Coverage Report

Created: 2026-06-08 06:48

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/gmp/mpn/powm.c
Line
Count
Source
1
/* mpn_powm -- Compute R = U^E mod M.
2
3
   Contributed to the GNU project by Torbjorn Granlund.
4
5
   THE FUNCTIONS IN THIS FILE ARE INTERNAL WITH MUTABLE INTERFACES.  IT IS ONLY
6
   SAFE TO REACH THEM THROUGH DOCUMENTED INTERFACES.  IN FACT, IT IS ALMOST
7
   GUARANTEED THAT THEY WILL CHANGE OR DISAPPEAR IN A FUTURE GNU MP RELEASE.
8
9
Copyright 2007-2012, 2019-2021 Free Software Foundation, Inc.
10
11
This file is part of the GNU MP Library.
12
13
The GNU MP Library is free software; you can redistribute it and/or modify
14
it under the terms of either:
15
16
  * the GNU Lesser General Public License as published by the Free
17
    Software Foundation; either version 3 of the License, or (at your
18
    option) any later version.
19
20
or
21
22
  * the GNU General Public License as published by the Free Software
23
    Foundation; either version 2 of the License, or (at your option) any
24
    later version.
25
26
or both in parallel, as here.
27
28
The GNU MP Library is distributed in the hope that it will be useful, but
29
WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY
30
or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License
31
for more details.
32
33
You should have received copies of the GNU General Public License and the
34
GNU Lesser General Public License along with the GNU MP Library.  If not,
35
see https://www.gnu.org/licenses/.  */
36
37
38
/*
39
  BASIC ALGORITHM, Compute U^E mod M, where M < B^n is odd.
40
41
  1. W <- U
42
43
  2. T <- (B^n * U) mod M                Convert to REDC form
44
45
  3. Compute table U^1, U^3, U^5... of E-dependent size
46
47
  4. While there are more bits in E
48
       W <- power left-to-right base-k
49
50
51
  TODO:
52
53
   * Make getbits a macro, thereby allowing it to update the index operand.
54
     That will simplify the code using getbits.  (Perhaps make getbits' sibling
55
     getbit then have similar form, for symmetry.)
56
57
   * Write an itch function.  Or perhaps get rid of tp parameter since the huge
58
     pp area is allocated locally anyway?
59
60
   * Choose window size without looping.  (Superoptimize or think(tm).)
61
62
   * Handle small bases with initial, reduction-free exponentiation.
63
64
   * Call new division functions, not mpn_tdiv_qr.
65
66
   * Consider special code for one-limb M.
67
68
   * How should we handle the redc1/redc2/redc_n choice?
69
     - redc1:  T(binvert_1limb)  + e * (n)   * (T(mullo-1x1) + n*T(addmul_1))
70
     - redc2:  T(binvert_2limbs) + e * (n/2) * (T(mullo-2x2) + n*T(addmul_2))
71
     - redc_n: T(binvert_nlimbs) + e * (T(mullo-nxn) + T(M(n)))
72
     This disregards the addmul_N constant term, but we could think of
73
     that as part of the respective mullo.
74
75
   * When U (the base) is small, we should start the exponentiation with plain
76
     operations, then convert that partial result to REDC form.
77
78
   * When U is just one limb, should it be handled without the k-ary tricks?
79
     We could keep a factor of B^n in W, but use U' = BU as base.  After
80
     multiplying by this (pseudo two-limb) number, we need to multiply by 1/B
81
     mod M.
82
*/
83
84
#include "gmp-impl.h"
85
#include "longlong.h"
86
87
#undef MPN_REDC_0
88
#define MPN_REDC_0(r0, u1, u0, m0, invm)        \
89
529k
  do {                 \
90
529k
    mp_limb_t _p1, _u1, _u0, _m0, _r0, _dummy;        \
91
529k
    _u0 = (u0);               \
92
529k
    _m0 = (m0);               \
93
529k
    umul_ppmm (_p1, _dummy, _m0, (_u0 * (invm)) & GMP_NUMB_MASK);  \
94
529k
    ASSERT (((_u0 - _dummy) & GMP_NUMB_MASK) == 0);     \
95
529k
    _u1 = (u1);               \
96
529k
    _r0 = _u1 - _p1;              \
97
529k
    _r0 = _u1 < _p1 ? _r0 + _m0 : _r0; /* _u1 < _r0 */     \
98
529k
    (r0) = _r0 & GMP_NUMB_MASK;           \
99
529k
  } while (0)
100
101
#undef MPN_REDC_1
102
#if HAVE_NATIVE_mpn_sbpi1_bdiv_r
103
#define MPN_REDC_1(rp, up, mp, n, invm)         \
104
  do {                  \
105
    mp_limb_t cy;             \
106
    cy = mpn_sbpi1_bdiv_r (up, 2 * n, mp, n, invm);     \
107
