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Commit | Line | Data |
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e4d5639d AS |
1 | /* |
2 | * Helpers for getting linearized buffers from iov / filling buffers into iovs | |
3 | * | |
4 | * Copyright IBM, Corp. 2007, 2008 | |
5 | * Copyright (C) 2010 Red Hat, Inc. | |
6 | * | |
7 | * Author(s): | |
8 | * Anthony Liguori <[email protected]> | |
9 | * Amit Shah <[email protected]> | |
2278a69e | 10 | * Michael Tokarev <[email protected]> |
e4d5639d AS |
11 | * |
12 | * This work is licensed under the terms of the GNU GPL, version 2. See | |
13 | * the COPYING file in the top-level directory. | |
6b620ca3 PB |
14 | * |
15 | * Contributions after 2012-01-13 are licensed under the terms of the | |
16 | * GNU GPL, version 2 or (at your option) any later version. | |
e4d5639d AS |
17 | */ |
18 | ||
aafd7584 | 19 | #include "qemu/osdep.h" |
daf015ef | 20 | #include "qemu-common.h" |
1de7afc9 | 21 | #include "qemu/iov.h" |
cc99c6f5 | 22 | #include "qemu/sockets.h" |
f348b6d1 | 23 | #include "qemu/cutils.h" |
25e5e4c7 | 24 | |
ad523bca PB |
25 | size_t iov_from_buf_full(const struct iovec *iov, unsigned int iov_cnt, |
26 | size_t offset, const void *buf, size_t bytes) | |
e4d5639d | 27 | { |
2278a69e | 28 | size_t done; |
e4d5639d | 29 | unsigned int i; |
2278a69e MT |
30 | for (i = 0, done = 0; (offset || done < bytes) && i < iov_cnt; i++) { |
31 | if (offset < iov[i].iov_len) { | |
32 | size_t len = MIN(iov[i].iov_len - offset, bytes - done); | |
33 | memcpy(iov[i].iov_base + offset, buf + done, len); | |
34 | done += len; | |
35 | offset = 0; | |
36 | } else { | |
37 | offset -= iov[i].iov_len; | |
348e7b8d | 38 | } |
e4d5639d | 39 | } |
2278a69e MT |
40 | assert(offset == 0); |
41 | return done; | |
e4d5639d | 42 | } |
fa6111f2 | 43 | |
ad523bca PB |
44 | size_t iov_to_buf_full(const struct iovec *iov, const unsigned int iov_cnt, |
45 | size_t offset, void *buf, size_t bytes) | |
fa6111f2 | 46 | { |
2278a69e | 47 | size_t done; |
fa6111f2 | 48 | unsigned int i; |
2278a69e MT |
49 | for (i = 0, done = 0; (offset || done < bytes) && i < iov_cnt; i++) { |
50 | if (offset < iov[i].iov_len) { | |
51 | size_t len = MIN(iov[i].iov_len - offset, bytes - done); | |
52 | memcpy(buf + done, iov[i].iov_base + offset, len); | |
53 | done += len; | |
54 | offset = 0; | |
55 | } else { | |
56 | offset -= iov[i].iov_len; | |
fa6111f2 | 57 | } |
8d15028e | 58 | } |
2278a69e MT |
59 | assert(offset == 0); |
60 | return done; | |
8d15028e GH |
61 | } |
62 | ||
dcf6f5e1 | 63 | size_t iov_memset(const struct iovec *iov, const unsigned int iov_cnt, |
2278a69e | 64 | size_t offset, int fillc, size_t bytes) |
8d15028e | 65 | { |
2278a69e | 66 | size_t done; |
8d15028e | 67 | unsigned int i; |
2278a69e MT |
68 | for (i = 0, done = 0; (offset || done < bytes) && i < iov_cnt; i++) { |
69 | if (offset < iov[i].iov_len) { | |
70 | size_t len = MIN(iov[i].iov_len - offset, bytes - done); | |
