Coverage Report

Created: 2026-03-23 06:45

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/cpython/Python/flowgraph.c
Line
Count
Source
1
#include "Python.h"
2
#include "opcode.h"
3
#include "pycore_c_array.h"       // _Py_CArray_EnsureCapacity
4
#include "pycore_flowgraph.h"
5
#include "pycore_compile.h"
6
#include "pycore_intrinsics.h"
7
#include "pycore_pymem.h"         // _PyMem_IsPtrFreed()
8
#include "pycore_long.h"          // _PY_IS_SMALL_INT()
9
10
#include "pycore_opcode_utils.h"
11
#include "pycore_opcode_metadata.h" // OPCODE_HAS_ARG, etc
12
13
#include <stdbool.h>
14
15
16
#undef SUCCESS
17
#undef ERROR
18
710k
#define SUCCESS 0
19
5.39k
#define ERROR -1
20
21
#define RETURN_IF_ERROR(X)  \
22
1.07M
    if ((X) == -1) {        \
23
0
        return ERROR;       \
24
0
    }
25
26
228k
#define DEFAULT_BLOCK_SIZE 16
27
28
typedef _Py_SourceLocation location;
29
typedef _PyJumpTargetLabel jump_target_label;
30
31
typedef struct _PyCfgInstruction {
32
    int i_opcode;
33
    int i_oparg;
34
    _Py_SourceLocation i_loc;
35
    struct _PyCfgBasicblock *i_target; /* target block (if jump instruction) */
36
    struct _PyCfgBasicblock *i_except; /* target block when exception is raised */
37
} cfg_instr;
38
39
typedef struct _PyCfgBasicblock {
40
    /* Each basicblock in a compilation unit is linked via b_list in the
41
       reverse order that the block are allocated.  b_list points to the next
42
       block in this list, not to be confused with b_next, which is next by
43
       control flow. */
44
    struct _PyCfgBasicblock *b_list;
45
    /* The label of this block if it is a jump target, -1 otherwise */
46
    _PyJumpTargetLabel b_label;
47
    /* Exception stack at start of block, used by assembler to create the exception handling table */
48
    struct _PyCfgExceptStack *b_exceptstack;
49
    /* pointer to an array of instructions, initially NULL */
50
    cfg_instr *b_instr;
51
    /* If b_next is non-NULL, it is a pointer to the next
52
       block reached by normal control flow. */
53
    struct _PyCfgBasicblock *b_next;
54
    /* number of instructions used */
55
    int b_iused;
56
    /* length of instruction array (b_instr) */
57
    int b_ialloc;
58
    /* Used by add_checks_for_loads_of_unknown_variables */
59
    uint64_t b_unsafe_locals_mask;
60
    /* Number of predecessors that a block has. */
61
    int b_predecessors;
62
    /* depth of stack upon entry of block, computed by stackdepth() */
63
    int b_startdepth;
64
    /* Basic block is an exception handler that preserves lasti */
65
    unsigned b_preserve_lasti : 1;
66
    /* Used by compiler passes to mark whether they have visited a basic block. */
67
    unsigned b_visited : 1;
68
    /* b_except_handler is used by the cold-detection algorithm to mark exception targets */
69
    unsigned b_except_handler : 1;
70
    /* b_cold is true if this block is not perf critical (like an exception handler) */
71
    unsigned b_cold : 1;
72
    /* b_warm is used by the cold-detection algorithm to mark blocks which are definitely not cold */
73
    unsigned b_warm : 1;
74
} basicblock;
75
76
77
struct _PyCfgBuilder {
78
    /* The entryblock, at which control flow begins. All blocks of the
79
       CFG are reachable through the b_next links */
80
    struct _PyCfgBasicblock *g_entryblock;
81
    /* Pointer to the most recently allocated block.  By following
82
       b_list links, you can reach all allocated blocks. */
83
    struct _PyCfgBasicblock *g_block_list;
84
    /* pointer to the block currently being constructed */
85
    struct _PyCfgBasicblock *g_curblock;
86
    /* label for the next instruction to be placed */
87
    _PyJumpTargetLabel g_current_label;
88
};
89
90
typedef struct _PyCfgBuilder cfg_builder;
91
92
233k
#define SAME_LABEL(L1, L2) ((L1).id == (L2).id)
93
233k
#define IS_LABEL(L) (!SAME_LABEL((L), (NO_LABEL)))
94
95
#define LOCATION(LNO, END_LNO, COL, END_COL) \
96
    ((const _Py_SourceLocation){(LNO), (END_LNO), (COL), (END_COL)})
97
98
static inline int
99
is_block_push(cfg_instr *i)
100
1.01M
{
101
1.01M
    assert(OPCODE_HAS_ARG(i->i_opcode) || !IS_BLOCK_PUSH_OPCODE(i->i_opcode));
102
1.01M
    return IS_BLOCK_PUSH_OPCODE(i->i_opcode);
103
1.01M
}
104
105
static inline int
106
is_jump(cfg_instr *i)
107
883k
{
108
883k
    return OPCODE_HAS_JUMP(i->i_opcode);
109
883k
}
110
111
/* One arg*/
112
#define INSTR_SET_OP1(I, OP, ARG) \
113
22.7k
    do { \
114
22.7k
        assert(OPCODE_HAS_ARG(OP)); \
115
22.7k
        cfg_instr *_instr__ptr_ = (I); \
116
22.7k
        _instr__ptr_->i_opcode = (OP); \
117
22.7k
        _instr__ptr_->i_oparg = (ARG); \
118
22.7k
    } while (0);
119
120
/* No args*/
121
#define INSTR_SET_OP0(I, OP) \
122
41.6k
    do { \
123
41.6k
        assert(!OPCODE_HAS_ARG(OP)); \
124
41.6k
        cfg_instr *_instr__ptr_ = (I); \
125
41.6k
        _instr__ptr_->i_opcode = (OP); \
126
41.6k
        _instr__ptr_->i_oparg = 0; \
127
41.6k
    } while (0);
128
129
#define INSTR_SET_LOC(I, LOC) \
130
2.53k
    do { \
131
2.53k
        cfg_instr *_instr__ptr_ = (I); \
132
2.53k
        _instr__ptr_->i_loc = (LOC); \
133
2.53k
    } while (0);
134
135
/***** Blocks *****/
136
137
/* Returns the offset of the next instruction in the current block's
138
   b_instr array.  Resizes the b_instr as necessary.
139
   Returns -1 on failure.
140
*/
141
static int
142
basicblock_next_instr(basicblock *b)
143
228k
{
144
228k
    assert(b != NULL);
145
228k
    _Py_c_array_t array = {
146
228k
        .array = (void*)b->b_instr,
147
228k
        .allocated_entries = b->b_ialloc,
148
228k
        .item_size = sizeof(cfg_instr),
149
228k
        .initial_num_entries = DEFAULT_BLOCK_SIZE,
150
228k
    };
151
152
228k
    RETURN_IF_ERROR(_Py_CArray_EnsureCapacity(&array, b->b_iused + 1));
153
228k
    b->b_instr = array.array;
154
228k
    b->b_ialloc = array.allocated_entries;
155
228k
    return b->b_iused++;
156
228k
}
157
158
static cfg_instr *
159
757k
basicblock_last_instr(const basicblock *b) {
160
757k
    assert(b->b_iused >= 0);
161
757k
    if (b->b_iused > 0) {
162
692k
        assert(b->b_instr != NULL);
163
692k
        return &b->b_instr[b->b_iused - 1];
164
692k
    }
165
65.0k
    return NULL;
166
757k
}
167
168
/* Allocate a new block and return a pointer to it.
169
   Returns NULL on error.
170
*/
171
172
static basicblock *
173
cfg_builder_new_block(cfg_builder *g)
174
24.4k
{
175
24.4k
    basicblock *b = (basicblock *)PyMem_Calloc(1, sizeof(basicblock));
176
24.4k
    if (b == NULL) {
177
0
        PyErr_NoMemory();
178
0
        return NULL;
179
0
    }
180
    /* Extend the singly linked list of blocks with new block. */
181
24.4k
    b->b_list = g->g_block_list;
182
24.4k
    g->g_block_list = b;
183
24.4k
    b->b_label = NO_LABEL;
184
24.4k
    return b;
185
24.4k
}
186
187
static int
188
basicblock_addop(basicblock *b, int opcode, int oparg, location loc)
189
222k
{
190
222k
    assert(IS_WITHIN_OPCODE_RANGE(opcode));
191
222k
    assert(!IS_ASSEMBLER_OPCODE(opcode));
192
222k
    assert(OPCODE_HAS_ARG(opcode) || HAS_TARGET(opcode) || oparg == 0);
193
222k
    assert(0 <= oparg && oparg < (1 << 30));
194
195
222k
    int off = basicblock_next_instr(b);
196
222k
    if (off < 0) {
197
0
        return ERROR;
198
0
    }
199
222k
    cfg_instr *i = &b->b_instr[off];
200
222k
    i->i_opcode = opcode;
201
222k
    i->i_oparg = oparg;
202
222k
    i->i_loc = loc;
203
    // memory is already zero initialized
204
222k
    assert(i->i_target == NULL);
205
222k
    assert(i->i_except == NULL);
206
207
222k
    return SUCCESS;
208
222k
}
209
210
static int
211
basicblock_add_jump(basicblock *b, int opcode, basicblock *target, location loc)
212
381
{
213
381
    cfg_instr *last = basicblock_last_instr(b);
214
381
    if (last && is_jump(last)) {
215
0
        return ERROR;
216
0
    }
217
218
381
    RETURN_IF_ERROR(
219
381
        basicblock_addop(b, opcode, target->b_label.id, loc));
220
381
    last = basicblock_last_instr(b);
221
381
    assert(last && last->i_opcode == opcode);
222
381
    last->i_target = target;
223
381
    return SUCCESS;
224
381
}
225
226
static inline int
227
basicblock_append_instructions(basicblock *to, basicblock *from)
228
1.48k
{
229
4.26k
    for (int i = 0; i < from->b_iused; i++) {
230
2.78k
        int n = basicblock_next_instr(to);
231
2.78k
        if (n < 0) {
232
0
            return ERROR;
233
0
        }
234
2.78k
        to->b_instr[n] = from->b_instr[i];
235
2.78k
    }
236
1.48k
    return SUCCESS;
237
1.48k
}
238
239
static inline int
240
231k
basicblock_nofallthrough(const basicblock *b) {
241
231k
    cfg_instr *last = basicblock_last_instr(b);
242
231k
    return (last &&
243
217k
            (IS_SCOPE_EXIT_OPCODE(last->i_opcode) ||
244
122k
             IS_UNCONDITIONAL_JUMP_OPCODE(last->i_opcode)));
245
231k
}
246
247
#define BB_NO_FALLTHROUGH(B) (basicblock_nofallthrough(B))
248
378k
#define BB_HAS_FALLTHROUGH(B) (!basicblock_nofallthrough(B))
249
250
static basicblock *
251
copy_basicblock(cfg_builder *g, basicblock *block)
252
380
{
253
    /* Cannot copy a block if it has a fallthrough, since
254
     * a block can only have one fallthrough predecessor.
255
     */
256
380
    assert(BB_NO_FALLTHROUGH(block));
257
380
    basicblock *result = cfg_builder_new_block(g);
258
380
    if (result == NULL) {
259
0
        return NULL;
260
0
    }
261
380
    if (basicblock_append_instructions(result, block) < 0) {
262
0
        return NULL;
263
0
    }
264
380
    return result;
265
380
}
266
267
static int
268
3.60k
basicblock_insert_instruction(basicblock *block, int pos, cfg_instr *instr) {
269
3.60k
    RETURN_IF_ERROR(basicblock_next_instr(block));
270
56.9k
    for (int i = block->b_iused - 1; i > pos; i--) {
271
53.3k
        block->b_instr[i] = block->b_instr[i-1];
272
53.3k
    }
273
3.60k
    block->b_instr[pos] = *instr;
274
3.60k
    return SUCCESS;
275
3.60k
}
276
277
/* For debugging purposes only */
278
#if 0
279
static void
280
dump_instr(cfg_instr *i)
281
{
282
    const char *jump = is_jump(i) ? "jump " : "";
283
284
    char arg[128];
285
286
    *arg = '\0';
287
    if (OPCODE_HAS_ARG(i->i_opcode)) {
288
        sprintf(arg, "arg: %d ", i->i_oparg);
289
    }
290
    if (HAS_TARGET(i->i_opcode)) {
291
        sprintf(arg, "target: %p [%d] ", i->i_target, i->i_oparg);
292
    }
293
    fprintf(stderr, "line: %d, %s (%d)  %s%s\n",
294
                    i->i_loc.lineno, _PyOpcode_OpName[i->i_opcode], i->i_opcode, arg, jump);
295
}
296
297
static inline int
298
basicblock_returns(const basicblock *b) {
299
    cfg_instr *last = basicblock_last_instr(b);
300
    return last && IS_RETURN_OPCODE(last->i_opcode);
301
}
302
303
static void
304
dump_basicblock(const basicblock *b, bool highlight)
305
{
306
    const char *b_return = basicblock_returns(b) ? "return " : "";
307
    if (highlight) {
308
        fprintf(stderr, ">>> ");
309
    }
310
    fprintf(stderr, "%d: [EH=%d CLD=%d WRM=%d NO_FT=%d %p] used: %d, depth: %d, preds: %d %s\n",
311
        b->b_label.id, b->b_except_handler, b->b_cold, b->b_warm, BB_NO_FALLTHROUGH(b), b, b->b_iused,
312
        b->b_startdepth, b->b_predecessors, b_return);
313
    int depth = b->b_startdepth;
314
    if (b->b_instr) {
315
        int i;
316
        for (i = 0; i < b->b_iused; i++) {
317
            fprintf(stderr, "  [%02d] depth: %d ", i, depth);
318
            dump_instr(b->b_instr + i);
319
320
            int popped = _PyOpcode_num_popped(b->b_instr[i].i_opcode, b->b_instr[i].i_oparg);
321
            int pushed = _PyOpcode_num_pushed(b->b_instr[i].i_opcode, b->b_instr[i].i_oparg);
322
            depth += (pushed - popped);
323
        }
324
    }
325
}
326
327
void
328
_PyCfgBuilder_DumpGraph(const basicblock *entryblock, const basicblock *mark)
329
{
330
    for (const basicblock *b = entryblock; b != NULL; b = b->b_next) {
331
        dump_basicblock(b, b == mark);
332
    }
333
}
334
335
#endif
336
337
338
/***** CFG construction and modification *****/
339
340
static basicblock *
341
cfg_builder_use_next_block(cfg_builder *g, basicblock *block)
342
18.3k
{
343
18.3k
    assert(block != NULL);
344
18.3k
    g->g_curblock->b_next = block;
345
18.3k
    g->g_curblock = block;
346
18.3k
    return block;
347
18.3k
}
348
349
static inline int
350
38.0k
basicblock_exits_scope(const basicblock *b) {
351
38.0k
    cfg_instr *last = basicblock_last_instr(b);
352
38.0k
    return last && IS_SCOPE_EXIT_OPCODE(last->i_opcode);
353
38.0k
}
354
355
static inline int
356
21.7k
basicblock_has_eval_break(const basicblock *b) {
357
115k
    for (int i = 0; i < b->b_iused; i++) {
358
102k
        if (OPCODE_HAS_EVAL_BREAK(b->b_instr[i].i_opcode)) {
359
8.21k
            return true;
360
8.21k
        }
361
102k
    }
362
13.5k
    return false;
363
21.7k
}
364
365
static bool
366
cfg_builder_current_block_is_terminated(cfg_builder *g)
367
224k
{
368
224k
    cfg_instr *last = basicblock_last_instr(g->g_curblock);
369
224k
    if (last && IS_TERMINATOR_OPCODE(last->i_opcode)) {
370
15.7k
        return true;
371
15.7k
    }
372
209k
    if (IS_LABEL(g->g_current_label)) {
373
2.58k
        if (last || IS_LABEL(g->g_curblock->b_label)) {
374
2.58k
            return true;
375
2.58k
        }
376
0
        else {
377
            /* current block is empty, label it */
378
0
            g->g_curblock->b_label = g->g_current_label;
379
0
            g->g_current_label = NO_LABEL;
380
0
        }
381
2.58k
    }
382
206k
    return false;
383
209k
}
384
385
static int
386
cfg_builder_maybe_start_new_block(cfg_builder *g)
387
224k
{
388
224k
    if (cfg_builder_current_block_is_terminated(g)) {
389
18.3k
        basicblock *b = cfg_builder_new_block(g);
390
18.3k
        if (b == NULL) {
391
0
            return ERROR;
392
0
        }
393
18.3k
        b->b_label = g->g_current_label;
394
18.3k
        g->g_current_label = NO_LABEL;
395
18.3k
        cfg_builder_use_next_block(g, b);
396
18.3k
    }
397
224k
    return SUCCESS;
398
224k
}
399
400
#ifndef NDEBUG
401
static bool
402
cfg_builder_check(cfg_builder *g)
403
{
404
    assert(g->g_entryblock->b_iused > 0);
405
    for (basicblock *block = g->g_block_list; block != NULL; block = block->b_list) {
406
        assert(!_PyMem_IsPtrFreed(block));
407
        if (block->b_instr != NULL) {
408
            assert(block->b_ialloc > 0);
409
            assert(block->b_iused >= 0);
410
            assert(block->b_ialloc >= block->b_iused);
411
        }
412
        else {
413
            assert (block->b_iused == 0);
414
            assert (block->b_ialloc == 0);
415
        }
416
    }
417
    return true;
418
}
419
#endif
420
421
static int
422
init_cfg_builder(cfg_builder *g)
423
5.43k
{
424
5.43k
    g->g_block_list = NULL;
425
5.43k
    basicblock *block = cfg_builder_new_block(g);
426
5.43k
    if (block == NULL) {
427
0
        return ERROR;
428
0
    }
429
5.43k
    g->g_curblock = g->g_entryblock = block;
430
5.43k
    g->g_current_label = NO_LABEL;
431
5.43k
    return SUCCESS;
432
5.43k
}
433
434
cfg_builder *
435
_PyCfgBuilder_New(void)
436
5.43k
{
437
5.43k
    cfg_builder *g = PyMem_Malloc(sizeof(cfg_builder));
438
5.43k
    if (g == NULL) {
439
0
        PyErr_NoMemory();
440
0
        return NULL;
441
0
    }
442
5.43k
    memset(g, 0, sizeof(cfg_builder));
443
5.43k
    if (init_cfg_builder(g) < 0) {
444
0
        PyMem_Free(g);
445
0
        return NULL;
446
0
    }
447
5.43k
    return g;
448
5.43k
}
449
450
void
451
_PyCfgBuilder_Free(cfg_builder *g)
452
5.43k
{
453
5.43k
    if (g == NULL) {
454
0
        return;
455
0
    }
456
5.43k
    assert(cfg_builder_check(g));
457
5.43k
    basicblock *b = g->g_block_list;
458
29.9k
    while (b != NULL) {
459
24.4k
        if (b->b_instr) {
460
24.4k
            PyMem_Free((void *)b->b_instr);
461
24.4k
        }
462
24.4k
        basicblock *next = b->b_list;
463
24.4k
        PyMem_Free((void *)b);
464
24.4k
        b = next;
465
24.4k
    }
466
5.43k
    PyMem_Free(g);
467
5.43k
}
468
469
int
470
_PyCfgBuilder_CheckSize(cfg_builder *g)
471
5.43k
{
472
5.43k
    int nblocks = 0;
473
29.2k
    for (basicblock *b = g->g_block_list; b != NULL; b = b->b_list) {
474
23.7k
        nblocks++;
475
23.7k
    }
476
5.43k
    if ((size_t)nblocks > SIZE_MAX / sizeof(basicblock *)) {
477
0
        PyErr_NoMemory();
478
0
        return ERROR;
479
0
    }
480
5.43k
    return SUCCESS;
481
5.43k
}
482
483
int
484
_PyCfgBuilder_UseLabel(cfg_builder *g, jump_target_label lbl)
485
8.54k
{
486
8.54k
    g->g_current_label = lbl;
487
8.54k
    return cfg_builder_maybe_start_new_block(g);
488
8.54k
}
489
490
int
491
_PyCfgBuilder_Addop(cfg_builder *g, int opcode, int oparg, location loc)
492
216k
{
493
216k
    RETURN_IF_ERROR(cfg_builder_maybe_start_new_block(g));
494
216k
    return basicblock_addop(g->g_curblock, opcode, oparg, loc);
495
216k
}
496
497
498
static basicblock *
499
next_nonempty_block(basicblock *b)
500
29.9k
{
501
31.0k
    while (b && b->b_iused == 0) {
502
1.06k
        b = b->b_next;
503
1.06k
    }
504
29.9k
    return b;
505
29.9k
}
506
507
/***** debugging helpers *****/
508
509
#ifndef NDEBUG
510
static int remove_redundant_nops(cfg_builder *g);
511
512
static bool
513
no_redundant_nops(cfg_builder *g) {
514
    if (remove_redundant_nops(g) != 0) {
515
        return false;
516
    }
517
    return true;
518
}
519
520
static bool
521
no_redundant_jumps(cfg_builder *g) {
522
    for (basicblock *b = g->g_entryblock; b != NULL; b = b->b_next) {
523
        cfg_instr *last = basicblock_last_instr(b);
524
        if (last != NULL) {
525
            if (IS_UNCONDITIONAL_JUMP_OPCODE(last->i_opcode)) {
526
                basicblock *next = next_nonempty_block(b->b_next);
527
                basicblock *jump_target = next_nonempty_block(last->i_target);
528
                if (jump_target == next) {
529
                    assert(next);
530
                    if (last->i_loc.lineno == next->b_instr[0].i_loc.lineno) {
531
                        assert(0);
532
                        return false;
533
                    }
534
                }
535
            }
536
        }
537
    }
538
    return true;
539
}
540
#endif
541
542
/***** CFG preprocessing (jump targets and exceptions) *****/
543
544
static int
545
24.4k
normalize_jumps_in_block(cfg_builder *g, basicblock *b) {
546
24.4k
    cfg_instr *last = basicblock_last_instr(b);
547
24.4k
    if (last == NULL || !IS_CONDITIONAL_JUMP_OPCODE(last->i_opcode)) {
548
18.8k
        return SUCCESS;
549
18.8k
    }
550
24.4k
    assert(!IS_ASSEMBLER_OPCODE(last->i_opcode));
551
552
5.61k
    bool is_forward = last->i_target->b_visited == 0;
553
5.61k
    if (is_forward) {
554
5.41k
        RETURN_IF_ERROR(
555
5.41k
            basicblock_addop(b, NOT_TAKEN, 0, last->i_loc));
556
5.41k
        return SUCCESS;
557
5.41k
    }
558
559
195
    int reversed_opcode = 0;
560
195
    switch(last->i_opcode) {
561
0
        case POP_JUMP_IF_NOT_NONE:
562
0
            reversed_opcode = POP_JUMP_IF_NONE;
563
0
            break;
564
16
        case POP_JUMP_IF_NONE:
565
16
            reversed_opcode = POP_JUMP_IF_NOT_NONE;
566
16
            break;
567
141
        case POP_JUMP_IF_FALSE:
568
141
            reversed_opcode = POP_JUMP_IF_TRUE;
569
141
            break;
570
38
        case POP_JUMP_IF_TRUE:
571
38
            reversed_opcode = POP_JUMP_IF_FALSE;
572
38
            break;
573
195
    }
574
    /* transform 'conditional jump T' to
575
     * 'reversed_jump b_next' followed by 'jump_backwards T'
576
     */
577
578
195
    basicblock *target = last->i_target;
579
195
    basicblock *backwards_jump = cfg_builder_new_block(g);
580
195
    if (backwards_jump == NULL) {
581
0
        return ERROR;
582
0
    }
583
195
    RETURN_IF_ERROR(
584
195
        basicblock_addop(backwards_jump, NOT_TAKEN, 0, last->i_loc));
585
195
    RETURN_IF_ERROR(
586
195
        basicblock_add_jump(backwards_jump, JUMP, target, last->i_loc));
587
195
    backwards_jump->b_startdepth = target->b_startdepth;
588
195
    last->i_opcode = reversed_opcode;
589
195
    last->i_target = b->b_next;
590
591
195
    backwards_jump->b_cold = b->b_cold;
592
195
    backwards_jump->b_next = b->b_next;
593
195
    b->b_next = backwards_jump;
594
195
    return SUCCESS;
595
195
}
596
597
598
static int
599
normalize_jumps(cfg_builder *g)
600
5.43k
{
601
5.43k
    basicblock *entryblock = g->g_entryblock;
602
29.7k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
603
24.2k
        b->b_visited = 0;
604
24.2k
    }
605
29.9k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
606
24.4k
        b->b_visited = 1;
607
24.4k
        RETURN_IF_ERROR(normalize_jumps_in_block(g, b));
608
24.4k
    }
609
5.43k
    return SUCCESS;
610
5.43k
}
611
612
static int
613
5.43k
check_cfg(cfg_builder *g) {
614
29.2k
    for (basicblock *b = g->g_entryblock; b != NULL; b = b->b_next) {
615
        /* Raise SystemError if jump or exit is not last instruction in the block. */
616
240k
        for (int i = 0; i < b->b_iused; i++) {
617
216k
            int opcode = b->b_instr[i].i_opcode;
618
216k
            assert(!IS_ASSEMBLER_OPCODE(opcode));
619
216k
            if (IS_TERMINATOR_OPCODE(opcode)) {
620
21.1k
                if (i != b->b_iused - 1) {
621
0
                    PyErr_SetString(PyExc_SystemError, "malformed control flow graph.");
622
0
                    return ERROR;
623
0
                }
624
21.1k
            }
625
216k
        }
626
23.7k
    }
627
5.43k
    return SUCCESS;
628
5.43k
}
629
630
static int
631
get_max_label(basicblock *entryblock)
632
20.4k
{
633
20.4k
    int lbl = -1;
634
115k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
635
94.7k
        if (b->b_label.id > lbl) {
636
31.6k
            lbl = b->b_label.id;
637
31.6k
        }
638
94.7k
    }
639
20.4k
    return lbl;
640
20.4k
}
641
642
/* Calculate the actual jump target from the target_label */
643
