swiotlb.c 18.7 KB
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/*
 * Dynamic DMA mapping support.
 *
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 * This implementation is a fallback for platforms that do not support
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 * I/O TLBs (aka DMA address translation hardware).
 * Copyright (C) 2000 Asit Mallick <Asit.K.Mallick@intel.com>
 * Copyright (C) 2000 Goutham Rao <goutham.rao@intel.com>
 * Copyright (C) 2000, 2003 Hewlett-Packard Co
 *	David Mosberger-Tang <davidm@hpl.hp.com>
 *
 * 03/05/07 davidm	Switch from PCI-DMA to generic device DMA API.
 * 00/12/13 davidm	Rename to swiotlb.c and add mark_clean() to avoid
 *			unnecessary i-cache flushing.
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 * 04/07/.. ak		Better overflow handling. Assorted fixes.
 * 05/09/10 linville	Add support for syncing ranges, support syncing for
 *			DMA_BIDIRECTIONAL mappings, miscellaneous cleanup.
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 * 08/12/11 beckyb	Add highmem support
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 */

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#define pr_fmt(fmt) "software IO TLB: " fmt

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#include <linux/cache.h>
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#include <linux/dma-direct.h>
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#include <linux/mm.h>
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#include <linux/export.h>
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#include <linux/spinlock.h>
#include <linux/string.h>
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#include <linux/swiotlb.h>
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#include <linux/pfn.h>
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#include <linux/types.h>
#include <linux/ctype.h>
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#include <linux/highmem.h>
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#include <linux/gfp.h>
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#include <linux/scatterlist.h>
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#include <linux/mem_encrypt.h>
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#include <linux/set_memory.h>
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#ifdef CONFIG_DEBUG_FS
#include <linux/debugfs.h>
#endif
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#include <asm/io.h>
#include <asm/dma.h>

#include <linux/init.h>
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#include <linux/memblock.h>
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#include <linux/iommu-helper.h>
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#define CREATE_TRACE_POINTS
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#include <trace/events/swiotlb.h>

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#define OFFSET(val,align) ((unsigned long)	\
	                   ( (val) & ( (align) - 1)))

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#define SLABS_PER_PAGE (1 << (PAGE_SHIFT - IO_TLB_SHIFT))

/*
 * Minimum IO TLB size to bother booting with.  Systems with mainly
 * 64bit capable cards will only lightly use the swiotlb.  If we can't
 * allocate a contiguous 1MB, we're probably in trouble anyway.
 */
#define IO_TLB_MIN_SLABS ((1<<20) >> IO_TLB_SHIFT)

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enum swiotlb_force swiotlb_force;
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/*
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 * Used to do a quick range check in swiotlb_tbl_unmap_single and
 * swiotlb_tbl_sync_single_*, to see if the memory was in fact allocated by this
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 * API.
 */
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phys_addr_t io_tlb_start, io_tlb_end;
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/*
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 * The number of IO TLB blocks (in groups of 64) between io_tlb_start and
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 * io_tlb_end.  This is command line adjustable via setup_io_tlb_npages.
 */
static unsigned long io_tlb_nslabs;

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/*
 * The number of used IO TLB block
 */
static unsigned long io_tlb_used;

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/*
 * This is a free list describing the number of free entries available from
 * each index
 */
static unsigned int *io_tlb_list;
static unsigned int io_tlb_index;

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/*
 * Max segment that we can provide which (if pages are contingous) will
 * not be bounced (unless SWIOTLB_FORCE is set).
 */
unsigned int max_segment;

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/*
 * We need to save away the original address corresponding to a mapped entry
 * for the sync operations.
 */
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#define INVALID_PHYS_ADDR (~(phys_addr_t)0)
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static phys_addr_t *io_tlb_orig_addr;
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/*
 * Protect the above data structures in the map and unmap calls
 */
static DEFINE_SPINLOCK(io_tlb_lock);

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static int late_alloc;