71 | memset(iov[i].iov_base + offset, fillc, len); | |
72 | done += len; | |
73 | offset = 0; | |
74 | } else { | |
75 | offset -= iov[i].iov_len; | |
8d15028e | 76 | } |
fa6111f2 | 77 | } |
2278a69e MT |
78 | assert(offset == 0); |
79 | return done; | |
fa6111f2 AS |
80 | } |
81 | ||
348e7b8d | 82 | size_t iov_size(const struct iovec *iov, const unsigned int iov_cnt) |
fa6111f2 AS |
83 | { |
84 | size_t len; | |
85 | unsigned int i; | |
86 | ||
87 | len = 0; | |
348e7b8d | 88 | for (i = 0; i < iov_cnt; i++) { |
fa6111f2 AS |
89 | len += iov[i].iov_len; |
90 | } | |
91 | return len; | |
92 | } | |
3a1dca94 | 93 | |
25e5e4c7 MT |
94 | /* helper function for iov_send_recv() */ |
95 | static ssize_t | |
96 | do_send_recv(int sockfd, struct iovec *iov, unsigned iov_cnt, bool do_send) | |
97 | { | |
9adea5f7 | 98 | #ifdef CONFIG_POSIX |
25e5e4c7 MT |
99 | ssize_t ret; |
100 | struct msghdr msg; | |
101 | memset(&msg, 0, sizeof(msg)); | |
102 | msg.msg_iov = iov; | |
103 | msg.msg_iovlen = iov_cnt; | |
104 | do { | |
105 | ret = do_send | |
106 | ? sendmsg(sockfd, &msg, 0) | |
107 | : recvmsg(sockfd, &msg, 0); | |
108 | } while (ret < 0 && errno == EINTR); | |
109 | return ret; | |
110 | #else | |
111 | /* else send piece-by-piece */ | |
112 | /*XXX Note: windows has WSASend() and WSARecv() */ | |
c0958559 SW |
113 | unsigned i = 0; |
114 | ssize_t ret = 0; | |
115 | while (i < iov_cnt) { | |
25e5e4c7 MT |
116 | ssize_t r = do_send |
117 | ? send(sockfd, iov[i].iov_base, iov[i].iov_len, 0) | |
118 | : recv(sockfd, iov[i].iov_base, iov[i].iov_len, 0); | |
119 | if (r > 0) { | |
120 | ret += r; | |
121 | } else if (!r) { | |
122 | break; | |
123 | } else if (errno == EINTR) { | |
124 | continue; | |
125 | } else { | |
126 | /* else it is some "other" error, | |
127 | * only return if there was no data processed. */ | |
128 | if (ret == 0) { | |
c0958559 | 129 | ret = -1; |
25e5e4c7 MT |
130 | } |
131 | break; | |
132 | } | |
c0958559 | 133 | i++; |
25e5e4c7 | 134 | } |
c0958559 | 135 | return ret; |
25e5e4c7 MT |
136 | #endif |
137 | } | |
138 | ||
6b64640d | 139 | ssize_t iov_send_recv(int sockfd, const struct iovec *_iov, unsigned iov_cnt, |
25e5e4c7 MT |
140 | size_t offset, size_t bytes, |
141 | bool do_send) | |
142 | { | |
83f75c26 | 143 | ssize_t total = 0; |
25e5e4c7 | 144 | ssize_t ret; |
5209d675 | 145 | size_t orig_len, tail; |
f48869ad | 146 | unsigned niov; |
6b64640d WC |
147 | struct iovec *local_iov, *iov; |
148 | ||
149 | if (bytes <= 0) { | |
150 | return 0; | |
151 | } | |
152 | ||
153 | local_iov = g_new0(struct iovec, iov_cnt); | |
154 | iov_copy(local_iov, iov_cnt, _iov, iov_cnt, offset, bytes); | |
155 | offset = 0; | |
156 | iov = local_iov; | |
5209d675 | 157 | |
83f75c26 PB |
158 | while (bytes > 0) { |
159 | /* Find the start position, skipping `offset' bytes: | |
160 | * first, skip all full-sized vector elements, */ | |
161 | for (niov = 0; niov < iov_cnt && offset >= iov[niov].iov_len; ++niov) { | |
162 | offset -= iov[niov].iov_len; | |
163 | } | |