static int
644
translate_jump_labels_to_targets(basicblock *entryblock)
645
5.43k
{
646
5.43k
    int max_label = get_max_label(entryblock);
647
5.43k
    size_t mapsize = sizeof(basicblock *) * (max_label + 1);
648
5.43k
    basicblock **label2block = (basicblock **)PyMem_Malloc(mapsize);
649
5.43k
    if (!label2block) {
650
0
        PyErr_NoMemory();
651
0
        return ERROR;
652
0
    }
653
5.43k
    memset(label2block, 0, mapsize);
654
29.2k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
655
23.7k
        if (b->b_label.id >= 0) {
656
8.54k
            label2block[b->b_label.id] = b;
657
8.54k
        }
658
23.7k
    }
659
29.2k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
660
240k
        for (int i = 0; i < b->b_iused; i++) {
661
216k
            cfg_instr *instr = &b->b_instr[i];
662
216k
            assert(instr->i_target == NULL);
663
216k
            if (HAS_TARGET(instr->i_opcode)) {
664
10.7k
                int lbl = instr->i_oparg;
665
10.7k
                assert(lbl >= 0 && lbl <= max_label);
666
10.7k
                instr->i_target = label2block[lbl];
667
10.7k
                assert(instr->i_target != NULL);
668
10.7k
                assert(instr->i_target->b_label.id == lbl);
669
10.7k
            }
670
216k
        }
671
23.7k
    }
672
5.43k
    PyMem_Free(label2block);
673
5.43k
    return SUCCESS;
674
5.43k
}
675
676
static int
677
5.43k
mark_except_handlers(basicblock *entryblock) {
678
#ifndef NDEBUG
679
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
680
        assert(!b->b_except_handler);
681
    }
682
#endif
683
29.2k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
684
240k
        for (int i=0; i < b->b_iused; i++) {
685
216k
            cfg_instr *instr = &b->b_instr[i];
686
216k
            if (is_block_push(instr)) {
687
1.64k
                instr->i_target->b_except_handler = 1;
688
1.64k
            }
689
216k
        }
690
23.7k
    }
691
5.43k
    return SUCCESS;
692
5.43k
}
693
694
695
struct _PyCfgExceptStack {
696
    basicblock *handlers[CO_MAXBLOCKS+2];
697
    int depth;
698
};
699
700
701
static basicblock *
702
1.63k
push_except_block(struct _PyCfgExceptStack *stack, cfg_instr *setup) {
703
1.63k
    assert(is_block_push(setup));
704
1.63k
    int opcode = setup->i_opcode;
705
1.63k
    basicblock * target = setup->i_target;
706
1.63k
    if (opcode == SETUP_WITH || opcode == SETUP_CLEANUP) {
707
1.01k
        target->b_preserve_lasti = 1;
708
1.01k
    }
709
1.63k
    assert(stack->depth <= CO_MAXBLOCKS);
710
1.63k
    stack->handlers[++stack->depth] = target;
711
1.63k
    return target;
712
1.63k
}
713
714
static basicblock *
715
1.35k
pop_except_block(struct _PyCfgExceptStack *stack) {
716
1.35k
    assert(stack->depth > 0);
717
1.35k
    return stack->handlers[--stack->depth];
718
1.35k
}
719
720
static basicblock *
721
19.8k
except_stack_top(struct _PyCfgExceptStack *stack) {
722
19.8k
    return stack->handlers[stack->depth];
723
19.8k
}
724
725
static struct _PyCfgExceptStack *
726
5.43k
make_except_stack(void) {
727
5.43k
    struct _PyCfgExceptStack *new = PyMem_Malloc(sizeof(struct _PyCfgExceptStack));
728
5.43k
    if (new == NULL) {
729
0
        PyErr_NoMemory();
730
0
        return NULL;
731
0
    }
732
5.43k
    new->depth = 0;
733
5.43k
    new->handlers[0] = NULL;
734
5.43k
    return new;
735
5.43k
}
736
737
static struct _PyCfgExceptStack *
738
6.68k
copy_except_stack(struct _PyCfgExceptStack *stack) {
739
6.68k
    struct _PyCfgExceptStack *copy = PyMem_Malloc(sizeof(struct _PyCfgExceptStack));
740
6.68k
    if (copy == NULL) {
741
0
        PyErr_NoMemory();
742
0
        return NULL;
743
0
    }
744
6.68k
    memcpy(copy, stack, sizeof(struct _PyCfgExceptStack));
745
6.68k
    return copy;
746
6.68k
}
747
748
static basicblock**
749
39.2k
make_cfg_traversal_stack(basicblock *entryblock) {
750
39.2k
    int nblocks = 0;
751
226k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
752
187k
        b->b_visited = 0;
753
187k
        nblocks++;
754
187k
    }
755
39.2k
    basicblock **stack = (basicblock **)PyMem_Malloc(sizeof(basicblock *) * nblocks);
756
39.2k
    if (!stack) {
757
0
        PyErr_NoMemory();
758
0
    }
759
39.2k
    return stack;
760
39.2k
}
761
762
/* Compute the stack effects of opcode with argument oparg.
763
764
   Some opcodes have different stack effect when jump to the target and
765
   when not jump. The 'jump' parameter specifies the case:
766
767
   * 0 -- when not jump
768
   * 1 -- when jump
769
   * -1 -- maximal
770
 */
771
typedef struct {
772
    /* The stack effect of the instruction. */
773
    int net;
774
} stack_effects;
775
776
Py_LOCAL(int)
777
get_stack_effects(int opcode, int oparg, int jump, stack_effects *effects)
778
203k
{
779
203k
    if (opcode < 0) {
780
0
        return -1;
781
0
    }
782
203k
    if ((opcode <= MAX_REAL_OPCODE) && (_PyOpcode_Deopt[opcode] != opcode)) {
783
        // Specialized instructions are not supported.
784
0
        return -1;
785
0
    }
786
203k
    int popped = _PyOpcode_num_popped(opcode, oparg);
787
203k
    int pushed = _PyOpcode_num_pushed(opcode, oparg);
788
203k
    if (popped < 0 || pushed < 0) {
789
0
        return -1;
790
0
    }
791
203k
    if (IS_BLOCK_PUSH_OPCODE(opcode) && !jump) {
792
1.63k
        effects->net = 0;
793
1.63k
        return 0;
794
1.63k
    }
795
202k
    effects->net = pushed - popped;
796
202k
    return 0;
797
203k
}
798
799
Py_LOCAL_INLINE(int)
800
stackdepth_push(basicblock ***sp, basicblock *b, int depth)
801
24.0k
{
802
24.0k
    if (!(b->b_startdepth < 0 || b->b_startdepth == depth)) {
803
0
        PyErr_Format(PyExc_ValueError, "Invalid CFG, inconsistent stackdepth");
804
0
        return ERROR;
805
0
    }
806
24.0k
    if (b->b_startdepth < depth && b->b_startdepth < 100) {
807
20.0k
        assert(b->b_startdepth < 0);
808
20.0k
        b->b_startdepth = depth;
809
20.0k
        *(*sp)++ = b;
810
20.0k
    }
811
24.0k
    return SUCCESS;
812
24.0k
}
813
814
/* Find the flow path that needs the largest stack.  We assume that
815
 * cycles in the flow graph have no net effect on the stack depth.
816
 */
817
static int
818
calculate_stackdepth(cfg_builder *g)
819
5.43k
{
820
5.43k
    basicblock *entryblock = g->g_entryblock;
821
29.7k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
822
24.2k
        b->b_startdepth = INT_MIN;
823
24.2k
    }
824
5.43k
    basicblock **stack = make_cfg_traversal_stack(entryblock);
825
5.43k
    if (!stack) {
826
0
        return ERROR;
827
0
    }
828
829
830
5.43k
    int stackdepth = -1;
831
5.43k
    int maxdepth = 0;
832
5.43k
    basicblock **sp = stack;
833
5.43k
    if (stackdepth_push(&sp, entryblock, 0) < 0) {
834
0
        goto error;
835
0
    }
836
25.4k
    while (sp != stack) {
837
20.0k
        basicblock *b = *--sp;
838
20.0k
        int depth = b->b_startdepth;
839
20.0k
        assert(depth >= 0);
840
20.0k
        basicblock *next = b->b_next;
841
203k
        for (int i = 0; i < b->b_iused; i++) {
842
194k
            cfg_instr *instr = &b->b_instr[i];
843
194k
            stack_effects effects;
844
194k
            if (get_stack_effects(instr->i_opcode, instr->i_oparg, 0, &effects) < 0) {
845
0
                PyErr_Format(PyExc_SystemError,
846
0
                             "Invalid stack effect for opcode=%d, arg=%i",
847
0
                             instr->i_opcode, instr->i_oparg);
848
0
                goto error;
849
0
            }
850
194k
            int new_depth = depth + effects.net;
851
194k
            if (new_depth < 0) {
852
0
                PyErr_Format(PyExc_ValueError,
853
0
                             "Invalid CFG, stack underflow at line %d", instr->i_loc.lineno);
854
0
                goto error;
855
0
            }
856
194k
            maxdepth = Py_MAX(maxdepth, depth);
857
194k
            if (HAS_TARGET(instr->i_opcode) && instr->i_opcode != END_ASYNC_FOR) {
858
9.47k
                if (get_stack_effects(instr->i_opcode, instr->i_oparg, 1, &effects) < 0) {
859
0
                    PyErr_Format(PyExc_SystemError,
860
0
                                 "Invalid stack effect for opcode=%d, arg=%i",
861
0
                                 instr->i_opcode, instr->i_oparg);
862
0
                    goto error;
863
0
                }
864
9.47k
                int target_depth = depth + effects.net;
865
9.47k
                assert(target_depth >= 0); /* invalid code or bug in stackdepth() */
866
9.47k
                maxdepth = Py_MAX(maxdepth, depth);
867
9.47k
                if (stackdepth_push(&sp, instr->i_target, target_depth) < 0) {
868
0
                    goto error;
869
0
                }
870
9.47k
            }
871
194k
            depth = new_depth;
872
194k
            assert(!IS_ASSEMBLER_OPCODE(instr->i_opcode));
873
194k
            if (IS_UNCONDITIONAL_JUMP_OPCODE(instr->i_opcode) ||
874
192k
                IS_SCOPE_EXIT_OPCODE(instr->i_opcode))
875
10.8k
            {
876
                /* remaining code is dead */
877
10.8k
                next = NULL;
878
10.8k
                break;
879
10.8k
            }
880
194k
        }
881
20.0k
        if (next != NULL) {
882
9.18k
            assert(BB_HAS_FALLTHROUGH(b));
883
9.18k
            if (stackdepth_push(&sp, next, depth) < 0) {
884
0
                goto error;
885
0
            }
886
9.18k
        }
887
20.0k
    }
888
5.43k
    stackdepth = maxdepth;
889
5.43k
error:
890
5.43k
    PyMem_Free(stack);
891
5.43k
    return stackdepth;
892
5.43k
}
893
894
static int
895
5.43k
label_exception_targets(basicblock *entryblock) {
896
5.43k
    basicblock **todo_stack = make_cfg_traversal_stack(entryblock);
897
5.43k
    if (todo_stack == NULL) {
898
0
        return ERROR;
899
0
    }
900
5.43k
    struct _PyCfgExceptStack *except_stack = make_except_stack();
901
5.43k
    if (except_stack == NULL) {
902
0
        PyMem_Free(todo_stack);
903
0
        PyErr_NoMemory();
904
0
        return ERROR;
905
0
    }
906
5.43k
    except_stack->depth = 0;
907
5.43k
    todo_stack[0] = entryblock;
908
5.43k
    entryblock->b_visited = 1;
909
5.43k
    entryblock->b_exceptstack = except_stack;
910
5.43k
    basicblock **todo = &todo_stack[1];
911
5.43k
    basicblock *handler = NULL;
912
25.2k
    while (todo > todo_stack) {
913
19.8k
        todo--;
914
19.8k
        basicblock *b = todo[0];
915
19.8k
        assert(b->b_visited == 1);
916
19.8k
        except_stack = b->b_exceptstack;
917
19.8k
        assert(except_stack != NULL);
918
19.8k
        b->b_exceptstack = NULL;
919
19.8k
        handler = except_stack_top(except_stack);
920
19.8k
        int last_yield_except_depth = -1;
921
227k
        for (int i = 0; i < b->b_iused; i++) {
922
207k
            cfg_instr *instr = &b->b_instr[i];
923
207k
            if (is_block_push(instr)) {
924
1.63k
                if (!instr->i_target->b_visited) {
925
1.63k
                    struct _PyCfgExceptStack *copy = copy_except_stack(except_stack);
926
1.63k
                    if (copy == NULL) {
927
0
                        goto error;
928
0
                    }
929
1.63k
                    instr->i_target->b_exceptstack = copy;
930
1.63k
                    todo[0] = instr->i_target;
931
1.63k
                    instr->i_target->b_visited = 1;
932
1.63k
                    todo++;
933
1.63k
                }
934
1.63k
                handler = push_except_block(except_stack, instr);
935
1.63k
            }
936
206k
            else if (instr->i_opcode == POP_BLOCK) {
937
1.35k
                handler = pop_except_block(except_stack);
938
1.35k
                INSTR_SET_OP0(instr, NOP);
939
1.35k
            }
940
204k
            else if (is_jump(instr)) {
941
8.63k
                instr->i_except = handler;
942
8.63k
                assert(i == b->b_iused -1);
943
8.63k
                if (!instr->i_target->b_visited) {
944
6.09k
                    if (BB_HAS_FALLTHROUGH(b)) {
945
5.04k
                        struct _PyCfgExceptStack *copy = copy_except_stack(except_stack);
946
5.04k
                        if (copy == NULL) {
947
0
                            goto error;
948
0
                        }
949
5.04k
                        instr->i_target->b_exceptstack = copy;
950
5.04k
                    }
951
1.04k
                    else {
952
1.04k
                        instr->i_target->b_exceptstack = except_stack;
953
1.04k
                        except_stack = NULL;
954
1.04k
                    }
955
6.09k
                    todo[0] = instr->i_target;
956
6.09k
                    instr->i_target->b_visited = 1;
957
6.09k
                    todo++;
958
6.09k
                }
959
8.63k
            }
960
196k
            else if (instr->i_opcode == YIELD_VALUE) {
961
304
                instr->i_except = handler;
962
304
                last_yield_except_depth = except_stack->depth;
963
304
            }
964
196k
            else if (instr->i_opcode == RESUME) {
965
5.73k
                instr->i_except = handler;
966
5.73k
                if (instr->i_oparg != RESUME_AT_FUNC_START) {
967
304
                    assert(last_yield_except_depth >= 0);
968
304
                    if (last_yield_except_depth == 1) {
969
133
                        instr->i_oparg |= RESUME_OPARG_DEPTH1_MASK;
970
133
                    }
971
304
                    last_yield_except_depth = -1;
972
304
                }
973
5.73k
            }
974
190k
            else if (instr->i_opcode == RETURN_GENERATOR) {
975
248
                instr->i_except = NULL;
976
248
            }
977
190k
            else {
978
190k
                instr->i_except = handler;
979
190k
            }
980
207k
        }
981
19.8k
        if (BB_HAS_FALLTHROUGH(b) && !b->b_next->b_visited) {
982
6.66k
            assert(except_stack != NULL);
983
6.66k
            b->b_next->b_exceptstack = except_stack;
984
6.66k
            todo[0] = b->b_next;
985
6.66k
            b->b_next->b_visited = 1;
986
6.66k
            todo++;
987
6.66k
        }
988
13.1k
        else if (except_stack != NULL) {
989
12.1k
           PyMem_Free(except_stack);
990
12.1k
        }
991
19.8k
    }
992
#ifdef Py_DEBUG
993
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
994
        assert(b->b_exceptstack == NULL);
995
    }
996
#endif
997
5.43k
    PyMem_Free(todo_stack);
998
5.43k
    return SUCCESS;
999
0
error:
1000
0
    PyMem_Free(todo_stack);
1001
0
    PyMem_Free(except_stack);
1002
0
    return ERROR;
1003
5.43k
}
1004
1005
/***** CFG optimizations *****/
1006
1007
static int
1008
10.8k
remove_unreachable(basicblock *entryblock) {
1009
58.7k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
1010
47.9k
        b->b_predecessors = 0;
1011
47.9k
    }
1012
10.8k
    basicblock **stack = make_cfg_traversal_stack(entryblock);
1013
10.8k
    if (stack == NULL) {
1014
0
        return ERROR;
1015
0
    }
1016
10.8k
    basicblock **sp = stack;
1017
10.8k
    entryblock->b_predecessors = 1;
1018
10.8k
    *sp++ = entryblock;
1019
10.8k
    entryblock->b_visited = 1;
1020
50.1k
    while (sp > stack) {
1021
39.3k
        basicblock *b = *(--sp);
1022
39.3k
        if (b->b_next && BB_HAS_FALLTHROUGH(b)) {
1023
17.6k
            if (!b->b_next->b_visited) {
1024
14.5k
                assert(b->b_next->b_predecessors == 0);
1025
14.5k
                *sp++ = b->b_next;
1026
14.5k
                b->b_next->b_visited = 1;
1027
14.5k
            }
1028
17.6k
            b->b_next->b_predecessors++;
1029
17.6k
        }
1030
444k
        for (int i = 0; i < b->b_iused; i++) {
1031
405k
            basicblock *target;
1032
405k
            cfg_instr *instr = &b->b_instr[i];
1033
405k
            if (is_jump(instr) || is_block_push(instr)) {
1034
19.2k
                target = instr->i_target;
1035
19.2k
                if (!target->b_visited) {
1036
13.8k
                    *sp++ = target;
1037
13.8k
                    target->b_visited = 1;
1038
13.8k
                }
1039
19.2k
                target->b_predecessors++;
1040
19.2k
            }
1041
405k
        }
1042
39.3k
    }
1043
10.8k
    PyMem_Free(stack);
1044
1045
    /* Delete unreachable instructions */
1046
58.7k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
1047
47.9k
       if (b->b_predecessors == 0) {
1048
8.60k
            b->b_iused = 0;
1049
8.60k
            b->b_except_handler = 0;
1050
8.60k
       }
1051
47.9k
    }
1052
10.8k
    return SUCCESS;
1053
10.8k
}
1054
1055
static int
1056
124k
basicblock_remove_redundant_nops(basicblock *bb) {
1057
    /* Remove NOPs when legal to do so. */
1058
124k
    int dest = 0;
1059
124k
    int prev_lineno = -1;
1060
1.07M
    for (int src = 0; src < bb->b_iused; src++) {
1061
948k
        int lineno = bb->b_instr[src].i_loc.lineno;
1062
948k
        if (bb->b_instr[src].i_opcode == NOP) {
1063
            /* Eliminate no-op if it doesn't have a line number */
1064
19.5k
            if (lineno < 0) {
1065
2.96k
                continue;
1066
2.96k
            }
1067
            /* or, if the previous instruction had the same line number. */
1068
16.5k
            if (prev_lineno == lineno) {
1069
13.3k
                continue;
1070
13.3k
            }
1071
            /* or, if the next instruction has same line number or no line number */
1072
3.21k
            if (src < bb->b_iused - 1) {
1073
2.97k
                int next_lineno = bb->b_instr[src+1].i_loc.lineno;
1074
2.97k
                if (next_lineno == lineno) {
1075
1.97k
                    continue;
1076
1.97k
                }
1077
1.00k
                if (next_lineno < 0) {
1078
0
                    bb->b_instr[src+1].i_loc = bb->b_instr[src].i_loc;
1079
0
                    continue;
1080
0
                }
1081
1.00k
            }
1082
236
            else {
1083
236
                basicblock *next = next_nonempty_block(bb->b_next);
1084
                /* or if last instruction in BB and next BB has same line number */
1085
236
                if (next) {
1086
236
                    location next_loc = NO_LOCATION;
1087
236
                    for (int next_i=0; next_i < next->b_iused; next_i++) {
1088
236
                        cfg_instr *instr = &next->b_instr[next_i];
1089
236
                        if (instr->i_opcode == NOP && instr->i_loc.lineno < 0) {
1090
                            /* Skip over NOPs without a location, they will be removed */
1091
0
                            continue;
1092
0
                        }
1093
236
                        next_loc = instr->i_loc;
1094
236
                        break;
1095
236
                    }
1096
236
                    if (lineno == next_loc.lineno) {
1097
1
                        continue;
1098
1
                    }
1099
236
                }
1100
236
            }
1101
1102
3.21k
        }
1103
929k
        if (dest != src) {
1104
72.2k
            bb->b_instr[dest] = bb->b_instr[src];
1105
72.2k
        }
1106
929k
        dest++;
1107
929k
        prev_lineno = lineno;
1108
929k
    }
1109
124k
    assert(dest <= bb->b_iused);
1110
124k
    int num_removed = bb->b_iused - dest;
1111
124k
    bb->b_iused = dest;
1112
124k
    memset(&bb->b_instr[dest], 0, sizeof(cfg_instr) * num_removed);
1113
124k
    return num_removed;
1114
124k
}
1115
1116
static int
1117
17.7k
remove_redundant_nops(cfg_builder *g) {
1118
17.7k
    int changes = 0;
1119
118k
    for (basicblock *b = g->g_entryblock; b != NULL; b = b->b_next) {
1120
100k
        int change = basicblock_remove_redundant_nops(b);
1121
100k
        RETURN_IF_ERROR(change);
1122
100k
        changes += change;
1123
100k
    }
1124
17.7k
    return changes;
1125
17.7k
}
1126
1127
static int
1128
remove_redundant_nops_and_pairs(basicblock *entryblock)
1129
5.43k
{
1130
5.43k
    bool done = false;
1131
1132
10.8k
    while (! done) {
1133
5.43k
        done = true;
1134
5.43k
        cfg_instr *prev_instr = NULL;
1135
5.43k
        cfg_instr *instr = NULL;
1136
29.5k
        for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
1137
24.1k
            RETURN_IF_ERROR(basicblock_remove_redundant_nops(b));
1138
24.1k
            if (IS_LABEL(b->b_label)) {
1139
                /* this block is a jump target, forget instr */
1140
8.92k
                instr = NULL;
1141
8.92k
            }
1142
220k
            for (int i = 0; i < b->b_iused; i++) {
1143
196k
                prev_instr = instr;
1144
196k
                instr = &b->b_instr[i];
1145
196k
                int prev_opcode = prev_instr ? prev_instr->i_opcode : 0;
1146
196k
                int prev_oparg = prev_instr ? prev_instr->i_oparg : 0;
1147
196k
                int opcode = instr->i_opcode;
1148
196k
                bool is_redundant_pair = false;
1149
196k
                if (opcode == POP_TOP) {
1150
6.72k
                   if (prev_opcode == LOAD_CONST || prev_opcode == LOAD_SMALL_INT) {
1151
0
                       is_redundant_pair = true;
1152
0
                   }
1153
6.72k
                   else if (prev_opcode == COPY && prev_oparg == 1) {
1154
0
                       is_redundant_pair = true;
1155
0
                   }
1156
6.72k
                }
1157
196k
                if (is_redundant_pair) {
1158
0
                    INSTR_SET_OP0(prev_instr, NOP);
1159
0
                    INSTR_SET_OP0(instr, NOP);
1160
0
                    done = false;
1161
0
                }
1162
196k
            }
1163
24.1k
            if ((instr && is_jump(instr)) || !BB_HAS_FALLTHROUGH(b)) {
1164
17.3k
                instr = NULL;
1165
17.3k
            }
1166
24.1k
        }
1167
5.43k
    }
1168
5.43k
    return SUCCESS;
1169
5.43k
}
1170
1171
static int
1172
12.3k
remove_redundant_jumps(cfg_builder *g) {
1173
    /* If a non-empty block ends with a jump instruction, check if the next
1174
     * non-empty block reached through normal flow control is the target
1175
     * of that jump. If it is, then the jump instruction is redundant and
1176
     * can be deleted.
