Coverage Report

Created: 2025-12-14 07:06

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/cpython/Objects/longobject.c
Line
Count
Source
1
/* Long (arbitrary precision) integer object implementation */
2
3
/* XXX The functional organization of this file is terrible */
4
5
#include "Python.h"
6
#include "pycore_bitutils.h"      // _Py_popcount32()
7
#include "pycore_initconfig.h"    // _PyStatus_OK()
8
#include "pycore_call.h"          // _PyObject_MakeTpCall
9
#include "pycore_freelist.h"      // _Py_FREELIST_FREE, _Py_FREELIST_POP
10
#include "pycore_long.h"          // _Py_SmallInts
11
#include "pycore_object.h"        // _PyObject_Init()
12
#include "pycore_runtime.h"       // _PY_NSMALLPOSINTS
13
#include "pycore_stackref.h"
14
#include "pycore_structseq.h"     // _PyStructSequence_FiniBuiltin()
15
#include "pycore_unicodeobject.h" // _PyUnicode_Equal()
16
17
#include <float.h>                // DBL_MANT_DIG
18
#include <stddef.h>               // offsetof
19
20
#include "clinic/longobject.c.h"
21
/*[clinic input]
22
class int "PyObject *" "&PyLong_Type"
23
[clinic start generated code]*/
24
/*[clinic end generated code: output=da39a3ee5e6b4b0d input=ec0275e3422a36e3]*/
25
26
3.10G
#define medium_value(x) ((stwodigits)_PyLong_CompactValue(x))
27
28
3.80G
#define IS_SMALL_INT(ival) (-_PY_NSMALLNEGINTS <= (ival) && (ival) < _PY_NSMALLPOSINTS)
29
8.46M
#define IS_SMALL_UINT(ival) ((ival) < _PY_NSMALLPOSINTS)
30
31
42
#define _MAX_STR_DIGITS_ERROR_FMT_TO_INT "Exceeds the limit (%d digits) for integer string conversion: value has %zd digits; use sys.set_int_max_str_digits() to increase the limit"
32
2
#define _MAX_STR_DIGITS_ERROR_FMT_TO_STR "Exceeds the limit (%d digits) for integer string conversion; use sys.set_int_max_str_digits() to increase the limit"
33
34
/* If defined, use algorithms from the _pylong.py module */
35
#define WITH_PYLONG_MODULE 1
36
37
// Forward declarations
38
static PyLongObject* long_neg(PyLongObject *v);
39
static PyLongObject *x_divrem(PyLongObject *, PyLongObject *, PyLongObject **);
40
static PyObject* long_long(PyObject *v);
41
static PyObject* long_lshift_int64(PyLongObject *a, int64_t shiftby);
42
43
44
static inline void
45
_Py_DECREF_INT(PyLongObject *op)
46
22.4M
{
47
22.4M
    assert(PyLong_CheckExact(op));
48
22.4M
    _Py_DECREF_SPECIALIZED((PyObject *)op, _PyLong_ExactDealloc);
49
22.4M
}
50
51
static inline int
52
is_medium_int(stwodigits x)
53
859M
{
54
    /* Take care that we are comparing unsigned values. */
55
859M
    twodigits x_plus_mask = ((twodigits)x) + PyLong_MASK;
56
859M
    return x_plus_mask < ((twodigits)PyLong_MASK) + PyLong_BASE;
57
859M
}
58
59
static PyObject *
60
get_small_int(sdigit ival)
61
2.27G
{
62
2.27G
    assert(IS_SMALL_INT(ival));
63
2.27G
    return (PyObject *)&_PyLong_SMALL_INTS[_PY_NSMALLNEGINTS + ival];
64
2.27G
}
65
66
static PyLongObject *
67
maybe_small_long(PyLongObject *v)
68
13.4M
{
69
13.4M
    if (v && _PyLong_IsCompact(v)) {
70
9.48M
        stwodigits ival = medium_value(v);
71
9.48M
        if (IS_SMALL_INT(ival)) {
72
9.05M
            _Py_DECREF_INT(v);
73
9.05M
            return (PyLongObject *)get_small_int((sdigit)ival);
74
9.05M
        }
75
9.48M
    }
76
4.44M
    return v;
77
13.4M
}
78
79
/* For int multiplication, use the O(N**2) school algorithm unless
80
 * both operands contain more than KARATSUBA_CUTOFF digits (this
81
 * being an internal Python int digit, in base BASE).
82
 */
83
2.48M
#define KARATSUBA_CUTOFF 70
84
38.7k
#define KARATSUBA_SQUARE_CUTOFF (2 * KARATSUBA_CUTOFF)
85
86
/* For exponentiation, use the binary left-to-right algorithm unless the
87
 ^ exponent contains more than HUGE_EXP_CUTOFF bits.  In that case, do
88
 * (no more than) EXP_WINDOW_SIZE bits at a time.  The potential drawback is
89
 * that a table of 2**(EXP_WINDOW_SIZE - 1) intermediate results is
90
 * precomputed.
91
 */
92
0
#define EXP_WINDOW_SIZE 5
93
0
#define EXP_TABLE_LEN (1 << (EXP_WINDOW_SIZE - 1))
94
/* Suppose the exponent has bit length e. All ways of doing this
95
 * need e squarings. The binary method also needs a multiply for
96
 * each bit set. In a k-ary method with window width w, a multiply
97
 * for each non-zero window, so at worst (and likely!)
98
 * ceiling(e/w). The k-ary sliding window method has the same
99
 * worst case, but the window slides so it can sometimes skip
100
 * over an all-zero window that the fixed-window method can't
101
 * exploit. In addition, the windowing methods need multiplies
102
 * to precompute a table of small powers.
103
 *
104
 * For the sliding window method with width 5, 16 precomputation
105
 * multiplies are needed. Assuming about half the exponent bits
106
 * are set, then, the binary method needs about e/2 extra mults
107
 * and the window method about 16 + e/5.
108
 *
109
 * The latter is smaller for e > 53 1/3. We don't have direct
110
 * access to the bit length, though, so call it 60, which is a
111
 * multiple of a long digit's max bit length (15 or 30 so far).
112
 */
113
1.06M
#define HUGE_EXP_CUTOFF 60
114
115
#define SIGCHECK(PyTryBlock)                    \
116
14.6M
    do {                                        \
117
14.6M
        if (PyErr_CheckSignals()) PyTryBlock    \
118
14.6M
    } while(0)
119
120
/* Normalize (remove leading zeros from) an int object.
121
   Doesn't attempt to free the storage--in most cases, due to the nature
122
   of the algorithms used, this could save at most be one word anyway. */
123
124
static PyLongObject *
125
long_normalize(PyLongObject *v)
126
25.8M
{
127
25.8M
    Py_ssize_t j = _PyLong_DigitCount(v);
128
25.8M
    Py_ssize_t i = j;
129
130
45.4M
    while (i > 0 && v->long_value.ob_digit[i-1] == 0)
131
19.5M
        --i;
132
25.8M
    if (i != j) {
133
18.3M
        if (i == 0) {
134
1.53M
            _PyLong_SetSignAndDigitCount(v, 0, 0);
135
1.53M
        }
136
16.8M
        else {
137
16.8M
            _PyLong_SetDigitCount(v, i);
138
16.8M
        }
139
18.3M
    }
140
25.8M
    return v;
141
25.8M
}
142
143
/* Allocate a new int object with size digits.
144
   Return NULL and set exception if we run out of memory. */
145
146
#if SIZEOF_SIZE_T < 8
147
# define MAX_LONG_DIGITS \
148
    ((PY_SSIZE_T_MAX - offsetof(PyLongObject, long_value.ob_digit))/sizeof(digit))
149
#else
150
/* Guarantee that the number of bits fits in int64_t.
151
   This is more than an exbibyte, that is more than many of modern
152
   architectures support in principle.
153
   -1 is added to avoid overflow in _PyLong_Frexp(). */
154
53.2M
# define MAX_LONG_DIGITS ((INT64_MAX-1) / PyLong_SHIFT)
155
#endif
156
157
static PyLongObject *
158
long_alloc(Py_ssize_t size)
159
46.7M
{
160
46.7M
    assert(size >= 0);
161
46.7M
    PyLongObject *result = NULL;
162
46.7M
    if (size > (Py_ssize_t)MAX_LONG_DIGITS) {
163
0
        PyErr_SetString(PyExc_OverflowError,
164
0
                        "too many digits in integer");
165
0
        return NULL;
166
0
    }
167
    /* Fast operations for single digit integers (including zero)
168
     * assume that there is always at least one digit present. */
169
46.7M
    Py_ssize_t ndigits = size ? size : 1;
170
171
46.7M
    if (ndigits == 1) {
172
7.24M
        result = (PyLongObject *)_Py_FREELIST_POP(PyLongObject, ints);
173
7.24M
    }
174
46.7M
    if (result == NULL) {
175
        /* Number of bytes needed is: offsetof(PyLongObject, ob_digit) +
176
        sizeof(digit)*size.  Previous incarnations of this code used
177
        sizeof() instead of the offsetof, but this risks being
178
        incorrect in the presence of padding between the header
179
        and the digits. */
180
39.5M
        result = PyObject_Malloc(offsetof(PyLongObject, long_value.ob_digit) +
181
39.5M
                                ndigits*sizeof(digit));
182
39.5M
        if (!result) {
183
0
            PyErr_NoMemory();
184
0
            return NULL;
185
0
        }
186
39.5M
        _PyObject_Init((PyObject*)result, &PyLong_Type);
187
39.5M
    }
188
46.7M
    _PyLong_SetSignAndDigitCount(result, size != 0, size);
189
    /* The digit has to be initialized explicitly to avoid
190
     * use-of-uninitialized-value. */
191
46.7M
    result->long_value.ob_digit[0] = 0;
192
46.7M
    return result;
193
46.7M
}
194
195
PyLongObject *
196
_PyLong_New(Py_ssize_t size)
197
0
{
198
0
    return long_alloc(size);
199
0
}
200
201
PyLongObject *
202
_PyLong_FromDigits(int negative, Py_ssize_t digit_count, digit *digits)
203
0
{
204
0
    assert(digit_count >= 0);
205
0
    if (digit_count == 0) {
206
0
        return (PyLongObject *)_PyLong_GetZero();
207
0
    }
208
0
    PyLongObject *result = long_alloc(digit_count);
209
0
    if (result == NULL) {
210
0
        return NULL;
211
0
    }
212
0
    _PyLong_SetSignAndDigitCount(result, negative?-1:1, digit_count);
213
0
    memcpy(result->long_value.ob_digit, digits, digit_count * sizeof(digit));
214
0
    return result;
215
0
}
216
217
PyObject *
218
_PyLong_Copy(PyLongObject *src)
219
128k
{
220
128k
    assert(src != NULL);
221
128k
    int sign;
222
223
128k
    if (_PyLong_IsCompact(src)) {
224
0
        stwodigits ival = medium_value(src);
225
0
        if (IS_SMALL_INT(ival)) {
226
0
            return get_small_int((sdigit)ival);
227
0
        }
228
0
        sign = _PyLong_CompactSign(src);
229
0
    }
230
128k
    else {
231
128k
        sign = _PyLong_NonCompactSign(src);
232
128k
    }
233
234
128k
    Py_ssize_t size = _PyLong_DigitCount(src);
235
128k
    PyLongObject *result = long_alloc(size);
236
237
128k
    if (result == NULL) {
238
0
        return NULL;
239
0
    }
240
128k
    _PyLong_SetSignAndDigitCount(result, sign, size);
241
128k
    memcpy(result->long_value.ob_digit, src->long_value.ob_digit,
242
128k
           size * sizeof(digit));
243
128k
    return (PyObject *)result;
244
128k
}
245
246
static PyObject *
247
_PyLong_FromMedium(sdigit x)
248
676M
{
249
676M
    assert(!IS_SMALL_INT(x));
250
676M
    assert(is_medium_int(x));
251
252
676M
    PyLongObject *v = (PyLongObject *)_Py_FREELIST_POP(PyLongObject, ints);
253
676M
    if (v == NULL) {
254
94.8M
        v = PyObject_Malloc(sizeof(PyLongObject));
255
94.8M
        if (v == NULL) {
256
0
            PyErr_NoMemory();
257
0
            return NULL;
258
0
        }
259
94.8M
        _PyObject_Init((PyObject*)v, &PyLong_Type);
260
94.8M
    }
261
676M
    digit abs_x = x < 0 ? -x : x;
262
676M
    _PyLong_SetSignAndDigitCount(v, x<0?-1:1, 1);
263
676M
    v->long_value.ob_digit[0] = abs_x;
264
676M
    return (PyObject*)v;
265
676M
}
266
267
static PyObject *
268
_PyLong_FromLarge(stwodigits ival)
269
2.14M
{
270
2.14M
    twodigits abs_ival;
271
2.14M
    int sign;
272
2.14M
    assert(!is_medium_int(ival));
273
274
2.14M
    if (ival < 0) {
275
        /* negate: can't write this as abs_ival = -ival since that
276
           invokes undefined behaviour when ival is LONG_MIN */
277
59
        abs_ival = 0U-(twodigits)ival;
278
59
        sign = -1;
279
59
    }
280
2.14M
    else {
281
2.14M
        abs_ival = (twodigits)ival;
282
2.14M
        sign = 1;
283
2.14M
    }
284
    /* Must be at least two digits */
285
2.14M
    assert(abs_ival >> PyLong_SHIFT != 0);
286
2.14M
    twodigits t = abs_ival >> (PyLong_SHIFT * 2);
287
2.14M
    Py_ssize_t ndigits = 2;
288
2.14M
    while (t) {
289
0
        ++ndigits;
290
0
        t >>= PyLong_SHIFT;
291
0
    }
292
2.14M
    PyLongObject *v = long_alloc(ndigits);
293
2.14M
    if (v != NULL) {
294
2.14M
        digit *p = v->long_value.ob_digit;
295
2.14M
        _PyLong_SetSignAndDigitCount(v, sign, ndigits);
296
2.14M
        t = abs_ival;
297
6.42M
        while (t) {
298
4.28M
            *p++ = Py_SAFE_DOWNCAST(
299
4.28M
                t & PyLong_MASK, twodigits, digit);
300
4.28M
            t >>= PyLong_SHIFT;
301
4.28M
        }
302
2.14M
    }
303
2.14M
    return (PyObject *)v;
304
2.14M
}
305
306
/* Create a new int object from a C word-sized int */
307
static inline PyLongObject *
308
_PyLong_FromSTwoDigits(stwodigits x)
309
18.0M
{
310
18.0M
    if (IS_SMALL_INT(x)) {
311
9.09M
        return (PyLongObject*)get_small_int((sdigit)x);
312
9.09M
    }
313
18.0M
    assert(x != 0);
314
8.94M
    if (is_medium_int(x)) {
315
6.80M
        return (PyLongObject*)_PyLong_FromMedium((sdigit)x);
316
6.80M
    }
317
2.14M
    return (PyLongObject*)_PyLong_FromLarge(x);
318
8.94M
}
319
320
/* Create a new medium int object from a medium int.
321
 * Do not raise. Return NULL if not medium or can't allocate. */
322
static inline _PyStackRef
323
medium_from_stwodigits(stwodigits x)
324
1.53G
{
325
1.53G
    if (IS_SMALL_INT(x)) {
326
680M
        return PyStackRef_FromPyObjectBorrow(get_small_int((sdigit)x));
327
680M
    }
328
1.53G
    assert(x != 0);
329
850M
    if(!is_medium_int(x)) {
330
552
        return PyStackRef_NULL;
331
552
    }
332
850M
    PyLongObject *v = (PyLongObject *)_Py_FREELIST_POP(PyLongObject, ints);
333
850M
    if (v == NULL) {
334
11.8M
        v = PyObject_Malloc(sizeof(PyLongObject));
335
11.8M
        if (v == NULL) {
336
0
            return PyStackRef_NULL;
337
0
        }
338
11.8M
        _PyObject_Init((PyObject*)v, &PyLong_Type);
339
11.8M
    }
340
850M
    digit abs_x = x < 0 ? (digit)(-x) : (digit)x;
341
850M
    _PyLong_SetSignAndDigitCount(v, x<0?-1:1, 1);
342
850M
    v->long_value.ob_digit[0] = abs_x;
343
850M
    return PyStackRef_FromPyObjectStealMortal((PyObject *)v);
344
850M
}
345
346
347
/* If a freshly-allocated int is already shared, it must
348
   be a small integer, so negating it must go to PyLong_FromLong */
349
Py_LOCAL_INLINE(void)
350
_PyLong_Negate(PyLongObject **x_p)
351
152
{
352
152
    PyLongObject *x;
353
354
152
    x = (PyLongObject *)*x_p;
355
152
    if (_PyObject_IsUniquelyReferenced((PyObject *)x)) {
356
0
         _PyLong_FlipSign(x);
357
0
        return;
358
0
    }
359
360
152
    *x_p = _PyLong_FromSTwoDigits(-medium_value(x));
361
152
    Py_DECREF(x);
362
152
}
363
364
#define PYLONG_FROM_INT(UINT_TYPE, INT_TYPE, ival)                                  \
365
2.24G
    do {                                                                            \
366
2.24G
        /* Handle small and medium cases. */                                        \
367
2.24G
        if (IS_SMALL_INT(ival)) {                                                   \
368
1.57G
            return get_small_int((sdigit)(ival));                                   \
369
1.57G
        }                                                                           \
370
2.24G
        if (-(INT_TYPE)PyLong_MASK <= (ival) && (ival) <= (INT_TYPE)PyLong_MASK) {  \
371
665M
            return _PyLong_FromMedium((sdigit)(ival));                              \
372
665M
        }                                                                           \
373
668M
        UINT_TYPE abs_ival = (ival) < 0 ? 0U-(UINT_TYPE)(ival) : (UINT_TYPE)(ival); \
374
2.66M
        /* Do shift in two steps to avoid possible undefined behavior. */           \
375
2.66M
        UINT_TYPE t = abs_ival >> PyLong_SHIFT >> PyLong_SHIFT;                     \
376
2.66M
        /* Count digits (at least two - smaller cases were handled above). */       \
377
2.66M
        Py_ssize_t ndigits = 2;                                                     \
378
4.05M
        while (t) {                                                                 \
379
1.38M
            ++ndigits;                                                              \
380
1.38M
            t >>= PyLong_SHIFT;                                                     \
381
1.38M
        }                                                                           \
382
2.66M
        /* Construct output value. */                                               \
383
2.66M
        PyLongObject *v = long_alloc(ndigits);                                      \
384
2.66M
        if (v == NULL) {                                                            \
385
0
            return NULL;                                                            \
386
0
        }                                                                           \
387
2.66M
        digit *p = v->long_value.ob_digit;                                          \
388
2.66M
        _PyLong_SetSignAndDigitCount(v, (ival) < 0 ? -1 : 1, ndigits);              \
389
2.66M
        t = abs_ival;                                                               \
390
9.37M
        while (t) {                                                                 \
391
6.71M
            *p++ = (digit)(t & PyLong_MASK);                                        \
392
6.71M
            t >>= PyLong_SHIFT;                                                     \
393
6.71M
        }                                                                           \
394
2.66M
        return (PyObject *)v;                                                       \
395
2.66M
    } while(0)
396
397
398
/* Create a new int object from a C long int */
399
400
PyObject *
401
PyLong_FromLong(long ival)
402
1.86G
{
403
1.86G
    PYLONG_FROM_INT(unsigned long, long, ival);
404
1.86G
}
405
406
#define PYLONG_FROM_UINT(INT_TYPE, ival) \
407
8.46M
    do { \
408
8.46M
        /* Handle small and medium cases. */ \
409
8.46M
        if (IS_SMALL_UINT(ival)) { \
410
1.81M
            return get_small_int((sdigit)(ival)); \
411
1.81M
        } \
412
8.46M
        if ((ival) <= PyLong_MASK) { \
413
4.08M
            return _PyLong_FromMedium((sdigit)(ival)); \
414
4.08M
        } \
415
6.65M
        /* Do shift in two steps to avoid possible undefined behavior. */ \
416
6.65M
        INT_TYPE t = (ival) >> PyLong_SHIFT >> PyLong_SHIFT; \
417
2.56M
        /* Count digits (at least two - smaller cases were handled above). */ \
418
2.56M
        Py_ssize_t ndigits = 2; \
419
2.57M
        while (t) { \
420
5.20k
            ++ndigits; \
421
5.20k
            t >>= PyLong_SHIFT; \
422
5.20k
        } \
423
2.56M
        /* Construct output value. */ \
424
2.56M
        PyLongObject *v = long_alloc(ndigits); \
425
2.56M
        if (v == NULL) { \
426
0
            return NULL; \
427
0
        } \
428
2.56M
        digit *p = v->long_value.ob_digit; \
429
7.71M
        while ((ival)) { \
430
5.14M
            *p++ = (digit)((ival) & PyLong_MASK); \
431
5.14M
            (ival) >>= PyLong_SHIFT; \
432
5.14M
        } \
433
2.56M
        return (PyObject *)v; \
434
2.56M
    } while(0)
435
436
/* Create a new int object from a C unsigned long int */
437
438
PyObject *
439
PyLong_FromUnsignedLong(unsigned long ival)
440
7.13M
{
441
7.13M
    PYLONG_FROM_UINT(unsigned long, ival);
442
7.13M
}
443
444
/* Create a new int object from a C unsigned long long int. */
445
446
PyObject *
447
PyLong_FromUnsignedLongLong(unsigned long long ival)
448
1.26M
{
449
1.26M
    PYLONG_FROM_UINT(unsigned long long, ival);
450
1.26M
}
451
452
/* Create a new int object from a C size_t. */
453
454
PyObject *
455
PyLong_FromSize_t(size_t ival)
456
69.3k
{
457
69.3k
    PYLONG_FROM_UINT(size_t, ival);
458
69.3k
}
459
460
/* Create a new int object from a C double */
461
462
PyObject *
463
PyLong_FromDouble(double dval)
464
50.5k
{
465
    /* Try to get out cheap if this fits in a long. When a finite value of real
466
     * floating type is converted to an integer type, the value is truncated
467
     * toward zero. If the value of the integral part cannot be represented by
468
     * the integer type, the behavior is undefined. Thus, we must check that
469
     * value is in range (LONG_MIN - 1, LONG_MAX + 1). If a long has more bits
470
     * of precision than a double, casting LONG_MIN - 1 to double may yield an
471
     * approximation, but LONG_MAX + 1 is a power of two and can be represented
472
     * as double exactly (assuming FLT_RADIX is 2 or 16), so for simplicity
473
     * check against [-(LONG_MAX + 1), LONG_MAX + 1).
474
     */
475
50.5k
    const double int_max = (unsigned long)LONG_MAX + 1;
476
50.5k
    if (-int_max < dval && dval < int_max) {
477
50.5k
        return PyLong_FromLong((long)dval);
478
50.5k
    }
479
480
0
    PyLongObject *v;
481
0
    double frac;
482
0
    int i, ndig, expo, neg;
483
0
    neg = 0;
484
0
    if (isinf(dval)) {
485
0
        PyErr_SetString(PyExc_OverflowError,
486
0
                        "cannot convert float infinity to integer");
487
0
        return NULL;
488
0
    }
489
0
    if (isnan(dval)) {
490
0
        PyErr_SetString(PyExc_ValueError,
491
0
                        "cannot convert float NaN to integer");
492
0
        return NULL;
493
0
    }
494
0
    if (dval < 0.0) {
495
0
        neg = 1;
496
0
        dval = -dval;
497
0
    }
498
0
    frac = frexp(dval, &expo); /* dval = frac*2**expo; 0.0 <= frac < 1.0 */
499
0
    assert(expo > 0);
500
0
    ndig = (expo-1) / PyLong_SHIFT + 1; /* Number of 'digits' in result */
501
0
    v = long_alloc(ndig);
502
0
    if (v == NULL)
503
0
        return NULL;
504
0
    frac = ldexp(frac, (expo-1) % PyLong_SHIFT + 1);
505
0
    for (i = ndig; --i >= 0; ) {
506
0
        digit bits = (digit)frac;
507
0
        v->long_value.ob_digit[i] = bits;
508
0
        frac = frac - (double)bits;
509
0
        frac = ldexp(frac, PyLong_SHIFT);
510
0
    }
511
0
    if (neg) {
512
0
        _PyLong_FlipSign(v);
513
0
    }
514
0
    return (PyObject *)v;
515
0
}
516
517
/* Checking for overflow in PyLong_AsLong is a PITA since C doesn't define
518
 * anything about what happens when a signed integer operation overflows,
519
 * and some compilers think they're doing you a favor by being "clever"
520
 * then.  The bit pattern for the largest positive signed long is
521
 * (unsigned long)LONG_MAX, and for the smallest negative signed long
522
 * it is abs(LONG_MIN), which we could write -(unsigned long)LONG_MIN.
523
 * However, some other compilers warn about applying unary minus to an
524
 * unsigned operand.  Hence the weird "0-".
525
 */
526
3
#define PY_ABS_LONG_MIN         (0-(unsigned long)LONG_MIN)
527
0
#define PY_ABS_SSIZE_T_MIN      (0-(size_t)PY_SSIZE_T_MIN)
528
529
static inline unsigned long
530
unroll_digits_ulong(PyLongObject *v, Py_ssize_t *iptr)
531
663k
{
532
663k
    assert(ULONG_MAX >= ((1UL << PyLong_SHIFT) - 1));
533
534
663k
    Py_ssize_t i = *iptr;
535
663k
    assert(i >= 2);
536
537
    /* unroll 1 digit */
538
663k
    --i;
539
663k
    digit *digits = v->long_value.ob_digit;
540
663k
    unsigned long x = digits[i];
541
542
663k
#if (ULONG_MAX >> PyLong_SHIFT) >= ((1UL << PyLong_SHIFT) - 1)
543
    /* unroll another digit */
544
663k
    x <<= PyLong_SHIFT;
545
663k
    --i;
546
663k
    x |= digits[i];
547
663k
#endif
548
549
663k
    *iptr = i;
550
663k
    return x;
551
663k
}
552
553
static inline size_t
554
unroll_digits_size_t(PyLongObject *v, Py_ssize_t *iptr)
555
194k
{
556
194k
    assert(SIZE_MAX >= ((1UL << PyLong_SHIFT) - 1));
557
558
194k
    Py_ssize_t i = *iptr;
559
194k
    assert(i >= 2);
560
561
    /* unroll 1 digit */
562
194k
    --i;
563
194k
    digit *digits = v->long_value.ob_digit;
564
194k
    size_t x = digits[i];
565
566
194k
#if (SIZE_MAX >> PyLong_SHIFT) >= ((1 << PyLong_SHIFT) - 1)
567
    /* unroll another digit */
568
194k
    x <<= PyLong_SHIFT;
569
194k
    --i;
570
194k
    x |= digits[i];
571
194k
#endif
572
573
194k
    *iptr = i;
574
194k
    return x;
575
194k
}
576
577
/* Get a C long int from an int object or any object that has an __index__
578
   method.
579
580
   On overflow, return -1 and set *overflow to 1 or -1 depending on the sign of
581
   the result.  Otherwise *overflow is 0.
582
583
   For other errors (e.g., TypeError), return -1 and set an error condition.
584
   In this case *overflow will be 0.
585
*/
586
long
587
PyLong_AsLongAndOverflow(PyObject *vv, int *overflow)
588
310M
{
589
    /* This version originally by Tim Peters */
590
310M
    PyLongObject *v;
591
310M
    long res;
592
310M
    Py_ssize_t i;
593
310M
    int sign;
594
310M
    int do_decref = 0; /* if PyNumber_Index was called */
595
596
310M
    *overflow = 0;
597
310M
    if (vv == NULL) {
598
0
        PyErr_BadInternalCall();
599
0
        return -1;
600
0
    }
601
602
310M
    if (PyLong_Check(vv)) {
603
310M
        v = (PyLongObject *)vv;
604
310M
    }
605
13.1k
    else {
606
13.1k
        v = (PyLongObject *)_PyNumber_Index(vv);
607
13.1k
        if (v == NULL)
608
13.1k
            return -1;
609
0
        do_decref = 1;
610
0
    }
611
310M
    if (_PyLong_IsCompact(v)) {
612
#if SIZEOF_LONG < SIZEOF_SIZE_T
613
        Py_ssize_t tmp = _PyLong_CompactValue(v);
614
        if (tmp < LONG_MIN) {
615
            *overflow = -1;
616
            res = -1;
617
        }
618
        else if (tmp > LONG_MAX) {
619
            *overflow = 1;
620
            res = -1;
621
        }
622
        else {
623
            res = (long)tmp;
624
        }
625
#else
626
310M
        res = _PyLong_CompactValue(v);
627
310M
#endif
628
310M
    }
629
195
    else {
630
195
        res = -1;
631
195
        i = _PyLong_DigitCount(v);
632
195
        sign = _PyLong_NonCompactSign(v);
633
634
195
        unsigned long x = unroll_digits_ulong(v, &i);
635
207
        while (--i >= 0) {
636
95
            if (x > (ULONG_MAX >> PyLong_SHIFT)) {
637
83
                *overflow = sign;
638
83
                goto exit;
639
83
            }
640
12
            x = (x << PyLong_SHIFT) | v->long_value.ob_digit[i];
641
12
        }
642
        /* Haven't lost any bits, but casting to long requires extra
643
        * care (see comment above).
644
        */
645
112
        if (x <= (unsigned long)LONG_MAX) {
646
100
            res = (long)x * sign;
647
100
        }
648
12
        else if (sign < 0 && x == PY_ABS_LONG_MIN) {
649
3
            res = LONG_MIN;
650
3
        }
651
9
        else {
652
9
            *overflow = sign;
653
            /* res is already set to -1 */
654
9
        }
655
112
    }
656
310M
  exit:
657
310M
    if (do_decref) {
658
0
        Py_DECREF(v);
659
0
    }
660
310M
    return res;
661
310M
}
662
663
/* Get a C long int from an int object or any object that has an __index__
664
   method.  Return -1 and set an error if overflow occurs. */
665
666
long
667
PyLong_AsLong(PyObject *obj)
668
39.0M
{
669
39.0M
    int overflow;
670
39.0M
    long result = PyLong_AsLongAndOverflow(obj, &overflow);
671
39.0M
    if (overflow) {
672
        /* XXX: could be cute and give a different
673
           message for overflow == -1 */
674
28
        PyErr_SetString(PyExc_OverflowError,
675
28
                        "Python int too large to convert to C long");
676
28
    }
677
39.0M
    return result;
678
39.0M
}
679
680
/* Get a C int from an int object or any object that has an __index__
681
   method.  Return -1 and set an error if overflow occurs. */
682
683
int
684
PyLong_AsInt(PyObject *obj)
685
129M
{
686
129M
    int overflow;
687
129M
    long result = PyLong_AsLongAndOverflow(obj, &overflow);
688
129M
    if (overflow || result > INT_MAX || result < INT_MIN) {
689
        /* XXX: could be cute and give a different
690
           message for overflow == -1 */
691
0
        PyErr_SetString(PyExc_OverflowError,
692
0
                        "Python int too large to convert to C int");
693
0
        return -1;
694
0
    }
695
129M
    return (int)result;
696
129M
}
697
698
/* Get a Py_ssize_t from an int object.
699
   Returns -1 and sets an error condition if overflow occurs. */
700
701
Py_ssize_t
702
1.01G
PyLong_AsSsize_t(PyObject *vv) {
703
1.01G
    PyLongObject *v;
704
1.01G
    Py_ssize_t i;
705
1.01G
    int sign;
706
707
1.01G
    if (vv == NULL) {
708
0
        PyErr_BadInternalCall();
709
0
        return -1;
710
0
    }
711
1.01G
    if (!PyLong_Check(vv)) {
712
0
        PyErr_SetString(PyExc_TypeError, "an integer is required");
713
0
        return -1;
714
0
    }
715
716
1.01G
    v = (PyLongObject *)vv;
717
1.01G
    if (_PyLong_IsCompact(v)) {
718
1.01G
        return _PyLong_CompactValue(v);
719
1.01G
    }
720
194k
    i = _PyLong_DigitCount(v);
721
194k
    sign = _PyLong_NonCompactSign(v);
722
723
194k
    size_t x = unroll_digits_size_t(v, &i);
724
351k
    while (--i >= 0) {
725
157k
        if (x > (SIZE_MAX >> PyLong_SHIFT)) {
726
126
            goto overflow;
727
126
        }
728
157k
        x = (x << PyLong_SHIFT) | v->long_value.ob_digit[i];
729
157k
    }
730
    /* Haven't lost any bits, but casting to a signed type requires
731
     * extra care (see comment above).
732
     */
733
194k
    if (x <= (size_t)PY_SSIZE_T_MAX) {
734
194k
        return (Py_ssize_t)x * sign;
735
194k
    }
736
146
    else if (sign < 0 && x == PY_ABS_SSIZE_T_MIN) {
737
0
        return PY_SSIZE_T_MIN;
738
0
    }
739
    /* else overflow */
740
741
272
  overflow:
742
272
    PyErr_SetString(PyExc_OverflowError,
743
272
                    "Python int too large to convert to C ssize_t");
744
272
    return -1;
745
194k
}
746
747
/* Get a C unsigned long int from an int object.
748
   Returns -1 and sets an error condition if overflow occurs. */
749
750
unsigned long
751
PyLong_AsUnsignedLong(PyObject *vv)
752
78.7M
{
753
78.7M
    PyLongObject *v;
754
78.7M
    Py_ssize_t i;
755
756
78.7M
    if (vv == NULL) {
757
0
        PyErr_BadInternalCall();
758
0
        return (unsigned long)-1;
759
0
    }
760
78.7M
    if (!PyLong_Check(vv)) {
761
0
        PyErr_SetString(PyExc_TypeError, "an integer is required");
762
0
        return (unsigned long)-1;
763
0
    }
764
765
78.7M
    v = (PyLongObject *)vv;
766
78.7M
    if (_PyLong_IsNonNegativeCompact(v)) {
767
#if SIZEOF_LONG < SIZEOF_SIZE_T
768
        size_t tmp = (size_t)_PyLong_CompactValue(v);
769
        unsigned long res = (unsigned long)tmp;
770
        if (res != tmp) {
771
            goto overflow;
772
        }
773
        return res;
774
#else
775
78.0M
        return (unsigned long)(size_t)_PyLong_CompactValue(v);
776
78.0M
#endif
777
78.0M
    }
778
663k
    if (_PyLong_IsNegative(v)) {
779
0
        PyErr_SetString(PyExc_OverflowError,
780
0
                        "can't convert negative value to unsigned int");
781
0
        return (unsigned long) -1;
782
0
    }
783
663k
    i = _PyLong_DigitCount(v);
784
785
663k
    unsigned long x = unroll_digits_ulong(v, &i);
786
663k
    while (--i >= 0) {
787
0
        if (x > (ULONG_MAX >> PyLong_SHIFT)) {
788
0
            goto overflow;
789
0
        }
790
0
        x = (x << PyLong_SHIFT) | v->long_value.ob_digit[i];
791
0
    }
792
663k
    return x;
793
0
overflow:
794
0
    PyErr_SetString(PyExc_OverflowError,
795
0
                    "Python int too large to convert "
796
0
                    "to C unsigned long");
797
0
    return (unsigned long) -1;
798
663k
}
799
800
/* Get a C size_t from an int object. Returns (size_t)-1 and sets
801
   an error condition if overflow occurs. */
802
803
size_t
804
PyLong_AsSize_t(PyObject *vv)
805
58
{
806
58
    PyLongObject *v;
807
58
    Py_ssize_t i;
808
809
58
    if (vv == NULL) {
810
0
        PyErr_BadInternalCall();
811
0
        return (size_t) -1;
812
0
    }
813
58
    if (!PyLong_Check(vv)) {
814
0
        PyErr_SetString(PyExc_TypeError, "an integer is required");
815
0
        return (size_t)-1;
816
0
    }
817
818
58
    v = (PyLongObject *)vv;
819
58
    if (_PyLong_IsNonNegativeCompact(v)) {
820
58
        return (size_t)_PyLong_CompactValue(v);
821
58
    }
822
0
    if (_PyLong_IsNegative(v)) {
823
0
        PyErr_SetString(PyExc_OverflowError,
824
0
                   "can't convert negative value to size_t");
825
0
        return (size_t) -1;
826
0
    }
827
0
    i = _PyLong_DigitCount(v);
828
829
0
    size_t x = unroll_digits_size_t(v, &i);
830
0
    while (--i >= 0) {
831
0
            if (x > (SIZE_MAX >> PyLong_SHIFT)) {
832
0
                PyErr_SetString(PyExc_OverflowError,
833
0
                    "Python int too large to convert to C size_t");
834
0
                return (size_t) -1;
835
0
            }
836
0
            x = (x << PyLong_SHIFT) | v->long_value.ob_digit[i];
837
0
        }
838
0
    return x;
839
0
}
840
841
/* Get a C unsigned long int from an int object, ignoring the high bits.
842
   Returns -1 and sets an error condition if an error occurs. */
843
844
static unsigned long
845
_PyLong_AsUnsignedLongMask(PyObject *vv)
846
0
{
847
0
    PyLongObject *v;
848
0
    Py_ssize_t i;
849
850
0
    if (vv == NULL || !PyLong_Check(vv)) {
851
0
        PyErr_BadInternalCall();
852
0
        return (unsigned long) -1;
853
0
    }
854
0
    v = (PyLongObject *)vv;
855
0
    if (_PyLong_IsCompact(v)) {
856
#if SIZEOF_LONG < SIZEOF_SIZE_T
857
        return (unsigned long)(size_t)_PyLong_CompactValue(v);
858
#else
859
0
        return (unsigned long)(long)_PyLong_CompactValue(v);
860
0
#endif
861
0
    }
862
0
    i = _PyLong_DigitCount(v);
863
0
    int sign = _PyLong_NonCompactSign(v);
864
0
    unsigned long x = unroll_digits_ulong(v, &i);
865
0
    while (--i >= 0) {
866
0
        x = (x << PyLong_SHIFT) | v->long_value.ob_digit[i];
867
0
    }
868
0
    return x * sign;
869
0
}
870
871
unsigned long
872
PyLong_AsUnsignedLongMask(PyObject *op)
873
0
{
874
0
    PyLongObject *lo;
875
0
    unsigned long val;
876
877
0
    if (op == NULL) {
878
0
        PyErr_BadInternalCall();
879
0
        return (unsigned long)-1;
880
0
    }
881
882
0
    if (PyLong_Check(op)) {
883
0
        return _PyLong_AsUnsignedLongMask(op);
884
0
    }
885
886
0
    lo = (PyLongObject *)_PyNumber_Index(op);
887
0
    if (lo == NULL)
888
0
        return (unsigned long)-1;
889
890
0
    val = _PyLong_AsUnsignedLongMask((PyObject *)lo);
891
0
    Py_DECREF(lo);
892
0
    return val;
893
0
}
894
895
int
896
PyLong_IsPositive(PyObject *obj)
897
0
{
898
0
    assert(obj != NULL);
899
0
    if (!PyLong_Check(obj)) {
900
0
        PyErr_Format(PyExc_TypeError, "expected int, got %T", obj);
901
0
        return -1;
902
0
    }
903
0
    return _PyLong_IsPositive((PyLongObject *)obj);
904
0
}
905
906
int
907
PyLong_IsNegative(PyObject *obj)
908
0
{
909
0
    assert(obj != NULL);
910
0
    if (!PyLong_Check(obj)) {
911
0
        PyErr_Format(PyExc_TypeError, "expected int, got %T", obj);
912
0
        return -1;
913
0
    }
914
0
    return _PyLong_IsNegative((PyLongObject *)obj);
915
0
}
916
917
int
918
PyLong_IsZero(PyObject *obj)
919
2.77M
{
920
2.77M
    assert(obj != NULL);
921
2.77M
    if (!PyLong_Check(obj)) {
922
0
        PyErr_Format(PyExc_TypeError, "expected int, got %T", obj);
923
0
        return -1;
924
0
    }
925
2.77M
    return _PyLong_IsZero((PyLongObject *)obj);
926
2.77M
}
927
928
static int
929
long_sign(PyObject *vv)
930
1.43M
{
931
1.43M
    assert(vv != NULL);
932
1.43M
    assert(PyLong_Check(vv));
933
1.43M
    PyLongObject *v = (PyLongObject *)vv;
934
935
1.43M
    if (_PyLong_IsCompact(v)) {
936
1.43M
        return _PyLong_CompactSign(v);
937
1.43M
    }
938
0
    return _PyLong_NonCompactSign(v);
939
1.43M
}
940
941
int
942
_PyLong_Sign(PyObject *vv)
943
0
{
944
0
    return long_sign(vv);
945
0
}
946
947
int
948
PyLong_GetSign(PyObject *vv, int *sign)
949
1.43M
{
950
1.43M
    if (!PyLong_Check(vv)) {
951
0
        PyErr_Format(PyExc_TypeError, "expect int, got %T", vv);
952
0
        return -1;
953
0
    }
954
955
1.43M
    *sign = long_sign(vv);
956
1.43M
    return 0;
957
1.43M
}
958
959
static int
960
bit_length_digit(digit x)
961
4.14M
{
962
    // digit can be larger than unsigned long, but only PyLong_SHIFT bits
963
    // of it will be ever used.
