Coverage Report

Created: 2026-09-28 06:58

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/gmp/mpn/gcdext_lehmer.c
Line
Count
Source
1
/* mpn_gcdext -- Extended Greatest Common Divisor.
2
3
Copyright 1996, 1998, 2000-2005, 2008, 2009, 2012 Free Software Foundation,
4
Inc.
5
6
This file is part of the GNU MP Library.
7
8
The GNU MP Library is free software; you can redistribute it and/or modify
9
it under the terms of either:
10
11
  * the GNU Lesser General Public License as published by the Free
12
    Software Foundation; either version 3 of the License, or (at your
13
    option) any later version.
14
15
or
16
17
  * the GNU General Public License as published by the Free Software
18
    Foundation; either version 2 of the License, or (at your option) any
19
    later version.
20
21
or both in parallel, as here.
22
23
The GNU MP Library is distributed in the hope that it will be useful, but
24
WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY
25
or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License
26
for more details.
27
28
You should have received copies of the GNU General Public License and the
29
GNU Lesser General Public License along with the GNU MP Library.  If not,
30
see https://www.gnu.org/licenses/.  */
31
32
#include "gmp-impl.h"
33
#include "longlong.h"
34
35
/* Here, d is the index of the cofactor to update. FIXME: Could use qn
36
   = 0 for the common case q = 1. */
37
void
38
mpn_gcdext_hook (void *p, mp_srcptr gp, mp_size_t gn,
39
     mp_srcptr qp, mp_size_t qn, int d)
40
17.0k
{
41
17.0k
  struct gcdext_ctx *ctx = (struct gcdext_ctx *) p;
42
17.0k
  mp_size_t un = ctx->un;
43
44
17.0k
  if (gp)
45
389
    {
46
389
      mp_srcptr up;
47
48
389
      ASSERT (gn > 0);
49
389
      ASSERT (gp[gn-1] > 0);
50
51
389
      MPN_COPY (ctx->gp, gp, gn);
52
389
      ctx->gn = gn;
53
54
389
      if (d < 0)
55
190
  {
56
190
    int c;
57
58
    /* Must return the smallest cofactor, +u1 or -u0 */
59
190
    MPN_CMP (c, ctx->u0, ctx->u1, un);
60
190
    ASSERT (c != 0 || (un == 1 && ctx->u0[0] == 1 && ctx->u1[0] == 1));
61
62
190
    d = c < 0;
63
190
  }
64
65
389
      up = d ? ctx->u0 : ctx->u1;
66
67
389
      MPN_NORMALIZE (up, un);
68
389
      MPN_COPY (ctx->up, up, un);
69
70
389
      *ctx->usize = d ? -un : un;
71
389
    }
72
16.6k
  else
73
16.6k
    {
74
16.6k
      mp_limb_t cy;
75
16.6k
      mp_ptr u0 = ctx->u0;
76
16.6k
      mp_ptr u1 = ctx->u1;
77
78
16.6k
      ASSERT (d >= 0);
79
80
16.6k
      if (d)
81
7.80k
  MP_PTR_SWAP (u0, u1);
82
83
16.6k
      qn -= (qp[qn-1] == 0);
84
85
      /* Update u0 += q  * u1 */
86
16.6k
      if (qn == 1)
87
10.8k
  {
88
10.8k
    mp_limb_t q = qp[0];
89
90
10.8k
    if (q == 1)
91
      /* A common case. */
92
8.43k
      cy = mpn_add_n (u0, u0, u1, un);
93
2.43k
    else
94
2.43k
      cy = mpn_addmul_1 (u0, u1, un, q);
95
10.8k
  }
96
5.80k
      else
97
5.80k
  {
98
5.80k
    mp_size_t u1n;
99
5.80k
    mp_ptr tp;
100
101
5.80k
    u1n = un;
102
5.80k
    MPN_NORMALIZE (u1, u1n);
103
104
5.80k
    if (u1n == 0)
105
0
      return;
106
107
    /* Should always have u1n == un here, and u1 >= u0. The
108
       reason is that we alternate adding u0 to u1 and u1 to u0
109
       (corresponding to subtractions a - b and b - a), and we
