crypto_curve25519.c 8.8 KB

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  1. /* Copyright (c) 2012-2015, The Tor Project, Inc. */
  2. /* See LICENSE for licensing information */
  3. /* Wrapper code for a curve25519 implementation. */
  4. #define CRYPTO_CURVE25519_PRIVATE
  5. #include "orconfig.h"
  6. #ifdef HAVE_SYS_STAT_H
  7. #include <sys/stat.h>
  8. #endif
  9. #include "container.h"
  10. #include "crypto.h"
  11. #include "crypto_curve25519.h"
  12. #include "crypto_format.h"
  13. #include "util.h"
  14. #include "torlog.h"
  15. #include "ed25519/donna/ed25519_donna_tor.h"
  16. /* ==============================
  17. Part 1: wrap a suitable curve25519 implementation as curve25519_impl
  18. ============================== */
  19. #ifdef USE_CURVE25519_DONNA
  20. int curve25519_donna(uint8_t *mypublic,
  21. const uint8_t *secret, const uint8_t *basepoint);
  22. #endif
  23. #ifdef USE_CURVE25519_NACL
  24. #ifdef HAVE_CRYPTO_SCALARMULT_CURVE25519_H
  25. #include <crypto_scalarmult_curve25519.h>
  26. #elif defined(HAVE_NACL_CRYPTO_SCALARMULT_CURVE25519_H)
  27. #include <nacl/crypto_scalarmult_curve25519.h>
  28. #endif
  29. #endif
  30. static void pick_curve25519_basepoint_impl(void);
  31. static int curve25519_use_ed = -1;
  32. STATIC int
  33. curve25519_impl(uint8_t *output, const uint8_t *secret,
  34. const uint8_t *basepoint)
  35. {
  36. uint8_t bp[CURVE25519_PUBKEY_LEN];
  37. int r;
  38. memcpy(bp, basepoint, CURVE25519_PUBKEY_LEN);
  39. /* Clear the high bit, in case our backend foolishly looks at it. */
  40. bp[31] &= 0x7f;
  41. #ifdef USE_CURVE25519_DONNA
  42. r = curve25519_donna(output, secret, bp);
  43. #elif defined(USE_CURVE25519_NACL)
  44. r = crypto_scalarmult_curve25519(output, secret, bp);
  45. #else
  46. #error "No implementation of curve25519 is available."
  47. #endif
  48. memwipe(bp, 0, sizeof(bp));
  49. return r;
  50. }
  51. STATIC int
  52. curve25519_basepoint_impl(uint8_t *output, const uint8_t *secret)
  53. {
  54. int r = 0;
  55. if (PREDICT_UNLIKELY(curve25519_use_ed == -1)) {
  56. pick_curve25519_basepoint_impl();
  57. }
  58. /* TODO: Someone should benchmark curved25519_scalarmult_basepoint versus
  59. * an optimized NaCl build to see which should be used when compiled with
  60. * NaCl available. I suspected that the ed25519 optimization always wins.
  61. */
  62. if (PREDICT_LIKELY(curve25519_use_ed == 1)) {
  63. curved25519_scalarmult_basepoint_donna(output, secret);
  64. r = 0;
  65. } else {
  66. static const uint8_t basepoint[32] = {9};
  67. r = curve25519_impl(output, secret, basepoint);
  68. }
  69. return r;
  70. }
  71. void
  72. curve25519_set_impl_params(int use_ed)
  73. {
  74. curve25519_use_ed = use_ed;
  75. }
  76. /* ==============================
  77. Part 2: Wrap curve25519_impl with some convenience types and functions.
  78. ============================== */
  79. /**
  80. * Return true iff a curve25519_public_key_t seems valid. (It's not necessary
  81. * to see if the point is on the curve, since the twist is also secure, but we
  82. * do need to make sure that it isn't the point at infinity.) */
  83. int
  84. curve25519_public_key_is_ok(const curve25519_public_key_t *key)
  85. {
  86. return !safe_mem_is_zero(key->public_key, CURVE25519_PUBKEY_LEN);
  87. }
  88. /**
  89. * Generate CURVE25519_SECKEY_LEN random bytes in <b>out</b>. If
  90. * <b>extra_strong</b> is true, this key is possibly going to get used more
  91. * than once, so use a better-than-usual RNG. Return 0 on success, -1 on
  92. * failure.
