Bitcoin Core  31.0.0
P2P Digital Currency
secp256k1.c
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1 /***********************************************************************
2  * Copyright (c) 2013-2015 Pieter Wuille *
3  * Distributed under the MIT software license, see the accompanying *
4  * file COPYING or https://www.opensource.org/licenses/mit-license.php.*
5  ***********************************************************************/
6 
7 /* This is a C project. It should not be compiled with a C++ compiler,
8  * and we error out if we detect one.
9  *
10  * We still want to be able to test the project with a C++ compiler
11  * because it is still good to know if this will lead to real trouble, so
12  * there is a possibility to override the check. But be warned that
13  * compiling with a C++ compiler is not supported. */
14 #if defined(__cplusplus) && !defined(SECP256K1_CPLUSPLUS_TEST_OVERRIDE)
15 #error Trying to compile a C project with a C++ compiler.
16 #endif
17 
18 #define SECP256K1_BUILD
19 
20 #include "../include/secp256k1.h"
21 #include "../include/secp256k1_preallocated.h"
22 
23 #include "assumptions.h"
24 #include "checkmem.h"
25 #include "util.h"
26 
27 #include "field_impl.h"
28 #include "scalar_impl.h"
29 #include "group_impl.h"
30 #include "ecmult_impl.h"
31 #include "ecmult_const_impl.h"
32 #include "ecmult_gen_impl.h"
33 #include "ecdsa_impl.h"
34 #include "eckey_impl.h"
35 #include "hash_impl.h"
36 #include "int128_impl.h"
37 #include "scratch_impl.h"
38 #include "selftest.h"
39 #include "hsort_impl.h"
40 
41 #ifdef SECP256K1_NO_BUILD
42 # error "secp256k1.h processed without SECP256K1_BUILD defined while building secp256k1.c"
43 #endif
44 
45 #define ARG_CHECK(cond) do { \
46  if (EXPECT(!(cond), 0)) { \
47  secp256k1_callback_call(&ctx->illegal_callback, #cond); \
48  return 0; \
49  } \
50 } while(0)
51 
52 #define ARG_CHECK_VOID(cond) do { \
53  if (EXPECT(!(cond), 0)) { \
54  secp256k1_callback_call(&ctx->illegal_callback, #cond); \
55  return; \
56  } \
57 } while(0)
58 
59 /* Note that whenever you change the context struct, you must also change the
60  * context_eq function. */
66 };
67 
69  { 0 },
72  0
73 };
76 
77 /* Helper function that determines if a context is proper, i.e., is not the static context or a copy thereof.
78  *
79  * This is intended for "context" functions such as secp256k1_context_clone. Functions that need specific
80  * features of a context should still check for these features directly. For example, a function that needs
81  * ecmult_gen should directly check for the existence of the ecmult_gen context. */
84 }
85 
86 void secp256k1_selftest(void) {
88  secp256k1_callback_call(&default_error_callback, "self test failed");
89  }
90 }
91 
93  size_t ret = sizeof(secp256k1_context);
94  /* A return value of 0 is reserved as an indicator for errors when we call this function internally. */
95  VERIFY_CHECK(ret != 0);
96 
99  "Invalid flags");
100  return 0;
101  }
102 
105  "Declassify flag requires running with memory checking");
106  return 0;
107  }
108 
109  return ret;
110 }
111 
113  VERIFY_CHECK(ctx != NULL);
115  return sizeof(secp256k1_context);
116 }
117 
119  size_t prealloc_size;
121 
123 
125  if (prealloc_size == 0) {
126  return NULL;
127  }
128  VERIFY_CHECK(prealloc != NULL);
129  ret = (secp256k1_context*)prealloc;
130  ret->illegal_callback = default_illegal_callback;
131  ret->error_callback = default_error_callback;
132 
133  /* Flags have been checked by secp256k1_context_preallocated_size. */
135  secp256k1_ecmult_gen_context_build(&ret->ecmult_gen_ctx);
137 
138  return ret;
139 }
140 
142  size_t const prealloc_size = secp256k1_context_preallocated_size(flags);
144  if (EXPECT(secp256k1_context_preallocated_create(ctx, flags) == NULL, 0)) {
145  free(ctx);
146  return NULL;
147  }
148 
149  return ctx;
150 }
151 
154  VERIFY_CHECK(ctx != NULL);
155  ARG_CHECK(prealloc != NULL);
157 
158  ret = (secp256k1_context*)prealloc;
159  *ret = *ctx;
160  return ret;
161 }
162 
165  size_t prealloc_size;
166 
167  VERIFY_CHECK(ctx != NULL);
169 
170  prealloc_size = secp256k1_context_preallocated_clone_size(ctx);
171  ret = (secp256k1_context*)checked_malloc(&ctx->error_callback, prealloc_size);
173  return ret;
174 }
175 
177  ARG_CHECK_VOID(ctx == NULL || secp256k1_context_is_proper(ctx));
178 
179  /* Defined as noop */
180  if (ctx == NULL) {
181  return;
182  }
183 
185 }
186 
188  ARG_CHECK_VOID(ctx == NULL || secp256k1_context_is_proper(ctx));
189 
190  /* Defined as noop */
191  if (ctx == NULL) {
192  return;
193  }
194 
196  free(ctx);
197 }
198 
199 void secp256k1_context_set_illegal_callback(secp256k1_context* ctx, void (*fun)(const char* message, void* data), const void* data) {
200  /* We compare pointers instead of checking secp256k1_context_is_proper() here
201  because setting callbacks is allowed on *copies* of the static context:
202  it's harmless and makes testing easier. */
204  if (fun == NULL) {
206  }
207  ctx->illegal_callback.fn = fun;
208  ctx->illegal_callback.data = data;
209 }
210 
211 void secp256k1_context_set_error_callback(secp256k1_context* ctx, void (*fun)(const char* message, void* data), const void* data) {
212  /* We compare pointers instead of checking secp256k1_context_is_proper() here
213  because setting callbacks is allowed on *copies* of the static context:
214  it's harmless and makes testing easier. */
216  if (fun == NULL) {
218  }
219  ctx->error_callback.fn = fun;
220  ctx->error_callback.data = data;
221 }
222 
224  VERIFY_CHECK(ctx != NULL);
225  return secp256k1_scratch_create(&ctx->error_callback, max_size);
226 }
227 
229  VERIFY_CHECK(ctx != NULL);
231 }
232 
233 /* Mark memory as no-longer-secret for the purpose of analysing constant-time behaviour
234  * of the software.
