tree-flow.h (create_var_ann): Remove.
[gcc.git] / gcc / tree-switch-conversion.c
1 /* Switch Conversion converts variable initializations based on switch
2 statements to initializations from a static array.
3 Copyright (C) 2006, 2008, 2009, 2010, 2011 Free Software Foundation, Inc.
4 Contributed by Martin Jambor <jamborm@suse.cz>
5
6 This file is part of GCC.
7
8 GCC is free software; you can redistribute it and/or modify it
9 under the terms of the GNU General Public License as published by the
10 Free Software Foundation; either version 3, or (at your option) any
11 later version.
12
13 GCC is distributed in the hope that it will be useful, but WITHOUT
14 ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
15 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
16 for more details.
17
18 You should have received a copy of the GNU General Public License
19 along with GCC; see the file COPYING3. If not, write to the Free
20 Software Foundation, 51 Franklin Street, Fifth Floor, Boston, MA
21 02110-1301, USA. */
22
23 /*
24 Switch initialization conversion
25
26 The following pass changes simple initializations of scalars in a switch
27 statement into initializations from a static array. Obviously, the values
28 must be constant and known at compile time and a default branch must be
29 provided. For example, the following code:
30
31 int a,b;
32
33 switch (argc)
34 {
35 case 1:
36 case 2:
37 a_1 = 8;
38 b_1 = 6;
39 break;
40 case 3:
41 a_2 = 9;
42 b_2 = 5;
43 break;
44 case 12:
45 a_3 = 10;
46 b_3 = 4;
47 break;
48 default:
49 a_4 = 16;
50 b_4 = 1;
51 break;
52 }
53 a_5 = PHI <a_1, a_2, a_3, a_4>
54 b_5 = PHI <b_1, b_2, b_3, b_4>
55
56
57 is changed into:
58
59 static const int = CSWTCH01[] = {6, 6, 5, 1, 1, 1, 1, 1, 1, 1, 1, 4};
60 static const int = CSWTCH02[] = {8, 8, 9, 16, 16, 16, 16, 16, 16, 16,
61 16, 16, 10};
62
63 if (((unsigned) argc) - 1 < 11)
64 {
65 a_6 = CSWTCH02[argc - 1];
66 b_6 = CSWTCH01[argc - 1];
67 }
68 else
69 {
70 a_7 = 16;
71 b_7 = 1;
72 }
73 a_5 = PHI <a_6, a_7>
74 b_b = PHI <b_6, b_7>
75
76 There are further constraints. Specifically, the range of values across all
77 case labels must not be bigger than SWITCH_CONVERSION_BRANCH_RATIO (default
78 eight) times the number of the actual switch branches. */
79
80 #include "config.h"
81 #include "system.h"
82 #include "coretypes.h"
83 #include "tm.h"
84 #include "line-map.h"
85 #include "params.h"
86 #include "flags.h"
87 #include "tree.h"
88 #include "basic-block.h"
89 #include "tree-flow.h"
90 #include "tree-flow-inline.h"
91 #include "tree-ssa-operands.h"
92 #include "output.h"
93 #include "input.h"
94 #include "tree-pass.h"
95 #include "gimple-pretty-print.h"
96 #include "tree-dump.h"
97 #include "timevar.h"
98 #include "langhooks.h"
99
100 /* The main structure of the pass. */
101 struct switch_conv_info
102 {
103 /* The expression used to decide the switch branch. */
104 tree index_expr;
105
106 /* The following integer constants store the minimum and maximum value
107 covered by the case labels. */
108 tree range_min;
109 tree range_max;
110
111 /* The difference between the above two numbers. Stored here because it
112 is used in all the conversion heuristics, as well as for some of the
113 transformation, and it is expensive to re-compute it all the time. */
114 tree range_size;
115
116 /* Basic block that contains the actual GIMPLE_SWITCH. */
117 basic_block switch_bb;
118
119 /* Basic block that is the target of the default case. */
120 basic_block default_bb;
121
122 /* The single successor block of all branches out of the GIMPLE_SWITCH,
123 if such a block exists. Otherwise NULL. */
124 basic_block final_bb;
125
126 /* The probability of the default edge in the replaced switch. */
127 int default_prob;
128
129 /* The count of the default edge in the replaced switch. */
130 gcov_type default_count;
131
132 /* Combined count of all other (non-default) edges in the replaced switch. */
133 gcov_type other_count;
134
135 /* Number of phi nodes in the final bb (that we'll be replacing). */
136 int phi_count;
137
138 /* Array of default values, in the same order as phi nodes. */
139 tree *default_values;
140
141 /* Constructors of new static arrays. */
142 VEC (constructor_elt, gc) **constructors;
143
144 /* Array of ssa names that are initialized with a value from a new static
145 array. */
146 tree *target_inbound_names;
147
148 /* Array of ssa names that are initialized with the default value if the
149 switch expression is out of range. */
150 tree *target_outbound_names;
151
152 /* The first load statement that loads a temporary from a new static array.
