test_suite_pkcs1_v15.function 15 KB

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  1. /* BEGIN_HEADER */
  2. #include "mbedtls/rsa.h"
  3. #include "mbedtls/md.h"
  4. /* END_HEADER */
  5. /* BEGIN_DEPENDENCIES
  6. * depends_on:MBEDTLS_PKCS1_V15:MBEDTLS_RSA_C:MBEDTLS_SHA1_C
  7. * END_DEPENDENCIES
  8. */
  9. /* BEGIN_CASE */
  10. void pkcs1_rsaes_v15_encrypt( int mod, int radix_N, char * input_N,
  11. int radix_E, char * input_E, int hash,
  12. data_t * message_str, data_t * rnd_buf,
  13. data_t * result_str, int result )
  14. {
  15. unsigned char output[128];
  16. mbedtls_rsa_context ctx;
  17. mbedtls_test_rnd_buf_info info;
  18. mbedtls_mpi N, E;
  19. info.fallback_f_rng = mbedtls_test_rnd_std_rand;
  20. info.fallback_p_rng = NULL;
  21. info.buf = rnd_buf->x;
  22. info.length = rnd_buf->len;
  23. mbedtls_mpi_init( &N ); mbedtls_mpi_init( &E );
  24. mbedtls_rsa_init( &ctx, MBEDTLS_RSA_PKCS_V15, hash );
  25. memset( output, 0x00, sizeof( output ) );
  26. TEST_ASSERT( mbedtls_test_read_mpi( &N, radix_N, input_N ) == 0 );
  27. TEST_ASSERT( mbedtls_test_read_mpi( &E, radix_E, input_E ) == 0 );
  28. TEST_ASSERT( mbedtls_rsa_import( &ctx, &N, NULL, NULL, NULL, &E ) == 0 );
  29. TEST_ASSERT( mbedtls_rsa_get_len( &ctx ) == (size_t) ( ( mod + 7 ) / 8 ) );
  30. TEST_ASSERT( mbedtls_rsa_check_pubkey( &ctx ) == 0 );
  31. if( message_str->len == 0 )
  32. message_str->x = NULL;
  33. TEST_ASSERT( mbedtls_rsa_pkcs1_encrypt( &ctx,
  34. &mbedtls_test_rnd_buffer_rand,
  35. &info, MBEDTLS_RSA_PUBLIC,
  36. message_str->len, message_str->x,
  37. output ) == result );
  38. if( result == 0 )
  39. {
  40. TEST_ASSERT( mbedtls_test_hexcmp( output, result_str->x,
  41. ctx.len, result_str->len ) == 0 );
  42. }
  43. exit:
  44. mbedtls_mpi_free( &N ); mbedtls_mpi_free( &E );
  45. mbedtls_rsa_free( &ctx );
  46. }
  47. /* END_CASE */
  48. /* BEGIN_CASE */
  49. void pkcs1_rsaes_v15_decrypt( int mod, int radix_P, char * input_P,
  50. int radix_Q, char * input_Q, int radix_N,
  51. char * input_N, int radix_E, char * input_E,
  52. int hash, data_t * result_str,
  53. char * seed, data_t * message_str,
  54. int result )
  55. {
  56. unsigned char output[128];
  57. mbedtls_rsa_context ctx;
  58. size_t output_len;
  59. mbedtls_test_rnd_pseudo_info rnd_info;
  60. mbedtls_mpi N, P, Q, E;
  61. ((void) seed);
  62. mbedtls_mpi_init( &N ); mbedtls_mpi_init( &P );
  63. mbedtls_mpi_init( &Q ); mbedtls_mpi_init( &E );
  64. mbedtls_rsa_init( &ctx, MBEDTLS_RSA_PKCS_V15, hash );
  65. memset( output, 0x00, sizeof( output ) );
  66. memset( &rnd_info, 0, sizeof( mbedtls_test_rnd_pseudo_info ) );
  67. TEST_ASSERT( mbedtls_test_read_mpi( &P, radix_P, input_P ) == 0 );
  68. TEST_ASSERT( mbedtls_test_read_mpi( &Q, radix_Q, input_Q ) == 0 );
  69. TEST_ASSERT( mbedtls_test_read_mpi( &N, radix_N, input_N ) == 0 );