  93. *
  94. * This function does not adjust the output of the RNG at all; the will caller
  95. * will need to clear or set the appropriate bits to make curve25519 work.
  96. */
  97. int
  98. curve25519_rand_seckey_bytes(uint8_t *out, int extra_strong)
  99. {
  100. if (extra_strong)
  101. crypto_strongest_rand(out, CURVE25519_SECKEY_LEN);
  102. else
  103. crypto_rand((char*)out, CURVE25519_SECKEY_LEN);
  104. return 0;
  105. }
  106. /** Generate a new keypair and return the secret key. If <b>extra_strong</b>
  107. * is true, this key is possibly going to get used more than once, so
  108. * use a better-than-usual RNG. Return 0 on success, -1 on failure. */
  109. int
  110. curve25519_secret_key_generate(curve25519_secret_key_t *key_out,
  111. int extra_strong)
  112. {
  113. if (curve25519_rand_seckey_bytes(key_out->secret_key, extra_strong) < 0)
  114. return -1;
  115. key_out->secret_key[0] &= 248;
  116. key_out->secret_key[31] &= 127;
  117. key_out->secret_key[31] |= 64;
  118. return 0;
  119. }
  120. void
  121. curve25519_public_key_generate(curve25519_public_key_t *key_out,
  122. const curve25519_secret_key_t *seckey)
  123. {
  124. curve25519_basepoint_impl(key_out->public_key, seckey->secret_key);
  125. }
  126. int
  127. curve25519_keypair_generate(curve25519_keypair_t *keypair_out,
  128. int extra_strong)
  129. {
  130. if (curve25519_secret_key_generate(&keypair_out->seckey, extra_strong) < 0)
  131. return -1;
  132. curve25519_public_key_generate(&keypair_out->pubkey, &keypair_out->seckey);
  133. return 0;
  134. }
  135. /** DOCDOC */
  136. int
  137. curve25519_keypair_write_to_file(const curve25519_keypair_t *keypair,
  138. const char *fname,
  139. const char *tag)
  140. {
  141. uint8_t contents[CURVE25519_SECKEY_LEN + CURVE25519_PUBKEY_LEN];
  142. int r;
  143. memcpy(contents, keypair->seckey.secret_key, CURVE25519_SECKEY_LEN);
  144. memcpy(contents+CURVE25519_SECKEY_LEN,
  145. keypair->pubkey.public_key, CURVE25519_PUBKEY_LEN);
  146. r = crypto_write_tagged_contents_to_file(fname,
  147. "c25519v1",
  148. tag,
  149. contents,
  150. sizeof(contents));
  151. memwipe(contents, 0, sizeof(contents));
  152. return r;
  153. }
  154. /** DOCDOC */
  155. int
  156. curve25519_keypair_read_from_file(curve25519_keypair_t *keypair_out,
  157. char **tag_out,
  158. const char *fname)
  159. {
  160. uint8_t content[CURVE25519_SECKEY_LEN + CURVE25519_PUBKEY_LEN];
  161. ssize_t len;
  162. int r = -1;
  163. len = crypto_read_tagged_contents_from_file(fname, "c25519v1", tag_out,
  164. content, sizeof(content));
  165. if (len != sizeof(content))
  166. goto end;
  167. memcpy(keypair_out->seckey.secret_key, content, CURVE25519_SECKEY_LEN);
  168. curve25519_public_key_generate(&keypair_out->pubkey, &keypair_out->seckey);
  169. if (tor_memneq(keypair_out->pubkey.public_key,
  170. content + CURVE25519_SECKEY_LEN,
  171. CURVE25519_PUBKEY_LEN))
  172. goto end;
  173. r = 0;
  174. end:
  175. memwipe(content, 0, sizeof(content));
  176. if (r != 0) {
  177. memset(keypair_out, 0, sizeof(*keypair_out));