153 */
154 gimple arr_ref_first;
155
156 /* The last load statement that loads a temporary from a new static array. */
157 gimple arr_ref_last;
158
159 /* String reason why the case wasn't a good candidate that is written to the
160 dump file, if there is one. */
161 const char *reason;
162
163 /* Parameters for expand_switch_using_bit_tests. Should be computed
164 the same way as in expand_case. */
165 unsigned int uniq;
166 unsigned int count;
167 };
168
169 /* Collect information about GIMPLE_SWITCH statement SWTCH into INFO. */
170
171 static void
172 collect_switch_conv_info (gimple swtch, struct switch_conv_info *info)
173 {
174 unsigned int branch_num = gimple_switch_num_labels (swtch);
175 tree min_case, max_case;
176 unsigned int count, i;
177 edge e, e_default;
178 edge_iterator ei;
179
180 memset (info, 0, sizeof (*info));
181
182 /* The gimplifier has already sorted the cases by CASE_LOW and ensured there
183 is a default label which is the first in the vector. */
184 gcc_assert (CASE_LOW (gimple_switch_label (swtch, 0)) == NULL_TREE);
185
186 /* Collect the bits we can deduce from the CFG. */
187 info->index_expr = gimple_switch_index (swtch);
188 info->switch_bb = gimple_bb (swtch);
189 info->default_bb =
190 label_to_block (CASE_LABEL (gimple_switch_label (swtch, 0)));
191 e_default = find_edge (info->switch_bb, info->default_bb);
192 info->default_prob = e_default->probability;
193 info->default_count = e_default->count;
194 FOR_EACH_EDGE (e, ei, info->switch_bb->succs)
195 if (e != e_default)
196 info->other_count += e->count;
197
198 /* See if there is one common successor block for all branch
199 targets. If it exists, record it in FINAL_BB. */
200 FOR_EACH_EDGE (e, ei, info->switch_bb->succs)
201 {
202 if (! single_pred_p (e->dest))
203 {
204 info->final_bb = e->dest;
205 break;
206 }
207 }
208 if (info->final_bb)
209 FOR_EACH_EDGE (e, ei, info->switch_bb->succs)
210 {
211 if (e->dest == info->final_bb)
212 continue;
213
214 if (single_pred_p (e->dest)
215 && single_succ_p (e->dest)
216 && single_succ (e->dest) == info->final_bb)
217 continue;
218
219 info->final_bb = NULL;
220 break;
221 }
222
223 /* Get upper and lower bounds of case values, and the covered range. */
224 min_case = gimple_switch_label (swtch, 1);
225 max_case = gimple_switch_label (swtch, branch_num - 1);
226
227 info->range_min = CASE_LOW (min_case);
228 if (CASE_HIGH (max_case) != NULL_TREE)
229 info->range_max = CASE_HIGH (max_case);
230 else
231 info->range_max = CASE_LOW (max_case);
232
233 info->range_size =
234 int_const_binop (MINUS_EXPR, info->range_max, info->range_min);
235
236 /* Get a count of the number of case labels. Single-valued case labels
237 simply count as one, but a case range counts double, since it may
238 require two compares if it gets lowered as a branching tree. */
239 count = 0;
240 for (i = 1; i < branch_num; i++)
241 {
242 tree elt = gimple_switch_label (swtch, i);
243 count++;
244 if (CASE_HIGH (elt)
245 && ! tree_int_cst_equal (CASE_LOW (elt), CASE_HIGH (elt)))
246 count++;
247 }
248 info->count = count;
249
250 /* Get the number of unique non-default targets out of the GIMPLE_SWITCH
251 block. Assume a CFG cleanup would have already removed degenerate
252 switch statements, this allows us to just use EDGE_COUNT. */
253 info->uniq = EDGE_COUNT (gimple_bb (swtch)->succs) - 1;
254 }
255
256 /* Checks whether the range given by individual case statements of the SWTCH
257 switch statement isn't too big and whether the number of branches actually
258 satisfies the size of the new array. */
259
260 static bool
