blob: 834c846c5af84f1552a81f2f9dc5b0b79ad4840b [file] [log] [blame]
rjw1f884582022-01-06 17:20:42 +08001/*
2 * Copyright (C) 2007 Jens Axboe <jens.axboe@oracle.com>
3 *
4 * Scatterlist handling helpers.
5 *
6 * This source code is licensed under the GNU General Public License,
7 * Version 2. See the file COPYING for more details.
8 */
9#include <linux/export.h>
10#include <linux/slab.h>
11#include <linux/scatterlist.h>
12#include <linux/highmem.h>
13#include <linux/kmemleak.h>
14
15/**
16 * sg_next - return the next scatterlist entry in a list
17 * @sg: The current sg entry
18 *
19 * Description:
20 * Usually the next entry will be @sg@ + 1, but if this sg element is part
21 * of a chained scatterlist, it could jump to the start of a new
22 * scatterlist array.
23 *
24 **/
25struct scatterlist *sg_next(struct scatterlist *sg)
26{
27#ifdef CONFIG_DEBUG_SG
28 BUG_ON(sg->sg_magic != SG_MAGIC);
29#endif
30 if (sg_is_last(sg))
31 return NULL;
32
33 sg++;
34 if (unlikely(sg_is_chain(sg)))
35 sg = sg_chain_ptr(sg);
36
37 return sg;
38}
39EXPORT_SYMBOL(sg_next);
40
41/**
42 * sg_nents - return total count of entries in scatterlist
43 * @sg: The scatterlist
44 *
45 * Description:
46 * Allows to know how many entries are in sg, taking into acount
47 * chaining as well
48 *
49 **/
50int sg_nents(struct scatterlist *sg)
51{
52 int nents;
53 for (nents = 0; sg; sg = sg_next(sg))
54 nents++;
55 return nents;
56}
57EXPORT_SYMBOL(sg_nents);
58
59/**
60 * sg_nents_for_len - return total count of entries in scatterlist
61 * needed to satisfy the supplied length
62 * @sg: The scatterlist
63 * @len: The total required length
64 *
65 * Description:
66 * Determines the number of entries in sg that are required to meet
67 * the supplied length, taking into acount chaining as well
68 *
69 * Returns:
70 * the number of sg entries needed, negative error on failure
71 *
72 **/
73int sg_nents_for_len(struct scatterlist *sg, u64 len)
74{
75 int nents;
76 u64 total;
77
78 if (!len)
79 return 0;
80
81 for (nents = 0, total = 0; sg; sg = sg_next(sg)) {
82 nents++;
83 total += sg->length;
84 if (total >= len)
85 return nents;
86 }
87
88 return -EINVAL;
89}
90EXPORT_SYMBOL(sg_nents_for_len);
91
92/**
93 * sg_last - return the last scatterlist entry in a list
94 * @sgl: First entry in the scatterlist
95 * @nents: Number of entries in the scatterlist
96 *
97 * Description:
98 * Should only be used casually, it (currently) scans the entire list
99 * to get the last entry.
100 *
101 * Note that the @sgl@ pointer passed in need not be the first one,
102 * the important bit is that @nents@ denotes the number of entries that
103 * exist from @sgl@.
104 *
105 **/
106struct scatterlist *sg_last(struct scatterlist *sgl, unsigned int nents)
107{
108 struct scatterlist *sg, *ret = NULL;
109 unsigned int i;
110
111 for_each_sg(sgl, sg, nents, i)
112 ret = sg;
113
114#ifdef CONFIG_DEBUG_SG
115 BUG_ON(sgl[0].sg_magic != SG_MAGIC);
116 BUG_ON(!sg_is_last(ret));
117#endif
118 return ret;
119}
120EXPORT_SYMBOL(sg_last);
121
122/**
123 * sg_init_table - Initialize SG table
124 * @sgl: The SG table
125 * @nents: Number of entries in table
126 *
127 * Notes:
128 * If this is part of a chained sg table, sg_mark_end() should be
129 * used only on the last table part.
