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1 /*
2 * Copyright 1995-2016 The OpenSSL Project Authors. All Rights Reserved.
3 *
4 * Licensed under the OpenSSL license (the "License"). You may not use
5 * this file except in compliance with the License. You can obtain a copy
6 * in the file LICENSE in the source distribution or at
7 * https://www.openssl.org/source/license.html
8 */
9
10 #include <stdio.h>
11 #include <limits.h>
12 #include <errno.h>
13 #define USE_SOCKETS
14 #include "../ssl_locl.h"
15 #include <openssl/evp.h>
16 #include <openssl/buffer.h>
17 #include <openssl/rand.h>
18 #include "record_locl.h"
19
20 #ifndef EVP_CIPH_FLAG_TLS1_1_MULTIBLOCK
21 # define EVP_CIPH_FLAG_TLS1_1_MULTIBLOCK 0
22 #endif
23
24 #if defined(OPENSSL_SMALL_FOOTPRINT) || \
25 !( defined(AES_ASM) && ( \
26 defined(__x86_64) || defined(__x86_64__) || \
27 defined(_M_AMD64) || defined(_M_X64) ) \
28 )
29 # undef EVP_CIPH_FLAG_TLS1_1_MULTIBLOCK
30 # define EVP_CIPH_FLAG_TLS1_1_MULTIBLOCK 0
31 #endif
32
33 void RECORD_LAYER_init(RECORD_LAYER *rl, SSL *s)
34 {
35 rl->s = s;
36 RECORD_LAYER_set_first_record(&s->rlayer);
37 SSL3_RECORD_clear(rl->rrec, SSL_MAX_PIPELINES);
38 }
39
40 void RECORD_LAYER_clear(RECORD_LAYER *rl)
41 {
42 unsigned int pipes;
43
44 rl->rstate = SSL_ST_READ_HEADER;
45
46 /*
47 * Do I need to clear read_ahead? As far as I can tell read_ahead did not
48 * previously get reset by SSL_clear...so I'll keep it that way..but is
49 * that right?
50 */
51
52 rl->packet = NULL;
53 rl->packet_length = 0;
54 rl->wnum = 0;
55 memset(rl->alert_fragment, 0, sizeof(rl->alert_fragment));
56 rl->alert_fragment_len = 0;
57 memset(rl->handshake_fragment, 0, sizeof(rl->handshake_fragment));
58 rl->handshake_fragment_len = 0;
59 rl->wpend_tot = 0;
60 rl->wpend_type = 0;
61 rl->wpend_ret = 0;
62 rl->wpend_buf = NULL;
63
64 SSL3_BUFFER_clear(&rl->rbuf);
65 for (pipes = 0; pipes < rl->numwpipes; pipes++)
66 SSL3_BUFFER_clear(&rl->wbuf[pipes]);
67 rl->numwpipes = 0;
68 rl->numrpipes = 0;
69 SSL3_RECORD_clear(rl->rrec, SSL_MAX_PIPELINES);
70
71 RECORD_LAYER_reset_read_sequence(rl);
72 RECORD_LAYER_reset_write_sequence(rl);
73
74 if (rl->d)
75 DTLS_RECORD_LAYER_clear(rl);
76 }
77
78 void RECORD_LAYER_release(RECORD_LAYER *rl)
79 {
80 if (SSL3_BUFFER_is_initialised(&rl->rbuf))
81 ssl3_release_read_buffer(rl->s);
82 if (rl->numwpipes > 0)
83 ssl3_release_write_buffer(rl->s);
84 SSL3_RECORD_release(rl->rrec, SSL_MAX_PIPELINES);
85 }
86
87 int RECORD_LAYER_read_pending(const RECORD_LAYER *rl)
88 {
89 return SSL3_BUFFER_get_left(&rl->rbuf) != 0;
90 }
91
92 int RECORD_LAYER_write_pending(const RECORD_LAYER *rl)
93 {
94 return (rl->numwpipes > 0)
95 && SSL3_BUFFER_get_left(&rl->wbuf[rl->numwpipes - 1]) != 0;
96 }
97
98 int RECORD_LAYER_set_data(RECORD_LAYER *rl, const unsigned char *buf,
99 size_t len)
100 {
101 rl->packet_length = len;
102 if (len != 0) {
103 rl->rstate = SSL_ST_READ_HEADER;
104 if (!SSL3_BUFFER_is_initialised(&rl->rbuf))
105 if (!ssl3_setup_read_buffer(rl->s))
106 return 0;
107 }
108
109 rl->packet = SSL3_BUFFER_get_buf(&rl->rbuf);
110 SSL3_BUFFER_set_data(&rl->rbuf, buf, len);
111
112 return 1;
113 }
114
115 void RECORD_LAYER_reset_read_sequence(RECORD_LAYER *rl)
116 {
117 memset(rl->read_sequence, 0, sizeof(rl->read_sequence));
118 }
119
120 void RECORD_LAYER_reset_write_sequence(RECORD_LAYER *rl)
121 {
122 memset(rl->write_sequence, 0, sizeof(rl->write_sequence));
123 }
124
125 size_t ssl3_pending(const SSL *s)
126 {
127 size_t i, num = 0;
128
129 if (s->rlayer.rstate == SSL_ST_READ_BODY)
130 return 0;
131
132 for (i = 0; i < RECORD_LAYER_get_numrpipes(&s->rlayer); i++) {
133 if (SSL3_RECORD_get_type(&s->rlayer.rrec[i])
134 != SSL3_RT_APPLICATION_DATA)
135 return 0;
136 num += SSL3_RECORD_get_length(&s->rlayer.rrec[i]);
137 }
138
139 return num;
140 }
141
142 void SSL_CTX_set_default_read_buffer_len(SSL_CTX *ctx, size_t len)
143 {
144 ctx->default_read_buf_len = len;
145 }
146
147 void SSL_set_default_read_buffer_len(SSL *s, size_t len)
148 {
149 SSL3_BUFFER_set_default_len(RECORD_LAYER_get_rbuf(&s->rlayer), len);
150 }
151
152 const char *SSL_rstate_string_long(const SSL *s)
153 {
154 switch (s->rlayer.rstate) {
155 case SSL_ST_READ_HEADER:
156 return "read header";
157 case SSL_ST_READ_BODY:
158 return "read body";
159 case SSL_ST_READ_DONE:
160 return "read done";
161 default:
162 return "unknown";
163 }
164 }
165
166 const char *SSL_rstate_string(const SSL *s)
167 {
168 switch (s->rlayer.rstate) {
169 case SSL_ST_READ_HEADER:
170 return "RH";
171 case SSL_ST_READ_BODY:
172 return "RB";
173 case SSL_ST_READ_DONE:
174 return "RD";
175 default:
176 return "unknown";
177 }
178 }
179
180 /*
181 * Return values are as per SSL_read()
182 */
183 int ssl3_read_n(SSL *s, size_t n, size_t max, int extend, int clearold,
184 size_t *readbytes)
185 {
186 /*
187 * If extend == 0, obtain new n-byte packet; if extend == 1, increase
188 * packet by another n bytes. The packet will be in the sub-array of
189 * s->s3->rbuf.buf specified by s->packet and s->packet_length. (If
190 * s->rlayer.read_ahead is set, 'max' bytes may be stored in rbuf [plus
191 * s->packet_length bytes if extend == 1].)
192 * if clearold == 1, move the packet to the start of the buffer; if
193 * clearold == 0 then leave any old packets where they were
194 */
195 size_t len, left, align = 0;
196 unsigned char *pkt;
197 SSL3_BUFFER *rb;
198
199 if (n == 0)
200 return 0;
201
202 rb = &s->rlayer.rbuf;
203 if (rb->buf == NULL)
204 if (!ssl3_setup_read_buffer(s))
205 return -1;
206
207 left = rb->left;
208 #if defined(SSL3_ALIGN_PAYLOAD) && SSL3_ALIGN_PAYLOAD!=0
209 align = (size_t)rb->buf + SSL3_RT_HEADER_LENGTH;
210 align = SSL3_ALIGN_PAYLOAD - 1 - ((align - 1) % SSL3_ALIGN_PAYLOAD);
211 #endif
212
213 if (!extend) {
214 /* start with empty packet ... */
215 if (left == 0)
216 rb->offset = align;
217 else if (align != 0 && left >= SSL3_RT_HEADER_LENGTH) {
218 /*
219 * check if next packet length is large enough to justify payload
220 * alignment...