cb6247a7 | 164 | |
83f75c26 PB |
165 | /* niov == iov_cnt would only be valid if bytes == 0, which |
166 | * we already ruled out in the loop condition. */ | |
f48869ad | 167 | assert(niov < iov_cnt); |
83f75c26 PB |
168 | iov += niov; |
169 | iov_cnt -= niov; | |
170 | ||
171 | if (offset) { | |
172 | /* second, skip `offset' bytes from the (now) first element, | |
173 | * undo it on exit */ | |
174 | iov[0].iov_base += offset; | |
175 | iov[0].iov_len -= offset; | |
176 | } | |
177 | /* Find the end position skipping `bytes' bytes: */ | |
178 | /* first, skip all full-sized elements */ | |
179 | tail = bytes; | |
180 | for (niov = 0; niov < iov_cnt && iov[niov].iov_len <= tail; ++niov) { | |
181 | tail -= iov[niov].iov_len; | |
182 | } | |
183 | if (tail) { | |
184 | /* second, fixup the last element, and remember the original | |
185 | * length */ | |
186 | assert(niov < iov_cnt); | |
187 | assert(iov[niov].iov_len > tail); | |
188 | orig_len = iov[niov].iov_len; | |
189 | iov[niov++].iov_len = tail; | |
2be178a4 MT |
190 | ret = do_send_recv(sockfd, iov, niov, do_send); |
191 | /* Undo the changes above before checking for errors */ | |
83f75c26 | 192 | iov[niov-1].iov_len = orig_len; |
2be178a4 MT |
193 | } else { |
194 | ret = do_send_recv(sockfd, iov, niov, do_send); | |
83f75c26 PB |
195 | } |
196 | if (offset) { | |
197 | iov[0].iov_base -= offset; | |
198 | iov[0].iov_len += offset; | |
199 | } | |
200 | ||
201 | if (ret < 0) { | |
202 | assert(errno != EINTR); | |
6b64640d | 203 | g_free(local_iov); |
83f75c26 PB |
204 | if (errno == EAGAIN && total > 0) { |
205 | return total; | |
206 | } | |
207 | return -1; | |
208 | } | |
209 | ||
84004290 MK |
210 | if (ret == 0 && !do_send) { |
211 | /* recv returns 0 when the peer has performed an orderly | |
212 | * shutdown. */ | |
213 | break; | |
214 | } | |
215 | ||
83f75c26 PB |
216 | /* Prepare for the next iteration */ |
217 | offset += ret; | |
218 | total += ret; | |
219 | bytes -= ret; | |
25e5e4c7 | 220 | } |
25e5e4c7 | 221 | |
6b64640d | 222 | g_free(local_iov); |
83f75c26 | 223 | return total; |
25e5e4c7 MT |
224 | } |
225 | ||
226 | ||
3a1dca94 GH |
227 | void iov_hexdump(const struct iovec *iov, const unsigned int iov_cnt, |
228 | FILE *fp, const char *prefix, size_t limit) | |
229 | { | |
6ff66f50 PC |
230 | int v; |
231 | size_t size = 0; | |
232 | char *buf; | |
233 | ||
234 | for (v = 0; v < iov_cnt; v++) { | |
235 | size += iov[v].iov_len; | |
3a1dca94 | 236 | } |
6ff66f50 PC |
237 | size = size > limit ? limit : size; |
238 | buf = g_malloc(size); | |
239 | iov_to_buf(iov, iov_cnt, 0, buf, size); | |
3568ac2a | 240 | qemu_hexdump(buf, fp, prefix, size); |
6ff66f50 | 241 | g_free(buf); |
3a1dca94 | 242 | } |
0191253c | 243 | |
d336336c MT |
244 | unsigned iov_copy(struct iovec *dst_iov, unsigned int dst_iov_cnt, |
245 | const struct iovec *iov, unsigned int iov_cnt, | |
246 | size_t offset, size_t bytes) | |
247 | { | |
248 | size_t len; | |
249 | unsigned int i, j; | |
