3_ring_mode_msg_ops = {
  258. .push_tail = k3_ringacc_ring_push_io,
  259. .push_head = k3_ringacc_ring_push_head_io,
  260. .pop_tail = k3_ringacc_ring_pop_tail_io,
  261. .pop_head = k3_ringacc_ring_pop_io,
  262. };
  263. static int k3_ringacc_ring_push_head_proxy(struct k3_ring *ring, void *elem);
  264. static int k3_ringacc_ring_push_tail_proxy(struct k3_ring *ring, void *elem);
  265. static int k3_ringacc_ring_pop_head_proxy(struct k3_ring *ring, void *elem);
  266. static int k3_ringacc_ring_pop_tail_proxy(struct k3_ring *ring, void *elem);
  267. static const struct k3_ring_ops k3_ring_mode_proxy_ops = {
  268. .push_tail = k3_ringacc_ring_push_tail_proxy,
  269. .push_head = k3_ringacc_ring_push_head_proxy,
  270. .pop_tail = k3_ringacc_ring_pop_tail_proxy,
  271. .pop_head = k3_ringacc_ring_pop_head_proxy,
  272. };
  273. static void k3_ringacc_ring_dump(struct k3_ring *ring)
  274. {
  275. struct device *dev = ring->parent->dev;
  276. dev_dbg(dev, "dump ring: %d\n", ring->ring_id);
  277. dev_dbg(dev, "dump mem virt %p, dma %pad\n", ring->ring_mem_virt,
  278. &ring->ring_mem_dma);
  279. dev_dbg(dev, "dump elmsize %d, size %d, mode %d, proxy_id %d\n",
  280. ring->elm_size, ring->size, ring->mode, ring->proxy_id);
  281. dev_dbg(dev, "dump flags %08X\n", ring->flags);
  282. dev_dbg(dev, "dump ring_rt_regs: db%08x\n", readl(&ring->rt->db));
  283. dev_dbg(dev, "dump occ%08x\n", readl(&ring->rt->occ));
  284. dev_dbg(dev, "dump indx%08x\n", readl(&ring->rt->indx));
  285. dev_dbg(dev, "dump hwocc%08x\n", readl(&ring->rt->hwocc));
  286. dev_dbg(dev, "dump hwindx%08x\n", readl(&ring->rt->hwindx));
  287. if (ring->ring_mem_virt)
  288. print_hex_dump_debug("dump ring_mem_virt ", DUMP_PREFIX_NONE,
  289. 16, 1, ring->ring_mem_virt, 16 * 8, false);
  290. }
  291. struct k3_ring *k3_ringacc_request_ring(struct k3_ringacc *ringacc,
  292. int id, u32 flags)
  293. {
  294. int proxy_id = K3_RINGACC_PROXY_NOT_USED;
  295. mutex_lock(&ringacc->req_lock);
  296. if (!try_module_get(ringacc->dev->driver->owner))
  297. goto err_module_get;
  298. if (id == K3_RINGACC_RING_ID_ANY) {
  299. /* Request for any general purpose ring */
  300. struct ti_sci_resource_desc *gp_rings =
  301. &ringacc->rm_gp_range->desc[0];
  302. unsigned long size;
  303. size = gp_rings->start + gp_rings->num;
  304. id = find_next_zero_bit(ringacc->rings_inuse, size,
  305. gp_rings->start);
  306. if (id == size)
  307. goto error;
  308. } else if (id < 0) {
  309. goto error;
  310. }
  311. if (test_bit(id, ringacc->rings_inuse) &&
  312. !(ringacc->rings[id].flags & K3_RING_FLAG_SHARED))
  313. goto error;
  314. else if (ringacc->rings[id].flags & K3_RING_FLAG_SHARED)
  315. goto out;
  316. if (flags & K3_RINGACC_RING_USE_PROXY) {
  317. proxy_id = find_first_zero_bit(ringacc->proxy_inuse,
  318. ringacc->num_proxies);
  319. if (proxy_id == ringacc->num_proxies)
  320. goto error;
  321. }
  322. if (proxy_id != K3_RINGACC_PROXY_NOT_USED) {
  323. set_bit(proxy_id, ringacc->proxy_inuse);
  324. ringacc->rings[id].proxy_id = proxy_id;
  325. dev_dbg(ringacc->dev, "Giving ring#%d proxy#%d\n", id,
  326. proxy_id);
  327. } else {
  328. dev_dbg(ringacc->dev, "Giving ring#%d\n", id);
  329. }
  330. set_bit(id, ringacc->rings_inuse);
  331. out:
  332. ringacc->rings[id].use_count++;
  333. mutex_unlock(&ringacc->req_lock);
  334. return &ringacc->rings[id];
  335. error:
  336. module_put(ringacc->dev->driver->owner);
  337. err_module_get:
  338. mutex_unlock(&ringacc->req_lock);
  339. return NULL;
  340. }
  341. EXPORT_SYMBOL_GPL(k3_ringacc_request_ring);
  342. static int k3_dmaring_request_dual_ring(struct k3_ringacc *ringacc, int fwd_id,
  343. struct k3_ring **fwd_ring,
  344. struct k3_ring **compl_ring)
  345. {
  346. int ret = 0;
  347. /*
  348. * DMA rings must be requested by ID, completion ring is the reverse
  349. * side of the forward ring
  350. */
  351. if (fwd_id < 0)
  352. return -EINVAL;
  353. mutex_lock(&ringacc->req_lock);
  354. if (!try_module_get(ringacc->dev->driver->owner)) {
  355. ret = -EINVAL;
  356. goto err_module_get;
  357. }
  358. if (test_bit(fwd_id, ringacc->rings_inuse)) {
  359. ret = -EBUSY;
  360. goto error;
  361. }
  362. *fwd_ring = &ringacc->rings[fwd_id];
  363. *compl_ring = &ringacc->rings[fwd_id + ringacc->num_rings];
  364. set_bit(fwd_id, ringacc->rings_inuse);
  365. ringacc->rings[fwd_id].use_count++;
  366. dev_dbg(ringacc->dev, "Giving ring#%d\n", fwd_id);
  367. mutex_unlock(&ringacc->req_lock);
  368. return 0;
  369. error:
  370. module_put(ringacc->dev->driver->owner);
  371. err_module_get:
  372. mutex_unlock(&ringacc->req_lock);
  373. return ret;
  374. }
  375. int k3_ringacc_request_rings_pair(struct k3_ringacc *ringacc,