  70. TEST_ASSERT( mbedtls_test_read_mpi( &E, radix_E, input_E ) == 0 );
  71. TEST_ASSERT( mbedtls_rsa_import( &ctx, &N, &P, &Q, NULL, &E ) == 0 );
  72. TEST_ASSERT( mbedtls_rsa_get_len( &ctx ) == (size_t) ( ( mod + 7 ) / 8 ) );
  73. TEST_ASSERT( mbedtls_rsa_complete( &ctx ) == 0 );
  74. TEST_ASSERT( mbedtls_rsa_check_privkey( &ctx ) == 0 );
  75. if( result_str->len == 0 )
  76. {
  77. TEST_ASSERT( mbedtls_rsa_pkcs1_decrypt( &ctx,
  78. &mbedtls_test_rnd_pseudo_rand,
  79. &rnd_info,
  80. MBEDTLS_RSA_PRIVATE,
  81. &output_len, message_str->x,
  82. NULL, 0 ) == result );
  83. }
  84. else
  85. {
  86. TEST_ASSERT( mbedtls_rsa_pkcs1_decrypt( &ctx,
  87. &mbedtls_test_rnd_pseudo_rand,
  88. &rnd_info, MBEDTLS_RSA_PRIVATE,
  89. &output_len, message_str->x,
  90. output, 1000 ) == result );
  91. if( result == 0 )
  92. {
  93. TEST_ASSERT( mbedtls_test_hexcmp( output, result_str->x,
  94. output_len,
  95. result_str->len) == 0 );
  96. }
  97. }
  98. exit:
  99. mbedtls_mpi_free( &N ); mbedtls_mpi_free( &P );
  100. mbedtls_mpi_free( &Q ); mbedtls_mpi_free( &E );
  101. mbedtls_rsa_free( &ctx );
  102. }
  103. /* END_CASE */
  104. /* BEGIN_CASE */
  105. void pkcs1_v15_decode( int mode,
  106. data_t *input,
  107. int expected_plaintext_length_arg,
  108. int output_size_arg,
  109. int expected_result )
  110. {
  111. size_t expected_plaintext_length = expected_plaintext_length_arg;
  112. size_t output_size = output_size_arg;
  113. mbedtls_test_rnd_pseudo_info rnd_info;
  114. mbedtls_mpi Nmpi, Empi, Pmpi, Qmpi;
  115. mbedtls_rsa_context ctx;
  116. static unsigned char N[128] = {
  117. 0xc4, 0x79, 0x4c, 0x6d, 0xb2, 0xe9, 0xdf, 0xc5,
  118. 0xe5, 0xd7, 0x55, 0x4b, 0xfb, 0x6c, 0x2e, 0xec,
  119. 0x84, 0xd0, 0x88, 0x12, 0xaf, 0xbf, 0xb4, 0xf5,
  120. 0x47, 0x3c, 0x7e, 0x92, 0x4c, 0x58, 0xc8, 0x73,
  121. 0xfe, 0x8f, 0x2b, 0x8f, 0x8e, 0xc8, 0x5c, 0xf5,
  122. 0x05, 0xeb, 0xfb, 0x0d, 0x7b, 0x2a, 0x93, 0xde,
  123. 0x15, 0x0d, 0xc8, 0x13, 0xcf, 0xd2, 0x6f, 0x0d,
  124. 0x9d, 0xad, 0x30, 0xe5, 0x70, 0x20, 0x92, 0x9e,
  125. 0xb3, 0x6b, 0xba, 0x5c, 0x50, 0x0f, 0xc3, 0xb2,
  126. 0x7e, 0x64, 0x07, 0x94, 0x7e, 0xc9, 0x4e, 0xc1,
  127. 0x65, 0x04, 0xaf, 0xb3, 0x9f, 0xde, 0xa8, 0x46,
  128. 0xfa, 0x6c, 0xf3, 0x03, 0xaf, 0x1c, 0x1b, 0xec,
  129. 0x75, 0x44, 0x66, 0x77, 0xc9, 0xde, 0x51, 0x33,
  130. 0x64, 0x27, 0xb0, 0xd4, 0x8d, 0x31, 0x6a, 0x11,
  131. 0x27, 0x3c, 0x99, 0xd4, 0x22, 0xc0, 0x9d, 0x12,
  132. 0x01, 0xc7, 0x4a, 0x73, 0xac, 0xbf, 0xc2, 0xbb
  133. };
  134. static unsigned char E[1] = { 0x03 };
  135. static unsigned char P[64] = {
  136. 0xe5, 0x53, 0x1f, 0x88, 0x51, 0xee, 0x59, 0xf8,
  137. 0xc1, 0xe4, 0xcc, 0x5b, 0xb3, 0x75, 0x8d, 0xc8,
  138. 0xe8, 0x95, 0x2f, 0xd0, 0xef, 0x37, 0xb4, 0xcd,
  139. 0xd3, 0x9e, 0x48, 0x8b, 0x81, 0x58, 0x60, 0xb9,
