test_suite_bignum_mod_raw.function 26 KB

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  1. /* BEGIN_HEADER */
  2. #include "mbedtls/bignum.h"
  3. #include "mbedtls/entropy.h"
  4. #include "bignum_core.h"
  5. #include "bignum_mod_raw.h"
  6. #include "constant_time_internal.h"
  7. #include "test/constant_flow.h"
  8. #include "bignum_mod_raw_invasive.h"
  9. /* END_HEADER */
  10. /* BEGIN_DEPENDENCIES
  11. * depends_on:MBEDTLS_BIGNUM_C
  12. * END_DEPENDENCIES
  13. */
  14. /* BEGIN_CASE */
  15. void mpi_mod_raw_io(data_t *input, int nb_int, int nx_32_int,
  16. int iendian, int iret, int oret)
  17. {
  18. mbedtls_mpi_mod_modulus m;
  19. mbedtls_mpi_mod_modulus_init(&m);
  20. if (iret != 0) {
  21. TEST_ASSERT(oret == 0);
  22. }
  23. TEST_LE_S(0, nb_int);
  24. size_t nb = nb_int;
  25. unsigned char buf[1024];
  26. TEST_LE_U(nb, sizeof(buf));
  27. /* nx_32_int is the number of 32 bit limbs, if we have 64 bit limbs we need
  28. * to halve the number of limbs to have the same size. */
  29. size_t nx;
  30. TEST_LE_S(0, nx_32_int);
  31. if (sizeof(mbedtls_mpi_uint) == 8) {
  32. nx = nx_32_int / 2 + nx_32_int % 2;
  33. } else {
  34. nx = nx_32_int;
  35. }
  36. mbedtls_mpi_uint X[sizeof(buf) / sizeof(mbedtls_mpi_uint)];
  37. TEST_LE_U(nx, sizeof(X) / sizeof(X[0]));
  38. int endian;
  39. if (iendian == MBEDTLS_MPI_MOD_EXT_REP_INVALID) {
  40. endian = MBEDTLS_MPI_MOD_EXT_REP_LE;
  41. } else {
  42. endian = iendian;
  43. }
  44. mbedtls_mpi_uint init[sizeof(X) / sizeof(X[0])];
  45. memset(init, 0xFF, sizeof(init));
  46. int ret = mbedtls_mpi_mod_modulus_setup(&m, init, nx,
  47. MBEDTLS_MPI_MOD_REP_MONTGOMERY);
  48. TEST_EQUAL(ret, 0);
  49. if (iendian == MBEDTLS_MPI_MOD_EXT_REP_INVALID && iret != 0) {
  50. endian = MBEDTLS_MPI_MOD_EXT_REP_INVALID;
  51. }
  52. ret = mbedtls_mpi_mod_raw_read(X, &m, input->x, input->len, endian);
  53. TEST_EQUAL(ret, iret);
  54. if (iret == 0) {
  55. if (iendian == MBEDTLS_MPI_MOD_EXT_REP_INVALID && oret != 0) {
  56. endian = MBEDTLS_MPI_MOD_EXT_REP_INVALID;
  57. }
  58. ret = mbedtls_mpi_mod_raw_write(X, &m, buf, nb, endian);
  59. TEST_EQUAL(ret, oret);
  60. }
  61. if ((iret == 0) && (oret == 0)) {
  62. if (nb > input->len) {
  63. if (endian == MBEDTLS_MPI_MOD_EXT_REP_BE) {
  64. size_t leading_zeroes = nb - input->len;
  65. TEST_ASSERT(memcmp(buf + nb - input->len, input->x, input->len) == 0);
  66. for (size_t i = 0; i < leading_zeroes; i++) {
  67. TEST_EQUAL(buf[i], 0);
  68. }
  69. } else {
  70. TEST_ASSERT(memcmp(buf, input->x, input->len) == 0);
  71. for (size_t i = input->len; i < nb; i++) {
  72. TEST_EQUAL(buf[i], 0);
  73. }
  74. }
  75. } else {
  76. if (endian == MBEDTLS_MPI_MOD_EXT_REP_BE) {
  77. size_t leading_zeroes = input->len - nb;
  78. TEST_ASSERT(memcmp(input->x + input->len - nb, buf, nb) == 0);
  79. for (size_t i = 0; i < leading_zeroes; i++) {
  80. TEST_EQUAL(input->x[i], 0);
  81. }
  82. } else {
  83. TEST_ASSERT(memcmp(input->x, buf, nb) == 0);
  84. for (size_t i = nb; i < input->len; i++) {
  85. TEST_EQUAL(input->x[i], 0);
  86. }
  87. }
  88. }
  89. }
  90. exit:
  91. mbedtls_mpi_mod_modulus_free(&m);
  92. }
  93. /* END_CASE */
  94. /* BEGIN_CASE */
  95. void mpi_mod_raw_cond_assign(char *input_X,
  96. char *input_Y,
  97. int input_bytes)
  98. {
  99. mbedtls_mpi_uint *X = NULL;
  100. mbedtls_mpi_uint *Y = NULL;
  101. mbedtls_mpi_uint *buff_m = NULL;
  102. size_t limbs_X;
