direct.c 18 KB

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  1. // SPDX-License-Identifier: GPL-2.0
  2. /*
  3. * Copyright (C) 2018-2020 Christoph Hellwig.
  4. *
  5. * DMA operations that map physical memory directly without using an IOMMU.
  6. */
  7. #include <linux/memblock.h> /* for max_pfn */
  8. #include <linux/export.h>
  9. #include <linux/mm.h>
  10. #include <linux/dma-map-ops.h>
  11. #include <linux/scatterlist.h>
  12. #include <linux/pfn.h>
  13. #include <linux/vmalloc.h>
  14. #include <linux/set_memory.h>
  15. #include <linux/slab.h>
  16. #include "direct.h"
  17. /*
  18. * Most architectures use ZONE_DMA for the first 16 Megabytes, but some use
  19. * it for entirely different regions. In that case the arch code needs to
  20. * override the variable below for dma-direct to work properly.
  21. */
  22. u64 zone_dma_limit __ro_after_init = DMA_BIT_MASK(24);
  23. static inline dma_addr_t phys_to_dma_direct(struct device *dev,
  24. phys_addr_t phys)
  25. {
  26. if (force_dma_unencrypted(dev))
  27. return phys_to_dma_unencrypted(dev, phys);
  28. return phys_to_dma(dev, phys);
  29. }
  30. static inline struct page *dma_direct_to_page(struct device *dev,
  31. dma_addr_t dma_addr)
  32. {
  33. return pfn_to_page(PHYS_PFN(dma_to_phys(dev, dma_addr)));
  34. }
  35. u64 dma_direct_get_required_mask(struct device *dev)
  36. {
  37. phys_addr_t phys = (phys_addr_t)(max_pfn - 1) << PAGE_SHIFT;
  38. u64 max_dma = phys_to_dma_direct(dev, phys);
  39. return (1ULL << (fls64(max_dma) - 1)) * 2 - 1;
  40. }
  41. static gfp_t dma_direct_optimal_gfp_mask(struct device *dev, u64 *phys_limit)
  42. {
  43. u64 dma_limit = min_not_zero(
  44. dev->coherent_dma_mask,
  45. dev->bus_dma_limit);
  46. /*
  47. * Optimistically try the zone that the physical address mask falls
  48. * into first. If that returns memory that isn't actually addressable
  49. * we will fallback to the next lower zone and try again.
  50. *
  51. * Note that GFP_DMA32 and GFP_DMA are no ops without the corresponding
  52. * zones.
  53. */
  54. *phys_limit = dma_to_phys(dev, dma_limit);
  55. if (*phys_limit <= zone_dma_limit)
  56. return GFP_DMA;
  57. if (*phys_limit <= DMA_BIT_MASK(32))
  58. return GFP_DMA32;
  59. return 0;
  60. }
  61. bool dma_coherent_ok(struct device *dev, phys_addr_t phys, size_t size)
  62. {
  63. dma_addr_t dma_addr = phys_to_dma_direct(dev, phys);
  64. if (dma_addr == DMA_MAPPING_ERROR)
  65. return false;
  66. return dma_addr + size - 1 <=
  67. min_not_zero(dev->coherent_dma_mask, dev->bus_dma_limit);
  68. }
  69. static int dma_set_decrypted(struct device *dev, void *vaddr, size_t size)
  70. {
  71. if (!force_dma_unencrypted(dev))
  72. return 0;
  73. return set_memory_decrypted((unsigned long)vaddr, PFN_UP(size));
  74. }
