Introduce ORIGINAL_REGNO macro
[official-gcc.git] / gcc / final.c
blob0d9d2a3bb61d921fad40f81758e73c70bce49365
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 Free Software Foundation, Inc.
5 This file is part of GNU CC.
7 GNU CC is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 2, or (at your option)
10 any later version.
12 GNU CC is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
17 You should have received a copy of the GNU General Public License
18 along with GNU CC; see the file COPYING. If not, write to
19 the Free Software Foundation, 59 Temple Place - Suite 330,
20 Boston, MA 02111-1307, USA. */
22 /* This is the final pass of the compiler.
23 It looks at the rtl code for a function and outputs assembler code.
25 Call `final_start_function' to output the assembler code for function entry,
26 `final' to output assembler code for some RTL code,
27 `final_end_function' to output assembler code for function exit.
28 If a function is compiled in several pieces, each piece is
29 output separately with `final'.
31 Some optimizations are also done at this level.
32 Move instructions that were made unnecessary by good register allocation
33 are detected and omitted from the output. (Though most of these
34 are removed by the last jump pass.)
36 Instructions to set the condition codes are omitted when it can be
37 seen that the condition codes already had the desired values.
39 In some cases it is sufficient if the inherited condition codes
40 have related values, but this may require the following insn
41 (the one that tests the condition codes) to be modified.
43 The code for the function prologue and epilogue are generated
44 directly as assembler code by the macros FUNCTION_PROLOGUE and
45 FUNCTION_EPILOGUE. Those instructions never exist as rtl. */
47 #include "config.h"
48 #include "system.h"
50 #include "tree.h"
51 #include "rtl.h"
52 #include "tm_p.h"
53 #include "regs.h"
54 #include "insn-config.h"
55 #include "insn-flags.h"
56 #include "insn-attr.h"
57 #include "insn-codes.h"
58 #include "recog.h"
59 #include "conditions.h"
60 #include "flags.h"
61 #include "real.h"
62 #include "hard-reg-set.h"
63 #include "defaults.h"
64 #include "output.h"
65 #include "except.h"
66 #include "function.h"
67 #include "toplev.h"
68 #include "reload.h"
69 #include "intl.h"
70 #include "basic-block.h"
72 /* Get N_SLINE and N_SOL from stab.h if we can expect the file to exist. */
73 #if defined (DBX_DEBUGGING_INFO) || defined (XCOFF_DEBUGGING_INFO)
74 #include "dbxout.h"
75 #if defined (USG) || !defined (HAVE_STAB_H)
76 #include "gstab.h" /* If doing DBX on sysV, use our own stab.h. */
77 #else
78 #include <stab.h>
79 #endif
81 #endif /* DBX_DEBUGGING_INFO || XCOFF_DEBUGGING_INFO */
83 #ifndef ACCUMULATE_OUTGOING_ARGS
84 #define ACCUMULATE_OUTGOING_ARGS 0
85 #endif
87 #ifdef XCOFF_DEBUGGING_INFO
88 #include "xcoffout.h"
89 #endif
91 #ifdef DWARF_DEBUGGING_INFO
92 #include "dwarfout.h"
93 #endif
95 #if defined (DWARF2_UNWIND_INFO) || defined (DWARF2_DEBUGGING_INFO)
96 #include "dwarf2out.h"
97 #endif
99 #ifdef SDB_DEBUGGING_INFO
100 #include "sdbout.h"
101 #endif
103 /* .stabd code for line number. */
104 #ifndef N_SLINE
105 #define N_SLINE 0x44
106 #endif
108 /* .stabs code for included file name. */
109 #ifndef N_SOL
110 #define N_SOL 0x84
111 #endif
113 /* If we aren't using cc0, CC_STATUS_INIT shouldn't exist. So define a
114 null default for it to save conditionalization later. */
115 #ifndef CC_STATUS_INIT
116 #define CC_STATUS_INIT
117 #endif
119 /* How to start an assembler comment. */
120 #ifndef ASM_COMMENT_START
121 #define ASM_COMMENT_START ";#"
122 #endif
124 /* Is the given character a logical line separator for the assembler? */
125 #ifndef IS_ASM_LOGICAL_LINE_SEPARATOR
126 #define IS_ASM_LOGICAL_LINE_SEPARATOR(C) ((C) == ';')
127 #endif
129 #ifndef JUMP_TABLES_IN_TEXT_SECTION
130 #define JUMP_TABLES_IN_TEXT_SECTION 0
131 #endif
133 /* Last insn processed by final_scan_insn. */
134 static rtx debug_insn;
135 rtx current_output_insn;
137 /* Line number of last NOTE. */
138 static int last_linenum;
140 /* Highest line number in current block. */
141 static int high_block_linenum;
143 /* Likewise for function. */
144 static int high_function_linenum;
146 /* Filename of last NOTE. */
147 static const char *last_filename;
149 /* Number of basic blocks seen so far;
150 used if profile_block_flag is set. */
151 static int count_basic_blocks;
153 /* Number of instrumented arcs when profile_arc_flag is set. */
154 extern int count_instrumented_edges;
156 extern int length_unit_log; /* This is defined in insn-attrtab.c. */
158 /* Nonzero while outputting an `asm' with operands.
159 This means that inconsistencies are the user's fault, so don't abort.
160 The precise value is the insn being output, to pass to error_for_asm. */
161 static rtx this_is_asm_operands;
163 /* Number of operands of this insn, for an `asm' with operands. */
164 static unsigned int insn_noperands;
166 /* Compare optimization flag. */
168 static rtx last_ignored_compare = 0;
170 /* Flag indicating this insn is the start of a new basic block. */
172 static int new_block = 1;
174 /* Assign a unique number to each insn that is output.
175 This can be used to generate unique local labels. */
177 static int insn_counter = 0;
179 #ifdef HAVE_cc0
180 /* This variable contains machine-dependent flags (defined in tm.h)
181 set and examined by output routines
182 that describe how to interpret the condition codes properly. */
184 CC_STATUS cc_status;
186 /* During output of an insn, this contains a copy of cc_status
187 from before the insn. */
189 CC_STATUS cc_prev_status;
190 #endif
192 /* Indexed by hardware reg number, is 1 if that register is ever
193 used in the current function.
195 In life_analysis, or in stupid_life_analysis, this is set
196 up to record the hard regs used explicitly. Reload adds
197 in the hard regs used for holding pseudo regs. Final uses
198 it to generate the code in the function prologue and epilogue
199 to save and restore registers as needed. */
201 char regs_ever_live[FIRST_PSEUDO_REGISTER];
203 /* Nonzero means current function must be given a frame pointer.
204 Set in stmt.c if anything is allocated on the stack there.
205 Set in reload1.c if anything is allocated on the stack there. */
207 int frame_pointer_needed;
209 /* Assign unique numbers to labels generated for profiling. */
211 int profile_label_no;
213 /* Number of unmatched NOTE_INSN_BLOCK_BEG notes we have seen. */
215 static int block_depth;
217 /* Nonzero if have enabled APP processing of our assembler output. */
219 static int app_on;
221 /* If we are outputting an insn sequence, this contains the sequence rtx.
222 Zero otherwise. */
224 rtx final_sequence;
226 #ifdef ASSEMBLER_DIALECT
228 /* Number of the assembler dialect to use, starting at 0. */
229 static int dialect_number;
230 #endif
232 /* Indexed by line number, nonzero if there is a note for that line. */
234 static char *line_note_exists;
236 #ifdef HAVE_conditional_execution
237 /* Nonnull if the insn currently being emitted was a COND_EXEC pattern. */
238 rtx current_insn_predicate;
239 #endif
241 /* Linked list to hold line numbers for each basic block. */
243 struct bb_list
245 struct bb_list *next; /* pointer to next basic block */
246 int line_num; /* line number */
247 int file_label_num; /* LPBC<n> label # for stored filename */
248 int func_label_num; /* LPBC<n> label # for stored function name */
251 static struct bb_list *bb_head = 0; /* Head of basic block list */
252 static struct bb_list **bb_tail = &bb_head; /* Ptr to store next bb ptr */
253 static int bb_file_label_num = -1; /* Current label # for file */
254 static int bb_func_label_num = -1; /* Current label # for func */
256 /* Linked list to hold the strings for each file and function name output. */
258 struct bb_str
260 struct bb_str *next; /* pointer to next string */
261 const char *string; /* string */
262 int label_num; /* label number */
263 int length; /* string length */
266 static struct bb_str *sbb_head = 0; /* Head of string list. */
267 static struct bb_str **sbb_tail = &sbb_head; /* Ptr to store next bb str */
268 static int sbb_label_num = 0; /* Last label used */
270 #ifdef HAVE_ATTR_length
271 static int asm_insn_count PARAMS ((rtx));
272 #endif
273 static void profile_function PARAMS ((FILE *));
274 static void profile_after_prologue PARAMS ((FILE *));
275 static void add_bb PARAMS ((FILE *));
276 static int add_bb_string PARAMS ((const char *, int));
277 static void output_source_line PARAMS ((FILE *, rtx));
278 static rtx walk_alter_subreg PARAMS ((rtx));
279 static void output_asm_name PARAMS ((void));
280 static void output_operand PARAMS ((rtx, int));
281 #ifdef LEAF_REGISTERS
282 static void leaf_renumber_regs PARAMS ((rtx));
283 #endif
284 #ifdef HAVE_cc0
285 static int alter_cond PARAMS ((rtx));
286 #endif
287 #ifndef ADDR_VEC_ALIGN
288 static int final_addr_vec_align PARAMS ((rtx));
289 #endif
290 #ifdef HAVE_ATTR_length
291 static int align_fuzz PARAMS ((rtx, rtx, int, unsigned));
292 #endif
294 /* Initialize data in final at the beginning of a compilation. */
296 void
297 init_final (filename)
298 const char *filename ATTRIBUTE_UNUSED;
300 app_on = 0;
301 final_sequence = 0;
303 #ifdef ASSEMBLER_DIALECT
304 dialect_number = ASSEMBLER_DIALECT;
305 #endif
308 /* Called at end of source file,
309 to output the block-profiling table for this entire compilation. */
311 void
312 end_final (filename)
313 const char *filename;
315 int i;
317 if (profile_block_flag || profile_arc_flag)
319 char name[20];
320 int align = exact_log2 (BIGGEST_ALIGNMENT / BITS_PER_UNIT);
321 int size, rounded;
322 struct bb_list *ptr;
323 struct bb_str *sptr;
324 int long_bytes = LONG_TYPE_SIZE / BITS_PER_UNIT;
325 int pointer_bytes = POINTER_SIZE / BITS_PER_UNIT;
327 if (profile_block_flag)
328 size = long_bytes * count_basic_blocks;
329 else
330 size = long_bytes * count_instrumented_edges;
331 rounded = size;
333 rounded += (BIGGEST_ALIGNMENT / BITS_PER_UNIT) - 1;
334 rounded = (rounded / (BIGGEST_ALIGNMENT / BITS_PER_UNIT)
335 * (BIGGEST_ALIGNMENT / BITS_PER_UNIT));
337 data_section ();
339 /* Output the main header, of 11 words:
340 0: 1 if this file is initialized, else 0.
341 1: address of file name (LPBX1).
342 2: address of table of counts (LPBX2).
343 3: number of counts in the table.
344 4: always 0, for compatibility with Sun.
346 The following are GNU extensions:
348 5: address of table of start addrs of basic blocks (LPBX3).
349 6: Number of bytes in this header.
350 7: address of table of function names (LPBX4).
351 8: address of table of line numbers (LPBX5) or 0.
352 9: address of table of file names (LPBX6) or 0.
353 10: space reserved for basic block profiling. */
355 ASM_OUTPUT_ALIGN (asm_out_file, align);
357 ASM_OUTPUT_INTERNAL_LABEL (asm_out_file, "LPBX", 0);
358 /* zero word */
359 assemble_integer (const0_rtx, long_bytes, 1);
361 /* address of filename */
362 ASM_GENERATE_INTERNAL_LABEL (name, "LPBX", 1);
363 assemble_integer (gen_rtx_SYMBOL_REF (Pmode, name), pointer_bytes, 1);
365 /* address of count table */
366 ASM_GENERATE_INTERNAL_LABEL (name, "LPBX", 2);
367 assemble_integer (gen_rtx_SYMBOL_REF (Pmode, name), pointer_bytes, 1);
369 /* count of the # of basic blocks or # of instrumented arcs */
370 if (profile_block_flag)
371 assemble_integer (GEN_INT (count_basic_blocks), long_bytes, 1);
372 else
373 assemble_integer (GEN_INT (count_instrumented_edges), long_bytes, 1);
375 /* zero word (link field) */
376 assemble_integer (const0_rtx, pointer_bytes, 1);
378 /* address of basic block start address table */
379 if (profile_block_flag)
381 ASM_GENERATE_INTERNAL_LABEL (name, "LPBX", 3);
382 assemble_integer (gen_rtx_SYMBOL_REF (Pmode, name), pointer_bytes,
385 else
386 assemble_integer (const0_rtx, pointer_bytes, 1);
388 /* byte count for extended structure. */
389 assemble_integer (GEN_INT (11 * UNITS_PER_WORD), long_bytes, 1);
391 /* address of function name table */
392 if (profile_block_flag)
394 ASM_GENERATE_INTERNAL_LABEL (name, "LPBX", 4);
395 assemble_integer (gen_rtx_SYMBOL_REF (Pmode, name), pointer_bytes,
398 else
399 assemble_integer (const0_rtx, pointer_bytes, 1);
401 /* address of line number and filename tables if debugging. */
402 if (write_symbols != NO_DEBUG && profile_block_flag)
404 ASM_GENERATE_INTERNAL_LABEL (name, "LPBX", 5);
405 assemble_integer (gen_rtx_SYMBOL_REF (Pmode, name),
406 pointer_bytes, 1);
407 ASM_GENERATE_INTERNAL_LABEL (name, "LPBX", 6);
408 assemble_integer (gen_rtx_SYMBOL_REF (Pmode, name),
409 pointer_bytes, 1);
411 else
413 assemble_integer (const0_rtx, pointer_bytes, 1);
414 assemble_integer (const0_rtx, pointer_bytes, 1);
417 /* space for extension ptr (link field) */
418 assemble_integer (const0_rtx, UNITS_PER_WORD, 1);
420 /* Output the file name changing the suffix to .d for Sun tcov
421 compatibility. */
422 ASM_OUTPUT_INTERNAL_LABEL (asm_out_file, "LPBX", 1);
424 char *cwd = getpwd ();
425 int len = strlen (filename) + strlen (cwd) + 1;
426 char *data_file = (char *) alloca (len + 4);
428 strcpy (data_file, cwd);
429 strcat (data_file, "/");
430 strcat (data_file, filename);
431 strip_off_ending (data_file, len);
432 if (profile_block_flag)
433 strcat (data_file, ".d");
434 else
435 strcat (data_file, ".da");
436 assemble_string (data_file, strlen (data_file) + 1);
439 /* Make space for the table of counts. */
440 if (size == 0)
442 /* Realign data section. */
443 ASM_OUTPUT_ALIGN (asm_out_file, align);
444 ASM_OUTPUT_INTERNAL_LABEL (asm_out_file, "LPBX", 2);
445 if (size != 0)
446 assemble_zeros (size);
448 else
450 ASM_GENERATE_INTERNAL_LABEL (name, "LPBX", 2);
451 #ifdef ASM_OUTPUT_SHARED_LOCAL
452 if (flag_shared_data)
453 ASM_OUTPUT_SHARED_LOCAL (asm_out_file, name, size, rounded);
454 else
455 #endif
456 #ifdef ASM_OUTPUT_ALIGNED_DECL_LOCAL
457 ASM_OUTPUT_ALIGNED_DECL_LOCAL (asm_out_file, NULL_TREE, name,
458 size, BIGGEST_ALIGNMENT);
459 #else
460 #ifdef ASM_OUTPUT_ALIGNED_LOCAL
461 ASM_OUTPUT_ALIGNED_LOCAL (asm_out_file, name, size,
462 BIGGEST_ALIGNMENT);
463 #else
464 ASM_OUTPUT_LOCAL (asm_out_file, name, size, rounded);
465 #endif
466 #endif
469 /* Output any basic block strings */
470 if (profile_block_flag)
472 readonly_data_section ();
473 if (sbb_head)
475 ASM_OUTPUT_ALIGN (asm_out_file, align);
476 for (sptr = sbb_head; sptr != 0; sptr = sptr->next)
478 ASM_OUTPUT_INTERNAL_LABEL (asm_out_file, "LPBC",
479 sptr->label_num);
480 assemble_string (sptr->string, sptr->length);
485 /* Output the table of addresses. */
486 if (profile_block_flag)
488 /* Realign in new section */
489 ASM_OUTPUT_ALIGN (asm_out_file, align);
490 ASM_OUTPUT_INTERNAL_LABEL (asm_out_file, "LPBX", 3);
491 for (i = 0; i < count_basic_blocks; i++)
493 ASM_GENERATE_INTERNAL_LABEL (name, "LPB", i);
494 assemble_integer (gen_rtx_SYMBOL_REF (Pmode, name),
495 pointer_bytes, 1);
499 /* Output the table of function names. */
500 if (profile_block_flag)
502 ASM_OUTPUT_INTERNAL_LABEL (asm_out_file, "LPBX", 4);
503 for ((ptr = bb_head), (i = 0); ptr != 0; (ptr = ptr->next), i++)
505 if (ptr->func_label_num >= 0)
507 ASM_GENERATE_INTERNAL_LABEL (name, "LPBC",
508 ptr->func_label_num);
509 assemble_integer (gen_rtx_SYMBOL_REF (Pmode, name),
510 pointer_bytes, 1);
512 else
513 assemble_integer (const0_rtx, pointer_bytes, 1);
516 for (; i < count_basic_blocks; i++)
517 assemble_integer (const0_rtx, pointer_bytes, 1);
520 if (write_symbols != NO_DEBUG && profile_block_flag)
522 /* Output the table of line numbers. */
523 ASM_OUTPUT_INTERNAL_LABEL (asm_out_file, "LPBX", 5);
524 for ((ptr = bb_head), (i = 0); ptr != 0; (ptr = ptr->next), i++)
525 assemble_integer (GEN_INT (ptr->line_num), long_bytes, 1);
527 for (; i < count_basic_blocks; i++)
528 assemble_integer (const0_rtx, long_bytes, 1);
530 /* Output the table of file names. */
531 ASM_OUTPUT_INTERNAL_LABEL (asm_out_file, "LPBX", 6);
532 for ((ptr = bb_head), (i = 0); ptr != 0; (ptr = ptr->next), i++)
534 if (ptr->file_label_num >= 0)
536 ASM_GENERATE_INTERNAL_LABEL (name, "LPBC",
537 ptr->file_label_num);
538 assemble_integer (gen_rtx_SYMBOL_REF (Pmode, name),
539 pointer_bytes, 1);
541 else
542 assemble_integer (const0_rtx, pointer_bytes, 1);
545 for (; i < count_basic_blocks; i++)
546 assemble_integer (const0_rtx, pointer_bytes, 1);
549 /* End with the address of the table of addresses,
550 so we can find it easily, as the last word in the file's text. */
551 if (profile_block_flag)
553 ASM_GENERATE_INTERNAL_LABEL (name, "LPBX", 3);
554 assemble_integer (gen_rtx_SYMBOL_REF (Pmode, name), pointer_bytes,
560 /* Enable APP processing of subsequent output.