235  */
236 static SECP256K1_INLINE void secp256k1_declassify(const secp256k1_context* ctx, const void *p, size_t len) {
237  if (EXPECT(ctx->declassify, 0)) SECP256K1_CHECKMEM_DEFINE(p, len);
238 }
239 
240 static int secp256k1_pubkey_load(const secp256k1_context* ctx, secp256k1_ge* ge, const secp256k1_pubkey* pubkey) {
241  secp256k1_ge_from_bytes(ge, pubkey->data);
243  return 1;
244 }
245 
247  secp256k1_ge_to_bytes(pubkey->data, ge);
248 }
249 
250 int secp256k1_ec_pubkey_parse(const secp256k1_context* ctx, secp256k1_pubkey* pubkey, const unsigned char *input, size_t inputlen) {
251  secp256k1_ge Q;
252 
253  VERIFY_CHECK(ctx != NULL);
254  ARG_CHECK(pubkey != NULL);
255  memset(pubkey, 0, sizeof(*pubkey));
256  ARG_CHECK(input != NULL);
257  if (!secp256k1_eckey_pubkey_parse(&Q, input, inputlen)) {
258  return 0;
259  }
261  return 0;
262  }
263  secp256k1_pubkey_save(pubkey, &Q);
264  secp256k1_ge_clear(&Q);
265  return 1;
266 }
267 
268 int secp256k1_ec_pubkey_serialize(const secp256k1_context* ctx, unsigned char *output, size_t *outputlen, const secp256k1_pubkey* pubkey, unsigned int flags) {
269  secp256k1_ge Q;
270  size_t len;
271 
272  VERIFY_CHECK(ctx != NULL);
273  ARG_CHECK(outputlen != NULL);
274  ARG_CHECK(*outputlen >= ((flags & SECP256K1_FLAGS_BIT_COMPRESSION) ? 33u : 65u));
275  len = *outputlen;
276  *outputlen = 0;
277  ARG_CHECK(output != NULL);
278  memset(output, 0, len);
279  ARG_CHECK(pubkey != NULL);
281  if (secp256k1_pubkey_load(ctx, &Q, pubkey)) {
284  *outputlen = 33;
285  } else {
287  *outputlen = 65;
288  }
289  return 1;
290  }
291  return 0;
292 }
293 
294 int secp256k1_ec_pubkey_cmp(const secp256k1_context* ctx, const secp256k1_pubkey* pubkey0, const secp256k1_pubkey* pubkey1) {
295  unsigned char out[2][33];
296  const secp256k1_pubkey* pk[2];
297  int i;
298 
299  VERIFY_CHECK(ctx != NULL);
300  pk[0] = pubkey0; pk[1] = pubkey1;
301  for (i = 0; i < 2; i++) {
302  size_t out_size = sizeof(out[i]);
303  /* If the public key is NULL or invalid, ec_pubkey_serialize will call
304  * the illegal_callback and return 0. In that case we will serialize the
305  * key as all zeros which is less than any valid public key. This
306  * results in consistent comparisons even if NULL or invalid pubkeys are
307  * involved and prevents edge cases such as sorting algorithms that use
308  * this function and do not terminate as a result. */
309  if (!secp256k1_ec_pubkey_serialize(ctx, out[i], &out_size, pk[i], SECP256K1_EC_COMPRESSED)) {
310  /* Note that ec_pubkey_serialize should already set the output to
311  * zero in that case, but it's not guaranteed by the API, we can't
312  * test it and writing a VERIFY_CHECK is more complex than
313  * explicitly memsetting (again). */
314  memset(out[i], 0, sizeof(out[i]));
315  }
316  }
317  return secp256k1_memcmp_var(out[0], out[1], sizeof(out[0]));
318 }
319 
320 static int secp256k1_ec_pubkey_sort_cmp(const void* pk1, const void* pk2, void *ctx) {
322  *(secp256k1_pubkey **)pk1,
323  *(secp256k1_pubkey **)pk2);
324 }
325 
326 int secp256k1_ec_pubkey_sort(const secp256k1_context* ctx, const secp256k1_pubkey **pubkeys, size_t n_pubkeys) {
327  size_t i;
328 
329  VERIFY_CHECK(ctx != NULL);
330  ARG_CHECK(pubkeys != NULL);
331  for (i = 0; i < n_pubkeys; i++) {
332  ARG_CHECK(pubkeys[i] != NULL);
333  }
334 
335  /* Suppress wrong warning (fixed in MSVC 19.33) */
336  #if defined(_MSC_VER) && (_MSC_VER < 1933)
337  #pragma warning(push)
338  #pragma warning(disable: 4090)
339  #endif
340 
341  /* Casting away const is fine because neither secp256k1_hsort nor
342  * secp256k1_ec_pubkey_sort_cmp modify the data pointed to by the cmp_data
343  * argument. */
344  secp256k1_hsort(pubkeys, n_pubkeys, sizeof(*pubkeys), secp256k1_ec_pubkey_sort_cmp, (void *)ctx);
345 
346  #if defined(_MSC_VER) && (_MSC_VER < 1933)
347  #pragma warning(pop)
348  #endif
349 
350  return 1;
351 }
352 
354  (void)ctx;
355  if (sizeof(secp256k1_scalar) == 32) {
356  /* When the secp256k1_scalar type is exactly 32 byte, use its
357  * representation inside secp256k1_ecdsa_signature, as conversion is very fast.
