Bitcoin Core  26.1.0
P2P Digital Currency
scalar_8x32_impl.h
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1 /***********************************************************************
2  * Copyright (c) 2014 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 #ifndef SECP256K1_SCALAR_REPR_IMPL_H
8 #define SECP256K1_SCALAR_REPR_IMPL_H
9 
10 #include "checkmem.h"
11 #include "modinv32_impl.h"
12 #include "util.h"
13 
14 /* Limbs of the secp256k1 order. */
15 #define SECP256K1_N_0 ((uint32_t)0xD0364141UL)
16 #define SECP256K1_N_1 ((uint32_t)0xBFD25E8CUL)
17 #define SECP256K1_N_2 ((uint32_t)0xAF48A03BUL)
18 #define SECP256K1_N_3 ((uint32_t)0xBAAEDCE6UL)
19 #define SECP256K1_N_4 ((uint32_t)0xFFFFFFFEUL)
20 #define SECP256K1_N_5 ((uint32_t)0xFFFFFFFFUL)
21 #define SECP256K1_N_6 ((uint32_t)0xFFFFFFFFUL)
22 #define SECP256K1_N_7 ((uint32_t)0xFFFFFFFFUL)
23 
24 /* Limbs of 2^256 minus the secp256k1 order. */
25 #define SECP256K1_N_C_0 (~SECP256K1_N_0 + 1)
26 #define SECP256K1_N_C_1 (~SECP256K1_N_1)
27 #define SECP256K1_N_C_2 (~SECP256K1_N_2)
28 #define SECP256K1_N_C_3 (~SECP256K1_N_3)
29 #define SECP256K1_N_C_4 (1)
30 
31 /* Limbs of half the secp256k1 order. */
32 #define SECP256K1_N_H_0 ((uint32_t)0x681B20A0UL)
33 #define SECP256K1_N_H_1 ((uint32_t)0xDFE92F46UL)
34 #define SECP256K1_N_H_2 ((uint32_t)0x57A4501DUL)
35 #define SECP256K1_N_H_3 ((uint32_t)0x5D576E73UL)
36 #define SECP256K1_N_H_4 ((uint32_t)0xFFFFFFFFUL)
37 #define SECP256K1_N_H_5 ((uint32_t)0xFFFFFFFFUL)
38 #define SECP256K1_N_H_6 ((uint32_t)0xFFFFFFFFUL)
39 #define SECP256K1_N_H_7 ((uint32_t)0x7FFFFFFFUL)
40 
42  r->d[0] = 0;
43  r->d[1] = 0;
44  r->d[2] = 0;
45  r->d[3] = 0;
46  r->d[4] = 0;
47  r->d[5] = 0;
48  r->d[6] = 0;
49  r->d[7] = 0;
50 }
51 
53  r->d[0] = v;
54  r->d[1] = 0;
55  r->d[2] = 0;
56  r->d[3] = 0;
57  r->d[4] = 0;
58  r->d[5] = 0;
59  r->d[6] = 0;
60  r->d[7] = 0;
61 
63 }
64 
65 SECP256K1_INLINE static unsigned int secp256k1_scalar_get_bits(const secp256k1_scalar *a, unsigned int offset, unsigned int count) {
67  VERIFY_CHECK((offset + count - 1) >> 5 == offset >> 5);
68 
69  return (a->d[offset >> 5] >> (offset & 0x1F)) & ((1 << count) - 1);
70 }
71 
72 SECP256K1_INLINE static unsigned int secp256k1_scalar_get_bits_var(const secp256k1_scalar *a, unsigned int offset, unsigned int count) {
74  VERIFY_CHECK(count < 32);
75  VERIFY_CHECK(offset + count <= 256);
76 
77  if ((offset + count - 1) >> 5 == offset >> 5) {
78  return secp256k1_scalar_get_bits(a, offset, count);
79  } else {
80  VERIFY_CHECK((offset >> 5) + 1 < 8);
81  return ((a->d[offset >> 5] >> (offset & 0x1F)) | (a->d[(offset >> 5) + 1] << (32 - (offset & 0x1F)))) & ((((uint32_t)1) << count) - 1);
82  }
83 }
84 
86  int yes = 0;
87  int no = 0;
88  no |= (a->d[7] < SECP256K1_N_7); /* No need for a > check. */
89  no |= (a->d[6] < SECP256K1_N_6); /* No need for a > check. */
90  no |= (a->d[5] < SECP256K1_N_5); /* No need for a > check. */
91  no |= (a->d[4] < SECP256K1_N_4);
92  yes |= (a->d[4] > SECP256K1_N_4) & ~no;
93  no |= (a->d[3] < SECP256K1_N_3) & ~yes;
94  yes |= (a->d[3] > SECP256K1_N_3) & ~no;
95  no |= (a->d[2] < SECP256K1_N_2) & ~yes;
96  yes |= (a->d[2] > SECP256K1_N_2) & ~no;
97  no |= (a->d[1] < SECP256K1_N_1) & ~yes;
98  yes |= (a->d[1] > SECP256K1_N_1) & ~no;
99  yes |= (a->d[0] >= SECP256K1_N_0) & ~no;
100  return yes;
101 }
102 
103 SECP256K1_INLINE static int secp256k1_scalar_reduce(secp256k1_scalar *r, uint32_t overflow) {
104  uint64_t t;
105  VERIFY_CHECK(overflow <= 1);
106 
107  t = (uint64_t)r->d[0] + overflow * SECP256K1_N_C_0;
108  r->d[0] = t & 0xFFFFFFFFUL; t >>= 32;
