Move the 'vers' resources for Mac OS into their own file, to be shared
[u/mdw/putty] / import.c
CommitLineData
9dda6459 1/*
2 * Code for PuTTY to import and export private key files in other
3 * SSH clients' formats.
4 */
5
6#include <stdio.h>
7#include <stdlib.h>
8#include <assert.h>
9#include <ctype.h>
10
9a30e26b 11#include "putty.h"
9dda6459 12#include "ssh.h"
13#include "misc.h"
14
15#define PUT_32BIT(cp, value) do { \
96d19bc9 16 (cp)[3] = (unsigned char)(value); \
17 (cp)[2] = (unsigned char)((value) >> 8); \
18 (cp)[1] = (unsigned char)((value) >> 16); \
19 (cp)[0] = (unsigned char)((value) >> 24); } while (0)
9dda6459 20
21#define GET_32BIT(cp) \
22 (((unsigned long)(unsigned char)(cp)[0] << 24) | \
23 ((unsigned long)(unsigned char)(cp)[1] << 16) | \
24 ((unsigned long)(unsigned char)(cp)[2] << 8) | \
25 ((unsigned long)(unsigned char)(cp)[3]))
26
9a30e26b 27int openssh_encrypted(const Filename *filename);
28struct ssh2_userkey *openssh_read(const Filename *filename, char *passphrase);
29int openssh_write(const Filename *filename, struct ssh2_userkey *key,
30 char *passphrase);
9dda6459 31
9a30e26b 32int sshcom_encrypted(const Filename *filename, char **comment);
33struct ssh2_userkey *sshcom_read(const Filename *filename, char *passphrase);
34int sshcom_write(const Filename *filename, struct ssh2_userkey *key,
35 char *passphrase);
7b4ef1ae 36
9dda6459 37/*
38 * Given a key type, determine whether we know how to import it.
39 */
40int import_possible(int type)
41{
42 if (type == SSH_KEYTYPE_OPENSSH)
43 return 1;
7b4ef1ae 44 if (type == SSH_KEYTYPE_SSHCOM)
45 return 1;
9dda6459 46 return 0;
47}
48
49/*
50 * Given a key type, determine what native key type
51 * (SSH_KEYTYPE_SSH1 or SSH_KEYTYPE_SSH2) it will come out as once
52 * we've imported it.
53 */
54int import_target_type(int type)
55{
56 /*
57 * There are no known foreign SSH1 key formats.
58 */
59 return SSH_KEYTYPE_SSH2;
60}
61
62/*
63 * Determine whether a foreign key is encrypted.
64 */
9a30e26b 65int import_encrypted(const Filename *filename, int type, char **comment)
9dda6459 66{
67 if (type == SSH_KEYTYPE_OPENSSH) {
9a30e26b 68 /* OpenSSH doesn't do key comments */
9fab77dc 69 *comment = dupstr(filename_to_str(filename));
9dda6459 70 return openssh_encrypted(filename);
71 }
7b4ef1ae 72 if (type == SSH_KEYTYPE_SSHCOM) {
73 return sshcom_encrypted(filename, comment);
74 }
9dda6459 75 return 0;
76}
77
78/*
79 * Import an SSH1 key.
80 */
9a30e26b 81int import_ssh1(const Filename *filename, int type,
82 struct RSAKey *key, char *passphrase)
9dda6459 83{
84 return 0;
85}
86
87/*
88 * Import an SSH2 key.
89 */
9a30e26b 90struct ssh2_userkey *import_ssh2(const Filename *filename, int type,
91 char *passphrase)
9dda6459 92{
93 if (type == SSH_KEYTYPE_OPENSSH)
94 return openssh_read(filename, passphrase);
7b4ef1ae 95 if (type == SSH_KEYTYPE_SSHCOM)
96 return sshcom_read(filename, passphrase);
9dda6459 97 return NULL;
98}
99
4801c01c 100/*
101 * Export an SSH1 key.
102 */
9a30e26b 103int export_ssh1(const Filename *filename, int type, struct RSAKey *key,
104 char *passphrase)
4801c01c 105{
106 return 0;
107}
108
109/*
110 * Export an SSH2 key.
111 */
9a30e26b 112int export_ssh2(const Filename *filename, int type,
4801c01c 113 struct ssh2_userkey *key, char *passphrase)
114{
4801c01c 115 if (type == SSH_KEYTYPE_OPENSSH)
116 return openssh_write(filename, key, passphrase);
117 if (type == SSH_KEYTYPE_SSHCOM)
118 return sshcom_write(filename, key, passphrase);
4801c01c 119 return 0;
120}
121
9dda6459 122/* ----------------------------------------------------------------------
123 * Helper routines. (The base64 ones are defined in sshpubk.c.)
124 */
125
126#define isbase64(c) ( ((c) >= 'A' && (c) <= 'Z') || \
127 ((c) >= 'a' && (c) <= 'z') || \
128 ((c) >= '0' && (c) <= '9') || \
129 (c) == '+' || (c) == '/' || (c) == '=' \
130 )
131
9dda6459 132/*
133 * Read an ASN.1/BER identifier and length pair.
134 *
135 * Flags are a combination of the #defines listed below.
136 *
137 * Returns -1 if unsuccessful; otherwise returns the number of
138 * bytes used out of the source data.
139 */
140
141/* ASN.1 tag classes. */
142#define ASN1_CLASS_UNIVERSAL (0 << 6)
143#define ASN1_CLASS_APPLICATION (1 << 6)
144#define ASN1_CLASS_CONTEXT_SPECIFIC (2 << 6)
145#define ASN1_CLASS_PRIVATE (3 << 6)
146#define ASN1_CLASS_MASK (3 << 6)
147
148/* Primitive versus constructed bit. */
149#define ASN1_CONSTRUCTED (1 << 5)
150
151int ber_read_id_len(void *source, int sourcelen,
152 int *id, int *length, int *flags)
153{
154 unsigned char *p = (unsigned char *) source;
155
156 if (sourcelen == 0)
157 return -1;
158
159 *flags = (*p & 0xE0);
160 if ((*p & 0x1F) == 0x1F) {
161 *id = 0;
162 while (*p & 0x80) {
163 *id = (*id << 7) | (*p & 0x7F);
164 p++, sourcelen--;
165 if (sourcelen == 0)
166 return -1;
167 }
168 *id = (*id << 7) | (*p & 0x7F);
169 p++, sourcelen--;
170 } else {
171 *id = *p & 0x1F;
172 p++, sourcelen--;
173 }
174
175 if (sourcelen == 0)
176 return -1;
177
178 if (*p & 0x80) {
179 int n = *p & 0x7F;
180 p++, sourcelen--;
181 if (sourcelen < n)
182 return -1;
183 *length = 0;
184 while (n--)
185 *length = (*length << 8) | (*p++);
186 sourcelen -= n;
187 } else {
188 *length = *p;
189 p++, sourcelen--;
190 }
191
192 return p - (unsigned char *) source;
193}
194
d23a9b21 195/*
196 * Write an ASN.1/BER identifier and length pair. Returns the
197 * number of bytes consumed. Assumes dest contains enough space.
198 * Will avoid writing anything if dest is NULL, but still return
199 * amount of space required.
200 */
201int ber_write_id_len(void *dest, int id, int length, int flags)
202{
203 unsigned char *d = (unsigned char *)dest;
204 int len = 0;
205
206 if (id <= 30) {
207 /*
208 * Identifier is one byte.
209 */
210 len++;
211 if (d) *d++ = id | flags;
212 } else {
213 int n;
214 /*
215 * Identifier is multiple bytes: the first byte is 11111
216 * plus the flags, and subsequent bytes encode the value of
217 * the identifier, 7 bits at a time, with the top bit of
218 * each byte 1 except the last one which is 0.
