When we are asked to unthrottle an SSH connection (by the front end
[u/mdw/putty] / ssh.c
1 /*
2 * SSH backend.
3 */
4
5 #include <stdio.h>
6 #include <stdlib.h>
7 #include <stdarg.h>
8 #include <assert.h>
9 #include <limits.h>
10 #include <signal.h>
11
12 #include "putty.h"
13 #include "tree234.h"
14 #include "ssh.h"
15 #ifndef NO_GSSAPI
16 #include "sshgssc.h"
17 #include "sshgss.h"
18 #endif
19
20 #ifndef FALSE
21 #define FALSE 0
22 #endif
23 #ifndef TRUE
24 #define TRUE 1
25 #endif
26
27 #define SSH1_MSG_DISCONNECT 1 /* 0x1 */
28 #define SSH1_SMSG_PUBLIC_KEY 2 /* 0x2 */
29 #define SSH1_CMSG_SESSION_KEY 3 /* 0x3 */
30 #define SSH1_CMSG_USER 4 /* 0x4 */
31 #define SSH1_CMSG_AUTH_RSA 6 /* 0x6 */
32 #define SSH1_SMSG_AUTH_RSA_CHALLENGE 7 /* 0x7 */
33 #define SSH1_CMSG_AUTH_RSA_RESPONSE 8 /* 0x8 */
34 #define SSH1_CMSG_AUTH_PASSWORD 9 /* 0x9 */
35 #define SSH1_CMSG_REQUEST_PTY 10 /* 0xa */
36 #define SSH1_CMSG_WINDOW_SIZE 11 /* 0xb */
37 #define SSH1_CMSG_EXEC_SHELL 12 /* 0xc */
38 #define SSH1_CMSG_EXEC_CMD 13 /* 0xd */
39 #define SSH1_SMSG_SUCCESS 14 /* 0xe */
40 #define SSH1_SMSG_FAILURE 15 /* 0xf */
41 #define SSH1_CMSG_STDIN_DATA 16 /* 0x10 */
42 #define SSH1_SMSG_STDOUT_DATA 17 /* 0x11 */
43 #define SSH1_SMSG_STDERR_DATA 18 /* 0x12 */
44 #define SSH1_CMSG_EOF 19 /* 0x13 */
45 #define SSH1_SMSG_EXIT_STATUS 20 /* 0x14 */
46 #define SSH1_MSG_CHANNEL_OPEN_CONFIRMATION 21 /* 0x15 */
47 #define SSH1_MSG_CHANNEL_OPEN_FAILURE 22 /* 0x16 */
48 #define SSH1_MSG_CHANNEL_DATA 23 /* 0x17 */
49 #define SSH1_MSG_CHANNEL_CLOSE 24 /* 0x18 */
50 #define SSH1_MSG_CHANNEL_CLOSE_CONFIRMATION 25 /* 0x19 */
51 #define SSH1_SMSG_X11_OPEN 27 /* 0x1b */
52 #define SSH1_CMSG_PORT_FORWARD_REQUEST 28 /* 0x1c */
53 #define SSH1_MSG_PORT_OPEN 29 /* 0x1d */
54 #define SSH1_CMSG_AGENT_REQUEST_FORWARDING 30 /* 0x1e */
55 #define SSH1_SMSG_AGENT_OPEN 31 /* 0x1f */
56 #define SSH1_MSG_IGNORE 32 /* 0x20 */
57 #define SSH1_CMSG_EXIT_CONFIRMATION 33 /* 0x21 */
58 #define SSH1_CMSG_X11_REQUEST_FORWARDING 34 /* 0x22 */
59 #define SSH1_CMSG_AUTH_RHOSTS_RSA 35 /* 0x23 */
60 #define SSH1_MSG_DEBUG 36 /* 0x24 */
61 #define SSH1_CMSG_REQUEST_COMPRESSION 37 /* 0x25 */
62 #define SSH1_CMSG_AUTH_TIS 39 /* 0x27 */
63 #define SSH1_SMSG_AUTH_TIS_CHALLENGE 40 /* 0x28 */
64 #define SSH1_CMSG_AUTH_TIS_RESPONSE 41 /* 0x29 */
65 #define SSH1_CMSG_AUTH_CCARD 70 /* 0x46 */
66 #define SSH1_SMSG_AUTH_CCARD_CHALLENGE 71 /* 0x47 */
67 #define SSH1_CMSG_AUTH_CCARD_RESPONSE 72 /* 0x48 */
68
69 #define SSH1_AUTH_RHOSTS 1 /* 0x1 */
70 #define SSH1_AUTH_RSA 2 /* 0x2 */
71 #define SSH1_AUTH_PASSWORD 3 /* 0x3 */
72 #define SSH1_AUTH_RHOSTS_RSA 4 /* 0x4 */
73 #define SSH1_AUTH_TIS 5 /* 0x5 */
74 #define SSH1_AUTH_CCARD 16 /* 0x10 */
75
76 #define SSH1_PROTOFLAG_SCREEN_NUMBER 1 /* 0x1 */
77 /* Mask for protoflags we will echo back to server if seen */
78 #define SSH1_PROTOFLAGS_SUPPORTED 0 /* 0x1 */
79
80 #define SSH2_MSG_DISCONNECT 1 /* 0x1 */
81 #define SSH2_MSG_IGNORE 2 /* 0x2 */
82 #define SSH2_MSG_UNIMPLEMENTED 3 /* 0x3 */
83 #define SSH2_MSG_DEBUG 4 /* 0x4 */
84 #define SSH2_MSG_SERVICE_REQUEST 5 /* 0x5 */
85 #define SSH2_MSG_SERVICE_ACCEPT 6 /* 0x6 */
86 #define SSH2_MSG_KEXINIT 20 /* 0x14 */
87 #define SSH2_MSG_NEWKEYS 21 /* 0x15 */
88 #define SSH2_MSG_KEXDH_INIT 30 /* 0x1e */
89 #define SSH2_MSG_KEXDH_REPLY 31 /* 0x1f */
90 #define SSH2_MSG_KEX_DH_GEX_REQUEST 30 /* 0x1e */
91 #define SSH2_MSG_KEX_DH_GEX_GROUP 31 /* 0x1f */
92 #define SSH2_MSG_KEX_DH_GEX_INIT 32 /* 0x20 */
93 #define SSH2_MSG_KEX_DH_GEX_REPLY 33 /* 0x21 */
94 #define SSH2_MSG_KEXRSA_PUBKEY 30 /* 0x1e */
95 #define SSH2_MSG_KEXRSA_SECRET 31 /* 0x1f */
96 #define SSH2_MSG_KEXRSA_DONE 32 /* 0x20 */
97 #define SSH2_MSG_USERAUTH_REQUEST 50 /* 0x32 */
98 #define SSH2_MSG_USERAUTH_FAILURE 51 /* 0x33 */
99 #define SSH2_MSG_USERAUTH_SUCCESS 52 /* 0x34 */
100 #define SSH2_MSG_USERAUTH_BANNER 53 /* 0x35 */
101 #define SSH2_MSG_USERAUTH_PK_OK 60 /* 0x3c */
102 #define SSH2_MSG_USERAUTH_PASSWD_CHANGEREQ 60 /* 0x3c */
103 #define SSH2_MSG_USERAUTH_INFO_REQUEST 60 /* 0x3c */
104 #define SSH2_MSG_USERAUTH_INFO_RESPONSE 61 /* 0x3d */
105 #define SSH2_MSG_GLOBAL_REQUEST 80 /* 0x50 */
106 #define SSH2_MSG_REQUEST_SUCCESS 81 /* 0x51 */
107 #define SSH2_MSG_REQUEST_FAILURE 82 /* 0x52 */
108 #define SSH2_MSG_CHANNEL_OPEN 90 /* 0x5a */
109 #define SSH2_MSG_CHANNEL_OPEN_CONFIRMATION 91 /* 0x5b */
110 #define SSH2_MSG_CHANNEL_OPEN_FAILURE 92 /* 0x5c */
111 #define SSH2_MSG_CHANNEL_WINDOW_ADJUST 93 /* 0x5d */
112 #define SSH2_MSG_CHANNEL_DATA 94 /* 0x5e */
113 #define SSH2_MSG_CHANNEL_EXTENDED_DATA 95 /* 0x5f */
114 #define SSH2_MSG_CHANNEL_EOF 96 /* 0x60 */
115 #define SSH2_MSG_CHANNEL_CLOSE 97 /* 0x61 */
116 #define SSH2_MSG_CHANNEL_REQUEST 98 /* 0x62 */
117 #define SSH2_MSG_CHANNEL_SUCCESS 99 /* 0x63 */
118 #define SSH2_MSG_CHANNEL_FAILURE 100 /* 0x64 */
119 #define SSH2_MSG_USERAUTH_GSSAPI_RESPONSE 60
120 #define SSH2_MSG_USERAUTH_GSSAPI_TOKEN 61
121 #define SSH2_MSG_USERAUTH_GSSAPI_EXCHANGE_COMPLETE 63
122 #define SSH2_MSG_USERAUTH_GSSAPI_ERROR 64
123 #define SSH2_MSG_USERAUTH_GSSAPI_ERRTOK 65
124 #define SSH2_MSG_USERAUTH_GSSAPI_MIC 66
125
126 /*
127 * Packet type contexts, so that ssh2_pkt_type can correctly decode
128 * the ambiguous type numbers back into the correct type strings.
129 */
130 typedef enum {
131 SSH2_PKTCTX_NOKEX,
132 SSH2_PKTCTX_DHGROUP,
133 SSH2_PKTCTX_DHGEX,
134 SSH2_PKTCTX_RSAKEX
135 } Pkt_KCtx;
136 typedef enum {
137 SSH2_PKTCTX_NOAUTH,
138 SSH2_PKTCTX_PUBLICKEY,
139 SSH2_PKTCTX_PASSWORD,
140 SSH2_PKTCTX_GSSAPI,
141 SSH2_PKTCTX_KBDINTER
142 } Pkt_ACtx;
143
144 #define SSH2_DISCONNECT_HOST_NOT_ALLOWED_TO_CONNECT 1 /* 0x1 */
145 #define SSH2_DISCONNECT_PROTOCOL_ERROR 2 /* 0x2 */
146 #define SSH2_DISCONNECT_KEY_EXCHANGE_FAILED 3 /* 0x3 */
147 #define SSH2_DISCONNECT_HOST_AUTHENTICATION_FAILED 4 /* 0x4 */
148 #define SSH2_DISCONNECT_MAC_ERROR 5 /* 0x5 */
149 #define SSH2_DISCONNECT_COMPRESSION_ERROR 6 /* 0x6 */
150 #define SSH2_DISCONNECT_SERVICE_NOT_AVAILABLE 7 /* 0x7 */
151 #define SSH2_DISCONNECT_PROTOCOL_VERSION_NOT_SUPPORTED 8 /* 0x8 */
152 #define SSH2_DISCONNECT_HOST_KEY_NOT_VERIFIABLE 9 /* 0x9 */
153 #define SSH2_DISCONNECT_CONNECTION_LOST 10 /* 0xa */
154 #define SSH2_DISCONNECT_BY_APPLICATION 11 /* 0xb */
155 #define SSH2_DISCONNECT_TOO_MANY_CONNECTIONS 12 /* 0xc */
156 #define SSH2_DISCONNECT_AUTH_CANCELLED_BY_USER 13 /* 0xd */
157 #define SSH2_DISCONNECT_NO_MORE_AUTH_METHODS_AVAILABLE 14 /* 0xe */
158 #define SSH2_DISCONNECT_ILLEGAL_USER_NAME 15 /* 0xf */
159
160 static const char *const ssh2_disconnect_reasons[] = {
161 NULL,
162 "host not allowed to connect",
163 "protocol error",
164 "key exchange failed",
165 "host authentication failed",
166 "MAC error",
167 "compression error",
168 "service not available",
169 "protocol version not supported",
170 "host key not verifiable",
171 "connection lost",
172 "by application",
173 "too many connections",
174 "auth cancelled by user",
175 "no more auth methods available",
176 "illegal user name",
177 };
178
179 #define SSH2_OPEN_ADMINISTRATIVELY_PROHIBITED 1 /* 0x1 */
180 #define SSH2_OPEN_CONNECT_FAILED 2 /* 0x2 */
181 #define SSH2_OPEN_UNKNOWN_CHANNEL_TYPE 3 /* 0x3 */
182 #define SSH2_OPEN_RESOURCE_SHORTAGE 4 /* 0x4 */
183
184 #define SSH2_EXTENDED_DATA_STDERR 1 /* 0x1 */
185
186 /*
187 * Various remote-bug flags.
188 */
189 #define BUG_CHOKES_ON_SSH1_IGNORE 1
190 #define BUG_SSH2_HMAC 2
191 #define BUG_NEEDS_SSH1_PLAIN_PASSWORD 4
192 #define BUG_CHOKES_ON_RSA 8
193 #define BUG_SSH2_RSA_PADDING 16
194 #define BUG_SSH2_DERIVEKEY 32
195 #define BUG_SSH2_REKEY 64
196 #define BUG_SSH2_PK_SESSIONID 128
197 #define BUG_SSH2_MAXPKT 256
198 #define BUG_CHOKES_ON_SSH2_IGNORE 512
199
200 /*
201 * Codes for terminal modes.
202 * Most of these are the same in SSH-1 and SSH-2.
203 * This list is derived from RFC 4254 and
204 * SSH-1 RFC-1.2.31.
205 */
206 static const struct {
207 const char* const mode;
208 int opcode;
209 enum { TTY_OP_CHAR, TTY_OP_BOOL } type;
210 } ssh_ttymodes[] = {
211 /* "V" prefix discarded for special characters relative to SSH specs */
212 { "INTR", 1, TTY_OP_CHAR },
213 { "QUIT", 2, TTY_OP_CHAR },
214 { "ERASE", 3, TTY_OP_CHAR },
215 { "KILL", 4, TTY_OP_CHAR },
216 { "EOF", 5, TTY_OP_CHAR },
217 { "EOL", 6, TTY_OP_CHAR },
218 { "EOL2", 7, TTY_OP_CHAR },
219 { "START", 8, TTY_OP_CHAR },
220 { "STOP", 9, TTY_OP_CHAR },
221 { "SUSP", 10, TTY_OP_CHAR },
222 { "DSUSP", 11, TTY_OP_CHAR },
223 { "REPRINT", 12, TTY_OP_CHAR },
224 { "WERASE", 13, TTY_OP_CHAR },
225 { "LNEXT", 14, TTY_OP_CHAR },
226 { "FLUSH", 15, TTY_OP_CHAR },
227 { "SWTCH", 16, TTY_OP_CHAR },
228 { "STATUS", 17, TTY_OP_CHAR },
229 { "DISCARD", 18, TTY_OP_CHAR },
230 { "IGNPAR", 30, TTY_OP_BOOL },
231 { "PARMRK", 31, TTY_OP_BOOL },
232 { "INPCK", 32, TTY_OP_BOOL },
233 { "ISTRIP", 33, TTY_OP_BOOL },
234 { "INLCR", 34, TTY_OP_BOOL },
235 { "IGNCR", 35, TTY_OP_BOOL },
236 { "ICRNL", 36, TTY_OP_BOOL },
237 { "IUCLC", 37, TTY_OP_BOOL },
238 { "IXON", 38, TTY_OP_BOOL },
239 { "IXANY", 39, TTY_OP_BOOL },
240 { "IXOFF", 40, TTY_OP_BOOL },
241 { "IMAXBEL", 41, TTY_OP_BOOL },
242 { "ISIG", 50, TTY_OP_BOOL },
243 { "ICANON", 51, TTY_OP_BOOL },
244 { "XCASE", 52, TTY_OP_BOOL },
245 { "ECHO", 53, TTY_OP_BOOL },
246 { "ECHOE", 54, TTY_OP_BOOL },
247 { "ECHOK", 55, TTY_OP_BOOL },
248 { "ECHONL", 56, TTY_OP_BOOL },
249 { "NOFLSH", 57, TTY_OP_BOOL },
250 { "TOSTOP", 58, TTY_OP_BOOL },
251 { "IEXTEN", 59, TTY_OP_BOOL },
252 { "ECHOCTL", 60, TTY_OP_BOOL },
253 { "ECHOKE", 61, TTY_OP_BOOL },
254 { "PENDIN", 62, TTY_OP_BOOL }, /* XXX is this a real mode? */
255 { "OPOST", 70, TTY_OP_BOOL },
256 { "OLCUC", 71, TTY_OP_BOOL },
257 { "ONLCR", 72, TTY_OP_BOOL },
258 { "OCRNL", 73, TTY_OP_BOOL },
259 { "ONOCR", 74, TTY_OP_BOOL },
260 { "ONLRET", 75, TTY_OP_BOOL },
261 { "CS7", 90, TTY_OP_BOOL },
262 { "CS8", 91, TTY_OP_BOOL },
263 { "PARENB", 92, TTY_OP_BOOL },
264 { "PARODD", 93, TTY_OP_BOOL }
265 };
266
267 /* Miscellaneous other tty-related constants. */
268 #define SSH_TTY_OP_END 0
269 /* The opcodes for ISPEED/OSPEED differ between SSH-1 and SSH-2. */
270 #define SSH1_TTY_OP_ISPEED 192
271 #define SSH1_TTY_OP_OSPEED 193
272 #define SSH2_TTY_OP_ISPEED 128
273 #define SSH2_TTY_OP_OSPEED 129
274
275 /* Helper functions for parsing tty-related config. */
276 static unsigned int ssh_tty_parse_specchar(char *s)
277 {
278 unsigned int ret;
279 if (*s) {
280 char *next = NULL;
281 ret = ctrlparse(s, &next);
282 if (!next) ret = s[0];
283 } else {
284 ret = 255; /* special value meaning "don't set" */
285 }
286 return ret;
287 }
288 static unsigned int ssh_tty_parse_boolean(char *s)
289 {
290 if (stricmp(s, "yes") == 0 ||
291 stricmp(s, "on") == 0 ||
292 stricmp(s, "true") == 0 ||
293 stricmp(s, "+") == 0)
294 return 1; /* true */
295 else if (stricmp(s, "no") == 0 ||
296 stricmp(s, "off") == 0 ||
297 stricmp(s, "false") == 0 ||
298 stricmp(s, "-") == 0)
299 return 0; /* false */
300 else
301 return (atoi(s) != 0);
302 }
303
304 #define translate(x) if (type == x) return #x
305 #define translatek(x,ctx) if (type == x && (pkt_kctx == ctx)) return #x
306 #define translatea(x,ctx) if (type == x && (pkt_actx == ctx)) return #x
307 static char *ssh1_pkt_type(int type)
308 {
309 translate(SSH1_MSG_DISCONNECT);
310 translate(SSH1_SMSG_PUBLIC_KEY);
311 translate(SSH1_CMSG_SESSION_KEY);
312 translate(SSH1_CMSG_USER);
313 translate(SSH1_CMSG_AUTH_RSA);
314 translate(SSH1_SMSG_AUTH_RSA_CHALLENGE);
315 translate(SSH1_CMSG_AUTH_RSA_RESPONSE);
316 translate(SSH1_CMSG_AUTH_PASSWORD);
317 translate(SSH1_CMSG_REQUEST_PTY);
318 translate(SSH1_CMSG_WINDOW_SIZE);
319 translate(SSH1_CMSG_EXEC_SHELL);
320 translate(SSH1_CMSG_EXEC_CMD);
321 translate(SSH1_SMSG_SUCCESS);
322 translate(SSH1_SMSG_FAILURE);
323 translate(SSH1_CMSG_STDIN_DATA);
324 translate(SSH1_SMSG_STDOUT_DATA);
325 translate(SSH1_SMSG_STDERR_DATA);
326 translate(SSH1_CMSG_EOF);
327 translate(SSH1_SMSG_EXIT_STATUS);
328 translate(SSH1_MSG_CHANNEL_OPEN_CONFIRMATION);
329 translate(SSH1_MSG_CHANNEL_OPEN_FAILURE);
330 translate(SSH1_MSG_CHANNEL_DATA);
331 translate(SSH1_MSG_CHANNEL_CLOSE);
332 translate(SSH1_MSG_CHANNEL_CLOSE_CONFIRMATION);
333 translate(SSH1_SMSG_X11_OPEN);
334 translate(SSH1_CMSG_PORT_FORWARD_REQUEST);
335 translate(SSH1_MSG_PORT_OPEN);
336 translate(SSH1_CMSG_AGENT_REQUEST_FORWARDING);
337 translate(SSH1_SMSG_AGENT_OPEN);
338 translate(SSH1_MSG_IGNORE);
339 translate(SSH1_CMSG_EXIT_CONFIRMATION);
340 translate(SSH1_CMSG_X11_REQUEST_FORWARDING);
341 translate(SSH1_CMSG_AUTH_RHOSTS_RSA);
342 translate(SSH1_MSG_DEBUG);
343 translate(SSH1_CMSG_REQUEST_COMPRESSION);
344 translate(SSH1_CMSG_AUTH_TIS);
345 translate(SSH1_SMSG_AUTH_TIS_CHALLENGE);
346 translate(SSH1_CMSG_AUTH_TIS_RESPONSE);
347 translate(SSH1_CMSG_AUTH_CCARD);
348 translate(SSH1_SMSG_AUTH_CCARD_CHALLENGE);
349 translate(SSH1_CMSG_AUTH_CCARD_RESPONSE);
350 return "unknown";
351 }
352 static char *ssh2_pkt_type(Pkt_KCtx pkt_kctx, Pkt_ACtx pkt_actx, int type)
353 {
354 translatea(SSH2_MSG_USERAUTH_GSSAPI_RESPONSE,SSH2_PKTCTX_GSSAPI);
355 translatea(SSH2_MSG_USERAUTH_GSSAPI_TOKEN,SSH2_PKTCTX_GSSAPI);
356 translatea(SSH2_MSG_USERAUTH_GSSAPI_EXCHANGE_COMPLETE,SSH2_PKTCTX_GSSAPI);
357 translatea(SSH2_MSG_USERAUTH_GSSAPI_ERROR,SSH2_PKTCTX_GSSAPI);
358 translatea(SSH2_MSG_USERAUTH_GSSAPI_ERRTOK,SSH2_PKTCTX_GSSAPI);
359 translatea(SSH2_MSG_USERAUTH_GSSAPI_MIC, SSH2_PKTCTX_GSSAPI);
360 translate(SSH2_MSG_DISCONNECT);
361 translate(SSH2_MSG_IGNORE);
362 translate(SSH2_MSG_UNIMPLEMENTED);
363 translate(SSH2_MSG_DEBUG);
364 translate(SSH2_MSG_SERVICE_REQUEST);
365 translate(SSH2_MSG_SERVICE_ACCEPT);
366 translate(SSH2_MSG_KEXINIT);
367 translate(SSH2_MSG_NEWKEYS);
368 translatek(SSH2_MSG_KEXDH_INIT, SSH2_PKTCTX_DHGROUP);
369 translatek(SSH2_MSG_KEXDH_REPLY, SSH2_PKTCTX_DHGROUP);
370 translatek(SSH2_MSG_KEX_DH_GEX_REQUEST, SSH2_PKTCTX_DHGEX);
371 translatek(SSH2_MSG_KEX_DH_GEX_GROUP, SSH2_PKTCTX_DHGEX);
372 translatek(SSH2_MSG_KEX_DH_GEX_INIT, SSH2_PKTCTX_DHGEX);
373 translatek(SSH2_MSG_KEX_DH_GEX_REPLY, SSH2_PKTCTX_DHGEX);
374 translatek(SSH2_MSG_KEXRSA_PUBKEY, SSH2_PKTCTX_RSAKEX);
375 translatek(SSH2_MSG_KEXRSA_SECRET, SSH2_PKTCTX_RSAKEX);
376 translatek(SSH2_MSG_KEXRSA_DONE, SSH2_PKTCTX_RSAKEX);
377 translate(SSH2_MSG_USERAUTH_REQUEST);
378 translate(SSH2_MSG_USERAUTH_FAILURE);
379 translate(SSH2_MSG_USERAUTH_SUCCESS);
380 translate(SSH2_MSG_USERAUTH_BANNER);
381 translatea(SSH2_MSG_USERAUTH_PK_OK, SSH2_PKTCTX_PUBLICKEY);
382 translatea(SSH2_MSG_USERAUTH_PASSWD_CHANGEREQ, SSH2_PKTCTX_PASSWORD);
383 translatea(SSH2_MSG_USERAUTH_INFO_REQUEST, SSH2_PKTCTX_KBDINTER);
384 translatea(SSH2_MSG_USERAUTH_INFO_RESPONSE, SSH2_PKTCTX_KBDINTER);
385 translate(SSH2_MSG_GLOBAL_REQUEST);
386 translate(SSH2_MSG_REQUEST_SUCCESS);
387 translate(SSH2_MSG_REQUEST_FAILURE);
388 translate(SSH2_MSG_CHANNEL_OPEN);
389 translate(SSH2_MSG_CHANNEL_OPEN_CONFIRMATION);
390 translate(SSH2_MSG_CHANNEL_OPEN_FAILURE);
391 translate(SSH2_MSG_CHANNEL_WINDOW_ADJUST);
392 translate(SSH2_MSG_CHANNEL_DATA);
393 translate(SSH2_MSG_CHANNEL_EXTENDED_DATA);
394 translate(SSH2_MSG_CHANNEL_EOF);
395 translate(SSH2_MSG_CHANNEL_CLOSE);
396 translate(SSH2_MSG_CHANNEL_REQUEST);
397 translate(SSH2_MSG_CHANNEL_SUCCESS);
398 translate(SSH2_MSG_CHANNEL_FAILURE);
399 return "unknown";
400 }
401 #undef translate
402 #undef translatec
403
404 /* Enumeration values for fields in SSH-1 packets */
405 enum {
406 PKT_END, PKT_INT, PKT_CHAR, PKT_DATA, PKT_STR, PKT_BIGNUM,
407 /* These values are for communicating relevant semantics of
408 * fields to the packet logging code. */
409 PKTT_OTHER, PKTT_PASSWORD, PKTT_DATA
410 };
411
412 /*
413 * Coroutine mechanics for the sillier bits of the code. If these
414 * macros look impenetrable to you, you might find it helpful to
415 * read
416 *
417 * http://www.chiark.greenend.org.uk/~sgtatham/coroutines.html
418 *
419 * which explains the theory behind these macros.
420 *
421 * In particular, if you are getting `case expression not constant'
422 * errors when building with MS Visual Studio, this is because MS's
423 * Edit and Continue debugging feature causes their compiler to
424 * violate ANSI C. To disable Edit and Continue debugging:
425 *
426 * - right-click ssh.c in the FileView
427 * - click Settings
428 * - select the C/C++ tab and the General category
429 * - under `Debug info:', select anything _other_ than `Program
430 * Database for Edit and Continue'.
431 */
432 #define crBegin(v) { int *crLine = &v; switch(v) { case 0:;
433 #define crState(t) \
434 struct t *s; \
435 if (!ssh->t) ssh->t = snew(struct t); \
436 s = ssh->t;
437 #define crFinish(z) } *crLine = 0; return (z); }
438 #define crFinishV } *crLine = 0; return; }
439 #define crReturn(z) \
440 do {\
441 *crLine =__LINE__; return (z); case __LINE__:;\
442 } while (0)
443 #define crReturnV \
444 do {\
445 *crLine=__LINE__; return; case __LINE__:;\
446 } while (0)
447 #define crStop(z) do{ *crLine = 0; return (z); }while(0)
448 #define crStopV do{ *crLine = 0; return; }while(0)
449 #define crWaitUntil(c) do { crReturn(0); } while (!(c))
450 #define crWaitUntilV(c) do { crReturnV; } while (!(c))
451
452 typedef struct ssh_tag *Ssh;
453 struct Packet;
454
455 static struct Packet *ssh1_pkt_init(int pkt_type);
456 static struct Packet *ssh2_pkt_init(int pkt_type);
457 static void ssh_pkt_ensure(struct Packet *, int length);
458 static void ssh_pkt_adddata(struct Packet *, void *data, int len);
459 static void ssh_pkt_addbyte(struct Packet *, unsigned char value);
460 static void ssh2_pkt_addbool(struct Packet *, unsigned char value);
461 static void ssh_pkt_adduint32(struct Packet *, unsigned long value);
462 static void ssh_pkt_addstring_start(struct Packet *);
463 static void ssh_pkt_addstring_str(struct Packet *, char *data);
464 static void ssh_pkt_addstring_data(struct Packet *, char *data, int len);
465 static void ssh_pkt_addstring(struct Packet *, char *data);
466 static unsigned char *ssh2_mpint_fmt(Bignum b, int *len);
467 static void ssh1_pkt_addmp(struct Packet *, Bignum b);
468 static void ssh2_pkt_addmp(struct Packet *, Bignum b);
469 static int ssh2_pkt_construct(Ssh, struct Packet *);
470 static void ssh2_pkt_send(Ssh, struct Packet *);
471 static void ssh2_pkt_send_noqueue(Ssh, struct Packet *);
472 static int do_ssh1_login(Ssh ssh, unsigned char *in, int inlen,
473 struct Packet *pktin);
474 static void do_ssh2_authconn(Ssh ssh, unsigned char *in, int inlen,
475 struct Packet *pktin);
476 static void ssh2_channel_check_close(struct ssh_channel *c);
477 static void ssh_channel_destroy(struct ssh_channel *c);
478
479 /*
480 * Buffer management constants. There are several of these for
481 * various different purposes:
482 *
483 * - SSH1_BUFFER_LIMIT is the amount of backlog that must build up
484 * on a local data stream before we throttle the whole SSH
485 * connection (in SSH-1 only). Throttling the whole connection is
486 * pretty drastic so we set this high in the hope it won't
487 * happen very often.
488 *
489 * - SSH_MAX_BACKLOG is the amount of backlog that must build up
490 * on the SSH connection itself before we defensively throttle
491 * _all_ local data streams. This is pretty drastic too (though
492 * thankfully unlikely in SSH-2 since the window mechanism should
493 * ensure that the server never has any need to throttle its end
494 * of the connection), so we set this high as well.
495 *
496 * - OUR_V2_WINSIZE is the maximum window size we present on SSH-2
497 * channels.
498 *
499 * - OUR_V2_BIGWIN is the window size we advertise for the only
500 * channel in a simple connection. It must be <= INT_MAX.
501 *
502 * - OUR_V2_MAXPKT is the official "maximum packet size" we send
503 * to the remote side. This actually has nothing to do with the
504 * size of the _packet_, but is instead a limit on the amount
505 * of data we're willing to receive in a single SSH2 channel
506 * data message.
507 *
508 * - OUR_V2_PACKETLIMIT is actually the maximum size of SSH
509 * _packet_ we're prepared to cope with. It must be a multiple
510 * of the cipher block size, and must be at least 35000.
511 */
512
513 #define SSH1_BUFFER_LIMIT 32768
514 #define SSH_MAX_BACKLOG 32768
515 #define OUR_V2_WINSIZE 16384
516 #define OUR_V2_BIGWIN 0x7fffffff
517 #define OUR_V2_MAXPKT 0x4000UL
518 #define OUR_V2_PACKETLIMIT 0x9000UL
519
520 const static struct ssh_signkey *hostkey_algs[] = { &ssh_rsa, &ssh_dss };
521
522 const static struct ssh_mac *macs[] = {
523 &ssh_hmac_sha1, &ssh_hmac_sha1_96, &ssh_hmac_md5
524 };
525 const static struct ssh_mac *buggymacs[] = {
526 &ssh_hmac_sha1_buggy, &ssh_hmac_sha1_96_buggy, &ssh_hmac_md5
527 };
528
529 static void *ssh_comp_none_init(void)
530 {
531 return NULL;
532 }
533 static void ssh_comp_none_cleanup(void *handle)
534 {
535 }
536 static int ssh_comp_none_block(void *handle, unsigned char *block, int len,
537 unsigned char **outblock, int *outlen)
538 {
539 return 0;
540 }
541 static int ssh_comp_none_disable(void *handle)
542 {
543 return 0;
544 }
545 const static struct ssh_compress ssh_comp_none = {
546 "none", NULL,
547 ssh_comp_none_init, ssh_comp_none_cleanup, ssh_comp_none_block,
548 ssh_comp_none_init, ssh_comp_none_cleanup, ssh_comp_none_block,
549 ssh_comp_none_disable, NULL
550 };
551 extern const struct ssh_compress ssh_zlib;
552 const static struct ssh_compress *compressions[] = {
553 &ssh_zlib, &ssh_comp_none
554 };
555
556 enum { /* channel types */
557 CHAN_MAINSESSION,
558 CHAN_X11,
559 CHAN_AGENT,
560 CHAN_SOCKDATA,
561 CHAN_SOCKDATA_DORMANT, /* one the remote hasn't confirmed */
562 /*
563 * CHAN_ZOMBIE is used to indicate a channel for which we've
564 * already destroyed the local data source: for instance, if a
565 * forwarded port experiences a socket error on the local side, we
566 * immediately destroy its local socket and turn the SSH channel
567 * into CHAN_ZOMBIE.
568 */
569 CHAN_ZOMBIE
570 };
571
572 /*
573 * little structure to keep track of outstanding WINDOW_ADJUSTs
574 */
575 struct winadj {
576 struct winadj *next;
577 unsigned size;
578 };
579
580 /*
581 * 2-3-4 tree storing channels.
582 */
583 struct ssh_channel {
584 Ssh ssh; /* pointer back to main context */
585 unsigned remoteid, localid;
586 int type;
587 /* True if we opened this channel but server hasn't confirmed. */
588 int halfopen;
589 /*
590 * In SSH-1, this value contains four bits:
591 *
592 * 1 We have sent SSH1_MSG_CHANNEL_CLOSE.
593 * 2 We have sent SSH1_MSG_CHANNEL_CLOSE_CONFIRMATION.
594 * 4 We have received SSH1_MSG_CHANNEL_CLOSE.
595 * 8 We have received SSH1_MSG_CHANNEL_CLOSE_CONFIRMATION.
596 *
597 * A channel is completely finished with when all four bits are set.
598 *
599 * In SSH-2, the four bits mean:
600 *
601 * 1 We have sent SSH2_MSG_CHANNEL_EOF.
602 * 2 We have sent SSH2_MSG_CHANNEL_CLOSE.
603 * 4 We have received SSH2_MSG_CHANNEL_EOF.
604 * 8 We have received SSH2_MSG_CHANNEL_CLOSE.
605 *
606 * A channel is completely finished with when we have both sent
607 * and received CLOSE.
608 *
609 * The symbolic constants below use the SSH-2 terminology, which
610 * is a bit confusing in SSH-1, but we have to use _something_.
611 */
612 #define CLOSES_SENT_EOF 1
613 #define CLOSES_SENT_CLOSE 2
614 #define CLOSES_RCVD_EOF 4
615 #define CLOSES_RCVD_CLOSE 8
616 int closes;
617
618 /*
619 * This flag indicates that an EOF is pending on the outgoing side
620 * of the channel: that is, wherever we're getting the data for
621 * this channel has sent us some data followed by EOF. We can't
622 * actually send the EOF until we've finished sending the data, so
623 * we set this flag instead to remind us to do so once our buffer
624 * is clear.
625 */
626 int pending_eof;
627
628 /*
629 * True if this channel is causing the underlying connection to be
630 * throttled.
631 */
632 int throttling_conn;
633 union {
634 struct ssh2_data_channel {
635 bufchain outbuffer;
636 unsigned remwindow, remmaxpkt;
637 /* locwindow is signed so we can cope with excess data. */
638 int locwindow, locmaxwin;
639 /*
640 * remlocwin is the amount of local window that we think
641 * the remote end had available to it after it sent the
642 * last data packet or window adjust ack.
643 */
644 int remlocwin;
645 /*
646 * These store the list of window adjusts that haven't
647 * been acked.
648 */
649 struct winadj *winadj_head, *winadj_tail;
650 enum { THROTTLED, UNTHROTTLING, UNTHROTTLED } throttle_state;
651 } v2;
652 } v;
653 union {
654 struct ssh_agent_channel {
655 unsigned char *message;
656 unsigned char msglen[4];
657 unsigned lensofar, totallen;
658 } a;
659 struct ssh_x11_channel {
660 Socket s;
661 } x11;
662 struct ssh_pfd_channel {
663 Socket s;
664 } pfd;
665 } u;
666 };
667
668 /*
669 * 2-3-4 tree storing remote->local port forwardings. SSH-1 and SSH-2
670 * use this structure in different ways, reflecting SSH-2's
671 * altogether saner approach to port forwarding.
672 *
673 * In SSH-1, you arrange a remote forwarding by sending the server
674 * the remote port number, and the local destination host:port.
675 * When a connection comes in, the server sends you back that
676 * host:port pair, and you connect to it. This is a ready-made
677 * security hole if you're not on the ball: a malicious server
678 * could send you back _any_ host:port pair, so if you trustingly
679 * connect to the address it gives you then you've just opened the
680 * entire inside of your corporate network just by connecting
681 * through it to a dodgy SSH server. Hence, we must store a list of
682 * host:port pairs we _are_ trying to forward to, and reject a
683 * connection request from the server if it's not in the list.
684 *
685 * In SSH-2, each side of the connection minds its own business and
686 * doesn't send unnecessary information to the other. You arrange a
687 * remote forwarding by sending the server just the remote port
688 * number. When a connection comes in, the server tells you which
689 * of its ports was connected to; and _you_ have to remember what
690 * local host:port pair went with that port number.
691 *
692 * Hence, in SSH-1 this structure is indexed by destination
693 * host:port pair, whereas in SSH-2 it is indexed by source port.
694 */
695 struct ssh_portfwd; /* forward declaration */
696
697 struct ssh_rportfwd {
698 unsigned sport, dport;
699 char dhost[256];
700 char *sportdesc;
701 struct ssh_portfwd *pfrec;
702 };
703 #define free_rportfwd(pf) ( \
704 ((pf) ? (sfree((pf)->sportdesc)) : (void)0 ), sfree(pf) )
705
706 /*
707 * Separately to the rportfwd tree (which is for looking up port
708 * open requests from the server), a tree of _these_ structures is
709 * used to keep track of all the currently open port forwardings,
710 * so that we can reconfigure in mid-session if the user requests
711 * it.
712 */
713 struct ssh_portfwd {
714 enum { DESTROY, KEEP, CREATE } status;
715 int type;
716 unsigned sport, dport;
717 char *saddr, *daddr;
718 char *sserv, *dserv;
719 struct ssh_rportfwd *remote;
720 int addressfamily;
721 void *local;
722 };
723 #define free_portfwd(pf) ( \
724 ((pf) ? (sfree((pf)->saddr), sfree((pf)->daddr), \
725 sfree((pf)->sserv), sfree((pf)->dserv)) : (void)0 ), sfree(pf) )
726
727 struct Packet {
728 long length; /* length of `data' actually used */
729 long forcepad; /* SSH-2: force padding to at least this length */
730 int type; /* only used for incoming packets */
731 unsigned long sequence; /* SSH-2 incoming sequence number */
732 unsigned char *data; /* allocated storage */
733 unsigned char *body; /* offset of payload within `data' */
734 long savedpos; /* temporary index into `data' (for strings) */
735 long maxlen; /* amount of storage allocated for `data' */
736 long encrypted_len; /* for SSH-2 total-size counting */
737
738 /*
739 * State associated with packet logging
740 */
741 int logmode;
742 int nblanks;
743 struct logblank_t *blanks;
744 };
745
746 static void ssh1_protocol(Ssh ssh, void *vin, int inlen,
747 struct Packet *pktin);
748 static void ssh2_protocol(Ssh ssh, void *vin, int inlen,
749 struct Packet *pktin);
750 static void ssh1_protocol_setup(Ssh ssh);
751 static void ssh2_protocol_setup(Ssh ssh);
752 static void ssh_size(void *handle, int width, int height);
753 static void ssh_special(void *handle, Telnet_Special);
754 static int ssh2_try_send(struct ssh_channel *c);
755 static void ssh2_add_channel_data(struct ssh_channel *c, char *buf, int len);
756 static void ssh_throttle_all(Ssh ssh, int enable, int bufsize);
757 static void ssh2_set_window(struct ssh_channel *c, int newwin);
758 static int ssh_sendbuffer(void *handle);
759 static int ssh_do_close(Ssh ssh, int notify_exit);
760 static unsigned long ssh_pkt_getuint32(struct Packet *pkt);
761 static int ssh2_pkt_getbool(struct Packet *pkt);
762 static void ssh_pkt_getstring(struct Packet *pkt, char **p, int *length);
763 static void ssh2_timer(void *ctx, long now);
764 static int do_ssh2_transport(Ssh ssh, void *vin, int inlen,
765 struct Packet *pktin);
766
767 struct rdpkt1_state_tag {
768 long len, pad, biglen, to_read;
769 unsigned long realcrc, gotcrc;
770 unsigned char *p;
771 int i;
772 int chunk;
773 struct Packet *pktin;
774 };
775
776 struct rdpkt2_state_tag {
777 long len, pad, payload, packetlen, maclen;
778 int i;
779 int cipherblk;
780 unsigned long incoming_sequence;
781 struct Packet *pktin;
782 };
783
784 typedef void (*handler_fn_t)(Ssh ssh, struct Packet *pktin);
785 typedef void (*chandler_fn_t)(Ssh ssh, struct Packet *pktin, void *ctx);
786
787 struct queued_handler;
788 struct queued_handler {
789 int msg1, msg2;
790 chandler_fn_t handler;
791 void *ctx;
792 struct queued_handler *next;
793 };
794
795 struct ssh_tag {
796 const struct plug_function_table *fn;
797 /* the above field _must_ be first in the structure */
798
799 char *v_c, *v_s;
800 void *exhash;
801
802 Socket s;
803
804 void *ldisc;
805 void *logctx;
806
807 unsigned char session_key[32];
808 int v1_compressing;
809 int v1_remote_protoflags;
810 int v1_local_protoflags;
811 int agentfwd_enabled;
812 int X11_fwd_enabled;
813 int remote_bugs;
814 const struct ssh_cipher *cipher;
815 void *v1_cipher_ctx;
816 void *crcda_ctx;
817 const struct ssh2_cipher *cscipher, *sccipher;
818 void *cs_cipher_ctx, *sc_cipher_ctx;
819 const struct ssh_mac *csmac, *scmac;
820 void *cs_mac_ctx, *sc_mac_ctx;
821 const struct ssh_compress *cscomp, *sccomp;
822 void *cs_comp_ctx, *sc_comp_ctx;
823 const struct ssh_kex *kex;
824 const struct ssh_signkey *hostkey;
825 unsigned char v2_session_id[SSH2_KEX_MAX_HASH_LEN];
826 int v2_session_id_len;
827 void *kex_ctx;
828
829 char *savedhost;
830 int savedport;
831 int send_ok;
832 int echoing, editing;
833
834 void *frontend;
835
836 int ospeed, ispeed; /* temporaries */
837 int term_width, term_height;
838
839 tree234 *channels; /* indexed by local id */
840 struct ssh_channel *mainchan; /* primary session channel */
841 int ncmode; /* is primary channel direct-tcpip? */
842 int exitcode;
843 int close_expected;
844 int clean_exit;
845
846 tree234 *rportfwds, *portfwds;
847
848 enum {
849 SSH_STATE_PREPACKET,
850 SSH_STATE_BEFORE_SIZE,
851 SSH_STATE_INTERMED,
852 SSH_STATE_SESSION,
853 SSH_STATE_CLOSED
854 } state;
855
856 int size_needed, eof_needed;
857 int sent_console_eof;
858 int got_pty; /* affects EOF behaviour on main channel */
859
860 struct Packet **queue;
861 int queuelen, queuesize;
862 int queueing;
863 unsigned char *deferred_send_data;
864 int deferred_len, deferred_size;
865
866 /*
867 * Gross hack: pscp will try to start SFTP but fall back to
868 * scp1 if that fails. This variable is the means by which
869 * scp.c can reach into the SSH code and find out which one it
870 * got.
871 */
872 int fallback_cmd;
873
874 bufchain banner; /* accumulates banners during do_ssh2_authconn */
875
876 Pkt_KCtx pkt_kctx;
877 Pkt_ACtx pkt_actx;
878
879 struct X11Display *x11disp;
880
881 int version;
882 int conn_throttle_count;
883 int overall_bufsize;
884 int throttled_all;
885 int v1_stdout_throttling;
886 unsigned long v2_outgoing_sequence;
887
888 int ssh1_rdpkt_crstate;
889 int ssh2_rdpkt_crstate;
890 int do_ssh_init_crstate;
891 int ssh_gotdata_crstate;
892 int do_ssh1_login_crstate;
893 int do_ssh1_connection_crstate;
894 int do_ssh2_transport_crstate;
895 int do_ssh2_authconn_crstate;
896
897 void *do_ssh_init_state;
898 void *do_ssh1_login_state;
899 void *do_ssh2_transport_state;
900 void *do_ssh2_authconn_state;
901
902 struct rdpkt1_state_tag rdpkt1_state;
903 struct rdpkt2_state_tag rdpkt2_state;
904
905 /* SSH-1 and SSH-2 use this for different things, but both use it */
906 int protocol_initial_phase_done;
907
908 void (*protocol) (Ssh ssh, void *vin, int inlen,
909 struct Packet *pkt);
910 struct Packet *(*s_rdpkt) (Ssh ssh, unsigned char **data, int *datalen);
911
912 /*
913 * We maintain our own copy of a Conf structure here. That way,
914 * when we're passed a new one for reconfiguration, we can check
915 * the differences and potentially reconfigure port forwardings
916 * etc in mid-session.
917 */
918 Conf *conf;
919
920 /*
921 * Values cached out of conf so as to avoid the tree234 lookup
922 * cost every time they're used.
923 */
924 int logomitdata;
925
926 /*
927 * Dynamically allocated username string created during SSH
928 * login. Stored in here rather than in the coroutine state so
929 * that it'll be reliably freed if we shut down the SSH session
930 * at some unexpected moment.
931 */
932 char *username;
933
934 /*
935 * Used to transfer data back from async callbacks.
936 */
937 void *agent_response;
938 int agent_response_len;
939 int user_response;
940
941 /*
942 * The SSH connection can be set as `frozen', meaning we are
943 * not currently accepting incoming data from the network. This
944 * is slightly more serious than setting the _socket_ as
945 * frozen, because we may already have had data passed to us
946 * from the network which we need to delay processing until
947 * after the freeze is lifted, so we also need a bufchain to
948 * store that data.
949 */
950 int frozen;
951 bufchain queued_incoming_data;
952
953 /*
954 * Dispatch table for packet types that we may have to deal
955 * with at any time.
956 */
957 handler_fn_t packet_dispatch[256];
958
959 /*
960 * Queues of one-off handler functions for success/failure
961 * indications from a request.
962 */
963 struct queued_handler *qhead, *qtail;
964
965 /*
966 * This module deals with sending keepalives.
967 */
968 Pinger pinger;
969
970 /*
971 * Track incoming and outgoing data sizes and time, for
972 * size-based rekeys.
973 */
974 unsigned long incoming_data_size, outgoing_data_size, deferred_data_size;
975 unsigned long max_data_size;
976 int kex_in_progress;
977 long next_rekey, last_rekey;
978 char *deferred_rekey_reason; /* points to STATIC string; don't free */
979
980 /*
981 * Fully qualified host name, which we need if doing GSSAPI.
982 */
983 char *fullhostname;
984
985 #ifndef NO_GSSAPI
986 /*
987 * GSSAPI libraries for this session.
988 */
989 struct ssh_gss_liblist *gsslibs;
990 #endif
991 };
992
993 #define logevent(s) logevent(ssh->frontend, s)
994
995 /* logevent, only printf-formatted. */
996 static void logeventf(Ssh ssh, const char *fmt, ...)
997 {
998 va_list ap;
999 char *buf;
1000
1001 va_start(ap, fmt);
1002 buf = dupvprintf(fmt, ap);
1003 va_end(ap);
1004 logevent(buf);
1005 sfree(buf);
1006 }
1007
1008 #define bombout(msg) \
1009 do { \
1010 char *text = dupprintf msg; \
1011 ssh_do_close(ssh, FALSE); \
1012 logevent(text); \
1013 connection_fatal(ssh->frontend, "%s", text); \
1014 sfree(text); \
1015 } while (0)
1016
1017 /* Functions to leave bits out of the SSH packet log file. */
1018
1019 static void dont_log_password(Ssh ssh, struct Packet *pkt, int blanktype)
1020 {
1021 if (conf_get_int(ssh->conf, CONF_logomitpass))
1022 pkt->logmode = blanktype;
1023 }
1024
1025 static void dont_log_data(Ssh ssh, struct Packet *pkt, int blanktype)
1026 {
1027 if (ssh->logomitdata)
1028 pkt->logmode = blanktype;
1029 }
1030
1031 static void end_log_omission(Ssh ssh, struct Packet *pkt)
1032 {
1033 pkt->logmode = PKTLOG_EMIT;
1034 }
1035
1036 /* Helper function for common bits of parsing ttymodes. */
1037 static void parse_ttymodes(Ssh ssh,
1038 void (*do_mode)(void *data, char *mode, char *val),
1039 void *data)
1040 {
1041 char *key, *val;
1042
1043 for (val = conf_get_str_strs(ssh->conf, CONF_ttymodes, NULL, &key);
1044 val != NULL;
1045 val = conf_get_str_strs(ssh->conf, CONF_ttymodes, key, &key)) {
1046 /*
1047 * val[0] is either 'V', indicating that an explicit value
1048 * follows it, or 'A' indicating that we should pass the
1049 * value through from the local environment via get_ttymode.
1050 */
1051 if (val[0] == 'A')
1052 val = get_ttymode(ssh->frontend, key);
1053 else
1054 val++; /* skip the 'V' */
1055 if (val)
1056 do_mode(data, key, val);
1057 }
1058 }
1059
1060 static int ssh_channelcmp(void *av, void *bv)
1061 {
1062 struct ssh_channel *a = (struct ssh_channel *) av;
1063 struct ssh_channel *b = (struct ssh_channel *) bv;
1064 if (a->localid < b->localid)
1065 return -1;
1066 if (a->localid > b->localid)
1067 return +1;
1068 return 0;
1069 }
1070 static int ssh_channelfind(void *av, void *bv)
1071 {
1072 unsigned *a = (unsigned *) av;
1073 struct ssh_channel *b = (struct ssh_channel *) bv;
1074 if (*a < b->localid)
1075 return -1;
1076 if (*a > b->localid)
1077 return +1;
1078 return 0;
1079 }
1080
1081 static int ssh_rportcmp_ssh1(void *av, void *bv)
1082 {
1083 struct ssh_rportfwd *a = (struct ssh_rportfwd *) av;
1084 struct ssh_rportfwd *b = (struct ssh_rportfwd *) bv;
1085 int i;
1086 if ( (i = strcmp(a->dhost, b->dhost)) != 0)
1087 return i < 0 ? -1 : +1;
1088 if (a->dport > b->dport)
1089 return +1;
1090 if (a->dport < b->dport)
1091 return -1;
1092 return 0;
1093 }
1094
1095 static int ssh_rportcmp_ssh2(void *av, void *bv)
1096 {
1097 struct ssh_rportfwd *a = (struct ssh_rportfwd *) av;
1098 struct ssh_rportfwd *b = (struct ssh_rportfwd *) bv;
1099
1100 if (a->sport > b->sport)
1101 return +1;
1102 if (a->sport < b->sport)
1103 return -1;
1104 return 0;
1105 }
1106
1107 /*
1108 * Special form of strcmp which can cope with NULL inputs. NULL is
1109 * defined to sort before even the empty string.
1110 */
1111 static int nullstrcmp(const char *a, const char *b)
1112 {
1113 if (a == NULL && b == NULL)
1114 return 0;
1115 if (a == NULL)
1116 return -1;
1117 if (b == NULL)
1118 return +1;
1119 return strcmp(a, b);
1120 }
1121
1122 static int ssh_portcmp(void *av, void *bv)
1123 {
1124 struct ssh_portfwd *a = (struct ssh_portfwd *) av;
1125 struct ssh_portfwd *b = (struct ssh_portfwd *) bv;
1126 int i;
1127 if (a->type > b->type)
1128 return +1;
1129 if (a->type < b->type)
1130 return -1;
1131 if (a->addressfamily > b->addressfamily)
1132 return +1;
1133 if (a->addressfamily < b->addressfamily)
1134 return -1;
1135 if ( (i = nullstrcmp(a->saddr, b->saddr)) != 0)
1136 return i < 0 ? -1 : +1;
1137 if (a->sport > b->sport)
1138 return +1;
1139 if (a->sport < b->sport)
1140 return -1;
1141 if (a->type != 'D') {
1142 if ( (i = nullstrcmp(a->daddr, b->daddr)) != 0)
1143 return i < 0 ? -1 : +1;
1144 if (a->dport > b->dport)
1145 return +1;
1146 if (a->dport < b->dport)
1147 return -1;
1148 }
1149 return 0;
1150 }
1151
1152 static int alloc_channel_id(Ssh ssh)
1153 {
1154 const unsigned CHANNEL_NUMBER_OFFSET = 256;
1155 unsigned low, high, mid;
1156 int tsize;
1157 struct ssh_channel *c;
1158
1159 /*
1160 * First-fit allocation of channel numbers: always pick the
1161 * lowest unused one. To do this, binary-search using the
1162 * counted B-tree to find the largest channel ID which is in a
1163 * contiguous sequence from the beginning. (Precisely
1164 * everything in that sequence must have ID equal to its tree
1165 * index plus CHANNEL_NUMBER_OFFSET.)