e911765c SL |
250 | for (i = 0, j = 0; |
251 | i < iov_cnt && j < dst_iov_cnt && (offset || bytes); i++) { | |
d336336c MT |
252 | if (offset >= iov[i].iov_len) { |
253 | offset -= iov[i].iov_len; | |
254 | continue; | |
255 | } | |
256 | len = MIN(bytes, iov[i].iov_len - offset); | |
257 | ||
258 | dst_iov[j].iov_base = iov[i].iov_base + offset; | |
259 | dst_iov[j].iov_len = len; | |
260 | j++; | |
261 | bytes -= len; | |
262 | offset = 0; | |
263 | } | |
264 | assert(offset == 0); | |
265 | return j; | |
266 | } | |
f563a5d7 | 267 | |
0191253c PB |
268 | /* io vectors */ |
269 | ||
270 | void qemu_iovec_init(QEMUIOVector *qiov, int alloc_hint) | |
271 | { | |
e1cf5582 | 272 | qiov->iov = g_new(struct iovec, alloc_hint); |
0191253c PB |
273 | qiov->niov = 0; |
274 | qiov->nalloc = alloc_hint; | |
275 | qiov->size = 0; | |
276 | } | |
277 | ||
278 | void qemu_iovec_init_external(QEMUIOVector *qiov, struct iovec *iov, int niov) | |
279 | { | |
280 | int i; | |
281 | ||
282 | qiov->iov = iov; | |
283 | qiov->niov = niov; | |
284 | qiov->nalloc = -1; | |
285 | qiov->size = 0; | |
286 | for (i = 0; i < niov; i++) | |
287 | qiov->size += iov[i].iov_len; | |
288 | } | |
289 | ||
290 | void qemu_iovec_add(QEMUIOVector *qiov, void *base, size_t len) | |
291 | { | |
292 | assert(qiov->nalloc != -1); | |
293 | ||
294 | if (qiov->niov == qiov->nalloc) { | |
295 | qiov->nalloc = 2 * qiov->nalloc + 1; | |
e1cf5582 | 296 | qiov->iov = g_renew(struct iovec, qiov->iov, qiov->nalloc); |
0191253c PB |
297 | } |
298 | qiov->iov[qiov->niov].iov_base = base; | |
299 | qiov->iov[qiov->niov].iov_len = len; | |
300 | qiov->size += len; | |
301 | ++qiov->niov; | |
302 | } | |
303 | ||
304 | /* | |
530c0bbd | 305 | * Concatenates (partial) iovecs from src_iov to the end of dst. |
0191253c PB |
306 | * It starts copying after skipping `soffset' bytes at the |
307 | * beginning of src and adds individual vectors from src to | |
308 | * dst copies up to `sbytes' bytes total, or up to the end | |
530c0bbd | 309 | * of src_iov if it comes first. This way, it is okay to specify |
0191253c PB |
310 | * very large value for `sbytes' to indicate "up to the end |
311 | * of src". | |
312 | * Only vector pointers are processed, not the actual data buffers. | |
313 | */ | |
519661ee PB |
314 | size_t qemu_iovec_concat_iov(QEMUIOVector *dst, |
315 | struct iovec *src_iov, unsigned int src_cnt, | |
316 | size_t soffset, size_t sbytes) | |
0191253c PB |
317 | { |
318 | int i; | |
319 | size_t done; | |
facf98ad AK |
320 | |
321 | if (!sbytes) { | |
519661ee | 322 | return 0; |
facf98ad | 323 | } |
0191253c | 324 | assert(dst->nalloc != -1); |
530c0bbd SH |
325 | for (i = 0, done = 0; done < sbytes && i < src_cnt; i++) { |
326 | if (soffset < src_iov[i].iov_len) { | |
327 | size_t len = MIN(src_iov[i].iov_len - soffset, sbytes - done); | |
328 | qemu_iovec_add(dst, src_iov[i].iov_base + soffset, len); | |
0191253c PB |
329 | done += len; |
330 | soffset = 0; | |
331 | } else { | |