261 check_range (struct switch_conv_info *info)
262 {
263 gcc_assert (info->range_size);
264 if (!host_integerp (info->range_size, 1))
265 {
266 info->reason = "index range way too large or otherwise unusable";
267 return false;
268 }
269
270 if ((unsigned HOST_WIDE_INT) tree_low_cst (info->range_size, 1)
271 > ((unsigned) info->count * SWITCH_CONVERSION_BRANCH_RATIO))
272 {
273 info->reason = "the maximum range-branch ratio exceeded";
274 return false;
275 }
276
277 return true;
278 }
279
280 /* Checks whether all but the FINAL_BB basic blocks are empty. */
281
282 static bool
283 check_all_empty_except_final (struct switch_conv_info *info)
284 {
285 edge e;
286 edge_iterator ei;
287
288 FOR_EACH_EDGE (e, ei, info->switch_bb->succs)
289 {
290 if (e->dest == info->final_bb)
291 continue;
292
293 if (!empty_block_p (e->dest))
294 {
295 info->reason = "bad case - a non-final BB not empty";
296 return false;
297 }
298 }
299
300 return true;
301 }
302
303 /* This function checks whether all required values in phi nodes in final_bb
304 are constants. Required values are those that correspond to a basic block
305 which is a part of the examined switch statement. It returns true if the
306 phi nodes are OK, otherwise false. */
307
308 static bool
309 check_final_bb (struct switch_conv_info *info)
310 {
311 gimple_stmt_iterator gsi;
312
313 info->phi_count = 0;
314 for (gsi = gsi_start_phis (info->final_bb); !gsi_end_p (gsi); gsi_next (&gsi))
315 {
316 gimple phi = gsi_stmt (gsi);
317 unsigned int i;
318
319 info->phi_count++;
320
321 for (i = 0; i < gimple_phi_num_args (phi); i++)
322 {
323 basic_block bb = gimple_phi_arg_edge (phi, i)->src;
324
325 if (bb == info->switch_bb
326 || (single_pred_p (bb) && single_pred (bb) == info->switch_bb))
327 {
328 tree reloc, val;
329
330 val = gimple_phi_arg_def (phi, i);
331 if (!is_gimple_ip_invariant (val))
332 {
333 info->reason = "non-invariant value from a case";
334 return false; /* Non-invariant argument. */
335 }
336 reloc = initializer_constant_valid_p (val, TREE_TYPE (val));
337 if ((flag_pic && reloc != null_pointer_node)
338 || (!flag_pic && reloc == NULL_TREE))
339 {
340 if (reloc)
341 info->reason
342 = "value from a case would need runtime relocations";
343 else
344 info->reason
345 = "value from a case is not a valid initializer";
346 return false;
347 }
348 }
349 }
350 }
351
352 return true;
353 }
354
355 /* The following function allocates default_values, target_{in,out}_names and
356 constructors arrays. The last one is also populated with pointers to
357 vectors that will become constructors of new arrays. */
358
359 static void
360 create_temp_arrays (struct switch_conv_info *info)
361 {
362 int i;
363
364 info->default_values = XCNEWVEC (tree, info->phi_count * 3);
365 info->constructors = XCNEWVEC (VEC (constructor_elt, gc) *, info->phi_count);
366 info->target_inbound_names = info->default_values + info->phi_count;
367 info->target_outbound_names = info->target_inbound_names + info->phi_count;
368 for (i = 0; i < info->phi_count; i++)
369 info->constructors[i]
370 = VEC_alloc (constructor_elt, gc, tree_low_cst (info->range_size, 1) + 1);
371 }
372
373 /* Free the arrays created by create_temp_arrays(). The vectors that are
374 created by that function are not freed here, however, because they have
375 already become constructors and must be preserved. */
376
377 static void
378 free_temp_arrays (struct switch_conv_info *info)
379 {
380 XDELETEVEC (info->constructors);
381 XDELETEVEC (info->default_values);
382 }
383
384 /* Populate the array of default values in the order of phi nodes.
