dmabounce.c 15 KB

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  1. /*
  2. * arch/arm/common/dmabounce.c
  3. *
  4. * Special dma_{map/unmap/dma_sync}_* routines for systems that have
  5. * limited DMA windows. These functions utilize bounce buffers to
  6. * copy data to/from buffers located outside the DMA region. This
  7. * only works for systems in which DMA memory is at the bottom of
  8. * RAM, the remainder of memory is at the top and the DMA memory
  9. * can be marked as ZONE_DMA. Anything beyond that such as discontiguous
  10. * DMA windows will require custom implementations that reserve memory
  11. * areas at early bootup.
  12. *
  13. * Original version by Brad Parker (brad@heeltoe.com)
  14. * Re-written by Christopher Hoover <ch@murgatroid.com>
  15. * Made generic by Deepak Saxena <dsaxena@plexity.net>
  16. *
  17. * Copyright (C) 2002 Hewlett Packard Company.
  18. * Copyright (C) 2004 MontaVista Software, Inc.
  19. *
  20. * This program is free software; you can redistribute it and/or
  21. * modify it under the terms of the GNU General Public License
  22. * version 2 as published by the Free Software Foundation.
  23. */
  24. #include <linux/module.h>
  25. #include <linux/init.h>
  26. #include <linux/slab.h>
  27. #include <linux/page-flags.h>
  28. #include <linux/device.h>
  29. #include <linux/dma-mapping.h>
  30. #include <linux/dmapool.h>
  31. #include <linux/list.h>
  32. #include <linux/scatterlist.h>
  33. #include <asm/cacheflush.h>
  34. #undef STATS
  35. #ifdef STATS
  36. #define DO_STATS(X) do { X ; } while (0)
  37. #else
  38. #define DO_STATS(X) do { } while (0)
  39. #endif
  40. /* ************************************************** */
  41. struct safe_buffer {
  42. struct list_head node;
  43. /* original request */
  44. void *ptr;
  45. size_t size;
  46. int direction;
  47. /* safe buffer info */
  48. struct dmabounce_pool *pool;
  49. void *safe;
  50. dma_addr_t safe_dma_addr;
  51. };
  52. struct dmabounce_pool {
  53. unsigned long size;
  54. struct dma_pool *pool;
  55. #ifdef STATS
  56. unsigned long allocs;
  57. #endif
  58. };
  59. struct dmabounce_device_info {
  60. struct device *dev;
  61. struct list_head safe_buffers;
  62. #ifdef STATS
  63. unsigned long total_allocs;
  64. unsigned long map_op_count;
  65. unsigned long bounce_count;
  66. int attr_res;
  67. #endif
  68. struct dmabounce_pool small;
  69. struct dmabounce_pool large;
  70. rwlock_t lock;
  71. int (*needs_bounce)(struct device *, dma_addr_t, size_t);
  72. };
  73. #ifdef STATS
  74. static ssize_t dmabounce_show(struct device *dev, struct device_attribute *attr,
  75. char *buf)
  76. {
  77. struct dmabounce_device_info *device_info = dev->archdata.dmabounce;
  78. return sprintf(buf, "%lu %lu %lu %lu %lu %lu\n",
  79. device_info->small.allocs,
  80. device_info->large.allocs,
  81. device_info->total_allocs - device_info->small.allocs -
  82. device_info->large.allocs,
  83. device_info->total_allocs,
  84. device_info->map_op_count,
  85. device_info->bounce_count);
  86. }
  87. static DEVICE_ATTR(dmabounce_stats, 0400, dmabounce_show, NULL);
  88. #endif
  89. /* allocate a 'safe' buffer and keep track of it */
  90. static inline struct safe_buffer *
  91. alloc_safe_buffer(struct dmabounce_device_info *device_info, void *ptr,
  92. size_t size, enum dma_data_direction dir)
  93. {
  94. struct safe_buffer *buf;
  95. struct dmabounce_pool *pool;
  96. struct device *dev = device_info->dev;
  97. unsigned long flags;
