Attempt to ensure that everything passed to connection_fatal() is
[u/mdw/putty] / ssh.c
1 #include <windows.h>
2 #include <stdio.h>
3 #include <stdlib.h>
4 #include <stdarg.h>
5 #include <assert.h>
6
7 #include "putty.h"
8 #include "tree234.h"
9 #include "ssh.h"
10
11 #ifndef FALSE
12 #define FALSE 0
13 #endif
14 #ifndef TRUE
15 #define TRUE 1
16 #endif
17
18 #define logevent(s) { logevent(s); \
19 if ((flags & FLAG_STDERR) && (flags & FLAG_VERBOSE)) \
20 { fprintf(stderr, "%s\n", s); fflush(stderr); } }
21
22 /* logevent, only printf-formatted. */
23 void logeventf(char *fmt, ...)
24 {
25 va_list ap;
26 char stuff[200];
27
28 va_start(ap, fmt);
29 vsprintf(stuff, fmt, ap);
30 va_end(ap);
31 logevent(stuff);
32 }
33
34 #define bombout(msg) ( ssh_state = SSH_STATE_CLOSED, \
35 (s ? sk_close(s), s = NULL : 0), \
36 logeventf msg, connection_fatal msg )
37
38 #define SSH1_MSG_DISCONNECT 1 /* 0x1 */
39 #define SSH1_SMSG_PUBLIC_KEY 2 /* 0x2 */
40 #define SSH1_CMSG_SESSION_KEY 3 /* 0x3 */
41 #define SSH1_CMSG_USER 4 /* 0x4 */
42 #define SSH1_CMSG_AUTH_RSA 6 /* 0x6 */
43 #define SSH1_SMSG_AUTH_RSA_CHALLENGE 7 /* 0x7 */
44 #define SSH1_CMSG_AUTH_RSA_RESPONSE 8 /* 0x8 */
45 #define SSH1_CMSG_AUTH_PASSWORD 9 /* 0x9 */
46 #define SSH1_CMSG_REQUEST_PTY 10 /* 0xa */
47 #define SSH1_CMSG_WINDOW_SIZE 11 /* 0xb */
48 #define SSH1_CMSG_EXEC_SHELL 12 /* 0xc */
49 #define SSH1_CMSG_EXEC_CMD 13 /* 0xd */
50 #define SSH1_SMSG_SUCCESS 14 /* 0xe */
51 #define SSH1_SMSG_FAILURE 15 /* 0xf */
52 #define SSH1_CMSG_STDIN_DATA 16 /* 0x10 */
53 #define SSH1_SMSG_STDOUT_DATA 17 /* 0x11 */
54 #define SSH1_SMSG_STDERR_DATA 18 /* 0x12 */
55 #define SSH1_CMSG_EOF 19 /* 0x13 */
56 #define SSH1_SMSG_EXIT_STATUS 20 /* 0x14 */
57 #define SSH1_MSG_CHANNEL_OPEN_CONFIRMATION 21 /* 0x15 */
58 #define SSH1_MSG_CHANNEL_OPEN_FAILURE 22 /* 0x16 */
59 #define SSH1_MSG_CHANNEL_DATA 23 /* 0x17 */
60 #define SSH1_MSG_CHANNEL_CLOSE 24 /* 0x18 */
61 #define SSH1_MSG_CHANNEL_CLOSE_CONFIRMATION 25 /* 0x19 */
62 #define SSH1_SMSG_X11_OPEN 27 /* 0x1b */
63 #define SSH1_CMSG_PORT_FORWARD_REQUEST 28 /* 0x1c */
64 #define SSH1_MSG_PORT_OPEN 29 /* 0x1d */
65 #define SSH1_CMSG_AGENT_REQUEST_FORWARDING 30 /* 0x1e */
66 #define SSH1_SMSG_AGENT_OPEN 31 /* 0x1f */
67 #define SSH1_MSG_IGNORE 32 /* 0x20 */
68 #define SSH1_CMSG_EXIT_CONFIRMATION 33 /* 0x21 */
69 #define SSH1_CMSG_X11_REQUEST_FORWARDING 34 /* 0x22 */
70 #define SSH1_CMSG_AUTH_RHOSTS_RSA 35 /* 0x23 */
71 #define SSH1_MSG_DEBUG 36 /* 0x24 */
72 #define SSH1_CMSG_REQUEST_COMPRESSION 37 /* 0x25 */
73 #define SSH1_CMSG_AUTH_TIS 39 /* 0x27 */
74 #define SSH1_SMSG_AUTH_TIS_CHALLENGE 40 /* 0x28 */
75 #define SSH1_CMSG_AUTH_TIS_RESPONSE 41 /* 0x29 */
76 #define SSH1_CMSG_AUTH_CCARD 70 /* 0x46 */
77 #define SSH1_SMSG_AUTH_CCARD_CHALLENGE 71 /* 0x47 */
78 #define SSH1_CMSG_AUTH_CCARD_RESPONSE 72 /* 0x48 */
79
80 #define SSH1_AUTH_TIS 5 /* 0x5 */
81 #define SSH1_AUTH_CCARD 16 /* 0x10 */
82
83 #define SSH1_PROTOFLAG_SCREEN_NUMBER 1 /* 0x1 */
84 /* Mask for protoflags we will echo back to server if seen */
85 #define SSH1_PROTOFLAGS_SUPPORTED 0 /* 0x1 */
86
87 #define SSH2_MSG_DISCONNECT 1 /* 0x1 */
88 #define SSH2_MSG_IGNORE 2 /* 0x2 */
89 #define SSH2_MSG_UNIMPLEMENTED 3 /* 0x3 */
90 #define SSH2_MSG_DEBUG 4 /* 0x4 */
91 #define SSH2_MSG_SERVICE_REQUEST 5 /* 0x5 */
92 #define SSH2_MSG_SERVICE_ACCEPT 6 /* 0x6 */
93 #define SSH2_MSG_KEXINIT 20 /* 0x14 */
94 #define SSH2_MSG_NEWKEYS 21 /* 0x15 */
95 #define SSH2_MSG_KEXDH_INIT 30 /* 0x1e */
96 #define SSH2_MSG_KEXDH_REPLY 31 /* 0x1f */
97 #define SSH2_MSG_KEX_DH_GEX_REQUEST 30 /* 0x1e */
98 #define SSH2_MSG_KEX_DH_GEX_GROUP 31 /* 0x1f */
99 #define SSH2_MSG_KEX_DH_GEX_INIT 32 /* 0x20 */
100 #define SSH2_MSG_KEX_DH_GEX_REPLY 33 /* 0x21 */
101 #define SSH2_MSG_USERAUTH_REQUEST 50 /* 0x32 */
102 #define SSH2_MSG_USERAUTH_FAILURE 51 /* 0x33 */
103 #define SSH2_MSG_USERAUTH_SUCCESS 52 /* 0x34 */
104 #define SSH2_MSG_USERAUTH_BANNER 53 /* 0x35 */
105 #define SSH2_MSG_USERAUTH_PK_OK 60 /* 0x3c */
106 #define SSH2_MSG_USERAUTH_PASSWD_CHANGEREQ 60 /* 0x3c */
107 #define SSH2_MSG_USERAUTH_INFO_REQUEST 60 /* 0x3c */
108 #define SSH2_MSG_USERAUTH_INFO_RESPONSE 61 /* 0x3d */
109 #define SSH2_MSG_GLOBAL_REQUEST 80 /* 0x50 */
110 #define SSH2_MSG_REQUEST_SUCCESS 81 /* 0x51 */
111 #define SSH2_MSG_REQUEST_FAILURE 82 /* 0x52 */
112 #define SSH2_MSG_CHANNEL_OPEN 90 /* 0x5a */
113 #define SSH2_MSG_CHANNEL_OPEN_CONFIRMATION 91 /* 0x5b */
114 #define SSH2_MSG_CHANNEL_OPEN_FAILURE 92 /* 0x5c */
115 #define SSH2_MSG_CHANNEL_WINDOW_ADJUST 93 /* 0x5d */
116 #define SSH2_MSG_CHANNEL_DATA 94 /* 0x5e */
117 #define SSH2_MSG_CHANNEL_EXTENDED_DATA 95 /* 0x5f */
118 #define SSH2_MSG_CHANNEL_EOF 96 /* 0x60 */
119 #define SSH2_MSG_CHANNEL_CLOSE 97 /* 0x61 */
120 #define SSH2_MSG_CHANNEL_REQUEST 98 /* 0x62 */
121 #define SSH2_MSG_CHANNEL_SUCCESS 99 /* 0x63 */
122 #define SSH2_MSG_CHANNEL_FAILURE 100 /* 0x64 */
123
124 /*
125 * Packet type contexts, so that ssh2_pkt_type can correctly decode
126 * the ambiguous type numbers back into the correct type strings.
127 */
128 #define SSH2_PKTCTX_DHGROUP1 0x0001
129 #define SSH2_PKTCTX_DHGEX 0x0002
130 #define SSH2_PKTCTX_PUBLICKEY 0x0010
131 #define SSH2_PKTCTX_PASSWORD 0x0020
132 #define SSH2_PKTCTX_KBDINTER 0x0040
133 #define SSH2_PKTCTX_AUTH_MASK 0x00F0
134
135 #define SSH2_DISCONNECT_HOST_NOT_ALLOWED_TO_CONNECT 1 /* 0x1 */
136 #define SSH2_DISCONNECT_PROTOCOL_ERROR 2 /* 0x2 */
137 #define SSH2_DISCONNECT_KEY_EXCHANGE_FAILED 3 /* 0x3 */
138 #define SSH2_DISCONNECT_HOST_AUTHENTICATION_FAILED 4 /* 0x4 */
139 #define SSH2_DISCONNECT_MAC_ERROR 5 /* 0x5 */
140 #define SSH2_DISCONNECT_COMPRESSION_ERROR 6 /* 0x6 */
141 #define SSH2_DISCONNECT_SERVICE_NOT_AVAILABLE 7 /* 0x7 */
142 #define SSH2_DISCONNECT_PROTOCOL_VERSION_NOT_SUPPORTED 8 /* 0x8 */
143 #define SSH2_DISCONNECT_HOST_KEY_NOT_VERIFIABLE 9 /* 0x9 */
144 #define SSH2_DISCONNECT_CONNECTION_LOST 10 /* 0xa */
145 #define SSH2_DISCONNECT_BY_APPLICATION 11 /* 0xb */
146 #define SSH2_DISCONNECT_TOO_MANY_CONNECTIONS 12 /* 0xc */
147 #define SSH2_DISCONNECT_AUTH_CANCELLED_BY_USER 13 /* 0xd */
148 #define SSH2_DISCONNECT_NO_MORE_AUTH_METHODS_AVAILABLE 14 /* 0xe */
149 #define SSH2_DISCONNECT_ILLEGAL_USER_NAME 15 /* 0xf */
150
151 static const char *const ssh2_disconnect_reasons[] = {
152 NULL,
153 "SSH_DISCONNECT_HOST_NOT_ALLOWED_TO_CONNECT",
154 "SSH_DISCONNECT_PROTOCOL_ERROR",
155 "SSH_DISCONNECT_KEY_EXCHANGE_FAILED",
156 "SSH_DISCONNECT_HOST_AUTHENTICATION_FAILED",
157 "SSH_DISCONNECT_MAC_ERROR",
158 "SSH_DISCONNECT_COMPRESSION_ERROR",
159 "SSH_DISCONNECT_SERVICE_NOT_AVAILABLE",
160 "SSH_DISCONNECT_PROTOCOL_VERSION_NOT_SUPPORTED",
161 "SSH_DISCONNECT_HOST_KEY_NOT_VERIFIABLE",
162 "SSH_DISCONNECT_CONNECTION_LOST",
163 "SSH_DISCONNECT_BY_APPLICATION",
164 "SSH_DISCONNECT_TOO_MANY_CONNECTIONS",
165 "SSH_DISCONNECT_AUTH_CANCELLED_BY_USER",
166 "SSH_DISCONNECT_NO_MORE_AUTH_METHODS_AVAILABLE",
167 "SSH_DISCONNECT_ILLEGAL_USER_NAME",
168 };
169
170 #define SSH2_OPEN_ADMINISTRATIVELY_PROHIBITED 1 /* 0x1 */
171 #define SSH2_OPEN_CONNECT_FAILED 2 /* 0x2 */
172 #define SSH2_OPEN_UNKNOWN_CHANNEL_TYPE 3 /* 0x3 */
173 #define SSH2_OPEN_RESOURCE_SHORTAGE 4 /* 0x4 */
174
175 #define SSH2_EXTENDED_DATA_STDERR 1 /* 0x1 */
176
177 /*
178 * Various remote-bug flags.
179 */
180 #define BUG_CHOKES_ON_SSH1_IGNORE 1
181 #define BUG_SSH2_HMAC 2
182 #define BUG_NEEDS_SSH1_PLAIN_PASSWORD 4
183 #define BUG_CHOKES_ON_RSA 8
184
185 static int ssh_pkt_ctx = 0;
186
187 #define translate(x) if (type == x) return #x
188 #define translatec(x,ctx) if (type == x && (ssh_pkt_ctx & ctx)) return #x
189 char *ssh1_pkt_type(int type)
190 {
191 translate(SSH1_MSG_DISCONNECT);
192 translate(SSH1_SMSG_PUBLIC_KEY);
193 translate(SSH1_CMSG_SESSION_KEY);
194 translate(SSH1_CMSG_USER);
195 translate(SSH1_CMSG_AUTH_RSA);
196 translate(SSH1_SMSG_AUTH_RSA_CHALLENGE);
197 translate(SSH1_CMSG_AUTH_RSA_RESPONSE);
198 translate(SSH1_CMSG_AUTH_PASSWORD);
199 translate(SSH1_CMSG_REQUEST_PTY);
200 translate(SSH1_CMSG_WINDOW_SIZE);
201 translate(SSH1_CMSG_EXEC_SHELL);
202 translate(SSH1_CMSG_EXEC_CMD);
203 translate(SSH1_SMSG_SUCCESS);
204 translate(SSH1_SMSG_FAILURE);
205 translate(SSH1_CMSG_STDIN_DATA);
206 translate(SSH1_SMSG_STDOUT_DATA);
207 translate(SSH1_SMSG_STDERR_DATA);
208 translate(SSH1_CMSG_EOF);
209 translate(SSH1_SMSG_EXIT_STATUS);
210 translate(SSH1_MSG_CHANNEL_OPEN_CONFIRMATION);
211 translate(SSH1_MSG_CHANNEL_OPEN_FAILURE);
212 translate(SSH1_MSG_CHANNEL_DATA);
213 translate(SSH1_MSG_CHANNEL_CLOSE);
214 translate(SSH1_MSG_CHANNEL_CLOSE_CONFIRMATION);
215 translate(SSH1_SMSG_X11_OPEN);
216 translate(SSH1_CMSG_PORT_FORWARD_REQUEST);
217 translate(SSH1_MSG_PORT_OPEN);
218 translate(SSH1_CMSG_AGENT_REQUEST_FORWARDING);
219 translate(SSH1_SMSG_AGENT_OPEN);
220 translate(SSH1_MSG_IGNORE);
221 translate(SSH1_CMSG_EXIT_CONFIRMATION);
222 translate(SSH1_CMSG_X11_REQUEST_FORWARDING);
223 translate(SSH1_CMSG_AUTH_RHOSTS_RSA);
224 translate(SSH1_MSG_DEBUG);
225 translate(SSH1_CMSG_REQUEST_COMPRESSION);
226 translate(SSH1_CMSG_AUTH_TIS);
227 translate(SSH1_SMSG_AUTH_TIS_CHALLENGE);
228 translate(SSH1_CMSG_AUTH_TIS_RESPONSE);
229 translate(SSH1_CMSG_AUTH_CCARD);
230 translate(SSH1_SMSG_AUTH_CCARD_CHALLENGE);
231 translate(SSH1_CMSG_AUTH_CCARD_RESPONSE);
232 return "unknown";
233 }
234 char *ssh2_pkt_type(int type)
235 {
236 translate(SSH2_MSG_DISCONNECT);
237 translate(SSH2_MSG_IGNORE);
238 translate(SSH2_MSG_UNIMPLEMENTED);
239 translate(SSH2_MSG_DEBUG);
240 translate(SSH2_MSG_SERVICE_REQUEST);
241 translate(SSH2_MSG_SERVICE_ACCEPT);
242 translate(SSH2_MSG_KEXINIT);
243 translate(SSH2_MSG_NEWKEYS);
244 translatec(SSH2_MSG_KEXDH_INIT, SSH2_PKTCTX_DHGROUP1);
245 translatec(SSH2_MSG_KEXDH_REPLY, SSH2_PKTCTX_DHGROUP1);
246 translatec(SSH2_MSG_KEX_DH_GEX_REQUEST, SSH2_PKTCTX_DHGEX);
247 translatec(SSH2_MSG_KEX_DH_GEX_GROUP, SSH2_PKTCTX_DHGEX);
248 translatec(SSH2_MSG_KEX_DH_GEX_INIT, SSH2_PKTCTX_DHGEX);
249 translatec(SSH2_MSG_KEX_DH_GEX_REPLY, SSH2_PKTCTX_DHGEX);
250 translate(SSH2_MSG_USERAUTH_REQUEST);
251 translate(SSH2_MSG_USERAUTH_FAILURE);
252 translate(SSH2_MSG_USERAUTH_SUCCESS);
253 translate(SSH2_MSG_USERAUTH_BANNER);
254 translatec(SSH2_MSG_USERAUTH_PK_OK, SSH2_PKTCTX_PUBLICKEY);
255 translatec(SSH2_MSG_USERAUTH_PASSWD_CHANGEREQ, SSH2_PKTCTX_PASSWORD);
256 translatec(SSH2_MSG_USERAUTH_INFO_REQUEST, SSH2_PKTCTX_KBDINTER);
257 translatec(SSH2_MSG_USERAUTH_INFO_RESPONSE, SSH2_PKTCTX_KBDINTER);
258 translate(SSH2_MSG_GLOBAL_REQUEST);
259 translate(SSH2_MSG_REQUEST_SUCCESS);
260 translate(SSH2_MSG_REQUEST_FAILURE);
261 translate(SSH2_MSG_CHANNEL_OPEN);
262 translate(SSH2_MSG_CHANNEL_OPEN_CONFIRMATION);
263 translate(SSH2_MSG_CHANNEL_OPEN_FAILURE);
264 translate(SSH2_MSG_CHANNEL_WINDOW_ADJUST);
265 translate(SSH2_MSG_CHANNEL_DATA);
266 translate(SSH2_MSG_CHANNEL_EXTENDED_DATA);
267 translate(SSH2_MSG_CHANNEL_EOF);
268 translate(SSH2_MSG_CHANNEL_CLOSE);
269 translate(SSH2_MSG_CHANNEL_REQUEST);
270 translate(SSH2_MSG_CHANNEL_SUCCESS);
271 translate(SSH2_MSG_CHANNEL_FAILURE);
272 return "unknown";
273 }
274 #undef translate
275 #undef translatec
276
277 #define GET_32BIT(cp) \
278 (((unsigned long)(unsigned char)(cp)[0] << 24) | \
279 ((unsigned long)(unsigned char)(cp)[1] << 16) | \
280 ((unsigned long)(unsigned char)(cp)[2] << 8) | \
281 ((unsigned long)(unsigned char)(cp)[3]))
282
283 #define PUT_32BIT(cp, value) { \
284 (cp)[0] = (unsigned char)((value) >> 24); \
285 (cp)[1] = (unsigned char)((value) >> 16); \
286 (cp)[2] = (unsigned char)((value) >> 8); \
287 (cp)[3] = (unsigned char)(value); }
288
289 enum { PKT_END, PKT_INT, PKT_CHAR, PKT_DATA, PKT_STR, PKT_BIGNUM };
290
291 /* Coroutine mechanics for the sillier bits of the code */
292 #define crBegin1 static int crLine = 0;
293 #define crBegin2 switch(crLine) { case 0:;
294 #define crBegin crBegin1; crBegin2;
295 #define crFinish(z) } crLine = 0; return (z)
296 #define crFinishV } crLine = 0; return
297 #define crReturn(z) \
298 do {\
299 crLine=__LINE__; return (z); case __LINE__:;\
300 } while (0)
301 #define crReturnV \
302 do {\
303 crLine=__LINE__; return; case __LINE__:;\
304 } while (0)
305 #define crStop(z) do{ crLine = 0; return (z); }while(0)
306 #define crStopV do{ crLine = 0; return; }while(0)
307 #define crWaitUntil(c) do { crReturn(0); } while (!(c))
308 #define crWaitUntilV(c) do { crReturnV; } while (!(c))
309
310 extern char *x11_init(Socket *, char *, void *);
311 extern void x11_close(Socket);
312 extern int x11_send(Socket, char *, int);
313 extern void x11_invent_auth(char *, int, char *, int);
314 extern void x11_unthrottle(Socket s);
315 extern void x11_override_throttle(Socket s, int enable);
316
317 extern char *pfd_newconnect(Socket * s, char *hostname, int port, void *c);
318 extern char *pfd_addforward(char *desthost, int destport, int port);
319 extern void pfd_close(Socket s);
320 extern int pfd_send(Socket s, char *data, int len);
321 extern void pfd_confirm(Socket s);
322 extern void pfd_unthrottle(Socket s);
323 extern void pfd_override_throttle(Socket s, int enable);
324
325 static void ssh2_pkt_init(int pkt_type);
326 static void ssh2_pkt_addbool(unsigned char value);
327 static void ssh2_pkt_adduint32(unsigned long value);
328 static void ssh2_pkt_addstring_start(void);
329 static void ssh2_pkt_addstring_str(char *data);
330 static void ssh2_pkt_addstring_data(char *data, int len);
331 static void ssh2_pkt_addstring(char *data);
332 static char *ssh2_mpint_fmt(Bignum b, int *len);
333 static void ssh2_pkt_addmp(Bignum b);
334 static int ssh2_pkt_construct(void);
335 static void ssh2_pkt_send(void);
336
337 /*
338 * Buffer management constants. There are several of these for
339 * various different purposes:
340 *
341 * - SSH1_BUFFER_LIMIT is the amount of backlog that must build up
342 * on a local data stream before we throttle the whole SSH
343 * connection (in SSH1 only). Throttling the whole connection is
344 * pretty drastic so we set this high in the hope it won't
345 * happen very often.
346 *
347 * - SSH_MAX_BACKLOG is the amount of backlog that must build up
348 * on the SSH connection itself before we defensively throttle
349 * _all_ local data streams. This is pretty drastic too (though
350 * thankfully unlikely in SSH2 since the window mechanism should
351 * ensure that the server never has any need to throttle its end
352 * of the connection), so we set this high as well.
353 *
354 * - OUR_V2_WINSIZE is the maximum window size we present on SSH2
355 * channels.
356 */
357
358 #define SSH1_BUFFER_LIMIT 32768
359 #define SSH_MAX_BACKLOG 32768
360 #define OUR_V2_WINSIZE 16384
361
362 const static struct ssh_kex *kex_algs[] = {
363 &ssh_diffiehellman_gex,
364 &ssh_diffiehellman
365 };
366
367 const static struct ssh_signkey *hostkey_algs[] = { &ssh_rsa, &ssh_dss };
368
369 static void nullmac_key(unsigned char *key)
370 {
371 }
372 static void nullmac_generate(unsigned char *blk, int len,
373 unsigned long seq)
374 {
375 }
376 static int nullmac_verify(unsigned char *blk, int len, unsigned long seq)
377 {
378 return 1;
379 }
380 const static struct ssh_mac ssh_mac_none = {
381 nullmac_key, nullmac_key, nullmac_generate, nullmac_verify, "none", 0
382 };
383 const static struct ssh_mac *macs[] = {
384 &ssh_sha1, &ssh_md5, &ssh_mac_none
385 };
386 const static struct ssh_mac *buggymacs[] = {
387 &ssh_sha1_buggy, &ssh_md5, &ssh_mac_none
388 };
389
390 static void ssh_comp_none_init(void)
391 {
392 }
393 static int ssh_comp_none_block(unsigned char *block, int len,
394 unsigned char **outblock, int *outlen)
395 {
396 return 0;
397 }
398 static int ssh_comp_none_disable(void)
399 {
400 return 0;
401 }
402 const static struct ssh_compress ssh_comp_none = {
403 "none",
404 ssh_comp_none_init, ssh_comp_none_block,
405 ssh_comp_none_init, ssh_comp_none_block,
406 ssh_comp_none_disable
407 };
408 extern const struct ssh_compress ssh_zlib;
409 const static struct ssh_compress *compressions[] = {
410 &ssh_zlib, &ssh_comp_none
411 };
412
413 enum { /* channel types */
414 CHAN_MAINSESSION,
415 CHAN_X11,
416 CHAN_AGENT,
417 CHAN_SOCKDATA,
418 CHAN_SOCKDATA_DORMANT /* one the remote hasn't confirmed */
419 };
420
421 /*
422 * 2-3-4 tree storing channels.
423 */
424 struct ssh_channel {
425 unsigned remoteid, localid;
426 int type;
427 int closes;
428 union {
429 struct ssh1_data_channel {
430 int throttling;
431 } v1;
432 struct ssh2_data_channel {
433 bufchain outbuffer;
434 unsigned remwindow, remmaxpkt;
435 unsigned locwindow;
436 } v2;
437 } v;
438 union {
439 struct ssh_agent_channel {
440 unsigned char *message;
441 unsigned char msglen[4];
442 int lensofar, totallen;
443 } a;
444 struct ssh_x11_channel {
445 Socket s;
446 } x11;
447 struct ssh_pfd_channel {
448 Socket s;
449 } pfd;
450 } u;
451 };
452
453 /*
454 * 2-3-4 tree storing remote->local port forwardings. SSH 1 and SSH
455 * 2 use this structure in different ways, reflecting SSH 2's
456 * altogether saner approach to port forwarding.
457 *
458 * In SSH 1, you arrange a remote forwarding by sending the server
459 * the remote port number, and the local destination host:port.
460 * When a connection comes in, the server sends you back that
461 * host:port pair, and you connect to it. This is a ready-made
462 * security hole if you're not on the ball: a malicious server
463 * could send you back _any_ host:port pair, so if you trustingly
464 * connect to the address it gives you then you've just opened the
465 * entire inside of your corporate network just by connecting
466 * through it to a dodgy SSH server. Hence, we must store a list of
467 * host:port pairs we _are_ trying to forward to, and reject a
468 * connection request from the server if it's not in the list.
469 *
470 * In SSH 2, each side of the connection minds its own business and
471 * doesn't send unnecessary information to the other. You arrange a
472 * remote forwarding by sending the server just the remote port
473 * number. When a connection comes in, the server tells you which
474 * of its ports was connected to; and _you_ have to remember what
475 * local host:port pair went with that port number.
476 *
477 * Hence: in SSH 1 this structure stores host:port pairs we intend
478 * to allow connections to, and is indexed by those host:port
479 * pairs. In SSH 2 it stores a mapping from source port to
480 * destination host:port pair, and is indexed by source port.