385 DEFAULT_CASE is the CASE_LABEL_EXPR for the default switch branch. */
386
387 static void
388 gather_default_values (tree default_case, struct switch_conv_info *info)
389 {
390 gimple_stmt_iterator gsi;
391 basic_block bb = label_to_block (CASE_LABEL (default_case));
392 edge e;
393 int i = 0;
394
395 gcc_assert (CASE_LOW (default_case) == NULL_TREE);
396
397 if (bb == info->final_bb)
398 e = find_edge (info->switch_bb, bb);
399 else
400 e = single_succ_edge (bb);
401
402 for (gsi = gsi_start_phis (info->final_bb); !gsi_end_p (gsi); gsi_next (&gsi))
403 {
404 gimple phi = gsi_stmt (gsi);
405 tree val = PHI_ARG_DEF_FROM_EDGE (phi, e);
406 gcc_assert (val);
407 info->default_values[i++] = val;
408 }
409 }
410
411 /* The following function populates the vectors in the constructors array with
412 future contents of the static arrays. The vectors are populated in the
413 order of phi nodes. SWTCH is the switch statement being converted. */
414
415 static void
416 build_constructors (gimple swtch, struct switch_conv_info *info)
417 {
418 unsigned i, branch_num = gimple_switch_num_labels (swtch);
419 tree pos = info->range_min;
420
421 for (i = 1; i < branch_num; i++)
422 {
423 tree cs = gimple_switch_label (swtch, i);
424 basic_block bb = label_to_block (CASE_LABEL (cs));
425 edge e;
426 tree high;
427 gimple_stmt_iterator gsi;
428 int j;
429
430 if (bb == info->final_bb)
431 e = find_edge (info->switch_bb, bb);
432 else
433 e = single_succ_edge (bb);
434 gcc_assert (e);
435
436 while (tree_int_cst_lt (pos, CASE_LOW (cs)))
437 {
438 int k;
439 for (k = 0; k < info->phi_count; k++)
440 {
441 constructor_elt *elt;
442
443 elt = VEC_quick_push (constructor_elt,
444 info->constructors[k], NULL);
445 elt->index = int_const_binop (MINUS_EXPR, pos,
446 info->range_min);
447 elt->value = info->default_values[k];
448 }
449
450 pos = int_const_binop (PLUS_EXPR, pos, integer_one_node);
451 }
452 gcc_assert (tree_int_cst_equal (pos, CASE_LOW (cs)));
453
454 j = 0;
455 if (CASE_HIGH (cs))
456 high = CASE_HIGH (cs);
457 else
458 high = CASE_LOW (cs);
459 for (gsi = gsi_start_phis (info->final_bb);
460 !gsi_end_p (gsi); gsi_next (&gsi))
461 {
462 gimple phi = gsi_stmt (gsi);
463 tree val = PHI_ARG_DEF_FROM_EDGE (phi, e);
464 tree low = CASE_LOW (cs);
465 pos = CASE_LOW (cs);
466
467 do
468 {
469 constructor_elt *elt;
470
471 elt = VEC_quick_push (constructor_elt,
472 info->constructors[j], NULL);
473 elt->index = int_const_binop (MINUS_EXPR, pos, info->range_min);
474 elt->value = val;
475
476 pos = int_const_binop (PLUS_EXPR, pos, integer_one_node);
477 } while (!tree_int_cst_lt (high, pos)
478 && tree_int_cst_lt (low, pos));
479 j++;
480 }
481 }
482 }
483
484 /* If all values in the constructor vector are the same, return the value.
485 Otherwise return NULL_TREE. Not supposed to be called for empty
486 vectors. */
487
488 static tree
489 constructor_contains_same_values_p (VEC (constructor_elt, gc) *vec)
490 {
491 unsigned int i;
492 tree prev = NULL_TREE;
493 constructor_elt *elt;
494
495 FOR_EACH_VEC_ELT (constructor_elt, vec, i, elt)
496 {
497 if (!prev)
498 prev = elt->value;
499 else if (!operand_equal_p (elt->value, prev, OEP_ONLY_CONST))
500 return NULL_TREE;
501 }
502 return prev;
503 }
504
505 /* Return type which should be used for array elements, either TYPE,
506 or for integral type some smaller integral type that can still hold
507 all the constants. */
508
509 static tree
510 array_value_type (gimple swtch, tree type, int num,
511 struct switch_conv_info *info)
512 {
513 unsigned int i, len = VEC_length (constructor_elt, info->constructors[num]);
514 constructor_elt *elt;
515 enum machine_mode mode;
516 int sign = 0;
517 tree smaller_type;
518
519 if (!INTEGRAL_TYPE_P (type))
520 return type;
521
522 mode = GET_CLASS_NARROWEST_MODE (GET_MODE_CLASS (TYPE_MODE (type)));
523 if (GET_MODE_SIZE (TYPE_MODE (type)) <= GET_MODE_SIZE (mode))
524 return type;
525
526 if (len < (optimize_bb_for_size_p (gimple_bb (swtch)) ? 2 : 32))
527 return type;
528
529 FOR_EACH_VEC_ELT (constructor_elt, info->constructors[num], i, elt)
530 {
531 double_int cst;
532
533 if (TREE_CODE (elt->value) != INTEGER_CST)
534 return type;
535
536 cst = TREE_INT_CST (elt->value);
537 while (1)
538 {
539 unsigned int prec = GET_MODE_BITSIZE (mode);
540 if (prec > HOST_BITS_PER_WIDE_INT)
541 return type;
542