130 *
131 **/
132void sg_init_table(struct scatterlist *sgl, unsigned int nents)
133{
134 memset(sgl, 0, sizeof(*sgl) * nents);
135#ifdef CONFIG_DEBUG_SG
136 {
137 unsigned int i;
138 for (i = 0; i < nents; i++)
139 sgl[i].sg_magic = SG_MAGIC;
140 }
141#endif
142 sg_mark_end(&sgl[nents - 1]);
143}
144EXPORT_SYMBOL(sg_init_table);
145
146/**
147 * sg_init_one - Initialize a single entry sg list
148 * @sg: SG entry
149 * @buf: Virtual address for IO
150 * @buflen: IO length
151 *
152 **/
153void sg_init_one(struct scatterlist *sg, const void *buf, unsigned int buflen)
154{
155 sg_init_table(sg, 1);
156 sg_set_buf(sg, buf, buflen);
157}
158EXPORT_SYMBOL(sg_init_one);
159
160/*
161 * The default behaviour of sg_alloc_table() is to use these kmalloc/kfree
162 * helpers.
163 */
164static struct scatterlist *sg_kmalloc(unsigned int nents, gfp_t gfp_mask)
165{
166 if (nents == SG_MAX_SINGLE_ALLOC) {
167 /*
168 * Kmemleak doesn't track page allocations as they are not
169 * commonly used (in a raw form) for kernel data structures.
170 * As we chain together a list of pages and then a normal
171 * kmalloc (tracked by kmemleak), in order to for that last
172 * allocation not to become decoupled (and thus a
173 * false-positive) we need to inform kmemleak of all the
174 * intermediate allocations.
175 */
176 void *ptr = (void *) __get_free_page(gfp_mask);
177 kmemleak_alloc(ptr, PAGE_SIZE, 1, gfp_mask);
178 return ptr;
179 } else
180 return kmalloc(nents * sizeof(struct scatterlist), gfp_mask);
181}
182
183static void sg_kfree(struct scatterlist *sg, unsigned int nents)
184{
185 if (nents == SG_MAX_SINGLE_ALLOC) {
186 kmemleak_free(sg);
187 free_page((unsigned long) sg);
188 } else
189 kfree(sg);
190}
191
192/**
193 * __sg_free_table - Free a previously mapped sg table
194 * @table: The sg table header to use
195 * @max_ents: The maximum number of entries per single scatterlist
196 * @skip_first_chunk: don't free the (preallocated) first scatterlist chunk
197 * @free_fn: Free function
198 *
199 * Description:
200 * Free an sg table previously allocated and setup with
201 * __sg_alloc_table(). The @max_ents value must be identical to
202 * that previously used with __sg_alloc_table().
203 *
204 **/
205void __sg_free_table(struct sg_table *table, unsigned int max_ents,
206 bool skip_first_chunk, sg_free_fn *free_fn)
207{
208 struct scatterlist *sgl, *next;
209
210 if (unlikely(!table->sgl))
211 return;
212
213 sgl = table->sgl;
214 while (table->orig_nents) {
215 unsigned int alloc_size = table->orig_nents;
216 unsigned int sg_size;
217
218 /*
219 * If we have more than max_ents segments left,
220 * then assign 'next' to the sg table after the current one.
221 * sg_size is then one less than alloc size, since the last
222 * element is the chain pointer.
223 */
224 if (alloc_size > max_ents) {
225 next = sg_chain_ptr(&sgl[max_ents - 1]);
226 alloc_size = max_ents;
227 sg_size = alloc_size - 1;
228 } else {
229 sg_size = alloc_size;
230 next = NULL;
231 }
232
233 table->orig_nents -= sg_size;
234 if (skip_first_chunk)
235 skip_first_chunk = false;
236 else
237 free_fn(sgl, alloc_size);
238 sgl = next;
239 }
240
241 table->sgl = NULL;
242}
243EXPORT_SYMBOL(__sg_free_table);
244
245/**
246 * sg_free_table - Free a previously allocated sg table
247 * @table: The mapped sg table header
248 *
249 **/
250void sg_free_table(struct sg_table *table)
251{
252 __sg_free_table(table, SG_MAX_SINGLE_ALLOC, false, sg_kfree);
253}
254EXPORT_SYMBOL(sg_free_table);
255
256/**
257 * __sg_alloc_table - Allocate and initialize an sg table with given allocator
258 * @table: The sg table header to use
259 * @nents: Number of entries in sg list
260 * @max_ents: The maximum number of entries the allocator returns per call
261 * @gfp_mask: GFP allocation mask
262 * @alloc_fn: Allocator to use
263 *
264 * Description:
265 * This function returns a @table @nents long. The allocator is
266 * defined to return scatterlist chunks of maximum size @max_ents.
