PR target/65871
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1 /* Integrated Register Allocator (IRA) entry point.
2 Copyright (C) 2006-2015 Free Software Foundation, Inc.
3 Contributed by Vladimir Makarov <vmakarov@redhat.com>.
5 This file is part of GCC.
7 GCC is free software; you can redistribute it and/or modify it under
8 the terms of the GNU General Public License as published by the Free
9 Software Foundation; either version 3, or (at your option) any later
10 version.
12 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
13 WARRANTY; without even the implied warranty of MERCHANTABILITY or
14 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
15 for more details.
17 You should have received a copy of the GNU General Public License
18 along with GCC; see the file COPYING3. If not see
19 <http://www.gnu.org/licenses/>. */
21 /* The integrated register allocator (IRA) is a
22 regional register allocator performing graph coloring on a top-down
23 traversal of nested regions. Graph coloring in a region is based
24 on Chaitin-Briggs algorithm. It is called integrated because
25 register coalescing, register live range splitting, and choosing a
26 better hard register are done on-the-fly during coloring. Register
27 coalescing and choosing a cheaper hard register is done by hard
28 register preferencing during hard register assigning. The live
29 range splitting is a byproduct of the regional register allocation.
31 Major IRA notions are:
33 o *Region* is a part of CFG where graph coloring based on
34 Chaitin-Briggs algorithm is done. IRA can work on any set of
35 nested CFG regions forming a tree. Currently the regions are
36 the entire function for the root region and natural loops for
37 the other regions. Therefore data structure representing a
38 region is called loop_tree_node.
40 o *Allocno class* is a register class used for allocation of
41 given allocno. It means that only hard register of given
42 register class can be assigned to given allocno. In reality,
43 even smaller subset of (*profitable*) hard registers can be
44 assigned. In rare cases, the subset can be even smaller
45 because our modification of Chaitin-Briggs algorithm requires
46 that sets of hard registers can be assigned to allocnos forms a
47 forest, i.e. the sets can be ordered in a way where any
48 previous set is not intersected with given set or is a superset
49 of given set.
51 o *Pressure class* is a register class belonging to a set of
52 register classes containing all of the hard-registers available
53 for register allocation. The set of all pressure classes for a
54 target is defined in the corresponding machine-description file
55 according some criteria. Register pressure is calculated only
56 for pressure classes and it affects some IRA decisions as
57 forming allocation regions.
59 o *Allocno* represents the live range of a pseudo-register in a
60 region. Besides the obvious attributes like the corresponding
61 pseudo-register number, allocno class, conflicting allocnos and
62 conflicting hard-registers, there are a few allocno attributes
63 which are important for understanding the allocation algorithm:
65 - *Live ranges*. This is a list of ranges of *program points*
66 where the allocno lives. Program points represent places
67 where a pseudo can be born or become dead (there are
68 approximately two times more program points than the insns)
69 and they are represented by integers starting with 0. The
70 live ranges are used to find conflicts between allocnos.
71 They also play very important role for the transformation of
72 the IRA internal representation of several regions into a one
73 region representation. The later is used during the reload
74 pass work because each allocno represents all of the
75 corresponding pseudo-registers.
77 - *Hard-register costs*. This is a vector of size equal to the
78 number of available hard-registers of the allocno class. The
79 cost of a callee-clobbered hard-register for an allocno is
80 increased by the cost of save/restore code around the calls
81 through the given allocno's life. If the allocno is a move
82 instruction operand and another operand is a hard-register of
83 the allocno class, the cost of the hard-register is decreased
84 by the move cost.
86 When an allocno is assigned, the hard-register with minimal
87 full cost is used. Initially, a hard-register's full cost is
88 the corresponding value from the hard-register's cost vector.
89 If the allocno is connected by a *copy* (see below) to
90 another allocno which has just received a hard-register, the
91 cost of the hard-register is decreased. Before choosing a
92 hard-register for an allocno, the allocno's current costs of
93 the hard-registers are modified by the conflict hard-register
94 costs of all of the conflicting allocnos which are not
95 assigned yet.
97 - *Conflict hard-register costs*. This is a vector of the same
98 size as the hard-register costs vector. To permit an
99 unassigned allocno to get a better hard-register, IRA uses
100 this vector to calculate the final full cost of the
101 available hard-registers. Conflict hard-register costs of an
102 unassigned allocno are also changed with a change of the
103 hard-register cost of the allocno when a copy involving the
104 allocno is processed as described above. This is done to
105 show other unassigned allocnos that a given allocno prefers
106 some hard-registers in order to remove the move instruction
107 corresponding to the copy.
109 o *Cap*. If a pseudo-register does not live in a region but
110 lives in a nested region, IRA creates a special allocno called
111 a cap in the outer region. A region cap is also created for a
112 subregion cap.
114 o *Copy*. Allocnos can be connected by copies. Copies are used
115 to modify hard-register costs for allocnos during coloring.
116 Such modifications reflects a preference to use the same
117 hard-register for the allocnos connected by copies. Usually
118 copies are created for move insns (in this case it results in
119 register coalescing). But IRA also creates copies for operands
120 of an insn which should be assigned to the same hard-register
121 due to constraints in the machine description (it usually
122 results in removing a move generated in reload to satisfy
123 the constraints) and copies referring to the allocno which is
124 the output operand of an instruction and the allocno which is
125 an input operand dying in the instruction (creation of such
126 copies results in less register shuffling). IRA *does not*
127 create copies between the same register allocnos from different
128 regions because we use another technique for propagating
129 hard-register preference on the borders of regions.
131 Allocnos (including caps) for the upper region in the region tree
132 *accumulate* information important for coloring from allocnos with
133 the same pseudo-register from nested regions. This includes
134 hard-register and memory costs, conflicts with hard-registers,
135 allocno conflicts, allocno copies and more. *Thus, attributes for
136 allocnos in a region have the same values as if the region had no
137 subregions*. It means that attributes for allocnos in the
138 outermost region corresponding to the function have the same values
139 as though the allocation used only one region which is the entire
140 function. It also means that we can look at IRA work as if the
141 first IRA did allocation for all function then it improved the
142 allocation for loops then their subloops and so on.
144 IRA major passes are:
146 o Building IRA internal representation which consists of the
147 following subpasses:
149 * First, IRA builds regions and creates allocnos (file
150 ira-build.c) and initializes most of their attributes.
152 * Then IRA finds an allocno class for each allocno and
153 calculates its initial (non-accumulated) cost of memory and
154 each hard-register of its allocno class (file ira-cost.c).
156 * IRA creates live ranges of each allocno, calculates register
157 pressure for each pressure class in each region, sets up
158 conflict hard registers for each allocno and info about calls
159 the allocno lives through (file ira-lives.c).
161 * IRA removes low register pressure loops from the regions
162 mostly to speed IRA up (file ira-build.c).
164 * IRA propagates accumulated allocno info from lower region
165 allocnos to corresponding upper region allocnos (file
166 ira-build.c).
168 * IRA creates all caps (file ira-build.c).
170 * Having live-ranges of allocnos and their classes, IRA creates
171 conflicting allocnos for each allocno. Conflicting allocnos
172 are stored as a bit vector or array of pointers to the
173 conflicting allocnos whatever is more profitable (file
174 ira-conflicts.c). At this point IRA creates allocno copies.
176 o Coloring. Now IRA has all necessary info to start graph coloring
177 process. It is done in each region on top-down traverse of the
178 region tree (file ira-color.c). There are following subpasses:
180 * Finding profitable hard registers of corresponding allocno
181 class for each allocno. For example, only callee-saved hard
182 registers are frequently profitable for allocnos living
183 through colors. If the profitable hard register set of
184 allocno does not form a tree based on subset relation, we use
185 some approximation to form the tree. This approximation is
186 used to figure out trivial colorability of allocnos. The
187 approximation is a pretty rare case.
189 * Putting allocnos onto the coloring stack. IRA uses Briggs
190 optimistic coloring which is a major improvement over
191 Chaitin's coloring. Therefore IRA does not spill allocnos at
192 this point. There is some freedom in the order of putting
193 allocnos on the stack which can affect the final result of
194 the allocation. IRA uses some heuristics to improve the
195 order. The major one is to form *threads* from colorable
196 allocnos and push them on the stack by threads. Thread is a
197 set of non-conflicting colorable allocnos connected by
198 copies. The thread contains allocnos from the colorable
199 bucket or colorable allocnos already pushed onto the coloring
200 stack. Pushing thread allocnos one after another onto the
201 stack increases chances of removing copies when the allocnos
202 get the same hard reg.
204 We also use a modification of Chaitin-Briggs algorithm which
205 works for intersected register classes of allocnos. To
206 figure out trivial colorability of allocnos, the mentioned
207 above tree of hard register sets is used. To get an idea how
208 the algorithm works in i386 example, let us consider an
209 allocno to which any general hard register can be assigned.
210 If the allocno conflicts with eight allocnos to which only
211 EAX register can be assigned, given allocno is still
212 trivially colorable because all conflicting allocnos might be
213 assigned only to EAX and all other general hard registers are
214 still free.
216 To get an idea of the used trivial colorability criterion, it
217 is also useful to read article "Graph-Coloring Register
218 Allocation for Irregular Architectures" by Michael D. Smith
219 and Glen Holloway. Major difference between the article
220 approach and approach used in IRA is that Smith's approach
221 takes register classes only from machine description and IRA
222 calculate register classes from intermediate code too
223 (e.g. an explicit usage of hard registers in RTL code for
224 parameter passing can result in creation of additional
225 register classes which contain or exclude the hard
226 registers). That makes IRA approach useful for improving
227 coloring even for architectures with regular register files
228 and in fact some benchmarking shows the improvement for
229 regular class architectures is even bigger than for irregular
230 ones. Another difference is that Smith's approach chooses
231 intersection of classes of all insn operands in which a given
232 pseudo occurs. IRA can use bigger classes if it is still
233 more profitable than memory usage.
235 * Popping the allocnos from the stack and assigning them hard
236 registers. If IRA can not assign a hard register to an
237 allocno and the allocno is coalesced, IRA undoes the
238 coalescing and puts the uncoalesced allocnos onto the stack in
239 the hope that some such allocnos will get a hard register
240 separately. If IRA fails to assign hard register or memory
241 is more profitable for it, IRA spills the allocno. IRA
242 assigns the allocno the hard-register with minimal full
243 allocation cost which reflects the cost of usage of the
244 hard-register for the allocno and cost of usage of the
245 hard-register for allocnos conflicting with given allocno.
247 * Chaitin-Briggs coloring assigns as many pseudos as possible
248 to hard registers. After coloring we try to improve
249 allocation with cost point of view. We improve the
250 allocation by spilling some allocnos and assigning the freed
251 hard registers to other allocnos if it decreases the overall
252 allocation cost.
254 * After allocno assigning in the region, IRA modifies the hard
255 register and memory costs for the corresponding allocnos in
256 the subregions to reflect the cost of possible loads, stores,
257 or moves on the border of the region and its subregions.
258 When default regional allocation algorithm is used
259 (-fira-algorithm=mixed), IRA just propagates the assignment
260 for allocnos if the register pressure in the region for the
261 corresponding pressure class is less than number of available
262 hard registers for given pressure class.
264 o Spill/restore code moving. When IRA performs an allocation
265 by traversing regions in top-down order, it does not know what
266 happens below in the region tree. Therefore, sometimes IRA
267 misses opportunities to perform a better allocation. A simple
268 optimization tries to improve allocation in a region having
269 subregions and containing in another region. If the
270 corresponding allocnos in the subregion are spilled, it spills
271 the region allocno if it is profitable. The optimization
272 implements a simple iterative algorithm performing profitable
273 transformations while they are still possible. It is fast in
274 practice, so there is no real need for a better time complexity
275 algorithm.
277 o Code change. After coloring, two allocnos representing the
278 same pseudo-register outside and inside a region respectively
279 may be assigned to different locations (hard-registers or
280 memory). In this case IRA creates and uses a new
281 pseudo-register inside the region and adds code to move allocno
282 values on the region's borders. This is done during top-down
283 traversal of the regions (file ira-emit.c). In some
284 complicated cases IRA can create a new allocno to move allocno
285 values (e.g. when a swap of values stored in two hard-registers
286 is needed). At this stage, the new allocno is marked as
287 spilled. IRA still creates the pseudo-register and the moves
288 on the region borders even when both allocnos were assigned to
289 the same hard-register. If the reload pass spills a
290 pseudo-register for some reason, the effect will be smaller
291 because another allocno will still be in the hard-register. In
292 most cases, this is better then spilling both allocnos. If
293 reload does not change the allocation for the two
294 pseudo-registers, the trivial move will be removed by
295 post-reload optimizations. IRA does not generate moves for
296 allocnos assigned to the same hard register when the default
297 regional allocation algorithm is used and the register pressure
298 in the region for the corresponding pressure class is less than
299 number of available hard registers for given pressure class.
300 IRA also does some optimizations to remove redundant stores and
301 to reduce code duplication on the region borders.
303 o Flattening internal representation. After changing code, IRA
304 transforms its internal representation for several regions into
305 one region representation (file ira-build.c). This process is
306 called IR flattening. Such process is more complicated than IR
307 rebuilding would be, but is much faster.
309 o After IR flattening, IRA tries to assign hard registers to all
310 spilled allocnos. This is implemented by a simple and fast
311 priority coloring algorithm (see function
312 ira_reassign_conflict_allocnos::ira-color.c). Here new allocnos
313 created during the code change pass can be assigned to hard
314 registers.
316 o At the end IRA calls the reload pass. The reload pass
317 communicates with IRA through several functions in file
318 ira-color.c to improve its decisions in
320 * sharing stack slots for the spilled pseudos based on IRA info
321 about pseudo-register conflicts.
323 * reassigning hard-registers to all spilled pseudos at the end
324 of each reload iteration.
326 * choosing a better hard-register to spill based on IRA info
327 about pseudo-register live ranges and the register pressure
328 in places where the pseudo-register lives.
330 IRA uses a lot of data representing the target processors. These
331 data are initialized in file ira.c.
333 If function has no loops (or the loops are ignored when
334 -fira-algorithm=CB is used), we have classic Chaitin-Briggs
335 coloring (only instead of separate pass of coalescing, we use hard
336 register preferencing). In such case, IRA works much faster
337 because many things are not made (like IR flattening, the
338 spill/restore optimization, and the code change).
340 Literature is worth to read for better understanding the code:
342 o Preston Briggs, Keith D. Cooper, Linda Torczon. Improvements to
343 Graph Coloring Register Allocation.
345 o David Callahan, Brian Koblenz. Register allocation via
346 hierarchical graph coloring.
348 o Keith Cooper, Anshuman Dasgupta, Jason Eckhardt. Revisiting Graph
349 Coloring Register Allocation: A Study of the Chaitin-Briggs and
350 Callahan-Koblenz Algorithms.
352 o Guei-Yuan Lueh, Thomas Gross, and Ali-Reza Adl-Tabatabai. Global
353 Register Allocation Based on Graph Fusion.
355 o Michael D. Smith and Glenn Holloway. Graph-Coloring Register
356 Allocation for Irregular Architectures
358 o Vladimir Makarov. The Integrated Register Allocator for GCC.
360 o Vladimir Makarov. The top-down register allocator for irregular
361 register file architectures.
366 #include "config.h"
367 #include "system.h"
368 #include "coretypes.h"
369 #include "tm.h"
370 #include "regs.h"
371 #include "hash-set.h"
372 #include "machmode.h"
373 #include "vec.h"
374 #include "double-int.h"
375 #include "input.h"
376 #include "alias.h"
377 #include "symtab.h"
378 #include "wide-int.h"
379 #include "inchash.h"
380 #include "tree.h"
381 #include "rtl.h"
382 #include "tm_p.h"
383 #include "target.h"
384 #include "flags.h"
385 #include "obstack.h"
386 #include "bitmap.h"
387 #include "hard-reg-set.h"
388 #include "predict.h"
389 #include "function.h"
390 #include "dominance.h"
391 #include "cfg.h"
392 #include "cfgrtl.h"
393 #include "cfgbuild.h"
394 #include "cfgcleanup.h"
395 #include "basic-block.h"
396 #include "df.h"
397 #include "hashtab.h"
398 #include "statistics.h"
399 #include "real.h"
400 #include "fixed-value.h"
401 #include "insn-config.h"
402 #include "expmed.h"
403 #include "dojump.h"
404 #include "explow.h"
405 #include "calls.h"
406 #include "emit-rtl.h"
407 #include "varasm.h"
408 #include "stmt.h"
409 #include "expr.h"
410 #include "recog.h"
411 #include "params.h"
412 #include "tree-pass.h"
413 #include "output.h"
414 #include "except.h"
415 #include "reload.h"
416 #include "diagnostic-core.h"
417 #include "ggc.h"
418 #include "ira-int.h"
419 #include "lra.h"
420 #include "dce.h"
421 #include "dbgcnt.h"
422 #include "rtl-iter.h"
423 #include "shrink-wrap.h"
425 struct target_ira default_target_ira;
426 struct target_ira_int default_target_ira_int;
427 #if SWITCHABLE_TARGET
428 struct target_ira *this_target_ira = &default_target_ira;
429 struct target_ira_int *this_target_ira_int = &default_target_ira_int;
430 #endif
432 /* A modified value of flag `-fira-verbose' used internally. */
433 int internal_flag_ira_verbose;
435 /* Dump file of the allocator if it is not NULL. */
436 FILE *ira_dump_file;
438 /* The number of elements in the following array. */
439 int ira_spilled_reg_stack_slots_num;
441 /* The following array contains info about spilled pseudo-registers
442 stack slots used in current function so far. */
443 struct ira_spilled_reg_stack_slot *ira_spilled_reg_stack_slots;
445 /* Correspondingly overall cost of the allocation, overall cost before
446 reload, cost of the allocnos assigned to hard-registers, cost of
447 the allocnos assigned to memory, cost of loads, stores and register
448 move insns generated for pseudo-register live range splitting (see
449 ira-emit.c). */
450 int64_t ira_overall_cost, overall_cost_before;
451 int64_t ira_reg_cost, ira_mem_cost;
452 int64_t ira_load_cost, ira_store_cost, ira_shuffle_cost;
453 int ira_move_loops_num, ira_additional_jumps_num;
455 /* All registers that can be eliminated. */
457 HARD_REG_SET eliminable_regset;
459 /* Value of max_reg_num () before IRA work start. This value helps
460 us to recognize a situation when new pseudos were created during
461 IRA work. */
462 static int max_regno_before_ira;
464 /* Temporary hard reg set used for a different calculation. */
465 static HARD_REG_SET temp_hard_regset;
467 #define last_mode_for_init_move_cost \
468 (this_target_ira_int->x_last_mode_for_init_move_cost)
471 /* The function sets up the map IRA_REG_MODE_HARD_REGSET. */
472 static void
473 setup_reg_mode_hard_regset (void)
475 int i, m, hard_regno;
477 for (m = 0; m < NUM_MACHINE_MODES; m++)
478 for (hard_regno = 0; hard_regno < FIRST_PSEUDO_REGISTER; hard_regno++)
480 CLEAR_HARD_REG_SET (ira_reg_mode_hard_regset[hard_regno][m]);
481 for (i = hard_regno_nregs[hard_regno][m] - 1; i >= 0; i--)
482 if (hard_regno + i < FIRST_PSEUDO_REGISTER)
483 SET_HARD_REG_BIT (ira_reg_mode_hard_regset[hard_regno][m],
484 hard_regno + i);
489 #define no_unit_alloc_regs \
490 (this_target_ira_int->x_no_unit_alloc_regs)
492 /* The function sets up the three arrays declared above. */
493 static void
494 setup_class_hard_regs (void)
496 int cl, i, hard_regno, n;
497 HARD_REG_SET processed_hard_reg_set;
499 ira_assert (SHRT_MAX >= FIRST_PSEUDO_REGISTER);
500 for (cl = (int) N_REG_CLASSES - 1; cl >= 0; cl--)
502 COPY_HARD_REG_SET (temp_hard_regset, reg_class_contents[cl]);
503 AND_COMPL_HARD_REG_SET (temp_hard_regset, no_unit_alloc_regs);
504 CLEAR_HARD_REG_SET (processed_hard_reg_set);
505 for (i = 0; i < FIRST_PSEUDO_REGISTER; i++)
507 ira_non_ordered_class_hard_regs[cl][i] = -1;
508 ira_class_hard_reg_index[cl][i] = -1;
510 for (n = 0, i = 0; i < FIRST_PSEUDO_REGISTER; i++)
512 #ifdef REG_ALLOC_ORDER
513 hard_regno = reg_alloc_order[i];
514 #else
515 hard_regno = i;
516 #endif
517 if (TEST_HARD_REG_BIT (processed_hard_reg_set, hard_regno))
518 continue;
519 SET_HARD_REG_BIT (processed_hard_reg_set, hard_regno);
520 if (! TEST_HARD_REG_BIT (temp_hard_regset, hard_regno))
521 ira_class_hard_reg_index[cl][hard_regno] = -1;
522 else
524 ira_class_hard_reg_index[cl][hard_regno] = n;
525 ira_class_hard_regs[cl][n++] = hard_regno;
528 ira_class_hard_regs_num[cl] = n;
529 for (n = 0, i = 0; i < FIRST_PSEUDO_REGISTER; i++)
530 if (TEST_HARD_REG_BIT (temp_hard_regset, i))
531 ira_non_ordered_class_hard_regs[cl][n++] = i;
532 ira_assert (ira_class_hard_regs_num[cl] == n);
536 /* Set up global variables defining info about hard registers for the
537 allocation. These depend on USE_HARD_FRAME_P whose TRUE value means
538 that we can use the hard frame pointer for the allocation. */
539 static void
540 setup_alloc_regs (bool use_hard_frame_p)
542 #ifdef ADJUST_REG_ALLOC_ORDER
543 ADJUST_REG_ALLOC_ORDER;
544 #endif
545 COPY_HARD_REG_SET (no_unit_alloc_regs, fixed_reg_set);
546 if (! use_hard_frame_p)
547 SET_HARD_REG_BIT (no_unit_alloc_regs, HARD_FRAME_POINTER_REGNUM);
548 setup_class_hard_regs ();
553 #define alloc_reg_class_subclasses \
554 (this_target_ira_int->x_alloc_reg_class_subclasses)
556 /* Initialize the table of subclasses of each reg class. */
557 static void
558 setup_reg_subclasses (void)
560 int i, j;
561 HARD_REG_SET temp_hard_regset2;
563 for (i = 0; i < N_REG_CLASSES; i++)
564 for (j = 0; j < N_REG_CLASSES; j++)
565 alloc_reg_class_subclasses[i][j] = LIM_REG_CLASSES;
567 for (i = 0; i < N_REG_CLASSES; i++)
569 if (i == (int) NO_REGS)
570 continue;
572 COPY_HARD_REG_SET (temp_hard_regset, reg_class_contents[i]);
573 AND_COMPL_HARD_REG_SET (temp_hard_regset, no_unit_alloc_regs);
574 if (hard_reg_set_empty_p (temp_hard_regset))
575 continue;
576 for (j = 0; j < N_REG_CLASSES; j++)
577 if (i != j)
579 enum reg_class *p;
581 COPY_HARD_REG_SET (temp_hard_regset2, reg_class_contents[j]);
582 AND_COMPL_HARD_REG_SET (temp_hard_regset2, no_unit_alloc_regs);
583 if (! hard_reg_set_subset_p (temp_hard_regset,
584 temp_hard_regset2))
585 continue;
586 p = &alloc_reg_class_subclasses[j][0];
587 while (*p != LIM_REG_CLASSES) p++;
588 *p = (enum reg_class) i;
595 /* Set up IRA_MEMORY_MOVE_COST and IRA_MAX_MEMORY_MOVE_COST. */
596 static void
597 setup_class_subset_and_memory_move_costs (void)
599 int cl, cl2, mode, cost;
600 HARD_REG_SET temp_hard_regset2;
602 for (mode = 0; mode < MAX_MACHINE_MODE; mode++)
603 ira_memory_move_cost[mode][NO_REGS][0]
604 = ira_memory_move_cost[mode][NO_REGS][1] = SHRT_MAX;
605 for (cl = (int) N_REG_CLASSES - 1; cl >= 0; cl--)
607 if (cl != (int) NO_REGS)
608 for (mode = 0; mode < MAX_MACHINE_MODE; mode++)
610 ira_max_memory_move_cost[mode][cl][0]
611 = ira_memory_move_cost[mode][cl][0]
612 = memory_move_cost ((machine_mode) mode,
613 (reg_class_t) cl, false);
614 ira_max_memory_move_cost[mode][cl][1]
615 = ira_memory_move_cost[mode][cl][1]
616 = memory_move_cost ((machine_mode) mode,
617 (reg_class_t) cl, true);
618 /* Costs for NO_REGS are used in cost calculation on the
619 1st pass when the preferred register classes are not
620 known yet. In this case we take the best scenario. */
621 if (ira_memory_move_cost[mode][NO_REGS][0]
622 > ira_memory_move_cost[mode][cl][0])
623 ira_max_memory_move_cost[mode][NO_REGS][0]
624 = ira_memory_move_cost[mode][NO_REGS][0]
625 = ira_memory_move_cost[mode][cl][0];
626 if (ira_memory_move_cost[mode][NO_REGS][1]
627 > ira_memory_move_cost[mode][cl][1])
628 ira_max_memory_move_cost[mode][NO_REGS][1]
629 = ira_memory_move_cost[mode][NO_REGS][1]
630 = ira_memory_move_cost[mode][cl][1];
633 for (cl = (int) N_REG_CLASSES - 1; cl >= 0; cl--)
634 for (cl2 = (int) N_REG_CLASSES - 1; cl2 >= 0; cl2--)
636 COPY_HARD_REG_SET (temp_hard_regset, reg_class_contents[cl]);
637 AND_COMPL_HARD_REG_SET (temp_hard_regset, no_unit_alloc_regs);
638 COPY_HARD_REG_SET (temp_hard_regset2, reg_class_contents[cl2]);
639 AND_COMPL_HARD_REG_SET (temp_hard_regset2, no_unit_alloc_regs);
640 ira_class_subset_p[cl][cl2]
641 = hard_reg_set_subset_p (temp_hard_regset, temp_hard_regset2);
642 if (! hard_reg_set_empty_p (temp_hard_regset2)
643 && hard_reg_set_subset_p (reg_class_contents[cl2],
644 reg_class_contents[cl]))
645 for (mode = 0; mode < MAX_MACHINE_MODE; mode++)
647 cost = ira_memory_move_cost[mode][cl2][0];
648 if (cost > ira_max_memory_move_cost[mode][cl][0])
649 ira_max_memory_move_cost[mode][cl][0] = cost;
650 cost = ira_memory_move_cost[mode][cl2][1];
651 if (cost > ira_max_memory_move_cost[mode][cl][1])
652 ira_max_memory_move_cost[mode][cl][1] = cost;
655 for (cl = (int) N_REG_CLASSES - 1; cl >= 0; cl--)
656 for (mode = 0; mode < MAX_MACHINE_MODE; mode++)
658 ira_memory_move_cost[mode][cl][0]
659 = ira_max_memory_move_cost[mode][cl][0];
660 ira_memory_move_cost[mode][cl][1]
661 = ira_max_memory_move_cost[mode][cl][1];
663 setup_reg_subclasses ();
668 /* Define the following macro if allocation through malloc if
669 preferable. */
670 #define IRA_NO_OBSTACK
672 #ifndef IRA_NO_OBSTACK
673 /* Obstack used for storing all dynamic data (except bitmaps) of the
674 IRA. */
675 static struct obstack ira_obstack;
676 #endif
678 /* Obstack used for storing all bitmaps of the IRA. */
679 static struct bitmap_obstack ira_bitmap_obstack;
681 /* Allocate memory of size LEN for IRA data. */
682 void *
683 ira_allocate (size_t len)
685 void *res;
687 #ifndef IRA_NO_OBSTACK
688 res = obstack_alloc (&ira_obstack, len);
689 #else
690 res = xmalloc (len);
691 #endif
692 return res;
695 /* Free memory ADDR allocated for IRA data. */
696 void
697 ira_free (void *addr ATTRIBUTE_UNUSED)
699 #ifndef IRA_NO_OBSTACK
700 /* do nothing */
701 #else
702 free (addr);
703 #endif
707 /* Allocate and returns bitmap for IRA. */
708 bitmap
709 ira_allocate_bitmap (void)
711 return BITMAP_ALLOC (&ira_bitmap_obstack);
714 /* Free bitmap B allocated for IRA. */
715 void
716 ira_free_bitmap (bitmap b ATTRIBUTE_UNUSED)
718 /* do nothing */
723 /* Output information about allocation of all allocnos (except for
724 caps) into file F. */
725 void
726 ira_print_disposition (FILE *f)
728 int i, n, max_regno;
729 ira_allocno_t a;
730 basic_block bb;
732 fprintf (f, "Disposition:");
733 max_regno = max_reg_num ();
734 for (n = 0, i = FIRST_PSEUDO_REGISTER; i < max_regno; i++)
735 for (a = ira_regno_allocno_map[i];
736 a != NULL;
737 a = ALLOCNO_NEXT_REGNO_ALLOCNO (a))
739 if (n % 4 == 0)
740 fprintf (f, "\n");
741 n++;
742 fprintf (f, " %4d:r%-4d", ALLOCNO_NUM (a), ALLOCNO_REGNO (a));
743 if ((bb = ALLOCNO_LOOP_TREE_NODE (a)->bb) != NULL)
744 fprintf (f, "b%-3d", bb->index);
745 else
746 fprintf (f, "l%-3d", ALLOCNO_LOOP_TREE_NODE (a)->loop_num);
747 if (ALLOCNO_HARD_REGNO (a) >= 0)
748 fprintf (f, " %3d", ALLOCNO_HARD_REGNO (a));
749 else
750 fprintf (f, " mem");
752 fprintf (f, "\n");
755 /* Outputs information about allocation of all allocnos into
756 stderr. */
757 void
758 ira_debug_disposition (void)
760 ira_print_disposition (stderr);
765 /* Set up ira_stack_reg_pressure_class which is the biggest pressure
766 register class containing stack registers or NO_REGS if there are
767 no stack registers. To find this class, we iterate through all
768 register pressure classes and choose the first register pressure
769 class containing all the stack registers and having the biggest
770 size. */
771 static void
772 setup_stack_reg_pressure_class (void)
774 ira_stack_reg_pressure_class = NO_REGS;
775 #ifdef STACK_REGS
777 int i, best, size;
778 enum reg_class cl;
779 HARD_REG_SET temp_hard_regset2;
781 CLEAR_HARD_REG_SET (temp_hard_regset);
782 for (i = FIRST_STACK_REG; i <= LAST_STACK_REG; i++)
783 SET_HARD_REG_BIT (temp_hard_regset, i);
784 best = 0;
785 for (i = 0; i < ira_pressure_classes_num; i++)
787 cl = ira_pressure_classes[i];
788 COPY_HARD_REG_SET (temp_hard_regset2, temp_hard_regset);
789 AND_HARD_REG_SET (temp_hard_regset2, reg_class_contents[cl]);
790 size = hard_reg_set_size (temp_hard_regset2);
791 if (best < size)
793 best = size;
794 ira_stack_reg_pressure_class = cl;
798 #endif
801 /* Find pressure classes which are register classes for which we
802 calculate register pressure in IRA, register pressure sensitive
803 insn scheduling, and register pressure sensitive loop invariant
804 motion.
