Linux 4.19.168
[linux/fpc-iii.git] / net / sunrpc / xdr.c
blob540e340e2565c045d80ab506774a5cc9d35866f5
1 /*
2 * linux/net/sunrpc/xdr.c
4 * Generic XDR support.
6 * Copyright (C) 1995, 1996 Olaf Kirch <okir@monad.swb.de>
7 */
9 #include <linux/module.h>
10 #include <linux/slab.h>
11 #include <linux/types.h>
12 #include <linux/string.h>
13 #include <linux/kernel.h>
14 #include <linux/pagemap.h>
15 #include <linux/errno.h>
16 #include <linux/sunrpc/xdr.h>
17 #include <linux/sunrpc/msg_prot.h>
20 * XDR functions for basic NFS types
22 __be32 *
23 xdr_encode_netobj(__be32 *p, const struct xdr_netobj *obj)
25 unsigned int quadlen = XDR_QUADLEN(obj->len);
27 p[quadlen] = 0; /* zero trailing bytes */
28 *p++ = cpu_to_be32(obj->len);
29 memcpy(p, obj->data, obj->len);
30 return p + XDR_QUADLEN(obj->len);
32 EXPORT_SYMBOL_GPL(xdr_encode_netobj);
34 __be32 *
35 xdr_decode_netobj(__be32 *p, struct xdr_netobj *obj)
37 unsigned int len;
39 if ((len = be32_to_cpu(*p++)) > XDR_MAX_NETOBJ)
40 return NULL;
41 obj->len = len;
42 obj->data = (u8 *) p;
43 return p + XDR_QUADLEN(len);
45 EXPORT_SYMBOL_GPL(xdr_decode_netobj);
47 /**
48 * xdr_encode_opaque_fixed - Encode fixed length opaque data
49 * @p: pointer to current position in XDR buffer.
50 * @ptr: pointer to data to encode (or NULL)
51 * @nbytes: size of data.
53 * Copy the array of data of length nbytes at ptr to the XDR buffer
54 * at position p, then align to the next 32-bit boundary by padding
55 * with zero bytes (see RFC1832).
56 * Note: if ptr is NULL, only the padding is performed.
58 * Returns the updated current XDR buffer position
61 __be32 *xdr_encode_opaque_fixed(__be32 *p, const void *ptr, unsigned int nbytes)
63 if (likely(nbytes != 0)) {
64 unsigned int quadlen = XDR_QUADLEN(nbytes);
65 unsigned int padding = (quadlen << 2) - nbytes;
67 if (ptr != NULL)
68 memcpy(p, ptr, nbytes);
69 if (padding != 0)
70 memset((char *)p + nbytes, 0, padding);
71 p += quadlen;
73 return p;
75 EXPORT_SYMBOL_GPL(xdr_encode_opaque_fixed);
77 /**
78 * xdr_encode_opaque - Encode variable length opaque data
79 * @p: pointer to current position in XDR buffer.
80 * @ptr: pointer to data to encode (or NULL)
81 * @nbytes: size of data.
83 * Returns the updated current XDR buffer position
85 __be32 *xdr_encode_opaque(__be32 *p, const void *ptr, unsigned int nbytes)
87 *p++ = cpu_to_be32(nbytes);
88 return xdr_encode_opaque_fixed(p, ptr, nbytes);
90 EXPORT_SYMBOL_GPL(xdr_encode_opaque);
92 __be32 *
93 xdr_encode_string(__be32 *p, const char *string)
95 return xdr_encode_array(p, string, strlen(string));
97 EXPORT_SYMBOL_GPL(xdr_encode_string);
99 __be32 *
100 xdr_decode_string_inplace(__be32 *p, char **sp,
101 unsigned int *lenp, unsigned int maxlen)
103 u32 len;
105 len = be32_to_cpu(*p++);
106 if (len > maxlen)
107 return NULL;
108 *lenp = len;
109 *sp = (char *) p;
110 return p + XDR_QUADLEN(len);
112 EXPORT_SYMBOL_GPL(xdr_decode_string_inplace);
115 * xdr_terminate_string - '\0'-terminate a string residing in an xdr_buf
116 * @buf: XDR buffer where string resides
117 * @len: length of string, in bytes
120 void
121 xdr_terminate_string(struct xdr_buf *buf, const u32 len)
123 char *kaddr;
125 kaddr = kmap_atomic(buf->pages[0]);
126 kaddr[buf->page_base + len] = '\0';
127 kunmap_atomic(kaddr);
129 EXPORT_SYMBOL_GPL(xdr_terminate_string);
131 void
132 xdr_inline_pages(struct xdr_buf *xdr, unsigned int offset,
133 struct page **pages, unsigned int base, unsigned int len)
135 struct kvec *head = xdr->head;
136 struct kvec *tail = xdr->tail;
137 char *buf = (char *)head->iov_base;
138 unsigned int buflen = head->iov_len;
140 head->iov_len = offset;
142 xdr->pages = pages;
143 xdr->page_base = base;
144 xdr->page_len = len;
146 tail->iov_base = buf + offset;
147 tail->iov_len = buflen - offset;
149 xdr->buflen += len;
151 EXPORT_SYMBOL_GPL(xdr_inline_pages);
154 * Helper routines for doing 'memmove' like operations on a struct xdr_buf
158 * _shift_data_right_pages
159 * @pages: vector of pages containing both the source and dest memory area.
160 * @pgto_base: page vector address of destination
161 * @pgfrom_base: page vector address of source
162 * @len: number of bytes to copy
164 * Note: the addresses pgto_base and pgfrom_base are both calculated in
165 * the same way:
166 * if a memory area starts at byte 'base' in page 'pages[i]',
167 * then its address is given as (i << PAGE_SHIFT) + base
168 * Also note: pgfrom_base must be < pgto_base, but the memory areas
169 * they point to may overlap.
171 static void
172 _shift_data_right_pages(struct page **pages, size_t pgto_base,
173 size_t pgfrom_base, size_t len)
175 struct page **pgfrom, **pgto;
176 char *vfrom, *vto;
177 size_t copy;
179 BUG_ON(pgto_base <= pgfrom_base);
181 pgto_base += len;
182 pgfrom_base += len;
184 pgto = pages + (pgto_base >> PAGE_SHIFT);
185 pgfrom = pages + (pgfrom_base >> PAGE_SHIFT);
187 pgto_base &= ~PAGE_MASK;
188 pgfrom_base &= ~PAGE_MASK;
190 do {
191 /* Are any pointers crossing a page boundary? */
192 if (pgto_base == 0) {
193 pgto_base = PAGE_SIZE;
194 pgto--;
196 if (pgfrom_base == 0) {
197 pgfrom_base = PAGE_SIZE;
198 pgfrom--;
201 copy = len;
202 if (copy > pgto_base)
203 copy = pgto_base;
204 if (copy > pgfrom_base)
205 copy = pgfrom_base;
206 pgto_base -= copy;
207 pgfrom_base -= copy;
209 vto = kmap_atomic(*pgto);
210 if (*pgto != *pgfrom) {
211 vfrom = kmap_atomic(*pgfrom);
212 memcpy(vto + pgto_base, vfrom + pgfrom_base, copy);
213 kunmap_atomic(vfrom);
214 } else
215 memmove(vto + pgto_base, vto + pgfrom_base, copy);
216 flush_dcache_page(*pgto);
217 kunmap_atomic(vto);
219 } while ((len -= copy) != 0);
223 * _copy_to_pages
224 * @pages: array of pages
225 * @pgbase: page vector address of destination
226 * @p: pointer to source data
227 * @len: length
229 * Copies data from an arbitrary memory location into an array of pages
230 * The copy is assumed to be non-overlapping.