221 */
222 pkt = rb->buf + rb->offset;
223 if (pkt[0] == SSL3_RT_APPLICATION_DATA
224 && (pkt[3] << 8 | pkt[4]) >= 128) {
225 /*
226 * Note that even if packet is corrupted and its length field
227 * is insane, we can only be led to wrong decision about
228 * whether memmove will occur or not. Header values has no
229 * effect on memmove arguments and therefore no buffer
230 * overrun can be triggered.
231 */
232 memmove(rb->buf + align, pkt, left);
233 rb->offset = align;
234 }
235 }
236 s->rlayer.packet = rb->buf + rb->offset;
237 s->rlayer.packet_length = 0;
238 /* ... now we can act as if 'extend' was set */
239 }
240
241 len = s->rlayer.packet_length;
242 pkt = rb->buf + align;
243 /*
244 * Move any available bytes to front of buffer: 'len' bytes already
245 * pointed to by 'packet', 'left' extra ones at the end
246 */
247 if (s->rlayer.packet != pkt && clearold == 1) {
248 memmove(pkt, s->rlayer.packet, len + left);
249 s->rlayer.packet = pkt;
250 rb->offset = len + align;
251 }
252
253 /*
254 * For DTLS/UDP reads should not span multiple packets because the read
255 * operation returns the whole packet at once (as long as it fits into
256 * the buffer).
257 */
258 if (SSL_IS_DTLS(s)) {
259 if (left == 0 && extend)
260 return 0;
261 if (left > 0 && n > left)
262 n = left;
263 }
264
265 /* if there is enough in the buffer from a previous read, take some */
266 if (left >= n) {
267 s->rlayer.packet_length += n;
268 rb->left = left - n;
269 rb->offset += n;
270 *readbytes = n;
271 return 1;
272 }
273
274 /* else we need to read more data */
275
276 if (n > rb->len - rb->offset) { /* does not happen */
277 SSLerr(SSL_F_SSL3_READ_N, ERR_R_INTERNAL_ERROR);
278 return -1;
279 }
280
281 /* We always act like read_ahead is set for DTLS */
282 if (!s->rlayer.read_ahead && !SSL_IS_DTLS(s))
283 /* ignore max parameter */
284 max = n;
285 else {
286 if (max < n)
287 max = n;
288 if (max > rb->len - rb->offset)
289 max = rb->len - rb->offset;
290 }
291
292 while (left < n) {
293 size_t bioread = 0;
294 int ret;
295
296 /*
297 * Now we have len+left bytes at the front of s->s3->rbuf.buf and
298 * need to read in more until we have len+n (up to len+max if
299 * possible)
300 */
301
302 clear_sys_error();
303 if (s->rbio != NULL) {
304 s->rwstate = SSL_READING;
305 /* TODO(size_t): Convert this function */
306 ret = BIO_read(s->rbio, pkt + len + left, max - left);
307 if (ret >= 0)
308 bioread = ret;
309 } else {
310 SSLerr(SSL_F_SSL3_READ_N, SSL_R_READ_BIO_NOT_SET);
311 ret = -1;
312 }
313
314 if (ret <= 0) {
315 rb->left = left;
316 if (s->mode & SSL_MODE_RELEASE_BUFFERS && !SSL_IS_DTLS(s))
317 if (len + left == 0)
318 ssl3_release_read_buffer(s);
319 return ret;
320 }
321 left += bioread;
322 /*
323 * reads should *never* span multiple packets for DTLS because the
324 * underlying transport protocol is message oriented as opposed to
325 * byte oriented as in the TLS case.
326 */
327 if (SSL_IS_DTLS(s)) {
328 if (n > left)
329 n = left; /* makes the while condition false */
330 }
331 }
332
333 /* done reading, now the book-keeping */
334 rb->offset += n;
335 rb->left = left - n;
336 s->rlayer.packet_length += n;
337 s->rwstate = SSL_NOTHING;
338 *readbytes = n;
339 return 1;
340 }
341
342 /*
343 * Call this to write data in records of type 'type' It will return <= 0 if
344 * not all data has been sent or non-blocking IO.
345 */
346 int ssl3_write_bytes(SSL *s, int type, const void *buf_, size_t len,
347 size_t *written)
348 {
349 const unsigned char *buf = buf_;
350 size_t tot;
351 size_t n, split_send_fragment, maxpipes;
352 #if !defined(OPENSSL_NO_MULTIBLOCK) && EVP_CIPH_FLAG_TLS1_1_MULTIBLOCK
353 size_t max_send_fragment, nw;
354 #endif
355 SSL3_BUFFER *wb = &s->rlayer.wbuf[0];
356 int i;
357 size_t tmpwrit;
358
359 s->rwstate = SSL_NOTHING;
360 tot = s->rlayer.wnum;
361 /*
362 * ensure that if we end up with a smaller value of data to write out
363 * than the the original len from a write which didn't complete for
364 * non-blocking I/O and also somehow ended up avoiding the check for
365 * this in ssl3_write_pending/SSL_R_BAD_WRITE_RETRY as it must never be
366 * possible to end up with (len-tot) as a large number that will then
367 * promptly send beyond the end of the users buffer ... so we trap and
368 * report the error in a way the user will notice
369 */
370 if (len < s->rlayer.wnum) {
371 SSLerr(SSL_F_SSL3_WRITE_BYTES, SSL_R_BAD_LENGTH);
372 return -1;
373 }
374
375 s->rlayer.wnum = 0;
376
377 if (SSL_in_init(s) && !ossl_statem_get_in_handshake(s)) {
378 i = s->handshake_func(s);
379 if (i < 0)
380 return i;
381 if (i == 0) {
382 SSLerr(SSL_F_SSL3_WRITE_BYTES, SSL_R_SSL_HANDSHAKE_FAILURE);
383 return -1;
384 }
385 }
386
387 /*
388 * first check if there is a SSL3_BUFFER still being written out. This
389 * will happen with non blocking IO
390 */
391 if (wb->left != 0) {
392 i = ssl3_write_pending(s, type, &buf[tot], s->rlayer.wpend_tot,
393 &tmpwrit);
394 if (i <= 0) {
395 /* XXX should we ssl3_release_write_buffer if i<0? */
396 s->rlayer.wnum = tot;
397 return i;
398 }
399 tot += tmpwrit; /* this might be last fragment */
400 }
401 #if !defined(OPENSSL_NO_MULTIBLOCK) && EVP_CIPH_FLAG_TLS1_1_MULTIBLOCK
402 /*
403 * Depending on platform multi-block can deliver several *times*
404 * better performance. Downside is that it has to allocate
405 * jumbo buffer to accommodate up to 8 records, but the
406 * compromise is considered worthy.