481 */
482 struct ssh_rportfwd {
483 unsigned sport, dport;
484 char dhost[256];
485 };
486
487 struct Packet {
488 long length;
489 int type;
490 unsigned char *data;
491 unsigned char *body;
492 long savedpos;
493 long maxlen;
494 };
495
496 static SHA_State exhash, exhashbase;
497
498 static Socket s = NULL;
499
500 static unsigned char session_key[32];
501 static int ssh1_compressing;
502 static int ssh1_remote_protoflags;
503 static int ssh1_local_protoflags;
504 static int ssh_agentfwd_enabled;
505 static int ssh_X11_fwd_enabled;
506 static int ssh_remote_bugs;
507 static const struct ssh_cipher *cipher = NULL;
508 static const struct ssh2_cipher *cscipher = NULL;
509 static const struct ssh2_cipher *sccipher = NULL;
510 static const struct ssh_mac *csmac = NULL;
511 static const struct ssh_mac *scmac = NULL;
512 static const struct ssh_compress *cscomp = NULL;
513 static const struct ssh_compress *sccomp = NULL;
514 static const struct ssh_kex *kex = NULL;
515 static const struct ssh_signkey *hostkey = NULL;
516 static unsigned char ssh2_session_id[20];
517 int (*ssh_get_line) (const char *prompt, char *str, int maxlen,
518 int is_pw) = NULL;
519
520 static char *savedhost;
521 static int savedport;
522 static int ssh_send_ok;
523 static int ssh_echoing, ssh_editing;
524
525 static tree234 *ssh_channels; /* indexed by local id */
526 static struct ssh_channel *mainchan; /* primary session channel */
527 static int ssh_exitcode = -1;
528
529 static tree234 *ssh_rportfwds;
530
531 static enum {
532 SSH_STATE_PREPACKET,
533 SSH_STATE_BEFORE_SIZE,
534 SSH_STATE_INTERMED,
535 SSH_STATE_SESSION,
536 SSH_STATE_CLOSED
537 } ssh_state = SSH_STATE_PREPACKET;
538
539 static int size_needed = FALSE, eof_needed = FALSE;
540
541 static struct Packet pktin = { 0, 0, NULL, NULL, 0 };
542 static struct Packet pktout = { 0, 0, NULL, NULL, 0 };
543 static unsigned char *deferred_send_data = NULL;
544 static int deferred_len = 0, deferred_size = 0;
545
546 /*
547 * Gross hack: pscp will try to start SFTP but fall back to scp1 if
548 * that fails. This variable is the means by which scp.c can reach
549 * into the SSH code and find out which one it got.
550 */
551 int ssh_fallback_cmd = 0;
552
553 static int ssh_version;
554 static int ssh1_throttle_count;
555 static int ssh_overall_bufsize;
556 static int ssh_throttled_all;
557 static int ssh1_stdout_throttling;
558 static void (*ssh_protocol) (unsigned char *in, int inlen, int ispkt);
559 static void ssh1_protocol(unsigned char *in, int inlen, int ispkt);
560 static void ssh2_protocol(unsigned char *in, int inlen, int ispkt);
561 static void ssh_size(void);
562 static void ssh_special(Telnet_Special);
563 static int ssh2_try_send(struct ssh_channel *c);
564 static void ssh2_add_channel_data(struct ssh_channel *c, char *buf,
565 int len);
566 static void ssh_throttle_all(int enable, int bufsize);
567 static void ssh2_set_window(struct ssh_channel *c, unsigned newwin);
568 static int (*s_rdpkt) (unsigned char **data, int *datalen);
569 static int ssh_sendbuffer(void);
570
571 static struct rdpkt1_state_tag {
572 long len, pad, biglen, to_read;
573 unsigned long realcrc, gotcrc;
574 unsigned char *p;
575 int i;
576 int chunk;
577 } rdpkt1_state;
578
579 static struct rdpkt2_state_tag {
580 long len, pad, payload, packetlen, maclen;
581 int i;
582 int cipherblk;
583 unsigned long incoming_sequence;
584 } rdpkt2_state;
585
586 static int ssh_channelcmp(void *av, void *bv)
587 {
588 struct ssh_channel *a = (struct ssh_channel *) av;
589 struct ssh_channel *b = (struct ssh_channel *) bv;
590 if (a->localid < b->localid)
591 return -1;
592 if (a->localid > b->localid)
593 return +1;
594 return 0;
595 }
596 static int ssh_channelfind(void *av, void *bv)
597 {
598 unsigned *a = (unsigned *) av;
599 struct ssh_channel *b = (struct ssh_channel *) bv;
600 if (*a < b->localid)
601 return -1;
602 if (*a > b->localid)
603 return +1;
604 return 0;
605 }
606
607 static int ssh_rportcmp_ssh1(void *av, void *bv)
608 {
609 struct ssh_rportfwd *a = (struct ssh_rportfwd *) av;
610 struct ssh_rportfwd *b = (struct ssh_rportfwd *) bv;
611 int i;
612 if ( (i = strcmp(a->dhost, b->dhost)) != 0)
613 return i < 0 ? -1 : +1;
614 if (a->dport > b->dport)
615 return +1;
616 if (a->dport < b->dport)
617 return -1;
618 return 0;
619 }
620
621 static int ssh_rportcmp_ssh2(void *av, void *bv)
622 {
623 struct ssh_rportfwd *a = (struct ssh_rportfwd *) av;
624 struct ssh_rportfwd *b = (struct ssh_rportfwd *) bv;
625
626 if (a->sport > b->sport)
627 return +1;
628 if (a->sport < b->sport)
629 return -1;
630 return 0;
631 }
632
633 static int alloc_channel_id(void)
634 {
635 const unsigned CHANNEL_NUMBER_OFFSET = 256;
636 unsigned low, high, mid;
637 int tsize;
638 struct ssh_channel *c;
639
640 /*
641 * First-fit allocation of channel numbers: always pick the
642 * lowest unused one. To do this, binary-search using the
643 * counted B-tree to find the largest channel ID which is in a
644 * contiguous sequence from the beginning. (Precisely
645 * everything in that sequence must have ID equal to its tree
646 * index plus CHANNEL_NUMBER_OFFSET.)
647 */
648 tsize = count234(ssh_channels);
649
650 low = -1;
651 high = tsize;
652 while (high - low > 1) {
653 mid = (high + low) / 2;
654 c = index234(ssh_channels, mid);
655 if (c->localid == mid + CHANNEL_NUMBER_OFFSET)
656 low = mid; /* this one is fine */
657 else
658 high = mid; /* this one is past it */
659 }
660 /*
661 * Now low points to either -1, or the tree index of the
662 * largest ID in the initial sequence.
663 */
664 {
665 unsigned i = low + 1 + CHANNEL_NUMBER_OFFSET;
666 assert(NULL == find234(ssh_channels, &i, ssh_channelfind));
667 }
668 return low + 1 + CHANNEL_NUMBER_OFFSET;
669 }
670
671 static void c_write(char *buf, int len)
672 {
673 if ((flags & FLAG_STDERR)) {
674 int i;
675 for (i = 0; i < len; i++)
676 if (buf[i] != '\r')
677 fputc(buf[i], stderr);
678 return;
679 }
680 from_backend(1, buf, len);
681 }
682
683 static void c_write_untrusted(char *buf, int len)
684 {
685 int i;
686 for (i = 0; i < len; i++) {
687 if (buf[i] == '\n')
688 c_write("\r\n", 2);
689 else if ((buf[i] & 0x60) || (buf[i] == '\r'))
690 c_write(buf + i, 1);
691 }
692 }
693
694 static void c_write_str(char *buf)
695 {
696 c_write(buf, strlen(buf));
697 }
698
699 /*
700 * Collect incoming data in the incoming packet buffer.
701 * Decipher and verify the packet when it is completely read.
702 * Drop SSH1_MSG_DEBUG and SSH1_MSG_IGNORE packets.
703 * Update the *data and *datalen variables.
704 * Return the additional nr of bytes needed, or 0 when
705 * a complete packet is available.
706 */
707 static int ssh1_rdpkt(unsigned char **data, int *datalen)
708 {
709 struct rdpkt1_state_tag *st = &rdpkt1_state;
710
711 crBegin;
712
713 next_packet:
714
715 pktin.type = 0;
716 pktin.length = 0;
717
718 for (st->i = st->len = 0; st->i < 4; st->i++) {
719 while ((*datalen) == 0)
720 crReturn(4 - st->i);
721 st->len = (st->len << 8) + **data;
722 (*data)++, (*datalen)--;
723 }
724
725 st->pad = 8 - (st->len % 8);
726 st->biglen = st->len + st->pad;
727 pktin.length = st->len - 5;
728
729 if (pktin.maxlen < st->biglen) {
730 pktin.maxlen = st->biglen;
731 pktin.data = (pktin.data == NULL ? smalloc(st->biglen + APIEXTRA) :
732 srealloc(pktin.data, st->biglen + APIEXTRA));
733 if (!pktin.data)
734 fatalbox("Out of memory");
735 }
736
737 st->to_read = st->biglen;
738 st->p = pktin.data;
739 while (st->to_read > 0) {
740 st->chunk = st->to_read;
741 while ((*datalen) == 0)
742 crReturn(st->to_read);
743 if (st->chunk > (*datalen))
744 st->chunk = (*datalen);
745 memcpy(st->p, *data, st->chunk);
746 *data += st->chunk;
747 *datalen -= st->chunk;
748 st->p += st->chunk;
749 st->to_read -= st->chunk;
750 }
751
752 if (cipher && detect_attack(pktin.data, st->biglen, NULL)) {
753 bombout(("Network attack (CRC compensation) detected!"));
754 crReturn(0);
755 }
756
757 if (cipher)
758 cipher->decrypt(pktin.data, st->biglen);
759
760 st->realcrc = crc32(pktin.data, st->biglen - 4);
761 st->gotcrc = GET_32BIT(pktin.data + st->biglen - 4);
762 if (st->gotcrc != st->realcrc) {
763 bombout(("Incorrect CRC received on packet"));
764 crReturn(0);
765 }
766
767 pktin.body = pktin.data + st->pad + 1;
768
769 if (ssh1_compressing) {
770 unsigned char *decompblk;
771 int decomplen;
772 zlib_decompress_block(pktin.body - 1, pktin.length + 1,
773 &decompblk, &decomplen);
774
775 if (pktin.maxlen < st->pad + decomplen) {
776 pktin.maxlen = st->pad + decomplen;
777 pktin.data = srealloc(pktin.data, pktin.maxlen + APIEXTRA);
778 pktin.body = pktin.data + st->pad + 1;
779 if (!pktin.data)
780 fatalbox("Out of memory");
781 }
782
783 memcpy(pktin.body - 1, decompblk, decomplen);
784 sfree(decompblk);
785 pktin.length = decomplen - 1;
786 }
787
788 pktin.type = pktin.body[-1];
789
790 log_packet(PKT_INCOMING, pktin.type, ssh1_pkt_type(pktin.type),
791 pktin.body, pktin.length);
792
793 if (pktin.type == SSH1_SMSG_STDOUT_DATA ||
794 pktin.type == SSH1_SMSG_STDERR_DATA ||
795 pktin.type == SSH1_MSG_DEBUG ||
796 pktin.type == SSH1_SMSG_AUTH_TIS_CHALLENGE ||
797 pktin.type == SSH1_SMSG_AUTH_CCARD_CHALLENGE) {
798 long stringlen = GET_32BIT(pktin.body);
799 if (stringlen + 4 != pktin.length) {
800 bombout(("Received data packet with bogus string length"));
801 crReturn(0);
802 }
803 }
804
805 if (pktin.type == SSH1_MSG_DEBUG) {
806 /* log debug message */
807 char buf[80];
808 int stringlen = GET_32BIT(pktin.body);
809 strcpy(buf, "Remote: ");
810 if (stringlen > 70)
811 stringlen = 70;
812 memcpy(buf + 8, pktin.body + 4, stringlen);
813 buf[8 + stringlen] = '\0';
814 logevent(buf);
815 goto next_packet;
816 } else if (pktin.type == SSH1_MSG_IGNORE) {
817 /* do nothing */
818 goto next_packet;
819 }
820
821 if (pktin.type == SSH1_MSG_DISCONNECT) {
822 /* log reason code in disconnect message */
823 char buf[256];
824 unsigned msglen = GET_32BIT(pktin.body);
825 unsigned nowlen;
826 strcpy(buf, "Remote sent disconnect: ");
827 nowlen = strlen(buf);
828 if (msglen > sizeof(buf) - nowlen - 1)
829 msglen = sizeof(buf) - nowlen - 1;
830 memcpy(buf + nowlen, pktin.body + 4, msglen);
831 buf[nowlen + msglen] = '\0';
832 /* logevent(buf); (this is now done within the bombout macro) */
833 bombout(("Server sent disconnect message:\n\"%s\"", buf+nowlen));
834 crReturn(0);
835 }
836
837 crFinish(0);
838 }
839
840 static int ssh2_rdpkt(unsigned char **data, int *datalen)
841 {
842 struct rdpkt2_state_tag *st = &rdpkt2_state;
843
844 crBegin;
845
846 next_packet:
847 pktin.type = 0;
848 pktin.length = 0;
849 if (sccipher)
850 st->cipherblk = sccipher->blksize;
851 else
852 st->cipherblk = 8;
853 if (st->cipherblk < 8)
854 st->cipherblk = 8;
855
856 if (pktin.maxlen < st->cipherblk) {
857 pktin.maxlen = st->cipherblk;
858 pktin.data =
859 (pktin.data ==
860 NULL ? smalloc(st->cipherblk +
861 APIEXTRA) : srealloc(pktin.data,
862 st->cipherblk +
863 APIEXTRA));
864 if (!pktin.data)
865 fatalbox("Out of memory");
866 }
867
868 /*
869 * Acquire and decrypt the first block of the packet. This will
870 * contain the length and padding details.
871 */
872 for (st->i = st->len = 0; st->i < st->cipherblk; st->i++) {
873 while ((*datalen) == 0)
874 crReturn(st->cipherblk - st->i);
875 pktin.data[st->i] = *(*data)++;
876 (*datalen)--;
877 }
878
879 if (sccipher)
880 sccipher->decrypt(pktin.data, st->cipherblk);
881
882 /*
883 * Now get the length and padding figures.
884 */
885 st->len = GET_32BIT(pktin.data);
886 st->pad = pktin.data[4];
887
888 /*
889 * This enables us to deduce the payload length.
890 */
891 st->payload = st->len - st->pad - 1;
892
893 pktin.length = st->payload + 5;
894
895 /*
896 * So now we can work out the total packet length.
897 */
898 st->packetlen = st->len + 4;
899 st->maclen = scmac ? scmac->len : 0;
900
901 /*
902 * Adjust memory allocation if packet is too big.
903 */
904 if (pktin.maxlen < st->packetlen + st->maclen) {
905 pktin.maxlen = st->packetlen + st->maclen;
906 pktin.data =
907 (pktin.data ==
908 NULL ? smalloc(pktin.maxlen + APIEXTRA) : srealloc(pktin.data,
909 pktin.maxlen
910 +
911 APIEXTRA));
912 if (!pktin.data)
913 fatalbox("Out of memory");
914 }
915
916 /*
917 * Read and decrypt the remainder of the packet.
918 */
919 for (st->i = st->cipherblk; st->i < st->packetlen + st->maclen;
920 st->i++) {
921 while ((*datalen) == 0)
922 crReturn(st->packetlen + st->maclen - st->i);
923 pktin.data[st->i] = *(*data)++;
924 (*datalen)--;
925 }
926 /* Decrypt everything _except_ the MAC. */
927 if (sccipher)
928 sccipher->decrypt(pktin.data + st->cipherblk,
929 st->packetlen - st->cipherblk);
930
931 /*
932 * Check the MAC.
933 */
934 if (scmac
935 && !scmac->verify(pktin.data, st->len + 4,
936 st->incoming_sequence)) {
937 bombout(("Incorrect MAC received on packet"));
938 crReturn(0);
939 }
940 st->incoming_sequence++; /* whether or not we MACed */
941
942 /*
943 * Decompress packet payload.
944 */
945 {
946 unsigned char *newpayload;
947 int newlen;
948 if (sccomp && sccomp->decompress(pktin.data + 5, pktin.length - 5,
949 &newpayload, &newlen)) {
950 if (pktin.maxlen < newlen + 5) {
951 pktin.maxlen = newlen + 5;
952 pktin.data =
953 (pktin.data ==
954 NULL ? smalloc(pktin.maxlen +
955 APIEXTRA) : srealloc(pktin.data,
956 pktin.maxlen +
957 APIEXTRA));
958 if (!pktin.data)
959 fatalbox("Out of memory");
960 }
961 pktin.length = 5 + newlen;
962 memcpy(pktin.data + 5, newpayload, newlen);
963 sfree(newpayload);
964 }
965 }
966
967 pktin.savedpos = 6;
968 pktin.type = pktin.data[5];
969
970 log_packet(PKT_INCOMING, pktin.type, ssh2_pkt_type(pktin.type),
971 pktin.data+6, pktin.length-6);
972
973 switch (pktin.type) {
974 /*
975 * These packets we must handle instantly.
976 */
977 case SSH2_MSG_DISCONNECT:
978 {
979 /* log reason code in disconnect message */
980 char buf[256];
981 int reason = GET_32BIT(pktin.data + 6);
982 unsigned msglen = GET_32BIT(pktin.data + 10);
983 unsigned nowlen;
984 if (reason > 0 && reason < lenof(ssh2_disconnect_reasons)) {
985 sprintf(buf, "Received disconnect message (%s)",
986 ssh2_disconnect_reasons[reason]);
987 } else {
988 sprintf(buf, "Received disconnect message (unknown type %d)",
989 reason);
990 }
991 logevent(buf);
992 strcpy(buf, "Disconnection message text: ");
993 nowlen = strlen(buf);
994 if (msglen > sizeof(buf) - nowlen - 1)
995 msglen = sizeof(buf) - nowlen - 1;
996 memcpy(buf + nowlen, pktin.data + 14, msglen);
997 buf[nowlen + msglen] = '\0';
998 logevent(buf);
999 bombout(("Server sent disconnect message\ntype %d (%s):\n\"%s\"",
1000 reason,
1001 (reason > 0 && reason < lenof(ssh2_disconnect_reasons)) ?
1002 ssh2_disconnect_reasons[reason] : "unknown",
1003 buf+nowlen));
1004 crReturn(0);
1005 }
1006 break;
1007 case SSH2_MSG_IGNORE:
1008 goto next_packet;
1009 case SSH2_MSG_DEBUG:
1010 {
1011 /* log the debug message */
1012 char buf[512];
1013 /* int display = pktin.body[6]; */
1014 int stringlen = GET_32BIT(pktin.data+7);
1015 int prefix;
1016 strcpy(buf, "Remote debug message: ");
1017 prefix = strlen(buf);
1018 if (stringlen > sizeof(buf)-prefix-1)
1019 stringlen = sizeof(buf)-prefix-1;
1020 memcpy(buf + prefix, pktin.data + 11, stringlen);
1021 buf[prefix + stringlen] = '\0';
1022 logevent(buf);
1023 }
1024 goto next_packet; /* FIXME: print the debug message */
1025
1026 /*
1027 * These packets we need do nothing about here.
1028 */
1029 case SSH2_MSG_UNIMPLEMENTED:
1030 case SSH2_MSG_SERVICE_REQUEST:
1031 case SSH2_MSG_SERVICE_ACCEPT:
1032 case SSH2_MSG_KEXINIT:
1033 case SSH2_MSG_NEWKEYS:
1034 case SSH2_MSG_KEXDH_INIT:
1035 case SSH2_MSG_KEXDH_REPLY:
1036 /* case SSH2_MSG_KEX_DH_GEX_REQUEST: duplicate case value */
1037 /* case SSH2_MSG_KEX_DH_GEX_GROUP: duplicate case value */
1038 case SSH2_MSG_KEX_DH_GEX_INIT:
1039 case SSH2_MSG_KEX_DH_GEX_REPLY:
1040 case SSH2_MSG_USERAUTH_REQUEST:
1041 case SSH2_MSG_USERAUTH_FAILURE:
1042 case SSH2_MSG_USERAUTH_SUCCESS:
1043 case SSH2_MSG_USERAUTH_BANNER:
1044 case SSH2_MSG_USERAUTH_PK_OK:
1045 /* case SSH2_MSG_USERAUTH_PASSWD_CHANGEREQ: duplicate case value */
1046 /* case SSH2_MSG_USERAUTH_INFO_REQUEST: duplicate case value */
1047 case SSH2_MSG_USERAUTH_INFO_RESPONSE:
1048 case SSH2_MSG_GLOBAL_REQUEST:
1049 case SSH2_MSG_REQUEST_SUCCESS:
1050 case SSH2_MSG_REQUEST_FAILURE:
1051 case SSH2_MSG_CHANNEL_OPEN:
1052 case SSH2_MSG_CHANNEL_OPEN_CONFIRMATION:
1053 case SSH2_MSG_CHANNEL_OPEN_FAILURE:
1054 case SSH2_MSG_CHANNEL_WINDOW_ADJUST:
1055 case SSH2_MSG_CHANNEL_DATA:
1056 case SSH2_MSG_CHANNEL_EXTENDED_DATA:
1057 case SSH2_MSG_CHANNEL_EOF:
1058 case SSH2_MSG_CHANNEL_CLOSE:
1059 case SSH2_MSG_CHANNEL_REQUEST:
1060 case SSH2_MSG_CHANNEL_SUCCESS:
1061 case SSH2_MSG_CHANNEL_FAILURE:
1062 break;
1063
1064 /*
1065 * For anything else we send SSH2_MSG_UNIMPLEMENTED.
1066 */
1067 default:
1068 ssh2_pkt_init(SSH2_MSG_UNIMPLEMENTED);
1069 ssh2_pkt_adduint32(st->incoming_sequence - 1);
1070 ssh2_pkt_send();
1071 break;
1072 }
1073
1074 crFinish(0);
1075 }
1076
1077 static void ssh1_pktout_size(int len)
1078 {
1079 int pad, biglen;
1080
1081 len += 5; /* type and CRC */
1082 pad = 8 - (len % 8);
1083 biglen = len + pad;
1084
1085 pktout.length = len - 5;
1086 if (pktout.maxlen < biglen) {
1087 pktout.maxlen = biglen;
1088 #ifdef MSCRYPTOAPI
1089 /* Allocate enough buffer space for extra block
1090 * for MS CryptEncrypt() */
1091 pktout.data = (pktout.data == NULL ? smalloc(biglen + 12) :
1092 srealloc(pktout.data, biglen + 12));
1093 #else
1094 pktout.data = (pktout.data == NULL ? smalloc(biglen + 4) :
1095 srealloc(pktout.data, biglen + 4));
1096 #endif
1097 if (!pktout.data)
1098 fatalbox("Out of memory");
1099 }
1100 pktout.body = pktout.data + 4 + pad + 1;
1101 }
1102
1103 static void s_wrpkt_start(int type, int len)
1104 {
1105 ssh1_pktout_size(len);
1106 pktout.type = type;
1107 }
1108
1109 static int s_wrpkt_prepare(void)
1110 {
1111 int pad, len, biglen, i;
1112 unsigned long crc;
1113
1114 pktout.body[-1] = pktout.type;
1115
1116 log_packet(PKT_OUTGOING, pktout.type, ssh1_pkt_type(pktout.type),
1117 pktout.body, pktout.length);
1118
1119 if (ssh1_compressing) {
1120 unsigned char *compblk;
1121 int complen;
1122 zlib_compress_block(pktout.body - 1, pktout.length + 1,
1123 &compblk, &complen);
1124 ssh1_pktout_size(complen - 1);
1125 memcpy(pktout.body - 1, compblk, complen);
1126 sfree(compblk);
1127 }
1128
1129 len = pktout.length + 5; /* type and CRC */
1130 pad = 8 - (len % 8);
1131 biglen = len + pad;
1132
1133 for (i = 0; i < pad; i++)
1134 pktout.data[i + 4] = random_byte();
1135 crc = crc32(pktout.data + 4, biglen - 4);
1136 PUT_32BIT(pktout.data + biglen, crc);
1137 PUT_32BIT(pktout.data, len);
1138
1139 if (cipher)
1140 cipher->encrypt(pktout.data + 4, biglen);
1141
1142 return biglen + 4;
1143 }
1144
1145 static void s_wrpkt(void)
1146 {
1147 int len, backlog;
1148 len = s_wrpkt_prepare();
1149 backlog = sk_write(s, pktout.data, len);
1150 if (backlog > SSH_MAX_BACKLOG)
1151 ssh_throttle_all(1, backlog);
1152 }
1153
1154 static void s_wrpkt_defer(void)
1155 {
1156 int len;
1157 len = s_wrpkt_prepare();
1158 if (deferred_len + len > deferred_size) {
1159 deferred_size = deferred_len + len + 128;
1160 deferred_send_data = srealloc(deferred_send_data, deferred_size);
1161 }
1162 memcpy(deferred_send_data + deferred_len, pktout.data, len);
1163 deferred_len += len;
1164 }
1165
1166 /*
1167 * Construct a packet with the specified contents.
1168 */
1169 static void construct_packet(int pkttype, va_list ap1, va_list ap2)
1170 {
1171 unsigned char *p, *argp, argchar;
1172 unsigned long argint;
1173 int pktlen, argtype, arglen;
1174 Bignum bn;
1175
1176 pktlen = 0;
1177 while ((argtype = va_arg(ap1, int)) != PKT_END) {
1178 switch (argtype) {
1179 case PKT_INT:
1180 (void) va_arg(ap1, int);
1181 pktlen += 4;
1182 break;
1183 case PKT_CHAR:
1184 (void) va_arg(ap1, char);
1185 pktlen++;
1186 break;
1187 case PKT_DATA:
1188 (void) va_arg(ap1, unsigned char *);
1189 arglen = va_arg(ap1, int);
1190 pktlen += arglen;
1191 break;
1192 case PKT_STR:
1193 argp = va_arg(ap1, unsigned char *);
1194 arglen = strlen(argp);
1195 pktlen += 4 + arglen;
1196 break;
1197 case PKT_BIGNUM:
1198 bn = va_arg(ap1, Bignum);
1199 pktlen += ssh1_bignum_length(bn);
1200 break;
1201 default:
1202 assert(0);
1203 }
1204 }
1205
1206 s_wrpkt_start(pkttype, pktlen);
1207 p = pktout.body;
1208
1209 while ((argtype = va_arg(ap2, int)) != PKT_END) {
1210 switch (argtype) {
1211 case PKT_INT:
1212 argint = va_arg(ap2, int);
1213 PUT_32BIT(p, argint);
1214 p += 4;
1215 break;
1216 case PKT_CHAR:
1217 argchar = va_arg(ap2, unsigned char);
1218 *p = argchar;
1219 p++;
1220 break;
1221 case PKT_DATA:
1222 argp = va_arg(ap2, unsigned char *);
1223 arglen = va_arg(ap2, int);
1224 memcpy(p, argp, arglen);
1225 p += arglen;
1226 break;
1227 case PKT_STR:
1228 argp = va_arg(ap2, unsigned char *);
1229 arglen = strlen(argp);
1230 PUT_32BIT(p, arglen);
1231 memcpy(p + 4, argp, arglen);
1232 p += 4 + arglen;
1233 break;
1234 case PKT_BIGNUM:
1235 bn = va_arg(ap2, Bignum);
1236 p += ssh1_write_bignum(p, bn);
1237 break;
1238 }
1239 }
1240 }
1241
1242 static void send_packet(int pkttype, ...)
1243 {
1244 va_list ap1, ap2;
1245 va_start(ap1, pkttype);
1246 va_start(ap2, pkttype);
1247 construct_packet(pkttype, ap1, ap2);
1248 s_wrpkt();
1249 }
1250
1251 static void defer_packet(int pkttype, ...)
1252 {
1253 va_list ap1, ap2;
1254 va_start(ap1, pkttype);
1255 va_start(ap2, pkttype);
1256 construct_packet(pkttype, ap1, ap2);
1257 s_wrpkt_defer();
1258 }
1259
1260 static int ssh_versioncmp(char *a, char *b)
1261 {
1262 char *ae, *be;
1263 unsigned long av, bv;
1264
1265 av = strtoul(a, &ae, 10);
1266 bv = strtoul(b, &be, 10);
1267 if (av != bv)
1268 return (av < bv ? -1 : +1);
1269 if (*ae == '.')
1270 ae++;
1271 if (*be == '.')
1272 be++;
1273 av = strtoul(ae, &ae, 10);
1274 bv = strtoul(be, &be, 10);
1275 if (av != bv)
1276 return (av < bv ? -1 : +1);
1277 return 0;
1278 }
1279
1280
1281 /*
1282 * Utility routines for putting an SSH-protocol `string' and
1283 * `uint32' into a SHA state.