  140. 0x27, 0x1d, 0xb6, 0x28, 0x92, 0x64, 0xa3, 0xa5,
  141. 0x64, 0xbd, 0xcc, 0x53, 0x68, 0xdd, 0x3e, 0x55,
  142. 0xea, 0x9d, 0x5e, 0xcd, 0x1f, 0x96, 0x87, 0xf1,
  143. 0x29, 0x75, 0x92, 0x70, 0x8f, 0x28, 0xfb, 0x2b
  144. };
  145. static unsigned char Q[64] = {
  146. 0xdb, 0x53, 0xef, 0x74, 0x61, 0xb4, 0x20, 0x3b,
  147. 0x3b, 0x87, 0x76, 0x75, 0x81, 0x56, 0x11, 0x03,
  148. 0x59, 0x31, 0xe3, 0x38, 0x4b, 0x8c, 0x7a, 0x9c,
  149. 0x05, 0xd6, 0x7f, 0x1e, 0x5e, 0x60, 0xf0, 0x4e,
  150. 0x0b, 0xdc, 0x34, 0x54, 0x1c, 0x2e, 0x90, 0x83,
  151. 0x14, 0xef, 0xc0, 0x96, 0x5c, 0x30, 0x10, 0xcc,
  152. 0xc1, 0xba, 0xa0, 0x54, 0x3f, 0x96, 0x24, 0xca,
  153. 0xa3, 0xfb, 0x55, 0xbc, 0x71, 0x29, 0x4e, 0xb1
  154. };
  155. unsigned char original[128];
  156. unsigned char intermediate[128];
  157. static unsigned char default_content[128] = {
  158. /* A randomly generated pattern. */
  159. 0x4c, 0x27, 0x54, 0xa0, 0xce, 0x0d, 0x09, 0x4a,
  160. 0x1c, 0x38, 0x8e, 0x2d, 0xa3, 0xc4, 0xe0, 0x19,
  161. 0x4c, 0x99, 0xb2, 0xbf, 0xe6, 0x65, 0x7e, 0x58,
  162. 0xd7, 0xb6, 0x8a, 0x05, 0x2f, 0xa5, 0xec, 0xa4,
  163. 0x35, 0xad, 0x10, 0x36, 0xff, 0x0d, 0x08, 0x50,
  164. 0x74, 0x47, 0xc9, 0x9c, 0x4a, 0xe7, 0xfd, 0xfa,
  165. 0x83, 0x5f, 0x14, 0x5a, 0x1e, 0xe7, 0x35, 0x08,
  166. 0xad, 0xf7, 0x0d, 0x86, 0xdf, 0xb8, 0xd4, 0xcf,
  167. 0x32, 0xb9, 0x5c, 0xbe, 0xa3, 0xd2, 0x89, 0x70,
  168. 0x7b, 0xc6, 0x48, 0x7e, 0x58, 0x4d, 0xf3, 0xef,
  169. 0x34, 0xb7, 0x57, 0x54, 0x79, 0xc5, 0x8e, 0x0a,
  170. 0xa3, 0xbf, 0x6d, 0x42, 0x83, 0x25, 0x13, 0xa2,
  171. 0x95, 0xc0, 0x0d, 0x32, 0xec, 0x77, 0x91, 0x2b,
  172. 0x68, 0xb6, 0x8c, 0x79, 0x15, 0xfb, 0x94, 0xde,
  173. 0xb9, 0x2b, 0x94, 0xb3, 0x28, 0x23, 0x86, 0x3d,
  174. 0x37, 0x00, 0xe6, 0xf1, 0x1f, 0x4e, 0xd4, 0x42
  175. };
  176. unsigned char final[128];
  177. size_t output_length = 0x7EA0;
  178. memset( &rnd_info, 0, sizeof( mbedtls_test_rnd_pseudo_info ) );
  179. mbedtls_mpi_init( &Nmpi ); mbedtls_mpi_init( &Empi );
  180. mbedtls_mpi_init( &Pmpi ); mbedtls_mpi_init( &Qmpi );
  181. mbedtls_rsa_init( &ctx, MBEDTLS_RSA_PKCS_V15, 0 );
  182. TEST_ASSERT( mbedtls_mpi_read_binary( &Nmpi, N, sizeof( N ) ) == 0 );
  183. TEST_ASSERT( mbedtls_mpi_read_binary( &Empi, E, sizeof( E ) ) == 0 );
  184. TEST_ASSERT( mbedtls_mpi_read_binary( &Pmpi, P, sizeof( P ) ) == 0 );
  185. TEST_ASSERT( mbedtls_mpi_read_binary( &Qmpi, Q, sizeof( Q ) ) == 0 );
  186. TEST_ASSERT( mbedtls_rsa_import( &ctx, &Nmpi, &Pmpi, &Qmpi,
  187. NULL, &Empi ) == 0 );
  188. TEST_ASSERT( mbedtls_rsa_complete( &ctx ) == 0 );
  189. TEST_ASSERT( input->len <= sizeof( N ) );
  190. memcpy( original, input->x, input->len );
  191. memset( original + input->len, 'd', sizeof( original ) - input->len );
  192. if( mode == MBEDTLS_RSA_PRIVATE )
  193. TEST_ASSERT( mbedtls_rsa_public( &ctx, original, intermediate ) == 0 );
