mm: remove include/linux/bootmem.h
[linux-2.6-block.git] / drivers / xen / swiotlb-xen.c
CommitLineData
b097186f
KRW
1/*
2 * Copyright 2010
3 * by Konrad Rzeszutek Wilk <konrad.wilk@oracle.com>
4 *
5 * This code provides a IOMMU for Xen PV guests with PCI passthrough.
6 *
7 * This program is free software; you can redistribute it and/or modify
8 * it under the terms of the GNU General Public License v2.0 as published by
9 * the Free Software Foundation
10 *
11 * This program is distributed in the hope that it will be useful,
12 * but WITHOUT ANY WARRANTY; without even the implied warranty of
13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 * GNU General Public License for more details.
15 *
16 * PV guests under Xen are running in an non-contiguous memory architecture.
17 *
18 * When PCI pass-through is utilized, this necessitates an IOMMU for
19 * translating bus (DMA) to virtual and vice-versa and also providing a
20 * mechanism to have contiguous pages for device drivers operations (say DMA
21 * operations).
22 *
23 * Specifically, under Xen the Linux idea of pages is an illusion. It
24 * assumes that pages start at zero and go up to the available memory. To
25 * help with that, the Linux Xen MMU provides a lookup mechanism to
26 * translate the page frame numbers (PFN) to machine frame numbers (MFN)
27 * and vice-versa. The MFN are the "real" frame numbers. Furthermore
28 * memory is not contiguous. Xen hypervisor stitches memory for guests
29 * from different pools, which means there is no guarantee that PFN==MFN
30 * and PFN+1==MFN+1. Lastly with Xen 4.0, pages (in debug mode) are
31 * allocated in descending order (high to low), meaning the guest might
32 * never get any MFN's under the 4GB mark.
33 *
34 */
35
283c0972
JP
36#define pr_fmt(fmt) "xen:" KBUILD_MODNAME ": " fmt
37
2013288f 38#include <linux/memblock.h>
ea8c64ac 39#include <linux/dma-direct.h>
63c9744b 40#include <linux/export.h>
b097186f
KRW
41#include <xen/swiotlb-xen.h>
42#include <xen/page.h>
43#include <xen/xen-ops.h>
f4b2f07b 44#include <xen/hvc-console.h>
2b2b614d 45
83862ccf 46#include <asm/dma-mapping.h>
1b65c4e5 47#include <asm/xen/page-coherent.h>
e1d8f62a 48
2b2b614d 49#include <trace/events/swiotlb.h>
b097186f
KRW
50/*
51 * Used to do a quick range check in swiotlb_tbl_unmap_single and
52 * swiotlb_tbl_sync_single_*, to see if the memory was in fact allocated by this
53 * API.
54 */
55
4d048dbc
CH
56#define XEN_SWIOTLB_ERROR_CODE (~(dma_addr_t)0x0)
57
b097186f
KRW
58static char *xen_io_tlb_start, *xen_io_tlb_end;
59static unsigned long xen_io_tlb_nslabs;
60/*
61 * Quick lookup value of the bus address of the IOTLB.
62 */
63
b8b0f559 64static u64 start_dma_addr;
b097186f 65
e17b2f11 66/*
9435cce8 67 * Both of these functions should avoid XEN_PFN_PHYS because phys_addr_t
e17b2f11
IC
68 * can be 32bit when dma_addr_t is 64bit leading to a loss in
69 * information if the shift is done before casting to 64bit.