561 Used before the output from an `asm' statement. */
563 void
564 app_enable ()
566 if (! app_on)
568 fputs (ASM_APP_ON, asm_out_file);
569 app_on = 1;
573 /* Disable APP processing of subsequent output.
574 Called from varasm.c before most kinds of output. */
576 void
577 app_disable ()
579 if (app_on)
581 fputs (ASM_APP_OFF, asm_out_file);
582 app_on = 0;
586 /* Return the number of slots filled in the current
587 delayed branch sequence (we don't count the insn needing the
588 delay slot). Zero if not in a delayed branch sequence. */
590 #ifdef DELAY_SLOTS
592 dbr_sequence_length ()
594 if (final_sequence != 0)
595 return XVECLEN (final_sequence, 0) - 1;
596 else
597 return 0;
599 #endif
601 /* The next two pages contain routines used to compute the length of an insn
602 and to shorten branches. */
604 /* Arrays for insn lengths, and addresses. The latter is referenced by
605 `insn_current_length'. */
607 static short *insn_lengths;
609 #ifdef HAVE_ATTR_length
610 varray_type insn_addresses_;
611 #endif
613 /* Max uid for which the above arrays are valid. */
614 static int insn_lengths_max_uid;
616 /* Address of insn being processed. Used by `insn_current_length'. */
617 int insn_current_address;
619 /* Address of insn being processed in previous iteration. */
620 int insn_last_address;
622 /* konwn invariant alignment of insn being processed. */
623 int insn_current_align;
625 /* After shorten_branches, for any insn, uid_align[INSN_UID (insn)]
626 gives the next following alignment insn that increases the known
627 alignment, or NULL_RTX if there is no such insn.
628 For any alignment obtained this way, we can again index uid_align with
629 its uid to obtain the next following align that in turn increases the
630 alignment, till we reach NULL_RTX; the sequence obtained this way
631 for each insn we'll call the alignment chain of this insn in the following
632 comments. */
634 struct label_alignment
636 short alignment;
637 short max_skip;
640 static rtx *uid_align;
641 static int *uid_shuid;
642 static struct label_alignment *label_align;
644 /* Indicate that branch shortening hasn't yet been done. */
646 void
647 init_insn_lengths ()
649 if (label_align)
651 free (label_align);
652 label_align = 0;
654 if (uid_shuid)
656 free (uid_shuid);
657 uid_shuid = 0;
659 if (insn_lengths)
661 free (insn_lengths);
662 insn_lengths = 0;
663 insn_lengths_max_uid = 0;
665 #ifdef HAVE_ATTR_length
666 INSN_ADDRESSES_FREE ();
667 #endif
668 if (uid_align)
670 free (uid_align);
671 uid_align = 0;
675 /* Obtain the current length of an insn. If branch shortening has been done,
676 get its actual length. Otherwise, get its maximum length. */
679 get_attr_length (insn)
680 rtx insn ATTRIBUTE_UNUSED;
682 #ifdef HAVE_ATTR_length
683 rtx body;
684 int i;
685 int length = 0;
687 if (insn_lengths_max_uid > INSN_UID (insn))
688 return insn_lengths[INSN_UID (insn)];
689 else
690 switch (GET_CODE (insn))
692 case NOTE:
693 case BARRIER:
694 case CODE_LABEL:
695 return 0;
697 case CALL_INSN:
698 length = insn_default_length (insn);
699 break;
701 case JUMP_INSN:
702 body = PATTERN (insn);
703 if (GET_CODE (body) == ADDR_VEC || GET_CODE (body) == ADDR_DIFF_VEC)
705 /* Alignment is machine-dependent and should be handled by
706 ADDR_VEC_ALIGN. */
708 else
709 length = insn_default_length (insn);
710 break;
712 case INSN:
713 body = PATTERN (insn);
714 if (GET_CODE (body) == USE || GET_CODE (body) == CLOBBER)
715 return 0;
717 else if (GET_CODE (body) == ASM_INPUT || asm_noperands (body) >= 0)
718 length = asm_insn_count (body) * insn_default_length (insn);
719 else if (GET_CODE (body) == SEQUENCE)
720 for (i = 0; i < XVECLEN (body, 0); i++)
721 length += get_attr_length (XVECEXP (body, 0, i));
722 else
723 length = insn_default_length (insn);
724 break;
726 default:
727 break;
730 #ifdef ADJUST_INSN_LENGTH
731 ADJUST_INSN_LENGTH (insn, length);
732 #endif
733 return length;
734 #else /* not HAVE_ATTR_length */
735 return 0;
736 #endif /* not HAVE_ATTR_length */
739 /* Code to handle alignment inside shorten_branches. */
741 /* Here is an explanation how the algorithm in align_fuzz can give
742 proper results:
744 Call a sequence of instructions beginning with alignment point X
745 and continuing until the next alignment point `block X'. When `X'
746 is used in an expression, it means the alignment value of the
747 alignment point.
749 Call the distance between the start of the first insn of block X, and
750 the end of the last insn of block X `IX', for the `inner size of X'.
751 This is clearly the sum of the instruction lengths.
753 Likewise with the next alignment-delimited block following X, which we
754 shall call block Y.
756 Call the distance between the start of the first insn of block X, and
757 the start of the first insn of block Y `OX', for the `outer size of X'.
759 The estimated padding is then OX - IX.
761 OX can be safely estimated as
763 if (X >= Y)
764 OX = round_up(IX, Y)
765 else
766 OX = round_up(IX, X) + Y - X
768 Clearly est(IX) >= real(IX), because that only depends on the
769 instruction lengths, and those being overestimated is a given.
771 Clearly round_up(foo, Z) >= round_up(bar, Z) if foo >= bar, so
772 we needn't worry about that when thinking about OX.
774 When X >= Y, the alignment provided by Y adds no uncertainty factor
775 for branch ranges starting before X, so we can just round what we have.
776 But when X < Y, we don't know anything about the, so to speak,
777 `middle bits', so we have to assume the worst when aligning up from an
778 address mod X to one mod Y, which is Y - X. */
780 #ifndef LABEL_ALIGN
781 #define LABEL_ALIGN(LABEL) align_labels_log
782 #endif
784 #ifndef LABEL_ALIGN_MAX_SKIP
785 #define LABEL_ALIGN_MAX_SKIP (align_labels-1)
786 #endif
788 #ifndef LOOP_ALIGN
789 #define LOOP_ALIGN(LABEL) align_loops_log
790 #endif
792 #ifndef LOOP_ALIGN_MAX_SKIP
793 #define LOOP_ALIGN_MAX_SKIP (align_loops-1)
794 #endif
796 #ifndef LABEL_ALIGN_AFTER_BARRIER
797 #define LABEL_ALIGN_AFTER_BARRIER(LABEL) align_jumps_log
798 #endif
800 #ifndef LABEL_ALIGN_AFTER_BARRIER_MAX_SKIP
801 #define LABEL_ALIGN_AFTER_BARRIER_MAX_SKIP (align_jumps-1)
802 #endif
804 #ifndef ADDR_VEC_ALIGN
805 static int
806 final_addr_vec_align (addr_vec)
807 rtx addr_vec;
809 int align = GET_MODE_SIZE (GET_MODE (PATTERN (addr_vec)));
811 if (align > BIGGEST_ALIGNMENT / BITS_PER_UNIT)
812 align = BIGGEST_ALIGNMENT / BITS_PER_UNIT;
813 return exact_log2 (align);
817 #define ADDR_VEC_ALIGN(ADDR_VEC) final_addr_vec_align (ADDR_VEC)
818 #endif
820 #ifndef INSN_LENGTH_ALIGNMENT
821 #define INSN_LENGTH_ALIGNMENT(INSN) length_unit_log
822 #endif
824 #define INSN_SHUID(INSN) (uid_shuid[INSN_UID (INSN)])
826 static int min_labelno, max_labelno;
828 #define LABEL_TO_ALIGNMENT(LABEL) \
829 (label_align[CODE_LABEL_NUMBER (LABEL) - min_labelno].alignment)
831 #define LABEL_TO_MAX_SKIP(LABEL) \
832 (label_align[CODE_LABEL_NUMBER (LABEL) - min_labelno].max_skip)
834 /* For the benefit of port specific code do this also as a function. */
837 label_to_alignment (label)
838 rtx label;
840 return LABEL_TO_ALIGNMENT (label);
843 #ifdef HAVE_ATTR_length
844 /* The differences in addresses
845 between a branch and its target might grow or shrink depending on
846 the alignment the start insn of the range (the branch for a forward
847 branch or the label for a backward branch) starts out on; if these
848 differences are used naively, they can even oscillate infinitely.
849 We therefore want to compute a 'worst case' address difference that
850 is independent of the alignment the start insn of the range end
851 up on, and that is at least as large as the actual difference.
852 The function align_fuzz calculates the amount we have to add to the
853 naively computed difference, by traversing the part of the alignment
854 chain of the start insn of the range that is in front of the end insn
855 of the range, and considering for each alignment the maximum amount
856 that it might contribute to a size increase.
858 For casesi tables, we also want to know worst case minimum amounts of
859 address difference, in case a machine description wants to introduce
860 some common offset that is added to all offsets in a table.
861 For this purpose, align_fuzz with a growth argument of 0 comuptes the
862 appropriate adjustment. */
864 /* Compute the maximum delta by which the difference of the addresses of
865 START and END might grow / shrink due to a different address for start
866 which changes the size of alignment insns between START and END.
867 KNOWN_ALIGN_LOG is the alignment known for START.
868 GROWTH should be ~0 if the objective is to compute potential code size
869 increase, and 0 if the objective is to compute potential shrink.
870 The return value is undefined for any other value of GROWTH. */
872 static int
873 align_fuzz (start, end, known_align_log, growth)
874 rtx start, end;
875 int known_align_log;
876 unsigned growth;
878 int uid = INSN_UID (start);
879 rtx align_label;
880 int known_align = 1 << known_align_log;
881 int end_shuid = INSN_SHUID (end);
882 int fuzz = 0;
884 for (align_label = uid_align[uid]; align_label; align_label = uid_align[uid])
886 int align_addr, new_align;
888 uid = INSN_UID (align_label);
889 align_addr = INSN_ADDRESSES (uid) - insn_lengths[uid];
890 if (uid_shuid[uid] > end_shuid)
891 break;
892 known_align_log = LABEL_TO_ALIGNMENT (align_label);
893 new_align = 1 << known_align_log;
894 if (new_align < known_align)
895 continue;
896 fuzz += (-align_addr ^ growth) & (new_align - known_align);
897 known_align = new_align;
899 return fuzz;
902 /* Compute a worst-case reference address of a branch so that it
903 can be safely used in the presence of aligned labels. Since the
904 size of the branch itself is unknown, the size of the branch is
905 not included in the range. I.e. for a forward branch, the reference
906 address is the end address of the branch as known from the previous
907 branch shortening pass, minus a value to account for possible size
908 increase due to alignment. For a backward branch, it is the start
909 address of the branch as known from the current pass, plus a value
910 to account for possible size increase due to alignment.
911 NB.: Therefore, the maximum offset allowed for backward branches needs
912 to exclude the branch size. */
915 insn_current_reference_address (branch)
916 rtx branch;
918 rtx dest, seq;
919 int seq_uid;
921 if (! INSN_ADDRESSES_SET_P ())
922 return 0;
924 seq = NEXT_INSN (PREV_INSN (branch));
925 seq_uid = INSN_UID (seq);
926 if (GET_CODE (branch) != JUMP_INSN)
927 /* This can happen for example on the PA; the objective is to know the
928 offset to address something in front of the start of the function.
929 Thus, we can treat it like a backward branch.
930 We assume here that FUNCTION_BOUNDARY / BITS_PER_UNIT is larger than
931 any alignment we'd encounter, so we skip the call to align_fuzz. */
932 return insn_current_address;
933 dest = JUMP_LABEL (branch);
935 /* BRANCH has no proper alignment chain set, so use SEQ.
936 BRANCH also has no INSN_SHUID. */
937 if (INSN_SHUID (seq) < INSN_SHUID (dest))
939 /* Forward branch. */
940 return (insn_last_address + insn_lengths[seq_uid]
941 - align_fuzz (seq, dest, length_unit_log, ~0));
943 else
945 /* Backward branch. */
946 return (insn_current_address
947 + align_fuzz (dest, seq, length_unit_log, ~0));
950 #endif /* HAVE_ATTR_length */
952 /* Make a pass over all insns and compute their actual lengths by shortening
953 any branches of variable length if possible. */
955 /* Give a default value for the lowest address in a function. */
957 #ifndef FIRST_INSN_ADDRESS
958 #define FIRST_INSN_ADDRESS 0
959 #endif
961 /* shorten_branches might be called multiple times: for example, the SH
962 port splits out-of-range conditional branches in MACHINE_DEPENDENT_REORG.
963 In order to do this, it needs proper length information, which it obtains
964 by calling shorten_branches. This cannot be collapsed with
965 shorten_branches itself into a single pass unless we also want to intergate
966 reorg.c, since the branch splitting exposes new instructions with delay
967 slots. */
969 void
970 shorten_branches (first)
971 rtx first ATTRIBUTE_UNUSED;
973 rtx insn;
974 int max_uid;
975 int i;
976 int max_log;
977 int max_skip;
978 #ifdef HAVE_ATTR_length
979 #define MAX_CODE_ALIGN 16
980 rtx seq;
981 int something_changed = 1;
982 char *varying_length;
983 rtx body;
984 int uid;
985 rtx align_tab[MAX_CODE_ALIGN];
987 /* In order to make sure that all instructions have valid length info,
988 we must split them before we compute the address/length info. */
990 for (insn = NEXT_INSN (first); insn; insn = NEXT_INSN (insn))
991 if (INSN_P (insn))
993 rtx old = insn;
994 /* Don't split the insn if it has been deleted. */
995 if (! INSN_DELETED_P (old))
996 insn = try_split (PATTERN (old), old, 1);
997 /* When not optimizing, the old insn will be still left around
998 with only the 'deleted' bit set. Transform it into a note
999 to avoid confusion of subsequent processing. */
1000 if (INSN_DELETED_P (old))
1002 PUT_CODE (old, NOTE);
1003 NOTE_LINE_NUMBER (old) = NOTE_INSN_DELETED;
1004 NOTE_SOURCE_FILE (old) = 0;
1007 #endif
1009 /* We must do some computations even when not actually shortening, in
1010 order to get the alignment information for the labels. */
1012 init_insn_lengths ();
1014 /* Compute maximum UID and allocate label_align / uid_shuid. */
1015 max_uid = get_max_uid ();
1017 max_labelno = max_label_num ();
1018 min_labelno = get_first_label_num ();
1019 label_align = (struct label_alignment *)
1020 xcalloc ((max_labelno - min_labelno + 1), sizeof (struct label_alignment));
1022 uid_shuid = (int *) xmalloc (max_uid * sizeof *uid_shuid);
1024 /* Initialize label_align and set up uid_shuid to be strictly
1025 monotonically rising with insn order. */
1026 /* We use max_log here to keep track of the maximum alignment we want to
1027 impose on the next CODE_LABEL (or the current one if we are processing
1028 the CODE_LABEL itself). */
1030 max_log = 0;
1031 max_skip = 0;
1033 for (insn = get_insns (), i = 1; insn; insn = NEXT_INSN (insn))
1035 int log;
1037 INSN_SHUID (insn) = i++;
1038 if (INSN_P (insn))
1040 /* reorg might make the first insn of a loop being run once only,
1041 and delete the label in front of it. Then we want to apply
1042 the loop alignment to the new label created by reorg, which
1043 is separated by the former loop start insn from the
1044 NOTE_INSN_LOOP_BEG. */
1046 else if (GET_CODE (insn) == CODE_LABEL)
1048 rtx next;
1050 log = LABEL_ALIGN (insn);
1051 if (max_log < log)
1053 max_log = log;
1054 max_skip = LABEL_ALIGN_MAX_SKIP;
1056 next = NEXT_INSN (insn);
1057 /* ADDR_VECs only take room if read-only data goes into the text
1058 section. */
1059 if (JUMP_TABLES_IN_TEXT_SECTION
1060 #if !defined(READONLY_DATA_SECTION)
1061 || 1
1062 #endif
1064 if (next && GET_CODE (next) == JUMP_INSN)
1066 rtx nextbody = PATTERN (next);
1067 if (GET_CODE (nextbody) == ADDR_VEC
1068 || GET_CODE (nextbody) == ADDR_DIFF_VEC)
1070 log = ADDR_VEC_ALIGN (next);
1071 if (max_log < log)
1073 max_log = log;
1074 max_skip = LABEL_ALIGN_MAX_SKIP;
1078 LABEL_TO_ALIGNMENT (insn) = max_log;
1079 LABEL_TO_MAX_SKIP (insn) = max_skip;
1080 max_log = 0;
1081 max_skip = 0;
1083 else if (GET_CODE (insn) == BARRIER)
1085 rtx label;
1087 for (label = insn; label && ! INSN_P (label);
1088 label = NEXT_INSN (label))
1089 if (GET_CODE (label) == CODE_LABEL)
1091 log = LABEL_ALIGN_AFTER_BARRIER (insn);
1092 if (max_log < log)
1094 max_log = log;
1095 max_skip = LABEL_ALIGN_AFTER_BARRIER_MAX_SKIP;
1097 break;
1100 /* Again, we allow NOTE_INSN_LOOP_BEG - INSN - CODE_LABEL
1101 sequences in order to handle reorg output efficiently. */
1102 else if (GET_CODE (insn) == NOTE
1103 && NOTE_LINE_NUMBER (insn) == NOTE_INSN_LOOP_BEG)
1105 rtx label;
1106 int nest = 0;
1108 /* Search for the label that starts the loop.
