dmaengine.h 46 KB

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  1. /*
  2. * Copyright(c) 2004 - 2006 Intel Corporation. All rights reserved.
  3. *
  4. * This program is free software; you can redistribute it and/or modify it
  5. * under the terms of the GNU General Public License as published by the Free
  6. * Software Foundation; either version 2 of the License, or (at your option)
  7. * any later version.
  8. *
  9. * This program is distributed in the hope that it will be useful, but WITHOUT
  10. * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
  11. * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
  12. * more details.
  13. *
  14. * The full GNU General Public License is included in this distribution in the
  15. * file called COPYING.
  16. */
  17. #ifndef LINUX_DMAENGINE_H
  18. #define LINUX_DMAENGINE_H
  19. #include <linux/device.h>
  20. #include <linux/err.h>
  21. #include <linux/uio.h>
  22. #include <linux/bug.h>
  23. #include <linux/scatterlist.h>
  24. #include <linux/bitmap.h>
  25. #include <linux/types.h>
  26. #include <asm/page.h>
  27. /**
  28. * typedef dma_cookie_t - an opaque DMA cookie
  29. *
  30. * if dma_cookie_t is >0 it's a DMA request cookie, <0 it's an error code
  31. */
  32. typedef s32 dma_cookie_t;
  33. #define DMA_MIN_COOKIE 1
  34. static inline int dma_submit_error(dma_cookie_t cookie)
  35. {
  36. return cookie < 0 ? cookie : 0;
  37. }
  38. /**
  39. * enum dma_status - DMA transaction status
  40. * @DMA_COMPLETE: transaction completed
  41. * @DMA_IN_PROGRESS: transaction not yet processed
  42. * @DMA_PAUSED: transaction is paused
  43. * @DMA_ERROR: transaction failed
  44. */
  45. enum dma_status {
  46. DMA_COMPLETE,
  47. DMA_IN_PROGRESS,
  48. DMA_PAUSED,
  49. DMA_ERROR,
  50. };
  51. /**
  52. * enum dma_transaction_type - DMA transaction types/indexes
  53. *
  54. * Note: The DMA_ASYNC_TX capability is not to be set by drivers. It is
  55. * automatically set as dma devices are registered.
  56. */
  57. enum dma_transaction_type {
  58. DMA_MEMCPY,
  59. DMA_XOR,
  60. DMA_PQ,
  61. DMA_XOR_VAL,
  62. DMA_PQ_VAL,
  63. DMA_MEMSET,
  64. DMA_MEMSET_SG,
  65. DMA_INTERRUPT,
  66. DMA_SG,
  67. DMA_PRIVATE,
  68. DMA_ASYNC_TX,
  69. DMA_SLAVE,
  70. DMA_CYCLIC,
  71. DMA_INTERLEAVE,
  72. /* last transaction type for creation of the capabilities mask */
  73. DMA_TX_TYPE_END,
  74. };
  75. /**
  76. * enum dma_transfer_direction - dma transfer mode and direction indicator
  77. * @DMA_MEM_TO_MEM: Async/Memcpy mode
  78. * @DMA_MEM_TO_DEV: Slave mode & From Memory to Device
  79. * @DMA_DEV_TO_MEM: Slave mode & From Device to Memory
  80. * @DMA_DEV_TO_DEV: Slave mode & From Device to Device
  81. */
  82. enum dma_transfer_direction {
  83. DMA_MEM_TO_MEM,
  84. DMA_MEM_TO_DEV,
  85. DMA_DEV_TO_MEM,
  86. DMA_DEV_TO_DEV,
  87. DMA_TRANS_NONE,
  88. };
  89. /**
  90. * Interleaved Transfer Request
  91. * ----------------------------
  92. * A chunk is collection of contiguous bytes to be transfered.
  93. * The gap(in bytes) between two chunks is called inter-chunk-gap(ICG).
  94. * ICGs may or maynot change between chunks.
  95. * A FRAME is the smallest series of contiguous {chunk,icg} pairs,
  96. * that when repeated an integral number of times, specifies the transfer.
  97. * A transfer template is specification of a Frame, the number of times
  98. * it is to be repeated and other per-transfer attributes.
  99. *
  100. * Practically, a client driver would have ready a template for each
  101. * type of transfer it is going to need during its lifetime and
  102. * set only 'src_start' and 'dst_start' before submitting the requests.
  103. *
  104. *
  105. * | Frame-1 | Frame-2 | ~ | Frame-'numf' |
  106. * |====....==.===...=...|====....==.===...=...| ~ |====....==.===...=...|
  107. *
  108. * == Chunk size
  109. * ... ICG
  110. */
  111. /**
  112. * struct data_chunk - Element of scatter-gather list that makes a frame.
  113. * @size: Number of bytes to read from source.
  114. * size_dst := fn(op, size_src), so doesn't mean much for destination.
  115. * @icg: Number of bytes to jump after last src/dst address of this
  116. * chunk and before first src/dst address for next chunk.
  117. * Ignored for dst(assumed 0), if dst_inc is true and dst_sgl is false.
  118. * Ignored for src(assumed 0), if src_inc is true and src_sgl is false.
  119. * @dst_icg: Number of bytes to jump after last dst address of this
  120. * chunk and before the first dst address for next chunk.
  121. * Ignored if dst_inc is true and dst_sgl is false.
  122. * @src_icg: Number of bytes to jump after last src address of this
  123. * chunk and before the first src address for next chunk.
  124. * Ignored if src_inc is true and src_sgl is false.
  125. */
  126. struct data_chunk {
  127. size_t size;
  128. size_t icg;
  129. size_t dst_icg;
  130. size_t src_icg;
  131. };
  132. /**
  133. * struct dma_interleaved_template - Template to convey DMAC the transfer pattern
  134. * and attributes.
  135. * @src_start: Bus address of source for the first chunk.
  136. * @dst_start: Bus address of destination for the first chunk.
  137. * @dir: Specifies the type of Source and Destination.
  138. * @src_inc: If the source address increments after reading from it.
  139. * @dst_inc: If the destination address increments after writing to it.
  140. * @src_sgl: If the 'icg' of sgl[] applies to Source (scattered read).
  141. * Otherwise, source is read contiguously (icg ignored).
  142. * Ignored if src_inc is false.
  143. * @dst_sgl: If the 'icg' of sgl[] applies to Destination (scattered write).
  144. * Otherwise, destination is filled contiguously (icg ignored).
  145. * Ignored if dst_inc is false.
  146. * @numf: Number of frames in this template.
  147. * @frame_size: Number of chunks in a frame i.e, size of sgl[].
  148. * @sgl: Array of {chunk,icg} pairs that make up a frame.
  149. */
  150. struct dma_interleaved_template {
  151. dma_addr_t src_start;
  152. dma_addr_t dst_start;
  153. enum dma_transfer_direction dir;
  154. bool src_inc;
  155. bool dst_inc;
  156. bool src_sgl;
  157. bool dst_sgl;
  158. size_t numf;
  159. size_t frame_size;
  160. struct data_chunk sgl[0];
  161. };
  162. /**
  163. * enum dma_ctrl_flags - DMA flags to augment operation preparation,
  164. * control completion, and communicate status.