219 */
220 len++;
221 if (d) *d++ = 0x1F | flags;
222 for (n = 1; (id >> (7*n)) > 0; n++)
223 continue; /* count the bytes */
224 while (n--) {
225 len++;
226 if (d) *d++ = (n ? 0x80 : 0) | ((id >> (7*n)) & 0x7F);
227 }
228 }
229
230 if (length < 128) {
231 /*
232 * Length is one byte.
233 */
234 len++;
235 if (d) *d++ = length;
236 } else {
237 int n;
238 /*
239 * Length is multiple bytes. The first is 0x80 plus the
240 * number of subsequent bytes, and the subsequent bytes
241 * encode the actual length.
242 */
243 for (n = 1; (length >> (8*n)) > 0; n++)
244 continue; /* count the bytes */
245 len++;
246 if (d) *d++ = 0x80 | n;
247 while (n--) {
248 len++;
249 if (d) *d++ = (length >> (8*n)) & 0xFF;
250 }
251 }
252
253 return len;
254}
255
7b4ef1ae 256static int put_string(void *target, void *data, int len)
257{
258 unsigned char *d = (unsigned char *)target;
259
260 PUT_32BIT(d, len);
261 memcpy(d+4, data, len);
262 return len+4;
263}
264
265static int put_mp(void *target, void *data, int len)
266{
267 unsigned char *d = (unsigned char *)target;
268 unsigned char *i = (unsigned char *)data;
269
270 if (*i & 0x80) {
271 PUT_32BIT(d, len+1);
272 d[4] = 0;
273 memcpy(d+5, data, len);
274 return len+5;
275 } else {
276 PUT_32BIT(d, len);
277 memcpy(d+4, data, len);
278 return len+4;
279 }
280}
281
d23a9b21 282/* Simple structure to point to an mp-int within a blob. */
283struct mpint_pos { void *start; int bytes; };
284
285int ssh2_read_mpint(void *data, int len, struct mpint_pos *ret)
286{
287 int bytes;
288 unsigned char *d = (unsigned char *) data;
289
290 if (len < 4)
291 goto error;
292 bytes = GET_32BIT(d);
293 if (len < 4+bytes)
294 goto error;
295
296 ret->start = d + 4;
297 ret->bytes = bytes;
298 return bytes+4;
299
300 error:
301 ret->start = NULL;
302 ret->bytes = -1;
303 return len; /* ensure further calls fail as well */
304}
305
9dda6459 306/* ----------------------------------------------------------------------
d23a9b21 307 * Code to read and write OpenSSH private keys.
9dda6459 308 */
309
310enum { OSSH_DSA, OSSH_RSA };
311struct openssh_key {
312 int type;
313 int encrypted;
314 char iv[32];
315 unsigned char *keyblob;
316 int keyblob_len, keyblob_size;
317};
318
9a30e26b 319struct openssh_key *load_openssh_key(const Filename *filename)
9dda6459 320{
321 struct openssh_key *ret;
322 FILE *fp;
323 char buffer[256];
324 char *errmsg, *p;
325 int headers_done;
ee5c1422 326 char base64_bit[4];
327 int base64_chars = 0;
9dda6459 328
329 ret = smalloc(sizeof(*ret));
330 ret->keyblob = NULL;
331 ret->keyblob_len = ret->keyblob_size = 0;
332 ret->encrypted = 0;
333 memset(ret->iv, 0, sizeof(ret->iv));
334
9a30e26b 335 fp = f_open(*filename, "r");
9dda6459 336 if (!fp) {
337 errmsg = "Unable to open key file";
338 goto error;
339 }
340 if (!fgets(buffer, sizeof(buffer), fp) ||
341 0 != strncmp(buffer, "-----BEGIN ", 11) ||
342 0 != strcmp(buffer+strlen(buffer)-17, "PRIVATE KEY-----\n")) {
343 errmsg = "File does not begin with OpenSSH key header";
344 goto error;
345 }
346 if (!strcmp(buffer, "-----BEGIN RSA PRIVATE KEY-----\n"))
347 ret->type = OSSH_RSA;
348 else if (!strcmp(buffer, "-----BEGIN DSA PRIVATE KEY-----\n"))
349 ret->type = OSSH_DSA;
350 else {
351 errmsg = "Unrecognised key type";
352 goto error;
353 }
354
355 headers_done = 0;
356 while (1) {
357 if (!fgets(buffer, sizeof(buffer), fp)) {
358 errmsg = "Unexpected end of file";
359 goto error;
360 }
361 if (0 == strncmp(buffer, "-----END ", 9) &&
362 0 == strcmp(buffer+strlen(buffer)-17, "PRIVATE KEY-----\n"))
363 break; /* done */
364 if ((p = strchr(buffer, ':')) != NULL) {
365 if (headers_done) {
366 errmsg = "Header found in body of key data";
367 goto error;
368 }
369 *p++ = '\0';
370 while (*p && isspace((unsigned char)*p)) p++;
371 if (!strcmp(buffer, "Proc-Type")) {
372 if (p[0] != '4' || p[1] != ',') {
373 errmsg = "Proc-Type is not 4 (only 4 is supported)";
374 goto error;
375 }
376 p += 2;
377 if (!strcmp(p, "ENCRYPTED\n"))
378 ret->encrypted = 1;
379 } else if (!strcmp(buffer, "DEK-Info")) {
380 int i, j;
381
382 if (strncmp(p, "DES-EDE3-CBC,", 13)) {
383 errmsg = "Ciphers other than DES-EDE3-CBC not supported";
384 goto error;
385 }
386 p += 13;
387 for (i = 0; i < 8; i++) {
388 if (1 != sscanf(p, "%2x", &j))
389 break;
390 ret->iv[i] = j;
391 p += 2;
392 }
393 if (i < 8) {
394 errmsg = "Expected 16-digit iv in DEK-Info";
395 goto error;
396 }
397 }
398 } else {
399 headers_done = 1;
400
401 p = buffer;
ee5c1422 402 while (isbase64(*p)) {
403 base64_bit[base64_chars++] = *p;
404 if (base64_chars == 4) {
405 unsigned char out[3];
406 int len;
9dda6459 407
ee5c1422 408 base64_chars = 0;
9dda6459 409
ee5c1422 410 len = base64_decode_atom(base64_bit, out);
9dda6459 411
ee5c1422 412 if (len <= 0) {
413 errmsg = "Invalid base64 encoding";
414 goto error;
415 }
416
417 if (ret->keyblob_len + len > ret->keyblob_size) {
418 ret->keyblob_size = ret->keyblob_len + len + 256;
419 ret->keyblob = srealloc(ret->keyblob, ret->keyblob_size);
420 }
9dda6459 421
ee5c1422 422 memcpy(ret->keyblob + ret->keyblob_len, out, len);
423 ret->keyblob_len += len;
9dda6459 424
ee5c1422 425 memset(out, 0, sizeof(out));
426 }
9dda6459 427
ee5c1422 428 p++;
9dda6459 429 }
430 }
431 }
432
433 if (ret->keyblob_len == 0 || !ret->keyblob) {
434 errmsg = "Key body not present";
435 goto error;
436 }
437
438 if (ret->encrypted && ret->keyblob_len % 8 != 0) {
439 errmsg = "Encrypted key blob is not a multiple of cipher block size";
440 goto error;
441 }
442
ee5c1422 443 memset(buffer, 0, sizeof(buffer));
444 memset(base64_bit, 0, sizeof(base64_bit));
9dda6459 445 return ret;
446
447 error:
ee5c1422 448 memset(buffer, 0, sizeof(buffer));
449 memset(base64_bit, 0, sizeof(base64_bit));
9dda6459 450 if (ret) {
ee5c1422 451 if (ret->keyblob) {
452 memset(ret->keyblob, 0, ret->keyblob_size);
453 sfree(ret->keyblob);
454 }
455 memset(&ret, 0, sizeof(ret));
9dda6459 456 sfree(ret);
457 }
458 return NULL;
459}
460
9a30e26b 461int openssh_encrypted(const Filename *filename)
9dda6459 462{
463 struct openssh_key *key = load_openssh_key(filename);
464 int ret;
465
466 if (!key)
467 return 0;
468 ret = key->encrypted;
ee5c1422 469 memset(key->keyblob, 0, key->keyblob_size);