1109 Don't skip past the end of the loop, since that could
1110 lead to putting an alignment where it does not belong.
1111 However, a label after a nested (non-)loop would be OK. */
1112 for (label = insn; label; label = NEXT_INSN (label))
1114 if (GET_CODE (label) == NOTE
1115 && NOTE_LINE_NUMBER (label) == NOTE_INSN_LOOP_BEG)
1116 nest++;
1117 else if (GET_CODE (label) == NOTE
1118 && NOTE_LINE_NUMBER (label) == NOTE_INSN_LOOP_END
1119 && --nest == 0)
1120 break;
1121 else if (GET_CODE (label) == CODE_LABEL)
1123 log = LOOP_ALIGN (label);
1124 if (max_log < log)
1126 max_log = log;
1127 max_skip = LOOP_ALIGN_MAX_SKIP;
1129 break;
1133 else
1134 continue;
1136 #ifdef HAVE_ATTR_length
1138 /* Allocate the rest of the arrays. */
1139 insn_lengths = (short *) xmalloc (max_uid * sizeof (short));
1140 insn_lengths_max_uid = max_uid;
1141 /* Syntax errors can lead to labels being outside of the main insn stream.
1142 Initialize insn_addresses, so that we get reproducible results. */
1143 INSN_ADDRESSES_ALLOC (max_uid);
1145 varying_length = (char *) xcalloc (max_uid, sizeof (char));
1147 /* Initialize uid_align. We scan instructions
1148 from end to start, and keep in align_tab[n] the last seen insn
1149 that does an alignment of at least n+1, i.e. the successor
1150 in the alignment chain for an insn that does / has a known
1151 alignment of n. */
1152 uid_align = (rtx *) xcalloc (max_uid, sizeof *uid_align);
1154 for (i = MAX_CODE_ALIGN; --i >= 0;)
1155 align_tab[i] = NULL_RTX;
1156 seq = get_last_insn ();
1157 for (; seq; seq = PREV_INSN (seq))
1159 int uid = INSN_UID (seq);
1160 int log;
1161 log = (GET_CODE (seq) == CODE_LABEL ? LABEL_TO_ALIGNMENT (seq) : 0);
1162 uid_align[uid] = align_tab[0];
1163 if (log)
1165 /* Found an alignment label. */
1166 uid_align[uid] = align_tab[log];
1167 for (i = log - 1; i >= 0; i--)
1168 align_tab[i] = seq;
1171 #ifdef CASE_VECTOR_SHORTEN_MODE
1172 if (optimize)
1174 /* Look for ADDR_DIFF_VECs, and initialize their minimum and maximum
1175 label fields. */
1177 int min_shuid = INSN_SHUID (get_insns ()) - 1;
1178 int max_shuid = INSN_SHUID (get_last_insn ()) + 1;
1179 int rel;
1181 for (insn = first; insn != 0; insn = NEXT_INSN (insn))
1183 rtx min_lab = NULL_RTX, max_lab = NULL_RTX, pat;
1184 int len, i, min, max, insn_shuid;
1185 int min_align;
1186 addr_diff_vec_flags flags;
1188 if (GET_CODE (insn) != JUMP_INSN
1189 || GET_CODE (PATTERN (insn)) != ADDR_DIFF_VEC)
1190 continue;
1191 pat = PATTERN (insn);
1192 len = XVECLEN (pat, 1);
1193 if (len <= 0)
1194 abort ();
1195 min_align = MAX_CODE_ALIGN;
1196 for (min = max_shuid, max = min_shuid, i = len - 1; i >= 0; i--)
1198 rtx lab = XEXP (XVECEXP (pat, 1, i), 0);
1199 int shuid = INSN_SHUID (lab);
1200 if (shuid < min)
1202 min = shuid;
1203 min_lab = lab;
1205 if (shuid > max)
1207 max = shuid;
1208 max_lab = lab;
1210 if (min_align > LABEL_TO_ALIGNMENT (lab))
1211 min_align = LABEL_TO_ALIGNMENT (lab);
1213 XEXP (pat, 2) = gen_rtx_LABEL_REF (VOIDmode, min_lab);
1214 XEXP (pat, 3) = gen_rtx_LABEL_REF (VOIDmode, max_lab);
1215 insn_shuid = INSN_SHUID (insn);
1216 rel = INSN_SHUID (XEXP (XEXP (pat, 0), 0));
1217 flags.min_align = min_align;
1218 flags.base_after_vec = rel > insn_shuid;
1219 flags.min_after_vec = min > insn_shuid;
1220 flags.max_after_vec = max > insn_shuid;
1221 flags.min_after_base = min > rel;
1222 flags.max_after_base = max > rel;
1223 ADDR_DIFF_VEC_FLAGS (pat) = flags;
1226 #endif /* CASE_VECTOR_SHORTEN_MODE */
1228 /* Compute initial lengths, addresses, and varying flags for each insn. */
1229 for (insn_current_address = FIRST_INSN_ADDRESS, insn = first;
1230 insn != 0;
1231 insn_current_address += insn_lengths[uid], insn = NEXT_INSN (insn))
1233 uid = INSN_UID (insn);
1235 insn_lengths[uid] = 0;
1237 if (GET_CODE (insn) == CODE_LABEL)
1239 int log = LABEL_TO_ALIGNMENT (insn);
1240 if (log)
1242 int align = 1 << log;
1243 int new_address = (insn_current_address + align - 1) & -align;
1244 insn_lengths[uid] = new_address - insn_current_address;
1248 INSN_ADDRESSES (uid) = insn_current_address;
1250 if (GET_CODE (insn) == NOTE || GET_CODE (insn) == BARRIER
1251 || GET_CODE (insn) == CODE_LABEL)
1252 continue;
1253 if (INSN_DELETED_P (insn))
1254 continue;
1256 body = PATTERN (insn);
1257 if (GET_CODE (body) == ADDR_VEC || GET_CODE (body) == ADDR_DIFF_VEC)
1259 /* This only takes room if read-only data goes into the text
1260 section. */
1261 if (JUMP_TABLES_IN_TEXT_SECTION
1262 #if !defined(READONLY_DATA_SECTION)
1263 || 1
1264 #endif
1266 insn_lengths[uid] = (XVECLEN (body,
1267 GET_CODE (body) == ADDR_DIFF_VEC)
1268 * GET_MODE_SIZE (GET_MODE (body)));
1269 /* Alignment is handled by ADDR_VEC_ALIGN. */
1271 else if (GET_CODE (body) == ASM_INPUT || asm_noperands (body) >= 0)
1272 insn_lengths[uid] = asm_insn_count (body) * insn_default_length (insn);
1273 else if (GET_CODE (body) == SEQUENCE)
1275 int i;
1276 int const_delay_slots;
1277 #ifdef DELAY_SLOTS
1278 const_delay_slots = const_num_delay_slots (XVECEXP (body, 0, 0));
1279 #else
1280 const_delay_slots = 0;
1281 #endif
1282 /* Inside a delay slot sequence, we do not do any branch shortening
1283 if the shortening could change the number of delay slots
1284 of the branch. */
1285 for (i = 0; i < XVECLEN (body, 0); i++)
1287 rtx inner_insn = XVECEXP (body, 0, i);
1288 int inner_uid = INSN_UID (inner_insn);
1289 int inner_length;
1291 if (GET_CODE (body) == ASM_INPUT
1292 || asm_noperands (PATTERN (XVECEXP (body, 0, i))) >= 0)
1293 inner_length = (asm_insn_count (PATTERN (inner_insn))
1294 * insn_default_length (inner_insn));
1295 else
1296 inner_length = insn_default_length (inner_insn);
1298 insn_lengths[inner_uid] = inner_length;
1299 if (const_delay_slots)
1301 if ((varying_length[inner_uid]
1302 = insn_variable_length_p (inner_insn)) != 0)
1303 varying_length[uid] = 1;
1304 INSN_ADDRESSES (inner_uid) = (insn_current_address
1305 + insn_lengths[uid]);
1307 else
1308 varying_length[inner_uid] = 0;
1309 insn_lengths[uid] += inner_length;
1312 else if (GET_CODE (body) != USE && GET_CODE (body) != CLOBBER)
1314 insn_lengths[uid] = insn_default_length (insn);
1315 varying_length[uid] = insn_variable_length_p (insn);
1318 /* If needed, do any adjustment. */
1319 #ifdef ADJUST_INSN_LENGTH
1320 ADJUST_INSN_LENGTH (insn, insn_lengths[uid]);
1321 if (insn_lengths[uid] < 0)
1322 fatal_insn ("Negative insn length", insn);
1323 #endif
1326 /* Now loop over all the insns finding varying length insns. For each,
1327 get the current insn length. If it has changed, reflect the change.
1328 When nothing changes for a full pass, we are done. */
1330 while (something_changed)
1332 something_changed = 0;
1333 insn_current_align = MAX_CODE_ALIGN - 1;
1334 for (insn_current_address = FIRST_INSN_ADDRESS, insn = first;
1335 insn != 0;
1336 insn = NEXT_INSN (insn))
1338 int new_length;
1339 #ifdef ADJUST_INSN_LENGTH
1340 int tmp_length;
1341 #endif
1342 int length_align;
1344 uid = INSN_UID (insn);
1346 if (GET_CODE (insn) == CODE_LABEL)
1348 int log = LABEL_TO_ALIGNMENT (insn);
1349 if (log > insn_current_align)
1351 int align = 1 << log;
1352 int new_address= (insn_current_address + align - 1) & -align;
1353 insn_lengths[uid] = new_address - insn_current_address;
1354 insn_current_align = log;
1355 insn_current_address = new_address;
1357 else
1358 insn_lengths[uid] = 0;
1359 INSN_ADDRESSES (uid) = insn_current_address;
1360 continue;
1363 length_align = INSN_LENGTH_ALIGNMENT (insn);
1364 if (length_align < insn_current_align)
1365 insn_current_align = length_align;
1367 insn_last_address = INSN_ADDRESSES (uid);
1368 INSN_ADDRESSES (uid) = insn_current_address;
1370 #ifdef CASE_VECTOR_SHORTEN_MODE
1371 if (optimize && GET_CODE (insn) == JUMP_INSN
1372 && GET_CODE (PATTERN (insn)) == ADDR_DIFF_VEC)
1374 rtx body = PATTERN (insn);
1375 int old_length = insn_lengths[uid];
1376 rtx rel_lab = XEXP (XEXP (body, 0), 0);
1377 rtx min_lab = XEXP (XEXP (body, 2), 0);
1378 rtx max_lab = XEXP (XEXP (body, 3), 0);
1379 addr_diff_vec_flags flags = ADDR_DIFF_VEC_FLAGS (body);
1380 int rel_addr = INSN_ADDRESSES (INSN_UID (rel_lab));
1381 int min_addr = INSN_ADDRESSES (INSN_UID (min_lab));
1382 int max_addr = INSN_ADDRESSES (INSN_UID (max_lab));
1383 rtx prev;
1384 int rel_align = 0;
1386 /* Try to find a known alignment for rel_lab. */
1387 for (prev = rel_lab;
1388 prev
1389 && ! insn_lengths[INSN_UID (prev)]
1390 && ! (varying_length[INSN_UID (prev)] & 1);
1391 prev = PREV_INSN (prev))
1392 if (varying_length[INSN_UID (prev)] & 2)
1394 rel_align = LABEL_TO_ALIGNMENT (prev);
1395 break;
1398 /* See the comment on addr_diff_vec_flags in rtl.h for the
1399 meaning of the flags values. base: REL_LAB vec: INSN */
1400 /* Anything after INSN has still addresses from the last
1401 pass; adjust these so that they reflect our current
1402 estimate for this pass. */
1403 if (flags.base_after_vec)
1404 rel_addr += insn_current_address - insn_last_address;
1405 if (flags.min_after_vec)
1406 min_addr += insn_current_address - insn_last_address;
1407 if (flags.max_after_vec)
1408 max_addr += insn_current_address - insn_last_address;
1409 /* We want to know the worst case, i.e. lowest possible value
1410 for the offset of MIN_LAB. If MIN_LAB is after REL_LAB,
1411 its offset is positive, and we have to be wary of code shrink;
1412 otherwise, it is negative, and we have to be vary of code
1413 size increase. */
1414 if (flags.min_after_base)
1416 /* If INSN is between REL_LAB and MIN_LAB, the size
1417 changes we are about to make can change the alignment
1418 within the observed offset, therefore we have to break
1419 it up into two parts that are independent. */
1420 if (! flags.base_after_vec && flags.min_after_vec)
1422 min_addr -= align_fuzz (rel_lab, insn, rel_align, 0);
1423 min_addr -= align_fuzz (insn, min_lab, 0, 0);
1425 else
1426 min_addr -= align_fuzz (rel_lab, min_lab, rel_align, 0);
1428 else
1430 if (flags.base_after_vec && ! flags.min_after_vec)
1432 min_addr -= align_fuzz (min_lab, insn, 0, ~0);
1433 min_addr -= align_fuzz (insn, rel_lab, 0, ~0);
1435 else
1436 min_addr -= align_fuzz (min_lab, rel_lab, 0, ~0);
1438 /* Likewise, determine the highest lowest possible value
1439 for the offset of MAX_LAB. */
1440 if (flags.max_after_base)
1442 if (! flags.base_after_vec && flags.max_after_vec)
1444 max_addr += align_fuzz (rel_lab, insn, rel_align, ~0);
1445 max_addr += align_fuzz (insn, max_lab, 0, ~0);
1447 else
1448 max_addr += align_fuzz (rel_lab, max_lab, rel_align, ~0);
1450 else
1452 if (flags.base_after_vec && ! flags.max_after_vec)
1454 max_addr += align_fuzz (max_lab, insn, 0, 0);
1455 max_addr += align_fuzz (insn, rel_lab, 0, 0);
1457 else
1458 max_addr += align_fuzz (max_lab, rel_lab, 0, 0);
1460 PUT_MODE (body, CASE_VECTOR_SHORTEN_MODE (min_addr - rel_addr,
1461 max_addr - rel_addr,
1462 body));
1463 if (JUMP_TABLES_IN_TEXT_SECTION
1464 #if !defined(READONLY_DATA_SECTION)
1465 || 1
1466 #endif
1469 insn_lengths[uid]
1470 = (XVECLEN (body, 1) * GET_MODE_SIZE (GET_MODE (body)));
1471 insn_current_address += insn_lengths[uid];
1472 if (insn_lengths[uid] != old_length)
1473 something_changed = 1;
1476 continue;
1478 #endif /* CASE_VECTOR_SHORTEN_MODE */
1480 if (! (varying_length[uid]))
1482 insn_current_address += insn_lengths[uid];
1483 continue;
1485 if (GET_CODE (insn) == INSN && GET_CODE (PATTERN (insn)) == SEQUENCE)
1487 int i;
1489 body = PATTERN (insn);
1490 new_length = 0;
1491 for (i = 0; i < XVECLEN (body, 0); i++)
1493 rtx inner_insn = XVECEXP (body, 0, i);
1494 int inner_uid = INSN_UID (inner_insn);
1495 int inner_length;
1497 INSN_ADDRESSES (inner_uid) = insn_current_address;
1499 /* insn_current_length returns 0 for insns with a
1500 non-varying length. */
1501 if (! varying_length[inner_uid])
1502 inner_length = insn_lengths[inner_uid];
1503 else
1504 inner_length = insn_current_length (inner_insn);
1506 if (inner_length != insn_lengths[inner_uid])
1508 insn_lengths[inner_uid] = inner_length;
1509 something_changed = 1;
1511 insn_current_address += insn_lengths[inner_uid];
1512 new_length += inner_length;
1515 else
1517 new_length = insn_current_length (insn);
1518 insn_current_address += new_length;
1521 #ifdef ADJUST_INSN_LENGTH
1522 /* If needed, do any adjustment. */
1523 tmp_length = new_length;
1524 ADJUST_INSN_LENGTH (insn, new_length);
1525 insn_current_address += (new_length - tmp_length);
1526 #endif
1528 if (new_length != insn_lengths[uid])
1530 insn_lengths[uid] = new_length;
1531 something_changed = 1;
1534 /* For a non-optimizing compile, do only a single pass. */
1535 if (!optimize)
1536 break;
1539 free (varying_length);
1541 #endif /* HAVE_ATTR_length */
1544 #ifdef HAVE_ATTR_length
1545 /* Given the body of an INSN known to be generated by an ASM statement, return
1546 the number of machine instructions likely to be generated for this insn.
1547 This is used to compute its length. */
1549 static int
1550 asm_insn_count (body)
1551 rtx body;
1553 const char *template;
1554 int count = 1;
1556 if (GET_CODE (body) == ASM_INPUT)
1557 template = XSTR (body, 0);
1558 else
1559 template = decode_asm_operands (body, NULL_PTR, NULL_PTR,
1560 NULL_PTR, NULL_PTR);
1562 for (; *template; template++)
1563 if (IS_ASM_LOGICAL_LINE_SEPARATOR (*template) || *template == '\n')
1564 count++;
1566 return count;
1568 #endif
1570 /* Output assembler code for the start of a function,
1571 and initialize some of the variables in this file
1572 for the new function. The label for the function and associated
1573 assembler pseudo-ops have already been output in `assemble_start_function'.