407 */
408 if (type == SSL3_RT_APPLICATION_DATA &&
409 len >= 4 * (max_send_fragment = s->max_send_fragment) &&
410 s->compress == NULL && s->msg_callback == NULL &&
411 !SSL_USE_ETM(s) && SSL_USE_EXPLICIT_IV(s) &&
412 EVP_CIPHER_flags(EVP_CIPHER_CTX_cipher(s->enc_write_ctx)) &
413 EVP_CIPH_FLAG_TLS1_1_MULTIBLOCK) {
414 unsigned char aad[13];
415 EVP_CTRL_TLS1_1_MULTIBLOCK_PARAM mb_param;
416 size_t packlen;
417 int packleni;
418
419 /* minimize address aliasing conflicts */
420 if ((max_send_fragment & 0xfff) == 0)
421 max_send_fragment -= 512;
422
423 if (tot == 0 || wb->buf == NULL) { /* allocate jumbo buffer */
424 ssl3_release_write_buffer(s);
425
426 packlen = EVP_CIPHER_CTX_ctrl(s->enc_write_ctx,
427 EVP_CTRL_TLS1_1_MULTIBLOCK_MAX_BUFSIZE,
428 (int)max_send_fragment, NULL);
429
430 if (len >= 8 * max_send_fragment)
431 packlen *= 8;
432 else
433 packlen *= 4;
434
435 if (!ssl3_setup_write_buffer(s, 1, packlen)) {
436 SSLerr(SSL_F_SSL3_WRITE_BYTES, ERR_R_MALLOC_FAILURE);
437 return -1;
438 }
439 } else if (tot == len) { /* done? */
440 /* free jumbo buffer */
441 ssl3_release_write_buffer(s);
442 *written = tot;
443 return 1;
444 }
445
446 n = (len - tot);
447 for (;;) {
448 if (n < 4 * max_send_fragment) {
449 /* free jumbo buffer */
450 ssl3_release_write_buffer(s);
451 break;
452 }
453
454 if (s->s3->alert_dispatch) {
455 i = s->method->ssl_dispatch_alert(s);
456 if (i <= 0) {
457 s->rlayer.wnum = tot;
458 return i;
459 }
460 }
461
462 if (n >= 8 * max_send_fragment)
463 nw = max_send_fragment * (mb_param.interleave = 8);
464 else
465 nw = max_send_fragment * (mb_param.interleave = 4);
466
467 memcpy(aad, s->rlayer.write_sequence, 8);
468 aad[8] = type;
469 aad[9] = (unsigned char)(s->version >> 8);
470 aad[10] = (unsigned char)(s->version);
471 aad[11] = 0;
472 aad[12] = 0;
473 mb_param.out = NULL;
474 mb_param.inp = aad;
475 mb_param.len = nw;
476
477 packleni = EVP_CIPHER_CTX_ctrl(s->enc_write_ctx,
478 EVP_CTRL_TLS1_1_MULTIBLOCK_AAD,
479 sizeof(mb_param), &mb_param);
480 packlen = (size_t)packleni;
481 if (packleni <= 0 || packlen > wb->len) { /* never happens */
482 /* free jumbo buffer */
483 ssl3_release_write_buffer(s);
484 break;
485 }
486
487 mb_param.out = wb->buf;
488 mb_param.inp = &buf[tot];
489 mb_param.len = nw;
490
491 if (EVP_CIPHER_CTX_ctrl(s->enc_write_ctx,
492 EVP_CTRL_TLS1_1_MULTIBLOCK_ENCRYPT,
493 sizeof(mb_param), &mb_param) <= 0)
494 return -1;
495
496 s->rlayer.write_sequence[7] += mb_param.interleave;
497 if (s->rlayer.write_sequence[7] < mb_param.interleave) {
498 int j = 6;
499 while (j >= 0 && (++s->rlayer.write_sequence[j--]) == 0) ;
500 }
501
502 wb->offset = 0;
503 wb->left = packlen;
504
505 s->rlayer.wpend_tot = nw;
506 s->rlayer.wpend_buf = &buf[tot];
507 s->rlayer.wpend_type = type;
508 s->rlayer.wpend_ret = nw;
509
510 i = ssl3_write_pending(s, type, &buf[tot], nw, &tmpwrit);
511 if (i <= 0) {
512 if (i < 0 && (!s->wbio || !BIO_should_retry(s->wbio))) {
513 /* free jumbo buffer */
514 ssl3_release_write_buffer(s);
515 }
516 s->rlayer.wnum = tot;
517 return i;
518 }
519 if (tmpwrit == n) {
520 /* free jumbo buffer */
521 ssl3_release_write_buffer(s);
522 *written = tot + tmpwrit;
523 return 1;
524 }
525 n -= tmpwrit;
526 tot += tmpwrit;
527 }
528 } else
529 #endif
530 if (tot == len) { /* done? */
531 if (s->mode & SSL_MODE_RELEASE_BUFFERS && !SSL_IS_DTLS(s))
532 ssl3_release_write_buffer(s);
533
534 *written = tot;
535 return 1;
536 }
537
538 n = (len - tot);
539
540 split_send_fragment = s->split_send_fragment;
541 /*
542 * If max_pipelines is 0 then this means "undefined" and we default to
543 * 1 pipeline. Similarly if the cipher does not support pipelined
544 * processing then we also only use 1 pipeline, or if we're not using
545 * explicit IVs
546 */
547 maxpipes = s->max_pipelines;
548 if (maxpipes > SSL_MAX_PIPELINES) {
549 /*
550 * We should have prevented this when we set max_pipelines so we
551 * shouldn't get here
552 */
553 SSLerr(SSL_F_SSL3_WRITE_BYTES, ERR_R_INTERNAL_ERROR);
554 return -1;
555 }
556 if (maxpipes == 0
557 || s->enc_write_ctx == NULL
558 || !(EVP_CIPHER_flags(EVP_CIPHER_CTX_cipher(s->enc_write_ctx))
559 & EVP_CIPH_FLAG_PIPELINE)
560 || !SSL_USE_EXPLICIT_IV(s))
561 maxpipes = 1;
562 if (s->max_send_fragment == 0 || split_send_fragment > s->max_send_fragment
563 || split_send_fragment == 0) {
564 /*
565 * We should have prevented this when we set the split and max send
566 * fragments so we shouldn't get here
567 */
568 SSLerr(SSL_F_SSL3_WRITE_BYTES, ERR_R_INTERNAL_ERROR);
569 return -1;
570 }
571
572 for (;;) {
573 size_t pipelens[SSL_MAX_PIPELINES], tmppipelen, remain;
574 size_t numpipes, j;
575
576 if (n == 0)
577 numpipes = 1;
578 else
579 numpipes = ((n - 1) / split_send_fragment) + 1;
580 if (numpipes > maxpipes)
581 numpipes = maxpipes;
582
583 if (n / numpipes >= s->max_send_fragment) {
584 /*
585 * We have enough data to completely fill all available
586 * pipelines
587 */
588 for (j = 0; j < numpipes; j++) {
589 pipelens[j] = s->max_send_fragment;
590 }
591 } else {
592 /* We can partially fill all available pipelines */
593 tmppipelen = n / numpipes;
594 remain = n % numpipes;
595 for (j = 0; j < numpipes; j++) {
596 pipelens[j] = tmppipelen;
597 if (j < remain)
598 pipelens[j]++;
599 }
600 }
601
602 i = do_ssl3_write(s, type, &(buf[tot]), pipelens, numpipes, 0,
603 &tmpwrit);
604 if (i <= 0) {
605 /* XXX should we ssl3_release_write_buffer if i<0? */
606 s->rlayer.wnum = tot;
607 return i;
608 }
609
610 if (tmpwrit == n ||
611 (type == SSL3_RT_APPLICATION_DATA &&
612 (s->mode & SSL_MODE_ENABLE_PARTIAL_WRITE))) {
613 /*
614 * next chunk of data should get another prepended empty fragment
615 * in ciphersuites with known-IV weakness:
616 */
617 s->s3->empty_fragment_done = 0;
618
619 if ((i == (int)n) && s->mode & SSL_MODE_RELEASE_BUFFERS &&
620 !SSL_IS_DTLS(s))
621 ssl3_release_write_buffer(s);
622
623 *written = tot + tmpwrit;
624 return 1;
625 }
626
627 n -= tmpwrit;
628 tot += tmpwrit;
629 }
630 }
631
632 int do_ssl3_write(SSL *s, int type, const unsigned char *buf,
633 size_t *pipelens, size_t numpipes,
634 int create_empty_fragment, size_t *written)
635 {
636 WPACKET pkt[SSL_MAX_PIPELINES];
637 SSL3_RECORD wr[SSL_MAX_PIPELINES];
638 unsigned char *recordstart;
639 int i, mac_size, clear = 0;
640 size_t prefix_len = 0;
641 int eivlen;
642 size_t align = 0;
643 SSL3_BUFFER *wb;
644 SSL_SESSION *sess;
645 size_t totlen = 0, len, wpinited = 0;
646 size_t j;
647
648 for (j = 0; j < numpipes; j++)
649 totlen += pipelens[j];
650 /*
651 * first check if there is a SSL3_BUFFER still being written out. This
652 * will happen with non blocking IO
653 */
654 if (RECORD_LAYER_write_pending(&s->rlayer))
655 return ssl3_write_pending(s, type, buf, totlen, written);
656
657 /* If we have an alert to send, lets send it */
658 if (s->s3->alert_dispatch) {
659 i = s->method->ssl_dispatch_alert(s);
660 if (i <= 0)
661 return (i);
662 /* if it went, fall through and send more stuff */
663 }
664
665 if (s->rlayer.numwpipes < numpipes)
666 if (!ssl3_setup_write_buffer(s, numpipes, 0))
667 return -1;
668
669 if (totlen == 0 && !create_empty_fragment)
670 return 0;
671
672 sess = s->session;
673
674 if ((sess == NULL) ||
675 (s->enc_write_ctx == NULL) || (EVP_MD_CTX_md(s->write_hash) == NULL)) {
676 clear = s->enc_write_ctx ? 0 : 1; /* must be AEAD cipher */
677 mac_size = 0;
678 } else {
679 /* TODO(siz_t): Convert me */
680 mac_size = EVP_MD_CTX_size(s->write_hash);
681 if (mac_size < 0)
682 goto err;
683 }
684
685 /*
686 * 'create_empty_fragment' is true only when this function calls itself
687 */
688 if (!clear && !create_empty_fragment && !s->s3->empty_fragment_done) {
689 /*
690 * countermeasure against known-IV weakness in CBC ciphersuites (see
691 * http://www.openssl.org/~bodo/tls-cbc.txt)
692 */
693
694 if (s->s3->need_empty_fragments && type == SSL3_RT_APPLICATION_DATA) {
695 /*
696 * recursive function call with 'create_empty_fragment' set; this
697 * prepares and buffers the data for an empty fragment (these
698 * 'prefix_len' bytes are sent out later together with the actual
699 * payload)
700 */
701 size_t tmppipelen = 0;
702 int ret;
703
704 ret = do_ssl3_write(s, type, buf, &tmppipelen, 1, 1, &prefix_len);
705 if (ret <= 0)
706 goto err;
707
708 if (prefix_len >
709 (SSL3_RT_HEADER_LENGTH + SSL3_RT_SEND_MAX_ENCRYPTED_OVERHEAD)) {
710 /* insufficient space */
711 SSLerr(SSL_F_DO_SSL3_WRITE, ERR_R_INTERNAL_ERROR);
712 goto err;
713 }
714 }
715
716 s->s3->empty_fragment_done = 1;
717 }
718
719 if (create_empty_fragment) {
720 wb = &s->rlayer.wbuf[0];
721 #if defined(SSL3_ALIGN_PAYLOAD) && SSL3_ALIGN_PAYLOAD!=0
722 /*
723 * extra fragment would be couple of cipher blocks, which would be
724 * multiple of SSL3_ALIGN_PAYLOAD, so if we want to align the real
725 * payload, then we can just pretend we simply have two headers.