  75. static int dma_set_encrypted(struct device *dev, void *vaddr, size_t size)
  76. {
  77. int ret;
  78. if (!force_dma_unencrypted(dev))
  79. return 0;
  80. ret = set_memory_encrypted((unsigned long)vaddr, PFN_UP(size));
  81. if (ret)
  82. pr_warn_ratelimited("leaking DMA memory that can't be re-encrypted\n");
  83. return ret;
  84. }
  85. static void __dma_direct_free_pages(struct device *dev, struct page *page,
  86. size_t size)
  87. {
  88. if (swiotlb_free(dev, page, size))
  89. return;
  90. dma_free_contiguous(dev, page, size);
  91. }
  92. static struct page *dma_direct_alloc_swiotlb(struct device *dev, size_t size)
  93. {
  94. struct page *page = swiotlb_alloc(dev, size);
  95. if (page && !dma_coherent_ok(dev, page_to_phys(page), size)) {
  96. swiotlb_free(dev, page, size);
  97. return NULL;
  98. }
  99. return page;
  100. }
  101. static struct page *__dma_direct_alloc_pages(struct device *dev, size_t size,
  102. gfp_t gfp, bool allow_highmem)
  103. {
  104. int node = dev_to_node(dev);
  105. struct page *page = NULL;
  106. u64 phys_limit;
  107. WARN_ON_ONCE(!PAGE_ALIGNED(size));
  108. if (is_swiotlb_for_alloc(dev))
  109. return dma_direct_alloc_swiotlb(dev, size);
  110. gfp |= dma_direct_optimal_gfp_mask(dev, &phys_limit);
  111. page = dma_alloc_contiguous(dev, size, gfp);
  112. if (page) {
  113. if (!dma_coherent_ok(dev, page_to_phys(page), size) ||
  114. (!allow_highmem && PageHighMem(page))) {
  115. dma_free_contiguous(dev, page, size);
  116. page = NULL;
  117. }
  118. }
  119. again:
  120. if (!page)
  121. page = alloc_pages_node(node, gfp, get_order(size));
  122. if (page && !dma_coherent_ok(dev, page_to_phys(page), size)) {
  123. __free_pages(page, get_order(size));
  124. page = NULL;
  125. if (IS_ENABLED(CONFIG_ZONE_DMA32) &&
  126. phys_limit < DMA_BIT_MASK(64) &&
  127. !(gfp & (GFP_DMA32 | GFP_DMA))) {
  128. gfp |= GFP_DMA32;
  129. goto again;
  130. }
  131. if (IS_ENABLED(CONFIG_ZONE_DMA) && !(gfp & GFP_DMA)) {
  132. gfp = (gfp & ~GFP_DMA32) | GFP_DMA;
  133. goto again;
  134. }
  135. }
  136. return page;
  137. }
  138. /*
  139. * Check if a potentially blocking operations needs to dip into the atomic
  140. * pools for the given device/gfp.
  141. */
  142. static bool dma_direct_use_pool(struct device *dev, gfp_t gfp)
  143. {
  144. return !gfpflags_allow_blocking(gfp) && !is_swiotlb_for_alloc(dev);
  145. }
  146. static void *dma_direct_alloc_from_pool(struct device *dev, size_t size,
  147. dma_addr_t *dma_handle, gfp_t gfp)
  148. {
  149. struct page *page;
  150. u64 phys_limit;
  151. void *ret;
  152. if (WARN_ON_ONCE(!IS_ENABLED(CONFIG_DMA_COHERENT_POOL)))
  153. return NULL;
  154. gfp |= dma_direct_optimal_gfp_mask(dev, &phys_limit);
  155. page = dma_alloc_from_pool(dev, size, &ret, gfp, dma_coherent_ok);
