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  1. /* Originally written by Bodo Moeller for the OpenSSL project.
  2. * ====================================================================
  3. * Copyright (c) 1998-2005 The OpenSSL Project. All rights reserved.
  4. *
  5. * Redistribution and use in source and binary forms, with or without
  6. * modification, are permitted provided that the following conditions
  7. * are met:
  8. *
  9. * 1. Redistributions of source code must retain the above copyright
  10. * notice, this list of conditions and the following disclaimer.
  11. *
  12. * 2. Redistributions in binary form must reproduce the above copyright
  13. * notice, this list of conditions and the following disclaimer in
  14. * the documentation and/or other materials provided with the
  15. * distribution.
  16. *
  17. * 3. All advertising materials mentioning features or use of this
  18. * software must display the following acknowledgment:
  19. * "This product includes software developed by the OpenSSL Project
  20. * for use in the OpenSSL Toolkit. (http://www.openssl.org/)"
  21. *
  22. * 4. The names "OpenSSL Toolkit" and "OpenSSL Project" must not be used to
  23. * endorse or promote products derived from this software without
  24. * prior written permission. For written permission, please contact
  25. * openssl-core@openssl.org.
  26. *
  27. * 5. Products derived from this software may not be called "OpenSSL"
  28. * nor may "OpenSSL" appear in their names without prior written
  29. * permission of the OpenSSL Project.
  30. *
  31. * 6. Redistributions of any form whatsoever must retain the following
  32. * acknowledgment:
  33. * "This product includes software developed by the OpenSSL Project
  34. * for use in the OpenSSL Toolkit (http://www.openssl.org/)"
  35. *
  36. * THIS SOFTWARE IS PROVIDED BY THE OpenSSL PROJECT ``AS IS'' AND ANY
  37. * EXPRESSED OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
  38. * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
  39. * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE OpenSSL PROJECT OR
  40. * ITS CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
  41. * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
  42. * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
  43. * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
  44. * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT,
  45. * STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
  46. * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED
  47. * OF THE POSSIBILITY OF SUCH DAMAGE.
  48. * ====================================================================
  49. *
  50. * This product includes cryptographic software written by Eric Young
  51. * (eay@cryptsoft.com). This product includes software written by Tim
  52. * Hudson (tjh@cryptsoft.com).
  53. *
  54. */
  55. /* ====================================================================
  56. * Copyright 2002 Sun Microsystems, Inc. ALL RIGHTS RESERVED.
  57. *
  58. * Portions of the attached software ("Contribution") are developed by
  59. * SUN MICROSYSTEMS, INC., and are contributed to the OpenSSL project.
  60. *
  61. * The Contribution is licensed pursuant to the OpenSSL open source
  62. * license provided above.
  63. *
  64. * The elliptic curve binary polynomial software is originally written by
  65. * Sheueling Chang Shantz and Douglas Stebila of Sun Microsystems
  66. * Laboratories. */
  67. #ifndef OPENSSL_HEADER_EC_H
  68. #define OPENSSL_HEADER_EC_H
  69. #include <openssl/base.h>
  70. #if defined(__cplusplus)
  71. extern "C" {
  72. #endif
  73. // Low-level operations on elliptic curves.
  74. // point_conversion_form_t enumerates forms, as defined in X9.62 (ECDSA), for
  75. // the encoding of a elliptic curve point (x,y)
  76. typedef enum {
  77. // POINT_CONVERSION_COMPRESSED indicates that the point is encoded as z||x,
  78. // where the octet z specifies which solution of the quadratic equation y
  79. // is.
  80. POINT_CONVERSION_COMPRESSED = 2,
  81. // POINT_CONVERSION_UNCOMPRESSED indicates that the point is encoded as
  82. // z||x||y, where z is the octet 0x04.
  83. POINT_CONVERSION_UNCOMPRESSED = 4,
  84. // POINT_CONVERSION_HYBRID indicates that the point is encoded as z||x||y,
  85. // where z specifies which solution of the quadratic equation y is. This is
  86. // not supported by the code and has never been observed in use.
  87. //
  88. // TODO(agl): remove once node.js no longer references this.