1166 */
1167 tsize = count234(ssh->channels);
1168
1169 low = -1;
1170 high = tsize;
1171 while (high - low > 1) {
1172 mid = (high + low) / 2;
1173 c = index234(ssh->channels, mid);
1174 if (c->localid == mid + CHANNEL_NUMBER_OFFSET)
1175 low = mid; /* this one is fine */
1176 else
1177 high = mid; /* this one is past it */
1178 }
1179 /*
1180 * Now low points to either -1, or the tree index of the
1181 * largest ID in the initial sequence.
1182 */
1183 {
1184 unsigned i = low + 1 + CHANNEL_NUMBER_OFFSET;
1185 assert(NULL == find234(ssh->channels, &i, ssh_channelfind));
1186 }
1187 return low + 1 + CHANNEL_NUMBER_OFFSET;
1188 }
1189
1190 static void c_write_stderr(int trusted, const char *buf, int len)
1191 {
1192 int i;
1193 for (i = 0; i < len; i++)
1194 if (buf[i] != '\r' && (trusted || buf[i] == '\n' || (buf[i] & 0x60)))
1195 fputc(buf[i], stderr);
1196 }
1197
1198 static void c_write(Ssh ssh, const char *buf, int len)
1199 {
1200 if (flags & FLAG_STDERR)
1201 c_write_stderr(1, buf, len);
1202 else
1203 from_backend(ssh->frontend, 1, buf, len);
1204 }
1205
1206 static void c_write_untrusted(Ssh ssh, const char *buf, int len)
1207 {
1208 if (flags & FLAG_STDERR)
1209 c_write_stderr(0, buf, len);
1210 else
1211 from_backend_untrusted(ssh->frontend, buf, len);
1212 }
1213
1214 static void c_write_str(Ssh ssh, const char *buf)
1215 {
1216 c_write(ssh, buf, strlen(buf));
1217 }
1218
1219 static void ssh_free_packet(struct Packet *pkt)
1220 {
1221 sfree(pkt->data);
1222 sfree(pkt);
1223 }
1224 static struct Packet *ssh_new_packet(void)
1225 {
1226 struct Packet *pkt = snew(struct Packet);
1227
1228 pkt->body = pkt->data = NULL;
1229 pkt->maxlen = 0;
1230 pkt->logmode = PKTLOG_EMIT;
1231 pkt->nblanks = 0;
1232 pkt->blanks = NULL;
1233
1234 return pkt;
1235 }
1236
1237 /*
1238 * Collect incoming data in the incoming packet buffer.
1239 * Decipher and verify the packet when it is completely read.
1240 * Drop SSH1_MSG_DEBUG and SSH1_MSG_IGNORE packets.
1241 * Update the *data and *datalen variables.
1242 * Return a Packet structure when a packet is completed.
1243 */
1244 static struct Packet *ssh1_rdpkt(Ssh ssh, unsigned char **data, int *datalen)
1245 {
1246 struct rdpkt1_state_tag *st = &ssh->rdpkt1_state;
1247
1248 crBegin(ssh->ssh1_rdpkt_crstate);
1249
1250 st->pktin = ssh_new_packet();
1251
1252 st->pktin->type = 0;
1253 st->pktin->length = 0;
1254
1255 for (st->i = st->len = 0; st->i < 4; st->i++) {
1256 while ((*datalen) == 0)
1257 crReturn(NULL);
1258 st->len = (st->len << 8) + **data;
1259 (*data)++, (*datalen)--;
1260 }
1261
1262 st->pad = 8 - (st->len % 8);
1263 st->biglen = st->len + st->pad;
1264 st->pktin->length = st->len - 5;
1265
1266 if (st->biglen < 0) {
1267 bombout(("Extremely large packet length from server suggests"
1268 " data stream corruption"));
1269 ssh_free_packet(st->pktin);
1270 crStop(NULL);
1271 }
1272
1273 st->pktin->maxlen = st->biglen;
1274 st->pktin->data = snewn(st->biglen + APIEXTRA, unsigned char);
1275
1276 st->to_read = st->biglen;
1277 st->p = st->pktin->data;
1278 while (st->to_read > 0) {
1279 st->chunk = st->to_read;
1280 while ((*datalen) == 0)
1281 crReturn(NULL);
1282 if (st->chunk > (*datalen))
1283 st->chunk = (*datalen);
1284 memcpy(st->p, *data, st->chunk);
1285 *data += st->chunk;
1286 *datalen -= st->chunk;
1287 st->p += st->chunk;
1288 st->to_read -= st->chunk;
1289 }
1290
1291 if (ssh->cipher && detect_attack(ssh->crcda_ctx, st->pktin->data,
1292 st->biglen, NULL)) {
1293 bombout(("Network attack (CRC compensation) detected!"));
1294 ssh_free_packet(st->pktin);
1295 crStop(NULL);
1296 }
1297
1298 if (ssh->cipher)
1299 ssh->cipher->decrypt(ssh->v1_cipher_ctx, st->pktin->data, st->biglen);
1300
1301 st->realcrc = crc32_compute(st->pktin->data, st->biglen - 4);
1302 st->gotcrc = GET_32BIT(st->pktin->data + st->biglen - 4);
1303 if (st->gotcrc != st->realcrc) {
1304 bombout(("Incorrect CRC received on packet"));
1305 ssh_free_packet(st->pktin);
1306 crStop(NULL);
1307 }
1308
1309 st->pktin->body = st->pktin->data + st->pad + 1;
1310 st->pktin->savedpos = 0;
1311
1312 if (ssh->v1_compressing) {
1313 unsigned char *decompblk;
1314 int decomplen;
1315 if (!zlib_decompress_block(ssh->sc_comp_ctx,
1316 st->pktin->body - 1, st->pktin->length + 1,
1317 &decompblk, &decomplen)) {
1318 bombout(("Zlib decompression encountered invalid data"));
1319 ssh_free_packet(st->pktin);
1320 crStop(NULL);
1321 }
1322
1323 if (st->pktin->maxlen < st->pad + decomplen) {
1324 st->pktin->maxlen = st->pad + decomplen;
1325 st->pktin->data = sresize(st->pktin->data,
1326 st->pktin->maxlen + APIEXTRA,
1327 unsigned char);
1328 st->pktin->body = st->pktin->data + st->pad + 1;
1329 }
1330
1331 memcpy(st->pktin->body - 1, decompblk, decomplen);
1332 sfree(decompblk);
1333 st->pktin->length = decomplen - 1;
1334 }
1335
1336 st->pktin->type = st->pktin->body[-1];
1337
1338 /*
1339 * Log incoming packet, possibly omitting sensitive fields.
1340 */
1341 if (ssh->logctx) {
1342 int nblanks = 0;
1343 struct logblank_t blank;
1344 if (ssh->logomitdata) {
1345 int do_blank = FALSE, blank_prefix = 0;
1346 /* "Session data" packets - omit the data field */
1347 if ((st->pktin->type == SSH1_SMSG_STDOUT_DATA) ||
1348 (st->pktin->type == SSH1_SMSG_STDERR_DATA)) {
1349 do_blank = TRUE; blank_prefix = 4;
1350 } else if (st->pktin->type == SSH1_MSG_CHANNEL_DATA) {
1351 do_blank = TRUE; blank_prefix = 8;
1352 }
1353 if (do_blank) {
1354 blank.offset = blank_prefix;
1355 blank.len = st->pktin->length;
1356 blank.type = PKTLOG_OMIT;
1357 nblanks = 1;
1358 }
1359 }
1360 log_packet(ssh->logctx,
1361 PKT_INCOMING, st->pktin->type,
1362 ssh1_pkt_type(st->pktin->type),
1363 st->pktin->body, st->pktin->length,
1364 nblanks, &blank, NULL);
1365 }
1366
1367 crFinish(st->pktin);
1368 }
1369
1370 static struct Packet *ssh2_rdpkt(Ssh ssh, unsigned char **data, int *datalen)
1371 {
1372 struct rdpkt2_state_tag *st = &ssh->rdpkt2_state;
1373
1374 crBegin(ssh->ssh2_rdpkt_crstate);
1375
1376 st->pktin = ssh_new_packet();
1377
1378 st->pktin->type = 0;
1379 st->pktin->length = 0;
1380 if (ssh->sccipher)
1381 st->cipherblk = ssh->sccipher->blksize;
1382 else
1383 st->cipherblk = 8;
1384 if (st->cipherblk < 8)
1385 st->cipherblk = 8;
1386 st->maclen = ssh->scmac ? ssh->scmac->len : 0;
1387
1388 if (ssh->sccipher && (ssh->sccipher->flags & SSH_CIPHER_IS_CBC) &&
1389 ssh->scmac) {
1390 /*
1391 * When dealing with a CBC-mode cipher, we want to avoid the
1392 * possibility of an attacker's tweaking the ciphertext stream
1393 * so as to cause us to feed the same block to the block
1394 * cipher more than once and thus leak information
1395 * (VU#958563). The way we do this is not to take any
1396 * decisions on the basis of anything we've decrypted until
1397 * we've verified it with a MAC. That includes the packet
1398 * length, so we just read data and check the MAC repeatedly,
1399 * and when the MAC passes, see if the length we've got is
1400 * plausible.
1401 */
1402
1403 /* May as well allocate the whole lot now. */
1404 st->pktin->data = snewn(OUR_V2_PACKETLIMIT + st->maclen + APIEXTRA,
1405 unsigned char);
1406
1407 /* Read an amount corresponding to the MAC. */
1408 for (st->i = 0; st->i < st->maclen; st->i++) {
1409 while ((*datalen) == 0)
1410 crReturn(NULL);
1411 st->pktin->data[st->i] = *(*data)++;
1412 (*datalen)--;
1413 }
1414
1415 st->packetlen = 0;
1416 {
1417 unsigned char seq[4];
1418 ssh->scmac->start(ssh->sc_mac_ctx);
1419 PUT_32BIT(seq, st->incoming_sequence);
1420 ssh->scmac->bytes(ssh->sc_mac_ctx, seq, 4);
1421 }
1422
1423 for (;;) { /* Once around this loop per cipher block. */
1424 /* Read another cipher-block's worth, and tack it onto the end. */
1425 for (st->i = 0; st->i < st->cipherblk; st->i++) {
1426 while ((*datalen) == 0)
1427 crReturn(NULL);
1428 st->pktin->data[st->packetlen+st->maclen+st->i] = *(*data)++;
1429 (*datalen)--;
1430 }
1431 /* Decrypt one more block (a little further back in the stream). */
1432 ssh->sccipher->decrypt(ssh->sc_cipher_ctx,
1433 st->pktin->data + st->packetlen,
1434 st->cipherblk);
1435 /* Feed that block to the MAC. */
1436 ssh->scmac->bytes(ssh->sc_mac_ctx,
1437 st->pktin->data + st->packetlen, st->cipherblk);
1438 st->packetlen += st->cipherblk;
1439 /* See if that gives us a valid packet. */
1440 if (ssh->scmac->verresult(ssh->sc_mac_ctx,
1441 st->pktin->data + st->packetlen) &&
1442 (st->len = GET_32BIT(st->pktin->data)) + 4 == st->packetlen)
1443 break;
1444 if (st->packetlen >= OUR_V2_PACKETLIMIT) {
1445 bombout(("No valid incoming packet found"));
1446 ssh_free_packet(st->pktin);
1447 crStop(NULL);
1448 }
1449 }
1450 st->pktin->maxlen = st->packetlen + st->maclen;
1451 st->pktin->data = sresize(st->pktin->data,
1452 st->pktin->maxlen + APIEXTRA,
1453 unsigned char);
1454 } else {
1455 st->pktin->data = snewn(st->cipherblk + APIEXTRA, unsigned char);
1456
1457 /*
1458 * Acquire and decrypt the first block of the packet. This will
1459 * contain the length and padding details.
1460 */
1461 for (st->i = st->len = 0; st->i < st->cipherblk; st->i++) {
1462 while ((*datalen) == 0)
1463 crReturn(NULL);
1464 st->pktin->data[st->i] = *(*data)++;
1465 (*datalen)--;
1466 }
1467
1468 if (ssh->sccipher)
1469 ssh->sccipher->decrypt(ssh->sc_cipher_ctx,
1470 st->pktin->data, st->cipherblk);
1471
1472 /*
1473 * Now get the length figure.
1474 */
1475 st->len = GET_32BIT(st->pktin->data);
1476
1477 /*
1478 * _Completely_ silly lengths should be stomped on before they
1479 * do us any more damage.
1480 */
1481 if (st->len < 0 || st->len > OUR_V2_PACKETLIMIT ||
1482 (st->len + 4) % st->cipherblk != 0) {
1483 bombout(("Incoming packet was garbled on decryption"));
1484 ssh_free_packet(st->pktin);
1485 crStop(NULL);
1486 }
1487
1488 /*
1489 * So now we can work out the total packet length.
1490 */
1491 st->packetlen = st->len + 4;
1492
1493 /*
1494 * Allocate memory for the rest of the packet.
1495 */
1496 st->pktin->maxlen = st->packetlen + st->maclen;
1497 st->pktin->data = sresize(st->pktin->data,
1498 st->pktin->maxlen + APIEXTRA,
1499 unsigned char);
1500
1501 /*
1502 * Read and decrypt the remainder of the packet.
1503 */
1504 for (st->i = st->cipherblk; st->i < st->packetlen + st->maclen;
1505 st->i++) {
1506 while ((*datalen) == 0)
1507 crReturn(NULL);
1508 st->pktin->data[st->i] = *(*data)++;
1509 (*datalen)--;
1510 }
1511 /* Decrypt everything _except_ the MAC. */
1512 if (ssh->sccipher)
1513 ssh->sccipher->decrypt(ssh->sc_cipher_ctx,
1514 st->pktin->data + st->cipherblk,
1515 st->packetlen - st->cipherblk);
1516
1517 /*
1518 * Check the MAC.
1519 */
1520 if (ssh->scmac
1521 && !ssh->scmac->verify(ssh->sc_mac_ctx, st->pktin->data,
1522 st->len + 4, st->incoming_sequence)) {
1523 bombout(("Incorrect MAC received on packet"));
1524 ssh_free_packet(st->pktin);
1525 crStop(NULL);
1526 }
1527 }
1528 /* Get and sanity-check the amount of random padding. */
1529 st->pad = st->pktin->data[4];
1530 if (st->pad < 4 || st->len - st->pad < 1) {
1531 bombout(("Invalid padding length on received packet"));
1532 ssh_free_packet(st->pktin);
1533 crStop(NULL);
1534 }
1535 /*
1536 * This enables us to deduce the payload length.
1537 */
1538 st->payload = st->len - st->pad - 1;
1539
1540 st->pktin->length = st->payload + 5;
1541 st->pktin->encrypted_len = st->packetlen;
1542
1543 st->pktin->sequence = st->incoming_sequence++;
1544
1545 /*
1546 * Decompress packet payload.
1547 */
1548 {
1549 unsigned char *newpayload;
1550 int newlen;
1551 if (ssh->sccomp &&
1552 ssh->sccomp->decompress(ssh->sc_comp_ctx,
1553 st->pktin->data + 5, st->pktin->length - 5,
1554 &newpayload, &newlen)) {
1555 if (st->pktin->maxlen < newlen + 5) {
1556 st->pktin->maxlen = newlen + 5;
1557 st->pktin->data = sresize(st->pktin->data,
1558 st->pktin->maxlen + APIEXTRA,
1559 unsigned char);
1560 }
1561 st->pktin->length = 5 + newlen;
1562 memcpy(st->pktin->data + 5, newpayload, newlen);
1563 sfree(newpayload);
1564 }
1565 }
1566
1567 st->pktin->savedpos = 6;
1568 st->pktin->body = st->pktin->data;
1569 st->pktin->type = st->pktin->data[5];
1570
1571 /*
1572 * Log incoming packet, possibly omitting sensitive fields.
1573 */
1574 if (ssh->logctx) {
1575 int nblanks = 0;
1576 struct logblank_t blank;
1577 if (ssh->logomitdata) {
1578 int do_blank = FALSE, blank_prefix = 0;
1579 /* "Session data" packets - omit the data field */
1580 if (st->pktin->type == SSH2_MSG_CHANNEL_DATA) {
1581 do_blank = TRUE; blank_prefix = 8;
1582 } else if (st->pktin->type == SSH2_MSG_CHANNEL_EXTENDED_DATA) {
1583 do_blank = TRUE; blank_prefix = 12;
1584 }
1585 if (do_blank) {
1586 blank.offset = blank_prefix;
1587 blank.len = (st->pktin->length-6) - blank_prefix;
1588 blank.type = PKTLOG_OMIT;
1589 nblanks = 1;
1590 }
1591 }
1592 log_packet(ssh->logctx, PKT_INCOMING, st->pktin->type,
1593 ssh2_pkt_type(ssh->pkt_kctx, ssh->pkt_actx,
1594 st->pktin->type),
1595 st->pktin->data+6, st->pktin->length-6,
1596 nblanks, &blank, &st->pktin->sequence);
1597 }
1598
1599 crFinish(st->pktin);
1600 }
1601
1602 static int s_wrpkt_prepare(Ssh ssh, struct Packet *pkt, int *offset_p)
1603 {
1604 int pad, biglen, i, pktoffs;
1605 unsigned long crc;
1606 #ifdef __SC__
1607 /*
1608 * XXX various versions of SC (including 8.8.4) screw up the
1609 * register allocation in this function and use the same register
1610 * (D6) for len and as a temporary, with predictable results. The
1611 * following sledgehammer prevents this.
1612 */
1613 volatile
1614 #endif
1615 int len;
1616
1617 if (ssh->logctx)
1618 log_packet(ssh->logctx, PKT_OUTGOING, pkt->data[12],
1619 ssh1_pkt_type(pkt->data[12]),
1620 pkt->body, pkt->length - (pkt->body - pkt->data),
1621 pkt->nblanks, pkt->blanks, NULL);
1622 sfree(pkt->blanks); pkt->blanks = NULL;
1623 pkt->nblanks = 0;
1624
1625 if (ssh->v1_compressing) {
1626 unsigned char *compblk;
1627 int complen;
1628 zlib_compress_block(ssh->cs_comp_ctx,
1629 pkt->data + 12, pkt->length - 12,
1630 &compblk, &complen);
1631 ssh_pkt_ensure(pkt, complen + 2); /* just in case it's got bigger */
1632 memcpy(pkt->data + 12, compblk, complen);
1633 sfree(compblk);
1634 pkt->length = complen + 12;
1635 }
1636
1637 ssh_pkt_ensure(pkt, pkt->length + 4); /* space for CRC */
1638 pkt->length += 4;
1639 len = pkt->length - 4 - 8; /* len(type+data+CRC) */
1640 pad = 8 - (len % 8);
1641 pktoffs = 8 - pad;
1642 biglen = len + pad; /* len(padding+type+data+CRC) */
1643
1644 for (i = pktoffs; i < 4+8; i++)
1645 pkt->data[i] = random_byte();
1646 crc = crc32_compute(pkt->data + pktoffs + 4, biglen - 4); /* all ex len */
1647 PUT_32BIT(pkt->data + pktoffs + 4 + biglen - 4, crc);
1648 PUT_32BIT(pkt->data + pktoffs, len);
1649
1650 if (ssh->cipher)
1651 ssh->cipher->encrypt(ssh->v1_cipher_ctx,
1652 pkt->data + pktoffs + 4, biglen);
1653
1654 if (offset_p) *offset_p = pktoffs;
1655 return biglen + 4; /* len(length+padding+type+data+CRC) */
1656 }
1657
1658 static int s_write(Ssh ssh, void *data, int len)
1659 {
1660 if (ssh->logctx)
1661 log_packet(ssh->logctx, PKT_OUTGOING, -1, NULL, data, len,
1662 0, NULL, NULL);
1663 return sk_write(ssh->s, (char *)data, len);
1664 }
1665
1666 static void s_wrpkt(Ssh ssh, struct Packet *pkt)
1667 {
1668 int len, backlog, offset;
1669 len = s_wrpkt_prepare(ssh, pkt, &offset);
1670 backlog = s_write(ssh, pkt->data + offset, len);
1671 if (backlog > SSH_MAX_BACKLOG)
1672 ssh_throttle_all(ssh, 1, backlog);
1673 ssh_free_packet(pkt);
1674 }
1675
1676 static void s_wrpkt_defer(Ssh ssh, struct Packet *pkt)
1677 {
1678 int len, offset;
1679 len = s_wrpkt_prepare(ssh, pkt, &offset);
1680 if (ssh->deferred_len + len > ssh->deferred_size) {
1681 ssh->deferred_size = ssh->deferred_len + len + 128;
1682 ssh->deferred_send_data = sresize(ssh->deferred_send_data,
1683 ssh->deferred_size,
1684 unsigned char);
1685 }
1686 memcpy(ssh->deferred_send_data + ssh->deferred_len,
1687 pkt->data + offset, len);
1688 ssh->deferred_len += len;
1689 ssh_free_packet(pkt);
1690 }
1691
1692 /*
1693 * Construct a SSH-1 packet with the specified contents.
1694 * (This all-at-once interface used to be the only one, but now SSH-1
1695 * packets can also be constructed incrementally.)
1696 */
1697 static struct Packet *construct_packet(Ssh ssh, int pkttype, va_list ap)
1698 {
1699 int argtype;
1700 Bignum bn;
1701 struct Packet *pkt;
1702
1703 pkt = ssh1_pkt_init(pkttype);
1704
1705 while ((argtype = va_arg(ap, int)) != PKT_END) {
1706 unsigned char *argp, argchar;
1707 char *sargp;
1708 unsigned long argint;
1709 int arglen;
1710 switch (argtype) {
1711 /* Actual fields in the packet */
1712 case PKT_INT:
1713 argint = va_arg(ap, int);
1714 ssh_pkt_adduint32(pkt, argint);
1715 break;
1716 case PKT_CHAR:
1717 argchar = (unsigned char) va_arg(ap, int);
1718 ssh_pkt_addbyte(pkt, argchar);
1719 break;
1720 case PKT_DATA:
1721 argp = va_arg(ap, unsigned char *);
1722 arglen = va_arg(ap, int);
1723 ssh_pkt_adddata(pkt, argp, arglen);
1724 break;
1725 case PKT_STR:
1726 sargp = va_arg(ap, char *);
1727 ssh_pkt_addstring(pkt, sargp);
1728 break;
1729 case PKT_BIGNUM:
1730 bn = va_arg(ap, Bignum);
1731 ssh1_pkt_addmp(pkt, bn);
1732 break;
1733 /* Tokens for modifications to packet logging */
1734 case PKTT_PASSWORD:
1735 dont_log_password(ssh, pkt, PKTLOG_BLANK);
1736 break;
1737 case PKTT_DATA:
1738 dont_log_data(ssh, pkt, PKTLOG_OMIT);
1739 break;
1740 case PKTT_OTHER:
1741 end_log_omission(ssh, pkt);
1742 break;
1743 }
1744 }
1745
1746 return pkt;
1747 }
1748
1749 static void send_packet(Ssh ssh, int pkttype, ...)
1750 {
1751 struct Packet *pkt;
1752 va_list ap;
1753 va_start(ap, pkttype);
1754 pkt = construct_packet(ssh, pkttype, ap);
1755 va_end(ap);
1756 s_wrpkt(ssh, pkt);
1757 }
1758
1759 static void defer_packet(Ssh ssh, int pkttype, ...)
1760 {
1761 struct Packet *pkt;
1762 va_list ap;
1763 va_start(ap, pkttype);
1764 pkt = construct_packet(ssh, pkttype, ap);
1765 va_end(ap);
1766 s_wrpkt_defer(ssh, pkt);
1767 }
1768
1769 static int ssh_versioncmp(char *a, char *b)
1770 {
1771 char *ae, *be;
1772 unsigned long av, bv;
1773
1774 av = strtoul(a, &ae, 10);
1775 bv = strtoul(b, &be, 10);
1776 if (av != bv)
1777 return (av < bv ? -1 : +1);
1778 if (*ae == '.')
1779 ae++;
1780 if (*be == '.')
1781 be++;
1782 av = strtoul(ae, &ae, 10);
1783 bv = strtoul(be, &be, 10);
1784 if (av != bv)
1785 return (av < bv ? -1 : +1);
1786 return 0;
1787 }
1788
1789 /*
1790 * Utility routines for putting an SSH-protocol `string' and
1791 * `uint32' into a hash state.
1792 */
1793 static void hash_string(const struct ssh_hash *h, void *s, void *str, int len)
1794 {
1795 unsigned char lenblk[4];
1796 PUT_32BIT(lenblk, len);
1797 h->bytes(s, lenblk, 4);
1798 h->bytes(s, str, len);
1799 }
1800
1801 static void hash_uint32(const struct ssh_hash *h, void *s, unsigned i)
1802 {
1803 unsigned char intblk[4];
1804 PUT_32BIT(intblk, i);
1805 h->bytes(s, intblk, 4);
1806 }
1807
1808 /*
1809 * Packet construction functions. Mostly shared between SSH-1 and SSH-2.
1810 */
1811 static void ssh_pkt_ensure(struct Packet *pkt, int length)
1812 {
1813 if (pkt->maxlen < length) {
1814 unsigned char *body = pkt->body;
1815 int offset = body ? body - pkt->data : 0;
1816 pkt->maxlen = length + 256;
1817 pkt->data = sresize(pkt->data, pkt->maxlen + APIEXTRA, unsigned char);
1818 if (body) pkt->body = pkt->data + offset;
1819 }
1820 }
1821 static void ssh_pkt_adddata(struct Packet *pkt, void *data, int len)
1822 {
1823 if (pkt->logmode != PKTLOG_EMIT) {
1824 pkt->nblanks++;
1825 pkt->blanks = sresize(pkt->blanks, pkt->nblanks, struct logblank_t);
1826 assert(pkt->body);
1827 pkt->blanks[pkt->nblanks-1].offset = pkt->length -
1828 (pkt->body - pkt->data);
1829 pkt->blanks[pkt->nblanks-1].len = len;
1830 pkt->blanks[pkt->nblanks-1].type = pkt->logmode;
1831 }
1832 pkt->length += len;
1833 ssh_pkt_ensure(pkt, pkt->length);
1834 memcpy(pkt->data + pkt->length - len, data, len);
1835 }
1836 static void ssh_pkt_addbyte(struct Packet *pkt, unsigned char byte)
1837 {
1838 ssh_pkt_adddata(pkt, &byte, 1);
1839 }
1840 static void ssh2_pkt_addbool(struct Packet *pkt, unsigned char value)
1841 {
1842 ssh_pkt_adddata(pkt, &value, 1);
1843 }
1844 static void ssh_pkt_adduint32(struct Packet *pkt, unsigned long value)
1845 {
1846 unsigned char x[4];
1847 PUT_32BIT(x, value);
1848 ssh_pkt_adddata(pkt, x, 4);
1849 }
1850 static void ssh_pkt_addstring_start(struct Packet *pkt)
1851 {
1852 ssh_pkt_adduint32(pkt, 0);
1853 pkt->savedpos = pkt->length;
1854 }
1855 static void ssh_pkt_addstring_str(struct Packet *pkt, char *data)
1856 {
1857 ssh_pkt_adddata(pkt, data, strlen(data));
1858 PUT_32BIT(pkt->data + pkt->savedpos - 4, pkt->length - pkt->savedpos);
1859 }
1860 static void ssh_pkt_addstring_data(struct Packet *pkt, char *data, int len)
1861 {
1862 ssh_pkt_adddata(pkt, data, len);
1863 PUT_32BIT(pkt->data + pkt->savedpos - 4, pkt->length - pkt->savedpos);
1864 }
1865 static void ssh_pkt_addstring(struct Packet *pkt, char *data)
1866 {
1867 ssh_pkt_addstring_start(pkt);
1868 ssh_pkt_addstring_str(pkt, data);
1869 }
1870 static void ssh1_pkt_addmp(struct Packet *pkt, Bignum b)
1871 {
1872 int len = ssh1_bignum_length(b);
1873 unsigned char *data = snewn(len, unsigned char);
1874 (void) ssh1_write_bignum(data, b);
1875 ssh_pkt_adddata(pkt, data, len);
1876 sfree(data);
1877 }
1878 static unsigned char *ssh2_mpint_fmt(Bignum b, int *len)
1879 {
1880 unsigned char *p;
1881 int i, n = (bignum_bitcount(b) + 7) / 8;
1882 p = snewn(n + 1, unsigned char);
1883 p[0] = 0;
1884 for (i = 1; i <= n; i++)
1885 p[i] = bignum_byte(b, n - i);
1886 i = 0;
1887 while (i <= n && p[i] == 0 && (p[i + 1] & 0x80) == 0)
1888 i++;
1889 memmove(p, p + i, n + 1 - i);
1890 *len = n + 1 - i;
1891 return p;
1892 }
1893 static void ssh2_pkt_addmp(struct Packet *pkt, Bignum b)
1894 {
1895 unsigned char *p;
1896 int len;
1897 p = ssh2_mpint_fmt(b, &len);
1898 ssh_pkt_addstring_start(pkt);
1899 ssh_pkt_addstring_data(pkt, (char *)p, len);
1900 sfree(p);
1901 }
1902
1903 static struct Packet *ssh1_pkt_init(int pkt_type)
1904 {
1905 struct Packet *pkt = ssh_new_packet();
1906 pkt->length = 4 + 8; /* space for length + max padding */
1907 ssh_pkt_addbyte(pkt, pkt_type);
1908 pkt->body = pkt->data + pkt->length;
1909 return pkt;
1910 }
1911
1912 /* For legacy code (SSH-1 and -2 packet construction used to be separate) */
1913 #define ssh2_pkt_ensure(pkt, length) ssh_pkt_ensure(pkt, length)
1914 #define ssh2_pkt_adddata(pkt, data, len) ssh_pkt_adddata(pkt, data, len)
1915 #define ssh2_pkt_addbyte(pkt, byte) ssh_pkt_addbyte(pkt, byte)
1916 #define ssh2_pkt_adduint32(pkt, value) ssh_pkt_adduint32(pkt, value)
1917 #define ssh2_pkt_addstring_start(pkt) ssh_pkt_addstring_start(pkt)
1918 #define ssh2_pkt_addstring_str(pkt, data) ssh_pkt_addstring_str(pkt, data)
1919 #define ssh2_pkt_addstring_data(pkt, data, len) ssh_pkt_addstring_data(pkt, data, len)
1920 #define ssh2_pkt_addstring(pkt, data) ssh_pkt_addstring(pkt, data)
1921
1922 static struct Packet *ssh2_pkt_init(int pkt_type)
1923 {
1924 struct Packet *pkt = ssh_new_packet();
1925 pkt->length = 5; /* space for packet length + padding length */
1926 pkt->forcepad = 0;
1927 ssh_pkt_addbyte(pkt, (unsigned char) pkt_type);
1928 pkt->body = pkt->data + pkt->length; /* after packet type */
1929 return pkt;
1930 }
1931
1932 /*
1933 * Construct an SSH-2 final-form packet: compress it, encrypt it,
1934 * put the MAC on it. Final packet, ready to be sent, is stored in
1935 * pkt->data. Total length is returned.
1936 */
1937 static int ssh2_pkt_construct(Ssh ssh, struct Packet *pkt)
1938 {
1939 int cipherblk, maclen, padding, i;
1940
1941 if (ssh->logctx)
1942 log_packet(ssh->logctx, PKT_OUTGOING, pkt->data[5],
1943 ssh2_pkt_type(ssh->pkt_kctx, ssh->pkt_actx, pkt->data[5]),
1944 pkt->body, pkt->length - (pkt->body - pkt->data),
1945 pkt->nblanks, pkt->blanks, &ssh->v2_outgoing_sequence);
1946 sfree(pkt->blanks); pkt->blanks = NULL;
1947 pkt->nblanks = 0;
1948
1949 /*
1950 * Compress packet payload.
1951 */
1952 {
1953 unsigned char *newpayload;
1954 int newlen;
1955 if (ssh->cscomp &&
1956 ssh->cscomp->compress(ssh->cs_comp_ctx, pkt->data + 5,
1957 pkt->length - 5,
1958 &newpayload, &newlen)) {
1959 pkt->length = 5;
1960 ssh2_pkt_adddata(pkt, newpayload, newlen);
1961 sfree(newpayload);
1962 }
1963 }
1964
1965 /*
1966 * Add padding. At least four bytes, and must also bring total
1967 * length (minus MAC) up to a multiple of the block size.
1968 * If pkt->forcepad is set, make sure the packet is at least that size
1969 * after padding.
1970 */
1971 cipherblk = ssh->cscipher ? ssh->cscipher->blksize : 8; /* block size */
1972 cipherblk = cipherblk < 8 ? 8 : cipherblk; /* or 8 if blksize < 8 */
1973 padding = 4;
1974 if (pkt->length + padding < pkt->forcepad)
1975 padding = pkt->forcepad - pkt->length;
1976 padding +=
1977 (cipherblk - (pkt->length + padding) % cipherblk) % cipherblk;
1978 assert(padding <= 255);
1979 maclen = ssh->csmac ? ssh->csmac->len : 0;
1980 ssh2_pkt_ensure(pkt, pkt->length + padding + maclen);
1981 pkt->data[4] = padding;
1982 for (i = 0; i < padding; i++)
1983 pkt->data[pkt->length + i] = random_byte();
1984 PUT_32BIT(pkt->data, pkt->length + padding - 4);
1985 if (ssh->csmac)
1986 ssh->csmac->generate(ssh->cs_mac_ctx, pkt->data,
1987 pkt->length + padding,
1988 ssh->v2_outgoing_sequence);
1989 ssh->v2_outgoing_sequence++; /* whether or not we MACed */
1990
1991 if (ssh->cscipher)
1992 ssh->cscipher->encrypt(ssh->cs_cipher_ctx,
1993 pkt->data, pkt->length + padding);
1994
1995 pkt->encrypted_len = pkt->length + padding;
1996
1997 /* Ready-to-send packet starts at pkt->data. We return length. */
1998 return pkt->length + padding + maclen;
1999 }
2000
2001 /*
2002 * Routines called from the main SSH code to send packets. There
2003 * are quite a few of these, because we have two separate
2004 * mechanisms for delaying the sending of packets:
2005 *
2006 * - In order to send an IGNORE message and a password message in
2007 * a single fixed-length blob, we require the ability to
2008 * concatenate the encrypted forms of those two packets _into_ a
2009 * single blob and then pass it to our <network.h> transport
2010 * layer in one go. Hence, there's a deferment mechanism which
2011 * works after packet encryption.
2012 *
2013 * - In order to avoid sending any connection-layer messages
2014 * during repeat key exchange, we have to queue up any such
2015 * outgoing messages _before_ they are encrypted (and in
2016 * particular before they're allocated sequence numbers), and
2017 * then send them once we've finished.
2018 *
2019 * I call these mechanisms `defer' and `queue' respectively, so as
2020 * to distinguish them reasonably easily.
2021 *
2022 * The functions send_noqueue() and defer_noqueue() free the packet
2023 * structure they are passed. Every outgoing packet goes through
2024 * precisely one of these functions in its life; packets passed to
2025 * ssh2_pkt_send() or ssh2_pkt_defer() either go straight to one of
2026 * these or get queued, and then when the queue is later emptied
2027 * the packets are all passed to defer_noqueue().
2028 *
2029 * When using a CBC-mode cipher, it's necessary to ensure that an
2030 * attacker can't provide data to be encrypted using an IV that they
2031 * know. We ensure this by prefixing each packet that might contain
2032 * user data with an SSH_MSG_IGNORE. This is done using the deferral
2033 * mechanism, so in this case send_noqueue() ends up redirecting to
2034 * defer_noqueue(). If you don't like this inefficiency, don't use
2035 * CBC.
2036 */
2037
2038 static void ssh2_pkt_defer_noqueue(Ssh, struct Packet *, int);
2039 static void ssh_pkt_defersend(Ssh);
2040
2041 /*
2042 * Send an SSH-2 packet immediately, without queuing or deferring.
2043 */
2044 static void ssh2_pkt_send_noqueue(Ssh ssh, struct Packet *pkt)
2045 {
2046 int len;
2047 int backlog;
2048 if (ssh->cscipher != NULL && (ssh->cscipher->flags & SSH_CIPHER_IS_CBC)) {
2049 /* We need to send two packets, so use the deferral mechanism. */
2050 ssh2_pkt_defer_noqueue(ssh, pkt, FALSE);
2051 ssh_pkt_defersend(ssh);
2052 return;
2053 }
2054 len = ssh2_pkt_construct(ssh, pkt);
2055 backlog = s_write(ssh, pkt->data, len);
2056 if (backlog > SSH_MAX_BACKLOG)
2057 ssh_throttle_all(ssh, 1, backlog);
2058
2059 ssh->outgoing_data_size += pkt->encrypted_len;
2060 if (!ssh->kex_in_progress &&
2061 ssh->max_data_size != 0 &&
2062 ssh->outgoing_data_size > ssh->max_data_size)
2063 do_ssh2_transport(ssh, "too much data sent", -1, NULL);
2064
2065 ssh_free_packet(pkt);
2066 }
2067
2068 /*
2069 * Defer an SSH-2 packet.
2070 */
2071 static void ssh2_pkt_defer_noqueue(Ssh ssh, struct Packet *pkt, int noignore)
2072 {
2073 int len;
2074 if (ssh->cscipher != NULL && (ssh->cscipher->flags & SSH_CIPHER_IS_CBC) &&
2075 ssh->deferred_len == 0 && !noignore &&
2076 !(ssh->remote_bugs & BUG_CHOKES_ON_SSH2_IGNORE)) {
2077 /*
2078 * Interpose an SSH_MSG_IGNORE to ensure that user data don't
2079 * get encrypted with a known IV.
2080 */
2081 struct Packet *ipkt = ssh2_pkt_init(SSH2_MSG_IGNORE);
2082 ssh2_pkt_addstring_start(ipkt);
2083 ssh2_pkt_defer_noqueue(ssh, ipkt, TRUE);
2084 }
2085 len = ssh2_pkt_construct(ssh, pkt);
2086 if (ssh->deferred_len + len > ssh->deferred_size) {
2087 ssh->deferred_size = ssh->deferred_len + len + 128;
2088 ssh->deferred_send_data = sresize(ssh->deferred_send_data,
2089 ssh->deferred_size,
2090 unsigned char);
2091 }
2092 memcpy(ssh->deferred_send_data + ssh->deferred_len, pkt->data, len);
2093 ssh->deferred_len += len;
2094 ssh->deferred_data_size += pkt->encrypted_len;
2095 ssh_free_packet(pkt);
2096 }
2097
2098 /*
2099 * Queue an SSH-2 packet.
2100 */
2101 static void ssh2_pkt_queue(Ssh ssh, struct Packet *pkt)
2102 {
2103 assert(ssh->queueing);
2104
2105 if (ssh->queuelen >= ssh->queuesize) {
2106 ssh->queuesize = ssh->queuelen + 32;
2107 ssh->queue = sresize(ssh->queue, ssh->queuesize, struct Packet *);
2108 }
2109
2110 ssh->queue[ssh->queuelen++] = pkt;
2111 }
2112
2113 /*
2114 * Either queue or send a packet, depending on whether queueing is
2115 * set.
2116 */
2117 static void ssh2_pkt_send(Ssh ssh, struct Packet *pkt)
2118 {
2119 if (ssh->queueing)
2120 ssh2_pkt_queue(ssh, pkt);
2121 else
2122 ssh2_pkt_send_noqueue(ssh, pkt);
2123 }
2124
2125 /*
2126 * Either queue or defer a packet, depending on whether queueing is
2127 * set.
2128 */
2129 static void ssh2_pkt_defer(Ssh ssh, struct Packet *pkt)
2130 {
2131 if (ssh->queueing)
2132 ssh2_pkt_queue(ssh, pkt);
2133 else
2134 ssh2_pkt_defer_noqueue(ssh, pkt, FALSE);
2135 }
2136
2137 /*
2138 * Send the whole deferred data block constructed by
2139 * ssh2_pkt_defer() or SSH-1's defer_packet().
2140 *
2141 * The expected use of the defer mechanism is that you call
2142 * ssh2_pkt_defer() a few times, then call ssh_pkt_defersend(). If
2143 * not currently queueing, this simply sets up deferred_send_data
2144 * and then sends it. If we _are_ currently queueing, the calls to
2145 * ssh2_pkt_defer() put the deferred packets on to the queue
2146 * instead, and therefore ssh_pkt_defersend() has no deferred data
2147 * to send. Hence, there's no need to make it conditional on
2148 * ssh->queueing.
2149 */
2150 static void ssh_pkt_defersend(Ssh ssh)
2151 {
2152 int backlog;
2153 backlog = s_write(ssh, ssh->deferred_send_data, ssh->deferred_len);
2154 ssh->deferred_len = ssh->deferred_size = 0;
2155 sfree(ssh->deferred_send_data);
2156 ssh->deferred_send_data = NULL;
2157 if (backlog > SSH_MAX_BACKLOG)
2158 ssh_throttle_all(ssh, 1, backlog);
2159
2160 ssh->outgoing_data_size += ssh->deferred_data_size;
2161 if (!ssh->kex_in_progress &&
2162 ssh->max_data_size != 0 &&
2163 ssh->outgoing_data_size > ssh->max_data_size)
2164 do_ssh2_transport(ssh, "too much data sent", -1, NULL);
2165 ssh->deferred_data_size = 0;
2166 }
2167
2168 /*
2169 * Send a packet whose length needs to be disguised (typically
2170 * passwords or keyboard-interactive responses).
2171 */
2172 static void ssh2_pkt_send_with_padding(Ssh ssh, struct Packet *pkt,
2173 int padsize)
2174 {
2175 #if 0
2176 if (0) {
2177 /*
2178 * The simplest way to do this is to adjust the
2179 * variable-length padding field in the outgoing packet.
2180 *
2181 * Currently compiled out, because some Cisco SSH servers
2182 * don't like excessively padded packets (bah, why's it
2183 * always Cisco?)
2184 */
2185 pkt->forcepad = padsize;
2186 ssh2_pkt_send(ssh, pkt);
2187 } else
2188 #endif
2189 {
2190 /*
2191 * If we can't do that, however, an alternative approach is
2192 * to use the pkt_defer mechanism to bundle the packet
2193 * tightly together with an SSH_MSG_IGNORE such that their
2194 * combined length is a constant. So first we construct the
2195 * final form of this packet and defer its sending.
2196 */
2197 ssh2_pkt_defer(ssh, pkt);
2198
2199 /*
2200 * Now construct an SSH_MSG_IGNORE which includes a string
2201 * that's an exact multiple of the cipher block size. (If
2202 * the cipher is NULL so that the block size is
2203 * unavailable, we don't do this trick at all, because we
2204 * gain nothing by it.)
2205 */
2206 if (ssh->cscipher &&
2207 !(ssh->remote_bugs & BUG_CHOKES_ON_SSH2_IGNORE)) {
2208 int stringlen, i;
2209
2210 stringlen = (256 - ssh->deferred_len);
2211 stringlen += ssh->cscipher->blksize - 1;
2212 stringlen -= (stringlen % ssh->cscipher->blksize);
2213 if (ssh->cscomp) {
2214 /*
2215 * Temporarily disable actual compression, so we
2216 * can guarantee to get this string exactly the
2217 * length we want it. The compression-disabling
2218 * routine should return an integer indicating how
2219 * many bytes we should adjust our string length
2220 * by.
2221 */
2222 stringlen -=
2223 ssh->cscomp->disable_compression(ssh->cs_comp_ctx);
2224 }
2225 pkt = ssh2_pkt_init(SSH2_MSG_IGNORE);
2226 ssh2_pkt_addstring_start(pkt);
2227 for (i = 0; i < stringlen; i++) {
2228 char c = (char) random_byte();
2229 ssh2_pkt_addstring_data(pkt, &c, 1);
2230 }
2231 ssh2_pkt_defer(ssh, pkt);
2232 }
2233 ssh_pkt_defersend(ssh);
2234 }
2235 }
2236
2237 /*
2238 * Send all queued SSH-2 packets. We send them by means of
2239 * ssh2_pkt_defer_noqueue(), in case they included a pair of
2240 * packets that needed to be lumped together.
2241 */
2242 static void ssh2_pkt_queuesend(Ssh ssh)
2243 {
2244 int i;
2245
2246 assert(!ssh->queueing);
2247
2248 for (i = 0; i < ssh->queuelen; i++)
2249 ssh2_pkt_defer_noqueue(ssh, ssh->queue[i], FALSE);
2250 ssh->queuelen = 0;
2251
2252 ssh_pkt_defersend(ssh);
2253 }
2254
2255 #if 0
2256 void bndebug(char *string, Bignum b)
2257 {
2258 unsigned char *p;
2259 int i, len;
2260 p = ssh2_mpint_fmt(b, &len);
2261 debug(("%s", string));
2262 for (i = 0; i < len; i++)
2263 debug((" %02x", p[i]));
2264 debug(("\n"));
2265 sfree(p);
2266 }
2267 #endif
2268
2269 static void hash_mpint(const struct ssh_hash *h, void *s, Bignum b)
2270 {
2271 unsigned char *p;
2272 int len;
2273 p = ssh2_mpint_fmt(b, &len);
2274 hash_string(h, s, p, len);
2275 sfree(p);
2276 }
2277
2278 /*
2279 * Packet decode functions for both SSH-1 and SSH-2.
2280 */
2281 static unsigned long ssh_pkt_getuint32(struct Packet *pkt)
2282 {
2283 unsigned long value;
2284 if (pkt->length - pkt->savedpos < 4)
2285 return 0; /* arrgh, no way to decline (FIXME?) */
2286 value = GET_32BIT(pkt->body + pkt->savedpos);
2287 pkt->savedpos += 4;
2288 return value;
2289 }
2290 static int ssh2_pkt_getbool(struct Packet *pkt)
2291 {
2292 unsigned long value;
2293 if (pkt->length - pkt->savedpos < 1)
2294 return 0; /* arrgh, no way to decline (FIXME?) */
2295 value = pkt->body[pkt->savedpos] != 0;
2296 pkt->savedpos++;
2297 return value;
2298 }
2299 static void ssh_pkt_getstring(struct Packet *pkt, char **p, int *length)
2300 {
2301 int len;
2302 *p = NULL;
2303 *length = 0;
2304 if (pkt->length - pkt->savedpos < 4)
2305 return;
2306 len = GET_32BIT(pkt->body + pkt->savedpos);
2307 if (len < 0)
2308 return;
2309 *length = len;
2310 pkt->savedpos += 4;
2311 if (pkt->length - pkt->savedpos < *length)
2312 return;
2313 *p = (char *)(pkt->body + pkt->savedpos);
2314 pkt->savedpos += *length;
2315 }
2316 static void *ssh_pkt_getdata(struct Packet *pkt, int length)
2317 {
2318 if (pkt->length - pkt->savedpos < length)
2319 return NULL;
2320 pkt->savedpos += length;
2321 return pkt->body + (pkt->savedpos - length);
2322 }
2323 static int ssh1_pkt_getrsakey(struct Packet *pkt, struct RSAKey *key,
2324 unsigned char **keystr)
2325 {
2326 int j;
2327
2328 j = makekey(pkt->body + pkt->savedpos,
2329 pkt->length - pkt->savedpos,
2330 key, keystr, 0);
2331
2332 if (j < 0)
2333 return FALSE;
2334
2335 pkt->savedpos += j;
2336 assert(pkt->savedpos < pkt->length);
2337
2338 return TRUE;
2339 }
2340 static Bignum ssh1_pkt_getmp(struct Packet *pkt)
2341 {
2342 int j;
2343 Bignum b;
2344
2345 j = ssh1_read_bignum(pkt->body + pkt->savedpos,
2346 pkt->length - pkt->savedpos, &b);
2347
2348 if (j < 0)
2349 return NULL;
2350
2351 pkt->savedpos += j;
2352 return b;
2353 }
2354 static Bignum ssh2_pkt_getmp(struct Packet *pkt)
2355 {
2356 char *p;
2357 int length;
2358 Bignum b;
2359
2360 ssh_pkt_getstring(pkt, &p, &length);
2361 if (!p)
2362 return NULL;
2363 if (p[0] & 0x80)
2364 return NULL;
2365 b = bignum_from_bytes((unsigned char *)p, length);
2366 return b;
2367 }
2368
2369 /*
2370 * Helper function to add an SSH-2 signature blob to a packet.
2371 * Expects to be shown the public key blob as well as the signature
2372 * blob. Normally works just like ssh2_pkt_addstring, but will
2373 * fiddle with the signature packet if necessary for
2374 * BUG_SSH2_RSA_PADDING.
2375 */
2376 static void ssh2_add_sigblob(Ssh ssh, struct Packet *pkt,
2377 void *pkblob_v, int pkblob_len,
2378 void *sigblob_v, int sigblob_len)
2379 {
2380 unsigned char *pkblob = (unsigned char *)pkblob_v;
2381 unsigned char *sigblob = (unsigned char *)sigblob_v;
2382
2383 /* dmemdump(pkblob, pkblob_len); */
2384 /* dmemdump(sigblob, sigblob_len); */
2385
2386 /*
2387 * See if this is in fact an ssh-rsa signature and a buggy
2388 * server; otherwise we can just do this the easy way.
2389 */
2390 if ((ssh->remote_bugs & BUG_SSH2_RSA_PADDING) &&
2391 (GET_32BIT(pkblob) == 7 && !memcmp(pkblob+4, "ssh-rsa", 7))) {
2392 int pos, len, siglen;
2393
2394 /*
2395 * Find the byte length of the modulus.
2396 */
2397
2398 pos = 4+7; /* skip over "ssh-rsa" */
2399 pos += 4 + GET_32BIT(pkblob+pos); /* skip over exponent */
2400 len = GET_32BIT(pkblob+pos); /* find length of modulus */
2401 pos += 4; /* find modulus itself */
2402 while (len > 0 && pkblob[pos] == 0)
2403 len--, pos++;
2404 /* debug(("modulus length is %d\n", len)); */
2405
2406 /*
2407 * Now find the signature integer.
2408 */
2409 pos = 4+7; /* skip over "ssh-rsa" */
2410 siglen = GET_32BIT(sigblob+pos);
2411 /* debug(("signature length is %d\n", siglen)); */
2412
2413 if (len != siglen) {
2414 unsigned char newlen[4];
2415 ssh2_pkt_addstring_start(pkt);
2416 ssh2_pkt_addstring_data(pkt, (char *)sigblob, pos);
2417 /* dmemdump(sigblob, pos); */
2418 pos += 4; /* point to start of actual sig */
2419 PUT_32BIT(newlen, len);
2420 ssh2_pkt_addstring_data(pkt, (char *)newlen, 4);
2421 /* dmemdump(newlen, 4); */
2422 newlen[0] = 0;
2423 while (len-- > siglen) {
2424 ssh2_pkt_addstring_data(pkt, (char *)newlen, 1);
2425 /* dmemdump(newlen, 1); */
2426 }
2427 ssh2_pkt_addstring_data(pkt, (char *)(sigblob+pos), siglen);
2428 /* dmemdump(sigblob+pos, siglen); */
2429 return;
2430 }
2431
2432 /* Otherwise fall through and do it the easy way. */
2433 }
2434
2435 ssh2_pkt_addstring_start(pkt);
2436 ssh2_pkt_addstring_data(pkt, (char *)sigblob, sigblob_len);
2437 }
2438
2439 /*
2440 * Examine the remote side's version string and compare it against
2441 * a list of known buggy implementations.
2442 */
2443 static void ssh_detect_bugs(Ssh ssh, char *vstring)
2444 {
2445 char *imp; /* pointer to implementation part */
2446 imp = vstring;
2447 imp += strcspn(imp, "-");
2448 if (*imp) imp++;
2449 imp += strcspn(imp, "-");
2450 if (*imp) imp++;
2451
2452 ssh->remote_bugs = 0;
2453
2454 /*
2455 * General notes on server version strings:
2456 * - Not all servers reporting "Cisco-1.25" have all the bugs listed
2457 * here -- in particular, we've heard of one that's perfectly happy
2458 * with SSH1_MSG_IGNOREs -- but this string never seems to change,
2459 * so we can't distinguish them.
2460 */
2461 if (conf_get_int(ssh->conf, CONF_sshbug_ignore1) == FORCE_ON ||
2462 (conf_get_int(ssh->conf, CONF_sshbug_ignore1) == AUTO &&
2463 (!strcmp(imp, "1.2.18") || !strcmp(imp, "1.2.19") ||
2464 !strcmp(imp, "1.2.20") || !strcmp(imp, "1.2.21") ||
2465 !strcmp(imp, "1.2.22") || !strcmp(imp, "Cisco-1.25") ||
2466 !strcmp(imp, "OSU_1.4alpha3") || !strcmp(imp, "OSU_1.5alpha4")))) {
2467 /*
2468 * These versions don't support SSH1_MSG_IGNORE, so we have
2469 * to use a different defence against password length
2470 * sniffing.
