sshpubk.c 61 KB

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  1. /*
  2. * Generic SSH public-key handling operations. In particular,
  3. * reading of SSH public-key files, and also the generic `sign'
  4. * operation for SSH-2 (which checks the type of the key and
  5. * dispatches to the appropriate key-type specific function).
  6. */
  7. #include <stdio.h>
  8. #include <string.h>
  9. #include <errno.h>
  10. #include <stdlib.h>
  11. #include <assert.h>
  12. #include <ctype.h>
  13. #include "putty.h"
  14. #include "mpint.h"
  15. #include "ssh.h"
  16. #include "misc.h"
  17. /*
  18. * Fairly arbitrary size limit on any public or private key blob.
  19. * Chosen to match AGENT_MAX_MSGLEN, on the basis that any key too
  20. * large to transfer over the ssh-agent protocol is probably too large
  21. * to be useful in general.
  22. *
  23. * MAX_KEY_BLOB_LINES is the corresponding limit on the Public-Lines
  24. * or Private-Lines header field in a key file.
  25. */
  26. #define MAX_KEY_BLOB_SIZE 262144
  27. #define MAX_KEY_BLOB_LINES (MAX_KEY_BLOB_SIZE / 48)
  28. /*
  29. * Corresponding limit on the size of a key _file_ itself, based on
  30. * base64-encoding the key blob and then adding a few Kb for
  31. * surrounding metadata.
  32. */
  33. #define MAX_KEY_FILE_SIZE (MAX_KEY_BLOB_SIZE * 4 / 3 + 4096)
  34. static const ptrlen rsa1_signature =
  35. PTRLEN_DECL_LITERAL("SSH PRIVATE KEY FILE FORMAT 1.1\n\0");
  36. #define BASE64_TOINT(x) ( (x)-'A'<26 ? (x)-'A'+0 :\
  37. (x)-'a'<26 ? (x)-'a'+26 :\
  38. (x)-'0'<10 ? (x)-'0'+52 :\
  39. (x)=='+' ? 62 : \
  40. (x)=='/' ? 63 : 0 )
  41. LoadedFile *lf_new(size_t max_size)
  42. {
  43. LoadedFile *lf = snew_plus(LoadedFile, max_size);
  44. lf->data = snew_plus_get_aux(lf);
  45. lf->len = 0;
  46. lf->max_size = max_size;
  47. return lf;
  48. }
  49. void lf_free(LoadedFile *lf)
  50. {
  51. smemclr(lf->data, lf->max_size);
  52. smemclr(lf, sizeof(LoadedFile));
  53. sfree(lf);
  54. }
  55. LoadFileStatus lf_load_fp(LoadedFile *lf, FILE *fp)
  56. {
  57. lf->len = 0;
  58. while (lf->len < lf->max_size) {
  59. size_t retd = fread(lf->data + lf->len, 1, lf->max_size - lf->len, fp);
  60. if (ferror(fp))
  61. return LF_ERROR;
  62. if (retd == 0)
  63. break;
  64. lf->len += retd;
  65. }
  66. { // WINSCP
  67. LoadFileStatus status = LF_OK;
  68. if (lf->len == lf->max_size) {
  69. /* The file might be too long to fit in our fixed-size
  70. * structure. Try reading one more byte, to check. */
  71. if (fgetc(fp) != EOF)
  72. status = LF_TOO_BIG;
  73. }
  74. BinarySource_INIT(lf, lf->data, lf->len);
  75. return status;
  76. } // WINSCP
  77. }
  78. LoadFileStatus lf_load(LoadedFile *lf, const Filename *filename)
  79. {
  80. #ifdef WINSCP
  81. const char * data = in_memory_key_data(filename);
  82. if (data != NULL)
  83. {
  84. LoadFileStatus status = LF_OK;
  85. int len = strlen(data);
  86. char buf[3] = { '\0' };
  87. int i;
  88. for (i = 0; i < len; i += 2)
  89. {
  90. if (lf->len == lf->max_size)
  91. {
  92. status = LF_TOO_BIG;
  93. break;
  94. }
  95. buf[0] = data[i];
  96. buf[1] = data[i + 1];
  97. lf->data[lf->len] = strtol(buf, NULL, 16);
  98. lf->len++;
  99. }
  100. BinarySource_INIT(lf, lf->data, lf->len);
  101. return status;
  102. }
  103. #endif
  104. { // WINSCP
  105. FILE *fp = f_open(filename, "rb", false);
  106. if (!fp)
  107. return LF_ERROR;
  108. { // WINSCP
  109. LoadFileStatus status = lf_load_fp(lf, fp);
  110. fclose(fp);
  111. return status;
  112. } // WINSCP
  113. } // WINSCP
  114. }
  115. static inline bool lf_load_keyfile_helper(LoadFileStatus status,
  116. const char **errptr)
  117. {
  118. const char *error;
  119. switch (status) {
  120. case LF_OK:
  121. return true;
  122. case LF_TOO_BIG:
  123. error = "file is too large to be a key file";
  124. break;
  125. case LF_ERROR:
  126. error = strerror(errno);
  127. break;
  128. default:
  129. unreachable("bad status value in lf_load_keyfile_helper");
  130. }
  131. if (errptr)
  132. *errptr = error;
  133. return false;
  134. }
  135. LoadedFile *lf_load_keyfile(const Filename *filename, const char **errptr)
  136. {
  137. LoadedFile *lf = lf_new(MAX_KEY_FILE_SIZE);
  138. if (!lf_load_keyfile_helper(lf_load(lf, filename), errptr)) {
  139. lf_free(lf);
  140. return NULL;
  141. }
  142. return lf;
  143. }
  144. #ifndef WINSCP
  145. /* This API does not support in-memory keys like lf_load, so make sure it's not in use */
  146. LoadedFile *lf_load_keyfile_fp(FILE *fp, const char **errptr)
  147. {
  148. LoadedFile *lf = lf_new(MAX_KEY_FILE_SIZE);
  149. if (!lf_load_keyfile_helper(lf_load_fp(lf, fp), errptr)) {
  150. lf_free(lf);
  151. return NULL;
  152. }
  153. return lf;
  154. }
  155. #endif
  156. static bool expect_signature(BinarySource *src, ptrlen realsig)
  157. {
  158. ptrlen thissig = get_data(src, realsig.len);
  159. return !get_err(src) && ptrlen_eq_ptrlen(realsig, thissig);
  160. }
  161. #ifndef WINSCP
  162. static int rsa1_load_s_internal(BinarySource *src, RSAKey *key, bool pub_only,
  163. char **commentptr, const char *passphrase,
  164. const char **error)
  165. {
  166. strbuf *buf = NULL;
  167. int ciphertype;
  168. int ret = 0;
  169. ptrlen comment;
  170. *error = "not an SSH-1 RSA file";
  171. if (!expect_signature(src, rsa1_signature))
  172. goto end;
  173. *error = "file format error";
  174. /* One byte giving encryption type, and one reserved uint32. */
  175. ciphertype = get_byte(src);
  176. if (ciphertype != 0 && ciphertype != SSH1_CIPHER_3DES)
  177. goto end;
  178. if (get_uint32(src) != 0)
  179. goto end; /* reserved field nonzero, panic! */
  180. /* Now the serious stuff. An ordinary SSH-1 public key. */
  181. get_rsa_ssh1_pub(src, key, RSA_SSH1_MODULUS_FIRST);
  182. /* Next, the comment field. */
  183. comment = get_string(src);
  184. if (commentptr)
  185. *commentptr = mkstr(comment);
  186. if (key)
  187. key->comment = mkstr(comment);
  188. if (pub_only) {
  189. ret = 1;
  190. goto end;
  191. }
  192. if (!key) {
  193. ret = ciphertype != 0;
  194. *error = NULL;
  195. goto end;
  196. }
  197. /*
  198. * Decrypt remainder of buffer.
  199. */
  200. if (ciphertype) {
  201. size_t enclen = get_avail(src);
  202. if (enclen & 7)
  203. goto end;
  204. buf = strbuf_dup_nm(get_data(src, enclen));
  205. { // WINSCP
  206. unsigned char keybuf[16];
  207. hash_simple(&ssh_md5, ptrlen_from_asciz(passphrase), keybuf);
  208. des3_decrypt_pubkey(keybuf, buf->u, enclen);
  209. smemclr(keybuf, sizeof(keybuf)); /* burn the evidence */
  210. BinarySource_BARE_INIT_PL(src, ptrlen_from_strbuf(buf));
  211. } // WINSCP
  212. }
  213. /*
  214. * We are now in the secret part of the key. The first four
  215. * bytes should be of the form a, b, a, b.
  216. */
  217. {
  218. int b0a = get_byte(src);
  219. int b1a = get_byte(src);
  220. int b0b = get_byte(src);
  221. int b1b = get_byte(src);
  222. if (b0a != b0b || b1a != b1b) {
  223. *error = "wrong passphrase";
  224. ret = -1;
  225. goto end;
  226. }
  227. }
  228. /*
  229. * After that, we have one further bignum which is our
  230. * decryption exponent, and then the three auxiliary values
  231. * (iqmp, q, p).
