Daily bump.
[official-gcc.git] / gcc / dwarf2out.c
bloba79339c32d1bade76ef61c203cc56619d5005dca
1 /* Output Dwarf2 format symbol table information from the GNU C compiler.
2 Copyright (C) 1992, 93, 95-98, 1999 Free Software Foundation, Inc.
3 Contributed by Gary Funck (gary@intrepid.com).
4 Derived from DWARF 1 implementation of Ron Guilmette (rfg@monkeys.com).
5 Extensively modified by Jason Merrill (jason@cygnus.com).
7 This file is part of GNU CC.
9 GNU CC is free software; you can redistribute it and/or modify
10 it under the terms of the GNU General Public License as published by
11 the Free Software Foundation; either version 2, or (at your option)
12 any later version.
14 GNU CC is distributed in the hope that it will be useful,
15 but WITHOUT ANY WARRANTY; without even the implied warranty of
16 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 GNU General Public License for more details.
19 You should have received a copy of the GNU General Public License
20 along with GNU CC; see the file COPYING. If not, write to
21 the Free Software Foundation, 59 Temple Place - Suite 330,
22 Boston, MA 02111-1307, USA. */
24 /* The first part of this file deals with the DWARF 2 frame unwind
25 information, which is also used by the GCC efficient exception handling
26 mechanism. The second part, controlled only by an #ifdef
27 DWARF2_DEBUGGING_INFO, deals with the other DWARF 2 debugging
28 information. */
30 #include "config.h"
31 #include "system.h"
32 #include "defaults.h"
33 #include "tree.h"
34 #include "flags.h"
35 #include "rtl.h"
36 #include "hard-reg-set.h"
37 #include "regs.h"
38 #include "insn-config.h"
39 #include "reload.h"
40 #include "output.h"
41 #include "expr.h"
42 #include "except.h"
43 #include "dwarf2.h"
44 #include "dwarf2out.h"
45 #include "toplev.h"
46 #include "dyn-string.h"
48 /* We cannot use <assert.h> in GCC source, since that would include
49 GCC's assert.h, which may not be compatible with the host compiler. */
50 #undef assert
51 #ifdef NDEBUG
52 # define assert(e)
53 #else
54 # define assert(e) do { if (! (e)) abort (); } while (0)
55 #endif
57 /* Decide whether we want to emit frame unwind information for the current
58 translation unit. */
60 int
61 dwarf2out_do_frame ()
63 return (write_symbols == DWARF2_DEBUG
64 #ifdef DWARF2_FRAME_INFO
65 || DWARF2_FRAME_INFO
66 #endif
67 #ifdef DWARF2_UNWIND_INFO
68 || (flag_exceptions && ! exceptions_via_longjmp)
69 #endif
73 #if defined (DWARF2_DEBUGGING_INFO) || defined (DWARF2_UNWIND_INFO)
75 /* How to start an assembler comment. */
76 #ifndef ASM_COMMENT_START
77 #define ASM_COMMENT_START ";#"
78 #endif
80 typedef struct dw_cfi_struct *dw_cfi_ref;
81 typedef struct dw_fde_struct *dw_fde_ref;
82 typedef union dw_cfi_oprnd_struct *dw_cfi_oprnd_ref;
84 /* Call frames are described using a sequence of Call Frame
85 Information instructions. The register number, offset
86 and address fields are provided as possible operands;
87 their use is selected by the opcode field. */
89 typedef union dw_cfi_oprnd_struct
91 unsigned long dw_cfi_reg_num;
92 long int dw_cfi_offset;
93 char *dw_cfi_addr;
95 dw_cfi_oprnd;
97 typedef struct dw_cfi_struct
99 dw_cfi_ref dw_cfi_next;
100 enum dwarf_call_frame_info dw_cfi_opc;
101 dw_cfi_oprnd dw_cfi_oprnd1;
102 dw_cfi_oprnd dw_cfi_oprnd2;
104 dw_cfi_node;
106 /* All call frame descriptions (FDE's) in the GCC generated DWARF
107 refer to a single Common Information Entry (CIE), defined at
108 the beginning of the .debug_frame section. This used of a single
109 CIE obviates the need to keep track of multiple CIE's
110 in the DWARF generation routines below. */
112 typedef struct dw_fde_struct
114 char *dw_fde_begin;
115 char *dw_fde_current_label;
116 char *dw_fde_end;
117 dw_cfi_ref dw_fde_cfi;
119 dw_fde_node;
121 /* Maximum size (in bytes) of an artificially generated label. */
122 #define MAX_ARTIFICIAL_LABEL_BYTES 30
124 /* Make sure we know the sizes of the various types dwarf can describe. These
125 are only defaults. If the sizes are different for your target, you should
126 override these values by defining the appropriate symbols in your tm.h
127 file. */
129 #ifndef CHAR_TYPE_SIZE
130 #define CHAR_TYPE_SIZE BITS_PER_UNIT
131 #endif
132 #ifndef PTR_SIZE
133 #define PTR_SIZE (POINTER_SIZE / BITS_PER_UNIT)
134 #endif
136 /* The size in bytes of a DWARF field indicating an offset or length
137 relative to a debug info section, specified to be 4 bytes in the DWARF-2
138 specification. The SGI/MIPS ABI defines it to be the same as PTR_SIZE. */
140 #ifndef DWARF_OFFSET_SIZE
141 #define DWARF_OFFSET_SIZE 4
142 #endif
144 #define DWARF_VERSION 2
146 /* Round SIZE up to the nearest BOUNDARY. */
147 #define DWARF_ROUND(SIZE,BOUNDARY) \
148 (((SIZE) + (BOUNDARY) - 1) & ~((BOUNDARY) - 1))
150 /* Offsets recorded in opcodes are a multiple of this alignment factor. */
151 #ifdef STACK_GROWS_DOWNWARD
152 #define DWARF_CIE_DATA_ALIGNMENT (-UNITS_PER_WORD)
153 #else
154 #define DWARF_CIE_DATA_ALIGNMENT UNITS_PER_WORD
155 #endif
157 /* A pointer to the base of a table that contains frame description
158 information for each routine. */
159 static dw_fde_ref fde_table;
161 /* Number of elements currently allocated for fde_table. */
162 static unsigned fde_table_allocated;
164 /* Number of elements in fde_table currently in use. */
165 static unsigned fde_table_in_use;
167 /* Size (in elements) of increments by which we may expand the
168 fde_table. */
169 #define FDE_TABLE_INCREMENT 256
171 /* A list of call frame insns for the CIE. */
172 static dw_cfi_ref cie_cfi_head;
174 /* The number of the current function definition for which debugging
175 information is being generated. These numbers range from 1 up to the
176 maximum number of function definitions contained within the current
177 compilation unit. These numbers are used to create unique label id's
178 unique to each function definition. */
179 static unsigned current_funcdef_number = 0;
181 /* Some DWARF extensions (e.g., MIPS/SGI) implement a subprogram
182 attribute that accelerates the lookup of the FDE associated
183 with the subprogram. This variable holds the table index of the FDE
184 associated with the current function (body) definition. */
185 static unsigned current_funcdef_fde;
187 /* Forward declarations for functions defined in this file. */
189 static char *stripattributes PROTO((const char *));
190 static const char *dwarf_cfi_name PROTO((unsigned));
191 static dw_cfi_ref new_cfi PROTO((void));
192 static void add_cfi PROTO((dw_cfi_ref *, dw_cfi_ref));
193 static unsigned long size_of_uleb128 PROTO((unsigned long));
194 static unsigned long size_of_sleb128 PROTO((long));
195 static void output_uleb128 PROTO((unsigned long));
196 static void output_sleb128 PROTO((long));
197 static void add_fde_cfi PROTO((char *, dw_cfi_ref));
198 static void lookup_cfa_1 PROTO((dw_cfi_ref, unsigned long *,
199 long *));
200 static void lookup_cfa PROTO((unsigned long *, long *));
201 static void reg_save PROTO((char *, unsigned, unsigned,
202 long));
203 static void initial_return_save PROTO((rtx));
204 static void output_cfi PROTO((dw_cfi_ref, dw_fde_ref));
205 static void output_call_frame_info PROTO((int));
206 static unsigned reg_number PROTO((rtx));
207 static void dwarf2out_stack_adjust PROTO((rtx));
208 static void dwarf2out_frame_debug_expr PROTO((rtx, char *));
210 /* Definitions of defaults for assembler-dependent names of various
211 pseudo-ops and section names.
212 Theses may be overridden in the tm.h file (if necessary) for a particular
213 assembler. */
215 #ifdef OBJECT_FORMAT_ELF
216 #ifndef UNALIGNED_SHORT_ASM_OP
217 #define UNALIGNED_SHORT_ASM_OP ".2byte"
218 #endif
219 #ifndef UNALIGNED_INT_ASM_OP
220 #define UNALIGNED_INT_ASM_OP ".4byte"
221 #endif
222 #ifndef UNALIGNED_DOUBLE_INT_ASM_OP
223 #define UNALIGNED_DOUBLE_INT_ASM_OP ".8byte"
224 #endif
225 #endif /* OBJECT_FORMAT_ELF */
227 #ifndef ASM_BYTE_OP
228 #define ASM_BYTE_OP ".byte"
229 #endif
231 /* Data and reference forms for relocatable data. */
232 #define DW_FORM_data (DWARF_OFFSET_SIZE == 8 ? DW_FORM_data8 : DW_FORM_data4)
233 #define DW_FORM_ref (DWARF_OFFSET_SIZE == 8 ? DW_FORM_ref8 : DW_FORM_ref4)
235 /* Pseudo-op for defining a new section. */
236 #ifndef SECTION_ASM_OP
237 #define SECTION_ASM_OP ".section"
238 #endif
240 /* The default format used by the ASM_OUTPUT_SECTION macro (see below) to
241 print the SECTION_ASM_OP and the section name. The default here works for
242 almost all svr4 assemblers, except for the sparc, where the section name
243 must be enclosed in double quotes. (See sparcv4.h). */
244 #ifndef SECTION_FORMAT
245 #ifdef PUSHSECTION_FORMAT
246 #define SECTION_FORMAT PUSHSECTION_FORMAT
247 #else
248 #define SECTION_FORMAT "\t%s\t%s\n"
249 #endif
250 #endif
252 #ifndef FRAME_SECTION
253 #define FRAME_SECTION ".debug_frame"
254 #endif
256 #ifndef FUNC_BEGIN_LABEL
257 #define FUNC_BEGIN_LABEL "LFB"
258 #endif
259 #ifndef FUNC_END_LABEL
260 #define FUNC_END_LABEL "LFE"
261 #endif
262 #define CIE_AFTER_SIZE_LABEL "LSCIE"
263 #define CIE_END_LABEL "LECIE"
264 #define CIE_LENGTH_LABEL "LLCIE"
265 #define FDE_AFTER_SIZE_LABEL "LSFDE"
266 #define FDE_END_LABEL "LEFDE"
267 #define FDE_LENGTH_LABEL "LLFDE"
269 /* Definitions of defaults for various types of primitive assembly language
270 output operations. These may be overridden from within the tm.h file,
271 but typically, that is unnecessary. */
273 #ifndef ASM_OUTPUT_SECTION
274 #define ASM_OUTPUT_SECTION(FILE, SECTION) \
275 fprintf ((FILE), SECTION_FORMAT, SECTION_ASM_OP, SECTION)
276 #endif
278 #ifndef ASM_OUTPUT_DWARF_DATA1
279 #define ASM_OUTPUT_DWARF_DATA1(FILE,VALUE) \
280 fprintf ((FILE), "\t%s\t0x%x", ASM_BYTE_OP, (unsigned) (VALUE))
281 #endif
283 #ifndef ASM_OUTPUT_DWARF_DELTA1
284 #define ASM_OUTPUT_DWARF_DELTA1(FILE,LABEL1,LABEL2) \
285 do { fprintf ((FILE), "\t%s\t", ASM_BYTE_OP); \
286 assemble_name (FILE, LABEL1); \
287 fprintf (FILE, "-"); \
288 assemble_name (FILE, LABEL2); \
289 } while (0)
290 #endif
292 #ifdef UNALIGNED_INT_ASM_OP
294 #ifndef UNALIGNED_OFFSET_ASM_OP
295 #define UNALIGNED_OFFSET_ASM_OP \
296 (DWARF_OFFSET_SIZE == 8 ? UNALIGNED_DOUBLE_INT_ASM_OP : UNALIGNED_INT_ASM_OP)
297 #endif
299 #ifndef UNALIGNED_WORD_ASM_OP
300 #define UNALIGNED_WORD_ASM_OP \
301 (PTR_SIZE == 8 ? UNALIGNED_DOUBLE_INT_ASM_OP : UNALIGNED_INT_ASM_OP)
302 #endif
304 #ifndef ASM_OUTPUT_DWARF_DELTA2
305 #define ASM_OUTPUT_DWARF_DELTA2(FILE,LABEL1,LABEL2) \
306 do { fprintf ((FILE), "\t%s\t", UNALIGNED_SHORT_ASM_OP); \
307 assemble_name (FILE, LABEL1); \
308 fprintf (FILE, "-"); \
309 assemble_name (FILE, LABEL2); \
310 } while (0)
311 #endif
313 #ifndef ASM_OUTPUT_DWARF_DELTA4
314 #define ASM_OUTPUT_DWARF_DELTA4(FILE,LABEL1,LABEL2) \
315 do { fprintf ((FILE), "\t%s\t", UNALIGNED_INT_ASM_OP); \
316 assemble_name (FILE, LABEL1); \
317 fprintf (FILE, "-"); \
318 assemble_name (FILE, LABEL2); \
319 } while (0)
320 #endif
322 #ifndef ASM_OUTPUT_DWARF_DELTA
323 #define ASM_OUTPUT_DWARF_DELTA(FILE,LABEL1,LABEL2) \
324 do { fprintf ((FILE), "\t%s\t", UNALIGNED_OFFSET_ASM_OP); \
325 assemble_name (FILE, LABEL1); \
326 fprintf (FILE, "-"); \
327 assemble_name (FILE, LABEL2); \
328 } while (0)
329 #endif
331 #ifndef ASM_OUTPUT_DWARF_ADDR_DELTA
332 #define ASM_OUTPUT_DWARF_ADDR_DELTA(FILE,LABEL1,LABEL2) \
333 do { fprintf ((FILE), "\t%s\t", UNALIGNED_WORD_ASM_OP); \
334 assemble_name (FILE, LABEL1); \
335 fprintf (FILE, "-"); \
336 assemble_name (FILE, LABEL2); \
337 } while (0)
338 #endif
340 #ifndef ASM_OUTPUT_DWARF_ADDR
341 #define ASM_OUTPUT_DWARF_ADDR(FILE,LABEL) \
342 do { fprintf ((FILE), "\t%s\t", UNALIGNED_WORD_ASM_OP); \
343 assemble_name (FILE, LABEL); \
344 } while (0)
345 #endif
347 /* ??? This macro takes an RTX in dwarfout.c and a string in dwarf2out.c.
