1 /* $OpenBSD: packet.c,v 1.318 2025/02/18 08:02:12 djm Exp $ */
2 /*
3 * Author: Tatu Ylonen <ylo@cs.hut.fi>
4 * Copyright (c) 1995 Tatu Ylonen <ylo@cs.hut.fi>, Espoo, Finland
5 * All rights reserved
6 * This file contains code implementing the packet protocol and communication
7 * with the other side. This same code is used both on client and server side.
8 *
9 * As far as I am concerned, the code I have written for this software
10 * can be used freely for any purpose. Any derived versions of this
11 * software must be clearly marked as such, and if the derived work is
12 * incompatible with the protocol description in the RFC file, it must be
13 * called by a name other than "ssh" or "Secure Shell".
14 *
15 *
16 * SSH2 packet format added by Markus Friedl.
17 * Copyright (c) 2000, 2001 Markus Friedl. All rights reserved.
18 *
19 * Redistribution and use in source and binary forms, with or without
20 * modification, are permitted provided that the following conditions
21 * are met:
22 * 1. Redistributions of source code must retain the above copyright
23 * notice, this list of conditions and the following disclaimer.
24 * 2. Redistributions in binary form must reproduce the above copyright
25 * notice, this list of conditions and the following disclaimer in the
26 * documentation and/or other materials provided with the distribution.
27 *
28 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
29 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
30 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
31 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
32 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
33 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
34 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
35 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
36 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
37 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
38 */
39
40 #include "includes.h"
41
42 #include <sys/types.h>
43 #include "openbsd-compat/sys-queue.h"
44 #include <sys/socket.h>
45 #ifdef HAVE_SYS_TIME_H
46 # include <sys/time.h>
47 #endif
48
49 #include <netinet/in.h>
50 #include <netinet/ip.h>
51 #include <arpa/inet.h>
52
53 #include <errno.h>
54 #include <netdb.h>
55 #include <stdarg.h>
56 #include <stdio.h>
57 #include <stdlib.h>
58 #include <string.h>
59 #include <unistd.h>
60 #include <limits.h>
61 #ifdef HAVE_POLL_H
62 #include <poll.h>
63 #endif
64 #include <signal.h>
65 #include <time.h>
66
67 /*
68 * Explicitly include OpenSSL before zlib as some versions of OpenSSL have
69 * "free_func" in their headers, which zlib typedefs.
70 */
71 #ifdef WITH_OPENSSL
72 # include <openssl/bn.h>
73 # include <openssl/evp.h>
74 # ifdef OPENSSL_HAS_ECC
75 # include <openssl/ec.h>
76 # endif
77 #endif
78
79 #ifdef WITH_ZLIB
80 #include <zlib.h>
81 #endif
82
83 #include "xmalloc.h"
84 #include "compat.h"
85 #include "ssh2.h"
86 #include "cipher.h"
87 #include "sshkey.h"
88 #include "kex.h"
89 #include "digest.h"
90 #include "mac.h"
91 #include "log.h"
92 #include "canohost.h"
93 #include "misc.h"
94 #include "channels.h"
95 #include "ssh.h"
96 #include "packet.h"
97 #include "ssherr.h"
98 #include "sshbuf.h"
99
100 #ifdef PACKET_DEBUG
101 #define DBG(x) x
102 #else
103 #define DBG(x)
104 #endif
105
106 #define PACKET_MAX_SIZE (256 * 1024)
107
108 struct packet_state {
109 u_int32_t seqnr;
110 u_int32_t packets;
111 u_int64_t blocks;
112 u_int64_t bytes;
113 };
114
115 struct packet {
116 TAILQ_ENTRY(packet) next;
117 u_char type;
118 struct sshbuf *payload;
119 };
120
121 struct session_state {
122 /*
123 * This variable contains the file descriptors used for
124 * communicating with the other side. connection_in is used for
125 * reading; connection_out for writing. These can be the same
126 * descriptor, in which case it is assumed to be a socket.
127 */
128 int connection_in;
129 int connection_out;
130
131 /* Protocol flags for the remote side. */
132 u_int remote_protocol_flags;
133
134 /* Encryption context for receiving data. Only used for decryption. */
135 struct sshcipher_ctx *receive_context;
136
137 /* Encryption context for sending data. Only used for encryption. */
138 struct sshcipher_ctx *send_context;
139
140 /* Buffer for raw input data from the socket. */
141 struct sshbuf *input;
142
143 /* Buffer for raw output data going to the socket. */
144 struct sshbuf *output;
145
146 /* Buffer for the partial outgoing packet being constructed. */
147 struct sshbuf *outgoing_packet;
148
149 /* Buffer for the incoming packet currently being processed. */
150 struct sshbuf *incoming_packet;
151
152 /* Scratch buffer for packet compression/decompression. */
153 struct sshbuf *compression_buffer;
154
155 #ifdef WITH_ZLIB
156 /* Incoming/outgoing compression dictionaries */
157 z_stream compression_in_stream;
158 z_stream compression_out_stream;
159 #endif
160 int compression_in_started;
161 int compression_out_started;
162 int compression_in_failures;
163 int compression_out_failures;
164
165 /* default maximum packet size */
166 u_int max_packet_size;
167
168 /* Flag indicating whether this module has been initialized. */
169 int initialized;
170
171 /* Set to true if the connection is interactive. */
172 int interactive_mode;
173
174 /* Set to true if we are the server side. */
175 int server_side;
176
177 /* Set to true if we are authenticated. */
178 int after_authentication;
179
180 int keep_alive_timeouts;
181
182 /* The maximum time that we will wait to send or receive a packet */
183 int packet_timeout_ms;
184
185 /* Session key information for Encryption and MAC */
186 struct newkeys *newkeys[MODE_MAX];
187 struct packet_state p_read, p_send;
188
189 /* Volume-based rekeying */
190 u_int64_t max_blocks_in, max_blocks_out, rekey_limit;
191
192 /* Time-based rekeying */
193 u_int32_t rekey_interval; /* how often in seconds */
194 time_t rekey_time; /* time of last rekeying */
195
196 /* roundup current message to extra_pad bytes */
197 u_char extra_pad;
198
199 /* XXX discard incoming data after MAC error */
200 u_int packet_discard;
201 size_t packet_discard_mac_already;
202 struct sshmac *packet_discard_mac;
203
204 /* Used in packet_read_poll2() */
205 u_int packlen;
206
207 /* Used in packet_send2 */
208 int rekeying;
209
210 /* Used in ssh_packet_send_mux() */
211 int mux;
212
213 /* Used in packet_set_interactive */
214 int set_interactive_called;
215
216 /* Used in packet_set_maxsize */
217 int set_maxsize_called;
218
219 /* One-off warning about weak ciphers */
220 int cipher_warning_done;
221
222 /* Hook for fuzzing inbound packets */
223 ssh_packet_hook_fn *hook_in;
224 void *hook_in_ctx;
225
226 TAILQ_HEAD(, packet) outgoing;
227 };
228
229 struct ssh *
ssh_alloc_session_state(void)230 ssh_alloc_session_state(void)
231 {
232 struct ssh *ssh = NULL;
233 struct session_state *state = NULL;
234
235 if ((ssh = calloc(1, sizeof(*ssh))) == NULL ||
236 (state = calloc(1, sizeof(*state))) == NULL ||
237 (ssh->kex = kex_new()) == NULL ||
238 (state->input = sshbuf_new()) == NULL ||
239 (state->output = sshbuf_new()) == NULL ||
240 (state->outgoing_packet = sshbuf_new()) == NULL ||
241 (state->incoming_packet = sshbuf_new()) == NULL)
242 goto fail;
243 TAILQ_INIT(&state->outgoing);
244 TAILQ_INIT(&ssh->private_keys);
245 TAILQ_INIT(&ssh->public_keys);
246 state->connection_in = -1;
247 state->connection_out = -1;
248 state->max_packet_size = 32768;
249 state->packet_timeout_ms = -1;
250 state->p_send.packets = state->p_read.packets = 0;
251 state->initialized = 1;
252 /*
253 * ssh_packet_send2() needs to queue packets until
254 * we've done the initial key exchange.
255 */
256 state->rekeying = 1;
257 ssh->state = state;
258 return ssh;
259 fail:
260 if (ssh) {
261 kex_free(ssh->kex);
262 free(ssh);
263 }
264 if (state) {
265 sshbuf_free(state->input);
266 sshbuf_free(state->output);
267 sshbuf_free(state->incoming_packet);
268 sshbuf_free(state->outgoing_packet);
269 free(state);
270 }
271 return NULL;
272 }
273
274 void
ssh_packet_set_input_hook(struct ssh * ssh,ssh_packet_hook_fn * hook,void * ctx)275 ssh_packet_set_input_hook(struct ssh *ssh, ssh_packet_hook_fn *hook, void *ctx)
276 {
277 ssh->state->hook_in = hook;
278 ssh->state->hook_in_ctx = ctx;
279 }
280
281 /* Returns nonzero if rekeying is in progress */
282 int
ssh_packet_is_rekeying(struct ssh * ssh)283 ssh_packet_is_rekeying(struct ssh *ssh)
284 {
285 return ssh->state->rekeying ||
286 (ssh->kex != NULL && ssh->kex->done == 0);
287 }
288
289 /*
290 * Sets the descriptors used for communication.
291 */
292 struct ssh *
ssh_packet_set_connection(struct ssh * ssh,int fd_in,int fd_out)293 ssh_packet_set_connection(struct ssh *ssh, int fd_in, int fd_out)
294 {
295 struct session_state *state;
296 const struct sshcipher *none = cipher_by_name("none");
297 int r;
298
299 if (none == NULL) {
300 error_f("cannot load cipher 'none'");
301 return NULL;
302 }
303 if (ssh == NULL)
304 ssh = ssh_alloc_session_state();
305 if (ssh == NULL) {
306 error_f("could not allocate state");
307 return NULL;
308 }
309 state = ssh->state;
310 state->connection_in = fd_in;
311 state->connection_out = fd_out;
312 if ((r = cipher_init(&state->send_context, none,
313 (const u_char *)"", 0, NULL, 0, CIPHER_ENCRYPT)) != 0 ||
314 (r = cipher_init(&state->receive_context, none,
315 (const u_char *)"", 0, NULL, 0, CIPHER_DECRYPT)) != 0) {
316 error_fr(r, "cipher_init failed");
317 free(ssh); /* XXX need ssh_free_session_state? */
318 return NULL;
319 }
320 state->newkeys[MODE_IN] = state->newkeys[MODE_OUT] = NULL;
321 /*
322 * Cache the IP address of the remote connection for use in error
323 * messages that might be generated after the connection has closed.
324 */
325 (void)ssh_remote_ipaddr(ssh);
326 return ssh;
327 }
328
329 void
ssh_packet_set_timeout(struct ssh * ssh,int timeout,int count)330 ssh_packet_set_timeout(struct ssh *ssh, int timeout, int count)
331 {
332 struct session_state *state = ssh->state;
333
334 if (timeout <= 0 || count <= 0) {
335 state->packet_timeout_ms = -1;
336 return;
337 }
338 if ((INT_MAX / 1000) / count < timeout)
339 state->packet_timeout_ms = INT_MAX;
340 else
341 state->packet_timeout_ms = timeout * count * 1000;
342 }
343
344 void
ssh_packet_set_mux(struct ssh * ssh)345 ssh_packet_set_mux(struct ssh *ssh)
346 {
347 ssh->state->mux = 1;
348 ssh->state->rekeying = 0;
349 kex_free(ssh->kex);
350 ssh->kex = NULL;
351 }
352
353 int
ssh_packet_get_mux(struct ssh * ssh)354 ssh_packet_get_mux(struct ssh *ssh)
355 {
356 return ssh->state->mux;
357 }
358
359 int
ssh_packet_set_log_preamble(struct ssh * ssh,const char * fmt,...)360 ssh_packet_set_log_preamble(struct ssh *ssh, const char *fmt, ...)
361 {
362 va_list args;
363 int r;
364
365 free(ssh->log_preamble);
366 if (fmt == NULL)
367 ssh->log_preamble = NULL;
368 else {
369 va_start(args, fmt);
370 r = vasprintf(&ssh->log_preamble, fmt, args);
371 va_end(args);
372 if (r < 0 || ssh->log_preamble == NULL)
373 return SSH_ERR_ALLOC_FAIL;
374 }
375 return 0;
376 }
377
378 int
ssh_packet_stop_discard(struct ssh * ssh)379 ssh_packet_stop_discard(struct ssh *ssh)
380 {
381 struct session_state *state = ssh->state;
382 int r;
383
384 if (state->packet_discard_mac) {
385 char buf[1024];
386 size_t dlen = PACKET_MAX_SIZE;
387
388 if (dlen > state->packet_discard_mac_already)
389 dlen -= state->packet_discard_mac_already;
390 memset(buf, 'a', sizeof(buf));
391 while (sshbuf_len(state->incoming_packet) < dlen)
392 if ((r = sshbuf_put(state->incoming_packet, buf,
393 sizeof(buf))) != 0)
394 return r;
395 (void) mac_compute(state->packet_discard_mac,
396 state->p_read.seqnr,
397 sshbuf_ptr(state->incoming_packet), dlen,
398 NULL, 0);
399 }
400 logit("Finished discarding for %.200s port %d",
401 ssh_remote_ipaddr(ssh), ssh_remote_port(ssh));
402 return SSH_ERR_MAC_INVALID;
403 }
404
405 static int
ssh_packet_start_discard(struct ssh * ssh,struct sshenc * enc,struct sshmac * mac,size_t mac_already,u_int discard)406 ssh_packet_start_discard(struct ssh *ssh, struct sshenc *enc,
407 struct sshmac *mac, size_t mac_already, u_int discard)
408 {
409 struct session_state *state = ssh->state;
410 int r;
411
412 if (enc == NULL || !cipher_is_cbc(enc->cipher) || (mac && mac->etm)) {
413 if ((r = sshpkt_disconnect(ssh, "Packet corrupt")) != 0)
414 return r;
415 return SSH_ERR_MAC_INVALID;
416 }
417 /*
418 * Record number of bytes over which the mac has already
419 * been computed in order to minimize timing attacks.