1284 */
1285 #include <stdio.h>
1286 static void sha_string(SHA_State * s, void *str, int len)
1287 {
1288 unsigned char lenblk[4];
1289 PUT_32BIT(lenblk, len);
1290 SHA_Bytes(s, lenblk, 4);
1291 SHA_Bytes(s, str, len);
1292 }
1293
1294 static void sha_uint32(SHA_State * s, unsigned i)
1295 {
1296 unsigned char intblk[4];
1297 PUT_32BIT(intblk, i);
1298 SHA_Bytes(s, intblk, 4);
1299 }
1300
1301 /*
1302 * SSH2 packet construction functions.
1303 */
1304 static void ssh2_pkt_ensure(int length)
1305 {
1306 if (pktout.maxlen < length) {
1307 pktout.maxlen = length + 256;
1308 pktout.data =
1309 (pktout.data ==
1310 NULL ? smalloc(pktout.maxlen +
1311 APIEXTRA) : srealloc(pktout.data,
1312 pktout.maxlen +
1313 APIEXTRA));
1314 if (!pktout.data)
1315 fatalbox("Out of memory");
1316 }
1317 }
1318 static void ssh2_pkt_adddata(void *data, int len)
1319 {
1320 pktout.length += len;
1321 ssh2_pkt_ensure(pktout.length);
1322 memcpy(pktout.data + pktout.length - len, data, len);
1323 }
1324 static void ssh2_pkt_addbyte(unsigned char byte)
1325 {
1326 ssh2_pkt_adddata(&byte, 1);
1327 }
1328 static void ssh2_pkt_init(int pkt_type)
1329 {
1330 pktout.length = 5;
1331 ssh2_pkt_addbyte((unsigned char) pkt_type);
1332 }
1333 static void ssh2_pkt_addbool(unsigned char value)
1334 {
1335 ssh2_pkt_adddata(&value, 1);
1336 }
1337 static void ssh2_pkt_adduint32(unsigned long value)
1338 {
1339 unsigned char x[4];
1340 PUT_32BIT(x, value);
1341 ssh2_pkt_adddata(x, 4);
1342 }
1343 static void ssh2_pkt_addstring_start(void)
1344 {
1345 ssh2_pkt_adduint32(0);
1346 pktout.savedpos = pktout.length;
1347 }
1348 static void ssh2_pkt_addstring_str(char *data)
1349 {
1350 ssh2_pkt_adddata(data, strlen(data));
1351 PUT_32BIT(pktout.data + pktout.savedpos - 4,
1352 pktout.length - pktout.savedpos);
1353 }
1354 static void ssh2_pkt_addstring_data(char *data, int len)
1355 {
1356 ssh2_pkt_adddata(data, len);
1357 PUT_32BIT(pktout.data + pktout.savedpos - 4,
1358 pktout.length - pktout.savedpos);
1359 }
1360 static void ssh2_pkt_addstring(char *data)
1361 {
1362 ssh2_pkt_addstring_start();
1363 ssh2_pkt_addstring_str(data);
1364 }
1365 static char *ssh2_mpint_fmt(Bignum b, int *len)
1366 {
1367 unsigned char *p;
1368 int i, n = (bignum_bitcount(b) + 7) / 8;
1369 p = smalloc(n + 1);
1370 if (!p)
1371 fatalbox("out of memory");
1372 p[0] = 0;
1373 for (i = 1; i <= n; i++)
1374 p[i] = bignum_byte(b, n - i);
1375 i = 0;
1376 while (i <= n && p[i] == 0 && (p[i + 1] & 0x80) == 0)
1377 i++;
1378 memmove(p, p + i, n + 1 - i);
1379 *len = n + 1 - i;
1380 return p;
1381 }
1382 static void ssh2_pkt_addmp(Bignum b)
1383 {
1384 unsigned char *p;
1385 int len;
1386 p = ssh2_mpint_fmt(b, &len);
1387 ssh2_pkt_addstring_start();
1388 ssh2_pkt_addstring_data(p, len);
1389 sfree(p);
1390 }
1391
1392 /*
1393 * Construct an SSH2 final-form packet: compress it, encrypt it,
1394 * put the MAC on it. Final packet, ready to be sent, is stored in
1395 * pktout.data. Total length is returned.
1396 */
1397 static int ssh2_pkt_construct(void)
1398 {
1399 int cipherblk, maclen, padding, i;
1400 static unsigned long outgoing_sequence = 0;
1401
1402 log_packet(PKT_OUTGOING, pktout.data[5], ssh2_pkt_type(pktout.data[5]),
1403 pktout.data + 6, pktout.length - 6);
1404
1405 /*
1406 * Compress packet payload.
1407 */
1408 {
1409 unsigned char *newpayload;
1410 int newlen;
1411 if (cscomp && cscomp->compress(pktout.data + 5, pktout.length - 5,
1412 &newpayload, &newlen)) {
1413 pktout.length = 5;
1414 ssh2_pkt_adddata(newpayload, newlen);
1415 sfree(newpayload);
1416 }
1417 }
1418
1419 /*
1420 * Add padding. At least four bytes, and must also bring total
1421 * length (minus MAC) up to a multiple of the block size.
1422 */
1423 cipherblk = cscipher ? cscipher->blksize : 8; /* block size */
1424 cipherblk = cipherblk < 8 ? 8 : cipherblk; /* or 8 if blksize < 8 */
1425 padding = 4;
1426 padding +=
1427 (cipherblk - (pktout.length + padding) % cipherblk) % cipherblk;
1428 maclen = csmac ? csmac->len : 0;
1429 ssh2_pkt_ensure(pktout.length + padding + maclen);
1430 pktout.data[4] = padding;
1431 for (i = 0; i < padding; i++)
1432 pktout.data[pktout.length + i] = random_byte();
1433 PUT_32BIT(pktout.data, pktout.length + padding - 4);
1434 if (csmac)
1435 csmac->generate(pktout.data, pktout.length + padding,
1436 outgoing_sequence);
1437 outgoing_sequence++; /* whether or not we MACed */
1438
1439 if (cscipher)
1440 cscipher->encrypt(pktout.data, pktout.length + padding);
1441
1442 /* Ready-to-send packet starts at pktout.data. We return length. */
1443 return pktout.length + padding + maclen;
1444 }
1445
1446 /*
1447 * Construct and send an SSH2 packet immediately.
1448 */
1449 static void ssh2_pkt_send(void)
1450 {
1451 int len;
1452 int backlog;
1453 len = ssh2_pkt_construct();
1454 backlog = sk_write(s, pktout.data, len);
1455 if (backlog > SSH_MAX_BACKLOG)
1456 ssh_throttle_all(1, backlog);
1457 }
1458
1459 /*
1460 * Construct an SSH2 packet and add it to a deferred data block.
1461 * Useful for sending multiple packets in a single sk_write() call,
1462 * to prevent a traffic-analysing listener from being able to work
1463 * out the length of any particular packet (such as the password
1464 * packet).
1465 *
1466 * Note that because SSH2 sequence-numbers its packets, this can
1467 * NOT be used as an m4-style `defer' allowing packets to be
1468 * constructed in one order and sent in another.
1469 */
1470 static void ssh2_pkt_defer(void)
1471 {
1472 int len = ssh2_pkt_construct();
1473 if (deferred_len + len > deferred_size) {
1474 deferred_size = deferred_len + len + 128;
1475 deferred_send_data = srealloc(deferred_send_data, deferred_size);
1476 }
1477 memcpy(deferred_send_data + deferred_len, pktout.data, len);
1478 deferred_len += len;
1479 }
1480
1481 /*
1482 * Send the whole deferred data block constructed by
1483 * ssh2_pkt_defer() or SSH1's defer_packet().
1484 */
1485 static void ssh_pkt_defersend(void)
1486 {
1487 int backlog;
1488 backlog = sk_write(s, deferred_send_data, deferred_len);
1489 deferred_len = deferred_size = 0;
1490 sfree(deferred_send_data);
1491 deferred_send_data = NULL;
1492 if (backlog > SSH_MAX_BACKLOG)
1493 ssh_throttle_all(1, backlog);
1494 }
1495
1496 #if 0
1497 void bndebug(char *string, Bignum b)
1498 {
1499 unsigned char *p;
1500 int i, len;
1501 p = ssh2_mpint_fmt(b, &len);
1502 debug(("%s", string));
1503 for (i = 0; i < len; i++)
1504 debug((" %02x", p[i]));
1505 debug(("\n"));
1506 sfree(p);
1507 }
1508 #endif
1509
1510 static void sha_mpint(SHA_State * s, Bignum b)
1511 {
1512 unsigned char *p;
1513 int len;
1514 p = ssh2_mpint_fmt(b, &len);
1515 sha_string(s, p, len);
1516 sfree(p);
1517 }
1518
1519 /*
1520 * SSH2 packet decode functions.
1521 */
1522 static unsigned long ssh2_pkt_getuint32(void)
1523 {
1524 unsigned long value;
1525 if (pktin.length - pktin.savedpos < 4)
1526 return 0; /* arrgh, no way to decline (FIXME?) */
1527 value = GET_32BIT(pktin.data + pktin.savedpos);
1528 pktin.savedpos += 4;
1529 return value;
1530 }
1531 static int ssh2_pkt_getbool(void)
1532 {
1533 unsigned long value;
1534 if (pktin.length - pktin.savedpos < 1)
1535 return 0; /* arrgh, no way to decline (FIXME?) */
1536 value = pktin.data[pktin.savedpos] != 0;
1537 pktin.savedpos++;
1538 return value;
1539 }
1540 static void ssh2_pkt_getstring(char **p, int *length)
1541 {
1542 *p = NULL;
1543 if (pktin.length - pktin.savedpos < 4)
1544 return;
1545 *length = GET_32BIT(pktin.data + pktin.savedpos);
1546 pktin.savedpos += 4;
1547 if (pktin.length - pktin.savedpos < *length)
1548 return;
1549 *p = pktin.data + pktin.savedpos;
1550 pktin.savedpos += *length;
1551 }
1552 static Bignum ssh2_pkt_getmp(void)
1553 {
1554 char *p;
1555 int length;
1556 Bignum b;
1557
1558 ssh2_pkt_getstring(&p, &length);
1559 if (!p)
1560 return NULL;
1561 if (p[0] & 0x80) {
1562 bombout(("internal error: Can't handle negative mpints"));
1563 return NULL;
1564 }
1565 b = bignum_from_bytes(p, length);
1566 return b;
1567 }
1568
1569 /*
1570 * Examine the remote side's version string and compare it against
1571 * a list of known buggy implementations.
1572 */
1573 static void ssh_detect_bugs(char *vstring)
1574 {
1575 char *imp; /* pointer to implementation part */
1576 imp = vstring;
1577 imp += strcspn(imp, "-");
1578 if (*imp) imp++;
1579 imp += strcspn(imp, "-");
1580 if (*imp) imp++;
1581
1582 ssh_remote_bugs = 0;
1583
1584 if (!strcmp(imp, "1.2.18") || !strcmp(imp, "1.2.19") ||
1585 !strcmp(imp, "1.2.20") || !strcmp(imp, "1.2.21") ||
1586 !strcmp(imp, "1.2.22") || !strcmp(imp, "Cisco-1.25")) {
1587 /*
1588 * These versions don't support SSH1_MSG_IGNORE, so we have
1589 * to use a different defence against password length
1590 * sniffing.
1591 */
1592 ssh_remote_bugs |= BUG_CHOKES_ON_SSH1_IGNORE;
1593 logevent("We believe remote version has SSH1 ignore bug");
1594 }
1595
1596 if (!strcmp(imp, "Cisco-1.25")) {
1597 /*
1598 * These versions need a plain password sent; they can't
1599 * handle having a null and a random length of data after
1600 * the password.
1601 */
1602 ssh_remote_bugs |= BUG_NEEDS_SSH1_PLAIN_PASSWORD;
1603 logevent("We believe remote version needs a plain SSH1 password");
1604 }
1605
1606 if (!strcmp(imp, "Cisco-1.25")) {
1607 /*
1608 * These versions apparently have no clue whatever about
1609 * RSA authentication and will panic and die if they see
1610 * an AUTH_RSA message.
1611 */
1612 ssh_remote_bugs |= BUG_CHOKES_ON_RSA;
1613 logevent("We believe remote version can't handle RSA authentication");
1614 }
1615
1616 if (!strncmp(imp, "2.1.0", 5) || !strncmp(imp, "2.0.", 4) ||
1617 !strncmp(imp, "2.2.0", 5) || !strncmp(imp, "2.3.0", 5) ||
1618 !strncmp(imp, "2.1 ", 4)) {
1619 /*
1620 * These versions have the HMAC bug.
1621 */
1622 ssh_remote_bugs |= BUG_SSH2_HMAC;
1623 logevent("We believe remote version has SSH2 HMAC bug");
1624 }
1625 }
1626
1627 static int do_ssh_init(unsigned char c)
1628 {
1629 static int vslen;
1630 static char version[10];
1631 static char *vstring;
1632 static int vstrsize;
1633 static char *vlog;
1634 static int i;
1635
1636 crBegin;
1637
1638 /* Search for the string "SSH-" in the input. */
1639 i = 0;
1640 while (1) {
1641 static const int transS[] = { 1, 2, 2, 1 };
1642 static const int transH[] = { 0, 0, 3, 0 };
1643 static const int transminus[] = { 0, 0, 0, -1 };
1644 if (c == 'S')
1645 i = transS[i];
1646 else if (c == 'H')
1647 i = transH[i];
1648 else if (c == '-')
1649 i = transminus[i];
1650 else
1651 i = 0;
1652 if (i < 0)
1653 break;
1654 crReturn(1); /* get another character */
1655 }
1656
1657 vstrsize = 16;
1658 vstring = smalloc(vstrsize);
1659 strcpy(vstring, "SSH-");
1660 vslen = 4;
1661 i = 0;
1662 while (1) {
1663 crReturn(1); /* get another char */
1664 if (vslen >= vstrsize - 1) {
1665 vstrsize += 16;
1666 vstring = srealloc(vstring, vstrsize);
1667 }
1668 vstring[vslen++] = c;
1669 if (i >= 0) {
1670 if (c == '-') {
1671 version[i] = '\0';
1672 i = -1;
1673 } else if (i < sizeof(version) - 1)
1674 version[i++] = c;
1675 } else if (c == '\n')
1676 break;
1677 }
1678
1679 ssh_agentfwd_enabled = FALSE;
1680 rdpkt2_state.incoming_sequence = 0;
1681
1682 vstring[vslen] = 0;
1683 vlog = smalloc(20 + vslen);
1684 vstring[strcspn (vstring, "\r\n")] = '\0'; /* remove end-of-line chars */
1685 sprintf(vlog, "Server version: %s", vstring);
1686 logevent(vlog);
1687 ssh_detect_bugs(vstring);
1688 sfree(vlog);
1689
1690 /*
1691 * Server version "1.99" means we can choose whether we use v1
1692 * or v2 protocol. Choice is based on cfg.sshprot.
1693 */
1694 if (ssh_versioncmp(version, cfg.sshprot == 1 ? "2.0" : "1.99") >= 0) {
1695 /*
1696 * This is a v2 server. Begin v2 protocol.
1697 */
1698 char verstring[80], vlog[100];
1699 sprintf(verstring, "SSH-2.0-%s", sshver);
1700 SHA_Init(&exhashbase);
1701 /*
1702 * Hash our version string and their version string.
1703 */
1704 sha_string(&exhashbase, verstring, strlen(verstring));
1705 sha_string(&exhashbase, vstring, strcspn(vstring, "\r\n"));
1706 sprintf(vlog, "We claim version: %s", verstring);
1707 logevent(vlog);
1708 strcat(verstring, "\n");
1709 logevent("Using SSH protocol version 2");
1710 sk_write(s, verstring, strlen(verstring));
1711 ssh_protocol = ssh2_protocol;
1712 ssh_version = 2;
1713 s_rdpkt = ssh2_rdpkt;
1714 } else {
1715 /*
1716 * This is a v1 server. Begin v1 protocol.
1717 */
1718 char verstring[80], vlog[100];
1719 sprintf(verstring, "SSH-%s-%s",
1720 (ssh_versioncmp(version, "1.5") <= 0 ? version : "1.5"),
1721 sshver);
1722 sprintf(vlog, "We claim version: %s", verstring);
1723 logevent(vlog);
1724 strcat(verstring, "\n");
1725 logevent("Using SSH protocol version 1");
1726 sk_write(s, verstring, strlen(verstring));
1727 ssh_protocol = ssh1_protocol;
1728 ssh_version = 1;
1729 s_rdpkt = ssh1_rdpkt;
1730 }
1731 ssh_state = SSH_STATE_BEFORE_SIZE;
1732
1733 sfree(vstring);
1734
1735 crFinish(0);
1736 }
1737
1738 static void ssh_gotdata(unsigned char *data, int datalen)
1739 {
1740 crBegin;
1741
1742 /*
1743 * To begin with, feed the characters one by one to the
1744 * protocol initialisation / selection function do_ssh_init().
1745 * When that returns 0, we're done with the initial greeting
1746 * exchange and can move on to packet discipline.
1747 */
1748 while (1) {
1749 int ret;
1750 if (datalen == 0)
1751 crReturnV; /* more data please */
1752 ret = do_ssh_init(*data);
1753 data++;
1754 datalen--;
1755 if (ret == 0)
1756 break;
1757 }
1758
1759 /*
1760 * We emerge from that loop when the initial negotiation is
1761 * over and we have selected an s_rdpkt function. Now pass
1762 * everything to s_rdpkt, and then pass the resulting packets
1763 * to the proper protocol handler.
1764 */
1765 if (datalen == 0)
1766 crReturnV;
1767 while (1) {
1768 while (datalen > 0) {
1769 if (s_rdpkt(&data, &datalen) == 0) {
1770 if (ssh_state == SSH_STATE_CLOSED) {
1771 return;
1772 }
1773 ssh_protocol(NULL, 0, 1);
1774 if (ssh_state == SSH_STATE_CLOSED) {
1775 return;
1776 }
1777 }
1778 }
1779 crReturnV;
1780 }
1781 crFinishV;
1782 }
1783
1784 static int ssh_closing(Plug plug, char *error_msg, int error_code,
1785 int calling_back)
1786 {
1787 ssh_state = SSH_STATE_CLOSED;
1788 if (s) {
1789 sk_close(s);
1790 s = NULL;
1791 }
1792 if (error_msg) {
1793 /* A socket error has occurred. */
1794 logevent(error_msg);
1795 connection_fatal(error_msg);
1796 } else {
1797 /* Otherwise, the remote side closed the connection normally. */
1798 }
1799 return 0;
1800 }
1801
1802 static int ssh_receive(Plug plug, int urgent, char *data, int len)
1803 {
1804 ssh_gotdata(data, len);
1805 if (ssh_state == SSH_STATE_CLOSED) {
1806 if (s) {
1807 sk_close(s);
1808 s = NULL;
1809 }
1810 return 0;
1811 }
1812 return 1;
1813 }
1814
1815 static void ssh_sent(Plug plug, int bufsize)
1816 {
1817 /*
1818 * If the send backlog on the SSH socket itself clears, we
1819 * should unthrottle the whole world if it was throttled.
1820 */
1821 if (bufsize < SSH_MAX_BACKLOG)
1822 ssh_throttle_all(0, bufsize);
1823 }
1824
1825 /*
1826 * Connect to specified host and port.
1827 * Returns an error message, or NULL on success.
1828 * Also places the canonical host name into `realhost'. It must be
1829 * freed by the caller.
1830 */
1831 static char *connect_to_host(char *host, int port, char **realhost, int nodelay)
1832 {
1833 static struct plug_function_table fn_table = {
1834 ssh_closing,
1835 ssh_receive,
1836 ssh_sent,
1837 NULL
1838 }, *fn_table_ptr = &fn_table;
1839
1840 SockAddr addr;
1841 char *err;
1842 #ifdef FWHACK
1843 char *FWhost;
1844 int FWport;
1845 #endif
1846
1847 savedhost = smalloc(1 + strlen(host));
1848 if (!savedhost)
1849 fatalbox("Out of memory");
1850 strcpy(savedhost, host);
1851
1852 if (port < 0)
1853 port = 22; /* default ssh port */
1854 savedport = port;
1855
1856 #ifdef FWHACK
1857 FWhost = host;
1858 FWport = port;
1859 host = FWSTR;
1860 port = 23;
1861 #endif
1862
1863 /*
1864 * Try to find host.
1865 */
1866 {
1867 char buf[200];
1868 sprintf(buf, "Looking up host \"%.170s\"", host);
1869 logevent(buf);
1870 }
1871 addr = sk_namelookup(host, realhost);
1872 if ((err = sk_addr_error(addr)))
1873 return err;
1874
1875 #ifdef FWHACK
1876 *realhost = strdup(FWhost);
1877 #endif
1878
1879 /*
1880 * Open socket.
1881 */
1882 {
1883 char buf[200], addrbuf[100];
1884 sk_getaddr(addr, addrbuf, 100);
1885 sprintf(buf, "Connecting to %.100s port %d", addrbuf, port);
1886 logevent(buf);
1887 }
1888 s = new_connection(addr, *realhost, port, 0, 1, nodelay, &fn_table_ptr);
1889 if ((err = sk_socket_error(s))) {
1890 s = NULL;
1891 return err;
1892 }
1893
1894 #ifdef FWHACK
1895 sk_write(s, "connect ", 8);
1896 sk_write(s, FWhost, strlen(FWhost));
1897 {
1898 char buf[20];
1899 sprintf(buf, " %d\n", FWport);
1900 sk_write(s, buf, strlen(buf));
1901 }
1902 #endif
1903
1904 return NULL;
1905 }
1906
1907 /*
1908 * Throttle or unthrottle the SSH connection.
1909 */
1910 static void ssh1_throttle(int adjust)
1911 {
1912 int old_count = ssh1_throttle_count;
1913 ssh1_throttle_count += adjust;
1914 assert(ssh1_throttle_count >= 0);
1915 if (ssh1_throttle_count && !old_count) {
1916 sk_set_frozen(s, 1);
1917 } else if (!ssh1_throttle_count && old_count) {
1918 sk_set_frozen(s, 0);
1919 }
1920 }
1921
1922 /*
1923 * Throttle or unthrottle _all_ local data streams (for when sends
1924 * on the SSH connection itself back up).
1925 */
1926 static void ssh_throttle_all(int enable, int bufsize)
1927 {
1928 int i;
1929 struct ssh_channel *c;
1930
1931 if (enable == ssh_throttled_all)
1932 return;
1933 ssh_throttled_all = enable;
1934 ssh_overall_bufsize = bufsize;
1935 if (!ssh_channels)
1936 return;
1937 for (i = 0; NULL != (c = index234(ssh_channels, i)); i++) {
1938 switch (c->type) {
1939 case CHAN_MAINSESSION:
1940 /*
1941 * This is treated separately, outside the switch.
1942 */
1943 break;
1944 case CHAN_X11:
1945 x11_override_throttle(c->u.x11.s, enable);
1946 break;
1947 case CHAN_AGENT:
1948 /* Agent channels require no buffer management. */
1949 break;
1950 case CHAN_SOCKDATA:
1951 pfd_override_throttle(c->u.x11.s, enable);
1952 break;
1953 }
1954 }
1955 }
1956
1957 /*
1958 * Handle the key exchange and user authentication phases.
1959 */
1960 static int do_ssh1_login(unsigned char *in, int inlen, int ispkt)
1961 {
1962 int i, j;
1963 static int len;
1964 static unsigned char *rsabuf, *keystr1, *keystr2;
1965 unsigned char cookie[8];
1966 struct RSAKey servkey, hostkey;
1967 struct MD5Context md5c;
1968 static unsigned long supported_ciphers_mask, supported_auths_mask;
1969 static int tried_publickey, tried_agent;
1970 static int tis_auth_refused, ccard_auth_refused;
1971 static unsigned char session_id[16];
1972 static int cipher_type;
1973 static char username[100];
1974 static void *publickey_blob;
1975 int publickey_bloblen;
1976
1977 crBegin;
1978
1979 if (!ispkt)
1980 crWaitUntil(ispkt);
1981
1982 if (pktin.type != SSH1_SMSG_PUBLIC_KEY) {
1983 bombout(("Public key packet not received"));
1984 crReturn(0);
1985 }
1986
1987 logevent("Received public keys");
1988
1989 memcpy(cookie, pktin.body, 8);
1990
1991 i = makekey(pktin.body + 8, &servkey, &keystr1, 0);
1992 j = makekey(pktin.body + 8 + i, &hostkey, &keystr2, 0);
1993
1994 /*
1995 * Log the host key fingerprint.
1996 */
1997 {
1998 char logmsg[80];
1999 logevent("Host key fingerprint is:");
2000 strcpy(logmsg, " ");
2001 hostkey.comment = NULL;
2002 rsa_fingerprint(logmsg + strlen(logmsg),
2003 sizeof(logmsg) - strlen(logmsg), &hostkey);
2004 logevent(logmsg);
2005 }
2006
2007 ssh1_remote_protoflags = GET_32BIT(pktin.body + 8 + i + j);
2008 supported_ciphers_mask = GET_32BIT(pktin.body + 12 + i + j);
2009 supported_auths_mask = GET_32BIT(pktin.body + 16 + i + j);
2010
2011 ssh1_local_protoflags =
2012 ssh1_remote_protoflags & SSH1_PROTOFLAGS_SUPPORTED;
2013 ssh1_local_protoflags |= SSH1_PROTOFLAG_SCREEN_NUMBER;
2014
2015 MD5Init(&md5c);
2016 MD5Update(&md5c, keystr2, hostkey.bytes);
2017 MD5Update(&md5c, keystr1, servkey.bytes);
2018 MD5Update(&md5c, pktin.body, 8);
2019 MD5Final(session_id, &md5c);
2020
2021 for (i = 0; i < 32; i++)
2022 session_key[i] = random_byte();
2023
2024 len = (hostkey.bytes > servkey.bytes ? hostkey.bytes : servkey.bytes);
2025
2026 rsabuf = smalloc(len);
2027 if (!rsabuf)
2028 fatalbox("Out of memory");
2029
2030 /*
2031 * Verify the host key.
2032 */
2033 {
2034 /*
2035 * First format the key into a string.