  232. */
  233. get_rsa_ssh1_priv(src, key);
  234. key->iqmp = get_mp_ssh1(src);
  235. key->q = get_mp_ssh1(src);
  236. key->p = get_mp_ssh1(src);
  237. if (!rsa_verify(key)) {
  238. *error = "rsa_verify failed";
  239. freersakey(key);
  240. ret = 0;
  241. } else {
  242. *error = NULL;
  243. ret = 1;
  244. }
  245. end:
  246. if (buf)
  247. strbuf_free(buf);
  248. return ret;
  249. }
  250. int rsa1_load_s(BinarySource *src, RSAKey *key,
  251. const char *passphrase, const char **errstr)
  252. {
  253. return rsa1_load_s_internal(src, key, false, NULL, passphrase, errstr);
  254. }
  255. int rsa1_load_f(const Filename *filename, RSAKey *key,
  256. const char *passphrase, const char **errstr)
  257. {
  258. LoadedFile *lf = lf_load_keyfile(filename, errstr);
  259. if (!lf)
  260. return false;
  261. { // WINSCP
  262. int toret = rsa1_load_s(BinarySource_UPCAST(lf), key, passphrase, errstr);
  263. lf_free(lf);
  264. return toret;
  265. } // WINSCP
  266. }
  267. /*
  268. * See whether an RSA key is encrypted. Return its comment field as
  269. * well.
  270. */
  271. bool rsa1_encrypted_s(BinarySource *src, char **comment)
  272. {
  273. const char *dummy;
  274. return rsa1_load_s_internal(src, NULL, false, comment, NULL, &dummy) == 1;
  275. }
  276. bool rsa1_encrypted_f(const Filename *filename, char **comment)
  277. {
  278. LoadedFile *lf = lf_load_keyfile(filename, NULL);
  279. if (!lf)
  280. return false; /* couldn't even open the file */
  281. { // WINSCP
  282. bool toret = rsa1_encrypted_s(BinarySource_UPCAST(lf), comment);
  283. lf_free(lf);
  284. return toret;
  285. } // WINSCP
  286. }
  287. /*
  288. * Read the public part of an SSH-1 RSA key from a file (public or
  289. * private), and generate its public blob in exponent-first order.
  290. */
  291. int rsa1_loadpub_s(BinarySource *src, BinarySink *bs,
  292. char **commentptr, const char **errorstr)
  293. {
  294. RSAKey key;
  295. int ret;
  296. const char *error = NULL;
  297. /* Default return if we fail. */
  298. ret = 0;
  299. { // WINSCP
  300. bool is_privkey_file = expect_signature(src, rsa1_signature);
  301. BinarySource_REWIND(src);
  302. if (is_privkey_file) {
  303. /*
  304. * Load just the public half from an SSH-1 private key file.
  305. */
  306. memset(&key, 0, sizeof(key));
  307. if (rsa1_load_s_internal(src, &key, true, commentptr, NULL, &error)) {
  308. rsa_ssh1_public_blob(bs, &key, RSA_SSH1_EXPONENT_FIRST);
  309. freersakey(&key);
  310. ret = 1;
  311. }
  312. } else {
  313. /*
  314. * Try interpreting the file as an SSH-1 public key.
  315. */
  316. char *line, *p, *bitsp, *expp, *modp, *commentp;
  317. line = mkstr(get_chomped_line(src));
  318. p = line;
  319. bitsp = p;
  320. p += strspn(p, "0123456789");
  321. if (*p != ' ')
  322. goto not_public_either;
  323. *p++ = '\0';
  324. expp = p;
  325. p += strspn(p, "0123456789");
  326. if (*p != ' ')
  327. goto not_public_either;
  328. *p++ = '\0';
  329. modp = p;
  330. p += strspn(p, "0123456789");
  331. if (*p) {
  332. if (*p != ' ')
  333. goto not_public_either;
  334. *p++ = '\0';
  335. commentp = p;
  336. } else {
  337. commentp = NULL;
  338. }
  339. memset(&key, 0, sizeof(key));
  340. key.exponent = mp_from_decimal(expp);
  341. key.modulus = mp_from_decimal(modp);
  342. if (atoi(bitsp) != mp_get_nbits(key.modulus)) {
  343. mp_free(key.exponent);
  344. mp_free(key.modulus);
  345. sfree(line);
  346. error = "key bit count does not match in SSH-1 public key file";
  347. goto end;
  348. }
  349. if (commentptr)
  350. *commentptr = commentp ? dupstr(commentp) : NULL;
  351. rsa_ssh1_public_blob(bs, &key, RSA_SSH1_EXPONENT_FIRST);
  352. freersakey(&key);
  353. sfree(line);
  354. return 1;
  355. not_public_either:
  356. sfree(line);
  357. error = "not an SSH-1 RSA file";
  358. }
  359. end:
  360. if ((ret != 1) && errorstr)
  361. *errorstr = error;
  362. return ret;
  363. } // WINSCP
  364. }
  365. int rsa1_loadpub_f(const Filename *filename, BinarySink *bs,
  366. char **commentptr, const char **errorstr)
  367. {
  368. LoadedFile *lf = lf_load_keyfile(filename, errorstr);
  369. if (!lf)
  370. return 0;
  371. { // WINSCP
  372. int toret = rsa1_loadpub_s(BinarySource_UPCAST(lf), bs,
  373. commentptr, errorstr);
  374. lf_free(lf);
  375. return toret;
  376. } // WINSCP
  377. }
  378. strbuf *rsa1_save_sb(RSAKey *key, const char *passphrase)
  379. {
  380. strbuf *buf = strbuf_new_nm();
  381. int estart;
  382. /*
  383. * The public part of the key.
  384. */
  385. put_datapl(buf, rsa1_signature);
  386. put_byte(buf, passphrase ? SSH1_CIPHER_3DES : 0); /* encryption type */
  387. put_uint32(buf, 0); /* reserved */
  388. rsa_ssh1_public_blob(BinarySink_UPCAST(buf), key,
  389. RSA_SSH1_MODULUS_FIRST);
  390. put_stringz(buf, NULLTOEMPTY(key->comment));
  391. /*
  392. * The encrypted portion starts here.
  393. */
  394. estart = buf->len;
  395. /*
  396. * Two bytes, then the same two bytes repeated.
  397. */
  398. {
  399. uint8_t bytes[2];
  400. random_read(bytes, 2);
  401. put_data(buf, bytes, 2);
  402. put_data(buf, bytes, 2);
  403. }
  404. /*
  405. * Four more bignums: the decryption exponent, then iqmp, then
  406. * q, then p.
  407. */
  408. put_mp_ssh1(buf, key->private_exponent);
  409. put_mp_ssh1(buf, key->iqmp);
  410. put_mp_ssh1(buf, key->q);
  411. put_mp_ssh1(buf, key->p);
  412. /*
  413. * Now write zeros until the encrypted portion is a multiple of
  414. * 8 bytes.
  415. */
  416. put_padding(buf, (estart - buf->len) & 7, 0);
  417. /*
  418. * Now encrypt the encrypted portion.
  419. */
  420. if (passphrase) {
  421. unsigned char keybuf[16];
  422. hash_simple(&ssh_md5, ptrlen_from_asciz(passphrase), keybuf);
  423. des3_encrypt_pubkey(keybuf, buf->u + estart, buf->len - estart);
  424. smemclr(keybuf, sizeof(keybuf)); /* burn the evidence */
  425. }
  426. return buf;
  427. }
  428. /*
  429. * Save an RSA key file. Return true on success.
  430. */
  431. bool rsa1_save_f(const Filename *filename, RSAKey *key, const char *passphrase)
  432. {
  433. FILE *fp = f_open(filename, "wb", true);
  434. if (!fp)
  435. return false;
  436. { // WINSCP
  437. strbuf *buf = rsa1_save_sb(key, passphrase);
  438. bool toret = fwrite(buf->s, 1, buf->len, fp) == buf->len;
  439. if (fclose(fp))
  440. toret = false;
  441. strbuf_free(buf);
  442. return toret;
  443. } // WINSCP
  444. }
  445. #endif
  446. /* ----------------------------------------------------------------------
  447. * SSH-2 private key load/store functions.
  448. *
  449. * PuTTY's own file format for SSH-2 keys is given in doc/ppk.but, aka
  450. * the "PPK file format" appendix in the PuTTY manual.
  451. */
  452. static bool read_header(BinarySource *src, char *header)
  453. {
  454. int len = 39;
  455. int c;
  456. while (1) {
  457. c = get_byte(src);
  458. if (c == '\n' || c == '\r' || get_err(src))
  459. return false; /* failure */
  460. if (c == ':') {
  461. c = get_byte(src);
  462. if (c != ' ')
  463. return false;
  464. *header = '\0';
  465. return true; /* success! */
  466. }
  467. if (len == 0)
  468. return false; /* failure */
  469. *header++ = c;
  470. len--;
  471. }
  472. return false; /* failure */
  473. }
  474. static char *read_body(BinarySource *src)
  475. {
  476. strbuf *buf = strbuf_new_nm();
  477. while (1) {
  478. int c = get_byte(src);
  479. if (c == '\r' || c == '\n' || get_err(src)) {
  480. if (!get_err(src)) {
  481. c = get_byte(src);
  482. if (c != '\r' && c != '\n' && !get_err(src))
  483. src->pos--;
  484. }
  485. return strbuf_to_str(buf);
  486. }
  487. put_byte(buf, c);
  488. }
  489. }
  490. static bool read_blob(BinarySource *src, int nlines, BinarySink *bs)
  491. {
  492. unsigned char *blob;
  493. char *line;
  494. int linelen;
  495. int i, j, k;
  496. /* We expect at most 64 base64 characters, ie 48 real bytes, per line. */
  497. assert(nlines < MAX_KEY_BLOB_LINES);
  498. blob = snewn(48 * nlines, unsigned char);
  499. for (i = 0; i < nlines; i++) {
  500. line = read_body(src);
  501. if (!line) {
  502. sfree(blob);
  503. return false;
  504. }
  505. linelen = strlen(line);
  506. if (linelen % 4 != 0 || linelen > 64) {
  507. sfree(blob);
  508. sfree(line);
  509. return false;
  510. }
  511. for (j = 0; j < linelen; j += 4) {
  512. unsigned char decoded[3];
  513. k = base64_decode_atom(line + j, decoded);
  514. if (!k) {
  515. sfree(line);
  516. sfree(blob);
  517. return false;
  518. }
  519. put_data(bs, decoded, k);
  520. }
  521. sfree(line);
  522. }
  523. sfree(blob);
  524. return true;
  525. }
  526. /*
  527. * Magic error return value for when the passphrase is wrong.
