st_fdma.c 22 KB

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  1. // SPDX-License-Identifier: GPL-2.0-or-later
  2. /*
  3. * DMA driver for STMicroelectronics STi FDMA controller
  4. *
  5. * Copyright (C) 2014 STMicroelectronics
  6. *
  7. * Author: Ludovic Barre <Ludovic.barre@st.com>
  8. * Peter Griffin <peter.griffin@linaro.org>
  9. */
  10. #include <linux/init.h>
  11. #include <linux/module.h>
  12. #include <linux/of.h>
  13. #include <linux/of_dma.h>
  14. #include <linux/platform_device.h>
  15. #include <linux/property.h>
  16. #include <linux/interrupt.h>
  17. #include <linux/remoteproc.h>
  18. #include <linux/slab.h>
  19. #include "st_fdma.h"
  20. static inline struct st_fdma_chan *to_st_fdma_chan(struct dma_chan *c)
  21. {
  22. return container_of(c, struct st_fdma_chan, vchan.chan);
  23. }
  24. static struct st_fdma_desc *to_st_fdma_desc(struct virt_dma_desc *vd)
  25. {
  26. return container_of(vd, struct st_fdma_desc, vdesc);
  27. }
  28. static int st_fdma_dreq_get(struct st_fdma_chan *fchan)
  29. {
  30. struct st_fdma_dev *fdev = fchan->fdev;
  31. u32 req_line_cfg = fchan->cfg.req_line;
  32. u32 dreq_line;
  33. int try = 0;
  34. /*
  35. * dreq_mask is shared for n channels of fdma, so all accesses must be
  36. * atomic. if the dreq_mask is changed between ffz and set_bit,
  37. * we retry
  38. */
  39. do {
  40. if (fdev->dreq_mask == ~0L) {
  41. dev_err(fdev->dev, "No req lines available\n");
  42. return -EINVAL;
  43. }
  44. if (try || req_line_cfg >= ST_FDMA_NR_DREQS) {
  45. dev_err(fdev->dev, "Invalid or used req line\n");
  46. return -EINVAL;
  47. } else {
  48. dreq_line = req_line_cfg;
  49. }
  50. try++;
  51. } while (test_and_set_bit(dreq_line, &fdev->dreq_mask));
  52. dev_dbg(fdev->dev, "get dreq_line:%d mask:%#lx\n",
  53. dreq_line, fdev->dreq_mask);
  54. return dreq_line;
  55. }
  56. static void st_fdma_dreq_put(struct st_fdma_chan *fchan)
  57. {
  58. struct st_fdma_dev *fdev = fchan->fdev;
  59. dev_dbg(fdev->dev, "put dreq_line:%#x\n", fchan->dreq_line);
  60. clear_bit(fchan->dreq_line, &fdev->dreq_mask);
  61. }
  62. static void st_fdma_xfer_desc(struct st_fdma_chan *fchan)
  63. {
  64. struct virt_dma_desc *vdesc;
  65. unsigned long nbytes, ch_cmd, cmd;
  66. vdesc = vchan_next_desc(&fchan->vchan);
  67. if (!vdesc)
  68. return;
  69. fchan->fdesc = to_st_fdma_desc(vdesc);
  70. nbytes = fchan->fdesc->node[0].desc->nbytes;
  71. cmd = FDMA_CMD_START(fchan->vchan.chan.chan_id);
  72. ch_cmd = fchan->fdesc->node[0].pdesc | FDMA_CH_CMD_STA_START;
  73. /* start the channel for the descriptor */
  74. fnode_write(fchan, nbytes, FDMA_CNTN_OFST);
  75. fchan_write(fchan, ch_cmd, FDMA_CH_CMD_OFST);
  76. writel(cmd,
  77. fchan->fdev->slim_rproc->peri + FDMA_CMD_SET_OFST);
  78. dev_dbg(fchan->fdev->dev, "start chan:%d\n", fchan->vchan.chan.chan_id);
  79. }
  80. static void st_fdma_ch_sta_update(struct st_fdma_chan *fchan,
  81. unsigned long int_sta)
  82. {
  83. unsigned long ch_sta, ch_err;
  84. int ch_id = fchan->vchan.chan.chan_id;
  85. struct st_fdma_dev *fdev = fchan->fdev;
  86. ch_sta = fchan_read(fchan, FDMA_CH_CMD_OFST);
  87. ch_err = ch_sta & FDMA_CH_CMD_ERR_MASK;
  88. ch_sta &= FDMA_CH_CMD_STA_MASK;