  165. * @DMA_PREP_INTERRUPT - trigger an interrupt (callback) upon completion of
  166. * this transaction
  167. * @DMA_CTRL_ACK - if clear, the descriptor cannot be reused until the client
  168. * acknowledges receipt, i.e. has has a chance to establish any dependency
  169. * chains
  170. * @DMA_PREP_PQ_DISABLE_P - prevent generation of P while generating Q
  171. * @DMA_PREP_PQ_DISABLE_Q - prevent generation of Q while generating P
  172. * @DMA_PREP_CONTINUE - indicate to a driver that it is reusing buffers as
  173. * sources that were the result of a previous operation, in the case of a PQ
  174. * operation it continues the calculation with new sources
  175. * @DMA_PREP_FENCE - tell the driver that subsequent operations depend
  176. * on the result of this operation
  177. * @DMA_CTRL_REUSE: client can reuse the descriptor and submit again till
  178. * cleared or freed
  179. */
  180. enum dma_ctrl_flags {
  181. DMA_PREP_INTERRUPT = (1 << 0),
  182. DMA_CTRL_ACK = (1 << 1),
  183. DMA_PREP_PQ_DISABLE_P = (1 << 2),
  184. DMA_PREP_PQ_DISABLE_Q = (1 << 3),
  185. DMA_PREP_CONTINUE = (1 << 4),
  186. DMA_PREP_FENCE = (1 << 5),
  187. DMA_CTRL_REUSE = (1 << 6),
  188. };
  189. /**
  190. * enum sum_check_bits - bit position of pq_check_flags
  191. */
  192. enum sum_check_bits {
  193. SUM_CHECK_P = 0,
  194. SUM_CHECK_Q = 1,
  195. };
  196. /**
  197. * enum pq_check_flags - result of async_{xor,pq}_zero_sum operations
  198. * @SUM_CHECK_P_RESULT - 1 if xor zero sum error, 0 otherwise
  199. * @SUM_CHECK_Q_RESULT - 1 if reed-solomon zero sum error, 0 otherwise
  200. */
  201. enum sum_check_flags {
  202. SUM_CHECK_P_RESULT = (1 << SUM_CHECK_P),
  203. SUM_CHECK_Q_RESULT = (1 << SUM_CHECK_Q),
  204. };
  205. /**
  206. * dma_cap_mask_t - capabilities bitmap modeled after cpumask_t.
  207. * See linux/cpumask.h
  208. */
  209. typedef struct { DECLARE_BITMAP(bits, DMA_TX_TYPE_END); } dma_cap_mask_t;
  210. /**
  211. * struct dma_chan_percpu - the per-CPU part of struct dma_chan
  212. * @memcpy_count: transaction counter
  213. * @bytes_transferred: byte counter
  214. */
  215. struct dma_chan_percpu {
  216. /* stats */
  217. unsigned long memcpy_count;
  218. unsigned long bytes_transferred;
  219. };
  220. /**
  221. * struct dma_router - DMA router structure
  222. * @dev: pointer to the DMA router device
  223. * @route_free: function to be called when the route can be disconnected
  224. */
  225. struct dma_router {
  226. struct device *dev;
  227. void (*route_free)(struct device *dev, void *route_data);
  228. };
  229. /**
  230. * struct dma_chan - devices supply DMA channels, clients use them
  231. * @device: ptr to the dma device who supplies this channel, always !%NULL
  232. * @cookie: last cookie value returned to client
  233. * @completed_cookie: last completed cookie for this channel
  234. * @chan_id: channel ID for sysfs
  235. * @dev: class device for sysfs
  236. * @device_node: used to add this to the device chan list
  237. * @local: per-cpu pointer to a struct dma_chan_percpu
  238. * @client_count: how many clients are using this channel
  239. * @table_count: number of appearances in the mem-to-mem allocation table
  240. * @router: pointer to the DMA router structure
  241. * @route_data: channel specific data for the router
  242. * @private: private data for certain client-channel associations
  243. */
  244. struct dma_chan {
  245. struct dma_device *device;
  246. dma_cookie_t cookie;
  247. dma_cookie_t completed_cookie;
  248. /* sysfs */
  249. int chan_id;
  250. struct dma_chan_dev *dev;
  251. struct list_head device_node;
  252. struct dma_chan_percpu __percpu *local;
  253. int client_count;
  254. int table_count;
  255. /* DMA router */
  256. struct dma_router *router;
  257. void *route_data;
  258. void *private;
  259. };
  260. /**
  261. * struct dma_chan_dev - relate sysfs device node to backing channel device
  262. * @chan: driver channel device
  263. * @device: sysfs device
  264. * @dev_id: parent dma_device dev_id
  265. * @idr_ref: reference count to gate release of dma_device dev_id
  266. */
  267. struct dma_chan_dev {
  268. struct dma_chan *chan;
  269. struct device device;
  270. int dev_id;
  271. atomic_t *idr_ref;
  272. };
  273. /**
  274. * enum dma_slave_buswidth - defines bus width of the DMA slave
  275. * device, source or target buses
  276. */
  277. enum dma_slave_buswidth {
  278. DMA_SLAVE_BUSWIDTH_UNDEFINED = 0,
  279. DMA_SLAVE_BUSWIDTH_1_BYTE = 1,
  280. DMA_SLAVE_BUSWIDTH_2_BYTES = 2,
  281. DMA_SLAVE_BUSWIDTH_3_BYTES = 3,
  282. DMA_SLAVE_BUSWIDTH_4_BYTES = 4,
  283. DMA_SLAVE_BUSWIDTH_8_BYTES = 8,
  284. DMA_SLAVE_BUSWIDTH_16_BYTES = 16,
  285. DMA_SLAVE_BUSWIDTH_32_BYTES = 32,
  286. DMA_SLAVE_BUSWIDTH_64_BYTES = 64,
  287. };
  288. /**
  289. * struct dma_slave_config - dma slave channel runtime config
  290. * @direction: whether the data shall go in or out on this slave
  291. * channel, right now. DMA_MEM_TO_DEV and DMA_DEV_TO_MEM are
  292. * legal values. DEPRECATED, drivers should use the direction argument
  293. * to the device_prep_slave_sg and device_prep_dma_cyclic functions or
  294. * the dir field in the dma_interleaved_template structure.
  295. * @src_addr: this is the physical address where DMA slave data
  296. * should be read (RX), if the source is memory this argument is
  297. * ignored.
  298. * @dst_addr: this is the physical address where DMA slave data
  299. * should be written (TX), if the source is memory this argument
  300. * is ignored.
  301. * @src_addr_width: this is the width in bytes of the source (RX)
  302. * register where DMA data shall be read. If the source
  303. * is memory this may be ignored depending on architecture.
  304. * Legal values: 1, 2, 4, 8.
  305. * @dst_addr_width: same as src_addr_width but for destination
  306. * target (TX) mutatis mutandis.
  307. * @src_maxburst: the maximum number of words (note: words, as in
  308. * units of the src_addr_width member, not bytes) that can be sent
  309. * in one burst to the device. Typically something like half the
  310. * FIFO depth on I/O peripherals so you don't overflow it. This
  311. * may or may not be applicable on memory sources.
  312. * @dst_maxburst: same as src_maxburst but for destination target
  313. * mutatis mutandis.
  314. * @src_port_window_size: The length of the register area in words the data need
  315. * to be accessed on the device side. It is only used for devices which is using
  316. * an area instead of a single register to receive the data. Typically the DMA
  317. * loops in this area in order to transfer the data.
  318. * @dst_port_window_size: same as src_port_window_size but for the destination
  319. * port.
  320. * @device_fc: Flow Controller Settings. Only valid for slave channels. Fill
  321. * with 'true' if peripheral should be flow controller. Direction will be
  322. * selected at Runtime.
  323. * @slave_id: Slave requester id. Only valid for slave channels. The dma
  324. * slave peripheral will have unique id as dma requester which need to be
  325. * pass as slave config.
  326. *
  327. * This struct is passed in as configuration data to a DMA engine
  328. * in order to set up a certain channel for DMA transport at runtime.
  329. * The DMA device/engine has to provide support for an additional
  330. * callback in the dma_device structure, device_config and this struct
  331. * will then be passed in as an argument to the function.