530c0bbd | 332 | soffset -= src_iov[i].iov_len; |
0191253c PB |
333 | } |
334 | } | |
530c0bbd | 335 | assert(soffset == 0); /* offset beyond end of src */ |
519661ee PB |
336 | |
337 | return done; | |
530c0bbd SH |
338 | } |
339 | ||
340 | /* | |
341 | * Concatenates (partial) iovecs from src to the end of dst. | |
342 | * It starts copying after skipping `soffset' bytes at the | |
343 | * beginning of src and adds individual vectors from src to | |
344 | * dst copies up to `sbytes' bytes total, or up to the end | |
345 | * of src if it comes first. This way, it is okay to specify | |
346 | * very large value for `sbytes' to indicate "up to the end | |
347 | * of src". | |
348 | * Only vector pointers are processed, not the actual data buffers. | |
349 | */ | |
350 | void qemu_iovec_concat(QEMUIOVector *dst, | |
351 | QEMUIOVector *src, size_t soffset, size_t sbytes) | |
352 | { | |
353 | qemu_iovec_concat_iov(dst, src->iov, src->niov, soffset, sbytes); | |
0191253c PB |
354 | } |
355 | ||
d953169d VSO |
356 | /* |
357 | * qiov_find_iov | |
358 | * | |
359 | * Return pointer to iovec structure, where byte at @offset in original vector | |
360 | * @iov exactly is. | |
361 | * Set @remaining_offset to be offset inside that iovec to the same byte. | |
362 | */ | |
363 | static struct iovec *iov_skip_offset(struct iovec *iov, size_t offset, | |
364 | size_t *remaining_offset) | |
365 | { | |
366 | while (offset > 0 && offset >= iov->iov_len) { | |
367 | offset -= iov->iov_len; | |
368 | iov++; | |
369 | } | |
370 | *remaining_offset = offset; | |
371 | ||
372 | return iov; | |
373 | } | |
374 | ||
375 | /* | |
376 | * qiov_slice | |
377 | * | |
378 | * Find subarray of iovec's, containing requested range. @head would | |
379 | * be offset in first iov (returned by the function), @tail would be | |
380 | * count of extra bytes in last iovec (returned iov + @niov - 1). | |
381 | */ | |
382 | static struct iovec *qiov_slice(QEMUIOVector *qiov, | |
383 | size_t offset, size_t len, | |
384 | size_t *head, size_t *tail, int *niov) | |
385 | { | |
386 | struct iovec *iov, *end_iov; | |
387 | ||
388 | assert(offset + len <= qiov->size); | |
389 | ||
390 | iov = iov_skip_offset(qiov->iov, offset, head); | |
391 | end_iov = iov_skip_offset(iov, *head + len, tail); | |
392 | ||
393 | if (*tail > 0) { | |
394 | assert(*tail < end_iov->iov_len); | |
395 | *tail = end_iov->iov_len - *tail; | |
396 | end_iov++; | |
397 | } | |
398 | ||
399 | *niov = end_iov - iov; | |
400 | ||
401 | return iov; | |
402 | } | |
403 | ||
5396234b VSO |
404 | int qemu_iovec_subvec_niov(QEMUIOVector *qiov, size_t offset, size_t len) |
405 | { | |
406 | size_t head, tail; | |
407 | int niov; | |
408 | ||
409 | qiov_slice(qiov, offset, len, &head, &tail, &niov); | |
410 | ||
411 | return niov; | |
412 | } | |
413 | ||
d953169d VSO |
414 | /* |
415 | * Compile new iovec, combining @head_buf buffer, sub-qiov of @mid_qiov, | |
416 | * and @tail_buf buffer into new qiov. | |
417 | */ | |