726 */
727 align = (size_t)SSL3_BUFFER_get_buf(wb) + 2 * SSL3_RT_HEADER_LENGTH;
728 align = SSL3_ALIGN_PAYLOAD - 1 - ((align - 1) % SSL3_ALIGN_PAYLOAD);
729 #endif
730 SSL3_BUFFER_set_offset(wb, align);
731 if (!WPACKET_init_static_len(&pkt[0], SSL3_BUFFER_get_buf(wb),
732 SSL3_BUFFER_get_len(wb), 0)
733 || !WPACKET_allocate_bytes(&pkt[0], align, NULL)) {
734 SSLerr(SSL_F_DO_SSL3_WRITE, ERR_R_INTERNAL_ERROR);
735 goto err;
736 }
737 wpinited = 1;
738 } else if (prefix_len) {
739 wb = &s->rlayer.wbuf[0];
740 if (!WPACKET_init_static_len(&pkt[0], SSL3_BUFFER_get_buf(wb),
741 SSL3_BUFFER_get_len(wb), 0)
742 || !WPACKET_allocate_bytes(&pkt[0], SSL3_BUFFER_get_offset(wb)
743 + prefix_len, NULL)) {
744 SSLerr(SSL_F_DO_SSL3_WRITE, ERR_R_INTERNAL_ERROR);
745 goto err;
746 }
747 wpinited = 1;
748 } else {
749 for (j = 0; j < numpipes; j++) {
750 wb = &s->rlayer.wbuf[j];
751 #if defined(SSL3_ALIGN_PAYLOAD) && SSL3_ALIGN_PAYLOAD!=0
752 align = (size_t)SSL3_BUFFER_get_buf(wb) + SSL3_RT_HEADER_LENGTH;
753 align = SSL3_ALIGN_PAYLOAD - 1 - ((align - 1) % SSL3_ALIGN_PAYLOAD);
754 #endif
755 SSL3_BUFFER_set_offset(wb, align);
756 if (!WPACKET_init_static_len(&pkt[j], SSL3_BUFFER_get_buf(wb),
757 SSL3_BUFFER_get_len(wb), 0)
758 || !WPACKET_allocate_bytes(&pkt[j], align, NULL)) {
759 SSLerr(SSL_F_DO_SSL3_WRITE, ERR_R_INTERNAL_ERROR);
760 goto err;
761 }
762 wpinited++;
763 }
764 }
765
766 /* Explicit IV length, block ciphers appropriate version flag */
767 if (s->enc_write_ctx && SSL_USE_EXPLICIT_IV(s)) {
768 int mode = EVP_CIPHER_CTX_mode(s->enc_write_ctx);
769 if (mode == EVP_CIPH_CBC_MODE) {
770 /* TODO(size_t): Convert me */
771 eivlen = EVP_CIPHER_CTX_iv_length(s->enc_write_ctx);
772 if (eivlen <= 1)
773 eivlen = 0;
774 } else if (mode == EVP_CIPH_GCM_MODE) {
775 /* Need explicit part of IV for GCM mode */
776 eivlen = EVP_GCM_TLS_EXPLICIT_IV_LEN;
777 } else if (mode == EVP_CIPH_CCM_MODE) {
778 eivlen = EVP_CCM_TLS_EXPLICIT_IV_LEN;
779 } else {
780 eivlen = 0;
781 }
782 } else {
783 eivlen = 0;
784 }
785
786 totlen = 0;
787 /* Clear our SSL3_RECORD structures */
788 memset(wr, 0, sizeof wr);
789 for (j = 0; j < numpipes; j++) {
790 unsigned int version = s->version;
791 unsigned char *compressdata = NULL;
792 size_t maxcomplen;
793 unsigned int rectype;
794
795 SSL3_RECORD_set_type(&wr[j], type);
796 /*
797 * In TLSv1.3, once encrypting, we always use application data for the
798 * record type
799 */
800 if (SSL_IS_TLS13(s) && s->enc_write_ctx != NULL)
801 rectype = SSL3_RT_APPLICATION_DATA;
802 else
803 rectype = type;
804 /*
805 * Some servers hang if initial client hello is larger than 256 bytes
806 * and record version number > TLS 1.0
807 */
808 if (SSL_get_state(s) == TLS_ST_CW_CLNT_HELLO
809 && !s->renegotiate && TLS1_get_version(s) > TLS1_VERSION)
810 version = TLS1_VERSION;
811
812 maxcomplen = pipelens[j] + (s->compress != NULL
813 ? SSL3_RT_MAX_COMPRESSED_OVERHEAD : 0);
814 /* write the header */
815 if (!WPACKET_put_bytes_u8(&pkt[j], rectype)
816 || !WPACKET_put_bytes_u16(&pkt[j], version)
817 || !WPACKET_start_sub_packet_u16(&pkt[j])
818 || (eivlen > 0
819 && !WPACKET_allocate_bytes(&pkt[j], eivlen, NULL))
820 || (maxcomplen > 0
821 && !WPACKET_reserve_bytes(&pkt[j], maxcomplen,
822 &compressdata))) {
823 SSLerr(SSL_F_DO_SSL3_WRITE, ERR_R_INTERNAL_ERROR);
824 goto err;
825 }
826
827 /* lets setup the record stuff. */
828 SSL3_RECORD_set_data(&wr[j], compressdata);
829 SSL3_RECORD_set_length(&wr[j], pipelens[j]);
830 SSL3_RECORD_set_input(&wr[j], (unsigned char *)&buf[totlen]);
831 totlen += pipelens[j];
832
833 /*
834 * we now 'read' from wr->input, wr->length bytes into wr->data
835 */
836
837 /* first we compress */
838 if (s->compress != NULL) {
839 /*
840 * TODO(TLS1.3): Make sure we prevent compression!!!
841 */
842 if (!ssl3_do_compress(s, &wr[j])
843 || !WPACKET_allocate_bytes(&pkt[j], wr[j].length, NULL)) {
844 SSLerr(SSL_F_DO_SSL3_WRITE, SSL_R_COMPRESSION_FAILURE);
845 goto err;
846 }
847 } else {
848 if (!WPACKET_memcpy(&pkt[j], wr[j].input, wr[j].length)) {
849 SSLerr(SSL_F_DO_SSL3_WRITE, ERR_R_INTERNAL_ERROR);
850 goto err;
851 }
852 SSL3_RECORD_reset_input(&wr[j]);
853 }
854
855 if (SSL_IS_TLS13(s) && s->enc_write_ctx != NULL) {
856 if (!WPACKET_put_bytes_u8(&pkt[j], type)) {
857 SSLerr(SSL_F_DO_SSL3_WRITE, ERR_R_INTERNAL_ERROR);
858 goto err;
859 }
860 SSL3_RECORD_add_length(&wr[j], 1);
861 /*
862 * TODO(TLS1.3): Padding goes here. Do we need an API to add this?
