test_suite_ecp.function 48 KB

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  1. /* BEGIN_HEADER */
  2. #include "mbedtls/ecp.h"
  3. #include "ecp_invasive.h"
  4. #include "mbedtls/ecdsa.h"
  5. #include "mbedtls/ecdh.h"
  6. #include "bignum_core.h"
  7. #include "ecp_invasive.h"
  8. #include "bignum_mod_raw_invasive.h"
  9. #if defined(MBEDTLS_TEST_HOOKS) && \
  10. defined(MBEDTLS_ECP_DP_SECP384R1_ENABLED)
  11. #define HAVE_FIX_NEGATIVE
  12. #endif
  13. #define ECP_PF_UNKNOWN -1
  14. #define ECP_PT_RESET(x) \
  15. mbedtls_ecp_point_free(x); \
  16. mbedtls_ecp_point_init(x);
  17. /* Auxiliary function to compare two mbedtls_ecp_group objects. */
  18. inline static int mbedtls_ecp_group_cmp(mbedtls_ecp_group *grp1,
  19. mbedtls_ecp_group *grp2)
  20. {
  21. if (mbedtls_mpi_cmp_mpi(&grp1->P, &grp2->P) != 0) {
  22. return 1;
  23. }
  24. if (mbedtls_mpi_cmp_mpi(&grp1->A, &grp2->A) != 0) {
  25. return 1;
  26. }
  27. if (mbedtls_mpi_cmp_mpi(&grp1->B, &grp2->B) != 0) {
  28. return 1;
  29. }
  30. if (mbedtls_mpi_cmp_mpi(&grp1->N, &grp2->N) != 0) {
  31. return 1;
  32. }
  33. if (mbedtls_ecp_point_cmp(&grp1->G, &grp2->G) != 0) {
  34. return 1;
  35. }
  36. if (grp1->id != grp2->id) {
  37. return 1;
  38. }
  39. if (grp1->pbits != grp2->pbits) {
  40. return 1;
  41. }
  42. if (grp1->nbits != grp2->nbits) {
  43. return 1;
  44. }
  45. if (grp1->h != grp2->h) {
  46. return 1;
  47. }
  48. if (grp1->modp != grp2->modp) {
  49. return 1;
  50. }
  51. if (grp1->t_pre != grp2->t_pre) {
  52. return 1;
  53. }
  54. if (grp1->t_post != grp2->t_post) {
  55. return 1;
  56. }
  57. if (grp1->t_data != grp2->t_data) {
  58. return 1;
  59. }
  60. if (grp1->T_size != grp2->T_size) {
  61. return 1;
  62. }
  63. if (grp1->T != grp2->T) {
  64. return 1;
  65. }
  66. return 0;
  67. }
  68. /* END_HEADER */
  69. /* BEGIN_DEPENDENCIES
  70. * depends_on:MBEDTLS_ECP_C
  71. * END_DEPENDENCIES
  72. */
  73. /* BEGIN_CASE */
  74. void ecp_invalid_param()
  75. {
  76. mbedtls_ecp_group grp;
  77. mbedtls_ecp_point P;
  78. int invalid_fmt = 42;
  79. size_t olen;
  80. unsigned char buf[42] = { 0 };
  81. mbedtls_ecp_group_init(&grp);
  82. mbedtls_ecp_point_init(&P);
  83. TEST_EQUAL(MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  84. mbedtls_ecp_point_write_binary(&grp, &P,
  85. invalid_fmt,
  86. &olen,
  87. buf, sizeof(buf)));
  88. TEST_EQUAL(MBEDTLS_ERR_ECP_BAD_INPUT_DATA,
  89. mbedtls_ecp_tls_write_point(&grp, &P,
  90. invalid_fmt,
  91. &olen,
  92. buf,
  93. sizeof(buf)));
  94. exit:
  95. return;
  96. }
  97. /* END_CASE */
  98. /* BEGIN_CASE */
  99. void mbedtls_ecp_curve_info(int id, int tls_id, int size, char *name)
  100. {
  101. const mbedtls_ecp_curve_info *by_id, *by_tls, *by_name;
  102. by_id = mbedtls_ecp_curve_info_from_grp_id(id);
  103. by_tls = mbedtls_ecp_curve_info_from_tls_id(tls_id);
  104. by_name = mbedtls_ecp_curve_info_from_name(name);
  105. TEST_ASSERT(by_id != NULL);
  106. TEST_ASSERT(by_tls != NULL);
  107. TEST_ASSERT(by_name != NULL);
  108. TEST_ASSERT(by_id == by_tls);
  109. TEST_ASSERT(by_id == by_name);
  110. TEST_ASSERT(by_id->bit_size == size);
  111. TEST_ASSERT(size <= MBEDTLS_ECP_MAX_BITS);
  112. TEST_ASSERT(size <= MBEDTLS_ECP_MAX_BYTES * 8);
  113. }
  114. /* END_CASE */
  115. /* BEGIN_CASE */
  116. void ecp_check_pub(int grp_id, char *x_hex, char *y_hex, char *z_hex,
  117. int ret)
  118. {
  119. mbedtls_ecp_group grp;
  120. mbedtls_ecp_point P;
  121. mbedtls_ecp_group_init(&grp);
  122. mbedtls_ecp_point_init(&P);
  123. TEST_ASSERT(mbedtls_ecp_group_load(&grp, grp_id) == 0);
  124. TEST_ASSERT(mbedtls_test_read_mpi(&P.X, x_hex) == 0);
  125. TEST_ASSERT(mbedtls_test_read_mpi(&P.Y, y_hex) == 0);
  126. TEST_ASSERT(mbedtls_test_read_mpi(&P.Z, z_hex) == 0);
  127. TEST_ASSERT(mbedtls_ecp_check_pubkey(&grp, &P) == ret);
  128. exit:
  129. mbedtls_ecp_group_free(&grp);
  130. mbedtls_ecp_point_free(&P);
  131. }
  132. /* END_CASE */
  133. /* BEGIN_CASE depends_on:MBEDTLS_ECP_RESTARTABLE */
  134. void ecp_test_vect_restart(int id,
  135. char *dA_str, char *xA_str, char *yA_str,
  136. char *dB_str, char *xZ_str, char *yZ_str,
  137. int max_ops, int min_restarts, int max_restarts)
  138. {
  139. /*
  140. * Test for early restart. Based on test vectors like ecp_test_vect(),
  141. * but for the sake of simplicity only does half of each side. It's
  142. * important to test both base point and random point, though, as memory
  143. * management is different in each case.
  144. *
  145. * Don't try using too precise bounds for restarts as the exact number
  146. * will depend on settings such as MBEDTLS_ECP_FIXED_POINT_OPTIM and
  147. * MBEDTLS_ECP_WINDOW_SIZE, as well as implementation details that may
  148. * change in the future. A factor 2 is a minimum safety margin.
  149. *
  150. * For reference, with mbed TLS 2.4 and default settings, for P-256:
  151. * - Random point mult: ~3250M
  152. * - Cold base point mult: ~3300M
  153. * - Hot base point mult: ~1100M
  154. * With MBEDTLS_ECP_WINDOW_SIZE set to 2 (minimum):
  155. * - Random point mult: ~3850M
  156. */
  157. mbedtls_ecp_restart_ctx ctx;
  158. mbedtls_ecp_group grp;
  159. mbedtls_ecp_point R, P;
  160. mbedtls_mpi dA, xA, yA, dB, xZ, yZ;
  161. int cnt_restarts;
  162. int ret;
  163. mbedtls_test_rnd_pseudo_info rnd_info;
  164. mbedtls_ecp_restart_init(&ctx);
  165. mbedtls_ecp_group_init(&grp);
  166. mbedtls_ecp_point_init(&R); mbedtls_ecp_point_init(&P);
  167. mbedtls_mpi_init(&dA); mbedtls_mpi_init(&xA); mbedtls_mpi_init(&yA);
  168. mbedtls_mpi_init(&dB); mbedtls_mpi_init(&xZ); mbedtls_mpi_init(&yZ);
  169. memset(&rnd_info, 0x00, sizeof(mbedtls_test_rnd_pseudo_info));
  170. TEST_ASSERT(mbedtls_ecp_group_load(&grp, id) == 0);
  171. TEST_ASSERT(mbedtls_test_read_mpi(&dA, dA_str) == 0);
  172. TEST_ASSERT(mbedtls_test_read_mpi(&xA, xA_str) == 0);
  173. TEST_ASSERT(mbedtls_test_read_mpi(&yA, yA_str) == 0);
  174. TEST_ASSERT(mbedtls_test_read_mpi(&dB, dB_str) == 0);
  175. TEST_ASSERT(mbedtls_test_read_mpi(&xZ, xZ_str) == 0);
  176. TEST_ASSERT(mbedtls_test_read_mpi(&yZ, yZ_str) == 0);
  177. mbedtls_ecp_set_max_ops((unsigned) max_ops);
  178. /* Base point case */
  179. cnt_restarts = 0;
  180. do {
  181. ECP_PT_RESET(&R);
  182. ret = mbedtls_ecp_mul_restartable(&grp, &R, &dA, &grp.G,
  183. &mbedtls_test_rnd_pseudo_rand, &rnd_info, &ctx);
  184. } while (ret == MBEDTLS_ERR_ECP_IN_PROGRESS && ++cnt_restarts);
  185. TEST_ASSERT(ret == 0);
  186. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&R.X, &xA) == 0);
  187. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&R.Y, &yA) == 0);
  188. TEST_ASSERT(cnt_restarts >= min_restarts);
  189. TEST_ASSERT(cnt_restarts <= max_restarts);
  190. /* Non-base point case */
  191. mbedtls_ecp_copy(&P, &R);
  192. cnt_restarts = 0;
  193. do {
  194. ECP_PT_RESET(&R);
  195. ret = mbedtls_ecp_mul_restartable(&grp, &R, &dB, &P,
  196. &mbedtls_test_rnd_pseudo_rand, &rnd_info, &ctx);
  197. } while (ret == MBEDTLS_ERR_ECP_IN_PROGRESS && ++cnt_restarts);
  198. TEST_ASSERT(ret == 0);
  199. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&R.X, &xZ) == 0);
  200. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&R.Y, &yZ) == 0);
  201. TEST_ASSERT(cnt_restarts >= min_restarts);
  202. TEST_ASSERT(cnt_restarts <= max_restarts);
  203. /* Do we leak memory when aborting an operation?
