1 /* $OpenBSD: sshkey.c,v 1.161 2026/02/06 22:59:18 dtucker Exp $ */
2 /*
3 * Copyright (c) 2000, 2001 Markus Friedl. All rights reserved.
4 * Copyright (c) 2008 Alexander von Gernler. All rights reserved.
5 * Copyright (c) 2010,2011 Damien Miller. All rights reserved.
6 *
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that the following conditions
9 * are met:
10 * 1. Redistributions of source code must retain the above copyright
11 * notice, this list of conditions and the following disclaimer.
12 * 2. Redistributions in binary form must reproduce the above copyright
13 * notice, this list of conditions and the following disclaimer in the
14 * documentation and/or other materials provided with the distribution.
15 *
16 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
17 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
18 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
19 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
20 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
21 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
22 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
23 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
24 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
25 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
26 */
27
28 #include "includes.h"
29
30 #include <sys/types.h>
31 #include <sys/mman.h>
32 #include <netinet/in.h>
33
34 #ifdef WITH_OPENSSL
35 #include <openssl/bn.h>
36 #include <openssl/evp.h>
37 #include <openssl/err.h>
38 #include <openssl/pem.h>
39 #endif
40
41 #include "crypto_api.h"
42
43 #include <errno.h>
44 #include <limits.h>
45 #include <stdio.h>
46 #include <stdlib.h>
47 #include <string.h>
48 #include <resolv.h>
49 #include <time.h>
50 #include <util.h>
51
52 #include "ssh2.h"
53 #include "ssherr.h"
54 #include "misc.h"
55 #include "sshbuf.h"
56 #include "cipher.h"
57 #include "digest.h"
58 #define SSHKEY_INTERNAL
59 #include "sshkey.h"
60 #include "match.h"
61 #include "ssh-sk.h"
62 #include "ssh-pkcs11.h"
63
64 #include "openbsd-compat/openssl-compat.h"
65
66 /* openssh private key file format */
67 #define MARK_BEGIN "-----BEGIN OPENSSH PRIVATE KEY-----\n"
68 #define MARK_END "-----END OPENSSH PRIVATE KEY-----\n"
69 #define MARK_BEGIN_LEN (sizeof(MARK_BEGIN) - 1)
70 #define MARK_END_LEN (sizeof(MARK_END) - 1)
71 #define KDFNAME "bcrypt"
72 #define AUTH_MAGIC "openssh-key-v1"
73 #define SALT_LEN 16
74 #define DEFAULT_CIPHERNAME "aes256-ctr"
75 #define DEFAULT_ROUNDS 24
76
77 /*
78 * Constants relating to "shielding" support; protection of keys expected
79 * to remain in memory for long durations
80 */
81 #define SSHKEY_SHIELD_PREKEY_LEN (16 * 1024)
82 #define SSHKEY_SHIELD_CIPHER "aes256-ctr" /* XXX want AES-EME* */
83 #define SSHKEY_SHIELD_PREKEY_HASH SSH_DIGEST_SHA512
84
85 static int sshkey_from_blob_internal(struct sshbuf *buf,
86 struct sshkey **keyp, int allow_cert);
87
88 /* Supported key types */
89 extern const struct sshkey_impl sshkey_ed25519_impl;
90 extern const struct sshkey_impl sshkey_ed25519_cert_impl;
91 extern const struct sshkey_impl sshkey_ed25519_sk_impl;
92 extern const struct sshkey_impl sshkey_ed25519_sk_cert_impl;
93 #ifdef WITH_OPENSSL
94 # ifdef OPENSSL_HAS_ECC
95 # ifdef ENABLE_SK
96 extern const struct sshkey_impl sshkey_ecdsa_sk_impl;
97 extern const struct sshkey_impl sshkey_ecdsa_sk_cert_impl;
98 extern const struct sshkey_impl sshkey_ecdsa_sk_webauthn_impl;
99 extern const struct sshkey_impl sshkey_ecdsa_sk_webauthn_cert_impl;
100 # endif /* ENABLE_SK */
101 extern const struct sshkey_impl sshkey_ecdsa_nistp256_impl;
102 extern const struct sshkey_impl sshkey_ecdsa_nistp256_cert_impl;
103 extern const struct sshkey_impl sshkey_ecdsa_nistp384_impl;
104 extern const struct sshkey_impl sshkey_ecdsa_nistp384_cert_impl;
105 # ifdef OPENSSL_HAS_NISTP521
106 extern const struct sshkey_impl sshkey_ecdsa_nistp521_impl;
107 extern const struct sshkey_impl sshkey_ecdsa_nistp521_cert_impl;
108 # endif /* OPENSSL_HAS_NISTP521 */
109 # endif /* OPENSSL_HAS_ECC */
110 extern const struct sshkey_impl sshkey_rsa_impl;
111 extern const struct sshkey_impl sshkey_rsa_cert_impl;
112 extern const struct sshkey_impl sshkey_rsa_sha256_impl;
113 extern const struct sshkey_impl sshkey_rsa_sha256_cert_impl;
114 extern const struct sshkey_impl sshkey_rsa_sha512_impl;
115 extern const struct sshkey_impl sshkey_rsa_sha512_cert_impl;
116 #endif /* WITH_OPENSSL */
117
118 const struct sshkey_impl * const keyimpls[] = {
119 &sshkey_ed25519_impl,
120 &sshkey_ed25519_cert_impl,
121 #ifdef ENABLE_SK
122 &sshkey_ed25519_sk_impl,
123 &sshkey_ed25519_sk_cert_impl,
124 #endif
125 #ifdef WITH_OPENSSL
126 # ifdef OPENSSL_HAS_ECC
127 &sshkey_ecdsa_nistp256_impl,
128 &sshkey_ecdsa_nistp256_cert_impl,
129 &sshkey_ecdsa_nistp384_impl,
130 &sshkey_ecdsa_nistp384_cert_impl,
131 # ifdef OPENSSL_HAS_NISTP521
132 &sshkey_ecdsa_nistp521_impl,
133 &sshkey_ecdsa_nistp521_cert_impl,
134 # endif /* OPENSSL_HAS_NISTP521 */
135 # ifdef ENABLE_SK
136 &sshkey_ecdsa_sk_impl,
137 &sshkey_ecdsa_sk_cert_impl,
138 &sshkey_ecdsa_sk_webauthn_impl,
139 &sshkey_ecdsa_sk_webauthn_cert_impl,
140 # endif /* ENABLE_SK */
141 # endif /* OPENSSL_HAS_ECC */
142 &sshkey_rsa_impl,
143 &sshkey_rsa_cert_impl,
144 &sshkey_rsa_sha256_impl,
145 &sshkey_rsa_sha256_cert_impl,
146 &sshkey_rsa_sha512_impl,
147 &sshkey_rsa_sha512_cert_impl,
148 #endif /* WITH_OPENSSL */
149 NULL
150 };
151
152 static const struct sshkey_impl *
sshkey_impl_from_type(int type)153 sshkey_impl_from_type(int type)
154 {
155 int i;
156
157 for (i = 0; keyimpls[i] != NULL; i++) {
158 if (keyimpls[i]->type == type)
159 return keyimpls[i];
160 }
161 return NULL;
162 }
163
164 static const struct sshkey_impl *
sshkey_impl_from_type_nid(int type,int nid)165 sshkey_impl_from_type_nid(int type, int nid)
166 {
167 int i;
168
169 for (i = 0; keyimpls[i] != NULL; i++) {
170 if (keyimpls[i]->type == type &&
171 (keyimpls[i]->nid == 0 || keyimpls[i]->nid == nid))
172 return keyimpls[i];
173 }
174 return NULL;
175 }
176
177 static const struct sshkey_impl *
sshkey_impl_from_key(const struct sshkey * k)178 sshkey_impl_from_key(const struct sshkey *k)
179 {
180 if (k == NULL)
181 return NULL;
182 return sshkey_impl_from_type_nid(k->type, k->ecdsa_nid);
183 }
184
185 const char *
sshkey_type(const struct sshkey * k)186 sshkey_type(const struct sshkey *k)
187 {
188 const struct sshkey_impl *impl;
189
190 if ((impl = sshkey_impl_from_key(k)) == NULL)
191 return "unknown";
192 return impl->shortname;
193 }
194
195 static const char *
sshkey_ssh_name_from_type_nid(int type,int nid)196 sshkey_ssh_name_from_type_nid(int type, int nid)
197 {
198 const struct sshkey_impl *impl;
199
200 if ((impl = sshkey_impl_from_type_nid(type, nid)) == NULL)
201 return "ssh-unknown";
202 return impl->name;
203 }
204
205 int
sshkey_type_is_cert(int type)206 sshkey_type_is_cert(int type)
207 {
208 const struct sshkey_impl *impl;
209
210 if ((impl = sshkey_impl_from_type(type)) == NULL)
211 return 0;
212 return impl->cert;
213 }
214
215 const char *
sshkey_ssh_name(const struct sshkey * k)216 sshkey_ssh_name(const struct sshkey *k)
217 {
218 return sshkey_ssh_name_from_type_nid(k->type, k->ecdsa_nid);
219 }
220
221 const char *
sshkey_ssh_name_plain(const struct sshkey * k)222 sshkey_ssh_name_plain(const struct sshkey *k)
223 {
224 return sshkey_ssh_name_from_type_nid(sshkey_type_plain(k->type),
225 k->ecdsa_nid);
226 }
227
228 static int
type_from_name(const char * name,int allow_short)229 type_from_name(const char *name, int allow_short)
230 {
231 int i;
232 const struct sshkey_impl *impl;
233
234 for (i = 0; keyimpls[i] != NULL; i++) {
235 impl = keyimpls[i];
236 if (impl->name != NULL && strcmp(name, impl->name) == 0)
237 return impl->type;
238 /* Only allow shortname matches for plain key types */
239 if (allow_short && !impl->cert && impl->shortname != NULL &&
240 strcasecmp(impl->shortname, name) == 0)
241 return impl->type;
242 }
243 return KEY_UNSPEC;
244 }
245
246 int
sshkey_type_from_name(const char * name)247 sshkey_type_from_name(const char *name)
248 {
249 return type_from_name(name, 0);
250 }
251
252 int
sshkey_type_from_shortname(const char * name)253 sshkey_type_from_shortname(const char *name)
254 {
255 return type_from_name(name, 1);
256 }
257
258 static int
key_type_is_ecdsa_variant(int type)259 key_type_is_ecdsa_variant(int type)
260 {
261 switch (type) {
262 case KEY_ECDSA:
263 case KEY_ECDSA_CERT:
264 case KEY_ECDSA_SK:
265 case KEY_ECDSA_SK_CERT:
266 return 1;
267 }
268 return 0;
269 }
270
271 int
sshkey_ecdsa_nid_from_name(const char * name)272 sshkey_ecdsa_nid_from_name(const char *name)
273 {
274 int i;
275
276 for (i = 0; keyimpls[i] != NULL; i++) {
277 if (!key_type_is_ecdsa_variant(keyimpls[i]->type))
278 continue;
279 if (keyimpls[i]->name != NULL &&
280 strcmp(name, keyimpls[i]->name) == 0)
281 return keyimpls[i]->nid;
282 }
283 return -1;
284 }
285
286 int
sshkey_match_keyname_to_sigalgs(const char * keyname,const char * sigalgs)287 sshkey_match_keyname_to_sigalgs(const char *keyname, const char *sigalgs)
288 {
289 int ktype;
290
291 if (sigalgs == NULL || *sigalgs == '\0' ||
292 (ktype = sshkey_type_from_name(keyname)) == KEY_UNSPEC)
293 return 0;
294 else if (ktype == KEY_RSA) {
295 return match_pattern_list("ssh-rsa", sigalgs, 0) == 1 ||
296 match_pattern_list("rsa-sha2-256", sigalgs, 0) == 1 ||
297 match_pattern_list("rsa-sha2-512", sigalgs, 0) == 1;
298 } else if (ktype == KEY_RSA_CERT) {
299 return match_pattern_list("ssh-rsa-cert-v01@openssh.com",
300 sigalgs, 0) == 1 ||
301 match_pattern_list("rsa-sha2-256-cert-v01@openssh.com",
302 sigalgs, 0) == 1 ||
303 match_pattern_list("rsa-sha2-512-cert-v01@openssh.com",
304 sigalgs, 0) == 1;
305 } else if (ktype == KEY_ECDSA_SK) {
306 return match_pattern_list("sk-ecdsa-sha2-nistp256@openssh.com",
307 sigalgs, 0) == 1 || match_pattern_list(
308 "webauthn-sk-ecdsa-sha2-nistp256@openssh.com",
309 sigalgs, 0) == 1;
310 } else if (ktype == KEY_ECDSA_SK_CERT) {
311 return match_pattern_list(
312 "sk-ecdsa-sha2-nistp256-cert-v01@openssh.com",
313 sigalgs, 0) == 1 || match_pattern_list(
314 "webauthn-sk-ecdsa-sha2-nistp256-cert-v01@openssh.com",
315 sigalgs, 0) == 1;
316 } else
317 return match_pattern_list(keyname, sigalgs, 0) == 1;
318 }
319
320 char *
sshkey_alg_list(int certs_only,int plain_only,int include_sigonly,char sep)321 sshkey_alg_list(int certs_only, int plain_only, int include_sigonly, char sep)
322 {
323 char *ret = NULL;
324 size_t i;
325 const struct sshkey_impl *impl;
326 char sep_str[2] = {sep, '\0'};
327
328 for (i = 0; keyimpls[i] != NULL; i++) {
329 impl = keyimpls[i];
330 if (impl->name == NULL)
331 continue;
332 if (!include_sigonly && impl->sigonly)
333 continue;
334 if ((certs_only && !impl->cert) || (plain_only && impl->cert))
335 continue;
336 xextendf(&ret, sep_str, "%s", impl->name);
337 }
338 return ret;
339 }
340
341 int
sshkey_names_valid2(const char * names,int allow_wildcard,int plain_only)342 sshkey_names_valid2(const char *names, int allow_wildcard, int plain_only)
343 {
344 char *s, *cp, *p;
345 const struct sshkey_impl *impl;
346 int i, type;
347
348 if (names == NULL || strcmp(names, "") == 0)
349 return 0;
350 if ((s = cp = strdup(names)) == NULL)
351 return 0;
352 for ((p = strsep(&cp, ",")); p && *p != '\0';
353 (p = strsep(&cp, ","))) {
354 type = sshkey_type_from_name(p);
355 if (type == KEY_UNSPEC) {
356 if (allow_wildcard) {
357 /*
358 * Try matching key types against the string.
359 * If any has a positive or negative match then
360 * the component is accepted.