70 */
6b42a7ea 71static inline dma_addr_t xen_phys_to_bus(phys_addr_t paddr)
b097186f 72{
9435cce8
JG
73 unsigned long bfn = pfn_to_bfn(XEN_PFN_DOWN(paddr));
74 dma_addr_t dma = (dma_addr_t)bfn << XEN_PAGE_SHIFT;
e17b2f11 75
9435cce8 76 dma |= paddr & ~XEN_PAGE_MASK;
e17b2f11
IC
77
78 return dma;
b097186f
KRW
79}
80
6b42a7ea 81static inline phys_addr_t xen_bus_to_phys(dma_addr_t baddr)
b097186f 82{
9435cce8
JG
83 unsigned long xen_pfn = bfn_to_pfn(XEN_PFN_DOWN(baddr));
84 dma_addr_t dma = (dma_addr_t)xen_pfn << XEN_PAGE_SHIFT;
e17b2f11
IC
85 phys_addr_t paddr = dma;
86
9435cce8 87 paddr |= baddr & ~XEN_PAGE_MASK;
e17b2f11
IC
88
89 return paddr;
b097186f
KRW
90}
91
6b42a7ea 92static inline dma_addr_t xen_virt_to_bus(void *address)
b097186f
KRW
93{
94 return xen_phys_to_bus(virt_to_phys(address));
95}
96
9435cce8 97static int check_pages_physically_contiguous(unsigned long xen_pfn,
b097186f
KRW
98 unsigned int offset,
99 size_t length)
100{
32e09870 101 unsigned long next_bfn;
b097186f
KRW
102 int i;
103 int nr_pages;
104
9435cce8
JG
105 next_bfn = pfn_to_bfn(xen_pfn);
106 nr_pages = (offset + length + XEN_PAGE_SIZE-1) >> XEN_PAGE_SHIFT;
b097186f
KRW
107
108 for (i = 1; i < nr_pages; i++) {
9435cce8 109 if (pfn_to_bfn(++xen_pfn) != ++next_bfn)
b097186f
KRW
110 return 0;
111 }
112 return 1;
113}
114
6b42a7ea 115static inline int range_straddles_page_boundary(phys_addr_t p, size_t size)
b097186f 116{
9435cce8
JG
117 unsigned long xen_pfn = XEN_PFN_DOWN(p);
118 unsigned int offset = p & ~XEN_PAGE_MASK;
b097186f 119
9435cce8 120 if (offset + size <= XEN_PAGE_SIZE)
b097186f 121 return 0;
9435cce8 122 if (check_pages_physically_contiguous(xen_pfn, offset, size))
b097186f
KRW
123 return 0;
124 return 1;
125}
126
127static int is_xen_swiotlb_buffer(dma_addr_t dma_addr)
128{
9435cce8
JG
129 unsigned long bfn = XEN_PFN_DOWN(dma_addr);
130 unsigned long xen_pfn = bfn_to_local_pfn(bfn);
131 phys_addr_t paddr = XEN_PFN_PHYS(xen_pfn);
b097186f
KRW
132
133 /* If the address is outside our domain, it CAN
134 * have the same virtual address as another address
135 * in our domain. Therefore _only_ check address within our domain.
136 */
9435cce8 137 if (pfn_valid(PFN_DOWN(paddr))) {
b097186f
KRW
138 return paddr >= virt_to_phys(xen_io_tlb_start) &&
139 paddr < virt_to_phys(xen_io_tlb_end);
140 }
141 return 0;
142}
143
144static int max_dma_bits = 32;
145
146static int
147xen_swiotlb_fixup(void *buf, size_t size, unsigned long nslabs)
148{
149 int i, rc;
150 int dma_bits;
69908907 151 dma_addr_t dma_handle;
1b65c4e5 152 phys_addr_t p = virt_to_phys(buf);
b097186f
KRW
153
154 dma_bits = get_order(IO_TLB_SEGSIZE << IO_TLB_SHIFT) + PAGE_SHIFT;
155
156 i = 0;
157 do {
158 int slabs = min(nslabs - i, (unsigned long)IO_TLB_SEGSIZE);
159