418 | void qemu_iovec_init_extended( | |
419 | QEMUIOVector *qiov, | |
420 | void *head_buf, size_t head_len, | |
421 | QEMUIOVector *mid_qiov, size_t mid_offset, size_t mid_len, | |
422 | void *tail_buf, size_t tail_len) | |
423 | { | |
424 | size_t mid_head, mid_tail; | |
425 | int total_niov, mid_niov = 0; | |
d38d6de2 | 426 | struct iovec *p, *mid_iov = NULL; |
d953169d VSO |
427 | |
428 | if (mid_len) { | |
429 | mid_iov = qiov_slice(mid_qiov, mid_offset, mid_len, | |
430 | &mid_head, &mid_tail, &mid_niov); | |
431 | } | |
432 | ||
433 | total_niov = !!head_len + mid_niov + !!tail_len; | |
434 | if (total_niov == 1) { | |
435 | qemu_iovec_init_buf(qiov, NULL, 0); | |
436 | p = &qiov->local_iov; | |
437 | } else { | |
438 | qiov->niov = qiov->nalloc = total_niov; | |
439 | qiov->size = head_len + mid_len + tail_len; | |
440 | p = qiov->iov = g_new(struct iovec, qiov->niov); | |
441 | } | |
442 | ||
443 | if (head_len) { | |
444 | p->iov_base = head_buf; | |
445 | p->iov_len = head_len; | |
446 | p++; | |
447 | } | |
448 | ||
d38d6de2 VSO |
449 | assert(!mid_niov == !mid_len); |
450 | if (mid_niov) { | |
d953169d VSO |
451 | memcpy(p, mid_iov, mid_niov * sizeof(*p)); |
452 | p[0].iov_base = (uint8_t *)p[0].iov_base + mid_head; | |
453 | p[0].iov_len -= mid_head; | |
454 | p[mid_niov - 1].iov_len -= mid_tail; | |
455 | p += mid_niov; | |
456 | } | |
457 | ||
458 | if (tail_len) { | |
459 | p->iov_base = tail_buf; | |
460 | p->iov_len = tail_len; | |
461 | } | |
462 | } | |
463 | ||
43f35cb5 | 464 | /* |
f76889e7 | 465 | * Check if the contents of subrange of qiov data is all zeroes. |
43f35cb5 | 466 | */ |
f76889e7 | 467 | bool qemu_iovec_is_zero(QEMUIOVector *qiov, size_t offset, size_t bytes) |
43f35cb5 | 468 | { |
f76889e7 VSO |
469 | struct iovec *iov; |
470 | size_t current_offset; | |
471 | ||
472 | assert(offset + bytes <= qiov->size); | |
473 | ||
474 | iov = iov_skip_offset(qiov->iov, offset, ¤t_offset); | |
475 | ||
476 | while (bytes) { | |
477 | uint8_t *base = (uint8_t *)iov->iov_base + current_offset; | |
478 | size_t len = MIN(iov->iov_len - current_offset, bytes); | |
479 | ||
480 | if (!buffer_is_zero(base, len)) { | |
43f35cb5 PL |
481 | return false; |
482 | } | |
f76889e7 VSO |
483 | |
484 | current_offset = 0; | |
485 | bytes -= len; | |
486 | iov++; | |
43f35cb5 | 487 | } |
f76889e7 | 488 | |
43f35cb5 PL |
489 | return true; |
490 | } | |
491 | ||
d953169d VSO |
492 | void qemu_iovec_init_slice(QEMUIOVector *qiov, QEMUIOVector *source, |
493 | size_t offset, size_t len) | |
494 | { | |
495 | qemu_iovec_init_extended(qiov, NULL, 0, source, offset, len, NULL, 0); | |
496 | } | |
497 | ||
0191253c PB |
498 | void qemu_iovec_destroy(QEMUIOVector *qiov) |
499 | { | |
d953169d VSO |
500 | if (qiov->nalloc != -1) { |
501 | g_free(qiov->iov); | |
502 | } | |
0191253c | 503 | |
d953169d | 504 | memset(qiov, 0, sizeof(*qiov)); |
0191253c PB |
505 | } |
506 | ||
507 | void qemu_iovec_reset(QEMUIOVector *qiov) | |
508 | { | |