  528. */
  529. ssh2_userkey ssh2_wrong_passphrase = { NULL, NULL };
  530. const ssh_keyalg *const all_keyalgs[] = {
  531. &ssh_rsa,
  532. &ssh_rsa_sha256,
  533. &ssh_rsa_sha512,
  534. &ssh_dsa,
  535. &ssh_ecdsa_nistp256,
  536. &ssh_ecdsa_nistp384,
  537. &ssh_ecdsa_nistp521,
  538. &ssh_ecdsa_ed25519,
  539. &ssh_ecdsa_ed448,
  540. #ifndef WINSCP
  541. &opensshcert_ssh_dsa,
  542. &opensshcert_ssh_rsa,
  543. &opensshcert_ssh_rsa_sha256,
  544. &opensshcert_ssh_rsa_sha512,
  545. &opensshcert_ssh_ecdsa_ed25519,
  546. &opensshcert_ssh_ecdsa_nistp256,
  547. &opensshcert_ssh_ecdsa_nistp384,
  548. &opensshcert_ssh_ecdsa_nistp521,
  549. #endif
  550. };
  551. const size_t n_keyalgs = lenof(all_keyalgs);
  552. const ssh_keyalg *find_pubkey_alg_len(ptrlen name)
  553. {
  554. size_t i; // WINSCP
  555. for (i = 0; i < n_keyalgs; i++)
  556. if (ptrlen_eq_string(name, all_keyalgs[i]->ssh_id))
  557. return all_keyalgs[i];
  558. return NULL;
  559. }
  560. const ssh_keyalg *find_pubkey_alg(const char *name)
  561. {
  562. return find_pubkey_alg_len(ptrlen_from_asciz(name));
  563. }
  564. ptrlen pubkey_blob_to_alg_name(ptrlen blob)
  565. {
  566. BinarySource src[1];
  567. BinarySource_BARE_INIT_PL(src, blob);
  568. return get_string(src);
  569. }
  570. const ssh_keyalg *pubkey_blob_to_alg(ptrlen blob)
  571. {
  572. return find_pubkey_alg_len(pubkey_blob_to_alg_name(blob));
  573. }
  574. struct ppk_cipher {
  575. const char *name;
  576. size_t blocklen, keylen, ivlen;
  577. };
  578. static const struct ppk_cipher ppk_cipher_none = { "none", 1, 0, 0 };
  579. static const struct ppk_cipher ppk_cipher_aes256_cbc = { "aes256-cbc", 16, 32, 16 };
  580. static void ssh2_ppk_derive_keys(
  581. unsigned fmt_version, const struct ppk_cipher *ciphertype,
  582. ptrlen passphrase, strbuf *storage, ptrlen *cipherkey, ptrlen *cipheriv,
  583. ptrlen *mackey, ptrlen passphrase_salt, ppk_save_parameters *params)
  584. {
  585. size_t mac_keylen;
  586. switch (fmt_version) {
  587. case 3: {
  588. if (ciphertype->keylen == 0) {
  589. mac_keylen = 0;
  590. break;
  591. }
  592. { // WINSCP
  593. ptrlen empty = PTRLEN_LITERAL("");
  594. mac_keylen = 32;
  595. { // WINSCP
  596. uint32_t taglen = ciphertype->keylen + ciphertype->ivlen + mac_keylen;
  597. if (params->argon2_passes_auto) {
  598. uint32_t passes;
  599. argon2_choose_passes(
  600. params->argon2_flavour, params->argon2_mem,
  601. params->argon2_milliseconds, &passes,
  602. params->argon2_parallelism, taglen,
  603. passphrase, passphrase_salt, empty, empty, storage);
  604. params->argon2_passes_auto = false;
  605. params->argon2_passes = passes;
  606. } else {
  607. argon2(params->argon2_flavour, params->argon2_mem,
  608. params->argon2_passes, params->argon2_parallelism, taglen,
  609. passphrase, passphrase_salt, empty, empty, storage);
  610. }
  611. } // WINSCP
  612. } // WINSCP
  613. break;
  614. }
  615. case 2:
  616. case 1: {
  617. /* Counter-mode iteration to generate cipher key data. */
  618. { // WINSCP
  619. unsigned ctr; // WINSCP
  620. for (ctr = 0; ctr * 20 < ciphertype->keylen; ctr++) {
  621. ssh_hash *h = ssh_hash_new(&ssh_sha1);
  622. put_uint32(h, ctr);
  623. put_datapl(h, passphrase);
  624. ssh_hash_final(h, strbuf_append(storage, 20));
  625. }
  626. strbuf_shrink_to(storage, ciphertype->keylen);
  627. /* In this version of the format, the CBC IV was always all 0. */
  628. put_padding(storage, ciphertype->ivlen, 0);
  629. /* Completely separate hash for the MAC key. */
  630. { // WINSCP
  631. ssh_hash *h = ssh_hash_new(&ssh_sha1);
  632. mac_keylen = ssh_hash_alg(h)->hlen;
  633. put_datapl(h, PTRLEN_LITERAL("putty-private-key-file-mac-key"));
  634. put_datapl(h, passphrase);
  635. ssh_hash_final(h, strbuf_append(storage, mac_keylen));
  636. } // WINSCP
  637. } // WINSCP
  638. break;
  639. }
  640. default:
  641. unreachable("bad format version in ssh2_ppk_derive_keys");
  642. }
  643. { // WINSCP
  644. BinarySource src[1];
  645. BinarySource_BARE_INIT_PL(src, ptrlen_from_strbuf(storage));
  646. *cipherkey = get_data(src, ciphertype->keylen);
  647. *cipheriv = get_data(src, ciphertype->ivlen);
  648. *mackey = get_data(src, mac_keylen);
  649. } // WINSCP
  650. }
  651. static int userkey_parse_line_counter(const char *text)
  652. {
  653. char *endptr;
  654. unsigned long ul = strtoul(text, &endptr, 10);
  655. if (*text && !*endptr && ul < MAX_KEY_BLOB_LINES)
  656. return ul;
  657. else
  658. return -1;
  659. }
  660. static bool str_to_uint32_t(const char *s, uint32_t *out)
  661. {
  662. char *endptr;
  663. unsigned long converted = strtoul(s, &endptr, 10);
  664. if (*s && !*endptr && converted <= ~(uint32_t)0) {
  665. *out = converted;
  666. return true;
  667. } else {
  668. return false;
  669. }
  670. }
  671. ssh2_userkey *ppk_load_s(BinarySource *src, const char *passphrase,
  672. const char **errorstr)
  673. {
  674. char header[40], *b, *encryption, *comment, *mac;
  675. const ssh_keyalg *alg;
  676. ssh2_userkey *ret;
  677. strbuf *public_blob, *private_blob, *cipher_mac_keys_blob;
  678. strbuf *passphrase_salt = strbuf_new();
  679. ptrlen cipherkey, cipheriv, mackey;
  680. const struct ppk_cipher *ciphertype;
  681. int i;
  682. bool is_mac;
  683. unsigned fmt_version;
  684. const char *error = NULL;
  685. ppk_save_parameters params;
  686. ret = NULL; /* return NULL for most errors */
  687. encryption = comment = mac = NULL;
  688. public_blob = private_blob = cipher_mac_keys_blob = NULL;
  689. /* Read the first header line which contains the key type. */
  690. if (!read_header(src, header)) {
  691. error = "no header line found in key file";
  692. goto error;
  693. }
  694. if (0 == strcmp(header, "PuTTY-User-Key-File-3")) {
  695. fmt_version = 3;
  696. } else if (0 == strcmp(header, "PuTTY-User-Key-File-2")) {
  697. fmt_version = 2;
  698. } else if (0 == strcmp(header, "PuTTY-User-Key-File-1")) {
  699. /* this is an old key file; warn and then continue */
  700. old_keyfile_warning();
  701. fmt_version = 1;
  702. } else if (0 == strncmp(header, "PuTTY-User-Key-File-", 20)) {
  703. /* this is a key file FROM THE FUTURE; refuse it, but with a
  704. * more specific error message than the generic one below */
  705. error = "PuTTY key format too new";
  706. goto error;
  707. } else {
  708. error = "not a PuTTY SSH-2 private key";
  709. goto error;
  710. }
  711. error = "file format error";
  712. if ((b = read_body(src)) == NULL)
  713. goto error;
  714. /* Select key algorithm structure. */
  715. alg = find_pubkey_alg(b);
  716. if (!alg) {
  717. sfree(b);
  718. goto error;
  719. }
  720. sfree(b);
  721. /* Read the Encryption header line. */
  722. if (!read_header(src, header) || 0 != strcmp(header, "Encryption"))
  723. goto error;
  724. if ((encryption = read_body(src)) == NULL)
  725. goto error;
  726. if (!strcmp(encryption, "aes256-cbc")) {
  727. ciphertype = &ppk_cipher_aes256_cbc;
  728. } else if (!strcmp(encryption, "none")) {
  729. ciphertype = &ppk_cipher_none;
  730. } else {
  731. goto error;
  732. }
  733. /* Read the Comment header line. */
  734. if (!read_header(src, header) || 0 != strcmp(header, "Comment"))
  735. goto error;
  736. if ((comment = read_body(src)) == NULL)
  737. goto error;
  738. memset(&params, 0, sizeof(params)); /* in particular, sets
  739. * passes_auto=false */
  740. /* Read the Public-Lines header line and the public blob. */
  741. if (!read_header(src, header) || 0 != strcmp(header, "Public-Lines"))
  742. goto error;
  743. if ((b = read_body(src)) == NULL)
  744. goto error;
  745. i = userkey_parse_line_counter(b);
  746. sfree(b);
  747. if (i < 0)
  748. goto error;
  749. public_blob = strbuf_new();
  750. if (!read_blob(src, i, BinarySink_UPCAST(public_blob)))
  751. goto error;
  752. if (fmt_version >= 3 && ciphertype->keylen != 0) {
  753. /* Read Argon2 key derivation parameters. */
  754. if (!read_header(src, header) || 0 != strcmp(header, "Key-Derivation"))
  755. goto error;
