1 /* IRA processing allocno lives to build allocno live ranges.
2 Copyright (C) 2006-2023 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
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
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/>. */
23 #include "coretypes.h"
31 #include "insn-config.h"
35 #include "sparseset.h"
36 #include "function-abi.h"
39 /* The code in this file is similar to one in global but the code
40 works on the allocno basis and creates live ranges instead of
41 pseudo-register conflicts. */
43 /* Program points are enumerated by numbers from range
44 0..IRA_MAX_POINT-1. There are approximately two times more program
45 points than insns. Program points are places in the program where
46 liveness info can be changed. In most general case (there are more
47 complicated cases too) some program points correspond to places
48 where input operand dies and other ones correspond to places where
49 output operands are born. */
52 /* Arrays of size IRA_MAX_POINT mapping a program point to the allocno
53 live ranges with given start/finish point. */
54 live_range_t
*ira_start_point_ranges
, *ira_finish_point_ranges
;
56 /* Number of the current program point. */
57 static int curr_point
;
59 /* Point where register pressure excess started or -1 if there is no
60 register pressure excess. Excess pressure for a register class at
61 some point means that there are more allocnos of given register
62 class living at the point than number of hard-registers of the
63 class available for the allocation. It is defined only for
65 static int high_pressure_start_point
[N_REG_CLASSES
];
67 /* Objects live at current point in the scan. */
68 static sparseset objects_live
;
70 /* A temporary bitmap used in functions that wish to avoid visiting an allocno
72 static sparseset allocnos_processed
;
74 /* Set of hard regs (except eliminable ones) currently live. */
75 static HARD_REG_SET hard_regs_live
;
77 /* The loop tree node corresponding to the current basic block. */
78 static ira_loop_tree_node_t curr_bb_node
;
80 /* The number of the last processed call. */
81 static int last_call_num
;
82 /* The number of last call at which given allocno was saved. */
83 static int *allocno_saved_at_call
;
85 /* The value returned by ira_setup_alts for the current instruction;
86 i.e. the set of alternatives that we should consider to be likely
87 candidates during reloading. */
88 static alternative_mask preferred_alternatives
;
90 /* If non-NULL, the source operand of a register to register copy for which
91 we should not add a conflict with the copy's destination operand. */
92 static rtx ignore_reg_for_conflicts
;
94 /* Record hard register REGNO as now being live. */
96 make_hard_regno_live (int regno
)
98 SET_HARD_REG_BIT (hard_regs_live
, regno
);
101 /* Process the definition of hard register REGNO. This updates
102 hard_regs_live and hard reg conflict information for living allocnos. */
104 make_hard_regno_dead (int regno
)
107 EXECUTE_IF_SET_IN_SPARSESET (objects_live
, i
)
109 ira_object_t obj
= ira_object_id_map
[i
];
111 if (ignore_reg_for_conflicts
!= NULL_RTX
112 && REGNO (ignore_reg_for_conflicts
)
113 == (unsigned int) ALLOCNO_REGNO (OBJECT_ALLOCNO (obj
)))
116 SET_HARD_REG_BIT (OBJECT_CONFLICT_HARD_REGS (obj
), regno
);
117 SET_HARD_REG_BIT (OBJECT_TOTAL_CONFLICT_HARD_REGS (obj
), regno
);
119 CLEAR_HARD_REG_BIT (hard_regs_live
, regno
);
122 /* Record object OBJ as now being live. Set a bit for it in objects_live,
123 and start a new live range for it if necessary. */
125 make_object_live (ira_object_t obj
)
127 sparseset_set_bit (objects_live
, OBJECT_CONFLICT_ID (obj
));
129 live_range_t lr
= OBJECT_LIVE_RANGES (obj
);
131 || (lr
->finish
!= curr_point
&& lr
->finish
+ 1 != curr_point
))
132 ira_add_live_range_to_object (obj
, curr_point
, -1);
135 /* Update ALLOCNO_EXCESS_PRESSURE_POINTS_NUM for the allocno
136 associated with object OBJ. */
138 update_allocno_pressure_excess_length (ira_object_t obj
)
140 ira_allocno_t a
= OBJECT_ALLOCNO (obj
);
142 enum reg_class aclass
, pclass
, cl
;
145 aclass
= ALLOCNO_CLASS (a
);
146 pclass
= ira_pressure_class_translate
[aclass
];
148 (cl
= ira_reg_class_super_classes
[pclass
][i
]) != LIM_REG_CLASSES
;
151 if (! ira_reg_pressure_class_p
[cl
])
153 if (high_pressure_start_point
[cl
] < 0)
155 p
= OBJECT_LIVE_RANGES (obj
);
156 ira_assert (p
!= NULL
);
157 start
= (high_pressure_start_point
[cl
] > p
->start
158 ? high_pressure_start_point
[cl
] : p
->start
);
159 ALLOCNO_EXCESS_PRESSURE_POINTS_NUM (a
) += curr_point
- start
+ 1;
163 /* Process the definition of object OBJ, which is associated with allocno A.
164 This finishes the current live range for it. */
166 make_object_dead (ira_object_t obj
)
170 int ignore_regno
= -1;
171 int ignore_total_regno
= -1;
174 sparseset_clear_bit (objects_live
, OBJECT_CONFLICT_ID (obj
));
176 /* Check whether any part of IGNORE_REG_FOR_CONFLICTS already conflicts
178 if (ignore_reg_for_conflicts
!= NULL_RTX
179 && REGNO (ignore_reg_for_conflicts
) < FIRST_PSEUDO_REGISTER
)
181 end_regno
= END_REGNO (ignore_reg_for_conflicts
);
182 ignore_regno
= ignore_total_regno
= REGNO (ignore_reg_for_conflicts
);
184 for (regno
= ignore_regno
; regno
< end_regno
; regno
++)
186 if (TEST_HARD_REG_BIT (OBJECT_CONFLICT_HARD_REGS (obj
), regno
))
187 ignore_regno
= end_regno
;
188 if (TEST_HARD_REG_BIT (OBJECT_TOTAL_CONFLICT_HARD_REGS (obj
), regno
))
189 ignore_total_regno
= end_regno
;
193 OBJECT_CONFLICT_HARD_REGS (obj
) |= hard_regs_live
;
194 OBJECT_TOTAL_CONFLICT_HARD_REGS (obj
) |= hard_regs_live
;
196 /* If IGNORE_REG_FOR_CONFLICTS did not already conflict with OBJ, make
197 sure it still doesn't. */
198 for (regno
= ignore_regno
; regno
< end_regno
; regno
++)
199 CLEAR_HARD_REG_BIT (OBJECT_CONFLICT_HARD_REGS (obj
), regno
);
200 for (regno
= ignore_total_regno
; regno
< end_regno
; regno
++)
201 CLEAR_HARD_REG_BIT (OBJECT_TOTAL_CONFLICT_HARD_REGS (obj
), regno
);
203 lr
= OBJECT_LIVE_RANGES (obj
);
204 ira_assert (lr
!= NULL
);
205 lr
->finish
= curr_point
;
206 update_allocno_pressure_excess_length (obj
);
209 /* The current register pressures for each pressure class for the current
211 static int curr_reg_pressure
[N_REG_CLASSES
];
213 /* Record that register pressure for PCLASS increased by N registers.