9dda6459 470 sfree(key->keyblob);
ee5c1422 471 memset(&key, 0, sizeof(key));
9dda6459 472 sfree(key);
473 return ret;
474}
475
9a30e26b 476struct ssh2_userkey *openssh_read(const Filename *filename, char *passphrase)
9dda6459 477{
478 struct openssh_key *key = load_openssh_key(filename);
479 struct ssh2_userkey *retkey;
480 unsigned char *p;
481 int ret, id, len, flags;
482 int i, num_integers;
483 struct ssh2_userkey *retval = NULL;
484 char *errmsg;
485 unsigned char *blob;
ee5c1422 486 int blobsize, blobptr, privptr;
9dda6459 487 char *modptr;
488 int modlen;
489
e3498db5 490 blob = NULL;
491
9dda6459 492 if (!key)
493 return NULL;
494
495 if (key->encrypted) {
496 /*
497 * Derive encryption key from passphrase and iv/salt:
498 *
499 * - let block A equal MD5(passphrase || iv)
500 * - let block B equal MD5(A || passphrase || iv)
501 * - block C would be MD5(B || passphrase || iv) and so on
502 * - encryption key is the first N bytes of A || B
503 */
504 struct MD5Context md5c;
505 unsigned char keybuf[32];
506
507 MD5Init(&md5c);
201188af 508 MD5Update(&md5c, (unsigned char *)passphrase, strlen(passphrase));
509 MD5Update(&md5c, (unsigned char *)key->iv, 8);
9dda6459 510 MD5Final(keybuf, &md5c);
511
512 MD5Init(&md5c);
513 MD5Update(&md5c, keybuf, 16);
201188af 514 MD5Update(&md5c, (unsigned char *)passphrase, strlen(passphrase));
515 MD5Update(&md5c, (unsigned char *)key->iv, 8);
9dda6459 516 MD5Final(keybuf+16, &md5c);
517
518 /*
519 * Now decrypt the key blob.
520 */
201188af 521 des3_decrypt_pubkey_ossh(keybuf, (unsigned char *)key->iv,
9dda6459 522 key->keyblob, key->keyblob_len);
ee5c1422 523
524 memset(&md5c, 0, sizeof(md5c));
525 memset(keybuf, 0, sizeof(keybuf));
9dda6459 526 }
527
528 /*
529 * Now we have a decrypted key blob, which contains an ASN.1
530 * encoded private key. We must now untangle the ASN.1.
531 *
532 * We expect the whole key blob to be formatted as a SEQUENCE
533 * (0x30 followed by a length code indicating that the rest of
534 * the blob is part of the sequence). Within that SEQUENCE we
535 * expect to see a bunch of INTEGERs. What those integers mean
536 * depends on the key type:
537 *
538 * - For RSA, we expect the integers to be 0, n, e, d, p, q,
539 * dmp1, dmq1, iqmp in that order. (The last three are d mod
540 * (p-1), d mod (q-1), inverse of q mod p respectively.)
541 *
542 * - For DSA, we expect them to be 0, p, q, g, y, x in that
543 * order.
544 */
545
546 p = key->keyblob;
547
548 /* Expect the SEQUENCE header. Take its absence as a failure to decrypt. */
549 ret = ber_read_id_len(p, key->keyblob_len, &id, &len, &flags);
550 p += ret;
551 if (ret < 0 || id != 16) {
552 errmsg = "ASN.1 decoding failure";
553 retval = SSH2_WRONG_PASSPHRASE;
554 goto error;
555 }
556
557 /* Expect a load of INTEGERs. */
558 if (key->type == OSSH_RSA)
559 num_integers = 9;
560 else if (key->type == OSSH_DSA)
561 num_integers = 6;
562
563 /*
564 * Space to create key blob in.
565 */
ee5c1422 566 blobsize = 256+key->keyblob_len;
567 blob = smalloc(blobsize);
9dda6459 568 PUT_32BIT(blob, 7);
569 if (key->type == OSSH_DSA)
570 memcpy(blob+4, "ssh-dss", 7);
571 else if (key->type == OSSH_RSA)
572 memcpy(blob+4, "ssh-rsa", 7);
573 blobptr = 4+7;
574 privptr = -1;
575
576 for (i = 0; i < num_integers; i++) {
577 ret = ber_read_id_len(p, key->keyblob+key->keyblob_len-p,
578 &id, &len, &flags);
579 p += ret;
580 if (ret < 0 || id != 2 ||
581 key->keyblob+key->keyblob_len-p < len) {
582 errmsg = "ASN.1 decoding failure";
583 goto error;
584 }
585
586 if (i == 0) {
587 /*
588 * The first integer should be zero always (I think
589 * this is some sort of version indication).
590 */
591 if (len != 1 || p[0] != 0) {
592 errmsg = "Version number mismatch";
593 goto error;
594 }
595 } else if (key->type == OSSH_RSA) {
596 /*
597 * Integers 1 and 2 go into the public blob but in the
598 * opposite order; integers 3, 4, 5 and 8 go into the
599 * private blob. The other two (6 and 7) are ignored.
600 */
601 if (i == 1) {
602 /* Save the details for after we deal with number 2. */
201188af 603 modptr = (char *)p;
9dda6459 604 modlen = len;
605 } else if (i != 6 && i != 7) {
606 PUT_32BIT(blob+blobptr, len);
607 memcpy(blob+blobptr+4, p, len);
608 blobptr += 4+len;
609 if (i == 2) {
610 PUT_32BIT(blob+blobptr, modlen);
611 memcpy(blob+blobptr+4, modptr, modlen);
612 blobptr += 4+modlen;
613 privptr = blobptr;
614 }
615 }
616 } else if (key->type == OSSH_DSA) {
617 /*
618 * Integers 1-4 go into the public blob; integer 5 goes
619 * into the private blob.
620 */
621 PUT_32BIT(blob+blobptr, len);
622 memcpy(blob+blobptr+4, p, len);
623 blobptr += 4+len;
624 if (i == 4)
625 privptr = blobptr;
626 }
627
628 /* Skip past the number. */
629 p += len;
630 }
631
632 /*
633 * Now put together the actual key. Simplest way to do this is
634 * to assemble our own key blobs and feed them to the createkey
635 * functions; this is a bit faffy but it does mean we get all
636 * the sanity checks for free.
637 */
638 assert(privptr > 0); /* should have bombed by now if not */
639 retkey = smalloc(sizeof(struct ssh2_userkey));
640 retkey->alg = (key->type == OSSH_RSA ? &ssh_rsa : &ssh_dss);
641 retkey->data = retkey->alg->createkey(blob, privptr,
642 blob+privptr, blobptr-privptr);
643 if (!retkey->data) {
644 sfree(retkey);
645 errmsg = "unable to create key data structure";
646 goto error;
647 }
648
649 retkey->comment = dupstr("imported-openssh-key");
ee5c1422 650 errmsg = NULL; /* no error */
651 retval = retkey;
9dda6459 652
653 error:
ee5c1422 654 if (blob) {
655 memset(blob, 0, blobsize);
656 sfree(blob);
657 }
658 memset(key->keyblob, 0, key->keyblob_size);
9dda6459 659 sfree(key->keyblob);
ee5c1422 660 memset(&key, 0, sizeof(key));
9dda6459 661 sfree(key);
662 return retval;
663}
7b4ef1ae 664
9a30e26b 665int openssh_write(const Filename *filename, struct ssh2_userkey *key,
666 char *passphrase)
d23a9b21 667{
668 unsigned char *pubblob, *privblob, *spareblob;
669 int publen, privlen, sparelen;
670 unsigned char *outblob;
671 int outlen;
672 struct mpint_pos numbers[9];
673 int nnumbers, pos, len, seqlen, i;
674 char *header, *footer;
675 char zero[1];
676 unsigned char iv[8];
677 int ret = 0;
678 FILE *fp;
679
680 /*
681 * Fetch the key blobs.