806 To make register pressure calculation easy, we always use
807 non-intersected register pressure classes. A move of hard
808 registers from one register pressure class is not more expensive
809 than load and store of the hard registers. Most likely an allocno
810 class will be a subset of a register pressure class and in many
811 cases a register pressure class. That makes usage of register
812 pressure classes a good approximation to find a high register
813 pressure. */
814 static void
815 setup_pressure_classes (void)
817 int cost, i, n, curr;
818 int cl, cl2;
819 enum reg_class pressure_classes[N_REG_CLASSES];
820 int m;
821 HARD_REG_SET temp_hard_regset2;
822 bool insert_p;
824 n = 0;
825 for (cl = 0; cl < N_REG_CLASSES; cl++)
827 if (ira_class_hard_regs_num[cl] == 0)
828 continue;
829 if (ira_class_hard_regs_num[cl] != 1
830 /* A register class without subclasses may contain a few
831 hard registers and movement between them is costly
832 (e.g. SPARC FPCC registers). We still should consider it
833 as a candidate for a pressure class. */
834 && alloc_reg_class_subclasses[cl][0] < cl)
836 /* Check that the moves between any hard registers of the
837 current class are not more expensive for a legal mode
838 than load/store of the hard registers of the current
839 class. Such class is a potential candidate to be a
840 register pressure class. */
841 for (m = 0; m < NUM_MACHINE_MODES; m++)
843 COPY_HARD_REG_SET (temp_hard_regset, reg_class_contents[cl]);
844 AND_COMPL_HARD_REG_SET (temp_hard_regset, no_unit_alloc_regs);
845 AND_COMPL_HARD_REG_SET (temp_hard_regset,
846 ira_prohibited_class_mode_regs[cl][m]);
847 if (hard_reg_set_empty_p (temp_hard_regset))
848 continue;
849 ira_init_register_move_cost_if_necessary ((machine_mode) m);
850 cost = ira_register_move_cost[m][cl][cl];
851 if (cost <= ira_max_memory_move_cost[m][cl][1]
852 || cost <= ira_max_memory_move_cost[m][cl][0])
853 break;
855 if (m >= NUM_MACHINE_MODES)
856 continue;
858 curr = 0;
859 insert_p = true;
860 COPY_HARD_REG_SET (temp_hard_regset, reg_class_contents[cl]);
861 AND_COMPL_HARD_REG_SET (temp_hard_regset, no_unit_alloc_regs);
862 /* Remove so far added pressure classes which are subset of the
863 current candidate class. Prefer GENERAL_REGS as a pressure
864 register class to another class containing the same
865 allocatable hard registers. We do this because machine
866 dependent cost hooks might give wrong costs for the latter
867 class but always give the right cost for the former class
868 (GENERAL_REGS). */
869 for (i = 0; i < n; i++)
871 cl2 = pressure_classes[i];
872 COPY_HARD_REG_SET (temp_hard_regset2, reg_class_contents[cl2]);
873 AND_COMPL_HARD_REG_SET (temp_hard_regset2, no_unit_alloc_regs);
874 if (hard_reg_set_subset_p (temp_hard_regset, temp_hard_regset2)
875 && (! hard_reg_set_equal_p (temp_hard_regset, temp_hard_regset2)
876 || cl2 == (int) GENERAL_REGS))
878 pressure_classes[curr++] = (enum reg_class) cl2;
879 insert_p = false;
880 continue;
882 if (hard_reg_set_subset_p (temp_hard_regset2, temp_hard_regset)
883 && (! hard_reg_set_equal_p (temp_hard_regset2, temp_hard_regset)
884 || cl == (int) GENERAL_REGS))
885 continue;
886 if (hard_reg_set_equal_p (temp_hard_regset2, temp_hard_regset))
887 insert_p = false;
888 pressure_classes[curr++] = (enum reg_class) cl2;
890 /* If the current candidate is a subset of a so far added
891 pressure class, don't add it to the list of the pressure
892 classes. */
893 if (insert_p)
894 pressure_classes[curr++] = (enum reg_class) cl;
895 n = curr;
897 #ifdef ENABLE_IRA_CHECKING
899 HARD_REG_SET ignore_hard_regs;
901 /* Check pressure classes correctness: here we check that hard
902 registers from all register pressure classes contains all hard
903 registers available for the allocation. */
904 CLEAR_HARD_REG_SET (temp_hard_regset);
905 CLEAR_HARD_REG_SET (temp_hard_regset2);
906 COPY_HARD_REG_SET (ignore_hard_regs, no_unit_alloc_regs);
907 for (cl = 0; cl < LIM_REG_CLASSES; cl++)
909 /* For some targets (like MIPS with MD_REGS), there are some
910 classes with hard registers available for allocation but
911 not able to hold value of any mode. */
912 for (m = 0; m < NUM_MACHINE_MODES; m++)
913 if (contains_reg_of_mode[cl][m])
914 break;
915 if (m >= NUM_MACHINE_MODES)
917 IOR_HARD_REG_SET (ignore_hard_regs, reg_class_contents[cl]);
918 continue;
920 for (i = 0; i < n; i++)
921 if ((int) pressure_classes[i] == cl)
922 break;
923 IOR_HARD_REG_SET (temp_hard_regset2, reg_class_contents[cl]);
924 if (i < n)
925 IOR_HARD_REG_SET (temp_hard_regset, reg_class_contents[cl]);
927 for (i = 0; i < FIRST_PSEUDO_REGISTER; i++)
928 /* Some targets (like SPARC with ICC reg) have allocatable regs
929 for which no reg class is defined. */
930 if (REGNO_REG_CLASS (i) == NO_REGS)
931 SET_HARD_REG_BIT (ignore_hard_regs, i);
932 AND_COMPL_HARD_REG_SET (temp_hard_regset, ignore_hard_regs);
933 AND_COMPL_HARD_REG_SET (temp_hard_regset2, ignore_hard_regs);
934 ira_assert (hard_reg_set_subset_p (temp_hard_regset2, temp_hard_regset));
936 #endif
937 ira_pressure_classes_num = 0;
938 for (i = 0; i < n; i++)
940 cl = (int) pressure_classes[i];
941 ira_reg_pressure_class_p[cl] = true;
942 ira_pressure_classes[ira_pressure_classes_num++] = (enum reg_class) cl;
944 setup_stack_reg_pressure_class ();
947 /* Set up IRA_UNIFORM_CLASS_P. Uniform class is a register class
948 whose register move cost between any registers of the class is the
949 same as for all its subclasses. We use the data to speed up the
950 2nd pass of calculations of allocno costs. */
951 static void
952 setup_uniform_class_p (void)
954 int i, cl, cl2, m;
956 for (cl = 0; cl < N_REG_CLASSES; cl++)
958 ira_uniform_class_p[cl] = false;
959 if (ira_class_hard_regs_num[cl] == 0)
960 continue;
961 /* We can not use alloc_reg_class_subclasses here because move
962 cost hooks does not take into account that some registers are
963 unavailable for the subtarget. E.g. for i686, INT_SSE_REGS
964 is element of alloc_reg_class_subclasses for GENERAL_REGS
965 because SSE regs are unavailable. */
966 for (i = 0; (cl2 = reg_class_subclasses[cl][i]) != LIM_REG_CLASSES; i++)
968 if (ira_class_hard_regs_num[cl2] == 0)
969 continue;
970 for (m = 0; m < NUM_MACHINE_MODES; m++)
971 if (contains_reg_of_mode[cl][m] && contains_reg_of_mode[cl2][m])
973 ira_init_register_move_cost_if_necessary ((machine_mode) m);
974 if (ira_register_move_cost[m][cl][cl]
975 != ira_register_move_cost[m][cl2][cl2])
976 break;
978 if (m < NUM_MACHINE_MODES)
979 break;
981 if (cl2 == LIM_REG_CLASSES)
982 ira_uniform_class_p[cl] = true;
986 /* Set up IRA_ALLOCNO_CLASSES, IRA_ALLOCNO_CLASSES_NUM,
987 IRA_IMPORTANT_CLASSES, and IRA_IMPORTANT_CLASSES_NUM.
989 Target may have many subtargets and not all target hard registers can
990 be used for allocation, e.g. x86 port in 32-bit mode can not use
991 hard registers introduced in x86-64 like r8-r15). Some classes
992 might have the same allocatable hard registers, e.g. INDEX_REGS
993 and GENERAL_REGS in x86 port in 32-bit mode. To decrease different
994 calculations efforts we introduce allocno classes which contain
995 unique non-empty sets of allocatable hard-registers.
997 Pseudo class cost calculation in ira-costs.c is very expensive.
998 Therefore we are trying to decrease number of classes involved in
999 such calculation. Register classes used in the cost calculation
1000 are called important classes. They are allocno classes and other
1001 non-empty classes whose allocatable hard register sets are inside
1002 of an allocno class hard register set. From the first sight, it
1003 looks like that they are just allocno classes. It is not true. In
1004 example of x86-port in 32-bit mode, allocno classes will contain
1005 GENERAL_REGS but not LEGACY_REGS (because allocatable hard
1006 registers are the same for the both classes). The important
1007 classes will contain GENERAL_REGS and LEGACY_REGS. It is done
1008 because a machine description insn constraint may refers for
1009 LEGACY_REGS and code in ira-costs.c is mostly base on investigation
1010 of the insn constraints. */
1011 static void
1012 setup_allocno_and_important_classes (void)
1014 int i, j, n, cl;
1015 bool set_p;
1016 HARD_REG_SET temp_hard_regset2;
1017 static enum reg_class classes[LIM_REG_CLASSES + 1];
1019 n = 0;
1020 /* Collect classes which contain unique sets of allocatable hard
1021 registers. Prefer GENERAL_REGS to other classes containing the
1022 same set of hard registers. */
1023 for (i = 0; i < LIM_REG_CLASSES; i++)
1025 COPY_HARD_REG_SET (temp_hard_regset, reg_class_contents[i]);
1026 AND_COMPL_HARD_REG_SET (temp_hard_regset, no_unit_alloc_regs);
1027 for (j = 0; j < n; j++)
1029 cl = classes[j];
1030 COPY_HARD_REG_SET (temp_hard_regset2, reg_class_contents[cl]);
1031 AND_COMPL_HARD_REG_SET (temp_hard_regset2,
1032 no_unit_alloc_regs);
1033 if (hard_reg_set_equal_p (temp_hard_regset,
1034 temp_hard_regset2))
1035 break;
1037 if (j >= n)
1038 classes[n++] = (enum reg_class) i;
1039 else if (i == GENERAL_REGS)
1040 /* Prefer general regs. For i386 example, it means that
1041 we prefer GENERAL_REGS over INDEX_REGS or LEGACY_REGS
1042 (all of them consists of the same available hard
1043 registers). */
1044 classes[j] = (enum reg_class) i;
1046 classes[n] = LIM_REG_CLASSES;
1048 /* Set up classes which can be used for allocnos as classes
1049 containing non-empty unique sets of allocatable hard
1050 registers. */
1051 ira_allocno_classes_num = 0;
1052 for (i = 0; (cl = classes[i]) != LIM_REG_CLASSES; i++)
1053 if (ira_class_hard_regs_num[cl] > 0)
1054 ira_allocno_classes[ira_allocno_classes_num++] = (enum reg_class) cl;
1055 ira_important_classes_num = 0;
1056 /* Add non-allocno classes containing to non-empty set of
1057 allocatable hard regs. */
1058 for (cl = 0; cl < N_REG_CLASSES; cl++)
1059 if (ira_class_hard_regs_num[cl] > 0)
1061 COPY_HARD_REG_SET (temp_hard_regset, reg_class_contents[cl]);
1062 AND_COMPL_HARD_REG_SET (temp_hard_regset, no_unit_alloc_regs);
1063 set_p = false;
1064 for (j = 0; j < ira_allocno_classes_num; j++)
1066 COPY_HARD_REG_SET (temp_hard_regset2,
1067 reg_class_contents[ira_allocno_classes[j]]);
1068 AND_COMPL_HARD_REG_SET (temp_hard_regset2, no_unit_alloc_regs);
1069 if ((enum reg_class) cl == ira_allocno_classes[j])
1070 break;
1071 else if (hard_reg_set_subset_p (temp_hard_regset,
1072 temp_hard_regset2))
1073 set_p = true;
1075 if (set_p && j >= ira_allocno_classes_num)
1076 ira_important_classes[ira_important_classes_num++]
1077 = (enum reg_class) cl;
1079 /* Now add allocno classes to the important classes. */
1080 for (j = 0; j < ira_allocno_classes_num; j++)
1081 ira_important_classes[ira_important_classes_num++]
1082 = ira_allocno_classes[j];
1083 for (cl = 0; cl < N_REG_CLASSES; cl++)
1085 ira_reg_allocno_class_p[cl] = false;
1086 ira_reg_pressure_class_p[cl] = false;
1088 for (j = 0; j < ira_allocno_classes_num; j++)
1089 ira_reg_allocno_class_p[ira_allocno_classes[j]] = true;
1090 setup_pressure_classes ();
1091 setup_uniform_class_p ();
1094 /* Setup translation in CLASS_TRANSLATE of all classes into a class
1095 given by array CLASSES of length CLASSES_NUM. The function is used
1096 make translation any reg class to an allocno class or to an
1097 pressure class. This translation is necessary for some
1098 calculations when we can use only allocno or pressure classes and
1099 such translation represents an approximate representation of all
1100 classes.
1102 The translation in case when allocatable hard register set of a
1103 given class is subset of allocatable hard register set of a class
1104 in CLASSES is pretty simple. We use smallest classes from CLASSES
1105 containing a given class. If allocatable hard register set of a
1106 given class is not a subset of any corresponding set of a class
1107 from CLASSES, we use the cheapest (with load/store point of view)
1108 class from CLASSES whose set intersects with given class set. */
1109 static void
1110 setup_class_translate_array (enum reg_class *class_translate,
1111 int classes_num, enum reg_class *classes)
1113 int cl, mode;
1114 enum reg_class aclass, best_class, *cl_ptr;
1115 int i, cost, min_cost, best_cost;
1117 for (cl = 0; cl < N_REG_CLASSES; cl++)
1118 class_translate[cl] = NO_REGS;
1120 for (i = 0; i < classes_num; i++)
1122 aclass = classes[i];
1123 for (cl_ptr = &alloc_reg_class_subclasses[aclass][0];
1124 (cl = *cl_ptr) != LIM_REG_CLASSES;
1125 cl_ptr++)
1126 if (class_translate[cl] == NO_REGS)
1127 class_translate[cl] = aclass;
1128 class_translate[aclass] = aclass;
1130 /* For classes which are not fully covered by one of given classes
1131 (in other words covered by more one given class), use the
1132 cheapest class. */
1133 for (cl = 0; cl < N_REG_CLASSES; cl++)
1135 if (cl == NO_REGS || class_translate[cl] != NO_REGS)
1136 continue;
1137 best_class = NO_REGS;
1138 best_cost = INT_MAX;
1139 for (i = 0; i < classes_num; i++)
1141 aclass = classes[i];
1142 COPY_HARD_REG_SET (temp_hard_regset,
1143 reg_class_contents[aclass]);
1144 AND_HARD_REG_SET (temp_hard_regset, reg_class_contents[cl]);
1145 AND_COMPL_HARD_REG_SET (temp_hard_regset, no_unit_alloc_regs);
1146 if (! hard_reg_set_empty_p (temp_hard_regset))
1148 min_cost = INT_MAX;
1149 for (mode = 0; mode < MAX_MACHINE_MODE; mode++)
1151 cost = (ira_memory_move_cost[mode][aclass][0]
1152 + ira_memory_move_cost[mode][aclass][1]);
1153 if (min_cost > cost)
1154 min_cost = cost;
1156 if (best_class == NO_REGS || best_cost > min_cost)
1158 best_class = aclass;
1159 best_cost = min_cost;
1163 class_translate[cl] = best_class;
1167 /* Set up array IRA_ALLOCNO_CLASS_TRANSLATE and
1168 IRA_PRESSURE_CLASS_TRANSLATE. */
1169 static void
1170 setup_class_translate (void)
1172 setup_class_translate_array (ira_allocno_class_translate,
1173 ira_allocno_classes_num, ira_allocno_classes);
1174 setup_class_translate_array (ira_pressure_class_translate,
1175 ira_pressure_classes_num, ira_pressure_classes);
1178 /* Order numbers of allocno classes in original target allocno class
1179 array, -1 for non-allocno classes. */
1180 static int allocno_class_order[N_REG_CLASSES];
1182 /* The function used to sort the important classes. */
1183 static int
1184 comp_reg_classes_func (const void *v1p, const void *v2p)
1186 enum reg_class cl1 = *(const enum reg_class *) v1p;
1187 enum reg_class cl2 = *(const enum reg_class *) v2p;
1188 enum reg_class tcl1, tcl2;
1189 int diff;
1191 tcl1 = ira_allocno_class_translate[cl1];
1192 tcl2 = ira_allocno_class_translate[cl2];
1193 if (tcl1 != NO_REGS && tcl2 != NO_REGS
1194 && (diff = allocno_class_order[tcl1] - allocno_class_order[tcl2]) != 0)
1195 return diff;
1196 return (int) cl1 - (int) cl2;
1199 /* For correct work of function setup_reg_class_relation we need to
1200 reorder important classes according to the order of their allocno
1201 classes. It places important classes containing the same
1202 allocatable hard register set adjacent to each other and allocno
1203 class with the allocatable hard register set right after the other
1204 important classes with the same set.
