xs_openssl.h 3.6 KB

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  1. /* copyright (c) 2022 grunfink - MIT license */
  2. #ifndef _XS_OPENSSL_H
  3. #define _XS_OPENSSL_H
  4. d_char *xs_md5_hex(const void *input, int size);
  5. d_char *xs_sha1_hex(const void *input, int size);
  6. d_char *xs_sha256_hex(const void *input, int size);
  7. d_char *xs_rsa_genkey(int bits);
  8. d_char *xs_rsa_sign(char *secret, char *mem, int size);
  9. int xs_rsa_verify(char *pubkey, char *mem, int size, char *b64sig);
  10. #ifdef XS_IMPLEMENTATION
  11. #include "openssl/md5.h"
  12. #include "openssl/sha.h"
  13. #include "openssl/rsa.h"
  14. #include "openssl/pem.h"
  15. d_char *xs_md5_hex(const void *input, int size)
  16. {
  17. unsigned char md5[16];
  18. MD5_CTX ctx;
  19. MD5_Init(&ctx);
  20. MD5_Update(&ctx, input, size);
  21. MD5_Final(md5, &ctx);
  22. return xs_hex_enc((char *)md5, sizeof(md5));
  23. }
  24. d_char *xs_sha1_hex(const void *input, int size)
  25. {
  26. unsigned char sha1[20];
  27. SHA_CTX ctx;
  28. SHA1_Init(&ctx);
  29. SHA1_Update(&ctx, input, size);
  30. SHA1_Final(sha1, &ctx);
  31. return xs_hex_enc((char *)sha1, sizeof(sha1));
  32. }
  33. d_char *xs_sha256_hex(const void *input, int size)
  34. {
  35. unsigned char sha256[32];
  36. SHA256_CTX ctx;
  37. SHA256_Init(&ctx);
  38. SHA256_Update(&ctx, input, size);
  39. SHA256_Final(sha256, &ctx);
  40. return xs_hex_enc((char *)sha256, sizeof(sha256));
  41. }
  42. d_char *xs_rsa_genkey(int bits)
  43. /* generates an RSA keypair */
  44. {
  45. BIGNUM *bne;
  46. RSA *rsa;
  47. d_char *keypair = NULL;
  48. if ((bne = BN_new()) != NULL) {
  49. if (BN_set_word(bne, RSA_F4) == 1) {
  50. if ((rsa = RSA_new()) != NULL) {
  51. if (RSA_generate_key_ex(rsa, bits, bne, NULL) == 1) {
  52. BIO *bs = BIO_new(BIO_s_mem());
  53. BIO *bp = BIO_new(BIO_s_mem());
  54. BUF_MEM *sptr;
  55. BUF_MEM *pptr;
  56. PEM_write_bio_RSAPrivateKey(bs, rsa, NULL, NULL, 0, 0, NULL);
  57. BIO_get_mem_ptr(bs, &sptr);
  58. PEM_write_bio_RSA_PUBKEY(bp, rsa);
  59. BIO_get_mem_ptr(bp, &pptr);
  60. keypair = xs_dict_new();
  61. keypair = xs_dict_append(keypair, "secret", sptr->data);
  62. keypair = xs_dict_append(keypair, "public", pptr->data);
  63. BIO_free(bs);
  64. BIO_free(bp);
  65. }
  66. }
  67. }
  68. }
  69. return keypair;
  70. }
  71. d_char *xs_rsa_sign(char *secret, char *mem, int size)
  72. /* signs a memory block (secret is in PEM format) */
  73. {
  74. d_char *signature = NULL;
  75. BIO *b;
  76. RSA *rsa;
  77. unsigned char *sig;
  78. unsigned int sig_len;
  79. /* un-PEM the key */
  80. b = BIO_new_mem_buf(secret, strlen(secret));
  81. rsa = PEM_read_bio_RSAPrivateKey(b, NULL, NULL, NULL);
  82. /* alloc space */
  83. sig = malloc(RSA_size(rsa));
  84. if (RSA_sign(NID_sha256, (unsigned char *)mem, size, sig, &sig_len, rsa) == 1)
  85. signature = xs_base64_enc((char *)sig, sig_len);
  86. BIO_free(b);
  87. RSA_free(rsa);
  88. free(sig);
  89. return signature;
  90. }
  91. int xs_rsa_verify(char *pubkey, char *mem, int size, char *b64sig)
  92. /* verifies a base64 block, returns non-zero on ok */
  93. {
  94. int r = 0;
  95. BIO *b;
  96. RSA *rsa;
  97. /* un-PEM the key */
  98. b = BIO_new_mem_buf(pubkey, strlen(pubkey));
  99. rsa = PEM_read_bio_RSA_PUBKEY(b, NULL, NULL, NULL);
  100. if (rsa != NULL) {
  101. d_char *sig = NULL;
  102. int s_size;
  103. /* de-base64 */
  104. sig = xs_base64_dec(b64sig, &s_size);
  105. if (sig != NULL)
  106. r = RSA_verify(NID_sha256, (unsigned char *)mem, size,
  107. (unsigned char *)sig, s_size, rsa);
  108. free(sig);
  109. }
  110. BIO_free(b);
  111. RSA_free(rsa);
  112. return r;
  113. }
  114. #endif /* XS_IMPLEMENTATION */
  115. #endif /* _XS_OPENSSL_H */