348 We resolve the conflict by creating a new macro ASM_OUTPUT_DWARF2_ADDR_CONST
349 for ports that want to support both DWARF1 and DWARF2. This needs a better
350 solution. See also the comments in sparc/sp64-elf.h. */
351 #ifdef ASM_OUTPUT_DWARF2_ADDR_CONST
352 #undef ASM_OUTPUT_DWARF_ADDR_CONST
353 #define ASM_OUTPUT_DWARF_ADDR_CONST(FILE,ADDR) \
354 ASM_OUTPUT_DWARF2_ADDR_CONST (FILE, ADDR)
355 #endif
357 #ifndef ASM_OUTPUT_DWARF_ADDR_CONST
358 #define ASM_OUTPUT_DWARF_ADDR_CONST(FILE,ADDR) \
359 fprintf ((FILE), "\t%s\t%s", UNALIGNED_WORD_ASM_OP, (ADDR))
360 #endif
362 #ifndef ASM_OUTPUT_DWARF_OFFSET4
363 #define ASM_OUTPUT_DWARF_OFFSET4(FILE,LABEL) \
364 do { fprintf ((FILE), "\t%s\t", UNALIGNED_INT_ASM_OP); \
365 assemble_name (FILE, LABEL); \
366 } while (0)
367 #endif
369 #ifndef ASM_OUTPUT_DWARF_OFFSET
370 #define ASM_OUTPUT_DWARF_OFFSET(FILE,LABEL) \
371 do { fprintf ((FILE), "\t%s\t", UNALIGNED_OFFSET_ASM_OP); \
372 assemble_name (FILE, LABEL); \
373 } while (0)
374 #endif
376 #ifndef ASM_OUTPUT_DWARF_DATA2
377 #define ASM_OUTPUT_DWARF_DATA2(FILE,VALUE) \
378 fprintf ((FILE), "\t%s\t0x%x", UNALIGNED_SHORT_ASM_OP, (unsigned) (VALUE))
379 #endif
381 #ifndef ASM_OUTPUT_DWARF_DATA4
382 #define ASM_OUTPUT_DWARF_DATA4(FILE,VALUE) \
383 fprintf ((FILE), "\t%s\t0x%x", UNALIGNED_INT_ASM_OP, (unsigned) (VALUE))
384 #endif
386 #ifndef ASM_OUTPUT_DWARF_DATA
387 #define ASM_OUTPUT_DWARF_DATA(FILE,VALUE) \
388 fprintf ((FILE), "\t%s\t0x%lx", UNALIGNED_OFFSET_ASM_OP, \
389 (unsigned long) (VALUE))
390 #endif
392 #ifndef ASM_OUTPUT_DWARF_ADDR_DATA
393 #define ASM_OUTPUT_DWARF_ADDR_DATA(FILE,VALUE) \
394 fprintf ((FILE), "\t%s\t0x%lx", UNALIGNED_WORD_ASM_OP, \
395 (unsigned long) (VALUE))
396 #endif
398 #ifndef ASM_OUTPUT_DWARF_DATA8
399 #define ASM_OUTPUT_DWARF_DATA8(FILE,HIGH_VALUE,LOW_VALUE) \
400 do { \
401 if (WORDS_BIG_ENDIAN) \
403 fprintf ((FILE), "\t%s\t0x%lx\n", UNALIGNED_INT_ASM_OP, (HIGH_VALUE));\
404 fprintf ((FILE), "\t%s\t0x%lx", UNALIGNED_INT_ASM_OP, (LOW_VALUE));\
406 else \
408 fprintf ((FILE), "\t%s\t0x%lx\n", UNALIGNED_INT_ASM_OP, (LOW_VALUE)); \
409 fprintf ((FILE), "\t%s\t0x%lx", UNALIGNED_INT_ASM_OP, (HIGH_VALUE)); \
411 } while (0)
412 #endif
414 #else /* UNALIGNED_INT_ASM_OP */
416 /* We don't have unaligned support, let's hope the normal output works for
417 .debug_frame. */
419 #define ASM_OUTPUT_DWARF_ADDR(FILE,LABEL) \
420 assemble_integer (gen_rtx_SYMBOL_REF (Pmode, LABEL), PTR_SIZE, 1)
422 #define ASM_OUTPUT_DWARF_OFFSET4(FILE,LABEL) \
423 assemble_integer (gen_rtx_SYMBOL_REF (SImode, LABEL), 4, 1)
425 #define ASM_OUTPUT_DWARF_OFFSET(FILE,LABEL) \
426 assemble_integer (gen_rtx_SYMBOL_REF (SImode, LABEL), 4, 1)
428 #define ASM_OUTPUT_DWARF_DELTA2(FILE,LABEL1,LABEL2) \
429 assemble_integer (gen_rtx_MINUS (HImode, \
430 gen_rtx_SYMBOL_REF (Pmode, LABEL1), \
431 gen_rtx_SYMBOL_REF (Pmode, LABEL2)), \
432 2, 1)
434 #define ASM_OUTPUT_DWARF_DELTA4(FILE,LABEL1,LABEL2) \
435 assemble_integer (gen_rtx_MINUS (SImode, \
436 gen_rtx_SYMBOL_REF (Pmode, LABEL1), \
437 gen_rtx_SYMBOL_REF (Pmode, LABEL2)), \
438 4, 1)
440 #define ASM_OUTPUT_DWARF_ADDR_DELTA(FILE,LABEL1,LABEL2) \
441 assemble_integer (gen_rtx_MINUS (Pmode, \
442 gen_rtx_SYMBOL_REF (Pmode, LABEL1), \
443 gen_rtx_SYMBOL_REF (Pmode, LABEL2)), \
444 PTR_SIZE, 1)
446 #define ASM_OUTPUT_DWARF_DELTA(FILE,LABEL1,LABEL2) \
447 ASM_OUTPUT_DWARF_DELTA4 (FILE,LABEL1,LABEL2)
449 #define ASM_OUTPUT_DWARF_DATA4(FILE,VALUE) \
450 assemble_integer (GEN_INT (VALUE), 4, 1)
452 #endif /* UNALIGNED_INT_ASM_OP */
454 #ifdef SET_ASM_OP
455 #ifndef ASM_OUTPUT_DEFINE_LABEL_DIFFERENCE_SYMBOL
456 #define ASM_OUTPUT_DEFINE_LABEL_DIFFERENCE_SYMBOL(FILE, SY, HI, LO) \
457 do { \
458 fprintf (FILE, "\t%s\t", SET_ASM_OP); \
459 assemble_name (FILE, SY); \
460 fputc (',', FILE); \
461 assemble_name (FILE, HI); \
462 fputc ('-', FILE); \
463 assemble_name (FILE, LO); \
464 } while (0)
465 #endif
466 #endif /* SET_ASM_OP */
468 /* This is similar to the default ASM_OUTPUT_ASCII, except that no trailing
469 newline is produced. When flag_debug_asm is asserted, we add commentary
470 at the end of the line, so we must avoid output of a newline here. */
471 #ifndef ASM_OUTPUT_DWARF_STRING
472 #define ASM_OUTPUT_DWARF_STRING(FILE,P) \
473 do { \
474 register int slen = strlen(P); \
475 register const char *p = (P); \
476 register int i; \
477 fprintf (FILE, "\t.ascii \""); \
478 for (i = 0; i < slen; i++) \
480 register int c = p[i]; \
481 if (c == '\"' || c == '\\') \
482 putc ('\\', FILE); \
483 if (ISPRINT(c)) \
484 putc (c, FILE); \
485 else \
487 fprintf (FILE, "\\%o", c); \
490 fprintf (FILE, "\\0\""); \
492 while (0)
493 #endif
495 /* The DWARF 2 CFA column which tracks the return address. Normally this
496 is the column for PC, or the first column after all of the hard
497 registers. */
498 #ifndef DWARF_FRAME_RETURN_COLUMN
499 #ifdef PC_REGNUM
500 #define DWARF_FRAME_RETURN_COLUMN DWARF_FRAME_REGNUM (PC_REGNUM)
501 #else
502 #define DWARF_FRAME_RETURN_COLUMN FIRST_PSEUDO_REGISTER
503 #endif
504 #endif
506 /* The mapping from gcc register number to DWARF 2 CFA column number. By
507 default, we just provide columns for all registers. */
508 #ifndef DWARF_FRAME_REGNUM
509 #define DWARF_FRAME_REGNUM(REG) DBX_REGISTER_NUMBER (REG)
510 #endif
512 /* Hook used by __throw. */
515 expand_builtin_dwarf_fp_regnum ()
517 return GEN_INT (DWARF_FRAME_REGNUM (HARD_FRAME_POINTER_REGNUM));
520 /* The offset from the incoming value of %sp to the top of the stack frame
521 for the current function. */
522 #ifndef INCOMING_FRAME_SP_OFFSET
523 #define INCOMING_FRAME_SP_OFFSET 0
524 #endif
526 /* Return a pointer to a copy of the section string name S with all
527 attributes stripped off, and an asterisk prepended (for assemble_name). */
529 static inline char *
530 stripattributes (s)
531 const char *s;
533 char *stripped = xmalloc (strlen (s) + 2);
534 char *p = stripped;
536 *p++ = '*';
538 while (*s && *s != ',')
539 *p++ = *s++;
541 *p = '\0';
542 return stripped;
545 /* Return the register number described by a given RTL node. */
547 static unsigned
548 reg_number (rtl)
549 register rtx rtl;
551 register unsigned regno = REGNO (rtl);
553 if (regno >= FIRST_PSEUDO_REGISTER)
555 warning ("internal regno botch: regno = %d\n", regno);
556 regno = 0;
559 regno = DBX_REGISTER_NUMBER (regno);
560 return regno;
563 struct reg_size_range
565 int beg;
566 int end;
567 int size;
570 /* Given a register number in REG_TREE, return an rtx for its size in bytes.
571 We do this in kind of a roundabout way, by building up a list of
572 register size ranges and seeing where our register falls in one of those
573 ranges. We need to do it this way because REG_TREE is not a constant,
574 and the target macros were not designed to make this task easy. */
577 expand_builtin_dwarf_reg_size (reg_tree, target)
578 tree reg_tree;
579 rtx target;
581 enum machine_mode mode;
582 int size;
583 struct reg_size_range ranges[5];
584 tree t, t2;
586 int i = 0;
587 int n_ranges = 0;
588 int last_size = -1;
590 for (; i < FIRST_PSEUDO_REGISTER; ++i)
592 /* The return address is out of order on the MIPS, and we don't use
593 copy_reg for it anyway, so we don't care here how large it is. */
594 if (DWARF_FRAME_REGNUM (i) == DWARF_FRAME_RETURN_COLUMN)
595 continue;
597 mode = reg_raw_mode[i];
599 /* CCmode is arbitrarily given a size of 4 bytes. It is more useful
600 to use the same size as word_mode, since that reduces the number
601 of ranges we need. It should not matter, since the result should
602 never be used for a condition code register anyways. */
603 if (GET_MODE_CLASS (mode) == MODE_CC)
604 mode = word_mode;
606 size = GET_MODE_SIZE (mode);
608 /* If this register is not valid in the specified mode and
609 we have a previous size, use that for the size of this
610 register to avoid making junk tiny ranges. */
611 if (! HARD_REGNO_MODE_OK (i, mode) && last_size != -1)
612 size = last_size;
614 if (size != last_size)
616 ranges[n_ranges].beg = i;
617 ranges[n_ranges].size = last_size = size;
618 ++n_ranges;
619 if (n_ranges >= 5)
620 abort ();
622 ranges[n_ranges-1].end = i;
625 /* The usual case: fp regs surrounded by general regs. */
626 if (n_ranges == 3 && ranges[0].size == ranges[2].size)
628 if ((DWARF_FRAME_REGNUM (ranges[1].end)
629 - DWARF_FRAME_REGNUM (ranges[1].beg))
630 != ranges[1].end - ranges[1].beg)
631 abort ();
632 t = fold (build (GE_EXPR, integer_type_node, reg_tree,
633 build_int_2 (DWARF_FRAME_REGNUM (ranges[1].beg), 0)));
634 t2 = fold (build (LE_EXPR, integer_type_node, reg_tree,
635 build_int_2 (DWARF_FRAME_REGNUM (ranges[1].end), 0)));
636 t = fold (build (TRUTH_ANDIF_EXPR, integer_type_node, t, t2));
637 t = fold (build (COND_EXPR, integer_type_node, t,
638 build_int_2 (ranges[1].size, 0),
639 build_int_2 (ranges[0].size, 0)));
641 else
643 /* Initialize last_end to be larger than any possible
644 DWARF_FRAME_REGNUM. */
645 int last_end = 0x7fffffff;
646 --n_ranges;
647 t = build_int_2 (ranges[n_ranges].size, 0);
650 int beg = DWARF_FRAME_REGNUM (ranges[n_ranges].beg);
651 int end = DWARF_FRAME_REGNUM (ranges[n_ranges].end);
652 if (beg < 0)
653 continue;
654 if (end >= last_end)
655 abort ();
656 last_end = end;
657 if (end - beg != ranges[n_ranges].end - ranges[n_ranges].beg)
658 abort ();
659 t2 = fold (build (LE_EXPR, integer_type_node, reg_tree,
660 build_int_2 (end, 0)));
661 t = fold (build (COND_EXPR, integer_type_node, t2,
662 build_int_2 (ranges[n_ranges].size, 0), t));
664 while (--n_ranges >= 0);
666 return expand_expr (t, target, Pmode, 0);
669 /* Convert a DWARF call frame info. operation to its string name */
671 static const char *
672 dwarf_cfi_name (cfi_opc)
673 register unsigned cfi_opc;
675 switch (cfi_opc)
677 case DW_CFA_advance_loc:
678 return "DW_CFA_advance_loc";
679 case DW_CFA_offset:
680 return "DW_CFA_offset";
681 case DW_CFA_restore:
682 return "DW_CFA_restore";
683 case DW_CFA_nop:
684 return "DW_CFA_nop";
685 case DW_CFA_set_loc:
686 return "DW_CFA_set_loc";
687 case DW_CFA_advance_loc1:
688 return "DW_CFA_advance_loc1";
689 case DW_CFA_advance_loc2:
690 return "DW_CFA_advance_loc2";
691 case DW_CFA_advance_loc4:
692 return "DW_CFA_advance_loc4";
693 case DW_CFA_offset_extended:
694 return "DW_CFA_offset_extended";
695 case DW_CFA_restore_extended:
696 return "DW_CFA_restore_extended";
697 case DW_CFA_undefined:
698 return "DW_CFA_undefined";
699 case DW_CFA_same_value:
700 return "DW_CFA_same_value";
701 case DW_CFA_register:
702 return "DW_CFA_register";
703 case DW_CFA_remember_state:
704 return "DW_CFA_remember_state";
705 case DW_CFA_restore_state:
706 return "DW_CFA_restore_state";
707 case DW_CFA_def_cfa:
708 return "DW_CFA_def_cfa";
709 case DW_CFA_def_cfa_register:
710 return "DW_CFA_def_cfa_register";
711 case DW_CFA_def_cfa_offset:
712 return "DW_CFA_def_cfa_offset";
714 /* SGI/MIPS specific */
715 case DW_CFA_MIPS_advance_loc8:
716 return "DW_CFA_MIPS_advance_loc8";
718 /* GNU extensions */
719 case DW_CFA_GNU_window_save:
720 return "DW_CFA_GNU_window_save";
721 case DW_CFA_GNU_args_size:
722 return "DW_CFA_GNU_args_size";
724 default:
725 return "DW_CFA_<unknown>";
729 /* Return a pointer to a newly allocated Call Frame Instruction. */
731 static inline dw_cfi_ref
732 new_cfi ()
734 register dw_cfi_ref cfi = (dw_cfi_ref) xmalloc (sizeof (dw_cfi_node));
736 cfi->dw_cfi_next = NULL;
737 cfi->dw_cfi_oprnd1.dw_cfi_reg_num = 0;
738 cfi->dw_cfi_oprnd2.dw_cfi_reg_num = 0;
740 return cfi;
743 /* Add a Call Frame Instruction to list of instructions. */
745 static inline void
746 add_cfi (list_head, cfi)
747 register dw_cfi_ref *list_head;
748 register dw_cfi_ref cfi;
750 register dw_cfi_ref *p;
752 /* Find the end of the chain. */
753 for (p = list_head; (*p) != NULL; p = &(*p)->dw_cfi_next)
756 *p = cfi;
759 /* Generate a new label for the CFI info to refer to. */
761 char *
762 dwarf2out_cfi_label ()
764 static char label[20];
765 static unsigned long label_num = 0;
767 ASM_GENERATE_INTERNAL_LABEL (label, "LCFI", label_num++);
768 ASM_OUTPUT_LABEL (asm_out_file, label);
770 return label;
773 /* Add CFI to the current fde at the PC value indicated by LABEL if specified,
774 or to the CIE if LABEL is NULL. */
776 static void
777 add_fde_cfi (label, cfi)
778 register char *label;
779 register dw_cfi_ref cfi;
781 if (label)
783 register dw_fde_ref fde = &fde_table[fde_table_in_use - 1];
785 if (*label == 0)
786 label = dwarf2out_cfi_label ();
788 if (fde->dw_fde_current_label == NULL
789 || strcmp (label, fde->dw_fde_current_label) != 0)
791 register dw_cfi_ref xcfi;
793 fde->dw_fde_current_label = label = xstrdup (label);
795 /* Set the location counter to the new label. */
796 xcfi = new_cfi ();
797 xcfi->dw_cfi_opc = DW_CFA_advance_loc4;
798 xcfi->dw_cfi_oprnd1.dw_cfi_addr = label;
799 add_cfi (&fde->dw_fde_cfi, xcfi);
802 add_cfi (&fde->dw_fde_cfi, cfi);
805 else
806 add_cfi (&cie_cfi_head, cfi);
809 /* Subroutine of lookup_cfa. */
811 static inline void
812 lookup_cfa_1 (cfi, regp, offsetp)
813 register dw_cfi_ref cfi;
814 register unsigned long *regp;
815 register long *offsetp;
817 switch (cfi->dw_cfi_opc)
819 case DW_CFA_def_cfa_offset:
820 *offsetp = cfi->dw_cfi_oprnd1.dw_cfi_offset;
821 break;
822 case DW_CFA_def_cfa_register:
823 *regp = cfi->dw_cfi_oprnd1.dw_cfi_reg_num;
824 break;
825 case DW_CFA_def_cfa:
826 *regp = cfi->dw_cfi_oprnd1.dw_cfi_reg_num;
827 *offsetp = cfi->dw_cfi_oprnd2.dw_cfi_offset;
828 break;
829 default:
830 break;
834 /* Find the previous value for the CFA. */
836 static void
837 lookup_cfa (regp, offsetp)
838 register unsigned long *regp;
839 register long *offsetp;
841 register dw_cfi_ref cfi;
843 *regp = (unsigned long) -1;
844 *offsetp = 0;
846 for (cfi = cie_cfi_head; cfi; cfi = cfi->dw_cfi_next)
847 lookup_cfa_1 (cfi, regp, offsetp);
849 if (fde_table_in_use)
851 register dw_fde_ref fde = &fde_table[fde_table_in_use - 1];
852 for (cfi = fde->dw_fde_cfi; cfi; cfi = cfi->dw_cfi_next)
853 lookup_cfa_1 (cfi, regp, offsetp);
857 /* The current rule for calculating the DWARF2 canonical frame address. */
858 static unsigned long cfa_reg;
859 static long cfa_offset;
861 /* The register used for saving registers to the stack, and its offset
862 from the CFA. */
863 static unsigned cfa_store_reg;
864 static long cfa_store_offset;
866 /* The running total of the size of arguments pushed onto the stack. */
867 static long args_size;
869 /* The last args_size we actually output. */
870 static long old_args_size;
872 /* Entry point to update the canonical frame address (CFA).
873 LABEL is passed to add_fde_cfi. The value of CFA is now to be
874 calculated from REG+OFFSET. */
876 void
877 dwarf2out_def_cfa (label, reg, offset)
878 register char *label;
879 register unsigned reg;
880 register long offset;
882 register dw_cfi_ref cfi;
883 unsigned long old_reg;
884 long old_offset;
886 cfa_reg = reg;
887 cfa_offset = offset;
888 if (cfa_store_reg == reg)
889 cfa_store_offset = offset;
891 reg = DWARF_FRAME_REGNUM (reg);
892 lookup_cfa (&old_reg, &old_offset);
894 if (reg == old_reg && offset == old_offset)
895 return;
897 cfi = new_cfi ();
899 if (reg == old_reg)
901 cfi->dw_cfi_opc = DW_CFA_def_cfa_offset;
902 cfi->dw_cfi_oprnd1.dw_cfi_offset = offset;
905 #ifndef MIPS_DEBUGGING_INFO /* SGI dbx thinks this means no offset. */
906 else if (offset == old_offset && old_reg != (unsigned long) -1)
908 cfi->dw_cfi_opc = DW_CFA_def_cfa_register;
909 cfi->dw_cfi_oprnd1.dw_cfi_reg_num = reg;
911 #endif
913 else
915 cfi->dw_cfi_opc = DW_CFA_def_cfa;
916 cfi->dw_cfi_oprnd1.dw_cfi_reg_num = reg;
917 cfi->dw_cfi_oprnd2.dw_cfi_offset = offset;
920 add_fde_cfi (label, cfi);
923 /* Add the CFI for saving a register. REG is the CFA column number.
924 LABEL is passed to add_fde_cfi.
925 If SREG is -1, the register is saved at OFFSET from the CFA;
926 otherwise it is saved in SREG. */
928 static void
929 reg_save (label, reg, sreg, offset)
930 register char * label;
931 register unsigned reg;
932 register unsigned sreg;
933 register long offset;
935 register dw_cfi_ref cfi = new_cfi ();
937 cfi->dw_cfi_oprnd1.dw_cfi_reg_num = reg;
939 /* The following comparison is correct. -1 is used to indicate that
940 the value isn't a register number. */
941 if (sreg == (unsigned int) -1)
943 if (reg & ~0x3f)
944 /* The register number won't fit in 6 bits, so we have to use
945 the long form. */
946 cfi->dw_cfi_opc = DW_CFA_offset_extended;
947 else
948 cfi->dw_cfi_opc = DW_CFA_offset;
950 offset /= DWARF_CIE_DATA_ALIGNMENT;
951 if (offset < 0)
952 abort ();
953 cfi->dw_cfi_oprnd2.dw_cfi_offset = offset;
955 else
957 cfi->dw_cfi_opc = DW_CFA_register;
958 cfi->dw_cfi_oprnd2.dw_cfi_reg_num = sreg;
961 add_fde_cfi (label, cfi);
964 /* Add the CFI for saving a register window. LABEL is passed to reg_save.