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static int __init
setup_io_tlb_npages(char *str)
{
	if (isdigit(*str)) {
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		io_tlb_nslabs = simple_strtoul(str, &str, 0);
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		/* avoid tail segment of size < IO_TLB_SEGSIZE */
		io_tlb_nslabs = ALIGN(io_tlb_nslabs, IO_TLB_SEGSIZE);
	}
	if (*str == ',')
		++str;
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	if (!strcmp(str, "force")) {
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		swiotlb_force = SWIOTLB_FORCE;
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	} else if (!strcmp(str, "noforce")) {
		swiotlb_force = SWIOTLB_NO_FORCE;
		io_tlb_nslabs = 1;
	}
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	return 0;
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}
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early_param("swiotlb", setup_io_tlb_npages);
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unsigned long swiotlb_nr_tbl(void)
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{
	return io_tlb_nslabs;
}
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EXPORT_SYMBOL_GPL(swiotlb_nr_tbl);
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unsigned int swiotlb_max_segment(void)
{
	return max_segment;
}
EXPORT_SYMBOL_GPL(swiotlb_max_segment);

void swiotlb_set_max_segment(unsigned int val)
{
	if (swiotlb_force == SWIOTLB_FORCE)
		max_segment = 1;
	else
		max_segment = rounddown(val, PAGE_SIZE);
}

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/* default to 64MB */
#define IO_TLB_DEFAULT_SIZE (64UL<<20)
unsigned long swiotlb_size_or_default(void)
{
	unsigned long size;

	size = io_tlb_nslabs << IO_TLB_SHIFT;

	return size ? size : (IO_TLB_DEFAULT_SIZE);
}

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static bool no_iotlb_memory;

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void swiotlb_print_info(void)
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{
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	unsigned long bytes = io_tlb_nslabs << IO_TLB_SHIFT;
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	if (no_iotlb_memory) {
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		pr_warn("No low mem\n");
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		return;
	}

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	pr_info("mapped [mem %#010llx-%#010llx] (%luMB)\n",
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	       (unsigned long long)io_tlb_start,
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	       (unsigned long long)io_tlb_end,
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	       bytes >> 20);
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}

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/*
 * Early SWIOTLB allocation may be too early to allow an architecture to
 * perform the desired operations.  This function allows the architecture to
 * call SWIOTLB when the operations are possible.  It needs to be called
 * before the SWIOTLB memory is used.
 */
void __init swiotlb_update_mem_attributes(void)
{
	void *vaddr;
	unsigned long bytes;

	if (no_iotlb_memory || late_alloc)
		return;

	vaddr = phys_to_virt(io_tlb_start);
	bytes = PAGE_ALIGN(io_tlb_nslabs << IO_TLB_SHIFT);
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	set_memory_decrypted((unsigned long)vaddr, bytes >> PAGE_SHIFT);
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	memset(vaddr, 0, bytes);
}

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int __init swiotlb_init_with_tbl(char *tlb, unsigned long nslabs, int verbose)
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{
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	unsigned long i, bytes;
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	size_t alloc_size;
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	bytes = nslabs << IO_TLB_SHIFT;
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	io_tlb_nslabs = nslabs;
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	io_tlb_start = __pa(tlb);
	io_tlb_end = io_tlb_start + bytes;
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	/*
	 * Allocate and initialize the free list array.  This array is used
	 * to find contiguous free memory regions of size up to IO_TLB_SEGSIZE
	 * between io_tlb_start and io_tlb_end.
	 */
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	alloc_size = PAGE_ALIGN(io_tlb_nslabs * sizeof(int));
	io_tlb_list = memblock_alloc(alloc_size, PAGE_SIZE);
	if (!io_tlb_list)
		panic("%s: Failed to allocate %lu bytes align=0x%lx\n",
		      __func__, alloc_size, PAGE_SIZE);

	alloc_size = PAGE_ALIGN(io_tlb_nslabs * sizeof(phys_addr_t));
	io_tlb_orig_addr = memblock_alloc(alloc_size, PAGE_SIZE);
	if (!io_tlb_orig_addr)
		panic("%s: Failed to allocate %lu bytes align=0x%lx\n",
		      __func__, alloc_size, PAGE_SIZE);