682 */
683 pubblob = key->alg->public_blob(key->data, &publen);
684 privblob = key->alg->private_blob(key->data, &privlen);
685 spareblob = outblob = NULL;
686
687 /*
688 * Find the sequence of integers to be encoded into the OpenSSH
689 * key blob, and also decide on the header line.
690 */
691 if (key->alg == &ssh_rsa) {
692 int pos;
693 struct mpint_pos n, e, d, p, q, iqmp, dmp1, dmq1;
694 Bignum bd, bp, bq, bdmp1, bdmq1;
695
696 pos = 4 + GET_32BIT(pubblob);
697 pos += ssh2_read_mpint(pubblob+pos, publen-pos, &e);
698 pos += ssh2_read_mpint(pubblob+pos, publen-pos, &n);
699 pos = 0;
700 pos += ssh2_read_mpint(privblob+pos, privlen-pos, &d);
701 pos += ssh2_read_mpint(privblob+pos, privlen-pos, &p);
702 pos += ssh2_read_mpint(privblob+pos, privlen-pos, &q);
703 pos += ssh2_read_mpint(privblob+pos, privlen-pos, &iqmp);
704
705 assert(e.start && iqmp.start); /* can't go wrong */
706
707 /* We also need d mod (p-1) and d mod (q-1). */
708 bd = bignum_from_bytes(d.start, d.bytes);
709 bp = bignum_from_bytes(p.start, p.bytes);
710 bq = bignum_from_bytes(q.start, q.bytes);
711 decbn(bp);
712 decbn(bq);
713 bdmp1 = bigmod(bd, bp);
714 bdmq1 = bigmod(bd, bq);
715 freebn(bd);
716 freebn(bp);
717 freebn(bq);
718
719 dmp1.bytes = (bignum_bitcount(bdmp1)+8)/8;
720 dmq1.bytes = (bignum_bitcount(bdmq1)+8)/8;
721 sparelen = dmp1.bytes + dmq1.bytes;
722 spareblob = smalloc(sparelen);
723 dmp1.start = spareblob;
724 dmq1.start = spareblob + dmp1.bytes;
725 for (i = 0; i < dmp1.bytes; i++)
726 spareblob[i] = bignum_byte(bdmp1, dmp1.bytes-1 - i);
727 for (i = 0; i < dmq1.bytes; i++)
728 spareblob[i+dmp1.bytes] = bignum_byte(bdmq1, dmq1.bytes-1 - i);
729 freebn(bdmp1);
730 freebn(bdmq1);
731
732 numbers[0].start = zero; numbers[0].bytes = 1; zero[0] = '\0';
733 numbers[1] = n;
734 numbers[2] = e;
735 numbers[3] = d;
736 numbers[4] = p;
737 numbers[5] = q;
738 numbers[6] = dmp1;
739 numbers[7] = dmq1;
740 numbers[8] = iqmp;
741
742 nnumbers = 9;
743 header = "-----BEGIN RSA PRIVATE KEY-----\n";
744 footer = "-----END RSA PRIVATE KEY-----\n";
745 } else if (key->alg == &ssh_dss) {
746 int pos;
747 struct mpint_pos p, q, g, y, x;
748
749 pos = 4 + GET_32BIT(pubblob);
750 pos += ssh2_read_mpint(pubblob+pos, publen-pos, &p);
751 pos += ssh2_read_mpint(pubblob+pos, publen-pos, &q);
752 pos += ssh2_read_mpint(pubblob+pos, publen-pos, &g);
753 pos += ssh2_read_mpint(pubblob+pos, publen-pos, &y);
754 pos = 0;
755 pos += ssh2_read_mpint(privblob+pos, privlen-pos, &x);
756
757 assert(y.start && x.start); /* can't go wrong */
758
759 numbers[0].start = zero; numbers[0].bytes = 1; zero[0] = '\0';
760 numbers[1] = p;
761 numbers[2] = q;
762 numbers[3] = g;
763 numbers[4] = y;
764 numbers[5] = x;
765
766 nnumbers = 6;
767 header = "-----BEGIN DSA PRIVATE KEY-----\n";
768 footer = "-----END DSA PRIVATE KEY-----\n";
769 } else {
770 assert(0); /* zoinks! */
771 }
772
773 /*
774 * Now count up the total size of the ASN.1 encoded integers,
775 * so as to determine the length of the containing SEQUENCE.
776 */
777 len = 0;
778 for (i = 0; i < nnumbers; i++) {
779 len += ber_write_id_len(NULL, 2, numbers[i].bytes, 0);
780 len += numbers[i].bytes;
781 }
782 seqlen = len;
783 /* Now add on the SEQUENCE header. */
784 len += ber_write_id_len(NULL, 16, seqlen, ASN1_CONSTRUCTED);
04627c33 785 /* Round up to the cipher block size, ensuring we have at least one
786 * byte of padding (see below). */
787 outlen = len;
d23a9b21 788 if (passphrase)
04627c33 789 outlen = (outlen+8) &~ 7;
d23a9b21 790
791 /*
792 * Now we know how big outblob needs to be. Allocate it.
793 */
d23a9b21 794 outblob = smalloc(outlen);
795
796 /*
797 * And write the data into it.
798 */
799 pos = 0;
800 pos += ber_write_id_len(outblob+pos, 16, seqlen, ASN1_CONSTRUCTED);
801 for (i = 0; i < nnumbers; i++) {
802 pos += ber_write_id_len(outblob+pos, 2, numbers[i].bytes, 0);
803 memcpy(outblob+pos, numbers[i].start, numbers[i].bytes);
804 pos += numbers[i].bytes;
805 }
04627c33 806
807 /*
808 * Padding on OpenSSH keys is deterministic. The number of
809 * padding bytes is always more than zero, and always at most
810 * the cipher block length. The value of each padding byte is
811 * equal to the number of padding bytes. So a plaintext that's
812 * an exact multiple of the block size will be padded with 08
813 * 08 08 08 08 08 08 08 (assuming a 64-bit block cipher); a
814 * plaintext one byte less than a multiple of the block size
815 * will be padded with just 01.
816 *
817 * This enables the OpenSSL key decryption function to strip
818 * off the padding algorithmically and return the unpadded
819 * plaintext to the next layer: it looks at the final byte, and
820 * then expects to find that many bytes at the end of the data
821 * with the same value. Those are all removed and the rest is
822 * returned.
823 */
824 assert(pos == len);
d23a9b21 825 while (pos < outlen) {
04627c33 826 outblob[pos++] = outlen - len;
d23a9b21 827 }
828
829 /*
830 * Encrypt the key.