  376. int fwd_id, int compl_id,
  377. struct k3_ring **fwd_ring,
  378. struct k3_ring **compl_ring)
  379. {
  380. int ret = 0;
  381. if (!fwd_ring || !compl_ring)
  382. return -EINVAL;
  383. if (ringacc->dma_rings)
  384. return k3_dmaring_request_dual_ring(ringacc, fwd_id,
  385. fwd_ring, compl_ring);
  386. *fwd_ring = k3_ringacc_request_ring(ringacc, fwd_id, 0);
  387. if (!(*fwd_ring))
  388. return -ENODEV;
  389. *compl_ring = k3_ringacc_request_ring(ringacc, compl_id, 0);
  390. if (!(*compl_ring)) {
  391. k3_ringacc_ring_free(*fwd_ring);
  392. ret = -ENODEV;
  393. }
  394. return ret;
  395. }
  396. EXPORT_SYMBOL_GPL(k3_ringacc_request_rings_pair);
  397. static void k3_ringacc_ring_reset_sci(struct k3_ring *ring)
  398. {
  399. struct ti_sci_msg_rm_ring_cfg ring_cfg = { 0 };
  400. struct k3_ringacc *ringacc = ring->parent;
  401. int ret;
  402. ring_cfg.nav_id = ringacc->tisci_dev_id;
  403. ring_cfg.index = ring->ring_id;
  404. ring_cfg.valid_params = TI_SCI_MSG_VALUE_RM_RING_COUNT_VALID;
  405. ring_cfg.count = ring->size;
  406. ret = ringacc->tisci_ring_ops->set_cfg(ringacc->tisci, &ring_cfg);
  407. if (ret)
  408. dev_err(ringacc->dev, "TISCI reset ring fail (%d) ring_idx %d\n",
  409. ret, ring->ring_id);
  410. }
  411. void k3_ringacc_ring_reset(struct k3_ring *ring)
  412. {
  413. if (!ring || !(ring->flags & K3_RING_FLAG_BUSY))
  414. return;
  415. memset(&ring->state, 0, sizeof(ring->state));
  416. k3_ringacc_ring_reset_sci(ring);
  417. }
  418. EXPORT_SYMBOL_GPL(k3_ringacc_ring_reset);
  419. static void k3_ringacc_ring_reconfig_qmode_sci(struct k3_ring *ring,
  420. enum k3_ring_mode mode)
  421. {
  422. struct ti_sci_msg_rm_ring_cfg ring_cfg = { 0 };
  423. struct k3_ringacc *ringacc = ring->parent;
  424. int ret;
  425. ring_cfg.nav_id = ringacc->tisci_dev_id;
  426. ring_cfg.index = ring->ring_id;
  427. ring_cfg.valid_params = TI_SCI_MSG_VALUE_RM_RING_MODE_VALID;
  428. ring_cfg.mode = mode;
  429. ret = ringacc->tisci_ring_ops->set_cfg(ringacc->tisci, &ring_cfg);
  430. if (ret)
  431. dev_err(ringacc->dev, "TISCI reconf qmode fail (%d) ring_idx %d\n",
  432. ret, ring->ring_id);
  433. }
  434. void k3_ringacc_ring_reset_dma(struct k3_ring *ring, u32 occ)
  435. {
  436. if (!ring || !(ring->flags & K3_RING_FLAG_BUSY))
  437. return;
  438. if (!ring->parent->dma_ring_reset_quirk)
  439. goto reset;
  440. if (!occ)
  441. occ = k3_ringacc_ring_read_occ(ring);
  442. if (occ) {
  443. u32 db_ring_cnt, db_ring_cnt_cur;
  444. dev_dbg(ring->parent->dev, "%s %u occ: %u\n", __func__,
  445. ring->ring_id, occ);
  446. /* TI-SCI ring reset */
  447. k3_ringacc_ring_reset_sci(ring);
  448. /*
  449. * Setup the ring in ring/doorbell mode (if not already in this
  450. * mode)
  451. */
  452. if (ring->mode != K3_RINGACC_RING_MODE_RING)
  453. k3_ringacc_ring_reconfig_qmode_sci(
  454. ring, K3_RINGACC_RING_MODE_RING);
  455. /*
  456. * Ring the doorbell 2**22 – ringOcc times.
  457. * This will wrap the internal UDMAP ring state occupancy
  458. * counter (which is 21-bits wide) to 0.
  459. */
  460. db_ring_cnt = (1U << 22) - occ;
  461. while (db_ring_cnt != 0) {
  462. /*
  463. * Ring the doorbell with the maximum count each
  464. * iteration if possible to minimize the total
  465. * of writes
  466. */
  467. if (db_ring_cnt > K3_RINGACC_MAX_DB_RING_CNT)
  468. db_ring_cnt_cur = K3_RINGACC_MAX_DB_RING_CNT;
  469. else
  470. db_ring_cnt_cur = db_ring_cnt;
  471. writel(db_ring_cnt_cur, &ring->rt->db);
  472. db_ring_cnt -= db_ring_cnt_cur;
  473. }
  474. /* Restore the original ring mode (if not ring mode) */
  475. if (ring->mode != K3_RINGACC_RING_MODE_RING)
  476. k3_ringacc_ring_reconfig_qmode_sci(ring, ring->mode);
  477. }
  478. reset:
  479. /* Reset the ring */
  480. k3_ringacc_ring_reset(ring);
  481. }
  482. EXPORT_SYMBOL_GPL(k3_ringacc_ring_reset_dma);
  483. static void k3_ringacc_ring_free_sci(struct k3_ring *ring)
  484. {
  485. struct ti_sci_msg_rm_ring_cfg ring_cfg = { 0 };
  486. struct k3_ringacc *ringacc = ring->parent;
  487. int ret;
  488. ring_cfg.nav_id = ringacc->tisci_dev_id;
  489. ring_cfg.index = ring->ring_id;
  490. ring_cfg.valid_params = TI_SCI_MSG_VALUE_RM_ALL_NO_ORDER;
  491. ret = ringacc->tisci_ring_ops->set_cfg(ringacc->tisci, &ring_cfg);
  492. if (ret)
  493. dev_err(ringacc->dev, "TISCI ring free fail (%d) ring_idx %d\n",
  494. ret, ring->ring_id);
  495. }
  496. int k3_ringacc_ring_free(struct k3_ring *ring)
  497. {
  498. struct k3_ringacc *ringacc;
  499. if (!ring)
  500. return -EINVAL;
  501. ringacc = ring->parent;
  502. /*
  503. * DMA rings: rings shared memory and configuration, only forward ring
  504. * is configured and reverse ring considered as slave.