543 if (sign >= 0
544 && double_int_equal_p (cst, double_int_zext (cst, prec)))
545 {
546 if (sign == 0
547 && double_int_equal_p (cst, double_int_sext (cst, prec)))
548 break;
549 sign = 1;
550 break;
551 }
552 if (sign <= 0
553 && double_int_equal_p (cst, double_int_sext (cst, prec)))
554 {
555 sign = -1;
556 break;
557 }
558
559 if (sign == 1)
560 sign = 0;
561
562 mode = GET_MODE_WIDER_MODE (mode);
563 if (mode == VOIDmode
564 || GET_MODE_SIZE (mode) >= GET_MODE_SIZE (TYPE_MODE (type)))
565 return type;
566 }
567 }
568
569 if (sign == 0)
570 sign = TYPE_UNSIGNED (type) ? 1 : -1;
571 smaller_type = lang_hooks.types.type_for_mode (mode, sign >= 0);
572 if (GET_MODE_SIZE (TYPE_MODE (type))
573 <= GET_MODE_SIZE (TYPE_MODE (smaller_type)))
574 return type;
575
576 return smaller_type;
577 }
578
579 /* Create an appropriate array type and declaration and assemble a static array
580 variable. Also create a load statement that initializes the variable in
581 question with a value from the static array. SWTCH is the switch statement
582 being converted, NUM is the index to arrays of constructors, default values
583 and target SSA names for this particular array. ARR_INDEX_TYPE is the type
584 of the index of the new array, PHI is the phi node of the final BB that
585 corresponds to the value that will be loaded from the created array. TIDX
586 is an ssa name of a temporary variable holding the index for loads from the
587 new array. */
588
589 static void
590 build_one_array (gimple swtch, int num, tree arr_index_type, gimple phi,
591 tree tidx, struct switch_conv_info *info)
592 {
593 tree name, cst;
594 gimple load;
595 gimple_stmt_iterator gsi = gsi_for_stmt (swtch);
596 location_t loc = gimple_location (swtch);
597
598 gcc_assert (info->default_values[num]);
599
600 name = make_ssa_name (SSA_NAME_VAR (PHI_RESULT (phi)), NULL);
601 info->target_inbound_names[num] = name;
602
603 cst = constructor_contains_same_values_p (info->constructors[num]);
604 if (cst)
605 load = gimple_build_assign (name, cst);
606 else
607 {
608 tree array_type, ctor, decl, value_type, fetch, default_type;
609
610 default_type = TREE_TYPE (info->default_values[num]);
611 value_type = array_value_type (swtch, default_type, num, info);
612 array_type = build_array_type (value_type, arr_index_type);
613 if (default_type != value_type)
614 {
615 unsigned int i;
616 constructor_elt *elt;
617
618 FOR_EACH_VEC_ELT (constructor_elt, info->constructors[num], i, elt)
619 elt->value = fold_convert (value_type, elt->value);
620 }
621 ctor = build_constructor (array_type, info->constructors[num]);
622 TREE_CONSTANT (ctor) = true;
623 TREE_STATIC (ctor) = true;
624
625 decl = build_decl (loc, VAR_DECL, NULL_TREE, array_type);
626 TREE_STATIC (decl) = 1;
627 DECL_INITIAL (decl) = ctor;
628
629 DECL_NAME (decl) = create_tmp_var_name ("CSWTCH");
630 DECL_ARTIFICIAL (decl) = 1;
631 TREE_CONSTANT (decl) = 1;
632 TREE_READONLY (decl) = 1;
633 varpool_finalize_decl (decl);
634
635 fetch = build4 (ARRAY_REF, value_type, decl, tidx, NULL_TREE,
636 NULL_TREE);
637 if (default_type != value_type)
638 {
639 fetch = fold_convert (default_type, fetch);
640 fetch = force_gimple_operand_gsi (&gsi, fetch, true, NULL_TREE,
641 true, GSI_SAME_STMT);
642 }
643 load = gimple_build_assign (name, fetch);
644 }
645
646 SSA_NAME_DEF_STMT (name) = load;
647 gsi_insert_before (&gsi, load, GSI_SAME_STMT);
648 update_stmt (load);
649 info->arr_ref_last = load;
650 }
651
652 /* Builds and initializes static arrays initialized with values gathered from
653 the SWTCH switch statement. Also creates statements that load values from
654 them. */
655
656 static void
657 build_arrays (gimple swtch, struct switch_conv_info *info)
658 {
659 tree arr_index_type;
660 tree tidx, sub, tmp, utype;
661 gimple stmt;
662 gimple_stmt_iterator gsi;
663 int i;
664 location_t loc = gimple_location (swtch);
665
666 gsi = gsi_for_stmt (swtch);
667
668 /* Make sure we do not generate arithmetics in a subrange. */
669 utype = TREE_TYPE (info->index_expr);
670 if (TREE_TYPE (utype))
671 utype = lang_hooks.types.type_for_mode (TYPE_MODE (TREE_TYPE (utype)), 1);
672 else
673 utype = lang_hooks.types.type_for_mode (TYPE_MODE (utype), 1);
674
675 arr_index_type = build_index_type (info->range_size);
676 tmp = create_tmp_var (utype, "csui");
677 add_referenced_var (tmp);