  756. if ((b = read_body(src)) == NULL)
  757. goto error;
  758. if (!strcmp(b, "Argon2d")) {
  759. params.argon2_flavour = Argon2d;
  760. } else if (!strcmp(b, "Argon2i")) {
  761. params.argon2_flavour = Argon2i;
  762. } else if (!strcmp(b, "Argon2id")) {
  763. params.argon2_flavour = Argon2id;
  764. } else {
  765. sfree(b);
  766. goto error;
  767. }
  768. sfree(b);
  769. if (!read_header(src, header) || 0 != strcmp(header, "Argon2-Memory"))
  770. goto error;
  771. if ((b = read_body(src)) == NULL)
  772. goto error;
  773. if (!str_to_uint32_t(b, &params.argon2_mem)) {
  774. sfree(b);
  775. goto error;
  776. }
  777. sfree(b);
  778. if (!read_header(src, header) || 0 != strcmp(header, "Argon2-Passes"))
  779. goto error;
  780. if ((b = read_body(src)) == NULL)
  781. goto error;
  782. if (!str_to_uint32_t(b, &params.argon2_passes)) {
  783. sfree(b);
  784. goto error;
  785. }
  786. sfree(b);
  787. if (!read_header(src, header) ||
  788. 0 != strcmp(header, "Argon2-Parallelism"))
  789. goto error;
  790. if ((b = read_body(src)) == NULL)
  791. goto error;
  792. if (!str_to_uint32_t(b, &params.argon2_parallelism)) {
  793. sfree(b);
  794. goto error;
  795. }
  796. sfree(b);
  797. if (!read_header(src, header) || 0 != strcmp(header, "Argon2-Salt"))
  798. goto error;
  799. if ((b = read_body(src)) == NULL)
  800. goto error;
  801. { // WINSCP
  802. size_t i; // WINSCP
  803. for (i = 0; b[i]; i += 2) {
  804. if (isxdigit((unsigned char)b[i]) && b[i+1] &&
  805. isxdigit((unsigned char)b[i+1])) {
  806. char s[3];
  807. s[0] = b[i];
  808. s[1] = b[i+1];
  809. s[2] = '\0';
  810. put_byte(passphrase_salt, strtoul(s, NULL, 16));
  811. } else {
  812. sfree(b);
  813. goto error;
  814. }
  815. }
  816. } // WINSCP
  817. sfree(b);
  818. }
  819. /* Read the Private-Lines header line and the Private blob. */
  820. if (!read_header(src, header) || 0 != strcmp(header, "Private-Lines"))
  821. goto error;
  822. if ((b = read_body(src)) == NULL)
  823. goto error;
  824. i = userkey_parse_line_counter(b);
  825. sfree(b);
  826. if (i < 0)
  827. goto error;
  828. private_blob = strbuf_new_nm();
  829. if (!read_blob(src, i, BinarySink_UPCAST(private_blob)))
  830. goto error;
  831. /* Read the Private-MAC or Private-Hash header line. */
  832. if (!read_header(src, header))
  833. goto error;
  834. if (0 == strcmp(header, "Private-MAC")) {
  835. if ((mac = read_body(src)) == NULL)
  836. goto error;
  837. is_mac = true;
  838. } else if (0 == strcmp(header, "Private-Hash") && fmt_version == 1) {
  839. if ((mac = read_body(src)) == NULL)
  840. goto error;
  841. is_mac = false;
  842. } else
  843. goto error;
  844. cipher_mac_keys_blob = strbuf_new();
  845. ssh2_ppk_derive_keys(fmt_version, ciphertype,
  846. ptrlen_from_asciz(passphrase ? passphrase : ""),
  847. cipher_mac_keys_blob, &cipherkey, &cipheriv, &mackey,
  848. ptrlen_from_strbuf(passphrase_salt), &params);
  849. /*
  850. * Decrypt the private blob.
  851. */
  852. if (private_blob->len % ciphertype->blocklen)
  853. goto error;
  854. if (ciphertype == &ppk_cipher_aes256_cbc) {
  855. aes256_decrypt_pubkey(cipherkey.ptr, cipheriv.ptr,
  856. private_blob->u, private_blob->len);
  857. }
  858. /*
  859. * Verify the MAC.
  860. */
  861. {
  862. unsigned char binary[32];
  863. char realmac[sizeof(binary) * 2 + 1];
  864. strbuf *macdata;
  865. bool free_macdata;
  866. const ssh2_macalg *mac_alg =
  867. fmt_version <= 2 ? &ssh_hmac_sha1 : &ssh_hmac_sha256;
  868. if (fmt_version == 1) {
  869. /* MAC (or hash) only covers the private blob. */
  870. macdata = private_blob;
  871. free_macdata = false;
  872. } else {
  873. macdata = strbuf_new_nm();
  874. put_stringz(macdata, alg->ssh_id);
  875. put_stringz(macdata, encryption);
  876. put_stringz(macdata, comment);
  877. put_string(macdata, public_blob->s,
  878. public_blob->len);
  879. put_string(macdata, private_blob->s,
  880. private_blob->len);
  881. free_macdata = true;
  882. }
  883. if (is_mac) {
  884. ssh2_mac *mac;
  885. mac = ssh2_mac_new(mac_alg, NULL);
  886. ssh2_mac_setkey(mac, mackey);
  887. ssh2_mac_start(mac);
  888. put_data(mac, macdata->s, macdata->len);
  889. ssh2_mac_genresult(mac, binary);
  890. ssh2_mac_free(mac);
  891. } else {
  892. hash_simple(&ssh_sha1, ptrlen_from_strbuf(macdata), binary);
  893. }
  894. if (free_macdata)
  895. strbuf_free(macdata);
  896. for (i = 0; i < mac_alg->len; i++)
  897. sprintf(realmac + 2 * i, "%02x", binary[i]);
  898. if (strcmp(mac, realmac)) {
  899. /* An incorrect MAC is an unconditional Error if the key is
  900. * unencrypted. Otherwise, it means Wrong Passphrase. */
  901. if (ciphertype->keylen != 0) {
  902. error = "wrong passphrase";
  903. ret = SSH2_WRONG_PASSPHRASE;
  904. } else {
  905. error = "MAC failed";
  906. ret = NULL;
  907. }
  908. goto error;
  909. }
  910. }
  911. /*
  912. * Create and return the key.
  913. */
  914. ret = snew(ssh2_userkey);
  915. ret->comment = comment;
  916. comment = NULL;
  917. ret->key = ssh_key_new_priv(
  918. alg, ptrlen_from_strbuf(public_blob),
  919. ptrlen_from_strbuf(private_blob));
  920. if (!ret->key) {
  921. sfree(ret);
  922. ret = NULL;
  923. error = "createkey failed";
  924. goto error;
  925. }
  926. error = NULL;
  927. /*
  928. * Error processing.
  929. */
  930. error:
  931. if (comment)
  932. sfree(comment);
  933. if (encryption)
  934. sfree(encryption);
  935. if (mac)
  936. sfree(mac);
  937. if (public_blob)
  938. strbuf_free(public_blob);
  939. if (private_blob)
  940. strbuf_free(private_blob);
  941. if (cipher_mac_keys_blob)
  942. strbuf_free(cipher_mac_keys_blob);
  943. strbuf_free(passphrase_salt);
  944. if (errorstr)
  945. *errorstr = error;
  946. return ret;
  947. }
  948. ssh2_userkey *ppk_load_f(const Filename *filename, const char *passphrase,
  949. const char **errorstr)
  950. {
  951. LoadedFile *lf = lf_load_keyfile(filename, errorstr);
  952. ssh2_userkey *toret;
  953. if (lf) {
  954. toret = ppk_load_s(BinarySource_UPCAST(lf), passphrase, errorstr);
  955. lf_free(lf);
  956. } else {
  957. toret = NULL;
  958. *errorstr = "can't open file";
  959. }
  960. return toret;
  961. }
  962. static bool rfc4716_loadpub(BinarySource *src, char **algorithm,
  963. BinarySink *bs,
  964. char **commentptr, const char **errorstr)
  965. {
  966. const char *error;
  967. char *line, *colon, *value;
  968. char *comment = NULL;
  969. strbuf *pubblob = NULL;
  970. char base64in[4];
  971. unsigned char base64out[3];
  972. int base64bytes;
  973. int alglen;
  974. line = mkstr(get_chomped_line(src));
  975. if (!line || 0 != strcmp(line, "---- BEGIN SSH2 PUBLIC KEY ----")) {
  976. error = "invalid begin line in SSH-2 public key file";
  977. goto error;
  978. }
  979. sfree(line); line = NULL;
  980. while (1) {
  981. line = mkstr(get_chomped_line(src));
  982. if (!line) {
  983. error = "truncated SSH-2 public key file";
  984. goto error;
  985. }
  986. colon = strstr(line, ": ");
  987. if (!colon)
  988. break;
  989. *colon = '\0';
  990. value = colon + 2;
  991. if (!strcmp(line, "Comment")) {
  992. char *p, *q;
  993. /* Remove containing double quotes, if present */
  994. p = value;
  995. if (*p == '"' && p[strlen(p)-1] == '"') {
  996. p[strlen(p)-1] = '\0';
  997. p++;
  998. }
  999. /* Remove \-escaping, not in RFC4716 but seen in the wild
  1000. * in practice. */
  1001. for (q = line; *p; p++) {
  1002. if (*p == '\\' && p[1])
  1003. p++;
  1004. *q++ = *p;
  1005. }
  1006. *q = '\0';
  1007. sfree(comment); /* *just* in case of multiple Comment headers */
  1008. comment = dupstr(line);
  1009. } else if (!strcmp(line, "Subject") ||
  1010. !strncmp(line, "x-", 2)) {
  1011. /* Headers we recognise and ignore. Do nothing. */
  1012. } else {
  1013. error = "unrecognised header in SSH-2 public key file";
  1014. goto error;
  1015. }
  1016. sfree(line); line = NULL;
  1017. }
  1018. /*
  1019. * Now line contains the initial line of base64 data. Loop round
  1020. * while it still does contain base64.