  156. if (!page)
  157. return NULL;
  158. *dma_handle = phys_to_dma_direct(dev, page_to_phys(page));
  159. return ret;
  160. }
  161. static void *dma_direct_alloc_no_mapping(struct device *dev, size_t size,
  162. dma_addr_t *dma_handle, gfp_t gfp)
  163. {
  164. struct page *page;
  165. page = __dma_direct_alloc_pages(dev, size, gfp & ~__GFP_ZERO, true);
  166. if (!page)
  167. return NULL;
  168. /* remove any dirty cache lines on the kernel alias */
  169. if (!PageHighMem(page))
  170. arch_dma_prep_coherent(page, size);
  171. /* return the page pointer as the opaque cookie */
  172. *dma_handle = phys_to_dma_direct(dev, page_to_phys(page));
  173. return page;
  174. }
  175. void *dma_direct_alloc(struct device *dev, size_t size,
  176. dma_addr_t *dma_handle, gfp_t gfp, unsigned long attrs)
  177. {
  178. bool remap = false, set_uncached = false;
  179. struct page *page;
  180. void *ret;
  181. size = PAGE_ALIGN(size);
  182. if (attrs & DMA_ATTR_NO_WARN)
  183. gfp |= __GFP_NOWARN;
  184. if ((attrs & DMA_ATTR_NO_KERNEL_MAPPING) &&
  185. !force_dma_unencrypted(dev) && !is_swiotlb_for_alloc(dev))
  186. return dma_direct_alloc_no_mapping(dev, size, dma_handle, gfp);
  187. if (!dev_is_dma_coherent(dev)) {
  188. if (IS_ENABLED(CONFIG_ARCH_HAS_DMA_ALLOC) &&
  189. !is_swiotlb_for_alloc(dev))
  190. return arch_dma_alloc(dev, size, dma_handle, gfp,
  191. attrs);
  192. /*
  193. * If there is a global pool, always allocate from it for
  194. * non-coherent devices.
  195. */
  196. if (IS_ENABLED(CONFIG_DMA_GLOBAL_POOL))
  197. return dma_alloc_from_global_coherent(dev, size,
  198. dma_handle);
  199. /*
  200. * Otherwise we require the architecture to either be able to
  201. * mark arbitrary parts of the kernel direct mapping uncached,
  202. * or remapped it uncached.
  203. */
  204. set_uncached = IS_ENABLED(CONFIG_ARCH_HAS_DMA_SET_UNCACHED);
  205. remap = IS_ENABLED(CONFIG_DMA_DIRECT_REMAP);
  206. if (!set_uncached && !remap) {
  207. pr_warn_once("coherent DMA allocations not supported on this platform.\n");
  208. return NULL;
  209. }
  210. }
  211. /*
  212. * Remapping or decrypting memory may block, allocate the memory from
  213. * the atomic pools instead if we aren't allowed block.
  214. */
  215. if ((remap || force_dma_unencrypted(dev)) &&
  216. dma_direct_use_pool(dev, gfp))
  217. return dma_direct_alloc_from_pool(dev, size, dma_handle, gfp);
  218. /* we always manually zero the memory once we are done */
  219. page = __dma_direct_alloc_pages(dev, size, gfp & ~__GFP_ZERO, true);
  220. if (!page)
  221. return NULL;
  222. /*
  223. * dma_alloc_contiguous can return highmem pages depending on a
  224. * combination the cma= arguments and per-arch setup. These need to be
  225. * remapped to return a kernel virtual address.