109  t += (uint64_t)r->d[1] + overflow * SECP256K1_N_C_1;
110  r->d[1] = t & 0xFFFFFFFFUL; t >>= 32;
111  t += (uint64_t)r->d[2] + overflow * SECP256K1_N_C_2;
112  r->d[2] = t & 0xFFFFFFFFUL; t >>= 32;
113  t += (uint64_t)r->d[3] + overflow * SECP256K1_N_C_3;
114  r->d[3] = t & 0xFFFFFFFFUL; t >>= 32;
115  t += (uint64_t)r->d[4] + overflow * SECP256K1_N_C_4;
116  r->d[4] = t & 0xFFFFFFFFUL; t >>= 32;
117  t += (uint64_t)r->d[5];
118  r->d[5] = t & 0xFFFFFFFFUL; t >>= 32;
119  t += (uint64_t)r->d[6];
120  r->d[6] = t & 0xFFFFFFFFUL; t >>= 32;
121  t += (uint64_t)r->d[7];
122  r->d[7] = t & 0xFFFFFFFFUL;
123 
125  return overflow;
126 }
127 
129  int overflow;
130  uint64_t t = (uint64_t)a->d[0] + b->d[0];
133 
134  r->d[0] = t & 0xFFFFFFFFULL; t >>= 32;
135  t += (uint64_t)a->d[1] + b->d[1];
136  r->d[1] = t & 0xFFFFFFFFULL; t >>= 32;
137  t += (uint64_t)a->d[2] + b->d[2];
138  r->d[2] = t & 0xFFFFFFFFULL; t >>= 32;
139  t += (uint64_t)a->d[3] + b->d[3];
140  r->d[3] = t & 0xFFFFFFFFULL; t >>= 32;
141  t += (uint64_t)a->d[4] + b->d[4];
142  r->d[4] = t & 0xFFFFFFFFULL; t >>= 32;
143  t += (uint64_t)a->d[5] + b->d[5];
144  r->d[5] = t & 0xFFFFFFFFULL; t >>= 32;
145  t += (uint64_t)a->d[6] + b->d[6];
146  r->d[6] = t & 0xFFFFFFFFULL; t >>= 32;
147  t += (uint64_t)a->d[7] + b->d[7];
148  r->d[7] = t & 0xFFFFFFFFULL; t >>= 32;
149  overflow = t + secp256k1_scalar_check_overflow(r);
150  VERIFY_CHECK(overflow == 0 || overflow == 1);
151  secp256k1_scalar_reduce(r, overflow);
152 
154  return overflow;
155 }
156 
157 static void secp256k1_scalar_cadd_bit(secp256k1_scalar *r, unsigned int bit, int flag) {
158  uint64_t t;
159  volatile int vflag = flag;
161  VERIFY_CHECK(bit < 256);
162 
163  bit += ((uint32_t) vflag - 1) & 0x100; /* forcing (bit >> 5) > 7 makes this a noop */
164  t = (uint64_t)r->d[0] + (((uint32_t)((bit >> 5) == 0)) << (bit & 0x1F));
165  r->d[0] = t & 0xFFFFFFFFULL; t >>= 32;
166  t += (uint64_t)r->d[1] + (((uint32_t)((bit >> 5) == 1)) << (bit & 0x1F));
167  r->d[1] = t & 0xFFFFFFFFULL; t >>= 32;
168  t += (uint64_t)r->d[2] + (((uint32_t)((bit >> 5) == 2)) << (bit & 0x1F));
169  r->d[2] = t & 0xFFFFFFFFULL; t >>= 32;
170  t += (uint64_t)r->d[3] + (((uint32_t)((bit >> 5) == 3)) << (bit & 0x1F));
171  r->d[3] = t & 0xFFFFFFFFULL; t >>= 32;
172  t += (uint64_t)r->d[4] + (((uint32_t)((bit >> 5) == 4)) << (bit & 0x1F));
173  r->d[4] = t & 0xFFFFFFFFULL; t >>= 32;
174  t += (uint64_t)r->d[5] + (((uint32_t)((bit >> 5) == 5)) << (bit & 0x1F));
175  r->d[5] = t & 0xFFFFFFFFULL; t >>= 32;
176  t += (uint64_t)r->d[6] + (((uint32_t)((bit >> 5) == 6)) << (bit & 0x1F));
177  r->d[6] = t & 0xFFFFFFFFULL; t >>= 32;
178  t += (uint64_t)r->d[7] + (((uint32_t)((bit >> 5) == 7)) << (bit & 0x1F));
179  r->d[7] = t & 0xFFFFFFFFULL;
180 
182 #ifdef VERIFY
183  VERIFY_CHECK((t >> 32) == 0);
184 #endif
185 }
186 
187 static void secp256k1_scalar_set_b32(secp256k1_scalar *r, const unsigned char *b32, int *overflow) {
188  int over;
189  r->d[0] = secp256k1_read_be32(&b32[28]);
190  r->d[1] = secp256k1_read_be32(&b32[24]);
191  r->d[2] = secp256k1_read_be32(&b32[20]);
192  r->d[3] = secp256k1_read_be32(&b32[16]);
193  r->d[4] = secp256k1_read_be32(&b32[12]);
194  r->d[5] = secp256k1_read_be32(&b32[8]);
195  r->d[6] = secp256k1_read_be32(&b32[4]);
196  r->d[7] = secp256k1_read_be32(&b32[0]);
198  if (overflow) {
199  *overflow = over;
200  }
201 
203 }
204 
205 static void secp256k1_scalar_get_b32(unsigned char *bin, const secp256k1_scalar* a) {
207 
208  secp256k1_write_be32(&bin[0], a->d[7]);
209  secp256k1_write_be32(&bin[4], a->d[6]);