  332. *
  333. * The rationale for adding configuration information to this struct is as
  334. * follows: if it is likely that more than one DMA slave controllers in
  335. * the world will support the configuration option, then make it generic.
  336. * If not: if it is fixed so that it be sent in static from the platform
  337. * data, then prefer to do that.
  338. */
  339. struct dma_slave_config {
  340. enum dma_transfer_direction direction;
  341. phys_addr_t src_addr;
  342. phys_addr_t dst_addr;
  343. enum dma_slave_buswidth src_addr_width;
  344. enum dma_slave_buswidth dst_addr_width;
  345. u32 src_maxburst;
  346. u32 dst_maxburst;
  347. u32 src_port_window_size;
  348. u32 dst_port_window_size;
  349. bool device_fc;
  350. unsigned int slave_id;
  351. };
  352. /**
  353. * enum dma_residue_granularity - Granularity of the reported transfer residue
  354. * @DMA_RESIDUE_GRANULARITY_DESCRIPTOR: Residue reporting is not support. The
  355. * DMA channel is only able to tell whether a descriptor has been completed or
  356. * not, which means residue reporting is not supported by this channel. The
  357. * residue field of the dma_tx_state field will always be 0.
  358. * @DMA_RESIDUE_GRANULARITY_SEGMENT: Residue is updated after each successfully
  359. * completed segment of the transfer (For cyclic transfers this is after each
  360. * period). This is typically implemented by having the hardware generate an
  361. * interrupt after each transferred segment and then the drivers updates the
  362. * outstanding residue by the size of the segment. Another possibility is if
  363. * the hardware supports scatter-gather and the segment descriptor has a field
  364. * which gets set after the segment has been completed. The driver then counts
  365. * the number of segments without the flag set to compute the residue.
  366. * @DMA_RESIDUE_GRANULARITY_BURST: Residue is updated after each transferred
  367. * burst. This is typically only supported if the hardware has a progress
  368. * register of some sort (E.g. a register with the current read/write address
  369. * or a register with the amount of bursts/beats/bytes that have been
  370. * transferred or still need to be transferred).
  371. */
  372. enum dma_residue_granularity {
  373. DMA_RESIDUE_GRANULARITY_DESCRIPTOR = 0,
  374. DMA_RESIDUE_GRANULARITY_SEGMENT = 1,
  375. DMA_RESIDUE_GRANULARITY_BURST = 2,
  376. };
  377. /* struct dma_slave_caps - expose capabilities of a slave channel only
  378. *
  379. * @src_addr_widths: bit mask of src addr widths the channel supports
  380. * @dst_addr_widths: bit mask of dstn addr widths the channel supports
  381. * @directions: bit mask of slave direction the channel supported
  382. * since the enum dma_transfer_direction is not defined as bits for each
  383. * type of direction, the dma controller should fill (1 << <TYPE>) and same
  384. * should be checked by controller as well
  385. * @max_burst: max burst capability per-transfer
  386. * @cmd_pause: true, if pause and thereby resume is supported
  387. * @cmd_terminate: true, if terminate cmd is supported
  388. * @residue_granularity: granularity of the reported transfer residue
  389. * @descriptor_reuse: if a descriptor can be reused by client and
  390. * resubmitted multiple times
  391. */
  392. struct dma_slave_caps {
  393. u32 src_addr_widths;
  394. u32 dst_addr_widths;
  395. u32 directions;
  396. u32 max_burst;
  397. bool cmd_pause;
  398. bool cmd_terminate;
  399. enum dma_residue_granularity residue_granularity;
  400. bool descriptor_reuse;
  401. };
  402. static inline const char *dma_chan_name(struct dma_chan *chan)
  403. {
  404. return dev_name(&chan->dev->device);
  405. }
  406. void dma_chan_cleanup(struct kref *kref);
  407. /**
  408. * typedef dma_filter_fn - callback filter for dma_request_channel
  409. * @chan: channel to be reviewed
  410. * @filter_param: opaque parameter passed through dma_request_channel
  411. *
  412. * When this optional parameter is specified in a call to dma_request_channel a
  413. * suitable channel is passed to this routine for further dispositioning before
  414. * being returned. Where 'suitable' indicates a non-busy channel that
  415. * satisfies the given capability mask. It returns 'true' to indicate that the
  416. * channel is suitable.
  417. */
  418. typedef bool (*dma_filter_fn)(struct dma_chan *chan, void *filter_param);
  419. typedef void (*dma_async_tx_callback)(void *dma_async_param);
  420. enum dmaengine_tx_result {
  421. DMA_TRANS_NOERROR = 0, /* SUCCESS */
  422. DMA_TRANS_READ_FAILED, /* Source DMA read failed */
  423. DMA_TRANS_WRITE_FAILED, /* Destination DMA write failed */
  424. DMA_TRANS_ABORTED, /* Op never submitted / aborted */
  425. };
  426. struct dmaengine_result {
  427. enum dmaengine_tx_result result;
  428. u32 residue;
  429. };
  430. typedef void (*dma_async_tx_callback_result)(void *dma_async_param,
  431. const struct dmaengine_result *result);
  432. struct dmaengine_unmap_data {
  433. u8 map_cnt;
  434. u8 to_cnt;
  435. u8 from_cnt;
  436. u8 bidi_cnt;
  437. struct device *dev;
  438. struct kref kref;
  439. size_t len;
  440. dma_addr_t addr[0];
  441. };
  442. /**
  443. * struct dma_async_tx_descriptor - async transaction descriptor
  444. * ---dma generic offload fields---
  445. * @cookie: tracking cookie for this transaction, set to -EBUSY if
  446. * this tx is sitting on a dependency list
  447. * @flags: flags to augment operation preparation, control completion, and
  448. * communicate status
  449. * @phys: physical address of the descriptor
  450. * @chan: target channel for this operation
  451. * @tx_submit: accept the descriptor, assign ordered cookie and mark the
  452. * descriptor pending. To be pushed on .issue_pending() call
  453. * @callback: routine to call after this operation is complete
  454. * @callback_param: general parameter to pass to the callback routine
  455. * ---async_tx api specific fields---
  456. * @next: at completion submit this descriptor
  457. * @parent: pointer to the next level up in the dependency chain
  458. * @lock: protect the parent and next pointers
  459. */
  460. struct dma_async_tx_descriptor {
  461. dma_cookie_t cookie;
  462. enum dma_ctrl_flags flags; /* not a 'long' to pack with cookie */
  463. dma_addr_t phys;
  464. struct dma_chan *chan;
  465. dma_cookie_t (*tx_submit)(struct dma_async_tx_descriptor *tx);
  466. int (*desc_free)(struct dma_async_tx_descriptor *tx);
  467. dma_async_tx_callback callback;
  468. dma_async_tx_callback_result callback_result;
  469. void *callback_param;
  470. struct dmaengine_unmap_data *unmap;
  471. #ifdef CONFIG_ASYNC_TX_ENABLE_CHANNEL_SWITCH
  472. struct dma_async_tx_descriptor *next;
  473. struct dma_async_tx_descriptor *parent;
  474. spinlock_t lock;
  475. #endif
  476. };
  477. #ifdef CONFIG_DMA_ENGINE
  478. static inline void dma_set_unmap(struct dma_async_tx_descriptor *tx,
  479. struct dmaengine_unmap_data *unmap)