    if (cy != 0)              \
108
      mpn_sub_n (rp, up + n, mp, n);          \
109
    else                \
110
      MPN_COPY (rp, up + n, n);           \
111
  } while (0)
112
#else
113
#define MPN_REDC_1(rp, up, mp, n, invm)         \
114
5.14M
  do {                 \
115
5.14M
    mp_limb_t cy;             \
116
5.14M
    cy = mpn_redc_1 (rp, up, mp, n, invm);       \
117
5.14M
    if (cy != 0)             \
118
5.14M
      mpn_sub_n (rp, rp, mp, n);         \
119
5.14M
  } while (0)
120
#endif
121
122
#undef MPN_REDC_2
123
#define MPN_REDC_2(rp, up, mp, n, mip)          \
124
  do {                  \
125
    mp_limb_t cy;             \
126
    cy = mpn_redc_2 (rp, up, mp, n, mip);       \
127
    if (cy != 0)              \
128
      mpn_sub_n (rp, rp, mp, n);          \
129
  } while (0)
130
131
#if HAVE_NATIVE_mpn_addmul_2 || HAVE_NATIVE_mpn_redc_2
132
#define WANT_REDC_2 1
133
#endif
134
135
#define getbit(p,bi) \
136
4.97M
  ((p[(bi - 1) / GMP_LIMB_BITS] >> (bi - 1) % GMP_LIMB_BITS) & 1)
137
138
static inline mp_limb_t
139
getbits (const mp_limb_t *p, mp_bitcnt_t bi, int nbits)
140
696k
{
141
696k
  int nbits_in_r;
142
696k
  mp_limb_t r;
143
696k
  mp_size_t i;
144
145
696k
  if (bi <= nbits)
146
22.0k
    {
147
22.0k
      return p[0] & (((mp_limb_t) 1 << bi) - 1);
148
22.0k
    }
149
674k
  else
150
674k
    {
151
674k
      bi -= nbits;      /* bit index of low bit to extract */
152
674k
      i = bi / GMP_NUMB_BITS;   /* word index of low bit to extract */
153
674k
      bi %= GMP_NUMB_BITS;   /* bit index in low word */
154
674k
      r = p[i] >> bi;     /* extract (low) bits */
155
674k
      nbits_in_r = GMP_NUMB_BITS - bi;  /* number of bits now in r */
156
674k
      if (nbits_in_r < nbits)    /* did we get enough bits? */
157
36.1k
  r += p[i + 1] << nbits_in_r; /* prepend bits from higher word */
158
674k
      return r & (((mp_limb_t) 1 << nbits) - 1);
159
674k
    }
160
696k
}
161
162
static inline int
163
win_size (mp_bitcnt_t eb)
164
28.2k
{
165
28.2k
  int k;
166
28.2k
  static mp_bitcnt_t x[] = {7,25,81,241,673,1793,4609,11521,28161,~(mp_bitcnt_t)0};
167
80.6k
  for (k = 0; eb > x[k++]; )
168
52.3k
    ;
169
28.2k
  return k;
170
28.2k
}
171
172
/* Convert U to REDC form, U_r = B^n * U mod M */
173
static void
174
redcify (mp_ptr rp, mp_srcptr up, mp_size_t un, mp_srcptr mp, mp_size_t n)
175
32.6k
{
176
32.6k
  mp_ptr tp, qp;
177
32.6k
  TMP_DECL;
178
32.6k
  TMP_MARK;
179
180
32.6k
  TMP_ALLOC_LIMBS_2 (tp, un + n, qp, un + 1);
181
182
32.6k
  MPN_ZERO (tp, n);
183
32.6k
  MPN_COPY (tp + n, up, un);
184
32.6k
  mpn_tdiv_qr (qp, rp, 0L, tp, un + n, mp, n);
185
32.6k
  TMP_FREE;
186
32.6k
}
187
188
#if ! HAVE_NATIVE_mpn_rsblsh1_n_ip2
189
#undef mpn_rsblsh1_n_ip2
190
#if HAVE_NATIVE_mpn_rsblsh1_n
191
#define mpn_rsblsh1_n_ip2(a,b,n)  mpn_rsblsh1_n(a,b,a,n)
192
#else
193
#define mpn_rsblsh1_n_ip2(a,b,n)        \
194
453k
  do                \
195
453k
    {               \
196
453k
      mpn_lshift (a, a, n, 1);          \
197
453k
      mpn_sub_n (a, a, b, n);          \
198
453k
    } while (0)
199
#endif
200
#endif
201
202
#define INNERLOOP2            \
203
4.34k
  do                \
204
2.61M
    {               \
205
2.61M
      MPN_SQR (tp, rp, n);         \
206
2.61M
      MPN_REDUCE (rp, tp, mp, n, mip);        \
207
2.61M
      if (mpn_cmp (rp, mp, n) >= 0)       \
208
2.61M
  ASSERT_NOCARRY (mpn_sub_n (rp, rp, mp, n));   \
209
2.61M
      if (getbit (ep, ebi) != 0)       \
210
2.61M
  {             \
211
1.28M
    if (rp[n - 1] >> (mbi - 1) % GMP_LIMB_BITS == 0)  \
212
1.28M
      ASSERT_NOCARRY (mpn_lshift (rp, rp, n, 1));   \
213
1.28M
    else              \
214
1.28M
      mpn_rsblsh1_n_ip2 (rp, mp, n);     \
215
1.28M
  }              \
216
2.61M
    } while (--ebi != 0)
217
218
/* rp[n-1..0] = 2 ^ ep[en-1..0] mod mp[n-1..0]
219
   Requires that mp[n-1..0] is odd and > 1.
220
   Requires that ep[en-1..0] is > 1.
221
   Uses scratch space at tp of MAX(mpn_binvert_itch(n),2n) limbs.  */
222
static void
223
mpn_2powm (mp_ptr rp, mp_srcptr ep, mp_size_t en,
224
    mp_srcptr mp, mp_size_t n, mp_ptr tp)
225
5.34k
{
226
5.34k
  mp_limb_t ip[2], *mip;
227
5.34k
  mp_bitcnt_t ebi, mbi, tbi;
228