  226. */
  227. if (PageHighMem(page)) {
  228. remap = true;
  229. set_uncached = false;
  230. }
  231. if (remap) {
  232. pgprot_t prot = dma_pgprot(dev, PAGE_KERNEL, attrs);
  233. if (force_dma_unencrypted(dev))
  234. prot = pgprot_decrypted(prot);
  235. /* remove any dirty cache lines on the kernel alias */
  236. arch_dma_prep_coherent(page, size);
  237. /* create a coherent mapping */
  238. ret = dma_common_contiguous_remap(page, size, prot,
  239. __builtin_return_address(0));
  240. if (!ret)
  241. goto out_free_pages;
  242. } else {
  243. ret = page_address(page);
  244. if (dma_set_decrypted(dev, ret, size))
  245. goto out_leak_pages;
  246. }
  247. memset(ret, 0, size);
  248. if (set_uncached) {
  249. arch_dma_prep_coherent(page, size);
  250. ret = arch_dma_set_uncached(ret, size);
  251. if (IS_ERR(ret))
  252. goto out_encrypt_pages;
  253. }
  254. *dma_handle = phys_to_dma_direct(dev, page_to_phys(page));
  255. return ret;
  256. out_encrypt_pages:
  257. if (dma_set_encrypted(dev, page_address(page), size))
  258. return NULL;
  259. out_free_pages:
  260. __dma_direct_free_pages(dev, page, size);
  261. return NULL;
  262. out_leak_pages:
  263. return NULL;
  264. }
  265. void dma_direct_free(struct device *dev, size_t size,
  266. void *cpu_addr, dma_addr_t dma_addr, unsigned long attrs)
  267. {
  268. unsigned int page_order = get_order(size);
  269. if ((attrs & DMA_ATTR_NO_KERNEL_MAPPING) &&
  270. !force_dma_unencrypted(dev) && !is_swiotlb_for_alloc(dev)) {
  271. /* cpu_addr is a struct page cookie, not a kernel address */
  272. dma_free_contiguous(dev, cpu_addr, size);
  273. return;
  274. }
  275. if (IS_ENABLED(CONFIG_ARCH_HAS_DMA_ALLOC) &&
  276. !dev_is_dma_coherent(dev) &&
  277. !is_swiotlb_for_alloc(dev)) {
  278. arch_dma_free(dev, size, cpu_addr, dma_addr, attrs);
  279. return;
  280. }
  281. if (IS_ENABLED(CONFIG_DMA_GLOBAL_POOL) &&
  282. !dev_is_dma_coherent(dev)) {
  283. if (!dma_release_from_global_coherent(page_order, cpu_addr))
  284. WARN_ON_ONCE(1);
  285. return;
  286. }
  287. /* If cpu_addr is not from an atomic pool, dma_free_from_pool() fails */
  288. if (IS_ENABLED(CONFIG_DMA_COHERENT_POOL) &&
  289. dma_free_from_pool(dev, cpu_addr, PAGE_ALIGN(size)))
  290. return;
  291. if (is_vmalloc_addr(cpu_addr)) {
  292. vunmap(cpu_addr);
  293. } else {
  294. if (IS_ENABLED(CONFIG_ARCH_HAS_DMA_CLEAR_UNCACHED))
  295. arch_dma_clear_uncached(cpu_addr, size);
  296. if (dma_set_encrypted(dev, cpu_addr, size))
  297. return;
  298. }
  299. __dma_direct_free_pages(dev, dma_direct_to_page(dev, dma_addr), size);
  300. }
  301. struct page *dma_direct_alloc_pages(struct device *dev, size_t size,
  302. dma_addr_t *dma_handle, enum dma_data_direction dir, gfp_t gfp)
  303. {
  304. struct page *page;
  305. void *ret;
  306. if (force_dma_unencrypted(dev) && dma_direct_use_pool(dev, gfp))
  307. return dma_direct_alloc_from_pool(dev, size, dma_handle, gfp);
  308. page = __dma_direct_alloc_pages(dev, size, gfp, false);
  309. if (!page)
  310. return NULL;
  311. ret = page_address(page);
  312. if (dma_set_decrypted(dev, ret, size))
  313. goto out_leak_pages;
  314. memset(ret, 0, size);
  315. *dma_handle = phys_to_dma_direct(dev, page_to_phys(page));
  316. return page;