361 */
362 impl = NULL;
363 for (i = 0; keyimpls[i] != NULL; i++) {
364 if (match_pattern_list(
365 keyimpls[i]->name, p, 0) != 0) {
366 impl = keyimpls[i];
367 break;
368 }
369 }
370 if (impl != NULL)
371 continue;
372 }
373 free(s);
374 return 0;
375 } else if (plain_only && sshkey_type_is_cert(type)) {
376 free(s);
377 return 0;
378 }
379 }
380 free(s);
381 return 1;
382 }
383
384 u_int
sshkey_size(const struct sshkey * k)385 sshkey_size(const struct sshkey *k)
386 {
387 const struct sshkey_impl *impl;
388
389 if ((impl = sshkey_impl_from_key(k)) == NULL)
390 return 0;
391 if (impl->funcs->size != NULL)
392 return impl->funcs->size(k);
393 return impl->keybits;
394 }
395
396 static int
sshkey_type_is_valid_ca(int type)397 sshkey_type_is_valid_ca(int type)
398 {
399 const struct sshkey_impl *impl;
400
401 if ((impl = sshkey_impl_from_type(type)) == NULL)
402 return 0;
403 /* All non-certificate types may act as CAs */
404 return !impl->cert;
405 }
406
407 int
sshkey_is_cert(const struct sshkey * k)408 sshkey_is_cert(const struct sshkey *k)
409 {
410 if (k == NULL)
411 return 0;
412 return sshkey_type_is_cert(k->type);
413 }
414
415 int
sshkey_is_sk(const struct sshkey * k)416 sshkey_is_sk(const struct sshkey *k)
417 {
418 if (k == NULL)
419 return 0;
420 switch (sshkey_type_plain(k->type)) {
421 case KEY_ECDSA_SK:
422 case KEY_ED25519_SK:
423 return 1;
424 default:
425 return 0;
426 }
427 }
428
429 /* Return the cert-less equivalent to a certified key type */
430 int
sshkey_type_plain(int type)431 sshkey_type_plain(int type)
432 {
433 switch (type) {
434 case KEY_RSA_CERT:
435 return KEY_RSA;
436 case KEY_ECDSA_CERT:
437 return KEY_ECDSA;
438 case KEY_ECDSA_SK_CERT:
439 return KEY_ECDSA_SK;
440 case KEY_ED25519_CERT:
441 return KEY_ED25519;
442 case KEY_ED25519_SK_CERT:
443 return KEY_ED25519_SK;
444 default:
445 return type;
446 }
447 }
448
449 /* Return the cert equivalent to a plain key type */
450 static int
sshkey_type_certified(int type)451 sshkey_type_certified(int type)
452 {
453 switch (type) {
454 case KEY_RSA:
455 return KEY_RSA_CERT;
456 case KEY_ECDSA:
457 return KEY_ECDSA_CERT;
458 case KEY_ECDSA_SK:
459 return KEY_ECDSA_SK_CERT;
460 case KEY_ED25519:
461 return KEY_ED25519_CERT;
462 case KEY_ED25519_SK:
463 return KEY_ED25519_SK_CERT;
464 default:
465 return -1;
466 }
467 }
468
469 #ifdef WITH_OPENSSL
470 static const EVP_MD *
ssh_digest_to_md(int hash_alg)471 ssh_digest_to_md(int hash_alg)
472 {
473 switch (hash_alg) {
474 case SSH_DIGEST_SHA1:
475 return EVP_sha1();
476 case SSH_DIGEST_SHA256:
477 return EVP_sha256();
478 case SSH_DIGEST_SHA384:
479 return EVP_sha384();
480 case SSH_DIGEST_SHA512:
481 return EVP_sha512();
482 }
483 return NULL;
484 }
485
486 int
sshkey_pkey_digest_sign(EVP_PKEY * pkey,int hash_alg,u_char ** sigp,size_t * lenp,const u_char * data,size_t datalen)487 sshkey_pkey_digest_sign(EVP_PKEY *pkey, int hash_alg, u_char **sigp,
488 size_t *lenp, const u_char *data, size_t datalen)
489 {
490 EVP_MD_CTX *ctx = NULL;
491 u_char *sig = NULL;
492 int ret;
493 size_t slen;
494 const EVP_MD *evpmd;
495
496 *sigp = NULL;
497 *lenp = 0;
498
499 slen = EVP_PKEY_size(pkey);
500 if (slen <= 0 || slen > SSHBUF_MAX_BIGNUM ||
501 (evpmd = ssh_digest_to_md(hash_alg)) == NULL)
502 return SSH_ERR_INVALID_ARGUMENT;
503
504 if ((sig = malloc(slen)) == NULL)
505 return SSH_ERR_ALLOC_FAIL;
506
507 if ((ctx = EVP_MD_CTX_new()) == NULL) {
508 ret = SSH_ERR_ALLOC_FAIL;
509 goto out;
510 }
511 if (EVP_DigestSignInit(ctx, NULL, evpmd, NULL, pkey) != 1 ||
512 EVP_DigestSign(ctx, sig, &slen, data, datalen) != 1) {
513 ret = SSH_ERR_LIBCRYPTO_ERROR;
514 goto out;
515 }
516
517 *sigp = sig;
518 *lenp = slen;
519 /* Now owned by the caller */
520 sig = NULL;
521 ret = 0;
522
523 out:
524 EVP_MD_CTX_free(ctx);
525 free(sig);
526 return ret;
527 }
528
529 int
sshkey_pkey_digest_verify(EVP_PKEY * pkey,int hash_alg,const u_char * data,size_t datalen,u_char * sigbuf,size_t siglen)530 sshkey_pkey_digest_verify(EVP_PKEY *pkey, int hash_alg, const u_char *data,
531 size_t datalen, u_char *sigbuf, size_t siglen)
532 {
533 EVP_MD_CTX *ctx = NULL;
534 int ret = SSH_ERR_INTERNAL_ERROR;
535 const EVP_MD *evpmd;
536
537 if ((evpmd = ssh_digest_to_md(hash_alg)) == NULL)
538 return SSH_ERR_INVALID_ARGUMENT;
539 if ((ctx = EVP_MD_CTX_new()) == NULL)
540 return SSH_ERR_ALLOC_FAIL;
541 if (EVP_DigestVerifyInit(ctx, NULL, evpmd, NULL, pkey) != 1) {
542 ret = SSH_ERR_LIBCRYPTO_ERROR;
543 goto out;
544 }
545 switch (EVP_DigestVerify(ctx, sigbuf, siglen, data, datalen)) {
546 case 1:
547 ret = 0;
548 break;
549 case 0:
550 ret = SSH_ERR_SIGNATURE_INVALID;
551 break;
552 default:
553 ret = SSH_ERR_LIBCRYPTO_ERROR;
554 break;
555 }
556
557 out:
558 EVP_MD_CTX_free(ctx);
559 return ret;
560 }
561
562 /* XXX: these are really begging for a table-driven approach */
563 int
sshkey_curve_name_to_nid(const char * name)564 sshkey_curve_name_to_nid(const char *name)
565 {
566 if (strcmp(name, "nistp256") == 0)
567 return NID_X9_62_prime256v1;
568 else if (strcmp(name, "nistp384") == 0)
569 return NID_secp384r1;
570 # ifdef OPENSSL_HAS_NISTP521
571 else if (strcmp(name, "nistp521") == 0)
572 return NID_secp521r1;
573 # endif /* OPENSSL_HAS_NISTP521 */
574 else
575 return -1;
576 }
577
578 u_int
sshkey_curve_nid_to_bits(int nid)579 sshkey_curve_nid_to_bits(int nid)
580 {
581 switch (nid) {
582 case NID_X9_62_prime256v1:
583 return 256;
584 case NID_secp384r1:
585 return 384;
586 # ifdef OPENSSL_HAS_NISTP521
587 case NID_secp521r1:
588 return 521;
589 # endif /* OPENSSL_HAS_NISTP521 */
590 default:
591 return 0;
592 }
593 }
594
595 int
sshkey_ecdsa_bits_to_nid(int bits)596 sshkey_ecdsa_bits_to_nid(int bits)
597 {
598 switch (bits) {
599 case 256:
600 return NID_X9_62_prime256v1;
601 case 384:
602 return NID_secp384r1;
603 # ifdef OPENSSL_HAS_NISTP521
604 case 521:
605 return NID_secp521r1;
606 # endif /* OPENSSL_HAS_NISTP521 */
607 default:
608 return -1;
609 }
610 }
611
612 const char *
sshkey_curve_nid_to_name(int nid)613 sshkey_curve_nid_to_name(int nid)
614 {
615 switch (nid) {
616 case NID_X9_62_prime256v1:
617 return "nistp256";
618 case NID_secp384r1:
619 return "nistp384";
620 # ifdef OPENSSL_HAS_NISTP521
621 case NID_secp521r1:
622 return "nistp521";
623 # endif /* OPENSSL_HAS_NISTP521 */
624 default:
625 return NULL;
626 }
627 }
628
629 int
sshkey_ec_nid_to_hash_alg(int nid)630 sshkey_ec_nid_to_hash_alg(int nid)
631 {
632 int kbits = sshkey_curve_nid_to_bits(nid);
633
634 if (kbits <= 0)
635 return -1;
636
637 /* RFC5656 section 6.2.1 */
638 if (kbits <= 256)
639 return SSH_DIGEST_SHA256;
640 else if (kbits <= 384)
641 return SSH_DIGEST_SHA384;
642 else
643 return SSH_DIGEST_SHA512;
644 }
645 #endif /* WITH_OPENSSL */
646
647 static void
cert_free(struct sshkey_cert * cert)648 cert_free(struct sshkey_cert *cert)
649 {
650 u_int i;
651
652 if (cert == NULL)
653 return;
654 sshbuf_free(cert->certblob);
655 sshbuf_free(cert->critical);
656 sshbuf_free(cert->extensions);
657 free(cert->key_id);
658 for (i = 0; i < cert->nprincipals; i++)
659 free(cert->principals[i]);
660 free(cert->principals);
661 sshkey_free(cert->signature_key);
662 free(cert->signature_type);
663 freezero(cert, sizeof(*cert));
664 }
665
666 static struct sshkey_cert *
cert_new(void)667 cert_new(void)
668 {
669 struct sshkey_cert *cert;
670
671 if ((cert = calloc(1, sizeof(*cert))) == NULL)
672 return NULL;
673 if ((cert->certblob = sshbuf_new()) == NULL ||
674 (cert->critical = sshbuf_new()) == NULL ||
675 (cert->extensions = sshbuf_new()) == NULL) {
676 cert_free(cert);
677 return NULL;
678 }
679 cert->key_id = NULL;
680 cert->principals = NULL;
681 cert->signature_key = NULL;
682 cert->signature_type = NULL;
683 return cert;
684 }
685
686 struct sshkey *
sshkey_new(int type)687 sshkey_new(int type)
688 {
689 struct sshkey *k;
690 const struct sshkey_impl *impl = NULL;
691
692 if (type != KEY_UNSPEC &&
693 (impl = sshkey_impl_from_type(type)) == NULL)
694 return NULL;
695
696 /* All non-certificate types may act as CAs */
697 if ((k = calloc(1, sizeof(*k))) == NULL)
698 return NULL;
699 k->type = type;
700 k->ecdsa_nid = -1;
701 if (impl != NULL && impl->funcs->alloc != NULL) {
702 if (impl->funcs->alloc(k) != 0) {
703 free(k);
704 return NULL;
705 }
706 }
707 if (sshkey_is_cert(k)) {
708 if ((k->cert = cert_new()) == NULL) {
709 sshkey_free(k);
710 return NULL;
711 }
712 }
713
714 return k;
715 }
716
717 /* Frees common FIDO fields */
718 void
sshkey_sk_cleanup(struct sshkey * k)719 sshkey_sk_cleanup(struct sshkey *k)
720 {
721 free(k->sk_application);
722 sshbuf_free(k->sk_key_handle);
723 sshbuf_free(k->sk_reserved);
724 k->sk_application = NULL;
725 k->sk_key_handle = k->sk_reserved = NULL;
726 }
727
728 #if defined(MAP_CONCEAL)
729 # define PREKEY_MMAP_FLAG MAP_CONCEAL
730 #elif defined(MAP_NOCORE)
731 # define PREKEY_MMAP_FLAG MAP_NOCORE
732 #else
733 # define PREKEY_MMAP_FLAG 0
734 #endif
735
736 static int
sshkey_prekey_alloc(u_char ** prekeyp,size_t len)737 sshkey_prekey_alloc(u_char **prekeyp, size_t len)
738 {
739 #if defined(HAVE_MMAP) && defined(MAP_ANON) && defined(MAP_PRIVATE)
740 u_char *prekey;
741
742 *prekeyp = NULL;
743 if ((prekey = mmap(NULL, len, PROT_READ|PROT_WRITE,
744 MAP_ANON|MAP_PRIVATE|PREKEY_MMAP_FLAG, -1, 0)) == MAP_FAILED)
745 return SSH_ERR_SYSTEM_ERROR;
746 #if defined(MADV_DONTDUMP) && !defined(MAP_CONCEAL) && !defined(MAP_NOCORE)
747 (void)madvise(prekey, len, MADV_DONTDUMP);
748 #endif
749 *prekeyp = prekey;
750 #else
751 *prekeyp = calloc(1, len);
752 #endif /* HAVE_MMAP et al */
753 return 0;
754 }
755
756 static void
sshkey_prekey_free(void * prekey,size_t len)757 sshkey_prekey_free(void *prekey, size_t len)
758 {
759 #if defined(HAVE_MMAP) && defined(MAP_ANON) && defined(MAP_PRIVATE)
760 if (prekey == NULL)
761 return;
762 munmap(prekey, len);
763 #else
764 free(prekey);
765 #endif /* HAVE_MMAP et al */
766 }
767
768 static void
sshkey_free_contents(struct sshkey * k)769 sshkey_free_contents(struct sshkey *k)
770 {
771 const struct sshkey_impl *impl;
772
773 if (k == NULL)
774 return;
775 if ((k->flags & SSHKEY_FLAG_EXT) != 0)
776 pkcs11_key_free(k);
777 if ((impl = sshkey_impl_from_type(k->type)) != NULL &&
778 impl->funcs->cleanup != NULL)
779 impl->funcs->cleanup(k);
780 if (sshkey_is_cert(k))
781 cert_free(k->cert);
782 freezero(k->shielded_private, k->shielded_len);
783 sshkey_prekey_free(k->shield_prekey, k->shield_prekey_len);
784 }
785
786 void
sshkey_free(struct sshkey * k)787 sshkey_free(struct sshkey *k)
788 {
789 sshkey_free_contents(k);
790 freezero(k, sizeof(*k));
791 }
792
793 static int
cert_compare(struct sshkey_cert * a,struct sshkey_cert * b)794 cert_compare(struct sshkey_cert *a, struct sshkey_cert *b)
795 {
796 if (a == NULL && b == NULL)
797 return 1;
798 if (a == NULL || b == NULL)
799 return 0;
800 if (sshbuf_len(a->certblob) != sshbuf_len(b->certblob))
801 return 0;
802 if (timingsafe_bcmp(sshbuf_ptr(a->certblob), sshbuf_ptr(b->certblob),
803 sshbuf_len(a->certblob)) != 0)
804 return 0;
805 return 1;
806 }
807
808 /* Compares FIDO-specific pubkey fields only */
809 int
sshkey_sk_fields_equal(const struct sshkey * a,const struct sshkey * b)810 sshkey_sk_fields_equal(const struct sshkey *a, const struct sshkey *b)
811 {
812 if (a->sk_application == NULL || b->sk_application == NULL)
813 return 0;
814 if (strcmp(a->sk_application, b->sk_application) != 0)
815 return 0;
816 return 1;
817 }
818
819 /*
820 * Compare public portions of key only, allowing comparisons between
821 * certificates and plain keys too.
822 */
823 int
sshkey_equal_public(const struct sshkey * a,const struct sshkey * b)824 sshkey_equal_public(const struct sshkey *a, const struct sshkey *b)
825 {
826 const struct sshkey_impl *impl;
827
828 if (a == NULL || b == NULL ||
829 sshkey_type_plain(a->type) != sshkey_type_plain(b->type))
830 return 0;
831 if ((impl = sshkey_impl_from_type(a->type)) == NULL)
832 return 0;
833 return impl->funcs->equal(a, b);
834 }
835
836 int
sshkey_equal(const struct sshkey * a,const struct sshkey * b)837 sshkey_equal(const struct sshkey *a, const struct sshkey *b)
838 {
839 if (a == NULL || b == NULL || a->type != b->type)
840 return 0;
841 if (sshkey_is_cert(a)) {
842 if (!cert_compare(a->cert, b->cert))
843 return 0;
844 }
845 return sshkey_equal_public(a, b);
846 }
847
848
849 /* Serialise common FIDO key parts */
850 int
sshkey_serialize_sk(const struct sshkey * key,struct sshbuf * b)851 sshkey_serialize_sk(const struct sshkey *key, struct sshbuf *b)
852 {
853 int r;
854
855 if ((r = sshbuf_put_cstring(b, key->sk_application)) != 0)
856 return r;
857
858 return 0;
859 }
860
861 static int
to_blob_buf(const struct sshkey * key,struct sshbuf * b,int force_plain,enum sshkey_serialize_rep opts)862 to_blob_buf(const struct sshkey *key, struct sshbuf *b, int force_plain,
863 enum sshkey_serialize_rep opts)
864 {
865 int type, ret = SSH_ERR_INTERNAL_ERROR;
866 const char *typename;
867 const struct sshkey_impl *impl;
868
869 if (key == NULL)
870 return SSH_ERR_INVALID_ARGUMENT;
871
872 type = force_plain ? sshkey_type_plain(key->type) : key->type;
873
874 if (sshkey_type_is_cert(type)) {
875 if (key->cert == NULL)
876 return SSH_ERR_EXPECTED_CERT;
877 if (sshbuf_len(key->cert->certblob) == 0)
878 return SSH_ERR_KEY_LACKS_CERTBLOB;
879 /* Use the existing blob */
880 if ((ret = sshbuf_putb(b, key->cert->certblob)) != 0)
881 return ret;
882 return 0;
883 }
884 if ((impl = sshkey_impl_from_type(type)) == NULL)
885 return SSH_ERR_KEY_TYPE_UNKNOWN;
886
887 typename = sshkey_ssh_name_from_type_nid(type, key->ecdsa_nid);
888 if ((ret = sshbuf_put_cstring(b, typename)) != 0)
889 return ret;
890 return impl->funcs->serialize_public(key, b, opts);
891 }
892
893 int
sshkey_putb(const struct sshkey * key,struct sshbuf * b)894 sshkey_putb(const struct sshkey *key, struct sshbuf *b)
895 {
896 return to_blob_buf(key, b, 0, SSHKEY_SERIALIZE_DEFAULT);
897 }
898
899 static int
sshkey_puts_opts_internal(const struct sshkey * key,struct sshbuf * b,enum sshkey_serialize_rep opts,int force_plain)900 sshkey_puts_opts_internal(const struct sshkey *key, struct sshbuf *b,
901 enum sshkey_serialize_rep opts, int force_plain)
902 {
903 struct sshbuf *tmp;
904 int r;
905
906 if ((tmp = sshbuf_new()) == NULL)
907 return SSH_ERR_ALLOC_FAIL;
908 r = to_blob_buf(key, tmp, force_plain, opts);
909 if (r == 0)
910 r = sshbuf_put_stringb(b, tmp);
911 sshbuf_free(tmp);
912 return r;
913 }
914
915 int
sshkey_puts(const struct sshkey * key,struct sshbuf * b)916 sshkey_puts(const struct sshkey *key, struct sshbuf *b)
917 {
918 return sshkey_puts_opts_internal(key, b, SSHKEY_SERIALIZE_DEFAULT, 0);
919 }
920
921 int
sshkey_putb_plain(const struct sshkey * key,struct sshbuf * b)922 sshkey_putb_plain(const struct sshkey *key, struct sshbuf *b)
923 {
924 return to_blob_buf(key, b, 1, SSHKEY_SERIALIZE_DEFAULT);
925 }
926
927 int
sshkey_puts_plain(const struct sshkey * key,struct sshbuf * b)928 sshkey_puts_plain(const struct sshkey *key, struct sshbuf *b)
929 {
930 return sshkey_puts_opts_internal(key, b, SSHKEY_SERIALIZE_DEFAULT, 1);
931 }
932
933 static int
to_blob(const struct sshkey * key,u_char ** blobp,size_t * lenp,int force_plain,enum sshkey_serialize_rep opts)934 to_blob(const struct sshkey *key, u_char **blobp, size_t *lenp, int force_plain,
935 enum sshkey_serialize_rep opts)
936 {
937 int ret = SSH_ERR_INTERNAL_ERROR;
938 size_t len;
939 struct sshbuf *b = NULL;
940
941 if (lenp != NULL)
942 *lenp = 0;
943 if (blobp != NULL)
944 *blobp = NULL;
945 if ((b = sshbuf_new()) == NULL)
946 return SSH_ERR_ALLOC_FAIL;
947 if ((ret = to_blob_buf(key, b, force_plain, opts)) != 0)
948 goto out;
949 len = sshbuf_len(b);
950 if (lenp != NULL)
951 *lenp = len;
952 if (blobp != NULL) {
953 if ((*blobp = malloc(len)) == NULL) {
954 ret = SSH_ERR_ALLOC_FAIL;
955 goto out;
956 }
957 memcpy(*blobp, sshbuf_ptr(b), len);
958 }
959 ret = 0;
960 out:
961 sshbuf_free(b);
962 return ret;
963 }
964
965 int
sshkey_to_blob(const struct sshkey * key,u_char ** blobp,size_t * lenp)966 sshkey_to_blob(const struct sshkey *key, u_char **blobp, size_t *lenp)
967 {
968 return to_blob(key, blobp, lenp, 0, SSHKEY_SERIALIZE_DEFAULT);
969 }
970
971 int
sshkey_plain_to_blob(const struct sshkey * key,u_char ** blobp,size_t * lenp)972 sshkey_plain_to_blob(const struct sshkey *key, u_char **blobp, size_t *lenp)
973 {
974 return to_blob(key, blobp, lenp, 1, SSHKEY_SERIALIZE_DEFAULT);
975 }
976
977 int
sshkey_fingerprint_raw(const struct sshkey * k,int dgst_alg,u_char ** retp,size_t * lenp)978 sshkey_fingerprint_raw(const struct sshkey *k, int dgst_alg,
979 u_char **retp, size_t *lenp)
980 {
981 u_char *blob = NULL, *ret = NULL;
982 size_t blob_len = 0;
983 int r = SSH_ERR_INTERNAL_ERROR;
984
985 if (retp != NULL)
986 *retp = NULL;
987 if (lenp != NULL)
988 *lenp = 0;
989 if (ssh_digest_bytes(dgst_alg) == 0) {
990 r = SSH_ERR_INVALID_ARGUMENT;
991 goto out;
992 }
993 if ((r = to_blob(k, &blob, &blob_len, 1, SSHKEY_SERIALIZE_DEFAULT))
994 != 0)
995 goto out;
996 if ((ret = calloc(1, SSH_DIGEST_MAX_LENGTH)) == NULL) {
997 r = SSH_ERR_ALLOC_FAIL;
998 goto out;
999 }
1000 if ((r = ssh_digest_memory(dgst_alg, blob, blob_len,
1001 ret, SSH_DIGEST_MAX_LENGTH)) != 0)
1002 goto out;
1003 /* success */
1004 if (retp != NULL) {
1005 *retp = ret;
1006 ret = NULL;
1007 }
1008 if (lenp != NULL)
1009 *lenp = ssh_digest_bytes(dgst_alg);
1010 r = 0;
1011 out:
1012 free(ret);
1013 if (blob != NULL)
1014 freezero(blob, blob_len);
1015 return r;
1016 }
1017
1018 static char *
fingerprint_b64(const char * alg,u_char * dgst_raw,size_t dgst_raw_len)1019 fingerprint_b64(const char *alg, u_char *dgst_raw, size_t dgst_raw_len)
1020 {
1021 char *ret;
1022 size_t plen = strlen(alg) + 1;
1023 size_t rlen = ((dgst_raw_len + 2) / 3) * 4 + plen + 1;
1024
1025 if (dgst_raw_len > 65536 || (ret = calloc(1, rlen)) == NULL)
1026 return NULL;
1027 strlcpy(ret, alg, rlen);
1028 strlcat(ret, ":", rlen);
1029 if (dgst_raw_len == 0)
1030 return ret;
1031 if (b64_ntop(dgst_raw, dgst_raw_len, ret + plen, rlen - plen) == -1) {
1032 freezero(ret, rlen);
1033 return NULL;
1034 }
1035 /* Trim padding characters from end */
1036 ret[strcspn(ret, "=")] = '\0';
1037 return ret;
1038 }
1039
1040 static char *
fingerprint_hex(const char * alg,u_char * dgst_raw,size_t dgst_raw_len)1041 fingerprint_hex(const char *alg, u_char *dgst_raw, size_t dgst_raw_len)
1042 {
1043 char *retval, hex[5];
1044 size_t i, rlen = dgst_raw_len * 3 + strlen(alg) + 2;
1045
1046 if (dgst_raw_len > 65536 || (retval = calloc(1, rlen)) == NULL)
1047 return NULL;
1048 strlcpy(retval, alg, rlen);
1049 strlcat(retval, ":", rlen);
1050 for (i = 0; i < dgst_raw_len; i++) {
1051 snprintf(hex, sizeof(hex), "%s%02x",
1052 i > 0 ? ":" : "", dgst_raw[i]);
1053 strlcat(retval, hex, rlen);
1054 }
1055 return retval;
1056 }
1057
1058 static char *
fingerprint_bubblebabble(u_char * dgst_raw,size_t dgst_raw_len)1059 fingerprint_bubblebabble(u_char *dgst_raw, size_t dgst_raw_len)
1060 {
1061 char vowels[] = { 'a', 'e', 'i', 'o', 'u', 'y' };
1062 char consonants[] = { 'b', 'c', 'd', 'f', 'g', 'h', 'k', 'l', 'm',
1063 'n', 'p', 'r', 's', 't', 'v', 'z', 'x' };
1064 u_int i, j = 0, rounds, seed = 1;
1065 char *retval;
1066
1067 rounds = (dgst_raw_len / 2) + 1;
1068 if ((retval = calloc(rounds, 6)) == NULL)
1069 return NULL;
1070 retval[j++] = 'x';
1071 for (i = 0; i < rounds; i++) {
1072 u_int idx0, idx1, idx2, idx3, idx4;
1073 if ((i + 1 < rounds) || (dgst_raw_len % 2 != 0)) {
1074 idx0 = (((((u_int)(dgst_raw[2 * i])) >> 6) & 3) +
1075 seed) % 6;
1076 idx1 = (((u_int)(dgst_raw[2 * i])) >> 2) & 15;
1077 idx2 = ((((u_int)(dgst_raw[2 * i])) & 3) +
1078 (seed / 6)) % 6;
1079 retval[j++] = vowels[idx0];
1080 retval[j++] = consonants[idx1];
1081 retval[j++] = vowels[idx2];
1082 if ((i + 1) < rounds) {
1083 idx3 = (((u_int)(dgst_raw[(2 * i) + 1])) >> 4) & 15;
1084 idx4 = (((u_int)(dgst_raw[(2 * i) + 1]))) & 15;
1085 retval[j++] = consonants[idx3];
1086 retval[j++] = '-';
1087 retval[j++] = consonants[idx4];
1088 seed = ((seed * 5) +
1089 ((((u_int)(dgst_raw[2 * i])) * 7) +
1090 ((u_int)(dgst_raw[(2 * i) + 1])))) % 36;
1091 }
1092 } else {
1093 idx0 = seed % 6;
1094 idx1 = 16;
1095 idx2 = seed / 6;
1096 retval[j++] = vowels[idx0];
1097 retval[j++] = consonants[idx1];
1098 retval[j++] = vowels[idx2];
1099 }
1100 }
1101 retval[j++] = 'x';
1102 retval[j++] = '\0';
1103 return retval;
1104 }
1105
1106 /*
1107 * Draw an ASCII-Art representing the fingerprint so human brain can
1108 * profit from its built-in pattern recognition ability.
