xref: /openbmc/linux/include/linux/dma-direct.h (revision 9f4df96b)
1ea8c64acSChristoph Hellwig /* SPDX-License-Identifier: GPL-2.0 */
2b4174173SChristoph Hellwig /*
3b4174173SChristoph Hellwig  * Internals of the DMA direct mapping implementation.  Only for use by the
4b4174173SChristoph Hellwig  * DMA mapping code and IOMMU drivers.
5b4174173SChristoph Hellwig  */
6ea8c64acSChristoph Hellwig #ifndef _LINUX_DMA_DIRECT_H
7ea8c64acSChristoph Hellwig #define _LINUX_DMA_DIRECT_H 1
8ea8c64acSChristoph Hellwig 
9ea8c64acSChristoph Hellwig #include <linux/dma-mapping.h>
109f4df96bSChristoph Hellwig #include <linux/dma-map-ops.h>
11b12d6627SNicolas Saenz Julienne #include <linux/memblock.h> /* for min_low_pfn */
12b6e05477SChristoph Hellwig #include <linux/mem_encrypt.h>
13b4174173SChristoph Hellwig #include <linux/swiotlb.h>
14ea8c64acSChristoph Hellwig 
158b5369eaSNicolas Saenz Julienne extern unsigned int zone_dma_bits;
168b5369eaSNicolas Saenz Julienne 
17e0d07278SJim Quinlan /*
18e0d07278SJim Quinlan  * Record the mapping of CPU physical to DMA addresses for a given region.
19e0d07278SJim Quinlan  */
20e0d07278SJim Quinlan struct bus_dma_region {
21e0d07278SJim Quinlan 	phys_addr_t	cpu_start;
22e0d07278SJim Quinlan 	dma_addr_t	dma_start;
23e0d07278SJim Quinlan 	u64		size;
24e0d07278SJim Quinlan 	u64		offset;
25e0d07278SJim Quinlan };
26e0d07278SJim Quinlan 
translate_phys_to_dma(struct device * dev,phys_addr_t paddr)27e0d07278SJim Quinlan static inline dma_addr_t translate_phys_to_dma(struct device *dev,
28e0d07278SJim Quinlan 		phys_addr_t paddr)
29e0d07278SJim Quinlan {
30e0d07278SJim Quinlan 	const struct bus_dma_region *m;
31e0d07278SJim Quinlan 
32e0d07278SJim Quinlan 	for (m = dev->dma_range_map; m->size; m++)
33e0d07278SJim Quinlan 		if (paddr >= m->cpu_start && paddr - m->cpu_start < m->size)
34e0d07278SJim Quinlan 			return (dma_addr_t)paddr - m->offset;
35e0d07278SJim Quinlan 
36e0d07278SJim Quinlan 	/* make sure dma_capable fails when no translation is available */
37e0d07278SJim Quinlan 	return DMA_MAPPING_ERROR;
38e0d07278SJim Quinlan }
39e0d07278SJim Quinlan 
translate_dma_to_phys(struct device * dev,dma_addr_t dma_addr)40e0d07278SJim Quinlan static inline phys_addr_t translate_dma_to_phys(struct device *dev,
41e0d07278SJim Quinlan 		dma_addr_t dma_addr)
42e0d07278SJim Quinlan {
43e0d07278SJim Quinlan 	const struct bus_dma_region *m;
44e0d07278SJim Quinlan 
45e0d07278SJim Quinlan 	for (m = dev->dma_range_map; m->size; m++)
46e0d07278SJim Quinlan 		if (dma_addr >= m->dma_start && dma_addr - m->dma_start < m->size)
47e0d07278SJim Quinlan 			return (phys_addr_t)dma_addr + m->offset;
48e0d07278SJim Quinlan 
49e0d07278SJim Quinlan 	return (phys_addr_t)-1;
50e0d07278SJim Quinlan }
51e0d07278SJim Quinlan 
52ea8c64acSChristoph Hellwig #ifdef CONFIG_ARCH_HAS_PHYS_TO_DMA
53ea8c64acSChristoph Hellwig #include <asm/dma-direct.h>
545ceda740SChristoph Hellwig #ifndef phys_to_dma_unencrypted
555ceda740SChristoph Hellwig #define phys_to_dma_unencrypted		phys_to_dma
565ceda740SChristoph Hellwig #endif
57ea8c64acSChristoph Hellwig #else
phys_to_dma_unencrypted(struct device * dev,phys_addr_t paddr)585ceda740SChristoph Hellwig static inline dma_addr_t phys_to_dma_unencrypted(struct device *dev,
595ceda740SChristoph Hellwig 		phys_addr_t paddr)
60ea8c64acSChristoph Hellwig {
61e0d07278SJim Quinlan 	if (dev->dma_range_map)
62e0d07278SJim Quinlan 		return translate_phys_to_dma(dev, paddr);
63e0d07278SJim Quinlan 	return paddr;
64ea8c64acSChristoph Hellwig }
65ea8c64acSChristoph Hellwig 
665ceda740SChristoph Hellwig /*
675ceda740SChristoph Hellwig  * If memory encryption is supported, phys_to_dma will set the memory encryption
685ceda740SChristoph Hellwig  * bit in the DMA address, and dma_to_phys will clear it.