358  * Note that secp256k1_ecdsa_signature_save must use the same representation. */
359  memcpy(r, &sig->data[0], 32);
360  memcpy(s, &sig->data[32], 32);
361  } else {
362  secp256k1_scalar_set_b32(r, &sig->data[0], NULL);
363  secp256k1_scalar_set_b32(s, &sig->data[32], NULL);
364  }
365 }
366 
368  if (sizeof(secp256k1_scalar) == 32) {
369  memcpy(&sig->data[0], r, 32);
370  memcpy(&sig->data[32], s, 32);
371  } else {
372  secp256k1_scalar_get_b32(&sig->data[0], r);
373  secp256k1_scalar_get_b32(&sig->data[32], s);
374  }
375 }
376 
377 int secp256k1_ecdsa_signature_parse_der(const secp256k1_context* ctx, secp256k1_ecdsa_signature* sig, const unsigned char *input, size_t inputlen) {
378  secp256k1_scalar r, s;
379 
380  VERIFY_CHECK(ctx != NULL);
381  ARG_CHECK(sig != NULL);
382  ARG_CHECK(input != NULL);
383 
384  if (secp256k1_ecdsa_sig_parse(&r, &s, input, inputlen)) {
386  return 1;
387  } else {
388  memset(sig, 0, sizeof(*sig));
389  return 0;
390  }
391 }
392 
393 int secp256k1_ecdsa_signature_parse_compact(const secp256k1_context* ctx, secp256k1_ecdsa_signature* sig, const unsigned char *input64) {
394  secp256k1_scalar r, s;
395  int ret = 1;
396  int overflow = 0;
397 
398  VERIFY_CHECK(ctx != NULL);
399  ARG_CHECK(sig != NULL);
400  ARG_CHECK(input64 != NULL);
401 
402  secp256k1_scalar_set_b32(&r, &input64[0], &overflow);
403  ret &= !overflow;
404  secp256k1_scalar_set_b32(&s, &input64[32], &overflow);
405  ret &= !overflow;
406  if (ret) {
408  } else {
409  memset(sig, 0, sizeof(*sig));
410  }
411  return ret;
412 }
413 
414 int secp256k1_ecdsa_signature_serialize_der(const secp256k1_context* ctx, unsigned char *output, size_t *outputlen, const secp256k1_ecdsa_signature* sig) {
415  secp256k1_scalar r, s;
416 
417  VERIFY_CHECK(ctx != NULL);
418  ARG_CHECK(output != NULL);
419  ARG_CHECK(outputlen != NULL);
420  ARG_CHECK(sig != NULL);
421 
422  secp256k1_ecdsa_signature_load(ctx, &r, &s, sig);
423  return secp256k1_ecdsa_sig_serialize(output, outputlen, &r, &s);
424 }
425 
427  secp256k1_scalar r, s;
428 
429  VERIFY_CHECK(ctx != NULL);
430  ARG_CHECK(output64 != NULL);
431  ARG_CHECK(sig != NULL);
432 
433  secp256k1_ecdsa_signature_load(ctx, &r, &s, sig);
434  secp256k1_scalar_get_b32(&output64[0], &r);
435  secp256k1_scalar_get_b32(&output64[32], &s);
436  return 1;
437 }
438 
440  secp256k1_scalar r, s;
441  int ret = 0;
442 
443  VERIFY_CHECK(ctx != NULL);
444  ARG_CHECK(sigin != NULL);
445 
446  secp256k1_ecdsa_signature_load(ctx, &r, &s, sigin);
448  if (sigout != NULL) {
449  if (ret) {
451  }
452  secp256k1_ecdsa_signature_save(sigout, &r, &s);
453  }
454 
455  return ret;
456 }
457 
458 int secp256k1_ecdsa_verify(const secp256k1_context* ctx, const secp256k1_ecdsa_signature *sig, const unsigned char *msghash32, const secp256k1_pubkey *pubkey) {
459  secp256k1_ge q;
460  secp256k1_scalar r, s;
462  VERIFY_CHECK(ctx != NULL);
463  ARG_CHECK(msghash32 != NULL);
464  ARG_CHECK(sig != NULL);
465  ARG_CHECK(pubkey != NULL);
466 
467  secp256k1_scalar_set_b32(&m, msghash32, NULL);
468  secp256k1_ecdsa_signature_load(ctx, &r, &s, sig);
469  return (!secp256k1_scalar_is_high(&s) &&
470  secp256k1_pubkey_load(ctx, &q, pubkey) &&
471  secp256k1_ecdsa_sig_verify(&r, &s, &q, &m));
472 }
473 
474 static SECP256K1_INLINE void buffer_append(unsigned char *buf, unsigned int *offset, const void *data, unsigned int len) {
475  memcpy(buf + *offset, data, len);
476  *offset += len;
477 }
478 
479 static int nonce_function_rfc6979(unsigned char *nonce32, const unsigned char *msg32, const unsigned char *key32, const unsigned char *algo16, void *data, unsigned int counter) {
480  unsigned char keydata[112];
481  unsigned int offset = 0;
483  unsigned int i;
485  unsigned char msgmod32[32];
486  secp256k1_scalar_set_b32(&msg, msg32, NULL);
487  secp256k1_scalar_get_b32(msgmod32, &msg);
488  /* We feed a byte array to the PRNG as input, consisting of:
489  * - the private key (32 bytes) and reduced message (32 bytes), see RFC 6979 3.2d.
490  * - optionally 32 extra bytes of data, see RFC 6979 3.6 Additional Data.
491  * - optionally 16 extra bytes with the algorithm name.
492  * Because the arguments have distinct fixed lengths it is not possible for
493  * different argument mixtures to emulate each other and result in the same
494  * nonces.
495  */
496  buffer_append(keydata, &offset, key32, 32);
497  buffer_append(keydata, &offset, msgmod32, 32);
498  if (data != NULL) {
499  buffer_append(keydata, &offset, data, 32);
500  }
501  if (algo16 != NULL) {
502  buffer_append(keydata, &offset, algo16, 16);
503  }
504  secp256k1_rfc6979_hmac_sha256_initialize(&rng, keydata, offset);
505  for (i = 0; i <= counter; i++) {
506  secp256k1_rfc6979_hmac_sha256_generate(&rng, nonce32, 32);
507  }
509 
510  secp256k1_memclear_explicit(keydata, sizeof(keydata));
512  return 1;
513 }
514 
517 