1575 FIRST is the first insn of the rtl for the function being compiled.
1576 FILE is the file to write assembler code to.
1577 OPTIMIZE is nonzero if we should eliminate redundant
1578 test and compare insns. */
1580 void
1581 final_start_function (first, file, optimize)
1582 rtx first;
1583 FILE *file;
1584 int optimize ATTRIBUTE_UNUSED;
1586 block_depth = 0;
1588 this_is_asm_operands = 0;
1590 #ifdef NON_SAVING_SETJMP
1591 /* A function that calls setjmp should save and restore all the
1592 call-saved registers on a system where longjmp clobbers them. */
1593 if (NON_SAVING_SETJMP && current_function_calls_setjmp)
1595 int i;
1597 for (i = 0; i < FIRST_PSEUDO_REGISTER; i++)
1598 if (!call_used_regs[i])
1599 regs_ever_live[i] = 1;
1601 #endif
1603 /* Initial line number is supposed to be output
1604 before the function's prologue and label
1605 so that the function's address will not appear to be
1606 in the last statement of the preceding function. */
1607 if (NOTE_LINE_NUMBER (first) != NOTE_INSN_DELETED)
1608 last_linenum = high_block_linenum = high_function_linenum
1609 = NOTE_LINE_NUMBER (first);
1611 #if defined (DWARF2_UNWIND_INFO) || defined (DWARF2_DEBUGGING_INFO)
1612 /* Output DWARF definition of the function. */
1613 if (dwarf2out_do_frame ())
1614 dwarf2out_begin_prologue ();
1615 else
1616 current_function_func_begin_label = 0;
1617 #endif
1619 /* For SDB and XCOFF, the function beginning must be marked between
1620 the function label and the prologue. We always need this, even when
1621 -g1 was used. Defer on MIPS systems so that parameter descriptions
1622 follow function entry. */
1623 #if defined(SDB_DEBUGGING_INFO) && !defined(MIPS_DEBUGGING_INFO)
1624 if (write_symbols == SDB_DEBUG)
1625 sdbout_begin_function (last_linenum);
1626 else
1627 #endif
1628 #ifdef XCOFF_DEBUGGING_INFO
1629 if (write_symbols == XCOFF_DEBUG)
1630 xcoffout_begin_function (file, last_linenum);
1631 else
1632 #endif
1633 /* But only output line number for other debug info types if -g2
1634 or better. */
1635 if (NOTE_LINE_NUMBER (first) != NOTE_INSN_DELETED)
1636 output_source_line (file, first);
1638 #ifdef LEAF_REG_REMAP
1639 if (current_function_uses_only_leaf_regs)
1640 leaf_renumber_regs (first);
1641 #endif
1643 /* The Sun386i and perhaps other machines don't work right
1644 if the profiling code comes after the prologue. */
1645 #ifdef PROFILE_BEFORE_PROLOGUE
1646 if (profile_flag)
1647 profile_function (file);
1648 #endif /* PROFILE_BEFORE_PROLOGUE */
1650 #if defined (DWARF2_UNWIND_INFO) && defined (HAVE_prologue)
1651 if (dwarf2out_do_frame ())
1652 dwarf2out_frame_debug (NULL_RTX);
1653 #endif
1655 /* If debugging, assign block numbers to all of the blocks in this
1656 function. */
1657 if (write_symbols)
1659 number_blocks (current_function_decl);
1660 remove_unnecessary_notes ();
1661 /* We never actually put out begin/end notes for the top-level
1662 block in the function. But, conceptually, that block is
1663 always needed. */
1664 TREE_ASM_WRITTEN (DECL_INITIAL (current_function_decl)) = 1;
1667 #ifdef FUNCTION_PROLOGUE
1668 /* First output the function prologue: code to set up the stack frame. */
1669 FUNCTION_PROLOGUE (file, get_frame_size ());
1670 #endif
1672 /* If the machine represents the prologue as RTL, the profiling code must
1673 be emitted when NOTE_INSN_PROLOGUE_END is scanned. */
1674 #ifdef HAVE_prologue
1675 if (! HAVE_prologue)
1676 #endif
1677 profile_after_prologue (file);
1679 profile_label_no++;
1681 /* If we are doing basic block profiling, remember a printable version
1682 of the function name. */
1683 if (profile_block_flag)
1685 bb_func_label_num =
1686 add_bb_string ((*decl_printable_name) (current_function_decl, 2),
1687 FALSE);
1691 static void
1692 profile_after_prologue (file)
1693 FILE *file ATTRIBUTE_UNUSED;
1695 #ifdef FUNCTION_BLOCK_PROFILER
1696 if (profile_block_flag)
1698 FUNCTION_BLOCK_PROFILER (file, count_basic_blocks);
1700 #endif /* FUNCTION_BLOCK_PROFILER */
1702 #ifndef PROFILE_BEFORE_PROLOGUE
1703 if (profile_flag)
1704 profile_function (file);
1705 #endif /* not PROFILE_BEFORE_PROLOGUE */
1708 static void
1709 profile_function (file)
1710 FILE *file;
1712 #ifndef NO_PROFILE_COUNTERS
1713 int align = MIN (BIGGEST_ALIGNMENT, LONG_TYPE_SIZE);
1714 #endif
1715 #if defined(ASM_OUTPUT_REG_PUSH)
1716 #if defined(STRUCT_VALUE_INCOMING_REGNUM) || defined(STRUCT_VALUE_REGNUM)
1717 int sval = current_function_returns_struct;
1718 #endif
1719 #if defined(STATIC_CHAIN_INCOMING_REGNUM) || defined(STATIC_CHAIN_REGNUM)
1720 int cxt = current_function_needs_context;
1721 #endif
1722 #endif /* ASM_OUTPUT_REG_PUSH */
1724 #ifndef NO_PROFILE_COUNTERS
1725 data_section ();
1726 ASM_OUTPUT_ALIGN (file, floor_log2 (align / BITS_PER_UNIT));
1727 ASM_OUTPUT_INTERNAL_LABEL (file, "LP", profile_label_no);
1728 assemble_integer (const0_rtx, LONG_TYPE_SIZE / BITS_PER_UNIT, 1);
1729 #endif
1731 function_section (current_function_decl);
1733 #if defined(STRUCT_VALUE_INCOMING_REGNUM) && defined(ASM_OUTPUT_REG_PUSH)
1734 if (sval)
1735 ASM_OUTPUT_REG_PUSH (file, STRUCT_VALUE_INCOMING_REGNUM);
1736 #else
1737 #if defined(STRUCT_VALUE_REGNUM) && defined(ASM_OUTPUT_REG_PUSH)
1738 if (sval)
1740 ASM_OUTPUT_REG_PUSH (file, STRUCT_VALUE_REGNUM);
1742 #endif
1743 #endif
1745 #if defined(STATIC_CHAIN_INCOMING_REGNUM) && defined(ASM_OUTPUT_REG_PUSH)
1746 if (cxt)
1747 ASM_OUTPUT_REG_PUSH (file, STATIC_CHAIN_INCOMING_REGNUM);
1748 #else
1749 #if defined(STATIC_CHAIN_REGNUM) && defined(ASM_OUTPUT_REG_PUSH)
1750 if (cxt)
1752 ASM_OUTPUT_REG_PUSH (file, STATIC_CHAIN_REGNUM);
1754 #endif
1755 #endif
1757 FUNCTION_PROFILER (file, profile_label_no);
1759 #if defined(STATIC_CHAIN_INCOMING_REGNUM) && defined(ASM_OUTPUT_REG_PUSH)
1760 if (cxt)
1761 ASM_OUTPUT_REG_POP (file, STATIC_CHAIN_INCOMING_REGNUM);
1762 #else
1763 #if defined(STATIC_CHAIN_REGNUM) && defined(ASM_OUTPUT_REG_PUSH)
1764 if (cxt)
1766 ASM_OUTPUT_REG_POP (file, STATIC_CHAIN_REGNUM);
1768 #endif
1769 #endif
1771 #if defined(STRUCT_VALUE_INCOMING_REGNUM) && defined(ASM_OUTPUT_REG_PUSH)
1772 if (sval)
1773 ASM_OUTPUT_REG_POP (file, STRUCT_VALUE_INCOMING_REGNUM);
1774 #else
1775 #if defined(STRUCT_VALUE_REGNUM) && defined(ASM_OUTPUT_REG_PUSH)
1776 if (sval)
1778 ASM_OUTPUT_REG_POP (file, STRUCT_VALUE_REGNUM);
1780 #endif
1781 #endif
1784 /* Output assembler code for the end of a function.
1785 For clarity, args are same as those of `final_start_function'
1786 even though not all of them are needed. */
1788 void
1789 final_end_function (first, file, optimize)
1790 rtx first ATTRIBUTE_UNUSED;
1791 FILE *file ATTRIBUTE_UNUSED;
1792 int optimize ATTRIBUTE_UNUSED;
1794 app_disable ();
1796 #ifdef SDB_DEBUGGING_INFO
1797 if (write_symbols == SDB_DEBUG)
1798 sdbout_end_function (high_function_linenum);
1799 #endif
1801 #ifdef DWARF_DEBUGGING_INFO
1802 if (write_symbols == DWARF_DEBUG)
1803 dwarfout_end_function ();
1804 #endif
1806 #ifdef XCOFF_DEBUGGING_INFO
1807 if (write_symbols == XCOFF_DEBUG)
1808 xcoffout_end_function (file, high_function_linenum);
1809 #endif
1811 #ifdef FUNCTION_EPILOGUE
1812 /* Finally, output the function epilogue:
1813 code to restore the stack frame and return to the caller. */
1814 FUNCTION_EPILOGUE (file, get_frame_size ());
1815 #endif
1817 #ifdef SDB_DEBUGGING_INFO
1818 if (write_symbols == SDB_DEBUG)
1819 sdbout_end_epilogue ();
1820 #endif
1822 #ifdef DWARF_DEBUGGING_INFO
1823 if (write_symbols == DWARF_DEBUG)
1824 dwarfout_end_epilogue ();
1825 #endif
1827 #if defined (DWARF2_UNWIND_INFO) || defined (DWARF2_DEBUGGING_INFO)
1828 if (dwarf2out_do_frame ())
1829 dwarf2out_end_epilogue ();
1830 #endif
1832 #ifdef XCOFF_DEBUGGING_INFO
1833 if (write_symbols == XCOFF_DEBUG)
1834 xcoffout_end_epilogue (file);
1835 #endif
1837 bb_func_label_num = -1; /* not in function, nuke label # */
1839 #ifdef IA64_UNWIND_INFO
1840 output_function_exception_table ();
1841 #endif
1843 /* If FUNCTION_EPILOGUE is not defined, then the function body
1844 itself contains return instructions wherever needed. */
1847 /* Add a block to the linked list that remembers the current line/file/function
1848 for basic block profiling. Emit the label in front of the basic block and
1849 the instructions that increment the count field. */
1851 static void
1852 add_bb (file)
1853 FILE *file;
1855 struct bb_list *ptr =
1856 (struct bb_list *) permalloc (sizeof (struct bb_list));
1858 /* Add basic block to linked list. */
1859 ptr->next = 0;
1860 ptr->line_num = last_linenum;
1861 ptr->file_label_num = bb_file_label_num;
1862 ptr->func_label_num = bb_func_label_num;
1863 *bb_tail = ptr;
1864 bb_tail = &ptr->next;
1866 /* Enable the table of basic-block use counts
1867 to point at the code it applies to. */
1868 ASM_OUTPUT_INTERNAL_LABEL (file, "LPB", count_basic_blocks);
1870 /* Before first insn of this basic block, increment the
1871 count of times it was entered. */
1872 #ifdef BLOCK_PROFILER
1873 BLOCK_PROFILER (file, count_basic_blocks);
1874 #endif
1875 #ifdef HAVE_cc0
1876 CC_STATUS_INIT;
1877 #endif
1879 new_block = 0;
1880 count_basic_blocks++;
1883 /* Add a string to be used for basic block profiling. */
1885 static int
1886 add_bb_string (string, perm_p)
1887 const char *string;
1888 int perm_p;
1890 int len;
1891 struct bb_str *ptr = 0;
1893 if (!string)
1895 string = "<unknown>";
1896 perm_p = TRUE;
1899 /* Allocate a new string if the current string isn't permanent. If
1900 the string is permanent search for the same string in other
1901 allocations. */
1903 len = strlen (string) + 1;
1904 if (!perm_p)
1906 char *p = (char *) permalloc (len);
1907 memcpy (p, string, len);
1908 string = p;
1910 else
1911 for (ptr = sbb_head; ptr != (struct bb_str *) 0; ptr = ptr->next)
1912 if (ptr->string == string)
1913 break;
1915 /* Allocate a new string block if we need to. */
1916 if (!ptr)
1918 ptr = (struct bb_str *) permalloc (sizeof (*ptr));
1919 ptr->next = 0;
1920 ptr->length = len;
1921 ptr->label_num = sbb_label_num++;
1922 ptr->string = string;
1923 *sbb_tail = ptr;
1924 sbb_tail = &ptr->next;
1927 return ptr->label_num;
1930 /* Output assembler code for some insns: all or part of a function.
1931 For description of args, see `final_start_function', above.
1933 PRESCAN is 1 if we are not really outputting,
1934 just scanning as if we were outputting.
1935 Prescanning deletes and rearranges insns just like ordinary output.
1936 PRESCAN is -2 if we are outputting after having prescanned.
1937 In this case, don't try to delete or rearrange insns
1938 because that has already been done.
1939 Prescanning is done only on certain machines. */
1941 void
1942 final (first, file, optimize, prescan)
1943 rtx first;
1944 FILE *file;
1945 int optimize;
1946 int prescan;
1948 register rtx insn;
1949 int max_line = 0;
1950 int max_uid = 0;
1952 last_ignored_compare = 0;
1953 new_block = 1;
1955 check_exception_handler_labels ();
1957 /* Make a map indicating which line numbers appear in this function.
1958 When producing SDB debugging info, delete troublesome line number
1959 notes from inlined functions in other files as well as duplicate
1960 line number notes. */
1961 #ifdef SDB_DEBUGGING_INFO
1962 if (write_symbols == SDB_DEBUG)
1964 rtx last = 0;
1965 for (insn = first; insn; insn = NEXT_INSN (insn))
1966 if (GET_CODE (insn) == NOTE && NOTE_LINE_NUMBER (insn) > 0)
1968 if ((RTX_INTEGRATED_P (insn)
1969 && strcmp (NOTE_SOURCE_FILE (insn), main_input_filename) != 0)
1970 || (last != 0
1971 && NOTE_LINE_NUMBER (insn) == NOTE_LINE_NUMBER (last)
1972 && NOTE_SOURCE_FILE (insn) == NOTE_SOURCE_FILE (last)))
1974 NOTE_LINE_NUMBER (insn) = NOTE_INSN_DELETED;
1975 NOTE_SOURCE_FILE (insn) = 0;
1976 continue;
1978 last = insn;
1979 if (NOTE_LINE_NUMBER (insn) > max_line)
1980 max_line = NOTE_LINE_NUMBER (insn);
1983 else
1984 #endif
1986 for (insn = first; insn; insn = NEXT_INSN (insn))
1987 if (GET_CODE (insn) == NOTE && NOTE_LINE_NUMBER (insn) > max_line)
1988 max_line = NOTE_LINE_NUMBER (insn);
1991 line_note_exists = (char *) xcalloc (max_line + 1, sizeof (char));
1993 for (insn = first; insn; insn = NEXT_INSN (insn))
1995 if (INSN_UID (insn) > max_uid) /* find largest UID */
1996 max_uid = INSN_UID (insn);
1997 if (GET_CODE (insn) == NOTE && NOTE_LINE_NUMBER (insn) > 0)
1998 line_note_exists[NOTE_LINE_NUMBER (insn)] = 1;
1999 #ifdef HAVE_cc0
2000 /* If CC tracking across branches is enabled, record the insn which
2001 jumps to each branch only reached from one place. */
2002 if (optimize && GET_CODE (insn) == JUMP_INSN)
2004 rtx lab = JUMP_LABEL (insn);
2005 if (lab && LABEL_NUSES (lab) == 1)
2007 LABEL_REFS (lab) = insn;
2010 #endif
2013 /* Initialize insn_eh_region table if eh is being used. */
2015 init_insn_eh_region (first, max_uid);
2017 init_recog ();
2019 CC_STATUS_INIT;
2021 /* Output the insns. */
2022 for (insn = NEXT_INSN (first); insn;)
2024 #ifdef HAVE_ATTR_length
2025 if (INSN_UID (insn) >= INSN_ADDRESSES_SIZE ())
2027 #ifdef STACK_REGS
2028 /* Irritatingly, the reg-stack pass is creating new instructions
2029 and because of REG_DEAD note abuse it has to run after
2030 shorten_branches. Fake address of -1 then. */
2031 insn_current_address = -1;
2032 #else
2033 /* This can be triggered by bugs elsewhere in the compiler if
2034 new insns are created after init_insn_lengths is called. */
2035 abort ();
2036 #endif
2038 else
2039 insn_current_address = INSN_ADDRESSES (INSN_UID (insn));
2040 #endif /* HAVE_ATTR_length */
2042 insn = final_scan_insn (insn, file, optimize, prescan, 0);
2045 /* Do basic-block profiling here
2046 if the last insn was a conditional branch. */
2047 if (profile_block_flag && new_block)
2048 add_bb (file);
2050 free_insn_eh_region ();
2051 free (line_note_exists);
2052 line_note_exists = NULL;
2055 const char *
2056 get_insn_template (code, insn)
2057 int code;
2058 rtx insn;
2060 const void *output = insn_data[code].output;
2061 switch (insn_data[code].output_format)
2063 case INSN_OUTPUT_FORMAT_SINGLE:
2064 return (const char *) output;
2065 case INSN_OUTPUT_FORMAT_MULTI:
2066 return ((const char *const *) output)[which_alternative];
2067 case INSN_OUTPUT_FORMAT_FUNCTION:
2068 if (insn == NULL)
2069 abort ();
2070 return (*(insn_output_fn) output) (recog_data.operand, insn);
2072 default:
2073 abort ();
2077 /* The final scan for one insn, INSN.
2078 Args are same as in `final', except that INSN
2079 is the insn being scanned.