232 static void
233 _copy_to_pages(struct page **pages, size_t pgbase, const char *p, size_t len)
235 struct page **pgto;
236 char *vto;
237 size_t copy;
239 pgto = pages + (pgbase >> PAGE_SHIFT);
240 pgbase &= ~PAGE_MASK;
242 for (;;) {
243 copy = PAGE_SIZE - pgbase;
244 if (copy > len)
245 copy = len;
247 vto = kmap_atomic(*pgto);
248 memcpy(vto + pgbase, p, copy);
249 kunmap_atomic(vto);
251 len -= copy;
252 if (len == 0)
253 break;
255 pgbase += copy;
256 if (pgbase == PAGE_SIZE) {
257 flush_dcache_page(*pgto);
258 pgbase = 0;
259 pgto++;
261 p += copy;
263 flush_dcache_page(*pgto);
267 * _copy_from_pages
268 * @p: pointer to destination
269 * @pages: array of pages
270 * @pgbase: offset of source data
271 * @len: length
273 * Copies data into an arbitrary memory location from an array of pages
274 * The copy is assumed to be non-overlapping.
276 void
277 _copy_from_pages(char *p, struct page **pages, size_t pgbase, size_t len)
279 struct page **pgfrom;
280 char *vfrom;
281 size_t copy;
283 pgfrom = pages + (pgbase >> PAGE_SHIFT);
284 pgbase &= ~PAGE_MASK;
286 do {
287 copy = PAGE_SIZE - pgbase;
288 if (copy > len)
289 copy = len;
291 vfrom = kmap_atomic(*pgfrom);
292 memcpy(p, vfrom + pgbase, copy);
293 kunmap_atomic(vfrom);
295 pgbase += copy;
296 if (pgbase == PAGE_SIZE) {
297 pgbase = 0;
298 pgfrom++;
300 p += copy;
302 } while ((len -= copy) != 0);
304 EXPORT_SYMBOL_GPL(_copy_from_pages);
307 * xdr_shrink_bufhead
308 * @buf: xdr_buf
309 * @len: bytes to remove from buf->head[0]
311 * Shrinks XDR buffer's header kvec buf->head[0] by
312 * 'len' bytes. The extra data is not lost, but is instead
313 * moved into the inlined pages and/or the tail.
315 static void
316 xdr_shrink_bufhead(struct xdr_buf *buf, size_t len)
318 struct kvec *head, *tail;
319 size_t copy, offs;
320 unsigned int pglen = buf->page_len;
322 tail = buf->tail;
323 head = buf->head;
325 WARN_ON_ONCE(len > head->iov_len);
326 if (len > head->iov_len)
327 len = head->iov_len;
329 /* Shift the tail first */
330 if (tail->iov_len != 0) {
331 if (tail->iov_len > len) {
332 copy = tail->iov_len - len;
333 memmove((char *)tail->iov_base + len,
334 tail->iov_base, copy);
336 /* Copy from the inlined pages into the tail */
337 copy = len;
338 if (copy > pglen)
339 copy = pglen;
340 offs = len - copy;
341 if (offs >= tail->iov_len)
342 copy = 0;
343 else if (copy > tail->iov_len - offs)
344 copy = tail->iov_len - offs;
345 if (copy != 0)
346 _copy_from_pages((char *)tail->iov_base + offs,
347 buf->pages,
348 buf->page_base + pglen + offs - len,
349 copy);
350 /* Do we also need to copy data from the head into the tail ? */
351 if (len > pglen) {
352 offs = copy = len - pglen;
353 if (copy > tail->iov_len)
354 copy = tail->iov_len;
355 memcpy(tail->iov_base,
356 (char *)head->iov_base +
357 head->iov_len - offs,
358 copy);
361 /* Now handle pages */
362 if (pglen != 0) {
363 if (pglen > len)
364 _shift_data_right_pages(buf->pages,
365 buf->page_base + len,
366 buf->page_base,
367 pglen - len);
368 copy = len;
369 if (len > pglen)
370 copy = pglen;
371 _copy_to_pages(buf->pages, buf->page_base,
372 (char *)head->iov_base + head->iov_len - len,
373 copy);
375 head->iov_len -= len;
376 buf->buflen -= len;
377 /* Have we truncated the message? */
378 if (buf->len > buf->buflen)
379 buf->len = buf->buflen;
383 * xdr_shrink_pagelen
384 * @buf: xdr_buf
385 * @len: bytes to remove from buf->pages
387 * Shrinks XDR buffer's page array buf->pages by
388 * 'len' bytes. The extra data is not lost, but is instead
389 * moved into the tail.
391 static void
392 xdr_shrink_pagelen(struct xdr_buf *buf, size_t len)
394 struct kvec *tail;
395 size_t copy;
396 unsigned int pglen = buf->page_len;
397 unsigned int tailbuf_len;
399 tail = buf->tail;
400 BUG_ON (len > pglen);
402 tailbuf_len = buf->buflen - buf->head->iov_len - buf->page_len;
404 /* Shift the tail first */
405 if (tailbuf_len != 0) {
406 unsigned int free_space = tailbuf_len - tail->iov_len;
408 if (len < free_space)
409 free_space = len;
410 tail->iov_len += free_space;
412 copy = len;
413 if (tail->iov_len > len) {
414 char *p = (char *)tail->iov_base + len;
415 memmove(p, tail->iov_base, tail->iov_len - len);
416 } else
417 copy = tail->iov_len;
418 /* Copy from the inlined pages into the tail */
419 _copy_from_pages((char *)tail->iov_base,
420 buf->pages, buf->page_base + pglen - len,
421 copy);
423 buf->page_len -= len;
424 buf->buflen -= len;
425 /* Have we truncated the message? */
426 if (buf->len > buf->buflen)
427 buf->len = buf->buflen;
430 void
431 xdr_shift_buf(struct xdr_buf *buf, size_t len)
433 xdr_shrink_bufhead(buf, len);
435 EXPORT_SYMBOL_GPL(xdr_shift_buf);
438 * xdr_stream_pos - Return the current offset from the start of the xdr_stream
439 * @xdr: pointer to struct xdr_stream
441 unsigned int xdr_stream_pos(const struct xdr_stream *xdr)
443 return (unsigned int)(XDR_QUADLEN(xdr->buf->len) - xdr->nwords) << 2;
445 EXPORT_SYMBOL_GPL(xdr_stream_pos);
448 * xdr_init_encode - Initialize a struct xdr_stream for sending data.