2471 */
2472 ssh->remote_bugs |= BUG_CHOKES_ON_SSH1_IGNORE;
2473 logevent("We believe remote version has SSH-1 ignore bug");
2474 }
2475
2476 if (conf_get_int(ssh->conf, CONF_sshbug_plainpw1) == FORCE_ON ||
2477 (conf_get_int(ssh->conf, CONF_sshbug_plainpw1) == AUTO &&
2478 (!strcmp(imp, "Cisco-1.25") || !strcmp(imp, "OSU_1.4alpha3")))) {
2479 /*
2480 * These versions need a plain password sent; they can't
2481 * handle having a null and a random length of data after
2482 * the password.
2483 */
2484 ssh->remote_bugs |= BUG_NEEDS_SSH1_PLAIN_PASSWORD;
2485 logevent("We believe remote version needs a plain SSH-1 password");
2486 }
2487
2488 if (conf_get_int(ssh->conf, CONF_sshbug_rsa1) == FORCE_ON ||
2489 (conf_get_int(ssh->conf, CONF_sshbug_rsa1) == AUTO &&
2490 (!strcmp(imp, "Cisco-1.25")))) {
2491 /*
2492 * These versions apparently have no clue whatever about
2493 * RSA authentication and will panic and die if they see
2494 * an AUTH_RSA message.
2495 */
2496 ssh->remote_bugs |= BUG_CHOKES_ON_RSA;
2497 logevent("We believe remote version can't handle SSH-1 RSA authentication");
2498 }
2499
2500 if (conf_get_int(ssh->conf, CONF_sshbug_hmac2) == FORCE_ON ||
2501 (conf_get_int(ssh->conf, CONF_sshbug_hmac2) == AUTO &&
2502 !wc_match("* VShell", imp) &&
2503 (wc_match("2.1.0*", imp) || wc_match("2.0.*", imp) ||
2504 wc_match("2.2.0*", imp) || wc_match("2.3.0*", imp) ||
2505 wc_match("2.1 *", imp)))) {
2506 /*
2507 * These versions have the HMAC bug.
2508 */
2509 ssh->remote_bugs |= BUG_SSH2_HMAC;
2510 logevent("We believe remote version has SSH-2 HMAC bug");
2511 }
2512
2513 if (conf_get_int(ssh->conf, CONF_sshbug_derivekey2) == FORCE_ON ||
2514 (conf_get_int(ssh->conf, CONF_sshbug_derivekey2) == AUTO &&
2515 !wc_match("* VShell", imp) &&
2516 (wc_match("2.0.0*", imp) || wc_match("2.0.10*", imp) ))) {
2517 /*
2518 * These versions have the key-derivation bug (failing to
2519 * include the literal shared secret in the hashes that
2520 * generate the keys).
2521 */
2522 ssh->remote_bugs |= BUG_SSH2_DERIVEKEY;
2523 logevent("We believe remote version has SSH-2 key-derivation bug");
2524 }
2525
2526 if (conf_get_int(ssh->conf, CONF_sshbug_rsapad2) == FORCE_ON ||
2527 (conf_get_int(ssh->conf, CONF_sshbug_rsapad2) == AUTO &&
2528 (wc_match("OpenSSH_2.[5-9]*", imp) ||
2529 wc_match("OpenSSH_3.[0-2]*", imp)))) {
2530 /*
2531 * These versions have the SSH-2 RSA padding bug.
2532 */
2533 ssh->remote_bugs |= BUG_SSH2_RSA_PADDING;
2534 logevent("We believe remote version has SSH-2 RSA padding bug");
2535 }
2536
2537 if (conf_get_int(ssh->conf, CONF_sshbug_pksessid2) == FORCE_ON ||
2538 (conf_get_int(ssh->conf, CONF_sshbug_pksessid2) == AUTO &&
2539 wc_match("OpenSSH_2.[0-2]*", imp))) {
2540 /*
2541 * These versions have the SSH-2 session-ID bug in
2542 * public-key authentication.
2543 */
2544 ssh->remote_bugs |= BUG_SSH2_PK_SESSIONID;
2545 logevent("We believe remote version has SSH-2 public-key-session-ID bug");
2546 }
2547
2548 if (conf_get_int(ssh->conf, CONF_sshbug_rekey2) == FORCE_ON ||
2549 (conf_get_int(ssh->conf, CONF_sshbug_rekey2) == AUTO &&
2550 (wc_match("DigiSSH_2.0", imp) ||
2551 wc_match("OpenSSH_2.[0-4]*", imp) ||
2552 wc_match("OpenSSH_2.5.[0-3]*", imp) ||
2553 wc_match("Sun_SSH_1.0", imp) ||
2554 wc_match("Sun_SSH_1.0.1", imp) ||
2555 /* All versions <= 1.2.6 (they changed their format in 1.2.7) */
2556 wc_match("WeOnlyDo-*", imp)))) {
2557 /*
2558 * These versions have the SSH-2 rekey bug.
2559 */
2560 ssh->remote_bugs |= BUG_SSH2_REKEY;
2561 logevent("We believe remote version has SSH-2 rekey bug");
2562 }
2563
2564 if (conf_get_int(ssh->conf, CONF_sshbug_maxpkt2) == FORCE_ON ||
2565 (conf_get_int(ssh->conf, CONF_sshbug_maxpkt2) == AUTO &&
2566 (wc_match("1.36_sshlib GlobalSCAPE", imp) ||
2567 wc_match("1.36 sshlib: GlobalScape", imp)))) {
2568 /*
2569 * This version ignores our makpkt and needs to be throttled.
2570 */
2571 ssh->remote_bugs |= BUG_SSH2_MAXPKT;
2572 logevent("We believe remote version ignores SSH-2 maximum packet size");
2573 }
2574
2575 if (conf_get_int(ssh->conf, CONF_sshbug_ignore2) == FORCE_ON) {
2576 /*
2577 * Servers that don't support SSH2_MSG_IGNORE. Currently,
2578 * none detected automatically.
2579 */
2580 ssh->remote_bugs |= BUG_CHOKES_ON_SSH2_IGNORE;
2581 logevent("We believe remote version has SSH-2 ignore bug");
2582 }
2583 }
2584
2585 /*
2586 * The `software version' part of an SSH version string is required
2587 * to contain no spaces or minus signs.
2588 */
2589 static void ssh_fix_verstring(char *str)
2590 {
2591 /* Eat "SSH-<protoversion>-". */
2592 assert(*str == 'S'); str++;
2593 assert(*str == 'S'); str++;
2594 assert(*str == 'H'); str++;
2595 assert(*str == '-'); str++;
2596 while (*str && *str != '-') str++;
2597 assert(*str == '-'); str++;
2598
2599 /* Convert minus signs and spaces in the remaining string into
2600 * underscores. */
2601 while (*str) {
2602 if (*str == '-' || *str == ' ')
2603 *str = '_';
2604 str++;
2605 }
2606 }
2607
2608 /*
2609 * Send an appropriate SSH version string.
2610 */
2611 static void ssh_send_verstring(Ssh ssh, char *svers)
2612 {
2613 char *verstring;
2614
2615 if (ssh->version == 2) {
2616 /*
2617 * Construct a v2 version string.
2618 */
2619 verstring = dupprintf("SSH-2.0-%s\015\012", sshver);
2620 } else {
2621 /*
2622 * Construct a v1 version string.
2623 */
2624 verstring = dupprintf("SSH-%s-%s\012",
2625 (ssh_versioncmp(svers, "1.5") <= 0 ?
2626 svers : "1.5"),
2627 sshver);
2628 }
2629
2630 ssh_fix_verstring(verstring);
2631
2632 if (ssh->version == 2) {
2633 size_t len;
2634 /*
2635 * Record our version string.
2636 */
2637 len = strcspn(verstring, "\015\012");
2638 ssh->v_c = snewn(len + 1, char);
2639 memcpy(ssh->v_c, verstring, len);
2640 ssh->v_c[len] = 0;
2641 }
2642
2643 logeventf(ssh, "We claim version: %.*s",
2644 strcspn(verstring, "\015\012"), verstring);
2645 s_write(ssh, verstring, strlen(verstring));
2646 sfree(verstring);
2647 }
2648
2649 static int do_ssh_init(Ssh ssh, unsigned char c)
2650 {
2651 struct do_ssh_init_state {
2652 int vslen;
2653 char version[10];
2654 char *vstring;
2655 int vstrsize;
2656 int i;
2657 int proto1, proto2;
2658 };
2659 crState(do_ssh_init_state);
2660
2661 crBegin(ssh->do_ssh_init_crstate);
2662
2663 /* Search for a line beginning with the string "SSH-" in the input. */
2664 for (;;) {
2665 if (c != 'S') goto no;
2666 crReturn(1);
2667 if (c != 'S') goto no;
2668 crReturn(1);
2669 if (c != 'H') goto no;
2670 crReturn(1);
2671 if (c != '-') goto no;
2672 break;
2673 no:
2674 while (c != '\012')
2675 crReturn(1);
2676 crReturn(1);
2677 }
2678
2679 s->vstrsize = 16;
2680 s->vstring = snewn(s->vstrsize, char);
2681 strcpy(s->vstring, "SSH-");
2682 s->vslen = 4;
2683 s->i = 0;
2684 while (1) {
2685 crReturn(1); /* get another char */
2686 if (s->vslen >= s->vstrsize - 1) {
2687 s->vstrsize += 16;
2688 s->vstring = sresize(s->vstring, s->vstrsize, char);
2689 }
2690 s->vstring[s->vslen++] = c;
2691 if (s->i >= 0) {
2692 if (c == '-') {
2693 s->version[s->i] = '\0';
2694 s->i = -1;
2695 } else if (s->i < sizeof(s->version) - 1)
2696 s->version[s->i++] = c;
2697 } else if (c == '\012')
2698 break;
2699 }
2700
2701 ssh->agentfwd_enabled = FALSE;
2702 ssh->rdpkt2_state.incoming_sequence = 0;
2703
2704 s->vstring[s->vslen] = 0;
2705 s->vstring[strcspn(s->vstring, "\015\012")] = '\0';/* remove EOL chars */
2706 logeventf(ssh, "Server version: %s", s->vstring);
2707 ssh_detect_bugs(ssh, s->vstring);
2708
2709 /*
2710 * Decide which SSH protocol version to support.
2711 */
2712
2713 /* Anything strictly below "2.0" means protocol 1 is supported. */
2714 s->proto1 = ssh_versioncmp(s->version, "2.0") < 0;
2715 /* Anything greater or equal to "1.99" means protocol 2 is supported. */
2716 s->proto2 = ssh_versioncmp(s->version, "1.99") >= 0;
2717
2718 if (conf_get_int(ssh->conf, CONF_sshprot) == 0 && !s->proto1) {
2719 bombout(("SSH protocol version 1 required by user but not provided by server"));
2720 crStop(0);
2721 }
2722 if (conf_get_int(ssh->conf, CONF_sshprot) == 3 && !s->proto2) {
2723 bombout(("SSH protocol version 2 required by user but not provided by server"));
2724 crStop(0);
2725 }
2726
2727 if (s->proto2 && (conf_get_int(ssh->conf, CONF_sshprot) >= 2 || !s->proto1))
2728 ssh->version = 2;
2729 else
2730 ssh->version = 1;
2731
2732 logeventf(ssh, "Using SSH protocol version %d", ssh->version);
2733
2734 /* Send the version string, if we haven't already */
2735 if (conf_get_int(ssh->conf, CONF_sshprot) != 3)
2736 ssh_send_verstring(ssh, s->version);
2737
2738 if (ssh->version == 2) {
2739 size_t len;
2740 /*
2741 * Record their version string.
2742 */
2743 len = strcspn(s->vstring, "\015\012");
2744 ssh->v_s = snewn(len + 1, char);
2745 memcpy(ssh->v_s, s->vstring, len);
2746 ssh->v_s[len] = 0;
2747
2748 /*
2749 * Initialise SSH-2 protocol.
2750 */
2751 ssh->protocol = ssh2_protocol;
2752 ssh2_protocol_setup(ssh);
2753 ssh->s_rdpkt = ssh2_rdpkt;
2754 } else {
2755 /*
2756 * Initialise SSH-1 protocol.
2757 */
2758 ssh->protocol = ssh1_protocol;
2759 ssh1_protocol_setup(ssh);
2760 ssh->s_rdpkt = ssh1_rdpkt;
2761 }
2762 if (ssh->version == 2)
2763 do_ssh2_transport(ssh, NULL, -1, NULL);
2764
2765 update_specials_menu(ssh->frontend);
2766 ssh->state = SSH_STATE_BEFORE_SIZE;
2767 ssh->pinger = pinger_new(ssh->conf, &ssh_backend, ssh);
2768
2769 sfree(s->vstring);
2770
2771 crFinish(0);
2772 }
2773
2774 static void ssh_process_incoming_data(Ssh ssh,
2775 unsigned char **data, int *datalen)
2776 {
2777 struct Packet *pktin;
2778
2779 pktin = ssh->s_rdpkt(ssh, data, datalen);
2780 if (pktin) {
2781 ssh->protocol(ssh, NULL, 0, pktin);
2782 ssh_free_packet(pktin);
2783 }
2784 }
2785
2786 static void ssh_queue_incoming_data(Ssh ssh,
2787 unsigned char **data, int *datalen)
2788 {
2789 bufchain_add(&ssh->queued_incoming_data, *data, *datalen);
2790 *data += *datalen;
2791 *datalen = 0;
2792 }
2793
2794 static void ssh_process_queued_incoming_data(Ssh ssh)
2795 {
2796 void *vdata;
2797 unsigned char *data;
2798 int len, origlen;
2799
2800 while (!ssh->frozen && bufchain_size(&ssh->queued_incoming_data)) {
2801 bufchain_prefix(&ssh->queued_incoming_data, &vdata, &len);
2802 data = vdata;
2803 origlen = len;
2804
2805 while (!ssh->frozen && len > 0)
2806 ssh_process_incoming_data(ssh, &data, &len);
2807
2808 if (origlen > len)
2809 bufchain_consume(&ssh->queued_incoming_data, origlen - len);
2810 }
2811 }
2812
2813 static void ssh_set_frozen(Ssh ssh, int frozen)
2814 {
2815 if (ssh->s)
2816 sk_set_frozen(ssh->s, frozen);
2817 ssh->frozen = frozen;
2818 }
2819
2820 static void ssh_gotdata(Ssh ssh, unsigned char *data, int datalen)
2821 {
2822 /* Log raw data, if we're in that mode. */
2823 if (ssh->logctx)
2824 log_packet(ssh->logctx, PKT_INCOMING, -1, NULL, data, datalen,
2825 0, NULL, NULL);
2826
2827 crBegin(ssh->ssh_gotdata_crstate);
2828
2829 /*
2830 * To begin with, feed the characters one by one to the
2831 * protocol initialisation / selection function do_ssh_init().
2832 * When that returns 0, we're done with the initial greeting
2833 * exchange and can move on to packet discipline.
2834 */
2835 while (1) {
2836 int ret; /* need not be kept across crReturn */
2837 if (datalen == 0)
2838 crReturnV; /* more data please */
2839 ret = do_ssh_init(ssh, *data);
2840 data++;
2841 datalen--;
2842 if (ret == 0)
2843 break;
2844 }
2845
2846 /*
2847 * We emerge from that loop when the initial negotiation is
2848 * over and we have selected an s_rdpkt function. Now pass
2849 * everything to s_rdpkt, and then pass the resulting packets
2850 * to the proper protocol handler.
2851 */
2852
2853 while (1) {
2854 while (bufchain_size(&ssh->queued_incoming_data) > 0 || datalen > 0) {
2855 if (ssh->frozen) {
2856 ssh_queue_incoming_data(ssh, &data, &datalen);
2857 /* This uses up all data and cannot cause anything interesting
2858 * to happen; indeed, for anything to happen at all, we must
2859 * return, so break out. */
2860 break;
2861 } else if (bufchain_size(&ssh->queued_incoming_data) > 0) {
2862 /* This uses up some or all data, and may freeze the
2863 * session. */
2864 ssh_process_queued_incoming_data(ssh);
2865 } else {
2866 /* This uses up some or all data, and may freeze the
2867 * session. */
2868 ssh_process_incoming_data(ssh, &data, &datalen);
2869 }
2870 /* FIXME this is probably EBW. */
2871 if (ssh->state == SSH_STATE_CLOSED)
2872 return;
2873 }
2874 /* We're out of data. Go and get some more. */
2875 crReturnV;
2876 }
2877 crFinishV;
2878 }
2879
2880 static int ssh_do_close(Ssh ssh, int notify_exit)
2881 {
2882 int ret = 0;
2883 struct ssh_channel *c;
2884
2885 ssh->state = SSH_STATE_CLOSED;
2886 expire_timer_context(ssh);
2887 if (ssh->s) {
2888 sk_close(ssh->s);
2889 ssh->s = NULL;
2890 if (notify_exit)
2891 notify_remote_exit(ssh->frontend);
2892 else
2893 ret = 1;
2894 }
2895 /*
2896 * Now we must shut down any port- and X-forwarded channels going
2897 * through this connection.
2898 */
2899 if (ssh->channels) {
2900 while (NULL != (c = index234(ssh->channels, 0))) {
2901 switch (c->type) {
2902 case CHAN_X11:
2903 x11_close(c->u.x11.s);
2904 break;
2905 case CHAN_SOCKDATA:
2906 case CHAN_SOCKDATA_DORMANT:
2907 pfd_close(c->u.pfd.s);
2908 break;
2909 }
2910 del234(ssh->channels, c); /* moving next one to index 0 */
2911 if (ssh->version == 2)
2912 bufchain_clear(&c->v.v2.outbuffer);
2913 sfree(c);
2914 }
2915 }
2916 /*
2917 * Go through port-forwardings, and close any associated
2918 * listening sockets.
2919 */
2920 if (ssh->portfwds) {
2921 struct ssh_portfwd *pf;
2922 while (NULL != (pf = index234(ssh->portfwds, 0))) {
2923 /* Dispose of any listening socket. */
2924 if (pf->local)
2925 pfd_terminate(pf->local);
2926 del234(ssh->portfwds, pf); /* moving next one to index 0 */
2927 free_portfwd(pf);
2928 }
2929 freetree234(ssh->portfwds);
2930 ssh->portfwds = NULL;
2931 }
2932
2933 return ret;
2934 }
2935
2936 static void ssh_log(Plug plug, int type, SockAddr addr, int port,
2937 const char *error_msg, int error_code)
2938 {
2939 Ssh ssh = (Ssh) plug;
2940 char addrbuf[256], *msg;
2941
2942 sk_getaddr(addr, addrbuf, lenof(addrbuf));
2943
2944 if (type == 0)
2945 msg = dupprintf("Connecting to %s port %d", addrbuf, port);
2946 else
2947 msg = dupprintf("Failed to connect to %s: %s", addrbuf, error_msg);
2948
2949 logevent(msg);
2950 sfree(msg);
2951 }
2952
2953 static int ssh_closing(Plug plug, const char *error_msg, int error_code,
2954 int calling_back)
2955 {
2956 Ssh ssh = (Ssh) plug;
2957 int need_notify = ssh_do_close(ssh, FALSE);
2958
2959 if (!error_msg) {
2960 if (!ssh->close_expected)
2961 error_msg = "Server unexpectedly closed network connection";
2962 else
2963 error_msg = "Server closed network connection";
2964 }
2965
2966 if (ssh->close_expected && ssh->clean_exit && ssh->exitcode < 0)
2967 ssh->exitcode = 0;
2968
2969 if (need_notify)
2970 notify_remote_exit(ssh->frontend);
2971
2972 if (error_msg)
2973 logevent(error_msg);
2974 if (!ssh->close_expected || !ssh->clean_exit)
2975 connection_fatal(ssh->frontend, "%s", error_msg);
2976 return 0;
2977 }
2978
2979 static int ssh_receive(Plug plug, int urgent, char *data, int len)
2980 {
2981 Ssh ssh = (Ssh) plug;
2982 ssh_gotdata(ssh, (unsigned char *)data, len);
2983 if (ssh->state == SSH_STATE_CLOSED) {
2984 ssh_do_close(ssh, TRUE);
2985 return 0;
2986 }
2987 return 1;
2988 }
2989
2990 static void ssh_sent(Plug plug, int bufsize)
2991 {
2992 Ssh ssh = (Ssh) plug;
2993 /*
2994 * If the send backlog on the SSH socket itself clears, we
2995 * should unthrottle the whole world if it was throttled.
2996 */
2997 if (bufsize < SSH_MAX_BACKLOG)
2998 ssh_throttle_all(ssh, 0, bufsize);
2999 }
3000
3001 /*
3002 * Connect to specified host and port.
3003 * Returns an error message, or NULL on success.
3004 * Also places the canonical host name into `realhost'. It must be
3005 * freed by the caller.
3006 */
3007 static const char *connect_to_host(Ssh ssh, char *host, int port,
3008 char **realhost, int nodelay, int keepalive)
3009 {
3010 static const struct plug_function_table fn_table = {
3011 ssh_log,
3012 ssh_closing,
3013 ssh_receive,
3014 ssh_sent,
3015 NULL
3016 };
3017
3018 SockAddr addr;
3019 const char *err;
3020 char *loghost;
3021 int addressfamily, sshprot;
3022
3023 loghost = conf_get_str(ssh->conf, CONF_loghost);
3024 if (*loghost) {
3025 char *colon;
3026
3027 ssh->savedhost = dupstr(loghost);
3028 ssh->savedport = 22; /* default ssh port */
3029
3030 /*
3031 * A colon suffix on savedhost also lets us affect
3032 * savedport.
3033 *
3034 * (FIXME: do something about IPv6 address literals here.)
3035 */
3036 colon = strrchr(ssh->savedhost, ':');
3037 if (colon) {
3038 *colon++ = '\0';
3039 if (*colon)
3040 ssh->savedport = atoi(colon);
3041 }
3042 } else {
3043 ssh->savedhost = dupstr(host);
3044 if (port < 0)
3045 port = 22; /* default ssh port */
3046 ssh->savedport = port;
3047 }
3048
3049 /*
3050 * Try to find host.
3051 */
3052 addressfamily = conf_get_int(ssh->conf, CONF_addressfamily);
3053 logeventf(ssh, "Looking up host \"%s\"%s", host,
3054 (addressfamily == ADDRTYPE_IPV4 ? " (IPv4)" :
3055 (addressfamily == ADDRTYPE_IPV6 ? " (IPv6)" : "")));
3056 addr = name_lookup(host, port, realhost, ssh->conf, addressfamily);
3057 if ((err = sk_addr_error(addr)) != NULL) {
3058 sk_addr_free(addr);
3059 return err;
3060 }
3061 ssh->fullhostname = dupstr(*realhost); /* save in case of GSSAPI */
3062
3063 /*
3064 * Open socket.
3065 */
3066 ssh->fn = &fn_table;
3067 ssh->s = new_connection(addr, *realhost, port,
3068 0, 1, nodelay, keepalive, (Plug) ssh, ssh->conf);
3069 if ((err = sk_socket_error(ssh->s)) != NULL) {
3070 ssh->s = NULL;
3071 notify_remote_exit(ssh->frontend);
3072 return err;
3073 }
3074
3075 /*
3076 * If the SSH version number's fixed, set it now, and if it's SSH-2,
3077 * send the version string too.
3078 */
3079 sshprot = conf_get_int(ssh->conf, CONF_sshprot);
3080 if (sshprot == 0)
3081 ssh->version = 1;
3082 if (sshprot == 3) {
3083 ssh->version = 2;
3084 ssh_send_verstring(ssh, NULL);
3085 }
3086
3087 /*
3088 * loghost, if configured, overrides realhost.
3089 */
3090 if (*loghost) {
3091 sfree(*realhost);
3092 *realhost = dupstr(loghost);
3093 }
3094
3095 return NULL;
3096 }
3097
3098 /*
3099 * Throttle or unthrottle the SSH connection.
3100 */
3101 static void ssh_throttle_conn(Ssh ssh, int adjust)
3102 {
3103 int old_count = ssh->conn_throttle_count;
3104 ssh->conn_throttle_count += adjust;
3105 assert(ssh->conn_throttle_count >= 0);
3106 if (ssh->conn_throttle_count && !old_count) {
3107 ssh_set_frozen(ssh, 1);
3108 } else if (!ssh->conn_throttle_count && old_count) {
3109 ssh_set_frozen(ssh, 0);
3110 }
3111 }
3112
3113 /*
3114 * Throttle or unthrottle _all_ local data streams (for when sends
3115 * on the SSH connection itself back up).
3116 */
3117 static void ssh_throttle_all(Ssh ssh, int enable, int bufsize)
3118 {
3119 int i;
3120 struct ssh_channel *c;
3121
3122 if (enable == ssh->throttled_all)
3123 return;
3124 ssh->throttled_all = enable;
3125 ssh->overall_bufsize = bufsize;
3126 if (!ssh->channels)
3127 return;
3128 for (i = 0; NULL != (c = index234(ssh->channels, i)); i++) {
3129 switch (c->type) {
3130 case CHAN_MAINSESSION:
3131 /*
3132 * This is treated separately, outside the switch.
3133 */
3134 break;
3135 case CHAN_X11:
3136 x11_override_throttle(c->u.x11.s, enable);
3137 break;
3138 case CHAN_AGENT:
3139 /* Agent channels require no buffer management. */
3140 break;
3141 case CHAN_SOCKDATA:
3142 pfd_override_throttle(c->u.pfd.s, enable);
3143 break;
3144 }
3145 }
3146 }
3147
3148 static void ssh_agent_callback(void *sshv, void *reply, int replylen)
3149 {
3150 Ssh ssh = (Ssh) sshv;
3151
3152 ssh->agent_response = reply;
3153 ssh->agent_response_len = replylen;
3154
3155 if (ssh->version == 1)
3156 do_ssh1_login(ssh, NULL, -1, NULL);
3157 else
3158 do_ssh2_authconn(ssh, NULL, -1, NULL);
3159 }
3160
3161 static void ssh_dialog_callback(void *sshv, int ret)
3162 {
3163 Ssh ssh = (Ssh) sshv;
3164
3165 ssh->user_response = ret;
3166
3167 if (ssh->version == 1)
3168 do_ssh1_login(ssh, NULL, -1, NULL);
3169 else
3170 do_ssh2_transport(ssh, NULL, -1, NULL);
3171
3172 /*
3173 * This may have unfrozen the SSH connection, so do a
3174 * queued-data run.
3175 */
3176 ssh_process_queued_incoming_data(ssh);
3177 }
3178
3179 static void ssh_agentf_callback(void *cv, void *reply, int replylen)
3180 {
3181 struct ssh_channel *c = (struct ssh_channel *)cv;
3182 Ssh ssh = c->ssh;
3183 void *sentreply = reply;
3184
3185 if (!sentreply) {
3186 /* Fake SSH_AGENT_FAILURE. */
3187 sentreply = "\0\0\0\1\5";
3188 replylen = 5;
3189 }
3190 if (ssh->version == 2) {
3191 ssh2_add_channel_data(c, sentreply, replylen);
3192 ssh2_try_send(c);
3193 } else {
3194 send_packet(ssh, SSH1_MSG_CHANNEL_DATA,
3195 PKT_INT, c->remoteid,
3196 PKT_INT, replylen,
3197 PKTT_DATA,
3198 PKT_DATA, sentreply, replylen,
3199 PKTT_OTHER,
3200 PKT_END);
3201 }
3202 if (reply)
3203 sfree(reply);
3204 }
3205
3206 /*
3207 * Client-initiated disconnection. Send a DISCONNECT if `wire_reason'
3208 * non-NULL, otherwise just close the connection. `client_reason' == NULL
3209 * => log `wire_reason'.
3210 */
3211 static void ssh_disconnect(Ssh ssh, char *client_reason, char *wire_reason,
3212 int code, int clean_exit)
3213 {
3214 char *error;
3215 if (!client_reason)
3216 client_reason = wire_reason;
3217 if (client_reason)
3218 error = dupprintf("Disconnected: %s", client_reason);
3219 else
3220 error = dupstr("Disconnected");
3221 if (wire_reason) {
3222 if (ssh->version == 1) {
3223 send_packet(ssh, SSH1_MSG_DISCONNECT, PKT_STR, wire_reason,
3224 PKT_END);
3225 } else if (ssh->version == 2) {
3226 struct Packet *pktout = ssh2_pkt_init(SSH2_MSG_DISCONNECT);
3227 ssh2_pkt_adduint32(pktout, code);
3228 ssh2_pkt_addstring(pktout, wire_reason);
3229 ssh2_pkt_addstring(pktout, "en"); /* language tag */
3230 ssh2_pkt_send_noqueue(ssh, pktout);
3231 }
3232 }
3233 ssh->close_expected = TRUE;
3234 ssh->clean_exit = clean_exit;
3235 ssh_closing((Plug)ssh, error, 0, 0);
3236 sfree(error);
3237 }
3238
3239 /*
3240 * Handle the key exchange and user authentication phases.
3241 */
3242 static int do_ssh1_login(Ssh ssh, unsigned char *in, int inlen,
3243 struct Packet *pktin)
3244 {
3245 int i, j, ret;
3246 unsigned char cookie[8], *ptr;
3247 struct RSAKey servkey, hostkey;
3248 struct MD5Context md5c;
3249 struct do_ssh1_login_state {
3250 int len;
3251 unsigned char *rsabuf, *keystr1, *keystr2;
3252 unsigned long supported_ciphers_mask, supported_auths_mask;
3253 int tried_publickey, tried_agent;
3254 int tis_auth_refused, ccard_auth_refused;
3255 unsigned char session_id[16];
3256 int cipher_type;
3257 void *publickey_blob;
3258 int publickey_bloblen;
3259 char *publickey_comment;
3260 int publickey_encrypted;
3261 prompts_t *cur_prompt;
3262 char c;
3263 int pwpkt_type;
3264 unsigned char request[5], *response, *p;
3265 int responselen;
3266 int keyi, nkeys;
3267 int authed;
3268 struct RSAKey key;
3269 Bignum challenge;
3270 char *commentp;
3271 int commentlen;
3272 int dlgret;
3273 Filename *keyfile;
3274 };
3275 crState(do_ssh1_login_state);
3276
3277 crBegin(ssh->do_ssh1_login_crstate);
3278
3279 if (!pktin)
3280 crWaitUntil(pktin);
3281
3282 if (pktin->type != SSH1_SMSG_PUBLIC_KEY) {
3283 bombout(("Public key packet not received"));
3284 crStop(0);
3285 }
3286
3287 logevent("Received public keys");
3288
3289 ptr = ssh_pkt_getdata(pktin, 8);
3290 if (!ptr) {
3291 bombout(("SSH-1 public key packet stopped before random cookie"));
3292 crStop(0);
3293 }
3294 memcpy(cookie, ptr, 8);
3295
3296 if (!ssh1_pkt_getrsakey(pktin, &servkey, &s->keystr1) ||
3297 !ssh1_pkt_getrsakey(pktin, &hostkey, &s->keystr2)) {
3298 bombout(("Failed to read SSH-1 public keys from public key packet"));
3299 crStop(0);
3300 }
3301
3302 /*
3303 * Log the host key fingerprint.
3304 */
3305 {
3306 char logmsg[80];
3307 logevent("Host key fingerprint is:");
3308 strcpy(logmsg, " ");
3309 hostkey.comment = NULL;
3310 rsa_fingerprint(logmsg + strlen(logmsg),
3311 sizeof(logmsg) - strlen(logmsg), &hostkey);
3312 logevent(logmsg);
3313 }
3314
3315 ssh->v1_remote_protoflags = ssh_pkt_getuint32(pktin);
3316 s->supported_ciphers_mask = ssh_pkt_getuint32(pktin);
3317 s->supported_auths_mask = ssh_pkt_getuint32(pktin);
3318 if ((ssh->remote_bugs & BUG_CHOKES_ON_RSA))
3319 s->supported_auths_mask &= ~(1 << SSH1_AUTH_RSA);
3320
3321 ssh->v1_local_protoflags =
3322 ssh->v1_remote_protoflags & SSH1_PROTOFLAGS_SUPPORTED;
3323 ssh->v1_local_protoflags |= SSH1_PROTOFLAG_SCREEN_NUMBER;
3324
3325 MD5Init(&md5c);
3326 MD5Update(&md5c, s->keystr2, hostkey.bytes);
3327 MD5Update(&md5c, s->keystr1, servkey.bytes);
3328 MD5Update(&md5c, cookie, 8);
3329 MD5Final(s->session_id, &md5c);
3330
3331 for (i = 0; i < 32; i++)
3332 ssh->session_key[i] = random_byte();
3333
3334 /*
3335 * Verify that the `bits' and `bytes' parameters match.
3336 */
3337 if (hostkey.bits > hostkey.bytes * 8 ||
3338 servkey.bits > servkey.bytes * 8) {
3339 bombout(("SSH-1 public keys were badly formatted"));
3340 crStop(0);
3341 }
3342
3343 s->len = (hostkey.bytes > servkey.bytes ? hostkey.bytes : servkey.bytes);
3344
3345 s->rsabuf = snewn(s->len, unsigned char);
3346
3347 /*
3348 * Verify the host key.
3349 */
3350 {
3351 /*
3352 * First format the key into a string.
3353 */
3354 int len = rsastr_len(&hostkey);
3355 char fingerprint[100];
3356 char *keystr = snewn(len, char);
3357 rsastr_fmt(keystr, &hostkey);
3358 rsa_fingerprint(fingerprint, sizeof(fingerprint), &hostkey);
3359
3360 ssh_set_frozen(ssh, 1);
3361 s->dlgret = verify_ssh_host_key(ssh->frontend,
3362 ssh->savedhost, ssh->savedport,
3363 "rsa", keystr, fingerprint,
3364 ssh_dialog_callback, ssh);
3365 sfree(keystr);
3366 if (s->dlgret < 0) {
3367 do {
3368 crReturn(0);
3369 if (pktin) {
3370 bombout(("Unexpected data from server while waiting"
3371 " for user host key response"));
3372 crStop(0);
3373 }
3374 } while (pktin || inlen > 0);
3375 s->dlgret = ssh->user_response;
3376 }
3377 ssh_set_frozen(ssh, 0);
3378
3379 if (s->dlgret == 0) {
3380 ssh_disconnect(ssh, "User aborted at host key verification",
3381 NULL, 0, TRUE);
3382 crStop(0);
3383 }
3384 }
3385
3386 for (i = 0; i < 32; i++) {
3387 s->rsabuf[i] = ssh->session_key[i];
3388 if (i < 16)
3389 s->rsabuf[i] ^= s->session_id[i];
3390 }
3391
3392 if (hostkey.bytes > servkey.bytes) {
3393 ret = rsaencrypt(s->rsabuf, 32, &servkey);
3394 if (ret)
3395 ret = rsaencrypt(s->rsabuf, servkey.bytes, &hostkey);
3396 } else {
3397 ret = rsaencrypt(s->rsabuf, 32, &hostkey);
3398 if (ret)
3399 ret = rsaencrypt(s->rsabuf, hostkey.bytes, &servkey);
3400 }
3401 if (!ret) {
3402 bombout(("SSH-1 public key encryptions failed due to bad formatting"));
3403 crStop(0);
3404 }
3405
3406 logevent("Encrypted session key");
3407
3408 {
3409 int cipher_chosen = 0, warn = 0;
3410 char *cipher_string = NULL;
3411 int i;
3412 for (i = 0; !cipher_chosen && i < CIPHER_MAX; i++) {
3413 int next_cipher = conf_get_int_int(ssh->conf,
3414 CONF_ssh_cipherlist, i);
3415 if (next_cipher == CIPHER_WARN) {
3416 /* If/when we choose a cipher, warn about it */
3417 warn = 1;
3418 } else if (next_cipher == CIPHER_AES) {
3419 /* XXX Probably don't need to mention this. */
3420 logevent("AES not supported in SSH-1, skipping");
3421 } else {
3422 switch (next_cipher) {
3423 case CIPHER_3DES: s->cipher_type = SSH_CIPHER_3DES;
3424 cipher_string = "3DES"; break;
3425 case CIPHER_BLOWFISH: s->cipher_type = SSH_CIPHER_BLOWFISH;
3426 cipher_string = "Blowfish"; break;
3427 case CIPHER_DES: s->cipher_type = SSH_CIPHER_DES;
3428 cipher_string = "single-DES"; break;
3429 }
3430 if (s->supported_ciphers_mask & (1 << s->cipher_type))
3431 cipher_chosen = 1;
3432 }
3433 }
3434 if (!cipher_chosen) {
3435 if ((s->supported_ciphers_mask & (1 << SSH_CIPHER_3DES)) == 0)
3436 bombout(("Server violates SSH-1 protocol by not "
3437 "supporting 3DES encryption"));
3438 else
3439 /* shouldn't happen */
3440 bombout(("No supported ciphers found"));
3441 crStop(0);
3442 }
3443
3444 /* Warn about chosen cipher if necessary. */
3445 if (warn) {
3446 ssh_set_frozen(ssh, 1);
3447 s->dlgret = askalg(ssh->frontend, "cipher", cipher_string,
3448 ssh_dialog_callback, ssh);
3449 if (s->dlgret < 0) {
3450 do {
3451 crReturn(0);
3452 if (pktin) {
3453 bombout(("Unexpected data from server while waiting"
3454 " for user response"));
3455 crStop(0);
3456 }
3457 } while (pktin || inlen > 0);
3458 s->dlgret = ssh->user_response;
3459 }
3460 ssh_set_frozen(ssh, 0);
3461 if (s->dlgret == 0) {
3462 ssh_disconnect(ssh, "User aborted at cipher warning", NULL,
3463 0, TRUE);
3464 crStop(0);
3465 }
3466 }
3467 }
3468
3469 switch (s->cipher_type) {
3470 case SSH_CIPHER_3DES:
3471 logevent("Using 3DES encryption");
3472 break;
3473 case SSH_CIPHER_DES:
3474 logevent("Using single-DES encryption");
3475 break;
3476 case SSH_CIPHER_BLOWFISH:
3477 logevent("Using Blowfish encryption");
3478 break;
3479 }
3480
3481 send_packet(ssh, SSH1_CMSG_SESSION_KEY,
3482 PKT_CHAR, s->cipher_type,
3483 PKT_DATA, cookie, 8,
3484 PKT_CHAR, (s->len * 8) >> 8, PKT_CHAR, (s->len * 8) & 0xFF,
3485 PKT_DATA, s->rsabuf, s->len,
3486 PKT_INT, ssh->v1_local_protoflags, PKT_END);
3487
3488 logevent("Trying to enable encryption...");
3489
3490 sfree(s->rsabuf);
3491
3492 ssh->cipher = (s->cipher_type == SSH_CIPHER_BLOWFISH ? &ssh_blowfish_ssh1 :
3493 s->cipher_type == SSH_CIPHER_DES ? &ssh_des :
3494 &ssh_3des);
3495 ssh->v1_cipher_ctx = ssh->cipher->make_context();
3496 ssh->cipher->sesskey(ssh->v1_cipher_ctx, ssh->session_key);
3497 logeventf(ssh, "Initialised %s encryption", ssh->cipher->text_name);
3498
3499 ssh->crcda_ctx = crcda_make_context();
3500 logevent("Installing CRC compensation attack detector");
3501
3502 if (servkey.modulus) {
3503 sfree(servkey.modulus);
3504 servkey.modulus = NULL;
3505 }
3506 if (servkey.exponent) {
3507 sfree(servkey.exponent);
3508 servkey.exponent = NULL;
3509 }
3510 if (hostkey.modulus) {
3511 sfree(hostkey.modulus);
3512 hostkey.modulus = NULL;
3513 }
3514 if (hostkey.exponent) {
3515 sfree(hostkey.exponent);
3516 hostkey.exponent = NULL;
3517 }
3518 crWaitUntil(pktin);
3519
3520 if (pktin->type != SSH1_SMSG_SUCCESS) {
3521 bombout(("Encryption not successfully enabled"));
3522 crStop(0);
3523 }
3524
3525 logevent("Successfully started encryption");
3526
3527 fflush(stdout); /* FIXME eh? */
3528 {
3529 if ((ssh->username = get_remote_username(ssh->conf)) == NULL) {
3530 int ret; /* need not be kept over crReturn */
3531 s->cur_prompt = new_prompts(ssh->frontend);
3532 s->cur_prompt->to_server = TRUE;
3533 s->cur_prompt->name = dupstr("SSH login name");
3534 add_prompt(s->cur_prompt, dupstr("login as: "), TRUE);
3535 ret = get_userpass_input(s->cur_prompt, NULL, 0);
3536 while (ret < 0) {
3537 ssh->send_ok = 1;
3538 crWaitUntil(!pktin);
3539 ret = get_userpass_input(s->cur_prompt, in, inlen);
3540 ssh->send_ok = 0;
3541 }
3542 if (!ret) {
3543 /*
3544 * Failed to get a username. Terminate.
3545 */
3546 free_prompts(s->cur_prompt);
3547 ssh_disconnect(ssh, "No username provided", NULL, 0, TRUE);
3548 crStop(0);
3549 }
3550 ssh->username = dupstr(s->cur_prompt->prompts[0]->result);
3551 free_prompts(s->cur_prompt);
3552 }
3553
3554 send_packet(ssh, SSH1_CMSG_USER, PKT_STR, ssh->username, PKT_END);
3555 {
3556 char *userlog = dupprintf("Sent username \"%s\"", ssh->username);
3557 logevent(userlog);
3558 if (flags & FLAG_INTERACTIVE &&
3559 (!((flags & FLAG_STDERR) && (flags & FLAG_VERBOSE)))) {
3560 c_write_str(ssh, userlog);
3561 c_write_str(ssh, "\r\n");
3562 }
3563 sfree(userlog);
3564 }
3565 }
3566
3567 crWaitUntil(pktin);
3568
3569 if ((s->supported_auths_mask & (1 << SSH1_AUTH_RSA)) == 0) {
3570 /* We must not attempt PK auth. Pretend we've already tried it. */
3571 s->tried_publickey = s->tried_agent = 1;
3572 } else {
3573 s->tried_publickey = s->tried_agent = 0;
3574 }
3575 s->tis_auth_refused = s->ccard_auth_refused = 0;
3576 /*
3577 * Load the public half of any configured keyfile for later use.
3578 */
3579 s->keyfile = conf_get_filename(ssh->conf, CONF_keyfile);
3580 if (!filename_is_null(s->keyfile)) {
3581 int keytype;
3582 logeventf(ssh, "Reading private key file \"%.150s\"",
3583 filename_to_str(s->keyfile));
3584 keytype = key_type(s->keyfile);
3585 if (keytype == SSH_KEYTYPE_SSH1) {
3586 const char *error;
3587 if (rsakey_pubblob(s->keyfile,
3588 &s->publickey_blob, &s->publickey_bloblen,
3589 &s->publickey_comment, &error)) {
3590 s->publickey_encrypted = rsakey_encrypted(s->keyfile,
3591 NULL);
3592 } else {
3593 char *msgbuf;
3594 logeventf(ssh, "Unable to load private key (%s)", error);
3595 msgbuf = dupprintf("Unable to load private key file "
3596 "\"%.150s\" (%s)\r\n",
3597 filename_to_str(s->keyfile),
3598 error);
3599 c_write_str(ssh, msgbuf);
3600 sfree(msgbuf);
3601 s->publickey_blob = NULL;
3602 }
3603 } else {
3604 char *msgbuf;
3605 logeventf(ssh, "Unable to use this key file (%s)",
3606 key_type_to_str(keytype));
3607 msgbuf = dupprintf("Unable to use key file \"%.150s\""
3608 " (%s)\r\n",
3609 filename_to_str(s->keyfile),
3610 key_type_to_str(keytype));
3611 c_write_str(ssh, msgbuf);
3612 sfree(msgbuf);
3613 s->publickey_blob = NULL;
3614 }
3615 } else
3616 s->publickey_blob = NULL;
3617
3618 while (pktin->type == SSH1_SMSG_FAILURE) {
3619 s->pwpkt_type = SSH1_CMSG_AUTH_PASSWORD;
3620
3621 if (conf_get_int(ssh->conf, CONF_tryagent) && agent_exists() && !s->tried_agent) {
3622 /*
3623 * Attempt RSA authentication using Pageant.
3624 */
3625 void *r;
3626
3627 s->authed = FALSE;
3628 s->tried_agent = 1;
3629 logevent("Pageant is running. Requesting keys.");
3630
3631 /* Request the keys held by the agent. */
3632 PUT_32BIT(s->request, 1);
3633 s->request[4] = SSH1_AGENTC_REQUEST_RSA_IDENTITIES;
3634 if (!agent_query(s->request, 5, &r, &s->responselen,
3635 ssh_agent_callback, ssh)) {
3636 do {
3637 crReturn(0);
3638 if (pktin) {
3639 bombout(("Unexpected data from server while waiting"
3640 " for agent response"));
3641 crStop(0);
3642 }
3643 } while (pktin || inlen > 0);
3644 r = ssh->agent_response;
3645 s->responselen = ssh->agent_response_len;
3646 }
3647 s->response = (unsigned char *) r;
3648 if (s->response && s->responselen >= 5 &&
3649 s->response[4] == SSH1_AGENT_RSA_IDENTITIES_ANSWER) {
3650 s->p = s->response + 5;
3651 s->nkeys = GET_32BIT(s->p);
3652 s->p += 4;
3653 logeventf(ssh, "Pageant has %d SSH-1 keys", s->nkeys);
3654 for (s->keyi = 0; s->keyi < s->nkeys; s->keyi++) {
3655 unsigned char *pkblob = s->p;
3656 s->p += 4;
3657 {
3658 int n, ok = FALSE;
3659 do { /* do while (0) to make breaking easy */
3660 n = ssh1_read_bignum
3661 (s->p, s->responselen-(s->p-s->response),
3662 &s->key.exponent);
3663 if (n < 0)
3664 break;
3665 s->p += n;
3666 n = ssh1_read_bignum
3667 (s->p, s->responselen-(s->p-s->response),
3668 &s->key.modulus);
3669 if (n < 0)
3670 break;
3671 s->p += n;
3672 if (s->responselen - (s->p-s->response) < 4)
3673 break;
3674 s->commentlen = GET_32BIT(s->p);
3675 s->p += 4;
3676 if (s->responselen - (s->p-s->response) <
3677 s->commentlen)
3678 break;
3679 s->commentp = (char *)s->p;
3680 s->p += s->commentlen;
3681 ok = TRUE;
3682 } while (0);
3683 if (!ok) {
3684 logevent("Pageant key list packet was truncated");
3685 break;
3686 }
3687 }
3688 if (s->publickey_blob) {
3689 if (!memcmp(pkblob, s->publickey_blob,
3690 s->publickey_bloblen)) {
3691 logeventf(ssh, "Pageant key #%d matches "
3692 "configured key file", s->keyi);
3693 s->tried_publickey = 1;
3694 } else
3695 /* Skip non-configured key */
3696 continue;
3697 }
3698 logeventf(ssh, "Trying Pageant key #%d", s->keyi);
3699 send_packet(ssh, SSH1_CMSG_AUTH_RSA,
3700 PKT_BIGNUM, s->key.modulus, PKT_END);
3701 crWaitUntil(pktin);
3702 if (pktin->type != SSH1_SMSG_AUTH_RSA_CHALLENGE) {
3703 logevent("Key refused");
3704 continue;
3705 }
3706 logevent("Received RSA challenge");
3707 if ((s->challenge = ssh1_pkt_getmp(pktin)) == NULL) {
3708 bombout(("Server's RSA challenge was badly formatted"));
3709 crStop(0);
3710 }
3711
3712 {
3713 char *agentreq, *q, *ret;
3714 void *vret;
3715 int len, retlen;
3716 len = 1 + 4; /* message type, bit count */
3717 len += ssh1_bignum_length(s->key.exponent);
3718 len += ssh1_bignum_length(s->key.modulus);
3719 len += ssh1_bignum_length(s->challenge);
3720 len += 16; /* session id */
3721 len += 4; /* response format */
3722 agentreq = snewn(4 + len, char);
3723 PUT_32BIT(agentreq, len);
3724 q = agentreq + 4;
3725 *q++ = SSH1_AGENTC_RSA_CHALLENGE;
3726 PUT_32BIT(q, bignum_bitcount(s->key.modulus));
3727 q += 4;
3728 q += ssh1_write_bignum(q, s->key.exponent);
3729 q += ssh1_write_bignum(q, s->key.modulus);
3730 q += ssh1_write_bignum(q, s->challenge);
3731 memcpy(q, s->session_id, 16);
3732 q += 16;
3733 PUT_32BIT(q, 1); /* response format */
3734 if (!agent_query(agentreq, len + 4, &vret, &retlen,
3735 ssh_agent_callback, ssh)) {
3736 sfree(agentreq);
3737 do {
3738 crReturn(0);
3739 if (pktin) {
3740 bombout(("Unexpected data from server"
3741 " while waiting for agent"
3742 " response"));
3743 crStop(0);
3744 }
3745 } while (pktin || inlen > 0);
3746 vret = ssh->agent_response;
3747 retlen = ssh->agent_response_len;
3748 } else
3749 sfree(agentreq);
3750 ret = vret;
3751 if (ret) {
3752 if (ret[4] == SSH1_AGENT_RSA_RESPONSE) {
3753 logevent("Sending Pageant's response");
3754 send_packet(ssh, SSH1_CMSG_AUTH_RSA_RESPONSE,
3755 PKT_DATA, ret + 5, 16,
3756 PKT_END);
3757 sfree(ret);
3758 crWaitUntil(pktin);
3759 if (pktin->type == SSH1_SMSG_SUCCESS) {
3760 logevent
3761 ("Pageant's response accepted");
3762 if (flags & FLAG_VERBOSE) {
3763 c_write_str(ssh, "Authenticated using"
3764 " RSA key \"");
3765 c_write(ssh, s->commentp,
3766 s->commentlen);
3767 c_write_str(ssh, "\" from agent\r\n");
3768 }
3769 s->authed = TRUE;
3770 } else
3771 logevent
3772 ("Pageant's response not accepted");
3773 } else {
3774 logevent
3775 ("Pageant failed to answer challenge");
3776 sfree(ret);
3777 }
3778 } else {
3779 logevent("No reply received from Pageant");
3780 }
3781 }
3782 freebn(s->key.exponent);
3783 freebn(s->key.modulus);
3784 freebn(s->challenge);
3785 if (s->authed)
3786 break;
3787 }
3788 sfree(s->response);
3789 if (s->publickey_blob && !s->tried_publickey)
3790 logevent("Configured key file not in Pageant");
3791 } else {
3792 logevent("Failed to get reply from Pageant");
3793 }
3794 if (s->authed)
3795 break;
3796 }
3797 if (s->publickey_blob && !s->tried_publickey) {
3798 /*
3799 * Try public key authentication with the specified
3800 * key file.
3801 */
3802 int got_passphrase; /* need not be kept over crReturn */
3803 if (flags & FLAG_VERBOSE)
3804 c_write_str(ssh, "Trying public key authentication.\r\n");
3805 s->keyfile = conf_get_filename(ssh->conf, CONF_keyfile);
3806 logeventf(ssh, "Trying public key \"%s\"",
3807 filename_to_str(s->keyfile));
3808 s->tried_publickey = 1;
3809 got_passphrase = FALSE;
3810 while (!got_passphrase) {
3811 /*
3812 * Get a passphrase, if necessary.
3813 */
3814 char *passphrase = NULL; /* only written after crReturn */
3815 const char *error;
3816 if (!s->publickey_encrypted) {
3817 if (flags & FLAG_VERBOSE)
3818 c_write_str(ssh, "No passphrase required.\r\n");
3819 passphrase = NULL;
3820 } else {
3821 int ret; /* need not be kept over crReturn */
3822 s->cur_prompt = new_prompts(ssh->frontend);
3823 s->cur_prompt->to_server = FALSE;
3824 s->cur_prompt->name = dupstr("SSH key passphrase");
3825 add_prompt(s->cur_prompt,
3826 dupprintf("Passphrase for key \"%.100s\": ",
3827 s->publickey_comment), FALSE);
3828 ret = get_userpass_input(s->cur_prompt, NULL, 0);
3829 while (ret < 0) {
3830 ssh->send_ok = 1;
3831 crWaitUntil(!pktin);
3832 ret = get_userpass_input(s->cur_prompt, in, inlen);
3833 ssh->send_ok = 0;
3834 }
3835 if (!ret) {
3836 /* Failed to get a passphrase. Terminate. */
3837 free_prompts(s->cur_prompt);
3838 ssh_disconnect(ssh, NULL, "Unable to authenticate",
3839 0, TRUE);
3840 crStop(0);
3841 }
3842 passphrase = dupstr(s->cur_prompt->prompts[0]->result);
3843 free_prompts(s->cur_prompt);
3844 }
3845 /*
3846 * Try decrypting key with passphrase.
