dsa_make_key.c 4.3 KB

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  1. /* LibTomCrypt, modular cryptographic library -- Tom St Denis
  2. *
  3. * LibTomCrypt is a library that provides various cryptographic
  4. * algorithms in a highly modular and flexible manner.
  5. *
  6. * The library is free for all purposes without any express
  7. * guarantee it works.
  8. *
  9. * Tom St Denis, [email protected], http://libtomcrypt.org
  10. */
  11. #include "mycrypt.h"
  12. #ifdef MDSA
  13. int dsa_make_key(prng_state *prng, int wprng, int group_size, int modulus_size, dsa_key *key)
  14. {
  15. mp_int tmp, tmp2;
  16. int err, res;
  17. unsigned char *buf;
  18. _ARGCHK(key != NULL);
  19. /* check prng */
  20. if ((err = prng_is_valid(wprng)) != CRYPT_OK) {
  21. return err;
  22. }
  23. /* check size */
  24. if (group_size >= MDSA_MAX_GROUP || group_size <= 15 ||
  25. group_size >= modulus_size || (modulus_size - group_size) >= MDSA_DELTA) {
  26. return CRYPT_INVALID_ARG;
  27. }
  28. /* allocate ram */
  29. buf = XMALLOC(MDSA_DELTA);
  30. if (buf == NULL) {
  31. return CRYPT_MEM;
  32. }
  33. /* init mp_ints */
  34. if ((err = mp_init_multi(&tmp, &tmp2, &key->g, &key->q, &key->p, &key->x, &key->y, NULL)) != MP_OKAY) {
  35. err = mpi_to_ltc_error(err);
  36. goto __ERR;
  37. }
  38. /* make our prime q */
  39. if ((err = rand_prime(&key->q, group_size*8, prng, wprng)) != CRYPT_OK) { goto __ERR; }
  40. /* double q */
  41. if ((err = mp_mul_2(&key->q, &tmp)) != MP_OKAY) { goto error; }
  42. /* now make a random string and multply it against q */
  43. if (prng_descriptor[wprng].read(buf+1, modulus_size - group_size, prng) != (unsigned long)(modulus_size - group_size)) {
  44. err = CRYPT_ERROR_READPRNG;
  45. goto __ERR;
  46. }
  47. /* force magnitude */
  48. buf[0] = 1;
  49. /* force even */
  50. buf[modulus_size - group_size] &= ~1;
  51. if ((err = mp_read_unsigned_bin(&tmp2, buf, modulus_size - group_size+1)) != MP_OKAY) { goto error; }
  52. if ((err = mp_mul(&key->q, &tmp2, &key->p)) != MP_OKAY) { goto error; }
  53. if ((err = mp_add_d(&key->p, 1, &key->p)) != MP_OKAY) { goto error; }
  54. /* now loop until p is prime */
  55. for (;;) {
  56. if ((err = is_prime(&key->p, &res)) != CRYPT_OK) { goto __ERR; }
  57. if (res == MP_YES) break;
  58. /* add 2q to p and 2 to tmp2 */
  59. if ((err = mp_add(&tmp, &key->p, &key->p)) != MP_OKAY) { goto error; }
  60. if ((err = mp_add_d(&tmp2, 2, &tmp2)) != MP_OKAY) { goto error; }
  61. }
  62. /* now p = (q * tmp2) + 1 is prime, find a value g for which g^tmp2 != 1 */
  63. mp_set(&key->g, 1);
  64. do {
  65. if ((err = mp_add_d(&key->g, 1, &key->g)) != MP_OKAY) { goto error; }
  66. if ((err = mp_exptmod(&key->g, &tmp2, &key->p, &tmp)) != MP_OKAY) { goto error; }
  67. } while (mp_cmp_d(&tmp, 1) == MP_EQ);
  68. /* at this point tmp generates a group of order q mod p */
  69. mp_exch(&tmp, &key->g);
  70. /* so now we have our DH structure, generator g, order q, modulus p
  71. Now we need a random exponent [mod q] and it's power g^x mod p
  72. */
  73. do {
  74. if (prng_descriptor[wprng].read(buf, group_size, prng) != (unsigned long)group_size) {
  75. err = CRYPT_ERROR_READPRNG;
  76. goto __ERR;
  77. }
  78. if ((err = mp_read_unsigned_bin(&key->x, buf, group_size)) != MP_OKAY) { goto error; }
  79. } while (mp_cmp_d(&key->x, 1) != MP_GT);
  80. if ((err = mp_exptmod(&key->g, &key->x, &key->p, &key->y)) != MP_OKAY) { goto error; }
  81. key->type = PK_PRIVATE;
  82. key->qord = group_size;
  83. /* shrink the ram required */
  84. if ((err = mp_shrink(&key->g)) != MP_OKAY) { goto error; }
  85. if ((err = mp_shrink(&key->p)) != MP_OKAY) { goto error; }
  86. if ((err = mp_shrink(&key->q)) != MP_OKAY) { goto error; }
  87. if ((err = mp_shrink(&key->x)) != MP_OKAY) { goto error; }
  88. if ((err = mp_shrink(&key->y)) != MP_OKAY) { goto error; }
  89. #ifdef CLEAN_STACK
  90. zeromem(buf, MDSA_DELTA);
  91. #endif
  92. err = CRYPT_OK;
  93. goto done;
  94. error:
  95. err = mpi_to_ltc_error(err);
  96. __ERR:
  97. mp_clear_multi(&key->g, &key->q, &key->p, &key->x, &key->y, NULL);
  98. done:
  99. mp_clear_multi(&tmp, &tmp2, NULL);
  100. XFREE(buf);
  101. return err;
  102. }
  103. #endif