// SPDX-License-Identifier: GPL-2.0 /* * Copyright (C) 2018-2020 Christoph Hellwig. * * DMA operations that map physical memory directly without using an IOMMU. */ #include /* for max_pfn */ #include #include #include #include #include #include #include #include #include #include #include "direct.h" /* * Most architectures use ZONE_DMA for the first 16 Megabytes, but some use * it for entirely different regions. In that case the arch code needs to * override the variable below for dma-direct to work properly. */ u64 zone_dma_limit __ro_after_init = DMA_BIT_MASK(24); static inline dma_addr_t phys_to_dma_direct(struct device *dev, phys_addr_t phys, bool unencrypted) { if (unencrypted) return phys_to_dma_unencrypted(dev, phys); return phys_to_dma_encrypted(dev, phys); } static inline struct page *dma_direct_to_page(struct device *dev, dma_addr_t dma_addr) { return pfn_to_page(PHYS_PFN(dma_to_phys(dev, dma_addr))); } u64 dma_direct_get_required_mask(struct device *dev) { bool require_decrypted = force_dma_unencrypted(dev); phys_addr_t phys = ((phys_addr_t)max_pfn << PAGE_SHIFT) - 1; u64 max_dma = phys_to_dma_direct(dev, phys, require_decrypted); return (1ULL << (fls64(max_dma) - 1)) * 2 - 1; } static gfp_t dma_direct_optimal_gfp_mask(struct device *dev, u64 *phys_limit) { u64 dma_limit = min_not_zero( dev->coherent_dma_mask, dev->bus_dma_limit); /* * Optimistically try the zone that the physical address mask falls * into first. If that returns memory that isn't actually addressable * we will fallback to the next lower zone and try again. * * Note that GFP_DMA32 and GFP_DMA are no ops without the corresponding * zones. */ *phys_limit = dma_to_phys(dev, dma_limit); if (*phys_limit <= zone_dma_limit) return GFP_DMA; if (*phys_limit <= DMA_BIT_MASK(32)) return GFP_DMA32; return 0; } bool dma_coherent_ok(struct device *dev, phys_addr_t phys, size_t size) { bool require_decrypted = force_dma_unencrypted(dev); dma_addr_t dma_addr = phys_to_dma_direct(dev, phys, require_decrypted); if (dma_addr == DMA_MAPPING_ERROR) return false; return dma_addr + size - 1 <= min_not_zero(dev->coherent_dma_mask, dev->bus_dma_limit); } static int dma_set_decrypted(struct device *dev, void *vaddr, size_t size) { int ret; ret = set_memory_decrypted((unsigned long)vaddr, PFN_UP(size)); if (ret) pr_warn_ratelimited("leaking DMA memory that can't be decrypted\n"); return ret; } static int dma_set_encrypted(struct device *dev, void *vaddr, size_t size) { int ret; ret = set_memory_encrypted((unsigned long)vaddr, PFN_UP(size)); if (ret) pr_warn_ratelimited("leaking DMA memory that can't be re-encrypted\n"); return ret; } static struct page *dma_direct_alloc_swiotlb(struct device *dev, size_t size, unsigned long attrs) { struct page *page = swiotlb_alloc(dev, size, attrs); if (page && !dma_coherent_ok(dev, page_to_phys(page), size)) { swiotlb_free(dev, page, size); return NULL; } return page; } static struct page *__dma_direct_alloc_pages(struct device *dev, size_t size, gfp_t gfp, bool allow_highmem) { int node = dev_to_node(dev); struct page *page; u64 phys_limit; WARN_ON_ONCE(!PAGE_ALIGNED(size)); gfp |= dma_direct_optimal_gfp_mask(dev, &phys_limit); page = dma_alloc_contiguous(dev, size, gfp); if (page) { if (dma_coherent_ok(dev, page_to_phys(page), size) && (allow_highmem || !PageHighMem(page))) return page; dma_free_contiguous(dev, page, size); } while ((page = alloc_pages_node(node, gfp, get_order(size))) && !dma_coherent_ok(dev, page_to_phys(page), size)) { __free_pages(page, get_order(size)); if (IS_ENABLED(CONFIG_ZONE_DMA32) && phys_limit < DMA_BIT_MASK(64) && !(gfp & (GFP_DMA32 | GFP_DMA))) gfp |= GFP_DMA32; else if (IS_ENABLED(CONFIG_ZONE_DMA) && !(gfp & GFP_DMA)) gfp = (gfp & ~GFP_DMA32) | GFP_DMA; else return NULL; } return page; } /* * Check if a potentially blocking operations needs to dip into the atomic * pools for the given device/gfp. */ static bool dma_direct_use_pool(struct device *dev, gfp_t gfp) { return !gfpflags_allow_blocking(gfp) && !is_swiotlb_for_alloc(dev); } static struct page *dma_direct_alloc_from_pool(struct device *dev, size_t size, dma_addr_t *dma_handle, void **cpu_addr, gfp_t gfp, unsigned long attrs) { struct page *page; u64 phys_limit; if (WARN_ON_ONCE(!IS_ENABLED(CONFIG_DMA_COHERENT_POOL))) return NULL; gfp |= dma_direct_optimal_gfp_mask(dev, &phys_limit); page = dma_alloc_from_pool(dev, size, cpu_addr, gfp, attrs, dma_coherent_ok); if (!page) return NULL; *dma_handle = phys_to_dma_direct(dev, page_to_phys(page), attrs & __DMA_ATTR_ALLOC_CC_SHARED); return page; } static void *dma_direct_alloc_no_mapping(struct device *dev, size_t size, dma_addr_t *dma_handle, gfp_t gfp) { struct page *page; page = __dma_direct_alloc_pages(dev, size, gfp & ~__GFP_ZERO, true); if (!page) return NULL; /* remove any dirty cache lines on the kernel alias */ if (!PageHighMem(page)) arch_dma_prep_coherent(page, size); /* * return the page pointer as the opaque cookie. * Never used for unencrypted allocation */ *dma_handle = phys_to_dma_encrypted(dev, page_to_phys(page)); return page; } void *dma_direct_alloc(struct device *dev, size_t size, dma_addr_t *dma_handle, gfp_t gfp, unsigned long attrs) { bool remap = false, set_uncached = false; bool mark_mem_decrypt = false; bool allow_highmem = true; struct page *page; void *cpu_addr; if (force_dma_unencrypted(dev)) attrs |= __DMA_ATTR_ALLOC_CC_SHARED; if (attrs & __DMA_ATTR_ALLOC_CC_SHARED) { /* * Unencrypted/shared DMA requires a linear-mapped buffer * address to look up the PFN and set architecture-required PFN * attributes. This is not possible with HighMem. Avoid HighMem * allocation. */ allow_highmem = false; mark_mem_decrypt = true; } size = PAGE_ALIGN(size); if (attrs & DMA_ATTR_NO_WARN) gfp |= __GFP_NOWARN; if (((attrs & (DMA_ATTR_NO_KERNEL_MAPPING | __DMA_ATTR_ALLOC_CC_SHARED)) == DMA_ATTR_NO_KERNEL_MAPPING) && !is_swiotlb_for_alloc(dev)) return dma_direct_alloc_no_mapping(dev, size, dma_handle, gfp); if (!dev_is_dma_coherent(dev)) { if (IS_ENABLED(CONFIG_ARCH_HAS_DMA_ALLOC) && !is_swiotlb_for_alloc(dev)) return arch_dma_alloc(dev, size, dma_handle, gfp, attrs); /* * If there is a global pool, always allocate from it for * non-coherent devices. */ if (IS_ENABLED(CONFIG_DMA_GLOBAL_POOL)) return dma_alloc_from_global_coherent(dev, size, dma_handle); /* * Otherwise we require the architecture to either be able to * mark arbitrary parts of the kernel direct mapping uncached, * or remapped it uncached. */ set_uncached = IS_ENABLED(CONFIG_ARCH_HAS_DMA_SET_UNCACHED); remap = IS_ENABLED(CONFIG_DMA_DIRECT_REMAP); if (!set_uncached && !remap) { pr_warn_once("coherent DMA allocations not supported on this platform.\n"); return NULL; } } /* * Remapping or decrypting memory may block, allocate the memory from * the atomic pools instead if we aren't allowed block. * FIXME: With CONFIG_DMA_DIRECT_REMAP, the pool is also mapped as * DMA-coherent (non-cacheable). We may want to create a separate pool * dedicated to CC_SHARED atomic allocations. */ if ((remap || (attrs & __DMA_ATTR_ALLOC_CC_SHARED)) && dma_direct_use_pool(dev, gfp)) { page = dma_direct_alloc_from_pool(dev, size, dma_handle, &cpu_addr, gfp, attrs); return page ? cpu_addr : NULL; } if (is_swiotlb_for_alloc(dev)) { page = dma_direct_alloc_swiotlb(dev, size, attrs); if (page) { /* * swiotlb allocations comes from pool already marked * decrypted */ mark_mem_decrypt = false; goto setup_page; } return NULL; } /* we always manually zero the memory once we are done */ page = __dma_direct_alloc_pages(dev, size, gfp & ~__GFP_ZERO, allow_highmem); if (!page) return NULL; setup_page: /* * dma_alloc_contiguous can return highmem pages depending on a * combination the cma= arguments and per-arch setup. These need to be * remapped to return a kernel virtual address. */ if (PageHighMem(page)) { remap = true; set_uncached = false; } if (mark_mem_decrypt) { void *lm_addr; lm_addr = page_address(page); if (set_memory_decrypted((unsigned long)lm_addr, PFN_UP(size))) goto out_leak_pages; } if (remap) { pgprot_t prot = dma_pgprot(dev, PAGE_KERNEL, attrs); /* remove any dirty cache lines on the kernel alias */ arch_dma_prep_coherent(page, size); /* create a coherent mapping */ cpu_addr = dma_common_contiguous_remap(page, size, prot, __builtin_return_address(0)); if (!cpu_addr) goto out_encrypt_pages; } else { cpu_addr = page_address(page); } memset(cpu_addr, 0, size); if (set_uncached) { void *uncached_cpu_addr; arch_dma_prep_coherent(page, size); uncached_cpu_addr = arch_dma_set_uncached(cpu_addr, size); if (IS_ERR(uncached_cpu_addr)) goto out_free_remap_pages; cpu_addr = uncached_cpu_addr; } *dma_handle = phys_to_dma_direct(dev, page_to_phys(page), attrs & __DMA_ATTR_ALLOC_CC_SHARED); return cpu_addr; out_free_remap_pages: if (remap) dma_common_free_remap(cpu_addr, size); out_encrypt_pages: if (mark_mem_decrypt && dma_set_encrypted(dev, page_address(page), size)) goto out_leak_pages; if (!swiotlb_free(dev, page, size)) dma_free_contiguous(dev, page, size); return NULL; out_leak_pages: return NULL; } void dma_direct_free(struct device *dev, size_t size, void *cpu_addr, dma_addr_t dma_addr, unsigned long attrs) { phys_addr_t phys; bool mark_mem_encrypted = false; struct io_tlb_pool *swiotlb_pool; unsigned int page_order = get_order(size); /* * If the allocation