420 */
421 if (mac && mac->enabled) {
422 state->packet_discard_mac = mac;
423 state->packet_discard_mac_already = mac_already;
424 }
425 if (sshbuf_len(state->input) >= discard)
426 return ssh_packet_stop_discard(ssh);
427 state->packet_discard = discard - sshbuf_len(state->input);
428 return 0;
429 }
430
431 /* Returns 1 if remote host is connected via socket, 0 if not. */
432
433 int
ssh_packet_connection_is_on_socket(struct ssh * ssh)434 ssh_packet_connection_is_on_socket(struct ssh *ssh)
435 {
436 struct session_state *state;
437 struct sockaddr_storage from, to;
438 socklen_t fromlen, tolen;
439
440 if (ssh == NULL || ssh->state == NULL)
441 return 0;
442
443 state = ssh->state;
444 if (state->connection_in == -1 || state->connection_out == -1)
445 return 0;
446 /* filedescriptors in and out are the same, so it's a socket */
447 if (state->connection_in == state->connection_out)
448 return 1;
449 fromlen = sizeof(from);
450 memset(&from, 0, sizeof(from));
451 if (getpeername(state->connection_in, (struct sockaddr *)&from,
452 &fromlen) == -1)
453 return 0;
454 tolen = sizeof(to);
455 memset(&to, 0, sizeof(to));
456 if (getpeername(state->connection_out, (struct sockaddr *)&to,
457 &tolen) == -1)
458 return 0;
459 if (fromlen != tolen || memcmp(&from, &to, fromlen) != 0)
460 return 0;
461 if (from.ss_family != AF_INET && from.ss_family != AF_INET6)
462 return 0;
463 return 1;
464 }
465
466 void
ssh_packet_get_bytes(struct ssh * ssh,u_int64_t * ibytes,u_int64_t * obytes)467 ssh_packet_get_bytes(struct ssh *ssh, u_int64_t *ibytes, u_int64_t *obytes)
468 {
469 if (ibytes)
470 *ibytes = ssh->state->p_read.bytes;
471 if (obytes)
472 *obytes = ssh->state->p_send.bytes;
473 }
474
475 int
ssh_packet_connection_af(struct ssh * ssh)476 ssh_packet_connection_af(struct ssh *ssh)
477 {
478 return get_sock_af(ssh->state->connection_out);
479 }
480
481 /* Sets the connection into non-blocking mode. */
482
483 void
ssh_packet_set_nonblocking(struct ssh * ssh)484 ssh_packet_set_nonblocking(struct ssh *ssh)
485 {
486 /* Set the socket into non-blocking mode. */
487 set_nonblock(ssh->state->connection_in);
488
489 if (ssh->state->connection_out != ssh->state->connection_in)
490 set_nonblock(ssh->state->connection_out);
491 }
492
493 /* Returns the socket used for reading. */
494
495 int
ssh_packet_get_connection_in(struct ssh * ssh)496 ssh_packet_get_connection_in(struct ssh *ssh)
497 {
498 return ssh->state->connection_in;
499 }
500
501 /* Returns the descriptor used for writing. */
502
503 int
ssh_packet_get_connection_out(struct ssh * ssh)504 ssh_packet_get_connection_out(struct ssh *ssh)
505 {
506 return ssh->state->connection_out;
507 }
508
509 /*
510 * Returns the IP-address of the remote host as a string. The returned
511 * string must not be freed.
512 */
513
514 const char *
ssh_remote_ipaddr(struct ssh * ssh)515 ssh_remote_ipaddr(struct ssh *ssh)
516 {
517 int sock;
518
519 /* Check whether we have cached the ipaddr. */
520 if (ssh->remote_ipaddr == NULL) {
521 if (ssh_packet_connection_is_on_socket(ssh)) {
522 sock = ssh->state->connection_in;
523 ssh->remote_ipaddr = get_peer_ipaddr(sock);
524 ssh->remote_port = get_peer_port(sock);
525 ssh->local_ipaddr = get_local_ipaddr(sock);
526 ssh->local_port = get_local_port(sock);
527 } else {
528 ssh->remote_ipaddr = xstrdup("UNKNOWN");
529 ssh->remote_port = 65535;
530 ssh->local_ipaddr = xstrdup("UNKNOWN");
531 ssh->local_port = 65535;
532 }
533 }
534 return ssh->remote_ipaddr;
535 }
536
537 /*
538 * Returns the remote DNS hostname as a string. The returned string must not
539 * be freed. NB. this will usually trigger a DNS query. Return value is on
540 * heap and no caching is performed.
541 * This function does additional checks on the hostname to mitigate some
542 * attacks based on conflation of hostnames and addresses and will
543 * fall back to returning an address on error.
544 */
545
546 char *
ssh_remote_hostname(struct ssh * ssh)547 ssh_remote_hostname(struct ssh *ssh)
548 {
549 struct sockaddr_storage from;
550 socklen_t fromlen;
551 struct addrinfo hints, *ai, *aitop;
552 char name[NI_MAXHOST], ntop2[NI_MAXHOST];
553 const char *ntop = ssh_remote_ipaddr(ssh);
554
555 /* Get IP address of client. */
556 fromlen = sizeof(from);
557 memset(&from, 0, sizeof(from));
558 if (getpeername(ssh_packet_get_connection_in(ssh),
559 (struct sockaddr *)&from, &fromlen) == -1) {
560 debug_f("getpeername failed: %.100s", strerror(errno));
561 return xstrdup(ntop);
562 }
563
564 ipv64_normalise_mapped(&from, &fromlen);
565 if (from.ss_family == AF_INET6)
566 fromlen = sizeof(struct sockaddr_in6);
567
568 debug3("trying to reverse map address %.100s.", ntop);
569 /* Map the IP address to a host name. */
570 if (getnameinfo((struct sockaddr *)&from, fromlen, name, sizeof(name),
571 NULL, 0, NI_NAMEREQD) != 0) {
572 /* Host name not found. Use ip address. */
573 return xstrdup(ntop);
574 }
575
576 /*
577 * if reverse lookup result looks like a numeric hostname,
578 * someone is trying to trick us by PTR record like following:
579 * 1.1.1.10.in-addr.arpa. IN PTR 2.3.4.5
580 */
581 memset(&hints, 0, sizeof(hints));
582 hints.ai_socktype = SOCK_DGRAM; /*dummy*/
583 hints.ai_flags = AI_NUMERICHOST;
584 if (getaddrinfo(name, NULL, &hints, &ai) == 0) {
585 logit("Nasty PTR record \"%s\" is set up for %s, ignoring",
586 name, ntop);
587 freeaddrinfo(ai);
588 return xstrdup(ntop);
589 }
590
591 /* Names are stored in lowercase. */
592 lowercase(name);
593
594 /*
595 * Map it back to an IP address and check that the given
596 * address actually is an address of this host. This is
597 * necessary because anyone with access to a name server can
598 * define arbitrary names for an IP address. Mapping from
599 * name to IP address can be trusted better (but can still be
600 * fooled if the intruder has access to the name server of
601 * the domain).
602 */
603 memset(&hints, 0, sizeof(hints));
604 hints.ai_family = from.ss_family;
605 hints.ai_socktype = SOCK_STREAM;
606 if (getaddrinfo(name, NULL, &hints, &aitop) != 0) {
607 logit("reverse mapping checking getaddrinfo for %.700s "
608 "[%s] failed.", name, ntop);
609 return xstrdup(ntop);
610 }
611 /* Look for the address from the list of addresses. */
612 for (ai = aitop; ai; ai = ai->ai_next) {
613 if (getnameinfo(ai->ai_addr, ai->ai_addrlen, ntop2,
614 sizeof(ntop2), NULL, 0, NI_NUMERICHOST) == 0 &&
615 (strcmp(ntop, ntop2) == 0))
616 break;
617 }
618 freeaddrinfo(aitop);
619 /* If we reached the end of the list, the address was not there. */
620 if (ai == NULL) {
621 /* Address not found for the host name. */
622 logit("Address %.100s maps to %.600s, but this does not "
623 "map back to the address.", ntop, name);
624 return xstrdup(ntop);
625 }
626 return xstrdup(name);
627 }
628
629 /* Returns the port number of the remote host. */
630
631 int
ssh_remote_port(struct ssh * ssh)632 ssh_remote_port(struct ssh *ssh)
633 {
634 (void)ssh_remote_ipaddr(ssh); /* Will lookup and cache. */
635 return ssh->remote_port;
636 }
637
638 /*
639 * Returns the IP-address of the local host as a string. The returned
640 * string must not be freed.
641 */
642
643 const char *
ssh_local_ipaddr(struct ssh * ssh)644 ssh_local_ipaddr(struct ssh *ssh)
645 {
646 (void)ssh_remote_ipaddr(ssh); /* Will lookup and cache. */
647 return ssh->local_ipaddr;
648 }
649
650 /* Returns the port number of the local host. */
651
652 int
ssh_local_port(struct ssh * ssh)653 ssh_local_port(struct ssh *ssh)
654 {
655 (void)ssh_remote_ipaddr(ssh); /* Will lookup and cache. */
656 return ssh->local_port;
657 }
658
659 /* Returns the routing domain of the input socket, or NULL if unavailable */
660 const char *
ssh_packet_rdomain_in(struct ssh * ssh)661 ssh_packet_rdomain_in(struct ssh *ssh)
662 {
663 if (ssh->rdomain_in != NULL)
664 return ssh->rdomain_in;
665 if (!ssh_packet_connection_is_on_socket(ssh))
666 return NULL;
667 ssh->rdomain_in = get_rdomain(ssh->state->connection_in);
668 return ssh->rdomain_in;
669 }
670
671 /* Closes the connection and clears and frees internal data structures. */
672
673 static void
ssh_packet_close_internal(struct ssh * ssh,int do_close)674 ssh_packet_close_internal(struct ssh *ssh, int do_close)
675 {
676 struct session_state *state = ssh->state;
677 u_int mode;
678
679 if (!state->initialized)
680 return;
681 state->initialized = 0;
682 if (do_close) {
683 if (state->connection_in == state->connection_out) {
684 close(state->connection_out);
685 } else {
686 close(state->connection_in);
687 close(state->connection_out);
688 }
689 }
690 sshbuf_free(state->input);
691 sshbuf_free(state->output);
692 sshbuf_free(state->outgoing_packet);
693 sshbuf_free(state->incoming_packet);
694 for (mode = 0; mode < MODE_MAX; mode++) {
695 kex_free_newkeys(state->newkeys[mode]); /* current keys */
696 state->newkeys[mode] = NULL;
697 ssh_clear_newkeys(ssh, mode); /* next keys */
698 }
699 #ifdef WITH_ZLIB
700 /* compression state is in shared mem, so we can only release it once */
701 if (do_close && state->compression_buffer) {
702 sshbuf_free(state->compression_buffer);
703 if (state->compression_out_started) {
704 z_streamp stream = &state->compression_out_stream;
705 debug("compress outgoing: "
706 "raw data %llu, compressed %llu, factor %.2f",
707 (unsigned long long)stream->total_in,
708 (unsigned long long)stream->total_out,
709 stream->total_in == 0 ? 0.0 :
710 (double) stream->total_out / stream->total_in);
711 if (state->compression_out_failures == 0)
712 deflateEnd(stream);
713 }
714 if (state->compression_in_started) {
715 z_streamp stream = &state->compression_in_stream;
716 debug("compress incoming: "
717 "raw data %llu, compressed %llu, factor %.2f",
718 (unsigned long long)stream->total_out,
719 (unsigned long long)stream->total_in,
720 stream->total_out == 0 ? 0.0 :
721 (double) stream->total_in / stream->total_out);
722 if (state->compression_in_failures == 0)
723 inflateEnd(stream);
724 }
725 }
726 #endif /* WITH_ZLIB */
727 cipher_free(state->send_context);
728 cipher_free(state->receive_context);
729 state->send_context = state->receive_context = NULL;
730 if (do_close) {
731 free(ssh->local_ipaddr);
732 ssh->local_ipaddr = NULL;
733 free(ssh->remote_ipaddr);
734 ssh->remote_ipaddr = NULL;
735 free(ssh->state);
736 ssh->state = NULL;
737 kex_free(ssh->kex);
738 ssh->kex = NULL;
739 }
740 }
741
742 void
ssh_packet_close(struct ssh * ssh)743 ssh_packet_close(struct ssh *ssh)
744 {
745 ssh_packet_close_internal(ssh, 1);
746 }
747
748 void
ssh_packet_clear_keys(struct ssh * ssh)749 ssh_packet_clear_keys(struct ssh *ssh)
750 {
751 ssh_packet_close_internal(ssh, 0);
752 }
753
754 /* Sets remote side protocol flags. */
755
756 void
ssh_packet_set_protocol_flags(struct ssh * ssh,u_int protocol_flags)757 ssh_packet_set_protocol_flags(struct ssh *ssh, u_int protocol_flags)
758 {
759 ssh->state->remote_protocol_flags = protocol_flags;
760 }
761
762 /* Returns the remote protocol flags set earlier by the above function. */
763
764 u_int
ssh_packet_get_protocol_flags(struct ssh * ssh)765 ssh_packet_get_protocol_flags(struct ssh *ssh)
766 {
767 return ssh->state->remote_protocol_flags;
768 }
769
770 /*
771 * Starts packet compression from the next packet on in both directions.
772 * Level is compression level 1 (fastest) - 9 (slow, best) as in gzip.