449 * @xdr: pointer to xdr_stream struct
450 * @buf: pointer to XDR buffer in which to encode data
451 * @p: current pointer inside XDR buffer
453 * Note: at the moment the RPC client only passes the length of our
454 * scratch buffer in the xdr_buf's header kvec. Previously this
455 * meant we needed to call xdr_adjust_iovec() after encoding the
456 * data. With the new scheme, the xdr_stream manages the details
457 * of the buffer length, and takes care of adjusting the kvec
458 * length for us.
460 void xdr_init_encode(struct xdr_stream *xdr, struct xdr_buf *buf, __be32 *p)
462 struct kvec *iov = buf->head;
463 int scratch_len = buf->buflen - buf->page_len - buf->tail[0].iov_len;
465 xdr_set_scratch_buffer(xdr, NULL, 0);
466 BUG_ON(scratch_len < 0);
467 xdr->buf = buf;
468 xdr->iov = iov;
469 xdr->p = (__be32 *)((char *)iov->iov_base + iov->iov_len);
470 xdr->end = (__be32 *)((char *)iov->iov_base + scratch_len);
471 BUG_ON(iov->iov_len > scratch_len);
473 if (p != xdr->p && p != NULL) {
474 size_t len;
476 BUG_ON(p < xdr->p || p > xdr->end);
477 len = (char *)p - (char *)xdr->p;
478 xdr->p = p;
479 buf->len += len;
480 iov->iov_len += len;
483 EXPORT_SYMBOL_GPL(xdr_init_encode);
486 * xdr_commit_encode - Ensure all data is written to buffer
487 * @xdr: pointer to xdr_stream
489 * We handle encoding across page boundaries by giving the caller a
490 * temporary location to write to, then later copying the data into
491 * place; xdr_commit_encode does that copying.
493 * Normally the caller doesn't need to call this directly, as the
494 * following xdr_reserve_space will do it. But an explicit call may be
495 * required at the end of encoding, or any other time when the xdr_buf
496 * data might be read.
498 void xdr_commit_encode(struct xdr_stream *xdr)
500 int shift = xdr->scratch.iov_len;
501 void *page;
503 if (shift == 0)
504 return;
505 page = page_address(*xdr->page_ptr);
506 memcpy(xdr->scratch.iov_base, page, shift);
507 memmove(page, page + shift, (void *)xdr->p - page);
508 xdr->scratch.iov_len = 0;
510 EXPORT_SYMBOL_GPL(xdr_commit_encode);
512 static __be32 *xdr_get_next_encode_buffer(struct xdr_stream *xdr,
513 size_t nbytes)
515 __be32 *p;
516 int space_left;
517 int frag1bytes, frag2bytes;
519 if (nbytes > PAGE_SIZE)
520 return NULL; /* Bigger buffers require special handling */
521 if (xdr->buf->len + nbytes > xdr->buf->buflen)
522 return NULL; /* Sorry, we're totally out of space */
523 frag1bytes = (xdr->end - xdr->p) << 2;
524 frag2bytes = nbytes - frag1bytes;
525 if (xdr->iov)
526 xdr->iov->iov_len += frag1bytes;
527 else
528 xdr->buf->page_len += frag1bytes;
529 xdr->page_ptr++;
530 xdr->iov = NULL;
532 * If the last encode didn't end exactly on a page boundary, the
533 * next one will straddle boundaries. Encode into the next
534 * page, then copy it back later in xdr_commit_encode. We use
535 * the "scratch" iov to track any temporarily unused fragment of
536 * space at the end of the previous buffer:
538 xdr->scratch.iov_base = xdr->p;
539 xdr->scratch.iov_len = frag1bytes;
540 p = page_address(*xdr->page_ptr);
542 * Note this is where the next encode will start after we've
543 * shifted this one back:
545 xdr->p = (void *)p + frag2bytes;
546 space_left = xdr->buf->buflen - xdr->buf->len;
547 xdr->end = (void *)p + min_t(int, space_left, PAGE_SIZE);
548 xdr->buf->page_len += frag2bytes;
549 xdr->buf->len += nbytes;
550 return p;
554 * xdr_reserve_space - Reserve buffer space for sending
555 * @xdr: pointer to xdr_stream
556 * @nbytes: number of bytes to reserve
558 * Checks that we have enough buffer space to encode 'nbytes' more
559 * bytes of data. If so, update the total xdr_buf length, and
560 * adjust the length of the current kvec.
562 __be32 * xdr_reserve_space(struct xdr_stream *xdr, size_t nbytes)
564 __be32 *p = xdr->p;
565 __be32 *q;
567 xdr_commit_encode(xdr);
568 /* align nbytes on the next 32-bit boundary */
569 nbytes += 3;
570 nbytes &= ~3;
571 q = p + (nbytes >> 2);
572 if (unlikely(q > xdr->end || q < p))
573 return xdr_get_next_encode_buffer(xdr, nbytes);
574 xdr->p = q;
575 if (xdr->iov)
576 xdr->iov->iov_len += nbytes;
577 else
578 xdr->buf->page_len += nbytes;
579 xdr->buf->len += nbytes;
580 return p;
582 EXPORT_SYMBOL_GPL(xdr_reserve_space);
585 * xdr_truncate_encode - truncate an encode buffer
586 * @xdr: pointer to xdr_stream
587 * @len: new length of buffer
589 * Truncates the xdr stream, so that xdr->buf->len == len,
590 * and xdr->p points at offset len from the start of the buffer, and
591 * head, tail, and page lengths are adjusted to correspond.
593 * If this means moving xdr->p to a different buffer, we assume that
594 * that the end pointer should be set to the end of the current page,
595 * except in the case of the head buffer when we assume the head
596 * buffer's current length represents the end of the available buffer.
598 * This is *not* safe to use on a buffer that already has inlined page
599 * cache pages (as in a zero-copy server read reply), except for the
600 * simple case of truncating from one position in the tail to another.
603 void xdr_truncate_encode(struct xdr_stream *xdr, size_t len)
605 struct xdr_buf *buf = xdr->buf;
606 struct kvec *head = buf->head;
607 struct kvec *tail = buf->tail;
608 int fraglen;
609 int new;
611 if (len > buf->len) {
612 WARN_ON_ONCE(1);
613 return;
615 xdr_commit_encode(xdr);
617 fraglen = min_t(int, buf->len - len, tail->iov_len);
618 tail->iov_len -= fraglen;
619 buf->len -= fraglen;
620 if (tail->iov_len) {
621 xdr->p = tail->iov_base + tail->iov_len;
622 WARN_ON_ONCE(!xdr->end);
623 WARN_ON_ONCE(!xdr->iov);
624 return;
626 WARN_ON_ONCE(fraglen);
627 fraglen = min_t(int, buf->len - len, buf->page_len);
628 buf->page_len -= fraglen;
629 buf->len -= fraglen;
631 new = buf->page_base + buf->page_len;
633 xdr->page_ptr = buf->pages + (new >> PAGE_SHIFT);
635 if (buf->page_len) {
636 xdr->p = page_address(*xdr->page_ptr);
637 xdr->end = (void *)xdr->p + PAGE_SIZE;
638 xdr->p = (void *)xdr->p + (new % PAGE_SIZE);
639 WARN_ON_ONCE(xdr->iov);
640 return;
642 if (fraglen)
643 xdr->end = head->iov_base + head->iov_len;
644 /* (otherwise assume xdr->end is already set) */
645 xdr->page_ptr--;
646 head->iov_len = len;
647 buf->len = len;
648 xdr->p = head->iov_base + head->iov_len;
649 xdr->iov = buf->head;
651 EXPORT_SYMBOL(xdr_truncate_encode);
654 * xdr_restrict_buflen - decrease available buffer space
655 * @xdr: pointer to xdr_stream
656 * @newbuflen: new maximum number of bytes available
658 * Adjust our idea of how much space is available in the buffer.