267 * Thus if @nents is bigger than @max_ents, the scatterlists will be
268 * chained in units of @max_ents.
269 *
270 * Notes:
271 * If this function returns non-0 (eg failure), the caller must call
272 * __sg_free_table() to cleanup any leftover allocations.
273 *
274 **/
275int __sg_alloc_table(struct sg_table *table, unsigned int nents,
276 unsigned int max_ents, struct scatterlist *first_chunk,
277 gfp_t gfp_mask, sg_alloc_fn *alloc_fn)
278{
279 struct scatterlist *sg, *prv;
280 unsigned int left;
281
282 memset(table, 0, sizeof(*table));
283
284 if (nents == 0)
285 return -EINVAL;
286#ifndef CONFIG_ARCH_HAS_SG_CHAIN
287 if (WARN_ON_ONCE(nents > max_ents))
288 return -EINVAL;
289#endif
290
291 left = nents;
292 prv = NULL;
293 do {
294 unsigned int sg_size, alloc_size = left;
295
296 if (alloc_size > max_ents) {
297 alloc_size = max_ents;
298 sg_size = alloc_size - 1;
299 } else
300 sg_size = alloc_size;
301
302 left -= sg_size;
303
304 if (first_chunk) {
305 sg = first_chunk;
306 first_chunk = NULL;
307 } else {
308 sg = alloc_fn(alloc_size, gfp_mask);
309 }
310 if (unlikely(!sg)) {
311 /*
312 * Adjust entry count to reflect that the last
313 * entry of the previous table won't be used for
314 * linkage. Without this, sg_kfree() may get
315 * confused.
316 */
317 if (prv)
318 table->nents = ++table->orig_nents;
319
320 return -ENOMEM;
321 }
322
323 sg_init_table(sg, alloc_size);
324 table->nents = table->orig_nents += sg_size;
325
326 /*
327 * If this is the first mapping, assign the sg table header.
328 * If this is not the first mapping, chain previous part.
329 */
330 if (prv)
331 sg_chain(prv, max_ents, sg);
332 else
333 table->sgl = sg;
334
335 /*
336 * If no more entries after this one, mark the end
337 */
338 if (!left)
339 sg_mark_end(&sg[sg_size - 1]);
340
341 prv = sg;
342 } while (left);
343
344 return 0;
345}
346EXPORT_SYMBOL(__sg_alloc_table);
347
348/**
349 * sg_alloc_table - Allocate and initialize an sg table
350 * @table: The sg table header to use
351 * @nents: Number of entries in sg list
352 * @gfp_mask: GFP allocation mask
353 *
354 * Description:
355 * Allocate and initialize an sg table. If @nents@ is larger than
356 * SG_MAX_SINGLE_ALLOC a chained sg table will be setup.
357 *
358 **/
359int sg_alloc_table(struct sg_table *table, unsigned int nents, gfp_t gfp_mask)
360{
361 int ret;
362
363 ret = __sg_alloc_table(table, nents, SG_MAX_SINGLE_ALLOC,
364 NULL, gfp_mask, sg_kmalloc);
365 if (unlikely(ret))
366 __sg_free_table(table, SG_MAX_SINGLE_ALLOC, false, sg_kfree);
367
368 return ret;
369}
370EXPORT_SYMBOL(sg_alloc_table);
371
372/**
373 * sg_alloc_table_from_pages - Allocate and initialize an sg table from
374 * an array of pages
375 * @sgt: The sg table header to use
376 * @pages: Pointer to an array of page pointers
377 * @n_pages: Number of pages in the pages array
378 * @offset: Offset from start of the first page to the start of a buffer
379 * @size: Number of valid bytes in the buffer (after offset)
380 * @gfp_mask: GFP allocation mask
381 *
382 * Description:
383 * Allocate and initialize an sg table from a list of pages. Contiguous
384 * ranges of the pages are squashed into a single scatterlist node. A user
385 * may provide an offset at a start and a size of valid data in a buffer
386 * specified by the page array. The returned sg table is released by
387 * sg_free_table.