518 static int secp256k1_ecdsa_sign_inner(const secp256k1_context* ctx, secp256k1_scalar* r, secp256k1_scalar* s, int* recid, const unsigned char *msg32, const unsigned char *seckey, secp256k1_nonce_function noncefp, const void* noncedata) {
519  secp256k1_scalar sec, non, msg;
520  int ret = 0;
521  int is_sec_valid;
522  unsigned char nonce32[32];
523  unsigned int count = 0;
524  /* Default initialization here is important so we won't pass uninit values to the cmov in the end */
527  if (recid) {
528  *recid = 0;
529  }
530  if (noncefp == NULL) {
532  }
533 
534  /* Fail if the secret key is invalid. */
535  is_sec_valid = secp256k1_scalar_set_b32_seckey(&sec, seckey);
536  secp256k1_scalar_cmov(&sec, &secp256k1_scalar_one, !is_sec_valid);
537  secp256k1_scalar_set_b32(&msg, msg32, NULL);
538  while (1) {
539  int is_nonce_valid;
540  ret = !!noncefp(nonce32, msg32, seckey, NULL, (void*)noncedata, count);
541  if (!ret) {
542  break;
543  }
544  is_nonce_valid = secp256k1_scalar_set_b32_seckey(&non, nonce32);
545  /* The nonce is still secret here, but it being invalid is less likely than 1:2^255. */
546  secp256k1_declassify(ctx, &is_nonce_valid, sizeof(is_nonce_valid));
547  if (is_nonce_valid) {
548  ret = secp256k1_ecdsa_sig_sign(&ctx->ecmult_gen_ctx, r, s, &sec, &msg, &non, recid);
549  /* The final signature is no longer a secret, nor is the fact that we were successful or not. */
550  secp256k1_declassify(ctx, &ret, sizeof(ret));
551  if (ret) {
552  break;
553  }
554  }
555  count++;
556  }
557  /* We don't want to declassify is_sec_valid and therefore the range of
558  * seckey. As a result is_sec_valid is included in ret only after ret was
559  * used as a branching variable. */
560  ret &= is_sec_valid;
561  secp256k1_memclear_explicit(nonce32, sizeof(nonce32));
567  if (recid) {
568  const int zero = 0;
569  secp256k1_int_cmov(recid, &zero, !ret);
570  }
571  return ret;
572 }
573 
574 int secp256k1_ecdsa_sign(const secp256k1_context* ctx, secp256k1_ecdsa_signature *signature, const unsigned char *msghash32, const unsigned char *seckey, secp256k1_nonce_function noncefp, const void* noncedata) {
575  secp256k1_scalar r, s;
576  int ret;
577  VERIFY_CHECK(ctx != NULL);
579  ARG_CHECK(msghash32 != NULL);
580  ARG_CHECK(signature != NULL);
581  ARG_CHECK(seckey != NULL);
582 
583  ret = secp256k1_ecdsa_sign_inner(ctx, &r, &s, NULL, msghash32, seckey, noncefp, noncedata);
584  secp256k1_ecdsa_signature_save(signature, &r, &s);
585  return ret;
586 }
587 
588 int secp256k1_ec_seckey_verify(const secp256k1_context* ctx, const unsigned char *seckey) {
589  secp256k1_scalar sec;
590  int ret;
591  VERIFY_CHECK(ctx != NULL);
592  ARG_CHECK(seckey != NULL);
593 
594  ret = secp256k1_scalar_set_b32_seckey(&sec, seckey);
596  return ret;
597 }
598 
599 static int secp256k1_ec_pubkey_create_helper(const secp256k1_ecmult_gen_context *ecmult_gen_ctx, secp256k1_scalar *seckey_scalar, secp256k1_ge *p, const unsigned char *seckey) {
600  secp256k1_gej pj;
601  int ret;
602 
603  ret = secp256k1_scalar_set_b32_seckey(seckey_scalar, seckey);
605 
606  secp256k1_ecmult_gen(ecmult_gen_ctx, &pj, seckey_scalar);
607  secp256k1_ge_set_gej(p, &pj);
608  secp256k1_gej_clear(&pj);
609  return ret;
610 }
611 
612 int secp256k1_ec_pubkey_create(const secp256k1_context* ctx, secp256k1_pubkey *pubkey, const unsigned char *seckey) {
613  secp256k1_ge p;
614  secp256k1_scalar seckey_scalar;
615  int ret = 0;
616  VERIFY_CHECK(ctx != NULL);
617  ARG_CHECK(pubkey != NULL);
618  memset(pubkey, 0, sizeof(*pubkey));
620  ARG_CHECK(seckey != NULL);
621 
622  ret = secp256k1_ec_pubkey_create_helper(&ctx->ecmult_gen_ctx, &seckey_scalar, &p, seckey);
623  secp256k1_pubkey_save(pubkey, &p);
624  secp256k1_memczero(pubkey, sizeof(*pubkey), !ret);
625 
626  secp256k1_scalar_clear(&seckey_scalar);
627  return ret;
628 }
629 
630 int secp256k1_ec_seckey_negate(const secp256k1_context* ctx, unsigned char *seckey) {
631  secp256k1_scalar sec;
632  int ret = 0;
633  VERIFY_CHECK(ctx != NULL);
634  ARG_CHECK(seckey != NULL);
635 
636  ret = secp256k1_scalar_set_b32_seckey(&sec, seckey);
638  secp256k1_scalar_negate(&sec, &sec);
639  secp256k1_scalar_get_b32(seckey, &sec);
640 
642  return ret;
643 }
644 
646  int ret = 0;
647  secp256k1_ge p;
648  VERIFY_CHECK(ctx != NULL);
649  ARG_CHECK(pubkey != NULL);
650 
651  ret = secp256k1_pubkey_load(ctx, &p, pubkey);
652  memset(pubkey, 0, sizeof(*pubkey));
653  if (ret) {
654  secp256k1_ge_neg(&p, &p);
655  secp256k1_pubkey_save(pubkey, &p);
656  }
657  return ret;
658 }
659 
660 
661 static int secp256k1_ec_seckey_tweak_add_helper(secp256k1_scalar *sec, const unsigned char *tweak32) {
662  secp256k1_scalar term;
663  int overflow = 0;
664  int ret = 0;
665 
666  secp256k1_scalar_set_b32(&term, tweak32, &overflow);
667  ret = (!overflow) & secp256k1_eckey_privkey_tweak_add(sec, &term);
668  secp256k1_scalar_clear(&term);
669  return ret;
670 }
671 
672 int secp256k1_ec_seckey_tweak_add(const secp256k1_context* ctx, unsigned char *seckey, const unsigned char *tweak32) {
673  secp256k1_scalar sec;