214 Update the current register pressure, maximal register pressure for
215 the current BB and the start point of the register pressure
218 inc_register_pressure (enum reg_class pclass
, int n
)
224 (cl
= ira_reg_class_super_classes
[pclass
][i
]) != LIM_REG_CLASSES
;
227 if (! ira_reg_pressure_class_p
[cl
])
229 curr_reg_pressure
[cl
] += n
;
230 if (high_pressure_start_point
[cl
] < 0
231 && (curr_reg_pressure
[cl
] > ira_class_hard_regs_num
[cl
]))
232 high_pressure_start_point
[cl
] = curr_point
;
233 if (curr_bb_node
->reg_pressure
[cl
] < curr_reg_pressure
[cl
])
234 curr_bb_node
->reg_pressure
[cl
] = curr_reg_pressure
[cl
];
238 /* Record that register pressure for PCLASS has decreased by NREGS
239 registers; update current register pressure, start point of the
240 register pressure excess, and register pressure excess length for
244 dec_register_pressure (enum reg_class pclass
, int nregs
)
252 (cl
= ira_reg_class_super_classes
[pclass
][i
]) != LIM_REG_CLASSES
;
255 if (! ira_reg_pressure_class_p
[cl
])
257 curr_reg_pressure
[cl
] -= nregs
;
258 ira_assert (curr_reg_pressure
[cl
] >= 0);
259 if (high_pressure_start_point
[cl
] >= 0
260 && curr_reg_pressure
[cl
] <= ira_class_hard_regs_num
[cl
])
265 EXECUTE_IF_SET_IN_SPARSESET (objects_live
, j
)
266 update_allocno_pressure_excess_length (ira_object_id_map
[j
]);
268 (cl
= ira_reg_class_super_classes
[pclass
][i
]) != LIM_REG_CLASSES
;
271 if (! ira_reg_pressure_class_p
[cl
])
273 if (high_pressure_start_point
[cl
] >= 0
274 && curr_reg_pressure
[cl
] <= ira_class_hard_regs_num
[cl
])
275 high_pressure_start_point
[cl
] = -1;
280 /* Determine from the objects_live bitmap whether REGNO is currently live,
281 and occupies only one object. Return false if we have no information. */
283 pseudo_regno_single_word_and_live_p (int regno
)
285 ira_allocno_t a
= ira_curr_regno_allocno_map
[regno
];
290 if (ALLOCNO_NUM_OBJECTS (a
) > 1)
293 obj
= ALLOCNO_OBJECT (a
, 0);
295 return sparseset_bit_p (objects_live
, OBJECT_CONFLICT_ID (obj
));
298 /* Mark the pseudo register REGNO as live. Update all information about
299 live ranges and register pressure. */
301 mark_pseudo_regno_live (int regno
)
303 ira_allocno_t a
= ira_curr_regno_allocno_map
[regno
];
304 enum reg_class pclass
;
310 /* Invalidate because it is referenced. */
311 allocno_saved_at_call
[ALLOCNO_NUM (a
)] = 0;
313 n
= ALLOCNO_NUM_OBJECTS (a
);
314 pclass
= ira_pressure_class_translate
[ALLOCNO_CLASS (a
)];
315 nregs
= ira_reg_class_max_nregs
[ALLOCNO_CLASS (a
)][ALLOCNO_MODE (a
)];
318 /* We track every subobject separately. */
319 gcc_assert (nregs
== n
);
323 for (i
= 0; i
< n
; i
++)
325 ira_object_t obj
= ALLOCNO_OBJECT (a
, i
);
327 if (sparseset_bit_p (objects_live
, OBJECT_CONFLICT_ID (obj
)))
330 inc_register_pressure (pclass
, nregs
);
331 make_object_live (obj
);
335 /* Like mark_pseudo_regno_live, but try to only mark one subword of
336 the pseudo as live. SUBWORD indicates which; a value of 0
337 indicates the low part. */
339 mark_pseudo_regno_subword_live (int regno
, int subword
)
341 ira_allocno_t a
= ira_curr_regno_allocno_map
[regno
];
343 enum reg_class pclass
;
349 /* Invalidate because it is referenced. */
350 allocno_saved_at_call
[ALLOCNO_NUM (a
)] = 0;
352 n
= ALLOCNO_NUM_OBJECTS (a
);
355 mark_pseudo_regno_live (regno
);
359 pclass
= ira_pressure_class_translate
[ALLOCNO_CLASS (a
)];
361 (n
== ira_reg_class_max_nregs
[ALLOCNO_CLASS (a
)][ALLOCNO_MODE (a
)]);
362 obj
= ALLOCNO_OBJECT (a
, subword
);
364 if (sparseset_bit_p (objects_live
, OBJECT_CONFLICT_ID (obj
)))
367 inc_register_pressure (pclass
, 1);
368 make_object_live (obj
);
371 /* Mark the register REG as live. Store a 1 in hard_regs_live for
372 this register, record how many consecutive hardware registers it
375 mark_hard_reg_live (rtx reg
)
377 int regno
= REGNO (reg
);
379 if (! TEST_HARD_REG_BIT (ira_no_alloc_regs
, regno
))
381 int last
= END_REGNO (reg
);
382 enum reg_class aclass
, pclass
;
386 if (! TEST_HARD_REG_BIT (hard_regs_live
, regno
)
387 && ! TEST_HARD_REG_BIT (eliminable_regset
, regno
))
389 aclass
= ira_hard_regno_allocno_class
[regno
];
390 pclass
= ira_pressure_class_translate
[aclass
];
391 inc_register_pressure (pclass
, 1);
392 make_hard_regno_live (regno
);
399 /* Mark a pseudo, or one of its subwords, as live. REGNO is the pseudo's
400 register number; ORIG_REG is the access in the insn, which may be a
403 mark_pseudo_reg_live (rtx orig_reg
, unsigned regno
)
405 if (read_modify_subreg_p (orig_reg
))
407 mark_pseudo_regno_subword_live (regno
,
408 subreg_lowpart_p (orig_reg
) ? 0 : 1);
411 mark_pseudo_regno_live (regno
);
414 /* Mark the register referenced by use or def REF as live. */
416 mark_ref_live (df_ref ref
)
418 rtx reg
= DF_REF_REG (ref
);
421 if (GET_CODE (reg
) == SUBREG
)
422 reg
= SUBREG_REG (reg
);
424 if (REGNO (reg
) >= FIRST_PSEUDO_REGISTER
)
425 mark_pseudo_reg_live (orig_reg
, REGNO (reg
));
427 mark_hard_reg_live (reg
);
430 /* Mark the pseudo register REGNO as dead. Update all information about
431 live ranges and register pressure. */
433 mark_pseudo_regno_dead (int regno
)
435 ira_allocno_t a
= ira_curr_regno_allocno_map
[regno
];
442 /* Invalidate because it is referenced. */
443 allocno_saved_at_call
[ALLOCNO_NUM (a
)] = 0;
445 n
= ALLOCNO_NUM_OBJECTS (a
);
446 cl
= ira_pressure_class_translate
[ALLOCNO_CLASS (a
)];
447 nregs
= ira_reg_class_max_nregs
[ALLOCNO_CLASS (a
)][ALLOCNO_MODE (a
)];
450 /* We track every subobject separately. */
451 gcc_assert (nregs
== n
);
454 for (i
= 0; i
< n
; i
++)
456 ira_object_t obj
= ALLOCNO_OBJECT (a
, i
);
457 if (!sparseset_bit_p (objects_live
, OBJECT_CONFLICT_ID (obj
)))
460 dec_register_pressure (cl
, nregs
);
461 make_object_dead (obj
);
465 /* Like mark_pseudo_regno_dead, but called when we know that only part of the
466 register dies. SUBWORD indicates which; a value of 0 indicates the low part. */
468 mark_pseudo_regno_subword_dead (int regno
, int subword
)
470 ira_allocno_t a
= ira_curr_regno_allocno_map
[regno
];