1206 In example from comments of function
1207 setup_allocno_and_important_classes, it places LEGACY_REGS and
1208 GENERAL_REGS close to each other and GENERAL_REGS is after
1209 LEGACY_REGS. */
1210 static void
1211 reorder_important_classes (void)
1213 int i;
1215 for (i = 0; i < N_REG_CLASSES; i++)
1216 allocno_class_order[i] = -1;
1217 for (i = 0; i < ira_allocno_classes_num; i++)
1218 allocno_class_order[ira_allocno_classes[i]] = i;
1219 qsort (ira_important_classes, ira_important_classes_num,
1220 sizeof (enum reg_class), comp_reg_classes_func);
1221 for (i = 0; i < ira_important_classes_num; i++)
1222 ira_important_class_nums[ira_important_classes[i]] = i;
1225 /* Set up IRA_REG_CLASS_SUBUNION, IRA_REG_CLASS_SUPERUNION,
1226 IRA_REG_CLASS_SUPER_CLASSES, IRA_REG_CLASSES_INTERSECT, and
1227 IRA_REG_CLASSES_INTERSECT_P. For the meaning of the relations,
1228 please see corresponding comments in ira-int.h. */
1229 static void
1230 setup_reg_class_relations (void)
1232 int i, cl1, cl2, cl3;
1233 HARD_REG_SET intersection_set, union_set, temp_set2;
1234 bool important_class_p[N_REG_CLASSES];
1236 memset (important_class_p, 0, sizeof (important_class_p));
1237 for (i = 0; i < ira_important_classes_num; i++)
1238 important_class_p[ira_important_classes[i]] = true;
1239 for (cl1 = 0; cl1 < N_REG_CLASSES; cl1++)
1241 ira_reg_class_super_classes[cl1][0] = LIM_REG_CLASSES;
1242 for (cl2 = 0; cl2 < N_REG_CLASSES; cl2++)
1244 ira_reg_classes_intersect_p[cl1][cl2] = false;
1245 ira_reg_class_intersect[cl1][cl2] = NO_REGS;
1246 ira_reg_class_subset[cl1][cl2] = NO_REGS;
1247 COPY_HARD_REG_SET (temp_hard_regset, reg_class_contents[cl1]);
1248 AND_COMPL_HARD_REG_SET (temp_hard_regset, no_unit_alloc_regs);
1249 COPY_HARD_REG_SET (temp_set2, reg_class_contents[cl2]);
1250 AND_COMPL_HARD_REG_SET (temp_set2, no_unit_alloc_regs);
1251 if (hard_reg_set_empty_p (temp_hard_regset)
1252 && hard_reg_set_empty_p (temp_set2))
1254 /* The both classes have no allocatable hard registers
1255 -- take all class hard registers into account and use
1256 reg_class_subunion and reg_class_superunion. */
1257 for (i = 0;; i++)
1259 cl3 = reg_class_subclasses[cl1][i];
1260 if (cl3 == LIM_REG_CLASSES)
1261 break;
1262 if (reg_class_subset_p (ira_reg_class_intersect[cl1][cl2],
1263 (enum reg_class) cl3))
1264 ira_reg_class_intersect[cl1][cl2] = (enum reg_class) cl3;
1266 ira_reg_class_subunion[cl1][cl2] = reg_class_subunion[cl1][cl2];
1267 ira_reg_class_superunion[cl1][cl2] = reg_class_superunion[cl1][cl2];
1268 continue;
1270 ira_reg_classes_intersect_p[cl1][cl2]
1271 = hard_reg_set_intersect_p (temp_hard_regset, temp_set2);
1272 if (important_class_p[cl1] && important_class_p[cl2]
1273 && hard_reg_set_subset_p (temp_hard_regset, temp_set2))
1275 /* CL1 and CL2 are important classes and CL1 allocatable
1276 hard register set is inside of CL2 allocatable hard
1277 registers -- make CL1 a superset of CL2. */
1278 enum reg_class *p;
1280 p = &ira_reg_class_super_classes[cl1][0];
1281 while (*p != LIM_REG_CLASSES)
1282 p++;
1283 *p++ = (enum reg_class) cl2;
1284 *p = LIM_REG_CLASSES;
1286 ira_reg_class_subunion[cl1][cl2] = NO_REGS;
1287 ira_reg_class_superunion[cl1][cl2] = NO_REGS;
1288 COPY_HARD_REG_SET (intersection_set, reg_class_contents[cl1]);
1289 AND_HARD_REG_SET (intersection_set, reg_class_contents[cl2]);
1290 AND_COMPL_HARD_REG_SET (intersection_set, no_unit_alloc_regs);
1291 COPY_HARD_REG_SET (union_set, reg_class_contents[cl1]);
1292 IOR_HARD_REG_SET (union_set, reg_class_contents[cl2]);
1293 AND_COMPL_HARD_REG_SET (union_set, no_unit_alloc_regs);
1294 for (cl3 = 0; cl3 < N_REG_CLASSES; cl3++)
1296 COPY_HARD_REG_SET (temp_hard_regset, reg_class_contents[cl3]);
1297 AND_COMPL_HARD_REG_SET (temp_hard_regset, no_unit_alloc_regs);
1298 if (hard_reg_set_subset_p (temp_hard_regset, intersection_set))
1300 /* CL3 allocatable hard register set is inside of
1301 intersection of allocatable hard register sets
1302 of CL1 and CL2. */
1303 if (important_class_p[cl3])
1305 COPY_HARD_REG_SET
1306 (temp_set2,
1307 reg_class_contents
1308 [(int) ira_reg_class_intersect[cl1][cl2]]);
1309 AND_COMPL_HARD_REG_SET (temp_set2, no_unit_alloc_regs);
1310 if (! hard_reg_set_subset_p (temp_hard_regset, temp_set2)
1311 /* If the allocatable hard register sets are
1312 the same, prefer GENERAL_REGS or the
1313 smallest class for debugging
1314 purposes. */
1315 || (hard_reg_set_equal_p (temp_hard_regset, temp_set2)
1316 && (cl3 == GENERAL_REGS
1317 || ((ira_reg_class_intersect[cl1][cl2]
1318 != GENERAL_REGS)
1319 && hard_reg_set_subset_p
1320 (reg_class_contents[cl3],
1321 reg_class_contents
1322 [(int)
1323 ira_reg_class_intersect[cl1][cl2]])))))
1324 ira_reg_class_intersect[cl1][cl2] = (enum reg_class) cl3;
1326 COPY_HARD_REG_SET
1327 (temp_set2,
1328 reg_class_contents[(int) ira_reg_class_subset[cl1][cl2]]);
1329 AND_COMPL_HARD_REG_SET (temp_set2, no_unit_alloc_regs);
1330 if (! hard_reg_set_subset_p (temp_hard_regset, temp_set2)
1331 /* Ignore unavailable hard registers and prefer
1332 smallest class for debugging purposes. */
1333 || (hard_reg_set_equal_p (temp_hard_regset, temp_set2)
1334 && hard_reg_set_subset_p
1335 (reg_class_contents[cl3],
1336 reg_class_contents
1337 [(int) ira_reg_class_subset[cl1][cl2]])))
1338 ira_reg_class_subset[cl1][cl2] = (enum reg_class) cl3;
1340 if (important_class_p[cl3]
1341 && hard_reg_set_subset_p (temp_hard_regset, union_set))
1343 /* CL3 allocatable hard register set is inside of
1344 union of allocatable hard register sets of CL1
1345 and CL2. */
1346 COPY_HARD_REG_SET
1347 (temp_set2,
1348 reg_class_contents[(int) ira_reg_class_subunion[cl1][cl2]]);
1349 AND_COMPL_HARD_REG_SET (temp_set2, no_unit_alloc_regs);
1350 if (ira_reg_class_subunion[cl1][cl2] == NO_REGS
1351 || (hard_reg_set_subset_p (temp_set2, temp_hard_regset)
1353 && (! hard_reg_set_equal_p (temp_set2,
1354 temp_hard_regset)
1355 || cl3 == GENERAL_REGS
1356 /* If the allocatable hard register sets are the
1357 same, prefer GENERAL_REGS or the smallest
1358 class for debugging purposes. */
1359 || (ira_reg_class_subunion[cl1][cl2] != GENERAL_REGS
1360 && hard_reg_set_subset_p
1361 (reg_class_contents[cl3],
1362 reg_class_contents
1363 [(int) ira_reg_class_subunion[cl1][cl2]])))))
1364 ira_reg_class_subunion[cl1][cl2] = (enum reg_class) cl3;
1366 if (hard_reg_set_subset_p (union_set, temp_hard_regset))
1368 /* CL3 allocatable hard register set contains union
1369 of allocatable hard register sets of CL1 and
1370 CL2. */
1371 COPY_HARD_REG_SET
1372 (temp_set2,
1373 reg_class_contents[(int) ira_reg_class_superunion[cl1][cl2]]);
1374 AND_COMPL_HARD_REG_SET (temp_set2, no_unit_alloc_regs);
1375 if (ira_reg_class_superunion[cl1][cl2] == NO_REGS
1376 || (hard_reg_set_subset_p (temp_hard_regset, temp_set2)
1378 && (! hard_reg_set_equal_p (temp_set2,
1379 temp_hard_regset)
1380 || cl3 == GENERAL_REGS
1381 /* If the allocatable hard register sets are the
1382 same, prefer GENERAL_REGS or the smallest
1383 class for debugging purposes. */
1384 || (ira_reg_class_superunion[cl1][cl2] != GENERAL_REGS
1385 && hard_reg_set_subset_p
1386 (reg_class_contents[cl3],
1387 reg_class_contents
1388 [(int) ira_reg_class_superunion[cl1][cl2]])))))
1389 ira_reg_class_superunion[cl1][cl2] = (enum reg_class) cl3;
1396 /* Output all uniform and important classes into file F. */
1397 static void
1398 print_unform_and_important_classes (FILE *f)
1400 static const char *const reg_class_names[] = REG_CLASS_NAMES;
1401 int i, cl;
1403 fprintf (f, "Uniform classes:\n");
1404 for (cl = 0; cl < N_REG_CLASSES; cl++)
1405 if (ira_uniform_class_p[cl])
1406 fprintf (f, " %s", reg_class_names[cl]);
1407 fprintf (f, "\nImportant classes:\n");
1408 for (i = 0; i < ira_important_classes_num; i++)
1409 fprintf (f, " %s", reg_class_names[ira_important_classes[i]]);
1410 fprintf (f, "\n");
1413 /* Output all possible allocno or pressure classes and their
1414 translation map into file F. */
1415 static void
1416 print_translated_classes (FILE *f, bool pressure_p)
1418 int classes_num = (pressure_p
1419 ? ira_pressure_classes_num : ira_allocno_classes_num);
1420 enum reg_class *classes = (pressure_p
1421 ? ira_pressure_classes : ira_allocno_classes);
1422 enum reg_class *class_translate = (pressure_p
1423 ? ira_pressure_class_translate
1424 : ira_allocno_class_translate);
1425 static const char *const reg_class_names[] = REG_CLASS_NAMES;
1426 int i;
1428 fprintf (f, "%s classes:\n", pressure_p ? "Pressure" : "Allocno");
1429 for (i = 0; i < classes_num; i++)
1430 fprintf (f, " %s", reg_class_names[classes[i]]);
1431 fprintf (f, "\nClass translation:\n");
1432 for (i = 0; i < N_REG_CLASSES; i++)
1433 fprintf (f, " %s -> %s\n", reg_class_names[i],
1434 reg_class_names[class_translate[i]]);
1437 /* Output all possible allocno and translation classes and the
1438 translation maps into stderr. */
1439 void
1440 ira_debug_allocno_classes (void)
1442 print_unform_and_important_classes (stderr);
1443 print_translated_classes (stderr, false);
1444 print_translated_classes (stderr, true);
1447 /* Set up different arrays concerning class subsets, allocno and
1448 important classes. */
1449 static void
1450 find_reg_classes (void)
1452 setup_allocno_and_important_classes ();
1453 setup_class_translate ();
1454 reorder_important_classes ();
1455 setup_reg_class_relations ();
1460 /* Set up the array above. */
1461 static void
1462 setup_hard_regno_aclass (void)
1464 int i;
1466 for (i = 0; i < FIRST_PSEUDO_REGISTER; i++)
1468 #if 1
1469 ira_hard_regno_allocno_class[i]
1470 = (TEST_HARD_REG_BIT (no_unit_alloc_regs, i)
1471 ? NO_REGS
1472 : ira_allocno_class_translate[REGNO_REG_CLASS (i)]);
1473 #else
1474 int j;
1475 enum reg_class cl;
1476 ira_hard_regno_allocno_class[i] = NO_REGS;
1477 for (j = 0; j < ira_allocno_classes_num; j++)
1479 cl = ira_allocno_classes[j];
1480 if (ira_class_hard_reg_index[cl][i] >= 0)
1482 ira_hard_regno_allocno_class[i] = cl;
1483 break;
1486 #endif
1492 /* Form IRA_REG_CLASS_MAX_NREGS and IRA_REG_CLASS_MIN_NREGS maps. */
1493 static void
1494 setup_reg_class_nregs (void)
1496 int i, cl, cl2, m;
1498 for (m = 0; m < MAX_MACHINE_MODE; m++)
1500 for (cl = 0; cl < N_REG_CLASSES; cl++)
1501 ira_reg_class_max_nregs[cl][m]
1502 = ira_reg_class_min_nregs[cl][m]
1503 = targetm.class_max_nregs ((reg_class_t) cl, (machine_mode) m);
1504 for (cl = 0; cl < N_REG_CLASSES; cl++)
1505 for (i = 0;
1506 (cl2 = alloc_reg_class_subclasses[cl][i]) != LIM_REG_CLASSES;
1507 i++)
1508 if (ira_reg_class_min_nregs[cl2][m]
1509 < ira_reg_class_min_nregs[cl][m])
1510 ira_reg_class_min_nregs[cl][m] = ira_reg_class_min_nregs[cl2][m];
1516 /* Set up IRA_PROHIBITED_CLASS_MODE_REGS and IRA_CLASS_SINGLETON.
1517 This function is called once IRA_CLASS_HARD_REGS has been initialized. */
1518 static void
1519 setup_prohibited_class_mode_regs (void)
1521 int j, k, hard_regno, cl, last_hard_regno, count;
1523 for (cl = (int) N_REG_CLASSES - 1; cl >= 0; cl--)
1525 COPY_HARD_REG_SET (temp_hard_regset, reg_class_contents[cl]);
1526 AND_COMPL_HARD_REG_SET (temp_hard_regset, no_unit_alloc_regs);
1527 for (j = 0; j < NUM_MACHINE_MODES; j++)
1529 count = 0;
1530 last_hard_regno = -1;
1531 CLEAR_HARD_REG_SET (ira_prohibited_class_mode_regs[cl][j]);
1532 for (k = ira_class_hard_regs_num[cl] - 1; k >= 0; k--)
1534 hard_regno = ira_class_hard_regs[cl][k];
1535 if (! HARD_REGNO_MODE_OK (hard_regno, (machine_mode) j))
1536 SET_HARD_REG_BIT (ira_prohibited_class_mode_regs[cl][j],
1537 hard_regno);
1538 else if (in_hard_reg_set_p (temp_hard_regset,
1539 (machine_mode) j, hard_regno))
1541 last_hard_regno = hard_regno;
1542 count++;
1545 ira_class_singleton[cl][j] = (count == 1 ? last_hard_regno : -1);
1550 /* Clarify IRA_PROHIBITED_CLASS_MODE_REGS by excluding hard registers
1551 spanning from one register pressure class to another one. It is
1552 called after defining the pressure classes. */
1553 static void
1554 clarify_prohibited_class_mode_regs (void)
1556 int j, k, hard_regno, cl, pclass, nregs;
1558 for (cl = (int) N_REG_CLASSES - 1; cl >= 0; cl--)
1559 for (j = 0; j < NUM_MACHINE_MODES; j++)
1561 CLEAR_HARD_REG_SET (ira_useful_class_mode_regs[cl][j]);
1562 for (k = ira_class_hard_regs_num[cl] - 1; k >= 0; k--)
1564 hard_regno = ira_class_hard_regs[cl][k];
1565 if (TEST_HARD_REG_BIT (ira_prohibited_class_mode_regs[cl][j], hard_regno))
1566 continue;
1567 nregs = hard_regno_nregs[hard_regno][j];
1568 if (hard_regno + nregs > FIRST_PSEUDO_REGISTER)
1570 SET_HARD_REG_BIT (ira_prohibited_class_mode_regs[cl][j],
1571 hard_regno);
1572 continue;
1574 pclass = ira_pressure_class_translate[REGNO_REG_CLASS (hard_regno)];
1575 for (nregs-- ;nregs >= 0; nregs--)
1576 if (((enum reg_class) pclass
1577 != ira_pressure_class_translate[REGNO_REG_CLASS
1578 (hard_regno + nregs)]))
1580 SET_HARD_REG_BIT (ira_prohibited_class_mode_regs[cl][j],
1581 hard_regno);
1582 break;
1584 if (!TEST_HARD_REG_BIT (ira_prohibited_class_mode_regs[cl][j],
1585 hard_regno))
1586 add_to_hard_reg_set (&ira_useful_class_mode_regs[cl][j],
1587 (machine_mode) j, hard_regno);
1592 /* Allocate and initialize IRA_REGISTER_MOVE_COST, IRA_MAY_MOVE_IN_COST
1593 and IRA_MAY_MOVE_OUT_COST for MODE. */
1594 void
1595 ira_init_register_move_cost (machine_mode mode)
1597 static unsigned short last_move_cost[N_REG_CLASSES][N_REG_CLASSES];
1598 bool all_match = true;
1599 unsigned int cl1, cl2;
1601 ira_assert (ira_register_move_cost[mode] == NULL
1602 && ira_may_move_in_cost[mode] == NULL
1603 && ira_may_move_out_cost[mode] == NULL);
1604 ira_assert (have_regs_of_mode[mode]);
1605 for (cl1 = 0; cl1 < N_REG_CLASSES; cl1++)
1606 for (cl2 = 0; cl2 < N_REG_CLASSES; cl2++)
1608 int cost;
1609 if (!contains_reg_of_mode[cl1][mode]
1610 || !contains_reg_of_mode[cl2][mode])
1612 if ((ira_reg_class_max_nregs[cl1][mode]
1613 > ira_class_hard_regs_num[cl1])
1614 || (ira_reg_class_max_nregs[cl2][mode]
1615 > ira_class_hard_regs_num[cl2]))
1616 cost = 65535;
1617 else
1618 cost = (ira_memory_move_cost[mode][cl1][0]
1619 + ira_memory_move_cost[mode][cl2][1]) * 2;
1621 else
1623 cost = register_move_cost (mode, (enum reg_class) cl1,
1624 (enum reg_class) cl2);
1625 ira_assert (cost < 65535);
1627 all_match &= (last_move_cost[cl1][cl2] == cost);
1628 last_move_cost[cl1][cl2] = cost;
1630 if (all_match && last_mode_for_init_move_cost != -1)
1632 ira_register_move_cost[mode]
1633 = ira_register_move_cost[last_mode_for_init_move_cost];
1634 ira_may_move_in_cost[mode]
1635 = ira_may_move_in_cost[last_mode_for_init_move_cost];
1636 ira_may_move_out_cost[mode]
1637 = ira_may_move_out_cost[last_mode_for_init_move_cost];
1638 return;
1640 last_mode_for_init_move_cost = mode;
1641 ira_register_move_cost[mode] = XNEWVEC (move_table, N_REG_CLASSES);
1642 ira_may_move_in_cost[mode] = XNEWVEC (move_table, N_REG_CLASSES);
1643 ira_may_move_out_cost[mode] = XNEWVEC (move_table, N_REG_CLASSES);
1644 for (cl1 = 0; cl1 < N_REG_CLASSES; cl1++)
1645 for (cl2 = 0; cl2 < N_REG_CLASSES; cl2++)
1647 int cost;
1648 enum reg_class *p1, *p2;
1650 if (last_move_cost[cl1][cl2] == 65535)
1652 ira_register_move_cost[mode][cl1][cl2] = 65535;
1653 ira_may_move_in_cost[mode][cl1][cl2] = 65535;
1654 ira_may_move_out_cost[mode][cl1][cl2] = 65535;
1656 else
1658 cost = last_move_cost[cl1][cl2];
1660 for (p2 = &reg_class_subclasses[cl2][0];
1661 *p2 != LIM_REG_CLASSES; p2++)
1662 if (ira_class_hard_regs_num[*p2] > 0
1663 && (ira_reg_class_max_nregs[*p2][mode]
1664 <= ira_class_hard_regs_num[*p2]))
1665 cost = MAX (cost, ira_register_move_cost[mode][cl1][*p2]);
1667 for (p1 = &reg_class_subclasses[cl1][0];
1668 *p1 != LIM_REG_CLASSES; p1++)
1669 if (ira_class_hard_regs_num[*p1] > 0
1670 && (ira_reg_class_max_nregs[*p1][mode]
1671 <= ira_class_hard_regs_num[*p1]))
1672 cost = MAX (cost, ira_register_move_cost[mode][*p1][cl2]);
1674 ira_assert (cost <= 65535);
1675 ira_register_move_cost[mode][cl1][cl2] = cost;
1677 if (ira_class_subset_p[cl1][cl2])
1678 ira_may_move_in_cost[mode][cl1][cl2] = 0;
1679 else
1680 ira_may_move_in_cost[mode][cl1][cl2] = cost;
1682 if (ira_class_subset_p[cl2][cl1])
1683 ira_may_move_out_cost[mode][cl1][cl2] = 0;
1684 else
1685 ira_may_move_out_cost[mode][cl1][cl2] = cost;
1692 /* This is called once during compiler work. It sets up
1693 different arrays whose values don't depend on the compiled
1694 function. */
1695 void
1696 ira_init_once (void)
1698 ira_init_costs_once ();
1699 lra_init_once ();
1702 /* Free ira_max_register_move_cost, ira_may_move_in_cost and
1703 ira_may_move_out_cost for each mode. */
1704 void
1705 target_ira_int::free_register_move_costs (void)
1707 int mode, i;
1709 /* Reset move_cost and friends, making sure we only free shared
1710 table entries once. */
1711 for (mode = 0; mode < MAX_MACHINE_MODE; mode++)
1712 if (x_ira_register_move_cost[mode])
1714 for (i = 0;
1715 i < mode && (x_ira_register_move_cost[i]
1716 != x_ira_register_move_cost[mode]);
1717 i++)
1719 if (i == mode)
1721 free (x_ira_register_move_cost[mode]);
1722 free (x_ira_may_move_in_cost[mode]);
1723 free (x_ira_may_move_out_cost[mode]);
1726 memset (x_ira_register_move_cost, 0, sizeof x_ira_register_move_cost);
1727 memset (x_ira_may_move_in_cost, 0, sizeof x_ira_may_move_in_cost);
1728 memset (x_ira_may_move_out_cost, 0, sizeof x_ira_may_move_out_cost);
1729 last_mode_for_init_move_cost = -1;
1732 target_ira_int::~target_ira_int ()
1734 free_ira_costs ();
1735 free_register_move_costs ();
1738 /* This is called every time when register related information is
1739 changed. */
1740 void
1741 ira_init (void)
1743 this_target_ira_int->free_register_move_costs ();
1744 setup_reg_mode_hard_regset ();
1745 setup_alloc_regs (flag_omit_frame_pointer != 0);
1746 setup_class_subset_and_memory_move_costs ();
1747 setup_reg_class_nregs ();
1748 setup_prohibited_class_mode_regs ();
1749 find_reg_classes ();
1750 clarify_prohibited_class_mode_regs ();
1751 setup_hard_regno_aclass ();
1752 ira_init_costs ();
1756 #define ira_prohibited_mode_move_regs_initialized_p \
1757 (this_target_ira_int->x_ira_prohibited_mode_move_regs_initialized_p)
1759 /* Set up IRA_PROHIBITED_MODE_MOVE_REGS. */
1760 static void
1761 setup_prohibited_mode_move_regs (void)
1763 int i, j;
1764 rtx test_reg1, test_reg2, move_pat;
1765 rtx_insn *move_insn;
1767 if (ira_prohibited_mode_move_regs_initialized_p)
1768 return;
1769 ira_prohibited_mode_move_regs_initialized_p = true;
1770 test_reg1 = gen_rtx_REG (VOIDmode, 0);
1771 test_reg2 = gen_rtx_REG (VOIDmode, 0);
1772 move_pat = gen_rtx_SET (VOIDmode, test_reg1, test_reg2);
1773 move_insn = gen_rtx_INSN (VOIDmode, 0, 0, 0, move_pat, 0, -1, 0);
1774 for (i = 0; i < NUM_MACHINE_MODES; i++)
1776 SET_HARD_REG_SET (ira_prohibited_mode_move_regs[i]);
1777 for (j = 0; j < FIRST_PSEUDO_REGISTER; j++)
1779 if (! HARD_REGNO_MODE_OK (j, (machine_mode) i))
1780 continue;
1781 SET_REGNO_RAW (test_reg1, j);
1782 PUT_MODE (test_reg1, (machine_mode) i);
1783 SET_REGNO_RAW (test_reg2, j);
1784 PUT_MODE (test_reg2, (machine_mode) i);
1785 INSN_CODE (move_insn) = -1;
1786 recog_memoized (move_insn);
1787 if (INSN_CODE (move_insn) < 0)
1788 continue;
1789 extract_insn (move_insn);
1790 /* We don't know whether the move will be in code that is optimized
1791 for size or speed, so consider all enabled alternatives. */
1792 if (! constrain_operands (1, get_enabled_alternatives (move_insn)))
1793 continue;
1794 CLEAR_HARD_REG_BIT (ira_prohibited_mode_move_regs[i], j);
1801 /* Setup possible alternatives in ALTS for INSN. */
1802 void
1803 ira_setup_alts (rtx_insn *insn, HARD_REG_SET &alts)
1805 /* MAP nalt * nop -> start of constraints for given operand and
1806 alternative. */
1807 static vec<const char *> insn_constraints;
1808 int nop, nalt;
1809 bool curr_swapped;
1810 const char *p;
1811 rtx op;
1812 int commutative = -1;
1814 extract_insn (insn);
1815 alternative_mask preferred = get_preferred_alternatives (insn);
1816 CLEAR_HARD_REG_SET (alts);
1817 insn_constraints.release ();
1818 insn_constraints.safe_grow_cleared (recog_data.n_operands
1819 * recog_data.n_alternatives + 1);
1820 /* Check that the hard reg set is enough for holding all
1821 alternatives. It is hard to imagine the situation when the
1822 assertion is wrong. */
1823 ira_assert (recog_data.n_alternatives
1824 <= (int) MAX (sizeof (HARD_REG_ELT_TYPE) * CHAR_BIT,
1825 FIRST_PSEUDO_REGISTER));
1826 for (curr_swapped = false;; curr_swapped = true)
1828 /* Calculate some data common for all alternatives to speed up the
1829 function. */
1830 for (nop = 0; nop < recog_data.n_operands; nop++)
1832 for (nalt = 0, p = recog_data.constraints[nop];
1833 nalt < recog_data.n_alternatives;
1834 nalt++)
1836 insn_constraints[nop * recog_data.n_alternatives + nalt] = p;
1837 while (*p && *p != ',')
1838 p++;
1839 if (*p)
1840 p++;
1843 for (nalt = 0; nalt < recog_data.n_alternatives; nalt++)
1845 if (!TEST_BIT (preferred, nalt)
1846 || TEST_HARD_REG_BIT (alts, nalt))
1847 continue;
1849 for (nop = 0; nop < recog_data.n_operands; nop++)
1851 int c, len;
1853 op = recog_data.operand[nop];
1854 p = insn_constraints[nop * recog_data.n_alternatives + nalt];
1855 if (*p == 0 || *p == ',')
1856 continue;
1859 switch (c = *p, len = CONSTRAINT_LEN (c, p), c)
1861 case '#':
1862 case ',':
1863 c = '\0';
1864 case '\0':
1865 len = 0;
1866 break;
1868 case '%':
1869 /* We only support one commutative marker, the
1870 first one. We already set commutative
1871 above. */
1872 if (commutative < 0)
1873 commutative = nop;
1874 break;
1876 case '0': case '1': case '2': case '3': case '4':
1877 case '5': case '6': case '7': case '8': case '9':
1878 goto op_success;
1879 break;
1881 case 'g':
1882 goto op_success;
1883 break;
1885 default:
1887 enum constraint_num cn = lookup_constraint (p);
1888 switch (get_constraint_type (cn))
1890 case CT_REGISTER:
1891 if (reg_class_for_constraint (cn) != NO_REGS)
1892 goto op_success;
1893 break;
1895 case CT_CONST_INT:
1896 if (CONST_INT_P (op)
1897 && (insn_const_int_ok_for_constraint
1898 (INTVAL (op), cn)))
1899 goto op_success;
1900 break;
1902 case CT_ADDRESS:
1903 case CT_MEMORY:
1904 goto op_success;
1906 case CT_FIXED_FORM:
1907 if (constraint_satisfied_p (op, cn))
1908 goto op_success;
1909 break;
1911 break;
1914 while (p += len, c);
1915 break;
1916 op_success:
1919 if (nop >= recog_data.n_operands)
1920 SET_HARD_REG_BIT (alts, nalt);
1922 if (commutative < 0)
1923 break;
1924 if (curr_swapped)
1925 break;
1926 op = recog_data.operand[commutative];
1927 recog_data.operand[commutative] = recog_data.operand[commutative + 1];
1928 recog_data.operand[commutative + 1] = op;
1933 /* Return the number of the output non-early clobber operand which
1934 should be the same in any case as operand with number OP_NUM (or
1935 negative value if there is no such operand). The function takes
1936 only really possible alternatives into consideration. */
1938 ira_get_dup_out_num (int op_num, HARD_REG_SET &alts)
1940 int curr_alt, c, original, dup;
1941 bool ignore_p, use_commut_op_p;
1942 const char *str;
1944 if (op_num < 0 || recog_data.n_alternatives == 0)
1945 return -1;
1946 /* We should find duplications only for input operands. */
1947 if (recog_data.operand_type[op_num] != OP_IN)
1948 return -1;
1949 str = recog_data.constraints[op_num];
1950 use_commut_op_p = false;
1951 for (;;)
1953 rtx op = recog_data.operand[op_num];
1955 for (curr_alt = 0, ignore_p = !TEST_HARD_REG_BIT (alts, curr_alt),
1956 original = -1;;)
1958 c = *str;
1959 if (c == '\0')
1960 break;
1961 if (c == '#')
1962 ignore_p = true;
1963 else if (c == ',')
1965 curr_alt++;
1966 ignore_p = !TEST_HARD_REG_BIT (alts, curr_alt);
1968 else if (! ignore_p)
1969 switch (c)
1971 case 'g':
1972 goto fail;
1973 default:
1975 enum constraint_num cn = lookup_constraint (str);
1976 enum reg_class cl = reg_class_for_constraint (cn);
1977 if (cl != NO_REGS
1978 && !targetm.class_likely_spilled_p (cl))
1979 goto fail;
1980 if (constraint_satisfied_p (op, cn))
1981 goto fail;
1982 break;
1985 case '0': case '1': case '2': case '3': case '4':
1986 case '5': case '6': case '7': case '8': case '9':
1987 if (original != -1 && original != c)
1988 goto fail;
1989 original = c;
1990 break;
1992 str += CONSTRAINT_LEN (c, str);
1994 if (original == -1)
1995 goto fail;
1996 dup = -1;
1997 for (ignore_p = false, str = recog_data.constraints[original - '0'];
1998 *str != 0;
1999 str++)
2000 if (ignore_p)
2002 if (*str == ',')
2003 ignore_p = false;
2005 else if (*str == '#')
2006 ignore_p = true;
2007 else if (! ignore_p)
2009 if (*str == '=')
2010 dup = original - '0';
2011 /* It is better ignore an alternative with early clobber. */
2012 else if (*str == '&')
2013 goto fail;
2015 if (dup >= 0)
2016 return dup;
2017 fail:
2018 if (use_commut_op_p)
2019 break;
2020 use_commut_op_p = true;
2021 if (recog_data.constraints[op_num][0] == '%')
2022 str = recog_data.constraints[op_num + 1];
2023 else if (op_num > 0 && recog_data.constraints[op_num - 1][0] == '%')
2024 str = recog_data.constraints[op_num - 1];
2025 else
2026 break;
2028 return -1;
2033 /* Search forward to see if the source register of a copy insn dies
2034 before either it or the destination register is modified, but don't
2035 scan past the end of the basic block. If so, we can replace the
2036 source with the destination and let the source die in the copy
2037 insn.