  89. if (int_sta & FDMA_INT_STA_ERR) {
  90. dev_warn(fdev->dev, "chan:%d, error:%ld\n", ch_id, ch_err);
  91. fchan->status = DMA_ERROR;
  92. return;
  93. }
  94. switch (ch_sta) {
  95. case FDMA_CH_CMD_STA_PAUSED:
  96. fchan->status = DMA_PAUSED;
  97. break;
  98. case FDMA_CH_CMD_STA_RUNNING:
  99. fchan->status = DMA_IN_PROGRESS;
  100. break;
  101. }
  102. }
  103. static irqreturn_t st_fdma_irq_handler(int irq, void *dev_id)
  104. {
  105. struct st_fdma_dev *fdev = dev_id;
  106. irqreturn_t ret = IRQ_NONE;
  107. struct st_fdma_chan *fchan = &fdev->chans[0];
  108. unsigned long int_sta, clr;
  109. int_sta = fdma_read(fdev, FDMA_INT_STA_OFST);
  110. clr = int_sta;
  111. for (; int_sta != 0 ; int_sta >>= 2, fchan++) {
  112. if (!(int_sta & (FDMA_INT_STA_CH | FDMA_INT_STA_ERR)))
  113. continue;
  114. spin_lock(&fchan->vchan.lock);
  115. st_fdma_ch_sta_update(fchan, int_sta);
  116. if (fchan->fdesc) {
  117. if (!fchan->fdesc->iscyclic) {
  118. list_del(&fchan->fdesc->vdesc.node);
  119. vchan_cookie_complete(&fchan->fdesc->vdesc);
  120. fchan->fdesc = NULL;
  121. fchan->status = DMA_COMPLETE;
  122. } else {
  123. vchan_cyclic_callback(&fchan->fdesc->vdesc);
  124. }
  125. /* Start the next descriptor (if available) */
  126. if (!fchan->fdesc)
  127. st_fdma_xfer_desc(fchan);
  128. }
  129. spin_unlock(&fchan->vchan.lock);
  130. ret = IRQ_HANDLED;
  131. }
  132. fdma_write(fdev, clr, FDMA_INT_CLR_OFST);
  133. return ret;
  134. }
  135. static struct dma_chan *st_fdma_of_xlate(struct of_phandle_args *dma_spec,
  136. struct of_dma *ofdma)
  137. {
  138. struct st_fdma_dev *fdev = ofdma->of_dma_data;
  139. struct dma_chan *chan;
  140. struct st_fdma_chan *fchan;
  141. int ret;
  142. if (dma_spec->args_count < 1)
  143. return ERR_PTR(-EINVAL);
  144. if (fdev->dma_device.dev->of_node != dma_spec->np)
  145. return ERR_PTR(-EINVAL);
  146. ret = rproc_boot(fdev->slim_rproc->rproc);
  147. if (ret == -ENOENT)
  148. return ERR_PTR(-EPROBE_DEFER);
  149. else if (ret)
  150. return ERR_PTR(ret);
  151. chan = dma_get_any_slave_channel(&fdev->dma_device);
  152. if (!chan)
  153. goto err_chan;
  154. fchan = to_st_fdma_chan(chan);
  155. fchan->cfg.of_node = dma_spec->np;
  156. fchan->cfg.req_line = dma_spec->args[0];
  157. fchan->cfg.req_ctrl = 0;
  158. fchan->cfg.type = ST_FDMA_TYPE_FREE_RUN;
  159. if (dma_spec->args_count > 1)
  160. fchan->cfg.req_ctrl = dma_spec->args[1]
  161. & FDMA_REQ_CTRL_CFG_MASK;
  162. if (dma_spec->args_count > 2)
  163. fchan->cfg.type = dma_spec->args[2];
  164. if (fchan->cfg.type == ST_FDMA_TYPE_FREE_RUN) {
  165. fchan->dreq_line = 0;
  166. } else {
  167. fchan->dreq_line = st_fdma_dreq_get(fchan);
  168. if (IS_ERR_VALUE(fchan->dreq_line)) {
  169. chan = ERR_PTR(fchan->dreq_line);
  170. goto err_chan;
  171. }
  172. }
  173. dev_dbg(fdev->dev, "xlate req_line:%d type:%d req_ctrl:%#lx\n",
  174. fchan->cfg.req_line, fchan->cfg.type, fchan->cfg.req_ctrl);
  175. return chan;
  176. err_chan:
  177. rproc_shutdown(fdev->slim_rproc->rproc);
  178. return chan;
  179. }
  180. static void st_fdma_free_desc(struct virt_dma_desc *vdesc)
  181. {
  182. struct st_fdma_desc *fdesc;
  183. int i;