used decrypted/shared backing pages, restore * the encryption state on free. */ if (force_dma_unencrypted(dev)) attrs |= __DMA_ATTR_ALLOC_CC_SHARED; if (attrs & __DMA_ATTR_ALLOC_CC_SHARED) mark_mem_encrypted = true; if (((attrs & (DMA_ATTR_NO_KERNEL_MAPPING | __DMA_ATTR_ALLOC_CC_SHARED)) == DMA_ATTR_NO_KERNEL_MAPPING) && !is_swiotlb_for_alloc(dev)) { /* cpu_addr is a struct page cookie, not a kernel address */ dma_free_contiguous(dev, cpu_addr, size); return; } if (IS_ENABLED(CONFIG_ARCH_HAS_DMA_ALLOC) && !dev_is_dma_coherent(dev) && !is_swiotlb_for_alloc(dev)) { arch_dma_free(dev, size, cpu_addr, dma_addr, attrs); return; } if (IS_ENABLED(CONFIG_DMA_GLOBAL_POOL) && !dev_is_dma_coherent(dev)) { if (!dma_release_from_global_coherent(page_order, cpu_addr)) WARN_ON_ONCE(1); return; } /* If cpu_addr is not from an atomic pool, dma_free_from_pool() fails */ if (IS_ENABLED(CONFIG_DMA_COHERENT_POOL) && dma_free_from_pool(dev, cpu_addr, PAGE_ALIGN(size))) return; phys = dma_to_phys(dev, dma_addr); swiotlb_pool = swiotlb_find_pool(dev, phys); if (swiotlb_pool) /* Swiotlb doesn't need a page attribute update on free */ mark_mem_encrypted = false; if (is_vmalloc_addr(cpu_addr)) { vunmap(cpu_addr); } else { if (IS_ENABLED(CONFIG_ARCH_HAS_DMA_CLEAR_UNCACHED)) arch_dma_clear_uncached(cpu_addr, size); } if (mark_mem_encrypted) { void *lm_addr; lm_addr = phys_to_virt(phys); if (set_memory_encrypted((unsigned long)lm_addr, PFN_UP(size))) { pr_warn_ratelimited("leaking DMA memory that can't be re-encrypted\n"); return; } } if (swiotlb_pool) swiotlb_free_from_pool(dev, phys, swiotlb_pool); else dma_free_contiguous(dev, dma_direct_to_page(dev, dma_addr), size); } struct page *dma_direct_alloc_pages(struct device *dev, size_t size, dma_addr_t *dma_handle, enum dma_data_direction dir, gfp_t gfp) { unsigned long attrs = 0; struct page *page; void *cpu_addr; if (force_dma_unencrypted(dev)) attrs |= __DMA_ATTR_ALLOC_CC_SHARED; if ((attrs & __DMA_ATTR_ALLOC_CC_SHARED) && dma_direct_use_pool(dev, gfp)) return dma_direct_alloc_from_pool(dev, size, dma_handle, &cpu_addr, gfp, attrs); if (is_swiotlb_for_alloc(dev)) { page = dma_direct_alloc_swiotlb(dev, size, attrs); if (!page) return NULL; cpu_addr = page_address(page); goto setup_page; } page = __dma_direct_alloc_pages(dev, size, gfp, false); if (!page) return NULL; cpu_addr = page_address(page); if ((attrs & __DMA_ATTR_ALLOC_CC_SHARED) && dma_set_decrypted(dev, cpu_addr, size)) goto out_leak_pages; setup_page: memset(cpu_addr, 0, size); *dma_handle = phys_to_dma_direct(dev, page_to_phys(page), attrs & __DMA_ATTR_ALLOC_CC_SHARED); return page; out_leak_pages: return NULL; } void dma_direct_free_pages(struct device *dev, size_t size, struct page *page, dma_addr_t dma_addr, enum dma_data_direction dir) { phys_addr_t phys; void *vaddr = page_address(page); struct io_tlb_pool *swiotlb_pool; /* * if the device had requested for an unencrypted buffer, * convert it to encrypted on free */ bool mark_mem_encrypted = force_dma_unencrypted(dev); /* If page is not from an atomic pool, dma_free_from_pool_page() fails */ if (IS_ENABLED(CONFIG_DMA_COHERENT_POOL) && dma_free_from_pool_page(dev, page, size)) return; phys = page_to_phys(page); swiotlb_pool = swiotlb_find_pool(dev, phys); if (swiotlb_pool) mark_mem_encrypted = false; if (mark_mem_encrypted && dma_set_encrypted(dev, vaddr, size)) return; if (swiotlb_pool) swiotlb_free_from_pool(dev, phys, swiotlb_pool); else dma_free_contiguous(dev, page, size); } #if defined(CONFIG_ARCH_HAS_SYNC_DMA_FOR_DEVICE) || \ defined(CONFIG_SWIOTLB) void dma_direct_sync_sg_for_device(struct device *dev, struct scatterlist *sgl, int nents, enum dma_data_direction dir) { struct scatterlist *sg; int i; for_each_sg(sgl, sg, nents, i) { phys_addr_t paddr = dma_to_phys(dev, sg_dma_address(sg)); swiotlb_sync_single_for_device(dev, paddr, sg->length, dir); if (!dev_is_dma_coherent(dev)) arch_sync_dma_for_device(paddr, sg->length, dir); } if (!dev_is_dma_coherent(dev)) arch_sync_dma_flush(); } #endif #if defined(CONFIG_ARCH_HAS_SYNC_DMA_FOR_CPU) || \ defined(CONFIG_ARCH_HAS_SYNC_DMA_FOR_CPU_ALL) || \ defined(CONFIG_SWIOTLB) void dma_direct_sync_sg_for_cpu(struct device *dev, struct scatterlist *sgl, int nents, enum dma_data_direction dir) { struct scatterlist *sg; int i; for_each_sg(sgl, sg, nents, i) { phys_addr_t paddr = dma_to_phys(dev, sg_dma_address(sg)); if (!dev_is_dma_coherent(dev)) arch_sync_dma_for_cpu(paddr, sg->length, dir); swiotlb_sync_single_for_cpu(dev, paddr, sg->length, dir); } if (!dev_is_dma_coherent(dev)) { arch_sync_dma_flush(); arch_sync_dma_for_cpu_all(); } } /* * Unmaps segments, except for ones marked as pci_p2pdma which do not * require any further action as they contain a bus address. */ void dma_direct_unmap_sg(struct device *dev, struct scatterlist *sgl, int nents, enum dma_data_direction dir, unsigned long attrs) { struct scatterlist *sg; int i; bool need_sync = false; for_each_sg(sgl, sg, nents, i) { if (sg_dma_is_bus_address(sg)) { sg_dma_unmark_bus_address(sg); } else { need_sync = true; dma_direct_unmap_phys(dev, sg->dma_address, sg_dma_len(sg), dir, attrs, false); } } if (need_sync && !dev_is_dma_coherent(dev)) arch_sync_dma_flush(); } #endif int dma_direct_map_sg(struct device *dev, struct scatterlist *sgl, int nents, enum dma_data_direction dir, unsigned long attrs) { struct pci_p2pdma_map_state p2pdma_state = {}; struct scatterlist *sg; int i, ret; bool need_sync = false; for_each_sg(sgl, sg, nents, i) { switch (pci_p2pdma_state(&p2pdma_state, dev, sg_page(sg))) { case PCI_P2PDMA_MAP_THRU_HOST_BRIDGE: /* * Any P2P mapping that traverses the PCI host bridge * must be mapped with CPU physical address and not PCI * bus addresses. */ fallthrough; case PCI_P2PDMA_MAP_NONE: need_sync = true; sg->dma_address = dma_direct_map_phys(dev, sg_phys(sg), sg->length, dir, attrs, false); if (sg->dma_address == DMA_MAPPING_ERROR) { ret = -EIO; goto out_unmap; } break; case PCI_P2PDMA_MAP_BUS_ADDR: sg->dma_address = pci_p2pdma_bus_addr_map( p2pdma_state.mem, sg_phys(sg)); sg_dma_mark_bus_address(sg); break; default: ret = -EREMOTEIO; goto out_unmap; } sg_dma_len(sg) = sg->length; } if (need_sync && !dev_is_dma_coherent(dev)) arch_sync_dma_flush(); return nents; out_unmap: dma_direct_unmap_sg(dev, sgl, i, dir, attrs | DMA_ATTR_SKIP_CPU_SYNC); return ret; } int dma_direct_get_sgtable(struct device *dev, struct sg_table *sgt, void *cpu_addr, dma_addr_t dma_addr, size_t size, unsigned long attrs) { struct page *page = dma_direct_to_page(dev, dma_addr); int ret; ret = sg_alloc_table(sgt, 1, GFP_KERNEL); if (!ret) sg_set_page(sgt->sgl, page, PAGE_ALIGN(size), 0); return ret; } bool dma_direct_can_mmap(struct device *dev) { return dev_is_dma_coherent(dev) || IS_ENABLED(CONFIG_DMA_NONCOHERENT_MMAP); } int dma_direct_mmap(struct device *dev, struct vm_area_struct *vma, void *cpu_addr, dma_addr_t dma_addr, size_t size, unsigned long attrs) { unsigned long user_count = vma_pages(vma); unsigned long count = PAGE_ALIGN(size) >> PAGE_SHIFT; unsigned long pfn = PHYS_PFN(dma_to_phys(dev, dma_addr)); const pgoff_t pgoff_start = vma_start_pgoff(vma); const pgoff_t pgoff_end = vma_end_pgoff(vma); int ret = -ENXIO; if (force_dma_unencrypted(dev)) attrs |= DMA_ATTR_CC_SHARED; vma->vm_page_prot = dma_pgprot(dev, vma->vm_page_prot, attrs); if (dma_mmap_from_dev_coherent(dev, vma, cpu_addr, size, &ret)) return ret; if (dma_mmap_from_global_coherent(vma, cpu_addr, size, &ret)) return ret; if (pgoff_start >= count || pgoff_end > count) return -ENXIO; return remap_pfn_range(vma, vma->vm_start, pfn + pgoff_start, user_count << PAGE_SHIFT, vma->vm_page_prot); } dma_addr_t dma_direct_map_phys(struct device *dev, phys_addr_t phys, size_t size, enum dma_data_direction dir, unsigned long attrs, bool flush) { dma_addr_t dma_addr; if (attrs & DMA_ATTR_MMIO) { /* * For host memory encryption treat MMIO memory as shared */ if (cc_platform_has(CC_ATTR_HOST_MEM_ENCRYPT)) attrs |= DMA_ATTR_CC_SHARED; } if (is_swiotlb_force_bounce(dev)) { if (attrs & (DMA_ATTR_MMIO | DMA_ATTR_REQUIRE_COHERENT)) return DMA_MAPPING_ERROR; return swiotlb_map(dev, phys, size, dir, attrs); } if (attrs & DMA_ATTR_CC_SHARED) dma_addr = phys_to_dma_unencrypted(dev, phys); else dma_addr = phys_to_dma_encrypted(dev, phys); if (attrs & DMA_ATTR_MMIO) { if (unlikely(!dma_capable(dev, dma_addr, size, false, attrs))) goto err_overflow; goto dma_mapped; } if (unlikely(!dma_capable(dev, dma_addr, size, true, attrs)) || dma_kmalloc_needs_bounce(dev, size, dir)) { if (is_swiotlb_active(dev) && !(attrs & DMA_ATTR_REQUIRE_COHERENT)) return swiotlb_map(dev, phys, size, dir, attrs); goto err_overflow; } dma_mapped: if (!dev_is_dma_coherent(dev) && !(attrs & (DMA_ATTR_SKIP_CPU_SYNC | DMA_ATTR_MMIO))) { arch_sync_dma_for_device(phys, size, dir); if (flush) arch_sync_dma_flush(); } return dma_addr; err_overflow: dev_WARN_ONCE( dev, 1, "DMA addr %pad+%zu overflow (mask %llx, bus limit %llx).