2036 */
2037 int len = rsastr_len(&hostkey);
2038 char fingerprint[100];
2039 char *keystr = smalloc(len);
2040 if (!keystr)
2041 fatalbox("Out of memory");
2042 rsastr_fmt(keystr, &hostkey);
2043 rsa_fingerprint(fingerprint, sizeof(fingerprint), &hostkey);
2044 verify_ssh_host_key(savedhost, savedport, "rsa", keystr,
2045 fingerprint);
2046 sfree(keystr);
2047 }
2048
2049 for (i = 0; i < 32; i++) {
2050 rsabuf[i] = session_key[i];
2051 if (i < 16)
2052 rsabuf[i] ^= session_id[i];
2053 }
2054
2055 if (hostkey.bytes > servkey.bytes) {
2056 rsaencrypt(rsabuf, 32, &servkey);
2057 rsaencrypt(rsabuf, servkey.bytes, &hostkey);
2058 } else {
2059 rsaencrypt(rsabuf, 32, &hostkey);
2060 rsaencrypt(rsabuf, hostkey.bytes, &servkey);
2061 }
2062
2063 logevent("Encrypted session key");
2064
2065 {
2066 int cipher_chosen = 0, warn = 0;
2067 char *cipher_string = NULL;
2068 for (i = 0; !cipher_chosen && i < CIPHER_MAX; i++) {
2069 int next_cipher = cfg.ssh_cipherlist[i];
2070 if (next_cipher == CIPHER_WARN) {
2071 /* If/when we choose a cipher, warn about it */
2072 warn = 1;
2073 } else if (next_cipher == CIPHER_AES) {
2074 /* XXX Probably don't need to mention this. */
2075 logevent("AES not supported in SSH1, skipping");
2076 } else {
2077 switch (next_cipher) {
2078 case CIPHER_3DES: cipher_type = SSH_CIPHER_3DES;
2079 cipher_string = "3DES"; break;
2080 case CIPHER_BLOWFISH: cipher_type = SSH_CIPHER_BLOWFISH;
2081 cipher_string = "Blowfish"; break;
2082 case CIPHER_DES: cipher_type = SSH_CIPHER_DES;
2083 cipher_string = "single-DES"; break;
2084 }
2085 if (supported_ciphers_mask & (1 << cipher_type))
2086 cipher_chosen = 1;
2087 }
2088 }
2089 if (!cipher_chosen) {
2090 if ((supported_ciphers_mask & (1 << SSH_CIPHER_3DES)) == 0)
2091 bombout(("Server violates SSH 1 protocol by not "
2092 "supporting 3DES encryption"));
2093 else
2094 /* shouldn't happen */
2095 bombout(("No supported ciphers found"));
2096 crReturn(0);
2097 }
2098
2099 /* Warn about chosen cipher if necessary. */
2100 if (warn)
2101 askcipher(cipher_string, 0);
2102 }
2103
2104 switch (cipher_type) {
2105 case SSH_CIPHER_3DES:
2106 logevent("Using 3DES encryption");
2107 break;
2108 case SSH_CIPHER_DES:
2109 logevent("Using single-DES encryption");
2110 break;
2111 case SSH_CIPHER_BLOWFISH:
2112 logevent("Using Blowfish encryption");
2113 break;
2114 }
2115
2116 send_packet(SSH1_CMSG_SESSION_KEY,
2117 PKT_CHAR, cipher_type,
2118 PKT_DATA, cookie, 8,
2119 PKT_CHAR, (len * 8) >> 8, PKT_CHAR, (len * 8) & 0xFF,
2120 PKT_DATA, rsabuf, len,
2121 PKT_INT, ssh1_local_protoflags, PKT_END);
2122
2123 logevent("Trying to enable encryption...");
2124
2125 sfree(rsabuf);
2126
2127 cipher = cipher_type == SSH_CIPHER_BLOWFISH ? &ssh_blowfish_ssh1 :
2128 cipher_type == SSH_CIPHER_DES ? &ssh_des : &ssh_3des;
2129 cipher->sesskey(session_key);
2130
2131 crWaitUntil(ispkt);
2132
2133 if (pktin.type != SSH1_SMSG_SUCCESS) {
2134 bombout(("Encryption not successfully enabled"));
2135 crReturn(0);
2136 }
2137
2138 logevent("Successfully started encryption");
2139
2140 fflush(stdout);
2141 {
2142 static int pos = 0;
2143 static char c;
2144 if ((flags & FLAG_INTERACTIVE) && !*cfg.username) {
2145 if (ssh_get_line) {
2146 if (!ssh_get_line("login as: ",
2147 username, sizeof(username), FALSE)) {
2148 /*
2149 * get_line failed to get a username.
2150 * Terminate.
2151 */
2152 logevent("No username provided. Abandoning session.");
2153 ssh_state = SSH_STATE_CLOSED;
2154 crReturn(1);
2155 }
2156 } else {
2157 c_write_str("login as: ");
2158 ssh_send_ok = 1;
2159 while (pos >= 0) {
2160 crWaitUntil(!ispkt);
2161 while (inlen--)
2162 switch (c = *in++) {
2163 case 10:
2164 case 13:
2165 username[pos] = 0;
2166 pos = -1;
2167 break;
2168 case 8:
2169 case 127:
2170 if (pos > 0) {
2171 c_write_str("\b \b");
2172 pos--;
2173 }
2174 break;
2175 case 21:
2176 case 27:
2177 while (pos > 0) {
2178 c_write_str("\b \b");
2179 pos--;
2180 }
2181 break;
2182 case 3:
2183 case 4:
2184 cleanup_exit(0);
2185 break;
2186 default:
2187 if (((c >= ' ' && c <= '~') ||
2188 ((unsigned char) c >= 160))
2189 && pos < sizeof(username)-1) {
2190 username[pos++] = c;
2191 c_write(&c, 1);
2192 }
2193 break;
2194 }
2195 }
2196 c_write_str("\r\n");
2197 username[strcspn(username, "\n\r")] = '\0';
2198 }
2199 } else {
2200 strncpy(username, cfg.username, 99);
2201 username[99] = '\0';
2202 }
2203
2204 send_packet(SSH1_CMSG_USER, PKT_STR, username, PKT_END);
2205 {
2206 char userlog[22 + sizeof(username)];
2207 sprintf(userlog, "Sent username \"%s\"", username);
2208 logevent(userlog);
2209 if (flags & FLAG_INTERACTIVE &&
2210 (!((flags & FLAG_STDERR) && (flags & FLAG_VERBOSE)))) {
2211 strcat(userlog, "\r\n");
2212 c_write_str(userlog);
2213 }
2214 }
2215 }
2216
2217 crWaitUntil(ispkt);
2218
2219 if ((ssh_remote_bugs & BUG_CHOKES_ON_RSA)) {
2220 /* We must not attempt PK auth. Pretend we've already tried it. */
2221 tried_publickey = tried_agent = 1;
2222 } else {
2223 tried_publickey = tried_agent = 0;
2224 }
2225 tis_auth_refused = ccard_auth_refused = 0;
2226 /* Load the public half of cfg.keyfile so we notice if it's in Pageant */
2227 if (*cfg.keyfile) {
2228 if (!rsakey_pubblob(cfg.keyfile, &publickey_blob, &publickey_bloblen))
2229 publickey_blob = NULL;
2230 } else
2231 publickey_blob = NULL;
2232
2233 while (pktin.type == SSH1_SMSG_FAILURE) {
2234 static char password[100];
2235 static char prompt[200];
2236 static int pos;
2237 static char c;
2238 static int pwpkt_type;
2239 pwpkt_type = SSH1_CMSG_AUTH_PASSWORD;
2240
2241 if (agent_exists() && !tried_agent) {
2242 /*
2243 * Attempt RSA authentication using Pageant.
2244 */
2245 static unsigned char request[5], *response, *p;
2246 static int responselen;
2247 static int i, nkeys;
2248 static int authed = FALSE;
2249 void *r;
2250
2251 tried_agent = 1;
2252 logevent("Pageant is running. Requesting keys.");
2253
2254 /* Request the keys held by the agent. */
2255 PUT_32BIT(request, 1);
2256 request[4] = SSH1_AGENTC_REQUEST_RSA_IDENTITIES;
2257 agent_query(request, 5, &r, &responselen);
2258 response = (unsigned char *) r;
2259 if (response && responselen >= 5 &&
2260 response[4] == SSH1_AGENT_RSA_IDENTITIES_ANSWER) {
2261 p = response + 5;
2262 nkeys = GET_32BIT(p);
2263 p += 4;
2264 {
2265 char buf[64];
2266 sprintf(buf, "Pageant has %d SSH1 keys", nkeys);
2267 logevent(buf);
2268 }
2269 for (i = 0; i < nkeys; i++) {
2270 static struct RSAKey key;
2271 static Bignum challenge;
2272 static char *commentp;
2273 static int commentlen;
2274
2275 {
2276 char buf[64];
2277 sprintf(buf, "Trying Pageant key #%d", i);
2278 logevent(buf);
2279 }
2280 if (publickey_blob &&
2281 !memcmp(p, publickey_blob, publickey_bloblen)) {
2282 logevent("This key matches configured key file");
2283 tried_publickey = 1;
2284 }
2285 p += 4;
2286 p += ssh1_read_bignum(p, &key.exponent);
2287 p += ssh1_read_bignum(p, &key.modulus);
2288 commentlen = GET_32BIT(p);
2289 p += 4;
2290 commentp = p;
2291 p += commentlen;
2292 send_packet(SSH1_CMSG_AUTH_RSA,
2293 PKT_BIGNUM, key.modulus, PKT_END);
2294 crWaitUntil(ispkt);
2295 if (pktin.type != SSH1_SMSG_AUTH_RSA_CHALLENGE) {
2296 logevent("Key refused");
2297 continue;
2298 }
2299 logevent("Received RSA challenge");
2300 ssh1_read_bignum(pktin.body, &challenge);
2301 {
2302 char *agentreq, *q, *ret;
2303 void *vret;
2304 int len, retlen;
2305 len = 1 + 4; /* message type, bit count */
2306 len += ssh1_bignum_length(key.exponent);
2307 len += ssh1_bignum_length(key.modulus);
2308 len += ssh1_bignum_length(challenge);
2309 len += 16; /* session id */
2310 len += 4; /* response format */
2311 agentreq = smalloc(4 + len);
2312 PUT_32BIT(agentreq, len);
2313 q = agentreq + 4;
2314 *q++ = SSH1_AGENTC_RSA_CHALLENGE;
2315 PUT_32BIT(q, bignum_bitcount(key.modulus));
2316 q += 4;
2317 q += ssh1_write_bignum(q, key.exponent);
2318 q += ssh1_write_bignum(q, key.modulus);
2319 q += ssh1_write_bignum(q, challenge);
2320 memcpy(q, session_id, 16);
2321 q += 16;
2322 PUT_32BIT(q, 1); /* response format */
2323 agent_query(agentreq, len + 4, &vret, &retlen);
2324 ret = vret;
2325 sfree(agentreq);
2326 if (ret) {
2327 if (ret[4] == SSH1_AGENT_RSA_RESPONSE) {
2328 logevent("Sending Pageant's response");
2329 send_packet(SSH1_CMSG_AUTH_RSA_RESPONSE,
2330 PKT_DATA, ret + 5, 16,
2331 PKT_END);
2332 sfree(ret);
2333 crWaitUntil(ispkt);
2334 if (pktin.type == SSH1_SMSG_SUCCESS) {
2335 logevent
2336 ("Pageant's response accepted");
2337 if (flags & FLAG_VERBOSE) {
2338 c_write_str
2339 ("Authenticated using RSA key \"");
2340 c_write(commentp, commentlen);
2341 c_write_str("\" from agent\r\n");
2342 }
2343 authed = TRUE;
2344 } else
2345 logevent
2346 ("Pageant's response not accepted");
2347 } else {
2348 logevent
2349 ("Pageant failed to answer challenge");
2350 sfree(ret);
2351 }
2352 } else {
2353 logevent("No reply received from Pageant");
2354 }
2355 }
2356 freebn(key.exponent);
2357 freebn(key.modulus);
2358 freebn(challenge);
2359 if (authed)
2360 break;
2361 }
2362 }
2363 if (authed)
2364 break;
2365 }
2366 if (*cfg.keyfile && !tried_publickey)
2367 pwpkt_type = SSH1_CMSG_AUTH_RSA;
2368
2369 if (cfg.try_tis_auth &&
2370 (supported_auths_mask & (1 << SSH1_AUTH_TIS)) &&
2371 !tis_auth_refused) {
2372 pwpkt_type = SSH1_CMSG_AUTH_TIS_RESPONSE;
2373 logevent("Requested TIS authentication");
2374 send_packet(SSH1_CMSG_AUTH_TIS, PKT_END);
2375 crWaitUntil(ispkt);
2376 if (pktin.type != SSH1_SMSG_AUTH_TIS_CHALLENGE) {
2377 logevent("TIS authentication declined");
2378 if (flags & FLAG_INTERACTIVE)
2379 c_write_str("TIS authentication refused.\r\n");
2380 tis_auth_refused = 1;
2381 continue;
2382 } else {
2383 int challengelen = ((pktin.body[0] << 24) |
2384 (pktin.body[1] << 16) |
2385 (pktin.body[2] << 8) |
2386 (pktin.body[3]));
2387 logevent("Received TIS challenge");
2388 if (challengelen > sizeof(prompt) - 1)
2389 challengelen = sizeof(prompt) - 1; /* prevent overrun */
2390 memcpy(prompt, pktin.body + 4, challengelen);
2391 /* Prompt heuristic comes from OpenSSH */
2392 strncpy(prompt + challengelen,
2393 memchr(prompt, '\n', challengelen) ?
2394 "": "\r\nResponse: ",
2395 (sizeof prompt) - challengelen);
2396 prompt[(sizeof prompt) - 1] = '\0';
2397 }
2398 }
2399 if (cfg.try_tis_auth &&
2400 (supported_auths_mask & (1 << SSH1_AUTH_CCARD)) &&
2401 !ccard_auth_refused) {
2402 pwpkt_type = SSH1_CMSG_AUTH_CCARD_RESPONSE;
2403 logevent("Requested CryptoCard authentication");
2404 send_packet(SSH1_CMSG_AUTH_CCARD, PKT_END);
2405 crWaitUntil(ispkt);
2406 if (pktin.type != SSH1_SMSG_AUTH_CCARD_CHALLENGE) {
2407 logevent("CryptoCard authentication declined");
2408 c_write_str("CryptoCard authentication refused.\r\n");
2409 ccard_auth_refused = 1;
2410 continue;
2411 } else {
2412 int challengelen = ((pktin.body[0] << 24) |
2413 (pktin.body[1] << 16) |
2414 (pktin.body[2] << 8) |
2415 (pktin.body[3]));
2416 logevent("Received CryptoCard challenge");
2417 if (challengelen > sizeof(prompt) - 1)
2418 challengelen = sizeof(prompt) - 1; /* prevent overrun */
2419 memcpy(prompt, pktin.body + 4, challengelen);
2420 strncpy(prompt + challengelen,
2421 memchr(prompt, '\n', challengelen) ?
2422 "" : "\r\nResponse: ",
2423 sizeof(prompt) - challengelen);
2424 prompt[sizeof(prompt) - 1] = '\0';
2425 }
2426 }
2427 if (pwpkt_type == SSH1_CMSG_AUTH_PASSWORD) {
2428 sprintf(prompt, "%.90s@%.90s's password: ",
2429 username, savedhost);
2430 }
2431 if (pwpkt_type == SSH1_CMSG_AUTH_RSA) {
2432 char *comment = NULL;
2433 if (flags & FLAG_VERBOSE)
2434 c_write_str("Trying public key authentication.\r\n");
2435 if (!rsakey_encrypted(cfg.keyfile, &comment)) {
2436 if (flags & FLAG_VERBOSE)
2437 c_write_str("No passphrase required.\r\n");
2438 goto tryauth;
2439 }
2440 sprintf(prompt, "Passphrase for key \"%.100s\": ", comment);
2441 sfree(comment);
2442 }
2443
2444 /*
2445 * Show password prompt, having first obtained it via a TIS
2446 * or CryptoCard exchange if we're doing TIS or CryptoCard
2447 * authentication.
2448 */
2449 if (ssh_get_line) {
2450 if (!ssh_get_line(prompt, password, sizeof(password), TRUE)) {
2451 /*
2452 * get_line failed to get a password (for example
2453 * because one was supplied on the command line
2454 * which has already failed to work). Terminate.
2455 */
2456 send_packet(SSH1_MSG_DISCONNECT,
2457 PKT_STR, "No more passwords available to try",
2458 PKT_END);
2459 logevent("Unable to authenticate");
2460 connection_fatal("Unable to authenticate");
2461 ssh_state = SSH_STATE_CLOSED;
2462 crReturn(1);
2463 }
2464 } else {
2465 /* Prompt may have come from server. We've munged it a bit, so
2466 * we know it to be zero-terminated at least once. */
2467 c_write_untrusted(prompt, strlen(prompt));
2468 pos = 0;
2469 ssh_send_ok = 1;
2470 while (pos >= 0) {
2471 crWaitUntil(!ispkt);
2472 while (inlen--)
2473 switch (c = *in++) {
2474 case 10:
2475 case 13:
2476 password[pos] = 0;
2477 pos = -1;
2478 break;
2479 case 8:
2480 case 127:
2481 if (pos > 0)
2482 pos--;
2483 break;
2484 case 21:
2485 case 27:
2486 pos = 0;
2487 break;
2488 case 3:
2489 case 4:
2490 cleanup_exit(0);
2491 break;
2492 default:
2493 if (pos < sizeof(password)-1)
2494 password[pos++] = c;
2495 break;
2496 }
2497 }
2498 c_write_str("\r\n");
2499 }
2500
2501 tryauth:
2502 if (pwpkt_type == SSH1_CMSG_AUTH_RSA) {
2503 /*
2504 * Try public key authentication with the specified
2505 * key file.
2506 */
2507 static struct RSAKey pubkey;
2508 static Bignum challenge, response;
2509 static int i;
2510 static unsigned char buffer[32];
2511
2512 tried_publickey = 1;
2513 i = loadrsakey(cfg.keyfile, &pubkey, password);
2514 if (i == 0) {
2515 c_write_str("Couldn't load private key from ");
2516 c_write_str(cfg.keyfile);
2517 c_write_str(".\r\n");
2518 continue; /* go and try password */
2519 }
2520 if (i == -1) {
2521 c_write_str("Wrong passphrase.\r\n");
2522 tried_publickey = 0;
2523 continue; /* try again */
2524 }
2525
2526 /*
2527 * Send a public key attempt.
2528 */
2529 send_packet(SSH1_CMSG_AUTH_RSA,
2530 PKT_BIGNUM, pubkey.modulus, PKT_END);
2531
2532 crWaitUntil(ispkt);
2533 if (pktin.type == SSH1_SMSG_FAILURE) {
2534 c_write_str("Server refused our public key.\r\n");
2535 continue; /* go and try password */
2536 }
2537 if (pktin.type != SSH1_SMSG_AUTH_RSA_CHALLENGE) {
2538 bombout(("Bizarre response to offer of public key"));
2539 crReturn(0);
2540 }
2541 ssh1_read_bignum(pktin.body, &challenge);
2542 response = rsadecrypt(challenge, &pubkey);
2543 freebn(pubkey.private_exponent); /* burn the evidence */
2544
2545 for (i = 0; i < 32; i++) {
2546 buffer[i] = bignum_byte(response, 31 - i);
2547 }
2548
2549 MD5Init(&md5c);
2550 MD5Update(&md5c, buffer, 32);
2551 MD5Update(&md5c, session_id, 16);
2552 MD5Final(buffer, &md5c);
2553
2554 send_packet(SSH1_CMSG_AUTH_RSA_RESPONSE,
2555 PKT_DATA, buffer, 16, PKT_END);
2556
2557 crWaitUntil(ispkt);
2558 if (pktin.type == SSH1_SMSG_FAILURE) {
2559 if (flags & FLAG_VERBOSE)
2560 c_write_str
2561 ("Failed to authenticate with our public key.\r\n");
2562 continue; /* go and try password */
2563 } else if (pktin.type != SSH1_SMSG_SUCCESS) {
2564 bombout(
2565 ("Bizarre response to RSA authentication response"));
2566 crReturn(0);
2567 }
2568
2569 break; /* we're through! */
2570 } else {
2571 if (pwpkt_type == SSH1_CMSG_AUTH_PASSWORD) {
2572 /*
2573 * Defence against traffic analysis: we send a
2574 * whole bunch of packets containing strings of
2575 * different lengths. One of these strings is the
2576 * password, in a SSH1_CMSG_AUTH_PASSWORD packet.
2577 * The others are all random data in
2578 * SSH1_MSG_IGNORE packets. This way a passive
2579 * listener can't tell which is the password, and
2580 * hence can't deduce the password length.
2581 *
2582 * Anybody with a password length greater than 16
2583 * bytes is going to have enough entropy in their
2584 * password that a listener won't find it _that_
2585 * much help to know how long it is. So what we'll
2586 * do is:
2587 *
2588 * - if password length < 16, we send 15 packets
2589 * containing string lengths 1 through 15
2590 *
2591 * - otherwise, we let N be the nearest multiple
2592 * of 8 below the password length, and send 8
2593 * packets containing string lengths N through
2594 * N+7. This won't obscure the order of
2595 * magnitude of the password length, but it will
2596 * introduce a bit of extra uncertainty.
2597 *
2598 * A few servers (the old 1.2.18 through 1.2.22)
2599 * can't deal with SSH1_MSG_IGNORE. For these
2600 * servers, we need an alternative defence. We make
2601 * use of the fact that the password is interpreted
2602 * as a C string: so we can append a NUL, then some
2603 * random data.
2604 *
2605 * One server (a Cisco one) can deal with neither
2606 * SSH1_MSG_IGNORE _nor_ a padded password string.
2607 * For this server we are left with no defences
2608 * against password length sniffing.
2609 */
2610 if (!(ssh_remote_bugs & BUG_CHOKES_ON_SSH1_IGNORE)) {
2611 /*
2612 * The server can deal with SSH1_MSG_IGNORE, so
2613 * we can use the primary defence.
2614 */
2615 int bottom, top, pwlen, i;
2616 char *randomstr;
2617
2618 pwlen = strlen(password);
2619 if (pwlen < 16) {
2620 bottom = 0; /* zero length passwords are OK! :-) */
2621 top = 15;
2622 } else {
2623 bottom = pwlen & ~7;
2624 top = bottom + 7;
2625 }
2626
2627 assert(pwlen >= bottom && pwlen <= top);
2628
2629 randomstr = smalloc(top + 1);
2630
2631 for (i = bottom; i <= top; i++) {
2632 if (i == pwlen)
2633 defer_packet(pwpkt_type, PKT_STR, password,
2634 PKT_END);
2635 else {
2636 for (j = 0; j < i; j++) {
2637 do {
2638 randomstr[j] = random_byte();
2639 } while (randomstr[j] == '\0');
2640 }
2641 randomstr[i] = '\0';
2642 defer_packet(SSH1_MSG_IGNORE,
2643 PKT_STR, randomstr, PKT_END);
2644 }
2645 }
2646 logevent("Sending password with camouflage packets");
2647 ssh_pkt_defersend();
2648 }
2649 else if (!(ssh_remote_bugs & BUG_NEEDS_SSH1_PLAIN_PASSWORD)) {
2650 /*
2651 * The server can't deal with SSH1_MSG_IGNORE
2652 * but can deal with padded passwords, so we
2653 * can use the secondary defence.
2654 */
2655 char string[64];
2656 char *s;
2657 int len;
2658
2659 len = strlen(password);
2660 if (len < sizeof(string)) {
2661 s = string;
2662 strcpy(string, password);
2663 len++; /* cover the zero byte */
2664 while (len < sizeof(string)) {
2665 string[len++] = (char) random_byte();
2666 }
2667 } else {
2668 s = password;
2669 }
2670 logevent("Sending length-padded password");
2671 send_packet(pwpkt_type, PKT_INT, len,
2672 PKT_DATA, s, len, PKT_END);
2673 } else {
2674 /*
2675 * The server has _both_
2676 * BUG_CHOKES_ON_SSH1_IGNORE and
2677 * BUG_NEEDS_SSH1_PLAIN_PASSWORD. There is
2678 * therefore nothing we can do.
2679 */
2680 int len;
2681 len = strlen(password);
2682 logevent("Sending unpadded password");
2683 send_packet(pwpkt_type, PKT_INT, len,
2684 PKT_DATA, password, len, PKT_END);
2685 }
2686 } else {
2687 send_packet(pwpkt_type, PKT_STR, password, PKT_END);
2688 }
2689 }
2690 logevent("Sent password");
2691 memset(password, 0, strlen(password));
2692 crWaitUntil(ispkt);
2693 if (pktin.type == SSH1_SMSG_FAILURE) {
2694 if (flags & FLAG_VERBOSE)
2695 c_write_str("Access denied\r\n");
2696 logevent("Authentication refused");
2697 } else if (pktin.type == SSH1_MSG_DISCONNECT) {
2698 logevent("Received disconnect request");
2699 ssh_state = SSH_STATE_CLOSED;
2700 crReturn(1);
2701 } else if (pktin.type != SSH1_SMSG_SUCCESS) {
2702 bombout(("Strange packet received, type %d", pktin.type));
2703 crReturn(0);
2704 }
2705 }
2706
2707 logevent("Authentication successful");
2708
2709 crFinish(1);
2710 }
2711
2712 void sshfwd_close(struct ssh_channel *c)
2713 {
2714 if (c && !c->closes) {
2715 /*
2716 * If the channel's remoteid is -1, we have sent
2717 * CHANNEL_OPEN for this channel, but it hasn't even been
2718 * acknowledged by the server. So we must set a close flag
2719 * on it now, and then when the server acks the channel
2720 * open, we can close it then.
2721 */
2722 if (c->remoteid != -1) {
2723 if (ssh_version == 1) {
2724 send_packet(SSH1_MSG_CHANNEL_CLOSE, PKT_INT, c->remoteid,
2725 PKT_END);
2726 } else {
2727 ssh2_pkt_init(SSH2_MSG_CHANNEL_CLOSE);
2728 ssh2_pkt_adduint32(c->remoteid);
2729 ssh2_pkt_send();
2730 }
2731 }
2732 c->closes = 1;
2733 if (c->type == CHAN_X11) {
2734 c->u.x11.s = NULL;
2735 logevent("Forwarded X11 connection terminated");
2736 } else if (c->type == CHAN_SOCKDATA ||
2737 c->type == CHAN_SOCKDATA_DORMANT) {
2738 c->u.pfd.s = NULL;
2739 logevent("Forwarded port closed");
2740 }
2741 }
2742 }
2743
2744 int sshfwd_write(struct ssh_channel *c, char *buf, int len)
2745 {
2746 if (ssh_version == 1) {
2747 send_packet(SSH1_MSG_CHANNEL_DATA,
2748 PKT_INT, c->remoteid,
2749 PKT_INT, len, PKT_DATA, buf, len, PKT_END);
2750 /*
2751 * In SSH1 we can return 0 here - implying that forwarded
2752 * connections are never individually throttled - because
2753 * the only circumstance that can cause throttling will be
2754 * the whole SSH connection backing up, in which case
2755 * _everything_ will be throttled as a whole.