5.34k
  mp_size_t tn;
229
5.34k
  int count;
230
5.34k
  TMP_DECL;
231
232
5.34k
  ASSERT (en > 1 || (en == 1 && ep[0] > 1));
233
5.34k
  ASSERT (n > 0 && (mp[0] & 1) != 0);
234
235
5.34k
  MPN_SIZEINBASE_2EXP(ebi, ep, en, 1);
236
5.34k
  MPN_SIZEINBASE_2EXP(mbi, mp, n, 1);
237
238
5.34k
  if (LIKELY (mbi <= GMP_NUMB_MAX))
239
5.34k
    {
240
5.34k
      count_leading_zeros(count, (mp_limb_t) mbi);
241
5.34k
      count = GMP_NUMB_BITS - (count - GMP_NAIL_BITS);
242
5.34k
    }
243
0
  else
244
0
    {
245
0
      mp_bitcnt_t tc = mbi;
246
247
0
      count = 0;
248
0
      do { ++count; } while ((tc >>= 1) != 0);
249
0
    }
250
251
5.34k
  tbi = getbits (ep, ebi, count);
252
5.34k
  if (tbi >= mbi)
253
3.45k
    {
254
3.45k
      --count;
255
3.45k
      ASSERT ((tbi >> count) == 1);
256
3.45k
      tbi >>= 1;
257
3.45k
      ASSERT (tbi < mbi);
258
3.45k
      ASSERT (ebi > count);
259
3.45k
    }
260
1.89k
  else if (ebi <= count)
261
20
    {
262
20
      MPN_FILL (rp, n, 0);
263
20
      rp[tbi / GMP_LIMB_BITS] = CNST_LIMB (1) << (tbi % GMP_LIMB_BITS);
264
20
      return;
265
20
    }
266
5.32k
  ebi -= count;
267
268
5.32k
  if (n == 1)
269
986
    {
270
986
      mp_limb_t r0, m0, invm;
271
986
      m0 = *mp;
272
273
      /* redcify (rp, tp, tn + 1, mp, n); */
274
      /* TODO: test direct use of udiv_qrnnd */
275
986
      ASSERT (tbi < GMP_LIMB_BITS);
276
986
      tp[1] = CNST_LIMB (1) << tbi;
277
986
      tp[0] = CNST_LIMB (0);
278
986
      r0 = mpn_mod_1 (tp, 2, m0);
279
280
986
      binvert_limb (invm, m0);
281
986
      do
282
128k
  {
283
128k
    mp_limb_t t0, t1, t2;
284
    /* MPN_SQR (tp, rp, n);     */
285
128k
    umul_ppmm (t1, t0, r0, r0);
286
    /* MPN_REDUCE (rp, tp, mp, n, mip);   */
287
128k
    MPN_REDC_0(r0, t1, t0, m0, invm);
288
289
128k
    t2 = r0 << 1;
290
128k
    t2 = r0 > (m0 >> 1) ? t2 - m0 : t2;
291
128k
    r0 = getbit (ep, ebi) != 0 ? t2 : r0;
292
128k
  } while (--ebi != 0);
293
294
      /* tp[1] = 0; tp[0] = r0; */
295
      /* MPN_REDUCE (rp, tp, mp, n, mip); */
296
986
      MPN_REDC_0(*rp, 0, r0, m0, invm);
297
298
986
      return;
299
986
    }
300
301
4.34k
  TMP_MARK;
302
303
#if WANT_REDC_2
304
  if (BELOW_THRESHOLD (n, REDC_1_TO_REDC_2_THRESHOLD))
305
    {
306
      mip = ip;
307
      binvert_limb (ip[0], mp[0]);
308
      ip[0] = -ip[0];
309
    }
310
  else if (BELOW_THRESHOLD (n, REDC_2_TO_REDC_N_THRESHOLD))
311
    {
312
      mip = ip;
313
      mpn_binvert (ip, mp, 2, tp);
314
      ip[0] = -ip[0]; ip[1] = ~ip[1];
315
    }
316
#else
317
4.34k
  if (BELOW_THRESHOLD (n, REDC_1_TO_REDC_N_THRESHOLD))
318
3.66k
    {
319
3.66k
      mip = ip;
320
3.66k
      binvert_limb (ip[0], mp[0]);
321
3.66k
      ip[0] = -ip[0];
322
3.66k
    }
323
681
#endif
324
681
  else
325
681
    {
326
681
      mip = TMP_ALLOC_LIMBS (n);
327
681
      mpn_binvert (mip, mp, n, tp);
328
681
    }
329
330
4.34k
  tn = tbi / GMP_LIMB_BITS;
331
4.34k
  MPN_ZERO (tp, tn);
332
4.34k
  tp[tn] = CNST_LIMB (1) << (tbi % GMP_LIMB_BITS);
333
334
4.34k
  redcify (rp, tp, tn + 1, mp, n);
335
336
#if WANT_REDC_2
337
  if (REDC_1_TO_REDC_2_THRESHOLD < MUL_TOOM22_THRESHOLD)
338
    {
339
      if (BELOW_THRESHOLD (n, REDC_1_TO_REDC_2_THRESHOLD))
340
  {
341
    if (REDC_1_TO_REDC_2_THRESHOLD < SQR_BASECASE_THRESHOLD
342
        || BELOW_THRESHOLD (n, SQR_BASECASE_THRESHOLD))
343
      {
344
#undef MPN_SQR
345
#undef MPN_REDUCE
346
#define MPN_SQR(r,a,n)      mpn_mul_basecase (r,a,n,a,n)
347
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_1 (rp, tp, mp, n, mip[0])
348
        INNERLOOP2;
349
      }
350
    else
351
      {
352
#undef MPN_SQR
353
#undef MPN_REDUCE
354
#define MPN_SQR(r,a,n)      mpn_sqr_basecase (r,a,n)
355
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_1 (rp, tp, mp, n, mip[0])
356
        INNERLOOP2;
357
      }
358
  }
359
      else if (BELOW_THRESHOLD (n, MUL_TOOM22_THRESHOLD))
360
  {
361
    if (MUL_TOOM22_THRESHOLD < SQR_BASECASE_THRESHOLD
362
        || BELOW_THRESHOLD (n, SQR_BASECASE_THRESHOLD))
363
      {
364
#undef MPN_SQR
365
#undef MPN_REDUCE
366
#define MPN_SQR(r,a,n)      mpn_mul_basecase (r,a,n,a,n)
367
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_2 (rp, tp, mp, n, mip)