695ceda740SChristoph Hellwig  * phys_to_dma_unencrypted is for use on special unencrypted memory like swiotlb
705ceda740SChristoph Hellwig  * buffers.
715ceda740SChristoph Hellwig  */
phys_to_dma(struct device * dev,phys_addr_t paddr)725ceda740SChristoph Hellwig static inline dma_addr_t phys_to_dma(struct device *dev, phys_addr_t paddr)
735ceda740SChristoph Hellwig {
745ceda740SChristoph Hellwig 	return __sme_set(phys_to_dma_unencrypted(dev, paddr));
755ceda740SChristoph Hellwig }
765ceda740SChristoph Hellwig 
dma_to_phys(struct device * dev,dma_addr_t dma_addr)77e0d07278SJim Quinlan static inline phys_addr_t dma_to_phys(struct device *dev, dma_addr_t dma_addr)
78ea8c64acSChristoph Hellwig {
79e0d07278SJim Quinlan 	phys_addr_t paddr;
80e0d07278SJim Quinlan 
81e0d07278SJim Quinlan 	if (dev->dma_range_map)
82e0d07278SJim Quinlan 		paddr = translate_dma_to_phys(dev, dma_addr);
83e0d07278SJim Quinlan 	else
84e0d07278SJim Quinlan 		paddr = dma_addr;
85ea8c64acSChristoph Hellwig 
867bc5c428SChristoph Hellwig 	return __sme_clr(paddr);
87ea8c64acSChristoph Hellwig }
88130c1ccbSChristoph Hellwig #endif /* !CONFIG_ARCH_HAS_PHYS_TO_DMA */
89ea8c64acSChristoph Hellwig 
909087c375STom Lendacky #ifdef CONFIG_ARCH_HAS_FORCE_DMA_UNENCRYPTED
919087c375STom Lendacky bool force_dma_unencrypted(struct device *dev);
929087c375STom Lendacky #else
force_dma_unencrypted(struct device * dev)939087c375STom Lendacky static inline bool force_dma_unencrypted(struct device *dev)
949087c375STom Lendacky {
959087c375STom Lendacky 	return false;
969087c375STom Lendacky }
979087c375STom Lendacky #endif /* CONFIG_ARCH_HAS_FORCE_DMA_UNENCRYPTED */
989087c375STom Lendacky 
dma_capable(struct device * dev,dma_addr_t addr,size_t size,bool is_ram)9968a33b17SChristoph Hellwig static inline bool dma_capable(struct device *dev, dma_addr_t addr, size_t size,
10068a33b17SChristoph Hellwig 		bool is_ram)
101c7345159SChristoph Hellwig {
102c7345159SChristoph Hellwig 	dma_addr_t end = addr + size - 1;
103c7345159SChristoph Hellwig 
104e0d07278SJim Quinlan 	if (addr == DMA_MAPPING_ERROR)
105e0d07278SJim Quinlan 		return false;
10668a33b17SChristoph Hellwig 	if (is_ram && !IS_ENABLED(CONFIG_ARCH_DMA_ADDR_T_64BIT) &&
107c7345159SChristoph Hellwig 	    min(addr, end) < phys_to_dma(dev, PFN_PHYS(min_low_pfn)))
108c7345159SChristoph Hellwig 		return false;
109c7345159SChristoph Hellwig 
110a7ba70f1SNicolas Saenz Julienne 	return end <= min_not_zero(*dev->dma_mask, dev->bus_dma_limit);
111c7345159SChristoph Hellwig }
112c7345159SChristoph Hellwig 
113a20bb058SChristoph Hellwig u64 dma_direct_get_required_mask(struct device *dev);
11419dca8c0SChristoph Hellwig void *dma_direct_alloc(struct device *dev, size_t size, dma_addr_t *dma_handle,
11519dca8c0SChristoph Hellwig 		gfp_t gfp, unsigned long attrs);
11619dca8c0SChristoph Hellwig void dma_direct_free(struct device *dev, size_t size, void *cpu_addr,
11719dca8c0SChristoph Hellwig 		dma_addr_t dma_addr, unsigned long attrs);
118efa70f2fSChristoph Hellwig struct page *dma_direct_alloc_pages(struct device *dev, size_t size,
119efa70f2fSChristoph Hellwig 		dma_addr_t *dma_handle, enum dma_data_direction dir, gfp_t gfp);
120efa70f2fSChristoph Hellwig void dma_direct_free_pages(struct device *dev, size_t size,
121efa70f2fSChristoph Hellwig 		struct page *page, dma_addr_t dma_addr,
122efa70f2fSChristoph Hellwig 		enum dma_data_direction dir);
1231a9777a8SChristoph Hellwig int dma_direct_supported(struct device *dev, u64 mask);
124d3fa60d7SChristoph Hellwig dma_addr_t dma_direct_map_resource(struct device *dev, phys_addr_t paddr,
125d3fa60d7SChristoph Hellwig 		size_t size, enum dma_data_direction dir, unsigned long attrs);
126d3fa60d7SChristoph Hellwig 
127ea8c64acSChristoph Hellwig #endif /* _LINUX_DMA_DIRECT_H */
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