863 * For now, use no padding
864 */
865 }
866
867 /*
868 * we should still have the output to wr->data and the input from
869 * wr->input. Length should be wr->length. wr->data still points in the
870 * wb->buf
871 */
872
873 if (!SSL_USE_ETM(s) && mac_size != 0) {
874 unsigned char *mac;
875
876 if (!WPACKET_allocate_bytes(&pkt[j], mac_size, &mac)
877 || !s->method->ssl3_enc->mac(s, &wr[j], mac, 1)) {
878 SSLerr(SSL_F_DO_SSL3_WRITE, ERR_R_INTERNAL_ERROR);
879 goto err;
880 }
881 }
882
883 /*
884 * Reserve some bytes for any growth that may occur during encryption.
885 * This will be at most one cipher block or the tag length if using
886 * AEAD. SSL_RT_MAX_CIPHER_BLOCK_SIZE covers either case.
887 */
888 if(!WPACKET_reserve_bytes(&pkt[j], SSL_RT_MAX_CIPHER_BLOCK_SIZE,
889 NULL)
890 /*
891 * We also need next the amount of bytes written to this
892 * sub-packet
893 */
894 || !WPACKET_get_length(&pkt[j], &len)) {
895 SSLerr(SSL_F_DO_SSL3_WRITE, ERR_R_INTERNAL_ERROR);
896 goto err;
897 }
898
899 /* Get a pointer to the start of this record excluding header */
900 recordstart = WPACKET_get_curr(&pkt[j]) - len;
901
902 SSL3_RECORD_set_data(&wr[j], recordstart);
903 SSL3_RECORD_reset_input(&wr[j]);
904 SSL3_RECORD_set_length(&wr[j], len);
905 }
906
907 if (s->method->ssl3_enc->enc(s, wr, numpipes, 1) < 1)
908 goto err;
909
910 for (j = 0; j < numpipes; j++) {
911 size_t origlen;
912
913 /* Allocate bytes for the encryption overhead */
914 if (!WPACKET_get_length(&pkt[j], &origlen)
915 /* Encryption should never shrink the data! */
916 || origlen > wr[j].length
917 || (wr[j].length > origlen
918 && !WPACKET_allocate_bytes(&pkt[j],
919 wr[j].length - origlen, NULL))) {
920 SSLerr(SSL_F_DO_SSL3_WRITE, ERR_R_INTERNAL_ERROR);
921 goto err;
922 }
923 if (SSL_USE_ETM(s) && mac_size != 0) {
924 unsigned char *mac;
925
926 if (!WPACKET_allocate_bytes(&pkt[j], mac_size, &mac)
927 || !s->method->ssl3_enc->mac(s, &wr[j], mac, 1)) {
928 SSLerr(SSL_F_DO_SSL3_WRITE, ERR_R_INTERNAL_ERROR);
929 goto err;
930 }
931 SSL3_RECORD_add_length(&wr[j], mac_size);
932 }
933
934 if (!WPACKET_get_length(&pkt[j], &len)
935 || !WPACKET_close(&pkt[j])) {
936 SSLerr(SSL_F_DO_SSL3_WRITE, ERR_R_INTERNAL_ERROR);
937 goto err;
938 }
939
940 if (s->msg_callback) {
941 recordstart = WPACKET_get_curr(&pkt[j]) - len
942 - SSL3_RT_HEADER_LENGTH;
943 s->msg_callback(1, 0, SSL3_RT_HEADER, recordstart,
944 SSL3_RT_HEADER_LENGTH, s,
945 s->msg_callback_arg);
946 }
947
948 if (!WPACKET_finish(&pkt[j])) {
949 SSLerr(SSL_F_DO_SSL3_WRITE, ERR_R_INTERNAL_ERROR);
950 goto err;
951 }
952
953 /*
954 * we should now have wr->data pointing to the encrypted data, which is
955 * wr->length long
956 */
957 SSL3_RECORD_set_type(&wr[j], type); /* not needed but helps for
958 * debugging */
959 SSL3_RECORD_add_length(&wr[j], SSL3_RT_HEADER_LENGTH);
960
961 if (create_empty_fragment) {
962 /*
963 * we are in a recursive call; just return the length, don't write
964 * out anything here
965 */
966 if (j > 0) {
967 /* We should never be pipelining an empty fragment!! */
968 SSLerr(SSL_F_DO_SSL3_WRITE, ERR_R_INTERNAL_ERROR);
969 goto err;
970 }
971 *written = SSL3_RECORD_get_length(wr);
972 return 1;
973 }
974
975 /* now let's set up wb */
976 SSL3_BUFFER_set_left(&s->rlayer.wbuf[j],
977 prefix_len + SSL3_RECORD_get_length(&wr[j]));
978 }
979
980 /*
981 * memorize arguments so that ssl3_write_pending can detect bad write
982 * retries later
983 */
984 s->rlayer.wpend_tot = totlen;
985 s->rlayer.wpend_buf = buf;
986 s->rlayer.wpend_type = type;
987 s->rlayer.wpend_ret = totlen;
988
989 /* we now just need to write the buffer */
990 return ssl3_write_pending(s, type, buf, totlen, written);
991 err:
992 for (j = 0; j < wpinited; j++)
993 WPACKET_cleanup(&pkt[j]);
994 return -1;
995 }
996
997 /* if s->s3->wbuf.left != 0, we need to call this
998 *
999 * Return values are as per SSL_write()
1000 */
1001 int ssl3_write_pending(SSL *s, int type, const unsigned char *buf, size_t len,
1002 size_t *written)
1003 {
1004 int i;
1005 SSL3_BUFFER *wb = s->rlayer.wbuf;
1006 size_t currbuf = 0;
1007 size_t tmpwrit = 0;
1008
1009 if ((s->rlayer.wpend_tot > len)
1010 || ((s->rlayer.wpend_buf != buf) &&
1011 !(s->mode & SSL_MODE_ACCEPT_MOVING_WRITE_BUFFER))
1012 || (s->rlayer.wpend_type != type)) {
1013 SSLerr(SSL_F_SSL3_WRITE_PENDING, SSL_R_BAD_WRITE_RETRY);
1014 return -1;
1015 }
1016
1017 for (;;) {
1018 /* Loop until we find a buffer we haven't written out yet */
1019 if (SSL3_BUFFER_get_left(&wb[currbuf]) == 0
1020 && currbuf < s->rlayer.numwpipes - 1) {
1021 currbuf++;
1022 continue;
1023 }
1024 clear_sys_error();
1025 if (s->wbio != NULL) {
1026 s->rwstate = SSL_WRITING;
1027 /* TODO(size_t): Convert this call */
1028 i = BIO_write(s->wbio, (char *)
1029 &(SSL3_BUFFER_get_buf(&wb[currbuf])
1030 [SSL3_BUFFER_get_offset(&wb[currbuf])]),
1031 (unsigned int)SSL3_BUFFER_get_left(&wb[currbuf]));
1032 if (i >= 0)
1033 tmpwrit = i;
1034 } else {
1035 SSLerr(SSL_F_SSL3_WRITE_PENDING, SSL_R_BIO_NOT_SET);
1036 i = -1;
1037 }
1038 if (i > 0 && tmpwrit == SSL3_BUFFER_get_left(&wb[currbuf])) {
1039 SSL3_BUFFER_set_left(&wb[currbuf], 0);
1040 SSL3_BUFFER_add_offset(&wb[currbuf], tmpwrit);
1041 if (currbuf + 1 < s->rlayer.numwpipes)
1042 continue;
1043 s->rwstate = SSL_NOTHING;
1044 *written = s->rlayer.wpend_ret;
1045 return 1;
1046 } else if (i <= 0) {
1047 if (SSL_IS_DTLS(s)) {
1048 /*
1049 * For DTLS, just drop it. That's kind of the whole point in
1050 * using a datagram service
1051 */
1052 SSL3_BUFFER_set_left(&wb[currbuf], 0);
1053 }
1054 return (i);
1055 }
1056 SSL3_BUFFER_add_offset(&wb[currbuf], tmpwrit);
1057 SSL3_BUFFER_sub_left(&wb[currbuf], tmpwrit);
1058 }
1059 }
1060
1061 /*-
1062 * Return up to 'len' payload bytes received in 'type' records.
1063 * 'type' is one of the following:
1064 *
1065 * - SSL3_RT_HANDSHAKE (when ssl3_get_message calls us)
1066 * - SSL3_RT_APPLICATION_DATA (when ssl3_read calls us)
1067 * - 0 (during a shutdown, no data has to be returned)
1068 *
1069 * If we don't have stored data to work from, read a SSL/TLS record first
1070 * (possibly multiple records if we still don't have anything to return).