659 * If we've already used too much space in the buffer, returns -1.
660 * If the available space is already smaller than newbuflen, returns 0
661 * and does nothing. Otherwise, adjusts xdr->buf->buflen to newbuflen
662 * and ensures xdr->end is set at most offset newbuflen from the start
663 * of the buffer.
665 int xdr_restrict_buflen(struct xdr_stream *xdr, int newbuflen)
667 struct xdr_buf *buf = xdr->buf;
668 int left_in_this_buf = (void *)xdr->end - (void *)xdr->p;
669 int end_offset = buf->len + left_in_this_buf;
671 if (newbuflen < 0 || newbuflen < buf->len)
672 return -1;
673 if (newbuflen > buf->buflen)
674 return 0;
675 if (newbuflen < end_offset)
676 xdr->end = (void *)xdr->end + newbuflen - end_offset;
677 buf->buflen = newbuflen;
678 return 0;
680 EXPORT_SYMBOL(xdr_restrict_buflen);
683 * xdr_write_pages - Insert a list of pages into an XDR buffer for sending
684 * @xdr: pointer to xdr_stream
685 * @pages: list of pages
686 * @base: offset of first byte
687 * @len: length of data in bytes
690 void xdr_write_pages(struct xdr_stream *xdr, struct page **pages, unsigned int base,
691 unsigned int len)
693 struct xdr_buf *buf = xdr->buf;
694 struct kvec *iov = buf->tail;
695 buf->pages = pages;
696 buf->page_base = base;
697 buf->page_len = len;
699 iov->iov_base = (char *)xdr->p;
700 iov->iov_len = 0;
701 xdr->iov = iov;
703 if (len & 3) {
704 unsigned int pad = 4 - (len & 3);
706 BUG_ON(xdr->p >= xdr->end);
707 iov->iov_base = (char *)xdr->p + (len & 3);
708 iov->iov_len += pad;
709 len += pad;
710 *xdr->p++ = 0;
712 buf->buflen += len;
713 buf->len += len;
715 EXPORT_SYMBOL_GPL(xdr_write_pages);
717 static void xdr_set_iov(struct xdr_stream *xdr, struct kvec *iov,
718 unsigned int len)
720 if (len > iov->iov_len)
721 len = iov->iov_len;
722 xdr->p = (__be32*)iov->iov_base;
723 xdr->end = (__be32*)(iov->iov_base + len);
724 xdr->iov = iov;
725 xdr->page_ptr = NULL;
728 static int xdr_set_page_base(struct xdr_stream *xdr,
729 unsigned int base, unsigned int len)
731 unsigned int pgnr;
732 unsigned int maxlen;
733 unsigned int pgoff;
734 unsigned int pgend;
735 void *kaddr;
737 maxlen = xdr->buf->page_len;
738 if (base >= maxlen)
739 return -EINVAL;
740 maxlen -= base;
741 if (len > maxlen)
742 len = maxlen;
744 base += xdr->buf->page_base;
746 pgnr = base >> PAGE_SHIFT;
747 xdr->page_ptr = &xdr->buf->pages[pgnr];
748 kaddr = page_address(*xdr->page_ptr);
750 pgoff = base & ~PAGE_MASK;
751 xdr->p = (__be32*)(kaddr + pgoff);
753 pgend = pgoff + len;
754 if (pgend > PAGE_SIZE)
755 pgend = PAGE_SIZE;
756 xdr->end = (__be32*)(kaddr + pgend);
757 xdr->iov = NULL;
758 return 0;
761 static void xdr_set_next_page(struct xdr_stream *xdr)
763 unsigned int newbase;
765 newbase = (1 + xdr->page_ptr - xdr->buf->pages) << PAGE_SHIFT;
766 newbase -= xdr->buf->page_base;
768 if (xdr_set_page_base(xdr, newbase, PAGE_SIZE) < 0)
769 xdr_set_iov(xdr, xdr->buf->tail, xdr->nwords << 2);
772 static bool xdr_set_next_buffer(struct xdr_stream *xdr)
774 if (xdr->page_ptr != NULL)
775 xdr_set_next_page(xdr);
776 else if (xdr->iov == xdr->buf->head) {
777 if (xdr_set_page_base(xdr, 0, PAGE_SIZE) < 0)
778 xdr_set_iov(xdr, xdr->buf->tail, xdr->nwords << 2);
780 return xdr->p != xdr->end;
784 * xdr_init_decode - Initialize an xdr_stream for decoding data.
785 * @xdr: pointer to xdr_stream struct
786 * @buf: pointer to XDR buffer from which to decode data
787 * @p: current pointer inside XDR buffer
789 void xdr_init_decode(struct xdr_stream *xdr, struct xdr_buf *buf, __be32 *p)
791 xdr->buf = buf;
792 xdr->scratch.iov_base = NULL;
793 xdr->scratch.iov_len = 0;
794 xdr->nwords = XDR_QUADLEN(buf->len);
795 if (buf->head[0].iov_len != 0)
796 xdr_set_iov(xdr, buf->head, buf->len);
797 else if (buf->page_len != 0)
798 xdr_set_page_base(xdr, 0, buf->len);
799 else
800 xdr_set_iov(xdr, buf->head, buf->len);
801 if (p != NULL && p > xdr->p && xdr->end >= p) {
802 xdr->nwords -= p - xdr->p;
803 xdr->p = p;
806 EXPORT_SYMBOL_GPL(xdr_init_decode);
809 * xdr_init_decode_pages - Initialize an xdr_stream for decoding into pages
810 * @xdr: pointer to xdr_stream struct
811 * @buf: pointer to XDR buffer from which to decode data
812 * @pages: list of pages to decode into
813 * @len: length in bytes of buffer in pages
815 void xdr_init_decode_pages(struct xdr_stream *xdr, struct xdr_buf *buf,
816 struct page **pages, unsigned int len)
818 memset(buf, 0, sizeof(*buf));
819 buf->pages = pages;
820 buf->page_len = len;
821 buf->buflen = len;
822 buf->len = len;
823 xdr_init_decode(xdr, buf, NULL);
825 EXPORT_SYMBOL_GPL(xdr_init_decode_pages);
827 static __be32 * __xdr_inline_decode(struct xdr_stream *xdr, size_t nbytes)
829 unsigned int nwords = XDR_QUADLEN(nbytes);
830 __be32 *p = xdr->p;
831 __be32 *q = p + nwords;
833 if (unlikely(nwords > xdr->nwords || q > xdr->end || q < p))
834 return NULL;
835 xdr->p = q;
836 xdr->nwords -= nwords;
837 return p;
841 * xdr_set_scratch_buffer - Attach a scratch buffer for decoding data.