964
4.14M
    static_assert(PyLong_SHIFT <= sizeof(unsigned long) * 8,
965
4.14M
                  "digit is larger than unsigned long");
966
4.14M
    return _Py_bit_length((unsigned long)x);
967
4.14M
}
968
969
int64_t
970
_PyLong_NumBits(PyObject *vv)
971
11.3k
{
972
11.3k
    PyLongObject *v = (PyLongObject *)vv;
973
11.3k
    int64_t result = 0;
974
11.3k
    Py_ssize_t ndigits;
975
11.3k
    int msd_bits;
976
977
11.3k
    assert(v != NULL);
978
11.3k
    assert(PyLong_Check(v));
979
11.3k
    ndigits = _PyLong_DigitCount(v);
980
11.3k
    assert(ndigits == 0 || v->long_value.ob_digit[ndigits - 1] != 0);
981
11.3k
    if (ndigits > 0) {
982
11.3k
        digit msd = v->long_value.ob_digit[ndigits - 1];
983
11.3k
#if SIZEOF_SIZE_T == 8
984
11.3k
        assert(ndigits <= INT64_MAX / PyLong_SHIFT);
985
11.3k
#endif
986
11.3k
        result = (int64_t)(ndigits - 1) * PyLong_SHIFT;
987
11.3k
        msd_bits = bit_length_digit(msd);
988
11.3k
        result += msd_bits;
989
11.3k
    }
990
11.3k
    return result;
991
11.3k
}
992
993
PyObject *
994
_PyLong_FromByteArray(const unsigned char* bytes, size_t n,
995
                      int little_endian, int is_signed)
996
21.7k
{
997
21.7k
    const unsigned char* pstartbyte;    /* LSB of bytes */
998
21.7k
    int incr;                           /* direction to move pstartbyte */
999
21.7k
    const unsigned char* pendbyte;      /* MSB of bytes */
1000
21.7k
    size_t numsignificantbytes;         /* number of bytes that matter */
1001
21.7k
    Py_ssize_t ndigits;                 /* number of Python int digits */
1002
21.7k
    PyLongObject* v;                    /* result */
1003
21.7k
    Py_ssize_t idigit = 0;              /* next free index in v->long_value.ob_digit */
1004
1005
21.7k
    if (n == 0)
1006
0
        return PyLong_FromLong(0L);
1007
1008
21.7k
    if (little_endian) {
1009
17.0k
        pstartbyte = bytes;
1010
17.0k
        pendbyte = bytes + n - 1;
1011
17.0k
        incr = 1;
1012
17.0k
    }
1013
4.66k
    else {
1014
4.66k
        pstartbyte = bytes + n - 1;
1015
4.66k
        pendbyte = bytes;
1016
4.66k
        incr = -1;
1017
4.66k
    }
1018
1019
21.7k
    if (is_signed)
1020
25
        is_signed = *pendbyte >= 0x80;
1021
1022
    /* Compute numsignificantbytes.  This consists of finding the most
1023
       significant byte.  Leading 0 bytes are insignificant if the number
1024
       is positive, and leading 0xff bytes if negative. */
1025
21.7k
    {
1026
21.7k
        size_t i;
1027
21.7k
        const unsigned char* p = pendbyte;
1028
21.7k
        const int pincr = -incr;  /* search MSB to LSB */
1029
21.7k
        const unsigned char insignificant = is_signed ? 0xff : 0x00;
1030
1031
61.9k
        for (i = 0; i < n; ++i, p += pincr) {
1032
55.3k
            if (*p != insignificant)
1033
15.0k
                break;
1034
55.3k
        }
1035
21.7k
        numsignificantbytes = n - i;
1036
        /* 2's-comp is a bit tricky here, e.g. 0xff00 == -0x0100, so
1037
           actually has 2 significant bytes.  OTOH, 0xff0001 ==
1038
           -0x00ffff, so we wouldn't *need* to bump it there; but we
1039
           do for 0xffff = -0x0001.  To be safe without bothering to
1040
           check every case, bump it regardless. */
1041
21.7k
        if (is_signed && numsignificantbytes < n)
1042
0
            ++numsignificantbytes;
1043
21.7k
    }
1044
1045
    /* avoid integer overflow */
1046
21.7k
    ndigits = numsignificantbytes / PyLong_SHIFT * 8
1047
21.7k
        + (numsignificantbytes % PyLong_SHIFT * 8 + PyLong_SHIFT - 1) / PyLong_SHIFT;
1048
21.7k
    v = long_alloc(ndigits);
1049
21.7k
    if (v == NULL)
1050
0
        return NULL;
1051
1052
    /* Copy the bits over.  The tricky parts are computing 2's-comp on
1053
       the fly for signed numbers, and dealing with the mismatch between
1054
       8-bit bytes and (probably) 15-bit Python digits.*/
1055
21.7k
    {
1056
21.7k
        size_t i;
1057
21.7k
        twodigits carry = 1;                    /* for 2's-comp calculation */
1058
21.7k
        twodigits accum = 0;                    /* sliding register */
1059
21.7k
        unsigned int accumbits = 0;             /* number of bits in accum */
1060
21.7k
        const unsigned char* p = pstartbyte;
1061
1062
169k
        for (i = 0; i < numsignificantbytes; ++i, p += incr) {
1063
147k
            twodigits thisbyte = *p;
1064
            /* Compute correction for 2's comp, if needed. */
1065
147k
            if (is_signed) {
1066
11.2k
                thisbyte = (0xff ^ thisbyte) + carry;
1067
11.2k
                carry = thisbyte >> 8;
1068
11.2k
                thisbyte &= 0xff;
1069
11.2k
            }
1070
            /* Because we're going LSB to MSB, thisbyte is
1071
               more significant than what's already in accum,
1072
               so needs to be prepended to accum. */
1073
147k
            accum |= thisbyte << accumbits;
1074
147k
            accumbits += 8;
1075
147k
            if (accumbits >= PyLong_SHIFT) {
1076
                /* There's enough to fill a Python digit. */
1077
34.6k
                assert(idigit < ndigits);
1078
34.6k
                v->long_value.ob_digit[idigit] = (digit)(accum & PyLong_MASK);
1079
34.6k
                ++idigit;
1080
34.6k
                accum >>= PyLong_SHIFT;
1081
34.6k
                accumbits -= PyLong_SHIFT;
1082
34.6k
                assert(accumbits < PyLong_SHIFT);
1083
34.6k
            }
1084
147k
        }
1085
21.7k
        assert(accumbits < PyLong_SHIFT);
1086
21.7k
        if (accumbits) {
1087
15.0k
            assert(idigit < ndigits);
1088
15.0k
            v->long_value.ob_digit[idigit] = (digit)accum;
1089
15.0k
            ++idigit;
1090
15.0k
        }
1091
21.7k
    }
1092
1093
21.7k
    int sign = is_signed ? -1: 1;
1094
21.7k
    if (idigit == 0) {
1095
6.62k
        sign = 0;
1096
6.62k
    }
1097
21.7k
    _PyLong_SetSignAndDigitCount(v, sign, idigit);
1098
21.7k
    return (PyObject *)maybe_small_long(long_normalize(v));
1099
21.7k
}
1100
1101
int
1102
_PyLong_AsByteArray(PyLongObject* v,
1103
                    unsigned char* bytes, size_t n,
1104
                    int little_endian, int is_signed,
1105
                    int with_exceptions)
1106
12.3k
{
1107
12.3k
    Py_ssize_t i;               /* index into v->long_value.ob_digit */
1108
12.3k
    Py_ssize_t ndigits;         /* number of digits */
1109
12.3k
    twodigits accum;            /* sliding register */
1110
12.3k
    unsigned int accumbits;     /* # bits in accum */
1111
12.3k
    int do_twos_comp;           /* store 2's-comp?  is_signed and v < 0 */
1112
12.3k
    digit carry;                /* for computing 2's-comp */
1113
12.3k
    size_t j;                   /* # bytes filled */
1114
12.3k
    unsigned char* p;           /* pointer to next byte in bytes */
1115
12.3k
    int pincr;                  /* direction to move p */
1116
1117
12.3k
    assert(v != NULL && PyLong_Check(v));
1118
1119
12.3k
    ndigits = _PyLong_DigitCount(v);
1120
12.3k
    if (_PyLong_IsNegative(v)) {
1121
0
        if (!is_signed) {
1122
0
            if (with_exceptions) {
1123
0
                PyErr_SetString(PyExc_OverflowError,
1124
0
                                "can't convert negative int to unsigned");
1125
0
            }
1126
0
            return -1;
1127
0
        }
1128
0
        do_twos_comp = 1;
1129
0
    }
1130
12.3k
    else {
1131
12.3k
        do_twos_comp = 0;
1132
12.3k
    }
1133
1134
12.3k
    if (little_endian) {
1135
12.0k
        p = bytes;
1136
12.0k
        pincr = 1;
1137
12.0k
    }
1138
291
    else {
1139
291
        p = bytes + n - 1;
1140
291
        pincr = -1;
1141
291
    }
1142
1143
    /* Copy over all the Python digits.
1144
       It's crucial that every Python digit except for the MSD contribute
1145
       exactly PyLong_SHIFT bits to the total, so first assert that the int is
1146
       normalized.
1147
       NOTE: PyLong_AsNativeBytes() assumes that this function will fill in 'n'
1148
       bytes even if it eventually fails to convert the whole number. Make sure
1149
       you account for that if you are changing this algorithm to return without
1150
       doing that.
1151
       */
1152
12.3k
    assert(ndigits == 0 || v->long_value.ob_digit[ndigits - 1] != 0);
1153
12.3k
    j = 0;
1154
12.3k
    accum = 0;
1155
12.3k
    accumbits = 0;
1156
12.3k
    carry = do_twos_comp ? 1 : 0;
1157
35.8k
    for (i = 0; i < ndigits; ++i) {
1158
23.5k
        digit thisdigit = v->long_value.ob_digit[i];
1159
23.5k
        if (do_twos_comp) {
1160
0
            thisdigit = (thisdigit ^ PyLong_MASK) + carry;
1161
0
            carry = thisdigit >> PyLong_SHIFT;
1162
0
            thisdigit &= PyLong_MASK;
1163
0
        }
1164
        /* Because we're going LSB to MSB, thisdigit is more
1165
           significant than what's already in accum, so needs to be
1166
           prepended to accum. */
1167
23.5k
        accum |= (twodigits)thisdigit << accumbits;
1168
1169
        /* The most-significant digit may be (probably is) at least
1170
           partly empty. */
1171
23.5k
        if (i == ndigits - 1) {
1172
            /* Count # of sign bits -- they needn't be stored,
1173
             * although for signed conversion we need later to
1174
             * make sure at least one sign bit gets stored. */
1175
11.9k
            digit s = do_twos_comp ? thisdigit ^ PyLong_MASK : thisdigit;
1176
35.9k
            while (s != 0) {
1177
23.9k
                s >>= 1;
1178
23.9k
                accumbits++;
1179
23.9k
            }
1180
11.9k
        }
1181
11.5k
        else
1182
11.5k
            accumbits += PyLong_SHIFT;
1183
1184
        /* Store as many bytes as possible. */
1185
65.9k
        while (accumbits >= 8) {
1186
42.4k
            if (j >= n)
1187
0
                goto Overflow;
1188
42.4k
            ++j;
1189
42.4k
            *p = (unsigned char)(accum & 0xff);
1190
42.4k
            p += pincr;
1191
42.4k
            accumbits -= 8;
1192
42.4k
            accum >>= 8;
1193
42.4k
        }
1194
23.5k
    }
1195
1196
    /* Store the straggler (if any). */
1197
12.3k
    assert(accumbits < 8);
1198
12.3k
    assert(carry == 0);  /* else do_twos_comp and *every* digit was 0 */
1199
12.3k
    if (accumbits > 0) {
1200
4.48k
        if (j >= n)
1201
0
            goto Overflow;
1202
4.48k
        ++j;
1203
4.48k
        if (do_twos_comp) {
1204
            /* Fill leading bits of the byte with sign bits
1205
               (appropriately pretending that the int had an
1206
               infinite supply of sign bits). */
1207
0
            accum |= (~(twodigits)0) << accumbits;
1208
0
        }
1209
4.48k
        *p = (unsigned char)(accum & 0xff);
1210
4.48k
        p += pincr;
1211
4.48k
    }
1212
7.87k
    else if (j == n && is_signed) {
1213
        /* The main loop filled the byte array exactly, so the code
1214
           just above didn't get to ensure there's a sign bit, and the
1215
           loop below wouldn't add one either.  Make sure a sign bit
1216
           exists. */
1217
7.46k
        int sign_bit_set;
1218
7.46k
        if (n > 0) {
1219
7.46k
            unsigned char msb = *(p - pincr);
1220
7.46k
            sign_bit_set = msb >= 0x80;
1221
7.46k
        }
1222
0
        else {
1223
0
            sign_bit_set = 0;
1224
0
        }
1225
7.46k
        assert(accumbits == 0);
1226
7.46k
        if (sign_bit_set == do_twos_comp)
1227
0
            return 0;
1228
7.46k
        else
1229
7.46k
            goto Overflow;
1230
7.46k
    }
1231
1232
    /* Fill remaining bytes with copies of the sign bit. */
1233
4.89k
    {
1234
4.89k
        unsigned char signbyte = do_twos_comp ? 0xffU : 0U;
1235
8.61k
        for ( ; j < n; ++j, p += pincr)
1236
3.71k
            *p = signbyte;
1237
4.89k
    }
1238
1239
4.89k
    return 0;
1240
1241
7.46k
  Overflow:
1242
7.46k
    if (with_exceptions) {
1243
0
        PyErr_SetString(PyExc_OverflowError, "int too big to convert");
1244
0
    }
1245
7.46k
    return -1;
1246
1247
12.3k
}
1248
1249
// Refactored out for readability, not reuse
1250
static inline int
1251
_fits_in_n_bits(Py_ssize_t v, Py_ssize_t n)
1252
6.81M
{
1253
6.81M
    if (n >= (Py_ssize_t)sizeof(Py_ssize_t) * 8) {
1254
6.80M
        return 1;
1255
6.80M
    }
1256
    // If all bits above n are the same, we fit.
1257
    // (Use n-1 if we require the sign bit to be consistent.)
1258
13.6k
    Py_ssize_t v_extended = v >> ((int)n - 1);
1259
13.6k
    return v_extended == 0 || v_extended == -1;
1260
6.81M
}
1261
1262
static inline int
1263
_resolve_endianness(int *endianness)
1264
6.82M
{
1265
6.82M
    if (*endianness == -1 || (*endianness & 2)) {
1266
6.82M
        *endianness = PY_LITTLE_ENDIAN;
1267
6.82M
    } else {
1268
0
        *endianness &= 1;
1269
0
    }
1270
6.82M
    assert(*endianness == 0 || *endianness == 1);
1271
6.82M
    return 0;
1272
6.82M
}
1273
1274
Py_ssize_t
1275
PyLong_AsNativeBytes(PyObject* vv, void* buffer, Py_ssize_t n, int flags)
1276
6.82M
{
1277
6.82M
    PyLongObject *v;
1278
6.82M
    union {
1279
6.82M
        Py_ssize_t v;
1280
6.82M
        unsigned char b[sizeof(Py_ssize_t)];
1281
6.82M
    } cv;
1282
6.82M
    int do_decref = 0;
1283
6.82M
    Py_ssize_t res = 0;
1284
1285
6.82M
    if (vv == NULL || n < 0) {
1286
0
        PyErr_BadInternalCall();
1287
0
        return -1;
1288
0
    }
1289
1290
6.82M
    int little_endian = flags;
1291
6.82M
    if (_resolve_endianness(&little_endian) < 0) {
1292
0
        return -1;
1293
0
    }
1294
1295
6.82M
    if (PyLong_Check(vv)) {
1296
6.82M
        v = (PyLongObject *)vv;
1297
6.82M
    }
1298
0
    else if (flags != -1 && (flags & Py_ASNATIVEBYTES_ALLOW_INDEX)) {
1299
0
        v = (PyLongObject *)_PyNumber_Index(vv);
1300
0
        if (v == NULL) {
1301
0
            return -1;
1302
0
        }
1303
0
        do_decref = 1;
1304
0
    }
1305
0
    else {
1306
0
        PyErr_Format(PyExc_TypeError, "expect int, got %T", vv);
1307
0
        return -1;
1308
0
    }
1309
1310
6.82M
    if ((flags != -1 && (flags & Py_ASNATIVEBYTES_REJECT_NEGATIVE))
1311
0
        && _PyLong_IsNegative(v)) {
1312
0
        PyErr_SetString(PyExc_ValueError, "Cannot convert negative int");
1313
0
        if (do_decref) {
1314
0
            Py_DECREF(v);
1315
0
        }
1316
0
        return -1;
1317
0
    }
1318
1319
6.82M
    if (_PyLong_IsCompact(v)) {
1320
6.81M
        res = 0;
1321
6.81M
        cv.v = _PyLong_CompactValue(v);
1322
        /* Most paths result in res = sizeof(compact value). Only the case
1323
         * where 0 < n < sizeof(compact value) do we need to check and adjust
1324
         * our return value. */
1325
6.81M
        res = sizeof(cv.b);
1326
6.81M
        if (n <= 0) {
1327
            // nothing to do!
1328
0
        }
1329
6.81M
        else if (n <= (Py_ssize_t)sizeof(cv.b)) {
1330
6.81M
#if PY_LITTLE_ENDIAN
1331
6.81M
            if (little_endian) {
1332
6.81M
                memcpy(buffer, cv.b, n);
1333
6.81M
            }
1334
0
            else {
1335
0
                for (Py_ssize_t i = 0; i < n; ++i) {
1336
0
                    ((unsigned char*)buffer)[n - i - 1] = cv.b[i];
1337
0
                }
1338
0
            }
1339
#else
1340
            if (little_endian) {
1341
                for (Py_ssize_t i = 0; i < n; ++i) {
1342
                    ((unsigned char*)buffer)[i] = cv.b[sizeof(cv.b) - i - 1];
1343
                }
1344
            }
1345
            else {
1346
                memcpy(buffer, &cv.b[sizeof(cv.b) - n], n);
1347
            }
1348
#endif
1349
1350
            /* If we fit, return the requested number of bytes */
1351
6.81M
            if (_fits_in_n_bits(cv.v, n * 8)) {
1352
6.81M
                res = n;
1353
6.81M
            } else if (cv.v > 0 && _fits_in_n_bits(cv.v, n * 8 + 1)) {
1354
                /* Positive values with the MSB set do not require an
1355
                 * additional bit when the caller's intent is to treat them
1356
                 * as unsigned. */
1357
0
                if (flags == -1 || (flags & Py_ASNATIVEBYTES_UNSIGNED_BUFFER)) {
1358
0
                    res = n;
1359
0
                } else {
1360
0
                    res = n + 1;
1361
0
                }
1362
0
            }
1363
6.81M
        }
1364
0
        else {
1365
0
            unsigned char fill = cv.v < 0 ? 0xFF : 0x00;
1366
0
#if PY_LITTLE_ENDIAN
1367
0
            if (little_endian) {
1368
0
                memcpy(buffer, cv.b, sizeof(cv.b));
1369
0
                memset((char *)buffer + sizeof(cv.b), fill, n - sizeof(cv.b));
1370
0
            }
1371
0
            else {
1372
0
                unsigned char *b = (unsigned char *)buffer;
1373
0
                for (Py_ssize_t i = 0; i < n - (int)sizeof(cv.b); ++i) {
1374
0
                    *b++ = fill;
1375
0
                }
1376
0
                for (Py_ssize_t i = sizeof(cv.b); i > 0; --i) {
1377
0
                    *b++ = cv.b[i - 1];
1378
0
                }
1379
0
            }
1380
#else
1381
            if (little_endian) {
1382
                unsigned char *b = (unsigned char *)buffer;
1383
                for (Py_ssize_t i = sizeof(cv.b); i > 0; --i) {
1384
                    *b++ = cv.b[i - 1];
1385
                }
1386
                for (Py_ssize_t i = 0; i < n - (int)sizeof(cv.b); ++i) {
1387
                    *b++ = fill;
1388
                }
1389
            }
1390
            else {
1391
                memset(buffer, fill, n - sizeof(cv.b));
1392
                memcpy((char *)buffer + n - sizeof(cv.b), cv.b, sizeof(cv.b));
1393
            }
1394
#endif
1395
0
        }
1396
6.81M
    }
1397
11.2k
    else {
1398
11.2k
        if (n > 0) {
1399
11.2k
            _PyLong_AsByteArray(v, buffer, (size_t)n, little_endian, 1, 0);
1400
11.2k
        }
1401
1402
        /* Calculates the number of bits required for the *absolute* value
1403
         * of v. This does not take sign into account, only magnitude. */
1404
11.2k
        int64_t nb = _PyLong_NumBits((PyObject *)v);
1405
11.2k
        assert(nb >= 0);
1406
        /* Normally this would be ((nb - 1) / 8) + 1 to avoid rounding up
1407
         * multiples of 8 to the next byte, but we add an implied bit for
1408
         * the sign and it cancels out. */
1409
11.2k
        res = (Py_ssize_t)(nb / 8) + 1;
1410
1411
        /* Two edge cases exist that are best handled after extracting the
1412
         * bits. These may result in us reporting overflow when the value
1413
         * actually fits.
1414
         */
1415
11.2k
        if (n > 0 && res == n + 1 && nb % 8 == 0) {
1416
7.46k
            if (_PyLong_IsNegative(v)) {
1417
                /* Values of 0x80...00 from negative values that use every
1418
                 * available bit in the buffer do not require an additional
1419
                 * bit to store the sign. */
1420
0
                int is_edge_case = 1;
1421
0
                unsigned char *b = (unsigned char *)buffer;
1422
0
                for (Py_ssize_t i = 0; i < n && is_edge_case; ++i, ++b) {
1423
0
                    if (i == 0) {
1424
0
                        is_edge_case = (*b == (little_endian ? 0 : 0x80));
1425
0
                    } else if (i < n - 1) {
1426
0
                        is_edge_case = (*b == 0);
1427
0
                    } else {
1428
0
                        is_edge_case = (*b == (little_endian ? 0x80 : 0));
1429
0
                    }
1430
0
                }
1431
0
                if (is_edge_case) {
1432
0
                    res = n;
1433
0
                }
1434
0
            }
1435
7.46k
            else {
1436
                /* Positive values with the MSB set do not require an
1437
                 * additional bit when the caller's intent is to treat them
1438
                 * as unsigned. */
1439
7.46k
                unsigned char *b = (unsigned char *)buffer;
1440
7.46k
                if (b[little_endian ? n - 1 : 0] & 0x80) {
1441
7.46k
                    if (flags == -1 || (flags & Py_ASNATIVEBYTES_UNSIGNED_BUFFER)) {
1442
7.46k
                        res = n;
1443
7.46k
                    } else {
1444
0
                        res = n + 1;
1445
0
                    }
1446
7.46k
                }
1447
7.46k
            }
1448
7.46k
        }
1449
11.2k
    }
1450
1451
6.82M
    if (do_decref) {
1452
0
        Py_DECREF(v);
1453
0
    }
1454
1455
6.82M
    return res;
1456
6.82M
}
1457
1458
1459
PyObject *
1460
PyLong_FromNativeBytes(const void* buffer, size_t n, int flags)
1461
0
{
1462
0
    if (!buffer) {
1463
0
        PyErr_BadInternalCall();
1464
0
        return NULL;
1465
0
    }
1466
1467
0
    int little_endian = flags;
1468
0
    if (_resolve_endianness(&little_endian) < 0) {
1469
0
        return NULL;
1470
0
    }
1471
1472
0
    return _PyLong_FromByteArray(
1473
0
        (const unsigned char *)buffer,
1474
0
        n,
1475
0
        little_endian,
1476
0
        (flags == -1 || !(flags & Py_ASNATIVEBYTES_UNSIGNED_BUFFER)) ? 1 : 0
1477
0
    );
1478
0
}
1479
1480
1481
PyObject *
1482
PyLong_FromUnsignedNativeBytes(const void* buffer, size_t n, int flags)
1483
0
{
1484
0
    if (!buffer) {
1485
0
        PyErr_BadInternalCall();
1486
0
        return NULL;
1487
0
    }
1488
1489
0
    int little_endian = flags;
1490
0
    if (_resolve_endianness(&little_endian) < 0) {
1491
0
        return NULL;
1492
0
    }
1493
1494
0
    return _PyLong_FromByteArray((const unsigned char *)buffer, n, little_endian, 0);
1495
0
}
1496
1497
1498
/* Create a new int object from a C pointer */
1499
1500
PyObject *
1501
PyLong_FromVoidPtr(void *p)
1502
2.31M
{
1503
2.31M
#if SIZEOF_VOID_P <= SIZEOF_LONG
1504
2.31M
    return PyLong_FromUnsignedLong((unsigned long)(uintptr_t)p);
1505
#else
1506
1507
#if SIZEOF_LONG_LONG < SIZEOF_VOID_P
1508
#   error "PyLong_FromVoidPtr: sizeof(long long) < sizeof(void*)"
1509
#endif
1510
    return PyLong_FromUnsignedLongLong((unsigned long long)(uintptr_t)p);
1511
#endif /* SIZEOF_VOID_P <= SIZEOF_LONG */
1512
1513
2.31M
}
1514
1515
/* Get a C pointer from an int object. */
1516
1517
void *
1518
PyLong_AsVoidPtr(PyObject *vv)
1519
72
{
1520
72
#if SIZEOF_VOID_P <= SIZEOF_LONG
1521
72
    long x;
1522
1523
72
    if (PyLong_Check(vv) && _PyLong_IsNegative((PyLongObject *)vv)) {
1524
0
        x = PyLong_AsLong(vv);
1525
0
    }
1526
72
    else {
1527
72
        x = PyLong_AsUnsignedLong(vv);
1528
72
    }
1529
#else
1530
1531
#if SIZEOF_LONG_LONG < SIZEOF_VOID_P
1532
#   error "PyLong_AsVoidPtr: sizeof(long long) < sizeof(void*)"
1533
#endif
1534
    long long x;
1535
1536
    if (PyLong_Check(vv) && _PyLong_IsNegative((PyLongObject *)vv)) {
1537
        x = PyLong_AsLongLong(vv);
1538
    }
1539
    else {
1540
        x = PyLong_AsUnsignedLongLong(vv);
1541
    }
1542
1543
#endif /* SIZEOF_VOID_P <= SIZEOF_LONG */
1544
1545
72
    if (x == -1 && PyErr_Occurred())
1546
0
        return NULL;
1547
72
    return (void *)x;
1548
72
}
1549
1550
/* Initial long long support by Chris Herborth (chrish@qnx.com), later
1551
 * rewritten to use the newer PyLong_{As,From}ByteArray API.
1552
 */
1553
1554
0
#define PY_ABS_LLONG_MIN (0-(unsigned long long)LLONG_MIN)
1555
1556
/* Create a new int object from a C long long int. */
1557
1558
PyObject *
1559
PyLong_FromLongLong(long long ival)
1560
2.87M
{
1561
2.87M
    PYLONG_FROM_INT(unsigned long long, long long, ival);
1562
2.87M
}
1563
1564
/* Create a new int object from a C Py_ssize_t. */
1565
1566
PyObject *
1567
PyLong_FromSsize_t(Py_ssize_t ival)
1568
374M
{
1569
374M
    PYLONG_FROM_INT(size_t, Py_ssize_t, ival);
1570
374M
}
1571
1572
/* Get a C long long int from an int object or any object that has an
1573
   __index__ method.  Return -1 and set an error if overflow occurs. */
1574
1575
long long
1576
PyLong_AsLongLong(PyObject *vv)
1577
0
{
1578
0
    PyLongObject *v;
1579
0
    long long bytes;
1580
0
    int res;
1581
0
    int do_decref = 0; /* if PyNumber_Index was called */
1582
1583
0
    if (vv == NULL) {
1584
0
        PyErr_BadInternalCall();
1585
0
        return -1;
1586
0
    }
1587
1588
0
    if (PyLong_Check(vv)) {
1589
0
        v = (PyLongObject *)vv;
1590
0
    }
1591
0
    else {
1592
0
        v = (PyLongObject *)_PyNumber_Index(vv);
1593
0
        if (v == NULL)
1594
0
            return -1;
1595
0
        do_decref = 1;
1596
0
    }
1597
1598
0
    if (_PyLong_IsCompact(v)) {
1599
0
        res = 0;
1600
0
        bytes = _PyLong_CompactValue(v);
1601
0
    }
1602
0
    else {
1603
0
        res = _PyLong_AsByteArray((PyLongObject *)v, (unsigned char *)&bytes,
1604
0
                                  SIZEOF_LONG_LONG, PY_LITTLE_ENDIAN, 1, 1);
1605
0
    }
1606
0
    if (do_decref) {
1607
0
        Py_DECREF(v);
1608
0
    }
1609
1610
    /* Plan 9 can't handle long long in ? : expressions */
1611
0
    if (res < 0)
1612
0
        return (long long)-1;
1613
0
    else
1614
0
        return bytes;
1615
0
}
1616
1617
/* Get a C unsigned long long int from an int object.
1618
   Return -1 and set an error if overflow occurs. */
1619
1620
unsigned long long
1621
PyLong_AsUnsignedLongLong(PyObject *vv)
1622
2
{
1623
2
    PyLongObject *v;
1624
2
    unsigned long long bytes;
1625
2
    int res;
1626
1627
2
    if (vv == NULL) {
1628
0
        PyErr_BadInternalCall();
1629
0
        return (unsigned long long)-1;
1630
0
    }
1631
2
    if (!PyLong_Check(vv)) {
1632
0
        PyErr_SetString(PyExc_TypeError, "an integer is required");
1633
0
        return (unsigned long long)-1;
1634
0
    }
1635
1636
2
    v = (PyLongObject*)vv;
1637
2
    if (_PyLong_IsNonNegativeCompact(v)) {
1638
0
        res = 0;
1639
#if SIZEOF_LONG_LONG < SIZEOF_SIZE_T
1640
        size_t tmp = (size_t)_PyLong_CompactValue(v);
1641
        bytes = (unsigned long long)tmp;
1642
        if (bytes != tmp) {
1643
            PyErr_SetString(PyExc_OverflowError,
1644
                            "Python int too large to convert "
1645
                            "to C unsigned long long");
1646
            res = -1;
1647
        }
1648
#else
1649
0
        bytes = (unsigned long long)(size_t)_PyLong_CompactValue(v);
1650
0
#endif
1651
0
    }
1652
2
    else {
1653
2
        res = _PyLong_AsByteArray((PyLongObject *)vv, (unsigned char *)&bytes,
1654
2
                              SIZEOF_LONG_LONG, PY_LITTLE_ENDIAN, 0, 1);
1655
2
    }
1656
1657
    /* Plan 9 can't handle long long in ? : expressions */
1658
2
    if (res < 0)
1659
0
        return (unsigned long long)res;
1660
2
    else
1661
2
        return bytes;
1662
2
}
1663
1664
/* Get a C unsigned long int from an int object, ignoring the high bits.
1665
   Returns -1 and sets an error condition if an error occurs. */
1666
1667
static unsigned long long
1668
_PyLong_AsUnsignedLongLongMask(PyObject *vv)
1669
0
{
1670
0
    PyLongObject *v;
1671
0
    Py_ssize_t i;
1672
0
    int sign;
1673
1674
0
    if (vv == NULL || !PyLong_Check(vv)) {
1675
0
        PyErr_BadInternalCall();
1676
0
        return (unsigned long long) -1;
1677
0
    }
1678
0
    v = (PyLongObject *)vv;
1679
0
    if (_PyLong_IsCompact(v)) {
1680
#if SIZEOF_LONG_LONG < SIZEOF_SIZE_T
1681
        return (unsigned long long)(size_t)_PyLong_CompactValue(v);
1682
#else
1683
0
        return (unsigned long long)(long long)_PyLong_CompactValue(v);
1684
0
#endif
1685
0
    }
1686
0
    i = _PyLong_DigitCount(v);
1687
0
    sign = _PyLong_NonCompactSign(v);
1688
0
    unsigned long long x = unroll_digits_ulong(v, &i);
1689
0
    while (--i >= 0) {
1690
0
        x = (x << PyLong_SHIFT) | v->long_value.ob_digit[i];
1691
0
    }
1692
0
    return x * sign;
1693
0
}
1694
1695
unsigned long long
1696
PyLong_AsUnsignedLongLongMask(PyObject *op)
1697
0
{
1698
0
    PyLongObject *lo;
1699
0
    unsigned long long val;
1700
1701
0
    if (op == NULL) {
1702
0
        PyErr_BadInternalCall();
1703
0
        return (unsigned long long)-1;
1704
0
    }
1705
1706
0
    if (PyLong_Check(op)) {
1707
0
        return _PyLong_AsUnsignedLongLongMask(op);
1708
0
    }
1709
1710
0
    lo = (PyLongObject *)_PyNumber_Index(op);
1711
0
    if (lo == NULL)
1712
0
        return (unsigned long long)-1;
1713
1714
0
    val = _PyLong_AsUnsignedLongLongMask((PyObject *)lo);
1715
0
    Py_DECREF(lo);
1716
0
    return val;
1717
0
}
1718
1719
/* Get a C long long int from an int object or any object that has an
1720
   __index__ method.
1721
1722
   On overflow, return -1 and set *overflow to 1 or -1 depending on the sign of
1723
   the result.  Otherwise *overflow is 0.
1724
1725
   For other errors (e.g., TypeError), return -1 and set an error condition.
1726
   In this case *overflow will be 0.
1727
*/
1728
1729
long long
1730
PyLong_AsLongLongAndOverflow(PyObject *vv, int *overflow)
1731
0
{
1732
    /* This version by Tim Peters */
1733
0
    PyLongObject *v;
1734
0
    long long res;
1735
0
    Py_ssize_t i;
1736
0
    int sign;
1737
0
    int do_decref = 0; /* if PyNumber_Index was called */
1738
1739
0
    *overflow = 0;
1740
0
    if (vv == NULL) {
1741
0
        PyErr_BadInternalCall();
1742
0
        return -1;
1743
0
    }
1744
1745
0
    if (PyLong_Check(vv)) {
1746
0
        v = (PyLongObject *)vv;
1747
0
    }
1748
0
    else {
1749
0
        v = (PyLongObject *)_PyNumber_Index(vv);
1750
0
        if (v == NULL)
1751
0
            return -1;
1752
0
        do_decref = 1;
1753
0
    }
1754
0
    if (_PyLong_IsCompact(v)) {
1755
#if SIZEOF_LONG_LONG < SIZEOF_SIZE_T
1756
        Py_ssize_t tmp = _PyLong_CompactValue(v);
1757
        if (tmp < LLONG_MIN) {
1758
            *overflow = -1;
1759
            res = -1;
1760
        }
1761
        else if (tmp > LLONG_MAX) {
1762
            *overflow = 1;
1763
            res = -1;
1764
        }
1765
        else {
1766
            res = (long long)tmp;
1767
        }
1768
#else
1769
0
        res = _PyLong_CompactValue(v);
1770
0
#endif
1771
0
    }
1772
0
    else {
1773
0
        i = _PyLong_DigitCount(v);
1774
0
        sign = _PyLong_NonCompactSign(v);
1775
0
        unsigned long long x = unroll_digits_ulong(v, &i);
1776
0
        while (--i >= 0) {
1777
0
            if (x > ULLONG_MAX >> PyLong_SHIFT) {
1778
0
                *overflow = sign;
1779
0
                res = -1;
1780
0
                goto exit;
1781
0
            }
1782
0
            x = (x << PyLong_SHIFT) + v->long_value.ob_digit[i];
1783
0
        }
1784
        /* Haven't lost any bits, but casting to long requires extra
1785
         * care (see comment above).
1786
         */
1787
0
        if (x <= (unsigned long long)LLONG_MAX) {
1788
0
            res = (long long)x * sign;
1789
0
        }
1790
0
        else if (sign < 0 && x == PY_ABS_LLONG_MIN) {
1791
0
            res = LLONG_MIN;
1792
0
        }
1793
0
        else {
1794
0
            *overflow = sign;
1795
0
            res = -1;
1796
0
        }
1797
0
    }
1798
0
  exit:
1799
0
    if (do_decref) {
1800
0
        Py_DECREF(v);
1801
0
    }
1802
0
    return res;
1803
0
}
1804
1805
#define UNSIGNED_INT_CONVERTER(NAME, TYPE)                          \
1806
int                                                                 \
1807
0
_PyLong_##NAME##_Converter(PyObject *obj, void *ptr)                \
1808
0
{                                                                   \
1809
0
    Py_ssize_t bytes = PyLong_AsNativeBytes(obj, ptr, sizeof(TYPE), \
1810
0
            Py_ASNATIVEBYTES_NATIVE_ENDIAN |                        \
1811
0
            Py_ASNATIVEBYTES_ALLOW_INDEX |                          \
1812
0
            Py_ASNATIVEBYTES_REJECT_NEGATIVE |                      \
1813
0
            Py_ASNATIVEBYTES_UNSIGNED_BUFFER);                      \
1814
0
    if (bytes < 0) {                                                \
1815
0
        return 0;                                                   \
1816
0
    }                                                               \
1817
0
    if ((size_t)bytes > sizeof(TYPE)) {                             \
1818
0
        PyErr_SetString(PyExc_OverflowError,                        \
1819
0
                        "Python int too large for C "#TYPE);        \
1820
0
        return 0;                                                   \
1821
0
    }                                                               \
1822
0
    return 1;                                                       \
1823
0
}
Unexecuted instantiation: _PyLong_UnsignedShort_Converter
Unexecuted instantiation: _PyLong_UnsignedInt_Converter
Unexecuted instantiation: _PyLong_UnsignedLong_Converter
Unexecuted instantiation: _PyLong_UnsignedLongLong_Converter
Unexecuted instantiation: _PyLong_Size_t_Converter
Unexecuted instantiation: _PyLong_UInt8_Converter
Unexecuted instantiation: _PyLong_UInt16_Converter
Unexecuted instantiation: _PyLong_UInt32_Converter
Unexecuted instantiation: _PyLong_UInt64_Converter
1824
1825
UNSIGNED_INT_CONVERTER(UnsignedShort, unsigned short)
1826
UNSIGNED_INT_CONVERTER(UnsignedInt, unsigned int)
1827
UNSIGNED_INT_CONVERTER(UnsignedLong, unsigned long)
1828
UNSIGNED_INT_CONVERTER(UnsignedLongLong, unsigned long long)
1829
UNSIGNED_INT_CONVERTER(Size_t, size_t)
1830
UNSIGNED_INT_CONVERTER(UInt8, uint8_t)
1831
UNSIGNED_INT_CONVERTER(UInt16, uint16_t)
1832
UNSIGNED_INT_CONVERTER(UInt32, uint32_t)
1833
UNSIGNED_INT_CONVERTER(UInt64, uint64_t)
1834
1835
1836
#define CHECK_BINOP(v,w)                                \
1837
279M
    do {                                                \
1838
279M
        if (!PyLong_Check(v) || !PyLong_Check(w))       \
1839
279M
            Py_RETURN_NOTIMPLEMENTED;                   \
1840
279M
    } while(0)
1841
1842
/* x[0:m] and y[0:n] are digit vectors, LSD first, m >= n required.  x[0:n]
1843
 * is modified in place, by adding y to it.  Carries are propagated as far as
1844
 * x[m-1], and the remaining carry (0 or 1) is returned.