  204. * This test only makes sense when we actually restart */
  205. if (min_restarts > 0) {
  206. ret = mbedtls_ecp_mul_restartable(&grp, &R, &dB, &P,
  207. &mbedtls_test_rnd_pseudo_rand, &rnd_info, &ctx);
  208. TEST_ASSERT(ret == MBEDTLS_ERR_ECP_IN_PROGRESS);
  209. }
  210. exit:
  211. mbedtls_ecp_restart_free(&ctx);
  212. mbedtls_ecp_group_free(&grp);
  213. mbedtls_ecp_point_free(&R); mbedtls_ecp_point_free(&P);
  214. mbedtls_mpi_free(&dA); mbedtls_mpi_free(&xA); mbedtls_mpi_free(&yA);
  215. mbedtls_mpi_free(&dB); mbedtls_mpi_free(&xZ); mbedtls_mpi_free(&yZ);
  216. }
  217. /* END_CASE */
  218. /* BEGIN_CASE depends_on:MBEDTLS_ECP_RESTARTABLE:MBEDTLS_ECP_SHORT_WEIERSTRASS_ENABLED */
  219. void ecp_muladd_restart(int id, char *xR_str, char *yR_str,
  220. char *u1_str, char *u2_str,
  221. char *xQ_str, char *yQ_str,
  222. int max_ops, int min_restarts, int max_restarts)
  223. {
  224. /*
  225. * Compute R = u1 * G + u2 * Q
  226. * (test vectors mostly taken from ECDSA intermediate results)
  227. *
  228. * See comments at the top of ecp_test_vect_restart()
  229. */
  230. mbedtls_ecp_restart_ctx ctx;
  231. mbedtls_ecp_group grp;
  232. mbedtls_ecp_point R, Q;
  233. mbedtls_mpi u1, u2, xR, yR;
  234. int cnt_restarts;
  235. int ret;
  236. mbedtls_ecp_restart_init(&ctx);
  237. mbedtls_ecp_group_init(&grp);
  238. mbedtls_ecp_point_init(&R);
  239. mbedtls_ecp_point_init(&Q);
  240. mbedtls_mpi_init(&u1); mbedtls_mpi_init(&u2);
  241. mbedtls_mpi_init(&xR); mbedtls_mpi_init(&yR);
  242. TEST_ASSERT(mbedtls_ecp_group_load(&grp, id) == 0);
  243. TEST_ASSERT(mbedtls_test_read_mpi(&u1, u1_str) == 0);
  244. TEST_ASSERT(mbedtls_test_read_mpi(&u2, u2_str) == 0);
  245. TEST_ASSERT(mbedtls_test_read_mpi(&xR, xR_str) == 0);
  246. TEST_ASSERT(mbedtls_test_read_mpi(&yR, yR_str) == 0);
  247. TEST_ASSERT(mbedtls_test_read_mpi(&Q.X, xQ_str) == 0);
  248. TEST_ASSERT(mbedtls_test_read_mpi(&Q.Y, yQ_str) == 0);
  249. TEST_ASSERT(mbedtls_mpi_lset(&Q.Z, 1) == 0);
  250. mbedtls_ecp_set_max_ops((unsigned) max_ops);
  251. cnt_restarts = 0;
  252. do {
  253. ECP_PT_RESET(&R);
  254. ret = mbedtls_ecp_muladd_restartable(&grp, &R,
  255. &u1, &grp.G, &u2, &Q, &ctx);
  256. } while (ret == MBEDTLS_ERR_ECP_IN_PROGRESS && ++cnt_restarts);
  257. TEST_ASSERT(ret == 0);
  258. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&R.X, &xR) == 0);
  259. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&R.Y, &yR) == 0);
  260. TEST_ASSERT(cnt_restarts >= min_restarts);
  261. TEST_ASSERT(cnt_restarts <= max_restarts);
  262. /* Do we leak memory when aborting an operation?
  263. * This test only makes sense when we actually restart */
  264. if (min_restarts > 0) {
  265. ret = mbedtls_ecp_muladd_restartable(&grp, &R,
  266. &u1, &grp.G, &u2, &Q, &ctx);
  267. TEST_ASSERT(ret == MBEDTLS_ERR_ECP_IN_PROGRESS);
  268. }
  269. exit:
  270. mbedtls_ecp_restart_free(&ctx);
  271. mbedtls_ecp_group_free(&grp);
  272. mbedtls_ecp_point_free(&R);
  273. mbedtls_ecp_point_free(&Q);
  274. mbedtls_mpi_free(&u1); mbedtls_mpi_free(&u2);
  275. mbedtls_mpi_free(&xR); mbedtls_mpi_free(&yR);
  276. }
  277. /* END_CASE */
  278. /* BEGIN_CASE */
  279. void ecp_test_vect(int id, char *dA_str, char *xA_str, char *yA_str,
  280. char *dB_str, char *xB_str, char *yB_str,
  281. char *xZ_str, char *yZ_str)
  282. {
  283. mbedtls_ecp_group grp;
  284. mbedtls_ecp_point R;
  285. mbedtls_mpi dA, xA, yA, dB, xB, yB, xZ, yZ;
  286. mbedtls_test_rnd_pseudo_info rnd_info;
  287. mbedtls_ecp_group_init(&grp); mbedtls_ecp_point_init(&R);
  288. mbedtls_mpi_init(&dA); mbedtls_mpi_init(&xA); mbedtls_mpi_init(&yA); mbedtls_mpi_init(&dB);
  289. mbedtls_mpi_init(&xB); mbedtls_mpi_init(&yB); mbedtls_mpi_init(&xZ); mbedtls_mpi_init(&yZ);
  290. memset(&rnd_info, 0x00, sizeof(mbedtls_test_rnd_pseudo_info));
  291. TEST_ASSERT(mbedtls_ecp_group_load(&grp, id) == 0);
  292. TEST_ASSERT(mbedtls_ecp_check_pubkey(&grp, &grp.G) == 0);
  293. TEST_ASSERT(mbedtls_test_read_mpi(&dA, dA_str) == 0);
  294. TEST_ASSERT(mbedtls_test_read_mpi(&xA, xA_str) == 0);
  295. TEST_ASSERT(mbedtls_test_read_mpi(&yA, yA_str) == 0);
  296. TEST_ASSERT(mbedtls_test_read_mpi(&dB, dB_str) == 0);
  297. TEST_ASSERT(mbedtls_test_read_mpi(&xB, xB_str) == 0);
  298. TEST_ASSERT(mbedtls_test_read_mpi(&yB, yB_str) == 0);
  299. TEST_ASSERT(mbedtls_test_read_mpi(&xZ, xZ_str) == 0);
  300. TEST_ASSERT(mbedtls_test_read_mpi(&yZ, yZ_str) == 0);
  301. TEST_ASSERT(mbedtls_ecp_mul(&grp, &R, &dA, &grp.G,
  302. &mbedtls_test_rnd_pseudo_rand, &rnd_info) == 0);
  303. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&R.X, &xA) == 0);
  304. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&R.Y, &yA) == 0);
  305. TEST_ASSERT(mbedtls_ecp_check_pubkey(&grp, &R) == 0);
  306. TEST_ASSERT(mbedtls_ecp_mul(&grp, &R, &dB, &R,
  307. &mbedtls_test_rnd_pseudo_rand, &rnd_info) == 0);
  308. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&R.X, &xZ) == 0);
  309. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&R.Y, &yZ) == 0);
  310. TEST_ASSERT(mbedtls_ecp_check_pubkey(&grp, &R) == 0);
  311. TEST_ASSERT(mbedtls_ecp_mul(&grp, &R, &dB, &grp.G,
  312. &mbedtls_test_rnd_pseudo_rand, &rnd_info) == 0);
  313. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&R.X, &xB) == 0);
  314. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&R.Y, &yB) == 0);
  315. TEST_ASSERT(mbedtls_ecp_check_pubkey(&grp, &R) == 0);
  316. TEST_ASSERT(mbedtls_ecp_mul(&grp, &R, &dA, &R,
  317. &mbedtls_test_rnd_pseudo_rand, &rnd_info) == 0);
  318. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&R.X, &xZ) == 0);
  319. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&R.Y, &yZ) == 0);
  320. TEST_ASSERT(mbedtls_ecp_check_pubkey(&grp, &R) == 0);
  321. exit:
  322. mbedtls_ecp_group_free(&grp); mbedtls_ecp_point_free(&R);
  323. mbedtls_mpi_free(&dA); mbedtls_mpi_free(&xA); mbedtls_mpi_free(&yA); mbedtls_mpi_free(&dB);
  324. mbedtls_mpi_free(&xB); mbedtls_mpi_free(&yB); mbedtls_mpi_free(&xZ); mbedtls_mpi_free(&yZ);
  325. }
  326. /* END_CASE */
  327. /* BEGIN_CASE */
  328. void ecp_test_vec_x(int id, char *dA_hex, char *xA_hex, char *dB_hex,
  329. char *xB_hex, char *xS_hex)
  330. {
  331. mbedtls_ecp_group grp;
  332. mbedtls_ecp_point R;
  333. mbedtls_mpi dA, xA, dB, xB, xS;
  334. mbedtls_test_rnd_pseudo_info rnd_info;
  335. mbedtls_ecp_group_init(&grp); mbedtls_ecp_point_init(&R);
  336. mbedtls_mpi_init(&dA); mbedtls_mpi_init(&xA);