842 * @xdr: pointer to xdr_stream struct
843 * @buf: pointer to an empty buffer
844 * @buflen: size of 'buf'
846 * The scratch buffer is used when decoding from an array of pages.
847 * If an xdr_inline_decode() call spans across page boundaries, then
848 * we copy the data into the scratch buffer in order to allow linear
849 * access.
851 void xdr_set_scratch_buffer(struct xdr_stream *xdr, void *buf, size_t buflen)
853 xdr->scratch.iov_base = buf;
854 xdr->scratch.iov_len = buflen;
856 EXPORT_SYMBOL_GPL(xdr_set_scratch_buffer);
858 static __be32 *xdr_copy_to_scratch(struct xdr_stream *xdr, size_t nbytes)
860 __be32 *p;
861 char *cpdest = xdr->scratch.iov_base;
862 size_t cplen = (char *)xdr->end - (char *)xdr->p;
864 if (nbytes > xdr->scratch.iov_len)
865 return NULL;
866 p = __xdr_inline_decode(xdr, cplen);
867 if (p == NULL)
868 return NULL;
869 memcpy(cpdest, p, cplen);
870 cpdest += cplen;
871 nbytes -= cplen;
872 if (!xdr_set_next_buffer(xdr))
873 return NULL;
874 p = __xdr_inline_decode(xdr, nbytes);
875 if (p == NULL)
876 return NULL;
877 memcpy(cpdest, p, nbytes);
878 return xdr->scratch.iov_base;
882 * xdr_inline_decode - Retrieve XDR data to decode
883 * @xdr: pointer to xdr_stream struct
884 * @nbytes: number of bytes of data to decode
886 * Check if the input buffer is long enough to enable us to decode
887 * 'nbytes' more bytes of data starting at the current position.
888 * If so return the current pointer, then update the current
889 * pointer position.
891 __be32 * xdr_inline_decode(struct xdr_stream *xdr, size_t nbytes)
893 __be32 *p;
895 if (nbytes == 0)
896 return xdr->p;
897 if (xdr->p == xdr->end && !xdr_set_next_buffer(xdr))
898 return NULL;
899 p = __xdr_inline_decode(xdr, nbytes);
900 if (p != NULL)
901 return p;
902 return xdr_copy_to_scratch(xdr, nbytes);
904 EXPORT_SYMBOL_GPL(xdr_inline_decode);
906 static unsigned int xdr_align_pages(struct xdr_stream *xdr, unsigned int len)
908 struct xdr_buf *buf = xdr->buf;
909 struct kvec *iov;
910 unsigned int nwords = XDR_QUADLEN(len);
911 unsigned int cur = xdr_stream_pos(xdr);
913 if (xdr->nwords == 0)
914 return 0;
915 /* Realign pages to current pointer position */
916 iov = buf->head;
917 if (iov->iov_len > cur) {
918 xdr_shrink_bufhead(buf, iov->iov_len - cur);
919 xdr->nwords = XDR_QUADLEN(buf->len - cur);
922 if (nwords > xdr->nwords) {
923 nwords = xdr->nwords;
924 len = nwords << 2;
926 if (buf->page_len <= len)
927 len = buf->page_len;
928 else if (nwords < xdr->nwords) {
929 /* Truncate page data and move it into the tail */
930 xdr_shrink_pagelen(buf, buf->page_len - len);
931 xdr->nwords = XDR_QUADLEN(buf->len - cur);
933 return len;
937 * xdr_read_pages - Ensure page-based XDR data to decode is aligned at current pointer position
938 * @xdr: pointer to xdr_stream struct
939 * @len: number of bytes of page data
941 * Moves data beyond the current pointer position from the XDR head[] buffer
942 * into the page list. Any data that lies beyond current position + "len"
943 * bytes is moved into the XDR tail[].
945 * Returns the number of XDR encoded bytes now contained in the pages
947 unsigned int xdr_read_pages(struct xdr_stream *xdr, unsigned int len)
949 struct xdr_buf *buf = xdr->buf;
950 struct kvec *iov;
951 unsigned int nwords;
952 unsigned int end;
953 unsigned int padding;
955 len = xdr_align_pages(xdr, len);
956 if (len == 0)
957 return 0;
958 nwords = XDR_QUADLEN(len);
959 padding = (nwords << 2) - len;
960 xdr->iov = iov = buf->tail;
961 /* Compute remaining message length. */
962 end = ((xdr->nwords - nwords) << 2) + padding;
963 if (end > iov->iov_len)
964 end = iov->iov_len;
967 * Position current pointer at beginning of tail, and
968 * set remaining message length.
970 xdr->p = (__be32 *)((char *)iov->iov_base + padding);
971 xdr->end = (__be32 *)((char *)iov->iov_base + end);
972 xdr->page_ptr = NULL;
973 xdr->nwords = XDR_QUADLEN(end - padding);
974 return len;
976 EXPORT_SYMBOL_GPL(xdr_read_pages);
979 * xdr_enter_page - decode data from the XDR page
980 * @xdr: pointer to xdr_stream struct
981 * @len: number of bytes of page data
983 * Moves data beyond the current pointer position from the XDR head[] buffer
984 * into the page list. Any data that lies beyond current position + "len"
985 * bytes is moved into the XDR tail[]. The current pointer is then
986 * repositioned at the beginning of the first XDR page.
988 void xdr_enter_page(struct xdr_stream *xdr, unsigned int len)
990 len = xdr_align_pages(xdr, len);
992 * Position current pointer at beginning of tail, and
993 * set remaining message length.
995 if (len != 0)
996 xdr_set_page_base(xdr, 0, len);
998 EXPORT_SYMBOL_GPL(xdr_enter_page);
1000 static struct kvec empty_iov = {.iov_base = NULL, .iov_len = 0};
1002 void
1003 xdr_buf_from_iov(struct kvec *iov, struct xdr_buf *buf)
1005 buf->head[0] = *iov;
1006 buf->tail[0] = empty_iov;
1007 buf->page_len = 0;
1008 buf->buflen = buf->len = iov->iov_len;
1010 EXPORT_SYMBOL_GPL(xdr_buf_from_iov);
1013 * xdr_buf_subsegment - set subbuf to a portion of buf
1014 * @buf: an xdr buffer
1015 * @subbuf: the result buffer
1016 * @base: beginning of range in bytes
1017 * @len: length of range in bytes
1019 * sets @subbuf to an xdr buffer representing the portion of @buf of
1020 * length @len starting at offset @base.
1022 * @buf and @subbuf may be pointers to the same struct xdr_buf.
1024 * Returns -1 if base of length are out of bounds.