  505. */
  506. if (ringacc->dma_rings && (ring->flags & K3_RING_FLAG_REVERSE))
  507. return 0;
  508. dev_dbg(ring->parent->dev, "flags: 0x%08x\n", ring->flags);
  509. if (!test_bit(ring->ring_id, ringacc->rings_inuse))
  510. return -EINVAL;
  511. mutex_lock(&ringacc->req_lock);
  512. if (--ring->use_count)
  513. goto out;
  514. if (!(ring->flags & K3_RING_FLAG_BUSY))
  515. goto no_init;
  516. k3_ringacc_ring_free_sci(ring);
  517. dma_free_coherent(ring->dma_dev,
  518. ring->size * (4 << ring->elm_size),
  519. ring->ring_mem_virt, ring->ring_mem_dma);
  520. ring->flags = 0;
  521. ring->ops = NULL;
  522. ring->dma_dev = NULL;
  523. ring->asel = 0;
  524. if (ring->proxy_id != K3_RINGACC_PROXY_NOT_USED) {
  525. clear_bit(ring->proxy_id, ringacc->proxy_inuse);
  526. ring->proxy = NULL;
  527. ring->proxy_id = K3_RINGACC_PROXY_NOT_USED;
  528. }
  529. no_init:
  530. clear_bit(ring->ring_id, ringacc->rings_inuse);
  531. module_put(ringacc->dev->driver->owner);
  532. out:
  533. mutex_unlock(&ringacc->req_lock);
  534. return 0;
  535. }
  536. EXPORT_SYMBOL_GPL(k3_ringacc_ring_free);
  537. u32 k3_ringacc_get_ring_id(struct k3_ring *ring)
  538. {
  539. if (!ring)
  540. return -EINVAL;
  541. return ring->ring_id;
  542. }
  543. EXPORT_SYMBOL_GPL(k3_ringacc_get_ring_id);
  544. u32 k3_ringacc_get_tisci_dev_id(struct k3_ring *ring)
  545. {
  546. if (!ring)
  547. return -EINVAL;
  548. return ring->parent->tisci_dev_id;
  549. }
  550. EXPORT_SYMBOL_GPL(k3_ringacc_get_tisci_dev_id);
  551. int k3_ringacc_get_ring_irq_num(struct k3_ring *ring)
  552. {
  553. int irq_num;
  554. if (!ring)
  555. return -EINVAL;
  556. irq_num = msi_get_virq(ring->parent->dev, ring->ring_id);
  557. if (irq_num <= 0)
  558. irq_num = -EINVAL;
  559. return irq_num;
  560. }
  561. EXPORT_SYMBOL_GPL(k3_ringacc_get_ring_irq_num);
  562. static int k3_ringacc_ring_cfg_sci(struct k3_ring *ring)
  563. {
  564. struct ti_sci_msg_rm_ring_cfg ring_cfg = { 0 };
  565. struct k3_ringacc *ringacc = ring->parent;
  566. int ret;
  567. if (!ringacc->tisci)
  568. return -EINVAL;
  569. ring_cfg.nav_id = ringacc->tisci_dev_id;
  570. ring_cfg.index = ring->ring_id;
  571. ring_cfg.valid_params = TI_SCI_MSG_VALUE_RM_ALL_NO_ORDER;
  572. ring_cfg.addr_lo = lower_32_bits(ring->ring_mem_dma);
  573. ring_cfg.addr_hi = upper_32_bits(ring->ring_mem_dma);
  574. ring_cfg.count = ring->size;
  575. ring_cfg.mode = ring->mode;
  576. ring_cfg.size = ring->elm_size;
  577. ring_cfg.asel = ring->asel;
  578. ret = ringacc->tisci_ring_ops->set_cfg(ringacc->tisci, &ring_cfg);
  579. if (ret)
  580. dev_err(ringacc->dev, "TISCI config ring fail (%d) ring_idx %d\n",
  581. ret, ring->ring_id);
  582. return ret;
  583. }
  584. static int k3_dmaring_cfg(struct k3_ring *ring, struct k3_ring_cfg *cfg)
  585. {
  586. struct k3_ringacc *ringacc;
  587. struct k3_ring *reverse_ring;
  588. int ret = 0;
  589. if (cfg->elm_size != K3_RINGACC_RING_ELSIZE_8 ||
  590. cfg->mode != K3_RINGACC_RING_MODE_RING ||
  591. cfg->size & ~K3_DMARING_CFG_RING_SIZE_ELCNT_MASK)
  592. return -EINVAL;
  593. ringacc = ring->parent;
  594. /*
  595. * DMA rings: rings shared memory and configuration, only forward ring
  596. * is configured and reverse ring considered as slave.
  597. */
  598. if (ringacc->dma_rings && (ring->flags & K3_RING_FLAG_REVERSE))
  599. return 0;
  600. if (!test_bit(ring->ring_id, ringacc->rings_inuse))
  601. return -EINVAL;
  602. ring->size = cfg->size;
  603. ring->elm_size = cfg->elm_size;
  604. ring->mode = cfg->mode;
  605. ring->asel = cfg->asel;
  606. ring->dma_dev = cfg->dma_dev;
  607. if (!ring->dma_dev) {
  608. dev_warn(ringacc->dev, "dma_dev is not provided for ring%d\n",
  609. ring->ring_id);
  610. ring->dma_dev = ringacc->dev;
  611. }
  612. memset(&ring->state, 0, sizeof(ring->state));
  613. ring->ops = &k3_dmaring_fwd_ops;
  614. ring->ring_mem_virt = dma_alloc_coherent(ring->dma_dev,
  615. ring->size * (4 << ring->elm_size),
  616. &ring->ring_mem_dma, GFP_KERNEL);
  617. if (!ring->ring_mem_virt) {
  618. dev_err(ringacc->dev, "Failed to alloc ring mem\n");
  619. ret = -ENOMEM;
  620. goto err_free_ops;
  621. }
  622. ret = k3_ringacc_ring_cfg_sci(ring);
  623. if (ret)
  624. goto err_free_mem;
  625. ring->flags |= K3_RING_FLAG_BUSY;
  626. k3_ringacc_ring_dump(ring);
  627. /* DMA rings: configure reverse ring */
  628. reverse_ring = &ringacc->rings[ring->ring_id + ringacc->num_rings];
  629. reverse_ring->size = cfg->size;
  630. reverse_ring->elm_size = cfg->elm_size;
  631. reverse_ring->mode = cfg->mode;
  632. reverse_ring->asel = cfg->asel;
  633. memset(&reverse_ring->state, 0, sizeof(reverse_ring->state));
  634. reverse_ring->ops = &k3_dmaring_reverse_ops;
  635. reverse_ring->ring_mem_virt = ring->ring_mem_virt;
  636. reverse_ring->ring_mem_dma = ring->ring_mem_dma;
  637. reverse_ring->flags |= K3_RING_FLAG_BUSY;
  638. k3_ringacc_ring_dump(reverse_ring);