1109 * This technique is called "random art" and can be found in some
1110 * scientific publications like this original paper:
1111 *
1112 * "Hash Visualization: a New Technique to improve Real-World Security",
1113 * Perrig A. and Song D., 1999, International Workshop on Cryptographic
1114 * Techniques and E-Commerce (CrypTEC '99)
1115 * sparrow.ece.cmu.edu/~adrian/projects/validation/validation.pdf
1116 *
1117 * The subject came up in a talk by Dan Kaminsky, too.
1118 *
1119 * If you see the picture is different, the key is different.
1120 * If the picture looks the same, you still know nothing.
1121 *
1122 * The algorithm used here is a worm crawling over a discrete plane,
1123 * leaving a trace (augmenting the field) everywhere it goes.
1124 * Movement is taken from dgst_raw 2bit-wise. Bumping into walls
1125 * makes the respective movement vector be ignored for this turn.
1126 * Graphs are not unambiguous, because circles in graphs can be
1127 * walked in either direction.
1128 */
1129
1130 /*
1131 * Field sizes for the random art. Have to be odd, so the starting point
1132 * can be in the exact middle of the picture, and FLDBASE should be >=8 .
1133 * Else pictures would be too dense, and drawing the frame would
1134 * fail, too, because the key type would not fit in anymore.
1135 */
1136 #define FLDBASE 8
1137 #define FLDSIZE_Y (FLDBASE + 1)
1138 #define FLDSIZE_X (FLDBASE * 2 + 1)
1139 static char *
fingerprint_randomart(const char * alg,u_char * dgst_raw,size_t dgst_raw_len,const struct sshkey * k)1140 fingerprint_randomart(const char *alg, u_char *dgst_raw, size_t dgst_raw_len,
1141 const struct sshkey *k)
1142 {
1143 /*
1144 * Chars to be used after each other every time the worm
1145 * intersects with itself. Matter of taste.
1146 */
1147 char *augmentation_string = " .o+=*BOX@%&#/^SE";
1148 char *retval, *p, title[FLDSIZE_X], hash[FLDSIZE_X];
1149 u_char field[FLDSIZE_X][FLDSIZE_Y];
1150 size_t i, tlen, hlen;
1151 u_int b;
1152 int x, y, r;
1153 size_t len = strlen(augmentation_string) - 1;
1154
1155 if ((retval = calloc((FLDSIZE_X + 3), (FLDSIZE_Y + 2))) == NULL)
1156 return NULL;
1157
1158 /* initialize field */
1159 memset(field, 0, FLDSIZE_X * FLDSIZE_Y * sizeof(char));
1160 x = FLDSIZE_X / 2;
1161 y = FLDSIZE_Y / 2;
1162
1163 /* process raw key */
1164 for (i = 0; i < dgst_raw_len; i++) {
1165 int input;
1166 /* each byte conveys four 2-bit move commands */
1167 input = dgst_raw[i];
1168 for (b = 0; b < 4; b++) {
1169 /* evaluate 2 bit, rest is shifted later */
1170 x += (input & 0x1) ? 1 : -1;
1171 y += (input & 0x2) ? 1 : -1;
1172
1173 /* assure we are still in bounds */
1174 x = MAXIMUM(x, 0);
1175 y = MAXIMUM(y, 0);
1176 x = MINIMUM(x, FLDSIZE_X - 1);
1177 y = MINIMUM(y, FLDSIZE_Y - 1);
1178
1179 /* augment the field */
1180 if (field[x][y] < len - 2)
1181 field[x][y]++;
1182 input = input >> 2;
1183 }
1184 }
1185
1186 /* mark starting point and end point*/
1187 field[FLDSIZE_X / 2][FLDSIZE_Y / 2] = len - 1;
1188 field[x][y] = len;
1189
1190 /* assemble title */
1191 r = snprintf(title, sizeof(title), "[%s %u]",
1192 sshkey_type(k), sshkey_size(k));
1193 /* If [type size] won't fit, then try [type]; fits "[ED25519-CERT]" */
1194 if (r < 0 || r > (int)sizeof(title))
1195 r = snprintf(title, sizeof(title), "[%s]", sshkey_type(k));
1196 tlen = (r <= 0) ? 0 : strlen(title);
1197
1198 /* assemble hash ID. */
1199 r = snprintf(hash, sizeof(hash), "[%s]", alg);
1200 hlen = (r <= 0) ? 0 : strlen(hash);
1201
1202 /* output upper border */
1203 p = retval;
1204 *p++ = '+';
1205 for (i = 0; i < (FLDSIZE_X - tlen) / 2; i++)
1206 *p++ = '-';
1207 memcpy(p, title, tlen);
1208 p += tlen;
1209 for (i += tlen; i < FLDSIZE_X; i++)
1210 *p++ = '-';
1211 *p++ = '+';
1212 *p++ = '\n';
1213
1214 /* output content */
1215 for (y = 0; y < FLDSIZE_Y; y++) {
1216 *p++ = '|';
1217 for (x = 0; x < FLDSIZE_X; x++)
1218 *p++ = augmentation_string[MINIMUM(field[x][y], len)];
1219 *p++ = '|';
1220 *p++ = '\n';
1221 }
1222
1223 /* output lower border */
1224 *p++ = '+';
1225 for (i = 0; i < (FLDSIZE_X - hlen) / 2; i++)
1226 *p++ = '-';
1227 memcpy(p, hash, hlen);
1228 p += hlen;
1229 for (i += hlen; i < FLDSIZE_X; i++)
1230 *p++ = '-';
1231 *p++ = '+';
1232
1233 return retval;
1234 }
1235
1236 char *
sshkey_fingerprint(const struct sshkey * k,int dgst_alg,enum sshkey_fp_rep dgst_rep)1237 sshkey_fingerprint(const struct sshkey *k, int dgst_alg,
1238 enum sshkey_fp_rep dgst_rep)
1239 {
1240 char *retval = NULL;
1241 u_char *dgst_raw;
1242 size_t dgst_raw_len;
1243
1244 if (sshkey_fingerprint_raw(k, dgst_alg, &dgst_raw, &dgst_raw_len) != 0)
1245 return NULL;
1246 switch (dgst_rep) {
1247 case SSH_FP_DEFAULT:
1248 if (dgst_alg == SSH_DIGEST_MD5) {
1249 retval = fingerprint_hex(ssh_digest_alg_name(dgst_alg),
1250 dgst_raw, dgst_raw_len);
1251 } else {
1252 retval = fingerprint_b64(ssh_digest_alg_name(dgst_alg),
1253 dgst_raw, dgst_raw_len);
1254 }
1255 break;
1256 case SSH_FP_HEX:
1257 retval = fingerprint_hex(ssh_digest_alg_name(dgst_alg),
1258 dgst_raw, dgst_raw_len);
1259 break;
1260 case SSH_FP_BASE64:
1261 retval = fingerprint_b64(ssh_digest_alg_name(dgst_alg),
1262 dgst_raw, dgst_raw_len);
1263 break;
1264 case SSH_FP_BUBBLEBABBLE:
1265 retval = fingerprint_bubblebabble(dgst_raw, dgst_raw_len);
1266 break;
1267 case SSH_FP_RANDOMART:
1268 retval = fingerprint_randomart(ssh_digest_alg_name(dgst_alg),
1269 dgst_raw, dgst_raw_len, k);
1270 break;
1271 default:
1272 freezero(dgst_raw, dgst_raw_len);
1273 return NULL;
1274 }
1275 freezero(dgst_raw, dgst_raw_len);
1276 return retval;
1277 }
1278
1279 static int
peek_type_nid(const char * s,size_t l,int * nid)1280 peek_type_nid(const char *s, size_t l, int *nid)
1281 {
1282 const struct sshkey_impl *impl;
1283 int i;
1284
1285 for (i = 0; keyimpls[i] != NULL; i++) {
1286 impl = keyimpls[i];
1287 if (impl->name == NULL || strlen(impl->name) != l)
1288 continue;
1289 if (memcmp(s, impl->name, l) == 0) {
1290 *nid = -1;
1291 if (key_type_is_ecdsa_variant(impl->type))
1292 *nid = impl->nid;
1293 return impl->type;
1294 }
1295 }
1296 return KEY_UNSPEC;
1297 }
1298
1299 /* XXX this can now be made const char * */
1300 int
sshkey_read(struct sshkey * ret,char ** cpp)1301 sshkey_read(struct sshkey *ret, char **cpp)
1302 {
1303 struct sshkey *k;
1304 char *cp, *blobcopy;
1305 size_t space;
1306 int r, type, curve_nid = -1;
1307 struct sshbuf *blob;
1308
1309 if (ret == NULL)
1310 return SSH_ERR_INVALID_ARGUMENT;
1311 if (ret->type != KEY_UNSPEC && sshkey_impl_from_type(ret->type) == NULL)
1312 return SSH_ERR_INVALID_ARGUMENT;
1313
1314 /* Decode type */
1315 cp = *cpp;
1316 space = strcspn(cp, " \t");
1317 if (space == strlen(cp))
1318 return SSH_ERR_INVALID_FORMAT;
1319 if ((type = peek_type_nid(cp, space, &curve_nid)) == KEY_UNSPEC)
1320 return SSH_ERR_INVALID_FORMAT;
1321
1322 /* skip whitespace */
1323 for (cp += space; *cp == ' ' || *cp == '\t'; cp++)
1324 ;
1325 if (*cp == '\0')
1326 return SSH_ERR_INVALID_FORMAT;
1327 if (ret->type != KEY_UNSPEC && ret->type != type)
1328 return SSH_ERR_KEY_TYPE_MISMATCH;
1329 if ((blob = sshbuf_new()) == NULL)
1330 return SSH_ERR_ALLOC_FAIL;
1331
1332 /* find end of keyblob and decode */
1333 space = strcspn(cp, " \t");
1334 if ((blobcopy = strndup(cp, space)) == NULL) {
1335 sshbuf_free(blob);
1336 return SSH_ERR_ALLOC_FAIL;
1337 }
1338 if ((r = sshbuf_b64tod(blob, blobcopy)) != 0) {
1339 free(blobcopy);
1340 sshbuf_free(blob);
1341 return r;
1342 }
1343 free(blobcopy);
1344 if ((r = sshkey_fromb(blob, &k)) != 0) {
1345 sshbuf_free(blob);
1346 return r;
1347 }
1348 sshbuf_free(blob);
1349
1350 /* skip whitespace and leave cp at start of comment */
1351 for (cp += space; *cp == ' ' || *cp == '\t'; cp++)
1352 ;
1353
1354 /* ensure type of blob matches type at start of line */
1355 if (k->type != type) {
1356 sshkey_free(k);
1357 return SSH_ERR_KEY_TYPE_MISMATCH;
1358 }
1359 if (key_type_is_ecdsa_variant(type) && curve_nid != k->ecdsa_nid) {
1360 sshkey_free(k);
1361 return SSH_ERR_EC_CURVE_MISMATCH;
1362 }
1363
1364 /* Fill in ret from parsed key */
1365 sshkey_free_contents(ret);
1366 *ret = *k;
1367 freezero(k, sizeof(*k));
1368
1369 /* success */
1370 *cpp = cp;
1371 return 0;
1372 }
1373
1374 int
sshkey_to_base64(const struct sshkey * key,char ** b64p)1375 sshkey_to_base64(const struct sshkey *key, char **b64p)
1376 {
1377 int r = SSH_ERR_INTERNAL_ERROR;
1378 struct sshbuf *b = NULL;
1379 char *uu = NULL;
1380
1381 if (b64p != NULL)
1382 *b64p = NULL;
1383 if ((b = sshbuf_new()) == NULL)
1384 return SSH_ERR_ALLOC_FAIL;
1385 if ((r = sshkey_putb(key, b)) != 0)
1386 goto out;
1387 if ((uu = sshbuf_dtob64_string(b, 0)) == NULL) {
1388 r = SSH_ERR_ALLOC_FAIL;
1389 goto out;
1390 }
1391 /* Success */
1392 if (b64p != NULL) {
1393 *b64p = uu;
1394 uu = NULL;
1395 }
1396 r = 0;
1397 out:
1398 sshbuf_free(b);
1399 free(uu);
1400 return r;
1401 }
1402
1403 int
sshkey_format_text(const struct sshkey * key,struct sshbuf * b)1404 sshkey_format_text(const struct sshkey *key, struct sshbuf *b)
1405 {
1406 int r = SSH_ERR_INTERNAL_ERROR;
1407 char *uu = NULL;
1408
1409 if ((r = sshkey_to_base64(key, &uu)) != 0)
1410 goto out;
1411 if ((r = sshbuf_putf(b, "%s %s",
1412 sshkey_ssh_name(key), uu)) != 0)
1413 goto out;
1414 r = 0;
1415 out:
1416 free(uu);
1417 return r;
1418 }
1419
1420 int
sshkey_write(const struct sshkey * key,FILE * f)1421 sshkey_write(const struct sshkey *key, FILE *f)
1422 {
1423 struct sshbuf *b = NULL;
1424 int r = SSH_ERR_INTERNAL_ERROR;
1425
1426 if ((b = sshbuf_new()) == NULL)
1427 return SSH_ERR_ALLOC_FAIL;
1428 if ((r = sshkey_format_text(key, b)) != 0)
1429 goto out;
1430 if (fwrite(sshbuf_ptr(b), sshbuf_len(b), 1, f) != 1) {
1431 if (feof(f))
1432 errno = EPIPE;
1433 r = SSH_ERR_SYSTEM_ERROR;
1434 goto out;
1435 }
1436 /* Success */
1437 r = 0;
1438 out:
1439 sshbuf_free(b);
1440 return r;
1441 }
1442
1443 const char *
sshkey_cert_type(const struct sshkey * k)1444 sshkey_cert_type(const struct sshkey *k)
1445 {
1446 switch (k->cert->type) {
1447 case SSH2_CERT_TYPE_USER:
1448 return "user";
1449 case SSH2_CERT_TYPE_HOST:
1450 return "host";
1451 default:
1452 return "unknown";
1453 }
1454 }
1455
1456 int
sshkey_check_rsa_length(const struct sshkey * k,int min_size)1457 sshkey_check_rsa_length(const struct sshkey *k, int min_size)
1458 {
1459 #ifdef WITH_OPENSSL
1460 int nbits;
1461
1462 if (k == NULL || k->pkey == NULL ||
1463 (k->type != KEY_RSA && k->type != KEY_RSA_CERT))
1464 return 0;
1465 nbits = EVP_PKEY_bits(k->pkey);
1466 if (nbits < SSH_RSA_MINIMUM_MODULUS_SIZE ||
1467 (min_size > 0 && nbits < min_size))
1468 return SSH_ERR_KEY_LENGTH;
1469 #endif /* WITH_OPENSSL */
1470 return 0;
1471 }
1472
1473 #if defined(WITH_OPENSSL) && defined(OPENSSL_HAS_ECC)
1474 int
sshkey_ecdsa_key_to_nid(const EC_KEY * k)1475 sshkey_ecdsa_key_to_nid(const EC_KEY *k)
1476 {
1477 const EC_GROUP *g;
1478 int nid;
1479
1480 if (k == NULL || (g = EC_KEY_get0_group(k)) == NULL)
1481 return -1;
1482 if ((nid = EC_GROUP_get_curve_name(g)) <= 0)
1483 return -1;
1484 return nid;
1485 }
1486
1487 int
sshkey_ecdsa_pkey_to_nid(EVP_PKEY * pkey)1488 sshkey_ecdsa_pkey_to_nid(EVP_PKEY *pkey)
1489 {
1490 return sshkey_ecdsa_key_to_nid(EVP_PKEY_get0_EC_KEY(pkey));
1491 }
1492 #endif /* defined(WITH_OPENSSL) && defined(OPENSSL_HAS_ECC) */
1493
1494 int
sshkey_generate(int type,u_int bits,struct sshkey ** keyp)1495 sshkey_generate(int type, u_int bits, struct sshkey **keyp)
1496 {
1497 struct sshkey *k;
1498 int ret = SSH_ERR_INTERNAL_ERROR;
1499 const struct sshkey_impl *impl;
1500
1501 if (keyp == NULL || sshkey_type_is_cert(type))
1502 return SSH_ERR_INVALID_ARGUMENT;
1503 *keyp = NULL;
1504 if ((impl = sshkey_impl_from_type(type)) == NULL)
1505 return SSH_ERR_KEY_TYPE_UNKNOWN;
1506 if (impl->funcs->generate == NULL)
1507 return SSH_ERR_FEATURE_UNSUPPORTED;
1508 if ((k = sshkey_new(KEY_UNSPEC)) == NULL)
1509 return SSH_ERR_ALLOC_FAIL;
1510 k->type = type;
1511 if ((ret = impl->funcs->generate(k, bits)) != 0) {
1512 sshkey_free(k);
1513 return ret;
1514 }
1515 /* success */
1516 *keyp = k;
1517 return 0;
1518 }
1519
1520 int
sshkey_cert_copy(const struct sshkey * from_key,struct sshkey * to_key)1521 sshkey_cert_copy(const struct sshkey *from_key, struct sshkey *to_key)
1522 {
1523 u_int i;
1524 const struct sshkey_cert *from;
1525 struct sshkey_cert *to;
1526 int r = SSH_ERR_INTERNAL_ERROR;
1527
1528 if (to_key == NULL || (from = from_key->cert) == NULL)