2039 This will reduce the number of registers live in that range and may
2040 enable the destination and the source coalescing, thus often saving
2041 one register in addition to a register-register copy. */
2043 static void
2044 decrease_live_ranges_number (void)
2046 basic_block bb;
2047 rtx_insn *insn;
2048 rtx set, src, dest, dest_death, q, note;
2049 rtx_insn *p;
2050 int sregno, dregno;
2052 if (! flag_expensive_optimizations)
2053 return;
2055 if (ira_dump_file)
2056 fprintf (ira_dump_file, "Starting decreasing number of live ranges...\n");
2058 FOR_EACH_BB_FN (bb, cfun)
2059 FOR_BB_INSNS (bb, insn)
2061 set = single_set (insn);
2062 if (! set)
2063 continue;
2064 src = SET_SRC (set);
2065 dest = SET_DEST (set);
2066 if (! REG_P (src) || ! REG_P (dest)
2067 || find_reg_note (insn, REG_DEAD, src))
2068 continue;
2069 sregno = REGNO (src);
2070 dregno = REGNO (dest);
2072 /* We don't want to mess with hard regs if register classes
2073 are small. */
2074 if (sregno == dregno
2075 || (targetm.small_register_classes_for_mode_p (GET_MODE (src))
2076 && (sregno < FIRST_PSEUDO_REGISTER
2077 || dregno < FIRST_PSEUDO_REGISTER))
2078 /* We don't see all updates to SP if they are in an
2079 auto-inc memory reference, so we must disallow this
2080 optimization on them. */
2081 || sregno == STACK_POINTER_REGNUM
2082 || dregno == STACK_POINTER_REGNUM)
2083 continue;
2085 dest_death = NULL_RTX;
2087 for (p = NEXT_INSN (insn); p; p = NEXT_INSN (p))
2089 if (! INSN_P (p))
2090 continue;
2091 if (BLOCK_FOR_INSN (p) != bb)
2092 break;
2094 if (reg_set_p (src, p) || reg_set_p (dest, p)
2095 /* If SRC is an asm-declared register, it must not be
2096 replaced in any asm. Unfortunately, the REG_EXPR
2097 tree for the asm variable may be absent in the SRC
2098 rtx, so we can't check the actual register
2099 declaration easily (the asm operand will have it,
2100 though). To avoid complicating the test for a rare
2101 case, we just don't perform register replacement
2102 for a hard reg mentioned in an asm. */
2103 || (sregno < FIRST_PSEUDO_REGISTER
2104 && asm_noperands (PATTERN (p)) >= 0
2105 && reg_overlap_mentioned_p (src, PATTERN (p)))
2106 /* Don't change hard registers used by a call. */
2107 || (CALL_P (p) && sregno < FIRST_PSEUDO_REGISTER
2108 && find_reg_fusage (p, USE, src))
2109 /* Don't change a USE of a register. */
2110 || (GET_CODE (PATTERN (p)) == USE
2111 && reg_overlap_mentioned_p (src, XEXP (PATTERN (p), 0))))
2112 break;
2114 /* See if all of SRC dies in P. This test is slightly
2115 more conservative than it needs to be. */
2116 if ((note = find_regno_note (p, REG_DEAD, sregno))
2117 && GET_MODE (XEXP (note, 0)) == GET_MODE (src))
2119 int failed = 0;
2121 /* We can do the optimization. Scan forward from INSN
2122 again, replacing regs as we go. Set FAILED if a
2123 replacement can't be done. In that case, we can't
2124 move the death note for SRC. This should be
2125 rare. */
2127 /* Set to stop at next insn. */
2128 for (q = next_real_insn (insn);
2129 q != next_real_insn (p);
2130 q = next_real_insn (q))
2132 if (reg_overlap_mentioned_p (src, PATTERN (q)))
2134 /* If SRC is a hard register, we might miss
2135 some overlapping registers with
2136 validate_replace_rtx, so we would have to
2137 undo it. We can't if DEST is present in
2138 the insn, so fail in that combination of
2139 cases. */
2140 if (sregno < FIRST_PSEUDO_REGISTER
2141 && reg_mentioned_p (dest, PATTERN (q)))
2142 failed = 1;
2144 /* Attempt to replace all uses. */
2145 else if (!validate_replace_rtx (src, dest, q))
2146 failed = 1;
2148 /* If this succeeded, but some part of the
2149 register is still present, undo the
2150 replacement. */
2151 else if (sregno < FIRST_PSEUDO_REGISTER
2152 && reg_overlap_mentioned_p (src, PATTERN (q)))
2154 validate_replace_rtx (dest, src, q);
2155 failed = 1;
2159 /* If DEST dies here, remove the death note and
2160 save it for later. Make sure ALL of DEST dies
2161 here; again, this is overly conservative. */
2162 if (! dest_death
2163 && (dest_death = find_regno_note (q, REG_DEAD, dregno)))
2165 if (GET_MODE (XEXP (dest_death, 0)) == GET_MODE (dest))
2166 remove_note (q, dest_death);
2167 else
2169 failed = 1;
2170 dest_death = 0;
2175 if (! failed)
2177 /* Move death note of SRC from P to INSN. */
2178 remove_note (p, note);
2179 XEXP (note, 1) = REG_NOTES (insn);
2180 REG_NOTES (insn) = note;
2183 /* DEST is also dead if INSN has a REG_UNUSED note for
2184 DEST. */
2185 if (! dest_death
2186 && (dest_death
2187 = find_regno_note (insn, REG_UNUSED, dregno)))
2189 PUT_REG_NOTE_KIND (dest_death, REG_DEAD);
2190 remove_note (insn, dest_death);
2193 /* Put death note of DEST on P if we saw it die. */
2194 if (dest_death)
2196 XEXP (dest_death, 1) = REG_NOTES (p);
2197 REG_NOTES (p) = dest_death;
2199 break;
2202 /* If SRC is a hard register which is set or killed in
2203 some other way, we can't do this optimization. */
2204 else if (sregno < FIRST_PSEUDO_REGISTER && dead_or_set_p (p, src))
2205 break;
2212 /* Return nonzero if REGNO is a particularly bad choice for reloading X. */
2213 static bool
2214 ira_bad_reload_regno_1 (int regno, rtx x)
2216 int x_regno, n, i;
2217 ira_allocno_t a;
2218 enum reg_class pref;
2220 /* We only deal with pseudo regs. */
2221 if (! x || GET_CODE (x) != REG)
2222 return false;
2224 x_regno = REGNO (x);
2225 if (x_regno < FIRST_PSEUDO_REGISTER)
2226 return false;
2228 /* If the pseudo prefers REGNO explicitly, then do not consider
2229 REGNO a bad spill choice. */
2230 pref = reg_preferred_class (x_regno);
2231 if (reg_class_size[pref] == 1)
2232 return !TEST_HARD_REG_BIT (reg_class_contents[pref], regno);
2234 /* If the pseudo conflicts with REGNO, then we consider REGNO a
2235 poor choice for a reload regno. */
2236 a = ira_regno_allocno_map[x_regno];
2237 n = ALLOCNO_NUM_OBJECTS (a);
2238 for (i = 0; i < n; i++)
2240 ira_object_t obj = ALLOCNO_OBJECT (a, i);
2241 if (TEST_HARD_REG_BIT (OBJECT_TOTAL_CONFLICT_HARD_REGS (obj), regno))
2242 return true;
2244 return false;
2247 /* Return nonzero if REGNO is a particularly bad choice for reloading
2248 IN or OUT. */
2249 bool
2250 ira_bad_reload_regno (int regno, rtx in, rtx out)
2252 return (ira_bad_reload_regno_1 (regno, in)
2253 || ira_bad_reload_regno_1 (regno, out));
2256 /* Add register clobbers from asm statements. */
2257 static void
2258 compute_regs_asm_clobbered (void)
2260 basic_block bb;
2262 FOR_EACH_BB_FN (bb, cfun)
2264 rtx_insn *insn;
2265 FOR_BB_INSNS_REVERSE (bb, insn)
2267 df_ref def;
2269 if (NONDEBUG_INSN_P (insn) && extract_asm_operands (PATTERN (insn)))
2270 FOR_EACH_INSN_DEF (def, insn)
2272 unsigned int dregno = DF_REF_REGNO (def);
2273 if (HARD_REGISTER_NUM_P (dregno))
2274 add_to_hard_reg_set (&crtl->asm_clobbers,
2275 GET_MODE (DF_REF_REAL_REG (def)),
2276 dregno);
2283 /* Set up ELIMINABLE_REGSET, IRA_NO_ALLOC_REGS, and
2284 REGS_EVER_LIVE. */
2285 void
2286 ira_setup_eliminable_regset (void)
2288 #ifdef ELIMINABLE_REGS
2289 int i;
2290 static const struct {const int from, to; } eliminables[] = ELIMINABLE_REGS;
2291 #endif
2292 /* FIXME: If EXIT_IGNORE_STACK is set, we will not save and restore
2293 sp for alloca. So we can't eliminate the frame pointer in that
2294 case. At some point, we should improve this by emitting the
2295 sp-adjusting insns for this case. */
2296 frame_pointer_needed
2297 = (! flag_omit_frame_pointer
2298 || (cfun->calls_alloca && EXIT_IGNORE_STACK)
2299 /* We need the frame pointer to catch stack overflow exceptions
2300 if the stack pointer is moving. */
2301 || (flag_stack_check && STACK_CHECK_MOVING_SP)
2302 || crtl->accesses_prior_frames
2303 || (SUPPORTS_STACK_ALIGNMENT && crtl->stack_realign_needed)
2304 /* We need a frame pointer for all Cilk Plus functions that use
2305 Cilk keywords. */
2306 || (flag_cilkplus && cfun->is_cilk_function)
2307 || targetm.frame_pointer_required ());
2309 /* The chance that FRAME_POINTER_NEEDED is changed from inspecting
2310 RTL is very small. So if we use frame pointer for RA and RTL
2311 actually prevents this, we will spill pseudos assigned to the
2312 frame pointer in LRA. */
2314 if (frame_pointer_needed)
2315 df_set_regs_ever_live (HARD_FRAME_POINTER_REGNUM, true);
2317 COPY_HARD_REG_SET (ira_no_alloc_regs, no_unit_alloc_regs);
2318 CLEAR_HARD_REG_SET (eliminable_regset);
2320 compute_regs_asm_clobbered ();
2322 /* Build the regset of all eliminable registers and show we can't
2323 use those that we already know won't be eliminated. */
2324 #ifdef ELIMINABLE_REGS
2325 for (i = 0; i < (int) ARRAY_SIZE (eliminables); i++)
2327 bool cannot_elim
2328 = (! targetm.can_eliminate (eliminables[i].from, eliminables[i].to)
2329 || (eliminables[i].to == STACK_POINTER_REGNUM && frame_pointer_needed));
2331 if (!TEST_HARD_REG_BIT (crtl->asm_clobbers, eliminables[i].from))
2333 SET_HARD_REG_BIT (eliminable_regset, eliminables[i].from);
2335 if (cannot_elim)
2336 SET_HARD_REG_BIT (ira_no_alloc_regs, eliminables[i].from);
2338 else if (cannot_elim)
2339 error ("%s cannot be used in asm here",
2340 reg_names[eliminables[i].from]);
2341 else
2342 df_set_regs_ever_live (eliminables[i].from, true);
2344 if (!HARD_FRAME_POINTER_IS_FRAME_POINTER)
2346 if (!TEST_HARD_REG_BIT (crtl->asm_clobbers, HARD_FRAME_POINTER_REGNUM))
2348 SET_HARD_REG_BIT (eliminable_regset, HARD_FRAME_POINTER_REGNUM);
2349 if (frame_pointer_needed)
2350 SET_HARD_REG_BIT (ira_no_alloc_regs, HARD_FRAME_POINTER_REGNUM);
2352 else if (frame_pointer_needed)
2353 error ("%s cannot be used in asm here",
2354 reg_names[HARD_FRAME_POINTER_REGNUM]);
2355 else
2356 df_set_regs_ever_live (HARD_FRAME_POINTER_REGNUM, true);
2359 #else
2360 if (!TEST_HARD_REG_BIT (crtl->asm_clobbers, HARD_FRAME_POINTER_REGNUM))
2362 SET_HARD_REG_BIT (eliminable_regset, FRAME_POINTER_REGNUM);
2363 if (frame_pointer_needed)
2364 SET_HARD_REG_BIT (ira_no_alloc_regs, FRAME_POINTER_REGNUM);
2366 else if (frame_pointer_needed)
2367 error ("%s cannot be used in asm here", reg_names[FRAME_POINTER_REGNUM]);
2368 else
2369 df_set_regs_ever_live (FRAME_POINTER_REGNUM, true);
2370 #endif
2375 /* Vector of substitutions of register numbers,
2376 used to map pseudo regs into hardware regs.
2377 This is set up as a result of register allocation.
2378 Element N is the hard reg assigned to pseudo reg N,
2379 or is -1 if no hard reg was assigned.
2380 If N is a hard reg number, element N is N. */
2381 short *reg_renumber;
2383 /* Set up REG_RENUMBER and CALLER_SAVE_NEEDED (used by reload) from
2384 the allocation found by IRA. */
2385 static void
2386 setup_reg_renumber (void)
2388 int regno, hard_regno;
2389 ira_allocno_t a;
2390 ira_allocno_iterator ai;
2392 caller_save_needed = 0;
2393 FOR_EACH_ALLOCNO (a, ai)
2395 if (ira_use_lra_p && ALLOCNO_CAP_MEMBER (a) != NULL)
2396 continue;
2397 /* There are no caps at this point. */
2398 ira_assert (ALLOCNO_CAP_MEMBER (a) == NULL);
2399 if (! ALLOCNO_ASSIGNED_P (a))
2400 /* It can happen if A is not referenced but partially anticipated
2401 somewhere in a region. */
2402 ALLOCNO_ASSIGNED_P (a) = true;
2403 ira_free_allocno_updated_costs (a);
2404 hard_regno = ALLOCNO_HARD_REGNO (a);
2405 regno = ALLOCNO_REGNO (a);
2406 reg_renumber[regno] = (hard_regno < 0 ? -1 : hard_regno);
2407 if (hard_regno >= 0)
2409 int i, nwords;
2410 enum reg_class pclass;
2411 ira_object_t obj;
2413 pclass = ira_pressure_class_translate[REGNO_REG_CLASS (hard_regno)];
2414 nwords = ALLOCNO_NUM_OBJECTS (a);
2415 for (i = 0; i < nwords; i++)
2417 obj = ALLOCNO_OBJECT (a, i);
2418 IOR_COMPL_HARD_REG_SET (OBJECT_TOTAL_CONFLICT_HARD_REGS (obj),
2419 reg_class_contents[pclass]);
2421 if (ALLOCNO_CALLS_CROSSED_NUM (a) != 0
2422 && ira_hard_reg_set_intersection_p (hard_regno, ALLOCNO_MODE (a),
2423 call_used_reg_set))
2425 ira_assert (!optimize || flag_caller_saves
2426 || (ALLOCNO_CALLS_CROSSED_NUM (a)
2427 == ALLOCNO_CHEAP_CALLS_CROSSED_NUM (a))
2428 || regno >= ira_reg_equiv_len
2429 || ira_equiv_no_lvalue_p (regno));
2430 caller_save_needed = 1;
2436 /* Set up allocno assignment flags for further allocation
2437 improvements. */
2438 static void
2439 setup_allocno_assignment_flags (void)
2441 int hard_regno;
2442 ira_allocno_t a;
2443 ira_allocno_iterator ai;
2445 FOR_EACH_ALLOCNO (a, ai)
2447 if (! ALLOCNO_ASSIGNED_P (a))
2448 /* It can happen if A is not referenced but partially anticipated
2449 somewhere in a region. */
2450 ira_free_allocno_updated_costs (a);
2451 hard_regno = ALLOCNO_HARD_REGNO (a);
2452 /* Don't assign hard registers to allocnos which are destination
2453 of removed store at the end of loop. It has no sense to keep
2454 the same value in different hard registers. It is also
2455 impossible to assign hard registers correctly to such
2456 allocnos because the cost info and info about intersected
2457 calls are incorrect for them. */
2458 ALLOCNO_ASSIGNED_P (a) = (hard_regno >= 0
2459 || ALLOCNO_EMIT_DATA (a)->mem_optimized_dest_p
2460 || (ALLOCNO_MEMORY_COST (a)
2461 - ALLOCNO_CLASS_COST (a)) < 0);
2462 ira_assert
2463 (hard_regno < 0
2464 || ira_hard_reg_in_set_p (hard_regno, ALLOCNO_MODE (a),
2465 reg_class_contents[ALLOCNO_CLASS (a)]));
2469 /* Evaluate overall allocation cost and the costs for using hard
2470 registers and memory for allocnos. */
2471 static void
2472 calculate_allocation_cost (void)
2474 int hard_regno, cost;
2475 ira_allocno_t a;
2476 ira_allocno_iterator ai;
2478 ira_overall_cost = ira_reg_cost = ira_mem_cost = 0;
2479 FOR_EACH_ALLOCNO (a, ai)
2481 hard_regno = ALLOCNO_HARD_REGNO (a);
2482 ira_assert (hard_regno < 0
2483 || (ira_hard_reg_in_set_p
2484 (hard_regno, ALLOCNO_MODE (a),
2485 reg_class_contents[ALLOCNO_CLASS (a)])));
2486 if (hard_regno < 0)
2488 cost = ALLOCNO_MEMORY_COST (a);
2489 ira_mem_cost += cost;
2491 else if (ALLOCNO_HARD_REG_COSTS (a) != NULL)
2493 cost = (ALLOCNO_HARD_REG_COSTS (a)
2494 [ira_class_hard_reg_index
2495 [ALLOCNO_CLASS (a)][hard_regno]]);
2496 ira_reg_cost += cost;
2498 else
2500 cost = ALLOCNO_CLASS_COST (a);
2501 ira_reg_cost += cost;
2503 ira_overall_cost += cost;
2506 if (internal_flag_ira_verbose > 0 && ira_dump_file != NULL)
2508 fprintf (ira_dump_file,
2509 "+++Costs: overall %"PRId64
2510 ", reg %"PRId64
2511 ", mem %"PRId64
2512 ", ld %"PRId64
2513 ", st %"PRId64
2514 ", move %"PRId64,
2515 ira_overall_cost, ira_reg_cost, ira_mem_cost,
2516 ira_load_cost, ira_store_cost, ira_shuffle_cost);
2517 fprintf (ira_dump_file, "\n+++ move loops %d, new jumps %d\n",
2518 ira_move_loops_num, ira_additional_jumps_num);
2523 #ifdef ENABLE_IRA_CHECKING
2524 /* Check the correctness of the allocation. We do need this because
2525 of complicated code to transform more one region internal
2526 representation into one region representation. */
2527 static void
2528 check_allocation (void)
2530 ira_allocno_t a;
2531 int hard_regno, nregs, conflict_nregs;
2532 ira_allocno_iterator ai;
2534 FOR_EACH_ALLOCNO (a, ai)
2536 int n = ALLOCNO_NUM_OBJECTS (a);
2537 int i;
2539 if (ALLOCNO_CAP_MEMBER (a) != NULL
2540 || (hard_regno = ALLOCNO_HARD_REGNO (a)) < 0)
2541 continue;
2542 nregs = hard_regno_nregs[hard_regno][ALLOCNO_MODE (a)];
2543 if (nregs == 1)
2544 /* We allocated a single hard register. */
2545 n = 1;
2546 else if (n > 1)
2547 /* We allocated multiple hard registers, and we will test
2548 conflicts in a granularity of single hard regs. */
2549 nregs = 1;
2551 for (i = 0; i < n; i++)
2553 ira_object_t obj = ALLOCNO_OBJECT (a, i);
2554 ira_object_t conflict_obj;
2555 ira_object_conflict_iterator oci;
2556 int this_regno = hard_regno;
2557 if (n > 1)
2559 if (REG_WORDS_BIG_ENDIAN)
2560 this_regno += n - i - 1;
2561 else
2562 this_regno += i;
2564 FOR_EACH_OBJECT_CONFLICT (obj, conflict_obj, oci)
2566 ira_allocno_t conflict_a = OBJECT_ALLOCNO (conflict_obj);
2567 int conflict_hard_regno = ALLOCNO_HARD_REGNO (conflict_a);
2568 if (conflict_hard_regno < 0)
2569 continue;
2571 conflict_nregs
2572 = (hard_regno_nregs
2573 [conflict_hard_regno][ALLOCNO_MODE (conflict_a)]);
2575 if (ALLOCNO_NUM_OBJECTS (conflict_a) > 1
2576 && conflict_nregs == ALLOCNO_NUM_OBJECTS (conflict_a))
2578 if (REG_WORDS_BIG_ENDIAN)
2579 conflict_hard_regno += (ALLOCNO_NUM_OBJECTS (conflict_a)
2580 - OBJECT_SUBWORD (conflict_obj) - 1);
2581 else
2582 conflict_hard_regno += OBJECT_SUBWORD (conflict_obj);
2583 conflict_nregs = 1;
2586 if ((conflict_hard_regno <= this_regno
2587 && this_regno < conflict_hard_regno + conflict_nregs)
2588 || (this_regno <= conflict_hard_regno
2589 && conflict_hard_regno < this_regno + nregs))
2591 fprintf (stderr, "bad allocation for %d and %d\n",
2592 ALLOCNO_REGNO (a), ALLOCNO_REGNO (conflict_a));
2593 gcc_unreachable ();
2599 #endif
2601 /* Allocate REG_EQUIV_INIT. Set up it from IRA_REG_EQUIV which should
2602 be already calculated. */
2603 static void
2604 setup_reg_equiv_init (void)
2606 int i;
2607 int max_regno = max_reg_num ();
2609 for (i = 0; i < max_regno; i++)
2610 reg_equiv_init (i) = ira_reg_equiv[i].init_insns;
2613 /* Update equiv regno from movement of FROM_REGNO to TO_REGNO. INSNS
2614 are insns which were generated for such movement. It is assumed
2615 that FROM_REGNO and TO_REGNO always have the same value at the
2616 point of any move containing such registers. This function is used
2617 to update equiv info for register shuffles on the region borders
2618 and for caller save/restore insns. */
2619 void
2620 ira_update_equiv_info_by_shuffle_insn (int to_regno, int from_regno, rtx_insn *insns)
2622 rtx_insn *insn;
2623 rtx x, note;
2625 if (! ira_reg_equiv[from_regno].defined_p
2626 && (! ira_reg_equiv[to_regno].defined_p
2627 || ((x = ira_reg_equiv[to_regno].memory) != NULL_RTX
2628 && ! MEM_READONLY_P (x))))
2629 return;
2630 insn = insns;
2631 if (NEXT_INSN (insn) != NULL_RTX)
2633 if (! ira_reg_equiv[to_regno].defined_p)
2635 ira_assert (ira_reg_equiv[to_regno].init_insns == NULL_RTX);
2636 return;
2638 ira_reg_equiv[to_regno].defined_p = false;
2639 ira_reg_equiv[to_regno].memory
2640 = ira_reg_equiv[to_regno].constant
2641 = ira_reg_equiv[to_regno].invariant
2642 = ira_reg_equiv[to_regno].init_insns = NULL;
2643 if (internal_flag_ira_verbose > 3 && ira_dump_file != NULL)
2644 fprintf (ira_dump_file,
2645 " Invalidating equiv info for reg %d\n", to_regno);
2646 return;
2648 /* It is possible that FROM_REGNO still has no equivalence because
2649 in shuffles to_regno<-from_regno and from_regno<-to_regno the 2nd
2650 insn was not processed yet. */
2651 if (ira_reg_equiv[from_regno].defined_p)
2653 ira_reg_equiv[to_regno].defined_p = true;
2654 if ((x = ira_reg_equiv[from_regno].memory) != NULL_RTX)
2656 ira_assert (ira_reg_equiv[from_regno].invariant == NULL_RTX
2657 && ira_reg_equiv[from_regno].constant == NULL_RTX);
2658 ira_assert (ira_reg_equiv[to_regno].memory == NULL_RTX