  103. size_t limbs_Y;
  104. mbedtls_mpi_mod_modulus m;
  105. mbedtls_mpi_mod_modulus_init(&m);
  106. TEST_EQUAL(mbedtls_test_read_mpi_core(&X, &limbs_X, input_X), 0);
  107. TEST_EQUAL(mbedtls_test_read_mpi_core(&Y, &limbs_Y, input_Y), 0);
  108. size_t limbs = limbs_X;
  109. size_t copy_limbs = CHARS_TO_LIMBS(input_bytes);
  110. size_t bytes = limbs * sizeof(mbedtls_mpi_uint);
  111. size_t copy_bytes = copy_limbs * sizeof(mbedtls_mpi_uint);
  112. TEST_EQUAL(limbs_X, limbs_Y);
  113. TEST_ASSERT(copy_limbs <= limbs);
  114. ASSERT_ALLOC(buff_m, copy_limbs);
  115. memset(buff_m, 0xFF, copy_limbs);
  116. TEST_EQUAL(mbedtls_mpi_mod_modulus_setup(
  117. &m, buff_m, copy_limbs,
  118. MBEDTLS_MPI_MOD_REP_MONTGOMERY), 0);
  119. /* condition is false */
  120. TEST_CF_SECRET(X, bytes);
  121. TEST_CF_SECRET(Y, bytes);
  122. mbedtls_mpi_mod_raw_cond_assign(X, Y, &m, 0);
  123. TEST_CF_PUBLIC(X, bytes);
  124. TEST_CF_PUBLIC(Y, bytes);
  125. TEST_ASSERT(memcmp(X, Y, bytes) != 0);
  126. /* condition is true */
  127. TEST_CF_SECRET(X, bytes);
  128. TEST_CF_SECRET(Y, bytes);
  129. mbedtls_mpi_mod_raw_cond_assign(X, Y, &m, 1);
  130. TEST_CF_PUBLIC(X, bytes);
  131. TEST_CF_PUBLIC(Y, bytes);
  132. /* Check if the given length is copied even it is smaller
  133. than the length of the given MPIs. */
  134. if (copy_limbs < limbs) {
  135. ASSERT_COMPARE(X, copy_bytes, Y, copy_bytes);
  136. TEST_ASSERT(memcmp(X, Y, bytes) != 0);
  137. } else {
  138. ASSERT_COMPARE(X, bytes, Y, bytes);
  139. }
  140. exit:
  141. mbedtls_free(X);
  142. mbedtls_free(Y);
  143. mbedtls_mpi_mod_modulus_free(&m);
  144. mbedtls_free(buff_m);
  145. }
  146. /* END_CASE */
  147. /* BEGIN_CASE */
  148. void mpi_mod_raw_cond_swap(char *input_X,
  149. char *input_Y,
  150. int input_bytes)
  151. {
  152. mbedtls_mpi_uint *tmp_X = NULL;
  153. mbedtls_mpi_uint *tmp_Y = NULL;
  154. mbedtls_mpi_uint *X = NULL;
  155. mbedtls_mpi_uint *Y = NULL;
  156. mbedtls_mpi_uint *buff_m = NULL;
  157. size_t limbs_X;
  158. size_t limbs_Y;
  159. mbedtls_mpi_mod_modulus m;
  160. mbedtls_mpi_mod_modulus_init(&m);
  161. TEST_EQUAL(mbedtls_test_read_mpi_core(&tmp_X, &limbs_X, input_X), 0);
  162. TEST_EQUAL(mbedtls_test_read_mpi_core(&tmp_Y, &limbs_Y, input_Y), 0);
  163. size_t limbs = limbs_X;
  164. size_t copy_limbs = CHARS_TO_LIMBS(input_bytes);
  165. size_t bytes = limbs * sizeof(mbedtls_mpi_uint);
  166. size_t copy_bytes = copy_limbs * sizeof(mbedtls_mpi_uint);
  167. TEST_EQUAL(limbs_X, limbs_Y);
  168. TEST_ASSERT(copy_limbs <= limbs);
  169. ASSERT_ALLOC(buff_m, copy_limbs);
  170. memset(buff_m, 0xFF, copy_limbs);
  171. TEST_EQUAL(mbedtls_mpi_mod_modulus_setup(
  172. &m, buff_m, copy_limbs,
  173. MBEDTLS_MPI_MOD_REP_MONTGOMERY), 0);
  174. ASSERT_ALLOC(X, limbs);
  175. memcpy(X, tmp_X, bytes);
  176. ASSERT_ALLOC(Y, bytes);
  177. memcpy(Y, tmp_Y, bytes);
  178. /* condition is false */
  179. TEST_CF_SECRET(X, bytes);
  180. TEST_CF_SECRET(Y, bytes);
  181. mbedtls_mpi_mod_raw_cond_swap(X, Y, &m, 0);
  182. TEST_CF_PUBLIC(X, bytes);
  183. TEST_CF_PUBLIC(Y, bytes);
  184. ASSERT_COMPARE(X, bytes, tmp_X, bytes);
  185. ASSERT_COMPARE(Y, bytes, tmp_Y, bytes);
  186. /* condition is true */
  187. TEST_CF_SECRET(X, bytes);
  188. TEST_CF_SECRET(Y, bytes);
  189. mbedtls_mpi_mod_raw_cond_swap(X, Y, &m, 1);
  190. TEST_CF_PUBLIC(X, bytes);
  191. TEST_CF_PUBLIC(Y, bytes);
  192. /* Check if the given length is copied even it is smaller