  98. dev_dbg(dev, "%s(ptr=%p, size=%d, dir=%d)\n",
  99. __func__, ptr, size, dir);
  100. if (size <= device_info->small.size) {
  101. pool = &device_info->small;
  102. } else if (size <= device_info->large.size) {
  103. pool = &device_info->large;
  104. } else {
  105. pool = NULL;
  106. }
  107. buf = kmalloc(sizeof(struct safe_buffer), GFP_ATOMIC);
  108. if (buf == NULL) {
  109. dev_warn(dev, "%s: kmalloc failed\n", __func__);
  110. return NULL;
  111. }
  112. buf->ptr = ptr;
  113. buf->size = size;
  114. buf->direction = dir;
  115. buf->pool = pool;
  116. if (pool) {
  117. buf->safe = dma_pool_alloc(pool->pool, GFP_ATOMIC,
  118. &buf->safe_dma_addr);
  119. } else {
  120. buf->safe = dma_alloc_coherent(dev, size, &buf->safe_dma_addr,
  121. GFP_ATOMIC);
  122. }
  123. if (buf->safe == NULL) {
  124. dev_warn(dev,
  125. "%s: could not alloc dma memory (size=%d)\n",
  126. __func__, size);
  127. kfree(buf);
  128. return NULL;
  129. }
  130. #ifdef STATS
  131. if (pool)
  132. pool->allocs++;
  133. device_info->total_allocs++;
  134. #endif
  135. write_lock_irqsave(&device_info->lock, flags);
  136. list_add(&buf->node, &device_info->safe_buffers);
  137. write_unlock_irqrestore(&device_info->lock, flags);
  138. return buf;
  139. }
  140. /* determine if a buffer is from our "safe" pool */
  141. static inline struct safe_buffer *
  142. find_safe_buffer(struct dmabounce_device_info *device_info, dma_addr_t safe_dma_addr)
  143. {
  144. struct safe_buffer *b, *rb = NULL;
  145. unsigned long flags;
  146. read_lock_irqsave(&device_info->lock, flags);
  147. list_for_each_entry(b, &device_info->safe_buffers, node)
  148. if (b->safe_dma_addr <= safe_dma_addr &&
  149. b->safe_dma_addr + b->size > safe_dma_addr) {
  150. rb = b;
  151. break;
  152. }
  153. read_unlock_irqrestore(&device_info->lock, flags);
  154. return rb;
  155. }
  156. static inline void
  157. free_safe_buffer(struct dmabounce_device_info *device_info, struct safe_buffer *buf)
  158. {
  159. unsigned long flags;
  160. dev_dbg(device_info->dev, "%s(buf=%p)\n", __func__, buf);
  161. write_lock_irqsave(&device_info->lock, flags);
  162. list_del(&buf->node);
  163. write_unlock_irqrestore(&device_info->lock, flags);
  164. if (buf->pool)
  165. dma_pool_free(buf->pool->pool, buf->safe, buf->safe_dma_addr);
  166. else
  167. dma_free_coherent(device_info->dev, buf->size, buf->safe,
  168. buf->safe_dma_addr);
  169. kfree(buf);
  170. }
  171. /* ************************************************** */
  172. static struct safe_buffer *find_safe_buffer_dev(struct device *dev,
  173. dma_addr_t dma_addr, const char *where)
  174. {
  175. if (!dev || !dev->archdata.dmabounce)
  176. return NULL;
  177. if (dma_mapping_error(dev, dma_addr)) {
  178. dev_err(dev, "Trying to %s invalid mapping\n", where);
  179. return NULL;
  180. }
  181. return find_safe_buffer(dev->archdata.dmabounce, dma_addr);
  182. }
  183. static int needs_bounce(struct device *dev, dma_addr_t dma_addr, size_t size)
  184. {
  185. if (!dev || !dev->archdata.dmabounce)
  186. return 0;
  187. if (dev->dma_mask) {
  188. unsigned long limit, mask = *dev->dma_mask;
  189. limit = (mask + 1) & ~mask;
  190. if (limit && size > limit) {
  191. dev_err(dev, "DMA mapping too big (requested %#x "
  192. "mask %#Lx)\n", size, *dev->dma_mask);
  193. return -E2BIG;
  194. }
  195. /* Figure out if we need to bounce from the DMA mask. */
  196. if ((dma_addr | (dma_addr + size - 1)) & ~mask)
  197. return 1;
  198. }
