1 /* Convert RTL to assembler code and output it, for GNU compiler.
2 Copyright (C) 1987, 1988, 1989, 1992, 1993, 1994, 1995, 1996, 1997,
3 1998, 1999, 2000, 2001, 2002, 2003, 2004, 2005, 2006, 2007, 2008, 2009,
5 Free Software Foundation, Inc.
7 This file is part of GCC.
9 GCC is free software; you can redistribute it and/or modify it under
10 the terms of the GNU General Public License as published by the Free
11 Software Foundation; either version 3, or (at your option) any later
14 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
15 WARRANTY; without even the implied warranty of MERCHANTABILITY or
16 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
19 You should have received a copy of the GNU General Public License
20 along with GCC; see the file COPYING3. If not see
21 <http://www.gnu.org/licenses/>. */
23 /* This is the final pass of the compiler.
24 It looks at the rtl code for a function and outputs assembler code.
26 Call `final_start_function' to output the assembler code for function entry,
27 `final' to output assembler code for some RTL code,
28 `final_end_function' to output assembler code for function exit.
29 If a function is compiled in several pieces, each piece is
30 output separately with `final'.
32 Some optimizations are also done at this level.
33 Move instructions that were made unnecessary by good register allocation
34 are detected and omitted from the output. (Though most of these
35 are removed by the last jump pass.)
37 Instructions to set the condition codes are omitted when it can be
38 seen that the condition codes already had the desired values.
40 In some cases it is sufficient if the inherited condition codes
41 have related values, but this may require the following insn
42 (the one that tests the condition codes) to be modified.
44 The code for the function prologue and epilogue are generated
45 directly in assembler by the target functions function_prologue and
46 function_epilogue. Those instructions never exist as rtl. */
50 #include "coretypes.h"
57 #include "insn-config.h"
58 #include "insn-attr.h"
60 #include "conditions.h"
62 #include "hard-reg-set.h"
66 #include "rtl-error.h"
67 #include "toplev.h" /* exact_log2, floor_log2 */
70 #include "basic-block.h"
72 #include "targhooks.h"
75 #include "cfglayout.h"
76 #include "tree-pass.h"
77 #include "tree-flow.h"
86 #include "tree-pretty-print.h"
88 #ifdef XCOFF_DEBUGGING_INFO
89 #include "xcoffout.h" /* Needed for external data
90 declarations for e.g. AIX 4.x. */
93 #include "dwarf2out.h"
95 #ifdef DBX_DEBUGGING_INFO
99 #ifdef SDB_DEBUGGING_INFO
103 /* Most ports that aren't using cc0 don't need to define CC_STATUS_INIT.
104 So define a null default for it to save conditionalization later. */
105 #ifndef CC_STATUS_INIT
106 #define CC_STATUS_INIT
109 /* Is the given character a logical line separator for the assembler? */
110 #ifndef IS_ASM_LOGICAL_LINE_SEPARATOR
111 #define IS_ASM_LOGICAL_LINE_SEPARATOR(C, STR) ((C) == ';')
114 #ifndef JUMP_TABLES_IN_TEXT_SECTION
115 #define JUMP_TABLES_IN_TEXT_SECTION 0
118 /* Bitflags used by final_scan_insn. */
121 #define SEEN_EMITTED 4
123 /* Last insn processed by final_scan_insn. */
124 static rtx debug_insn
;
125 rtx current_output_insn
;
127 /* Line number of last NOTE. */
128 static int last_linenum
;
130 /* Last discriminator written to assembly. */
131 static int last_discriminator
;
133 /* Discriminator of current block. */
134 static int discriminator
;
136 /* Highest line number in current block. */
137 static int high_block_linenum
;
139 /* Likewise for function. */
140 static int high_function_linenum
;
142 /* Filename of last NOTE. */
143 static const char *last_filename
;
145 /* Override filename and line number. */
146 static const char *override_filename
;
147 static int override_linenum
;
149 /* Whether to force emission of a line note before the next insn. */
150 static bool force_source_line
= false;
152 extern const int length_unit_log
; /* This is defined in insn-attrtab.c. */
154 /* Nonzero while outputting an `asm' with operands.
155 This means that inconsistencies are the user's fault, so don't die.
156 The precise value is the insn being output, to pass to error_for_asm. */
157 rtx this_is_asm_operands
;
159 /* Number of operands of this insn, for an `asm' with operands. */
160 static unsigned int insn_noperands
;
162 /* Compare optimization flag. */
164 static rtx last_ignored_compare
= 0;
166 /* Assign a unique number to each insn that is output.
167 This can be used to generate unique local labels. */
169 static int insn_counter
= 0;
172 /* This variable contains machine-dependent flags (defined in tm.h)
173 set and examined by output routines
174 that describe how to interpret the condition codes properly. */
178 /* During output of an insn, this contains a copy of cc_status
179 from before the insn. */
181 CC_STATUS cc_prev_status
;
184 /* Number of unmatched NOTE_INSN_BLOCK_BEG notes we have seen. */
186 static int block_depth
;
188 /* Nonzero if have enabled APP processing of our assembler output. */
192 /* If we are outputting an insn sequence, this contains the sequence rtx.
197 #ifdef ASSEMBLER_DIALECT
199 /* Number of the assembler dialect to use, starting at 0. */
200 static int dialect_number
;
203 /* Nonnull if the insn currently being emitted was a COND_EXEC pattern. */
204 rtx current_insn_predicate
;
206 /* True if printing into -fdump-final-insns= dump. */
207 bool final_insns_dump_p
;
209 #ifdef HAVE_ATTR_length
210 static int asm_insn_count (rtx
);
212 static void profile_function (FILE *);
213 static void profile_after_prologue (FILE *);
214 static bool notice_source_line (rtx
, bool *);
215 static rtx
walk_alter_subreg (rtx
*, bool *);
216 static void output_asm_name (void);
217 static void output_alternate_entry_point (FILE *, rtx
);
218 static tree
get_mem_expr_from_op (rtx
, int *);
219 static void output_asm_operand_names (rtx
*, int *, int);
220 #ifdef LEAF_REGISTERS
221 static void leaf_renumber_regs (rtx
);
224 static int alter_cond (rtx
);
226 #ifndef ADDR_VEC_ALIGN
227 static int final_addr_vec_align (rtx
);
229 #ifdef HAVE_ATTR_length
230 static int align_fuzz (rtx
, rtx
, int, unsigned);
233 /* Initialize data in final at the beginning of a compilation. */
236 init_final (const char *filename ATTRIBUTE_UNUSED
)
241 #ifdef ASSEMBLER_DIALECT
242 dialect_number
= ASSEMBLER_DIALECT
;
246 /* Default target function prologue and epilogue assembler output.
248 If not overridden for epilogue code, then the function body itself
249 contains return instructions wherever needed. */
251 default_function_pro_epilogue (FILE *file ATTRIBUTE_UNUSED
,
252 HOST_WIDE_INT size ATTRIBUTE_UNUSED
)
257 default_function_switched_text_sections (FILE *file ATTRIBUTE_UNUSED
,
258 tree decl ATTRIBUTE_UNUSED
,
259 bool new_is_cold ATTRIBUTE_UNUSED
)
263 /* Default target hook that outputs nothing to a stream. */
265 no_asm_to_stream (FILE *file ATTRIBUTE_UNUSED
)
269 /* Enable APP processing of subsequent output.
270 Used before the output from an `asm' statement. */
277 fputs (ASM_APP_ON
, asm_out_file
);
282 /* Disable APP processing of subsequent output.
283 Called from varasm.c before most kinds of output. */
290 fputs (ASM_APP_OFF
, asm_out_file
);
295 /* Return the number of slots filled in the current
296 delayed branch sequence (we don't count the insn needing the
297 delay slot). Zero if not in a delayed branch sequence. */
301 dbr_sequence_length (void)
303 if (final_sequence
!= 0)
304 return XVECLEN (final_sequence
, 0) - 1;
310 /* The next two pages contain routines used to compute the length of an insn
311 and to shorten branches. */
313 /* Arrays for insn lengths, and addresses. The latter is referenced by
314 `insn_current_length'. */
316 static int *insn_lengths
;
318 VEC(int,heap
) *insn_addresses_
;
320 /* Max uid for which the above arrays are valid. */
321 static int insn_lengths_max_uid
;
323 /* Address of insn being processed. Used by `insn_current_length'. */
324 int insn_current_address
;
326 /* Address of insn being processed in previous iteration. */
327 int insn_last_address
;
329 /* known invariant alignment of insn being processed. */
330 int insn_current_align
;
332 /* After shorten_branches, for any insn, uid_align[INSN_UID (insn)]
333 gives the next following alignment insn that increases the known
334 alignment, or NULL_RTX if there is no such insn.
335 For any alignment obtained this way, we can again index uid_align with
336 its uid to obtain the next following align that in turn increases the
337 alignment, till we reach NULL_RTX; the sequence obtained this way
338 for each insn we'll call the alignment chain of this insn in the following
341 struct label_alignment
347 static rtx
*uid_align
;
348 static int *uid_shuid
;
349 static struct label_alignment
*label_align
;
351 /* Indicate that branch shortening hasn't yet been done. */
354 init_insn_lengths (void)
365 insn_lengths_max_uid
= 0;
367 #ifdef HAVE_ATTR_length
368 INSN_ADDRESSES_FREE ();
377 /* Obtain the current length of an insn. If branch shortening has been done,
378 get its actual length. Otherwise, use FALLBACK_FN to calculate the
381 get_attr_length_1 (rtx insn ATTRIBUTE_UNUSED
,
382 int (*fallback_fn
) (rtx
) ATTRIBUTE_UNUSED
)
384 #ifdef HAVE_ATTR_length
389 if (insn_lengths_max_uid
> INSN_UID (insn
))
390 return insn_lengths
[INSN_UID (insn
)];
392 switch (GET_CODE (insn
))
401 length
= fallback_fn (insn
);
405 body
= PATTERN (insn
);
406 if (GET_CODE (body
) == ADDR_VEC
|| GET_CODE (body
) == ADDR_DIFF_VEC
)
408 /* Alignment is machine-dependent and should be handled by
412 length
= fallback_fn (insn
);
416 body
= PATTERN (insn
);
417 if (GET_CODE (body
) == USE
|| GET_CODE (body
) == CLOBBER
)
420 else if (GET_CODE (body
) == ASM_INPUT
|| asm_noperands (body
) >= 0)
421 length
= asm_insn_count (body
) * fallback_fn (insn
);
422 else if (GET_CODE (body
) == SEQUENCE
)
423 for (i
= 0; i
< XVECLEN (body
, 0); i
++)
424 length
+= get_attr_length_1 (XVECEXP (body
, 0, i
), fallback_fn
);
426 length
= fallback_fn (insn
);
433 #ifdef ADJUST_INSN_LENGTH
434 ADJUST_INSN_LENGTH (insn
, length
);
437 #else /* not HAVE_ATTR_length */
439 #define insn_default_length 0
440 #define insn_min_length 0
441 #endif /* not HAVE_ATTR_length */
444 /* Obtain the current length of an insn. If branch shortening has been done,
445 get its actual length. Otherwise, get its maximum length. */
447 get_attr_length (rtx insn
)
449 return get_attr_length_1 (insn
, insn_default_length
);
452 /* Obtain the current length of an insn. If branch shortening has been done,
453 get its actual length. Otherwise, get its minimum length. */
455 get_attr_min_length (rtx insn
)
457 return get_attr_length_1 (insn
, insn_min_length
);
460 /* Code to handle alignment inside shorten_branches. */
462 /* Here is an explanation how the algorithm in align_fuzz can give
465 Call a sequence of instructions beginning with alignment point X
466 and continuing until the next alignment point `block X'. When `X'
467 is used in an expression, it means the alignment value of the
470 Call the distance between the start of the first insn of block X, and
471 the end of the last insn of block X `IX', for the `inner size of X'.
472 This is clearly the sum of the instruction lengths.
474 Likewise with the next alignment-delimited block following X, which we
477 Call the distance between the start of the first insn of block X, and
478 the start of the first insn of block Y `OX', for the `outer size of X'.
480 The estimated padding is then OX - IX.
482 OX can be safely estimated as
487 OX = round_up(IX, X) + Y - X
489 Clearly est(IX) >= real(IX), because that only depends on the
490 instruction lengths, and those being overestimated is a given.
492 Clearly round_up(foo, Z) >= round_up(bar, Z) if foo >= bar, so
493 we needn't worry about that when thinking about OX.
495 When X >= Y, the alignment provided by Y adds no uncertainty factor
496 for branch ranges starting before X, so we can just round what we have.
497 But when X < Y, we don't know anything about the, so to speak,
498 `middle bits', so we have to assume the worst when aligning up from an
499 address mod X to one mod Y, which is Y - X. */
502 #define LABEL_ALIGN(LABEL) align_labels_log
506 #define LOOP_ALIGN(LABEL) align_loops_log
509 #ifndef LABEL_ALIGN_AFTER_BARRIER
510 #define LABEL_ALIGN_AFTER_BARRIER(LABEL) 0
514 #define JUMP_ALIGN(LABEL) align_jumps_log
518 default_label_align_after_barrier_max_skip (rtx insn ATTRIBUTE_UNUSED
)
524 default_loop_align_max_skip (rtx insn ATTRIBUTE_UNUSED
)
526 return align_loops_max_skip
;
530 default_label_align_max_skip (rtx insn ATTRIBUTE_UNUSED
)
532 return align_labels_max_skip
;
536 default_jump_align_max_skip (rtx insn ATTRIBUTE_UNUSED
)
538 return align_jumps_max_skip
;
541 #ifndef ADDR_VEC_ALIGN
543 final_addr_vec_align (rtx addr_vec
)
545 int align
= GET_MODE_SIZE (GET_MODE (PATTERN (addr_vec
)));
547 if (align
> BIGGEST_ALIGNMENT
/ BITS_PER_UNIT
)
548 align
= BIGGEST_ALIGNMENT
/ BITS_PER_UNIT
;
549 return exact_log2 (align
);
553 #define ADDR_VEC_ALIGN(ADDR_VEC) final_addr_vec_align (ADDR_VEC)
556 #ifndef INSN_LENGTH_ALIGNMENT
557 #define INSN_LENGTH_ALIGNMENT(INSN) length_unit_log
560 #define INSN_SHUID(INSN) (uid_shuid[INSN_UID (INSN)])
562 static int min_labelno
, max_labelno
;
564 #define LABEL_TO_ALIGNMENT(LABEL) \
565 (label_align[CODE_LABEL_NUMBER (LABEL) - min_labelno].alignment)
567 #define LABEL_TO_MAX_SKIP(LABEL) \
568 (label_align[CODE_LABEL_NUMBER (LABEL) - min_labelno].max_skip)
570 /* For the benefit of port specific code do this also as a function. */
573 label_to_alignment (rtx label
)
575 if (CODE_LABEL_NUMBER (label
) <= max_labelno
)
576 return LABEL_TO_ALIGNMENT (label
);
581 label_to_max_skip (rtx label
)
583 if (CODE_LABEL_NUMBER (label
) <= max_labelno
)
584 return LABEL_TO_MAX_SKIP (label
);
588 #ifdef HAVE_ATTR_length
589 /* The differences in addresses
590 between a branch and its target might grow or shrink depending on
591 the alignment the start insn of the range (the branch for a forward
592 branch or the label for a backward branch) starts out on; if these
593 differences are used naively, they can even oscillate infinitely.
594 We therefore want to compute a 'worst case' address difference that
595 is independent of the alignment the start insn of the range end
596 up on, and that is at least as large as the actual difference.
597 The function align_fuzz calculates the amount we have to add to the
598 naively computed difference, by traversing the part of the alignment
599 chain of the start insn of the range that is in front of the end insn
600 of the range, and considering for each alignment the maximum amount
601 that it might contribute to a size increase.
603 For casesi tables, we also want to know worst case minimum amounts of
604 address difference, in case a machine description wants to introduce
605 some common offset that is added to all offsets in a table.
606 For this purpose, align_fuzz with a growth argument of 0 computes the
607 appropriate adjustment. */
609 /* Compute the maximum delta by which the difference of the addresses of
610 START and END might grow / shrink due to a different address for start
611 which changes the size of alignment insns between START and END.
612 KNOWN_ALIGN_LOG is the alignment known for START.
613 GROWTH should be ~0 if the objective is to compute potential code size
614 increase, and 0 if the objective is to compute potential shrink.