1845
 */
1846
static digit
1847
v_iadd(digit *x, Py_ssize_t m, digit *y, Py_ssize_t n)
1848
0
{
1849
0
    Py_ssize_t i;
1850
0
    digit carry = 0;
1851
1852
0
    assert(m >= n);
1853
0
    for (i = 0; i < n; ++i) {
1854
0
        carry += x[i] + y[i];
1855
0
        x[i] = carry & PyLong_MASK;
1856
0
        carry >>= PyLong_SHIFT;
1857
0
        assert((carry & 1) == carry);
1858
0
    }
1859
0
    for (; carry && i < m; ++i) {
1860
0
        carry += x[i];
1861
0
        x[i] = carry & PyLong_MASK;
1862
0
        carry >>= PyLong_SHIFT;
1863
0
        assert((carry & 1) == carry);
1864
0
    }
1865
0
    return carry;
1866
0
}
1867
1868
/* x[0:m] and y[0:n] are digit vectors, LSD first, m >= n required.  x[0:n]
1869
 * is modified in place, by subtracting y from it.  Borrows are propagated as
1870
 * far as x[m-1], and the remaining borrow (0 or 1) is returned.
1871
 */
1872
static digit
1873
v_isub(digit *x, Py_ssize_t m, digit *y, Py_ssize_t n)
1874
0
{
1875
0
    Py_ssize_t i;
1876
0
    digit borrow = 0;
1877
1878
0
    assert(m >= n);
1879
0
    for (i = 0; i < n; ++i) {
1880
0
        borrow = x[i] - y[i] - borrow;
1881
0
        x[i] = borrow & PyLong_MASK;
1882
0
        borrow >>= PyLong_SHIFT;
1883
0
        borrow &= 1;            /* keep only 1 sign bit */
1884
0
    }
1885
0
    for (; borrow && i < m; ++i) {
1886
0
        borrow = x[i] - borrow;
1887
0
        x[i] = borrow & PyLong_MASK;
1888
0
        borrow >>= PyLong_SHIFT;
1889
0
        borrow &= 1;
1890
0
    }
1891
0
    return borrow;
1892
0
}
1893
1894
/* Shift digit vector a[0:m] d bits left, with 0 <= d < PyLong_SHIFT.  Put
1895
 * result in z[0:m], and return the d bits shifted out of the top.
1896
 */
1897
static digit
1898
v_lshift(digit *z, digit *a, Py_ssize_t m, int d)
1899
0
{
1900
0
    Py_ssize_t i;
1901
0
    digit carry = 0;
1902
1903
0
    assert(0 <= d && d < PyLong_SHIFT);
1904
0
    for (i=0; i < m; i++) {
1905
0
        twodigits acc = (twodigits)a[i] << d | carry;
1906
0
        z[i] = (digit)acc & PyLong_MASK;
1907
0
        carry = (digit)(acc >> PyLong_SHIFT);
1908
0
    }
1909
0
    return carry;
1910
0
}
1911
1912
/* Shift digit vector a[0:m] d bits right, with 0 <= d < PyLong_SHIFT.  Put
1913
 * result in z[0:m], and return the d bits shifted out of the bottom.
1914
 */
1915
static digit
1916
v_rshift(digit *z, digit *a, Py_ssize_t m, int d)
1917
0
{
1918
0
    Py_ssize_t i;
1919
0
    digit carry = 0;
1920
0
    digit mask = ((digit)1 << d) - 1U;
1921
1922
0
    assert(0 <= d && d < PyLong_SHIFT);
1923
0
    for (i=m; i-- > 0;) {
1924
0
        twodigits acc = (twodigits)carry << PyLong_SHIFT | a[i];
1925
0
        carry = (digit)acc & mask;
1926
0
        z[i] = (digit)(acc >> d);
1927
0
    }
1928
0
    return carry;
1929
0
}
1930
1931
/* Divide long pin, w/ size digits, by non-zero digit n, storing quotient
1932
   in pout, and returning the remainder.  pin and pout point at the LSD.
1933
   It's OK for pin == pout on entry, which saves oodles of mallocs/frees in
1934
   _PyLong_Format, but that should be done with great care since ints are
1935
   immutable.
1936
1937
   This version of the code can be 20% faster than the pre-2022 version
1938
   on todays compilers on architectures like amd64.  It evolved from Mark
1939
   Dickinson observing that a 128:64 divide instruction was always being
1940
   generated by the compiler despite us working with 30-bit digit values.
1941
   See the thread for full context:
1942
1943
     https://mail.python.org/archives/list/python-dev@python.org/thread/ZICIMX5VFCX4IOFH5NUPVHCUJCQ4Q7QM/#NEUNFZU3TQU4CPTYZNF3WCN7DOJBBTK5
1944
1945
   If you ever want to change this code, pay attention to performance using
1946
   different compilers, optimization levels, and cpu architectures. Beware of
1947
   PGO/FDO builds doing value specialization such as a fast path for //10. :)
1948
1949
   Verify that 17 isn't specialized and this works as a quick test:
1950
     python -m timeit -s 'x = 10**1000; r=x//10; assert r == 10**999, r' 'x//17'
1951
*/
1952
static digit
1953
inplace_divrem1(digit *pout, digit *pin, Py_ssize_t size, digit n)
1954
359
{
1955
359
    digit remainder = 0;
1956
1957
359
    assert(n > 0 && n <= PyLong_MASK);
1958
5.55k
    while (--size >= 0) {
1959
5.19k
        twodigits dividend;
1960
5.19k
        dividend = ((twodigits)remainder << PyLong_SHIFT) | pin[size];
1961
5.19k
        digit quotient;
1962
5.19k
        quotient = (digit)(dividend / n);
1963
5.19k
        remainder = dividend % n;
1964
5.19k
        pout[size] = quotient;
1965
5.19k
    }
1966
359
    return remainder;
1967
359
}
1968
1969
1970
/* Divide an integer by a digit, returning both the quotient
1971
   (as function result) and the remainder (through *prem).
1972
   The sign of a is ignored; n should not be zero. */
1973
1974
static PyLongObject *
1975
divrem1(PyLongObject *a, digit n, digit *prem)
1976
359
{
1977
359
    const Py_ssize_t size = _PyLong_DigitCount(a);
1978
359
    PyLongObject *z;
1979
1980
359
    assert(n > 0 && n <= PyLong_MASK);
1981
359
    z = long_alloc(size);
1982
359
    if (z == NULL)
1983
0
        return NULL;
1984
359
    *prem = inplace_divrem1(z->long_value.ob_digit, a->long_value.ob_digit, size, n);
1985
359
    return long_normalize(z);
1986
359
}
1987
1988
/* Remainder of long pin, w/ size digits, by non-zero digit n,
1989
   returning the remainder. pin points at the LSD. */
1990
1991
static digit
1992
inplace_rem1(digit *pin, Py_ssize_t size, digit n)
1993
61
{
1994
61
    twodigits rem = 0;
1995
1996
61
    assert(n > 0 && n <= PyLong_MASK);
1997
183
    while (--size >= 0)
1998
122
        rem = ((rem << PyLong_SHIFT) | pin[size]) % n;
1999
61
    return (digit)rem;
2000
61
}
2001
2002
/* Get the remainder of an integer divided by a digit, returning
2003
   the remainder as the result of the function. The sign of a is
2004
   ignored; n should not be zero. */
2005
2006
static PyLongObject *
2007
rem1(PyLongObject *a, digit n)
2008
61
{
2009
61
    const Py_ssize_t size = _PyLong_DigitCount(a);
2010
2011
61
    assert(n > 0 && n <= PyLong_MASK);
2012
61
    return (PyLongObject *)PyLong_FromLong(
2013
61
        (long)inplace_rem1(a->long_value.ob_digit, size, n)
2014
61
    );
2015
61
}
2016
2017
#ifdef WITH_PYLONG_MODULE
2018
/* asymptotically faster long_to_decimal_string, using _pylong.py */
2019
static int
2020
pylong_int_to_decimal_string(PyObject *aa,
2021
                             PyObject **p_output,
2022
                             _PyUnicodeWriter *writer,
2023
                             PyBytesWriter *bytes_writer,
2024
                             char **bytes_str)
2025
0
{
2026
0
    PyObject *s = NULL;
2027
0
    PyObject *mod = PyImport_ImportModule("_pylong");
2028
0
    if (mod == NULL) {
2029
0
        return -1;
2030
0
    }
2031
0
    s = PyObject_CallMethod(mod, "int_to_decimal_string", "O", aa);
2032
0
    if (s == NULL) {
2033
0
        goto error;
2034
0
    }
2035
0
    if (!PyUnicode_Check(s)) {
2036
0
        PyErr_SetString(PyExc_TypeError,
2037
0
                        "_pylong.int_to_decimal_string did not return a str");
2038
0
        goto error;
2039
0
    }
2040
0
    if (writer) {
2041
0
        Py_ssize_t size = PyUnicode_GET_LENGTH(s);
2042
0
        if (_PyUnicodeWriter_Prepare(writer, size, '9') == -1) {
2043
0
            goto error;
2044
0
        }
2045
0
        if (_PyUnicodeWriter_WriteStr(writer, s) < 0) {
2046
0
            goto error;
2047
0
        }
2048
0
        goto success;
2049
0
    }
2050
0
    else if (bytes_writer) {
2051
0
        Py_ssize_t size = PyUnicode_GET_LENGTH(s);
2052
0
        const void *data = PyUnicode_DATA(s);
2053
0
        int kind = PyUnicode_KIND(s);
2054
0
        *bytes_str = PyBytesWriter_GrowAndUpdatePointer(bytes_writer, size,
2055
0
                                                        *bytes_str);
2056
0
        if (*bytes_str == NULL) {
2057
0
            goto error;
2058
0
        }
2059
0
        char *p = *bytes_str;
2060
0
        for (Py_ssize_t i=0; i < size; i++) {
2061
0
            Py_UCS4 ch = PyUnicode_READ(kind, data, i);
2062
0
            *p++ = (char) ch;
2063
0
        }
2064
0
        (*bytes_str) = p;
2065
0
        goto success;
2066
0
    }
2067
0
    else {
2068
0
        *p_output = Py_NewRef(s);
2069
0
        goto success;
2070
0
    }
2071
2072
0
error:
2073
0
        Py_DECREF(mod);
2074
0
        Py_XDECREF(s);
2075
0
        return -1;
2076
2077
0
success:
2078
0
        Py_DECREF(mod);
2079
0
        Py_DECREF(s);
2080
0
        return 0;
2081
0
}
2082
#endif /* WITH_PYLONG_MODULE */
2083
2084
/* Convert an integer to a base 10 string.  Returns a new non-shared
2085
   string.  (Return value is non-shared so that callers can modify the
2086
   returned value if necessary.) */
2087
2088
static int
2089
long_to_decimal_string_internal(PyObject *aa,
2090
                                PyObject **p_output,
2091
                                _PyUnicodeWriter *writer,
2092
                                PyBytesWriter *bytes_writer,
2093
                                char **bytes_str)
2094
13.3M
{
2095
13.3M
    PyLongObject *scratch, *a;
2096
13.3M
    PyObject *str = NULL;
2097
13.3M
    Py_ssize_t size, strlen, size_a, i, j;
2098
13.3M
    digit *pout, *pin, rem, tenpow;
2099
13.3M
    int negative;
2100
13.3M
    int d;
2101
2102
    // writer or bytes_writer can be used, but not both at the same time.
2103
13.3M
    assert(writer == NULL || bytes_writer == NULL);
2104
2105
13.3M
    a = (PyLongObject *)aa;
2106
13.3M
    if (a == NULL || !PyLong_Check(a)) {
2107
0
        PyErr_BadInternalCall();
2108
0
        return -1;
2109
0
    }
2110
13.3M
    size_a = _PyLong_DigitCount(a);
2111
13.3M
    negative = _PyLong_IsNegative(a);
2112
2113
    /* quick and dirty pre-check for overflowing the decimal digit limit,
2114
       based on the inequality 10/3 >= log2(10)
2115
2116
       explanation in https://github.com/python/cpython/pull/96537
2117
    */
2118
13.3M
    if (size_a >= 10 * _PY_LONG_MAX_STR_DIGITS_THRESHOLD
2119
13.3M
                  / (3 * PyLong_SHIFT) + 2) {
2120
304
        PyInterpreterState *interp = _PyInterpreterState_GET();
2121
304
        int max_str_digits = interp->long_state.max_str_digits;
2122
304
        if ((max_str_digits > 0) &&
2123
304
            (max_str_digits / (3 * PyLong_SHIFT) <= (size_a - 11) / 10)) {
2124
1
            PyErr_Format(PyExc_ValueError, _MAX_STR_DIGITS_ERROR_FMT_TO_STR,
2125
1
                         max_str_digits);
2126
1
            return -1;
2127
1
        }
2128
304
    }
2129
2130
13.3M
#if WITH_PYLONG_MODULE
2131
13.3M
    if (size_a > 1000) {
2132
        /* Switch to _pylong.int_to_decimal_string(). */
2133
0
        return pylong_int_to_decimal_string(aa,
2134
0
                                         p_output,
2135
0
                                         writer,
2136
0
                                         bytes_writer,
2137
0
                                         bytes_str);
2138
0
    }
2139
13.3M
#endif
2140
2141
    /* quick and dirty upper bound for the number of digits
2142
       required to express a in base _PyLong_DECIMAL_BASE:
2143
2144
         #digits = 1 + floor(log2(a) / log2(_PyLong_DECIMAL_BASE))
2145
2146
       But log2(a) < size_a * PyLong_SHIFT, and
2147
       log2(_PyLong_DECIMAL_BASE) = log2(10) * _PyLong_DECIMAL_SHIFT
2148
                                  > 3.3 * _PyLong_DECIMAL_SHIFT
2149
2150
         size_a * PyLong_SHIFT / (3.3 * _PyLong_DECIMAL_SHIFT) =
2151
             size_a + size_a / d < size_a + size_a / floor(d),
2152
       where d = (3.3 * _PyLong_DECIMAL_SHIFT) /
2153
                 (PyLong_SHIFT - 3.3 * _PyLong_DECIMAL_SHIFT)
2154
    */
2155
13.3M
    d = (33 * _PyLong_DECIMAL_SHIFT) /
2156
13.3M
        (10 * PyLong_SHIFT - 33 * _PyLong_DECIMAL_SHIFT);
2157
13.3M
    assert(size_a < PY_SSIZE_T_MAX/2);
2158
13.3M
    size = 1 + size_a + size_a / d;
2159
13.3M
    scratch = long_alloc(size);
2160
13.3M
    if (scratch == NULL)
2161
0
        return -1;
2162
2163
    /* convert array of base _PyLong_BASE digits in pin to an array of
2164
       base _PyLong_DECIMAL_BASE digits in pout, following Knuth (TAOCP,
2165
       Volume 2 (3rd edn), section 4.4, Method 1b). */
2166
13.3M
    pin = a->long_value.ob_digit;
2167
13.3M
    pout = scratch->long_value.ob_digit;
2168
13.3M
    size = 0;
2169
26.7M
    for (i = size_a; --i >= 0; ) {
2170
13.3M
        digit hi = pin[i];
2171
15.1M
        for (j = 0; j < size; j++) {
2172
1.84M
            twodigits z = (twodigits)pout[j] << PyLong_SHIFT | hi;
2173
1.84M
            hi = (digit)(z / _PyLong_DECIMAL_BASE);
2174
1.84M
            pout[j] = (digit)(z - (twodigits)hi *
2175
1.84M
                              _PyLong_DECIMAL_BASE);
2176
1.84M
        }
2177
26.6M
        while (hi) {
2178
13.3M
            pout[size++] = hi % _PyLong_DECIMAL_BASE;
2179
13.3M
            hi /= _PyLong_DECIMAL_BASE;
2180
13.3M
        }
2181
        /* check for keyboard interrupt */
2182
13.3M
        SIGCHECK({
2183
13.3M
                Py_DECREF(scratch);
2184
13.3M
                return -1;
2185
13.3M
            });
2186
13.3M
    }
2187
    /* pout should have at least one digit, so that the case when a = 0
2188
       works correctly */
2189
13.3M
    if (size == 0)
2190
98.9k
        pout[size++] = 0;
2191
2192
    /* calculate exact length of output string, and allocate */
2193
13.3M
    strlen = negative + 1 + (size - 1) * _PyLong_DECIMAL_SHIFT;
2194
13.3M
    tenpow = 10;
2195
13.3M
    rem = pout[size-1];
2196
52.9M
    while (rem >= tenpow) {
2197
39.5M
        tenpow *= 10;
2198
39.5M
        strlen++;
2199
39.5M
    }
2200
13.3M
    if (strlen > _PY_LONG_MAX_STR_DIGITS_THRESHOLD) {
2201
336
        PyInterpreterState *interp = _PyInterpreterState_GET();
2202
336
        int max_str_digits = interp->long_state.max_str_digits;
2203
336
        Py_ssize_t strlen_nosign = strlen - negative;
2204
336
        if ((max_str_digits > 0) && (strlen_nosign > max_str_digits)) {
2205
1
            Py_DECREF(scratch);
2206
1
            PyErr_Format(PyExc_ValueError, _MAX_STR_DIGITS_ERROR_FMT_TO_STR,
2207
1
                         max_str_digits);
2208
1
            return -1;
2209
1
        }
2210
336
    }
2211
13.3M
    if (writer) {
2212
8.73M
        if (_PyUnicodeWriter_Prepare(writer, strlen, '9') == -1) {
2213
0
            Py_DECREF(scratch);
2214
0
            return -1;
2215
0
        }
2216
8.73M
    }
2217
4.65M
    else if (bytes_writer) {
2218
0
        *bytes_str = PyBytesWriter_GrowAndUpdatePointer(bytes_writer, strlen,
2219
0
                                                        *bytes_str);
2220
0
        if (*bytes_str == NULL) {
2221
0
            Py_DECREF(scratch);
2222
0
            return -1;
2223
0
        }
2224
0
    }
2225
4.65M
    else {
2226
4.65M
        str = PyUnicode_New(strlen, '9');
2227
4.65M
        if (str == NULL) {
2228
0
            Py_DECREF(scratch);
2229
0
            return -1;
2230
0
        }
2231
4.65M
    }
2232
2233
13.3M
#define WRITE_DIGITS(p)                                               \
2234
13.3M
    do {                                                              \
2235
        /* pout[0] through pout[size-2] contribute exactly            \
2236
           _PyLong_DECIMAL_SHIFT digits each */                       \
2237
13.4M
        for (i=0; i < size - 1; i++) {                                \
2238
49.7k
            rem = pout[i];                                            \
2239
497k
            for (j = 0; j < _PyLong_DECIMAL_SHIFT; j++) {             \
2240
447k
                *--p = '0' + rem % 10;                                \
2241
447k
                rem /= 10;                                            \
2242
447k
            }                                                         \
2243
49.7k
        }                                                             \
2244
        /* pout[size-1]: always produce at least one decimal digit */ \
2245
13.3M
        rem = pout[i];                                                \
2246
52.9M
        do {                                                          \
2247
52.9M
            *--p = '0' + rem % 10;                                    \
2248
52.9M
            rem /= 10;                                                \
2249
52.9M
        } while (rem != 0);                                           \
2250
13.3M
                                                                      \
2251
        /* and sign */                                                \
2252
13.3M
        if (negative)                                                 \
2253
13.3M
            *--p = '-';                                               \
2254
13.3M
    } while (0)
2255
2256
13.3M
#define WRITE_UNICODE_DIGITS(TYPE)                                    \
2257
13.3M
    do {                                                              \
2258
13.3M
        if (writer)                                                   \
2259
13.3M
            p = (TYPE*)PyUnicode_DATA(writer->buffer) + writer->pos + strlen; \
2260
13.3M
        else                                                          \
2261
13.3M
            p = (TYPE*)PyUnicode_DATA(str) + strlen;                  \
2262
13.3M
                                                                      \
2263
13.3M
        WRITE_DIGITS(p);                                              \
2264
13.3M
                                                                      \
2265
        /* check we've counted correctly */                           \
2266
13.3M
        if (writer)                                                   \
2267
13.3M
            assert(p == ((TYPE*)PyUnicode_DATA(writer->buffer) + writer->pos)); \
2268
13.3M
        else                                                          \
2269
13.3M
            assert(p == (TYPE*)PyUnicode_DATA(str));                  \
2270
13.3M
    } while (0)
2271
2272
    /* fill the string right-to-left */
2273
13.3M
    if (bytes_writer) {
2274
0
        char *p = *bytes_str + strlen;
2275
0
        WRITE_DIGITS(p);
2276
0
        assert(p == *bytes_str);
2277
0
    }
2278
13.3M
    else {
2279
13.3M
        int kind = writer ? writer->kind : PyUnicode_KIND(str);
2280
13.3M
        if (kind == PyUnicode_1BYTE_KIND) {
2281
13.3M
            Py_UCS1 *p;
2282
13.3M
            WRITE_UNICODE_DIGITS(Py_UCS1);
2283
13.3M
        }
2284
632
        else if (kind == PyUnicode_2BYTE_KIND) {
2285
432
            Py_UCS2 *p;
2286
432
            WRITE_UNICODE_DIGITS(Py_UCS2);
2287
432
        }
2288
200
        else {
2289
200
            assert (kind == PyUnicode_4BYTE_KIND);
2290
200
            Py_UCS4 *p;
2291
200
            WRITE_UNICODE_DIGITS(Py_UCS4);
2292
200
        }
2293
13.3M
    }
2294
2295
13.3M
#undef WRITE_DIGITS
2296
13.3M
#undef WRITE_UNICODE_DIGITS
2297
2298
13.3M
    _Py_DECREF_INT(scratch);
2299
13.3M
    if (writer) {
2300
8.73M
        writer->pos += strlen;
2301
8.73M
    }
2302
4.65M
    else if (bytes_writer) {
2303
0
        (*bytes_str) += strlen;
2304
0
    }
2305
4.65M
    else {
2306
4.65M
        assert(_PyUnicode_CheckConsistency(str, 1));
2307
4.65M
        *p_output = (PyObject *)str;
2308
4.65M
    }
2309
13.3M
    return 0;
2310
13.3M
}
2311
2312
static PyObject *
2313
long_to_decimal_string(PyObject *aa)
2314
177k
{
2315
177k
    PyObject *v;
2316
177k
    if (long_to_decimal_string_internal(aa, &v, NULL, NULL, NULL) == -1)
2317
2
        return NULL;
2318
177k
    return v;
2319
177k
}
2320
2321
/* Convert an int object to a string, using a given conversion base,
2322
   which should be one of 2, 8 or 16.  Return a string object.
2323
   If base is 2, 8 or 16, add the proper prefix '0b', '0o' or '0x'
2324
   if alternate is nonzero. */
2325
2326
static int
2327
long_format_binary(PyObject *aa, int base, int alternate,
2328
                   PyObject **p_output, _PyUnicodeWriter *writer,
2329
                   PyBytesWriter *bytes_writer, char **bytes_str)
2330
4.13M
{
2331
4.13M
    PyLongObject *a = (PyLongObject *)aa;
2332
4.13M
    PyObject *v = NULL;
2333
4.13M
    Py_ssize_t sz;
2334
4.13M
    Py_ssize_t size_a;
2335
4.13M
    int negative;
2336
4.13M
    int bits;
2337
2338
4.13M
    assert(base == 2 || base == 8 || base == 16);
2339
    // writer or bytes_writer can be used, but not both at the same time.
2340
4.13M
    assert(writer == NULL || bytes_writer == NULL);
2341
4.13M
    if (a == NULL || !PyLong_Check(a)) {
2342
0
        PyErr_BadInternalCall();
2343
0
        return -1;
2344
0
    }
2345
4.13M
    size_a = _PyLong_DigitCount(a);
2346
4.13M
    negative = _PyLong_IsNegative(a);
2347
2348
    /* Compute a rough upper bound for the length of the string */
2349
4.13M
    switch (base) {
2350
4.13M
    case 16:
2351
4.13M
        bits = 4;
2352
4.13M
        break;
2353
0
    case 8:
2354
0
        bits = 3;
2355
0
        break;
2356
0
    case 2:
2357
0
        bits = 1;
2358
0
        break;
2359
0
    default:
2360
0
        Py_UNREACHABLE();
2361
4.13M
    }
2362
2363
    /* Compute exact length 'sz' of output string. */
2364
4.13M
    if (size_a == 0) {
2365
4.22k
        sz = 1;
2366
4.22k
    }
2367
4.13M
    else {
2368
4.13M
        Py_ssize_t size_a_in_bits;
2369
        /* Ensure overflow doesn't occur during computation of sz. */
2370
4.13M
        if (size_a > (PY_SSIZE_T_MAX - 3) / PyLong_SHIFT) {
2371
0
            PyErr_SetString(PyExc_OverflowError,
2372
0
                            "int too large to format");
2373
0
            return -1;
2374
0
        }
2375
4.13M
        size_a_in_bits = (size_a - 1) * PyLong_SHIFT +
2376
4.13M
                         bit_length_digit(a->long_value.ob_digit[size_a - 1]);
2377
        /* Allow 1 character for a '-' sign. */
2378
4.13M
        sz = negative + (size_a_in_bits + (bits - 1)) / bits;
2379
4.13M
    }
2380
4.13M
    if (alternate) {
2381
        /* 2 characters for prefix  */
2382
4.13M
        sz += 2;
2383
4.13M
    }
2384
2385
4.13M
    if (writer) {
2386
270
        if (_PyUnicodeWriter_Prepare(writer, sz, 'x') == -1)
2387
0
            return -1;
2388
270
    }
2389
4.13M
    else if (bytes_writer) {
2390
0
        *bytes_str = PyBytesWriter_GrowAndUpdatePointer(bytes_writer, sz,
2391
0
                                                        *bytes_str);
2392
0
        if (*bytes_str == NULL)
2393
0
            return -1;
2394
0
    }
2395
4.13M
    else {
2396
4.13M
        v = PyUnicode_New(sz, 'x');
2397
4.13M
        if (v == NULL)
2398
0
            return -1;
2399
4.13M
    }
2400
2401
4.13M
#define WRITE_DIGITS(p)                                                 \
2402
4.13M
    do {                                                                \
2403
4.13M
        if (size_a == 0) {                                              \
2404
4.22k
            *--p = '0';                                                 \
2405
4.22k
        }                                                               \
2406
4.13M
        else {                                                          \
2407
            /* JRH: special case for power-of-2 bases */                \
2408
4.13M
            twodigits accum = 0;                                        \
2409
4.13M
            int accumbits = 0;   /* # of bits in accum */               \
2410
4.13M
            Py_ssize_t i;                                               \
2411
8.27M
            for (i = 0; i < size_a; ++i) {                              \
2412
4.13M
                accum |= (twodigits)a->long_value.ob_digit[i] << accumbits;        \
2413
4.13M
                accumbits += PyLong_SHIFT;                              \
2414
4.13M
                assert(accumbits >= bits);                              \
2415
23.9M
                do {                                                    \
2416
23.9M
                    char cdigit;                                        \
2417
23.9M
                    cdigit = (char)(accum & (base - 1));                \
2418
23.9M
                    cdigit += (cdigit < 10) ? '0' : 'a'-10;             \
2419
23.9M
                    *--p = cdigit;                                      \
2420
23.9M
                    accumbits -= bits;                                  \
2421
23.9M
                    accum >>= bits;                                     \
2422
23.9M
                } while (i < size_a-1 ? accumbits >= bits : accum > 0); \
2423
4.13M
            }                                                           \
2424
4.13M
        }                                                               \
2425
4.13M
                                                                        \
2426
4.13M
        if (alternate) {                                                \
2427
4.13M
            if (base == 16)                                             \
2428
4.13M
                *--p = 'x';                                             \
2429
4.13M
            else if (base == 8)                                         \
2430
0
                *--p = 'o';                                             \
2431
0
            else /* (base == 2) */                                      \
2432
0
                *--p = 'b';                                             \
2433
4.13M
            *--p = '0';                                                 \
2434
4.13M
        }                                                               \
2435
4.13M
        if (negative)                                                   \
2436
4.13M
            *--p = '-';                                                 \
2437
4.13M
    } while (0)
2438
2439
4.13M
#define WRITE_UNICODE_DIGITS(TYPE)                                      \
2440
4.13M
    do {                                                                \
2441
4.13M
        if (writer)                                                     \
2442
4.13M
            p = (TYPE*)PyUnicode_DATA(writer->buffer) + writer->pos + sz; \
2443
4.13M
        else                                                            \
2444
4.13M
            p = (TYPE*)PyUnicode_DATA(v) + sz;                          \
2445
4.13M
                                                                        \
2446
4.13M
        WRITE_DIGITS(p);                                                \
2447
4.13M
                                                                        \
2448
4.13M
        if (writer)                                                     \
2449
4.13M
            assert(p == ((TYPE*)PyUnicode_DATA(writer->buffer) + writer->pos)); \
2450
4.13M
        else                                                            \
2451
4.13M
            assert(p == (TYPE*)PyUnicode_DATA(v));                      \
2452
4.13M
    } while (0)
2453
2454
4.13M
    if (bytes_writer) {
2455
0
        char *p = *bytes_str + sz;
2456
0
        WRITE_DIGITS(p);
2457
0
        assert(p == *bytes_str);
2458
0
    }
2459
4.13M
    else {
2460
4.13M
        int kind = writer ? writer->kind : PyUnicode_KIND(v);
2461
4.13M
        if (kind == PyUnicode_1BYTE_KIND) {
2462
4.13M
            Py_UCS1 *p;
2463
4.13M
            WRITE_UNICODE_DIGITS(Py_UCS1);
2464
4.13M
        }
2465
0
        else if (kind == PyUnicode_2BYTE_KIND) {
2466
0
            Py_UCS2 *p;
2467
0
            WRITE_UNICODE_DIGITS(Py_UCS2);
2468
0
        }
2469
0
        else {
2470
0
            assert (kind == PyUnicode_4BYTE_KIND);
2471
0
            Py_UCS4 *p;
2472
0
            WRITE_UNICODE_DIGITS(Py_UCS4);
2473
0
        }
2474
4.13M
    }
2475
2476
4.13M
#undef WRITE_DIGITS
2477
4.13M
#undef WRITE_UNICODE_DIGITS
2478
2479
4.13M
    if (writer) {
2480
270
        writer->pos += sz;
2481
270
    }
2482
4.13M
    else if (bytes_writer) {
2483
0
        (*bytes_str) += sz;
2484
0
    }
2485
4.13M
    else {
2486
4.13M
        assert(_PyUnicode_CheckConsistency(v, 1));
2487
4.13M
        *p_output = v;
2488
4.13M
    }
2489
4.13M
    return 0;
2490
4.13M
}
2491
2492
PyObject *
2493
_PyLong_Format(PyObject *obj, int base)
2494
8.61M
{
2495
8.61M
    PyObject *str;
2496
8.61M
    int err;
2497
8.61M
    if (base == 10)
2498
4.47M
        err = long_to_decimal_string_internal(obj, &str, NULL, NULL, NULL);
2499
4.13M
    else
2500
4.13M
        err = long_format_binary(obj, base, 1, &str, NULL, NULL, NULL);
2501
8.61M
    if (err == -1)
2502
0
        return NULL;
2503
8.61M
    return str;
2504
8.61M
}
2505
2506
int
2507
_PyLong_FormatWriter(_PyUnicodeWriter *writer,
2508
                     PyObject *obj,
2509
                     int base, int alternate)
2510
8.73M
{
2511
8.73M
    if (base == 10)
2512
8.73M
        return long_to_decimal_string_internal(obj, NULL, writer,
2513
8.73M
                                               NULL, NULL);
2514
270
    else
2515
270
        return long_format_binary(obj, base, alternate, NULL, writer,
2516
270
                                  NULL, NULL);
2517
8.73M
}
2518
2519
char*
2520
_PyLong_FormatBytesWriter(PyBytesWriter *writer, char *str,
2521
                          PyObject *obj,
2522
                          int base, int alternate)
2523
0
{
2524
0
    char *str2;
2525
0
    int res;
2526
0
    str2 = str;
2527
0
    if (base == 10)
2528
0
        res = long_to_decimal_string_internal(obj, NULL, NULL,
2529
0
                                              writer, &str2);
2530
0
    else
2531
0
        res = long_format_binary(obj, base, alternate, NULL, NULL,
2532
0
                                 writer, &str2);
2533
0
    if (res < 0)
2534
0
        return NULL;
2535
0
    assert(str2 != NULL);
2536
0
    return str2;
2537
0
}
2538
2539
/* Table of digit values for 8-bit string -> integer conversion.
2540
 * '0' maps to 0, ..., '9' maps to 9.
2541
 * 'a' and 'A' map to 10, ..., 'z' and 'Z' map to 35.
2542
 * All other indices map to 37.
2543
 * Note that when converting a base B string, a char c is a legitimate
2544
 * base B digit iff _PyLong_DigitValue[Py_CHARPyLong_MASK(c)] < B.
2545
 */
2546
unsigned char _PyLong_DigitValue[256] = {
2547
    37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37,
2548
    37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37,
2549
    37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37,
2550
    0,  1,  2,  3,  4,  5,  6,  7,  8,  9,  37, 37, 37, 37, 37, 37,
2551
    37, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24,
2552
    25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 37, 37, 37, 37, 37,
2553
    37, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24,
2554
    25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 37, 37, 37, 37, 37,
2555
    37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37,
2556
    37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37,
2557
    37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37,
2558
    37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37,
2559
    37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37,
2560
    37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37,
2561
    37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37,
2562
    37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37, 37,
2563
};
2564
2565
/* `start` and `end` point to the start and end of a string of base `base`
2566
 * digits.  base is a power of 2 (2, 4, 8, 16, or 32). An unnormalized int is
2567
 * returned in *res. The string should be already validated by the caller and
2568
 * consists only of valid digit characters and underscores. `digits` gives the
2569
 * number of digit characters.
2570
 *
2571
 * The point to this routine is that it takes time linear in the
2572
 * number of string characters.
2573
 *
2574
 * Return values:
2575
 *   -1 on syntax error (exception needs to be set, *res is untouched)
2576
 *   0 else (exception may be set, in that case *res is set to NULL)
2577
 */
2578
static int
2579
long_from_binary_base(const char *start, const char *end, Py_ssize_t digits, int base, PyLongObject **res)
2580
2.47M
{
2581
2.47M
    const char *p;
2582
2.47M
    int bits_per_char;
2583
2.47M
    Py_ssize_t n;
2584
2.47M
    PyLongObject *z;
2585
2.47M
    twodigits accum;
2586
2.47M
    int bits_in_accum;
2587
2.47M
    digit *pdigit;
2588
2589
2.47M
    assert(base >= 2 && base <= 32 && (base & (base - 1)) == 0);
2590
2.47M
    n = base;
2591
9.76M
    for (bits_per_char = -1; n; ++bits_per_char) {
2592
7.28M
        n >>= 1;
2593
7.28M
    }
2594
2595
    /* n <- the number of Python digits needed,
2596
            = ceiling((digits * bits_per_char) / PyLong_SHIFT). */
2597
2.47M
    if (digits > (PY_SSIZE_T_MAX - (PyLong_SHIFT - 1)) / bits_per_char) {
2598
0
        PyErr_SetString(PyExc_ValueError,
2599
0
                        "int string too large to convert");
2600
0
        *res = NULL;
2601
0
        return 0;
2602
0
    }
2603
2.47M
    n = (digits * bits_per_char + PyLong_SHIFT - 1) / PyLong_SHIFT;
2604
2.47M
    z = long_alloc(n);
2605
2.47M
    if (z == NULL) {
2606
0
        *res = NULL;
2607
0
        return 0;
2608
0
    }
2609
    /* Read string from right, and fill in int from left; i.e.,
2610
     * from least to most significant in both.
2611
     */
2612
2.47M
    accum = 0;
2613
2.47M
    bits_in_accum = 0;
2614
2.47M
    pdigit = z->long_value.ob_digit;
2615
2.47M
    p = end;
2616
66.4M
    while (--p >= start) {
2617
64.0M
        int k;
2618
64.0M
        if (*p == '_') {
2619
475
            continue;
2620
475
        }
2621
64.0M
        k = (int)_PyLong_DigitValue[Py_CHARMASK(*p)];
2622
64.0M
        assert(k >= 0 && k < base);
2623
64.0M
        accum |= (twodigits)k << bits_in_accum;
2624
64.0M
        bits_in_accum += bits_per_char;
2625
64.0M
        if (bits_in_accum >= PyLong_SHIFT) {
2626
3.21M
            *pdigit++ = (digit)(accum & PyLong_MASK);
2627
3.21M
            assert(pdigit - z->long_value.ob_digit <= n);
2628
3.21M
            accum >>= PyLong_SHIFT;
2629
3.21M
            bits_in_accum -= PyLong_SHIFT;
2630
3.21M
            assert(bits_in_accum < PyLong_SHIFT);
2631
3.21M
        }
2632
64.0M
    }
2633
2.47M
    if (bits_in_accum) {
2634
2.47M
        assert(bits_in_accum <= PyLong_SHIFT);
2635
2.47M
        *pdigit++ = (digit)accum;
2636
2.47M
        assert(pdigit - z->long_value.ob_digit <= n);
2637
2.47M
    }
2638
2.47M
    while (pdigit - z->long_value.ob_digit < n)
2639
0
        *pdigit++ = 0;
2640
2.47M
    *res = z;
2641
2.47M
    return 0;
2642
2.47M
}
2643
2644
#ifdef WITH_PYLONG_MODULE
2645
/* asymptotically faster str-to-long conversion for base 10, using _pylong.py */
2646
static int
2647
pylong_int_from_string(const char *start, const char *end, PyLongObject **res)
2648
0
{
2649
0
    PyObject *mod = PyImport_ImportModule("_pylong");
2650
0
    if (mod == NULL) {
2651
0
        goto error;
2652
0
    }
2653
0
    PyObject *s = PyUnicode_FromStringAndSize(start, end-start);
2654
0
    if (s == NULL) {
2655
0
        Py_DECREF(mod);
2656
0
        goto error;
2657
0
    }
2658
0
    PyObject *result = PyObject_CallMethod(mod, "int_from_string", "O", s);
2659
0
    Py_DECREF(s);
2660
0
    Py_DECREF(mod);
2661
0
    if (result == NULL) {
2662
0
        goto error;
2663
0
    }
2664
0
    if (!PyLong_Check(result)) {
2665
0
        Py_DECREF(result);
2666
0
        PyErr_SetString(PyExc_TypeError,
2667
0
                        "_pylong.int_from_string did not return an int");
2668
0
        goto error;
2669
0
    }
2670
0
    *res = (PyLongObject *)result;
2671
0
    return 0;
2672
0
error:
2673
0
    *res = NULL;
2674
0
    return 0;  // See the long_from_string_base() API comment.