831 */
832 if (passphrase) {
833 /*
834 * Invent an iv. Then derive encryption key from passphrase
835 * and iv/salt:
836 *
837 * - let block A equal MD5(passphrase || iv)
838 * - let block B equal MD5(A || passphrase || iv)
839 * - block C would be MD5(B || passphrase || iv) and so on
840 * - encryption key is the first N bytes of A || B
841 */
842 struct MD5Context md5c;
843 unsigned char keybuf[32];
844
845 for (i = 0; i < 8; i++) iv[i] = random_byte();
846
847 MD5Init(&md5c);
201188af 848 MD5Update(&md5c, (unsigned char *)passphrase, strlen(passphrase));
d23a9b21 849 MD5Update(&md5c, iv, 8);
850 MD5Final(keybuf, &md5c);
851
852 MD5Init(&md5c);
853 MD5Update(&md5c, keybuf, 16);
201188af 854 MD5Update(&md5c, (unsigned char *)passphrase, strlen(passphrase));
d23a9b21 855 MD5Update(&md5c, iv, 8);
856 MD5Final(keybuf+16, &md5c);
857
858 /*
859 * Now encrypt the key blob.
860 */
861 des3_encrypt_pubkey_ossh(keybuf, iv, outblob, outlen);
862
863 memset(&md5c, 0, sizeof(md5c));
864 memset(keybuf, 0, sizeof(keybuf));
865 }
866
867 /*
868 * And save it. We'll use Unix line endings just in case it's
869 * subsequently transferred in binary mode.
870 */
9a30e26b 871 fp = f_open(*filename, "wb"); /* ensure Unix line endings */
d23a9b21 872 if (!fp)
873 goto error;
874 fputs(header, fp);
875 if (passphrase) {
876 fprintf(fp, "Proc-Type: 4,ENCRYPTED\nDEK-Info: DES-EDE3-CBC,");
877 for (i = 0; i < 8; i++)
878 fprintf(fp, "%02X", iv[i]);
879 fprintf(fp, "\n\n");
880 }
96d19bc9 881 base64_encode(fp, outblob, outlen, 64);
d23a9b21 882 fputs(footer, fp);
883 fclose(fp);
884 ret = 1;
885
886 error:
887 if (outblob) {
888 memset(outblob, 0, outlen);
889 sfree(outblob);
890 }
891 if (spareblob) {
892 memset(spareblob, 0, sparelen);
893 sfree(spareblob);
894 }
895 if (privblob) {
896 memset(privblob, 0, privlen);
897 sfree(privblob);
898 }
899 if (pubblob) {
900 memset(pubblob, 0, publen);
901 sfree(pubblob);
902 }
903 return ret;
904}
905
7b4ef1ae 906/* ----------------------------------------------------------------------
907 * Code to read ssh.com private keys.
908 */
909
910/*
911 * The format of the base64 blob is largely ssh2-packet-formatted,
912 * except that mpints are a bit different: they're more like the
913 * old ssh1 mpint. You have a 32-bit bit count N, followed by
914 * (N+7)/8 bytes of data.
915 *
916 * So. The blob contains:
917 *
918 * - uint32 0x3f6ff9eb (magic number)
919 * - uint32 size (total blob size)
920 * - string key-type (see below)
921 * - string cipher-type (tells you if key is encrypted)
922 * - string encrypted-blob
923 *
924 * (The first size field includes the size field itself and the
925 * magic number before it. All other size fields are ordinary ssh2
926 * strings, so the size field indicates how much data is to
927 * _follow_.)
928 *
929 * The encrypted blob, once decrypted, contains a single string
930 * which in turn contains the payload. (This allows padding to be
931 * added after that string while still making it clear where the
932 * real payload ends. Also it probably makes for a reasonable
933 * decryption check.)
934 *
935 * The payload blob, for an RSA key, contains:
936 * - mpint e
937 * - mpint d
938 * - mpint n (yes, the public and private stuff is intermixed)
939 * - mpint u (presumably inverse of p mod q)
940 * - mpint p (p is the smaller prime)
941 * - mpint q (q is the larger)
942 *
943 * For a DSA key, the payload blob contains:
944 * - uint32 0
945 * - mpint p
946 * - mpint g
947 * - mpint q
948 * - mpint y
949 * - mpint x
950 *
951 * Alternatively, if the parameters are `predefined', that
952 * (0,p,g,q) sequence can be replaced by a uint32 1 and a string
953 * containing some predefined parameter specification. *shudder*,
954 * but I doubt we'll encounter this in real life.
955 *
956 * The key type strings are ghastly. The RSA key I looked at had a
957 * type string of
958 *
959 * `if-modn{sign{rsa-pkcs1-sha1},encrypt{rsa-pkcs1v2-oaep}}'
960 *
961 * and the DSA key wasn't much better:
962 *
963 * `dl-modp{sign{dsa-nist-sha1},dh{plain}}'
964 *
965 * It isn't clear that these will always be the same. I think it
966 * might be wise just to look at the `if-modn{sign{rsa' and
967 * `dl-modp{sign{dsa' prefixes.
968 *
969 * Finally, the encryption. The cipher-type string appears to be
970 * either `none' or `3des-cbc'. Looks as if this is SSH2-style
971 * 3des-cbc (i.e. outer cbc rather than inner). The key is created
972 * from the passphrase by means of yet another hashing faff:
973 *
974 * - first 16 bytes are MD5(passphrase)
975 * - next 16 bytes are MD5(passphrase || first 16 bytes)
976 * - if there were more, they'd be MD5(passphrase || first 32),
977 * and so on.
978 */
979
96d19bc9 980#define SSHCOM_MAGIC_NUMBER 0x3f6ff9eb
981
7b4ef1ae 982struct sshcom_key {
983 char comment[256]; /* allowing any length is overkill */
984 unsigned char *keyblob;
985 int keyblob_len, keyblob_size;
986};
987
9a30e26b 988struct sshcom_key *load_sshcom_key(const Filename *filename)
7b4ef1ae 989{
990 struct sshcom_key *ret;
991 FILE *fp;
992 char buffer[256];
993 int len;
994 char *errmsg, *p;
995 int headers_done;
996 char base64_bit[4];
997 int base64_chars = 0;
998
999 ret = smalloc(sizeof(*ret));
1000 ret->comment[0] = '\0';
1001 ret->keyblob = NULL;
1002 ret->keyblob_len = ret->keyblob_size = 0;
1003
9a30e26b 1004 fp = f_open(*filename, "r");
7b4ef1ae 1005 if (!fp) {
1006 errmsg = "Unable to open key file";
1007 goto error;
1008 }
1009 if (!fgets(buffer, sizeof(buffer), fp) ||
1010 0 != strcmp(buffer, "---- BEGIN SSH2 ENCRYPTED PRIVATE KEY ----\n")) {
1011 errmsg = "File does not begin with ssh.com key header";
1012 goto error;
1013 }
1014
1015 headers_done = 0;
1016 while (1) {
1017 if (!fgets(buffer, sizeof(buffer), fp)) {
1018 errmsg = "Unexpected end of file";
1019 goto error;
1020 }
1021 if (!strcmp(buffer, "---- END SSH2 ENCRYPTED PRIVATE KEY ----\n"))
1022 break; /* done */
1023 if ((p = strchr(buffer, ':')) != NULL) {
1024 if (headers_done) {
1025 errmsg = "Header found in body of key data";
1026 goto error;
1027 }
1028 *p++ = '\0';
1029 while (*p && isspace((unsigned char)*p)) p++;
1030 /*
1031 * Header lines can end in a trailing backslash for
1032 * continuation.