2756 */
2757 return 0;
2758 } else {
2759 ssh2_add_channel_data(c, buf, len);
2760 return ssh2_try_send(c);
2761 }
2762 }
2763
2764 void sshfwd_unthrottle(struct ssh_channel *c, int bufsize)
2765 {
2766 if (ssh_version == 1) {
2767 if (c->v.v1.throttling && bufsize < SSH1_BUFFER_LIMIT) {
2768 c->v.v1.throttling = 0;
2769 ssh1_throttle(-1);
2770 }
2771 } else {
2772 ssh2_set_window(c, OUR_V2_WINSIZE - bufsize);
2773 }
2774 }
2775
2776 static void ssh1_protocol(unsigned char *in, int inlen, int ispkt)
2777 {
2778 crBegin;
2779
2780 random_init();
2781
2782 while (!do_ssh1_login(in, inlen, ispkt)) {
2783 crReturnV;
2784 }
2785 if (ssh_state == SSH_STATE_CLOSED)
2786 crReturnV;
2787
2788 if (cfg.agentfwd && agent_exists()) {
2789 logevent("Requesting agent forwarding");
2790 send_packet(SSH1_CMSG_AGENT_REQUEST_FORWARDING, PKT_END);
2791 do {
2792 crReturnV;
2793 } while (!ispkt);
2794 if (pktin.type != SSH1_SMSG_SUCCESS
2795 && pktin.type != SSH1_SMSG_FAILURE) {
2796 bombout(("Protocol confusion"));
2797 crReturnV;
2798 } else if (pktin.type == SSH1_SMSG_FAILURE) {
2799 logevent("Agent forwarding refused");
2800 } else {
2801 logevent("Agent forwarding enabled");
2802 ssh_agentfwd_enabled = TRUE;
2803 }
2804 }
2805
2806 if (cfg.x11_forward) {
2807 char proto[20], data[64];
2808 logevent("Requesting X11 forwarding");
2809 x11_invent_auth(proto, sizeof(proto), data, sizeof(data));
2810 if (ssh1_local_protoflags & SSH1_PROTOFLAG_SCREEN_NUMBER) {
2811 send_packet(SSH1_CMSG_X11_REQUEST_FORWARDING,
2812 PKT_STR, proto, PKT_STR, data,
2813 PKT_INT, 0, PKT_END);
2814 } else {
2815 send_packet(SSH1_CMSG_X11_REQUEST_FORWARDING,
2816 PKT_STR, proto, PKT_STR, data, PKT_END);
2817 }
2818 do {
2819 crReturnV;
2820 } while (!ispkt);
2821 if (pktin.type != SSH1_SMSG_SUCCESS
2822 && pktin.type != SSH1_SMSG_FAILURE) {
2823 bombout(("Protocol confusion"));
2824 crReturnV;
2825 } else if (pktin.type == SSH1_SMSG_FAILURE) {
2826 logevent("X11 forwarding refused");
2827 } else {
2828 logevent("X11 forwarding enabled");
2829 ssh_X11_fwd_enabled = TRUE;
2830 }
2831 }
2832
2833 {
2834 char type, *e;
2835 int n;
2836 int sport,dport;
2837 char sports[256], dports[256], host[256];
2838 char buf[1024];
2839
2840 ssh_rportfwds = newtree234(ssh_rportcmp_ssh1);
2841 /* Add port forwardings. */
2842 e = cfg.portfwd;
2843 while (*e) {
2844 type = *e++;
2845 n = 0;
2846 while (*e && *e != '\t')
2847 sports[n++] = *e++;
2848 sports[n] = 0;
2849 if (*e == '\t')
2850 e++;
2851 n = 0;
2852 while (*e && *e != ':')
2853 host[n++] = *e++;
2854 host[n] = 0;
2855 if (*e == ':')
2856 e++;
2857 n = 0;
2858 while (*e)
2859 dports[n++] = *e++;
2860 dports[n] = 0;
2861 e++;
2862 dport = atoi(dports);
2863 sport = atoi(sports);
2864 if (sport && dport) {
2865 if (type == 'L') {
2866 pfd_addforward(host, dport, sport);
2867 sprintf(buf, "Local port %d forwarding to %s:%d",
2868 sport, host, dport);
2869 logevent(buf);
2870 } else {
2871 struct ssh_rportfwd *pf;
2872 pf = smalloc(sizeof(*pf));
2873 strcpy(pf->dhost, host);
2874 pf->dport = dport;
2875 if (add234(ssh_rportfwds, pf) != pf) {
2876 sprintf(buf,
2877 "Duplicate remote port forwarding to %s:%d",
2878 host, dport);
2879 logevent(buf);
2880 sfree(pf);
2881 } else {
2882 sprintf(buf, "Requesting remote port %d forward to %s:%d",
2883 sport, host, dport);
2884 logevent(buf);
2885 send_packet(SSH1_CMSG_PORT_FORWARD_REQUEST,
2886 PKT_INT, sport,
2887 PKT_STR, host,
2888 PKT_INT, dport,
2889 PKT_END);
2890 }
2891 }
2892 }
2893 }
2894 }
2895
2896 if (!cfg.nopty) {
2897 send_packet(SSH1_CMSG_REQUEST_PTY,
2898 PKT_STR, cfg.termtype,
2899 PKT_INT, rows, PKT_INT, cols,
2900 PKT_INT, 0, PKT_INT, 0, PKT_CHAR, 0, PKT_END);
2901 ssh_state = SSH_STATE_INTERMED;
2902 do {
2903 crReturnV;
2904 } while (!ispkt);
2905 if (pktin.type != SSH1_SMSG_SUCCESS
2906 && pktin.type != SSH1_SMSG_FAILURE) {
2907 bombout(("Protocol confusion"));
2908 crReturnV;
2909 } else if (pktin.type == SSH1_SMSG_FAILURE) {
2910 c_write_str("Server refused to allocate pty\r\n");
2911 ssh_editing = ssh_echoing = 1;
2912 }
2913 logevent("Allocated pty");
2914 } else {
2915 ssh_editing = ssh_echoing = 1;
2916 }
2917
2918 if (cfg.compression) {
2919 send_packet(SSH1_CMSG_REQUEST_COMPRESSION, PKT_INT, 6, PKT_END);
2920 do {
2921 crReturnV;
2922 } while (!ispkt);
2923 if (pktin.type != SSH1_SMSG_SUCCESS
2924 && pktin.type != SSH1_SMSG_FAILURE) {
2925 bombout(("Protocol confusion"));
2926 crReturnV;
2927 } else if (pktin.type == SSH1_SMSG_FAILURE) {
2928 c_write_str("Server refused to compress\r\n");
2929 }
2930 logevent("Started compression");
2931 ssh1_compressing = TRUE;
2932 zlib_compress_init();
2933 zlib_decompress_init();
2934 }
2935
2936 /*
2937 * Start the shell or command.
2938 *
2939 * Special case: if the first-choice command is an SSH2
2940 * subsystem (hence not usable here) and the second choice
2941 * exists, we fall straight back to that.
2942 */
2943 {
2944 char *cmd = cfg.remote_cmd_ptr;
2945
2946 if (cfg.ssh_subsys && cfg.remote_cmd_ptr2) {
2947 cmd = cfg.remote_cmd_ptr2;
2948 ssh_fallback_cmd = TRUE;
2949 }
2950 if (*cmd)
2951 send_packet(SSH1_CMSG_EXEC_CMD, PKT_STR, cmd, PKT_END);
2952 else
2953 send_packet(SSH1_CMSG_EXEC_SHELL, PKT_END);
2954 logevent("Started session");
2955 }
2956
2957 ssh_state = SSH_STATE_SESSION;
2958 if (size_needed)
2959 ssh_size();
2960 if (eof_needed)
2961 ssh_special(TS_EOF);
2962
2963 ldisc_send(NULL, 0, 0); /* cause ldisc to notice changes */
2964 ssh_send_ok = 1;
2965 ssh_channels = newtree234(ssh_channelcmp);
2966 while (1) {
2967 crReturnV;
2968 if (ispkt) {
2969 if (pktin.type == SSH1_SMSG_STDOUT_DATA ||
2970 pktin.type == SSH1_SMSG_STDERR_DATA) {
2971 long len = GET_32BIT(pktin.body);
2972 int bufsize =
2973 from_backend(pktin.type == SSH1_SMSG_STDERR_DATA,
2974 pktin.body + 4, len);
2975 if (!ssh1_stdout_throttling && bufsize > SSH1_BUFFER_LIMIT) {
2976 ssh1_stdout_throttling = 1;
2977 ssh1_throttle(+1);
2978 }
2979 } else if (pktin.type == SSH1_MSG_DISCONNECT) {
2980 ssh_state = SSH_STATE_CLOSED;
2981 logevent("Received disconnect request");
2982 crReturnV;
2983 } else if (pktin.type == SSH1_SMSG_X11_OPEN) {
2984 /* Remote side is trying to open a channel to talk to our
2985 * X-Server. Give them back a local channel number. */
2986 struct ssh_channel *c;
2987
2988 logevent("Received X11 connect request");
2989 /* Refuse if X11 forwarding is disabled. */
2990 if (!ssh_X11_fwd_enabled) {
2991 send_packet(SSH1_MSG_CHANNEL_OPEN_FAILURE,
2992 PKT_INT, GET_32BIT(pktin.body), PKT_END);
2993 logevent("Rejected X11 connect request");
2994 } else {
2995 c = smalloc(sizeof(struct ssh_channel));
2996
2997 if (x11_init(&c->u.x11.s, cfg.x11_display, c) != NULL) {
2998 logevent("opening X11 forward connection failed");
2999 sfree(c);
3000 send_packet(SSH1_MSG_CHANNEL_OPEN_FAILURE,
3001 PKT_INT, GET_32BIT(pktin.body),
3002 PKT_END);
3003 } else {
3004 logevent
3005 ("opening X11 forward connection succeeded");
3006 c->remoteid = GET_32BIT(pktin.body);
3007 c->localid = alloc_channel_id();
3008 c->closes = 0;
3009 c->v.v1.throttling = 0;
3010 c->type = CHAN_X11; /* identify channel type */
3011 add234(ssh_channels, c);
3012 send_packet(SSH1_MSG_CHANNEL_OPEN_CONFIRMATION,
3013 PKT_INT, c->remoteid, PKT_INT,
3014 c->localid, PKT_END);
3015 logevent("Opened X11 forward channel");
3016 }
3017 }
3018 } else if (pktin.type == SSH1_SMSG_AGENT_OPEN) {
3019 /* Remote side is trying to open a channel to talk to our
3020 * agent. Give them back a local channel number. */
3021 struct ssh_channel *c;
3022
3023 /* Refuse if agent forwarding is disabled. */
3024 if (!ssh_agentfwd_enabled) {
3025 send_packet(SSH1_MSG_CHANNEL_OPEN_FAILURE,
3026 PKT_INT, GET_32BIT(pktin.body), PKT_END);
3027 } else {
3028 c = smalloc(sizeof(struct ssh_channel));
3029 c->remoteid = GET_32BIT(pktin.body);
3030 c->localid = alloc_channel_id();
3031 c->closes = 0;
3032 c->v.v1.throttling = 0;
3033 c->type = CHAN_AGENT; /* identify channel type */
3034 c->u.a.lensofar = 0;
3035 add234(ssh_channels, c);
3036 send_packet(SSH1_MSG_CHANNEL_OPEN_CONFIRMATION,
3037 PKT_INT, c->remoteid, PKT_INT, c->localid,
3038 PKT_END);
3039 }
3040 } else if (pktin.type == SSH1_MSG_PORT_OPEN) {
3041 /* Remote side is trying to open a channel to talk to a
3042 * forwarded port. Give them back a local channel number. */
3043 struct ssh_channel *c;
3044 struct ssh_rportfwd pf;
3045 int hostsize, port;
3046 char host[256], buf[1024];
3047 char *p, *h, *e;
3048 c = smalloc(sizeof(struct ssh_channel));
3049
3050 hostsize = GET_32BIT(pktin.body+4);
3051 for(h = host, p = pktin.body+8; hostsize != 0; hostsize--) {
3052 if (h+1 < host+sizeof(host))
3053 *h++ = *p;
3054 p++;
3055 }
3056 *h = 0;
3057 port = GET_32BIT(p);
3058
3059 strcpy(pf.dhost, host);
3060 pf.dport = port;
3061
3062 if (find234(ssh_rportfwds, &pf, NULL) == NULL) {
3063 sprintf(buf, "Rejected remote port open request for %s:%d",
3064 host, port);
3065 logevent(buf);
3066 send_packet(SSH1_MSG_CHANNEL_OPEN_FAILURE,
3067 PKT_INT, GET_32BIT(pktin.body), PKT_END);
3068 } else {
3069 sprintf(buf, "Received remote port open request for %s:%d",
3070 host, port);
3071 logevent(buf);
3072 e = pfd_newconnect(&c->u.pfd.s, host, port, c);
3073 if (e != NULL) {
3074 char buf[256];
3075 sprintf(buf, "Port open failed: %s", e);
3076 logevent(buf);
3077 sfree(c);
3078 send_packet(SSH1_MSG_CHANNEL_OPEN_FAILURE,
3079 PKT_INT, GET_32BIT(pktin.body),
3080 PKT_END);
3081 } else {
3082 c->remoteid = GET_32BIT(pktin.body);
3083 c->localid = alloc_channel_id();
3084 c->closes = 0;
3085 c->v.v1.throttling = 0;
3086 c->type = CHAN_SOCKDATA; /* identify channel type */
3087 add234(ssh_channels, c);
3088 send_packet(SSH1_MSG_CHANNEL_OPEN_CONFIRMATION,
3089 PKT_INT, c->remoteid, PKT_INT,
3090 c->localid, PKT_END);
3091 logevent("Forwarded port opened successfully");
3092 }
3093 }
3094
3095 } else if (pktin.type == SSH1_MSG_CHANNEL_OPEN_CONFIRMATION) {
3096 unsigned int remoteid = GET_32BIT(pktin.body);
3097 unsigned int localid = GET_32BIT(pktin.body+4);
3098 struct ssh_channel *c;
3099
3100 c = find234(ssh_channels, &remoteid, ssh_channelfind);
3101 if (c && c->type == CHAN_SOCKDATA_DORMANT) {
3102 c->remoteid = localid;
3103 c->type = CHAN_SOCKDATA;
3104 c->v.v1.throttling = 0;
3105 pfd_confirm(c->u.pfd.s);
3106 }
3107
3108 if (c && c->closes) {
3109 /*
3110 * We have a pending close on this channel,
3111 * which we decided on before the server acked
3112 * the channel open. So now we know the
3113 * remoteid, we can close it again.
3114 */
3115 send_packet(SSH1_MSG_CHANNEL_CLOSE, PKT_INT, c->remoteid,
3116 PKT_END);
3117 }
3118
3119 } else if (pktin.type == SSH1_MSG_CHANNEL_OPEN_FAILURE) {
3120 unsigned int remoteid = GET_32BIT(pktin.body);
3121 unsigned int localid = GET_32BIT(pktin.body+4);
3122 struct ssh_channel *c;
3123
3124 c = find234(ssh_channels, &remoteid, ssh_channelfind);
3125 if (c && c->type == CHAN_SOCKDATA_DORMANT) {
3126 logevent("Forwarded connection refused by server");
3127 pfd_close(c->u.pfd.s);
3128 del234(ssh_channels, c);
3129 sfree(c);
3130 }
3131
3132 } else if (pktin.type == SSH1_MSG_CHANNEL_CLOSE ||
3133 pktin.type == SSH1_MSG_CHANNEL_CLOSE_CONFIRMATION) {
3134 /* Remote side closes a channel. */
3135 unsigned i = GET_32BIT(pktin.body);
3136 struct ssh_channel *c;
3137 c = find234(ssh_channels, &i, ssh_channelfind);
3138 if (c) {
3139 int closetype;
3140 closetype =
3141 (pktin.type == SSH1_MSG_CHANNEL_CLOSE ? 1 : 2);
3142 if (!(c->closes & closetype))
3143 send_packet(pktin.type, PKT_INT, c->remoteid,
3144 PKT_END);
3145 if ((c->closes == 0) && (c->type == CHAN_X11)) {
3146 logevent("Forwarded X11 connection terminated");
3147 assert(c->u.x11.s != NULL);
3148 x11_close(c->u.x11.s);
3149 c->u.x11.s = NULL;
3150 }
3151 if ((c->closes == 0) && (c->type == CHAN_SOCKDATA)) {
3152 logevent("Forwarded port closed");
3153 assert(c->u.pfd.s != NULL);
3154 pfd_close(c->u.pfd.s);
3155 c->u.pfd.s = NULL;
3156 }
3157 c->closes |= closetype;
3158 if (c->closes == 3) {
3159 del234(ssh_channels, c);
3160 sfree(c);
3161 }
3162 }
3163 } else if (pktin.type == SSH1_MSG_CHANNEL_DATA) {
3164 /* Data sent down one of our channels. */
3165 int i = GET_32BIT(pktin.body);
3166 int len = GET_32BIT(pktin.body + 4);
3167 unsigned char *p = pktin.body + 8;
3168 struct ssh_channel *c;
3169 c = find234(ssh_channels, &i, ssh_channelfind);
3170 if (c) {
3171 int bufsize;
3172 switch (c->type) {
3173 case CHAN_X11:
3174 bufsize = x11_send(c->u.x11.s, p, len);
3175 break;
3176 case CHAN_SOCKDATA:
3177 bufsize = pfd_send(c->u.pfd.s, p, len);
3178 break;
3179 case CHAN_AGENT:
3180 /* Data for an agent message. Buffer it. */
3181 while (len > 0) {
3182 if (c->u.a.lensofar < 4) {
3183 int l = min(4 - c->u.a.lensofar, len);
3184 memcpy(c->u.a.msglen + c->u.a.lensofar, p,
3185 l);
3186 p += l;
3187 len -= l;
3188 c->u.a.lensofar += l;
3189 }
3190 if (c->u.a.lensofar == 4) {
3191 c->u.a.totallen =
3192 4 + GET_32BIT(c->u.a.msglen);
3193 c->u.a.message = smalloc(c->u.a.totallen);
3194 memcpy(c->u.a.message, c->u.a.msglen, 4);
3195 }
3196 if (c->u.a.lensofar >= 4 && len > 0) {
3197 int l =
3198 min(c->u.a.totallen - c->u.a.lensofar,
3199 len);
3200 memcpy(c->u.a.message + c->u.a.lensofar, p,
3201 l);
3202 p += l;
3203 len -= l;
3204 c->u.a.lensofar += l;
3205 }
3206 if (c->u.a.lensofar == c->u.a.totallen) {
3207 void *reply, *sentreply;
3208 int replylen;
3209 agent_query(c->u.a.message,
3210 c->u.a.totallen, &reply,
3211 &replylen);
3212 if (reply)
3213 sentreply = reply;
3214 else {
3215 /* Fake SSH_AGENT_FAILURE. */
3216 sentreply = "\0\0\0\1\5";
3217 replylen = 5;
3218 }
3219 send_packet(SSH1_MSG_CHANNEL_DATA,
3220 PKT_INT, c->remoteid,
3221 PKT_INT, replylen,
3222 PKT_DATA, sentreply, replylen,
3223 PKT_END);
3224 if (reply)
3225 sfree(reply);
3226 sfree(c->u.a.message);
3227 c->u.a.lensofar = 0;
3228 }
3229 }
3230 bufsize = 0; /* agent channels never back up */
3231 break;
3232 }
3233 if (!c->v.v1.throttling && bufsize > SSH1_BUFFER_LIMIT) {
3234 c->v.v1.throttling = 1;
3235 ssh1_throttle(+1);
3236 }
3237 }
3238 } else if (pktin.type == SSH1_SMSG_SUCCESS) {
3239 /* may be from EXEC_SHELL on some servers */
3240 } else if (pktin.type == SSH1_SMSG_FAILURE) {
3241 /* may be from EXEC_SHELL on some servers
3242 * if no pty is available or in other odd cases. Ignore */
3243 } else if (pktin.type == SSH1_SMSG_EXIT_STATUS) {
3244 char buf[100];
3245 ssh_exitcode = GET_32BIT(pktin.body);
3246 sprintf(buf, "Server sent command exit status %d",
3247 ssh_exitcode);
3248 logevent(buf);
3249 send_packet(SSH1_CMSG_EXIT_CONFIRMATION, PKT_END);
3250 /*
3251 * In case `helpful' firewalls or proxies tack
3252 * extra human-readable text on the end of the
3253 * session which we might mistake for another
3254 * encrypted packet, we close the session once
3255 * we've sent EXIT_CONFIRMATION.
3256 */
3257 ssh_state = SSH_STATE_CLOSED;
3258 crReturnV;
3259 } else {
3260 bombout(("Strange packet received: type %d", pktin.type));
3261 crReturnV;
3262 }
3263 } else {
3264 while (inlen > 0) {
3265 int len = min(inlen, 512);
3266 send_packet(SSH1_CMSG_STDIN_DATA,
3267 PKT_INT, len, PKT_DATA, in, len, PKT_END);
3268 in += len;
3269 inlen -= len;
3270 }
3271 }
3272 }
3273
3274 crFinishV;
3275 }
3276
3277 /*
3278 * Utility routine for decoding comma-separated strings in KEXINIT.
3279 */
3280 static int in_commasep_string(char *needle, char *haystack, int haylen)
3281 {
3282 int needlen = strlen(needle);
3283 while (1) {
3284 /*
3285 * Is it at the start of the string?
3286 */
3287 if (haylen >= needlen && /* haystack is long enough */
3288 !memcmp(needle, haystack, needlen) && /* initial match */
3289 (haylen == needlen || haystack[needlen] == ',')
3290 /* either , or EOS follows */
3291 )
3292 return 1;
3293 /*
3294 * If not, search for the next comma and resume after that.
3295 * If no comma found, terminate.
3296 */
3297 while (haylen > 0 && *haystack != ',')
3298 haylen--, haystack++;
3299 if (haylen == 0)
3300 return 0;
3301 haylen--, haystack++; /* skip over comma itself */
3302 }
3303 }
3304
3305 /*
3306 * SSH2 key creation method.
3307 */
3308 static void ssh2_mkkey(Bignum K, char *H, char *sessid, char chr,
3309 char *keyspace)
3310 {
3311 SHA_State s;
3312 /* First 20 bytes. */
3313 SHA_Init(&s);
3314 sha_mpint(&s, K);
3315 SHA_Bytes(&s, H, 20);
3316 SHA_Bytes(&s, &chr, 1);
3317 SHA_Bytes(&s, sessid, 20);
3318 SHA_Final(&s, keyspace);
3319 /* Next 20 bytes. */
3320 SHA_Init(&s);
3321 sha_mpint(&s, K);
3322 SHA_Bytes(&s, H, 20);
3323 SHA_Bytes(&s, keyspace, 20);
3324 SHA_Final(&s, keyspace + 20);
3325 }
3326
3327 /*
3328 * Handle the SSH2 transport layer.
3329 */
3330 static int do_ssh2_transport(unsigned char *in, int inlen, int ispkt)
3331 {
3332 static int i, j, len, nbits, pbits, warn;
3333 static char *str;
3334 static Bignum p, g, e, f, K;
3335 static int kex_init_value, kex_reply_value;
3336 static const struct ssh_mac **maclist;
3337 static int nmacs;
3338 static const struct ssh2_cipher *cscipher_tobe = NULL;
3339 static const struct ssh2_cipher *sccipher_tobe = NULL;
3340 static const struct ssh_mac *csmac_tobe = NULL;
3341 static const struct ssh_mac *scmac_tobe = NULL;
3342 static const struct ssh_compress *cscomp_tobe = NULL;
3343 static const struct ssh_compress *sccomp_tobe = NULL;
3344 static char *hostkeydata, *sigdata, *keystr, *fingerprint;
3345 static int hostkeylen, siglen;
3346 static void *hkey; /* actual host key */
3347 static unsigned char exchange_hash[20];
3348 static unsigned char keyspace[40];
3349 static int n_preferred_ciphers;
3350 static const struct ssh2_ciphers *preferred_ciphers[CIPHER_MAX];
3351 static const struct ssh_compress *preferred_comp;
3352 static int cipherstr_started;
3353 static int first_kex;
3354
3355 crBegin;
3356 random_init();
3357 first_kex = 1;
3358
3359 /*
3360 * Set up the preferred ciphers. (NULL => warn below here)
3361 */
3362 n_preferred_ciphers = 0;
3363 for (i = 0; i < CIPHER_MAX; i++) {
3364 switch (cfg.ssh_cipherlist[i]) {
3365 case CIPHER_BLOWFISH:
3366 preferred_ciphers[n_preferred_ciphers] = &ssh2_blowfish;
3367 n_preferred_ciphers++;
3368 break;
3369 case CIPHER_DES:
3370 if (cfg.ssh2_des_cbc) {
3371 preferred_ciphers[n_preferred_ciphers] = &ssh2_des;
3372 n_preferred_ciphers++;
3373 }
3374 break;
3375 case CIPHER_3DES:
3376 preferred_ciphers[n_preferred_ciphers] = &ssh2_3des;
3377 n_preferred_ciphers++;
3378 break;
3379 case CIPHER_AES:
3380 preferred_ciphers[n_preferred_ciphers] = &ssh2_aes;
3381 n_preferred_ciphers++;
3382 break;
3383 case CIPHER_WARN:
3384 /* Flag for later. Don't bother if it's the last in
3385 * the list. */
3386 if (i < CIPHER_MAX - 1) {
3387 preferred_ciphers[n_preferred_ciphers] = NULL;
3388 n_preferred_ciphers++;
3389 }
3390 break;
3391 }
3392 }
3393
3394 /*
3395 * Set up preferred compression.
3396 */
3397 if (cfg.compression)
3398 preferred_comp = &ssh_zlib;
3399 else
3400 preferred_comp = &ssh_comp_none;
3401
3402 /*
3403 * Be prepared to work around the buggy MAC problem.
3404 */
3405 if (cfg.buggymac || (ssh_remote_bugs & BUG_SSH2_HMAC))
3406 maclist = buggymacs, nmacs = lenof(buggymacs);
3407 else
3408 maclist = macs, nmacs = lenof(macs);
3409
3410 begin_key_exchange:
3411 /*
3412 * Construct and send our key exchange packet.
3413 */
3414 ssh2_pkt_init(SSH2_MSG_KEXINIT);
3415 for (i = 0; i < 16; i++)
3416 ssh2_pkt_addbyte((unsigned char) random_byte());
3417 /* List key exchange algorithms. */
3418 ssh2_pkt_addstring_start();
3419 for (i = 0; i < lenof(kex_algs); i++) {
3420 ssh2_pkt_addstring_str(kex_algs[i]->name);
3421 if (i < lenof(kex_algs) - 1)
3422 ssh2_pkt_addstring_str(",");
3423 }
3424 /* List server host key algorithms. */
3425 ssh2_pkt_addstring_start();
3426 for (i = 0; i < lenof(hostkey_algs); i++) {
3427 ssh2_pkt_addstring_str(hostkey_algs[i]->name);
3428 if (i < lenof(hostkey_algs) - 1)
3429 ssh2_pkt_addstring_str(",");
3430 }
3431 /* List client->server encryption algorithms. */
3432 ssh2_pkt_addstring_start();
3433 cipherstr_started = 0;
3434 for (i = 0; i < n_preferred_ciphers; i++) {
3435 const struct ssh2_ciphers *c = preferred_ciphers[i];
3436 if (!c) continue; /* warning flag */
3437 for (j = 0; j < c->nciphers; j++) {
3438 if (cipherstr_started)
3439 ssh2_pkt_addstring_str(",");
3440 ssh2_pkt_addstring_str(c->list[j]->name);
3441 cipherstr_started = 1;
3442 }
3443 }
3444 /* List server->client encryption algorithms. */
3445 ssh2_pkt_addstring_start();
3446 cipherstr_started = 0;
3447 for (i = 0; i < n_preferred_ciphers; i++) {
3448 const struct ssh2_ciphers *c = preferred_ciphers[i];
3449 if (!c) continue; /* warning flag */
3450 for (j = 0; j < c->nciphers; j++) {
3451 if (cipherstr_started)
3452 ssh2_pkt_addstring_str(",");
3453 ssh2_pkt_addstring_str(c->list[j]->name);
3454 cipherstr_started = 1;
3455 }
3456 }
3457 /* List client->server MAC algorithms. */
3458 ssh2_pkt_addstring_start();
3459 for (i = 0; i < nmacs; i++) {
3460 ssh2_pkt_addstring_str(maclist[i]->name);
3461 if (i < nmacs - 1)
3462 ssh2_pkt_addstring_str(",");
3463 }
3464 /* List server->client MAC algorithms. */
3465 ssh2_pkt_addstring_start();
3466 for (i = 0; i < nmacs; i++) {
3467 ssh2_pkt_addstring_str(maclist[i]->name);
3468 if (i < nmacs - 1)
3469 ssh2_pkt_addstring_str(",");
3470 }
3471 /* List client->server compression algorithms. */
3472 ssh2_pkt_addstring_start();
3473 for (i = 0; i < lenof(compressions) + 1; i++) {
3474 const struct ssh_compress *c =
3475 i == 0 ? preferred_comp : compressions[i - 1];
3476 ssh2_pkt_addstring_str(c->name);
3477 if (i < lenof(compressions))
3478 ssh2_pkt_addstring_str(",");
3479 }
3480 /* List server->client compression algorithms. */
3481 ssh2_pkt_addstring_start();
3482 for (i = 0; i < lenof(compressions) + 1; i++) {
3483 const struct ssh_compress *c =
3484 i == 0 ? preferred_comp : compressions[i - 1];
3485 ssh2_pkt_addstring_str(c->name);
3486 if (i < lenof(compressions))
3487 ssh2_pkt_addstring_str(",");
3488 }
3489 /* List client->server languages. Empty list. */
3490 ssh2_pkt_addstring_start();
3491 /* List server->client languages. Empty list. */
3492 ssh2_pkt_addstring_start();
3493 /* First KEX packet does _not_ follow, because we're not that brave. */
3494 ssh2_pkt_addbool(FALSE);
3495 /* Reserved. */
3496 ssh2_pkt_adduint32(0);
3497
3498 exhash = exhashbase;
3499 sha_string(&exhash, pktout.data + 5, pktout.length - 5);
3500
3501 ssh2_pkt_send();
3502
3503 if (!ispkt)
3504 crWaitUntil(ispkt);
3505 sha_string(&exhash, pktin.data + 5, pktin.length - 5);
3506
3507 /*
3508 * Now examine the other side's KEXINIT to see what we're up
3509 * to.