210  secp256k1_write_be32(&bin[8], a->d[5]);
211  secp256k1_write_be32(&bin[12], a->d[4]);
212  secp256k1_write_be32(&bin[16], a->d[3]);
213  secp256k1_write_be32(&bin[20], a->d[2]);
214  secp256k1_write_be32(&bin[24], a->d[1]);
215  secp256k1_write_be32(&bin[28], a->d[0]);
216 }
217 
220 
221  return (a->d[0] | a->d[1] | a->d[2] | a->d[3] | a->d[4] | a->d[5] | a->d[6] | a->d[7]) == 0;
222 }
223 
225  uint32_t nonzero = 0xFFFFFFFFUL * (secp256k1_scalar_is_zero(a) == 0);
226  uint64_t t = (uint64_t)(~a->d[0]) + SECP256K1_N_0 + 1;
228 
229  r->d[0] = t & nonzero; t >>= 32;
230  t += (uint64_t)(~a->d[1]) + SECP256K1_N_1;
231  r->d[1] = t & nonzero; t >>= 32;
232  t += (uint64_t)(~a->d[2]) + SECP256K1_N_2;
233  r->d[2] = t & nonzero; t >>= 32;
234  t += (uint64_t)(~a->d[3]) + SECP256K1_N_3;
235  r->d[3] = t & nonzero; t >>= 32;
236  t += (uint64_t)(~a->d[4]) + SECP256K1_N_4;
237  r->d[4] = t & nonzero; t >>= 32;
238  t += (uint64_t)(~a->d[5]) + SECP256K1_N_5;
239  r->d[5] = t & nonzero; t >>= 32;
240  t += (uint64_t)(~a->d[6]) + SECP256K1_N_6;
241  r->d[6] = t & nonzero; t >>= 32;
242  t += (uint64_t)(~a->d[7]) + SECP256K1_N_7;
243  r->d[7] = t & nonzero;
244 
246 }
247 
250 
251  return ((a->d[0] ^ 1) | a->d[1] | a->d[2] | a->d[3] | a->d[4] | a->d[5] | a->d[6] | a->d[7]) == 0;
252 }
253 
255  int yes = 0;
256  int no = 0;
258 
259  no |= (a->d[7] < SECP256K1_N_H_7);
260  yes |= (a->d[7] > SECP256K1_N_H_7) & ~no;
261  no |= (a->d[6] < SECP256K1_N_H_6) & ~yes; /* No need for a > check. */
262  no |= (a->d[5] < SECP256K1_N_H_5) & ~yes; /* No need for a > check. */
263  no |= (a->d[4] < SECP256K1_N_H_4) & ~yes; /* No need for a > check. */
264  no |= (a->d[3] < SECP256K1_N_H_3) & ~yes;
265  yes |= (a->d[3] > SECP256K1_N_H_3) & ~no;
266  no |= (a->d[2] < SECP256K1_N_H_2) & ~yes;
267  yes |= (a->d[2] > SECP256K1_N_H_2) & ~no;
268  no |= (a->d[1] < SECP256K1_N_H_1) & ~yes;
269  yes |= (a->d[1] > SECP256K1_N_H_1) & ~no;
270  yes |= (a->d[0] > SECP256K1_N_H_0) & ~no;
271  return yes;
272 }
273 
275  /* If we are flag = 0, mask = 00...00 and this is a no-op;
276  * if we are flag = 1, mask = 11...11 and this is identical to secp256k1_scalar_negate */
277  volatile int vflag = flag;
278  uint32_t mask = -vflag;
279  uint32_t nonzero = 0xFFFFFFFFUL * (secp256k1_scalar_is_zero(r) == 0);
280  uint64_t t = (uint64_t)(r->d[0] ^ mask) + ((SECP256K1_N_0 + 1) & mask);
282 
283  r->d[0] = t & nonzero; t >>= 32;
284  t += (uint64_t)(r->d[1] ^ mask) + (SECP256K1_N_1 & mask);
285  r->d[1] = t & nonzero; t >>= 32;
286  t += (uint64_t)(r->d[2] ^ mask) + (SECP256K1_N_2 & mask);
287  r->d[2] = t & nonzero; t >>= 32;
288  t += (uint64_t)(r->d[3] ^ mask) + (SECP256K1_N_3 & mask);
289  r->d[3] = t & nonzero; t >>= 32;
290  t += (uint64_t)(r->d[4] ^ mask) + (SECP256K1_N_4 & mask);
291  r->d[4] = t & nonzero; t >>= 32;
292  t += (uint64_t)(r->d[5] ^ mask) + (SECP256K1_N_5 & mask);
293  r->d[5] = t & nonzero; t >>= 32;
294  t += (uint64_t)(r->d[6] ^ mask) + (SECP256K1_N_6 & mask);
295  r->d[6] = t & nonzero; t >>= 32;
296  t += (uint64_t)(r->d[7] ^ mask) + (SECP256K1_N_7 & mask);
297  r->d[7] = t & nonzero;
298 
300  return 2 * (mask == 0) - 1;
301 }
302 
303 
304 /* Inspired by the macros in OpenSSL's crypto/bn/asm/x86_64-gcc.c. */
305 
307 #define muladd(a,b) { \
308  uint32_t tl, th; \
309  { \
310  uint64_t t = (uint64_t)a * b; \
311  th = t >> 32; /* at most 0xFFFFFFFE */ \
312  tl = t; \
313  } \
314  c0 += tl; /* overflow is handled on the next line */ \
315  th += (c0 < tl); /* at most 0xFFFFFFFF */ \
316  c1 += th; /* overflow is handled on the next line */ \