615 The return value is undefined for any other value of GROWTH. */
618 align_fuzz (rtx start
, rtx end
, int known_align_log
, unsigned int growth
)
620 int uid
= INSN_UID (start
);
622 int known_align
= 1 << known_align_log
;
623 int end_shuid
= INSN_SHUID (end
);
626 for (align_label
= uid_align
[uid
]; align_label
; align_label
= uid_align
[uid
])
628 int align_addr
, new_align
;
630 uid
= INSN_UID (align_label
);
631 align_addr
= INSN_ADDRESSES (uid
) - insn_lengths
[uid
];
632 if (uid_shuid
[uid
] > end_shuid
)
634 known_align_log
= LABEL_TO_ALIGNMENT (align_label
);
635 new_align
= 1 << known_align_log
;
636 if (new_align
< known_align
)
638 fuzz
+= (-align_addr
^ growth
) & (new_align
- known_align
);
639 known_align
= new_align
;
644 /* Compute a worst-case reference address of a branch so that it
645 can be safely used in the presence of aligned labels. Since the
646 size of the branch itself is unknown, the size of the branch is
647 not included in the range. I.e. for a forward branch, the reference
648 address is the end address of the branch as known from the previous
649 branch shortening pass, minus a value to account for possible size
650 increase due to alignment. For a backward branch, it is the start
651 address of the branch as known from the current pass, plus a value
652 to account for possible size increase due to alignment.
653 NB.: Therefore, the maximum offset allowed for backward branches needs
654 to exclude the branch size. */
657 insn_current_reference_address (rtx branch
)
662 if (! INSN_ADDRESSES_SET_P ())
665 seq
= NEXT_INSN (PREV_INSN (branch
));
666 seq_uid
= INSN_UID (seq
);
667 if (!JUMP_P (branch
))
668 /* This can happen for example on the PA; the objective is to know the
669 offset to address something in front of the start of the function.
670 Thus, we can treat it like a backward branch.
671 We assume here that FUNCTION_BOUNDARY / BITS_PER_UNIT is larger than
672 any alignment we'd encounter, so we skip the call to align_fuzz. */
673 return insn_current_address
;
674 dest
= JUMP_LABEL (branch
);
676 /* BRANCH has no proper alignment chain set, so use SEQ.
677 BRANCH also has no INSN_SHUID. */
678 if (INSN_SHUID (seq
) < INSN_SHUID (dest
))
680 /* Forward branch. */
681 return (insn_last_address
+ insn_lengths
[seq_uid
]
682 - align_fuzz (seq
, dest
, length_unit_log
, ~0));
686 /* Backward branch. */
687 return (insn_current_address
688 + align_fuzz (dest
, seq
, length_unit_log
, ~0));
691 #endif /* HAVE_ATTR_length */
693 /* Compute branch alignments based on frequency information in the
697 compute_alignments (void)
699 int log
, max_skip
, max_log
;
702 int freq_threshold
= 0;
710 max_labelno
= max_label_num ();
711 min_labelno
= get_first_label_num ();
712 label_align
= XCNEWVEC (struct label_alignment
, max_labelno
- min_labelno
+ 1);
714 /* If not optimizing or optimizing for size, don't assign any alignments. */
715 if (! optimize
|| optimize_function_for_size_p (cfun
))
720 dump_flow_info (dump_file
, TDF_DETAILS
);
721 flow_loops_dump (dump_file
, NULL
, 1);
723 loop_optimizer_init (AVOID_CFG_MODIFICATIONS
);
725 if (bb
->frequency
> freq_max
)
726 freq_max
= bb
->frequency
;
727 freq_threshold
= freq_max
/ PARAM_VALUE (PARAM_ALIGN_THRESHOLD
);
730 fprintf(dump_file
, "freq_max: %i\n",freq_max
);
733 rtx label
= BB_HEAD (bb
);
734 int fallthru_frequency
= 0, branch_frequency
= 0, has_fallthru
= 0;
739 || optimize_bb_for_size_p (bb
))
742 fprintf(dump_file
, "BB %4i freq %4i loop %2i loop_depth %2i skipped.\n",
743 bb
->index
, bb
->frequency
, bb
->loop_father
->num
, bb
->loop_depth
);
746 max_log
= LABEL_ALIGN (label
);
747 max_skip
= targetm
.asm_out
.label_align_max_skip (label
);
749 FOR_EACH_EDGE (e
, ei
, bb
->preds
)
751 if (e
->flags
& EDGE_FALLTHRU
)
752 has_fallthru
= 1, fallthru_frequency
+= EDGE_FREQUENCY (e
);
754 branch_frequency
+= EDGE_FREQUENCY (e
);
758 fprintf(dump_file
, "BB %4i freq %4i loop %2i loop_depth %2i fall %4i branch %4i",
759 bb
->index
, bb
->frequency
, bb
->loop_father
->num
,
761 fallthru_frequency
, branch_frequency
);
762 if (!bb
->loop_father
->inner
&& bb
->loop_father
->num
)
763 fprintf (dump_file
, " inner_loop");
764 if (bb
->loop_father
->header
== bb
)
765 fprintf (dump_file
, " loop_header");
766 fprintf (dump_file
, "\n");
769 /* There are two purposes to align block with no fallthru incoming edge:
770 1) to avoid fetch stalls when branch destination is near cache boundary
771 2) to improve cache efficiency in case the previous block is not executed
772 (so it does not need to be in the cache).
774 We to catch first case, we align frequently executed blocks.
775 To catch the second, we align blocks that are executed more frequently
776 than the predecessor and the predecessor is likely to not be executed
777 when function is called. */
780 && (branch_frequency
> freq_threshold
781 || (bb
->frequency
> bb
->prev_bb
->frequency
* 10
782 && (bb
->prev_bb
->frequency
783 <= ENTRY_BLOCK_PTR
->frequency
/ 2))))
785 log
= JUMP_ALIGN (label
);
787 fprintf(dump_file
, " jump alignment added.\n");
791 max_skip
= targetm
.asm_out
.jump_align_max_skip (label
);
794 /* In case block is frequent and reached mostly by non-fallthru edge,
795 align it. It is most likely a first block of loop. */
797 && optimize_bb_for_speed_p (bb
)
798 && branch_frequency
+ fallthru_frequency
> freq_threshold
800 > fallthru_frequency
* PARAM_VALUE (PARAM_ALIGN_LOOP_ITERATIONS
)))
802 log
= LOOP_ALIGN (label
);
804 fprintf(dump_file
, " internal loop alignment added.\n");
808 max_skip
= targetm
.asm_out
.loop_align_max_skip (label
);
811 LABEL_TO_ALIGNMENT (label
) = max_log
;
812 LABEL_TO_MAX_SKIP (label
) = max_skip
;
815 loop_optimizer_finalize ();
816 free_dominance_info (CDI_DOMINATORS
);
820 struct rtl_opt_pass pass_compute_alignments
=
824 "alignments", /* name */
826 compute_alignments
, /* execute */
829 0, /* static_pass_number */
831 0, /* properties_required */
832 0, /* properties_provided */
833 0, /* properties_destroyed */
834 0, /* todo_flags_start */
835 TODO_verify_rtl_sharing
836 | TODO_ggc_collect
/* todo_flags_finish */
841 /* Make a pass over all insns and compute their actual lengths by shortening
842 any branches of variable length if possible. */
844 /* shorten_branches might be called multiple times: for example, the SH
845 port splits out-of-range conditional branches in MACHINE_DEPENDENT_REORG.
846 In order to do this, it needs proper length information, which it obtains
847 by calling shorten_branches. This cannot be collapsed with
848 shorten_branches itself into a single pass unless we also want to integrate
849 reorg.c, since the branch splitting exposes new instructions with delay
853 shorten_branches (rtx first ATTRIBUTE_UNUSED
)
860 #ifdef HAVE_ATTR_length
861 #define MAX_CODE_ALIGN 16
863 int something_changed
= 1;
864 char *varying_length
;
867 rtx align_tab
[MAX_CODE_ALIGN
];
871 /* Compute maximum UID and allocate label_align / uid_shuid. */
872 max_uid
= get_max_uid ();
874 /* Free uid_shuid before reallocating it. */
877 uid_shuid
= XNEWVEC (int, max_uid
);
879 if (max_labelno
!= max_label_num ())
881 int old
= max_labelno
;
885 max_labelno
= max_label_num ();
887 n_labels
= max_labelno
- min_labelno
+ 1;
888 n_old_labels
= old
- min_labelno
+ 1;
890 label_align
= XRESIZEVEC (struct label_alignment
, label_align
, n_labels
);
892 /* Range of labels grows monotonically in the function. Failing here
893 means that the initialization of array got lost. */
894 gcc_assert (n_old_labels
<= n_labels
);
896 memset (label_align
+ n_old_labels
, 0,
897 (n_labels
- n_old_labels
) * sizeof (struct label_alignment
));
900 /* Initialize label_align and set up uid_shuid to be strictly
901 monotonically rising with insn order. */
902 /* We use max_log here to keep track of the maximum alignment we want to
903 impose on the next CODE_LABEL (or the current one if we are processing
904 the CODE_LABEL itself). */
909 for (insn
= get_insns (), i
= 1; insn
; insn
= NEXT_INSN (insn
))
913 INSN_SHUID (insn
) = i
++;
920 bool next_is_jumptable
;
922 /* Merge in alignments computed by compute_alignments. */
923 log
= LABEL_TO_ALIGNMENT (insn
);
927 max_skip
= LABEL_TO_MAX_SKIP (insn
);
930 next
= next_nonnote_insn (insn
);
931 next_is_jumptable
= next
&& JUMP_TABLE_DATA_P (next
);
932 if (!next_is_jumptable
)
934 log
= LABEL_ALIGN (insn
);
938 max_skip
= targetm
.asm_out
.label_align_max_skip (insn
);
941 /* ADDR_VECs only take room if read-only data goes into the text
943 if ((JUMP_TABLES_IN_TEXT_SECTION
944 || readonly_data_section
== text_section
)
945 && next_is_jumptable
)
947 log
= ADDR_VEC_ALIGN (next
);
951 max_skip
= targetm
.asm_out
.label_align_max_skip (insn
);
954 LABEL_TO_ALIGNMENT (insn
) = max_log
;
955 LABEL_TO_MAX_SKIP (insn
) = max_skip
;
959 else if (BARRIER_P (insn
))
963 for (label
= insn
; label
&& ! INSN_P (label
);
964 label
= NEXT_INSN (label
))
967 log
= LABEL_ALIGN_AFTER_BARRIER (insn
);
971 max_skip
= targetm
.asm_out
.label_align_after_barrier_max_skip (label
);
977 #ifdef HAVE_ATTR_length
979 /* Allocate the rest of the arrays. */
980 insn_lengths
= XNEWVEC (int, max_uid
);
981 insn_lengths_max_uid
= max_uid
;
982 /* Syntax errors can lead to labels being outside of the main insn stream.
983 Initialize insn_addresses, so that we get reproducible results. */
984 INSN_ADDRESSES_ALLOC (max_uid
);
986 varying_length
= XCNEWVEC (char, max_uid
);
988 /* Initialize uid_align. We scan instructions
989 from end to start, and keep in align_tab[n] the last seen insn
990 that does an alignment of at least n+1, i.e. the successor
991 in the alignment chain for an insn that does / has a known
993 uid_align
= XCNEWVEC (rtx
, max_uid
);
995 for (i
= MAX_CODE_ALIGN
; --i
>= 0;)
996 align_tab
[i
] = NULL_RTX
;
997 seq
= get_last_insn ();
998 for (; seq
; seq
= PREV_INSN (seq
))
1000 int uid
= INSN_UID (seq
);
1002 log
= (LABEL_P (seq
) ? LABEL_TO_ALIGNMENT (seq
) : 0);
1003 uid_align
[uid
] = align_tab
[0];
1006 /* Found an alignment label. */
1007 uid_align
[uid
] = align_tab
[log
];
1008 for (i
= log
- 1; i
>= 0; i
--)
1012 #ifdef CASE_VECTOR_SHORTEN_MODE
1015 /* Look for ADDR_DIFF_VECs, and initialize their minimum and maximum
1018 int min_shuid
= INSN_SHUID (get_insns ()) - 1;
1019 int max_shuid
= INSN_SHUID (get_last_insn ()) + 1;
1022 for (insn
= first
; insn
!= 0; insn
= NEXT_INSN (insn
))
1024 rtx min_lab
= NULL_RTX
, max_lab
= NULL_RTX
, pat
;
1025 int len
, i
, min
, max
, insn_shuid
;
1027 addr_diff_vec_flags flags
;
1030 || GET_CODE (PATTERN (insn
)) != ADDR_DIFF_VEC
)
1032 pat
= PATTERN (insn
);
1033 len
= XVECLEN (pat
, 1);
1034 gcc_assert (len
> 0);
1035 min_align
= MAX_CODE_ALIGN
;
1036 for (min
= max_shuid
, max
= min_shuid
, i
= len
- 1; i
>= 0; i
--)
1038 rtx lab
= XEXP (XVECEXP (pat
, 1, i
), 0);
1039 int shuid
= INSN_SHUID (lab
);
1050 if (min_align
> LABEL_TO_ALIGNMENT (lab
))
1051 min_align
= LABEL_TO_ALIGNMENT (lab
);
1053 XEXP (pat
, 2) = gen_rtx_LABEL_REF (Pmode
, min_lab
);
1054 XEXP (pat
, 3) = gen_rtx_LABEL_REF (Pmode
, max_lab
);
1055 insn_shuid
= INSN_SHUID (insn
);
1056 rel
= INSN_SHUID (XEXP (XEXP (pat
, 0), 0));
1057 memset (&flags
, 0, sizeof (flags
));
1058 flags
.min_align
= min_align
;
1059 flags
.base_after_vec
= rel
> insn_shuid
;
1060 flags
.min_after_vec
= min
> insn_shuid
;
1061 flags
.max_after_vec
= max
> insn_shuid
;
1062 flags
.min_after_base
= min
> rel
;
1063 flags
.max_after_base
= max
> rel
;
1064 ADDR_DIFF_VEC_FLAGS (pat
) = flags
;
1067 #endif /* CASE_VECTOR_SHORTEN_MODE */
1069 /* Compute initial lengths, addresses, and varying flags for each insn. */
1070 for (insn_current_address
= 0, insn
= first
;
1072 insn_current_address
+= insn_lengths
[uid
], insn
= NEXT_INSN (insn
))
1074 uid
= INSN_UID (insn
);
1076 insn_lengths
[uid
] = 0;
1080 int log
= LABEL_TO_ALIGNMENT (insn
);
1083 int align
= 1 << log
;
1084 int new_address
= (insn_current_address
+ align
- 1) & -align
;
1085 insn_lengths
[uid
] = new_address
- insn_current_address
;
1089 INSN_ADDRESSES (uid
) = insn_current_address
+ insn_lengths
[uid
];
1091 if (NOTE_P (insn
) || BARRIER_P (insn
)
1092 || LABEL_P (insn
) || DEBUG_INSN_P(insn
))
1094 if (INSN_DELETED_P (insn
))
1097 body
= PATTERN (insn
);
1098 if (GET_CODE (body
) == ADDR_VEC
|| GET_CODE (body
) == ADDR_DIFF_VEC
)
1100 /* This only takes room if read-only data goes into the text
1102 if (JUMP_TABLES_IN_TEXT_SECTION
1103 || readonly_data_section
== text_section
)
1104 insn_lengths
[uid
] = (XVECLEN (body
,
1105 GET_CODE (body
) == ADDR_DIFF_VEC
)
1106 * GET_MODE_SIZE (GET_MODE (body
)));
1107 /* Alignment is handled by ADDR_VEC_ALIGN. */
1109 else if (GET_CODE (body
) == ASM_INPUT
|| asm_noperands (body
) >= 0)
1110 insn_lengths
[uid
] = asm_insn_count (body
) * insn_default_length (insn
);
1111 else if (GET_CODE (body
) == SEQUENCE
)
1114 int const_delay_slots
;
1116 const_delay_slots
= const_num_delay_slots (XVECEXP (body
, 0, 0));
1118 const_delay_slots
= 0;
1120 /* Inside a delay slot sequence, we do not do any branch shortening
1121 if the shortening could change the number of delay slots
1123 for (i
= 0; i
< XVECLEN (body
, 0); i
++)
1125 rtx inner_insn
= XVECEXP (body
, 0, i
);
1126 int inner_uid
= INSN_UID (inner_insn
);
1129 if (GET_CODE (body
) == ASM_INPUT
1130 || asm_noperands (PATTERN (XVECEXP (body
, 0, i
))) >= 0)
1131 inner_length
= (asm_insn_count (PATTERN (inner_insn
))
1132 * insn_default_length (inner_insn
));
1134 inner_length
= insn_default_length (inner_insn
);
1136 insn_lengths
[inner_uid
] = inner_length
;
1137 if (const_delay_slots
)
1139 if ((varying_length
[inner_uid
]
1140 = insn_variable_length_p (inner_insn
)) != 0)
1141 varying_length
[uid
] = 1;
1142 INSN_ADDRESSES (inner_uid
) = (insn_current_address
1143 + insn_lengths
[uid
]);
1146 varying_length
[inner_uid
] = 0;
1147 insn_lengths
[uid
] += inner_length
;
1150 else if (GET_CODE (body
) != USE
&& GET_CODE (body
) != CLOBBER
)
1152 insn_lengths
[uid
] = insn_default_length (insn
);
1153 varying_length
[uid
] = insn_variable_length_p (insn
);
1156 /* If needed, do any adjustment. */
1157 #ifdef ADJUST_INSN_LENGTH
1158 ADJUST_INSN_LENGTH (insn
, insn_lengths
[uid
]);
1159 if (insn_lengths
[uid
] < 0)
1160 fatal_insn ("negative insn length", insn
);
1164 /* Now loop over all the insns finding varying length insns. For each,
1165 get the current insn length. If it has changed, reflect the change.