478 /* Invalidate because it is referenced. */
479 allocno_saved_at_call
[ALLOCNO_NUM (a
)] = 0;
481 n
= ALLOCNO_NUM_OBJECTS (a
);
483 /* The allocno as a whole doesn't die in this case. */
486 cl
= ira_pressure_class_translate
[ALLOCNO_CLASS (a
)];
488 (n
== ira_reg_class_max_nregs
[ALLOCNO_CLASS (a
)][ALLOCNO_MODE (a
)]);
490 obj
= ALLOCNO_OBJECT (a
, subword
);
491 if (!sparseset_bit_p (objects_live
, OBJECT_CONFLICT_ID (obj
)))
494 dec_register_pressure (cl
, 1);
495 make_object_dead (obj
);
498 /* Process the definition of hard register REG. This updates hard_regs_live
499 and hard reg conflict information for living allocnos. */
501 mark_hard_reg_dead (rtx reg
)
503 int regno
= REGNO (reg
);
505 if (! TEST_HARD_REG_BIT (ira_no_alloc_regs
, regno
))
507 int last
= END_REGNO (reg
);
508 enum reg_class aclass
, pclass
;
512 if (TEST_HARD_REG_BIT (hard_regs_live
, regno
))
514 aclass
= ira_hard_regno_allocno_class
[regno
];
515 pclass
= ira_pressure_class_translate
[aclass
];
516 dec_register_pressure (pclass
, 1);
517 make_hard_regno_dead (regno
);
524 /* Mark a pseudo, or one of its subwords, as dead. REGNO is the pseudo's
525 register number; ORIG_REG is the access in the insn, which may be a
528 mark_pseudo_reg_dead (rtx orig_reg
, unsigned regno
)
530 if (read_modify_subreg_p (orig_reg
))
532 mark_pseudo_regno_subword_dead (regno
,
533 subreg_lowpart_p (orig_reg
) ? 0 : 1);
536 mark_pseudo_regno_dead (regno
);
539 /* Mark the register referenced by definition DEF as dead, if the
540 definition is a total one. */
542 mark_ref_dead (df_ref def
)
544 rtx reg
= DF_REF_REG (def
);
547 if (DF_REF_FLAGS_IS_SET (def
, DF_REF_CONDITIONAL
))
550 if (GET_CODE (reg
) == SUBREG
)
551 reg
= SUBREG_REG (reg
);
553 if (DF_REF_FLAGS_IS_SET (def
, DF_REF_PARTIAL
)
554 && (GET_CODE (orig_reg
) != SUBREG
555 || REGNO (reg
) < FIRST_PSEUDO_REGISTER
556 || !read_modify_subreg_p (orig_reg
)))
559 if (REGNO (reg
) >= FIRST_PSEUDO_REGISTER
)
560 mark_pseudo_reg_dead (orig_reg
, REGNO (reg
));
562 mark_hard_reg_dead (reg
);
565 /* If REG is a pseudo or a subreg of it, and the class of its allocno
566 intersects CL, make a conflict with pseudo DREG. ORIG_DREG is the
567 rtx actually accessed, it may be identical to DREG or a subreg of it.
568 Advance the current program point before making the conflict if
569 ADVANCE_P. Return TRUE if we will need to advance the current
572 make_pseudo_conflict (rtx reg
, enum reg_class cl
, rtx dreg
, rtx orig_dreg
,
578 if (GET_CODE (reg
) == SUBREG
)
579 reg
= SUBREG_REG (reg
);
581 if (! REG_P (reg
) || REGNO (reg
) < FIRST_PSEUDO_REGISTER
)
584 a
= ira_curr_regno_allocno_map
[REGNO (reg
)];
585 if (! reg_classes_intersect_p (cl
, ALLOCNO_CLASS (a
)))
591 mark_pseudo_reg_live (orig_reg
, REGNO (reg
));
592 mark_pseudo_reg_live (orig_dreg
, REGNO (dreg
));
593 mark_pseudo_reg_dead (orig_reg
, REGNO (reg
));
594 mark_pseudo_reg_dead (orig_dreg
, REGNO (dreg
));
599 /* Check and make if necessary conflicts for pseudo DREG of class
600 DEF_CL of the current insn with input operand USE of class USE_CL.
601 ORIG_DREG is the rtx actually accessed, it may be identical to
602 DREG or a subreg of it. Advance the current program point before
603 making the conflict if ADVANCE_P. Return TRUE if we will need to
604 advance the current program point. */
606 check_and_make_def_use_conflict (rtx dreg
, rtx orig_dreg
,
607 enum reg_class def_cl
, int use
,
608 enum reg_class use_cl
, bool advance_p
)
610 if (! reg_classes_intersect_p (def_cl
, use_cl
))
613 advance_p
= make_pseudo_conflict (recog_data
.operand
[use
],
614 use_cl
, dreg
, orig_dreg
, advance_p
);
616 /* Reload may end up swapping commutative operands, so you
617 have to take both orderings into account. The
618 constraints for the two operands can be completely
619 different. (Indeed, if the constraints for the two
620 operands are the same for all alternatives, there's no
621 point marking them as commutative.) */
622 if (use
< recog_data
.n_operands
- 1
623 && recog_data
.constraints
[use
][0] == '%')
625 = make_pseudo_conflict (recog_data
.operand
[use
+ 1],
626 use_cl
, dreg
, orig_dreg
, advance_p
);
628 && recog_data
.constraints
[use
- 1][0] == '%')
630 = make_pseudo_conflict (recog_data
.operand
[use
- 1],
631 use_cl
, dreg
, orig_dreg
, advance_p
);
635 /* Check and make if necessary conflicts for definition DEF of class
636 DEF_CL of the current insn with input operands. Process only
637 constraints of alternative ALT.
639 One of three things is true when this function is called:
641 (1) DEF is an earlyclobber for alternative ALT. Input operands then
642 conflict with DEF in ALT unless they explicitly match DEF via 0-9
645 (2) DEF matches (via 0-9 constraints) an operand that is an
646 earlyclobber for alternative ALT. Other input operands then
647 conflict with DEF in ALT.
649 (3) [FOR_TIE_P] Some input operand X matches DEF for alternative ALT.
650 Input operands with a different value from X then conflict with
653 However, there's still a judgement call to make when deciding
654 whether a conflict in ALT is important enough to be reflected
655 in the pan-alternative allocno conflict set. */
657 check_and_make_def_conflict (int alt
, int def
, enum reg_class def_cl
,
662 enum reg_class use_cl
, acl
;
664 rtx dreg
= recog_data
.operand
[def
];
665 rtx orig_dreg
= dreg
;
667 if (def_cl
== NO_REGS
)
670 if (GET_CODE (dreg
) == SUBREG
)
671 dreg
= SUBREG_REG (dreg
);
673 if (! REG_P (dreg
) || REGNO (dreg
) < FIRST_PSEUDO_REGISTER
)
676 a
= ira_curr_regno_allocno_map
[REGNO (dreg
)];
677 acl
= ALLOCNO_CLASS (a
);
678 if (! reg_classes_intersect_p (acl
, def_cl
))
683 int n_operands
= recog_data
.n_operands
;
684 const operand_alternative
*op_alt
= &recog_op_alt
[alt
* n_operands
];
685 for (use
= 0; use
< n_operands
; use
++)
689 if (use
== def
|| recog_data
.operand_type
[use
] == OP_OUT
)
692 /* An earlyclobber on DEF doesn't apply to an input operand X if X
693 explicitly matches DEF, but it applies to other input operands
694 even if they happen to be the same value as X.