509 | assert(qiov->nalloc != -1); | |
510 | ||
511 | qiov->niov = 0; | |
512 | qiov->size = 0; | |
513 | } | |
514 | ||
515 | size_t qemu_iovec_to_buf(QEMUIOVector *qiov, size_t offset, | |
516 | void *buf, size_t bytes) | |
517 | { | |
518 | return iov_to_buf(qiov->iov, qiov->niov, offset, buf, bytes); | |
519 | } | |
520 | ||
521 | size_t qemu_iovec_from_buf(QEMUIOVector *qiov, size_t offset, | |
522 | const void *buf, size_t bytes) | |
523 | { | |
524 | return iov_from_buf(qiov->iov, qiov->niov, offset, buf, bytes); | |
525 | } | |
526 | ||
527 | size_t qemu_iovec_memset(QEMUIOVector *qiov, size_t offset, | |
528 | int fillc, size_t bytes) | |
529 | { | |
530 | return iov_memset(qiov->iov, qiov->niov, offset, fillc, bytes); | |
531 | } | |
d0277635 | 532 | |
f70d7f7e BC |
533 | /** |
534 | * Check that I/O vector contents are identical | |
535 | * | |
536 | * The IO vectors must have the same structure (same length of all parts). | |
537 | * A typical usage is to compare vectors created with qemu_iovec_clone(). | |
538 | * | |
539 | * @a: I/O vector | |
540 | * @b: I/O vector | |
541 | * @ret: Offset to first mismatching byte or -1 if match | |
542 | */ | |
543 | ssize_t qemu_iovec_compare(QEMUIOVector *a, QEMUIOVector *b) | |
544 | { | |
545 | int i; | |
546 | ssize_t offset = 0; | |
547 | ||
548 | assert(a->niov == b->niov); | |
549 | for (i = 0; i < a->niov; i++) { | |
550 | size_t len = 0; | |
551 | uint8_t *p = (uint8_t *)a->iov[i].iov_base; | |
552 | uint8_t *q = (uint8_t *)b->iov[i].iov_base; | |
553 | ||
554 | assert(a->iov[i].iov_len == b->iov[i].iov_len); | |
555 | while (len < a->iov[i].iov_len && *p++ == *q++) { | |
556 | len++; | |
557 | } | |
558 | ||
559 | offset += len; | |
560 | ||
561 | if (len != a->iov[i].iov_len) { | |
562 | return offset; | |
563 | } | |
564 | } | |
565 | return -1; | |
566 | } | |
567 | ||
568 | typedef struct { | |
569 | int src_index; | |
570 | struct iovec *src_iov; | |
571 | void *dest_base; | |
572 | } IOVectorSortElem; | |
573 | ||
574 | static int sortelem_cmp_src_base(const void *a, const void *b) | |
575 | { | |
576 | const IOVectorSortElem *elem_a = a; | |
577 | const IOVectorSortElem *elem_b = b; | |
578 | ||
579 | /* Don't overflow */ | |
580 | if (elem_a->src_iov->iov_base < elem_b->src_iov->iov_base) { | |
581 | return -1; | |
582 | } else if (elem_a->src_iov->iov_base > elem_b->src_iov->iov_base) { | |
583 | return 1; | |
584 | } else { | |
585 | return 0; | |
586 | } | |
587 | } | |
588 | ||
589 | static int sortelem_cmp_src_index(const void *a, const void *b) | |
590 | { | |
591 | const IOVectorSortElem *elem_a = a; | |
592 | const IOVectorSortElem *elem_b = b; | |
593 | ||
594 | return elem_a->src_index - elem_b->src_index; | |
595 | } | |
596 | ||
597 | /** | |
598 | * Copy contents of I/O vector | |
599 | * | |
600 | * The relative relationships of overlapping iovecs are preserved. This is | |
601 | * necessary to ensure identical semantics in the cloned I/O vector. | |
602 | */ | |