  639. return 0;
  640. err_free_mem:
  641. dma_free_coherent(ring->dma_dev,
  642. ring->size * (4 << ring->elm_size),
  643. ring->ring_mem_virt,
  644. ring->ring_mem_dma);
  645. err_free_ops:
  646. ring->ops = NULL;
  647. ring->proxy = NULL;
  648. ring->dma_dev = NULL;
  649. ring->asel = 0;
  650. return ret;
  651. }
  652. int k3_ringacc_ring_cfg(struct k3_ring *ring, struct k3_ring_cfg *cfg)
  653. {
  654. struct k3_ringacc *ringacc;
  655. int ret = 0;
  656. if (!ring || !cfg)
  657. return -EINVAL;
  658. ringacc = ring->parent;
  659. if (ringacc->dma_rings)
  660. return k3_dmaring_cfg(ring, cfg);
  661. if (cfg->elm_size > K3_RINGACC_RING_ELSIZE_256 ||
  662. cfg->mode >= K3_RINGACC_RING_MODE_INVALID ||
  663. cfg->size & ~K3_RINGACC_CFG_RING_SIZE_ELCNT_MASK ||
  664. !test_bit(ring->ring_id, ringacc->rings_inuse))
  665. return -EINVAL;
  666. if (cfg->mode == K3_RINGACC_RING_MODE_MESSAGE &&
  667. ring->proxy_id == K3_RINGACC_PROXY_NOT_USED &&
  668. cfg->elm_size > K3_RINGACC_RING_ELSIZE_8) {
  669. dev_err(ringacc->dev,
  670. "Message mode must use proxy for %u element size\n",
  671. 4 << ring->elm_size);
  672. return -EINVAL;
  673. }
  674. /*
  675. * In case of shared ring only the first user (master user) can
  676. * configure the ring. The sequence should be by the client:
  677. * ring = k3_ringacc_request_ring(ringacc, ring_id, 0); # master user
  678. * k3_ringacc_ring_cfg(ring, cfg); # master configuration
  679. * k3_ringacc_request_ring(ringacc, ring_id, K3_RING_FLAG_SHARED);
  680. * k3_ringacc_request_ring(ringacc, ring_id, K3_RING_FLAG_SHARED);
  681. */
  682. if (ring->use_count != 1)
  683. return 0;
  684. ring->size = cfg->size;
  685. ring->elm_size = cfg->elm_size;
  686. ring->mode = cfg->mode;
  687. memset(&ring->state, 0, sizeof(ring->state));
  688. if (ring->proxy_id != K3_RINGACC_PROXY_NOT_USED)
  689. ring->proxy = ringacc->proxy_target_base +
  690. ring->proxy_id * K3_RINGACC_PROXY_TARGET_STEP;
  691. switch (ring->mode) {
  692. case K3_RINGACC_RING_MODE_RING:
  693. ring->ops = &k3_ring_mode_ring_ops;
  694. ring->dma_dev = cfg->dma_dev;
  695. if (!ring->dma_dev)
  696. ring->dma_dev = ringacc->dev;
  697. break;
  698. case K3_RINGACC_RING_MODE_MESSAGE:
  699. ring->dma_dev = ringacc->dev;
  700. if (ring->proxy)
  701. ring->ops = &k3_ring_mode_proxy_ops;
  702. else
  703. ring->ops = &k3_ring_mode_msg_ops;
  704. break;
  705. default:
  706. ring->ops = NULL;
  707. ret = -EINVAL;
  708. goto err_free_proxy;
  709. }
  710. ring->ring_mem_virt = dma_alloc_coherent(ring->dma_dev,
  711. ring->size * (4 << ring->elm_size),
  712. &ring->ring_mem_dma, GFP_KERNEL);
  713. if (!ring->ring_mem_virt) {
  714. dev_err(ringacc->dev, "Failed to alloc ring mem\n");
  715. ret = -ENOMEM;
  716. goto err_free_ops;
  717. }
  718. ret = k3_ringacc_ring_cfg_sci(ring);
  719. if (ret)
  720. goto err_free_mem;
  721. ring->flags |= K3_RING_FLAG_BUSY;
  722. ring->flags |= (cfg->flags & K3_RINGACC_RING_SHARED) ?
  723. K3_RING_FLAG_SHARED : 0;
  724. k3_ringacc_ring_dump(ring);
  725. return 0;
  726. err_free_mem:
  727. dma_free_coherent(ring->dma_dev,
  728. ring->size * (4 << ring->elm_size),
  729. ring->ring_mem_virt,
  730. ring->ring_mem_dma);
  731. err_free_ops:
  732. ring->ops = NULL;
  733. ring->dma_dev = NULL;
  734. err_free_proxy:
  735. ring->proxy = NULL;
  736. return ret;
  737. }
  738. EXPORT_SYMBOL_GPL(k3_ringacc_ring_cfg);
  739. u32 k3_ringacc_ring_get_size(struct k3_ring *ring)
  740. {
  741. if (!ring || !(ring->flags & K3_RING_FLAG_BUSY))
  742. return -EINVAL;
  743. return ring->size;
  744. }
  745. EXPORT_SYMBOL_GPL(k3_ringacc_ring_get_size);
  746. u32 k3_ringacc_ring_get_free(struct k3_ring *ring)
  747. {
  748. if (!ring || !(ring->flags & K3_RING_FLAG_BUSY))
  749. return -EINVAL;
  750. if (!ring->state.free)
  751. ring->state.free = ring->size - k3_ringacc_ring_read_occ(ring);
  752. return ring->state.free;
  753. }
  754. EXPORT_SYMBOL_GPL(k3_ringacc_ring_get_free);
  755. u32 k3_ringacc_ring_get_occ(struct k3_ring *ring)
  756. {
  757. if (!ring || !(ring->flags & K3_RING_FLAG_BUSY))
  758. return -EINVAL;
  759. return k3_ringacc_ring_read_occ(ring);
  760. }
  761. EXPORT_SYMBOL_GPL(k3_ringacc_ring_get_occ);
  762. u32 k3_ringacc_ring_is_full(struct k3_ring *ring)
  763. {
  764. return !k3_ringacc_ring_get_free(ring);
  765. }
  766. EXPORT_SYMBOL_GPL(k3_ringacc_ring_is_full);
  767. enum k3_ringacc_access_mode {
  768. K3_RINGACC_ACCESS_MODE_PUSH_HEAD,
  769. K3_RINGACC_ACCESS_MODE_POP_HEAD,
  770. K3_RINGACC_ACCESS_MODE_PUSH_TAIL,
  771. K3_RINGACC_ACCESS_MODE_POP_TAIL,
  772. K3_RINGACC_ACCESS_MODE_PEEK_HEAD,
  773. K3_RINGACC_ACCESS_MODE_PEEK_TAIL,
  774. };
  775. #define K3_RINGACC_PROXY_MODE(x) (((x) & 0x3) << 16)
  776. #define K3_RINGACC_PROXY_ELSIZE(x) (((x) & 0x7) << 24)
  777. static int k3_ringacc_ring_cfg_proxy(struct k3_ring *ring,