  194. else
  195. TEST_ASSERT( mbedtls_rsa_private( &ctx, &mbedtls_test_rnd_pseudo_rand,
  196. &rnd_info, original,
  197. intermediate ) == 0 );
  198. memcpy( final, default_content, sizeof( final ) );
  199. TEST_ASSERT( mbedtls_rsa_pkcs1_decrypt( &ctx,
  200. &mbedtls_test_rnd_pseudo_rand,
  201. &rnd_info, mode, &output_length,
  202. intermediate, final,
  203. output_size ) == expected_result );
  204. if( expected_result == 0 )
  205. {
  206. TEST_ASSERT( output_length == expected_plaintext_length );
  207. TEST_ASSERT( memcmp( original + sizeof( N ) - output_length,
  208. final,
  209. output_length ) == 0 );
  210. }
  211. else if( expected_result == MBEDTLS_ERR_RSA_INVALID_PADDING ||
  212. expected_result == MBEDTLS_ERR_RSA_OUTPUT_TOO_LARGE )
  213. {
  214. size_t max_payload_length =
  215. output_size > sizeof( N ) - 11 ? sizeof( N ) - 11 : output_size;
  216. size_t i;
  217. size_t count = 0;
  218. #if !defined(MBEDTLS_RSA_ALT)
  219. /* Check that the output in invalid cases is what the default
  220. * implementation currently does. Alternative implementations
  221. * may produce different output, so we only perform these precise
  222. * checks when using the default implementation. */
  223. TEST_ASSERT( output_length == max_payload_length );
  224. for( i = 0; i < max_payload_length; i++ )
  225. TEST_ASSERT( final[i] == 0 );
  226. #endif
  227. /* Even in alternative implementations, the outputs must have
  228. * changed, otherwise it indicates at least a timing vulnerability
  229. * because no write to the outputs is performed in the bad case. */
  230. TEST_ASSERT( output_length != 0x7EA0 );
  231. for( i = 0; i < max_payload_length; i++ )
  232. count += ( final[i] == default_content[i] );
  233. /* If more than 16 bytes are unchanged in final, that's evidence
  234. * that final wasn't overwritten. */
  235. TEST_ASSERT( count < 16 );
  236. }
  237. exit:
  238. mbedtls_mpi_free( &Nmpi ); mbedtls_mpi_free( &Empi );
  239. mbedtls_mpi_free( &Pmpi ); mbedtls_mpi_free( &Qmpi );
  240. mbedtls_rsa_free( &ctx );
  241. }
  242. /* END_CASE */
  243. /* BEGIN_CASE */
  244. void pkcs1_rsassa_v15_sign( int mod, int radix_P, char * input_P, int radix_Q,
  245. char * input_Q, int radix_N, char * input_N,
  246. int radix_E, char * input_E, int digest, int hash,
  247. data_t * message_str, data_t * rnd_buf,
  248. data_t * result_str, int result )
  249. {
  250. unsigned char hash_result[MBEDTLS_MD_MAX_SIZE];
  251. unsigned char output[128];
  252. mbedtls_rsa_context ctx;
  253. mbedtls_mpi N, P, Q, E;
  254. mbedtls_test_rnd_buf_info info;
  255. info.fallback_f_rng = mbedtls_test_rnd_std_rand;
  256. info.fallback_p_rng = NULL;
  257. info.buf = rnd_buf->x;
  258. info.length = rnd_buf->len;
  259. mbedtls_mpi_init( &N ); mbedtls_mpi_init( &P );