1166 When nothing changes for a full pass, we are done. */
1168 while (something_changed
)
1170 something_changed
= 0;
1171 insn_current_align
= MAX_CODE_ALIGN
- 1;
1172 for (insn_current_address
= 0, insn
= first
;
1174 insn
= NEXT_INSN (insn
))
1177 #ifdef ADJUST_INSN_LENGTH
1182 uid
= INSN_UID (insn
);
1186 int log
= LABEL_TO_ALIGNMENT (insn
);
1187 if (log
> insn_current_align
)
1189 int align
= 1 << log
;
1190 int new_address
= (insn_current_address
+ align
- 1) & -align
;
1191 insn_lengths
[uid
] = new_address
- insn_current_address
;
1192 insn_current_align
= log
;
1193 insn_current_address
= new_address
;
1196 insn_lengths
[uid
] = 0;
1197 INSN_ADDRESSES (uid
) = insn_current_address
;
1201 length_align
= INSN_LENGTH_ALIGNMENT (insn
);
1202 if (length_align
< insn_current_align
)
1203 insn_current_align
= length_align
;
1205 insn_last_address
= INSN_ADDRESSES (uid
);
1206 INSN_ADDRESSES (uid
) = insn_current_address
;
1208 #ifdef CASE_VECTOR_SHORTEN_MODE
1209 if (optimize
&& JUMP_P (insn
)
1210 && GET_CODE (PATTERN (insn
)) == ADDR_DIFF_VEC
)
1212 rtx body
= PATTERN (insn
);
1213 int old_length
= insn_lengths
[uid
];
1214 rtx rel_lab
= XEXP (XEXP (body
, 0), 0);
1215 rtx min_lab
= XEXP (XEXP (body
, 2), 0);
1216 rtx max_lab
= XEXP (XEXP (body
, 3), 0);
1217 int rel_addr
= INSN_ADDRESSES (INSN_UID (rel_lab
));
1218 int min_addr
= INSN_ADDRESSES (INSN_UID (min_lab
));
1219 int max_addr
= INSN_ADDRESSES (INSN_UID (max_lab
));
1222 addr_diff_vec_flags flags
;
1224 /* Avoid automatic aggregate initialization. */
1225 flags
= ADDR_DIFF_VEC_FLAGS (body
);
1227 /* Try to find a known alignment for rel_lab. */
1228 for (prev
= rel_lab
;
1230 && ! insn_lengths
[INSN_UID (prev
)]
1231 && ! (varying_length
[INSN_UID (prev
)] & 1);
1232 prev
= PREV_INSN (prev
))
1233 if (varying_length
[INSN_UID (prev
)] & 2)
1235 rel_align
= LABEL_TO_ALIGNMENT (prev
);
1239 /* See the comment on addr_diff_vec_flags in rtl.h for the
1240 meaning of the flags values. base: REL_LAB vec: INSN */
1241 /* Anything after INSN has still addresses from the last
1242 pass; adjust these so that they reflect our current
1243 estimate for this pass. */
1244 if (flags
.base_after_vec
)
1245 rel_addr
+= insn_current_address
- insn_last_address
;
1246 if (flags
.min_after_vec
)
1247 min_addr
+= insn_current_address
- insn_last_address
;
1248 if (flags
.max_after_vec
)
1249 max_addr
+= insn_current_address
- insn_last_address
;
1250 /* We want to know the worst case, i.e. lowest possible value
1251 for the offset of MIN_LAB. If MIN_LAB is after REL_LAB,
1252 its offset is positive, and we have to be wary of code shrink;
1253 otherwise, it is negative, and we have to be vary of code
1255 if (flags
.min_after_base
)
1257 /* If INSN is between REL_LAB and MIN_LAB, the size
1258 changes we are about to make can change the alignment
1259 within the observed offset, therefore we have to break
1260 it up into two parts that are independent. */
1261 if (! flags
.base_after_vec
&& flags
.min_after_vec
)
1263 min_addr
-= align_fuzz (rel_lab
, insn
, rel_align
, 0);
1264 min_addr
-= align_fuzz (insn
, min_lab
, 0, 0);
1267 min_addr
-= align_fuzz (rel_lab
, min_lab
, rel_align
, 0);
1271 if (flags
.base_after_vec
&& ! flags
.min_after_vec
)
1273 min_addr
-= align_fuzz (min_lab
, insn
, 0, ~0);
1274 min_addr
-= align_fuzz (insn
, rel_lab
, 0, ~0);
1277 min_addr
-= align_fuzz (min_lab
, rel_lab
, 0, ~0);
1279 /* Likewise, determine the highest lowest possible value
1280 for the offset of MAX_LAB. */
1281 if (flags
.max_after_base
)
1283 if (! flags
.base_after_vec
&& flags
.max_after_vec
)
1285 max_addr
+= align_fuzz (rel_lab
, insn
, rel_align
, ~0);
1286 max_addr
+= align_fuzz (insn
, max_lab
, 0, ~0);
1289 max_addr
+= align_fuzz (rel_lab
, max_lab
, rel_align
, ~0);
1293 if (flags
.base_after_vec
&& ! flags
.max_after_vec
)
1295 max_addr
+= align_fuzz (max_lab
, insn
, 0, 0);
1296 max_addr
+= align_fuzz (insn
, rel_lab
, 0, 0);
1299 max_addr
+= align_fuzz (max_lab
, rel_lab
, 0, 0);
1301 PUT_MODE (body
, CASE_VECTOR_SHORTEN_MODE (min_addr
- rel_addr
,
1302 max_addr
- rel_addr
,
1304 if (JUMP_TABLES_IN_TEXT_SECTION
1305 || readonly_data_section
== text_section
)
1308 = (XVECLEN (body
, 1) * GET_MODE_SIZE (GET_MODE (body
)));
1309 insn_current_address
+= insn_lengths
[uid
];
1310 if (insn_lengths
[uid
] != old_length
)
1311 something_changed
= 1;
1316 #endif /* CASE_VECTOR_SHORTEN_MODE */
1318 if (! (varying_length
[uid
]))
1320 if (NONJUMP_INSN_P (insn
)
1321 && GET_CODE (PATTERN (insn
)) == SEQUENCE
)
1325 body
= PATTERN (insn
);
1326 for (i
= 0; i
< XVECLEN (body
, 0); i
++)
1328 rtx inner_insn
= XVECEXP (body
, 0, i
);
1329 int inner_uid
= INSN_UID (inner_insn
);
1331 INSN_ADDRESSES (inner_uid
) = insn_current_address
;
1333 insn_current_address
+= insn_lengths
[inner_uid
];
1337 insn_current_address
+= insn_lengths
[uid
];
1342 if (NONJUMP_INSN_P (insn
) && GET_CODE (PATTERN (insn
)) == SEQUENCE
)
1346 body
= PATTERN (insn
);
1348 for (i
= 0; i
< XVECLEN (body
, 0); i
++)
1350 rtx inner_insn
= XVECEXP (body
, 0, i
);
1351 int inner_uid
= INSN_UID (inner_insn
);
1354 INSN_ADDRESSES (inner_uid
) = insn_current_address
;
1356 /* insn_current_length returns 0 for insns with a
1357 non-varying length. */
1358 if (! varying_length
[inner_uid
])
1359 inner_length
= insn_lengths
[inner_uid
];
1361 inner_length
= insn_current_length (inner_insn
);
1363 if (inner_length
!= insn_lengths
[inner_uid
])
1365 insn_lengths
[inner_uid
] = inner_length
;
1366 something_changed
= 1;
1368 insn_current_address
+= insn_lengths
[inner_uid
];
1369 new_length
+= inner_length
;
1374 new_length
= insn_current_length (insn
);
1375 insn_current_address
+= new_length
;
1378 #ifdef ADJUST_INSN_LENGTH
1379 /* If needed, do any adjustment. */
1380 tmp_length
= new_length
;
1381 ADJUST_INSN_LENGTH (insn
, new_length
);
1382 insn_current_address
+= (new_length
- tmp_length
);
1385 if (new_length
!= insn_lengths
[uid
])
1387 insn_lengths
[uid
] = new_length
;
1388 something_changed
= 1;
1391 /* For a non-optimizing compile, do only a single pass. */
1396 free (varying_length
);
1398 #endif /* HAVE_ATTR_length */
1401 #ifdef HAVE_ATTR_length
1402 /* Given the body of an INSN known to be generated by an ASM statement, return
1403 the number of machine instructions likely to be generated for this insn.
1404 This is used to compute its length. */
1407 asm_insn_count (rtx body
)
1411 if (GET_CODE (body
) == ASM_INPUT
)
1412 templ
= XSTR (body
, 0);
1414 templ
= decode_asm_operands (body
, NULL
, NULL
, NULL
, NULL
, NULL
);
1416 return asm_str_count (templ
);
1420 /* Return the number of machine instructions likely to be generated for the
1421 inline-asm template. */
1423 asm_str_count (const char *templ
)
1430 for (; *templ
; templ
++)
1431 if (IS_ASM_LOGICAL_LINE_SEPARATOR (*templ
, templ
)
1438 /* ??? This is probably the wrong place for these. */
1439 /* Structure recording the mapping from source file and directory
1440 names at compile time to those to be embedded in debug
1442 typedef struct debug_prefix_map
1444 const char *old_prefix
;
1445 const char *new_prefix
;
1448 struct debug_prefix_map
*next
;
1451 /* Linked list of such structures. */
1452 debug_prefix_map
*debug_prefix_maps
;
1455 /* Record a debug file prefix mapping. ARG is the argument to
1456 -fdebug-prefix-map and must be of the form OLD=NEW. */
1459 add_debug_prefix_map (const char *arg
)
1461 debug_prefix_map
*map
;
1464 p
= strchr (arg
, '=');
1467 error ("invalid argument %qs to -fdebug-prefix-map", arg
);
1470 map
= XNEW (debug_prefix_map
);
1471 map
->old_prefix
= xstrndup (arg
, p
- arg
);
1472 map
->old_len
= p
- arg
;
1474 map
->new_prefix
= xstrdup (p
);
1475 map
->new_len
= strlen (p
);
1476 map
->next
= debug_prefix_maps
;
1477 debug_prefix_maps
= map
;
1480 /* Perform user-specified mapping of debug filename prefixes. Return
1481 the new name corresponding to FILENAME. */
1484 remap_debug_filename (const char *filename
)
1486 debug_prefix_map
*map
;
1491 for (map
= debug_prefix_maps
; map
; map
= map
->next
)
1492 if (filename_ncmp (filename
, map
->old_prefix
, map
->old_len
) == 0)
1496 name
= filename
+ map
->old_len
;
1497 name_len
= strlen (name
) + 1;
1498 s
= (char *) alloca (name_len
+ map
->new_len
);
1499 memcpy (s
, map
->new_prefix
, map
->new_len
);
1500 memcpy (s
+ map
->new_len
, name
, name_len
);
1501 return ggc_strdup (s
);
1504 /* Return true if DWARF2 debug info can be emitted for DECL. */
1507 dwarf2_debug_info_emitted_p (tree decl
)
1509 if (write_symbols
!= DWARF2_DEBUG
&& write_symbols
!= VMS_AND_DWARF2_DEBUG
)
1512 if (DECL_IGNORED_P (decl
))
1518 /* Output assembler code for the start of a function,
1519 and initialize some of the variables in this file
1520 for the new function. The label for the function and associated
1521 assembler pseudo-ops have already been output in `assemble_start_function'.
1523 FIRST is the first insn of the rtl for the function being compiled.
1524 FILE is the file to write assembler code to.
1525 OPTIMIZE_P is nonzero if we should eliminate redundant
1526 test and compare insns. */
1529 final_start_function (rtx first ATTRIBUTE_UNUSED
, FILE *file
,
1530 int optimize_p ATTRIBUTE_UNUSED
)
1534 this_is_asm_operands
= 0;
1536 last_filename
= locator_file (prologue_locator
);
1537 last_linenum
= locator_line (prologue_locator
);
1538 last_discriminator
= discriminator
= 0;
1540 high_block_linenum
= high_function_linenum
= last_linenum
;
1542 if (!DECL_IGNORED_P (current_function_decl
))
1543 debug_hooks
->begin_prologue (last_linenum
, last_filename
);
1545 if (!dwarf2_debug_info_emitted_p (current_function_decl
))
1546 dwarf2out_begin_prologue (0, NULL
);
1548 #ifdef LEAF_REG_REMAP
1549 if (current_function_uses_only_leaf_regs
)
1550 leaf_renumber_regs (first
);
1553 /* The Sun386i and perhaps other machines don't work right
1554 if the profiling code comes after the prologue. */
1555 if (targetm
.profile_before_prologue () && crtl
->profile
)
1556 profile_function (file
);
1558 /* If debugging, assign block numbers to all of the blocks in this
1562 reemit_insn_block_notes ();
1563 number_blocks (current_function_decl
);
1564 /* We never actually put out begin/end notes for the top-level
1565 block in the function. But, conceptually, that block is
1567 TREE_ASM_WRITTEN (DECL_INITIAL (current_function_decl
)) = 1;
1570 if (warn_frame_larger_than
1571 && get_frame_size () > frame_larger_than_size
)
1573 /* Issue a warning */
1574 warning (OPT_Wframe_larger_than_
,
1575 "the frame size of %wd bytes is larger than %wd bytes",
1576 get_frame_size (), frame_larger_than_size
);
1579 /* First output the function prologue: code to set up the stack frame. */
1580 targetm
.asm_out
.function_prologue (file
, get_frame_size ());
1582 /* If the machine represents the prologue as RTL, the profiling code must
1583 be emitted when NOTE_INSN_PROLOGUE_END is scanned. */
1584 #ifdef HAVE_prologue
1585 if (! HAVE_prologue
)
1587 profile_after_prologue (file
);
1591 profile_after_prologue (FILE *file ATTRIBUTE_UNUSED
)
1593 if (!targetm
.profile_before_prologue () && crtl
->profile
)
1594 profile_function (file
);
1598 profile_function (FILE *file ATTRIBUTE_UNUSED
)
1600 #ifndef NO_PROFILE_COUNTERS
1601 # define NO_PROFILE_COUNTERS 0
1603 #ifdef ASM_OUTPUT_REG_PUSH
1604 rtx sval
= NULL
, chain
= NULL
;
1606 if (cfun
->returns_struct
)
1607 sval
= targetm
.calls
.struct_value_rtx (TREE_TYPE (current_function_decl
),
1609 if (cfun
->static_chain_decl
)
1610 chain
= targetm
.calls
.static_chain (current_function_decl
, true);
1611 #endif /* ASM_OUTPUT_REG_PUSH */
1613 if (! NO_PROFILE_COUNTERS
)
1615 int align
= MIN (BIGGEST_ALIGNMENT
, LONG_TYPE_SIZE
);
1616 switch_to_section (data_section
);
1617 ASM_OUTPUT_ALIGN (file
, floor_log2 (align
/ BITS_PER_UNIT
));
1618 targetm
.asm_out
.internal_label (file
, "LP", current_function_funcdef_no
);
1619 assemble_integer (const0_rtx
, LONG_TYPE_SIZE
/ BITS_PER_UNIT
, align
, 1);
1622 switch_to_section (current_function_section ());
1624 #ifdef ASM_OUTPUT_REG_PUSH
1625 if (sval
&& REG_P (sval
))
1626 ASM_OUTPUT_REG_PUSH (file
, REGNO (sval
));
1627 if (chain
&& REG_P (chain
))
1628 ASM_OUTPUT_REG_PUSH (file
, REGNO (chain
));
1631 FUNCTION_PROFILER (file
, current_function_funcdef_no
);
1633 #ifdef ASM_OUTPUT_REG_PUSH
1634 if (chain
&& REG_P (chain
))
1635 ASM_OUTPUT_REG_POP (file
, REGNO (chain
));
1636 if (sval
&& REG_P (sval
))
1637 ASM_OUTPUT_REG_POP (file
, REGNO (sval
));
1641 /* Output assembler code for the end of a function.