  184. fdesc = to_st_fdma_desc(vdesc);
  185. for (i = 0; i < fdesc->n_nodes; i++)
  186. dma_pool_free(fdesc->fchan->node_pool, fdesc->node[i].desc,
  187. fdesc->node[i].pdesc);
  188. kfree(fdesc);
  189. }
  190. static struct st_fdma_desc *st_fdma_alloc_desc(struct st_fdma_chan *fchan,
  191. int sg_len)
  192. {
  193. struct st_fdma_desc *fdesc;
  194. int i;
  195. fdesc = kzalloc(struct_size(fdesc, node, sg_len), GFP_NOWAIT);
  196. if (!fdesc)
  197. return NULL;
  198. fdesc->fchan = fchan;
  199. fdesc->n_nodes = sg_len;
  200. for (i = 0; i < sg_len; i++) {
  201. fdesc->node[i].desc = dma_pool_alloc(fchan->node_pool,
  202. GFP_NOWAIT, &fdesc->node[i].pdesc);
  203. if (!fdesc->node[i].desc)
  204. goto err;
  205. }
  206. return fdesc;
  207. err:
  208. while (--i >= 0)
  209. dma_pool_free(fchan->node_pool, fdesc->node[i].desc,
  210. fdesc->node[i].pdesc);
  211. kfree(fdesc);
  212. return NULL;
  213. }
  214. static int st_fdma_alloc_chan_res(struct dma_chan *chan)
  215. {
  216. struct st_fdma_chan *fchan = to_st_fdma_chan(chan);
  217. /* Create the dma pool for descriptor allocation */
  218. fchan->node_pool = dma_pool_create(dev_name(&chan->dev->device),
  219. fchan->fdev->dev,
  220. sizeof(struct st_fdma_hw_node),
  221. __alignof__(struct st_fdma_hw_node),
  222. 0);
  223. if (!fchan->node_pool) {
  224. dev_err(fchan->fdev->dev, "unable to allocate desc pool\n");
  225. return -ENOMEM;
  226. }
  227. dev_dbg(fchan->fdev->dev, "alloc ch_id:%d type:%d\n",
  228. fchan->vchan.chan.chan_id, fchan->cfg.type);
  229. return 0;
  230. }
  231. static void st_fdma_free_chan_res(struct dma_chan *chan)
  232. {
  233. struct st_fdma_chan *fchan = to_st_fdma_chan(chan);
  234. struct rproc *rproc = fchan->fdev->slim_rproc->rproc;
  235. unsigned long flags;
  236. dev_dbg(fchan->fdev->dev, "%s: freeing chan:%d\n",
  237. __func__, fchan->vchan.chan.chan_id);
  238. if (fchan->cfg.type != ST_FDMA_TYPE_FREE_RUN)
  239. st_fdma_dreq_put(fchan);
  240. spin_lock_irqsave(&fchan->vchan.lock, flags);
  241. fchan->fdesc = NULL;
  242. spin_unlock_irqrestore(&fchan->vchan.lock, flags);
  243. dma_pool_destroy(fchan->node_pool);
  244. fchan->node_pool = NULL;
  245. memset(&fchan->cfg, 0, sizeof(struct st_fdma_cfg));
  246. rproc_shutdown(rproc);
  247. }
  248. static struct dma_async_tx_descriptor *st_fdma_prep_dma_memcpy(
  249. struct dma_chan *chan, dma_addr_t dst, dma_addr_t src,
  250. size_t len, unsigned long flags)
  251. {
  252. struct st_fdma_chan *fchan;
  253. struct st_fdma_desc *fdesc;
  254. struct st_fdma_hw_node *hw_node;
  255. if (!len)
  256. return NULL;
  257. fchan = to_st_fdma_chan(chan);
  258. /* We only require a single descriptor */
  259. fdesc = st_fdma_alloc_desc(fchan, 1);
  260. if (!fdesc) {
  261. dev_err(fchan->fdev->dev, "no memory for desc\n");
  262. return NULL;
  263. }
  264. hw_node = fdesc->node[0].desc;
  265. hw_node->next = 0;
  266. hw_node->control = FDMA_NODE_CTRL_REQ_MAP_FREE_RUN;
  267. hw_node->control |= FDMA_NODE_CTRL_SRC_INCR;
  268. hw_node->control |= FDMA_NODE_CTRL_DST_INCR;
  269. hw_node->control |= FDMA_NODE_CTRL_INT_EON;
  270. hw_node->nbytes = len;
  271. hw_node->saddr = src;
  272. hw_node->daddr = dst;