  317. out_leak_pages:
  318. return NULL;
  319. }
  320. void dma_direct_free_pages(struct device *dev, size_t size,
  321. struct page *page, dma_addr_t dma_addr,
  322. enum dma_data_direction dir)
  323. {
  324. void *vaddr = page_address(page);
  325. /* If cpu_addr is not from an atomic pool, dma_free_from_pool() fails */
  326. if (IS_ENABLED(CONFIG_DMA_COHERENT_POOL) &&
  327. dma_free_from_pool(dev, vaddr, size))
  328. return;
  329. if (dma_set_encrypted(dev, vaddr, size))
  330. return;
  331. __dma_direct_free_pages(dev, page, size);
  332. }
  333. #if defined(CONFIG_ARCH_HAS_SYNC_DMA_FOR_DEVICE) || \
  334. defined(CONFIG_SWIOTLB)
  335. void dma_direct_sync_sg_for_device(struct device *dev,
  336. struct scatterlist *sgl, int nents, enum dma_data_direction dir)
  337. {
  338. struct scatterlist *sg;
  339. int i;
  340. for_each_sg(sgl, sg, nents, i) {
  341. phys_addr_t paddr = dma_to_phys(dev, sg_dma_address(sg));
  342. swiotlb_sync_single_for_device(dev, paddr, sg->length, dir);
  343. if (!dev_is_dma_coherent(dev))
  344. arch_sync_dma_for_device(paddr, sg->length,
  345. dir);
  346. }
  347. }
  348. #endif
  349. #if defined(CONFIG_ARCH_HAS_SYNC_DMA_FOR_CPU) || \
  350. defined(CONFIG_ARCH_HAS_SYNC_DMA_FOR_CPU_ALL) || \
  351. defined(CONFIG_SWIOTLB)
  352. void dma_direct_sync_sg_for_cpu(struct device *dev,
  353. struct scatterlist *sgl, int nents, enum dma_data_direction dir)
  354. {
  355. struct scatterlist *sg;
  356. int i;
  357. for_each_sg(sgl, sg, nents, i) {
  358. phys_addr_t paddr = dma_to_phys(dev, sg_dma_address(sg));
  359. if (!dev_is_dma_coherent(dev))
  360. arch_sync_dma_for_cpu(paddr, sg->length, dir);
  361. swiotlb_sync_single_for_cpu(dev, paddr, sg->length, dir);
  362. if (dir == DMA_FROM_DEVICE)
  363. arch_dma_mark_clean(paddr, sg->length);
  364. }
  365. if (!dev_is_dma_coherent(dev))
  366. arch_sync_dma_for_cpu_all();
  367. }
  368. /*
  369. * Unmaps segments, except for ones marked as pci_p2pdma which do not
  370. * require any further action as they contain a bus address.
  371. */
  372. void dma_direct_unmap_sg(struct device *dev, struct scatterlist *sgl,
  373. int nents, enum dma_data_direction dir, unsigned long attrs)
  374. {
  375. struct scatterlist *sg;
  376. int i;
  377. for_each_sg(sgl, sg, nents, i) {
  378. if (sg_dma_is_bus_address(sg))
  379. sg_dma_unmark_bus_address(sg);
  380. else
  381. dma_direct_unmap_page(dev, sg->dma_address,
  382. sg_dma_len(sg), dir, attrs);
  383. }
  384. }
  385. #endif
  386. int dma_direct_map_sg(struct device *dev, struct scatterlist *sgl, int nents,
  387. enum dma_data_direction dir, unsigned long attrs)
  388. {
  389. struct pci_p2pdma_map_state p2pdma_state = {};
  390. enum pci_p2pdma_map_type map;
  391. struct scatterlist *sg;
  392. int i, ret;
  393. for_each_sg(sgl, sg, nents, i) {
  394. if (is_pci_p2pdma_page(sg_page(sg))) {
  395. map = pci_p2pdma_map_segment(&p2pdma_state, dev, sg);
  396. switch (map) {
  397. case PCI_P2PDMA_MAP_BUS_ADDR:
  398. continue;
  399. case PCI_P2PDMA_MAP_THRU_HOST_BRIDGE:
  400. /*
  401. * Any P2P mapping that traverses the PCI
  402. * host bridge must be mapped with CPU physical
  403. * address and not PCI bus addresses. This is
  404. * done with dma_direct_map_page() below.