696 In contrast, if an input operand X is tied to a non-earlyclobber
697 DEF, there's no conflict with other input operands that have the
699 if (op_alt
[use
].matches
== def
701 && rtx_equal_p (recog_data
.operand
[use
],
702 recog_data
.operand
[op_alt
[def
].matched
])))
705 if (op_alt
[use
].anything_ok
)
708 use_cl
= op_alt
[use
].cl
;
709 if (use_cl
== NO_REGS
)
712 /* If DEF is simply a tied operand, ignore cases in which this
713 alternative requires USE to have a likely-spilled class.
714 Adding a conflict would just constrain USE further if DEF
715 happens to be allocated first. */
716 if (for_tie_p
&& targetm
.class_likely_spilled_p (use_cl
))
719 /* If there's any alternative that allows USE to match DEF, do not
720 record a conflict. If that causes us to create an invalid
721 instruction due to the earlyclobber, reload must fix it up.
723 Likewise, if we're treating a tied DEF like a partial earlyclobber,
724 do not record a conflict if there's another alternative in which
725 DEF is neither tied nor earlyclobber. */
726 for (alt1
= 0; alt1
< recog_data
.n_alternatives
; alt1
++)
728 if (!TEST_BIT (preferred_alternatives
, alt1
))
730 const operand_alternative
*op_alt1
731 = &recog_op_alt
[alt1
* n_operands
];
732 if (op_alt1
[use
].matches
== def
733 || (use
< n_operands
- 1
734 && recog_data
.constraints
[use
][0] == '%'
735 && op_alt1
[use
+ 1].matches
== def
)
737 && recog_data
.constraints
[use
- 1][0] == '%'
738 && op_alt1
[use
- 1].matches
== def
))
741 && !op_alt1
[def
].earlyclobber
742 && op_alt1
[def
].matched
< 0
743 && alternative_class (op_alt1
, def
) != NO_REGS
744 && alternative_class (op_alt1
, use
) != NO_REGS
)
748 if (alt1
< recog_data
.n_alternatives
)
751 advance_p
= check_and_make_def_use_conflict (dreg
, orig_dreg
, def_cl
,
752 use
, use_cl
, advance_p
);
754 if ((use_match
= op_alt
[use
].matches
) >= 0)
756 gcc_checking_assert (use_match
!= def
);
758 if (op_alt
[use_match
].anything_ok
)
761 use_cl
= op_alt
[use_match
].cl
;
762 advance_p
= check_and_make_def_use_conflict (dreg
, orig_dreg
, def_cl
,
763 use
, use_cl
, advance_p
);
768 /* Make conflicts of early clobber pseudo registers of the current
769 insn with its inputs. Avoid introducing unnecessary conflicts by
770 checking classes of the constraints and pseudos because otherwise
771 significant code degradation is possible for some targets.
773 For these purposes, tying an input to an output makes that output act
774 like an earlyclobber for inputs with a different value, since the output
775 register then has a predetermined purpose on input to the instruction. */
777 make_early_clobber_and_input_conflicts (void)
781 enum reg_class def_cl
;
783 int n_alternatives
= recog_data
.n_alternatives
;
784 int n_operands
= recog_data
.n_operands
;
785 const operand_alternative
*op_alt
= recog_op_alt
;
786 for (alt
= 0; alt
< n_alternatives
; alt
++, op_alt
+= n_operands
)
787 if (TEST_BIT (preferred_alternatives
, alt
))
788 for (def
= 0; def
< n_operands
; def
++)
790 if (op_alt
[def
].anything_ok
)
793 def_cl
= op_alt
[def
].cl
;
794 if (def_cl
!= NO_REGS
)
796 if (op_alt
[def
].earlyclobber
)
797 check_and_make_def_conflict (alt
, def
, def_cl
, false);
798 else if (op_alt
[def
].matched
>= 0
799 && !targetm
.class_likely_spilled_p (def_cl
))
800 check_and_make_def_conflict (alt
, def
, def_cl
, true);
803 if ((def_match
= op_alt
[def
].matches
) >= 0
804 && (op_alt
[def_match
].earlyclobber
805 || op_alt
[def
].earlyclobber
))
807 if (op_alt
[def_match
].anything_ok
)
810 def_cl
= op_alt
[def_match
].cl
;
811 check_and_make_def_conflict (alt
, def
, def_cl
, false);
816 /* Mark early clobber hard registers of the current INSN as live (if
817 LIVE_P) or dead. Return true if there are such registers. */
819 mark_hard_reg_early_clobbers (rtx_insn
*insn
, bool live_p
)
824 FOR_EACH_INSN_DEF (def
, insn
)
825 if (DF_REF_FLAGS_IS_SET (def
, DF_REF_MUST_CLOBBER
))
827 rtx dreg
= DF_REF_REG (def
);
829 if (GET_CODE (dreg
) == SUBREG
)
830 dreg
= SUBREG_REG (dreg
);
831 if (! REG_P (dreg
) || REGNO (dreg
) >= FIRST_PSEUDO_REGISTER
)
834 /* Hard register clobbers are believed to be early clobber
835 because there is no way to say that non-operand hard
836 register clobbers are not early ones. */
847 /* Checks that CONSTRAINTS permits to use only one hard register. If
848 it is so, the function returns the class of the hard register.
849 Otherwise it returns NO_REGS. */
850 static enum reg_class
851 single_reg_class (const char *constraints
, rtx op
, rtx equiv_const
)
854 enum reg_class cl
, next_cl
;
855 enum constraint_num cn
;
858 alternative_mask preferred
= preferred_alternatives
;
859 while ((c
= *constraints
))
862 preferred
&= ~ALTERNATIVE_BIT (0);
865 else if (preferred
& 1)
872 /* ??? Is this the best way to handle memory constraints? */
873 cn
= lookup_constraint (constraints
);
874 if (insn_extra_memory_constraint (cn
)
875 || insn_extra_special_memory_constraint (cn
)
876 || insn_extra_relaxed_memory_constraint (cn
)
877 || insn_extra_address_constraint (cn
))
879 if (constraint_satisfied_p (op
, cn
)
880 || (equiv_const
!= NULL_RTX
881 && CONSTANT_P (equiv_const
)
882 && constraint_satisfied_p (equiv_const
, cn
)))
884 next_cl
= reg_class_for_constraint (cn
);
885 if (next_cl
== NO_REGS
)
888 ? ira_class_singleton
[next_cl
][GET_MODE (op
)] < 0
889 : (ira_class_singleton
[cl
][GET_MODE (op
)]
890 != ira_class_singleton
[next_cl
][GET_MODE (op
)]))
895 case '0': case '1': case '2': case '3': case '4':
896 case '5': case '6': case '7': case '8': case '9':
899 unsigned long dup