368
        INNERLOOP2;
369
      }
370
    else
371
      {
372
#undef MPN_SQR
373
#undef MPN_REDUCE
374
#define MPN_SQR(r,a,n)      mpn_sqr_basecase (r,a,n)
375
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_2 (rp, tp, mp, n, mip)
376
        INNERLOOP2;
377
      }
378
  }
379
      else if (BELOW_THRESHOLD (n, REDC_2_TO_REDC_N_THRESHOLD))
380
  {
381
#undef MPN_SQR
382
#undef MPN_REDUCE
383
#define MPN_SQR(r,a,n)      mpn_sqr (r,a,n)
384
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_2 (rp, tp, mp, n, mip)
385
    INNERLOOP2;
386
  }
387
      else
388
  {
389
#undef MPN_SQR
390
#undef MPN_REDUCE
391
#define MPN_SQR(r,a,n)      mpn_sqr (r,a,n)
392
#define MPN_REDUCE(rp,tp,mp,n,mip)  mpn_redc_n (rp, tp, mp, n, mip)
393
    INNERLOOP2;
394
  }
395
    }
396
  else
397
    {
398
      if (BELOW_THRESHOLD (n, MUL_TOOM22_THRESHOLD))
399
  {
400
    if (MUL_TOOM22_THRESHOLD < SQR_BASECASE_THRESHOLD
401
        || BELOW_THRESHOLD (n, SQR_BASECASE_THRESHOLD))
402
      {
403
#undef MPN_SQR
404
#undef MPN_REDUCE
405
#define MPN_SQR(r,a,n)      mpn_mul_basecase (r,a,n,a,n)
406
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_1 (rp, tp, mp, n, mip[0])
407
        INNERLOOP2;
408
      }
409
    else
410
      {
411
#undef MPN_SQR
412
#undef MPN_REDUCE
413
#define MPN_SQR(r,a,n)      mpn_sqr_basecase (r,a,n)
414
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_1 (rp, tp, mp, n, mip[0])
415
        INNERLOOP2;
416
      }
417
  }
418
      else if (BELOW_THRESHOLD (n, REDC_1_TO_REDC_2_THRESHOLD))
419
  {
420
#undef MPN_SQR
421
#undef MPN_REDUCE
422
#define MPN_SQR(r,a,n)      mpn_sqr (r,a,n)
423
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_1 (rp, tp, mp, n, mip[0])
424
    INNERLOOP2;
425
  }
426
      else if (BELOW_THRESHOLD (n, REDC_2_TO_REDC_N_THRESHOLD))
427
  {
428
#undef MPN_SQR
429
#undef MPN_REDUCE
430
#define MPN_SQR(r,a,n)      mpn_sqr (r,a,n)
431
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_2 (rp, tp, mp, n, mip)
432
    INNERLOOP2;
433
  }
434
      else
435
  {
436
#undef MPN_SQR
437
#undef MPN_REDUCE
438
#define MPN_SQR(r,a,n)      mpn_sqr (r,a,n)
439
#define MPN_REDUCE(rp,tp,mp,n,mip)  mpn_redc_n (rp, tp, mp, n, mip)
440
    INNERLOOP2;
441
  }
442
    }
443
444
#else  /* WANT_REDC_2 */
445
446
4.34k
  if (REDC_1_TO_REDC_N_THRESHOLD < MUL_TOOM22_THRESHOLD)
447
0
    {
448
0
      if (BELOW_THRESHOLD (n, REDC_1_TO_REDC_N_THRESHOLD))
449
0
  {
450
0
    if (REDC_1_TO_REDC_N_THRESHOLD < SQR_BASECASE_THRESHOLD
451
0
        || BELOW_THRESHOLD (n, SQR_BASECASE_THRESHOLD))
452
0
      {
453
0
#undef MPN_SQR
454
0
#undef MPN_REDUCE
455
0
#define MPN_SQR(r,a,n)      mpn_mul_basecase (r,a,n,a,n)
456
0
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_1 (rp, tp, mp, n, mip[0])
457
0
        INNERLOOP2;
458
0
      }
459
0
    else
460
0
      {
461
0
#undef MPN_SQR
462
0
#undef MPN_REDUCE
463
0
#define MPN_SQR(r,a,n)      mpn_sqr_basecase (r,a,n)
464
0
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_1 (rp, tp, mp, n, mip[0])
465
0
        INNERLOOP2;
466
0
      }
467
0
  }
468
0
      else if (BELOW_THRESHOLD (n, MUL_TOOM22_THRESHOLD))
469
0
  {
470
0
    if (MUL_TOOM22_THRESHOLD < SQR_BASECASE_THRESHOLD
471
0
        || BELOW_THRESHOLD (n, SQR_BASECASE_THRESHOLD))
472
0
      {
473
0
#undef MPN_SQR
474
0
#undef MPN_REDUCE
475
0
#define MPN_SQR(r,a,n)      mpn_mul_basecase (r,a,n,a,n)
476
0
#define MPN_REDUCE(rp,tp,mp,n,mip)  mpn_redc_n (rp, tp, mp, n, mip)
477
0
        INNERLOOP2;
478
0
      }
479
0
    else
480
0
      {
481
0
#undef MPN_SQR
482
0
#undef MPN_REDUCE
483
0
#define MPN_SQR(r,a,n)      mpn_sqr_basecase (r,a,n)
484
0
#define MPN_REDUCE(rp,tp,mp,n,mip)  mpn_redc_n (rp, tp, mp, n, mip)
485
0
        INNERLOOP2;
486
0
      }
487
0
  }
488
0
      else
489
0
  {
490
0
#undef MPN_SQR
491
0
#undef MPN_REDUCE
492
0
#define MPN_SQR(r,a,n)      mpn_sqr (r,a,n)
493
0
#define MPN_REDUCE(rp,tp,mp,n,mip)  mpn_redc_n (rp, tp, mp, n, mip)
494
0
    INNERLOOP2;
495
0
  }
496
0
    }
497
4.34k
  else
498
4.34k
    {
499
4.34k
      if (BELOW_THRESHOLD (n, MUL_TOOM22_THRESHOLD))
500
1.78k
  {
501
1.78k
    if (MUL_TOOM22_THRESHOLD < SQR_BASECASE_THRESHOLD
502
0