  273. hw_node->generic.length = len;
  274. hw_node->generic.sstride = 0;
  275. hw_node->generic.dstride = 0;
  276. return vchan_tx_prep(&fchan->vchan, &fdesc->vdesc, flags);
  277. }
  278. static int config_reqctrl(struct st_fdma_chan *fchan,
  279. enum dma_transfer_direction direction)
  280. {
  281. u32 maxburst = 0, addr = 0;
  282. enum dma_slave_buswidth width;
  283. int ch_id = fchan->vchan.chan.chan_id;
  284. struct st_fdma_dev *fdev = fchan->fdev;
  285. switch (direction) {
  286. case DMA_DEV_TO_MEM:
  287. fchan->cfg.req_ctrl &= ~FDMA_REQ_CTRL_WNR;
  288. maxburst = fchan->scfg.src_maxburst;
  289. width = fchan->scfg.src_addr_width;
  290. addr = fchan->scfg.src_addr;
  291. break;
  292. case DMA_MEM_TO_DEV:
  293. fchan->cfg.req_ctrl |= FDMA_REQ_CTRL_WNR;
  294. maxburst = fchan->scfg.dst_maxburst;
  295. width = fchan->scfg.dst_addr_width;
  296. addr = fchan->scfg.dst_addr;
  297. break;
  298. default:
  299. return -EINVAL;
  300. }
  301. fchan->cfg.req_ctrl &= ~FDMA_REQ_CTRL_OPCODE_MASK;
  302. switch (width) {
  303. case DMA_SLAVE_BUSWIDTH_1_BYTE:
  304. fchan->cfg.req_ctrl |= FDMA_REQ_CTRL_OPCODE_LD_ST1;
  305. break;
  306. case DMA_SLAVE_BUSWIDTH_2_BYTES:
  307. fchan->cfg.req_ctrl |= FDMA_REQ_CTRL_OPCODE_LD_ST2;
  308. break;
  309. case DMA_SLAVE_BUSWIDTH_4_BYTES:
  310. fchan->cfg.req_ctrl |= FDMA_REQ_CTRL_OPCODE_LD_ST4;
  311. break;
  312. case DMA_SLAVE_BUSWIDTH_8_BYTES:
  313. fchan->cfg.req_ctrl |= FDMA_REQ_CTRL_OPCODE_LD_ST8;
  314. break;
  315. default:
  316. return -EINVAL;
  317. }
  318. fchan->cfg.req_ctrl &= ~FDMA_REQ_CTRL_NUM_OPS_MASK;
  319. fchan->cfg.req_ctrl |= FDMA_REQ_CTRL_NUM_OPS(maxburst-1);
  320. dreq_write(fchan, fchan->cfg.req_ctrl, FDMA_REQ_CTRL_OFST);
  321. fchan->cfg.dev_addr = addr;
  322. fchan->cfg.dir = direction;
  323. dev_dbg(fdev->dev, "chan:%d config_reqctrl:%#x req_ctrl:%#lx\n",
  324. ch_id, addr, fchan->cfg.req_ctrl);
  325. return 0;
  326. }
  327. static void fill_hw_node(struct st_fdma_hw_node *hw_node,
  328. struct st_fdma_chan *fchan,
  329. enum dma_transfer_direction direction)
  330. {
  331. if (direction == DMA_MEM_TO_DEV) {
  332. hw_node->control |= FDMA_NODE_CTRL_SRC_INCR;
  333. hw_node->control |= FDMA_NODE_CTRL_DST_STATIC;
  334. hw_node->daddr = fchan->cfg.dev_addr;
  335. } else {
  336. hw_node->control |= FDMA_NODE_CTRL_SRC_STATIC;
  337. hw_node->control |= FDMA_NODE_CTRL_DST_INCR;
  338. hw_node->saddr = fchan->cfg.dev_addr;
  339. }
  340. hw_node->generic.sstride = 0;
  341. hw_node->generic.dstride = 0;
  342. }
  343. static inline struct st_fdma_chan *st_fdma_prep_common(struct dma_chan *chan,
  344. size_t len, enum dma_transfer_direction direction)
  345. {
  346. struct st_fdma_chan *fchan;
  347. if (!chan || !len)
  348. return NULL;
  349. fchan = to_st_fdma_chan(chan);
  350. if (!is_slave_direction(direction)) {
  351. dev_err(fchan->fdev->dev, "bad direction?\n");
  352. return NULL;
  353. }
  354. return fchan;
  355. }
  356. static struct dma_async_tx_descriptor *st_fdma_prep_dma_cyclic(
  357. struct dma_chan *chan, dma_addr_t buf_addr, size_t len,
  358. size_t period_len, enum dma_transfer_direction direction,
  359. unsigned long flags)
  360. {