2675
0
}
2676
#endif /* WITH_PYLONG_MODULE */
2677
2678
/***
2679
long_from_non_binary_base: parameters and return values are the same as
2680
long_from_binary_base.
2681
2682
Binary bases can be converted in time linear in the number of digits, because
2683
Python's representation base is binary.  Other bases (including decimal!) use
2684
the simple quadratic-time algorithm below, complicated by some speed tricks.
2685
2686
First some math:  the largest integer that can be expressed in N base-B digits
2687
is B**N-1.  Consequently, if we have an N-digit input in base B, the worst-
2688
case number of Python digits needed to hold it is the smallest integer n s.t.
2689
2690
    BASE**n-1 >= B**N-1  [or, adding 1 to both sides]
2691
    BASE**n >= B**N      [taking logs to base BASE]
2692
    n >= log(B**N)/log(BASE) = N * log(B)/log(BASE)
2693
2694
The static array log_base_BASE[base] == log(base)/log(BASE) so we can compute
2695
this quickly.  A Python int with that much space is reserved near the start,
2696
and the result is computed into it.
2697
2698
The input string is actually treated as being in base base**i (i.e., i digits
2699
are processed at a time), where two more static arrays hold:
2700
2701
    convwidth_base[base] = the largest integer i such that base**i <= BASE
2702
    convmultmax_base[base] = base ** convwidth_base[base]
2703
2704
The first of these is the largest i such that i consecutive input digits
2705
must fit in a single Python digit.  The second is effectively the input
2706
base we're really using.
2707
2708
Viewing the input as a sequence <c0, c1, ..., c_n-1> of digits in base
2709
convmultmax_base[base], the result is "simply"
2710
2711
   (((c0*B + c1)*B + c2)*B + c3)*B + ... ))) + c_n-1
2712
2713
where B = convmultmax_base[base].
2714
2715
Error analysis:  as above, the number of Python digits `n` needed is worst-
2716
case
2717
2718
    n >= N * log(B)/log(BASE)
2719
2720
where `N` is the number of input digits in base `B`.  This is computed via
2721
2722
    size_z = (Py_ssize_t)((scan - str) * log_base_BASE[base]) + 1;
2723
2724
below.  Two numeric concerns are how much space this can waste, and whether
2725
the computed result can be too small.  To be concrete, assume BASE = 2**15,
2726
which is the default (and it's unlikely anyone changes that).
2727
2728
Waste isn't a problem:  provided the first input digit isn't 0, the difference
2729
between the worst-case input with N digits and the smallest input with N
2730
digits is about a factor of B, but B is small compared to BASE so at most
2731
one allocated Python digit can remain unused on that count.  If
2732
N*log(B)/log(BASE) is mathematically an exact integer, then truncating that
2733
and adding 1 returns a result 1 larger than necessary.  However, that can't
2734
happen:  whenever B is a power of 2, long_from_binary_base() is called
2735
instead, and it's impossible for B**i to be an integer power of 2**15 when
2736
B is not a power of 2 (i.e., it's impossible for N*log(B)/log(BASE) to be
2737
an exact integer when B is not a power of 2, since B**i has a prime factor
2738
other than 2 in that case, but (2**15)**j's only prime factor is 2).
2739
2740
The computed result can be too small if the true value of N*log(B)/log(BASE)
2741
is a little bit larger than an exact integer, but due to roundoff errors (in
2742
computing log(B), log(BASE), their quotient, and/or multiplying that by N)
2743
yields a numeric result a little less than that integer.  Unfortunately, "how
2744
close can a transcendental function get to an integer over some range?"
2745
questions are generally theoretically intractable.  Computer analysis via
2746
continued fractions is practical:  expand log(B)/log(BASE) via continued
2747
fractions, giving a sequence i/j of "the best" rational approximations.  Then
2748
j*log(B)/log(BASE) is approximately equal to (the integer) i.  This shows that
2749
we can get very close to being in trouble, but very rarely.  For example,
2750
76573 is a denominator in one of the continued-fraction approximations to
2751
log(10)/log(2**15), and indeed:
2752
2753
    >>> log(10)/log(2**15)*76573
2754
    16958.000000654003
2755
2756
is very close to an integer.  If we were working with IEEE single-precision,
2757
rounding errors could kill us.  Finding worst cases in IEEE double-precision
2758
requires better-than-double-precision log() functions, and Tim didn't bother.
2759
Instead the code checks to see whether the allocated space is enough as each
2760
new Python digit is added, and copies the whole thing to a larger int if not.
2761
This should happen extremely rarely, and in fact I don't have a test case
2762
that triggers it(!).  Instead the code was tested by artificially allocating
2763
just 1 digit at the start, so that the copying code was exercised for every
2764
digit beyond the first.
2765
***/
2766
2767
// Tables are computed by Tools/scripts/long_conv_tables.py
2768
#if PYLONG_BITS_IN_DIGIT == 15
2769
    static const double log_base_BASE[37] = {0.0, 0.0, 0.0,
2770
        0.10566416671474375, 0.0, 0.15479520632582416,
2771
        0.17233083338141042, 0.18715699480384027, 0.0,
2772
        0.2113283334294875, 0.22146187299249084, 0.23062877457581984,
2773
        0.2389975000480771, 0.24669598120940617, 0.25382366147050694,
2774
        0.26045937304056793, 0.0, 0.27249752275002265,
2775
        0.27799500009615413, 0.2831951675629057, 0.28812853965915747,
2776
        0.29282116151858406, 0.2972954412424865, 0.3015707970704675,
2777
        0.3056641667147438, 0.30959041265164833, 0.3133626478760728,
2778
        0.31699250014423125, 0.3204903281371736, 0.3238653996751715,
2779
        0.3271260397072346, 0.3302797540257917, 0.0,
2780
        0.3362929412905636, 0.3391641894166893, 0.34195220112966446,
2781
        0.34466166676282084};
2782
    static const int convwidth_base[37] = {0, 0, 0, 9, 0, 6, 5, 5, 0,
2783
        4, 4, 4, 4, 4, 3, 3, 0, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3,
2784
        3, 3, 0, 2, 2, 2, 2};
2785
    static const twodigits convmultmax_base[37] = {0, 0, 0, 19683, 0,
2786
        15625, 7776, 16807, 0, 6561, 10000, 14641, 20736, 28561, 2744,
2787
        3375, 0, 4913, 5832, 6859, 8000, 9261, 10648, 12167, 13824,
2788
        15625, 17576, 19683, 21952, 24389, 27000, 29791, 0, 1089,
2789
        1156, 1225, 1296};
2790
#elif PYLONG_BITS_IN_DIGIT == 30
2791
    static const double log_base_BASE[37] = {0.0, 0.0, 0.0,
2792
        0.05283208335737188, 0.0, 0.07739760316291208,
2793
        0.08616541669070521, 0.09357849740192013, 0.0,
2794
        0.10566416671474375, 0.11073093649624542, 0.11531438728790992,
2795
        0.11949875002403855, 0.12334799060470308, 0.12691183073525347,
2796
        0.13022968652028397, 0.0, 0.13624876137501132,
2797
        0.13899750004807707, 0.14159758378145285, 0.14406426982957873,
2798
        0.14641058075929203, 0.14864772062124326, 0.15078539853523376,
2799
        0.1528320833573719, 0.15479520632582416, 0.1566813239380364,
2800
        0.15849625007211562, 0.1602451640685868, 0.16193269983758574,
2801
        0.1635630198536173, 0.16513987701289584, 0.0,
2802
        0.1681464706452818, 0.16958209470834465, 0.17097610056483223,
2803
        0.17233083338141042};
2804
    static const int convwidth_base[37] = {0, 0, 0, 18, 0, 12, 11, 10,
2805
        0, 9, 9, 8, 8, 8, 7, 7, 0, 7, 7, 7, 6, 6, 6, 6, 6, 6, 6, 6, 6,
2806
        6, 6, 6, 0, 5, 5, 5, 5};
2807
    static const twodigits convmultmax_base[37] = {0, 0, 0, 387420489,
2808
        0, 244140625, 362797056, 282475249, 0, 387420489, 1000000000,
2809
        214358881, 429981696, 815730721, 105413504, 170859375, 0,
2810
        410338673, 612220032, 893871739, 64000000, 85766121,
2811
        113379904, 148035889, 191102976, 244140625, 308915776,
2812
        387420489, 481890304, 594823321, 729000000, 887503681, 0,
2813
        39135393, 45435424, 52521875, 60466176};
2814
#else
2815
    #error "invalid PYLONG_BITS_IN_DIGIT value"
2816
#endif
2817
2818
static int
2819
long_from_non_binary_base(const char *start, const char *end, Py_ssize_t digits, int base, PyLongObject **res)
2820
6.52M
{
2821
6.52M
    twodigits c;           /* current input character */
2822
6.52M
    Py_ssize_t size_z;
2823
6.52M
    int i;
2824
6.52M
    int convwidth;
2825
6.52M
    twodigits convmultmax, convmult;
2826
6.52M
    digit *pz, *pzstop;
2827
6.52M
    PyLongObject *z;
2828
6.52M
    const char *p;
2829
2830
6.52M
    assert(log_base_BASE[base] != 0.0);
2831
2832
    /* Create an int object that can contain the largest possible
2833
     * integer with this base and length.  Note that there's no
2834
     * need to initialize z->long_value.ob_digit -- no slot is read up before
2835
     * being stored into.
2836
     */
2837
6.52M
    double fsize_z = (double)digits * log_base_BASE[base] + 1.0;
2838
6.52M
    if (fsize_z > (double)MAX_LONG_DIGITS) {
2839
        /* The same exception as in long_alloc(). */
2840
0
        PyErr_SetString(PyExc_OverflowError,
2841
0
                        "too many digits in integer");
2842
0
        *res = NULL;
2843
0
        return 0;
2844
0
    }
2845
6.52M
    size_z = (Py_ssize_t)fsize_z;
2846
    /* Uncomment next line to test exceedingly rare copy code */
2847
    /* size_z = 1; */
2848
6.52M
    assert(size_z > 0);
2849
6.52M
    z = long_alloc(size_z);
2850
6.52M
    if (z == NULL) {
2851
0
        *res = NULL;
2852
0
        return 0;
2853
0
    }
2854
6.52M
    _PyLong_SetSignAndDigitCount(z, 0, 0);
2855
2856
    /* `convwidth` consecutive input digits are treated as a single
2857
     * digit in base `convmultmax`.
2858
     */
2859
6.52M
    convwidth = convwidth_base[base];
2860
6.52M
    convmultmax = convmultmax_base[base];
2861
2862
    /* Work ;-) */
2863
6.52M
    p = start;
2864
13.3M
    while (p < end) {
2865
6.82M
        if (*p == '_') {
2866
250
            p++;
2867
250
            continue;
2868
250
        }
2869
        /* grab up to convwidth digits from the input string */
2870
6.82M
        c = (digit)_PyLong_DigitValue[Py_CHARMASK(*p++)];
2871
9.92M
        for (i = 1; i < convwidth && p != end; ++p) {
2872
3.10M
            if (*p == '_') {
2873
1.83k
                continue;
2874
1.83k
            }
2875
3.10M
            i++;
2876
3.10M
            c = (twodigits)(c *  base +
2877
3.10M
                            (int)_PyLong_DigitValue[Py_CHARMASK(*p)]);
2878
3.10M
            assert(c < PyLong_BASE);
2879
3.10M
        }
2880
2881
6.82M
        convmult = convmultmax;
2882
        /* Calculate the shift only if we couldn't get
2883
         * convwidth digits.
2884
         */
2885
6.82M
        if (i != convwidth) {
2886
6.52M
            convmult = base;
2887
7.23M
            for ( ; i > 1; --i) {
2888
707k
                convmult *= base;
2889
707k
            }
2890
6.52M
        }
2891
2892
        /* Multiply z by convmult, and add c. */
2893
6.82M
        pz = z->long_value.ob_digit;
2894
6.82M
        pzstop = pz + _PyLong_DigitCount(z);
2895
14.6M
        for (; pz < pzstop; ++pz) {
2896
7.81M
            c += (twodigits)*pz * convmult;
2897
7.81M
            *pz = (digit)(c & PyLong_MASK);
2898
7.81M
            c >>= PyLong_SHIFT;
2899
7.81M
        }
2900
        /* carry off the current end? */
2901
6.82M
        if (c) {
2902
5.76M
            assert(c < PyLong_BASE);
2903
5.76M
            if (_PyLong_DigitCount(z) < size_z) {
2904
5.76M
                *pz = (digit)c;
2905
5.76M
                assert(!_PyLong_IsNegative(z));
2906
5.76M
                _PyLong_SetSignAndDigitCount(z, 1, _PyLong_DigitCount(z) + 1);
2907
5.76M
            }
2908
0
            else {
2909
0
                PyLongObject *tmp;
2910
                /* Extremely rare.  Get more space. */
2911
0
                assert(_PyLong_DigitCount(z) == size_z);
2912
0
                tmp = long_alloc(size_z + 1);
2913
0
                if (tmp == NULL) {
2914
0
                    Py_DECREF(z);
2915
0
                    *res = NULL;
2916
0
                    return 0;
2917
0
                }
2918
0
                memcpy(tmp->long_value.ob_digit,
2919
0
                       z->long_value.ob_digit,
2920
0
                       sizeof(digit) * size_z);
2921
0
                Py_SETREF(z, tmp);
2922
0
                z->long_value.ob_digit[size_z] = (digit)c;
2923
0
                ++size_z;
2924
0
            }
2925
5.76M
        }
2926
6.82M
    }
2927
6.52M
    *res = z;
2928
6.52M
    return 0;
2929
6.52M
}
2930
2931
/* *str points to the first digit in a string of base `base` digits. base is an
2932
 * integer from 2 to 36 inclusive. Here we don't need to worry about prefixes
2933
 * like 0x or leading +- signs. The string should be null terminated consisting
2934
 * of ASCII digits and separating underscores possibly with trailing whitespace
2935
 * but we have to validate all of those points here.
2936
 *
2937
 * If base is a power of 2 then the complexity is linear in the number of
2938
 * characters in the string. Otherwise a quadratic algorithm is used for
2939
 * non-binary bases.
2940
 *
2941
 * Return values:
2942
 *
2943
 *   - Returns -1 on syntax error (exception needs to be set, *res is untouched)
2944
 *   - Returns 0 and sets *res to NULL for MemoryError, OverflowError, or
2945
 *     _pylong.int_from_string() errors.
2946
 *   - Returns 0 and sets *res to an unsigned, unnormalized PyLong (success!).
2947
 *
2948
 * Afterwards *str is set to point to the first non-digit (which may be *str!).
2949
 */
2950
static int
2951
long_from_string_base(const char **str, int base, PyLongObject **res)
2952
11.1M
{
2953
11.1M
    const char *start, *end, *p;
2954
11.1M
    char prev = 0;
2955
11.1M
    Py_ssize_t digits = 0;
2956
11.1M
    int is_binary_base = (base & (base - 1)) == 0;
2957
2958
    /* Here we do four things:
2959
     *
2960
     * - Find the `end` of the string.
2961
     * - Validate the string.
2962
     * - Count the number of `digits` (rather than underscores)
2963
     * - Point *str to the end-of-string or first invalid character.
2964
     */
2965
11.1M
    start = p = *str;
2966
    /* Leading underscore not allowed. */
2967
11.1M
    if (*start == '_') {
2968
7.93k
        return -1;
2969
7.93k
    }
2970
    /* Verify all characters are digits and underscores. */
2971
90.2M
    while (_PyLong_DigitValue[Py_CHARMASK(*p)] < base || *p == '_') {
2972
79.1M
        if (*p == '_') {
2973
            /* Double underscore not allowed. */
2974
6.85k
            if (prev == '_') {
2975
719
                *str = p - 1;
2976
719
                return -1;
2977
719
            }
2978
79.1M
        } else {
2979
79.1M
            ++digits;
2980
79.1M
        }
2981
79.1M
        prev = *p;
2982
79.1M
        ++p;
2983
79.1M
    }
2984
    /* Trailing underscore not allowed. */
2985
11.0M
    if (prev == '_') {
2986
662
        *str = p - 1;
2987
662
        return -1;
2988
662
    }
2989
11.0M
    *str = end = p;
2990
    /* Reject empty strings */
2991
11.0M
    if (start == end) {
2992
2.08M
        return -1;
2993
2.08M
    }
2994
    /* Allow only trailing whitespace after `end` */
2995
9.02M
    while (*p && Py_ISSPACE(*p)) {
2996
15.7k
        p++;
2997
15.7k
    }
2998
9.01M
    *str = p;
2999
9.01M
    if (*p != '\0') {
3000
8.71k
        return -1;
3001
8.71k
    }
3002
3003
    /*
3004
     * Pass a validated string consisting of only valid digits and underscores
3005
     * to long_from_xxx_base.
3006
     */
3007
9.00M
    if (is_binary_base) {
3008
        /* Use the linear algorithm for binary bases. */
3009
2.47M
        return long_from_binary_base(start, end, digits, base, res);
3010
2.47M
    }
3011
6.52M
    else {
3012
        /* Limit the size to avoid excessive computation attacks exploiting the
3013
         * quadratic algorithm. */
3014
6.52M
        if (digits > _PY_LONG_MAX_STR_DIGITS_THRESHOLD) {
3015
1.51k
            PyInterpreterState *interp = _PyInterpreterState_GET();
3016
1.51k
            int max_str_digits = interp->long_state.max_str_digits;
3017
1.51k
            if ((max_str_digits > 0) && (digits > max_str_digits)) {
3018
42
                PyErr_Format(PyExc_ValueError, _MAX_STR_DIGITS_ERROR_FMT_TO_INT,
3019
42
                             max_str_digits, digits);
3020
42
                *res = NULL;
3021
42
                return 0;
3022
42
            }
3023
1.51k
        }
3024
6.52M
#if WITH_PYLONG_MODULE
3025
6.52M
        if (digits > 6000 && base == 10) {
3026
            /* Switch to _pylong.int_from_string() */
3027
0
            return pylong_int_from_string(start, end, res);
3028
0
        }
3029
6.52M
#endif
3030
        /* Use the quadratic algorithm for non binary bases. */
3031
6.52M
        return long_from_non_binary_base(start, end, digits, base, res);
3032
6.52M
    }
3033
9.00M
}
3034
3035
/* Parses an int from a bytestring. Leading and trailing whitespace will be
3036
 * ignored.
3037
 *
3038
 * If successful, a PyLong object will be returned and 'pend' will be pointing
3039
 * to the first unused byte unless it's NULL.
3040
 *
3041
 * If unsuccessful, NULL will be returned.
3042
 */
3043
PyObject *
3044
PyLong_FromString(const char *str, char **pend, int base)
3045
11.1M
{
3046
11.1M
    int sign = 1, error_if_nonzero = 0;
3047
11.1M
    const char *orig_str = str;
3048
11.1M
    PyLongObject *z = NULL;
3049
11.1M
    PyObject *strobj;
3050
11.1M
    Py_ssize_t slen;
3051
3052
11.1M
    if ((base != 0 && base < 2) || base > 36) {
3053
0
        PyErr_SetString(PyExc_ValueError,
3054
0
                        "int() arg 2 must be >= 2 and <= 36");
3055
0
        return NULL;
3056
0
    }
3057
11.1M
    while (*str != '\0' && Py_ISSPACE(*str)) {
3058
601
        ++str;
3059
601
    }
3060
11.1M
    if (*str == '+') {
3061
3.78k
        ++str;
3062
3.78k
    }
3063
11.0M
    else if (*str == '-') {
3064
21.0k
        ++str;
3065
21.0k
        sign = -1;
3066
21.0k
    }
3067
11.1M
    if (base == 0) {
3068
103k
        if (str[0] != '0') {
3069
83.5k
            base = 10;
3070
83.5k
        }
3071
19.4k
        else if (str[1] == 'x' || str[1] == 'X') {
3072
1.54k
            base = 16;
3073
1.54k
        }
3074
17.9k
        else if (str[1] == 'o' || str[1] == 'O') {
3075
159
            base = 8;
3076
159
        }
3077
17.7k
        else if (str[1] == 'b' || str[1] == 'B') {
3078
152
            base = 2;
3079
152
        }
3080
17.6k
        else {
3081
            /* "old" (C-style) octal literal, now invalid.
3082
               it might still be zero though */
3083
17.6k
            error_if_nonzero = 1;
3084
17.6k
            base = 10;
3085
17.6k
        }
3086
103k
    }
3087
11.1M
    if (str[0] == '0' &&
3088
3.02M
        ((base == 16 && (str[1] == 'x' || str[1] == 'X')) ||
3089
3.02M
         (base == 8  && (str[1] == 'o' || str[1] == 'O')) ||
3090
3.02M
         (base == 2  && (str[1] == 'b' || str[1] == 'B')))) {
3091
2.35k
        str += 2;
3092
        /* One underscore allowed here. */
3093
2.35k
        if (*str == '_') {
3094
0
            ++str;
3095
0
        }
3096
2.35k
    }
3097
3098
    /* long_from_string_base is the main workhorse here. */
3099
11.1M
    int ret = long_from_string_base(&str, base, &z);
3100
11.1M
    if (ret == -1) {
3101
        /* Syntax error. */
3102
2.09M
        goto onError;
3103
2.09M
    }
3104
9.00M
    if (z == NULL) {
3105
        /* Error. exception already set. */
3106
42
        return NULL;
3107
42
    }
3108
3109
9.00M
    if (error_if_nonzero) {
3110
        /* reset the base to 0, else the exception message
3111
           doesn't make too much sense */
3112
17.6k
        base = 0;
3113
17.6k
        if (!_PyLong_IsZero(z)) {
3114
0
            goto onError;
3115
0
        }
3116
        /* there might still be other problems, therefore base
3117
           remains zero here for the same reason */
3118
17.6k
    }
3119
3120
    /* Set sign and normalize */
3121
9.00M
    if (sign < 0) {
3122
19.0k
        _PyLong_FlipSign(z);
3123
19.0k
    }
3124
9.00M
    long_normalize(z);
3125
9.00M
    z = maybe_small_long(z);
3126
3127
9.00M
    if (pend != NULL) {
3128
6.06M
        *pend = (char *)str;
3129
6.06M
    }
3130
9.00M
    return (PyObject *) z;
3131
3132
2.09M
  onError:
3133
2.09M
    if (pend != NULL) {
3134
2.09M
        *pend = (char *)str;
3135
2.09M
    }
3136
2.09M
    Py_XDECREF(z);
3137
2.09M
    slen = strlen(orig_str) < 200 ? strlen(orig_str) : 200;
3138
2.09M
    strobj = PyUnicode_FromStringAndSize(orig_str, slen);
3139
2.09M
    if (strobj == NULL) {
3140
0
        return NULL;
3141
0
    }
3142
2.09M
    PyErr_Format(PyExc_ValueError,
3143
2.09M
                 "invalid literal for int() with base %d: %.200R",
3144
2.09M
                 base, strobj);
3145
2.09M
    Py_DECREF(strobj);
3146
2.09M
    return NULL;
3147
2.09M
}
3148
3149
/* Since PyLong_FromString doesn't have a length parameter,
3150
 * check here for possible NULs in the string.
3151
 *
3152
 * Reports an invalid literal as a bytes object.
3153
 */
3154
PyObject *
3155
_PyLong_FromBytes(const char *s, Py_ssize_t len, int base)
3156
1.52M
{
3157
1.52M
    PyObject *result, *strobj;
3158
1.52M
    char *end = NULL;
3159
3160
1.52M
    result = PyLong_FromString(s, &end, base);
3161
1.52M
    if (end == NULL || (result != NULL && end == s + len))
3162
1.52M
        return result;
3163
0
    Py_XDECREF(result);
3164
0
    strobj = PyBytes_FromStringAndSize(s, Py_MIN(len, 200));
3165
0
    if (strobj != NULL) {
3166
0
        PyErr_Format(PyExc_ValueError,
3167
0
                     "invalid literal for int() with base %d: %.200R",
3168
0
                     base, strobj);
3169
0
        Py_DECREF(strobj);
3170
0
    }
3171
0
    return NULL;
3172
1.52M
}
3173
3174
PyObject *
3175
PyLong_FromUnicodeObject(PyObject *u, int base)
3176
6.63M
{
3177
6.63M
    PyObject *result, *asciidig;
3178
6.63M
    const char *buffer;
3179
6.63M
    char *end = NULL;
3180
6.63M
    Py_ssize_t buflen;
3181
3182
6.63M
    asciidig = _PyUnicode_TransformDecimalAndSpaceToASCII(u);
3183
6.63M
    if (asciidig == NULL)
3184
0
        return NULL;
3185
6.63M
    assert(PyUnicode_IS_ASCII(asciidig));
3186
    /* Simply get a pointer to existing ASCII characters. */
3187
6.63M
    buffer = PyUnicode_AsUTF8AndSize(asciidig, &buflen);
3188
6.63M
    assert(buffer != NULL);
3189
3190
6.63M
    result = PyLong_FromString(buffer, &end, base);
3191
6.63M
    if (end == NULL || (result != NULL && end == buffer + buflen)) {
3192
4.53M
        Py_DECREF(asciidig);
3193
4.53M
        return result;
3194
4.53M
    }
3195
2.09M
    Py_DECREF(asciidig);
3196
2.09M
    Py_XDECREF(result);
3197
2.09M
    PyErr_Format(PyExc_ValueError,
3198
2.09M
                 "invalid literal for int() with base %d: %.200R",
3199
2.09M
                 base, u);
3200
2.09M
    return NULL;
3201
6.63M
}
3202
3203
/* Int division with remainder, top-level routine */
3204
3205
static int
3206
long_divrem(PyLongObject *a, PyLongObject *b,
3207
            PyLongObject **pdiv, PyLongObject **prem)
3208
386k
{
3209
386k
    Py_ssize_t size_a = _PyLong_DigitCount(a), size_b = _PyLong_DigitCount(b);
3210
386k
    PyLongObject *z;
3211
3212
386k
    if (size_b == 0) {
3213
0
        PyErr_SetString(PyExc_ZeroDivisionError, "division by zero");
3214
0
        return -1;
3215
0
    }
3216
386k
    if (size_a < size_b ||
3217
359
        (size_a == size_b &&
3218
386k
         a->long_value.ob_digit[size_a-1] < b->long_value.ob_digit[size_b-1])) {
3219
        /* |a| < |b|. */
3220
386k
        *prem = (PyLongObject *)long_long((PyObject *)a);
3221
386k
        if (*prem == NULL) {
3222
0
            return -1;
3223
0
        }
3224
386k
        *pdiv = (PyLongObject*)_PyLong_GetZero();
3225
386k
        return 0;
3226
386k
    }
3227
359
    if (size_b == 1) {
3228
359
        digit rem = 0;
3229
359
        z = divrem1(a, b->long_value.ob_digit[0], &rem);
3230
359
        if (z == NULL)
3231
0
            return -1;
3232
359
        *prem = (PyLongObject *) PyLong_FromLong((long)rem);
3233
359
        if (*prem == NULL) {
3234
0
            Py_DECREF(z);
3235
0
            return -1;
3236
0
        }
3237
359
    }
3238
0
    else {
3239
0
        z = x_divrem(a, b, prem);
3240
0
        *prem = maybe_small_long(*prem);
3241
0
        if (z == NULL)
3242
0
            return -1;
3243
0
    }
3244
    /* Set the signs.
3245
       The quotient z has the sign of a*b;
3246
       the remainder r has the sign of a,
3247
       so a = b*z + r. */
3248
359
    if ((_PyLong_IsNegative(a)) != (_PyLong_IsNegative(b))) {
3249
0
        _PyLong_Negate(&z);
3250
0
        if (z == NULL) {
3251
0
            Py_CLEAR(*prem);
3252
0
            return -1;
3253
0
        }
3254
0
    }
3255
359
    if (_PyLong_IsNegative(a) && !_PyLong_IsZero(*prem)) {
3256
0
        _PyLong_Negate(prem);
3257
0
        if (*prem == NULL) {
3258
0
            Py_DECREF(z);
3259
0
            Py_CLEAR(*prem);
3260
0
            return -1;
3261
0
        }
3262
0
    }
3263
359
    *pdiv = maybe_small_long(z);
3264
359
    return 0;
3265
359
}
3266
3267
/* Int remainder, top-level routine */
3268
3269
static int
3270
long_rem(PyLongObject *a, PyLongObject *b, PyLongObject **prem)
3271
4.86M
{
3272
4.86M
    Py_ssize_t size_a = _PyLong_DigitCount(a), size_b = _PyLong_DigitCount(b);
3273
3274
4.86M
    if (size_b == 0) {
3275
0
        PyErr_SetString(PyExc_ZeroDivisionError,
3276
0
                        "division by zero");
3277
0
        return -1;
3278
0
    }
3279
4.86M
    if (size_a < size_b ||
3280
61
        (size_a == size_b &&
3281
4.86M
         a->long_value.ob_digit[size_a-1] < b->long_value.ob_digit[size_b-1])) {
3282
        /* |a| < |b|. */
3283
4.86M
        *prem = (PyLongObject *)long_long((PyObject *)a);
3284
4.86M
        return -(*prem == NULL);
3285
4.86M
    }
3286
61
    if (size_b == 1) {
3287
61
        *prem = rem1(a, b->long_value.ob_digit[0]);
3288
61
        if (*prem == NULL)
3289
0
            return -1;
3290
61
    }
3291
0
    else {
3292
        /* Slow path using divrem. */
3293
0
        Py_XDECREF(x_divrem(a, b, prem));
3294
0
        *prem = maybe_small_long(*prem);
3295
0
        if (*prem == NULL)
3296
0
            return -1;
3297
0
    }
3298
    /* Set the sign. */
3299
61
    if (_PyLong_IsNegative(a) && !_PyLong_IsZero(*prem)) {
3300
0
        _PyLong_Negate(prem);
3301
0
        if (*prem == NULL) {
3302
0
            Py_CLEAR(*prem);
3303
0
            return -1;
3304
0
        }
3305
0
    }
3306
61
    return 0;
3307
61
}
3308
3309
/* Unsigned int division with remainder -- the algorithm.  The arguments v1
3310
   and w1 should satisfy 2 <= _PyLong_DigitCount(w1) <= _PyLong_DigitCount(v1). */
3311
3312
static PyLongObject *
3313
x_divrem(PyLongObject *v1, PyLongObject *w1, PyLongObject **prem)
3314
0
{
3315
0
    PyLongObject *v, *w, *a;
3316
0
    Py_ssize_t i, k, size_v, size_w;
3317
0
    int d;
3318
0
    digit wm1, wm2, carry, q, r, vtop, *v0, *vk, *w0, *ak;
3319
0
    twodigits vv;
3320
0
    sdigit zhi;
3321
0
    stwodigits z;
3322
3323
    /* We follow Knuth [The Art of Computer Programming, Vol. 2 (3rd
3324
       edn.), section 4.3.1, Algorithm D], except that we don't explicitly
3325
       handle the special case when the initial estimate q for a quotient
3326
       digit is >= PyLong_BASE: the max value for q is PyLong_BASE+1, and
3327
       that won't overflow a digit. */
3328
3329
    /* allocate space; w will also be used to hold the final remainder */
3330
0
    size_v = _PyLong_DigitCount(v1);
3331
0
    size_w = _PyLong_DigitCount(w1);
3332
0
    assert(size_v >= size_w && size_w >= 2); /* Assert checks by div() */
3333
0
    v = long_alloc(size_v+1);
3334
0
    if (v == NULL) {
3335
0
        *prem = NULL;
3336
0
        return NULL;
3337
0
    }
3338
0
    w = long_alloc(size_w);
3339
0
    if (w == NULL) {
3340
0
        Py_DECREF(v);
3341
0
        *prem = NULL;
3342
0
        return NULL;
3343
0
    }
3344
3345
    /* normalize: shift w1 left so that its top digit is >= PyLong_BASE/2.
3346
       shift v1 left by the same amount.  Results go into w and v. */
3347
0
    d = PyLong_SHIFT - bit_length_digit(w1->long_value.ob_digit[size_w-1]);
3348
0
    carry = v_lshift(w->long_value.ob_digit, w1->long_value.ob_digit, size_w, d);
3349
0
    assert(carry == 0);
3350
0
    carry = v_lshift(v->long_value.ob_digit, v1->long_value.ob_digit, size_v, d);
3351
0
    if (carry != 0 || v->long_value.ob_digit[size_v-1] >= w->long_value.ob_digit[size_w-1]) {
3352
0
        v->long_value.ob_digit[size_v] = carry;
3353
0
        size_v++;
3354
0
    }
3355
3356
    /* Now v->long_value.ob_digit[size_v-1] < w->long_value.ob_digit[size_w-1], so quotient has
3357
       at most (and usually exactly) k = size_v - size_w digits. */
3358
0
    k = size_v - size_w;
3359
0
    assert(k >= 0);
3360
0
    a = long_alloc(k);
3361
0
    if (a == NULL) {
3362
0
        Py_DECREF(w);
3363
0
        Py_DECREF(v);
3364
0
        *prem = NULL;
3365
0
        return NULL;
3366
0
    }
3367
0
    v0 = v->long_value.ob_digit;
3368
0
    w0 = w->long_value.ob_digit;
3369
0
    wm1 = w0[size_w-1];
3370
0
    wm2 = w0[size_w-2];
3371
0
    for (vk = v0+k, ak = a->long_value.ob_digit + k; vk-- > v0;) {
3372
        /* inner loop: divide vk[0:size_w+1] by w0[0:size_w], giving
3373
           single-digit quotient q, remainder in vk[0:size_w]. */
3374
3375
0
        SIGCHECK({
3376
0
                Py_DECREF(a);
3377
0
                Py_DECREF(w);
3378
0
                Py_DECREF(v);
3379
0
                *prem = NULL;
3380
0
                return NULL;
3381
0
            });
3382
3383
        /* estimate quotient digit q; may overestimate by 1 (rare) */
3384
0
        vtop = vk[size_w];
3385
0
        assert(vtop <= wm1);
3386
0
        vv = ((twodigits)vtop << PyLong_SHIFT) | vk[size_w-1];
3387
        /* The code used to compute the remainder via
3388
         *     r = (digit)(vv - (twodigits)wm1 * q);
3389
         * and compilers generally generated code to do the * and -.
3390
         * But modern processors generally compute q and r with a single
3391
         * instruction, and modern optimizing compilers exploit that if we
3392
         * _don't_ try to optimize it.
3393
         */
3394
0
        q = (digit)(vv / wm1);
3395
0
        r = (digit)(vv % wm1);
3396
0
        while ((twodigits)wm2 * q > (((twodigits)r << PyLong_SHIFT)
3397
0
                                     | vk[size_w-2])) {
3398
0
            --q;
3399
0
            r += wm1;
3400
0
            if (r >= PyLong_BASE)
3401
0
                break;
3402
0
        }
3403
0
        assert(q <= PyLong_BASE);
3404
3405
        /* subtract q*w0[0:size_w] from vk[0:size_w+1] */
3406
0
        zhi = 0;
3407
0
        for (i = 0; i < size_w; ++i) {
3408
            /* invariants: -PyLong_BASE <= -q <= zhi <= 0;
3409
               -PyLong_BASE * q <= z < PyLong_BASE */
3410
0
            z = (sdigit)vk[i] + zhi -
3411
0
                (stwodigits)q * (stwodigits)w0[i];
3412
0
            vk[i] = (digit)z & PyLong_MASK;
3413
0
            zhi = (sdigit)Py_ARITHMETIC_RIGHT_SHIFT(stwodigits,
3414
0
                                                    z, PyLong_SHIFT);
3415
0
        }
3416
3417
        /* add w back if q was too large (this branch taken rarely) */
3418
0
        assert((sdigit)vtop + zhi == -1 || (sdigit)vtop + zhi == 0);
3419
0
        if ((sdigit)vtop + zhi < 0) {
3420
0
            carry = 0;
3421
0
            for (i = 0; i < size_w; ++i) {
3422
0
                carry += vk[i] + w0[i];
3423
0
                vk[i] = carry & PyLong_MASK;
3424
0
                carry >>= PyLong_SHIFT;
3425
0
            }
3426
0
            --q;
3427
0
        }
3428
3429
        /* store quotient digit */
3430
0
        assert(q < PyLong_BASE);
3431
0
        *--ak = q;
3432
0
    }
3433
3434
    /* unshift remainder; we reuse w to store the result */
3435
0
    carry = v_rshift(w0, v0, size_w, d);
3436
0
    assert(carry==0);
3437
0
    Py_DECREF(v);
3438
3439
0
    *prem = long_normalize(w);
3440
0
    return long_normalize(a);
3441
0
}
3442
3443
/* For a nonzero PyLong a, express a in the form x * 2**e, with 0.5 <=
3444
   abs(x) < 1.0 and e >= 0; return x and put e in *e.  Here x is
3445
   rounded to DBL_MANT_DIG significant bits using round-half-to-even.
3446
   If a == 0, return 0.0 and set *e = 0.  */
3447
3448
/* attempt to define 2.0**DBL_MANT_DIG as a compile-time constant */
3449
#if DBL_MANT_DIG == 53
3450
0
#define EXP2_DBL_MANT_DIG 9007199254740992.0
3451
#else
3452
#define EXP2_DBL_MANT_DIG (ldexp(1.0, DBL_MANT_DIG))
3453
#endif
3454
3455
double
3456
_PyLong_Frexp(PyLongObject *a, int64_t *e)
3457
0
{
3458
0
    Py_ssize_t a_size, shift_digits, x_size;
3459
0
    int shift_bits;
3460
0
    int64_t a_bits;
3461
    /* See below for why x_digits is always large enough. */
3462
0
    digit rem;
3463
0
    digit x_digits[2 + (DBL_MANT_DIG + 1) / PyLong_SHIFT] = {0,};
3464
0
    double dx;
3465
    /* Correction term for round-half-to-even rounding.  For a digit x,
3466
       "x + half_even_correction[x & 7]" gives x rounded to the nearest
3467
       multiple of 4, rounding ties to a multiple of 8. */
3468
0
    static const int half_even_correction[8] = {0, -1, -2, 1, 0, -1, 2, 1};
3469
3470
0
    a_size = _PyLong_DigitCount(a);
3471
0
    if (a_size == 0) {
3472
        /* Special case for 0: significand 0.0, exponent 0. */
3473
0
        *e = 0;
3474
0
        return 0.0;
3475
0
    }
3476
0
    a_bits = _PyLong_NumBits((PyObject *)a);
3477
3478
    /* Shift the first DBL_MANT_DIG + 2 bits of a into x_digits[0:x_size]
3479
       (shifting left if a_bits <= DBL_MANT_DIG + 2).
3480
3481
       Number of digits needed for result: write // for floor division.
3482
       Then if shifting left, we end up using
3483
3484
         1 + a_size + (DBL_MANT_DIG + 2 - a_bits) // PyLong_SHIFT
3485
3486
       digits.  If shifting right, we use
3487
3488
         a_size - (a_bits - DBL_MANT_DIG - 2) // PyLong_SHIFT
3489
3490
       digits.  Using a_size = 1 + (a_bits - 1) // PyLong_SHIFT along with
3491
       the inequalities
3492
3493
         m // PyLong_SHIFT + n // PyLong_SHIFT <= (m + n) // PyLong_SHIFT
3494
         m // PyLong_SHIFT - n // PyLong_SHIFT <=
3495
                                          1 + (m - n - 1) // PyLong_SHIFT,
3496
3497
       valid for any integers m and n, we find that x_size satisfies
3498
3499
         x_size <= 2 + (DBL_MANT_DIG + 1) // PyLong_SHIFT
3500
3501
       in both cases.