  193. than the length of the given MPIs. */
  194. if (copy_limbs < limbs) {
  195. ASSERT_COMPARE(X, copy_bytes, tmp_Y, copy_bytes);
  196. ASSERT_COMPARE(Y, copy_bytes, tmp_X, copy_bytes);
  197. TEST_ASSERT(memcmp(X, tmp_X, bytes) != 0);
  198. TEST_ASSERT(memcmp(X, tmp_Y, bytes) != 0);
  199. TEST_ASSERT(memcmp(Y, tmp_X, bytes) != 0);
  200. TEST_ASSERT(memcmp(Y, tmp_Y, bytes) != 0);
  201. } else {
  202. ASSERT_COMPARE(X, bytes, tmp_Y, bytes);
  203. ASSERT_COMPARE(Y, bytes, tmp_X, bytes);
  204. }
  205. exit:
  206. mbedtls_free(tmp_X);
  207. mbedtls_free(tmp_Y);
  208. mbedtls_free(X);
  209. mbedtls_free(Y);
  210. mbedtls_mpi_mod_modulus_free(&m);
  211. mbedtls_free(buff_m);
  212. }
  213. /* END_CASE */
  214. /* BEGIN MERGE SLOT 1 */
  215. /* END MERGE SLOT 1 */
  216. /* BEGIN MERGE SLOT 2 */
  217. /* BEGIN_CASE */
  218. void mpi_mod_raw_sub(char *input_A,
  219. char *input_B,
  220. char *input_N,
  221. char *result)
  222. {
  223. mbedtls_mpi_uint *A = NULL;
  224. mbedtls_mpi_uint *B = NULL;
  225. mbedtls_mpi_uint *N = NULL;
  226. mbedtls_mpi_uint *X = NULL;
  227. mbedtls_mpi_uint *res = NULL;
  228. size_t limbs_A;
  229. size_t limbs_B;
  230. size_t limbs_N;
  231. size_t limbs_res;
  232. mbedtls_mpi_mod_modulus m;
  233. mbedtls_mpi_mod_modulus_init(&m);
  234. TEST_EQUAL(mbedtls_test_read_mpi_core(&A, &limbs_A, input_A), 0);
  235. TEST_EQUAL(mbedtls_test_read_mpi_core(&B, &limbs_B, input_B), 0);
  236. TEST_EQUAL(mbedtls_test_read_mpi_core(&N, &limbs_N, input_N), 0);
  237. TEST_EQUAL(mbedtls_test_read_mpi_core(&res, &limbs_res, result), 0);
  238. size_t limbs = limbs_N;
  239. size_t bytes = limbs * sizeof(mbedtls_mpi_uint);
  240. TEST_EQUAL(limbs_A, limbs);
  241. TEST_EQUAL(limbs_B, limbs);
  242. TEST_EQUAL(limbs_res, limbs);
  243. ASSERT_ALLOC(X, limbs);
  244. TEST_EQUAL(mbedtls_mpi_mod_modulus_setup(
  245. &m, N, limbs,
  246. MBEDTLS_MPI_MOD_REP_MONTGOMERY), 0);
  247. mbedtls_mpi_mod_raw_sub(X, A, B, &m);
  248. ASSERT_COMPARE(X, bytes, res, bytes);
  249. /* alias X to A */
  250. memcpy(X, A, bytes);
  251. mbedtls_mpi_mod_raw_sub(X, X, B, &m);
  252. ASSERT_COMPARE(X, bytes, res, bytes);
  253. /* alias X to B */
  254. memcpy(X, B, bytes);
  255. mbedtls_mpi_mod_raw_sub(X, A, X, &m);
  256. ASSERT_COMPARE(X, bytes, res, bytes);
  257. /* A == B: alias A and B */
  258. if (memcmp(A, B, bytes) == 0) {
  259. mbedtls_mpi_mod_raw_sub(X, A, A, &m);
  260. ASSERT_COMPARE(X, bytes, res, bytes);
  261. /* X, A, B all aliased together */
  262. memcpy(X, A, bytes);
  263. mbedtls_mpi_mod_raw_sub(X, X, X, &m);
  264. ASSERT_COMPARE(X, bytes, res, bytes);
  265. }
  266. exit:
  267. mbedtls_free(A);
  268. mbedtls_free(B);
  269. mbedtls_free(X);
  270. mbedtls_free(res);
  271. mbedtls_mpi_mod_modulus_free(&m);
  272. mbedtls_free(N);
  273. }
  274. /* END_CASE */
  275. /* BEGIN_CASE depends_on:MBEDTLS_TEST_HOOKS */
  276. void mpi_mod_raw_fix_quasi_reduction(char *input_N,
  277. char *input_X,
  278. char *result)
  279. {
  280. mbedtls_mpi_uint *X = NULL;
  281. mbedtls_mpi_uint *N = NULL;
  282. mbedtls_mpi_uint *res = NULL;
  283. mbedtls_mpi_uint *tmp = NULL;
  284. size_t limbs_X;
  285. size_t limbs_N;
  286. size_t limbs_res;
  287. mbedtls_mpi_mod_modulus m;
  288. mbedtls_mpi_mod_modulus_init(&m);
  289. TEST_EQUAL(mbedtls_test_read_mpi_core(&X, &limbs_X, input_X), 0);
  290. TEST_EQUAL(mbedtls_test_read_mpi_core(&N, &limbs_N, input_N), 0);
