test_suite_ecdsa.function 25 KB

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  1. /* BEGIN_HEADER */
  2. #include "mbedtls/ecdsa.h"
  3. /* END_HEADER */
  4. /* BEGIN_DEPENDENCIES
  5. * depends_on:MBEDTLS_ECDSA_C
  6. * END_DEPENDENCIES
  7. */
  8. /* BEGIN_CASE depends_on:MBEDTLS_CHECK_PARAMS:!MBEDTLS_PARAM_FAILED_ALT */
  9. void ecdsa_invalid_param( )
  10. {
  11. mbedtls_ecdsa_context ctx;
  12. mbedtls_ecp_keypair key;
  13. mbedtls_ecp_group grp;
  14. mbedtls_ecp_group_id valid_group = MBEDTLS_ECP_DP_SECP192R1;
  15. mbedtls_ecp_point P;
  16. mbedtls_md_type_t valid_md = MBEDTLS_MD_SHA256;
  17. mbedtls_mpi m;
  18. size_t slen;
  19. unsigned char buf[42] = { 0 };
  20. TEST_INVALID_PARAM( mbedtls_ecdsa_init( NULL ) );
  21. TEST_VALID_PARAM( mbedtls_ecdsa_free( NULL ) );
  22. #if defined(MBEDTLS_ECP_RESTARTABLE)
  23. TEST_INVALID_PARAM( mbedtls_ecdsa_restart_init( NULL ) );
  24. TEST_VALID_PARAM( mbedtls_ecdsa_restart_free( NULL ) );
  25. #endif /* MBEDTLS_ECP_RESTARTABLE */
  26. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  27. mbedtls_ecdsa_sign( NULL, &m, &m, &m,
  28. buf, sizeof( buf ),
  29. rnd_std_rand, NULL ) );
  30. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  31. mbedtls_ecdsa_sign( &grp, NULL, &m, &m,
  32. buf, sizeof( buf ),
  33. rnd_std_rand, NULL ) );
  34. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  35. mbedtls_ecdsa_sign( &grp, &m, NULL, &m,
  36. buf, sizeof( buf ),
  37. rnd_std_rand, NULL ) );
  38. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  39. mbedtls_ecdsa_sign( &grp, &m, &m, NULL,
  40. buf, sizeof( buf ),
  41. rnd_std_rand, NULL ) );
  42. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  43. mbedtls_ecdsa_sign( &grp, &m, &m, &m,
  44. NULL, sizeof( buf ),
  45. rnd_std_rand, NULL ) );
  46. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  47. mbedtls_ecdsa_sign( &grp, &m, &m, &m,
  48. buf, sizeof( buf ),
  49. NULL, NULL ) );
  50. #if defined(MBEDTLS_ECDSA_DETERMINISTIC)
  51. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  52. mbedtls_ecdsa_sign_det( NULL, &m, &m, &m,
  53. buf, sizeof( buf ),
  54. valid_md ) );
  55. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  56. mbedtls_ecdsa_sign_det( &grp, NULL, &m, &m,
  57. buf, sizeof( buf ),
  58. valid_md ) );
  59. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  60. mbedtls_ecdsa_sign_det( &grp, &m, NULL, &m,
  61. buf, sizeof( buf ),
  62. valid_md ) );
  63. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  64. mbedtls_ecdsa_sign_det( &grp, &m, &m, NULL,
  65. buf, sizeof( buf ),
  66. valid_md ) );
  67. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  68. mbedtls_ecdsa_sign_det( &grp, &m, &m, &m,
  69. NULL, sizeof( buf ),
  70. valid_md ) );
  71. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  72. mbedtls_ecdsa_sign_det_ext( NULL, &m, &m, &m,
  73. buf, sizeof( buf ),
  74. valid_md,
  75. rnd_std_rand, NULL ) );
  76. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  77. mbedtls_ecdsa_sign_det_ext( &grp, NULL, &m, &m,
  78. buf, sizeof( buf ),
  79. valid_md,
  80. rnd_std_rand, NULL ) );
  81. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  82. mbedtls_ecdsa_sign_det_ext( &grp, &m, NULL, &m,
  83. buf, sizeof( buf ),
  84. valid_md,
  85. rnd_std_rand, NULL ) );
  86. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  87. mbedtls_ecdsa_sign_det_ext( &grp, &m, &m, NULL,
  88. buf, sizeof( buf ),