3510 */
3511 if (pktin.type != SSH2_MSG_KEXINIT) {
3512 bombout(("expected key exchange packet from server"));
3513 crReturn(0);
3514 }
3515 kex = NULL;
3516 hostkey = NULL;
3517 cscipher_tobe = NULL;
3518 sccipher_tobe = NULL;
3519 csmac_tobe = NULL;
3520 scmac_tobe = NULL;
3521 cscomp_tobe = NULL;
3522 sccomp_tobe = NULL;
3523 pktin.savedpos += 16; /* skip garbage cookie */
3524 ssh2_pkt_getstring(&str, &len); /* key exchange algorithms */
3525 for (i = 0; i < lenof(kex_algs); i++) {
3526 if (in_commasep_string(kex_algs[i]->name, str, len)) {
3527 kex = kex_algs[i];
3528 break;
3529 }
3530 }
3531 ssh2_pkt_getstring(&str, &len); /* host key algorithms */
3532 for (i = 0; i < lenof(hostkey_algs); i++) {
3533 if (in_commasep_string(hostkey_algs[i]->name, str, len)) {
3534 hostkey = hostkey_algs[i];
3535 break;
3536 }
3537 }
3538 ssh2_pkt_getstring(&str, &len); /* client->server cipher */
3539 warn = 0;
3540 for (i = 0; i < n_preferred_ciphers; i++) {
3541 const struct ssh2_ciphers *c = preferred_ciphers[i];
3542 if (!c) {
3543 warn = 1;
3544 } else {
3545 for (j = 0; j < c->nciphers; j++) {
3546 if (in_commasep_string(c->list[j]->name, str, len)) {
3547 cscipher_tobe = c->list[j];
3548 break;
3549 }
3550 }
3551 }
3552 if (cscipher_tobe) {
3553 if (warn)
3554 askcipher(cscipher_tobe->name, 1);
3555 break;
3556 }
3557 }
3558 if (!cscipher_tobe) {
3559 bombout(("Couldn't agree a client-to-server cipher (available: %s)", str));
3560 crReturn(0);
3561 }
3562
3563 ssh2_pkt_getstring(&str, &len); /* server->client cipher */
3564 warn = 0;
3565 for (i = 0; i < n_preferred_ciphers; i++) {
3566 const struct ssh2_ciphers *c = preferred_ciphers[i];
3567 if (!c) {
3568 warn = 1;
3569 } else {
3570 for (j = 0; j < c->nciphers; j++) {
3571 if (in_commasep_string(c->list[j]->name, str, len)) {
3572 sccipher_tobe = c->list[j];
3573 break;
3574 }
3575 }
3576 }
3577 if (sccipher_tobe) {
3578 if (warn)
3579 askcipher(sccipher_tobe->name, 2);
3580 break;
3581 }
3582 }
3583 if (!sccipher_tobe) {
3584 bombout(("Couldn't agree a server-to-client cipher (available: %s)", str));
3585 crReturn(0);
3586 }
3587
3588 ssh2_pkt_getstring(&str, &len); /* client->server mac */
3589 for (i = 0; i < nmacs; i++) {
3590 if (in_commasep_string(maclist[i]->name, str, len)) {
3591 csmac_tobe = maclist[i];
3592 break;
3593 }
3594 }
3595 ssh2_pkt_getstring(&str, &len); /* server->client mac */
3596 for (i = 0; i < nmacs; i++) {
3597 if (in_commasep_string(maclist[i]->name, str, len)) {
3598 scmac_tobe = maclist[i];
3599 break;
3600 }
3601 }
3602 ssh2_pkt_getstring(&str, &len); /* client->server compression */
3603 for (i = 0; i < lenof(compressions) + 1; i++) {
3604 const struct ssh_compress *c =
3605 i == 0 ? preferred_comp : compressions[i - 1];
3606 if (in_commasep_string(c->name, str, len)) {
3607 cscomp_tobe = c;
3608 break;
3609 }
3610 }
3611 ssh2_pkt_getstring(&str, &len); /* server->client compression */
3612 for (i = 0; i < lenof(compressions) + 1; i++) {
3613 const struct ssh_compress *c =
3614 i == 0 ? preferred_comp : compressions[i - 1];
3615 if (in_commasep_string(c->name, str, len)) {
3616 sccomp_tobe = c;
3617 break;
3618 }
3619 }
3620
3621 /*
3622 * Work out the number of bits of key we will need from the key
3623 * exchange. We start with the maximum key length of either
3624 * cipher...
3625 */
3626 {
3627 int csbits, scbits;
3628
3629 csbits = cscipher_tobe->keylen;
3630 scbits = sccipher_tobe->keylen;
3631 nbits = (csbits > scbits ? csbits : scbits);
3632 }
3633 /* The keys only have 160-bit entropy, since they're based on
3634 * a SHA-1 hash. So cap the key size at 160 bits. */
3635 if (nbits > 160)
3636 nbits = 160;
3637
3638 /*
3639 * If we're doing Diffie-Hellman group exchange, start by
3640 * requesting a group.
3641 */
3642 if (kex == &ssh_diffiehellman_gex) {
3643 logevent("Doing Diffie-Hellman group exchange");
3644 ssh_pkt_ctx |= SSH2_PKTCTX_DHGEX;
3645 /*
3646 * Work out how big a DH group we will need to allow that
3647 * much data.
3648 */
3649 pbits = 512 << ((nbits - 1) / 64);
3650 ssh2_pkt_init(SSH2_MSG_KEX_DH_GEX_REQUEST);
3651 ssh2_pkt_adduint32(pbits);
3652 ssh2_pkt_send();
3653
3654 crWaitUntil(ispkt);
3655 if (pktin.type != SSH2_MSG_KEX_DH_GEX_GROUP) {
3656 bombout(("expected key exchange group packet from server"));
3657 crReturn(0);
3658 }
3659 p = ssh2_pkt_getmp();
3660 g = ssh2_pkt_getmp();
3661 dh_setup_group(p, g);
3662 kex_init_value = SSH2_MSG_KEX_DH_GEX_INIT;
3663 kex_reply_value = SSH2_MSG_KEX_DH_GEX_REPLY;
3664 } else {
3665 ssh_pkt_ctx |= SSH2_PKTCTX_DHGROUP1;
3666 dh_setup_group1();
3667 kex_init_value = SSH2_MSG_KEXDH_INIT;
3668 kex_reply_value = SSH2_MSG_KEXDH_REPLY;
3669 }
3670
3671 logevent("Doing Diffie-Hellman key exchange");
3672 /*
3673 * Now generate and send e for Diffie-Hellman.
3674 */
3675 e = dh_create_e(nbits * 2);
3676 ssh2_pkt_init(kex_init_value);
3677 ssh2_pkt_addmp(e);
3678 ssh2_pkt_send();
3679
3680 crWaitUntil(ispkt);
3681 if (pktin.type != kex_reply_value) {
3682 bombout(("expected key exchange reply packet from server"));
3683 crReturn(0);
3684 }
3685 ssh2_pkt_getstring(&hostkeydata, &hostkeylen);
3686 f = ssh2_pkt_getmp();
3687 ssh2_pkt_getstring(&sigdata, &siglen);
3688
3689 K = dh_find_K(f);
3690
3691 sha_string(&exhash, hostkeydata, hostkeylen);
3692 if (kex == &ssh_diffiehellman_gex) {
3693 sha_uint32(&exhash, pbits);
3694 sha_mpint(&exhash, p);
3695 sha_mpint(&exhash, g);
3696 }
3697 sha_mpint(&exhash, e);
3698 sha_mpint(&exhash, f);
3699 sha_mpint(&exhash, K);
3700 SHA_Final(&exhash, exchange_hash);
3701
3702 dh_cleanup();
3703
3704 #if 0
3705 debug(("Exchange hash is:\n"));
3706 dmemdump(exchange_hash, 20);
3707 #endif
3708
3709 hkey = hostkey->newkey(hostkeydata, hostkeylen);
3710 if (!hkey ||
3711 !hostkey->verifysig(hkey, sigdata, siglen, exchange_hash, 20)) {
3712 bombout(("Server's host key did not match the signature supplied"));
3713 crReturn(0);
3714 }
3715
3716 /*
3717 * Authenticate remote host: verify host key. (We've already
3718 * checked the signature of the exchange hash.)
3719 */
3720 keystr = hostkey->fmtkey(hkey);
3721 fingerprint = hostkey->fingerprint(hkey);
3722 verify_ssh_host_key(savedhost, savedport, hostkey->keytype,
3723 keystr, fingerprint);
3724 if (first_kex) { /* don't bother logging this in rekeys */
3725 logevent("Host key fingerprint is:");
3726 logevent(fingerprint);
3727 }
3728 sfree(fingerprint);
3729 sfree(keystr);
3730 hostkey->freekey(hkey);
3731
3732 /*
3733 * Send SSH2_MSG_NEWKEYS.
3734 */
3735 ssh2_pkt_init(SSH2_MSG_NEWKEYS);
3736 ssh2_pkt_send();
3737
3738 /*
3739 * Expect SSH2_MSG_NEWKEYS from server.
3740 */
3741 crWaitUntil(ispkt);
3742 if (pktin.type != SSH2_MSG_NEWKEYS) {
3743 bombout(("expected new-keys packet from server"));
3744 crReturn(0);
3745 }
3746
3747 /*
3748 * Create and initialise session keys.
3749 */
3750 cscipher = cscipher_tobe;
3751 sccipher = sccipher_tobe;
3752 csmac = csmac_tobe;
3753 scmac = scmac_tobe;
3754 cscomp = cscomp_tobe;
3755 sccomp = sccomp_tobe;
3756 cscomp->compress_init();
3757 sccomp->decompress_init();
3758 /*
3759 * Set IVs after keys. Here we use the exchange hash from the
3760 * _first_ key exchange.
3761 */
3762 if (first_kex)
3763 memcpy(ssh2_session_id, exchange_hash, sizeof(exchange_hash));
3764 ssh2_mkkey(K, exchange_hash, ssh2_session_id, 'C', keyspace);
3765 cscipher->setcskey(keyspace);
3766 ssh2_mkkey(K, exchange_hash, ssh2_session_id, 'D', keyspace);
3767 sccipher->setsckey(keyspace);
3768 ssh2_mkkey(K, exchange_hash, ssh2_session_id, 'A', keyspace);
3769 cscipher->setcsiv(keyspace);
3770 ssh2_mkkey(K, exchange_hash, ssh2_session_id, 'B', keyspace);
3771 sccipher->setsciv(keyspace);
3772 ssh2_mkkey(K, exchange_hash, ssh2_session_id, 'E', keyspace);
3773 csmac->setcskey(keyspace);
3774 ssh2_mkkey(K, exchange_hash, ssh2_session_id, 'F', keyspace);
3775 scmac->setsckey(keyspace);
3776
3777 /*
3778 * If this is the first key exchange phase, we must pass the
3779 * SSH2_MSG_NEWKEYS packet to the next layer, not because it
3780 * wants to see it but because it will need time to initialise
3781 * itself before it sees an actual packet. In subsequent key
3782 * exchange phases, we don't pass SSH2_MSG_NEWKEYS on, because
3783 * it would only confuse the layer above.
3784 */
3785 if (!first_kex) {
3786 crReturn(0);
3787 }
3788 first_kex = 0;
3789
3790 /*
3791 * Now we're encrypting. Begin returning 1 to the protocol main
3792 * function so that other things can run on top of the
3793 * transport. If we ever see a KEXINIT, we must go back to the
3794 * start.
3795 */
3796 while (!(ispkt && pktin.type == SSH2_MSG_KEXINIT)) {
3797 crReturn(1);
3798 }
3799 logevent("Server initiated key re-exchange");
3800 goto begin_key_exchange;
3801
3802 crFinish(1);
3803 }
3804
3805 /*
3806 * Add data to an SSH2 channel output buffer.
3807 */
3808 static void ssh2_add_channel_data(struct ssh_channel *c, char *buf,
3809 int len)
3810 {
3811 bufchain_add(&c->v.v2.outbuffer, buf, len);
3812 }
3813
3814 /*
3815 * Attempt to send data on an SSH2 channel.
3816 */
3817 static int ssh2_try_send(struct ssh_channel *c)
3818 {
3819 while (c->v.v2.remwindow > 0 && bufchain_size(&c->v.v2.outbuffer) > 0) {
3820 int len;
3821 void *data;
3822 bufchain_prefix(&c->v.v2.outbuffer, &data, &len);
3823 if ((unsigned)len > c->v.v2.remwindow)
3824 len = c->v.v2.remwindow;
3825 if ((unsigned)len > c->v.v2.remmaxpkt)
3826 len = c->v.v2.remmaxpkt;
3827 ssh2_pkt_init(SSH2_MSG_CHANNEL_DATA);
3828 ssh2_pkt_adduint32(c->remoteid);
3829 ssh2_pkt_addstring_start();
3830 ssh2_pkt_addstring_data(data, len);
3831 ssh2_pkt_send();
3832 bufchain_consume(&c->v.v2.outbuffer, len);
3833 c->v.v2.remwindow -= len;
3834 }
3835
3836 /*
3837 * After having sent as much data as we can, return the amount
3838 * still buffered.
3839 */
3840 return bufchain_size(&c->v.v2.outbuffer);
3841 }
3842
3843 /*
3844 * Potentially enlarge the window on an SSH2 channel.
3845 */
3846 static void ssh2_set_window(struct ssh_channel *c, unsigned newwin)
3847 {
3848 /*
3849 * Never send WINDOW_ADJUST for a channel that the remote side
3850 * already thinks it's closed; there's no point, since it won't
3851 * be sending any more data anyway.
3852 */
3853 if (c->closes != 0)
3854 return;
3855
3856 if (newwin > c->v.v2.locwindow) {
3857 ssh2_pkt_init(SSH2_MSG_CHANNEL_WINDOW_ADJUST);
3858 ssh2_pkt_adduint32(c->remoteid);
3859 ssh2_pkt_adduint32(newwin - c->v.v2.locwindow);
3860 ssh2_pkt_send();
3861 c->v.v2.locwindow = newwin;
3862 }
3863 }
3864
3865 /*
3866 * Handle the SSH2 userauth and connection layers.
3867 */
3868 static void do_ssh2_authconn(unsigned char *in, int inlen, int ispkt)
3869 {
3870 static enum {
3871 AUTH_INVALID, AUTH_PUBLICKEY_AGENT, AUTH_PUBLICKEY_FILE,
3872 AUTH_PASSWORD,
3873 AUTH_KEYBOARD_INTERACTIVE
3874 } method;
3875 static enum {
3876 AUTH_TYPE_NONE,
3877 AUTH_TYPE_PUBLICKEY,
3878 AUTH_TYPE_PUBLICKEY_OFFER_LOUD,
3879 AUTH_TYPE_PUBLICKEY_OFFER_QUIET,
3880 AUTH_TYPE_PASSWORD,
3881 AUTH_TYPE_KEYBOARD_INTERACTIVE,
3882 AUTH_TYPE_KEYBOARD_INTERACTIVE_QUIET
3883 } type;
3884 static int gotit, need_pw, can_pubkey, can_passwd, can_keyb_inter;
3885 static int tried_pubkey_config, tried_agent, tried_keyb_inter;
3886 static int kbd_inter_running;
3887 static int we_are_in;
3888 static int num_prompts, echo;
3889 static char username[100];
3890 static int got_username;
3891 static char pwprompt[200];
3892 static char password[100];
3893 static void *publickey_blob;
3894 static int publickey_bloblen;
3895
3896 crBegin;
3897
3898 /*
3899 * Request userauth protocol, and await a response to it.
3900 */
3901 ssh2_pkt_init(SSH2_MSG_SERVICE_REQUEST);
3902 ssh2_pkt_addstring("ssh-userauth");
3903 ssh2_pkt_send();
3904 crWaitUntilV(ispkt);
3905 if (pktin.type != SSH2_MSG_SERVICE_ACCEPT) {
3906 bombout(("Server refused user authentication protocol"));
3907 crReturnV;
3908 }
3909
3910 /*
3911 * We repeat this whole loop, including the username prompt,
3912 * until we manage a successful authentication. If the user
3913 * types the wrong _password_, they are sent back to the
3914 * beginning to try another username. (If they specify a
3915 * username in the config, they are never asked, even if they
3916 * do give a wrong password.)
3917 *
3918 * I think this best serves the needs of
3919 *
3920 * - the people who have no configuration, no keys, and just
3921 * want to try repeated (username,password) pairs until they
3922 * type both correctly
3923 *
3924 * - people who have keys and configuration but occasionally
3925 * need to fall back to passwords
3926 *
3927 * - people with a key held in Pageant, who might not have
3928 * logged in to a particular machine before; so they want to
3929 * type a username, and then _either_ their key will be
3930 * accepted, _or_ they will type a password. If they mistype
3931 * the username they will want to be able to get back and
3932 * retype it!
3933 */
3934 username[0] = '\0';
3935 got_username = FALSE;
3936 do {
3937 static int pos;
3938 static char c;
3939
3940 /*
3941 * Get a username.
3942 */
3943 pos = 0;
3944 if (got_username && !cfg.change_username) {
3945 /*
3946 * We got a username last time round this loop, and
3947 * with change_username turned off we don't try to get
3948 * it again.
3949 */
3950 } else if ((flags & FLAG_INTERACTIVE) && !*cfg.username) {
3951 if (ssh_get_line) {
3952 if (!ssh_get_line("login as: ",
3953 username, sizeof(username), FALSE)) {
3954 /*
3955 * get_line failed to get a username.
3956 * Terminate.
3957 */
3958 logevent("No username provided. Abandoning session.");
3959 ssh_state = SSH_STATE_CLOSED;
3960 crReturnV;
3961 }
3962 } else {
3963 c_write_str("login as: ");
3964 ssh_send_ok = 1;
3965 while (pos >= 0) {
3966 crWaitUntilV(!ispkt);
3967 while (inlen--)
3968 switch (c = *in++) {
3969 case 10:
3970 case 13:
3971 username[pos] = 0;
3972 pos = -1;
3973 break;
3974 case 8:
3975 case 127:
3976 if (pos > 0) {
3977 c_write_str("\b \b");
3978 pos--;
3979 }
3980 break;
3981 case 21:
3982 case 27:
3983 while (pos > 0) {
3984 c_write_str("\b \b");
3985 pos--;
3986 }
3987 break;
3988 case 3:
3989 case 4:
3990 cleanup_exit(0);
3991 break;
3992 default:
3993 if (((c >= ' ' && c <= '~') ||
3994 ((unsigned char) c >= 160))
3995 && pos < sizeof(username)-1) {
3996 username[pos++] = c;
3997 c_write(&c, 1);
3998 }
3999 break;
4000 }
4001 }
4002 }
4003 c_write_str("\r\n");
4004 username[strcspn(username, "\n\r")] = '\0';
4005 } else {
4006 char stuff[200];
4007 strncpy(username, cfg.username, 99);
4008 username[99] = '\0';
4009 if ((flags & FLAG_VERBOSE) || (flags & FLAG_INTERACTIVE)) {
4010 sprintf(stuff, "Using username \"%s\".\r\n", username);
4011 c_write_str(stuff);
4012 }
4013 }
4014 got_username = TRUE;
4015
4016 /*
4017 * Send an authentication request using method "none": (a)
4018 * just in case it succeeds, and (b) so that we know what
4019 * authentication methods we can usefully try next.
4020 */
4021 ssh_pkt_ctx &= ~SSH2_PKTCTX_AUTH_MASK;
4022
4023 ssh2_pkt_init(SSH2_MSG_USERAUTH_REQUEST);
4024 ssh2_pkt_addstring(username);
4025 ssh2_pkt_addstring("ssh-connection"); /* service requested */
4026 ssh2_pkt_addstring("none"); /* method */
4027 ssh2_pkt_send();
4028 type = AUTH_TYPE_NONE;
4029 gotit = FALSE;
4030 we_are_in = FALSE;
4031
4032 tried_pubkey_config = FALSE;
4033 tried_agent = FALSE;
4034 tried_keyb_inter = FALSE;
4035 kbd_inter_running = FALSE;
4036 /* Load the pub half of cfg.keyfile so we notice if it's in Pageant */
4037 if (*cfg.keyfile) {
4038 publickey_blob = ssh2_userkey_loadpub(cfg.keyfile, NULL,
4039 &publickey_bloblen);
4040 } else
4041 publickey_blob = NULL;
4042
4043 while (1) {
4044 /*
4045 * Wait for the result of the last authentication request.
4046 */
4047 if (!gotit)
4048 crWaitUntilV(ispkt);
4049 while (pktin.type == SSH2_MSG_USERAUTH_BANNER) {
4050 char *banner;
4051 int size;
4052 /*
4053 * Don't show the banner if we're operating in
4054 * non-verbose non-interactive mode. (It's probably
4055 * a script, which means nobody will read the
4056 * banner _anyway_, and moreover the printing of
4057 * the banner will screw up processing on the
4058 * output of (say) plink.)
4059 */
4060 if (flags & (FLAG_VERBOSE | FLAG_INTERACTIVE)) {
4061 ssh2_pkt_getstring(&banner, &size);
4062 if (banner)
4063 c_write_untrusted(banner, size);
4064 }
4065 crWaitUntilV(ispkt);
4066 }
4067 if (pktin.type == SSH2_MSG_USERAUTH_SUCCESS) {
4068 logevent("Access granted");
4069 we_are_in = TRUE;
4070 break;
4071 }
4072
4073 if (kbd_inter_running &&
4074 pktin.type == SSH2_MSG_USERAUTH_INFO_REQUEST) {
4075 /*
4076 * This is a further prompt in keyboard-interactive
4077 * authentication. Do nothing.
4078 */
4079 } else if (pktin.type != SSH2_MSG_USERAUTH_FAILURE) {
4080 bombout(("Strange packet received during authentication: type %d",
4081 pktin.type));
4082 crReturnV;
4083 }
4084
4085 gotit = FALSE;
4086
4087 /*
4088 * OK, we're now sitting on a USERAUTH_FAILURE message, so
4089 * we can look at the string in it and know what we can
4090 * helpfully try next.
4091 */
4092 if (pktin.type == SSH2_MSG_USERAUTH_FAILURE) {
4093 char *methods;
4094 int methlen;
4095 ssh2_pkt_getstring(&methods, &methlen);
4096 kbd_inter_running = FALSE;
4097 if (!ssh2_pkt_getbool()) {
4098 /*
4099 * We have received an unequivocal Access
4100 * Denied. This can translate to a variety of
4101 * messages:
4102 *
4103 * - if we'd just tried "none" authentication,
4104 * it's not worth printing anything at all
4105 *
4106 * - if we'd just tried a public key _offer_,
4107 * the message should be "Server refused our
4108 * key" (or no message at all if the key
4109 * came from Pageant)
4110 *
4111 * - if we'd just tried anything else, the
4112 * message really should be "Access denied".
4113 *
4114 * Additionally, if we'd just tried password
4115 * authentication, we should break out of this
4116 * whole loop so as to go back to the username
4117 * prompt.
4118 */
4119 if (type == AUTH_TYPE_NONE) {
4120 /* do nothing */
4121 } else if (type == AUTH_TYPE_PUBLICKEY_OFFER_LOUD ||
4122 type == AUTH_TYPE_PUBLICKEY_OFFER_QUIET) {
4123 if (type == AUTH_TYPE_PUBLICKEY_OFFER_LOUD)
4124 c_write_str("Server refused our key\r\n");
4125 logevent("Server refused public key");
4126 } else if (type == AUTH_TYPE_KEYBOARD_INTERACTIVE_QUIET) {
4127 /* server declined keyboard-interactive; ignore */
4128 } else {
4129 c_write_str("Access denied\r\n");
4130 logevent("Access denied");
4131 if (type == AUTH_TYPE_PASSWORD) {
4132 we_are_in = FALSE;
4133 break;
4134 }
4135 }
4136 } else {
4137 c_write_str("Further authentication required\r\n");
4138 logevent("Further authentication required");
4139 }
4140
4141 can_pubkey =
4142 in_commasep_string("publickey", methods, methlen);
4143 can_passwd =
4144 in_commasep_string("password", methods, methlen);
4145 can_keyb_inter = cfg.try_ki_auth &&
4146 in_commasep_string("keyboard-interactive", methods, methlen);
4147 }
4148
4149 method = 0;
4150 ssh_pkt_ctx &= ~SSH2_PKTCTX_AUTH_MASK;
4151
4152 if (!method && can_pubkey && agent_exists() && !tried_agent) {
4153 /*
4154 * Attempt public-key authentication using Pageant.
4155 */
4156 static unsigned char request[5], *response, *p;
4157 static int responselen;
4158 static int i, nkeys;
4159 static int authed = FALSE;
4160 void *r;
4161
4162 ssh_pkt_ctx |= SSH2_PKTCTX_PUBLICKEY;
4163
4164 tried_agent = TRUE;
4165
4166 logevent("Pageant is running. Requesting keys.");
4167
4168 /* Request the keys held by the agent. */
4169 PUT_32BIT(request, 1);
4170 request[4] = SSH2_AGENTC_REQUEST_IDENTITIES;
4171 agent_query(request, 5, &r, &responselen);
4172 response = (unsigned char *) r;
4173 if (response && responselen >= 5 &&
4174 response[4] == SSH2_AGENT_IDENTITIES_ANSWER) {
4175 p = response + 5;
4176 nkeys = GET_32BIT(p);
4177 p += 4;
4178 {
4179 char buf[64];
4180 sprintf(buf, "Pageant has %d SSH2 keys", nkeys);
4181 logevent(buf);
4182 }
4183 for (i = 0; i < nkeys; i++) {
4184 static char *pkblob, *alg, *commentp;
4185 static int pklen, alglen, commentlen;
4186 static int siglen, retlen, len;
4187 static char *q, *agentreq, *ret;
4188 void *vret;
4189
4190 {
4191 char buf[64];
4192 sprintf(buf, "Trying Pageant key #%d", i);
4193 logevent(buf);
4194 }
4195 pklen = GET_32BIT(p);
4196 p += 4;
4197 if (publickey_blob &&
4198 pklen == publickey_bloblen &&
4199 !memcmp(p, publickey_blob, publickey_bloblen)) {
4200 logevent("This key matches configured key file");
4201 tried_pubkey_config = 1;
4202 }
4203 pkblob = p;
4204 p += pklen;
4205 alglen = GET_32BIT(pkblob);
4206 alg = pkblob + 4;
4207 commentlen = GET_32BIT(p);
4208 p += 4;
4209 commentp = p;
4210 p += commentlen;
4211 ssh2_pkt_init(SSH2_MSG_USERAUTH_REQUEST);
4212 ssh2_pkt_addstring(username);
4213 ssh2_pkt_addstring("ssh-connection"); /* service requested */
4214 ssh2_pkt_addstring("publickey"); /* method */
4215 ssh2_pkt_addbool(FALSE); /* no signature included */
4216 ssh2_pkt_addstring_start();
4217 ssh2_pkt_addstring_data(alg, alglen);
4218 ssh2_pkt_addstring_start();
4219 ssh2_pkt_addstring_data(pkblob, pklen);
4220 ssh2_pkt_send();
4221
4222 crWaitUntilV(ispkt);
4223 if (pktin.type != SSH2_MSG_USERAUTH_PK_OK) {
4224 logevent("Key refused");
4225 continue;
4226 }
4227
4228 if (flags & FLAG_VERBOSE) {
4229 c_write_str
4230 ("Authenticating with public key \"");
4231 c_write(commentp, commentlen);
4232 c_write_str("\" from agent\r\n");
4233 }
4234
4235 /*
4236 * Server is willing to accept the key.