  89. POINT_CONVERSION_HYBRID = 6,
  90. } point_conversion_form_t;
  91. // Elliptic curve groups.
  92. // EC_GROUP_new_by_curve_name returns a fresh EC_GROUP object for the elliptic
  93. // curve specified by |nid|, or NULL on error.
  94. //
  95. // The supported NIDs are:
  96. // NID_secp224r1 (P-224),
  97. // NID_X9_62_prime256v1 (P-256),
  98. // NID_secp384r1 (P-384),
  99. // NID_secp521r1 (P-521)
  100. //
  101. // If in doubt, use |NID_X9_62_prime256v1|, or see the curve25519.h header for
  102. // more modern primitives.
  103. OPENSSL_EXPORT EC_GROUP *EC_GROUP_new_by_curve_name(int nid);
  104. // EC_GROUP_free releases a reference to |group|.
  105. OPENSSL_EXPORT void EC_GROUP_free(EC_GROUP *group);
  106. // EC_GROUP_dup takes a reference to |a| and returns it.
  107. OPENSSL_EXPORT EC_GROUP *EC_GROUP_dup(const EC_GROUP *a);
  108. // EC_GROUP_cmp returns zero if |a| and |b| are the same group and non-zero
  109. // otherwise.
  110. OPENSSL_EXPORT int EC_GROUP_cmp(const EC_GROUP *a, const EC_GROUP *b,
  111. BN_CTX *ignored);
  112. // EC_GROUP_get0_generator returns a pointer to the internal |EC_POINT| object
  113. // in |group| that specifies the generator for the group.
  114. OPENSSL_EXPORT const EC_POINT *EC_GROUP_get0_generator(const EC_GROUP *group);
  115. // EC_GROUP_get0_order returns a pointer to the internal |BIGNUM| object in
  116. // |group| that specifies the order of the group.
  117. OPENSSL_EXPORT const BIGNUM *EC_GROUP_get0_order(const EC_GROUP *group);
  118. // EC_GROUP_get_cofactor sets |*cofactor| to the cofactor of |group| using
  119. // |ctx|, if it's not NULL. It returns one on success and zero otherwise.
  120. OPENSSL_EXPORT int EC_GROUP_get_cofactor(const EC_GROUP *group,
  121. BIGNUM *cofactor, BN_CTX *ctx);
  122. // EC_GROUP_get_curve_GFp gets various parameters about a group. It sets
  123. // |*out_p| to the order of the coordinate field and |*out_a| and |*out_b| to
  124. // the parameters of the curve when expressed as y² = x³ + ax + b. Any of the
  125. // output parameters can be NULL. It returns one on success and zero on
  126. // error.
  127. OPENSSL_EXPORT int EC_GROUP_get_curve_GFp(const EC_GROUP *group, BIGNUM *out_p,
  128. BIGNUM *out_a, BIGNUM *out_b,
  129. BN_CTX *ctx);
  130. // EC_GROUP_get_curve_name returns a NID that identifies |group|.
  131. OPENSSL_EXPORT int EC_GROUP_get_curve_name(const EC_GROUP *group);
  132. // EC_GROUP_get_degree returns the number of bits needed to represent an
  133. // element of the field underlying |group|.
  134. OPENSSL_EXPORT unsigned EC_GROUP_get_degree(const EC_GROUP *group);
  135. // Points on elliptic curves.
  136. // EC_POINT_new returns a fresh |EC_POINT| object in the given group, or NULL
  137. // on error.
  138. OPENSSL_EXPORT EC_POINT *EC_POINT_new(const EC_GROUP *group);
  139. // EC_POINT_free frees |point| and the data that it points to.
  140. OPENSSL_EXPORT void EC_POINT_free(EC_POINT *point);
  141. // EC_POINT_copy sets |*dest| equal to |*src|. It returns one on success and
  142. // zero otherwise.
  143. OPENSSL_EXPORT int EC_POINT_copy(EC_POINT *dest, const EC_POINT *src);
  144. // EC_POINT_dup returns a fresh |EC_POINT| that contains the same values as
  145. // |src|, or NULL on error.