965 This CFI tells the unwinder that it needs to restore the window registers
966 from the previous frame's window save area.
968 ??? Perhaps we should note in the CIE where windows are saved (instead of
969 assuming 0(cfa)) and what registers are in the window. */
971 void
972 dwarf2out_window_save (label)
973 register char * label;
975 register dw_cfi_ref cfi = new_cfi ();
976 cfi->dw_cfi_opc = DW_CFA_GNU_window_save;
977 add_fde_cfi (label, cfi);
980 /* Add a CFI to update the running total of the size of arguments
981 pushed onto the stack. */
983 void
984 dwarf2out_args_size (label, size)
985 char *label;
986 long size;
988 register dw_cfi_ref cfi;
990 if (size == old_args_size)
991 return;
992 old_args_size = size;
994 cfi = new_cfi ();
995 cfi->dw_cfi_opc = DW_CFA_GNU_args_size;
996 cfi->dw_cfi_oprnd1.dw_cfi_offset = size;
997 add_fde_cfi (label, cfi);
1000 /* Entry point for saving a register to the stack. REG is the GCC register
1001 number. LABEL and OFFSET are passed to reg_save. */
1003 void
1004 dwarf2out_reg_save (label, reg, offset)
1005 register char * label;
1006 register unsigned reg;
1007 register long offset;
1009 reg_save (label, DWARF_FRAME_REGNUM (reg), -1, offset);
1012 /* Entry point for saving the return address in the stack.
1013 LABEL and OFFSET are passed to reg_save. */
1015 void
1016 dwarf2out_return_save (label, offset)
1017 register char * label;
1018 register long offset;
1020 reg_save (label, DWARF_FRAME_RETURN_COLUMN, -1, offset);
1023 /* Entry point for saving the return address in a register.
1024 LABEL and SREG are passed to reg_save. */
1026 void
1027 dwarf2out_return_reg (label, sreg)
1028 register char * label;
1029 register unsigned sreg;
1031 reg_save (label, DWARF_FRAME_RETURN_COLUMN, sreg, 0);
1034 /* Record the initial position of the return address. RTL is
1035 INCOMING_RETURN_ADDR_RTX. */
1037 static void
1038 initial_return_save (rtl)
1039 register rtx rtl;
1041 unsigned int reg = (unsigned int) -1;
1042 long offset = 0;
1044 switch (GET_CODE (rtl))
1046 case REG:
1047 /* RA is in a register. */
1048 reg = reg_number (rtl);
1049 break;
1050 case MEM:
1051 /* RA is on the stack. */
1052 rtl = XEXP (rtl, 0);
1053 switch (GET_CODE (rtl))
1055 case REG:
1056 if (REGNO (rtl) != STACK_POINTER_REGNUM)
1057 abort ();
1058 offset = 0;
1059 break;
1060 case PLUS:
1061 if (REGNO (XEXP (rtl, 0)) != STACK_POINTER_REGNUM)
1062 abort ();
1063 offset = INTVAL (XEXP (rtl, 1));
1064 break;
1065 case MINUS:
1066 if (REGNO (XEXP (rtl, 0)) != STACK_POINTER_REGNUM)
1067 abort ();
1068 offset = -INTVAL (XEXP (rtl, 1));
1069 break;
1070 default:
1071 abort ();
1073 break;
1074 case PLUS:
1075 /* The return address is at some offset from any value we can
1076 actually load. For instance, on the SPARC it is in %i7+8. Just
1077 ignore the offset for now; it doesn't matter for unwinding frames. */
1078 if (GET_CODE (XEXP (rtl, 1)) != CONST_INT)
1079 abort ();
1080 initial_return_save (XEXP (rtl, 0));
1081 return;
1082 default:
1083 abort ();
1086 reg_save (NULL, DWARF_FRAME_RETURN_COLUMN, reg, offset - cfa_offset);
1089 /* Check INSN to see if it looks like a push or a stack adjustment, and
1090 make a note of it if it does. EH uses this information to find out how
1091 much extra space it needs to pop off the stack. */
1093 static void
1094 dwarf2out_stack_adjust (insn)
1095 rtx insn;
1097 long offset;
1098 char *label;
1100 if (! asynchronous_exceptions && GET_CODE (insn) == CALL_INSN)
1102 /* Extract the size of the args from the CALL rtx itself. */
1104 insn = PATTERN (insn);
1105 if (GET_CODE (insn) == PARALLEL)
1106 insn = XVECEXP (insn, 0, 0);
1107 if (GET_CODE (insn) == SET)
1108 insn = SET_SRC (insn);
1109 assert (GET_CODE (insn) == CALL);
1110 dwarf2out_args_size ("", INTVAL (XEXP (insn, 1)));
1111 return;
1114 /* If only calls can throw, and we have a frame pointer,
1115 save up adjustments until we see the CALL_INSN. */
1116 else if (! asynchronous_exceptions
1117 && cfa_reg != STACK_POINTER_REGNUM)
1118 return;
1120 if (GET_CODE (insn) == BARRIER)
1122 /* When we see a BARRIER, we know to reset args_size to 0. Usually
1123 the compiler will have already emitted a stack adjustment, but
1124 doesn't bother for calls to noreturn functions. */
1125 #ifdef STACK_GROWS_DOWNWARD
1126 offset = -args_size;
1127 #else
1128 offset = args_size;
1129 #endif
1131 else if (GET_CODE (PATTERN (insn)) == SET)
1133 rtx src, dest;
1134 enum rtx_code code;
1136 insn = PATTERN (insn);
1137 src = SET_SRC (insn);
1138 dest = SET_DEST (insn);
1140 if (dest == stack_pointer_rtx)
1142 /* (set (reg sp) (plus (reg sp) (const_int))) */
1143 code = GET_CODE (src);
1144 if (! (code == PLUS || code == MINUS)
1145 || XEXP (src, 0) != stack_pointer_rtx
1146 || GET_CODE (XEXP (src, 1)) != CONST_INT)
1147 return;
1149 offset = INTVAL (XEXP (src, 1));
1151 else if (GET_CODE (dest) == MEM)
1153 /* (set (mem (pre_dec (reg sp))) (foo)) */
1154 src = XEXP (dest, 0);
1155 code = GET_CODE (src);
1157 if (! (code == PRE_DEC || code == PRE_INC)
1158 || XEXP (src, 0) != stack_pointer_rtx)
1159 return;
1161 offset = GET_MODE_SIZE (GET_MODE (dest));
1163 else
1164 return;
1166 if (code == PLUS || code == PRE_INC)
1167 offset = -offset;
1169 else
1170 return;
1172 if (offset == 0)
1173 return;
1175 if (cfa_reg == STACK_POINTER_REGNUM)
1176 cfa_offset += offset;
1178 #ifndef STACK_GROWS_DOWNWARD
1179 offset = -offset;
1180 #endif
1181 args_size += offset;
1182 if (args_size < 0)
1183 args_size = 0;
1185 label = dwarf2out_cfi_label ();
1186 dwarf2out_def_cfa (label, cfa_reg, cfa_offset);
1187 dwarf2out_args_size (label, args_size);
1190 /* A temporary register used in adjusting SP or setting up the store_reg. */
1191 static unsigned cfa_temp_reg;
1193 /* A temporary value used in adjusting SP or setting up the store_reg. */
1194 static long cfa_temp_value;
1196 /* Record call frame debugging information for an expression, which either
1197 sets SP or FP (adjusting how we calculate the frame address) or saves a
1198 register to the stack. */
1200 static void
1201 dwarf2out_frame_debug_expr (expr, label)
1202 rtx expr;
1203 char *label;
1205 rtx src, dest;
1206 long offset;
1208 /* If RTX_FRAME_RELATED_P is set on a PARALLEL, process each member of
1209 the PARALLEL independantly. The first element is always processed if
1210 it is a SET. This is for backward compatability. Other elements
1211 are processed only if they are SETs and the RTX_FRAME_RELATED_P
1212 flag is set in them. */
1214 if (GET_CODE (expr) == PARALLEL)
1216 int par_index;
1217 int limit = XVECLEN (expr, 0);
1219 for (par_index = 0; par_index < limit; par_index++)
1221 rtx x = XVECEXP (expr, 0, par_index);
1223 if (GET_CODE (x) == SET &&
1224 (RTX_FRAME_RELATED_P (x) || par_index == 0))
1225 dwarf2out_frame_debug_expr (x, label);
1227 return;
1230 if (GET_CODE (expr) != SET)
1231 abort ();
1233 src = SET_SRC (expr);
1234 dest = SET_DEST (expr);
1236 switch (GET_CODE (dest))
1238 case REG:
1239 /* Update the CFA rule wrt SP or FP. Make sure src is
1240 relative to the current CFA register. */
1241 switch (GET_CODE (src))
1243 /* Setting FP from SP. */
1244 case REG:
1245 if (cfa_reg != (unsigned) REGNO (src))
1246 abort ();
1247 if (REGNO (dest) != STACK_POINTER_REGNUM
1248 && !(frame_pointer_needed
1249 && REGNO (dest) == HARD_FRAME_POINTER_REGNUM))
1250 abort ();
1251 cfa_reg = REGNO (dest);
1252 break;
1254 case PLUS:
1255 case MINUS:
1256 if (dest == stack_pointer_rtx)
1258 /* Adjusting SP. */
1259 switch (GET_CODE (XEXP (src, 1)))
1261 case CONST_INT:
1262 offset = INTVAL (XEXP (src, 1));
1263 break;
1264 case REG:
1265 if ((unsigned) REGNO (XEXP (src, 1)) != cfa_temp_reg)
1266 abort ();
1267 offset = cfa_temp_value;
1268 break;
1269 default:
1270 abort ();
1273 if (XEXP (src, 0) == hard_frame_pointer_rtx)
1275 /* Restoring SP from FP in the epilogue. */
1276 if (cfa_reg != (unsigned) HARD_FRAME_POINTER_REGNUM)
1277 abort ();
1278 cfa_reg = STACK_POINTER_REGNUM;
1280 else if (XEXP (src, 0) != stack_pointer_rtx)
1281 abort ();
1283 if (GET_CODE (src) == PLUS)
1284 offset = -offset;
1285 if (cfa_reg == STACK_POINTER_REGNUM)
1286 cfa_offset += offset;
1287 if (cfa_store_reg == STACK_POINTER_REGNUM)
1288 cfa_store_offset += offset;
1290 else if (dest == hard_frame_pointer_rtx)
1292 /* Either setting the FP from an offset of the SP,
1293 or adjusting the FP */
1294 if (! frame_pointer_needed
1295 || REGNO (dest) != HARD_FRAME_POINTER_REGNUM)
1296 abort ();
1298 if (XEXP (src, 0) == stack_pointer_rtx
1299 && GET_CODE (XEXP (src, 1)) == CONST_INT)
1301 if (cfa_reg != STACK_POINTER_REGNUM)
1302 abort ();
1303 offset = INTVAL (XEXP (src, 1));
1304 if (GET_CODE (src) == PLUS)
1305 offset = -offset;
1306 cfa_offset += offset;
1307 cfa_reg = HARD_FRAME_POINTER_REGNUM;
1309 else if (XEXP (src, 0) == hard_frame_pointer_rtx
1310 && GET_CODE (XEXP (src, 1)) == CONST_INT)
1312 if (cfa_reg != (unsigned) HARD_FRAME_POINTER_REGNUM)
1313 abort ();
1314 offset = INTVAL (XEXP (src, 1));
1315 if (GET_CODE (src) == PLUS)
1316 offset = -offset;
1317 cfa_offset += offset;
1320 else
1321 abort();
1323 else
1325 if (GET_CODE (src) != PLUS
1326 || XEXP (src, 1) != stack_pointer_rtx)
1327 abort ();
1328 if (GET_CODE (XEXP (src, 0)) != REG
1329 || (unsigned) REGNO (XEXP (src, 0)) != cfa_temp_reg)
1330 abort ();
1331 if (cfa_reg != STACK_POINTER_REGNUM)
1332 abort ();
1333 cfa_store_reg = REGNO (dest);
1334 cfa_store_offset = cfa_offset - cfa_temp_value;
1336 break;
1338 case CONST_INT:
1339 cfa_temp_reg = REGNO (dest);
1340 cfa_temp_value = INTVAL (src);
1341 break;
1343 case IOR:
1344 if (GET_CODE (XEXP (src, 0)) != REG
1345 || (unsigned) REGNO (XEXP (src, 0)) != cfa_temp_reg
1346 || (unsigned) REGNO (dest) != cfa_temp_reg
1347 || GET_CODE (XEXP (src, 1)) != CONST_INT)
1348 abort ();
1349 cfa_temp_value |= INTVAL (XEXP (src, 1));
1350 break;
1352 default:
1353 abort ();
1355 dwarf2out_def_cfa (label, cfa_reg, cfa_offset);
1356 break;
1358 case MEM:
1359 /* Saving a register to the stack. Make sure dest is relative to the
1360 CFA register. */
1361 if (GET_CODE (src) != REG)
1362 abort ();
1363 switch (GET_CODE (XEXP (dest, 0)))
1365 /* With a push. */
1366 case PRE_INC:
1367 case PRE_DEC:
1368 offset = GET_MODE_SIZE (GET_MODE (dest));
1369 if (GET_CODE (XEXP (dest, 0)) == PRE_INC)
1370 offset = -offset;
1372 if (REGNO (XEXP (XEXP (dest, 0), 0)) != STACK_POINTER_REGNUM
1373 || cfa_store_reg != STACK_POINTER_REGNUM)
1374 abort ();
1375 cfa_store_offset += offset;
1376 if (cfa_reg == STACK_POINTER_REGNUM)
1377 cfa_offset = cfa_store_offset;
1379 offset = -cfa_store_offset;
1380 break;
1382 /* With an offset. */
1383 case PLUS:
1384 case MINUS:
1385 offset = INTVAL (XEXP (XEXP (dest, 0), 1));
1386 if (GET_CODE (XEXP (dest, 0)) == MINUS)
1387 offset = -offset;
1389 if (cfa_store_reg != (unsigned) REGNO (XEXP (XEXP (dest, 0), 0)))
1390 abort ();
1391 offset -= cfa_store_offset;
1392 break;
1394 /* Without an offset. */
1395 case REG:
1396 if (cfa_store_reg != (unsigned) REGNO (XEXP (dest, 0)))
1397 abort();
1398 offset = -cfa_store_offset;
1399 break;
1401 default:
1402 abort ();
1404 dwarf2out_def_cfa (label, cfa_reg, cfa_offset);
1405 dwarf2out_reg_save (label, REGNO (src), offset);
1406 break;
1408 default:
1409 abort ();
1414 /* Record call frame debugging information for INSN, which either
1415 sets SP or FP (adjusting how we calculate the frame address) or saves a
1416 register to the stack. If INSN is NULL_RTX, initialize our state. */
1418 void
1419 dwarf2out_frame_debug (insn)
1420 rtx insn;
1422 char *label;
1423 rtx src;
1425 if (insn == NULL_RTX)
1427 /* Set up state for generating call frame debug info. */
1428 lookup_cfa (&cfa_reg, &cfa_offset);
1429 if (cfa_reg != DWARF_FRAME_REGNUM (STACK_POINTER_REGNUM))
1430 abort ();
1431 cfa_reg = STACK_POINTER_REGNUM;
1432 cfa_store_reg = cfa_reg;
1433 cfa_store_offset = cfa_offset;
1434 cfa_temp_reg = -1;
1435 cfa_temp_value = 0;
1436 return;
1439 if (! RTX_FRAME_RELATED_P (insn))
1441 dwarf2out_stack_adjust (insn);
1442 return;
1445 label = dwarf2out_cfi_label ();
1447 src = find_reg_note (insn, REG_FRAME_RELATED_EXPR, NULL_RTX);
1448 if (src)
1449 insn = XEXP (src, 0);
1450 else
1451 insn = PATTERN (insn);
1453 dwarf2out_frame_debug_expr (insn, label);
1456 /* Return the size of an unsigned LEB128 quantity. */
1458 static inline unsigned long
1459 size_of_uleb128 (value)
1460 register unsigned long value;
1462 register unsigned long size = 0;
1463 register unsigned byte;
1467 byte = (value & 0x7f);
1468 value >>= 7;
1469 size += 1;
1471 while (value != 0);
1473 return size;
1476 /* Return the size of a signed LEB128 quantity. */
1478 static inline unsigned long
1479 size_of_sleb128 (value)
1480 register long value;
1482 register unsigned long size = 0;
1483 register unsigned byte;
1487 byte = (value & 0x7f);
1488 value >>= 7;
1489 size += 1;
1491 while (!(((value == 0) && ((byte & 0x40) == 0))
1492 || ((value == -1) && ((byte & 0x40) != 0))));
1494 return size;
1497 /* Output an unsigned LEB128 quantity. */
1499 static void
1500 output_uleb128 (value)
1501 register unsigned long value;
1503 unsigned long save_value = value;
1505 fprintf (asm_out_file, "\t%s\t", ASM_BYTE_OP);
1508 register unsigned byte = (value & 0x7f);
1509 value >>= 7;
1510 if (value != 0)
1511 /* More bytes to follow. */
1512 byte |= 0x80;
1514 fprintf (asm_out_file, "0x%x", byte);
1515 if (value != 0)
1516 fprintf (asm_out_file, ",");
1518 while (value != 0);
1520 if (flag_debug_asm)
1521 fprintf (asm_out_file, "\t%s ULEB128 0x%lx", ASM_COMMENT_START, save_value);
1524 /* Output an signed LEB128 quantity. */
1526 static void
1527 output_sleb128 (value)
1528 register long value;
1530 register int more;
1531 register unsigned byte;
1532 long save_value = value;
1534 fprintf (asm_out_file, "\t%s\t", ASM_BYTE_OP);
1537 byte = (value & 0x7f);
1538 /* arithmetic shift */
1539 value >>= 7;
1540 more = !((((value == 0) && ((byte & 0x40) == 0))
1541 || ((value == -1) && ((byte & 0x40) != 0))));
1542 if (more)
1543 byte |= 0x80;
1545 fprintf (asm_out_file, "0x%x", byte);
1546 if (more)
1547 fprintf (asm_out_file, ",");
1550 while (more);
1551 if (flag_debug_asm)
1552 fprintf (asm_out_file, "\t%s SLEB128 %ld", ASM_COMMENT_START, save_value);
1555 /* Output a Call Frame Information opcode and its operand(s). */
1557 static void
1558 output_cfi (cfi, fde)
1559 register dw_cfi_ref cfi;
1560 register dw_fde_ref fde;
1562 if (cfi->dw_cfi_opc == DW_CFA_advance_loc)
1564 ASM_OUTPUT_DWARF_DATA1 (asm_out_file,
1565 cfi->dw_cfi_opc