        || BELOW_THRESHOLD (n, SQR_BASECASE_THRESHOLD))
503
0
      {
504
0
#undef MPN_SQR
505
0
#undef MPN_REDUCE
506
0
#define MPN_SQR(r,a,n)      mpn_mul_basecase (r,a,n,a,n)
507
0
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_1 (rp, tp, mp, n, mip[0])
508
0
        INNERLOOP2;
509
0
      }
510
1.78k
    else
511
1.78k
      {
512
1.78k
#undef MPN_SQR
513
1.78k
#undef MPN_REDUCE
514
220k
#define MPN_SQR(r,a,n)      mpn_sqr_basecase (r,a,n)
515
220k
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_1 (rp, tp, mp, n, mip[0])
516
1.78k
        INNERLOOP2;
517
1.78k
      }
518
1.78k
  }
519
2.56k
      else if (BELOW_THRESHOLD (n, REDC_1_TO_REDC_N_THRESHOLD))
520
1.88k
  {
521
1.88k
#undef MPN_SQR
522
1.88k
#undef MPN_REDUCE
523
1.49M
#define MPN_SQR(r,a,n)      mpn_sqr (r,a,n)
524
1.49M
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_1 (rp, tp, mp, n, mip[0])
525
1.88k
    INNERLOOP2;
526
1.88k
  }
527
681
      else
528
681
  {
529
681
#undef MPN_SQR
530
681
#undef MPN_REDUCE
531
901k
#define MPN_SQR(r,a,n)      mpn_sqr (r,a,n)
532
901k
#define MPN_REDUCE(rp,tp,mp,n,mip)  mpn_redc_n (rp, tp, mp, n, mip)
533
681
    INNERLOOP2;
534
681
  }
535
4.34k
    }
536
4.34k
#endif  /* WANT_REDC_2 */
537
538
4.34k
  MPN_COPY (tp, rp, n);
539
4.34k
  MPN_FILL (tp + n, n, 0);
540
541
#if WANT_REDC_2
542
  if (BELOW_THRESHOLD (n, REDC_1_TO_REDC_2_THRESHOLD))
543
    MPN_REDC_1 (rp, tp, mp, n, ip[0]);
544
  else if (BELOW_THRESHOLD (n, REDC_2_TO_REDC_N_THRESHOLD))
545
    MPN_REDC_2 (rp, tp, mp, n, mip);
546
#else
547
4.34k
  if (BELOW_THRESHOLD (n, REDC_1_TO_REDC_N_THRESHOLD))
548
3.66k
    MPN_REDC_1 (rp, tp, mp, n, ip[0]);
549
681
#endif
550
681
  else
551
681
    mpn_redc_n (rp, tp, mp, n, mip);
552
553
4.34k
  if (mpn_cmp (rp, mp, n) >= 0)
554
0
    mpn_sub_n (rp, rp, mp, n);
555
556
4.34k
  TMP_FREE;
557
4.34k
}
558
559
/* rp[n-1..0] = bp[bn-1..0] ^ ep[en-1..0] mod mp[n-1..0]
560
   Requires that mp[n-1..0] is odd.
561
   Requires that ep[en-1..0] is > 1.
562
   Uses scratch space at tp of MAX(mpn_binvert_itch(n),2n) limbs.  */
563
void
564
mpn_powm (mp_ptr rp, mp_srcptr bp, mp_size_t bn,
565
    mp_srcptr ep, mp_size_t en,
566
    mp_srcptr mp, mp_size_t n, mp_ptr tp)
567
33.6k
{
568
33.6k
  mp_limb_t ip[2], *mip;
569
33.6k
  int cnt;
570
33.6k
  mp_bitcnt_t ebi;
571
33.6k
  int windowsize, this_windowsize;
572
33.6k
  mp_limb_t expbits;
573
33.6k
  mp_ptr pp, this_pp;
574
33.6k
  long i;
575
33.6k
  TMP_DECL;
576
577
33.6k
  ASSERT (en > 1 || (en == 1 && ep[0] > 1));
578
33.6k
  ASSERT (n >= 1 && ((mp[0] & 1) != 0));
579
580
33.6k
  if (bn == 1 && bp[0] == 2)
581
5.34k
    {
582
5.34k
      mpn_2powm (rp, ep, en, mp, n, tp);
583
5.34k
      return;
584
5.34k
    }
585
586
28.2k
  TMP_MARK;
587
588
28.2k
  MPN_SIZEINBASE_2EXP(ebi, ep, en, 1);
589
590
#if 0
591
  if (bn < n)
592
    {
593
      /* Do the first few exponent bits without mod reductions,
594
   until the result is greater than the mod argument.  */
595
      for (;;)
596
  {
597
    mpn_sqr (tp, this_pp, tn);
598
    tn = tn * 2 - 1,  tn += tp[tn] != 0;
599
    if (getbit (ep, ebi) != 0)
600
      mpn_mul (..., tp, tn, bp, bn);
601
    ebi--;
602
  }
603
    }
604
#endif
605
606
28.2k
  windowsize = win_size (ebi);
607
608
#if WANT_REDC_2
609
  if (BELOW_THRESHOLD (n, REDC_1_TO_REDC_2_THRESHOLD))
610
    {
611
      mip = ip;
612
      binvert_limb (mip[0], mp[0]);
613
      mip[0] = -mip[0];
614
    }
615
  else if (BELOW_THRESHOLD (n, REDC_2_TO_REDC_N_THRESHOLD))
616
    {
617
      mip = ip;
618
      mpn_binvert (mip, mp, 2, tp);
619
      mip[0] = -mip[0]; mip[1] = ~mip[1];
620
    }
621
#else
622
28.2k
  if (BELOW_THRESHOLD (n, REDC_1_TO_REDC_N_THRESHOLD))
623
26.8k
    {
624
26.8k
      mip = ip;
625
26.8k
      binvert_limb (mip[0], mp[0]);
626
26.8k
      mip[0] = -mip[0];
627
26.8k
    }
628
1.42k
#endif
629
1.42k
  else
630
1.42k
    {
631
1.42k
      mip = TMP_ALLOC_LIMBS (n);
632
1.42k
      mpn_binvert (mip, mp, n, tp);
633
1.42k
    }
634
635
28.2k
  pp = TMP_ALLOC_LIMBS (n << (windowsize - 1));
636
637
28.2k
  this_pp = pp;
638
28.2k
  redcify (this_pp, bp, bn, mp, n);
639
640
  /* Store b^2 at rp.  */
641
28.2k
  mpn_sqr (tp, this_pp, n);
642