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	for (i = 0; i < io_tlb_nslabs; i++) {
		io_tlb_list[i] = IO_TLB_SEGSIZE - OFFSET(i, IO_TLB_SEGSIZE);
		io_tlb_orig_addr[i] = INVALID_PHYS_ADDR;
	}
	io_tlb_index = 0;
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	if (verbose)
		swiotlb_print_info();
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	swiotlb_set_max_segment(io_tlb_nslabs << IO_TLB_SHIFT);
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	return 0;
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}

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/*
 * Statically reserve bounce buffer space and initialize bounce buffer data
 * structures for the software IO TLB used to implement the DMA API.
 */
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void  __init
swiotlb_init(int verbose)
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{
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	size_t default_size = IO_TLB_DEFAULT_SIZE;
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	unsigned char *vstart;
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	unsigned long bytes;

	if (!io_tlb_nslabs) {
		io_tlb_nslabs = (default_size >> IO_TLB_SHIFT);
		io_tlb_nslabs = ALIGN(io_tlb_nslabs, IO_TLB_SEGSIZE);
	}

	bytes = io_tlb_nslabs << IO_TLB_SHIFT;

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	/* Get IO TLB memory from the low pages */
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	vstart = memblock_alloc_low_nopanic(PAGE_ALIGN(bytes), PAGE_SIZE);
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	if (vstart && !swiotlb_init_with_tbl(vstart, io_tlb_nslabs, verbose))
		return;
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	if (io_tlb_start)
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		memblock_free_early(io_tlb_start,
				    PAGE_ALIGN(io_tlb_nslabs << IO_TLB_SHIFT));
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	pr_warn("Cannot allocate buffer");
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	no_iotlb_memory = true;
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}

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/*
 * Systems with larger DMA zones (those that don't support ISA) can
 * initialize the swiotlb later using the slab allocator if needed.
 * This should be just like above, but with some error catching.
 */
int
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swiotlb_late_init_with_default_size(size_t default_size)
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{
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	unsigned long bytes, req_nslabs = io_tlb_nslabs;
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	unsigned char *vstart = NULL;
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	unsigned int order;
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	int rc = 0;
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	if (!io_tlb_nslabs) {
		io_tlb_nslabs = (default_size >> IO_TLB_SHIFT);
		io_tlb_nslabs = ALIGN(io_tlb_nslabs, IO_TLB_SEGSIZE);
	}

	/*
	 * Get IO TLB memory from the low pages
	 */
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	order = get_order(io_tlb_nslabs << IO_TLB_SHIFT);
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	io_tlb_nslabs = SLABS_PER_PAGE << order;
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	bytes = io_tlb_nslabs << IO_TLB_SHIFT;
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	while ((SLABS_PER_PAGE << order) > IO_TLB_MIN_SLABS) {
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		vstart = (void *)__get_free_pages(GFP_DMA | __GFP_NOWARN,
						  order);
		if (vstart)
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			break;
		order--;
	}

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	if (!vstart) {
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		io_tlb_nslabs = req_nslabs;
		return -ENOMEM;
	}
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	if (order != get_order(bytes)) {
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		pr_warn("only able to allocate %ld MB\n",
			(PAGE_SIZE << order) >> 20);
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		io_tlb_nslabs = SLABS_PER_PAGE << order;
	}
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	rc = swiotlb_late_init_with_tbl(vstart, io_tlb_nslabs);
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	if (rc)
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		free_pages((unsigned long)vstart, order);
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	return rc;
}

int
swiotlb_late_init_with_tbl(char *tlb, unsigned long nslabs)
{
	unsigned long i, bytes;

	bytes = nslabs << IO_TLB_SHIFT;