603 | void qemu_iovec_clone(QEMUIOVector *dest, const QEMUIOVector *src, void *buf) | |
604 | { | |
605 | IOVectorSortElem sortelems[src->niov]; | |
606 | void *last_end; | |
607 | int i; | |
608 | ||
609 | /* Sort by source iovecs by base address */ | |
610 | for (i = 0; i < src->niov; i++) { | |
611 | sortelems[i].src_index = i; | |
612 | sortelems[i].src_iov = &src->iov[i]; | |
613 | } | |
614 | qsort(sortelems, src->niov, sizeof(sortelems[0]), sortelem_cmp_src_base); | |
615 | ||
616 | /* Allocate buffer space taking into account overlapping iovecs */ | |
617 | last_end = NULL; | |
618 | for (i = 0; i < src->niov; i++) { | |
619 | struct iovec *cur = sortelems[i].src_iov; | |
620 | ptrdiff_t rewind = 0; | |
621 | ||
622 | /* Detect overlap */ | |
623 | if (last_end && last_end > cur->iov_base) { | |
624 | rewind = last_end - cur->iov_base; | |
625 | } | |
626 | ||
627 | sortelems[i].dest_base = buf - rewind; | |
628 | buf += cur->iov_len - MIN(rewind, cur->iov_len); | |
629 | last_end = MAX(cur->iov_base + cur->iov_len, last_end); | |
630 | } | |
631 | ||
632 | /* Sort by source iovec index and build destination iovec */ | |
633 | qsort(sortelems, src->niov, sizeof(sortelems[0]), sortelem_cmp_src_index); | |
634 | for (i = 0; i < src->niov; i++) { | |
635 | qemu_iovec_add(dest, sortelems[i].dest_base, src->iov[i].iov_len); | |
636 | } | |
637 | } | |
638 | ||
d0277635 SH |
639 | size_t iov_discard_front(struct iovec **iov, unsigned int *iov_cnt, |
640 | size_t bytes) | |
641 | { | |
642 | size_t total = 0; | |
643 | struct iovec *cur; | |
644 | ||
645 | for (cur = *iov; *iov_cnt > 0; cur++) { | |
646 | if (cur->iov_len > bytes) { | |
647 | cur->iov_base += bytes; | |
648 | cur->iov_len -= bytes; | |
649 | total += bytes; | |
650 | break; | |
651 | } | |
652 | ||
653 | bytes -= cur->iov_len; | |
654 | total += cur->iov_len; | |
655 | *iov_cnt -= 1; | |
656 | } | |
657 | ||
658 | *iov = cur; | |
659 | return total; | |
660 | } | |
661 | ||
662 | size_t iov_discard_back(struct iovec *iov, unsigned int *iov_cnt, | |
663 | size_t bytes) | |
664 | { | |
665 | size_t total = 0; | |
666 | struct iovec *cur; | |
667 | ||
668 | if (*iov_cnt == 0) { | |
669 | return 0; | |
670 | } | |
671 | ||
672 | cur = iov + (*iov_cnt - 1); | |
673 | ||
674 | while (*iov_cnt > 0) { | |
675 | if (cur->iov_len > bytes) { | |
676 | cur->iov_len -= bytes; | |
677 | total += bytes; | |
678 | break; | |
679 | } | |
680 | ||
681 | bytes -= cur->iov_len; | |
682 | total += cur->iov_len; | |
683 | cur--; | |
684 | *iov_cnt -= 1; | |
685 | } | |
686 | ||
687 | return total; | |
688 | } | |
58f423fb KW |
689 | |
690 | void qemu_iovec_discard_back(QEMUIOVector *qiov, size_t bytes) | |
691 | { | |
692 | size_t total; | |
693 | unsigned int niov = qiov->niov; | |
694 | ||
695 | assert(qiov->size >= bytes); | |
696 | total = iov_discard_back(qiov->iov, &niov, bytes); | |
697 | assert(total == bytes); | |
698 | ||
699 | qiov->niov = niov; | |
700 | qiov->size -= bytes; | |
701 | } |