#if 0
643
  if (n == 1) {
644
    MPN_REDC_0 (rp[0], tp[1], tp[0], mp[0], -mip[0]);
645
  } else
646
#endif
647
#if WANT_REDC_2
648
  if (BELOW_THRESHOLD (n, REDC_1_TO_REDC_2_THRESHOLD))
649
    MPN_REDC_1 (rp, tp, mp, n, mip[0]);
650
  else if (BELOW_THRESHOLD (n, REDC_2_TO_REDC_N_THRESHOLD))
651
    MPN_REDC_2 (rp, tp, mp, n, mip);
652
#else
653
28.2k
  if (BELOW_THRESHOLD (n, REDC_1_TO_REDC_N_THRESHOLD))
654
26.8k
    MPN_REDC_1 (rp, tp, mp, n, mip[0]);
655
1.42k
#endif
656
1.42k
  else
657
1.42k
    mpn_redc_n (rp, tp, mp, n, mip);
658
659
  /* Precompute odd powers of b and put them in the temporary area at pp.  */
660
197k
  for (i = (1 << (windowsize - 1)) - 1; i > 0; i--)
661
168k
#if 1
662
168k
    if (n == 1) {
663
13.3k
      umul_ppmm((tp)[1], *(tp), *(this_pp), *(rp));
664
13.3k
      ++this_pp ;
665
13.3k
      MPN_REDC_0 (*this_pp, tp[1], tp[0], *mp, -mip[0]);
666
13.3k
    } else
667
155k
#endif
668
155k
    {
669
155k
      mpn_mul_n (tp, this_pp, rp, n);
670
155k
      this_pp += n;
671
#if WANT_REDC_2
672
      if (BELOW_THRESHOLD (n, REDC_1_TO_REDC_2_THRESHOLD))
673
  MPN_REDC_1 (this_pp, tp, mp, n, mip[0]);
674
      else if (BELOW_THRESHOLD (n, REDC_2_TO_REDC_N_THRESHOLD))
675
  MPN_REDC_2 (this_pp, tp, mp, n, mip);
676
#else
677
155k
      if (BELOW_THRESHOLD (n, REDC_1_TO_REDC_N_THRESHOLD))
678
111k
  MPN_REDC_1 (this_pp, tp, mp, n, mip[0]);
679
44.2k
#endif
680
44.2k
      else
681
44.2k
  mpn_redc_n (this_pp, tp, mp, n, mip);
682
155k
    }
683
684
28.2k
  expbits = getbits (ep, ebi, windowsize);
685
28.2k
  ebi -= windowsize;
686
687
  /* THINK: Should we initialise the case expbits % 4 == 0 with a mul? */
688
28.2k
  count_trailing_zeros (cnt, expbits);
689
28.2k
  ebi += cnt;
690
28.2k
  expbits >>= cnt;
691
692
28.2k
  MPN_COPY (rp, pp + n * (expbits >> 1), n);
693
694
28.2k
#define INNERLOOP             \
695
691k
  while (ebi != 0)             \
696
672k
    {                 \
697
2.22M
      while (getbit (ep, ebi) == 0)         \
698
1.56M
  {               \
699
1.56M
    MPN_SQR (tp, rp, n);           \
700
1.56M
    MPN_REDUCE (rp, tp, mp, n, mip);        \
701
1.56M
    if (--ebi == 0)           \
702
1.56M
      goto done;             \
703
1.56M
  }                \
704
672k
                  \
705
      /* The next bit of the exponent is 1.  Now extract the largest  \
706
   block of bits <= windowsize, and such that the least   \
707
   significant bit is 1.  */          \
708
672k
                  \
709
672k
      expbits = getbits (ep, ebi, windowsize);        \
710
662k
      this_windowsize = MIN (ebi, windowsize);       \
711
662k
                  \
712
662k
      count_trailing_zeros (cnt, expbits);        \
713
662k
      this_windowsize -= cnt;           \
714
662k
      ebi -= this_windowsize;           \
715
662k
      expbits >>= cnt;              \
716
662k
                  \
717
662k
      do                \
718
2.90M
  {               \
719
2.90M
    MPN_SQR (tp, rp, n);           \
720
2.90M
    MPN_REDUCE (rp, tp, mp, n, mip);        \
721
2.90M
  }                \
722
2.90M
      while (--this_windowsize != 0);          \
723
662k
                  \
724
662k
      MPN_MUL_N (tp, rp, pp + n * (expbits >> 1), n);      \
725
662k
      MPN_REDUCE (rp, tp, mp, n, mip);          \
726
662k
    }
727
728
729
28.2k
  if (n == 1)
730
1.49k
    {
731
1.49k
#undef MPN_MUL_N
732
1.49k
#undef MPN_SQR
733
1.49k
#undef MPN_REDUCE
734
55.2k
#define MPN_MUL_N(r,a,b,n)    umul_ppmm((r)[1], *(r), *(a), *(b))
735
331k
#define MPN_SQR(r,a,n)      umul_ppmm((r)[1], *(r), *(a), *(a))
736
387k
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_0(*(rp), (tp)[1], (tp)[0], *(mp), - *(mip))
737
1.49k
      INNERLOOP;
738
405
    }
739
26.8k
  else
740
#if WANT_REDC_2
741
  if (REDC_1_TO_REDC_2_THRESHOLD < MUL_TOOM22_THRESHOLD)
742
    {
743
      if (BELOW_THRESHOLD (n, REDC_1_TO_REDC_2_THRESHOLD))
744
  {
745
    if (REDC_1_TO_REDC_2_THRESHOLD < SQR_BASECASE_THRESHOLD
746
        || BELOW_THRESHOLD (n, SQR_BASECASE_THRESHOLD))
747
      {
748
#undef MPN_MUL_N
749
#undef MPN_SQR
750
#undef MPN_REDUCE
751
#define MPN_MUL_N(r,a,b,n)    mpn_mul_basecase (r,a,n,b,n)
752