1642 For clarity, args are same as those of `final_start_function'
1643 even though not all of them are needed. */
1646 final_end_function (void)
1650 if (!DECL_IGNORED_P (current_function_decl
))
1651 debug_hooks
->end_function (high_function_linenum
);
1653 /* Finally, output the function epilogue:
1654 code to restore the stack frame and return to the caller. */
1655 targetm
.asm_out
.function_epilogue (asm_out_file
, get_frame_size ());
1657 /* And debug output. */
1658 if (!DECL_IGNORED_P (current_function_decl
))
1659 debug_hooks
->end_epilogue (last_linenum
, last_filename
);
1661 if (!dwarf2_debug_info_emitted_p (current_function_decl
)
1662 && dwarf2out_do_frame ())
1663 dwarf2out_end_epilogue (last_linenum
, last_filename
);
1667 /* Dumper helper for basic block information. FILE is the assembly
1668 output file, and INSN is the instruction being emitted. */
1671 dump_basic_block_info (FILE *file
, rtx insn
, basic_block
*start_to_bb
,
1672 basic_block
*end_to_bb
, int bb_map_size
, int *bb_seqn
)
1676 if (!flag_debug_asm
)
1679 if (INSN_UID (insn
) < bb_map_size
1680 && (bb
= start_to_bb
[INSN_UID (insn
)]) != NULL
)
1685 fprintf (file
, "%s BLOCK %d", ASM_COMMENT_START
, bb
->index
);
1687 fprintf (file
, " freq:%d", bb
->frequency
);
1689 fprintf (file
, " count:" HOST_WIDEST_INT_PRINT_DEC
,
1691 fprintf (file
, " seq:%d", (*bb_seqn
)++);
1692 fprintf (file
, "\n%s PRED:", ASM_COMMENT_START
);
1693 FOR_EACH_EDGE (e
, ei
, bb
->preds
)
1695 dump_edge_info (file
, e
, 0);
1697 fprintf (file
, "\n");
1699 if (INSN_UID (insn
) < bb_map_size
1700 && (bb
= end_to_bb
[INSN_UID (insn
)]) != NULL
)
1705 fprintf (asm_out_file
, "%s SUCC:", ASM_COMMENT_START
);
1706 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
1708 dump_edge_info (asm_out_file
, e
, 1);
1710 fprintf (file
, "\n");
1714 /* Output assembler code for some insns: all or part of a function.
1715 For description of args, see `final_start_function', above. */
1718 final (rtx first
, FILE *file
, int optimize_p
)
1724 /* Used for -dA dump. */
1725 basic_block
*start_to_bb
= NULL
;
1726 basic_block
*end_to_bb
= NULL
;
1727 int bb_map_size
= 0;
1730 last_ignored_compare
= 0;
1732 for (insn
= first
; insn
; insn
= NEXT_INSN (insn
))
1734 if (INSN_UID (insn
) > max_uid
) /* Find largest UID. */
1735 max_uid
= INSN_UID (insn
);
1737 /* If CC tracking across branches is enabled, record the insn which
1738 jumps to each branch only reached from one place. */
1739 if (optimize_p
&& JUMP_P (insn
))
1741 rtx lab
= JUMP_LABEL (insn
);
1742 if (lab
&& LABEL_P (lab
) && LABEL_NUSES (lab
) == 1)
1744 LABEL_REFS (lab
) = insn
;
1758 bb_map_size
= get_max_uid () + 1;
1759 start_to_bb
= XCNEWVEC (basic_block
, bb_map_size
);
1760 end_to_bb
= XCNEWVEC (basic_block
, bb_map_size
);
1762 FOR_EACH_BB_REVERSE (bb
)
1764 start_to_bb
[INSN_UID (BB_HEAD (bb
))] = bb
;
1765 end_to_bb
[INSN_UID (BB_END (bb
))] = bb
;
1769 /* Output the insns. */
1770 for (insn
= first
; insn
;)
1772 #ifdef HAVE_ATTR_length
1773 if ((unsigned) INSN_UID (insn
) >= INSN_ADDRESSES_SIZE ())
1775 /* This can be triggered by bugs elsewhere in the compiler if
1776 new insns are created after init_insn_lengths is called. */
1777 gcc_assert (NOTE_P (insn
));
1778 insn_current_address
= -1;
1781 insn_current_address
= INSN_ADDRESSES (INSN_UID (insn
));
1782 #endif /* HAVE_ATTR_length */
1784 dump_basic_block_info (file
, insn
, start_to_bb
, end_to_bb
,
1785 bb_map_size
, &bb_seqn
);
1786 insn
= final_scan_insn (insn
, file
, optimize_p
, 0, &seen
);
1795 /* Remove CFI notes, to avoid compare-debug failures. */
1796 for (insn
= first
; insn
; insn
= next
)
1798 next
= NEXT_INSN (insn
);
1800 && (NOTE_KIND (insn
) == NOTE_INSN_CFI
1801 || NOTE_KIND (insn
) == NOTE_INSN_CFI_LABEL
))
1807 get_insn_template (int code
, rtx insn
)
1809 switch (insn_data
[code
].output_format
)
1811 case INSN_OUTPUT_FORMAT_SINGLE
:
1812 return insn_data
[code
].output
.single
;
1813 case INSN_OUTPUT_FORMAT_MULTI
:
1814 return insn_data
[code
].output
.multi
[which_alternative
];
1815 case INSN_OUTPUT_FORMAT_FUNCTION
:
1817 return (*insn_data
[code
].output
.function
) (recog_data
.operand
, insn
);
1824 /* Emit the appropriate declaration for an alternate-entry-point
1825 symbol represented by INSN, to FILE. INSN is a CODE_LABEL with
1826 LABEL_KIND != LABEL_NORMAL.
1828 The case fall-through in this function is intentional. */
1830 output_alternate_entry_point (FILE *file
, rtx insn
)
1832 const char *name
= LABEL_NAME (insn
);
1834 switch (LABEL_KIND (insn
))
1836 case LABEL_WEAK_ENTRY
:
1837 #ifdef ASM_WEAKEN_LABEL
1838 ASM_WEAKEN_LABEL (file
, name
);
1840 case LABEL_GLOBAL_ENTRY
:
1841 targetm
.asm_out
.globalize_label (file
, name
);
1842 case LABEL_STATIC_ENTRY
:
1843 #ifdef ASM_OUTPUT_TYPE_DIRECTIVE
1844 ASM_OUTPUT_TYPE_DIRECTIVE (file
, name
, "function");
1846 ASM_OUTPUT_LABEL (file
, name
);
1855 /* Given a CALL_INSN, find and return the nested CALL. */
1857 call_from_call_insn (rtx insn
)
1860 gcc_assert (CALL_P (insn
));
1863 while (GET_CODE (x
) != CALL
)
1865 switch (GET_CODE (x
))
1870 x
= COND_EXEC_CODE (x
);
1873 x
= XVECEXP (x
, 0, 0);
1883 /* The final scan for one insn, INSN.
1884 Args are same as in `final', except that INSN
1885 is the insn being scanned.
1886 Value returned is the next insn to be scanned.
1888 NOPEEPHOLES is the flag to disallow peephole processing (currently
1889 used for within delayed branch sequence output).
1891 SEEN is used to track the end of the prologue, for emitting
1892 debug information. We force the emission of a line note after
1893 both NOTE_INSN_PROLOGUE_END and NOTE_INSN_FUNCTION_BEG, or
1894 at the beginning of the second basic block, whichever comes
1898 final_scan_insn (rtx insn
, FILE *file
, int optimize_p ATTRIBUTE_UNUSED
,
1899 int nopeepholes ATTRIBUTE_UNUSED
, int *seen
)
1908 /* Ignore deleted insns. These can occur when we split insns (due to a
1909 template of "#") while not optimizing. */
1910 if (INSN_DELETED_P (insn
))
1911 return NEXT_INSN (insn
);
1913 switch (GET_CODE (insn
))
1916 switch (NOTE_KIND (insn
))
1918 case NOTE_INSN_DELETED
:
1921 case NOTE_INSN_SWITCH_TEXT_SECTIONS
:
1922 in_cold_section_p
= !in_cold_section_p
;
1924 if (dwarf2out_do_frame ())
1925 dwarf2out_switch_text_section ();
1926 else if (!DECL_IGNORED_P (current_function_decl
))
1927 debug_hooks
->switch_text_section ();
1929 switch_to_section (current_function_section ());
1930 targetm
.asm_out
.function_switched_text_sections (asm_out_file
,
1931 current_function_decl
,
1935 case NOTE_INSN_BASIC_BLOCK
:
1936 if (targetm
.asm_out
.unwind_emit
)
1937 targetm
.asm_out
.unwind_emit (asm_out_file
, insn
);
1939 if ((*seen
& (SEEN_EMITTED
| SEEN_BB
)) == SEEN_BB
)
1941 *seen
|= SEEN_EMITTED
;
1942 force_source_line
= true;
1947 discriminator
= NOTE_BASIC_BLOCK (insn
)->discriminator
;
1951 case NOTE_INSN_EH_REGION_BEG
:
1952 ASM_OUTPUT_DEBUG_LABEL (asm_out_file
, "LEHB",
1953 NOTE_EH_HANDLER (insn
));
1956 case NOTE_INSN_EH_REGION_END
:
1957 ASM_OUTPUT_DEBUG_LABEL (asm_out_file
, "LEHE",
1958 NOTE_EH_HANDLER (insn
));
1961 case NOTE_INSN_PROLOGUE_END
:
1962 targetm
.asm_out
.function_end_prologue (file
);
1963 profile_after_prologue (file
);
1965 if ((*seen
& (SEEN_EMITTED
| SEEN_NOTE
)) == SEEN_NOTE
)
1967 *seen
|= SEEN_EMITTED
;
1968 force_source_line
= true;
1975 case NOTE_INSN_EPILOGUE_BEG
:
1976 (*debug_hooks
->begin_epilogue
) (last_linenum
, last_filename
);
1977 targetm
.asm_out
.function_begin_epilogue (file
);
1981 dwarf2out_emit_cfi (NOTE_CFI (insn
));
1984 case NOTE_INSN_CFI_LABEL
:
1985 ASM_OUTPUT_DEBUG_LABEL (asm_out_file
, "LCFI",
1986 NOTE_LABEL_NUMBER (insn
));
1989 case NOTE_INSN_FUNCTION_BEG
:
1991 if (!DECL_IGNORED_P (current_function_decl
))
1992 debug_hooks
->end_prologue (last_linenum
, last_filename
);
1994 if ((*seen
& (SEEN_EMITTED
| SEEN_NOTE
)) == SEEN_NOTE
)
1996 *seen
|= SEEN_EMITTED
;
1997 force_source_line
= true;
2004 case NOTE_INSN_BLOCK_BEG
:
2005 if (debug_info_level
== DINFO_LEVEL_NORMAL
2006 || debug_info_level
== DINFO_LEVEL_VERBOSE
2007 || write_symbols
== DWARF2_DEBUG
2008 || write_symbols
== VMS_AND_DWARF2_DEBUG
2009 || write_symbols
== VMS_DEBUG
)
2011 int n
= BLOCK_NUMBER (NOTE_BLOCK (insn
));
2015 high_block_linenum
= last_linenum
;
2017 /* Output debugging info about the symbol-block beginning. */
2018 if (!DECL_IGNORED_P (current_function_decl
))
2019 debug_hooks
->begin_block (last_linenum
, n
);
2021 /* Mark this block as output. */
2022 TREE_ASM_WRITTEN (NOTE_BLOCK (insn
)) = 1;
2024 if (write_symbols
== DBX_DEBUG
2025 || write_symbols
== SDB_DEBUG
)
2027 location_t
*locus_ptr
2028 = block_nonartificial_location (NOTE_BLOCK (insn
));
2030 if (locus_ptr
!= NULL
)
2032 override_filename
= LOCATION_FILE (*locus_ptr
);
2033 override_linenum
= LOCATION_LINE (*locus_ptr
);
2038 case NOTE_INSN_BLOCK_END
:
2039 if (debug_info_level
== DINFO_LEVEL_NORMAL
2040 || debug_info_level
== DINFO_LEVEL_VERBOSE
2041 || write_symbols
== DWARF2_DEBUG
2042 || write_symbols
== VMS_AND_DWARF2_DEBUG
2043 || write_symbols
== VMS_DEBUG
)
2045 int n
= BLOCK_NUMBER (NOTE_BLOCK (insn
));
2049 /* End of a symbol-block. */
2051 gcc_assert (block_depth
>= 0);
2053 if (!DECL_IGNORED_P (current_function_decl
))
2054 debug_hooks
->end_block (high_block_linenum
, n
);
2056 if (write_symbols
== DBX_DEBUG
2057 || write_symbols
== SDB_DEBUG
)
2059 tree outer_block
= BLOCK_SUPERCONTEXT (NOTE_BLOCK (insn
));
2060 location_t
*locus_ptr
2061 = block_nonartificial_location (outer_block
);
2063 if (locus_ptr
!= NULL
)
2065 override_filename
= LOCATION_FILE (*locus_ptr
);
2066 override_linenum
= LOCATION_LINE (*locus_ptr
);
2070 override_filename
= NULL
;
2071 override_linenum
= 0;
2076 case NOTE_INSN_DELETED_LABEL
:
2077 /* Emit the label. We may have deleted the CODE_LABEL because
2078 the label could be proved to be unreachable, though still
2079 referenced (in the form of having its address taken. */
2080 ASM_OUTPUT_DEBUG_LABEL (file
, "L", CODE_LABEL_NUMBER (insn
));
2083 case NOTE_INSN_DELETED_DEBUG_LABEL
:
2084 /* Similarly, but need to use different namespace for it. */
2085 if (CODE_LABEL_NUMBER (insn
) != -1)
2086 ASM_OUTPUT_DEBUG_LABEL (file
, "LDL", CODE_LABEL_NUMBER (insn
));
2089 case NOTE_INSN_VAR_LOCATION
:
2090 case NOTE_INSN_CALL_ARG_LOCATION
:
2091 if (!DECL_IGNORED_P (current_function_decl
))
2092 debug_hooks
->var_location (insn
);
2105 /* The target port might emit labels in the output function for
2106 some insn, e.g. sh.c output_branchy_insn. */
2107 if (CODE_LABEL_NUMBER (insn
) <= max_labelno
)
2109 int align
= LABEL_TO_ALIGNMENT (insn
);
2110 #ifdef ASM_OUTPUT_MAX_SKIP_ALIGN
2111 int max_skip
= LABEL_TO_MAX_SKIP (insn
);
2114 if (align
&& NEXT_INSN (insn
))
2116 #ifdef ASM_OUTPUT_MAX_SKIP_ALIGN
2117 ASM_OUTPUT_MAX_SKIP_ALIGN (file
, align
, max_skip
);
2119 #ifdef ASM_OUTPUT_ALIGN_WITH_NOP
2120 ASM_OUTPUT_ALIGN_WITH_NOP (file
, align
);
2122 ASM_OUTPUT_ALIGN (file
, align
);
2129 if (!DECL_IGNORED_P (current_function_decl
) && LABEL_NAME (insn
))
2130 debug_hooks
->label (insn
);
2134 next
= next_nonnote_insn (insn
);
2135 /* If this label is followed by a jump-table, make sure we put
2136 the label in the read-only section. Also possibly write the
2137 label and jump table together. */
2138 if (next
!= 0 && JUMP_TABLE_DATA_P (next
))
2140 #if defined(ASM_OUTPUT_ADDR_VEC) || defined(ASM_OUTPUT_ADDR_DIFF_VEC)
2141 /* In this case, the case vector is being moved by the
2142 target, so don't output the label at all. Leave that
2143 to the back end macros. */
2145 if (! JUMP_TABLES_IN_TEXT_SECTION
)
2149 switch_to_section (targetm
.asm_out
.function_rodata_section
2150 (current_function_decl
));
2152 #ifdef ADDR_VEC_ALIGN
2153 log_align
= ADDR_VEC_ALIGN (next
);
2155 log_align
= exact_log2 (BIGGEST_ALIGNMENT
/ BITS_PER_UNIT
);
2157 ASM_OUTPUT_ALIGN (file
, log_align
);
2160 switch_to_section (current_function_section ());
2162 #ifdef ASM_OUTPUT_CASE_LABEL
2163 ASM_OUTPUT_CASE_LABEL (file
, "L", CODE_LABEL_NUMBER (insn
),
2166 targetm
.asm_out
.internal_label (file
, "L", CODE_LABEL_NUMBER (insn
));
2171 if (LABEL_ALT_ENTRY_P (insn
))
2172 output_alternate_entry_point (file
, insn
);
2174 targetm
.asm_out
.internal_label (file
, "L", CODE_LABEL_NUMBER (insn
));
2179 rtx body
= PATTERN (insn
);
2180 int insn_code_number
;
2184 /* Reset this early so it is correct for ASM statements. */
2185 current_insn_predicate
= NULL_RTX
;
2187 /* An INSN, JUMP_INSN or CALL_INSN.