  778. enum k3_ringacc_proxy_access_mode mode)
  779. {
  780. u32 val;
  781. val = ring->ring_id;
  782. val |= K3_RINGACC_PROXY_MODE(mode);
  783. val |= K3_RINGACC_PROXY_ELSIZE(ring->elm_size);
  784. writel(val, &ring->proxy->control);
  785. return 0;
  786. }
  787. static int k3_ringacc_ring_access_proxy(struct k3_ring *ring, void *elem,
  788. enum k3_ringacc_access_mode access_mode)
  789. {
  790. void __iomem *ptr;
  791. ptr = (void __iomem *)&ring->proxy->data;
  792. switch (access_mode) {
  793. case K3_RINGACC_ACCESS_MODE_PUSH_HEAD:
  794. case K3_RINGACC_ACCESS_MODE_POP_HEAD:
  795. k3_ringacc_ring_cfg_proxy(ring, PROXY_ACCESS_MODE_HEAD);
  796. break;
  797. case K3_RINGACC_ACCESS_MODE_PUSH_TAIL:
  798. case K3_RINGACC_ACCESS_MODE_POP_TAIL:
  799. k3_ringacc_ring_cfg_proxy(ring, PROXY_ACCESS_MODE_TAIL);
  800. break;
  801. default:
  802. return -EINVAL;
  803. }
  804. ptr += k3_ringacc_ring_get_fifo_pos(ring);
  805. switch (access_mode) {
  806. case K3_RINGACC_ACCESS_MODE_POP_HEAD:
  807. case K3_RINGACC_ACCESS_MODE_POP_TAIL:
  808. dev_dbg(ring->parent->dev,
  809. "proxy:memcpy_fromio(x): --> ptr(%p), mode:%d\n", ptr,
  810. access_mode);
  811. memcpy_fromio(elem, ptr, (4 << ring->elm_size));
  812. ring->state.occ--;
  813. break;
  814. case K3_RINGACC_ACCESS_MODE_PUSH_TAIL:
  815. case K3_RINGACC_ACCESS_MODE_PUSH_HEAD:
  816. dev_dbg(ring->parent->dev,
  817. "proxy:memcpy_toio(x): --> ptr(%p), mode:%d\n", ptr,
  818. access_mode);
  819. memcpy_toio(ptr, elem, (4 << ring->elm_size));
  820. ring->state.free--;
  821. break;
  822. default:
  823. return -EINVAL;
  824. }
  825. dev_dbg(ring->parent->dev, "proxy: free%d occ%d\n", ring->state.free,
  826. ring->state.occ);
  827. return 0;
  828. }
  829. static int k3_ringacc_ring_push_head_proxy(struct k3_ring *ring, void *elem)
  830. {
  831. return k3_ringacc_ring_access_proxy(ring, elem,
  832. K3_RINGACC_ACCESS_MODE_PUSH_HEAD);
  833. }
  834. static int k3_ringacc_ring_push_tail_proxy(struct k3_ring *ring, void *elem)
  835. {
  836. return k3_ringacc_ring_access_proxy(ring, elem,
  837. K3_RINGACC_ACCESS_MODE_PUSH_TAIL);
  838. }
  839. static int k3_ringacc_ring_pop_head_proxy(struct k3_ring *ring, void *elem)
  840. {
  841. return k3_ringacc_ring_access_proxy(ring, elem,
  842. K3_RINGACC_ACCESS_MODE_POP_HEAD);
  843. }
  844. static int k3_ringacc_ring_pop_tail_proxy(struct k3_ring *ring, void *elem)
  845. {
  846. return k3_ringacc_ring_access_proxy(ring, elem,
  847. K3_RINGACC_ACCESS_MODE_POP_HEAD);
  848. }
  849. static int k3_ringacc_ring_access_io(struct k3_ring *ring, void *elem,
  850. enum k3_ringacc_access_mode access_mode)
  851. {
  852. void __iomem *ptr;
  853. switch (access_mode) {
  854. case K3_RINGACC_ACCESS_MODE_PUSH_HEAD:
  855. case K3_RINGACC_ACCESS_MODE_POP_HEAD:
  856. ptr = (void __iomem *)&ring->fifos->head_data;
  857. break;
  858. case K3_RINGACC_ACCESS_MODE_PUSH_TAIL:
  859. case K3_RINGACC_ACCESS_MODE_POP_TAIL:
  860. ptr = (void __iomem *)&ring->fifos->tail_data;
  861. break;
  862. default:
  863. return -EINVAL;
  864. }
  865. ptr += k3_ringacc_ring_get_fifo_pos(ring);
  866. switch (access_mode) {
  867. case K3_RINGACC_ACCESS_MODE_POP_HEAD:
  868. case K3_RINGACC_ACCESS_MODE_POP_TAIL:
  869. dev_dbg(ring->parent->dev,
  870. "memcpy_fromio(x): --> ptr(%p), mode:%d\n", ptr,
  871. access_mode);
  872. memcpy_fromio(elem, ptr, (4 << ring->elm_size));
  873. ring->state.occ--;
  874. break;
  875. case K3_RINGACC_ACCESS_MODE_PUSH_TAIL:
  876. case K3_RINGACC_ACCESS_MODE_PUSH_HEAD:
  877. dev_dbg(ring->parent->dev,
  878. "memcpy_toio(x): --> ptr(%p), mode:%d\n", ptr,
  879. access_mode);
  880. memcpy_toio(ptr, elem, (4 << ring->elm_size));
  881. ring->state.free--;
  882. break;
  883. default:
  884. return -EINVAL;
  885. }
  886. dev_dbg(ring->parent->dev, "free%d index%d occ%d index%d\n",
  887. ring->state.free, ring->state.windex, ring->state.occ,
  888. ring->state.rindex);
  889. return 0;
  890. }
  891. static int k3_ringacc_ring_push_head_io(struct k3_ring *ring, void *elem)
  892. {
  893. return k3_ringacc_ring_access_io(ring, elem,
  894. K3_RINGACC_ACCESS_MODE_PUSH_HEAD);
  895. }
  896. static int k3_ringacc_ring_push_io(struct k3_ring *ring, void *elem)
  897. {
  898. return k3_ringacc_ring_access_io(ring, elem,
  899. K3_RINGACC_ACCESS_MODE_PUSH_TAIL);
  900. }
  901. static int k3_ringacc_ring_pop_io(struct k3_ring *ring, void *elem)
  902. {
  903. return k3_ringacc_ring_access_io(ring, elem,
  904. K3_RINGACC_ACCESS_MODE_POP_HEAD);
  905. }
  906. static int k3_ringacc_ring_pop_tail_io(struct k3_ring *ring, void *elem)
  907. {
  908. return k3_ringacc_ring_access_io(ring, elem,
  909. K3_RINGACC_ACCESS_MODE_POP_HEAD);
  910. }
  911. /*
  912. * The element is 48 bits of address + ASEL bits in the ring.
  913. * ASEL is used by the DMAs and should be removed for the kernel as it is not
  914. * part of the physical memory address.