2659 || rtx_equal_p (ira_reg_equiv[to_regno].memory, x));
2660 ira_reg_equiv[to_regno].memory = x;
2661 if (! MEM_READONLY_P (x))
2662 /* We don't add the insn to insn init list because memory
2663 equivalence is just to say what memory is better to use
2664 when the pseudo is spilled. */
2665 return;
2667 else if ((x = ira_reg_equiv[from_regno].constant) != NULL_RTX)
2669 ira_assert (ira_reg_equiv[from_regno].invariant == NULL_RTX);
2670 ira_assert (ira_reg_equiv[to_regno].constant == NULL_RTX
2671 || rtx_equal_p (ira_reg_equiv[to_regno].constant, x));
2672 ira_reg_equiv[to_regno].constant = x;
2674 else
2676 x = ira_reg_equiv[from_regno].invariant;
2677 ira_assert (x != NULL_RTX);
2678 ira_assert (ira_reg_equiv[to_regno].invariant == NULL_RTX
2679 || rtx_equal_p (ira_reg_equiv[to_regno].invariant, x));
2680 ira_reg_equiv[to_regno].invariant = x;
2682 if (find_reg_note (insn, REG_EQUIV, x) == NULL_RTX)
2684 note = set_unique_reg_note (insn, REG_EQUIV, x);
2685 gcc_assert (note != NULL_RTX);
2686 if (internal_flag_ira_verbose > 3 && ira_dump_file != NULL)
2688 fprintf (ira_dump_file,
2689 " Adding equiv note to insn %u for reg %d ",
2690 INSN_UID (insn), to_regno);
2691 dump_value_slim (ira_dump_file, x, 1);
2692 fprintf (ira_dump_file, "\n");
2696 ira_reg_equiv[to_regno].init_insns
2697 = gen_rtx_INSN_LIST (VOIDmode, insn,
2698 ira_reg_equiv[to_regno].init_insns);
2699 if (internal_flag_ira_verbose > 3 && ira_dump_file != NULL)
2700 fprintf (ira_dump_file,
2701 " Adding equiv init move insn %u to reg %d\n",
2702 INSN_UID (insn), to_regno);
2705 /* Fix values of array REG_EQUIV_INIT after live range splitting done
2706 by IRA. */
2707 static void
2708 fix_reg_equiv_init (void)
2710 int max_regno = max_reg_num ();
2711 int i, new_regno, max;
2712 rtx set;
2713 rtx_insn_list *x, *next, *prev;
2714 rtx_insn *insn;
2716 if (max_regno_before_ira < max_regno)
2718 max = vec_safe_length (reg_equivs);
2719 grow_reg_equivs ();
2720 for (i = FIRST_PSEUDO_REGISTER; i < max; i++)
2721 for (prev = NULL, x = reg_equiv_init (i);
2722 x != NULL_RTX;
2723 x = next)
2725 next = x->next ();
2726 insn = x->insn ();
2727 set = single_set (insn);
2728 ira_assert (set != NULL_RTX
2729 && (REG_P (SET_DEST (set)) || REG_P (SET_SRC (set))));
2730 if (REG_P (SET_DEST (set))
2731 && ((int) REGNO (SET_DEST (set)) == i
2732 || (int) ORIGINAL_REGNO (SET_DEST (set)) == i))
2733 new_regno = REGNO (SET_DEST (set));
2734 else if (REG_P (SET_SRC (set))
2735 && ((int) REGNO (SET_SRC (set)) == i
2736 || (int) ORIGINAL_REGNO (SET_SRC (set)) == i))
2737 new_regno = REGNO (SET_SRC (set));
2738 else
2739 gcc_unreachable ();
2740 if (new_regno == i)
2741 prev = x;
2742 else
2744 /* Remove the wrong list element. */
2745 if (prev == NULL_RTX)
2746 reg_equiv_init (i) = next;
2747 else
2748 XEXP (prev, 1) = next;
2749 XEXP (x, 1) = reg_equiv_init (new_regno);
2750 reg_equiv_init (new_regno) = x;
2756 #ifdef ENABLE_IRA_CHECKING
2757 /* Print redundant memory-memory copies. */
2758 static void
2759 print_redundant_copies (void)
2761 int hard_regno;
2762 ira_allocno_t a;
2763 ira_copy_t cp, next_cp;
2764 ira_allocno_iterator ai;
2766 FOR_EACH_ALLOCNO (a, ai)
2768 if (ALLOCNO_CAP_MEMBER (a) != NULL)
2769 /* It is a cap. */
2770 continue;
2771 hard_regno = ALLOCNO_HARD_REGNO (a);
2772 if (hard_regno >= 0)
2773 continue;
2774 for (cp = ALLOCNO_COPIES (a); cp != NULL; cp = next_cp)
2775 if (cp->first == a)
2776 next_cp = cp->next_first_allocno_copy;
2777 else
2779 next_cp = cp->next_second_allocno_copy;
2780 if (internal_flag_ira_verbose > 4 && ira_dump_file != NULL
2781 && cp->insn != NULL_RTX
2782 && ALLOCNO_HARD_REGNO (cp->first) == hard_regno)
2783 fprintf (ira_dump_file,
2784 " Redundant move from %d(freq %d):%d\n",
2785 INSN_UID (cp->insn), cp->freq, hard_regno);
2789 #endif
2791 /* Setup preferred and alternative classes for new pseudo-registers
2792 created by IRA starting with START. */
2793 static void
2794 setup_preferred_alternate_classes_for_new_pseudos (int start)
2796 int i, old_regno;
2797 int max_regno = max_reg_num ();
2799 for (i = start; i < max_regno; i++)
2801 old_regno = ORIGINAL_REGNO (regno_reg_rtx[i]);
2802 ira_assert (i != old_regno);
2803 setup_reg_classes (i, reg_preferred_class (old_regno),
2804 reg_alternate_class (old_regno),
2805 reg_allocno_class (old_regno));
2806 if (internal_flag_ira_verbose > 2 && ira_dump_file != NULL)
2807 fprintf (ira_dump_file,
2808 " New r%d: setting preferred %s, alternative %s\n",
2809 i, reg_class_names[reg_preferred_class (old_regno)],
2810 reg_class_names[reg_alternate_class (old_regno)]);
2815 /* The number of entries allocated in reg_info. */
2816 static int allocated_reg_info_size;
2818 /* Regional allocation can create new pseudo-registers. This function
2819 expands some arrays for pseudo-registers. */
2820 static void
2821 expand_reg_info (void)
2823 int i;
2824 int size = max_reg_num ();
2826 resize_reg_info ();
2827 for (i = allocated_reg_info_size; i < size; i++)
2828 setup_reg_classes (i, GENERAL_REGS, ALL_REGS, GENERAL_REGS);
2829 setup_preferred_alternate_classes_for_new_pseudos (allocated_reg_info_size);
2830 allocated_reg_info_size = size;
2833 /* Return TRUE if there is too high register pressure in the function.
2834 It is used to decide when stack slot sharing is worth to do. */
2835 static bool
2836 too_high_register_pressure_p (void)
2838 int i;
2839 enum reg_class pclass;
2841 for (i = 0; i < ira_pressure_classes_num; i++)
2843 pclass = ira_pressure_classes[i];
2844 if (ira_loop_tree_root->reg_pressure[pclass] > 10000)
2845 return true;
2847 return false;
2852 /* Indicate that hard register number FROM was eliminated and replaced with
2853 an offset from hard register number TO. The status of hard registers live
2854 at the start of a basic block is updated by replacing a use of FROM with
2855 a use of TO. */
2857 void
2858 mark_elimination (int from, int to)
2860 basic_block bb;
2861 bitmap r;
2863 FOR_EACH_BB_FN (bb, cfun)
2865 r = DF_LR_IN (bb);
2866 if (bitmap_bit_p (r, from))
2868 bitmap_clear_bit (r, from);
2869 bitmap_set_bit (r, to);
2871 if (! df_live)
2872 continue;
2873 r = DF_LIVE_IN (bb);
2874 if (bitmap_bit_p (r, from))
2876 bitmap_clear_bit (r, from);
2877 bitmap_set_bit (r, to);
2884 /* The length of the following array. */
2885 int ira_reg_equiv_len;
2887 /* Info about equiv. info for each register. */
2888 struct ira_reg_equiv_s *ira_reg_equiv;
2890 /* Expand ira_reg_equiv if necessary. */
2891 void
2892 ira_expand_reg_equiv (void)
2894 int old = ira_reg_equiv_len;
2896 if (ira_reg_equiv_len > max_reg_num ())
2897 return;
2898 ira_reg_equiv_len = max_reg_num () * 3 / 2 + 1;
2899 ira_reg_equiv
2900 = (struct ira_reg_equiv_s *) xrealloc (ira_reg_equiv,
2901 ira_reg_equiv_len
2902 * sizeof (struct ira_reg_equiv_s));
2903 gcc_assert (old < ira_reg_equiv_len);
2904 memset (ira_reg_equiv + old, 0,
2905 sizeof (struct ira_reg_equiv_s) * (ira_reg_equiv_len - old));
2908 static void
2909 init_reg_equiv (void)
2911 ira_reg_equiv_len = 0;
2912 ira_reg_equiv = NULL;
2913 ira_expand_reg_equiv ();
2916 static void
2917 finish_reg_equiv (void)
2919 free (ira_reg_equiv);
2924 struct equivalence
2926 /* Set when a REG_EQUIV note is found or created. Use to
2927 keep track of what memory accesses might be created later,
2928 e.g. by reload. */
2929 rtx replacement;
2930 rtx *src_p;
2932 /* The list of each instruction which initializes this register.
2934 NULL indicates we know nothing about this register's equivalence
2935 properties.
2937 An INSN_LIST with a NULL insn indicates this pseudo is already
2938 known to not have a valid equivalence. */
2939 rtx_insn_list *init_insns;
2941 /* Loop depth is used to recognize equivalences which appear
2942 to be present within the same loop (or in an inner loop). */
2943 short loop_depth;
2944 /* Nonzero if this had a preexisting REG_EQUIV note. */
2945 unsigned char is_arg_equivalence : 1;
2946 /* Set when an attempt should be made to replace a register
2947 with the associated src_p entry. */
2948 unsigned char replace : 1;
2949 /* Set if this register has no known equivalence. */
2950 unsigned char no_equiv : 1;
2953 /* reg_equiv[N] (where N is a pseudo reg number) is the equivalence
2954 structure for that register. */
2955 static struct equivalence *reg_equiv;
2957 /* Used for communication between the following two functions: contains
2958 a MEM that we wish to ensure remains unchanged. */
2959 static rtx equiv_mem;
2961 /* Set nonzero if EQUIV_MEM is modified. */
2962 static int equiv_mem_modified;
2964 /* If EQUIV_MEM is modified by modifying DEST, indicate that it is modified.
2965 Called via note_stores. */
2966 static void
2967 validate_equiv_mem_from_store (rtx dest, const_rtx set ATTRIBUTE_UNUSED,
2968 void *data ATTRIBUTE_UNUSED)
2970 if ((REG_P (dest)
2971 && reg_overlap_mentioned_p (dest, equiv_mem))
2972 || (MEM_P (dest)
2973 && anti_dependence (equiv_mem, dest)))
2974 equiv_mem_modified = 1;
2977 /* Verify that no store between START and the death of REG invalidates
2978 MEMREF. MEMREF is invalidated by modifying a register used in MEMREF,
2979 by storing into an overlapping memory location, or with a non-const
2980 CALL_INSN.
2982 Return 1 if MEMREF remains valid. */
2983 static int
2984 validate_equiv_mem (rtx_insn *start, rtx reg, rtx memref)
2986 rtx_insn *insn;
2987 rtx note;
2989 equiv_mem = memref;
2990 equiv_mem_modified = 0;
2992 /* If the memory reference has side effects or is volatile, it isn't a
2993 valid equivalence. */
2994 if (side_effects_p (memref))
2995 return 0;
2997 for (insn = start; insn && ! equiv_mem_modified; insn = NEXT_INSN (insn))
2999 if (! INSN_P (insn))
3000 continue;
3002 if (find_reg_note (insn, REG_DEAD, reg))
3003 return 1;
3005 /* This used to ignore readonly memory and const/pure calls. The problem
3006 is the equivalent form may reference a pseudo which gets assigned a
3007 call clobbered hard reg. When we later replace REG with its
3008 equivalent form, the value in the call-clobbered reg has been
3009 changed and all hell breaks loose. */
3010 if (CALL_P (insn))
3011 return 0;
3013 note_stores (PATTERN (insn), validate_equiv_mem_from_store, NULL);
3015 /* If a register mentioned in MEMREF is modified via an
3016 auto-increment, we lose the equivalence. Do the same if one
3017 dies; although we could extend the life, it doesn't seem worth
3018 the trouble. */
3020 for (note = REG_NOTES (insn); note; note = XEXP (note, 1))
3021 if ((REG_NOTE_KIND (note) == REG_INC
3022 || REG_NOTE_KIND (note) == REG_DEAD)
3023 && REG_P (XEXP (note, 0))
3024 && reg_overlap_mentioned_p (XEXP (note, 0), memref))
3025 return 0;
3028 return 0;
3031 /* Returns zero if X is known to be invariant. */
3032 static int
3033 equiv_init_varies_p (rtx x)
3035 RTX_CODE code = GET_CODE (x);
3036 int i;
3037 const char *fmt;
3039 switch (code)
3041 case MEM:
3042 return !MEM_READONLY_P (x) || equiv_init_varies_p (XEXP (x, 0));
3044 case CONST:
3045 CASE_CONST_ANY:
3046 case SYMBOL_REF:
3047 case LABEL_REF:
3048 return 0;
3050 case REG:
3051 return reg_equiv[REGNO (x)].replace == 0 && rtx_varies_p (x, 0);
3053 case ASM_OPERANDS:
3054 if (MEM_VOLATILE_P (x))
3055 return 1;
3057 /* Fall through. */
3059 default:
3060 break;
3063 fmt = GET_RTX_FORMAT (code);
3064 for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
3065 if (fmt[i] == 'e')
3067 if (equiv_init_varies_p (XEXP (x, i)))
3068 return 1;
3070 else if (fmt[i] == 'E')
3072 int j;
3073 for (j = 0; j < XVECLEN (x, i); j++)
3074 if (equiv_init_varies_p (XVECEXP (x, i, j)))
3075 return 1;
3078 return 0;
3081 /* Returns nonzero if X (used to initialize register REGNO) is movable.
3082 X is only movable if the registers it uses have equivalent initializations
3083 which appear to be within the same loop (or in an inner loop) and movable
3084 or if they are not candidates for local_alloc and don't vary. */
3085 static int
3086 equiv_init_movable_p (rtx x, int regno)
3088 int i, j;
3089 const char *fmt;
3090 enum rtx_code code = GET_CODE (x);
3092 switch (code)
3094 case SET:
3095 return equiv_init_movable_p (SET_SRC (x), regno);
3097 case CC0:
3098 case CLOBBER:
3099 return 0;
3101 case PRE_INC:
3102 case PRE_DEC:
3103 case POST_INC:
3104 case POST_DEC:
3105 case PRE_MODIFY:
3106 case POST_MODIFY:
3107 return 0;
3109 case REG:
3110 return ((reg_equiv[REGNO (x)].loop_depth >= reg_equiv[regno].loop_depth
3111 && reg_equiv[REGNO (x)].replace)
3112 || (REG_BASIC_BLOCK (REGNO (x)) < NUM_FIXED_BLOCKS
3113 && ! rtx_varies_p (x, 0)));
3115 case UNSPEC_VOLATILE:
3116 return 0;
3118 case ASM_OPERANDS:
3119 if (MEM_VOLATILE_P (x))
3120 return 0;
3122 /* Fall through. */
3124 default:
3125 break;
3128 fmt = GET_RTX_FORMAT (code);
3129 for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
3130 switch (fmt[i])
3132 case 'e':
3133 if (! equiv_init_movable_p (XEXP (x, i), regno))
3134 return 0;
3135 break;
3136 case 'E':
3137 for (j = XVECLEN (x, i) - 1; j >= 0; j--)
3138 if (! equiv_init_movable_p (XVECEXP (x, i, j), regno))
3139 return 0;
3140 break;
3143 return 1;
3146 /* TRUE if X uses any registers for which reg_equiv[REGNO].replace is
3147 true. */
3148 static int
3149 contains_replace_regs (rtx x)
3151 int i, j;
3152 const char *fmt;
3153 enum rtx_code code = GET_CODE (x);
3155 switch (code)
3157 case CONST:
3158 case LABEL_REF:
3159 case SYMBOL_REF:
3160 CASE_CONST_ANY:
3161 case PC:
3162 case CC0:
3163 case HIGH:
3164 return 0;
3166 case REG:
3167 return reg_equiv[REGNO (x)].replace;
3169 default:
3170 break;
3173 fmt = GET_RTX_FORMAT (code);
3174 for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
3175 switch (fmt[i])
3177 case 'e':
3178 if (contains_replace_regs (XEXP (x, i)))
3179 return 1;
3180 break;
3181 case 'E':
3182 for (j = XVECLEN (x, i) - 1; j >= 0; j--)
3183 if (contains_replace_regs (XVECEXP (x, i, j)))
3184 return 1;
3185 break;
3188 return 0;
3191 /* TRUE if X references a memory location that would be affected by a store
3192 to MEMREF. */
3193 static int
3194 memref_referenced_p (rtx memref, rtx x)
3196 int i, j;
3197 const char *fmt;
3198 enum rtx_code code = GET_CODE (x);
3200 switch (code)
3202 case CONST:
3203 case LABEL_REF:
3204 case SYMBOL_REF:
3205 CASE_CONST_ANY:
3206 case PC:
3207 case CC0:
3208 case HIGH:
3209 case LO_SUM:
3210 return 0;
3212 case REG:
3213 return (reg_equiv[REGNO (x)].replacement
3214 && memref_referenced_p (memref,
3215 reg_equiv[REGNO (x)].replacement));
3217 case MEM:
3218 if (true_dependence (memref, VOIDmode, x))
3219 return 1;
3220 break;
3222 case SET:
3223 /* If we are setting a MEM, it doesn't count (its address does), but any
3224 other SET_DEST that has a MEM in it is referencing the MEM. */
3225 if (MEM_P (SET_DEST (x)))
3227 if (memref_referenced_p (memref, XEXP (SET_DEST (x), 0)))
3228 return 1;
3230 else if (memref_referenced_p (memref, SET_DEST (x)))
3231 return 1;
3233 return memref_referenced_p (memref, SET_SRC (x));
3235 default:
3236 break;
3239 fmt = GET_RTX_FORMAT (code);
3240 for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
3241 switch (fmt[i])
3243 case 'e':
3244 if (memref_referenced_p (memref, XEXP (x, i)))
3245 return 1;
3246 break;
3247 case 'E':
3248 for (j = XVECLEN (x, i) - 1; j >= 0; j--)
3249 if (memref_referenced_p (memref, XVECEXP (x, i, j)))
3250 return 1;
3251 break;
3254 return 0;
3257 /* TRUE if some insn in the range (START, END] references a memory location
3258 that would be affected by a store to MEMREF. */
3259 static int
3260 memref_used_between_p (rtx memref, rtx_insn *start, rtx_insn *end)
3262 rtx_insn *insn;
3264 for (insn = NEXT_INSN (start); insn != NEXT_INSN (end);
3265 insn = NEXT_INSN (insn))
3267 if (!NONDEBUG_INSN_P (insn))
3268 continue;
3270 if (memref_referenced_p (memref, PATTERN (insn)))
3271 return 1;
3273 /* Nonconst functions may access memory. */
3274 if (CALL_P (insn) && (! RTL_CONST_CALL_P (insn)))
3275 return 1;
3278 return 0;
3281 /* Mark REG as having no known equivalence.
3282 Some instructions might have been processed before and furnished
3283 with REG_EQUIV notes for this register; these notes will have to be
3284 removed.
3285 STORE is the piece of RTL that does the non-constant / conflicting
3286 assignment - a SET, CLOBBER or REG_INC note. It is currently not used,
3287 but needs to be there because this function is called from note_stores. */
3288 static void
3289 no_equiv (rtx reg, const_rtx store ATTRIBUTE_UNUSED,
3290 void *data ATTRIBUTE_UNUSED)
3292 int regno;
3293 rtx_insn_list *list;
3295 if (!REG_P (reg))
3296 return;
3297 regno = REGNO (reg);
3298 reg_equiv[regno].no_equiv = 1;
3299 list = reg_equiv[regno].init_insns;
3300 if (list && list->insn () == NULL)
3301 return;
3302 reg_equiv[regno].init_insns = gen_rtx_INSN_LIST (VOIDmode, NULL_RTX, NULL);
3303 reg_equiv[regno].replacement = NULL_RTX;
3304 /* This doesn't matter for equivalences made for argument registers, we
3305 should keep their initialization insns. */
3306 if (reg_equiv[regno].is_arg_equivalence)
3307 return;
3308 ira_reg_equiv[regno].defined_p = false;
3309 ira_reg_equiv[regno].init_insns = NULL;
3310 for (; list; list = list->next ())
3312 rtx_insn *insn = list->insn ();
3313 remove_note (insn, find_reg_note (insn, REG_EQUIV, NULL_RTX));
3317 /* Check whether the SUBREG is a paradoxical subreg and set the result
3318 in PDX_SUBREGS. */
3320 static void
3321 set_paradoxical_subreg (rtx_insn *insn, bool *pdx_subregs)
3323 subrtx_iterator::array_type array;
3324 FOR_EACH_SUBRTX (iter, array, PATTERN (insn), NONCONST)
3326 const_rtx subreg = *iter;
3327 if (GET_CODE (subreg) == SUBREG)
3329 const_rtx reg = SUBREG_REG (subreg);
3330 if (REG_P (reg) && paradoxical_subreg_p (subreg))
3331 pdx_subregs[REGNO (reg)] = true;
3336 /* In DEBUG_INSN location adjust REGs from CLEARED_REGS bitmap to the
3337 equivalent replacement. */
3339 static rtx
3340 adjust_cleared_regs (rtx loc, const_rtx old_rtx ATTRIBUTE_UNUSED, void *data)
3342 if (REG_P (loc))
3344 bitmap cleared_regs = (bitmap) data;
3345 if (bitmap_bit_p (cleared_regs, REGNO (loc)))
3346 return simplify_replace_fn_rtx (copy_rtx (*reg_equiv[REGNO (loc)].src_p),
3347 NULL_RTX, adjust_cleared_regs, data);
3349 return NULL_RTX;
3352 /* Nonzero if we recorded an equivalence for a LABEL_REF. */
3353 static int recorded_label_ref;
3355 /* Find registers that are equivalent to a single value throughout the
3356 compilation (either because they can be referenced in memory or are
3357 set once from a single constant). Lower their priority for a
3358 register.
3360 If such a register is only referenced once, try substituting its
3361 value into the using insn. If it succeeds, we can eliminate the
3362 register completely.