160 do {
161 rc = xen_create_contiguous_region(
1b65c4e5 162 p + (i << IO_TLB_SHIFT),
b097186f 163 get_order(slabs << IO_TLB_SHIFT),
69908907 164 dma_bits, &dma_handle);
b097186f
KRW
165 } while (rc && dma_bits++ < max_dma_bits);
166 if (rc)
167 return rc;
168
169 i += slabs;
170 } while (i < nslabs);
171 return 0;
172}
1cef36a5
KRW
173static unsigned long xen_set_nslabs(unsigned long nr_tbl)
174{
175 if (!nr_tbl) {
176 xen_io_tlb_nslabs = (64 * 1024 * 1024 >> IO_TLB_SHIFT);
177 xen_io_tlb_nslabs = ALIGN(xen_io_tlb_nslabs, IO_TLB_SEGSIZE);
178 } else
179 xen_io_tlb_nslabs = nr_tbl;
b097186f 180
1cef36a5
KRW
181 return xen_io_tlb_nslabs << IO_TLB_SHIFT;
182}
b097186f 183
5bab7864
KRW
184enum xen_swiotlb_err {
185 XEN_SWIOTLB_UNKNOWN = 0,
186 XEN_SWIOTLB_ENOMEM,
187 XEN_SWIOTLB_EFIXUP
188};
189
190static const char *xen_swiotlb_error(enum xen_swiotlb_err err)
191{
192 switch (err) {
193 case XEN_SWIOTLB_ENOMEM:
194 return "Cannot allocate Xen-SWIOTLB buffer\n";
195 case XEN_SWIOTLB_EFIXUP:
196 return "Failed to get contiguous memory for DMA from Xen!\n"\
197 "You either: don't have the permissions, do not have"\
198 " enough free memory under 4GB, or the hypervisor memory"\
199 " is too fragmented!";
200 default:
201 break;
202 }
203 return "";
204}
b8277600 205int __ref xen_swiotlb_init(int verbose, bool early)
b097186f 206{
b8277600 207 unsigned long bytes, order;
f4b2f07b 208 int rc = -ENOMEM;
5bab7864 209 enum xen_swiotlb_err m_ret = XEN_SWIOTLB_UNKNOWN;
f4b2f07b 210 unsigned int repeat = 3;
5f98ecdb 211
1cef36a5 212 xen_io_tlb_nslabs = swiotlb_nr_tbl();
f4b2f07b 213retry:
1cef36a5 214 bytes = xen_set_nslabs(xen_io_tlb_nslabs);
b8277600 215 order = get_order(xen_io_tlb_nslabs << IO_TLB_SHIFT);
b097186f
KRW
216 /*
217 * Get IO TLB memory from any location.
218 */
b8277600 219 if (early)
15c3c114
MR
220 xen_io_tlb_start = memblock_alloc(PAGE_ALIGN(bytes),
221 PAGE_SIZE);
b8277600
KRW
222 else {
223#define SLABS_PER_PAGE (1 << (PAGE_SHIFT - IO_TLB_SHIFT))
224#define IO_TLB_MIN_SLABS ((1<<20) >> IO_TLB_SHIFT)
225 while ((SLABS_PER_PAGE << order) > IO_TLB_MIN_SLABS) {
8746515d 226 xen_io_tlb_start = (void *)xen_get_swiotlb_free_pages(order);
b8277600
KRW
227 if (xen_io_tlb_start)
228 break;
229 order--;
230 }
231 if (order != get_order(bytes)) {
283c0972
JP
232 pr_warn("Warning: only able to allocate %ld MB for software IO TLB\n",
233 (PAGE_SIZE << order) >> 20);
b8277600
KRW
234 xen_io_tlb_nslabs = SLABS_PER_PAGE << order;
235 bytes = xen_io_tlb_nslabs << IO_TLB_SHIFT;
236 }
237 }
f4b2f07b 238 if (!xen_io_tlb_start) {
5bab7864 239 m_ret = XEN_SWIOTLB_ENOMEM;
f4b2f07b
KRW
240 goto error;
241 }
b097186f
KRW
242 xen_io_tlb_end = xen_io_tlb_start + bytes;
243 /*
244 * And replace that memory with pages under 4GB.