  361. struct st_fdma_chan *fchan;
  362. struct st_fdma_desc *fdesc;
  363. int sg_len, i;
  364. fchan = st_fdma_prep_common(chan, len, direction);
  365. if (!fchan)
  366. return NULL;
  367. if (!period_len)
  368. return NULL;
  369. if (config_reqctrl(fchan, direction)) {
  370. dev_err(fchan->fdev->dev, "bad width or direction\n");
  371. return NULL;
  372. }
  373. /* the buffer length must be a multiple of period_len */
  374. if (len % period_len != 0) {
  375. dev_err(fchan->fdev->dev, "len is not multiple of period\n");
  376. return NULL;
  377. }
  378. sg_len = len / period_len;
  379. fdesc = st_fdma_alloc_desc(fchan, sg_len);
  380. if (!fdesc) {
  381. dev_err(fchan->fdev->dev, "no memory for desc\n");
  382. return NULL;
  383. }
  384. fdesc->iscyclic = true;
  385. for (i = 0; i < sg_len; i++) {
  386. struct st_fdma_hw_node *hw_node = fdesc->node[i].desc;
  387. hw_node->next = fdesc->node[(i + 1) % sg_len].pdesc;
  388. hw_node->control =
  389. FDMA_NODE_CTRL_REQ_MAP_DREQ(fchan->dreq_line);
  390. hw_node->control |= FDMA_NODE_CTRL_INT_EON;
  391. fill_hw_node(hw_node, fchan, direction);
  392. if (direction == DMA_MEM_TO_DEV)
  393. hw_node->saddr = buf_addr + (i * period_len);
  394. else
  395. hw_node->daddr = buf_addr + (i * period_len);
  396. hw_node->nbytes = period_len;
  397. hw_node->generic.length = period_len;
  398. }
  399. return vchan_tx_prep(&fchan->vchan, &fdesc->vdesc, flags);
  400. }
  401. static struct dma_async_tx_descriptor *st_fdma_prep_slave_sg(
  402. struct dma_chan *chan, struct scatterlist *sgl,
  403. unsigned int sg_len, enum dma_transfer_direction direction,
  404. unsigned long flags, void *context)
  405. {
  406. struct st_fdma_chan *fchan;
  407. struct st_fdma_desc *fdesc;
  408. struct st_fdma_hw_node *hw_node;
  409. struct scatterlist *sg;
  410. int i;
  411. fchan = st_fdma_prep_common(chan, sg_len, direction);
  412. if (!fchan)
  413. return NULL;
  414. if (!sgl)
  415. return NULL;
  416. fdesc = st_fdma_alloc_desc(fchan, sg_len);
  417. if (!fdesc) {
  418. dev_err(fchan->fdev->dev, "no memory for desc\n");
  419. return NULL;
  420. }
  421. fdesc->iscyclic = false;
  422. for_each_sg(sgl, sg, sg_len, i) {
  423. hw_node = fdesc->node[i].desc;
  424. hw_node->next = fdesc->node[(i + 1) % sg_len].pdesc;
  425. hw_node->control = FDMA_NODE_CTRL_REQ_MAP_DREQ(fchan->dreq_line);
  426. fill_hw_node(hw_node, fchan, direction);
  427. if (direction == DMA_MEM_TO_DEV)
  428. hw_node->saddr = sg_dma_address(sg);
  429. else
  430. hw_node->daddr = sg_dma_address(sg);
  431. hw_node->nbytes = sg_dma_len(sg);
  432. hw_node->generic.length = sg_dma_len(sg);
  433. }
  434. /* interrupt at end of last node */
  435. hw_node->control |= FDMA_NODE_CTRL_INT_EON;
  436. return vchan_tx_prep(&fchan->vchan, &fdesc->vdesc, flags);
  437. }
  438. static size_t st_fdma_desc_residue(struct st_fdma_chan *fchan,
  439. struct virt_dma_desc *vdesc,
  440. bool in_progress)
  441. {
  442. struct st_fdma_desc *fdesc = fchan->fdesc;
  443. size_t residue = 0;
  444. dma_addr_t cur_addr = 0;
  445. int i;
  446. if (in_progress) {
  447. cur_addr = fchan_read(fchan, FDMA_CH_CMD_OFST);
  448. cur_addr &= FDMA_CH_CMD_DATA_MASK;
  449. }