317  c2 += (c1 < th); /* never overflows by contract (verified in the next line) */ \
318  VERIFY_CHECK((c1 >= th) || (c2 != 0)); \
319 }
320 
322 #define muladd_fast(a,b) { \
323  uint32_t tl, th; \
324  { \
325  uint64_t t = (uint64_t)a * b; \
326  th = t >> 32; /* at most 0xFFFFFFFE */ \
327  tl = t; \
328  } \
329  c0 += tl; /* overflow is handled on the next line */ \
330  th += (c0 < tl); /* at most 0xFFFFFFFF */ \
331  c1 += th; /* never overflows by contract (verified in the next line) */ \
332  VERIFY_CHECK(c1 >= th); \
333 }
334 
336 #define sumadd(a) { \
337  unsigned int over; \
338  c0 += (a); /* overflow is handled on the next line */ \
339  over = (c0 < (a)); \
340  c1 += over; /* overflow is handled on the next line */ \
341  c2 += (c1 < over); /* never overflows by contract */ \
342 }
343 
345 #define sumadd_fast(a) { \
346  c0 += (a); /* overflow is handled on the next line */ \
347  c1 += (c0 < (a)); /* never overflows by contract (verified the next line) */ \
348  VERIFY_CHECK((c1 != 0) | (c0 >= (a))); \
349  VERIFY_CHECK(c2 == 0); \
350 }
351 
353 #define extract(n) { \
354  (n) = c0; \
355  c0 = c1; \
356  c1 = c2; \
357  c2 = 0; \
358 }
359 
361 #define extract_fast(n) { \
362  (n) = c0; \
363  c0 = c1; \
364  c1 = 0; \
365  VERIFY_CHECK(c2 == 0); \
366 }
367 
368 static void secp256k1_scalar_reduce_512(secp256k1_scalar *r, const uint32_t *l) {
369  uint64_t c;
370  uint32_t n0 = l[8], n1 = l[9], n2 = l[10], n3 = l[11], n4 = l[12], n5 = l[13], n6 = l[14], n7 = l[15];
371  uint32_t m0, m1, m2, m3, m4, m5, m6, m7, m8, m9, m10, m11, m12;
372  uint32_t p0, p1, p2, p3, p4, p5, p6, p7, p8;
373 
374  /* 96 bit accumulator. */
375  uint32_t c0, c1, c2;
376 
377  /* Reduce 512 bits into 385. */
378  /* m[0..12] = l[0..7] + n[0..7] * SECP256K1_N_C. */
379  c0 = l[0]; c1 = 0; c2 = 0;
381  extract_fast(m0);
382  sumadd_fast(l[1]);
383  muladd(n1, SECP256K1_N_C_0);
384  muladd(n0, SECP256K1_N_C_1);
385  extract(m1);
386  sumadd(l[2]);
387  muladd(n2, SECP256K1_N_C_0);
388  muladd(n1, SECP256K1_N_C_1);
389  muladd(n0, SECP256K1_N_C_2);
390  extract(m2);
391  sumadd(l[3]);
392  muladd(n3, SECP256K1_N_C_0);
393  muladd(n2, SECP256K1_N_C_1);
394  muladd(n1, SECP256K1_N_C_2);
395  muladd(n0, SECP256K1_N_C_3);
396  extract(m3);
397  sumadd(l[4]);
398  muladd(n4, SECP256K1_N_C_0);
399  muladd(n3, SECP256K1_N_C_1);
400  muladd(n2, SECP256K1_N_C_2);
401  muladd(n1, SECP256K1_N_C_3);
402  sumadd(n0);
403  extract(m4);
404  sumadd(l[5]);
405  muladd(n5, SECP256K1_N_C_0);
406  muladd(n4, SECP256K1_N_C_1);
407  muladd(n3, SECP256K1_N_C_2);
408  muladd(n2, SECP256K1_N_C_3);
409  sumadd(n1);
410  extract(m5);
411  sumadd(l[6]);
412  muladd(n6, SECP256K1_N_C_0);
413  muladd(n5, SECP256K1_N_C_1);
414  muladd(n4, SECP256K1_N_C_2);
415  muladd(n3, SECP256K1_N_C_3);
416  sumadd(n2);
417  extract(m6);
418  sumadd(l[7]);
419  muladd(n7, SECP256K1_N_C_0);
420  muladd(n6, SECP256K1_N_C_1);
421  muladd(n5, SECP256K1_N_C_2);
422  muladd(n4, SECP256K1_N_C_3);
423  sumadd(n3);
424  extract(m7);
425  muladd(n7, SECP256K1_N_C_1);
426  muladd(n6, SECP256K1_N_C_2);
427  muladd(n5, SECP256K1_N_C_3);
428  sumadd(n4);
429  extract(m8);
430  muladd(n7, SECP256K1_N_C_2);
431  muladd(n6, SECP256K1_N_C_3);
432  sumadd(n5);
433  extract(m9);
434  muladd(n7, SECP256K1_N_C_3);
435  sumadd(n6);
436  extract(m10);
437  sumadd_fast(n7);
438  extract_fast(m11);
439  VERIFY_CHECK(c0 <= 1);
440  m12 = c0;
441 
442  /* Reduce 385 bits into 258. */
443  /* p[0..8] = m[0..7] + m[8..12] * SECP256K1_N_C. */
444  c0 = m0; c1 = 0; c2 = 0;
446  extract_fast(p0);