  480. {
  481. kref_get(&unmap->kref);
  482. tx->unmap = unmap;
  483. }
  484. struct dmaengine_unmap_data *
  485. dmaengine_get_unmap_data(struct device *dev, int nr, gfp_t flags);
  486. void dmaengine_unmap_put(struct dmaengine_unmap_data *unmap);
  487. #else
  488. static inline void dma_set_unmap(struct dma_async_tx_descriptor *tx,
  489. struct dmaengine_unmap_data *unmap)
  490. {
  491. }
  492. static inline struct dmaengine_unmap_data *
  493. dmaengine_get_unmap_data(struct device *dev, int nr, gfp_t flags)
  494. {
  495. return NULL;
  496. }
  497. static inline void dmaengine_unmap_put(struct dmaengine_unmap_data *unmap)
  498. {
  499. }
  500. #endif
  501. static inline void dma_descriptor_unmap(struct dma_async_tx_descriptor *tx)
  502. {
  503. if (tx->unmap) {
  504. dmaengine_unmap_put(tx->unmap);
  505. tx->unmap = NULL;
  506. }
  507. }
  508. #ifndef CONFIG_ASYNC_TX_ENABLE_CHANNEL_SWITCH
  509. static inline void txd_lock(struct dma_async_tx_descriptor *txd)
  510. {
  511. }
  512. static inline void txd_unlock(struct dma_async_tx_descriptor *txd)
  513. {
  514. }
  515. static inline void txd_chain(struct dma_async_tx_descriptor *txd, struct dma_async_tx_descriptor *next)
  516. {
  517. BUG();
  518. }
  519. static inline void txd_clear_parent(struct dma_async_tx_descriptor *txd)
  520. {
  521. }
  522. static inline void txd_clear_next(struct dma_async_tx_descriptor *txd)
  523. {
  524. }
  525. static inline struct dma_async_tx_descriptor *txd_next(struct dma_async_tx_descriptor *txd)
  526. {
  527. return NULL;
  528. }
  529. static inline struct dma_async_tx_descriptor *txd_parent(struct dma_async_tx_descriptor *txd)
  530. {
  531. return NULL;
  532. }
  533. #else
  534. static inline void txd_lock(struct dma_async_tx_descriptor *txd)
  535. {
  536. spin_lock_bh(&txd->lock);
  537. }
  538. static inline void txd_unlock(struct dma_async_tx_descriptor *txd)
  539. {
  540. spin_unlock_bh(&txd->lock);
  541. }
  542. static inline void txd_chain(struct dma_async_tx_descriptor *txd, struct dma_async_tx_descriptor *next)
  543. {
  544. txd->next = next;
  545. next->parent = txd;
  546. }
  547. static inline void txd_clear_parent(struct dma_async_tx_descriptor *txd)
  548. {
  549. txd->parent = NULL;
  550. }
  551. static inline void txd_clear_next(struct dma_async_tx_descriptor *txd)
  552. {
  553. txd->next = NULL;
  554. }
  555. static inline struct dma_async_tx_descriptor *txd_parent(struct dma_async_tx_descriptor *txd)
  556. {
  557. return txd->parent;
  558. }
  559. static inline struct dma_async_tx_descriptor *txd_next(struct dma_async_tx_descriptor *txd)
  560. {
  561. return txd->next;
  562. }
  563. #endif
  564. /**
  565. * struct dma_tx_state - filled in to report the status of
  566. * a transfer.
  567. * @last: last completed DMA cookie
  568. * @used: last issued DMA cookie (i.e. the one in progress)
  569. * @residue: the remaining number of bytes left to transmit
  570. * on the selected transfer for states DMA_IN_PROGRESS and
  571. * DMA_PAUSED if this is implemented in the driver, else 0
  572. */
  573. struct dma_tx_state {
  574. dma_cookie_t last;
  575. dma_cookie_t used;
  576. u32 residue;
  577. };
  578. /**
  579. * enum dmaengine_alignment - defines alignment of the DMA async tx
  580. * buffers
  581. */
  582. enum dmaengine_alignment {
  583. DMAENGINE_ALIGN_1_BYTE = 0,
  584. DMAENGINE_ALIGN_2_BYTES = 1,
  585. DMAENGINE_ALIGN_4_BYTES = 2,
  586. DMAENGINE_ALIGN_8_BYTES = 3,
  587. DMAENGINE_ALIGN_16_BYTES = 4,
  588. DMAENGINE_ALIGN_32_BYTES = 5,
  589. DMAENGINE_ALIGN_64_BYTES = 6,
  590. };
  591. /**
  592. * struct dma_slave_map - associates slave device and it's slave channel with
  593. * parameter to be used by a filter function
  594. * @devname: name of the device
  595. * @slave: slave channel name
  596. * @param: opaque parameter to pass to struct dma_filter.fn
  597. */
  598. struct dma_slave_map {
  599. const char *devname;
  600. const char *slave;
  601. void *param;
  602. };
  603. /**
  604. * struct dma_filter - information for slave device/channel to filter_fn/param
  605. * mapping
  606. * @fn: filter function callback
  607. * @mapcnt: number of slave device/channel in the map
  608. * @map: array of channel to filter mapping data
  609. */
  610. struct dma_filter {
  611. dma_filter_fn fn;
  612. int mapcnt;
  613. const struct dma_slave_map *map;
  614. };
  615. /**
  616. * struct dma_device - info on the entity supplying DMA services
  617. * @chancnt: how many DMA channels are supported
  618. * @privatecnt: how many DMA channels are requested by dma_request_channel
  619. * @channels: the list of struct dma_chan
  620. * @global_node: list_head for global dma_device_list
  621. * @filter: information for device/slave to filter function/param mapping
  622. * @cap_mask: one or more dma_capability flags
  623. * @max_xor: maximum number of xor sources, 0 if no capability
  624. * @max_pq: maximum number of PQ sources and PQ-continue capability
  625. * @copy_align: alignment shift for memcpy operations
  626. * @xor_align: alignment shift for xor operations
  627. * @pq_align: alignment shift for pq operations
  628. * @fill_align: alignment shift for memset operations
  629. * @dev_id: unique device ID
  630. * @dev: struct device reference for dma mapping api
  631. * @src_addr_widths: bit mask of src addr widths the device supports
  632. * @dst_addr_widths: bit mask of dst addr widths the device supports
  633. * @directions: bit mask of slave direction the device supports since
  634. * the enum dma_transfer_direction is not defined as bits for
  635. * each type of direction, the dma controller should fill (1 <<
  636. * <TYPE>) and same should be checked by controller as well
  637. * @max_burst: max burst capability per-transfer
  638. * @residue_granularity: granularity of the transfer residue reported
  639. * by tx_status
  640. * @device_alloc_chan_resources: allocate resources and return the
  641. * number of allocated descriptors
  642. * @device_free_chan_resources: release DMA channel's resources
  643. * @device_prep_dma_memcpy: prepares a memcpy operation
  644. * @device_prep_dma_xor: prepares a xor operation
  645. * @device_prep_dma_xor_val: prepares a xor validation operation
  646. * @device_prep_dma_pq: prepares a pq operation
  647. * @device_prep_dma_pq_val: prepares a pqzero_sum operation
  648. * @device_prep_dma_memset: prepares a memset operation
  649. * @device_prep_dma_memset_sg: prepares a memset operation over a scatter list
  650. * @device_prep_dma_interrupt: prepares an end of chain interrupt operation
  651. * @device_prep_slave_sg: prepares a slave dma operation
  652. * @device_prep_dma_cyclic: prepare a cyclic dma operation suitable for audio.
  653. * The function takes a buffer of size buf_len. The callback function will
  654. * be called after period_len bytes have been transferred.
  655. * @device_prep_interleaved_dma: Transfer expression in a generic way.