3847 */
3848 s->keyfile = conf_get_filename(ssh->conf, CONF_keyfile);
3849 ret = loadrsakey(s->keyfile, &s->key, passphrase,
3850 &error);
3851 if (passphrase) {
3852 memset(passphrase, 0, strlen(passphrase));
3853 sfree(passphrase);
3854 }
3855 if (ret == 1) {
3856 /* Correct passphrase. */
3857 got_passphrase = TRUE;
3858 } else if (ret == 0) {
3859 c_write_str(ssh, "Couldn't load private key from ");
3860 c_write_str(ssh, filename_to_str(s->keyfile));
3861 c_write_str(ssh, " (");
3862 c_write_str(ssh, error);
3863 c_write_str(ssh, ").\r\n");
3864 got_passphrase = FALSE;
3865 break; /* go and try something else */
3866 } else if (ret == -1) {
3867 c_write_str(ssh, "Wrong passphrase.\r\n"); /* FIXME */
3868 got_passphrase = FALSE;
3869 /* and try again */
3870 } else {
3871 assert(0 && "unexpected return from loadrsakey()");
3872 got_passphrase = FALSE; /* placate optimisers */
3873 }
3874 }
3875
3876 if (got_passphrase) {
3877
3878 /*
3879 * Send a public key attempt.
3880 */
3881 send_packet(ssh, SSH1_CMSG_AUTH_RSA,
3882 PKT_BIGNUM, s->key.modulus, PKT_END);
3883
3884 crWaitUntil(pktin);
3885 if (pktin->type == SSH1_SMSG_FAILURE) {
3886 c_write_str(ssh, "Server refused our public key.\r\n");
3887 continue; /* go and try something else */
3888 }
3889 if (pktin->type != SSH1_SMSG_AUTH_RSA_CHALLENGE) {
3890 bombout(("Bizarre response to offer of public key"));
3891 crStop(0);
3892 }
3893
3894 {
3895 int i;
3896 unsigned char buffer[32];
3897 Bignum challenge, response;
3898
3899 if ((challenge = ssh1_pkt_getmp(pktin)) == NULL) {
3900 bombout(("Server's RSA challenge was badly formatted"));
3901 crStop(0);
3902 }
3903 response = rsadecrypt(challenge, &s->key);
3904 freebn(s->key.private_exponent);/* burn the evidence */
3905
3906 for (i = 0; i < 32; i++) {
3907 buffer[i] = bignum_byte(response, 31 - i);
3908 }
3909
3910 MD5Init(&md5c);
3911 MD5Update(&md5c, buffer, 32);
3912 MD5Update(&md5c, s->session_id, 16);
3913 MD5Final(buffer, &md5c);
3914
3915 send_packet(ssh, SSH1_CMSG_AUTH_RSA_RESPONSE,
3916 PKT_DATA, buffer, 16, PKT_END);
3917
3918 freebn(challenge);
3919 freebn(response);
3920 }
3921
3922 crWaitUntil(pktin);
3923 if (pktin->type == SSH1_SMSG_FAILURE) {
3924 if (flags & FLAG_VERBOSE)
3925 c_write_str(ssh, "Failed to authenticate with"
3926 " our public key.\r\n");
3927 continue; /* go and try something else */
3928 } else if (pktin->type != SSH1_SMSG_SUCCESS) {
3929 bombout(("Bizarre response to RSA authentication response"));
3930 crStop(0);
3931 }
3932
3933 break; /* we're through! */
3934 }
3935
3936 }
3937
3938 /*
3939 * Otherwise, try various forms of password-like authentication.
3940 */
3941 s->cur_prompt = new_prompts(ssh->frontend);
3942
3943 if (conf_get_int(ssh->conf, CONF_try_tis_auth) &&
3944 (s->supported_auths_mask & (1 << SSH1_AUTH_TIS)) &&
3945 !s->tis_auth_refused) {
3946 s->pwpkt_type = SSH1_CMSG_AUTH_TIS_RESPONSE;
3947 logevent("Requested TIS authentication");
3948 send_packet(ssh, SSH1_CMSG_AUTH_TIS, PKT_END);
3949 crWaitUntil(pktin);
3950 if (pktin->type != SSH1_SMSG_AUTH_TIS_CHALLENGE) {
3951 logevent("TIS authentication declined");
3952 if (flags & FLAG_INTERACTIVE)
3953 c_write_str(ssh, "TIS authentication refused.\r\n");
3954 s->tis_auth_refused = 1;
3955 continue;
3956 } else {
3957 char *challenge;
3958 int challengelen;
3959 char *instr_suf, *prompt;
3960
3961 ssh_pkt_getstring(pktin, &challenge, &challengelen);
3962 if (!challenge) {
3963 bombout(("TIS challenge packet was badly formed"));
3964 crStop(0);
3965 }
3966 logevent("Received TIS challenge");
3967 s->cur_prompt->to_server = TRUE;
3968 s->cur_prompt->name = dupstr("SSH TIS authentication");
3969 /* Prompt heuristic comes from OpenSSH */
3970 if (memchr(challenge, '\n', challengelen)) {
3971 instr_suf = dupstr("");
3972 prompt = dupprintf("%.*s", challengelen, challenge);
3973 } else {
3974 instr_suf = dupprintf("%.*s", challengelen, challenge);
3975 prompt = dupstr("Response: ");
3976 }
3977 s->cur_prompt->instruction =
3978 dupprintf("Using TIS authentication.%s%s",
3979 (*instr_suf) ? "\n" : "",
3980 instr_suf);
3981 s->cur_prompt->instr_reqd = TRUE;
3982 add_prompt(s->cur_prompt, prompt, FALSE);
3983 sfree(instr_suf);
3984 }
3985 }
3986 if (conf_get_int(ssh->conf, CONF_try_tis_auth) &&
3987 (s->supported_auths_mask & (1 << SSH1_AUTH_CCARD)) &&
3988 !s->ccard_auth_refused) {
3989 s->pwpkt_type = SSH1_CMSG_AUTH_CCARD_RESPONSE;
3990 logevent("Requested CryptoCard authentication");
3991 send_packet(ssh, SSH1_CMSG_AUTH_CCARD, PKT_END);
3992 crWaitUntil(pktin);
3993 if (pktin->type != SSH1_SMSG_AUTH_CCARD_CHALLENGE) {
3994 logevent("CryptoCard authentication declined");
3995 c_write_str(ssh, "CryptoCard authentication refused.\r\n");
3996 s->ccard_auth_refused = 1;
3997 continue;
3998 } else {
3999 char *challenge;
4000 int challengelen;
4001 char *instr_suf, *prompt;
4002
4003 ssh_pkt_getstring(pktin, &challenge, &challengelen);
4004 if (!challenge) {
4005 bombout(("CryptoCard challenge packet was badly formed"));
4006 crStop(0);
4007 }
4008 logevent("Received CryptoCard challenge");
4009 s->cur_prompt->to_server = TRUE;
4010 s->cur_prompt->name = dupstr("SSH CryptoCard authentication");
4011 s->cur_prompt->name_reqd = FALSE;
4012 /* Prompt heuristic comes from OpenSSH */
4013 if (memchr(challenge, '\n', challengelen)) {
4014 instr_suf = dupstr("");
4015 prompt = dupprintf("%.*s", challengelen, challenge);
4016 } else {
4017 instr_suf = dupprintf("%.*s", challengelen, challenge);
4018 prompt = dupstr("Response: ");
4019 }
4020 s->cur_prompt->instruction =
4021 dupprintf("Using CryptoCard authentication.%s%s",
4022 (*instr_suf) ? "\n" : "",
4023 instr_suf);
4024 s->cur_prompt->instr_reqd = TRUE;
4025 add_prompt(s->cur_prompt, prompt, FALSE);
4026 sfree(instr_suf);
4027 }
4028 }
4029 if (s->pwpkt_type == SSH1_CMSG_AUTH_PASSWORD) {
4030 if ((s->supported_auths_mask & (1 << SSH1_AUTH_PASSWORD)) == 0) {
4031 bombout(("No supported authentication methods available"));
4032 crStop(0);
4033 }
4034 s->cur_prompt->to_server = TRUE;
4035 s->cur_prompt->name = dupstr("SSH password");
4036 add_prompt(s->cur_prompt, dupprintf("%s@%s's password: ",
4037 ssh->username, ssh->savedhost),
4038 FALSE);
4039 }
4040
4041 /*
4042 * Show password prompt, having first obtained it via a TIS
4043 * or CryptoCard exchange if we're doing TIS or CryptoCard
4044 * authentication.
4045 */
4046 {
4047 int ret; /* need not be kept over crReturn */
4048 ret = get_userpass_input(s->cur_prompt, NULL, 0);
4049 while (ret < 0) {
4050 ssh->send_ok = 1;
4051 crWaitUntil(!pktin);
4052 ret = get_userpass_input(s->cur_prompt, in, inlen);
4053 ssh->send_ok = 0;
4054 }
4055 if (!ret) {
4056 /*
4057 * Failed to get a password (for example
4058 * because one was supplied on the command line
4059 * which has already failed to work). Terminate.
4060 */
4061 free_prompts(s->cur_prompt);
4062 ssh_disconnect(ssh, NULL, "Unable to authenticate", 0, TRUE);
4063 crStop(0);
4064 }
4065 }
4066
4067 if (s->pwpkt_type == SSH1_CMSG_AUTH_PASSWORD) {
4068 /*
4069 * Defence against traffic analysis: we send a
4070 * whole bunch of packets containing strings of
4071 * different lengths. One of these strings is the
4072 * password, in a SSH1_CMSG_AUTH_PASSWORD packet.
4073 * The others are all random data in
4074 * SSH1_MSG_IGNORE packets. This way a passive
4075 * listener can't tell which is the password, and
4076 * hence can't deduce the password length.
4077 *
4078 * Anybody with a password length greater than 16
4079 * bytes is going to have enough entropy in their
4080 * password that a listener won't find it _that_
4081 * much help to know how long it is. So what we'll
4082 * do is:
4083 *
4084 * - if password length < 16, we send 15 packets
4085 * containing string lengths 1 through 15
4086 *
4087 * - otherwise, we let N be the nearest multiple
4088 * of 8 below the password length, and send 8
4089 * packets containing string lengths N through
4090 * N+7. This won't obscure the order of
4091 * magnitude of the password length, but it will
4092 * introduce a bit of extra uncertainty.
4093 *
4094 * A few servers can't deal with SSH1_MSG_IGNORE, at
4095 * least in this context. For these servers, we need
4096 * an alternative defence. We make use of the fact
4097 * that the password is interpreted as a C string:
4098 * so we can append a NUL, then some random data.
4099 *
4100 * A few servers can deal with neither SSH1_MSG_IGNORE
4101 * here _nor_ a padded password string.
4102 * For these servers we are left with no defences
4103 * against password length sniffing.
4104 */
4105 if (!(ssh->remote_bugs & BUG_CHOKES_ON_SSH1_IGNORE) &&
4106 !(ssh->remote_bugs & BUG_NEEDS_SSH1_PLAIN_PASSWORD)) {
4107 /*
4108 * The server can deal with SSH1_MSG_IGNORE, so
4109 * we can use the primary defence.
4110 */
4111 int bottom, top, pwlen, i;
4112 char *randomstr;
4113
4114 pwlen = strlen(s->cur_prompt->prompts[0]->result);
4115 if (pwlen < 16) {
4116 bottom = 0; /* zero length passwords are OK! :-) */
4117 top = 15;
4118 } else {
4119 bottom = pwlen & ~7;
4120 top = bottom + 7;
4121 }
4122
4123 assert(pwlen >= bottom && pwlen <= top);
4124
4125 randomstr = snewn(top + 1, char);
4126
4127 for (i = bottom; i <= top; i++) {
4128 if (i == pwlen) {
4129 defer_packet(ssh, s->pwpkt_type,
4130 PKTT_PASSWORD, PKT_STR,
4131 s->cur_prompt->prompts[0]->result,
4132 PKTT_OTHER, PKT_END);
4133 } else {
4134 for (j = 0; j < i; j++) {
4135 do {
4136 randomstr[j] = random_byte();
4137 } while (randomstr[j] == '\0');
4138 }
4139 randomstr[i] = '\0';
4140 defer_packet(ssh, SSH1_MSG_IGNORE,
4141 PKT_STR, randomstr, PKT_END);
4142 }
4143 }
4144 logevent("Sending password with camouflage packets");
4145 ssh_pkt_defersend(ssh);
4146 sfree(randomstr);
4147 }
4148 else if (!(ssh->remote_bugs & BUG_NEEDS_SSH1_PLAIN_PASSWORD)) {
4149 /*
4150 * The server can't deal with SSH1_MSG_IGNORE
4151 * but can deal with padded passwords, so we
4152 * can use the secondary defence.
4153 */
4154 char string[64];
4155 char *ss;
4156 int len;
4157
4158 len = strlen(s->cur_prompt->prompts[0]->result);
4159 if (len < sizeof(string)) {
4160 ss = string;
4161 strcpy(string, s->cur_prompt->prompts[0]->result);
4162 len++; /* cover the zero byte */
4163 while (len < sizeof(string)) {
4164 string[len++] = (char) random_byte();
4165 }
4166 } else {
4167 ss = s->cur_prompt->prompts[0]->result;
4168 }
4169 logevent("Sending length-padded password");
4170 send_packet(ssh, s->pwpkt_type, PKTT_PASSWORD,
4171 PKT_INT, len, PKT_DATA, ss, len,
4172 PKTT_OTHER, PKT_END);
4173 } else {
4174 /*
4175 * The server is believed unable to cope with
4176 * any of our password camouflage methods.
4177 */
4178 int len;
4179 len = strlen(s->cur_prompt->prompts[0]->result);
4180 logevent("Sending unpadded password");
4181 send_packet(ssh, s->pwpkt_type,
4182 PKTT_PASSWORD, PKT_INT, len,
4183 PKT_DATA, s->cur_prompt->prompts[0]->result, len,
4184 PKTT_OTHER, PKT_END);
4185 }
4186 } else {
4187 send_packet(ssh, s->pwpkt_type, PKTT_PASSWORD,
4188 PKT_STR, s->cur_prompt->prompts[0]->result,
4189 PKTT_OTHER, PKT_END);
4190 }
4191 logevent("Sent password");
4192 free_prompts(s->cur_prompt);
4193 crWaitUntil(pktin);
4194 if (pktin->type == SSH1_SMSG_FAILURE) {
4195 if (flags & FLAG_VERBOSE)
4196 c_write_str(ssh, "Access denied\r\n");
4197 logevent("Authentication refused");
4198 } else if (pktin->type != SSH1_SMSG_SUCCESS) {
4199 bombout(("Strange packet received, type %d", pktin->type));
4200 crStop(0);
4201 }
4202 }
4203
4204 /* Clear up */
4205 if (s->publickey_blob) {
4206 sfree(s->publickey_blob);
4207 sfree(s->publickey_comment);
4208 }
4209
4210 logevent("Authentication successful");
4211
4212 crFinish(1);
4213 }
4214
4215 static void ssh_channel_try_eof(struct ssh_channel *c)
4216 {
4217 Ssh ssh = c->ssh;
4218 assert(c->pending_eof); /* precondition for calling us */
4219 if (c->halfopen)
4220 return; /* can't close: not even opened yet */
4221 if (ssh->version == 2 && bufchain_size(&c->v.v2.outbuffer) > 0)
4222 return; /* can't send EOF: pending outgoing data */
4223
4224 if (ssh->version == 1) {
4225 send_packet(ssh, SSH1_MSG_CHANNEL_CLOSE, PKT_INT, c->remoteid,
4226 PKT_END);
4227 c->closes |= CLOSES_SENT_EOF;
4228 } else {
4229 struct Packet *pktout;
4230 pktout = ssh2_pkt_init(SSH2_MSG_CHANNEL_EOF);
4231 ssh2_pkt_adduint32(pktout, c->remoteid);
4232 ssh2_pkt_send(ssh, pktout);
4233 c->closes |= CLOSES_SENT_EOF;
4234 if (!((CLOSES_SENT_EOF | CLOSES_RCVD_EOF) & ~c->closes)) {
4235 /*
4236 * Also send MSG_CLOSE.
4237 */
4238 pktout = ssh2_pkt_init(SSH2_MSG_CHANNEL_CLOSE);
4239 ssh2_pkt_adduint32(pktout, c->remoteid);
4240 ssh2_pkt_send(ssh, pktout);
4241 c->closes |= CLOSES_SENT_CLOSE;
4242 }
4243 }
4244 c->pending_eof = FALSE; /* we've sent it now */
4245 }
4246
4247 void sshfwd_write_eof(struct ssh_channel *c)
4248 {
4249 Ssh ssh = c->ssh;
4250
4251 if (ssh->state == SSH_STATE_CLOSED)
4252 return;
4253
4254 if (c->closes & CLOSES_SENT_EOF)
4255 return;
4256
4257 c->pending_eof = TRUE;
4258 ssh_channel_try_eof(c);
4259 }
4260
4261 void sshfwd_unclean_close(struct ssh_channel *c)
4262 {
4263 Ssh ssh = c->ssh;
4264 struct Packet *pktout;
4265
4266 if (ssh->state == SSH_STATE_CLOSED)
4267 return;
4268
4269 if (!(c->closes & CLOSES_SENT_CLOSE)) {
4270 pktout = ssh2_pkt_init(SSH2_MSG_CHANNEL_CLOSE);
4271 ssh2_pkt_adduint32(pktout, c->remoteid);
4272 ssh2_pkt_send(ssh, pktout);
4273 c->closes |= CLOSES_SENT_EOF | CLOSES_SENT_CLOSE;
4274 }
4275
4276 switch (c->type) {
4277 case CHAN_X11:
4278 x11_close(c->u.x11.s);
4279 break;
4280 case CHAN_SOCKDATA:
4281 case CHAN_SOCKDATA_DORMANT:
4282 pfd_close(c->u.pfd.s);
4283 break;
4284 }
4285 c->type = CHAN_ZOMBIE;
4286
4287 ssh2_channel_check_close(c);
4288 }
4289
4290 int sshfwd_write(struct ssh_channel *c, char *buf, int len)
4291 {
4292 Ssh ssh = c->ssh;
4293
4294 if (ssh->state == SSH_STATE_CLOSED)
4295 return 0;
4296
4297 if (ssh->version == 1) {
4298 send_packet(ssh, SSH1_MSG_CHANNEL_DATA,
4299 PKT_INT, c->remoteid,
4300 PKT_INT, len, PKTT_DATA, PKT_DATA, buf, len,
4301 PKTT_OTHER, PKT_END);
4302 /*
4303 * In SSH-1 we can return 0 here - implying that forwarded
4304 * connections are never individually throttled - because
4305 * the only circumstance that can cause throttling will be
4306 * the whole SSH connection backing up, in which case
4307 * _everything_ will be throttled as a whole.
4308 */
4309 return 0;
4310 } else {
4311 ssh2_add_channel_data(c, buf, len);
4312 return ssh2_try_send(c);
4313 }
4314 }
4315
4316 void sshfwd_unthrottle(struct ssh_channel *c, int bufsize)
4317 {
4318 Ssh ssh = c->ssh;
4319 int buflimit;
4320
4321 if (ssh->state == SSH_STATE_CLOSED)
4322 return;
4323
4324 if (ssh->version == 1) {
4325 buflimit = SSH1_BUFFER_LIMIT;
4326 } else {
4327 buflimit = c->v.v2.locmaxwin;
4328 ssh2_set_window(c, bufsize < buflimit ? buflimit - bufsize : 0);
4329 }
4330 if (c->throttling_conn && bufsize <= buflimit) {
4331 c->throttling_conn = 0;
4332 ssh_throttle_conn(ssh, -1);
4333 }
4334 }
4335
4336 static void ssh_queueing_handler(Ssh ssh, struct Packet *pktin)
4337 {
4338 struct queued_handler *qh = ssh->qhead;
4339
4340 assert(qh != NULL);
4341
4342 assert(pktin->type == qh->msg1 || pktin->type == qh->msg2);
4343
4344 if (qh->msg1 > 0) {
4345 assert(ssh->packet_dispatch[qh->msg1] == ssh_queueing_handler);
4346 ssh->packet_dispatch[qh->msg1] = NULL;
4347 }
4348 if (qh->msg2 > 0) {
4349 assert(ssh->packet_dispatch[qh->msg2] == ssh_queueing_handler);
4350 ssh->packet_dispatch[qh->msg2] = NULL;
4351 }
4352
4353 if (qh->next) {
4354 ssh->qhead = qh->next;
4355
4356 if (ssh->qhead->msg1 > 0) {
4357 assert(ssh->packet_dispatch[ssh->qhead->msg1] == NULL);
4358 ssh->packet_dispatch[ssh->qhead->msg1] = ssh_queueing_handler;
4359 }
4360 if (ssh->qhead->msg2 > 0) {
4361 assert(ssh->packet_dispatch[ssh->qhead->msg2] == NULL);
4362 ssh->packet_dispatch[ssh->qhead->msg2] = ssh_queueing_handler;
4363 }
4364 } else {
4365 ssh->qhead = ssh->qtail = NULL;
4366 ssh->packet_dispatch[pktin->type] = NULL;
4367 }
4368
4369 qh->handler(ssh, pktin, qh->ctx);
4370
4371 sfree(qh);
4372 }
4373
4374 static void ssh_queue_handler(Ssh ssh, int msg1, int msg2,
4375 chandler_fn_t handler, void *ctx)
4376 {
4377 struct queued_handler *qh;
4378
4379 qh = snew(struct queued_handler);
4380 qh->msg1 = msg1;
4381 qh->msg2 = msg2;
4382 qh->handler = handler;
4383 qh->ctx = ctx;
4384 qh->next = NULL;
4385
4386 if (ssh->qtail == NULL) {
4387 ssh->qhead = qh;
4388
4389 if (qh->msg1 > 0) {
4390 assert(ssh->packet_dispatch[qh->msg1] == NULL);
4391 ssh->packet_dispatch[qh->msg1] = ssh_queueing_handler;
4392 }
4393 if (qh->msg2 > 0) {
4394 assert(ssh->packet_dispatch[qh->msg2] == NULL);
4395 ssh->packet_dispatch[qh->msg2] = ssh_queueing_handler;
4396 }
4397 } else {
4398 ssh->qtail->next = qh;
4399 }
4400 ssh->qtail = qh;
4401 }
4402
4403 static void ssh_rportfwd_succfail(Ssh ssh, struct Packet *pktin, void *ctx)
4404 {
4405 struct ssh_rportfwd *rpf, *pf = (struct ssh_rportfwd *)ctx;
4406
4407 if (pktin->type == (ssh->version == 1 ? SSH1_SMSG_SUCCESS :
4408 SSH2_MSG_REQUEST_SUCCESS)) {
4409 logeventf(ssh, "Remote port forwarding from %s enabled",
4410 pf->sportdesc);
4411 } else {
4412 logeventf(ssh, "Remote port forwarding from %s refused",
4413 pf->sportdesc);
4414
4415 rpf = del234(ssh->rportfwds, pf);
4416 assert(rpf == pf);
4417 pf->pfrec->remote = NULL;
4418 free_rportfwd(pf);
4419 }
4420 }
4421
4422 static void ssh_setup_portfwd(Ssh ssh, Conf *conf)
4423 {
4424 struct ssh_portfwd *epf;
4425 int i;
4426 char *key, *val;
4427
4428 if (!ssh->portfwds) {
4429 ssh->portfwds = newtree234(ssh_portcmp);
4430 } else {
4431 /*
4432 * Go through the existing port forwardings and tag them
4433 * with status==DESTROY. Any that we want to keep will be
4434 * re-enabled (status==KEEP) as we go through the
4435 * configuration and find out which bits are the same as
4436 * they were before.
4437 */
4438 struct ssh_portfwd *epf;
4439 int i;
4440 for (i = 0; (epf = index234(ssh->portfwds, i)) != NULL; i++)
4441 epf->status = DESTROY;
4442 }
4443
4444 for (val = conf_get_str_strs(conf, CONF_portfwd, NULL, &key);
4445 val != NULL;
4446 val = conf_get_str_strs(conf, CONF_portfwd, key, &key)) {
4447 char *kp, *kp2, *vp, *vp2;
4448 char address_family, type;
4449 int sport,dport,sserv,dserv;
4450 char *sports, *dports, *saddr, *host;
4451
4452 kp = key;
4453
4454 address_family = 'A';
4455 type = 'L';
4456 if (*kp == 'A' || *kp == '4' || *kp == '6')
4457 address_family = *kp++;
4458 if (*kp == 'L' || *kp == 'R')
4459 type = *kp++;
4460
4461 if ((kp2 = strchr(kp, ':')) != NULL) {
4462 /*
4463 * There's a colon in the middle of the source port
4464 * string, which means that the part before it is
4465 * actually a source address.
4466 */
4467 saddr = dupprintf("%.*s", (int)(kp2 - kp), kp);
4468 sports = kp2+1;
4469 } else {
4470 saddr = NULL;
4471 sports = kp;
4472 }
4473 sport = atoi(sports);
4474 sserv = 0;
4475 if (sport == 0) {
4476 sserv = 1;
4477 sport = net_service_lookup(sports);
4478 if (!sport) {
4479 logeventf(ssh, "Service lookup failed for source"
4480 " port \"%s\"", sports);
4481 }
4482 }
4483
4484 if (type == 'L' && !strcmp(val, "D")) {
4485 /* dynamic forwarding */
4486 host = NULL;
4487 dports = NULL;
4488 dport = -1;
4489 dserv = 0;
4490 type = 'D';
4491 } else {
4492 /* ordinary forwarding */
4493 vp = val;
4494 vp2 = vp + strcspn(vp, ":");
4495 host = dupprintf("%.*s", (int)(vp2 - vp), vp);
4496 if (vp2)
4497 vp2++;
4498 dports = vp2;
4499 dport = atoi(dports);
4500 dserv = 0;
4501 if (dport == 0) {
4502 dserv = 1;
4503 dport = net_service_lookup(dports);
4504 if (!dport) {
4505 logeventf(ssh, "Service lookup failed for destination"
4506 " port \"%s\"", dports);
4507 }
4508 }
4509 }
4510
4511 if (sport && dport) {
4512 /* Set up a description of the source port. */
4513 struct ssh_portfwd *pfrec, *epfrec;
4514
4515 pfrec = snew(struct ssh_portfwd);
4516 pfrec->type = type;
4517 pfrec->saddr = saddr;
4518 pfrec->sserv = sserv ? dupstr(sports) : NULL;
4519 pfrec->sport = sport;
4520 pfrec->daddr = host;
4521 pfrec->dserv = dserv ? dupstr(dports) : NULL;
4522 pfrec->dport = dport;
4523 pfrec->local = NULL;
4524 pfrec->remote = NULL;
4525 pfrec->addressfamily = (address_family == '4' ? ADDRTYPE_IPV4 :
4526 address_family == '6' ? ADDRTYPE_IPV6 :
4527 ADDRTYPE_UNSPEC);
4528
4529 epfrec = add234(ssh->portfwds, pfrec);
4530 if (epfrec != pfrec) {
4531 if (epfrec->status == DESTROY) {
4532 /*
4533 * We already have a port forwarding up and running
4534 * with precisely these parameters. Hence, no need
4535 * to do anything; simply re-tag the existing one
4536 * as KEEP.
4537 */
4538 epfrec->status = KEEP;
4539 }
4540 /*
4541 * Anything else indicates that there was a duplicate
4542 * in our input, which we'll silently ignore.
4543 */
4544 free_portfwd(pfrec);
4545 } else {
4546 pfrec->status = CREATE;
4547 }
4548 } else {
4549 sfree(saddr);
4550 sfree(host);
4551 }
4552 }
4553
4554 /*
4555 * Now go through and destroy any port forwardings which were
4556 * not re-enabled.
4557 */
4558 for (i = 0; (epf = index234(ssh->portfwds, i)) != NULL; i++)
4559 if (epf->status == DESTROY) {
4560 char *message;
4561
4562 message = dupprintf("%s port forwarding from %s%s%d",
4563 epf->type == 'L' ? "local" :
4564 epf->type == 'R' ? "remote" : "dynamic",
4565 epf->saddr ? epf->saddr : "",
4566 epf->saddr ? ":" : "",
4567 epf->sport);
4568
4569 if (epf->type != 'D') {
4570 char *msg2 = dupprintf("%s to %s:%d", message,
4571 epf->daddr, epf->dport);
4572 sfree(message);
4573 message = msg2;
4574 }
4575
4576 logeventf(ssh, "Cancelling %s", message);
4577 sfree(message);
4578
4579 /* epf->remote or epf->local may be NULL if setting up a
4580 * forwarding failed. */
4581 if (epf->remote) {
4582 struct ssh_rportfwd *rpf = epf->remote;
4583 struct Packet *pktout;
4584
4585 /*
4586 * Cancel the port forwarding at the server
4587 * end.
4588 */
4589 if (ssh->version == 1) {
4590 /*
4591 * We cannot cancel listening ports on the
4592 * server side in SSH-1! There's no message
4593 * to support it. Instead, we simply remove
4594 * the rportfwd record from the local end
4595 * so that any connections the server tries
4596 * to make on it are rejected.
4597 */
4598 } else {
4599 pktout = ssh2_pkt_init(SSH2_MSG_GLOBAL_REQUEST);
4600 ssh2_pkt_addstring(pktout, "cancel-tcpip-forward");
4601 ssh2_pkt_addbool(pktout, 0);/* _don't_ want reply */
4602 if (epf->saddr) {
4603 ssh2_pkt_addstring(pktout, epf->saddr);
4604 } else if (conf_get_int(conf, CONF_rport_acceptall)) {
4605 /* XXX: rport_acceptall may not represent
4606 * what was used to open the original connection,
4607 * since it's reconfigurable. */
4608 ssh2_pkt_addstring(pktout, "0.0.0.0");
4609 } else {
4610 ssh2_pkt_addstring(pktout, "127.0.0.1");
4611 }
4612 ssh2_pkt_adduint32(pktout, epf->sport);
4613 ssh2_pkt_send(ssh, pktout);
4614 }
4615
4616 del234(ssh->rportfwds, rpf);
4617 free_rportfwd(rpf);
4618 } else if (epf->local) {
4619 pfd_terminate(epf->local);
4620 }
4621
4622 delpos234(ssh->portfwds, i);
4623 free_portfwd(epf);
4624 i--; /* so we don't skip one in the list */
4625 }
4626
4627 /*
4628 * And finally, set up any new port forwardings (status==CREATE).
4629 */
4630 for (i = 0; (epf = index234(ssh->portfwds, i)) != NULL; i++)
4631 if (epf->status == CREATE) {
4632 char *sportdesc, *dportdesc;
4633 sportdesc = dupprintf("%s%s%s%s%d%s",
4634 epf->saddr ? epf->saddr : "",
4635 epf->saddr ? ":" : "",
4636 epf->sserv ? epf->sserv : "",
4637 epf->sserv ? "(" : "",
4638 epf->sport,
4639 epf->sserv ? ")" : "");
4640 if (epf->type == 'D') {
4641 dportdesc = NULL;
4642 } else {
4643 dportdesc = dupprintf("%s:%s%s%d%s",
4644 epf->daddr,
4645 epf->dserv ? epf->dserv : "",
4646 epf->dserv ? "(" : "",
4647 epf->dport,
4648 epf->dserv ? ")" : "");
4649 }
4650
4651 if (epf->type == 'L') {
4652 const char *err = pfd_addforward(epf->daddr, epf->dport,
4653 epf->saddr, epf->sport,
4654 ssh, conf,
4655 &epf->local,
4656 epf->addressfamily);
4657
4658 logeventf(ssh, "Local %sport %s forwarding to %s%s%s",
4659 epf->addressfamily == ADDRTYPE_IPV4 ? "IPv4 " :
4660 epf->addressfamily == ADDRTYPE_IPV6 ? "IPv6 " : "",
4661 sportdesc, dportdesc,
4662 err ? " failed: " : "", err ? err : "");
4663 } else if (epf->type == 'D') {
4664 const char *err = pfd_addforward(NULL, -1,
4665 epf->saddr, epf->sport,
4666 ssh, conf,
4667 &epf->local,
4668 epf->addressfamily);
4669
4670 logeventf(ssh, "Local %sport %s SOCKS dynamic forwarding%s%s",
4671 epf->addressfamily == ADDRTYPE_IPV4 ? "IPv4 " :
4672 epf->addressfamily == ADDRTYPE_IPV6 ? "IPv6 " : "",
4673 sportdesc,
4674 err ? " failed: " : "", err ? err : "");
4675 } else {
4676 struct ssh_rportfwd *pf;
4677
4678 /*
4679 * Ensure the remote port forwardings tree exists.
4680 */
4681 if (!ssh->rportfwds) {
4682 if (ssh->version == 1)
4683 ssh->rportfwds = newtree234(ssh_rportcmp_ssh1);
4684 else
4685 ssh->rportfwds = newtree234(ssh_rportcmp_ssh2);
4686 }
4687
4688 pf = snew(struct ssh_rportfwd);
4689 strncpy(pf->dhost, epf->daddr, lenof(pf->dhost)-1);
4690 pf->dhost[lenof(pf->dhost)-1] = '\0';
4691 pf->dport = epf->dport;
4692 pf->sport = epf->sport;
4693 if (add234(ssh->rportfwds, pf) != pf) {
4694 logeventf(ssh, "Duplicate remote port forwarding to %s:%d",
4695 epf->daddr, epf->dport);
4696 sfree(pf);
4697 } else {
4698 logeventf(ssh, "Requesting remote port %s"
4699 " forward to %s", sportdesc, dportdesc);
4700
4701 pf->sportdesc = sportdesc;
4702 sportdesc = NULL;
4703 epf->remote = pf;
4704 pf->pfrec = epf;
4705
4706 if (ssh->version == 1) {
4707 send_packet(ssh, SSH1_CMSG_PORT_FORWARD_REQUEST,
4708 PKT_INT, epf->sport,
4709 PKT_STR, epf->daddr,
4710 PKT_INT, epf->dport,
4711 PKT_END);
4712 ssh_queue_handler(ssh, SSH1_SMSG_SUCCESS,
4713 SSH1_SMSG_FAILURE,
4714 ssh_rportfwd_succfail, pf);
4715 } else {
4716 struct Packet *pktout;
4717 pktout = ssh2_pkt_init(SSH2_MSG_GLOBAL_REQUEST);
4718 ssh2_pkt_addstring(pktout, "tcpip-forward");
4719 ssh2_pkt_addbool(pktout, 1);/* want reply */
4720 if (epf->saddr) {
4721 ssh2_pkt_addstring(pktout, epf->saddr);
4722 } else if (conf_get_int(conf, CONF_rport_acceptall)) {
4723 ssh2_pkt_addstring(pktout, "0.0.0.0");
4724 } else {
4725 ssh2_pkt_addstring(pktout, "127.0.0.1");
4726 }
4727 ssh2_pkt_adduint32(pktout, epf->sport);
4728 ssh2_pkt_send(ssh, pktout);
4729
4730 ssh_queue_handler(ssh, SSH2_MSG_REQUEST_SUCCESS,
4731 SSH2_MSG_REQUEST_FAILURE,
4732 ssh_rportfwd_succfail, pf);
4733 }
4734 }
4735 }
4736 sfree(sportdesc);
4737 sfree(dportdesc);
4738 }
4739 }
4740
4741 static void ssh1_smsg_stdout_stderr_data(Ssh ssh, struct Packet *pktin)
4742 {
4743 char *string;
4744 int stringlen, bufsize;
4745
4746 ssh_pkt_getstring(pktin, &string, &stringlen);
4747 if (string == NULL) {
4748 bombout(("Incoming terminal data packet was badly formed"));
4749 return;
4750 }
4751
4752 bufsize = from_backend(ssh->frontend, pktin->type == SSH1_SMSG_STDERR_DATA,
4753 string, stringlen);
4754 if (!ssh->v1_stdout_throttling && bufsize > SSH1_BUFFER_LIMIT) {
4755 ssh->v1_stdout_throttling = 1;
4756 ssh_throttle_conn(ssh, +1);
4757 }
4758 }
4759
4760 static void ssh1_smsg_x11_open(Ssh ssh, struct Packet *pktin)
4761 {
4762 /* Remote side is trying to open a channel to talk to our
4763 * X-Server. Give them back a local channel number. */
4764 struct ssh_channel *c;
4765 int remoteid = ssh_pkt_getuint32(pktin);
4766
4767 logevent("Received X11 connect request");
4768 /* Refuse if X11 forwarding is disabled. */
4769 if (!ssh->X11_fwd_enabled) {
4770 send_packet(ssh, SSH1_MSG_CHANNEL_OPEN_FAILURE,
4771 PKT_INT, remoteid, PKT_END);
4772 logevent("Rejected X11 connect request");
4773 } else {
4774 c = snew(struct ssh_channel);
4775 c->ssh = ssh;
4776
4777 if (x11_init(&c->u.x11.s, ssh->x11disp, c,
4778 NULL, -1, ssh->conf) != NULL) {
4779 logevent("Opening X11 forward connection failed");
4780 sfree(c);
4781 send_packet(ssh, SSH1_MSG_CHANNEL_OPEN_FAILURE,
4782 PKT_INT, remoteid, PKT_END);
4783 } else {
4784 logevent
4785 ("Opening X11 forward connection succeeded");
4786 c->remoteid = remoteid;
4787 c->halfopen = FALSE;
4788 c->localid = alloc_channel_id(ssh);
4789 c->closes = 0;
4790 c->pending_eof = FALSE;
4791 c->throttling_conn = 0;
4792 c->type = CHAN_X11; /* identify channel type */
4793 add234(ssh->channels, c);
4794 send_packet(ssh, SSH1_MSG_CHANNEL_OPEN_CONFIRMATION,
4795 PKT_INT, c->remoteid, PKT_INT,
4796 c->localid, PKT_END);
4797 logevent("Opened X11 forward channel");
4798 }
4799 }
4800 }
4801
4802 static void ssh1_smsg_agent_open(Ssh ssh, struct Packet *pktin)
4803 {
4804 /* Remote side is trying to open a channel to talk to our
4805 * agent. Give them back a local channel number. */
4806 struct ssh_channel *c;
4807 int remoteid = ssh_pkt_getuint32(pktin);
4808
4809 /* Refuse if agent forwarding is disabled. */
4810 if (!ssh->agentfwd_enabled) {
4811 send_packet(ssh, SSH1_MSG_CHANNEL_OPEN_FAILURE,
4812 PKT_INT, remoteid, PKT_END);
4813 } else {
4814 c = snew(struct ssh_channel);
4815 c->ssh = ssh;
4816 c->remoteid = remoteid;
4817 c->halfopen = FALSE;
4818 c->localid = alloc_channel_id(ssh);
4819 c->closes = 0;
4820 c->pending_eof = FALSE;
4821 c->throttling_conn = 0;
4822 c->type = CHAN_AGENT; /* identify channel type */
4823 c->u.a.lensofar = 0;
4824 c->u.a.message = NULL;
4825 add234(ssh->channels, c);
4826 send_packet(ssh, SSH1_MSG_CHANNEL_OPEN_CONFIRMATION,
4827 PKT_INT, c->remoteid, PKT_INT, c->localid,
4828 PKT_END);
4829 }
4830 }
4831
4832 static void ssh1_msg_port_open(Ssh ssh, struct Packet *pktin)
4833 {
4834 /* Remote side is trying to open a channel to talk to a
4835 * forwarded port. Give them back a local channel number. */
4836 struct ssh_channel *c;
4837 struct ssh_rportfwd pf, *pfp;
4838 int remoteid;
4839 int hostsize, port;
4840 char *host;
4841 const char *e;
4842 c = snew(struct ssh_channel);
4843 c->ssh = ssh;
4844
4845 remoteid = ssh_pkt_getuint32(pktin);
4846 ssh_pkt_getstring(pktin, &host, &hostsize);
4847 port = ssh_pkt_getuint32(pktin);
4848
4849 if (hostsize >= lenof(pf.dhost))
4850 hostsize = lenof(pf.dhost)-1;
4851 memcpy(pf.dhost, host, hostsize);
4852 pf.dhost[hostsize] = '\0';
4853 pf.dport = port;
4854 pfp = find234(ssh->rportfwds, &pf, NULL);
4855
4856 if (pfp == NULL) {
4857 logeventf(ssh, "Rejected remote port open request for %s:%d",
4858 pf.dhost, port);
4859 send_packet(ssh, SSH1_MSG_CHANNEL_OPEN_FAILURE,
4860 PKT_INT, remoteid, PKT_END);
4861 } else {
4862 logeventf(ssh, "Received remote port open request for %s:%d",
4863 pf.dhost, port);
4864 e = pfd_newconnect(&c->u.pfd.s, pf.dhost, port,
4865 c, ssh->conf, pfp->pfrec->addressfamily);
4866 if (e != NULL) {
4867 logeventf(ssh, "Port open failed: %s", e);
4868 sfree(c);
4869 send_packet(ssh, SSH1_MSG_CHANNEL_OPEN_FAILURE,
4870 PKT_INT, remoteid, PKT_END);
4871 } else {
4872 c->remoteid = remoteid;
4873 c->halfopen = FALSE;
4874 c->localid = alloc_channel_id(ssh);
4875 c->closes = 0;
4876 c->pending_eof = FALSE;
4877 c->throttling_conn = 0;
4878 c->type = CHAN_SOCKDATA; /* identify channel type */
4879 add234(ssh->channels, c);
4880 send_packet(ssh, SSH1_MSG_CHANNEL_OPEN_CONFIRMATION,
4881 PKT_INT, c->remoteid, PKT_INT,
4882 c->localid, PKT_END);
4883 logevent("Forwarded port opened successfully");
4884 }
4885 }
4886 }
4887
4888 static void ssh1_msg_channel_open_confirmation(Ssh ssh, struct Packet *pktin)
4889 {
4890 unsigned int remoteid = ssh_pkt_getuint32(pktin);
4891 unsigned int localid = ssh_pkt_getuint32(pktin);
4892 struct ssh_channel *c;
4893
4894 c = find234(ssh->channels, &remoteid, ssh_channelfind);
4895 if (c && c->type == CHAN_SOCKDATA_DORMANT) {
4896 c->remoteid = localid;
4897 c->halfopen = FALSE;
4898 c->type = CHAN_SOCKDATA;
4899 c->throttling_conn = 0;
4900 pfd_confirm(c->u.pfd.s);
4901 }
4902
4903 if (c && c->pending_eof) {
4904 /*
4905 * We have a pending close on this channel,
4906 * which we decided on before the server acked
4907 * the channel open. So now we know the
4908 * remoteid, we can close it again.
4909 */
4910 ssh_channel_try_eof(c);
4911 }
4912 }
4913
4914 static void ssh1_msg_channel_open_failure(Ssh ssh, struct Packet *pktin)
4915 {
4916 unsigned int remoteid = ssh_pkt_getuint32(pktin);
4917 struct ssh_channel *c;
4918
4919 c = find234(ssh->channels, &remoteid, ssh_channelfind);
4920 if (c && c->type == CHAN_SOCKDATA_DORMANT) {
4921 logevent("Forwarded connection refused by server");
4922 pfd_close(c->u.pfd.s);
4923 del234(ssh->channels, c);
4924 sfree(c);
4925 }
4926 }
4927
4928 static void ssh1_msg_channel_close(Ssh ssh, struct Packet *pktin)
4929 {
4930 /* Remote side closes a channel. */
4931 unsigned i = ssh_pkt_getuint32(pktin);
4932 struct ssh_channel *c;
4933 c = find234(ssh->channels, &i, ssh_channelfind);
4934 if (c && !c->halfopen) {
4935
4936 if (pktin->type == SSH1_MSG_CHANNEL_CLOSE &&
4937 !(c->closes & CLOSES_RCVD_EOF)) {
4938 /*
4939 * Received CHANNEL_CLOSE, which we translate into
4940 * outgoing EOF.
4941 */
4942 int send_close = FALSE;
4943
4944 c->closes |= CLOSES_RCVD_EOF;
4945
4946 switch (c->type) {
4947 case CHAN_X11:
4948 if (c->u.x11.s)
4949 x11_send_eof(c->u.x11.s);
4950 else
4951 send_close = TRUE;
4952 case CHAN_SOCKDATA:
4953 if (c->u.pfd.s)
4954 x11_send_eof(c->u.pfd.s);
4955 else
4956 send_close = TRUE;
4957 case CHAN_AGENT:
4958 send_close = TRUE;
4959 }
4960
4961 if (send_close && !(c->closes & CLOSES_SENT_EOF)) {
4962 send_packet(ssh, SSH1_MSG_CHANNEL_CLOSE, PKT_INT, c->remoteid,
4963 PKT_END);
4964 c->closes |= CLOSES_SENT_EOF;
4965 }
4966 }
4967
4968 if (pktin->type == SSH1_MSG_CHANNEL_CLOSE_CONFIRMATION &&
4969 !(c->closes & CLOSES_RCVD_CLOSE)) {
4970
4971 if (!(c->closes & CLOSES_SENT_EOF)) {
4972 bombout(("Received CHANNEL_CLOSE_CONFIRMATION for channel %d"
4973 " for which we never sent CHANNEL_CLOSE\n", i));
4974 }
4975
4976 c->closes |= CLOSES_RCVD_CLOSE;
4977 }
4978
4979 if (!((CLOSES_SENT_EOF | CLOSES_RCVD_EOF) & ~c->closes) &&
4980 !(c->closes & CLOSES_SENT_CLOSE)) {
4981 send_packet(ssh, SSH1_MSG_CHANNEL_CLOSE_CONFIRMATION,
4982 PKT_INT, c->remoteid, PKT_END);
4983 c->closes |= CLOSES_SENT_CLOSE;
4984 }
4985
4986 if (!((CLOSES_SENT_CLOSE | CLOSES_RCVD_CLOSE) & ~c->closes))
4987 ssh_channel_destroy(c);
4988 } else {
4989 bombout(("Received CHANNEL_CLOSE%s for %s channel %d\n",
4990 pktin->type == SSH1_MSG_CHANNEL_CLOSE ? "" :
4991 "_CONFIRMATION", c ? "half-open" : "nonexistent",
4992 i));
4993 }
4994 }
4995
4996 static void ssh1_msg_channel_data(Ssh ssh, struct Packet *pktin)
4997 {
4998 /* Data sent down one of our channels. */
4999 int i = ssh_pkt_getuint32(pktin);
5000 char *p;
5001 int len;
5002 struct ssh_channel *c;
5003
5004 ssh_pkt_getstring(pktin, &p, &len);
5005
5006 c = find234(ssh->channels, &i, ssh_channelfind);
5007 if (c) {
5008 int bufsize = 0;
5009 switch (c->type) {
5010 case CHAN_X11:
5011 bufsize = x11_send(c->u.x11.s, p, len);
5012 break;
5013 case CHAN_SOCKDATA:
5014 bufsize = pfd_send(c->u.pfd.s, p, len);
5015 break;
5016 case CHAN_AGENT:
5017 /* Data for an agent message. Buffer it. */
5018 while (len > 0) {
5019 if (c->u.a.lensofar < 4) {
5020 unsigned int l = min(4 - c->u.a.lensofar, (unsigned)len);
5021 memcpy(c->u.a.msglen + c->u.a.lensofar, p,
5022 l);
5023 p += l;
5024 len -= l;
5025 c->u.a.lensofar += l;
5026 }
5027 if (c->u.a.lensofar == 4) {
5028 c->u.a.totallen =
5029 4 + GET_32BIT(c->u.a.msglen);
5030 c->u.a.message = snewn(c->u.a.totallen,
5031 unsigned char);
5032 memcpy(c->u.a.message, c->u.a.msglen, 4);
5033 }
5034 if (c->u.a.lensofar >= 4 && len > 0) {
5035 unsigned int l =
5036 min(c->u.a.totallen - c->u.a.lensofar,
5037 (unsigned)len);
5038 memcpy(c->u.a.message + c->u.a.lensofar, p,
5039 l);
5040 p += l;
5041 len -= l;
5042 c->u.a.lensofar += l;
5043 }
5044 if (c->u.a.lensofar == c->u.a.totallen) {
5045 void *reply;
5046 int replylen;
5047 if (agent_query(c->u.a.message,
5048 c->u.a.totallen,
5049 &reply, &replylen,
5050 ssh_agentf_callback, c))
5051 ssh_agentf_callback(c, reply, replylen);
5052 sfree(c->u.a.message);
5053 c->u.a.lensofar = 0;
5054 }
5055 }
5056 bufsize = 0; /* agent channels never back up */
5057 break;
5058 }
5059 if (!c->throttling_conn && bufsize > SSH1_BUFFER_LIMIT) {
5060 c->throttling_conn = 1;
5061 ssh_throttle_conn(ssh, +1);
5062 }
5063 }
5064 }
5065
5066 static void ssh1_smsg_exit_status(Ssh ssh, struct Packet *pktin)
5067 {
5068 ssh->exitcode = ssh_pkt_getuint32(pktin);
5069 logeventf(ssh, "Server sent command exit status %d", ssh->exitcode);
5070 send_packet(ssh, SSH1_CMSG_EXIT_CONFIRMATION, PKT_END);
5071 /*
5072 * In case `helpful' firewalls or proxies tack
5073 * extra human-readable text on the end of the
5074 * session which we might mistake for another
5075 * encrypted packet, we close the session once
5076 * we've sent EXIT_CONFIRMATION.
5077 */
5078 ssh_disconnect(ssh, NULL, NULL, 0, TRUE);
5079 }
5080
5081 /* Helper function to deal with sending tty modes for REQUEST_PTY */
5082 static void ssh1_send_ttymode(void *data, char *mode, char *val)
5083 {
5084 struct Packet *pktout = (struct Packet *)data;
5085 int i = 0;
5086 unsigned int arg = 0;
5087 while (strcmp(mode, ssh_ttymodes[i].mode) != 0) i++;
5088 if (i == lenof(ssh_ttymodes)) return;
5089 switch (ssh_ttymodes[i].type) {
5090 case TTY_OP_CHAR:
5091 arg = ssh_tty_parse_specchar(val);
5092 break;
5093 case TTY_OP_BOOL:
5094 arg = ssh_tty_parse_boolean(val);
5095 break;
5096 }
5097 ssh2_pkt_addbyte(pktout, ssh_ttymodes[i].opcode);
5098 ssh2_pkt_addbyte(pktout, arg);
5099 }
5100
5101
5102 static void do_ssh1_connection(Ssh ssh, unsigned char *in, int inlen,
5103 struct Packet *pktin)
5104 {
5105 crBegin(ssh->do_ssh1_connection_crstate);
5106
5107 ssh->packet_dispatch[SSH1_SMSG_STDOUT_DATA] =
5108 ssh->packet_dispatch[SSH1_SMSG_STDERR_DATA] =
5109 ssh1_smsg_stdout_stderr_data;
5110
5111 ssh->packet_dispatch[SSH1_MSG_CHANNEL_OPEN_CONFIRMATION] =
5112 ssh1_msg_channel_open_confirmation;
5113 ssh->packet_dispatch[SSH1_MSG_CHANNEL_OPEN_FAILURE] =
5114 ssh1_msg_channel_open_failure;
5115 ssh->packet_dispatch[SSH1_MSG_CHANNEL_CLOSE] =
5116 ssh->packet_dispatch[SSH1_MSG_CHANNEL_CLOSE_CONFIRMATION] =
5117 ssh1_msg_channel_close;
5118 ssh->packet_dispatch[SSH1_MSG_CHANNEL_DATA] = ssh1_msg_channel_data;
5119 ssh->packet_dispatch[SSH1_SMSG_EXIT_STATUS] = ssh1_smsg_exit_status;
5120
5121 if (conf_get_int(ssh->conf, CONF_agentfwd) && agent_exists()) {
5122 logevent("Requesting agent forwarding");
5123 send_packet(ssh, SSH1_CMSG_AGENT_REQUEST_FORWARDING, PKT_END);
5124 do {
5125 crReturnV;
5126 } while (!pktin);
5127 if (pktin->type != SSH1_SMSG_SUCCESS
5128 && pktin->type != SSH1_SMSG_FAILURE) {
5129 bombout(("Protocol confusion"));
5130 crStopV;
5131 } else if (pktin->type == SSH1_SMSG_FAILURE) {
5132 logevent("Agent forwarding refused");
5133 } else {
5134 logevent("Agent forwarding enabled");
5135 ssh->agentfwd_enabled = TRUE;
5136 ssh->packet_dispatch[SSH1_SMSG_AGENT_OPEN] = ssh1_smsg_agent_open;
5137 }
5138 }
5139
5140 if (conf_get_int(ssh->conf, CONF_x11_forward) &&
5141 (ssh->x11disp = x11_setup_display(conf_get_str(ssh->conf, CONF_x11_display),
5142 conf_get_int(ssh->conf, CONF_x11_auth), ssh->conf))) {
5143 logevent("Requesting X11 forwarding");
5144 /*
5145 * Note that while we blank the X authentication data here, we don't
5146 * take any special action to blank the start of an X11 channel,
5147 * so using MIT-MAGIC-COOKIE-1 and actually opening an X connection
5148 * without having session blanking enabled is likely to leak your
5149 * cookie into the log.