1177
     *
1178
     * Return the number of changes applied, or -1 on error.
1179
     */
1180
1181
12.3k
    int changes = 0;
1182
88.4k
    for (basicblock *b = g->g_entryblock; b != NULL; b = b->b_next) {
1183
76.1k
        cfg_instr *last = basicblock_last_instr(b);
1184
76.1k
        if (last == NULL) {
1185
12.0k
            continue;
1186
12.0k
        }
1187
76.1k
        assert(!IS_ASSEMBLER_OPCODE(last->i_opcode));
1188
64.0k
        if (IS_UNCONDITIONAL_JUMP_OPCODE(last->i_opcode)) {
1189
6.87k
            basicblock* jump_target = next_nonempty_block(last->i_target);
1190
6.87k
            if (jump_target == NULL) {
1191
0
                PyErr_SetString(PyExc_SystemError, "jump with NULL target");
1192
0
                return ERROR;
1193
0
            }
1194
6.87k
            basicblock *next = next_nonempty_block(b->b_next);
1195
6.87k
            if (jump_target == next) {
1196
243
                changes++;
1197
243
                INSTR_SET_OP0(last, NOP);
1198
243
            }
1199
6.87k
        }
1200
64.0k
    }
1201
1202
12.3k
    return changes;
1203
12.3k
}
1204
1205
static inline bool
1206
24.4k
basicblock_has_no_lineno(basicblock *b) {
1207
30.2k
    for (int i = 0; i < b->b_iused; i++) {
1208
27.7k
        if (b->b_instr[i].i_loc.lineno >= 0) {
1209
21.9k
            return false;
1210
21.9k
        }
1211
27.7k
    }
1212
2.54k
    return true;
1213
24.4k
}
1214
1215
/* Maximum size of basic block that should be copied in optimizer */
1216
1.15k
#define MAX_COPY_SIZE 4
1217
1218
/* If this block ends with an unconditional jump to a small exit block or
1219
 * a block that has no line numbers (and no fallthrough), then
1220
 * remove the jump and extend this block with the target.
1221
 * Returns 1 if extended, 0 if no change, and -1 on error.
1222
 */
1223
static int
1224
32.9k
basicblock_inline_small_or_no_lineno_blocks(basicblock *bb) {
1225
32.9k
    cfg_instr *last = basicblock_last_instr(bb);
1226
32.9k
    if (last == NULL) {
1227
0
        return 0;
1228
0
    }
1229
32.9k
    if (!IS_UNCONDITIONAL_JUMP_OPCODE(last->i_opcode)) {
1230
28.7k
        return 0;
1231
28.7k
    }
1232
4.21k
    basicblock *target = last->i_target;
1233
4.21k
    bool small_exit_block = (basicblock_exits_scope(target) &&
1234
1.15k
                             target->b_iused <= MAX_COPY_SIZE);
1235
4.21k
    bool no_lineno_no_fallthrough = (basicblock_has_no_lineno(target) &&
1236
991
                                     !BB_HAS_FALLTHROUGH(target));
1237
4.21k
    if (small_exit_block || no_lineno_no_fallthrough) {
1238
1.10k
        assert(is_jump(last));
1239
1.10k
        int removed_jump_opcode = last->i_opcode;
1240
1.10k
        INSTR_SET_OP0(last, NOP);
1241
1.10k
        RETURN_IF_ERROR(basicblock_append_instructions(bb, target));
1242
1.10k
        if (no_lineno_no_fallthrough) {
1243
983
            last = basicblock_last_instr(bb);
1244
983
            if (IS_UNCONDITIONAL_JUMP_OPCODE(last->i_opcode) &&
1245
301
                removed_jump_opcode == JUMP)
1246
26
            {
1247
                /* Make sure we don't lose eval breaker checks */
1248
26
                last->i_opcode = JUMP;
1249
26
            }
1250
983
        }
1251
1.10k
        target->b_predecessors--;
1252
1.10k
        return 1;
1253
1.10k
    }
1254
3.11k
    return 0;
1255
4.21k
}
1256
1257
static int
1258
5.43k
inline_small_or_no_lineno_blocks(basicblock *entryblock) {
1259
5.43k
    bool changes;
1260
5.94k
    do {
1261
5.94k
        changes = false;
1262
38.8k
        for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
1263
32.9k
            int res = basicblock_inline_small_or_no_lineno_blocks(b);
1264
32.9k
            RETURN_IF_ERROR(res);
1265
32.9k
            if (res) {
1266
1.10k
                changes = true;
1267
1.10k
            }
1268
32.9k
        }
1269
5.94k
    } while(changes); /* every change removes a jump, ensuring convergence */
1270
5.43k
    return changes;
1271
5.43k
}
1272
1273
// Attempt to eliminate jumps to jumps by updating inst to jump to
1274
// target->i_target using the provided opcode. Return whether or not the
1275
// optimization was successful.
1276
static bool
1277
jump_thread(basicblock *bb, cfg_instr *inst, cfg_instr *target, int opcode)
1278
186
{
1279
186
    assert(is_jump(inst));
1280
186
    assert(is_jump(target));
1281
186
    assert(inst == basicblock_last_instr(bb));
1282
    // bpo-45773: If inst->i_target == target->i_target, then nothing actually
1283
    // changes (and we fall into an infinite loop):
1284
186
    if (inst->i_target != target->i_target) {
1285
        /* Change inst to NOP and append a jump to target->i_target. The
1286
         * NOP will be removed later if it's not needed for the lineno.
1287
         */
1288
186
        INSTR_SET_OP0(inst, NOP);
1289
1290
186
        RETURN_IF_ERROR(
1291
186
            basicblock_add_jump(
1292
186
                bb, opcode, target->i_target, target->i_loc));
1293
1294
186
        return true;
1295
186
    }
1296
0
    return false;
1297
186
}
1298
1299
static int
1300
loads_const(int opcode)
1301
6.53k
{
1302
6.53k
    return OPCODE_HAS_CONST(opcode) || opcode == LOAD_SMALL_INT;
1303
6.53k
}
1304
1305
/* Returns new reference */
1306
static PyObject*
1307
get_const_value(int opcode, int oparg, PyObject *co_consts)
1308
44.1k
{
1309
44.1k
    PyObject *constant = NULL;
1310
44.1k
    assert(loads_const(opcode));
1311
44.1k
    if (opcode == LOAD_CONST) {
1312
43.9k
        constant = PyList_GET_ITEM(co_consts, oparg);
1313
43.9k
    }
1314
44.1k
    if (opcode == LOAD_SMALL_INT) {
1315
206
        return PyLong_FromLong(oparg);
1316
206
    }
1317
1318
43.9k
    if (constant == NULL) {
1319
0
        PyErr_SetString(PyExc_SystemError,
1320
0
                        "Internal error: failed to get value of a constant");
1321
0
        return NULL;
1322
0
    }
1323
43.9k
    return Py_NewRef(constant);
1324
43.9k
}
1325
1326
// Steals a reference to newconst.
1327
static int
1328
add_const(PyObject *newconst, PyObject *consts, PyObject *const_cache)
1329
1.05k
{
1330
1.05k
    if (_PyCompile_ConstCacheMergeOne(const_cache, &newconst) < 0) {
1331
0
        Py_DECREF(newconst);
1332
0
        return -1;
1333
0
    }
1334
1335
1.05k
    Py_ssize_t index;
1336
24.7k
    for (index = 0; index < PyList_GET_SIZE(consts); index++) {
1337
23.9k
        if (PyList_GET_ITEM(consts, index) == newconst) {
1338
267
            break;
1339
267
        }
1340
23.9k
    }
1341
1.05k
    if (index == PyList_GET_SIZE(consts)) {
1342
792
        if ((size_t)index >= (size_t)INT_MAX - 1) {
1343
0
            PyErr_SetString(PyExc_OverflowError, "too many constants");
1344
0
            Py_DECREF(newconst);
1345
0
            return -1;
1346
0
        }
1347
792
        if (PyList_Append(consts, newconst)) {
1348
0
            Py_DECREF(newconst);
1349
0
            return -1;
1350
0
        }
1351
792
    }
1352
1.05k
    Py_DECREF(newconst);
1353
1.05k
    return (int)index;
1354
1.05k
}
1355
1356
/*
1357
  Traverse the instructions of the basic block backwards from index "start", skipping over NOPs.
1358
  Try to collect "size" number of consecutive instructions that load constants into the array "instrs".
1359
  Caller must make sure that length of "instrs" is sufficient to fit in at least "size" instructions.
1360
1361
  Return boolean indicating whether "size" such instructions were found.
1362
*/
1363
static bool
1364
get_const_loading_instrs(basicblock *bb, int start, cfg_instr **instrs, int size)
1365
4.23k
{
1366
4.23k
    assert(start < bb->b_iused);
1367
4.23k
    assert(size >= 0);
1368
4.23k
    assert(size <= _PY_STACK_USE_GUIDELINE);
1369
1370
7.61k
    for (; start >= 0 && size > 0; start--) {
1371
6.57k
        cfg_instr *instr = &bb->b_instr[start];
1372
6.57k
        if (instr->i_opcode == NOP) {
1373
48
            continue;
1374
48
        }
1375
6.52k
        if (!loads_const(instr->i_opcode)) {
1376
3.19k
            return false;
1377
3.19k
        }
1378
3.32k
        instrs[--size] = instr;
1379
3.32k
    }
1380
1381
1.04k
    return size == 0;
1382
4.23k
}
1383
1384
/*
1385
  Change every instruction in "instrs" NOP and set its location to NO_LOCATION.
1386
  Caller must make sure "instrs" has at least "size" elements.
1387
*/
1388
static void
1389
nop_out(cfg_instr **instrs, int size)
1390
1.03k
{
1391
3.55k
    for (int i = 0; i < size; i++) {
1392
2.51k
        cfg_instr *instr = instrs[i];
1393
2.51k
        assert(instr->i_opcode != NOP);
1394
2.51k
        INSTR_SET_OP0(instr, NOP);
1395
2.51k
        INSTR_SET_LOC(instr, NO_LOCATION);
1396
2.51k
    }
1397
1.03k
}
1398
1399
/* Does not steal reference to "newconst".
1400
   Return 1 if changed instruction to LOAD_SMALL_INT.
1401
   Return 0 if could not change instruction to LOAD_SMALL_INT.
1402
   Return -1 on error.
1403
*/
1404
static int
1405
maybe_instr_make_load_smallint(cfg_instr *instr, PyObject *newconst,
1406
                               PyObject *consts, PyObject *const_cache)
1407
41.7k
{
1408
41.7k
    if (PyLong_CheckExact(newconst)) {
1409
16.5k
        int overflow;
1410
16.5k
        long val = PyLong_AsLongAndOverflow(newconst, &overflow);
1411
16.5k
        if (val == -1 && PyErr_Occurred()) {
1412
0
            return -1;
1413
0
        }
1414
16.5k
        if (!overflow && _PY_IS_SMALL_INT(val)) {
1415
13.3k
            assert(_Py_IsImmortal(newconst));
1416
13.3k
            INSTR_SET_OP1(instr, LOAD_SMALL_INT, (int)val);
1417
13.3k
            return 1;
1418
13.3k
        }
1419
16.5k
    }
1420
28.4k
    return 0;
1421
41.7k
}
1422
1423
1424
/* Steals reference to "newconst" */
1425
static int
1426
instr_make_load_const(cfg_instr *instr, PyObject *newconst,
1427
                      PyObject *consts, PyObject *const_cache)
1428
845
{
1429
845
    int res = maybe_instr_make_load_smallint(instr, newconst, consts, const_cache);
1430
845
    if (res < 0) {
1431
0
        Py_DECREF(newconst);
1432
0
        return ERROR;
1433
0
    }
1434
845
    if (res > 0) {
1435
0
        return SUCCESS;
1436
0
    }
1437
845
    int oparg = add_const(newconst, consts, const_cache);
1438
845
    RETURN_IF_ERROR(oparg);
1439
845
    INSTR_SET_OP1(instr, LOAD_CONST, oparg);
1440
845
    return SUCCESS;
1441
845
}
1442
1443
/* Replace LOAD_CONST c1, LOAD_CONST c2 ... LOAD_CONST cn, BUILD_TUPLE n
1444
   with    LOAD_CONST (c1, c2, ... cn).
1445
   The consts table must still be in list form so that the
1446
   new constant (c1, c2, ... cn) can be appended.
1447
   Called with codestr pointing to the first LOAD_CONST.
1448
*/
1449
static int
1450
fold_tuple_of_constants(basicblock *bb, int i, PyObject *consts, PyObject *const_cache)
1451
2.43k
{
1452
    /* Pre-conditions */
1453
2.43k
    assert(PyDict_CheckExact(const_cache));
1454
2.43k
    assert(PyList_CheckExact(consts));
1455
1456
2.43k
    cfg_instr *instr = &bb->b_instr[i];
1457
2.43k
    assert(instr->i_opcode == BUILD_TUPLE);
1458
1459
2.43k
    int seq_size = instr->i_oparg;
1460
2.43k
    if (seq_size > _PY_STACK_USE_GUIDELINE) {
1461
0
        return SUCCESS;
1462
0
    }
1463
1464
2.43k
    cfg_instr *const_instrs[_PY_STACK_USE_GUIDELINE];
1465
2.43k
    if (!get_const_loading_instrs(bb, i-1, const_instrs, seq_size)) {
1466
        /* not a const sequence */
1467
1.71k
        return SUCCESS;
1468
1.71k
    }
1469
1470
722
    PyObject *const_tuple = PyTuple_New((Py_ssize_t)seq_size);
1471
722
    if (const_tuple == NULL) {
1472
0
        return ERROR;
1473
0
    }
1474
1475
1.76k
    for (int i = 0; i < seq_size; i++) {
1476
1.03k
        cfg_instr *inst = const_instrs[i];
1477
1.03k
        assert(loads_const(inst->i_opcode));
1478
1.03k
        PyObject *element = get_const_value(inst->i_opcode, inst->i_oparg, consts);
1479
1.03k
        if (element == NULL) {
1480
0
            Py_DECREF(const_tuple);
1481
0
            return ERROR;
1482
0
        }
1483
1.03k
        PyTuple_SET_ITEM(const_tuple, i, element);
1484
1.03k
    }
1485
1486
722
    nop_out(const_instrs, seq_size);
1487
722
    return instr_make_load_const(instr, const_tuple, consts, const_cache);
1488
722
}
1489
1490
/* Replace:
1491
    BUILD_LIST 0
1492
    LOAD_CONST c1
1493
    LIST_APPEND 1
1494
    LOAD_CONST c2
1495
    LIST_APPEND 1
1496
    ...
1497
    LOAD_CONST cN
1498
    LIST_APPEND 1
1499
    CALL_INTRINSIC_1 INTRINSIC_LIST_TO_TUPLE
1500
   with:
1501
    LOAD_CONST (c1, c2, ... cN)
1502
*/
1503
static int
1504
fold_constant_intrinsic_list_to_tuple(basicblock *bb, int i,
1505
                                      PyObject *consts, PyObject *const_cache)
1506
54
{
1507
54
    assert(PyDict_CheckExact(const_cache));
1508
54
    assert(PyList_CheckExact(consts));
1509
54
    assert(i >= 0);
1510
54
    assert(i < bb->b_iused);
1511
1512
54
    cfg_instr *intrinsic = &bb->b_instr[i];
1513
54
    assert(intrinsic->i_opcode == CALL_INTRINSIC_1);
1514
54
    assert(intrinsic->i_oparg == INTRINSIC_LIST_TO_TUPLE);
1515
1516
54
    int consts_found = 0;
1517
54
    bool expect_append = true;
1518
1519
61
    for (int pos = i - 1; pos >= 0; pos--) {
1520
61
        cfg_instr *instr = &bb->b_instr[pos];
1521
61
        int opcode = instr->i_opcode;
1522
61
        int oparg = instr->i_oparg;
1523
1524
61
        if (opcode == NOP) {
1525
0
            continue;
1526
0
        }
1527
1528
61
        if (opcode == BUILD_LIST && oparg == 0) {
1529
0
            if (!expect_append) {
1530
                /* Not a sequence start. */
1531
0
                return SUCCESS;
1532
0
            }
1533
1534
            /* Sequence start, we are done. */
1535
0
            PyObject *newconst = PyTuple_New((Py_ssize_t)consts_found);
1536
0
            if (newconst == NULL) {
1537
0
                return ERROR;
1538
0
            }
1539
1540
0
            for (int newpos = i - 1; newpos >= pos; newpos--) {
1541
0
                instr = &bb->b_instr[newpos];
1542
0
                if (instr->i_opcode == NOP) {
1543
0
                    continue;
1544
0
                }
1545
0
                if (loads_const(instr->i_opcode)) {
1546
0
                    PyObject *constant = get_const_value(instr->i_opcode, instr->i_oparg, consts);
1547
0
                    if (constant == NULL) {
1548
0
                        Py_DECREF(newconst);
1549
0
                        return ERROR;
1550
0
                    }
1551
0
                    assert(consts_found > 0);
1552
0
                    PyTuple_SET_ITEM(newconst, --consts_found, constant);
1553
0
                }
1554
0
                nop_out(&instr, 1);
1555
0
            }
1556
0
            assert(consts_found == 0);
1557
0
            return instr_make_load_const(intrinsic, newconst, consts, const_cache);
1558
0
        }
1559
1560
61
        if (expect_append) {
1561
54
            if (opcode != LIST_APPEND || oparg != 1) {
1562
47
                return SUCCESS;
1563
47
            }
1564
54
        }
1565
7
        else {
1566
7
            if (!loads_const(opcode)) {
1567
7
                return SUCCESS;
1568
7
            }
1569
0
            consts_found++;
1570
0
        }
1571
1572
7
        expect_append = !expect_append;
1573
7
    }
1574
1575
    /* Did not find sequence start. */
1576
0
    return SUCCESS;
1577
54
}
1578
1579
1.09k
#define MIN_CONST_SEQUENCE_SIZE 3
1580
/*
1581
Optimize lists and sets for:
1582
    1. "for" loop, comprehension or "in"/"not in" tests:
1583
           Change literal list or set of constants into constant
1584
           tuple or frozenset respectively. Change list of
1585
           non-constants into tuple.
1586
    2. Constant literal lists/set with length >= MIN_CONST_SEQUENCE_SIZE:
1587
           Replace LOAD_CONST c1, LOAD_CONST c2 ... LOAD_CONST cN, BUILD_LIST N
1588
           with BUILD_LIST 0, LOAD_CONST (c1, c2, ... cN), LIST_EXTEND 1,
1589
           or BUILD_SET & SET_UPDATE respectively.