3364 Initialize init_insns in ira_reg_equiv array.
3366 Return non-zero if jump label rebuilding should be done. */
3367 static int
3368 update_equiv_regs (void)
3370 rtx_insn *insn;
3371 basic_block bb;
3372 int loop_depth;
3373 bitmap cleared_regs;
3374 bool *pdx_subregs;
3376 /* We need to keep track of whether or not we recorded a LABEL_REF so
3377 that we know if the jump optimizer needs to be rerun. */
3378 recorded_label_ref = 0;
3380 /* Use pdx_subregs to show whether a reg is used in a paradoxical
3381 subreg. */
3382 pdx_subregs = XCNEWVEC (bool, max_regno);
3384 reg_equiv = XCNEWVEC (struct equivalence, max_regno);
3385 grow_reg_equivs ();
3387 init_alias_analysis ();
3389 /* Scan insns and set pdx_subregs[regno] if the reg is used in a
3390 paradoxical subreg. Don't set such reg equivalent to a mem,
3391 because lra will not substitute such equiv memory in order to
3392 prevent access beyond allocated memory for paradoxical memory subreg. */
3393 FOR_EACH_BB_FN (bb, cfun)
3394 FOR_BB_INSNS (bb, insn)
3395 if (NONDEBUG_INSN_P (insn))
3396 set_paradoxical_subreg (insn, pdx_subregs);
3398 /* Scan the insns and find which registers have equivalences. Do this
3399 in a separate scan of the insns because (due to -fcse-follow-jumps)
3400 a register can be set below its use. */
3401 FOR_EACH_BB_FN (bb, cfun)
3403 loop_depth = bb_loop_depth (bb);
3405 for (insn = BB_HEAD (bb);
3406 insn != NEXT_INSN (BB_END (bb));
3407 insn = NEXT_INSN (insn))
3409 rtx note;
3410 rtx set;
3411 rtx dest, src;
3412 int regno;
3414 if (! INSN_P (insn))
3415 continue;
3417 for (note = REG_NOTES (insn); note; note = XEXP (note, 1))
3418 if (REG_NOTE_KIND (note) == REG_INC)
3419 no_equiv (XEXP (note, 0), note, NULL);
3421 set = single_set (insn);
3423 /* If this insn contains more (or less) than a single SET,
3424 only mark all destinations as having no known equivalence. */
3425 if (set == NULL_RTX)
3427 note_stores (PATTERN (insn), no_equiv, NULL);
3428 continue;
3430 else if (GET_CODE (PATTERN (insn)) == PARALLEL)
3432 int i;
3434 for (i = XVECLEN (PATTERN (insn), 0) - 1; i >= 0; i--)
3436 rtx part = XVECEXP (PATTERN (insn), 0, i);
3437 if (part != set)
3438 note_stores (part, no_equiv, NULL);
3442 dest = SET_DEST (set);
3443 src = SET_SRC (set);
3445 /* See if this is setting up the equivalence between an argument
3446 register and its stack slot. */
3447 note = find_reg_note (insn, REG_EQUIV, NULL_RTX);
3448 if (note)
3450 gcc_assert (REG_P (dest));
3451 regno = REGNO (dest);
3453 /* Note that we don't want to clear init_insns in
3454 ira_reg_equiv even if there are multiple sets of this
3455 register. */
3456 reg_equiv[regno].is_arg_equivalence = 1;
3458 /* The insn result can have equivalence memory although
3459 the equivalence is not set up by the insn. We add
3460 this insn to init insns as it is a flag for now that
3461 regno has an equivalence. We will remove the insn
3462 from init insn list later. */
3463 if (rtx_equal_p (src, XEXP (note, 0)) || MEM_P (XEXP (note, 0)))
3464 ira_reg_equiv[regno].init_insns
3465 = gen_rtx_INSN_LIST (VOIDmode, insn,
3466 ira_reg_equiv[regno].init_insns);
3468 /* Continue normally in case this is a candidate for
3469 replacements. */
3472 if (!optimize)
3473 continue;
3475 /* We only handle the case of a pseudo register being set
3476 once, or always to the same value. */
3477 /* ??? The mn10200 port breaks if we add equivalences for
3478 values that need an ADDRESS_REGS register and set them equivalent
3479 to a MEM of a pseudo. The actual problem is in the over-conservative
3480 handling of INPADDR_ADDRESS / INPUT_ADDRESS / INPUT triples in
3481 calculate_needs, but we traditionally work around this problem
3482 here by rejecting equivalences when the destination is in a register
3483 that's likely spilled. This is fragile, of course, since the
3484 preferred class of a pseudo depends on all instructions that set
3485 or use it. */
3487 if (!REG_P (dest)
3488 || (regno = REGNO (dest)) < FIRST_PSEUDO_REGISTER
3489 || (reg_equiv[regno].init_insns
3490 && reg_equiv[regno].init_insns->insn () == NULL)
3491 || (targetm.class_likely_spilled_p (reg_preferred_class (regno))
3492 && MEM_P (src) && ! reg_equiv[regno].is_arg_equivalence))
3494 /* This might be setting a SUBREG of a pseudo, a pseudo that is
3495 also set somewhere else to a constant. */
3496 note_stores (set, no_equiv, NULL);
3497 continue;
3500 /* Don't set reg (if pdx_subregs[regno] == true) equivalent to a mem. */
3501 if (MEM_P (src) && pdx_subregs[regno])
3503 note_stores (set, no_equiv, NULL);
3504 continue;
3507 note = find_reg_note (insn, REG_EQUAL, NULL_RTX);
3509 /* cse sometimes generates function invariants, but doesn't put a
3510 REG_EQUAL note on the insn. Since this note would be redundant,
3511 there's no point creating it earlier than here. */
3512 if (! note && ! rtx_varies_p (src, 0))
3513 note = set_unique_reg_note (insn, REG_EQUAL, copy_rtx (src));
3515 /* Don't bother considering a REG_EQUAL note containing an EXPR_LIST
3516 since it represents a function call. */
3517 if (note && GET_CODE (XEXP (note, 0)) == EXPR_LIST)
3518 note = NULL_RTX;
3520 if (DF_REG_DEF_COUNT (regno) != 1)
3522 bool equal_p = true;
3523 rtx_insn_list *list;
3525 /* If we have already processed this pseudo and determined it
3526 can not have an equivalence, then honor that decision. */
3527 if (reg_equiv[regno].no_equiv)
3528 continue;
3530 if (! note
3531 || rtx_varies_p (XEXP (note, 0), 0)
3532 || (reg_equiv[regno].replacement
3533 && ! rtx_equal_p (XEXP (note, 0),
3534 reg_equiv[regno].replacement)))
3536 no_equiv (dest, set, NULL);
3537 continue;
3540 list = reg_equiv[regno].init_insns;
3541 for (; list; list = list->next ())
3543 rtx note_tmp;
3544 rtx_insn *insn_tmp;
3546 insn_tmp = list->insn ();
3547 note_tmp = find_reg_note (insn_tmp, REG_EQUAL, NULL_RTX);
3548 gcc_assert (note_tmp);
3549 if (! rtx_equal_p (XEXP (note, 0), XEXP (note_tmp, 0)))
3551 equal_p = false;
3552 break;
3556 if (! equal_p)
3558 no_equiv (dest, set, NULL);
3559 continue;
3563 /* Record this insn as initializing this register. */
3564 reg_equiv[regno].init_insns
3565 = gen_rtx_INSN_LIST (VOIDmode, insn, reg_equiv[regno].init_insns);
3567 /* If this register is known to be equal to a constant, record that
3568 it is always equivalent to the constant. */
3569 if (DF_REG_DEF_COUNT (regno) == 1
3570 && note && ! rtx_varies_p (XEXP (note, 0), 0))
3572 rtx note_value = XEXP (note, 0);
3573 remove_note (insn, note);
3574 set_unique_reg_note (insn, REG_EQUIV, note_value);
3577 /* If this insn introduces a "constant" register, decrease the priority
3578 of that register. Record this insn if the register is only used once
3579 more and the equivalence value is the same as our source.
3581 The latter condition is checked for two reasons: First, it is an
3582 indication that it may be more efficient to actually emit the insn
3583 as written (if no registers are available, reload will substitute
3584 the equivalence). Secondly, it avoids problems with any registers
3585 dying in this insn whose death notes would be missed.
3587 If we don't have a REG_EQUIV note, see if this insn is loading
3588 a register used only in one basic block from a MEM. If so, and the
3589 MEM remains unchanged for the life of the register, add a REG_EQUIV
3590 note. */
3591 note = find_reg_note (insn, REG_EQUIV, NULL_RTX);
3593 if (note == NULL_RTX && REG_BASIC_BLOCK (regno) >= NUM_FIXED_BLOCKS
3594 && MEM_P (SET_SRC (set))
3595 && validate_equiv_mem (insn, dest, SET_SRC (set)))
3596 note = set_unique_reg_note (insn, REG_EQUIV, copy_rtx (SET_SRC (set)));
3598 if (note)
3600 int regno = REGNO (dest);
3601 rtx x = XEXP (note, 0);
3603 /* If we haven't done so, record for reload that this is an
3604 equivalencing insn. */
3605 if (!reg_equiv[regno].is_arg_equivalence)
3606 ira_reg_equiv[regno].init_insns
3607 = gen_rtx_INSN_LIST (VOIDmode, insn,
3608 ira_reg_equiv[regno].init_insns);
3610 /* Record whether or not we created a REG_EQUIV note for a LABEL_REF.
3611 We might end up substituting the LABEL_REF for uses of the
3612 pseudo here or later. That kind of transformation may turn an
3613 indirect jump into a direct jump, in which case we must rerun the
3614 jump optimizer to ensure that the JUMP_LABEL fields are valid. */
3615 if (GET_CODE (x) == LABEL_REF
3616 || (GET_CODE (x) == CONST
3617 && GET_CODE (XEXP (x, 0)) == PLUS
3618 && (GET_CODE (XEXP (XEXP (x, 0), 0)) == LABEL_REF)))
3619 recorded_label_ref = 1;
3621 reg_equiv[regno].replacement = x;
3622 reg_equiv[regno].src_p = &SET_SRC (set);
3623 reg_equiv[regno].loop_depth = (short) loop_depth;
3625 /* Don't mess with things live during setjmp. */
3626 if (REG_LIVE_LENGTH (regno) >= 0 && optimize)
3628 /* Note that the statement below does not affect the priority
3629 in local-alloc! */
3630 REG_LIVE_LENGTH (regno) *= 2;
3632 /* If the register is referenced exactly twice, meaning it is
3633 set once and used once, indicate that the reference may be
3634 replaced by the equivalence we computed above. Do this
3635 even if the register is only used in one block so that
3636 dependencies can be handled where the last register is
3637 used in a different block (i.e. HIGH / LO_SUM sequences)
3638 and to reduce the number of registers alive across
3639 calls. */
3641 if (REG_N_REFS (regno) == 2
3642 && (rtx_equal_p (x, src)
3643 || ! equiv_init_varies_p (src))
3644 && NONJUMP_INSN_P (insn)
3645 && equiv_init_movable_p (PATTERN (insn), regno))
3646 reg_equiv[regno].replace = 1;
3652 if (!optimize)
3653 goto out;
3655 /* A second pass, to gather additional equivalences with memory. This needs
3656 to be done after we know which registers we are going to replace. */
3658 for (insn = get_insns (); insn; insn = NEXT_INSN (insn))
3660 rtx set, src, dest;
3661 unsigned regno;
3663 if (! INSN_P (insn))
3664 continue;
3666 set = single_set (insn);
3667 if (! set)
3668 continue;
3670 dest = SET_DEST (set);
3671 src = SET_SRC (set);
3673 /* If this sets a MEM to the contents of a REG that is only used
3674 in a single basic block, see if the register is always equivalent
3675 to that memory location and if moving the store from INSN to the
3676 insn that set REG is safe. If so, put a REG_EQUIV note on the
3677 initializing insn.
3679 Don't add a REG_EQUIV note if the insn already has one. The existing
3680 REG_EQUIV is likely more useful than the one we are adding.
3682 If one of the regs in the address has reg_equiv[REGNO].replace set,
3683 then we can't add this REG_EQUIV note. The reg_equiv[REGNO].replace
3684 optimization may move the set of this register immediately before
3685 insn, which puts it after reg_equiv[REGNO].init_insns, and hence
3686 the mention in the REG_EQUIV note would be to an uninitialized
3687 pseudo. */
3689 if (MEM_P (dest) && REG_P (src)
3690 && (regno = REGNO (src)) >= FIRST_PSEUDO_REGISTER
3691 && REG_BASIC_BLOCK (regno) >= NUM_FIXED_BLOCKS
3692 && DF_REG_DEF_COUNT (regno) == 1
3693 && reg_equiv[regno].init_insns != NULL
3694 && reg_equiv[regno].init_insns->insn () != NULL
3695 && ! find_reg_note (XEXP (reg_equiv[regno].init_insns, 0),
3696 REG_EQUIV, NULL_RTX)
3697 && ! contains_replace_regs (XEXP (dest, 0))
3698 && ! pdx_subregs[regno])
3700 rtx_insn *init_insn =
3701 as_a <rtx_insn *> (XEXP (reg_equiv[regno].init_insns, 0));
3702 if (validate_equiv_mem (init_insn, src, dest)
3703 && ! memref_used_between_p (dest, init_insn, insn)
3704 /* Attaching a REG_EQUIV note will fail if INIT_INSN has
3705 multiple sets. */
3706 && set_unique_reg_note (init_insn, REG_EQUIV, copy_rtx (dest)))
3708 /* This insn makes the equivalence, not the one initializing
3709 the register. */
3710 ira_reg_equiv[regno].init_insns
3711 = gen_rtx_INSN_LIST (VOIDmode, insn, NULL_RTX);
3712 df_notes_rescan (init_insn);
3717 cleared_regs = BITMAP_ALLOC (NULL);
3718 /* Now scan all regs killed in an insn to see if any of them are
3719 registers only used that once. If so, see if we can replace the
3720 reference with the equivalent form. If we can, delete the
3721 initializing reference and this register will go away. If we
3722 can't replace the reference, and the initializing reference is
3723 within the same loop (or in an inner loop), then move the register
3724 initialization just before the use, so that they are in the same
3725 basic block. */
3726 FOR_EACH_BB_REVERSE_FN (bb, cfun)
3728 loop_depth = bb_loop_depth (bb);
3729 for (insn = BB_END (bb);
3730 insn != PREV_INSN (BB_HEAD (bb));
3731 insn = PREV_INSN (insn))
3733 rtx link;
3735 if (! INSN_P (insn))
3736 continue;
3738 /* Don't substitute into a non-local goto, this confuses CFG. */
3739 if (JUMP_P (insn)
3740 && find_reg_note (insn, REG_NON_LOCAL_GOTO, NULL_RTX))
3741 continue;
3743 for (link = REG_NOTES (insn); link; link = XEXP (link, 1))
3745 if (REG_NOTE_KIND (link) == REG_DEAD
3746 /* Make sure this insn still refers to the register. */
3747 && reg_mentioned_p (XEXP (link, 0), PATTERN (insn)))
3749 int regno = REGNO (XEXP (link, 0));
3750 rtx equiv_insn;
3752 if (! reg_equiv[regno].replace
3753 || reg_equiv[regno].loop_depth < (short) loop_depth
3754 /* There is no sense to move insns if live range
3755 shrinkage or register pressure-sensitive
3756 scheduling were done because it will not
3757 improve allocation but worsen insn schedule
3758 with a big probability. */
3759 || flag_live_range_shrinkage
3760 || (flag_sched_pressure && flag_schedule_insns))
3761 continue;
3763 /* reg_equiv[REGNO].replace gets set only when
3764 REG_N_REFS[REGNO] is 2, i.e. the register is set
3765 once and used once. (If it were only set, but
3766 not used, flow would have deleted the setting
3767 insns.) Hence there can only be one insn in
3768 reg_equiv[REGNO].init_insns. */
3769 gcc_assert (reg_equiv[regno].init_insns
3770 && !XEXP (reg_equiv[regno].init_insns, 1));
3771 equiv_insn = XEXP (reg_equiv[regno].init_insns, 0);
3773 /* We may not move instructions that can throw, since
3774 that changes basic block boundaries and we are not
3775 prepared to adjust the CFG to match. */
3776 if (can_throw_internal (equiv_insn))
3777 continue;
3779 if (asm_noperands (PATTERN (equiv_insn)) < 0
3780 && validate_replace_rtx (regno_reg_rtx[regno],
3781 *(reg_equiv[regno].src_p), insn))
3783 rtx equiv_link;
3784 rtx last_link;
3785 rtx note;
3787 /* Find the last note. */
3788 for (last_link = link; XEXP (last_link, 1);
3789 last_link = XEXP (last_link, 1))
3792 /* Append the REG_DEAD notes from equiv_insn. */
3793 equiv_link = REG_NOTES (equiv_insn);
3794 while (equiv_link)
3796 note = equiv_link;
3797 equiv_link = XEXP (equiv_link, 1);
3798 if (REG_NOTE_KIND (note) == REG_DEAD)
3800 remove_note (equiv_insn, note);
3801 XEXP (last_link, 1) = note;
3802 XEXP (note, 1) = NULL_RTX;
3803 last_link = note;
3807 remove_death (regno, insn);
3808 SET_REG_N_REFS (regno, 0);
3809 REG_FREQ (regno) = 0;
3810 delete_insn (equiv_insn);
3812 reg_equiv[regno].init_insns
3813 = reg_equiv[regno].init_insns->next ();
3815 ira_reg_equiv[regno].init_insns = NULL;
3816 bitmap_set_bit (cleared_regs, regno);
3818 /* Move the initialization of the register to just before
3819 INSN. Update the flow information. */
3820 else if (prev_nondebug_insn (insn) != equiv_insn)
3822 rtx_insn *new_insn;
3824 new_insn = emit_insn_before (PATTERN (equiv_insn), insn);
3825 REG_NOTES (new_insn) = REG_NOTES (equiv_insn);
3826 REG_NOTES (equiv_insn) = 0;
3827 /* Rescan it to process the notes. */
3828 df_insn_rescan (new_insn);
3830 /* Make sure this insn is recognized before
3831 reload begins, otherwise
3832 eliminate_regs_in_insn will die. */
3833 INSN_CODE (new_insn) = INSN_CODE (equiv_insn);
3835 delete_insn (equiv_insn);
3837 XEXP (reg_equiv[regno].init_insns, 0) = new_insn;
3839 REG_BASIC_BLOCK (regno) = bb->index;
3840 REG_N_CALLS_CROSSED (regno) = 0;
3841 REG_FREQ_CALLS_CROSSED (regno) = 0;
3842 REG_N_THROWING_CALLS_CROSSED (regno) = 0;
3843 REG_LIVE_LENGTH (regno) = 2;
3845 if (insn == BB_HEAD (bb))
3846 BB_HEAD (bb) = PREV_INSN (insn);
3848 ira_reg_equiv[regno].init_insns
3849 = gen_rtx_INSN_LIST (VOIDmode, new_insn, NULL_RTX);
3850 bitmap_set_bit (cleared_regs, regno);
3857 if (!bitmap_empty_p (cleared_regs))
3859 FOR_EACH_BB_FN (bb, cfun)
3861 bitmap_and_compl_into (DF_LR_IN (bb), cleared_regs);
3862 bitmap_and_compl_into (DF_LR_OUT (bb), cleared_regs);
3863 if (! df_live)
3864 continue;
3865 bitmap_and_compl_into (DF_LIVE_IN (bb), cleared_regs);
3866 bitmap_and_compl_into (DF_LIVE_OUT (bb), cleared_regs);
3869 /* Last pass - adjust debug insns referencing cleared regs. */
3870 if (MAY_HAVE_DEBUG_INSNS)
3871 for (insn = get_insns (); insn; insn = NEXT_INSN (insn))
3872 if (DEBUG_INSN_P (insn))
3874 rtx old_loc = INSN_VAR_LOCATION_LOC (insn);
3875 INSN_VAR_LOCATION_LOC (insn)
3876 = simplify_replace_fn_rtx (old_loc, NULL_RTX,
3877 adjust_cleared_regs,
3878 (void *) cleared_regs);
3879 if (old_loc != INSN_VAR_LOCATION_LOC (insn))
3880 df_insn_rescan (insn);
3884 BITMAP_FREE (cleared_regs);
3886 out:
3887 /* Clean up. */
3889 end_alias_analysis ();
3890 free (reg_equiv);
3891 free (pdx_subregs);
3892 return recorded_label_ref;
3897 /* Set up fields memory, constant, and invariant from init_insns in
3898 the structures of array ira_reg_equiv. */
3899 static void
3900 setup_reg_equiv (void)
3902 int i;
3903 rtx_insn_list *elem, *prev_elem, *next_elem;
3904 rtx_insn *insn;
3905 rtx set, x;
3907 for (i = FIRST_PSEUDO_REGISTER; i < ira_reg_equiv_len; i++)
3908 for (prev_elem = NULL, elem = ira_reg_equiv[i].init_insns;
3909 elem;
3910 prev_elem = elem, elem = next_elem)
3912 next_elem = elem->next ();
3913 insn = elem->insn ();
3914 set = single_set (insn);
3916 /* Init insns can set up equivalence when the reg is a destination or
3917 a source (in this case the destination is memory). */
3918 if (set != 0 && (REG_P (SET_DEST (set)) || REG_P (SET_SRC (set))))
3920 if ((x = find_reg_note (insn, REG_EQUIV, NULL_RTX)) != NULL)
3922 x = XEXP (x, 0);
3923 if (REG_P (SET_DEST (set))
3924 && REGNO (SET_DEST (set)) == (unsigned int) i
3925 && ! rtx_equal_p (SET_SRC (set), x) && MEM_P (x))
3927 /* This insn reporting the equivalence but
3928 actually not setting it. Remove it from the
3929 list. */
3930 if (prev_elem == NULL)
3931 ira_reg_equiv[i].init_insns = next_elem;
3932 else
3933 XEXP (prev_elem, 1) = next_elem;
3934 elem = prev_elem;
3937 else if (REG_P (SET_DEST (set))
3938 && REGNO (SET_DEST (set)) == (unsigned int) i)
3939 x = SET_SRC (set);
3940 else
3942 gcc_assert (REG_P (SET_SRC (set))
3943 && REGNO (SET_SRC (set)) == (unsigned int) i);
3944 x = SET_DEST (set);
3946 if (! function_invariant_p (x)
3947 || ! flag_pic
3948 /* A function invariant is often CONSTANT_P but may
3949 include a register. We promise to only pass
3950 CONSTANT_P objects to LEGITIMATE_PIC_OPERAND_P. */
3951 || (CONSTANT_P (x) && LEGITIMATE_PIC_OPERAND_P (x)))
3953 /* It can happen that a REG_EQUIV note contains a MEM
3954 that is not a legitimate memory operand. As later
3955 stages of reload assume that all addresses found in
3956 the lra_regno_equiv_* arrays were originally
3957 legitimate, we ignore such REG_EQUIV notes. */
3958 if (memory_operand (x, VOIDmode))
3960 ira_reg_equiv[i].defined_p = true;
3961 ira_reg_equiv[i].memory = x;
3962 continue;
3964 else if (function_invariant_p (x))
3966 machine_mode mode;
3968 mode = GET_MODE (SET_DEST (set));
3969 if (GET_CODE (x) == PLUS
3970 || x == frame_pointer_rtx || x == arg_pointer_rtx)
3971 /* This is PLUS of frame pointer and a constant,
3972 or fp, or argp. */
3973 ira_reg_equiv[i].invariant = x;
3974 else if (targetm.legitimate_constant_p (mode, x))
3975 ira_reg_equiv[i].constant = x;
3976 else
3978 ira_reg_equiv[i].memory = force_const_mem (mode, x);
3979 if (ira_reg_equiv[i].memory == NULL_RTX)
3981 ira_reg_equiv[i].defined_p = false;
3982 ira_reg_equiv[i].init_insns = NULL;
3983 break;
3986 ira_reg_equiv[i].defined_p = true;
3987 continue;
3991 ira_reg_equiv[i].defined_p = false;
3992 ira_reg_equiv[i].init_insns = NULL;
3993 break;
3999 /* Print chain C to FILE. */
4000 static void
4001 print_insn_chain (FILE *file, struct insn_chain *c)
4003 fprintf (file, "insn=%d, ", INSN_UID (c->insn));
4004 bitmap_print (file, &c->live_throughout, "live_throughout: ", ", ");
4005 bitmap_print (file, &c->dead_or_set, "dead_or_set: ", "\n");
4009 /* Print all reload_insn_chains to FILE. */
4010 static void
4011 print_insn_chains (FILE *file)
4013 struct insn_chain *c;
4014 for (c = reload_insn_chain; c ; c = c->next)
4015 print_insn_chain (file, c);
4018 /* Return true if pseudo REGNO should be added to set live_throughout
4019 or dead_or_set of the insn chains for reload consideration. */
4020 static bool
4021 pseudo_for_reload_consideration_p (int regno)
4023 /* Consider spilled pseudos too for IRA because they still have a
4024 chance to get hard-registers in the reload when IRA is used. */
4025 return (reg_renumber[regno] >= 0 || ira_conflicts_p);
4028 /* Init LIVE_SUBREGS[ALLOCNUM] and LIVE_SUBREGS_USED[ALLOCNUM] using
4029 REG to the number of nregs, and INIT_VALUE to get the
4030 initialization. ALLOCNUM need not be the regno of REG. */
4031 static void
4032 init_live_subregs (bool init_value, sbitmap *live_subregs,
4033 bitmap live_subregs_used, int allocnum, rtx reg)
4035 unsigned int regno = REGNO (SUBREG_REG (reg));
4036 int size = GET_MODE_SIZE (GET_MODE (regno_reg_rtx[regno]));
4038 gcc_assert (size > 0);
4040 /* Been there, done that. */
4041 if (bitmap_bit_p (live_subregs_used, allocnum))
4042 return;
4044 /* Create a new one. */
4045 if (live_subregs[allocnum] == NULL)
4046 live_subregs[allocnum] = sbitmap_alloc (size);
4048 /* If the entire reg was live before blasting into subregs, we need
4049 to init all of the subregs to ones else init to 0. */
4050 if (init_value)
4051 bitmap_ones (live_subregs[allocnum]);
4052 else
4053 bitmap_clear (live_subregs[allocnum]);
4055 bitmap_set_bit (live_subregs_used, allocnum);
4058 /* Walk the insns of the current function and build reload_insn_chain,
4059 and record register life information. */
4060 static void
4061 build_insn_chain (void)
4063 unsigned int i;
4064 struct insn_chain **p = &reload_insn_chain;
4065 basic_block bb;
4066 struct insn_chain *c = NULL;
4067 struct insn_chain *next = NULL;
4068 bitmap live_relevant_regs = BITMAP_ALLOC (NULL);
4069 bitmap elim_regset = BITMAP_ALLOC (NULL);
4070 /* live_subregs is a vector used to keep accurate information about
4071 which hardregs are live in multiword pseudos. live_subregs and
4072 live_subregs_used are indexed by pseudo number. The live_subreg
4073 entry for a particular pseudo is only used if the corresponding
4074 element is non zero in live_subregs_used. The sbitmap size of
4075 live_subreg[allocno] is number of bytes that the pseudo can
4076 occupy. */
4077 sbitmap *live_subregs = XCNEWVEC (sbitmap, max_regno);
4078 bitmap live_subregs_used = BITMAP_ALLOC (NULL);
4080 for (i = 0; i < FIRST_PSEUDO_REGISTER; i++)
4081 if (TEST_HARD_REG_BIT (eliminable_regset, i))
4082 bitmap_set_bit (elim_regset, i);
4083 FOR_EACH_BB_REVERSE_FN (bb, cfun)
4085 bitmap_iterator bi;
4086 rtx_insn *insn;
4088 CLEAR_REG_SET (live_relevant_regs);
4089 bitmap_clear (live_subregs_used);
4091 EXECUTE_IF_SET_IN_BITMAP (df_get_live_out (bb), 0, i, bi)
4093 if (i >= FIRST_PSEUDO_REGISTER)
4094 break;
4095 bitmap_set_bit (live_relevant_regs, i);
4098 EXECUTE_IF_SET_IN_BITMAP (df_get_live_out (bb),
4099 FIRST_PSEUDO_REGISTER, i, bi)
4101 if (pseudo_for_reload_consideration_p (i))
4102 bitmap_set_bit (live_relevant_regs, i);
4105 FOR_BB_INSNS_REVERSE (bb, insn)
4107 if (!NOTE_P (insn) && !BARRIER_P (insn))
4109 struct df_insn_info *insn_info = DF_INSN_INFO_GET (insn);
4110 df_ref def, use;
4112 c = new_insn_chain ();
4113 c->next = next;
4114 next = c;
4115 *p = c;
4116 p = &c->prev;
4118 c->insn = insn;
4119 c->block = bb->index;
4121 if (NONDEBUG_INSN_P (insn))
4122 FOR_EACH_INSN_INFO_DEF (def, insn_info)
4124 unsigned int regno = DF_REF_REGNO (def);
4126 /* Ignore may clobbers because these are generated
4127 from calls. However, every other kind of def is
4128 added to dead_or_set. */
4129 if (!DF_REF_FLAGS_IS_SET (def, DF_REF_MAY_CLOBBER))
4131 if (regno < FIRST_PSEUDO_REGISTER)
4133 if (!fixed_regs[regno])
4134 bitmap_set_bit (&c->dead_or_set, regno);
4136 else if (pseudo_for_reload_consideration_p (regno))
4137 bitmap_set_bit (&c->dead_or_set, regno);
4140 if ((regno < FIRST_PSEUDO_REGISTER
4141 || reg_renumber[regno] >= 0
4142 || ira_conflicts_p)
4143 && (!DF_REF_FLAGS_IS_SET (def, DF_REF_CONDITIONAL)))
4145 rtx reg = DF_REF_REG (def);
4147 /* We can model subregs, but not if they are
4148 wrapped in ZERO_EXTRACTS. */
4149 if (GET_CODE (reg) == SUBREG
4150 && !DF_REF_FLAGS_IS_SET (def, DF_REF_ZERO_EXTRACT))
4152 unsigned int start = SUBREG_BYTE (reg);
4153 unsigned int last = start
4154 + GET_MODE_SIZE (GET_MODE (reg));
4156 init_live_subregs
4157 (bitmap_bit_p (live_relevant_regs, regno),
4158 live_subregs, live_subregs_used, regno, reg);
4160 if (!DF_REF_FLAGS_IS_SET
4161 (def, DF_REF_STRICT_LOW_PART))
4163 /* Expand the range to cover entire words.