1529 return SSH_ERR_INVALID_ARGUMENT;
1530
1531 if ((to = cert_new()) == NULL)
1532 return SSH_ERR_ALLOC_FAIL;
1533
1534 if ((r = sshbuf_putb(to->certblob, from->certblob)) != 0 ||
1535 (r = sshbuf_putb(to->critical, from->critical)) != 0 ||
1536 (r = sshbuf_putb(to->extensions, from->extensions)) != 0)
1537 goto out;
1538
1539 to->serial = from->serial;
1540 to->type = from->type;
1541 if (from->key_id == NULL)
1542 to->key_id = NULL;
1543 else if ((to->key_id = strdup(from->key_id)) == NULL) {
1544 r = SSH_ERR_ALLOC_FAIL;
1545 goto out;
1546 }
1547 to->valid_after = from->valid_after;
1548 to->valid_before = from->valid_before;
1549 if (from->signature_key == NULL)
1550 to->signature_key = NULL;
1551 else if ((r = sshkey_from_private(from->signature_key,
1552 &to->signature_key)) != 0)
1553 goto out;
1554 if (from->signature_type != NULL &&
1555 (to->signature_type = strdup(from->signature_type)) == NULL) {
1556 r = SSH_ERR_ALLOC_FAIL;
1557 goto out;
1558 }
1559 if (from->nprincipals > SSHKEY_CERT_MAX_PRINCIPALS) {
1560 r = SSH_ERR_INVALID_ARGUMENT;
1561 goto out;
1562 }
1563 if (from->nprincipals > 0) {
1564 if ((to->principals = calloc(from->nprincipals,
1565 sizeof(*to->principals))) == NULL) {
1566 r = SSH_ERR_ALLOC_FAIL;
1567 goto out;
1568 }
1569 for (i = 0; i < from->nprincipals; i++) {
1570 to->principals[i] = strdup(from->principals[i]);
1571 if (to->principals[i] == NULL) {
1572 to->nprincipals = i;
1573 r = SSH_ERR_ALLOC_FAIL;
1574 goto out;
1575 }
1576 }
1577 }
1578 to->nprincipals = from->nprincipals;
1579
1580 /* success */
1581 cert_free(to_key->cert);
1582 to_key->cert = to;
1583 to = NULL;
1584 r = 0;
1585 out:
1586 cert_free(to);
1587 return r;
1588 }
1589
1590 int
sshkey_copy_public_sk(const struct sshkey * from,struct sshkey * to)1591 sshkey_copy_public_sk(const struct sshkey *from, struct sshkey *to)
1592 {
1593 /* Append security-key application string */
1594 if ((to->sk_application = strdup(from->sk_application)) == NULL)
1595 return SSH_ERR_ALLOC_FAIL;
1596 return 0;
1597 }
1598
1599 int
sshkey_from_private(const struct sshkey * k,struct sshkey ** pkp)1600 sshkey_from_private(const struct sshkey *k, struct sshkey **pkp)
1601 {
1602 struct sshkey *n = NULL;
1603 int r = SSH_ERR_INTERNAL_ERROR;
1604 const struct sshkey_impl *impl;
1605
1606 *pkp = NULL;
1607 if ((impl = sshkey_impl_from_key(k)) == NULL)
1608 return SSH_ERR_KEY_TYPE_UNKNOWN;
1609 if ((n = sshkey_new(k->type)) == NULL) {
1610 r = SSH_ERR_ALLOC_FAIL;
1611 goto out;
1612 }
1613 if ((r = impl->funcs->copy_public(k, n)) != 0)
1614 goto out;
1615 if (sshkey_is_cert(k) && (r = sshkey_cert_copy(k, n)) != 0)
1616 goto out;
1617 /* success */
1618 *pkp = n;
1619 n = NULL;
1620 r = 0;
1621 out:
1622 sshkey_free(n);
1623 return r;
1624 }
1625
1626 int
sshkey_is_shielded(struct sshkey * k)1627 sshkey_is_shielded(struct sshkey *k)
1628 {
1629 return k != NULL && k->shielded_private != NULL;
1630 }
1631
1632 int
sshkey_shield_private(struct sshkey * k)1633 sshkey_shield_private(struct sshkey *k)
1634 {
1635 struct sshbuf *prvbuf = NULL;
1636 u_char *prekey = NULL, *enc = NULL, keyiv[SSH_DIGEST_MAX_LENGTH];
1637 struct sshcipher_ctx *cctx = NULL;
1638 const struct sshcipher *cipher;
1639 size_t i, enclen = 0;
1640 struct sshkey *kswap = NULL, tmp;
1641 int r = SSH_ERR_INTERNAL_ERROR;
1642
1643 #ifdef DEBUG_PK
1644 fprintf(stderr, "%s: entering for %s\n", __func__, sshkey_ssh_name(k));
1645 #endif
1646 if ((cipher = cipher_by_name(SSHKEY_SHIELD_CIPHER)) == NULL) {
1647 r = SSH_ERR_INVALID_ARGUMENT;
1648 goto out;
1649 }
1650 if (cipher_keylen(cipher) + cipher_ivlen(cipher) >
1651 ssh_digest_bytes(SSHKEY_SHIELD_PREKEY_HASH)) {
1652 r = SSH_ERR_INTERNAL_ERROR;
1653 goto out;
1654 }
1655
1656 /* Prepare a random pre-key, and from it an ephemeral key */
1657 if ((r = sshkey_prekey_alloc(&prekey, SSHKEY_SHIELD_PREKEY_LEN)) != 0)
1658 goto out;
1659 arc4random_buf(prekey, SSHKEY_SHIELD_PREKEY_LEN);
1660 if ((r = ssh_digest_memory(SSHKEY_SHIELD_PREKEY_HASH,
1661 prekey, SSHKEY_SHIELD_PREKEY_LEN,
1662 keyiv, SSH_DIGEST_MAX_LENGTH)) != 0)
1663 goto out;
1664 #ifdef DEBUG_PK
1665 fprintf(stderr, "%s: key+iv\n", __func__);
1666 sshbuf_dump_data(keyiv, ssh_digest_bytes(SSHKEY_SHIELD_PREKEY_HASH),
1667 stderr);
1668 #endif
1669 if ((r = cipher_init(&cctx, cipher, keyiv, cipher_keylen(cipher),
1670 keyiv + cipher_keylen(cipher), cipher_ivlen(cipher), 1)) != 0)
1671 goto out;
1672
1673 /* Serialise and encrypt the private key using the ephemeral key */
1674 if ((prvbuf = sshbuf_new()) == NULL) {
1675 r = SSH_ERR_ALLOC_FAIL;
1676 goto out;
1677 }
1678 if (sshkey_is_shielded(k) && (r = sshkey_unshield_private(k)) != 0)
1679 goto out;
1680 if ((r = sshkey_private_serialize(k, prvbuf)) != 0)
1681 goto out;
1682 /* pad to cipher blocksize */
1683 i = 0;
1684 while (sshbuf_len(prvbuf) % cipher_blocksize(cipher)) {
1685 if ((r = sshbuf_put_u8(prvbuf, ++i & 0xff)) != 0)
1686 goto out;
1687 }
1688 #ifdef DEBUG_PK
1689 fprintf(stderr, "%s: serialised\n", __func__);
1690 sshbuf_dump(prvbuf, stderr);
1691 #endif
1692 /* encrypt */
1693 enclen = sshbuf_len(prvbuf);
1694 if ((enc = malloc(enclen)) == NULL) {
1695 r = SSH_ERR_ALLOC_FAIL;
1696 goto out;
1697 }
1698 if ((r = cipher_crypt(cctx, 0, enc,
1699 sshbuf_ptr(prvbuf), sshbuf_len(prvbuf), 0, 0)) != 0)
1700 goto out;
1701 #ifdef DEBUG_PK
1702 fprintf(stderr, "%s: encrypted\n", __func__);
1703 sshbuf_dump_data(enc, enclen, stderr);
1704 #endif
1705
1706 /* Make a scrubbed, public-only copy of our private key argument */
1707 if ((r = sshkey_from_private(k, &kswap)) != 0)
1708 goto out;
1709
1710 /* Swap the private key out (it will be destroyed below) */
1711 tmp = *kswap;
1712 *kswap = *k;
1713 *k = tmp;
1714
1715 /* Insert the shielded key into our argument */
1716 k->shielded_private = enc;
1717 k->shielded_len = enclen;
1718 k->shield_prekey = prekey;
1719 k->shield_prekey_len = SSHKEY_SHIELD_PREKEY_LEN;
1720 enc = prekey = NULL; /* transferred */
1721 enclen = 0;
1722
1723 /* preserve key fields that are required for correct operation */
1724 k->sk_flags = kswap->sk_flags;
1725
1726 /* success */
1727 r = 0;
1728
1729 out:
1730 /* XXX behaviour on error - invalidate original private key? */
1731 cipher_free(cctx);
1732 explicit_bzero(keyiv, sizeof(keyiv));
1733 explicit_bzero(&tmp, sizeof(tmp));
1734 freezero(enc, enclen);
1735 sshkey_prekey_free(prekey, SSHKEY_SHIELD_PREKEY_LEN);
1736 sshkey_free(kswap);
1737 sshbuf_free(prvbuf);
1738 return r;
1739 }
1740
1741 /* Check deterministic padding after private key */
1742 static int
private2_check_padding(struct sshbuf * decrypted)1743 private2_check_padding(struct sshbuf *decrypted)
1744 {
1745 u_char pad;
1746 size_t i;
1747 int r;
1748
1749 i = 0;
1750 while (sshbuf_len(decrypted)) {
1751 if ((r = sshbuf_get_u8(decrypted, &pad)) != 0)
1752 goto out;
1753 if (pad != (++i & 0xff)) {
1754 r = SSH_ERR_INVALID_FORMAT;
1755 goto out;
1756 }
1757 }
1758 /* success */
1759 r = 0;
1760 out:
1761 explicit_bzero(&pad, sizeof(pad));
1762 explicit_bzero(&i, sizeof(i));
1763 return r;
1764 }
1765
1766 int
sshkey_unshield_private(struct sshkey * k)1767 sshkey_unshield_private(struct sshkey *k)
1768 {
1769 struct sshbuf *prvbuf = NULL;
1770 u_char *cp, keyiv[SSH_DIGEST_MAX_LENGTH];
1771 struct sshcipher_ctx *cctx = NULL;
1772 const struct sshcipher *cipher;
1773 struct sshkey *kswap = NULL, tmp;
1774 int r = SSH_ERR_INTERNAL_ERROR;
1775
1776 #ifdef DEBUG_PK
1777 fprintf(stderr, "%s: entering for %s\n", __func__, sshkey_ssh_name(k));
1778 #endif
1779 if (!sshkey_is_shielded(k))
1780 return 0; /* nothing to do */
1781
1782 if ((cipher = cipher_by_name(SSHKEY_SHIELD_CIPHER)) == NULL) {
1783 r = SSH_ERR_INVALID_ARGUMENT;
1784 goto out;
1785 }
1786 if (cipher_keylen(cipher) + cipher_ivlen(cipher) >
1787 ssh_digest_bytes(SSHKEY_SHIELD_PREKEY_HASH)) {
1788 r = SSH_ERR_INTERNAL_ERROR;
1789 goto out;
1790 }
1791 /* check size of shielded key blob */
1792 if (k->shielded_len < cipher_blocksize(cipher) ||
1793 (k->shielded_len % cipher_blocksize(cipher)) != 0) {
1794 r = SSH_ERR_INVALID_FORMAT;
1795 goto out;
1796 }
1797
1798 /* Calculate the ephemeral key from the prekey */
1799 if ((r = ssh_digest_memory(SSHKEY_SHIELD_PREKEY_HASH,
1800 k->shield_prekey, k->shield_prekey_len,
1801 keyiv, SSH_DIGEST_MAX_LENGTH)) != 0)
1802 goto out;
1803 if ((r = cipher_init(&cctx, cipher, keyiv, cipher_keylen(cipher),
1804 keyiv + cipher_keylen(cipher), cipher_ivlen(cipher), 0)) != 0)
1805 goto out;
1806 #ifdef DEBUG_PK
1807 fprintf(stderr, "%s: key+iv\n", __func__);
1808 sshbuf_dump_data(keyiv, ssh_digest_bytes(SSHKEY_SHIELD_PREKEY_HASH),
1809 stderr);
1810 #endif
1811
1812 /* Decrypt and parse the shielded private key using the ephemeral key */
1813 if ((prvbuf = sshbuf_new()) == NULL) {
1814 r = SSH_ERR_ALLOC_FAIL;
1815 goto out;
1816 }
1817 if ((r = sshbuf_reserve(prvbuf, k->shielded_len, &cp)) != 0)
1818 goto out;
1819 /* decrypt */
1820 #ifdef DEBUG_PK
1821 fprintf(stderr, "%s: encrypted\n", __func__);
1822 sshbuf_dump_data(k->shielded_private, k->shielded_len, stderr);
1823 #endif
1824 if ((r = cipher_crypt(cctx, 0, cp,
1825 k->shielded_private, k->shielded_len, 0, 0)) != 0)
1826 goto out;
1827 #ifdef DEBUG_PK
1828 fprintf(stderr, "%s: serialised\n", __func__);
1829 sshbuf_dump(prvbuf, stderr);
1830 #endif
1831 /* Parse private key */
1832 if ((r = sshkey_private_deserialize(prvbuf, &kswap)) != 0)
1833 goto out;
1834
1835 if ((r = private2_check_padding(prvbuf)) != 0)
1836 goto out;
1837
1838 /* Swap the parsed key back into place */
1839 tmp = *kswap;
1840 *kswap = *k;
1841 *k = tmp;
1842
1843 /* success */
1844 r = 0;
1845
1846 out:
1847 cipher_free(cctx);
1848 explicit_bzero(keyiv, sizeof(keyiv));
1849 explicit_bzero(&tmp, sizeof(tmp));
1850 sshkey_free(kswap);
1851 sshbuf_free(prvbuf);
1852 return r;
1853 }
1854
1855 static int
cert_parse(struct sshbuf * b,struct sshkey * key,struct sshbuf * certbuf)1856 cert_parse(struct sshbuf *b, struct sshkey *key, struct sshbuf *certbuf)
1857 {
1858 struct sshbuf *principals = NULL, *crit = NULL;
1859 struct sshbuf *exts = NULL, *ca = NULL;
1860 u_char *sig = NULL;
1861 size_t signed_len = 0, slen = 0, kidlen = 0;
1862 int ret = SSH_ERR_INTERNAL_ERROR;
1863
1864 /* Copy the entire key blob for verification and later serialisation */
1865 if ((ret = sshbuf_putb(key->cert->certblob, certbuf)) != 0)
1866 return ret;
1867
1868 /* Parse body of certificate up to signature */
1869 if ((ret = sshbuf_get_u64(b, &key->cert->serial)) != 0 ||
1870 (ret = sshbuf_get_u32(b, &key->cert->type)) != 0 ||
1871 (ret = sshbuf_get_cstring(b, &key->cert->key_id, &kidlen)) != 0 ||
1872 (ret = sshbuf_froms(b, &principals)) != 0 ||
1873 (ret = sshbuf_get_u64(b, &key->cert->valid_after)) != 0 ||
1874 (ret = sshbuf_get_u64(b, &key->cert->valid_before)) != 0 ||
1875 (ret = sshbuf_froms(b, &crit)) != 0 ||
1876 (ret = sshbuf_froms(b, &exts)) != 0 ||
1877 (ret = sshbuf_get_string_direct(b, NULL, NULL)) != 0 ||
1878 (ret = sshbuf_froms(b, &ca)) != 0) {
1879 /* XXX debug print error for ret */
1880 ret = SSH_ERR_INVALID_FORMAT;
1881 goto out;
1882 }
1883
1884 /* Signature is left in the buffer so we can calculate this length */
1885 signed_len = sshbuf_len(key->cert->certblob) - sshbuf_len(b);
1886
1887 if ((ret = sshbuf_get_string(b, &sig, &slen)) != 0) {
1888 ret = SSH_ERR_INVALID_FORMAT;
1889 goto out;
1890 }
1891
1892 if (key->cert->type != SSH2_CERT_TYPE_USER &&
1893 key->cert->type != SSH2_CERT_TYPE_HOST) {
1894 ret = SSH_ERR_KEY_CERT_UNKNOWN_TYPE;
1895 goto out;
1896 }
1897
1898 /* Parse principals section */
1899 while (sshbuf_len(principals) > 0) {
1900 char *principal = NULL;
1901 char **oprincipals = NULL;
1902
1903 if (key->cert->nprincipals >= SSHKEY_CERT_MAX_PRINCIPALS) {
1904 ret = SSH_ERR_INVALID_FORMAT;
1905 goto out;
1906 }
1907 if ((ret = sshbuf_get_cstring(principals, &principal,
1908 NULL)) != 0) {
1909 ret = SSH_ERR_INVALID_FORMAT;
1910 goto out;
1911 }
1912 oprincipals = key->cert->principals;
1913 key->cert->principals = recallocarray(key->cert->principals,
1914 key->cert->nprincipals, key->cert->nprincipals + 1,
1915 sizeof(*key->cert->principals));
1916 if (key->cert->principals == NULL) {
1917 free(principal);
1918 key->cert->principals = oprincipals;
1919 ret = SSH_ERR_ALLOC_FAIL;
1920 goto out;
1921 }
1922 key->cert->principals[key->cert->nprincipals++] = principal;
1923 }
1924
1925 /*
1926 * Stash a copies of the critical options and extensions sections
1927 * for later use.