1027 xdr_buf_subsegment(struct xdr_buf *buf, struct xdr_buf *subbuf,
1028 unsigned int base, unsigned int len)
1030 subbuf->buflen = subbuf->len = len;
1031 if (base < buf->head[0].iov_len) {
1032 subbuf->head[0].iov_base = buf->head[0].iov_base + base;
1033 subbuf->head[0].iov_len = min_t(unsigned int, len,
1034 buf->head[0].iov_len - base);
1035 len -= subbuf->head[0].iov_len;
1036 base = 0;
1037 } else {
1038 base -= buf->head[0].iov_len;
1039 subbuf->head[0].iov_base = buf->head[0].iov_base;
1040 subbuf->head[0].iov_len = 0;
1043 if (base < buf->page_len) {
1044 subbuf->page_len = min(buf->page_len - base, len);
1045 base += buf->page_base;
1046 subbuf->page_base = base & ~PAGE_MASK;
1047 subbuf->pages = &buf->pages[base >> PAGE_SHIFT];
1048 len -= subbuf->page_len;
1049 base = 0;
1050 } else {
1051 base -= buf->page_len;
1052 subbuf->pages = buf->pages;
1053 subbuf->page_base = 0;
1054 subbuf->page_len = 0;
1057 if (base < buf->tail[0].iov_len) {
1058 subbuf->tail[0].iov_base = buf->tail[0].iov_base + base;
1059 subbuf->tail[0].iov_len = min_t(unsigned int, len,
1060 buf->tail[0].iov_len - base);
1061 len -= subbuf->tail[0].iov_len;
1062 base = 0;
1063 } else {
1064 base -= buf->tail[0].iov_len;
1065 subbuf->tail[0].iov_base = buf->tail[0].iov_base;
1066 subbuf->tail[0].iov_len = 0;
1069 if (base || len)
1070 return -1;
1071 return 0;
1073 EXPORT_SYMBOL_GPL(xdr_buf_subsegment);
1076 * xdr_buf_trim - lop at most "len" bytes off the end of "buf"
1077 * @buf: buf to be trimmed
1078 * @len: number of bytes to reduce "buf" by
1080 * Trim an xdr_buf by the given number of bytes by fixing up the lengths. Note
1081 * that it's possible that we'll trim less than that amount if the xdr_buf is
1082 * too small, or if (for instance) it's all in the head and the parser has
1083 * already read too far into it.
1085 void xdr_buf_trim(struct xdr_buf *buf, unsigned int len)
1087 size_t cur;
1088 unsigned int trim = len;
1090 if (buf->tail[0].iov_len) {
1091 cur = min_t(size_t, buf->tail[0].iov_len, trim);
1092 buf->tail[0].iov_len -= cur;
1093 trim -= cur;
1094 if (!trim)
1095 goto fix_len;
1098 if (buf->page_len) {
1099 cur = min_t(unsigned int, buf->page_len, trim);
1100 buf->page_len -= cur;
1101 trim -= cur;
1102 if (!trim)
1103 goto fix_len;
1106 if (buf->head[0].iov_len) {
1107 cur = min_t(size_t, buf->head[0].iov_len, trim);
1108 buf->head[0].iov_len -= cur;
1109 trim -= cur;
1111 fix_len:
1112 buf->len -= (len - trim);
1114 EXPORT_SYMBOL_GPL(xdr_buf_trim);
1116 static void __read_bytes_from_xdr_buf(struct xdr_buf *subbuf, void *obj, unsigned int len)
1118 unsigned int this_len;
1120 this_len = min_t(unsigned int, len, subbuf->head[0].iov_len);
1121 memcpy(obj, subbuf->head[0].iov_base, this_len);
1122 len -= this_len;
1123 obj += this_len;
1124 this_len = min_t(unsigned int, len, subbuf->page_len);
1125 if (this_len)
1126 _copy_from_pages(obj, subbuf->pages, subbuf->page_base, this_len);
1127 len -= this_len;
1128 obj += this_len;
1129 this_len = min_t(unsigned int, len, subbuf->tail[0].iov_len);
1130 memcpy(obj, subbuf->tail[0].iov_base, this_len);
1133 /* obj is assumed to point to allocated memory of size at least len: */
1134 int read_bytes_from_xdr_buf(struct xdr_buf *buf, unsigned int base, void *obj, unsigned int len)
1136 struct xdr_buf subbuf;
1137 int status;
1139 status = xdr_buf_subsegment(buf, &subbuf, base, len);
1140 if (status != 0)
1141 return status;
1142 __read_bytes_from_xdr_buf(&subbuf, obj, len);
1143 return 0;
1145 EXPORT_SYMBOL_GPL(read_bytes_from_xdr_buf);
1147 static void __write_bytes_to_xdr_buf(struct xdr_buf *subbuf, void *obj, unsigned int len)
1149 unsigned int this_len;
1151 this_len = min_t(unsigned int, len, subbuf->head[0].iov_len);
1152 memcpy(subbuf->head[0].iov_base, obj, this_len);
1153 len -= this_len;
1154 obj += this_len;
1155 this_len = min_t(unsigned int, len, subbuf->page_len);
1156 if (this_len)
1157 _copy_to_pages(subbuf->pages, subbuf->page_base, obj, this_len);
1158 len -= this_len;
1159 obj += this_len;
1160 this_len = min_t(unsigned int, len, subbuf->tail[0].iov_len);
1161 memcpy(subbuf->tail[0].iov_base, obj, this_len);
1164 /* obj is assumed to point to allocated memory of size at least len: */
1165 int write_bytes_to_xdr_buf(struct xdr_buf *buf, unsigned int base, void *obj, unsigned int len)
1167 struct xdr_buf subbuf;
1168 int status;
1170 status = xdr_buf_subsegment(buf, &subbuf, base, len);
1171 if (status != 0)
1172 return status;
1173 __write_bytes_to_xdr_buf(&subbuf, obj, len);
1174 return 0;
1176 EXPORT_SYMBOL_GPL(write_bytes_to_xdr_buf);
1179 xdr_decode_word(struct xdr_buf *buf, unsigned int base, u32 *obj)
1181 __be32 raw;
1182 int status;
1184 status = read_bytes_from_xdr_buf(buf, base, &raw, sizeof(*obj));
1185 if (status)
1186 return status;
1187 *obj = be32_to_cpu(raw);
1188 return 0;
1190 EXPORT_SYMBOL_GPL(xdr_decode_word);
1193 xdr_encode_word(struct xdr_buf *buf, unsigned int base, u32 obj)
1195 __be32 raw = cpu_to_be32(obj);
1197 return write_bytes_to_xdr_buf(buf, base, &raw, sizeof(obj));
1199 EXPORT_SYMBOL_GPL(xdr_encode_word);
1201 /* If the netobj starting offset bytes from the start of xdr_buf is contained
1202 * entirely in the head or the tail, set object to point to it; otherwise
1203 * try to find space for it at the end of the tail, copy it there, and
1204 * set obj to point to it. */
1205 int xdr_buf_read_netobj(struct xdr_buf *buf, struct xdr_netobj *obj, unsigned int offset)
1207 struct xdr_buf subbuf;
1209 if (xdr_decode_word(buf, offset, &obj->len))
1210 return -EFAULT;
1211 if (xdr_buf_subsegment(buf, &subbuf, offset + 4, obj->len))
1212 return -EFAULT;
1214 /* Is the obj contained entirely in the head? */
1215 obj->data = subbuf.head[0].iov_base;
1216 if (subbuf.head[0].iov_len == obj->len)
1217 return 0;
1218 /* ..or is the obj contained entirely in the tail? */
1219 obj->data = subbuf.tail[0].iov_base;
1220 if (subbuf.tail[0].iov_len == obj->len)
1221 return 0;
1223 /* use end of tail as storage for obj:
1224 * (We don't copy to the beginning because then we'd have
1225 * to worry about doing a potentially overlapping copy.