5150 */
5151 if (ssh->v1_local_protoflags & SSH1_PROTOFLAG_SCREEN_NUMBER) {
5152 send_packet(ssh, SSH1_CMSG_X11_REQUEST_FORWARDING,
5153 PKT_STR, ssh->x11disp->remoteauthprotoname,
5154 PKTT_PASSWORD,
5155 PKT_STR, ssh->x11disp->remoteauthdatastring,
5156 PKTT_OTHER,
5157 PKT_INT, ssh->x11disp->screennum,
5158 PKT_END);
5159 } else {
5160 send_packet(ssh, SSH1_CMSG_X11_REQUEST_FORWARDING,
5161 PKT_STR, ssh->x11disp->remoteauthprotoname,
5162 PKTT_PASSWORD,
5163 PKT_STR, ssh->x11disp->remoteauthdatastring,
5164 PKTT_OTHER,
5165 PKT_END);
5166 }
5167 do {
5168 crReturnV;
5169 } while (!pktin);
5170 if (pktin->type != SSH1_SMSG_SUCCESS
5171 && pktin->type != SSH1_SMSG_FAILURE) {
5172 bombout(("Protocol confusion"));
5173 crStopV;
5174 } else if (pktin->type == SSH1_SMSG_FAILURE) {
5175 logevent("X11 forwarding refused");
5176 } else {
5177 logevent("X11 forwarding enabled");
5178 ssh->X11_fwd_enabled = TRUE;
5179 ssh->packet_dispatch[SSH1_SMSG_X11_OPEN] = ssh1_smsg_x11_open;
5180 }
5181 }
5182
5183 ssh_setup_portfwd(ssh, ssh->conf);
5184 ssh->packet_dispatch[SSH1_MSG_PORT_OPEN] = ssh1_msg_port_open;
5185
5186 if (!conf_get_int(ssh->conf, CONF_nopty)) {
5187 struct Packet *pkt;
5188 /* Unpick the terminal-speed string. */
5189 /* XXX perhaps we should allow no speeds to be sent. */
5190 ssh->ospeed = 38400; ssh->ispeed = 38400; /* last-resort defaults */
5191 sscanf(conf_get_str(ssh->conf, CONF_termspeed), "%d,%d", &ssh->ospeed, &ssh->ispeed);
5192 /* Send the pty request. */
5193 pkt = ssh1_pkt_init(SSH1_CMSG_REQUEST_PTY);
5194 ssh_pkt_addstring(pkt, conf_get_str(ssh->conf, CONF_termtype));
5195 ssh_pkt_adduint32(pkt, ssh->term_height);
5196 ssh_pkt_adduint32(pkt, ssh->term_width);
5197 ssh_pkt_adduint32(pkt, 0); /* width in pixels */
5198 ssh_pkt_adduint32(pkt, 0); /* height in pixels */
5199 parse_ttymodes(ssh, ssh1_send_ttymode, (void *)pkt);
5200 ssh_pkt_addbyte(pkt, SSH1_TTY_OP_ISPEED);
5201 ssh_pkt_adduint32(pkt, ssh->ispeed);
5202 ssh_pkt_addbyte(pkt, SSH1_TTY_OP_OSPEED);
5203 ssh_pkt_adduint32(pkt, ssh->ospeed);
5204 ssh_pkt_addbyte(pkt, SSH_TTY_OP_END);
5205 s_wrpkt(ssh, pkt);
5206 ssh->state = SSH_STATE_INTERMED;
5207 do {
5208 crReturnV;
5209 } while (!pktin);
5210 if (pktin->type != SSH1_SMSG_SUCCESS
5211 && pktin->type != SSH1_SMSG_FAILURE) {
5212 bombout(("Protocol confusion"));
5213 crStopV;
5214 } else if (pktin->type == SSH1_SMSG_FAILURE) {
5215 c_write_str(ssh, "Server refused to allocate pty\r\n");
5216 ssh->editing = ssh->echoing = 1;
5217 } else {
5218 logeventf(ssh, "Allocated pty (ospeed %dbps, ispeed %dbps)",
5219 ssh->ospeed, ssh->ispeed);
5220 ssh->got_pty = TRUE;
5221 }
5222 } else {
5223 ssh->editing = ssh->echoing = 1;
5224 }
5225
5226 if (conf_get_int(ssh->conf, CONF_compression)) {
5227 send_packet(ssh, SSH1_CMSG_REQUEST_COMPRESSION, PKT_INT, 6, PKT_END);
5228 do {
5229 crReturnV;
5230 } while (!pktin);
5231 if (pktin->type != SSH1_SMSG_SUCCESS
5232 && pktin->type != SSH1_SMSG_FAILURE) {
5233 bombout(("Protocol confusion"));
5234 crStopV;
5235 } else if (pktin->type == SSH1_SMSG_FAILURE) {
5236 c_write_str(ssh, "Server refused to compress\r\n");
5237 }
5238 logevent("Started compression");
5239 ssh->v1_compressing = TRUE;
5240 ssh->cs_comp_ctx = zlib_compress_init();
5241 logevent("Initialised zlib (RFC1950) compression");
5242 ssh->sc_comp_ctx = zlib_decompress_init();
5243 logevent("Initialised zlib (RFC1950) decompression");
5244 }
5245
5246 /*
5247 * Start the shell or command.
5248 *
5249 * Special case: if the first-choice command is an SSH-2
5250 * subsystem (hence not usable here) and the second choice
5251 * exists, we fall straight back to that.
5252 */
5253 {
5254 char *cmd = conf_get_str(ssh->conf, CONF_remote_cmd);
5255
5256 if (conf_get_int(ssh->conf, CONF_ssh_subsys) &&
5257 conf_get_str(ssh->conf, CONF_remote_cmd2)) {
5258 cmd = conf_get_str(ssh->conf, CONF_remote_cmd2);
5259 ssh->fallback_cmd = TRUE;
5260 }
5261 if (*cmd)
5262 send_packet(ssh, SSH1_CMSG_EXEC_CMD, PKT_STR, cmd, PKT_END);
5263 else
5264 send_packet(ssh, SSH1_CMSG_EXEC_SHELL, PKT_END);
5265 logevent("Started session");
5266 }
5267
5268 ssh->state = SSH_STATE_SESSION;
5269 if (ssh->size_needed)
5270 ssh_size(ssh, ssh->term_width, ssh->term_height);
5271 if (ssh->eof_needed)
5272 ssh_special(ssh, TS_EOF);
5273
5274 if (ssh->ldisc)
5275 ldisc_send(ssh->ldisc, NULL, 0, 0);/* cause ldisc to notice changes */
5276 ssh->send_ok = 1;
5277 ssh->channels = newtree234(ssh_channelcmp);
5278 while (1) {
5279
5280 /*
5281 * By this point, most incoming packets are already being
5282 * handled by the dispatch table, and we need only pay
5283 * attention to the unusual ones.
5284 */
5285
5286 crReturnV;
5287 if (pktin) {
5288 if (pktin->type == SSH1_SMSG_SUCCESS) {
5289 /* may be from EXEC_SHELL on some servers */
5290 } else if (pktin->type == SSH1_SMSG_FAILURE) {
5291 /* may be from EXEC_SHELL on some servers
5292 * if no pty is available or in other odd cases. Ignore */
5293 } else {
5294 bombout(("Strange packet received: type %d", pktin->type));
5295 crStopV;
5296 }
5297 } else {
5298 while (inlen > 0) {
5299 int len = min(inlen, 512);
5300 send_packet(ssh, SSH1_CMSG_STDIN_DATA,
5301 PKT_INT, len, PKTT_DATA, PKT_DATA, in, len,
5302 PKTT_OTHER, PKT_END);
5303 in += len;
5304 inlen -= len;
5305 }
5306 }
5307 }
5308
5309 crFinishV;
5310 }
5311
5312 /*
5313 * Handle the top-level SSH-2 protocol.
5314 */
5315 static void ssh1_msg_debug(Ssh ssh, struct Packet *pktin)
5316 {
5317 char *msg;
5318 int msglen;
5319
5320 ssh_pkt_getstring(pktin, &msg, &msglen);
5321 logeventf(ssh, "Remote debug message: %.*s", msglen, msg);
5322 }
5323
5324 static void ssh1_msg_disconnect(Ssh ssh, struct Packet *pktin)
5325 {
5326 /* log reason code in disconnect message */
5327 char *msg;
5328 int msglen;
5329
5330 ssh_pkt_getstring(pktin, &msg, &msglen);
5331 bombout(("Server sent disconnect message:\n\"%.*s\"", msglen, msg));
5332 }
5333
5334 static void ssh_msg_ignore(Ssh ssh, struct Packet *pktin)
5335 {
5336 /* Do nothing, because we're ignoring it! Duhh. */
5337 }
5338
5339 static void ssh1_protocol_setup(Ssh ssh)
5340 {
5341 int i;
5342
5343 /*
5344 * Most messages are handled by the coroutines.
5345 */
5346 for (i = 0; i < 256; i++)
5347 ssh->packet_dispatch[i] = NULL;
5348
5349 /*
5350 * These special message types we install handlers for.
5351 */
5352 ssh->packet_dispatch[SSH1_MSG_DISCONNECT] = ssh1_msg_disconnect;
5353 ssh->packet_dispatch[SSH1_MSG_IGNORE] = ssh_msg_ignore;
5354 ssh->packet_dispatch[SSH1_MSG_DEBUG] = ssh1_msg_debug;
5355 }
5356
5357 static void ssh1_protocol(Ssh ssh, void *vin, int inlen,
5358 struct Packet *pktin)
5359 {
5360 unsigned char *in=(unsigned char*)vin;
5361 if (ssh->state == SSH_STATE_CLOSED)
5362 return;
5363
5364 if (pktin && ssh->packet_dispatch[pktin->type]) {
5365 ssh->packet_dispatch[pktin->type](ssh, pktin);
5366 return;
5367 }
5368
5369 if (!ssh->protocol_initial_phase_done) {
5370 if (do_ssh1_login(ssh, in, inlen, pktin))
5371 ssh->protocol_initial_phase_done = TRUE;
5372 else
5373 return;
5374 }
5375
5376 do_ssh1_connection(ssh, in, inlen, pktin);
5377 }
5378
5379 /*
5380 * Utility routine for decoding comma-separated strings in KEXINIT.
5381 */
5382 static int in_commasep_string(char *needle, char *haystack, int haylen)
5383 {
5384 int needlen;
5385 if (!needle || !haystack) /* protect against null pointers */
5386 return 0;
5387 needlen = strlen(needle);
5388 while (1) {
5389 /*
5390 * Is it at the start of the string?
5391 */
5392 if (haylen >= needlen && /* haystack is long enough */
5393 !memcmp(needle, haystack, needlen) && /* initial match */
5394 (haylen == needlen || haystack[needlen] == ',')
5395 /* either , or EOS follows */
5396 )
5397 return 1;
5398 /*
5399 * If not, search for the next comma and resume after that.
5400 * If no comma found, terminate.
5401 */
5402 while (haylen > 0 && *haystack != ',')
5403 haylen--, haystack++;
5404 if (haylen == 0)
5405 return 0;
5406 haylen--, haystack++; /* skip over comma itself */
5407 }
5408 }
5409
5410 /*
5411 * Similar routine for checking whether we have the first string in a list.
5412 */
5413 static int first_in_commasep_string(char *needle, char *haystack, int haylen)
5414 {
5415 int needlen;
5416 if (!needle || !haystack) /* protect against null pointers */
5417 return 0;
5418 needlen = strlen(needle);
5419 /*
5420 * Is it at the start of the string?
5421 */
5422 if (haylen >= needlen && /* haystack is long enough */
5423 !memcmp(needle, haystack, needlen) && /* initial match */
5424 (haylen == needlen || haystack[needlen] == ',')
5425 /* either , or EOS follows */
5426 )
5427 return 1;
5428 return 0;
5429 }
5430
5431
5432 /*
5433 * SSH-2 key creation method.
5434 * (Currently assumes 2 lots of any hash are sufficient to generate
5435 * keys/IVs for any cipher/MAC. SSH2_MKKEY_ITERS documents this assumption.)
5436 */
5437 #define SSH2_MKKEY_ITERS (2)
5438 static void ssh2_mkkey(Ssh ssh, Bignum K, unsigned char *H, char chr,
5439 unsigned char *keyspace)
5440 {
5441 const struct ssh_hash *h = ssh->kex->hash;
5442 void *s;
5443 /* First hlen bytes. */
5444 s = h->init();
5445 if (!(ssh->remote_bugs & BUG_SSH2_DERIVEKEY))
5446 hash_mpint(h, s, K);
5447 h->bytes(s, H, h->hlen);
5448 h->bytes(s, &chr, 1);
5449 h->bytes(s, ssh->v2_session_id, ssh->v2_session_id_len);
5450 h->final(s, keyspace);
5451 /* Next hlen bytes. */
5452 s = h->init();
5453 if (!(ssh->remote_bugs & BUG_SSH2_DERIVEKEY))
5454 hash_mpint(h, s, K);
5455 h->bytes(s, H, h->hlen);
5456 h->bytes(s, keyspace, h->hlen);
5457 h->final(s, keyspace + h->hlen);
5458 }
5459
5460 /*
5461 * Handle the SSH-2 transport layer.
5462 */
5463 static int do_ssh2_transport(Ssh ssh, void *vin, int inlen,
5464 struct Packet *pktin)
5465 {
5466 unsigned char *in = (unsigned char *)vin;
5467 struct do_ssh2_transport_state {
5468 int nbits, pbits, warn_kex, warn_cscipher, warn_sccipher;
5469 Bignum p, g, e, f, K;
5470 void *our_kexinit;
5471 int our_kexinitlen;
5472 int kex_init_value, kex_reply_value;
5473 const struct ssh_mac **maclist;
5474 int nmacs;
5475 const struct ssh2_cipher *cscipher_tobe;
5476 const struct ssh2_cipher *sccipher_tobe;
5477 const struct ssh_mac *csmac_tobe;
5478 const struct ssh_mac *scmac_tobe;
5479 const struct ssh_compress *cscomp_tobe;
5480 const struct ssh_compress *sccomp_tobe;
5481 char *hostkeydata, *sigdata, *rsakeydata, *keystr, *fingerprint;
5482 int hostkeylen, siglen, rsakeylen;
5483 void *hkey; /* actual host key */
5484 void *rsakey; /* for RSA kex */
5485 unsigned char exchange_hash[SSH2_KEX_MAX_HASH_LEN];
5486 int n_preferred_kex;
5487 const struct ssh_kexes *preferred_kex[KEX_MAX];
5488 int n_preferred_ciphers;
5489 const struct ssh2_ciphers *preferred_ciphers[CIPHER_MAX];
5490 const struct ssh_compress *preferred_comp;
5491 int userauth_succeeded; /* for delayed compression */
5492 int pending_compression;
5493 int got_session_id, activated_authconn;
5494 struct Packet *pktout;
5495 int dlgret;
5496 int guessok;
5497 int ignorepkt;
5498 };
5499 crState(do_ssh2_transport_state);
5500
5501 crBegin(ssh->do_ssh2_transport_crstate);
5502
5503 s->cscipher_tobe = s->sccipher_tobe = NULL;
5504 s->csmac_tobe = s->scmac_tobe = NULL;
5505 s->cscomp_tobe = s->sccomp_tobe = NULL;
5506
5507 s->got_session_id = s->activated_authconn = FALSE;
5508 s->userauth_succeeded = FALSE;
5509 s->pending_compression = FALSE;
5510
5511 /*
5512 * Be prepared to work around the buggy MAC problem.
5513 */
5514 if (ssh->remote_bugs & BUG_SSH2_HMAC)
5515 s->maclist = buggymacs, s->nmacs = lenof(buggymacs);
5516 else
5517 s->maclist = macs, s->nmacs = lenof(macs);
5518
5519 begin_key_exchange:
5520 ssh->pkt_kctx = SSH2_PKTCTX_NOKEX;
5521 {
5522 int i, j, commalist_started;
5523
5524 /*
5525 * Set up the preferred key exchange. (NULL => warn below here)
5526 */
5527 s->n_preferred_kex = 0;
5528 for (i = 0; i < KEX_MAX; i++) {
5529 switch (conf_get_int_int(ssh->conf, CONF_ssh_kexlist, i)) {
5530 case KEX_DHGEX:
5531 s->preferred_kex[s->n_preferred_kex++] =
5532 &ssh_diffiehellman_gex;
5533 break;
5534 case KEX_DHGROUP14:
5535 s->preferred_kex[s->n_preferred_kex++] =
5536 &ssh_diffiehellman_group14;
5537 break;
5538 case KEX_DHGROUP1:
5539 s->preferred_kex[s->n_preferred_kex++] =
5540 &ssh_diffiehellman_group1;
5541 break;
5542 case KEX_RSA:
5543 s->preferred_kex[s->n_preferred_kex++] =
5544 &ssh_rsa_kex;
5545 break;
5546 case KEX_WARN:
5547 /* Flag for later. Don't bother if it's the last in
5548 * the list. */
5549 if (i < KEX_MAX - 1) {
5550 s->preferred_kex[s->n_preferred_kex++] = NULL;
5551 }
5552 break;
5553 }
5554 }
5555
5556 /*
5557 * Set up the preferred ciphers. (NULL => warn below here)
5558 */
5559 s->n_preferred_ciphers = 0;
5560 for (i = 0; i < CIPHER_MAX; i++) {
5561 switch (conf_get_int_int(ssh->conf, CONF_ssh_cipherlist, i)) {
5562 case CIPHER_BLOWFISH:
5563 s->preferred_ciphers[s->n_preferred_ciphers++] = &ssh2_blowfish;
5564 break;
5565 case CIPHER_DES:
5566 if (conf_get_int(ssh->conf, CONF_ssh2_des_cbc)) {
5567 s->preferred_ciphers[s->n_preferred_ciphers++] = &ssh2_des;
5568 }
5569 break;
5570 case CIPHER_3DES:
5571 s->preferred_ciphers[s->n_preferred_ciphers++] = &ssh2_3des;
5572 break;
5573 case CIPHER_AES:
5574 s->preferred_ciphers[s->n_preferred_ciphers++] = &ssh2_aes;
5575 break;
5576 case CIPHER_ARCFOUR:
5577 s->preferred_ciphers[s->n_preferred_ciphers++] = &ssh2_arcfour;
5578 break;
5579 case CIPHER_WARN:
5580 /* Flag for later. Don't bother if it's the last in
5581 * the list. */
5582 if (i < CIPHER_MAX - 1) {
5583 s->preferred_ciphers[s->n_preferred_ciphers++] = NULL;
5584 }
5585 break;
5586 }
5587 }
5588
5589 /*
5590 * Set up preferred compression.
5591 */
5592 if (conf_get_int(ssh->conf, CONF_compression))
5593 s->preferred_comp = &ssh_zlib;
5594 else
5595 s->preferred_comp = &ssh_comp_none;
5596
5597 /*
5598 * Enable queueing of outgoing auth- or connection-layer
5599 * packets while we are in the middle of a key exchange.
5600 */
5601 ssh->queueing = TRUE;
5602
5603 /*
5604 * Flag that KEX is in progress.
5605 */
5606 ssh->kex_in_progress = TRUE;
5607
5608 /*
5609 * Construct and send our key exchange packet.
5610 */
5611 s->pktout = ssh2_pkt_init(SSH2_MSG_KEXINIT);
5612 for (i = 0; i < 16; i++)
5613 ssh2_pkt_addbyte(s->pktout, (unsigned char) random_byte());
5614 /* List key exchange algorithms. */
5615 ssh2_pkt_addstring_start(s->pktout);
5616 commalist_started = 0;
5617 for (i = 0; i < s->n_preferred_kex; i++) {
5618 const struct ssh_kexes *k = s->preferred_kex[i];
5619 if (!k) continue; /* warning flag */
5620 for (j = 0; j < k->nkexes; j++) {
5621 if (commalist_started)
5622 ssh2_pkt_addstring_str(s->pktout, ",");
5623 ssh2_pkt_addstring_str(s->pktout, k->list[j]->name);
5624 commalist_started = 1;
5625 }
5626 }
5627 /* List server host key algorithms. */
5628 ssh2_pkt_addstring_start(s->pktout);
5629 for (i = 0; i < lenof(hostkey_algs); i++) {
5630 ssh2_pkt_addstring_str(s->pktout, hostkey_algs[i]->name);
5631 if (i < lenof(hostkey_algs) - 1)
5632 ssh2_pkt_addstring_str(s->pktout, ",");
5633 }
5634 /* List client->server encryption algorithms. */
5635 ssh2_pkt_addstring_start(s->pktout);
5636 commalist_started = 0;
5637 for (i = 0; i < s->n_preferred_ciphers; i++) {
5638 const struct ssh2_ciphers *c = s->preferred_ciphers[i];
5639 if (!c) continue; /* warning flag */
5640 for (j = 0; j < c->nciphers; j++) {
5641 if (commalist_started)
5642 ssh2_pkt_addstring_str(s->pktout, ",");
5643 ssh2_pkt_addstring_str(s->pktout, c->list[j]->name);
5644 commalist_started = 1;
5645 }
5646 }
5647 /* List server->client encryption algorithms. */
5648 ssh2_pkt_addstring_start(s->pktout);
5649 commalist_started = 0;
5650 for (i = 0; i < s->n_preferred_ciphers; i++) {
5651 const struct ssh2_ciphers *c = s->preferred_ciphers[i];
5652 if (!c) continue; /* warning flag */
5653 for (j = 0; j < c->nciphers; j++) {
5654 if (commalist_started)
5655 ssh2_pkt_addstring_str(s->pktout, ",");
5656 ssh2_pkt_addstring_str(s->pktout, c->list[j]->name);
5657 commalist_started = 1;
5658 }
5659 }
5660 /* List client->server MAC algorithms. */
5661 ssh2_pkt_addstring_start(s->pktout);
5662 for (i = 0; i < s->nmacs; i++) {
5663 ssh2_pkt_addstring_str(s->pktout, s->maclist[i]->name);
5664 if (i < s->nmacs - 1)
5665 ssh2_pkt_addstring_str(s->pktout, ",");
5666 }
5667 /* List server->client MAC algorithms. */
5668 ssh2_pkt_addstring_start(s->pktout);
5669 for (i = 0; i < s->nmacs; i++) {
5670 ssh2_pkt_addstring_str(s->pktout, s->maclist[i]->name);
5671 if (i < s->nmacs - 1)
5672 ssh2_pkt_addstring_str(s->pktout, ",");
5673 }
5674 /* List client->server compression algorithms,
5675 * then server->client compression algorithms. (We use the
5676 * same set twice.) */
5677 for (j = 0; j < 2; j++) {
5678 ssh2_pkt_addstring_start(s->pktout);
5679 assert(lenof(compressions) > 1);
5680 /* Prefer non-delayed versions */
5681 ssh2_pkt_addstring_str(s->pktout, s->preferred_comp->name);
5682 /* We don't even list delayed versions of algorithms until
5683 * they're allowed to be used, to avoid a race. See the end of
5684 * this function. */
5685 if (s->userauth_succeeded && s->preferred_comp->delayed_name) {
5686 ssh2_pkt_addstring_str(s->pktout, ",");
5687 ssh2_pkt_addstring_str(s->pktout,
5688 s->preferred_comp->delayed_name);
5689 }
5690 for (i = 0; i < lenof(compressions); i++) {
5691 const struct ssh_compress *c = compressions[i];
5692 if (c != s->preferred_comp) {
5693 ssh2_pkt_addstring_str(s->pktout, ",");
5694 ssh2_pkt_addstring_str(s->pktout, c->name);
5695 if (s->userauth_succeeded && c->delayed_name) {
5696 ssh2_pkt_addstring_str(s->pktout, ",");
5697 ssh2_pkt_addstring_str(s->pktout, c->delayed_name);
5698 }
5699 }
5700 }
5701 }
5702 /* List client->server languages. Empty list. */
5703 ssh2_pkt_addstring_start(s->pktout);
5704 /* List server->client languages. Empty list. */
5705 ssh2_pkt_addstring_start(s->pktout);
5706 /* First KEX packet does _not_ follow, because we're not that brave. */
5707 ssh2_pkt_addbool(s->pktout, FALSE);
5708 /* Reserved. */
5709 ssh2_pkt_adduint32(s->pktout, 0);
5710 }
5711
5712 s->our_kexinitlen = s->pktout->length - 5;
5713 s->our_kexinit = snewn(s->our_kexinitlen, unsigned char);
5714 memcpy(s->our_kexinit, s->pktout->data + 5, s->our_kexinitlen);
5715
5716 ssh2_pkt_send_noqueue(ssh, s->pktout);
5717
5718 if (!pktin)
5719 crWaitUntil(pktin);
5720
5721 /*
5722 * Now examine the other side's KEXINIT to see what we're up
5723 * to.
5724 */
5725 {
5726 char *str, *preferred;
5727 int i, j, len;
5728
5729 if (pktin->type != SSH2_MSG_KEXINIT) {
5730 bombout(("expected key exchange packet from server"));
5731 crStop(0);
5732 }
5733 ssh->kex = NULL;
5734 ssh->hostkey = NULL;
5735 s->cscipher_tobe = NULL;
5736 s->sccipher_tobe = NULL;
5737 s->csmac_tobe = NULL;
5738 s->scmac_tobe = NULL;
5739 s->cscomp_tobe = NULL;
5740 s->sccomp_tobe = NULL;
5741 s->warn_kex = s->warn_cscipher = s->warn_sccipher = FALSE;
5742
5743 pktin->savedpos += 16; /* skip garbage cookie */
5744 ssh_pkt_getstring(pktin, &str, &len); /* key exchange algorithms */
5745
5746 preferred = NULL;
5747 for (i = 0; i < s->n_preferred_kex; i++) {
5748 const struct ssh_kexes *k = s->preferred_kex[i];
5749 if (!k) {
5750 s->warn_kex = TRUE;
5751 } else {
5752 for (j = 0; j < k->nkexes; j++) {
5753 if (!preferred) preferred = k->list[j]->name;
5754 if (in_commasep_string(k->list[j]->name, str, len)) {
5755 ssh->kex = k->list[j];
5756 break;
5757 }
5758 }
5759 }
5760 if (ssh->kex)
5761 break;
5762 }
5763 if (!ssh->kex) {
5764 bombout(("Couldn't agree a key exchange algorithm (available: %s)",
5765 str ? str : "(null)"));
5766 crStop(0);
5767 }
5768 /*
5769 * Note that the server's guess is considered wrong if it doesn't match
5770 * the first algorithm in our list, even if it's still the algorithm
5771 * we end up using.
5772 */
5773 s->guessok = first_in_commasep_string(preferred, str, len);
5774 ssh_pkt_getstring(pktin, &str, &len); /* host key algorithms */
5775 for (i = 0; i < lenof(hostkey_algs); i++) {
5776 if (in_commasep_string(hostkey_algs[i]->name, str, len)) {
5777 ssh->hostkey = hostkey_algs[i];
5778 break;
5779 }
5780 }
5781 s->guessok = s->guessok &&
5782 first_in_commasep_string(hostkey_algs[0]->name, str, len);
5783 ssh_pkt_getstring(pktin, &str, &len); /* client->server cipher */
5784 for (i = 0; i < s->n_preferred_ciphers; i++) {
5785 const struct ssh2_ciphers *c = s->preferred_ciphers[i];
5786 if (!c) {
5787 s->warn_cscipher = TRUE;
5788 } else {
5789 for (j = 0; j < c->nciphers; j++) {
5790 if (in_commasep_string(c->list[j]->name, str, len)) {
5791 s->cscipher_tobe = c->list[j];
5792 break;
5793 }
5794 }
5795 }
5796 if (s->cscipher_tobe)
5797 break;
5798 }
5799 if (!s->cscipher_tobe) {
5800 bombout(("Couldn't agree a client-to-server cipher (available: %s)",
5801 str ? str : "(null)"));
5802 crStop(0);
5803 }
5804
5805 ssh_pkt_getstring(pktin, &str, &len); /* server->client cipher */
5806 for (i = 0; i < s->n_preferred_ciphers; i++) {
5807 const struct ssh2_ciphers *c = s->preferred_ciphers[i];
5808 if (!c) {
5809 s->warn_sccipher = TRUE;
5810 } else {
5811 for (j = 0; j < c->nciphers; j++) {
5812 if (in_commasep_string(c->list[j]->name, str, len)) {
5813 s->sccipher_tobe = c->list[j];
5814 break;
5815 }
5816 }
5817 }
5818 if (s->sccipher_tobe)
5819 break;
5820 }
5821 if (!s->sccipher_tobe) {
5822 bombout(("Couldn't agree a server-to-client cipher (available: %s)",
5823 str ? str : "(null)"));
5824 crStop(0);
5825 }
5826
5827 ssh_pkt_getstring(pktin, &str, &len); /* client->server mac */
5828 for (i = 0; i < s->nmacs; i++) {
5829 if (in_commasep_string(s->maclist[i]->name, str, len)) {
5830 s->csmac_tobe = s->maclist[i];
5831 break;
5832 }
5833 }
5834 ssh_pkt_getstring(pktin, &str, &len); /* server->client mac */
5835 for (i = 0; i < s->nmacs; i++) {
5836 if (in_commasep_string(s->maclist[i]->name, str, len)) {
5837 s->scmac_tobe = s->maclist[i];
5838 break;
5839 }
5840 }
5841 ssh_pkt_getstring(pktin, &str, &len); /* client->server compression */
5842 for (i = 0; i < lenof(compressions) + 1; i++) {
5843 const struct ssh_compress *c =
5844 i == 0 ? s->preferred_comp : compressions[i - 1];
5845 if (in_commasep_string(c->name, str, len)) {
5846 s->cscomp_tobe = c;
5847 break;
5848 } else if (in_commasep_string(c->delayed_name, str, len)) {
5849 if (s->userauth_succeeded) {
5850 s->cscomp_tobe = c;
5851 break;
5852 } else {
5853 s->pending_compression = TRUE; /* try this later */
5854 }
5855 }
5856 }
5857 ssh_pkt_getstring(pktin, &str, &len); /* server->client compression */
5858 for (i = 0; i < lenof(compressions) + 1; i++) {
5859 const struct ssh_compress *c =
5860 i == 0 ? s->preferred_comp : compressions[i - 1];
5861 if (in_commasep_string(c->name, str, len)) {
5862 s->sccomp_tobe = c;
5863 break;
5864 } else if (in_commasep_string(c->delayed_name, str, len)) {
5865 if (s->userauth_succeeded) {
5866 s->sccomp_tobe = c;
5867 break;
5868 } else {
5869 s->pending_compression = TRUE; /* try this later */
5870 }
5871 }
5872 }
5873 if (s->pending_compression) {
5874 logevent("Server supports delayed compression; "
5875 "will try this later");
5876 }
5877 ssh_pkt_getstring(pktin, &str, &len); /* client->server language */
5878 ssh_pkt_getstring(pktin, &str, &len); /* server->client language */
5879 s->ignorepkt = ssh2_pkt_getbool(pktin) && !s->guessok;
5880
5881 if (s->warn_kex) {
5882 ssh_set_frozen(ssh, 1);
5883 s->dlgret = askalg(ssh->frontend, "key-exchange algorithm",
5884 ssh->kex->name,
5885 ssh_dialog_callback, ssh);
5886 if (s->dlgret < 0) {
5887 do {
5888 crReturn(0);
5889 if (pktin) {
5890 bombout(("Unexpected data from server while"
5891 " waiting for user response"));
5892 crStop(0);
5893 }
5894 } while (pktin || inlen > 0);
5895 s->dlgret = ssh->user_response;
5896 }
5897 ssh_set_frozen(ssh, 0);
5898 if (s->dlgret == 0) {
5899 ssh_disconnect(ssh, "User aborted at kex warning", NULL,
5900 0, TRUE);
5901 crStop(0);
5902 }
5903 }
5904
5905 if (s->warn_cscipher) {
5906 ssh_set_frozen(ssh, 1);
5907 s->dlgret = askalg(ssh->frontend,
5908 "client-to-server cipher",
5909 s->cscipher_tobe->name,
5910 ssh_dialog_callback, ssh);
5911 if (s->dlgret < 0) {
5912 do {
5913 crReturn(0);
5914 if (pktin) {
5915 bombout(("Unexpected data from server while"
5916 " waiting for user response"));
5917 crStop(0);
5918 }
5919 } while (pktin || inlen > 0);
5920 s->dlgret = ssh->user_response;
5921 }
5922 ssh_set_frozen(ssh, 0);
5923 if (s->dlgret == 0) {
5924 ssh_disconnect(ssh, "User aborted at cipher warning", NULL,
5925 0, TRUE);
5926 crStop(0);
5927 }
5928 }
5929
5930 if (s->warn_sccipher) {
5931 ssh_set_frozen(ssh, 1);
5932 s->dlgret = askalg(ssh->frontend,
5933 "server-to-client cipher",
5934 s->sccipher_tobe->name,
5935 ssh_dialog_callback, ssh);
5936 if (s->dlgret < 0) {
5937 do {
5938 crReturn(0);
5939 if (pktin) {
5940 bombout(("Unexpected data from server while"
5941 " waiting for user response"));
5942 crStop(0);
5943 }
5944 } while (pktin || inlen > 0);
5945 s->dlgret = ssh->user_response;
5946 }
5947 ssh_set_frozen(ssh, 0);
5948 if (s->dlgret == 0) {
5949 ssh_disconnect(ssh, "User aborted at cipher warning", NULL,
5950 0, TRUE);
5951 crStop(0);
5952 }
5953 }
5954
5955 ssh->exhash = ssh->kex->hash->init();
5956 hash_string(ssh->kex->hash, ssh->exhash, ssh->v_c, strlen(ssh->v_c));
5957 hash_string(ssh->kex->hash, ssh->exhash, ssh->v_s, strlen(ssh->v_s));
5958 hash_string(ssh->kex->hash, ssh->exhash,
5959 s->our_kexinit, s->our_kexinitlen);
5960 sfree(s->our_kexinit);
5961 if (pktin->length > 5)
5962 hash_string(ssh->kex->hash, ssh->exhash,
5963 pktin->data + 5, pktin->length - 5);
5964
5965 if (s->ignorepkt) /* first_kex_packet_follows */
5966 crWaitUntil(pktin); /* Ignore packet */
5967 }
5968
5969 if (ssh->kex->main_type == KEXTYPE_DH) {
5970 /*
5971 * Work out the number of bits of key we will need from the
5972 * key exchange. We start with the maximum key length of
5973 * either cipher...
5974 */
5975 {
5976 int csbits, scbits;
5977
5978 csbits = s->cscipher_tobe->keylen;
5979 scbits = s->sccipher_tobe->keylen;
5980 s->nbits = (csbits > scbits ? csbits : scbits);
5981 }
5982 /* The keys only have hlen-bit entropy, since they're based on
5983 * a hash. So cap the key size at hlen bits. */
5984 if (s->nbits > ssh->kex->hash->hlen * 8)
5985 s->nbits = ssh->kex->hash->hlen * 8;
5986
5987 /*
5988 * If we're doing Diffie-Hellman group exchange, start by
5989 * requesting a group.
5990 */
5991 if (!ssh->kex->pdata) {
5992 logevent("Doing Diffie-Hellman group exchange");
5993 ssh->pkt_kctx = SSH2_PKTCTX_DHGEX;
5994 /*
5995 * Work out how big a DH group we will need to allow that
5996 * much data.
5997 */
5998 s->pbits = 512 << ((s->nbits - 1) / 64);
5999 s->pktout = ssh2_pkt_init(SSH2_MSG_KEX_DH_GEX_REQUEST);
6000 ssh2_pkt_adduint32(s->pktout, s->pbits);
6001 ssh2_pkt_send_noqueue(ssh, s->pktout);
6002
6003 crWaitUntil(pktin);
6004 if (pktin->type != SSH2_MSG_KEX_DH_GEX_GROUP) {
6005 bombout(("expected key exchange group packet from server"));
6006 crStop(0);
6007 }
6008 s->p = ssh2_pkt_getmp(pktin);
6009 s->g = ssh2_pkt_getmp(pktin);
6010 if (!s->p || !s->g) {
6011 bombout(("unable to read mp-ints from incoming group packet"));
6012 crStop(0);
6013 }
6014 ssh->kex_ctx = dh_setup_gex(s->p, s->g);
6015 s->kex_init_value = SSH2_MSG_KEX_DH_GEX_INIT;
6016 s->kex_reply_value = SSH2_MSG_KEX_DH_GEX_REPLY;
6017 } else {
6018 ssh->pkt_kctx = SSH2_PKTCTX_DHGROUP;
6019 ssh->kex_ctx = dh_setup_group(ssh->kex);
6020 s->kex_init_value = SSH2_MSG_KEXDH_INIT;
6021 s->kex_reply_value = SSH2_MSG_KEXDH_REPLY;
6022 logeventf(ssh, "Using Diffie-Hellman with standard group \"%s\"",
6023 ssh->kex->groupname);
6024 }
6025
6026 logeventf(ssh, "Doing Diffie-Hellman key exchange with hash %s",
6027 ssh->kex->hash->text_name);
6028 /*
6029 * Now generate and send e for Diffie-Hellman.
6030 */
6031 set_busy_status(ssh->frontend, BUSY_CPU); /* this can take a while */
6032 s->e = dh_create_e(ssh->kex_ctx, s->nbits * 2);
6033 s->pktout = ssh2_pkt_init(s->kex_init_value);
6034 ssh2_pkt_addmp(s->pktout, s->e);
6035 ssh2_pkt_send_noqueue(ssh, s->pktout);
6036
6037 set_busy_status(ssh->frontend, BUSY_WAITING); /* wait for server */
6038 crWaitUntil(pktin);
6039 if (pktin->type != s->kex_reply_value) {
6040 bombout(("expected key exchange reply packet from server"));
6041 crStop(0);
6042 }
6043 set_busy_status(ssh->frontend, BUSY_CPU); /* cogitate */
6044 ssh_pkt_getstring(pktin, &s->hostkeydata, &s->hostkeylen);
6045 s->hkey = ssh->hostkey->newkey(s->hostkeydata, s->hostkeylen);
6046 s->f = ssh2_pkt_getmp(pktin);
6047 if (!s->f) {
6048 bombout(("unable to parse key exchange reply packet"));
6049 crStop(0);
6050 }
6051 ssh_pkt_getstring(pktin, &s->sigdata, &s->siglen);
6052
6053 s->K = dh_find_K(ssh->kex_ctx, s->f);
6054
6055 /* We assume everything from now on will be quick, and it might
6056 * involve user interaction. */
6057 set_busy_status(ssh->frontend, BUSY_NOT);
6058
6059 hash_string(ssh->kex->hash, ssh->exhash, s->hostkeydata, s->hostkeylen);
6060 if (!ssh->kex->pdata) {
6061 hash_uint32(ssh->kex->hash, ssh->exhash, s->pbits);
6062 hash_mpint(ssh->kex->hash, ssh->exhash, s->p);
6063 hash_mpint(ssh->kex->hash, ssh->exhash, s->g);
6064 }
6065 hash_mpint(ssh->kex->hash, ssh->exhash, s->e);
6066 hash_mpint(ssh->kex->hash, ssh->exhash, s->f);
6067
6068 dh_cleanup(ssh->kex_ctx);
6069 freebn(s->f);
6070 if (!ssh->kex->pdata) {
6071 freebn(s->g);
6072 freebn(s->p);
6073 }
6074 } else {
6075 logeventf(ssh, "Doing RSA key exchange with hash %s",
6076 ssh->kex->hash->text_name);
6077 ssh->pkt_kctx = SSH2_PKTCTX_RSAKEX;
6078 /*
6079 * RSA key exchange. First expect a KEXRSA_PUBKEY packet
6080 * from the server.
6081 */
6082 crWaitUntil(pktin);
6083 if (pktin->type != SSH2_MSG_KEXRSA_PUBKEY) {
6084 bombout(("expected RSA public key packet from server"));
6085 crStop(0);
6086 }
6087
6088 ssh_pkt_getstring(pktin, &s->hostkeydata, &s->hostkeylen);
6089 hash_string(ssh->kex->hash, ssh->exhash,
6090 s->hostkeydata, s->hostkeylen);
6091 s->hkey = ssh->hostkey->newkey(s->hostkeydata, s->hostkeylen);
6092
6093 {
6094 char *keydata;
6095 ssh_pkt_getstring(pktin, &keydata, &s->rsakeylen);
6096 s->rsakeydata = snewn(s->rsakeylen, char);
6097 memcpy(s->rsakeydata, keydata, s->rsakeylen);
6098 }
6099
6100 s->rsakey = ssh_rsakex_newkey(s->rsakeydata, s->rsakeylen);
6101 if (!s->rsakey) {
6102 sfree(s->rsakeydata);
6103 bombout(("unable to parse RSA public key from server"));
6104 crStop(0);
6105 }
6106
6107 hash_string(ssh->kex->hash, ssh->exhash, s->rsakeydata, s->rsakeylen);
6108
6109 /*
6110 * Next, set up a shared secret K, of precisely KLEN -
6111 * 2*HLEN - 49 bits, where KLEN is the bit length of the
6112 * RSA key modulus and HLEN is the bit length of the hash
6113 * we're using.
6114 */
6115 {
6116 int klen = ssh_rsakex_klen(s->rsakey);
6117 int nbits = klen - (2*ssh->kex->hash->hlen*8 + 49);
6118 int i, byte = 0;
6119 unsigned char *kstr1, *kstr2, *outstr;
6120 int kstr1len, kstr2len, outstrlen;
6121
6122 s->K = bn_power_2(nbits - 1);
6123
6124 for (i = 0; i < nbits; i++) {
6125 if ((i & 7) == 0) {
6126 byte = random_byte();
6127 }
6128 bignum_set_bit(s->K, i, (byte >> (i & 7)) & 1);
6129 }
6130
6131 /*
6132 * Encode this as an mpint.
6133 */
6134 kstr1 = ssh2_mpint_fmt(s->K, &kstr1len);
6135 kstr2 = snewn(kstr2len = 4 + kstr1len, unsigned char);
6136 PUT_32BIT(kstr2, kstr1len);
6137 memcpy(kstr2 + 4, kstr1, kstr1len);
6138
6139 /*
6140 * Encrypt it with the given RSA key.
6141 */
6142 outstrlen = (klen + 7) / 8;
6143 outstr = snewn(outstrlen, unsigned char);
6144 ssh_rsakex_encrypt(ssh->kex->hash, kstr2, kstr2len,
6145 outstr, outstrlen, s->rsakey);
6146
6147 /*
6148 * And send it off in a return packet.
6149 */
6150 s->pktout = ssh2_pkt_init(SSH2_MSG_KEXRSA_SECRET);
6151 ssh2_pkt_addstring_start(s->pktout);
6152 ssh2_pkt_addstring_data(s->pktout, (char *)outstr, outstrlen);
6153 ssh2_pkt_send_noqueue(ssh, s->pktout);
6154
6155 hash_string(ssh->kex->hash, ssh->exhash, outstr, outstrlen);
6156
6157 sfree(kstr2);
6158 sfree(kstr1);
6159 sfree(outstr);
6160 }
6161
6162 ssh_rsakex_freekey(s->rsakey);
6163
6164 crWaitUntil(pktin);
6165 if (pktin->type != SSH2_MSG_KEXRSA_DONE) {
6166 sfree(s->rsakeydata);
6167 bombout(("expected signature packet from server"));
6168 crStop(0);
6169 }
6170
6171 ssh_pkt_getstring(pktin, &s->sigdata, &s->siglen);
6172
6173 sfree(s->rsakeydata);
6174 }
6175
6176 hash_mpint(ssh->kex->hash, ssh->exhash, s->K);
6177 assert(ssh->kex->hash->hlen <= sizeof(s->exchange_hash));
6178 ssh->kex->hash->final(ssh->exhash, s->exchange_hash);
6179
6180 ssh->kex_ctx = NULL;
6181
6182 #if 0
6183 debug(("Exchange hash is:\n"));
6184 dmemdump(s->exchange_hash, ssh->kex->hash->hlen);
6185 #endif
6186
6187 if (!s->hkey ||
6188 !ssh->hostkey->verifysig(s->hkey, s->sigdata, s->siglen,
6189 (char *)s->exchange_hash,
6190 ssh->kex->hash->hlen)) {
6191 bombout(("Server's host key did not match the signature supplied"));
6192 crStop(0);
6193 }
6194
6195 /*
6196 * Authenticate remote host: verify host key. (We've already
6197 * checked the signature of the exchange hash.)
6198 */
6199 s->keystr = ssh->hostkey->fmtkey(s->hkey);
6200 s->fingerprint = ssh->hostkey->fingerprint(s->hkey);
6201 ssh_set_frozen(ssh, 1);
6202 s->dlgret = verify_ssh_host_key(ssh->frontend,
6203 ssh->savedhost, ssh->savedport,
6204 ssh->hostkey->keytype, s->keystr,
6205 s->fingerprint,
6206 ssh_dialog_callback, ssh);
6207 if (s->dlgret < 0) {
6208 do {
6209 crReturn(0);
6210 if (pktin) {
6211 bombout(("Unexpected data from server while waiting"
6212 " for user host key response"));
6213 crStop(0);
6214 }
6215 } while (pktin || inlen > 0);
6216 s->dlgret = ssh->user_response;
6217 }
6218 ssh_set_frozen(ssh, 0);
6219 if (s->dlgret == 0) {
6220 ssh_disconnect(ssh, "User aborted at host key verification", NULL,
6221 0, TRUE);
6222 crStop(0);
6223 }
6224 if (!s->got_session_id) { /* don't bother logging this in rekeys */
6225 logevent("Host key fingerprint is:");
6226 logevent(s->fingerprint);
6227 }
6228 sfree(s->fingerprint);
6229 sfree(s->keystr);
6230 ssh->hostkey->freekey(s->hkey);
6231
6232 /*
6233 * The exchange hash from the very first key exchange is also
6234 * the session id, used in session key construction and
6235 * authentication.
6236 */
6237 if (!s->got_session_id) {
6238 assert(sizeof(s->exchange_hash) <= sizeof(ssh->v2_session_id));
6239 memcpy(ssh->v2_session_id, s->exchange_hash,
6240 sizeof(s->exchange_hash));
6241 ssh->v2_session_id_len = ssh->kex->hash->hlen;
6242 assert(ssh->v2_session_id_len <= sizeof(ssh->v2_session_id));
6243 s->got_session_id = TRUE;
6244 }
6245
6246 /*
6247 * Send SSH2_MSG_NEWKEYS.
6248 */
6249 s->pktout = ssh2_pkt_init(SSH2_MSG_NEWKEYS);
6250 ssh2_pkt_send_noqueue(ssh, s->pktout);
6251 ssh->outgoing_data_size = 0; /* start counting from here */
6252
6253 /*
6254 * We've sent client NEWKEYS, so create and initialise
6255 * client-to-server session keys.
6256 */
6257 if (ssh->cs_cipher_ctx)
6258 ssh->cscipher->free_context(ssh->cs_cipher_ctx);
6259 ssh->cscipher = s->cscipher_tobe;
6260 ssh->cs_cipher_ctx = ssh->cscipher->make_context();
6261
6262 if (ssh->cs_mac_ctx)
6263 ssh->csmac->free_context(ssh->cs_mac_ctx);
6264 ssh->csmac = s->csmac_tobe;
6265 ssh->cs_mac_ctx = ssh->csmac->make_context();
6266
6267 if (ssh->cs_comp_ctx)
6268 ssh->cscomp->compress_cleanup(ssh->cs_comp_ctx);
6269 ssh->cscomp = s->cscomp_tobe;
6270 ssh->cs_comp_ctx = ssh->cscomp->compress_init();
6271
6272 /*
6273 * Set IVs on client-to-server keys. Here we use the exchange
6274 * hash from the _first_ key exchange.
6275 */
6276 {
6277 unsigned char keyspace[SSH2_KEX_MAX_HASH_LEN * SSH2_MKKEY_ITERS];
6278 assert(sizeof(keyspace) >= ssh->kex->hash->hlen * SSH2_MKKEY_ITERS);
6279 ssh2_mkkey(ssh,s->K,s->exchange_hash,'C',keyspace);
6280 assert((ssh->cscipher->keylen+7) / 8 <=
6281 ssh->kex->hash->hlen * SSH2_MKKEY_ITERS);
6282 ssh->cscipher->setkey(ssh->cs_cipher_ctx, keyspace);
6283 ssh2_mkkey(ssh,s->K,s->exchange_hash,'A',keyspace);
6284 assert(ssh->cscipher->blksize <=
6285 ssh->kex->hash->hlen * SSH2_MKKEY_ITERS);
6286 ssh->cscipher->setiv(ssh->cs_cipher_ctx, keyspace);
6287 ssh2_mkkey(ssh,s->K,s->exchange_hash,'E',keyspace);
6288 assert(ssh->csmac->len <=
6289 ssh->kex->hash->hlen * SSH2_MKKEY_ITERS);
6290 ssh->csmac->setkey(ssh->cs_mac_ctx, keyspace);
6291 memset(keyspace, 0, sizeof(keyspace));
6292 }
6293
6294 logeventf(ssh, "Initialised %.200s client->server encryption",
6295 ssh->cscipher->text_name);
6296 logeventf(ssh, "Initialised %.200s client->server MAC algorithm",
6297 ssh->csmac->text_name);
6298 if (ssh->cscomp->text_name)
6299 logeventf(ssh, "Initialised %s compression",
6300 ssh->cscomp->text_name);
6301
6302 /*
6303 * Now our end of the key exchange is complete, we can send all
6304 * our queued higher-layer packets.
6305 */
6306 ssh->queueing = FALSE;
6307 ssh2_pkt_queuesend(ssh);
6308
6309 /*
6310 * Expect SSH2_MSG_NEWKEYS from server.
6311 */
6312 crWaitUntil(pktin);
6313 if (pktin->type != SSH2_MSG_NEWKEYS) {
6314 bombout(("expected new-keys packet from server"));
6315 crStop(0);
6316 }
6317 ssh->incoming_data_size = 0; /* start counting from here */
6318
6319 /*
6320 * We've seen server NEWKEYS, so create and initialise
6321 * server-to-client session keys.
6322 */
6323 if (ssh->sc_cipher_ctx)
6324 ssh->sccipher->free_context(ssh->sc_cipher_ctx);
6325 ssh->sccipher = s->sccipher_tobe;
6326 ssh->sc_cipher_ctx = ssh->sccipher->make_context();
6327
6328 if (ssh->sc_mac_ctx)
6329 ssh->scmac->free_context(ssh->sc_mac_ctx);
6330 ssh->scmac = s->scmac_tobe;
6331 ssh->sc_mac_ctx = ssh->scmac->make_context();
6332
6333 if (ssh->sc_comp_ctx)
6334 ssh->sccomp->decompress_cleanup(ssh->sc_comp_ctx);
6335 ssh->sccomp = s->sccomp_tobe;
6336 ssh->sc_comp_ctx = ssh->sccomp->decompress_init();
6337
6338 /*
6339 * Set IVs on server-to-client keys. Here we use the exchange
6340 * hash from the _first_ key exchange.
6341 */
6342 {
6343 unsigned char keyspace[SSH2_KEX_MAX_HASH_LEN * SSH2_MKKEY_ITERS];
6344 assert(sizeof(keyspace) >= ssh->kex->hash->hlen * SSH2_MKKEY_ITERS);
6345 ssh2_mkkey(ssh,s->K,s->exchange_hash,'D',keyspace);
6346 assert((ssh->sccipher->keylen+7) / 8 <=
6347 ssh->kex->hash->hlen * SSH2_MKKEY_ITERS);
6348 ssh->sccipher->setkey(ssh->sc_cipher_ctx, keyspace);
6349 ssh2_mkkey(ssh,s->K,s->exchange_hash,'B',keyspace);
6350 assert(ssh->sccipher->blksize <=
6351 ssh->kex->hash->hlen * SSH2_MKKEY_ITERS);
6352 ssh->sccipher->setiv(ssh->sc_cipher_ctx, keyspace);
6353 ssh2_mkkey(ssh,s->K,s->exchange_hash,'F',keyspace);
6354 assert(ssh->scmac->len <=
6355 ssh->kex->hash->hlen * SSH2_MKKEY_ITERS);
6356 ssh->scmac->setkey(ssh->sc_mac_ctx, keyspace);
6357 memset(keyspace, 0, sizeof(keyspace));
6358 }
6359 logeventf(ssh, "Initialised %.200s server->client encryption",
6360 ssh->sccipher->text_name);
6361 logeventf(ssh, "Initialised %.200s server->client MAC algorithm",
6362 ssh->scmac->text_name);
6363 if (ssh->sccomp->text_name)
6364 logeventf(ssh, "Initialised %s decompression",
6365 ssh->sccomp->text_name);
6366
6367 /*
6368 * Free shared secret.
6369 */
6370 freebn(s->K);
6371
6372 /*
6373 * Key exchange is over. Loop straight back round if we have a
6374 * deferred rekey reason.
6375 */
6376 if (ssh->deferred_rekey_reason) {
6377 logevent(ssh->deferred_rekey_reason);
6378 pktin = NULL;
6379 ssh->deferred_rekey_reason = NULL;
6380 goto begin_key_exchange;
6381 }
6382
6383 /*
6384 * Otherwise, schedule a timer for our next rekey.