1566 | (cfi->dw_cfi_oprnd1.dw_cfi_offset & 0x3f));
1567 if (flag_debug_asm)
1568 fprintf (asm_out_file, "\t%s DW_CFA_advance_loc 0x%lx",
1569 ASM_COMMENT_START, cfi->dw_cfi_oprnd1.dw_cfi_offset);
1570 fputc ('\n', asm_out_file);
1573 else if (cfi->dw_cfi_opc == DW_CFA_offset)
1575 ASM_OUTPUT_DWARF_DATA1 (asm_out_file,
1576 cfi->dw_cfi_opc
1577 | (cfi->dw_cfi_oprnd1.dw_cfi_reg_num & 0x3f));
1578 if (flag_debug_asm)
1579 fprintf (asm_out_file, "\t%s DW_CFA_offset, column 0x%lx",
1580 ASM_COMMENT_START, cfi->dw_cfi_oprnd1.dw_cfi_reg_num);
1582 fputc ('\n', asm_out_file);
1583 output_uleb128 (cfi->dw_cfi_oprnd2.dw_cfi_offset);
1584 fputc ('\n', asm_out_file);
1586 else if (cfi->dw_cfi_opc == DW_CFA_restore)
1588 ASM_OUTPUT_DWARF_DATA1 (asm_out_file,
1589 cfi->dw_cfi_opc
1590 | (cfi->dw_cfi_oprnd1.dw_cfi_reg_num & 0x3f));
1591 if (flag_debug_asm)
1592 fprintf (asm_out_file, "\t%s DW_CFA_restore, column 0x%lx",
1593 ASM_COMMENT_START, cfi->dw_cfi_oprnd1.dw_cfi_reg_num);
1595 fputc ('\n', asm_out_file);
1597 else
1599 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, cfi->dw_cfi_opc);
1600 if (flag_debug_asm)
1601 fprintf (asm_out_file, "\t%s %s", ASM_COMMENT_START,
1602 dwarf_cfi_name (cfi->dw_cfi_opc));
1604 fputc ('\n', asm_out_file);
1605 switch (cfi->dw_cfi_opc)
1607 case DW_CFA_set_loc:
1608 ASM_OUTPUT_DWARF_ADDR (asm_out_file, cfi->dw_cfi_oprnd1.dw_cfi_addr);
1609 fputc ('\n', asm_out_file);
1610 break;
1611 case DW_CFA_advance_loc1:
1612 ASM_OUTPUT_DWARF_DELTA1 (asm_out_file,
1613 cfi->dw_cfi_oprnd1.dw_cfi_addr,
1614 fde->dw_fde_current_label);
1615 fputc ('\n', asm_out_file);
1616 fde->dw_fde_current_label = cfi->dw_cfi_oprnd1.dw_cfi_addr;
1617 break;
1618 case DW_CFA_advance_loc2:
1619 ASM_OUTPUT_DWARF_DELTA2 (asm_out_file,
1620 cfi->dw_cfi_oprnd1.dw_cfi_addr,
1621 fde->dw_fde_current_label);
1622 fputc ('\n', asm_out_file);
1623 fde->dw_fde_current_label = cfi->dw_cfi_oprnd1.dw_cfi_addr;
1624 break;
1625 case DW_CFA_advance_loc4:
1626 ASM_OUTPUT_DWARF_DELTA4 (asm_out_file,
1627 cfi->dw_cfi_oprnd1.dw_cfi_addr,
1628 fde->dw_fde_current_label);
1629 fputc ('\n', asm_out_file);
1630 fde->dw_fde_current_label = cfi->dw_cfi_oprnd1.dw_cfi_addr;
1631 break;
1632 #ifdef MIPS_DEBUGGING_INFO
1633 case DW_CFA_MIPS_advance_loc8:
1634 /* TODO: not currently implemented. */
1635 abort ();
1636 break;
1637 #endif
1638 case DW_CFA_offset_extended:
1639 case DW_CFA_def_cfa:
1640 output_uleb128 (cfi->dw_cfi_oprnd1.dw_cfi_reg_num);
1641 fputc ('\n', asm_out_file);
1642 output_uleb128 (cfi->dw_cfi_oprnd2.dw_cfi_offset);
1643 fputc ('\n', asm_out_file);
1644 break;
1645 case DW_CFA_restore_extended:
1646 case DW_CFA_undefined:
1647 output_uleb128 (cfi->dw_cfi_oprnd1.dw_cfi_reg_num);
1648 fputc ('\n', asm_out_file);
1649 break;
1650 case DW_CFA_same_value:
1651 case DW_CFA_def_cfa_register:
1652 output_uleb128 (cfi->dw_cfi_oprnd1.dw_cfi_reg_num);
1653 fputc ('\n', asm_out_file);
1654 break;
1655 case DW_CFA_register:
1656 output_uleb128 (cfi->dw_cfi_oprnd1.dw_cfi_reg_num);
1657 fputc ('\n', asm_out_file);
1658 output_uleb128 (cfi->dw_cfi_oprnd2.dw_cfi_reg_num);
1659 fputc ('\n', asm_out_file);
1660 break;
1661 case DW_CFA_def_cfa_offset:
1662 output_uleb128 (cfi->dw_cfi_oprnd1.dw_cfi_offset);
1663 fputc ('\n', asm_out_file);
1664 break;
1665 case DW_CFA_GNU_window_save:
1666 break;
1667 case DW_CFA_GNU_args_size:
1668 output_uleb128 (cfi->dw_cfi_oprnd1.dw_cfi_offset);
1669 fputc ('\n', asm_out_file);
1670 break;
1671 default:
1672 break;
1677 /* Output the call frame information used to used to record information
1678 that relates to calculating the frame pointer, and records the
1679 location of saved registers. */
1681 static void
1682 output_call_frame_info (for_eh)
1683 int for_eh;
1685 register unsigned long i;
1686 register dw_fde_ref fde;
1687 register dw_cfi_ref cfi;
1688 char l1[20], l2[20];
1689 #ifdef ASM_OUTPUT_DEFINE_LABEL_DIFFERENCE_SYMBOL
1690 char ld[20];
1691 #endif
1693 /* Do we want to include a pointer to the exception table? */
1694 int eh_ptr = for_eh && exception_table_p ();
1696 fputc ('\n', asm_out_file);
1698 /* We're going to be generating comments, so turn on app. */
1699 if (flag_debug_asm)
1700 app_enable ();
1702 if (for_eh)
1704 #ifdef EH_FRAME_SECTION
1705 EH_FRAME_SECTION ();
1706 #else
1707 tree label = get_file_function_name ('F');
1709 force_data_section ();
1710 ASM_OUTPUT_ALIGN (asm_out_file, floor_log2 (PTR_SIZE));
1711 ASM_GLOBALIZE_LABEL (asm_out_file, IDENTIFIER_POINTER (label));
1712 ASM_OUTPUT_LABEL (asm_out_file, IDENTIFIER_POINTER (label));
1713 #endif
1714 assemble_label ("__FRAME_BEGIN__");
1716 else
1717 ASM_OUTPUT_SECTION (asm_out_file, FRAME_SECTION);
1719 /* Output the CIE. */
1720 ASM_GENERATE_INTERNAL_LABEL (l1, CIE_AFTER_SIZE_LABEL, for_eh);
1721 ASM_GENERATE_INTERNAL_LABEL (l2, CIE_END_LABEL, for_eh);
1722 #ifdef ASM_OUTPUT_DEFINE_LABEL_DIFFERENCE_SYMBOL
1723 ASM_GENERATE_INTERNAL_LABEL (ld, CIE_LENGTH_LABEL, for_eh);
1724 if (for_eh)
1725 ASM_OUTPUT_DWARF_OFFSET4 (asm_out_file, ld);
1726 else
1727 ASM_OUTPUT_DWARF_OFFSET (asm_out_file, ld);
1728 #else
1729 if (for_eh)
1730 ASM_OUTPUT_DWARF_DELTA4 (asm_out_file, l2, l1);
1731 else
1732 ASM_OUTPUT_DWARF_DELTA (asm_out_file, l2, l1);
1733 #endif
1734 if (flag_debug_asm)
1735 fprintf (asm_out_file, "\t%s Length of Common Information Entry",
1736 ASM_COMMENT_START);
1738 fputc ('\n', asm_out_file);
1739 ASM_OUTPUT_LABEL (asm_out_file, l1);
1741 if (for_eh)
1742 /* Now that the CIE pointer is PC-relative for EH,
1743 use 0 to identify the CIE. */
1744 ASM_OUTPUT_DWARF_DATA4 (asm_out_file, 0);
1745 else
1746 ASM_OUTPUT_DWARF_DATA4 (asm_out_file, DW_CIE_ID);
1748 if (flag_debug_asm)
1749 fprintf (asm_out_file, "\t%s CIE Identifier Tag", ASM_COMMENT_START);
1751 fputc ('\n', asm_out_file);
1752 if (! for_eh && DWARF_OFFSET_SIZE == 8)
1754 ASM_OUTPUT_DWARF_DATA4 (asm_out_file, DW_CIE_ID);
1755 fputc ('\n', asm_out_file);
1758 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DW_CIE_VERSION);
1759 if (flag_debug_asm)
1760 fprintf (asm_out_file, "\t%s CIE Version", ASM_COMMENT_START);
1762 fputc ('\n', asm_out_file);
1763 if (eh_ptr)
1765 /* The CIE contains a pointer to the exception region info for the
1766 frame. Make the augmentation string three bytes (including the
1767 trailing null) so the pointer is 4-byte aligned. The Solaris ld
1768 can't handle unaligned relocs. */
1769 if (flag_debug_asm)
1771 ASM_OUTPUT_DWARF_STRING (asm_out_file, "eh");
1772 fprintf (asm_out_file, "\t%s CIE Augmentation", ASM_COMMENT_START);
1774 else
1776 ASM_OUTPUT_ASCII (asm_out_file, "eh", 3);
1778 fputc ('\n', asm_out_file);
1780 ASM_OUTPUT_DWARF_ADDR (asm_out_file, "__EXCEPTION_TABLE__");
1781 if (flag_debug_asm)
1782 fprintf (asm_out_file, "\t%s pointer to exception region info",
1783 ASM_COMMENT_START);
1785 else
1787 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, 0);
1788 if (flag_debug_asm)
1789 fprintf (asm_out_file, "\t%s CIE Augmentation (none)",
1790 ASM_COMMENT_START);
1793 fputc ('\n', asm_out_file);
1794 output_uleb128 (1);
1795 if (flag_debug_asm)
1796 fprintf (asm_out_file, " (CIE Code Alignment Factor)");
1798 fputc ('\n', asm_out_file);
1799 output_sleb128 (DWARF_CIE_DATA_ALIGNMENT);
1800 if (flag_debug_asm)
1801 fprintf (asm_out_file, " (CIE Data Alignment Factor)");
1803 fputc ('\n', asm_out_file);
1804 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DWARF_FRAME_RETURN_COLUMN);
1805 if (flag_debug_asm)
1806 fprintf (asm_out_file, "\t%s CIE RA Column", ASM_COMMENT_START);
1808 fputc ('\n', asm_out_file);
1810 for (cfi = cie_cfi_head; cfi != NULL; cfi = cfi->dw_cfi_next)
1811 output_cfi (cfi, NULL);
1813 /* Pad the CIE out to an address sized boundary. */
1814 ASM_OUTPUT_ALIGN (asm_out_file, floor_log2 (PTR_SIZE));
1815 ASM_OUTPUT_LABEL (asm_out_file, l2);
1816 #ifdef ASM_OUTPUT_DEFINE_LABEL_DIFFERENCE_SYMBOL
1817 ASM_OUTPUT_DEFINE_LABEL_DIFFERENCE_SYMBOL (asm_out_file, ld, l2, l1);
1818 if (flag_debug_asm)
1819 fprintf (asm_out_file, "\t%s CIE Length Symbol", ASM_COMMENT_START);
1820 fputc ('\n', asm_out_file);
1821 #endif
1823 /* Loop through all of the FDE's. */
1824 for (i = 0; i < fde_table_in_use; ++i)
1826 fde = &fde_table[i];
1828 ASM_GENERATE_INTERNAL_LABEL (l1, FDE_AFTER_SIZE_LABEL, for_eh + i*2);
1829 ASM_GENERATE_INTERNAL_LABEL (l2, FDE_END_LABEL, for_eh + i*2);
1830 #ifdef ASM_OUTPUT_DEFINE_LABEL_DIFFERENCE_SYMBOL
1831 ASM_GENERATE_INTERNAL_LABEL (ld, FDE_LENGTH_LABEL, for_eh + i*2);
1832 if (for_eh)
1833 ASM_OUTPUT_DWARF_OFFSET4 (asm_out_file, ld);
1834 else
1835 ASM_OUTPUT_DWARF_OFFSET (asm_out_file, ld);
1836 #else
1837 if (for_eh)
1838 ASM_OUTPUT_DWARF_DELTA4 (asm_out_file, l2, l1);
1839 else
1840 ASM_OUTPUT_DWARF_DELTA (asm_out_file, l2, l1);
1841 #endif
1842 if (flag_debug_asm)
1843 fprintf (asm_out_file, "\t%s FDE Length", ASM_COMMENT_START);
1844 fputc ('\n', asm_out_file);
1845 ASM_OUTPUT_LABEL (asm_out_file, l1);
1847 /* ??? This always emits a 4 byte offset when for_eh is true, but it
1848 emits a target dependent sized offset when for_eh is not true.
1849 This inconsistency may confuse gdb. The only case where we need a
1850 non-4 byte offset is for the Irix6 N64 ABI, so we may lose SGI
1851 compatibility if we emit a 4 byte offset. We need a 4 byte offset
1852 though in order to be compatible with the dwarf_fde struct in frame.c.
1853 If the for_eh case is changed, then the struct in frame.c has
1854 to be adjusted appropriately. */
1855 if (for_eh)
1856 ASM_OUTPUT_DWARF_DELTA4 (asm_out_file, l1, "__FRAME_BEGIN__");
1857 else
1858 ASM_OUTPUT_DWARF_OFFSET (asm_out_file, stripattributes (FRAME_SECTION));
1859 if (flag_debug_asm)
1860 fprintf (asm_out_file, "\t%s FDE CIE offset", ASM_COMMENT_START);
1862 fputc ('\n', asm_out_file);
1863 ASM_OUTPUT_DWARF_ADDR (asm_out_file, fde->dw_fde_begin);
1864 if (flag_debug_asm)
1865 fprintf (asm_out_file, "\t%s FDE initial location", ASM_COMMENT_START);
1867 fputc ('\n', asm_out_file);
1868 ASM_OUTPUT_DWARF_ADDR_DELTA (asm_out_file,
1869 fde->dw_fde_end, fde->dw_fde_begin);
1870 if (flag_debug_asm)
1871 fprintf (asm_out_file, "\t%s FDE address range", ASM_COMMENT_START);
1873 fputc ('\n', asm_out_file);
1875 /* Loop through the Call Frame Instructions associated with
1876 this FDE. */
1877 fde->dw_fde_current_label = fde->dw_fde_begin;
1878 for (cfi = fde->dw_fde_cfi; cfi != NULL; cfi = cfi->dw_cfi_next)
1879 output_cfi (cfi, fde);
1881 /* Pad the FDE out to an address sized boundary. */
1882 ASM_OUTPUT_ALIGN (asm_out_file, floor_log2 (PTR_SIZE));
1883 ASM_OUTPUT_LABEL (asm_out_file, l2);
1884 #ifdef ASM_OUTPUT_DEFINE_LABEL_DIFFERENCE_SYMBOL
1885 ASM_OUTPUT_DEFINE_LABEL_DIFFERENCE_SYMBOL (asm_out_file, ld, l2, l1);
1886 if (flag_debug_asm)
1887 fprintf (asm_out_file, "\t%s FDE Length Symbol", ASM_COMMENT_START);
1888 fputc ('\n', asm_out_file);
1889 #endif
1891 #ifndef EH_FRAME_SECTION
1892 if (for_eh)
1894 /* Emit terminating zero for table. */
1895 ASM_OUTPUT_DWARF_DATA4 (asm_out_file, 0);
1896 fputc ('\n', asm_out_file);
1898 #endif
1899 #ifdef MIPS_DEBUGGING_INFO
1900 /* Work around Irix 6 assembler bug whereby labels at the end of a section
1901 get a value of 0. Putting .align 0 after the label fixes it. */
1902 ASM_OUTPUT_ALIGN (asm_out_file, 0);
1903 #endif
1905 /* Turn off app to make assembly quicker. */
1906 if (flag_debug_asm)
1907 app_disable ();
1910 /* Output a marker (i.e. a label) for the beginning of a function, before
1911 the prologue. */
1913 void
1914 dwarf2out_begin_prologue ()
1916 char label[MAX_ARTIFICIAL_LABEL_BYTES];
1917 register dw_fde_ref fde;
1919 ++current_funcdef_number;
1921 function_section (current_function_decl);
1922 ASM_GENERATE_INTERNAL_LABEL (label, FUNC_BEGIN_LABEL,
1923 current_funcdef_number);
1924 ASM_OUTPUT_LABEL (asm_out_file, label);
1926 /* Expand the fde table if necessary. */
1927 if (fde_table_in_use == fde_table_allocated)
1929 fde_table_allocated += FDE_TABLE_INCREMENT;
1930 fde_table
1931 = (dw_fde_ref) xrealloc (fde_table,
1932 fde_table_allocated * sizeof (dw_fde_node));
1935 /* Record the FDE associated with this function. */
1936 current_funcdef_fde = fde_table_in_use;
1938 /* Add the new FDE at the end of the fde_table. */
1939 fde = &fde_table[fde_table_in_use++];
1940 fde->dw_fde_begin = xstrdup (label);
1941 fde->dw_fde_current_label = NULL;
1942 fde->dw_fde_end = NULL;
1943 fde->dw_fde_cfi = NULL;
1945 args_size = old_args_size = 0;
1948 /* Output a marker (i.e. a label) for the absolute end of the generated code
1949 for a function definition. This gets called *after* the epilogue code has
1950 been generated. */
1952 void
1953 dwarf2out_end_epilogue ()
1955 dw_fde_ref fde;
1956 char label[MAX_ARTIFICIAL_LABEL_BYTES];
1958 /* Output a label to mark the endpoint of the code generated for this
1959 function. */
1960 ASM_GENERATE_INTERNAL_LABEL (label, FUNC_END_LABEL, current_funcdef_number);
1961 ASM_OUTPUT_LABEL (asm_out_file, label);
1962 fde = &fde_table[fde_table_in_use - 1];
1963 fde->dw_fde_end = xstrdup (label);
1966 void
1967 dwarf2out_frame_init ()
1969 /* Allocate the initial hunk of the fde_table. */
1970 fde_table = (dw_fde_ref) xcalloc (FDE_TABLE_INCREMENT, sizeof (dw_fde_node));
1971 fde_table_allocated = FDE_TABLE_INCREMENT;
1972 fde_table_in_use = 0;
1974 /* Generate the CFA instructions common to all FDE's. Do it now for the
1975 sake of lookup_cfa. */
1977 #ifdef DWARF2_UNWIND_INFO
1978 /* On entry, the Canonical Frame Address is at SP. */
1979 dwarf2out_def_cfa (NULL, STACK_POINTER_REGNUM, INCOMING_FRAME_SP_OFFSET);
1980 initial_return_save (INCOMING_RETURN_ADDR_RTX);
1981 #endif
1984 void
1985 dwarf2out_frame_finish ()
1987 /* Output call frame information. */
1988 #ifdef MIPS_DEBUGGING_INFO
1989 if (write_symbols == DWARF2_DEBUG)
1990 output_call_frame_info (0);
1991 if (flag_exceptions && ! exceptions_via_longjmp)
1992 output_call_frame_info (1);
1993 #else
1994 if (write_symbols == DWARF2_DEBUG
1995 || (flag_exceptions && ! exceptions_via_longjmp))
1996 output_call_frame_info (1);
1997 #endif
2000 #endif /* .debug_frame support */
2002 /* And now, the support for symbolic debugging information. */
2003 #ifdef DWARF2_DEBUGGING_INFO
2005 /* NOTE: In the comments in this file, many references are made to
2006 "Debugging Information Entries". This term is abbreviated as `DIE'
2007 throughout the remainder of this file. */
2009 /* An internal representation of the DWARF output is built, and then
2010 walked to generate the DWARF debugging info. The walk of the internal
2011 representation is done after the entire program has been compiled.