2080 Value returned is the next insn to be scanned.
2082 NOPEEPHOLES is the flag to disallow peephole processing (currently
2083 used for within delayed branch sequence output). */
2086 final_scan_insn (insn, file, optimize, prescan, nopeepholes)
2087 rtx insn;
2088 FILE *file;
2089 int optimize ATTRIBUTE_UNUSED;
2090 int prescan;
2091 int nopeepholes ATTRIBUTE_UNUSED;
2093 #ifdef HAVE_cc0
2094 rtx set;
2095 #endif
2097 insn_counter++;
2099 /* Ignore deleted insns. These can occur when we split insns (due to a
2100 template of "#") while not optimizing. */
2101 if (INSN_DELETED_P (insn))
2102 return NEXT_INSN (insn);
2104 switch (GET_CODE (insn))
2106 case NOTE:
2107 if (prescan > 0)
2108 break;
2110 switch (NOTE_LINE_NUMBER (insn))
2112 case NOTE_INSN_DELETED:
2113 case NOTE_INSN_LOOP_BEG:
2114 case NOTE_INSN_LOOP_END:
2115 case NOTE_INSN_LOOP_CONT:
2116 case NOTE_INSN_LOOP_VTOP:
2117 case NOTE_INSN_FUNCTION_END:
2118 case NOTE_INSN_SETJMP:
2119 case NOTE_INSN_REPEATED_LINE_NUMBER:
2120 case NOTE_INSN_RANGE_BEG:
2121 case NOTE_INSN_RANGE_END:
2122 case NOTE_INSN_LIVE:
2123 case NOTE_INSN_EXPECTED_VALUE:
2124 break;
2126 case NOTE_INSN_BASIC_BLOCK:
2127 if (flag_debug_asm)
2128 fprintf (asm_out_file, "\t%s basic block %d\n",
2129 ASM_COMMENT_START, NOTE_BASIC_BLOCK (insn)->index);
2130 break;
2132 case NOTE_INSN_EH_REGION_BEG:
2133 if (! exceptions_via_longjmp)
2135 ASM_OUTPUT_INTERNAL_LABEL (file, "LEHB", NOTE_EH_HANDLER (insn));
2136 if (! flag_new_exceptions)
2137 add_eh_table_entry (NOTE_EH_HANDLER (insn));
2138 #ifdef ASM_OUTPUT_EH_REGION_BEG
2139 ASM_OUTPUT_EH_REGION_BEG (file, NOTE_EH_HANDLER (insn));
2140 #endif
2142 break;
2144 case NOTE_INSN_EH_REGION_END:
2145 if (! exceptions_via_longjmp)
2147 ASM_OUTPUT_INTERNAL_LABEL (file, "LEHE", NOTE_EH_HANDLER (insn));
2148 if (flag_new_exceptions)
2149 add_eh_table_entry (NOTE_EH_HANDLER (insn));
2150 #ifdef ASM_OUTPUT_EH_REGION_END
2151 ASM_OUTPUT_EH_REGION_END (file, NOTE_EH_HANDLER (insn));
2152 #endif
2154 break;
2156 case NOTE_INSN_PROLOGUE_END:
2157 #ifdef FUNCTION_END_PROLOGUE
2158 FUNCTION_END_PROLOGUE (file);
2159 #endif
2160 profile_after_prologue (file);
2161 break;
2163 case NOTE_INSN_EPILOGUE_BEG:
2164 #ifdef FUNCTION_BEGIN_EPILOGUE
2165 FUNCTION_BEGIN_EPILOGUE (file);
2166 #endif
2167 break;
2169 case NOTE_INSN_FUNCTION_BEG:
2170 #if defined(SDB_DEBUGGING_INFO) && defined(MIPS_DEBUGGING_INFO)
2171 /* MIPS stabs require the parameter descriptions to be after the
2172 function entry point rather than before. */
2173 if (write_symbols == SDB_DEBUG)
2175 app_disable ();
2176 sdbout_begin_function (last_linenum);
2178 #endif
2179 #ifdef DWARF_DEBUGGING_INFO
2180 /* This outputs a marker where the function body starts, so it
2181 must be after the prologue. */
2182 if (write_symbols == DWARF_DEBUG)
2184 app_disable ();
2185 dwarfout_begin_function ();
2187 #endif
2188 break;
2190 case NOTE_INSN_BLOCK_BEG:
2191 if (debug_info_level == DINFO_LEVEL_NORMAL
2192 || debug_info_level == DINFO_LEVEL_VERBOSE
2193 || write_symbols == DWARF_DEBUG
2194 || write_symbols == DWARF2_DEBUG)
2196 int n = BLOCK_NUMBER (NOTE_BLOCK (insn));
2198 app_disable ();
2199 ++block_depth;
2200 high_block_linenum = last_linenum;
2202 /* Output debugging info about the symbol-block beginning. */
2203 #ifdef SDB_DEBUGGING_INFO
2204 if (write_symbols == SDB_DEBUG)
2205 sdbout_begin_block (file, last_linenum, n);
2206 #endif
2207 #ifdef XCOFF_DEBUGGING_INFO
2208 if (write_symbols == XCOFF_DEBUG)
2209 xcoffout_begin_block (file, last_linenum, n);
2210 #endif
2211 #ifdef DBX_DEBUGGING_INFO
2212 if (write_symbols == DBX_DEBUG)
2213 ASM_OUTPUT_INTERNAL_LABEL (file, "LBB", n);
2214 #endif
2215 #ifdef DWARF_DEBUGGING_INFO
2216 if (write_symbols == DWARF_DEBUG)
2217 dwarfout_begin_block (n);
2218 #endif
2219 #ifdef DWARF2_DEBUGGING_INFO
2220 if (write_symbols == DWARF2_DEBUG)
2221 dwarf2out_begin_block (n);
2222 #endif
2224 /* Mark this block as output. */
2225 TREE_ASM_WRITTEN (NOTE_BLOCK (insn)) = 1;
2227 break;
2229 case NOTE_INSN_BLOCK_END:
2230 if (debug_info_level == DINFO_LEVEL_NORMAL
2231 || debug_info_level == DINFO_LEVEL_VERBOSE
2232 || write_symbols == DWARF_DEBUG
2233 || write_symbols == DWARF2_DEBUG)
2235 int n = BLOCK_NUMBER (NOTE_BLOCK (insn));
2237 app_disable ();
2239 /* End of a symbol-block. */
2240 --block_depth;
2241 if (block_depth < 0)
2242 abort ();
2244 #ifdef XCOFF_DEBUGGING_INFO
2245 if (write_symbols == XCOFF_DEBUG)
2246 xcoffout_end_block (file, high_block_linenum, n);
2247 #endif
2248 #ifdef DBX_DEBUGGING_INFO
2249 if (write_symbols == DBX_DEBUG)
2250 ASM_OUTPUT_INTERNAL_LABEL (file, "LBE", n);
2251 #endif
2252 #ifdef SDB_DEBUGGING_INFO
2253 if (write_symbols == SDB_DEBUG)
2254 sdbout_end_block (file, high_block_linenum, n);
2255 #endif
2256 #ifdef DWARF_DEBUGGING_INFO
2257 if (write_symbols == DWARF_DEBUG)
2258 dwarfout_end_block (n);
2259 #endif
2260 #ifdef DWARF2_DEBUGGING_INFO
2261 if (write_symbols == DWARF2_DEBUG)
2262 dwarf2out_end_block (n);
2263 #endif
2265 break;
2267 case NOTE_INSN_DELETED_LABEL:
2268 /* Emit the label. We may have deleted the CODE_LABEL because
2269 the label could be proved to be unreachable, though still
2270 referenced (in the form of having its address taken. */
2271 ASM_OUTPUT_DEBUG_LABEL (file, "L", CODE_LABEL_NUMBER (insn));
2272 break;
2274 case 0:
2275 break;
2277 default:
2278 if (NOTE_LINE_NUMBER (insn) <= 0)
2279 abort ();
2281 /* This note is a line-number. */
2283 register rtx note;
2284 int note_after = 0;
2286 /* If there is anything real after this note, output it.
2287 If another line note follows, omit this one. */
2288 for (note = NEXT_INSN (insn); note; note = NEXT_INSN (note))
2290 if (GET_CODE (note) != NOTE && GET_CODE (note) != CODE_LABEL)
2291 break;
2293 /* These types of notes can be significant
2294 so make sure the preceding line number stays. */
2295 else if (GET_CODE (note) == NOTE
2296 && (NOTE_LINE_NUMBER (note) == NOTE_INSN_BLOCK_BEG
2297 || NOTE_LINE_NUMBER (note) == NOTE_INSN_BLOCK_END
2298 || NOTE_LINE_NUMBER (note) == NOTE_INSN_FUNCTION_BEG))
2299 break;
2300 else if (GET_CODE (note) == NOTE && NOTE_LINE_NUMBER (note) > 0)
2302 /* Another line note follows; we can delete this note
2303 if no intervening line numbers have notes elsewhere. */
2304 int num;
2305 for (num = NOTE_LINE_NUMBER (insn) + 1;
2306 num < NOTE_LINE_NUMBER (note);
2307 num++)
2308 if (line_note_exists[num])
2309 break;
2311 if (num >= NOTE_LINE_NUMBER (note))
2312 note_after = 1;
2313 break;
2317 /* Output this line note if it is the first or the last line
2318 note in a row. */
2319 if (!note_after)
2320 output_source_line (file, insn);
2322 break;
2324 break;
2326 case BARRIER:
2327 #if defined (DWARF2_UNWIND_INFO)
2328 /* If we push arguments, we need to check all insns for stack
2329 adjustments. */
2330 if (!ACCUMULATE_OUTGOING_ARGS && dwarf2out_do_frame ())
2331 dwarf2out_frame_debug (insn);
2332 #endif
2333 break;
2335 case CODE_LABEL:
2336 /* The target port might emit labels in the output function for
2337 some insn, e.g. sh.c output_branchy_insn. */
2338 if (CODE_LABEL_NUMBER (insn) <= max_labelno)
2340 int align = LABEL_TO_ALIGNMENT (insn);
2341 #ifdef ASM_OUTPUT_MAX_SKIP_ALIGN
2342 int max_skip = LABEL_TO_MAX_SKIP (insn);
2343 #endif
2345 if (align && NEXT_INSN (insn))
2346 #ifdef ASM_OUTPUT_MAX_SKIP_ALIGN
2347 ASM_OUTPUT_MAX_SKIP_ALIGN (file, align, max_skip);
2348 #else
2349 ASM_OUTPUT_ALIGN (file, align);
2350 #endif
2352 #ifdef HAVE_cc0
2353 CC_STATUS_INIT;
2354 /* If this label is reached from only one place, set the condition
2355 codes from the instruction just before the branch. */
2357 /* Disabled because some insns set cc_status in the C output code
2358 and NOTICE_UPDATE_CC alone can set incorrect status. */
2359 if (0 /* optimize && LABEL_NUSES (insn) == 1*/)
2361 rtx jump = LABEL_REFS (insn);
2362 rtx barrier = prev_nonnote_insn (insn);
2363 rtx prev;
2364 /* If the LABEL_REFS field of this label has been set to point
2365 at a branch, the predecessor of the branch is a regular
2366 insn, and that branch is the only way to reach this label,
2367 set the condition codes based on the branch and its
2368 predecessor. */
2369 if (barrier && GET_CODE (barrier) == BARRIER
2370 && jump && GET_CODE (jump) == JUMP_INSN
2371 && (prev = prev_nonnote_insn (jump))
2372 && GET_CODE (prev) == INSN)
2374 NOTICE_UPDATE_CC (PATTERN (prev), prev);
2375 NOTICE_UPDATE_CC (PATTERN (jump), jump);
2378 #endif
2379 if (prescan > 0)
2380 break;
2381 new_block = 1;
2383 #ifdef FINAL_PRESCAN_LABEL
2384 FINAL_PRESCAN_INSN (insn, NULL_PTR, 0);
2385 #endif
2387 #ifdef SDB_DEBUGGING_INFO
2388 if (write_symbols == SDB_DEBUG && LABEL_NAME (insn))
2389 sdbout_label (insn);
2390 #endif
2391 if (app_on)
2393 fputs (ASM_APP_OFF, file);
2394 app_on = 0;
2396 if (NEXT_INSN (insn) != 0
2397 && GET_CODE (NEXT_INSN (insn)) == JUMP_INSN)
2399 rtx nextbody = PATTERN (NEXT_INSN (insn));
2401 /* If this label is followed by a jump-table,
2402 make sure we put the label in the read-only section. Also
2403 possibly write the label and jump table together. */
2405 if (GET_CODE (nextbody) == ADDR_VEC
2406 || GET_CODE (nextbody) == ADDR_DIFF_VEC)
2408 #if defined(ASM_OUTPUT_ADDR_VEC) || defined(ASM_OUTPUT_ADDR_DIFF_VEC)
2409 /* In this case, the case vector is being moved by the
2410 target, so don't output the label at all. Leave that
2411 to the back end macros. */
2412 #else
2413 if (! JUMP_TABLES_IN_TEXT_SECTION)
2415 readonly_data_section ();
2416 #ifdef READONLY_DATA_SECTION
2417 ASM_OUTPUT_ALIGN (file,
2418 exact_log2 (BIGGEST_ALIGNMENT
2419 / BITS_PER_UNIT));
2420 #endif /* READONLY_DATA_SECTION */
2422 else
2423 function_section (current_function_decl);
2425 #ifdef ASM_OUTPUT_CASE_LABEL
2426 ASM_OUTPUT_CASE_LABEL (file, "L", CODE_LABEL_NUMBER (insn),
2427 NEXT_INSN (insn));
2428 #else
2429 if (LABEL_ALTERNATE_NAME (insn))
2430 ASM_OUTPUT_ALTERNATE_LABEL_NAME (file, insn);
2431 else
2432 ASM_OUTPUT_INTERNAL_LABEL (file, "L", CODE_LABEL_NUMBER (insn));
2433 #endif
2434 #endif
2435 break;
2438 if (LABEL_ALTERNATE_NAME (insn))
2439 ASM_OUTPUT_ALTERNATE_LABEL_NAME (file, insn);
2440 else
2441 ASM_OUTPUT_INTERNAL_LABEL (file, "L", CODE_LABEL_NUMBER (insn));
2442 break;
2444 default:
2446 register rtx body = PATTERN (insn);
2447 int insn_code_number;
2448 const char *template;
2449 #ifdef HAVE_cc0
2450 rtx note;
2451 #endif
2453 /* An INSN, JUMP_INSN or CALL_INSN.
2454 First check for special kinds that recog doesn't recognize. */
2456 if (GET_CODE (body) == USE /* These are just declarations */
2457 || GET_CODE (body) == CLOBBER)
2458 break;
2460 #ifdef HAVE_cc0
2461 /* If there is a REG_CC_SETTER note on this insn, it means that
2462 the setting of the condition code was done in the delay slot
2463 of the insn that branched here. So recover the cc status
2464 from the insn that set it. */
2466 note = find_reg_note (insn, REG_CC_SETTER, NULL_RTX);
2467 if (note)
2469 NOTICE_UPDATE_CC (PATTERN (XEXP (note, 0)), XEXP (note, 0));
2470 cc_prev_status = cc_status;
2472 #endif
2474 /* Detect insns that are really jump-tables
2475 and output them as such. */
2477 if (GET_CODE (body) == ADDR_VEC || GET_CODE (body) == ADDR_DIFF_VEC)
2479 #if !(defined(ASM_OUTPUT_ADDR_VEC) || defined(ASM_OUTPUT_ADDR_DIFF_VEC))
2480 register int vlen, idx;
2481 #endif
2483 if (prescan > 0)
2484 break;
2486 if (app_on)
2488 fputs (ASM_APP_OFF, file);
2489 app_on = 0;
2492 #if defined(ASM_OUTPUT_ADDR_VEC) || defined(ASM_OUTPUT_ADDR_DIFF_VEC)
2493 if (GET_CODE (body) == ADDR_VEC)
2495 #ifdef ASM_OUTPUT_ADDR_VEC
2496 ASM_OUTPUT_ADDR_VEC (PREV_INSN (insn), body);
2497 #else
2498 abort ();
2499 #endif
2501 else
2503 #ifdef ASM_OUTPUT_ADDR_DIFF_VEC
2504 ASM_OUTPUT_ADDR_DIFF_VEC (PREV_INSN (insn), body);
2505 #else
2506 abort ();
2507 #endif
2509 #else
2510 vlen = XVECLEN (body, GET_CODE (body) == ADDR_DIFF_VEC);
2511 for (idx = 0; idx < vlen; idx++)
2513 if (GET_CODE (body) == ADDR_VEC)
2515 #ifdef ASM_OUTPUT_ADDR_VEC_ELT
2516 ASM_OUTPUT_ADDR_VEC_ELT
2517 (file, CODE_LABEL_NUMBER (XEXP (XVECEXP (body, 0, idx), 0)));
2518 #else
2519 abort ();
2520 #endif
2522 else
2524 #ifdef ASM_OUTPUT_ADDR_DIFF_ELT
2525 ASM_OUTPUT_ADDR_DIFF_ELT
2526 (file,
2527 body,
2528 CODE_LABEL_NUMBER (XEXP (XVECEXP (body, 1, idx), 0)),
2529 CODE_LABEL_NUMBER (XEXP (XEXP (body, 0), 0)));
2530 #else
2531 abort ();
2532 #endif
2535 #ifdef ASM_OUTPUT_CASE_END
2536 ASM_OUTPUT_CASE_END (file,
2537 CODE_LABEL_NUMBER (PREV_INSN (insn)),
2538 insn);
2539 #endif
2540 #endif
2542 function_section (current_function_decl);
2544 break;
2547 /* Do basic-block profiling when we reach a new block.