447  sumadd_fast(m1);
448  muladd(m9, SECP256K1_N_C_0);
449  muladd(m8, SECP256K1_N_C_1);
450  extract(p1);
451  sumadd(m2);
452  muladd(m10, SECP256K1_N_C_0);
453  muladd(m9, SECP256K1_N_C_1);
454  muladd(m8, SECP256K1_N_C_2);
455  extract(p2);
456  sumadd(m3);
457  muladd(m11, SECP256K1_N_C_0);
458  muladd(m10, SECP256K1_N_C_1);
459  muladd(m9, SECP256K1_N_C_2);
460  muladd(m8, SECP256K1_N_C_3);
461  extract(p3);
462  sumadd(m4);
463  muladd(m12, SECP256K1_N_C_0);
464  muladd(m11, SECP256K1_N_C_1);
465  muladd(m10, SECP256K1_N_C_2);
466  muladd(m9, SECP256K1_N_C_3);
467  sumadd(m8);
468  extract(p4);
469  sumadd(m5);
470  muladd(m12, SECP256K1_N_C_1);
471  muladd(m11, SECP256K1_N_C_2);
472  muladd(m10, SECP256K1_N_C_3);
473  sumadd(m9);
474  extract(p5);
475  sumadd(m6);
476  muladd(m12, SECP256K1_N_C_2);
477  muladd(m11, SECP256K1_N_C_3);
478  sumadd(m10);
479  extract(p6);
480  sumadd_fast(m7);
482  sumadd_fast(m11);
483  extract_fast(p7);
484  p8 = c0 + m12;
485  VERIFY_CHECK(p8 <= 2);
486 
487  /* Reduce 258 bits into 256. */
488  /* r[0..7] = p[0..7] + p[8] * SECP256K1_N_C. */
489  c = p0 + (uint64_t)SECP256K1_N_C_0 * p8;
490  r->d[0] = c & 0xFFFFFFFFUL; c >>= 32;
491  c += p1 + (uint64_t)SECP256K1_N_C_1 * p8;
492  r->d[1] = c & 0xFFFFFFFFUL; c >>= 32;
493  c += p2 + (uint64_t)SECP256K1_N_C_2 * p8;
494  r->d[2] = c & 0xFFFFFFFFUL; c >>= 32;
495  c += p3 + (uint64_t)SECP256K1_N_C_3 * p8;
496  r->d[3] = c & 0xFFFFFFFFUL; c >>= 32;
497  c += p4 + (uint64_t)p8;
498  r->d[4] = c & 0xFFFFFFFFUL; c >>= 32;
499  c += p5;
500  r->d[5] = c & 0xFFFFFFFFUL; c >>= 32;
501  c += p6;
502  r->d[6] = c & 0xFFFFFFFFUL; c >>= 32;
503  c += p7;
504  r->d[7] = c & 0xFFFFFFFFUL; c >>= 32;
505 
506  /* Final reduction of r. */
508 }
509 
510 static void secp256k1_scalar_mul_512(uint32_t *l, const secp256k1_scalar *a, const secp256k1_scalar *b) {
511  /* 96 bit accumulator. */
512  uint32_t c0 = 0, c1 = 0, c2 = 0;
513 
514  /* l[0..15] = a[0..7] * b[0..7]. */
515  muladd_fast(a->d[0], b->d[0]);
516  extract_fast(l[0]);
517  muladd(a->d[0], b->d[1]);
518  muladd(a->d[1], b->d[0]);
519  extract(l[1]);
520  muladd(a->d[0], b->d[2]);
521  muladd(a->d[1], b->d[1]);
522  muladd(a->d[2], b->d[0]);
523  extract(l[2]);
524  muladd(a->d[0], b->d[3]);
525  muladd(a->d[1], b->d[2]);
526  muladd(a->d[2], b->d[1]);
527  muladd(a->d[3], b->d[0]);
528  extract(l[3]);
529  muladd(a->d[0], b->d[4]);
530  muladd(a->d[1], b->d[3]);
531  muladd(a->d[2], b->d[2]);
532  muladd(a->d[3], b->d[1]);
533  muladd(a->d[4], b->d[0]);
534  extract(l[4]);
535  muladd(a->d[0], b->d[5]);
536  muladd(a->d[1], b->d[4]);
537  muladd(a->d[2], b->d[3]);
538  muladd(a->d[3], b->d[2]);
539  muladd(a->d[4], b->d[1]);
540  muladd(a->d[5], b->d[0]);
541  extract(l[5]);
542  muladd(a->d[0], b->d[6]);
543  muladd(a->d[1], b->d[5]);
544  muladd(a->d[2], b->d[4]);
545  muladd(a->d[3], b->d[3]);
546  muladd(a->d[4], b->d[2]);
547  muladd(a->d[5], b->d[1]);
548  muladd(a->d[6], b->d[0]);
549  extract(l[6]);
550  muladd(a->d[0], b->d[7]);
551  muladd(a->d[1], b->d[6]);
552  muladd(a->d[2], b->d[5]);
553  muladd(a->d[3], b->d[4]);
554  muladd(a->d[4], b->d[3]);
555  muladd(a->d[5], b->d[2]);
556  muladd(a->d[6], b->d[1]);
557  muladd(a->d[7], b->d[0]);
558  extract(l[7]);
559  muladd(a->d[1], b->d[7]);
560  muladd(a->d[2], b->d[6]);
561  muladd(a->d[3], b->d[5]);
562  muladd(a->d[4], b->d[4]);
563  muladd(a->d[5], b->d[3]);
564  muladd(a->d[6], b->d[2]);
565  muladd(a->d[7], b->d[1]);
566  extract(l[8]);
567  muladd(a->d[2], b->d[7]);
568  muladd(a->d[3], b->d[6]);
569  muladd(a->d[4], b->d[5]);