773 */
774
775 static int
ssh_packet_init_compression(struct ssh * ssh)776 ssh_packet_init_compression(struct ssh *ssh)
777 {
778 if (!ssh->state->compression_buffer &&
779 ((ssh->state->compression_buffer = sshbuf_new()) == NULL))
780 return SSH_ERR_ALLOC_FAIL;
781 return 0;
782 }
783
784 #ifdef WITH_ZLIB
785 static int
start_compression_out(struct ssh * ssh,int level)786 start_compression_out(struct ssh *ssh, int level)
787 {
788 if (level < 1 || level > 9)
789 return SSH_ERR_INVALID_ARGUMENT;
790 debug("Enabling compression at level %d.", level);
791 if (ssh->state->compression_out_started == 1)
792 deflateEnd(&ssh->state->compression_out_stream);
793 switch (deflateInit(&ssh->state->compression_out_stream, level)) {
794 case Z_OK:
795 ssh->state->compression_out_started = 1;
796 break;
797 case Z_MEM_ERROR:
798 return SSH_ERR_ALLOC_FAIL;
799 default:
800 return SSH_ERR_INTERNAL_ERROR;
801 }
802 return 0;
803 }
804
805 static int
start_compression_in(struct ssh * ssh)806 start_compression_in(struct ssh *ssh)
807 {
808 if (ssh->state->compression_in_started == 1)
809 inflateEnd(&ssh->state->compression_in_stream);
810 switch (inflateInit(&ssh->state->compression_in_stream)) {
811 case Z_OK:
812 ssh->state->compression_in_started = 1;
813 break;
814 case Z_MEM_ERROR:
815 return SSH_ERR_ALLOC_FAIL;
816 default:
817 return SSH_ERR_INTERNAL_ERROR;
818 }
819 return 0;
820 }
821
822 /* XXX remove need for separate compression buffer */
823 static int
compress_buffer(struct ssh * ssh,struct sshbuf * in,struct sshbuf * out)824 compress_buffer(struct ssh *ssh, struct sshbuf *in, struct sshbuf *out)
825 {
826 u_char buf[4096];
827 int r, status;
828
829 if (ssh->state->compression_out_started != 1)
830 return SSH_ERR_INTERNAL_ERROR;
831
832 /* This case is not handled below. */
833 if (sshbuf_len(in) == 0)
834 return 0;
835
836 /* Input is the contents of the input buffer. */
837 if ((ssh->state->compression_out_stream.next_in =
838 sshbuf_mutable_ptr(in)) == NULL)
839 return SSH_ERR_INTERNAL_ERROR;
840 ssh->state->compression_out_stream.avail_in = sshbuf_len(in);
841
842 /* Loop compressing until deflate() returns with avail_out != 0. */
843 do {
844 /* Set up fixed-size output buffer. */
845 ssh->state->compression_out_stream.next_out = buf;
846 ssh->state->compression_out_stream.avail_out = sizeof(buf);
847
848 /* Compress as much data into the buffer as possible. */
849 status = deflate(&ssh->state->compression_out_stream,
850 Z_PARTIAL_FLUSH);
851 switch (status) {
852 case Z_MEM_ERROR:
853 return SSH_ERR_ALLOC_FAIL;
854 case Z_OK:
855 /* Append compressed data to output_buffer. */
856 if ((r = sshbuf_put(out, buf, sizeof(buf) -
857 ssh->state->compression_out_stream.avail_out)) != 0)
858 return r;
859 break;
860 case Z_STREAM_ERROR:
861 default:
862 ssh->state->compression_out_failures++;
863 return SSH_ERR_INVALID_FORMAT;
864 }
865 } while (ssh->state->compression_out_stream.avail_out == 0);
866 return 0;
867 }
868
869 static int
uncompress_buffer(struct ssh * ssh,struct sshbuf * in,struct sshbuf * out)870 uncompress_buffer(struct ssh *ssh, struct sshbuf *in, struct sshbuf *out)
871 {
872 u_char buf[4096];
873 int r, status;
874
875 if (ssh->state->compression_in_started != 1)
876 return SSH_ERR_INTERNAL_ERROR;
877
878 if ((ssh->state->compression_in_stream.next_in =
879 sshbuf_mutable_ptr(in)) == NULL)
880 return SSH_ERR_INTERNAL_ERROR;
881 ssh->state->compression_in_stream.avail_in = sshbuf_len(in);
882
883 for (;;) {
884 /* Set up fixed-size output buffer. */
885 ssh->state->compression_in_stream.next_out = buf;
886 ssh->state->compression_in_stream.avail_out = sizeof(buf);
887
888 status = inflate(&ssh->state->compression_in_stream,
889 Z_SYNC_FLUSH);
890 switch (status) {
891 case Z_OK:
892 if ((r = sshbuf_put(out, buf, sizeof(buf) -
893 ssh->state->compression_in_stream.avail_out)) != 0)
894 return r;
895 break;
896 case Z_BUF_ERROR:
897 /*
898 * Comments in zlib.h say that we should keep calling
899 * inflate() until we get an error. This appears to
900 * be the error that we get.
901 */
902 return 0;
903 case Z_DATA_ERROR:
904 return SSH_ERR_INVALID_FORMAT;
905 case Z_MEM_ERROR:
906 return SSH_ERR_ALLOC_FAIL;
907 case Z_STREAM_ERROR:
908 default:
909 ssh->state->compression_in_failures++;
910 return SSH_ERR_INTERNAL_ERROR;
911 }
912 }
913 /* NOTREACHED */
914 }
915
916 #else /* WITH_ZLIB */
917
918 static int
start_compression_out(struct ssh * ssh,int level)919 start_compression_out(struct ssh *ssh, int level)
920 {
921 return SSH_ERR_INTERNAL_ERROR;
922 }
923
924 static int
start_compression_in(struct ssh * ssh)925 start_compression_in(struct ssh *ssh)
926 {
927 return SSH_ERR_INTERNAL_ERROR;
928 }
929
930 static int
compress_buffer(struct ssh * ssh,struct sshbuf * in,struct sshbuf * out)931 compress_buffer(struct ssh *ssh, struct sshbuf *in, struct sshbuf *out)
932 {
933 return SSH_ERR_INTERNAL_ERROR;
934 }
935
936 static int
uncompress_buffer(struct ssh * ssh,struct sshbuf * in,struct sshbuf * out)937 uncompress_buffer(struct ssh *ssh, struct sshbuf *in, struct sshbuf *out)
938 {
939 return SSH_ERR_INTERNAL_ERROR;
940 }
941 #endif /* WITH_ZLIB */
942
943 void
ssh_clear_newkeys(struct ssh * ssh,int mode)944 ssh_clear_newkeys(struct ssh *ssh, int mode)
945 {
946 if (ssh->kex && ssh->kex->newkeys[mode]) {
947 kex_free_newkeys(ssh->kex->newkeys[mode]);
948 ssh->kex->newkeys[mode] = NULL;
949 }
950 }
951
952 int
ssh_set_newkeys(struct ssh * ssh,int mode)953 ssh_set_newkeys(struct ssh *ssh, int mode)
954 {
955 struct session_state *state = ssh->state;
956 struct sshenc *enc;
957 struct sshmac *mac;
958 struct sshcomp *comp;
959 struct sshcipher_ctx **ccp;
960 struct packet_state *ps;
961 u_int64_t *max_blocks;
962 const char *wmsg;
963 int r, crypt_type;
964 const char *dir = mode == MODE_OUT ? "out" : "in";
965
966 debug2_f("mode %d", mode);
967
968 if (mode == MODE_OUT) {
969 ccp = &state->send_context;
970 crypt_type = CIPHER_ENCRYPT;
971 ps = &state->p_send;
972 max_blocks = &state->max_blocks_out;
973 } else {
974 ccp = &state->receive_context;
975 crypt_type = CIPHER_DECRYPT;
976 ps = &state->p_read;
977 max_blocks = &state->max_blocks_in;
978 }
979 if (state->newkeys[mode] != NULL) {
980 debug_f("rekeying %s, input %llu bytes %llu blocks, "
981 "output %llu bytes %llu blocks", dir,
982 (unsigned long long)state->p_read.bytes,
983 (unsigned long long)state->p_read.blocks,
984 (unsigned long long)state->p_send.bytes,
985 (unsigned long long)state->p_send.blocks);
986 kex_free_newkeys(state->newkeys[mode]);
987 state->newkeys[mode] = NULL;
988 }
989 /* note that both bytes and the seqnr are not reset */
990 ps->packets = ps->blocks = 0;
991 /* move newkeys from kex to state */
992 if ((state->newkeys[mode] = ssh->kex->newkeys[mode]) == NULL)
993 return SSH_ERR_INTERNAL_ERROR;
994 ssh->kex->newkeys[mode] = NULL;
995 enc = &state->newkeys[mode]->enc;
996 mac = &state->newkeys[mode]->mac;
997 comp = &state->newkeys[mode]->comp;
998 if (cipher_authlen(enc->cipher) == 0) {
999 if ((r = mac_init(mac)) != 0)
1000 return r;
1001 }
1002 mac->enabled = 1;
1003 DBG(debug_f("cipher_init: %s", dir));
1004 cipher_free(*ccp);
1005 *ccp = NULL;
1006 if ((r = cipher_init(ccp, enc->cipher, enc->key, enc->key_len,
1007 enc->iv, enc->iv_len, crypt_type)) != 0)
1008 return r;
1009 if (!state->cipher_warning_done &&
1010 (wmsg = cipher_warning_message(*ccp)) != NULL) {
1011 error("Warning: %s", wmsg);
1012 state->cipher_warning_done = 1;
1013 }
1014 /* Deleting the keys does not gain extra security */
1015 /* explicit_bzero(enc->iv, enc->block_size);
1016 explicit_bzero(enc->key, enc->key_len);
1017 explicit_bzero(mac->key, mac->key_len); */
1018 if (((comp->type == COMP_DELAYED && state->after_authentication)) &&
1019 comp->enabled == 0) {
1020 if ((r = ssh_packet_init_compression(ssh)) < 0)
1021 return r;
1022 if (mode == MODE_OUT) {
1023 if ((r = start_compression_out(ssh, 6)) != 0)
1024 return r;
1025 } else {
1026 if ((r = start_compression_in(ssh)) != 0)
1027 return r;
1028 }
1029 comp->enabled = 1;
1030 }
1031 /*
1032 * The 2^(blocksize*2) limit is too expensive for 3DES,
1033 * so enforce a 1GB limit for small blocksizes.
1034 * See RFC4344 section 3.2.
1035 */
1036 if (enc->block_size >= 16)
1037 *max_blocks = (u_int64_t)1 << (enc->block_size*2);
1038 else
1039 *max_blocks = ((u_int64_t)1 << 30) / enc->block_size;
1040 if (state->rekey_limit)
1041 *max_blocks = MINIMUM(*max_blocks,
1042 state->rekey_limit / enc->block_size);
1043 debug("rekey %s after %llu blocks", dir,
1044 (unsigned long long)*max_blocks);
1045 return 0;
1046 }
1047
1048 #define MAX_PACKETS (1U<<31)
1049 static int
ssh_packet_need_rekeying(struct ssh * ssh,u_int outbound_packet_len)1050 ssh_packet_need_rekeying(struct ssh *ssh, u_int outbound_packet_len)
1051 {
1052 struct session_state *state = ssh->state;
1053 u_int32_t out_blocks;
1054
1055 /* XXX client can't cope with rekeying pre-auth */
1056 if (!state->after_authentication)
1057 return 0;
1058
1059 /* Haven't keyed yet or KEX in progress. */
1060 if (ssh_packet_is_rekeying(ssh))
1061 return 0;
1062
1063 /* Peer can't rekey */
1064 if (ssh->compat & SSH_BUG_NOREKEY)
1065 return 0;
1066
1067 /*
1068 * Permit one packet in or out per rekey - this allows us to
1069 * make progress when rekey limits are very small.
1070 */
1071 if (state->p_send.packets == 0 && state->p_read.packets == 0)
1072 return 0;
1073
1074 /* Time-based rekeying */
1075 if (state->rekey_interval != 0 &&
1076 (int64_t)state->rekey_time + state->rekey_interval <= monotime())
1077 return 1;
1078
1079 /*
1080 * Always rekey when MAX_PACKETS sent in either direction
1081 * As per RFC4344 section 3.1 we do this after 2^31 packets.
1082 */
1083 if (state->p_send.packets > MAX_PACKETS ||
1084 state->p_read.packets > MAX_PACKETS)
1085 return 1;
1086
1087 /* Rekey after (cipher-specific) maximum blocks */
1088 out_blocks = ROUNDUP(outbound_packet_len,
1089 state->newkeys[MODE_OUT]->enc.block_size);
1090 return (state->max_blocks_out &&
1091 (state->p_send.blocks + out_blocks > state->max_blocks_out)) ||
1092 (state->max_blocks_in &&
1093 (state->p_read.blocks > state->max_blocks_in));
1094 }
1095
1096 int
ssh_packet_check_rekey(struct ssh * ssh)1097 ssh_packet_check_rekey(struct ssh *ssh)
1098 {
1099 if (!ssh_packet_need_rekeying(ssh, 0))
1100 return 0;
1101 debug3_f("rekex triggered");
1102 return kex_start_rekex(ssh);
1103 }
1104
1105 /*
1106 * Delayed compression for SSH2 is enabled after authentication:
1107 * This happens on the server side after a SSH2_MSG_USERAUTH_SUCCESS is sent,
1108 * and on the client side after a SSH2_MSG_USERAUTH_SUCCESS is received.
1109 */
1110 static int
ssh_packet_enable_delayed_compress(struct ssh * ssh)1111 ssh_packet_enable_delayed_compress(struct ssh *ssh)
1112 {
1113 struct session_state *state = ssh->state;
1114 struct sshcomp *comp = NULL;
1115 int r, mode;
1116
1117 /*
1118 * Remember that we are past the authentication step, so rekeying
1119 * with COMP_DELAYED will turn on compression immediately.