1928 */
1929 if ((ret = sshbuf_putb(key->cert->critical, crit)) != 0 ||
1930 (exts != NULL &&
1931 (ret = sshbuf_putb(key->cert->extensions, exts)) != 0))
1932 goto out;
1933
1934 /*
1935 * Validate critical options and extensions sections format.
1936 */
1937 while (sshbuf_len(crit) != 0) {
1938 if ((ret = sshbuf_get_string_direct(crit, NULL, NULL)) != 0 ||
1939 (ret = sshbuf_get_string_direct(crit, NULL, NULL)) != 0) {
1940 sshbuf_reset(key->cert->critical);
1941 ret = SSH_ERR_INVALID_FORMAT;
1942 goto out;
1943 }
1944 }
1945 while (exts != NULL && sshbuf_len(exts) != 0) {
1946 if ((ret = sshbuf_get_string_direct(exts, NULL, NULL)) != 0 ||
1947 (ret = sshbuf_get_string_direct(exts, NULL, NULL)) != 0) {
1948 sshbuf_reset(key->cert->extensions);
1949 ret = SSH_ERR_INVALID_FORMAT;
1950 goto out;
1951 }
1952 }
1953
1954 /* Parse CA key and check signature */
1955 if (sshkey_from_blob_internal(ca, &key->cert->signature_key, 0) != 0) {
1956 ret = SSH_ERR_KEY_CERT_INVALID_SIGN_KEY;
1957 goto out;
1958 }
1959 if (!sshkey_type_is_valid_ca(key->cert->signature_key->type)) {
1960 ret = SSH_ERR_KEY_CERT_INVALID_SIGN_KEY;
1961 goto out;
1962 }
1963 if ((ret = sshkey_verify(key->cert->signature_key, sig, slen,
1964 sshbuf_ptr(key->cert->certblob), signed_len, NULL, 0, NULL)) != 0)
1965 goto out;
1966 if ((ret = sshkey_get_sigtype(sig, slen,
1967 &key->cert->signature_type)) != 0)
1968 goto out;
1969
1970 /* Success */
1971 ret = 0;
1972 out:
1973 sshbuf_free(ca);
1974 sshbuf_free(crit);
1975 sshbuf_free(exts);
1976 sshbuf_free(principals);
1977 free(sig);
1978 return ret;
1979 }
1980
1981 int
sshkey_deserialize_sk(struct sshbuf * b,struct sshkey * key)1982 sshkey_deserialize_sk(struct sshbuf *b, struct sshkey *key)
1983 {
1984 /* Parse additional security-key application string */
1985 if (sshbuf_get_cstring(b, &key->sk_application, NULL) != 0)
1986 return SSH_ERR_INVALID_FORMAT;
1987 return 0;
1988 }
1989
1990 static int
sshkey_from_blob_internal(struct sshbuf * b,struct sshkey ** keyp,int allow_cert)1991 sshkey_from_blob_internal(struct sshbuf *b, struct sshkey **keyp,
1992 int allow_cert)
1993 {
1994 int type, ret = SSH_ERR_INTERNAL_ERROR;
1995 char *ktype = NULL;
1996 struct sshkey *key = NULL;
1997 struct sshbuf *copy;
1998 const struct sshkey_impl *impl;
1999
2000 #ifdef DEBUG_PK /* XXX */
2001 sshbuf_dump(b, stderr);
2002 #endif
2003 if (keyp != NULL)
2004 *keyp = NULL;
2005 if ((copy = sshbuf_fromb(b)) == NULL) {
2006 ret = SSH_ERR_ALLOC_FAIL;
2007 goto out;
2008 }
2009 if (sshbuf_get_cstring(b, &ktype, NULL) != 0) {
2010 ret = SSH_ERR_INVALID_FORMAT;
2011 goto out;
2012 }
2013
2014 type = sshkey_type_from_name(ktype);
2015 if (!allow_cert && sshkey_type_is_cert(type)) {
2016 ret = SSH_ERR_KEY_CERT_INVALID_SIGN_KEY;
2017 goto out;
2018 }
2019 if ((impl = sshkey_impl_from_type(type)) == NULL) {
2020 ret = SSH_ERR_KEY_TYPE_UNKNOWN;
2021 goto out;
2022 }
2023 if ((key = sshkey_new(type)) == NULL) {
2024 ret = SSH_ERR_ALLOC_FAIL;
2025 goto out;
2026 }
2027 if (sshkey_type_is_cert(type)) {
2028 /* Skip nonce that precedes all certificates */
2029 if (sshbuf_get_string_direct(b, NULL, NULL) != 0) {
2030 ret = SSH_ERR_INVALID_FORMAT;
2031 goto out;
2032 }
2033 }
2034 if ((ret = impl->funcs->deserialize_public(ktype, b, key)) != 0)
2035 goto out;
2036
2037 /* Parse certificate potion */
2038 if (sshkey_is_cert(key) && (ret = cert_parse(b, key, copy)) != 0)
2039 goto out;
2040
2041 if (key != NULL && sshbuf_len(b) != 0) {
2042 ret = SSH_ERR_INVALID_FORMAT;
2043 goto out;
2044 }
2045 ret = 0;
2046 if (keyp != NULL) {
2047 *keyp = key;
2048 key = NULL;
2049 }
2050 out:
2051 sshbuf_free(copy);
2052 sshkey_free(key);
2053 free(ktype);
2054 return ret;
2055 }
2056
2057 int
sshkey_from_blob(const u_char * blob,size_t blen,struct sshkey ** keyp)2058 sshkey_from_blob(const u_char *blob, size_t blen, struct sshkey **keyp)
2059 {
2060 struct sshbuf *b;
2061 int r;
2062
2063 if ((b = sshbuf_from(blob, blen)) == NULL)
2064 return SSH_ERR_ALLOC_FAIL;
2065 r = sshkey_from_blob_internal(b, keyp, 1);
2066 sshbuf_free(b);
2067 return r;
2068 }
2069
2070 int
sshkey_fromb(struct sshbuf * b,struct sshkey ** keyp)2071 sshkey_fromb(struct sshbuf *b, struct sshkey **keyp)
2072 {
2073 return sshkey_from_blob_internal(b, keyp, 1);
2074 }
2075
2076 int
sshkey_froms(struct sshbuf * buf,struct sshkey ** keyp)2077 sshkey_froms(struct sshbuf *buf, struct sshkey **keyp)
2078 {
2079 struct sshbuf *b;
2080 int r;
2081
2082 if ((r = sshbuf_froms(buf, &b)) != 0)
2083 return r;
2084 r = sshkey_from_blob_internal(b, keyp, 1);
2085 sshbuf_free(b);
2086 return r;
2087 }
2088
2089 int
sshkey_get_sigtype(const u_char * sig,size_t siglen,char ** sigtypep)2090 sshkey_get_sigtype(const u_char *sig, size_t siglen, char **sigtypep)
2091 {
2092 int r;
2093 struct sshbuf *b = NULL;
2094 char *sigtype = NULL;
2095
2096 if (sigtypep != NULL)
2097 *sigtypep = NULL;
2098 if ((b = sshbuf_from(sig, siglen)) == NULL)
2099 return SSH_ERR_ALLOC_FAIL;
2100 if ((r = sshbuf_get_cstring(b, &sigtype, NULL)) != 0)
2101 goto out;
2102 /* success */
2103 if (sigtypep != NULL) {
2104 *sigtypep = sigtype;
2105 sigtype = NULL;
2106 }
2107 r = 0;
2108 out:
2109 free(sigtype);
2110 sshbuf_free(b);
2111 return r;
2112 }
2113
2114 /*
2115 *
2116 * Checks whether a certificate's signature type is allowed.
2117 * Returns 0 (success) if the certificate signature type appears in the
2118 * "allowed" pattern-list, or the key is not a certificate to begin with.
2119 * Otherwise returns a ssherr.h code.
2120 */
2121 int
sshkey_check_cert_sigtype(const struct sshkey * key,const char * allowed)2122 sshkey_check_cert_sigtype(const struct sshkey *key, const char *allowed)
2123 {
2124 if (key == NULL || allowed == NULL)
2125 return SSH_ERR_INVALID_ARGUMENT;
2126 if (!sshkey_type_is_cert(key->type))
2127 return 0;
2128 if (key->cert == NULL || key->cert->signature_type == NULL)
2129 return SSH_ERR_INVALID_ARGUMENT;
2130 if (match_pattern_list(key->cert->signature_type, allowed, 0) != 1)
2131 return SSH_ERR_SIGN_ALG_UNSUPPORTED;
2132 return 0;
2133 }
2134
2135 /*
2136 * Returns the expected signature algorithm for a given public key algorithm.
2137 */
2138 const char *
sshkey_sigalg_by_name(const char * name)2139 sshkey_sigalg_by_name(const char *name)
2140 {
2141 const struct sshkey_impl *impl;
2142 int i;
2143
2144 for (i = 0; keyimpls[i] != NULL; i++) {
2145 impl = keyimpls[i];
2146 if (strcmp(impl->name, name) != 0)
2147 continue;
2148 if (impl->sigalg != NULL)
2149 return impl->sigalg;
2150 if (!impl->cert)
2151 return impl->name;
2152 return sshkey_ssh_name_from_type_nid(
2153 sshkey_type_plain(impl->type), impl->nid);
2154 }
2155 return NULL;
2156 }
2157
2158 /*
2159 * Verifies that the signature algorithm appearing inside the signature blob
2160 * matches that which was requested.
2161 */
2162 int
sshkey_check_sigtype(const u_char * sig,size_t siglen,const char * requested_alg)2163 sshkey_check_sigtype(const u_char *sig, size_t siglen,
2164 const char *requested_alg)
2165 {
2166 const char *expected_alg;
2167 char *sigtype = NULL;
2168 int r;
2169
2170 if (requested_alg == NULL)
2171 return 0;
2172 if ((expected_alg = sshkey_sigalg_by_name(requested_alg)) == NULL)
2173 return SSH_ERR_INVALID_ARGUMENT;
2174 if ((r = sshkey_get_sigtype(sig, siglen, &sigtype)) != 0)
2175 return r;
2176 r = strcmp(expected_alg, sigtype) == 0;
2177 free(sigtype);
2178 return r ? 0 : SSH_ERR_SIGN_ALG_UNSUPPORTED;
2179 }
2180
2181 int
sshkey_sign(struct sshkey * key,u_char ** sigp,size_t * lenp,const u_char * data,size_t datalen,const char * alg,const char * sk_provider,const char * sk_pin,u_int compat)2182 sshkey_sign(struct sshkey *key,
2183 u_char **sigp, size_t *lenp,
2184 const u_char *data, size_t datalen,
2185 const char *alg, const char *sk_provider, const char *sk_pin, u_int compat)
2186 {
2187 int was_shielded = sshkey_is_shielded(key);
2188 int r2, r = SSH_ERR_INTERNAL_ERROR;
2189 const struct sshkey_impl *impl;
2190
2191 if (sigp != NULL)
2192 *sigp = NULL;
2193 if (lenp != NULL)
2194 *lenp = 0;
2195 if (datalen > SSH_KEY_MAX_SIGN_DATA_SIZE)
2196 return SSH_ERR_INVALID_ARGUMENT;
2197 if ((impl = sshkey_impl_from_key(key)) == NULL)
2198 return SSH_ERR_KEY_TYPE_UNKNOWN;
2199 if ((r = sshkey_unshield_private(key)) != 0)
2200 return r;
2201 if (sshkey_is_sk(key)) {
2202 r = sshsk_sign(sk_provider, key, sigp, lenp, data,
2203 datalen, compat, sk_pin);
2204 } else if ((key->flags & SSHKEY_FLAG_EXT) != 0) {
2205 r = pkcs11_sign(key, sigp, lenp, data, datalen,
2206 alg, sk_provider, sk_pin, compat);
2207 } else {
2208 if (impl->funcs->sign == NULL)
2209 r = SSH_ERR_SIGN_ALG_UNSUPPORTED;
2210 else {
2211 r = impl->funcs->sign(key, sigp, lenp, data, datalen,
2212 alg, sk_provider, sk_pin, compat);
2213 }
2214 }
2215 if (was_shielded && (r2 = sshkey_shield_private(key)) != 0)
2216 return r2;
2217 return r;
2218 }
2219
2220 /*
2221 * ssh_key_verify returns 0 for a correct signature and < 0 on error.
2222 * If "alg" specified, then the signature must use that algorithm.
2223 */
2224 int
sshkey_verify(const struct sshkey * key,const u_char * sig,size_t siglen,const u_char * data,size_t dlen,const char * alg,u_int compat,struct sshkey_sig_details ** detailsp)2225 sshkey_verify(const struct sshkey *key,
2226 const u_char *sig, size_t siglen,
2227 const u_char *data, size_t dlen, const char *alg, u_int compat,
2228 struct sshkey_sig_details **detailsp)
2229 {
2230 const struct sshkey_impl *impl;
2231
2232 if (detailsp != NULL)
2233 *detailsp = NULL;
2234 if (siglen == 0 || dlen > SSH_KEY_MAX_SIGN_DATA_SIZE)
2235 return SSH_ERR_INVALID_ARGUMENT;
2236 if ((impl = sshkey_impl_from_key(key)) == NULL)
2237 return SSH_ERR_KEY_TYPE_UNKNOWN;
2238 return impl->funcs->verify(key, sig, siglen, data, dlen,
2239 alg, compat, detailsp);
2240 }
2241
2242 /* Convert a plain key to their _CERT equivalent */
2243 int
sshkey_to_certified(struct sshkey * k)2244 sshkey_to_certified(struct sshkey *k)
2245 {
2246 int newtype;
2247
2248 if ((newtype = sshkey_type_certified(k->type)) == -1)
2249 return SSH_ERR_INVALID_ARGUMENT;
2250 if ((k->cert = cert_new()) == NULL)
2251 return SSH_ERR_ALLOC_FAIL;
2252 k->type = newtype;
2253 return 0;
2254 }
2255
2256 /* Convert a certificate to its raw key equivalent */
2257 int
sshkey_drop_cert(struct sshkey * k)2258 sshkey_drop_cert(struct sshkey *k)
2259 {
2260 if (!sshkey_type_is_cert(k->type))
2261 return SSH_ERR_KEY_TYPE_UNKNOWN;
2262 cert_free(k->cert);
2263 k->cert = NULL;
2264 k->type = sshkey_type_plain(k->type);
2265 return 0;
2266 }
2267
2268 /* Sign a certified key, (re-)generating the signed certblob. */
2269 int
sshkey_certify_custom(struct sshkey * k,struct sshkey * ca,const char * alg,const char * sk_provider,const char * sk_pin,sshkey_certify_signer * signer,void * signer_ctx)2270 sshkey_certify_custom(struct sshkey *k, struct sshkey *ca, const char *alg,
2271 const char *sk_provider, const char *sk_pin,
2272 sshkey_certify_signer *signer, void *signer_ctx)
2273 {
2274 const struct sshkey_impl *impl;
2275 struct sshbuf *principals = NULL;
2276 u_char *ca_blob = NULL, *sig_blob = NULL, nonce[32];
2277 size_t i, ca_len, sig_len;
2278 int ret = SSH_ERR_INTERNAL_ERROR;
2279 struct sshbuf *cert = NULL;
2280 char *sigtype = NULL;
2281
2282 if (k == NULL || k->cert == NULL ||
2283 k->cert->certblob == NULL || ca == NULL)
2284 return SSH_ERR_INVALID_ARGUMENT;
2285 if (!sshkey_is_cert(k))
2286 return SSH_ERR_KEY_TYPE_UNKNOWN;
2287 if (!sshkey_type_is_valid_ca(ca->type))
2288 return SSH_ERR_KEY_CERT_INVALID_SIGN_KEY;
2289 if ((impl = sshkey_impl_from_key(k)) == NULL)
2290 return SSH_ERR_INTERNAL_ERROR;
2291
2292 /*
2293 * If no alg specified as argument but a signature_type was set,
2294 * then prefer that. If both were specified, then they must match.
2295 */
2296 if (alg == NULL)
2297 alg = k->cert->signature_type;
2298 else if (k->cert->signature_type != NULL &&
2299 strcmp(alg, k->cert->signature_type) != 0)
2300 return SSH_ERR_INVALID_ARGUMENT;
2301
2302 /*
2303 * If no signing algorithm or signature_type was specified and we're
2304 * using a RSA key, then default to a good signature algorithm.