4237 * Construct a SIGN_REQUEST.
4238 */
4239 ssh2_pkt_init(SSH2_MSG_USERAUTH_REQUEST);
4240 ssh2_pkt_addstring(username);
4241 ssh2_pkt_addstring("ssh-connection"); /* service requested */
4242 ssh2_pkt_addstring("publickey"); /* method */
4243 ssh2_pkt_addbool(TRUE);
4244 ssh2_pkt_addstring_start();
4245 ssh2_pkt_addstring_data(alg, alglen);
4246 ssh2_pkt_addstring_start();
4247 ssh2_pkt_addstring_data(pkblob, pklen);
4248
4249 siglen = pktout.length - 5 + 4 + 20;
4250 len = 1; /* message type */
4251 len += 4 + pklen; /* key blob */
4252 len += 4 + siglen; /* data to sign */
4253 len += 4; /* flags */
4254 agentreq = smalloc(4 + len);
4255 PUT_32BIT(agentreq, len);
4256 q = agentreq + 4;
4257 *q++ = SSH2_AGENTC_SIGN_REQUEST;
4258 PUT_32BIT(q, pklen);
4259 q += 4;
4260 memcpy(q, pkblob, pklen);
4261 q += pklen;
4262 PUT_32BIT(q, siglen);
4263 q += 4;
4264 /* Now the data to be signed... */
4265 PUT_32BIT(q, 20);
4266 q += 4;
4267 memcpy(q, ssh2_session_id, 20);
4268 q += 20;
4269 memcpy(q, pktout.data + 5, pktout.length - 5);
4270 q += pktout.length - 5;
4271 /* And finally the (zero) flags word. */
4272 PUT_32BIT(q, 0);
4273 agent_query(agentreq, len + 4, &vret, &retlen);
4274 ret = vret;
4275 sfree(agentreq);
4276 if (ret) {
4277 if (ret[4] == SSH2_AGENT_SIGN_RESPONSE) {
4278 logevent("Sending Pageant's response");
4279 ssh2_pkt_addstring_start();
4280 ssh2_pkt_addstring_data(ret + 9,
4281 GET_32BIT(ret +
4282 5));
4283 ssh2_pkt_send();
4284 authed = TRUE;
4285 break;
4286 } else {
4287 logevent
4288 ("Pageant failed to answer challenge");
4289 sfree(ret);
4290 }
4291 }
4292 }
4293 if (authed)
4294 continue;
4295 }
4296 }
4297
4298 if (!method && can_pubkey && *cfg.keyfile
4299 && !tried_pubkey_config) {
4300 unsigned char *pub_blob;
4301 char *algorithm, *comment;
4302 int pub_blob_len;
4303
4304 tried_pubkey_config = TRUE;
4305
4306 ssh_pkt_ctx |= SSH2_PKTCTX_PUBLICKEY;
4307
4308 /*
4309 * Try the public key supplied in the configuration.
4310 *
4311 * First, offer the public blob to see if the server is
4312 * willing to accept it.
4313 */
4314 pub_blob = ssh2_userkey_loadpub(cfg.keyfile, &algorithm,
4315 &pub_blob_len);
4316 if (pub_blob) {
4317 ssh2_pkt_init(SSH2_MSG_USERAUTH_REQUEST);
4318 ssh2_pkt_addstring(username);
4319 ssh2_pkt_addstring("ssh-connection"); /* service requested */
4320 ssh2_pkt_addstring("publickey"); /* method */
4321 ssh2_pkt_addbool(FALSE); /* no signature included */
4322 ssh2_pkt_addstring(algorithm);
4323 ssh2_pkt_addstring_start();
4324 ssh2_pkt_addstring_data(pub_blob, pub_blob_len);
4325 ssh2_pkt_send();
4326 logevent("Offered public key"); /* FIXME */
4327
4328 crWaitUntilV(ispkt);
4329 if (pktin.type != SSH2_MSG_USERAUTH_PK_OK) {
4330 gotit = TRUE;
4331 type = AUTH_TYPE_PUBLICKEY_OFFER_LOUD;
4332 continue; /* key refused; give up on it */
4333 }
4334
4335 logevent("Offer of public key accepted");
4336 /*
4337 * Actually attempt a serious authentication using
4338 * the key.
4339 */
4340 if (ssh2_userkey_encrypted(cfg.keyfile, &comment)) {
4341 sprintf(pwprompt,
4342 "Passphrase for key \"%.100s\": ",
4343 comment);
4344 need_pw = TRUE;
4345 } else {
4346 need_pw = FALSE;
4347 }
4348 c_write_str("Authenticating with public key \"");
4349 c_write_str(comment);
4350 c_write_str("\"\r\n");
4351 method = AUTH_PUBLICKEY_FILE;
4352 }
4353 }
4354
4355 if (!method && can_keyb_inter && !tried_keyb_inter) {
4356 method = AUTH_KEYBOARD_INTERACTIVE;
4357 type = AUTH_TYPE_KEYBOARD_INTERACTIVE;
4358 tried_keyb_inter = TRUE;
4359
4360 ssh_pkt_ctx |= SSH2_PKTCTX_KBDINTER;
4361
4362 ssh2_pkt_init(SSH2_MSG_USERAUTH_REQUEST);
4363 ssh2_pkt_addstring(username);
4364 ssh2_pkt_addstring("ssh-connection"); /* service requested */
4365 ssh2_pkt_addstring("keyboard-interactive"); /* method */
4366 ssh2_pkt_addstring(""); /* lang */
4367 ssh2_pkt_addstring("");
4368 ssh2_pkt_send();
4369
4370 crWaitUntilV(ispkt);
4371 if (pktin.type != SSH2_MSG_USERAUTH_INFO_REQUEST) {
4372 if (pktin.type == SSH2_MSG_USERAUTH_FAILURE)
4373 gotit = TRUE;
4374 logevent("Keyboard-interactive authentication refused");
4375 type = AUTH_TYPE_KEYBOARD_INTERACTIVE_QUIET;
4376 continue;
4377 }
4378
4379 kbd_inter_running = TRUE;
4380 }
4381
4382 if (kbd_inter_running) {
4383 method = AUTH_KEYBOARD_INTERACTIVE;
4384 type = AUTH_TYPE_KEYBOARD_INTERACTIVE;
4385 tried_keyb_inter = TRUE;
4386
4387 ssh_pkt_ctx |= SSH2_PKTCTX_KBDINTER;
4388
4389 /* We've got packet with that "interactive" info
4390 dump banners, and set its prompt as ours */
4391 {
4392 char *name, *inst, *lang, *prompt;
4393 int name_len, inst_len, lang_len, prompt_len;
4394 ssh2_pkt_getstring(&name, &name_len);
4395 ssh2_pkt_getstring(&inst, &inst_len);
4396 ssh2_pkt_getstring(&lang, &lang_len);
4397 if (name_len > 0)
4398 c_write_untrusted(name, name_len);
4399 if (inst_len > 0)
4400 c_write_untrusted(inst, inst_len);
4401 num_prompts = ssh2_pkt_getuint32();
4402
4403 ssh2_pkt_getstring(&prompt, &prompt_len);
4404 strncpy(pwprompt, prompt, sizeof(pwprompt));
4405 pwprompt[prompt_len < sizeof(pwprompt) ?
4406 prompt_len : sizeof(pwprompt)-1] = '\0';
4407 need_pw = TRUE;
4408
4409 echo = ssh2_pkt_getbool();
4410 }
4411 }
4412
4413 if (!method && can_passwd) {
4414 method = AUTH_PASSWORD;
4415 ssh_pkt_ctx |= SSH2_PKTCTX_PASSWORD;
4416 sprintf(pwprompt, "%.90s@%.90s's password: ", username,
4417 savedhost);
4418 need_pw = TRUE;
4419 }
4420
4421 if (need_pw) {
4422 if (ssh_get_line) {
4423 if (!ssh_get_line(pwprompt, password,
4424 sizeof(password), TRUE)) {
4425 /*
4426 * get_line failed to get a password (for
4427 * example because one was supplied on the
4428 * command line which has already failed to
4429 * work). Terminate.
4430 */
4431 ssh2_pkt_init(SSH2_MSG_DISCONNECT);
4432 ssh2_pkt_adduint32(SSH2_DISCONNECT_BY_APPLICATION);
4433 ssh2_pkt_addstring
4434 ("No more passwords available to try");
4435 ssh2_pkt_addstring("en"); /* language tag */
4436 ssh2_pkt_send();
4437 logevent("Unable to authenticate");
4438 connection_fatal("Unable to authenticate");
4439 ssh_state = SSH_STATE_CLOSED;
4440 crReturnV;
4441 }
4442 } else {
4443 static int pos = 0;
4444 static char c;
4445
4446 c_write_untrusted(pwprompt, strlen(pwprompt));
4447 ssh_send_ok = 1;
4448
4449 pos = 0;
4450 while (pos >= 0) {
4451 crWaitUntilV(!ispkt);
4452 while (inlen--)
4453 switch (c = *in++) {
4454 case 10:
4455 case 13:
4456 password[pos] = 0;
4457 pos = -1;
4458 break;
4459 case 8:
4460 case 127:
4461 if (pos > 0)
4462 pos--;
4463 break;
4464 case 21:
4465 case 27:
4466 pos = 0;
4467 break;
4468 case 3:
4469 case 4:
4470 cleanup_exit(0);
4471 break;
4472 default:
4473 if (pos < sizeof(password)-1)
4474 password[pos++] = c;
4475 break;
4476 }
4477 }
4478 c_write_str("\r\n");
4479 }
4480 }
4481
4482 if (method == AUTH_PUBLICKEY_FILE) {
4483 /*
4484 * We have our passphrase. Now try the actual authentication.
4485 */
4486 struct ssh2_userkey *key;
4487
4488 key = ssh2_load_userkey(cfg.keyfile, password);
4489 if (key == SSH2_WRONG_PASSPHRASE || key == NULL) {
4490 if (key == SSH2_WRONG_PASSPHRASE) {
4491 c_write_str("Wrong passphrase\r\n");
4492 tried_pubkey_config = FALSE;
4493 } else {
4494 c_write_str("Unable to load private key\r\n");
4495 tried_pubkey_config = TRUE;
4496 }
4497 /* Send a spurious AUTH_NONE to return to the top. */
4498 ssh2_pkt_init(SSH2_MSG_USERAUTH_REQUEST);
4499 ssh2_pkt_addstring(username);
4500 ssh2_pkt_addstring("ssh-connection"); /* service requested */
4501 ssh2_pkt_addstring("none"); /* method */
4502 ssh2_pkt_send();
4503 type = AUTH_TYPE_NONE;
4504 } else {
4505 unsigned char *blob, *sigdata;
4506 int blob_len, sigdata_len;
4507
4508 /*
4509 * We have loaded the private key and the server
4510 * has announced that it's willing to accept it.
4511 * Hallelujah. Generate a signature and send it.
4512 */
4513 ssh2_pkt_init(SSH2_MSG_USERAUTH_REQUEST);
4514 ssh2_pkt_addstring(username);
4515 ssh2_pkt_addstring("ssh-connection"); /* service requested */
4516 ssh2_pkt_addstring("publickey"); /* method */
4517 ssh2_pkt_addbool(TRUE);
4518 ssh2_pkt_addstring(key->alg->name);
4519 blob = key->alg->public_blob(key->data, &blob_len);
4520 ssh2_pkt_addstring_start();
4521 ssh2_pkt_addstring_data(blob, blob_len);
4522 sfree(blob);
4523
4524 /*
4525 * The data to be signed is:
4526 *
4527 * string session-id
4528 *
4529 * followed by everything so far placed in the
4530 * outgoing packet.
4531 */
4532 sigdata_len = pktout.length - 5 + 4 + 20;
4533 sigdata = smalloc(sigdata_len);
4534 PUT_32BIT(sigdata, 20);
4535 memcpy(sigdata + 4, ssh2_session_id, 20);
4536 memcpy(sigdata + 24, pktout.data + 5,
4537 pktout.length - 5);
4538 blob =
4539 key->alg->sign(key->data, sigdata, sigdata_len,
4540 &blob_len);
4541 ssh2_pkt_addstring_start();
4542 ssh2_pkt_addstring_data(blob, blob_len);
4543 sfree(blob);
4544 sfree(sigdata);
4545
4546 ssh2_pkt_send();
4547 type = AUTH_TYPE_PUBLICKEY;
4548 }
4549 } else if (method == AUTH_PASSWORD) {
4550 /*
4551 * We send the password packet lumped tightly together with
4552 * an SSH_MSG_IGNORE packet. The IGNORE packet contains a
4553 * string long enough to make the total length of the two
4554 * packets constant. This should ensure that a passive
4555 * listener doing traffic analyis can't work out the length
4556 * of the password.
4557 *
4558 * For this to work, we need an assumption about the
4559 * maximum length of the password packet. I think 256 is
4560 * pretty conservative. Anyone using a password longer than
4561 * that probably doesn't have much to worry about from
4562 * people who find out how long their password is!
4563 */
4564 ssh2_pkt_init(SSH2_MSG_USERAUTH_REQUEST);
4565 ssh2_pkt_addstring(username);
4566 ssh2_pkt_addstring("ssh-connection"); /* service requested */
4567 ssh2_pkt_addstring("password");
4568 ssh2_pkt_addbool(FALSE);
4569 ssh2_pkt_addstring(password);
4570 ssh2_pkt_defer();
4571 /*
4572 * We'll include a string that's an exact multiple of the
4573 * cipher block size. If the cipher is NULL for some
4574 * reason, we don't do this trick at all because we gain
4575 * nothing by it.
4576 */
4577 if (cscipher) {
4578 int stringlen, i;
4579
4580 stringlen = (256 - deferred_len);
4581 stringlen += cscipher->blksize - 1;
4582 stringlen -= (stringlen % cscipher->blksize);
4583 if (cscomp) {
4584 /*
4585 * Temporarily disable actual compression,
4586 * so we can guarantee to get this string
4587 * exactly the length we want it. The
4588 * compression-disabling routine should
4589 * return an integer indicating how many
4590 * bytes we should adjust our string length
4591 * by.
4592 */
4593 stringlen -= cscomp->disable_compression();
4594 }
4595 ssh2_pkt_init(SSH2_MSG_IGNORE);
4596 ssh2_pkt_addstring_start();
4597 for (i = 0; i < stringlen; i++) {
4598 char c = (char) random_byte();
4599 ssh2_pkt_addstring_data(&c, 1);
4600 }
4601 ssh2_pkt_defer();
4602 }
4603 ssh_pkt_defersend();
4604 logevent("Sent password");
4605 type = AUTH_TYPE_PASSWORD;
4606 } else if (method == AUTH_KEYBOARD_INTERACTIVE) {
4607 ssh2_pkt_init(SSH2_MSG_USERAUTH_INFO_RESPONSE);
4608 ssh2_pkt_adduint32(num_prompts);
4609 ssh2_pkt_addstring(password);
4610 memset(password, 0, sizeof(password));
4611 ssh2_pkt_send();
4612 type = AUTH_TYPE_KEYBOARD_INTERACTIVE;
4613 } else {
4614 c_write_str
4615 ("No supported authentication methods left to try!\r\n");
4616 logevent
4617 ("No supported authentications offered. Disconnecting");
4618 ssh2_pkt_init(SSH2_MSG_DISCONNECT);
4619 ssh2_pkt_adduint32(SSH2_DISCONNECT_BY_APPLICATION);
4620 ssh2_pkt_addstring
4621 ("No supported authentication methods available");
4622 ssh2_pkt_addstring("en"); /* language tag */
4623 ssh2_pkt_send();
4624 ssh_state = SSH_STATE_CLOSED;
4625 crReturnV;
4626 }
4627 }
4628 } while (!we_are_in);
4629
4630 /*
4631 * Now we're authenticated for the connection protocol. The
4632 * connection protocol will automatically have started at this
4633 * point; there's no need to send SERVICE_REQUEST.
4634 */
4635
4636 /*
4637 * So now create a channel with a session in it.
4638 */
4639 ssh_channels = newtree234(ssh_channelcmp);
4640 mainchan = smalloc(sizeof(struct ssh_channel));
4641 mainchan->localid = alloc_channel_id();
4642 ssh2_pkt_init(SSH2_MSG_CHANNEL_OPEN);
4643 ssh2_pkt_addstring("session");
4644 ssh2_pkt_adduint32(mainchan->localid);
4645 mainchan->v.v2.locwindow = OUR_V2_WINSIZE;
4646 ssh2_pkt_adduint32(mainchan->v.v2.locwindow); /* our window size */
4647 ssh2_pkt_adduint32(0x4000UL); /* our max pkt size */
4648 ssh2_pkt_send();
4649 crWaitUntilV(ispkt);
4650 if (pktin.type != SSH2_MSG_CHANNEL_OPEN_CONFIRMATION) {
4651 bombout(("Server refused to open a session"));
4652 crReturnV;
4653 /* FIXME: error data comes back in FAILURE packet */
4654 }
4655 if (ssh2_pkt_getuint32() != mainchan->localid) {
4656 bombout(("Server's channel confirmation cited wrong channel"));
4657 crReturnV;
4658 }
4659 mainchan->remoteid = ssh2_pkt_getuint32();
4660 mainchan->type = CHAN_MAINSESSION;
4661 mainchan->closes = 0;
4662 mainchan->v.v2.remwindow = ssh2_pkt_getuint32();
4663 mainchan->v.v2.remmaxpkt = ssh2_pkt_getuint32();
4664 bufchain_init(&mainchan->v.v2.outbuffer);
4665 add234(ssh_channels, mainchan);
4666 logevent("Opened channel for session");
4667
4668 /*
4669 * Potentially enable X11 forwarding.
4670 */
4671 if (cfg.x11_forward) {
4672 char proto[20], data[64];
4673 logevent("Requesting X11 forwarding");
4674 x11_invent_auth(proto, sizeof(proto), data, sizeof(data));
4675 ssh2_pkt_init(SSH2_MSG_CHANNEL_REQUEST);
4676 ssh2_pkt_adduint32(mainchan->remoteid);
4677 ssh2_pkt_addstring("x11-req");
4678 ssh2_pkt_addbool(1); /* want reply */
4679 ssh2_pkt_addbool(0); /* many connections */
4680 ssh2_pkt_addstring(proto);
4681 ssh2_pkt_addstring(data);
4682 ssh2_pkt_adduint32(0); /* screen number */
4683 ssh2_pkt_send();
4684
4685 do {
4686 crWaitUntilV(ispkt);
4687 if (pktin.type == SSH2_MSG_CHANNEL_WINDOW_ADJUST) {
4688 unsigned i = ssh2_pkt_getuint32();
4689 struct ssh_channel *c;
4690 c = find234(ssh_channels, &i, ssh_channelfind);
4691 if (!c)
4692 continue; /* nonexistent channel */
4693 c->v.v2.remwindow += ssh2_pkt_getuint32();
4694 }
4695 } while (pktin.type == SSH2_MSG_CHANNEL_WINDOW_ADJUST);
4696
4697 if (pktin.type != SSH2_MSG_CHANNEL_SUCCESS) {
4698 if (pktin.type != SSH2_MSG_CHANNEL_FAILURE) {
4699 bombout(("Unexpected response to X11 forwarding request:"
4700 " packet type %d", pktin.type));
4701 crReturnV;
4702 }
4703 logevent("X11 forwarding refused");
4704 } else {
4705 logevent("X11 forwarding enabled");
4706 ssh_X11_fwd_enabled = TRUE;
4707 }
4708 }
4709
4710 /*
4711 * Enable port forwardings.
4712 */
4713 {
4714 static char *e; /* preserve across crReturn */
4715 char type;
4716 int n;
4717 int sport,dport;
4718 char sports[256], dports[256], host[256];
4719 char buf[1024];
4720
4721 ssh_rportfwds = newtree234(ssh_rportcmp_ssh2);
4722 /* Add port forwardings. */
4723 e = cfg.portfwd;
4724 while (*e) {
4725 type = *e++;
4726 n = 0;
4727 while (*e && *e != '\t')
4728 sports[n++] = *e++;
4729 sports[n] = 0;
4730 if (*e == '\t')
4731 e++;
4732 n = 0;
4733 while (*e && *e != ':')
4734 host[n++] = *e++;
4735 host[n] = 0;
4736 if (*e == ':')
4737 e++;
4738 n = 0;
4739 while (*e)
4740 dports[n++] = *e++;
4741 dports[n] = 0;
4742 e++;
4743 dport = atoi(dports);
4744 sport = atoi(sports);
4745 if (sport && dport) {
4746 if (type == 'L') {
4747 pfd_addforward(host, dport, sport);
4748 sprintf(buf, "Local port %d forwarding to %s:%d",
4749 sport, host, dport);
4750 logevent(buf);
4751 } else {
4752 struct ssh_rportfwd *pf;
4753 pf = smalloc(sizeof(*pf));
4754 strcpy(pf->dhost, host);
4755 pf->dport = dport;
4756 pf->sport = sport;
4757 if (add234(ssh_rportfwds, pf) != pf) {
4758 sprintf(buf,
4759 "Duplicate remote port forwarding to %s:%d",
4760 host, dport);
4761 logevent(buf);
4762 sfree(pf);
4763 } else {
4764 sprintf(buf, "Requesting remote port %d (forwarded to %s:%d)",
4765 sport, host, dport);
4766 logevent(buf);
4767 ssh2_pkt_init(SSH2_MSG_GLOBAL_REQUEST);
4768 ssh2_pkt_addstring("tcpip-forward");
4769 ssh2_pkt_addbool(1);/* want reply */
4770 if (cfg.rport_acceptall)
4771 ssh2_pkt_addstring("0.0.0.0");
4772 else
4773 ssh2_pkt_addstring("127.0.0.1");
4774 ssh2_pkt_adduint32(sport);
4775 ssh2_pkt_send();
4776
4777 do {
4778 crWaitUntilV(ispkt);
4779 if (pktin.type == SSH2_MSG_CHANNEL_WINDOW_ADJUST) {
4780 unsigned i = ssh2_pkt_getuint32();
4781 struct ssh_channel *c;
4782 c = find234(ssh_channels, &i, ssh_channelfind);
4783 if (!c)
4784 continue;/* nonexistent channel */
4785 c->v.v2.remwindow += ssh2_pkt_getuint32();
4786 }
4787 } while (pktin.type == SSH2_MSG_CHANNEL_WINDOW_ADJUST);
4788
4789 if (pktin.type != SSH2_MSG_REQUEST_SUCCESS) {
4790 if (pktin.type != SSH2_MSG_REQUEST_FAILURE) {
4791 bombout(("Unexpected response to port "
4792 "forwarding request: packet type %d",
4793 pktin.type));
4794 crReturnV;
4795 }
4796 logevent("Server refused this port forwarding");
4797 } else {
4798 logevent("Remote port forwarding enabled");
4799 }
4800 }
4801 }
4802 }
4803 }
4804 }
4805
4806 /*
4807 * Potentially enable agent forwarding.
4808 */
4809 if (cfg.agentfwd && agent_exists()) {
4810 logevent("Requesting OpenSSH-style agent forwarding");
4811 ssh2_pkt_init(SSH2_MSG_CHANNEL_REQUEST);
4812 ssh2_pkt_adduint32(mainchan->remoteid);
4813 ssh2_pkt_addstring("auth-agent-req@openssh.com");
4814 ssh2_pkt_addbool(1); /* want reply */
4815 ssh2_pkt_send();
4816
4817 do {
4818 crWaitUntilV(ispkt);
4819 if (pktin.type == SSH2_MSG_CHANNEL_WINDOW_ADJUST) {
4820 unsigned i = ssh2_pkt_getuint32();
4821 struct ssh_channel *c;
4822 c = find234(ssh_channels, &i, ssh_channelfind);
4823 if (!c)
4824 continue; /* nonexistent channel */
4825 c->v.v2.remwindow += ssh2_pkt_getuint32();
4826 }
4827 } while (pktin.type == SSH2_MSG_CHANNEL_WINDOW_ADJUST);
4828
4829 if (pktin.type != SSH2_MSG_CHANNEL_SUCCESS) {
4830 if (pktin.type != SSH2_MSG_CHANNEL_FAILURE) {
4831 bombout(("Unexpected response to agent forwarding request:"
4832 " packet type %d", pktin.type));
4833 crReturnV;
4834 }
4835 logevent("Agent forwarding refused");
4836 } else {
4837 logevent("Agent forwarding enabled");
4838 ssh_agentfwd_enabled = TRUE;
4839 }
4840 }
4841
4842 /*
4843 * Now allocate a pty for the session.
4844 */
4845 if (!cfg.nopty) {
4846 ssh2_pkt_init(SSH2_MSG_CHANNEL_REQUEST);
4847 ssh2_pkt_adduint32(mainchan->remoteid); /* recipient channel */
4848 ssh2_pkt_addstring("pty-req");
4849 ssh2_pkt_addbool(1); /* want reply */
4850 ssh2_pkt_addstring(cfg.termtype);
4851 ssh2_pkt_adduint32(cols);
4852 ssh2_pkt_adduint32(rows);
4853 ssh2_pkt_adduint32(0); /* pixel width */
4854 ssh2_pkt_adduint32(0); /* pixel height */
4855 ssh2_pkt_addstring_start();
4856 ssh2_pkt_addstring_data("\0", 1); /* TTY_OP_END, no special options */
4857 ssh2_pkt_send();
4858 ssh_state = SSH_STATE_INTERMED;
4859
4860 do {
4861 crWaitUntilV(ispkt);
4862 if (pktin.type == SSH2_MSG_CHANNEL_WINDOW_ADJUST) {
4863 unsigned i = ssh2_pkt_getuint32();
4864 struct ssh_channel *c;
4865 c = find234(ssh_channels, &i, ssh_channelfind);
4866 if (!c)
4867 continue; /* nonexistent channel */
4868 c->v.v2.remwindow += ssh2_pkt_getuint32();
4869 }
4870 } while (pktin.type == SSH2_MSG_CHANNEL_WINDOW_ADJUST);
4871
4872 if (pktin.type != SSH2_MSG_CHANNEL_SUCCESS) {
4873 if (pktin.type != SSH2_MSG_CHANNEL_FAILURE) {
4874 bombout(("Unexpected response to pty request:"
4875 " packet type %d", pktin.type));
4876 crReturnV;
4877 }
4878 c_write_str("Server refused to allocate pty\r\n");
4879 ssh_editing = ssh_echoing = 1;
4880 } else {
4881 logevent("Allocated pty");
4882 }
4883 } else {
4884 ssh_editing = ssh_echoing = 1;
4885 }
4886
4887 /*
4888 * Start a shell or a remote command. We may have to attempt
4889 * this twice if the config data has provided a second choice
4890 * of command.
4891 */
4892 while (1) {
4893 int subsys;
4894 char *cmd;
4895
4896 if (ssh_fallback_cmd) {
4897 subsys = cfg.ssh_subsys2;
4898 cmd = cfg.remote_cmd_ptr2;
4899 } else {
4900 subsys = cfg.ssh_subsys;
4901 cmd = cfg.remote_cmd_ptr;
4902 }
4903
4904 ssh2_pkt_init(SSH2_MSG_CHANNEL_REQUEST);
4905 ssh2_pkt_adduint32(mainchan->remoteid); /* recipient channel */
4906 if (subsys) {
4907 ssh2_pkt_addstring("subsystem");
4908 ssh2_pkt_addbool(1); /* want reply */
4909 ssh2_pkt_addstring(cmd);
4910 } else if (*cmd) {
4911 ssh2_pkt_addstring("exec");
4912 ssh2_pkt_addbool(1); /* want reply */
4913 ssh2_pkt_addstring(cmd);
4914 } else {
4915 ssh2_pkt_addstring("shell");
4916 ssh2_pkt_addbool(1); /* want reply */
4917 }
4918 ssh2_pkt_send();
4919 do {
4920 crWaitUntilV(ispkt);
4921 if (pktin.type == SSH2_MSG_CHANNEL_WINDOW_ADJUST) {
4922 unsigned i = ssh2_pkt_getuint32();
4923 struct ssh_channel *c;
4924 c = find234(ssh_channels, &i, ssh_channelfind);
4925 if (!c)
4926 continue; /* nonexistent channel */
4927 c->v.v2.remwindow += ssh2_pkt_getuint32();
4928 }
4929 } while (pktin.type == SSH2_MSG_CHANNEL_WINDOW_ADJUST);
4930 if (pktin.type != SSH2_MSG_CHANNEL_SUCCESS) {
4931 if (pktin.type != SSH2_MSG_CHANNEL_FAILURE) {
4932 bombout(("Unexpected response to shell/command request:"
4933 " packet type %d", pktin.type));
4934 crReturnV;
4935 }
4936 /*
4937 * We failed to start the command. If this is the
4938 * fallback command, we really are finished; if it's
4939 * not, and if the fallback command exists, try falling
4940 * back to it before complaining.