674  int ret = 0;
675  VERIFY_CHECK(ctx != NULL);
676  ARG_CHECK(seckey != NULL);
677  ARG_CHECK(tweak32 != NULL);
678 
679  ret = secp256k1_scalar_set_b32_seckey(&sec, seckey);
680  ret &= secp256k1_ec_seckey_tweak_add_helper(&sec, tweak32);
682  secp256k1_scalar_get_b32(seckey, &sec);
683 
685  return ret;
686 }
687 
688 static int secp256k1_ec_pubkey_tweak_add_helper(secp256k1_ge *p, const unsigned char *tweak32) {
689  secp256k1_scalar term;
690  int overflow = 0;
691  secp256k1_scalar_set_b32(&term, tweak32, &overflow);
692  return !overflow && secp256k1_eckey_pubkey_tweak_add(p, &term);
693 }
694 
695 int secp256k1_ec_pubkey_tweak_add(const secp256k1_context* ctx, secp256k1_pubkey *pubkey, const unsigned char *tweak32) {
696  secp256k1_ge p;
697  int ret = 0;
698  VERIFY_CHECK(ctx != NULL);
699  ARG_CHECK(pubkey != NULL);
700  ARG_CHECK(tweak32 != NULL);
701 
702  ret = secp256k1_pubkey_load(ctx, &p, pubkey);
703  memset(pubkey, 0, sizeof(*pubkey));
704  ret = ret && secp256k1_ec_pubkey_tweak_add_helper(&p, tweak32);
705  if (ret) {
706  secp256k1_pubkey_save(pubkey, &p);
707  }
708 
709  return ret;
710 }
711 
712 int secp256k1_ec_seckey_tweak_mul(const secp256k1_context* ctx, unsigned char *seckey, const unsigned char *tweak32) {
713  secp256k1_scalar factor;
714  secp256k1_scalar sec;
715  int ret = 0;
716  int overflow = 0;
717  VERIFY_CHECK(ctx != NULL);
718  ARG_CHECK(seckey != NULL);
719  ARG_CHECK(tweak32 != NULL);
720 
721  secp256k1_scalar_set_b32(&factor, tweak32, &overflow);
722  ret = secp256k1_scalar_set_b32_seckey(&sec, seckey);
723  ret &= (!overflow) & secp256k1_eckey_privkey_tweak_mul(&sec, &factor);
725  secp256k1_scalar_get_b32(seckey, &sec);
726 
728  secp256k1_scalar_clear(&factor);
729  return ret;
730 }
731 
732 int secp256k1_ec_pubkey_tweak_mul(const secp256k1_context* ctx, secp256k1_pubkey *pubkey, const unsigned char *tweak32) {
733  secp256k1_ge p;
734  secp256k1_scalar factor;
735  int ret = 0;
736  int overflow = 0;
737  VERIFY_CHECK(ctx != NULL);
738  ARG_CHECK(pubkey != NULL);
739  ARG_CHECK(tweak32 != NULL);
740 
741  secp256k1_scalar_set_b32(&factor, tweak32, &overflow);
742  ret = !overflow && secp256k1_pubkey_load(ctx, &p, pubkey);
743  memset(pubkey, 0, sizeof(*pubkey));
744  if (ret) {
745  if (secp256k1_eckey_pubkey_tweak_mul(&p, &factor)) {
746  secp256k1_pubkey_save(pubkey, &p);
747  } else {
748  ret = 0;
749  }
750  }
751 
752  return ret;
753 }
754 
755 int secp256k1_context_randomize(secp256k1_context* ctx, const unsigned char *seed32) {
756  VERIFY_CHECK(ctx != NULL);
758 
761  }
762  return 1;
763 }
764 
765 int secp256k1_ec_pubkey_combine(const secp256k1_context* ctx, secp256k1_pubkey *pubnonce, const secp256k1_pubkey * const *pubnonces, size_t n) {
766  size_t i;
767  secp256k1_gej Qj;
768  secp256k1_ge Q;
769 
770  VERIFY_CHECK(ctx != NULL);
771  ARG_CHECK(pubnonce != NULL);
772  memset(pubnonce, 0, sizeof(*pubnonce));
773  ARG_CHECK(n >= 1);
774  ARG_CHECK(pubnonces != NULL);
775 
777 
778  for (i = 0; i < n; i++) {
779  ARG_CHECK(pubnonces[i] != NULL);
780  secp256k1_pubkey_load(ctx, &Q, pubnonces[i]);
781  secp256k1_gej_add_ge(&Qj, &Qj, &Q);
782  }
783  if (secp256k1_gej_is_infinity(&Qj)) {
784  return 0;
785  }
786  secp256k1_ge_set_gej(&Q, &Qj);
787  secp256k1_pubkey_save(pubnonce, &Q);
788  return 1;
789 }
790 
791 int secp256k1_tagged_sha256(const secp256k1_context* ctx, unsigned char *hash32, const unsigned char *tag, size_t taglen, const unsigned char *msg, size_t msglen) {
792  secp256k1_sha256 sha;
793  VERIFY_CHECK(ctx != NULL);
794  ARG_CHECK(hash32 != NULL);
795  ARG_CHECK(tag != NULL);
796  ARG_CHECK(msg != NULL);
797 
798  secp256k1_sha256_initialize_tagged(&sha, tag, taglen);
799  secp256k1_sha256_write(&sha, msg, msglen);
800  secp256k1_sha256_finalize(&sha, hash32);
802  return 1;
803 }
804 
805 #ifdef ENABLE_MODULE_ECDH
806 # include "modules/ecdh/main_impl.h"
807 #endif
808 
809 #ifdef ENABLE_MODULE_RECOVERY
811 #endif
812 
813 #ifdef ENABLE_MODULE_EXTRAKEYS
815 #endif
816 
817 #ifdef ENABLE_MODULE_SCHNORRSIG
819 #endif
820 
821 #ifdef ENABLE_MODULE_MUSIG
822 # include "modules/musig/main_impl.h"
823 #endif
824 
825 #ifdef ENABLE_MODULE_ELLSWIFT
827 #endif
#define VERIFY_CHECK(cond)
Definition: util.h:159
int secp256k1_ecdsa_signature_serialize_der(const secp256k1_context *ctx, unsigned char *output, size_t *outputlen, const secp256k1_ecdsa_signature *sig)
Serialize an ECDSA signature in DER format.
Definition: secp256k1.c:414
static void secp256k1_eckey_pubkey_serialize33(secp256k1_ge *elem, unsigned char *pub33)
Serialize a group element (that is not allowed to be infinity) to a compressed public key (33 bytes)...
static int secp256k1_gej_is_infinity(const secp256k1_gej *a)
Check whether a group element is the point at infinity.
int ret
int secp256k1_ec_pubkey_tweak_add(const secp256k1_context *ctx, secp256k1_pubkey *pubkey, const unsigned char *tweak32)
Tweak a public key by adding tweak times the generator to it.