  915. */
  916. static void k3_dmaring_remove_asel_from_elem(u64 *elem)
  917. {
  918. *elem &= GENMASK_ULL(K3_ADDRESS_ASEL_SHIFT - 1, 0);
  919. }
  920. static int k3_dmaring_fwd_pop(struct k3_ring *ring, void *elem)
  921. {
  922. void *elem_ptr;
  923. u32 elem_idx;
  924. /*
  925. * DMA rings: forward ring is always tied DMA channel and HW does not
  926. * maintain any state data required for POP operation and its unknown
  927. * how much elements were consumed by HW. So, to actually
  928. * do POP, the read pointer has to be recalculated every time.
  929. */
  930. ring->state.occ = k3_ringacc_ring_read_occ(ring);
  931. if (ring->state.windex >= ring->state.occ)
  932. elem_idx = ring->state.windex - ring->state.occ;
  933. else
  934. elem_idx = ring->size - (ring->state.occ - ring->state.windex);
  935. elem_ptr = k3_ringacc_get_elm_addr(ring, elem_idx);
  936. memcpy(elem, elem_ptr, (4 << ring->elm_size));
  937. k3_dmaring_remove_asel_from_elem(elem);
  938. ring->state.occ--;
  939. writel(-1, &ring->rt->db);
  940. dev_dbg(ring->parent->dev, "%s: occ%d Windex%d Rindex%d pos_ptr%px\n",
  941. __func__, ring->state.occ, ring->state.windex, elem_idx,
  942. elem_ptr);
  943. return 0;
  944. }
  945. static int k3_dmaring_reverse_pop(struct k3_ring *ring, void *elem)
  946. {
  947. void *elem_ptr;
  948. elem_ptr = k3_ringacc_get_elm_addr(ring, ring->state.rindex);
  949. if (ring->state.occ) {
  950. memcpy(elem, elem_ptr, (4 << ring->elm_size));
  951. k3_dmaring_remove_asel_from_elem(elem);
  952. ring->state.rindex = (ring->state.rindex + 1) % ring->size;
  953. ring->state.occ--;
  954. writel(-1 & K3_DMARING_RT_DB_ENTRY_MASK, &ring->rt->db);
  955. } else if (ring->state.tdown_complete) {
  956. dma_addr_t *value = elem;
  957. *value = CPPI5_TDCM_MARKER;
  958. writel(K3_DMARING_RT_DB_TDOWN_ACK, &ring->rt->db);
  959. ring->state.tdown_complete = false;
  960. }
  961. dev_dbg(ring->parent->dev, "%s: occ%d index%d pos_ptr%px\n",
  962. __func__, ring->state.occ, ring->state.rindex, elem_ptr);
  963. return 0;
  964. }
  965. static int k3_ringacc_ring_push_mem(struct k3_ring *ring, void *elem)
  966. {
  967. void *elem_ptr;
  968. elem_ptr = k3_ringacc_get_elm_addr(ring, ring->state.windex);
  969. memcpy(elem_ptr, elem, (4 << ring->elm_size));
  970. if (ring->parent->dma_rings) {
  971. u64 *addr = elem_ptr;
  972. *addr |= ((u64)ring->asel << K3_ADDRESS_ASEL_SHIFT);
  973. }
  974. ring->state.windex = (ring->state.windex + 1) % ring->size;
  975. ring->state.free--;
  976. writel(1, &ring->rt->db);
  977. dev_dbg(ring->parent->dev, "ring_push_mem: free%d index%d\n",
  978. ring->state.free, ring->state.windex);
  979. return 0;
  980. }
  981. static int k3_ringacc_ring_pop_mem(struct k3_ring *ring, void *elem)
  982. {
  983. void *elem_ptr;
  984. elem_ptr = k3_ringacc_get_elm_addr(ring, ring->state.rindex);
  985. memcpy(elem, elem_ptr, (4 << ring->elm_size));
  986. ring->state.rindex = (ring->state.rindex + 1) % ring->size;
  987. ring->state.occ--;
  988. writel(-1, &ring->rt->db);
  989. dev_dbg(ring->parent->dev, "ring_pop_mem: occ%d index%d pos_ptr%p\n",
  990. ring->state.occ, ring->state.rindex, elem_ptr);
  991. return 0;
  992. }
  993. int k3_ringacc_ring_push(struct k3_ring *ring, void *elem)
  994. {
  995. int ret = -EOPNOTSUPP;
  996. if (!ring || !(ring->flags & K3_RING_FLAG_BUSY))
  997. return -EINVAL;
  998. dev_dbg(ring->parent->dev, "ring_push: free%d index%d\n",
  999. ring->state.free, ring->state.windex);
  1000. if (k3_ringacc_ring_is_full(ring))
  1001. return -ENOMEM;
  1002. if (ring->ops && ring->ops->push_tail)
  1003. ret = ring->ops->push_tail(ring, elem);
  1004. return ret;
  1005. }
  1006. EXPORT_SYMBOL_GPL(k3_ringacc_ring_push);
  1007. int k3_ringacc_ring_push_head(struct k3_ring *ring, void *elem)
  1008. {
  1009. int ret = -EOPNOTSUPP;
  1010. if (!ring || !(ring->flags & K3_RING_FLAG_BUSY))
  1011. return -EINVAL;
  1012. dev_dbg(ring->parent->dev, "ring_push_head: free%d index%d\n",
  1013. ring->state.free, ring->state.windex);
  1014. if (k3_ringacc_ring_is_full(ring))
  1015. return -ENOMEM;
  1016. if (ring->ops && ring->ops->push_head)
  1017. ret = ring->ops->push_head(ring, elem);
  1018. return ret;
  1019. }
  1020. EXPORT_SYMBOL_GPL(k3_ringacc_ring_push_head);
  1021. int k3_ringacc_ring_pop(struct k3_ring *ring, void *elem)
  1022. {
  1023. int ret = -EOPNOTSUPP;
  1024. if (!ring || !(ring->flags & K3_RING_FLAG_BUSY))
  1025. return -EINVAL;
  1026. if (!ring->state.occ)
  1027. k3_ringacc_ring_update_occ(ring);
  1028. dev_dbg(ring->parent->dev, "ring_pop: occ%d index%d\n", ring->state.occ,
  1029. ring->state.rindex);
  1030. if (!ring->state.occ && !ring->state.tdown_complete)
  1031. return -ENODATA;
  1032. if (ring->ops && ring->ops->pop_head)
  1033. ret = ring->ops->pop_head(ring, elem);
  1034. return ret;
  1035. }
  1036. EXPORT_SYMBOL_GPL(k3_ringacc_ring_pop);
  1037. int k3_ringacc_ring_pop_tail(struct k3_ring *ring, void *elem)