	io_tlb_nslabs = nslabs;
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	io_tlb_start = virt_to_phys(tlb);
	io_tlb_end = io_tlb_start + bytes;
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	set_memory_decrypted((unsigned long)tlb, bytes >> PAGE_SHIFT);
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	memset(tlb, 0, bytes);
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	/*
	 * Allocate and initialize the free list array.  This array is used
	 * to find contiguous free memory regions of size up to IO_TLB_SEGSIZE
	 * between io_tlb_start and io_tlb_end.
	 */
	io_tlb_list = (unsigned int *)__get_free_pages(GFP_KERNEL,
	                              get_order(io_tlb_nslabs * sizeof(int)));
	if (!io_tlb_list)
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		goto cleanup3;
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	io_tlb_orig_addr = (phys_addr_t *)
		__get_free_pages(GFP_KERNEL,
				 get_order(io_tlb_nslabs *
					   sizeof(phys_addr_t)));
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	if (!io_tlb_orig_addr)
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		goto cleanup4;
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	for (i = 0; i < io_tlb_nslabs; i++) {
		io_tlb_list[i] = IO_TLB_SEGSIZE - OFFSET(i, IO_TLB_SEGSIZE);
		io_tlb_orig_addr[i] = INVALID_PHYS_ADDR;
	}
	io_tlb_index = 0;
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	swiotlb_print_info();
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	late_alloc = 1;

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	swiotlb_set_max_segment(io_tlb_nslabs << IO_TLB_SHIFT);

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	return 0;

cleanup4:
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	free_pages((unsigned long)io_tlb_list, get_order(io_tlb_nslabs *
	                                                 sizeof(int)));
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	io_tlb_list = NULL;
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cleanup3:
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	io_tlb_end = 0;
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	io_tlb_start = 0;
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	io_tlb_nslabs = 0;
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	max_segment = 0;
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	return -ENOMEM;
}

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void __init swiotlb_exit(void)
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{
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	if (!io_tlb_orig_addr)
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		return;

	if (late_alloc) {
		free_pages((unsigned long)io_tlb_orig_addr,
			   get_order(io_tlb_nslabs * sizeof(phys_addr_t)));
		free_pages((unsigned long)io_tlb_list, get_order(io_tlb_nslabs *
								 sizeof(int)));
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		free_pages((unsigned long)phys_to_virt(io_tlb_start),
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			   get_order(io_tlb_nslabs << IO_TLB_SHIFT));
	} else {
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		memblock_free_late(__pa(io_tlb_orig_addr),
				   PAGE_ALIGN(io_tlb_nslabs * sizeof(phys_addr_t)));
		memblock_free_late(__pa(io_tlb_list),
				   PAGE_ALIGN(io_tlb_nslabs * sizeof(int)));
		memblock_free_late(io_tlb_start,
				   PAGE_ALIGN(io_tlb_nslabs << IO_TLB_SHIFT));
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	}
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	io_tlb_start = 0;
	io_tlb_end = 0;
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	io_tlb_nslabs = 0;
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	max_segment = 0;
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}

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/*
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 * Bounce: copy the swiotlb buffer from or back to the original dma location
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 */
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static void swiotlb_bounce(phys_addr_t orig_addr, phys_addr_t tlb_addr,
			   size_t size, enum dma_data_direction dir)
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{
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	unsigned long pfn = PFN_DOWN(orig_addr);
	unsigned char *vaddr = phys_to_virt(tlb_addr);
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	if (PageHighMem(pfn_to_page(pfn))) {
		/* The buffer does not have a mapping.  Map it in and copy */
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		unsigned int offset = orig_addr & ~PAGE_MASK;
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		char *buffer;
		unsigned int sz = 0;
		unsigned long flags;