Definition: secp256k1.c:695
#define SECP256K1_FLAGS_BIT_CONTEXT_DECLASSIFY
Definition: secp256k1.h:209
static int secp256k1_ec_pubkey_tweak_add_helper(secp256k1_ge *p, const unsigned char *tweak32)
Definition: secp256k1.c:688
static void secp256k1_ge_neg(secp256k1_ge *r, const secp256k1_ge *a)
Set r equal to the inverse of a (i.e., mirrored around the X axis)
#define secp256k1_fe_is_zero
Definition: field.h:84
static void secp256k1_ecmult_gen(const secp256k1_ecmult_gen_context *ctx, secp256k1_gej *r, const secp256k1_scalar *a)
Multiply with the generator: R = a*G.
static void secp256k1_scratch_destroy(const secp256k1_callback *error_callback, secp256k1_scratch *scratch)
static int secp256k1_ecdsa_sign_inner(const secp256k1_context *ctx, secp256k1_scalar *r, secp256k1_scalar *s, int *recid, const unsigned char *msg32, const unsigned char *seckey, secp256k1_nonce_function noncefp, const void *noncedata)
Definition: secp256k1.c:518
static void secp256k1_rfc6979_hmac_sha256_initialize(secp256k1_rfc6979_hmac_sha256 *rng, const unsigned char *key, size_t keylen)
static int secp256k1_ecdsa_sig_sign(const secp256k1_ecmult_gen_context *ctx, secp256k1_scalar *r, secp256k1_scalar *s, const secp256k1_scalar *seckey, const secp256k1_scalar *message, const secp256k1_scalar *nonce, int *recid)
static int secp256k1_eckey_privkey_tweak_mul(secp256k1_scalar *key, const secp256k1_scalar *tweak)
static int nonce_function_rfc6979(unsigned char *nonce32, const unsigned char *msg32, const unsigned char *key32, const unsigned char *algo16, void *data, unsigned int counter)
Definition: secp256k1.c:479
static int secp256k1_ec_pubkey_sort_cmp(const void *pk1, const void *pk2, void *ctx)
Definition: secp256k1.c:320
void secp256k1_context_preallocated_destroy(secp256k1_context *ctx)
Destroy a secp256k1 context object that has been created in caller-provided memory.
Definition: secp256k1.c:176
int secp256k1_ec_pubkey_serialize(const secp256k1_context *ctx, unsigned char *output, size_t *outputlen, const secp256k1_pubkey *pubkey, unsigned int flags)
Serialize a pubkey object into a serialized byte sequence.
Definition: secp256k1.c:268
#define ARG_CHECK_VOID(cond)
Definition: secp256k1.c:52
static void secp256k1_scratch_space_destroy(const secp256k1_context *ctx, secp256k1_scratch_space *scratch)
Definition: secp256k1.c:228
static int secp256k1_eckey_pubkey_tweak_add(secp256k1_ge *key, const secp256k1_scalar *tweak)
static const secp256k1_context secp256k1_context_static_
Definition: secp256k1.c:68
unsigned char data[64]
Definition: secp256k1.h:75
static int secp256k1_ecdsa_sig_parse(secp256k1_scalar *r, secp256k1_scalar *s, const unsigned char *sig, size_t size)
static void secp256k1_scalar_negate(secp256k1_scalar *r, const secp256k1_scalar *a)
Compute the complement of a scalar (modulo the group order).
static void secp256k1_ecmult_gen_blind(secp256k1_ecmult_gen_context *ctx, const unsigned char *seed32)
int secp256k1_ec_pubkey_tweak_mul(const secp256k1_context *ctx, secp256k1_pubkey *pubkey, const unsigned char *tweak32)
Tweak a public key by multiplying it by a tweak value.
Definition: secp256k1.c:732
int secp256k1_ecdsa_signature_parse_der(const secp256k1_context *ctx, secp256k1_ecdsa_signature *sig, const unsigned char *input, size_t inputlen)
Parse a DER ECDSA signature.
Definition: secp256k1.c:377
static void secp256k1_pubkey_save(secp256k1_pubkey *pubkey, secp256k1_ge *ge)
Definition: secp256k1.c:246
secp256k1_context * secp256k1_context_preallocated_create(void *prealloc, unsigned int flags)
Create a secp256k1 context object in caller-provided memory.
Definition: secp256k1.c:118
int secp256k1_ec_seckey_verify(const secp256k1_context *ctx, const unsigned char *seckey)
Verify an elliptic curve secret key.
Definition: secp256k1.c:588
memcpy(result.begin(), stream.data(), stream.size())
void(* fn)(const char *text, void *data)
Definition: util.h:88
static void secp256k1_scalar_set_b32(secp256k1_scalar *r, const unsigned char *bin, int *overflow)
Set a scalar from a big endian byte array.
A group element of the secp256k1 curve, in jacobian coordinates.
Definition: group.h:28
static void secp256k1_default_illegal_callback_fn(const char *str, void *data)
Definition: util.h:97
secp256k1_context * secp256k1_context_preallocated_clone(const secp256k1_context *ctx, void *prealloc)
Copy a secp256k1 context object into caller-provided memory.
Definition: secp256k1.c:152
static void secp256k1_ecmult_gen_context_clear(secp256k1_ecmult_gen_context *ctx)
static void secp256k1_ecdsa_signature_save(secp256k1_ecdsa_signature *sig, const secp256k1_scalar *r, const secp256k1_scalar *s)
Definition: secp256k1.c:367
#define SECP256K1_INLINE
Definition: util.h:54
#define SECP256K1_FLAGS_TYPE_CONTEXT
Definition: secp256k1.h:204
static void secp256k1_gej_set_infinity(secp256k1_gej *r)
Set a group element (jacobian) equal to the point at infinity.
static int secp256k1_eckey_pubkey_parse(secp256k1_ge *elem, const unsigned char *pub, size_t size)
int secp256k1_tagged_sha256(const secp256k1_context *ctx, unsigned char *hash32, const unsigned char *tag, size_t taglen, const unsigned char *msg, size_t msglen)
Compute a tagged hash as defined in BIP-340.
Definition: secp256k1.c:791
int secp256k1_ecdsa_sign(const secp256k1_context *ctx, secp256k1_ecdsa_signature *signature, const unsigned char *msghash32, const unsigned char *seckey, secp256k1_nonce_function noncefp, const void *noncedata)
Create an ECDSA signature.
Definition: secp256k1.c:574
#define SECP256K1_FLAGS_TYPE_MASK
Definition: secp256k1.h:203
static void secp256k1_rfc6979_hmac_sha256_clear(secp256k1_rfc6979_hmac_sha256 *rng)
const secp256k1_nonce_function secp256k1_nonce_function_rfc6979
Definition: secp256k1.c:515
int secp256k1_ecdsa_verify(const secp256k1_context *ctx, const secp256k1_ecdsa_signature *sig, const unsigned char *msghash32, const secp256k1_pubkey *pubkey)
Verify an ECDSA signature.
Definition: secp256k1.c:458
static const secp256k1_scalar secp256k1_scalar_zero
Definition: scalar_impl.h:28
#define SECP256K1_CHECKMEM_RUNNING()
Definition: checkmem.h:108
void secp256k1_selftest(void)
Perform basic self tests (to be used in conjunction with secp256k1_context_static) ...