245 */
246 rc = xen_swiotlb_fixup(xen_io_tlb_start,
247 bytes,
248 xen_io_tlb_nslabs);
f4b2f07b 249 if (rc) {
b8277600 250 if (early)
2013288f
MR
251 memblock_free(__pa(xen_io_tlb_start),
252 PAGE_ALIGN(bytes));
b8277600
KRW
253 else {
254 free_pages((unsigned long)xen_io_tlb_start, order);
255 xen_io_tlb_start = NULL;
256 }
5bab7864 257 m_ret = XEN_SWIOTLB_EFIXUP;
b097186f 258 goto error;
f4b2f07b 259 }
b097186f 260 start_dma_addr = xen_virt_to_bus(xen_io_tlb_start);
c468bdee 261 if (early) {
ac2cbab2
YL
262 if (swiotlb_init_with_tbl(xen_io_tlb_start, xen_io_tlb_nslabs,
263 verbose))
264 panic("Cannot allocate SWIOTLB buffer");
c468bdee
KRW
265 rc = 0;
266 } else
b8277600 267 rc = swiotlb_late_init_with_tbl(xen_io_tlb_start, xen_io_tlb_nslabs);
7453c549
KRW
268
269 if (!rc)
270 swiotlb_set_max_segment(PAGE_SIZE);
271
b8277600 272 return rc;
b097186f 273error:
f4b2f07b
KRW
274 if (repeat--) {
275 xen_io_tlb_nslabs = max(1024UL, /* Min is 2MB */
276 (xen_io_tlb_nslabs >> 1));
283c0972
JP
277 pr_info("Lowering to %luMB\n",
278 (xen_io_tlb_nslabs << IO_TLB_SHIFT) >> 20);
f4b2f07b
KRW
279 goto retry;
280 }
283c0972 281 pr_err("%s (rc:%d)\n", xen_swiotlb_error(m_ret), rc);
b8277600
KRW
282 if (early)
283 panic("%s (rc:%d)", xen_swiotlb_error(m_ret), rc);
284 else
285 free_pages((unsigned long)xen_io_tlb_start, order);
286 return rc;
b097186f 287}
dceb1a68
CH
288
289static void *
b097186f 290xen_swiotlb_alloc_coherent(struct device *hwdev, size_t size,
baa676fc 291 dma_addr_t *dma_handle, gfp_t flags,
00085f1e 292 unsigned long attrs)
b097186f
KRW
293{
294 void *ret;
295 int order = get_order(size);
296 u64 dma_mask = DMA_BIT_MASK(32);
6810df88
KRW
297 phys_addr_t phys;
298 dma_addr_t dev_addr;
b097186f
KRW
299
300 /*
301 * Ignore region specifiers - the kernel's ideas of
302 * pseudo-phys memory layout has nothing to do with the
303 * machine physical layout. We can't allocate highmem
304 * because we can't return a pointer to it.
305 */
306 flags &= ~(__GFP_DMA | __GFP_HIGHMEM);
307
7250f422
JJ
308 /* Convert the size to actually allocated. */
309 size = 1UL << (order + XEN_PAGE_SHIFT);
310
1b65c4e5
SS
311 /* On ARM this function returns an ioremap'ped virtual address for
312 * which virt_to_phys doesn't return the corresponding physical
313 * address. In fact on ARM virt_to_phys only works for kernel direct
314 * mapped RAM memory. Also see comment below.
315 */
316 ret = xen_alloc_coherent_pages(hwdev, size, dma_handle, flags, attrs);
b097186f 317
6810df88
KRW
318 if (!ret)
319 return ret;
320
b097186f 321 if (hwdev && hwdev->coherent_dma_mask)
038d07a2 322 dma_mask = hwdev->coherent_dma_mask;
b097186f 323
1b65c4e5
SS
324 /* At this point dma_handle is the physical address, next we are
325 * going to set it to the machine address.
326 * Do not use virt_to_phys(ret) because on ARM it doesn't correspond
327 * to *dma_handle. */
328 phys = *dma_handle;
6810df88
KRW
329 dev_addr = xen_phys_to_bus(phys);
330 if (((dev_addr + size - 1 <= dma_mask)) &&
331 !range_straddles_page_boundary(phys, size))
332 *dma_handle = dev_addr;
333 else {
1b65c4e5 334 if (xen_create_contiguous_region(phys, order,
69908907 335 fls64(dma_mask), dma_handle) != 0) {
1b65c4e5 336 xen_free_coherent_pages(hwdev, size, ret, (dma_addr_t)phys, attrs);
b097186f
KRW
337 return NULL;
338 }
b097186f 339 }
6810df88 340 memset(ret, 0, size);
b097186f
KRW
341 return ret;
342}
b097186f 343
dceb1a68 344static void
b097186f 345xen_swiotlb_free_coherent(struct device *hwdev, size_t size, void *vaddr,
00085f1e 346 dma_addr_t dev_addr, unsigned long attrs)
b097186f
KRW
347{
348 int order = get_order(size);
6810df88
KRW
349 phys_addr_t phys;
350 u64 dma_mask = DMA_BIT_MASK(32);
b097186f 351
6810df88
KRW
352 if (hwdev && hwdev->coherent_dma_mask)
353 dma_mask = hwdev->coherent_dma_mask;
354
1b65c4e5
SS
355 /* do not use virt_to_phys because on ARM it doesn't return you the
356 * physical address */
357 phys = xen_bus_to_phys(dev_addr);
6810df88 358
7250f422
JJ
359 /* Convert the size to actually allocated. */
360 size = 1UL << (order + XEN_PAGE_SHIFT);
361
4855c92d 362 if (((dev_addr + size - 1 <= dma_mask)) ||
6810df88 363 range_straddles_page_boundary(phys, size))
1b65c4e5 364 xen_destroy_contiguous_region(phys, order);
6810df88 365
1b65c4e5 366 xen_free_coherent_pages(hwdev, size, vaddr, (dma_addr_t)phys, attrs);
b097186f 367}
b097186f
KRW
368
369/*
370 * Map a single buffer of the indicated size for DMA in streaming mode. The
371 * physical address to use is returned.