  450. for (i = fchan->fdesc->n_nodes - 1 ; i >= 0; i--) {
  451. if (cur_addr == fdesc->node[i].pdesc) {
  452. residue += fnode_read(fchan, FDMA_CNTN_OFST);
  453. break;
  454. }
  455. residue += fdesc->node[i].desc->nbytes;
  456. }
  457. return residue;
  458. }
  459. static enum dma_status st_fdma_tx_status(struct dma_chan *chan,
  460. dma_cookie_t cookie,
  461. struct dma_tx_state *txstate)
  462. {
  463. struct st_fdma_chan *fchan = to_st_fdma_chan(chan);
  464. struct virt_dma_desc *vd;
  465. enum dma_status ret;
  466. unsigned long flags;
  467. ret = dma_cookie_status(chan, cookie, txstate);
  468. if (ret == DMA_COMPLETE || !txstate)
  469. return ret;
  470. spin_lock_irqsave(&fchan->vchan.lock, flags);
  471. vd = vchan_find_desc(&fchan->vchan, cookie);
  472. if (fchan->fdesc && cookie == fchan->fdesc->vdesc.tx.cookie)
  473. txstate->residue = st_fdma_desc_residue(fchan, vd, true);
  474. else if (vd)
  475. txstate->residue = st_fdma_desc_residue(fchan, vd, false);
  476. else
  477. txstate->residue = 0;
  478. spin_unlock_irqrestore(&fchan->vchan.lock, flags);
  479. return ret;
  480. }
  481. static void st_fdma_issue_pending(struct dma_chan *chan)
  482. {
  483. struct st_fdma_chan *fchan = to_st_fdma_chan(chan);
  484. unsigned long flags;
  485. spin_lock_irqsave(&fchan->vchan.lock, flags);
  486. if (vchan_issue_pending(&fchan->vchan) && !fchan->fdesc)
  487. st_fdma_xfer_desc(fchan);
  488. spin_unlock_irqrestore(&fchan->vchan.lock, flags);
  489. }
  490. static int st_fdma_pause(struct dma_chan *chan)
  491. {
  492. unsigned long flags;
  493. struct st_fdma_chan *fchan = to_st_fdma_chan(chan);
  494. int ch_id = fchan->vchan.chan.chan_id;
  495. unsigned long cmd = FDMA_CMD_PAUSE(ch_id);
  496. dev_dbg(fchan->fdev->dev, "pause chan:%d\n", ch_id);
  497. spin_lock_irqsave(&fchan->vchan.lock, flags);
  498. if (fchan->fdesc)
  499. fdma_write(fchan->fdev, cmd, FDMA_CMD_SET_OFST);
  500. spin_unlock_irqrestore(&fchan->vchan.lock, flags);
  501. return 0;
  502. }
  503. static int st_fdma_resume(struct dma_chan *chan)
  504. {
  505. unsigned long flags;
  506. unsigned long val;
  507. struct st_fdma_chan *fchan = to_st_fdma_chan(chan);
  508. int ch_id = fchan->vchan.chan.chan_id;
  509. dev_dbg(fchan->fdev->dev, "resume chan:%d\n", ch_id);
  510. spin_lock_irqsave(&fchan->vchan.lock, flags);
  511. if (fchan->fdesc) {
  512. val = fchan_read(fchan, FDMA_CH_CMD_OFST);
  513. val &= FDMA_CH_CMD_DATA_MASK;
  514. fchan_write(fchan, val, FDMA_CH_CMD_OFST);
  515. }
  516. spin_unlock_irqrestore(&fchan->vchan.lock, flags);
  517. return 0;
  518. }
  519. static int st_fdma_terminate_all(struct dma_chan *chan)
  520. {
  521. unsigned long flags;
  522. LIST_HEAD(head);
  523. struct st_fdma_chan *fchan = to_st_fdma_chan(chan);
  524. int ch_id = fchan->vchan.chan.chan_id;
  525. unsigned long cmd = FDMA_CMD_PAUSE(ch_id);
  526. dev_dbg(fchan->fdev->dev, "terminate chan:%d\n", ch_id);
  527. spin_lock_irqsave(&fchan->vchan.lock, flags);
  528. fdma_write(fchan->fdev, cmd, FDMA_CMD_SET_OFST);
  529. fchan->fdesc = NULL;
  530. vchan_get_all_descriptors(&fchan->vchan, &head);
  531. spin_unlock_irqrestore(&fchan->vchan.lock, flags);
  532. vchan_dma_desc_free_list(&fchan->vchan, &head);