  656. * @device_prep_dma_imm_data: DMA's 8 byte immediate data to the dst address
  657. * @device_config: Pushes a new configuration to a channel, return 0 or an error
  658. * code
  659. * @device_pause: Pauses any transfer happening on a channel. Returns
  660. * 0 or an error code
  661. * @device_resume: Resumes any transfer on a channel previously
  662. * paused. Returns 0 or an error code
  663. * @device_terminate_all: Aborts all transfers on a channel. Returns 0
  664. * or an error code
  665. * @device_synchronize: Synchronizes the termination of a transfers to the
  666. * current context.
  667. * @device_tx_status: poll for transaction completion, the optional
  668. * txstate parameter can be supplied with a pointer to get a
  669. * struct with auxiliary transfer status information, otherwise the call
  670. * will just return a simple status code
  671. * @device_issue_pending: push pending transactions to hardware
  672. * @descriptor_reuse: a submitted transfer can be resubmitted after completion
  673. */
  674. struct dma_device {
  675. unsigned int chancnt;
  676. unsigned int privatecnt;
  677. struct list_head channels;
  678. struct list_head global_node;
  679. struct dma_filter filter;
  680. dma_cap_mask_t cap_mask;
  681. unsigned short max_xor;
  682. unsigned short max_pq;
  683. enum dmaengine_alignment copy_align;
  684. enum dmaengine_alignment xor_align;
  685. enum dmaengine_alignment pq_align;
  686. enum dmaengine_alignment fill_align;
  687. #define DMA_HAS_PQ_CONTINUE (1 << 15)
  688. int dev_id;
  689. struct device *dev;
  690. u32 src_addr_widths;
  691. u32 dst_addr_widths;
  692. u32 directions;
  693. u32 max_burst;
  694. bool descriptor_reuse;
  695. enum dma_residue_granularity residue_granularity;
  696. int (*device_alloc_chan_resources)(struct dma_chan *chan);
  697. void (*device_free_chan_resources)(struct dma_chan *chan);
  698. struct dma_async_tx_descriptor *(*device_prep_dma_memcpy)(
  699. struct dma_chan *chan, dma_addr_t dst, dma_addr_t src,
  700. size_t len, unsigned long flags);
  701. struct dma_async_tx_descriptor *(*device_prep_dma_xor)(
  702. struct dma_chan *chan, dma_addr_t dst, dma_addr_t *src,
  703. unsigned int src_cnt, size_t len, unsigned long flags);
  704. struct dma_async_tx_descriptor *(*device_prep_dma_xor_val)(
  705. struct dma_chan *chan, dma_addr_t *src, unsigned int src_cnt,
  706. size_t len, enum sum_check_flags *result, unsigned long flags);
  707. struct dma_async_tx_descriptor *(*device_prep_dma_pq)(
  708. struct dma_chan *chan, dma_addr_t *dst, dma_addr_t *src,
  709. unsigned int src_cnt, const unsigned char *scf,
  710. size_t len, unsigned long flags);
  711. struct dma_async_tx_descriptor *(*device_prep_dma_pq_val)(
  712. struct dma_chan *chan, dma_addr_t *pq, dma_addr_t *src,
  713. unsigned int src_cnt, const unsigned char *scf, size_t len,
  714. enum sum_check_flags *pqres, unsigned long flags);
  715. struct dma_async_tx_descriptor *(*device_prep_dma_memset)(
  716. struct dma_chan *chan, dma_addr_t dest, int value, size_t len,
  717. unsigned long flags);
  718. struct dma_async_tx_descriptor *(*device_prep_dma_memset_sg)(
  719. struct dma_chan *chan, struct scatterlist *sg,
  720. unsigned int nents, int value, unsigned long flags);
  721. struct dma_async_tx_descriptor *(*device_prep_dma_interrupt)(
  722. struct dma_chan *chan, unsigned long flags);
  723. struct dma_async_tx_descriptor *(*device_prep_dma_sg)(
  724. struct dma_chan *chan,
  725. struct scatterlist *dst_sg, unsigned int dst_nents,
  726. struct scatterlist *src_sg, unsigned int src_nents,
  727. unsigned long flags);
  728. struct dma_async_tx_descriptor *(*device_prep_slave_sg)(
  729. struct dma_chan *chan, struct scatterlist *sgl,
  730. unsigned int sg_len, enum dma_transfer_direction direction,
  731. unsigned long flags, void *context);
  732. struct dma_async_tx_descriptor *(*device_prep_dma_cyclic)(
  733. struct dma_chan *chan, dma_addr_t buf_addr, size_t buf_len,
  734. size_t period_len, enum dma_transfer_direction direction,
  735. unsigned long flags);
  736. struct dma_async_tx_descriptor *(*device_prep_interleaved_dma)(
  737. struct dma_chan *chan, struct dma_interleaved_template *xt,
  738. unsigned long flags);
  739. struct dma_async_tx_descriptor *(*device_prep_dma_imm_data)(
  740. struct dma_chan *chan, dma_addr_t dst, u64 data,
  741. unsigned long flags);
  742. int (*device_config)(struct dma_chan *chan,
  743. struct dma_slave_config *config);
  744. int (*device_pause)(struct dma_chan *chan);
  745. int (*device_resume)(struct dma_chan *chan);
  746. int (*device_terminate_all)(struct dma_chan *chan);
  747. void (*device_synchronize)(struct dma_chan *chan);
  748. enum dma_status (*device_tx_status)(struct dma_chan *chan,
  749. dma_cookie_t cookie,
  750. struct dma_tx_state *txstate);
  751. void (*device_issue_pending)(struct dma_chan *chan);
  752. };
  753. static inline int dmaengine_slave_config(struct dma_chan *chan,
  754. struct dma_slave_config *config)
  755. {
  756. if (chan->device->device_config)
  757. return chan->device->device_config(chan, config);
  758. return -ENOSYS;
  759. }
  760. static inline bool is_slave_direction(enum dma_transfer_direction direction)
  761. {
  762. return (direction == DMA_MEM_TO_DEV) || (direction == DMA_DEV_TO_MEM);
  763. }
  764. static inline struct dma_async_tx_descriptor *dmaengine_prep_slave_single(
  765. struct dma_chan *chan, dma_addr_t buf, size_t len,
  766. enum dma_transfer_direction dir, unsigned long flags)
  767. {
  768. struct scatterlist sg;
  769. sg_init_table(&sg, 1);
  770. sg_dma_address(&sg) = buf;
  771. sg_dma_len(&sg) = len;
  772. if (!chan || !chan->device || !chan->device->device_prep_slave_sg)
  773. return NULL;
  774. return chan->device->device_prep_slave_sg(chan, &sg, 1,
  775. dir, flags, NULL);
  776. }
  777. static inline struct dma_async_tx_descriptor *dmaengine_prep_slave_sg(
  778. struct dma_chan *chan, struct scatterlist *sgl, unsigned int sg_len,
  779. enum dma_transfer_direction dir, unsigned long flags)
  780. {
  781. if (!chan || !chan->device || !chan->device->device_prep_slave_sg)
  782. return NULL;
  783. return chan->device->device_prep_slave_sg(chan, sgl, sg_len,
  784. dir, flags, NULL);
  785. }
  786. #ifdef CONFIG_RAPIDIO_DMA_ENGINE