  291. TEST_EQUAL(mbedtls_test_read_mpi_core(&res, &limbs_res, result), 0);
  292. size_t limbs = limbs_N;
  293. size_t bytes = limbs * sizeof(mbedtls_mpi_uint);
  294. TEST_EQUAL(limbs_X, limbs);
  295. TEST_EQUAL(limbs_res, limbs);
  296. ASSERT_ALLOC(tmp, limbs);
  297. memcpy(tmp, X, bytes);
  298. /* Check that 0 <= X < 2N */
  299. mbedtls_mpi_uint c = mbedtls_mpi_core_sub(tmp, X, N, limbs);
  300. TEST_ASSERT(c || mbedtls_mpi_core_lt_ct(tmp, N, limbs));
  301. TEST_EQUAL(mbedtls_mpi_mod_modulus_setup(
  302. &m, N, limbs,
  303. MBEDTLS_MPI_MOD_REP_MONTGOMERY), 0);
  304. mbedtls_mpi_mod_raw_fix_quasi_reduction(X, &m);
  305. ASSERT_COMPARE(X, bytes, res, bytes);
  306. exit:
  307. mbedtls_free(X);
  308. mbedtls_free(res);
  309. mbedtls_free(tmp);
  310. mbedtls_mpi_mod_modulus_free(&m);
  311. mbedtls_free(N);
  312. }
  313. /* END_CASE */
  314. /* BEGIN_CASE */
  315. void mpi_mod_raw_mul(char *input_A,
  316. char *input_B,
  317. char *input_N,
  318. char *result)
  319. {
  320. mbedtls_mpi_uint *A = NULL;
  321. mbedtls_mpi_uint *B = NULL;
  322. mbedtls_mpi_uint *N = NULL;
  323. mbedtls_mpi_uint *X = NULL;
  324. mbedtls_mpi_uint *R = NULL;
  325. mbedtls_mpi_uint *T = NULL;
  326. size_t limbs_A;
  327. size_t limbs_B;
  328. size_t limbs_N;
  329. size_t limbs_R;
  330. mbedtls_mpi_mod_modulus m;
  331. mbedtls_mpi_mod_modulus_init(&m);
  332. TEST_EQUAL(mbedtls_test_read_mpi_core(&A, &limbs_A, input_A), 0);
  333. TEST_EQUAL(mbedtls_test_read_mpi_core(&B, &limbs_B, input_B), 0);
  334. TEST_EQUAL(mbedtls_test_read_mpi_core(&N, &limbs_N, input_N), 0);
  335. TEST_EQUAL(mbedtls_test_read_mpi_core(&R, &limbs_R, result), 0);
  336. const size_t limbs = limbs_N;
  337. const size_t bytes = limbs * sizeof(mbedtls_mpi_uint);
  338. TEST_EQUAL(limbs_A, limbs);
  339. TEST_EQUAL(limbs_B, limbs);
  340. TEST_EQUAL(limbs_R, limbs);
  341. ASSERT_ALLOC(X, limbs);
  342. TEST_EQUAL(mbedtls_mpi_mod_modulus_setup(
  343. &m, N, limbs,
  344. MBEDTLS_MPI_MOD_REP_MONTGOMERY), 0);
  345. const size_t limbs_T = limbs * 2 + 1;
  346. ASSERT_ALLOC(T, limbs_T);
  347. mbedtls_mpi_mod_raw_mul(X, A, B, &m, T);
  348. ASSERT_COMPARE(X, bytes, R, bytes);
  349. /* alias X to A */
  350. memcpy(X, A, bytes);
  351. mbedtls_mpi_mod_raw_mul(X, X, B, &m, T);
  352. ASSERT_COMPARE(X, bytes, R, bytes);
  353. /* alias X to B */
  354. memcpy(X, B, bytes);
  355. mbedtls_mpi_mod_raw_mul(X, A, X, &m, T);
  356. ASSERT_COMPARE(X, bytes, R, bytes);
  357. /* A == B: alias A and B */
  358. if (memcmp(A, B, bytes) == 0) {
  359. mbedtls_mpi_mod_raw_mul(X, A, A, &m, T);
  360. ASSERT_COMPARE(X, bytes, R, bytes);
  361. /* X, A, B all aliased together */
  362. memcpy(X, A, bytes);
  363. mbedtls_mpi_mod_raw_mul(X, X, X, &m, T);
  364. ASSERT_COMPARE(X, bytes, R, bytes);
  365. }
  366. /* A != B: test B * A */
  367. else {
  368. mbedtls_mpi_mod_raw_mul(X, B, A, &m, T);
  369. ASSERT_COMPARE(X, bytes, R, bytes);
  370. /* B * A: alias X to A */
  371. memcpy(X, A, bytes);
  372. mbedtls_mpi_mod_raw_mul(X, B, X, &m, T);
  373. ASSERT_COMPARE(X, bytes, R, bytes);
  374. /* B + A: alias X to B */
  375. memcpy(X, B, bytes);
  376. mbedtls_mpi_mod_raw_mul(X, X, A, &m, T);
  377. ASSERT_COMPARE(X, bytes, R, bytes);
  378. }
  379. exit:
  380. mbedtls_free(A);
  381. mbedtls_free(B);
  382. mbedtls_free(X);
  383. mbedtls_free(R);
  384. mbedtls_free(T);
  385. mbedtls_mpi_mod_modulus_free(&m);
  386. mbedtls_free(N);
  387. }