3502
    */
3503
0
    if (a_bits <= DBL_MANT_DIG + 2) {
3504
0
        shift_digits = (DBL_MANT_DIG + 2 - (Py_ssize_t)a_bits) / PyLong_SHIFT;
3505
0
        shift_bits = (DBL_MANT_DIG + 2 - (int)a_bits) % PyLong_SHIFT;
3506
0
        x_size = shift_digits;
3507
0
        rem = v_lshift(x_digits + x_size, a->long_value.ob_digit, a_size,
3508
0
                       shift_bits);
3509
0
        x_size += a_size;
3510
0
        x_digits[x_size++] = rem;
3511
0
    }
3512
0
    else {
3513
0
        shift_digits = (Py_ssize_t)((a_bits - DBL_MANT_DIG - 2) / PyLong_SHIFT);
3514
0
        shift_bits = (int)((a_bits - DBL_MANT_DIG - 2) % PyLong_SHIFT);
3515
0
        rem = v_rshift(x_digits, a->long_value.ob_digit + shift_digits,
3516
0
                       a_size - shift_digits, shift_bits);
3517
0
        x_size = a_size - shift_digits;
3518
        /* For correct rounding below, we need the least significant
3519
           bit of x to be 'sticky' for this shift: if any of the bits
3520
           shifted out was nonzero, we set the least significant bit
3521
           of x. */
3522
0
        if (rem)
3523
0
            x_digits[0] |= 1;
3524
0
        else
3525
0
            while (shift_digits > 0)
3526
0
                if (a->long_value.ob_digit[--shift_digits]) {
3527
0
                    x_digits[0] |= 1;
3528
0
                    break;
3529
0
                }
3530
0
    }
3531
0
    assert(1 <= x_size && x_size <= (Py_ssize_t)Py_ARRAY_LENGTH(x_digits));
3532
3533
    /* Round, and convert to double. */
3534
0
    x_digits[0] += half_even_correction[x_digits[0] & 7];
3535
0
    dx = x_digits[--x_size];
3536
0
    while (x_size > 0)
3537
0
        dx = dx * PyLong_BASE + x_digits[--x_size];
3538
3539
    /* Rescale;  make correction if result is 1.0. */
3540
0
    dx /= 4.0 * EXP2_DBL_MANT_DIG;
3541
0
    if (dx == 1.0) {
3542
0
        assert(a_bits < INT64_MAX);
3543
0
        dx = 0.5;
3544
0
        a_bits += 1;
3545
0
    }
3546
3547
0
    *e = a_bits;
3548
0
    return _PyLong_IsNegative(a) ? -dx : dx;
3549
0
}
3550
3551
/* Get a C double from an int object.  Rounds to the nearest double,
3552
   using the round-half-to-even rule in the case of a tie. */
3553
3554
double
3555
PyLong_AsDouble(PyObject *v)
3556
4.11k
{
3557
4.11k
    int64_t exponent;
3558
4.11k
    double x;
3559
3560
4.11k
    if (v == NULL) {
3561
0
        PyErr_BadInternalCall();
3562
0
        return -1.0;
3563
0
    }
3564
4.11k
    if (!PyLong_Check(v)) {
3565
0
        PyErr_SetString(PyExc_TypeError, "an integer is required");
3566
0
        return -1.0;
3567
0
    }
3568
4.11k
    if (_PyLong_IsCompact((PyLongObject *)v)) {
3569
        /* Fast path; single digit long (31 bits) will cast safely
3570
           to double.  This improves performance of FP/long operations
3571
           by 20%.
3572
        */
3573
4.11k
        return (double)medium_value((PyLongObject *)v);
3574
4.11k
    }
3575
0
    x = _PyLong_Frexp((PyLongObject *)v, &exponent);
3576
0
    assert(exponent >= 0);
3577
0
    assert(!PyErr_Occurred());
3578
0
    if (exponent > DBL_MAX_EXP) {
3579
0
        PyErr_SetString(PyExc_OverflowError,
3580
0
                        "int too large to convert to float");
3581
0
        return -1.0;
3582
0
    }
3583
0
    return ldexp(x, (int)exponent);
3584
0
}
3585
3586
/* Methods */
3587
3588
/* if a < b, return a negative number
3589
   if a == b, return 0
3590
   if a > b, return a positive number */
3591
3592
static Py_ssize_t
3593
long_compare(PyLongObject *a, PyLongObject *b)
3594
216M
{
3595
216M
    if (_PyLong_BothAreCompact(a, b)) {
3596
211M
        return _PyLong_CompactValue(a) - _PyLong_CompactValue(b);
3597
211M
    }
3598
5.10M
    Py_ssize_t sign = _PyLong_SignedDigitCount(a) - _PyLong_SignedDigitCount(b);
3599
5.10M
    if (sign == 0) {
3600
695k
        Py_ssize_t i = _PyLong_DigitCount(a);
3601
695k
        sdigit diff = 0;
3602
2.03M
        while (--i >= 0) {
3603
1.40M
            diff = (sdigit) a->long_value.ob_digit[i] - (sdigit) b->long_value.ob_digit[i];
3604
1.40M
            if (diff) {
3605
72.6k
                break;
3606
72.6k
            }
3607
1.40M
        }
3608
695k
        sign = _PyLong_IsNegative(a) ? -diff : diff;
3609
695k
    }
3610
5.10M
    return sign;
3611
216M
}
3612
3613
static PyObject *
3614
long_richcompare(PyObject *self, PyObject *other, int op)
3615
225M
{
3616
225M
    Py_ssize_t result;
3617
225M
    CHECK_BINOP(self, other);
3618
224M
    if (self == other)
3619
7.69M
        result = 0;
3620
216M
    else
3621
216M
        result = long_compare((PyLongObject*)self, (PyLongObject*)other);
3622
224M
    Py_RETURN_RICHCOMPARE(result, 0, op);
3623
224M
}
3624
3625
static inline int
3626
/// Return 1 if the object is one of the immortal small ints
3627
_long_is_small_int(PyObject *op)
3628
1.57G
{
3629
1.57G
    PyLongObject *long_object = (PyLongObject *)op;
3630
1.57G
    int is_small_int = (long_object->long_value.lv_tag & IMMORTALITY_BIT_MASK) != 0;
3631
1.57G
    assert((!is_small_int) || PyLong_CheckExact(op));
3632
1.57G
    return is_small_int;
3633
1.57G
}
3634
3635
void
3636
_PyLong_ExactDealloc(PyObject *self)
3637
114M
{
3638
114M
    assert(PyLong_CheckExact(self));
3639
114M
    if (_long_is_small_int(self)) {
3640
        // See PEP 683, section Accidental De-Immortalizing for details
3641
0
        _Py_SetImmortal(self);
3642
0
        return;
3643
0
    }
3644
114M
    if (_PyLong_IsCompact((PyLongObject *)self)) {
3645
101M
        _Py_FREELIST_FREE(ints, self, PyObject_Free);
3646
101M
        return;
3647
101M
    }
3648
13.2M
    PyObject_Free(self);
3649
13.2M
}
3650
3651
static void
3652
long_dealloc(PyObject *self)
3653
1.45G
{
3654
1.45G
    if (_long_is_small_int(self)) {
3655
        /* This should never get called, but we also don't want to SEGV if
3656
         * we accidentally decref small Ints out of existence. Instead,
3657
         * since small Ints are immortal, re-set the reference count.
3658
         *
3659
         * See PEP 683, section Accidental De-Immortalizing for details
3660
         */
3661
0
        _Py_SetImmortal(self);
3662
0
        return;
3663
0
    }
3664
1.45G
    if (PyLong_CheckExact(self) && _PyLong_IsCompact((PyLongObject *)self)) {
3665
1.43G
        _Py_FREELIST_FREE(ints, self, PyObject_Free);
3666
1.43G
        return;
3667
1.43G
    }
3668
23.8M
    Py_TYPE(self)->tp_free(self);
3669
23.8M
}
3670
3671
static Py_hash_t
3672
long_hash(PyObject *obj)
3673
1.13G
{
3674
1.13G
    PyLongObject *v = (PyLongObject *)obj;
3675
1.13G
    Py_uhash_t x;
3676
1.13G
    Py_ssize_t i;
3677
1.13G
    int sign;
3678
3679
1.13G
    if (_PyLong_IsCompact(v)) {
3680
1.12G
        x = (Py_uhash_t)_PyLong_CompactValue(v);
3681
1.12G
        if (x == (Py_uhash_t)-1) {
3682
326k
            x = (Py_uhash_t)-2;
3683
326k
        }
3684
1.12G
        return x;
3685
1.12G
    }
3686
4.99M
    i = _PyLong_DigitCount(v);
3687
4.99M
    sign = _PyLong_NonCompactSign(v);
3688
3689
    // unroll first digit
3690
4.99M
    Py_BUILD_ASSERT(PyHASH_BITS > PyLong_SHIFT);
3691
4.99M
    assert(i >= 1);
3692
4.99M
    --i;
3693
4.99M
    x = v->long_value.ob_digit[i];
3694
4.99M
    assert(x < PyHASH_MODULUS);
3695
3696
4.99M
#if PyHASH_BITS >= 2 * PyLong_SHIFT
3697
    // unroll second digit
3698
4.99M
    assert(i >= 1);
3699
4.99M
    --i;
3700
4.99M
    x <<= PyLong_SHIFT;
3701
4.99M
    x += v->long_value.ob_digit[i];
3702
4.99M
    assert(x < PyHASH_MODULUS);
3703
4.99M
#endif
3704
3705
6.36M
    while (--i >= 0) {
3706
        /* Here x is a quantity in the range [0, PyHASH_MODULUS); we
3707
           want to compute x * 2**PyLong_SHIFT + v->long_value.ob_digit[i] modulo
3708
           PyHASH_MODULUS.
3709
3710
           The computation of x * 2**PyLong_SHIFT % PyHASH_MODULUS
3711
           amounts to a rotation of the bits of x.  To see this, write
3712
3713
             x * 2**PyLong_SHIFT = y * 2**PyHASH_BITS + z
3714
3715
           where y = x >> (PyHASH_BITS - PyLong_SHIFT) gives the top
3716
           PyLong_SHIFT bits of x (those that are shifted out of the
3717
           original PyHASH_BITS bits, and z = (x << PyLong_SHIFT) &
3718
           PyHASH_MODULUS gives the bottom PyHASH_BITS - PyLong_SHIFT
3719
           bits of x, shifted up.  Then since 2**PyHASH_BITS is
3720
           congruent to 1 modulo PyHASH_MODULUS, y*2**PyHASH_BITS is
3721
           congruent to y modulo PyHASH_MODULUS.  So
3722
3723
             x * 2**PyLong_SHIFT = y + z (mod PyHASH_MODULUS).
3724
3725
           The right-hand side is just the result of rotating the
3726
           PyHASH_BITS bits of x left by PyLong_SHIFT places; since
3727
           not all PyHASH_BITS bits of x are 1s, the same is true
3728
           after rotation, so 0 <= y+z < PyHASH_MODULUS and y + z is
3729
           the reduction of x*2**PyLong_SHIFT modulo
3730
           PyHASH_MODULUS. */
3731
1.36M
        x = ((x << PyLong_SHIFT) & PyHASH_MODULUS) |
3732
1.36M
            (x >> (PyHASH_BITS - PyLong_SHIFT));
3733
1.36M
        x += v->long_value.ob_digit[i];
3734
1.36M
        if (x >= PyHASH_MODULUS)
3735
14.8k
            x -= PyHASH_MODULUS;
3736
1.36M
    }
3737
4.99M
    x = x * sign;
3738
4.99M
    if (x == (Py_uhash_t)-1)
3739
0
        x = (Py_uhash_t)-2;
3740
4.99M
    return (Py_hash_t)x;
3741
1.13G
}
3742
3743
3744
/* Add the absolute values of two integers. */
3745
3746
static PyLongObject *
3747
x_add(PyLongObject *a, PyLongObject *b)
3748
11.1M
{
3749
11.1M
    Py_ssize_t size_a = _PyLong_DigitCount(a), size_b = _PyLong_DigitCount(b);
3750
11.1M
    PyLongObject *z;
3751
11.1M
    Py_ssize_t i;
3752
11.1M
    digit carry = 0;
3753
3754
    /* Ensure a is the larger of the two: */
3755
11.1M
    if (size_a < size_b) {
3756
12.4k
        { PyLongObject *temp = a; a = b; b = temp; }
3757
12.4k
        { Py_ssize_t size_temp = size_a;
3758
12.4k
            size_a = size_b;
3759
12.4k
            size_b = size_temp; }
3760
12.4k
    }
3761
11.1M
    z = long_alloc(size_a+1);
3762
11.1M
    if (z == NULL)
3763
0
        return NULL;
3764
28.2M
    for (i = 0; i < size_b; ++i) {
3765
17.1M
        carry += a->long_value.ob_digit[i] + b->long_value.ob_digit[i];
3766
17.1M
        z->long_value.ob_digit[i] = carry & PyLong_MASK;
3767
17.1M
        carry >>= PyLong_SHIFT;
3768
17.1M
    }
3769
28.9M
    for (; i < size_a; ++i) {
3770
17.8M
        carry += a->long_value.ob_digit[i];
3771
17.8M
        z->long_value.ob_digit[i] = carry & PyLong_MASK;
3772
17.8M
        carry >>= PyLong_SHIFT;
3773
17.8M
    }
3774
11.1M
    z->long_value.ob_digit[i] = carry;
3775
11.1M
    return long_normalize(z);
3776
11.1M
}
3777
3778
/* Subtract the absolute values of two integers. */
3779
3780
static PyLongObject *
3781
x_sub(PyLongObject *a, PyLongObject *b)
3782
1.08M
{
3783
1.08M
    Py_ssize_t size_a = _PyLong_DigitCount(a), size_b = _PyLong_DigitCount(b);
3784
1.08M
    PyLongObject *z;
3785
1.08M
    Py_ssize_t i;
3786
1.08M
    int sign = 1;
3787
1.08M
    digit borrow = 0;
3788
3789
    /* Ensure a is the larger of the two: */
3790
1.08M
    if (size_a < size_b) {
3791
6.02k
        sign = -1;
3792
6.02k
        { PyLongObject *temp = a; a = b; b = temp; }
3793
6.02k
        { Py_ssize_t size_temp = size_a;
3794
6.02k
            size_a = size_b;
3795
6.02k
            size_b = size_temp; }
3796
6.02k
    }
3797
1.08M
    else if (size_a == size_b) {
3798
        /* Find highest digit where a and b differ: */
3799
1.07M
        i = size_a;
3800
1.08M
        while (--i >= 0 && a->long_value.ob_digit[i] == b->long_value.ob_digit[i])
3801
6.88k
            ;
3802
1.07M
        if (i < 0)
3803
1.22k
            return (PyLongObject *)PyLong_FromLong(0);
3804
1.07M
        if (a->long_value.ob_digit[i] < b->long_value.ob_digit[i]) {
3805
3.12k
            sign = -1;
3806
3.12k
            { PyLongObject *temp = a; a = b; b = temp; }
3807
3.12k
        }
3808
1.07M
        size_a = size_b = i+1;
3809
1.07M
    }
3810
1.08M
    z = long_alloc(size_a);
3811
1.08M
    if (z == NULL)
3812
0
        return NULL;
3813
3.28M
    for (i = 0; i < size_b; ++i) {
3814
        /* The following assumes unsigned arithmetic
3815
           works module 2**N for some N>PyLong_SHIFT. */
3816
2.19M
        borrow = a->long_value.ob_digit[i] - b->long_value.ob_digit[i] - borrow;
3817
2.19M
        z->long_value.ob_digit[i] = borrow & PyLong_MASK;
3818
2.19M
        borrow >>= PyLong_SHIFT;
3819
2.19M
        borrow &= 1; /* Keep only one sign bit */
3820
2.19M
    }
3821
1.10M
    for (; i < size_a; ++i) {
3822
21.3k
        borrow = a->long_value.ob_digit[i] - borrow;
3823
21.3k
        z->long_value.ob_digit[i] = borrow & PyLong_MASK;
3824
21.3k
        borrow >>= PyLong_SHIFT;
3825
21.3k
        borrow &= 1; /* Keep only one sign bit */
3826
21.3k
    }
3827
1.08M
    assert(borrow == 0);
3828
1.08M
    if (sign < 0) {
3829
9.15k
        _PyLong_FlipSign(z);
3830
9.15k
    }
3831
1.08M
    return maybe_small_long(long_normalize(z));
3832
1.08M
}
3833
3834
static PyLongObject *
3835
long_add(PyLongObject *a, PyLongObject *b)
3836
19.9M
{
3837
19.9M
    if (_PyLong_BothAreCompact(a, b)) {
3838
8.84M
        stwodigits z = medium_value(a) + medium_value(b);
3839
8.84M
        return _PyLong_FromSTwoDigits(z);
3840
8.84M
    }
3841
3842
11.1M
    PyLongObject *z;
3843
11.1M
    if (_PyLong_IsNegative(a)) {
3844
159
        if (_PyLong_IsNegative(b)) {
3845
0
            z = x_add(a, b);
3846
0
            if (z != NULL) {
3847
                /* x_add received at least one multiple-digit int,
3848
                   and thus z must be a multiple-digit int.
3849
                   That also means z is not an element of
3850
                   small_ints, so negating it in-place is safe. */
3851
0
                assert(Py_REFCNT(z) == 1);
3852
0
                _PyLong_FlipSign(z);
3853
0
            }
3854
0
        }
3855
159
        else
3856
159
            z = x_sub(b, a);
3857
159
    }
3858
11.1M
    else {
3859
11.1M
        if (_PyLong_IsNegative(b))
3860
16.5k
            z = x_sub(a, b);
3861
11.1M
        else
3862
11.1M
            z = x_add(a, b);
3863
11.1M
    }
3864
11.1M
    return z;
3865
19.9M
}
3866
3867
_PyStackRef
3868
_PyCompactLong_Add(PyLongObject *a, PyLongObject *b)
3869
955M
{
3870
955M
    assert(_PyLong_BothAreCompact(a, b));
3871
955M
    stwodigits v = medium_value(a) + medium_value(b);
3872
955M
    return medium_from_stwodigits(v);
3873
955M
}
3874
3875
static PyObject *
3876
long_add_method(PyObject *a, PyObject *b)
3877
19.9M
{
3878
19.9M
    CHECK_BINOP(a, b);
3879
19.9M
    return (PyObject*)long_add((PyLongObject*)a, (PyLongObject*)b);
3880
19.9M
}
3881
3882
3883
static PyLongObject *
3884
long_sub(PyLongObject *a, PyLongObject *b)
3885
1.07M
{
3886
1.07M
    if (_PyLong_BothAreCompact(a, b)) {
3887
1.85k
        return _PyLong_FromSTwoDigits(medium_value(a) - medium_value(b));
3888
1.85k
    }
3889
3890
1.07M
    PyLongObject *z;
3891
1.07M
    if (_PyLong_IsNegative(a)) {
3892
123
        if (_PyLong_IsNegative(b)) {
3893
0
            z = x_sub(b, a);
3894
0
        }
3895
123
        else {
3896
123
            z = x_add(a, b);
3897
123
            if (z != NULL) {
3898
123
                assert(_PyLong_IsZero(z) || Py_REFCNT(z) == 1);
3899
123
                _PyLong_FlipSign(z);
3900
123
            }
3901
123
        }
3902
123
    }
3903
1.07M
    else {
3904
1.07M
        if (_PyLong_IsNegative(b))
3905
0
            z = x_add(a, b);
3906
1.07M
        else
3907
1.07M
            z = x_sub(a, b);
3908
1.07M
    }
3909
1.07M
    return z;
3910
1.07M
}
3911
3912
_PyStackRef
3913
_PyCompactLong_Subtract(PyLongObject *a, PyLongObject *b)
3914
573M
{
3915
573M
    assert(_PyLong_BothAreCompact(a, b));
3916
573M
    stwodigits v = medium_value(a) - medium_value(b);
3917
573M
    return medium_from_stwodigits(v);
3918
573M
}
3919
3920
static PyObject *
3921
long_sub_method(PyObject *a, PyObject *b)
3922
1.07M
{
3923
1.07M
    CHECK_BINOP(a, b);
3924
1.07M
    return (PyObject*)long_sub((PyLongObject*)a, (PyLongObject*)b);
3925
1.07M
}
3926
3927
3928
/* Grade school multiplication, ignoring the signs.
3929
 * Returns the absolute value of the product, or NULL if error.
3930
 */
3931
static PyLongObject *
3932
x_mul(PyLongObject *a, PyLongObject *b)
3933
1.24M
{
3934
1.24M
    PyLongObject *z;
3935
1.24M
    Py_ssize_t size_a = _PyLong_DigitCount(a);
3936
1.24M
    Py_ssize_t size_b = _PyLong_DigitCount(b);
3937
1.24M
    Py_ssize_t i;
3938
3939
1.24M
    z = long_alloc(size_a + size_b);
3940
1.24M
    if (z == NULL)
3941
0
        return NULL;
3942
3943
1.24M
    memset(z->long_value.ob_digit, 0, _PyLong_DigitCount(z) * sizeof(digit));
3944
1.24M
    if (a == b) {
3945
        /* Efficient squaring per HAC, Algorithm 14.16:
3946
         * https://cacr.uwaterloo.ca/hac/about/chap14.pdf
3947
         * Gives slightly less than a 2x speedup when a == b,
3948
         * via exploiting that each entry in the multiplication
3949
         * pyramid appears twice (except for the size_a squares).
3950
         */
3951
38.7k
        digit *paend = a->long_value.ob_digit + size_a;
3952
116k
        for (i = 0; i < size_a; ++i) {
3953
77.5k
            twodigits carry;
3954
77.5k
            twodigits f = a->long_value.ob_digit[i];
3955
77.5k
            digit *pz = z->long_value.ob_digit + (i << 1);
3956
77.5k
            digit *pa = a->long_value.ob_digit + i + 1;
3957
3958
77.5k
            SIGCHECK({
3959
77.5k
                    Py_DECREF(z);
3960
77.5k
                    return NULL;
3961
77.5k
                });
3962
3963
77.5k
            carry = *pz + f * f;
3964
77.5k
            *pz++ = (digit)(carry & PyLong_MASK);
3965
77.5k
            carry >>= PyLong_SHIFT;
3966
77.5k
            assert(carry <= PyLong_MASK);
3967
3968
            /* Now f is added in twice in each column of the
3969
             * pyramid it appears.  Same as adding f<<1 once.
3970
             */
3971
77.5k
            f <<= 1;
3972
116k
            while (pa < paend) {
3973
38.8k
                carry += *pz + *pa++ * f;
3974
38.8k
                *pz++ = (digit)(carry & PyLong_MASK);
3975
38.8k
                carry >>= PyLong_SHIFT;
3976
38.8k
                assert(carry <= (PyLong_MASK << 1));
3977
38.8k
            }
3978
77.5k
            if (carry) {
3979
                /* See comment below. pz points at the highest possible
3980
                 * carry position from the last outer loop iteration, so
3981
                 * *pz is at most 1.
3982
                 */
3983
0
                assert(*pz <= 1);
3984
0
                carry += *pz;
3985
0
                *pz = (digit)(carry & PyLong_MASK);
3986
0
                carry >>= PyLong_SHIFT;
3987
0
                if (carry) {
3988
                    /* If there's still a carry, it must be into a position
3989
                     * that still holds a 0. Where the base
3990
                     ^ B is 1 << PyLong_SHIFT, the last add was of a carry no
3991
                     * more than 2*B - 2 to a stored digit no more than 1.
3992
                     * So the sum was no more than 2*B - 1, so the current
3993
                     * carry no more than floor((2*B - 1)/B) = 1.
3994
                     */
3995
0
                    assert(carry == 1);
3996
0
                    assert(pz[1] == 0);
3997
0
                    pz[1] = (digit)carry;
3998
0
                }
3999
0
            }
4000
77.5k
        }
4001
38.7k
    }
4002
1.20M
    else {      /* a is not the same as b -- gradeschool int mult */
4003
2.40M
        for (i = 0; i < size_a; ++i) {
4004
1.20M
            twodigits carry = 0;
4005
1.20M
            twodigits f = a->long_value.ob_digit[i];
4006
1.20M
            digit *pz = z->long_value.ob_digit + i;
4007
1.20M
            digit *pb = b->long_value.ob_digit;
4008
1.20M
            digit *pbend = b->long_value.ob_digit + size_b;
4009
4010
1.20M
            SIGCHECK({
4011
1.20M
                    Py_DECREF(z);
4012
1.20M
                    return NULL;
4013
1.20M
                });
4014
4015
15.6M
            while (pb < pbend) {
4016
14.4M
                carry += *pz + *pb++ * f;
4017
14.4M
                *pz++ = (digit)(carry & PyLong_MASK);
4018
14.4M
                carry >>= PyLong_SHIFT;
4019
14.4M
                assert(carry <= PyLong_MASK);
4020
14.4M
            }
4021
1.20M
            if (carry)
4022
12.9k
                *pz += (digit)(carry & PyLong_MASK);
4023
1.20M
            assert((carry >> PyLong_SHIFT) == 0);
4024
1.20M
        }
4025
1.20M
    }
4026
1.24M
    return long_normalize(z);
4027
1.24M
}
4028
4029
/* A helper for Karatsuba multiplication (k_mul).
4030
   Takes an int "n" and an integer "size" representing the place to
4031
   split, and sets low and high such that abs(n) == (high << size) + low,
4032
   viewing the shift as being by digits.  The sign bit is ignored, and
4033
   the return values are >= 0.
4034
   Returns 0 on success, -1 on failure.
4035
*/
4036
static int
4037
kmul_split(PyLongObject *n,
4038
           Py_ssize_t size,
4039
           PyLongObject **high,
4040
           PyLongObject **low)
4041
0
{
4042
0
    PyLongObject *hi, *lo;
4043
0
    Py_ssize_t size_lo, size_hi;
4044
0
    const Py_ssize_t size_n = _PyLong_DigitCount(n);
4045
4046
0
    size_lo = Py_MIN(size_n, size);
4047
0
    size_hi = size_n - size_lo;
4048
4049
0
    if ((hi = long_alloc(size_hi)) == NULL)
4050
0
        return -1;
4051
0
    if ((lo = long_alloc(size_lo)) == NULL) {
4052
0
        Py_DECREF(hi);
4053
0
        return -1;
4054
0
    }
4055
4056
0
    memcpy(lo->long_value.ob_digit, n->long_value.ob_digit, size_lo * sizeof(digit));
4057
0
    memcpy(hi->long_value.ob_digit, n->long_value.ob_digit + size_lo, size_hi * sizeof(digit));
4058
4059
0
    *high = long_normalize(hi);
4060
0
    *low = long_normalize(lo);
4061
0
    return 0;
4062
0
}
4063
4064
static PyLongObject *k_lopsided_mul(PyLongObject *a, PyLongObject *b);
4065
4066
/* Karatsuba multiplication.  Ignores the input signs, and returns the
4067
 * absolute value of the product (or NULL if error).
4068
 * See Knuth Vol. 2 Chapter 4.3.3 (Pp. 294-295).
4069
 */
4070
static PyLongObject *
4071
k_mul(PyLongObject *a, PyLongObject *b)
4072
1.24M
{
4073
1.24M
    Py_ssize_t asize = _PyLong_DigitCount(a);
4074
1.24M
    Py_ssize_t bsize = _PyLong_DigitCount(b);
4075
1.24M
    PyLongObject *ah = NULL;
4076
1.24M
    PyLongObject *al = NULL;
4077
1.24M
    PyLongObject *bh = NULL;
4078
1.24M
    PyLongObject *bl = NULL;
4079
1.24M
    PyLongObject *ret = NULL;
4080
1.24M
    PyLongObject *t1, *t2, *t3;
4081
1.24M
    Py_ssize_t shift;           /* the number of digits we split off */
4082
1.24M
    Py_ssize_t i;
4083
4084
    /* (ah*X+al)(bh*X+bl) = ah*bh*X*X + (ah*bl + al*bh)*X + al*bl
4085
     * Let k = (ah+al)*(bh+bl) = ah*bl + al*bh  + ah*bh + al*bl
4086
     * Then the original product is
4087
     *     ah*bh*X*X + (k - ah*bh - al*bl)*X + al*bl
4088
     * By picking X to be a power of 2, "*X" is just shifting, and it's
4089
     * been reduced to 3 multiplies on numbers half the size.
4090
     */
4091
4092
    /* We want to split based on the larger number; fiddle so that b
4093
     * is largest.
4094
     */
4095
1.24M
    if (asize > bsize) {
4096
1.15M
        t1 = a;
4097
1.15M
        a = b;
4098
1.15M
        b = t1;
4099
4100
1.15M
        i = asize;
4101
1.15M
        asize = bsize;
4102
1.15M
        bsize = i;
4103
1.15M
    }
4104
4105
    /* Use gradeschool math when either number is too small. */
4106
1.24M
    i = a == b ? KARATSUBA_SQUARE_CUTOFF : KARATSUBA_CUTOFF;
4107
1.24M
    if (asize <= i) {
4108
1.24M
        if (asize == 0)
4109
152
            return (PyLongObject *)PyLong_FromLong(0);
4110
1.24M
        else
4111
1.24M
            return x_mul(a, b);
4112
1.24M
    }
4113
4114
    /* If a is small compared to b, splitting on b gives a degenerate
4115
     * case with ah==0, and Karatsuba may be (even much) less efficient
4116
     * than "grade school" then.  However, we can still win, by viewing
4117
     * b as a string of "big digits", each of the same width as a. That
4118
     * leads to a sequence of balanced calls to k_mul.
4119
     */
4120
0
    if (2 * asize <= bsize)
4121
0
        return k_lopsided_mul(a, b);
4122
4123
    /* Split a & b into hi & lo pieces. */
4124
0
    shift = bsize >> 1;
4125
0
    if (kmul_split(a, shift, &ah, &al) < 0) goto fail;
4126
0
    assert(_PyLong_IsPositive(ah));        /* the split isn't degenerate */
4127
4128
0
    if (a == b) {
4129
0
        bh = (PyLongObject*)Py_NewRef(ah);
4130
0
        bl = (PyLongObject*)Py_NewRef(al);
4131
0
    }
4132
0
    else if (kmul_split(b, shift, &bh, &bl) < 0) goto fail;
4133
4134
    /* The plan:
4135
     * 1. Allocate result space (asize + bsize digits:  that's always
4136
     *    enough).
4137
     * 2. Compute ah*bh, and copy into result at 2*shift.
4138
     * 3. Compute al*bl, and copy into result at 0.  Note that this
4139
     *    can't overlap with #2.
4140
     * 4. Subtract al*bl from the result, starting at shift.  This may
4141
     *    underflow (borrow out of the high digit), but we don't care:
4142
     *    we're effectively doing unsigned arithmetic mod
4143
     *    BASE**(sizea + sizeb), and so long as the *final* result fits,
4144
     *    borrows and carries out of the high digit can be ignored.
4145
     * 5. Subtract ah*bh from the result, starting at shift.
4146
     * 6. Compute (ah+al)*(bh+bl), and add it into the result starting
4147
     *    at shift.
4148
     */
4149
4150
    /* 1. Allocate result space. */
4151
0
    ret = long_alloc(asize + bsize);
4152
0
    if (ret == NULL) goto fail;
4153
#ifdef Py_DEBUG
4154
    /* Fill with trash, to catch reference to uninitialized digits. */
4155
    memset(ret->long_value.ob_digit, 0xDF, _PyLong_DigitCount(ret) * sizeof(digit));
4156
#endif
4157
4158
    /* 2. t1 <- ah*bh, and copy into high digits of result. */
4159
0
    if ((t1 = k_mul(ah, bh)) == NULL) goto fail;
4160
0
    assert(!_PyLong_IsNegative(t1));
4161
0
    assert(2*shift + _PyLong_DigitCount(t1) <= _PyLong_DigitCount(ret));
4162
0
    memcpy(ret->long_value.ob_digit + 2*shift, t1->long_value.ob_digit,
4163
0
           _PyLong_DigitCount(t1) * sizeof(digit));
4164
4165
    /* Zero-out the digits higher than the ah*bh copy. */
4166
0
    i = _PyLong_DigitCount(ret) - 2*shift - _PyLong_DigitCount(t1);
4167
0
    if (i)
4168
0
        memset(ret->long_value.ob_digit + 2*shift + _PyLong_DigitCount(t1), 0,
4169
0
               i * sizeof(digit));
4170
4171
    /* 3. t2 <- al*bl, and copy into the low digits. */
4172
0
    if ((t2 = k_mul(al, bl)) == NULL) {
4173
0
        Py_DECREF(t1);
4174
0
        goto fail;
4175
0
    }
4176
0
    assert(!_PyLong_IsNegative(t2));
4177
0
    assert(_PyLong_DigitCount(t2) <= 2*shift); /* no overlap with high digits */
4178
0
    memcpy(ret->long_value.ob_digit, t2->long_value.ob_digit, _PyLong_DigitCount(t2) * sizeof(digit));
4179
4180
    /* Zero out remaining digits. */
4181
0
    i = 2*shift - _PyLong_DigitCount(t2);          /* number of uninitialized digits */
4182
0
    if (i)
4183
0
        memset(ret->long_value.ob_digit + _PyLong_DigitCount(t2), 0, i * sizeof(digit));
4184
4185
    /* 4 & 5. Subtract ah*bh (t1) and al*bl (t2).  We do al*bl first
4186
     * because it's fresher in cache.
4187
     */
4188
0
    i = _PyLong_DigitCount(ret) - shift;  /* # digits after shift */
4189
0
    (void)v_isub(ret->long_value.ob_digit + shift, i, t2->long_value.ob_digit, _PyLong_DigitCount(t2));
4190
0
    _Py_DECREF_INT(t2);
4191
4192
0
    (void)v_isub(ret->long_value.ob_digit + shift, i, t1->long_value.ob_digit, _PyLong_DigitCount(t1));
4193
0
    _Py_DECREF_INT(t1);
4194
4195
    /* 6. t3 <- (ah+al)(bh+bl), and add into result. */
4196
0
    if ((t1 = x_add(ah, al)) == NULL) goto fail;
4197
0
    _Py_DECREF_INT(ah);
4198
0
    _Py_DECREF_INT(al);
4199
0
    ah = al = NULL;
4200
4201
0
    if (a == b) {
4202
0
        t2 = (PyLongObject*)Py_NewRef(t1);
4203
0
    }
4204
0
    else if ((t2 = x_add(bh, bl)) == NULL) {
4205
0
        Py_DECREF(t1);
4206
0
        goto fail;
4207
0
    }
4208
0
    _Py_DECREF_INT(bh);
4209
0
    _Py_DECREF_INT(bl);
4210
0
    bh = bl = NULL;
4211
4212
0
    t3 = k_mul(t1, t2);
4213
0
    _Py_DECREF_INT(t1);
4214
0
    _Py_DECREF_INT(t2);
4215
0
    if (t3 == NULL) goto fail;
4216
0
    assert(!_PyLong_IsNegative(t3));
4217
4218
    /* Add t3.  It's not obvious why we can't run out of room here.
4219
     * See the (*) comment after this function.
4220
     */
4221
0
    (void)v_iadd(ret->long_value.ob_digit + shift, i, t3->long_value.ob_digit, _PyLong_DigitCount(t3));
4222
0
    _Py_DECREF_INT(t3);
4223
4224
0
    return long_normalize(ret);
4225
4226
0
  fail:
4227
0
    Py_XDECREF(ret);
4228
0
    Py_XDECREF(ah);
4229
0
    Py_XDECREF(al);
4230
0
    Py_XDECREF(bh);
4231
0
    Py_XDECREF(bl);
4232
0
    return NULL;
4233
0
}
4234
4235
/* (*) Why adding t3 can't "run out of room" above.
4236
4237
Let f(x) mean the floor of x and c(x) mean the ceiling of x.  Some facts
4238
to start with:
4239
4240
1. For any integer i, i = c(i/2) + f(i/2).  In particular,
4241
   bsize = c(bsize/2) + f(bsize/2).
4242
2. shift = f(bsize/2)
4243
3. asize <= bsize
4244
4. Since we call k_lopsided_mul if asize*2 <= bsize, asize*2 > bsize in this
4245
   routine, so asize > bsize/2 >= f(bsize/2) in this routine.
4246
4247
We allocated asize + bsize result digits, and add t3 into them at an offset
4248
of shift.  This leaves asize+bsize-shift allocated digit positions for t3
4249
to fit into, = (by #1 and #2) asize + f(bsize/2) + c(bsize/2) - f(bsize/2) =
4250
asize + c(bsize/2) available digit positions.
4251
4252
bh has c(bsize/2) digits, and bl at most f(size/2) digits.  So bh+hl has
4253
at most c(bsize/2) digits + 1 bit.
4254
4255
If asize == bsize, ah has c(bsize/2) digits, else ah has at most f(bsize/2)
4256
digits, and al has at most f(bsize/2) digits in any case.  So ah+al has at
4257
most (asize == bsize ? c(bsize/2) : f(bsize/2)) digits + 1 bit.
4258
4259
The product (ah+al)*(bh+bl) therefore has at most
4260
4261
    c(bsize/2) + (asize == bsize ? c(bsize/2) : f(bsize/2)) digits + 2 bits
4262
4263
and we have asize + c(bsize/2) available digit positions.  We need to show
4264
this is always enough.  An instance of c(bsize/2) cancels out in both, so
4265
the question reduces to whether asize digits is enough to hold
4266
(asize == bsize ? c(bsize/2) : f(bsize/2)) digits + 2 bits.  If asize < bsize,
4267
then we're asking whether asize digits >= f(bsize/2) digits + 2 bits.  By #4,
4268
asize is at least f(bsize/2)+1 digits, so this in turn reduces to whether 1
4269
digit is enough to hold 2 bits.  This is so since PyLong_SHIFT=15 >= 2.  If
4270
asize == bsize, then we're asking whether bsize digits is enough to hold
4271
c(bsize/2) digits + 2 bits, or equivalently (by #1) whether f(bsize/2) digits
4272
is enough to hold 2 bits.  This is so if bsize >= 2, which holds because
4273
bsize >= KARATSUBA_CUTOFF >= 2.
4274
4275
Note that since there's always enough room for (ah+al)*(bh+bl), and that's
4276
clearly >= each of ah*bh and al*bl, there's always enough room to subtract
4277
ah*bh and al*bl too.
4278
*/
4279
4280
/* b has at least twice the digits of a, and a is big enough that Karatsuba
4281
 * would pay off *if* the inputs had balanced sizes.  View b as a sequence
4282
 * of slices, each with the same number of digits as a, and multiply the
4283
 * slices by a, one at a time.  This gives k_mul balanced inputs to work with,
4284
 * and is also cache-friendly (we compute one double-width slice of the result
4285
 * at a time, then move on, never backtracking except for the helpful
4286
 * single-width slice overlap between successive partial sums).