  337. mbedtls_mpi_init(&dB); mbedtls_mpi_init(&xB);
  338. mbedtls_mpi_init(&xS);
  339. memset(&rnd_info, 0x00, sizeof(mbedtls_test_rnd_pseudo_info));
  340. TEST_ASSERT(mbedtls_ecp_group_load(&grp, id) == 0);
  341. TEST_ASSERT(mbedtls_ecp_check_pubkey(&grp, &grp.G) == 0);
  342. TEST_ASSERT(mbedtls_test_read_mpi(&dA, dA_hex) == 0);
  343. TEST_ASSERT(mbedtls_test_read_mpi(&dB, dB_hex) == 0);
  344. TEST_ASSERT(mbedtls_test_read_mpi(&xA, xA_hex) == 0);
  345. TEST_ASSERT(mbedtls_test_read_mpi(&xB, xB_hex) == 0);
  346. TEST_ASSERT(mbedtls_test_read_mpi(&xS, xS_hex) == 0);
  347. TEST_ASSERT(mbedtls_ecp_mul(&grp, &R, &dA, &grp.G,
  348. &mbedtls_test_rnd_pseudo_rand, &rnd_info) == 0);
  349. TEST_ASSERT(mbedtls_ecp_check_pubkey(&grp, &R) == 0);
  350. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&R.X, &xA) == 0);
  351. TEST_ASSERT(mbedtls_ecp_mul(&grp, &R, &dB, &R,
  352. &mbedtls_test_rnd_pseudo_rand, &rnd_info) == 0);
  353. TEST_ASSERT(mbedtls_ecp_check_pubkey(&grp, &R) == 0);
  354. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&R.X, &xS) == 0);
  355. TEST_ASSERT(mbedtls_ecp_mul(&grp, &R, &dB, &grp.G,
  356. &mbedtls_test_rnd_pseudo_rand, &rnd_info) == 0);
  357. TEST_ASSERT(mbedtls_ecp_check_pubkey(&grp, &R) == 0);
  358. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&R.X, &xB) == 0);
  359. TEST_ASSERT(mbedtls_ecp_mul(&grp, &R, &dA, &R,
  360. &mbedtls_test_rnd_pseudo_rand, &rnd_info) == 0);
  361. TEST_ASSERT(mbedtls_ecp_check_pubkey(&grp, &R) == 0);
  362. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&R.X, &xS) == 0);
  363. exit:
  364. mbedtls_ecp_group_free(&grp); mbedtls_ecp_point_free(&R);
  365. mbedtls_mpi_free(&dA); mbedtls_mpi_free(&xA);
  366. mbedtls_mpi_free(&dB); mbedtls_mpi_free(&xB);
  367. mbedtls_mpi_free(&xS);
  368. }
  369. /* END_CASE */
  370. /* BEGIN_CASE */
  371. void ecp_test_mul(int id, data_t *n_hex,
  372. data_t *Px_hex, data_t *Py_hex, data_t *Pz_hex,
  373. data_t *nPx_hex, data_t *nPy_hex, data_t *nPz_hex,
  374. int expected_ret)
  375. {
  376. mbedtls_ecp_group grp;
  377. mbedtls_ecp_point P, nP, R;
  378. mbedtls_mpi n;
  379. mbedtls_test_rnd_pseudo_info rnd_info;
  380. mbedtls_ecp_group_init(&grp); mbedtls_ecp_point_init(&R);
  381. mbedtls_ecp_point_init(&P); mbedtls_ecp_point_init(&nP);
  382. mbedtls_mpi_init(&n);
  383. memset(&rnd_info, 0x00, sizeof(mbedtls_test_rnd_pseudo_info));
  384. TEST_ASSERT(mbedtls_ecp_group_load(&grp, id) == 0);
  385. TEST_ASSERT(mbedtls_ecp_check_pubkey(&grp, &grp.G) == 0);
  386. TEST_ASSERT(mbedtls_mpi_read_binary(&n, n_hex->x, n_hex->len) == 0);
  387. TEST_ASSERT(mbedtls_mpi_read_binary(&P.X, Px_hex->x, Px_hex->len) == 0);
  388. TEST_ASSERT(mbedtls_mpi_read_binary(&P.Y, Py_hex->x, Py_hex->len) == 0);
  389. TEST_ASSERT(mbedtls_mpi_read_binary(&P.Z, Pz_hex->x, Pz_hex->len) == 0);
  390. TEST_ASSERT(mbedtls_mpi_read_binary(&nP.X, nPx_hex->x, nPx_hex->len)
  391. == 0);
  392. TEST_ASSERT(mbedtls_mpi_read_binary(&nP.Y, nPy_hex->x, nPy_hex->len)
  393. == 0);
  394. TEST_ASSERT(mbedtls_mpi_read_binary(&nP.Z, nPz_hex->x, nPz_hex->len)
  395. == 0);
  396. TEST_ASSERT(mbedtls_ecp_mul(&grp, &R, &n, &P,
  397. &mbedtls_test_rnd_pseudo_rand, &rnd_info)
  398. == expected_ret);
  399. if (expected_ret == 0) {
  400. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&nP.X, &R.X) == 0);
  401. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&nP.Y, &R.Y) == 0);
  402. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&nP.Z, &R.Z) == 0);
  403. }
  404. exit:
  405. mbedtls_ecp_group_free(&grp); mbedtls_ecp_point_free(&R);
  406. mbedtls_ecp_point_free(&P); mbedtls_ecp_point_free(&nP);
  407. mbedtls_mpi_free(&n);
  408. }
  409. /* END_CASE */
  410. /* BEGIN_CASE */
  411. void ecp_test_mul_rng(int id, data_t *d_hex)
  412. {
  413. mbedtls_ecp_group grp;
  414. mbedtls_mpi d;
  415. mbedtls_ecp_point Q;
  416. mbedtls_ecp_group_init(&grp); mbedtls_mpi_init(&d);
  417. mbedtls_ecp_point_init(&Q);
  418. TEST_ASSERT(mbedtls_ecp_group_load(&grp, id) == 0);
  419. TEST_ASSERT(mbedtls_ecp_check_pubkey(&grp, &grp.G) == 0);
  420. TEST_ASSERT(mbedtls_mpi_read_binary(&d, d_hex->x, d_hex->len) == 0);
  421. TEST_ASSERT(mbedtls_ecp_mul(&grp, &Q, &d, &grp.G,
  422. &mbedtls_test_rnd_zero_rand, NULL)
  423. == MBEDTLS_ERR_ECP_RANDOM_FAILED);
  424. exit:
  425. mbedtls_ecp_group_free(&grp); mbedtls_mpi_free(&d);
  426. mbedtls_ecp_point_free(&Q);
  427. }
  428. /* END_CASE */
  429. /* BEGIN_CASE depends_on:MBEDTLS_ECP_SHORT_WEIERSTRASS_ENABLED */
  430. void ecp_muladd(int id,
  431. data_t *u1_bin, data_t *P1_bin,
  432. data_t *u2_bin, data_t *P2_bin,
  433. data_t *expected_result)
  434. {
  435. /* Compute R = u1 * P1 + u2 * P2 */
  436. mbedtls_ecp_group grp;
  437. mbedtls_ecp_point P1, P2, R;
  438. mbedtls_mpi u1, u2;
  439. uint8_t actual_result[MBEDTLS_ECP_MAX_PT_LEN];
  440. size_t len;
  441. mbedtls_ecp_group_init(&grp);
  442. mbedtls_ecp_point_init(&P1);
  443. mbedtls_ecp_point_init(&P2);
  444. mbedtls_ecp_point_init(&R);
  445. mbedtls_mpi_init(&u1);
  446. mbedtls_mpi_init(&u2);
  447. TEST_EQUAL(0, mbedtls_ecp_group_load(&grp, id));
  448. TEST_EQUAL(0, mbedtls_mpi_read_binary(&u1, u1_bin->x, u1_bin->len));
  449. TEST_EQUAL(0, mbedtls_mpi_read_binary(&u2, u2_bin->x, u2_bin->len));
  450. TEST_EQUAL(0, mbedtls_ecp_point_read_binary(&grp, &P1,
  451. P1_bin->x, P1_bin->len));
  452. TEST_EQUAL(0, mbedtls_ecp_point_read_binary(&grp, &P2,
  453. P2_bin->x, P2_bin->len));
  454. TEST_EQUAL(0, mbedtls_ecp_muladd(&grp, &R, &u1, &P1, &u2, &P2));
  455. TEST_EQUAL(0, mbedtls_ecp_point_write_binary(
  456. &grp, &R, MBEDTLS_ECP_PF_UNCOMPRESSED,
  457. &len, actual_result, sizeof(actual_result)));
  458. TEST_ASSERT(len <= MBEDTLS_ECP_MAX_PT_LEN);
  459. ASSERT_COMPARE(expected_result->x, expected_result->len,
  460. actual_result, len);
  461. exit:
  462. mbedtls_ecp_group_free(&grp);
  463. mbedtls_ecp_point_free(&P1);
  464. mbedtls_ecp_point_free(&P2);
  465. mbedtls_ecp_point_free(&R);
  466. mbedtls_mpi_free(&u1);
  467. mbedtls_mpi_free(&u2);
  468. }
  469. /* END_CASE */
  470. /* BEGIN_CASE */
  471. void ecp_fast_mod(int id, char *N_str)
  472. {
  473. mbedtls_ecp_group grp;
  474. mbedtls_mpi N, R;
  475. mbedtls_mpi_init(&N); mbedtls_mpi_init(&R);
  476. mbedtls_ecp_group_init(&grp);
  477. TEST_ASSERT(mbedtls_test_read_mpi(&N, N_str) == 0);
  478. TEST_ASSERT(mbedtls_ecp_group_load(&grp, id) == 0);