1071 *
1072 * This function must handle any surprises the peer may have for us, such as
1073 * Alert records (e.g. close_notify) or renegotiation requests. ChangeCipherSpec
1074 * messages are treated as if they were handshake messages *if* the |recd_type|
1075 * argument is non NULL.
1076 * Also if record payloads contain fragments too small to process, we store
1077 * them until there is enough for the respective protocol (the record protocol
1078 * may use arbitrary fragmentation and even interleaving):
1079 * Change cipher spec protocol
1080 * just 1 byte needed, no need for keeping anything stored
1081 * Alert protocol
1082 * 2 bytes needed (AlertLevel, AlertDescription)
1083 * Handshake protocol
1084 * 4 bytes needed (HandshakeType, uint24 length) -- we just have
1085 * to detect unexpected Client Hello and Hello Request messages
1086 * here, anything else is handled by higher layers
1087 * Application data protocol
1088 * none of our business
1089 */
1090 int ssl3_read_bytes(SSL *s, int type, int *recvd_type, unsigned char *buf,
1091 size_t len, int peek, size_t *readbytes)
1092 {
1093 int al, i, j, ret;
1094 size_t n, curr_rec, num_recs, totalbytes;
1095 SSL3_RECORD *rr;
1096 SSL3_BUFFER *rbuf;
1097 void (*cb) (const SSL *ssl, int type2, int val) = NULL;
1098
1099 rbuf = &s->rlayer.rbuf;
1100
1101 if (!SSL3_BUFFER_is_initialised(rbuf)) {
1102 /* Not initialized yet */
1103 if (!ssl3_setup_read_buffer(s))
1104 return -1;
1105 }
1106
1107 if ((type && (type != SSL3_RT_APPLICATION_DATA)
1108 && (type != SSL3_RT_HANDSHAKE)) || (peek
1109 && (type !=
1110 SSL3_RT_APPLICATION_DATA))) {
1111 SSLerr(SSL_F_SSL3_READ_BYTES, ERR_R_INTERNAL_ERROR);
1112 return -1;
1113 }
1114
1115 if ((type == SSL3_RT_HANDSHAKE) && (s->rlayer.handshake_fragment_len > 0))
1116 /* (partially) satisfy request from storage */
1117 {
1118 unsigned char *src = s->rlayer.handshake_fragment;
1119 unsigned char *dst = buf;
1120 unsigned int k;
1121
1122 /* peek == 0 */
1123 n = 0;
1124 while ((len > 0) && (s->rlayer.handshake_fragment_len > 0)) {
1125 *dst++ = *src++;
1126 len--;
1127 s->rlayer.handshake_fragment_len--;
1128 n++;
1129 }
1130 /* move any remaining fragment bytes: */
1131 for (k = 0; k < s->rlayer.handshake_fragment_len; k++)
1132 s->rlayer.handshake_fragment[k] = *src++;
1133
1134 if (recvd_type != NULL)
1135 *recvd_type = SSL3_RT_HANDSHAKE;
1136
1137 *readbytes = n;
1138 return 1;
1139 }
1140
1141 /*
1142 * Now s->rlayer.handshake_fragment_len == 0 if type == SSL3_RT_HANDSHAKE.
1143 */
1144
1145 if (!ossl_statem_get_in_handshake(s) && SSL_in_init(s)) {
1146 /* type == SSL3_RT_APPLICATION_DATA */
1147 i = s->handshake_func(s);
1148 if (i < 0)
1149 return i;
1150 if (i == 0) {
1151 SSLerr(SSL_F_SSL3_READ_BYTES, SSL_R_SSL_HANDSHAKE_FAILURE);
1152 return -1;
1153 }
1154 }
1155 start:
1156 s->rwstate = SSL_NOTHING;
1157
1158 /*-
1159 * For each record 'i' up to |num_recs]
1160 * rr[i].type - is the type of record
1161 * rr[i].data, - data
1162 * rr[i].off, - offset into 'data' for next read
1163 * rr[i].length, - number of bytes.
1164 */
1165 rr = s->rlayer.rrec;
1166 num_recs = RECORD_LAYER_get_numrpipes(&s->rlayer);
1167
1168 do {
1169 /* get new records if necessary */
1170 if (num_recs == 0) {
1171 ret = ssl3_get_record(s);
1172 if (ret <= 0)
1173 return ret;
1174 num_recs = RECORD_LAYER_get_numrpipes(&s->rlayer);
1175 if (num_recs == 0) {
1176 /* Shouldn't happen */
1177 al = SSL_AD_INTERNAL_ERROR;
1178 SSLerr(SSL_F_SSL3_READ_BYTES, ERR_R_INTERNAL_ERROR);
1179 goto f_err;
1180 }
1181 }
1182 /* Skip over any records we have already read */
1183 for (curr_rec = 0;
1184 curr_rec < num_recs && SSL3_RECORD_is_read(&rr[curr_rec]);
1185 curr_rec++) ;
1186 if (curr_rec == num_recs) {
1187 RECORD_LAYER_set_numrpipes(&s->rlayer, 0);
1188 num_recs = 0;
1189 curr_rec = 0;
1190 }
1191 } while (num_recs == 0);
1192 rr = &rr[curr_rec];
1193
1194 /*
1195 * Reset the count of consecutive warning alerts if we've got a non-empty
1196 * record that isn't an alert.
1197 */
1198 if (SSL3_RECORD_get_type(rr) != SSL3_RT_ALERT
1199 && SSL3_RECORD_get_length(rr) != 0)
1200 s->rlayer.alert_count = 0;
1201
1202 /* we now have a packet which can be read and processed */
1203
1204 if (s->s3->change_cipher_spec /* set when we receive ChangeCipherSpec,
1205 * reset by ssl3_get_finished */
1206 && (SSL3_RECORD_get_type(rr) != SSL3_RT_HANDSHAKE)) {
1207 al = SSL_AD_UNEXPECTED_MESSAGE;
1208 SSLerr(SSL_F_SSL3_READ_BYTES, SSL_R_DATA_BETWEEN_CCS_AND_FINISHED);
1209 goto f_err;
1210 }
1211
1212 /*
1213 * If the other end has shut down, throw anything we read away (even in
1214 * 'peek' mode)
1215 */
1216 if (s->shutdown & SSL_RECEIVED_SHUTDOWN) {
1217 SSL3_RECORD_set_length(rr, 0);
1218 s->rwstate = SSL_NOTHING;
1219 return 0;
1220 }
1221
1222 if (type == SSL3_RECORD_get_type(rr)
1223 || (SSL3_RECORD_get_type(rr) == SSL3_RT_CHANGE_CIPHER_SPEC
1224 && type == SSL3_RT_HANDSHAKE && recvd_type != NULL)) {
1225 /*
1226 * SSL3_RT_APPLICATION_DATA or
1227 * SSL3_RT_HANDSHAKE or
1228 * SSL3_RT_CHANGE_CIPHER_SPEC
1229 */
1230 /*
1231 * make sure that we are not getting application data when we are
1232 * doing a handshake for the first time
1233 */
1234 if (SSL_in_init(s) && (type == SSL3_RT_APPLICATION_DATA) &&
1235 (s->enc_read_ctx == NULL)) {
1236 al = SSL_AD_UNEXPECTED_MESSAGE;
1237 SSLerr(SSL_F_SSL3_READ_BYTES, SSL_R_APP_DATA_IN_HANDSHAKE);
1238 goto f_err;
1239 }
1240
1241 if (type == SSL3_RT_HANDSHAKE
1242 && SSL3_RECORD_get_type(rr) == SSL3_RT_CHANGE_CIPHER_SPEC
1243 && s->rlayer.handshake_fragment_len > 0) {
1244 al = SSL_AD_UNEXPECTED_MESSAGE;
1245 SSLerr(SSL_F_SSL3_READ_BYTES, SSL_R_CCS_RECEIVED_EARLY);
1246 goto f_err;
1247 }
1248
1249 if (recvd_type != NULL)
1250 *recvd_type = SSL3_RECORD_get_type(rr);
1251
1252 if (len == 0)
1253 return 0;
1254
1255 totalbytes = 0;
1256 do {
1257 if (len - totalbytes > SSL3_RECORD_get_length(rr))
1258 n = SSL3_RECORD_get_length(rr);
1259 else
1260 n = len - totalbytes;
1261
1262 memcpy(buf, &(rr->data[rr->off]), n);
1263 buf += n;
1264 if (peek) {
1265 /* Mark any zero length record as consumed CVE-2016-6305 */
1266 if (SSL3_RECORD_get_length(rr) == 0)
1267 SSL3_RECORD_set_read(rr);
1268 } else {
1269 SSL3_RECORD_sub_length(rr, n);
1270 SSL3_RECORD_add_off(rr, n);
1271 if (SSL3_RECORD_get_length(rr) == 0) {
1272 s->rlayer.rstate = SSL_ST_READ_HEADER;
1273 SSL3_RECORD_set_off(rr, 0);
1274 SSL3_RECORD_set_read(rr);
1275 }
1276 }
1277 if (SSL3_RECORD_get_length(rr) == 0
1278 || (peek && n == SSL3_RECORD_get_length(rr))) {
1279 curr_rec++;
1280 rr++;
1281 }
1282 totalbytes += n;
1283 } while (type == SSL3_RT_APPLICATION_DATA && curr_rec < num_recs
1284 && totalbytes < len);
1285 if (totalbytes == 0) {
1286 /* We must have read empty records. Get more data */
1287 goto start;
1288 }
1289 if (!peek && curr_rec == num_recs
1290 && (s->mode & SSL_MODE_RELEASE_BUFFERS)
1291 && SSL3_BUFFER_get_left(rbuf) == 0)
1292 ssl3_release_read_buffer(s);
1293 *readbytes = totalbytes;
1294 return 1;
1295 }
1296
1297 /*
1298 * If we get here, then type != rr->type; if we have a handshake message,
1299 * then it was unexpected (Hello Request or Client Hello) or invalid (we
1300 * were actually expecting a CCS).