2012 The types below are used to describe the internal representation. */
2014 /* Each DIE may have a series of attribute/value pairs. Values
2015 can take on several forms. The forms that are used in this
2016 implementation are listed below. */
2018 typedef enum
2020 dw_val_class_addr,
2021 dw_val_class_loc,
2022 dw_val_class_const,
2023 dw_val_class_unsigned_const,
2024 dw_val_class_long_long,
2025 dw_val_class_float,
2026 dw_val_class_flag,
2027 dw_val_class_die_ref,
2028 dw_val_class_fde_ref,
2029 dw_val_class_lbl_id,
2030 dw_val_class_lbl_offset,
2031 dw_val_class_str
2033 dw_val_class;
2035 /* Various DIE's use offsets relative to the beginning of the
2036 .debug_info section to refer to each other. */
2038 typedef long int dw_offset;
2040 /* Define typedefs here to avoid circular dependencies. */
2042 typedef struct die_struct *dw_die_ref;
2043 typedef struct dw_attr_struct *dw_attr_ref;
2044 typedef struct dw_val_struct *dw_val_ref;
2045 typedef struct dw_line_info_struct *dw_line_info_ref;
2046 typedef struct dw_separate_line_info_struct *dw_separate_line_info_ref;
2047 typedef struct dw_loc_descr_struct *dw_loc_descr_ref;
2048 typedef struct pubname_struct *pubname_ref;
2049 typedef dw_die_ref *arange_ref;
2051 /* Describe a double word constant value. */
2053 typedef struct dw_long_long_struct
2055 unsigned long hi;
2056 unsigned long low;
2058 dw_long_long_const;
2060 /* Describe a floating point constant value. */
2062 typedef struct dw_fp_struct
2064 long *array;
2065 unsigned length;
2067 dw_float_const;
2069 /* Each entry in the line_info_table maintains the file and
2070 line number associated with the label generated for that
2071 entry. The label gives the PC value associated with
2072 the line number entry. */
2074 typedef struct dw_line_info_struct
2076 unsigned long dw_file_num;
2077 unsigned long dw_line_num;
2079 dw_line_info_entry;
2081 /* Line information for functions in separate sections; each one gets its
2082 own sequence. */
2083 typedef struct dw_separate_line_info_struct
2085 unsigned long dw_file_num;
2086 unsigned long dw_line_num;
2087 unsigned long function;
2089 dw_separate_line_info_entry;
2091 /* The dw_val_node describes an attribute's value, as it is
2092 represented internally. */
2094 typedef struct dw_val_struct
2096 dw_val_class val_class;
2097 union
2099 char *val_addr;
2100 dw_loc_descr_ref val_loc;
2101 long int val_int;
2102 long unsigned val_unsigned;
2103 dw_long_long_const val_long_long;
2104 dw_float_const val_float;
2105 dw_die_ref val_die_ref;
2106 unsigned val_fde_index;
2107 char *val_str;
2108 char *val_lbl_id;
2109 unsigned char val_flag;
2113 dw_val_node;
2115 /* Locations in memory are described using a sequence of stack machine
2116 operations. */
2118 typedef struct dw_loc_descr_struct
2120 dw_loc_descr_ref dw_loc_next;
2121 enum dwarf_location_atom dw_loc_opc;
2122 dw_val_node dw_loc_oprnd1;
2123 dw_val_node dw_loc_oprnd2;
2125 dw_loc_descr_node;
2127 /* Each DIE attribute has a field specifying the attribute kind,
2128 a link to the next attribute in the chain, and an attribute value.
2129 Attributes are typically linked below the DIE they modify. */
2131 typedef struct dw_attr_struct
2133 enum dwarf_attribute dw_attr;
2134 dw_attr_ref dw_attr_next;
2135 dw_val_node dw_attr_val;
2137 dw_attr_node;
2139 /* The Debugging Information Entry (DIE) structure */
2141 typedef struct die_struct
2143 enum dwarf_tag die_tag;
2144 dw_attr_ref die_attr;
2145 dw_attr_ref die_attr_last;
2146 dw_die_ref die_parent;
2147 dw_die_ref die_child;
2148 dw_die_ref die_child_last;
2149 dw_die_ref die_sib;
2150 dw_offset die_offset;
2151 unsigned long die_abbrev;
2153 die_node;
2155 /* The pubname structure */
2157 typedef struct pubname_struct
2159 dw_die_ref die;
2160 char * name;
2162 pubname_entry;
2164 /* The limbo die list structure. */
2165 typedef struct limbo_die_struct
2167 dw_die_ref die;
2168 struct limbo_die_struct *next;
2170 limbo_die_node;
2172 /* How to start an assembler comment. */
2173 #ifndef ASM_COMMENT_START
2174 #define ASM_COMMENT_START ";#"
2175 #endif
2177 /* Define a macro which returns non-zero for a TYPE_DECL which was
2178 implicitly generated for a tagged type.
2180 Note that unlike the gcc front end (which generates a NULL named
2181 TYPE_DECL node for each complete tagged type, each array type, and
2182 each function type node created) the g++ front end generates a
2183 _named_ TYPE_DECL node for each tagged type node created.
2184 These TYPE_DECLs have DECL_ARTIFICIAL set, so we know not to
2185 generate a DW_TAG_typedef DIE for them. */
2187 #define TYPE_DECL_IS_STUB(decl) \
2188 (DECL_NAME (decl) == NULL_TREE \
2189 || (DECL_ARTIFICIAL (decl) \
2190 && is_tagged_type (TREE_TYPE (decl)) \
2191 && ((decl == TYPE_STUB_DECL (TREE_TYPE (decl))) \
2192 /* This is necessary for stub decls that \
2193 appear in nested inline functions. */ \
2194 || (DECL_ABSTRACT_ORIGIN (decl) != NULL_TREE \
2195 && (decl_ultimate_origin (decl) \
2196 == TYPE_STUB_DECL (TREE_TYPE (decl)))))))
2198 /* Information concerning the compilation unit's programming
2199 language, and compiler version. */
2201 extern int flag_traditional;
2202 extern char *version_string;
2204 /* Fixed size portion of the DWARF compilation unit header. */
2205 #define DWARF_COMPILE_UNIT_HEADER_SIZE (2 * DWARF_OFFSET_SIZE + 3)
2207 /* Fixed size portion of debugging line information prolog. */
2208 #define DWARF_LINE_PROLOG_HEADER_SIZE 5
2210 /* Fixed size portion of public names info. */
2211 #define DWARF_PUBNAMES_HEADER_SIZE (2 * DWARF_OFFSET_SIZE + 2)
2213 /* Fixed size portion of the address range info. */
2214 #define DWARF_ARANGES_HEADER_SIZE \
2215 (DWARF_ROUND (2 * DWARF_OFFSET_SIZE + 4, PTR_SIZE * 2) - DWARF_OFFSET_SIZE)
2217 /* The default is to have gcc emit the line number tables. */
2218 #ifndef DWARF2_ASM_LINE_DEBUG_INFO
2219 #define DWARF2_ASM_LINE_DEBUG_INFO 0
2220 #endif
2222 /* Define the architecture-dependent minimum instruction length (in bytes).
2223 In this implementation of DWARF, this field is used for information
2224 purposes only. Since GCC generates assembly language, we have
2225 no a priori knowledge of how many instruction bytes are generated
2226 for each source line, and therefore can use only the DW_LNE_set_address
2227 and DW_LNS_fixed_advance_pc line information commands. */
2229 #ifndef DWARF_LINE_MIN_INSTR_LENGTH
2230 #define DWARF_LINE_MIN_INSTR_LENGTH 4
2231 #endif
2233 /* Minimum line offset in a special line info. opcode.
2234 This value was chosen to give a reasonable range of values. */
2235 #define DWARF_LINE_BASE -10
2237 /* First special line opcde - leave room for the standard opcodes. */
2238 #define DWARF_LINE_OPCODE_BASE 10
2240 /* Range of line offsets in a special line info. opcode. */
2241 #define DWARF_LINE_RANGE (254-DWARF_LINE_OPCODE_BASE+1)
2243 /* Flag that indicates the initial value of the is_stmt_start flag.
2244 In the present implementation, we do not mark any lines as
2245 the beginning of a source statement, because that information
2246 is not made available by the GCC front-end. */
2247 #define DWARF_LINE_DEFAULT_IS_STMT_START 1
2249 /* This location is used by calc_die_sizes() to keep track
2250 the offset of each DIE within the .debug_info section. */
2251 static unsigned long next_die_offset;
2253 /* Record the root of the DIE's built for the current compilation unit. */
2254 static dw_die_ref comp_unit_die;
2256 /* A list of DIEs with a NULL parent waiting to be relocated. */
2257 static limbo_die_node *limbo_die_list = 0;
2259 /* Pointer to an array of filenames referenced by this compilation unit. */
2260 static char **file_table;
2262 /* Total number of entries in the table (i.e. array) pointed to by
2263 `file_table'. This is the *total* and includes both used and unused
2264 slots. */
2265 static unsigned file_table_allocated;
2267 /* Number of entries in the file_table which are actually in use. */
2268 static unsigned file_table_in_use;
2270 /* Size (in elements) of increments by which we may expand the filename
2271 table. */
2272 #define FILE_TABLE_INCREMENT 64
2274 /* Local pointer to the name of the main input file. Initialized in
2275 dwarf2out_init. */
2276 static char *primary_filename;
2278 /* For Dwarf output, we must assign lexical-blocks id numbers in the order in
2279 which their beginnings are encountered. We output Dwarf debugging info
2280 that refers to the beginnings and ends of the ranges of code for each
2281 lexical block. The labels themselves are generated in final.c, which
2282 assigns numbers to the blocks in the same way. */
2283 static unsigned next_block_number = 2;
2285 /* A pointer to the base of a table of references to DIE's that describe
2286 declarations. The table is indexed by DECL_UID() which is a unique
2287 number identifying each decl. */
2288 static dw_die_ref *decl_die_table;
2290 /* Number of elements currently allocated for the decl_die_table. */
2291 static unsigned decl_die_table_allocated;
2293 /* Number of elements in decl_die_table currently in use. */
2294 static unsigned decl_die_table_in_use;
2296 /* Size (in elements) of increments by which we may expand the
2297 decl_die_table. */
2298 #define DECL_DIE_TABLE_INCREMENT 256
2300 /* Structure used for the decl_scope table. scope is the current declaration
2301 scope, and previous is the entry that is the parent of this scope. This
2302 is usually but not always the immediately preceeding entry. */
2304 typedef struct decl_scope_struct
2306 tree scope;
2307 int previous;
2309 decl_scope_node;
2311 /* A pointer to the base of a table of references to declaration
2312 scopes. This table is a display which tracks the nesting
2313 of declaration scopes at the current scope and containing
2314 scopes. This table is used to find the proper place to
2315 define type declaration DIE's. */
2316 static decl_scope_node *decl_scope_table;
2318 /* Number of elements currently allocated for the decl_scope_table. */
2319 static int decl_scope_table_allocated;
2321 /* Current level of nesting of declaration scopes. */
2322 static int decl_scope_depth;
2324 /* Size (in elements) of increments by which we may expand the
2325 decl_scope_table. */
2326 #define DECL_SCOPE_TABLE_INCREMENT 64
2328 /* A pointer to the base of a list of references to DIE's that
2329 are uniquely identified by their tag, presence/absence of
2330 children DIE's, and list of attribute/value pairs. */
2331 static dw_die_ref *abbrev_die_table;
2333 /* Number of elements currently allocated for abbrev_die_table. */
2334 static unsigned abbrev_die_table_allocated;
2336 /* Number of elements in type_die_table currently in use. */
2337 static unsigned abbrev_die_table_in_use;
2339 /* Size (in elements) of increments by which we may expand the
2340 abbrev_die_table. */
2341 #define ABBREV_DIE_TABLE_INCREMENT 256
2343 /* A pointer to the base of a table that contains line information
2344 for each source code line in .text in the compilation unit. */
2345 static dw_line_info_ref line_info_table;
2347 /* Number of elements currently allocated for line_info_table. */
2348 static unsigned line_info_table_allocated;
2350 /* Number of elements in separate_line_info_table currently in use. */
2351 static unsigned separate_line_info_table_in_use;
2353 /* A pointer to the base of a table that contains line information
2354 for each source code line outside of .text in the compilation unit. */
2355 static dw_separate_line_info_ref separate_line_info_table;
2357 /* Number of elements currently allocated for separate_line_info_table. */
2358 static unsigned separate_line_info_table_allocated;
2360 /* Number of elements in line_info_table currently in use. */
2361 static unsigned line_info_table_in_use;
2363 /* Size (in elements) of increments by which we may expand the
2364 line_info_table. */
2365 #define LINE_INFO_TABLE_INCREMENT 1024
2367 /* A pointer to the base of a table that contains a list of publicly
2368 accessible names. */
2369 static pubname_ref pubname_table;
2371 /* Number of elements currently allocated for pubname_table. */
2372 static unsigned pubname_table_allocated;
2374 /* Number of elements in pubname_table currently in use. */
2375 static unsigned pubname_table_in_use;
2377 /* Size (in elements) of increments by which we may expand the
2378 pubname_table. */
2379 #define PUBNAME_TABLE_INCREMENT 64
2381 /* A pointer to the base of a table that contains a list of publicly
2382 accessible names. */
2383 static arange_ref arange_table;
2385 /* Number of elements currently allocated for arange_table. */
2386 static unsigned arange_table_allocated;
2388 /* Number of elements in arange_table currently in use. */
2389 static unsigned arange_table_in_use;
2391 /* Size (in elements) of increments by which we may expand the
2392 arange_table. */
2393 #define ARANGE_TABLE_INCREMENT 64
2395 /* A pointer to the base of a list of pending types which we haven't
2396 generated DIEs for yet, but which we will have to come back to
2397 later on. */
2399 static tree *pending_types_list;
2401 /* Number of elements currently allocated for the pending_types_list. */
2402 static unsigned pending_types_allocated;
2404 /* Number of elements of pending_types_list currently in use. */
2405 static unsigned pending_types;
2407 /* Size (in elements) of increments by which we may expand the pending
2408 types list. Actually, a single hunk of space of this size should
2409 be enough for most typical programs. */
2410 #define PENDING_TYPES_INCREMENT 64
2412 /* A pointer to the base of a list of incomplete types which might be
2413 completed at some later time. */
2415 static tree *incomplete_types_list;
2417 /* Number of elements currently allocated for the incomplete_types_list. */
2418 static unsigned incomplete_types_allocated;
2420 /* Number of elements of incomplete_types_list currently in use. */
2421 static unsigned incomplete_types;
2423 /* Size (in elements) of increments by which we may expand the incomplete
2424 types list. Actually, a single hunk of space of this size should