1590
*/
1591
static int
1592
optimize_lists_and_sets(basicblock *bb, int i, int nextop,
1593
                        PyObject *consts, PyObject *const_cache)
1594
549
{
1595
549
    assert(PyDict_CheckExact(const_cache));
1596
549
    assert(PyList_CheckExact(consts));
1597
1598
549
    cfg_instr *instr = &bb->b_instr[i];
1599
549
    assert(instr->i_opcode == BUILD_LIST || instr->i_opcode == BUILD_SET);
1600
1601
549
    bool contains_or_iter = nextop == GET_ITER || nextop == CONTAINS_OP;
1602
549
    int seq_size = instr->i_oparg;
1603
549
    if (seq_size > _PY_STACK_USE_GUIDELINE ||
1604
549
        (seq_size < MIN_CONST_SEQUENCE_SIZE && !contains_or_iter))
1605
336
    {
1606
336
        return SUCCESS;
1607
336
    }
1608
1609
213
    cfg_instr *const_instrs[_PY_STACK_USE_GUIDELINE];
1610
213
    if (!get_const_loading_instrs(bb, i-1, const_instrs, seq_size)) {  /* not a const sequence */
1611
24
        if (contains_or_iter && instr->i_opcode == BUILD_LIST) {
1612
            /* iterate over a tuple instead of list */
1613
13
            INSTR_SET_OP1(instr, BUILD_TUPLE, instr->i_oparg);
1614
13
        }
1615
24
        return SUCCESS;
1616
24
    }
1617
1618
189
    PyObject *const_result = PyTuple_New((Py_ssize_t)seq_size);
1619
189
    if (const_result == NULL) {
1620
0
        return ERROR;
1621
0
    }
1622
1623
1.51k
    for (int i = 0; i < seq_size; i++) {
1624
1.32k
        cfg_instr *inst = const_instrs[i];
1625
1.32k
        assert(loads_const(inst->i_opcode));
1626
1.32k
        PyObject *element = get_const_value(inst->i_opcode, inst->i_oparg, consts);
1627
1.32k
        if (element == NULL) {
1628
0
            Py_DECREF(const_result);
1629
0
            return ERROR;
1630
0
        }
1631
1.32k
        PyTuple_SET_ITEM(const_result, i, element);
1632
1.32k
    }
1633
1634
189
    if (instr->i_opcode == BUILD_SET) {
1635
181
        PyObject *frozenset = PyFrozenSet_New(const_result);
1636
181
        if (frozenset == NULL) {
1637
0
            Py_DECREF(const_result);
1638
0
            return ERROR;
1639
0
        }
1640
181
        Py_SETREF(const_result, frozenset);
1641
181
    }
1642
1643
189
    int index = add_const(const_result, consts, const_cache);
1644
189
    RETURN_IF_ERROR(index);
1645
189
    nop_out(const_instrs, seq_size);
1646
1647
189
    if (contains_or_iter) {
1648
176
        INSTR_SET_OP1(instr, LOAD_CONST, index);
1649
176
    }
1650
13
    else {
1651
13
        assert(i >= 2);
1652
13
        assert(instr->i_opcode == BUILD_LIST || instr->i_opcode == BUILD_SET);
1653
1654
13
        INSTR_SET_LOC(&bb->b_instr[i-2], instr->i_loc);
1655
1656
13
        INSTR_SET_OP1(&bb->b_instr[i-2], instr->i_opcode, 0);
1657
13
        INSTR_SET_OP1(&bb->b_instr[i-1], LOAD_CONST, index);
1658
13
        INSTR_SET_OP1(&bb->b_instr[i], instr->i_opcode == BUILD_LIST ? LIST_EXTEND : SET_UPDATE, 1);
1659
13
    }
1660
189
    return SUCCESS;
1661
189
}
1662
1663
/* Check whether the total number of items in the (possibly nested) collection obj exceeds
1664
 * limit. Return a negative number if it does, and a non-negative number otherwise.
1665
 * Used to avoid creating constants which are slow to hash.
1666
 */
1667
static Py_ssize_t
1668
const_folding_check_complexity(PyObject *obj, Py_ssize_t limit)
1669
0
{
1670
0
    if (PyTuple_Check(obj)) {
1671
0
        Py_ssize_t i;
1672
0
        limit -= PyTuple_GET_SIZE(obj);
1673
0
        for (i = 0; limit >= 0 && i < PyTuple_GET_SIZE(obj); i++) {
1674
0
            limit = const_folding_check_complexity(PyTuple_GET_ITEM(obj, i), limit);
1675
0
            if (limit < 0) {
1676
0
                return limit;
1677
0
            }
1678
0
        }
1679
0
    }
1680
0
    return limit;
1681
0
}
1682
1683
67
#define MAX_INT_SIZE           128  /* bits */
1684
0
#define MAX_COLLECTION_SIZE    256  /* items */
1685
2
#define MAX_STR_SIZE          4096  /* characters */
1686
0
#define MAX_TOTAL_ITEMS       1024  /* including nested collections */
1687
1688
static PyObject *
1689
const_folding_safe_multiply(PyObject *v, PyObject *w)
1690
12
{
1691
12
    if (PyLong_Check(v) && PyLong_Check(w) &&
1692
8
        !_PyLong_IsZero((PyLongObject *)v) && !_PyLong_IsZero((PyLongObject *)w)
1693
12
    ) {
1694
8
        int64_t vbits = _PyLong_NumBits(v);
1695
8
        int64_t wbits = _PyLong_NumBits(w);
1696
8
        assert(vbits >= 0);
1697
8
        assert(wbits >= 0);
1698
8
        if (vbits + wbits > MAX_INT_SIZE) {
1699
0
            return NULL;
1700
0
        }
1701
8
    }
1702
4
    else if (PyLong_Check(v) && PyTuple_Check(w)) {
1703
0
        Py_ssize_t size = PyTuple_GET_SIZE(w);
1704
0
        if (size) {
1705
0
            long n = PyLong_AsLong(v);
1706
0
            if (n < 0 || n > MAX_COLLECTION_SIZE / size) {
1707
0
                return NULL;
1708
0
            }
1709
0
            if (n && const_folding_check_complexity(w, MAX_TOTAL_ITEMS / n) < 0) {
1710
0
                return NULL;
1711
0
            }
1712
0
        }
1713
0
    }
1714
4
    else if (PyLong_Check(v) && (PyUnicode_Check(w) || PyBytes_Check(w))) {
1715
2
        Py_ssize_t size = PyUnicode_Check(w) ? PyUnicode_GET_LENGTH(w) :
1716
2
                                               PyBytes_GET_SIZE(w);
1717
2
        if (size) {
1718
2
            long n = PyLong_AsLong(v);
1719
2
            if (n < 0 || n > MAX_STR_SIZE / size) {
1720
0
                return NULL;
1721
0
            }
1722
2
        }
1723
2
    }
1724
2
    else if (PyLong_Check(w) &&
1725
2
             (PyTuple_Check(v) || PyUnicode_Check(v) || PyBytes_Check(v)))
1726
2
    {
1727
2
        return const_folding_safe_multiply(w, v);
1728
2
    }
1729
1730
10
    return PyNumber_Multiply(v, w);
1731
12
}
1732
1733
static PyObject *
1734
const_folding_safe_power(PyObject *v, PyObject *w)
1735
2
{
1736
2
    if (PyLong_Check(v) && PyLong_Check(w) &&
1737
2
        !_PyLong_IsZero((PyLongObject *)v) && _PyLong_IsPositive((PyLongObject *)w)
1738
2
    ) {
1739
2
        int64_t vbits = _PyLong_NumBits(v);
1740
2
        size_t wbits = PyLong_AsSize_t(w);
1741
2
        assert(vbits >= 0);
1742
2
        if (wbits == (size_t)-1) {
1743
0
            return NULL;
1744
0
        }
1745
2
        if ((uint64_t)vbits > MAX_INT_SIZE / wbits) {
1746
0
            return NULL;
1747
0
        }
1748
2
    }
1749
1750
2
    return PyNumber_Power(v, w, Py_None);
1751
2
}
1752
1753
static PyObject *
1754
const_folding_safe_lshift(PyObject *v, PyObject *w)
1755
19
{
1756
19
    if (PyLong_Check(v) && PyLong_Check(w) &&
1757
19
        !_PyLong_IsZero((PyLongObject *)v) && !_PyLong_IsZero((PyLongObject *)w)
1758
19
    ) {
1759
19
        int64_t vbits = _PyLong_NumBits(v);
1760
19
        size_t wbits = PyLong_AsSize_t(w);
1761
19
        assert(vbits >= 0);
1762
19
        if (wbits == (size_t)-1) {
1763
0
            return NULL;
1764
0
        }
1765
19
        if (wbits > MAX_INT_SIZE || (uint64_t)vbits > MAX_INT_SIZE - wbits) {
1766
0
            return NULL;
1767
0
        }
1768
19
    }
1769
1770
19
    return PyNumber_Lshift(v, w);
1771
19
}
1772
1773
static PyObject *
1774
const_folding_safe_mod(PyObject *v, PyObject *w)
1775
0
{
1776
0
    if (PyUnicode_Check(v) || PyBytes_Check(v)) {
1777
0
        return NULL;
1778
0
    }
1779
1780
0
    return PyNumber_Remainder(v, w);
1781
0
}
1782
1783
static PyObject *
1784
eval_const_binop(PyObject *left, int op, PyObject *right)
1785
32
{
1786
32
    assert(left != NULL && right != NULL);
1787
32
    assert(op >= 0 && op <= NB_OPARG_LAST);
1788
1789
32
    PyObject *result = NULL;
1790
32
    switch (op) {
1791
1
        case NB_ADD:
1792
1
            result = PyNumber_Add(left, right);
1793
1
            break;
1794
0
        case NB_SUBTRACT:
1795
0
            result = PyNumber_Subtract(left, right);
1796
0
            break;
1797
10
        case NB_MULTIPLY:
1798
10
            result = const_folding_safe_multiply(left, right);
1799
10
            break;
1800
0
        case NB_TRUE_DIVIDE:
1801
0
            result = PyNumber_TrueDivide(left, right);
1802
0
            break;
1803
0
        case NB_FLOOR_DIVIDE:
1804
0
            result = PyNumber_FloorDivide(left, right);
1805
0
            break;
1806
0
        case NB_REMAINDER:
1807
0
            result = const_folding_safe_mod(left, right);
1808
0
            break;
1809
2
        case NB_POWER:
1810
2
            result = const_folding_safe_power(left, right);
1811
2
            break;
1812
19
        case NB_LSHIFT:
1813
19
            result = const_folding_safe_lshift(left, right);
1814
19
            break;
1815
0
        case NB_RSHIFT:
1816
0
            result = PyNumber_Rshift(left, right);
1817
0
            break;
1818
0
        case NB_OR:
1819
0
            result = PyNumber_Or(left, right);
1820
0
            break;
1821
0
        case NB_XOR:
1822
0
            result = PyNumber_Xor(left, right);
1823
0
            break;
1824
0
        case NB_AND:
1825
0
            result = PyNumber_And(left, right);
1826
0
            break;
1827
0
        case NB_SUBSCR:
1828
0
            result = PyObject_GetItem(left, right);
1829
0
            break;
1830
0
        case NB_MATRIX_MULTIPLY:
1831
            // No builtin constants implement matrix multiplication
1832
0
            break;
1833
0
        default:
1834
0
            Py_UNREACHABLE();
1835
32
    }
1836
32
    return result;
1837
32
}
1838
1839
static int
1840
fold_const_binop(basicblock *bb, int i, PyObject *consts, PyObject *const_cache)
1841
1.47k
{
1842
1.50k
    #define BINOP_OPERAND_COUNT 2
1843
1.47k
    assert(PyDict_CheckExact(const_cache));
1844
1.47k
    assert(PyList_CheckExact(consts));
1845
1846
1.47k
    cfg_instr *binop = &bb->b_instr[i];
1847
1.47k
    assert(binop->i_opcode == BINARY_OP);
1848
1849
1.47k
    cfg_instr *operands_instrs[BINOP_OPERAND_COUNT];
1850
1.47k
    if (!get_const_loading_instrs(bb, i-1, operands_instrs, BINOP_OPERAND_COUNT)) {
1851
        /* not a const sequence */
1852
1.44k
        return SUCCESS;
1853
1.44k
    }
1854
1855
32
    cfg_instr *lhs_instr = operands_instrs[0];
1856
32
    assert(loads_const(lhs_instr->i_opcode));
1857
32
    PyObject *lhs = get_const_value(lhs_instr->i_opcode, lhs_instr->i_oparg, consts);
1858
32
    if (lhs == NULL) {
1859
0
        return ERROR;
1860
0
    }
1861
1862
32
    cfg_instr *rhs_instr = operands_instrs[1];
1863
32
    assert(loads_const(rhs_instr->i_opcode));
1864
32
    PyObject *rhs = get_const_value(rhs_instr->i_opcode, rhs_instr->i_oparg, consts);
1865
32
    if (rhs == NULL) {
1866
0
        Py_DECREF(lhs);
1867
0
        return ERROR;
1868
0
    }
1869
1870
32
    PyObject *newconst = eval_const_binop(lhs, binop->i_oparg, rhs);
1871
32
    Py_DECREF(lhs);
1872
32
    Py_DECREF(rhs);
1873
32
    if (newconst == NULL) {
1874
0
        if (PyErr_ExceptionMatches(PyExc_KeyboardInterrupt)) {
1875
0
            return ERROR;
1876
0
        }
1877
0
        PyErr_Clear();
1878
0
        return SUCCESS;
1879
0
    }
1880
1881
32
    nop_out(operands_instrs, BINOP_OPERAND_COUNT);
1882
32
    return instr_make_load_const(binop, newconst, consts, const_cache);
1883
32
}
1884
1885
static PyObject *
1886
eval_const_unaryop(PyObject *operand, int opcode, int oparg)
1887
91
{
1888
91
    assert(operand != NULL);
1889
91
    assert(
1890
91
        opcode == UNARY_NEGATIVE ||
1891
91
        opcode == UNARY_INVERT ||
1892
91
        opcode == UNARY_NOT ||
1893
91
        (opcode == CALL_INTRINSIC_1 && oparg == INTRINSIC_UNARY_POSITIVE)
1894
91
    );
1895
91
    PyObject *result;
1896
91
    switch (opcode) {
1897
91
        case UNARY_NEGATIVE:
1898
91
            result = PyNumber_Negative(operand);
1899
91
            break;
1900
0
        case UNARY_INVERT:
1901
            // XXX: This should be removed once the ~bool depreciation expires.
1902
0
            if (PyBool_Check(operand)) {
1903
0
                return NULL;
1904
0
            }
1905
0
            result = PyNumber_Invert(operand);
1906
0
            break;
1907
0
        case UNARY_NOT: {
1908
0
            int r = PyObject_IsTrue(operand);
1909
0
            if (r < 0) {
1910
0
                return NULL;
1911
0
            }
1912
0
            result = PyBool_FromLong(!r);
1913
0
            break;
1914
0
        }
1915
0
        case CALL_INTRINSIC_1:
1916
0
            if (oparg != INTRINSIC_UNARY_POSITIVE) {
1917
0
                Py_UNREACHABLE();
1918
0
            }
1919
0
            result = PyNumber_Positive(operand);
1920
0
            break;
1921
0
        default:
1922
0
            Py_UNREACHABLE();
1923
91
    }
1924
91
    return result;
1925
91
}
1926
1927
static int
1928
fold_const_unaryop(basicblock *bb, int i, PyObject *consts, PyObject *const_cache)
1929
113
{
1930
204
    #define UNARYOP_OPERAND_COUNT 1
1931
113
    assert(PyDict_CheckExact(const_cache));
1932
113
    assert(PyList_CheckExact(consts));
1933
113
    cfg_instr *unaryop = &bb->b_instr[i];
1934
1935
113
    cfg_instr *operand_instr;
1936
113
    if (!get_const_loading_instrs(bb, i-1, &operand_instr, UNARYOP_OPERAND_COUNT)) {
1937
        /* not a const */
1938
22
        return SUCCESS;
1939
22
    }
1940
1941
113
    assert(loads_const(operand_instr->i_opcode));
1942
91
    PyObject *operand = get_const_value(
1943
91
        operand_instr->i_opcode,
1944
91
        operand_instr->i_oparg,
1945
91
        consts
1946
91
    );
1947
91
    if (operand == NULL) {
1948
0
        return ERROR;
1949
0
    }
1950
1951
91
    PyObject *newconst = eval_const_unaryop(operand, unaryop->i_opcode, unaryop->i_oparg);
1952
91
    Py_DECREF(operand);
1953
91
    if (newconst == NULL) {
1954
0
        if (PyErr_ExceptionMatches(PyExc_KeyboardInterrupt)) {
1955
0
            return ERROR;
1956
0
        }
1957
0
        PyErr_Clear();
1958
0
        return SUCCESS;
1959
0
    }
1960
1961
91
    if (unaryop->i_opcode == UNARY_NOT) {
1962
0
        assert(PyBool_Check(newconst));
1963
0
    }
1964
91
    nop_out(&operand_instr, UNARYOP_OPERAND_COUNT);
1965
91
    return instr_make_load_const(unaryop, newconst, consts, const_cache);
1966
91
}
1967
1968
1.96k
#define VISITED (-1)
1969
1970
// Replace an arbitrary run of SWAPs and NOPs with an optimal one that has the
1971
// same effect.
1972
static int
1973
swaptimize(basicblock *block, int *ix)
1974
591
{
1975
    // NOTE: "./python -m test test_patma" serves as a good, quick stress test
1976
    // for this function. Make sure to blow away cached *.pyc files first!
1977
591
    assert(*ix < block->b_iused);
1978
591
    cfg_instr *instructions = &block->b_instr[*ix];
1979
    // Find the length of the current sequence of SWAPs and NOPs, and record the
1980
    // maximum depth of the stack manipulations:
1981
591
    assert(instructions[0].i_opcode == SWAP);
1982
591
    int depth = instructions[0].i_oparg;
1983
591
    int len = 0;
1984
591
    int more = false;
1985
591
    int limit = block->b_iused - *ix;
1986
762
    while (++len < limit) {
1987
762
        int opcode = instructions[len].i_opcode;
1988
762
        if (opcode == SWAP) {
1989
151
            depth = Py_MAX(depth, instructions[len].i_oparg);
1990
151
            more = true;
1991
151
        }
1992
611
        else if (opcode != NOP) {
1993
591
            break;
1994
591
        }
1995
762
    }
1996
    // It's already optimal if there's only one SWAP:
1997
591
    if (!more) {
1998
440
        return SUCCESS;
1999
440
    }
2000
    // Create an array with elements {0, 1, 2, ..., depth - 1}:
2001
151
    int *stack = PyMem_Malloc(depth * sizeof(int));
2002
151
    if (stack == NULL) {
2003
0
        PyErr_NoMemory();
2004
0
        return ERROR;
2005
0
    }
2006
604
    for (int i = 0; i < depth; i++) {
2007
453
        stack[i] = i;
2008
453
    }
2009
    // Simulate the combined effect of these instructions by "running" them on
2010
    // our "stack":
2011
453
    for (int i = 0; i < len; i++) {
2012
302
        if (instructions[i].i_opcode == SWAP) {
2013
302
            int oparg = instructions[i].i_oparg;
2014
302
            int top = stack[0];
2015
            // SWAPs are 1-indexed:
2016
302
            stack[0] = stack[oparg - 1];
2017
302
            stack[oparg - 1] = top;
2018
302
        }
2019
302
    }
2020
    // Now we can begin! Our approach here is based on a solution to a closely
2021
    // related problem (https://cs.stackexchange.com/a/13938). It's easiest to
2022
    // think of this algorithm as determining the steps needed to efficiently
2023
    // "un-shuffle" our stack. By performing the moves in *reverse* order,
2024
    // though, we can efficiently *shuffle* it! For this reason, we will be
2025
    // replacing instructions starting from the *end* of the run. Since the
2026
    // solution is optimal, we don't need to worry about running out of space:
2027
151
    int current = len - 1;
2028
604
    for (int i = 0; i < depth; i++) {
2029
        // Skip items that have already been visited, or just happen to be in
2030
        // the correct location:
2031
453
        if (stack[i] == VISITED || stack[i] == i) {
2032
302
            continue;
2033
302
        }
2034
        // Okay, we've found an item that hasn't been visited. It forms a cycle
2035
        // with other items; traversing the cycle and swapping each item with
2036
        // the next will put them all in the correct place. The weird
2037
        // loop-and-a-half is necessary to insert 0 into every cycle, since we
2038
        // can only swap from that position:
2039
151
        int j = i;
2040
604
        while (true) {
2041
            // Skip the actual swap if our item is zero, since swapping the top
2042
            // item with itself is pointless:
2043
604
            if (j) {
2044
302
                assert(0 <= current);
2045
                // SWAPs are 1-indexed:
2046
302
                instructions[current].i_opcode = SWAP;
2047
302
                instructions[current--].i_oparg = j + 1;
2048
302
            }
2049
604
            if (stack[j] == VISITED) {
2050
                // Completed the cycle:
2051
151
                assert(j == i);
2052
151
                break;
2053
151
            }
2054
453
            int next_j = stack[j];
2055
453
            stack[j] = VISITED;
2056
453
            j = next_j;
2057
453
        }
2058
151
    }
2059
    // NOP out any unused instructions:
2060
151
    while (0 <= current) {
2061
0
        INSTR_SET_OP0(&instructions[current--], NOP);
2062
0
    }
2063
151
    PyMem_Free(stack);
2064
151
    *ix += len - 1;
2065
151
    return SUCCESS;
2066
151
}
2067
2068
2069
// This list is pretty small, since it's only okay to reorder opcodes that:
2070
// - can't affect control flow (like jumping or raising exceptions)
2071
// - can't invoke arbitrary code (besides finalizers)
2072
// - only touch the TOS (and pop it when finished)
2073
#define SWAPPABLE(opcode) \
2074
911
    ((opcode) == STORE_FAST || \
2075
911
     (opcode) == STORE_FAST_MAYBE_NULL || \
2076
911
     (opcode) == POP_TOP)
2077
2078
#define STORES_TO(instr) \
2079
169
    (((instr).i_opcode == STORE_FAST || \
2080
169
      (instr).i_opcode == STORE_FAST_MAYBE_NULL) \
2081
169
     ? (instr).i_oparg : -1)
2082
2083
static int
2084
next_swappable_instruction(basicblock *block, int i, int lineno)
2085
875
{
2086
895
    while (++i < block->b_iused) {
2087
890
        cfg_instr *instruction = &block->b_instr[i];
2088
890
        if (0 <= lineno && instruction->i_loc.lineno != lineno) {
2089
            // Optimizing across this instruction could cause user-visible
2090
            // changes in the names bound between line tracing events!
2091
4
            return -1;
2092
4
        }
2093
886
        if (instruction->i_opcode == NOP) {
2094
20
            continue;
2095
20
        }
2096
866
        if (SWAPPABLE(instruction->i_opcode)) {
2097
362
            return i;
2098
362
        }
2099
504
        return -1;
2100
866
    }
2101
5
    return -1;
2102
875
}
2103
2104
// Attempt to apply SWAPs statically by swapping *instructions* rather than
2105
// stack items. For example, we can replace SWAP(2), POP_TOP, STORE_FAST(42)
2106
// with the more efficient NOP, STORE_FAST(42), POP_TOP.
2107
static void
2108
apply_static_swaps(basicblock *block, int i)
2109
591
{
2110
    // SWAPs are to our left, and potential swaperands are to our right:
2111
714
    for (; 0 <= i; i--) {
2112
681
        assert(i < block->b_iused);
2113
681
        cfg_instr *swap = &block->b_instr[i];
2114
681
        if (swap->i_opcode != SWAP) {
2115
90
            if (swap->i_opcode == NOP || SWAPPABLE(swap->i_opcode)) {
2116
                // Nope, but we know how to handle these. Keep looking:
2117
45
                continue;
2118
45
            }
2119
            // We can't reason about what this instruction does. Bail:
2120
45
            return;
2121
90
        }
2122
591
        int j = next_swappable_instruction(block, i, -1);
2123
591
        if (j < 0) {
2124
350
            return;
2125
350
        }
2126
241
        int k = j;
2127
241
        int lineno = block->b_instr[j].i_loc.lineno;
2128
362
        for (int count = swap->i_oparg - 1; 0 < count; count--) {
2129
284
            k = next_swappable_instruction(block, k, lineno);
2130
284
            if (k < 0) {
2131
163
                return;
2132
163
            }
2133
284
        }
2134
        // The reordering is not safe if the two instructions to be swapped
2135
        // store to the same location, or if any intervening instruction stores
2136
        // to the same location as either of them.