1120 */
1121 state->after_authentication = 1;
1122 for (mode = 0; mode < MODE_MAX; mode++) {
1123 /* protocol error: USERAUTH_SUCCESS received before NEWKEYS */
1124 if (state->newkeys[mode] == NULL)
1125 continue;
1126 comp = &state->newkeys[mode]->comp;
1127 if (comp && !comp->enabled && comp->type == COMP_DELAYED) {
1128 if ((r = ssh_packet_init_compression(ssh)) != 0)
1129 return r;
1130 if (mode == MODE_OUT) {
1131 if ((r = start_compression_out(ssh, 6)) != 0)
1132 return r;
1133 } else {
1134 if ((r = start_compression_in(ssh)) != 0)
1135 return r;
1136 }
1137 comp->enabled = 1;
1138 }
1139 }
1140 return 0;
1141 }
1142
1143 /* Used to mute debug logging for noisy packet types */
1144 int
ssh_packet_log_type(u_char type)1145 ssh_packet_log_type(u_char type)
1146 {
1147 switch (type) {
1148 case SSH2_MSG_PING:
1149 case SSH2_MSG_PONG:
1150 case SSH2_MSG_CHANNEL_DATA:
1151 case SSH2_MSG_CHANNEL_EXTENDED_DATA:
1152 case SSH2_MSG_CHANNEL_WINDOW_ADJUST:
1153 return 0;
1154 default:
1155 return 1;
1156 }
1157 }
1158
1159 /*
1160 * Finalize packet in SSH2 format (compress, mac, encrypt, enqueue)
1161 */
1162 int
ssh_packet_send2_wrapped(struct ssh * ssh)1163 ssh_packet_send2_wrapped(struct ssh *ssh)
1164 {
1165 struct session_state *state = ssh->state;
1166 u_char type, *cp, macbuf[SSH_DIGEST_MAX_LENGTH];
1167 u_char tmp, padlen, pad = 0;
1168 u_int authlen = 0, aadlen = 0;
1169 u_int len;
1170 struct sshenc *enc = NULL;
1171 struct sshmac *mac = NULL;
1172 struct sshcomp *comp = NULL;
1173 int r, block_size;
1174
1175 if (state->newkeys[MODE_OUT] != NULL) {
1176 enc = &state->newkeys[MODE_OUT]->enc;
1177 mac = &state->newkeys[MODE_OUT]->mac;
1178 comp = &state->newkeys[MODE_OUT]->comp;
1179 /* disable mac for authenticated encryption */
1180 if ((authlen = cipher_authlen(enc->cipher)) != 0)
1181 mac = NULL;
1182 }
1183 block_size = enc ? enc->block_size : 8;
1184 aadlen = (mac && mac->enabled && mac->etm) || authlen ? 4 : 0;
1185
1186 type = (sshbuf_ptr(state->outgoing_packet))[5];
1187 if (ssh_packet_log_type(type))
1188 debug3("send packet: type %u", type);
1189 #ifdef PACKET_DEBUG
1190 fprintf(stderr, "plain: ");
1191 sshbuf_dump(state->outgoing_packet, stderr);
1192 #endif
1193
1194 if (comp && comp->enabled) {
1195 len = sshbuf_len(state->outgoing_packet);
1196 /* skip header, compress only payload */
1197 if ((r = sshbuf_consume(state->outgoing_packet, 5)) != 0)
1198 goto out;
1199 sshbuf_reset(state->compression_buffer);
1200 if ((r = compress_buffer(ssh, state->outgoing_packet,
1201 state->compression_buffer)) != 0)
1202 goto out;
1203 sshbuf_reset(state->outgoing_packet);
1204 if ((r = sshbuf_put(state->outgoing_packet,
1205 "\0\0\0\0\0", 5)) != 0 ||
1206 (r = sshbuf_putb(state->outgoing_packet,
1207 state->compression_buffer)) != 0)
1208 goto out;
1209 DBG(debug("compression: raw %d compressed %zd", len,
1210 sshbuf_len(state->outgoing_packet)));
1211 }
1212
1213 /* sizeof (packet_len + pad_len + payload) */
1214 len = sshbuf_len(state->outgoing_packet);
1215
1216 /*
1217 * calc size of padding, alloc space, get random data,
1218 * minimum padding is 4 bytes
1219 */
1220 len -= aadlen; /* packet length is not encrypted for EtM modes */
1221 padlen = block_size - (len % block_size);
1222 if (padlen < 4)
1223 padlen += block_size;
1224 if (state->extra_pad) {
1225 tmp = state->extra_pad;
1226 state->extra_pad =
1227 ROUNDUP(state->extra_pad, block_size);
1228 /* check if roundup overflowed */
1229 if (state->extra_pad < tmp)
1230 return SSH_ERR_INVALID_ARGUMENT;
1231 tmp = (len + padlen) % state->extra_pad;
1232 /* Check whether pad calculation below will underflow */
1233 if (tmp > state->extra_pad)
1234 return SSH_ERR_INVALID_ARGUMENT;
1235 pad = state->extra_pad - tmp;
1236 DBG(debug3_f("adding %d (len %d padlen %d extra_pad %d)",
1237 pad, len, padlen, state->extra_pad));
1238 tmp = padlen;
1239 padlen += pad;
1240 /* Check whether padlen calculation overflowed */
1241 if (padlen < tmp)
1242 return SSH_ERR_INVALID_ARGUMENT; /* overflow */
1243 state->extra_pad = 0;
1244 }
1245 if ((r = sshbuf_reserve(state->outgoing_packet, padlen, &cp)) != 0)
1246 goto out;
1247 if (enc && !cipher_ctx_is_plaintext(state->send_context)) {
1248 /* random padding */
1249 arc4random_buf(cp, padlen);
1250 } else {
1251 /* clear padding */
1252 explicit_bzero(cp, padlen);
1253 }
1254 /* sizeof (packet_len + pad_len + payload + padding) */
1255 len = sshbuf_len(state->outgoing_packet);
1256 cp = sshbuf_mutable_ptr(state->outgoing_packet);
1257 if (cp == NULL) {
1258 r = SSH_ERR_INTERNAL_ERROR;
1259 goto out;
1260 }
1261 /* packet_length includes payload, padding and padding length field */
1262 POKE_U32(cp, len - 4);
1263 cp[4] = padlen;
1264 DBG(debug("send: len %d (includes padlen %d, aadlen %d)",
1265 len, padlen, aadlen));
1266
1267 /* compute MAC over seqnr and packet(length fields, payload, padding) */
1268 if (mac && mac->enabled && !mac->etm) {
1269 if ((r = mac_compute(mac, state->p_send.seqnr,
1270 sshbuf_ptr(state->outgoing_packet), len,
1271 macbuf, sizeof(macbuf))) != 0)
1272 goto out;
1273 DBG(debug("done calc MAC out #%d", state->p_send.seqnr));
1274 }
1275 /* encrypt packet and append to output buffer. */
1276 if ((r = sshbuf_reserve(state->output,
1277 sshbuf_len(state->outgoing_packet) + authlen, &cp)) != 0)
1278 goto out;
1279 if ((r = cipher_crypt(state->send_context, state->p_send.seqnr, cp,
1280 sshbuf_ptr(state->outgoing_packet),
1281 len - aadlen, aadlen, authlen)) != 0)
1282 goto out;
1283 /* append unencrypted MAC */
1284 if (mac && mac->enabled) {
1285 if (mac->etm) {
1286 /* EtM: compute mac over aadlen + cipher text */
1287 if ((r = mac_compute(mac, state->p_send.seqnr,
1288 cp, len, macbuf, sizeof(macbuf))) != 0)
1289 goto out;
1290 DBG(debug("done calc MAC(EtM) out #%d",
1291 state->p_send.seqnr));
1292 }
1293 if ((r = sshbuf_put(state->output, macbuf, mac->mac_len)) != 0)
1294 goto out;
1295 }
1296 #ifdef PACKET_DEBUG
1297 fprintf(stderr, "encrypted: ");
1298 sshbuf_dump(state->output, stderr);
1299 #endif
1300 /* increment sequence number for outgoing packets */
1301 if (++state->p_send.seqnr == 0) {
1302 if ((ssh->kex->flags & KEX_INITIAL) != 0) {
1303 ssh_packet_disconnect(ssh, "outgoing sequence number "
1304 "wrapped during initial key exchange");
1305 }
1306 logit("outgoing seqnr wraps around");
1307 }
1308 if (++state->p_send.packets == 0)
1309 if (!(ssh->compat & SSH_BUG_NOREKEY))
1310 return SSH_ERR_NEED_REKEY;
1311 state->p_send.blocks += len / block_size;
1312 state->p_send.bytes += len;
1313 sshbuf_reset(state->outgoing_packet);
1314
1315 if (type == SSH2_MSG_NEWKEYS && ssh->kex->kex_strict) {
1316 debug_f("resetting send seqnr %u", state->p_send.seqnr);
1317 state->p_send.seqnr = 0;
1318 }
1319
1320 if (type == SSH2_MSG_NEWKEYS)
1321 r = ssh_set_newkeys(ssh, MODE_OUT);
1322 else if (type == SSH2_MSG_USERAUTH_SUCCESS && state->server_side)
1323 r = ssh_packet_enable_delayed_compress(ssh);
1324 else
1325 r = 0;
1326 out:
1327 return r;
1328 }
1329
1330 /* returns non-zero if the specified packet type is usec by KEX */
1331 static int
ssh_packet_type_is_kex(u_char type)1332 ssh_packet_type_is_kex(u_char type)
1333 {
1334 return
1335 type >= SSH2_MSG_TRANSPORT_MIN &&
1336 type <= SSH2_MSG_TRANSPORT_MAX &&
1337 type != SSH2_MSG_SERVICE_REQUEST &&
1338 type != SSH2_MSG_SERVICE_ACCEPT &&
1339 type != SSH2_MSG_EXT_INFO;
1340 }
1341
1342 int
ssh_packet_send2(struct ssh * ssh)1343 ssh_packet_send2(struct ssh *ssh)
1344 {
1345 struct session_state *state = ssh->state;
1346 struct packet *p;
1347 u_char type;
1348 int r, need_rekey;
1349
1350 if (sshbuf_len(state->outgoing_packet) < 6)
1351 return SSH_ERR_INTERNAL_ERROR;
1352 type = sshbuf_ptr(state->outgoing_packet)[5];
1353 need_rekey = !ssh_packet_type_is_kex(type) &&
1354 ssh_packet_need_rekeying(ssh, sshbuf_len(state->outgoing_packet));
1355
1356 /*
1357 * During rekeying we can only send key exchange messages.
1358 * Queue everything else.
1359 */
1360 if ((need_rekey || state->rekeying) && !ssh_packet_type_is_kex(type)) {
1361 if (need_rekey)
1362 debug3_f("rekex triggered");
1363 debug("enqueue packet: %u", type);
1364 p = calloc(1, sizeof(*p));
1365 if (p == NULL)
1366 return SSH_ERR_ALLOC_FAIL;
1367 p->type = type;
1368 p->payload = state->outgoing_packet;
1369 TAILQ_INSERT_TAIL(&state->outgoing, p, next);
1370 state->outgoing_packet = sshbuf_new();
1371 if (state->outgoing_packet == NULL)
1372 return SSH_ERR_ALLOC_FAIL;
1373 if (need_rekey) {
1374 /*
1375 * This packet triggered a rekey, so send the
1376 * KEXINIT now.
1377 * NB. reenters this function via kex_start_rekex().
1378 */
1379 return kex_start_rekex(ssh);
1380 }
1381 return 0;
1382 }
1383
1384 /* rekeying starts with sending KEXINIT */
1385 if (type == SSH2_MSG_KEXINIT)
1386 state->rekeying = 1;
1387
1388 if ((r = ssh_packet_send2_wrapped(ssh)) != 0)
1389 return r;
1390
1391 /* after a NEWKEYS message we can send the complete queue */
1392 if (type == SSH2_MSG_NEWKEYS) {
1393 state->rekeying = 0;
1394 state->rekey_time = monotime();
1395 while ((p = TAILQ_FIRST(&state->outgoing))) {
1396 type = p->type;
1397 /*
1398 * If this packet triggers a rekex, then skip the
1399 * remaining packets in the queue for now.
1400 * NB. re-enters this function via kex_start_rekex.
1401 */
1402 if (ssh_packet_need_rekeying(ssh,
1403 sshbuf_len(p->payload))) {
1404 debug3_f("queued packet triggered rekex");
1405 return kex_start_rekex(ssh);
1406 }
1407 debug("dequeue packet: %u", type);
1408 sshbuf_free(state->outgoing_packet);
1409 state->outgoing_packet = p->payload;
1410 TAILQ_REMOVE(&state->outgoing, p, next);
1411 memset(p, 0, sizeof(*p));
1412 free(p);
1413 if ((r = ssh_packet_send2_wrapped(ssh)) != 0)
1414 return r;
1415 }
1416 }
1417 return 0;
1418 }
1419
1420 /*
1421 * Waits until a packet has been received, and returns its type. Note that
1422 * no other data is processed until this returns, so this function should not
1423 * be used during the interactive session.
1424 */
1425
1426 int
ssh_packet_read_seqnr(struct ssh * ssh,u_char * typep,u_int32_t * seqnr_p)1427 ssh_packet_read_seqnr(struct ssh *ssh, u_char *typep, u_int32_t *seqnr_p)
1428 {
1429 struct session_state *state = ssh->state;
1430 int len, r, ms_remain = 0;
1431 struct pollfd pfd;
1432 char buf[8192];
1433 struct timeval start;
1434 struct timespec timespec, *timespecp = NULL;
1435
1436 DBG(debug("packet_read()"));
1437
1438 /*
1439 * Since we are blocking, ensure that all written packets have
1440 * been sent.
1441 */
1442 if ((r = ssh_packet_write_wait(ssh)) != 0)
1443 goto out;
1444
1445 /* Stay in the loop until we have received a complete packet. */
1446 for (;;) {
1447 /* Try to read a packet from the buffer. */
1448 if ((r = ssh_packet_read_poll_seqnr(ssh, typep, seqnr_p)) != 0)
1449 break;
1450 /* If we got a packet, return it. */
1451 if (*typep != SSH_MSG_NONE)
1452 break;
1453 /*
1454 * Otherwise, wait for some data to arrive, add it to the
1455 * buffer, and try again.