4287
 */
4288
static PyLongObject *
4289
k_lopsided_mul(PyLongObject *a, PyLongObject *b)
4290
0
{
4291
0
    const Py_ssize_t asize = _PyLong_DigitCount(a);
4292
0
    Py_ssize_t bsize = _PyLong_DigitCount(b);
4293
0
    Py_ssize_t nbdone;          /* # of b digits already multiplied */
4294
0
    PyLongObject *ret;
4295
0
    PyLongObject *bslice = NULL;
4296
4297
0
    assert(asize > KARATSUBA_CUTOFF);
4298
0
    assert(2 * asize <= bsize);
4299
4300
    /* Allocate result space, and zero it out. */
4301
0
    ret = long_alloc(asize + bsize);
4302
0
    if (ret == NULL)
4303
0
        return NULL;
4304
0
    memset(ret->long_value.ob_digit, 0, _PyLong_DigitCount(ret) * sizeof(digit));
4305
4306
    /* Successive slices of b are copied into bslice. */
4307
0
    bslice = long_alloc(asize);
4308
0
    if (bslice == NULL)
4309
0
        goto fail;
4310
4311
0
    nbdone = 0;
4312
0
    while (bsize > 0) {
4313
0
        PyLongObject *product;
4314
0
        const Py_ssize_t nbtouse = Py_MIN(bsize, asize);
4315
4316
        /* Multiply the next slice of b by a. */
4317
0
        memcpy(bslice->long_value.ob_digit, b->long_value.ob_digit + nbdone,
4318
0
               nbtouse * sizeof(digit));
4319
0
        assert(nbtouse >= 0);
4320
0
        _PyLong_SetSignAndDigitCount(bslice, 1, nbtouse);
4321
0
        product = k_mul(a, bslice);
4322
0
        if (product == NULL)
4323
0
            goto fail;
4324
4325
        /* Add into result. */
4326
0
        (void)v_iadd(ret->long_value.ob_digit + nbdone, _PyLong_DigitCount(ret) - nbdone,
4327
0
                     product->long_value.ob_digit, _PyLong_DigitCount(product));
4328
0
        _Py_DECREF_INT(product);
4329
4330
0
        bsize -= nbtouse;
4331
0
        nbdone += nbtouse;
4332
0
    }
4333
4334
0
    _Py_DECREF_INT(bslice);
4335
0
    return long_normalize(ret);
4336
4337
0
  fail:
4338
0
    Py_DECREF(ret);
4339
0
    Py_XDECREF(bslice);
4340
0
    return NULL;
4341
0
}
4342
4343
4344
static PyLongObject*
4345
long_mul(PyLongObject *a, PyLongObject *b)
4346
5.93M
{
4347
    /* fast path for single-digit multiplication */
4348
5.93M
    if (_PyLong_BothAreCompact(a, b)) {
4349
4.69M
        stwodigits v = medium_value(a) * medium_value(b);
4350
4.69M
        return _PyLong_FromSTwoDigits(v);
4351
4.69M
    }
4352
4353
1.24M
    PyLongObject *z = k_mul(a, b);
4354
    /* Negate if exactly one of the inputs is negative. */
4355
1.24M
    if (!_PyLong_SameSign(a, b) && z) {
4356
152
        _PyLong_Negate(&z);
4357
152
    }
4358
1.24M
    return z;
4359
5.93M
}
4360
4361
/* This function returns NULL if the result is not compact,
4362
 * or if it fails to allocate, but never raises */
4363
_PyStackRef
4364
_PyCompactLong_Multiply(PyLongObject *a, PyLongObject *b)
4365
2.27M
{
4366
2.27M
    assert(_PyLong_BothAreCompact(a, b));
4367
2.27M
    stwodigits v = medium_value(a) * medium_value(b);
4368
2.27M
    return medium_from_stwodigits(v);
4369
2.27M
}
4370
4371
static PyObject *
4372
long_mul_method(PyObject *a, PyObject *b)
4373
2.33M
{
4374
2.33M
    CHECK_BINOP(a, b);
4375
1.61M
    return (PyObject*)long_mul((PyLongObject*)a, (PyLongObject*)b);
4376
2.33M
}
4377
4378
/* Fast modulo division for single-digit longs. */
4379
static PyObject *
4380
fast_mod(PyLongObject *a, PyLongObject *b)
4381
1.48M
{
4382
1.48M
    sdigit left = a->long_value.ob_digit[0];
4383
1.48M
    sdigit right = b->long_value.ob_digit[0];
4384
1.48M
    sdigit mod;
4385
4386
1.48M
    assert(_PyLong_DigitCount(a) == 1);
4387
1.48M
    assert(_PyLong_DigitCount(b) == 1);
4388
1.48M
    sdigit sign = _PyLong_CompactSign(b);
4389
1.48M
    if (_PyLong_SameSign(a, b)) {
4390
1.48M
        mod = left % right;
4391
1.48M
    }
4392
0
    else {
4393
        /* Either 'a' or 'b' is negative. */
4394
0
        mod = right - 1 - (left - 1) % right;
4395
0
    }
4396
4397
1.48M
    return PyLong_FromLong(mod * sign);
4398
1.48M
}
4399
4400
/* Fast floor division for single-digit longs. */
4401
static PyObject *
4402
fast_floor_div(PyLongObject *a, PyLongObject *b)
4403
15.1M
{
4404
15.1M
    sdigit left = a->long_value.ob_digit[0];
4405
15.1M
    sdigit right = b->long_value.ob_digit[0];
4406
15.1M
    sdigit div;
4407
4408
15.1M
    assert(_PyLong_DigitCount(a) == 1);
4409
15.1M
    assert(_PyLong_DigitCount(b) == 1);
4410
4411
15.1M
    if (_PyLong_SameSign(a, b)) {
4412
15.1M
        div = left / right;
4413
15.1M
    }
4414
0
    else {
4415
        /* Either 'a' or 'b' is negative. */
4416
0
        div = -1 - (left - 1) / right;
4417
0
    }
4418
4419
15.1M
    return PyLong_FromLong(div);
4420
15.1M
}
4421
4422
#ifdef WITH_PYLONG_MODULE
4423
/* asymptotically faster divmod, using _pylong.py */
4424
static int
4425
pylong_int_divmod(PyLongObject *v, PyLongObject *w,
4426
                  PyLongObject **pdiv, PyLongObject **pmod)
4427
0
{
4428
0
    PyObject *mod = PyImport_ImportModule("_pylong");
4429
0
    if (mod == NULL) {
4430
0
        return -1;
4431
0
    }
4432
0
    PyObject *result = PyObject_CallMethod(mod, "int_divmod", "OO", v, w);
4433
0
    Py_DECREF(mod);
4434
0
    if (result == NULL) {
4435
0
        return -1;
4436
0
    }
4437
0
    if (!PyTuple_Check(result)) {
4438
0
        Py_DECREF(result);
4439
0
        PyErr_SetString(PyExc_ValueError,
4440
0
                        "tuple is required from int_divmod()");
4441
0
        return -1;
4442
0
    }
4443
0
    PyObject *q = PyTuple_GET_ITEM(result, 0);
4444
0
    PyObject *r = PyTuple_GET_ITEM(result, 1);
4445
0
    if (!PyLong_Check(q) || !PyLong_Check(r)) {
4446
0
        Py_DECREF(result);
4447
0
        PyErr_SetString(PyExc_ValueError,
4448
0
                        "tuple of int is required from int_divmod()");
4449
0
        return -1;
4450
0
    }
4451
0
    if (pdiv != NULL) {
4452
0
        *pdiv = (PyLongObject *)Py_NewRef(q);
4453
0
    }
4454
0
    if (pmod != NULL) {
4455
0
        *pmod = (PyLongObject *)Py_NewRef(r);
4456
0
    }
4457
0
    Py_DECREF(result);
4458
0
    return 0;
4459
0
}
4460
#endif /* WITH_PYLONG_MODULE */
4461
4462
/* The / and % operators are now defined in terms of divmod().
4463
   The expression a mod b has the value a - b*floor(a/b).
4464
   The long_divrem function gives the remainder after division of
4465
   |a| by |b|, with the sign of a.  This is also expressed
4466
   as a - b*trunc(a/b), if trunc truncates towards zero.
4467
   Some examples:
4468
     a           b      a rem b         a mod b
4469
     13          10      3               3
4470
    -13          10     -3               7
4471
     13         -10      3              -7
4472
    -13         -10     -3              -3
4473
   So, to get from rem to mod, we have to add b if a and b
4474
   have different signs.  We then subtract one from the 'div'
4475
   part of the outcome to keep the invariant intact. */
4476
4477
/* Compute
4478
 *     *pdiv, *pmod = divmod(v, w)
4479
 * NULL can be passed for pdiv or pmod, in which case that part of
4480
 * the result is simply thrown away.  The caller owns a reference to
4481
 * each of these it requests (does not pass NULL for).
4482
 */
4483
static int
4484
l_divmod(PyLongObject *v, PyLongObject *w,
4485
         PyLongObject **pdiv, PyLongObject **pmod)
4486
402k
{
4487
402k
    PyLongObject *div, *mod;
4488
4489
402k
    if (_PyLong_DigitCount(v) == 1 && _PyLong_DigitCount(w) == 1) {
4490
        /* Fast path for single-digit longs */
4491
15.6k
        div = NULL;
4492
15.6k
        if (pdiv != NULL) {
4493
15.6k
            div = (PyLongObject *)fast_floor_div(v, w);
4494
15.6k
            if (div == NULL) {
4495
0
                return -1;
4496
0
            }
4497
15.6k
        }
4498
15.6k
        if (pmod != NULL) {
4499
15.6k
            mod = (PyLongObject *)fast_mod(v, w);
4500
15.6k
            if (mod == NULL) {
4501
0
                Py_XDECREF(div);
4502
0
                return -1;
4503
0
            }
4504
15.6k
            *pmod = mod;
4505
15.6k
        }
4506
15.6k
        if (pdiv != NULL) {
4507
            /* We only want to set `*pdiv` when `*pmod` is
4508
               set successfully. */
4509
15.6k
            *pdiv = div;
4510
15.6k
        }
4511
15.6k
        return 0;
4512
15.6k
    }
4513
386k
#if WITH_PYLONG_MODULE
4514
386k
    Py_ssize_t size_v = _PyLong_DigitCount(v); /* digits in numerator */
4515
386k
    Py_ssize_t size_w = _PyLong_DigitCount(w); /* digits in denominator */
4516
386k
    if (size_w > 300 && (size_v - size_w) > 150) {
4517
        /* Switch to _pylong.int_divmod().  If the quotient is small then
4518
          "schoolbook" division is linear-time so don't use in that case.
4519
          These limits are empirically determined and should be slightly
4520
          conservative so that _pylong is used in cases it is likely
4521
          to be faster. See Tools/scripts/divmod_threshold.py. */
4522
0
        return pylong_int_divmod(v, w, pdiv, pmod);
4523
0
    }
4524
386k
#endif
4525
386k
    if (long_divrem(v, w, &div, &mod) < 0)
4526
0
        return -1;
4527
386k
    if ((_PyLong_IsNegative(mod) && _PyLong_IsPositive(w)) ||
4528
386k
        (_PyLong_IsPositive(mod) && _PyLong_IsNegative(w))) {
4529
0
        PyLongObject *temp;
4530
0
        temp = long_add(mod, w);
4531
0
        Py_SETREF(mod, temp);
4532
0
        if (mod == NULL) {
4533
0
            Py_DECREF(div);
4534
0
            return -1;
4535
0
        }
4536
0
        temp = long_sub(div, (PyLongObject *)_PyLong_GetOne());
4537
0
        if (temp == NULL) {
4538
0
            Py_DECREF(mod);
4539
0
            Py_DECREF(div);
4540
0
            return -1;
4541
0
        }
4542
0
        Py_SETREF(div, temp);
4543
0
    }
4544
386k
    if (pdiv != NULL)
4545
386k
        *pdiv = div;
4546
0
    else
4547
0
        Py_DECREF(div);
4548
4549
386k
    if (pmod != NULL)
4550
42.6k
        *pmod = mod;
4551
344k
    else
4552
344k
        Py_DECREF(mod);
4553
4554
386k
    return 0;
4555
386k
}
4556
4557
/* Compute
4558
 *     *pmod = v % w
4559
 * pmod cannot be NULL. The caller owns a reference to pmod.
4560
 */
4561
static int
4562
l_mod(PyLongObject *v, PyLongObject *w, PyLongObject **pmod)
4563
6.33M
{
4564
6.33M
    PyLongObject *mod;
4565
4566
6.33M
    assert(pmod);
4567
6.33M
    if (_PyLong_DigitCount(v) == 1 && _PyLong_DigitCount(w) == 1) {
4568
        /* Fast path for single-digit longs */
4569
1.46M
        *pmod = (PyLongObject *)fast_mod(v, w);
4570
1.46M
        return -(*pmod == NULL);
4571
1.46M
    }
4572
4.86M
    if (long_rem(v, w, &mod) < 0)
4573
0
        return -1;
4574
4.86M
    if ((_PyLong_IsNegative(mod) && _PyLong_IsPositive(w)) ||
4575
4.86M
        (_PyLong_IsPositive(mod) && _PyLong_IsNegative(w))) {
4576
0
        PyLongObject *temp;
4577
0
        temp = long_add(mod, w);
4578
0
        Py_SETREF(mod, temp);
4579
0
        if (mod == NULL)
4580
0
            return -1;
4581
0
    }
4582
4.86M
    *pmod = mod;
4583
4584
4.86M
    return 0;
4585
4.86M
}
4586
4587
static PyObject *
4588
long_div(PyObject *a, PyObject *b)
4589
15.4M
{
4590
15.4M
    PyLongObject *div;
4591
4592
15.4M
    CHECK_BINOP(a, b);
4593
4594
15.4M
    if (_PyLong_DigitCount((PyLongObject*)a) == 1 && _PyLong_DigitCount((PyLongObject*)b) == 1) {
4595
15.1M
        return fast_floor_div((PyLongObject*)a, (PyLongObject*)b);
4596
15.1M
    }
4597
4598
344k
    if (l_divmod((PyLongObject*)a, (PyLongObject*)b, &div, NULL) < 0)
4599
0
        div = NULL;
4600
344k
    return (PyObject *)div;
4601
15.4M
}
4602
4603
/* PyLong/PyLong -> float, with correctly rounded result. */
4604
4605
48.4k
#define MANT_DIG_DIGITS (DBL_MANT_DIG / PyLong_SHIFT)
4606
0
#define MANT_DIG_BITS (DBL_MANT_DIG % PyLong_SHIFT)
4607
4608
static PyObject *
4609
long_true_divide(PyObject *v, PyObject *w)
4610
12.1k
{
4611
12.1k
    PyLongObject *a, *b, *x;
4612
12.1k
    Py_ssize_t a_size, b_size, shift, extra_bits, diff, x_size, x_bits;
4613
12.1k
    digit mask, low;
4614
12.1k
    int inexact, negate, a_is_small, b_is_small;
4615
12.1k
    double dx, result;
4616
4617
12.1k
    CHECK_BINOP(v, w);
4618
12.1k
    a = (PyLongObject *)v;
4619
12.1k
    b = (PyLongObject *)w;
4620
4621
    /*
4622
       Method in a nutshell:
4623
4624
         0. reduce to case a, b > 0; filter out obvious underflow/overflow
4625
         1. choose a suitable integer 'shift'
4626
         2. use integer arithmetic to compute x = floor(2**-shift*a/b)
4627
         3. adjust x for correct rounding
4628
         4. convert x to a double dx with the same value
4629
         5. return ldexp(dx, shift).
4630
4631
       In more detail:
4632
4633
       0. For any a, a/0 raises ZeroDivisionError; for nonzero b, 0/b
4634
       returns either 0.0 or -0.0, depending on the sign of b.  For a and
4635
       b both nonzero, ignore signs of a and b, and add the sign back in
4636
       at the end.  Now write a_bits and b_bits for the bit lengths of a
4637
       and b respectively (that is, a_bits = 1 + floor(log_2(a)); likewise
4638
       for b).  Then
4639
4640
          2**(a_bits - b_bits - 1) < a/b < 2**(a_bits - b_bits + 1).
4641
4642
       So if a_bits - b_bits > DBL_MAX_EXP then a/b > 2**DBL_MAX_EXP and
4643
       so overflows.  Similarly, if a_bits - b_bits < DBL_MIN_EXP -
4644
       DBL_MANT_DIG - 1 then a/b underflows to 0.  With these cases out of
4645
       the way, we can assume that
4646
4647
          DBL_MIN_EXP - DBL_MANT_DIG - 1 <= a_bits - b_bits <= DBL_MAX_EXP.
4648
4649
       1. The integer 'shift' is chosen so that x has the right number of
4650
       bits for a double, plus two or three extra bits that will be used
4651
       in the rounding decisions.  Writing a_bits and b_bits for the
4652
       number of significant bits in a and b respectively, a
4653
       straightforward formula for shift is:
4654
4655
          shift = a_bits - b_bits - DBL_MANT_DIG - 2
4656
4657
       This is fine in the usual case, but if a/b is smaller than the
4658
       smallest normal float then it can lead to double rounding on an
4659
       IEEE 754 platform, giving incorrectly rounded results.  So we
4660
       adjust the formula slightly.  The actual formula used is:
4661
4662
           shift = MAX(a_bits - b_bits, DBL_MIN_EXP) - DBL_MANT_DIG - 2
4663
4664
       2. The quantity x is computed by first shifting a (left -shift bits
4665
       if shift <= 0, right shift bits if shift > 0) and then dividing by
4666
       b.  For both the shift and the division, we keep track of whether
4667
       the result is inexact, in a flag 'inexact'; this information is
4668
       needed at the rounding stage.
4669
4670
       With the choice of shift above, together with our assumption that
4671
       a_bits - b_bits >= DBL_MIN_EXP - DBL_MANT_DIG - 1, it follows
4672
       that x >= 1.
4673
4674
       3. Now x * 2**shift <= a/b < (x+1) * 2**shift.  We want to replace
4675
       this with an exactly representable float of the form
4676
4677
          round(x/2**extra_bits) * 2**(extra_bits+shift).
4678
4679
       For float representability, we need x/2**extra_bits <
4680
       2**DBL_MANT_DIG and extra_bits + shift >= DBL_MIN_EXP -
4681
       DBL_MANT_DIG.  This translates to the condition:
4682
4683
          extra_bits >= MAX(x_bits, DBL_MIN_EXP - shift) - DBL_MANT_DIG
4684
4685
       To round, we just modify the bottom digit of x in-place; this can
4686
       end up giving a digit with value > PyLONG_MASK, but that's not a
4687
       problem since digits can hold values up to 2*PyLONG_MASK+1.
4688
4689
       With the original choices for shift above, extra_bits will always
4690
       be 2 or 3.  Then rounding under the round-half-to-even rule, we
4691
       round up iff the most significant of the extra bits is 1, and
4692
       either: (a) the computation of x in step 2 had an inexact result,
4693
       or (b) at least one other of the extra bits is 1, or (c) the least
4694
       significant bit of x (above those to be rounded) is 1.
4695
4696
       4. Conversion to a double is straightforward; all floating-point
4697
       operations involved in the conversion are exact, so there's no
4698
       danger of rounding errors.
4699
4700
       5. Use ldexp(x, shift) to compute x*2**shift, the final result.
4701
       The result will always be exactly representable as a double, except
4702
       in the case that it overflows.  To avoid dependence on the exact
4703
       behaviour of ldexp on overflow, we check for overflow before
4704
       applying ldexp.  The result of ldexp is adjusted for sign before
4705
       returning.
4706
    */
4707
4708
    /* Reduce to case where a and b are both positive. */
4709
12.1k
    a_size = _PyLong_DigitCount(a);
4710
12.1k
    b_size = _PyLong_DigitCount(b);
4711
12.1k
    negate = (_PyLong_IsNegative(a)) != (_PyLong_IsNegative(b));
4712
12.1k
    if (b_size == 0) {
4713
0
        PyErr_SetString(PyExc_ZeroDivisionError,
4714
0
                        "division by zero");
4715
0
        goto error;
4716
0
    }
4717
12.1k
    if (a_size == 0)
4718
4
        goto underflow_or_zero;
4719
4720
    /* Fast path for a and b small (exactly representable in a double).
4721
       Relies on floating-point division being correctly rounded; results
4722
       may be subject to double rounding on x86 machines that operate with
4723
       the x87 FPU set to 64-bit precision. */
4724
12.1k
    a_is_small = a_size <= MANT_DIG_DIGITS ||
4725
0
        (a_size == MANT_DIG_DIGITS+1 &&
4726
0
         a->long_value.ob_digit[MANT_DIG_DIGITS] >> MANT_DIG_BITS == 0);
4727
12.1k
    b_is_small = b_size <= MANT_DIG_DIGITS ||
4728
0
        (b_size == MANT_DIG_DIGITS+1 &&
4729
0
         b->long_value.ob_digit[MANT_DIG_DIGITS] >> MANT_DIG_BITS == 0);
4730
12.1k
    if (a_is_small && b_is_small) {
4731
12.1k
        double da, db;
4732
12.1k
        da = a->long_value.ob_digit[--a_size];
4733
12.1k
        while (a_size > 0)
4734
0
            da = da * PyLong_BASE + a->long_value.ob_digit[--a_size];
4735
12.1k
        db = b->long_value.ob_digit[--b_size];
4736
12.1k
        while (b_size > 0)
4737
0
            db = db * PyLong_BASE + b->long_value.ob_digit[--b_size];
4738
12.1k
        result = da / db;
4739
12.1k
        goto success;
4740
12.1k
    }
4741
4742
    /* Catch obvious cases of underflow and overflow */
4743
0
    diff = a_size - b_size;
4744
0
    if (diff > PY_SSIZE_T_MAX/PyLong_SHIFT - 1)
4745
        /* Extreme overflow */
4746
0
        goto overflow;
4747
0
    else if (diff < 1 - PY_SSIZE_T_MAX/PyLong_SHIFT)
4748
        /* Extreme underflow */
4749
0
        goto underflow_or_zero;
4750
    /* Next line is now safe from overflowing a Py_ssize_t */
4751
0
    diff = diff * PyLong_SHIFT + bit_length_digit(a->long_value.ob_digit[a_size - 1]) -
4752
0
        bit_length_digit(b->long_value.ob_digit[b_size - 1]);
4753
    /* Now diff = a_bits - b_bits. */
4754
0
    if (diff > DBL_MAX_EXP)
4755
0
        goto overflow;
4756
0
    else if (diff < DBL_MIN_EXP - DBL_MANT_DIG - 1)
4757
0
        goto underflow_or_zero;
4758
4759
    /* Choose value for shift; see comments for step 1 above. */
4760
0
    shift = Py_MAX(diff, DBL_MIN_EXP) - DBL_MANT_DIG - 2;
4761
4762
0
    inexact = 0;
4763
4764
    /* x = abs(a * 2**-shift) */
4765
0
    if (shift <= 0) {
4766
0
        Py_ssize_t i, shift_digits = -shift / PyLong_SHIFT;
4767
0
        digit rem;
4768
        /* x = a << -shift */
4769
0
        if (a_size >= PY_SSIZE_T_MAX - 1 - shift_digits) {
4770
            /* In practice, it's probably impossible to end up
4771
               here.  Both a and b would have to be enormous,
4772
               using close to SIZE_T_MAX bytes of memory each. */
4773
0
            PyErr_SetString(PyExc_OverflowError,
4774
0
                            "intermediate overflow during division");
4775
0
            goto error;
4776
0
        }
4777
0
        x = long_alloc(a_size + shift_digits + 1);
4778
0
        if (x == NULL)
4779
0
            goto error;
4780
0
        for (i = 0; i < shift_digits; i++)
4781
0
            x->long_value.ob_digit[i] = 0;
4782
0
        rem = v_lshift(x->long_value.ob_digit + shift_digits, a->long_value.ob_digit,
4783
0
                       a_size, -shift % PyLong_SHIFT);
4784
0
        x->long_value.ob_digit[a_size + shift_digits] = rem;
4785
0
    }
4786
0
    else {
4787
0
        Py_ssize_t shift_digits = shift / PyLong_SHIFT;
4788
0
        digit rem;
4789
        /* x = a >> shift */
4790
0
        assert(a_size >= shift_digits);
4791
0
        x = long_alloc(a_size - shift_digits);
4792
0
        if (x == NULL)
4793
0
            goto error;
4794
0
        rem = v_rshift(x->long_value.ob_digit, a->long_value.ob_digit + shift_digits,
4795
0
                       a_size - shift_digits, shift % PyLong_SHIFT);
4796
        /* set inexact if any of the bits shifted out is nonzero */
4797
0
        if (rem)
4798
0
            inexact = 1;
4799
0
        while (!inexact && shift_digits > 0)
4800
0
            if (a->long_value.ob_digit[--shift_digits])
4801
0
                inexact = 1;
4802
0
    }
4803
0
    long_normalize(x);
4804
0
    x_size = _PyLong_SignedDigitCount(x);
4805
4806
    /* x //= b. If the remainder is nonzero, set inexact.  We own the only
4807
       reference to x, so it's safe to modify it in-place. */
4808
0
    if (b_size == 1) {
4809
0
        digit rem = inplace_divrem1(x->long_value.ob_digit, x->long_value.ob_digit, x_size,
4810
0
                              b->long_value.ob_digit[0]);
4811
0
        long_normalize(x);
4812
0
        if (rem)
4813
0
            inexact = 1;
4814
0
    }
4815
0
    else {
4816
0
        PyLongObject *div, *rem;
4817
0
        div = x_divrem(x, b, &rem);
4818
0
        Py_SETREF(x, div);
4819
0
        if (x == NULL)
4820
0
            goto error;
4821
0
        if (!_PyLong_IsZero(rem))
4822
0
            inexact = 1;
4823
0
        Py_DECREF(rem);
4824
0
    }
4825
0
    x_size = _PyLong_DigitCount(x);
4826
0
    assert(x_size > 0); /* result of division is never zero */
4827
0
    x_bits = (x_size-1)*PyLong_SHIFT+bit_length_digit(x->long_value.ob_digit[x_size-1]);
4828
4829
    /* The number of extra bits that have to be rounded away. */
4830
0
    extra_bits = Py_MAX(x_bits, DBL_MIN_EXP - shift) - DBL_MANT_DIG;
4831
0
    assert(extra_bits == 2 || extra_bits == 3);
4832
4833
    /* Round by directly modifying the low digit of x. */
4834
0
    mask = (digit)1 << (extra_bits - 1);
4835
0
    low = x->long_value.ob_digit[0] | inexact;
4836
0
    if ((low & mask) && (low & (3U*mask-1U)))
4837
0
        low += mask;
4838
0
    x->long_value.ob_digit[0] = low & ~(2U*mask-1U);
4839
4840
    /* Convert x to a double dx; the conversion is exact. */
4841
0
    dx = x->long_value.ob_digit[--x_size];
4842
0
    while (x_size > 0)
4843
0
        dx = dx * PyLong_BASE + x->long_value.ob_digit[--x_size];
4844
0
    Py_DECREF(x);
4845
4846
    /* Check whether ldexp result will overflow a double. */
4847
0
    if (shift + x_bits >= DBL_MAX_EXP &&
4848
0
        (shift + x_bits > DBL_MAX_EXP || dx == ldexp(1.0, (int)x_bits)))
4849
0
        goto overflow;
4850
0
    result = ldexp(dx, (int)shift);
4851
4852
12.1k
  success:
4853
12.1k
    return PyFloat_FromDouble(negate ? -result : result);
4854
4855
4
  underflow_or_zero:
4856
4
    return PyFloat_FromDouble(negate ? -0.0 : 0.0);
4857
4858
0
  overflow:
4859
0
    PyErr_SetString(PyExc_OverflowError,
4860
0
                    "integer division result too large for a float");
4861
0
  error:
4862
0
    return NULL;
4863
0
}
4864
4865
static PyObject *
4866
long_mod(PyObject *a, PyObject *b)
4867
6.33M
{
4868
6.33M
    PyLongObject *mod;
4869
4870
6.33M
    CHECK_BINOP(a, b);
4871
4872
6.33M
    if (l_mod((PyLongObject*)a, (PyLongObject*)b, &mod) < 0)
4873
0
        mod = NULL;
4874
6.33M
    return (PyObject *)mod;
4875
6.33M
}
4876
4877
static PyObject *
4878
long_divmod(PyObject *a, PyObject *b)
4879
58.3k
{
4880
58.3k
    PyLongObject *div, *mod;
4881
58.3k
    PyObject *z;
4882
4883
58.3k
    CHECK_BINOP(a, b);
4884
4885
58.3k
    if (l_divmod((PyLongObject*)a, (PyLongObject*)b, &div, &mod) < 0) {
4886
0
        return NULL;
4887
0
    }
4888
58.3k
    z = PyTuple_New(2);
4889
58.3k
    if (z != NULL) {
4890
58.3k
        PyTuple_SET_ITEM(z, 0, (PyObject *) div);
4891
58.3k
        PyTuple_SET_ITEM(z, 1, (PyObject *) mod);
4892
58.3k
    }
4893
0
    else {
4894
0
        Py_DECREF(div);
4895
0
        Py_DECREF(mod);
4896
0
    }
4897
58.3k
    return z;
4898
58.3k
}
4899
4900
4901
/* Compute an inverse to a modulo n, or raise ValueError if a is not
4902
   invertible modulo n. Assumes n is positive. The inverse returned
4903
   is whatever falls out of the extended Euclidean algorithm: it may
4904
   be either positive or negative, but will be smaller than n in
4905
   absolute value.
4906
4907
   Pure Python equivalent for long_invmod:
4908
4909
        def invmod(a, n):
4910
            b, c = 1, 0
4911
            while n:
4912
                q, r = divmod(a, n)
4913
                a, b, c, n = n, c, b - q*c, r
4914
4915
            # at this point a is the gcd of the original inputs
4916
            if a == 1:
4917
                return b
4918
            raise ValueError("Not invertible")
4919
*/
4920
4921
static PyLongObject *
4922
long_invmod(PyLongObject *a, PyLongObject *n)
4923
0
{
4924
    /* Should only ever be called for positive n */
4925
0
    assert(_PyLong_IsPositive(n));
4926
4927
0
    Py_INCREF(a);
4928
0
    PyLongObject *b = (PyLongObject *)Py_NewRef(_PyLong_GetOne());
4929
0
    PyLongObject *c = (PyLongObject *)Py_NewRef(_PyLong_GetZero());
4930
0
    Py_INCREF(n);
4931
4932
    /* references now owned: a, b, c, n */
4933
0
    while (!_PyLong_IsZero(n)) {
4934
0
        PyLongObject *q, *r, *s, *t;
4935
4936
0
        if (l_divmod(a, n, &q, &r) == -1) {
4937
0
            goto Error;
4938
0
        }
4939
0
        Py_SETREF(a, n);
4940
0
        n = r;
4941
0
        t = (PyLongObject *)long_mul(q, c);
4942
0
        Py_DECREF(q);
4943
0
        if (t == NULL) {
4944
0
            goto Error;
4945
0
        }
4946
0
        s = long_sub(b, t);
4947
0
        Py_DECREF(t);
4948
0
        if (s == NULL) {
4949
0
            goto Error;
4950
0
        }
4951
0
        Py_SETREF(b, c);
4952
0
        c = s;
4953
0
    }
4954
    /* references now owned: a, b, c, n */
4955
4956
0
    Py_DECREF(c);
4957
0
    Py_DECREF(n);
4958
0
    if (long_compare(a, (PyLongObject *)_PyLong_GetOne())) {
4959
        /* a != 1; we don't have an inverse. */
4960
0
        Py_DECREF(a);
4961
0
        Py_DECREF(b);
4962
0
        PyErr_SetString(PyExc_ValueError,
4963
0
                        "base is not invertible for the given modulus");
4964
0
        return NULL;
4965
0
    }
4966
0
    else {
4967
        /* a == 1; b gives an inverse modulo n */
4968
0
        Py_DECREF(a);
4969
0
        return b;
4970
0
    }
4971
4972
0
  Error:
4973
0
    Py_DECREF(a);
4974
0
    Py_DECREF(b);
4975
0
    Py_DECREF(c);
4976
0
    Py_DECREF(n);
4977
0
    return NULL;
4978
0
}
4979
4980
4981
/* pow(v, w, x) */
4982
static PyObject *
4983
long_pow(PyObject *v, PyObject *w, PyObject *x)
4984
1.06M
{
4985
1.06M
    PyLongObject *a, *b, *c; /* a,b,c = v,w,x */
4986
1.06M
    int negativeOutput = 0;  /* if x<0 return negative output */
4987
4988
1.06M
    PyLongObject *z = NULL;  /* accumulated result */
4989
1.06M
    Py_ssize_t i, j;             /* counters */
4990
1.06M
    PyLongObject *temp = NULL;
4991
1.06M
    PyLongObject *a2 = NULL; /* may temporarily hold a**2 % c */
4992
4993
    /* k-ary values.  If the exponent is large enough, table is
4994
     * precomputed so that table[i] == a**(2*i+1) % c for i in
4995
     * range(EXP_TABLE_LEN).
4996
     * Note: this is uninitialized stack trash: don't pay to set it to known
4997
     * values unless it's needed. Instead ensure that num_table_entries is
4998
     * set to the number of entries actually filled whenever a branch to the
4999
     * Error or Done labels is possible.
5000
     */
5001
1.06M
    PyLongObject *table[EXP_TABLE_LEN];
5002
1.06M
    Py_ssize_t num_table_entries = 0;
5003
5004
    /* a, b, c = v, w, x */
5005
1.06M
    CHECK_BINOP(v, w);
5006
1.06M
    a = (PyLongObject*)Py_NewRef(v);
5007
1.06M
    b = (PyLongObject*)Py_NewRef(w);
5008
1.06M
    if (PyLong_Check(x)) {
5009
0
        c = (PyLongObject *)Py_NewRef(x);
5010
0
    }
5011
1.06M
    else if (x == Py_None)
5012
1.06M
        c = NULL;
5013
0
    else {
5014
0
        Py_DECREF(a);
5015
0
        Py_DECREF(b);
5016
0
        Py_RETURN_NOTIMPLEMENTED;
5017
0
    }
5018
5019
1.06M
    if (_PyLong_IsNegative(b) && c == NULL) {
5020
        /* if exponent is negative and there's no modulus:
5021
               return a float.  This works because we know
5022
               that this calls float_pow() which converts its
5023
               arguments to double. */
5024
6
        Py_DECREF(a);
5025
6
        Py_DECREF(b);
5026
6
        return PyFloat_Type.tp_as_number->nb_power(v, w, x);
5027
6
    }
5028
5029
1.06M
    if (c) {
5030
        /* if modulus == 0:
5031
               raise ValueError() */
5032
0
        if (_PyLong_IsZero(c)) {
5033
0
            PyErr_SetString(PyExc_ValueError,
5034
0
                            "pow() 3rd argument cannot be 0");
5035
0
            goto Error;
5036
0
        }
5037
5038
        /* if modulus < 0:
5039
               negativeOutput = True
5040
               modulus = -modulus */
5041
0
        if (_PyLong_IsNegative(c)) {
5042
0
            negativeOutput = 1;
5043
0
            temp = (PyLongObject *)_PyLong_Copy(c);
5044
0
            if (temp == NULL)
5045
0
                goto Error;
5046
0
            Py_SETREF(c, temp);
5047
0
            temp = NULL;
5048
0
            _PyLong_Negate(&c);
5049
0
            if (c == NULL)
5050
0
                goto Error;
5051
0
        }
5052
5053
        /* if modulus == 1:
5054
               return 0 */
5055
0
        if (_PyLong_IsNonNegativeCompact(c) && (c->long_value.ob_digit[0] == 1)) {
5056
0
            z = (PyLongObject *)PyLong_FromLong(0L);
5057
0
            goto Done;
5058
0
        }
5059
5060
        /* if exponent is negative, negate the exponent and
5061
           replace the base with a modular inverse */
5062
0
        if (_PyLong_IsNegative(b)) {
5063
0
            temp = (PyLongObject *)_PyLong_Copy(b);
5064
0
            if (temp == NULL)
5065
0
                goto Error;
5066
0
            Py_SETREF(b, temp);
5067
0
            temp = NULL;
5068
0
            _PyLong_Negate(&b);
5069
0
            if (b == NULL)
5070
0
                goto Error;
5071
5072
0
            temp = long_invmod(a, c);
5073
0
            if (temp == NULL)
5074
0
                goto Error;
5075
0
            Py_SETREF(a, temp);
5076
0
            temp = NULL;
5077
0
        }
5078
5079
        /* Reduce base by modulus in some cases:
5080
           1. If base < 0.  Forcing the base non-negative makes things easier.
5081
           2. If base is obviously larger than the modulus.  The "small
5082
              exponent" case later can multiply directly by base repeatedly,
5083
              while the "large exponent" case multiplies directly by base 31
5084
              times.  It can be unboundedly faster to multiply by
5085
              base % modulus instead.
5086
           We could _always_ do this reduction, but l_mod() isn't cheap,
5087
           so we only do it when it buys something. */
5088
0
        if (_PyLong_IsNegative(a) || _PyLong_DigitCount(a) > _PyLong_DigitCount(c)) {
5089
0
            if (l_mod(a, c, &temp) < 0)
5090
0
                goto Error;
5091
0
            Py_SETREF(a, temp);
5092
0
            temp = NULL;
5093
0
        }
5094
0
    }
5095
5096
    /* At this point a, b, and c are guaranteed non-negative UNLESS
5097
       c is NULL, in which case a may be negative. */
5098
5099
1.06M
    z = (PyLongObject *)PyLong_FromLong(1L);
5100
1.06M
    if (z == NULL)
5101
0
        goto Error;
5102
5103
    /* Perform a modular reduction, X = X % c, but leave X alone if c
5104
     * is NULL.
5105
     */
5106
1.06M
#define REDUCE(X)                                       \
5107
4.31M
    do {                                                \
5108
4.31M
        if (c != NULL) {                                \
5109
0
            if (l_mod(X, c, &temp) < 0)                 \
5110
0
                goto Error;                             \
5111
0
            Py_XDECREF(X);                              \
5112
0
            X = temp;                                   \
5113
0
            temp = NULL;                                \
5114
0
        }                                               \
5115
4.31M
    } while(0)
5116
5117
    /* Multiply two values, then reduce the result:
5118
       result = X*Y % c.  If c is NULL, skip the mod. */
5119
1.06M
#define MULT(X, Y, result)                      \
5120
4.31M
    do {                                        \
5121
4.31M
        temp = (PyLongObject *)long_mul(X, Y);  \
5122
4.31M
        if (temp == NULL)                       \
5123
4.31M
            goto Error;                         \
5124
4.31M
        Py_XDECREF(result);                     \
5125
4.31M
        result = temp;                          \
5126
4.31M
        temp = NULL;                            \
5127
4.31M
        REDUCE(result);                         \
5128
4.31M
    } while(0)
5129
5130
1.06M
    i = _PyLong_SignedDigitCount(b);
5131
1.06M
    digit bi = i ? b->long_value.ob_digit[i-1] : 0;
5132
1.06M
    digit bit;
5133
1.06M
    if (i <= 1 && bi <= 3) {
5134
        /* aim for minimal overhead */
5135
6
        if (bi >= 2) {
5136
2
            MULT(a, a, z);
5137
2
            if (bi == 3) {
5138
2
                MULT(z, a, z);
5139
2
            }
5140
2
        }
5141
4
        else if (bi == 1) {
5142
            /* Multiplying by 1 serves two purposes: if `a` is of an int
5143
             * subclass, makes the result an int (e.g., pow(False, 1) returns
5144
             * 0 instead of False), and potentially reduces `a` by the modulus.
5145
             */
5146
2
            MULT(a, z, z);
5147
2
        }
5148
        /* else bi is 0, and z==1 is correct */
5149
6
    }
5150
1.06M
    else if (i <= HUGE_EXP_CUTOFF / PyLong_SHIFT ) {
5151
        /* Left-to-right binary exponentiation (HAC Algorithm 14.79) */
5152
        /* https://cacr.uwaterloo.ca/hac/about/chap14.pdf            */
5153
5154
        /* Find the first significant exponent bit. Search right to left
5155
         * because we're primarily trying to cut overhead for small powers.