2305 */
2306 if (alg == NULL && ca->type == KEY_RSA)
2307 alg = "rsa-sha2-512";
2308
2309 if ((ret = sshkey_to_blob(ca, &ca_blob, &ca_len)) != 0)
2310 return SSH_ERR_KEY_CERT_INVALID_SIGN_KEY;
2311
2312 cert = k->cert->certblob; /* for readability */
2313 sshbuf_reset(cert);
2314 if ((ret = sshbuf_put_cstring(cert, sshkey_ssh_name(k))) != 0)
2315 goto out;
2316
2317 /* -v01 certs put nonce first */
2318 arc4random_buf(&nonce, sizeof(nonce));
2319 if ((ret = sshbuf_put_string(cert, nonce, sizeof(nonce))) != 0)
2320 goto out;
2321
2322 /* Public key next */
2323 if ((ret = impl->funcs->serialize_public(k, cert,
2324 SSHKEY_SERIALIZE_DEFAULT)) != 0)
2325 goto out;
2326
2327 /* Then remaining cert fields */
2328 if ((ret = sshbuf_put_u64(cert, k->cert->serial)) != 0 ||
2329 (ret = sshbuf_put_u32(cert, k->cert->type)) != 0 ||
2330 (ret = sshbuf_put_cstring(cert, k->cert->key_id)) != 0)
2331 goto out;
2332
2333 if ((principals = sshbuf_new()) == NULL) {
2334 ret = SSH_ERR_ALLOC_FAIL;
2335 goto out;
2336 }
2337 for (i = 0; i < k->cert->nprincipals; i++) {
2338 if ((ret = sshbuf_put_cstring(principals,
2339 k->cert->principals[i])) != 0)
2340 goto out;
2341 }
2342 if ((ret = sshbuf_put_stringb(cert, principals)) != 0 ||
2343 (ret = sshbuf_put_u64(cert, k->cert->valid_after)) != 0 ||
2344 (ret = sshbuf_put_u64(cert, k->cert->valid_before)) != 0 ||
2345 (ret = sshbuf_put_stringb(cert, k->cert->critical)) != 0 ||
2346 (ret = sshbuf_put_stringb(cert, k->cert->extensions)) != 0 ||
2347 (ret = sshbuf_put_string(cert, NULL, 0)) != 0 || /* Reserved */
2348 (ret = sshbuf_put_string(cert, ca_blob, ca_len)) != 0)
2349 goto out;
2350
2351 /* Sign the whole mess */
2352 if ((ret = signer(ca, &sig_blob, &sig_len, sshbuf_ptr(cert),
2353 sshbuf_len(cert), alg, sk_provider, sk_pin, 0, signer_ctx)) != 0)
2354 goto out;
2355 /* Check and update signature_type against what was actually used */
2356 if ((ret = sshkey_get_sigtype(sig_blob, sig_len, &sigtype)) != 0)
2357 goto out;
2358 if (alg != NULL && strcmp(alg, sigtype) != 0) {
2359 ret = SSH_ERR_SIGN_ALG_UNSUPPORTED;
2360 goto out;
2361 }
2362 if (k->cert->signature_type == NULL) {
2363 k->cert->signature_type = sigtype;
2364 sigtype = NULL;
2365 }
2366 /* Append signature and we are done */
2367 if ((ret = sshbuf_put_string(cert, sig_blob, sig_len)) != 0)
2368 goto out;
2369 ret = 0;
2370 out:
2371 if (ret != 0)
2372 sshbuf_reset(cert);
2373 free(sig_blob);
2374 free(ca_blob);
2375 free(sigtype);
2376 sshbuf_free(principals);
2377 return ret;
2378 }
2379
2380 static int
default_key_sign(struct sshkey * key,u_char ** sigp,size_t * lenp,const u_char * data,size_t datalen,const char * alg,const char * sk_provider,const char * sk_pin,u_int compat,void * ctx)2381 default_key_sign(struct sshkey *key, u_char **sigp, size_t *lenp,
2382 const u_char *data, size_t datalen,
2383 const char *alg, const char *sk_provider, const char *sk_pin,
2384 u_int compat, void *ctx)
2385 {
2386 if (ctx != NULL)
2387 return SSH_ERR_INVALID_ARGUMENT;
2388 return sshkey_sign(key, sigp, lenp, data, datalen, alg,
2389 sk_provider, sk_pin, compat);
2390 }
2391
2392 int
sshkey_certify(struct sshkey * k,struct sshkey * ca,const char * alg,const char * sk_provider,const char * sk_pin)2393 sshkey_certify(struct sshkey *k, struct sshkey *ca, const char *alg,
2394 const char *sk_provider, const char *sk_pin)
2395 {
2396 return sshkey_certify_custom(k, ca, alg, sk_provider, sk_pin,
2397 default_key_sign, NULL);
2398 }
2399
2400 int
sshkey_cert_check_authority(const struct sshkey * k,int want_host,int wildcard_pattern,uint64_t verify_time,const char * name,const char ** reason)2401 sshkey_cert_check_authority(const struct sshkey *k,
2402 int want_host, int wildcard_pattern, uint64_t verify_time,
2403 const char *name, const char **reason)
2404 {
2405 u_int i, principal_matches;
2406
2407 if (reason == NULL)
2408 return SSH_ERR_INVALID_ARGUMENT;
2409 if (!sshkey_is_cert(k)) {
2410 *reason = "Key is not a certificate";
2411 return SSH_ERR_KEY_CERT_INVALID;
2412 }
2413 if (want_host) {
2414 if (k->cert->type != SSH2_CERT_TYPE_HOST) {
2415 *reason = "Certificate invalid: not a host certificate";
2416 return SSH_ERR_KEY_CERT_INVALID;
2417 }
2418 } else {
2419 if (k->cert->type != SSH2_CERT_TYPE_USER) {
2420 *reason = "Certificate invalid: not a user certificate";
2421 return SSH_ERR_KEY_CERT_INVALID;
2422 }
2423 }
2424 if (verify_time < k->cert->valid_after) {
2425 *reason = "Certificate invalid: not yet valid";
2426 return SSH_ERR_KEY_CERT_INVALID;
2427 }
2428 if (verify_time >= k->cert->valid_before) {
2429 *reason = "Certificate invalid: expired";
2430 return SSH_ERR_KEY_CERT_INVALID;
2431 }
2432 if (k->cert->nprincipals == 0) {
2433 *reason = "Certificate lacks principal list";
2434 return SSH_ERR_KEY_CERT_INVALID;
2435 }
2436 if (name == NULL)
2437 return 0; /* principal matching not requested */
2438
2439 principal_matches = 0;
2440 for (i = 0; i < k->cert->nprincipals; i++) {
2441 if (wildcard_pattern) {
2442 if (match_pattern(name, k->cert->principals[i])) {
2443 principal_matches = 1;
2444 break;
2445 }
2446 } else if (strcmp(name, k->cert->principals[i]) == 0) {
2447 principal_matches = 1;
2448 break;
2449 }
2450 }
2451 if (!principal_matches) {
2452 *reason = "Certificate invalid: name is not a listed "
2453 "principal";
2454 return SSH_ERR_KEY_CERT_INVALID;
2455 }
2456 return 0;
2457 }
2458
2459 int
sshkey_cert_check_authority_now(const struct sshkey * k,int want_host,int wildcard_pattern,const char * name,const char ** reason)2460 sshkey_cert_check_authority_now(const struct sshkey *k,
2461 int want_host, int wildcard_pattern, const char *name,
2462 const char **reason)
2463 {
2464 time_t now;
2465
2466 if ((now = time(NULL)) < 0) {
2467 /* yikes - system clock before epoch! */
2468 *reason = "Certificate invalid: not yet valid";
2469 return SSH_ERR_KEY_CERT_INVALID;
2470 }
2471 return sshkey_cert_check_authority(k, want_host, wildcard_pattern,
2472 (uint64_t)now, name, reason);
2473 }
2474
2475 int
sshkey_cert_check_host(const struct sshkey * key,const char * host,const char * ca_sign_algorithms,const char ** reason)2476 sshkey_cert_check_host(const struct sshkey *key, const char *host,
2477 const char *ca_sign_algorithms, const char **reason)
2478 {
2479 int r;
2480
2481 if ((r = sshkey_cert_check_authority_now(key, 1, 1, host, reason)) != 0)
2482 return r;
2483 if (sshbuf_len(key->cert->critical) != 0) {
2484 *reason = "Certificate contains unsupported critical options";
2485 return SSH_ERR_KEY_CERT_INVALID;
2486 }
2487 if (ca_sign_algorithms != NULL &&
2488 (r = sshkey_check_cert_sigtype(key, ca_sign_algorithms)) != 0) {
2489 *reason = "Certificate signed with disallowed algorithm";
2490 return SSH_ERR_KEY_CERT_INVALID;
2491 }
2492 return 0;
2493 }
2494
2495 size_t
sshkey_format_cert_validity(const struct sshkey_cert * cert,char * s,size_t l)2496 sshkey_format_cert_validity(const struct sshkey_cert *cert, char *s, size_t l)
2497 {
2498 char from[32], to[32], ret[128];
2499
2500 *from = *to = '\0';
2501 if (cert->valid_after == 0 &&
2502 cert->valid_before == 0xffffffffffffffffULL)
2503 return strlcpy(s, "forever", l);
2504
2505 if (cert->valid_after != 0)
2506 format_absolute_time(cert->valid_after, from, sizeof(from));
2507 if (cert->valid_before != 0xffffffffffffffffULL)
2508 format_absolute_time(cert->valid_before, to, sizeof(to));
2509
2510 if (cert->valid_after == 0)
2511 snprintf(ret, sizeof(ret), "before %s", to);
2512 else if (cert->valid_before == 0xffffffffffffffffULL)
2513 snprintf(ret, sizeof(ret), "after %s", from);
2514 else
2515 snprintf(ret, sizeof(ret), "from %s to %s", from, to);
2516
2517 return strlcpy(s, ret, l);
2518 }
2519
2520 /* Common serialization for FIDO private keys */
2521 int
sshkey_serialize_private_sk(const struct sshkey * key,struct sshbuf * b)2522 sshkey_serialize_private_sk(const struct sshkey *key, struct sshbuf *b)
2523 {
2524 int r;
2525
2526 if ((r = sshbuf_put_cstring(b, key->sk_application)) != 0 ||
2527 (r = sshbuf_put_u8(b, key->sk_flags)) != 0 ||
2528 (r = sshbuf_put_stringb(b, key->sk_key_handle)) != 0 ||
2529 (r = sshbuf_put_stringb(b, key->sk_reserved)) != 0)
2530 return r;
2531
2532 return 0;
2533 }
2534
2535 static int
sshkey_private_serialize_opt(struct sshkey * key,struct sshbuf * buf,enum sshkey_serialize_rep opts)2536 sshkey_private_serialize_opt(struct sshkey *key, struct sshbuf *buf,
2537 enum sshkey_serialize_rep opts)
2538 {
2539 int r = SSH_ERR_INTERNAL_ERROR;
2540 int was_shielded = sshkey_is_shielded(key);
2541 struct sshbuf *b = NULL;
2542 const struct sshkey_impl *impl;
2543
2544 if ((impl = sshkey_impl_from_key(key)) == NULL)
2545 return SSH_ERR_INTERNAL_ERROR;
2546 if ((r = sshkey_unshield_private(key)) != 0)
2547 return r;
2548 if ((b = sshbuf_new()) == NULL)
2549 return SSH_ERR_ALLOC_FAIL;
2550 if ((r = sshbuf_put_cstring(b, sshkey_ssh_name(key))) != 0)
2551 goto out;
2552 if (sshkey_is_cert(key)) {
2553 if (key->cert == NULL ||
2554 sshbuf_len(key->cert->certblob) == 0) {
2555 r = SSH_ERR_INVALID_ARGUMENT;
2556 goto out;
2557 }
2558 if ((r = sshbuf_put_stringb(b, key->cert->certblob)) != 0)
2559 goto out;
2560 }
2561 if ((r = impl->funcs->serialize_private(key, b, opts)) != 0)
2562 goto out;
2563
2564 /*
2565 * success (but we still need to append the output to buf after
2566 * possibly re-shielding the private key)
2567 */
2568 r = 0;
2569 out:
2570 if (was_shielded)
2571 r = sshkey_shield_private(key);
2572 if (r == 0)
2573 r = sshbuf_putb(buf, b);
2574 sshbuf_free(b);
2575
2576 return r;
2577 }
2578
2579 int
sshkey_private_serialize(struct sshkey * key,struct sshbuf * b)2580 sshkey_private_serialize(struct sshkey *key, struct sshbuf *b)
2581 {
2582 return sshkey_private_serialize_opt(key, b,
2583 SSHKEY_SERIALIZE_DEFAULT);
2584 }
2585
2586
2587 /* Shared deserialization of FIDO private key components */
2588 int
sshkey_private_deserialize_sk(struct sshbuf * buf,struct sshkey * k)2589 sshkey_private_deserialize_sk(struct sshbuf *buf, struct sshkey *k)
2590 {
2591 int r;
2592
2593 if ((k->sk_key_handle = sshbuf_new()) == NULL ||
2594 (k->sk_reserved = sshbuf_new()) == NULL)
2595 return SSH_ERR_ALLOC_FAIL;
2596 if ((r = sshbuf_get_cstring(buf, &k->sk_application, NULL)) != 0 ||
2597 (r = sshbuf_get_u8(buf, &k->sk_flags)) != 0 ||
2598 (r = sshbuf_get_stringb(buf, k->sk_key_handle)) != 0 ||
2599 (r = sshbuf_get_stringb(buf, k->sk_reserved)) != 0)
2600 return r;
2601
2602 return 0;
2603 }
2604
2605 int
sshkey_private_deserialize(struct sshbuf * buf,struct sshkey ** kp)2606 sshkey_private_deserialize(struct sshbuf *buf, struct sshkey **kp)
2607 {
2608 const struct sshkey_impl *impl;
2609 char *tname = NULL;
2610 char *expect_sk_application = NULL;
2611 u_char *expect_ed25519_pk = NULL;
2612 struct sshkey *k = NULL;
2613 int type, r = SSH_ERR_INTERNAL_ERROR;
2614
2615 if (kp != NULL)
2616 *kp = NULL;
2617 if ((r = sshbuf_get_cstring(buf, &tname, NULL)) != 0)
2618 goto out;
2619 type = sshkey_type_from_name(tname);
2620 if (sshkey_type_is_cert(type)) {
2621 /*
2622 * Certificate key private keys begin with the certificate
2623 * itself. Make sure this matches the type of the enclosing
2624 * private key.
2625 */
2626 if ((r = sshkey_froms(buf, &k)) != 0)
2627 goto out;
2628 if (k->type != type) {
2629 r = SSH_ERR_KEY_CERT_MISMATCH;
2630 goto out;
2631 }
2632 /* For ECDSA keys, the group must match too */
2633 if (k->type == KEY_ECDSA &&
2634 k->ecdsa_nid != sshkey_ecdsa_nid_from_name(tname)) {
2635 r = SSH_ERR_KEY_CERT_MISMATCH;
2636 goto out;
2637 }
2638 /*
2639 * Several fields are redundant between certificate and
2640 * private key body, we require these to match.
2641 */
2642 expect_sk_application = k->sk_application;
2643 expect_ed25519_pk = k->ed25519_pk;
2644 k->sk_application = NULL;
2645 k->ed25519_pk = NULL;
2646 } else {
2647 if ((k = sshkey_new(type)) == NULL) {
2648 r = SSH_ERR_ALLOC_FAIL;
2649 goto out;
2650 }
2651 }
2652 if ((impl = sshkey_impl_from_type(type)) == NULL) {
2653 r = SSH_ERR_INTERNAL_ERROR;
2654 goto out;
2655 }
2656 if ((r = impl->funcs->deserialize_private(tname, buf, k)) != 0)
2657 goto out;
2658
2659 if ((expect_sk_application != NULL && (k->sk_application == NULL ||
2660 strcmp(expect_sk_application, k->sk_application) != 0)) ||
2661 (expect_ed25519_pk != NULL && (k->ed25519_pk == NULL ||
2662 memcmp(expect_ed25519_pk, k->ed25519_pk, ED25519_PK_SZ) != 0))) {
2663 r = SSH_ERR_KEY_CERT_MISMATCH;
2664 goto out;
2665 }
2666 /* success */
2667 r = 0;
2668 if (kp != NULL) {
2669 *kp = k;
2670 k = NULL;
2671 }
2672 out:
2673 free(tname);
2674 sshkey_free(k);
2675 free(expect_sk_application);
2676 free(expect_ed25519_pk);
2677 return r;
2678 }
2679
2680 #if defined(WITH_OPENSSL) && defined(OPENSSL_HAS_ECC)
2681 int
sshkey_ec_validate_public(const EC_GROUP * group,const EC_POINT * public)2682 sshkey_ec_validate_public(const EC_GROUP *group, const EC_POINT *public)
2683 {
2684 EC_POINT *nq = NULL;
2685 BIGNUM *order = NULL, *cofactor = NULL;
2686 int ret = SSH_ERR_KEY_INVALID_EC_VALUE;
2687
2688 /*
2689 * NB. This assumes OpenSSL has already verified that the public
2690 * point lies on the curve and that its coordinates are in [0, p).
2691 * This is done by EC_POINT_oct2point() on at least OpenSSL >= 1.1,
2692 * LibreSSL and BoringSSL.
2693 */
2694
2695 /* Q != infinity */
2696 if (EC_POINT_is_at_infinity(group, public))
2697 goto out;
2698
2699 if ((cofactor = BN_new()) == NULL) {
2700 ret = SSH_ERR_ALLOC_FAIL;
2701 goto out;
2702 }
2703 if (EC_GROUP_get_cofactor(group, cofactor, NULL) != 1)
2704 goto out;
2705
2706 /*
2707 * Verify nQ == infinity (n == order of subgroup)
2708 * This check may be skipped for curves with cofactor 1, as per
2709 * NIST SP 800-56A, 5.6.2.3.