  479. TEST_ASSERT(grp.modp != NULL);
  480. /*
  481. * Store correct result before we touch N
  482. */
  483. TEST_ASSERT(mbedtls_mpi_mod_mpi(&R, &N, &grp.P) == 0);
  484. TEST_ASSERT(grp.modp(&N) == 0);
  485. TEST_ASSERT(mbedtls_mpi_bitlen(&N) <= grp.pbits + 3);
  486. /*
  487. * Use mod rather than addition/subtraction in case previous test fails
  488. */
  489. TEST_ASSERT(mbedtls_mpi_mod_mpi(&N, &N, &grp.P) == 0);
  490. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&N, &R) == 0);
  491. exit:
  492. mbedtls_mpi_free(&N); mbedtls_mpi_free(&R);
  493. mbedtls_ecp_group_free(&grp);
  494. }
  495. /* END_CASE */
  496. /* BEGIN_CASE */
  497. void ecp_write_binary(int id, char *x, char *y, char *z, int format,
  498. data_t *out, int blen, int ret)
  499. {
  500. mbedtls_ecp_group grp;
  501. mbedtls_ecp_point P;
  502. unsigned char buf[256];
  503. size_t olen;
  504. memset(buf, 0, sizeof(buf));
  505. mbedtls_ecp_group_init(&grp); mbedtls_ecp_point_init(&P);
  506. TEST_ASSERT(mbedtls_ecp_group_load(&grp, id) == 0);
  507. TEST_ASSERT(mbedtls_test_read_mpi(&P.X, x) == 0);
  508. TEST_ASSERT(mbedtls_test_read_mpi(&P.Y, y) == 0);
  509. TEST_ASSERT(mbedtls_test_read_mpi(&P.Z, z) == 0);
  510. TEST_ASSERT(mbedtls_ecp_point_write_binary(&grp, &P, format,
  511. &olen, buf, blen) == ret);
  512. if (ret == 0) {
  513. TEST_ASSERT(olen <= MBEDTLS_ECP_MAX_PT_LEN);
  514. TEST_ASSERT(mbedtls_test_hexcmp(buf, out->x, olen, out->len) == 0);
  515. }
  516. exit:
  517. mbedtls_ecp_group_free(&grp); mbedtls_ecp_point_free(&P);
  518. }
  519. /* END_CASE */
  520. /* BEGIN_CASE */
  521. void ecp_read_binary(int id, data_t *buf, char *x, char *y, char *z,
  522. int ret)
  523. {
  524. mbedtls_ecp_group grp;
  525. mbedtls_ecp_point P;
  526. mbedtls_mpi X, Y, Z;
  527. mbedtls_ecp_group_init(&grp); mbedtls_ecp_point_init(&P);
  528. mbedtls_mpi_init(&X); mbedtls_mpi_init(&Y); mbedtls_mpi_init(&Z);
  529. TEST_ASSERT(mbedtls_ecp_group_load(&grp, id) == 0);
  530. TEST_ASSERT(mbedtls_test_read_mpi(&X, x) == 0);
  531. TEST_ASSERT(mbedtls_test_read_mpi(&Y, y) == 0);
  532. TEST_ASSERT(mbedtls_test_read_mpi(&Z, z) == 0);
  533. TEST_ASSERT(mbedtls_ecp_point_read_binary(&grp, &P, buf->x, buf->len) == ret);
  534. if (ret == 0) {
  535. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&P.X, &X) == 0);
  536. if (mbedtls_ecp_get_type(&grp) == MBEDTLS_ECP_TYPE_MONTGOMERY) {
  537. TEST_ASSERT(mbedtls_mpi_cmp_int(&Y, 0) == 0);
  538. TEST_ASSERT(P.Y.p == NULL);
  539. TEST_ASSERT(mbedtls_mpi_cmp_int(&Z, 1) == 0);
  540. TEST_ASSERT(mbedtls_mpi_cmp_int(&P.Z, 1) == 0);
  541. } else {
  542. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&P.Y, &Y) == 0);
  543. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&P.Z, &Z) == 0);
  544. if (buf->x[0] == 0x04 &&
  545. /* (reading compressed format supported only for
  546. * Short Weierstrass curves with prime p where p = 3 mod 4) */
  547. id != MBEDTLS_ECP_DP_SECP224R1 &&
  548. id != MBEDTLS_ECP_DP_SECP224K1) {
  549. /* re-encode in compressed format and test read again */
  550. mbedtls_mpi_free(&P.Y);
  551. buf->x[0] = 0x02 + mbedtls_mpi_get_bit(&Y, 0);
  552. TEST_ASSERT(mbedtls_ecp_point_read_binary(&grp, &P, buf->x, buf->len/2+1) == 0);
  553. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&P.Y, &Y) == 0);
  554. }
  555. }
  556. }
  557. exit:
  558. mbedtls_ecp_group_free(&grp); mbedtls_ecp_point_free(&P);
  559. mbedtls_mpi_free(&X); mbedtls_mpi_free(&Y); mbedtls_mpi_free(&Z);
  560. }
  561. /* END_CASE */
  562. /* BEGIN_CASE */
  563. void mbedtls_ecp_tls_read_point(int id, data_t *buf, char *x, char *y,
  564. char *z, int ret)
  565. {
  566. mbedtls_ecp_group grp;
  567. mbedtls_ecp_point P;
  568. mbedtls_mpi X, Y, Z;
  569. const unsigned char *vbuf = buf->x;
  570. mbedtls_ecp_group_init(&grp); mbedtls_ecp_point_init(&P);
  571. mbedtls_mpi_init(&X); mbedtls_mpi_init(&Y); mbedtls_mpi_init(&Z);
  572. TEST_ASSERT(mbedtls_ecp_group_load(&grp, id) == 0);
  573. TEST_ASSERT(mbedtls_test_read_mpi(&X, x) == 0);
  574. TEST_ASSERT(mbedtls_test_read_mpi(&Y, y) == 0);
  575. TEST_ASSERT(mbedtls_test_read_mpi(&Z, z) == 0);
  576. TEST_ASSERT(mbedtls_ecp_tls_read_point(&grp, &P, &vbuf, buf->len) == ret);
  577. if (ret == 0) {
  578. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&P.X, &X) == 0);
  579. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&P.Y, &Y) == 0);
  580. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&P.Z, &Z) == 0);
  581. TEST_ASSERT((uint32_t) (vbuf - buf->x) == buf->len);
  582. }
  583. exit:
  584. mbedtls_ecp_group_free(&grp); mbedtls_ecp_point_free(&P);
  585. mbedtls_mpi_free(&X); mbedtls_mpi_free(&Y); mbedtls_mpi_free(&Z);
  586. }
  587. /* END_CASE */
  588. /* BEGIN_CASE */
  589. void ecp_tls_write_read_point(int id)
  590. {
  591. mbedtls_ecp_group grp;
  592. mbedtls_ecp_point pt;
  593. unsigned char buf[256];
  594. const unsigned char *vbuf;
  595. size_t olen;
  596. mbedtls_ecp_group_init(&grp);
  597. mbedtls_ecp_point_init(&pt);
  598. TEST_ASSERT(mbedtls_ecp_group_load(&grp, id) == 0);
  599. memset(buf, 0x00, sizeof(buf)); vbuf = buf;
  600. TEST_ASSERT(mbedtls_ecp_tls_write_point(&grp, &grp.G,
  601. MBEDTLS_ECP_PF_COMPRESSED, &olen, buf, 256) == 0);
  602. TEST_ASSERT(mbedtls_ecp_tls_read_point(&grp, &pt, &vbuf, olen) == 0);
  603. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&grp.G.X, &pt.X) == 0);
  604. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&grp.G.Y, &pt.Y) == 0);
  605. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&grp.G.Z, &pt.Z) == 0);
  606. TEST_ASSERT(vbuf == buf + olen);
  607. memset(buf, 0x00, sizeof(buf)); vbuf = buf;
  608. TEST_ASSERT(mbedtls_ecp_tls_write_point(&grp, &grp.G,
  609. MBEDTLS_ECP_PF_UNCOMPRESSED, &olen, buf, 256) == 0);
  610. TEST_ASSERT(mbedtls_ecp_tls_read_point(&grp, &pt, &vbuf, olen) == 0);
  611. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&grp.G.X, &pt.X) == 0);
  612. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&grp.G.Y, &pt.Y) == 0);
  613. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&grp.G.Z, &pt.Z) == 0);
  614. TEST_ASSERT(vbuf == buf + olen);
  615. memset(buf, 0x00, sizeof(buf)); vbuf = buf;
  616. TEST_ASSERT(mbedtls_ecp_set_zero(&pt) == 0);
  617. TEST_ASSERT(mbedtls_ecp_tls_write_point(&grp, &pt,
  618. MBEDTLS_ECP_PF_COMPRESSED, &olen, buf, 256) == 0);
  619. TEST_ASSERT(mbedtls_ecp_tls_read_point(&grp, &pt, &vbuf, olen) == 0);