5156
         */
5157
1.06M
        assert(bi);  /* else there is no significant bit */
5158
1.06M
        Py_SETREF(z, (PyLongObject*)Py_NewRef(a));
5159
3.24M
        for (bit = 2; ; bit <<= 1) {
5160
3.24M
            if (bit > bi) { /* found the first bit */
5161
1.06M
                assert((bi & bit) == 0);
5162
1.06M
                bit >>= 1;
5163
1.06M
                assert(bi & bit);
5164
1.06M
                break;
5165
1.06M
            }
5166
3.24M
        }
5167
1.06M
        for (--i, bit >>= 1;;) {
5168
3.24M
            for (; bit != 0; bit >>= 1) {
5169
2.17M
                MULT(z, z, z);
5170
2.17M
                if (bi & bit) {
5171
2.13M
                    MULT(z, a, z);
5172
2.13M
                }
5173
2.17M
            }
5174
1.06M
            if (--i < 0) {
5175
1.06M
                break;
5176
1.06M
            }
5177
0
            bi = b->long_value.ob_digit[i];
5178
0
            bit = (digit)1 << (PyLong_SHIFT-1);
5179
0
        }
5180
1.06M
    }
5181
0
    else {
5182
        /* Left-to-right k-ary sliding window exponentiation
5183
         * (Handbook of Applied Cryptography (HAC) Algorithm 14.85)
5184
         */
5185
0
        table[0] = (PyLongObject*)Py_NewRef(a);
5186
0
        num_table_entries = 1;
5187
0
        MULT(a, a, a2);
5188
        /* table[i] == a**(2*i + 1) % c */
5189
0
        for (i = 1; i < EXP_TABLE_LEN; ++i) {
5190
0
            table[i] = NULL; /* must set to known value for MULT */
5191
0
            MULT(table[i-1], a2, table[i]);
5192
0
            ++num_table_entries; /* incremented iff MULT succeeded */
5193
0
        }
5194
0
        Py_CLEAR(a2);
5195
5196
        /* Repeatedly extract the next (no more than) EXP_WINDOW_SIZE bits
5197
         * into `pending`, starting with the next 1 bit.  The current bit
5198
         * length of `pending` is `blen`.
5199
         */
5200
0
        int pending = 0, blen = 0;
5201
0
#define ABSORB_PENDING  do { \
5202
0
            int ntz = 0; /* number of trailing zeroes in `pending` */ \
5203
0
            assert(pending && blen); \
5204
0
            assert(pending >> (blen - 1)); \
5205
0
            assert(pending >> blen == 0); \
5206
0
            while ((pending & 1) == 0) { \
5207
0
                ++ntz; \
5208
0
                pending >>= 1; \
5209
0
            } \
5210
0
            assert(ntz < blen); \
5211
0
            blen -= ntz; \
5212
0
            do { \
5213
0
                MULT(z, z, z); \
5214
0
            } while (--blen); \
5215
0
            MULT(z, table[pending >> 1], z); \
5216
0
            while (ntz-- > 0) \
5217
0
                MULT(z, z, z); \
5218
0
            assert(blen == 0); \
5219
0
            pending = 0; \
5220
0
        } while(0)
5221
5222
0
        for (i = _PyLong_SignedDigitCount(b) - 1; i >= 0; --i) {
5223
0
            const digit bi = b->long_value.ob_digit[i];
5224
0
            for (j = PyLong_SHIFT - 1; j >= 0; --j) {
5225
0
                const int bit = (bi >> j) & 1;
5226
0
                pending = (pending << 1) | bit;
5227
0
                if (pending) {
5228
0
                    ++blen;
5229
0
                    if (blen == EXP_WINDOW_SIZE)
5230
0
                        ABSORB_PENDING;
5231
0
                }
5232
0
                else /* absorb strings of 0 bits */
5233
0
                    MULT(z, z, z);
5234
0
            }
5235
0
        }
5236
0
        if (pending)
5237
0
            ABSORB_PENDING;
5238
0
    }
5239
5240
1.06M
    if (negativeOutput && !_PyLong_IsZero(z)) {
5241
0
        temp = long_sub(z, c);
5242
0
        if (temp == NULL)
5243
0
            goto Error;
5244
0
        Py_SETREF(z, temp);
5245
0
        temp = NULL;
5246
0
    }
5247
1.06M
    goto Done;
5248
5249
1.06M
  Error:
5250
0
    Py_CLEAR(z);
5251
    /* fall through */
5252
1.06M
  Done:
5253
1.06M
    for (i = 0; i < num_table_entries; ++i)
5254
0
        Py_DECREF(table[i]);
5255
1.06M
    Py_DECREF(a);
5256
1.06M
    Py_DECREF(b);
5257
1.06M
    Py_XDECREF(c);
5258
1.06M
    Py_XDECREF(a2);
5259
1.06M
    Py_XDECREF(temp);
5260
1.06M
    return (PyObject *)z;
5261
0
}
5262
5263
static PyObject *
5264
long_invert(PyObject *self)
5265
33.7k
{
5266
33.7k
    PyLongObject *v = _PyLong_CAST(self);
5267
5268
    /* Implement ~x as -(x+1) */
5269
33.7k
    if (_PyLong_IsCompact(v))
5270
33.7k
        return (PyObject*)_PyLong_FromSTwoDigits(~medium_value(v));
5271
5272
0
    PyLongObject *x = long_add(v, (PyLongObject *)_PyLong_GetOne());
5273
0
    if (x == NULL)
5274
0
        return NULL;
5275
0
    _PyLong_Negate(&x);
5276
    /* No need for maybe_small_long here, since any small longs
5277
       will have been caught in the _PyLong_IsCompact() fast path. */
5278
0
    return (PyObject *)x;
5279
0
}
5280
5281
static PyLongObject *
5282
long_neg(PyLongObject *v)
5283
1.14M
{
5284
1.14M
    if (_PyLong_IsCompact(v)) {
5285
1.01M
        return _PyLong_FromSTwoDigits(-medium_value(v));
5286
1.01M
    }
5287
5288
128k
    PyLongObject *z = (PyLongObject *)_PyLong_Copy(v);
5289
128k
    if (z != NULL) {
5290
128k
        _PyLong_FlipSign(z);
5291
128k
    }
5292
128k
    return z;
5293
1.14M
}
5294
5295
static PyObject *
5296
long_neg_method(PyObject *v)
5297
1.14M
{
5298
1.14M
    return (PyObject*)long_neg(_PyLong_CAST(v));
5299
1.14M
}
5300
5301
static PyLongObject*
5302
long_abs(PyLongObject *v)
5303
0
{
5304
0
    if (_PyLong_IsNegative(v))
5305
0
        return long_neg(v);
5306
0
    else
5307
0
        return (PyLongObject*)long_long((PyObject *)v);
5308
0
}
5309
5310
static PyObject *
5311
long_abs_method(PyObject *v)
5312
0
{
5313
0
    return (PyObject*)long_abs(_PyLong_CAST(v));
5314
0
}
5315
5316
static int
5317
long_bool(PyObject *v)
5318
735k
{
5319
735k
    return !_PyLong_IsZero(_PyLong_CAST(v));
5320
735k
}
5321
5322
/* Inner function for both long_rshift and _PyLong_Rshift, shifting an
5323
   integer right by PyLong_SHIFT*wordshift + remshift bits.
5324
   wordshift should be nonnegative. */
5325
5326
static PyObject *
5327
long_rshift1(PyLongObject *a, Py_ssize_t wordshift, digit remshift)
5328
227k
{
5329
227k
    PyLongObject *z = NULL;
5330
227k
    Py_ssize_t newsize, hishift, size_a;
5331
227k
    twodigits accum;
5332
227k
    int a_negative;
5333
5334
    /* Total number of bits shifted must be nonnegative. */
5335
227k
    assert(wordshift >= 0);
5336
227k
    assert(remshift < PyLong_SHIFT);
5337
5338
    /* Fast path for small a. */
5339
227k
    if (_PyLong_IsCompact(a)) {
5340
226k
        stwodigits m, x;
5341
226k
        digit shift;
5342
226k
        m = medium_value(a);
5343
226k
        shift = wordshift == 0 ? remshift : PyLong_SHIFT;
5344
226k
        x = m < 0 ? ~(~m >> shift) : m >> shift;
5345
226k
        return (PyObject*)_PyLong_FromSTwoDigits(x);
5346
226k
    }
5347
5348
179
    a_negative = _PyLong_IsNegative(a);
5349
179
    size_a = _PyLong_DigitCount(a);
5350
5351
179
    if (a_negative) {
5352
        /* For negative 'a', adjust so that 0 < remshift <= PyLong_SHIFT,
5353
           while keeping PyLong_SHIFT*wordshift + remshift the same. This
5354
           ensures that 'newsize' is computed correctly below. */
5355
0
        if (remshift == 0) {
5356
0
            if (wordshift == 0) {
5357
                /* Can only happen if the original shift was 0. */
5358
0
                return long_long((PyObject *)a);
5359
0
            }
5360
0
            remshift = PyLong_SHIFT;
5361
0
            --wordshift;
5362
0
        }
5363
0
    }
5364
5365
179
    assert(wordshift >= 0);
5366
179
    newsize = size_a - wordshift;
5367
179
    if (newsize <= 0) {
5368
        /* Shifting all the bits of 'a' out gives either -1 or 0. */
5369
0
        return PyLong_FromLong(-a_negative);
5370
0
    }
5371
179
    z = long_alloc(newsize);
5372
179
    if (z == NULL) {
5373
0
        return NULL;
5374
0
    }
5375
179
    hishift = PyLong_SHIFT - remshift;
5376
5377
179
    accum = a->long_value.ob_digit[wordshift];
5378
179
    if (a_negative) {
5379
        /*
5380
            For a positive integer a and nonnegative shift, we have:
5381
5382
                (-a) >> shift == -((a + 2**shift - 1) >> shift).
5383
5384
            In the addition `a + (2**shift - 1)`, the low `wordshift` digits of
5385
            `2**shift - 1` all have value `PyLong_MASK`, so we get a carry out
5386
            from the bottom `wordshift` digits when at least one of the least
5387
            significant `wordshift` digits of `a` is nonzero. Digit `wordshift`
5388
            of `2**shift - 1` has value `PyLong_MASK >> hishift`.
5389
        */
5390
0
        _PyLong_SetSignAndDigitCount(z, -1, newsize);
5391
5392
0
        digit sticky = 0;
5393
0
        for (Py_ssize_t j = 0; j < wordshift; j++) {
5394
0
            sticky |= a->long_value.ob_digit[j];
5395
0
        }
5396
0
        accum += (PyLong_MASK >> hishift) + (digit)(sticky != 0);
5397
0
    }
5398
5399
179
    accum >>= remshift;
5400
586
    for (Py_ssize_t i = 0, j = wordshift + 1; j < size_a; i++, j++) {
5401
407
        accum += (twodigits)a->long_value.ob_digit[j] << hishift;
5402
407
        z->long_value.ob_digit[i] = (digit)(accum & PyLong_MASK);
5403
407
        accum >>= PyLong_SHIFT;
5404
407
    }
5405
179
    assert(accum <= PyLong_MASK);
5406
179
    z->long_value.ob_digit[newsize - 1] = (digit)accum;
5407
5408
179
    z = maybe_small_long(long_normalize(z));
5409
179
    return (PyObject *)z;
5410
179
}
5411
5412
static PyObject *
5413
long_rshift(PyObject *a, PyObject *b)
5414
263k
{
5415
263k
    int64_t shiftby;
5416
5417
263k
    CHECK_BINOP(a, b);
5418
5419
263k
    if (_PyLong_IsNegative((PyLongObject *)b)) {
5420
0
        PyErr_SetString(PyExc_ValueError, "negative shift count");
5421
0
        return NULL;
5422
0
    }
5423
263k
    if (_PyLong_IsZero((PyLongObject *)a)) {
5424
36.2k
        return PyLong_FromLong(0);
5425
36.2k
    }
5426
227k
    if (PyLong_AsInt64(b, &shiftby) < 0) {
5427
0
        if (!PyErr_ExceptionMatches(PyExc_OverflowError)) {
5428
0
            return NULL;
5429
0
        }
5430
0
        PyErr_Clear();
5431
0
        if (_PyLong_IsNegative((PyLongObject *)a)) {
5432
0
            return PyLong_FromLong(-1);
5433
0
        }
5434
0
        else {
5435
0
            return PyLong_FromLong(0);
5436
0
        }
5437
0
    }
5438
227k
    return _PyLong_Rshift(a, shiftby);
5439
227k
}
5440
5441
/* Return a >> shiftby. */
5442
PyObject *
5443
_PyLong_Rshift(PyObject *a, int64_t shiftby)
5444
227k
{
5445
227k
    Py_ssize_t wordshift;
5446
227k
    digit remshift;
5447
5448
227k
    assert(PyLong_Check(a));
5449
227k
    assert(shiftby >= 0);
5450
227k
    if (_PyLong_IsZero((PyLongObject *)a)) {
5451
0
        return PyLong_FromLong(0);
5452
0
    }
5453
#if PY_SSIZE_T_MAX <= INT64_MAX / PyLong_SHIFT
5454
    if (shiftby > (int64_t)PY_SSIZE_T_MAX * PyLong_SHIFT) {
5455
        if (_PyLong_IsNegative((PyLongObject *)a)) {
5456
            return PyLong_FromLong(-1);
5457
        }
5458
        else {
5459
            return PyLong_FromLong(0);
5460
        }
5461
    }
5462
#endif
5463
227k
    wordshift = (Py_ssize_t)(shiftby / PyLong_SHIFT);
5464
227k
    remshift = (digit)(shiftby % PyLong_SHIFT);
5465
227k
    return long_rshift1((PyLongObject *)a, wordshift, remshift);
5466
227k
}
5467
5468
static PyObject *
5469
long_lshift1(PyLongObject *a, Py_ssize_t wordshift, digit remshift)
5470
6.57M
{
5471
6.57M
    PyLongObject *z = NULL;
5472
6.57M
    Py_ssize_t oldsize, newsize, i, j;
5473
6.57M
    twodigits accum;
5474
5475
6.57M
    if (wordshift == 0 && _PyLong_IsCompact(a)) {
5476
3.21M
        stwodigits m = medium_value(a);
5477
        // bypass undefined shift operator behavior
5478
3.21M
        stwodigits x = m < 0 ? -(-m << remshift) : m << remshift;
5479
3.21M
        return (PyObject*)_PyLong_FromSTwoDigits(x);
5480
3.21M
    }
5481
5482
3.35M
    oldsize = _PyLong_DigitCount(a);
5483
3.35M
    newsize = oldsize + wordshift;
5484
3.35M
    if (remshift)
5485
3.35M
        ++newsize;
5486
3.35M
    z = long_alloc(newsize);
5487
3.35M
    if (z == NULL)
5488
0
        return NULL;
5489
3.35M
    if (_PyLong_IsNegative(a)) {
5490
1
        assert(Py_REFCNT(z) == 1);
5491
1
        _PyLong_FlipSign(z);
5492
1
    }
5493
3.35M
    for (i = 0; i < wordshift; i++)
5494
1.52k
        z->long_value.ob_digit[i] = 0;
5495
3.35M
    accum = 0;
5496
10.1M
    for (j = 0; j < oldsize; i++, j++) {
5497
6.82M
        accum |= (twodigits)a->long_value.ob_digit[j] << remshift;
5498
6.82M
        z->long_value.ob_digit[i] = (digit)(accum & PyLong_MASK);
5499
6.82M
        accum >>= PyLong_SHIFT;
5500
6.82M
    }
5501
3.35M
    if (remshift)
5502
3.35M
        z->long_value.ob_digit[newsize-1] = (digit)accum;
5503
1
    else
5504
3.35M
        assert(!accum);
5505
3.35M
    z = long_normalize(z);
5506
3.35M
    return (PyObject *) maybe_small_long(z);
5507
3.35M
}
5508
5509
5510
static PyObject *
5511
long_lshift_method(PyObject *aa, PyObject *bb)
5512
7.65M
{
5513
7.65M
    CHECK_BINOP(aa, bb);
5514
7.65M
    PyLongObject *a = (PyLongObject*)aa;
5515
7.65M
    PyLongObject *b = (PyLongObject*)bb;
5516
5517
7.65M
    if (_PyLong_IsNegative(b)) {
5518
0
        PyErr_SetString(PyExc_ValueError, "negative shift count");
5519
0
        return NULL;
5520
0
    }
5521
7.65M
    if (_PyLong_IsZero(a)) {
5522
1.07M
        return PyLong_FromLong(0);
5523
1.07M
    }
5524
5525
6.57M
    int64_t shiftby;
5526
6.57M
    if (PyLong_AsInt64(bb, &shiftby) < 0) {
5527
0
        if (PyErr_ExceptionMatches(PyExc_OverflowError)) {
5528
0
            PyErr_SetString(PyExc_OverflowError,
5529
0
                            "too many digits in integer");
5530
0
        }
5531
0
        return NULL;
5532
0
    }
5533
6.57M
    return long_lshift_int64(a, shiftby);
5534
6.57M
}
5535
5536
/* Return a << shiftby. */
5537
static PyObject *
5538
long_lshift_int64(PyLongObject *a, int64_t shiftby)
5539
6.57M
{
5540
6.57M
    assert(shiftby >= 0);
5541
5542
6.57M
    if (_PyLong_IsZero(a)) {
5543
0
        return PyLong_FromLong(0);
5544
0
    }
5545
#if PY_SSIZE_T_MAX <= INT64_MAX / PyLong_SHIFT
5546
    if (shiftby > (int64_t)PY_SSIZE_T_MAX * PyLong_SHIFT) {
5547
        PyErr_SetString(PyExc_OverflowError,
5548
                        "too many digits in integer");
5549
        return NULL;
5550
    }
5551
#endif
5552
6.57M
    Py_ssize_t wordshift = (Py_ssize_t)(shiftby / PyLong_SHIFT);
5553
6.57M
    digit remshift = (digit)(shiftby % PyLong_SHIFT);
5554
6.57M
    return long_lshift1(a, wordshift, remshift);
5555
6.57M
}
5556
5557
PyObject *
5558
_PyLong_Lshift(PyObject *a, int64_t shiftby)
5559
0
{
5560
0
    return long_lshift_int64(_PyLong_CAST(a), shiftby);
5561
0
}
5562
5563
5564
/* Compute two's complement of digit vector a[0:m], writing result to
5565
   z[0:m].  The digit vector a need not be normalized, but should not
5566
   be entirely zero.  a and z may point to the same digit vector. */
5567
5568
static void
5569
v_complement(digit *z, digit *a, Py_ssize_t m)
5570
8
{
5571
8
    Py_ssize_t i;
5572
8
    digit carry = 1;
5573
24
    for (i = 0; i < m; ++i) {
5574
16
        carry += a[i] ^ PyLong_MASK;
5575
16
        z[i] = carry & PyLong_MASK;
5576
16
        carry >>= PyLong_SHIFT;
5577
16
    }
5578
8
    assert(carry == 0);
5579
8
}
5580
5581
/* Bitwise and/xor/or operations */
5582
5583
static PyObject *
5584
long_bitwise(PyLongObject *a,
5585
             char op,  /* '&', '|', '^' */
5586
             PyLongObject *b)
5587
25.0k
{
5588
25.0k
    int nega, negb, negz;
5589
25.0k
    Py_ssize_t size_a, size_b, size_z, i;
5590
25.0k
    PyLongObject *z;
5591
5592
    /* Bitwise operations for negative numbers operate as though
5593
       on a two's complement representation.  So convert arguments
5594
       from sign-magnitude to two's complement, and convert the
5595
       result back to sign-magnitude at the end. */
5596
5597
    /* If a is negative, replace it by its two's complement. */
5598
25.0k
    size_a = _PyLong_DigitCount(a);
5599
25.0k
    nega = _PyLong_IsNegative(a);
5600
25.0k
    if (nega) {
5601
8
        z = long_alloc(size_a);
5602
8
        if (z == NULL)
5603
0
            return NULL;
5604
8
        v_complement(z->long_value.ob_digit, a->long_value.ob_digit, size_a);
5605
8
        a = z;
5606
8
    }
5607
25.0k
    else
5608
        /* Keep reference count consistent. */
5609
25.0k
        Py_INCREF(a);
5610
5611
    /* Same for b. */
5612
25.0k
    size_b = _PyLong_DigitCount(b);
5613
25.0k
    negb = _PyLong_IsNegative(b);
5614
25.0k
    if (negb) {
5615
0
        z = long_alloc(size_b);
5616
0
        if (z == NULL) {
5617
0
            Py_DECREF(a);
5618
0
            return NULL;
5619
0
        }
5620
0
        v_complement(z->long_value.ob_digit, b->long_value.ob_digit, size_b);
5621
0
        b = z;
5622
0
    }
5623
25.0k
    else
5624
25.0k
        Py_INCREF(b);
5625
5626
    /* Swap a and b if necessary to ensure size_a >= size_b. */
5627
25.0k
    if (size_a < size_b) {
5628
18.4k
        z = a; a = b; b = z;
5629
18.4k
        size_z = size_a; size_a = size_b; size_b = size_z;
5630
18.4k
        negz = nega; nega = negb; negb = negz;
5631
18.4k
    }
5632
5633
    /* JRH: The original logic here was to allocate the result value (z)
5634
       as the longer of the two operands.  However, there are some cases
5635
       where the result is guaranteed to be shorter than that: AND of two
5636
       positives, OR of two negatives: use the shorter number.  AND with
5637
       mixed signs: use the positive number.  OR with mixed signs: use the
5638
       negative number.
5639
    */
5640
25.0k
    switch (op) {
5641
156
    case '^':
5642
156
        negz = nega ^ negb;
5643
156
        size_z = size_a;
5644
156
        break;
5645
24.8k
    case '&':
5646
24.8k
        negz = nega & negb;
5647
24.8k
        size_z = negb ? size_a : size_b;
5648
24.8k
        break;
5649
64
    case '|':
5650
64
        negz = nega | negb;
5651
64
        size_z = negb ? size_b : size_a;
5652
64
        break;
5653
0
    default:
5654
0
        Py_UNREACHABLE();
5655
25.0k
    }
5656
5657
    /* We allow an extra digit if z is negative, to make sure that
5658
       the final two's complement of z doesn't overflow. */
5659
25.0k
    z = long_alloc(size_z + negz);
5660
25.0k
    if (z == NULL) {
5661
0
        Py_DECREF(a);
5662
0
        Py_DECREF(b);
5663
0
        return NULL;
5664
0
    }
5665
5666
    /* Compute digits for overlap of a and b. */
5667
25.0k
    switch(op) {
5668
24.8k
    case '&':
5669
44.8k
        for (i = 0; i < size_b; ++i)
5670
19.9k
            z->long_value.ob_digit[i] = a->long_value.ob_digit[i] & b->long_value.ob_digit[i];
5671
24.8k
        break;
5672
64
    case '|':
5673
112
        for (i = 0; i < size_b; ++i)
5674
48
            z->long_value.ob_digit[i] = a->long_value.ob_digit[i] | b->long_value.ob_digit[i];
5675
64
        break;
5676
156
    case '^':
5677
594
        for (i = 0; i < size_b; ++i)
5678
438
            z->long_value.ob_digit[i] = a->long_value.ob_digit[i] ^ b->long_value.ob_digit[i];
5679
156
        break;
5680
0
    default:
5681
0
        Py_UNREACHABLE();
5682
25.0k
    }
5683
5684
    /* Copy any remaining digits of a, inverting if necessary. */
5685
25.0k
    if (op == '^' && negb)
5686
0
        for (; i < size_z; ++i)
5687
0
            z->long_value.ob_digit[i] = a->long_value.ob_digit[i] ^ PyLong_MASK;
5688
25.0k
    else if (i < size_z)
5689
182
        memcpy(&z->long_value.ob_digit[i], &a->long_value.ob_digit[i],
5690
182
               (size_z-i)*sizeof(digit));
5691
5692
    /* Complement result if negative. */
5693
25.0k
    if (negz) {
5694
0
        _PyLong_FlipSign(z);
5695
0
        z->long_value.ob_digit[size_z] = PyLong_MASK;
5696
0
        v_complement(z->long_value.ob_digit, z->long_value.ob_digit, size_z+1);
5697
0
    }
5698
5699
25.0k
    Py_DECREF(a);
5700
25.0k
    Py_DECREF(b);
5701
25.0k
    return (PyObject *)maybe_small_long(long_normalize(z));
5702
25.0k
}
5703
5704
static PyObject *
5705
long_and(PyObject *a, PyObject *b)
5706
25.6k
{
5707
25.6k
    CHECK_BINOP(a, b);
5708
25.6k
    PyLongObject *x = (PyLongObject*)a;
5709
25.6k
    PyLongObject *y = (PyLongObject*)b;
5710
25.6k
    if (_PyLong_IsCompact(x) && _PyLong_IsCompact(y)) {
5711
762
        return (PyObject*)_PyLong_FromSTwoDigits(medium_value(x) & medium_value(y));
5712
762
    }
5713
24.8k
    return long_bitwise(x, '&', y);
5714
25.6k
}
5715
5716
static PyObject *
5717
long_xor(PyObject *a, PyObject *b)
5718
183
{
5719
183
    CHECK_BINOP(a, b);
5720
183
    PyLongObject *x = (PyLongObject*)a;
5721
183
    PyLongObject *y = (PyLongObject*)b;
5722
183
    if (_PyLong_IsCompact(x) && _PyLong_IsCompact(y)) {
5723
27
        return (PyObject*)_PyLong_FromSTwoDigits(medium_value(x) ^ medium_value(y));
5724
27
    }
5725
156
    return long_bitwise(x, '^', y);
5726
183
}
5727
5728
static PyObject *
5729
long_or(PyObject *a, PyObject *b)
5730
568
{
5731
568
    CHECK_BINOP(a, b);
5732
568
    PyLongObject *x = (PyLongObject*)a;
5733
568
    PyLongObject *y = (PyLongObject*)b;
5734
568
    if (_PyLong_IsCompact(x) && _PyLong_IsCompact(y)) {
5735
504
        return (PyObject*)_PyLong_FromSTwoDigits(medium_value(x) | medium_value(y));
5736
504
    }
5737
64
    return long_bitwise(x, '|', y);
5738
568
}
5739
5740
static PyObject *
5741
long_long(PyObject *v)
5742
5.25M
{
5743
5.25M
    if (PyLong_CheckExact(v)) {
5744
5.25M
        return Py_NewRef(v);
5745
5.25M
    }
5746
0
    else {
5747
0
        return _PyLong_Copy((PyLongObject *)v);
5748
0
    }
5749
5.25M
}
5750
5751
PyObject *
5752
_PyLong_GCD(PyObject *aarg, PyObject *barg)
5753
0
{
5754
0
    PyLongObject *a, *b, *c = NULL, *d = NULL, *r;
5755
0
    stwodigits x, y, q, s, t, c_carry, d_carry;
5756
0
    stwodigits A, B, C, D, T;
5757
0
    int nbits, k;
5758
0
    digit *a_digit, *b_digit, *c_digit, *d_digit, *a_end, *b_end;
5759
5760
0
    a = (PyLongObject *)aarg;
5761
0
    b = (PyLongObject *)barg;
5762
0
    if (_PyLong_DigitCount(a) <= 2 && _PyLong_DigitCount(b) <= 2) {
5763
0
        Py_INCREF(a);
5764
0
        Py_INCREF(b);
5765
0
        goto simple;
5766
0
    }
5767
5768
    /* Initial reduction: make sure that 0 <= b <= a. */
5769
0
    a = long_abs(a);
5770
0
    if (a == NULL)
5771
0
        return NULL;
5772
0
    b = long_abs(b);
5773
0
    if (b == NULL) {
5774
0
        Py_DECREF(a);
5775
0
        return NULL;
5776
0
    }
5777
0
    if (long_compare(a, b) < 0) {
5778
0
        r = a;
5779
0
        a = b;
5780
0
        b = r;
5781
0
    }
5782
    /* We now own references to a and b */
5783
5784
0
    Py_ssize_t size_a, size_b, alloc_a, alloc_b;
5785
0
    alloc_a = _PyLong_DigitCount(a);
5786
0
    alloc_b = _PyLong_DigitCount(b);
5787
    /* reduce until a fits into 2 digits */
5788
0
    while ((size_a = _PyLong_DigitCount(a)) > 2) {
5789
0
        nbits = bit_length_digit(a->long_value.ob_digit[size_a-1]);
5790
        /* extract top 2*PyLong_SHIFT bits of a into x, along with
5791
           corresponding bits of b into y */
5792
0
        size_b = _PyLong_DigitCount(b);
5793
0
        assert(size_b <= size_a);
5794
0
        if (size_b == 0) {
5795
0
            if (size_a < alloc_a) {
5796
0
                r = (PyLongObject *)_PyLong_Copy(a);
5797
0
                Py_DECREF(a);
5798
0
            }
5799
0
            else
5800
0
                r = a;
5801
0
            Py_DECREF(b);
5802
0
            Py_XDECREF(c);
5803
0
            Py_XDECREF(d);
5804
0
            return (PyObject *)r;
5805
0
        }
5806
0
        x = (((twodigits)a->long_value.ob_digit[size_a-1] << (2*PyLong_SHIFT-nbits)) |
5807
0
             ((twodigits)a->long_value.ob_digit[size_a-2] << (PyLong_SHIFT-nbits)) |
5808
0
             (a->long_value.ob_digit[size_a-3] >> nbits));
5809
5810
0
        y = ((size_b >= size_a - 2 ? b->long_value.ob_digit[size_a-3] >> nbits : 0) |
5811
0
             (size_b >= size_a - 1 ? (twodigits)b->long_value.ob_digit[size_a-2] << (PyLong_SHIFT-nbits) : 0) |
5812
0
             (size_b >= size_a ? (twodigits)b->long_value.ob_digit[size_a-1] << (2*PyLong_SHIFT-nbits) : 0));
5813
5814
        /* inner loop of Lehmer's algorithm; A, B, C, D never grow
5815
           larger than PyLong_MASK during the algorithm. */
5816
0
        A = 1; B = 0; C = 0; D = 1;
5817
0
        for (k=0;; k++) {
5818
0
            if (y-C == 0)
5819
0
                break;
5820
0
            q = (x+(A-1))/(y-C);
5821
0
            s = B+q*D;
5822
0
            t = x-q*y;
5823
0
            if (s > t)
5824
0
                break;
5825
0
            x = y; y = t;
5826
0
            t = A+q*C; A = D; B = C; C = s; D = t;
5827
0
        }
5828
5829
0
        if (k == 0) {
5830
            /* no progress; do a Euclidean step */
5831
0
            if (l_mod(a, b, &r) < 0)
5832
0
                goto error;
5833
0
            Py_SETREF(a, b);
5834
0
            b = r;
5835
0
            alloc_a = alloc_b;
5836
0
            alloc_b = _PyLong_DigitCount(b);
5837
0
            continue;
5838
0
        }
5839
5840
        /*
5841
          a, b = A*b-B*a, D*a-C*b if k is odd
5842
          a, b = A*a-B*b, D*b-C*a if k is even
5843
        */
5844
0
        if (k&1) {
5845
0
            T = -A; A = -B; B = T;
5846
0
            T = -C; C = -D; D = T;
5847
0
        }
5848
0
        if (c != NULL) {
5849
0
            assert(size_a >= 0);
5850
0
            _PyLong_SetSignAndDigitCount(c, 1, size_a);
5851
0
        }
5852
0
        else if (_PyObject_IsUniquelyReferenced((PyObject *)a)) {
5853
0
            c = (PyLongObject*)Py_NewRef(a);
5854
0
        }
5855
0
        else {
5856
0
            alloc_a = size_a;
5857
0
            c = long_alloc(size_a);
5858
0
            if (c == NULL)
5859
0
                goto error;
5860
0
        }
5861
5862
0
        if (d != NULL) {
5863
0
            assert(size_a >= 0);
5864
0
            _PyLong_SetSignAndDigitCount(d, 1, size_a);
5865
0
        }
5866
0
        else if (_PyObject_IsUniquelyReferenced((PyObject *)b)
5867
0
                 && size_a <= alloc_b) {
5868
0
            d = (PyLongObject*)Py_NewRef(b);
5869
0
            assert(size_a >= 0);
5870
0
            _PyLong_SetSignAndDigitCount(d, 1, size_a);
5871
0
        }
5872
0
        else {
5873
0
            alloc_b = size_a;
5874
0
            d = long_alloc(size_a);
5875
0
            if (d == NULL)
5876
0
                goto error;
5877
0
        }
5878
0
        a_end = a->long_value.ob_digit + size_a;
5879
0
        b_end = b->long_value.ob_digit + size_b;
5880
5881
        /* compute new a and new b in parallel */
5882
0
        a_digit = a->long_value.ob_digit;
5883
0
        b_digit = b->long_value.ob_digit;
5884
0
        c_digit = c->long_value.ob_digit;
5885
0
        d_digit = d->long_value.ob_digit;
5886
0
        c_carry = 0;
5887
0
        d_carry = 0;
5888
0
        while (b_digit < b_end) {
5889
0
            c_carry += (A * *a_digit) - (B * *b_digit);
5890
0
            d_carry += (D * *b_digit++) - (C * *a_digit++);
5891
0
            *c_digit++ = (digit)(c_carry & PyLong_MASK);
5892
0
            *d_digit++ = (digit)(d_carry & PyLong_MASK);
5893
0
            c_carry >>= PyLong_SHIFT;
5894
0
            d_carry >>= PyLong_SHIFT;
5895
0
        }
5896
0
        while (a_digit < a_end) {
5897
0
            c_carry += A * *a_digit;
5898
0
            d_carry -= C * *a_digit++;
5899
0
            *c_digit++ = (digit)(c_carry & PyLong_MASK);
5900
0
            *d_digit++ = (digit)(d_carry & PyLong_MASK);
5901
0
            c_carry >>= PyLong_SHIFT;
5902
0
            d_carry >>= PyLong_SHIFT;
5903
0
        }
5904
0
        assert(c_carry == 0);
5905
0
        assert(d_carry == 0);
5906
5907
0
        Py_INCREF(c);
5908
0
        Py_INCREF(d);
5909
0
        Py_DECREF(a);
5910
0
        Py_DECREF(b);
5911
0
        a = long_normalize(c);
5912
0
        b = long_normalize(d);
5913
0
    }
5914
0
    Py_XDECREF(c);
5915
0
    Py_XDECREF(d);
5916
5917
0
simple:
5918
0
    assert(Py_REFCNT(a) > 0);
5919
0
    assert(Py_REFCNT(b) > 0);
5920
/* Issue #24999: use two shifts instead of ">> 2*PyLong_SHIFT" to avoid
5921
   undefined behaviour when LONG_MAX type is smaller than 60 bits */
5922
0
#if LONG_MAX >> PyLong_SHIFT >> PyLong_SHIFT
5923
    /* a fits into a long, so b must too */
5924
0
    x = PyLong_AsLong((PyObject *)a);
5925
0
    y = PyLong_AsLong((PyObject *)b);
5926
#elif LLONG_MAX >> PyLong_SHIFT >> PyLong_SHIFT
5927
    x = PyLong_AsLongLong((PyObject *)a);
5928
    y = PyLong_AsLongLong((PyObject *)b);
5929
#else
5930
# error "_PyLong_GCD"
5931
#endif
5932
0
    x = Py_ABS(x);
5933
0
    y = Py_ABS(y);
5934
0
    Py_DECREF(a);
5935
0
    Py_DECREF(b);
5936
5937
    /* usual Euclidean algorithm for longs */
5938
0
    while (y != 0) {
5939
0
        t = y;
5940
0
        y = x % y;
5941
0
        x = t;
5942
0
    }
5943
0
#if LONG_MAX >> PyLong_SHIFT >> PyLong_SHIFT
5944
0
    return PyLong_FromLong(x);
5945
#elif LLONG_MAX >> PyLong_SHIFT >> PyLong_SHIFT
5946
    return PyLong_FromLongLong(x);
5947
#else
5948
# error "_PyLong_GCD"
5949
#endif
5950
5951
0
error:
5952
0
    Py_DECREF(a);
5953
0
    Py_DECREF(b);
5954
0
    Py_XDECREF(c);
5955
0
    Py_XDECREF(d);
5956
0
    return NULL;
5957
0
}
5958
5959
static PyObject *
5960
long_float(PyObject *v)
5961
0
{
5962
0
    double result;
5963
0
    result = PyLong_AsDouble(v);
5964
0
    if (result == -1.0 && PyErr_Occurred())
5965
0
        return NULL;
5966
0
    return PyFloat_FromDouble(result);
5967
0
}
5968
5969
static PyObject *
5970
long_subtype_new(PyTypeObject *type, PyObject *x, PyObject *obase);
5971
5972
/*[clinic input]
5973
@classmethod
5974
int.__new__ as long_new
5975
    x: object(c_default="NULL") = 0
5976
    /
5977
    base as obase: object(c_default="NULL") = 10
5978
[clinic start generated code]*/
5979
5980
static PyObject *
5981
long_new_impl(PyTypeObject *type, PyObject *x, PyObject *obase)
5982
/*[clinic end generated code: output=e47cfe777ab0f24c input=81c98f418af9eb6f]*/
5983
4.67M
{
5984
4.67M
    Py_ssize_t base;
5985
5986
4.67M
    if (type != &PyLong_Type)
5987
3.36k
        return long_subtype_new(type, x, obase); /* Wimp out */
5988
4.67M
    if (x == NULL) {
5989
24
        if (obase != NULL) {
5990
0
            PyErr_SetString(PyExc_TypeError,
5991
0
                            "int() missing string argument");
5992
0
            return NULL;
5993
0
        }
5994
24
        return PyLong_FromLong(0L);
5995
24
    }
5996
    /* default base and limit, forward to standard implementation */
5997
4.67M
    if (obase == NULL)
5998
3.34k
        return PyNumber_Long(x);
5999
6000
4.67M
    base = PyNumber_AsSsize_t(obase, NULL);
6001
4.67M
    if (base == -1 && PyErr_Occurred())
6002
0
        return NULL;
6003
4.67M
    if ((base != 0 && base < 2) || base > 36) {
6004
0
        PyErr_SetString(PyExc_ValueError,
6005
0
                        "int() base must be >= 2 and <= 36, or 0");
6006
0
        return NULL;
6007
0
    }
6008
6009
4.67M
    if (PyUnicode_Check(x))
6010
3.19M
        return PyLong_FromUnicodeObject(x, (int)base);
6011
1.47M
    else if (PyByteArray_Check(x) || PyBytes_Check(x)) {
6012
1.47M
        const char *string;
6013
1.47M
        if (PyByteArray_Check(x))
6014
1.47M
            string = PyByteArray_AS_STRING(x);
6015
0
        else
6016
0
            string = PyBytes_AS_STRING(x);
6017
1.47M
        return _PyLong_FromBytes(string, Py_SIZE(x), (int)base);
6018
1.47M
    }
6019
0
    else {
6020
0
        PyErr_SetString(PyExc_TypeError,
6021
0
                        "int() can't convert non-string with explicit base");
6022
0
        return NULL;
6023
0
    }
6024
4.67M
}
6025
6026
/* Wimpy, slow approach to tp_new calls for subtypes of int:
6027
   first create a regular int from whatever arguments we got,
6028
   then allocate a subtype instance and initialize it from
6029
   the regular int.  The regular int is then thrown away.