= strtoul (constraints
, &end
, 10);
902 = single_reg_class (recog_data
.constraints
[dup
],
903 recog_data
.operand
[dup
], NULL_RTX
);
905 ? ira_class_singleton
[next_cl
][GET_MODE (op
)] < 0
906 : (ira_class_singleton
[cl
][GET_MODE (op
)]
907 != ira_class_singleton
[next_cl
][GET_MODE (op
)]))
913 constraints
+= CONSTRAINT_LEN (c
, constraints
);
918 /* The function checks that operand OP_NUM of the current insn can use
919 only one hard register. If it is so, the function returns the
920 class of the hard register. Otherwise it returns NO_REGS. */
921 static enum reg_class
922 single_reg_operand_class (int op_num
)
924 if (op_num
< 0 || recog_data
.n_alternatives
== 0)
926 return single_reg_class (recog_data
.constraints
[op_num
],
927 recog_data
.operand
[op_num
], NULL_RTX
);
930 /* The function sets up hard register set *SET to hard registers which
931 might be used by insn reloads because the constraints are too
934 ira_implicitly_set_insn_hard_regs (HARD_REG_SET
*set
,
935 alternative_mask preferred
)
942 CLEAR_HARD_REG_SET (*set
);
943 for (i
= 0; i
< recog_data
.n_operands
; i
++)
945 op
= recog_data
.operand
[i
];
947 if (GET_CODE (op
) == SUBREG
)
948 op
= SUBREG_REG (op
);
950 if (GET_CODE (op
) == SCRATCH
951 || (REG_P (op
) && (regno
= REGNO (op
)) >= FIRST_PSEUDO_REGISTER
))
953 const char *p
= recog_data
.constraints
[i
];
955 mode
= (GET_CODE (op
) == SCRATCH
956 ? GET_MODE (op
) : PSEUDO_REGNO_MODE (regno
));
958 for (; (c
= *p
); p
+= CONSTRAINT_LEN (c
, p
))
960 preferred
&= ~ALTERNATIVE_BIT (0);
963 else if (preferred
& 1)
965 cl
= reg_class_for_constraint (lookup_constraint (p
));
968 /* There is no register pressure problem if all of the
969 regs in this class are fixed. */
970 int regno
= ira_class_singleton
[cl
][mode
];
972 add_to_hard_reg_set (set
, mode
, regno
);
978 /* Processes input operands, if IN_P, or output operands otherwise of
979 the current insn with FREQ to find allocno which can use only one
980 hard register and makes other currently living allocnos conflicting
981 with the hard register. */
983 process_single_reg_class_operands (bool in_p
, int freq
)
989 ira_allocno_t operand_a
, a
;
991 for (i
= 0; i
< recog_data
.n_operands
; i
++)
993 operand
= recog_data
.operand
[i
];
994 if (in_p
&& recog_data
.operand_type
[i
] != OP_IN
995 && recog_data
.operand_type
[i
] != OP_INOUT
)
997 if (! in_p
&& recog_data
.operand_type
[i
] != OP_OUT
998 && recog_data
.operand_type
[i
] != OP_INOUT
)
1000 cl
= single_reg_operand_class (i
);
1006 if (GET_CODE (operand
) == SUBREG
)
1007 operand
= SUBREG_REG (operand
);
1010 && (regno
= REGNO (operand
)) >= FIRST_PSEUDO_REGISTER
)
1012 enum reg_class aclass
;
1014 operand_a
= ira_curr_regno_allocno_map
[regno
];
1015 aclass
= ALLOCNO_CLASS (operand_a
);
1016 if (ira_class_subset_p
[cl
][aclass
])
1018 /* View the desired allocation of OPERAND as:
1022 a simplification of:
1024 (subreg:YMODE (reg:XMODE XREGNO) OFFSET). */
1025 machine_mode ymode
, xmode
;
1029 xmode
= recog_data
.operand_mode
[i
];
1030 xregno
= ira_class_singleton
[cl
][xmode
];
1031 gcc_assert (xregno
>= 0);
1032 ymode
= ALLOCNO_MODE (operand_a
);
1033 offset
= subreg_lowpart_offset (ymode
, xmode
);
1034 yregno
= simplify_subreg_regno (xregno
, xmode
, offset
, ymode
);
1036 && ira_class_hard_reg_index
[aclass
][yregno
] >= 0)
1040 ira_allocate_and_set_costs
1041 (&ALLOCNO_CONFLICT_HARD_REG_COSTS (operand_a
),
1043 ira_init_register_move_cost_if_necessary (xmode
);
1045 ? ira_register_move_cost
[xmode
][aclass
][cl
]
1046 : ira_register_move_cost
[xmode
][cl
][aclass
]);
1047 ALLOCNO_CONFLICT_HARD_REG_COSTS (operand_a
)
1048 [ira_class_hard_reg_index
[aclass
][yregno
]] -= cost
;
1053 EXECUTE_IF_SET_IN_SPARSESET (objects_live
, px
)
1055 ira_object_t obj
= ira_object_id_map
[px
];
1056 a
= OBJECT_ALLOCNO (obj
);
1059 /* We could increase costs of A instead of making it
1060 conflicting with the hard register. But it works worse
1061 because it will be spilled in reload in anyway. */
1062 OBJECT_CONFLICT_HARD_REGS (obj
) |= reg_class_contents
[cl
];
1063 OBJECT_TOTAL_CONFLICT_HARD_REGS (obj
) |= reg_class_contents
[cl
];
1069 /* Look through the CALL_INSN_FUNCTION_USAGE of a call insn INSN, and see if
1070 we find a SET rtx that we can use to deduce that a register can be cheaply
1071 caller-saved. Return such a register, or NULL_RTX if none is found. */
1073 find_call_crossed_cheap_reg (rtx_insn
*insn
)
1075 rtx cheap_reg
= NULL_RTX
;
1076 rtx exp
= CALL_INSN_FUNCTION_USAGE (insn
);
1080 rtx x
= XEXP (exp
, 0);
1081 if (GET_CODE (x
) == SET
)
1086 exp
= XEXP (exp
, 1);
1090 basic_block bb
= BLOCK_FOR_INSN (insn
);
1091 rtx reg
= SET_SRC (exp
);
1092 rtx_insn
*prev
= PREV_INSN (insn
);
1093 while (prev
&& !(INSN_P (prev
)
1094 && BLOCK_FOR_INSN (prev
) != bb
))
1096 if (NONDEBUG_INSN_P (prev
))
1098 rtx set
= single_set (prev
);
1100 if (set
&& rtx_equal_p (SET_DEST (set
), reg
))
1102 rtx src
= SET_SRC (set
);
1103 if (!REG_P (src
) || HARD_REGISTER_P (src
)
1104 || !pseudo_regno_single_word_and_live_p (REGNO (src
)))
1106 if (!modified_between_p (src
, prev
, insn
))
1110 if (set
&& rtx_equal_p (SET_SRC (set
), reg
))
1112 rtx dest
= SET_DEST (set
);
1113 if (!REG_P (dest
) || HARD_REGISTER_P (dest
)
1114 || !pseudo_regno_single_word_and_live_p (REGNO (dest
)))
1116 if (!modified_between_p (dest
, prev
, insn
))
1121 if (reg_set_p (reg
, prev
))
1124 prev
= PREV_INSN (prev
);
1130 /* Determine whether INSN is a register to register copy of the type where
1131 we do not need to make the source and destiniation registers conflict.