  620. TEST_ASSERT(mbedtls_ecp_is_zero(&pt));
  621. TEST_ASSERT(vbuf == buf + olen);
  622. memset(buf, 0x00, sizeof(buf)); vbuf = buf;
  623. TEST_ASSERT(mbedtls_ecp_set_zero(&pt) == 0);
  624. TEST_ASSERT(mbedtls_ecp_tls_write_point(&grp, &pt,
  625. MBEDTLS_ECP_PF_UNCOMPRESSED, &olen, buf, 256) == 0);
  626. TEST_ASSERT(mbedtls_ecp_tls_read_point(&grp, &pt, &vbuf, olen) == 0);
  627. TEST_ASSERT(mbedtls_ecp_is_zero(&pt));
  628. TEST_ASSERT(vbuf == buf + olen);
  629. exit:
  630. mbedtls_ecp_group_free(&grp);
  631. mbedtls_ecp_point_free(&pt);
  632. }
  633. /* END_CASE */
  634. /* BEGIN_CASE */
  635. void mbedtls_ecp_tls_read_group(data_t *buf, int result, int bits,
  636. int record_len)
  637. {
  638. mbedtls_ecp_group grp;
  639. const unsigned char *vbuf = buf->x;
  640. int ret;
  641. mbedtls_ecp_group_init(&grp);
  642. ret = mbedtls_ecp_tls_read_group(&grp, &vbuf, buf->len);
  643. TEST_ASSERT(ret == result);
  644. if (ret == 0) {
  645. TEST_ASSERT(mbedtls_mpi_bitlen(&grp.P) == (size_t) bits);
  646. TEST_ASSERT(vbuf - buf->x == record_len);
  647. }
  648. exit:
  649. mbedtls_ecp_group_free(&grp);
  650. }
  651. /* END_CASE */
  652. /* BEGIN_CASE */
  653. void ecp_tls_write_read_group(int id)
  654. {
  655. mbedtls_ecp_group grp1, grp2;
  656. unsigned char buf[10];
  657. const unsigned char *vbuf = buf;
  658. size_t len;
  659. int ret;
  660. mbedtls_ecp_group_init(&grp1);
  661. mbedtls_ecp_group_init(&grp2);
  662. memset(buf, 0x00, sizeof(buf));
  663. TEST_ASSERT(mbedtls_ecp_group_load(&grp1, id) == 0);
  664. TEST_ASSERT(mbedtls_ecp_tls_write_group(&grp1, &len, buf, 10) == 0);
  665. ret = mbedtls_ecp_tls_read_group(&grp2, &vbuf, len);
  666. TEST_ASSERT(ret == 0);
  667. if (ret == 0) {
  668. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&grp1.N, &grp2.N) == 0);
  669. TEST_ASSERT(grp1.id == grp2.id);
  670. }
  671. exit:
  672. mbedtls_ecp_group_free(&grp1);
  673. mbedtls_ecp_group_free(&grp2);
  674. }
  675. /* END_CASE */
  676. /* BEGIN_CASE */
  677. void mbedtls_ecp_group_metadata(int id, int bit_size, int crv_type,
  678. char *P, char *A, char *B,
  679. char *G_x, char *G_y, char *N,
  680. int tls_id)
  681. {
  682. mbedtls_ecp_group grp, grp_read, grp_cpy;
  683. const mbedtls_ecp_group_id *g_id;
  684. mbedtls_ecp_group_id read_g_id;
  685. const mbedtls_ecp_curve_info *crv, *crv_tls_id, *crv_name;
  686. mbedtls_mpi exp_P, exp_A, exp_B, exp_G_x, exp_G_y, exp_N;
  687. unsigned char buf[3], ecparameters[3] = { 3, 0, tls_id };
  688. const unsigned char *vbuf = buf;
  689. size_t olen;
  690. mbedtls_ecp_group_init(&grp);
  691. mbedtls_ecp_group_init(&grp_read);
  692. mbedtls_ecp_group_init(&grp_cpy);
  693. mbedtls_mpi_init(&exp_P);
  694. mbedtls_mpi_init(&exp_A);
  695. mbedtls_mpi_init(&exp_B);
  696. mbedtls_mpi_init(&exp_G_x);
  697. mbedtls_mpi_init(&exp_G_y);
  698. mbedtls_mpi_init(&exp_N);
  699. // Read expected parameters
  700. TEST_EQUAL(mbedtls_test_read_mpi(&exp_P, P), 0);
  701. TEST_EQUAL(mbedtls_test_read_mpi(&exp_A, A), 0);
  702. TEST_EQUAL(mbedtls_test_read_mpi(&exp_G_x, G_x), 0);
  703. TEST_EQUAL(mbedtls_test_read_mpi(&exp_N, N), 0);
  704. TEST_EQUAL(mbedtls_test_read_mpi(&exp_B, B), 0);
  705. TEST_EQUAL(mbedtls_test_read_mpi(&exp_G_y, G_y), 0);
  706. // Convert exp_A to internal representation (A+2)/4
  707. if (crv_type == MBEDTLS_ECP_TYPE_MONTGOMERY) {
  708. TEST_EQUAL(mbedtls_mpi_add_int(&exp_A, &exp_A, 2), 0);
  709. TEST_EQUAL(mbedtls_mpi_div_int(&exp_A, NULL, &exp_A, 4), 0);
  710. }
  711. // Load group
  712. TEST_EQUAL(mbedtls_ecp_group_load(&grp, id), 0);
  713. // Compare group with expected parameters
  714. // A is NULL for SECPxxxR1 curves
  715. // B and G_y are NULL for curve25519 and curve448
  716. TEST_EQUAL(mbedtls_mpi_cmp_mpi(&exp_P, &grp.P), 0);
  717. if (*A != 0) {
  718. TEST_EQUAL(mbedtls_mpi_cmp_mpi(&exp_A, &grp.A), 0);
  719. }
  720. if (*B != 0) {
  721. TEST_EQUAL(mbedtls_mpi_cmp_mpi(&exp_B, &grp.B), 0);
  722. }
  723. TEST_EQUAL(mbedtls_mpi_cmp_mpi(&exp_G_x, &grp.G.X), 0);
  724. if (*G_y != 0) {
  725. TEST_EQUAL(mbedtls_mpi_cmp_mpi(&exp_G_y, &grp.G.Y), 0);
  726. }
  727. TEST_EQUAL(mbedtls_mpi_cmp_mpi(&exp_N, &grp.N), 0);
  728. // Load curve info and compare with known values
  729. crv = mbedtls_ecp_curve_info_from_grp_id(id);
  730. TEST_EQUAL(crv->grp_id, id);
  731. TEST_EQUAL(crv->bit_size, bit_size);
  732. TEST_EQUAL(crv->tls_id, tls_id);
  733. // Load curve from TLS ID and name, and compare IDs
  734. crv_tls_id = mbedtls_ecp_curve_info_from_tls_id(crv->tls_id);
  735. crv_name = mbedtls_ecp_curve_info_from_name(crv->name);
  736. TEST_EQUAL(crv_tls_id->grp_id, id);
  737. TEST_EQUAL(crv_name->grp_id, id);
  738. // Validate write_group against test data
  739. TEST_EQUAL(mbedtls_ecp_tls_write_group(&grp, &olen,
  740. buf, sizeof(buf)),
  741. 0);
  742. TEST_EQUAL(mbedtls_test_hexcmp(buf, ecparameters, olen,
  743. sizeof(ecparameters)),
  744. 0);
  745. // Read group from buffer and compare with expected ID
  746. TEST_EQUAL(mbedtls_ecp_tls_read_group_id(&read_g_id, &vbuf, olen),
  747. 0);
  748. TEST_EQUAL(read_g_id, id);
  749. vbuf = buf;
  750. TEST_EQUAL(mbedtls_ecp_tls_read_group(&grp_read, &vbuf, olen),
  751. 0);
  752. TEST_EQUAL(grp_read.id, id);
  753. // Check curve type, and if it can be used for ECDH/ECDSA
  754. TEST_EQUAL(mbedtls_ecp_get_type(&grp), crv_type);
  755. #if defined(MBEDTLS_ECDH_C)
  756. TEST_EQUAL(mbedtls_ecdh_can_do(id), 1);
  757. #endif
  758. #if defined(MBEDTLS_ECDSA_C)
  759. TEST_EQUAL(mbedtls_ecdsa_can_do(id),
  760. crv_type == MBEDTLS_ECP_TYPE_SHORT_WEIERSTRASS);
  761. #endif
  762. // Copy group and compare with original
  763. TEST_EQUAL(mbedtls_ecp_group_copy(&grp_cpy, &grp), 0);
  764. TEST_EQUAL(mbedtls_ecp_group_cmp(&grp, &grp_cpy), 0);
  765. // Check curve is in curve list and group ID list
  766. for (crv = mbedtls_ecp_curve_list();
  767. crv->grp_id != MBEDTLS_ECP_DP_NONE &&
  768. crv->grp_id != (unsigned) id;
  769. crv++) {
  770. ;
  771. }
  772. TEST_EQUAL(crv->grp_id, id);
  773. for (g_id = mbedtls_ecp_grp_id_list();
  774. *g_id != MBEDTLS_ECP_DP_NONE && *g_id != (unsigned) id;
  775. g_id++) {
  776. ;
  777. }
  778. TEST_EQUAL(*g_id, (unsigned) id);
  779. exit:
  780. mbedtls_ecp_group_free(&grp); mbedtls_ecp_group_free(&grp_cpy);
  781. mbedtls_ecp_group_free(&grp_read);
  782. mbedtls_mpi_free(&exp_P); mbedtls_mpi_free(&exp_A);