388 *
389 * Returns:
390 * 0 on success, negative error on failure
391 */
392int sg_alloc_table_from_pages(struct sg_table *sgt,
393 struct page **pages, unsigned int n_pages,
394 unsigned long offset, unsigned long size,
395 gfp_t gfp_mask)
396{
397 unsigned int chunks;
398 unsigned int i;
399 unsigned int cur_page;
400 int ret;
401 struct scatterlist *s;
402
403 /* compute number of contiguous chunks */
404 chunks = 1;
405 for (i = 1; i < n_pages; ++i)
406 if (page_to_pfn(pages[i]) != page_to_pfn(pages[i - 1]) + 1)
407 ++chunks;
408
409 ret = sg_alloc_table(sgt, chunks, gfp_mask);
410 if (unlikely(ret))
411 return ret;
412
413 /* merging chunks and putting them into the scatterlist */
414 cur_page = 0;
415 for_each_sg(sgt->sgl, s, sgt->orig_nents, i) {
416 unsigned long chunk_size;
417 unsigned int j;
418
419 /* look for the end of the current chunk */
420 for (j = cur_page + 1; j < n_pages; ++j)
421 if (page_to_pfn(pages[j]) !=
422 page_to_pfn(pages[j - 1]) + 1)
423 break;
424
425 chunk_size = ((j - cur_page) << PAGE_SHIFT) - offset;
426 sg_set_page(s, pages[cur_page], min(size, chunk_size), offset);
427 size -= chunk_size;
428 offset = 0;
429 cur_page = j;
430 }
431
432 return 0;
433}
434EXPORT_SYMBOL(sg_alloc_table_from_pages);
435
436#ifdef CONFIG_SGL_ALLOC
437
438/**
439 * sgl_alloc_order - allocate a scatterlist and its pages
440 * @length: Length in bytes of the scatterlist. Must be at least one
441 * @order: Second argument for alloc_pages()
442 * @chainable: Whether or not to allocate an extra element in the scatterlist
443 * for scatterlist chaining purposes
444 * @gfp: Memory allocation flags
445 * @nent_p: [out] Number of entries in the scatterlist that have pages
446 *
447 * Returns: A pointer to an initialized scatterlist or %NULL upon failure.
448 */
449struct scatterlist *sgl_alloc_order(unsigned long long length,
450 unsigned int order, bool chainable,
451 gfp_t gfp, unsigned int *nent_p)
452{
453 struct scatterlist *sgl, *sg;
454 struct page *page;
455 unsigned int nent, nalloc;
456 u32 elem_len;
457
458 nent = round_up(length, PAGE_SIZE << order) >> (PAGE_SHIFT + order);
459 /* Check for integer overflow */
460 if (length > (nent << (PAGE_SHIFT + order)))
461 return NULL;
462 nalloc = nent;
463 if (chainable) {
464 /* Check for integer overflow */
465 if (nalloc + 1 < nalloc)
466 return NULL;
467 nalloc++;
468 }
469 sgl = kmalloc_array(nalloc, sizeof(struct scatterlist),
470 (gfp & ~GFP_DMA) | __GFP_ZERO);
471 if (!sgl)
472 return NULL;
473
474 sg_init_table(sgl, nent);
475 sg = sgl;
476 while (length) {
477 elem_len = min_t(u64, length, PAGE_SIZE << order);
478 page = alloc_pages(gfp, order);
479 if (!page) {
480 sgl_free(sgl);
481 return NULL;
482 }
483
484 sg_set_page(sg, page, elem_len, 0);
485 length -= elem_len;
486 sg = sg_next(sg);
487 }
488 WARN_ON_ONCE(sg);
489 if (nent_p)
490 *nent_p = nent;
491 return sgl;
492}
493EXPORT_SYMBOL(sgl_alloc_order);
494
495/**
496 * sgl_alloc - allocate a scatterlist and its pages
497 * @length: Length in bytes of the scatterlist
498 * @gfp: Memory allocation flags
499 * @nent_p: [out] Number of entries in the scatterlist
500 *
501 * Returns: A pointer to an initialized scatterlist or %NULL upon failure.