372 *
373 * Once the device is given the dma address, the device owns this memory until
374 * either xen_swiotlb_unmap_page or xen_swiotlb_dma_sync_single is performed.
375 */
dceb1a68 376static dma_addr_t xen_swiotlb_map_page(struct device *dev, struct page *page,
b097186f
KRW
377 unsigned long offset, size_t size,
378 enum dma_data_direction dir,
00085f1e 379 unsigned long attrs)
b097186f 380{
e05ed4d1 381 phys_addr_t map, phys = page_to_phys(page) + offset;
b097186f 382 dma_addr_t dev_addr = xen_phys_to_bus(phys);
b097186f
KRW
383
384 BUG_ON(dir == DMA_NONE);
385 /*
386 * If the address happens to be in the device's DMA window,
387 * we can safely return the device addr and not worry about bounce
388 * buffering it.
389 */
390 if (dma_capable(dev, dev_addr, size) &&
a4dba130 391 !range_straddles_page_boundary(phys, size) &&
291be10f 392 !xen_arch_need_swiotlb(dev, phys, dev_addr) &&
ae7871be 393 (swiotlb_force != SWIOTLB_FORCE)) {
6cf05463
SS
394 /* we are not interested in the dma_addr returned by
395 * xen_dma_map_page, only in the potential cache flushes executed
396 * by the function. */
a0f2dee0 397 xen_dma_map_page(dev, page, dev_addr, offset, size, dir, attrs);
b097186f 398 return dev_addr;
6cf05463 399 }
b097186f
KRW
400
401 /*
402 * Oh well, have to allocate and map a bounce buffer.
403 */
2b2b614d
ZK
404 trace_swiotlb_bounced(dev, dev_addr, size, swiotlb_force);
405
0443fa00
AD
406 map = swiotlb_tbl_map_single(dev, start_dma_addr, phys, size, dir,
407 attrs);
e05ed4d1 408 if (map == SWIOTLB_MAP_ERROR)
4d048dbc 409 return XEN_SWIOTLB_ERROR_CODE;
b097186f 410
f1225ee4 411 dev_addr = xen_phys_to_bus(map);
6cf05463 412 xen_dma_map_page(dev, pfn_to_page(map >> PAGE_SHIFT),
a0f2dee0 413 dev_addr, map & ~PAGE_MASK, size, dir, attrs);
b097186f
KRW
414
415 /*
416 * Ensure that the address returned is DMA'ble
417 */
76418421
AD
418 if (dma_capable(dev, dev_addr, size))
419 return dev_addr;
420
d29fa0cb
AD
421 attrs |= DMA_ATTR_SKIP_CPU_SYNC;
422 swiotlb_tbl_unmap_single(dev, map, size, dir, attrs);
76418421 423
4d048dbc 424 return XEN_SWIOTLB_ERROR_CODE;
b097186f 425}
b097186f
KRW
426
427/*
428 * Unmap a single streaming mode DMA translation. The dma_addr and size must
429 * match what was provided for in a previous xen_swiotlb_map_page call. All
430 * other usages are undefined.
431 *
432 * After this call, reads by the cpu to the buffer are guaranteed to see
433 * whatever the device wrote there.