  199. return !!dev->archdata.dmabounce->needs_bounce(dev, dma_addr, size);
  200. }
  201. static inline dma_addr_t map_single(struct device *dev, void *ptr, size_t size,
  202. enum dma_data_direction dir)
  203. {
  204. struct dmabounce_device_info *device_info = dev->archdata.dmabounce;
  205. struct safe_buffer *buf;
  206. if (device_info)
  207. DO_STATS ( device_info->map_op_count++ );
  208. buf = alloc_safe_buffer(device_info, ptr, size, dir);
  209. if (buf == NULL) {
  210. dev_err(dev, "%s: unable to map unsafe buffer %p!\n",
  211. __func__, ptr);
  212. return DMA_ERROR_CODE;
  213. }
  214. dev_dbg(dev, "%s: unsafe buffer %p (dma=%#x) mapped to %p (dma=%#x)\n",
  215. __func__, buf->ptr, virt_to_dma(dev, buf->ptr),
  216. buf->safe, buf->safe_dma_addr);
  217. if (dir == DMA_TO_DEVICE || dir == DMA_BIDIRECTIONAL) {
  218. dev_dbg(dev, "%s: copy unsafe %p to safe %p, size %d\n",
  219. __func__, ptr, buf->safe, size);
  220. memcpy(buf->safe, ptr, size);
  221. }
  222. return buf->safe_dma_addr;
  223. }
  224. static inline void unmap_single(struct device *dev, struct safe_buffer *buf,
  225. size_t size, enum dma_data_direction dir)
  226. {
  227. BUG_ON(buf->size != size);
  228. BUG_ON(buf->direction != dir);
  229. dev_dbg(dev, "%s: unsafe buffer %p (dma=%#x) mapped to %p (dma=%#x)\n",
  230. __func__, buf->ptr, virt_to_dma(dev, buf->ptr),
  231. buf->safe, buf->safe_dma_addr);
  232. DO_STATS(dev->archdata.dmabounce->bounce_count++);
  233. if (dir == DMA_FROM_DEVICE || dir == DMA_BIDIRECTIONAL) {
  234. void *ptr = buf->ptr;
  235. dev_dbg(dev, "%s: copy back safe %p to unsafe %p size %d\n",
  236. __func__, buf->safe, ptr, size);
  237. memcpy(ptr, buf->safe, size);
  238. /*
  239. * Since we may have written to a page cache page,
  240. * we need to ensure that the data will be coherent
  241. * with user mappings.
  242. */
  243. __cpuc_flush_dcache_area(ptr, size);
  244. }
  245. free_safe_buffer(dev->archdata.dmabounce, buf);
  246. }
  247. /* ************************************************** */
  248. /*
  249. * see if a buffer address is in an 'unsafe' range. if it is
  250. * allocate a 'safe' buffer and copy the unsafe buffer into it.
  251. * substitute the safe buffer for the unsafe one.
  252. * (basically move the buffer from an unsafe area to a safe one)
  253. */
  254. static dma_addr_t dmabounce_map_page(struct device *dev, struct page *page,
  255. unsigned long offset, size_t size, enum dma_data_direction dir,
  256. unsigned long attrs)
  257. {
  258. dma_addr_t dma_addr;
  259. int ret;
  260. dev_dbg(dev, "%s(page=%p,off=%#lx,size=%zx,dir=%x)\n",
  261. __func__, page, offset, size, dir);
  262. dma_addr = pfn_to_dma(dev, page_to_pfn(page)) + offset;
  263. ret = needs_bounce(dev, dma_addr, size);
  264. if (ret < 0)
  265. return DMA_ERROR_CODE;
  266. if (ret == 0) {
  267. arm_dma_ops.sync_single_for_device(dev, dma_addr, size, dir);
  268. return dma_addr;
  269. }
  270. if (PageHighMem(page)) {
  271. dev_err(dev, "DMA buffer bouncing of HIGHMEM pages is not supported\n");
  272. return DMA_ERROR_CODE;
  273. }
  274. return map_single(dev, page_address(page) + offset, size, dir);
  275. }
  276. /*
  277. * see if a mapped address was really a "safe" buffer and if so, copy
  278. * the data from the safe buffer back to the unsafe buffer and free up
  279. * the safe buffer. (basically return things back to the way they
  280. * should be)
  281. */
  282. static void dmabounce_unmap_page(struct device *dev, dma_addr_t dma_addr, size_t size,
  283. enum dma_data_direction dir, unsigned long attrs)