2425 be enough for most typical programs. */
2426 #define INCOMPLETE_TYPES_INCREMENT 64
2428 /* Record whether the function being analyzed contains inlined functions. */
2429 static int current_function_has_inlines;
2430 #if 0 && defined (MIPS_DEBUGGING_INFO)
2431 static int comp_unit_has_inlines;
2432 #endif
2434 /* A pointer to the ..._DECL node which we have most recently been working
2435 on. We keep this around just in case something about it looks screwy and
2436 we want to tell the user what the source coordinates for the actual
2437 declaration are. */
2438 static tree dwarf_last_decl;
2440 /* Forward declarations for functions defined in this file. */
2442 static void addr_const_to_string PROTO((dyn_string_t, rtx));
2443 static char *addr_to_string PROTO((rtx));
2444 static int is_pseudo_reg PROTO((rtx));
2445 static tree type_main_variant PROTO((tree));
2446 static int is_tagged_type PROTO((tree));
2447 static const char *dwarf_tag_name PROTO((unsigned));
2448 static const char *dwarf_attr_name PROTO((unsigned));
2449 static const char *dwarf_form_name PROTO((unsigned));
2450 static const char *dwarf_stack_op_name PROTO((unsigned));
2451 #if 0
2452 static const char *dwarf_type_encoding_name PROTO((unsigned));
2453 #endif
2454 static tree decl_ultimate_origin PROTO((tree));
2455 static tree block_ultimate_origin PROTO((tree));
2456 static tree decl_class_context PROTO((tree));
2457 static void add_dwarf_attr PROTO((dw_die_ref, dw_attr_ref));
2458 static void add_AT_flag PROTO((dw_die_ref,
2459 enum dwarf_attribute,
2460 unsigned));
2461 static void add_AT_int PROTO((dw_die_ref,
2462 enum dwarf_attribute, long));
2463 static void add_AT_unsigned PROTO((dw_die_ref,
2464 enum dwarf_attribute,
2465 unsigned long));
2466 static void add_AT_long_long PROTO((dw_die_ref,
2467 enum dwarf_attribute,
2468 unsigned long, unsigned long));
2469 static void add_AT_float PROTO((dw_die_ref,
2470 enum dwarf_attribute,
2471 unsigned, long *));
2472 static void add_AT_string PROTO((dw_die_ref,
2473 enum dwarf_attribute,
2474 const char *));
2475 static void add_AT_die_ref PROTO((dw_die_ref,
2476 enum dwarf_attribute,
2477 dw_die_ref));
2478 static void add_AT_fde_ref PROTO((dw_die_ref,
2479 enum dwarf_attribute,
2480 unsigned));
2481 static void add_AT_loc PROTO((dw_die_ref,
2482 enum dwarf_attribute,
2483 dw_loc_descr_ref));
2484 static void add_AT_addr PROTO((dw_die_ref,
2485 enum dwarf_attribute, char *));
2486 static void add_AT_lbl_id PROTO((dw_die_ref,
2487 enum dwarf_attribute, char *));
2488 static void add_AT_lbl_offset PROTO((dw_die_ref,
2489 enum dwarf_attribute, char *));
2490 static int is_extern_subr_die PROTO((dw_die_ref));
2491 static dw_attr_ref get_AT PROTO((dw_die_ref,
2492 enum dwarf_attribute));
2493 static char *get_AT_low_pc PROTO((dw_die_ref));
2494 static char *get_AT_hi_pc PROTO((dw_die_ref));
2495 static char *get_AT_string PROTO((dw_die_ref,
2496 enum dwarf_attribute));
2497 static int get_AT_flag PROTO((dw_die_ref,
2498 enum dwarf_attribute));
2499 static unsigned get_AT_unsigned PROTO((dw_die_ref,
2500 enum dwarf_attribute));
2501 static int is_c_family PROTO((void));
2502 static int is_fortran PROTO((void));
2503 static void remove_AT PROTO((dw_die_ref,
2504 enum dwarf_attribute));
2505 static void remove_children PROTO((dw_die_ref));
2506 static void add_child_die PROTO((dw_die_ref, dw_die_ref));
2507 static dw_die_ref new_die PROTO((enum dwarf_tag, dw_die_ref));
2508 static dw_die_ref lookup_type_die PROTO((tree));
2509 static void equate_type_number_to_die PROTO((tree, dw_die_ref));
2510 static dw_die_ref lookup_decl_die PROTO((tree));
2511 static void equate_decl_number_to_die PROTO((tree, dw_die_ref));
2512 static dw_loc_descr_ref new_loc_descr PROTO((enum dwarf_location_atom,
2513 unsigned long, unsigned long));
2514 static void add_loc_descr PROTO((dw_loc_descr_ref *,
2515 dw_loc_descr_ref));
2516 static void print_spaces PROTO((FILE *));
2517 static void print_die PROTO((dw_die_ref, FILE *));
2518 static void print_dwarf_line_table PROTO((FILE *));
2519 static void add_sibling_attributes PROTO((dw_die_ref));
2520 static void build_abbrev_table PROTO((dw_die_ref));
2521 static unsigned long size_of_string PROTO((char *));
2522 static unsigned long size_of_loc_descr PROTO((dw_loc_descr_ref));
2523 static unsigned long size_of_locs PROTO((dw_loc_descr_ref));
2524 static int constant_size PROTO((long unsigned));
2525 static unsigned long size_of_die PROTO((dw_die_ref));
2526 static void calc_die_sizes PROTO((dw_die_ref));
2527 static unsigned long size_of_line_prolog PROTO((void));
2528 static unsigned long size_of_line_info PROTO((void));
2529 static unsigned long size_of_pubnames PROTO((void));
2530 static unsigned long size_of_aranges PROTO((void));
2531 static enum dwarf_form value_format PROTO((dw_val_ref));
2532 static void output_value_format PROTO((dw_val_ref));
2533 static void output_abbrev_section PROTO((void));
2534 static void output_loc_operands PROTO((dw_loc_descr_ref));
2535 static unsigned long sibling_offset PROTO((dw_die_ref));
2536 static void output_die PROTO((dw_die_ref));
2537 static void output_compilation_unit_header PROTO((void));
2538 static const char *dwarf2_name PROTO((tree, int));
2539 static void add_pubname PROTO((tree, dw_die_ref));
2540 static void output_pubnames PROTO((void));
2541 static void add_arange PROTO((tree, dw_die_ref));
2542 static void output_aranges PROTO((void));
2543 static void output_line_info PROTO((void));
2544 static int is_body_block PROTO((tree));
2545 static dw_die_ref base_type_die PROTO((tree));
2546 static tree root_type PROTO((tree));
2547 static int is_base_type PROTO((tree));
2548 static dw_die_ref modified_type_die PROTO((tree, int, int, dw_die_ref));
2549 static int type_is_enum PROTO((tree));
2550 static dw_loc_descr_ref reg_loc_descriptor PROTO((rtx));
2551 static dw_loc_descr_ref based_loc_descr PROTO((unsigned, long));
2552 static int is_based_loc PROTO((rtx));
2553 static dw_loc_descr_ref mem_loc_descriptor PROTO((rtx, enum machine_mode mode));
2554 static dw_loc_descr_ref concat_loc_descriptor PROTO((rtx, rtx));
2555 static dw_loc_descr_ref loc_descriptor PROTO((rtx));
2556 static unsigned ceiling PROTO((unsigned, unsigned));
2557 static tree field_type PROTO((tree));
2558 static unsigned simple_type_align_in_bits PROTO((tree));
2559 static unsigned simple_type_size_in_bits PROTO((tree));
2560 static unsigned field_byte_offset PROTO((tree));
2561 static void add_AT_location_description PROTO((dw_die_ref,
2562 enum dwarf_attribute, rtx));
2563 static void add_data_member_location_attribute PROTO((dw_die_ref, tree));
2564 static void add_const_value_attribute PROTO((dw_die_ref, rtx));
2565 static void add_location_or_const_value_attribute PROTO((dw_die_ref, tree));
2566 static void add_name_attribute PROTO((dw_die_ref, const char *));
2567 static void add_bound_info PROTO((dw_die_ref,
2568 enum dwarf_attribute, tree));
2569 static void add_subscript_info PROTO((dw_die_ref, tree));
2570 static void add_byte_size_attribute PROTO((dw_die_ref, tree));
2571 static void add_bit_offset_attribute PROTO((dw_die_ref, tree));
2572 static void add_bit_size_attribute PROTO((dw_die_ref, tree));
2573 static void add_prototyped_attribute PROTO((dw_die_ref, tree));
2574 static void add_abstract_origin_attribute PROTO((dw_die_ref, tree));
2575 static void add_pure_or_virtual_attribute PROTO((dw_die_ref, tree));
2576 static void add_src_coords_attributes PROTO((dw_die_ref, tree));
2577 static void add_name_and_src_coords_attributes PROTO((dw_die_ref, tree));
2578 static void push_decl_scope PROTO((tree));
2579 static dw_die_ref scope_die_for PROTO((tree, dw_die_ref));
2580 static void pop_decl_scope PROTO((void));
2581 static void add_type_attribute PROTO((dw_die_ref, tree, int, int,
2582 dw_die_ref));
2583 static char *type_tag PROTO((tree));
2584 static tree member_declared_type PROTO((tree));
2585 #if 0
2586 static char *decl_start_label PROTO((tree));
2587 #endif
2588 static void gen_array_type_die PROTO((tree, dw_die_ref));
2589 static void gen_set_type_die PROTO((tree, dw_die_ref));
2590 #if 0
2591 static void gen_entry_point_die PROTO((tree, dw_die_ref));
2592 #endif
2593 static void pend_type PROTO((tree));
2594 static void output_pending_types_for_scope PROTO((dw_die_ref));
2595 static void gen_inlined_enumeration_type_die PROTO((tree, dw_die_ref));
2596 static void gen_inlined_structure_type_die PROTO((tree, dw_die_ref));
2597 static void gen_inlined_union_type_die PROTO((tree, dw_die_ref));
2598 static void gen_enumeration_type_die PROTO((tree, dw_die_ref));
2599 static dw_die_ref gen_formal_parameter_die PROTO((tree, dw_die_ref));
2600 static void gen_unspecified_parameters_die PROTO((tree, dw_die_ref));
2601 static void gen_formal_types_die PROTO((tree, dw_die_ref));
2602 static void gen_subprogram_die PROTO((tree, dw_die_ref));
2603 static void gen_variable_die PROTO((tree, dw_die_ref));
2604 static void gen_label_die PROTO((tree, dw_die_ref));
2605 static void gen_lexical_block_die PROTO((tree, dw_die_ref, int));
2606 static void gen_inlined_subroutine_die PROTO((tree, dw_die_ref, int));
2607 static void gen_field_die PROTO((tree, dw_die_ref));
2608 static void gen_ptr_to_mbr_type_die PROTO((tree, dw_die_ref));
2609 static void gen_compile_unit_die PROTO((char *));
2610 static void gen_string_type_die PROTO((tree, dw_die_ref));
2611 static void gen_inheritance_die PROTO((tree, dw_die_ref));
2612 static void gen_member_die PROTO((tree, dw_die_ref));
2613 static void gen_struct_or_union_type_die PROTO((tree, dw_die_ref));
2614 static void gen_subroutine_type_die PROTO((tree, dw_die_ref));
2615 static void gen_typedef_die PROTO((tree, dw_die_ref));
2616 static void gen_type_die PROTO((tree, dw_die_ref));
2617 static void gen_tagged_type_instantiation_die PROTO((tree, dw_die_ref));
2618 static void gen_block_die PROTO((tree, dw_die_ref, int));
2619 static void decls_for_scope PROTO((tree, dw_die_ref, int));
2620 static int is_redundant_typedef PROTO((tree));
2621 static void gen_decl_die PROTO((tree, dw_die_ref));
2622 static unsigned lookup_filename PROTO((const char *));
2623 static void add_incomplete_type PROTO((tree));
2624 static void retry_incomplete_types PROTO((void));
2626 /* Section names used to hold DWARF debugging information. */
2627 #ifndef DEBUG_INFO_SECTION
2628 #define DEBUG_INFO_SECTION ".debug_info"
2629 #endif
2630 #ifndef ABBREV_SECTION
2631 #define ABBREV_SECTION ".debug_abbrev"
2632 #endif
2633 #ifndef ARANGES_SECTION
2634 #define ARANGES_SECTION ".debug_aranges"
2635 #endif
2636 #ifndef DW_MACINFO_SECTION
2637 #define DW_MACINFO_SECTION ".debug_macinfo"
2638 #endif
2639 #ifndef DEBUG_LINE_SECTION
2640 #define DEBUG_LINE_SECTION ".debug_line"
2641 #endif
2642 #ifndef LOC_SECTION
2643 #define LOC_SECTION ".debug_loc"
2644 #endif
2645 #ifndef PUBNAMES_SECTION
2646 #define PUBNAMES_SECTION ".debug_pubnames"
2647 #endif
2648 #ifndef STR_SECTION
2649 #define STR_SECTION ".debug_str"
2650 #endif
2652 /* Standard ELF section names for compiled code and data. */
2653 #ifndef TEXT_SECTION
2654 #define TEXT_SECTION ".text"
2655 #endif
2656 #ifndef DATA_SECTION
2657 #define DATA_SECTION ".data"
2658 #endif
2659 #ifndef BSS_SECTION
2660 #define BSS_SECTION ".bss"
2661 #endif
2663 /* Labels we insert at beginning sections we can reference instead of
2664 the section names themselves. */
2666 #ifndef TEXT_SECTION_LABEL
2667 #define TEXT_SECTION_LABEL "Ltext"
2668 #endif
2669 #ifndef DEBUG_LINE_SECTION_LABEL
2670 #define DEBUG_LINE_SECTION_LABEL "Ldebug_line"
2671 #endif
2672 #ifndef DEBUG_INFO_SECTION_LABEL
2673 #define DEBUG_INFO_SECTION_LABEL "Ldebug_info"
2674 #endif
2675 #ifndef ABBREV_SECTION_LABEL
2676 #define ABBREV_SECTION_LABEL "Ldebug_abbrev"
2677 #endif
2680 /* Definitions of defaults for formats and names of various special
2681 (artificial) labels which may be generated within this file (when the -g
2682 options is used and DWARF_DEBUGGING_INFO is in effect.
2683 If necessary, these may be overridden from within the tm.h file, but
2684 typically, overriding these defaults is unnecessary. */
2686 static char text_end_label[MAX_ARTIFICIAL_LABEL_BYTES];
2687 static char text_section_label[MAX_ARTIFICIAL_LABEL_BYTES];
2688 static char abbrev_section_label[MAX_ARTIFICIAL_LABEL_BYTES];
2689 static char debug_info_section_label[MAX_ARTIFICIAL_LABEL_BYTES];
2690 static char debug_line_section_label[MAX_ARTIFICIAL_LABEL_BYTES];
2692 #ifndef TEXT_END_LABEL
2693 #define TEXT_END_LABEL "Letext"
2694 #endif
2695 #ifndef DATA_END_LABEL
2696 #define DATA_END_LABEL "Ledata"
2697 #endif
2698 #ifndef BSS_END_LABEL
2699 #define BSS_END_LABEL "Lebss"
2700 #endif
2701 #ifndef INSN_LABEL_FMT
2702 #define INSN_LABEL_FMT "LI%u_"
2703 #endif
2704 #ifndef BLOCK_BEGIN_LABEL
2705 #define BLOCK_BEGIN_LABEL "LBB"
2706 #endif
2707 #ifndef BLOCK_END_LABEL
2708 #define BLOCK_END_LABEL "LBE"
2709 #endif
2710 #ifndef BODY_BEGIN_LABEL
2711 #define BODY_BEGIN_LABEL "Lbb"
2712 #endif
2713 #ifndef BODY_END_LABEL
2714 #define BODY_END_LABEL "Lbe"
2715 #endif
2716 #ifndef LINE_CODE_LABEL
2717 #define LINE_CODE_LABEL "LM"
2718 #endif
2719 #ifndef SEPARATE_LINE_CODE_LABEL
2720 #define SEPARATE_LINE_CODE_LABEL "LSM"
2721 #endif
2723 /* Convert a reference to the assembler name of a C-level name. This
2724 macro has the same effect as ASM_OUTPUT_LABELREF, but copies to
2725 a string rather than writing to a file. */
2726 #ifndef ASM_NAME_TO_STRING
2727 #define ASM_NAME_TO_STRING(STR, NAME) \
2728 do { \
2729 if ((NAME)[0] == '*') \
2730 dyn_string_append (STR, NAME + 1); \
2731 else \
2733 const char *newstr; \
2734 STRIP_NAME_ENCODING (newstr, NAME); \
2735 dyn_string_append (STR, user_label_prefix); \
2736 dyn_string_append (STR, newstr); \
2739 while (0)
2740 #endif
2742 /* Convert an integer constant expression into assembler syntax. Addition
2743 and subtraction are the only arithmetic that may appear in these
2744 expressions. This is an adaptation of output_addr_const in final.c.