  787. struct rio_dma_ext;
  788. static inline struct dma_async_tx_descriptor *dmaengine_prep_rio_sg(
  789. struct dma_chan *chan, struct scatterlist *sgl, unsigned int sg_len,
  790. enum dma_transfer_direction dir, unsigned long flags,
  791. struct rio_dma_ext *rio_ext)
  792. {
  793. if (!chan || !chan->device || !chan->device->device_prep_slave_sg)
  794. return NULL;
  795. return chan->device->device_prep_slave_sg(chan, sgl, sg_len,
  796. dir, flags, rio_ext);
  797. }
  798. #endif
  799. static inline struct dma_async_tx_descriptor *dmaengine_prep_dma_cyclic(
  800. struct dma_chan *chan, dma_addr_t buf_addr, size_t buf_len,
  801. size_t period_len, enum dma_transfer_direction dir,
  802. unsigned long flags)
  803. {
  804. if (!chan || !chan->device || !chan->device->device_prep_dma_cyclic)
  805. return NULL;
  806. return chan->device->device_prep_dma_cyclic(chan, buf_addr, buf_len,
  807. period_len, dir, flags);
  808. }
  809. static inline struct dma_async_tx_descriptor *dmaengine_prep_interleaved_dma(
  810. struct dma_chan *chan, struct dma_interleaved_template *xt,
  811. unsigned long flags)
  812. {
  813. if (!chan || !chan->device || !chan->device->device_prep_interleaved_dma)
  814. return NULL;
  815. return chan->device->device_prep_interleaved_dma(chan, xt, flags);
  816. }
  817. static inline struct dma_async_tx_descriptor *dmaengine_prep_dma_memset(
  818. struct dma_chan *chan, dma_addr_t dest, int value, size_t len,
  819. unsigned long flags)
  820. {
  821. if (!chan || !chan->device || !chan->device->device_prep_dma_memset)
  822. return NULL;
  823. return chan->device->device_prep_dma_memset(chan, dest, value,
  824. len, flags);
  825. }
  826. static inline struct dma_async_tx_descriptor *dmaengine_prep_dma_memcpy(
  827. struct dma_chan *chan, dma_addr_t dest, dma_addr_t src,
  828. size_t len, unsigned long flags)
  829. {
  830. if (!chan || !chan->device || !chan->device->device_prep_dma_memcpy)
  831. return NULL;
  832. return chan->device->device_prep_dma_memcpy(chan, dest, src,
  833. len, flags);
  834. }
  835. static inline struct dma_async_tx_descriptor *dmaengine_prep_dma_sg(
  836. struct dma_chan *chan,
  837. struct scatterlist *dst_sg, unsigned int dst_nents,
  838. struct scatterlist *src_sg, unsigned int src_nents,
  839. unsigned long flags)
  840. {
  841. if (!chan || !chan->device || !chan->device->device_prep_dma_sg)
  842. return NULL;
  843. return chan->device->device_prep_dma_sg(chan, dst_sg, dst_nents,
  844. src_sg, src_nents, flags);
  845. }
  846. /**
  847. * dmaengine_terminate_all() - Terminate all active DMA transfers
  848. * @chan: The channel for which to terminate the transfers
  849. *
  850. * This function is DEPRECATED use either dmaengine_terminate_sync() or
  851. * dmaengine_terminate_async() instead.
  852. */
  853. static inline int dmaengine_terminate_all(struct dma_chan *chan)
  854. {
  855. if (chan->device->device_terminate_all)
  856. return chan->device->device_terminate_all(chan);
  857. return -ENOSYS;
  858. }
  859. /**
  860. * dmaengine_terminate_async() - Terminate all active DMA transfers
  861. * @chan: The channel for which to terminate the transfers
  862. *
  863. * Calling this function will terminate all active and pending descriptors
  864. * that have previously been submitted to the channel. It is not guaranteed
  865. * though that the transfer for the active descriptor has stopped when the
  866. * function returns. Furthermore it is possible the complete callback of a
  867. * submitted transfer is still running when this function returns.
  868. *
  869. * dmaengine_synchronize() needs to be called before it is safe to free
  870. * any memory that is accessed by previously submitted descriptors or before
  871. * freeing any resources accessed from within the completion callback of any
  872. * perviously submitted descriptors.
  873. *
  874. * This function can be called from atomic context as well as from within a
  875. * complete callback of a descriptor submitted on the same channel.
  876. *
  877. * If none of the two conditions above apply consider using
  878. * dmaengine_terminate_sync() instead.
  879. */
  880. static inline int dmaengine_terminate_async(struct dma_chan *chan)
  881. {
  882. if (chan->device->device_terminate_all)
  883. return chan->device->device_terminate_all(chan);
  884. return -EINVAL;
  885. }
  886. /**
  887. * dmaengine_synchronize() - Synchronize DMA channel termination
  888. * @chan: The channel to synchronize
  889. *
  890. * Synchronizes to the DMA channel termination to the current context. When this
  891. * function returns it is guaranteed that all transfers for previously issued
  892. * descriptors have stopped and and it is safe to free the memory assoicated
  893. * with them. Furthermore it is guaranteed that all complete callback functions
  894. * for a previously submitted descriptor have finished running and it is safe to
  895. * free resources accessed from within the complete callbacks.
  896. *
  897. * The behavior of this function is undefined if dma_async_issue_pending() has
  898. * been called between dmaengine_terminate_async() and this function.
  899. *
  900. * This function must only be called from non-atomic context and must not be
  901. * called from within a complete callback of a descriptor submitted on the same
  902. * channel.
  903. */
  904. static inline void dmaengine_synchronize(struct dma_chan *chan)
  905. {
  906. might_sleep();
  907. if (chan->device->device_synchronize)
  908. chan->device->device_synchronize(chan);
  909. }
  910. /**
  911. * dmaengine_terminate_sync() - Terminate all active DMA transfers
  912. * @chan: The channel for which to terminate the transfers
  913. *
  914. * Calling this function will terminate all active and pending transfers
  915. * that have previously been submitted to the channel. It is similar to
  916. * dmaengine_terminate_async() but guarantees that the DMA transfer has actually
  917. * stopped and that all complete callbacks have finished running when the
  918. * function returns.
  919. *
  920. * This function must only be called from non-atomic context and must not be
  921. * called from within a complete callback of a descriptor submitted on the same
  922. * channel.