1301 */
1302
1303 /*
1304 * Lets just double check that we've not got an SSLv2 record
1305 */
1306 if (rr->rec_version == SSL2_VERSION) {
1307 /*
1308 * Should never happen. ssl3_get_record() should only give us an SSLv2
1309 * record back if this is the first packet and we are looking for an
1310 * initial ClientHello. Therefore |type| should always be equal to
1311 * |rr->type|. If not then something has gone horribly wrong
1312 */
1313 al = SSL_AD_INTERNAL_ERROR;
1314 SSLerr(SSL_F_SSL3_READ_BYTES, ERR_R_INTERNAL_ERROR);
1315 goto f_err;
1316 }
1317
1318 if (s->method->version == TLS_ANY_VERSION
1319 && (s->server || rr->type != SSL3_RT_ALERT)) {
1320 /*
1321 * If we've got this far and still haven't decided on what version
1322 * we're using then this must be a client side alert we're dealing with
1323 * (we don't allow heartbeats yet). We shouldn't be receiving anything
1324 * other than a ClientHello if we are a server.
1325 */
1326 s->version = rr->rec_version;
1327 al = SSL_AD_UNEXPECTED_MESSAGE;
1328 SSLerr(SSL_F_SSL3_READ_BYTES, SSL_R_UNEXPECTED_MESSAGE);
1329 goto f_err;
1330 }
1331
1332 /*
1333 * In case of record types for which we have 'fragment' storage, fill
1334 * that so that we can process the data at a fixed place.
1335 */
1336 {
1337 size_t dest_maxlen = 0;
1338 unsigned char *dest = NULL;
1339 size_t *dest_len = NULL;
1340
1341 if (SSL3_RECORD_get_type(rr) == SSL3_RT_HANDSHAKE) {
1342 dest_maxlen = sizeof s->rlayer.handshake_fragment;
1343 dest = s->rlayer.handshake_fragment;
1344 dest_len = &s->rlayer.handshake_fragment_len;
1345 } else if (SSL3_RECORD_get_type(rr) == SSL3_RT_ALERT) {
1346 dest_maxlen = sizeof s->rlayer.alert_fragment;
1347 dest = s->rlayer.alert_fragment;
1348 dest_len = &s->rlayer.alert_fragment_len;
1349 }
1350
1351 if (dest_maxlen > 0) {
1352 n = dest_maxlen - *dest_len; /* available space in 'dest' */
1353 if (SSL3_RECORD_get_length(rr) < n)
1354 n = SSL3_RECORD_get_length(rr); /* available bytes */
1355
1356 /* now move 'n' bytes: */
1357 while (n-- > 0) {
1358 dest[(*dest_len)++] =
1359 SSL3_RECORD_get_data(rr)[SSL3_RECORD_get_off(rr)];
1360 SSL3_RECORD_add_off(rr, 1);
1361 SSL3_RECORD_add_length(rr, -1);
1362 }
1363
1364 if (*dest_len < dest_maxlen) {
1365 SSL3_RECORD_set_read(rr);
1366 goto start; /* fragment was too small */
1367 }
1368 }
1369 }
1370
1371 /*-
1372 * s->rlayer.handshake_fragment_len == 4 iff rr->type == SSL3_RT_HANDSHAKE;
1373 * s->rlayer.alert_fragment_len == 2 iff rr->type == SSL3_RT_ALERT.
1374 * (Possibly rr is 'empty' now, i.e. rr->length may be 0.)
1375 */
1376
1377 /* If we are a client, check for an incoming 'Hello Request': */
1378 if ((!s->server) &&
1379 (s->rlayer.handshake_fragment_len >= 4) &&
1380 (s->rlayer.handshake_fragment[0] == SSL3_MT_HELLO_REQUEST) &&
1381 (s->session != NULL) && (s->session->cipher != NULL)) {
1382 s->rlayer.handshake_fragment_len = 0;
1383
1384 if ((s->rlayer.handshake_fragment[1] != 0) ||
1385 (s->rlayer.handshake_fragment[2] != 0) ||
1386 (s->rlayer.handshake_fragment[3] != 0)) {
1387 al = SSL_AD_DECODE_ERROR;
1388 SSLerr(SSL_F_SSL3_READ_BYTES, SSL_R_BAD_HELLO_REQUEST);
1389 goto f_err;
1390 }
1391
1392 if (s->msg_callback)
1393 s->msg_callback(0, s->version, SSL3_RT_HANDSHAKE,
1394 s->rlayer.handshake_fragment, 4, s,
1395 s->msg_callback_arg);
1396
1397 if (SSL_is_init_finished(s) &&
1398 !(s->s3->flags & SSL3_FLAGS_NO_RENEGOTIATE_CIPHERS) &&
1399 !s->s3->renegotiate) {
1400 ssl3_renegotiate(s);
1401 if (ssl3_renegotiate_check(s)) {
1402 i = s->handshake_func(s);
1403 if (i < 0)
1404 return i;
1405 if (i == 0) {
1406 SSLerr(SSL_F_SSL3_READ_BYTES, SSL_R_SSL_HANDSHAKE_FAILURE);
1407 return -1;
1408 }
1409
1410 if (!(s->mode & SSL_MODE_AUTO_RETRY)) {
1411 if (SSL3_BUFFER_get_left(rbuf) == 0) {
1412 /* no read-ahead left? */
1413 BIO *bio;
1414 /*
1415 * In the case where we try to read application data,
1416 * but we trigger an SSL handshake, we return -1 with
1417 * the retry option set. Otherwise renegotiation may
1418 * cause nasty problems in the blocking world
1419 */
1420 s->rwstate = SSL_READING;
1421 bio = SSL_get_rbio(s);
1422 BIO_clear_retry_flags(bio);
1423 BIO_set_retry_read(bio);
1424 return -1;
1425 }
1426 }
1427 }
1428 }
1429 /*
1430 * we either finished a handshake or ignored the request, now try
1431 * again to obtain the (application) data we were asked for
1432 */
1433 goto start;
1434 }
1435 /*
1436 * If we are a server and get a client hello when renegotiation isn't
1437 * allowed send back a no renegotiation alert and carry on. WARNING:
1438 * experimental code, needs reviewing (steve)
1439 */
1440 if (s->server &&
1441 SSL_is_init_finished(s) &&
1442 !s->s3->send_connection_binding &&
1443 (s->version > SSL3_VERSION) &&
1444 (s->rlayer.handshake_fragment_len >= 4) &&
1445 (s->rlayer.handshake_fragment[0] == SSL3_MT_CLIENT_HELLO) &&
1446 (s->session != NULL) && (s->session->cipher != NULL) &&
1447 !(s->ctx->options & SSL_OP_ALLOW_UNSAFE_LEGACY_RENEGOTIATION)) {
1448 SSL3_RECORD_set_length(rr, 0);
1449 SSL3_RECORD_set_read(rr);
1450 ssl3_send_alert(s, SSL3_AL_WARNING, SSL_AD_NO_RENEGOTIATION);
1451 goto start;
1452 }
1453 if (s->rlayer.alert_fragment_len >= 2) {
1454 int alert_level = s->rlayer.alert_fragment[0];
1455 int alert_descr = s->rlayer.alert_fragment[1];
1456
1457 s->rlayer.alert_fragment_len = 0;
1458
1459 if (s->msg_callback)
1460 s->msg_callback(0, s->version, SSL3_RT_ALERT,
1461 s->rlayer.alert_fragment, 2, s,
1462 s->msg_callback_arg);
1463
1464 if (s->info_callback != NULL)
1465 cb = s->info_callback;
1466 else if (s->ctx->info_callback != NULL)
1467 cb = s->ctx->info_callback;
1468
1469 if (cb != NULL) {
1470 j = (alert_level << 8) | alert_descr;
1471 cb(s, SSL_CB_READ_ALERT, j);
1472 }
1473
1474 if (alert_level == SSL3_AL_WARNING) {
1475 s->s3->warn_alert = alert_descr;
1476 SSL3_RECORD_set_read(rr);
1477
1478 s->rlayer.alert_count++;
1479 if (s->rlayer.alert_count == MAX_WARN_ALERT_COUNT) {
1480 al = SSL_AD_UNEXPECTED_MESSAGE;
1481 SSLerr(SSL_F_SSL3_READ_BYTES, SSL_R_TOO_MANY_WARN_ALERTS);
1482 goto f_err;
1483 }
1484
1485 if (alert_descr == SSL_AD_CLOSE_NOTIFY) {
1486 s->shutdown |= SSL_RECEIVED_SHUTDOWN;
1487 return 0;
1488 }
1489 /*
1490 * This is a warning but we receive it if we requested
1491 * renegotiation and the peer denied it. Terminate with a fatal
1492 * alert because if application tried to renegotiate it
1493 * presumably had a good reason and expects it to succeed. In
1494 * future we might have a renegotiation where we don't care if
1495 * the peer refused it where we carry on.