  260. mbedtls_mpi_init( &Q ); mbedtls_mpi_init( &E );
  261. mbedtls_rsa_init( &ctx, MBEDTLS_RSA_PKCS_V15, hash );
  262. memset( hash_result, 0x00, sizeof( hash_result ) );
  263. memset( output, 0x00, sizeof( output ) );
  264. TEST_ASSERT( mbedtls_test_read_mpi( &P, radix_P, input_P ) == 0 );
  265. TEST_ASSERT( mbedtls_test_read_mpi( &Q, radix_Q, input_Q ) == 0 );
  266. TEST_ASSERT( mbedtls_test_read_mpi( &N, radix_N, input_N ) == 0 );
  267. TEST_ASSERT( mbedtls_test_read_mpi( &E, radix_E, input_E ) == 0 );
  268. TEST_ASSERT( mbedtls_rsa_import( &ctx, &N, &P, &Q, NULL, &E ) == 0 );
  269. TEST_ASSERT( mbedtls_rsa_get_len( &ctx ) == (size_t) ( ( mod + 7 ) / 8 ) );
  270. TEST_ASSERT( mbedtls_rsa_complete( &ctx ) == 0 );
  271. TEST_ASSERT( mbedtls_rsa_check_privkey( &ctx ) == 0 );
  272. if( mbedtls_md_info_from_type( digest ) != NULL )
  273. TEST_ASSERT( mbedtls_md( mbedtls_md_info_from_type( digest ), message_str->x, message_str->len, hash_result ) == 0 );
  274. TEST_ASSERT( mbedtls_rsa_pkcs1_sign( &ctx, &mbedtls_test_rnd_buffer_rand,
  275. &info, MBEDTLS_RSA_PRIVATE, digest,
  276. 0, hash_result, output ) == result );
  277. if( result == 0 )
  278. {
  279. TEST_ASSERT( mbedtls_test_hexcmp( output, result_str->x,
  280. ctx.len, result_str->len ) == 0 );
  281. }
  282. exit:
  283. mbedtls_mpi_free( &N ); mbedtls_mpi_free( &P );
  284. mbedtls_mpi_free( &Q ); mbedtls_mpi_free( &E );
  285. mbedtls_rsa_free( &ctx );
  286. }
  287. /* END_CASE */
  288. /* BEGIN_CASE */
  289. void pkcs1_rsassa_v15_verify( int mod, int radix_N, char * input_N,
  290. int radix_E, char * input_E, int digest,
  291. int hash, data_t * message_str, char * salt,
  292. data_t * result_str, int result )
  293. {
  294. unsigned char hash_result[MBEDTLS_MD_MAX_SIZE];
  295. mbedtls_rsa_context ctx;
  296. mbedtls_mpi N, E;
  297. ((void) salt);
  298. mbedtls_mpi_init( &N ); mbedtls_mpi_init( &E );
  299. mbedtls_rsa_init( &ctx, MBEDTLS_RSA_PKCS_V15, hash );
  300. memset( hash_result, 0x00, sizeof( hash_result ) );
  301. TEST_ASSERT( mbedtls_test_read_mpi( &N, radix_N, input_N ) == 0 );
  302. TEST_ASSERT( mbedtls_test_read_mpi( &E, radix_E, input_E ) == 0 );
  303. TEST_ASSERT( mbedtls_rsa_import( &ctx, &N, NULL, NULL, NULL, &E ) == 0 );
  304. TEST_ASSERT( mbedtls_rsa_get_len( &ctx ) == (size_t) ( ( mod + 7 ) / 8 ) );
  305. TEST_ASSERT( mbedtls_rsa_check_pubkey( &ctx ) == 0 );
  306. if( mbedtls_md_info_from_type( digest ) != NULL )
  307. TEST_ASSERT( mbedtls_md( mbedtls_md_info_from_type( digest ), message_str->x, message_str->len, hash_result ) == 0 );
  308. TEST_ASSERT( mbedtls_rsa_pkcs1_verify( &ctx, NULL, NULL, MBEDTLS_RSA_PUBLIC, digest, 0, hash_result, result_str->x ) == result );
  309. exit:
  310. mbedtls_mpi_free( &N ); mbedtls_mpi_free( &E );
  311. mbedtls_rsa_free( &ctx );
  312. }
  313. /* END_CASE */