1033 */
6ef15436 1034 while ((len = strlen(p)) > (int)(sizeof(buffer) - (p-buffer) -1) ||
7b4ef1ae 1035 p[len-1] != '\n' || p[len-2] == '\\') {
6ef15436 1036 if (len > (int)((p-buffer) + sizeof(buffer)-2)) {
7b4ef1ae 1037 errmsg = "Header line too long to deal with";
1038 goto error;
1039 }
1040 if (!fgets(p+len-2, sizeof(buffer)-(p-buffer)-(len-2), fp)) {
1041 errmsg = "Unexpected end of file";
1042 goto error;
1043 }
1044 }
1045 p[strcspn(p, "\n")] = '\0';
1046 if (!strcmp(buffer, "Comment")) {
1047 /* Strip quotes in comment if present. */
1048 if (p[0] == '"' && p[strlen(p)-1] == '"') {
1049 p++;
1050 p[strlen(p)-1] = '\0';
1051 }
1052 strncpy(ret->comment, p, sizeof(ret->comment));
1053 ret->comment[sizeof(ret->comment)-1] = '\0';
1054 }
1055 } else {
1056 headers_done = 1;
1057
1058 p = buffer;
1059 while (isbase64(*p)) {
1060 base64_bit[base64_chars++] = *p;
1061 if (base64_chars == 4) {
1062 unsigned char out[3];
1063
1064 base64_chars = 0;
1065
1066 len = base64_decode_atom(base64_bit, out);
1067
1068 if (len <= 0) {
1069 errmsg = "Invalid base64 encoding";
1070 goto error;
1071 }
1072
1073 if (ret->keyblob_len + len > ret->keyblob_size) {
1074 ret->keyblob_size = ret->keyblob_len + len + 256;
1075 ret->keyblob = srealloc(ret->keyblob, ret->keyblob_size);
1076 }
1077
1078 memcpy(ret->keyblob + ret->keyblob_len, out, len);
1079 ret->keyblob_len += len;
1080 }
1081
1082 p++;
1083 }
1084 }
1085 }
1086
1087 if (ret->keyblob_len == 0 || !ret->keyblob) {
1088 errmsg = "Key body not present";
1089 goto error;
1090 }
1091
1092 return ret;
1093
1094 error:
1095 if (ret) {
ee5c1422 1096 if (ret->keyblob) {
1097 memset(ret->keyblob, 0, ret->keyblob_size);
1098 sfree(ret->keyblob);
1099 }
1100 memset(&ret, 0, sizeof(ret));
7b4ef1ae 1101 sfree(ret);
1102 }
1103 return NULL;
1104}
1105
9a30e26b 1106int sshcom_encrypted(const Filename *filename, char **comment)
7b4ef1ae 1107{
1108 struct sshcom_key *key = load_sshcom_key(filename);
1109 int pos, len, answer;
1110
1111 *comment = NULL;
1112 if (!key)
1113 return 0;
1114
1115 /*
1116 * Check magic number.
1117 */
1118 if (GET_32BIT(key->keyblob) != 0x3f6ff9eb)
1119 return 0; /* key is invalid */
1120
1121 /*
1122 * Find the cipher-type string.
1123 */
1124 answer = 0;
1125 pos = 8;
1126 if (key->keyblob_len < pos+4)
1127 goto done; /* key is far too short */
1128 pos += 4 + GET_32BIT(key->keyblob + pos); /* skip key type */
1129 if (key->keyblob_len < pos+4)
1130 goto done; /* key is far too short */
1131 len = GET_32BIT(key->keyblob + pos); /* find cipher-type length */
1132 if (key->keyblob_len < pos+4+len)
1133 goto done; /* cipher type string is incomplete */
1134 if (len != 4 || 0 != memcmp(key->keyblob + pos + 4, "none", 4))
1135 answer = 1;
1136
1137 done:
1138 *comment = dupstr(key->comment);
ee5c1422 1139 memset(key->keyblob, 0, key->keyblob_size);
7b4ef1ae 1140 sfree(key->keyblob);
ee5c1422 1141 memset(&key, 0, sizeof(key));
7b4ef1ae 1142 sfree(key);
1143 return answer;
1144}
1145
7b4ef1ae 1146int sshcom_read_mpint(void *data, int len, struct mpint_pos *ret)
1147{
1148 int bits;
1149 int bytes;
1150 unsigned char *d = (unsigned char *) data;
1151
1152 if (len < 4)
1153 goto error;
1154 bits = GET_32BIT(d);
1155
1156 bytes = (bits + 7) / 8;
1157 if (len < 4+bytes)
1158 goto error;
1159
1160 ret->start = d + 4;
1161 ret->bytes = bytes;
1162 return bytes+4;
1163
1164 error:
1165 ret->start = NULL;
1166 ret->bytes = -1;
1167 return len; /* ensure further calls fail as well */
1168}
1169
96d19bc9 1170static int sshcom_put_mpint(void *target, void *data, int len)
1171{
1172 unsigned char *d = (unsigned char *)target;
1173 unsigned char *i = (unsigned char *)data;
1174 int bits = len * 8 - 1;
1175
1176 while (bits > 0) {
1177 if (*i & (1 << (bits & 7)))
1178 break;
1179 if (!(bits-- & 7))
1180 i++, len--;
1181 }
1182
1183 PUT_32BIT(d, bits+1);
1184 memcpy(d+4, i, len);
1185 return len+4;
1186}
1187
9a30e26b 1188struct ssh2_userkey *sshcom_read(const Filename *filename, char *passphrase)
7b4ef1ae 1189{
1190 struct sshcom_key *key = load_sshcom_key(filename);
1191 char *errmsg;
1192 int pos, len;
1193 const char prefix_rsa[] = "if-modn{sign{rsa";
1194 const char prefix_dsa[] = "dl-modp{sign{dsa";
1195 enum { RSA, DSA } type;
1196 int encrypted;
1197 char *ciphertext;
1198 int cipherlen;
1199 struct ssh2_userkey *ret = NULL, *retkey;
1200 const struct ssh_signkey *alg;
1201 unsigned char *blob = NULL;
ee5c1422 1202 int blobsize, publen, privlen;
7b4ef1ae 1203
1204 if (!key)
1205 return NULL;
1206
1207 /*
1208 * Check magic number.
1209 */
96d19bc9 1210 if (GET_32BIT(key->keyblob) != SSHCOM_MAGIC_NUMBER) {
7b4ef1ae 1211 errmsg = "Key does not begin with magic number";
1212 goto error;
1213 }
1214
1215 /*
1216 * Determine the key type.
1217 */
1218 pos = 8;
1219 if (key->keyblob_len < pos+4 ||
1220 (len = GET_32BIT(key->keyblob + pos)) > key->keyblob_len - pos - 4) {
1221 errmsg = "Key blob does not contain a key type string";
1222 goto error;
1223 }
1224 if (len > sizeof(prefix_rsa) - 1 &&
1225 !memcmp(key->keyblob+pos+4, prefix_rsa, sizeof(prefix_rsa) - 1)) {
1226 type = RSA;
1227 } else if (len > sizeof(prefix_dsa) - 1 &&
1228 !memcmp(key->keyblob+pos+4, prefix_dsa, sizeof(prefix_dsa) - 1)) {
1229 type = DSA;
1230 } else {
1231 errmsg = "Key is of unknown type";
1232 goto error;
1233 }
1234 pos += 4+len;
1235
1236 /*
1237 * Determine the cipher type.
1238 */
1239 if (key->keyblob_len < pos+4 ||
1240 (len = GET_32BIT(key->keyblob + pos)) > key->keyblob_len - pos - 4) {
1241 errmsg = "Key blob does not contain a cipher type string";
1242 goto error;
1243 }
1244 if (len == 4 && !memcmp(key->keyblob+pos+4, "none", 4))
1245 encrypted = 0;
1246 else if (len == 8 && !memcmp(key->keyblob+pos+4, "3des-cbc", 8))
1247 encrypted = 1;
1248 else {
1249 errmsg = "Key encryption is of unknown type";
1250 goto error;
1251 }
1252 pos += 4+len;
1253
1254 /*
1255 * Get hold of the encrypted part of the key.