		while (size) {
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			sz = min_t(size_t, PAGE_SIZE - offset, size);
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			local_irq_save(flags);
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			buffer = kmap_atomic(pfn_to_page(pfn));
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			if (dir == DMA_TO_DEVICE)
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				memcpy(vaddr, buffer + offset, sz);
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			else
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				memcpy(buffer + offset, vaddr, sz);
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			kunmap_atomic(buffer);
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			local_irq_restore(flags);
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			size -= sz;
			pfn++;
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			vaddr += sz;
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			offset = 0;
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		}
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	} else if (dir == DMA_TO_DEVICE) {
		memcpy(vaddr, phys_to_virt(orig_addr), size);
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	} else {
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		memcpy(phys_to_virt(orig_addr), vaddr, size);
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	}
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}

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phys_addr_t swiotlb_tbl_map_single(struct device *hwdev,
				   dma_addr_t tbl_dma_addr,
				   phys_addr_t orig_addr, size_t size,
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				   enum dma_data_direction dir,
				   unsigned long attrs)
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{
	unsigned long flags;
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	phys_addr_t tlb_addr;
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	unsigned int nslots, stride, index, wrap;
	int i;
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	unsigned long mask;
	unsigned long offset_slots;
	unsigned long max_slots;

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	if (no_iotlb_memory)
		panic("Can not allocate SWIOTLB buffer earlier and can't now provide you with the DMA bounce buffer");

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	if (mem_encrypt_active())
		pr_warn_once("%s is active and system is using DMA bounce buffers\n",
			     sme_active() ? "SME" : "SEV");
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	mask = dma_get_seg_boundary(hwdev);

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	tbl_dma_addr &= mask;

	offset_slots = ALIGN(tbl_dma_addr, 1 << IO_TLB_SHIFT) >> IO_TLB_SHIFT;
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	/*
 	 * Carefully handle integer overflow which can occur when mask == ~0UL.
 	 */
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	max_slots = mask + 1
		    ? ALIGN(mask + 1, 1 << IO_TLB_SHIFT) >> IO_TLB_SHIFT
		    : 1UL << (BITS_PER_LONG - IO_TLB_SHIFT);
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	/*
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	 * For mappings greater than or equal to a page, we limit the stride
	 * (and hence alignment) to a page size.
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	 */
	nslots = ALIGN(size, 1 << IO_TLB_SHIFT) >> IO_TLB_SHIFT;
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	if (size >= PAGE_SIZE)
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		stride = (1 << (PAGE_SHIFT - IO_TLB_SHIFT));
	else
		stride = 1;

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	BUG_ON(!nslots);
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	/*
	 * Find suitable number of IO TLB entries size that will fit this
	 * request and allocate a buffer from that IO TLB pool.
	 */
	spin_lock_irqsave(&io_tlb_lock, flags);
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	if (unlikely(nslots > io_tlb_nslabs - io_tlb_used))
		goto not_found;

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	index = ALIGN(io_tlb_index, stride);
	if (index >= io_tlb_nslabs)
		index = 0;
	wrap = index;

	do {
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		while (iommu_is_span_boundary(index, nslots, offset_slots,
					      max_slots)) {
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			index += stride;
			if (index >= io_tlb_nslabs)
				index = 0;
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			if (index == wrap)
				goto not_found;
		}

		/*
		 * If we find a slot that indicates we have 'nslots' number of
		 * contiguous buffers, we allocate the buffers from that slot
		 * and mark the entries as '0' indicating unavailable.
		 */
		if (io_tlb_list[index] >= nslots) {
			int count = 0;

			for (i = index; i < (int) (index + nslots); i++)
				io_tlb_list[i] = 0;
			for (i = index - 1; (OFFSET(i, IO_TLB_SEGSIZE) != IO_TLB_SEGSIZE - 1) && io_tlb_list[i]; i--)
				io_tlb_list[i] = ++count;
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			tlb_addr = io_tlb_start + (index << IO_TLB_SHIFT);
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			/*
			 * Update the indices to avoid searching in the next
			 * round.
			 */
			io_tlb_index = ((index + nslots) < io_tlb_nslabs
					? (index + nslots) : 0);