\n", &dma_addr, size, *dev->dma_mask, dev->bus_dma_limit); return DMA_MAPPING_ERROR; } int dma_direct_supported(struct device *dev, u64 mask) { u64 min_mask = ((u64)max_pfn << PAGE_SHIFT) - 1; /* * Because 32-bit DMA masks are so common we expect every architecture * to be able to satisfy them - either by not supporting more physical * memory, or by providing a ZONE_DMA32. If neither is the case, the * architecture needs to use an IOMMU instead of the direct mapping. */ if (mask >= DMA_BIT_MASK(32)) return 1; /* * This check needs to be against the actual bit mask value, so use * phys_to_dma_unencrypted() here so that the SME encryption mask isn't * part of the check. */ if (IS_ENABLED(CONFIG_ZONE_DMA)) min_mask = min_t(u64, min_mask, zone_dma_limit); return mask >= phys_to_dma_unencrypted(dev, min_mask); } static const struct bus_dma_region *dma_find_range(struct device *dev, unsigned long start_pfn) { const struct bus_dma_region *m; for (m = dev->dma_range_map; PFN_DOWN(m->size); m++) { unsigned long cpu_start_pfn = PFN_DOWN(m->cpu_start); if (start_pfn >= cpu_start_pfn && start_pfn - cpu_start_pfn < PFN_DOWN(m->size)) return m; } return NULL; } /* * To check whether all ram resource ranges are covered by dma range map * Returns 0 when further check is needed * Returns 1 if there is some RAM range can't be covered by dma_range_map */ static int check_ram_in_range_map(unsigned long start_pfn, unsigned long nr_pages, void *data) { unsigned long end_pfn = start_pfn + nr_pages; struct device *dev = data; while (start_pfn < end_pfn) { const struct bus_dma_region *bdr; bdr = dma_find_range(dev, start_pfn); if (!bdr) return 1; start_pfn = PFN_DOWN(bdr->cpu_start) + PFN_DOWN(bdr->size); } return 0; } bool dma_direct_all_ram_mapped(struct device *dev) { if (!dev->dma_range_map) return true; return !walk_system_ram_range(0, PFN_DOWN(ULONG_MAX) + 1, dev, check_ram_in_range_map); } size_t dma_direct_max_mapping_size(struct device *dev) { /* If SWIOTLB is active, use its maximum mapping size */ if (is_swiotlb_active(dev) && (dma_addressing_limited(dev) || is_swiotlb_force_bounce(dev) || force_dma_unencrypted(dev))) return swiotlb_max_mapping_size(dev); return SIZE_MAX; } bool dma_direct_need_sync(struct device *dev, dma_addr_t dma_addr) { return !dev_is_dma_coherent(dev) || swiotlb_find_pool(dev, dma_to_phys(dev, dma_addr)); } /** * dma_direct_set_offset - Assign scalar offset for a single DMA range. * @dev: device pointer; needed to "own" the alloced memory. * @cpu_start: beginning of memory region covered by this offset. * @dma_start: beginning of DMA/PCI region covered by this offset. * @size: size of the region. * * This is for the simple case of a uniform offset which cannot * be discovered by "dma-ranges". * * It returns -ENOMEM if out of memory, -EINVAL if a map * already exists, 0 otherwise. * * Note: any call to this from a driver is a bug. The mapping needs * to be described by the device tree or other firmware interfaces. */ int dma_direct_set_offset(struct device *dev, phys_addr_t cpu_start, dma_addr_t dma_start, u64 size) { struct bus_dma_region *map; u64 offset = (u64)cpu_start - (u64)dma_start; if (dev->dma_range_map) { dev_err(dev, "attempt to add DMA range to existing map\n"); return -EINVAL; } if (!offset) return 0; map = kzalloc_objs(*map, 2); if (!map) return -ENOMEM; map[0].cpu_start = cpu_start; map[0].dma_start = dma_start; map[0].size = size; dev->dma_range_map = map; return 0; }