2137
78
        int store_j = STORES_TO(block->b_instr[j]);
2138
78
        int store_k = STORES_TO(block->b_instr[k]);
2139
78
        if (store_j >= 0 || store_k >= 0) {
2140
78
            if (store_j == store_k) {
2141
0
                return;
2142
0
            }
2143
91
            for (int idx = j + 1; idx < k; idx++) {
2144
13
                int store_idx = STORES_TO(block->b_instr[idx]);
2145
13
                if (store_idx >= 0 && (store_idx == store_j || store_idx == store_k)) {
2146
0
                    return;
2147
0
                }
2148
13
            }
2149
78
        }
2150
2151
        // Success!
2152
78
        INSTR_SET_OP0(swap, NOP);
2153
78
        cfg_instr temp = block->b_instr[j];
2154
78
        block->b_instr[j] = block->b_instr[k];
2155
78
        block->b_instr[k] = temp;
2156
78
    }
2157
591
}
2158
2159
static int
2160
basicblock_optimize_load_const(PyObject *const_cache, basicblock *bb, PyObject *consts)
2161
24.1k
{
2162
24.1k
    assert(PyDict_CheckExact(const_cache));
2163
24.1k
    assert(PyList_CheckExact(consts));
2164
24.1k
    int opcode = 0;
2165
24.1k
    int oparg = 0;
2166
233k
    for (int i = 0; i < bb->b_iused; i++) {
2167
209k
        cfg_instr *inst = &bb->b_instr[i];
2168
209k
        if (inst->i_opcode == LOAD_CONST) {
2169
40.9k
            PyObject *constant = get_const_value(inst->i_opcode, inst->i_oparg, consts);
2170
40.9k
            int res = maybe_instr_make_load_smallint(inst, constant, consts, const_cache);
2171
40.9k
            Py_DECREF(constant);
2172
40.9k
            if (res < 0) {
2173
0
                return ERROR;
2174
0
            }
2175
40.9k
        }
2176
209k
        bool is_copy_of_load_const = (opcode == LOAD_CONST &&
2177
27.3k
                                      inst->i_opcode == COPY &&
2178
12
                                      inst->i_oparg == 1);
2179
209k
        if (! is_copy_of_load_const) {
2180
209k
            opcode = inst->i_opcode;
2181
209k
            oparg = inst->i_oparg;
2182
209k
        }
2183
209k
        assert(!IS_ASSEMBLER_OPCODE(opcode));
2184
209k
        if (opcode != LOAD_CONST && opcode != LOAD_SMALL_INT) {
2185
168k
            continue;
2186
168k
        }
2187
40.9k
        int nextop = i+1 < bb->b_iused ? bb->b_instr[i+1].i_opcode : 0;
2188
40.9k
        switch(nextop) {
2189
25
            case POP_JUMP_IF_FALSE:
2190
25
            case POP_JUMP_IF_TRUE:
2191
25
            case JUMP_IF_FALSE:
2192
25
            case JUMP_IF_TRUE:
2193
25
            {
2194
                /* Remove LOAD_CONST const; conditional jump */
2195
25
                PyObject* cnt = get_const_value(opcode, oparg, consts);
2196
25
                if (cnt == NULL) {
2197
0
                    return ERROR;
2198
0
                }
2199
25
                int is_true = PyObject_IsTrue(cnt);
2200
25
                Py_DECREF(cnt);
2201
25
                if (is_true == -1) {
2202
0
                    return ERROR;
2203
0
                }
2204
25
                if (PyCompile_OpcodeStackEffect(nextop, 0) == -1) {
2205
                    /* POP_JUMP_IF_FALSE or POP_JUMP_IF_TRUE */
2206
25
                    INSTR_SET_OP0(inst, NOP);
2207
25
                }
2208
25
                int jump_if_true = (nextop == POP_JUMP_IF_TRUE || nextop == JUMP_IF_TRUE);
2209
25
                if (is_true == jump_if_true) {
2210
0
                    bb->b_instr[i+1].i_opcode = JUMP;
2211
0
                }
2212
25
                else {
2213
25
                    INSTR_SET_OP0(&bb->b_instr[i + 1], NOP);
2214
25
                }
2215
25
                break;
2216
25
            }
2217
692
            case IS_OP:
2218
692
            {
2219
                // Fold to POP_JUMP_IF_NONE:
2220
                // - LOAD_CONST(None) IS_OP(0) POP_JUMP_IF_TRUE
2221
                // - LOAD_CONST(None) IS_OP(1) POP_JUMP_IF_FALSE
2222
                // - LOAD_CONST(None) IS_OP(0) TO_BOOL POP_JUMP_IF_TRUE
2223
                // - LOAD_CONST(None) IS_OP(1) TO_BOOL POP_JUMP_IF_FALSE
2224
                // Fold to POP_JUMP_IF_NOT_NONE:
2225
                // - LOAD_CONST(None) IS_OP(0) POP_JUMP_IF_FALSE
2226
                // - LOAD_CONST(None) IS_OP(1) POP_JUMP_IF_TRUE
2227
                // - LOAD_CONST(None) IS_OP(0) TO_BOOL POP_JUMP_IF_FALSE
2228
                // - LOAD_CONST(None) IS_OP(1) TO_BOOL POP_JUMP_IF_TRUE
2229
692
                PyObject *cnt = get_const_value(opcode, oparg, consts);
2230
692
                if (cnt == NULL) {
2231
0
                    return ERROR;
2232
0
                }
2233
692
                if (!Py_IsNone(cnt)) {
2234
15
                    Py_DECREF(cnt);
2235
15
                    break;
2236
15
                }
2237
677
                if (bb->b_iused <= i + 2) {
2238
1
                    break;
2239
1
                }
2240
676
                cfg_instr *is_instr = &bb->b_instr[i + 1];
2241
676
                cfg_instr *jump_instr = &bb->b_instr[i + 2];
2242
                // Get rid of TO_BOOL regardless:
2243
676
                if (jump_instr->i_opcode == TO_BOOL) {
2244
661
                    INSTR_SET_OP0(jump_instr, NOP);
2245
661
                    if (bb->b_iused <= i + 3) {
2246
0
                        break;
2247
0
                    }
2248
661
                    jump_instr = &bb->b_instr[i + 3];
2249
661
                }
2250
676
                bool invert = is_instr->i_oparg;
2251
676
                if (jump_instr->i_opcode == POP_JUMP_IF_FALSE) {
2252
628
                    invert = !invert;
2253
628
                }
2254
48
                else if (jump_instr->i_opcode != POP_JUMP_IF_TRUE) {
2255
15
                    break;
2256
15
                }
2257
661
                INSTR_SET_OP0(inst, NOP);
2258
661
                INSTR_SET_OP0(is_instr, NOP);
2259
661
                jump_instr->i_opcode = invert ? POP_JUMP_IF_NOT_NONE
2260
661
                                              : POP_JUMP_IF_NONE;
2261
661
                break;
2262
676
            }
2263
25
            case TO_BOOL:
2264
25
            {
2265
25
                PyObject *cnt = get_const_value(opcode, oparg, consts);
2266
25
                if (cnt == NULL) {
2267
0
                    return ERROR;
2268
0
                }
2269
25
                int is_true = PyObject_IsTrue(cnt);
2270
25
                Py_DECREF(cnt);
2271
25
                if (is_true == -1) {
2272
0
                    return ERROR;
2273
0
                }
2274
25
                cnt = PyBool_FromLong(is_true);
2275
25
                int index = add_const(cnt, consts, const_cache);
2276
25
                if (index < 0) {
2277
0
                    return ERROR;
2278
0
                }
2279
25
                INSTR_SET_OP0(inst, NOP);
2280
25
                INSTR_SET_OP1(&bb->b_instr[i + 1], LOAD_CONST, index);
2281
25
                break;
2282
25
            }
2283
40.9k
        }
2284
40.9k
    }
2285
24.1k
    return SUCCESS;
2286
24.1k
}
2287
2288
static int
2289
5.43k
optimize_load_const(PyObject *const_cache, cfg_builder *g, PyObject *consts) {
2290
29.5k
    for (basicblock *b = g->g_entryblock; b != NULL; b = b->b_next) {
2291
24.1k
        RETURN_IF_ERROR(basicblock_optimize_load_const(const_cache, b, consts));
2292
24.1k
    }
2293
5.43k
    return SUCCESS;
2294
5.43k
}
2295
2296
static int
2297
optimize_basic_block(PyObject *const_cache, basicblock *bb, PyObject *consts)
2298
24.1k
{
2299
24.1k
    assert(PyDict_CheckExact(const_cache));
2300
24.1k
    assert(PyList_CheckExact(consts));
2301
24.1k
    cfg_instr nop;
2302
24.1k
    INSTR_SET_OP0(&nop, NOP);
2303
234k
    for (int i = 0; i < bb->b_iused; i++) {
2304
209k
        cfg_instr *inst = &bb->b_instr[i];
2305
209k
        cfg_instr *target;
2306
209k
        int opcode = inst->i_opcode;
2307
209k
        int oparg = inst->i_oparg;
2308
209k
        if (HAS_TARGET(opcode)) {
2309
9.92k
            assert(inst->i_target->b_iused > 0);
2310
9.92k
            target = &inst->i_target->b_instr[0];
2311
9.92k
            assert(!IS_ASSEMBLER_OPCODE(target->i_opcode));
2312
9.92k
        }
2313
200k
        else {
2314
200k
            target = &nop;
2315
200k
        }
2316
209k
        int nextop = i+1 < bb->b_iused ? bb->b_instr[i+1].i_opcode : 0;
2317
209k
        assert(!IS_ASSEMBLER_OPCODE(opcode));
2318
209k
        switch (opcode) {
2319
            /* Try to fold tuples of constants.
2320
               Skip over BUILD_TUPLE(1) UNPACK_SEQUENCE(1).
2321
               Replace BUILD_TUPLE(2) UNPACK_SEQUENCE(2) with SWAP(2).
2322
               Replace BUILD_TUPLE(3) UNPACK_SEQUENCE(3) with SWAP(3). */
2323
2.48k
            case BUILD_TUPLE:
2324
2.48k
                if (nextop == UNPACK_SEQUENCE && oparg == bb->b_instr[i+1].i_oparg) {
2325
54
                    switch(oparg) {
2326
0
                        case 1:
2327
0
                            INSTR_SET_OP0(inst, NOP);
2328
0
                            INSTR_SET_OP0(&bb->b_instr[i + 1], NOP);
2329
0
                            continue;
2330
45
                        case 2:
2331
53
                        case 3:
2332
53
                            INSTR_SET_OP0(inst, NOP);
2333
53
                            bb->b_instr[i+1].i_opcode = SWAP;
2334
53
                            continue;
2335
54
                    }
2336
54
                }
2337
2.43k
                RETURN_IF_ERROR(fold_tuple_of_constants(bb, i, consts, const_cache));
2338
2.43k
                break;
2339
338
            case BUILD_LIST:
2340
549
            case BUILD_SET:
2341
549
                RETURN_IF_ERROR(optimize_lists_and_sets(bb, i, nextop, consts, const_cache));
2342
549
                break;
2343
250
            case POP_JUMP_IF_NOT_NONE:
2344
677
            case POP_JUMP_IF_NONE:
2345
677
                switch (target->i_opcode) {
2346
16
                    case JUMP:
2347
16
                        i -= jump_thread(bb, inst, target, inst->i_opcode);
2348
677
                }
2349
677
                break;
2350
3.29k
            case POP_JUMP_IF_FALSE:
2351
3.29k
                switch (target->i_opcode) {
2352
137
                    case JUMP:
2353
137
                        i -= jump_thread(bb, inst, target, POP_JUMP_IF_FALSE);
2354
3.29k
                }
2355
3.29k
                break;
2356
3.29k
            case POP_JUMP_IF_TRUE:
2357
944
                switch (target->i_opcode) {
2358
33
                    case JUMP:
2359
33
                        i -= jump_thread(bb, inst, target, POP_JUMP_IF_TRUE);
2360
944
                }
2361
944
                break;
2362
944
            case JUMP_IF_FALSE:
2363
831
                switch (target->i_opcode) {
2364
0
                    case JUMP:
2365
0
                    case JUMP_IF_FALSE:
2366
0
                        i -= jump_thread(bb, inst, target, JUMP_IF_FALSE);
2367
0
                        continue;
2368
2
                    case JUMP_IF_TRUE:
2369
                        // No need to check for loops here, a block's b_next
2370
                        // cannot point to itself.
2371
2
                        assert(inst->i_target != inst->i_target->b_next);
2372
2
                        inst->i_target = inst->i_target->b_next;
2373
2
                        i--;
2374
2
                        continue;
2375
831
                }
2376
829
                break;
2377
829
            case JUMP_IF_TRUE:
2378
54
                switch (target->i_opcode) {
2379
0
                    case JUMP:
2380
0
                    case JUMP_IF_TRUE:
2381
0
                        i -= jump_thread(bb, inst, target, JUMP_IF_TRUE);
2382
0
                        continue;
2383
0
                    case JUMP_IF_FALSE:
2384
                        // No need to check for loops here, a block's b_next
2385
                        // cannot point to itself.
2386
0
                        assert(inst->i_target != inst->i_target->b_next);
2387
0
                        inst->i_target = inst->i_target->b_next;
2388
0
                        i--;
2389
0
                        continue;
2390
54
                }
2391
54
                break;
2392
866
            case JUMP:
2393
1.87k
            case JUMP_NO_INTERRUPT:
2394
1.87k
                switch (target->i_opcode) {
2395
0
                    case JUMP:
2396
0
                        i -= jump_thread(bb, inst, target, JUMP);
2397
0
                        continue;
2398
0
                    case JUMP_NO_INTERRUPT:
2399
0
                        i -= jump_thread(bb, inst, target, opcode);
2400
0
                        continue;
2401
1.87k
                }
2402
1.87k
                break;
2403
1.87k
            case FOR_ITER:
2404
451
                if (target->i_opcode == JUMP) {
2405
                    /* This will not work now because the jump (at target) could
2406
                     * be forward or backward and FOR_ITER only jumps forward. We
2407
                     * can re-enable this if ever we implement a backward version
2408
                     * of FOR_ITER.
2409
                     */
2410
                    /*
2411
                    i -= jump_thread(bb, inst, target, FOR_ITER);
2412
                    */
2413
0
                }
2414
451
                break;
2415
4.83k
            case STORE_FAST:
2416
4.83k
                if (opcode == nextop &&
2417
373
                    oparg == bb->b_instr[i+1].i_oparg &&
2418
19
                    bb->b_instr[i].i_loc.lineno == bb->b_instr[i+1].i_loc.lineno) {
2419
19
                    bb->b_instr[i].i_opcode = POP_TOP;
2420
19
                    bb->b_instr[i].i_oparg = 0;
2421
19
                }
2422
4.83k
                break;
2423
742
            case SWAP:
2424
742
                if (oparg == 1) {
2425
0
                    INSTR_SET_OP0(inst, NOP);
2426
0
                }
2427
742
                break;
2428
7.62k
            case LOAD_GLOBAL:
2429
7.62k
                if (nextop == PUSH_NULL && (oparg & 1) == 0) {
2430
2.99k
                    INSTR_SET_OP1(inst, LOAD_GLOBAL, oparg | 1);
2431
2.99k
                    INSTR_SET_OP0(&bb->b_instr[i + 1], NOP);
2432
2.99k
                }
2433
7.62k
                break;
2434
2.52k
            case COMPARE_OP:
2435
2.52k
                if (nextop == TO_BOOL) {
2436
733
                    INSTR_SET_OP0(inst, NOP);
2437
733
                    INSTR_SET_OP1(&bb->b_instr[i + 1], COMPARE_OP, oparg | 16);
2438
733
                    continue;
2439
733
                }
2440
1.79k
                break;
2441
1.79k
            case CONTAINS_OP:
2442
2.01k
            case IS_OP:
2443
2.01k
                if (nextop == TO_BOOL) {
2444
982
                    INSTR_SET_OP0(inst, NOP);
2445
982
                    INSTR_SET_OP1(&bb->b_instr[i + 1], opcode, oparg);
2446
982
                    continue;
2447
982
                }
2448
1.03k
                if (nextop == UNARY_NOT) {
2449
0
                    INSTR_SET_OP0(inst, NOP);
2450
0
                    int inverted = oparg ^ 1;
2451
0
                    assert(inverted == 0 || inverted == 1);
2452
0
                    INSTR_SET_OP1(&bb->b_instr[i + 1], opcode, inverted);
2453
0
                    continue;
2454
0
                }
2455
1.03k
                break;
2456
1.89k
            case TO_BOOL:
2457
1.89k
                if (nextop == TO_BOOL) {
2458
0
                    INSTR_SET_OP0(inst, NOP);
2459
0
                    continue;
2460
0
                }
2461
1.89k
                break;
2462
1.89k
            case UNARY_NOT:
2463
17
                if (nextop == TO_BOOL) {
2464
0
                    INSTR_SET_OP0(inst, NOP);
2465
0
                    INSTR_SET_OP0(&bb->b_instr[i + 1], UNARY_NOT);
2466
0
                    continue;
2467
0
                }
2468
17
                if (nextop == UNARY_NOT) {
2469
0
                    INSTR_SET_OP0(inst, NOP);
2470
0
                    INSTR_SET_OP0(&bb->b_instr[i + 1], NOP);
2471
0
                    continue;
2472
0
                }
2473
17
                _Py_FALLTHROUGH;
2474
19
            case UNARY_INVERT:
2475
113
            case UNARY_NEGATIVE:
2476
113
                RETURN_IF_ERROR(fold_const_unaryop(bb, i, consts, const_cache));
2477
113
                break;
2478
323
            case CALL_INTRINSIC_1:
2479
323
                if (oparg == INTRINSIC_LIST_TO_TUPLE) {
2480
54
                    if (nextop == GET_ITER) {
2481
0
                        INSTR_SET_OP0(inst, NOP);
2482
0
                    }
2483
54
                    else {
2484
54
                        RETURN_IF_ERROR(fold_constant_intrinsic_list_to_tuple(bb, i, consts, const_cache));
2485
54
                    }
2486
54
                }
2487
269
                else if (oparg == INTRINSIC_UNARY_POSITIVE) {
2488
0
                    RETURN_IF_ERROR(fold_const_unaryop(bb, i, consts, const_cache));
2489
0
                }
2490
323
                break;
2491
1.47k
            case BINARY_OP:
2492
1.47k
                RETURN_IF_ERROR(fold_const_binop(bb, i, consts, const_cache));
2493
1.47k
                break;
2494
209k
        }
2495
209k
    }
2496
2497
233k
    for (int i = 0; i < bb->b_iused; i++) {
2498
209k
        cfg_instr *inst = &bb->b_instr[i];
2499
209k
        if (inst->i_opcode == SWAP) {
2500
591
            if (swaptimize(bb, &i) < 0) {
2501
0
                goto error;
2502
0
            }
2503
591
            apply_static_swaps(bb, i);
2504
591
        }
2505
209k
    }
2506
24.1k
    return SUCCESS;
2507
0
error:
2508
0
    return ERROR;
2509
24.1k
}
2510
2511
static int resolve_line_numbers(cfg_builder *g, int firstlineno);
2512
2513
static int
2514
remove_redundant_nops_and_jumps(cfg_builder *g)
2515
11.4k
{
2516
11.4k
    int removed_nops, removed_jumps;
2517
12.3k
    do {
2518
        /* Convergence is guaranteed because the number of
2519
         * redundant jumps and nops only decreases.
2520
         */
2521
12.3k
        removed_nops = remove_redundant_nops(g);
2522
12.3k
        RETURN_IF_ERROR(removed_nops);
2523
12.3k
        removed_jumps = remove_redundant_jumps(g);
2524
12.3k
        RETURN_IF_ERROR(removed_jumps);
2525
12.3k
    } while(removed_nops + removed_jumps > 0);
2526
11.4k
    return SUCCESS;
2527
11.4k
}
2528
2529
/* Perform optimizations on a control flow graph.
2530
   The consts object should still be in list form to allow new constants
2531
   to be appended.
2532
2533
   Code trasnformations that reduce code size initially fill the gaps with
2534
   NOPs.  Later those NOPs are removed.
2535
*/
2536
static int
2537
optimize_cfg(cfg_builder *g, PyObject *consts, PyObject *const_cache, int firstlineno)
2538
5.43k
{
2539
5.43k
    assert(PyDict_CheckExact(const_cache));
2540
5.43k
    RETURN_IF_ERROR(check_cfg(g));
2541
5.43k
    RETURN_IF_ERROR(inline_small_or_no_lineno_blocks(g->g_entryblock));
2542
5.43k
    RETURN_IF_ERROR(remove_unreachable(g->g_entryblock));
2543
5.43k
    RETURN_IF_ERROR(resolve_line_numbers(g, firstlineno));
2544
5.43k
    RETURN_IF_ERROR(optimize_load_const(const_cache, g, consts));
2545
29.5k
    for (basicblock *b = g->g_entryblock; b != NULL; b = b->b_next) {
2546
24.1k
        RETURN_IF_ERROR(optimize_basic_block(const_cache, b, consts));
2547
24.1k
    }
2548
5.43k
    RETURN_IF_ERROR(remove_redundant_nops_and_pairs(g->g_entryblock));
2549
5.43k
    RETURN_IF_ERROR(remove_unreachable(g->g_entryblock));
2550
5.43k
    RETURN_IF_ERROR(remove_redundant_nops_and_jumps(g));
2551
5.43k
    assert(no_redundant_jumps(g));
2552
5.43k
    return SUCCESS;
2553
5.43k
}
2554
2555
static void
2556
make_super_instruction(cfg_instr *inst1, cfg_instr *inst2, int super_op)
2557
5.76k
{
2558
5.76k
    int32_t line1 = inst1->i_loc.lineno;
2559
5.76k
    int32_t line2 = inst2->i_loc.lineno;
2560
    /* Skip if instructions are on different lines */
2561
5.76k
    if (line1 >= 0 && line2 >= 0 && line1 != line2) {
2562
1.88k
        return;
2563
1.88k
    }
2564
3.87k
    if (inst1->i_oparg >= 16 || inst2->i_oparg >= 16) {
2565
275
        return;
2566
275
    }
2567
3.60k
    INSTR_SET_OP1(inst1, super_op, (inst1->i_oparg << 4) | inst2->i_oparg);
2568
3.60k
    INSTR_SET_OP0(inst2, NOP);
2569
3.60k
}
2570
2571
static int
2572
insert_superinstructions(cfg_builder *g)
2573
5.43k
{
2574
29.5k
    for (basicblock *b = g->g_entryblock; b != NULL; b = b->b_next) {
2575
2576
220k
        for (int i = 0; i < b->b_iused; i++) {
2577
196k
            cfg_instr *inst = &b->b_instr[i];
2578
196k
            int nextop = i+1 < b->b_iused ? b->b_instr[i+1].i_opcode : 0;
2579
196k
            switch(inst->i_opcode) {
2580
24.4k
                case LOAD_FAST:
2581
24.4k
                    if (nextop == LOAD_FAST) {
2582
3.61k
                        make_super_instruction(inst, &b->b_instr[i + 1], LOAD_FAST_LOAD_FAST);
2583
3.61k
                    }
2584
24.4k
                    break;
2585
4.57k
                case STORE_FAST:
2586
4.57k
                    switch (nextop) {
2587
1.85k
                        case LOAD_FAST:
2588
1.85k
                            make_super_instruction(inst, &b->b_instr[i + 1], STORE_FAST_LOAD_FAST);
2589
1.85k
                            break;
2590
290
                        case STORE_FAST:
2591
290
                            make_super_instruction(inst, &b->b_instr[i + 1], STORE_FAST_STORE_FAST);
2592
290
                            break;
2593
4.57k
                    }
2594
4.57k
                    break;
2595
196k
            }
2596
196k
        }
2597
24.1k
    }
2598
5.43k
    int res = remove_redundant_nops(g);
2599
5.43k
    assert(no_redundant_nops(g));
2600
5.43k
    return res;
2601
5.43k
}
2602
2603
#define NOT_LOCAL -1
2604
4.41k
#define DUMMY_INSTR -1
2605
2606
typedef struct {
2607
    // Index of instruction that produced the reference or DUMMY_INSTR.