#define MPN_SQR(r,a,n)      mpn_mul_basecase (r,a,n,a,n)
753
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_1 (rp, tp, mp, n, mip[0])
754
        INNERLOOP;
755
      }
756
    else
757
      {
758
#undef MPN_MUL_N
759
#undef MPN_SQR
760
#undef MPN_REDUCE
761
#define MPN_MUL_N(r,a,b,n)    mpn_mul_basecase (r,a,n,b,n)
762
#define MPN_SQR(r,a,n)      mpn_sqr_basecase (r,a,n)
763
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_1 (rp, tp, mp, n, mip[0])
764
        INNERLOOP;
765
      }
766
  }
767
      else if (BELOW_THRESHOLD (n, MUL_TOOM22_THRESHOLD))
768
  {
769
    if (MUL_TOOM22_THRESHOLD < SQR_BASECASE_THRESHOLD
770
        || BELOW_THRESHOLD (n, SQR_BASECASE_THRESHOLD))
771
      {
772
#undef MPN_MUL_N
773
#undef MPN_SQR
774
#undef MPN_REDUCE
775
#define MPN_MUL_N(r,a,b,n)    mpn_mul_basecase (r,a,n,b,n)
776
#define MPN_SQR(r,a,n)      mpn_mul_basecase (r,a,n,a,n)
777
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_2 (rp, tp, mp, n, mip)
778
        INNERLOOP;
779
      }
780
    else
781
      {
782
#undef MPN_MUL_N
783
#undef MPN_SQR
784
#undef MPN_REDUCE
785
#define MPN_MUL_N(r,a,b,n)    mpn_mul_basecase (r,a,n,b,n)
786
#define MPN_SQR(r,a,n)      mpn_sqr_basecase (r,a,n)
787
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_2 (rp, tp, mp, n, mip)
788
        INNERLOOP;
789
      }
790
  }
791
      else if (BELOW_THRESHOLD (n, REDC_2_TO_REDC_N_THRESHOLD))
792
  {
793
#undef MPN_MUL_N
794
#undef MPN_SQR
795
#undef MPN_REDUCE
796
#define MPN_MUL_N(r,a,b,n)    mpn_mul_n (r,a,b,n)
797
#define MPN_SQR(r,a,n)      mpn_sqr (r,a,n)
798
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_2 (rp, tp, mp, n, mip)
799
    INNERLOOP;
800
  }
801
      else
802
  {
803
#undef MPN_MUL_N
804
#undef MPN_SQR
805
#undef MPN_REDUCE
806
#define MPN_MUL_N(r,a,b,n)    mpn_mul_n (r,a,b,n)
807
#define MPN_SQR(r,a,n)      mpn_sqr (r,a,n)
808
#define MPN_REDUCE(rp,tp,mp,n,mip)  mpn_redc_n (rp, tp, mp, n, mip)
809
    INNERLOOP;
810
  }
811
    }
812
  else
813
    {
814
      if (BELOW_THRESHOLD (n, MUL_TOOM22_THRESHOLD))
815
  {
816
    if (MUL_TOOM22_THRESHOLD < SQR_BASECASE_THRESHOLD
817
        || BELOW_THRESHOLD (n, SQR_BASECASE_THRESHOLD))
818
      {
819
#undef MPN_MUL_N
820
#undef MPN_SQR
821
#undef MPN_REDUCE
822
#define MPN_MUL_N(r,a,b,n)    mpn_mul_basecase (r,a,n,b,n)
823
#define MPN_SQR(r,a,n)      mpn_mul_basecase (r,a,n,a,n)
824
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_1 (rp, tp, mp, n, mip[0])
825
        INNERLOOP;
826
      }
827
    else
828
      {
829
#undef MPN_MUL_N
830
#undef MPN_SQR
831
#undef MPN_REDUCE
832
#define MPN_MUL_N(r,a,b,n)    mpn_mul_basecase (r,a,n,b,n)
833
#define MPN_SQR(r,a,n)      mpn_sqr_basecase (r,a,n)
834
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_1 (rp, tp, mp, n, mip[0])
835
        INNERLOOP;
836
      }
837
  }
838
      else if (BELOW_THRESHOLD (n, REDC_1_TO_REDC_2_THRESHOLD))
839
  {
840
#undef MPN_MUL_N
841
#undef MPN_SQR
842
#undef MPN_REDUCE
843
#define MPN_MUL_N(r,a,b,n)    mpn_mul_n (r,a,b,n)
844
#define MPN_SQR(r,a,n)      mpn_sqr (r,a,n)
845
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_1 (rp, tp, mp, n, mip[0])
846
    INNERLOOP;
847
  }
848
      else if (BELOW_THRESHOLD (n, REDC_2_TO_REDC_N_THRESHOLD))
849
  {
850
#undef MPN_MUL_N
851
#undef MPN_SQR
852
#undef MPN_REDUCE
853
#define MPN_MUL_N(r,a,b,n)    mpn_mul_n (r,a,b,n)
854
#define MPN_SQR(r,a,n)      mpn_sqr (r,a,n)
855
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_2 (rp, tp, mp, n, mip)
856
    INNERLOOP;
857
  }
858
      else
859
  {
860
#undef MPN_MUL_N
861
#undef MPN_SQR
862
#undef MPN_REDUCE
863
#define MPN_MUL_N(r,a,b,n)    mpn_mul_n (r,a,b,n)
864
#define MPN_SQR(r,a,n)      mpn_sqr (r,a,n)
865
#define MPN_REDUCE(rp,tp,mp,n,mip)  mpn_redc_n (rp, tp, mp, n, mip)
866
    INNERLOOP;
867
  }
868
    }
869
870
#else  /* WANT_REDC_2 */
871
872
26.8k
  if (REDC_1_TO_REDC_N_THRESHOLD < MUL_TOOM22_THRESHOLD)
873
0
    {
874
0
      if (BELOW_THRESHOLD (n, REDC_1_TO_REDC_N_THRESHOLD))
875
0
  {
876
0
    if (REDC_1_TO_REDC_N_THRESHOLD < SQR_BASECASE_THRESHOLD
877
0
        || BELOW_THRESHOLD (n, SQR_BASECASE_THRESHOLD))
878
0
      {
879
0
#undef MPN_MUL_N
880
0
#undef MPN_SQR
881
0
#undef MPN_REDUCE