2548 Done here to avoid jump tables. */
2549 if (profile_block_flag && new_block)
2550 add_bb (file);
2552 if (GET_CODE (body) == ASM_INPUT)
2554 /* There's no telling what that did to the condition codes. */
2555 CC_STATUS_INIT;
2556 if (prescan > 0)
2557 break;
2558 if (! app_on)
2560 fputs (ASM_APP_ON, file);
2561 app_on = 1;
2563 fprintf (asm_out_file, "\t%s\n", XSTR (body, 0));
2564 break;
2567 /* Detect `asm' construct with operands. */
2568 if (asm_noperands (body) >= 0)
2570 unsigned int noperands = asm_noperands (body);
2571 rtx *ops = (rtx *) alloca (noperands * sizeof (rtx));
2572 const char *string;
2574 /* There's no telling what that did to the condition codes. */
2575 CC_STATUS_INIT;
2576 if (prescan > 0)
2577 break;
2579 if (! app_on)
2581 fputs (ASM_APP_ON, file);
2582 app_on = 1;
2585 /* Get out the operand values. */
2586 string = decode_asm_operands (body, ops, NULL_PTR,
2587 NULL_PTR, NULL_PTR);
2588 /* Inhibit aborts on what would otherwise be compiler bugs. */
2589 insn_noperands = noperands;
2590 this_is_asm_operands = insn;
2592 /* Output the insn using them. */
2593 output_asm_insn (string, ops);
2594 this_is_asm_operands = 0;
2595 break;
2598 if (prescan <= 0 && app_on)
2600 fputs (ASM_APP_OFF, file);
2601 app_on = 0;
2604 if (GET_CODE (body) == SEQUENCE)
2606 /* A delayed-branch sequence */
2607 register int i;
2608 rtx next;
2610 if (prescan > 0)
2611 break;
2612 final_sequence = body;
2614 /* The first insn in this SEQUENCE might be a JUMP_INSN that will
2615 force the restoration of a comparison that was previously
2616 thought unnecessary. If that happens, cancel this sequence
2617 and cause that insn to be restored. */
2619 next = final_scan_insn (XVECEXP (body, 0, 0), file, 0, prescan, 1);
2620 if (next != XVECEXP (body, 0, 1))
2622 final_sequence = 0;
2623 return next;
2626 for (i = 1; i < XVECLEN (body, 0); i++)
2628 rtx insn = XVECEXP (body, 0, i);
2629 rtx next = NEXT_INSN (insn);
2630 /* We loop in case any instruction in a delay slot gets
2631 split. */
2633 insn = final_scan_insn (insn, file, 0, prescan, 1);
2634 while (insn != next);
2636 #ifdef DBR_OUTPUT_SEQEND
2637 DBR_OUTPUT_SEQEND (file);
2638 #endif
2639 final_sequence = 0;
2641 /* If the insn requiring the delay slot was a CALL_INSN, the
2642 insns in the delay slot are actually executed before the
2643 called function. Hence we don't preserve any CC-setting
2644 actions in these insns and the CC must be marked as being
2645 clobbered by the function. */
2646 if (GET_CODE (XVECEXP (body, 0, 0)) == CALL_INSN)
2648 CC_STATUS_INIT;
2651 /* Following a conditional branch sequence, we have a new basic
2652 block. */
2653 if (profile_block_flag)
2655 rtx insn = XVECEXP (body, 0, 0);
2656 rtx body = PATTERN (insn);
2658 if ((GET_CODE (insn) == JUMP_INSN && GET_CODE (body) == SET
2659 && GET_CODE (SET_SRC (body)) != LABEL_REF)
2660 || (GET_CODE (insn) == JUMP_INSN
2661 && GET_CODE (body) == PARALLEL
2662 && GET_CODE (XVECEXP (body, 0, 0)) == SET
2663 && GET_CODE (SET_SRC (XVECEXP (body, 0, 0))) != LABEL_REF))
2664 new_block = 1;
2666 break;
2669 /* We have a real machine instruction as rtl. */
2671 body = PATTERN (insn);
2673 #ifdef HAVE_cc0
2674 set = single_set (insn);
2676 /* Check for redundant test and compare instructions
2677 (when the condition codes are already set up as desired).
2678 This is done only when optimizing; if not optimizing,
2679 it should be possible for the user to alter a variable
2680 with the debugger in between statements
2681 and the next statement should reexamine the variable
2682 to compute the condition codes. */
2684 if (optimize)
2686 #if 0
2687 rtx set = single_set (insn);
2688 #endif
2690 if (set
2691 && GET_CODE (SET_DEST (set)) == CC0
2692 && insn != last_ignored_compare)
2694 if (GET_CODE (SET_SRC (set)) == SUBREG)
2695 SET_SRC (set) = alter_subreg (SET_SRC (set));
2696 else if (GET_CODE (SET_SRC (set)) == COMPARE)
2698 if (GET_CODE (XEXP (SET_SRC (set), 0)) == SUBREG)
2699 XEXP (SET_SRC (set), 0)
2700 = alter_subreg (XEXP (SET_SRC (set), 0));
2701 if (GET_CODE (XEXP (SET_SRC (set), 1)) == SUBREG)
2702 XEXP (SET_SRC (set), 1)
2703 = alter_subreg (XEXP (SET_SRC (set), 1));
2705 if ((cc_status.value1 != 0
2706 && rtx_equal_p (SET_SRC (set), cc_status.value1))
2707 || (cc_status.value2 != 0
2708 && rtx_equal_p (SET_SRC (set), cc_status.value2)))
2710 /* Don't delete insn if it has an addressing side-effect. */
2711 if (! FIND_REG_INC_NOTE (insn, 0)
2712 /* or if anything in it is volatile. */
2713 && ! volatile_refs_p (PATTERN (insn)))
2715 /* We don't really delete the insn; just ignore it. */
2716 last_ignored_compare = insn;
2717 break;
2722 #endif
2724 /* Following a conditional branch, we have a new basic block.
2725 But if we are inside a sequence, the new block starts after the
2726 last insn of the sequence. */
2727 if (profile_block_flag && final_sequence == 0
2728 && ((GET_CODE (insn) == JUMP_INSN && GET_CODE (body) == SET
2729 && GET_CODE (SET_SRC (body)) != LABEL_REF)
2730 || (GET_CODE (insn) == JUMP_INSN && GET_CODE (body) == PARALLEL
2731 && GET_CODE (XVECEXP (body, 0, 0)) == SET
2732 && GET_CODE (SET_SRC (XVECEXP (body, 0, 0))) != LABEL_REF)))
2733 new_block = 1;
2735 #ifndef STACK_REGS
2736 /* Don't bother outputting obvious no-ops, even without -O.
2737 This optimization is fast and doesn't interfere with debugging.
2738 Don't do this if the insn is in a delay slot, since this
2739 will cause an improper number of delay insns to be written. */
2740 if (final_sequence == 0
2741 && prescan >= 0
2742 && GET_CODE (insn) == INSN && GET_CODE (body) == SET
2743 && GET_CODE (SET_SRC (body)) == REG
2744 && GET_CODE (SET_DEST (body)) == REG
2745 && REGNO (SET_SRC (body)) == REGNO (SET_DEST (body)))
2746 break;
2747 #endif
2749 #ifdef HAVE_cc0
2750 /* If this is a conditional branch, maybe modify it
2751 if the cc's are in a nonstandard state
2752 so that it accomplishes the same thing that it would
2753 do straightforwardly if the cc's were set up normally. */
2755 if (cc_status.flags != 0
2756 && GET_CODE (insn) == JUMP_INSN
2757 && GET_CODE (body) == SET
2758 && SET_DEST (body) == pc_rtx
2759 && GET_CODE (SET_SRC (body)) == IF_THEN_ELSE
2760 && GET_RTX_CLASS (GET_CODE (XEXP (SET_SRC (body), 0))) == '<'
2761 && XEXP (XEXP (SET_SRC (body), 0), 0) == cc0_rtx
2762 /* This is done during prescan; it is not done again
2763 in final scan when prescan has been done. */
2764 && prescan >= 0)
2766 /* This function may alter the contents of its argument
2767 and clear some of the cc_status.flags bits.
2768 It may also return 1 meaning condition now always true
2769 or -1 meaning condition now always false
2770 or 2 meaning condition nontrivial but altered. */
2771 register int result = alter_cond (XEXP (SET_SRC (body), 0));
2772 /* If condition now has fixed value, replace the IF_THEN_ELSE
2773 with its then-operand or its else-operand. */
2774 if (result == 1)
2775 SET_SRC (body) = XEXP (SET_SRC (body), 1);
2776 if (result == -1)
2777 SET_SRC (body) = XEXP (SET_SRC (body), 2);
2779 /* The jump is now either unconditional or a no-op.
2780 If it has become a no-op, don't try to output it.
2781 (It would not be recognized.) */
2782 if (SET_SRC (body) == pc_rtx)
2784 PUT_CODE (insn, NOTE);
2785 NOTE_LINE_NUMBER (insn) = NOTE_INSN_DELETED;
2786 NOTE_SOURCE_FILE (insn) = 0;
2787 break;
2789 else if (GET_CODE (SET_SRC (body)) == RETURN)
2790 /* Replace (set (pc) (return)) with (return). */
2791 PATTERN (insn) = body = SET_SRC (body);
2793 /* Rerecognize the instruction if it has changed. */
2794 if (result != 0)
2795 INSN_CODE (insn) = -1;
2798 /* Make same adjustments to instructions that examine the
2799 condition codes without jumping and instructions that
2800 handle conditional moves (if this machine has either one). */
2802 if (cc_status.flags != 0
2803 && set != 0)
2805 rtx cond_rtx, then_rtx, else_rtx;
2807 if (GET_CODE (insn) != JUMP_INSN
2808 && GET_CODE (SET_SRC (set)) == IF_THEN_ELSE)
2810 cond_rtx = XEXP (SET_SRC (set), 0);
2811 then_rtx = XEXP (SET_SRC (set), 1);
2812 else_rtx = XEXP (SET_SRC (set), 2);
2814 else
2816 cond_rtx = SET_SRC (set);
2817 then_rtx = const_true_rtx;
2818 else_rtx = const0_rtx;
2821 switch (GET_CODE (cond_rtx))
2823 case GTU:
2824 case GT:
2825 case LTU:
2826 case LT:
2827 case GEU:
2828 case GE:
2829 case LEU:
2830 case LE:
2831 case EQ:
2832 case NE:
2834 register int result;
2835 if (XEXP (cond_rtx, 0) != cc0_rtx)
2836 break;
2837 result = alter_cond (cond_rtx);
2838 if (result == 1)
2839 validate_change (insn, &SET_SRC (set), then_rtx, 0);
2840 else if (result == -1)
2841 validate_change (insn, &SET_SRC (set), else_rtx, 0);
2842 else if (result == 2)
2843 INSN_CODE (insn) = -1;
2844 if (SET_DEST (set) == SET_SRC (set))
2846 PUT_CODE (insn, NOTE);
2847 NOTE_LINE_NUMBER (insn) = NOTE_INSN_DELETED;
2848 NOTE_SOURCE_FILE (insn) = 0;
2851 break;
2853 default:
2854 break;
2858 #endif
2860 #ifdef HAVE_peephole
2861 /* Do machine-specific peephole optimizations if desired. */
2863 if (optimize && !flag_no_peephole && !nopeepholes)
2865 rtx next = peephole (insn);
2866 /* When peepholing, if there were notes within the peephole,
2867 emit them before the peephole. */
2868 if (next != 0 && next != NEXT_INSN (insn))
2870 rtx prev = PREV_INSN (insn);
2871 rtx note;
2873 for (note = NEXT_INSN (insn); note != next;
2874 note = NEXT_INSN (note))
2875 final_scan_insn (note, file, optimize, prescan, nopeepholes);
2877 /* In case this is prescan, put the notes
2878 in proper position for later rescan. */
2879 note = NEXT_INSN (insn);
2880 PREV_INSN (note) = prev;
2881 NEXT_INSN (prev) = note;
2882 NEXT_INSN (PREV_INSN (next)) = insn;
2883 PREV_INSN (insn) = PREV_INSN (next);
2884 NEXT_INSN (insn) = next;
2885 PREV_INSN (next) = insn;
2888 /* PEEPHOLE might have changed this. */
2889 body = PATTERN (insn);
2891 #endif
2893 /* Try to recognize the instruction.
2894 If successful, verify that the operands satisfy the
2895 constraints for the instruction. Crash if they don't,
2896 since `reload' should have changed them so that they do. */
2898 insn_code_number = recog_memoized (insn);
2899 cleanup_subreg_operands (insn);
2901 /* Dump the insn in the assembly for debugging. */
2902 if (flag_dump_rtl_in_asm)
2904 print_rtx_head = ASM_COMMENT_START;
2905 print_rtl_single (asm_out_file, insn);
2906 print_rtx_head = "";
2909 if (! constrain_operands_cached (1))
2910 fatal_insn_not_found (insn);
2912 /* Some target machines need to prescan each insn before
2913 it is output. */
2915 #ifdef FINAL_PRESCAN_INSN
2916 FINAL_PRESCAN_INSN (insn, recog_data.operand, recog_data.n_operands);
2917 #endif
2919 #ifdef HAVE_conditional_execution
2920 if (GET_CODE (PATTERN (insn)) == COND_EXEC)
2921 current_insn_predicate = COND_EXEC_TEST (PATTERN (insn));
2922 else
2923 current_insn_predicate = NULL_RTX;
2924 #endif
2926 #ifdef HAVE_cc0
2927 cc_prev_status = cc_status;
2929 /* Update `cc_status' for this instruction.
2930 The instruction's output routine may change it further.
2931 If the output routine for a jump insn needs to depend
2932 on the cc status, it should look at cc_prev_status. */
2934 NOTICE_UPDATE_CC (body, insn);
2935 #endif
2937 current_output_insn = debug_insn = insn;
2939 #if defined (DWARF2_UNWIND_INFO)
2940 /* If we push arguments, we want to know where the calls are. */
2941 if (!ACCUMULATE_OUTGOING_ARGS && GET_CODE (insn) == CALL_INSN
2942 && dwarf2out_do_frame ())
2943 dwarf2out_frame_debug (insn);
2944 #endif
2946 /* Find the proper template for this insn. */
2947 template = get_insn_template (insn_code_number, insn);
2949 /* If the C code returns 0, it means that it is a jump insn
2950 which follows a deleted test insn, and that test insn
2951 needs to be reinserted. */
2952 if (template == 0)
2954 rtx prev;
2956 if (prev_nonnote_insn (insn) != last_ignored_compare)
2957 abort ();
2958 new_block = 0;
2960 /* We have already processed the notes between the setter and
2961 the user. Make sure we don't process them again, this is
2962 particularly important if one of the notes is a block
2963 scope note or an EH note. */
2964 for (prev = insn;
2965 prev != last_ignored_compare;
2966 prev = PREV_INSN (prev))
2968 if (GET_CODE (prev) == NOTE)
2970 NOTE_LINE_NUMBER (prev) = NOTE_INSN_DELETED;
2971 NOTE_SOURCE_FILE (prev) = 0;
2975 return prev;
2978 /* If the template is the string "#", it means that this insn must
2979 be split. */
2980 if (template[0] == '#' && template[1] == '\0')
2982 rtx new = try_split (body, insn, 0);
2984 /* If we didn't split the insn, go away. */
2985 if (new == insn && PATTERN (new) == body)
2986 fatal_insn ("Could not split insn", insn);
2988 #ifdef HAVE_ATTR_length
2989 /* This instruction should have been split in shorten_branches,
2990 to ensure that we would have valid length info for the
2991 splitees. */
2992 abort ();
2993 #endif
2995 new_block = 0;
2996 return new;
2999 if (prescan > 0)
3000 break;
3002 #ifdef IA64_UNWIND_INFO
3003 IA64_UNWIND_EMIT (asm_out_file, insn);
3004 #endif
3005 /* Output assembler code from the template. */
3007 output_asm_insn (template, recog_data.operand);
3009 #if defined (DWARF2_UNWIND_INFO)
3010 /* If we push arguments, we need to check all insns for stack
3011 adjustments. */
3012 if (!ACCUMULATE_OUTGOING_ARGS)
3014 if (GET_CODE (insn) == INSN && dwarf2out_do_frame ())
3015 dwarf2out_frame_debug (insn);
3017 else
3019 #if defined (HAVE_prologue)
3020 /* If this insn is part of the prologue, emit DWARF v2
3021 call frame info. */
3022 if (RTX_FRAME_RELATED_P (insn) && dwarf2out_do_frame ())
3023 dwarf2out_frame_debug (insn);
3024 #endif
3026 #endif
3028 #if 0
3029 /* It's not at all clear why we did this and doing so interferes
3030 with tests we'd like to do to use REG_WAS_0 notes, so let's try
3031 with this out. */
3033 /* Mark this insn as having been output. */
3034 INSN_DELETED_P (insn) = 1;
3035 #endif
3037 current_output_insn = debug_insn = 0;
3040 return NEXT_INSN (insn);
3043 /* Output debugging info to the assembler file FILE
3044 based on the NOTE-insn INSN, assumed to be a line number. */
3046 static void
3047 output_source_line (file, insn)
3048 FILE *file ATTRIBUTE_UNUSED;
3049 rtx insn;
3051 register const char *filename = NOTE_SOURCE_FILE (insn);
3053 /* Remember filename for basic block profiling.
3054 Filenames are allocated on the permanent obstack
3055 or are passed in ARGV, so we don't have to save
3056 the string. */
3058 if (profile_block_flag && last_filename != filename)
3059 bb_file_label_num = add_bb_string (filename, TRUE);
3061 last_filename = filename;
3062 last_linenum = NOTE_LINE_NUMBER (insn);
3063 high_block_linenum = MAX (last_linenum, high_block_linenum);
3064 high_function_linenum = MAX (last_linenum, high_function_linenum);
3066 if (write_symbols != NO_DEBUG)
3068 #ifdef SDB_DEBUGGING_INFO
3069 if (write_symbols == SDB_DEBUG
3070 #if 0 /* People like having line numbers even in wrong file! */
3071 /* COFF can't handle multiple source files--lose, lose. */
3072 && !strcmp (filename, main_input_filename)
3073 #endif
3074 /* COFF relative line numbers must be positive. */
3075 && last_linenum > sdb_begin_function_line)
3077 #ifdef ASM_OUTPUT_SOURCE_LINE
3078 ASM_OUTPUT_SOURCE_LINE (file, last_linenum);
3079 #else
3080 fprintf (file, "\t.ln\t%d\n",
3081 ((sdb_begin_function_line > -1)
3082 ? last_linenum - sdb_begin_function_line : 1));
3083 #endif
3085 #endif
3087 #if defined (DBX_DEBUGGING_INFO)
3088 if (write_symbols == DBX_DEBUG)
3089 dbxout_source_line (file, filename, NOTE_LINE_NUMBER (insn));
3090 #endif
3092 #if defined (XCOFF_DEBUGGING_INFO)
3093 if (write_symbols == XCOFF_DEBUG)
3094 xcoffout_source_line (file, filename, insn);
3095 #endif
3097 #ifdef DWARF_DEBUGGING_INFO
3098 if (write_symbols == DWARF_DEBUG)
3099 dwarfout_line (filename, NOTE_LINE_NUMBER (insn));
3100 #endif
3102 #ifdef DWARF2_DEBUGGING_INFO
3103 if (write_symbols == DWARF2_DEBUG)
3104 dwarf2out_line (filename, NOTE_LINE_NUMBER (insn));
3105 #endif
3109 /* For each operand in INSN, simplify (subreg (reg)) so that it refers
3110 directly to the desired hard register. */
3112 void
3113 cleanup_subreg_operands (insn)
3114 rtx insn;
3116 int i;
3117 extract_insn_cached (insn);
3118 for (i = 0; i < recog_data.n_operands; i++)
3120 if (GET_CODE (recog_data.operand[i]) == SUBREG)
3121 recog_data.operand[i] = alter_subreg (recog_data.operand[i]);
3122 else if (GET_CODE (recog_data.operand[i]) == PLUS
3123 || GET_CODE (recog_data.operand[i]) == MULT)
3124 recog_data.operand[i] = walk_alter_subreg (recog_data.operand[i]);
3127 for (i = 0; i < recog_data.n_dups; i++)
3129 if (GET_CODE (*recog_data.dup_loc[i]) == SUBREG)
3130 *recog_data.dup_loc[i] = alter_subreg (*recog_data.dup_loc[i]);
3131 else if (GET_CODE (*recog_data.dup_loc[i]) == PLUS
3132 || GET_CODE (*recog_data.dup_loc[i]) == MULT)
3133 *recog_data.dup_loc[i] = walk_alter_subreg (*recog_data.dup_loc[i]);
3137 /* If X is a SUBREG, replace it with a REG or a MEM,
3138 based on the thing it is a subreg of. */
3141 alter_subreg (x)
3142 register rtx x;
3144 register rtx y = SUBREG_REG (x);
3146 if (GET_CODE (y) == SUBREG)
3147 y = alter_subreg (y);
3149 /* If reload is operating, we may be replacing inside this SUBREG.