2710 */
2711 if (!BN_is_one(cofactor)) {
2712 if ((order = BN_new()) == NULL) {
2713 ret = SSH_ERR_ALLOC_FAIL;
2714 goto out;
2715 }
2716 if ((nq = EC_POINT_new(group)) == NULL) {
2717 ret = SSH_ERR_ALLOC_FAIL;
2718 goto out;
2719 }
2720 if (EC_POINT_mul(group, nq, NULL, public, order, NULL) != 1) {
2721 ret = SSH_ERR_LIBCRYPTO_ERROR;
2722 goto out;
2723 }
2724 if (EC_POINT_is_at_infinity(group, nq) != 1)
2725 goto out;
2726 }
2727
2728 /* success */
2729 ret = 0;
2730 out:
2731 BN_clear_free(cofactor);
2732 BN_clear_free(order);
2733 EC_POINT_free(nq);
2734 return ret;
2735 }
2736
2737 int
sshkey_ec_validate_private(const EC_KEY * key)2738 sshkey_ec_validate_private(const EC_KEY *key)
2739 {
2740 BIGNUM *order = NULL, *tmp = NULL;
2741 int ret = SSH_ERR_KEY_INVALID_EC_VALUE;
2742
2743 if ((order = BN_new()) == NULL || (tmp = BN_new()) == NULL) {
2744 ret = SSH_ERR_ALLOC_FAIL;
2745 goto out;
2746 }
2747
2748 /* log2(private) > log2(order)/2 */
2749 if (EC_GROUP_get_order(EC_KEY_get0_group(key), order, NULL) != 1) {
2750 ret = SSH_ERR_LIBCRYPTO_ERROR;
2751 goto out;
2752 }
2753 if (BN_num_bits(EC_KEY_get0_private_key(key)) <=
2754 BN_num_bits(order) / 2)
2755 goto out;
2756
2757 /* private < order - 1 */
2758 if (!BN_sub(tmp, order, BN_value_one())) {
2759 ret = SSH_ERR_LIBCRYPTO_ERROR;
2760 goto out;
2761 }
2762 if (BN_cmp(EC_KEY_get0_private_key(key), tmp) >= 0)
2763 goto out;
2764 ret = 0;
2765 out:
2766 BN_clear_free(order);
2767 BN_clear_free(tmp);
2768 return ret;
2769 }
2770
2771 void
sshkey_dump_ec_point(const EC_GROUP * group,const EC_POINT * point)2772 sshkey_dump_ec_point(const EC_GROUP *group, const EC_POINT *point)
2773 {
2774 BIGNUM *x = NULL, *y = NULL;
2775
2776 if (point == NULL) {
2777 fputs("point=(NULL)\n", stderr);
2778 return;
2779 }
2780 if ((x = BN_new()) == NULL || (y = BN_new()) == NULL) {
2781 fprintf(stderr, "%s: BN_new failed\n", __func__);
2782 goto out;
2783 }
2784 if (EC_POINT_get_affine_coordinates(group, point, x, y, NULL) != 1) {
2785 fprintf(stderr, "%s: EC_POINT_get_affine_coordinates\n",
2786 __func__);
2787 goto out;
2788 }
2789 fputs("x=", stderr);
2790 BN_print_fp(stderr, x);
2791 fputs("\ny=", stderr);
2792 BN_print_fp(stderr, y);
2793 fputs("\n", stderr);
2794 out:
2795 BN_clear_free(x);
2796 BN_clear_free(y);
2797 }
2798
2799 void
sshkey_dump_ec_key(const EC_KEY * key)2800 sshkey_dump_ec_key(const EC_KEY *key)
2801 {
2802 const BIGNUM *exponent;
2803
2804 sshkey_dump_ec_point(EC_KEY_get0_group(key),
2805 EC_KEY_get0_public_key(key));
2806 fputs("exponent=", stderr);
2807 if ((exponent = EC_KEY_get0_private_key(key)) == NULL)
2808 fputs("(NULL)", stderr);
2809 else
2810 BN_print_fp(stderr, EC_KEY_get0_private_key(key));
2811 fputs("\n", stderr);
2812 }
2813 #endif /* WITH_OPENSSL && OPENSSL_HAS_ECC */
2814
2815 static int
sshkey_private_to_blob2(struct sshkey * prv,struct sshbuf * blob,const char * passphrase,const char * comment,const char * ciphername,int rounds)2816 sshkey_private_to_blob2(struct sshkey *prv, struct sshbuf *blob,
2817 const char *passphrase, const char *comment, const char *ciphername,
2818 int rounds)
2819 {
2820 u_char *cp, *key = NULL, *pubkeyblob = NULL;
2821 u_char salt[SALT_LEN];
2822 size_t i, pubkeylen, keylen, ivlen, blocksize, authlen;
2823 u_int check;
2824 int r = SSH_ERR_INTERNAL_ERROR;
2825 struct sshcipher_ctx *ciphercontext = NULL;
2826 const struct sshcipher *cipher;
2827 const char *kdfname = KDFNAME;
2828 struct sshbuf *encoded = NULL, *encrypted = NULL, *kdf = NULL;
2829
2830 if (rounds <= 0)
2831 rounds = DEFAULT_ROUNDS;
2832 if (passphrase == NULL || !strlen(passphrase)) {
2833 ciphername = "none";
2834 kdfname = "none";
2835 } else if (ciphername == NULL)
2836 ciphername = DEFAULT_CIPHERNAME;
2837 if ((cipher = cipher_by_name(ciphername)) == NULL) {
2838 r = SSH_ERR_INVALID_ARGUMENT;
2839 goto out;
2840 }
2841
2842 if ((kdf = sshbuf_new()) == NULL ||
2843 (encoded = sshbuf_new()) == NULL ||
2844 (encrypted = sshbuf_new()) == NULL) {
2845 r = SSH_ERR_ALLOC_FAIL;
2846 goto out;
2847 }
2848 blocksize = cipher_blocksize(cipher);
2849 keylen = cipher_keylen(cipher);
2850 ivlen = cipher_ivlen(cipher);
2851 authlen = cipher_authlen(cipher);
2852 if ((key = calloc(1, keylen + ivlen)) == NULL) {
2853 r = SSH_ERR_ALLOC_FAIL;
2854 goto out;
2855 }
2856 if (strcmp(kdfname, "bcrypt") == 0) {
2857 arc4random_buf(salt, SALT_LEN);
2858 if (bcrypt_pbkdf(passphrase, strlen(passphrase),
2859 salt, SALT_LEN, key, keylen + ivlen, rounds) < 0) {
2860 r = SSH_ERR_INVALID_ARGUMENT;
2861 goto out;
2862 }
2863 if ((r = sshbuf_put_string(kdf, salt, SALT_LEN)) != 0 ||
2864 (r = sshbuf_put_u32(kdf, rounds)) != 0)
2865 goto out;
2866 } else if (strcmp(kdfname, "none") != 0) {
2867 /* Unsupported KDF type */
2868 r = SSH_ERR_KEY_UNKNOWN_CIPHER;
2869 goto out;
2870 }
2871 if ((r = cipher_init(&ciphercontext, cipher, key, keylen,
2872 key + keylen, ivlen, 1)) != 0)
2873 goto out;
2874
2875 if ((r = sshbuf_put(encoded, AUTH_MAGIC, sizeof(AUTH_MAGIC))) != 0 ||
2876 (r = sshbuf_put_cstring(encoded, ciphername)) != 0 ||
2877 (r = sshbuf_put_cstring(encoded, kdfname)) != 0 ||
2878 (r = sshbuf_put_stringb(encoded, kdf)) != 0 ||
2879 (r = sshbuf_put_u32(encoded, 1)) != 0 || /* number of keys */
2880 (r = sshkey_to_blob(prv, &pubkeyblob, &pubkeylen)) != 0 ||
2881 (r = sshbuf_put_string(encoded, pubkeyblob, pubkeylen)) != 0)
2882 goto out;
2883
2884 /* set up the buffer that will be encrypted */
2885
2886 /* Random check bytes */
2887 check = arc4random();
2888 if ((r = sshbuf_put_u32(encrypted, check)) != 0 ||
2889 (r = sshbuf_put_u32(encrypted, check)) != 0)
2890 goto out;
2891
2892 /* append private key and comment*/
2893 if ((r = sshkey_private_serialize(prv, encrypted)) != 0 ||
2894 (r = sshbuf_put_cstring(encrypted, comment)) != 0)
2895 goto out;
2896
2897 /* padding */
2898 i = 0;
2899 while (sshbuf_len(encrypted) % blocksize) {
2900 if ((r = sshbuf_put_u8(encrypted, ++i & 0xff)) != 0)
2901 goto out;
2902 }
2903
2904 /* length in destination buffer */
2905 if ((r = sshbuf_put_u32(encoded, sshbuf_len(encrypted))) != 0)
2906 goto out;
2907
2908 /* encrypt */
2909 if ((r = sshbuf_reserve(encoded,
2910 sshbuf_len(encrypted) + authlen, &cp)) != 0)
2911 goto out;
2912 if ((r = cipher_crypt(ciphercontext, 0, cp,
2913 sshbuf_ptr(encrypted), sshbuf_len(encrypted), 0, authlen)) != 0)
2914 goto out;
2915
2916 sshbuf_reset(blob);
2917
2918 /* assemble uuencoded key */
2919 if ((r = sshbuf_put(blob, MARK_BEGIN, MARK_BEGIN_LEN)) != 0 ||
2920 (r = sshbuf_dtob64(encoded, blob, 1)) != 0 ||
2921 (r = sshbuf_put(blob, MARK_END, MARK_END_LEN)) != 0)
2922 goto out;
2923
2924 /* success */
2925 r = 0;
2926
2927 out:
2928 sshbuf_free(kdf);
2929 sshbuf_free(encoded);
2930 sshbuf_free(encrypted);
2931 cipher_free(ciphercontext);
2932 explicit_bzero(salt, sizeof(salt));
2933 if (key != NULL)
2934 freezero(key, keylen + ivlen);
2935 if (pubkeyblob != NULL)
2936 freezero(pubkeyblob, pubkeylen);
2937 return r;
2938 }
2939
2940 static int
private2_uudecode(struct sshbuf * blob,struct sshbuf ** decodedp)2941 private2_uudecode(struct sshbuf *blob, struct sshbuf **decodedp)
2942 {
2943 const u_char *cp;
2944 size_t encoded_len;
2945 int r;
2946 u_char last;
2947 struct sshbuf *encoded = NULL, *decoded = NULL;
2948
2949 if (blob == NULL || decodedp == NULL)
2950 return SSH_ERR_INVALID_ARGUMENT;
2951
2952 *decodedp = NULL;
2953
2954 if ((encoded = sshbuf_new()) == NULL ||
2955 (decoded = sshbuf_new()) == NULL) {
2956 r = SSH_ERR_ALLOC_FAIL;
2957 goto out;
2958 }
2959
2960 /* check preamble */
2961 cp = sshbuf_ptr(blob);
2962 encoded_len = sshbuf_len(blob);
2963 if (encoded_len < (MARK_BEGIN_LEN + MARK_END_LEN) ||
2964 memcmp(cp, MARK_BEGIN, MARK_BEGIN_LEN) != 0) {
2965 r = SSH_ERR_INVALID_FORMAT;
2966 goto out;
2967 }
2968 cp += MARK_BEGIN_LEN;
2969 encoded_len -= MARK_BEGIN_LEN;
2970
2971 /* Look for end marker, removing whitespace as we go */
2972 while (encoded_len > 0) {
2973 if (*cp != '\n' && *cp != '\r') {
2974 if ((r = sshbuf_put_u8(encoded, *cp)) != 0)
2975 goto out;
2976 }
2977 last = *cp;
2978 encoded_len--;
2979 cp++;
2980 if (last == '\n') {
2981 if (encoded_len >= MARK_END_LEN &&
2982 memcmp(cp, MARK_END, MARK_END_LEN) == 0) {
2983 /* \0 terminate */
2984 if ((r = sshbuf_put_u8(encoded, 0)) != 0)
2985 goto out;
2986 break;
2987 }
2988 }
2989 }
2990 if (encoded_len == 0) {
2991 r = SSH_ERR_INVALID_FORMAT;
2992 goto out;
2993 }
2994
2995 /* decode base64 */
2996 if ((r = sshbuf_b64tod(decoded, (char *)sshbuf_ptr(encoded))) != 0)
2997 goto out;
2998
2999 /* check magic */
3000 if (sshbuf_len(decoded) < sizeof(AUTH_MAGIC) ||
3001 memcmp(sshbuf_ptr(decoded), AUTH_MAGIC, sizeof(AUTH_MAGIC))) {
3002 r = SSH_ERR_INVALID_FORMAT;
3003 goto out;
3004 }
3005 /* success */
3006 *decodedp = decoded;
3007 decoded = NULL;
3008 r = 0;
3009 out:
3010 sshbuf_free(encoded);
3011 sshbuf_free(decoded);
3012 return r;
3013 }
3014
3015 static int
private2_decrypt(struct sshbuf * decoded,const char * passphrase,struct sshbuf ** decryptedp,struct sshkey ** pubkeyp)3016 private2_decrypt(struct sshbuf *decoded, const char *passphrase,
3017 struct sshbuf **decryptedp, struct sshkey **pubkeyp)
3018 {
3019 char *ciphername = NULL, *kdfname = NULL;
3020 const struct sshcipher *cipher = NULL;
3021 int r = SSH_ERR_INTERNAL_ERROR;
3022 size_t keylen = 0, ivlen = 0, authlen = 0, slen = 0;
3023 struct sshbuf *kdf = NULL, *decrypted = NULL;
3024 struct sshcipher_ctx *ciphercontext = NULL;
3025 struct sshkey *pubkey = NULL;
3026 u_char *key = NULL, *salt = NULL, *dp;
3027 u_int blocksize, rounds, nkeys, encrypted_len, check1, check2;
3028
3029 if (decoded == NULL || decryptedp == NULL || pubkeyp == NULL)
3030 return SSH_ERR_INVALID_ARGUMENT;
3031
3032 *decryptedp = NULL;
3033 *pubkeyp = NULL;
3034
3035 if ((decrypted = sshbuf_new()) == NULL) {
3036 r = SSH_ERR_ALLOC_FAIL;
3037 goto out;
3038 }
3039
3040 /* parse public portion of key */
3041 if ((r = sshbuf_consume(decoded, sizeof(AUTH_MAGIC))) != 0 ||
3042 (r = sshbuf_get_cstring(decoded, &ciphername, NULL)) != 0 ||
3043 (r = sshbuf_get_cstring(decoded, &kdfname, NULL)) != 0 ||
3044 (r = sshbuf_froms(decoded, &kdf)) != 0 ||
3045 (r = sshbuf_get_u32(decoded, &nkeys)) != 0)
3046 goto out;
3047
3048 if (nkeys != 1) {
3049 /* XXX only one key supported at present */
3050 r = SSH_ERR_INVALID_FORMAT;
3051 goto out;
3052 }
3053
3054 if ((r = sshkey_froms(decoded, &pubkey)) != 0 ||
3055 (r = sshbuf_get_u32(decoded, &encrypted_len)) != 0)
3056 goto out;
3057
3058 if ((cipher = cipher_by_name(ciphername)) == NULL) {
3059 r = SSH_ERR_KEY_UNKNOWN_CIPHER;
3060 goto out;
3061 }
3062 if (strcmp(kdfname, "none") != 0 && strcmp(kdfname, "bcrypt") != 0) {
3063 r = SSH_ERR_KEY_UNKNOWN_CIPHER;
3064 goto out;
3065 }
3066 if (strcmp(kdfname, "none") == 0 && strcmp(ciphername, "none") != 0) {
3067 r = SSH_ERR_INVALID_FORMAT;
3068 goto out;
3069 }
3070 if ((passphrase == NULL || strlen(passphrase) == 0) &&
3071 strcmp(kdfname, "none") != 0) {
3072 /* passphrase required */
3073 r = SSH_ERR_KEY_WRONG_PASSPHRASE;
3074 goto out;
3075 }
3076
3077 /* check size of encrypted key blob */
3078 blocksize = cipher_blocksize(cipher);
3079 if (encrypted_len < blocksize || (encrypted_len % blocksize) != 0) {
3080 r = SSH_ERR_INVALID_FORMAT;
3081 goto out;
3082 }
3083
3084 /* setup key */
3085 keylen = cipher_keylen(cipher);
3086 ivlen = cipher_ivlen(cipher);
3087 authlen = cipher_authlen(cipher);
3088 if ((key = calloc(1, keylen + ivlen)) == NULL) {
3089 r = SSH_ERR_ALLOC_FAIL;
3090 goto out;
3091 }
3092 if (strcmp(kdfname, "bcrypt") == 0) {
3093 if ((r = sshbuf_get_string(kdf, &salt, &slen)) != 0 ||
3094 (r = sshbuf_get_u32(kdf, &rounds)) != 0)
3095 goto out;
3096 if (bcrypt_pbkdf(passphrase, strlen(passphrase), salt, slen,
3097 key, keylen + ivlen, rounds) < 0) {
3098 r = SSH_ERR_INVALID_FORMAT;
3099 goto out;
3100 }
3101 }
3102
3103 /* check that an appropriate amount of auth data is present */
3104 if (sshbuf_len(decoded) < authlen ||
3105 sshbuf_len(decoded) - authlen < encrypted_len) {
3106 r = SSH_ERR_INVALID_FORMAT;
3107 goto out;
3108 }
3109
3110 /* decrypt private portion of key */
3111 if ((r = sshbuf_reserve(decrypted, encrypted_len, &dp)) != 0 ||
3112 (r = cipher_init(&ciphercontext, cipher, key, keylen,
3113 key + keylen, ivlen, 0)) != 0)
3114 goto out;
3115 if ((r = cipher_crypt(ciphercontext, 0, dp, sshbuf_ptr(decoded),
3116 encrypted_len, 0, authlen)) != 0) {
3117 /* an integrity error here indicates an incorrect passphrase */
3118 if (r == SSH_ERR_MAC_INVALID)
3119 r = SSH_ERR_KEY_WRONG_PASSPHRASE;
3120 goto out;
3121 }
3122 if ((r = sshbuf_consume(decoded, encrypted_len + authlen)) != 0)
3123 goto out;
3124 /* there should be no trailing data */
3125 if (sshbuf_len(decoded) != 0) {
3126 r = SSH_ERR_INVALID_FORMAT;
3127 goto out;
3128 }
3129
3130 /* check check bytes */
3131 if ((r = sshbuf_get_u32(decrypted, &check1)) != 0 ||
3132 (r = sshbuf_get_u32(decrypted, &check2)) != 0)
3133 goto out;
3134 if (check1 != check2) {
3135 r = SSH_ERR_KEY_WRONG_PASSPHRASE;
3136 goto out;
3137 }
3138 /* success */
3139 *decryptedp = decrypted;
3140 decrypted = NULL;
3141 *pubkeyp = pubkey;
3142 pubkey = NULL;
3143 r = 0;
3144 out:
3145 cipher_free(ciphercontext);
3146 free(ciphername);
3147 free(kdfname);
3148 sshkey_free(pubkey);
3149 if (salt != NULL) {
3150 explicit_bzero(salt, slen);
3151 free(salt);
3152 }
3153 if (key != NULL) {
3154 explicit_bzero(key, keylen + ivlen);
3155 free(key);
3156 }
3157 sshbuf_free(kdf);
3158 sshbuf_free(decrypted);
3159 return r;
3160 }
3161
3162 static int
sshkey_parse_private2(struct sshbuf * blob,int type,const char * passphrase,struct sshkey ** keyp,char ** commentp)3163 sshkey_parse_private2(struct sshbuf *blob, int type, const char *passphrase,
3164 struct sshkey **keyp, char **commentp)
3165 {
3166 char *comment = NULL;
3167 int r = SSH_ERR_INTERNAL_ERROR;
3168 struct sshbuf *decoded = NULL, *decrypted = NULL;
3169 struct sshkey *k = NULL, *pubkey = NULL;
3170
3171 if (keyp != NULL)
3172 *keyp = NULL;
3173 if (commentp != NULL)
3174 *commentp = NULL;
3175
3176 /* Undo base64 encoding and decrypt the private section */
3177 if ((r = private2_uudecode(blob, &decoded)) != 0 ||
3178 (r = private2_decrypt(decoded, passphrase,
3179 &decrypted, &pubkey)) != 0)
3180 goto out;
3181
3182 if (type != KEY_UNSPEC &&
3183 sshkey_type_plain(type) != sshkey_type_plain(pubkey->type)) {
3184 r = SSH_ERR_KEY_TYPE_MISMATCH;
3185 goto out;
3186 }
3187
3188 /* Load the private key and comment */
3189 if ((r = sshkey_private_deserialize(decrypted, &k)) != 0 ||
3190 (r = sshbuf_get_cstring(decrypted, &comment, NULL)) != 0)
3191 goto out;
3192
3193 /* Check deterministic padding after private section */
3194 if ((r = private2_check_padding(decrypted)) != 0)