  533. return 0;
  534. }
  535. static int st_fdma_slave_config(struct dma_chan *chan,
  536. struct dma_slave_config *slave_cfg)
  537. {
  538. struct st_fdma_chan *fchan = to_st_fdma_chan(chan);
  539. memcpy(&fchan->scfg, slave_cfg, sizeof(fchan->scfg));
  540. return 0;
  541. }
  542. static const struct st_fdma_driverdata fdma_mpe31_stih407_11 = {
  543. .name = "STiH407",
  544. .id = 0,
  545. };
  546. static const struct st_fdma_driverdata fdma_mpe31_stih407_12 = {
  547. .name = "STiH407",
  548. .id = 1,
  549. };
  550. static const struct st_fdma_driverdata fdma_mpe31_stih407_13 = {
  551. .name = "STiH407",
  552. .id = 2,
  553. };
  554. static const struct of_device_id st_fdma_match[] = {
  555. { .compatible = "st,stih407-fdma-mpe31-11"
  556. , .data = &fdma_mpe31_stih407_11 },
  557. { .compatible = "st,stih407-fdma-mpe31-12"
  558. , .data = &fdma_mpe31_stih407_12 },
  559. { .compatible = "st,stih407-fdma-mpe31-13"
  560. , .data = &fdma_mpe31_stih407_13 },
  561. {},
  562. };
  563. MODULE_DEVICE_TABLE(of, st_fdma_match);
  564. static int st_fdma_parse_dt(struct platform_device *pdev,
  565. const struct st_fdma_driverdata *drvdata,
  566. struct st_fdma_dev *fdev)
  567. {
  568. snprintf(fdev->fw_name, FW_NAME_SIZE, "fdma_%s_%d.elf",
  569. drvdata->name, drvdata->id);
  570. return of_property_read_u32(pdev->dev.of_node, "dma-channels",
  571. &fdev->nr_channels);
  572. }
  573. #define FDMA_DMA_BUSWIDTHS (BIT(DMA_SLAVE_BUSWIDTH_1_BYTE) | \
  574. BIT(DMA_SLAVE_BUSWIDTH_2_BYTES) | \
  575. BIT(DMA_SLAVE_BUSWIDTH_3_BYTES) | \
  576. BIT(DMA_SLAVE_BUSWIDTH_4_BYTES))
  577. static void st_fdma_free(struct st_fdma_dev *fdev)
  578. {
  579. struct st_fdma_chan *fchan;
  580. int i;
  581. for (i = 0; i < fdev->nr_channels; i++) {
  582. fchan = &fdev->chans[i];
  583. list_del(&fchan->vchan.chan.device_node);
  584. tasklet_kill(&fchan->vchan.task);
  585. }
  586. }
  587. static int st_fdma_probe(struct platform_device *pdev)
  588. {
  589. struct st_fdma_dev *fdev;
  590. struct device_node *np = pdev->dev.of_node;
  591. const struct st_fdma_driverdata *drvdata;
  592. int ret, i;
  593. drvdata = device_get_match_data(&pdev->dev);
  594. fdev = devm_kzalloc(&pdev->dev, sizeof(*fdev), GFP_KERNEL);
  595. if (!fdev)
  596. return -ENOMEM;
  597. ret = st_fdma_parse_dt(pdev, drvdata, fdev);
  598. if (ret) {
  599. dev_err(&pdev->dev, "unable to find platform data\n");
  600. goto err;
  601. }
  602. fdev->chans = devm_kcalloc(&pdev->dev, fdev->nr_channels,
  603. sizeof(struct st_fdma_chan), GFP_KERNEL);
  604. if (!fdev->chans)
  605. return -ENOMEM;
  606. fdev->dev = &pdev->dev;
  607. fdev->drvdata = drvdata;
  608. platform_set_drvdata(pdev, fdev);
  609. fdev->irq = platform_get_irq(pdev, 0);
  610. if (fdev->irq < 0)
  611. return -EINVAL;
  612. ret = devm_request_irq(&pdev->dev, fdev->irq, st_fdma_irq_handler, 0,
  613. dev_name(&pdev->dev), fdev);
  614. if (ret) {
  615. dev_err(&pdev->dev, "Failed to request irq (%d)\n", ret);
  616. goto err;
  617. }
  618. fdev->slim_rproc = st_slim_rproc_alloc(pdev, fdev->fw_name);
  619. if (IS_ERR(fdev->slim_rproc)) {
  620. ret = PTR_ERR(fdev->slim_rproc);