1496 */
1497 else if (alert_descr == SSL_AD_NO_RENEGOTIATION) {
1498 al = SSL_AD_HANDSHAKE_FAILURE;
1499 SSLerr(SSL_F_SSL3_READ_BYTES, SSL_R_NO_RENEGOTIATION);
1500 goto f_err;
1501 }
1502 #ifdef SSL_AD_MISSING_SRP_USERNAME
1503 else if (alert_descr == SSL_AD_MISSING_SRP_USERNAME)
1504 return (0);
1505 #endif
1506 } else if (alert_level == SSL3_AL_FATAL) {
1507 char tmp[16];
1508
1509 s->rwstate = SSL_NOTHING;
1510 s->s3->fatal_alert = alert_descr;
1511 SSLerr(SSL_F_SSL3_READ_BYTES, SSL_AD_REASON_OFFSET + alert_descr);
1512 BIO_snprintf(tmp, sizeof tmp, "%d", alert_descr);
1513 ERR_add_error_data(2, "SSL alert number ", tmp);
1514 s->shutdown |= SSL_RECEIVED_SHUTDOWN;
1515 SSL3_RECORD_set_read(rr);
1516 SSL_CTX_remove_session(s->session_ctx, s->session);
1517 return 0;
1518 } else {
1519 al = SSL_AD_ILLEGAL_PARAMETER;
1520 SSLerr(SSL_F_SSL3_READ_BYTES, SSL_R_UNKNOWN_ALERT_TYPE);
1521 goto f_err;
1522 }
1523
1524 goto start;
1525 }
1526
1527 if (s->shutdown & SSL_SENT_SHUTDOWN) { /* but we have not received a
1528 * shutdown */
1529 s->rwstate = SSL_NOTHING;
1530 SSL3_RECORD_set_length(rr, 0);
1531 SSL3_RECORD_set_read(rr);
1532 return 0;
1533 }
1534
1535 if (SSL3_RECORD_get_type(rr) == SSL3_RT_CHANGE_CIPHER_SPEC) {
1536 al = SSL_AD_UNEXPECTED_MESSAGE;
1537 SSLerr(SSL_F_SSL3_READ_BYTES, SSL_R_CCS_RECEIVED_EARLY);
1538 goto f_err;
1539 }
1540
1541 /*
1542 * Unexpected handshake message (Client Hello, or protocol violation)
1543 */
1544 if ((s->rlayer.handshake_fragment_len >= 4)
1545 && !ossl_statem_get_in_handshake(s)) {
1546 if (SSL_is_init_finished(s) &&
1547 !(s->s3->flags & SSL3_FLAGS_NO_RENEGOTIATE_CIPHERS)) {
1548 ossl_statem_set_in_init(s, 1);
1549 s->renegotiate = 1;
1550 s->new_session = 1;
1551 }
1552 i = s->handshake_func(s);
1553 if (i < 0)
1554 return i;
1555 if (i == 0) {
1556 SSLerr(SSL_F_SSL3_READ_BYTES, SSL_R_SSL_HANDSHAKE_FAILURE);
1557 return -1;
1558 }
1559
1560 if (!(s->mode & SSL_MODE_AUTO_RETRY)) {
1561 if (SSL3_BUFFER_get_left(rbuf) == 0) {
1562 /* no read-ahead left? */
1563 BIO *bio;
1564 /*
1565 * In the case where we try to read application data, but we
1566 * trigger an SSL handshake, we return -1 with the retry
1567 * option set. Otherwise renegotiation may cause nasty
1568 * problems in the blocking world
1569 */
1570 s->rwstate = SSL_READING;
1571 bio = SSL_get_rbio(s);
1572 BIO_clear_retry_flags(bio);
1573 BIO_set_retry_read(bio);
1574 return -1;
1575 }
1576 }
1577 goto start;
1578 }
1579
1580 switch (SSL3_RECORD_get_type(rr)) {
1581 default:
1582 /*
1583 * TLS 1.0 and 1.1 say you SHOULD ignore unrecognised record types, but
1584 * TLS 1.2 says you MUST send an unexpected message alert. We use the
1585 * TLS 1.2 behaviour for all protocol versions to prevent issues where
1586 * no progress is being made and the peer continually sends unrecognised
1587 * record types, using up resources processing them.
1588 */
1589 al = SSL_AD_UNEXPECTED_MESSAGE;
1590 SSLerr(SSL_F_SSL3_READ_BYTES, SSL_R_UNEXPECTED_RECORD);
1591 goto f_err;
1592 case SSL3_RT_CHANGE_CIPHER_SPEC:
1593 case SSL3_RT_ALERT:
1594 case SSL3_RT_HANDSHAKE:
1595 /*
1596 * we already handled all of these, with the possible exception of
1597 * SSL3_RT_HANDSHAKE when ossl_statem_get_in_handshake(s) is true, but
1598 * that should not happen when type != rr->type
1599 */
1600 al = SSL_AD_UNEXPECTED_MESSAGE;
1601 SSLerr(SSL_F_SSL3_READ_BYTES, ERR_R_INTERNAL_ERROR);
1602 goto f_err;
1603 case SSL3_RT_APPLICATION_DATA:
1604 /*
1605 * At this point, we were expecting handshake data, but have
1606 * application data. If the library was running inside ssl3_read()
1607 * (i.e. in_read_app_data is set) and it makes sense to read
1608 * application data at this point (session renegotiation not yet
1609 * started), we will indulge it.
1610 */
1611 if (ossl_statem_app_data_allowed(s)) {
1612 s->s3->in_read_app_data = 2;
1613 return -1;
1614 } else {
1615 al = SSL_AD_UNEXPECTED_MESSAGE;
1616 SSLerr(SSL_F_SSL3_READ_BYTES, SSL_R_UNEXPECTED_RECORD);
1617 goto f_err;
1618 }
1619 }
1620 /* not reached */
1621
1622 f_err:
1623 ssl3_send_alert(s, SSL3_AL_FATAL, al);
1624 return -1;
1625 }
1626
1627 void ssl3_record_sequence_update(unsigned char *seq)
1628 {
1629 int i;
1630
1631 for (i = 7; i >= 0; i--) {
1632 ++seq[i];
1633 if (seq[i] != 0)
1634 break;
1635 }
1636 }
1637
1638 /*
1639 * Returns true if the current rrec was sent in SSLv2 backwards compatible
1640 * format and false otherwise.
1641 */
1642 int RECORD_LAYER_is_sslv2_record(RECORD_LAYER *rl)
1643 {
1644 return SSL3_RECORD_is_sslv2_record(&rl->rrec[0]);
1645 }
1646
1647 /*
1648 * Returns the length in bytes of the current rrec
1649 */
1650 size_t RECORD_LAYER_get_rrec_length(RECORD_LAYER *rl)
1651 {
1652 return SSL3_RECORD_get_length(&rl->rrec[0]);
1653 }