434 */
435static void xen_unmap_single(struct device *hwdev, dma_addr_t dev_addr,
6cf05463 436 size_t size, enum dma_data_direction dir,
00085f1e 437 unsigned long attrs)
b097186f
KRW
438{
439 phys_addr_t paddr = xen_bus_to_phys(dev_addr);
440
441 BUG_ON(dir == DMA_NONE);
442
d6883e6f 443 xen_dma_unmap_page(hwdev, dev_addr, size, dir, attrs);
6cf05463 444
b097186f
KRW
445 /* NOTE: We use dev_addr here, not paddr! */
446 if (is_xen_swiotlb_buffer(dev_addr)) {
0443fa00 447 swiotlb_tbl_unmap_single(hwdev, paddr, size, dir, attrs);
b097186f
KRW
448 return;
449 }
450
451 if (dir != DMA_FROM_DEVICE)
452 return;
453
454 /*
455 * phys_to_virt doesn't work with hihgmem page but we could
456 * call dma_mark_clean() with hihgmem page here. However, we
457 * are fine since dma_mark_clean() is null on POWERPC. We can
458 * make dma_mark_clean() take a physical address if necessary.
459 */
460 dma_mark_clean(phys_to_virt(paddr), size);
461}
462
dceb1a68 463static void xen_swiotlb_unmap_page(struct device *hwdev, dma_addr_t dev_addr,
b097186f 464 size_t size, enum dma_data_direction dir,
00085f1e 465 unsigned long attrs)
b097186f 466{
6cf05463 467 xen_unmap_single(hwdev, dev_addr, size, dir, attrs);
b097186f 468}
b097186f
KRW
469
470/*
471 * Make physical memory consistent for a single streaming mode DMA translation
472 * after a transfer.
473 *
474 * If you perform a xen_swiotlb_map_page() but wish to interrogate the buffer
475 * using the cpu, yet do not wish to teardown the dma mapping, you must
476 * call this function before doing so. At the next point you give the dma
477 * address back to the card, you must first perform a
478 * xen_swiotlb_dma_sync_for_device, and then the device again owns the buffer
479 */
480static void
481xen_swiotlb_sync_single(struct device *hwdev, dma_addr_t dev_addr,
482 size_t size, enum dma_data_direction dir,
483 enum dma_sync_target target)
484{
485 phys_addr_t paddr = xen_bus_to_phys(dev_addr);
486
487 BUG_ON(dir == DMA_NONE);
488
6cf05463 489 if (target == SYNC_FOR_CPU)
d6883e6f 490 xen_dma_sync_single_for_cpu(hwdev, dev_addr, size, dir);
6cf05463 491
b097186f 492 /* NOTE: We use dev_addr here, not paddr! */
6cf05463 493 if (is_xen_swiotlb_buffer(dev_addr))
fbfda893 494 swiotlb_tbl_sync_single(hwdev, paddr, size, dir, target);
6cf05463
SS
495
496 if (target == SYNC_FOR_DEVICE)
9490c6c6 497 xen_dma_sync_single_for_device(hwdev, dev_addr, size, dir);
b097186f
KRW
498
499 if (dir != DMA_FROM_DEVICE)
500 return;
501
502 dma_mark_clean(phys_to_virt(paddr), size);
503}
504
505void
506xen_swiotlb_sync_single_for_cpu(struct device *hwdev, dma_addr_t dev_addr,
507 size_t size, enum dma_data_direction dir)
508{
509 xen_swiotlb_sync_single(hwdev, dev_addr, size, dir, SYNC_FOR_CPU);
510}
b097186f
KRW
511
512void
513xen_swiotlb_sync_single_for_device(struct device *hwdev, dma_addr_t dev_addr,
514 size_t size, enum dma_data_direction dir)
515{
516 xen_swiotlb_sync_single(hwdev, dev_addr, size, dir, SYNC_FOR_DEVICE);
517}
dceb1a68
CH
518
519/*
520 * Unmap a set of streaming mode DMA translations. Again, cpu read rules
521 * concerning calls here are the same as for swiotlb_unmap_page() above.
522 */
523static void
524xen_swiotlb_unmap_sg_attrs(struct device *hwdev, struct scatterlist *sgl,
525 int nelems, enum dma_data_direction dir,
526 unsigned long attrs)
527{
528 struct scatterlist *sg;
529 int i;
530
531 BUG_ON(dir == DMA_NONE);
532
533 for_each_sg(sgl, sg, nelems, i)
534 xen_unmap_single(hwdev, sg->dma_address, sg_dma_len(sg), dir, attrs);
535
536}
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537
538/*
539 * Map a set of buffers described by scatterlist in streaming mode for DMA.