  1021. */
  1022. pubblob = strbuf_new();
  1023. base64bytes = 0;
  1024. while (line && line[0] != '-') {
  1025. char *p;
  1026. for (p = line; *p; p++) {
  1027. base64in[base64bytes++] = *p;
  1028. if (base64bytes == 4) {
  1029. int n = base64_decode_atom(base64in, base64out);
  1030. put_data(pubblob, base64out, n);
  1031. base64bytes = 0;
  1032. }
  1033. }
  1034. sfree(line); line = NULL;
  1035. line = mkstr(get_chomped_line(src));
  1036. }
  1037. /*
  1038. * Finally, check the END line makes sense.
  1039. */
  1040. if (!line || 0 != strcmp(line, "---- END SSH2 PUBLIC KEY ----")) {
  1041. error = "invalid end line in SSH-2 public key file";
  1042. goto error;
  1043. }
  1044. sfree(line); line = NULL;
  1045. /*
  1046. * OK, we now have a public blob and optionally a comment. We must
  1047. * return the key algorithm string too, so look for that at the
  1048. * start of the public blob.
  1049. */
  1050. if (pubblob->len < 4) {
  1051. error = "not enough data in SSH-2 public key file";
  1052. goto error;
  1053. }
  1054. alglen = toint(GET_32BIT_MSB_FIRST(pubblob->u));
  1055. if (alglen < 0 || alglen > pubblob->len-4) {
  1056. error = "invalid algorithm prefix in SSH-2 public key file";
  1057. goto error;
  1058. }
  1059. if (algorithm)
  1060. *algorithm = dupprintf("%.*s", alglen, pubblob->s+4);
  1061. if (commentptr)
  1062. *commentptr = comment;
  1063. else
  1064. sfree(comment);
  1065. put_datapl(bs, ptrlen_from_strbuf(pubblob));
  1066. strbuf_free(pubblob);
  1067. return true;
  1068. error:
  1069. sfree(line);
  1070. sfree(comment);
  1071. if (pubblob)
  1072. strbuf_free(pubblob);
  1073. if (errorstr)
  1074. *errorstr = error;
  1075. return false;
  1076. }
  1077. /*WINSCP static*/ bool openssh_loadpub(BinarySource *src, char **algorithm,
  1078. BinarySink *bs,
  1079. char **commentptr, const char **errorstr)
  1080. {
  1081. const char *error;
  1082. char *line, *base64;
  1083. char *comment = NULL;
  1084. unsigned char *pubblob = NULL;
  1085. int pubbloblen, pubblobsize;
  1086. int alglen;
  1087. line = mkstr(get_chomped_line(src));
  1088. base64 = strchr(line, ' ');
  1089. if (!base64) {
  1090. error = "no key blob in OpenSSH public key file";
  1091. goto error;
  1092. }
  1093. *base64++ = '\0';
  1094. comment = strchr(base64, ' ');
  1095. if (comment) {
  1096. *comment++ = '\0';
  1097. comment = dupstr(comment);
  1098. }
  1099. pubblobsize = strlen(base64) / 4 * 3;
  1100. pubblob = snewn(pubblobsize, unsigned char);
  1101. pubbloblen = 0;
  1102. while (!memchr(base64, '\0', 4)) {
  1103. assert(pubbloblen + 3 <= pubblobsize);
  1104. pubbloblen += base64_decode_atom(base64, pubblob + pubbloblen);
  1105. base64 += 4;
  1106. }
  1107. if (*base64) {
  1108. error = "invalid length for base64 data in OpenSSH public key file";
  1109. goto error;
  1110. }
  1111. /*
  1112. * Sanity check: the first word on the line should be the key
  1113. * algorithm, and should match the encoded string at the start of
  1114. * the public blob.
  1115. */
  1116. alglen = strlen(line);
  1117. if (pubbloblen < alglen + 4 ||
  1118. GET_32BIT_MSB_FIRST(pubblob) != alglen ||
  1119. 0 != memcmp(pubblob + 4, line, alglen)) {
  1120. error = "key algorithms do not match in OpenSSH public key file";
  1121. goto error;
  1122. }
  1123. /*
  1124. * Done.
  1125. */
  1126. if (algorithm)
  1127. *algorithm = dupstr(line);
  1128. if (commentptr)
  1129. *commentptr = comment;
  1130. else
  1131. sfree(comment);
  1132. sfree(line);
  1133. put_data(bs, pubblob, pubbloblen);
  1134. sfree(pubblob);
  1135. return true;
  1136. error:
  1137. sfree(line);
  1138. sfree(comment);
  1139. sfree(pubblob);
  1140. if (errorstr)
  1141. *errorstr = error;
  1142. return false;
  1143. }
  1144. bool ppk_loadpub_s(BinarySource *src, char **algorithm, BinarySink *bs,
  1145. char **commentptr, const char **errorstr)
  1146. {
  1147. char header[40], *b;
  1148. const ssh_keyalg *alg;
  1149. int type, i;
  1150. const char *error = NULL;
  1151. char *comment = NULL;
  1152. /* Initially, check if this is a public-only key file. Sometimes
  1153. * we'll be asked to read a public blob from one of those. */
  1154. type = key_type_s(src);
  1155. if (type == SSH_KEYTYPE_SSH2_PUBLIC_RFC4716) {
  1156. bool ret = rfc4716_loadpub(src, algorithm, bs, commentptr, errorstr);
  1157. return ret;
  1158. } else if (type == SSH_KEYTYPE_SSH2_PUBLIC_OPENSSH) {
  1159. bool ret = openssh_loadpub(src, algorithm, bs, commentptr, errorstr);
  1160. return ret;
  1161. } else if (type != SSH_KEYTYPE_SSH2) {
  1162. error = "not a public key or a PuTTY SSH-2 private key";
  1163. goto error;
  1164. }
  1165. /* Read the first header line which contains the key type. */
  1166. if (!read_header(src, header)
  1167. || (0 != strcmp(header, "PuTTY-User-Key-File-3") &&
  1168. 0 != strcmp(header, "PuTTY-User-Key-File-2") &&
  1169. 0 != strcmp(header, "PuTTY-User-Key-File-1"))) {
  1170. if (0 == strncmp(header, "PuTTY-User-Key-File-", 20))
  1171. error = "PuTTY key format too new";
  1172. else
  1173. error = "not a public key or a PuTTY SSH-2 private key";
  1174. goto error;
  1175. }
  1176. error = "file format error";
  1177. if ((b = read_body(src)) == NULL)
  1178. goto error;
  1179. /* Select key algorithm structure. */
  1180. alg = find_pubkey_alg(b);
  1181. sfree(b);
  1182. if (!alg) {
  1183. goto error;
  1184. }
  1185. /* Read the Encryption header line. */
  1186. if (!read_header(src, header) || 0 != strcmp(header, "Encryption"))
  1187. goto error;
  1188. if ((b = read_body(src)) == NULL)
  1189. goto error;
  1190. sfree(b); /* we don't care */
  1191. /* Read the Comment header line. */
  1192. if (!read_header(src, header) || 0 != strcmp(header, "Comment"))
  1193. goto error;
  1194. if ((comment = read_body(src)) == NULL)
  1195. goto error;
  1196. if (commentptr)
  1197. *commentptr = comment;
  1198. else
  1199. sfree(comment);
  1200. /* Read the Public-Lines header line and the public blob. */
  1201. if (!read_header(src, header) || 0 != strcmp(header, "Public-Lines"))
  1202. goto error;
  1203. if ((b = read_body(src)) == NULL)
  1204. goto error;
  1205. i = userkey_parse_line_counter(b);
  1206. sfree(b);
  1207. if (i < 0)
  1208. goto error;
  1209. if (!read_blob(src, i, bs))
  1210. goto error;
  1211. if (algorithm)
  1212. *algorithm = dupstr(alg->ssh_id);
  1213. return true;
  1214. /*
  1215. * Error processing.