  923. */
  924. static inline int dmaengine_terminate_sync(struct dma_chan *chan)
  925. {
  926. int ret;
  927. ret = dmaengine_terminate_async(chan);
  928. if (ret)
  929. return ret;
  930. dmaengine_synchronize(chan);
  931. return 0;
  932. }
  933. static inline int dmaengine_pause(struct dma_chan *chan)
  934. {
  935. if (chan->device->device_pause)
  936. return chan->device->device_pause(chan);
  937. return -ENOSYS;
  938. }
  939. static inline int dmaengine_resume(struct dma_chan *chan)
  940. {
  941. if (chan->device->device_resume)
  942. return chan->device->device_resume(chan);
  943. return -ENOSYS;
  944. }
  945. static inline enum dma_status dmaengine_tx_status(struct dma_chan *chan,
  946. dma_cookie_t cookie, struct dma_tx_state *state)
  947. {
  948. return chan->device->device_tx_status(chan, cookie, state);
  949. }
  950. static inline dma_cookie_t dmaengine_submit(struct dma_async_tx_descriptor *desc)
  951. {
  952. return desc->tx_submit(desc);
  953. }
  954. static inline bool dmaengine_check_align(enum dmaengine_alignment align,
  955. size_t off1, size_t off2, size_t len)
  956. {
  957. size_t mask;
  958. if (!align)
  959. return true;
  960. mask = (1 << align) - 1;
  961. if (mask & (off1 | off2 | len))
  962. return false;
  963. return true;
  964. }
  965. static inline bool is_dma_copy_aligned(struct dma_device *dev, size_t off1,
  966. size_t off2, size_t len)
  967. {
  968. return dmaengine_check_align(dev->copy_align, off1, off2, len);
  969. }
  970. static inline bool is_dma_xor_aligned(struct dma_device *dev, size_t off1,
  971. size_t off2, size_t len)
  972. {
  973. return dmaengine_check_align(dev->xor_align, off1, off2, len);
  974. }
  975. static inline bool is_dma_pq_aligned(struct dma_device *dev, size_t off1,
  976. size_t off2, size_t len)
  977. {
  978. return dmaengine_check_align(dev->pq_align, off1, off2, len);
  979. }
  980. static inline bool is_dma_fill_aligned(struct dma_device *dev, size_t off1,
  981. size_t off2, size_t len)
  982. {
  983. return dmaengine_check_align(dev->fill_align, off1, off2, len);
  984. }
  985. static inline void
  986. dma_set_maxpq(struct dma_device *dma, int maxpq, int has_pq_continue)
  987. {
  988. dma->max_pq = maxpq;
  989. if (has_pq_continue)
  990. dma->max_pq |= DMA_HAS_PQ_CONTINUE;
  991. }
  992. static inline bool dmaf_continue(enum dma_ctrl_flags flags)
  993. {
  994. return (flags & DMA_PREP_CONTINUE) == DMA_PREP_CONTINUE;
  995. }
  996. static inline bool dmaf_p_disabled_continue(enum dma_ctrl_flags flags)
  997. {
  998. enum dma_ctrl_flags mask = DMA_PREP_CONTINUE | DMA_PREP_PQ_DISABLE_P;
  999. return (flags & mask) == mask;
  1000. }
  1001. static inline bool dma_dev_has_pq_continue(struct dma_device *dma)
  1002. {
  1003. return (dma->max_pq & DMA_HAS_PQ_CONTINUE) == DMA_HAS_PQ_CONTINUE;
  1004. }
  1005. static inline unsigned short dma_dev_to_maxpq(struct dma_device *dma)
  1006. {
  1007. return dma->max_pq & ~DMA_HAS_PQ_CONTINUE;
  1008. }
  1009. /* dma_maxpq - reduce maxpq in the face of continued operations
  1010. * @dma - dma device with PQ capability
  1011. * @flags - to check if DMA_PREP_CONTINUE and DMA_PREP_PQ_DISABLE_P are set
  1012. *
  1013. * When an engine does not support native continuation we need 3 extra
  1014. * source slots to reuse P and Q with the following coefficients:
  1015. * 1/ {00} * P : remove P from Q', but use it as a source for P'
  1016. * 2/ {01} * Q : use Q to continue Q' calculation
  1017. * 3/ {00} * Q : subtract Q from P' to cancel (2)
  1018. *
  1019. * In the case where P is disabled we only need 1 extra source:
  1020. * 1/ {01} * Q : use Q to continue Q' calculation
  1021. */
  1022. static inline int dma_maxpq(struct dma_device *dma, enum dma_ctrl_flags flags)
  1023. {
  1024. if (dma_dev_has_pq_continue(dma) || !dmaf_continue(flags))
  1025. return dma_dev_to_maxpq(dma);
  1026. else if (dmaf_p_disabled_continue(flags))
  1027. return dma_dev_to_maxpq(dma) - 1;
  1028. else if (dmaf_continue(flags))
  1029. return dma_dev_to_maxpq(dma) - 3;
  1030. BUG();
  1031. }
  1032. static inline size_t dmaengine_get_icg(bool inc, bool sgl, size_t icg,
  1033. size_t dir_icg)
  1034. {
  1035. if (inc) {
  1036. if (dir_icg)
  1037. return dir_icg;
  1038. else if (sgl)
  1039. return icg;
  1040. }
  1041. return 0;
  1042. }
  1043. static inline size_t dmaengine_get_dst_icg(struct dma_interleaved_template *xt,
  1044. struct data_chunk *chunk)
  1045. {
  1046. return dmaengine_get_icg(xt->dst_inc, xt->dst_sgl,
  1047. chunk->icg, chunk->dst_icg);
  1048. }
  1049. static inline size_t dmaengine_get_src_icg(struct dma_interleaved_template *xt,
  1050. struct data_chunk *chunk)
  1051. {
  1052. return dmaengine_get_icg(xt->src_inc, xt->src_sgl,
  1053. chunk->icg, chunk->src_icg);
  1054. }
  1055. /* --- public DMA engine API --- */
  1056. #ifdef CONFIG_DMA_ENGINE
  1057. void dmaengine_get(void);
  1058. void dmaengine_put(void);
  1059. #else
  1060. static inline void dmaengine_get(void)
  1061. {
  1062. }
  1063. static inline void dmaengine_put(void)
  1064. {
  1065. }
  1066. #endif
  1067. #ifdef CONFIG_ASYNC_TX_DMA
  1068. #define async_dmaengine_get() dmaengine_get()
  1069. #define async_dmaengine_put() dmaengine_put()
  1070. #ifndef CONFIG_ASYNC_TX_ENABLE_CHANNEL_SWITCH
  1071. #define async_dma_find_channel(type) dma_find_channel(DMA_ASYNC_TX)
  1072. #else
  1073. #define async_dma_find_channel(type) dma_find_channel(type)
  1074. #endif /* CONFIG_ASYNC_TX_ENABLE_CHANNEL_SWITCH */
  1075. #else
  1076. static inline void async_dmaengine_get(void)
  1077. {
  1078. }
  1079. static inline void async_dmaengine_put(void)
  1080. {
  1081. }
  1082. static inline struct dma_chan *
  1083. async_dma_find_channel(enum dma_transaction_type type)
  1084. {
  1085. return NULL;
  1086. }
  1087. #endif /* CONFIG_ASYNC_TX_DMA */
  1088. void dma_async_tx_descriptor_init(struct dma_async_tx_descriptor *tx,
  1089. struct dma_chan *chan);
  1090. static inline void async_tx_ack(struct dma_async_tx_descriptor *tx)
  1091. {
  1092. tx->flags |= DMA_CTRL_ACK;
  1093. }
  1094. static inline void async_tx_clear_ack(struct dma_async_tx_descriptor *tx)
  1095. {
  1096. tx->flags &= ~DMA_CTRL_ACK;
  1097. }
  1098. static inline bool async_tx_test_ack(struct dma_async_tx_descriptor *tx)
  1099. {
  1100. return (tx->flags & DMA_CTRL_ACK) == DMA_CTRL_ACK;
  1101. }
  1102. #define dma_cap_set(tx, mask) __dma_cap_set((tx), &(mask))
  1103. static inline void
  1104. __dma_cap_set(enum dma_transaction_type tx_type, dma_cap_mask_t *dstp)
  1105. {
  1106. set_bit(tx_type, dstp->bits);
  1107. }
  1108. #define dma_cap_clear(tx, mask) __dma_cap_clear((tx), &(mask))
  1109. static inline void
  1110. __dma_cap_clear(enum dma_transaction_type tx_type, dma_cap_mask_t *dstp)
  1111. {
  1112. clear_bit(tx_type, dstp->bits);
  1113. }
  1114. #define dma_cap_zero(mask) __dma_cap_zero(&(mask))
  1115. static inline void __dma_cap_zero(dma_cap_mask_t *dstp)
  1116. {
  1117. bitmap_zero(dstp->bits, DMA_TX_TYPE_END);
  1118. }
  1119. #define dma_has_cap(tx, mask) __dma_has_cap((tx), &(mask))
  1120. static inline int
  1121. __dma_has_cap(enum dma_transaction_type tx_type, dma_cap_mask_t *srcp)
  1122. {
  1123. return test_bit(tx_type, srcp->bits);
  1124. }
  1125. #define for_each_dma_cap_mask(cap, mask) \
  1126. for_each_set_bit(cap, mask.bits, DMA_TX_TYPE_END)
  1127. /**
  1128. * dma_async_issue_pending - flush pending transactions to HW
  1129. * @chan: target DMA channel
  1130. *
  1131. * This allows drivers to push copies to HW in batches,
  1132. * reducing MMIO writes where possible.