540 * This is the scatter-gather version of the above xen_swiotlb_map_page
541 * interface. Here the scatter gather list elements are each tagged with the
542 * appropriate dma address and length. They are obtained via
543 * sg_dma_{address,length}(SG).
544 *
545 * NOTE: An implementation may be able to use a smaller number of
546 * DMA address/length pairs than there are SG table elements.
547 * (for example via virtual mapping capabilities)
548 * The routine returns the number of addr/length pairs actually
549 * used, at most nents.
550 *
551 * Device ownership issues as mentioned above for xen_swiotlb_map_page are the
552 * same here.
553 */
dceb1a68 554static int
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555xen_swiotlb_map_sg_attrs(struct device *hwdev, struct scatterlist *sgl,
556 int nelems, enum dma_data_direction dir,
00085f1e 557 unsigned long attrs)
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558{
559 struct scatterlist *sg;
560 int i;
561
562 BUG_ON(dir == DMA_NONE);
563
564 for_each_sg(sgl, sg, nelems, i) {
565 phys_addr_t paddr = sg_phys(sg);
566 dma_addr_t dev_addr = xen_phys_to_bus(paddr);
567
ae7871be 568 if (swiotlb_force == SWIOTLB_FORCE ||
291be10f 569 xen_arch_need_swiotlb(hwdev, paddr, dev_addr) ||
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570 !dma_capable(hwdev, dev_addr, sg->length) ||
571 range_straddles_page_boundary(paddr, sg->length)) {
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572 phys_addr_t map = swiotlb_tbl_map_single(hwdev,
573 start_dma_addr,
574 sg_phys(sg),
575 sg->length,
0443fa00 576 dir, attrs);
e05ed4d1 577 if (map == SWIOTLB_MAP_ERROR) {
783d0281 578 dev_warn(hwdev, "swiotlb buffer is full\n");
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579 /* Don't panic here, we expect map_sg users
580 to do proper error handling. */
0443fa00 581 attrs |= DMA_ATTR_SKIP_CPU_SYNC;
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582 xen_swiotlb_unmap_sg_attrs(hwdev, sgl, i, dir,
583 attrs);
781575cd 584 sg_dma_len(sgl) = 0;
15177608 585 return 0;
b097186f 586 }
f1225ee4 587 dev_addr = xen_phys_to_bus(map);
71bfae90 588 xen_dma_map_page(hwdev, pfn_to_page(map >> PAGE_SHIFT),
a0f2dee0 589 dev_addr,
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590 map & ~PAGE_MASK,
591 sg->length,
592 dir,
593 attrs);
f1225ee4 594 sg->dma_address = dev_addr;
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595 } else {
596 /* we are not interested in the dma_addr returned by
597 * xen_dma_map_page, only in the potential cache flushes executed
598 * by the function. */
599 xen_dma_map_page(hwdev, pfn_to_page(paddr >> PAGE_SHIFT),
a0f2dee0 600 dev_addr,
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601 paddr & ~PAGE_MASK,
602 sg->length,
603 dir,
604 attrs);
b097186f 605 sg->dma_address = dev_addr;
6cf05463 606 }
781575cd 607 sg_dma_len(sg) = sg->length;
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608 }
609 return nelems;
610}
b097186f 611
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612/*
613 * Make physical memory consistent for a set of streaming mode DMA translations
614 * after a transfer.
615 *
616 * The same as swiotlb_sync_single_* but for a scatter-gather list, same rules
617 * and usage.