6385 */
6386 ssh->kex_in_progress = FALSE;
6387 ssh->last_rekey = GETTICKCOUNT();
6388 if (conf_get_int(ssh->conf, CONF_ssh_rekey_time) != 0)
6389 ssh->next_rekey = schedule_timer(conf_get_int(ssh->conf, CONF_ssh_rekey_time)*60*TICKSPERSEC,
6390 ssh2_timer, ssh);
6391
6392 /*
6393 * If this is the first key exchange phase, we must pass the
6394 * SSH2_MSG_NEWKEYS packet to the next layer, not because it
6395 * wants to see it but because it will need time to initialise
6396 * itself before it sees an actual packet. In subsequent key
6397 * exchange phases, we don't pass SSH2_MSG_NEWKEYS on, because
6398 * it would only confuse the layer above.
6399 */
6400 if (s->activated_authconn) {
6401 crReturn(0);
6402 }
6403 s->activated_authconn = TRUE;
6404
6405 /*
6406 * Now we're encrypting. Begin returning 1 to the protocol main
6407 * function so that other things can run on top of the
6408 * transport. If we ever see a KEXINIT, we must go back to the
6409 * start.
6410 *
6411 * We _also_ go back to the start if we see pktin==NULL and
6412 * inlen negative, because this is a special signal meaning
6413 * `initiate client-driven rekey', and `in' contains a message
6414 * giving the reason for the rekey.
6415 *
6416 * inlen==-1 means always initiate a rekey;
6417 * inlen==-2 means that userauth has completed successfully and
6418 * we should consider rekeying (for delayed compression).
6419 */
6420 while (!((pktin && pktin->type == SSH2_MSG_KEXINIT) ||
6421 (!pktin && inlen < 0))) {
6422 wait_for_rekey:
6423 crReturn(1);
6424 }
6425 if (pktin) {
6426 logevent("Server initiated key re-exchange");
6427 } else {
6428 if (inlen == -2) {
6429 /*
6430 * authconn has seen a USERAUTH_SUCCEEDED. Time to enable
6431 * delayed compression, if it's available.
6432 *
6433 * draft-miller-secsh-compression-delayed-00 says that you
6434 * negotiate delayed compression in the first key exchange, and
6435 * both sides start compressing when the server has sent
6436 * USERAUTH_SUCCESS. This has a race condition -- the server
6437 * can't know when the client has seen it, and thus which incoming
6438 * packets it should treat as compressed.
6439 *
6440 * Instead, we do the initial key exchange without offering the
6441 * delayed methods, but note if the server offers them; when we
6442 * get here, if a delayed method was available that was higher
6443 * on our list than what we got, we initiate a rekey in which we
6444 * _do_ list the delayed methods (and hopefully get it as a
6445 * result). Subsequent rekeys will do the same.
6446 */
6447 assert(!s->userauth_succeeded); /* should only happen once */
6448 s->userauth_succeeded = TRUE;
6449 if (!s->pending_compression)
6450 /* Can't see any point rekeying. */
6451 goto wait_for_rekey; /* this is utterly horrid */
6452 /* else fall through to rekey... */
6453 s->pending_compression = FALSE;
6454 }
6455 /*
6456 * Now we've decided to rekey.
6457 *
6458 * Special case: if the server bug is set that doesn't
6459 * allow rekeying, we give a different log message and
6460 * continue waiting. (If such a server _initiates_ a rekey,
6461 * we process it anyway!)
6462 */
6463 if ((ssh->remote_bugs & BUG_SSH2_REKEY)) {
6464 logeventf(ssh, "Server bug prevents key re-exchange (%s)",
6465 (char *)in);
6466 /* Reset the counters, so that at least this message doesn't
6467 * hit the event log _too_ often. */
6468 ssh->outgoing_data_size = 0;
6469 ssh->incoming_data_size = 0;
6470 if (conf_get_int(ssh->conf, CONF_ssh_rekey_time) != 0) {
6471 ssh->next_rekey =
6472 schedule_timer(conf_get_int(ssh->conf, CONF_ssh_rekey_time)*60*TICKSPERSEC,
6473 ssh2_timer, ssh);
6474 }
6475 goto wait_for_rekey; /* this is still utterly horrid */
6476 } else {
6477 logeventf(ssh, "Initiating key re-exchange (%s)", (char *)in);
6478 }
6479 }
6480 goto begin_key_exchange;
6481
6482 crFinish(1);
6483 }
6484
6485 /*
6486 * Add data to an SSH-2 channel output buffer.
6487 */
6488 static void ssh2_add_channel_data(struct ssh_channel *c, char *buf,
6489 int len)
6490 {
6491 bufchain_add(&c->v.v2.outbuffer, buf, len);
6492 }
6493
6494 /*
6495 * Attempt to send data on an SSH-2 channel.
6496 */
6497 static int ssh2_try_send(struct ssh_channel *c)
6498 {
6499 Ssh ssh = c->ssh;
6500 struct Packet *pktout;
6501 int ret;
6502
6503 while (c->v.v2.remwindow > 0 && bufchain_size(&c->v.v2.outbuffer) > 0) {
6504 int len;
6505 void *data;
6506 bufchain_prefix(&c->v.v2.outbuffer, &data, &len);
6507 if ((unsigned)len > c->v.v2.remwindow)
6508 len = c->v.v2.remwindow;
6509 if ((unsigned)len > c->v.v2.remmaxpkt)
6510 len = c->v.v2.remmaxpkt;
6511 pktout = ssh2_pkt_init(SSH2_MSG_CHANNEL_DATA);
6512 ssh2_pkt_adduint32(pktout, c->remoteid);
6513 ssh2_pkt_addstring_start(pktout);
6514 dont_log_data(ssh, pktout, PKTLOG_OMIT);
6515 ssh2_pkt_addstring_data(pktout, data, len);
6516 end_log_omission(ssh, pktout);
6517 ssh2_pkt_send(ssh, pktout);
6518 bufchain_consume(&c->v.v2.outbuffer, len);
6519 c->v.v2.remwindow -= len;
6520 }
6521
6522 /*
6523 * After having sent as much data as we can, return the amount
6524 * still buffered.
6525 */
6526 ret = bufchain_size(&c->v.v2.outbuffer);
6527
6528 /*
6529 * And if there's no data pending but we need to send an EOF, send
6530 * it.
6531 */
6532 if (!ret && c->pending_eof)
6533 ssh_channel_try_eof(c);
6534
6535 return ret;
6536 }
6537
6538 static void ssh2_try_send_and_unthrottle(Ssh ssh, struct ssh_channel *c)
6539 {
6540 int bufsize;
6541 if (c->closes & CLOSES_SENT_EOF)
6542 return; /* don't send on channels we've EOFed */
6543 bufsize = ssh2_try_send(c);
6544 if (bufsize == 0) {
6545 switch (c->type) {
6546 case CHAN_MAINSESSION:
6547 /* stdin need not receive an unthrottle
6548 * notification since it will be polled */
6549 break;
6550 case CHAN_X11:
6551 x11_unthrottle(c->u.x11.s);
6552 break;
6553 case CHAN_AGENT:
6554 /* agent sockets are request/response and need no
6555 * buffer management */
6556 break;
6557 case CHAN_SOCKDATA:
6558 pfd_unthrottle(c->u.pfd.s);
6559 break;
6560 }
6561 }
6562 }
6563
6564 /*
6565 * Set up most of a new ssh_channel for SSH-2.
6566 */
6567 static void ssh2_channel_init(struct ssh_channel *c)
6568 {
6569 Ssh ssh = c->ssh;
6570 c->localid = alloc_channel_id(ssh);
6571 c->closes = 0;
6572 c->pending_eof = FALSE;
6573 c->throttling_conn = FALSE;
6574 c->v.v2.locwindow = c->v.v2.locmaxwin = c->v.v2.remlocwin =
6575 conf_get_int(ssh->conf, CONF_ssh_simple) ? OUR_V2_BIGWIN : OUR_V2_WINSIZE;
6576 c->v.v2.winadj_head = c->v.v2.winadj_tail = NULL;
6577 c->v.v2.throttle_state = UNTHROTTLED;
6578 bufchain_init(&c->v.v2.outbuffer);
6579 }
6580
6581 /*
6582 * Potentially enlarge the window on an SSH-2 channel.
6583 */
6584 static void ssh2_set_window(struct ssh_channel *c, int newwin)
6585 {
6586 Ssh ssh = c->ssh;
6587
6588 /*
6589 * Never send WINDOW_ADJUST for a channel that the remote side has
6590 * already sent EOF on; there's no point, since it won't be
6591 * sending any more data anyway. Ditto if _we've_ already sent
6592 * CLOSE.
6593 */
6594 if (c->closes & (CLOSES_RCVD_EOF | CLOSES_SENT_CLOSE))
6595 return;
6596
6597 /*
6598 * If the remote end has a habit of ignoring maxpkt, limit the
6599 * window so that it has no choice (assuming it doesn't ignore the
6600 * window as well).
6601 */
6602 if ((ssh->remote_bugs & BUG_SSH2_MAXPKT) && newwin > OUR_V2_MAXPKT)
6603 newwin = OUR_V2_MAXPKT;
6604
6605 /*
6606 * Only send a WINDOW_ADJUST if there's significantly more window
6607 * available than the other end thinks there is. This saves us
6608 * sending a WINDOW_ADJUST for every character in a shell session.
6609 *
6610 * "Significant" is arbitrarily defined as half the window size.
6611 */
6612 if (newwin / 2 >= c->v.v2.locwindow) {
6613 struct Packet *pktout;
6614 struct winadj *wa;
6615
6616 /*
6617 * In order to keep track of how much window the client
6618 * actually has available, we'd like it to acknowledge each
6619 * WINDOW_ADJUST. We can't do that directly, so we accompany
6620 * it with a CHANNEL_REQUEST that has to be acknowledged.
6621 *
6622 * This is only necessary if we're opening the window wide.
6623 * If we're not, then throughput is being constrained by
6624 * something other than the maximum window size anyway.
6625 *
6626 * We also only send this if the main channel has finished its
6627 * initial CHANNEL_REQUESTs and installed the default
6628 * CHANNEL_FAILURE handler, so as not to risk giving it
6629 * unexpected CHANNEL_FAILUREs.
6630 */
6631 if (newwin == c->v.v2.locmaxwin &&
6632 ssh->packet_dispatch[SSH2_MSG_CHANNEL_FAILURE]) {
6633 pktout = ssh2_pkt_init(SSH2_MSG_CHANNEL_REQUEST);
6634 ssh2_pkt_adduint32(pktout, c->remoteid);
6635 ssh2_pkt_addstring(pktout, "winadj@putty.projects.tartarus.org");
6636 ssh2_pkt_addbool(pktout, TRUE);
6637 ssh2_pkt_send(ssh, pktout);
6638
6639 /*
6640 * CHANNEL_FAILURE doesn't come with any indication of
6641 * what message caused it, so we have to keep track of the
6642 * outstanding CHANNEL_REQUESTs ourselves.
6643 */
6644 wa = snew(struct winadj);
6645 wa->size = newwin - c->v.v2.locwindow;
6646 wa->next = NULL;
6647 if (!c->v.v2.winadj_head)
6648 c->v.v2.winadj_head = wa;
6649 else
6650 c->v.v2.winadj_tail->next = wa;
6651 c->v.v2.winadj_tail = wa;
6652 if (c->v.v2.throttle_state != UNTHROTTLED)
6653 c->v.v2.throttle_state = UNTHROTTLING;
6654 } else {
6655 /* Pretend the WINDOW_ADJUST was acked immediately. */
6656 c->v.v2.remlocwin = newwin;
6657 c->v.v2.throttle_state = THROTTLED;
6658 }
6659 pktout = ssh2_pkt_init(SSH2_MSG_CHANNEL_WINDOW_ADJUST);
6660 ssh2_pkt_adduint32(pktout, c->remoteid);
6661 ssh2_pkt_adduint32(pktout, newwin - c->v.v2.locwindow);
6662 ssh2_pkt_send(ssh, pktout);
6663 c->v.v2.locwindow = newwin;
6664 }
6665 }
6666
6667 /*
6668 * Find the channel associated with a message. If there's no channel,
6669 * or it's not properly open, make a noise about it and return NULL.
6670 */
6671 static struct ssh_channel *ssh2_channel_msg(Ssh ssh, struct Packet *pktin)
6672 {
6673 unsigned localid = ssh_pkt_getuint32(pktin);
6674 struct ssh_channel *c;
6675
6676 c = find234(ssh->channels, &localid, ssh_channelfind);
6677 if (!c ||
6678 (c->halfopen && pktin->type != SSH2_MSG_CHANNEL_OPEN_CONFIRMATION &&
6679 pktin->type != SSH2_MSG_CHANNEL_OPEN_FAILURE)) {
6680 char *buf = dupprintf("Received %s for %s channel %u",
6681 ssh2_pkt_type(ssh->pkt_kctx, ssh->pkt_actx,
6682 pktin->type),
6683 c ? "half-open" : "nonexistent", localid);
6684 ssh_disconnect(ssh, NULL, buf, SSH2_DISCONNECT_PROTOCOL_ERROR, FALSE);
6685 sfree(buf);
6686 return NULL;
6687 }
6688 return c;
6689 }
6690
6691 static int ssh2_handle_winadj_response(struct ssh_channel *c)
6692 {
6693 struct winadj *wa = c->v.v2.winadj_head;
6694 if (!wa)
6695 return FALSE;
6696 c->v.v2.winadj_head = wa->next;
6697 c->v.v2.remlocwin += wa->size;
6698 sfree(wa);
6699 /*
6700 * winadj messages are only sent when the window is fully open, so
6701 * if we get an ack of one, we know any pending unthrottle is
6702 * complete.
6703 */
6704 if (c->v.v2.throttle_state == UNTHROTTLING)
6705 c->v.v2.throttle_state = UNTHROTTLED;
6706 /*
6707 * We may now initiate channel-closing procedures, if that winadj
6708 * was the last thing outstanding before we send CHANNEL_CLOSE.
6709 */
6710 ssh2_channel_check_close(c);
6711 return TRUE;
6712 }
6713
6714 static void ssh2_msg_channel_success(Ssh ssh, struct Packet *pktin)
6715 {
6716 /*
6717 * This should never get called. All channel requests are either
6718 * sent with want_reply false, are sent before this handler gets
6719 * installed, or are "winadj@putty" requests, which servers should
6720 * never respond to with success.
6721 *
6722 * However, at least one server ("boks_sshd") is known to return
6723 * SUCCESS for channel requests it's never heard of, such as
6724 * "winadj@putty". Raised with foxt.com as bug 090916-090424, but
6725 * for the sake of a quiet life, we handle it just the same as the
6726 * expected FAILURE.
6727 */
6728 struct ssh_channel *c;
6729
6730 c = ssh2_channel_msg(ssh, pktin);
6731 if (!c)
6732 return;
6733 if (!ssh2_handle_winadj_response(c))
6734 ssh_disconnect(ssh, NULL,
6735 "Received unsolicited SSH_MSG_CHANNEL_SUCCESS",
6736 SSH2_DISCONNECT_PROTOCOL_ERROR, FALSE);
6737 }
6738
6739 static void ssh2_msg_channel_failure(Ssh ssh, struct Packet *pktin)
6740 {
6741 /*
6742 * The only time this should get called is for "winadj@putty"
6743 * messages sent above. All other channel requests are either
6744 * sent with want_reply false or are sent before this handler gets
6745 * installed.
6746 */
6747 struct ssh_channel *c;
6748
6749 c = ssh2_channel_msg(ssh, pktin);
6750 if (!c)
6751 return;
6752 if (!ssh2_handle_winadj_response(c))
6753 ssh_disconnect(ssh, NULL,
6754 "Received unsolicited SSH_MSG_CHANNEL_FAILURE",
6755 SSH2_DISCONNECT_PROTOCOL_ERROR, FALSE);
6756 }
6757
6758 static void ssh2_msg_channel_window_adjust(Ssh ssh, struct Packet *pktin)
6759 {
6760 struct ssh_channel *c;
6761 c = ssh2_channel_msg(ssh, pktin);
6762 if (!c)
6763 return;
6764 if (!(c->closes & CLOSES_SENT_EOF)) {
6765 c->v.v2.remwindow += ssh_pkt_getuint32(pktin);
6766 ssh2_try_send_and_unthrottle(ssh, c);
6767 }
6768 }
6769
6770 static void ssh2_msg_channel_data(Ssh ssh, struct Packet *pktin)
6771 {
6772 char *data;
6773 int length;
6774 struct ssh_channel *c;
6775 c = ssh2_channel_msg(ssh, pktin);
6776 if (!c)
6777 return;
6778 if (pktin->type == SSH2_MSG_CHANNEL_EXTENDED_DATA &&
6779 ssh_pkt_getuint32(pktin) != SSH2_EXTENDED_DATA_STDERR)
6780 return; /* extended but not stderr */
6781 ssh_pkt_getstring(pktin, &data, &length);
6782 if (data) {
6783 int bufsize = 0;
6784 c->v.v2.locwindow -= length;
6785 c->v.v2.remlocwin -= length;
6786 switch (c->type) {
6787 case CHAN_MAINSESSION:
6788 bufsize =
6789 from_backend(ssh->frontend, pktin->type ==
6790 SSH2_MSG_CHANNEL_EXTENDED_DATA,
6791 data, length);
6792 break;
6793 case CHAN_X11:
6794 bufsize = x11_send(c->u.x11.s, data, length);
6795 break;
6796 case CHAN_SOCKDATA:
6797 bufsize = pfd_send(c->u.pfd.s, data, length);
6798 break;
6799 case CHAN_AGENT:
6800 while (length > 0) {
6801 if (c->u.a.lensofar < 4) {
6802 unsigned int l = min(4 - c->u.a.lensofar,
6803 (unsigned)length);
6804 memcpy(c->u.a.msglen + c->u.a.lensofar,
6805 data, l);
6806 data += l;
6807 length -= l;
6808 c->u.a.lensofar += l;
6809 }
6810 if (c->u.a.lensofar == 4) {
6811 c->u.a.totallen =
6812 4 + GET_32BIT(c->u.a.msglen);
6813 c->u.a.message = snewn(c->u.a.totallen,
6814 unsigned char);
6815 memcpy(c->u.a.message, c->u.a.msglen, 4);
6816 }
6817 if (c->u.a.lensofar >= 4 && length > 0) {
6818 unsigned int l =
6819 min(c->u.a.totallen - c->u.a.lensofar,
6820 (unsigned)length);
6821 memcpy(c->u.a.message + c->u.a.lensofar,
6822 data, l);
6823 data += l;
6824 length -= l;
6825 c->u.a.lensofar += l;
6826 }
6827 if (c->u.a.lensofar == c->u.a.totallen) {
6828 void *reply;
6829 int replylen;
6830 if (agent_query(c->u.a.message,
6831 c->u.a.totallen,
6832 &reply, &replylen,
6833 ssh_agentf_callback, c))
6834 ssh_agentf_callback(c, reply, replylen);
6835 sfree(c->u.a.message);
6836 c->u.a.message = NULL;
6837 c->u.a.lensofar = 0;
6838 }
6839 }
6840 bufsize = 0;
6841 break;
6842 }
6843 /*
6844 * If it looks like the remote end hit the end of its window,
6845 * and we didn't want it to do that, think about using a
6846 * larger window.
6847 */
6848 if (c->v.v2.remlocwin <= 0 && c->v.v2.throttle_state == UNTHROTTLED &&
6849 c->v.v2.locmaxwin < 0x40000000)
6850 c->v.v2.locmaxwin += OUR_V2_WINSIZE;
6851 /*
6852 * If we are not buffering too much data,
6853 * enlarge the window again at the remote side.
6854 * If we are buffering too much, we may still
6855 * need to adjust the window if the server's
6856 * sent excess data.
6857 */
6858 ssh2_set_window(c, bufsize < c->v.v2.locmaxwin ?
6859 c->v.v2.locmaxwin - bufsize : 0);
6860 /*
6861 * If we're either buffering way too much data, or if we're
6862 * buffering anything at all and we're in "simple" mode,
6863 * throttle the whole channel.
6864 */
6865 if ((bufsize > c->v.v2.locmaxwin ||
6866 (conf_get_int(ssh->conf, CONF_ssh_simple) && bufsize > 0)) &&
6867 !c->throttling_conn) {
6868 c->throttling_conn = 1;
6869 ssh_throttle_conn(ssh, +1);
6870 }
6871 }
6872 }
6873
6874 static void ssh_channel_destroy(struct ssh_channel *c)
6875 {
6876 Ssh ssh = c->ssh;
6877
6878 switch (c->type) {
6879 case CHAN_MAINSESSION:
6880 ssh->mainchan = NULL;
6881 update_specials_menu(ssh->frontend);
6882 break;
6883 case CHAN_X11:
6884 if (c->u.x11.s != NULL)
6885 x11_close(c->u.x11.s);
6886 logevent("Forwarded X11 connection terminated");
6887 break;
6888 case CHAN_AGENT:
6889 sfree(c->u.a.message);
6890 break;
6891 case CHAN_SOCKDATA:
6892 if (c->u.pfd.s != NULL)
6893 pfd_close(c->u.pfd.s);
6894 logevent("Forwarded port closed");
6895 break;
6896 }
6897
6898 del234(ssh->channels, c);
6899 if (ssh->version == 2)
6900 bufchain_clear(&c->v.v2.outbuffer);
6901 sfree(c);
6902
6903 /*
6904 * See if that was the last channel left open.
6905 * (This is only our termination condition if we're
6906 * not running in -N mode.)
6907 */
6908 if (ssh->version == 2 &&
6909 !conf_get_int(ssh->conf, CONF_ssh_no_shell) &&
6910 count234(ssh->channels) == 0) {
6911 /*
6912 * We used to send SSH_MSG_DISCONNECT here,
6913 * because I'd believed that _every_ conforming
6914 * SSH-2 connection had to end with a disconnect
6915 * being sent by at least one side; apparently
6916 * I was wrong and it's perfectly OK to
6917 * unceremoniously slam the connection shut
6918 * when you're done, and indeed OpenSSH feels
6919 * this is more polite than sending a
6920 * DISCONNECT. So now we don't.
6921 */
6922 ssh_disconnect(ssh, "All channels closed", NULL, 0, TRUE);
6923 }
6924 }
6925
6926 static void ssh2_channel_check_close(struct ssh_channel *c)
6927 {
6928 Ssh ssh = c->ssh;
6929 struct Packet *pktout;
6930
6931 if ((c->closes & (CLOSES_SENT_EOF | CLOSES_RCVD_EOF | CLOSES_SENT_CLOSE))
6932 == (CLOSES_SENT_EOF | CLOSES_RCVD_EOF) && !c->v.v2.winadj_head) {
6933 /*
6934 * We have both sent and received EOF, and we have no
6935 * outstanding winadj channel requests, which means the
6936 * channel is in final wind-up. But we haven't sent CLOSE, so
6937 * let's do so now.
6938 */
6939 pktout = ssh2_pkt_init(SSH2_MSG_CHANNEL_CLOSE);
6940 ssh2_pkt_adduint32(pktout, c->remoteid);
6941 ssh2_pkt_send(ssh, pktout);
6942 c->closes |= CLOSES_SENT_CLOSE;
6943 }
6944
6945 if (!((CLOSES_SENT_CLOSE | CLOSES_RCVD_CLOSE) & ~c->closes)) {
6946 /*
6947 * We have both sent and received CLOSE, which means we're
6948 * completely done with the channel.
6949 */
6950 ssh_channel_destroy(c);
6951 }
6952 }
6953
6954 static void ssh2_channel_got_eof(struct ssh_channel *c)
6955 {
6956 if (c->closes & CLOSES_RCVD_EOF)
6957 return; /* already seen EOF */
6958 c->closes |= CLOSES_RCVD_EOF;
6959
6960 if (c->type == CHAN_X11) {
6961 x11_send_eof(c->u.x11.s);
6962 } else if (c->type == CHAN_AGENT) {
6963 /* Manufacture an outgoing EOF in response to the incoming one. */
6964 sshfwd_write_eof(c);
6965 } else if (c->type == CHAN_SOCKDATA) {
6966 pfd_send_eof(c->u.pfd.s);
6967 } else if (c->type == CHAN_MAINSESSION) {
6968 Ssh ssh = c->ssh;
6969
6970 if (!ssh->sent_console_eof &&
6971 (from_backend_eof(ssh->frontend) || ssh->got_pty)) {
6972 /*
6973 * Either from_backend_eof told us that the front end
6974 * wants us to close the outgoing side of the connection
6975 * as soon as we see EOF from the far end, or else we've
6976 * unilaterally decided to do that because we've allocated
6977 * a remote pty and hence EOF isn't a particularly
6978 * meaningful concept.
6979 */
6980 sshfwd_write_eof(c);
6981 }
6982 ssh->sent_console_eof = TRUE;
6983 }
6984
6985 ssh2_channel_check_close(c);
6986 }
6987
6988 static void ssh2_msg_channel_eof(Ssh ssh, struct Packet *pktin)
6989 {
6990 struct ssh_channel *c;
6991
6992 c = ssh2_channel_msg(ssh, pktin);
6993 if (!c)
6994 return;
6995 ssh2_channel_got_eof(c);
6996 }
6997
6998 static void ssh2_msg_channel_close(Ssh ssh, struct Packet *pktin)
6999 {
7000 struct ssh_channel *c;
7001
7002 c = ssh2_channel_msg(ssh, pktin);
7003 if (!c)
7004 return;
7005
7006 /*
7007 * When we receive CLOSE on a channel, we assume it comes with an
7008 * implied EOF if we haven't seen EOF yet.
7009 */
7010 ssh2_channel_got_eof(c);
7011
7012 /*
7013 * And we also send an outgoing EOF, if we haven't already, on the
7014 * assumption that CLOSE is a pretty forceful announcement that
7015 * the remote side is doing away with the entire channel. (If it
7016 * had wanted to send us EOF and continue receiving data from us,
7017 * it would have just sent CHANNEL_EOF.)
7018 */
7019 if (!(c->closes & CLOSES_SENT_EOF)) {
7020 /*
7021 * Make sure we don't read any more from whatever our local
7022 * data source is for this channel.
7023 */
7024 switch (c->type) {
7025 case CHAN_MAINSESSION:
7026 ssh->send_ok = 0; /* stop trying to read from stdin */
7027 break;
7028 case CHAN_X11:
7029 x11_override_throttle(c->u.x11.s, 1);
7030 break;
7031 case CHAN_SOCKDATA:
7032 pfd_override_throttle(c->u.pfd.s, 1);
7033 break;
7034 }
7035
7036 /*
7037 * Send outgoing EOF.
7038 */
7039 sshfwd_write_eof(c);
7040 }
7041
7042 /*
7043 * Now process the actual close.
7044 */
7045 if (!(c->closes & CLOSES_RCVD_CLOSE)) {
7046 c->closes |= CLOSES_RCVD_CLOSE;
7047 ssh2_channel_check_close(c);
7048 }
7049 }
7050
7051 static void ssh2_msg_channel_open_confirmation(Ssh ssh, struct Packet *pktin)
7052 {
7053 struct ssh_channel *c;
7054
7055 c = ssh2_channel_msg(ssh, pktin);
7056 if (!c)
7057 return;
7058 if (c->type != CHAN_SOCKDATA_DORMANT)
7059 return; /* dunno why they're confirming this */
7060 c->remoteid = ssh_pkt_getuint32(pktin);
7061 c->halfopen = FALSE;
7062 c->type = CHAN_SOCKDATA;
7063 c->v.v2.remwindow = ssh_pkt_getuint32(pktin);
7064 c->v.v2.remmaxpkt = ssh_pkt_getuint32(pktin);
7065 if (c->u.pfd.s)
7066 pfd_confirm(c->u.pfd.s);
7067 if (c->pending_eof)
7068 ssh_channel_try_eof(c);
7069 }
7070
7071 static void ssh2_msg_channel_open_failure(Ssh ssh, struct Packet *pktin)
7072 {
7073 static const char *const reasons[] = {
7074 "<unknown reason code>",
7075 "Administratively prohibited",
7076 "Connect failed",
7077 "Unknown channel type",
7078 "Resource shortage",
7079 };
7080 unsigned reason_code;
7081 char *reason_string;
7082 int reason_length;
7083 struct ssh_channel *c;
7084 c = ssh2_channel_msg(ssh, pktin);
7085 if (!c)
7086 return;
7087 if (c->type != CHAN_SOCKDATA_DORMANT)
7088 return; /* dunno why they're failing this */
7089
7090 reason_code = ssh_pkt_getuint32(pktin);
7091 if (reason_code >= lenof(reasons))
7092 reason_code = 0; /* ensure reasons[reason_code] in range */
7093 ssh_pkt_getstring(pktin, &reason_string, &reason_length);
7094 logeventf(ssh, "Forwarded connection refused by server: %s [%.*s]",
7095 reasons[reason_code], reason_length, reason_string);
7096
7097 pfd_close(c->u.pfd.s);
7098
7099 del234(ssh->channels, c);
7100 sfree(c);
7101 }
7102
7103 static void ssh2_msg_channel_request(Ssh ssh, struct Packet *pktin)
7104 {
7105 char *type;
7106 int typelen, want_reply;
7107 int reply = SSH2_MSG_CHANNEL_FAILURE; /* default */
7108 struct ssh_channel *c;
7109 struct Packet *pktout;
7110
7111 c = ssh2_channel_msg(ssh, pktin);
7112 if (!c)
7113 return;
7114 ssh_pkt_getstring(pktin, &type, &typelen);
7115 want_reply = ssh2_pkt_getbool(pktin);
7116
7117 /*
7118 * Having got the channel number, we now look at
7119 * the request type string to see if it's something
7120 * we recognise.
7121 */
7122 if (c == ssh->mainchan) {
7123 /*
7124 * We recognise "exit-status" and "exit-signal" on
7125 * the primary channel.
7126 */
7127 if (typelen == 11 &&
7128 !memcmp(type, "exit-status", 11)) {
7129
7130 ssh->exitcode = ssh_pkt_getuint32(pktin);
7131 logeventf(ssh, "Server sent command exit status %d",
7132 ssh->exitcode);
7133 reply = SSH2_MSG_CHANNEL_SUCCESS;
7134
7135 } else if (typelen == 11 &&
7136 !memcmp(type, "exit-signal", 11)) {
7137
7138 int is_plausible = TRUE, is_int = FALSE;
7139 char *fmt_sig = "", *fmt_msg = "";
7140 char *msg;
7141 int msglen = 0, core = FALSE;
7142 /* ICK: older versions of OpenSSH (e.g. 3.4p1)
7143 * provide an `int' for the signal, despite its
7144 * having been a `string' in the drafts of RFC 4254 since at
7145 * least 2001. (Fixed in session.c 1.147.) Try to
7146 * infer which we can safely parse it as. */
7147 {
7148 unsigned char *p = pktin->body +
7149 pktin->savedpos;
7150 long len = pktin->length - pktin->savedpos;
7151 unsigned long num = GET_32BIT(p); /* what is it? */
7152 /* If it's 0, it hardly matters; assume string */
7153 if (num == 0) {
7154 is_int = FALSE;
7155 } else {
7156 int maybe_int = FALSE, maybe_str = FALSE;
7157 #define CHECK_HYPOTHESIS(offset, result) \
7158 do { \
7159 long q = offset; \
7160 if (q >= 0 && q+4 <= len) { \
7161 q = q + 4 + GET_32BIT(p+q); \
7162 if (q >= 0 && q+4 <= len && \
7163 ((q = q + 4 + GET_32BIT(p+q))!= 0) && q == len) \
7164 result = TRUE; \
7165 } \
7166 } while(0)
7167 CHECK_HYPOTHESIS(4+1, maybe_int);
7168 CHECK_HYPOTHESIS(4+num+1, maybe_str);
7169 #undef CHECK_HYPOTHESIS
7170 if (maybe_int && !maybe_str)
7171 is_int = TRUE;
7172 else if (!maybe_int && maybe_str)
7173 is_int = FALSE;
7174 else
7175 /* Crikey. Either or neither. Panic. */
7176 is_plausible = FALSE;
7177 }
7178 }
7179 ssh->exitcode = 128; /* means `unknown signal' */
7180 if (is_plausible) {
7181 if (is_int) {
7182 /* Old non-standard OpenSSH. */
7183 int signum = ssh_pkt_getuint32(pktin);
7184 fmt_sig = dupprintf(" %d", signum);
7185 ssh->exitcode = 128 + signum;
7186 } else {
7187 /* As per RFC 4254. */
7188 char *sig;
7189 int siglen;
7190 ssh_pkt_getstring(pktin, &sig, &siglen);
7191 /* Signal name isn't supposed to be blank, but
7192 * let's cope gracefully if it is. */
7193 if (siglen) {
7194 fmt_sig = dupprintf(" \"%.*s\"",
7195 siglen, sig);
7196 }
7197
7198 /*
7199 * Really hideous method of translating the
7200 * signal description back into a locally
7201 * meaningful number.
7202 */
7203
7204 if (0)
7205 ;
7206 #define TRANSLATE_SIGNAL(s) \
7207 else if (siglen == lenof(#s)-1 && !memcmp(sig, #s, siglen)) \
7208 ssh->exitcode = 128 + SIG ## s
7209 #ifdef SIGABRT
7210 TRANSLATE_SIGNAL(ABRT);
7211 #endif
7212 #ifdef SIGALRM
7213 TRANSLATE_SIGNAL(ALRM);
7214 #endif
7215 #ifdef SIGFPE
7216 TRANSLATE_SIGNAL(FPE);
7217 #endif
7218 #ifdef SIGHUP
7219 TRANSLATE_SIGNAL(HUP);
7220 #endif
7221 #ifdef SIGILL
7222 TRANSLATE_SIGNAL(ILL);
7223 #endif
7224 #ifdef SIGINT
7225 TRANSLATE_SIGNAL(INT);
7226 #endif
7227 #ifdef SIGKILL
7228 TRANSLATE_SIGNAL(KILL);
7229 #endif
7230 #ifdef SIGPIPE
7231 TRANSLATE_SIGNAL(PIPE);
7232 #endif
7233 #ifdef SIGQUIT
7234 TRANSLATE_SIGNAL(QUIT);
7235 #endif
7236 #ifdef SIGSEGV
7237 TRANSLATE_SIGNAL(SEGV);
7238 #endif
7239 #ifdef SIGTERM
7240 TRANSLATE_SIGNAL(TERM);
7241 #endif
7242 #ifdef SIGUSR1
7243 TRANSLATE_SIGNAL(USR1);
7244 #endif
7245 #ifdef SIGUSR2
7246 TRANSLATE_SIGNAL(USR2);
7247 #endif
7248 #undef TRANSLATE_SIGNAL
7249 else
7250 ssh->exitcode = 128;
7251 }
7252 core = ssh2_pkt_getbool(pktin);
7253 ssh_pkt_getstring(pktin, &msg, &msglen);
7254 if (msglen) {
7255 fmt_msg = dupprintf(" (\"%.*s\")", msglen, msg);
7256 }
7257 /* ignore lang tag */
7258 } /* else don't attempt to parse */
7259 logeventf(ssh, "Server exited on signal%s%s%s",
7260 fmt_sig, core ? " (core dumped)" : "",
7261 fmt_msg);
7262 if (*fmt_sig) sfree(fmt_sig);
7263 if (*fmt_msg) sfree(fmt_msg);
7264 reply = SSH2_MSG_CHANNEL_SUCCESS;
7265
7266 }
7267 } else {
7268 /*
7269 * This is a channel request we don't know
7270 * about, so we now either ignore the request
7271 * or respond with CHANNEL_FAILURE, depending
7272 * on want_reply.
7273 */
7274 reply = SSH2_MSG_CHANNEL_FAILURE;
7275 }
7276 if (want_reply) {
7277 pktout = ssh2_pkt_init(reply);
7278 ssh2_pkt_adduint32(pktout, c->remoteid);
7279 ssh2_pkt_send(ssh, pktout);
7280 }
7281 }
7282
7283 static void ssh2_msg_global_request(Ssh ssh, struct Packet *pktin)
7284 {
7285 char *type;
7286 int typelen, want_reply;
7287 struct Packet *pktout;
7288
7289 ssh_pkt_getstring(pktin, &type, &typelen);
7290 want_reply = ssh2_pkt_getbool(pktin);
7291
7292 /*
7293 * We currently don't support any global requests
7294 * at all, so we either ignore the request or
7295 * respond with REQUEST_FAILURE, depending on
7296 * want_reply.
7297 */
7298 if (want_reply) {
7299 pktout = ssh2_pkt_init(SSH2_MSG_REQUEST_FAILURE);
7300 ssh2_pkt_send(ssh, pktout);
7301 }
7302 }
7303
7304 static void ssh2_msg_channel_open(Ssh ssh, struct Packet *pktin)
7305 {
7306 char *type;
7307 int typelen;
7308 char *peeraddr;
7309 int peeraddrlen;
7310 int peerport;
7311 char *error = NULL;
7312 struct ssh_channel *c;
7313 unsigned remid, winsize, pktsize;
7314 struct Packet *pktout;
7315
7316 ssh_pkt_getstring(pktin, &type, &typelen);
7317 c = snew(struct ssh_channel);
7318 c->ssh = ssh;
7319
7320 remid = ssh_pkt_getuint32(pktin);
7321 winsize = ssh_pkt_getuint32(pktin);
7322 pktsize = ssh_pkt_getuint32(pktin);
7323
7324 if (typelen == 3 && !memcmp(type, "x11", 3)) {
7325 char *addrstr;
7326 const char *x11err;
7327
7328 ssh_pkt_getstring(pktin, &peeraddr, &peeraddrlen);
7329 addrstr = snewn(peeraddrlen+1, char);
7330 memcpy(addrstr, peeraddr, peeraddrlen);
7331 addrstr[peeraddrlen] = '\0';
7332 peerport = ssh_pkt_getuint32(pktin);
7333
7334 logeventf(ssh, "Received X11 connect request from %s:%d",
7335 addrstr, peerport);
7336
7337 if (!ssh->X11_fwd_enabled)
7338 error = "X11 forwarding is not enabled";
7339 else if ((x11err = x11_init(&c->u.x11.s, ssh->x11disp, c,
7340 addrstr, peerport, ssh->conf)) != NULL) {
7341 logeventf(ssh, "Local X11 connection failed: %s", x11err);
7342 error = "Unable to open an X11 connection";
7343 } else {
7344 logevent("Opening X11 forward connection succeeded");
7345 c->type = CHAN_X11;
7346 }
7347
7348 sfree(addrstr);
7349 } else if (typelen == 15 &&
7350 !memcmp(type, "forwarded-tcpip", 15)) {
7351 struct ssh_rportfwd pf, *realpf;
7352 char *dummy;
7353 int dummylen;
7354 ssh_pkt_getstring(pktin, &dummy, &dummylen);/* skip address */
7355 pf.sport = ssh_pkt_getuint32(pktin);
7356 ssh_pkt_getstring(pktin, &peeraddr, &peeraddrlen);
7357 peerport = ssh_pkt_getuint32(pktin);
7358 realpf = find234(ssh->rportfwds, &pf, NULL);
7359 logeventf(ssh, "Received remote port %d open request "
7360 "from %s:%d", pf.sport, peeraddr, peerport);
7361 if (realpf == NULL) {
7362 error = "Remote port is not recognised";
7363 } else {
7364 const char *e = pfd_newconnect(&c->u.pfd.s,
7365 realpf->dhost,
7366 realpf->dport, c,
7367 ssh->conf,
7368 realpf->pfrec->addressfamily);
7369 logeventf(ssh, "Attempting to forward remote port to "
7370 "%s:%d", realpf->dhost, realpf->dport);
7371 if (e != NULL) {
7372 logeventf(ssh, "Port open failed: %s", e);
7373 error = "Port open failed";
7374 } else {
7375 logevent("Forwarded port opened successfully");
7376 c->type = CHAN_SOCKDATA;
7377 }
7378 }
7379 } else if (typelen == 22 &&
7380 !memcmp(type, "auth-agent@openssh.com", 22)) {
7381 if (!ssh->agentfwd_enabled)
7382 error = "Agent forwarding is not enabled";
7383 else {
7384 c->type = CHAN_AGENT; /* identify channel type */
7385 c->u.a.lensofar = 0;
7386 }
7387 } else {
7388 error = "Unsupported channel type requested";
7389 }
7390
7391 c->remoteid = remid;
7392 c->halfopen = FALSE;
7393 if (error) {
7394 pktout = ssh2_pkt_init(SSH2_MSG_CHANNEL_OPEN_FAILURE);
7395 ssh2_pkt_adduint32(pktout, c->remoteid);
7396 ssh2_pkt_adduint32(pktout, SSH2_OPEN_CONNECT_FAILED);
7397 ssh2_pkt_addstring(pktout, error);
7398 ssh2_pkt_addstring(pktout, "en"); /* language tag */
7399 ssh2_pkt_send(ssh, pktout);
7400 logeventf(ssh, "Rejected channel open: %s", error);
7401 sfree(c);
7402 } else {
7403 ssh2_channel_init(c);
7404 c->v.v2.remwindow = winsize;
7405 c->v.v2.remmaxpkt = pktsize;
7406 add234(ssh->channels, c);
7407 pktout = ssh2_pkt_init(SSH2_MSG_CHANNEL_OPEN_CONFIRMATION);
7408 ssh2_pkt_adduint32(pktout, c->remoteid);
7409 ssh2_pkt_adduint32(pktout, c->localid);
7410 ssh2_pkt_adduint32(pktout, c->v.v2.locwindow);
7411 ssh2_pkt_adduint32(pktout, OUR_V2_MAXPKT); /* our max pkt size */
7412 ssh2_pkt_send(ssh, pktout);
7413 }
7414 }
7415
7416 /*
7417 * Buffer banner messages for later display at some convenient point,
7418 * if we're going to display them.
7419 */
7420 static void ssh2_msg_userauth_banner(Ssh ssh, struct Packet *pktin)
7421 {
7422 /* Arbitrary limit to prevent unbounded inflation of buffer */
7423 if (conf_get_int(ssh->conf, CONF_ssh_show_banner) &&
7424 bufchain_size(&ssh->banner) <= 131072) {
7425 char *banner = NULL;
7426 int size = 0;
7427 ssh_pkt_getstring(pktin, &banner, &size);
7428 if (banner)
7429 bufchain_add(&ssh->banner, banner, size);
7430 }
7431 }
7432
7433 /* Helper function to deal with sending tty modes for "pty-req" */
7434 static void ssh2_send_ttymode(void *data, char *mode, char *val)
7435 {
7436 struct Packet *pktout = (struct Packet *)data;
7437 int i = 0;
7438 unsigned int arg = 0;
7439 while (strcmp(mode, ssh_ttymodes[i].mode) != 0) i++;
7440 if (i == lenof(ssh_ttymodes)) return;
7441 switch (ssh_ttymodes[i].type) {
7442 case TTY_OP_CHAR:
7443 arg = ssh_tty_parse_specchar(val);
7444 break;
7445 case TTY_OP_BOOL:
7446 arg = ssh_tty_parse_boolean(val);
7447 break;
7448 }
7449 ssh2_pkt_addbyte(pktout, ssh_ttymodes[i].opcode);
7450 ssh2_pkt_adduint32(pktout, arg);
7451 }
7452
7453 /*
7454 * Handle the SSH-2 userauth and connection layers.
7455 */
7456 static void do_ssh2_authconn(Ssh ssh, unsigned char *in, int inlen,
7457 struct Packet *pktin)
7458 {
7459 struct do_ssh2_authconn_state {
7460 enum {
7461 AUTH_TYPE_NONE,
7462 AUTH_TYPE_PUBLICKEY,
7463 AUTH_TYPE_PUBLICKEY_OFFER_LOUD,
7464 AUTH_TYPE_PUBLICKEY_OFFER_QUIET,
7465 AUTH_TYPE_PASSWORD,
7466 AUTH_TYPE_GSSAPI, /* always QUIET */
7467 AUTH_TYPE_KEYBOARD_INTERACTIVE,
7468 AUTH_TYPE_KEYBOARD_INTERACTIVE_QUIET
7469 } type;
7470 int done_service_req;
7471 int gotit, need_pw, can_pubkey, can_passwd, can_keyb_inter;
7472 int tried_pubkey_config, done_agent;
7473 #ifndef NO_GSSAPI
7474 int can_gssapi;
7475 int tried_gssapi;
7476 #endif
7477 int kbd_inter_refused;
7478 int we_are_in, userauth_success;
7479 prompts_t *cur_prompt;
7480 int num_prompts;
7481 char *username;
7482 char *password;
7483 int got_username;
7484 void *publickey_blob;
7485 int publickey_bloblen;
7486 int publickey_encrypted;
7487 char *publickey_algorithm;
7488 char *publickey_comment;
7489 unsigned char agent_request[5], *agent_response, *agentp;
7490 int agent_responselen;
7491 unsigned char *pkblob_in_agent;
7492 int keyi, nkeys;
7493 char *pkblob, *alg, *commentp;
7494 int pklen, alglen, commentlen;
7495 int siglen, retlen, len;
7496 char *q, *agentreq, *ret;
7497 int try_send;
7498 int num_env, env_left, env_ok;
7499 struct Packet *pktout;
7500 Filename *keyfile;
7501 #ifndef NO_GSSAPI
7502 struct ssh_gss_library *gsslib;
7503 Ssh_gss_ctx gss_ctx;
7504 Ssh_gss_buf gss_buf;
7505 Ssh_gss_buf gss_rcvtok, gss_sndtok;
7506 Ssh_gss_name gss_srv_name;
7507 Ssh_gss_stat gss_stat;
7508 #endif
7509 };
7510 crState(do_ssh2_authconn_state);
7511
7512 crBegin(ssh->do_ssh2_authconn_crstate);
7513
7514 s->done_service_req = FALSE;
7515 s->we_are_in = s->userauth_success = FALSE;
7516 #ifndef NO_GSSAPI
7517 s->tried_gssapi = FALSE;
7518 #endif
7519
7520 if (!conf_get_int(ssh->conf, CONF_ssh_no_userauth)) {
7521 /*
7522 * Request userauth protocol, and await a response to it.
7523 */
7524 s->pktout = ssh2_pkt_init(SSH2_MSG_SERVICE_REQUEST);
7525 ssh2_pkt_addstring(s->pktout, "ssh-userauth");
7526 ssh2_pkt_send(ssh, s->pktout);
7527 crWaitUntilV(pktin);
7528 if (pktin->type == SSH2_MSG_SERVICE_ACCEPT)
7529 s->done_service_req = TRUE;
7530 }
7531 if (!s->done_service_req) {
7532 /*
7533 * Request connection protocol directly, without authentication.
7534 */
7535 s->pktout = ssh2_pkt_init(SSH2_MSG_SERVICE_REQUEST);
7536 ssh2_pkt_addstring(s->pktout, "ssh-connection");
7537 ssh2_pkt_send(ssh, s->pktout);
7538 crWaitUntilV(pktin);
7539 if (pktin->type == SSH2_MSG_SERVICE_ACCEPT) {
7540 s->we_are_in = TRUE; /* no auth required */
7541 } else {
7542 bombout(("Server refused service request"));
7543 crStopV;
7544 }
7545 }
7546
7547 /* Arrange to be able to deal with any BANNERs that come in.
7548 * (We do this now as packets may come in during the next bit.) */
7549 bufchain_init(&ssh->banner);
7550 ssh->packet_dispatch[SSH2_MSG_USERAUTH_BANNER] =
7551 ssh2_msg_userauth_banner;
7552
7553 /*
7554 * Misc one-time setup for authentication.
7555 */
7556 s->publickey_blob = NULL;
7557 if (!s->we_are_in) {
7558
7559 /*
7560 * Load the public half of any configured public key file
7561 * for later use.
7562 */
7563 s->keyfile = conf_get_filename(ssh->conf, CONF_keyfile);
7564 if (!filename_is_null(s->keyfile)) {
7565 int keytype;
7566 logeventf(ssh, "Reading private key file \"%.150s\"",
7567 filename_to_str(s->keyfile));
7568 keytype = key_type(s->keyfile);
7569 if (keytype == SSH_KEYTYPE_SSH2) {
7570 const char *error;
7571 s->publickey_blob =
7572 ssh2_userkey_loadpub(s->keyfile,
7573 &s->publickey_algorithm,
7574 &s->publickey_bloblen,
7575 &s->publickey_comment, &error);
7576 if (s->publickey_blob) {
7577 s->publickey_encrypted =
7578 ssh2_userkey_encrypted(s->keyfile, NULL);
7579 } else {
7580 char *msgbuf;
7581 logeventf(ssh, "Unable to load private key (%s)",
7582 error);
7583 msgbuf = dupprintf("Unable to load private key file "
7584 "\"%.150s\" (%s)\r\n",
7585 filename_to_str(s->keyfile),
7586 error);
7587 c_write_str(ssh, msgbuf);
7588 sfree(msgbuf);
7589 }
7590 } else {
7591 char *msgbuf;
7592 logeventf(ssh, "Unable to use this key file (%s)",
7593 key_type_to_str(keytype));
7594 msgbuf = dupprintf("Unable to use key file \"%.150s\""
7595 " (%s)\r\n",
7596 filename_to_str(s->keyfile),
7597 key_type_to_str(keytype));
7598 c_write_str(ssh, msgbuf);
7599 sfree(msgbuf);
7600 s->publickey_blob = NULL;
7601 }
7602 }
7603
7604 /*
7605 * Find out about any keys Pageant has (but if there's a
7606 * public key configured, filter out all others).
7607 */
7608 s->nkeys = 0;
7609 s->agent_response = NULL;
7610 s->pkblob_in_agent = NULL;
7611 if (conf_get_int(ssh->conf, CONF_tryagent) && agent_exists()) {
7612
7613 void *r;
7614
7615 logevent("Pageant is running. Requesting keys.");
7616
7617 /* Request the keys held by the agent. */
7618 PUT_32BIT(s->agent_request, 1);
7619 s->agent_request[4] = SSH2_AGENTC_REQUEST_IDENTITIES;
7620 if (!agent_query(s->agent_request, 5, &r, &s->agent_responselen,
7621 ssh_agent_callback, ssh)) {
7622 do {
7623 crReturnV;
7624 if (pktin) {
7625 bombout(("Unexpected data from server while"
7626 " waiting for agent response"));
7627 crStopV;
7628 }
7629 } while (pktin || inlen > 0);
7630 r = ssh->agent_response;
7631 s->agent_responselen = ssh->agent_response_len;
7632 }
7633 s->agent_response = (unsigned char *) r;
7634 if (s->agent_response && s->agent_responselen >= 5 &&
7635 s->agent_response[4] == SSH2_AGENT_IDENTITIES_ANSWER) {
7636 int keyi;
7637 unsigned char *p;
7638 p = s->agent_response + 5;
7639 s->nkeys = GET_32BIT(p);
7640 p += 4;
7641 logeventf(ssh, "Pageant has %d SSH-2 keys", s->nkeys);
7642 if (s->publickey_blob) {
7643 /* See if configured key is in agent. */
7644 for (keyi = 0; keyi < s->nkeys; keyi++) {
7645 s->pklen = GET_32BIT(p);
7646 if (s->pklen == s->publickey_bloblen &&
7647 !memcmp(p+4, s->publickey_blob,
7648 s->publickey_bloblen)) {
7649 logeventf(ssh, "Pageant key #%d matches "
7650 "configured key file", keyi);
7651 s->keyi = keyi;
7652 s->pkblob_in_agent = p;
7653 break;
7654 }
7655 p += 4 + s->pklen;
7656 p += GET_32BIT(p) + 4; /* comment */
7657 }
7658 if (!s->pkblob_in_agent) {
7659 logevent("Configured key file not in Pageant");
7660 s->nkeys = 0;
7661 }
7662 }
7663 } else {
7664 logevent("Failed to get reply from Pageant");
7665 }
7666 }
7667
7668 }
7669
7670 /*
7671 * We repeat this whole loop, including the username prompt,
7672 * until we manage a successful authentication. If the user
7673 * types the wrong _password_, they can be sent back to the
7674 * beginning to try another username, if this is configured on.
7675 * (If they specify a username in the config, they are never
7676 * asked, even if they do give a wrong password.)
7677 *
7678 * I think this best serves the needs of
7679 *
7680 * - the people who have no configuration, no keys, and just
7681 * want to try repeated (username,password) pairs until they
7682 * type both correctly
7683 *
7684 * - people who have keys and configuration but occasionally
7685 * need to fall back to passwords
7686 *
7687 * - people with a key held in Pageant, who might not have
7688 * logged in to a particular machine before; so they want to
7689 * type a username, and then _either_ their key will be
7690 * accepted, _or_ they will type a password. If they mistype
7691 * the username they will want to be able to get back and
7692 * retype it!
7693 */
7694 s->got_username = FALSE;
7695 while (!s->we_are_in) {
7696 /*
7697 * Get a username.
7698 */
7699 if (s->got_username && !conf_get_int(ssh->conf, CONF_change_username)) {
7700 /*
7701 * We got a username last time round this loop, and
7702 * with change_username turned off we don't try to get
7703 * it again.