			goto found;
		}
		index += stride;
		if (index >= io_tlb_nslabs)
			index = 0;
	} while (index != wrap);

not_found:
	spin_unlock_irqrestore(&io_tlb_lock, flags);
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	if (!(attrs & DMA_ATTR_NO_WARN) && printk_ratelimit())
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		dev_warn(hwdev, "swiotlb buffer is full (sz: %zd bytes)\n", size);
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	return DMA_MAPPING_ERROR;
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found:
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	io_tlb_used += nslots;
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	spin_unlock_irqrestore(&io_tlb_lock, flags);

	/*
	 * Save away the mapping from the original address to the DMA address.
	 * This is needed when we sync the memory.  Then we sync the buffer if
	 * needed.
	 */
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	for (i = 0; i < nslots; i++)
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		io_tlb_orig_addr[index+i] = orig_addr + (i << IO_TLB_SHIFT);
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	if (!(attrs & DMA_ATTR_SKIP_CPU_SYNC) &&
	    (dir == DMA_TO_DEVICE || dir == DMA_BIDIRECTIONAL))
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		swiotlb_bounce(orig_addr, tlb_addr, size, DMA_TO_DEVICE);
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	return tlb_addr;
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}

/*
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 * tlb_addr is the physical address of the bounce buffer to unmap.
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 */
566
void swiotlb_tbl_unmap_single(struct device *hwdev, phys_addr_t tlb_addr,
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			      size_t size, enum dma_data_direction dir,
			      unsigned long attrs)
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{
	unsigned long flags;
	int i, count, nslots = ALIGN(size, 1 << IO_TLB_SHIFT) >> IO_TLB_SHIFT;
572 573
	int index = (tlb_addr - io_tlb_start) >> IO_TLB_SHIFT;
	phys_addr_t orig_addr = io_tlb_orig_addr[index];
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	/*
	 * First, sync the memory before unmapping the entry
	 */
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	if (orig_addr != INVALID_PHYS_ADDR &&
579
	    !(attrs & DMA_ATTR_SKIP_CPU_SYNC) &&
580
	    ((dir == DMA_FROM_DEVICE) || (dir == DMA_BIDIRECTIONAL)))
581
		swiotlb_bounce(orig_addr, tlb_addr, size, DMA_FROM_DEVICE);
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	/*
	 * Return the buffer to the free list by setting the corresponding
585
	 * entries to indicate the number of contiguous entries available.
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	 * While returning the entries to the free list, we merge the entries
	 * with slots below and above the pool being returned.
	 */
	spin_lock_irqsave(&io_tlb_lock, flags);
	{
		count = ((index + nslots) < ALIGN(index + 1, IO_TLB_SEGSIZE) ?
			 io_tlb_list[index + nslots] : 0);
		/*
		 * Step 1: return the slots to the free list, merging the
		 * slots with superceeding slots
		 */
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		for (i = index + nslots - 1; i >= index; i--) {
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			io_tlb_list[i] = ++count;
599 600
			io_tlb_orig_addr[i] = INVALID_PHYS_ADDR;
		}
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		/*
		 * Step 2: merge the returned slots with the preceding slots,
		 * if available (non zero)
		 */
		for (i = index - 1; (OFFSET(i, IO_TLB_SEGSIZE) != IO_TLB_SEGSIZE -1) && io_tlb_list[i]; i--)
			io_tlb_list[i] = ++count;
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		io_tlb_used -= nslots;
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	}
	spin_unlock_irqrestore(&io_tlb_lock, flags);
}

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void swiotlb_tbl_sync_single(struct device *hwdev, phys_addr_t tlb_addr,
			     size_t size, enum dma_data_direction dir,
			     enum dma_sync_target target)
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{
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	int index = (tlb_addr - io_tlb_start) >> IO_TLB_SHIFT;
	phys_addr_t orig_addr = io_tlb_orig_addr[index];
619