3150 Check for that and make a new one if so. */
3151 if (reload_in_progress && find_replacement (&SUBREG_REG (x)) != 0)
3152 x = copy_rtx (x);
3154 if (GET_CODE (y) == REG)
3156 int regno;
3157 /* If the word size is larger than the size of this register,
3158 adjust the register number to compensate. */
3159 /* ??? Note that this just catches stragglers created by/for
3160 integrate. It would be better if we either caught these
3161 earlier, or kept _all_ subregs until now and eliminate
3162 gen_lowpart and friends. */
3164 #ifdef ALTER_HARD_SUBREG
3165 regno = ALTER_HARD_SUBREG (GET_MODE (x), SUBREG_WORD (x),
3166 GET_MODE (y), REGNO (y));
3167 #else
3168 regno = REGNO (y) + SUBREG_WORD (x);
3169 #endif
3170 PUT_CODE (x, REG);
3171 REGNO (x) = regno;
3172 ORIGINAL_REGNO (x) = ORIGINAL_REGNO (y);
3173 /* This field has a different meaning for REGs and SUBREGs. Make sure
3174 to clear it! */
3175 x->used = 0;
3177 else if (GET_CODE (y) == MEM)
3179 register int offset = SUBREG_WORD (x) * UNITS_PER_WORD;
3181 if (BYTES_BIG_ENDIAN)
3182 offset -= (MIN (UNITS_PER_WORD, GET_MODE_SIZE (GET_MODE (x)))
3183 - MIN (UNITS_PER_WORD, GET_MODE_SIZE (GET_MODE (y))));
3184 PUT_CODE (x, MEM);
3185 MEM_COPY_ATTRIBUTES (x, y);
3186 XEXP (x, 0) = plus_constant (XEXP (y, 0), offset);
3189 return x;
3192 /* Do alter_subreg on all the SUBREGs contained in X. */
3194 static rtx
3195 walk_alter_subreg (x)
3196 rtx x;
3198 switch (GET_CODE (x))
3200 case PLUS:
3201 case MULT:
3202 XEXP (x, 0) = walk_alter_subreg (XEXP (x, 0));
3203 XEXP (x, 1) = walk_alter_subreg (XEXP (x, 1));
3204 break;
3206 case MEM:
3207 XEXP (x, 0) = walk_alter_subreg (XEXP (x, 0));
3208 break;
3210 case SUBREG:
3211 return alter_subreg (x);
3213 default:
3214 break;
3217 return x;
3220 #ifdef HAVE_cc0
3222 /* Given BODY, the body of a jump instruction, alter the jump condition
3223 as required by the bits that are set in cc_status.flags.
3224 Not all of the bits there can be handled at this level in all cases.
3226 The value is normally 0.
3227 1 means that the condition has become always true.
3228 -1 means that the condition has become always false.
3229 2 means that COND has been altered. */
3231 static int
3232 alter_cond (cond)
3233 register rtx cond;
3235 int value = 0;
3237 if (cc_status.flags & CC_REVERSED)
3239 value = 2;
3240 PUT_CODE (cond, swap_condition (GET_CODE (cond)));
3243 if (cc_status.flags & CC_INVERTED)
3245 value = 2;
3246 PUT_CODE (cond, reverse_condition (GET_CODE (cond)));
3249 if (cc_status.flags & CC_NOT_POSITIVE)
3250 switch (GET_CODE (cond))
3252 case LE:
3253 case LEU:
3254 case GEU:
3255 /* Jump becomes unconditional. */
3256 return 1;
3258 case GT:
3259 case GTU:
3260 case LTU:
3261 /* Jump becomes no-op. */
3262 return -1;
3264 case GE:
3265 PUT_CODE (cond, EQ);
3266 value = 2;
3267 break;
3269 case LT:
3270 PUT_CODE (cond, NE);
3271 value = 2;
3272 break;
3274 default:
3275 break;
3278 if (cc_status.flags & CC_NOT_NEGATIVE)
3279 switch (GET_CODE (cond))
3281 case GE:
3282 case GEU:
3283 /* Jump becomes unconditional. */
3284 return 1;
3286 case LT:
3287 case LTU:
3288 /* Jump becomes no-op. */
3289 return -1;
3291 case LE:
3292 case LEU:
3293 PUT_CODE (cond, EQ);
3294 value = 2;
3295 break;
3297 case GT:
3298 case GTU:
3299 PUT_CODE (cond, NE);
3300 value = 2;
3301 break;
3303 default:
3304 break;
3307 if (cc_status.flags & CC_NO_OVERFLOW)
3308 switch (GET_CODE (cond))
3310 case GEU:
3311 /* Jump becomes unconditional. */
3312 return 1;
3314 case LEU:
3315 PUT_CODE (cond, EQ);
3316 value = 2;
3317 break;
3319 case GTU:
3320 PUT_CODE (cond, NE);
3321 value = 2;
3322 break;
3324 case LTU:
3325 /* Jump becomes no-op. */
3326 return -1;
3328 default:
3329 break;
3332 if (cc_status.flags & (CC_Z_IN_NOT_N | CC_Z_IN_N))
3333 switch (GET_CODE (cond))
3335 default:
3336 abort ();
3338 case NE:
3339 PUT_CODE (cond, cc_status.flags & CC_Z_IN_N ? GE : LT);
3340 value = 2;
3341 break;
3343 case EQ:
3344 PUT_CODE (cond, cc_status.flags & CC_Z_IN_N ? LT : GE);
3345 value = 2;
3346 break;
3349 if (cc_status.flags & CC_NOT_SIGNED)
3350 /* The flags are valid if signed condition operators are converted
3351 to unsigned. */
3352 switch (GET_CODE (cond))
3354 case LE:
3355 PUT_CODE (cond, LEU);
3356 value = 2;
3357 break;
3359 case LT:
3360 PUT_CODE (cond, LTU);
3361 value = 2;
3362 break;
3364 case GT:
3365 PUT_CODE (cond, GTU);
3366 value = 2;
3367 break;
3369 case GE:
3370 PUT_CODE (cond, GEU);
3371 value = 2;
3372 break;
3374 default:
3375 break;
3378 return value;
3380 #endif
3382 /* Report inconsistency between the assembler template and the operands.
3383 In an `asm', it's the user's fault; otherwise, the compiler's fault. */
3385 void
3386 output_operand_lossage (msgid)
3387 const char *msgid;
3389 if (this_is_asm_operands)
3390 error_for_asm (this_is_asm_operands, "invalid `asm': %s", _(msgid));
3391 else
3393 error ("output_operand: %s", _(msgid));
3394 abort ();
3398 /* Output of assembler code from a template, and its subroutines. */
3400 /* Output text from TEMPLATE to the assembler output file,
3401 obeying %-directions to substitute operands taken from
3402 the vector OPERANDS.
3404 %N (for N a digit) means print operand N in usual manner.
3405 %lN means require operand N to be a CODE_LABEL or LABEL_REF
3406 and print the label name with no punctuation.
3407 %cN means require operand N to be a constant
3408 and print the constant expression with no punctuation.
3409 %aN means expect operand N to be a memory address
3410 (not a memory reference!) and print a reference
3411 to that address.
3412 %nN means expect operand N to be a constant
3413 and print a constant expression for minus the value
3414 of the operand, with no other punctuation. */
3416 static void
3417 output_asm_name ()
3419 if (flag_print_asm_name)
3421 /* Annotate the assembly with a comment describing the pattern and
3422 alternative used. */
3423 if (debug_insn)
3425 register int num = INSN_CODE (debug_insn);
3426 fprintf (asm_out_file, "\t%s %d\t%s",
3427 ASM_COMMENT_START, INSN_UID (debug_insn),
3428 insn_data[num].name);
3429 if (insn_data[num].n_alternatives > 1)
3430 fprintf (asm_out_file, "/%d", which_alternative + 1);
3431 #ifdef HAVE_ATTR_length
3432 fprintf (asm_out_file, "\t[length = %d]",
3433 get_attr_length (debug_insn));
3434 #endif
3435 /* Clear this so only the first assembler insn
3436 of any rtl insn will get the special comment for -dp. */
3437 debug_insn = 0;
3442 void
3443 output_asm_insn (template, operands)
3444 const char *template;
3445 rtx *operands;
3447 register const char *p;
3448 register int c;
3450 /* An insn may return a null string template
3451 in a case where no assembler code is needed. */
3452 if (*template == 0)
3453 return;
3455 p = template;
3456 putc ('\t', asm_out_file);
3458 #ifdef ASM_OUTPUT_OPCODE
3459 ASM_OUTPUT_OPCODE (asm_out_file, p);
3460 #endif
3462 while ((c = *p++))
3463 switch (c)
3465 case '\n':
3466 output_asm_name ();
3467 putc (c, asm_out_file);
3468 #ifdef ASM_OUTPUT_OPCODE
3469 while ((c = *p) == '\t')
3471 putc (c, asm_out_file);
3472 p++;
3474 ASM_OUTPUT_OPCODE (asm_out_file, p);
3475 #endif
3476 break;
3478 #ifdef ASSEMBLER_DIALECT
3479 case '{':
3481 register int i;
3483 /* If we want the first dialect, do nothing. Otherwise, skip
3484 DIALECT_NUMBER of strings ending with '|'. */
3485 for (i = 0; i < dialect_number; i++)
3487 while (*p && *p != '}' && *p++ != '|')
3489 if (*p == '}')
3490 break;
3491 if (*p == '|')
3492 p++;
3495 break;
3497 case '|':
3498 /* Skip to close brace. */
3499 while (*p && *p++ != '}')
3501 break;
3503 case '}':
3504 break;
3505 #endif
3507 case '%':
3508 /* %% outputs a single %. */
3509 if (*p == '%')
3511 p++;
3512 putc (c, asm_out_file);
3514 /* %= outputs a number which is unique to each insn in the entire
3515 compilation. This is useful for making local labels that are
3516 referred to more than once in a given insn. */
3517 else if (*p == '=')
3519 p++;
3520 fprintf (asm_out_file, "%d", insn_counter);
3522 /* % followed by a letter and some digits
3523 outputs an operand in a special way depending on the letter.
3524 Letters `acln' are implemented directly.
3525 Other letters are passed to `output_operand' so that
3526 the PRINT_OPERAND macro can define them. */
3527 else if (ISLOWER (*p) || ISUPPER (*p))
3529 int letter = *p++;
3530 c = atoi (p);
3532 if (! (*p >= '0' && *p <= '9'))
3533 output_operand_lossage ("operand number missing after %-letter");
3534 else if (this_is_asm_operands && (c < 0 || (unsigned int) c >= insn_noperands))
3535 output_operand_lossage ("operand number out of range");
3536 else if (letter == 'l')
3537 output_asm_label (operands[c]);
3538 else if (letter == 'a')
3539 output_address (operands[c]);
3540 else if (letter == 'c')
3542 if (CONSTANT_ADDRESS_P (operands[c]))
3543 output_addr_const (asm_out_file, operands[c]);
3544 else
3545 output_operand (operands[c], 'c');
3547 else if (letter == 'n')
3549 if (GET_CODE (operands[c]) == CONST_INT)
3550 fprintf (asm_out_file, HOST_WIDE_INT_PRINT_DEC,
3551 - INTVAL (operands[c]));
3552 else
3554 putc ('-', asm_out_file);
3555 output_addr_const (asm_out_file, operands[c]);
3558 else
3559 output_operand (operands[c], letter);
3561 while ((c = *p) >= '0' && c <= '9')
3562 p++;
3564 /* % followed by a digit outputs an operand the default way. */
3565 else if (*p >= '0' && *p <= '9')
3567 c = atoi (p);
3568 if (this_is_asm_operands
3569 && (c < 0 || (unsigned int) c >= insn_noperands))
3570 output_operand_lossage ("operand number out of range");
3571 else
3572 output_operand (operands[c], 0);
3573 while ((c = *p) >= '0' && c <= '9')
3574 p++;
3576 /* % followed by punctuation: output something for that
3577 punctuation character alone, with no operand.
3578 The PRINT_OPERAND macro decides what is actually done. */
3579 #ifdef PRINT_OPERAND_PUNCT_VALID_P
3580 else if (PRINT_OPERAND_PUNCT_VALID_P ((unsigned char) *p))
3581 output_operand (NULL_RTX, *p++);
3582 #endif
3583 else
3584 output_operand_lossage ("invalid %%-code");
3585 break;
3587 default:
3588 putc (c, asm_out_file);
3591 output_asm_name ();
3593 putc ('\n', asm_out_file);
3596 /* Output a LABEL_REF, or a bare CODE_LABEL, as an assembler symbol. */
3598 void
3599 output_asm_label (x)
3600 rtx x;
3602 char buf[256];
3604 if (GET_CODE (x) == LABEL_REF)
3605 x = XEXP (x, 0);
3606 if (GET_CODE (x) == CODE_LABEL
3607 || (GET_CODE (x) == NOTE
3608 && NOTE_LINE_NUMBER (x) == NOTE_INSN_DELETED_LABEL))
3609 ASM_GENERATE_INTERNAL_LABEL (buf, "L", CODE_LABEL_NUMBER (x));
3610 else
3611 output_operand_lossage ("`%l' operand isn't a label");
3613 assemble_name (asm_out_file, buf);
3616 /* Print operand X using machine-dependent assembler syntax.
3617 The macro PRINT_OPERAND is defined just to control this function.
3618 CODE is a non-digit that preceded the operand-number in the % spec,
3619 such as 'z' if the spec was `%z3'. CODE is 0 if there was no char
3620 between the % and the digits.
3621 When CODE is a non-letter, X is 0.
3623 The meanings of the letters are machine-dependent and controlled
3624 by PRINT_OPERAND. */
3626 static void
3627 output_operand (x, code)
3628 rtx x;
3629 int code ATTRIBUTE_UNUSED;
3631 if (x && GET_CODE (x) == SUBREG)
3632 x = alter_subreg (x);
3634 /* If X is a pseudo-register, abort now rather than writing trash to the
3635 assembler file. */
3637 if (x && GET_CODE (x) == REG && REGNO (x) >= FIRST_PSEUDO_REGISTER)
3638 abort ();
3640 PRINT_OPERAND (asm_out_file, x, code);
3643 /* Print a memory reference operand for address X
3644 using machine-dependent assembler syntax.
3645 The macro PRINT_OPERAND_ADDRESS exists just to control this function. */
3647 void
3648 output_address (x)
3649 rtx x;
3651 walk_alter_subreg (x);
3652 PRINT_OPERAND_ADDRESS (asm_out_file, x);
3655 /* Print an integer constant expression in assembler syntax.
3656 Addition and subtraction are the only arithmetic
3657 that may appear in these expressions. */
3659 void
3660 output_addr_const (file, x)
3661 FILE *file;
3662 rtx x;
3664 char buf[256];
3666 restart:
3667 switch (GET_CODE (x))
3669 case PC:
3670 if (flag_pic)
3671 putc ('.', file);
3672 else
3673 abort ();
3674 break;
3676 case SYMBOL_REF:
3677 #ifdef ASM_OUTPUT_SYMBOL_REF
3678 ASM_OUTPUT_SYMBOL_REF (file, x);
3679 #else
3680 assemble_name (file, XSTR (x, 0));
3681 #endif
3682 break;
3684 case LABEL_REF:
3685 x = XEXP (x, 0);
3686 /* Fall through. */
3687 case CODE_LABEL:
3688 ASM_GENERATE_INTERNAL_LABEL (buf, "L", CODE_LABEL_NUMBER (x));
3689 assemble_name (file, buf);
3690 break;
3692 case CONST_INT:
3693 fprintf (file, HOST_WIDE_INT_PRINT_DEC, INTVAL (x));
3694 break;
3696 case CONST:
3697 /* This used to output parentheses around the expression,
3698 but that does not work on the 386 (either ATT or BSD assembler). */
3699 output_addr_const (file, XEXP (x, 0));
3700 break;
3702 case CONST_DOUBLE:
3703 if (GET_MODE (x) == VOIDmode)
3705 /* We can use %d if the number is one word and positive. */
3706 if (CONST_DOUBLE_HIGH (x))
3707 fprintf (file, HOST_WIDE_INT_PRINT_DOUBLE_HEX,
3708 CONST_DOUBLE_HIGH (x), CONST_DOUBLE_LOW (x));
3709 else if (CONST_DOUBLE_LOW (x) < 0)
3710 fprintf (file, HOST_WIDE_INT_PRINT_HEX, CONST_DOUBLE_LOW (x));
3711 else
3712 fprintf (file, HOST_WIDE_INT_PRINT_DEC, CONST_DOUBLE_LOW (x));
3714 else
3715 /* We can't handle floating point constants;
3716 PRINT_OPERAND must handle them. */
3717 output_operand_lossage ("floating constant misused");
3718 break;
3720 case PLUS:
3721 /* Some assemblers need integer constants to appear last (eg masm). */
3722 if (GET_CODE (XEXP (x, 0)) == CONST_INT)
3724 output_addr_const (file, XEXP (x, 1));
3725 if (INTVAL (XEXP (x, 0)) >= 0)
3726 fprintf (file, "+");
3727 output_addr_const (file, XEXP (x, 0));
3729 else
3731 output_addr_const (file, XEXP (x, 0));
3732 if (GET_CODE (XEXP (x, 1)) != CONST_INT
3733 || INTVAL (XEXP (x, 1)) >= 0)
3734 fprintf (file, "+");
3735 output_addr_const (file, XEXP (x, 1));
3737 break;
3739 case MINUS:
3740 /* Avoid outputting things like x-x or x+5-x,
3741 since some assemblers can't handle that. */
3742 x = simplify_subtraction (x);
3743 if (GET_CODE (x) != MINUS)
3744 goto restart;
3746 output_addr_const (file, XEXP (x, 0));
3747 fprintf (file, "-");
3748 if ((GET_CODE (XEXP (x, 1)) == CONST_INT
3749 && INTVAL (XEXP (x, 1)) < 0)
3750 || GET_CODE (XEXP (x, 1)) != CONST_INT)
3752 fprintf (file, "%s", ASM_OPEN_PAREN);
3753 output_addr_const (file, XEXP (x, 1));
3754 fprintf (file, "%s", ASM_CLOSE_PAREN);
3756 else
3757 output_addr_const (file, XEXP (x, 1));
3758 break;
3760 case ZERO_EXTEND:
3761 case SIGN_EXTEND:
3762 output_addr_const (file, XEXP (x, 0));
3763 break;
3765 default:
3766 #ifdef OUTPUT_ADDR_CONST_EXTRA
3767 OUTPUT_ADDR_CONST_EXTRA (file, x, fail);
3768 break;
3770 fail:
3771 #endif
3772 output_operand_lossage ("invalid expression as operand");
3776 /* A poor man's fprintf, with the added features of %I, %R, %L, and %U.