7704 */
7705 } else if ((ssh->username = get_remote_username(ssh->conf)) == NULL) {
7706 int ret; /* need not be kept over crReturn */
7707 s->cur_prompt = new_prompts(ssh->frontend);
7708 s->cur_prompt->to_server = TRUE;
7709 s->cur_prompt->name = dupstr("SSH login name");
7710 add_prompt(s->cur_prompt, dupstr("login as: "), TRUE);
7711 ret = get_userpass_input(s->cur_prompt, NULL, 0);
7712 while (ret < 0) {
7713 ssh->send_ok = 1;
7714 crWaitUntilV(!pktin);
7715 ret = get_userpass_input(s->cur_prompt, in, inlen);
7716 ssh->send_ok = 0;
7717 }
7718 if (!ret) {
7719 /*
7720 * get_userpass_input() failed to get a username.
7721 * Terminate.
7722 */
7723 free_prompts(s->cur_prompt);
7724 ssh_disconnect(ssh, "No username provided", NULL, 0, TRUE);
7725 crStopV;
7726 }
7727 ssh->username = dupstr(s->cur_prompt->prompts[0]->result);
7728 free_prompts(s->cur_prompt);
7729 } else {
7730 char *stuff;
7731 if ((flags & FLAG_VERBOSE) || (flags & FLAG_INTERACTIVE)) {
7732 stuff = dupprintf("Using username \"%s\".\r\n", ssh->username);
7733 c_write_str(ssh, stuff);
7734 sfree(stuff);
7735 }
7736 }
7737 s->got_username = TRUE;
7738
7739 /*
7740 * Send an authentication request using method "none": (a)
7741 * just in case it succeeds, and (b) so that we know what
7742 * authentication methods we can usefully try next.
7743 */
7744 ssh->pkt_actx = SSH2_PKTCTX_NOAUTH;
7745
7746 s->pktout = ssh2_pkt_init(SSH2_MSG_USERAUTH_REQUEST);
7747 ssh2_pkt_addstring(s->pktout, ssh->username);
7748 ssh2_pkt_addstring(s->pktout, "ssh-connection");/* service requested */
7749 ssh2_pkt_addstring(s->pktout, "none"); /* method */
7750 ssh2_pkt_send(ssh, s->pktout);
7751 s->type = AUTH_TYPE_NONE;
7752 s->gotit = FALSE;
7753 s->we_are_in = FALSE;
7754
7755 s->tried_pubkey_config = FALSE;
7756 s->kbd_inter_refused = FALSE;
7757
7758 /* Reset agent request state. */
7759 s->done_agent = FALSE;
7760 if (s->agent_response) {
7761 if (s->pkblob_in_agent) {
7762 s->agentp = s->pkblob_in_agent;
7763 } else {
7764 s->agentp = s->agent_response + 5 + 4;
7765 s->keyi = 0;
7766 }
7767 }
7768
7769 while (1) {
7770 char *methods = NULL;
7771 int methlen = 0;
7772
7773 /*
7774 * Wait for the result of the last authentication request.
7775 */
7776 if (!s->gotit)
7777 crWaitUntilV(pktin);
7778 /*
7779 * Now is a convenient point to spew any banner material
7780 * that we've accumulated. (This should ensure that when
7781 * we exit the auth loop, we haven't any left to deal
7782 * with.)
7783 */
7784 {
7785 int size = bufchain_size(&ssh->banner);
7786 /*
7787 * Don't show the banner if we're operating in
7788 * non-verbose non-interactive mode. (It's probably
7789 * a script, which means nobody will read the
7790 * banner _anyway_, and moreover the printing of
7791 * the banner will screw up processing on the
7792 * output of (say) plink.)
7793 */
7794 if (size && (flags & (FLAG_VERBOSE | FLAG_INTERACTIVE))) {
7795 char *banner = snewn(size, char);
7796 bufchain_fetch(&ssh->banner, banner, size);
7797 c_write_untrusted(ssh, banner, size);
7798 sfree(banner);
7799 }
7800 bufchain_clear(&ssh->banner);
7801 }
7802 if (pktin->type == SSH2_MSG_USERAUTH_SUCCESS) {
7803 logevent("Access granted");
7804 s->we_are_in = s->userauth_success = TRUE;
7805 break;
7806 }
7807
7808 if (pktin->type != SSH2_MSG_USERAUTH_FAILURE && s->type != AUTH_TYPE_GSSAPI) {
7809 bombout(("Strange packet received during authentication: "
7810 "type %d", pktin->type));
7811 crStopV;
7812 }
7813
7814 s->gotit = FALSE;
7815
7816 /*
7817 * OK, we're now sitting on a USERAUTH_FAILURE message, so
7818 * we can look at the string in it and know what we can
7819 * helpfully try next.
7820 */
7821 if (pktin->type == SSH2_MSG_USERAUTH_FAILURE) {
7822 ssh_pkt_getstring(pktin, &methods, &methlen);
7823 if (!ssh2_pkt_getbool(pktin)) {
7824 /*
7825 * We have received an unequivocal Access
7826 * Denied. This can translate to a variety of
7827 * messages, or no message at all.
7828 *
7829 * For forms of authentication which are attempted
7830 * implicitly, by which I mean without printing
7831 * anything in the window indicating that we're
7832 * trying them, we should never print 'Access
7833 * denied'.
7834 *
7835 * If we do print a message saying that we're
7836 * attempting some kind of authentication, it's OK
7837 * to print a followup message saying it failed -
7838 * but the message may sometimes be more specific
7839 * than simply 'Access denied'.
7840 *
7841 * Additionally, if we'd just tried password
7842 * authentication, we should break out of this
7843 * whole loop so as to go back to the username
7844 * prompt (iff we're configured to allow
7845 * username change attempts).
7846 */
7847 if (s->type == AUTH_TYPE_NONE) {
7848 /* do nothing */
7849 } else if (s->type == AUTH_TYPE_PUBLICKEY_OFFER_LOUD ||
7850 s->type == AUTH_TYPE_PUBLICKEY_OFFER_QUIET) {
7851 if (s->type == AUTH_TYPE_PUBLICKEY_OFFER_LOUD)
7852 c_write_str(ssh, "Server refused our key\r\n");
7853 logevent("Server refused our key");
7854 } else if (s->type == AUTH_TYPE_PUBLICKEY) {
7855 /* This _shouldn't_ happen except by a
7856 * protocol bug causing client and server to
7857 * disagree on what is a correct signature. */
7858 c_write_str(ssh, "Server refused public-key signature"
7859 " despite accepting key!\r\n");
7860 logevent("Server refused public-key signature"
7861 " despite accepting key!");
7862 } else if (s->type==AUTH_TYPE_KEYBOARD_INTERACTIVE_QUIET) {
7863 /* quiet, so no c_write */
7864 logevent("Server refused keyboard-interactive authentication");
7865 } else if (s->type==AUTH_TYPE_GSSAPI) {
7866 /* always quiet, so no c_write */
7867 /* also, the code down in the GSSAPI block has
7868 * already logged this in the Event Log */
7869 } else if (s->type == AUTH_TYPE_KEYBOARD_INTERACTIVE) {
7870 logevent("Keyboard-interactive authentication failed");
7871 c_write_str(ssh, "Access denied\r\n");
7872 } else {
7873 assert(s->type == AUTH_TYPE_PASSWORD);
7874 logevent("Password authentication failed");
7875 c_write_str(ssh, "Access denied\r\n");
7876
7877 if (conf_get_int(ssh->conf, CONF_change_username)) {
7878 /* XXX perhaps we should allow
7879 * keyboard-interactive to do this too? */
7880 s->we_are_in = FALSE;
7881 break;
7882 }
7883 }
7884 } else {
7885 c_write_str(ssh, "Further authentication required\r\n");
7886 logevent("Further authentication required");
7887 }
7888
7889 s->can_pubkey =
7890 in_commasep_string("publickey", methods, methlen);
7891 s->can_passwd =
7892 in_commasep_string("password", methods, methlen);
7893 s->can_keyb_inter = conf_get_int(ssh->conf, CONF_try_ki_auth) &&
7894 in_commasep_string("keyboard-interactive", methods, methlen);
7895 #ifndef NO_GSSAPI
7896 if (!ssh->gsslibs)
7897 ssh->gsslibs = ssh_gss_setup(ssh->conf);
7898 s->can_gssapi = conf_get_int(ssh->conf, CONF_try_gssapi_auth) &&
7899 in_commasep_string("gssapi-with-mic", methods, methlen) &&
7900 ssh->gsslibs->nlibraries > 0;
7901 #endif
7902 }
7903
7904 ssh->pkt_actx = SSH2_PKTCTX_NOAUTH;
7905
7906 if (s->can_pubkey && !s->done_agent && s->nkeys) {
7907
7908 /*
7909 * Attempt public-key authentication using a key from Pageant.
7910 */
7911
7912 ssh->pkt_actx = SSH2_PKTCTX_PUBLICKEY;
7913
7914 logeventf(ssh, "Trying Pageant key #%d", s->keyi);
7915
7916 /* Unpack key from agent response */
7917 s->pklen = GET_32BIT(s->agentp);
7918 s->agentp += 4;
7919 s->pkblob = (char *)s->agentp;
7920 s->agentp += s->pklen;
7921 s->alglen = GET_32BIT(s->pkblob);
7922 s->alg = s->pkblob + 4;
7923 s->commentlen = GET_32BIT(s->agentp);
7924 s->agentp += 4;
7925 s->commentp = (char *)s->agentp;
7926 s->agentp += s->commentlen;
7927 /* s->agentp now points at next key, if any */
7928
7929 /* See if server will accept it */
7930 s->pktout = ssh2_pkt_init(SSH2_MSG_USERAUTH_REQUEST);
7931 ssh2_pkt_addstring(s->pktout, ssh->username);
7932 ssh2_pkt_addstring(s->pktout, "ssh-connection");
7933 /* service requested */
7934 ssh2_pkt_addstring(s->pktout, "publickey");
7935 /* method */
7936 ssh2_pkt_addbool(s->pktout, FALSE); /* no signature included */
7937 ssh2_pkt_addstring_start(s->pktout);
7938 ssh2_pkt_addstring_data(s->pktout, s->alg, s->alglen);
7939 ssh2_pkt_addstring_start(s->pktout);
7940 ssh2_pkt_addstring_data(s->pktout, s->pkblob, s->pklen);
7941 ssh2_pkt_send(ssh, s->pktout);
7942 s->type = AUTH_TYPE_PUBLICKEY_OFFER_QUIET;
7943
7944 crWaitUntilV(pktin);
7945 if (pktin->type != SSH2_MSG_USERAUTH_PK_OK) {
7946
7947 /* Offer of key refused. */
7948 s->gotit = TRUE;
7949
7950 } else {
7951
7952 void *vret;
7953
7954 if (flags & FLAG_VERBOSE) {
7955 c_write_str(ssh, "Authenticating with "
7956 "public key \"");
7957 c_write(ssh, s->commentp, s->commentlen);
7958 c_write_str(ssh, "\" from agent\r\n");
7959 }
7960
7961 /*
7962 * Server is willing to accept the key.
7963 * Construct a SIGN_REQUEST.
7964 */
7965 s->pktout = ssh2_pkt_init(SSH2_MSG_USERAUTH_REQUEST);
7966 ssh2_pkt_addstring(s->pktout, ssh->username);
7967 ssh2_pkt_addstring(s->pktout, "ssh-connection");
7968 /* service requested */
7969 ssh2_pkt_addstring(s->pktout, "publickey");
7970 /* method */
7971 ssh2_pkt_addbool(s->pktout, TRUE); /* signature included */
7972 ssh2_pkt_addstring_start(s->pktout);
7973 ssh2_pkt_addstring_data(s->pktout, s->alg, s->alglen);
7974 ssh2_pkt_addstring_start(s->pktout);
7975 ssh2_pkt_addstring_data(s->pktout, s->pkblob, s->pklen);
7976
7977 /* Ask agent for signature. */
7978 s->siglen = s->pktout->length - 5 + 4 +
7979 ssh->v2_session_id_len;
7980 if (ssh->remote_bugs & BUG_SSH2_PK_SESSIONID)
7981 s->siglen -= 4;
7982 s->len = 1; /* message type */
7983 s->len += 4 + s->pklen; /* key blob */
7984 s->len += 4 + s->siglen; /* data to sign */
7985 s->len += 4; /* flags */
7986 s->agentreq = snewn(4 + s->len, char);
7987 PUT_32BIT(s->agentreq, s->len);
7988 s->q = s->agentreq + 4;
7989 *s->q++ = SSH2_AGENTC_SIGN_REQUEST;
7990 PUT_32BIT(s->q, s->pklen);
7991 s->q += 4;
7992 memcpy(s->q, s->pkblob, s->pklen);
7993 s->q += s->pklen;
7994 PUT_32BIT(s->q, s->siglen);
7995 s->q += 4;
7996 /* Now the data to be signed... */
7997 if (!(ssh->remote_bugs & BUG_SSH2_PK_SESSIONID)) {
7998 PUT_32BIT(s->q, ssh->v2_session_id_len);
7999 s->q += 4;
8000 }
8001 memcpy(s->q, ssh->v2_session_id,
8002 ssh->v2_session_id_len);
8003 s->q += ssh->v2_session_id_len;
8004 memcpy(s->q, s->pktout->data + 5,
8005 s->pktout->length - 5);
8006 s->q += s->pktout->length - 5;
8007 /* And finally the (zero) flags word. */
8008 PUT_32BIT(s->q, 0);
8009 if (!agent_query(s->agentreq, s->len + 4,
8010 &vret, &s->retlen,
8011 ssh_agent_callback, ssh)) {
8012 do {
8013 crReturnV;
8014 if (pktin) {
8015 bombout(("Unexpected data from server"
8016 " while waiting for agent"
8017 " response"));
8018 crStopV;
8019 }
8020 } while (pktin || inlen > 0);
8021 vret = ssh->agent_response;
8022 s->retlen = ssh->agent_response_len;
8023 }
8024 s->ret = vret;
8025 sfree(s->agentreq);
8026 if (s->ret) {
8027 if (s->ret[4] == SSH2_AGENT_SIGN_RESPONSE) {
8028 logevent("Sending Pageant's response");
8029 ssh2_add_sigblob(ssh, s->pktout,
8030 s->pkblob, s->pklen,
8031 s->ret + 9,
8032 GET_32BIT(s->ret + 5));
8033 ssh2_pkt_send(ssh, s->pktout);
8034 s->type = AUTH_TYPE_PUBLICKEY;
8035 } else {
8036 /* FIXME: less drastic response */
8037 bombout(("Pageant failed to answer challenge"));
8038 crStopV;
8039 }
8040 }
8041 }
8042
8043 /* Do we have any keys left to try? */
8044 if (s->pkblob_in_agent) {
8045 s->done_agent = TRUE;
8046 s->tried_pubkey_config = TRUE;
8047 } else {
8048 s->keyi++;
8049 if (s->keyi >= s->nkeys)
8050 s->done_agent = TRUE;
8051 }
8052
8053 } else if (s->can_pubkey && s->publickey_blob &&
8054 !s->tried_pubkey_config) {
8055
8056 struct ssh2_userkey *key; /* not live over crReturn */
8057 char *passphrase; /* not live over crReturn */
8058
8059 ssh->pkt_actx = SSH2_PKTCTX_PUBLICKEY;
8060
8061 s->tried_pubkey_config = TRUE;
8062
8063 /*
8064 * Try the public key supplied in the configuration.
8065 *
8066 * First, offer the public blob to see if the server is
8067 * willing to accept it.
8068 */
8069 s->pktout = ssh2_pkt_init(SSH2_MSG_USERAUTH_REQUEST);
8070 ssh2_pkt_addstring(s->pktout, ssh->username);
8071 ssh2_pkt_addstring(s->pktout, "ssh-connection");
8072 /* service requested */
8073 ssh2_pkt_addstring(s->pktout, "publickey"); /* method */
8074 ssh2_pkt_addbool(s->pktout, FALSE);
8075 /* no signature included */
8076 ssh2_pkt_addstring(s->pktout, s->publickey_algorithm);
8077 ssh2_pkt_addstring_start(s->pktout);
8078 ssh2_pkt_addstring_data(s->pktout,
8079 (char *)s->publickey_blob,
8080 s->publickey_bloblen);
8081 ssh2_pkt_send(ssh, s->pktout);
8082 logevent("Offered public key");
8083
8084 crWaitUntilV(pktin);
8085 if (pktin->type != SSH2_MSG_USERAUTH_PK_OK) {
8086 /* Key refused. Give up. */
8087 s->gotit = TRUE; /* reconsider message next loop */
8088 s->type = AUTH_TYPE_PUBLICKEY_OFFER_LOUD;
8089 continue; /* process this new message */
8090 }
8091 logevent("Offer of public key accepted");
8092
8093 /*
8094 * Actually attempt a serious authentication using
8095 * the key.
8096 */
8097 if (flags & FLAG_VERBOSE) {
8098 c_write_str(ssh, "Authenticating with public key \"");
8099 c_write_str(ssh, s->publickey_comment);
8100 c_write_str(ssh, "\"\r\n");
8101 }
8102 key = NULL;
8103 while (!key) {
8104 const char *error; /* not live over crReturn */
8105 if (s->publickey_encrypted) {
8106 /*
8107 * Get a passphrase from the user.
8108 */
8109 int ret; /* need not be kept over crReturn */
8110 s->cur_prompt = new_prompts(ssh->frontend);
8111 s->cur_prompt->to_server = FALSE;
8112 s->cur_prompt->name = dupstr("SSH key passphrase");
8113 add_prompt(s->cur_prompt,
8114 dupprintf("Passphrase for key \"%.100s\": ",
8115 s->publickey_comment),
8116 FALSE);
8117 ret = get_userpass_input(s->cur_prompt, NULL, 0);
8118 while (ret < 0) {
8119 ssh->send_ok = 1;
8120 crWaitUntilV(!pktin);
8121 ret = get_userpass_input(s->cur_prompt,
8122 in, inlen);
8123 ssh->send_ok = 0;
8124 }
8125 if (!ret) {
8126 /* Failed to get a passphrase. Terminate. */
8127 free_prompts(s->cur_prompt);
8128 ssh_disconnect(ssh, NULL,
8129 "Unable to authenticate",
8130 SSH2_DISCONNECT_AUTH_CANCELLED_BY_USER,
8131 TRUE);
8132 crStopV;
8133 }
8134 passphrase =
8135 dupstr(s->cur_prompt->prompts[0]->result);
8136 free_prompts(s->cur_prompt);
8137 } else {
8138 passphrase = NULL; /* no passphrase needed */
8139 }
8140
8141 /*
8142 * Try decrypting the key.
8143 */
8144 s->keyfile = conf_get_filename(ssh->conf, CONF_keyfile);
8145 key = ssh2_load_userkey(s->keyfile, passphrase, &error);
8146 if (passphrase) {
8147 /* burn the evidence */
8148 memset(passphrase, 0, strlen(passphrase));
8149 sfree(passphrase);
8150 }
8151 if (key == SSH2_WRONG_PASSPHRASE || key == NULL) {
8152 if (passphrase &&
8153 (key == SSH2_WRONG_PASSPHRASE)) {
8154 c_write_str(ssh, "Wrong passphrase\r\n");
8155 key = NULL;
8156 /* and loop again */
8157 } else {
8158 c_write_str(ssh, "Unable to load private key (");
8159 c_write_str(ssh, error);
8160 c_write_str(ssh, ")\r\n");
8161 key = NULL;
8162 break; /* try something else */
8163 }
8164 }
8165 }
8166
8167 if (key) {
8168 unsigned char *pkblob, *sigblob, *sigdata;
8169 int pkblob_len, sigblob_len, sigdata_len;
8170 int p;
8171
8172 /*
8173 * We have loaded the private key and the server
8174 * has announced that it's willing to accept it.
8175 * Hallelujah. Generate a signature and send it.
8176 */
8177 s->pktout = ssh2_pkt_init(SSH2_MSG_USERAUTH_REQUEST);
8178 ssh2_pkt_addstring(s->pktout, ssh->username);
8179 ssh2_pkt_addstring(s->pktout, "ssh-connection");
8180 /* service requested */
8181 ssh2_pkt_addstring(s->pktout, "publickey");
8182 /* method */
8183 ssh2_pkt_addbool(s->pktout, TRUE);
8184 /* signature follows */
8185 ssh2_pkt_addstring(s->pktout, key->alg->name);
8186 pkblob = key->alg->public_blob(key->data,
8187 &pkblob_len);
8188 ssh2_pkt_addstring_start(s->pktout);
8189 ssh2_pkt_addstring_data(s->pktout, (char *)pkblob,
8190 pkblob_len);
8191
8192 /*
8193 * The data to be signed is:
8194 *
8195 * string session-id
8196 *
8197 * followed by everything so far placed in the
8198 * outgoing packet.
8199 */
8200 sigdata_len = s->pktout->length - 5 + 4 +
8201 ssh->v2_session_id_len;
8202 if (ssh->remote_bugs & BUG_SSH2_PK_SESSIONID)
8203 sigdata_len -= 4;
8204 sigdata = snewn(sigdata_len, unsigned char);
8205 p = 0;
8206 if (!(ssh->remote_bugs & BUG_SSH2_PK_SESSIONID)) {
8207 PUT_32BIT(sigdata+p, ssh->v2_session_id_len);
8208 p += 4;
8209 }
8210 memcpy(sigdata+p, ssh->v2_session_id,
8211 ssh->v2_session_id_len);
8212 p += ssh->v2_session_id_len;
8213 memcpy(sigdata+p, s->pktout->data + 5,
8214 s->pktout->length - 5);
8215 p += s->pktout->length - 5;
8216 assert(p == sigdata_len);
8217 sigblob = key->alg->sign(key->data, (char *)sigdata,
8218 sigdata_len, &sigblob_len);
8219 ssh2_add_sigblob(ssh, s->pktout, pkblob, pkblob_len,
8220 sigblob, sigblob_len);
8221 sfree(pkblob);
8222 sfree(sigblob);
8223 sfree(sigdata);
8224
8225 ssh2_pkt_send(ssh, s->pktout);
8226 logevent("Sent public key signature");
8227 s->type = AUTH_TYPE_PUBLICKEY;
8228 key->alg->freekey(key->data);
8229 }
8230
8231 #ifndef NO_GSSAPI
8232 } else if (s->can_gssapi && !s->tried_gssapi) {
8233
8234 /* GSSAPI Authentication */
8235
8236 int micoffset, len;
8237 char *data;
8238 Ssh_gss_buf mic;
8239 s->type = AUTH_TYPE_GSSAPI;
8240 s->tried_gssapi = TRUE;
8241 s->gotit = TRUE;
8242 ssh->pkt_actx = SSH2_PKTCTX_GSSAPI;
8243
8244 /*
8245 * Pick the highest GSS library on the preference
8246 * list.
8247 */
8248 {
8249 int i, j;
8250 s->gsslib = NULL;
8251 for (i = 0; i < ngsslibs; i++) {
8252 int want_id = conf_get_int_int(ssh->conf,
8253 CONF_ssh_gsslist, i);
8254 for (j = 0; j < ssh->gsslibs->nlibraries; j++)
8255 if (ssh->gsslibs->libraries[j].id == want_id) {
8256 s->gsslib = &ssh->gsslibs->libraries[j];
8257 goto got_gsslib; /* double break */
8258 }
8259 }
8260 got_gsslib:
8261 /*
8262 * We always expect to have found something in
8263 * the above loop: we only came here if there
8264 * was at least one viable GSS library, and the
8265 * preference list should always mention
8266 * everything and only change the order.
8267 */
8268 assert(s->gsslib);
8269 }
8270
8271 if (s->gsslib->gsslogmsg)
8272 logevent(s->gsslib->gsslogmsg);
8273
8274 /* Sending USERAUTH_REQUEST with "gssapi-with-mic" method */
8275 s->pktout = ssh2_pkt_init(SSH2_MSG_USERAUTH_REQUEST);
8276 ssh2_pkt_addstring(s->pktout, ssh->username);
8277 ssh2_pkt_addstring(s->pktout, "ssh-connection");
8278 ssh2_pkt_addstring(s->pktout, "gssapi-with-mic");
8279 logevent("Attempting GSSAPI authentication");
8280
8281 /* add mechanism info */
8282 s->gsslib->indicate_mech(s->gsslib, &s->gss_buf);
8283
8284 /* number of GSSAPI mechanisms */
8285 ssh2_pkt_adduint32(s->pktout,1);
8286
8287 /* length of OID + 2 */
8288 ssh2_pkt_adduint32(s->pktout, s->gss_buf.length + 2);
8289 ssh2_pkt_addbyte(s->pktout, SSH2_GSS_OIDTYPE);
8290
8291 /* length of OID */
8292 ssh2_pkt_addbyte(s->pktout, (unsigned char) s->gss_buf.length);
8293
8294 ssh_pkt_adddata(s->pktout, s->gss_buf.value,
8295 s->gss_buf.length);
8296 ssh2_pkt_send(ssh, s->pktout);
8297 crWaitUntilV(pktin);
8298 if (pktin->type != SSH2_MSG_USERAUTH_GSSAPI_RESPONSE) {
8299 logevent("GSSAPI authentication request refused");
8300 continue;
8301 }
8302
8303 /* check returned packet ... */
8304
8305 ssh_pkt_getstring(pktin, &data, &len);
8306 s->gss_rcvtok.value = data;
8307 s->gss_rcvtok.length = len;
8308 if (s->gss_rcvtok.length != s->gss_buf.length + 2 ||
8309 ((char *)s->gss_rcvtok.value)[0] != SSH2_GSS_OIDTYPE ||
8310 ((char *)s->gss_rcvtok.value)[1] != s->gss_buf.length ||
8311 memcmp((char *)s->gss_rcvtok.value + 2,
8312 s->gss_buf.value,s->gss_buf.length) ) {
8313 logevent("GSSAPI authentication - wrong response from server");
8314 continue;
8315 }
8316
8317 /* now start running */
8318 s->gss_stat = s->gsslib->import_name(s->gsslib,
8319 ssh->fullhostname,
8320 &s->gss_srv_name);
8321 if (s->gss_stat != SSH_GSS_OK) {
8322 if (s->gss_stat == SSH_GSS_BAD_HOST_NAME)
8323 logevent("GSSAPI import name failed - Bad service name");
8324 else
8325 logevent("GSSAPI import name failed");
8326 continue;
8327 }
8328
8329 /* fetch TGT into GSS engine */
8330 s->gss_stat = s->gsslib->acquire_cred(s->gsslib, &s->gss_ctx);
8331
8332 if (s->gss_stat != SSH_GSS_OK) {
8333 logevent("GSSAPI authentication failed to get credentials");
8334 s->gsslib->release_name(s->gsslib, &s->gss_srv_name);
8335 continue;
8336 }
8337
8338 /* initial tokens are empty */
8339 SSH_GSS_CLEAR_BUF(&s->gss_rcvtok);
8340 SSH_GSS_CLEAR_BUF(&s->gss_sndtok);
8341
8342 /* now enter the loop */
8343 do {
8344 s->gss_stat = s->gsslib->init_sec_context
8345 (s->gsslib,
8346 &s->gss_ctx,
8347 s->gss_srv_name,
8348 conf_get_int(ssh->conf, CONF_gssapifwd),
8349 &s->gss_rcvtok,
8350 &s->gss_sndtok);
8351
8352 if (s->gss_stat!=SSH_GSS_S_COMPLETE &&
8353 s->gss_stat!=SSH_GSS_S_CONTINUE_NEEDED) {
8354 logevent("GSSAPI authentication initialisation failed");
8355
8356 if (s->gsslib->display_status(s->gsslib, s->gss_ctx,
8357 &s->gss_buf) == SSH_GSS_OK) {
8358 logevent(s->gss_buf.value);
8359 sfree(s->gss_buf.value);
8360 }
8361
8362 break;
8363 }
8364 logevent("GSSAPI authentication initialised");
8365
8366 /* Client and server now exchange tokens until GSSAPI
8367 * no longer says CONTINUE_NEEDED */
8368
8369 if (s->gss_sndtok.length != 0) {
8370 s->pktout = ssh2_pkt_init(SSH2_MSG_USERAUTH_GSSAPI_TOKEN);
8371 ssh_pkt_addstring_start(s->pktout);
8372 ssh_pkt_addstring_data(s->pktout,s->gss_sndtok.value,s->gss_sndtok.length);
8373 ssh2_pkt_send(ssh, s->pktout);
8374 s->gsslib->free_tok(s->gsslib, &s->gss_sndtok);
8375 }
8376
8377 if (s->gss_stat == SSH_GSS_S_CONTINUE_NEEDED) {
8378 crWaitUntilV(pktin);
8379 if (pktin->type != SSH2_MSG_USERAUTH_GSSAPI_TOKEN) {
8380 logevent("GSSAPI authentication - bad server response");
8381 s->gss_stat = SSH_GSS_FAILURE;
8382 break;
8383 }
8384 ssh_pkt_getstring(pktin, &data, &len);
8385 s->gss_rcvtok.value = data;
8386 s->gss_rcvtok.length = len;
8387 }
8388 } while (s-> gss_stat == SSH_GSS_S_CONTINUE_NEEDED);
8389
8390 if (s->gss_stat != SSH_GSS_OK) {
8391 s->gsslib->release_name(s->gsslib, &s->gss_srv_name);
8392 s->gsslib->release_cred(s->gsslib, &s->gss_ctx);
8393 continue;
8394 }
8395 logevent("GSSAPI authentication loop finished OK");
8396
8397 /* Now send the MIC */
8398
8399 s->pktout = ssh2_pkt_init(0);
8400 micoffset = s->pktout->length;
8401 ssh_pkt_addstring_start(s->pktout);
8402 ssh_pkt_addstring_data(s->pktout, (char *)ssh->v2_session_id, ssh->v2_session_id_len);
8403 ssh_pkt_addbyte(s->pktout, SSH2_MSG_USERAUTH_REQUEST);
8404 ssh_pkt_addstring(s->pktout, ssh->username);
8405 ssh_pkt_addstring(s->pktout, "ssh-connection");
8406 ssh_pkt_addstring(s->pktout, "gssapi-with-mic");
8407
8408 s->gss_buf.value = (char *)s->pktout->data + micoffset;
8409 s->gss_buf.length = s->pktout->length - micoffset;
8410
8411 s->gsslib->get_mic(s->gsslib, s->gss_ctx, &s->gss_buf, &mic);
8412 s->pktout = ssh2_pkt_init(SSH2_MSG_USERAUTH_GSSAPI_MIC);
8413 ssh_pkt_addstring_start(s->pktout);
8414 ssh_pkt_addstring_data(s->pktout, mic.value, mic.length);
8415 ssh2_pkt_send(ssh, s->pktout);
8416 s->gsslib->free_mic(s->gsslib, &mic);
8417
8418 s->gotit = FALSE;
8419
8420 s->gsslib->release_name(s->gsslib, &s->gss_srv_name);
8421 s->gsslib->release_cred(s->gsslib, &s->gss_ctx);
8422 continue;
8423 #endif
8424 } else if (s->can_keyb_inter && !s->kbd_inter_refused) {
8425
8426 /*
8427 * Keyboard-interactive authentication.
8428 */
8429
8430 s->type = AUTH_TYPE_KEYBOARD_INTERACTIVE;
8431
8432 ssh->pkt_actx = SSH2_PKTCTX_KBDINTER;
8433
8434 s->pktout = ssh2_pkt_init(SSH2_MSG_USERAUTH_REQUEST);
8435 ssh2_pkt_addstring(s->pktout, ssh->username);
8436 ssh2_pkt_addstring(s->pktout, "ssh-connection");
8437 /* service requested */
8438 ssh2_pkt_addstring(s->pktout, "keyboard-interactive");
8439 /* method */
8440 ssh2_pkt_addstring(s->pktout, ""); /* lang */
8441 ssh2_pkt_addstring(s->pktout, ""); /* submethods */
8442 ssh2_pkt_send(ssh, s->pktout);
8443
8444 logevent("Attempting keyboard-interactive authentication");
8445
8446 crWaitUntilV(pktin);
8447 if (pktin->type != SSH2_MSG_USERAUTH_INFO_REQUEST) {
8448 /* Server is not willing to do keyboard-interactive
8449 * at all (or, bizarrely but legally, accepts the
8450 * user without actually issuing any prompts).
8451 * Give up on it entirely. */
8452 s->gotit = TRUE;
8453 s->type = AUTH_TYPE_KEYBOARD_INTERACTIVE_QUIET;
8454 s->kbd_inter_refused = TRUE; /* don't try it again */
8455 continue;
8456 }
8457
8458 /*
8459 * Loop while the server continues to send INFO_REQUESTs.
8460 */
8461 while (pktin->type == SSH2_MSG_USERAUTH_INFO_REQUEST) {
8462
8463 char *name, *inst, *lang;
8464 int name_len, inst_len, lang_len;
8465 int i;
8466
8467 /*
8468 * We've got a fresh USERAUTH_INFO_REQUEST.
8469 * Get the preamble and start building a prompt.
8470 */
8471 ssh_pkt_getstring(pktin, &name, &name_len);
8472 ssh_pkt_getstring(pktin, &inst, &inst_len);
8473 ssh_pkt_getstring(pktin, &lang, &lang_len);
8474 s->cur_prompt = new_prompts(ssh->frontend);
8475 s->cur_prompt->to_server = TRUE;
8476
8477 /*
8478 * Get any prompt(s) from the packet.
8479 */
8480 s->num_prompts = ssh_pkt_getuint32(pktin);
8481 for (i = 0; i < s->num_prompts; i++) {
8482 char *prompt;
8483 int prompt_len;
8484 int echo;
8485 static char noprompt[] =
8486 "<server failed to send prompt>: ";
8487
8488 ssh_pkt_getstring(pktin, &prompt, &prompt_len);
8489 echo = ssh2_pkt_getbool(pktin);
8490 if (!prompt_len) {
8491 prompt = noprompt;
8492 prompt_len = lenof(noprompt)-1;
8493 }
8494 add_prompt(s->cur_prompt,
8495 dupprintf("%.*s", prompt_len, prompt),
8496 echo);
8497 }
8498
8499 if (name_len) {
8500 /* FIXME: better prefix to distinguish from
8501 * local prompts? */
8502 s->cur_prompt->name =
8503 dupprintf("SSH server: %.*s", name_len, name);
8504 s->cur_prompt->name_reqd = TRUE;
8505 } else {
8506 s->cur_prompt->name =
8507 dupstr("SSH server authentication");
8508 s->cur_prompt->name_reqd = FALSE;
8509 }
8510 /* We add a prefix to try to make it clear that a prompt
8511 * has come from the server.
8512 * FIXME: ugly to print "Using..." in prompt _every_
8513 * time round. Can this be done more subtly? */
8514 /* Special case: for reasons best known to themselves,
8515 * some servers send k-i requests with no prompts and
8516 * nothing to display. Keep quiet in this case. */
8517 if (s->num_prompts || name_len || inst_len) {
8518 s->cur_prompt->instruction =
8519 dupprintf("Using keyboard-interactive authentication.%s%.*s",
8520 inst_len ? "\n" : "", inst_len, inst);
8521 s->cur_prompt->instr_reqd = TRUE;
8522 } else {
8523 s->cur_prompt->instr_reqd = FALSE;
8524 }
8525
8526 /*
8527 * Display any instructions, and get the user's
8528 * response(s).
8529 */
8530 {
8531 int ret; /* not live over crReturn */
8532 ret = get_userpass_input(s->cur_prompt, NULL, 0);
8533 while (ret < 0) {
8534 ssh->send_ok = 1;
8535 crWaitUntilV(!pktin);
8536 ret = get_userpass_input(s->cur_prompt, in, inlen);
8537 ssh->send_ok = 0;
8538 }
8539 if (!ret) {
8540 /*
8541 * Failed to get responses. Terminate.
8542 */
8543 free_prompts(s->cur_prompt);
8544 ssh_disconnect(ssh, NULL, "Unable to authenticate",
8545 SSH2_DISCONNECT_AUTH_CANCELLED_BY_USER,
8546 TRUE);
8547 crStopV;
8548 }
8549 }
8550
8551 /*
8552 * Send the response(s) to the server.
8553 */
8554 s->pktout = ssh2_pkt_init(SSH2_MSG_USERAUTH_INFO_RESPONSE);
8555 ssh2_pkt_adduint32(s->pktout, s->num_prompts);
8556 for (i=0; i < s->num_prompts; i++) {
8557 dont_log_password(ssh, s->pktout, PKTLOG_BLANK);
8558 ssh2_pkt_addstring(s->pktout,
8559 s->cur_prompt->prompts[i]->result);
8560 end_log_omission(ssh, s->pktout);
8561 }
8562 ssh2_pkt_send_with_padding(ssh, s->pktout, 256);
8563
8564 /*
8565 * Free the prompts structure from this iteration.
8566 * If there's another, a new one will be allocated
8567 * when we return to the top of this while loop.
8568 */
8569 free_prompts(s->cur_prompt);
8570
8571 /*
8572 * Get the next packet in case it's another
8573 * INFO_REQUEST.
8574 */
8575 crWaitUntilV(pktin);
8576
8577 }
8578
8579 /*
8580 * We should have SUCCESS or FAILURE now.
8581 */
8582 s->gotit = TRUE;
8583
8584 } else if (s->can_passwd) {
8585
8586 /*
8587 * Plain old password authentication.
8588 */
8589 int ret; /* not live over crReturn */
8590 int changereq_first_time; /* not live over crReturn */
8591
8592 ssh->pkt_actx = SSH2_PKTCTX_PASSWORD;
8593
8594 s->cur_prompt = new_prompts(ssh->frontend);
8595 s->cur_prompt->to_server = TRUE;
8596 s->cur_prompt->name = dupstr("SSH password");
8597 add_prompt(s->cur_prompt, dupprintf("%s@%s's password: ",
8598 ssh->username,
8599 ssh->savedhost),
8600 FALSE);
8601
8602 ret = get_userpass_input(s->cur_prompt, NULL, 0);
8603 while (ret < 0) {
8604 ssh->send_ok = 1;
8605 crWaitUntilV(!pktin);
8606 ret = get_userpass_input(s->cur_prompt, in, inlen);
8607 ssh->send_ok = 0;
8608 }
8609 if (!ret) {
8610 /*
8611 * Failed to get responses. Terminate.
8612 */
8613 free_prompts(s->cur_prompt);
8614 ssh_disconnect(ssh, NULL, "Unable to authenticate",
8615 SSH2_DISCONNECT_AUTH_CANCELLED_BY_USER,
8616 TRUE);
8617 crStopV;
8618 }
8619 /*
8620 * Squirrel away the password. (We may need it later if
8621 * asked to change it.)
8622 */
8623 s->password = dupstr(s->cur_prompt->prompts[0]->result);
8624 free_prompts(s->cur_prompt);
8625
8626 /*
8627 * Send the password packet.
8628 *
8629 * We pad out the password packet to 256 bytes to make
8630 * it harder for an attacker to find the length of the
8631 * user's password.
8632 *
8633 * Anyone using a password longer than 256 bytes
8634 * probably doesn't have much to worry about from
8635 * people who find out how long their password is!
8636 */
8637 s->pktout = ssh2_pkt_init(SSH2_MSG_USERAUTH_REQUEST);
8638 ssh2_pkt_addstring(s->pktout, ssh->username);
8639 ssh2_pkt_addstring(s->pktout, "ssh-connection");
8640 /* service requested */
8641 ssh2_pkt_addstring(s->pktout, "password");
8642 ssh2_pkt_addbool(s->pktout, FALSE);
8643 dont_log_password(ssh, s->pktout, PKTLOG_BLANK);
8644 ssh2_pkt_addstring(s->pktout, s->password);
8645 end_log_omission(ssh, s->pktout);
8646 ssh2_pkt_send_with_padding(ssh, s->pktout, 256);
8647 logevent("Sent password");
8648 s->type = AUTH_TYPE_PASSWORD;
8649
8650 /*
8651 * Wait for next packet, in case it's a password change
8652 * request.
8653 */
8654 crWaitUntilV(pktin);
8655 changereq_first_time = TRUE;
8656
8657 while (pktin->type == SSH2_MSG_USERAUTH_PASSWD_CHANGEREQ) {
8658
8659 /*
8660 * We're being asked for a new password
8661 * (perhaps not for the first time).
8662 * Loop until the server accepts it.
8663 */
8664
8665 int got_new = FALSE; /* not live over crReturn */
8666 char *prompt; /* not live over crReturn */
8667 int prompt_len; /* not live over crReturn */
8668
8669 {
8670 char *msg;
8671 if (changereq_first_time)
8672 msg = "Server requested password change";
8673 else
8674 msg = "Server rejected new password";
8675 logevent(msg);
8676 c_write_str(ssh, msg);
8677 c_write_str(ssh, "\r\n");
8678 }
8679
8680 ssh_pkt_getstring(pktin, &prompt, &prompt_len);
8681
8682 s->cur_prompt = new_prompts(ssh->frontend);
8683 s->cur_prompt->to_server = TRUE;
8684 s->cur_prompt->name = dupstr("New SSH password");
8685 s->cur_prompt->instruction =
8686 dupprintf("%.*s", prompt_len, prompt);
8687 s->cur_prompt->instr_reqd = TRUE;
8688 /*
8689 * There's no explicit requirement in the protocol
8690 * for the "old" passwords in the original and
8691 * password-change messages to be the same, and
8692 * apparently some Cisco kit supports password change
8693 * by the user entering a blank password originally
8694 * and the real password subsequently, so,
8695 * reluctantly, we prompt for the old password again.
8696 *
8697 * (On the other hand, some servers don't even bother
8698 * to check this field.)
8699 */
8700 add_prompt(s->cur_prompt,
8701 dupstr("Current password (blank for previously entered password): "),
8702 FALSE);
8703 add_prompt(s->cur_prompt, dupstr("Enter new password: "),
8704 FALSE);
8705 add_prompt(s->cur_prompt, dupstr("Confirm new password: "),
8706 FALSE);
8707
8708 /*
8709 * Loop until the user manages to enter the same
8710 * password twice.
8711 */
8712 while (!got_new) {
8713
8714 ret = get_userpass_input(s->cur_prompt, NULL, 0);
8715 while (ret < 0) {
8716 ssh->send_ok = 1;
8717 crWaitUntilV(!pktin);
8718 ret = get_userpass_input(s->cur_prompt, in, inlen);
8719 ssh->send_ok = 0;
8720 }
8721 if (!ret) {
8722 /*
8723 * Failed to get responses. Terminate.
8724 */
8725 /* burn the evidence */
8726 free_prompts(s->cur_prompt);
8727 memset(s->password, 0, strlen(s->password));
8728 sfree(s->password);
8729 ssh_disconnect(ssh, NULL, "Unable to authenticate",
8730 SSH2_DISCONNECT_AUTH_CANCELLED_BY_USER,
8731 TRUE);
8732 crStopV;
8733 }
8734
8735 /*
8736 * If the user specified a new original password
8737 * (IYSWIM), overwrite any previously specified
8738 * one.
8739 * (A side effect is that the user doesn't have to
8740 * re-enter it if they louse up the new password.)
8741 */
8742 if (s->cur_prompt->prompts[0]->result[0]) {
8743 memset(s->password, 0, strlen(s->password));
8744 /* burn the evidence */
8745 sfree(s->password);
8746 s->password =
8747 dupstr(s->cur_prompt->prompts[0]->result);
8748 }
8749
8750 /*
8751 * Check the two new passwords match.
8752 */
8753 got_new = (strcmp(s->cur_prompt->prompts[1]->result,
8754 s->cur_prompt->prompts[2]->result)
8755 == 0);
8756 if (!got_new)
8757 /* They don't. Silly user. */
8758 c_write_str(ssh, "Passwords do not match\r\n");
8759
8760 }
8761
8762 /*
8763 * Send the new password (along with the old one).
8764 * (see above for padding rationale)
8765 */
8766 s->pktout = ssh2_pkt_init(SSH2_MSG_USERAUTH_REQUEST);
8767 ssh2_pkt_addstring(s->pktout, ssh->username);
8768 ssh2_pkt_addstring(s->pktout, "ssh-connection");
8769 /* service requested */
8770 ssh2_pkt_addstring(s->pktout, "password");
8771 ssh2_pkt_addbool(s->pktout, TRUE);
8772 dont_log_password(ssh, s->pktout, PKTLOG_BLANK);
8773 ssh2_pkt_addstring(s->pktout, s->password);
8774 ssh2_pkt_addstring(s->pktout,
8775 s->cur_prompt->prompts[1]->result);
8776 free_prompts(s->cur_prompt);
8777 end_log_omission(ssh, s->pktout);
8778 ssh2_pkt_send_with_padding(ssh, s->pktout, 256);
8779 logevent("Sent new password");
8780
8781 /*
8782 * Now see what the server has to say about it.
8783 * (If it's CHANGEREQ again, it's not happy with the
8784 * new password.)
8785 */
8786 crWaitUntilV(pktin);
8787 changereq_first_time = FALSE;
8788
8789 }
8790
8791 /*
8792 * We need to reexamine the current pktin at the top
8793 * of the loop. Either:
8794 * - we weren't asked to change password at all, in
8795 * which case it's a SUCCESS or FAILURE with the
8796 * usual meaning
8797 * - we sent a new password, and the server was
8798 * either OK with it (SUCCESS or FAILURE w/partial
8799 * success) or unhappy with the _old_ password
8800 * (FAILURE w/o partial success)
8801 * In any of these cases, we go back to the top of
8802 * the loop and start again.
8803 */
8804 s->gotit = TRUE;
8805
8806 /*
8807 * We don't need the old password any more, in any
8808 * case. Burn the evidence.
8809 */
8810 memset(s->password, 0, strlen(s->password));
8811 sfree(s->password);
8812
8813 } else {
8814 char *str = dupprintf("No supported authentication methods available"
8815 " (server sent: %.*s)",
8816 methlen, methods);
8817
8818 ssh_disconnect(ssh, str,
8819 "No supported authentication methods available",
8820 SSH2_DISCONNECT_NO_MORE_AUTH_METHODS_AVAILABLE,
8821 FALSE);
8822 sfree(str);
8823
8824 crStopV;
8825
8826 }
8827
8828 }
8829 }
8830 ssh->packet_dispatch[SSH2_MSG_USERAUTH_BANNER] = NULL;
8831
8832 /* Clear up various bits and pieces from authentication. */
8833 if (s->publickey_blob) {
8834 sfree(s->publickey_blob);
8835 sfree(s->publickey_comment);
8836 }
8837 if (s->agent_response)
8838 sfree(s->agent_response);
8839
8840 if (s->userauth_success) {
8841 /*
8842 * We've just received USERAUTH_SUCCESS, and we haven't sent any
8843 * packets since. Signal the transport layer to consider enacting
8844 * delayed compression.
8845 *
8846 * (Relying on we_are_in is not sufficient, as
8847 * draft-miller-secsh-compression-delayed is quite clear that it
8848 * triggers on USERAUTH_SUCCESS specifically, and we_are_in can
8849 * become set for other reasons.)
8850 */
8851 do_ssh2_transport(ssh, "enabling delayed compression", -2, NULL);
8852 }
8853
8854 /*
8855 * Now the connection protocol has started, one way or another.
8856 */
8857
8858 ssh->channels = newtree234(ssh_channelcmp);
8859
8860 /*
8861 * Set up handlers for some connection protocol messages, so we
8862 * don't have to handle them repeatedly in this coroutine.
8863 */
8864 ssh->packet_dispatch[SSH2_MSG_CHANNEL_WINDOW_ADJUST] =
8865 ssh2_msg_channel_window_adjust;
8866 ssh->packet_dispatch[SSH2_MSG_GLOBAL_REQUEST] =
8867 ssh2_msg_global_request;
8868
8869 /*
8870 * Create the main session channel.
8871 */
8872 if (conf_get_int(ssh->conf, CONF_ssh_no_shell)) {
8873 ssh->mainchan = NULL;
8874 } else if (*conf_get_str(ssh->conf, CONF_ssh_nc_host)) {
8875 /*
8876 * Just start a direct-tcpip channel and use it as the main
8877 * channel.
8878 */
8879 ssh->mainchan = snew(struct ssh_channel);
8880 ssh->mainchan->ssh = ssh;
8881 ssh2_channel_init(ssh->mainchan);
8882 logeventf(ssh,
8883 "Opening direct-tcpip channel to %s:%d in place of session",
8884 conf_get_str(ssh->conf, CONF_ssh_nc_host),
8885 conf_get_int(ssh->conf, CONF_ssh_nc_port));
8886 s->pktout = ssh2_pkt_init(SSH2_MSG_CHANNEL_OPEN);
8887 ssh2_pkt_addstring(s->pktout, "direct-tcpip");
8888 ssh2_pkt_adduint32(s->pktout, ssh->mainchan->localid);
8889 ssh2_pkt_adduint32(s->pktout, ssh->mainchan->v.v2.locwindow);/* our window size */
8890 ssh2_pkt_adduint32(s->pktout, OUR_V2_MAXPKT); /* our max pkt size */
8891 ssh2_pkt_addstring(s->pktout, conf_get_str(ssh->conf, CONF_ssh_nc_host));
8892 ssh2_pkt_adduint32(s->pktout, conf_get_int(ssh->conf, CONF_ssh_nc_port));
8893 /*
8894 * There's nothing meaningful to put in the originator
8895 * fields, but some servers insist on syntactically correct
8896 * information.
8897 */
8898 ssh2_pkt_addstring(s->pktout, "0.0.0.0");
8899 ssh2_pkt_adduint32(s->pktout, 0);
8900 ssh2_pkt_send(ssh, s->pktout);
8901
8902 crWaitUntilV(pktin);
8903 if (pktin->type != SSH2_MSG_CHANNEL_OPEN_CONFIRMATION) {
8904 bombout(("Server refused to open a direct-tcpip channel"));
8905 crStopV;
8906 /* FIXME: error data comes back in FAILURE packet */
8907 }
8908 if (ssh_pkt_getuint32(pktin) != ssh->mainchan->localid) {
8909 bombout(("Server's channel confirmation cited wrong channel"));
8910 crStopV;
8911 }
8912 ssh->mainchan->remoteid = ssh_pkt_getuint32(pktin);
8913 ssh->mainchan->halfopen = FALSE;
8914 ssh->mainchan->type = CHAN_MAINSESSION;
8915 ssh->mainchan->v.v2.remwindow = ssh_pkt_getuint32(pktin);
8916 ssh->mainchan->v.v2.remmaxpkt = ssh_pkt_getuint32(pktin);
8917 add234(ssh->channels, ssh->mainchan);
8918 update_specials_menu(ssh->frontend);
8919 logevent("Opened direct-tcpip channel");
8920 ssh->ncmode = TRUE;
8921 } else {
8922 ssh->mainchan = snew(struct ssh_channel);
8923 ssh->mainchan->ssh = ssh;
8924 ssh2_channel_init(ssh->mainchan);
8925 s->pktout = ssh2_pkt_init(SSH2_MSG_CHANNEL_OPEN);
8926 ssh2_pkt_addstring(s->pktout, "session");
8927 ssh2_pkt_adduint32(s->pktout, ssh->mainchan->localid);
8928 ssh2_pkt_adduint32(s->pktout, ssh->mainchan->v.v2.locwindow);/* our window size */
8929 ssh2_pkt_adduint32(s->pktout, OUR_V2_MAXPKT); /* our max pkt size */
8930 ssh2_pkt_send(ssh, s->pktout);
8931 crWaitUntilV(pktin);
8932 if (pktin->type != SSH2_MSG_CHANNEL_OPEN_CONFIRMATION) {
8933 bombout(("Server refused to open a session"));
8934 crStopV;
8935 /* FIXME: error data comes back in FAILURE packet */
8936 }
8937 if (ssh_pkt_getuint32(pktin) != ssh->mainchan->localid) {
8938 bombout(("Server's channel confirmation cited wrong channel"));
8939 crStopV;
8940 }
8941 ssh->mainchan->remoteid = ssh_pkt_getuint32(pktin);
8942 ssh->mainchan->halfopen = FALSE;
8943 ssh->mainchan->type = CHAN_MAINSESSION;
8944 ssh->mainchan->v.v2.remwindow = ssh_pkt_getuint32(pktin);
8945 ssh->mainchan->v.v2.remmaxpkt = ssh_pkt_getuint32(pktin);
8946 add234(ssh->channels, ssh->mainchan);
8947 update_specials_menu(ssh->frontend);
8948 logevent("Opened channel for session");
8949 ssh->ncmode = FALSE;
8950 }
8951
8952 /*
8953 * Now we have a channel, make dispatch table entries for
8954 * general channel-based messages.