502 */
503struct scatterlist *sgl_alloc(unsigned long long length, gfp_t gfp,
504 unsigned int *nent_p)
505{
506 return sgl_alloc_order(length, 0, false, gfp, nent_p);
507}
508EXPORT_SYMBOL(sgl_alloc);
509
510/**
511 * sgl_free_order - free a scatterlist and its pages
512 * @sgl: Scatterlist with one or more elements
513 * @order: Second argument for __free_pages()
514 */
515void sgl_free_order(struct scatterlist *sgl, int order)
516{
517 struct scatterlist *sg;
518 struct page *page;
519
520 for (sg = sgl; sg; sg = sg_next(sg)) {
521 page = sg_page(sg);
522 if (page)
523 __free_pages(page, order);
524 }
525 kfree(sgl);
526}
527EXPORT_SYMBOL(sgl_free_order);
528
529/**
530 * sgl_free - free a scatterlist and its pages
531 * @sgl: Scatterlist with one or more elements
532 */
533void sgl_free(struct scatterlist *sgl)
534{
535 sgl_free_order(sgl, 0);
536}
537EXPORT_SYMBOL(sgl_free);
538
539#endif /* CONFIG_SGL_ALLOC */
540
541void __sg_page_iter_start(struct sg_page_iter *piter,
542 struct scatterlist *sglist, unsigned int nents,
543 unsigned long pgoffset)
544{
545 piter->__pg_advance = 0;
546 piter->__nents = nents;
547
548 piter->sg = sglist;
549 piter->sg_pgoffset = pgoffset;
550}
551EXPORT_SYMBOL(__sg_page_iter_start);
552
553static int sg_page_count(struct scatterlist *sg)
554{
555 return PAGE_ALIGN(sg->offset + sg->length) >> PAGE_SHIFT;
556}
557
558bool __sg_page_iter_next(struct sg_page_iter *piter)
559{
560 if (!piter->__nents || !piter->sg)
561 return false;
562
563 piter->sg_pgoffset += piter->__pg_advance;
564 piter->__pg_advance = 1;
565
566 while (piter->sg_pgoffset >= sg_page_count(piter->sg)) {
567 piter->sg_pgoffset -= sg_page_count(piter->sg);
568 piter->sg = sg_next(piter->sg);
569 if (!--piter->__nents || !piter->sg)
570 return false;
571 }
572
573 return true;
574}
575EXPORT_SYMBOL(__sg_page_iter_next);
576
577/**
578 * sg_miter_start - start mapping iteration over a sg list
579 * @miter: sg mapping iter to be started
580 * @sgl: sg list to iterate over
581 * @nents: number of sg entries
582 *
583 * Description:
584 * Starts mapping iterator @miter.
585 *
586 * Context:
587 * Don't care.
588 */
589void sg_miter_start(struct sg_mapping_iter *miter, struct scatterlist *sgl,
590 unsigned int nents, unsigned int flags)
591{
592 memset(miter, 0, sizeof(struct sg_mapping_iter));
593
594 __sg_page_iter_start(&miter->piter, sgl, nents, 0);
595 WARN_ON(!(flags & (SG_MITER_TO_SG | SG_MITER_FROM_SG)));
596 miter->__flags = flags;
597}
598EXPORT_SYMBOL(sg_miter_start);
599
600static bool sg_miter_get_next_page(struct sg_mapping_iter *miter)
601{
602 if (!miter->__remaining) {
603 struct scatterlist *sg;
604
605 if (!__sg_page_iter_next(&miter->piter))
606 return false;
607
608 sg = miter->piter.sg;
609
610 miter->__offset = miter->piter.sg_pgoffset ? 0 : sg->offset;
611 miter->piter.sg_pgoffset += miter->__offset >> PAGE_SHIFT;
612 miter->__offset &= PAGE_SIZE - 1;
613 miter->__remaining = sg->offset + sg->length -
614 (miter->piter.sg_pgoffset << PAGE_SHIFT) -
615 miter->__offset;
616 miter->__remaining = min_t(unsigned long, miter->__remaining,
617 PAGE_SIZE - miter->__offset);
618 }
619
620 return true;
621}
622
623/**
624 * sg_miter_skip - reposition mapping iterator
625 * @miter: sg mapping iter to be skipped
626 * @offset: number of bytes to plus the current location
627 *
628 * Description:
629 * Sets the offset of @miter to its current location plus @offset bytes.
630 * If mapping iterator @miter has been proceeded by sg_miter_next(), this
631 * stops @miter.
632 *
633 * Context:
634 * Don't care if @miter is stopped, or not proceeded yet.
635 * Otherwise, preemption disabled if the SG_MITER_ATOMIC is set.
636 *
637 * Returns:
638 * true if @miter contains the valid mapping. false if end of sg
639 * list is reached.