1256 */
1257 if (key->keyblob_len < pos+4 ||
1258 (len = GET_32BIT(key->keyblob + pos)) > key->keyblob_len - pos - 4) {
1259 errmsg = "Key blob does not contain actual key data";
1260 goto error;
1261 }
201188af 1262 ciphertext = (char *)key->keyblob + pos + 4;
7b4ef1ae 1263 cipherlen = len;
1264 if (cipherlen == 0) {
1265 errmsg = "Length of key data is zero";
1266 goto error;
1267 }
1268
1269 /*
1270 * Decrypt it if necessary.
1271 */
1272 if (encrypted) {
1273 /*
1274 * Derive encryption key from passphrase and iv/salt:
1275 *
1276 * - let block A equal MD5(passphrase)
1277 * - let block B equal MD5(passphrase || A)
1278 * - block C would be MD5(passphrase || A || B) and so on
1279 * - encryption key is the first N bytes of A || B
1280 */
1281 struct MD5Context md5c;
1282 unsigned char keybuf[32], iv[8];
1283
1284 if (cipherlen % 8 != 0) {
1285 errmsg = "Encrypted part of key is not a multiple of cipher block"
1286 " size";
1287 goto error;
1288 }
1289
1290 MD5Init(&md5c);
201188af 1291 MD5Update(&md5c, (unsigned char *)passphrase, strlen(passphrase));
7b4ef1ae 1292 MD5Final(keybuf, &md5c);
1293
1294 MD5Init(&md5c);
201188af 1295 MD5Update(&md5c, (unsigned char *)passphrase, strlen(passphrase));
7b4ef1ae 1296 MD5Update(&md5c, keybuf, 16);
1297 MD5Final(keybuf+16, &md5c);
1298
1299 /*
1300 * Now decrypt the key blob.
1301 */
ee5c1422 1302 memset(iv, 0, sizeof(iv));
201188af 1303 des3_decrypt_pubkey_ossh(keybuf, iv, (unsigned char *)ciphertext,
1304 cipherlen);
7b4ef1ae 1305
ee5c1422 1306 memset(&md5c, 0, sizeof(md5c));
1307 memset(keybuf, 0, sizeof(keybuf));
1308
7b4ef1ae 1309 /*
1310 * Hereafter we return WRONG_PASSPHRASE for any parsing
ee5c1422 1311 * error. (But only if we've just tried to decrypt it!
1312 * Returning WRONG_PASSPHRASE for an unencrypted key is
1313 * automatic doom.)
7b4ef1ae 1314 */
1315 if (encrypted)
1316 ret = SSH2_WRONG_PASSPHRASE;
1317 }
1318
1319 /*
1320 * Strip away the containing string to get to the real meat.
1321 */
1322 len = GET_32BIT(ciphertext);
1323 if (len > cipherlen-4) {
1324 errmsg = "containing string was ill-formed";
1325 goto error;
1326 }
1327 ciphertext += 4;
1328 cipherlen = len;
1329
1330 /*
1331 * Now we break down into RSA versus DSA. In either case we'll
1332 * construct public and private blobs in our own format, and
1333 * end up feeding them to alg->createkey().
1334 */
ee5c1422 1335 blobsize = cipherlen + 256;
1336 blob = smalloc(blobsize);
7b4ef1ae 1337 privlen = 0;
1338 if (type == RSA) {
1339 struct mpint_pos n, e, d, u, p, q;
1340 int pos = 0;
1341 pos += sshcom_read_mpint(ciphertext+pos, cipherlen-pos, &e);
1342 pos += sshcom_read_mpint(ciphertext+pos, cipherlen-pos, &d);
1343 pos += sshcom_read_mpint(ciphertext+pos, cipherlen-pos, &n);
1344 pos += sshcom_read_mpint(ciphertext+pos, cipherlen-pos, &u);
1345 pos += sshcom_read_mpint(ciphertext+pos, cipherlen-pos, &p);
1346 pos += sshcom_read_mpint(ciphertext+pos, cipherlen-pos, &q);
1347 if (!q.start) {
1348 errmsg = "key data did not contain six integers";
1349 goto error;
1350 }
1351
1352 alg = &ssh_rsa;
1353 pos = 0;
1354 pos += put_string(blob+pos, "ssh-rsa", 7);
1355 pos += put_mp(blob+pos, e.start, e.bytes);
1356 pos += put_mp(blob+pos, n.start, n.bytes);
1357 publen = pos;
1358 pos += put_string(blob+pos, d.start, d.bytes);
1359 pos += put_mp(blob+pos, q.start, q.bytes);
1360 pos += put_mp(blob+pos, p.start, p.bytes);
1361 pos += put_mp(blob+pos, u.start, u.bytes);
1362 privlen = pos - publen;
1363 } else if (type == DSA) {
1364 struct mpint_pos p, q, g, x, y;
1365 int pos = 4;
1366 if (GET_32BIT(ciphertext) != 0) {
1367 errmsg = "predefined DSA parameters not supported";
1368 goto error;
1369 }
1370 pos += sshcom_read_mpint(ciphertext+pos, cipherlen-pos, &p);
1371 pos += sshcom_read_mpint(ciphertext+pos, cipherlen-pos, &g);
1372 pos += sshcom_read_mpint(ciphertext+pos, cipherlen-pos, &q);
1373 pos += sshcom_read_mpint(ciphertext+pos, cipherlen-pos, &y);
1374 pos += sshcom_read_mpint(ciphertext+pos, cipherlen-pos, &x);
1375 if (!x.start) {
1376 errmsg = "key data did not contain five integers";
1377 goto error;
1378 }
1379
1380 alg = &ssh_dss;
1381 pos = 0;
1382 pos += put_string(blob+pos, "ssh-dss", 7);
1383 pos += put_mp(blob+pos, p.start, p.bytes);
1384 pos += put_mp(blob+pos, q.start, q.bytes);
1385 pos += put_mp(blob+pos, g.start, g.bytes);
1386 pos += put_mp(blob+pos, y.start, y.bytes);
1387 publen = pos;
1388 pos += put_mp(blob+pos, x.start, x.bytes);
1389 privlen = pos - publen;
1390 }
1391
1392 assert(privlen > 0); /* should have bombed by now if not */
1393
1394 retkey = smalloc(sizeof(struct ssh2_userkey));
1395 retkey->alg = alg;
1396 retkey->data = alg->createkey(blob, publen, blob+publen, privlen);
1397 if (!retkey->data) {
1398 sfree(retkey);
1399 errmsg = "unable to create key data structure";
1400 goto error;
1401 }
1402 retkey->comment = dupstr(key->comment);
1403
1404 errmsg = NULL; /* no error */
1405 ret = retkey;
1406
1407 error:
ee5c1422 1408 if (blob) {
1409 memset(blob, 0, blobsize);
1410 sfree(blob);
1411 }
1412 memset(key->keyblob, 0, key->keyblob_size);
7b4ef1ae 1413 sfree(key->keyblob);
ee5c1422 1414 memset(&key, 0, sizeof(key));
7b4ef1ae 1415 sfree(key);
1416 return ret;
1417}
96d19bc9 1418
9a30e26b 1419int sshcom_write(const Filename *filename, struct ssh2_userkey *key,
1420 char *passphrase)
96d19bc9 1421{
1422 unsigned char *pubblob, *privblob;
1423 int publen, privlen;
1424 unsigned char *outblob;
1425 int outlen;
1426 struct mpint_pos numbers[6];
1427 int nnumbers, initial_zero, pos, lenpos, i;
1428 char *type;
1429 char *ciphertext;
1430 int cipherlen;
1431 int ret = 0;
1432 FILE *fp;
1433
1434 /*
1435 * Fetch the key blobs.
1436 */
1437 pubblob = key->alg->public_blob(key->data, &publen);
1438 privblob = key->alg->private_blob(key->data, &privlen);
1439 outblob = NULL;
1440
1441 /*
1442 * Find the sequence of integers to be encoded into the OpenSSH
1443 * key blob, and also decide on the header line.