  1216. */
  1217. error:
  1218. if (errorstr)
  1219. *errorstr = error;
  1220. if (comment && commentptr) {
  1221. sfree(comment);
  1222. *commentptr = NULL;
  1223. }
  1224. return false;
  1225. }
  1226. bool ppk_loadpub_f(const Filename *filename, char **algorithm, BinarySink *bs,
  1227. char **commentptr, const char **errorstr)
  1228. {
  1229. LoadedFile *lf = lf_load_keyfile(filename, errorstr);
  1230. if (!lf)
  1231. return false;
  1232. { // WINSCP
  1233. bool toret = ppk_loadpub_s(BinarySource_UPCAST(lf), algorithm, bs,
  1234. commentptr, errorstr);
  1235. lf_free(lf);
  1236. return toret;
  1237. } // WINSCP
  1238. }
  1239. bool ppk_encrypted_s(BinarySource *src, char **commentptr)
  1240. {
  1241. char header[40], *b, *comment;
  1242. bool ret;
  1243. if (commentptr)
  1244. *commentptr = NULL;
  1245. if (!read_header(src, header)
  1246. || (0 != strcmp(header, "PuTTY-User-Key-File-3") &&
  1247. 0 != strcmp(header, "PuTTY-User-Key-File-2") &&
  1248. 0 != strcmp(header, "PuTTY-User-Key-File-1"))) {
  1249. return false;
  1250. }
  1251. if ((b = read_body(src)) == NULL) {
  1252. return false;
  1253. }
  1254. sfree(b); /* we don't care about key type here */
  1255. /* Read the Encryption header line. */
  1256. if (!read_header(src, header) || 0 != strcmp(header, "Encryption")) {
  1257. return false;
  1258. }
  1259. if ((b = read_body(src)) == NULL) {
  1260. return false;
  1261. }
  1262. /* Read the Comment header line. */
  1263. if (!read_header(src, header) || 0 != strcmp(header, "Comment")) {
  1264. sfree(b);
  1265. return true;
  1266. }
  1267. if ((comment = read_body(src)) == NULL) {
  1268. sfree(b);
  1269. return true;
  1270. }
  1271. if (commentptr)
  1272. *commentptr = comment;
  1273. else
  1274. sfree(comment);
  1275. if (!strcmp(b, "aes256-cbc"))
  1276. ret = true;
  1277. else
  1278. ret = false;
  1279. sfree(b);
  1280. return ret;
  1281. }
  1282. bool ppk_encrypted_f(const Filename *filename, char **commentptr)
  1283. {
  1284. LoadedFile *lf = lf_load_keyfile(filename, NULL);
  1285. if (!lf) {
  1286. if (commentptr)
  1287. *commentptr = NULL;
  1288. return false;
  1289. }
  1290. { // WINSCP
  1291. bool toret = ppk_encrypted_s(BinarySource_UPCAST(lf), commentptr);
  1292. lf_free(lf);
  1293. return toret;
  1294. } // WINSCP
  1295. }
  1296. int base64_lines(int datalen)
  1297. {
  1298. /* When encoding, we use 64 chars/line, which equals 48 real chars. */
  1299. return (datalen + 47) / 48;
  1300. }
  1301. const ppk_save_parameters ppk_save_default_parameters = {
  1302. // WINSCP
  1303. /*.fmt_version =*/ 3,
  1304. /*
  1305. * The Argon2 spec recommends the hybrid variant Argon2id, where
  1306. * you don't have a good reason to go with the pure Argon2d or
  1307. * Argon2i.
  1308. */
  1309. /*.argon2_flavour =*/ Argon2id,
  1310. /*
  1311. * Memory requirement for hashing a password: I don't want to set
  1312. * this to some truly huge thing like a gigabyte, because for all
  1313. * I know people might perfectly reasonably be running PuTTY on
  1314. * machines that don't _have_ a gigabyte spare to hash a private
  1315. * key passphrase in the legitimate use cases.
  1316. *
  1317. * I've picked 8 MB as an amount of memory that isn't unreasonable
  1318. * to expect a desktop client machine to have, but is also large
  1319. * compared to the memory requirements of the PPK v2 password hash
  1320. * (which was plain SHA-1), so it still imposes a limit on
  1321. * parallel attacks on someone's key file.
  1322. */
  1323. /*.argon2_mem =*/ 8192, /* require 8 Mb memory */
  1324. /*
  1325. * Automatically scale the number of Argon2 passes so that the
  1326. * overall time taken is about 1/10 second. (Again, I could crank
  1327. * this up to a larger time and _most_ people might be OK with it,
  1328. * but for the moment, I'm trying to err on the side of not
  1329. * stopping anyone from using the tools at all.)
  1330. */
  1331. /*.argon2_passes_auto =*/ true,
  1332. /*.argon2_milliseconds =*/ 100,
  1333. /*
  1334. * PuTTY's own Argon2 implementation is single-threaded. So we
  1335. * might as well set parallelism to 1, which requires that
  1336. * attackers' implementations must also be effectively
  1337. * single-threaded, and they don't get any benefit from using
  1338. * multiple cores on the same hash attempt. (Of course they can
  1339. * still use multiple cores for _separate_ hash attempts, but at
  1340. * least they don't get a speed advantage over us in computing
  1341. * even one hash.)
  1342. */
  1343. /*.argon2_parallelism =*/ 1,
  1344. NULL, 0, // WINSCP
  1345. };
  1346. strbuf *ppk_save_sb(ssh2_userkey *key, const char *passphrase,
  1347. const ppk_save_parameters *params_orig)
  1348. {
  1349. strbuf *pub_blob, *priv_blob, *cipher_mac_keys_blob;
  1350. unsigned char *priv_blob_encrypted;
  1351. int priv_encrypted_len;
  1352. int cipherblk;
  1353. int i;
  1354. const char *cipherstr;
  1355. ptrlen cipherkey, cipheriv, mackey;
  1356. const struct ppk_cipher *ciphertype;
  1357. unsigned char priv_mac[32];
  1358. /*
  1359. * Fetch the key component blobs.
  1360. */
  1361. pub_blob = strbuf_new();
  1362. ssh_key_public_blob(key->key, BinarySink_UPCAST(pub_blob));
  1363. priv_blob = strbuf_new_nm();
  1364. ssh_key_private_blob(key->key, BinarySink_UPCAST(priv_blob));
  1365. /*
  1366. * Determine encryption details, and encrypt the private blob.
  1367. */
  1368. if (passphrase) {
  1369. cipherstr = "aes256-cbc";
  1370. cipherblk = 16;
  1371. ciphertype = &ppk_cipher_aes256_cbc;
  1372. } else {
  1373. cipherstr = "none";
  1374. cipherblk = 1;
  1375. ciphertype = &ppk_cipher_none;
  1376. }
  1377. priv_encrypted_len = priv_blob->len + cipherblk - 1;
  1378. priv_encrypted_len -= priv_encrypted_len % cipherblk;
  1379. priv_blob_encrypted = snewn(priv_encrypted_len, unsigned char);
  1380. memset(priv_blob_encrypted, 0, priv_encrypted_len);
  1381. memcpy(priv_blob_encrypted, priv_blob->u, priv_blob->len);
  1382. /* Create padding based on the SHA hash of the unpadded blob. This prevents
  1383. * too easy a known-plaintext attack on the last block. */
  1384. hash_simple(&ssh_sha1, ptrlen_from_strbuf(priv_blob), priv_mac);
  1385. assert(priv_encrypted_len - priv_blob->len < 20);
  1386. memcpy(priv_blob_encrypted + priv_blob->len, priv_mac,
  1387. priv_encrypted_len - priv_blob->len);
  1388. /* Copy the save parameters, so that when derive_keys chooses the
  1389. * number of Argon2 passes, it can write the result back to our
  1390. * copy for us to retrieve. */
  1391. { // WINSCP
  1392. ppk_save_parameters params = *params_orig;
  1393. strbuf *passphrase_salt = strbuf_new();
  1394. if (params.fmt_version == 3) {
  1395. /* Invent a salt for the password hash. */
  1396. if (params.salt)
  1397. put_data(passphrase_salt, params.salt, params.saltlen);
  1398. else
  1399. random_read(strbuf_append(passphrase_salt, 16), 16);
  1400. }
  1401. cipher_mac_keys_blob = strbuf_new();
  1402. ssh2_ppk_derive_keys(params.fmt_version, ciphertype,
  1403. ptrlen_from_asciz(passphrase ? passphrase : ""),
  1404. cipher_mac_keys_blob, &cipherkey, &cipheriv, &mackey,
  1405. ptrlen_from_strbuf(passphrase_salt), &params);
  1406. { // WINSCP
  1407. const ssh2_macalg *macalg = (params.fmt_version == 2 ?