678 tidx = make_ssa_name (tmp, NULL);
679 sub = fold_build2_loc (loc, MINUS_EXPR, utype,
680 fold_convert_loc (loc, utype, info->index_expr),
681 fold_convert_loc (loc, utype, info->range_min));
682 sub = force_gimple_operand_gsi (&gsi, sub,
683 false, NULL, true, GSI_SAME_STMT);
684 stmt = gimple_build_assign (tidx, sub);
685 SSA_NAME_DEF_STMT (tidx) = stmt;
686
687 gsi_insert_before (&gsi, stmt, GSI_SAME_STMT);
688 update_stmt (stmt);
689 info->arr_ref_first = stmt;
690
691 for (gsi = gsi_start_phis (info->final_bb), i = 0;
692 !gsi_end_p (gsi); gsi_next (&gsi), i++)
693 build_one_array (swtch, i, arr_index_type, gsi_stmt (gsi), tidx, info);
694 }
695
696 /* Generates and appropriately inserts loads of default values at the position
697 given by BSI. Returns the last inserted statement. */
698
699 static gimple
700 gen_def_assigns (gimple_stmt_iterator *gsi, struct switch_conv_info *info)
701 {
702 int i;
703 gimple assign = NULL;
704
705 for (i = 0; i < info->phi_count; i++)
706 {
707 tree name
708 = make_ssa_name (SSA_NAME_VAR (info->target_inbound_names[i]), NULL);
709
710 info->target_outbound_names[i] = name;
711 assign = gimple_build_assign (name, info->default_values[i]);
712 SSA_NAME_DEF_STMT (name) = assign;
713 gsi_insert_before (gsi, assign, GSI_SAME_STMT);
714 update_stmt (assign);
715 }
716 return assign;
717 }
718
719 /* Deletes the unused bbs and edges that now contain the switch statement and
720 its empty branch bbs. BBD is the now dead BB containing the original switch
721 statement, FINAL is the last BB of the converted switch statement (in terms
722 of succession). */
723
724 static void
725 prune_bbs (basic_block bbd, basic_block final)
726 {
727 edge_iterator ei;
728 edge e;
729
730 for (ei = ei_start (bbd->succs); (e = ei_safe_edge (ei)); )
731 {
732 basic_block bb;
733 bb = e->dest;
734 remove_edge (e);
735 if (bb != final)
736 delete_basic_block (bb);
737 }
738 delete_basic_block (bbd);
739 }
740
741 /* Add values to phi nodes in final_bb for the two new edges. E1F is the edge
742 from the basic block loading values from an array and E2F from the basic
743 block loading default values. BBF is the last switch basic block (see the
744 bbf description in the comment below). */
745
746 static void
747 fix_phi_nodes (edge e1f, edge e2f, basic_block bbf,
748 struct switch_conv_info *info)
749 {
750 gimple_stmt_iterator gsi;
751 int i;
752
753 for (gsi = gsi_start_phis (bbf), i = 0;
754 !gsi_end_p (gsi); gsi_next (&gsi), i++)
755 {
756 gimple phi = gsi_stmt (gsi);
757 add_phi_arg (phi, info->target_inbound_names[i], e1f, UNKNOWN_LOCATION);
758 add_phi_arg (phi, info->target_outbound_names[i], e2f, UNKNOWN_LOCATION);
759 }
760 }
761
762 /* Creates a check whether the switch expression value actually falls into the
763 range given by all the cases. If it does not, the temporaries are loaded
764 with default values instead. SWTCH is the switch statement being converted.
765
766 bb0 is the bb with the switch statement, however, we'll end it with a
767 condition instead.
768
769 bb1 is the bb to be used when the range check went ok. It is derived from
770 the switch BB
771
772 bb2 is the bb taken when the expression evaluated outside of the range
773 covered by the created arrays. It is populated by loads of default
774 values.
775
776 bbF is a fall through for both bb1 and bb2 and contains exactly what
777 originally followed the switch statement.
778
779 bbD contains the switch statement (in the end). It is unreachable but we
780 still need to strip off its edges.
781 */
782
783 static void
784 gen_inbound_check (gimple swtch, struct switch_conv_info *info)
785 {
786 tree label_decl1 = create_artificial_label (UNKNOWN_LOCATION);
787 tree label_decl2 = create_artificial_label (UNKNOWN_LOCATION);
788 tree label_decl3 = create_artificial_label (UNKNOWN_LOCATION);
789 gimple label1, label2, label3;
790 tree utype, tidx;
791 tree bound;
792
793 gimple cond_stmt;
794
795 gimple last_assign;
796 gimple_stmt_iterator gsi;
797 basic_block bb0, bb1, bb2, bbf, bbd;
798 edge e01, e02, e21, e1d, e1f, e2f;
799 location_t loc = gimple_location (swtch);
800
801 gcc_assert (info->default_values);
802
803 /* Make no effort to update the post-dominator tree. It is actually not
804 that hard for the transformations we have performed, but it is not
805 supported by iterate_fix_dominators.