  146. OPENSSL_EXPORT EC_POINT *EC_POINT_dup(const EC_POINT *src,
  147. const EC_GROUP *group);
  148. // EC_POINT_set_to_infinity sets |point| to be the "point at infinity" for the
  149. // given group.
  150. OPENSSL_EXPORT int EC_POINT_set_to_infinity(const EC_GROUP *group,
  151. EC_POINT *point);
  152. // EC_POINT_is_at_infinity returns one iff |point| is the point at infinity and
  153. // zero otherwise.
  154. OPENSSL_EXPORT int EC_POINT_is_at_infinity(const EC_GROUP *group,
  155. const EC_POINT *point);
  156. // EC_POINT_is_on_curve returns one if |point| is an element of |group| and
  157. // and zero otherwise or when an error occurs. This is different from OpenSSL,
  158. // which returns -1 on error. If |ctx| is non-NULL, it may be used.
  159. OPENSSL_EXPORT int EC_POINT_is_on_curve(const EC_GROUP *group,
  160. const EC_POINT *point, BN_CTX *ctx);
  161. // EC_POINT_cmp returns zero if |a| is equal to |b|, greater than zero if
  162. // not equal and -1 on error. If |ctx| is not NULL, it may be used.
  163. OPENSSL_EXPORT int EC_POINT_cmp(const EC_GROUP *group, const EC_POINT *a,
  164. const EC_POINT *b, BN_CTX *ctx);
  165. // Point conversion.
  166. // EC_POINT_get_affine_coordinates_GFp sets |x| and |y| to the affine value of
  167. // |point| using |ctx|, if it's not NULL. It returns one on success and zero
  168. // otherwise.
  169. //
  170. // Either |x| or |y| may be NULL to skip computing that coordinate. This is
  171. // slightly faster in the common case where only the x-coordinate is needed.
  172. OPENSSL_EXPORT int EC_POINT_get_affine_coordinates_GFp(const EC_GROUP *group,
  173. const EC_POINT *point,
  174. BIGNUM *x, BIGNUM *y,
  175. BN_CTX *ctx);
  176. // EC_POINT_set_affine_coordinates_GFp sets the value of |point| to be
  177. // (|x|, |y|). The |ctx| argument may be used if not NULL. It returns one
  178. // on success or zero on error. Note that, unlike with OpenSSL, it's
  179. // considered an error if the point is not on the curve.
  180. OPENSSL_EXPORT int EC_POINT_set_affine_coordinates_GFp(const EC_GROUP *group,
  181. EC_POINT *point,
  182. const BIGNUM *x,
  183. const BIGNUM *y,
  184. BN_CTX *ctx);
  185. // EC_POINT_point2oct serialises |point| into the X9.62 form given by |form|
  186. // into, at most, |len| bytes at |buf|. It returns the number of bytes written
  187. // or zero on error if |buf| is non-NULL, else the number of bytes needed. The
  188. // |ctx| argument may be used if not NULL.
  189. OPENSSL_EXPORT size_t EC_POINT_point2oct(const EC_GROUP *group,
  190. const EC_POINT *point,
  191. point_conversion_form_t form,
  192. uint8_t *buf, size_t len, BN_CTX *ctx);
  193. // EC_POINT_point2cbb behaves like |EC_POINT_point2oct| but appends the
  194. // serialised point to |cbb|. It returns one on success and zero on error.
  195. OPENSSL_EXPORT int EC_POINT_point2cbb(CBB *out, const EC_GROUP *group,
  196. const EC_POINT *point,
  197. point_conversion_form_t form,
  198. BN_CTX *ctx);
  199. // EC_POINT_oct2point sets |point| from |len| bytes of X9.62 format
  200. // serialisation in |buf|. It returns one on success and zero otherwise. The
  201. // |ctx| argument may be used if not NULL.
  202. OPENSSL_EXPORT int EC_POINT_oct2point(const EC_GROUP *group, EC_POINT *point,
  203. const uint8_t *buf, size_t len,
  204. BN_CTX *ctx);
  205. // EC_POINT_set_compressed_coordinates_GFp sets |point| to equal the point with
  206. // the given |x| coordinate and the y coordinate specified by |y_bit| (see
  207. // X9.62). It returns one on success and zero otherwise.