  405. */
  406. break;
  407. default:
  408. ret = -EREMOTEIO;
  409. goto out_unmap;
  410. }
  411. }
  412. sg->dma_address = dma_direct_map_page(dev, sg_page(sg),
  413. sg->offset, sg->length, dir, attrs);
  414. if (sg->dma_address == DMA_MAPPING_ERROR) {
  415. ret = -EIO;
  416. goto out_unmap;
  417. }
  418. sg_dma_len(sg) = sg->length;
  419. }
  420. return nents;
  421. out_unmap:
  422. dma_direct_unmap_sg(dev, sgl, i, dir, attrs | DMA_ATTR_SKIP_CPU_SYNC);
  423. return ret;
  424. }
  425. dma_addr_t dma_direct_map_resource(struct device *dev, phys_addr_t paddr,
  426. size_t size, enum dma_data_direction dir, unsigned long attrs)
  427. {
  428. dma_addr_t dma_addr = paddr;
  429. if (unlikely(!dma_capable(dev, dma_addr, size, false))) {
  430. dev_err_once(dev,
  431. "DMA addr %pad+%zu overflow (mask %llx, bus limit %llx).\n",
  432. &dma_addr, size, *dev->dma_mask, dev->bus_dma_limit);
  433. WARN_ON_ONCE(1);
  434. return DMA_MAPPING_ERROR;
  435. }
  436. return dma_addr;
  437. }
  438. int dma_direct_get_sgtable(struct device *dev, struct sg_table *sgt,
  439. void *cpu_addr, dma_addr_t dma_addr, size_t size,
  440. unsigned long attrs)
  441. {
  442. struct page *page = dma_direct_to_page(dev, dma_addr);
  443. int ret;
  444. ret = sg_alloc_table(sgt, 1, GFP_KERNEL);
  445. if (!ret)
  446. sg_set_page(sgt->sgl, page, PAGE_ALIGN(size), 0);
  447. return ret;
  448. }
  449. bool dma_direct_can_mmap(struct device *dev)
  450. {
  451. return dev_is_dma_coherent(dev) ||
  452. IS_ENABLED(CONFIG_DMA_NONCOHERENT_MMAP);
  453. }
  454. int dma_direct_mmap(struct device *dev, struct vm_area_struct *vma,
  455. void *cpu_addr, dma_addr_t dma_addr, size_t size,
  456. unsigned long attrs)
  457. {
  458. unsigned long user_count = vma_pages(vma);
  459. unsigned long count = PAGE_ALIGN(size) >> PAGE_SHIFT;
  460. unsigned long pfn = PHYS_PFN(dma_to_phys(dev, dma_addr));
  461. int ret = -ENXIO;
  462. vma->vm_page_prot = dma_pgprot(dev, vma->vm_page_prot, attrs);
  463. if (force_dma_unencrypted(dev))
  464. vma->vm_page_prot = pgprot_decrypted(vma->vm_page_prot);
  465. if (dma_mmap_from_dev_coherent(dev, vma, cpu_addr, size, &ret))
  466. return ret;
  467. if (dma_mmap_from_global_coherent(vma, cpu_addr, size, &ret))
  468. return ret;
  469. if (vma->vm_pgoff >= count || user_count > count - vma->vm_pgoff)
  470. return -ENXIO;
  471. return remap_pfn_range(vma, vma->vm_start, pfn + vma->vm_pgoff,
  472. user_count << PAGE_SHIFT, vma->vm_page_prot);
  473. }
  474. int dma_direct_supported(struct device *dev, u64 mask)
  475. {
  476. u64 min_mask = (max_pfn - 1) << PAGE_SHIFT;
  477. /*
  478. * Because 32-bit DMA masks are so common we expect every architecture
  479. * to be able to satisfy them - either by not supporting more physical
  480. * memory, or by providing a ZONE_DMA32. If neither is the case, the
  481. * architecture needs to use an IOMMU instead of the direct mapping.
  482. */
  483. if (mask >= DMA_BIT_MASK(32))
  484. return 1;
  485. /*
  486. * This check needs to be against the actual bit mask value, so use
  487. * phys_to_dma_unencrypted() here so that the SME encryption mask isn't
  488. * part of the check.