  621. dev_err(&pdev->dev, "slim_rproc_alloc failed (%d)\n", ret);
  622. goto err;
  623. }
  624. /* Initialise list of FDMA channels */
  625. INIT_LIST_HEAD(&fdev->dma_device.channels);
  626. for (i = 0; i < fdev->nr_channels; i++) {
  627. struct st_fdma_chan *fchan = &fdev->chans[i];
  628. fchan->fdev = fdev;
  629. fchan->vchan.desc_free = st_fdma_free_desc;
  630. vchan_init(&fchan->vchan, &fdev->dma_device);
  631. }
  632. /* Initialise the FDMA dreq (reserve 0 & 31 for FDMA use) */
  633. fdev->dreq_mask = BIT(0) | BIT(31);
  634. dma_cap_set(DMA_SLAVE, fdev->dma_device.cap_mask);
  635. dma_cap_set(DMA_CYCLIC, fdev->dma_device.cap_mask);
  636. dma_cap_set(DMA_MEMCPY, fdev->dma_device.cap_mask);
  637. fdev->dma_device.dev = &pdev->dev;
  638. fdev->dma_device.device_alloc_chan_resources = st_fdma_alloc_chan_res;
  639. fdev->dma_device.device_free_chan_resources = st_fdma_free_chan_res;
  640. fdev->dma_device.device_prep_dma_cyclic = st_fdma_prep_dma_cyclic;
  641. fdev->dma_device.device_prep_slave_sg = st_fdma_prep_slave_sg;
  642. fdev->dma_device.device_prep_dma_memcpy = st_fdma_prep_dma_memcpy;
  643. fdev->dma_device.device_tx_status = st_fdma_tx_status;
  644. fdev->dma_device.device_issue_pending = st_fdma_issue_pending;
  645. fdev->dma_device.device_terminate_all = st_fdma_terminate_all;
  646. fdev->dma_device.device_config = st_fdma_slave_config;
  647. fdev->dma_device.device_pause = st_fdma_pause;
  648. fdev->dma_device.device_resume = st_fdma_resume;
  649. fdev->dma_device.src_addr_widths = FDMA_DMA_BUSWIDTHS;
  650. fdev->dma_device.dst_addr_widths = FDMA_DMA_BUSWIDTHS;
  651. fdev->dma_device.directions = BIT(DMA_DEV_TO_MEM) | BIT(DMA_MEM_TO_DEV);
  652. fdev->dma_device.residue_granularity = DMA_RESIDUE_GRANULARITY_BURST;
  653. ret = dmaenginem_async_device_register(&fdev->dma_device);
  654. if (ret) {
  655. dev_err(&pdev->dev,
  656. "Failed to register DMA device (%d)\n", ret);
  657. goto err_rproc;
  658. }
  659. ret = of_dma_controller_register(np, st_fdma_of_xlate, fdev);
  660. if (ret) {
  661. dev_err(&pdev->dev,
  662. "Failed to register controller (%d)\n", ret);
  663. goto err_rproc;
  664. }
  665. dev_info(&pdev->dev, "ST FDMA engine driver, irq:%d\n", fdev->irq);
  666. return 0;
  667. err_rproc:
  668. st_fdma_free(fdev);
  669. st_slim_rproc_put(fdev->slim_rproc);
  670. err:
  671. return ret;
  672. }
  673. static void st_fdma_remove(struct platform_device *pdev)
  674. {
  675. struct st_fdma_dev *fdev = platform_get_drvdata(pdev);
  676. devm_free_irq(&pdev->dev, fdev->irq, fdev);
  677. st_slim_rproc_put(fdev->slim_rproc);
  678. of_dma_controller_free(pdev->dev.of_node);
  679. }
  680. static struct platform_driver st_fdma_platform_driver = {
  681. .driver = {
  682. .name = DRIVER_NAME,
  683. .of_match_table = st_fdma_match,
  684. },
  685. .probe = st_fdma_probe,
  686. .remove_new = st_fdma_remove,
  687. };
  688. module_platform_driver(st_fdma_platform_driver);
  689. MODULE_LICENSE("GPL v2");
  690. MODULE_DESCRIPTION("STMicroelectronics FDMA engine driver");
  691. MODULE_AUTHOR("Ludovic.barre <Ludovic.barre@st.com>");
  692. MODULE_AUTHOR("Peter Griffin <peter.griffin@linaro.org>");
  693. MODULE_ALIAS("platform:" DRIVER_NAME);