1444 */
1445 if (key->alg == &ssh_rsa) {
1446 int pos;
1447 struct mpint_pos n, e, d, p, q, iqmp;
1448
1449 pos = 4 + GET_32BIT(pubblob);
1450 pos += ssh2_read_mpint(pubblob+pos, publen-pos, &e);
1451 pos += ssh2_read_mpint(pubblob+pos, publen-pos, &n);
1452 pos = 0;
1453 pos += ssh2_read_mpint(privblob+pos, privlen-pos, &d);
1454 pos += ssh2_read_mpint(privblob+pos, privlen-pos, &p);
1455 pos += ssh2_read_mpint(privblob+pos, privlen-pos, &q);
1456 pos += ssh2_read_mpint(privblob+pos, privlen-pos, &iqmp);
1457
1458 assert(e.start && iqmp.start); /* can't go wrong */
1459
1460 numbers[0] = e;
1461 numbers[1] = d;
1462 numbers[2] = n;
1463 numbers[3] = iqmp;
1464 numbers[4] = q;
1465 numbers[5] = p;
1466
1467 nnumbers = 6;
1468 initial_zero = 0;
1469 type = "if-modn{sign{rsa-pkcs1-sha1},encrypt{rsa-pkcs1v2-oaep}}";
1470 } else if (key->alg == &ssh_dss) {
1471 int pos;
1472 struct mpint_pos p, q, g, y, x;
1473
1474 pos = 4 + GET_32BIT(pubblob);
1475 pos += ssh2_read_mpint(pubblob+pos, publen-pos, &p);
1476 pos += ssh2_read_mpint(pubblob+pos, publen-pos, &q);
1477 pos += ssh2_read_mpint(pubblob+pos, publen-pos, &g);
1478 pos += ssh2_read_mpint(pubblob+pos, publen-pos, &y);
1479 pos = 0;
1480 pos += ssh2_read_mpint(privblob+pos, privlen-pos, &x);
1481
1482 assert(y.start && x.start); /* can't go wrong */
1483
1484 numbers[0] = p;
1485 numbers[1] = g;
1486 numbers[2] = q;
1487 numbers[3] = y;
1488 numbers[4] = x;
1489
1490 nnumbers = 5;
1491 initial_zero = 1;
1492 type = "dl-modp{sign{dsa-nist-sha1},dh{plain}}";
1493 } else {
1494 assert(0); /* zoinks! */
1495 }
1496
1497 /*
1498 * Total size of key blob will be somewhere under 512 plus
1499 * combined length of integers. We'll calculate the more
1500 * precise size as we construct the blob.
1501 */
1502 outlen = 512;
1503 for (i = 0; i < nnumbers; i++)
1504 outlen += 4 + numbers[i].bytes;
1505 outblob = smalloc(outlen);
1506
1507 /*
1508 * Create the unencrypted key blob.
1509 */
1510 pos = 0;
1511 PUT_32BIT(outblob+pos, SSHCOM_MAGIC_NUMBER); pos += 4;
1512 pos += 4; /* length field, fill in later */
1513 pos += put_string(outblob+pos, type, strlen(type));
1514 {
1515 char *ciphertype = passphrase ? "3des-cbc" : "none";
1516 pos += put_string(outblob+pos, ciphertype, strlen(ciphertype));
1517 }
1518 lenpos = pos; /* remember this position */
1519 pos += 4; /* encrypted-blob size */
1520 pos += 4; /* encrypted-payload size */
1521 if (initial_zero) {
1522 PUT_32BIT(outblob+pos, 0);
1523 pos += 4;
1524 }
1525 for (i = 0; i < nnumbers; i++)
1526 pos += sshcom_put_mpint(outblob+pos,
1527 numbers[i].start, numbers[i].bytes);
1528 /* Now wrap up the encrypted payload. */
1529 PUT_32BIT(outblob+lenpos+4, pos - (lenpos+8));
1530 /* Pad encrypted blob to a multiple of cipher block size. */
1531 if (passphrase) {
1532 int padding = -(pos - (lenpos+4)) & 7;
1533 while (padding--)
1534 outblob[pos++] = random_byte();
1535 }
201188af 1536 ciphertext = (char *)outblob+lenpos+4;
96d19bc9 1537 cipherlen = pos - (lenpos+4);
1538 assert(!passphrase || cipherlen % 8 == 0);
1539 /* Wrap up the encrypted blob string. */
1540 PUT_32BIT(outblob+lenpos, cipherlen);
1541 /* And finally fill in the total length field. */
1542 PUT_32BIT(outblob+4, pos);
1543
1544 assert(pos < outlen);
1545
1546 /*
1547 * Encrypt the key.
1548 */
1549 if (passphrase) {
1550 /*
1551 * Derive encryption key from passphrase and iv/salt:
1552 *
1553 * - let block A equal MD5(passphrase)
1554 * - let block B equal MD5(passphrase || A)
1555 * - block C would be MD5(passphrase || A || B) and so on
1556 * - encryption key is the first N bytes of A || B
1557 */
1558 struct MD5Context md5c;
1559 unsigned char keybuf[32], iv[8];
1560
1561 MD5Init(&md5c);
201188af 1562 MD5Update(&md5c, (unsigned char *)passphrase, strlen(passphrase));
96d19bc9 1563 MD5Final(keybuf, &md5c);
1564
1565 MD5Init(&md5c);
201188af 1566 MD5Update(&md5c, (unsigned char *)passphrase, strlen(passphrase));
96d19bc9 1567 MD5Update(&md5c, keybuf, 16);
1568 MD5Final(keybuf+16, &md5c);
1569
1570 /*
1571 * Now decrypt the key blob.
1572 */
1573 memset(iv, 0, sizeof(iv));
201188af 1574 des3_encrypt_pubkey_ossh(keybuf, iv, (unsigned char *)ciphertext,
1575 cipherlen);
96d19bc9 1576
1577 memset(&md5c, 0, sizeof(md5c));
1578 memset(keybuf, 0, sizeof(keybuf));
1579 }
1580
1581 /*
1582 * And save it. We'll use Unix line endings just in case it's
1583 * subsequently transferred in binary mode.
1584 */
9a30e26b 1585 fp = f_open(*filename, "wb"); /* ensure Unix line endings */
96d19bc9 1586 if (!fp)
1587 goto error;
1588 fputs("---- BEGIN SSH2 ENCRYPTED PRIVATE KEY ----\n", fp);
1589 fprintf(fp, "Comment: \"");
1590 /*
1591 * Comment header is broken with backslash-newline if it goes
1592 * over 70 chars. Although it's surrounded by quotes, it
1593 * _doesn't_ escape backslashes or quotes within the string.
1594 * Don't ask me, I didn't design it.
1595 */
1596 {
1597 int slen = 60; /* starts at 60 due to "Comment: " */
1598 char *c = key->comment;
6ef15436 1599 while ((int)strlen(c) > slen) {
96d19bc9 1600 fprintf(fp, "%.*s\\\n", slen, c);
1601 c += slen;
1602 slen = 70; /* allow 70 chars on subsequent lines */
1603 }
1604 fprintf(fp, "%s\"\n", c);
1605 }
1606 base64_encode(fp, outblob, pos, 70);
1607 fputs("---- END SSH2 ENCRYPTED PRIVATE KEY ----\n", fp);
1608 fclose(fp);
1609 ret = 1;
1610
1611 error:
1612 if (outblob) {
1613 memset(outblob, 0, outlen);
1614 sfree(outblob);
1615 }
1616 if (privblob) {
1617 memset(privblob, 0, privlen);
1618 sfree(privblob);
1619 }
1620 if (pubblob) {
1621 memset(pubblob, 0, publen);
1622 sfree(pubblob);
1623 }
1624 return ret;
1625}