2608
    int instr;
2609
2610
    // The local to which the reference refers or NOT_LOCAL.
2611
    int local;
2612
} ref;
2613
2614
typedef struct {
2615
    ref *refs;
2616
    Py_ssize_t size;
2617
    Py_ssize_t capacity;
2618
} ref_stack;
2619
2620
static int
2621
ref_stack_push(ref_stack *stack, ref r)
2622
157k
{
2623
157k
    if (stack->size == stack->capacity) {
2624
5.44k
        Py_ssize_t new_cap = Py_MAX(32, stack->capacity * 2);
2625
5.44k
        ref *refs = PyMem_Realloc(stack->refs, sizeof(*stack->refs) * new_cap);
2626
5.44k
        if (refs == NULL) {
2627
0
            PyErr_NoMemory();
2628
0
            return -1;
2629
0
        }
2630
5.44k
        stack->refs = refs;
2631
5.44k
        stack->capacity = new_cap;
2632
5.44k
    }
2633
157k
    stack->refs[stack->size] = r;
2634
157k
    stack->size++;
2635
157k
    return 0;
2636
157k
}
2637
2638
static ref
2639
ref_stack_pop(ref_stack *stack)
2640
141k
{
2641
141k
    assert(stack->size > 0);
2642
141k
    stack->size--;
2643
141k
    ref r = stack->refs[stack->size];
2644
141k
    return r;
2645
141k
}
2646
2647
static void
2648
ref_stack_swap_top(ref_stack *stack, Py_ssize_t off)
2649
521
{
2650
521
    Py_ssize_t idx = stack->size - off;
2651
521
    assert(idx >= 0 && idx < stack->size);
2652
521
    ref tmp = stack->refs[idx];
2653
521
    stack->refs[idx] = stack->refs[stack->size - 1];
2654
521
    stack->refs[stack->size - 1] = tmp;
2655
521
}
2656
2657
static ref
2658
ref_stack_at(ref_stack *stack, Py_ssize_t idx)
2659
21.2k
{
2660
21.2k
    assert(idx >= 0 && idx < stack->size);
2661
21.2k
    return stack->refs[idx];
2662
21.2k
}
2663
2664
static void
2665
ref_stack_clear(ref_stack *stack)
2666
17.0k
{
2667
17.0k
    stack->size = 0;
2668
17.0k
}
2669
2670
static void
2671
ref_stack_fini(ref_stack *stack)
2672
5.43k
{
2673
5.43k
    if (stack->refs != NULL) {
2674
5.43k
        PyMem_Free(stack->refs);
2675
5.43k
    }
2676
5.43k
    stack->refs = NULL;
2677
5.43k
    stack->capacity = 0;
2678
5.43k
    stack->size = 0;
2679
5.43k
}
2680
2681
typedef enum {
2682
    // The loaded reference is still on the stack when the local is killed
2683
    SUPPORT_KILLED  = 1,
2684
    // The loaded reference is stored into a local
2685
    STORED_AS_LOCAL = 2,
2686
    // The loaded reference is still on the stack at the end of the basic block
2687
    REF_UNCONSUMED  = 4,
2688
} LoadFastInstrFlag;
2689
2690
static void
2691
kill_local(uint8_t *instr_flags, ref_stack *refs, int local)
2692
4.49k
{
2693
7.69k
    for (Py_ssize_t i = 0; i < refs->size; i++) {
2694
3.20k
        ref r = ref_stack_at(refs, i);
2695
3.20k
        if (r.local == local) {
2696
4
            assert(r.instr >= 0);
2697
4
            instr_flags[r.instr] |= SUPPORT_KILLED;
2698
4
        }
2699
3.20k
    }
2700
4.49k
}
2701
2702
static void
2703
store_local(uint8_t *instr_flags, ref_stack *refs, int local, ref r)
2704
4.41k
{
2705
4.41k
    kill_local(instr_flags, refs, local);
2706
4.41k
    if (r.instr != DUMMY_INSTR) {
2707
3.90k
        instr_flags[r.instr] |= STORED_AS_LOCAL;
2708
3.90k
    }
2709
4.41k
}
2710
2711
static void
2712
load_fast_push_block(basicblock ***sp, basicblock *target,
2713
                     Py_ssize_t start_depth)
2714
15.2k
{
2715
15.2k
    assert(target->b_startdepth >= 0 && target->b_startdepth == start_depth);
2716
15.2k
    if (!target->b_visited) {
2717
11.6k
        target->b_visited = 1;
2718
11.6k
        *(*sp)++ = target;
2719
11.6k
    }
2720
15.2k
}
2721
2722
/*
2723
 * Strength reduce LOAD_FAST{_LOAD_FAST} instructions into faster variants that
2724
 * load borrowed references onto the operand stack.
2725
 *
2726
 * This is only safe when we can prove that the reference in the frame outlives
2727
 * the borrowed reference produced by the instruction. We make this tractable
2728
 * by enforcing the following lifetimes:
2729
 *
2730
 * 1. Borrowed references loaded onto the operand stack live until the end of
2731
 *    the instruction that consumes them from the stack. Any borrowed
2732
 *    references that would escape into the heap (e.g. into frame objects or
2733
 *    generators) are converted into new, strong references.
2734
 *
2735
 * 2. Locals live until they are either killed by an instruction
2736
 *    (e.g. STORE_FAST) or the frame is unwound. Any local that is overwritten
2737
 *    via `f_locals` is added to a tuple owned by the frame object.
2738
 *
2739
 * To simplify the problem of detecting which supporting references in the
2740
 * frame are killed by instructions that overwrite locals, we only allow
2741
 * borrowed references to be stored as a local in the frame if they were passed
2742
 * as an argument. {RETURN,YIELD}_VALUE convert borrowed references into new,
2743
 * strong references.
2744
 *
2745
 * Using the above, we can optimize any LOAD_FAST{_LOAD_FAST} instructions
2746
 * that meet the following criteria:
2747
 *
2748
 * 1. The produced reference must be consumed from the stack before the
2749
 *    supporting reference in the frame is killed.
2750
 *
2751
 * 2. The produced reference cannot be stored as a local.
2752
 *
2753
 * We use abstract interpretation to identify instructions that meet these
2754
 * criteria. For each basic block, we simulate the effect the bytecode has on a
2755
 * stack of abstract references and note any instructions that violate the
2756
 * criteria above. Once we've processed all the instructions in a block, any
2757
 * non-violating LOAD_FAST{_LOAD_FAST} can be optimized.
2758
 */
2759
static int
2760
optimize_load_fast(cfg_builder *g)
2761
5.43k
{
2762
5.43k
    int status;
2763
5.43k
    ref_stack refs = {0};
2764
5.43k
    int max_instrs = 0;
2765
5.43k
    basicblock *entryblock = g->g_entryblock;
2766
29.9k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
2767
24.4k
        max_instrs = Py_MAX(max_instrs, b->b_iused);
2768
24.4k
    }
2769
5.43k
    size_t instr_flags_size = max_instrs * sizeof(uint8_t);
2770
5.43k
    uint8_t *instr_flags = PyMem_Malloc(instr_flags_size);
2771
5.43k
    if (instr_flags == NULL) {
2772
0
        PyErr_NoMemory();
2773
0
        return ERROR;
2774
0
    }
2775
5.43k
    basicblock **blocks = make_cfg_traversal_stack(entryblock);
2776
5.43k
    if (blocks == NULL) {
2777
0
        status = ERROR;
2778
0
        goto done;
2779
0
    }
2780
5.43k
    basicblock **sp = blocks;
2781
5.43k
    *sp = entryblock;
2782
5.43k
    sp++;
2783
5.43k
    entryblock->b_startdepth = 0;
2784
5.43k
    entryblock->b_visited = 1;
2785
2786
5.43k
    #define PUSH_REF(instr, local)                \
2787
157k
        do {                                      \
2788
157k
            if (ref_stack_push(&refs, (ref){(instr), (local)}) < 0) { \
2789
0
                status = ERROR;                   \
2790
0
                goto done;                        \
2791
0
            }                                     \
2792
157k
        } while(0)
2793
2794
22.4k
    while (sp != blocks) {
2795
17.0k
        basicblock *block = *--sp;
2796
17.0k
        assert(block->b_startdepth > -1);
2797
2798
        // Reset per-block state.
2799
17.0k
        memset(instr_flags, 0, block->b_iused * sizeof(*instr_flags));
2800
2801
        // Reset the stack of refs. We don't track references on the stack
2802
        // across basic blocks, but the bytecode will expect their
2803
        // presence. Add dummy references as necessary.
2804
17.0k
        ref_stack_clear(&refs);
2805
27.9k
        for (int i = 0; i < block->b_startdepth; i++) {
2806
10.8k
            PUSH_REF(DUMMY_INSTR, NOT_LOCAL);
2807
10.8k
        }
2808
2809
204k
        for (int i = 0; i < block->b_iused; i++) {
2810
187k
            cfg_instr *instr = &block->b_instr[i];
2811
187k
            int opcode = instr->i_opcode;
2812
187k
            int oparg = instr->i_oparg;
2813
187k
            assert(opcode != EXTENDED_ARG);
2814
187k
            switch (opcode) {
2815
                // Opcodes that load and store locals
2816
7
                case DELETE_FAST: {
2817
7
                    kill_local(instr_flags, &refs, oparg);
2818
7
                    break;
2819
0
                }
2820
2821
21.8k
                case LOAD_FAST: {
2822
21.8k
                    PUSH_REF(i, oparg);
2823
21.8k
                    break;
2824
21.8k
                }
2825
2826
21.8k
                case LOAD_FAST_AND_CLEAR: {
2827
66
                    kill_local(instr_flags, &refs, oparg);
2828
66
                    PUSH_REF(i, oparg);
2829
66
                    break;
2830
66
                }
2831
2832
3.21k
                case LOAD_FAST_LOAD_FAST: {
2833
3.21k
                    PUSH_REF(i, oparg >> 4);
2834
3.21k
                    PUSH_REF(i, oparg & 15);
2835
3.21k
                    break;
2836
3.21k
                }
2837
2838
3.90k
                case STORE_FAST: {
2839
3.90k
                    ref r = ref_stack_pop(&refs);
2840
3.90k
                    store_local(instr_flags, &refs, oparg, r);
2841
3.90k
                    break;
2842
3.21k
                }
2843
2844
39
                case STORE_FAST_LOAD_FAST: {
2845
                    // STORE_FAST
2846
39
                    ref r = ref_stack_pop(&refs);
2847
39
                    store_local(instr_flags, &refs, oparg >> 4, r);
2848
                    // LOAD_FAST
2849
39
                    PUSH_REF(i, oparg & 15);
2850
39
                    break;
2851
39
                }
2852
2853
236
                case STORE_FAST_STORE_FAST: {
2854
                    // STORE_FAST
2855
236
                    ref r = ref_stack_pop(&refs);
2856
236
                    store_local(instr_flags, &refs, oparg >> 4, r);
2857
                    // STORE_FAST
2858
236
                    r = ref_stack_pop(&refs);
2859
236
                    store_local(instr_flags, &refs, oparg & 15, r);
2860
236
                    break;
2861
39
                }
2862
2863
                // Opcodes that shuffle values on the stack
2864
1.19k
                case COPY: {
2865
1.19k
                    assert(oparg > 0);
2866
1.19k
                    Py_ssize_t idx = refs.size - oparg;
2867
1.19k
                    ref r = ref_stack_at(&refs, idx);
2868
1.19k
                    PUSH_REF(r.instr, r.local);
2869
1.19k
                    break;
2870
1.19k
                }
2871
2872
1.19k
                case SWAP: {
2873
521
                    assert(oparg >= 2);
2874
521
                    ref_stack_swap_top(&refs, oparg);
2875
521
                    break;
2876
1.19k
                }
2877
2878
                // We treat opcodes that do not consume all of their inputs on
2879
                // a case by case basis, as we have no generic way of knowing
2880
                // how many inputs should be left on the stack.
2881
2882
                // Opcodes that consume no inputs
2883
1.87k
                case FORMAT_SIMPLE:
2884
1.87k
                case GET_ANEXT:
2885
2.31k
                case GET_ITER:
2886
2.31k
                case GET_LEN:
2887
2.74k
                case IMPORT_FROM:
2888
2.74k
                case MATCH_KEYS:
2889
2.74k
                case MATCH_MAPPING:
2890
2.74k
                case MATCH_SEQUENCE:
2891
2.74k
                case WITH_EXCEPT_START: {
2892
2.74k
                    int num_popped = _PyOpcode_num_popped(opcode, oparg);
2893
2.74k
                    int num_pushed = _PyOpcode_num_pushed(opcode, oparg);
2894
2.74k
                    int net_pushed = num_pushed - num_popped;
2895
2.74k
                    assert(net_pushed >= 0);
2896
3.61k
                    for (int j = 0; j < net_pushed; j++) {
2897
871
                        PUSH_REF(i, NOT_LOCAL);
2898
871
                    }
2899
2.74k
                    break;
2900
2.74k
                }
2901
2902
                // Opcodes that consume some inputs and push no new values
2903
2.74k
                case DICT_MERGE:
2904
466
                case DICT_UPDATE:
2905
1.31k
                case LIST_APPEND:
2906
1.36k
                case LIST_EXTEND:
2907
7.72k
                case MAP_ADD:
2908
7.72k
                case RERAISE:
2909
8.10k
                case SET_ADD:
2910
8.11k
                case SET_UPDATE: {
2911
8.11k
                    int num_popped = _PyOpcode_num_popped(opcode, oparg);
2912
8.11k
                    int num_pushed = _PyOpcode_num_pushed(opcode, oparg);
2913
8.11k
                    int net_popped = num_popped - num_pushed;
2914
8.11k
                    assert(net_popped > 0);
2915
22.5k
                    for (int i = 0; i < net_popped; i++) {
2916
14.4k
                        ref_stack_pop(&refs);
2917
14.4k
                    }
2918
8.11k
                    break;
2919
8.10k
                }
2920
2921
145
                case END_SEND: {
2922
145
                    assert(_PyOpcode_num_popped(opcode, oparg) == 3);
2923
145
                    assert(_PyOpcode_num_pushed(opcode, oparg) == 1);
2924
145
                    ref tos = ref_stack_pop(&refs);
2925
145
                    ref_stack_pop(&refs);
2926
145
                    ref_stack_pop(&refs);
2927
145
                    PUSH_REF(tos.instr, tos.local);
2928
145
                    break;
2929
145
                }
2930
2931
1.69k
                case SET_FUNCTION_ATTRIBUTE: {
2932
1.69k
                    assert(_PyOpcode_num_popped(opcode, oparg) == 2);
2933
1.69k
                    assert(_PyOpcode_num_pushed(opcode, oparg) == 1);
2934
1.69k
                    ref tos = ref_stack_pop(&refs);
2935
1.69k
                    ref_stack_pop(&refs);
2936
1.69k
                    PUSH_REF(tos.instr, tos.local);
2937
1.69k
                    break;
2938
1.69k
                }
2939
2940
                // Opcodes that consume some inputs and push new values
2941
1.69k
                case CHECK_EXC_MATCH: {
2942
0
                    ref_stack_pop(&refs);
2943
0
                    PUSH_REF(i, NOT_LOCAL);
2944
0
                    break;
2945
0
                }
2946
2947
439
                case FOR_ITER: {
2948
439
                    load_fast_push_block(&sp, instr->i_target, refs.size + 1);
2949
439
                    PUSH_REF(i, NOT_LOCAL);
2950
439
                    break;
2951
439
                }
2952
2953
15.3k
                case LOAD_ATTR:
2954
15.5k
                case LOAD_SUPER_ATTR: {
2955
15.5k
                    ref self = ref_stack_pop(&refs);
2956
15.5k
                    if (opcode == LOAD_SUPER_ATTR) {
2957
244
                        ref_stack_pop(&refs);
2958
244
                        ref_stack_pop(&refs);
2959
244
                    }
2960
15.5k
                    PUSH_REF(i, NOT_LOCAL);
2961
15.5k
                    if (oparg & 1) {
2962
                        // A method call; conservatively assume that self is pushed
2963
                        // back onto the stack
2964
4.56k
                        PUSH_REF(self.instr, self.local);
2965
4.56k
                    }
2966
15.5k
                    break;
2967
15.5k
                }
2968
2969
15.5k
                case LOAD_SPECIAL:
2970
244
                case PUSH_EXC_INFO: {
2971
244
                    ref tos = ref_stack_pop(&refs);
2972
244
                    PUSH_REF(i, NOT_LOCAL);
2973
244
                    PUSH_REF(tos.instr, tos.local);
2974
244
                    break;
2975
244
                }
2976
2977
244
                case SEND: {
2978
145
                    load_fast_push_block(&sp, instr->i_target, refs.size);
2979
145
                    ref_stack_pop(&refs);
2980
145
                    PUSH_REF(i, NOT_LOCAL);
2981
145
                    break;
2982
145
                }
2983
2984
                // Opcodes that consume all of their inputs
2985
127k
                default: {
2986
127k
                    int num_popped = _PyOpcode_num_popped(opcode, oparg);
2987
127k
                    int num_pushed = _PyOpcode_num_pushed(opcode, oparg);
2988
127k
                    if (HAS_TARGET(instr->i_opcode)) {
2989
6.40k
                        load_fast_push_block(&sp, instr->i_target, refs.size - num_popped + num_pushed);
2990
6.40k
                    }
2991
127k
                    if (!IS_BLOCK_PUSH_OPCODE(instr->i_opcode)) {
2992
                        // Block push opcodes only affect the stack when jumping
2993
                        // to the target.
2994
229k
                        for (int j = 0; j < num_popped; j++) {
2995
101k
                            ref_stack_pop(&refs);
2996
101k
                        }
2997
221k
                        for (int j = 0; j < num_pushed; j++) {
2998
93.5k
                            PUSH_REF(i, NOT_LOCAL);
2999
93.5k
                        }
3000
127k
                    }
3001
127k
                    break;
3002
127k
                }
3003
187k
            }
3004
187k
        }
3005
3006
        // Push fallthrough block
3007
17.0k
        if (BB_HAS_FALLTHROUGH(block)) {
3008
8.26k
            assert(block->b_next != NULL);
3009
8.26k
            load_fast_push_block(&sp, block->b_next, refs.size);
3010
8.26k
        }
3011
3012
        // Mark instructions that produce values that are on the stack at the
3013
        // end of the basic block
3014
33.8k
        for (Py_ssize_t i = 0; i < refs.size; i++) {
3015
16.8k
            ref r = ref_stack_at(&refs, i);
3016
16.8k
            if (r.instr != -1) {
3017
10.4k
                instr_flags[r.instr] |= REF_UNCONSUMED;
3018
10.4k
            }
3019
16.8k
        }
3020
3021
        // Optimize instructions
3022
204k
        for (int i = 0; i < block->b_iused; i++) {
3023
187k
            if (!instr_flags[i]) {
3024
173k
                cfg_instr *instr = &block->b_instr[i];
3025
173k
                switch (instr->i_opcode) {
3026
21.3k
                    case LOAD_FAST:
3027
21.3k
                        instr->i_opcode = LOAD_FAST_BORROW;
3028
21.3k
                        break;
3029
3.20k
                    case LOAD_FAST_LOAD_FAST:
3030
3.20k
                        instr->i_opcode = LOAD_FAST_BORROW_LOAD_FAST_BORROW;
3031
3.20k
                        break;
3032
149k
                    default:
3033
149k
                        break;
3034
173k
                }
3035
173k
            }
3036
187k
        }
3037
17.0k
    }
3038
3039
5.43k
    #undef PUSH_REF
3040
3041
5.43k
    status = SUCCESS;
3042
3043
5.43k
done:
3044
5.43k
    ref_stack_fini(&refs);
3045
5.43k
    PyMem_Free(instr_flags);
3046
5.43k
    PyMem_Free(blocks);
3047
5.43k
    return status;
3048
5.43k
}
3049
3050
// helper functions for add_checks_for_loads_of_unknown_variables
3051
static inline void
3052
maybe_push(basicblock *b, uint64_t unsafe_mask, basicblock ***sp)
3053
79.8k
{
3054
    // Push b if the unsafe mask is giving us any new information.
3055
    // To avoid overflowing the stack, only allow each block once.
3056
    // Use b->b_visited=1 to mean that b is currently on the stack.
3057
79.8k
    uint64_t both = b->b_unsafe_locals_mask | unsafe_mask;
3058
79.8k
    if (b->b_unsafe_locals_mask != both) {
3059
9.27k
        b->b_unsafe_locals_mask = both;
3060
        // More work left to do.
3061
9.27k
        if (!b->b_visited) {
3062
            // not on the stack, so push it.
3063
9.20k
            *(*sp)++ = b;
3064
9.20k
            b->b_visited = 1;
3065
9.20k
        }
3066
9.27k
    }
3067
79.8k
}
3068
3069
static void
3070
scan_block_for_locals(basicblock *b, basicblock ***sp)
3071
30.6k
{
3072
    // bit i is set if local i is potentially uninitialized
3073
30.6k
    uint64_t unsafe_mask = b->b_unsafe_locals_mask;
3074
235k
    for (int i = 0; i < b->b_iused; i++) {
3075
204k
        cfg_instr *instr = &b->b_instr[i];
3076
204k
        assert(instr->i_opcode != EXTENDED_ARG);
3077
204k
        if (instr->i_except != NULL) {
3078
49.0k
            maybe_push(instr->i_except, unsafe_mask, sp);
3079
49.0k
        }
3080
204k
        if (instr->i_oparg >= 64) {
3081
10.3k
            continue;
3082
10.3k
        }
3083
204k
        assert(instr->i_oparg >= 0);
3084
194k
        uint64_t bit = (uint64_t)1 << instr->i_oparg;
3085
194k
        switch (instr->i_opcode) {
3086
403
            case DELETE_FAST:
3087
535
            case LOAD_FAST_AND_CLEAR:
3088
799
            case STORE_FAST_MAYBE_NULL:
3089
799
                unsafe_mask |= bit;
3090
799
                break;
3091
9.32k
            case STORE_FAST:
3092
9.32k
                unsafe_mask &= ~bit;
3093
9.32k
                break;
3094
42
            case LOAD_FAST_CHECK:
3095
                // If this doesn't raise, then the local is defined.