1132 If this is a copy instruction, then return the source reg. Otherwise,
1135 non_conflicting_reg_copy_p (rtx_insn
*insn
)
1137 /* Reload has issues with overlapping pseudos being assigned to the
1138 same hard register, so don't allow it. See PR87600 for details. */
1139 if (!targetm
.lra_p ())
1142 rtx set
= single_set (insn
);
1144 /* Disallow anything other than a simple register to register copy
1145 that has no side effects. */
1147 || !REG_P (SET_DEST (set
))
1148 || !REG_P (SET_SRC (set
))
1149 || side_effects_p (set
))
1152 int dst_regno
= REGNO (SET_DEST (set
));
1153 int src_regno
= REGNO (SET_SRC (set
));
1154 machine_mode mode
= GET_MODE (SET_DEST (set
));
1156 /* By definition, a register does not conflict with itself, therefore we
1157 do not have to handle it specially. Returning NULL_RTX now, helps
1158 simplify the callers of this function. */
1159 if (dst_regno
== src_regno
)
1162 /* Computing conflicts for register pairs is difficult to get right, so
1163 for now, disallow it. */
1164 if ((HARD_REGISTER_NUM_P (dst_regno
)
1165 && hard_regno_nregs (dst_regno
, mode
) != 1)
1166 || (HARD_REGISTER_NUM_P (src_regno
)
1167 && hard_regno_nregs (src_regno
, mode
) != 1))
1170 return SET_SRC (set
);
1173 #ifdef EH_RETURN_DATA_REGNO
1175 /* Add EH return hard registers as conflict hard registers to allocnos
1176 living at end of BB. For most allocnos it is already done in
1177 process_bb_node_lives when we processing input edges but it does
1178 not work when and EH edge is edge out of the current region. This
1179 function covers such out of region edges. */
1181 process_out_of_region_eh_regs (basic_block bb
)
1189 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
1190 if ((e
->flags
& EDGE_EH
)
1191 && IRA_BB_NODE (e
->dest
)->parent
!= IRA_BB_NODE (bb
)->parent
)
1197 EXECUTE_IF_SET_IN_BITMAP (df_get_live_out (bb
), FIRST_PSEUDO_REGISTER
, i
, bi
)
1199 ira_allocno_t a
= ira_curr_regno_allocno_map
[i
];
1200 for (int n
= ALLOCNO_NUM_OBJECTS (a
) - 1; n
>= 0; n
--)
1202 ira_object_t obj
= ALLOCNO_OBJECT (a
, n
);
1203 for (int k
= 0; ; k
++)
1205 unsigned int regno
= EH_RETURN_DATA_REGNO (k
);
1206 if (regno
== INVALID_REGNUM
)
1208 SET_HARD_REG_BIT (OBJECT_CONFLICT_HARD_REGS (obj
), regno
);
1209 SET_HARD_REG_BIT (OBJECT_TOTAL_CONFLICT_HARD_REGS (obj
), regno
);
1217 /* Process insns of the basic block given by its LOOP_TREE_NODE to
1218 update allocno live ranges, allocno hard register conflicts,
1219 intersected calls, and register pressure info for allocnos for the
1220 basic block for and regions containing the basic block. */
1222 process_bb_node_lives (ira_loop_tree_node_t loop_tree_node
)
1229 bitmap reg_live_out
;
1233 bb
= loop_tree_node
->bb
;
1236 for (i
= 0; i
< ira_pressure_classes_num
; i
++)
1238 curr_reg_pressure
[ira_pressure_classes
[i
]] = 0;
1239 high_pressure_start_point
[ira_pressure_classes
[i
]] = -1;
1241 curr_bb_node
= loop_tree_node
;
1242 reg_live_out
= df_get_live_out (bb
);
1243 sparseset_clear (objects_live
);
1244 REG_SET_TO_HARD_REG_SET (hard_regs_live
, reg_live_out
);
1245 hard_regs_live
&= ~(eliminable_regset
| ira_no_alloc_regs
);
1246 for (i
= 0; i
< FIRST_PSEUDO_REGISTER
; i
++)
1247 if (TEST_HARD_REG_BIT (hard_regs_live
, i
))
1249 enum reg_class aclass
, pclass
, cl
;
1251 aclass
= ira_allocno_class_translate
[REGNO_REG_CLASS (i
)];
1252 pclass
= ira_pressure_class_translate
[aclass
];
1254 (cl
= ira_reg_class_super_classes
[pclass
][j
])
1258 if (! ira_reg_pressure_class_p
[cl
])
1260 curr_reg_pressure
[cl
]++;
1261 if (curr_bb_node
->reg_pressure
[cl
] < curr_reg_pressure
[cl
])
1262 curr_bb_node
->reg_pressure
[cl
] = curr_reg_pressure
[cl
];
1263 ira_assert (curr_reg_pressure
[cl
]
1264 <= ira_class_hard_regs_num
[cl
]);
1267 EXECUTE_IF_SET_IN_BITMAP (reg_live_out
, FIRST_PSEUDO_REGISTER
, j
, bi
)
1268 mark_pseudo_regno_live (j
);
1270 #ifdef EH_RETURN_DATA_REGNO
1271 process_out_of_region_eh_regs (bb
);
1274 freq
= REG_FREQ_FROM_BB (bb
);
1278 /* Invalidate all allocno_saved_at_call entries. */
1281 /* Scan the code of this basic block, noting which allocnos and
1282 hard regs are born or die.
1284 Note that this loop treats uninitialized values as live until
1285 the beginning of the block. For example, if an instruction
1286 uses (reg:DI foo), and only (subreg:SI (reg:DI foo) 0) is ever
1287 set, FOO will remain live until the beginning of the block.
1288 Likewise if FOO is not set at all. This is unnecessarily
1289 pessimistic, but it probably doesn't matter much in practice. */
1290 FOR_BB_INSNS_REVERSE (bb
, insn
)
1296 if (!NONDEBUG_INSN_P (insn
))
1299 if (internal_flag_ira_verbose
> 2 && ira_dump_file
!= NULL
)
1300 fprintf (ira_dump_file
, " Insn %u(l%d): point = %d\n",
1301 INSN_UID (insn
), loop_tree_node
->parent
->loop_num
,
1304 call_p
= CALL_P (insn
);
1305 ignore_reg_for_conflicts
= non_conflicting_reg_copy_p (insn
);
1307 /* Mark each defined value as live. We need to do this for
1308 unused values because they still conflict with quantities
1309 that are live at the time of the definition.
1311 Ignore DF_REF_MAY_CLOBBERs on a call instruction. Such
1312 references represent the effect of the called function
1313 on a call-clobbered register. Marking the register as
1314 live would stop us from allocating it to a call-crossing
1316 FOR_EACH_INSN_DEF (def
, insn
)
1317 if (!call_p
|| !DF_REF_FLAGS_IS_SET (def
, DF_REF_MAY_CLOBBER
))
1318 mark_ref_live (def
);
1320 /* If INSN has multiple outputs, then any value used in one
1321 of the outputs conflicts with the other outputs. Model this
1322 by making the used value live during the output phase.