640 */
641bool sg_miter_skip(struct sg_mapping_iter *miter, off_t offset)
642{
643 sg_miter_stop(miter);
644
645 while (offset) {
646 off_t consumed;
647
648 if (!sg_miter_get_next_page(miter))
649 return false;
650
651 consumed = min_t(off_t, offset, miter->__remaining);
652 miter->__offset += consumed;
653 miter->__remaining -= consumed;
654 offset -= consumed;
655 }
656
657 return true;
658}
659EXPORT_SYMBOL(sg_miter_skip);
660
661/**
662 * sg_miter_next - proceed mapping iterator to the next mapping
663 * @miter: sg mapping iter to proceed
664 *
665 * Description:
666 * Proceeds @miter to the next mapping. @miter should have been started
667 * using sg_miter_start(). On successful return, @miter->page,
668 * @miter->addr and @miter->length point to the current mapping.
669 *
670 * Context:
671 * Preemption disabled if SG_MITER_ATOMIC. Preemption must stay disabled
672 * till @miter is stopped. May sleep if !SG_MITER_ATOMIC.
673 *
674 * Returns:
675 * true if @miter contains the next mapping. false if end of sg
676 * list is reached.
677 */
678bool sg_miter_next(struct sg_mapping_iter *miter)
679{
680 sg_miter_stop(miter);
681
682 /*
683 * Get to the next page if necessary.
684 * __remaining, __offset is adjusted by sg_miter_stop
685 */
686 if (!sg_miter_get_next_page(miter))
687 return false;
688
689 miter->page = sg_page_iter_page(&miter->piter);
690 miter->consumed = miter->length = miter->__remaining;
691
692 if (miter->__flags & SG_MITER_ATOMIC)
693 miter->addr = kmap_atomic(miter->page) + miter->__offset;
694 else
695 miter->addr = kmap(miter->page) + miter->__offset;
696
697 return true;
698}
699EXPORT_SYMBOL(sg_miter_next);
700
701/**
702 * sg_miter_stop - stop mapping iteration
703 * @miter: sg mapping iter to be stopped
704 *
705 * Description:
706 * Stops mapping iterator @miter. @miter should have been started
707 * using sg_miter_start(). A stopped iteration can be resumed by
708 * calling sg_miter_next() on it. This is useful when resources (kmap)
709 * need to be released during iteration.
710 *
711 * Context:
712 * Preemption disabled if the SG_MITER_ATOMIC is set. Don't care
713 * otherwise.
714 */
715void sg_miter_stop(struct sg_mapping_iter *miter)
716{
717 WARN_ON(miter->consumed > miter->length);
718
719 /* drop resources from the last iteration */
720 if (miter->addr) {
721 miter->__offset += miter->consumed;
722 miter->__remaining -= miter->consumed;
723
724 if ((miter->__flags & SG_MITER_TO_SG) &&
725 !PageSlab(miter->page))
726 flush_kernel_dcache_page(miter->page);
727
728 if (miter->__flags & SG_MITER_ATOMIC) {
729 WARN_ON_ONCE(preemptible());
730 kunmap_atomic(miter->addr);
731 } else
732 kunmap(miter->page);
733
734 miter->page = NULL;
735 miter->addr = NULL;
736 miter->length = 0;
737 miter->consumed = 0;
738 }
739}
740EXPORT_SYMBOL(sg_miter_stop);
741
742/**
743 * sg_copy_buffer - Copy data between a linear buffer and an SG list
744 * @sgl: The SG list
745 * @nents: Number of SG entries
746 * @buf: Where to copy from
747 * @buflen: The number of bytes to copy
748 * @skip: Number of bytes to skip before copying
749 * @to_buffer: transfer direction (true == from an sg list to a
750 * buffer, false == from a buffer to an sg list
751 *
752 * Returns the number of copied bytes.