3777 %R prints the value of REGISTER_PREFIX.
3778 %L prints the value of LOCAL_LABEL_PREFIX.
3779 %U prints the value of USER_LABEL_PREFIX.
3780 %I prints the value of IMMEDIATE_PREFIX.
3781 %O runs ASM_OUTPUT_OPCODE to transform what follows in the string.
3782 Also supported are %d, %x, %s, %e, %f, %g and %%.
3784 We handle alternate assembler dialects here, just like output_asm_insn. */
3786 void
3787 asm_fprintf VPARAMS ((FILE *file, const char *p, ...))
3789 #ifndef ANSI_PROTOTYPES
3790 FILE *file;
3791 const char *p;
3792 #endif
3793 va_list argptr;
3794 char buf[10];
3795 char *q, c;
3797 VA_START (argptr, p);
3799 #ifndef ANSI_PROTOTYPES
3800 file = va_arg (argptr, FILE *);
3801 p = va_arg (argptr, const char *);
3802 #endif
3804 buf[0] = '%';
3806 while ((c = *p++))
3807 switch (c)
3809 #ifdef ASSEMBLER_DIALECT
3810 case '{':
3812 int i;
3814 /* If we want the first dialect, do nothing. Otherwise, skip
3815 DIALECT_NUMBER of strings ending with '|'. */
3816 for (i = 0; i < dialect_number; i++)
3818 while (*p && *p++ != '|')
3821 if (*p == '|')
3822 p++;
3825 break;
3827 case '|':
3828 /* Skip to close brace. */
3829 while (*p && *p++ != '}')
3831 break;
3833 case '}':
3834 break;
3835 #endif
3837 case '%':
3838 c = *p++;
3839 q = &buf[1];
3840 while ((c >= '0' && c <= '9') || c == '.')
3842 *q++ = c;
3843 c = *p++;
3845 switch (c)
3847 case '%':
3848 fprintf (file, "%%");
3849 break;
3851 case 'd': case 'i': case 'u':
3852 case 'x': case 'p': case 'X':
3853 case 'o':
3854 *q++ = c;
3855 *q = 0;
3856 fprintf (file, buf, va_arg (argptr, int));
3857 break;
3859 case 'w':
3860 /* This is a prefix to the 'd', 'i', 'u', 'x', 'p', and 'X' cases,
3861 but we do not check for those cases. It means that the value
3862 is a HOST_WIDE_INT, which may be either `int' or `long'. */
3864 #if HOST_BITS_PER_WIDE_INT == HOST_BITS_PER_INT
3865 #else
3866 #if HOST_BITS_PER_WIDE_INT == HOST_BITS_PER_LONG
3867 *q++ = 'l';
3868 #else
3869 *q++ = 'l';
3870 *q++ = 'l';
3871 #endif
3872 #endif
3874 *q++ = *p++;
3875 *q = 0;
3876 fprintf (file, buf, va_arg (argptr, HOST_WIDE_INT));
3877 break;
3879 case 'l':
3880 *q++ = c;
3881 *q++ = *p++;
3882 *q = 0;
3883 fprintf (file, buf, va_arg (argptr, long));
3884 break;
3886 case 'e':
3887 case 'f':
3888 case 'g':
3889 *q++ = c;
3890 *q = 0;
3891 fprintf (file, buf, va_arg (argptr, double));
3892 break;
3894 case 's':
3895 *q++ = c;
3896 *q = 0;
3897 fprintf (file, buf, va_arg (argptr, char *));
3898 break;
3900 case 'O':
3901 #ifdef ASM_OUTPUT_OPCODE
3902 ASM_OUTPUT_OPCODE (asm_out_file, p);
3903 #endif
3904 break;
3906 case 'R':
3907 #ifdef REGISTER_PREFIX
3908 fprintf (file, "%s", REGISTER_PREFIX);
3909 #endif
3910 break;
3912 case 'I':
3913 #ifdef IMMEDIATE_PREFIX
3914 fprintf (file, "%s", IMMEDIATE_PREFIX);
3915 #endif
3916 break;
3918 case 'L':
3919 #ifdef LOCAL_LABEL_PREFIX
3920 fprintf (file, "%s", LOCAL_LABEL_PREFIX);
3921 #endif
3922 break;
3924 case 'U':
3925 fputs (user_label_prefix, file);
3926 break;
3928 #ifdef ASM_FPRINTF_EXTENSIONS
3929 /* Upper case letters are reserved for general use by asm_fprintf
3930 and so are not available to target specific code. In order to
3931 prevent the ASM_FPRINTF_EXTENSIONS macro from using them then,
3932 they are defined here. As they get turned into real extensions
3933 to asm_fprintf they should be removed from this list. */
3934 case 'A': case 'B': case 'C': case 'D': case 'E':
3935 case 'F': case 'G': case 'H': case 'J': case 'K':
3936 case 'M': case 'N': case 'P': case 'Q': case 'S':
3937 case 'T': case 'V': case 'W': case 'Y': case 'Z':
3938 break;
3940 ASM_FPRINTF_EXTENSIONS (file, argptr, p)
3941 #endif
3942 default:
3943 abort ();
3945 break;
3947 default:
3948 fputc (c, file);
3950 va_end (argptr);
3953 /* Split up a CONST_DOUBLE or integer constant rtx
3954 into two rtx's for single words,
3955 storing in *FIRST the word that comes first in memory in the target
3956 and in *SECOND the other. */
3958 void
3959 split_double (value, first, second)
3960 rtx value;
3961 rtx *first, *second;
3963 if (GET_CODE (value) == CONST_INT)
3965 if (HOST_BITS_PER_WIDE_INT >= (2 * BITS_PER_WORD))
3967 /* In this case the CONST_INT holds both target words.
3968 Extract the bits from it into two word-sized pieces.
3969 Sign extend each half to HOST_WIDE_INT. */
3970 unsigned HOST_WIDE_INT low, high;
3971 unsigned HOST_WIDE_INT mask, sign_bit, sign_extend;
3973 /* Set sign_bit to the most significant bit of a word. */
3974 sign_bit = 1;
3975 sign_bit <<= BITS_PER_WORD - 1;
3977 /* Set mask so that all bits of the word are set. We could
3978 have used 1 << BITS_PER_WORD instead of basing the
3979 calculation on sign_bit. However, on machines where
3980 HOST_BITS_PER_WIDE_INT == BITS_PER_WORD, it could cause a
3981 compiler warning, even though the code would never be
3982 executed. */
3983 mask = sign_bit << 1;
3984 mask--;
3986 /* Set sign_extend as any remaining bits. */
3987 sign_extend = ~mask;
3989 /* Pick the lower word and sign-extend it. */
3990 low = INTVAL (value);
3991 low &= mask;
3992 if (low & sign_bit)
3993 low |= sign_extend;
3995 /* Pick the higher word, shifted to the least significant
3996 bits, and sign-extend it. */
3997 high = INTVAL (value);
3998 high >>= BITS_PER_WORD - 1;
3999 high >>= 1;
4000 high &= mask;
4001 if (high & sign_bit)
4002 high |= sign_extend;
4004 /* Store the words in the target machine order. */
4005 if (WORDS_BIG_ENDIAN)
4007 *first = GEN_INT (high);
4008 *second = GEN_INT (low);
4010 else
4012 *first = GEN_INT (low);
4013 *second = GEN_INT (high);
4016 else
4018 /* The rule for using CONST_INT for a wider mode
4019 is that we regard the value as signed.
4020 So sign-extend it. */
4021 rtx high = (INTVAL (value) < 0 ? constm1_rtx : const0_rtx);
4022 if (WORDS_BIG_ENDIAN)
4024 *first = high;
4025 *second = value;
4027 else
4029 *first = value;
4030 *second = high;
4034 else if (GET_CODE (value) != CONST_DOUBLE)
4036 if (WORDS_BIG_ENDIAN)
4038 *first = const0_rtx;
4039 *second = value;
4041 else
4043 *first = value;
4044 *second = const0_rtx;
4047 else if (GET_MODE (value) == VOIDmode
4048 /* This is the old way we did CONST_DOUBLE integers. */
4049 || GET_MODE_CLASS (GET_MODE (value)) == MODE_INT)
4051 /* In an integer, the words are defined as most and least significant.
4052 So order them by the target's convention. */
4053 if (WORDS_BIG_ENDIAN)
4055 *first = GEN_INT (CONST_DOUBLE_HIGH (value));
4056 *second = GEN_INT (CONST_DOUBLE_LOW (value));
4058 else
4060 *first = GEN_INT (CONST_DOUBLE_LOW (value));
4061 *second = GEN_INT (CONST_DOUBLE_HIGH (value));
4064 else
4066 #ifdef REAL_ARITHMETIC
4067 REAL_VALUE_TYPE r;
4068 long l[2];
4069 REAL_VALUE_FROM_CONST_DOUBLE (r, value);
4071 /* Note, this converts the REAL_VALUE_TYPE to the target's
4072 format, splits up the floating point double and outputs
4073 exactly 32 bits of it into each of l[0] and l[1] --
4074 not necessarily BITS_PER_WORD bits. */
4075 REAL_VALUE_TO_TARGET_DOUBLE (r, l);
4077 /* If 32 bits is an entire word for the target, but not for the host,
4078 then sign-extend on the host so that the number will look the same
4079 way on the host that it would on the target. See for instance
4080 simplify_unary_operation. The #if is needed to avoid compiler
4081 warnings. */
4083 #if HOST_BITS_PER_LONG > 32
4084 if (BITS_PER_WORD < HOST_BITS_PER_LONG && BITS_PER_WORD == 32)
4086 if (l[0] & ((long) 1 << 31))
4087 l[0] |= ((long) (-1) << 32);
4088 if (l[1] & ((long) 1 << 31))
4089 l[1] |= ((long) (-1) << 32);
4091 #endif
4093 *first = GEN_INT ((HOST_WIDE_INT) l[0]);
4094 *second = GEN_INT ((HOST_WIDE_INT) l[1]);
4095 #else
4096 if ((HOST_FLOAT_FORMAT != TARGET_FLOAT_FORMAT
4097 || HOST_BITS_PER_WIDE_INT != BITS_PER_WORD)
4098 && ! flag_pretend_float)
4099 abort ();
4101 if (
4102 #ifdef HOST_WORDS_BIG_ENDIAN
4103 WORDS_BIG_ENDIAN
4104 #else
4105 ! WORDS_BIG_ENDIAN
4106 #endif
4109 /* Host and target agree => no need to swap. */
4110 *first = GEN_INT (CONST_DOUBLE_LOW (value));
4111 *second = GEN_INT (CONST_DOUBLE_HIGH (value));
4113 else
4115 *second = GEN_INT (CONST_DOUBLE_LOW (value));
4116 *first = GEN_INT (CONST_DOUBLE_HIGH (value));
4118 #endif /* no REAL_ARITHMETIC */
4122 /* Return nonzero if this function has no function calls. */
4125 leaf_function_p ()
4127 rtx insn;
4129 if (profile_flag || profile_block_flag || profile_arc_flag)
4130 return 0;
4132 for (insn = get_insns (); insn; insn = NEXT_INSN (insn))
4134 if (GET_CODE (insn) == CALL_INSN
4135 && ! SIBLING_CALL_P (insn))
4136 return 0;
4137 if (GET_CODE (insn) == INSN
4138 && GET_CODE (PATTERN (insn)) == SEQUENCE
4139 && GET_CODE (XVECEXP (PATTERN (insn), 0, 0)) == CALL_INSN
4140 && ! SIBLING_CALL_P (XVECEXP (PATTERN (insn), 0, 0)))
4141 return 0;
4143 for (insn = current_function_epilogue_delay_list;
4144 insn;
4145 insn = XEXP (insn, 1))
4147 if (GET_CODE (XEXP (insn, 0)) == CALL_INSN
4148 && ! SIBLING_CALL_P (insn))
4149 return 0;
4150 if (GET_CODE (XEXP (insn, 0)) == INSN
4151 && GET_CODE (PATTERN (XEXP (insn, 0))) == SEQUENCE
4152 && GET_CODE (XVECEXP (PATTERN (XEXP (insn, 0)), 0, 0)) == CALL_INSN
4153 && ! SIBLING_CALL_P (XVECEXP (PATTERN (XEXP (insn, 0)), 0, 0)))
4154 return 0;
4157 return 1;
4160 /* On some machines, a function with no call insns
4161 can run faster if it doesn't create its own register window.
4162 When output, the leaf function should use only the "output"
4163 registers. Ordinarily, the function would be compiled to use
4164 the "input" registers to find its arguments; it is a candidate
4165 for leaf treatment if it uses only the "input" registers.
4166 Leaf function treatment means renumbering so the function
4167 uses the "output" registers instead. */
4169 #ifdef LEAF_REGISTERS
4171 /* Return 1 if this function uses only the registers that can be
4172 safely renumbered. */
4175 only_leaf_regs_used ()
4177 int i;
4178 char *permitted_reg_in_leaf_functions = LEAF_REGISTERS;
4180 for (i = 0; i < FIRST_PSEUDO_REGISTER; i++)
4181 if ((regs_ever_live[i] || global_regs[i])
4182 && ! permitted_reg_in_leaf_functions[i])
4183 return 0;
4185 if (current_function_uses_pic_offset_table
4186 && pic_offset_table_rtx != 0
4187 && GET_CODE (pic_offset_table_rtx) == REG
4188 && ! permitted_reg_in_leaf_functions[REGNO (pic_offset_table_rtx)])
4189 return 0;
4191 return 1;
4194 /* Scan all instructions and renumber all registers into those
4195 available in leaf functions. */
4197 static void
4198 leaf_renumber_regs (first)
4199 rtx first;
4201 rtx insn;
4203 /* Renumber only the actual patterns.
4204 The reg-notes can contain frame pointer refs,
4205 and renumbering them could crash, and should not be needed. */
4206 for (insn = first; insn; insn = NEXT_INSN (insn))
4207 if (INSN_P (insn))
4208 leaf_renumber_regs_insn (PATTERN (insn));
4209 for (insn = current_function_epilogue_delay_list;
4210 insn;
4211 insn = XEXP (insn, 1))
4212 if (INSN_P (XEXP (insn, 0)))
4213 leaf_renumber_regs_insn (PATTERN (XEXP (insn, 0)));
4216 /* Scan IN_RTX and its subexpressions, and renumber all regs into those
4217 available in leaf functions. */
4219 void
4220 leaf_renumber_regs_insn (in_rtx)
4221 register rtx in_rtx;
4223 register int i, j;
4224 register const char *format_ptr;
4226 if (in_rtx == 0)
4227 return;
4229 /* Renumber all input-registers into output-registers.
4230 renumbered_regs would be 1 for an output-register;
4231 they */
4233 if (GET_CODE (in_rtx) == REG)
4235 int newreg;
4237 /* Don't renumber the same reg twice. */
4238 if (in_rtx->used)
4239 return;
4241 newreg = REGNO (in_rtx);
4242 /* Don't try to renumber pseudo regs. It is possible for a pseudo reg
4243 to reach here as part of a REG_NOTE. */
4244 if (newreg >= FIRST_PSEUDO_REGISTER)
4246 in_rtx->used = 1;
4247 return;
4249 newreg = LEAF_REG_REMAP (newreg);
4250 if (newreg < 0)
4251 abort ();
4252 regs_ever_live[REGNO (in_rtx)] = 0;
4253 regs_ever_live[newreg] = 1;
4254 REGNO (in_rtx) = newreg;
4255 in_rtx->used = 1;
4258 if (INSN_P (in_rtx))
4260 /* Inside a SEQUENCE, we find insns.
4261 Renumber just the patterns of these insns,
4262 just as we do for the top-level insns. */
4263 leaf_renumber_regs_insn (PATTERN (in_rtx));
4264 return;
4267 format_ptr = GET_RTX_FORMAT (GET_CODE (in_rtx));
4269 for (i = 0; i < GET_RTX_LENGTH (GET_CODE (in_rtx)); i++)
4270 switch (*format_ptr++)
4272 case 'e':
4273 leaf_renumber_regs_insn (XEXP (in_rtx, i));
4274 break;
4276 case 'E':
4277 if (NULL != XVEC (in_rtx, i))
4279 for (j = 0; j < XVECLEN (in_rtx, i); j++)
4280 leaf_renumber_regs_insn (XVECEXP (in_rtx, i, j));
4282 break;
4284 case 'S':
4285 case 's':
4286 case '0':
4287 case 'i':
4288 case 'w':
4289 case 'n':
4290 case 'u':
4291 break;
4293 default:
4294 abort ();
4297 #endif