  783. mbedtls_mpi_free(&exp_B); mbedtls_mpi_free(&exp_G_x);
  784. mbedtls_mpi_free(&exp_G_y); mbedtls_mpi_free(&exp_N);
  785. }
  786. /* END_CASE */
  787. /* BEGIN_CASE */
  788. void mbedtls_ecp_check_privkey(int id, char *key_hex, int ret)
  789. {
  790. mbedtls_ecp_group grp;
  791. mbedtls_mpi d;
  792. mbedtls_ecp_group_init(&grp);
  793. mbedtls_mpi_init(&d);
  794. TEST_ASSERT(mbedtls_ecp_group_load(&grp, id) == 0);
  795. TEST_ASSERT(mbedtls_test_read_mpi(&d, key_hex) == 0);
  796. TEST_ASSERT(mbedtls_ecp_check_privkey(&grp, &d) == ret);
  797. exit:
  798. mbedtls_ecp_group_free(&grp);
  799. mbedtls_mpi_free(&d);
  800. }
  801. /* END_CASE */
  802. /* BEGIN_CASE */
  803. void mbedtls_ecp_check_pub_priv(int id_pub, char *Qx_pub, char *Qy_pub,
  804. int id, char *d, char *Qx, char *Qy,
  805. int ret)
  806. {
  807. mbedtls_ecp_keypair pub, prv;
  808. mbedtls_test_rnd_pseudo_info rnd_info;
  809. mbedtls_ecp_keypair_init(&pub);
  810. mbedtls_ecp_keypair_init(&prv);
  811. memset(&rnd_info, 0x00, sizeof(mbedtls_test_rnd_pseudo_info));
  812. if (id_pub != MBEDTLS_ECP_DP_NONE) {
  813. TEST_ASSERT(mbedtls_ecp_group_load(&pub.grp, id_pub) == 0);
  814. }
  815. TEST_ASSERT(mbedtls_ecp_point_read_string(&pub.Q, 16, Qx_pub, Qy_pub) == 0);
  816. if (id != MBEDTLS_ECP_DP_NONE) {
  817. TEST_ASSERT(mbedtls_ecp_group_load(&prv.grp, id) == 0);
  818. }
  819. TEST_ASSERT(mbedtls_ecp_point_read_string(&prv.Q, 16, Qx, Qy) == 0);
  820. TEST_ASSERT(mbedtls_test_read_mpi(&prv.d, d) == 0);
  821. TEST_ASSERT(mbedtls_ecp_check_pub_priv(&pub, &prv,
  822. &mbedtls_test_rnd_pseudo_rand, &rnd_info) == ret);
  823. exit:
  824. mbedtls_ecp_keypair_free(&pub);
  825. mbedtls_ecp_keypair_free(&prv);
  826. }
  827. /* END_CASE */
  828. /* BEGIN_CASE */
  829. void mbedtls_ecp_gen_keypair(int id)
  830. {
  831. mbedtls_ecp_group grp;
  832. mbedtls_ecp_point Q;
  833. mbedtls_mpi d;
  834. mbedtls_test_rnd_pseudo_info rnd_info;
  835. mbedtls_ecp_group_init(&grp);
  836. mbedtls_ecp_point_init(&Q);
  837. mbedtls_mpi_init(&d);
  838. memset(&rnd_info, 0x00, sizeof(mbedtls_test_rnd_pseudo_info));
  839. TEST_ASSERT(mbedtls_ecp_group_load(&grp, id) == 0);
  840. TEST_ASSERT(mbedtls_ecp_gen_keypair(&grp, &d, &Q,
  841. &mbedtls_test_rnd_pseudo_rand,
  842. &rnd_info) == 0);
  843. TEST_ASSERT(mbedtls_ecp_check_pubkey(&grp, &Q) == 0);
  844. TEST_ASSERT(mbedtls_ecp_check_privkey(&grp, &d) == 0);
  845. exit:
  846. mbedtls_ecp_group_free(&grp);
  847. mbedtls_ecp_point_free(&Q);
  848. mbedtls_mpi_free(&d);
  849. }
  850. /* END_CASE */
  851. /* BEGIN_CASE */
  852. void mbedtls_ecp_gen_key(int id)
  853. {
  854. mbedtls_ecp_keypair key;
  855. mbedtls_test_rnd_pseudo_info rnd_info;
  856. mbedtls_ecp_keypair_init(&key);
  857. memset(&rnd_info, 0x00, sizeof(mbedtls_test_rnd_pseudo_info));
  858. TEST_ASSERT(mbedtls_ecp_gen_key(id, &key,
  859. &mbedtls_test_rnd_pseudo_rand,
  860. &rnd_info) == 0);
  861. TEST_ASSERT(mbedtls_ecp_check_pubkey(&key.grp, &key.Q) == 0);
  862. TEST_ASSERT(mbedtls_ecp_check_privkey(&key.grp, &key.d) == 0);
  863. exit:
  864. mbedtls_ecp_keypair_free(&key);
  865. }
  866. /* END_CASE */
  867. /* BEGIN_CASE */
  868. void mbedtls_ecp_read_key(int grp_id, data_t *in_key, int expected, int canonical)
  869. {
  870. int ret = 0;
  871. mbedtls_ecp_keypair key;
  872. mbedtls_ecp_keypair key2;
  873. mbedtls_ecp_keypair_init(&key);
  874. mbedtls_ecp_keypair_init(&key2);
  875. ret = mbedtls_ecp_read_key(grp_id, &key, in_key->x, in_key->len);
  876. TEST_ASSERT(ret == expected);
  877. if (expected == 0) {
  878. ret = mbedtls_ecp_check_privkey(&key.grp, &key.d);
  879. TEST_ASSERT(ret == 0);
  880. if (canonical) {
  881. unsigned char buf[MBEDTLS_ECP_MAX_BYTES];
  882. ret = mbedtls_ecp_write_key(&key, buf, in_key->len);
  883. TEST_ASSERT(ret == 0);
  884. ASSERT_COMPARE(in_key->x, in_key->len,
  885. buf, in_key->len);
  886. } else {
  887. unsigned char export1[MBEDTLS_ECP_MAX_BYTES];
  888. unsigned char export2[MBEDTLS_ECP_MAX_BYTES];
  889. ret = mbedtls_ecp_write_key(&key, export1, in_key->len);
  890. TEST_ASSERT(ret == 0);
  891. ret = mbedtls_ecp_read_key(grp_id, &key2, export1, in_key->len);
  892. TEST_ASSERT(ret == expected);
  893. ret = mbedtls_ecp_write_key(&key2, export2, in_key->len);
  894. TEST_ASSERT(ret == 0);
  895. ASSERT_COMPARE(export1, in_key->len,
  896. export2, in_key->len);
  897. }
  898. }
  899. exit:
  900. mbedtls_ecp_keypair_free(&key);
  901. mbedtls_ecp_keypair_free(&key2);
  902. }
  903. /* END_CASE */
  904. /* BEGIN_CASE depends_on:HAVE_FIX_NEGATIVE */
  905. void fix_negative(data_t *N_bin, int c, int bits)
  906. {
  907. mbedtls_mpi C, M, N;
  908. mbedtls_mpi_init(&C);
  909. mbedtls_mpi_init(&M);
  910. mbedtls_mpi_init(&N);
  911. /* C = - c * 2^bits (positive since c is negative) */
  912. TEST_EQUAL(0, mbedtls_mpi_lset(&C, -c));
  913. TEST_EQUAL(0, mbedtls_mpi_shift_l(&C, bits));
  914. TEST_EQUAL(0, mbedtls_mpi_read_binary(&N, N_bin->x, N_bin->len));
  915. TEST_EQUAL(0, mbedtls_mpi_grow(&N, C.n));
  916. /* M = N - C = - ( C - N ) (expected result of fix_negative) */
  917. TEST_EQUAL(0, mbedtls_mpi_sub_mpi(&M, &N, &C));
  918. mbedtls_ecp_fix_negative(&N, c, bits);
  919. TEST_EQUAL(0, mbedtls_mpi_cmp_mpi(&N, &M));
  920. exit:
  921. mbedtls_mpi_free(&C);
  922. mbedtls_mpi_free(&M);
  923. mbedtls_mpi_free(&N);
  924. }
  925. /* END_CASE */
  926. /* BEGIN_CASE depends_on:MBEDTLS_TEST_HOOKS:MBEDTLS_ECP_MONTGOMERY_ENABLED */
  927. void genkey_mx_known_answer(int bits, data_t *seed, data_t *expected)
  928. {
  929. mbedtls_test_rnd_buf_info rnd_info;
  930. mbedtls_mpi d;
  931. int ret;
  932. uint8_t *actual = NULL;
  933. mbedtls_mpi_init(&d);
  934. rnd_info.buf = seed->x;
  935. rnd_info.length = seed->len;
  936. rnd_info.fallback_f_rng = NULL;
  937. rnd_info.fallback_p_rng = NULL;
  938. ASSERT_ALLOC(actual, expected->len);
  939. ret = mbedtls_ecp_gen_privkey_mx(bits, &d,
  940. mbedtls_test_rnd_buffer_rand, &rnd_info);
  941. if (expected->len == 0) {
  942. /* Expecting an error (happens if there isn't enough randomness) */
  943. TEST_ASSERT(ret != 0);
  944. } else {
  945. TEST_EQUAL(ret, 0);
  946. TEST_EQUAL((size_t) bits + 1, mbedtls_mpi_bitlen(&d));
  947. TEST_EQUAL(0, mbedtls_mpi_write_binary(&d, actual, expected->len));
  948. /* Test the exact result. This assumes that the output of the
  949. * RNG is used in a specific way, which is overly constraining.