  89. valid_md,
  90. rnd_std_rand, NULL ) );
  91. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  92. mbedtls_ecdsa_sign_det_ext( &grp, &m, &m, &m,
  93. NULL, sizeof( buf ),
  94. valid_md,
  95. rnd_std_rand, NULL ) );
  96. #endif /* MBEDTLS_ECDSA_DETERMINISTIC */
  97. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  98. mbedtls_ecdsa_verify( NULL,
  99. buf, sizeof( buf ),
  100. &P, &m, &m ) );
  101. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  102. mbedtls_ecdsa_verify( &grp,
  103. NULL, sizeof( buf ),
  104. &P, &m, &m ) );
  105. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  106. mbedtls_ecdsa_verify( &grp,
  107. buf, sizeof( buf ),
  108. NULL, &m, &m ) );
  109. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  110. mbedtls_ecdsa_verify( &grp,
  111. buf, sizeof( buf ),
  112. &P, NULL, &m ) );
  113. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  114. mbedtls_ecdsa_verify( &grp,
  115. buf, sizeof( buf ),
  116. &P, &m, NULL ) );
  117. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  118. mbedtls_ecdsa_write_signature( NULL,
  119. valid_md,
  120. buf, sizeof( buf ),
  121. buf, &slen,
  122. rnd_std_rand,
  123. NULL ) );
  124. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  125. mbedtls_ecdsa_write_signature( &ctx,
  126. valid_md,
  127. NULL, sizeof( buf ),
  128. buf, &slen,
  129. rnd_std_rand,
  130. NULL ) );
  131. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  132. mbedtls_ecdsa_write_signature( &ctx,
  133. valid_md,
  134. buf, sizeof( buf ),
  135. NULL, &slen,
  136. rnd_std_rand,
  137. NULL ) );
  138. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  139. mbedtls_ecdsa_write_signature( &ctx,
  140. valid_md,
  141. buf, sizeof( buf ),
  142. buf, NULL,
  143. rnd_std_rand,
  144. NULL ) );
  145. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  146. mbedtls_ecdsa_write_signature_restartable( NULL,
  147. valid_md,
  148. buf, sizeof( buf ),
  149. buf, &slen,
  150. rnd_std_rand,
  151. NULL, NULL ) );
  152. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  153. mbedtls_ecdsa_write_signature_restartable( &ctx,
  154. valid_md,
  155. NULL, sizeof( buf ),
  156. buf, &slen,
  157. rnd_std_rand,
  158. NULL, NULL ) );
  159. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  160. mbedtls_ecdsa_write_signature_restartable( &ctx,
  161. valid_md,
  162. buf, sizeof( buf ),
  163. NULL, &slen,
  164. rnd_std_rand,
  165. NULL, NULL ) );
  166. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  167. mbedtls_ecdsa_write_signature_restartable( &ctx,
  168. valid_md,
  169. buf, sizeof( buf ),
  170. buf, NULL,
  171. rnd_std_rand,
  172. NULL, NULL ) );
  173. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  174. mbedtls_ecdsa_read_signature( NULL,
  175. buf, sizeof( buf ),
  176. buf, sizeof( buf ) ) );
  177. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  178. mbedtls_ecdsa_read_signature( &ctx,
  179. NULL, sizeof( buf ),
  180. buf, sizeof( buf ) ) );
  181. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  182. mbedtls_ecdsa_read_signature( &ctx,
  183. buf, sizeof( buf ),
  184. NULL, sizeof( buf ) ) );
  185. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  186. mbedtls_ecdsa_read_signature_restartable( NULL,
  187. buf, sizeof( buf ),
  188. buf, sizeof( buf ),
  189. NULL ) );
  190. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  191. mbedtls_ecdsa_read_signature_restartable( &ctx,