110
       can get a large quotient only just after a switch, which
111
       means that we'll add (a multiple of) the larger u to the
112
       smaller. */
113
114
5.80k
    tp = ctx->tp;
115
116
5.80k
    if (qn > u1n)
117
1.58k
      mpn_mul (tp, qp, qn, u1, u1n);
118
4.22k
    else
119
4.22k
      mpn_mul (tp, u1, u1n, qp, qn);
120
121
5.80k
    u1n += qn;
122
5.80k
    u1n -= tp[u1n-1] == 0;
123
124
5.80k
    if (u1n >= un)
125
5.80k
      {
126
5.80k
        cy = mpn_add (u0, tp, u1n, u0, un);
127
5.80k
        un = u1n;
128
5.80k
      }
129
0
    else
130
      /* Note: Unlikely case, maybe never happens? */
131
0
      cy = mpn_add (u0, u0, un, tp, u1n);
132
133
5.80k
  }
134
16.6k
      u0[un] = cy;
135
16.6k
      ctx->un = un + (cy > 0);
136
16.6k
    }
137
17.0k
}
138
139
/* Temporary storage: 3*(n+1) for u. If hgcd2 succeeds, we need n for
140
   the matrix-vector multiplication adjusting a, b. If hgcd fails, we
141
   need at most n for the quotient and n+1 for the u update (reusing
142
   the extra u). In all, 4n + 3. */
143
144
mp_size_t
145
mpn_gcdext_lehmer_n (mp_ptr gp, mp_ptr up, mp_size_t *usize,
146
         mp_ptr ap, mp_ptr bp, mp_size_t n,
147
         mp_ptr tp)
148
23.4k
{
149
23.4k
  mp_size_t ualloc = n + 1;
150
151
  /* Keeps track of the second row of the reduction matrix
152
   *
153
   *   M = (v0, v1 ; u0, u1)
154
   *
155
   * which correspond to the first column of the inverse
156
   *
157
   *   M^{-1} = (u1, -v1; -u0, v0)
158
   *
159
   * This implies that
160
   *
161
   *   a =  u1 A (mod B)
162
   *   b = -u0 A (mod B)
163
   *
164
   * where A, B denotes the input values.
165
   */
166
167
23.4k
  struct gcdext_ctx ctx;
168
23.4k
  mp_size_t un;
169
23.4k
  mp_ptr u0;
170
23.4k
  mp_ptr u1;
171
23.4k
  mp_ptr u2;
172
173
23.4k
  MPN_ZERO (tp, 3*ualloc);
174
23.4k
  u0 = tp; tp += ualloc;
175
23.4k
  u1 = tp; tp += ualloc;
176
23.4k
  u2 = tp; tp += ualloc;
177
178
23.4k
  u1[0] = 1; un = 1;
179
180
23.4k
  ctx.gp = gp;
181
23.4k
  ctx.up = up;
182
23.4k
  ctx.usize = usize;
183
184
  /* FIXME: Handle n == 2 differently, after the loop? */
185
398k
  while (n >= 2)
186
375k
    {
187
375k
      struct hgcd_matrix1 M;
188
375k
      mp_limb_t ah, al, bh, bl;
189
375k
      mp_limb_t mask;
190
191
375k
      mask = ap[n-1] | bp[n-1];
192
375k
      ASSERT (mask > 0);
193
194
375k
      if (mask & GMP_NUMB_HIGHBIT)
195
14.6k
  {
196
14.6k
    ah = ap[n-1]; al = ap[n-2];
197
14.6k
    bh = bp[n-1]; bl = bp[n-2];
198
14.6k
  }
199
360k
      else if (n == 2)
200
20.3k
  {
201
    /* We use the full inputs without truncation, so we can
202
       safely shift left. */
203
20.3k
    int shift;
204
205
20.3k
    count_leading_zeros (shift, mask);
206
20.3k
    ah = MPN_EXTRACT_NUMB (shift, ap[1], ap[0]);
207
20.3k
    al = ap[0] << shift;
208
20.3k
    bh = MPN_EXTRACT_NUMB (shift, bp[1], bp[0]);
209
20.3k
    bl = bp[0] << shift;
210
20.3k
  }
211
340k
      else
212
340k
  {
213
340k
    int shift;
214
215
340k
    count_leading_zeros (shift, mask);
216
340k
    ah = MPN_EXTRACT_NUMB (shift, ap[n-1], ap[n-2]);
217
340k
    al = MPN_EXTRACT_NUMB (shift, ap[n-2], ap[n-3]);
218
340k
    bh = MPN_EXTRACT_NUMB (shift, bp[n-1], bp[n-2]);
219
340k
    bl = MPN_EXTRACT_NUMB (shift, bp[n-2], bp[n-3]);