  208. OPENSSL_EXPORT int EC_POINT_set_compressed_coordinates_GFp(
  209. const EC_GROUP *group, EC_POINT *point, const BIGNUM *x, int y_bit,
  210. BN_CTX *ctx);
  211. // Group operations.
  212. // EC_POINT_add sets |r| equal to |a| plus |b|. It returns one on success and
  213. // zero otherwise. If |ctx| is not NULL, it may be used.
  214. OPENSSL_EXPORT int EC_POINT_add(const EC_GROUP *group, EC_POINT *r,
  215. const EC_POINT *a, const EC_POINT *b,
  216. BN_CTX *ctx);
  217. // EC_POINT_dbl sets |r| equal to |a| plus |a|. It returns one on success and
  218. // zero otherwise. If |ctx| is not NULL, it may be used.
  219. OPENSSL_EXPORT int EC_POINT_dbl(const EC_GROUP *group, EC_POINT *r,
  220. const EC_POINT *a, BN_CTX *ctx);
  221. // EC_POINT_invert sets |a| equal to minus |a|. It returns one on success and
  222. // zero otherwise. If |ctx| is not NULL, it may be used.
  223. OPENSSL_EXPORT int EC_POINT_invert(const EC_GROUP *group, EC_POINT *a,
  224. BN_CTX *ctx);
  225. // EC_POINT_mul sets r = generator*n + q*m. It returns one on success and zero
  226. // otherwise. If |ctx| is not NULL, it may be used.
  227. OPENSSL_EXPORT int EC_POINT_mul(const EC_GROUP *group, EC_POINT *r,
  228. const BIGNUM *n, const EC_POINT *q,
  229. const BIGNUM *m, BN_CTX *ctx);
  230. // Deprecated functions.
  231. // EC_GROUP_new_curve_GFp creates a new, arbitrary elliptic curve group based
  232. // on the equation y² = x³ + a·x + b. It returns the new group or NULL on
  233. // error.
  234. //
  235. // This new group has no generator. It is an error to use a generator-less group
  236. // with any functions except for |EC_GROUP_free|, |EC_POINT_new|,
  237. // |EC_POINT_set_affine_coordinates_GFp|, and |EC_GROUP_set_generator|.
  238. //
  239. // |EC_GROUP|s returned by this function will always compare as unequal via
  240. // |EC_GROUP_cmp| (even to themselves). |EC_GROUP_get_curve_name| will always
  241. // return |NID_undef|.
  242. //
  243. // Avoid using arbitrary curves and use |EC_GROUP_new_by_curve_name| instead.
  244. OPENSSL_EXPORT EC_GROUP *EC_GROUP_new_curve_GFp(const BIGNUM *p,
  245. const BIGNUM *a,
  246. const BIGNUM *b, BN_CTX *ctx);
  247. // EC_GROUP_set_generator sets the generator for |group| to |generator|, which
  248. // must have the given order and cofactor. It may only be used with |EC_GROUP|
  249. // objects returned by |EC_GROUP_new_curve_GFp| and may only be used once on
  250. // each group. |generator| must have been created using |group|.
  251. OPENSSL_EXPORT int EC_GROUP_set_generator(EC_GROUP *group,
  252. const EC_POINT *generator,
  253. const BIGNUM *order,
  254. const BIGNUM *cofactor);
  255. // EC_GROUP_get_order sets |*order| to the order of |group|, if it's not
  256. // NULL. It returns one on success and zero otherwise. |ctx| is ignored. Use
  257. // |EC_GROUP_get0_order| instead.
  258. OPENSSL_EXPORT int EC_GROUP_get_order(const EC_GROUP *group, BIGNUM *order,
  259. BN_CTX *ctx);
  260. // EC_GROUP_set_asn1_flag does nothing.
  261. OPENSSL_EXPORT void EC_GROUP_set_asn1_flag(EC_GROUP *group, int flag);
  262. #define OPENSSL_EC_NAMED_CURVE 0
  263. typedef struct ec_method_st EC_METHOD;
  264. // EC_GROUP_method_of returns NULL.
  265. OPENSSL_EXPORT const EC_METHOD *EC_GROUP_method_of(const EC_GROUP *group);
  266. // EC_METHOD_get_field_type returns NID_X9_62_prime_field.