2188 First check for special kinds that recog doesn't recognize. */
2190 if (GET_CODE (body
) == USE
/* These are just declarations. */
2191 || GET_CODE (body
) == CLOBBER
)
2196 /* If there is a REG_CC_SETTER note on this insn, it means that
2197 the setting of the condition code was done in the delay slot
2198 of the insn that branched here. So recover the cc status
2199 from the insn that set it. */
2201 rtx note
= find_reg_note (insn
, REG_CC_SETTER
, NULL_RTX
);
2204 NOTICE_UPDATE_CC (PATTERN (XEXP (note
, 0)), XEXP (note
, 0));
2205 cc_prev_status
= cc_status
;
2210 /* Detect insns that are really jump-tables
2211 and output them as such. */
2213 if (GET_CODE (body
) == ADDR_VEC
|| GET_CODE (body
) == ADDR_DIFF_VEC
)
2215 #if !(defined(ASM_OUTPUT_ADDR_VEC) || defined(ASM_OUTPUT_ADDR_DIFF_VEC))
2219 if (! JUMP_TABLES_IN_TEXT_SECTION
)
2220 switch_to_section (targetm
.asm_out
.function_rodata_section
2221 (current_function_decl
));
2223 switch_to_section (current_function_section ());
2227 #if defined(ASM_OUTPUT_ADDR_VEC) || defined(ASM_OUTPUT_ADDR_DIFF_VEC)
2228 if (GET_CODE (body
) == ADDR_VEC
)
2230 #ifdef ASM_OUTPUT_ADDR_VEC
2231 ASM_OUTPUT_ADDR_VEC (PREV_INSN (insn
), body
);
2238 #ifdef ASM_OUTPUT_ADDR_DIFF_VEC
2239 ASM_OUTPUT_ADDR_DIFF_VEC (PREV_INSN (insn
), body
);
2245 vlen
= XVECLEN (body
, GET_CODE (body
) == ADDR_DIFF_VEC
);
2246 for (idx
= 0; idx
< vlen
; idx
++)
2248 if (GET_CODE (body
) == ADDR_VEC
)
2250 #ifdef ASM_OUTPUT_ADDR_VEC_ELT
2251 ASM_OUTPUT_ADDR_VEC_ELT
2252 (file
, CODE_LABEL_NUMBER (XEXP (XVECEXP (body
, 0, idx
), 0)));
2259 #ifdef ASM_OUTPUT_ADDR_DIFF_ELT
2260 ASM_OUTPUT_ADDR_DIFF_ELT
2263 CODE_LABEL_NUMBER (XEXP (XVECEXP (body
, 1, idx
), 0)),
2264 CODE_LABEL_NUMBER (XEXP (XEXP (body
, 0), 0)));
2270 #ifdef ASM_OUTPUT_CASE_END
2271 ASM_OUTPUT_CASE_END (file
,
2272 CODE_LABEL_NUMBER (PREV_INSN (insn
)),
2277 switch_to_section (current_function_section ());
2281 /* Output this line note if it is the first or the last line
2283 if (!DECL_IGNORED_P (current_function_decl
)
2284 && notice_source_line (insn
, &is_stmt
))
2285 (*debug_hooks
->source_line
) (last_linenum
, last_filename
,
2286 last_discriminator
, is_stmt
);
2288 if (GET_CODE (body
) == ASM_INPUT
)
2290 const char *string
= XSTR (body
, 0);
2292 /* There's no telling what that did to the condition codes. */
2297 expanded_location loc
;
2300 loc
= expand_location (ASM_INPUT_SOURCE_LOCATION (body
));
2301 if (*loc
.file
&& loc
.line
)
2302 fprintf (asm_out_file
, "%s %i \"%s\" 1\n",
2303 ASM_COMMENT_START
, loc
.line
, loc
.file
);
2304 fprintf (asm_out_file
, "\t%s\n", string
);
2305 #if HAVE_AS_LINE_ZERO
2306 if (*loc
.file
&& loc
.line
)
2307 fprintf (asm_out_file
, "%s 0 \"\" 2\n", ASM_COMMENT_START
);
2313 /* Detect `asm' construct with operands. */
2314 if (asm_noperands (body
) >= 0)
2316 unsigned int noperands
= asm_noperands (body
);
2317 rtx
*ops
= XALLOCAVEC (rtx
, noperands
);
2320 expanded_location expanded
;
2322 /* There's no telling what that did to the condition codes. */
2325 /* Get out the operand values. */
2326 string
= decode_asm_operands (body
, ops
, NULL
, NULL
, NULL
, &loc
);
2327 /* Inhibit dying on what would otherwise be compiler bugs. */
2328 insn_noperands
= noperands
;
2329 this_is_asm_operands
= insn
;
2330 expanded
= expand_location (loc
);
2332 #ifdef FINAL_PRESCAN_INSN
2333 FINAL_PRESCAN_INSN (insn
, ops
, insn_noperands
);
2336 /* Output the insn using them. */
2340 if (expanded
.file
&& expanded
.line
)
2341 fprintf (asm_out_file
, "%s %i \"%s\" 1\n",
2342 ASM_COMMENT_START
, expanded
.line
, expanded
.file
);
2343 output_asm_insn (string
, ops
);
2344 #if HAVE_AS_LINE_ZERO
2345 if (expanded
.file
&& expanded
.line
)
2346 fprintf (asm_out_file
, "%s 0 \"\" 2\n", ASM_COMMENT_START
);
2350 if (targetm
.asm_out
.final_postscan_insn
)
2351 targetm
.asm_out
.final_postscan_insn (file
, insn
, ops
,
2354 this_is_asm_operands
= 0;
2360 if (GET_CODE (body
) == SEQUENCE
)
2362 /* A delayed-branch sequence */
2365 final_sequence
= body
;
2367 /* The first insn in this SEQUENCE might be a JUMP_INSN that will
2368 force the restoration of a comparison that was previously
2369 thought unnecessary. If that happens, cancel this sequence
2370 and cause that insn to be restored. */
2372 next
= final_scan_insn (XVECEXP (body
, 0, 0), file
, 0, 1, seen
);
2373 if (next
!= XVECEXP (body
, 0, 1))
2379 for (i
= 1; i
< XVECLEN (body
, 0); i
++)
2381 rtx insn
= XVECEXP (body
, 0, i
);
2382 rtx next
= NEXT_INSN (insn
);
2383 /* We loop in case any instruction in a delay slot gets
2386 insn
= final_scan_insn (insn
, file
, 0, 1, seen
);
2387 while (insn
!= next
);
2389 #ifdef DBR_OUTPUT_SEQEND
2390 DBR_OUTPUT_SEQEND (file
);
2394 /* If the insn requiring the delay slot was a CALL_INSN, the
2395 insns in the delay slot are actually executed before the
2396 called function. Hence we don't preserve any CC-setting
2397 actions in these insns and the CC must be marked as being
2398 clobbered by the function. */
2399 if (CALL_P (XVECEXP (body
, 0, 0)))
2406 /* We have a real machine instruction as rtl. */
2408 body
= PATTERN (insn
);
2411 set
= single_set (insn
);
2413 /* Check for redundant test and compare instructions
2414 (when the condition codes are already set up as desired).
2415 This is done only when optimizing; if not optimizing,
2416 it should be possible for the user to alter a variable
2417 with the debugger in between statements
2418 and the next statement should reexamine the variable
2419 to compute the condition codes. */
2424 && GET_CODE (SET_DEST (set
)) == CC0
2425 && insn
!= last_ignored_compare
)
2428 if (GET_CODE (SET_SRC (set
)) == SUBREG
)
2429 SET_SRC (set
) = alter_subreg (&SET_SRC (set
));
2431 src1
= SET_SRC (set
);
2433 if (GET_CODE (SET_SRC (set
)) == COMPARE
)
2435 if (GET_CODE (XEXP (SET_SRC (set
), 0)) == SUBREG
)
2436 XEXP (SET_SRC (set
), 0)
2437 = alter_subreg (&XEXP (SET_SRC (set
), 0));
2438 if (GET_CODE (XEXP (SET_SRC (set
), 1)) == SUBREG
)
2439 XEXP (SET_SRC (set
), 1)
2440 = alter_subreg (&XEXP (SET_SRC (set
), 1));
2441 if (XEXP (SET_SRC (set
), 1)
2442 == CONST0_RTX (GET_MODE (XEXP (SET_SRC (set
), 0))))
2443 src2
= XEXP (SET_SRC (set
), 0);
2445 if ((cc_status
.value1
!= 0
2446 && rtx_equal_p (src1
, cc_status
.value1
))
2447 || (cc_status
.value2
!= 0
2448 && rtx_equal_p (src1
, cc_status
.value2
))
2449 || (src2
!= 0 && cc_status
.value1
!= 0
2450 && rtx_equal_p (src2
, cc_status
.value1
))
2451 || (src2
!= 0 && cc_status
.value2
!= 0
2452 && rtx_equal_p (src2
, cc_status
.value2
)))
2454 /* Don't delete insn if it has an addressing side-effect. */
2455 if (! FIND_REG_INC_NOTE (insn
, NULL_RTX
)
2456 /* or if anything in it is volatile. */
2457 && ! volatile_refs_p (PATTERN (insn
)))
2459 /* We don't really delete the insn; just ignore it. */
2460 last_ignored_compare
= insn
;
2467 /* If this is a conditional branch, maybe modify it
2468 if the cc's are in a nonstandard state
2469 so that it accomplishes the same thing that it would
2470 do straightforwardly if the cc's were set up normally. */
2472 if (cc_status
.flags
!= 0
2474 && GET_CODE (body
) == SET
2475 && SET_DEST (body
) == pc_rtx
2476 && GET_CODE (SET_SRC (body
)) == IF_THEN_ELSE
2477 && COMPARISON_P (XEXP (SET_SRC (body
), 0))
2478 && XEXP (XEXP (SET_SRC (body
), 0), 0) == cc0_rtx
)
2480 /* This function may alter the contents of its argument
2481 and clear some of the cc_status.flags bits.
2482 It may also return 1 meaning condition now always true
2483 or -1 meaning condition now always false
2484 or 2 meaning condition nontrivial but altered. */
2485 int result
= alter_cond (XEXP (SET_SRC (body
), 0));
2486 /* If condition now has fixed value, replace the IF_THEN_ELSE
2487 with its then-operand or its else-operand. */
2489 SET_SRC (body
) = XEXP (SET_SRC (body
), 1);
2491 SET_SRC (body
) = XEXP (SET_SRC (body
), 2);
2493 /* The jump is now either unconditional or a no-op.
2494 If it has become a no-op, don't try to output it.
2495 (It would not be recognized.) */
2496 if (SET_SRC (body
) == pc_rtx
)
2501 else if (ANY_RETURN_P (SET_SRC (body
)))
2502 /* Replace (set (pc) (return)) with (return). */
2503 PATTERN (insn
) = body
= SET_SRC (body
);
2505 /* Rerecognize the instruction if it has changed. */
2507 INSN_CODE (insn
) = -1;
2510 /* If this is a conditional trap, maybe modify it if the cc's
2511 are in a nonstandard state so that it accomplishes the same
2512 thing that it would do straightforwardly if the cc's were
2514 if (cc_status
.flags
!= 0
2515 && NONJUMP_INSN_P (insn
)
2516 && GET_CODE (body
) == TRAP_IF
2517 && COMPARISON_P (TRAP_CONDITION (body
))
2518 && XEXP (TRAP_CONDITION (body
), 0) == cc0_rtx
)
2520 /* This function may alter the contents of its argument
2521 and clear some of the cc_status.flags bits.
2522 It may also return 1 meaning condition now always true
2523 or -1 meaning condition now always false
2524 or 2 meaning condition nontrivial but altered. */
2525 int result
= alter_cond (TRAP_CONDITION (body
));
2527 /* If TRAP_CONDITION has become always false, delete the
2535 /* If TRAP_CONDITION has become always true, replace
2536 TRAP_CONDITION with const_true_rtx. */
2538 TRAP_CONDITION (body
) = const_true_rtx
;
2540 /* Rerecognize the instruction if it has changed. */
2542 INSN_CODE (insn
) = -1;
2545 /* Make same adjustments to instructions that examine the
2546 condition codes without jumping and instructions that
2547 handle conditional moves (if this machine has either one). */
2549 if (cc_status
.flags
!= 0
2552 rtx cond_rtx
, then_rtx
, else_rtx
;
2555 && GET_CODE (SET_SRC (set
)) == IF_THEN_ELSE
)
2557 cond_rtx
= XEXP (SET_SRC (set
), 0);
2558 then_rtx
= XEXP (SET_SRC (set
), 1);
2559 else_rtx
= XEXP (SET_SRC (set
), 2);
2563 cond_rtx
= SET_SRC (set
);
2564 then_rtx
= const_true_rtx
;
2565 else_rtx
= const0_rtx
;
2568 switch (GET_CODE (cond_rtx
))
2582 if (XEXP (cond_rtx
, 0) != cc0_rtx
)
2584 result
= alter_cond (cond_rtx
);
2586 validate_change (insn
, &SET_SRC (set
), then_rtx
, 0);
2587 else if (result
== -1)
2588 validate_change (insn
, &SET_SRC (set
), else_rtx
, 0);
2589 else if (result
== 2)
2590 INSN_CODE (insn
) = -1;
2591 if (SET_DEST (set
) == SET_SRC (set
))
2603 #ifdef HAVE_peephole
2604 /* Do machine-specific peephole optimizations if desired. */
2606 if (optimize_p
&& !flag_no_peephole
&& !nopeepholes
)
2608 rtx next
= peephole (insn
);
2609 /* When peepholing, if there were notes within the peephole,
2610 emit them before the peephole. */
2611 if (next
!= 0 && next
!= NEXT_INSN (insn
))
2613 rtx note
, prev
= PREV_INSN (insn
);
2615 for (note
= NEXT_INSN (insn
); note
!= next
;
2616 note
= NEXT_INSN (note
))
2617 final_scan_insn (note
, file
, optimize_p
, nopeepholes
, seen
);
2619 /* Put the notes in the proper position for a later
2620 rescan. For example, the SH target can do this
2621 when generating a far jump in a delayed branch
2623 note
= NEXT_INSN (insn
);
2624 PREV_INSN (note
) = prev
;
2625 NEXT_INSN (prev
) = note
;
2626 NEXT_INSN (PREV_INSN (next
)) = insn
;
2627 PREV_INSN (insn
) = PREV_INSN (next
);
2628 NEXT_INSN (insn
) = next
;
2629 PREV_INSN (next
) = insn
;
2632 /* PEEPHOLE might have changed this. */
2633 body
= PATTERN (insn
);
2637 /* Try to recognize the instruction.
2638 If successful, verify that the operands satisfy the
2639 constraints for the instruction. Crash if they don't,
2640 since `reload' should have changed them so that they do. */
2642 insn_code_number
= recog_memoized (insn
);
2643 cleanup_subreg_operands (insn
);
2645 /* Dump the insn in the assembly for debugging. */
2646 if (flag_dump_rtl_in_asm
)
2648 print_rtx_head
= ASM_COMMENT_START
;
2649 print_rtl_single (asm_out_file
, insn
);
2650 print_rtx_head
= "";
2653 if (! constrain_operands_cached (1))
2654 fatal_insn_not_found (insn
);
2656 /* Some target machines need to prescan each insn before
2659 #ifdef FINAL_PRESCAN_INSN
2660 FINAL_PRESCAN_INSN (insn
, recog_data
.operand
, recog_data
.n_operands
);
2663 if (targetm
.have_conditional_execution ()
2664 && GET_CODE (PATTERN (insn
)) == COND_EXEC
)
2665 current_insn_predicate
= COND_EXEC_TEST (PATTERN (insn
));
2668 cc_prev_status
= cc_status
;
2670 /* Update `cc_status' for this instruction.