6030
*/
6031
static PyObject *
6032
long_subtype_new(PyTypeObject *type, PyObject *x, PyObject *obase)
6033
3.36k
{
6034
3.36k
    PyLongObject *tmp, *newobj;
6035
3.36k
    Py_ssize_t i, n;
6036
6037
3.36k
    assert(PyType_IsSubtype(type, &PyLong_Type));
6038
3.36k
    tmp = (PyLongObject *)long_new_impl(&PyLong_Type, x, obase);
6039
3.36k
    if (tmp == NULL)
6040
0
        return NULL;
6041
3.36k
    assert(PyLong_Check(tmp));
6042
3.36k
    n = _PyLong_DigitCount(tmp);
6043
    /* Fast operations for single digit integers (including zero)
6044
     * assume that there is always at least one digit present. */
6045
3.36k
    if (n == 0) {
6046
160
        n = 1;
6047
160
    }
6048
3.36k
    newobj = (PyLongObject *)type->tp_alloc(type, n);
6049
3.36k
    if (newobj == NULL) {
6050
0
        Py_DECREF(tmp);
6051
0
        return NULL;
6052
0
    }
6053
3.36k
    assert(PyLong_Check(newobj));
6054
3.36k
    newobj->long_value.lv_tag = tmp->long_value.lv_tag & ~IMMORTALITY_BIT_MASK;
6055
6.77k
    for (i = 0; i < n; i++) {
6056
3.40k
        newobj->long_value.ob_digit[i] = tmp->long_value.ob_digit[i];
6057
3.40k
    }
6058
3.36k
    Py_DECREF(tmp);
6059
3.36k
    return (PyObject *)newobj;
6060
3.36k
}
6061
6062
/*[clinic input]
6063
int.__getnewargs__
6064
[clinic start generated code]*/
6065
6066
static PyObject *
6067
int___getnewargs___impl(PyObject *self)
6068
/*[clinic end generated code: output=839a49de3f00b61b input=5904770ab1fb8c75]*/
6069
0
{
6070
0
    return Py_BuildValue("(N)", _PyLong_Copy((PyLongObject *)self));
6071
0
}
6072
6073
static PyObject *
6074
long_get0(PyObject *Py_UNUSED(self), void *Py_UNUSED(context))
6075
0
{
6076
0
    return PyLong_FromLong(0L);
6077
0
}
6078
6079
static PyObject *
6080
long_get1(PyObject *Py_UNUSED(self), void *Py_UNUSED(ignored))
6081
0
{
6082
0
    return PyLong_FromLong(1L);
6083
0
}
6084
6085
/*[clinic input]
6086
int.__format__
6087
6088
    format_spec: unicode
6089
    /
6090
6091
Convert to a string according to format_spec.
6092
[clinic start generated code]*/
6093
6094
static PyObject *
6095
int___format___impl(PyObject *self, PyObject *format_spec)
6096
/*[clinic end generated code: output=b4929dee9ae18689 input=d5e1254a47e8d1dc]*/
6097
249
{
6098
249
    _PyUnicodeWriter writer;
6099
249
    int ret;
6100
6101
249
    _PyUnicodeWriter_Init(&writer);
6102
249
    ret = _PyLong_FormatAdvancedWriter(
6103
249
        &writer,
6104
249
        self,
6105
249
        format_spec, 0, PyUnicode_GET_LENGTH(format_spec));
6106
249
    if (ret == -1) {
6107
0
        _PyUnicodeWriter_Dealloc(&writer);
6108
0
        return NULL;
6109
0
    }
6110
249
    return _PyUnicodeWriter_Finish(&writer);
6111
249
}
6112
6113
/* Return a pair (q, r) such that a = b * q + r, and
6114
   abs(r) <= abs(b)/2, with equality possible only if q is even.
6115
   In other words, q == a / b, rounded to the nearest integer using
6116
   round-half-to-even. */
6117
6118
PyObject *
6119
_PyLong_DivmodNear(PyObject *a, PyObject *b)
6120
0
{
6121
0
    PyLongObject *quo = NULL, *rem = NULL;
6122
0
    PyObject *twice_rem, *result, *temp;
6123
0
    int quo_is_odd, quo_is_neg;
6124
0
    Py_ssize_t cmp;
6125
6126
    /* Equivalent Python code:
6127
6128
       def divmod_near(a, b):
6129
           q, r = divmod(a, b)
6130
           # round up if either r / b > 0.5, or r / b == 0.5 and q is odd.
6131
           # The expression r / b > 0.5 is equivalent to 2 * r > b if b is
6132
           # positive, 2 * r < b if b negative.
6133
           greater_than_half = 2*r > b if b > 0 else 2*r < b
6134
           exactly_half = 2*r == b
6135
           if greater_than_half or exactly_half and q % 2 == 1:
6136
               q += 1
6137
               r -= b
6138
           return q, r
6139
6140
    */
6141
0
    if (!PyLong_Check(a) || !PyLong_Check(b)) {
6142
0
        PyErr_SetString(PyExc_TypeError,
6143
0
                        "non-integer arguments in division");
6144
0
        return NULL;
6145
0
    }
6146
6147
    /* Do a and b have different signs?  If so, quotient is negative. */
6148
0
    quo_is_neg = (_PyLong_IsNegative((PyLongObject *)a)) != (_PyLong_IsNegative((PyLongObject *)b));
6149
6150
0
    if (long_divrem((PyLongObject*)a, (PyLongObject*)b, &quo, &rem) < 0)
6151
0
        goto error;
6152
6153
    /* compare twice the remainder with the divisor, to see
6154
       if we need to adjust the quotient and remainder */
6155
0
    twice_rem = long_lshift_int64(rem, 1);
6156
0
    if (twice_rem == NULL)
6157
0
        goto error;
6158
0
    if (quo_is_neg) {
6159
0
        temp = (PyObject*)long_neg((PyLongObject*)twice_rem);
6160
0
        Py_SETREF(twice_rem, temp);
6161
0
        if (twice_rem == NULL)
6162
0
            goto error;
6163
0
    }
6164
0
    cmp = long_compare((PyLongObject *)twice_rem, (PyLongObject *)b);
6165
0
    Py_DECREF(twice_rem);
6166
6167
0
    quo_is_odd = (quo->long_value.ob_digit[0] & 1) != 0;
6168
0
    if ((_PyLong_IsNegative((PyLongObject *)b) ? cmp < 0 : cmp > 0) || (cmp == 0 && quo_is_odd)) {
6169
        /* fix up quotient */
6170
0
        PyObject *one = _PyLong_GetOne();  // borrowed reference
6171
0
        if (quo_is_neg)
6172
0
            temp = (PyObject*)long_sub(quo, (PyLongObject *)one);
6173
0
        else
6174
0
            temp = (PyObject*)long_add(quo, (PyLongObject *)one);
6175
0
        Py_SETREF(quo, (PyLongObject *)temp);
6176
0
        if (quo == NULL)
6177
0
            goto error;
6178
        /* and remainder */
6179
0
        if (quo_is_neg)
6180
0
            temp = (PyObject*)long_add(rem, (PyLongObject *)b);
6181
0
        else
6182
0
            temp = (PyObject*)long_sub(rem, (PyLongObject *)b);
6183
0
        Py_SETREF(rem, (PyLongObject *)temp);
6184
0
        if (rem == NULL)
6185
0
            goto error;
6186
0
    }
6187
6188
0
    result = PyTuple_New(2);
6189
0
    if (result == NULL)
6190
0
        goto error;
6191
6192
    /* PyTuple_SET_ITEM steals references */
6193
0
    PyTuple_SET_ITEM(result, 0, (PyObject *)quo);
6194
0
    PyTuple_SET_ITEM(result, 1, (PyObject *)rem);
6195
0
    return result;
6196
6197
0
  error:
6198
0
    Py_XDECREF(quo);
6199
0
    Py_XDECREF(rem);
6200
0
    return NULL;
6201
0
}
6202
6203
/*[clinic input]
6204
int.__round__
6205
6206
    ndigits as o_ndigits: object = None
6207
    /
6208
6209
Rounding an Integral returns itself.
6210
6211
Rounding with an ndigits argument also returns an integer.
6212
[clinic start generated code]*/
6213
6214
static PyObject *
6215
int___round___impl(PyObject *self, PyObject *o_ndigits)
6216
/*[clinic end generated code: output=954fda6b18875998 input=30c2aec788263144]*/
6217
0
{
6218
    /* To round an integer m to the nearest 10**n (n positive), we make use of
6219
     * the divmod_near operation, defined by:
6220
     *
6221
     *   divmod_near(a, b) = (q, r)
6222
     *
6223
     * where q is the nearest integer to the quotient a / b (the
6224
     * nearest even integer in the case of a tie) and r == a - q * b.
6225
     * Hence q * b = a - r is the nearest multiple of b to a,
6226
     * preferring even multiples in the case of a tie.
6227
     *
6228
     * So the nearest multiple of 10**n to m is:
6229
     *
6230
     *   m - divmod_near(m, 10**n)[1].
6231
     */
6232
0
    if (o_ndigits == Py_None)
6233
0
        return long_long(self);
6234
6235
0
    PyObject *ndigits = _PyNumber_Index(o_ndigits);
6236
0
    if (ndigits == NULL)
6237
0
        return NULL;
6238
6239
    /* if ndigits >= 0 then no rounding is necessary; return self unchanged */
6240
0
    if (!_PyLong_IsNegative((PyLongObject *)ndigits)) {
6241
0
        Py_DECREF(ndigits);
6242
0
        return long_long(self);
6243
0
    }
6244
6245
    /* result = self - divmod_near(self, 10 ** -ndigits)[1] */
6246
0
    PyObject *temp = (PyObject*)long_neg((PyLongObject*)ndigits);
6247
0
    Py_SETREF(ndigits, temp);
6248
0
    if (ndigits == NULL)
6249
0
        return NULL;
6250
6251
0
    PyObject *result = PyLong_FromLong(10);
6252
0
    if (result == NULL) {
6253
0
        Py_DECREF(ndigits);
6254
0
        return NULL;
6255
0
    }
6256
6257
0
    temp = long_pow(result, ndigits, Py_None);
6258
0
    Py_DECREF(ndigits);
6259
0
    Py_SETREF(result, temp);
6260
0
    if (result == NULL)
6261
0
        return NULL;
6262
6263
0
    temp = _PyLong_DivmodNear(self, result);
6264
0
    Py_SETREF(result, temp);
6265
0
    if (result == NULL)
6266
0
        return NULL;
6267
6268
0
    temp = (PyObject*)long_sub((PyLongObject*)self,
6269
0
                               (PyLongObject*)PyTuple_GET_ITEM(result, 1));
6270
0
    Py_SETREF(result, temp);
6271
6272
0
    return result;
6273
0
}
6274
6275
/*[clinic input]
6276
int.__sizeof__ -> Py_ssize_t
6277
6278
Returns size in memory, in bytes.
6279
[clinic start generated code]*/
6280
6281
static Py_ssize_t
6282
int___sizeof___impl(PyObject *self)
6283
/*[clinic end generated code: output=3303f008eaa6a0a5 input=9b51620c76fc4507]*/
6284
0
{
6285
    /* using Py_MAX(..., 1) because we always allocate space for at least
6286
       one digit, even though the integer zero has a digit count of 0 */
6287
0
    Py_ssize_t ndigits = Py_MAX(_PyLong_DigitCount((PyLongObject *)self), 1);
6288
0
    return Py_TYPE(self)->tp_basicsize + Py_TYPE(self)->tp_itemsize * ndigits;
6289
0
}
6290
6291
/*[clinic input]
6292
int.bit_length
6293
6294
Number of bits necessary to represent self in binary.
6295
6296
>>> bin(37)
6297
'0b100101'
6298
>>> (37).bit_length()
6299
6
6300
[clinic start generated code]*/
6301
6302
static PyObject *
6303
int_bit_length_impl(PyObject *self)
6304
/*[clinic end generated code: output=fc1977c9353d6a59 input=e4eb7a587e849a32]*/
6305
78
{
6306
78
    int64_t nbits = _PyLong_NumBits(self);
6307
78
    assert(nbits >= 0);
6308
78
    assert(!PyErr_Occurred());
6309
78
    return PyLong_FromInt64(nbits);
6310
78
}
6311
6312
static int
6313
popcount_digit(digit d)
6314
0
{
6315
    // digit can be larger than uint32_t, but only PyLong_SHIFT bits
6316
    // of it will be ever used.
6317
0
    static_assert(PyLong_SHIFT <= 32, "digit is larger than uint32_t");
6318
0
    return _Py_popcount32((uint32_t)d);
6319
0
}
6320
6321
/*[clinic input]
6322
@permit_long_summary
6323
int.bit_count
6324
6325
Number of ones in the binary representation of the absolute value of self.
6326
6327
Also known as the population count.
6328
6329
>>> bin(13)
6330
'0b1101'
6331
>>> (13).bit_count()
6332
3
6333
[clinic start generated code]*/
6334
6335
static PyObject *
6336
int_bit_count_impl(PyObject *self)
6337
/*[clinic end generated code: output=2e571970daf1e5c3 input=f2510a306761db15]*/
6338
0
{
6339
0
    assert(self != NULL);
6340
0
    assert(PyLong_Check(self));
6341
6342
0
    PyLongObject *z = (PyLongObject *)self;
6343
0
    Py_ssize_t ndigits = _PyLong_DigitCount(z);
6344
0
    int64_t bit_count = 0;
6345
6346
0
    for (Py_ssize_t i = 0; i < ndigits; i++) {
6347
0
        bit_count += popcount_digit(z->long_value.ob_digit[i]);
6348
0
    }
6349
6350
0
    return PyLong_FromInt64(bit_count);
6351
0
}
6352
6353
/*[clinic input]
6354
int.as_integer_ratio
6355
6356
Return a pair of integers, whose ratio is equal to the original int.
6357
6358
The ratio is in lowest terms and has a positive denominator.
6359
6360
>>> (10).as_integer_ratio()
6361
(10, 1)
6362
>>> (-10).as_integer_ratio()
6363
(-10, 1)
6364
>>> (0).as_integer_ratio()
6365
(0, 1)
6366
[clinic start generated code]*/
6367
6368
static PyObject *
6369
int_as_integer_ratio_impl(PyObject *self)
6370
/*[clinic end generated code: output=e60803ae1cc8621a input=384ff1766634bec2]*/
6371
0
{
6372
0
    PyObject *ratio_tuple;
6373
0
    PyObject *numerator = long_long(self);
6374
0
    if (numerator == NULL) {
6375
0
        return NULL;
6376
0
    }
6377
0
    ratio_tuple = PyTuple_Pack(2, numerator, _PyLong_GetOne());
6378
0
    Py_DECREF(numerator);
6379
0
    return ratio_tuple;
6380
0
}
6381
6382
/*[clinic input]
6383
int.to_bytes
6384
6385
    length: Py_ssize_t(allow_negative=False) = 1
6386
        Length of bytes object to use.  An OverflowError is raised if the
6387
        integer is not representable with the given number of bytes.  Default
6388
        is length 1.
6389
    byteorder: unicode(c_default="NULL") = "big"
6390
        The byte order used to represent the integer.  If byteorder is 'big',
6391
        the most significant byte is at the beginning of the byte array.  If
6392
        byteorder is 'little', the most significant byte is at the end of the
6393
        byte array.  To request the native byte order of the host system, use
6394
        sys.byteorder as the byte order value.  Default is to use 'big'.
6395
    *
6396
    signed as is_signed: bool = False
6397
        Determines whether two's complement is used to represent the integer.
6398
        If signed is False and a negative integer is given, an OverflowError
6399
        is raised.
6400
6401
Return an array of bytes representing an integer.
6402
[clinic start generated code]*/
6403
6404
static PyObject *
6405
int_to_bytes_impl(PyObject *self, Py_ssize_t length, PyObject *byteorder,
6406
                  int is_signed)
6407
/*[clinic end generated code: output=89c801df114050a3 input=66f9d0c20529b44f]*/
6408
820
{
6409
820
    int little_endian;
6410
820
    if (byteorder == NULL)
6411
0
        little_endian = 0;
6412
820
    else if (_PyUnicode_Equal(byteorder, &_Py_ID(little)))
6413
820
        little_endian = 1;
6414
0
    else if (_PyUnicode_Equal(byteorder, &_Py_ID(big)))
6415
0
        little_endian = 0;
6416
0
    else {
6417
0
        PyErr_SetString(PyExc_ValueError,
6418
0
            "byteorder must be either 'little' or 'big'");
6419
0
        return NULL;
6420
0
    }
6421
6422
820
    PyBytesWriter *writer = PyBytesWriter_Create(length);
6423
820
    if (writer == NULL) {
6424
0
        return NULL;
6425
0
    }
6426
6427
820
    if (_PyLong_AsByteArray((PyLongObject *)self,
6428
820
                            PyBytesWriter_GetData(writer),
6429
820
                            length, little_endian, is_signed, 1) < 0) {
6430
0
        PyBytesWriter_Discard(writer);
6431
0
        return NULL;
6432
0
    }
6433
6434
820
    return PyBytesWriter_Finish(writer);
6435
820
}
6436
6437
/*[clinic input]
6438
@classmethod
6439
int.from_bytes
6440
6441
    bytes as bytes_obj: object
6442
        Holds the array of bytes to convert.  The argument must either
6443
        support the buffer protocol or be an iterable object producing bytes.
6444
        Bytes and bytearray are examples of built-in objects that support the
6445
        buffer protocol.
6446
    byteorder: unicode(c_default="NULL") = "big"
6447
        The byte order used to represent the integer.  If byteorder is 'big',
6448
        the most significant byte is at the beginning of the byte array.  If
6449
        byteorder is 'little', the most significant byte is at the end of the
6450
        byte array.  To request the native byte order of the host system, use
6451
        sys.byteorder as the byte order value.  Default is to use 'big'.
6452
    *
6453
    signed as is_signed: bool = False
6454
        Indicates whether two's complement is used to represent the integer.
6455
6456
Return the integer represented by the given array of bytes.
6457
[clinic start generated code]*/
6458
6459
static PyObject *
6460
int_from_bytes_impl(PyTypeObject *type, PyObject *bytes_obj,
6461
                    PyObject *byteorder, int is_signed)
6462
/*[clinic end generated code: output=efc5d68e31f9314f input=2ff527997fe7b0c5]*/
6463
21.7k
{
6464
21.7k
    int little_endian;
6465
21.7k
    PyObject *long_obj, *bytes;
6466
6467
21.7k
    if (byteorder == NULL)
6468
0
        little_endian = 0;
6469
21.7k
    else if (_PyUnicode_Equal(byteorder, &_Py_ID(little)))
6470
17.0k
        little_endian = 1;
6471
4.66k
    else if (_PyUnicode_Equal(byteorder, &_Py_ID(big)))
6472
4.66k
        little_endian = 0;
6473
0
    else {
6474
0
        PyErr_SetString(PyExc_ValueError,
6475
0
            "byteorder must be either 'little' or 'big'");
6476
0
        return NULL;
6477
0
    }
6478
6479
21.7k
    bytes = PyObject_Bytes(bytes_obj);
6480
21.7k
    if (bytes == NULL)
6481
0
        return NULL;
6482
6483
21.7k
    long_obj = _PyLong_FromByteArray(
6484
21.7k
        (unsigned char *)PyBytes_AS_STRING(bytes), Py_SIZE(bytes),
6485
21.7k
        little_endian, is_signed);
6486
21.7k
    Py_DECREF(bytes);
6487
6488
21.7k
    if (long_obj != NULL && type != &PyLong_Type) {
6489
0
        Py_SETREF(long_obj, PyObject_CallOneArg((PyObject *)type, long_obj));
6490
0
    }
6491
6492
21.7k
    return long_obj;
6493
21.7k
}
6494
6495
static PyObject *
6496
long_long_meth(PyObject *self, PyObject *Py_UNUSED(ignored))
6497
0
{
6498
0
    return long_long(self);
6499
0
}
6500
6501
static PyObject *
6502
long_long_getter(PyObject *self, void *Py_UNUSED(ignored))
6503
0
{
6504
0
    return long_long(self);
6505
0
}
6506
6507
/*[clinic input]
6508
int.is_integer
6509
6510
Returns True. Exists for duck type compatibility with float.is_integer.
6511
[clinic start generated code]*/
6512
6513
static PyObject *
6514
int_is_integer_impl(PyObject *self)
6515
/*[clinic end generated code: output=90f8e794ce5430ef input=7e41c4d4416e05f2]*/
6516
0
{
6517
0
    Py_RETURN_TRUE;
6518
0
}
6519
6520
static PyObject *
6521
long_vectorcall(PyObject *type, PyObject * const*args,
6522
                 size_t nargsf, PyObject *kwnames)
6523
8.18M
{
6524
8.18M
    Py_ssize_t nargs = PyVectorcall_NARGS(nargsf);
6525
8.18M
    if (kwnames != NULL) {
6526
0
        PyThreadState *tstate = PyThreadState_GET();
6527
0
        return _PyObject_MakeTpCall(tstate, type, args, nargs, kwnames);
6528
0
    }
6529
8.18M
    switch (nargs) {
6530
0
        case 0:
6531
0
            return _PyLong_GetZero();
6532
3.51M
        case 1:
6533
3.51M
            return PyNumber_Long(args[0]);
6534
4.67M
        case 2:
6535
4.67M
            return long_new_impl(_PyType_CAST(type), args[0], args[1]);
6536
0
        default:
6537
0
            return PyErr_Format(PyExc_TypeError,
6538
0
                                "int expected at most 2 arguments, got %zd",
6539
0
                                nargs);
6540
8.18M
    }
6541
8.18M
}
6542
6543
static PyMethodDef long_methods[] = {
6544
    {"conjugate",       long_long_meth, METH_NOARGS,
6545
     "Returns self, the complex conjugate of any int."},
6546
    INT_BIT_LENGTH_METHODDEF
6547
    INT_BIT_COUNT_METHODDEF
6548
    INT_TO_BYTES_METHODDEF
6549
    INT_FROM_BYTES_METHODDEF
6550
    INT_AS_INTEGER_RATIO_METHODDEF
6551
    {"__trunc__",       long_long_meth, METH_NOARGS,
6552
     "Truncating an Integral returns itself."},
6553
    {"__floor__",       long_long_meth, METH_NOARGS,
6554
     "Flooring an Integral returns itself."},
6555
    {"__ceil__",        long_long_meth, METH_NOARGS,
6556
     "Ceiling of an Integral returns itself."},
6557
    INT___ROUND___METHODDEF
6558
    INT___GETNEWARGS___METHODDEF
6559
    INT___FORMAT___METHODDEF
6560
    INT___SIZEOF___METHODDEF
6561
    INT_IS_INTEGER_METHODDEF
6562
    {NULL,              NULL}           /* sentinel */
6563
};
6564
6565
static PyGetSetDef long_getset[] = {
6566
    {"real",
6567
     long_long_getter, NULL,
6568
     "the real part of a complex number",
6569
     NULL},
6570
    {"imag",
6571
     long_get0, NULL,
6572
     "the imaginary part of a complex number",
6573
     NULL},
6574
    {"numerator",
6575
     long_long_getter, NULL,
6576
     "the numerator of a rational number in lowest terms",
6577
     NULL},
6578
    {"denominator",
6579
     long_get1, NULL,
6580
     "the denominator of a rational number in lowest terms",
6581
     NULL},
6582
    {NULL}  /* Sentinel */
6583
};
6584
6585
PyDoc_STRVAR(long_doc,
6586
"int([x]) -> integer\n\
6587
int(x, base=10) -> integer\n\
6588
\n\
6589
Convert a number or string to an integer, or return 0 if no arguments\n\
6590
are given.  If x is a number, return x.__int__().  For floating-point\n\
6591
numbers, this truncates towards zero.\n\
6592
\n\
6593
If x is not a number or if base is given, then x must be a string,\n\
6594
bytes, or bytearray instance representing an integer literal in the\n\
6595
given base.  The literal can be preceded by '+' or '-' and be surrounded\n\
6596
by whitespace.  The base defaults to 10.  Valid bases are 0 and 2-36.\n\
6597
Base 0 means to interpret the base from the string as an integer literal.\n\
6598
>>> int('0b100', base=0)\n\
6599
4");
6600
6601
static PyNumberMethods long_as_number = {
6602
    long_add_method,            /*nb_add*/
6603
    long_sub_method,            /*nb_subtract*/
6604
    long_mul_method,            /*nb_multiply*/
6605
    long_mod,                   /*nb_remainder*/
6606
    long_divmod,                /*nb_divmod*/
6607
    long_pow,                   /*nb_power*/
6608
    long_neg_method,            /*nb_negative*/
6609
    long_long,                  /*tp_positive*/
6610
    long_abs_method,            /*tp_absolute*/
6611
    long_bool,                  /*tp_bool*/
6612
    long_invert,                /*nb_invert*/
6613
    long_lshift_method,         /*nb_lshift*/
6614
    long_rshift,                /*nb_rshift*/
6615
    long_and,                   /*nb_and*/
6616
    long_xor,                   /*nb_xor*/
6617
    long_or,                    /*nb_or*/
6618
    long_long,                  /*nb_int*/
6619
    0,                          /*nb_reserved*/
6620
    long_float,                 /*nb_float*/
6621
    0,                          /* nb_inplace_add */
6622
    0,                          /* nb_inplace_subtract */
6623
    0,                          /* nb_inplace_multiply */
6624
    0,                          /* nb_inplace_remainder */
6625
    0,                          /* nb_inplace_power */
6626
    0,                          /* nb_inplace_lshift */
6627
    0,                          /* nb_inplace_rshift */
6628
    0,                          /* nb_inplace_and */
6629
    0,                          /* nb_inplace_xor */
6630
    0,                          /* nb_inplace_or */
6631
    long_div,                   /* nb_floor_divide */
6632
    long_true_divide,           /* nb_true_divide */
6633
    0,                          /* nb_inplace_floor_divide */
6634
    0,                          /* nb_inplace_true_divide */
6635
    long_long,                  /* nb_index */
6636
};
6637
6638
PyTypeObject PyLong_Type = {
6639
    PyVarObject_HEAD_INIT(&PyType_Type, 0)
6640
    "int",                                      /* tp_name */
6641
    offsetof(PyLongObject, long_value.ob_digit),  /* tp_basicsize */
6642
    sizeof(digit),                              /* tp_itemsize */
6643
    long_dealloc,                               /* tp_dealloc */
6644
    0,                                          /* tp_vectorcall_offset */
6645
    0,                                          /* tp_getattr */
6646
    0,                                          /* tp_setattr */
6647
    0,                                          /* tp_as_async */
6648
    long_to_decimal_string,                     /* tp_repr */
6649
    &long_as_number,                            /* tp_as_number */
6650
    0,                                          /* tp_as_sequence */
6651
    0,                                          /* tp_as_mapping */
6652
    long_hash,                                  /* tp_hash */
6653
    0,                                          /* tp_call */
6654
    0,                                          /* tp_str */
6655
    PyObject_GenericGetAttr,                    /* tp_getattro */
6656
    0,                                          /* tp_setattro */
6657
    0,                                          /* tp_as_buffer */
6658
    Py_TPFLAGS_DEFAULT | Py_TPFLAGS_BASETYPE |
6659
        Py_TPFLAGS_LONG_SUBCLASS |
6660
        _Py_TPFLAGS_MATCH_SELF,               /* tp_flags */
6661
    long_doc,                                   /* tp_doc */
6662
    0,                                          /* tp_traverse */
6663
    0,                                          /* tp_clear */
6664
    long_richcompare,                           /* tp_richcompare */
6665
    0,                                          /* tp_weaklistoffset */
6666
    0,                                          /* tp_iter */
6667
    0,                                          /* tp_iternext */
6668
    long_methods,                               /* tp_methods */
6669
    0,                                          /* tp_members */
6670
    long_getset,                                /* tp_getset */
6671
    0,                                          /* tp_base */
6672
    0,                                          /* tp_dict */
6673
    0,                                          /* tp_descr_get */
6674
    0,                                          /* tp_descr_set */
6675
    0,                                          /* tp_dictoffset */
6676
    0,                                          /* tp_init */
6677
    0,                                          /* tp_alloc */
6678
    long_new,                                   /* tp_new */
6679
    PyObject_Free,                              /* tp_free */
6680
    .tp_vectorcall = long_vectorcall,
6681
    .tp_version_tag = _Py_TYPE_VERSION_INT,
6682
};
6683
6684
static PyTypeObject Int_InfoType;
6685
6686
PyDoc_STRVAR(int_info__doc__,
6687
"sys.int_info\n\
6688
\n\
6689
A named tuple that holds information about Python's\n\
6690
internal representation of integers.  The attributes are read only.");
6691
6692
static PyStructSequence_Field int_info_fields[] = {
6693
    {"bits_per_digit", "size of a digit in bits"},
6694
    {"sizeof_digit", "size in bytes of the C type used to represent a digit"},
6695
    {"default_max_str_digits", "maximum string conversion digits limitation"},
6696
    {"str_digits_check_threshold", "minimum positive value for int_max_str_digits"},
6697
    {NULL, NULL}
6698
};
6699
6700
static PyStructSequence_Desc int_info_desc = {
6701
    "sys.int_info",   /* name */
6702
    int_info__doc__,  /* doc */
6703
    int_info_fields,  /* fields */
6704
    4                 /* number of fields */
6705
};
6706
6707
PyObject *
6708
PyLong_GetInfo(void)
6709
28
{
6710
28
    PyObject* int_info;
6711
28
    int field = 0;
6712
28
    int_info = PyStructSequence_New(&Int_InfoType);
6713
28
    if (int_info == NULL)
6714
0
        return NULL;
6715
28
    PyStructSequence_SET_ITEM(int_info, field++,
6716
28
                              PyLong_FromLong(PyLong_SHIFT));
6717
28
    PyStructSequence_SET_ITEM(int_info, field++,
6718
28
                              PyLong_FromLong(sizeof(digit)));
6719
    /*
6720
     * The following two fields were added after investigating uses of
6721
     * sys.int_info in the wild: Exceedingly rarely used. The ONLY use found was
6722
     * numba using sys.int_info.bits_per_digit as attribute access rather than
6723
     * sequence unpacking. Cython and sympy also refer to sys.int_info but only
6724
     * as info for debugging. No concern about adding these in a backport.
6725
     */
6726
28
    PyStructSequence_SET_ITEM(int_info, field++,
6727
28
                              PyLong_FromLong(_PY_LONG_DEFAULT_MAX_STR_DIGITS));
6728
28
    PyStructSequence_SET_ITEM(int_info, field++,
6729
28
                              PyLong_FromLong(_PY_LONG_MAX_STR_DIGITS_THRESHOLD));
6730
28
    if (PyErr_Occurred()) {
6731
0
        Py_CLEAR(int_info);
6732
0
        return NULL;
6733
0
    }
6734
28
    return int_info;
6735
28
}
6736
6737
6738
/* runtime lifecycle */
6739
6740
PyStatus
6741
_PyLong_InitTypes(PyInterpreterState *interp)
6742
28
{
6743
    /* initialize int_info */
6744
28
    if (_PyStructSequence_InitBuiltin(interp, &Int_InfoType,
6745
28
                                      &int_info_desc) < 0)
6746
0
    {
6747
0
        return _PyStatus_ERR("can't init int info type");
6748
0
    }
6749
6750
28
    return _PyStatus_OK();
6751
28
}
6752
6753
6754
void
6755
_PyLong_FiniTypes(PyInterpreterState *interp)
6756
0
{
6757
0
    _PyStructSequence_FiniBuiltin(interp, &Int_InfoType);
6758
0
}
6759
6760
#undef PyUnstable_Long_IsCompact
6761
6762
int
6763
0
PyUnstable_Long_IsCompact(const PyLongObject* op) {
6764
0
    return _PyLong_IsCompact((PyLongObject*)op);
6765
0
}
6766
6767
#undef PyUnstable_Long_CompactValue
6768
6769
Py_ssize_t
6770
0
PyUnstable_Long_CompactValue(const PyLongObject* op) {
6771
0
    return _PyLong_CompactValue((PyLongObject*)op);
6772
0
}
6773
6774
6775
PyObject* PyLong_FromInt32(int32_t value)
6776
0
{
6777
0
    PYLONG_FROM_INT(uint32_t, int32_t, value);
6778
0
}
6779
6780
PyObject* PyLong_FromUInt32(uint32_t value)
6781
0
{
6782
0
    PYLONG_FROM_UINT(uint32_t, value);
6783
0
}
6784
6785
PyObject* PyLong_FromInt64(int64_t value)
6786
78
{
6787
78
    PYLONG_FROM_INT(uint64_t, int64_t, value);
6788
78
}
6789
6790
PyObject* PyLong_FromUInt64(uint64_t value)
6791
0
{
6792
0
    PYLONG_FROM_UINT(uint64_t, value);
6793
0
}
6794
6795
#define LONG_TO_INT(obj, value, type_name) \
6796
6.80M
    do { \
6797
6.80M
        int flags = (Py_ASNATIVEBYTES_NATIVE_ENDIAN \
6798
6.80M
                     | Py_ASNATIVEBYTES_ALLOW_INDEX); \
6799
6.80M
        Py_ssize_t bytes = PyLong_AsNativeBytes(obj, value, sizeof(*value), flags); \
6800
6.80M
        if (bytes < 0) { \
6801
0
            return -1; \
6802
0
        } \
6803
6.80M
        if ((size_t)bytes > sizeof(*value)) { \
6804
0
            PyErr_SetString(PyExc_OverflowError, \
6805
0
                            "Python int too large to convert to " type_name); \
6806
0
            return -1; \
6807
0
        } \
6808
6.80M
        return 0; \
6809
6.80M
    } while (0)
6810
6811
int PyLong_AsInt32(PyObject *obj, int32_t *value)
6812
0
{
6813
0
    LONG_TO_INT(obj, value, "C int32_t");
6814
0
}
6815
6816
int PyLong_AsInt64(PyObject *obj, int64_t *value)
6817
6.80M
{
6818
6.80M
    LONG_TO_INT(obj, value, "C int64_t");
6819
6.80M
}
6820
6821
#define LONG_TO_UINT(obj, value, type_name) \
6822
0
    do { \
6823
0
        int flags = (Py_ASNATIVEBYTES_NATIVE_ENDIAN \
6824
0
                     | Py_ASNATIVEBYTES_UNSIGNED_BUFFER \
6825
0
                     | Py_ASNATIVEBYTES_REJECT_NEGATIVE \
6826
0
                     | Py_ASNATIVEBYTES_ALLOW_INDEX); \
6827
0
        Py_ssize_t bytes = PyLong_AsNativeBytes(obj, value, sizeof(*value), flags); \
6828
0
        if (bytes < 0) { \
6829
0
            return -1; \
6830
0
        } \
6831
0
        if ((size_t)bytes > sizeof(*value)) { \
6832
0
            PyErr_SetString(PyExc_OverflowError, \
6833
0
                            "Python int too large to convert to " type_name); \
6834
0
            return -1; \
6835
0
        } \
6836
0
        return 0; \
6837
0
    } while (0)
6838
6839
int PyLong_AsUInt32(PyObject *obj, uint32_t *value)
6840
0
{
6841
0
    LONG_TO_UINT(obj, value, "C uint32_t");
6842
0
}
6843
6844
int PyLong_AsUInt64(PyObject *obj, uint64_t *value)
6845
0
{
6846
0
    LONG_TO_UINT(obj, value, "C uint64_t");
6847
0
}
6848
6849
6850
static const PyLongLayout PyLong_LAYOUT = {
6851
    .bits_per_digit = PyLong_SHIFT,
6852
    .digits_order = -1,  // least significant first
6853
    .digit_endianness = PY_LITTLE_ENDIAN ? -1 : 1,
6854
    .digit_size = sizeof(digit),
6855
};
6856
6857
6858
const PyLongLayout*
6859
PyLong_GetNativeLayout(void)
6860
169
{
6861
169
    return &PyLong_LAYOUT;
6862
169
}
6863
6864
6865
int
6866
PyLong_Export(PyObject *obj, PyLongExport *export_long)
6867
23
{
6868
23
    if (!PyLong_Check(obj)) {
6869
0
        memset(export_long, 0, sizeof(*export_long));
6870
0
        PyErr_Format(PyExc_TypeError, "expect int, got %T", obj);
6871
0
        return -1;
6872
0
    }
6873
6874
    // Fast-path: try to convert to a int64_t
6875
23
    int overflow;
6876
23
#if SIZEOF_LONG == 8
6877
23
    long value = PyLong_AsLongAndOverflow(obj, &overflow);
6878
#else
6879
    // Windows has 32-bit long, so use 64-bit long long instead
6880
    long long value = PyLong_AsLongLongAndOverflow(obj, &overflow);
6881
#endif
6882
23
    Py_BUILD_ASSERT(sizeof(value) == sizeof(int64_t));
6883
    // the function cannot fail since obj is a PyLongObject
6884
23
    assert(!(value == -1 && PyErr_Occurred()));
6885
6886
23
    if (!overflow) {
6887
12
        export_long->value = value;
6888
12
        export_long->negative = 0;
6889
12
        export_long->ndigits = 0;
6890
12
        export_long->digits = NULL;
6891
12
        export_long->_reserved = 0;
6892
12
    }
6893
11
    else {
6894
11
        PyLongObject *self = (PyLongObject*)obj;
6895
11
        export_long->value = 0;
6896
11
        export_long->negative = _PyLong_IsNegative(self);
6897
11
        export_long->ndigits = _PyLong_DigitCount(self);
6898
11
        if (export_long->ndigits == 0) {
6899
0
            export_long->ndigits = 1;
6900
0
        }
6901
11
        export_long->digits = self->long_value.ob_digit;
6902
11
        export_long->_reserved = (Py_uintptr_t)Py_NewRef(obj);
6903
11
    }
6904
23
    return 0;
6905
23
}
6906
6907
6908
void
6909
PyLong_FreeExport(PyLongExport *export_long)
6910
11
{
6911
11
    PyObject *obj = (PyObject*)export_long->_reserved;
6912
11
    if (obj) {
6913
11
        export_long->_reserved = 0;
6914
11
        Py_DECREF(obj);
6915
11
    }
6916
11
}
6917
6918
6919
/* --- PyLongWriter API --------------------------------------------------- */
6920
6921
PyLongWriter*
6922
PyLongWriter_Create(int negative, Py_ssize_t ndigits, void **digits)
6923
158
{
6924
158
    if (ndigits <= 0) {
6925
0
        PyErr_SetString(PyExc_ValueError, "ndigits must be positive");
6926
0
        goto error;
6927
0
    }
6928
158
    assert(digits != NULL);
6929
6930
158
    PyLongObject *obj = long_alloc(ndigits);
6931
158
    if (obj == NULL) {
6932
0
        goto error;
6933
0
    }
6934
158
    if (negative) {
6935
1
        _PyLong_FlipSign(obj);
6936
1
    }
6937
6938
158
    *digits = obj->long_value.ob_digit;
6939
158
    return (PyLongWriter*)obj;
6940
6941
0
error:
6942
0
    *digits = NULL;
6943
0
    return NULL;
6944
158
}
6945
6946
6947
void
6948
PyLongWriter_Discard(PyLongWriter *writer)
6949
0
{
6950
0
    if (writer == NULL) {
6951
0
        return;
6952
0
    }
6953
6954
0
    PyLongObject *obj = (PyLongObject *)writer;
6955
0
    assert(Py_REFCNT(obj) == 1);
6956
0
    Py_DECREF(obj);
6957
0
}
6958
6959
6960
PyObject*
6961
PyLongWriter_Finish(PyLongWriter *writer)
6962
158
{
6963
158
    PyLongObject *obj = (PyLongObject *)writer;
6964
158
    assert(Py_REFCNT(obj) == 1);
6965
6966
    // Normalize and get singleton if possible
6967
158
    obj = maybe_small_long(long_normalize(obj));
6968
6969
158
    return (PyObject*)obj;
6970
158
}