  489. */
  490. if (IS_ENABLED(CONFIG_ZONE_DMA))
  491. min_mask = min_t(u64, min_mask, zone_dma_limit);
  492. return mask >= phys_to_dma_unencrypted(dev, min_mask);
  493. }
  494. static const struct bus_dma_region *dma_find_range(struct device *dev,
  495. unsigned long start_pfn)
  496. {
  497. const struct bus_dma_region *m;
  498. for (m = dev->dma_range_map; PFN_DOWN(m->size); m++) {
  499. unsigned long cpu_start_pfn = PFN_DOWN(m->cpu_start);
  500. if (start_pfn >= cpu_start_pfn &&
  501. start_pfn - cpu_start_pfn < PFN_DOWN(m->size))
  502. return m;
  503. }
  504. return NULL;
  505. }
  506. /*
  507. * To check whether all ram resource ranges are covered by dma range map
  508. * Returns 0 when further check is needed
  509. * Returns 1 if there is some RAM range can't be covered by dma_range_map
  510. */
  511. static int check_ram_in_range_map(unsigned long start_pfn,
  512. unsigned long nr_pages, void *data)
  513. {
  514. unsigned long end_pfn = start_pfn + nr_pages;
  515. struct device *dev = data;
  516. while (start_pfn < end_pfn) {
  517. const struct bus_dma_region *bdr;
  518. bdr = dma_find_range(dev, start_pfn);
  519. if (!bdr)
  520. return 1;
  521. start_pfn = PFN_DOWN(bdr->cpu_start) + PFN_DOWN(bdr->size);
  522. }
  523. return 0;
  524. }
  525. bool dma_direct_all_ram_mapped(struct device *dev)
  526. {
  527. if (!dev->dma_range_map)
  528. return true;
  529. return !walk_system_ram_range(0, PFN_DOWN(ULONG_MAX) + 1, dev,
  530. check_ram_in_range_map);
  531. }
  532. size_t dma_direct_max_mapping_size(struct device *dev)
  533. {
  534. /* If SWIOTLB is active, use its maximum mapping size */
  535. if (is_swiotlb_active(dev) &&
  536. (dma_addressing_limited(dev) || is_swiotlb_force_bounce(dev)))
  537. return swiotlb_max_mapping_size(dev);
  538. return SIZE_MAX;
  539. }
  540. bool dma_direct_need_sync(struct device *dev, dma_addr_t dma_addr)
  541. {
  542. return !dev_is_dma_coherent(dev) ||
  543. swiotlb_find_pool(dev, dma_to_phys(dev, dma_addr));
  544. }
  545. /**
  546. * dma_direct_set_offset - Assign scalar offset for a single DMA range.
  547. * @dev: device pointer; needed to "own" the alloced memory.
  548. * @cpu_start: beginning of memory region covered by this offset.
  549. * @dma_start: beginning of DMA/PCI region covered by this offset.
  550. * @size: size of the region.
  551. *
  552. * This is for the simple case of a uniform offset which cannot
  553. * be discovered by "dma-ranges".
  554. *
  555. * It returns -ENOMEM if out of memory, -EINVAL if a map
  556. * already exists, 0 otherwise.
  557. *
  558. * Note: any call to this from a driver is a bug. The mapping needs
  559. * to be described by the device tree or other firmware interfaces.
  560. */
  561. int dma_direct_set_offset(struct device *dev, phys_addr_t cpu_start,
  562. dma_addr_t dma_start, u64 size)
  563. {
  564. struct bus_dma_region *map;
  565. u64 offset = (u64)cpu_start - (u64)dma_start;
  566. if (dev->dma_range_map) {
  567. dev_err(dev, "attempt to add DMA range to existing map\n");
  568. return -EINVAL;
  569. }
  570. if (!offset)
  571. return 0;
  572. map = kcalloc(2, sizeof(*map), GFP_KERNEL);
  573. if (!map)
  574. return -ENOMEM;
  575. map[0].cpu_start = cpu_start;
  576. map[0].dma_start = dma_start;
  577. map[0].size = size;
  578. dev->dma_range_map = map;
  579. return 0;
  580. }