4164 Bytes added here are "don't care". */
4165 start
4166 = start / UNITS_PER_WORD * UNITS_PER_WORD;
4167 last = ((last + UNITS_PER_WORD - 1)
4168 / UNITS_PER_WORD * UNITS_PER_WORD);
4171 /* Ignore the paradoxical bits. */
4172 if (last > SBITMAP_SIZE (live_subregs[regno]))
4173 last = SBITMAP_SIZE (live_subregs[regno]);
4175 while (start < last)
4177 bitmap_clear_bit (live_subregs[regno], start);
4178 start++;
4181 if (bitmap_empty_p (live_subregs[regno]))
4183 bitmap_clear_bit (live_subregs_used, regno);
4184 bitmap_clear_bit (live_relevant_regs, regno);
4186 else
4187 /* Set live_relevant_regs here because
4188 that bit has to be true to get us to
4189 look at the live_subregs fields. */
4190 bitmap_set_bit (live_relevant_regs, regno);
4192 else
4194 /* DF_REF_PARTIAL is generated for
4195 subregs, STRICT_LOW_PART, and
4196 ZERO_EXTRACT. We handle the subreg
4197 case above so here we have to keep from
4198 modeling the def as a killing def. */
4199 if (!DF_REF_FLAGS_IS_SET (def, DF_REF_PARTIAL))
4201 bitmap_clear_bit (live_subregs_used, regno);
4202 bitmap_clear_bit (live_relevant_regs, regno);
4208 bitmap_and_compl_into (live_relevant_regs, elim_regset);
4209 bitmap_copy (&c->live_throughout, live_relevant_regs);
4211 if (NONDEBUG_INSN_P (insn))
4212 FOR_EACH_INSN_INFO_USE (use, insn_info)
4214 unsigned int regno = DF_REF_REGNO (use);
4215 rtx reg = DF_REF_REG (use);
4217 /* DF_REF_READ_WRITE on a use means that this use
4218 is fabricated from a def that is a partial set
4219 to a multiword reg. Here, we only model the
4220 subreg case that is not wrapped in ZERO_EXTRACT
4221 precisely so we do not need to look at the
4222 fabricated use. */
4223 if (DF_REF_FLAGS_IS_SET (use, DF_REF_READ_WRITE)
4224 && !DF_REF_FLAGS_IS_SET (use, DF_REF_ZERO_EXTRACT)
4225 && DF_REF_FLAGS_IS_SET (use, DF_REF_SUBREG))
4226 continue;
4228 /* Add the last use of each var to dead_or_set. */
4229 if (!bitmap_bit_p (live_relevant_regs, regno))
4231 if (regno < FIRST_PSEUDO_REGISTER)
4233 if (!fixed_regs[regno])
4234 bitmap_set_bit (&c->dead_or_set, regno);
4236 else if (pseudo_for_reload_consideration_p (regno))
4237 bitmap_set_bit (&c->dead_or_set, regno);
4240 if (regno < FIRST_PSEUDO_REGISTER
4241 || pseudo_for_reload_consideration_p (regno))
4243 if (GET_CODE (reg) == SUBREG
4244 && !DF_REF_FLAGS_IS_SET (use,
4245 DF_REF_SIGN_EXTRACT
4246 | DF_REF_ZERO_EXTRACT))
4248 unsigned int start = SUBREG_BYTE (reg);
4249 unsigned int last = start
4250 + GET_MODE_SIZE (GET_MODE (reg));
4252 init_live_subregs
4253 (bitmap_bit_p (live_relevant_regs, regno),
4254 live_subregs, live_subregs_used, regno, reg);
4256 /* Ignore the paradoxical bits. */
4257 if (last > SBITMAP_SIZE (live_subregs[regno]))
4258 last = SBITMAP_SIZE (live_subregs[regno]);
4260 while (start < last)
4262 bitmap_set_bit (live_subregs[regno], start);
4263 start++;
4266 else
4267 /* Resetting the live_subregs_used is
4268 effectively saying do not use the subregs
4269 because we are reading the whole
4270 pseudo. */
4271 bitmap_clear_bit (live_subregs_used, regno);
4272 bitmap_set_bit (live_relevant_regs, regno);
4278 /* FIXME!! The following code is a disaster. Reload needs to see the
4279 labels and jump tables that are just hanging out in between
4280 the basic blocks. See pr33676. */
4281 insn = BB_HEAD (bb);
4283 /* Skip over the barriers and cruft. */
4284 while (insn && (BARRIER_P (insn) || NOTE_P (insn)
4285 || BLOCK_FOR_INSN (insn) == bb))
4286 insn = PREV_INSN (insn);
4288 /* While we add anything except barriers and notes, the focus is
4289 to get the labels and jump tables into the
4290 reload_insn_chain. */
4291 while (insn)
4293 if (!NOTE_P (insn) && !BARRIER_P (insn))
4295 if (BLOCK_FOR_INSN (insn))
4296 break;
4298 c = new_insn_chain ();
4299 c->next = next;
4300 next = c;
4301 *p = c;
4302 p = &c->prev;
4304 /* The block makes no sense here, but it is what the old
4305 code did. */
4306 c->block = bb->index;
4307 c->insn = insn;
4308 bitmap_copy (&c->live_throughout, live_relevant_regs);
4310 insn = PREV_INSN (insn);
4314 reload_insn_chain = c;
4315 *p = NULL;
4317 for (i = 0; i < (unsigned int) max_regno; i++)
4318 if (live_subregs[i] != NULL)
4319 sbitmap_free (live_subregs[i]);
4320 free (live_subregs);
4321 BITMAP_FREE (live_subregs_used);
4322 BITMAP_FREE (live_relevant_regs);
4323 BITMAP_FREE (elim_regset);
4325 if (dump_file)
4326 print_insn_chains (dump_file);
4329 /* Examine the rtx found in *LOC, which is read or written to as determined
4330 by TYPE. Return false if we find a reason why an insn containing this
4331 rtx should not be moved (such as accesses to non-constant memory), true
4332 otherwise. */
4333 static bool
4334 rtx_moveable_p (rtx *loc, enum op_type type)
4336 const char *fmt;
4337 rtx x = *loc;
4338 enum rtx_code code = GET_CODE (x);
4339 int i, j;
4341 code = GET_CODE (x);
4342 switch (code)
4344 case CONST:
4345 CASE_CONST_ANY:
4346 case SYMBOL_REF:
4347 case LABEL_REF:
4348 return true;
4350 case PC:
4351 return type == OP_IN;
4353 case CC0:
4354 return false;
4356 case REG:
4357 if (x == frame_pointer_rtx)
4358 return true;
4359 if (HARD_REGISTER_P (x))
4360 return false;
4362 return true;
4364 case MEM:
4365 if (type == OP_IN && MEM_READONLY_P (x))
4366 return rtx_moveable_p (&XEXP (x, 0), OP_IN);
4367 return false;
4369 case SET:
4370 return (rtx_moveable_p (&SET_SRC (x), OP_IN)
4371 && rtx_moveable_p (&SET_DEST (x), OP_OUT));
4373 case STRICT_LOW_PART:
4374 return rtx_moveable_p (&XEXP (x, 0), OP_OUT);
4376 case ZERO_EXTRACT:
4377 case SIGN_EXTRACT:
4378 return (rtx_moveable_p (&XEXP (x, 0), type)
4379 && rtx_moveable_p (&XEXP (x, 1), OP_IN)
4380 && rtx_moveable_p (&XEXP (x, 2), OP_IN));
4382 case CLOBBER:
4383 return rtx_moveable_p (&SET_DEST (x), OP_OUT);
4385 case UNSPEC_VOLATILE:
4386 /* It is a bad idea to consider insns with with such rtl
4387 as moveable ones. The insn scheduler also considers them as barrier
4388 for a reason. */
4389 return false;
4391 default:
4392 break;
4395 fmt = GET_RTX_FORMAT (code);
4396 for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
4398 if (fmt[i] == 'e')
4400 if (!rtx_moveable_p (&XEXP (x, i), type))
4401 return false;
4403 else if (fmt[i] == 'E')
4404 for (j = XVECLEN (x, i) - 1; j >= 0; j--)
4406 if (!rtx_moveable_p (&XVECEXP (x, i, j), type))
4407 return false;
4410 return true;
4413 /* A wrapper around dominated_by_p, which uses the information in UID_LUID
4414 to give dominance relationships between two insns I1 and I2. */
4415 static bool
4416 insn_dominated_by_p (rtx i1, rtx i2, int *uid_luid)
4418 basic_block bb1 = BLOCK_FOR_INSN (i1);
4419 basic_block bb2 = BLOCK_FOR_INSN (i2);
4421 if (bb1 == bb2)
4422 return uid_luid[INSN_UID (i2)] < uid_luid[INSN_UID (i1)];
4423 return dominated_by_p (CDI_DOMINATORS, bb1, bb2);
4426 /* Record the range of register numbers added by find_moveable_pseudos. */
4427 int first_moveable_pseudo, last_moveable_pseudo;
4429 /* These two vectors hold data for every register added by
4430 find_movable_pseudos, with index 0 holding data for the
4431 first_moveable_pseudo. */
4432 /* The original home register. */
4433 static vec<rtx> pseudo_replaced_reg;
4435 /* Look for instances where we have an instruction that is known to increase
4436 register pressure, and whose result is not used immediately. If it is
4437 possible to move the instruction downwards to just before its first use,
4438 split its lifetime into two ranges. We create a new pseudo to compute the
4439 value, and emit a move instruction just before the first use. If, after
4440 register allocation, the new pseudo remains unallocated, the function
4441 move_unallocated_pseudos then deletes the move instruction and places
4442 the computation just before the first use.
4444 Such a move is safe and profitable if all the input registers remain live
4445 and unchanged between the original computation and its first use. In such
4446 a situation, the computation is known to increase register pressure, and
4447 moving it is known to at least not worsen it.
4449 We restrict moves to only those cases where a register remains unallocated,
4450 in order to avoid interfering too much with the instruction schedule. As
4451 an exception, we may move insns which only modify their input register
4452 (typically induction variables), as this increases the freedom for our
4453 intended transformation, and does not limit the second instruction
4454 scheduler pass. */
4456 static void
4457 find_moveable_pseudos (void)
4459 unsigned i;
4460 int max_regs = max_reg_num ();
4461 int max_uid = get_max_uid ();
4462 basic_block bb;
4463 int *uid_luid = XNEWVEC (int, max_uid);
4464 rtx_insn **closest_uses = XNEWVEC (rtx_insn *, max_regs);
4465 /* A set of registers which are live but not modified throughout a block. */
4466 bitmap_head *bb_transp_live = XNEWVEC (bitmap_head,
4467 last_basic_block_for_fn (cfun));
4468 /* A set of registers which only exist in a given basic block. */
4469 bitmap_head *bb_local = XNEWVEC (bitmap_head,
4470 last_basic_block_for_fn (cfun));
4471 /* A set of registers which are set once, in an instruction that can be
4472 moved freely downwards, but are otherwise transparent to a block. */
4473 bitmap_head *bb_moveable_reg_sets = XNEWVEC (bitmap_head,
4474 last_basic_block_for_fn (cfun));
4475 bitmap_head live, used, set, interesting, unusable_as_input;
4476 bitmap_iterator bi;
4477 bitmap_initialize (&interesting, 0);
4479 first_moveable_pseudo = max_regs;
4480 pseudo_replaced_reg.release ();
4481 pseudo_replaced_reg.safe_grow_cleared (max_regs);
4483 df_analyze ();
4484 calculate_dominance_info (CDI_DOMINATORS);
4486 i = 0;
4487 bitmap_initialize (&live, 0);
4488 bitmap_initialize (&used, 0);
4489 bitmap_initialize (&set, 0);
4490 bitmap_initialize (&unusable_as_input, 0);
4491 FOR_EACH_BB_FN (bb, cfun)
4493 rtx_insn *insn;
4494 bitmap transp = bb_transp_live + bb->index;
4495 bitmap moveable = bb_moveable_reg_sets + bb->index;
4496 bitmap local = bb_local + bb->index;
4498 bitmap_initialize (local, 0);
4499 bitmap_initialize (transp, 0);
4500 bitmap_initialize (moveable, 0);
4501 bitmap_copy (&live, df_get_live_out (bb));
4502 bitmap_and_into (&live, df_get_live_in (bb));
4503 bitmap_copy (transp, &live);
4504 bitmap_clear (moveable);
4505 bitmap_clear (&live);
4506 bitmap_clear (&used);
4507 bitmap_clear (&set);
4508 FOR_BB_INSNS (bb, insn)
4509 if (NONDEBUG_INSN_P (insn))
4511 df_insn_info *insn_info = DF_INSN_INFO_GET (insn);
4512 df_ref def, use;
4514 uid_luid[INSN_UID (insn)] = i++;
4516 def = df_single_def (insn_info);
4517 use = df_single_use (insn_info);
4518 if (use
4519 && def
4520 && DF_REF_REGNO (use) == DF_REF_REGNO (def)
4521 && !bitmap_bit_p (&set, DF_REF_REGNO (use))
4522 && rtx_moveable_p (&PATTERN (insn), OP_IN))
4524 unsigned regno = DF_REF_REGNO (use);
4525 bitmap_set_bit (moveable, regno);
4526 bitmap_set_bit (&set, regno);
4527 bitmap_set_bit (&used, regno);
4528 bitmap_clear_bit (transp, regno);
4529 continue;
4531 FOR_EACH_INSN_INFO_USE (use, insn_info)
4533 unsigned regno = DF_REF_REGNO (use);
4534 bitmap_set_bit (&used, regno);
4535 if (bitmap_clear_bit (moveable, regno))
4536 bitmap_clear_bit (transp, regno);
4539 FOR_EACH_INSN_INFO_DEF (def, insn_info)
4541 unsigned regno = DF_REF_REGNO (def);
4542 bitmap_set_bit (&set, regno);
4543 bitmap_clear_bit (transp, regno);
4544 bitmap_clear_bit (moveable, regno);
4549 bitmap_clear (&live);
4550 bitmap_clear (&used);
4551 bitmap_clear (&set);
4553 FOR_EACH_BB_FN (bb, cfun)
4555 bitmap local = bb_local + bb->index;
4556 rtx_insn *insn;
4558 FOR_BB_INSNS (bb, insn)
4559 if (NONDEBUG_INSN_P (insn))
4561 df_insn_info *insn_info = DF_INSN_INFO_GET (insn);
4562 rtx_insn *def_insn;
4563 rtx closest_use, note;
4564 df_ref def, use;
4565 unsigned regno;
4566 bool all_dominated, all_local;
4567 machine_mode mode;
4569 def = df_single_def (insn_info);
4570 /* There must be exactly one def in this insn. */
4571 if (!def || !single_set (insn))
4572 continue;
4573 /* This must be the only definition of the reg. We also limit
4574 which modes we deal with so that we can assume we can generate
4575 move instructions. */
4576 regno = DF_REF_REGNO (def);
4577 mode = GET_MODE (DF_REF_REG (def));
4578 if (DF_REG_DEF_COUNT (regno) != 1
4579 || !DF_REF_INSN_INFO (def)
4580 || HARD_REGISTER_NUM_P (regno)
4581 || DF_REG_EQ_USE_COUNT (regno) > 0
4582 || (!INTEGRAL_MODE_P (mode) && !FLOAT_MODE_P (mode)))
4583 continue;
4584 def_insn = DF_REF_INSN (def);
4586 for (note = REG_NOTES (def_insn); note; note = XEXP (note, 1))
4587 if (REG_NOTE_KIND (note) == REG_EQUIV && MEM_P (XEXP (note, 0)))
4588 break;
4590 if (note)
4592 if (dump_file)
4593 fprintf (dump_file, "Ignoring reg %d, has equiv memory\n",
4594 regno);
4595 bitmap_set_bit (&unusable_as_input, regno);
4596 continue;
4599 use = DF_REG_USE_CHAIN (regno);
4600 all_dominated = true;
4601 all_local = true;
4602 closest_use = NULL_RTX;
4603 for (; use; use = DF_REF_NEXT_REG (use))
4605 rtx_insn *insn;
4606 if (!DF_REF_INSN_INFO (use))
4608 all_dominated = false;
4609 all_local = false;
4610 break;
4612 insn = DF_REF_INSN (use);
4613 if (DEBUG_INSN_P (insn))
4614 continue;
4615 if (BLOCK_FOR_INSN (insn) != BLOCK_FOR_INSN (def_insn))
4616 all_local = false;
4617 if (!insn_dominated_by_p (insn, def_insn, uid_luid))
4618 all_dominated = false;
4619 if (closest_use != insn && closest_use != const0_rtx)
4621 if (closest_use == NULL_RTX)
4622 closest_use = insn;
4623 else if (insn_dominated_by_p (closest_use, insn, uid_luid))
4624 closest_use = insn;
4625 else if (!insn_dominated_by_p (insn, closest_use, uid_luid))
4626 closest_use = const0_rtx;
4629 if (!all_dominated)
4631 if (dump_file)
4632 fprintf (dump_file, "Reg %d not all uses dominated by set\n",
4633 regno);
4634 continue;
4636 if (all_local)
4637 bitmap_set_bit (local, regno);
4638 if (closest_use == const0_rtx || closest_use == NULL
4639 || next_nonnote_nondebug_insn (def_insn) == closest_use)
4641 if (dump_file)
4642 fprintf (dump_file, "Reg %d uninteresting%s\n", regno,
4643 closest_use == const0_rtx || closest_use == NULL
4644 ? " (no unique first use)" : "");
4645 continue;
4647 if (HAVE_cc0 && reg_referenced_p (cc0_rtx, PATTERN (closest_use)))
4649 if (dump_file)
4650 fprintf (dump_file, "Reg %d: closest user uses cc0\n",
4651 regno);
4652 continue;
4655 bitmap_set_bit (&interesting, regno);
4656 /* If we get here, we know closest_use is a non-NULL insn
4657 (as opposed to const_0_rtx). */
4658 closest_uses[regno] = as_a <rtx_insn *> (closest_use);
4660 if (dump_file && (all_local || all_dominated))
4662 fprintf (dump_file, "Reg %u:", regno);
4663 if (all_local)
4664 fprintf (dump_file, " local to bb %d", bb->index);
4665 if (all_dominated)
4666 fprintf (dump_file, " def dominates all uses");
4667 if (closest_use != const0_rtx)
4668 fprintf (dump_file, " has unique first use");
4669 fputs ("\n", dump_file);
4674 EXECUTE_IF_SET_IN_BITMAP (&interesting, 0, i, bi)
4676 df_ref def = DF_REG_DEF_CHAIN (i);
4677 rtx_insn *def_insn = DF_REF_INSN (def);
4678 basic_block def_block = BLOCK_FOR_INSN (def_insn);
4679 bitmap def_bb_local = bb_local + def_block->index;
4680 bitmap def_bb_moveable = bb_moveable_reg_sets + def_block->index;
4681 bitmap def_bb_transp = bb_transp_live + def_block->index;
4682 bool local_to_bb_p = bitmap_bit_p (def_bb_local, i);
4683 rtx_insn *use_insn = closest_uses[i];
4684 df_ref use;
4685 bool all_ok = true;
4686 bool all_transp = true;
4688 if (!REG_P (DF_REF_REG (def)))
4689 continue;
4691 if (!local_to_bb_p)
4693 if (dump_file)
4694 fprintf (dump_file, "Reg %u not local to one basic block\n",
4696 continue;
4698 if (reg_equiv_init (i) != NULL_RTX)
4700 if (dump_file)
4701 fprintf (dump_file, "Ignoring reg %u with equiv init insn\n",
4703 continue;
4705 if (!rtx_moveable_p (&PATTERN (def_insn), OP_IN))
4707 if (dump_file)
4708 fprintf (dump_file, "Found def insn %d for %d to be not moveable\n",
4709 INSN_UID (def_insn), i);
4710 continue;
4712 if (dump_file)
4713 fprintf (dump_file, "Examining insn %d, def for %d\n",
4714 INSN_UID (def_insn), i);
4715 FOR_EACH_INSN_USE (use, def_insn)
4717 unsigned regno = DF_REF_REGNO (use);
4718 if (bitmap_bit_p (&unusable_as_input, regno))
4720 all_ok = false;
4721 if (dump_file)
4722 fprintf (dump_file, " found unusable input reg %u.\n", regno);
4723 break;
4725 if (!bitmap_bit_p (def_bb_transp, regno))
4727 if (bitmap_bit_p (def_bb_moveable, regno)
4728 && !control_flow_insn_p (use_insn)
4729 && (!HAVE_cc0 || !sets_cc0_p (use_insn)))
4731 if (modified_between_p (DF_REF_REG (use), def_insn, use_insn))
4733 rtx_insn *x = NEXT_INSN (def_insn);
4734 while (!modified_in_p (DF_REF_REG (use), x))
4736 gcc_assert (x != use_insn);
4737 x = NEXT_INSN (x);
4739 if (dump_file)
4740 fprintf (dump_file, " input reg %u modified but insn %d moveable\n",
4741 regno, INSN_UID (x));
4742 emit_insn_after (PATTERN (x), use_insn);
4743 set_insn_deleted (x);
4745 else
4747 if (dump_file)
4748 fprintf (dump_file, " input reg %u modified between def and use\n",
4749 regno);
4750 all_transp = false;
4753 else
4754 all_transp = false;
4757 if (!all_ok)
4758 continue;
4759 if (!dbg_cnt (ira_move))
4760 break;
4761 if (dump_file)
4762 fprintf (dump_file, " all ok%s\n", all_transp ? " and transp" : "");
4764 if (all_transp)
4766 rtx def_reg = DF_REF_REG (def);
4767 rtx newreg = ira_create_new_reg (def_reg);
4768 if (validate_change (def_insn, DF_REF_REAL_LOC (def), newreg, 0))
4770 unsigned nregno = REGNO (newreg);
4771 emit_insn_before (gen_move_insn (def_reg, newreg), use_insn);
4772 nregno -= max_regs;
4773 pseudo_replaced_reg[nregno] = def_reg;
4778 FOR_EACH_BB_FN (bb, cfun)
4780 bitmap_clear (bb_local + bb->index);
4781 bitmap_clear (bb_transp_live + bb->index);
4782 bitmap_clear (bb_moveable_reg_sets + bb->index);
4784 bitmap_clear (&interesting);
4785 bitmap_clear (&unusable_as_input);
4786 free (uid_luid);
4787 free (closest_uses);
4788 free (bb_local);
4789 free (bb_transp_live);
4790 free (bb_moveable_reg_sets);
4792 last_moveable_pseudo = max_reg_num ();
4794 fix_reg_equiv_init ();
4795 expand_reg_info ();
4796 regstat_free_n_sets_and_refs ();
4797 regstat_free_ri ();
4798 regstat_init_n_sets_and_refs ();
4799 regstat_compute_ri ();
4800 free_dominance_info (CDI_DOMINATORS);
4803 /* If SET pattern SET is an assignment from a hard register to a pseudo which
4804 is live at CALL_DOM (if non-NULL, otherwise this check is omitted), return
4805 the destination. Otherwise return NULL. */
4807 static rtx
4808 interesting_dest_for_shprep_1 (rtx set, basic_block call_dom)
4810 rtx src = SET_SRC (set);
4811 rtx dest = SET_DEST (set);
4812 if (!REG_P (src) || !HARD_REGISTER_P (src)
4813 || !REG_P (dest) || HARD_REGISTER_P (dest)
4814 || (call_dom && !bitmap_bit_p (df_get_live_in (call_dom), REGNO (dest))))
4815 return NULL;
4816 return dest;
4819 /* If insn is interesting for parameter range-splitting shrink-wrapping
4820 preparation, i.e. it is a single set from a hard register to a pseudo, which
4821 is live at CALL_DOM (if non-NULL, otherwise this check is omitted), or a
4822 parallel statement with only one such statement, return the destination.