Definition: secp256k1.c:86
#define SECP256K1_EC_COMPRESSED
Flag to pass to secp256k1_ec_pubkey_serialize.
Definition: secp256k1.h:224
struct secp256k1_context_struct secp256k1_context
Unless explicitly stated all pointer arguments must not be NULL.
Definition: secp256k1.h:50
static int secp256k1_ec_seckey_tweak_add_helper(secp256k1_scalar *sec, const unsigned char *tweak32)
Definition: secp256k1.c:661
static secp256k1_scratch_space * secp256k1_scratch_space_create(const secp256k1_context *ctx, size_t max_size)
Definition: secp256k1.c:223
static SECP256K1_INLINE void secp256k1_declassify(const secp256k1_context *ctx, const void *p, size_t len)
Definition: secp256k1.c:236
secp256k1_context * secp256k1_context_clone(const secp256k1_context *ctx)
Copy a secp256k1 context object (into dynamically allocated memory).
Definition: secp256k1.c:163
int secp256k1_ec_pubkey_combine(const secp256k1_context *ctx, secp256k1_pubkey *pubnonce, const secp256k1_pubkey *const *pubnonces, size_t n)
Add a number of public keys together.
Definition: secp256k1.c:765
secp256k1_ecmult_gen_context ecmult_gen_ctx
Definition: secp256k1.c:62
#define ARG_CHECK(cond)
Definition: secp256k1.c:45
static int secp256k1_ec_pubkey_create_helper(const secp256k1_ecmult_gen_context *ecmult_gen_ctx, secp256k1_scalar *seckey_scalar, secp256k1_ge *p, const unsigned char *seckey)
Definition: secp256k1.c:599
static void secp256k1_ge_set_gej(secp256k1_ge *r, secp256k1_gej *a)
Set a group element equal to another which is given in jacobian coordinates.
static void secp256k1_gej_clear(secp256k1_gej *r)
Clear a secp256k1_gej to prevent leaking sensitive information.
static int secp256k1_scalar_is_high(const secp256k1_scalar *a)
Check whether a scalar is higher than the group order divided by 2.
static int secp256k1_ge_is_in_correct_subgroup(const secp256k1_ge *ge)
Determine if a point (which is assumed to be on the curve) is in the correct (sub)group of the curve...
static int secp256k1_eckey_pubkey_tweak_mul(secp256k1_ge *key, const secp256k1_scalar *tweak)
int secp256k1_ec_pubkey_create(const secp256k1_context *ctx, secp256k1_pubkey *pubkey, const unsigned char *seckey)
Compute the public key for a secret key.
Definition: secp256k1.c:612
static int secp256k1_scalar_set_b32_seckey(secp256k1_scalar *r, const unsigned char *bin)
Set a scalar from a big endian byte array and returns 1 if it is a valid seckey and 0 otherwise...
void secp256k1_context_set_error_callback(secp256k1_context *ctx, void(*fun)(const char *message, void *data), const void *data)
Set a callback function to be called when an internal consistency check fails.
Definition: secp256k1.c:211
static void secp256k1_sha256_clear(secp256k1_sha256 *hash)
#define EXPECT(x, c)
Definition: util.h:26
void secp256k1_context_set_illegal_callback(secp256k1_context *ctx, void(*fun)(const char *message, void *data), const void *data)
Set a callback function to be called when an illegal argument is passed to an API call...
Definition: secp256k1.c:199
#define SECP256K1_CHECKMEM_DEFINE(p, len)
Definition: checkmem.h:106
static void secp256k1_scalar_clear(secp256k1_scalar *r)
Clear a scalar to prevent the leak of sensitive data.
static int secp256k1_eckey_privkey_tweak_add(secp256k1_scalar *key, const secp256k1_scalar *tweak)
A group element in affine coordinates on the secp256k1 curve, or occasionally on an isomorphic curve ...
Definition: group.h:16
Opaque data structure that holds a parsed ECDSA signature.
Definition: secp256k1.h:74
secp256k1_fe x
Definition: group.h:17
static void secp256k1_ge_clear(secp256k1_ge *r)
Clear a secp256k1_ge to prevent leaking sensitive information.
const secp256k1_nonce_function secp256k1_nonce_function_default
Definition: secp256k1.c:516
int secp256k1_ec_seckey_tweak_mul(const secp256k1_context *ctx, unsigned char *seckey, const unsigned char *tweak32)
Tweak a secret key by multiplying it by a tweak.
Definition: secp256k1.c:712
A scalar modulo the group order of the secp256k1 curve.
Definition: scalar_4x64.h:13
secp256k1_callback illegal_callback
Definition: secp256k1.c:63
static void secp256k1_ecdsa_signature_load(const secp256k1_context *ctx, secp256k1_scalar *r, secp256k1_scalar *s, const secp256k1_ecdsa_signature *sig)
Definition: secp256k1.c:353
int secp256k1_ec_pubkey_sort(const secp256k1_context *ctx, const secp256k1_pubkey **pubkeys, size_t n_pubkeys)
Sort public keys using lexicographic (of compressed serialization) order.
Definition: secp256k1.c:326
static int secp256k1_ecmult_gen_context_is_built(const secp256k1_ecmult_gen_context *ctx)
static void secp256k1_scalar_get_b32(unsigned char *bin, const secp256k1_scalar *a)
Convert a scalar to a byte array.
static void secp256k1_sha256_write(secp256k1_sha256 *hash, const unsigned char *data, size_t size)
int secp256k1_ec_pubkey_negate(const secp256k1_context *ctx, secp256k1_pubkey *pubkey)
Negates a public key in place.
Definition: secp256k1.c:645
static void secp256k1_sha256_initialize_tagged(secp256k1_sha256 *hash, const unsigned char *tag, size_t taglen)
Definition: hash_impl.h:163
int flags
Definition: bitcoin-tx.cpp:529
static void secp256k1_hsort(void *ptr, size_t count, size_t size, int(*cmp)(const void *, const void *, void *), void *cmp_data)
unsigned char data[64]
Definition: secp256k1.h:62
static void secp256k1_ecmult_gen_context_build(secp256k1_ecmult_gen_context *ctx)
static SECP256K1_INLINE void secp256k1_memclear_explicit(void *ptr, size_t len)
Definition: util.h:256
static SECP256K1_INLINE void secp256k1_memczero(void *s, size_t len, int flag)
Definition: util.h:208
static SECP256K1_INLINE void buffer_append(unsigned char *buf, unsigned int *offset, const void *data, unsigned int len)
Definition: secp256k1.c:474
int secp256k1_ec_pubkey_parse(const secp256k1_context *ctx, secp256k1_pubkey *pubkey, const unsigned char *input, size_t inputlen)
Parse a variable-length public key into the pubkey object.