  388. /* END_CASE */
  389. /* END MERGE SLOT 2 */
  390. /* BEGIN MERGE SLOT 3 */
  391. /* BEGIN_CASE */
  392. void mpi_mod_raw_inv_prime(char *input_N, char *input_A, char *input_X)
  393. {
  394. mbedtls_mpi_uint *A = NULL;
  395. mbedtls_mpi_uint *N = NULL;
  396. mbedtls_mpi_uint *X = NULL;
  397. size_t A_limbs, N_limbs, X_limbs;
  398. mbedtls_mpi_uint *Y = NULL;
  399. mbedtls_mpi_uint *T = NULL;
  400. const mbedtls_mpi_uint *R2 = NULL;
  401. /* Legacy MPIs for computing R2 */
  402. mbedtls_mpi N_mpi; /* gets set up manually, aliasing N, so no need to free */
  403. mbedtls_mpi R2_mpi;
  404. mbedtls_mpi_init(&R2_mpi);
  405. TEST_EQUAL(0, mbedtls_test_read_mpi_core(&A, &A_limbs, input_A));
  406. TEST_EQUAL(0, mbedtls_test_read_mpi_core(&N, &N_limbs, input_N));
  407. TEST_EQUAL(0, mbedtls_test_read_mpi_core(&X, &X_limbs, input_X));
  408. ASSERT_ALLOC(Y, N_limbs);
  409. TEST_EQUAL(A_limbs, N_limbs);
  410. TEST_EQUAL(X_limbs, N_limbs);
  411. N_mpi.s = 1;
  412. N_mpi.p = N;
  413. N_mpi.n = N_limbs;
  414. TEST_EQUAL(0, mbedtls_mpi_core_get_mont_r2_unsafe(&R2_mpi, &N_mpi));
  415. TEST_EQUAL(0, mbedtls_mpi_grow(&R2_mpi, N_limbs));
  416. R2 = R2_mpi.p;
  417. size_t working_limbs = mbedtls_mpi_mod_raw_inv_prime_working_limbs(N_limbs);
  418. /* No point exactly duplicating the code in mbedtls_mpi_mod_raw_inv_prime_working_limbs()
  419. * to see if the output is correct, but we can check that it's in a
  420. * reasonable range. The current calculation works out as
  421. * `1 + N_limbs * (welem + 4)`, where welem is the number of elements in
  422. * the window (1 << 1 up to 1 << 6).
  423. */
  424. size_t min_expected_working_limbs = 1 + N_limbs * 5;
  425. size_t max_expected_working_limbs = 1 + N_limbs * 68;
  426. TEST_LE_U(min_expected_working_limbs, working_limbs);
  427. TEST_LE_U(working_limbs, max_expected_working_limbs);
  428. /* Should also be at least mbedtls_mpi_core_montmul_working_limbs() */
  429. TEST_LE_U(mbedtls_mpi_core_montmul_working_limbs(N_limbs),
  430. working_limbs);
  431. ASSERT_ALLOC(T, working_limbs);
  432. mbedtls_mpi_mod_raw_inv_prime(Y, A, N, N_limbs, R2, T);
  433. TEST_EQUAL(0, memcmp(X, Y, N_limbs * sizeof(mbedtls_mpi_uint)));
  434. /* Check when output aliased to input */
  435. mbedtls_mpi_mod_raw_inv_prime(A, A, N, N_limbs, R2, T);
  436. TEST_EQUAL(0, memcmp(X, A, N_limbs * sizeof(mbedtls_mpi_uint)));
  437. exit:
  438. mbedtls_free(T);
  439. mbedtls_free(A);
  440. mbedtls_free(N);
  441. mbedtls_free(X);
  442. mbedtls_free(Y);
  443. mbedtls_mpi_free(&R2_mpi);
  444. // R2 doesn't need to be freed as it is only aliasing R2_mpi
  445. // N_mpi doesn't need to be freed as it is only aliasing N
  446. }
  447. /* END_CASE */
  448. /* END MERGE SLOT 3 */
  449. /* BEGIN MERGE SLOT 4 */
  450. /* END MERGE SLOT 4 */
  451. /* BEGIN MERGE SLOT 5 */
  452. /* BEGIN_CASE */
  453. void mpi_mod_raw_add(char *input_N,
  454. char *input_A, char *input_B,
  455. char *input_S)
  456. {
  457. mbedtls_mpi_uint *A = NULL;
  458. mbedtls_mpi_uint *B = NULL;
  459. mbedtls_mpi_uint *S = NULL;
  460. mbedtls_mpi_uint *N = NULL;
  461. mbedtls_mpi_uint *X = NULL;
  462. size_t A_limbs, B_limbs, N_limbs, S_limbs;
  463. mbedtls_mpi_mod_modulus m;
  464. mbedtls_mpi_mod_modulus_init(&m);
  465. TEST_EQUAL(0, mbedtls_test_read_mpi_core(&A, &A_limbs, input_A));
  466. TEST_EQUAL(0, mbedtls_test_read_mpi_core(&B, &B_limbs, input_B));
  467. TEST_EQUAL(0, mbedtls_test_read_mpi_core(&N, &N_limbs, input_N));