  284. {
  285. struct safe_buffer *buf;
  286. dev_dbg(dev, "%s(dma=%#x,size=%d,dir=%x)\n",
  287. __func__, dma_addr, size, dir);
  288. buf = find_safe_buffer_dev(dev, dma_addr, __func__);
  289. if (!buf) {
  290. arm_dma_ops.sync_single_for_cpu(dev, dma_addr, size, dir);
  291. return;
  292. }
  293. unmap_single(dev, buf, size, dir);
  294. }
  295. static int __dmabounce_sync_for_cpu(struct device *dev, dma_addr_t addr,
  296. size_t sz, enum dma_data_direction dir)
  297. {
  298. struct safe_buffer *buf;
  299. unsigned long off;
  300. dev_dbg(dev, "%s(dma=%#x,sz=%zx,dir=%x)\n",
  301. __func__, addr, sz, dir);
  302. buf = find_safe_buffer_dev(dev, addr, __func__);
  303. if (!buf)
  304. return 1;
  305. off = addr - buf->safe_dma_addr;
  306. BUG_ON(buf->direction != dir);
  307. dev_dbg(dev, "%s: unsafe buffer %p (dma=%#x off=%#lx) mapped to %p (dma=%#x)\n",
  308. __func__, buf->ptr, virt_to_dma(dev, buf->ptr), off,
  309. buf->safe, buf->safe_dma_addr);
  310. DO_STATS(dev->archdata.dmabounce->bounce_count++);
  311. if (dir == DMA_FROM_DEVICE || dir == DMA_BIDIRECTIONAL) {
  312. dev_dbg(dev, "%s: copy back safe %p to unsafe %p size %d\n",
  313. __func__, buf->safe + off, buf->ptr + off, sz);
  314. memcpy(buf->ptr + off, buf->safe + off, sz);
  315. }
  316. return 0;
  317. }
  318. static void dmabounce_sync_for_cpu(struct device *dev,
  319. dma_addr_t handle, size_t size, enum dma_data_direction dir)
  320. {
  321. if (!__dmabounce_sync_for_cpu(dev, handle, size, dir))
  322. return;
  323. arm_dma_ops.sync_single_for_cpu(dev, handle, size, dir);
  324. }
  325. static int __dmabounce_sync_for_device(struct device *dev, dma_addr_t addr,
  326. size_t sz, enum dma_data_direction dir)
  327. {
  328. struct safe_buffer *buf;
  329. unsigned long off;
  330. dev_dbg(dev, "%s(dma=%#x,sz=%zx,dir=%x)\n",
  331. __func__, addr, sz, dir);
  332. buf = find_safe_buffer_dev(dev, addr, __func__);
  333. if (!buf)
  334. return 1;
  335. off = addr - buf->safe_dma_addr;
  336. BUG_ON(buf->direction != dir);
  337. dev_dbg(dev, "%s: unsafe buffer %p (dma=%#x off=%#lx) mapped to %p (dma=%#x)\n",
  338. __func__, buf->ptr, virt_to_dma(dev, buf->ptr), off,
  339. buf->safe, buf->safe_dma_addr);
  340. DO_STATS(dev->archdata.dmabounce->bounce_count++);
  341. if (dir == DMA_TO_DEVICE || dir == DMA_BIDIRECTIONAL) {
  342. dev_dbg(dev, "%s: copy out unsafe %p to safe %p, size %d\n",
  343. __func__,buf->ptr + off, buf->safe + off, sz);
  344. memcpy(buf->safe + off, buf->ptr + off, sz);
  345. }
  346. return 0;
  347. }
  348. static void dmabounce_sync_for_device(struct device *dev,
  349. dma_addr_t handle, size_t size, enum dma_data_direction dir)
  350. {
  351. if (!__dmabounce_sync_for_device(dev, handle, size, dir))
  352. return;
  353. arm_dma_ops.sync_single_for_device(dev, handle, size, dir);
  354. }
  355. static int dmabounce_set_mask(struct device *dev, u64 dma_mask)
  356. {
  357. if (dev->archdata.dmabounce)
  358. return 0;
  359. return arm_dma_ops.set_dma_mask(dev, dma_mask);
  360. }
  361. static struct dma_map_ops dmabounce_ops = {
  362. .alloc = arm_dma_alloc,
  363. .free = arm_dma_free,
  364. .mmap = arm_dma_mmap,
  365. .get_sgtable = arm_dma_get_sgtable,
  366. .map_page = dmabounce_map_page,
  367. .unmap_page = dmabounce_unmap_page,
  368. .sync_single_for_cpu = dmabounce_sync_for_cpu,
  369. .sync_single_for_device = dmabounce_sync_for_device,
  370. .map_sg = arm_dma_map_sg,
  371. .unmap_sg = arm_dma_unmap_sg,