3195 goto out;
3196
3197 /* Check that the public key in the envelope matches the private key */
3198 if (!sshkey_equal(pubkey, k)) {
3199 r = SSH_ERR_INVALID_FORMAT;
3200 goto out;
3201 }
3202
3203 /* success */
3204 r = 0;
3205 if (keyp != NULL) {
3206 *keyp = k;
3207 k = NULL;
3208 }
3209 if (commentp != NULL) {
3210 *commentp = comment;
3211 comment = NULL;
3212 }
3213 out:
3214 free(comment);
3215 sshbuf_free(decoded);
3216 sshbuf_free(decrypted);
3217 sshkey_free(k);
3218 sshkey_free(pubkey);
3219 return r;
3220 }
3221
3222 static int
sshkey_parse_private2_pubkey(struct sshbuf * blob,int type,struct sshkey ** keyp)3223 sshkey_parse_private2_pubkey(struct sshbuf *blob, int type,
3224 struct sshkey **keyp)
3225 {
3226 int r = SSH_ERR_INTERNAL_ERROR;
3227 struct sshbuf *decoded = NULL;
3228 struct sshkey *pubkey = NULL;
3229 u_int nkeys = 0;
3230
3231 if (keyp != NULL)
3232 *keyp = NULL;
3233
3234 if ((r = private2_uudecode(blob, &decoded)) != 0)
3235 goto out;
3236 /* parse public key from unencrypted envelope */
3237 if ((r = sshbuf_consume(decoded, sizeof(AUTH_MAGIC))) != 0 ||
3238 (r = sshbuf_skip_string(decoded)) != 0 || /* cipher */
3239 (r = sshbuf_skip_string(decoded)) != 0 || /* KDF alg */
3240 (r = sshbuf_skip_string(decoded)) != 0 || /* KDF hint */
3241 (r = sshbuf_get_u32(decoded, &nkeys)) != 0)
3242 goto out;
3243
3244 if (nkeys != 1) {
3245 /* XXX only one key supported at present */
3246 r = SSH_ERR_INVALID_FORMAT;
3247 goto out;
3248 }
3249
3250 /* Parse the public key */
3251 if ((r = sshkey_froms(decoded, &pubkey)) != 0)
3252 goto out;
3253
3254 if (type != KEY_UNSPEC &&
3255 sshkey_type_plain(type) != sshkey_type_plain(pubkey->type)) {
3256 r = SSH_ERR_KEY_TYPE_MISMATCH;
3257 goto out;
3258 }
3259
3260 /* success */
3261 r = 0;
3262 if (keyp != NULL) {
3263 *keyp = pubkey;
3264 pubkey = NULL;
3265 }
3266 out:
3267 sshbuf_free(decoded);
3268 sshkey_free(pubkey);
3269 return r;
3270 }
3271
3272 #ifdef WITH_OPENSSL
3273 /* convert SSH v2 key to PEM or PKCS#8 format */
3274 static int
sshkey_private_to_blob_pem_pkcs8(struct sshkey * key,struct sshbuf * buf,int format,const char * _passphrase,const char * comment)3275 sshkey_private_to_blob_pem_pkcs8(struct sshkey *key, struct sshbuf *buf,
3276 int format, const char *_passphrase, const char *comment)
3277 {
3278 int was_shielded = sshkey_is_shielded(key);
3279 int success, r;
3280 int blen, len = strlen(_passphrase);
3281 u_char *passphrase = (len > 0) ? (u_char *)_passphrase : NULL;
3282 const EVP_CIPHER *cipher = (len > 0) ? EVP_aes_128_cbc() : NULL;
3283 char *bptr;
3284 BIO *bio = NULL;
3285 struct sshbuf *blob;
3286 EVP_PKEY *pkey = NULL;
3287
3288 if (len > 0 && len <= 4)
3289 return SSH_ERR_PASSPHRASE_TOO_SHORT;
3290 if ((blob = sshbuf_new()) == NULL)
3291 return SSH_ERR_ALLOC_FAIL;
3292 if ((bio = BIO_new(BIO_s_mem())) == NULL) {
3293 r = SSH_ERR_ALLOC_FAIL;
3294 goto out;
3295 }
3296 if ((r = sshkey_unshield_private(key)) != 0)
3297 goto out;
3298
3299 switch (key->type) {
3300 #ifdef OPENSSL_HAS_ECC
3301 case KEY_ECDSA:
3302 if (format == SSHKEY_PRIVATE_PEM) {
3303 success = PEM_write_bio_ECPrivateKey(bio,
3304 EVP_PKEY_get0_EC_KEY(key->pkey),
3305 cipher, passphrase, len, NULL, NULL);
3306 } else {
3307 pkey = key->pkey;
3308 EVP_PKEY_up_ref(key->pkey);
3309 success = 1;
3310 }
3311 break;
3312 #endif
3313 case KEY_RSA:
3314 if (format == SSHKEY_PRIVATE_PEM) {
3315 success = PEM_write_bio_RSAPrivateKey(bio,
3316 EVP_PKEY_get0_RSA(key->pkey),
3317 cipher, passphrase, len, NULL, NULL);
3318 } else {
3319 pkey = key->pkey;
3320 EVP_PKEY_up_ref(key->pkey);
3321 success = 1;
3322 }
3323 break;
3324 #ifdef OPENSSL_HAS_ED25519
3325 case KEY_ED25519:
3326 if (format == SSHKEY_PRIVATE_PEM) {
3327 r = SSH_ERR_INVALID_FORMAT;
3328 goto out;
3329 } else {
3330 pkey = EVP_PKEY_new_raw_private_key(EVP_PKEY_ED25519,
3331 NULL, key->ed25519_sk,
3332 ED25519_SK_SZ - ED25519_PK_SZ);
3333 success = pkey != NULL;
3334 }
3335 break;
3336 #endif
3337 default:
3338 success = 0;
3339 break;
3340 }
3341 if (success == 0) {
3342 r = SSH_ERR_LIBCRYPTO_ERROR;
3343 goto out;
3344 }
3345 if (format == SSHKEY_PRIVATE_PKCS8) {
3346 if ((success = PEM_write_bio_PrivateKey(bio, pkey, cipher,
3347 passphrase, len, NULL, NULL)) == 0) {
3348 r = SSH_ERR_LIBCRYPTO_ERROR;
3349 goto out;
3350 }
3351 }
3352 if ((blen = BIO_get_mem_data(bio, &bptr)) <= 0) {
3353 r = SSH_ERR_INTERNAL_ERROR;
3354 goto out;
3355 }
3356 if ((r = sshbuf_put(blob, bptr, blen)) != 0)
3357 goto out;
3358 r = 0;
3359 out:
3360 if (was_shielded)
3361 r = sshkey_shield_private(key);
3362 if (r == 0)
3363 r = sshbuf_putb(buf, blob);
3364
3365 EVP_PKEY_free(pkey);
3366 sshbuf_free(blob);
3367 BIO_free(bio);
3368 return r;
3369 }
3370 #endif /* WITH_OPENSSL */
3371
3372 /* Serialise "key" to buffer "blob" */
3373 int
sshkey_private_to_fileblob(struct sshkey * key,struct sshbuf * blob,const char * passphrase,const char * comment,int format,const char * openssh_format_cipher,int openssh_format_rounds)3374 sshkey_private_to_fileblob(struct sshkey *key, struct sshbuf *blob,
3375 const char *passphrase, const char *comment,
3376 int format, const char *openssh_format_cipher, int openssh_format_rounds)
3377 {
3378 switch (key->type) {
3379 #ifdef WITH_OPENSSL
3380 case KEY_ECDSA:
3381 case KEY_RSA:
3382 case KEY_ED25519:
3383 break; /* see below */
3384 #else /* WITH_OPENSSL */
3385 case KEY_ED25519:
3386 #endif /* WITH_OPENSSL */
3387 case KEY_ED25519_SK:
3388 #ifdef WITH_OPENSSL
3389 case KEY_ECDSA_SK:
3390 #endif /* WITH_OPENSSL */
3391 return sshkey_private_to_blob2(key, blob, passphrase,
3392 comment, openssh_format_cipher, openssh_format_rounds);
3393 default:
3394 return SSH_ERR_KEY_TYPE_UNKNOWN;
3395 }
3396
3397 #ifdef WITH_OPENSSL
3398 switch (format) {
3399 case SSHKEY_PRIVATE_OPENSSH:
3400 return sshkey_private_to_blob2(key, blob, passphrase,
3401 comment, openssh_format_cipher, openssh_format_rounds);
3402 case SSHKEY_PRIVATE_PEM:
3403 case SSHKEY_PRIVATE_PKCS8:
3404 return sshkey_private_to_blob_pem_pkcs8(key, blob,
3405 format, passphrase, comment);
3406 default:
3407 return SSH_ERR_INVALID_ARGUMENT;
3408 }
3409 #endif /* WITH_OPENSSL */
3410 }
3411
3412 #ifdef WITH_OPENSSL
3413 static int
translate_libcrypto_error(unsigned long pem_err)3414 translate_libcrypto_error(unsigned long pem_err)
3415 {
3416 int pem_reason = ERR_GET_REASON(pem_err);
3417
3418 switch (ERR_GET_LIB(pem_err)) {
3419 case ERR_LIB_PEM:
3420 switch (pem_reason) {
3421 case PEM_R_BAD_PASSWORD_READ:
3422 #ifdef PEM_R_PROBLEMS_GETTING_PASSWORD
3423 case PEM_R_PROBLEMS_GETTING_PASSWORD:
3424 #endif
3425 #ifdef PEM_R_BAD_DECRYPT
3426 case PEM_R_BAD_DECRYPT:
3427 #endif
3428 return SSH_ERR_KEY_WRONG_PASSPHRASE;
3429 default:
3430 return SSH_ERR_INVALID_FORMAT;
3431 }
3432 case ERR_LIB_EVP:
3433 switch (pem_reason) {
3434 #ifdef EVP_R_BAD_DECRYPT
3435 case EVP_R_BAD_DECRYPT:
3436 return SSH_ERR_KEY_WRONG_PASSPHRASE;
3437 #endif
3438 #ifdef EVP_R_BN_DECODE_ERROR
3439 case EVP_R_BN_DECODE_ERROR:
3440 #endif
3441 case EVP_R_DECODE_ERROR:
3442 #ifdef EVP_R_PRIVATE_KEY_DECODE_ERROR
3443 case EVP_R_PRIVATE_KEY_DECODE_ERROR:
3444 #endif
3445 return SSH_ERR_INVALID_FORMAT;
3446 default:
3447 return SSH_ERR_LIBCRYPTO_ERROR;
3448 }
3449 case ERR_LIB_ASN1:
3450 return SSH_ERR_INVALID_FORMAT;
3451 }
3452 return SSH_ERR_LIBCRYPTO_ERROR;
3453 }
3454
3455 static void
clear_libcrypto_errors(void)3456 clear_libcrypto_errors(void)
3457 {
3458 while (ERR_get_error() != 0)
3459 ;
3460 }
3461
3462 /*
3463 * Translate OpenSSL error codes to determine whether
3464 * passphrase is required/incorrect.
3465 */
3466 static int
convert_libcrypto_error(void)3467 convert_libcrypto_error(void)
3468 {
3469 /*
3470 * Some password errors are reported at the beginning
3471 * of the error queue.
3472 */
3473 if (translate_libcrypto_error(ERR_peek_error()) ==
3474 SSH_ERR_KEY_WRONG_PASSPHRASE)
3475 return SSH_ERR_KEY_WRONG_PASSPHRASE;
3476 return translate_libcrypto_error(ERR_peek_last_error());
3477 }
3478
3479 static int
pem_passphrase_cb(char * buf,int size,int rwflag,void * u)3480 pem_passphrase_cb(char *buf, int size, int rwflag, void *u)
3481 {
3482 char *p = (char *)u;
3483 size_t len;
3484
3485 if (p == NULL || (len = strlen(p)) == 0)
3486 return -1;
3487 if (size < 0 || len > (size_t)size)
3488 return -1;
3489 memcpy(buf, p, len);
3490 return (int)len;
3491 }
3492
3493 static int
sshkey_parse_private_pem_fileblob(struct sshbuf * blob,int type,const char * passphrase,struct sshkey ** keyp)3494 sshkey_parse_private_pem_fileblob(struct sshbuf *blob, int type,
3495 const char *passphrase, struct sshkey **keyp)
3496 {
3497 EVP_PKEY *pk = NULL;
3498 struct sshkey *prv = NULL;
3499 BIO *bio = NULL;
3500 int r;
3501 RSA *rsa = NULL;
3502 EC_KEY *ecdsa = NULL;
3503
3504 if (keyp != NULL)
3505 *keyp = NULL;
3506
3507 if ((bio = BIO_new(BIO_s_mem())) == NULL || sshbuf_len(blob) > INT_MAX)
3508 return SSH_ERR_ALLOC_FAIL;
3509 if (BIO_write(bio, sshbuf_ptr(blob), sshbuf_len(blob)) !=
3510 (int)sshbuf_len(blob)) {
3511 r = SSH_ERR_ALLOC_FAIL;
3512 goto out;
3513 }
3514
3515 clear_libcrypto_errors();
3516 if ((pk = PEM_read_bio_PrivateKey(bio, NULL, pem_passphrase_cb,
3517 (char *)passphrase)) == NULL) {
3518 /*
3519 * libcrypto may return various ASN.1 errors when attempting
3520 * to parse a key with an incorrect passphrase.
3521 * Treat all format errors as "incorrect passphrase" if a
3522 * passphrase was supplied.
3523 */
3524 if (passphrase != NULL && *passphrase != '\0')
3525 r = SSH_ERR_KEY_WRONG_PASSPHRASE;
3526 else
3527 r = convert_libcrypto_error();
3528 goto out;
3529 }
3530 if (EVP_PKEY_base_id(pk) == EVP_PKEY_RSA &&
3531 (type == KEY_UNSPEC || type == KEY_RSA)) {
3532 if ((prv = sshkey_new(KEY_UNSPEC)) == NULL) {
3533 r = SSH_ERR_ALLOC_FAIL;
3534 goto out;
3535 }
3536 if ((rsa = EVP_PKEY_get1_RSA(pk)) == NULL) {
3537 r = SSH_ERR_LIBCRYPTO_ERROR;
3538 goto out;
3539 }
3540 prv->type = KEY_RSA;
3541 #ifdef DEBUG_PK
3542 RSA_print_fp(stderr, rsa, 8);
3543 #endif
3544 if (RSA_blinding_on(rsa, NULL) != 1 ||
3545 EVP_PKEY_set1_RSA(pk, rsa) != 1) {
3546 r = SSH_ERR_LIBCRYPTO_ERROR;
3547 goto out;
3548 }
3549 EVP_PKEY_up_ref(pk);
3550 prv->pkey = pk;
3551 if ((r = sshkey_check_rsa_length(prv, 0)) != 0)
3552 goto out;
3553 #ifdef OPENSSL_HAS_ECC
3554 } else if (EVP_PKEY_base_id(pk) == EVP_PKEY_EC &&
3555 (type == KEY_UNSPEC || type == KEY_ECDSA)) {
3556 if ((prv = sshkey_new(KEY_UNSPEC)) == NULL) {
3557 r = SSH_ERR_ALLOC_FAIL;
3558 goto out;
3559 }
3560 if ((prv->ecdsa_nid = sshkey_ecdsa_fixup_group(pk)) == -1 ||
3561 (ecdsa = EVP_PKEY_get1_EC_KEY(pk)) == NULL) {
3562 r = SSH_ERR_LIBCRYPTO_ERROR;
3563 goto out;
3564 }
3565 prv->type = KEY_ECDSA;
3566 if (sshkey_curve_nid_to_name(prv->ecdsa_nid) == NULL ||
3567 sshkey_ec_validate_public(EC_KEY_get0_group(ecdsa),
3568 EC_KEY_get0_public_key(ecdsa)) != 0 ||
3569 sshkey_ec_validate_private(ecdsa) != 0) {
3570 r = SSH_ERR_INVALID_FORMAT;
3571 goto out;
3572 }
3573 EVP_PKEY_up_ref(pk);
3574 prv->pkey = pk;
3575 #ifdef DEBUG_PK
3576 if (prv != NULL && prv->pkey != NULL)
3577 sshkey_dump_ec_key(EVP_PKEY_get0_EC_KEY(prv->pkey));
3578 #endif
3579 #endif /* OPENSSL_HAS_ECC */
3580 #ifdef OPENSSL_HAS_ED25519
3581 } else if (EVP_PKEY_base_id(pk) == EVP_PKEY_ED25519 &&
3582 (type == KEY_UNSPEC || type == KEY_ED25519)) {
3583 size_t len;
3584
3585 if ((prv = sshkey_new(KEY_UNSPEC)) == NULL ||
3586 (prv->ed25519_sk = calloc(1, ED25519_SK_SZ)) == NULL ||
3587 (prv->ed25519_pk = calloc(1, ED25519_PK_SZ)) == NULL) {
3588 r = SSH_ERR_ALLOC_FAIL;
3589 goto out;
3590 }
3591 prv->type = KEY_ED25519;
3592 len = ED25519_PK_SZ;
3593 if (!EVP_PKEY_get_raw_public_key(pk, prv->ed25519_pk, &len)) {
3594 r = SSH_ERR_LIBCRYPTO_ERROR;
3595 goto out;
3596 }
3597 if (len != ED25519_PK_SZ) {
3598 r = SSH_ERR_INVALID_FORMAT;
3599 goto out;
3600 }
3601 len = ED25519_SK_SZ - ED25519_PK_SZ;
3602 if (!EVP_PKEY_get_raw_private_key(pk, prv->ed25519_sk, &len)) {
3603 r = SSH_ERR_LIBCRYPTO_ERROR;
3604 goto out;
3605 }
3606 if (len != ED25519_SK_SZ - ED25519_PK_SZ) {
3607 r = SSH_ERR_INVALID_FORMAT;
3608 goto out;
3609 }
3610 /* Append the public key to our private key */
3611 memcpy(prv->ed25519_sk + (ED25519_SK_SZ - ED25519_PK_SZ),
3612 prv->ed25519_pk, ED25519_PK_SZ);
3613 #ifdef DEBUG_PK
3614 sshbuf_dump_data(prv->ed25519_sk, ED25519_SK_SZ, stderr);
3615 #endif
3616 #endif /* OPENSSL_HAS_ED25519 */
3617 } else {
3618 r = SSH_ERR_INVALID_FORMAT;
3619 goto out;
3620 }
3621 r = 0;
3622 if (keyp != NULL) {
3623 *keyp = prv;
3624 prv = NULL;
3625 }
3626 out:
3627 BIO_free(bio);
3628 EVP_PKEY_free(pk);
3629 RSA_free(rsa);
3630 #ifdef OPENSSL_HAS_ECC
3631 EC_KEY_free(ecdsa);
3632 #endif
3633 sshkey_free(prv);
3634 return r;
3635 }
3636 #endif /* WITH_OPENSSL */
3637
3638 int
sshkey_parse_private_fileblob_type(struct sshbuf * blob,int type,const char * passphrase,struct sshkey ** keyp,char ** commentp)3639 sshkey_parse_private_fileblob_type(struct sshbuf *blob, int type,
3640 const char *passphrase, struct sshkey **keyp, char **commentp)
3641 {
3642 int r = SSH_ERR_INTERNAL_ERROR;
3643
3644 if (keyp != NULL)
3645 *keyp = NULL;
3646 if (commentp != NULL)
3647 *commentp = NULL;
3648
3649 r = sshkey_parse_private2(blob, type, passphrase, keyp, commentp);
3650 /* Only fallback to PEM parser if a format error occurred. */
3651 if (r != SSH_ERR_INVALID_FORMAT)
3652 return r;
3653 #ifdef WITH_OPENSSL
3654 return sshkey_parse_private_pem_fileblob(blob, type,
3655 passphrase, keyp);
3656 #else
3657 return SSH_ERR_INVALID_FORMAT;
3658 #endif /* WITH_OPENSSL */
3659 }
3660
3661 int
sshkey_parse_private_fileblob(struct sshbuf * buffer,const char * passphrase,struct sshkey ** keyp,char ** commentp)3662 sshkey_parse_private_fileblob(struct sshbuf *buffer, const char *passphrase,
3663 struct sshkey **keyp, char **commentp)
3664 {
3665 if (keyp != NULL)
3666 *keyp = NULL;
3667 if (commentp != NULL)
3668 *commentp = NULL;
3669
3670 return sshkey_parse_private_fileblob_type(buffer, KEY_UNSPEC,
3671 passphrase, keyp, commentp);
3672 }
3673
3674 void
sshkey_sig_details_free(struct sshkey_sig_details * details)3675 sshkey_sig_details_free(struct sshkey_sig_details *details)
3676 {
3677 freezero(details, sizeof(*details));
3678 }
3679
3680 int
sshkey_parse_pubkey_from_private_fileblob_type(struct sshbuf * blob,int type,struct sshkey ** pubkeyp)3681 sshkey_parse_pubkey_from_private_fileblob_type(struct sshbuf *blob, int type,
3682 struct sshkey **pubkeyp)
3683 {
3684 int r = SSH_ERR_INTERNAL_ERROR;
3685
3686 if (pubkeyp != NULL)
3687 *pubkeyp = NULL;
3688 /* only new-format private keys bundle a public key inside */
3689 if ((r = sshkey_parse_private2_pubkey(blob, type, pubkeyp)) != 0)
3690 return r;
3691 return 0;
3692 }
3693