8955 */
8956 ssh->packet_dispatch[SSH2_MSG_CHANNEL_DATA] =
8957 ssh->packet_dispatch[SSH2_MSG_CHANNEL_EXTENDED_DATA] =
8958 ssh2_msg_channel_data;
8959 ssh->packet_dispatch[SSH2_MSG_CHANNEL_EOF] = ssh2_msg_channel_eof;
8960 ssh->packet_dispatch[SSH2_MSG_CHANNEL_CLOSE] = ssh2_msg_channel_close;
8961 ssh->packet_dispatch[SSH2_MSG_CHANNEL_OPEN_CONFIRMATION] =
8962 ssh2_msg_channel_open_confirmation;
8963 ssh->packet_dispatch[SSH2_MSG_CHANNEL_OPEN_FAILURE] =
8964 ssh2_msg_channel_open_failure;
8965 ssh->packet_dispatch[SSH2_MSG_CHANNEL_REQUEST] =
8966 ssh2_msg_channel_request;
8967 ssh->packet_dispatch[SSH2_MSG_CHANNEL_OPEN] =
8968 ssh2_msg_channel_open;
8969
8970 if (ssh->mainchan && conf_get_int(ssh->conf, CONF_ssh_simple)) {
8971 /*
8972 * This message indicates to the server that we promise
8973 * not to try to run any other channel in parallel with
8974 * this one, so it's safe for it to advertise a very large
8975 * window and leave the flow control to TCP.
8976 */
8977 s->pktout = ssh2_pkt_init(SSH2_MSG_CHANNEL_REQUEST);
8978 ssh2_pkt_adduint32(s->pktout, ssh->mainchan->remoteid);
8979 ssh2_pkt_addstring(s->pktout, "simple@putty.projects.tartarus.org");
8980 ssh2_pkt_addbool(s->pktout, 0); /* no reply */
8981 ssh2_pkt_send(ssh, s->pktout);
8982 }
8983
8984 /*
8985 * Potentially enable X11 forwarding.
8986 */
8987 if (ssh->mainchan && !ssh->ncmode && conf_get_int(ssh->conf, CONF_x11_forward) &&
8988 (ssh->x11disp = x11_setup_display(conf_get_str(ssh->conf, CONF_x11_display),
8989 conf_get_int(ssh->conf, CONF_x11_auth), ssh->conf))) {
8990 logevent("Requesting X11 forwarding");
8991 s->pktout = ssh2_pkt_init(SSH2_MSG_CHANNEL_REQUEST);
8992 ssh2_pkt_adduint32(s->pktout, ssh->mainchan->remoteid);
8993 ssh2_pkt_addstring(s->pktout, "x11-req");
8994 ssh2_pkt_addbool(s->pktout, 1); /* want reply */
8995 ssh2_pkt_addbool(s->pktout, 0); /* many connections */
8996 ssh2_pkt_addstring(s->pktout, ssh->x11disp->remoteauthprotoname);
8997 /*
8998 * Note that while we blank the X authentication data here, we don't
8999 * take any special action to blank the start of an X11 channel,
9000 * so using MIT-MAGIC-COOKIE-1 and actually opening an X connection
9001 * without having session blanking enabled is likely to leak your
9002 * cookie into the log.
9003 */
9004 dont_log_password(ssh, s->pktout, PKTLOG_BLANK);
9005 ssh2_pkt_addstring(s->pktout, ssh->x11disp->remoteauthdatastring);
9006 end_log_omission(ssh, s->pktout);
9007 ssh2_pkt_adduint32(s->pktout, ssh->x11disp->screennum);
9008 ssh2_pkt_send(ssh, s->pktout);
9009
9010 crWaitUntilV(pktin);
9011
9012 if (pktin->type != SSH2_MSG_CHANNEL_SUCCESS) {
9013 if (pktin->type != SSH2_MSG_CHANNEL_FAILURE) {
9014 bombout(("Unexpected response to X11 forwarding request:"
9015 " packet type %d", pktin->type));
9016 crStopV;
9017 }
9018 logevent("X11 forwarding refused");
9019 } else {
9020 logevent("X11 forwarding enabled");
9021 ssh->X11_fwd_enabled = TRUE;
9022 }
9023 }
9024
9025 /*
9026 * Enable port forwardings.
9027 */
9028 ssh_setup_portfwd(ssh, ssh->conf);
9029
9030 /*
9031 * Potentially enable agent forwarding.
9032 */
9033 if (ssh->mainchan && !ssh->ncmode && conf_get_int(ssh->conf, CONF_agentfwd) && agent_exists()) {
9034 logevent("Requesting OpenSSH-style agent forwarding");
9035 s->pktout = ssh2_pkt_init(SSH2_MSG_CHANNEL_REQUEST);
9036 ssh2_pkt_adduint32(s->pktout, ssh->mainchan->remoteid);
9037 ssh2_pkt_addstring(s->pktout, "auth-agent-req@openssh.com");
9038 ssh2_pkt_addbool(s->pktout, 1); /* want reply */
9039 ssh2_pkt_send(ssh, s->pktout);
9040
9041 crWaitUntilV(pktin);
9042
9043 if (pktin->type != SSH2_MSG_CHANNEL_SUCCESS) {
9044 if (pktin->type != SSH2_MSG_CHANNEL_FAILURE) {
9045 bombout(("Unexpected response to agent forwarding request:"
9046 " packet type %d", pktin->type));
9047 crStopV;
9048 }
9049 logevent("Agent forwarding refused");
9050 } else {
9051 logevent("Agent forwarding enabled");
9052 ssh->agentfwd_enabled = TRUE;
9053 }
9054 }
9055
9056 /*
9057 * Now allocate a pty for the session.
9058 */
9059 if (ssh->mainchan && !ssh->ncmode && !conf_get_int(ssh->conf, CONF_nopty)) {
9060 /* Unpick the terminal-speed string. */
9061 /* XXX perhaps we should allow no speeds to be sent. */
9062 ssh->ospeed = 38400; ssh->ispeed = 38400; /* last-resort defaults */
9063 sscanf(conf_get_str(ssh->conf, CONF_termspeed), "%d,%d", &ssh->ospeed, &ssh->ispeed);
9064 /* Build the pty request. */
9065 s->pktout = ssh2_pkt_init(SSH2_MSG_CHANNEL_REQUEST);
9066 ssh2_pkt_adduint32(s->pktout, ssh->mainchan->remoteid); /* recipient channel */
9067 ssh2_pkt_addstring(s->pktout, "pty-req");
9068 ssh2_pkt_addbool(s->pktout, 1); /* want reply */
9069 ssh2_pkt_addstring(s->pktout, conf_get_str(ssh->conf, CONF_termtype));
9070 ssh2_pkt_adduint32(s->pktout, ssh->term_width);
9071 ssh2_pkt_adduint32(s->pktout, ssh->term_height);
9072 ssh2_pkt_adduint32(s->pktout, 0); /* pixel width */
9073 ssh2_pkt_adduint32(s->pktout, 0); /* pixel height */
9074 ssh2_pkt_addstring_start(s->pktout);
9075 parse_ttymodes(ssh, ssh2_send_ttymode, (void *)s->pktout);
9076 ssh2_pkt_addbyte(s->pktout, SSH2_TTY_OP_ISPEED);
9077 ssh2_pkt_adduint32(s->pktout, ssh->ispeed);
9078 ssh2_pkt_addbyte(s->pktout, SSH2_TTY_OP_OSPEED);
9079 ssh2_pkt_adduint32(s->pktout, ssh->ospeed);
9080 ssh2_pkt_addstring_data(s->pktout, "\0", 1); /* TTY_OP_END */
9081 ssh2_pkt_send(ssh, s->pktout);
9082 ssh->state = SSH_STATE_INTERMED;
9083
9084 crWaitUntilV(pktin);
9085
9086 if (pktin->type != SSH2_MSG_CHANNEL_SUCCESS) {
9087 if (pktin->type != SSH2_MSG_CHANNEL_FAILURE) {
9088 bombout(("Unexpected response to pty request:"
9089 " packet type %d", pktin->type));
9090 crStopV;
9091 }
9092 c_write_str(ssh, "Server refused to allocate pty\r\n");
9093 ssh->editing = ssh->echoing = 1;
9094 } else {
9095 logeventf(ssh, "Allocated pty (ospeed %dbps, ispeed %dbps)",
9096 ssh->ospeed, ssh->ispeed);
9097 ssh->got_pty = TRUE;
9098 }
9099 } else {
9100 ssh->editing = ssh->echoing = 1;
9101 }
9102
9103 /*
9104 * Send environment variables.
9105 *
9106 * Simplest thing here is to send all the requests at once, and
9107 * then wait for a whole bunch of successes or failures.
9108 */
9109 if (ssh->mainchan && !ssh->ncmode) {
9110 char *key, *val;
9111
9112 s->num_env = 0;
9113
9114 for (val = conf_get_str_strs(ssh->conf, CONF_environmt, NULL, &key);
9115 val != NULL;
9116 val = conf_get_str_strs(ssh->conf, CONF_environmt, key, &key)) {
9117 s->pktout = ssh2_pkt_init(SSH2_MSG_CHANNEL_REQUEST);
9118 ssh2_pkt_adduint32(s->pktout, ssh->mainchan->remoteid);
9119 ssh2_pkt_addstring(s->pktout, "env");
9120 ssh2_pkt_addbool(s->pktout, 1); /* want reply */
9121 ssh2_pkt_addstring(s->pktout, key);
9122 ssh2_pkt_addstring(s->pktout, val);
9123 ssh2_pkt_send(ssh, s->pktout);
9124
9125 s->num_env++;
9126 }
9127
9128 if (s->num_env) {
9129 logeventf(ssh, "Sent %d environment variables", s->num_env);
9130
9131 s->env_ok = 0;
9132 s->env_left = s->num_env;
9133
9134 while (s->env_left > 0) {
9135 crWaitUntilV(pktin);
9136
9137 if (pktin->type != SSH2_MSG_CHANNEL_SUCCESS) {
9138 if (pktin->type != SSH2_MSG_CHANNEL_FAILURE) {
9139 bombout(("Unexpected response to environment request:"
9140 " packet type %d", pktin->type));
9141 crStopV;
9142 }
9143 } else {
9144 s->env_ok++;
9145 }
9146
9147 s->env_left--;
9148 }
9149
9150 if (s->env_ok == s->num_env) {
9151 logevent("All environment variables successfully set");
9152 } else if (s->env_ok == 0) {
9153 logevent("All environment variables refused");
9154 c_write_str(ssh, "Server refused to set environment variables\r\n");
9155 } else {
9156 logeventf(ssh, "%d environment variables refused",
9157 s->num_env - s->env_ok);
9158 c_write_str(ssh, "Server refused to set all environment variables\r\n");
9159 }
9160 }
9161 }
9162
9163 /*
9164 * Start a shell or a remote command. We may have to attempt
9165 * this twice if the config data has provided a second choice
9166 * of command.
9167 */
9168 if (ssh->mainchan && !ssh->ncmode) while (1) {
9169 int subsys;
9170 char *cmd;
9171
9172 if (ssh->fallback_cmd) {
9173 subsys = conf_get_int(ssh->conf, CONF_ssh_subsys2);
9174 cmd = conf_get_str(ssh->conf, CONF_remote_cmd2);
9175 } else {
9176 subsys = conf_get_int(ssh->conf, CONF_ssh_subsys);
9177 cmd = conf_get_str(ssh->conf, CONF_remote_cmd);
9178 }
9179
9180 s->pktout = ssh2_pkt_init(SSH2_MSG_CHANNEL_REQUEST);
9181 ssh2_pkt_adduint32(s->pktout, ssh->mainchan->remoteid); /* recipient channel */
9182 if (subsys) {
9183 ssh2_pkt_addstring(s->pktout, "subsystem");
9184 ssh2_pkt_addbool(s->pktout, 1); /* want reply */
9185 ssh2_pkt_addstring(s->pktout, cmd);
9186 } else if (*cmd) {
9187 ssh2_pkt_addstring(s->pktout, "exec");
9188 ssh2_pkt_addbool(s->pktout, 1); /* want reply */
9189 ssh2_pkt_addstring(s->pktout, cmd);
9190 } else {
9191 ssh2_pkt_addstring(s->pktout, "shell");
9192 ssh2_pkt_addbool(s->pktout, 1); /* want reply */
9193 }
9194 ssh2_pkt_send(ssh, s->pktout);
9195
9196 crWaitUntilV(pktin);
9197
9198 if (pktin->type != SSH2_MSG_CHANNEL_SUCCESS) {
9199 if (pktin->type != SSH2_MSG_CHANNEL_FAILURE) {
9200 bombout(("Unexpected response to shell/command request:"
9201 " packet type %d", pktin->type));
9202 crStopV;
9203 }
9204 /*
9205 * We failed to start the command. If this is the
9206 * fallback command, we really are finished; if it's
9207 * not, and if the fallback command exists, try falling
9208 * back to it before complaining.
9209 */
9210 if (!ssh->fallback_cmd &&
9211 *conf_get_str(ssh->conf, CONF_remote_cmd2)) {
9212 logevent("Primary command failed; attempting fallback");
9213 ssh->fallback_cmd = TRUE;
9214 continue;
9215 }
9216 bombout(("Server refused to start a shell/command"));
9217 crStopV;
9218 } else {
9219 logevent("Started a shell/command");
9220 }
9221 break;
9222 }
9223
9224 ssh->state = SSH_STATE_SESSION;
9225 if (ssh->size_needed)
9226 ssh_size(ssh, ssh->term_width, ssh->term_height);
9227 if (ssh->eof_needed)
9228 ssh_special(ssh, TS_EOF);
9229
9230 /*
9231 * All the initial channel requests are done, so install the default
9232 * failure handler.
9233 */
9234 ssh->packet_dispatch[SSH2_MSG_CHANNEL_SUCCESS] = ssh2_msg_channel_success;
9235 ssh->packet_dispatch[SSH2_MSG_CHANNEL_FAILURE] = ssh2_msg_channel_failure;
9236
9237 /*
9238 * Transfer data!
9239 */
9240 if (ssh->ldisc)
9241 ldisc_send(ssh->ldisc, NULL, 0, 0);/* cause ldisc to notice changes */
9242 if (ssh->mainchan)
9243 ssh->send_ok = 1;
9244 while (1) {
9245 crReturnV;
9246 s->try_send = FALSE;
9247 if (pktin) {
9248
9249 /*
9250 * _All_ the connection-layer packets we expect to
9251 * receive are now handled by the dispatch table.
9252 * Anything that reaches here must be bogus.
9253 */
9254
9255 bombout(("Strange packet received: type %d", pktin->type));
9256 crStopV;
9257 } else if (ssh->mainchan) {
9258 /*
9259 * We have spare data. Add it to the channel buffer.
9260 */
9261 ssh2_add_channel_data(ssh->mainchan, (char *)in, inlen);
9262 s->try_send = TRUE;
9263 }
9264 if (s->try_send) {
9265 int i;
9266 struct ssh_channel *c;
9267 /*
9268 * Try to send data on all channels if we can.
9269 */
9270 for (i = 0; NULL != (c = index234(ssh->channels, i)); i++)
9271 ssh2_try_send_and_unthrottle(ssh, c);
9272 }
9273 }
9274
9275 crFinishV;
9276 }
9277
9278 /*
9279 * Handlers for SSH-2 messages that might arrive at any moment.
9280 */
9281 static void ssh2_msg_disconnect(Ssh ssh, struct Packet *pktin)
9282 {
9283 /* log reason code in disconnect message */
9284 char *buf, *msg;
9285 int reason, msglen;
9286
9287 reason = ssh_pkt_getuint32(pktin);
9288 ssh_pkt_getstring(pktin, &msg, &msglen);
9289
9290 if (reason > 0 && reason < lenof(ssh2_disconnect_reasons)) {
9291 buf = dupprintf("Received disconnect message (%s)",
9292 ssh2_disconnect_reasons[reason]);
9293 } else {
9294 buf = dupprintf("Received disconnect message (unknown"
9295 " type %d)", reason);
9296 }
9297 logevent(buf);
9298 sfree(buf);
9299 buf = dupprintf("Disconnection message text: %.*s",
9300 msglen, msg);
9301 logevent(buf);
9302 bombout(("Server sent disconnect message\ntype %d (%s):\n\"%.*s\"",
9303 reason,
9304 (reason > 0 && reason < lenof(ssh2_disconnect_reasons)) ?
9305 ssh2_disconnect_reasons[reason] : "unknown",
9306 msglen, msg));
9307 sfree(buf);
9308 }
9309
9310 static void ssh2_msg_debug(Ssh ssh, struct Packet *pktin)
9311 {
9312 /* log the debug message */
9313 char *msg;
9314 int msglen;
9315
9316 /* XXX maybe we should actually take notice of the return value */
9317 ssh2_pkt_getbool(pktin);
9318 ssh_pkt_getstring(pktin, &msg, &msglen);
9319
9320 logeventf(ssh, "Remote debug message: %.*s", msglen, msg);
9321 }
9322
9323 static void ssh2_msg_something_unimplemented(Ssh ssh, struct Packet *pktin)
9324 {
9325 struct Packet *pktout;
9326 pktout = ssh2_pkt_init(SSH2_MSG_UNIMPLEMENTED);
9327 ssh2_pkt_adduint32(pktout, pktin->sequence);
9328 /*
9329 * UNIMPLEMENTED messages MUST appear in the same order as the
9330 * messages they respond to. Hence, never queue them.
9331 */
9332 ssh2_pkt_send_noqueue(ssh, pktout);
9333 }
9334
9335 /*
9336 * Handle the top-level SSH-2 protocol.
9337 */
9338 static void ssh2_protocol_setup(Ssh ssh)
9339 {
9340 int i;
9341
9342 /*
9343 * Most messages cause SSH2_MSG_UNIMPLEMENTED.
9344 */
9345 for (i = 0; i < 256; i++)
9346 ssh->packet_dispatch[i] = ssh2_msg_something_unimplemented;
9347
9348 /*
9349 * Any message we actually understand, we set to NULL so that
9350 * the coroutines will get it.
9351 */
9352 ssh->packet_dispatch[SSH2_MSG_UNIMPLEMENTED] = NULL;
9353 ssh->packet_dispatch[SSH2_MSG_SERVICE_REQUEST] = NULL;
9354 ssh->packet_dispatch[SSH2_MSG_SERVICE_ACCEPT] = NULL;
9355 ssh->packet_dispatch[SSH2_MSG_KEXINIT] = NULL;
9356 ssh->packet_dispatch[SSH2_MSG_NEWKEYS] = NULL;
9357 ssh->packet_dispatch[SSH2_MSG_KEXDH_INIT] = NULL;
9358 ssh->packet_dispatch[SSH2_MSG_KEXDH_REPLY] = NULL;
9359 /* ssh->packet_dispatch[SSH2_MSG_KEX_DH_GEX_REQUEST] = NULL; duplicate case value */
9360 /* ssh->packet_dispatch[SSH2_MSG_KEX_DH_GEX_GROUP] = NULL; duplicate case value */
9361 ssh->packet_dispatch[SSH2_MSG_KEX_DH_GEX_INIT] = NULL;
9362 ssh->packet_dispatch[SSH2_MSG_KEX_DH_GEX_REPLY] = NULL;
9363 ssh->packet_dispatch[SSH2_MSG_USERAUTH_REQUEST] = NULL;
9364 ssh->packet_dispatch[SSH2_MSG_USERAUTH_FAILURE] = NULL;
9365 ssh->packet_dispatch[SSH2_MSG_USERAUTH_SUCCESS] = NULL;
9366 ssh->packet_dispatch[SSH2_MSG_USERAUTH_BANNER] = NULL;
9367 ssh->packet_dispatch[SSH2_MSG_USERAUTH_PK_OK] = NULL;
9368 /* ssh->packet_dispatch[SSH2_MSG_USERAUTH_PASSWD_CHANGEREQ] = NULL; duplicate case value */
9369 /* ssh->packet_dispatch[SSH2_MSG_USERAUTH_INFO_REQUEST] = NULL; duplicate case value */
9370 ssh->packet_dispatch[SSH2_MSG_USERAUTH_INFO_RESPONSE] = NULL;
9371 ssh->packet_dispatch[SSH2_MSG_GLOBAL_REQUEST] = NULL;
9372 ssh->packet_dispatch[SSH2_MSG_REQUEST_SUCCESS] = NULL;
9373 ssh->packet_dispatch[SSH2_MSG_REQUEST_FAILURE] = NULL;
9374 ssh->packet_dispatch[SSH2_MSG_CHANNEL_OPEN] = NULL;
9375 ssh->packet_dispatch[SSH2_MSG_CHANNEL_OPEN_CONFIRMATION] = NULL;
9376 ssh->packet_dispatch[SSH2_MSG_CHANNEL_OPEN_FAILURE] = NULL;
9377 ssh->packet_dispatch[SSH2_MSG_CHANNEL_WINDOW_ADJUST] = NULL;
9378 ssh->packet_dispatch[SSH2_MSG_CHANNEL_DATA] = NULL;
9379 ssh->packet_dispatch[SSH2_MSG_CHANNEL_EXTENDED_DATA] = NULL;
9380 ssh->packet_dispatch[SSH2_MSG_CHANNEL_EOF] = NULL;
9381 ssh->packet_dispatch[SSH2_MSG_CHANNEL_CLOSE] = NULL;
9382 ssh->packet_dispatch[SSH2_MSG_CHANNEL_REQUEST] = NULL;
9383 ssh->packet_dispatch[SSH2_MSG_CHANNEL_SUCCESS] = NULL;
9384 ssh->packet_dispatch[SSH2_MSG_CHANNEL_FAILURE] = NULL;
9385
9386 /*
9387 * These special message types we install handlers for.
9388 */
9389 ssh->packet_dispatch[SSH2_MSG_DISCONNECT] = ssh2_msg_disconnect;
9390 ssh->packet_dispatch[SSH2_MSG_IGNORE] = ssh_msg_ignore; /* shared with SSH-1 */
9391 ssh->packet_dispatch[SSH2_MSG_DEBUG] = ssh2_msg_debug;
9392 }
9393
9394 static void ssh2_timer(void *ctx, long now)
9395 {
9396 Ssh ssh = (Ssh)ctx;
9397
9398 if (ssh->state == SSH_STATE_CLOSED)
9399 return;
9400
9401 if (!ssh->kex_in_progress && conf_get_int(ssh->conf, CONF_ssh_rekey_time) != 0 &&
9402 now - ssh->next_rekey >= 0) {
9403 do_ssh2_transport(ssh, "timeout", -1, NULL);
9404 }
9405 }
9406
9407 static void ssh2_protocol(Ssh ssh, void *vin, int inlen,
9408 struct Packet *pktin)
9409 {
9410 unsigned char *in = (unsigned char *)vin;
9411 if (ssh->state == SSH_STATE_CLOSED)
9412 return;
9413
9414 if (pktin) {
9415 ssh->incoming_data_size += pktin->encrypted_len;
9416 if (!ssh->kex_in_progress &&
9417 ssh->max_data_size != 0 &&
9418 ssh->incoming_data_size > ssh->max_data_size)
9419 do_ssh2_transport(ssh, "too much data received", -1, NULL);
9420 }
9421
9422 if (pktin && ssh->packet_dispatch[pktin->type]) {
9423 ssh->packet_dispatch[pktin->type](ssh, pktin);
9424 return;
9425 }
9426
9427 if (!ssh->protocol_initial_phase_done ||
9428 (pktin && pktin->type >= 20 && pktin->type < 50)) {
9429 if (do_ssh2_transport(ssh, in, inlen, pktin) &&
9430 !ssh->protocol_initial_phase_done) {
9431 ssh->protocol_initial_phase_done = TRUE;
9432 /*
9433 * Allow authconn to initialise itself.
9434 */
9435 do_ssh2_authconn(ssh, NULL, 0, NULL);
9436 }
9437 } else {
9438 do_ssh2_authconn(ssh, in, inlen, pktin);
9439 }
9440 }
9441
9442 static void ssh_cache_conf_values(Ssh ssh)
9443 {
9444 ssh->logomitdata = conf_get_int(ssh->conf, CONF_logomitdata);
9445 }
9446
9447 /*
9448 * Called to set up the connection.
9449 *
9450 * Returns an error message, or NULL on success.
9451 */
9452 static const char *ssh_init(void *frontend_handle, void **backend_handle,
9453 Conf *conf, char *host, int port, char **realhost,
9454 int nodelay, int keepalive)
9455 {
9456 const char *p;
9457 Ssh ssh;
9458
9459 ssh = snew(struct ssh_tag);
9460 ssh->conf = conf_copy(conf);
9461 ssh_cache_conf_values(ssh);
9462 ssh->version = 0; /* when not ready yet */
9463 ssh->s = NULL;
9464 ssh->cipher = NULL;
9465 ssh->v1_cipher_ctx = NULL;
9466 ssh->crcda_ctx = NULL;
9467 ssh->cscipher = NULL;
9468 ssh->cs_cipher_ctx = NULL;
9469 ssh->sccipher = NULL;
9470 ssh->sc_cipher_ctx = NULL;
9471 ssh->csmac = NULL;
9472 ssh->cs_mac_ctx = NULL;
9473 ssh->scmac = NULL;
9474 ssh->sc_mac_ctx = NULL;
9475 ssh->cscomp = NULL;
9476 ssh->cs_comp_ctx = NULL;
9477 ssh->sccomp = NULL;
9478 ssh->sc_comp_ctx = NULL;
9479 ssh->kex = NULL;
9480 ssh->kex_ctx = NULL;
9481 ssh->hostkey = NULL;
9482 ssh->exitcode = -1;
9483 ssh->close_expected = FALSE;
9484 ssh->clean_exit = FALSE;
9485 ssh->state = SSH_STATE_PREPACKET;
9486 ssh->size_needed = FALSE;
9487 ssh->eof_needed = FALSE;
9488 ssh->ldisc = NULL;
9489 ssh->logctx = NULL;
9490 ssh->deferred_send_data = NULL;
9491 ssh->deferred_len = 0;
9492 ssh->deferred_size = 0;
9493 ssh->fallback_cmd = 0;
9494 ssh->pkt_kctx = SSH2_PKTCTX_NOKEX;
9495 ssh->pkt_actx = SSH2_PKTCTX_NOAUTH;
9496 ssh->x11disp = NULL;
9497 ssh->v1_compressing = FALSE;
9498 ssh->v2_outgoing_sequence = 0;
9499 ssh->ssh1_rdpkt_crstate = 0;
9500 ssh->ssh2_rdpkt_crstate = 0;
9501 ssh->do_ssh_init_crstate = 0;
9502 ssh->ssh_gotdata_crstate = 0;
9503 ssh->do_ssh1_connection_crstate = 0;
9504 ssh->do_ssh1_login_crstate = 0;
9505 ssh->do_ssh2_transport_crstate = 0;
9506 ssh->do_ssh2_authconn_crstate = 0;
9507 ssh->do_ssh_init_state = NULL;
9508 ssh->do_ssh1_login_state = NULL;
9509 ssh->do_ssh2_transport_state = NULL;
9510 ssh->do_ssh2_authconn_state = NULL;
9511 ssh->v_c = NULL;
9512 ssh->v_s = NULL;
9513 ssh->mainchan = NULL;
9514 ssh->throttled_all = 0;
9515 ssh->v1_stdout_throttling = 0;
9516 ssh->queue = NULL;
9517 ssh->queuelen = ssh->queuesize = 0;
9518 ssh->queueing = FALSE;
9519 ssh->qhead = ssh->qtail = NULL;
9520 ssh->deferred_rekey_reason = NULL;
9521 bufchain_init(&ssh->queued_incoming_data);
9522 ssh->frozen = FALSE;
9523 ssh->username = NULL;
9524 ssh->sent_console_eof = FALSE;
9525 ssh->got_pty = FALSE;
9526
9527 *backend_handle = ssh;
9528
9529 #ifdef MSCRYPTOAPI
9530 if (crypto_startup() == 0)
9531 return "Microsoft high encryption pack not installed!";
9532 #endif
9533
9534 ssh->frontend = frontend_handle;
9535 ssh->term_width = conf_get_int(ssh->conf, CONF_width);
9536 ssh->term_height = conf_get_int(ssh->conf, CONF_height);
9537
9538 ssh->channels = NULL;
9539 ssh->rportfwds = NULL;
9540 ssh->portfwds = NULL;
9541
9542 ssh->send_ok = 0;
9543 ssh->editing = 0;
9544 ssh->echoing = 0;
9545 ssh->conn_throttle_count = 0;
9546 ssh->overall_bufsize = 0;
9547 ssh->fallback_cmd = 0;
9548
9549 ssh->protocol = NULL;
9550
9551 ssh->protocol_initial_phase_done = FALSE;
9552
9553 ssh->pinger = NULL;
9554
9555 ssh->incoming_data_size = ssh->outgoing_data_size =
9556 ssh->deferred_data_size = 0L;
9557 ssh->max_data_size = parse_blocksize(conf_get_str(ssh->conf,
9558 CONF_ssh_rekey_data));
9559 ssh->kex_in_progress = FALSE;
9560
9561 #ifndef NO_GSSAPI
9562 ssh->gsslibs = NULL;
9563 #endif
9564
9565 p = connect_to_host(ssh, host, port, realhost, nodelay, keepalive);
9566 if (p != NULL)
9567 return p;
9568
9569 random_ref();
9570
9571 return NULL;
9572 }
9573
9574 static void ssh_free(void *handle)
9575 {
9576 Ssh ssh = (Ssh) handle;
9577 struct ssh_channel *c;
9578 struct ssh_rportfwd *pf;
9579
9580 if (ssh->v1_cipher_ctx)
9581 ssh->cipher->free_context(ssh->v1_cipher_ctx);
9582 if (ssh->cs_cipher_ctx)
9583 ssh->cscipher->free_context(ssh->cs_cipher_ctx);
9584 if (ssh->sc_cipher_ctx)
9585 ssh->sccipher->free_context(ssh->sc_cipher_ctx);
9586 if (ssh->cs_mac_ctx)
9587 ssh->csmac->free_context(ssh->cs_mac_ctx);
9588 if (ssh->sc_mac_ctx)
9589 ssh->scmac->free_context(ssh->sc_mac_ctx);
9590 if (ssh->cs_comp_ctx) {
9591 if (ssh->cscomp)
9592 ssh->cscomp->compress_cleanup(ssh->cs_comp_ctx);
9593 else
9594 zlib_compress_cleanup(ssh->cs_comp_ctx);
9595 }
9596 if (ssh->sc_comp_ctx) {
9597 if (ssh->sccomp)
9598 ssh->sccomp->decompress_cleanup(ssh->sc_comp_ctx);
9599 else
9600 zlib_decompress_cleanup(ssh->sc_comp_ctx);
9601 }
9602 if (ssh->kex_ctx)
9603 dh_cleanup(ssh->kex_ctx);
9604 sfree(ssh->savedhost);
9605
9606 while (ssh->queuelen-- > 0)
9607 ssh_free_packet(ssh->queue[ssh->queuelen]);
9608 sfree(ssh->queue);
9609
9610 while (ssh->qhead) {
9611 struct queued_handler *qh = ssh->qhead;
9612 ssh->qhead = qh->next;
9613 sfree(ssh->qhead);
9614 }
9615 ssh->qhead = ssh->qtail = NULL;
9616
9617 if (ssh->channels) {
9618 while ((c = delpos234(ssh->channels, 0)) != NULL) {
9619 switch (c->type) {
9620 case CHAN_X11:
9621 if (c->u.x11.s != NULL)
9622 x11_close(c->u.x11.s);
9623 break;
9624 case CHAN_SOCKDATA:
9625 case CHAN_SOCKDATA_DORMANT:
9626 if (c->u.pfd.s != NULL)
9627 pfd_close(c->u.pfd.s);
9628 break;
9629 }
9630 sfree(c);
9631 }
9632 freetree234(ssh->channels);
9633 ssh->channels = NULL;
9634 }
9635
9636 if (ssh->rportfwds) {
9637 while ((pf = delpos234(ssh->rportfwds, 0)) != NULL)
9638 free_rportfwd(pf);
9639 freetree234(ssh->rportfwds);
9640 ssh->rportfwds = NULL;
9641 }
9642 sfree(ssh->deferred_send_data);
9643 if (ssh->x11disp)
9644 x11_free_display(ssh->x11disp);
9645 sfree(ssh->do_ssh_init_state);
9646 sfree(ssh->do_ssh1_login_state);
9647 sfree(ssh->do_ssh2_transport_state);
9648 sfree(ssh->do_ssh2_authconn_state);
9649 sfree(ssh->v_c);
9650 sfree(ssh->v_s);
9651 sfree(ssh->fullhostname);
9652 if (ssh->crcda_ctx) {
9653 crcda_free_context(ssh->crcda_ctx);
9654 ssh->crcda_ctx = NULL;
9655 }
9656 if (ssh->s)
9657 ssh_do_close(ssh, TRUE);
9658 expire_timer_context(ssh);
9659 if (ssh->pinger)
9660 pinger_free(ssh->pinger);
9661 bufchain_clear(&ssh->queued_incoming_data);
9662 sfree(ssh->username);
9663 conf_free(ssh->conf);
9664 #ifndef NO_GSSAPI
9665 if (ssh->gsslibs)
9666 ssh_gss_cleanup(ssh->gsslibs);
9667 #endif
9668 sfree(ssh);
9669
9670 random_unref();
9671 }
9672
9673 /*
9674 * Reconfigure the SSH backend.
9675 */
9676 static void ssh_reconfig(void *handle, Conf *conf)
9677 {
9678 Ssh ssh = (Ssh) handle;
9679 char *rekeying = NULL, rekey_mandatory = FALSE;
9680 unsigned long old_max_data_size;
9681 int i, rekey_time;
9682
9683 pinger_reconfig(ssh->pinger, ssh->conf, conf);
9684 if (ssh->portfwds)
9685 ssh_setup_portfwd(ssh, conf);
9686
9687 rekey_time = conf_get_int(conf, CONF_ssh_rekey_time);
9688 if (conf_get_int(ssh->conf, CONF_ssh_rekey_time) != rekey_time &&
9689 rekey_time != 0) {
9690 long new_next = ssh->last_rekey + rekey_time*60*TICKSPERSEC;
9691 long now = GETTICKCOUNT();
9692
9693 if (new_next - now < 0) {
9694 rekeying = "timeout shortened";
9695 } else {
9696 ssh->next_rekey = schedule_timer(new_next - now, ssh2_timer, ssh);
9697 }
9698 }
9699
9700 old_max_data_size = ssh->max_data_size;
9701 ssh->max_data_size = parse_blocksize(conf_get_str(ssh->conf,
9702 CONF_ssh_rekey_data));
9703 if (old_max_data_size != ssh->max_data_size &&
9704 ssh->max_data_size != 0) {
9705 if (ssh->outgoing_data_size > ssh->max_data_size ||
9706 ssh->incoming_data_size > ssh->max_data_size)
9707 rekeying = "data limit lowered";
9708 }
9709
9710 if (conf_get_int(ssh->conf, CONF_compression) !=
9711 conf_get_int(conf, CONF_compression)) {
9712 rekeying = "compression setting changed";
9713 rekey_mandatory = TRUE;
9714 }
9715
9716 for (i = 0; i < CIPHER_MAX; i++)
9717 if (conf_get_int_int(ssh->conf, CONF_ssh_cipherlist, i) !=
9718 conf_get_int_int(conf, CONF_ssh_cipherlist, i)) {
9719 rekeying = "cipher settings changed";
9720 rekey_mandatory = TRUE;
9721 }
9722 if (conf_get_int(ssh->conf, CONF_ssh2_des_cbc) !=
9723 conf_get_int(conf, CONF_ssh2_des_cbc)) {
9724 rekeying = "cipher settings changed";
9725 rekey_mandatory = TRUE;
9726 }
9727
9728 conf_free(ssh->conf);
9729 ssh->conf = conf_copy(conf);
9730 ssh_cache_conf_values(ssh);
9731
9732 if (rekeying) {
9733 if (!ssh->kex_in_progress) {
9734 do_ssh2_transport(ssh, rekeying, -1, NULL);
9735 } else if (rekey_mandatory) {
9736 ssh->deferred_rekey_reason = rekeying;
9737 }
9738 }
9739 }
9740
9741 /*
9742 * Called to send data down the SSH connection.
9743 */
9744 static int ssh_send(void *handle, char *buf, int len)
9745 {
9746 Ssh ssh = (Ssh) handle;
9747
9748 if (ssh == NULL || ssh->s == NULL || ssh->protocol == NULL)
9749 return 0;
9750
9751 ssh->protocol(ssh, (unsigned char *)buf, len, 0);
9752
9753 return ssh_sendbuffer(ssh);
9754 }
9755
9756 /*
9757 * Called to query the current amount of buffered stdin data.
9758 */
9759 static int ssh_sendbuffer(void *handle)
9760 {
9761 Ssh ssh = (Ssh) handle;
9762 int override_value;
9763
9764 if (ssh == NULL || ssh->s == NULL || ssh->protocol == NULL)
9765 return 0;
9766
9767 /*
9768 * If the SSH socket itself has backed up, add the total backup
9769 * size on that to any individual buffer on the stdin channel.
9770 */
9771 override_value = 0;
9772 if (ssh->throttled_all)
9773 override_value = ssh->overall_bufsize;
9774
9775 if (ssh->version == 1) {
9776 return override_value;
9777 } else if (ssh->version == 2) {
9778 if (!ssh->mainchan)
9779 return override_value;
9780 else
9781 return (override_value +
9782 bufchain_size(&ssh->mainchan->v.v2.outbuffer));
9783 }
9784
9785 return 0;
9786 }
9787
9788 /*
9789 * Called to set the size of the window from SSH's POV.
9790 */
9791 static void ssh_size(void *handle, int width, int height)
9792 {
9793 Ssh ssh = (Ssh) handle;
9794 struct Packet *pktout;
9795
9796 ssh->term_width = width;
9797 ssh->term_height = height;
9798
9799 switch (ssh->state) {
9800 case SSH_STATE_BEFORE_SIZE:
9801 case SSH_STATE_PREPACKET:
9802 case SSH_STATE_CLOSED:
9803 break; /* do nothing */
9804 case SSH_STATE_INTERMED:
9805 ssh->size_needed = TRUE; /* buffer for later */
9806 break;
9807 case SSH_STATE_SESSION:
9808 if (!conf_get_int(ssh->conf, CONF_nopty)) {
9809 if (ssh->version == 1) {
9810 send_packet(ssh, SSH1_CMSG_WINDOW_SIZE,
9811 PKT_INT, ssh->term_height,
9812 PKT_INT, ssh->term_width,
9813 PKT_INT, 0, PKT_INT, 0, PKT_END);
9814 } else if (ssh->mainchan) {
9815 pktout = ssh2_pkt_init(SSH2_MSG_CHANNEL_REQUEST);
9816 ssh2_pkt_adduint32(pktout, ssh->mainchan->remoteid);
9817 ssh2_pkt_addstring(pktout, "window-change");
9818 ssh2_pkt_addbool(pktout, 0);
9819 ssh2_pkt_adduint32(pktout, ssh->term_width);
9820 ssh2_pkt_adduint32(pktout, ssh->term_height);
9821 ssh2_pkt_adduint32(pktout, 0);
9822 ssh2_pkt_adduint32(pktout, 0);
9823 ssh2_pkt_send(ssh, pktout);
9824 }
9825 }
9826 break;
9827 }
9828 }
9829
9830 /*
9831 * Return a list of the special codes that make sense in this
9832 * protocol.
9833 */
9834 static const struct telnet_special *ssh_get_specials(void *handle)
9835 {
9836 static const struct telnet_special ssh1_ignore_special[] = {
9837 {"IGNORE message", TS_NOP}
9838 };
9839 static const struct telnet_special ssh2_ignore_special[] = {
9840 {"IGNORE message", TS_NOP},
9841 };
9842 static const struct telnet_special ssh2_rekey_special[] = {
9843 {"Repeat key exchange", TS_REKEY},
9844 };
9845 static const struct telnet_special ssh2_session_specials[] = {
9846 {NULL, TS_SEP},
9847 {"Break", TS_BRK},
9848 /* These are the signal names defined by RFC 4254.
9849 * They include all the ISO C signals, but are a subset of the POSIX
9850 * required signals. */
9851 {"SIGINT (Interrupt)", TS_SIGINT},
9852 {"SIGTERM (Terminate)", TS_SIGTERM},
9853 {"SIGKILL (Kill)", TS_SIGKILL},
9854 {"SIGQUIT (Quit)", TS_SIGQUIT},
9855 {"SIGHUP (Hangup)", TS_SIGHUP},
9856 {"More signals", TS_SUBMENU},
9857 {"SIGABRT", TS_SIGABRT}, {"SIGALRM", TS_SIGALRM},
9858 {"SIGFPE", TS_SIGFPE}, {"SIGILL", TS_SIGILL},
9859 {"SIGPIPE", TS_SIGPIPE}, {"SIGSEGV", TS_SIGSEGV},
9860 {"SIGUSR1", TS_SIGUSR1}, {"SIGUSR2", TS_SIGUSR2},
9861 {NULL, TS_EXITMENU}
9862 };
9863 static const struct telnet_special specials_end[] = {
9864 {NULL, TS_EXITMENU}
9865 };
9866 /* XXX review this length for any changes: */
9867 static struct telnet_special ssh_specials[lenof(ssh2_ignore_special) +
9868 lenof(ssh2_rekey_special) +
9869 lenof(ssh2_session_specials) +
9870 lenof(specials_end)];
9871 Ssh ssh = (Ssh) handle;
9872 int i = 0;
9873 #define ADD_SPECIALS(name) \
9874 do { \
9875 assert((i + lenof(name)) <= lenof(ssh_specials)); \
9876 memcpy(&ssh_specials[i], name, sizeof name); \
9877 i += lenof(name); \
9878 } while(0)
9879
9880 if (ssh->version == 1) {
9881 /* Don't bother offering IGNORE if we've decided the remote
9882 * won't cope with it, since we wouldn't bother sending it if
9883 * asked anyway. */
9884 if (!(ssh->remote_bugs & BUG_CHOKES_ON_SSH1_IGNORE))
9885 ADD_SPECIALS(ssh1_ignore_special);
9886 } else if (ssh->version == 2) {
9887 if (!(ssh->remote_bugs & BUG_CHOKES_ON_SSH2_IGNORE))
9888 ADD_SPECIALS(ssh2_ignore_special);
9889 if (!(ssh->remote_bugs & BUG_SSH2_REKEY))
9890 ADD_SPECIALS(ssh2_rekey_special);
9891 if (ssh->mainchan)
9892 ADD_SPECIALS(ssh2_session_specials);
9893 } /* else we're not ready yet */
9894
9895 if (i) {
9896 ADD_SPECIALS(specials_end);
9897 return ssh_specials;
9898 } else {
9899 return NULL;
9900 }
9901 #undef ADD_SPECIALS
9902 }
9903
9904 /*
9905 * Send special codes. TS_EOF is useful for `plink', so you
9906 * can send an EOF and collect resulting output (e.g. `plink
9907 * hostname sort').
9908 */
9909 static void ssh_special(void *handle, Telnet_Special code)
9910 {
9911 Ssh ssh = (Ssh) handle;
9912 struct Packet *pktout;
9913
9914 if (code == TS_EOF) {
9915 if (ssh->state != SSH_STATE_SESSION) {
9916 /*
9917 * Buffer the EOF in case we are pre-SESSION, so we can
9918 * send it as soon as we reach SESSION.
9919 */
9920 if (code == TS_EOF)
9921 ssh->eof_needed = TRUE;
9922 return;
9923 }
9924 if (ssh->version == 1) {
9925 send_packet(ssh, SSH1_CMSG_EOF, PKT_END);
9926 } else if (ssh->mainchan) {
9927 sshfwd_write_eof(ssh->mainchan);
9928 ssh->send_ok = 0; /* now stop trying to read from stdin */
9929 }
9930 logevent("Sent EOF message");
9931 } else if (code == TS_PING || code == TS_NOP) {
9932 if (ssh->state == SSH_STATE_CLOSED
9933 || ssh->state == SSH_STATE_PREPACKET) return;
9934 if (ssh->version == 1) {
9935 if (!(ssh->remote_bugs & BUG_CHOKES_ON_SSH1_IGNORE))
9936 send_packet(ssh, SSH1_MSG_IGNORE, PKT_STR, "", PKT_END);
9937 } else {
9938 if (!(ssh->remote_bugs & BUG_CHOKES_ON_SSH2_IGNORE)) {
9939 pktout = ssh2_pkt_init(SSH2_MSG_IGNORE);
9940 ssh2_pkt_addstring_start(pktout);
9941 ssh2_pkt_send_noqueue(ssh, pktout);
9942 }
9943 }
9944 } else if (code == TS_REKEY) {
9945 if (!ssh->kex_in_progress && ssh->version == 2) {
9946 do_ssh2_transport(ssh, "at user request", -1, NULL);
9947 }
9948 } else if (code == TS_BRK) {
9949 if (ssh->state == SSH_STATE_CLOSED
9950 || ssh->state == SSH_STATE_PREPACKET) return;
9951 if (ssh->version == 1) {
9952 logevent("Unable to send BREAK signal in SSH-1");
9953 } else if (ssh->mainchan) {
9954 pktout = ssh2_pkt_init(SSH2_MSG_CHANNEL_REQUEST);
9955 ssh2_pkt_adduint32(pktout, ssh->mainchan->remoteid);
9956 ssh2_pkt_addstring(pktout, "break");
9957 ssh2_pkt_addbool(pktout, 0);
9958 ssh2_pkt_adduint32(pktout, 0); /* default break length */
9959 ssh2_pkt_send(ssh, pktout);
9960 }
9961 } else {
9962 /* Is is a POSIX signal? */
9963 char *signame = NULL;
9964 if (code == TS_SIGABRT) signame = "ABRT";
9965 if (code == TS_SIGALRM) signame = "ALRM";
9966 if (code == TS_SIGFPE) signame = "FPE";
9967 if (code == TS_SIGHUP) signame = "HUP";
9968 if (code == TS_SIGILL) signame = "ILL";
9969 if (code == TS_SIGINT) signame = "INT";
9970 if (code == TS_SIGKILL) signame = "KILL";
9971 if (code == TS_SIGPIPE) signame = "PIPE";
9972 if (code == TS_SIGQUIT) signame = "QUIT";
9973 if (code == TS_SIGSEGV) signame = "SEGV";
9974 if (code == TS_SIGTERM) signame = "TERM";
9975 if (code == TS_SIGUSR1) signame = "USR1";
9976 if (code == TS_SIGUSR2) signame = "USR2";
9977 /* The SSH-2 protocol does in principle support arbitrary named
9978 * signals, including signame@domain, but we don't support those. */
9979 if (signame) {
9980 /* It's a signal. */
9981 if (ssh->version == 2 && ssh->mainchan) {
9982 pktout = ssh2_pkt_init(SSH2_MSG_CHANNEL_REQUEST);
9983 ssh2_pkt_adduint32(pktout, ssh->mainchan->remoteid);
9984 ssh2_pkt_addstring(pktout, "signal");
9985 ssh2_pkt_addbool(pktout, 0);
9986 ssh2_pkt_addstring(pktout, signame);
9987 ssh2_pkt_send(ssh, pktout);
9988 logeventf(ssh, "Sent signal SIG%s", signame);
9989 }
9990 } else {
9991 /* Never heard of it. Do nothing */
9992 }
9993 }
9994 }
9995
9996 void *new_sock_channel(void *handle, Socket s)
9997 {
9998 Ssh ssh = (Ssh) handle;
9999 struct ssh_channel *c;
10000 c = snew(struct ssh_channel);
10001
10002 c->ssh = ssh;
10003 ssh2_channel_init(c);
10004 c->halfopen = TRUE;
10005 c->type = CHAN_SOCKDATA_DORMANT;/* identify channel type */
10006 c->u.pfd.s = s;
10007 add234(ssh->channels, c);
10008 return c;
10009 }
10010
10011 /*
10012 * This is called when stdout/stderr (the entity to which
10013 * from_backend sends data) manages to clear some backlog.
10014 */
10015 static void ssh_unthrottle(void *handle, int bufsize)
10016 {
10017 Ssh ssh = (Ssh) handle;
10018 int buflimit;
10019
10020 if (ssh->version == 1) {
10021 if (ssh->v1_stdout_throttling && bufsize < SSH1_BUFFER_LIMIT) {
10022 ssh->v1_stdout_throttling = 0;
10023 ssh_throttle_conn(ssh, -1);
10024 }
10025 } else {
10026 if (ssh->mainchan) {
10027 ssh2_set_window(ssh->mainchan,
10028 bufsize < ssh->mainchan->v.v2.locmaxwin ?
10029 ssh->mainchan->v.v2.locmaxwin - bufsize : 0);
10030 if (conf_get_int(ssh->conf, CONF_ssh_simple))
10031 buflimit = 0;
10032 else
10033 buflimit = ssh->mainchan->v.v2.locmaxwin;
10034 if (ssh->mainchan->throttling_conn && bufsize <= buflimit) {
10035 ssh->mainchan->throttling_conn = 0;
10036 ssh_throttle_conn(ssh, -1);
10037 }
10038 }
10039 }
10040
10041 /*
10042 * Now process any SSH connection data that was stashed in our
10043 * queue while we were frozen.
10044 */
10045 ssh_process_queued_incoming_data(ssh);
10046 }
10047
10048 void ssh_send_port_open(void *channel, char *hostname, int port, char *org)
10049 {
10050 struct ssh_channel *c = (struct ssh_channel *)channel;
10051 Ssh ssh = c->ssh;
10052 struct Packet *pktout;
10053
10054 logeventf(ssh, "Opening forwarded connection to %s:%d", hostname, port);
10055
10056 if (ssh->version == 1) {
10057 send_packet(ssh, SSH1_MSG_PORT_OPEN,
10058 PKT_INT, c->localid,
10059 PKT_STR, hostname,
10060 PKT_INT, port,
10061 /* PKT_STR, <org:orgport>, */
10062 PKT_END);
10063 } else {
10064 pktout = ssh2_pkt_init(SSH2_MSG_CHANNEL_OPEN);
10065 ssh2_pkt_addstring(pktout, "direct-tcpip");
10066 ssh2_pkt_adduint32(pktout, c->localid);
10067 ssh2_pkt_adduint32(pktout, c->v.v2.locwindow);/* our window size */
10068 ssh2_pkt_adduint32(pktout, OUR_V2_MAXPKT); /* our max pkt size */
10069 ssh2_pkt_addstring(pktout, hostname);
10070 ssh2_pkt_adduint32(pktout, port);
10071 /*
10072 * We make up values for the originator data; partly it's
10073 * too much hassle to keep track, and partly I'm not
10074 * convinced the server should be told details like that
10075 * about my local network configuration.
10076 * The "originator IP address" is syntactically a numeric
10077 * IP address, and some servers (e.g., Tectia) get upset
10078 * if it doesn't match this syntax.
10079 */
10080 ssh2_pkt_addstring(pktout, "0.0.0.0");
10081 ssh2_pkt_adduint32(pktout, 0);
10082 ssh2_pkt_send(ssh, pktout);
10083 }
10084 }
10085
10086 static int ssh_connected(void *handle)
10087 {
10088 Ssh ssh = (Ssh) handle;
10089 return ssh->s != NULL;
10090 }
10091
10092 static int ssh_sendok(void *handle)
10093 {
10094 Ssh ssh = (Ssh) handle;
10095 return ssh->send_ok;
10096 }
10097
10098 static int ssh_ldisc(void *handle, int option)
10099 {
10100 Ssh ssh = (Ssh) handle;
10101 if (option == LD_ECHO)
10102 return ssh->echoing;
10103 if (option == LD_EDIT)
10104 return ssh->editing;
10105 return FALSE;
10106 }
10107
10108 static void ssh_provide_ldisc(void *handle, void *ldisc)
10109 {
10110 Ssh ssh = (Ssh) handle;
10111 ssh->ldisc = ldisc;
10112 }
10113
10114 static void ssh_provide_logctx(void *handle, void *logctx)
10115 {
10116 Ssh ssh = (Ssh) handle;
10117 ssh->logctx = logctx;
10118 }
10119
10120 static int ssh_return_exitcode(void *handle)
10121 {
10122 Ssh ssh = (Ssh) handle;
10123 if (ssh->s != NULL)
10124 return -1;
10125 else
10126 return (ssh->exitcode >= 0 ? ssh->exitcode : INT_MAX);
10127 }
10128
10129 /*
10130 * cfg_info for SSH is the currently running version of the
10131 * protocol. (1 for 1; 2 for 2; 0 for not-decided-yet.)
10132 */
10133 static int ssh_cfg_info(void *handle)
10134 {
10135 Ssh ssh = (Ssh) handle;
10136 return ssh->version;
10137 }
10138
10139 /*
10140 * Gross hack: pscp will try to start SFTP but fall back to scp1 if
10141 * that fails. This variable is the means by which scp.c can reach
10142 * into the SSH code and find out which one it got.
10143 */
10144 extern int ssh_fallback_cmd(void *handle)
10145 {
10146 Ssh ssh = (Ssh) handle;
10147 return ssh->fallback_cmd;
10148 }
10149
10150 Backend ssh_backend = {
10151 ssh_init,
10152 ssh_free,
10153 ssh_reconfig,
10154 ssh_send,
10155 ssh_sendbuffer,
10156 ssh_size,
10157 ssh_special,
10158 ssh_get_specials,
10159 ssh_connected,
10160 ssh_return_exitcode,
10161 ssh_sendok,
10162 ssh_ldisc,
10163 ssh_provide_ldisc,
10164 ssh_provide_logctx,
10165 ssh_unthrottle,
10166 ssh_cfg_info,
10167 "ssh",
10168 PROT_SSH,
10169 22
10170 };