  372. .sync_sg_for_cpu = arm_dma_sync_sg_for_cpu,
  373. .sync_sg_for_device = arm_dma_sync_sg_for_device,
  374. .set_dma_mask = dmabounce_set_mask,
  375. };
  376. static int dmabounce_init_pool(struct dmabounce_pool *pool, struct device *dev,
  377. const char *name, unsigned long size)
  378. {
  379. pool->size = size;
  380. DO_STATS(pool->allocs = 0);
  381. pool->pool = dma_pool_create(name, dev, size,
  382. 0 /* byte alignment */,
  383. 0 /* no page-crossing issues */);
  384. return pool->pool ? 0 : -ENOMEM;
  385. }
  386. int dmabounce_register_dev(struct device *dev, unsigned long small_buffer_size,
  387. unsigned long large_buffer_size,
  388. int (*needs_bounce_fn)(struct device *, dma_addr_t, size_t))
  389. {
  390. struct dmabounce_device_info *device_info;
  391. int ret;
  392. device_info = kmalloc(sizeof(struct dmabounce_device_info), GFP_ATOMIC);
  393. if (!device_info) {
  394. dev_err(dev,
  395. "Could not allocated dmabounce_device_info\n");
  396. return -ENOMEM;
  397. }
  398. ret = dmabounce_init_pool(&device_info->small, dev,
  399. "small_dmabounce_pool", small_buffer_size);
  400. if (ret) {
  401. dev_err(dev,
  402. "dmabounce: could not allocate DMA pool for %ld byte objects\n",
  403. small_buffer_size);
  404. goto err_free;
  405. }
  406. if (large_buffer_size) {
  407. ret = dmabounce_init_pool(&device_info->large, dev,
  408. "large_dmabounce_pool",
  409. large_buffer_size);
  410. if (ret) {
  411. dev_err(dev,
  412. "dmabounce: could not allocate DMA pool for %ld byte objects\n",
  413. large_buffer_size);
  414. goto err_destroy;
  415. }
  416. }
  417. device_info->dev = dev;
  418. INIT_LIST_HEAD(&device_info->safe_buffers);
  419. rwlock_init(&device_info->lock);
  420. device_info->needs_bounce = needs_bounce_fn;
  421. #ifdef STATS
  422. device_info->total_allocs = 0;
  423. device_info->map_op_count = 0;
  424. device_info->bounce_count = 0;
  425. device_info->attr_res = device_create_file(dev, &dev_attr_dmabounce_stats);
  426. #endif
  427. dev->archdata.dmabounce = device_info;
  428. set_dma_ops(dev, &dmabounce_ops);
  429. dev_info(dev, "dmabounce: registered device\n");
  430. return 0;
  431. err_destroy:
  432. dma_pool_destroy(device_info->small.pool);
  433. err_free:
  434. kfree(device_info);
  435. return ret;
  436. }
  437. EXPORT_SYMBOL(dmabounce_register_dev);
  438. void dmabounce_unregister_dev(struct device *dev)
  439. {
  440. struct dmabounce_device_info *device_info = dev->archdata.dmabounce;
  441. dev->archdata.dmabounce = NULL;
  442. set_dma_ops(dev, NULL);
  443. if (!device_info) {
  444. dev_warn(dev,
  445. "Never registered with dmabounce but attempting"
  446. "to unregister!\n");
  447. return;
  448. }
  449. if (!list_empty(&device_info->safe_buffers)) {
  450. dev_err(dev,
  451. "Removing from dmabounce with pending buffers!\n");
  452. BUG();
  453. }
  454. if (device_info->small.pool)
  455. dma_pool_destroy(device_info->small.pool);
  456. if (device_info->large.pool)
  457. dma_pool_destroy(device_info->large.pool);
  458. #ifdef STATS
  459. if (device_info->attr_res == 0)
  460. device_remove_file(dev, &dev_attr_dmabounce_stats);
  461. #endif
  462. kfree(device_info);
  463. dev_info(dev, "dmabounce: device unregistered\n");
  464. }
  465. EXPORT_SYMBOL(dmabounce_unregister_dev);
  466. MODULE_AUTHOR("Christopher Hoover <ch@hpl.hp.com>, Deepak Saxena <dsaxena@plexity.net>");
  467. MODULE_DESCRIPTION("Special dma_{map/unmap/dma_sync}_* routines for systems with limited DMA windows");
  468. MODULE_LICENSE("GPL");