2671 The instruction's output routine may change it further.
2672 If the output routine for a jump insn needs to depend
2673 on the cc status, it should look at cc_prev_status. */
2675 NOTICE_UPDATE_CC (body
, insn
);
2678 current_output_insn
= debug_insn
= insn
;
2680 /* Find the proper template for this insn. */
2681 templ
= get_insn_template (insn_code_number
, insn
);
2683 /* If the C code returns 0, it means that it is a jump insn
2684 which follows a deleted test insn, and that test insn
2685 needs to be reinserted. */
2690 gcc_assert (prev_nonnote_insn (insn
) == last_ignored_compare
);
2692 /* We have already processed the notes between the setter and
2693 the user. Make sure we don't process them again, this is
2694 particularly important if one of the notes is a block
2695 scope note or an EH note. */
2697 prev
!= last_ignored_compare
;
2698 prev
= PREV_INSN (prev
))
2701 delete_insn (prev
); /* Use delete_note. */
2707 /* If the template is the string "#", it means that this insn must
2709 if (templ
[0] == '#' && templ
[1] == '\0')
2711 rtx new_rtx
= try_split (body
, insn
, 0);
2713 /* If we didn't split the insn, go away. */
2714 if (new_rtx
== insn
&& PATTERN (new_rtx
) == body
)
2715 fatal_insn ("could not split insn", insn
);
2717 #ifdef HAVE_ATTR_length
2718 /* This instruction should have been split in shorten_branches,
2719 to ensure that we would have valid length info for the
2727 /* ??? This will put the directives in the wrong place if
2728 get_insn_template outputs assembly directly. However calling it
2729 before get_insn_template breaks if the insns is split. */
2730 if (targetm
.asm_out
.unwind_emit_before_insn
2731 && targetm
.asm_out
.unwind_emit
)
2732 targetm
.asm_out
.unwind_emit (asm_out_file
, insn
);
2736 rtx x
= call_from_call_insn (insn
);
2738 if (x
&& MEM_P (x
) && GET_CODE (XEXP (x
, 0)) == SYMBOL_REF
)
2742 t
= SYMBOL_REF_DECL (x
);
2744 assemble_external (t
);
2746 if (!DECL_IGNORED_P (current_function_decl
))
2747 debug_hooks
->var_location (insn
);
2750 /* Output assembler code from the template. */
2751 output_asm_insn (templ
, recog_data
.operand
);
2753 /* Some target machines need to postscan each insn after
2755 if (targetm
.asm_out
.final_postscan_insn
)
2756 targetm
.asm_out
.final_postscan_insn (file
, insn
, recog_data
.operand
,
2757 recog_data
.n_operands
);
2759 if (!targetm
.asm_out
.unwind_emit_before_insn
2760 && targetm
.asm_out
.unwind_emit
)
2761 targetm
.asm_out
.unwind_emit (asm_out_file
, insn
);
2763 current_output_insn
= debug_insn
= 0;
2766 return NEXT_INSN (insn
);
2769 /* Return whether a source line note needs to be emitted before INSN.
2770 Sets IS_STMT to TRUE if the line should be marked as a possible
2771 breakpoint location. */
2774 notice_source_line (rtx insn
, bool *is_stmt
)
2776 const char *filename
;
2779 if (override_filename
)
2781 filename
= override_filename
;
2782 linenum
= override_linenum
;
2786 filename
= insn_file (insn
);
2787 linenum
= insn_line (insn
);
2790 if (filename
== NULL
)
2793 if (force_source_line
2794 || filename
!= last_filename
2795 || last_linenum
!= linenum
)
2797 force_source_line
= false;
2798 last_filename
= filename
;
2799 last_linenum
= linenum
;
2800 last_discriminator
= discriminator
;
2802 high_block_linenum
= MAX (last_linenum
, high_block_linenum
);
2803 high_function_linenum
= MAX (last_linenum
, high_function_linenum
);
2807 if (SUPPORTS_DISCRIMINATOR
&& last_discriminator
!= discriminator
)
2809 /* If the discriminator changed, but the line number did not,
2810 output the line table entry with is_stmt false so the
2811 debugger does not treat this as a breakpoint location. */
2812 last_discriminator
= discriminator
;
2820 /* For each operand in INSN, simplify (subreg (reg)) so that it refers
2821 directly to the desired hard register. */
2824 cleanup_subreg_operands (rtx insn
)
2827 bool changed
= false;
2828 extract_insn_cached (insn
);
2829 for (i
= 0; i
< recog_data
.n_operands
; i
++)
2831 /* The following test cannot use recog_data.operand when testing
2832 for a SUBREG: the underlying object might have been changed
2833 already if we are inside a match_operator expression that
2834 matches the else clause. Instead we test the underlying
2835 expression directly. */
2836 if (GET_CODE (*recog_data
.operand_loc
[i
]) == SUBREG
)
2838 recog_data
.operand
[i
] = alter_subreg (recog_data
.operand_loc
[i
]);
2841 else if (GET_CODE (recog_data
.operand
[i
]) == PLUS
2842 || GET_CODE (recog_data
.operand
[i
]) == MULT
2843 || MEM_P (recog_data
.operand
[i
]))
2844 recog_data
.operand
[i
] = walk_alter_subreg (recog_data
.operand_loc
[i
], &changed
);
2847 for (i
= 0; i
< recog_data
.n_dups
; i
++)
2849 if (GET_CODE (*recog_data
.dup_loc
[i
]) == SUBREG
)
2851 *recog_data
.dup_loc
[i
] = alter_subreg (recog_data
.dup_loc
[i
]);
2854 else if (GET_CODE (*recog_data
.dup_loc
[i
]) == PLUS
2855 || GET_CODE (*recog_data
.dup_loc
[i
]) == MULT
2856 || MEM_P (*recog_data
.dup_loc
[i
]))
2857 *recog_data
.dup_loc
[i
] = walk_alter_subreg (recog_data
.dup_loc
[i
], &changed
);
2860 df_insn_rescan (insn
);
2863 /* If X is a SUBREG, replace it with a REG or a MEM,
2864 based on the thing it is a subreg of. */
2867 alter_subreg (rtx
*xp
)
2870 rtx y
= SUBREG_REG (x
);
2872 /* simplify_subreg does not remove subreg from volatile references.
2873 We are required to. */
2876 int offset
= SUBREG_BYTE (x
);
2878 /* For paradoxical subregs on big-endian machines, SUBREG_BYTE
2879 contains 0 instead of the proper offset. See simplify_subreg. */
2881 && GET_MODE_SIZE (GET_MODE (y
)) < GET_MODE_SIZE (GET_MODE (x
)))
2883 int difference
= GET_MODE_SIZE (GET_MODE (y
))
2884 - GET_MODE_SIZE (GET_MODE (x
));
2885 if (WORDS_BIG_ENDIAN
)
2886 offset
+= (difference
/ UNITS_PER_WORD
) * UNITS_PER_WORD
;
2887 if (BYTES_BIG_ENDIAN
)
2888 offset
+= difference
% UNITS_PER_WORD
;
2891 *xp
= adjust_address (y
, GET_MODE (x
), offset
);
2895 rtx new_rtx
= simplify_subreg (GET_MODE (x
), y
, GET_MODE (y
),
2902 /* Simplify_subreg can't handle some REG cases, but we have to. */
2904 HOST_WIDE_INT offset
;
2906 regno
= subreg_regno (x
);
2907 if (subreg_lowpart_p (x
))
2908 offset
= byte_lowpart_offset (GET_MODE (x
), GET_MODE (y
));
2910 offset
= SUBREG_BYTE (x
);
2911 *xp
= gen_rtx_REG_offset (y
, GET_MODE (x
), regno
, offset
);
2918 /* Do alter_subreg on all the SUBREGs contained in X. */
2921 walk_alter_subreg (rtx
*xp
, bool *changed
)
2924 switch (GET_CODE (x
))
2929 XEXP (x
, 0) = walk_alter_subreg (&XEXP (x
, 0), changed
);
2930 XEXP (x
, 1) = walk_alter_subreg (&XEXP (x
, 1), changed
);
2935 XEXP (x
, 0) = walk_alter_subreg (&XEXP (x
, 0), changed
);
2940 return alter_subreg (xp
);
2951 /* Given BODY, the body of a jump instruction, alter the jump condition
2952 as required by the bits that are set in cc_status.flags.
2953 Not all of the bits there can be handled at this level in all cases.
2955 The value is normally 0.
2956 1 means that the condition has become always true.
2957 -1 means that the condition has become always false.
2958 2 means that COND has been altered. */
2961 alter_cond (rtx cond
)
2965 if (cc_status
.flags
& CC_REVERSED
)
2968 PUT_CODE (cond
, swap_condition (GET_CODE (cond
)));
2971 if (cc_status
.flags
& CC_INVERTED
)
2974 PUT_CODE (cond
, reverse_condition (GET_CODE (cond
)));
2977 if (cc_status
.flags
& CC_NOT_POSITIVE
)
2978 switch (GET_CODE (cond
))
2983 /* Jump becomes unconditional. */
2989 /* Jump becomes no-op. */
2993 PUT_CODE (cond
, EQ
);
2998 PUT_CODE (cond
, NE
);
3006 if (cc_status
.flags
& CC_NOT_NEGATIVE
)
3007 switch (GET_CODE (cond
))
3011 /* Jump becomes unconditional. */
3016 /* Jump becomes no-op. */
3021 PUT_CODE (cond
, EQ
);
3027 PUT_CODE (cond
, NE
);
3035 if (cc_status
.flags
& CC_NO_OVERFLOW
)
3036 switch (GET_CODE (cond
))
3039 /* Jump becomes unconditional. */
3043 PUT_CODE (cond
, EQ
);
3048 PUT_CODE (cond
, NE
);
3053 /* Jump becomes no-op. */
3060 if (cc_status
.flags
& (CC_Z_IN_NOT_N
| CC_Z_IN_N
))
3061 switch (GET_CODE (cond
))
3067 PUT_CODE (cond
, cc_status
.flags
& CC_Z_IN_N
? GE
: LT
);
3072 PUT_CODE (cond
, cc_status
.flags
& CC_Z_IN_N
? LT
: GE
);
3077 if (cc_status
.flags
& CC_NOT_SIGNED
)
3078 /* The flags are valid if signed condition operators are converted
3080 switch (GET_CODE (cond
))
3083 PUT_CODE (cond
, LEU
);
3088 PUT_CODE (cond
, LTU
);
3093 PUT_CODE (cond
, GTU
);
3098 PUT_CODE (cond
, GEU
);
3110 /* Report inconsistency between the assembler template and the operands.
3111 In an `asm', it's the user's fault; otherwise, the compiler's fault. */
3114 output_operand_lossage (const char *cmsgid
, ...)
3118 const char *pfx_str
;
3121 va_start (ap
, cmsgid
);
3123 pfx_str
= this_is_asm_operands
? _("invalid 'asm': ") : "output_operand: ";
3124 asprintf (&fmt_string
, "%s%s", pfx_str
, _(cmsgid
));
3125 vasprintf (&new_message
, fmt_string
, ap
);
3127 if (this_is_asm_operands
)
3128 error_for_asm (this_is_asm_operands
, "%s", new_message
);
3130 internal_error ("%s", new_message
);
3137 /* Output of assembler code from a template, and its subroutines. */
3139 /* Annotate the assembly with a comment describing the pattern and
3140 alternative used. */
3143 output_asm_name (void)
3147 int num
= INSN_CODE (debug_insn
);
3148 fprintf (asm_out_file
, "\t%s %d\t%s",
3149 ASM_COMMENT_START
, INSN_UID (debug_insn
),
3150 insn_data
[num
].name
);
3151 if (insn_data
[num
].n_alternatives
> 1)
3152 fprintf (asm_out_file
, "/%d", which_alternative
+ 1);
3153 #ifdef HAVE_ATTR_length
3154 fprintf (asm_out_file
, "\t[length = %d]",
3155 get_attr_length (debug_insn
));
3157 /* Clear this so only the first assembler insn
3158 of any rtl insn will get the special comment for -dp. */
3163 /* If OP is a REG or MEM and we can find a MEM_EXPR corresponding to it
3164 or its address, return that expr . Set *PADDRESSP to 1 if the expr
3165 corresponds to the address of the object and 0 if to the object. */
3168 get_mem_expr_from_op (rtx op
, int *paddressp
)
3176 return REG_EXPR (op
);
3177 else if (!MEM_P (op
))
3180 if (MEM_EXPR (op
) != 0)
3181 return MEM_EXPR (op
);
3183 /* Otherwise we have an address, so indicate it and look at the address. */
3187 /* First check if we have a decl for the address, then look at the right side
3188 if it is a PLUS. Otherwise, strip off arithmetic and keep looking.
3189 But don't allow the address to itself be indirect. */
3190 if ((expr
= get_mem_expr_from_op (op
, &inner_addressp
)) && ! inner_addressp
)
3192 else if (GET_CODE (op
) == PLUS
3193 && (expr
= get_mem_expr_from_op (XEXP (op
, 1), &inner_addressp
)))
3197 || GET_RTX_CLASS (GET_CODE (op
)) == RTX_BIN_ARITH
)
3200 expr
= get_mem_expr_from_op (op
, &inner_addressp
);
3201 return inner_addressp
? 0 : expr
;
3204 /* Output operand names for assembler instructions. OPERANDS is the
3205 operand vector, OPORDER is the order to write the operands, and NOPS
3206 is the number of operands to write. */
3209 output_asm_operand_names (rtx
*operands
, int *oporder
, int nops
)
3214 for (i
= 0; i
< nops
; i
++)
3217 rtx op
= operands
[oporder
[i
]];
3218 tree expr
= get_mem_expr_from_op (op
, &addressp
);
3220 fprintf (asm_out_file
, "%c%s",
3221 wrote
? ',' : '\t', wrote
? "" : ASM_COMMENT_START
);
3225 fprintf (asm_out_file
, "%s",
3226 addressp
? "*" : "");
3227 print_mem_expr (asm_out_file
, expr
);
3230 else if (REG_P (op
) && ORIGINAL_REGNO (op
)
3231 && ORIGINAL_REGNO (op
) != REGNO (op
))
3232 fprintf (asm_out_file
, " tmp%i", ORIGINAL_REGNO (op
));
3236 /* Output text from TEMPLATE to the assembler output file,
3237 obeying %-directions to substitute operands taken from
3238 the vector OPERANDS.
3240 %N (for N a digit) means print operand N in usual manner.
3241 %lN means require operand N to be a CODE_LABEL or LABEL_REF
3242 and print the label name with no punctuation.
3243 %cN means require operand N to be a constant
3244 and print the constant expression with no punctuation.
3245 %aN means expect operand N to be a memory address
3246 (not a memory reference!) and print a reference
3248 %nN means expect operand N to be a constant
3249 and print a constant expression for minus the value
3250 of the operand, with no other punctuation. */
3253 output_asm_insn (const char *templ
, rtx
*operands
)
3257 #ifdef ASSEMBLER_DIALECT
3260 int oporder
[MAX_RECOG_OPERANDS
];
3261 char opoutput
[MAX_RECOG_OPERANDS
];
3264 /* An insn may return a null string template
3265 in a case where no assembler code is needed. */
3269 memset (opoutput
, 0, sizeof opoutput
);
3271 putc ('\t', asm_out_file
);
3273 #ifdef ASM_OUTPUT_OPCODE
3274 ASM_OUTPUT_OPCODE (asm_out_file
, p
);
3281 if (flag_verbose_asm
)
3282 output_asm_operand_names (operands
, oporder
, ops
);
3283 if (flag_print_asm_name
)
3287 memset (opoutput
, 0, sizeof opoutput
);
3289 putc (c
, asm_out_file
);
3290 #ifdef ASM_OUTPUT_OPCODE
3291 while ((c
= *p
) == '\t')
3293 putc (c
, asm_out_file
);
3296 ASM_OUTPUT_OPCODE (asm_out_file
, p
);
3300 #ifdef ASSEMBLER_DIALECT
3306 output_operand_lossage ("nested assembly dialect alternatives");
3310 /* If we want the first dialect, do nothing. Otherwise, skip
3311 DIALECT_NUMBER of strings ending with '|'. */
3312 for (i
= 0; i
< dialect_number
; i
++)
3314 while (*p
&& *p
!= '}' && *p
++ != '|')
3323 output_operand_lossage ("unterminated assembly dialect alternative");
3330 /* Skip to close brace. */
3335 output_operand_lossage ("unterminated assembly dialect alternative");
3339 while (*p
++ != '}');
3343 putc (c
, asm_out_file
);
3348 putc (c
, asm_out_file
);
3354 /* %% outputs a single %. */
3358 putc (c
, asm_out_file
);
3360 /* %= outputs a number which is unique to each insn in the entire
3361 compilation. This is useful for making local labels that are
3362 referred to more than once in a given insn. */
3366 fprintf (asm_out_file
, "%d", insn_counter
);
3368 /* % followed by a letter and some digits
3369 outputs an operand in a special way depending on the letter.