  1408. &ssh_hmac_sha1 : &ssh_hmac_sha256);
  1409. /* Now create the MAC. */
  1410. {
  1411. strbuf *macdata;
  1412. macdata = strbuf_new_nm();
  1413. put_stringz(macdata, ssh_key_ssh_id(key->key));
  1414. put_stringz(macdata, cipherstr);
  1415. put_stringz(macdata, key->comment);
  1416. put_string(macdata, pub_blob->s, pub_blob->len);
  1417. put_string(macdata, priv_blob_encrypted, priv_encrypted_len);
  1418. mac_simple(macalg, mackey, ptrlen_from_strbuf(macdata), priv_mac);
  1419. strbuf_free(macdata);
  1420. }
  1421. if (passphrase) {
  1422. assert(cipherkey.len == 32);
  1423. aes256_encrypt_pubkey(cipherkey.ptr, cipheriv.ptr,
  1424. priv_blob_encrypted, priv_encrypted_len);
  1425. }
  1426. { // WINSCP
  1427. strbuf *out = strbuf_new_nm();
  1428. put_fmt(out, "PuTTY-User-Key-File-%u: %s\n",
  1429. params.fmt_version, ssh_key_ssh_id(key->key));
  1430. put_fmt(out, "Encryption: %s\n", cipherstr);
  1431. put_fmt(out, "Comment: %s\n", key->comment);
  1432. put_fmt(out, "Public-Lines: %d\n", base64_lines(pub_blob->len));
  1433. base64_encode_bs(BinarySink_UPCAST(out), ptrlen_from_strbuf(pub_blob), 64);
  1434. if (params.fmt_version == 3 && ciphertype->keylen != 0) {
  1435. put_fmt(out, "Key-Derivation: %s\n",
  1436. params.argon2_flavour == Argon2d ? "Argon2d" :
  1437. params.argon2_flavour == Argon2i ? "Argon2i" : "Argon2id");
  1438. put_fmt(out, "Argon2-Memory: %"PRIu32"\n", params.argon2_mem);
  1439. assert(!params.argon2_passes_auto);
  1440. put_fmt(out, "Argon2-Passes: %"PRIu32"\n", params.argon2_passes);
  1441. put_fmt(out, "Argon2-Parallelism: %"PRIu32"\n",
  1442. params.argon2_parallelism);
  1443. put_fmt(out, "Argon2-Salt: ");
  1444. { // WINSCP
  1445. size_t i;
  1446. for (i = 0; i < passphrase_salt->len; i++)
  1447. put_fmt(out, "%02x", passphrase_salt->u[i]);
  1448. put_fmt(out, "\n");
  1449. } // WINSCP
  1450. }
  1451. put_fmt(out, "Private-Lines: %d\n", base64_lines(priv_encrypted_len));
  1452. base64_encode_bs(BinarySink_UPCAST(out),
  1453. make_ptrlen(priv_blob_encrypted, priv_encrypted_len), 64);
  1454. put_fmt(out, "Private-MAC: ");
  1455. for (i = 0; i < macalg->len; i++)
  1456. put_fmt(out, "%02x", priv_mac[i]);
  1457. put_fmt(out, "\n");
  1458. strbuf_free(cipher_mac_keys_blob);
  1459. strbuf_free(passphrase_salt);
  1460. strbuf_free(pub_blob);
  1461. strbuf_free(priv_blob);
  1462. smemclr(priv_blob_encrypted, priv_encrypted_len);
  1463. sfree(priv_blob_encrypted);
  1464. return out;
  1465. } // WINSCP
  1466. } // WINSCP
  1467. } // WINSCP
  1468. }
  1469. bool ppk_save_f(const Filename *filename, ssh2_userkey *key,
  1470. const char *passphrase, const ppk_save_parameters *params)
  1471. {
  1472. FILE *fp = f_open(filename, "wb", true);
  1473. if (!fp)
  1474. return false;
  1475. { // WINSCP
  1476. strbuf *buf = ppk_save_sb(key, passphrase, params);
  1477. bool toret = fwrite(buf->s, 1, buf->len, fp) == buf->len;
  1478. if (fclose(fp))
  1479. toret = false;
  1480. strbuf_free(buf);
  1481. return toret;
  1482. } // WINSCP
  1483. }
  1484. /* ----------------------------------------------------------------------
  1485. * Output public keys.
  1486. */
  1487. char *ssh1_pubkey_str(RSAKey *key)
  1488. {
  1489. char *buffer;
  1490. char *dec1, *dec2;
  1491. dec1 = mp_get_decimal(key->exponent);
  1492. dec2 = mp_get_decimal(key->modulus);
  1493. buffer = dupprintf("%"SIZEu" %s %s%s%s", mp_get_nbits(key->modulus),
  1494. dec1, dec2, key->comment ? " " : "",
  1495. key->comment ? key->comment : "");
  1496. sfree(dec1);
  1497. sfree(dec2);
  1498. return buffer;
  1499. }
  1500. void ssh1_write_pubkey(FILE *fp, RSAKey *key)
  1501. {
  1502. char *buffer = ssh1_pubkey_str(key);
  1503. fprintf(fp, "%s\n", buffer);
  1504. sfree(buffer);
  1505. }
  1506. static char *ssh2_pubkey_openssh_str_internal(const char *comment,
  1507. const void *v_pub_blob,
  1508. int pub_len)
  1509. {
  1510. const unsigned char *ssh2blob = (const unsigned char *)v_pub_blob;
  1511. ptrlen alg;
  1512. char *buffer, *p;
  1513. int i;
  1514. {
  1515. BinarySource src[1];
  1516. BinarySource_BARE_INIT(src, ssh2blob, pub_len);
  1517. alg = get_string(src);
  1518. if (get_err(src)) {
  1519. const char *replacement_str = "INVALID-ALGORITHM";
  1520. alg.ptr = replacement_str;
  1521. alg.len = strlen(replacement_str);
  1522. }
  1523. }
  1524. buffer = snewn(alg.len +
  1525. 4 * ((pub_len+2) / 3) +
  1526. (comment ? strlen(comment) : 0) + 3, char);
  1527. p = buffer + sprintf(buffer, "%.*s ", PTRLEN_PRINTF(alg));
  1528. i = 0;
  1529. while (i < pub_len) {
  1530. int n = (pub_len - i < 3 ? pub_len - i : 3);
  1531. base64_encode_atom(ssh2blob + i, n, p);
  1532. i += n;
  1533. p += 4;
  1534. }
  1535. if (comment) {
  1536. *p++ = ' ';
  1537. strcpy(p, comment);
  1538. } else
  1539. *p++ = '\0';
  1540. return buffer;
  1541. }
  1542. char *ssh2_pubkey_openssh_str(ssh2_userkey *key)
  1543. {
  1544. strbuf *blob;
  1545. char *ret;
  1546. blob = strbuf_new();
  1547. ssh_key_public_blob(key->key, BinarySink_UPCAST(blob));
  1548. ret = ssh2_pubkey_openssh_str_internal(
  1549. key->comment, blob->s, blob->len);
  1550. strbuf_free(blob);
  1551. return ret;
  1552. }
  1553. void ssh2_write_pubkey(FILE *fp, const char *comment,
  1554. const void *v_pub_blob, int pub_len,
  1555. int keytype)
  1556. {
  1557. unsigned char *pub_blob = (unsigned char *)v_pub_blob;
  1558. if (keytype == SSH_KEYTYPE_SSH2_PUBLIC_RFC4716) {
  1559. const char *p;
  1560. int i, column;
  1561. fprintf(fp, "---- BEGIN SSH2 PUBLIC KEY ----\n");
  1562. if (comment) {
  1563. fprintf(fp, "Comment: \"");
  1564. for (p = comment; *p; p++) {
  1565. if (*p == '\\' || *p == '\"')
  1566. fputc('\\', fp);
  1567. fputc(*p, fp);
  1568. }
  1569. fprintf(fp, "\"\n");
  1570. }
  1571. i = 0;
  1572. column = 0;
  1573. while (i < pub_len) {
  1574. char buf[5];
  1575. int n = (pub_len - i < 3 ? pub_len - i : 3);
  1576. base64_encode_atom(pub_blob + i, n, buf);
  1577. i += n;
  1578. buf[4] = '\0';
  1579. fputs(buf, fp);
  1580. if (++column >= 16) {
  1581. fputc('\n', fp);
  1582. column = 0;
  1583. }
  1584. }
  1585. if (column > 0)
  1586. fputc('\n', fp);
  1587. fprintf(fp, "---- END SSH2 PUBLIC KEY ----\n");
  1588. } else if (keytype == SSH_KEYTYPE_SSH2_PUBLIC_OPENSSH) {
  1589. char *buffer = ssh2_pubkey_openssh_str_internal(comment,
  1590. v_pub_blob, pub_len);
  1591. fprintf(fp, "%s\n", buffer);
  1592. sfree(buffer);
  1593. } else {
  1594. unreachable("Bad key type in ssh2_write_pubkey");
  1595. }
  1596. }
  1597. /* ----------------------------------------------------------------------
  1598. * Utility functions to compute SSH-2 fingerprints in a uniform way.
  1599. */
  1600. static void ssh2_fingerprint_blob_md5(ptrlen blob, strbuf *sb)
  1601. {
  1602. unsigned char digest[16];
  1603. unsigned i; // WINSCP
  1604. hash_simple(&ssh_md5, blob, digest);
  1605. for (i = 0; i < 16; i++)
  1606. put_fmt(sb, "%02x%s", digest[i], i==15 ? "" : ":");
  1607. }
  1608. static void ssh2_fingerprint_blob_sha256(ptrlen blob, strbuf *sb)
  1609. {
  1610. unsigned char digest[32];
  1611. hash_simple(&ssh_sha256, blob, digest);
  1612. put_datapl(sb, PTRLEN_LITERAL("SHA256:"));
  1613. { // WINSCP
  1614. unsigned i;
  1615. for (i = 0; i < 32; i += 3) {
  1616. char buf[5];
  1617. unsigned len = 32-i;
  1618. if (len > 3)
  1619. len = 3;
  1620. base64_encode_atom(digest + i, len, buf);
  1621. put_data(sb, buf, 4);
  1622. }
  1623. strbuf_chomp(sb, '=');
  1624. } // WINSCP
  1625. }
  1626. char *ssh2_fingerprint_blob(ptrlen blob, FingerprintType fptype)
  1627. {
  1628. strbuf *sb = strbuf_new();
  1629. strbuf *tmp = NULL;
  1630. /*
  1631. * Identify the key algorithm, if possible.
  1632. *
  1633. * If we can't do that, then we have a seriously confused key
  1634. * blob, in which case we return only the hash.