220
340k
  }
221
222
      /* Try an mpn_nhgcd2 step */
223
375k
      if (mpn_hgcd2 (ah, al, bh, bl, &M))
224
366k
  {
225
366k
    n = mpn_matrix22_mul1_inverse_vector (&M, tp, ap, bp, n);
226
366k
    MP_PTR_SWAP (ap, tp);
227
366k
    un = mpn_hgcd_mul_matrix1_vector(&M, u2, u0, u1, un);
228
366k
    MP_PTR_SWAP (u0, u2);
229
366k
  }
230
8.62k
      else
231
8.62k
  {
232
    /* mpn_hgcd2 has failed. Then either one of a or b is very
233
       small, or the difference is very small. Perform one
234
       subtraction followed by one division. */
235
8.62k
    ctx.u0 = u0;
236
8.62k
    ctx.u1 = u1;
237
8.62k
    ctx.tp = u2;
238
8.62k
    ctx.un = un;
239
240
    /* Temporary storage n for the quotient and ualloc for the
241
       new cofactor. */
242
8.62k
    n = mpn_gcd_subdiv_step (ap, bp, n, 0, mpn_gcdext_hook, &ctx, tp);
243
8.62k
    if (n == 0)
244
389
      return ctx.gn;
245
246
8.23k
    un = ctx.un;
247
8.23k
  }
248
375k
    }
249
23.0k
  ASSERT_ALWAYS (ap[0] > 0);
250
23.0k
  ASSERT_ALWAYS (bp[0] > 0);
251
252
23.0k
  if (ap[0] == bp[0])
253
1.04k
    {
254
1.04k
      int c;
255
256
      /* Which cofactor to return now? Candidates are +u1 and -u0,
257
   depending on which of a and b was most recently reduced,
258
   which we don't keep track of. So compare and get the smallest
259
   one. */
260
261
1.04k
      gp[0] = ap[0];
262
263
1.04k
      MPN_CMP (c, u0, u1, un);
264
1.04k
      ASSERT (c != 0 || (un == 1 && u0[0] == 1 && u1[0] == 1));
265
1.04k
      if (c < 0)
266
554
  {
267
554
    MPN_NORMALIZE (u0, un);
268
554
    MPN_COPY (up, u0, un);
269
554
    *usize = -un;
270
554
  }
271
495
      else
272
495
  {
273
495
    MPN_NORMALIZE_NOT_ZERO (u1, un);
274
495
    MPN_COPY (up, u1, un);
275
495
    *usize = un;
276
495
  }
277
1.04k
      return 1;
278
1.04k
    }
279
22.0k
  else
280
22.0k
    {
281
22.0k
      mp_limb_t uh, vh;
282
22.0k
      mp_limb_signed_t u;
283
22.0k
      mp_limb_signed_t v;
284
22.0k
      int negate;
285
286
22.0k
      gp[0] = mpn_gcdext_1 (&u, &v, ap[0], bp[0]);
287
288
      /* Set up = u u1 - v u0. Keep track of size, un grows by one or
289
   two limbs. */
290
291
22.0k
      if (u == 0)
292
79
  {
293
79
    ASSERT (v == 1);
294
79
    MPN_NORMALIZE (u0, un);
295
79
    MPN_COPY (up, u0, un);
296
79
    *usize = -un;
297
79
    return 1;
298
79
  }
299
21.9k
      else if (v == 0)
300
353
  {
301
353
    ASSERT (u == 1);
302
353
    MPN_NORMALIZE (u1, un);
303
353
    MPN_COPY (up, u1, un);
304
353
    *usize = un;
305
353
    return 1;
306
353
  }
307
21.5k
      else if (u > 0)
308
15.0k
  {
309
15.0k
    negate = 0;
310
15.0k
    ASSERT (v < 0);
311
15.0k
    v = -v;
312
15.0k
  }
313
6.56k
      else
314
6.56k
  {
315
6.56k
    negate = 1;
316
6.56k
    ASSERT (v > 0);
317
6.56k
    u = -u;
318
6.56k
  }
319
320
21.5k
      uh = mpn_mul_1 (up, u1, un, u);
321
21.5k
      vh = mpn_addmul_1 (up, u0, un, v);
322
323
21.5k
      if ( (uh | vh) > 0)
324
3.86k
  {
325
3.86k
    uh += vh;
326
3.86k
    up[un++] = uh;
327
3.86k
    if (uh < vh)
328
0
      up[un++] = 1;
329
3.86k
  }
330
331
21.5k
      MPN_NORMALIZE_NOT_ZERO (up, un);
332
333
21.5k
      *usize = negate ? -un : un;
334
21.5k
      return 1;
335
22.0k
    }
336
23.0k
}