  192. NULL, sizeof( buf ),
  193. buf, sizeof( buf ),
  194. NULL ) );
  195. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  196. mbedtls_ecdsa_read_signature_restartable( &ctx,
  197. buf, sizeof( buf ),
  198. NULL, sizeof( buf ),
  199. NULL ) );
  200. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  201. mbedtls_ecdsa_genkey( NULL, valid_group,
  202. rnd_std_rand, NULL ) );
  203. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  204. mbedtls_ecdsa_genkey( &ctx, valid_group,
  205. NULL, NULL ) );
  206. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  207. mbedtls_ecdsa_from_keypair( NULL, &key ) );
  208. TEST_INVALID_PARAM_RET( MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  209. mbedtls_ecdsa_from_keypair( &ctx, NULL ) );
  210. exit:
  211. return;
  212. }
  213. /* END_CASE */
  214. /* BEGIN_CASE */
  215. void ecdsa_prim_random( int id )
  216. {
  217. mbedtls_ecp_group grp;
  218. mbedtls_ecp_point Q;
  219. mbedtls_mpi d, r, s;
  220. rnd_pseudo_info rnd_info;
  221. unsigned char buf[MBEDTLS_MD_MAX_SIZE];
  222. mbedtls_ecp_group_init( &grp );
  223. mbedtls_ecp_point_init( &Q );
  224. mbedtls_mpi_init( &d ); mbedtls_mpi_init( &r ); mbedtls_mpi_init( &s );
  225. memset( &rnd_info, 0x00, sizeof( rnd_pseudo_info ) );
  226. memset( buf, 0, sizeof( buf ) );
  227. /* prepare material for signature */
  228. TEST_ASSERT( rnd_pseudo_rand( &rnd_info, buf, sizeof( buf ) ) == 0 );
  229. TEST_ASSERT( mbedtls_ecp_group_load( &grp, id ) == 0 );
  230. TEST_ASSERT( mbedtls_ecp_gen_keypair( &grp, &d, &Q, &rnd_pseudo_rand, &rnd_info )
  231. == 0 );
  232. TEST_ASSERT( mbedtls_ecdsa_sign( &grp, &r, &s, &d, buf, sizeof( buf ),
  233. &rnd_pseudo_rand, &rnd_info ) == 0 );
  234. TEST_ASSERT( mbedtls_ecdsa_verify( &grp, buf, sizeof( buf ), &Q, &r, &s ) == 0 );
  235. exit:
  236. mbedtls_ecp_group_free( &grp );
  237. mbedtls_ecp_point_free( &Q );
  238. mbedtls_mpi_free( &d ); mbedtls_mpi_free( &r ); mbedtls_mpi_free( &s );
  239. }
  240. /* END_CASE */
  241. /* BEGIN_CASE */
  242. void ecdsa_prim_test_vectors( int id, char * d_str, char * xQ_str,
  243. char * yQ_str, data_t * rnd_buf,
  244. data_t * hash, char * r_str, char * s_str,
  245. int result )
  246. {
  247. mbedtls_ecp_group grp;
  248. mbedtls_ecp_point Q;
  249. mbedtls_mpi d, r, s, r_check, s_check;
  250. rnd_buf_info rnd_info;
  251. mbedtls_ecp_group_init( &grp );
  252. mbedtls_ecp_point_init( &Q );
  253. mbedtls_mpi_init( &d ); mbedtls_mpi_init( &r ); mbedtls_mpi_init( &s );
  254. mbedtls_mpi_init( &r_check ); mbedtls_mpi_init( &s_check );
  255. TEST_ASSERT( mbedtls_ecp_group_load( &grp, id ) == 0 );
  256. TEST_ASSERT( mbedtls_ecp_point_read_string( &Q, 16, xQ_str, yQ_str ) == 0 );
  257. TEST_ASSERT( mbedtls_mpi_read_string( &d, 16, d_str ) == 0 );
  258. TEST_ASSERT( mbedtls_mpi_read_string( &r_check, 16, r_str ) == 0 );
  259. TEST_ASSERT( mbedtls_mpi_read_string( &s_check, 16, s_str ) == 0 );
  260. rnd_info.buf = rnd_buf->x;
  261. rnd_info.length = rnd_buf->len;
  262. /* Fix rnd_buf->x by shifting it left if necessary */
  263. if( grp.nbits % 8 != 0 )
  264. {
  265. unsigned char shift = 8 - ( grp.nbits % 8 );
  266. size_t i;
  267. for( i = 0; i < rnd_info.length - 1; i++ )
  268. rnd_buf->x[i] = rnd_buf->x[i] << shift | rnd_buf->x[i+1] >> ( 8 - shift );
  269. rnd_buf->x[rnd_info.length-1] <<= shift;
  270. }
  271. TEST_ASSERT( mbedtls_ecdsa_sign( &grp, &r, &s, &d, hash->x, hash->len,