4823 Otherwise return NULL. */
4825 static rtx
4826 interesting_dest_for_shprep (rtx_insn *insn, basic_block call_dom)
4828 if (!INSN_P (insn))
4829 return NULL;
4830 rtx pat = PATTERN (insn);
4831 if (GET_CODE (pat) == SET)
4832 return interesting_dest_for_shprep_1 (pat, call_dom);
4834 if (GET_CODE (pat) != PARALLEL)
4835 return NULL;
4836 rtx ret = NULL;
4837 for (int i = 0; i < XVECLEN (pat, 0); i++)
4839 rtx sub = XVECEXP (pat, 0, i);
4840 if (GET_CODE (sub) == USE || GET_CODE (sub) == CLOBBER)
4841 continue;
4842 if (GET_CODE (sub) != SET
4843 || side_effects_p (sub))
4844 return NULL;
4845 rtx dest = interesting_dest_for_shprep_1 (sub, call_dom);
4846 if (dest && ret)
4847 return NULL;
4848 if (dest)
4849 ret = dest;
4851 return ret;
4854 /* Split live ranges of pseudos that are loaded from hard registers in the
4855 first BB in a BB that dominates all non-sibling call if such a BB can be
4856 found and is not in a loop. Return true if the function has made any
4857 changes. */
4859 static bool
4860 split_live_ranges_for_shrink_wrap (void)
4862 basic_block bb, call_dom = NULL;
4863 basic_block first = single_succ (ENTRY_BLOCK_PTR_FOR_FN (cfun));
4864 rtx_insn *insn, *last_interesting_insn = NULL;
4865 bitmap_head need_new, reachable;
4866 vec<basic_block> queue;
4868 if (!SHRINK_WRAPPING_ENABLED)
4869 return false;
4871 bitmap_initialize (&need_new, 0);
4872 bitmap_initialize (&reachable, 0);
4873 queue.create (n_basic_blocks_for_fn (cfun));
4875 FOR_EACH_BB_FN (bb, cfun)
4876 FOR_BB_INSNS (bb, insn)
4877 if (CALL_P (insn) && !SIBLING_CALL_P (insn))
4879 if (bb == first)
4881 bitmap_clear (&need_new);
4882 bitmap_clear (&reachable);
4883 queue.release ();
4884 return false;
4887 bitmap_set_bit (&need_new, bb->index);
4888 bitmap_set_bit (&reachable, bb->index);
4889 queue.quick_push (bb);
4890 break;
4893 if (queue.is_empty ())
4895 bitmap_clear (&need_new);
4896 bitmap_clear (&reachable);
4897 queue.release ();
4898 return false;
4901 while (!queue.is_empty ())
4903 edge e;
4904 edge_iterator ei;
4906 bb = queue.pop ();
4907 FOR_EACH_EDGE (e, ei, bb->succs)
4908 if (e->dest != EXIT_BLOCK_PTR_FOR_FN (cfun)
4909 && bitmap_set_bit (&reachable, e->dest->index))
4910 queue.quick_push (e->dest);
4912 queue.release ();
4914 FOR_BB_INSNS (first, insn)
4916 rtx dest = interesting_dest_for_shprep (insn, NULL);
4917 if (!dest)
4918 continue;
4920 if (DF_REG_DEF_COUNT (REGNO (dest)) > 1)
4922 bitmap_clear (&need_new);
4923 bitmap_clear (&reachable);
4924 return false;
4927 for (df_ref use = DF_REG_USE_CHAIN (REGNO(dest));
4928 use;
4929 use = DF_REF_NEXT_REG (use))
4931 int ubbi = DF_REF_BB (use)->index;
4932 if (bitmap_bit_p (&reachable, ubbi))
4933 bitmap_set_bit (&need_new, ubbi);
4935 last_interesting_insn = insn;
4938 bitmap_clear (&reachable);
4939 if (!last_interesting_insn)
4941 bitmap_clear (&need_new);
4942 return false;
4945 call_dom = nearest_common_dominator_for_set (CDI_DOMINATORS, &need_new);
4946 bitmap_clear (&need_new);
4947 if (call_dom == first)
4948 return false;
4950 loop_optimizer_init (AVOID_CFG_MODIFICATIONS);
4951 while (bb_loop_depth (call_dom) > 0)
4952 call_dom = get_immediate_dominator (CDI_DOMINATORS, call_dom);
4953 loop_optimizer_finalize ();
4955 if (call_dom == first)
4956 return false;
4958 calculate_dominance_info (CDI_POST_DOMINATORS);
4959 if (dominated_by_p (CDI_POST_DOMINATORS, first, call_dom))
4961 free_dominance_info (CDI_POST_DOMINATORS);
4962 return false;
4964 free_dominance_info (CDI_POST_DOMINATORS);
4966 if (dump_file)
4967 fprintf (dump_file, "Will split live ranges of parameters at BB %i\n",
4968 call_dom->index);
4970 bool ret = false;
4971 FOR_BB_INSNS (first, insn)
4973 rtx dest = interesting_dest_for_shprep (insn, call_dom);
4974 if (!dest || dest == pic_offset_table_rtx)
4975 continue;
4977 rtx newreg = NULL_RTX;
4978 df_ref use, next;
4979 for (use = DF_REG_USE_CHAIN (REGNO (dest)); use; use = next)
4981 rtx_insn *uin = DF_REF_INSN (use);
4982 next = DF_REF_NEXT_REG (use);
4984 basic_block ubb = BLOCK_FOR_INSN (uin);
4985 if (ubb == call_dom
4986 || dominated_by_p (CDI_DOMINATORS, ubb, call_dom))
4988 if (!newreg)
4989 newreg = ira_create_new_reg (dest);
4990 validate_change (uin, DF_REF_REAL_LOC (use), newreg, true);
4994 if (newreg)
4996 rtx new_move = gen_move_insn (newreg, dest);
4997 emit_insn_after (new_move, bb_note (call_dom));
4998 if (dump_file)
5000 fprintf (dump_file, "Split live-range of register ");
5001 print_rtl_single (dump_file, dest);
5003 ret = true;
5006 if (insn == last_interesting_insn)
5007 break;
5009 apply_change_group ();
5010 return ret;
5013 /* Perform the second half of the transformation started in
5014 find_moveable_pseudos. We look for instances where the newly introduced
5015 pseudo remains unallocated, and remove it by moving the definition to
5016 just before its use, replacing the move instruction generated by
5017 find_moveable_pseudos. */
5018 static void
5019 move_unallocated_pseudos (void)
5021 int i;
5022 for (i = first_moveable_pseudo; i < last_moveable_pseudo; i++)
5023 if (reg_renumber[i] < 0)
5025 int idx = i - first_moveable_pseudo;
5026 rtx other_reg = pseudo_replaced_reg[idx];
5027 rtx_insn *def_insn = DF_REF_INSN (DF_REG_DEF_CHAIN (i));
5028 /* The use must follow all definitions of OTHER_REG, so we can
5029 insert the new definition immediately after any of them. */
5030 df_ref other_def = DF_REG_DEF_CHAIN (REGNO (other_reg));
5031 rtx_insn *move_insn = DF_REF_INSN (other_def);
5032 rtx_insn *newinsn = emit_insn_after (PATTERN (def_insn), move_insn);
5033 rtx set;
5034 int success;
5036 if (dump_file)
5037 fprintf (dump_file, "moving def of %d (insn %d now) ",
5038 REGNO (other_reg), INSN_UID (def_insn));
5040 delete_insn (move_insn);
5041 while ((other_def = DF_REG_DEF_CHAIN (REGNO (other_reg))))
5042 delete_insn (DF_REF_INSN (other_def));
5043 delete_insn (def_insn);
5045 set = single_set (newinsn);
5046 success = validate_change (newinsn, &SET_DEST (set), other_reg, 0);
5047 gcc_assert (success);
5048 if (dump_file)
5049 fprintf (dump_file, " %d) rather than keep unallocated replacement %d\n",
5050 INSN_UID (newinsn), i);
5051 SET_REG_N_REFS (i, 0);
5055 /* If the backend knows where to allocate pseudos for hard
5056 register initial values, register these allocations now. */
5057 static void
5058 allocate_initial_values (void)
5060 if (targetm.allocate_initial_value)
5062 rtx hreg, preg, x;
5063 int i, regno;
5065 for (i = 0; HARD_REGISTER_NUM_P (i); i++)
5067 if (! initial_value_entry (i, &hreg, &preg))
5068 break;
5070 x = targetm.allocate_initial_value (hreg);
5071 regno = REGNO (preg);
5072 if (x && REG_N_SETS (regno) <= 1)
5074 if (MEM_P (x))
5075 reg_equiv_memory_loc (regno) = x;
5076 else
5078 basic_block bb;
5079 int new_regno;
5081 gcc_assert (REG_P (x));
5082 new_regno = REGNO (x);
5083 reg_renumber[regno] = new_regno;
5084 /* Poke the regno right into regno_reg_rtx so that even
5085 fixed regs are accepted. */
5086 SET_REGNO (preg, new_regno);
5087 /* Update global register liveness information. */
5088 FOR_EACH_BB_FN (bb, cfun)
5090 if (REGNO_REG_SET_P (df_get_live_in (bb), regno))
5091 SET_REGNO_REG_SET (df_get_live_in (bb), new_regno);
5092 if (REGNO_REG_SET_P (df_get_live_out (bb), regno))
5093 SET_REGNO_REG_SET (df_get_live_out (bb), new_regno);
5099 gcc_checking_assert (! initial_value_entry (FIRST_PSEUDO_REGISTER,
5100 &hreg, &preg));
5105 /* True when we use LRA instead of reload pass for the current
5106 function. */
5107 bool ira_use_lra_p;
5109 /* True if we have allocno conflicts. It is false for non-optimized
5110 mode or when the conflict table is too big. */
5111 bool ira_conflicts_p;
5113 /* Saved between IRA and reload. */
5114 static int saved_flag_ira_share_spill_slots;
5116 /* This is the main entry of IRA. */
5117 static void
5118 ira (FILE *f)
5120 bool loops_p;
5121 int ira_max_point_before_emit;
5122 int rebuild_p;
5123 bool saved_flag_caller_saves = flag_caller_saves;
5124 enum ira_region saved_flag_ira_region = flag_ira_region;
5126 /* Perform target specific PIC register initialization. */
5127 targetm.init_pic_reg ();
5129 ira_conflicts_p = optimize > 0;
5131 ira_use_lra_p = targetm.lra_p ();
5132 /* If there are too many pseudos and/or basic blocks (e.g. 10K
5133 pseudos and 10K blocks or 100K pseudos and 1K blocks), we will
5134 use simplified and faster algorithms in LRA. */
5135 lra_simple_p
5136 = (ira_use_lra_p
5137 && max_reg_num () >= (1 << 26) / last_basic_block_for_fn (cfun));
5138 if (lra_simple_p)
5140 /* It permits to skip live range splitting in LRA. */
5141 flag_caller_saves = false;
5142 /* There is no sense to do regional allocation when we use
5143 simplified LRA. */
5144 flag_ira_region = IRA_REGION_ONE;
5145 ira_conflicts_p = false;
5148 #ifndef IRA_NO_OBSTACK
5149 gcc_obstack_init (&ira_obstack);
5150 #endif
5151 bitmap_obstack_initialize (&ira_bitmap_obstack);
5153 /* LRA uses its own infrastructure to handle caller save registers. */
5154 if (flag_caller_saves && !ira_use_lra_p)
5155 init_caller_save ();
5157 if (flag_ira_verbose < 10)
5159 internal_flag_ira_verbose = flag_ira_verbose;
5160 ira_dump_file = f;
5162 else
5164 internal_flag_ira_verbose = flag_ira_verbose - 10;
5165 ira_dump_file = stderr;
5168 setup_prohibited_mode_move_regs ();
5169 decrease_live_ranges_number ();
5170 df_note_add_problem ();
5172 /* DF_LIVE can't be used in the register allocator, too many other
5173 parts of the compiler depend on using the "classic" liveness
5174 interpretation of the DF_LR problem. See PR38711.
5175 Remove the problem, so that we don't spend time updating it in
5176 any of the df_analyze() calls during IRA/LRA. */
5177 if (optimize > 1)
5178 df_remove_problem (df_live);
5179 gcc_checking_assert (df_live == NULL);
5181 #ifdef ENABLE_CHECKING
5182 df->changeable_flags |= DF_VERIFY_SCHEDULED;
5183 #endif
5184 df_analyze ();
5186 init_reg_equiv ();
5187 if (ira_conflicts_p)
5189 calculate_dominance_info (CDI_DOMINATORS);
5191 if (split_live_ranges_for_shrink_wrap ())
5192 df_analyze ();
5194 free_dominance_info (CDI_DOMINATORS);
5197 df_clear_flags (DF_NO_INSN_RESCAN);
5199 regstat_init_n_sets_and_refs ();
5200 regstat_compute_ri ();
5202 /* If we are not optimizing, then this is the only place before
5203 register allocation where dataflow is done. And that is needed
5204 to generate these warnings. */
5205 if (warn_clobbered)
5206 generate_setjmp_warnings ();
5208 /* Determine if the current function is a leaf before running IRA
5209 since this can impact optimizations done by the prologue and
5210 epilogue thus changing register elimination offsets. */
5211 crtl->is_leaf = leaf_function_p ();
5213 if (resize_reg_info () && flag_ira_loop_pressure)
5214 ira_set_pseudo_classes (true, ira_dump_file);
5216 rebuild_p = update_equiv_regs ();
5217 setup_reg_equiv ();
5218 setup_reg_equiv_init ();
5220 if (optimize && rebuild_p)
5222 timevar_push (TV_JUMP);
5223 rebuild_jump_labels (get_insns ());
5224 if (purge_all_dead_edges ())
5225 delete_unreachable_blocks ();
5226 timevar_pop (TV_JUMP);
5229 allocated_reg_info_size = max_reg_num ();
5231 if (delete_trivially_dead_insns (get_insns (), max_reg_num ()))
5232 df_analyze ();
5234 /* It is not worth to do such improvement when we use a simple
5235 allocation because of -O0 usage or because the function is too
5236 big. */
5237 if (ira_conflicts_p)
5238 find_moveable_pseudos ();
5240 max_regno_before_ira = max_reg_num ();
5241 ira_setup_eliminable_regset ();
5243 ira_overall_cost = ira_reg_cost = ira_mem_cost = 0;
5244 ira_load_cost = ira_store_cost = ira_shuffle_cost = 0;
5245 ira_move_loops_num = ira_additional_jumps_num = 0;
5247 ira_assert (current_loops == NULL);
5248 if (flag_ira_region == IRA_REGION_ALL || flag_ira_region == IRA_REGION_MIXED)
5249 loop_optimizer_init (AVOID_CFG_MODIFICATIONS | LOOPS_HAVE_RECORDED_EXITS);
5251 if (internal_flag_ira_verbose > 0 && ira_dump_file != NULL)
5252 fprintf (ira_dump_file, "Building IRA IR\n");
5253 loops_p = ira_build ();
5255 ira_assert (ira_conflicts_p || !loops_p);
5257 saved_flag_ira_share_spill_slots = flag_ira_share_spill_slots;
5258 if (too_high_register_pressure_p () || cfun->calls_setjmp)
5259 /* It is just wasting compiler's time to pack spilled pseudos into
5260 stack slots in this case -- prohibit it. We also do this if
5261 there is setjmp call because a variable not modified between
5262 setjmp and longjmp the compiler is required to preserve its
5263 value and sharing slots does not guarantee it. */
5264 flag_ira_share_spill_slots = FALSE;
5266 ira_color ();
5268 ira_max_point_before_emit = ira_max_point;
5270 ira_initiate_emit_data ();
5272 ira_emit (loops_p);
5274 max_regno = max_reg_num ();
5275 if (ira_conflicts_p)
5277 if (! loops_p)
5279 if (! ira_use_lra_p)
5280 ira_initiate_assign ();
5282 else
5284 expand_reg_info ();
5286 if (ira_use_lra_p)
5288 ira_allocno_t a;
5289 ira_allocno_iterator ai;
5291 FOR_EACH_ALLOCNO (a, ai)
5293 int old_regno = ALLOCNO_REGNO (a);
5294 int new_regno = REGNO (ALLOCNO_EMIT_DATA (a)->reg);
5296 ALLOCNO_REGNO (a) = new_regno;
5298 if (old_regno != new_regno)
5299 setup_reg_classes (new_regno, reg_preferred_class (old_regno),
5300 reg_alternate_class (old_regno),
5301 reg_allocno_class (old_regno));
5305 else
5307 if (internal_flag_ira_verbose > 0 && ira_dump_file != NULL)
5308 fprintf (ira_dump_file, "Flattening IR\n");
5309 ira_flattening (max_regno_before_ira, ira_max_point_before_emit);
5311 /* New insns were generated: add notes and recalculate live
5312 info. */
5313 df_analyze ();
5315 /* ??? Rebuild the loop tree, but why? Does the loop tree
5316 change if new insns were generated? Can that be handled
5317 by updating the loop tree incrementally? */
5318 loop_optimizer_finalize ();
5319 free_dominance_info (CDI_DOMINATORS);
5320 loop_optimizer_init (AVOID_CFG_MODIFICATIONS
5321 | LOOPS_HAVE_RECORDED_EXITS);
5323 if (! ira_use_lra_p)
5325 setup_allocno_assignment_flags ();
5326 ira_initiate_assign ();
5327 ira_reassign_conflict_allocnos (max_regno);
5332 ira_finish_emit_data ();
5334 setup_reg_renumber ();
5336 calculate_allocation_cost ();
5338 #ifdef ENABLE_IRA_CHECKING
5339 if (ira_conflicts_p)
5340 check_allocation ();
5341 #endif
5343 if (max_regno != max_regno_before_ira)
5345 regstat_free_n_sets_and_refs ();
5346 regstat_free_ri ();
5347 regstat_init_n_sets_and_refs ();
5348 regstat_compute_ri ();
5351 overall_cost_before = ira_overall_cost;
5352 if (! ira_conflicts_p)
5353 grow_reg_equivs ();
5354 else
5356 fix_reg_equiv_init ();
5358 #ifdef ENABLE_IRA_CHECKING
5359 print_redundant_copies ();
5360 #endif
5361 if (! ira_use_lra_p)
5363 ira_spilled_reg_stack_slots_num = 0;
5364 ira_spilled_reg_stack_slots
5365 = ((struct ira_spilled_reg_stack_slot *)
5366 ira_allocate (max_regno
5367 * sizeof (struct ira_spilled_reg_stack_slot)));
5368 memset (ira_spilled_reg_stack_slots, 0,
5369 max_regno * sizeof (struct ira_spilled_reg_stack_slot));
5372 allocate_initial_values ();
5374 /* See comment for find_moveable_pseudos call. */
5375 if (ira_conflicts_p)
5376 move_unallocated_pseudos ();
5378 /* Restore original values. */
5379 if (lra_simple_p)
5381 flag_caller_saves = saved_flag_caller_saves;
5382 flag_ira_region = saved_flag_ira_region;
5386 static void
5387 do_reload (void)
5389 basic_block bb;
5390 bool need_dce;
5391 unsigned pic_offset_table_regno = INVALID_REGNUM;
5393 if (flag_ira_verbose < 10)
5394 ira_dump_file = dump_file;
5396 /* If pic_offset_table_rtx is a pseudo register, then keep it so
5397 after reload to avoid possible wrong usages of hard reg assigned
5398 to it. */
5399 if (pic_offset_table_rtx
5400 && REGNO (pic_offset_table_rtx) >= FIRST_PSEUDO_REGISTER)
5401 pic_offset_table_regno = REGNO (pic_offset_table_rtx);
5403 timevar_push (TV_RELOAD);
5404 if (ira_use_lra_p)
5406 if (current_loops != NULL)
5408 loop_optimizer_finalize ();
5409 free_dominance_info (CDI_DOMINATORS);
5411 FOR_ALL_BB_FN (bb, cfun)
5412 bb->loop_father = NULL;
5413 current_loops = NULL;
5415 ira_destroy ();
5417 lra (ira_dump_file);
5418 /* ???!!! Move it before lra () when we use ira_reg_equiv in
5419 LRA. */
5420 vec_free (reg_equivs);
5421 reg_equivs = NULL;
5422 need_dce = false;
5424 else
5426 df_set_flags (DF_NO_INSN_RESCAN);
5427 build_insn_chain ();
5429 need_dce = reload (get_insns (), ira_conflicts_p);
5433 timevar_pop (TV_RELOAD);
5435 timevar_push (TV_IRA);
5437 if (ira_conflicts_p && ! ira_use_lra_p)
5439 ira_free (ira_spilled_reg_stack_slots);
5440 ira_finish_assign ();
5443 if (internal_flag_ira_verbose > 0 && ira_dump_file != NULL
5444 && overall_cost_before != ira_overall_cost)
5445 fprintf (ira_dump_file, "+++Overall after reload %"PRId64 "\n",
5446 ira_overall_cost);
5448 flag_ira_share_spill_slots = saved_flag_ira_share_spill_slots;
5450 if (! ira_use_lra_p)
5452 ira_destroy ();
5453 if (current_loops != NULL)
5455 loop_optimizer_finalize ();
5456 free_dominance_info (CDI_DOMINATORS);
5458 FOR_ALL_BB_FN (bb, cfun)
5459 bb->loop_father = NULL;
5460 current_loops = NULL;
5462 regstat_free_ri ();
5463 regstat_free_n_sets_and_refs ();
5466 if (optimize)
5467 cleanup_cfg (CLEANUP_EXPENSIVE);
5469 finish_reg_equiv ();
5471 bitmap_obstack_release (&ira_bitmap_obstack);
5472 #ifndef IRA_NO_OBSTACK
5473 obstack_free (&ira_obstack, NULL);
5474 #endif
5476 /* The code after the reload has changed so much that at this point
5477 we might as well just rescan everything. Note that
5478 df_rescan_all_insns is not going to help here because it does not
5479 touch the artificial uses and defs. */
5480 df_finish_pass (true);
5481 df_scan_alloc (NULL);
5482 df_scan_blocks ();
5484 if (optimize > 1)
5486 df_live_add_problem ();
5487 df_live_set_all_dirty ();
5490 if (optimize)
5491 df_analyze ();
5493 if (need_dce && optimize)
5494 run_fast_dce ();
5496 /* Diagnose uses of the hard frame pointer when it is used as a global
5497 register. Often we can get away with letting the user appropriate
5498 the frame pointer, but we should let them know when code generation
5499 makes that impossible. */
5500 if (global_regs[HARD_FRAME_POINTER_REGNUM] && frame_pointer_needed)
5502 tree decl = global_regs_decl[HARD_FRAME_POINTER_REGNUM];
5503 error_at (DECL_SOURCE_LOCATION (current_function_decl),
5504 "frame pointer required, but reserved");
5505 inform (DECL_SOURCE_LOCATION (decl), "for %qD", decl);
5508 if (pic_offset_table_regno != INVALID_REGNUM)
5509 pic_offset_table_rtx = gen_rtx_REG (Pmode, pic_offset_table_regno);
5511 timevar_pop (TV_IRA);
5514 /* Run the integrated register allocator. */
5516 namespace {
5518 const pass_data pass_data_ira =
5520 RTL_PASS, /* type */
5521 "ira", /* name */
5522 OPTGROUP_NONE, /* optinfo_flags */
5523 TV_IRA, /* tv_id */
5524 0, /* properties_required */
5525 0, /* properties_provided */
5526 0, /* properties_destroyed */
5527 0, /* todo_flags_start */
5528 TODO_do_not_ggc_collect, /* todo_flags_finish */
5531 class pass_ira : public rtl_opt_pass
5533 public:
5534 pass_ira (gcc::context *ctxt)
5535 : rtl_opt_pass (pass_data_ira, ctxt)
5538 /* opt_pass methods: */
5539 virtual bool gate (function *)
5541 return !targetm.no_register_allocation;
5543 virtual unsigned int execute (function *)
5545 ira (dump_file);
5546 return 0;
5549 }; // class pass_ira
5551 } // anon namespace
5553 rtl_opt_pass *
5554 make_pass_ira (gcc::context *ctxt)
5556 return new pass_ira (ctxt);
5559 namespace {
5561 const pass_data pass_data_reload =
5563 RTL_PASS, /* type */
5564 "reload", /* name */
5565 OPTGROUP_NONE, /* optinfo_flags */
5566 TV_RELOAD, /* tv_id */
5567 0, /* properties_required */
5568 0, /* properties_provided */
5569 0, /* properties_destroyed */
5570 0, /* todo_flags_start */
5571 0, /* todo_flags_finish */
5574 class pass_reload : public rtl_opt_pass
5576 public:
5577 pass_reload (gcc::context *ctxt)
5578 : rtl_opt_pass (pass_data_reload, ctxt)
5581 /* opt_pass methods: */
5582 virtual bool gate (function *)
5584 return !targetm.no_register_allocation;
5586 virtual unsigned int execute (function *)
5588 do_reload ();
5589 return 0;
5592 }; // class pass_reload
5594 } // anon namespace
5596 rtl_opt_pass *
5597 make_pass_reload (gcc::context *ctxt)
5599 return new pass_reload (ctxt);