  1133. */
  1134. static inline void dma_async_issue_pending(struct dma_chan *chan)
  1135. {
  1136. chan->device->device_issue_pending(chan);
  1137. }
  1138. /**
  1139. * dma_async_is_tx_complete - poll for transaction completion
  1140. * @chan: DMA channel
  1141. * @cookie: transaction identifier to check status of
  1142. * @last: returns last completed cookie, can be NULL
  1143. * @used: returns last issued cookie, can be NULL
  1144. *
  1145. * If @last and @used are passed in, upon return they reflect the driver
  1146. * internal state and can be used with dma_async_is_complete() to check
  1147. * the status of multiple cookies without re-checking hardware state.
  1148. */
  1149. static inline enum dma_status dma_async_is_tx_complete(struct dma_chan *chan,
  1150. dma_cookie_t cookie, dma_cookie_t *last, dma_cookie_t *used)
  1151. {
  1152. struct dma_tx_state state;
  1153. enum dma_status status;
  1154. status = chan->device->device_tx_status(chan, cookie, &state);
  1155. if (last)
  1156. *last = state.last;
  1157. if (used)
  1158. *used = state.used;
  1159. return status;
  1160. }
  1161. /**
  1162. * dma_async_is_complete - test a cookie against chan state
  1163. * @cookie: transaction identifier to test status of
  1164. * @last_complete: last know completed transaction
  1165. * @last_used: last cookie value handed out
  1166. *
  1167. * dma_async_is_complete() is used in dma_async_is_tx_complete()
  1168. * the test logic is separated for lightweight testing of multiple cookies
  1169. */
  1170. static inline enum dma_status dma_async_is_complete(dma_cookie_t cookie,
  1171. dma_cookie_t last_complete, dma_cookie_t last_used)
  1172. {
  1173. if (last_complete <= last_used) {
  1174. if ((cookie <= last_complete) || (cookie > last_used))
  1175. return DMA_COMPLETE;
  1176. } else {
  1177. if ((cookie <= last_complete) && (cookie > last_used))
  1178. return DMA_COMPLETE;
  1179. }
  1180. return DMA_IN_PROGRESS;
  1181. }
  1182. static inline void
  1183. dma_set_tx_state(struct dma_tx_state *st, dma_cookie_t last, dma_cookie_t used, u32 residue)
  1184. {
  1185. if (st) {
  1186. st->last = last;
  1187. st->used = used;
  1188. st->residue = residue;
  1189. }
  1190. }
  1191. #ifdef CONFIG_DMA_ENGINE
  1192. struct dma_chan *dma_find_channel(enum dma_transaction_type tx_type);
  1193. enum dma_status dma_sync_wait(struct dma_chan *chan, dma_cookie_t cookie);
  1194. enum dma_status dma_wait_for_async_tx(struct dma_async_tx_descriptor *tx);
  1195. void dma_issue_pending_all(void);
  1196. struct dma_chan *__dma_request_channel(const dma_cap_mask_t *mask,
  1197. dma_filter_fn fn, void *fn_param);
  1198. struct dma_chan *dma_request_slave_channel(struct device *dev, const char *name);
  1199. struct dma_chan *dma_request_chan(struct device *dev, const char *name);
  1200. struct dma_chan *dma_request_chan_by_mask(const dma_cap_mask_t *mask);
  1201. void dma_release_channel(struct dma_chan *chan);
  1202. int dma_get_slave_caps(struct dma_chan *chan, struct dma_slave_caps *caps);
  1203. #else
  1204. static inline struct dma_chan *dma_find_channel(enum dma_transaction_type tx_type)
  1205. {
  1206. return NULL;
  1207. }
  1208. static inline enum dma_status dma_sync_wait(struct dma_chan *chan, dma_cookie_t cookie)
  1209. {
  1210. return DMA_COMPLETE;
  1211. }
  1212. static inline enum dma_status dma_wait_for_async_tx(struct dma_async_tx_descriptor *tx)
  1213. {
  1214. return DMA_COMPLETE;
  1215. }
  1216. static inline void dma_issue_pending_all(void)
  1217. {
  1218. }
  1219. static inline struct dma_chan *__dma_request_channel(const dma_cap_mask_t *mask,
  1220. dma_filter_fn fn, void *fn_param)
  1221. {
  1222. return NULL;
  1223. }
  1224. static inline struct dma_chan *dma_request_slave_channel(struct device *dev,
  1225. const char *name)
  1226. {
  1227. return NULL;
  1228. }
  1229. static inline struct dma_chan *dma_request_chan(struct device *dev,
  1230. const char *name)
  1231. {
  1232. return ERR_PTR(-ENODEV);
  1233. }
  1234. static inline struct dma_chan *dma_request_chan_by_mask(
  1235. const dma_cap_mask_t *mask)
  1236. {
  1237. return ERR_PTR(-ENODEV);
  1238. }
  1239. static inline void dma_release_channel(struct dma_chan *chan)
  1240. {
  1241. }
  1242. static inline int dma_get_slave_caps(struct dma_chan *chan,
  1243. struct dma_slave_caps *caps)
  1244. {
  1245. return -ENXIO;
  1246. }
  1247. #endif
  1248. #define dma_request_slave_channel_reason(dev, name) dma_request_chan(dev, name)
  1249. static inline int dmaengine_desc_set_reuse(struct dma_async_tx_descriptor *tx)
  1250. {
  1251. struct dma_slave_caps caps;
  1252. dma_get_slave_caps(tx->chan, &caps);
  1253. if (caps.descriptor_reuse) {
  1254. tx->flags |= DMA_CTRL_REUSE;
  1255. return 0;
  1256. } else {
  1257. return -EPERM;
  1258. }
  1259. }
  1260. static inline void dmaengine_desc_clear_reuse(struct dma_async_tx_descriptor *tx)
  1261. {
  1262. tx->flags &= ~DMA_CTRL_REUSE;
  1263. }
  1264. static inline bool dmaengine_desc_test_reuse(struct dma_async_tx_descriptor *tx)
  1265. {
  1266. return (tx->flags & DMA_CTRL_REUSE) == DMA_CTRL_REUSE;
  1267. }
  1268. static inline int dmaengine_desc_free(struct dma_async_tx_descriptor *desc)
  1269. {
  1270. /* this is supported for reusable desc, so check that */
  1271. if (dmaengine_desc_test_reuse(desc))
  1272. return desc->desc_free(desc);
  1273. else
  1274. return -EPERM;
  1275. }
  1276. /* --- DMA device --- */
  1277. int dma_async_device_register(struct dma_device *device);
  1278. void dma_async_device_unregister(struct dma_device *device);
  1279. void dma_run_dependencies(struct dma_async_tx_descriptor *tx);
  1280. struct dma_chan *dma_get_slave_channel(struct dma_chan *chan);
  1281. struct dma_chan *dma_get_any_slave_channel(struct dma_device *device);
  1282. #define dma_request_channel(mask, x, y) __dma_request_channel(&(mask), x, y)
  1283. #define dma_request_slave_channel_compat(mask, x, y, dev, name) \
  1284. __dma_request_slave_channel_compat(&(mask), x, y, dev, name)
  1285. static inline struct dma_chan
  1286. *__dma_request_slave_channel_compat(const dma_cap_mask_t *mask,
  1287. dma_filter_fn fn, void *fn_param,
  1288. struct device *dev, const char *name)
  1289. {
  1290. struct dma_chan *chan;
  1291. chan = dma_request_slave_channel(dev, name);
  1292. if (chan)
  1293. return chan;
  1294. if (!fn || !fn_param)
  1295. return NULL;
  1296. return __dma_request_channel(mask, fn, fn_param);
  1297. }
  1298. #endif /* DMAENGINE_H */