1226 * This assumes the object is at most half the length of the
1227 * tail.) */
1228 if (obj->len > buf->buflen - buf->len)
1229 return -ENOMEM;
1230 if (buf->tail[0].iov_len != 0)
1231 obj->data = buf->tail[0].iov_base + buf->tail[0].iov_len;
1232 else
1233 obj->data = buf->head[0].iov_base + buf->head[0].iov_len;
1234 __read_bytes_from_xdr_buf(&subbuf, obj->data, obj->len);
1235 return 0;
1237 EXPORT_SYMBOL_GPL(xdr_buf_read_netobj);
1239 /* Returns 0 on success, or else a negative error code. */
1240 static int
1241 xdr_xcode_array2(struct xdr_buf *buf, unsigned int base,
1242 struct xdr_array2_desc *desc, int encode)
1244 char *elem = NULL, *c;
1245 unsigned int copied = 0, todo, avail_here;
1246 struct page **ppages = NULL;
1247 int err;
1249 if (encode) {
1250 if (xdr_encode_word(buf, base, desc->array_len) != 0)
1251 return -EINVAL;
1252 } else {
1253 if (xdr_decode_word(buf, base, &desc->array_len) != 0 ||
1254 desc->array_len > desc->array_maxlen ||
1255 (unsigned long) base + 4 + desc->array_len *
1256 desc->elem_size > buf->len)
1257 return -EINVAL;
1259 base += 4;
1261 if (!desc->xcode)
1262 return 0;
1264 todo = desc->array_len * desc->elem_size;
1266 /* process head */
1267 if (todo && base < buf->head->iov_len) {
1268 c = buf->head->iov_base + base;
1269 avail_here = min_t(unsigned int, todo,
1270 buf->head->iov_len - base);
1271 todo -= avail_here;
1273 while (avail_here >= desc->elem_size) {
1274 err = desc->xcode(desc, c);
1275 if (err)
1276 goto out;
1277 c += desc->elem_size;
1278 avail_here -= desc->elem_size;
1280 if (avail_here) {
1281 if (!elem) {
1282 elem = kmalloc(desc->elem_size, GFP_KERNEL);
1283 err = -ENOMEM;
1284 if (!elem)
1285 goto out;
1287 if (encode) {
1288 err = desc->xcode(desc, elem);
1289 if (err)
1290 goto out;
1291 memcpy(c, elem, avail_here);
1292 } else
1293 memcpy(elem, c, avail_here);
1294 copied = avail_here;
1296 base = buf->head->iov_len; /* align to start of pages */
1299 /* process pages array */
1300 base -= buf->head->iov_len;
1301 if (todo && base < buf->page_len) {
1302 unsigned int avail_page;
1304 avail_here = min(todo, buf->page_len - base);
1305 todo -= avail_here;
1307 base += buf->page_base;
1308 ppages = buf->pages + (base >> PAGE_SHIFT);
1309 base &= ~PAGE_MASK;
1310 avail_page = min_t(unsigned int, PAGE_SIZE - base,
1311 avail_here);
1312 c = kmap(*ppages) + base;
1314 while (avail_here) {
1315 avail_here -= avail_page;
1316 if (copied || avail_page < desc->elem_size) {
1317 unsigned int l = min(avail_page,
1318 desc->elem_size - copied);
1319 if (!elem) {
1320 elem = kmalloc(desc->elem_size,
1321 GFP_KERNEL);
1322 err = -ENOMEM;
1323 if (!elem)
1324 goto out;
1326 if (encode) {
1327 if (!copied) {
1328 err = desc->xcode(desc, elem);
1329 if (err)
1330 goto out;
1332 memcpy(c, elem + copied, l);
1333 copied += l;
1334 if (copied == desc->elem_size)
1335 copied = 0;
1336 } else {
1337 memcpy(elem + copied, c, l);
1338 copied += l;
1339 if (copied == desc->elem_size) {
1340 err = desc->xcode(desc, elem);
1341 if (err)
1342 goto out;
1343 copied = 0;
1346 avail_page -= l;
1347 c += l;
1349 while (avail_page >= desc->elem_size) {
1350 err = desc->xcode(desc, c);
1351 if (err)
1352 goto out;
1353 c += desc->elem_size;
1354 avail_page -= desc->elem_size;
1356 if (avail_page) {
1357 unsigned int l = min(avail_page,
1358 desc->elem_size - copied);
1359 if (!elem) {
1360 elem = kmalloc(desc->elem_size,
1361 GFP_KERNEL);
1362 err = -ENOMEM;
1363 if (!elem)
1364 goto out;
1366 if (encode) {
1367 if (!copied) {
1368 err = desc->xcode(desc, elem);
1369 if (err)
1370 goto out;
1372 memcpy(c, elem + copied, l);
1373 copied += l;
1374 if (copied == desc->elem_size)
1375 copied = 0;
1376 } else {
1377 memcpy(elem + copied, c, l);
1378 copied += l;
1379 if (copied == desc->elem_size) {
1380 err = desc->xcode(desc, elem);
1381 if (err)
1382 goto out;
1383 copied = 0;
1387 if (avail_here) {
1388 kunmap(*ppages);
1389 ppages++;
1390 c = kmap(*ppages);
1393 avail_page = min(avail_here,
1394 (unsigned int) PAGE_SIZE);
1396 base = buf->page_len; /* align to start of tail */
1399 /* process tail */
1400 base -= buf->page_len;
1401 if (todo) {
1402 c = buf->tail->iov_base + base;
1403 if (copied) {
1404 unsigned int l = desc->elem_size - copied;
1406 if (encode)
1407 memcpy(c, elem + copied, l);
1408 else {
1409 memcpy(elem + copied, c, l);
1410 err = desc->xcode(desc, elem);
1411 if (err)
1412 goto out;
1414 todo -= l;
1415 c += l;
1417 while (todo) {
1418 err = desc->xcode(desc, c);
1419 if (err)
1420 goto out;
1421 c += desc->elem_size;
1422 todo -= desc->elem_size;
1425 err = 0;
1427 out:
1428 kfree(elem);
1429 if (ppages)
1430 kunmap(*ppages);
1431 return err;
1435 xdr_decode_array2(struct xdr_buf *buf, unsigned int base,
1436 struct xdr_array2_desc *desc)
1438 if (base >= buf->len)
1439 return -EINVAL;
1441 return xdr_xcode_array2(buf, base, desc, 0);
1443 EXPORT_SYMBOL_GPL(xdr_decode_array2);
1446 xdr_encode_array2(struct xdr_buf *buf, unsigned int base,
1447 struct xdr_array2_desc *desc)
1449 if ((unsigned long) base + 4 + desc->array_len * desc->elem_size >