1456 */
1457 pfd.fd = state->connection_in;
1458 pfd.events = POLLIN;
1459
1460 if (state->packet_timeout_ms > 0) {
1461 ms_remain = state->packet_timeout_ms;
1462 timespecp = ×pec;
1463 }
1464 /* Wait for some data to arrive. */
1465 for (;;) {
1466 if (state->packet_timeout_ms > 0) {
1467 ms_to_timespec(×pec, ms_remain);
1468 monotime_tv(&start);
1469 }
1470 if ((r = ppoll(&pfd, 1, timespecp, NULL)) >= 0)
1471 break;
1472 if (errno != EAGAIN && errno != EINTR &&
1473 errno != EWOULDBLOCK) {
1474 r = SSH_ERR_SYSTEM_ERROR;
1475 goto out;
1476 }
1477 if (state->packet_timeout_ms <= 0)
1478 continue;
1479 ms_subtract_diff(&start, &ms_remain);
1480 if (ms_remain <= 0) {
1481 r = 0;
1482 break;
1483 }
1484 }
1485 if (r == 0) {
1486 r = SSH_ERR_CONN_TIMEOUT;
1487 goto out;
1488 }
1489 /* Read data from the socket. */
1490 len = read(state->connection_in, buf, sizeof(buf));
1491 if (len == 0) {
1492 r = SSH_ERR_CONN_CLOSED;
1493 goto out;
1494 }
1495 if (len == -1) {
1496 r = SSH_ERR_SYSTEM_ERROR;
1497 goto out;
1498 }
1499
1500 /* Append it to the buffer. */
1501 if ((r = ssh_packet_process_incoming(ssh, buf, len)) != 0)
1502 goto out;
1503 }
1504 out:
1505 return r;
1506 }
1507
1508 int
ssh_packet_read(struct ssh * ssh)1509 ssh_packet_read(struct ssh *ssh)
1510 {
1511 u_char type;
1512 int r;
1513
1514 if ((r = ssh_packet_read_seqnr(ssh, &type, NULL)) != 0)
1515 fatal_fr(r, "read");
1516 return type;
1517 }
1518
1519 static int
ssh_packet_read_poll2_mux(struct ssh * ssh,u_char * typep,u_int32_t * seqnr_p)1520 ssh_packet_read_poll2_mux(struct ssh *ssh, u_char *typep, u_int32_t *seqnr_p)
1521 {
1522 struct session_state *state = ssh->state;
1523 const u_char *cp;
1524 size_t need;
1525 int r;
1526
1527 if (ssh->kex)
1528 return SSH_ERR_INTERNAL_ERROR;
1529 *typep = SSH_MSG_NONE;
1530 cp = sshbuf_ptr(state->input);
1531 if (state->packlen == 0) {
1532 if (sshbuf_len(state->input) < 4 + 1)
1533 return 0; /* packet is incomplete */
1534 state->packlen = PEEK_U32(cp);
1535 if (state->packlen < 4 + 1 ||
1536 state->packlen > PACKET_MAX_SIZE)
1537 return SSH_ERR_MESSAGE_INCOMPLETE;
1538 }
1539 need = state->packlen + 4;
1540 if (sshbuf_len(state->input) < need)
1541 return 0; /* packet is incomplete */
1542 sshbuf_reset(state->incoming_packet);
1543 if ((r = sshbuf_put(state->incoming_packet, cp + 4,
1544 state->packlen)) != 0 ||
1545 (r = sshbuf_consume(state->input, need)) != 0 ||
1546 (r = sshbuf_get_u8(state->incoming_packet, NULL)) != 0 ||
1547 (r = sshbuf_get_u8(state->incoming_packet, typep)) != 0)
1548 return r;
1549 if (ssh_packet_log_type(*typep))
1550 debug3_f("type %u", *typep);
1551 /* sshbuf_dump(state->incoming_packet, stderr); */
1552 /* reset for next packet */
1553 state->packlen = 0;
1554 return r;
1555 }
1556
1557 int
ssh_packet_read_poll2(struct ssh * ssh,u_char * typep,u_int32_t * seqnr_p)1558 ssh_packet_read_poll2(struct ssh *ssh, u_char *typep, u_int32_t *seqnr_p)
1559 {
1560 struct session_state *state = ssh->state;
1561 u_int padlen, need;
1562 u_char *cp;
1563 u_int maclen, aadlen = 0, authlen = 0, block_size;
1564 struct sshenc *enc = NULL;
1565 struct sshmac *mac = NULL;
1566 struct sshcomp *comp = NULL;
1567 int r;
1568
1569 if (state->mux)
1570 return ssh_packet_read_poll2_mux(ssh, typep, seqnr_p);
1571
1572 *typep = SSH_MSG_NONE;
1573
1574 if (state->packet_discard)
1575 return 0;
1576
1577 if (state->newkeys[MODE_IN] != NULL) {
1578 enc = &state->newkeys[MODE_IN]->enc;
1579 mac = &state->newkeys[MODE_IN]->mac;
1580 comp = &state->newkeys[MODE_IN]->comp;
1581 /* disable mac for authenticated encryption */
1582 if ((authlen = cipher_authlen(enc->cipher)) != 0)
1583 mac = NULL;
1584 }
1585 maclen = mac && mac->enabled ? mac->mac_len : 0;
1586 block_size = enc ? enc->block_size : 8;
1587 aadlen = (mac && mac->enabled && mac->etm) || authlen ? 4 : 0;
1588
1589 if (aadlen && state->packlen == 0) {
1590 if (cipher_get_length(state->receive_context,
1591 &state->packlen, state->p_read.seqnr,
1592 sshbuf_ptr(state->input), sshbuf_len(state->input)) != 0)
1593 return 0;
1594 if (state->packlen < 1 + 4 ||
1595 state->packlen > PACKET_MAX_SIZE) {
1596 #ifdef PACKET_DEBUG
1597 sshbuf_dump(state->input, stderr);
1598 #endif
1599 logit("Bad packet length %u.", state->packlen);
1600 if ((r = sshpkt_disconnect(ssh, "Packet corrupt")) != 0)
1601 return r;
1602 return SSH_ERR_CONN_CORRUPT;
1603 }
1604 sshbuf_reset(state->incoming_packet);
1605 } else if (state->packlen == 0) {
1606 /*
1607 * check if input size is less than the cipher block size,
1608 * decrypt first block and extract length of incoming packet
1609 */
1610 if (sshbuf_len(state->input) < block_size)
1611 return 0;
1612 sshbuf_reset(state->incoming_packet);
1613 if ((r = sshbuf_reserve(state->incoming_packet, block_size,
1614 &cp)) != 0)
1615 goto out;
1616 if ((r = cipher_crypt(state->receive_context,
1617 state->p_send.seqnr, cp, sshbuf_ptr(state->input),
1618 block_size, 0, 0)) != 0)
1619 goto out;
1620 state->packlen = PEEK_U32(sshbuf_ptr(state->incoming_packet));
1621 if (state->packlen < 1 + 4 ||
1622 state->packlen > PACKET_MAX_SIZE) {
1623 #ifdef PACKET_DEBUG
1624 fprintf(stderr, "input: \n");
1625 sshbuf_dump(state->input, stderr);
1626 fprintf(stderr, "incoming_packet: \n");
1627 sshbuf_dump(state->incoming_packet, stderr);
1628 #endif
1629 logit("Bad packet length %u.", state->packlen);
1630 return ssh_packet_start_discard(ssh, enc, mac, 0,
1631 PACKET_MAX_SIZE);
1632 }
1633 if ((r = sshbuf_consume(state->input, block_size)) != 0)
1634 goto out;
1635 }
1636 DBG(debug("input: packet len %u", state->packlen+4));
1637
1638 if (aadlen) {
1639 /* only the payload is encrypted */
1640 need = state->packlen;
1641 } else {
1642 /*
1643 * the payload size and the payload are encrypted, but we
1644 * have a partial packet of block_size bytes
1645 */
1646 need = 4 + state->packlen - block_size;
1647 }
1648 DBG(debug("partial packet: block %d, need %d, maclen %d, authlen %d,"
1649 " aadlen %d", block_size, need, maclen, authlen, aadlen));
1650 if (need % block_size != 0) {
1651 logit("padding error: need %d block %d mod %d",
1652 need, block_size, need % block_size);
1653 return ssh_packet_start_discard(ssh, enc, mac, 0,
1654 PACKET_MAX_SIZE - block_size);
1655 }
1656 /*
1657 * check if the entire packet has been received and
1658 * decrypt into incoming_packet:
1659 * 'aadlen' bytes are unencrypted, but authenticated.
1660 * 'need' bytes are encrypted, followed by either
1661 * 'authlen' bytes of authentication tag or
1662 * 'maclen' bytes of message authentication code.
1663 */
1664 if (sshbuf_len(state->input) < aadlen + need + authlen + maclen)
1665 return 0; /* packet is incomplete */
1666 #ifdef PACKET_DEBUG
1667 fprintf(stderr, "read_poll enc/full: ");
1668 sshbuf_dump(state->input, stderr);
1669 #endif
1670 /* EtM: check mac over encrypted input */
1671 if (mac && mac->enabled && mac->etm) {
1672 if ((r = mac_check(mac, state->p_read.seqnr,
1673 sshbuf_ptr(state->input), aadlen + need,
1674 sshbuf_ptr(state->input) + aadlen + need + authlen,
1675 maclen)) != 0) {
1676 if (r == SSH_ERR_MAC_INVALID)
1677 logit("Corrupted MAC on input.");
1678 goto out;
1679 }
1680 }
1681 if ((r = sshbuf_reserve(state->incoming_packet, aadlen + need,
1682 &cp)) != 0)
1683 goto out;
1684 if ((r = cipher_crypt(state->receive_context, state->p_read.seqnr, cp,
1685 sshbuf_ptr(state->input), need, aadlen, authlen)) != 0)
1686 goto out;
1687 if ((r = sshbuf_consume(state->input, aadlen + need + authlen)) != 0)
1688 goto out;
1689 if (mac && mac->enabled) {
1690 /* Not EtM: check MAC over cleartext */
1691 if (!mac->etm && (r = mac_check(mac, state->p_read.seqnr,
1692 sshbuf_ptr(state->incoming_packet),
1693 sshbuf_len(state->incoming_packet),
1694 sshbuf_ptr(state->input), maclen)) != 0) {
1695 if (r != SSH_ERR_MAC_INVALID)
1696 goto out;
1697 logit("Corrupted MAC on input.");
1698 if (need + block_size > PACKET_MAX_SIZE)
1699 return SSH_ERR_INTERNAL_ERROR;
1700 return ssh_packet_start_discard(ssh, enc, mac,
1701 sshbuf_len(state->incoming_packet),
1702 PACKET_MAX_SIZE - need - block_size);
1703 }
1704 /* Remove MAC from input buffer */
1705 DBG(debug("MAC #%d ok", state->p_read.seqnr));
1706 if ((r = sshbuf_consume(state->input, mac->mac_len)) != 0)
1707 goto out;
1708 }
1709
1710 if (seqnr_p != NULL)
1711 *seqnr_p = state->p_read.seqnr;
1712 if (++state->p_read.seqnr == 0) {
1713 if ((ssh->kex->flags & KEX_INITIAL) != 0) {
1714 ssh_packet_disconnect(ssh, "incoming sequence number "
1715 "wrapped during initial key exchange");
1716 }
1717 logit("incoming seqnr wraps around");
1718 }
1719 if (++state->p_read.packets == 0)
1720 if (!(ssh->compat & SSH_BUG_NOREKEY))
1721 return SSH_ERR_NEED_REKEY;
1722 state->p_read.blocks += (state->packlen + 4) / block_size;
1723 state->p_read.bytes += state->packlen + 4;
1724
1725 /* get padlen */
1726 padlen = sshbuf_ptr(state->incoming_packet)[4];
1727 DBG(debug("input: padlen %d", padlen));
1728 if (padlen < 4) {
1729 if ((r = sshpkt_disconnect(ssh,
1730 "Corrupted padlen %d on input.", padlen)) != 0 ||
1731 (r = ssh_packet_write_wait(ssh)) != 0)
1732 return r;
1733 return SSH_ERR_CONN_CORRUPT;
1734 }
1735
1736 /* skip packet size + padlen, discard padding */
1737 if ((r = sshbuf_consume(state->incoming_packet, 4 + 1)) != 0 ||
1738 ((r = sshbuf_consume_end(state->incoming_packet, padlen)) != 0))
1739 goto out;
1740
1741 DBG(debug("input: len before de-compress %zd",
1742 sshbuf_len(state->incoming_packet)));
1743 if (comp && comp->enabled) {
1744 sshbuf_reset(state->compression_buffer);
1745 if ((r = uncompress_buffer(ssh, state->incoming_packet,
1746 state->compression_buffer)) != 0)
1747 goto out;
1748 sshbuf_reset(state->incoming_packet);
1749 if ((r = sshbuf_putb(state->incoming_packet,
1750 state->compression_buffer)) != 0)
1751 goto out;
1752 DBG(debug("input: len after de-compress %zd",
1753 sshbuf_len(state->incoming_packet)));
1754 }
1755 /*
1756 * get packet type, implies consume.
1757 * return length of payload (without type field)
1758 */
1759 if ((r = sshbuf_get_u8(state->incoming_packet, typep)) != 0)
1760 goto out;
1761 if (ssh_packet_log_type(*typep))
1762 debug3("receive packet: type %u", *typep);
1763 if (*typep < SSH2_MSG_MIN) {
1764 if ((r = sshpkt_disconnect(ssh,
1765 "Invalid ssh2 packet type: %d", *typep)) != 0 ||
1766 (r = ssh_packet_write_wait(ssh)) != 0)
1767 return r;
1768 return SSH_ERR_PROTOCOL_ERROR;
1769 }
1770 if (state->hook_in != NULL &&
1771 (r = state->hook_in(ssh, state->incoming_packet, typep,
1772 state->hook_in_ctx)) != 0)
1773 return r;
1774 if (*typep == SSH2_MSG_USERAUTH_SUCCESS && !state->server_side)
1775 r = ssh_packet_enable_delayed_compress(ssh);
1776 else
1777 r = 0;
1778 #ifdef PACKET_DEBUG
1779 fprintf(stderr, "read/plain[%d]:\r\n", *typep);
1780 sshbuf_dump(state->incoming_packet, stderr);
1781 #endif
1782 /* reset for next packet */
1783 state->packlen = 0;
1784 if (*typep == SSH2_MSG_NEWKEYS && ssh->kex->kex_strict) {
1785 debug_f("resetting read seqnr %u", state->p_read.seqnr);
1786 state->p_read.seqnr = 0;
1787 }
1788
1789 if ((r = ssh_packet_check_rekey(ssh)) != 0)
1790 return r;
1791 out:
1792 return r;
1793 }
1794
1795 int
ssh_packet_read_poll_seqnr(struct ssh * ssh,u_char * typep,u_int32_t * seqnr_p)1796 ssh_packet_read_poll_seqnr(struct ssh *ssh, u_char *typep, u_int32_t *seqnr_p)
1797 {
1798 struct session_state *state = ssh->state;
1799 u_int reason, seqnr;
1800 int r;
1801 u_char *msg;
1802 const u_char *d;
1803 size_t len;
1804
1805 for (;;) {
1806 msg = NULL;
1807 r = ssh_packet_read_poll2(ssh, typep, seqnr_p);
1808 if (r != 0)
1809 return r;
1810 if (*typep == 0) {
1811 /* no message ready */
1812 return 0;
1813 }
1814 state->keep_alive_timeouts = 0;
1815 DBG(debug("received packet type %d", *typep));
1816
1817 /* Always process disconnect messages */
1818 if (*typep == SSH2_MSG_DISCONNECT) {
1819 if ((r = sshpkt_get_u32(ssh, &reason)) != 0 ||
1820 (r = sshpkt_get_string(ssh, &msg, NULL)) != 0)
1821 return r;
1822 /* Ignore normal client exit notifications */
1823 do_log2(ssh->state->server_side &&
1824 reason == SSH2_DISCONNECT_BY_APPLICATION ?
1825 SYSLOG_LEVEL_INFO : SYSLOG_LEVEL_ERROR,
1826 "Received disconnect from %s port %d:"
1827 "%u: %.400s", ssh_remote_ipaddr(ssh),
1828 ssh_remote_port(ssh), reason, msg);
1829 free(msg);
1830 return SSH_ERR_DISCONNECTED;
1831 }
1832
1833 /*
1834 * Do not implicitly handle any messages here during initial
1835 * KEX when in strict mode. They will be need to be allowed
1836 * explicitly by the KEX dispatch table or they will generate
1837 * protocol errors.
1838 */
1839 if (ssh->kex != NULL &&
1840 (ssh->kex->flags & KEX_INITIAL) && ssh->kex->kex_strict)
1841 return 0;
1842 /* Implicitly handle transport-level messages */
1843 switch (*typep) {
1844 case SSH2_MSG_IGNORE:
1845 debug3("Received SSH2_MSG_IGNORE");
1846 break;
1847 case SSH2_MSG_DEBUG:
1848 if ((r = sshpkt_get_u8(ssh, NULL)) != 0 ||
1849 (r = sshpkt_get_string(ssh, &msg, NULL)) != 0 ||
1850 (r = sshpkt_get_string(ssh, NULL, NULL)) != 0) {
1851 free(msg);
1852 return r;
1853 }
1854 debug("Remote: %.900s", msg);
1855 free(msg);
1856 break;
1857 case SSH2_MSG_UNIMPLEMENTED:
1858 if ((r = sshpkt_get_u32(ssh, &seqnr)) != 0)
1859 return r;
1860 debug("Received SSH2_MSG_UNIMPLEMENTED for %u",
1861 seqnr);
1862 break;
1863 case SSH2_MSG_PING:
1864 if ((r = sshpkt_get_string_direct(ssh, &d, &len)) != 0)
1865 return r;
1866 DBG(debug("Received SSH2_MSG_PING len %zu", len));
1867 if (!ssh->state->after_authentication) {
1868 DBG(debug("Won't reply to PING in preauth"));
1869 break;
1870 }
1871 if (ssh_packet_is_rekeying(ssh)) {
1872 DBG(debug("Won't reply to PING during KEX"));
1873 break;
1874 }
1875 if ((r = sshpkt_start(ssh, SSH2_MSG_PONG)) != 0 ||
1876 (r = sshpkt_put_string(ssh, d, len)) != 0 ||
1877 (r = sshpkt_send(ssh)) != 0)
1878 return r;
1879 break;
1880 case SSH2_MSG_PONG:
1881 if ((r = sshpkt_get_string_direct(ssh,
1882 NULL, &len)) != 0)
1883 return r;
1884 DBG(debug("Received SSH2_MSG_PONG len %zu", len));
1885 break;
1886 default:
1887 return 0;
1888 }
1889 }
1890 }
1891
1892 /*
1893 * Buffers the supplied input data. This is intended to be used together
1894 * with packet_read_poll().