  468. TEST_EQUAL(0, mbedtls_test_read_mpi_core(&S, &S_limbs, input_S));
  469. /* Modulus gives the number of limbs; all inputs must have the same. */
  470. size_t limbs = N_limbs;
  471. size_t bytes = limbs * sizeof(*A);
  472. TEST_EQUAL(A_limbs, limbs);
  473. TEST_EQUAL(B_limbs, limbs);
  474. TEST_EQUAL(S_limbs, limbs);
  475. ASSERT_ALLOC(X, limbs);
  476. TEST_EQUAL(mbedtls_mpi_mod_modulus_setup(
  477. &m, N, limbs,
  478. MBEDTLS_MPI_MOD_REP_MONTGOMERY
  479. ), 0);
  480. /* A + B => Correct result */
  481. mbedtls_mpi_mod_raw_add(X, A, B, &m);
  482. ASSERT_COMPARE(X, bytes, S, bytes);
  483. /* A + B: alias X to A => Correct result */
  484. memcpy(X, A, bytes);
  485. mbedtls_mpi_mod_raw_add(X, X, B, &m);
  486. ASSERT_COMPARE(X, bytes, S, bytes);
  487. /* A + B: alias X to B => Correct result */
  488. memcpy(X, B, bytes);
  489. mbedtls_mpi_mod_raw_add(X, A, X, &m);
  490. ASSERT_COMPARE(X, bytes, S, bytes);
  491. if (memcmp(A, B, bytes) == 0) {
  492. /* A == B: alias A and B */
  493. /* A + A => Correct result */
  494. mbedtls_mpi_mod_raw_add(X, A, A, &m);
  495. ASSERT_COMPARE(X, bytes, S, bytes);
  496. /* A + A: X, A, B all aliased together => Correct result */
  497. memcpy(X, A, bytes);
  498. mbedtls_mpi_mod_raw_add(X, X, X, &m);
  499. ASSERT_COMPARE(X, bytes, S, bytes);
  500. } else {
  501. /* A != B: test B + A */
  502. /* B + A => Correct result */
  503. mbedtls_mpi_mod_raw_add(X, B, A, &m);
  504. ASSERT_COMPARE(X, bytes, S, bytes);
  505. /* B + A: alias X to A => Correct result */
  506. memcpy(X, A, bytes);
  507. mbedtls_mpi_mod_raw_add(X, B, X, &m);
  508. ASSERT_COMPARE(X, bytes, S, bytes);
  509. /* B + A: alias X to B => Correct result */
  510. memcpy(X, B, bytes);
  511. mbedtls_mpi_mod_raw_add(X, X, A, &m);
  512. ASSERT_COMPARE(X, bytes, S, bytes);
  513. }
  514. exit:
  515. mbedtls_mpi_mod_modulus_free(&m);
  516. mbedtls_free(A);
  517. mbedtls_free(B);
  518. mbedtls_free(S);
  519. mbedtls_free(N);
  520. mbedtls_free(X);
  521. }
  522. /* END_CASE */
  523. /* END MERGE SLOT 5 */
  524. /* BEGIN MERGE SLOT 6 */
  525. /* BEGIN_CASE */
  526. void mpi_mod_raw_canonical_to_modulus_rep(const char *input_N, int rep,
  527. const char *input_A,
  528. const char *input_X)
  529. {
  530. mbedtls_mpi_mod_modulus N;
  531. mbedtls_mpi_mod_modulus_init(&N);
  532. mbedtls_mpi_uint *A = NULL;
  533. size_t A_limbs = 0;;
  534. mbedtls_mpi_uint *X = NULL;
  535. size_t X_limbs = 0;
  536. TEST_EQUAL(0, mbedtls_test_read_mpi_modulus(&N, input_N, rep));
  537. TEST_EQUAL(0, mbedtls_test_read_mpi_core(&A, &A_limbs, input_A));
  538. TEST_EQUAL(0, mbedtls_test_read_mpi_core(&X, &X_limbs, input_X));
  539. TEST_EQUAL(0, mbedtls_mpi_mod_raw_canonical_to_modulus_rep(A, &N));
  540. ASSERT_COMPARE(A, A_limbs * sizeof(mbedtls_mpi_uint),
  541. X, X_limbs * sizeof(mbedtls_mpi_uint));
  542. exit:
  543. mbedtls_test_mpi_mod_modulus_free_with_limbs(&N);
  544. mbedtls_free(A);
  545. mbedtls_free(X);
  546. }
  547. /* END_CASE */
  548. /* BEGIN_CASE */
  549. void mpi_mod_raw_modulus_to_canonical_rep(const char *input_N, int rep,
  550. const char *input_A,
  551. const char *input_X)
  552. {
  553. mbedtls_mpi_mod_modulus N;
  554. mbedtls_mpi_mod_modulus_init(&N);
  555. mbedtls_mpi_uint *A = NULL;
  556. size_t A_limbs = 0;
  557. mbedtls_mpi_uint *X = NULL;
  558. size_t X_limbs = 0;
  559. TEST_EQUAL(0, mbedtls_test_read_mpi_modulus(&N, input_N, rep));