1324 It is unsafe to use !single_set here since it will ignore
1325 an unused output. Just because an output is unused does
1326 not mean the compiler can assume the side effect will not
1327 occur. Consider if ALLOCNO appears in the address of an
1328 output and we reload the output. If we allocate ALLOCNO
1329 to the same hard register as an unused output we could
1330 set the hard register before the output reload insn. */
1331 if (GET_CODE (PATTERN (insn
)) == PARALLEL
&& multiple_sets (insn
))
1332 FOR_EACH_INSN_USE (use
, insn
)
1337 reg
= DF_REF_REG (use
);
1338 for (i
= XVECLEN (PATTERN (insn
), 0) - 1; i
>= 0; i
--)
1342 set
= XVECEXP (PATTERN (insn
), 0, i
);
1343 if (GET_CODE (set
) == SET
1344 && reg_overlap_mentioned_p (reg
, SET_DEST (set
)))
1346 /* After the previous loop, this is a no-op if
1347 REG is contained within SET_DEST (SET). */
1348 mark_ref_live (use
);
1354 preferred_alternatives
= ira_setup_alts (insn
);
1355 process_single_reg_class_operands (false, freq
);
1359 /* Try to find a SET in the CALL_INSN_FUNCTION_USAGE, and from
1360 there, try to find a pseudo that is live across the call but
1361 can be cheaply reconstructed from the return value. */
1362 rtx cheap_reg
= find_call_crossed_cheap_reg (insn
);
1363 if (cheap_reg
!= NULL_RTX
)
1364 add_reg_note (insn
, REG_RETURNED
, cheap_reg
);
1367 sparseset_clear (allocnos_processed
);
1368 /* The current set of live allocnos are live across the call. */
1369 EXECUTE_IF_SET_IN_SPARSESET (objects_live
, i
)
1371 ira_object_t obj
= ira_object_id_map
[i
];
1372 a
= OBJECT_ALLOCNO (obj
);
1373 int num
= ALLOCNO_NUM (a
);
1374 function_abi callee_abi
= insn_callee_abi (insn
);
1376 /* Don't allocate allocnos that cross setjmps or any
1377 call, if this function receives a nonlocal
1379 if (cfun
->has_nonlocal_label
1380 || (!targetm
.setjmp_preserves_nonvolatile_regs_p ()
1381 && (find_reg_note (insn
, REG_SETJMP
, NULL_RTX
)
1384 SET_HARD_REG_SET (OBJECT_CONFLICT_HARD_REGS (obj
));
1385 SET_HARD_REG_SET (OBJECT_TOTAL_CONFLICT_HARD_REGS (obj
));
1389 rtx_code_label
*landing_label
;
1390 basic_block landing_bb
;
1391 if (can_throw_internal (insn
)
1392 && (r
= get_eh_region_from_rtx (insn
)) != NULL
1393 && (lp
= gen_eh_landing_pad (r
)) != NULL
1394 && (landing_label
= lp
->landing_pad
) != NULL
1395 && (landing_bb
= BLOCK_FOR_INSN (landing_label
)) != NULL
1396 && (r
->type
!= ERT_CLEANUP
1397 || bitmap_bit_p (df_get_live_in (landing_bb
),
1398 ALLOCNO_REGNO (a
))))
1400 HARD_REG_SET new_conflict_regs
1401 = callee_abi
.mode_clobbers (ALLOCNO_MODE (a
));
1402 OBJECT_CONFLICT_HARD_REGS (obj
) |= new_conflict_regs
;
1403 OBJECT_TOTAL_CONFLICT_HARD_REGS (obj
) |= new_conflict_regs
;
1405 if (sparseset_bit_p (allocnos_processed
, num
))
1407 sparseset_set_bit (allocnos_processed
, num
);
1409 if (allocno_saved_at_call
[num
] != last_call_num
)
1410 /* Here we are mimicking caller-save.cc behavior
1411 which does not save hard register at a call if
1412 it was saved on previous call in the same basic
1413 block and the hard register was not mentioned
1414 between the two calls. */
1415 ALLOCNO_CALL_FREQ (a
) += freq
;
1416 /* Mark it as saved at the next call. */
1417 allocno_saved_at_call
[num
] = last_call_num
+ 1;
1418 ALLOCNO_CALLS_CROSSED_NUM (a
)++;
1419 ALLOCNO_CROSSED_CALLS_ABIS (a
) |= 1 << callee_abi
.id ();
1420 ALLOCNO_CROSSED_CALLS_CLOBBERED_REGS (a
)
1421 |= callee_abi
.full_and_partial_reg_clobbers ();
1422 if (cheap_reg
!= NULL_RTX
1423 && ALLOCNO_REGNO (a
) == (int) REGNO (cheap_reg
))
1424 ALLOCNO_CHEAP_CALLS_CROSSED_NUM (a
)++;
1428 /* See which defined values die here. Note that we include
1429 the call insn in the lifetimes of these values, so we don't
1430 mistakenly consider, for e.g. an addressing mode with a
1431 side-effect like a post-increment fetching the address,
1432 that the use happens before the call, and the def to happen
1433 after the call: we believe both to happen before the actual
1434 call. (We don't handle return-values here.) */
1435 FOR_EACH_INSN_DEF (def
, insn
)
1436 if (!call_p
|| !DF_REF_FLAGS_IS_SET (def
, DF_REF_MAY_CLOBBER
))
1437 mark_ref_dead (def
);
1439 make_early_clobber_and_input_conflicts ();
1443 /* Mark each used value as live. */
1444 FOR_EACH_INSN_USE (use
, insn
)
1445 mark_ref_live (use
);
1447 process_single_reg_class_operands (true, freq
);
1449 set_p
= mark_hard_reg_early_clobbers (insn
, true);
1453 mark_hard_reg_early_clobbers (insn
, false);
1455 /* Mark each hard reg as live again. For example, a
1456 hard register can be in clobber and in an insn
1458 FOR_EACH_INSN_USE (use
, insn
)
1460 rtx ureg
= DF_REF_REG (use
);
1462 if (GET_CODE (ureg
) == SUBREG
)
1463 ureg
= SUBREG_REG (ureg
);
1464 if (! REG_P (ureg
) || REGNO (ureg
) >= FIRST_PSEUDO_REGISTER
)
1467 mark_ref_live (use
);
1473 ignore_reg_for_conflicts
= NULL_RTX
;
1475 if (bb_has_eh_pred (bb
))
1478 unsigned int regno
= EH_RETURN_DATA_REGNO (j
);
1479 if (regno
== INVALID_REGNUM
)
1481 make_hard_regno_live (regno
);
1484 /* Allocnos can't go in stack regs at the start of a basic block
1485 that is reached by an abnormal edge. Likewise for registers
1486 that are at least partly call clobbered, because caller-save,
1487 fixup_abnormal_edges and possibly the table driven EH machinery
1488 are not quite ready to handle such allocnos live across such
1490 if (bb_has_abnormal_pred (bb
))
1493 EXECUTE_IF_SET_IN_SPARSESET (objects_live
, px
)
1495 ira_allocno_t a
= OBJECT_ALLOCNO (ira_object_id_map
[px
]);
1497 ALLOCNO_NO_STACK_REG_P (a
) = true;
1498 ALLOCNO_TOTAL_NO_STACK_REG_P (a
) = true;
1500 for (px
= FIRST_STACK_REG
; px
<= LAST_STACK_REG
; px
++)
1501 make_hard_regno_live (px
);
1503 /* No need to record conflicts for call clobbered regs if we
1504 have nonlocal labels around, as we don't ever try to
1505 allocate such regs in this case. */
1506 if (!cfun
->has_nonlocal_label
1507 && has_abnormal_call_or_eh_pred_edge_p (bb
))
1508 for (px
= 0; px
< FIRST_PSEUDO_REGISTER
; px
++)
1509 if (eh_edge_abi
.clobbers_at_least_part_of_reg_p (px
)
1510 #ifdef REAL_PIC_OFFSET_TABLE_REGNUM
1511 /* We should create a conflict of PIC pseudo with
1512 PIC hard reg as PIC hard reg can have a wrong
1513 value after jump described by the abnormal edge.