1895 */
1896 int
ssh_packet_process_incoming(struct ssh * ssh,const char * buf,u_int len)1897 ssh_packet_process_incoming(struct ssh *ssh, const char *buf, u_int len)
1898 {
1899 struct session_state *state = ssh->state;
1900 int r;
1901
1902 if (state->packet_discard) {
1903 state->keep_alive_timeouts = 0; /* ?? */
1904 if (len >= state->packet_discard) {
1905 if ((r = ssh_packet_stop_discard(ssh)) != 0)
1906 return r;
1907 }
1908 state->packet_discard -= len;
1909 return 0;
1910 }
1911 if ((r = sshbuf_put(state->input, buf, len)) != 0)
1912 return r;
1913
1914 return 0;
1915 }
1916
1917 /* Reads and buffers data from the specified fd */
1918 int
ssh_packet_process_read(struct ssh * ssh,int fd)1919 ssh_packet_process_read(struct ssh *ssh, int fd)
1920 {
1921 struct session_state *state = ssh->state;
1922 int r;
1923 size_t rlen;
1924
1925 if ((r = sshbuf_read(fd, state->input, PACKET_MAX_SIZE, &rlen)) != 0)
1926 return r;
1927
1928 if (state->packet_discard) {
1929 if ((r = sshbuf_consume_end(state->input, rlen)) != 0)
1930 return r;
1931 state->keep_alive_timeouts = 0; /* ?? */
1932 if (rlen >= state->packet_discard) {
1933 if ((r = ssh_packet_stop_discard(ssh)) != 0)
1934 return r;
1935 }
1936 state->packet_discard -= rlen;
1937 return 0;
1938 }
1939 return 0;
1940 }
1941
1942 int
ssh_packet_remaining(struct ssh * ssh)1943 ssh_packet_remaining(struct ssh *ssh)
1944 {
1945 return sshbuf_len(ssh->state->incoming_packet);
1946 }
1947
1948 /*
1949 * Sends a diagnostic message from the server to the client. This message
1950 * can be sent at any time (but not while constructing another message). The
1951 * message is printed immediately, but only if the client is being executed
1952 * in verbose mode. These messages are primarily intended to ease debugging
1953 * authentication problems. The length of the formatted message must not
1954 * exceed 1024 bytes. This will automatically call ssh_packet_write_wait.
1955 */
1956 void
ssh_packet_send_debug(struct ssh * ssh,const char * fmt,...)1957 ssh_packet_send_debug(struct ssh *ssh, const char *fmt,...)
1958 {
1959 char buf[1024];
1960 va_list args;
1961 int r;
1962
1963 if ((ssh->compat & SSH_BUG_DEBUG))
1964 return;
1965
1966 va_start(args, fmt);
1967 vsnprintf(buf, sizeof(buf), fmt, args);
1968 va_end(args);
1969
1970 debug3("sending debug message: %s", buf);
1971
1972 if ((r = sshpkt_start(ssh, SSH2_MSG_DEBUG)) != 0 ||
1973 (r = sshpkt_put_u8(ssh, 0)) != 0 || /* always display */
1974 (r = sshpkt_put_cstring(ssh, buf)) != 0 ||
1975 (r = sshpkt_put_cstring(ssh, "")) != 0 ||
1976 (r = sshpkt_send(ssh)) != 0 ||
1977 (r = ssh_packet_write_wait(ssh)) != 0)
1978 fatal_fr(r, "send DEBUG");
1979 }
1980
1981 void
sshpkt_fmt_connection_id(struct ssh * ssh,char * s,size_t l)1982 sshpkt_fmt_connection_id(struct ssh *ssh, char *s, size_t l)
1983 {
1984 snprintf(s, l, "%.200s%s%s port %d",
1985 ssh->log_preamble ? ssh->log_preamble : "",
1986 ssh->log_preamble ? " " : "",
1987 ssh_remote_ipaddr(ssh), ssh_remote_port(ssh));
1988 }
1989
1990 /*
1991 * Pretty-print connection-terminating errors and exit.
1992 */
1993 static void
sshpkt_vfatal(struct ssh * ssh,int r,const char * fmt,va_list ap)1994 sshpkt_vfatal(struct ssh *ssh, int r, const char *fmt, va_list ap)
1995 {
1996 char *tag = NULL, remote_id[512];
1997 int oerrno = errno;
1998
1999 sshpkt_fmt_connection_id(ssh, remote_id, sizeof(remote_id));
2000
2001 switch (r) {
2002 case SSH_ERR_CONN_CLOSED:
2003 ssh_packet_clear_keys(ssh);
2004 logdie("Connection closed by %s", remote_id);
2005 case SSH_ERR_CONN_TIMEOUT:
2006 ssh_packet_clear_keys(ssh);
2007 logdie("Connection %s %s timed out",
2008 ssh->state->server_side ? "from" : "to", remote_id);
2009 case SSH_ERR_DISCONNECTED:
2010 ssh_packet_clear_keys(ssh);
2011 logdie("Disconnected from %s", remote_id);
2012 case SSH_ERR_SYSTEM_ERROR:
2013 if (errno == ECONNRESET) {
2014 ssh_packet_clear_keys(ssh);
2015 logdie("Connection reset by %s", remote_id);
2016 }
2017 /* FALLTHROUGH */
2018 case SSH_ERR_NO_CIPHER_ALG_MATCH:
2019 case SSH_ERR_NO_MAC_ALG_MATCH:
2020 case SSH_ERR_NO_COMPRESS_ALG_MATCH:
2021 case SSH_ERR_NO_KEX_ALG_MATCH:
2022 case SSH_ERR_NO_HOSTKEY_ALG_MATCH:
2023 if (ssh->kex && ssh->kex->failed_choice) {
2024 ssh_packet_clear_keys(ssh);
2025 errno = oerrno;
2026 logdie("Unable to negotiate with %s: %s. "
2027 "Their offer: %s", remote_id, ssh_err(r),
2028 ssh->kex->failed_choice);
2029 }
2030 /* FALLTHROUGH */
2031 default:
2032 if (vasprintf(&tag, fmt, ap) == -1) {
2033 ssh_packet_clear_keys(ssh);
2034 logdie_f("could not allocate failure message");
2035 }
2036 ssh_packet_clear_keys(ssh);
2037 errno = oerrno;
2038 logdie_r(r, "%s%sConnection %s %s",
2039 tag != NULL ? tag : "", tag != NULL ? ": " : "",
2040 ssh->state->server_side ? "from" : "to", remote_id);
2041 }
2042 }
2043
2044 void
sshpkt_fatal(struct ssh * ssh,int r,const char * fmt,...)2045 sshpkt_fatal(struct ssh *ssh, int r, const char *fmt, ...)
2046 {
2047 va_list ap;
2048
2049 va_start(ap, fmt);
2050 sshpkt_vfatal(ssh, r, fmt, ap);
2051 /* NOTREACHED */
2052 va_end(ap);
2053 logdie_f("should have exited");
2054 }
2055
2056 /*
2057 * Logs the error plus constructs and sends a disconnect packet, closes the
2058 * connection, and exits. This function never returns. The error message
2059 * should not contain a newline. The length of the formatted message must
2060 * not exceed 1024 bytes.
2061 */
2062 void
ssh_packet_disconnect(struct ssh * ssh,const char * fmt,...)2063 ssh_packet_disconnect(struct ssh *ssh, const char *fmt,...)
2064 {
2065 char buf[1024], remote_id[512];
2066 va_list args;
2067 static int disconnecting = 0;
2068 int r;
2069
2070 if (disconnecting) /* Guard against recursive invocations. */
2071 fatal("packet_disconnect called recursively.");
2072 disconnecting = 1;
2073
2074 /*
2075 * Format the message. Note that the caller must make sure the
2076 * message is of limited size.
2077 */
2078 sshpkt_fmt_connection_id(ssh, remote_id, sizeof(remote_id));
2079 va_start(args, fmt);
2080 vsnprintf(buf, sizeof(buf), fmt, args);
2081 va_end(args);
2082
2083 /* Display the error locally */
2084 logit("Disconnecting %s: %.100s", remote_id, buf);
2085
2086 /*
2087 * Send the disconnect message to the other side, and wait
2088 * for it to get sent.
2089 */
2090 if ((r = sshpkt_disconnect(ssh, "%s", buf)) != 0)
2091 sshpkt_fatal(ssh, r, "%s", __func__);
2092
2093 if ((r = ssh_packet_write_wait(ssh)) != 0)
2094 sshpkt_fatal(ssh, r, "%s", __func__);
2095
2096 /* Close the connection. */
2097 ssh_packet_close(ssh);
2098 cleanup_exit(255);
2099 }
2100
2101 /*
2102 * Checks if there is any buffered output, and tries to write some of
2103 * the output.
2104 */
2105 int
ssh_packet_write_poll(struct ssh * ssh)2106 ssh_packet_write_poll(struct ssh *ssh)
2107 {
2108 struct session_state *state = ssh->state;
2109 int len = sshbuf_len(state->output);
2110 int r;
2111
2112 if (len > 0) {
2113 len = write(state->connection_out,
2114 sshbuf_ptr(state->output), len);
2115 if (len == -1) {
2116 if (errno == EINTR || errno == EAGAIN ||
2117 errno == EWOULDBLOCK)
2118 return 0;
2119 return SSH_ERR_SYSTEM_ERROR;
2120 }
2121 if (len == 0)
2122 return SSH_ERR_CONN_CLOSED;
2123 if ((r = sshbuf_consume(state->output, len)) != 0)
2124 return r;
2125 }
2126 return 0;
2127 }
2128
2129 /*
2130 * Calls packet_write_poll repeatedly until all pending output data has been
2131 * written.
2132 */
2133 int
ssh_packet_write_wait(struct ssh * ssh)2134 ssh_packet_write_wait(struct ssh *ssh)
2135 {
2136 int ret, r, ms_remain = 0;
2137 struct timeval start;
2138 struct timespec timespec, *timespecp = NULL;
2139 struct session_state *state = ssh->state;
2140 struct pollfd pfd;
2141
2142 if ((r = ssh_packet_write_poll(ssh)) != 0)
2143 return r;
2144 while (ssh_packet_have_data_to_write(ssh)) {
2145 pfd.fd = state->connection_out;
2146 pfd.events = POLLOUT;
2147
2148 if (state->packet_timeout_ms > 0) {
2149 ms_remain = state->packet_timeout_ms;
2150 timespecp = ×pec;
2151 }
2152 for (;;) {
2153 if (state->packet_timeout_ms > 0) {
2154 ms_to_timespec(×pec, ms_remain);
2155 monotime_tv(&start);
2156 }
2157 if ((ret = ppoll(&pfd, 1, timespecp, NULL)) >= 0)
2158 break;
2159 if (errno != EAGAIN && errno != EINTR &&
2160 errno != EWOULDBLOCK)
2161 break;
2162 if (state->packet_timeout_ms <= 0)
2163 continue;
2164 ms_subtract_diff(&start, &ms_remain);
2165 if (ms_remain <= 0) {
2166 ret = 0;
2167 break;
2168 }
2169 }
2170 if (ret == 0)
2171 return SSH_ERR_CONN_TIMEOUT;
2172 if ((r = ssh_packet_write_poll(ssh)) != 0)
2173 return r;
2174 }
2175 return 0;
2176 }
2177
2178 /* Returns true if there is buffered data to write to the connection. */
2179
2180 int
ssh_packet_have_data_to_write(struct ssh * ssh)2181 ssh_packet_have_data_to_write(struct ssh *ssh)
2182 {
2183 return sshbuf_len(ssh->state->output) != 0;
2184 }
2185
2186 /* Returns true if there is not too much data to write to the connection. */
2187
2188 int
ssh_packet_not_very_much_data_to_write(struct ssh * ssh)2189 ssh_packet_not_very_much_data_to_write(struct ssh *ssh)
2190 {
2191 if (ssh->state->interactive_mode)
2192 return sshbuf_len(ssh->state->output) < 16384;
2193 else
2194 return sshbuf_len(ssh->state->output) < 128 * 1024;
2195 }
2196
2197 /*
2198 * returns true when there are at most a few keystrokes of data to write
2199 * and the connection is in interactive mode.