  950. * The advantage is that it's easier to test the expected properties
  951. * of the generated key:
  952. * - The most significant bit must be at a specific positions
  953. * (can be enforced by checking the bit-length).
  954. * - The least significant bits must have specific values
  955. * (can be enforced by checking these bits).
  956. * - Other bits must be random (by testing with different RNG outputs,
  957. * we validate that those bits are indeed influenced by the RNG). */
  958. ASSERT_COMPARE(expected->x, expected->len,
  959. actual, expected->len);
  960. }
  961. exit:
  962. mbedtls_free(actual);
  963. mbedtls_mpi_free(&d);
  964. }
  965. /* END_CASE */
  966. /* BEGIN_CASE */
  967. void ecp_set_zero(int id, data_t *P_bin)
  968. {
  969. mbedtls_ecp_group grp;
  970. mbedtls_ecp_point pt, zero_pt, nonzero_pt;
  971. mbedtls_ecp_group_init(&grp);
  972. mbedtls_ecp_point_init(&pt);
  973. mbedtls_ecp_point_init(&zero_pt);
  974. mbedtls_ecp_point_init(&nonzero_pt);
  975. // Set zero and non-zero points for comparison
  976. TEST_EQUAL(mbedtls_ecp_set_zero(&zero_pt), 0);
  977. TEST_EQUAL(mbedtls_ecp_group_load(&grp, id), 0);
  978. TEST_EQUAL(mbedtls_ecp_point_read_binary(&grp, &nonzero_pt,
  979. P_bin->x, P_bin->len), 0);
  980. TEST_EQUAL(mbedtls_ecp_is_zero(&zero_pt), 1);
  981. TEST_EQUAL(mbedtls_ecp_is_zero(&nonzero_pt), 0);
  982. // Test initialized point
  983. TEST_EQUAL(mbedtls_ecp_set_zero(&pt), 0);
  984. TEST_EQUAL(mbedtls_ecp_is_zero(&pt), 1);
  985. TEST_EQUAL(mbedtls_ecp_point_cmp(&zero_pt, &pt), 0);
  986. TEST_EQUAL(mbedtls_ecp_point_cmp(&nonzero_pt, &zero_pt),
  987. MBEDTLS_ERR_ECP_BAD_INPUT_DATA);
  988. // Test zeroed point
  989. TEST_EQUAL(mbedtls_ecp_set_zero(&pt), 0);
  990. TEST_EQUAL(mbedtls_ecp_is_zero(&pt), 1);
  991. TEST_EQUAL(mbedtls_ecp_point_cmp(&zero_pt, &pt), 0);
  992. TEST_EQUAL(mbedtls_ecp_point_cmp(&nonzero_pt, &pt),
  993. MBEDTLS_ERR_ECP_BAD_INPUT_DATA);
  994. // Set point to non-zero value
  995. TEST_EQUAL(mbedtls_ecp_point_read_binary(&grp, &pt,
  996. P_bin->x, P_bin->len), 0);
  997. TEST_EQUAL(mbedtls_ecp_is_zero(&pt), 0);
  998. TEST_EQUAL(mbedtls_ecp_point_cmp(&zero_pt, &pt),
  999. MBEDTLS_ERR_ECP_BAD_INPUT_DATA);
  1000. TEST_EQUAL(mbedtls_ecp_point_cmp(&nonzero_pt, &pt), 0);
  1001. // Test non-zero point
  1002. TEST_EQUAL(mbedtls_ecp_set_zero(&pt), 0);
  1003. TEST_EQUAL(mbedtls_ecp_is_zero(&pt), 1);
  1004. TEST_EQUAL(mbedtls_ecp_point_cmp(&zero_pt, &pt), 0);
  1005. TEST_EQUAL(mbedtls_ecp_point_cmp(&nonzero_pt, &pt),
  1006. MBEDTLS_ERR_ECP_BAD_INPUT_DATA);
  1007. // Test freed non-zero point
  1008. TEST_EQUAL(mbedtls_ecp_point_read_binary(&grp, &pt,
  1009. P_bin->x, P_bin->len), 0);
  1010. mbedtls_ecp_point_free(&pt);
  1011. TEST_EQUAL(mbedtls_ecp_set_zero(&pt), 0);
  1012. TEST_EQUAL(mbedtls_ecp_is_zero(&pt), 1);
  1013. TEST_EQUAL(mbedtls_ecp_point_cmp(&zero_pt, &pt), 0);
  1014. TEST_EQUAL(mbedtls_ecp_point_cmp(&nonzero_pt, &pt),
  1015. MBEDTLS_ERR_ECP_BAD_INPUT_DATA);
  1016. exit:
  1017. mbedtls_ecp_group_free(&grp);
  1018. mbedtls_ecp_point_free(&pt);
  1019. mbedtls_ecp_point_free(&zero_pt);
  1020. mbedtls_ecp_point_free(&nonzero_pt);
  1021. }
  1022. /* END_CASE */
  1023. /* BEGIN_CASE depends_on:MBEDTLS_SELF_TEST */
  1024. void ecp_selftest()
  1025. {
  1026. TEST_ASSERT(mbedtls_ecp_self_test(1) == 0);
  1027. }
  1028. /* END_CASE */
  1029. /* BEGIN_CASE */
  1030. void ecp_export(int id, char *Qx, char *Qy, char *d, int expected_ret, int invalid_grp)
  1031. {
  1032. mbedtls_ecp_keypair key;
  1033. mbedtls_ecp_group export_grp;
  1034. mbedtls_mpi export_d;
  1035. mbedtls_ecp_point export_Q;
  1036. mbedtls_ecp_group_init(&export_grp);
  1037. mbedtls_ecp_group_init(&key.grp);
  1038. mbedtls_mpi_init(&export_d);
  1039. mbedtls_ecp_point_init(&export_Q);
  1040. mbedtls_ecp_keypair_init(&key);
  1041. if (invalid_grp == 0) {
  1042. TEST_ASSERT(mbedtls_ecp_group_load(&key.grp, id) == 0);
  1043. }
  1044. TEST_ASSERT(mbedtls_ecp_point_read_string(&key.Q, 16, Qx, Qy) == 0);
  1045. TEST_ASSERT(mbedtls_test_read_mpi(&key.d, d) == 0);
  1046. TEST_EQUAL(mbedtls_ecp_export(&key, &export_grp,
  1047. &export_d, &export_Q), expected_ret);
  1048. if (expected_ret == 0) {
  1049. TEST_EQUAL(mbedtls_ecp_point_cmp(&key.Q, &export_Q), 0);
  1050. TEST_EQUAL(mbedtls_mpi_cmp_mpi(&key.d, &export_d), 0);
  1051. TEST_EQUAL(mbedtls_ecp_group_cmp(&key.grp, &export_grp), 0);
  1052. }
  1053. exit:
  1054. mbedtls_ecp_keypair_free(&key);
  1055. mbedtls_ecp_group_free(&export_grp);
  1056. mbedtls_mpi_free(&export_d);
  1057. mbedtls_ecp_point_free(&export_Q);
  1058. }
  1059. /* END_CASE */
  1060. /* BEGIN_CASE */
  1061. void ecp_check_order(int id, char *expected_order_hex)
  1062. {
  1063. mbedtls_ecp_group grp;
  1064. mbedtls_mpi expected_n;
  1065. mbedtls_ecp_group_init(&grp);
  1066. mbedtls_mpi_init(&expected_n);
  1067. TEST_ASSERT(mbedtls_ecp_group_load(&grp, id) == 0);
  1068. TEST_ASSERT(mbedtls_test_read_mpi(&expected_n, expected_order_hex) == 0);
  1069. // check sign bits are well-formed (i.e. 1 or -1) - see #5810
  1070. TEST_ASSERT(grp.N.s == -1 || grp.N.s == 1);
  1071. TEST_ASSERT(expected_n.s == -1 || expected_n.s == 1);
  1072. TEST_ASSERT(mbedtls_mpi_cmp_mpi(&grp.N, &expected_n) == 0);
  1073. exit:
  1074. mbedtls_ecp_group_free(&grp);
  1075. mbedtls_mpi_free(&expected_n);
  1076. }
  1077. /* END_CASE */
  1078. /* BEGIN_CASE depends_on:MBEDTLS_TEST_HOOKS */
  1079. void ecp_mod_p192_raw(char *input_N,
  1080. char *input_X,
  1081. char *result)
  1082. {
  1083. mbedtls_mpi_uint *X = NULL;
  1084. mbedtls_mpi_uint *N = NULL;
  1085. mbedtls_mpi_uint *res = NULL;
  1086. size_t limbs_X;
  1087. size_t limbs_N;
  1088. size_t limbs_res;
  1089. mbedtls_mpi_mod_modulus m;
  1090. mbedtls_mpi_mod_modulus_init(&m);
  1091. TEST_EQUAL(mbedtls_test_read_mpi_core(&X, &limbs_X, input_X), 0);