  272. rnd_buffer_rand, &rnd_info ) == result );
  273. if ( result == 0)
  274. {
  275. TEST_ASSERT( mbedtls_mpi_cmp_mpi( &r, &r_check ) == 0 );
  276. TEST_ASSERT( mbedtls_mpi_cmp_mpi( &s, &s_check ) == 0 );
  277. TEST_ASSERT( mbedtls_ecdsa_verify( &grp, hash->x, hash->len, &Q, &r_check, &s_check ) == 0 );
  278. TEST_ASSERT( mbedtls_mpi_sub_int( &r, &r, 1 ) == 0 );
  279. TEST_ASSERT( mbedtls_mpi_add_int( &s, &s, 1 ) == 0 );
  280. TEST_ASSERT( mbedtls_ecdsa_verify( &grp, hash->x, hash->len,
  281. &Q, &r, &s_check ) == MBEDTLS_ERR_ECP_VERIFY_FAILED );
  282. TEST_ASSERT( mbedtls_ecdsa_verify( &grp, hash->x, hash->len,
  283. &Q, &r_check, &s ) == MBEDTLS_ERR_ECP_VERIFY_FAILED );
  284. TEST_ASSERT( mbedtls_ecdsa_verify( &grp, hash->x, hash->len,
  285. &grp.G, &r_check, &s_check ) == MBEDTLS_ERR_ECP_VERIFY_FAILED );
  286. }
  287. exit:
  288. mbedtls_ecp_group_free( &grp );
  289. mbedtls_ecp_point_free( &Q );
  290. mbedtls_mpi_free( &d ); mbedtls_mpi_free( &r ); mbedtls_mpi_free( &s );
  291. mbedtls_mpi_free( &r_check ); mbedtls_mpi_free( &s_check );
  292. }
  293. /* END_CASE */
  294. /* BEGIN_CASE depends_on:MBEDTLS_ECDSA_DETERMINISTIC */
  295. void ecdsa_det_test_vectors( int id, char * d_str, int md_alg, char * msg,
  296. char * r_str, char * s_str )
  297. {
  298. mbedtls_ecp_group grp;
  299. mbedtls_mpi d, r, s, r_check, s_check;
  300. unsigned char hash[MBEDTLS_MD_MAX_SIZE];
  301. size_t hlen;
  302. const mbedtls_md_info_t *md_info;
  303. mbedtls_ecp_group_init( &grp );
  304. mbedtls_mpi_init( &d ); mbedtls_mpi_init( &r ); mbedtls_mpi_init( &s );
  305. mbedtls_mpi_init( &r_check ); mbedtls_mpi_init( &s_check );
  306. memset( hash, 0, sizeof( hash ) );
  307. TEST_ASSERT( mbedtls_ecp_group_load( &grp, id ) == 0 );
  308. TEST_ASSERT( mbedtls_mpi_read_string( &d, 16, d_str ) == 0 );
  309. TEST_ASSERT( mbedtls_mpi_read_string( &r_check, 16, r_str ) == 0 );
  310. TEST_ASSERT( mbedtls_mpi_read_string( &s_check, 16, s_str ) == 0 );
  311. md_info = mbedtls_md_info_from_type( md_alg );
  312. TEST_ASSERT( md_info != NULL );
  313. hlen = mbedtls_md_get_size( md_info );
  314. TEST_ASSERT( mbedtls_md( md_info, (const unsigned char *) msg,
  315. strlen( msg ), hash ) == 0 );
  316. TEST_ASSERT( mbedtls_ecdsa_sign_det( &grp, &r, &s, &d, hash, hlen, md_alg ) == 0 );
  317. TEST_ASSERT( mbedtls_mpi_cmp_mpi( &r, &r_check ) == 0 );
  318. TEST_ASSERT( mbedtls_mpi_cmp_mpi( &s, &s_check ) == 0 );
  319. mbedtls_mpi_free( &r ); mbedtls_mpi_free( &s );
  320. mbedtls_mpi_init( &r ); mbedtls_mpi_init( &s );
  321. TEST_ASSERT(
  322. mbedtls_ecdsa_sign_det_ext( &grp, &r, &s, &d, hash, hlen,
  323. md_alg, rnd_std_rand, NULL )
  324. == 0 );
  325. TEST_ASSERT( mbedtls_mpi_cmp_mpi( &r, &r_check ) == 0 );
  326. TEST_ASSERT( mbedtls_mpi_cmp_mpi( &s, &s_check ) == 0 );
  327. exit:
  328. mbedtls_ecp_group_free( &grp );
  329. mbedtls_mpi_free( &d ); mbedtls_mpi_free( &r ); mbedtls_mpi_free( &s );
  330. mbedtls_mpi_free( &r_check ); mbedtls_mpi_free( &s_check );
  331. }
  332. /* END_CASE */
  333. /* BEGIN_CASE depends_on:MBEDTLS_SHA256_C */
  334. void ecdsa_write_read_random( int id )
  335. {
  336. mbedtls_ecdsa_context ctx;
  337. rnd_pseudo_info rnd_info;
  338. unsigned char hash[32];
  339. unsigned char sig[200];
  340. size_t sig_len, i;
  341. mbedtls_ecdsa_init( &ctx );
  342. memset( &rnd_info, 0x00, sizeof( rnd_pseudo_info ) );