806 Freeing post-dominance info is dome early to avoid pointless work in
807 create_basic_block, which is called when we split SWITCH_BB. */
808 free_dominance_info (CDI_POST_DOMINATORS);
809
810 bb0 = gimple_bb (swtch);
811
812 tidx = gimple_assign_lhs (info->arr_ref_first);
813 utype = TREE_TYPE (tidx);
814
815 /* (end of) block 0 */
816 gsi = gsi_for_stmt (info->arr_ref_first);
817 gsi_next (&gsi);
818
819 bound = fold_convert_loc (loc, utype, info->range_size);
820 cond_stmt = gimple_build_cond (LE_EXPR, tidx, bound, NULL_TREE, NULL_TREE);
821 gsi_insert_before (&gsi, cond_stmt, GSI_SAME_STMT);
822 update_stmt (cond_stmt);
823
824 /* block 2 */
825 label2 = gimple_build_label (label_decl2);
826 gsi_insert_before (&gsi, label2, GSI_SAME_STMT);
827 last_assign = gen_def_assigns (&gsi, info);
828
829 /* block 1 */
830 label1 = gimple_build_label (label_decl1);
831 gsi_insert_before (&gsi, label1, GSI_SAME_STMT);
832
833 /* block F */
834 gsi = gsi_start_bb (info->final_bb);
835 label3 = gimple_build_label (label_decl3);
836 gsi_insert_before (&gsi, label3, GSI_SAME_STMT);
837
838 /* cfg fix */
839 e02 = split_block (bb0, cond_stmt);
840 bb2 = e02->dest;
841
842 e21 = split_block (bb2, last_assign);
843 bb1 = e21->dest;
844 remove_edge (e21);
845
846 e1d = split_block (bb1, info->arr_ref_last);
847 bbd = e1d->dest;
848 remove_edge (e1d);
849
850 /* flags and profiles of the edge for in-range values */
851 e01 = make_edge (bb0, bb1, EDGE_TRUE_VALUE);
852 e01->probability = REG_BR_PROB_BASE - info->default_prob;
853 e01->count = info->other_count;
854
855 /* flags and profiles of the edge taking care of out-of-range values */
856 e02->flags &= ~EDGE_FALLTHRU;
857 e02->flags |= EDGE_FALSE_VALUE;
858 e02->probability = info->default_prob;
859 e02->count = info->default_count;
860
861 bbf = info->final_bb;
862
863 e1f = make_edge (bb1, bbf, EDGE_FALLTHRU);
864 e1f->probability = REG_BR_PROB_BASE;
865 e1f->count = info->other_count;
866
867 e2f = make_edge (bb2, bbf, EDGE_FALLTHRU);
868 e2f->probability = REG_BR_PROB_BASE;
869 e2f->count = info->default_count;
870
871 /* frequencies of the new BBs */
872 bb1->frequency = EDGE_FREQUENCY (e01);
873 bb2->frequency = EDGE_FREQUENCY (e02);
874 bbf->frequency = EDGE_FREQUENCY (e1f) + EDGE_FREQUENCY (e2f);
875
876 /* Tidy blocks that have become unreachable. */
877 prune_bbs (bbd, info->final_bb);
878
879 /* Fixup the PHI nodes in bbF. */
880 fix_phi_nodes (e1f, e2f, bbf, info);
881
882 /* Fix the dominator tree, if it is available. */
883 if (dom_info_available_p (CDI_DOMINATORS))
884 {
885 VEC (basic_block, heap) *bbs_to_fix_dom;
886
887 set_immediate_dominator (CDI_DOMINATORS, bb1, bb0);
888 set_immediate_dominator (CDI_DOMINATORS, bb2, bb0);
889 if (! get_immediate_dominator(CDI_DOMINATORS, bbf))
890 /* If bbD was the immediate dominator ... */
891 set_immediate_dominator (CDI_DOMINATORS, bbf, bb0);
892
893 bbs_to_fix_dom = VEC_alloc (basic_block, heap, 4);
894 VEC_quick_push (basic_block, bbs_to_fix_dom, bb0);
895 VEC_quick_push (basic_block, bbs_to_fix_dom, bb1);
896 VEC_quick_push (basic_block, bbs_to_fix_dom, bb2);
897 VEC_quick_push (basic_block, bbs_to_fix_dom, bbf);
898
899 iterate_fix_dominators (CDI_DOMINATORS, bbs_to_fix_dom, true);
900 VEC_free (basic_block, heap, bbs_to_fix_dom);
901 }
902 }
903
904 /* The following function is invoked on every switch statement (the current one
905 is given in SWTCH) and runs the individual phases of switch conversion on it
906 one after another until one fails or the conversion is completed.