618 */
619static void
620xen_swiotlb_sync_sg(struct device *hwdev, struct scatterlist *sgl,
621 int nelems, enum dma_data_direction dir,
622 enum dma_sync_target target)
623{
624 struct scatterlist *sg;
625 int i;
626
627 for_each_sg(sgl, sg, nelems, i)
628 xen_swiotlb_sync_single(hwdev, sg->dma_address,
781575cd 629 sg_dma_len(sg), dir, target);
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630}
631
dceb1a68 632static void
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633xen_swiotlb_sync_sg_for_cpu(struct device *hwdev, struct scatterlist *sg,
634 int nelems, enum dma_data_direction dir)
635{
636 xen_swiotlb_sync_sg(hwdev, sg, nelems, dir, SYNC_FOR_CPU);
637}
b097186f 638
dceb1a68 639static void
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640xen_swiotlb_sync_sg_for_device(struct device *hwdev, struct scatterlist *sg,
641 int nelems, enum dma_data_direction dir)
642{
643 xen_swiotlb_sync_sg(hwdev, sg, nelems, dir, SYNC_FOR_DEVICE);
644}
b097186f 645
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646/*
647 * Return whether the given device DMA address mask can be supported
648 * properly. For example, if your device can only drive the low 24-bits
649 * during bus mastering, then you would pass 0x00ffffff as the mask to
650 * this function.
651 */
dceb1a68 652static int
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653xen_swiotlb_dma_supported(struct device *hwdev, u64 mask)
654{
655 return xen_virt_to_bus(xen_io_tlb_end - 1) <= mask;
656}
eb1ddc00 657
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658/*
659 * Create userspace mapping for the DMA-coherent memory.
660 * This function should be called with the pages from the current domain only,
661 * passing pages mapped from other domains would lead to memory corruption.
662 */
dceb1a68 663static int
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664xen_swiotlb_dma_mmap(struct device *dev, struct vm_area_struct *vma,
665 void *cpu_addr, dma_addr_t dma_addr, size_t size,
666 unsigned long attrs)
667{
668#if defined(CONFIG_ARM) || defined(CONFIG_ARM64)
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669 if (xen_get_dma_ops(dev)->mmap)
670 return xen_get_dma_ops(dev)->mmap(dev, vma, cpu_addr,
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671 dma_addr, size, attrs);
672#endif
58b04406 673 return dma_common_mmap(dev, vma, cpu_addr, dma_addr, size, attrs);
7e91c7df 674}
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675
676/*
677 * This function should be called with the pages from the current domain only,
678 * passing pages mapped from other domains would lead to memory corruption.
679 */
dceb1a68 680static int
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681xen_swiotlb_get_sgtable(struct device *dev, struct sg_table *sgt,
682 void *cpu_addr, dma_addr_t handle, size_t size,
683 unsigned long attrs)
684{
685#if defined(CONFIG_ARM) || defined(CONFIG_ARM64)
d5ff5061 686 if (xen_get_dma_ops(dev)->get_sgtable) {
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687#if 0
688 /*
689 * This check verifies that the page belongs to the current domain and
690 * is not one mapped from another domain.
691 * This check is for debug only, and should not go to production build
692 */
693 unsigned long bfn = PHYS_PFN(dma_to_phys(dev, handle));
694 BUG_ON (!page_is_ram(bfn));
695#endif
d5ff5061 696 return xen_get_dma_ops(dev)->get_sgtable(dev, sgt, cpu_addr,
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697 handle, size, attrs);
698 }
699#endif
9406a49f 700 return dma_common_get_sgtable(dev, sgt, cpu_addr, handle, size, attrs);
69369f52 701}
dceb1a68 702
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703static int xen_swiotlb_mapping_error(struct device *dev, dma_addr_t dma_addr)
704{
705 return dma_addr == XEN_SWIOTLB_ERROR_CODE;
706}
707
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708const struct dma_map_ops xen_swiotlb_dma_ops = {
709 .alloc = xen_swiotlb_alloc_coherent,
710 .free = xen_swiotlb_free_coherent,
711 .sync_single_for_cpu = xen_swiotlb_sync_single_for_cpu,
712 .sync_single_for_device = xen_swiotlb_sync_single_for_device,
713 .sync_sg_for_cpu = xen_swiotlb_sync_sg_for_cpu,
714 .sync_sg_for_device = xen_swiotlb_sync_sg_for_device,
715 .map_sg = xen_swiotlb_map_sg_attrs,
716 .unmap_sg = xen_swiotlb_unmap_sg_attrs,
717 .map_page = xen_swiotlb_map_page,
718 .unmap_page = xen_swiotlb_unmap_page,
719 .dma_supported = xen_swiotlb_dma_supported,
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720 .mmap = xen_swiotlb_dma_mmap,
721 .get_sgtable = xen_swiotlb_get_sgtable,
4d048dbc 722 .mapping_error = xen_swiotlb_mapping_error,
dceb1a68 723};