3370 Letters `acln' are implemented directly.
3371 Other letters are passed to `output_operand' so that
3372 the TARGET_PRINT_OPERAND hook can define them. */
3373 else if (ISALPHA (*p
))
3376 unsigned long opnum
;
3379 opnum
= strtoul (p
, &endptr
, 10);
3382 output_operand_lossage ("operand number missing "
3384 else if (this_is_asm_operands
&& opnum
>= insn_noperands
)
3385 output_operand_lossage ("operand number out of range");
3386 else if (letter
== 'l')
3387 output_asm_label (operands
[opnum
]);
3388 else if (letter
== 'a')
3389 output_address (operands
[opnum
]);
3390 else if (letter
== 'c')
3392 if (CONSTANT_ADDRESS_P (operands
[opnum
]))
3393 output_addr_const (asm_out_file
, operands
[opnum
]);
3395 output_operand (operands
[opnum
], 'c');
3397 else if (letter
== 'n')
3399 if (CONST_INT_P (operands
[opnum
]))
3400 fprintf (asm_out_file
, HOST_WIDE_INT_PRINT_DEC
,
3401 - INTVAL (operands
[opnum
]));
3404 putc ('-', asm_out_file
);
3405 output_addr_const (asm_out_file
, operands
[opnum
]);
3409 output_operand (operands
[opnum
], letter
);
3411 if (!opoutput
[opnum
])
3412 oporder
[ops
++] = opnum
;
3413 opoutput
[opnum
] = 1;
3418 /* % followed by a digit outputs an operand the default way. */
3419 else if (ISDIGIT (*p
))
3421 unsigned long opnum
;
3424 opnum
= strtoul (p
, &endptr
, 10);
3425 if (this_is_asm_operands
&& opnum
>= insn_noperands
)
3426 output_operand_lossage ("operand number out of range");
3428 output_operand (operands
[opnum
], 0);
3430 if (!opoutput
[opnum
])
3431 oporder
[ops
++] = opnum
;
3432 opoutput
[opnum
] = 1;
3437 /* % followed by punctuation: output something for that
3438 punctuation character alone, with no operand. The
3439 TARGET_PRINT_OPERAND hook decides what is actually done. */
3440 else if (targetm
.asm_out
.print_operand_punct_valid_p ((unsigned char) *p
))
3441 output_operand (NULL_RTX
, *p
++);
3443 output_operand_lossage ("invalid %%-code");
3447 putc (c
, asm_out_file
);
3450 /* Write out the variable names for operands, if we know them. */
3451 if (flag_verbose_asm
)
3452 output_asm_operand_names (operands
, oporder
, ops
);
3453 if (flag_print_asm_name
)
3456 putc ('\n', asm_out_file
);
3459 /* Output a LABEL_REF, or a bare CODE_LABEL, as an assembler symbol. */
3462 output_asm_label (rtx x
)
3466 if (GET_CODE (x
) == LABEL_REF
)
3470 && NOTE_KIND (x
) == NOTE_INSN_DELETED_LABEL
))
3471 ASM_GENERATE_INTERNAL_LABEL (buf
, "L", CODE_LABEL_NUMBER (x
));
3473 output_operand_lossage ("'%%l' operand isn't a label");
3475 assemble_name (asm_out_file
, buf
);
3478 /* Helper rtx-iteration-function for mark_symbol_refs_as_used and
3479 output_operand. Marks SYMBOL_REFs as referenced through use of
3480 assemble_external. */
3483 mark_symbol_ref_as_used (rtx
*xp
, void *dummy ATTRIBUTE_UNUSED
)
3487 /* If we have a used symbol, we may have to emit assembly
3488 annotations corresponding to whether the symbol is external, weak
3489 or has non-default visibility. */
3490 if (GET_CODE (x
) == SYMBOL_REF
)
3494 t
= SYMBOL_REF_DECL (x
);
3496 assemble_external (t
);
3504 /* Marks SYMBOL_REFs in x as referenced through use of assemble_external. */
3507 mark_symbol_refs_as_used (rtx x
)
3509 for_each_rtx (&x
, mark_symbol_ref_as_used
, NULL
);
3512 /* Print operand X using machine-dependent assembler syntax.
3513 CODE is a non-digit that preceded the operand-number in the % spec,
3514 such as 'z' if the spec was `%z3'. CODE is 0 if there was no char
3515 between the % and the digits.
3516 When CODE is a non-letter, X is 0.
3518 The meanings of the letters are machine-dependent and controlled
3519 by TARGET_PRINT_OPERAND. */
3522 output_operand (rtx x
, int code ATTRIBUTE_UNUSED
)
3524 if (x
&& GET_CODE (x
) == SUBREG
)
3525 x
= alter_subreg (&x
);
3527 /* X must not be a pseudo reg. */
3528 gcc_assert (!x
|| !REG_P (x
) || REGNO (x
) < FIRST_PSEUDO_REGISTER
);
3530 targetm
.asm_out
.print_operand (asm_out_file
, x
, code
);
3535 for_each_rtx (&x
, mark_symbol_ref_as_used
, NULL
);
3538 /* Print a memory reference operand for address X using
3539 machine-dependent assembler syntax. */
3542 output_address (rtx x
)
3544 bool changed
= false;
3545 walk_alter_subreg (&x
, &changed
);
3546 targetm
.asm_out
.print_operand_address (asm_out_file
, x
);
3549 /* Print an integer constant expression in assembler syntax.
3550 Addition and subtraction are the only arithmetic
3551 that may appear in these expressions. */
3554 output_addr_const (FILE *file
, rtx x
)
3559 switch (GET_CODE (x
))
3566 if (SYMBOL_REF_DECL (x
))
3567 assemble_external (SYMBOL_REF_DECL (x
));
3568 #ifdef ASM_OUTPUT_SYMBOL_REF
3569 ASM_OUTPUT_SYMBOL_REF (file
, x
);
3571 assemble_name (file
, XSTR (x
, 0));
3579 ASM_GENERATE_INTERNAL_LABEL (buf
, "L", CODE_LABEL_NUMBER (x
));
3580 #ifdef ASM_OUTPUT_LABEL_REF
3581 ASM_OUTPUT_LABEL_REF (file
, buf
);
3583 assemble_name (file
, buf
);
3588 fprintf (file
, HOST_WIDE_INT_PRINT_DEC
, INTVAL (x
));
3592 /* This used to output parentheses around the expression,
3593 but that does not work on the 386 (either ATT or BSD assembler). */
3594 output_addr_const (file
, XEXP (x
, 0));
3598 if (GET_MODE (x
) == VOIDmode
)
3600 /* We can use %d if the number is one word and positive. */
3601 if (CONST_DOUBLE_HIGH (x
))
3602 fprintf (file
, HOST_WIDE_INT_PRINT_DOUBLE_HEX
,
3603 (unsigned HOST_WIDE_INT
) CONST_DOUBLE_HIGH (x
),
3604 (unsigned HOST_WIDE_INT
) CONST_DOUBLE_LOW (x
));
3605 else if (CONST_DOUBLE_LOW (x
) < 0)
3606 fprintf (file
, HOST_WIDE_INT_PRINT_HEX
,
3607 (unsigned HOST_WIDE_INT
) CONST_DOUBLE_LOW (x
));
3609 fprintf (file
, HOST_WIDE_INT_PRINT_DEC
, CONST_DOUBLE_LOW (x
));
3612 /* We can't handle floating point constants;
3613 PRINT_OPERAND must handle them. */
3614 output_operand_lossage ("floating constant misused");
3618 fprintf (file
, HOST_WIDE_INT_PRINT_DEC
, CONST_FIXED_VALUE_LOW (x
));
3622 /* Some assemblers need integer constants to appear last (eg masm). */
3623 if (CONST_INT_P (XEXP (x
, 0)))
3625 output_addr_const (file
, XEXP (x
, 1));
3626 if (INTVAL (XEXP (x
, 0)) >= 0)
3627 fprintf (file
, "+");
3628 output_addr_const (file
, XEXP (x
, 0));
3632 output_addr_const (file
, XEXP (x
, 0));
3633 if (!CONST_INT_P (XEXP (x
, 1))
3634 || INTVAL (XEXP (x
, 1)) >= 0)
3635 fprintf (file
, "+");
3636 output_addr_const (file
, XEXP (x
, 1));
3641 /* Avoid outputting things like x-x or x+5-x,
3642 since some assemblers can't handle that. */
3643 x
= simplify_subtraction (x
);
3644 if (GET_CODE (x
) != MINUS
)
3647 output_addr_const (file
, XEXP (x
, 0));
3648 fprintf (file
, "-");
3649 if ((CONST_INT_P (XEXP (x
, 1)) && INTVAL (XEXP (x
, 1)) >= 0)
3650 || GET_CODE (XEXP (x
, 1)) == PC
3651 || GET_CODE (XEXP (x
, 1)) == SYMBOL_REF
)
3652 output_addr_const (file
, XEXP (x
, 1));
3655 fputs (targetm
.asm_out
.open_paren
, file
);
3656 output_addr_const (file
, XEXP (x
, 1));
3657 fputs (targetm
.asm_out
.close_paren
, file
);
3665 output_addr_const (file
, XEXP (x
, 0));
3669 if (targetm
.asm_out
.output_addr_const_extra (file
, x
))
3672 output_operand_lossage ("invalid expression as operand");
3676 /* Output a quoted string. */
3679 output_quoted_string (FILE *asm_file
, const char *string
)
3681 #ifdef OUTPUT_QUOTED_STRING
3682 OUTPUT_QUOTED_STRING (asm_file
, string
);
3686 putc ('\"', asm_file
);
3687 while ((c
= *string
++) != 0)
3691 if (c
== '\"' || c
== '\\')
3692 putc ('\\', asm_file
);
3696 fprintf (asm_file
, "\\%03o", (unsigned char) c
);
3698 putc ('\"', asm_file
);
3702 /* Write a HOST_WIDE_INT number in hex form 0x1234, fast. */
3705 fprint_whex (FILE *f
, unsigned HOST_WIDE_INT value
)
3707 char buf
[2 + CHAR_BIT
* sizeof (value
) / 4];
3712 char *p
= buf
+ sizeof (buf
);
3714 *--p
= "0123456789abcdef"[value
% 16];
3715 while ((value
/= 16) != 0);
3718 fwrite (p
, 1, buf
+ sizeof (buf
) - p
, f
);
3722 /* Internal function that prints an unsigned long in decimal in reverse.
3723 The output string IS NOT null-terminated. */
3726 sprint_ul_rev (char *s
, unsigned long value
)
3731 s
[i
] = "0123456789"[value
% 10];
3734 /* alternate version, without modulo */
3735 /* oldval = value; */
3737 /* s[i] = "0123456789" [oldval - 10*value]; */
3744 /* Write an unsigned long as decimal to a file, fast. */
3747 fprint_ul (FILE *f
, unsigned long value
)
3749 /* python says: len(str(2**64)) == 20 */
3753 i
= sprint_ul_rev (s
, value
);
3755 /* It's probably too small to bother with string reversal and fputs. */
3764 /* Write an unsigned long as decimal to a string, fast.
3765 s must be wide enough to not overflow, at least 21 chars.
3766 Returns the length of the string (without terminating '\0'). */
3769 sprint_ul (char *s
, unsigned long value
)
3776 len
= sprint_ul_rev (s
, value
);
3779 /* Reverse the string. */
3793 /* A poor man's fprintf, with the added features of %I, %R, %L, and %U.
3794 %R prints the value of REGISTER_PREFIX.
3795 %L prints the value of LOCAL_LABEL_PREFIX.
3796 %U prints the value of USER_LABEL_PREFIX.
3797 %I prints the value of IMMEDIATE_PREFIX.
3798 %O runs ASM_OUTPUT_OPCODE to transform what follows in the string.
3799 Also supported are %d, %i, %u, %x, %X, %o, %c, %s and %%.
3801 We handle alternate assembler dialects here, just like output_asm_insn. */
3804 asm_fprintf (FILE *file
, const char *p
, ...)
3810 va_start (argptr
, p
);
3817 #ifdef ASSEMBLER_DIALECT
3822 /* If we want the first dialect, do nothing. Otherwise, skip
3823 DIALECT_NUMBER of strings ending with '|'. */
3824 for (i
= 0; i
< dialect_number
; i
++)
3826 while (*p
&& *p
++ != '|')
3836 /* Skip to close brace. */
3837 while (*p
&& *p
++ != '}')
3848 while (strchr ("-+ #0", c
))
3853 while (ISDIGIT (c
) || c
== '.')
3864 case 'd': case 'i': case 'u':
3865 case 'x': case 'X': case 'o':
3869 fprintf (file
, buf
, va_arg (argptr
, int));
3873 /* This is a prefix to the 'd', 'i', 'u', 'x', 'X', and
3874 'o' cases, but we do not check for those cases. It
3875 means that the value is a HOST_WIDE_INT, which may be
3876 either `long' or `long long'. */
3877 memcpy (q
, HOST_WIDE_INT_PRINT
, strlen (HOST_WIDE_INT_PRINT
));
3878 q
+= strlen (HOST_WIDE_INT_PRINT
);
3881 fprintf (file
, buf
, va_arg (argptr
, HOST_WIDE_INT
));
3886 #ifdef HAVE_LONG_LONG
3892 fprintf (file
, buf
, va_arg (argptr
, long long));
3899 fprintf (file
, buf
, va_arg (argptr
, long));
3907 fprintf (file
, buf
, va_arg (argptr
, char *));
3911 #ifdef ASM_OUTPUT_OPCODE
3912 ASM_OUTPUT_OPCODE (asm_out_file
, p
);
3917 #ifdef REGISTER_PREFIX
3918 fprintf (file
, "%s", REGISTER_PREFIX
);
3923 #ifdef IMMEDIATE_PREFIX
3924 fprintf (file
, "%s", IMMEDIATE_PREFIX
);
3929 #ifdef LOCAL_LABEL_PREFIX
3930 fprintf (file
, "%s", LOCAL_LABEL_PREFIX
);
3935 fputs (user_label_prefix
, file
);
3938 #ifdef ASM_FPRINTF_EXTENSIONS
3939 /* Uppercase letters are reserved for general use by asm_fprintf
3940 and so are not available to target specific code. In order to
3941 prevent the ASM_FPRINTF_EXTENSIONS macro from using them then,
3942 they are defined here. As they get turned into real extensions
3943 to asm_fprintf they should be removed from this list. */
3944 case 'A': case 'B': case 'C': case 'D': case 'E':
3945 case 'F': case 'G': case 'H': case 'J': case 'K':
3946 case 'M': case 'N': case 'P': case 'Q': case 'S':
3947 case 'T': case 'V': case 'W': case 'Y': case 'Z':
3950 ASM_FPRINTF_EXTENSIONS (file
, argptr
, p
)
3963 /* Split up a CONST_DOUBLE or integer constant rtx
3964 into two rtx's for single words,
3965 storing in *FIRST the word that comes first in memory in the target
3966 and in *SECOND the other. */
3969 split_double (rtx value
, rtx
*first
, rtx
*second
)
3971 if (CONST_INT_P (value
))
3973 if (HOST_BITS_PER_WIDE_INT
>= (2 * BITS_PER_WORD
))
3975 /* In this case the CONST_INT holds both target words.