  1038. {
  1039. int ret = -EOPNOTSUPP;
  1040. if (!ring || !(ring->flags & K3_RING_FLAG_BUSY))
  1041. return -EINVAL;
  1042. if (!ring->state.occ)
  1043. k3_ringacc_ring_update_occ(ring);
  1044. dev_dbg(ring->parent->dev, "ring_pop_tail: occ%d index%d\n",
  1045. ring->state.occ, ring->state.rindex);
  1046. if (!ring->state.occ)
  1047. return -ENODATA;
  1048. if (ring->ops && ring->ops->pop_tail)
  1049. ret = ring->ops->pop_tail(ring, elem);
  1050. return ret;
  1051. }
  1052. EXPORT_SYMBOL_GPL(k3_ringacc_ring_pop_tail);
  1053. struct k3_ringacc *of_k3_ringacc_get_by_phandle(struct device_node *np,
  1054. const char *property)
  1055. {
  1056. struct device_node *ringacc_np;
  1057. struct k3_ringacc *ringacc = ERR_PTR(-EPROBE_DEFER);
  1058. struct k3_ringacc *entry;
  1059. ringacc_np = of_parse_phandle(np, property, 0);
  1060. if (!ringacc_np)
  1061. return ERR_PTR(-ENODEV);
  1062. mutex_lock(&k3_ringacc_list_lock);
  1063. list_for_each_entry(entry, &k3_ringacc_list, list)
  1064. if (entry->dev->of_node == ringacc_np) {
  1065. ringacc = entry;
  1066. break;
  1067. }
  1068. mutex_unlock(&k3_ringacc_list_lock);
  1069. of_node_put(ringacc_np);
  1070. return ringacc;
  1071. }
  1072. EXPORT_SYMBOL_GPL(of_k3_ringacc_get_by_phandle);
  1073. static int k3_ringacc_probe_dt(struct k3_ringacc *ringacc)
  1074. {
  1075. struct device_node *node = ringacc->dev->of_node;
  1076. struct device *dev = ringacc->dev;
  1077. struct platform_device *pdev = to_platform_device(dev);
  1078. int ret;
  1079. if (!node) {
  1080. dev_err(dev, "device tree info unavailable\n");
  1081. return -ENODEV;
  1082. }
  1083. ret = of_property_read_u32(node, "ti,num-rings", &ringacc->num_rings);
  1084. if (ret) {
  1085. dev_err(dev, "ti,num-rings read failure %d\n", ret);
  1086. return ret;
  1087. }
  1088. ringacc->tisci = ti_sci_get_by_phandle(node, "ti,sci");
  1089. if (IS_ERR(ringacc->tisci)) {
  1090. ret = PTR_ERR(ringacc->tisci);
  1091. if (ret != -EPROBE_DEFER)
  1092. dev_err(dev, "ti,sci read fail %d\n", ret);
  1093. ringacc->tisci = NULL;
  1094. return ret;
  1095. }
  1096. ret = of_property_read_u32(node, "ti,sci-dev-id",
  1097. &ringacc->tisci_dev_id);
  1098. if (ret) {
  1099. dev_err(dev, "ti,sci-dev-id read fail %d\n", ret);
  1100. return ret;
  1101. }
  1102. pdev->id = ringacc->tisci_dev_id;
  1103. ringacc->rm_gp_range = devm_ti_sci_get_of_resource(ringacc->tisci, dev,
  1104. ringacc->tisci_dev_id,
  1105. "ti,sci-rm-range-gp-rings");
  1106. if (IS_ERR(ringacc->rm_gp_range)) {
  1107. dev_err(dev, "Failed to allocate MSI interrupts\n");
  1108. return PTR_ERR(ringacc->rm_gp_range);
  1109. }
  1110. return ti_sci_inta_msi_domain_alloc_irqs(ringacc->dev,
  1111. ringacc->rm_gp_range);
  1112. }
  1113. static const struct k3_ringacc_soc_data k3_ringacc_soc_data_sr1 = {
  1114. .dma_ring_reset_quirk = 1,
  1115. };
  1116. static const struct soc_device_attribute k3_ringacc_socinfo[] = {
  1117. { .family = "AM65X",
  1118. .revision = "SR1.0",
  1119. .data = &k3_ringacc_soc_data_sr1
  1120. },
  1121. {/* sentinel */}
  1122. };
  1123. static int k3_ringacc_init(struct platform_device *pdev,
  1124. struct k3_ringacc *ringacc)
  1125. {
  1126. const struct soc_device_attribute *soc;
  1127. void __iomem *base_fifo, *base_rt;
  1128. struct device *dev = &pdev->dev;
  1129. int ret, i;
  1130. dev->msi.domain = of_msi_get_domain(dev, dev->of_node,
  1131. DOMAIN_BUS_TI_SCI_INTA_MSI);
  1132. if (!dev->msi.domain)
  1133. return -EPROBE_DEFER;
  1134. ret = k3_ringacc_probe_dt(ringacc);
  1135. if (ret)
  1136. return ret;
  1137. soc = soc_device_match(k3_ringacc_socinfo);
  1138. if (soc && soc->data) {
  1139. const struct k3_ringacc_soc_data *soc_data = soc->data;
  1140. ringacc->dma_ring_reset_quirk = soc_data->dma_ring_reset_quirk;
  1141. }
  1142. base_rt = devm_platform_ioremap_resource_byname(pdev, "rt");
  1143. if (IS_ERR(base_rt))
  1144. return PTR_ERR(base_rt);
  1145. base_fifo = devm_platform_ioremap_resource_byname(pdev, "fifos");
  1146. if (IS_ERR(base_fifo))
  1147. return PTR_ERR(base_fifo);
  1148. ringacc->proxy_gcfg = devm_platform_ioremap_resource_byname(pdev, "proxy_gcfg");
  1149. if (IS_ERR(ringacc->proxy_gcfg))
  1150. return PTR_ERR(ringacc->proxy_gcfg);
  1151. ringacc->proxy_target_base = devm_platform_ioremap_resource_byname(pdev,
  1152. "proxy_target");
  1153. if (IS_ERR(ringacc->proxy_target_base))
  1154. return PTR_ERR(ringacc->proxy_target_base);
  1155. ringacc->num_proxies = readl(&ringacc->proxy_gcfg->config) &
  1156. K3_RINGACC_PROXY_CFG_THREADS_MASK;
  1157. ringacc->rings = devm_kzalloc(dev,
  1158. sizeof(*ringacc->rings) *
  1159. ringacc->num_rings,
  1160. GFP_KERNEL);
  1161. ringacc->rings_inuse = devm_bitmap_zalloc(dev, ringacc->num_rings,
  1162. GFP_KERNEL);
  1163. ringacc->proxy_inuse = devm_bitmap_zalloc(dev, ringacc->num_proxies,
  1164. GFP_KERNEL);
  1165. if (!ringacc->rings || !ringacc->rings_inuse || !ringacc->proxy_inuse)