570  muladd(a->d[5], b->d[4]);
571  muladd(a->d[6], b->d[3]);
572  muladd(a->d[7], b->d[2]);
573  extract(l[9]);
574  muladd(a->d[3], b->d[7]);
575  muladd(a->d[4], b->d[6]);
576  muladd(a->d[5], b->d[5]);
577  muladd(a->d[6], b->d[4]);
578  muladd(a->d[7], b->d[3]);
579  extract(l[10]);
580  muladd(a->d[4], b->d[7]);
581  muladd(a->d[5], b->d[6]);
582  muladd(a->d[6], b->d[5]);
583  muladd(a->d[7], b->d[4]);
584  extract(l[11]);
585  muladd(a->d[5], b->d[7]);
586  muladd(a->d[6], b->d[6]);
587  muladd(a->d[7], b->d[5]);
588  extract(l[12]);
589  muladd(a->d[6], b->d[7]);
590  muladd(a->d[7], b->d[6]);
591  extract(l[13]);
592  muladd_fast(a->d[7], b->d[7]);
593  extract_fast(l[14]);
594  VERIFY_CHECK(c1 == 0);
595  l[15] = c0;
596 }
597 
598 #undef sumadd
599 #undef sumadd_fast
600 #undef muladd
601 #undef muladd_fast
602 #undef extract
603 #undef extract_fast
604 
606  uint32_t l[16];
609 
610  secp256k1_scalar_mul_512(l, a, b);
612 
614 }
615 
617  int ret;
619  VERIFY_CHECK(n > 0);
620  VERIFY_CHECK(n < 16);
621 
622  ret = r->d[0] & ((1 << n) - 1);
623  r->d[0] = (r->d[0] >> n) + (r->d[1] << (32 - n));
624  r->d[1] = (r->d[1] >> n) + (r->d[2] << (32 - n));
625  r->d[2] = (r->d[2] >> n) + (r->d[3] << (32 - n));
626  r->d[3] = (r->d[3] >> n) + (r->d[4] << (32 - n));
627  r->d[4] = (r->d[4] >> n) + (r->d[5] << (32 - n));
628  r->d[5] = (r->d[5] >> n) + (r->d[6] << (32 - n));
629  r->d[6] = (r->d[6] >> n) + (r->d[7] << (32 - n));
630  r->d[7] = (r->d[7] >> n);
631 
633  return ret;
634 }
635 
638 
639  r1->d[0] = k->d[0];
640  r1->d[1] = k->d[1];
641  r1->d[2] = k->d[2];
642  r1->d[3] = k->d[3];
643  r1->d[4] = 0;
644  r1->d[5] = 0;
645  r1->d[6] = 0;
646  r1->d[7] = 0;
647  r2->d[0] = k->d[4];
648  r2->d[1] = k->d[5];
649  r2->d[2] = k->d[6];
650  r2->d[3] = k->d[7];
651  r2->d[4] = 0;
652  r2->d[5] = 0;
653  r2->d[6] = 0;
654  r2->d[7] = 0;
655 
658 }
659 
663 
664  return ((a->d[0] ^ b->d[0]) | (a->d[1] ^ b->d[1]) | (a->d[2] ^ b->d[2]) | (a->d[3] ^ b->d[3]) | (a->d[4] ^ b->d[4]) | (a->d[5] ^ b->d[5]) | (a->d[6] ^ b->d[6]) | (a->d[7] ^ b->d[7])) == 0;
665 }
666 
668  uint32_t l[16];
669  unsigned int shiftlimbs;
670  unsigned int shiftlow;
671  unsigned int shifthigh;
674  VERIFY_CHECK(shift >= 256);
675 
676  secp256k1_scalar_mul_512(l, a, b);
677  shiftlimbs = shift >> 5;
678  shiftlow = shift & 0x1F;
679  shifthigh = 32 - shiftlow;
680  r->d[0] = shift < 512 ? (l[0 + shiftlimbs] >> shiftlow | (shift < 480 && shiftlow ? (l[1 + shiftlimbs] << shifthigh) : 0)) : 0;
681  r->d[1] = shift < 480 ? (l[1 + shiftlimbs] >> shiftlow | (shift < 448 && shiftlow ? (l[2 + shiftlimbs] << shifthigh) : 0)) : 0;
682  r->d[2] = shift < 448 ? (l[2 + shiftlimbs] >> shiftlow | (shift < 416 && shiftlow ? (l[3 + shiftlimbs] << shifthigh) : 0)) : 0;
683  r->d[3] = shift < 416 ? (l[3 + shiftlimbs] >> shiftlow | (shift < 384 && shiftlow ? (l[4 + shiftlimbs] << shifthigh) : 0)) : 0;
684  r->d[4] = shift < 384 ? (l[4 + shiftlimbs] >> shiftlow | (shift < 352 && shiftlow ? (l[5 + shiftlimbs] << shifthigh) : 0)) : 0;
685  r->d[5] = shift < 352 ? (l[5 + shiftlimbs] >> shiftlow | (shift < 320 && shiftlow ? (l[6 + shiftlimbs] << shifthigh) : 0)) : 0;
686  r->d[6] = shift < 320 ? (l[6 + shiftlimbs] >> shiftlow | (shift < 288 && shiftlow ? (l[7 + shiftlimbs] << shifthigh) : 0)) : 0;
687  r->d[7] = shift < 288 ? (l[7 + shiftlimbs] >> shiftlow) : 0;
688  secp256k1_scalar_cadd_bit(r, 0, (l[(shift - 1) >> 5] >> ((shift - 1) & 0x1f)) & 1);
689 
691 }
692 
694  uint32_t mask0, mask1;
695  volatile int vflag = flag;
697  SECP256K1_CHECKMEM_CHECK_VERIFY(r->d, sizeof(r->d));