1514 In this case we cannot allocate PIC hard reg to
1515 PIC pseudo as PIC pseudo will also have a wrong
1516 value. This code is not critical as LRA can fix
1517 it but it is better to have the right allocation
1519 || (px
== REAL_PIC_OFFSET_TABLE_REGNUM
1520 && pic_offset_table_rtx
!= NULL_RTX
1521 && REGNO (pic_offset_table_rtx
) >= FIRST_PSEUDO_REGISTER
)
1524 make_hard_regno_live (px
);
1527 EXECUTE_IF_SET_IN_SPARSESET (objects_live
, i
)
1528 make_object_dead (ira_object_id_map
[i
]);
1533 /* Propagate register pressure to upper loop tree nodes. */
1534 if (loop_tree_node
!= ira_loop_tree_root
)
1535 for (i
= 0; i
< ira_pressure_classes_num
; i
++)
1537 enum reg_class pclass
;
1539 pclass
= ira_pressure_classes
[i
];
1540 if (loop_tree_node
->reg_pressure
[pclass
]
1541 > loop_tree_node
->parent
->reg_pressure
[pclass
])
1542 loop_tree_node
->parent
->reg_pressure
[pclass
]
1543 = loop_tree_node
->reg_pressure
[pclass
];
1547 /* Create and set up IRA_START_POINT_RANGES and
1548 IRA_FINISH_POINT_RANGES. */
1550 create_start_finish_chains (void)
1553 ira_object_iterator oi
;
1556 ira_start_point_ranges
1557 = (live_range_t
*) ira_allocate (ira_max_point
* sizeof (live_range_t
));
1558 memset (ira_start_point_ranges
, 0, ira_max_point
* sizeof (live_range_t
));
1559 ira_finish_point_ranges
1560 = (live_range_t
*) ira_allocate (ira_max_point
* sizeof (live_range_t
));
1561 memset (ira_finish_point_ranges
, 0, ira_max_point
* sizeof (live_range_t
));
1562 FOR_EACH_OBJECT (obj
, oi
)
1563 for (r
= OBJECT_LIVE_RANGES (obj
); r
!= NULL
; r
= r
->next
)
1565 r
->start_next
= ira_start_point_ranges
[r
->start
];
1566 ira_start_point_ranges
[r
->start
] = r
;
1567 r
->finish_next
= ira_finish_point_ranges
[r
->finish
];
1568 ira_finish_point_ranges
[r
->finish
] = r
;
1572 /* Rebuild IRA_START_POINT_RANGES and IRA_FINISH_POINT_RANGES after
1573 new live ranges and program points were added as a result if new
1576 ira_rebuild_start_finish_chains (void)
1578 ira_free (ira_finish_point_ranges
);
1579 ira_free (ira_start_point_ranges
);
1580 create_start_finish_chains ();
1583 /* Compress allocno live ranges by removing program points where
1586 remove_some_program_points_and_update_live_ranges (void)
1592 ira_object_iterator oi
;
1593 live_range_t r
, prev_r
, next_r
;
1594 sbitmap_iterator sbi
;
1595 bool born_p
, dead_p
, prev_born_p
, prev_dead_p
;
1597 auto_sbitmap
born (ira_max_point
);
1598 auto_sbitmap
dead (ira_max_point
);
1599 bitmap_clear (born
);
1600 bitmap_clear (dead
);
1601 FOR_EACH_OBJECT (obj
, oi
)
1602 for (r
= OBJECT_LIVE_RANGES (obj
); r
!= NULL
; r
= r
->next
)
1604 ira_assert (r
->start
<= r
->finish
);
1605 bitmap_set_bit (born
, r
->start
);
1606 bitmap_set_bit (dead
, r
->finish
);
1609 auto_sbitmap
born_or_dead (ira_max_point
);
1610 bitmap_ior (born_or_dead
, born
, dead
);
1611 map
= (int *) ira_allocate (sizeof (int) * ira_max_point
);
1613 prev_born_p
= prev_dead_p
= false;
1614 EXECUTE_IF_SET_IN_BITMAP (born_or_dead
, 0, i
, sbi
)
1616 born_p
= bitmap_bit_p (born
, i
);
1617 dead_p
= bitmap_bit_p (dead
, i
);
1618 if ((prev_born_p
&& ! prev_dead_p
&& born_p
&& ! dead_p
)
1619 || (prev_dead_p
&& ! prev_born_p
&& dead_p
&& ! born_p
))
1623 prev_born_p
= born_p
;
1624 prev_dead_p
= dead_p
;
1628 if (internal_flag_ira_verbose
> 1 && ira_dump_file
!= NULL
)
1629 fprintf (ira_dump_file
, "Compressing live ranges: from %d to %d - %d%%\n",
1630 ira_max_point
, n
, 100 * n
/ ira_max_point
);
1633 FOR_EACH_OBJECT (obj
, oi
)
1634 for (r
= OBJECT_LIVE_RANGES (obj
), prev_r
= NULL
; r
!= NULL
; r
= next_r
)
1637 r
->start
= map
[r
->start
];
1638 r
->finish
= map
[r
->finish
];
1639 if (prev_r
== NULL
|| prev_r
->start
> r
->finish
+ 1)
1644 prev_r
->start
= r
->start
;
1645 prev_r
->next
= next_r
;
1646 ira_finish_live_range (r
);
1652 /* Print live ranges R to file F. */
1654 ira_print_live_range_list (FILE *f
, live_range_t r
)
1656 for (; r
!= NULL
; r
= r
->next
)
1657 fprintf (f
, " [%d..%d]", r
->start
, r
->finish
);
1662 debug (live_range
&ref
)
1664 ira_print_live_range_list (stderr
, &ref
);
1668 debug (live_range
*ptr
)
1673 fprintf (stderr
, "<nil>\n");
1676 /* Print live ranges R to stderr. */
1678 ira_debug_live_range_list (live_range_t r
)
1680 ira_print_live_range_list (stderr
, r
);
1683 /* Print live ranges of object OBJ to file F. */
1685 print_object_live_ranges (FILE *f
, ira_object_t obj
)
1687 ira_print_live_range_list (f
, OBJECT_LIVE_RANGES (obj
));
1690 /* Print live ranges of allocno A to file F. */
1692 print_allocno_live_ranges (FILE *f
, ira_allocno_t a
)
1694 int n
= ALLOCNO_NUM_OBJECTS (a
);
1697 for (i
= 0; i
< n
; i
++)
1699 fprintf (f
, " a%d(r%d", ALLOCNO_NUM (a
), ALLOCNO_REGNO (a
));
1701 fprintf (f
, " [%d]", i
);
1703 print_object_live_ranges (f
, ALLOCNO_OBJECT (a
, i
));
1707 /* Print live ranges of allocno A to stderr. */
1709 ira_debug_allocno_live_ranges (ira_allocno_t a
)
1711 print_allocno_live_ranges (stderr
, a
);
1714 /* Print live ranges of all allocnos to file F. */
1716 print_live_ranges (FILE *f
)
1719 ira_allocno_iterator ai
;
1721 FOR_EACH_ALLOCNO (a
, ai
)
1722 print_allocno_live_ranges (f
, a
);
1725 /* Print live ranges of all allocnos to stderr. */
1727 ira_debug_live_ranges (void)
1729 print_live_ranges (stderr
);
1732 /* The main entry function creates live ranges, set up
1733 CONFLICT_HARD_REGS and TOTAL_CONFLICT_HARD_REGS for objects, and
1734 calculate register pressure info. */
1736 ira_create_allocno_live_ranges (void)
1738 objects_live
= sparseset_alloc (ira_objects_num
);
1739 allocnos_processed
= sparseset_alloc (ira_allocnos_num
);
1742 allocno_saved_at_call
1743 = (int *) ira_allocate (ira_allocnos_num
* sizeof (int));
1744 memset (allocno_saved_at_call
, 0, ira_allocnos_num
* sizeof (int));
1745 ira_traverse_loop_tree (true, ira_loop_tree_root
, NULL
,
1746 process_bb_node_lives
);
1747 ira_max_point
= curr_point
;
1748 create_start_finish_chains ();
1749 if (internal_flag_ira_verbose
> 2 && ira_dump_file
!= NULL
)
1750 print_live_ranges (ira_dump_file
);
1752 ira_free (allocno_saved_at_call
);
1753 sparseset_free (objects_live
);
1754 sparseset_free (allocnos_processed
);
1757 /* Compress allocno live ranges. */
1759 ira_compress_allocno_live_ranges (void)
1761 remove_some_program_points_and_update_live_ranges ();
1762 ira_rebuild_start_finish_chains ();
1763 if (internal_flag_ira_verbose
> 2 && ira_dump_file
!= NULL
)
1765 fprintf (ira_dump_file
, "Ranges after the compression:\n");
1766 print_live_ranges (ira_dump_file
);
1770 /* Free arrays IRA_START_POINT_RANGES and IRA_FINISH_POINT_RANGES. */
1772 ira_finish_allocno_live_ranges (void)
1774 ira_free (ira_finish_point_ranges
);
1775 ira_free (ira_start_point_ranges
);