882
0
#define MPN_MUL_N(r,a,b,n)    mpn_mul_basecase (r,a,n,b,n)
883
0
#define MPN_SQR(r,a,n)      mpn_mul_basecase (r,a,n,a,n)
884
0
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_1 (rp, tp, mp, n, mip[0])
885
0
        INNERLOOP;
886
0
      }
887
0
    else
888
0
      {
889
0
#undef MPN_MUL_N
890
0
#undef MPN_SQR
891
0
#undef MPN_REDUCE
892
0
#define MPN_MUL_N(r,a,b,n)    mpn_mul_basecase (r,a,n,b,n)
893
0
#define MPN_SQR(r,a,n)      mpn_sqr_basecase (r,a,n)
894
0
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_1 (rp, tp, mp, n, mip[0])
895
0
        INNERLOOP;
896
0
      }
897
0
  }
898
0
      else if (BELOW_THRESHOLD (n, MUL_TOOM22_THRESHOLD))
899
0
  {
900
0
    if (MUL_TOOM22_THRESHOLD < SQR_BASECASE_THRESHOLD
901
0
        || BELOW_THRESHOLD (n, SQR_BASECASE_THRESHOLD))
902
0
      {
903
0
#undef MPN_MUL_N
904
0
#undef MPN_SQR
905
0
#undef MPN_REDUCE
906
0
#define MPN_MUL_N(r,a,b,n)    mpn_mul_basecase (r,a,n,b,n)
907
0
#define MPN_SQR(r,a,n)      mpn_mul_basecase (r,a,n,a,n)
908
0
#define MPN_REDUCE(rp,tp,mp,n,mip)  mpn_redc_n (rp, tp, mp, n, mip)
909
0
        INNERLOOP;
910
0
      }
911
0
    else
912
0
      {
913
0
#undef MPN_MUL_N
914
0
#undef MPN_SQR
915
0
#undef MPN_REDUCE
916
0
#define MPN_MUL_N(r,a,b,n)    mpn_mul_basecase (r,a,n,b,n)
917
0
#define MPN_SQR(r,a,n)      mpn_sqr_basecase (r,a,n)
918
0
#define MPN_REDUCE(rp,tp,mp,n,mip)  mpn_redc_n (rp, tp, mp, n, mip)
919
0
        INNERLOOP;
920
0
      }
921
0
  }
922
0
      else
923
0
  {
924
0
#undef MPN_MUL_N
925
0
#undef MPN_SQR
926
0
#undef MPN_REDUCE
927
0
#define MPN_MUL_N(r,a,b,n)    mpn_mul_n (r,a,b,n)
928
0
#define MPN_SQR(r,a,n)      mpn_sqr (r,a,n)
929
0
#define MPN_REDUCE(rp,tp,mp,n,mip)  mpn_redc_n (rp, tp, mp, n, mip)
930
0
    INNERLOOP;
931
0
  }
932
0
    }
933
26.8k
  else
934
26.8k
    {
935
26.8k
      if (BELOW_THRESHOLD (n, MUL_TOOM22_THRESHOLD))
936
8.02k
  {
937
8.02k
    if (MUL_TOOM22_THRESHOLD < SQR_BASECASE_THRESHOLD
938
0
        || BELOW_THRESHOLD (n, SQR_BASECASE_THRESHOLD))
939
0
      {
940
0
#undef MPN_MUL_N
941
0
#undef MPN_SQR
942
0
#undef MPN_REDUCE
943
0
#define MPN_MUL_N(r,a,b,n)    mpn_mul_basecase (r,a,n,b,n)
944
0
#define MPN_SQR(r,a,n)      mpn_mul_basecase (r,a,n,a,n)
945
0
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_1 (rp, tp, mp, n, mip[0])
946
0
        INNERLOOP;
947
0
      }
948
8.02k
    else
949
8.02k
      {
950
8.02k
#undef MPN_MUL_N
951
8.02k
#undef MPN_SQR
952
8.02k
#undef MPN_REDUCE
953
182k
#define MPN_MUL_N(r,a,b,n)    mpn_mul_basecase (r,a,n,b,n)
954
1.04M
#define MPN_SQR(r,a,n)      mpn_sqr_basecase (r,a,n)
955
1.22M
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_1 (rp, tp, mp, n, mip[0])
956
8.02k
        INNERLOOP;
957
1.81k
      }
958
8.02k
  }
959
18.7k
      else if (BELOW_THRESHOLD (n, REDC_1_TO_REDC_N_THRESHOLD))
960
17.3k
  {
961
17.3k
#undef MPN_MUL_N
962
17.3k
#undef MPN_SQR
963
17.3k
#undef MPN_REDUCE
964
239k
#define MPN_MUL_N(r,a,b,n)    mpn_mul_n (r,a,b,n)
965
1.79M
#define MPN_SQR(r,a,n)      mpn_sqr (r,a,n)
966
2.02M
#define MPN_REDUCE(rp,tp,mp,n,mip)  MPN_REDC_1 (rp, tp, mp, n, mip[0])
967
17.3k
    INNERLOOP;
968
16.0k
  }
969
1.42k
      else
970
1.42k
  {
971
1.42k
#undef MPN_MUL_N
972
1.42k
#undef MPN_SQR
973
1.42k
#undef MPN_REDUCE
974
185k
#define MPN_MUL_N(r,a,b,n)    mpn_mul_n (r,a,b,n)
975
1.30M
#define MPN_SQR(r,a,n)      mpn_sqr (r,a,n)
976
1.48M
#define MPN_REDUCE(rp,tp,mp,n,mip)  mpn_redc_n (rp, tp, mp, n, mip)
977
1.42k
    INNERLOOP;
978
550
  }
979
26.8k
    }
980
18.8k
#endif  /* WANT_REDC_2 */
981
982
28.2k
 done:
983
984
28.2k
  MPN_COPY (tp, rp, n);
985
28.2k
  MPN_ZERO (tp + n, n);
986
987
#if WANT_REDC_2
988
  if (BELOW_THRESHOLD (n, REDC_1_TO_REDC_2_THRESHOLD))
989
    MPN_REDC_1 (rp, tp, mp, n, mip[0]);
990
  else if (BELOW_THRESHOLD (n, REDC_2_TO_REDC_N_THRESHOLD))
991
    MPN_REDC_2 (rp, tp, mp, n, mip);
992
#else
993
28.2k
  if (BELOW_THRESHOLD (n, REDC_1_TO_REDC_N_THRESHOLD))
994
26.8k
    MPN_REDC_1 (rp, tp, mp, n, mip[0]);
995
1.42k
#endif
996
1.42k
  else
997
1.42k
    mpn_redc_n (rp, tp, mp, n, mip);
998
999
28.2k
  if (mpn_cmp (rp, mp, n) >= 0)
1000
1
    mpn_sub_n (rp, rp, mp, n);
1001
1002
28.2k
  TMP_FREE;
1003
28.2k
}