Definition: secp256k1.c:250
int(* secp256k1_nonce_function)(unsigned char *nonce32, const unsigned char *msg32, const unsigned char *key32, const unsigned char *algo16, void *data, unsigned int attempt)
A pointer to a function to deterministically generate a nonce.
Definition: secp256k1.h:94
static SECP256K1_INLINE int secp256k1_memcmp_var(const void *s1, const void *s2, size_t n)
Semantics like memcmp.
Definition: util.h:269
static void secp256k1_default_error_callback_fn(const char *str, void *data)
Definition: util.h:102
static const secp256k1_callback default_illegal_callback
Definition: util.h:112
static SECP256K1_INLINE void secp256k1_callback_call(const secp256k1_callback *const cb, const char *const text)
Definition: util.h:92
const secp256k1_context *const secp256k1_context_no_precomp
Definition: secp256k1.c:75
void secp256k1_context_destroy(secp256k1_context *ctx)
Destroy a secp256k1 context object (created in dynamically allocated memory).
Definition: secp256k1.c:187
int secp256k1_ecdsa_signature_serialize_compact(const secp256k1_context *ctx, unsigned char *output64, const secp256k1_ecdsa_signature *sig)
Serialize an ECDSA signature in compact (64 byte) format.
Definition: secp256k1.c:426
static void secp256k1_gej_add_ge(secp256k1_gej *r, const secp256k1_gej *a, const secp256k1_ge *b)
Set r equal to the sum of a and b (with b given in affine coordinates, and not infinity).
int secp256k1_ec_seckey_tweak_add(const secp256k1_context *ctx, unsigned char *seckey, const unsigned char *tweak32)
Tweak a secret key by adding tweak to it.
Definition: secp256k1.c:672
static int secp256k1_pubkey_load(const secp256k1_context *ctx, secp256k1_ge *ge, const secp256k1_pubkey *pubkey)
Definition: secp256k1.c:240
static int count
secp256k1_callback error_callback
Definition: secp256k1.c:64
int secp256k1_ec_pubkey_cmp(const secp256k1_context *ctx, const secp256k1_pubkey *pubkey0, const secp256k1_pubkey *pubkey1)
Compare two public keys using lexicographic (of compressed serialization) order.
Definition: secp256k1.c:294
size_t secp256k1_context_preallocated_clone_size(const secp256k1_context *ctx)
Determine the memory size of a secp256k1 context object to be copied into caller-provided memory...
Definition: secp256k1.c:112
const void * data
Definition: util.h:89
int secp256k1_ec_seckey_negate(const secp256k1_context *ctx, unsigned char *seckey)
Negates a secret key in place.
Definition: secp256k1.c:630
static SECP256K1_INLINE void secp256k1_int_cmov(int *r, const int *a, int flag)
If flag is 1, set *r equal to *a; if flag is 0, leave it.
Definition: util.h:300
static void secp256k1_eckey_pubkey_serialize65(secp256k1_ge *elem, unsigned char *pub65)
Serialize a group element (that is not allowed to be infinity) to an uncompressed public key (65 byte...
const secp256k1_context *const secp256k1_context_static
Definition: secp256k1.c:74
static secp256k1_scratch * secp256k1_scratch_create(const secp256k1_callback *error_callback, size_t max_size)
int secp256k1_context_randomize(secp256k1_context *ctx, const unsigned char *seed32)
Randomizes the context to provide enhanced protection against side-channel leakage.
Definition: secp256k1.c:755
static void secp256k1_scalar_cmov(secp256k1_scalar *r, const secp256k1_scalar *a, int flag)
If flag is 1, set *r equal to *a; if flag is 0, leave it.
static const secp256k1_scalar secp256k1_scalar_one
Definition: scalar_impl.h:27
size_t secp256k1_context_preallocated_size(unsigned int flags)
Determine the memory size of a secp256k1 context object to be created in caller-provided memory...
Definition: secp256k1.c:92
static int secp256k1_selftest_passes(void)
Definition: selftest.h:28
static SECP256K1_INLINE void * checked_malloc(const secp256k1_callback *cb, size_t size)
Definition: util.h:162
static const secp256k1_callback default_error_callback
Definition: util.h:117
static void secp256k1_ge_to_bytes(unsigned char *buf, const secp256k1_ge *a)
Convert a group element that is not infinity to a 64-byte array.
static void secp256k1_sha256_finalize(secp256k1_sha256 *hash, unsigned char *out32)
static int secp256k1_ecdsa_sig_verify(const secp256k1_scalar *r, const secp256k1_scalar *s, const secp256k1_ge *pubkey, const secp256k1_scalar *message)
#define SECP256K1_FLAGS_TYPE_COMPRESSION
Definition: secp256k1.h:205
int secp256k1_ecdsa_signature_parse_compact(const secp256k1_context *ctx, secp256k1_ecdsa_signature *sig, const unsigned char *input64)
Parse an ECDSA signature in compact (64 bytes) format.
Definition: secp256k1.c:393
static void secp256k1_ge_from_bytes(secp256k1_ge *r, const unsigned char *buf)
Convert a 64-byte array into group element.
static int secp256k1_context_is_proper(const secp256k1_context *ctx)
Definition: secp256k1.c:82
secp256k1_context * secp256k1_context_create(unsigned int flags)
Create a secp256k1 context object (in dynamically allocated memory).
Definition: secp256k1.c:141
static void secp256k1_rfc6979_hmac_sha256_finalize(secp256k1_rfc6979_hmac_sha256 *rng)
static int secp256k1_ecdsa_sig_serialize(unsigned char *sig, size_t *size, const secp256k1_scalar *r, const secp256k1_scalar *s)
Opaque data structure that holds a parsed and valid public key.
Definition: secp256k1.h:61
#define SECP256K1_FLAGS_BIT_COMPRESSION
Definition: secp256k1.h:210
static void secp256k1_rfc6979_hmac_sha256_generate(secp256k1_rfc6979_hmac_sha256 *rng, unsigned char *out, size_t outlen)
int secp256k1_ecdsa_signature_normalize(const secp256k1_context *ctx, secp256k1_ecdsa_signature *sigout, const secp256k1_ecdsa_signature *sigin)
Convert a signature to a normalized lower-S form.
Definition: secp256k1.c:439