  560. TEST_EQUAL(0, mbedtls_test_read_mpi_core(&A, &A_limbs, input_A));
  561. TEST_EQUAL(0, mbedtls_test_read_mpi_core(&X, &X_limbs, input_X));
  562. TEST_EQUAL(0, mbedtls_mpi_mod_raw_modulus_to_canonical_rep(A, &N));
  563. ASSERT_COMPARE(A, A_limbs * sizeof(mbedtls_mpi_uint),
  564. X, X_limbs * sizeof(mbedtls_mpi_uint));
  565. exit:
  566. mbedtls_test_mpi_mod_modulus_free_with_limbs(&N);
  567. mbedtls_free(A);
  568. mbedtls_free(X);
  569. }
  570. /* END_CASE */
  571. /* END MERGE SLOT 6 */
  572. /* BEGIN MERGE SLOT 7 */
  573. /* BEGIN_CASE */
  574. void mpi_mod_raw_to_mont_rep(char *input_N, char *input_A, char *input_X)
  575. {
  576. mbedtls_mpi_uint *N = NULL;
  577. mbedtls_mpi_uint *A = NULL;
  578. mbedtls_mpi_uint *R = NULL; /* for result of low-level conversion */
  579. mbedtls_mpi_uint *X = NULL;
  580. mbedtls_mpi_uint *T = NULL;
  581. size_t n_limbs, a_limbs, x_limbs;
  582. mbedtls_mpi_mod_modulus m;
  583. mbedtls_mpi_mod_modulus_init(&m);
  584. /* Read inputs */
  585. TEST_EQUAL(0, mbedtls_test_read_mpi_core(&N, &n_limbs, input_N));
  586. TEST_EQUAL(0, mbedtls_test_read_mpi_core(&A, &a_limbs, input_A));
  587. TEST_EQUAL(0, mbedtls_test_read_mpi_core(&X, &x_limbs, input_X));
  588. /* Number to convert must have same number of limbs as modulus */
  589. TEST_EQUAL(a_limbs, n_limbs);
  590. /* Higher-level conversion is in-place, so expected result must have the
  591. * same number of limbs too */
  592. TEST_EQUAL(x_limbs, n_limbs);
  593. size_t limbs = n_limbs;
  594. size_t bytes = limbs * sizeof(mbedtls_mpi_uint);
  595. TEST_EQUAL(0, mbedtls_mpi_mod_modulus_setup(&m, N, n_limbs,
  596. MBEDTLS_MPI_MOD_REP_MONTGOMERY));
  597. /* 1. Test low-level function first */
  598. /* It has separate output, and requires temporary working storage */
  599. size_t temp_limbs = mbedtls_mpi_core_montmul_working_limbs(limbs);
  600. ASSERT_ALLOC(T, temp_limbs);
  601. ASSERT_ALLOC(R, limbs);
  602. mbedtls_mpi_core_to_mont_rep(R, A, N, n_limbs,
  603. m.rep.mont.mm, m.rep.mont.rr, T);
  604. /* Test that the low-level function gives the required value */
  605. ASSERT_COMPARE(R, bytes, X, bytes);
  606. /* Test when output is aliased to input */
  607. memcpy(R, A, bytes);
  608. mbedtls_mpi_core_to_mont_rep(R, R, N, n_limbs,
  609. m.rep.mont.mm, m.rep.mont.rr, T);
  610. ASSERT_COMPARE(R, bytes, X, bytes);
  611. /* 2. Test higher-level cannonical to Montgomery conversion */
  612. TEST_EQUAL(0, mbedtls_mpi_mod_raw_to_mont_rep(A, &m));
  613. /* The result matches expected value */
  614. ASSERT_COMPARE(A, bytes, X, bytes);
  615. exit:
  616. mbedtls_mpi_mod_modulus_free(&m);
  617. mbedtls_free(T);
  618. mbedtls_free(N);
  619. mbedtls_free(A);
  620. mbedtls_free(R);
  621. mbedtls_free(X);
  622. }
  623. /* END_CASE */
  624. /* BEGIN_CASE */
  625. void mpi_mod_raw_from_mont_rep(char *input_N, char *input_A, char *input_X)
  626. {
  627. mbedtls_mpi_uint *N = NULL;
  628. mbedtls_mpi_uint *A = NULL;
  629. mbedtls_mpi_uint *R = NULL; /* for result of low-level conversion */
  630. mbedtls_mpi_uint *X = NULL;
  631. mbedtls_mpi_uint *T = NULL;
  632. size_t n_limbs, a_limbs, x_limbs;
  633. mbedtls_mpi_mod_modulus m;
  634. mbedtls_mpi_mod_modulus_init(&m);
  635. /* Read inputs */
  636. TEST_EQUAL(0, mbedtls_test_read_mpi_core(&N, &n_limbs, input_N));
  637. TEST_EQUAL(0, mbedtls_test_read_mpi_core(&A, &a_limbs, input_A));