4941 */
4942 if (!ssh_fallback_cmd && cfg.remote_cmd_ptr2 != NULL) {
4943 logevent("Primary command failed; attempting fallback");
4944 ssh_fallback_cmd = TRUE;
4945 continue;
4946 }
4947 bombout(("Server refused to start a shell/command"));
4948 crReturnV;
4949 } else {
4950 logevent("Started a shell/command");
4951 }
4952 break;
4953 }
4954
4955 ssh_state = SSH_STATE_SESSION;
4956 if (size_needed)
4957 ssh_size();
4958 if (eof_needed)
4959 ssh_special(TS_EOF);
4960
4961 /*
4962 * Transfer data!
4963 */
4964 ldisc_send(NULL, 0, 0); /* cause ldisc to notice changes */
4965 ssh_send_ok = 1;
4966 while (1) {
4967 static int try_send;
4968 crReturnV;
4969 try_send = FALSE;
4970 if (ispkt) {
4971 if (pktin.type == SSH2_MSG_CHANNEL_DATA ||
4972 pktin.type == SSH2_MSG_CHANNEL_EXTENDED_DATA) {
4973 char *data;
4974 int length;
4975 unsigned i = ssh2_pkt_getuint32();
4976 struct ssh_channel *c;
4977 c = find234(ssh_channels, &i, ssh_channelfind);
4978 if (!c)
4979 continue; /* nonexistent channel */
4980 if (pktin.type == SSH2_MSG_CHANNEL_EXTENDED_DATA &&
4981 ssh2_pkt_getuint32() != SSH2_EXTENDED_DATA_STDERR)
4982 continue; /* extended but not stderr */
4983 ssh2_pkt_getstring(&data, &length);
4984 if (data) {
4985 int bufsize;
4986 c->v.v2.locwindow -= length;
4987 switch (c->type) {
4988 case CHAN_MAINSESSION:
4989 bufsize =
4990 from_backend(pktin.type ==
4991 SSH2_MSG_CHANNEL_EXTENDED_DATA,
4992 data, length);
4993 break;
4994 case CHAN_X11:
4995 bufsize = x11_send(c->u.x11.s, data, length);
4996 break;
4997 case CHAN_SOCKDATA:
4998 bufsize = pfd_send(c->u.pfd.s, data, length);
4999 break;
5000 case CHAN_AGENT:
5001 while (length > 0) {
5002 if (c->u.a.lensofar < 4) {
5003 int l = min(4 - c->u.a.lensofar, length);
5004 memcpy(c->u.a.msglen + c->u.a.lensofar,
5005 data, l);
5006 data += l;
5007 length -= l;
5008 c->u.a.lensofar += l;
5009 }
5010 if (c->u.a.lensofar == 4) {
5011 c->u.a.totallen =
5012 4 + GET_32BIT(c->u.a.msglen);
5013 c->u.a.message = smalloc(c->u.a.totallen);
5014 memcpy(c->u.a.message, c->u.a.msglen, 4);
5015 }
5016 if (c->u.a.lensofar >= 4 && length > 0) {
5017 int l =
5018 min(c->u.a.totallen - c->u.a.lensofar,
5019 length);
5020 memcpy(c->u.a.message + c->u.a.lensofar,
5021 data, l);
5022 data += l;
5023 length -= l;
5024 c->u.a.lensofar += l;
5025 }
5026 if (c->u.a.lensofar == c->u.a.totallen) {
5027 void *reply, *sentreply;
5028 int replylen;
5029 agent_query(c->u.a.message,
5030 c->u.a.totallen, &reply,
5031 &replylen);
5032 if (reply)
5033 sentreply = reply;
5034 else {
5035 /* Fake SSH_AGENT_FAILURE. */
5036 sentreply = "\0\0\0\1\5";
5037 replylen = 5;
5038 }
5039 ssh2_add_channel_data(c, sentreply,
5040 replylen);
5041 try_send = TRUE;
5042 if (reply)
5043 sfree(reply);
5044 sfree(c->u.a.message);
5045 c->u.a.lensofar = 0;
5046 }
5047 }
5048 bufsize = 0;
5049 break;
5050 }
5051 /*
5052 * If we are not buffering too much data,
5053 * enlarge the window again at the remote side.
5054 */
5055 if (bufsize < OUR_V2_WINSIZE)
5056 ssh2_set_window(c, OUR_V2_WINSIZE - bufsize);
5057 }
5058 } else if (pktin.type == SSH2_MSG_DISCONNECT) {
5059 ssh_state = SSH_STATE_CLOSED;
5060 logevent("Received disconnect message");
5061 crReturnV;
5062 } else if (pktin.type == SSH2_MSG_CHANNEL_EOF) {
5063 unsigned i = ssh2_pkt_getuint32();
5064 struct ssh_channel *c;
5065
5066 c = find234(ssh_channels, &i, ssh_channelfind);
5067 if (!c)
5068 continue; /* nonexistent channel */
5069
5070 if (c->type == CHAN_X11) {
5071 /*
5072 * Remote EOF on an X11 channel means we should
5073 * wrap up and close the channel ourselves.
5074 */
5075 x11_close(c->u.x11.s);
5076 sshfwd_close(c);
5077 } else if (c->type == CHAN_AGENT) {
5078 sshfwd_close(c);
5079 } else if (c->type == CHAN_SOCKDATA) {
5080 pfd_close(c->u.pfd.s);
5081 sshfwd_close(c);
5082 }
5083 } else if (pktin.type == SSH2_MSG_CHANNEL_CLOSE) {
5084 unsigned i = ssh2_pkt_getuint32();
5085 struct ssh_channel *c;
5086
5087 c = find234(ssh_channels, &i, ssh_channelfind);
5088 if (!c)
5089 continue; /* nonexistent channel */
5090 /* Do pre-close processing on the channel. */
5091 switch (c->type) {
5092 case CHAN_MAINSESSION:
5093 break; /* nothing to see here, move along */
5094 case CHAN_X11:
5095 if (c->u.x11.s != NULL)
5096 x11_close(c->u.x11.s);
5097 sshfwd_close(c);
5098 break;
5099 case CHAN_AGENT:
5100 sshfwd_close(c);
5101 break;
5102 case CHAN_SOCKDATA:
5103 if (c->u.pfd.s != NULL)
5104 pfd_close(c->u.pfd.s);
5105 sshfwd_close(c);
5106 break;
5107 }
5108 if (c->closes == 0) {
5109 ssh2_pkt_init(SSH2_MSG_CHANNEL_CLOSE);
5110 ssh2_pkt_adduint32(c->remoteid);
5111 ssh2_pkt_send();
5112 }
5113 del234(ssh_channels, c);
5114 bufchain_clear(&c->v.v2.outbuffer);
5115 sfree(c);
5116
5117 /*
5118 * See if that was the last channel left open.
5119 */
5120 if (count234(ssh_channels) == 0) {
5121 #if 0
5122 /*
5123 * We used to send SSH_MSG_DISCONNECT here,
5124 * because I'd believed that _every_ conforming
5125 * SSH2 connection had to end with a disconnect
5126 * being sent by at least one side; apparently
5127 * I was wrong and it's perfectly OK to
5128 * unceremoniously slam the connection shut
5129 * when you're done, and indeed OpenSSH feels
5130 * this is more polite than sending a
5131 * DISCONNECT. So now we don't.
5132 */
5133 logevent("All channels closed. Disconnecting");
5134 ssh2_pkt_init(SSH2_MSG_DISCONNECT);
5135 ssh2_pkt_adduint32(SSH2_DISCONNECT_BY_APPLICATION);
5136 ssh2_pkt_addstring("All open channels closed");
5137 ssh2_pkt_addstring("en"); /* language tag */
5138 ssh2_pkt_send();
5139 #endif
5140 ssh_state = SSH_STATE_CLOSED;
5141 crReturnV;
5142 }
5143 continue; /* remote sends close; ignore (FIXME) */
5144 } else if (pktin.type == SSH2_MSG_CHANNEL_WINDOW_ADJUST) {
5145 unsigned i = ssh2_pkt_getuint32();
5146 struct ssh_channel *c;
5147 c = find234(ssh_channels, &i, ssh_channelfind);
5148 if (!c)
5149 continue; /* nonexistent channel */
5150 c->v.v2.remwindow += ssh2_pkt_getuint32();
5151 try_send = TRUE;
5152 } else if (pktin.type == SSH2_MSG_CHANNEL_OPEN_CONFIRMATION) {
5153 unsigned i = ssh2_pkt_getuint32();
5154 struct ssh_channel *c;
5155 c = find234(ssh_channels, &i, ssh_channelfind);
5156 if (!c)
5157 continue; /* nonexistent channel */
5158 if (c->type != CHAN_SOCKDATA_DORMANT)
5159 continue; /* dunno why they're confirming this */
5160 c->remoteid = ssh2_pkt_getuint32();
5161 c->type = CHAN_SOCKDATA;
5162 c->v.v2.remwindow = ssh2_pkt_getuint32();
5163 c->v.v2.remmaxpkt = ssh2_pkt_getuint32();
5164 bufchain_init(&c->v.v2.outbuffer);
5165 if (c->u.pfd.s)
5166 pfd_confirm(c->u.pfd.s);
5167 if (c->closes) {
5168 /*
5169 * We have a pending close on this channel,
5170 * which we decided on before the server acked
5171 * the channel open. So now we know the
5172 * remoteid, we can close it again.
5173 */
5174 ssh2_pkt_init(SSH2_MSG_CHANNEL_CLOSE);
5175 ssh2_pkt_adduint32(c->remoteid);
5176 ssh2_pkt_send();
5177 }
5178 } else if (pktin.type == SSH2_MSG_CHANNEL_OPEN_FAILURE) {
5179 unsigned i = ssh2_pkt_getuint32();
5180 struct ssh_channel *c;
5181 c = find234(ssh_channels, &i, ssh_channelfind);
5182 if (!c)
5183 continue; /* nonexistent channel */
5184 if (c->type != CHAN_SOCKDATA_DORMANT)
5185 continue; /* dunno why they're failing this */
5186
5187 logevent("Forwarded connection refused by server");
5188
5189 pfd_close(c->u.pfd.s);
5190
5191 del234(ssh_channels, c);
5192 sfree(c);
5193 } else if (pktin.type == SSH2_MSG_CHANNEL_REQUEST) {
5194 unsigned localid;
5195 char *type;
5196 int typelen, want_reply;
5197 struct ssh_channel *c;
5198
5199 localid = ssh2_pkt_getuint32();
5200 ssh2_pkt_getstring(&type, &typelen);
5201 want_reply = ssh2_pkt_getbool();
5202
5203 /*
5204 * First, check that the channel exists. Otherwise,
5205 * we can instantly disconnect with a rude message.
5206 */
5207 c = find234(ssh_channels, &localid, ssh_channelfind);
5208 if (!c) {
5209 char buf[80];
5210 sprintf(buf, "Received channel request for nonexistent"
5211 " channel %d", localid);
5212 logevent(buf);
5213 ssh2_pkt_init(SSH2_MSG_DISCONNECT);
5214 ssh2_pkt_adduint32(SSH2_DISCONNECT_BY_APPLICATION);
5215 ssh2_pkt_addstring(buf);
5216 ssh2_pkt_addstring("en"); /* language tag */
5217 ssh2_pkt_send();
5218 connection_fatal("%s", buf);
5219 ssh_state = SSH_STATE_CLOSED;
5220 crReturnV;
5221 }
5222
5223 /*
5224 * Having got the channel number, we now look at
5225 * the request type string to see if it's something
5226 * we recognise.
5227 */
5228 if (typelen == 11 && !memcmp(type, "exit-status", 11) &&
5229 c == mainchan) {
5230 /* We recognise "exit-status" on the primary channel. */
5231 char buf[100];
5232 ssh_exitcode = ssh2_pkt_getuint32();
5233 sprintf(buf, "Server sent command exit status %d",
5234 ssh_exitcode);
5235 logevent(buf);
5236 if (want_reply) {
5237 ssh2_pkt_init(SSH2_MSG_CHANNEL_SUCCESS);
5238 ssh2_pkt_adduint32(c->remoteid);
5239 ssh2_pkt_send();
5240 }
5241 } else {
5242 /*
5243 * This is a channel request we don't know
5244 * about, so we now either ignore the request
5245 * or respond with CHANNEL_FAILURE, depending
5246 * on want_reply.
5247 */
5248 if (want_reply) {
5249 ssh2_pkt_init(SSH2_MSG_CHANNEL_FAILURE);
5250 ssh2_pkt_adduint32(c->remoteid);
5251 ssh2_pkt_send();
5252 }
5253 }
5254 } else if (pktin.type == SSH2_MSG_GLOBAL_REQUEST) {
5255 char *type;
5256 int typelen, want_reply;
5257
5258 ssh2_pkt_getstring(&type, &typelen);
5259 want_reply = ssh2_pkt_getbool();
5260
5261 /*
5262 * We currently don't support any global requests
5263 * at all, so we either ignore the request or
5264 * respond with REQUEST_FAILURE, depending on
5265 * want_reply.
5266 */
5267 if (want_reply) {
5268 ssh2_pkt_init(SSH2_MSG_REQUEST_FAILURE);
5269 ssh2_pkt_send();
5270 }
5271 } else if (pktin.type == SSH2_MSG_CHANNEL_OPEN) {
5272 char *type;
5273 int typelen;
5274 char *error = NULL;
5275 struct ssh_channel *c;
5276 unsigned remid, winsize, pktsize;
5277 ssh2_pkt_getstring(&type, &typelen);
5278 c = smalloc(sizeof(struct ssh_channel));
5279
5280 remid = ssh2_pkt_getuint32();
5281 winsize = ssh2_pkt_getuint32();
5282 pktsize = ssh2_pkt_getuint32();
5283
5284 if (typelen == 3 && !memcmp(type, "x11", 3)) {
5285 if (!ssh_X11_fwd_enabled)
5286 error = "X11 forwarding is not enabled";
5287 else if (x11_init(&c->u.x11.s, cfg.x11_display, c) !=
5288 NULL) {
5289 error = "Unable to open an X11 connection";
5290 } else {
5291 c->type = CHAN_X11;
5292 }
5293 } else if (typelen == 15 &&
5294 !memcmp(type, "forwarded-tcpip", 15)) {
5295 struct ssh_rportfwd pf, *realpf;
5296 char *dummy;
5297 int dummylen;
5298 ssh2_pkt_getstring(&dummy, &dummylen);/* skip address */
5299 pf.sport = ssh2_pkt_getuint32();
5300 realpf = find234(ssh_rportfwds, &pf, NULL);
5301 if (realpf == NULL) {
5302 error = "Remote port is not recognised";
5303 } else {
5304 char *e = pfd_newconnect(&c->u.pfd.s, realpf->dhost,
5305 realpf->dport, c);
5306 char buf[1024];
5307 sprintf(buf, "Received remote port open request for %s:%d",
5308 realpf->dhost, realpf->dport);
5309 logevent(buf);
5310 if (e != NULL) {
5311 sprintf(buf, "Port open failed: %s", e);
5312 logevent(buf);
5313 error = "Port open failed";
5314 } else {
5315 logevent("Forwarded port opened successfully");
5316 c->type = CHAN_SOCKDATA;
5317 }
5318 }
5319 } else if (typelen == 22 &&
5320 !memcmp(type, "auth-agent@openssh.com", 3)) {
5321 if (!ssh_agentfwd_enabled)
5322 error = "Agent forwarding is not enabled";
5323 else {
5324 c->type = CHAN_AGENT; /* identify channel type */
5325 c->u.a.lensofar = 0;
5326 }
5327 } else {
5328 error = "Unsupported channel type requested";
5329 }
5330
5331 c->remoteid = remid;
5332 if (error) {
5333 ssh2_pkt_init(SSH2_MSG_CHANNEL_OPEN_FAILURE);
5334 ssh2_pkt_adduint32(c->remoteid);
5335 ssh2_pkt_adduint32(SSH2_OPEN_CONNECT_FAILED);
5336 ssh2_pkt_addstring(error);
5337 ssh2_pkt_addstring("en"); /* language tag */
5338 ssh2_pkt_send();
5339 sfree(c);
5340 } else {
5341 c->localid = alloc_channel_id();
5342 c->closes = 0;
5343 c->v.v2.locwindow = OUR_V2_WINSIZE;
5344 c->v.v2.remwindow = winsize;
5345 c->v.v2.remmaxpkt = pktsize;
5346 bufchain_init(&c->v.v2.outbuffer);
5347 add234(ssh_channels, c);
5348 ssh2_pkt_init(SSH2_MSG_CHANNEL_OPEN_CONFIRMATION);
5349 ssh2_pkt_adduint32(c->remoteid);
5350 ssh2_pkt_adduint32(c->localid);
5351 ssh2_pkt_adduint32(c->v.v2.locwindow);
5352 ssh2_pkt_adduint32(0x4000UL); /* our max pkt size */
5353 ssh2_pkt_send();
5354 }
5355 } else {
5356 bombout(("Strange packet received: type %d", pktin.type));
5357 crReturnV;
5358 }
5359 } else {
5360 /*
5361 * We have spare data. Add it to the channel buffer.
5362 */
5363 ssh2_add_channel_data(mainchan, in, inlen);
5364 try_send = TRUE;
5365 }
5366 if (try_send) {
5367 int i;
5368 struct ssh_channel *c;
5369 /*
5370 * Try to send data on all channels if we can.
5371 */
5372 for (i = 0; NULL != (c = index234(ssh_channels, i)); i++) {
5373 int bufsize = ssh2_try_send(c);
5374 if (bufsize == 0) {
5375 switch (c->type) {
5376 case CHAN_MAINSESSION:
5377 /* stdin need not receive an unthrottle
5378 * notification since it will be polled */
5379 break;
5380 case CHAN_X11:
5381 x11_unthrottle(c->u.x11.s);
5382 break;
5383 case CHAN_AGENT:
5384 /* agent sockets are request/response and need no
5385 * buffer management */
5386 break;
5387 case CHAN_SOCKDATA:
5388 pfd_unthrottle(c->u.pfd.s);
5389 break;
5390 }
5391 }
5392 }
5393 }
5394 }
5395
5396 crFinishV;
5397 }
5398
5399 /*
5400 * Handle the top-level SSH2 protocol.
5401 */
5402 static void ssh2_protocol(unsigned char *in, int inlen, int ispkt)
5403 {
5404 if (do_ssh2_transport(in, inlen, ispkt) == 0)
5405 return;
5406 do_ssh2_authconn(in, inlen, ispkt);
5407 }
5408
5409 /*
5410 * Called to set up the connection.
5411 *
5412 * Returns an error message, or NULL on success.
5413 */
5414 static char *ssh_init(char *host, int port, char **realhost, int nodelay)
5415 {
5416 char *p;
5417
5418 #ifdef MSCRYPTOAPI
5419 if (crypto_startup() == 0)
5420 return "Microsoft high encryption pack not installed!";
5421 #endif
5422
5423 ssh_send_ok = 0;
5424 ssh_editing = 0;
5425 ssh_echoing = 0;
5426 ssh1_throttle_count = 0;
5427 ssh_overall_bufsize = 0;
5428 ssh_fallback_cmd = 0;
5429
5430 p = connect_to_host(host, port, realhost, nodelay);
5431 if (p != NULL)
5432 return p;
5433
5434 return NULL;
5435 }
5436
5437 /*
5438 * Called to send data down the Telnet connection.
5439 */
5440 static int ssh_send(char *buf, int len)
5441 {
5442 if (s == NULL || ssh_protocol == NULL)
5443 return 0;
5444
5445 ssh_protocol(buf, len, 0);
5446
5447 return ssh_sendbuffer();
5448 }
5449
5450 /*
5451 * Called to query the current amount of buffered stdin data.
5452 */
5453 static int ssh_sendbuffer(void)
5454 {
5455 int override_value;
5456
5457 if (s == NULL || ssh_protocol == NULL)
5458 return 0;
5459
5460 /*
5461 * If the SSH socket itself has backed up, add the total backup
5462 * size on that to any individual buffer on the stdin channel.
5463 */
5464 override_value = 0;
5465 if (ssh_throttled_all)
5466 override_value = ssh_overall_bufsize;
5467
5468 if (ssh_version == 1) {
5469 return override_value;
5470 } else if (ssh_version == 2) {
5471 if (!mainchan || mainchan->closes > 0)
5472 return override_value;
5473 else
5474 return override_value + bufchain_size(&mainchan->v.v2.outbuffer);
5475 }
5476
5477 return 0;
5478 }
5479
5480 /*
5481 * Called to set the size of the window from SSH's POV.
5482 */
5483 static void ssh_size(void)
5484 {
5485 switch (ssh_state) {
5486 case SSH_STATE_BEFORE_SIZE:
5487 case SSH_STATE_PREPACKET:
5488 case SSH_STATE_CLOSED:
5489 break; /* do nothing */
5490 case SSH_STATE_INTERMED:
5491 size_needed = TRUE; /* buffer for later */
5492 break;
5493 case SSH_STATE_SESSION:
5494 if (!cfg.nopty) {
5495 if (ssh_version == 1) {
5496 send_packet(SSH1_CMSG_WINDOW_SIZE,
5497 PKT_INT, rows, PKT_INT, cols,
5498 PKT_INT, 0, PKT_INT, 0, PKT_END);
5499 } else {
5500 ssh2_pkt_init(SSH2_MSG_CHANNEL_REQUEST);
5501 ssh2_pkt_adduint32(mainchan->remoteid);
5502 ssh2_pkt_addstring("window-change");
5503 ssh2_pkt_addbool(0);
5504 ssh2_pkt_adduint32(cols);
5505 ssh2_pkt_adduint32(rows);
5506 ssh2_pkt_adduint32(0);
5507 ssh2_pkt_adduint32(0);
5508 ssh2_pkt_send();
5509 }
5510 }
5511 break;
5512 }
5513 }
5514
5515 /*
5516 * Send Telnet special codes. TS_EOF is useful for `plink', so you
5517 * can send an EOF and collect resulting output (e.g. `plink
5518 * hostname sort').
5519 */
5520 static void ssh_special(Telnet_Special code)
5521 {
5522 if (code == TS_EOF) {
5523 if (ssh_state != SSH_STATE_SESSION) {
5524 /*
5525 * Buffer the EOF in case we are pre-SESSION, so we can
5526 * send it as soon as we reach SESSION.
5527 */
5528 if (code == TS_EOF)
5529 eof_needed = TRUE;
5530 return;
5531 }
5532 if (ssh_version == 1) {
5533 send_packet(SSH1_CMSG_EOF, PKT_END);
5534 } else {
5535 ssh2_pkt_init(SSH2_MSG_CHANNEL_EOF);
5536 ssh2_pkt_adduint32(mainchan->remoteid);
5537 ssh2_pkt_send();
5538 }
5539 logevent("Sent EOF message");
5540 } else if (code == TS_PING) {
5541 if (ssh_state == SSH_STATE_CLOSED
5542 || ssh_state == SSH_STATE_PREPACKET) return;
5543 if (ssh_version == 1) {
5544 send_packet(SSH1_MSG_IGNORE, PKT_STR, "", PKT_END);
5545 } else {
5546 ssh2_pkt_init(SSH2_MSG_IGNORE);
5547 ssh2_pkt_addstring_start();
5548 ssh2_pkt_send();
5549 }
5550 } else {
5551 /* do nothing */
5552 }
5553 }
5554
5555 void *new_sock_channel(Socket s)
5556 {
5557 struct ssh_channel *c;
5558 c = smalloc(sizeof(struct ssh_channel));
5559
5560 if (c) {
5561 c->remoteid = -1; /* to be set when open confirmed */
5562 c->localid = alloc_channel_id();
5563 c->closes = 0;
5564 c->type = CHAN_SOCKDATA_DORMANT;/* identify channel type */
5565 c->u.pfd.s = s;
5566 add234(ssh_channels, c);
5567 }
5568 return c;
5569 }
5570
5571 /*
5572 * This is called when stdout/stderr (the entity to which
5573 * from_backend sends data) manages to clear some backlog.
5574 */
5575 void ssh_unthrottle(int bufsize)
5576 {
5577 if (ssh_version == 1) {
5578 if (ssh1_stdout_throttling && bufsize < SSH1_BUFFER_LIMIT) {
5579 ssh1_stdout_throttling = 0;
5580 ssh1_throttle(-1);
5581 }
5582 } else {
5583 if (mainchan && mainchan->closes == 0)
5584 ssh2_set_window(mainchan, OUR_V2_WINSIZE - bufsize);
5585 }
5586 }
5587
5588 void ssh_send_port_open(void *channel, char *hostname, int port, char *org)
5589 {
5590 struct ssh_channel *c = (struct ssh_channel *)channel;
5591 char buf[1024];
5592
5593 sprintf(buf, "Opening forwarded connection to %.512s:%d", hostname, port);
5594 logevent(buf);
5595
5596 if (ssh_version == 1) {
5597 send_packet(SSH1_MSG_PORT_OPEN,
5598 PKT_INT, c->localid,
5599 PKT_STR, hostname,
5600 PKT_INT, port,
5601 //PKT_STR, <org:orgport>,
5602 PKT_END);
5603 } else {
5604 ssh2_pkt_init(SSH2_MSG_CHANNEL_OPEN);
5605 ssh2_pkt_addstring("direct-tcpip");
5606 ssh2_pkt_adduint32(c->localid);
5607 c->v.v2.locwindow = OUR_V2_WINSIZE;
5608 ssh2_pkt_adduint32(c->v.v2.locwindow);/* our window size */
5609 ssh2_pkt_adduint32(0x4000UL); /* our max pkt size */
5610 ssh2_pkt_addstring(hostname);
5611 ssh2_pkt_adduint32(port);
5612 /*
5613 * We make up values for the originator data; partly it's
5614 * too much hassle to keep track, and partly I'm not
5615 * convinced the server should be told details like that
5616 * about my local network configuration.
5617 */
5618 ssh2_pkt_addstring("client-side-connection");
5619 ssh2_pkt_adduint32(0);
5620 ssh2_pkt_send();
5621 }
5622 }
5623
5624
5625 static Socket ssh_socket(void)
5626 {
5627 return s;
5628 }
5629
5630 static int ssh_sendok(void)
5631 {
5632 return ssh_send_ok;
5633 }
5634
5635 static int ssh_ldisc(int option)
5636 {
5637 if (option == LD_ECHO)
5638 return ssh_echoing;
5639 if (option == LD_EDIT)
5640 return ssh_editing;
5641 return FALSE;
5642 }
5643
5644 static int ssh_return_exitcode(void)
5645 {
5646 return ssh_exitcode;
5647 }
5648
5649 Backend ssh_backend = {
5650 ssh_init,
5651 ssh_send,
5652 ssh_sendbuffer,
5653 ssh_size,
5654 ssh_special,
5655 ssh_socket,
5656 ssh_return_exitcode,
5657 ssh_sendok,
5658 ssh_ldisc,
5659 ssh_unthrottle,
5660 22
5661 };