698 
699  mask0 = vflag + ~((uint32_t)0);
700  mask1 = ~mask0;
701  r->d[0] = (r->d[0] & mask0) | (a->d[0] & mask1);
702  r->d[1] = (r->d[1] & mask0) | (a->d[1] & mask1);
703  r->d[2] = (r->d[2] & mask0) | (a->d[2] & mask1);
704  r->d[3] = (r->d[3] & mask0) | (a->d[3] & mask1);
705  r->d[4] = (r->d[4] & mask0) | (a->d[4] & mask1);
706  r->d[5] = (r->d[5] & mask0) | (a->d[5] & mask1);
707  r->d[6] = (r->d[6] & mask0) | (a->d[6] & mask1);
708  r->d[7] = (r->d[7] & mask0) | (a->d[7] & mask1);
709 
711 }
712 
714  const uint32_t a0 = a->v[0], a1 = a->v[1], a2 = a->v[2], a3 = a->v[3], a4 = a->v[4],
715  a5 = a->v[5], a6 = a->v[6], a7 = a->v[7], a8 = a->v[8];
716 
717  /* The output from secp256k1_modinv32{_var} should be normalized to range [0,modulus), and
718  * have limbs in [0,2^30). The modulus is < 2^256, so the top limb must be below 2^(256-30*8).
719  */
720  VERIFY_CHECK(a0 >> 30 == 0);
721  VERIFY_CHECK(a1 >> 30 == 0);
722  VERIFY_CHECK(a2 >> 30 == 0);
723  VERIFY_CHECK(a3 >> 30 == 0);
724  VERIFY_CHECK(a4 >> 30 == 0);
725  VERIFY_CHECK(a5 >> 30 == 0);
726  VERIFY_CHECK(a6 >> 30 == 0);
727  VERIFY_CHECK(a7 >> 30 == 0);
728  VERIFY_CHECK(a8 >> 16 == 0);
729 
730  r->d[0] = a0 | a1 << 30;
731  r->d[1] = a1 >> 2 | a2 << 28;
732  r->d[2] = a2 >> 4 | a3 << 26;
733  r->d[3] = a3 >> 6 | a4 << 24;
734  r->d[4] = a4 >> 8 | a5 << 22;
735  r->d[5] = a5 >> 10 | a6 << 20;
736  r->d[6] = a6 >> 12 | a7 << 18;
737  r->d[7] = a7 >> 14 | a8 << 16;
738 
740 }
741 
743  const uint32_t M30 = UINT32_MAX >> 2;
744  const uint32_t a0 = a->d[0], a1 = a->d[1], a2 = a->d[2], a3 = a->d[3],
745  a4 = a->d[4], a5 = a->d[5], a6 = a->d[6], a7 = a->d[7];
747 
748  r->v[0] = a0 & M30;
749  r->v[1] = (a0 >> 30 | a1 << 2) & M30;
750  r->v[2] = (a1 >> 28 | a2 << 4) & M30;
751  r->v[3] = (a2 >> 26 | a3 << 6) & M30;
752  r->v[4] = (a3 >> 24 | a4 << 8) & M30;
753  r->v[5] = (a4 >> 22 | a5 << 10) & M30;
754  r->v[6] = (a5 >> 20 | a6 << 12) & M30;
755  r->v[7] = (a6 >> 18 | a7 << 14) & M30;
756  r->v[8] = a7 >> 16;
757 }
758 
760  {{0x10364141L, 0x3F497A33L, 0x348A03BBL, 0x2BB739ABL, -0x146L, 0, 0, 0, 65536}},
761  0x2A774EC1L
762 };
763 
766 #ifdef VERIFY
767  int zero_in = secp256k1_scalar_is_zero(x);
768 #endif
770 
774 
776 #ifdef VERIFY
777  VERIFY_CHECK(secp256k1_scalar_is_zero(r) == zero_in);
778 #endif
779 }
780 
783 #ifdef VERIFY
784  int zero_in = secp256k1_scalar_is_zero(x);
785 #endif
787 
791 
793 #ifdef VERIFY
794  VERIFY_CHECK(secp256k1_scalar_is_zero(r) == zero_in);
795 #endif
796 }
797 
800 
801  return !(a->d[0] & 1);
802 }
803 
804 #endif /* SECP256K1_SCALAR_REPR_IMPL_H */
#define VERIFY_CHECK(cond)
Definition: util.h:143
static void secp256k1_scalar_negate(secp256k1_scalar *r, const secp256k1_scalar *a)
int ret
static void secp256k1_scalar_inverse_var(secp256k1_scalar *r, const secp256k1_scalar *x)
#define SECP256K1_N_2
static SECP256K1_INLINE int secp256k1_scalar_is_even(const secp256k1_scalar *a)
static void secp256k1_scalar_mul(secp256k1_scalar *r, const secp256k1_scalar *a, const secp256k1_scalar *b)
static const secp256k1_modinv32_modinfo secp256k1_const_modinfo_scalar
#define SECP256K1_N_6
#define SECP256K1_N_H_1
static SECP256K1_INLINE void secp256k1_scalar_cmov(secp256k1_scalar *r, const secp256k1_scalar *a, int flag)
#define SECP256K1_N_7
static SECP256K1_INLINE int secp256k1_scalar_is_zero(const secp256k1_scalar *a)
static SECP256K1_INLINE uint32_t secp256k1_read_be32(const unsigned char *p)
Definition: util.h:346
#define SECP256K1_N_H_4
#define SECP256K1_N_0
#define sumadd_fast(a)
Add a to the number defined by (c0,c1).