620 621
	if (orig_addr == INVALID_PHYS_ADDR)
		return;
622
	orig_addr += (unsigned long)tlb_addr & ((1 << IO_TLB_SHIFT) - 1);
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	switch (target) {
	case SYNC_FOR_CPU:
		if (likely(dir == DMA_FROM_DEVICE || dir == DMA_BIDIRECTIONAL))
627
			swiotlb_bounce(orig_addr, tlb_addr,
628
				       size, DMA_FROM_DEVICE);
629 630
		else
			BUG_ON(dir != DMA_TO_DEVICE);
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		break;
	case SYNC_FOR_DEVICE:
		if (likely(dir == DMA_TO_DEVICE || dir == DMA_BIDIRECTIONAL))
634
			swiotlb_bounce(orig_addr, tlb_addr,
635
				       size, DMA_TO_DEVICE);
636 637
		else
			BUG_ON(dir != DMA_FROM_DEVICE);
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		break;
	default:
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		BUG();
641
	}
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}

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/*
 * Create a swiotlb mapping for the buffer at @phys, and in case of DMAing
 * to the device copy the data into it as well.
 */
bool swiotlb_map(struct device *dev, phys_addr_t *phys, dma_addr_t *dma_addr,
649 650
		size_t size, enum dma_data_direction dir, unsigned long attrs)
{
651
	trace_swiotlb_bounced(dev, *dma_addr, size, swiotlb_force);
652 653 654 655

	if (unlikely(swiotlb_force == SWIOTLB_NO_FORCE)) {
		dev_warn_ratelimited(dev,
			"Cannot do DMA to address %pa\n", phys);
656
		return false;
657 658 659 660 661
	}

	/* Oh well, have to allocate and map a bounce buffer. */
	*phys = swiotlb_tbl_map_single(dev, __phys_to_dma(dev, io_tlb_start),
			*phys, size, dir, attrs);
662
	if (*phys == DMA_MAPPING_ERROR)
663
		return false;
664 665

	/* Ensure that the address returned is DMA'ble */
666 667
	*dma_addr = __phys_to_dma(dev, *phys);
	if (unlikely(!dma_capable(dev, *dma_addr, size))) {
668 669
		swiotlb_tbl_unmap_single(dev, *phys, size, dir,
			attrs | DMA_ATTR_SKIP_CPU_SYNC);
670
		return false;
671 672
	}

673
	return true;
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}

676 677 678 679
size_t swiotlb_max_mapping_size(struct device *dev)
{
	return ((size_t)1 << IO_TLB_SHIFT) * IO_TLB_SEGSIZE;
}
680 681 682 683 684 685 686 687 688

bool is_swiotlb_active(void)
{
	/*
	 * When SWIOTLB is initialized, even if io_tlb_start points to physical
	 * address zero, io_tlb_end surely doesn't.
	 */
	return io_tlb_end != 0;
}
689

690 691 692 693
#ifdef CONFIG_DEBUG_FS

static int __init swiotlb_create_debugfs(void)
{
694
	struct dentry *d_swiotlb_usage;
695 696 697 698 699 700 701 702 703 704 705 706 707 708 709 710 711 712 713 714 715 716 717 718 719 720 721
	struct dentry *ent;

	d_swiotlb_usage = debugfs_create_dir("swiotlb", NULL);

	if (!d_swiotlb_usage)
		return -ENOMEM;

	ent = debugfs_create_ulong("io_tlb_nslabs", 0400,
				   d_swiotlb_usage, &io_tlb_nslabs);
	if (!ent)
		goto fail;

	ent = debugfs_create_ulong("io_tlb_used", 0400,
				   d_swiotlb_usage, &io_tlb_used);
	if (!ent)
		goto fail;

	return 0;

fail:
	debugfs_remove_recursive(d_swiotlb_usage);
	return -ENOMEM;
}

late_initcall(swiotlb_create_debugfs);

#endif