3096
42
                unsafe_mask &= ~bit;
3097
42
                break;
3098
40.3k
            case LOAD_FAST:
3099
40.3k
                if (unsafe_mask & bit) {
3100
42
                    instr->i_opcode = LOAD_FAST_CHECK;
3101
42
                }
3102
40.3k
                unsafe_mask &= ~bit;
3103
40.3k
                break;
3104
194k
        }
3105
194k
    }
3106
30.6k
    if (b->b_next && BB_HAS_FALLTHROUGH(b)) {
3107
14.6k
        maybe_push(b->b_next, unsafe_mask, sp);
3108
14.6k
    }
3109
30.6k
    cfg_instr *last = basicblock_last_instr(b);
3110
30.6k
    if (last && is_jump(last)) {
3111
12.4k
        assert(last->i_target != NULL);
3112
12.4k
        maybe_push(last->i_target, unsafe_mask, sp);
3113
12.4k
    }
3114
30.6k
}
3115
3116
static int
3117
fast_scan_many_locals(basicblock *entryblock, int nlocals)
3118
0
{
3119
0
    assert(nlocals > 64);
3120
0
    Py_ssize_t *states = PyMem_Calloc(nlocals - 64, sizeof(Py_ssize_t));
3121
0
    if (states == NULL) {
3122
0
        PyErr_NoMemory();
3123
0
        return ERROR;
3124
0
    }
3125
0
    Py_ssize_t blocknum = 0;
3126
    // state[i - 64] == blocknum if local i is guaranteed to
3127
    // be initialized, i.e., if it has had a previous LOAD_FAST or
3128
    // STORE_FAST within that basicblock (not followed by
3129
    // DELETE_FAST/LOAD_FAST_AND_CLEAR/STORE_FAST_MAYBE_NULL).
3130
0
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
3131
0
        blocknum++;
3132
0
        for (int i = 0; i < b->b_iused; i++) {
3133
0
            cfg_instr *instr = &b->b_instr[i];
3134
0
            assert(instr->i_opcode != EXTENDED_ARG);
3135
0
            int arg = instr->i_oparg;
3136
0
            if (arg < 64) {
3137
0
                continue;
3138
0
            }
3139
0
            assert(arg >= 0);
3140
0
            switch (instr->i_opcode) {
3141
0
                case DELETE_FAST:
3142
0
                case LOAD_FAST_AND_CLEAR:
3143
0
                case STORE_FAST_MAYBE_NULL:
3144
0
                    states[arg - 64] = blocknum - 1;
3145
0
                    break;
3146
0
                case STORE_FAST:
3147
0
                    states[arg - 64] = blocknum;
3148
0
                    break;
3149
0
                case LOAD_FAST:
3150
0
                    if (states[arg - 64] != blocknum) {
3151
0
                        instr->i_opcode = LOAD_FAST_CHECK;
3152
0
                    }
3153
0
                    states[arg - 64] = blocknum;
3154
0
                    break;
3155
0
                    Py_UNREACHABLE();
3156
0
            }
3157
0
        }
3158
0
    }
3159
0
    PyMem_Free(states);
3160
0
    return SUCCESS;
3161
0
}
3162
3163
static int
3164
remove_unused_consts(basicblock *entryblock, PyObject *consts)
3165
5.43k
{
3166
5.43k
    assert(PyList_CheckExact(consts));
3167
5.43k
    Py_ssize_t nconsts = PyList_GET_SIZE(consts);
3168
5.43k
    if (nconsts == 0) {
3169
32
        return SUCCESS;  /* nothing to do */
3170
32
    }
3171
3172
5.39k
    Py_ssize_t *index_map = NULL;
3173
5.39k
    Py_ssize_t *reverse_index_map = NULL;
3174
5.39k
    int err = ERROR;
3175
3176
5.39k
    index_map = PyMem_Malloc(nconsts * sizeof(Py_ssize_t));
3177
5.39k
    if (index_map == NULL) {
3178
0
        goto end;
3179
0
    }
3180
31.3k
    for (Py_ssize_t i = 1; i < nconsts; i++) {
3181
25.9k
        index_map[i] = -1;
3182
25.9k
    }
3183
    // The first constant may be docstring; keep it always.
3184
5.39k
    index_map[0] = 0;
3185
3186
    /* mark used consts */
3187
29.5k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
3188
220k
        for (int i = 0; i < b->b_iused; i++) {
3189
196k
            int opcode = b->b_instr[i].i_opcode;
3190
196k
            if (OPCODE_HAS_CONST(opcode)) {
3191
25.5k
                int index = b->b_instr[i].i_oparg;
3192
25.5k
                index_map[index] = index;
3193
25.5k
            }
3194
196k
        }
3195
24.1k
    }
3196
    /* now index_map[i] == i if consts[i] is used, -1 otherwise */
3197
    /* condense consts */
3198
5.39k
    Py_ssize_t n_used_consts = 0;
3199
36.7k
    for (Py_ssize_t i = 0; i < nconsts; i++) {
3200
31.3k
        if (index_map[i] != -1) {
3201
22.3k
            assert(index_map[i] == i);
3202
22.3k
            index_map[n_used_consts++] = index_map[i];
3203
22.3k
        }
3204
31.3k
    }
3205
5.39k
    if (n_used_consts == nconsts) {
3206
        /* nothing to do */
3207
2.69k
        err = SUCCESS;
3208
2.69k
        goto end;
3209
2.69k
    }
3210
3211
    /* move all used consts to the beginning of the consts list */
3212
5.39k
    assert(n_used_consts < nconsts);
3213
17.5k
    for (Py_ssize_t i = 0; i < n_used_consts; i++) {
3214
14.8k
        Py_ssize_t old_index = index_map[i];
3215
14.8k
        assert(i <= old_index && old_index < nconsts);
3216
14.8k
        if (i != old_index) {
3217
8.72k
            PyObject *value = PyList_GET_ITEM(consts, index_map[i]);
3218
8.72k
            assert(value != NULL);
3219
8.72k
            PyList_SetItem(consts, i, Py_NewRef(value));
3220
8.72k
        }
3221
14.8k
    }
3222
3223
    /* truncate the consts list at its new size */
3224
2.70k
    if (PyList_SetSlice(consts, n_used_consts, nconsts, NULL) < 0) {
3225
0
        goto end;
3226
0
    }
3227
    /* adjust const indices in the bytecode */
3228
2.70k
    reverse_index_map = PyMem_Malloc(nconsts * sizeof(Py_ssize_t));
3229
2.70k
    if (reverse_index_map == NULL) {
3230
0
        goto end;
3231
0
    }
3232
26.5k
    for (Py_ssize_t i = 0; i < nconsts; i++) {
3233
23.8k
        reverse_index_map[i] = -1;
3234
23.8k
    }
3235
17.5k
    for (Py_ssize_t i = 0; i < n_used_consts; i++) {
3236
14.8k
        assert(index_map[i] != -1);
3237
14.8k
        assert(reverse_index_map[index_map[i]] == -1);
3238
14.8k
        reverse_index_map[index_map[i]] = i;
3239
14.8k
    }
3240
3241
16.1k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
3242
139k
        for (int i = 0; i < b->b_iused; i++) {
3243
125k
            int opcode = b->b_instr[i].i_opcode;
3244
125k
            if (OPCODE_HAS_CONST(opcode)) {
3245
17.5k
                int index = b->b_instr[i].i_oparg;
3246
17.5k
                assert(reverse_index_map[index] >= 0);
3247
17.5k
                assert(reverse_index_map[index] < n_used_consts);
3248
17.5k
                b->b_instr[i].i_oparg = (int)reverse_index_map[index];
3249
17.5k
            }
3250
125k
        }
3251
13.4k
    }
3252
3253
2.70k
    err = SUCCESS;
3254
5.39k
end:
3255
5.39k
    PyMem_Free(index_map);
3256
5.39k
    PyMem_Free(reverse_index_map);
3257
5.39k
    return err;
3258
2.70k
}
3259
3260
3261
3262
static int
3263
add_checks_for_loads_of_uninitialized_variables(basicblock *entryblock,
3264
                                                int nlocals,
3265
                                                int nparams)
3266
5.43k
{
3267
5.43k
    if (nlocals == 0) {
3268
1.73k
        return SUCCESS;
3269
1.73k
    }
3270
3.70k
    if (nlocals > 64) {
3271
        // To avoid O(nlocals**2) compilation, locals beyond the first
3272
        // 64 are only analyzed one basicblock at a time: initialization
3273
        // info is not passed between basicblocks.
3274
0
        if (fast_scan_many_locals(entryblock, nlocals) < 0) {
3275
0
            return ERROR;
3276
0
        }
3277
0
        nlocals = 64;
3278
0
    }
3279
3.70k
    basicblock **stack = make_cfg_traversal_stack(entryblock);
3280
3.70k
    if (stack == NULL) {
3281
0
        return ERROR;
3282
0
    }
3283
3.70k
    basicblock **sp = stack;
3284
3285
    // First origin of being uninitialized:
3286
    // The non-parameter locals in the entry block.
3287
3.70k
    uint64_t start_mask = 0;
3288
7.03k
    for (int i = nparams; i < nlocals; i++) {
3289
3.33k
        start_mask |= (uint64_t)1 << i;
3290
3.33k
    }
3291
3.70k
    maybe_push(entryblock, start_mask, &sp);
3292
3293
    // Second origin of being uninitialized:
3294
    // There could be DELETE_FAST somewhere, so
3295
    // be sure to scan each basicblock at least once.
3296
25.1k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
3297
21.4k
        scan_block_for_locals(b, &sp);
3298
21.4k
    }
3299
    // Now propagate the uncertainty from the origins we found: Use
3300
    // LOAD_FAST_CHECK for any LOAD_FAST where the local could be undefined.
3301
12.9k
    while (sp > stack) {
3302
9.20k
        basicblock *b = *--sp;
3303
        // mark as no longer on stack
3304
9.20k
        b->b_visited = 0;
3305
9.20k
        scan_block_for_locals(b, &sp);
3306
9.20k
    }
3307
3.70k
    PyMem_Free(stack);
3308
3.70k
    return SUCCESS;
3309
3.70k
}
3310
3311
3312
static int
3313
4.18k
mark_warm(basicblock *entryblock) {
3314
4.18k
    basicblock **stack = make_cfg_traversal_stack(entryblock);
3315
4.18k
    if (stack == NULL) {
3316
0
        return ERROR;
3317
0
    }
3318
4.18k
    basicblock **sp = stack;
3319
3320
4.18k
    *sp++ = entryblock;
3321
4.18k
    entryblock->b_visited = 1;
3322
19.6k
    while (sp > stack) {
3323
15.4k
        basicblock *b = *(--sp);
3324
15.4k
        assert(!b->b_except_handler);
3325
15.4k
        b->b_warm = 1;
3326
15.4k
        basicblock *next = b->b_next;
3327
15.4k
        if (next && BB_HAS_FALLTHROUGH(b) && !next->b_visited) {
3328
6.73k
            *sp++ = next;
3329
6.73k
            next->b_visited = 1;
3330
6.73k
        }
3331
149k
        for (int i=0; i < b->b_iused; i++) {
3332
133k
            cfg_instr *instr = &b->b_instr[i];
3333
133k
            if (is_jump(instr) && !instr->i_target->b_visited) {
3334
4.56k
                *sp++ = instr->i_target;
3335
4.56k
                instr->i_target->b_visited = 1;
3336
4.56k
            }
3337
133k
        }
3338
15.4k
    }
3339
4.18k
    PyMem_Free(stack);
3340
4.18k
    return SUCCESS;
3341
4.18k
}
3342
3343
static int
3344
4.18k
mark_cold(basicblock *entryblock) {
3345
27.0k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
3346
22.9k
        assert(!b->b_cold && !b->b_warm);
3347
22.9k
    }
3348
4.18k
    if (mark_warm(entryblock) < 0) {
3349
0
        return ERROR;
3350
0
    }
3351
3352
4.18k
    basicblock **stack = make_cfg_traversal_stack(entryblock);
3353
4.18k
    if (stack == NULL) {
3354
0
        return ERROR;
3355
0
    }
3356
3357
4.18k
    basicblock **sp = stack;
3358
27.0k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
3359
22.9k
        if (b->b_except_handler) {
3360
1.63k
            assert(!b->b_warm);
3361
1.63k
            *sp++ = b;
3362
1.63k
            b->b_visited = 1;
3363
1.63k
        }
3364
22.9k
    }
3365
3366
7.22k
    while (sp > stack) {
3367
3.04k
        basicblock *b = *(--sp);
3368
3.04k
        b->b_cold = 1;
3369
3.04k
        basicblock *next = b->b_next;
3370
3.04k
        if (next && BB_HAS_FALLTHROUGH(b)) {
3371
920
            if (!next->b_warm && !next->b_visited) {
3372
741
                *sp++ = next;
3373
741
                next->b_visited = 1;
3374
741
            }
3375
920
        }
3376
15.9k
        for (int i = 0; i < b->b_iused; i++) {
3377
12.8k
            cfg_instr *instr = &b->b_instr[i];
3378
12.8k
            if (is_jump(instr)) {
3379
900
                assert(i == b->b_iused - 1);
3380
900
                basicblock *target = b->b_instr[i].i_target;
3381
900
                if (!target->b_warm && !target->b_visited) {
3382
661
                    *sp++ = target;
3383
661
                    target->b_visited = 1;
3384
661
                }
3385
900
            }
3386
12.8k
        }
3387
3.04k
    }
3388
4.18k
    PyMem_Free(stack);
3389
4.18k
    return SUCCESS;
3390
4.18k
}
3391
3392
3393
static int
3394
5.43k
push_cold_blocks_to_end(cfg_builder *g) {
3395
5.43k
    basicblock *entryblock = g->g_entryblock;
3396
5.43k
    if (entryblock->b_next == NULL) {
3397
        /* single basicblock, no need to reorder */
3398
1.24k
        return SUCCESS;
3399
1.24k
    }
3400
4.18k
    RETURN_IF_ERROR(mark_cold(entryblock));
3401
3402
4.18k
    int next_lbl = get_max_label(g->g_entryblock) + 1;
3403
3404
    /* If we have a cold block with fallthrough to a warm block, add */
3405
    /* an explicit jump instead of fallthrough */
3406
27.2k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
3407
23.0k
        if (b->b_cold && BB_HAS_FALLTHROUGH(b) && b->b_next && b->b_next->b_warm) {
3408
145
            basicblock *explicit_jump = cfg_builder_new_block(g);
3409
145
            if (explicit_jump == NULL) {
3410
0
                return ERROR;
3411
0
            }
3412
145
            if (!IS_LABEL(b->b_next->b_label)) {
3413
0
                b->b_next->b_label.id = next_lbl++;
3414
0
            }
3415
145
            basicblock_addop(explicit_jump, JUMP_NO_INTERRUPT, b->b_next->b_label.id,
3416
145
                             NO_LOCATION);
3417
145
            explicit_jump->b_cold = 1;
3418
145
            explicit_jump->b_next = b->b_next;
3419
145
            explicit_jump->b_predecessors = 1;
3420
145
            b->b_next = explicit_jump;
3421
3422
            /* set target */
3423
145
            cfg_instr *last = basicblock_last_instr(explicit_jump);
3424
145
            last->i_target = explicit_jump->b_next;
3425
145
        }
3426
23.0k
    }
3427
3428
4.18k
    assert(!entryblock->b_cold);  /* First block can't be cold */
3429
4.18k
    basicblock *cold_blocks = NULL;
3430
4.18k
    basicblock *cold_blocks_tail = NULL;
3431
3432
4.18k
    basicblock *b = entryblock;
3433
5.40k
    while(b->b_next) {
3434
5.40k
        assert(!b->b_cold);
3435
21.0k
        while (b->b_next && !b->b_next->b_cold) {
3436
15.6k
            b = b->b_next;
3437
15.6k
        }
3438
5.40k
        if (b->b_next == NULL) {
3439
            /* no more cold blocks */
3440
4.18k
            break;
3441
4.18k
        }
3442
3443
        /* b->b_next is the beginning of a cold streak */
3444
5.40k
        assert(!b->b_cold && b->b_next->b_cold);
3445
3446
1.22k
        basicblock *b_end = b->b_next;
3447
3.18k
        while (b_end->b_next && b_end->b_next->b_cold) {
3448
1.96k
            b_end = b_end->b_next;
3449
1.96k
        }
3450
3451
        /* b_end is the end of the cold streak */
3452
1.22k
        assert(b_end && b_end->b_cold);
3453
1.22k
        assert(b_end->b_next == NULL || !b_end->b_next->b_cold);
3454
3455
1.22k
        if (cold_blocks == NULL) {
3456
578
            cold_blocks = b->b_next;
3457
578
        }
3458
645
        else {
3459
645
            cold_blocks_tail->b_next = b->b_next;
3460
645
        }
3461
1.22k
        cold_blocks_tail = b_end;
3462
1.22k
        b->b_next = b_end->b_next;
3463
1.22k
        b_end->b_next = NULL;
3464
1.22k
    }
3465
4.18k
    assert(b != NULL && b->b_next == NULL);
3466
4.18k
    b->b_next = cold_blocks;
3467
3468
4.18k
    if (cold_blocks != NULL) {
3469
578
        RETURN_IF_ERROR(remove_redundant_nops_and_jumps(g));
3470
578
    }
3471
4.18k
    return SUCCESS;
3472
4.18k
}
3473
3474
static int
3475
convert_pseudo_conditional_jumps(cfg_builder *g)
3476
5.43k
{
3477
5.43k
    basicblock *entryblock = g->g_entryblock;
3478
29.7k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
3479
217k
        for (int i = 0; i < b->b_iused; i++) {
3480
192k
            cfg_instr *instr = &b->b_instr[i];
3481
192k
            if (instr->i_opcode == JUMP_IF_FALSE || instr->i_opcode == JUMP_IF_TRUE) {
3482
883
                assert(i == b->b_iused - 1);
3483
883
                instr->i_opcode = instr->i_opcode == JUMP_IF_FALSE ?
3484
829
                                          POP_JUMP_IF_FALSE : POP_JUMP_IF_TRUE;
3485
883
                location loc = instr->i_loc;
3486
883
                basicblock *except = instr->i_except;
3487
883
                cfg_instr copy = {
3488
883
                            .i_opcode = COPY,
3489
883
                            .i_oparg = 1,
3490
883
                            .i_loc = loc,
3491
883
                            .i_target = NULL,
3492
883
                            .i_except = except,
3493
883
                };
3494
883
                RETURN_IF_ERROR(basicblock_insert_instruction(b, i++, &copy));
3495
883
                cfg_instr to_bool = {
3496
883
                            .i_opcode = TO_BOOL,
3497
883
                            .i_oparg = 0,
3498
883
                            .i_loc = loc,
3499
883
                            .i_target = NULL,
3500
883
                            .i_except = except,
3501
883
                };
3502
883
                RETURN_IF_ERROR(basicblock_insert_instruction(b, i++, &to_bool));
3503
883
            }
3504
192k
        }
3505
24.2k
    }
3506
5.43k
    return SUCCESS;
3507
5.43k
}
3508
3509
static int
3510
convert_pseudo_ops(cfg_builder *g)
3511
5.43k
{
3512
5.43k
    basicblock *entryblock = g->g_entryblock;
3513
29.7k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
3514
220k
        for (int i = 0; i < b->b_iused; i++) {
3515
196k
            cfg_instr *instr = &b->b_instr[i];
3516
196k
            if (is_block_push(instr)) {
3517
1.63k
                INSTR_SET_OP0(instr, NOP);
3518
1.63k
            }
3519
194k
            else if (instr->i_opcode == LOAD_CLOSURE) {
3520
1.48k
                assert(is_pseudo_target(LOAD_CLOSURE, LOAD_FAST));
3521
1.48k
                instr->i_opcode = LOAD_FAST;
3522
1.48k
            }
3523
193k
            else if (instr->i_opcode == STORE_FAST_MAYBE_NULL) {
3524
132
                assert(is_pseudo_target(STORE_FAST_MAYBE_NULL, STORE_FAST));
3525
132
                instr->i_opcode = STORE_FAST;
3526
132
            }
3527
196k
        }
3528
24.2k
    }
3529
5.43k
    return remove_redundant_nops_and_jumps(g);
3530
5.43k
}
3531
3532
static inline bool
3533
33.8k
is_exit_or_eval_check_without_lineno(basicblock *b) {
3534
33.8k
    if (basicblock_exits_scope(b) || basicblock_has_eval_break(b)) {
3535
20.2k
        return basicblock_has_no_lineno(b);
3536
20.2k
    }
3537
13.5k
    else {
3538
13.5k
        return false;
3539
13.5k
    }
3540
33.8k
}
3541
3542
3543
/* PEP 626 mandates that the f_lineno of a frame is correct
3544
 * after a frame terminates. It would be prohibitively expensive
3545
 * to continuously update the f_lineno field at runtime,
3546
 * so we make sure that all exiting instruction (raises and returns)
3547
 * have a valid line number, allowing us to compute f_lineno lazily.
3548
 * We can do this by duplicating the exit blocks without line number
3549
 * so that none have more than one predecessor. We can then safely
3550
 * copy the line number from the sole predecessor block.
3551
 */
3552
static int
3553
duplicate_exits_without_lineno(cfg_builder *g)
3554
10.8k
{
3555
10.8k
    int next_lbl = get_max_label(g->g_entryblock) + 1;
3556
3557
    /* Copy all exit blocks without line number that are targets of a jump.
3558
     */
3559
10.8k
    basicblock *entryblock = g->g_entryblock;
3560
59.3k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
3561
48.4k
        cfg_instr *last = basicblock_last_instr(b);
3562
48.4k
        if (last == NULL) {
3563
8.61k
            continue;
3564
8.61k
        }
3565
39.8k
        if (is_jump(last)) {
3566
15.9k
            basicblock *target = next_nonempty_block(last->i_target);
3567
15.9k
            if (is_exit_or_eval_check_without_lineno(target) && target->b_predecessors > 1) {
3568
380
                basicblock *new_target = copy_basicblock(g, target);
3569
380
                if (new_target == NULL) {
3570
0
                    return ERROR;
3571
0
                }
3572
380
                new_target->b_instr[0].i_loc = last->i_loc;
3573
380
                last->i_target = new_target;
3574
380
                target->b_predecessors--;
3575
380
                new_target->b_predecessors = 1;
3576
380
                new_target->b_next = target->b_next;
3577
380
                new_target->b_label.id = next_lbl++;
3578
380
                target->b_next = new_target;
3579
380
            }
3580
15.9k
        }
3581
39.8k
    }
3582
3583
    /* Any remaining reachable exit blocks without line number can only be reached by
3584
     * fall through, and thus can only have a single predecessor */
3585
59.3k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
3586
48.4k
        if (BB_HAS_FALLTHROUGH(b) && b->b_next && b->b_iused > 0) {
3587
17.8k
            if (is_exit_or_eval_check_without_lineno(b->b_next)) {
3588
519
                cfg_instr *last = basicblock_last_instr(b);
3589
519
                assert(last != NULL);
3590
519
                b->b_next->b_instr[0].i_loc = last->i_loc;
3591
519
            }
3592
17.8k
        }
3593
48.4k
    }
3594
10.8k
    return SUCCESS;
3595
10.8k
}
3596
3597
3598
/* If an instruction has no line number, but it's predecessor in the BB does,
3599
 * then copy the line number. If a successor block has no line number, and only
3600
 * one predecessor, then inherit the line number.
3601
 * This ensures that all exit blocks (with one predecessor) receive a line number.
3602
 * Also reduces the size of the line number table,
3603
 * but has no impact on the generated line number events.