  343. memset( hash, 0, sizeof( hash ) );
  344. memset( sig, 0x2a, sizeof( sig ) );
  345. /* prepare material for signature */
  346. TEST_ASSERT( rnd_pseudo_rand( &rnd_info, hash, sizeof( hash ) ) == 0 );
  347. /* generate signing key */
  348. TEST_ASSERT( mbedtls_ecdsa_genkey( &ctx, id, &rnd_pseudo_rand, &rnd_info ) == 0 );
  349. /* generate and write signature, then read and verify it */
  350. TEST_ASSERT( mbedtls_ecdsa_write_signature( &ctx, MBEDTLS_MD_SHA256,
  351. hash, sizeof( hash ),
  352. sig, &sig_len, &rnd_pseudo_rand, &rnd_info ) == 0 );
  353. TEST_ASSERT( mbedtls_ecdsa_read_signature( &ctx, hash, sizeof( hash ),
  354. sig, sig_len ) == 0 );
  355. /* check we didn't write past the announced length */
  356. for( i = sig_len; i < sizeof( sig ); i++ )
  357. TEST_ASSERT( sig[i] == 0x2a );
  358. /* try verification with invalid length */
  359. TEST_ASSERT( mbedtls_ecdsa_read_signature( &ctx, hash, sizeof( hash ),
  360. sig, sig_len - 1 ) != 0 );
  361. TEST_ASSERT( mbedtls_ecdsa_read_signature( &ctx, hash, sizeof( hash ),
  362. sig, sig_len + 1 ) != 0 );
  363. /* try invalid sequence tag */
  364. sig[0]++;
  365. TEST_ASSERT( mbedtls_ecdsa_read_signature( &ctx, hash, sizeof( hash ),
  366. sig, sig_len ) != 0 );
  367. sig[0]--;
  368. /* try modifying r */
  369. sig[10]++;
  370. TEST_ASSERT( mbedtls_ecdsa_read_signature( &ctx, hash, sizeof( hash ),
  371. sig, sig_len ) == MBEDTLS_ERR_ECP_VERIFY_FAILED );
  372. sig[10]--;
  373. /* try modifying s */
  374. sig[sig_len - 1]++;
  375. TEST_ASSERT( mbedtls_ecdsa_read_signature( &ctx, hash, sizeof( hash ),
  376. sig, sig_len ) == MBEDTLS_ERR_ECP_VERIFY_FAILED );
  377. sig[sig_len - 1]--;
  378. exit:
  379. mbedtls_ecdsa_free( &ctx );
  380. }
  381. /* END_CASE */
  382. /* BEGIN_CASE depends_on:MBEDTLS_ECP_RESTARTABLE */
  383. void ecdsa_read_restart( int id, data_t *pk, data_t *hash, data_t *sig,
  384. int max_ops, int min_restart, int max_restart )
  385. {
  386. mbedtls_ecdsa_context ctx;
  387. mbedtls_ecdsa_restart_ctx rs_ctx;
  388. int ret, cnt_restart;
  389. mbedtls_ecdsa_init( &ctx );
  390. mbedtls_ecdsa_restart_init( &rs_ctx );
  391. TEST_ASSERT( mbedtls_ecp_group_load( &ctx.grp, id ) == 0 );
  392. TEST_ASSERT( mbedtls_ecp_point_read_binary( &ctx.grp, &ctx.Q,
  393. pk->x, pk->len ) == 0 );
  394. mbedtls_ecp_set_max_ops( max_ops );
  395. cnt_restart = 0;
  396. do {
  397. ret = mbedtls_ecdsa_read_signature_restartable( &ctx,
  398. hash->x, hash->len, sig->x, sig->len, &rs_ctx );
  399. } while( ret == MBEDTLS_ERR_ECP_IN_PROGRESS && ++cnt_restart );
  400. TEST_ASSERT( ret == 0 );
  401. TEST_ASSERT( cnt_restart >= min_restart );
  402. TEST_ASSERT( cnt_restart <= max_restart );
  403. /* try modifying r */
  404. TEST_ASSERT( sig->len > 10 );
  405. sig->x[10]++;
  406. do {
  407. ret = mbedtls_ecdsa_read_signature_restartable( &ctx,
  408. hash->x, hash->len, sig->x, sig->len, &rs_ctx );
  409. } while( ret == MBEDTLS_ERR_ECP_IN_PROGRESS );
  410. TEST_ASSERT( ret == MBEDTLS_ERR_ECP_VERIFY_FAILED );
  411. sig->x[10]--;
  412. /* try modifying s */
  413. sig->x[sig->len - 1]++;
  414. do {
  415. ret = mbedtls_ecdsa_read_signature_restartable( &ctx,
  416. hash->x, hash->len, sig->x, sig->len, &rs_ctx );
  417. } while( ret == MBEDTLS_ERR_ECP_IN_PROGRESS );
  418. TEST_ASSERT( ret == MBEDTLS_ERR_ECP_VERIFY_FAILED );
  419. sig->x[sig->len - 1]--;
  420. /* Do we leak memory when aborting an operation?