3976 Extract the bits from it into two word-sized pieces.
3977 Sign extend each half to HOST_WIDE_INT. */
3978 unsigned HOST_WIDE_INT low
, high
;
3979 unsigned HOST_WIDE_INT mask
, sign_bit
, sign_extend
;
3980 unsigned bits_per_word
= BITS_PER_WORD
;
3982 /* Set sign_bit to the most significant bit of a word. */
3984 sign_bit
<<= bits_per_word
- 1;
3986 /* Set mask so that all bits of the word are set. We could
3987 have used 1 << BITS_PER_WORD instead of basing the
3988 calculation on sign_bit. However, on machines where
3989 HOST_BITS_PER_WIDE_INT == BITS_PER_WORD, it could cause a
3990 compiler warning, even though the code would never be
3992 mask
= sign_bit
<< 1;
3995 /* Set sign_extend as any remaining bits. */
3996 sign_extend
= ~mask
;
3998 /* Pick the lower word and sign-extend it. */
3999 low
= INTVAL (value
);
4004 /* Pick the higher word, shifted to the least significant
4005 bits, and sign-extend it. */
4006 high
= INTVAL (value
);
4007 high
>>= bits_per_word
- 1;
4010 if (high
& sign_bit
)
4011 high
|= sign_extend
;
4013 /* Store the words in the target machine order. */
4014 if (WORDS_BIG_ENDIAN
)
4016 *first
= GEN_INT (high
);
4017 *second
= GEN_INT (low
);
4021 *first
= GEN_INT (low
);
4022 *second
= GEN_INT (high
);
4027 /* The rule for using CONST_INT for a wider mode
4028 is that we regard the value as signed.
4029 So sign-extend it. */
4030 rtx high
= (INTVAL (value
) < 0 ? constm1_rtx
: const0_rtx
);
4031 if (WORDS_BIG_ENDIAN
)
4043 else if (GET_CODE (value
) != CONST_DOUBLE
)
4045 if (WORDS_BIG_ENDIAN
)
4047 *first
= const0_rtx
;
4053 *second
= const0_rtx
;
4056 else if (GET_MODE (value
) == VOIDmode
4057 /* This is the old way we did CONST_DOUBLE integers. */
4058 || GET_MODE_CLASS (GET_MODE (value
)) == MODE_INT
)
4060 /* In an integer, the words are defined as most and least significant.
4061 So order them by the target's convention. */
4062 if (WORDS_BIG_ENDIAN
)
4064 *first
= GEN_INT (CONST_DOUBLE_HIGH (value
));
4065 *second
= GEN_INT (CONST_DOUBLE_LOW (value
));
4069 *first
= GEN_INT (CONST_DOUBLE_LOW (value
));
4070 *second
= GEN_INT (CONST_DOUBLE_HIGH (value
));
4077 REAL_VALUE_FROM_CONST_DOUBLE (r
, value
);
4079 /* Note, this converts the REAL_VALUE_TYPE to the target's
4080 format, splits up the floating point double and outputs
4081 exactly 32 bits of it into each of l[0] and l[1] --
4082 not necessarily BITS_PER_WORD bits. */
4083 REAL_VALUE_TO_TARGET_DOUBLE (r
, l
);
4085 /* If 32 bits is an entire word for the target, but not for the host,
4086 then sign-extend on the host so that the number will look the same
4087 way on the host that it would on the target. See for instance
4088 simplify_unary_operation. The #if is needed to avoid compiler
4091 #if HOST_BITS_PER_LONG > 32
4092 if (BITS_PER_WORD
< HOST_BITS_PER_LONG
&& BITS_PER_WORD
== 32)
4094 if (l
[0] & ((long) 1 << 31))
4095 l
[0] |= ((long) (-1) << 32);
4096 if (l
[1] & ((long) 1 << 31))
4097 l
[1] |= ((long) (-1) << 32);
4101 *first
= GEN_INT (l
[0]);
4102 *second
= GEN_INT (l
[1]);
4106 /* Return nonzero if this function has no function calls. */
4109 leaf_function_p (void)
4114 if (crtl
->profile
|| profile_arc_flag
)
4117 for (insn
= get_insns (); insn
; insn
= NEXT_INSN (insn
))
4120 && ! SIBLING_CALL_P (insn
))
4122 if (NONJUMP_INSN_P (insn
)
4123 && GET_CODE (PATTERN (insn
)) == SEQUENCE
4124 && CALL_P (XVECEXP (PATTERN (insn
), 0, 0))
4125 && ! SIBLING_CALL_P (XVECEXP (PATTERN (insn
), 0, 0)))
4128 for (link
= crtl
->epilogue_delay_list
;
4130 link
= XEXP (link
, 1))
4132 insn
= XEXP (link
, 0);
4135 && ! SIBLING_CALL_P (insn
))
4137 if (NONJUMP_INSN_P (insn
)
4138 && GET_CODE (PATTERN (insn
)) == SEQUENCE
4139 && CALL_P (XVECEXP (PATTERN (insn
), 0, 0))
4140 && ! SIBLING_CALL_P (XVECEXP (PATTERN (insn
), 0, 0)))
4147 /* Return 1 if branch is a forward branch.
4148 Uses insn_shuid array, so it works only in the final pass. May be used by
4149 output templates to customary add branch prediction hints.
4152 final_forward_branch_p (rtx insn
)
4154 int insn_id
, label_id
;
4156 gcc_assert (uid_shuid
);
4157 insn_id
= INSN_SHUID (insn
);
4158 label_id
= INSN_SHUID (JUMP_LABEL (insn
));
4159 /* We've hit some insns that does not have id information available. */
4160 gcc_assert (insn_id
&& label_id
);
4161 return insn_id
< label_id
;
4164 /* On some machines, a function with no call insns
4165 can run faster if it doesn't create its own register window.
4166 When output, the leaf function should use only the "output"
4167 registers. Ordinarily, the function would be compiled to use
4168 the "input" registers to find its arguments; it is a candidate
4169 for leaf treatment if it uses only the "input" registers.
4170 Leaf function treatment means renumbering so the function
4171 uses the "output" registers instead. */
4173 #ifdef LEAF_REGISTERS
4175 /* Return 1 if this function uses only the registers that can be
4176 safely renumbered. */
4179 only_leaf_regs_used (void)
4182 const char *const permitted_reg_in_leaf_functions
= LEAF_REGISTERS
;
4184 for (i
= 0; i
< FIRST_PSEUDO_REGISTER
; i
++)
4185 if ((df_regs_ever_live_p (i
) || global_regs
[i
])
4186 && ! permitted_reg_in_leaf_functions
[i
])
4189 if (crtl
->uses_pic_offset_table
4190 && pic_offset_table_rtx
!= 0
4191 && REG_P (pic_offset_table_rtx
)
4192 && ! permitted_reg_in_leaf_functions
[REGNO (pic_offset_table_rtx
)])
4198 /* Scan all instructions and renumber all registers into those
4199 available in leaf functions. */
4202 leaf_renumber_regs (rtx first
)
4206 /* Renumber only the actual patterns.
4207 The reg-notes can contain frame pointer refs,
4208 and renumbering them could crash, and should not be needed. */
4209 for (insn
= first
; insn
; insn
= NEXT_INSN (insn
))
4211 leaf_renumber_regs_insn (PATTERN (insn
));
4212 for (insn
= crtl
->epilogue_delay_list
;
4214 insn
= XEXP (insn
, 1))
4215 if (INSN_P (XEXP (insn
, 0)))
4216 leaf_renumber_regs_insn (PATTERN (XEXP (insn
, 0)));
4219 /* Scan IN_RTX and its subexpressions, and renumber all regs into those
4220 available in leaf functions. */
4223 leaf_renumber_regs_insn (rtx in_rtx
)
4226 const char *format_ptr
;
4231 /* Renumber all input-registers into output-registers.
4232 renumbered_regs would be 1 for an output-register;
4239 /* Don't renumber the same reg twice. */
4243 newreg
= REGNO (in_rtx
);
4244 /* Don't try to renumber pseudo regs. It is possible for a pseudo reg
4245 to reach here as part of a REG_NOTE. */
4246 if (newreg
>= FIRST_PSEUDO_REGISTER
)
4251 newreg
= LEAF_REG_REMAP (newreg
);
4252 gcc_assert (newreg
>= 0);
4253 df_set_regs_ever_live (REGNO (in_rtx
), false);
4254 df_set_regs_ever_live (newreg
, true);
4255 SET_REGNO (in_rtx
, newreg
);
4259 if (INSN_P (in_rtx
))
4261 /* Inside a SEQUENCE, we find insns.
4262 Renumber just the patterns of these insns,
4263 just as we do for the top-level insns. */
4264 leaf_renumber_regs_insn (PATTERN (in_rtx
));
4268 format_ptr
= GET_RTX_FORMAT (GET_CODE (in_rtx
));
4270 for (i
= 0; i
< GET_RTX_LENGTH (GET_CODE (in_rtx
)); i
++)
4271 switch (*format_ptr
++)
4274 leaf_renumber_regs_insn (XEXP (in_rtx
, i
));
4278 if (NULL
!= XVEC (in_rtx
, i
))
4280 for (j
= 0; j
< XVECLEN (in_rtx
, i
); j
++)
4281 leaf_renumber_regs_insn (XVECEXP (in_rtx
, i
, j
));
4300 /* Turn the RTL into assembly. */
4302 rest_of_handle_final (void)
4307 /* Get the function's name, as described by its RTL. This may be
4308 different from the DECL_NAME name used in the source file. */
4310 x
= DECL_RTL (current_function_decl
);
4311 gcc_assert (MEM_P (x
));
4313 gcc_assert (GET_CODE (x
) == SYMBOL_REF
);
4314 fnname
= XSTR (x
, 0);
4316 assemble_start_function (current_function_decl
, fnname
);
4317 final_start_function (get_insns (), asm_out_file
, optimize
);
4318 final (get_insns (), asm_out_file
, optimize
);
4319 final_end_function ();
4321 /* The IA-64 ".handlerdata" directive must be issued before the ".endp"
4322 directive that closes the procedure descriptor. Similarly, for x64 SEH.
4323 Otherwise it's not strictly necessary, but it doesn't hurt either. */
4324 output_function_exception_table (fnname
);
4326 assemble_end_function (current_function_decl
, fnname
);
4328 user_defined_section_attribute
= false;
4330 /* Free up reg info memory. */
4334 fflush (asm_out_file
);
4336 /* Write DBX symbols if requested. */
4338 /* Note that for those inline functions where we don't initially
4339 know for certain that we will be generating an out-of-line copy,
4340 the first invocation of this routine (rest_of_compilation) will
4341 skip over this code by doing a `goto exit_rest_of_compilation;'.
4342 Later on, wrapup_global_declarations will (indirectly) call
4343 rest_of_compilation again for those inline functions that need
4344 to have out-of-line copies generated. During that call, we
4345 *will* be routed past here. */
4347 timevar_push (TV_SYMOUT
);
4348 if (!DECL_IGNORED_P (current_function_decl
))
4349 debug_hooks
->function_decl (current_function_decl
);
4350 timevar_pop (TV_SYMOUT
);
4352 /* Release the blocks that are linked to DECL_INITIAL() to free the memory. */
4353 DECL_INITIAL (current_function_decl
) = error_mark_node
;
4355 if (DECL_STATIC_CONSTRUCTOR (current_function_decl
)
4356 && targetm
.have_ctors_dtors
)
4357 targetm
.asm_out
.constructor (XEXP (DECL_RTL (current_function_decl
), 0),
4358 decl_init_priority_lookup
4359 (current_function_decl
));
4360 if (DECL_STATIC_DESTRUCTOR (current_function_decl
)
4361 && targetm
.have_ctors_dtors
)
4362 targetm
.asm_out
.destructor (XEXP (DECL_RTL (current_function_decl
), 0),
4363 decl_fini_priority_lookup
4364 (current_function_decl
));
4368 struct rtl_opt_pass pass_final
=
4374 rest_of_handle_final
, /* execute */
4377 0, /* static_pass_number */
4378 TV_FINAL
, /* tv_id */
4379 0, /* properties_required */
4380 0, /* properties_provided */
4381 0, /* properties_destroyed */
4382 0, /* todo_flags_start */
4383 TODO_ggc_collect
/* todo_flags_finish */
4389 rest_of_handle_shorten_branches (void)
4391 /* Shorten branches. */
4392 shorten_branches (get_insns ());
4396 struct rtl_opt_pass pass_shorten_branches
=
4400 "shorten", /* name */
4402 rest_of_handle_shorten_branches
, /* execute */
4405 0, /* static_pass_number */
4406 TV_FINAL
, /* tv_id */
4407 0, /* properties_required */
4408 0, /* properties_provided */
4409 0, /* properties_destroyed */
4410 0, /* todo_flags_start */
4411 0 /* todo_flags_finish */
4417 rest_of_clean_state (void)
4420 FILE *final_output
= NULL
;
4421 int save_unnumbered
= flag_dump_unnumbered
;
4422 int save_noaddr
= flag_dump_noaddr
;
4424 if (flag_dump_final_insns
)
4426 final_output
= fopen (flag_dump_final_insns
, "a");
4429 error ("could not open final insn dump file %qs: %m",
4430 flag_dump_final_insns
);
4431 flag_dump_final_insns
= NULL
;
4435 flag_dump_noaddr
= flag_dump_unnumbered
= 1;
4436 if (flag_compare_debug_opt
|| flag_compare_debug
)
4437 dump_flags
|= TDF_NOUID
;
4438 dump_function_header (final_output
, current_function_decl
,
4440 final_insns_dump_p
= true;
4442 for (insn
= get_insns (); insn
; insn
= NEXT_INSN (insn
))
4444 INSN_UID (insn
) = CODE_LABEL_NUMBER (insn
);
4448 set_block_for_insn (insn
, NULL
);
4449 INSN_UID (insn
) = 0;
4454 /* It is very important to decompose the RTL instruction chain here:
4455 debug information keeps pointing into CODE_LABEL insns inside the function
4456 body. If these remain pointing to the other insns, we end up preserving
4457 whole RTL chain and attached detailed debug info in memory. */
4458 for (insn
= get_insns (); insn
; insn
= next
)
4460 next
= NEXT_INSN (insn
);
4461 NEXT_INSN (insn
) = NULL
;
4462 PREV_INSN (insn
) = NULL
;
4465 && (!NOTE_P (insn
) ||
4466 (NOTE_KIND (insn
) != NOTE_INSN_VAR_LOCATION
4467 && NOTE_KIND (insn
) != NOTE_INSN_CALL_ARG_LOCATION
4468 && NOTE_KIND (insn
) != NOTE_INSN_BLOCK_BEG
4469 && NOTE_KIND (insn
) != NOTE_INSN_BLOCK_END
4470 && NOTE_KIND (insn
) != NOTE_INSN_DELETED_DEBUG_LABEL
)))
4471 print_rtl_single (final_output
, insn
);
4476 flag_dump_noaddr
= save_noaddr
;
4477 flag_dump_unnumbered
= save_unnumbered
;
4478 final_insns_dump_p
= false;
4480 if (fclose (final_output
))
4482 error ("could not close final insn dump file %qs: %m",
4483 flag_dump_final_insns
);
4484 flag_dump_final_insns
= NULL
;
4488 /* In case the function was not output,
4489 don't leave any temporary anonymous types
4490 queued up for sdb output. */
4491 #ifdef SDB_DEBUGGING_INFO
4492 if (write_symbols
== SDB_DEBUG
)
4493 sdbout_types (NULL_TREE
);
4496 flag_rerun_cse_after_global_opts
= 0;
4497 reload_completed
= 0;
4498 epilogue_completed
= 0;
4500 regstack_completed
= 0;
4503 /* Clear out the insn_length contents now that they are no
4505 init_insn_lengths ();
4507 /* Show no temporary slots allocated. */
4510 free_bb_for_insn ();
4514 /* We can reduce stack alignment on call site only when we are sure that
4515 the function body just produced will be actually used in the final
4517 if (decl_binds_to_current_def_p (current_function_decl
))
4519 unsigned int pref
= crtl
->preferred_stack_boundary
;
4520 if (crtl
->stack_alignment_needed
> crtl
->preferred_stack_boundary
)
4521 pref
= crtl
->stack_alignment_needed
;
4522 cgraph_rtl_info (current_function_decl
)->preferred_incoming_stack_boundary
4526 /* Make sure volatile mem refs aren't considered valid operands for
4527 arithmetic insns. We must call this here if this is a nested inline
4528 function, since the above code leaves us in the init_recog state,
4529 and the function context push/pop code does not save/restore volatile_ok.
4531 ??? Maybe it isn't necessary for expand_start_function to call this
4532 anymore if we do it here? */
4534 init_recog_no_volatile ();
4536 /* We're done with this function. Free up memory if we can. */
4537 free_after_parsing (cfun
);
4538 free_after_compilation (cfun
);
4542 struct rtl_opt_pass pass_clean_state
=
4546 "*clean_state", /* name */
4548 rest_of_clean_state
, /* execute */
4551 0, /* static_pass_number */
4552 TV_FINAL
, /* tv_id */
4553 0, /* properties_required */
4554 0, /* properties_provided */
4555 PROP_rtl
, /* properties_destroyed */
4556 0, /* todo_flags_start */
4557 0 /* todo_flags_finish */