  1166. return -ENOMEM;
  1167. for (i = 0; i < ringacc->num_rings; i++) {
  1168. ringacc->rings[i].rt = base_rt +
  1169. K3_RINGACC_RT_REGS_STEP * i;
  1170. ringacc->rings[i].fifos = base_fifo +
  1171. K3_RINGACC_FIFO_REGS_STEP * i;
  1172. ringacc->rings[i].parent = ringacc;
  1173. ringacc->rings[i].ring_id = i;
  1174. ringacc->rings[i].proxy_id = K3_RINGACC_PROXY_NOT_USED;
  1175. }
  1176. ringacc->tisci_ring_ops = &ringacc->tisci->ops.rm_ring_ops;
  1177. dev_info(dev, "Ring Accelerator probed rings:%u, gp-rings[%u,%u] sci-dev-id:%u\n",
  1178. ringacc->num_rings,
  1179. ringacc->rm_gp_range->desc[0].start,
  1180. ringacc->rm_gp_range->desc[0].num,
  1181. ringacc->tisci_dev_id);
  1182. dev_info(dev, "dma-ring-reset-quirk: %s\n",
  1183. ringacc->dma_ring_reset_quirk ? "enabled" : "disabled");
  1184. dev_info(dev, "RA Proxy rev. %08x, num_proxies:%u\n",
  1185. readl(&ringacc->proxy_gcfg->revision), ringacc->num_proxies);
  1186. return 0;
  1187. }
  1188. struct ringacc_match_data {
  1189. struct k3_ringacc_ops ops;
  1190. };
  1191. static struct ringacc_match_data k3_ringacc_data = {
  1192. .ops = {
  1193. .init = k3_ringacc_init,
  1194. },
  1195. };
  1196. /* Match table for of_platform binding */
  1197. static const struct of_device_id k3_ringacc_of_match[] = {
  1198. { .compatible = "ti,am654-navss-ringacc", .data = &k3_ringacc_data, },
  1199. {},
  1200. };
  1201. MODULE_DEVICE_TABLE(of, k3_ringacc_of_match);
  1202. struct k3_ringacc *k3_ringacc_dmarings_init(struct platform_device *pdev,
  1203. struct k3_ringacc_init_data *data)
  1204. {
  1205. struct device *dev = &pdev->dev;
  1206. struct k3_ringacc *ringacc;
  1207. void __iomem *base_rt;
  1208. int i;
  1209. ringacc = devm_kzalloc(dev, sizeof(*ringacc), GFP_KERNEL);
  1210. if (!ringacc)
  1211. return ERR_PTR(-ENOMEM);
  1212. ringacc->dev = dev;
  1213. ringacc->dma_rings = true;
  1214. ringacc->num_rings = data->num_rings;
  1215. ringacc->tisci = data->tisci;
  1216. ringacc->tisci_dev_id = data->tisci_dev_id;
  1217. mutex_init(&ringacc->req_lock);
  1218. base_rt = devm_platform_ioremap_resource_byname(pdev, "ringrt");
  1219. if (IS_ERR(base_rt))
  1220. return ERR_CAST(base_rt);
  1221. ringacc->rings = devm_kzalloc(dev,
  1222. sizeof(*ringacc->rings) *
  1223. ringacc->num_rings * 2,
  1224. GFP_KERNEL);
  1225. ringacc->rings_inuse = devm_bitmap_zalloc(dev, ringacc->num_rings,
  1226. GFP_KERNEL);
  1227. if (!ringacc->rings || !ringacc->rings_inuse)
  1228. return ERR_PTR(-ENOMEM);
  1229. for (i = 0; i < ringacc->num_rings; i++) {
  1230. struct k3_ring *ring = &ringacc->rings[i];
  1231. ring->rt = base_rt + K3_DMARING_RT_REGS_STEP * i;
  1232. ring->parent = ringacc;
  1233. ring->ring_id = i;
  1234. ring->proxy_id = K3_RINGACC_PROXY_NOT_USED;
  1235. ring = &ringacc->rings[ringacc->num_rings + i];
  1236. ring->rt = base_rt + K3_DMARING_RT_REGS_STEP * i +
  1237. K3_DMARING_RT_REGS_REVERSE_OFS;
  1238. ring->parent = ringacc;
  1239. ring->ring_id = i;
  1240. ring->proxy_id = K3_RINGACC_PROXY_NOT_USED;
  1241. ring->flags = K3_RING_FLAG_REVERSE;
  1242. }
  1243. ringacc->tisci_ring_ops = &ringacc->tisci->ops.rm_ring_ops;
  1244. dev_info(dev, "Number of rings: %u\n", ringacc->num_rings);
  1245. return ringacc;
  1246. }
  1247. EXPORT_SYMBOL_GPL(k3_ringacc_dmarings_init);
  1248. static int k3_ringacc_probe(struct platform_device *pdev)
  1249. {
  1250. const struct ringacc_match_data *match_data;
  1251. struct device *dev = &pdev->dev;
  1252. struct k3_ringacc *ringacc;
  1253. int ret;
  1254. match_data = of_device_get_match_data(&pdev->dev);
  1255. if (!match_data)
  1256. return -ENODEV;
  1257. ringacc = devm_kzalloc(dev, sizeof(*ringacc), GFP_KERNEL);
  1258. if (!ringacc)
  1259. return -ENOMEM;
  1260. ringacc->dev = dev;
  1261. mutex_init(&ringacc->req_lock);
  1262. ringacc->ops = &match_data->ops;
  1263. ret = ringacc->ops->init(pdev, ringacc);
  1264. if (ret)
  1265. return ret;
  1266. dev_set_drvdata(dev, ringacc);
  1267. mutex_lock(&k3_ringacc_list_lock);
  1268. list_add_tail(&ringacc->list, &k3_ringacc_list);
  1269. mutex_unlock(&k3_ringacc_list_lock);
  1270. return 0;
  1271. }
  1272. static void k3_ringacc_remove(struct platform_device *pdev)
  1273. {
  1274. struct k3_ringacc *ringacc = dev_get_drvdata(&pdev->dev);
  1275. mutex_lock(&k3_ringacc_list_lock);
  1276. list_del(&ringacc->list);
  1277. mutex_unlock(&k3_ringacc_list_lock);
  1278. }
  1279. static struct platform_driver k3_ringacc_driver = {
  1280. .probe = k3_ringacc_probe,
  1281. .remove_new = k3_ringacc_remove,
  1282. .driver = {
  1283. .name = "k3-ringacc",
  1284. .of_match_table = k3_ringacc_of_match,
  1285. .suppress_bind_attrs = true,
  1286. },
  1287. };
  1288. module_platform_driver(k3_ringacc_driver);
  1289. MODULE_LICENSE("GPL");
  1290. MODULE_DESCRIPTION("TI Ringacc driver for K3 SOCs");
  1291. MODULE_AUTHOR("Grygorii Strashko <grygorii.strashko@ti.com>");