907 Returns NULL on success, or a pointer to a string with the reason why the
908 conversion failed. */
909
910 static const char *
911 process_switch (gimple swtch)
912 {
913 struct switch_conv_info info;
914
915 /* Degenerate case with only a default label should never happen. */
916 gcc_checking_assert (gimple_switch_num_labels (swtch) > 1);
917
918 collect_switch_conv_info (swtch, &info);
919
920 /* No error markers should reach here (they should be filtered out
921 during gimplification). */
922 gcc_checking_assert (TREE_TYPE (info.index_expr) != error_mark_node);
923
924 /* If there is no common successor, we cannot do the transformation. */
925 if (! info.final_bb)
926 return "no common successor to all case label target blocks found";
927
928 if (info.uniq <= 2)
929 {
930 if (expand_switch_using_bit_tests_p (info.index_expr, info.range_size,
931 info.uniq, info.count))
932 return "expanding as bit test is preferable";
933 }
934
935 /* Check the case label values are within reasonable range: */
936 if (!check_range (&info))
937 {
938 gcc_assert (info.reason);
939 return info.reason;
940 }
941
942 /* For all the cases, see whether they are empty, the assignments they
943 represent constant and so on... */
944 if (! check_all_empty_except_final (&info))
945 {
946 gcc_assert (info.reason);
947 return info.reason;
948 }
949 if (!check_final_bb (&info))
950 {
951 gcc_assert (info.reason);
952 return info.reason;
953 }
954
955 /* At this point all checks have passed and we can proceed with the
956 transformation. */
957
958 create_temp_arrays (&info);
959 gather_default_values (gimple_switch_label (swtch, 0), &info);
960 build_constructors (swtch, &info);
961
962 build_arrays (swtch, &info); /* Build the static arrays and assignments. */
963 gen_inbound_check (swtch, &info); /* Build the bounds check. */
964
965 /* Cleanup: */
966 free_temp_arrays (&info);
967 return NULL;
968 }
969
970 /* The main function of the pass scans statements for switches and invokes
971 process_switch on them. */
972
973 static unsigned int
974 do_switchconv (void)
975 {
976 basic_block bb;
977
978 FOR_EACH_BB (bb)
979 {
980 const char *failure_reason;
981 gimple stmt = last_stmt (bb);
982 if (stmt && gimple_code (stmt) == GIMPLE_SWITCH)
983 {
984 if (dump_file)
985 {
986 expanded_location loc = expand_location (gimple_location (stmt));
987
988 fprintf (dump_file, "beginning to process the following "
989 "SWITCH statement (%s:%d) : ------- \n",
990 loc.file, loc.line);
991 print_gimple_stmt (dump_file, stmt, 0, TDF_SLIM);
992 putc ('\n', dump_file);
993 }
994
995 failure_reason = process_switch (stmt);
996 if (! failure_reason)
997 {
998 if (dump_file)
999 {
1000 fputs ("Switch converted\n", dump_file);
1001 fputs ("--------------------------------\n", dump_file);
1002 }
1003 }
1004 else
1005 {
1006 if (dump_file)
1007 {
1008 fputs ("Bailing out - ", dump_file);
1009 fputs (failure_reason, dump_file);
1010 fputs ("\n--------------------------------\n", dump_file);
1011 }
1012 }
1013 }
1014 }
1015
1016 return 0;
1017 }
1018
1019 /* The pass gate. */
1020
1021 static bool
1022 switchconv_gate (void)
1023 {
1024 return flag_tree_switch_conversion != 0;
1025 }
1026
1027 struct gimple_opt_pass pass_convert_switch =
1028 {
1029 {
1030 GIMPLE_PASS,
1031 "switchconv", /* name */
1032 switchconv_gate, /* gate */
1033 do_switchconv, /* execute */
1034 NULL, /* sub */
1035 NULL, /* next */
1036 0, /* static_pass_number */
1037 TV_TREE_SWITCH_CONVERSION, /* tv_id */
1038 PROP_cfg | PROP_ssa, /* properties_required */
1039 0, /* properties_provided */
1040 0, /* properties_destroyed */
1041 0, /* todo_flags_start */
1042 TODO_update_ssa
1043 | TODO_ggc_collect | TODO_verify_ssa /* todo_flags_finish */
1044 }
1045 };