  178. tor_free(*tag_out);
  179. }
  180. return r;
  181. }
  182. /** Perform the curve25519 ECDH handshake with <b>skey</b> and <b>pkey</b>,
  183. * writing CURVE25519_OUTPUT_LEN bytes of output into <b>output</b>. */
  184. void
  185. curve25519_handshake(uint8_t *output,
  186. const curve25519_secret_key_t *skey,
  187. const curve25519_public_key_t *pkey)
  188. {
  189. curve25519_impl(output, skey->secret_key, pkey->public_key);
  190. }
  191. /** Check whether the ed25519-based curve25519 basepoint optimization seems to
  192. * be working. If so, return 0; otherwise return -1. */
  193. static int
  194. curve25519_basepoint_spot_check(void)
  195. {
  196. static const uint8_t alicesk[32] = {
  197. 0x77,0x07,0x6d,0x0a,0x73,0x18,0xa5,0x7d,
  198. 0x3c,0x16,0xc1,0x72,0x51,0xb2,0x66,0x45,
  199. 0xdf,0x4c,0x2f,0x87,0xeb,0xc0,0x99,0x2a,
  200. 0xb1,0x77,0xfb,0xa5,0x1d,0xb9,0x2c,0x2a
  201. };
  202. static const uint8_t alicepk[32] = {
  203. 0x85,0x20,0xf0,0x09,0x89,0x30,0xa7,0x54,
  204. 0x74,0x8b,0x7d,0xdc,0xb4,0x3e,0xf7,0x5a,
  205. 0x0d,0xbf,0x3a,0x0d,0x26,0x38,0x1a,0xf4,
  206. 0xeb,0xa4,0xa9,0x8e,0xaa,0x9b,0x4e,0x6a
  207. };
  208. const int loop_max=200;
  209. int save_use_ed = curve25519_use_ed;
  210. unsigned char e1[32] = { 5 };
  211. unsigned char e2[32] = { 5 };
  212. unsigned char x[32],y[32];
  213. int i;
  214. int r=0;
  215. /* Check the most basic possible sanity via the test secret/public key pair
  216. * used in "Cryptography in NaCl - 2. Secret keys and public keys". This
  217. * may catch catastrophic failures on systems where Curve25519 is expensive,
  218. * without requiring a ton of key generation.
  219. */
  220. curve25519_use_ed = 1;
  221. r |= curve25519_basepoint_impl(x, alicesk);
  222. if (fast_memneq(x, alicepk, 32))
  223. goto fail;
  224. /* Ok, the optimization appears to produce passable results, try a few more
  225. * values, maybe there's something subtle wrong.
  226. */
  227. for (i = 0; i < loop_max; ++i) {
  228. curve25519_use_ed = 0;
  229. r |= curve25519_basepoint_impl(x, e1);
  230. curve25519_use_ed = 1;
  231. r |= curve25519_basepoint_impl(y, e2);
  232. if (fast_memneq(x,y,32))
  233. goto fail;
  234. memcpy(e1, x, 32);
  235. memcpy(e2, x, 32);
  236. }
  237. goto end;
  238. fail:
  239. r = -1;
  240. end:
  241. curve25519_use_ed = save_use_ed;
  242. return r;
  243. }
  244. /** Choose whether to use the ed25519-based curve25519-basepoint
  245. * implementation. */
  246. static void
  247. pick_curve25519_basepoint_impl(void)
  248. {
  249. curve25519_use_ed = 1;
  250. if (curve25519_basepoint_spot_check() == 0)
  251. return;
  252. log_warn(LD_CRYPTO, "The ed25519-based curve25519 basepoint "
  253. "multiplication seems broken; using the curve25519 "
  254. "implementation.");
  255. curve25519_use_ed = 0;
  256. }
  257. /** Initialize the curve25519 implementations. This is necessary if you're
  258. * going to use them in a multithreaded setting, and not otherwise. */
  259. void
  260. curve25519_init(void)
  261. {
  262. pick_curve25519_basepoint_impl();
  263. }