static SECP256K1_INLINE unsigned int secp256k1_scalar_get_bits_var(const secp256k1_scalar *a, unsigned int offset, unsigned int count)
#define SECP256K1_N_H_5
#define SECP256K1_N_C_1
#define SECP256K1_INLINE
Definition: util.h:48
#define SECP256K1_N_5
static SECP256K1_INLINE int secp256k1_scalar_check_overflow(const secp256k1_scalar *a)
#define sumadd(a)
Add a to the number defined by (c0,c1,c2).
static void secp256k1_scalar_cadd_bit(secp256k1_scalar *r, unsigned int bit, int flag)
static SECP256K1_INLINE void secp256k1_scalar_clear(secp256k1_scalar *r)
static void secp256k1_scalar_reduce_512(secp256k1_scalar *r, const uint32_t *l)
static SECP256K1_INLINE void secp256k1_write_be32(unsigned char *p, uint32_t x)
Definition: util.h:354
static int secp256k1_scalar_cond_negate(secp256k1_scalar *r, int flag)
static void secp256k1_modinv32_var(secp256k1_modinv32_signed30 *x, const secp256k1_modinv32_modinfo *modinfo)
static void secp256k1_scalar_inverse(secp256k1_scalar *r, const secp256k1_scalar *x)
#define SECP256K1_N_C_4
#define SECP256K1_N_H_7
#define extract(n)
Extract the lowest 32 bits of (c0,c1,c2) into n, and left shift the number 32 bits.
static SECP256K1_INLINE unsigned int secp256k1_scalar_get_bits(const secp256k1_scalar *a, unsigned int offset, unsigned int count)
#define SECP256K1_N_3
static void secp256k1_scalar_set_b32(secp256k1_scalar *r, const unsigned char *b32, int *overflow)
static SECP256K1_INLINE int secp256k1_scalar_is_one(const secp256k1_scalar *a)
#define SECP256K1_N_H_2
static SECP256K1_INLINE void secp256k1_scalar_set_int(secp256k1_scalar *r, unsigned int v)
A scalar modulo the group order of the secp256k1 curve.
Definition: scalar_4x64.h:13
#define muladd_fast(a, b)
Add a*b to the number defined by (c0,c1).
#define SECP256K1_N_4
#define muladd(a, b)
Add a*b to the number defined by (c0,c1,c2).
#define SECP256K1_N_H_3
static void secp256k1_modinv32(secp256k1_modinv32_signed30 *x, const secp256k1_modinv32_modinfo *modinfo)
uint64_t d[4]
Definition: scalar_4x64.h:14
#define SECP256K1_N_1
static int secp256k1_scalar_is_high(const secp256k1_scalar *a)
#define SECP256K1_N_H_6
#define SECP256K1_N_H_0
static void secp256k1_scalar_split_128(secp256k1_scalar *r1, secp256k1_scalar *r2, const secp256k1_scalar *k)
static void secp256k1_scalar_to_signed30(secp256k1_modinv32_signed30 *r, const secp256k1_scalar *a)
static int secp256k1_scalar_shr_int(secp256k1_scalar *r, int n)
static int count
static SECP256K1_INLINE int secp256k1_scalar_eq(const secp256k1_scalar *a, const secp256k1_scalar *b)
#define SECP256K1_CHECKMEM_CHECK_VERIFY(p, len)
Definition: checkmem.h:92
static SECP256K1_INLINE int secp256k1_scalar_reduce(secp256k1_scalar *r, uint32_t overflow)
#define SECP256K1_N_C_3
#define SECP256K1_N_C_0
static void secp256k1_scalar_mul_512(uint32_t *l, const secp256k1_scalar *a, const secp256k1_scalar *b)
static SECP256K1_INLINE void secp256k1_scalar_mul_shift_var(secp256k1_scalar *r, const secp256k1_scalar *a, const secp256k1_scalar *b, unsigned int shift)
static void secp256k1_scalar_from_signed30(secp256k1_scalar *r, const secp256k1_modinv32_signed30 *a)
static void secp256k1_scalar_verify(const secp256k1_scalar *r)
Check invariants on a scalar (no-op unless VERIFY is enabled).
static void secp256k1_scalar_get_b32(unsigned char *bin, const secp256k1_scalar *a)
static int secp256k1_scalar_add(secp256k1_scalar *r, const secp256k1_scalar *a, const secp256k1_scalar *b)
#define extract_fast(n)
Extract the lowest 32 bits of (c0,c1,c2) into n, and left shift the number 32 bits.
#define SECP256K1_N_C_2