  1635. */
  1636. BinarySource src[1];
  1637. BinarySource_BARE_INIT_PL(src, blob);
  1638. { // WINSCP
  1639. ptrlen algname = get_string(src);
  1640. if (!get_err(src)) {
  1641. const ssh_keyalg *alg = find_pubkey_alg_len(algname);
  1642. if (alg) {
  1643. int bits = ssh_key_public_bits(alg, blob);
  1644. put_fmt(sb, "%.*s %d ", PTRLEN_PRINTF(algname), bits);
  1645. if (!ssh_fptype_is_cert(fptype) && alg->is_certificate) {
  1646. ssh_key *key = ssh_key_new_pub(alg, blob);
  1647. if (key) {
  1648. tmp = strbuf_new();
  1649. ssh_key_public_blob(ssh_key_base_key(key),
  1650. BinarySink_UPCAST(tmp));
  1651. blob = ptrlen_from_strbuf(tmp);
  1652. ssh_key_free(key);
  1653. }
  1654. }
  1655. } else {
  1656. put_fmt(sb, "%.*s ", PTRLEN_PRINTF(algname));
  1657. }
  1658. }
  1659. } // WINSCP
  1660. switch (ssh_fptype_from_cert(fptype)) {
  1661. case SSH_FPTYPE_MD5:
  1662. ssh2_fingerprint_blob_md5(blob, sb);
  1663. break;
  1664. case SSH_FPTYPE_SHA256:
  1665. ssh2_fingerprint_blob_sha256(blob, sb);
  1666. break;
  1667. default:
  1668. unreachable("ssh_fptype_from_cert ruled out the other values");
  1669. }
  1670. if (tmp)
  1671. strbuf_free(tmp);
  1672. return strbuf_to_str(sb);
  1673. }
  1674. char *ssh2_double_fingerprint_blob(ptrlen blob, FingerprintType fptype)
  1675. {
  1676. if (ssh_fptype_is_cert(fptype))
  1677. fptype = ssh_fptype_from_cert(fptype);
  1678. { // WINSCP
  1679. char *fp = ssh2_fingerprint_blob(blob, fptype);
  1680. char *p = strrchr(fp, ' ');
  1681. char *hash = p ? p + 1 : fp;
  1682. char *fpc = ssh2_fingerprint_blob(blob, ssh_fptype_to_cert(fptype));
  1683. char *pc = strrchr(fpc, ' ');
  1684. char *hashc = pc ? pc + 1 : fpc;
  1685. if (strcmp(hash, hashc)) {
  1686. char *tmp = dupprintf("%s (with certificate: %s)", fp, hashc);
  1687. sfree(fp);
  1688. fp = tmp;
  1689. }
  1690. sfree(fpc);
  1691. return fp;
  1692. } // WINSCP
  1693. }
  1694. char **ssh2_all_fingerprints_for_blob(ptrlen blob)
  1695. {
  1696. char **fps = snewn(SSH_N_FPTYPES, char *);
  1697. unsigned i; // WINSCP
  1698. for (i = 0; i < SSH_N_FPTYPES; i++)
  1699. fps[i] = ssh2_fingerprint_blob(blob, i);
  1700. return fps;
  1701. }
  1702. char *ssh2_fingerprint(ssh_key *data, FingerprintType fptype)
  1703. {
  1704. strbuf *blob = strbuf_new();
  1705. char *ret; //MPEXT
  1706. ssh_key_public_blob(data, BinarySink_UPCAST(blob));
  1707. ret = ssh2_fingerprint_blob(ptrlen_from_strbuf(blob), fptype);
  1708. strbuf_free(blob);
  1709. return ret;
  1710. }
  1711. char *ssh2_double_fingerprint(ssh_key *data, FingerprintType fptype)
  1712. {
  1713. strbuf *blob = strbuf_new();
  1714. ssh_key_public_blob(data, BinarySink_UPCAST(blob));
  1715. { // WINSCP
  1716. char *ret = ssh2_double_fingerprint_blob(ptrlen_from_strbuf(blob), fptype);
  1717. strbuf_free(blob);
  1718. return ret;
  1719. } // WINSCP
  1720. }
  1721. char **ssh2_all_fingerprints(ssh_key *data)
  1722. {
  1723. strbuf *blob = strbuf_new();
  1724. ssh_key_public_blob(data, BinarySink_UPCAST(blob));
  1725. { // WINSCP
  1726. char **ret = ssh2_all_fingerprints_for_blob(ptrlen_from_strbuf(blob));
  1727. strbuf_free(blob);
  1728. return ret;
  1729. } // WINSCP
  1730. }
  1731. void ssh2_free_all_fingerprints(char **fps)
  1732. {
  1733. unsigned i; // WINSCP
  1734. for (i = 0; i < SSH_N_FPTYPES; i++)
  1735. sfree(fps[i]);
  1736. sfree(fps);
  1737. }
  1738. /* ----------------------------------------------------------------------
  1739. * Determine the type of a private key file.
  1740. */
  1741. static int key_type_s_internal(BinarySource *src)
  1742. {
  1743. static const ptrlen public_std_sig =
  1744. PTRLEN_DECL_LITERAL("---- BEGIN SSH2 PUBLIC KEY");
  1745. static const ptrlen putty2_sig =
  1746. PTRLEN_DECL_LITERAL("PuTTY-User-Key-File-");
  1747. static const ptrlen sshcom_sig =
  1748. PTRLEN_DECL_LITERAL("---- BEGIN SSH2 ENCRYPTED PRIVAT");
  1749. static const ptrlen openssh_new_sig =
  1750. PTRLEN_DECL_LITERAL("-----BEGIN OPENSSH PRIVATE KEY");
  1751. static const ptrlen openssh_sig =
  1752. PTRLEN_DECL_LITERAL("-----BEGIN ");
  1753. if (BinarySource_REWIND(src), expect_signature(src, rsa1_signature))
  1754. return SSH_KEYTYPE_SSH1;
  1755. if (BinarySource_REWIND(src), expect_signature(src, public_std_sig))
  1756. return SSH_KEYTYPE_SSH2_PUBLIC_RFC4716;
  1757. if (BinarySource_REWIND(src), expect_signature(src, putty2_sig))
  1758. return SSH_KEYTYPE_SSH2;
  1759. if (BinarySource_REWIND(src), expect_signature(src, openssh_new_sig))
  1760. return SSH_KEYTYPE_OPENSSH_NEW;
  1761. if (BinarySource_REWIND(src), expect_signature(src, openssh_sig))
  1762. return SSH_KEYTYPE_OPENSSH_PEM;
  1763. if (BinarySource_REWIND(src), expect_signature(src, sshcom_sig))
  1764. return SSH_KEYTYPE_SSHCOM;
  1765. BinarySource_REWIND(src);
  1766. if (get_chars(src, "0123456789").len > 0 && get_chars(src, " ").len == 1 &&
  1767. get_chars(src, "0123456789").len > 0 && get_chars(src, " ").len == 1 &&
  1768. get_chars(src, "0123456789").len > 0 &&
  1769. get_nonchars(src, " \n").len == 0)
  1770. return SSH_KEYTYPE_SSH1_PUBLIC;
  1771. BinarySource_REWIND(src);
  1772. if (find_pubkey_alg_len(get_nonchars(src, " \n")) > 0 &&
  1773. get_chars(src, " ").len == 1 &&
  1774. get_chars(src, "0123456789ABCDEFGHIJKLMNOPQRSTUV"
  1775. "WXYZabcdefghijklmnopqrstuvwxyz+/=").len > 0 &&
  1776. get_nonchars(src, " \n").len == 0)
  1777. return SSH_KEYTYPE_SSH2_PUBLIC_OPENSSH;
  1778. return SSH_KEYTYPE_UNKNOWN; /* unrecognised or EOF */
  1779. }
  1780. int key_type_s(BinarySource *src)
  1781. {
  1782. int toret = key_type_s_internal(src);
  1783. BinarySource_REWIND(src);
  1784. return toret;
  1785. }
  1786. int key_type(const Filename *filename)
  1787. {
  1788. LoadedFile *lf = lf_new(1024);
  1789. if (lf_load(lf, filename) == LF_ERROR) {
  1790. lf_free(lf);
  1791. return SSH_KEYTYPE_UNOPENABLE;
  1792. }
  1793. { // WINSCP
  1794. int toret = key_type_s(BinarySource_UPCAST(lf));
  1795. lf_free(lf);
  1796. return toret;
  1797. } // WINSCP
  1798. }
  1799. /*
  1800. * Convert the type word to a string, for `wrong type' error
  1801. * messages.
  1802. */
  1803. const char *key_type_to_str(int type)
  1804. {
  1805. switch (type) {
  1806. case SSH_KEYTYPE_UNOPENABLE:
  1807. return "unable to open file";
  1808. case SSH_KEYTYPE_UNKNOWN:
  1809. return "not a recognised key file format";
  1810. case SSH_KEYTYPE_SSH1_PUBLIC:
  1811. return "SSH-1 public key";
  1812. case SSH_KEYTYPE_SSH2_PUBLIC_RFC4716:
  1813. return "SSH-2 public key (RFC 4716 format)";
  1814. case SSH_KEYTYPE_SSH2_PUBLIC_OPENSSH:
  1815. return "SSH-2 public key (OpenSSH format)";
  1816. case SSH_KEYTYPE_SSH1:
  1817. return "SSH-1 private key";
  1818. case SSH_KEYTYPE_SSH2:
  1819. return "PuTTY SSH-2 private key";
  1820. case SSH_KEYTYPE_OPENSSH_PEM:
  1821. return "OpenSSH SSH-2 private key (old PEM format)";
  1822. case SSH_KEYTYPE_OPENSSH_NEW:
  1823. return "OpenSSH SSH-2 private key (new format)";
  1824. case SSH_KEYTYPE_SSHCOM:
  1825. return "ssh.com SSH-2 private key";
  1826. /*
  1827. * This function is called with a key type derived from
  1828. * looking at an actual key file, so the output-only type
  1829. * OPENSSH_AUTO should never get here, and is much an INTERNAL
  1830. * ERROR as a code we don't even understand.
  1831. */
  1832. case SSH_KEYTYPE_OPENSSH_AUTO:
  1833. unreachable("OPENSSH_AUTO should never reach key_type_to_str");
  1834. default:
  1835. unreachable("bad key type in key_type_to_str");
  1836. }
  1837. }