753 *
754 **/
755size_t sg_copy_buffer(struct scatterlist *sgl, unsigned int nents, void *buf,
756 size_t buflen, off_t skip, bool to_buffer)
757{
758 unsigned int offset = 0;
759 struct sg_mapping_iter miter;
760 unsigned int sg_flags = SG_MITER_ATOMIC;
761
762 if (to_buffer)
763 sg_flags |= SG_MITER_FROM_SG;
764 else
765 sg_flags |= SG_MITER_TO_SG;
766
767 sg_miter_start(&miter, sgl, nents, sg_flags);
768
769 if (!sg_miter_skip(&miter, skip))
770 return false;
771
772 while ((offset < buflen) && sg_miter_next(&miter)) {
773 unsigned int len;
774
775 len = min(miter.length, buflen - offset);
776
777 if (to_buffer)
778 memcpy(buf + offset, miter.addr, len);
779 else
780 memcpy(miter.addr, buf + offset, len);
781
782 offset += len;
783 }
784
785 sg_miter_stop(&miter);
786
787 return offset;
788}
789EXPORT_SYMBOL(sg_copy_buffer);
790
791/**
792 * sg_copy_from_buffer - Copy from a linear buffer to an SG list
793 * @sgl: The SG list
794 * @nents: Number of SG entries
795 * @buf: Where to copy from
796 * @buflen: The number of bytes to copy
797 *
798 * Returns the number of copied bytes.
799 *
800 **/
801size_t sg_copy_from_buffer(struct scatterlist *sgl, unsigned int nents,
802 const void *buf, size_t buflen)
803{
804 return sg_copy_buffer(sgl, nents, (void *)buf, buflen, 0, false);
805}
806EXPORT_SYMBOL(sg_copy_from_buffer);
807
808/**
809 * sg_copy_to_buffer - Copy from an SG list to a linear buffer
810 * @sgl: The SG list
811 * @nents: Number of SG entries
812 * @buf: Where to copy to
813 * @buflen: The number of bytes to copy
814 *
815 * Returns the number of copied bytes.
816 *
817 **/
818size_t sg_copy_to_buffer(struct scatterlist *sgl, unsigned int nents,
819 void *buf, size_t buflen)
820{
821 return sg_copy_buffer(sgl, nents, buf, buflen, 0, true);
822}
823EXPORT_SYMBOL(sg_copy_to_buffer);
824
825/**
826 * sg_pcopy_from_buffer - Copy from a linear buffer to an SG list
827 * @sgl: The SG list
828 * @nents: Number of SG entries
829 * @buf: Where to copy from
830 * @buflen: The number of bytes to copy
831 * @skip: Number of bytes to skip before copying
832 *
833 * Returns the number of copied bytes.
834 *
835 **/
836size_t sg_pcopy_from_buffer(struct scatterlist *sgl, unsigned int nents,
837 const void *buf, size_t buflen, off_t skip)
838{
839 return sg_copy_buffer(sgl, nents, (void *)buf, buflen, skip, false);
840}
841EXPORT_SYMBOL(sg_pcopy_from_buffer);
842
843/**
844 * sg_pcopy_to_buffer - Copy from an SG list to a linear buffer
845 * @sgl: The SG list
846 * @nents: Number of SG entries
847 * @buf: Where to copy to
848 * @buflen: The number of bytes to copy
849 * @skip: Number of bytes to skip before copying
850 *
851 * Returns the number of copied bytes.
852 *
853 **/
854size_t sg_pcopy_to_buffer(struct scatterlist *sgl, unsigned int nents,
855 void *buf, size_t buflen, off_t skip)
856{
857 return sg_copy_buffer(sgl, nents, buf, buflen, skip, true);
858}
859EXPORT_SYMBOL(sg_pcopy_to_buffer);
860
861/**
862 * sg_zero_buffer - Zero-out a part of a SG list
863 * @sgl: The SG list
864 * @nents: Number of SG entries
865 * @buflen: The number of bytes to zero out
866 * @skip: Number of bytes to skip before zeroing
867 *
868 * Returns the number of bytes zeroed.
869 **/
870size_t sg_zero_buffer(struct scatterlist *sgl, unsigned int nents,
871 size_t buflen, off_t skip)
872{
873 unsigned int offset = 0;
874 struct sg_mapping_iter miter;
875 unsigned int sg_flags = SG_MITER_ATOMIC | SG_MITER_TO_SG;
876
877 sg_miter_start(&miter, sgl, nents, sg_flags);
878
879 if (!sg_miter_skip(&miter, skip))
880 return false;
881
882 while (offset < buflen && sg_miter_next(&miter)) {
883 unsigned int len;
884
885 len = min(miter.length, buflen - offset);
886 memset(miter.addr, 0, len);
887
888 offset += len;
889 }
890
891 sg_miter_stop(&miter);
892 return offset;
893}
894EXPORT_SYMBOL(sg_zero_buffer);