  638. TEST_EQUAL(0, mbedtls_test_read_mpi_core(&X, &x_limbs, input_X));
  639. /* Number to convert must have same number of limbs as modulus */
  640. TEST_EQUAL(a_limbs, n_limbs);
  641. /* Higher-level conversion is in-place, so expected result must have the
  642. * same number of limbs too */
  643. TEST_EQUAL(x_limbs, n_limbs);
  644. size_t limbs = n_limbs;
  645. size_t bytes = limbs * sizeof(mbedtls_mpi_uint);
  646. TEST_EQUAL(0, mbedtls_mpi_mod_modulus_setup(&m, N, n_limbs,
  647. MBEDTLS_MPI_MOD_REP_MONTGOMERY));
  648. /* 1. Test low-level function first */
  649. /* It has separate output, and requires temporary working storage */
  650. size_t temp_limbs = mbedtls_mpi_core_montmul_working_limbs(limbs);
  651. ASSERT_ALLOC(T, temp_limbs);
  652. ASSERT_ALLOC(R, limbs);
  653. mbedtls_mpi_core_from_mont_rep(R, A, N, n_limbs,
  654. m.rep.mont.mm, T);
  655. /* Test that the low-level function gives the required value */
  656. ASSERT_COMPARE(R, bytes, X, bytes);
  657. /* Test when output is aliased to input */
  658. memcpy(R, A, bytes);
  659. mbedtls_mpi_core_from_mont_rep(R, R, N, n_limbs,
  660. m.rep.mont.mm, T);
  661. ASSERT_COMPARE(R, bytes, X, bytes);
  662. /* 2. Test higher-level Montgomery to cannonical conversion */
  663. TEST_EQUAL(0, mbedtls_mpi_mod_raw_from_mont_rep(A, &m));
  664. /* The result matches expected value */
  665. ASSERT_COMPARE(A, bytes, X, bytes);
  666. exit:
  667. mbedtls_mpi_mod_modulus_free(&m);
  668. mbedtls_free(T);
  669. mbedtls_free(N);
  670. mbedtls_free(A);
  671. mbedtls_free(R);
  672. mbedtls_free(X);
  673. }
  674. /* END_CASE */
  675. /* BEGIN_CASE */
  676. void mpi_mod_raw_neg(char *input_N, char *input_A, char *input_X)
  677. {
  678. mbedtls_mpi_uint *N = NULL;
  679. mbedtls_mpi_uint *A = NULL;
  680. mbedtls_mpi_uint *X = NULL;
  681. mbedtls_mpi_uint *R = NULL;
  682. mbedtls_mpi_uint *Z = NULL;
  683. size_t n_limbs, a_limbs, x_limbs, bytes;
  684. mbedtls_mpi_mod_modulus m;
  685. mbedtls_mpi_mod_modulus_init(&m);
  686. /* Read inputs */
  687. TEST_EQUAL(0, mbedtls_test_read_mpi_core(&N, &n_limbs, input_N));
  688. TEST_EQUAL(0, mbedtls_test_read_mpi_core(&A, &a_limbs, input_A));
  689. TEST_EQUAL(0, mbedtls_test_read_mpi_core(&X, &x_limbs, input_X));
  690. TEST_EQUAL(a_limbs, n_limbs);
  691. TEST_EQUAL(x_limbs, n_limbs);
  692. bytes = n_limbs * sizeof(mbedtls_mpi_uint);
  693. ASSERT_ALLOC(R, n_limbs);
  694. ASSERT_ALLOC(Z, n_limbs);
  695. TEST_EQUAL(0, mbedtls_mpi_mod_modulus_setup(&m, N, n_limbs,
  696. MBEDTLS_MPI_MOD_REP_MONTGOMERY));
  697. /* Neg( A == 0 ) => Zero result */
  698. mbedtls_mpi_mod_raw_neg(R, Z, &m);
  699. ASSERT_COMPARE(R, bytes, Z, bytes);
  700. /* Neg( A == N ) => Zero result */
  701. mbedtls_mpi_mod_raw_neg(R, N, &m);
  702. ASSERT_COMPARE(R, bytes, Z, bytes);
  703. /* Neg( A ) => Correct result */
  704. mbedtls_mpi_mod_raw_neg(R, A, &m);
  705. ASSERT_COMPARE(R, bytes, X, bytes);
  706. /* Neg( A ): alias A to R => Correct result */
  707. mbedtls_mpi_mod_raw_neg(A, A, &m);
  708. ASSERT_COMPARE(A, bytes, X, bytes);
  709. exit:
  710. mbedtls_mpi_mod_modulus_free(&m);
  711. mbedtls_free(N);
  712. mbedtls_free(A);
  713. mbedtls_free(X);
  714. mbedtls_free(R);
  715. mbedtls_free(Z);
  716. }
  717. /* END_CASE */
  718. /* END MERGE SLOT 7 */
  719. /* BEGIN MERGE SLOT 8 */
  720. /* END MERGE SLOT 8 */
  721. /* BEGIN MERGE SLOT 9 */
  722. /* END MERGE SLOT 9 */
  723. /* BEGIN MERGE SLOT 10 */
  724. /* END MERGE SLOT 10 */