  1092. TEST_EQUAL(mbedtls_test_read_mpi_core(&N, &limbs_N, input_N), 0);
  1093. TEST_EQUAL(mbedtls_test_read_mpi_core(&res, &limbs_res, result), 0);
  1094. size_t limbs = limbs_N;
  1095. size_t bytes = limbs * sizeof(mbedtls_mpi_uint);
  1096. TEST_EQUAL(limbs_X, 2 * limbs);
  1097. TEST_EQUAL(limbs_res, limbs);
  1098. TEST_EQUAL(mbedtls_mpi_mod_modulus_setup(
  1099. &m, N, limbs,
  1100. MBEDTLS_MPI_MOD_REP_MONTGOMERY), 0);
  1101. TEST_EQUAL(mbedtls_ecp_mod_p192_raw(X, limbs_X), 0);
  1102. TEST_LE_U(mbedtls_mpi_core_bitlen(X, limbs_X), 192);
  1103. mbedtls_mpi_mod_raw_fix_quasi_reduction(X, &m);
  1104. ASSERT_COMPARE(X, bytes, res, bytes);
  1105. exit:
  1106. mbedtls_free(X);
  1107. mbedtls_free(res);
  1108. mbedtls_mpi_mod_modulus_free(&m);
  1109. mbedtls_free(N);
  1110. }
  1111. /* END_CASE */
  1112. /* BEGIN_CASE depends_on:MBEDTLS_TEST_HOOKS */
  1113. void ecp_mod_p224_raw(char *input_N,
  1114. char *input_X,
  1115. char *result)
  1116. {
  1117. mbedtls_mpi_uint *X = NULL;
  1118. mbedtls_mpi_uint *N = NULL;
  1119. mbedtls_mpi_uint *res = NULL;
  1120. size_t limbs_X;
  1121. size_t limbs_N;
  1122. size_t limbs_res;
  1123. mbedtls_mpi_mod_modulus m;
  1124. mbedtls_mpi_mod_modulus_init(&m);
  1125. TEST_EQUAL(mbedtls_test_read_mpi_core(&X, &limbs_X, input_X), 0);
  1126. TEST_EQUAL(mbedtls_test_read_mpi_core(&N, &limbs_N, input_N), 0);
  1127. TEST_EQUAL(mbedtls_test_read_mpi_core(&res, &limbs_res, result), 0);
  1128. size_t limbs = limbs_N;
  1129. size_t bytes = limbs * sizeof(mbedtls_mpi_uint);
  1130. TEST_EQUAL(limbs_X, 448 / biL);
  1131. TEST_EQUAL(limbs_res, limbs);
  1132. TEST_EQUAL(mbedtls_mpi_mod_modulus_setup(
  1133. &m, N, limbs,
  1134. MBEDTLS_MPI_MOD_REP_MONTGOMERY), 0);
  1135. TEST_EQUAL(mbedtls_ecp_mod_p224_raw(X, limbs_X), 0);
  1136. TEST_LE_U(mbedtls_mpi_core_bitlen(X, limbs_X), 224);
  1137. mbedtls_mpi_mod_raw_fix_quasi_reduction(X, &m);
  1138. ASSERT_COMPARE(X, bytes, res, bytes);
  1139. exit:
  1140. mbedtls_free(X);
  1141. mbedtls_free(res);
  1142. mbedtls_mpi_mod_modulus_free(&m);
  1143. mbedtls_free(N);
  1144. }
  1145. /* END_CASE */
  1146. /* BEGIN_CASE depends_on:MBEDTLS_TEST_HOOKS */
  1147. void ecp_mod_p256_raw(char *input_N,
  1148. char *input_X,
  1149. char *result)
  1150. {
  1151. mbedtls_mpi_uint *X = NULL;
  1152. mbedtls_mpi_uint *N = NULL;
  1153. mbedtls_mpi_uint *res = NULL;
  1154. size_t limbs_X;
  1155. size_t limbs_N;
  1156. size_t limbs_res;
  1157. mbedtls_mpi_mod_modulus m;
  1158. mbedtls_mpi_mod_modulus_init(&m);
  1159. TEST_EQUAL(mbedtls_test_read_mpi_core(&X, &limbs_X, input_X), 0);
  1160. TEST_EQUAL(mbedtls_test_read_mpi_core(&N, &limbs_N, input_N), 0);
  1161. TEST_EQUAL(mbedtls_test_read_mpi_core(&res, &limbs_res, result), 0);
  1162. size_t limbs = limbs_N;
  1163. size_t bytes = limbs * sizeof(mbedtls_mpi_uint);
  1164. TEST_EQUAL(limbs_X, 2 * limbs);
  1165. TEST_EQUAL(limbs_res, limbs);
  1166. TEST_EQUAL(mbedtls_mpi_mod_modulus_setup(
  1167. &m, N, limbs,
  1168. MBEDTLS_MPI_MOD_REP_MONTGOMERY), 0);
  1169. TEST_EQUAL(mbedtls_ecp_mod_p256_raw(X, limbs_X), 0);
  1170. TEST_LE_U(mbedtls_mpi_core_bitlen(X, limbs_X), 256);
  1171. mbedtls_mpi_mod_raw_fix_quasi_reduction(X, &m);
  1172. ASSERT_COMPARE(X, bytes, res, bytes);
  1173. exit:
  1174. mbedtls_free(X);
  1175. mbedtls_free(res);
  1176. mbedtls_mpi_mod_modulus_free(&m);
  1177. mbedtls_free(N);
  1178. }
  1179. /* END_CASE */
  1180. /* BEGIN_CASE depends_on:MBEDTLS_TEST_HOOKS */
  1181. void ecp_mod_p521_raw(char *input_N,
  1182. char *input_X,
  1183. char *result)
  1184. {
  1185. mbedtls_mpi_uint *X = NULL;
  1186. mbedtls_mpi_uint *N = NULL;
  1187. mbedtls_mpi_uint *res = NULL;
  1188. size_t limbs_X;
  1189. size_t limbs_N;
  1190. size_t limbs_res;
  1191. mbedtls_mpi_mod_modulus m;
  1192. mbedtls_mpi_mod_modulus_init(&m);
  1193. TEST_EQUAL(mbedtls_test_read_mpi_core(&X, &limbs_X, input_X), 0);
  1194. TEST_EQUAL(mbedtls_test_read_mpi_core(&N, &limbs_N, input_N), 0);
  1195. TEST_EQUAL(mbedtls_test_read_mpi_core(&res, &limbs_res, result), 0);
  1196. size_t limbs = limbs_N;
  1197. size_t bytes = limbs * sizeof(mbedtls_mpi_uint);
  1198. TEST_EQUAL(limbs_X, 2 * limbs);
  1199. TEST_EQUAL(limbs_res, limbs);
  1200. TEST_EQUAL(mbedtls_mpi_mod_modulus_setup(
  1201. &m, N, limbs,
  1202. MBEDTLS_MPI_MOD_REP_MONTGOMERY), 0);
  1203. TEST_EQUAL(mbedtls_ecp_mod_p521_raw(X, limbs_X), 0);
  1204. TEST_LE_U(mbedtls_mpi_core_bitlen(X, limbs_X), 522);
  1205. mbedtls_mpi_mod_raw_fix_quasi_reduction(X, &m);
  1206. ASSERT_COMPARE(X, bytes, res, bytes);
  1207. exit:
  1208. mbedtls_free(X);
  1209. mbedtls_free(res);
  1210. mbedtls_mpi_mod_modulus_free(&m);
  1211. mbedtls_free(N);
  1212. }
  1213. /* END_CASE */
  1214. /* BEGIN_CASE depends_on:MBEDTLS_TEST_HOOKS */
  1215. void ecp_mod_setup(char *input_A, int id, int ctype, int iret)
  1216. {
  1217. int ret;
  1218. mbedtls_mpi_mod_modulus m;
  1219. mbedtls_mpi_mod_modulus_init(&m);
  1220. mbedtls_mpi_uint *p = NULL;
  1221. size_t p_limbs;
  1222. size_t bytes;
  1223. TEST_EQUAL(mbedtls_test_read_mpi_core(&p, &p_limbs, input_A), 0);
  1224. ret = mbedtls_ecp_modulus_setup(&m, id, ctype);
  1225. TEST_EQUAL(ret, iret);
  1226. if (ret == 0) {
  1227. /* Test for limb sizes */
  1228. TEST_EQUAL(m.limbs, p_limbs);
  1229. bytes = p_limbs * sizeof(mbedtls_mpi_uint);
  1230. /* Test for validity of moduli by the presence of Montgomery consts */
  1231. TEST_ASSERT(m.rep.mont.mm != 0);
  1232. TEST_ASSERT(m.rep.mont.rr != NULL);
  1233. /* Compare output byte-by-byte */
  1234. ASSERT_COMPARE(p, bytes, m.p, bytes);
  1235. /* Test for user free-ing allocated memory */
  1236. mbedtls_mpi_mod_modulus_free(&m);
  1237. }
  1238. exit:
  1239. mbedtls_mpi_mod_modulus_free(&m);
  1240. mbedtls_free(p);
  1241. }
  1242. /* END_CASE */