2200 */
2201
2202 int
ssh_packet_interactive_data_to_write(struct ssh * ssh)2203 ssh_packet_interactive_data_to_write(struct ssh *ssh)
2204 {
2205 return ssh->state->interactive_mode &&
2206 sshbuf_len(ssh->state->output) < 256;
2207 }
2208
2209 void
ssh_packet_set_tos(struct ssh * ssh,int tos)2210 ssh_packet_set_tos(struct ssh *ssh, int tos)
2211 {
2212 if (!ssh_packet_connection_is_on_socket(ssh) || tos == INT_MAX)
2213 return;
2214 set_sock_tos(ssh->state->connection_in, tos);
2215 }
2216
2217 /* Informs that the current session is interactive. Sets IP flags for that. */
2218
2219 void
ssh_packet_set_interactive(struct ssh * ssh,int interactive,int qos_interactive,int qos_bulk)2220 ssh_packet_set_interactive(struct ssh *ssh, int interactive, int qos_interactive, int qos_bulk)
2221 {
2222 struct session_state *state = ssh->state;
2223
2224 if (state->set_interactive_called)
2225 return;
2226 state->set_interactive_called = 1;
2227
2228 /* Record that we are in interactive mode. */
2229 state->interactive_mode = interactive;
2230
2231 /* Only set socket options if using a socket. */
2232 if (!ssh_packet_connection_is_on_socket(ssh))
2233 return;
2234 set_nodelay(state->connection_in);
2235 ssh_packet_set_tos(ssh, interactive ? qos_interactive : qos_bulk);
2236 }
2237
2238 /* Returns true if the current connection is interactive. */
2239
2240 int
ssh_packet_is_interactive(struct ssh * ssh)2241 ssh_packet_is_interactive(struct ssh *ssh)
2242 {
2243 return ssh->state->interactive_mode;
2244 }
2245
2246 int
ssh_packet_set_maxsize(struct ssh * ssh,u_int s)2247 ssh_packet_set_maxsize(struct ssh *ssh, u_int s)
2248 {
2249 struct session_state *state = ssh->state;
2250
2251 if (state->set_maxsize_called) {
2252 logit_f("called twice: old %d new %d",
2253 state->max_packet_size, s);
2254 return -1;
2255 }
2256 if (s < 4 * 1024 || s > 1024 * 1024) {
2257 logit_f("bad size %d", s);
2258 return -1;
2259 }
2260 state->set_maxsize_called = 1;
2261 debug_f("setting to %d", s);
2262 state->max_packet_size = s;
2263 return s;
2264 }
2265
2266 int
ssh_packet_inc_alive_timeouts(struct ssh * ssh)2267 ssh_packet_inc_alive_timeouts(struct ssh *ssh)
2268 {
2269 return ++ssh->state->keep_alive_timeouts;
2270 }
2271
2272 void
ssh_packet_set_alive_timeouts(struct ssh * ssh,int ka)2273 ssh_packet_set_alive_timeouts(struct ssh *ssh, int ka)
2274 {
2275 ssh->state->keep_alive_timeouts = ka;
2276 }
2277
2278 u_int
ssh_packet_get_maxsize(struct ssh * ssh)2279 ssh_packet_get_maxsize(struct ssh *ssh)
2280 {
2281 return ssh->state->max_packet_size;
2282 }
2283
2284 void
ssh_packet_set_rekey_limits(struct ssh * ssh,u_int64_t bytes,u_int32_t seconds)2285 ssh_packet_set_rekey_limits(struct ssh *ssh, u_int64_t bytes, u_int32_t seconds)
2286 {
2287 debug3("rekey after %llu bytes, %u seconds", (unsigned long long)bytes,
2288 (unsigned int)seconds);
2289 ssh->state->rekey_limit = bytes;
2290 ssh->state->rekey_interval = seconds;
2291 }
2292
2293 time_t
ssh_packet_get_rekey_timeout(struct ssh * ssh)2294 ssh_packet_get_rekey_timeout(struct ssh *ssh)
2295 {
2296 time_t seconds;
2297
2298 seconds = ssh->state->rekey_time + ssh->state->rekey_interval -
2299 monotime();
2300 return (seconds <= 0 ? 1 : seconds);
2301 }
2302
2303 void
ssh_packet_set_server(struct ssh * ssh)2304 ssh_packet_set_server(struct ssh *ssh)
2305 {
2306 ssh->state->server_side = 1;
2307 ssh->kex->server = 1; /* XXX unify? */
2308 }
2309
2310 void
ssh_packet_set_authenticated(struct ssh * ssh)2311 ssh_packet_set_authenticated(struct ssh *ssh)
2312 {
2313 ssh->state->after_authentication = 1;
2314 }
2315
2316 void *
ssh_packet_get_input(struct ssh * ssh)2317 ssh_packet_get_input(struct ssh *ssh)
2318 {
2319 return (void *)ssh->state->input;
2320 }
2321
2322 void *
ssh_packet_get_output(struct ssh * ssh)2323 ssh_packet_get_output(struct ssh *ssh)
2324 {
2325 return (void *)ssh->state->output;
2326 }
2327
2328 /* Reset after_authentication and reset compression in post-auth privsep */
2329 static int
ssh_packet_set_postauth(struct ssh * ssh)2330 ssh_packet_set_postauth(struct ssh *ssh)
2331 {
2332 int r;
2333
2334 debug_f("called");
2335 /* This was set in net child, but is not visible in user child */
2336 ssh->state->after_authentication = 1;
2337 ssh->state->rekeying = 0;
2338 if ((r = ssh_packet_enable_delayed_compress(ssh)) != 0)
2339 return r;
2340 return 0;
2341 }
2342
2343 /* Packet state (de-)serialization for privsep */
2344
2345 /* turn kex into a blob for packet state serialization */
2346 static int
kex_to_blob(struct sshbuf * m,struct kex * kex)2347 kex_to_blob(struct sshbuf *m, struct kex *kex)
2348 {
2349 int r;
2350
2351 if ((r = sshbuf_put_u32(m, kex->we_need)) != 0 ||
2352 (r = sshbuf_put_cstring(m, kex->hostkey_alg)) != 0 ||
2353 (r = sshbuf_put_u32(m, kex->hostkey_type)) != 0 ||
2354 (r = sshbuf_put_u32(m, kex->hostkey_nid)) != 0 ||
2355 (r = sshbuf_put_u32(m, kex->kex_type)) != 0 ||
2356 (r = sshbuf_put_u32(m, kex->kex_strict)) != 0 ||
2357 (r = sshbuf_put_stringb(m, kex->my)) != 0 ||
2358 (r = sshbuf_put_stringb(m, kex->peer)) != 0 ||
2359 (r = sshbuf_put_stringb(m, kex->client_version)) != 0 ||
2360 (r = sshbuf_put_stringb(m, kex->server_version)) != 0 ||
2361 (r = sshbuf_put_stringb(m, kex->session_id)) != 0 ||
2362 (r = sshbuf_put_u32(m, kex->flags)) != 0)
2363 return r;
2364 return 0;
2365 }
2366
2367 /* turn key exchange results into a blob for packet state serialization */
2368 static int
newkeys_to_blob(struct sshbuf * m,struct ssh * ssh,int mode)2369 newkeys_to_blob(struct sshbuf *m, struct ssh *ssh, int mode)
2370 {
2371 struct sshbuf *b;
2372 struct sshcipher_ctx *cc;
2373 struct sshcomp *comp;
2374 struct sshenc *enc;
2375 struct sshmac *mac;
2376 struct newkeys *newkey;
2377 int r;
2378
2379 if ((newkey = ssh->state->newkeys[mode]) == NULL)
2380 return SSH_ERR_INTERNAL_ERROR;
2381 enc = &newkey->enc;
2382 mac = &newkey->mac;
2383 comp = &newkey->comp;
2384 cc = (mode == MODE_OUT) ? ssh->state->send_context :
2385 ssh->state->receive_context;
2386 if ((r = cipher_get_keyiv(cc, enc->iv, enc->iv_len)) != 0)
2387 return r;
2388 if ((b = sshbuf_new()) == NULL)
2389 return SSH_ERR_ALLOC_FAIL;
2390 if ((r = sshbuf_put_cstring(b, enc->name)) != 0 ||
2391 (r = sshbuf_put_u32(b, enc->enabled)) != 0 ||
2392 (r = sshbuf_put_u32(b, enc->block_size)) != 0 ||
2393 (r = sshbuf_put_string(b, enc->key, enc->key_len)) != 0 ||
2394 (r = sshbuf_put_string(b, enc->iv, enc->iv_len)) != 0)
2395 goto out;
2396 if (cipher_authlen(enc->cipher) == 0) {
2397 if ((r = sshbuf_put_cstring(b, mac->name)) != 0 ||
2398 (r = sshbuf_put_u32(b, mac->enabled)) != 0 ||
2399 (r = sshbuf_put_string(b, mac->key, mac->key_len)) != 0)
2400 goto out;
2401 }
2402 if ((r = sshbuf_put_u32(b, comp->type)) != 0 ||
2403 (r = sshbuf_put_cstring(b, comp->name)) != 0)
2404 goto out;
2405 r = sshbuf_put_stringb(m, b);
2406 out:
2407 sshbuf_free(b);
2408 return r;
2409 }
2410
2411 /* serialize packet state into a blob */
2412 int
ssh_packet_get_state(struct ssh * ssh,struct sshbuf * m)2413 ssh_packet_get_state(struct ssh *ssh, struct sshbuf *m)
2414 {
2415 struct session_state *state = ssh->state;
2416 int r;
2417
2418 if ((r = kex_to_blob(m, ssh->kex)) != 0 ||
2419 (r = newkeys_to_blob(m, ssh, MODE_OUT)) != 0 ||
2420 (r = newkeys_to_blob(m, ssh, MODE_IN)) != 0 ||
2421 (r = sshbuf_put_u64(m, state->rekey_limit)) != 0 ||
2422 (r = sshbuf_put_u32(m, state->rekey_interval)) != 0 ||
2423 (r = sshbuf_put_u32(m, state->p_send.seqnr)) != 0 ||
2424 (r = sshbuf_put_u64(m, state->p_send.blocks)) != 0 ||
2425 (r = sshbuf_put_u32(m, state->p_send.packets)) != 0 ||
2426 (r = sshbuf_put_u64(m, state->p_send.bytes)) != 0 ||
2427 (r = sshbuf_put_u32(m, state->p_read.seqnr)) != 0 ||
2428 (r = sshbuf_put_u64(m, state->p_read.blocks)) != 0 ||
2429 (r = sshbuf_put_u32(m, state->p_read.packets)) != 0 ||
2430 (r = sshbuf_put_u64(m, state->p_read.bytes)) != 0 ||
2431 (r = sshbuf_put_stringb(m, state->input)) != 0 ||
2432 (r = sshbuf_put_stringb(m, state->output)) != 0)
2433 return r;
2434
2435 return 0;
2436 }
2437
2438 /* restore key exchange results from blob for packet state de-serialization */
2439 static int
newkeys_from_blob(struct sshbuf * m,struct ssh * ssh,int mode)2440 newkeys_from_blob(struct sshbuf *m, struct ssh *ssh, int mode)
2441 {
2442 struct sshbuf *b = NULL;
2443 struct sshcomp *comp;
2444 struct sshenc *enc;
2445 struct sshmac *mac;
2446 struct newkeys *newkey = NULL;
2447 size_t keylen, ivlen, maclen;
2448 int r;
2449
2450 if ((newkey = calloc(1, sizeof(*newkey))) == NULL) {
2451 r = SSH_ERR_ALLOC_FAIL;
2452 goto out;
2453 }
2454 if ((r = sshbuf_froms(m, &b)) != 0)
2455 goto out;
2456 #ifdef DEBUG_PK
2457 sshbuf_dump(b, stderr);
2458 #endif
2459 enc = &newkey->enc;
2460 mac = &newkey->mac;
2461 comp = &newkey->comp;
2462
2463 if ((r = sshbuf_get_cstring(b, &enc->name, NULL)) != 0 ||
2464 (r = sshbuf_get_u32(b, (u_int *)&enc->enabled)) != 0 ||
2465 (r = sshbuf_get_u32(b, &enc->block_size)) != 0 ||
2466 (r = sshbuf_get_string(b, &enc->key, &keylen)) != 0 ||
2467 (r = sshbuf_get_string(b, &enc->iv, &ivlen)) != 0)
2468 goto out;
2469 if ((enc->cipher = cipher_by_name(enc->name)) == NULL) {
2470 r = SSH_ERR_INVALID_FORMAT;
2471 goto out;
2472 }
2473 if (cipher_authlen(enc->cipher) == 0) {
2474 if ((r = sshbuf_get_cstring(b, &mac->name, NULL)) != 0)
2475 goto out;
2476 if ((r = mac_setup(mac, mac->name)) != 0)
2477 goto out;
2478 if ((r = sshbuf_get_u32(b, (u_int *)&mac->enabled)) != 0 ||
2479 (r = sshbuf_get_string(b, &mac->key, &maclen)) != 0)
2480 goto out;
2481 if (maclen > mac->key_len) {
2482 r = SSH_ERR_INVALID_FORMAT;
2483 goto out;
2484 }
2485 mac->key_len = maclen;
2486 }
2487 if ((r = sshbuf_get_u32(b, &comp->type)) != 0 ||
2488 (r = sshbuf_get_cstring(b, &comp->name, NULL)) != 0)
2489 goto out;
2490 if (sshbuf_len(b) != 0) {
2491 r = SSH_ERR_INVALID_FORMAT;
2492 goto out;
2493 }
2494 enc->key_len = keylen;
2495 enc->iv_len = ivlen;
2496 ssh->kex->newkeys[mode] = newkey;
2497 newkey = NULL;
2498 r = 0;
2499 out:
2500 free(newkey);
2501 sshbuf_free(b);
2502 return r;
2503 }
2504
2505 /* restore kex from blob for packet state de-serialization */
2506 static int
kex_from_blob(struct sshbuf * m,struct kex ** kexp)2507 kex_from_blob(struct sshbuf *m, struct kex **kexp)
2508 {
2509 struct kex *kex;
2510 int r;
2511
2512 if ((kex = kex_new()) == NULL)
2513 return SSH_ERR_ALLOC_FAIL;
2514 if ((r = sshbuf_get_u32(m, &kex->we_need)) != 0 ||
2515 (r = sshbuf_get_cstring(m, &kex->hostkey_alg, NULL)) != 0 ||
2516 (r = sshbuf_get_u32(m, (u_int *)&kex->hostkey_type)) != 0 ||
2517 (r = sshbuf_get_u32(m, (u_int *)&kex->hostkey_nid)) != 0 ||
2518 (r = sshbuf_get_u32(m, &kex->kex_type)) != 0 ||
2519 (r = sshbuf_get_u32(m, &kex->kex_strict)) != 0 ||
2520 (r = sshbuf_get_stringb(m, kex->my)) != 0 ||
2521 (r = sshbuf_get_stringb(m, kex->peer)) != 0 ||
2522 (r = sshbuf_get_stringb(m, kex->client_version)) != 0 ||
2523 (r = sshbuf_get_stringb(m, kex->server_version)) != 0 ||
2524 (r = sshbuf_get_stringb(m, kex->session_id)) != 0 ||
2525 (r = sshbuf_get_u32(m, &kex->flags)) != 0)
2526 goto out;
2527 kex->server = 1;
2528 kex->done = 1;
2529 r = 0;
2530 out:
2531 if (r != 0 || kexp == NULL) {
2532 kex_free(kex);
2533 if (kexp != NULL)
2534 *kexp = NULL;
2535 } else {
2536 kex_free(*kexp);
2537 *kexp = kex;
2538 }
2539 return r;
2540 }
2541
2542 /*
2543 * Restore packet state from content of blob 'm' (de-serialization).
2544 * Note that 'm' will be partially consumed on parsing or any other errors.