1450 buf->head->iov_len + buf->page_len + buf->tail->iov_len)
1451 return -EINVAL;
1453 return xdr_xcode_array2(buf, base, desc, 1);
1455 EXPORT_SYMBOL_GPL(xdr_encode_array2);
1458 xdr_process_buf(struct xdr_buf *buf, unsigned int offset, unsigned int len,
1459 int (*actor)(struct scatterlist *, void *), void *data)
1461 int i, ret = 0;
1462 unsigned int page_len, thislen, page_offset;
1463 struct scatterlist sg[1];
1465 sg_init_table(sg, 1);
1467 if (offset >= buf->head[0].iov_len) {
1468 offset -= buf->head[0].iov_len;
1469 } else {
1470 thislen = buf->head[0].iov_len - offset;
1471 if (thislen > len)
1472 thislen = len;
1473 sg_set_buf(sg, buf->head[0].iov_base + offset, thislen);
1474 ret = actor(sg, data);
1475 if (ret)
1476 goto out;
1477 offset = 0;
1478 len -= thislen;
1480 if (len == 0)
1481 goto out;
1483 if (offset >= buf->page_len) {
1484 offset -= buf->page_len;
1485 } else {
1486 page_len = buf->page_len - offset;
1487 if (page_len > len)
1488 page_len = len;
1489 len -= page_len;
1490 page_offset = (offset + buf->page_base) & (PAGE_SIZE - 1);
1491 i = (offset + buf->page_base) >> PAGE_SHIFT;
1492 thislen = PAGE_SIZE - page_offset;
1493 do {
1494 if (thislen > page_len)
1495 thislen = page_len;
1496 sg_set_page(sg, buf->pages[i], thislen, page_offset);
1497 ret = actor(sg, data);
1498 if (ret)
1499 goto out;
1500 page_len -= thislen;
1501 i++;
1502 page_offset = 0;
1503 thislen = PAGE_SIZE;
1504 } while (page_len != 0);
1505 offset = 0;
1507 if (len == 0)
1508 goto out;
1509 if (offset < buf->tail[0].iov_len) {
1510 thislen = buf->tail[0].iov_len - offset;
1511 if (thislen > len)
1512 thislen = len;
1513 sg_set_buf(sg, buf->tail[0].iov_base + offset, thislen);
1514 ret = actor(sg, data);
1515 len -= thislen;
1517 if (len != 0)
1518 ret = -EINVAL;
1519 out:
1520 return ret;
1522 EXPORT_SYMBOL_GPL(xdr_process_buf);
1525 * xdr_stream_decode_opaque - Decode variable length opaque
1526 * @xdr: pointer to xdr_stream
1527 * @ptr: location to store opaque data
1528 * @size: size of storage buffer @ptr
1530 * Return values:
1531 * On success, returns size of object stored in *@ptr
1532 * %-EBADMSG on XDR buffer overflow
1533 * %-EMSGSIZE on overflow of storage buffer @ptr
1535 ssize_t xdr_stream_decode_opaque(struct xdr_stream *xdr, void *ptr, size_t size)
1537 ssize_t ret;
1538 void *p;
1540 ret = xdr_stream_decode_opaque_inline(xdr, &p, size);
1541 if (ret <= 0)
1542 return ret;
1543 memcpy(ptr, p, ret);
1544 return ret;
1546 EXPORT_SYMBOL_GPL(xdr_stream_decode_opaque);
1549 * xdr_stream_decode_opaque_dup - Decode and duplicate variable length opaque
1550 * @xdr: pointer to xdr_stream
1551 * @ptr: location to store pointer to opaque data
1552 * @maxlen: maximum acceptable object size
1553 * @gfp_flags: GFP mask to use
1555 * Return values:
1556 * On success, returns size of object stored in *@ptr
1557 * %-EBADMSG on XDR buffer overflow
1558 * %-EMSGSIZE if the size of the object would exceed @maxlen
1559 * %-ENOMEM on memory allocation failure
1561 ssize_t xdr_stream_decode_opaque_dup(struct xdr_stream *xdr, void **ptr,
1562 size_t maxlen, gfp_t gfp_flags)
1564 ssize_t ret;
1565 void *p;
1567 ret = xdr_stream_decode_opaque_inline(xdr, &p, maxlen);
1568 if (ret > 0) {
1569 *ptr = kmemdup(p, ret, gfp_flags);
1570 if (*ptr != NULL)
1571 return ret;
1572 ret = -ENOMEM;
1574 *ptr = NULL;
1575 return ret;
1577 EXPORT_SYMBOL_GPL(xdr_stream_decode_opaque_dup);
1580 * xdr_stream_decode_string - Decode variable length string
1581 * @xdr: pointer to xdr_stream
1582 * @str: location to store string
1583 * @size: size of storage buffer @str
1585 * Return values:
1586 * On success, returns length of NUL-terminated string stored in *@str
1587 * %-EBADMSG on XDR buffer overflow
1588 * %-EMSGSIZE on overflow of storage buffer @str
1590 ssize_t xdr_stream_decode_string(struct xdr_stream *xdr, char *str, size_t size)
1592 ssize_t ret;
1593 void *p;
1595 ret = xdr_stream_decode_opaque_inline(xdr, &p, size);
1596 if (ret > 0) {
1597 memcpy(str, p, ret);
1598 str[ret] = '\0';
1599 return strlen(str);
1601 *str = '\0';
1602 return ret;
1604 EXPORT_SYMBOL_GPL(xdr_stream_decode_string);
1607 * xdr_stream_decode_string_dup - Decode and duplicate variable length string
1608 * @xdr: pointer to xdr_stream
1609 * @str: location to store pointer to string
1610 * @maxlen: maximum acceptable string length
1611 * @gfp_flags: GFP mask to use
1613 * Return values:
1614 * On success, returns length of NUL-terminated string stored in *@ptr
1615 * %-EBADMSG on XDR buffer overflow
1616 * %-EMSGSIZE if the size of the string would exceed @maxlen
1617 * %-ENOMEM on memory allocation failure
1619 ssize_t xdr_stream_decode_string_dup(struct xdr_stream *xdr, char **str,
1620 size_t maxlen, gfp_t gfp_flags)
1622 void *p;
1623 ssize_t ret;
1625 ret = xdr_stream_decode_opaque_inline(xdr, &p, maxlen);
1626 if (ret > 0) {
1627 char *s = kmalloc(ret + 1, gfp_flags);
1628 if (s != NULL) {
1629 memcpy(s, p, ret);
1630 s[ret] = '\0';
1631 *str = s;
1632 return strlen(s);
1634 ret = -ENOMEM;
1636 *str = NULL;
1637 return ret;
1639 EXPORT_SYMBOL_GPL(xdr_stream_decode_string_dup);