3604
 */
3605
3606
static inline void
3607
maybe_propagate_location(basicblock *b, int i, location loc)
3608
422k
{
3609
422k
    assert(b->b_iused > i);
3610
422k
    if (b->b_instr[i].i_loc.lineno == NO_LOCATION.lineno) {
3611
26.4k
         b->b_instr[i].i_loc = loc;
3612
26.4k
    }
3613
422k
}
3614
3615
static void
3616
propagate_line_numbers(basicblock *entryblock)
3617
10.8k
{
3618
59.3k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
3619
48.4k
        cfg_instr *last = basicblock_last_instr(b);
3620
48.4k
        if (last == NULL) {
3621
8.61k
            continue;
3622
8.61k
        }
3623
3624
39.8k
        location prev_location = NO_LOCATION;
3625
442k
        for (int i = 0; i < b->b_iused; i++) {
3626
402k
            maybe_propagate_location(b, i, prev_location);
3627
402k
            prev_location = b->b_instr[i].i_loc;
3628
402k
        }
3629
39.8k
        if (BB_HAS_FALLTHROUGH(b) && b->b_next->b_predecessors == 1) {
3630
13.0k
            if (b->b_next->b_iused > 0) {
3631
13.0k
                maybe_propagate_location(b->b_next, 0, prev_location);
3632
13.0k
            }
3633
13.0k
        }
3634
39.8k
        if (is_jump(last)) {
3635
15.9k
            basicblock *target = last->i_target;
3636
15.9k
            while (target->b_iused == 0 && target->b_predecessors == 1) {
3637
1
                target = target->b_next;
3638
1
            }
3639
15.9k
            if (target->b_predecessors == 1) {
3640
7.08k
                maybe_propagate_location(target, 0, prev_location);
3641
7.08k
            }
3642
15.9k
        }
3643
39.8k
    }
3644
10.8k
}
3645
3646
static int
3647
resolve_line_numbers(cfg_builder *g, int firstlineno)
3648
10.8k
{
3649
10.8k
    RETURN_IF_ERROR(duplicate_exits_without_lineno(g));
3650
10.8k
    propagate_line_numbers(g->g_entryblock);
3651
10.8k
    return SUCCESS;
3652
10.8k
}
3653
3654
int
3655
_PyCfg_OptimizeCodeUnit(cfg_builder *g, PyObject *consts, PyObject *const_cache,
3656
                        int nlocals, int nparams, int firstlineno)
3657
5.43k
{
3658
5.43k
    assert(cfg_builder_check(g));
3659
    /** Preprocessing **/
3660
    /* Map labels to targets and mark exception handlers */
3661
5.43k
    RETURN_IF_ERROR(translate_jump_labels_to_targets(g->g_entryblock));
3662
5.43k
    RETURN_IF_ERROR(mark_except_handlers(g->g_entryblock));
3663
5.43k
    RETURN_IF_ERROR(label_exception_targets(g->g_entryblock));
3664
3665
    /** Optimization **/
3666
5.43k
    RETURN_IF_ERROR(optimize_cfg(g, consts, const_cache, firstlineno));
3667
5.43k
    RETURN_IF_ERROR(remove_unused_consts(g->g_entryblock, consts));
3668
5.43k
    RETURN_IF_ERROR(
3669
5.43k
        add_checks_for_loads_of_uninitialized_variables(
3670
5.43k
            g->g_entryblock, nlocals, nparams));
3671
5.43k
    RETURN_IF_ERROR(insert_superinstructions(g));
3672
3673
5.43k
    RETURN_IF_ERROR(push_cold_blocks_to_end(g));
3674
5.43k
    RETURN_IF_ERROR(resolve_line_numbers(g, firstlineno));
3675
    // temporarily remove assert. See https://github.com/python/cpython/issues/125845
3676
    // assert(all_exits_have_lineno(g->g_entryblock));
3677
5.43k
    return SUCCESS;
3678
5.43k
}
3679
3680
static int *
3681
build_cellfixedoffsets(_PyCompile_CodeUnitMetadata *umd)
3682
5.43k
{
3683
5.43k
    int nlocals = (int)PyDict_GET_SIZE(umd->u_varnames);
3684
5.43k
    int ncellvars = (int)PyDict_GET_SIZE(umd->u_cellvars);
3685
5.43k
    int nfreevars = (int)PyDict_GET_SIZE(umd->u_freevars);
3686
3687
5.43k
    int noffsets = ncellvars + nfreevars;
3688
5.43k
    int *fixed = PyMem_New(int, noffsets);
3689
5.43k
    if (fixed == NULL) {
3690
0
        PyErr_NoMemory();
3691
0
        return NULL;
3692
0
    }
3693
7.62k
    for (int i = 0; i < noffsets; i++) {
3694
2.19k
        fixed[i] = nlocals + i;
3695
2.19k
    }
3696
3697
5.43k
    PyObject *varname, *cellindex;
3698
5.43k
    Py_ssize_t pos = 0;
3699
6.57k
    while (PyDict_Next(umd->u_cellvars, &pos, &varname, &cellindex)) {
3700
1.13k
        PyObject *varindex;
3701
1.13k
        if (PyDict_GetItemRef(umd->u_varnames, varname, &varindex) < 0) {
3702
0
            goto error;
3703
0
        }
3704
1.13k
        if (varindex == NULL) {
3705
515
            continue;
3706
515
        }
3707
3708
624
        int argoffset = PyLong_AsInt(varindex);
3709
624
        Py_DECREF(varindex);
3710
624
        if (argoffset == -1 && PyErr_Occurred()) {
3711
0
            goto error;
3712
0
        }
3713
3714
624
        int oldindex = PyLong_AsInt(cellindex);
3715
624
        if (oldindex == -1 && PyErr_Occurred()) {
3716
0
            goto error;
3717
0
        }
3718
624
        fixed[oldindex] = argoffset;
3719
624
    }
3720
5.43k
    return fixed;
3721
3722
0
error:
3723
0
    PyMem_Free(fixed);
3724
0
    return NULL;
3725
5.43k
}
3726
3727
#define IS_GENERATOR(CF) \
3728
    ((CF) & (CO_GENERATOR | CO_COROUTINE | CO_ASYNC_GENERATOR))
3729
3730
static int
3731
insert_prefix_instructions(_PyCompile_CodeUnitMetadata *umd, basicblock *entryblock,
3732
                           int *fixed, int nfreevars)
3733
5.43k
{
3734
5.43k
    assert(umd->u_firstlineno > 0);
3735
3736
    /* Set up cells for any variable that escapes, to be put in a closure. */
3737
5.43k
    const int ncellvars = (int)PyDict_GET_SIZE(umd->u_cellvars);
3738
5.43k
    if (ncellvars) {
3739
        // umd->u_cellvars has the cells out of order so we sort them
3740
        // before adding the MAKE_CELL instructions.  Note that we
3741
        // adjust for arg cells, which come first.
3742
757
        const int nvars = ncellvars + (int)PyDict_GET_SIZE(umd->u_varnames);
3743
757
        int *sorted = PyMem_RawCalloc(nvars, sizeof(int));
3744
757
        if (sorted == NULL) {
3745
0
            PyErr_NoMemory();
3746
0
            return ERROR;
3747
0
        }
3748
1.89k
        for (int i = 0; i < ncellvars; i++) {
3749
1.13k
            sorted[fixed[i]] = i + 1;
3750
1.13k
        }
3751
2.81k
        for (int i = 0, ncellsused = 0; ncellsused < ncellvars; i++) {
3752
2.05k
            int oldindex = sorted[i] - 1;
3753
2.05k
            if (oldindex == -1) {
3754
919
                continue;
3755
919
            }
3756
1.13k
            cfg_instr make_cell = {
3757
1.13k
                .i_opcode = MAKE_CELL,
3758
                // This will get fixed in offset_derefs().
3759
1.13k
                .i_oparg = oldindex,
3760
1.13k
                .i_loc = NO_LOCATION,
3761
1.13k
                .i_target = NULL,
3762
1.13k
                .i_except = NULL,
3763
1.13k
            };
3764
1.13k
            if (basicblock_insert_instruction(entryblock, ncellsused, &make_cell) < 0) {
3765
0
                PyMem_RawFree(sorted);
3766
0
                return ERROR;
3767
0
            }
3768
1.13k
            ncellsused += 1;
3769
1.13k
        }
3770
757
        PyMem_RawFree(sorted);
3771
757
    }
3772
3773
5.43k
    if (nfreevars) {
3774
700
        cfg_instr copy_frees = {
3775
700
            .i_opcode = COPY_FREE_VARS,
3776
700
            .i_oparg = nfreevars,
3777
700
            .i_loc = NO_LOCATION,
3778
700
            .i_target = NULL,
3779
700
            .i_except = NULL,
3780
700
        };
3781
700
        RETURN_IF_ERROR(basicblock_insert_instruction(entryblock, 0, &copy_frees));
3782
700
    }
3783
3784
5.43k
    return SUCCESS;
3785
5.43k
}
3786
3787
static int
3788
fix_cell_offsets(_PyCompile_CodeUnitMetadata *umd, basicblock *entryblock, int *fixedmap)
3789
5.43k
{
3790
5.43k
    int nlocals = (int)PyDict_GET_SIZE(umd->u_varnames);
3791
5.43k
    int ncellvars = (int)PyDict_GET_SIZE(umd->u_cellvars);
3792
5.43k
    int nfreevars = (int)PyDict_GET_SIZE(umd->u_freevars);
3793
5.43k
    int noffsets = ncellvars + nfreevars;
3794
3795
    // First deal with duplicates (arg cells).
3796
5.43k
    int numdropped = 0;
3797
7.62k
    for (int i = 0; i < noffsets ; i++) {
3798
2.19k
        if (fixedmap[i] == i + nlocals) {
3799
1.56k
            fixedmap[i] -= numdropped;
3800
1.56k
        }
3801
624
        else {
3802
            // It was a duplicate (cell/arg).
3803
624
            numdropped += 1;
3804
624
        }
3805
2.19k
    }
3806
3807
    // Then update offsets, either relative to locals or by cell2arg.
3808
29.7k
    for (basicblock *b = entryblock; b != NULL; b = b->b_next) {
3809
220k
        for (int i = 0; i < b->b_iused; i++) {
3810
196k
            cfg_instr *inst = &b->b_instr[i];
3811
            // This is called before extended args are generated.
3812
196k
            assert(inst->i_opcode != EXTENDED_ARG);
3813
196k
            int oldoffset = inst->i_oparg;
3814
196k
            switch(inst->i_opcode) {
3815
1.13k
                case MAKE_CELL:
3816
2.61k
                case LOAD_CLOSURE:
3817
5.17k
                case LOAD_DEREF:
3818
5.69k
                case STORE_DEREF:
3819
5.69k
                case DELETE_DEREF:
3820
5.69k
                case LOAD_FROM_DICT_OR_DEREF:
3821
5.69k
                    assert(oldoffset >= 0);
3822
5.69k
                    assert(oldoffset < noffsets);
3823
5.69k
                    assert(fixedmap[oldoffset] >= 0);
3824
5.69k
                    inst->i_oparg = fixedmap[oldoffset];
3825
196k
            }
3826
196k
        }
3827
24.2k
    }
3828
3829
5.43k
    return numdropped;
3830
5.43k
}
3831
3832
static int
3833
prepare_localsplus(_PyCompile_CodeUnitMetadata *umd, cfg_builder *g)
3834
5.43k
{
3835
5.43k
    assert(PyDict_GET_SIZE(umd->u_varnames) < INT_MAX);
3836
5.43k
    assert(PyDict_GET_SIZE(umd->u_cellvars) < INT_MAX);
3837
5.43k
    assert(PyDict_GET_SIZE(umd->u_freevars) < INT_MAX);
3838
5.43k
    int nlocals = (int)PyDict_GET_SIZE(umd->u_varnames);
3839
5.43k
    int ncellvars = (int)PyDict_GET_SIZE(umd->u_cellvars);
3840
5.43k
    int nfreevars = (int)PyDict_GET_SIZE(umd->u_freevars);
3841
5.43k
    assert(INT_MAX - nlocals - ncellvars > 0);
3842
5.43k
    assert(INT_MAX - nlocals - ncellvars - nfreevars > 0);
3843
5.43k
    int nlocalsplus = nlocals + ncellvars + nfreevars;
3844
5.43k
    int* cellfixedoffsets = build_cellfixedoffsets(umd);
3845
5.43k
    if (cellfixedoffsets == NULL) {
3846
0
        return ERROR;
3847
0
    }
3848
3849
    // This must be called before fix_cell_offsets().
3850
5.43k
    if (insert_prefix_instructions(umd, g->g_entryblock, cellfixedoffsets, nfreevars)) {
3851
0
        PyMem_Free(cellfixedoffsets);
3852
0
        return ERROR;
3853
0
    }
3854
3855
5.43k
    int numdropped = fix_cell_offsets(umd, g->g_entryblock, cellfixedoffsets);
3856
5.43k
    PyMem_Free(cellfixedoffsets);  // At this point we're done with it.
3857
5.43k
    cellfixedoffsets = NULL;
3858
5.43k
    if (numdropped < 0) {
3859
0
        return ERROR;
3860
0
    }
3861
3862
5.43k
    nlocalsplus -= numdropped;
3863
5.43k
    return nlocalsplus;
3864
5.43k
}
3865
3866
cfg_builder *
3867
_PyCfg_FromInstructionSequence(_PyInstructionSequence *seq)
3868
5.43k
{
3869
5.43k
    if (_PyInstructionSequence_ApplyLabelMap(seq) < 0) {
3870
0
        return NULL;
3871
0
    }
3872
5.43k
    cfg_builder *g = _PyCfgBuilder_New();
3873
5.43k
    if (g == NULL) {
3874
0
        return NULL;
3875
0
    }
3876
222k
    for (int i = 0; i < seq->s_used; i++) {
3877
217k
        seq->s_instrs[i].i_target = 0;
3878
217k
    }
3879
222k
    for (int i = 0; i < seq->s_used; i++) {
3880
217k
        _PyInstruction *instr = &seq->s_instrs[i];
3881
217k
        if (HAS_TARGET(instr->i_opcode)) {
3882
10.7k
            assert(instr->i_oparg >= 0 && instr->i_oparg < seq->s_used);
3883
10.7k
            seq->s_instrs[instr->i_oparg].i_target = 1;
3884
10.7k
        }
3885
217k
    }
3886
5.43k
    int offset = 0;
3887
222k
    for (int i = 0; i < seq->s_used; i++) {
3888
217k
        _PyInstruction *instr = &seq->s_instrs[i];
3889
217k
        if (instr->i_opcode == ANNOTATIONS_PLACEHOLDER) {
3890
825
            if (seq->s_annotations_code != NULL) {
3891
0
                assert(seq->s_annotations_code->s_labelmap_size == 0
3892
0
                    && seq->s_annotations_code->s_nested == NULL);
3893
0
                for (int j = 0; j < seq->s_annotations_code->s_used; j++) {
3894
0
                    _PyInstruction *ann_instr = &seq->s_annotations_code->s_instrs[j];
3895
0
                    assert(!HAS_TARGET(ann_instr->i_opcode));
3896
0
                    if (_PyCfgBuilder_Addop(g, ann_instr->i_opcode, ann_instr->i_oparg, ann_instr->i_loc) < 0) {
3897
0
                        goto error;
3898
0
                    }
3899
0
                }
3900
0
                offset += seq->s_annotations_code->s_used - 1;
3901
0
            }
3902
825
            else {
3903
825
                offset -= 1;
3904
825
            }
3905
825
            continue;
3906
825
        }
3907
216k
        if (instr->i_target) {
3908
8.54k
            jump_target_label lbl_ = {i + offset};
3909
8.54k
            if (_PyCfgBuilder_UseLabel(g, lbl_) < 0) {
3910
0
                goto error;
3911
0
            }
3912
8.54k
        }
3913
216k
        int opcode = instr->i_opcode;
3914
216k
        int oparg = instr->i_oparg;
3915
216k
        if (HAS_TARGET(opcode)) {
3916
10.7k
            oparg += offset;
3917
10.7k
        }
3918
216k
        if (_PyCfgBuilder_Addop(g, opcode, oparg, instr->i_loc) < 0) {
3919
0
            goto error;
3920
0
        }
3921
216k
    }
3922
5.43k
    if (_PyCfgBuilder_CheckSize(g) < 0) {
3923
0
        goto error;
3924
0
    }
3925
5.43k
    return g;
3926
0
error:
3927
0
    _PyCfgBuilder_Free(g);
3928
0
    return NULL;
3929
5.43k
}
3930
3931
int
3932
_PyCfg_ToInstructionSequence(cfg_builder *g, _PyInstructionSequence *seq)
3933
5.43k
{
3934
5.43k
    int lbl = 0;
3935
29.9k
    for (basicblock *b = g->g_entryblock; b != NULL; b = b->b_next) {
3936
24.4k
        b->b_label = (jump_target_label){lbl};
3937
24.4k
        lbl += 1;
3938
24.4k
    }
3939
29.9k
    for (basicblock *b = g->g_entryblock; b != NULL; b = b->b_next) {
3940
24.4k
        RETURN_IF_ERROR(_PyInstructionSequence_UseLabel(seq, b->b_label.id));
3941
225k
        for (int i = 0; i < b->b_iused; i++) {
3942
200k
            cfg_instr *instr = &b->b_instr[i];
3943
200k
            if (HAS_TARGET(instr->i_opcode)) {
3944
                /* Set oparg to the label id (it will later be mapped to an offset) */
3945
8.03k
                instr->i_oparg = instr->i_target->b_label.id;
3946
8.03k
            }
3947
200k
            RETURN_IF_ERROR(
3948
200k
                _PyInstructionSequence_Addop(
3949
200k
                    seq, instr->i_opcode, instr->i_oparg, instr->i_loc));
3950
3951
200k
            _PyExceptHandlerInfo *hi = &seq->s_instrs[seq->s_used-1].i_except_handler_info;
3952
200k
            if (instr->i_except != NULL) {
3953
27.1k
                hi->h_label = instr->i_except->b_label.id;
3954
27.1k
                hi->h_startdepth = instr->i_except->b_startdepth;
3955
27.1k
                hi->h_preserve_lasti = instr->i_except->b_preserve_lasti;
3956
27.1k
            }
3957
173k
            else {
3958
173k
                hi->h_label = -1;
3959
173k
            }
3960
200k
        }
3961
24.4k
    }
3962
5.43k
    if (_PyInstructionSequence_ApplyLabelMap(seq) < 0) {
3963
0
        return ERROR;
3964
0
    }
3965
5.43k
    return SUCCESS;
3966
5.43k
}
3967
3968
3969
int
3970
_PyCfg_OptimizedCfgToInstructionSequence(cfg_builder *g,
3971
                                     _PyCompile_CodeUnitMetadata *umd,
3972
                                     int *stackdepth, int *nlocalsplus,
3973
                                     _PyInstructionSequence *seq)
3974
5.43k
{
3975
5.43k
    RETURN_IF_ERROR(convert_pseudo_conditional_jumps(g));
3976
3977
5.43k
    *stackdepth = calculate_stackdepth(g);
3978
5.43k
    if (*stackdepth < 0) {
3979
0
        return ERROR;
3980
0
    }
3981
3982
5.43k
    *nlocalsplus = prepare_localsplus(umd, g);
3983
5.43k
    if (*nlocalsplus < 0) {
3984
0
        return ERROR;
3985
0
    }
3986
3987
5.43k
    RETURN_IF_ERROR(convert_pseudo_ops(g));
3988
3989
    /* Order of basic blocks must have been determined by now */
3990
3991
5.43k
    RETURN_IF_ERROR(normalize_jumps(g));
3992
5.43k
    assert(no_redundant_jumps(g));
3993
3994
    /* Can't modify the bytecode after inserting instructions that produce
3995
     * borrowed references.
3996
     */
3997
5.43k
    RETURN_IF_ERROR(optimize_load_fast(g));
3998
3999
    /* Can't modify the bytecode after computing jump offsets. */
4000
5.43k
    if (_PyCfg_ToInstructionSequence(g, seq) < 0) {
4001
0
        return ERROR;
4002
0
    }
4003
4004
5.43k
    return SUCCESS;
4005
5.43k
}
4006
4007
/* This is used by _PyCompile_Assemble to fill in the jump and exception
4008
 * targets in a synthetic CFG (which is not the output of the builtin compiler).
4009
 */
4010
int
4011
_PyCfg_JumpLabelsToTargets(cfg_builder *g)
4012
0
{
4013
0
    RETURN_IF_ERROR(translate_jump_labels_to_targets(g->g_entryblock));
4014
0
    RETURN_IF_ERROR(label_exception_targets(g->g_entryblock));
4015
0
    return SUCCESS;
4016
0
}
4017
4018
/* Exported API functions */
4019
4020
int
4021
PyCompile_OpcodeStackEffectWithJump(int opcode, int oparg, int jump)
4022
0
{
4023
0
    stack_effects effs;
4024
0
    if (get_stack_effects(opcode, oparg, jump, &effs) < 0) {
4025
0
        return PY_INVALID_STACK_EFFECT;
4026
0
    }
4027
0
    return effs.net;
4028
0
}
4029
4030
int
4031
PyCompile_OpcodeStackEffect(int opcode, int oparg)
4032
25
{
4033
25
    stack_effects effs;
4034
25
    if (get_stack_effects(opcode, oparg, -1, &effs) < 0) {
4035
0
        return PY_INVALID_STACK_EFFECT;
4036
0
    }
4037
25
    return effs.net;
4038
25
}
4039
4040
/* Access to compiler optimizations for unit tests.
4041
4042
 * _PyCompile_OptimizeCfg takes an instruction list, constructs
4043
 * a CFG, optimizes it and converts back to an instruction list.
4044
 */
4045
4046
static PyObject *
4047
cfg_to_instruction_sequence(cfg_builder *g)
4048
0
{
4049
0
    _PyInstructionSequence *seq = (_PyInstructionSequence *)_PyInstructionSequence_New();
4050
0
    if (seq == NULL) {
4051
0
        return NULL;
4052
0
    }
4053
0
    if (_PyCfg_ToInstructionSequence(g, seq) < 0) {
4054
0
        PyInstructionSequence_Fini(seq);
4055
0
        return NULL;
4056
0
    }
4057
0
    return (PyObject*)seq;
4058
0
}
4059
4060
PyObject *
4061
_PyCompile_OptimizeCfg(PyObject *seq, PyObject *consts, int nlocals)
4062
0
{
4063
0
    if (!_PyInstructionSequence_Check(seq)) {
4064
0
        PyErr_SetString(PyExc_ValueError, "expected an instruction sequence");
4065
0
        return NULL;
4066
0
    }
4067
0
    PyObject *const_cache = PyDict_New();
4068
0
    if (const_cache == NULL) {
4069
0
        return NULL;
4070
0
    }
4071
4072
0
    PyObject *res = NULL;
4073
0
    cfg_builder *g = _PyCfg_FromInstructionSequence((_PyInstructionSequence*)seq);
4074
0
    if (g == NULL) {
4075
0
        goto error;
4076
0
    }
4077
0
    int nparams = 0, firstlineno = 1;
4078
0
    if (_PyCfg_OptimizeCodeUnit(g, consts, const_cache, nlocals,
4079
0
                                nparams, firstlineno) < 0) {
4080
0
        goto error;
4081
0
    }
4082
4083
0
    if (calculate_stackdepth(g) == ERROR) {
4084
0
        goto error;
4085
0
    }
4086
4087
0
    if (optimize_load_fast(g) != SUCCESS) {
4088
0
        goto error;
4089
0
    }
4090
4091
0
    res = cfg_to_instruction_sequence(g);
4092
0
error:
4093
0
    Py_DECREF(const_cache);
4094
0
    _PyCfgBuilder_Free(g);
4095
0
    return res;
4096
0
}