2545 */
2546 int
ssh_packet_set_state(struct ssh * ssh,struct sshbuf * m)2547 ssh_packet_set_state(struct ssh *ssh, struct sshbuf *m)
2548 {
2549 struct session_state *state = ssh->state;
2550 const u_char *input, *output;
2551 size_t ilen, olen;
2552 int r;
2553
2554 if ((r = kex_from_blob(m, &ssh->kex)) != 0 ||
2555 (r = newkeys_from_blob(m, ssh, MODE_OUT)) != 0 ||
2556 (r = newkeys_from_blob(m, ssh, MODE_IN)) != 0 ||
2557 (r = sshbuf_get_u64(m, &state->rekey_limit)) != 0 ||
2558 (r = sshbuf_get_u32(m, &state->rekey_interval)) != 0 ||
2559 (r = sshbuf_get_u32(m, &state->p_send.seqnr)) != 0 ||
2560 (r = sshbuf_get_u64(m, &state->p_send.blocks)) != 0 ||
2561 (r = sshbuf_get_u32(m, &state->p_send.packets)) != 0 ||
2562 (r = sshbuf_get_u64(m, &state->p_send.bytes)) != 0 ||
2563 (r = sshbuf_get_u32(m, &state->p_read.seqnr)) != 0 ||
2564 (r = sshbuf_get_u64(m, &state->p_read.blocks)) != 0 ||
2565 (r = sshbuf_get_u32(m, &state->p_read.packets)) != 0 ||
2566 (r = sshbuf_get_u64(m, &state->p_read.bytes)) != 0)
2567 return r;
2568 /*
2569 * We set the time here so that in post-auth privsep child we
2570 * count from the completion of the authentication.
2571 */
2572 state->rekey_time = monotime();
2573 /* XXX ssh_set_newkeys overrides p_read.packets? XXX */
2574 if ((r = ssh_set_newkeys(ssh, MODE_IN)) != 0 ||
2575 (r = ssh_set_newkeys(ssh, MODE_OUT)) != 0)
2576 return r;
2577
2578 if ((r = ssh_packet_set_postauth(ssh)) != 0)
2579 return r;
2580
2581 sshbuf_reset(state->input);
2582 sshbuf_reset(state->output);
2583 if ((r = sshbuf_get_string_direct(m, &input, &ilen)) != 0 ||
2584 (r = sshbuf_get_string_direct(m, &output, &olen)) != 0 ||
2585 (r = sshbuf_put(state->input, input, ilen)) != 0 ||
2586 (r = sshbuf_put(state->output, output, olen)) != 0)
2587 return r;
2588
2589 if (sshbuf_len(m))
2590 return SSH_ERR_INVALID_FORMAT;
2591 debug3_f("done");
2592 return 0;
2593 }
2594
2595 /* NEW API */
2596
2597 /* put data to the outgoing packet */
2598
2599 int
sshpkt_put(struct ssh * ssh,const void * v,size_t len)2600 sshpkt_put(struct ssh *ssh, const void *v, size_t len)
2601 {
2602 return sshbuf_put(ssh->state->outgoing_packet, v, len);
2603 }
2604
2605 int
sshpkt_putb(struct ssh * ssh,const struct sshbuf * b)2606 sshpkt_putb(struct ssh *ssh, const struct sshbuf *b)
2607 {
2608 return sshbuf_putb(ssh->state->outgoing_packet, b);
2609 }
2610
2611 int
sshpkt_put_u8(struct ssh * ssh,u_char val)2612 sshpkt_put_u8(struct ssh *ssh, u_char val)
2613 {
2614 return sshbuf_put_u8(ssh->state->outgoing_packet, val);
2615 }
2616
2617 int
sshpkt_put_u32(struct ssh * ssh,u_int32_t val)2618 sshpkt_put_u32(struct ssh *ssh, u_int32_t val)
2619 {
2620 return sshbuf_put_u32(ssh->state->outgoing_packet, val);
2621 }
2622
2623 int
sshpkt_put_u64(struct ssh * ssh,u_int64_t val)2624 sshpkt_put_u64(struct ssh *ssh, u_int64_t val)
2625 {
2626 return sshbuf_put_u64(ssh->state->outgoing_packet, val);
2627 }
2628
2629 int
sshpkt_put_string(struct ssh * ssh,const void * v,size_t len)2630 sshpkt_put_string(struct ssh *ssh, const void *v, size_t len)
2631 {
2632 return sshbuf_put_string(ssh->state->outgoing_packet, v, len);
2633 }
2634
2635 int
sshpkt_put_cstring(struct ssh * ssh,const void * v)2636 sshpkt_put_cstring(struct ssh *ssh, const void *v)
2637 {
2638 return sshbuf_put_cstring(ssh->state->outgoing_packet, v);
2639 }
2640
2641 int
sshpkt_put_stringb(struct ssh * ssh,const struct sshbuf * v)2642 sshpkt_put_stringb(struct ssh *ssh, const struct sshbuf *v)
2643 {
2644 return sshbuf_put_stringb(ssh->state->outgoing_packet, v);
2645 }
2646
2647 #ifdef WITH_OPENSSL
2648 #ifdef OPENSSL_HAS_ECC
2649 int
sshpkt_put_ec(struct ssh * ssh,const EC_POINT * v,const EC_GROUP * g)2650 sshpkt_put_ec(struct ssh *ssh, const EC_POINT *v, const EC_GROUP *g)
2651 {
2652 return sshbuf_put_ec(ssh->state->outgoing_packet, v, g);
2653 }
2654
2655 int
sshpkt_put_ec_pkey(struct ssh * ssh,EVP_PKEY * pkey)2656 sshpkt_put_ec_pkey(struct ssh *ssh, EVP_PKEY *pkey)
2657 {
2658 return sshbuf_put_ec_pkey(ssh->state->outgoing_packet, pkey);
2659 }
2660 #endif /* OPENSSL_HAS_ECC */
2661
2662 int
sshpkt_put_bignum2(struct ssh * ssh,const BIGNUM * v)2663 sshpkt_put_bignum2(struct ssh *ssh, const BIGNUM *v)
2664 {
2665 return sshbuf_put_bignum2(ssh->state->outgoing_packet, v);
2666 }
2667 #endif /* WITH_OPENSSL */
2668
2669 /* fetch data from the incoming packet */
2670
2671 int
sshpkt_get(struct ssh * ssh,void * valp,size_t len)2672 sshpkt_get(struct ssh *ssh, void *valp, size_t len)
2673 {
2674 return sshbuf_get(ssh->state->incoming_packet, valp, len);
2675 }
2676
2677 int
sshpkt_get_u8(struct ssh * ssh,u_char * valp)2678 sshpkt_get_u8(struct ssh *ssh, u_char *valp)
2679 {
2680 return sshbuf_get_u8(ssh->state->incoming_packet, valp);
2681 }
2682
2683 int
sshpkt_get_u32(struct ssh * ssh,u_int32_t * valp)2684 sshpkt_get_u32(struct ssh *ssh, u_int32_t *valp)
2685 {
2686 return sshbuf_get_u32(ssh->state->incoming_packet, valp);
2687 }
2688
2689 int
sshpkt_get_u64(struct ssh * ssh,u_int64_t * valp)2690 sshpkt_get_u64(struct ssh *ssh, u_int64_t *valp)
2691 {
2692 return sshbuf_get_u64(ssh->state->incoming_packet, valp);
2693 }
2694
2695 int
sshpkt_get_string(struct ssh * ssh,u_char ** valp,size_t * lenp)2696 sshpkt_get_string(struct ssh *ssh, u_char **valp, size_t *lenp)
2697 {
2698 return sshbuf_get_string(ssh->state->incoming_packet, valp, lenp);
2699 }
2700
2701 int
sshpkt_get_string_direct(struct ssh * ssh,const u_char ** valp,size_t * lenp)2702 sshpkt_get_string_direct(struct ssh *ssh, const u_char **valp, size_t *lenp)
2703 {
2704 return sshbuf_get_string_direct(ssh->state->incoming_packet, valp, lenp);
2705 }
2706
2707 int
sshpkt_peek_string_direct(struct ssh * ssh,const u_char ** valp,size_t * lenp)2708 sshpkt_peek_string_direct(struct ssh *ssh, const u_char **valp, size_t *lenp)
2709 {
2710 return sshbuf_peek_string_direct(ssh->state->incoming_packet, valp, lenp);
2711 }
2712
2713 int
sshpkt_get_cstring(struct ssh * ssh,char ** valp,size_t * lenp)2714 sshpkt_get_cstring(struct ssh *ssh, char **valp, size_t *lenp)
2715 {
2716 return sshbuf_get_cstring(ssh->state->incoming_packet, valp, lenp);
2717 }
2718
2719 int
sshpkt_getb_froms(struct ssh * ssh,struct sshbuf ** valp)2720 sshpkt_getb_froms(struct ssh *ssh, struct sshbuf **valp)
2721 {
2722 return sshbuf_froms(ssh->state->incoming_packet, valp);
2723 }
2724
2725 #ifdef WITH_OPENSSL
2726 #ifdef OPENSSL_HAS_ECC
2727 int
sshpkt_get_ec(struct ssh * ssh,EC_POINT * v,const EC_GROUP * g)2728 sshpkt_get_ec(struct ssh *ssh, EC_POINT *v, const EC_GROUP *g)
2729 {
2730 return sshbuf_get_ec(ssh->state->incoming_packet, v, g);
2731 }
2732 #endif /* OPENSSL_HAS_ECC */
2733
2734 int
sshpkt_get_bignum2(struct ssh * ssh,BIGNUM ** valp)2735 sshpkt_get_bignum2(struct ssh *ssh, BIGNUM **valp)
2736 {
2737 return sshbuf_get_bignum2(ssh->state->incoming_packet, valp);
2738 }
2739 #endif /* WITH_OPENSSL */
2740
2741 int
sshpkt_get_end(struct ssh * ssh)2742 sshpkt_get_end(struct ssh *ssh)
2743 {
2744 if (sshbuf_len(ssh->state->incoming_packet) > 0)
2745 return SSH_ERR_UNEXPECTED_TRAILING_DATA;
2746 return 0;
2747 }
2748
2749 const u_char *
sshpkt_ptr(struct ssh * ssh,size_t * lenp)2750 sshpkt_ptr(struct ssh *ssh, size_t *lenp)
2751 {
2752 if (lenp != NULL)
2753 *lenp = sshbuf_len(ssh->state->incoming_packet);
2754 return sshbuf_ptr(ssh->state->incoming_packet);
2755 }
2756
2757 /* start a new packet */
2758
2759 int
sshpkt_start(struct ssh * ssh,u_char type)2760 sshpkt_start(struct ssh *ssh, u_char type)
2761 {
2762 u_char buf[6]; /* u32 packet length, u8 pad len, u8 type */
2763
2764 DBG(debug("packet_start[%d]", type));
2765 memset(buf, 0, sizeof(buf));
2766 buf[sizeof(buf) - 1] = type;
2767 sshbuf_reset(ssh->state->outgoing_packet);
2768 return sshbuf_put(ssh->state->outgoing_packet, buf, sizeof(buf));
2769 }
2770
2771 static int
ssh_packet_send_mux(struct ssh * ssh)2772 ssh_packet_send_mux(struct ssh *ssh)
2773 {
2774 struct session_state *state = ssh->state;
2775 u_char type, *cp;
2776 size_t len;
2777 int r;
2778
2779 if (ssh->kex)
2780 return SSH_ERR_INTERNAL_ERROR;
2781 len = sshbuf_len(state->outgoing_packet);
2782 if (len < 6)
2783 return SSH_ERR_INTERNAL_ERROR;
2784 cp = sshbuf_mutable_ptr(state->outgoing_packet);
2785 type = cp[5];
2786 if (ssh_packet_log_type(type))
2787 debug3_f("type %u", type);
2788 /* drop everything, but the connection protocol */
2789 if (type >= SSH2_MSG_CONNECTION_MIN &&
2790 type <= SSH2_MSG_CONNECTION_MAX) {
2791 POKE_U32(cp, len - 4);
2792 if ((r = sshbuf_putb(state->output,
2793 state->outgoing_packet)) != 0)
2794 return r;
2795 /* sshbuf_dump(state->output, stderr); */
2796 }
2797 sshbuf_reset(state->outgoing_packet);
2798 return 0;
2799 }
2800
2801 /*
2802 * 9.2. Ignored Data Message
2803 *
2804 * byte SSH_MSG_IGNORE
2805 * string data
2806 *
2807 * All implementations MUST understand (and ignore) this message at any
2808 * time (after receiving the protocol version). No implementation is
2809 * required to send them. This message can be used as an additional
2810 * protection measure against advanced traffic analysis techniques.
2811 */
2812 int
sshpkt_msg_ignore(struct ssh * ssh,u_int nbytes)2813 sshpkt_msg_ignore(struct ssh *ssh, u_int nbytes)
2814 {
2815 u_int32_t rnd = 0;
2816 int r;
2817 u_int i;
2818
2819 if ((r = sshpkt_start(ssh, SSH2_MSG_IGNORE)) != 0 ||
2820 (r = sshpkt_put_u32(ssh, nbytes)) != 0)
2821 return r;
2822 for (i = 0; i < nbytes; i++) {
2823 if (i % 4 == 0)
2824 rnd = arc4random();
2825 if ((r = sshpkt_put_u8(ssh, (u_char)rnd & 0xff)) != 0)
2826 return r;
2827 rnd >>= 8;
2828 }
2829 return 0;
2830 }
2831
2832 /* send it */
2833
2834 int
sshpkt_send(struct ssh * ssh)2835 sshpkt_send(struct ssh *ssh)
2836 {
2837 if (ssh->state && ssh->state->mux)
2838 return ssh_packet_send_mux(ssh);
2839 return ssh_packet_send2(ssh);
2840 }
2841
2842 int
sshpkt_disconnect(struct ssh * ssh,const char * fmt,...)2843 sshpkt_disconnect(struct ssh *ssh, const char *fmt,...)
2844 {
2845 char buf[1024];
2846 va_list args;
2847 int r;
2848
2849 va_start(args, fmt);
2850 vsnprintf(buf, sizeof(buf), fmt, args);
2851 va_end(args);
2852
2853 debug2_f("sending SSH2_MSG_DISCONNECT: %s", buf);
2854 if ((r = sshpkt_start(ssh, SSH2_MSG_DISCONNECT)) != 0 ||
2855 (r = sshpkt_put_u32(ssh, SSH2_DISCONNECT_PROTOCOL_ERROR)) != 0 ||
2856 (r = sshpkt_put_cstring(ssh, buf)) != 0 ||
2857 (r = sshpkt_put_cstring(ssh, "")) != 0 ||
2858 (r = sshpkt_send(ssh)) != 0)
2859 return r;
2860 return 0;
2861 }
2862
2863 /* roundup current message to pad bytes */
2864 int
sshpkt_add_padding(struct ssh * ssh,u_char pad)2865 sshpkt_add_padding(struct ssh *ssh, u_char pad)
2866 {
2867 ssh->state->extra_pad = pad;
2868 return 0;
2869 }
2870