  267. OPENSSL_EXPORT int EC_METHOD_get_field_type(const EC_METHOD *meth);
  268. // EC_GROUP_set_point_conversion_form aborts the process if |form| is not
  269. // |POINT_CONVERSION_UNCOMPRESSED| and otherwise does nothing.
  270. OPENSSL_EXPORT void EC_GROUP_set_point_conversion_form(
  271. EC_GROUP *group, point_conversion_form_t form);
  272. // EC_builtin_curve describes a supported elliptic curve.
  273. typedef struct {
  274. int nid;
  275. const char *comment;
  276. } EC_builtin_curve;
  277. // EC_get_builtin_curves writes at most |max_num_curves| elements to
  278. // |out_curves| and returns the total number that it would have written, had
  279. // |max_num_curves| been large enough.
  280. //
  281. // The |EC_builtin_curve| items describe the supported elliptic curves.
  282. OPENSSL_EXPORT size_t EC_get_builtin_curves(EC_builtin_curve *out_curves,
  283. size_t max_num_curves);
  284. // EC_POINT_clear_free calls |EC_POINT_free|.
  285. OPENSSL_EXPORT void EC_POINT_clear_free(EC_POINT *point);
  286. // Old code expects to get EC_KEY from ec.h.
  287. #include <openssl/ec_key.h>
  288. #if defined(__cplusplus)
  289. } // extern C
  290. extern "C++" {
  291. namespace bssl {
  292. BORINGSSL_MAKE_DELETER(EC_POINT, EC_POINT_free)
  293. BORINGSSL_MAKE_DELETER(EC_GROUP, EC_GROUP_free)
  294. } // namespace bssl
  295. } // extern C++
  296. #endif
  297. #define EC_R_BUFFER_TOO_SMALL 100
  298. #define EC_R_COORDINATES_OUT_OF_RANGE 101
  299. #define EC_R_D2I_ECPKPARAMETERS_FAILURE 102
  300. #define EC_R_EC_GROUP_NEW_BY_NAME_FAILURE 103
  301. #define EC_R_GROUP2PKPARAMETERS_FAILURE 104
  302. #define EC_R_I2D_ECPKPARAMETERS_FAILURE 105
  303. #define EC_R_INCOMPATIBLE_OBJECTS 106
  304. #define EC_R_INVALID_COMPRESSED_POINT 107
  305. #define EC_R_INVALID_COMPRESSION_BIT 108
  306. #define EC_R_INVALID_ENCODING 109
  307. #define EC_R_INVALID_FIELD 110
  308. #define EC_R_INVALID_FORM 111
  309. #define EC_R_INVALID_GROUP_ORDER 112
  310. #define EC_R_INVALID_PRIVATE_KEY 113
  311. #define EC_R_MISSING_PARAMETERS 114
  312. #define EC_R_MISSING_PRIVATE_KEY 115
  313. #define EC_R_NON_NAMED_CURVE 116
  314. #define EC_R_NOT_INITIALIZED 117
  315. #define EC_R_PKPARAMETERS2GROUP_FAILURE 118
  316. #define EC_R_POINT_AT_INFINITY 119
  317. #define EC_R_POINT_IS_NOT_ON_CURVE 120
  318. #define EC_R_SLOT_FULL 121
  319. #define EC_R_UNDEFINED_GENERATOR 122
  320. #define EC_R_UNKNOWN_GROUP 123
  321. #define EC_R_UNKNOWN_ORDER 124
  322. #define EC_R_WRONG_ORDER 125
  323. #define EC_R_BIGNUM_OUT_OF_RANGE 126
  324. #define EC_R_WRONG_CURVE_PARAMETERS 127
  325. #define EC_R_DECODE_ERROR 128
  326. #define EC_R_ENCODE_ERROR 129
  327. #define EC_R_GROUP_MISMATCH 130
  328. #define EC_R_INVALID_COFACTOR 131
  329. #define EC_R_PUBLIC_KEY_VALIDATION_FAILED 132
  330. #define EC_R_INVALID_SCALAR 133
  331. #endif // OPENSSL_HEADER_EC_H