  421. * This test only makes sense when we actually restart */
  422. if( min_restart > 0 )
  423. {
  424. ret = mbedtls_ecdsa_read_signature_restartable( &ctx,
  425. hash->x, hash->len, sig->x, sig->len, &rs_ctx );
  426. TEST_ASSERT( ret == MBEDTLS_ERR_ECP_IN_PROGRESS );
  427. }
  428. exit:
  429. mbedtls_ecdsa_free( &ctx );
  430. mbedtls_ecdsa_restart_free( &rs_ctx );
  431. }
  432. /* END_CASE */
  433. /* BEGIN_CASE depends_on:MBEDTLS_ECP_RESTARTABLE:MBEDTLS_ECDSA_DETERMINISTIC */
  434. void ecdsa_write_restart( int id, char *d_str, int md_alg,
  435. char *msg, data_t *sig_check,
  436. int max_ops, int min_restart, int max_restart )
  437. {
  438. int ret, cnt_restart;
  439. mbedtls_ecdsa_restart_ctx rs_ctx;
  440. mbedtls_ecdsa_context ctx;
  441. unsigned char hash[MBEDTLS_MD_MAX_SIZE];
  442. unsigned char sig[MBEDTLS_ECDSA_MAX_LEN];
  443. size_t hlen, slen;
  444. const mbedtls_md_info_t *md_info;
  445. mbedtls_ecdsa_restart_init( &rs_ctx );
  446. mbedtls_ecdsa_init( &ctx );
  447. memset( hash, 0, sizeof( hash ) );
  448. memset( sig, 0, sizeof( sig ) );
  449. TEST_ASSERT( mbedtls_ecp_group_load( &ctx.grp, id ) == 0 );
  450. TEST_ASSERT( mbedtls_mpi_read_string( &ctx.d, 16, d_str ) == 0 );
  451. md_info = mbedtls_md_info_from_type( md_alg );
  452. TEST_ASSERT( md_info != NULL );
  453. hlen = mbedtls_md_get_size( md_info );
  454. TEST_ASSERT( mbedtls_md( md_info,
  455. (const unsigned char *) msg, strlen( msg ),
  456. hash ) == 0 );
  457. mbedtls_ecp_set_max_ops( max_ops );
  458. slen = sizeof( sig );
  459. cnt_restart = 0;
  460. do {
  461. ret = mbedtls_ecdsa_write_signature_restartable( &ctx,
  462. md_alg, hash, hlen, sig, &slen, NULL, NULL, &rs_ctx );
  463. } while( ret == MBEDTLS_ERR_ECP_IN_PROGRESS && ++cnt_restart );
  464. TEST_ASSERT( ret == 0 );
  465. TEST_ASSERT( slen == sig_check->len );
  466. TEST_ASSERT( memcmp( sig, sig_check->x, slen ) == 0 );
  467. TEST_ASSERT( cnt_restart >= min_restart );
  468. TEST_ASSERT( cnt_restart <= max_restart );
  469. /* Do we leak memory when aborting an operation?
  470. * This test only makes sense when we actually restart */
  471. if( min_restart > 0 )
  472. {
  473. ret = mbedtls_ecdsa_write_signature_restartable( &ctx,
  474. md_alg, hash, hlen, sig, &slen, NULL, NULL, &rs_ctx );
  475. TEST_ASSERT( ret == MBEDTLS_ERR_ECP_IN_PROGRESS );
  476. }
  477. exit:
  478. mbedtls_ecdsa_restart_free( &rs_ctx );
  479. mbedtls_ecdsa_free( &ctx );
  480. }
  481. /* END_CASE */