2745 Here, the target of the conversion is a string buffer. We can't use
2746 output_addr_const directly, because it writes to a file. */
2748 static void
2749 addr_const_to_string (str, x)
2750 dyn_string_t str;
2751 rtx x;
2753 char buf1[256];
2755 restart:
2756 switch (GET_CODE (x))
2758 case PC:
2759 if (flag_pic)
2760 dyn_string_append (str, ",");
2761 else
2762 abort ();
2763 break;
2765 case SYMBOL_REF:
2766 ASM_NAME_TO_STRING (str, XSTR (x, 0));
2767 break;
2769 case LABEL_REF:
2770 ASM_GENERATE_INTERNAL_LABEL (buf1, "L", CODE_LABEL_NUMBER (XEXP (x, 0)));
2771 ASM_NAME_TO_STRING (str, buf1);
2772 break;
2774 case CODE_LABEL:
2775 ASM_GENERATE_INTERNAL_LABEL (buf1, "L", CODE_LABEL_NUMBER (x));
2776 ASM_NAME_TO_STRING (str, buf1);
2777 break;
2779 case CONST_INT:
2780 sprintf (buf1, HOST_WIDE_INT_PRINT_DEC, INTVAL (x));
2781 dyn_string_append (str, buf1);
2782 break;
2784 case CONST:
2785 /* This used to output parentheses around the expression, but that does
2786 not work on the 386 (either ATT or BSD assembler). */
2787 addr_const_to_string (str, XEXP (x, 0));
2788 break;
2790 case CONST_DOUBLE:
2791 if (GET_MODE (x) == VOIDmode)
2793 /* We can use %d if the number is one word and positive. */
2794 if (CONST_DOUBLE_HIGH (x))
2795 sprintf (buf1, HOST_WIDE_INT_PRINT_DOUBLE_HEX,
2796 CONST_DOUBLE_HIGH (x), CONST_DOUBLE_LOW (x));
2797 else if (CONST_DOUBLE_LOW (x) < 0)
2798 sprintf (buf1, HOST_WIDE_INT_PRINT_HEX, CONST_DOUBLE_LOW (x));
2799 else
2800 sprintf (buf1, HOST_WIDE_INT_PRINT_DEC,
2801 CONST_DOUBLE_LOW (x));
2802 dyn_string_append (str, buf1);
2804 else
2805 /* We can't handle floating point constants; PRINT_OPERAND must
2806 handle them. */
2807 output_operand_lossage ("floating constant misused");
2808 break;
2810 case PLUS:
2811 /* Some assemblers need integer constants to appear last (eg masm). */
2812 if (GET_CODE (XEXP (x, 0)) == CONST_INT)
2814 addr_const_to_string (str, XEXP (x, 1));
2815 if (INTVAL (XEXP (x, 0)) >= 0)
2816 dyn_string_append (str, "+");
2818 addr_const_to_string (str, XEXP (x, 0));
2820 else
2822 addr_const_to_string (str, XEXP (x, 0));
2823 if (INTVAL (XEXP (x, 1)) >= 0)
2824 dyn_string_append (str, "+");
2826 addr_const_to_string (str, XEXP (x, 1));
2828 break;
2830 case MINUS:
2831 /* Avoid outputting things like x-x or x+5-x, since some assemblers
2832 can't handle that. */
2833 x = simplify_subtraction (x);
2834 if (GET_CODE (x) != MINUS)
2835 goto restart;
2837 addr_const_to_string (str, XEXP (x, 0));
2838 dyn_string_append (str, "-");
2839 if (GET_CODE (XEXP (x, 1)) == CONST_INT
2840 && INTVAL (XEXP (x, 1)) < 0)
2842 dyn_string_append (str, ASM_OPEN_PAREN);
2843 addr_const_to_string (str, XEXP (x, 1));
2844 dyn_string_append (str, ASM_CLOSE_PAREN);
2846 else
2847 addr_const_to_string (str, XEXP (x, 1));
2848 break;
2850 case ZERO_EXTEND:
2851 case SIGN_EXTEND:
2852 addr_const_to_string (str, XEXP (x, 0));
2853 break;
2855 default:
2856 output_operand_lossage ("invalid expression as operand");
2860 /* Convert an address constant to a string, and return a pointer to
2861 a copy of the result, located on the heap. */
2863 static char *
2864 addr_to_string (x)
2865 rtx x;
2867 dyn_string_t ds = dyn_string_new (256);
2868 char *s;
2870 addr_const_to_string (ds, x);
2872 /* Return the dynamically allocated string, but free the
2873 dyn_string_t itself. */
2874 s = ds->s;
2875 free (ds);
2876 return s;
2879 /* Test if rtl node points to a pseudo register. */
2881 static inline int
2882 is_pseudo_reg (rtl)
2883 register rtx rtl;
2885 return (((GET_CODE (rtl) == REG) && (REGNO (rtl) >= FIRST_PSEUDO_REGISTER))
2886 || ((GET_CODE (rtl) == SUBREG)
2887 && (REGNO (XEXP (rtl, 0)) >= FIRST_PSEUDO_REGISTER)));
2890 /* Return a reference to a type, with its const and volatile qualifiers
2891 removed. */
2893 static inline tree
2894 type_main_variant (type)
2895 register tree type;
2897 type = TYPE_MAIN_VARIANT (type);
2899 /* There really should be only one main variant among any group of variants
2900 of a given type (and all of the MAIN_VARIANT values for all members of
2901 the group should point to that one type) but sometimes the C front-end
2902 messes this up for array types, so we work around that bug here. */
2904 if (TREE_CODE (type) == ARRAY_TYPE)
2905 while (type != TYPE_MAIN_VARIANT (type))
2906 type = TYPE_MAIN_VARIANT (type);
2908 return type;
2911 /* Return non-zero if the given type node represents a tagged type. */
2913 static inline int
2914 is_tagged_type (type)
2915 register tree type;
2917 register enum tree_code code = TREE_CODE (type);
2919 return (code == RECORD_TYPE || code == UNION_TYPE
2920 || code == QUAL_UNION_TYPE || code == ENUMERAL_TYPE);
2923 /* Convert a DIE tag into its string name. */
2925 static const char *
2926 dwarf_tag_name (tag)
2927 register unsigned tag;
2929 switch (tag)
2931 case DW_TAG_padding:
2932 return "DW_TAG_padding";
2933 case DW_TAG_array_type:
2934 return "DW_TAG_array_type";
2935 case DW_TAG_class_type:
2936 return "DW_TAG_class_type";
2937 case DW_TAG_entry_point:
2938 return "DW_TAG_entry_point";
2939 case DW_TAG_enumeration_type:
2940 return "DW_TAG_enumeration_type";
2941 case DW_TAG_formal_parameter:
2942 return "DW_TAG_formal_parameter";
2943 case DW_TAG_imported_declaration:
2944 return "DW_TAG_imported_declaration";
2945 case DW_TAG_label:
2946 return "DW_TAG_label";
2947 case DW_TAG_lexical_block:
2948 return "DW_TAG_lexical_block";
2949 case DW_TAG_member:
2950 return "DW_TAG_member";
2951 case DW_TAG_pointer_type:
2952 return "DW_TAG_pointer_type";
2953 case DW_TAG_reference_type:
2954 return "DW_TAG_reference_type";
2955 case DW_TAG_compile_unit:
2956 return "DW_TAG_compile_unit";
2957 case DW_TAG_string_type:
2958 return "DW_TAG_string_type";
2959 case DW_TAG_structure_type:
2960 return "DW_TAG_structure_type";
2961 case DW_TAG_subroutine_type:
2962 return "DW_TAG_subroutine_type";
2963 case DW_TAG_typedef:
2964 return "DW_TAG_typedef";
2965 case DW_TAG_union_type:
2966 return "DW_TAG_union_type";
2967 case DW_TAG_unspecified_parameters:
2968 return "DW_TAG_unspecified_parameters";
2969 case DW_TAG_variant:
2970 return "DW_TAG_variant";
2971 case DW_TAG_common_block:
2972 return "DW_TAG_common_block";
2973 case DW_TAG_common_inclusion:
2974 return "DW_TAG_common_inclusion";
2975 case DW_TAG_inheritance:
2976 return "DW_TAG_inheritance";
2977 case DW_TAG_inlined_subroutine:
2978 return "DW_TAG_inlined_subroutine";
2979 case DW_TAG_module:
2980 return "DW_TAG_module";
2981 case DW_TAG_ptr_to_member_type:
2982 return "DW_TAG_ptr_to_member_type";
2983 case DW_TAG_set_type:
2984 return "DW_TAG_set_type";
2985 case DW_TAG_subrange_type:
2986 return "DW_TAG_subrange_type";
2987 case DW_TAG_with_stmt:
2988 return "DW_TAG_with_stmt";
2989 case DW_TAG_access_declaration:
2990 return "DW_TAG_access_declaration";
2991 case DW_TAG_base_type:
2992 return "DW_TAG_base_type";
2993 case DW_TAG_catch_block:
2994 return "DW_TAG_catch_block";
2995 case DW_TAG_const_type:
2996 return "DW_TAG_const_type";
2997 case DW_TAG_constant:
2998 return "DW_TAG_constant";
2999 case DW_TAG_enumerator:
3000 return "DW_TAG_enumerator";
3001 case DW_TAG_file_type:
3002 return "DW_TAG_file_type";
3003 case DW_TAG_friend:
3004 return "DW_TAG_friend";
3005 case DW_TAG_namelist:
3006 return "DW_TAG_namelist";
3007 case DW_TAG_namelist_item:
3008 return "DW_TAG_namelist_item";
3009 case DW_TAG_packed_type:
3010 return "DW_TAG_packed_type";
3011 case DW_TAG_subprogram:
3012 return "DW_TAG_subprogram";
3013 case DW_TAG_template_type_param:
3014 return "DW_TAG_template_type_param";
3015 case DW_TAG_template_value_param:
3016 return "DW_TAG_template_value_param";
3017 case DW_TAG_thrown_type:
3018 return "DW_TAG_thrown_type";
3019 case DW_TAG_try_block:
3020 return "DW_TAG_try_block";
3021 case DW_TAG_variant_part:
3022 return "DW_TAG_variant_part";
3023 case DW_TAG_variable:
3024 return "DW_TAG_variable";
3025 case DW_TAG_volatile_type:
3026 return "DW_TAG_volatile_type";
3027 case DW_TAG_MIPS_loop:
3028 return "DW_TAG_MIPS_loop";
3029 case DW_TAG_format_label:
3030 return "DW_TAG_format_label";
3031 case DW_TAG_function_template:
3032 return "DW_TAG_function_template";
3033 case DW_TAG_class_template:
3034 return "DW_TAG_class_template";
3035 default:
3036 return "DW_TAG_<unknown>";
3040 /* Convert a DWARF attribute code into its string name. */
3042 static const char *
3043 dwarf_attr_name (attr)
3044 register unsigned attr;
3046 switch (attr)
3048 case DW_AT_sibling:
3049 return "DW_AT_sibling";
3050 case DW_AT_location:
3051 return "DW_AT_location";
3052 case DW_AT_name:
3053 return "DW_AT_name";
3054 case DW_AT_ordering:
3055 return "DW_AT_ordering";
3056 case DW_AT_subscr_data:
3057 return "DW_AT_subscr_data";
3058 case DW_AT_byte_size:
3059 return "DW_AT_byte_size";
3060 case DW_AT_bit_offset:
3061 return "DW_AT_bit_offset";
3062 case DW_AT_bit_size:
3063 return "DW_AT_bit_size";
3064 case DW_AT_element_list:
3065 return "DW_AT_element_list";
3066 case DW_AT_stmt_list:
3067 return "DW_AT_stmt_list";
3068 case DW_AT_low_pc:
3069 return "DW_AT_low_pc";
3070 case DW_AT_high_pc:
3071 return "DW_AT_high_pc";
3072 case DW_AT_language:
3073 return "DW_AT_language";
3074 case DW_AT_member:
3075 return "DW_AT_member";
3076 case DW_AT_discr:
3077 return "DW_AT_discr";
3078 case DW_AT_discr_value:
3079 return "DW_AT_discr_value";
3080 case DW_AT_visibility:
3081 return "DW_AT_visibility";
3082 case DW_AT_import:
3083 return "DW_AT_import";
3084 case DW_AT_string_length:
3085 return "DW_AT_string_length";
3086 case DW_AT_common_reference:
3087 return "DW_AT_common_reference";
3088 case DW_AT_comp_dir:
3089 return "DW_AT_comp_dir";
3090 case DW_AT_const_value:
3091 return "DW_AT_const_value";
3092 case DW_AT_containing_type:
3093 return "DW_AT_containing_type";
3094 case DW_AT_default_value:
3095 return "DW_AT_default_value";
3096 case DW_AT_inline:
3097 return "DW_AT_inline";
3098 case DW_AT_is_optional:
3099 return "DW_AT_is_optional";
3100 case DW_AT_lower_bound:
3101 return "DW_AT_lower_bound";
3102 case DW_AT_producer:
3103 return "DW_AT_producer";
3104 case DW_AT_prototyped:
3105 return "DW_AT_prototyped";
3106 case DW_AT_return_addr:
3107 return "DW_AT_return_addr";
3108 case DW_AT_start_scope:
3109 return "DW_AT_start_scope";
3110 case DW_AT_stride_size:
3111 return "DW_AT_stride_size";
3112 case DW_AT_upper_bound:
3113 return "DW_AT_upper_bound";
3114 case DW_AT_abstract_origin:
3115 return "DW_AT_abstract_origin";
3116 case DW_AT_accessibility:
3117 return "DW_AT_accessibility";
3118 case DW_AT_address_class:
3119 return "DW_AT_address_class";
3120 case DW_AT_artificial:
3121 return "DW_AT_artificial";
3122 case DW_AT_base_types:
3123 return "DW_AT_base_types";
3124 case DW_AT_calling_convention:
3125 return "DW_AT_calling_convention";
3126 case DW_AT_count:
3127 return "DW_AT_count";
3128 case DW_AT_data_member_location:
3129 return "DW_AT_data_member_location";
3130 case DW_AT_decl_column:
3131 return "DW_AT_decl_column";
3132 case DW_AT_decl_file:
3133 return "DW_AT_decl_file";
3134 case DW_AT_decl_line:
3135 return "DW_AT_decl_line";
3136 case DW_AT_declaration:
3137 return "DW_AT_declaration";
3138 case DW_AT_discr_list:
3139 return "DW_AT_discr_list";
3140 case DW_AT_encoding:
3141 return "DW_AT_encoding";
3142 case DW_AT_external:
3143 return "DW_AT_external";
3144 case DW_AT_frame_base:
3145 return "DW_AT_frame_base";
3146 case DW_AT_friend:
3147 return "DW_AT_friend";
3148 case DW_AT_identifier_case:
3149 return "DW_AT_identifier_case";
3150 case DW_AT_macro_info:
3151 return "DW_AT_macro_info";
3152 case DW_AT_namelist_items:
3153 return "DW_AT_namelist_items";
3154 case DW_AT_priority:
3155 return "DW_AT_priority";
3156 case DW_AT_segment:
3157 return "DW_AT_segment";
3158 case DW_AT_specification:
3159 return "DW_AT_specification";
3160 case DW_AT_static_link:
3161 return "DW_AT_static_link";
3162 case DW_AT_type:
3163 return "DW_AT_type";
3164 case DW_AT_use_location:
3165 return "DW_AT_use_location";
3166 case DW_AT_variable_parameter:
3167 return "DW_AT_variable_parameter";
3168 case DW_AT_virtuality:
3169 return "DW_AT_virtuality";
3170 case DW_AT_vtable_elem_location:
3171 return "DW_AT_vtable_elem_location";
3173 case DW_AT_MIPS_fde:
3174 return "DW_AT_MIPS_fde";
3175 case DW_AT_MIPS_loop_begin:
3176 return "DW_AT_MIPS_loop_begin";
3177 case DW_AT_MIPS_tail_loop_begin:
3178 return "DW_AT_MIPS_tail_loop_begin";
3179 case DW_AT_MIPS_epilog_begin:
3180 return "DW_AT_MIPS_epilog_begin";
3181 case DW_AT_MIPS_loop_unroll_factor:
3182 return "DW_AT_MIPS_loop_unroll_factor";
3183 case DW_AT_MIPS_software_pipeline_depth:
3184 return "DW_AT_MIPS_software_pipeline_depth";
3185 case DW_AT_MIPS_linkage_name:
3186 return "DW_AT_MIPS_linkage_name";
3187 case DW_AT_MIPS_stride:
3188 return "DW_AT_MIPS_stride";
3189 case DW_AT_MIPS_abstract_name:
3190 return "DW_AT_MIPS_abstract_name";
3191 case DW_AT_MIPS_clone_origin:
3192 return "DW_AT_MIPS_clone_origin";
3193 case DW_AT_MIPS_has_inlines:
3194 return "DW_AT_MIPS_has_inlines";
3196 case DW_AT_sf_names:
3197 return "DW_AT_sf_names";
3198 case DW_AT_src_info:
3199 return "DW_AT_src_info";
3200 case DW_AT_mac_info:
3201 return "DW_AT_mac_info";
3202 case DW_AT_src_coords:
3203 return "DW_AT_src_coords";
3204 case DW_AT_body_begin:
3205 return "DW_AT_body_begin";
3206 case DW_AT_body_end:
3207 return "DW_AT_body_end";
3208 default:
3209 return "DW_AT_<unknown>";
3213 /* Convert a DWARF value form code into its string name. */
3215 static const char *
3216 dwarf_form_name (form)
3217 register unsigned form;
3219 switch (form)
3221 case DW_FORM_addr:
3222 return "DW_FORM_addr";
3223 case DW_FORM_block2:
3224 return "DW_FORM_block2";
3225 case DW_FORM_block4:
3226 return "DW_FORM_block4";
3227 case DW_FORM_data2:
3228 return "DW_FORM_data2";
3229 case DW_FORM_data4:
3230 return "DW_FORM_data4";
3231 case DW_FORM_data8:
3232 return "DW_FORM_data8";
3233 case DW_FORM_string:
3234 return "DW_FORM_string";
3235 case DW_FORM_block:
3236 return "DW_FORM_block";
3237 case DW_FORM_block1:
3238 return "DW_FORM_block1";
3239 case DW_FORM_data1:
3240 return "DW_FORM_data1";
3241 case DW_FORM_flag:
3242 return "DW_FORM_flag";
3243 case DW_FORM_sdata:
3244 return "DW_FORM_sdata";
3245 case DW_FORM_strp:
3246 return "DW_FORM_strp";
3247 case DW_FORM_udata:
3248 return "DW_FORM_udata";
3249 case DW_FORM_ref_addr:
3250 return "DW_FORM_ref_addr";
3251 case DW_FORM_ref1:
3252 return "DW_FORM_ref1";
3253 case DW_FORM_ref2:
3254 return "DW_FORM_ref2";
3255 case DW_FORM_ref4:
3256 return "DW_FORM_ref4";
3257 case DW_FORM_ref8:
3258 return "DW_FORM_ref8";
3259 case DW_FORM_ref_udata:
3260 return "DW_FORM_ref_udata";
3261 case DW_FORM_indirect:
3262 return "DW_FORM_indirect";
3263 default:
3264 return "DW_FORM_<unknown>";
3268 /* Convert a DWARF stack opcode into its string name. */
3270 static const char *
3271 dwarf_stack_op_name (op)
3272 register unsigned op;
3274 switch (op)
3276 case DW_OP_addr:
3277 return "DW_OP_addr";
3278 case DW_OP_deref:
3279 return "DW_OP_deref";
3280 case DW_OP_const1u:
3281 return "DW_OP_const1u";
3282 case DW_OP_const1s:
3283 return "DW_OP_const1s";
3284 case DW_OP_const2u:
3285 return "DW_OP_const2u";
3286 case DW_OP_const2s:
3287 return "DW_OP_const2s";
3288 case DW_OP_const4u:
3289 return "DW_OP_const4u";
3290 case DW_OP_const4s:
3291 return "DW_OP_const4s";
3292 case DW_OP_const8u:
3293 return "DW_OP_const8u";
3294 case DW_OP_const8s:
3295 return "DW_OP_const8s";
3296 case DW_OP_constu:
3297 return "DW_OP_constu";
3298 case DW_OP_consts:
3299 return "DW_OP_consts";
3300 case DW_OP_dup:
3301 return "DW_OP_dup";
3302 case DW_OP_drop:
3303 return "DW_OP_drop";
3304 case DW_OP_over:
3305 return "DW_OP_over";
3306 case DW_OP_pick:
3307 return "DW_OP_pick";
3308 case DW_OP_swap:
3309 return "DW_OP_swap";
3310 case DW_OP_rot:
3311 return "DW_OP_rot";
3312 case DW_OP_xderef:
3313 return "DW_OP_xderef";
3314 case DW_OP_abs:
3315 return "DW_OP_abs";
3316 case DW_OP_and:
3317 return "DW_OP_and";
3318 case DW_OP_div:
3319 return "DW_OP_div";
3320 case DW_OP_minus:
3321 return "DW_OP_minus";
3322 case DW_OP_mod:
3323 return "DW_OP_mod";
3324 case DW_OP_mul:
3325 return "DW_OP_mul";
3326 case DW_OP_neg:
3327 return "DW_OP_neg";
3328 case DW_OP_not:
3329 return "DW_OP_not";
3330 case DW_OP_or:
3331 return "DW_OP_or";
3332 case DW_OP_plus:
3333 return "DW_OP_plus";
3334 case DW_OP_plus_uconst:
3335 return "DW_OP_plus_uconst";
3336 case DW_OP_shl:
3337 return "DW_OP_shl";
3338 case DW_OP_shr:
3339 return "DW_OP_shr";
3340 case DW_OP_shra:
3341 return "DW_OP_shra";
3342 case DW_OP_xor:
3343 return "DW_OP_xor";
3344 case DW_OP_bra:
3345 return "DW_OP_bra";
3346 case DW_OP_eq:
3347 return "DW_OP_eq";
3348 case DW_OP_ge:
3349 return "DW_OP_ge";
3350 case DW_OP_gt:
3351 return "DW_OP_gt";
3352 case DW_OP_le:
3353 return "DW_OP_le";
3354 case DW_OP_lt:
3355 return "DW_OP_lt";
3356 case DW_OP_ne:
3357 return "DW_OP_ne";
3358 case DW_OP_skip:
3359 return "DW_OP_skip";
3360 case DW_OP_lit0:
3361 return "DW_OP_lit0";
3362 case DW_OP_lit1:
3363 return "DW_OP_lit1";
3364 case DW_OP_lit2:
3365 return "DW_OP_lit2";
3366 case DW_OP_lit3:
3367 return "DW_OP_lit3";
3368 case DW_OP_lit4:
3369 return "DW_OP_lit4";
3370 case DW_OP_lit5:
3371 return "DW_OP_lit5";
3372 case DW_OP_lit6:
3373 return "DW_OP_lit6";
3374 case DW_OP_lit7:
3375 return "DW_OP_lit7";
3376 case DW_OP_lit8:
3377 return "DW_OP_lit8";
3378 case DW_OP_lit9:
3379 return "DW_OP_lit9";
3380 case DW_OP_lit10:
3381 return "DW_OP_lit10";
3382 case DW_OP_lit11:
3383 return "DW_OP_lit11";
3384 case DW_OP_lit12:
3385 return "DW_OP_lit12";
3386 case DW_OP_lit13:
3387 return "DW_OP_lit13";
3388 case DW_OP_lit14:
3389 return "DW_OP_lit14";
3390 case DW_OP_lit15:
3391 return "DW_OP_lit15";
3392 case DW_OP_lit16:
3393 return "DW_OP_lit16";
3394 case DW_OP_lit17:
3395 return "DW_OP_lit17";
3396 case DW_OP_lit18:
3397 return "DW_OP_lit18";
3398 case DW_OP_lit19:
3399 return "DW_OP_lit19";
3400 case DW_OP_lit20:
3401 return "DW_OP_lit20";
3402 case DW_OP_lit21:
3403 return "DW_OP_lit21";
3404 case DW_OP_lit22:
3405 return "DW_OP_lit22";
3406 case DW_OP_lit23:
3407 return "DW_OP_lit23";
3408 case DW_OP_lit24:
3409 return "DW_OP_lit24";
3410 case DW_OP_lit25:
3411 return "DW_OP_lit25";
3412 case DW_OP_lit26:
3413 return "DW_OP_lit26";
3414 case DW_OP_lit27:
3415 return "DW_OP_lit27";
3416 case DW_OP_lit28:
3417 return "DW_OP_lit28";
3418 case DW_OP_lit29:
3419 return "DW_OP_lit29";
3420 case DW_OP_lit30:
3421 return "DW_OP_lit30";
3422 case DW_OP_lit31:
3423 return "DW_OP_lit31";
3424 case DW_OP_reg0:
3425 return "DW_OP_reg0";
3426 case DW_OP_reg1:
3427 return "DW_OP_reg1";
3428 case DW_OP_reg2:
3429 return "DW_OP_reg2";
3430 case DW_OP_reg3:
3431 return "DW_OP_reg3";
3432 case DW_OP_reg4:
3433 return "DW_OP_reg4";
3434 case DW_OP_reg5:
3435 return "DW_OP_reg5";
3436 case DW_OP_reg6:
3437 return "DW_OP_reg6";
3438 case DW_OP_reg7:
3439 return "DW_OP_reg7";
3440 case DW_OP_reg8:
3441 return "DW_OP_reg8";
3442 case DW_OP_reg9:
3443 return "DW_OP_reg9";
3444 case DW_OP_reg10:
3445 return "DW_OP_reg10";
3446 case DW_OP_reg11:
3447 return "DW_OP_reg11";
3448 case DW_OP_reg12:
3449 return "DW_OP_reg12";
3450 case DW_OP_reg13:
3451 return "DW_OP_reg13";
3452 case DW_OP_reg14:
3453 return "DW_OP_reg14";
3454 case DW_OP_reg15:
3455 return "DW_OP_reg15";
3456 case DW_OP_reg16:
3457 return "DW_OP_reg16";
3458 case DW_OP_reg17:
3459 return "DW_OP_reg17";
3460 case DW_OP_reg18:
3461 return "DW_OP_reg18";
3462 case DW_OP_reg19:
3463 return "DW_OP_reg19";
3464 case DW_OP_reg20:
3465 return "DW_OP_reg20";
3466 case DW_OP_reg21:
3467 return "DW_OP_reg21";
3468 case DW_OP_reg22:
3469 return "DW_OP_reg22";
3470 case DW_OP_reg23:
3471 return "DW_OP_reg23";
3472 case DW_OP_reg24:
3473 return "DW_OP_reg24";
3474 case DW_OP_reg25:
3475 return "DW_OP_reg25";
3476 case DW_OP_reg26:
3477 return "DW_OP_reg26";
3478 case DW_OP_reg27:
3479 return "DW_OP_reg27";
3480 case DW_OP_reg28:
3481 return "DW_OP_reg28";
3482 case DW_OP_reg29:
3483 return "DW_OP_reg29";
3484 case DW_OP_reg30:
3485 return "DW_OP_reg30";
3486 case DW_OP_reg31:
3487 return "DW_OP_reg31";
3488 case DW_OP_breg0:
3489 return "DW_OP_breg0";
3490 case DW_OP_breg1:
3491 return "DW_OP_breg1";
3492 case DW_OP_breg2:
3493 return "DW_OP_breg2";
3494 case DW_OP_breg3:
3495 return "DW_OP_breg3";
3496 case DW_OP_breg4:
3497 return "DW_OP_breg4";
3498 case DW_OP_breg5:
3499 return "DW_OP_breg5";
3500 case DW_OP_breg6:
3501 return "DW_OP_breg6";
3502 case DW_OP_breg7:
3503 return "DW_OP_breg7";
3504 case DW_OP_breg8:
3505 return "DW_OP_breg8";
3506 case DW_OP_breg9:
3507 return "DW_OP_breg9";
3508 case DW_OP_breg10:
3509 return "DW_OP_breg10";
3510 case DW_OP_breg11:
3511 return "DW_OP_breg11";
3512 case DW_OP_breg12:
3513 return "DW_OP_breg12";
3514 case DW_OP_breg13:
3515 return "DW_OP_breg13";
3516 case DW_OP_breg14:
3517 return "DW_OP_breg14";
3518 case DW_OP_breg15:
3519 return "DW_OP_breg15";
3520 case DW_OP_breg16:
3521 return "DW_OP_breg16";
3522 case DW_OP_breg17:
3523 return "DW_OP_breg17";
3524 case DW_OP_breg18:
3525 return "DW_OP_breg18";
3526 case DW_OP_breg19:
3527 return "DW_OP_breg19";
3528 case DW_OP_breg20:
3529 return "DW_OP_breg20";
3530 case DW_OP_breg21:
3531 return "DW_OP_breg21";
3532 case DW_OP_breg22:
3533 return "DW_OP_breg22";
3534 case DW_OP_breg23:
3535 return "DW_OP_breg23";
3536 case DW_OP_breg24:
3537 return "DW_OP_breg24";
3538 case DW_OP_breg25:
3539 return "DW_OP_breg25";
3540 case DW_OP_breg26:
3541 return "DW_OP_breg26";
3542 case DW_OP_breg27:
3543 return "DW_OP_breg27";
3544 case DW_OP_breg28:
3545 return "DW_OP_breg28";
3546 case DW_OP_breg29:
3547 return "DW_OP_breg29";
3548 case DW_OP_breg30:
3549 return "DW_OP_breg30";
3550 case DW_OP_breg31:
3551 return "DW_OP_breg31";
3552 case DW_OP_regx:
3553 return "DW_OP_regx";
3554 case DW_OP_fbreg:
3555 return "DW_OP_fbreg";
3556 case DW_OP_bregx:
3557 return "DW_OP_bregx";
3558 case DW_OP_piece:
3559 return "DW_OP_piece";
3560 case DW_OP_deref_size:
3561 return "DW_OP_deref_size";
3562 case DW_OP_xderef_size:
3563 return "DW_OP_xderef_size";
3564 case DW_OP_nop:
3565 return "DW_OP_nop";
3566 default:
3567 return "OP_<unknown>";
3571 /* Convert a DWARF type code into its string name. */
3573 #if 0
3574 static const char *
3575 dwarf_type_encoding_name (enc)
3576 register unsigned enc;
3578 switch (enc)
3580 case DW_ATE_address:
3581 return "DW_ATE_address";
3582 case DW_ATE_boolean:
3583 return "DW_ATE_boolean";
3584 case DW_ATE_complex_float:
3585 return "DW_ATE_complex_float";
3586 case DW_ATE_float:
3587 return "DW_ATE_float";
3588 case DW_ATE_signed:
3589 return "DW_ATE_signed";
3590 case DW_ATE_signed_char:
3591 return "DW_ATE_signed_char";
3592 case DW_ATE_unsigned:
3593 return "DW_ATE_unsigned";
3594 case DW_ATE_unsigned_char:
3595 return "DW_ATE_unsigned_char";
3596 default:
3597 return "DW_ATE_<unknown>";
3600 #endif
3602 /* Determine the "ultimate origin" of a decl. The decl may be an inlined
3603 instance of an inlined instance of a decl which is local to an inline
3604 function, so we have to trace all of the way back through the origin chain
3605 to find out what sort of node actually served as the original seed for the
3606 given block. */
3608 static tree
3609 decl_ultimate_origin (decl)
3610 register tree decl;
3612 #ifdef ENABLE_CHECKING
3613 if (DECL_FROM_INLINE (DECL_ORIGIN (decl)))
3614 /* Since the DECL_ABSTRACT_ORIGIN for a DECL is supposed to be the
3615 most distant ancestor, this should never happen. */
3616 abort ();
3617 #endif
3619 return DECL_ABSTRACT_ORIGIN (decl);
3622 /* Determine the "ultimate origin" of a block. The block may be an inlined
3623 instance of an inlined instance of a block which is local to an inline
3624 function, so we have to trace all of the way back through the origin chain
3625 to find out what sort of node actually served as the original seed for the
3626 given block. */
3628 static tree
3629 block_ultimate_origin (block)
3630 register tree block;
3632 register tree immediate_origin = BLOCK_ABSTRACT_ORIGIN (block);
3634 if (immediate_origin == NULL_TREE)
3635 return NULL_TREE;
3636 else
3638 register tree ret_val;
3639 register tree lookahead = immediate_origin;
3643 ret_val = lookahead;
3644 lookahead = (TREE_CODE (ret_val) == BLOCK)
3645 ? BLOCK_ABSTRACT_ORIGIN (ret_val)
3646 : NULL;
3648 while (lookahead != NULL && lookahead != ret_val);
3650 return ret_val;
3654 /* Get the class to which DECL belongs, if any. In g++, the DECL_CONTEXT
3655 of a virtual function may refer to a base class, so we check the 'this'
3656 parameter. */
3658 static tree
3659 decl_class_context (decl)
3660 tree decl;
3662 tree context = NULL_TREE;
3664 if (TREE_CODE (decl) != FUNCTION_DECL || ! DECL_VINDEX (decl))
3665 context = DECL_CONTEXT (decl);
3666 else
3667 context = TYPE_MAIN_VARIANT
3668 (TREE_TYPE (TREE_VALUE (TYPE_ARG_TYPES (TREE_TYPE (decl)))));
3670 if (context && TREE_CODE_CLASS (TREE_CODE (context)) != 't')
3671 context = NULL_TREE;
3673 return context;
3676 /* Add an attribute/value pair to a DIE */
3678 static inline void
3679 add_dwarf_attr (die, attr)
3680 register dw_die_ref die;
3681 register dw_attr_ref attr;
3683 if (die != NULL && attr != NULL)
3685 if (die->die_attr == NULL)
3687 die->die_attr = attr;
3688 die->die_attr_last = attr;
3690 else
3692 die->die_attr_last->dw_attr_next = attr;
3693 die->die_attr_last = attr;
3698 /* Add a flag value attribute to a DIE. */
3700 static inline void
3701 add_AT_flag (die, attr_kind, flag)
3702 register dw_die_ref die;
3703 register enum dwarf_attribute attr_kind;
3704 register unsigned flag;
3706 register dw_attr_ref attr = (dw_attr_ref) xmalloc (sizeof (dw_attr_node));
3708 attr->dw_attr_next = NULL;
3709 attr->dw_attr = attr_kind;
3710 attr->dw_attr_val.val_class = dw_val_class_flag;
3711 attr->dw_attr_val.v.val_flag = flag;
3712 add_dwarf_attr (die, attr);
3715 /* Add a signed integer attribute value to a DIE. */
3717 static inline void
3718 add_AT_int (die, attr_kind, int_val)
3719 register dw_die_ref die;
3720 register enum dwarf_attribute attr_kind;
3721 register long int int_val;
3723 register dw_attr_ref attr = (dw_attr_ref) xmalloc (sizeof (dw_attr_node));
3725 attr->dw_attr_next = NULL;
3726 attr->dw_attr = attr_kind;
3727 attr->dw_attr_val.val_class = dw_val_class_const;
3728 attr->dw_attr_val.v.val_int = int_val;
3729 add_dwarf_attr (die, attr);
3732 /* Add an unsigned integer attribute value to a DIE. */
3734 static inline void
3735 add_AT_unsigned (die, attr_kind, unsigned_val)
3736 register dw_die_ref die;
3737 register enum dwarf_attribute attr_kind;
3738 register unsigned long unsigned_val;
3740 register dw_attr_ref attr = (dw_attr_ref) xmalloc (sizeof (dw_attr_node));
3742 attr->dw_attr_next = NULL;
3743 attr->dw_attr = attr_kind;
3744 attr->dw_attr_val.val_class = dw_val_class_unsigned_const;
3745 attr->dw_attr_val.v.val_unsigned = unsigned_val;
3746 add_dwarf_attr (die, attr);
3749 /* Add an unsigned double integer attribute value to a DIE. */
3751 static inline void
3752 add_AT_long_long (die, attr_kind, val_hi, val_low)
3753 register dw_die_ref die;
3754 register enum dwarf_attribute attr_kind;
3755 register unsigned long val_hi;
3756 register unsigned long val_low;
3758 register dw_attr_ref attr = (dw_attr_ref) xmalloc (sizeof (dw_attr_node));
3760 attr->dw_attr_next = NULL;
3761 attr->dw_attr = attr_kind;
3762 attr->dw_attr_val.val_class = dw_val_class_long_long;
3763 attr->dw_attr_val.v.val_long_long.hi = val_hi;
3764 attr->dw_attr_val.v.val_long_long.low = val_low;
3765 add_dwarf_attr (die, attr);
3768 /* Add a floating point attribute value to a DIE and return it. */
3770 static inline void
3771 add_AT_float (die, attr_kind, length, array)
3772 register dw_die_ref die;
3773 register enum dwarf_attribute attr_kind;
3774 register unsigned length;
3775 register long *array;
3777 register dw_attr_ref attr = (dw_attr_ref) xmalloc (sizeof (dw_attr_node));
3779 attr->dw_attr_next = NULL;
3780 attr->dw_attr = attr_kind;
3781 attr->dw_attr_val.val_class = dw_val_class_float;
3782 attr->dw_attr_val.v.val_float.length = length;
3783 attr->dw_attr_val.v.val_float.array = array;
3784 add_dwarf_attr (die, attr);
3787 /* Add a string attribute value to a DIE. */
3789 static inline void
3790 add_AT_string (die, attr_kind, str)
3791 register dw_die_ref die;
3792 register enum dwarf_attribute attr_kind;
3793 register const char *str;
3795 register dw_attr_ref attr = (dw_attr_ref) xmalloc (sizeof (dw_attr_node));
3797 attr->dw_attr_next = NULL;
3798 attr->dw_attr = attr_kind;
3799 attr->dw_attr_val.val_class = dw_val_class_str;
3800 attr->dw_attr_val.v.val_str = xstrdup (str);
3801 add_dwarf_attr (die, attr);
3804 /* Add a DIE reference attribute value to a DIE. */
3806 static inline void
3807 add_AT_die_ref (die, attr_kind, targ_die)
3808 register dw_die_ref die;
3809 register enum dwarf_attribute attr_kind;
3810 register dw_die_ref targ_die;
3812 register dw_attr_ref attr = (dw_attr_ref) xmalloc (sizeof (dw_attr_node));
3814 attr->dw_attr_next = NULL;
3815 attr->dw_attr = attr_kind;
3816 attr->dw_attr_val.val_class = dw_val_class_die_ref;
3817 attr->dw_attr_val.v.val_die_ref = targ_die;
3818 add_dwarf_attr (die, attr);
3821 /* Add an FDE reference attribute value to a DIE. */
3823 static inline void
3824 add_AT_fde_ref (die, attr_kind, targ_fde)
3825 register dw_die_ref die;
3826 register enum dwarf_attribute attr_kind;
3827 register unsigned targ_fde;
3829 register dw_attr_ref attr = (dw_attr_ref) xmalloc (sizeof (dw_attr_node));
3831 attr->dw_attr_next = NULL;
3832 attr->dw_attr = attr_kind;
3833 attr->dw_attr_val.val_class = dw_val_class_fde_ref;
3834 attr->dw_attr_val.v.val_fde_index = targ_fde;
3835 add_dwarf_attr (die, attr);
3838 /* Add a location description attribute value to a DIE. */
3840 static inline void
3841 add_AT_loc (die, attr_kind, loc)
3842 register dw_die_ref die;
3843 register enum dwarf_attribute attr_kind;
3844 register dw_loc_descr_ref loc;
3846 register dw_attr_ref attr = (dw_attr_ref) xmalloc (sizeof (dw_attr_node));
3848 attr->dw_attr_next = NULL;
3849 attr->dw_attr = attr_kind;
3850 attr->dw_attr_val.val_class = dw_val_class_loc;
3851 attr->dw_attr_val.v.val_loc = loc;
3852 add_dwarf_attr (die, attr);
3855 /* Add an address constant attribute value to a DIE. */
3857 static inline void
3858 add_AT_addr (die, attr_kind, addr)
3859 register dw_die_ref die;
3860 register enum dwarf_attribute attr_kind;
3861 char *addr;
3863 register dw_attr_ref attr = (dw_attr_ref) xmalloc (sizeof (dw_attr_node));
3865 attr->dw_attr_next = NULL;
3866 attr->dw_attr = attr_kind;
3867 attr->dw_attr_val.val_class = dw_val_class_addr;
3868 attr->dw_attr_val.v.val_addr = addr;
3869 add_dwarf_attr (die, attr);
3872 /* Add a label identifier attribute value to a DIE. */
3874 static inline void
3875 add_AT_lbl_id (die, attr_kind, lbl_id)
3876 register dw_die_ref die;
3877 register enum dwarf_attribute attr_kind;
3878 register char *lbl_id;
3880 register dw_attr_ref attr = (dw_attr_ref) xmalloc (sizeof (dw_attr_node));
3882 attr->dw_attr_next = NULL;
3883 attr->dw_attr = attr_kind;
3884 attr->dw_attr_val.val_class = dw_val_class_lbl_id;
3885 attr->dw_attr_val.v.val_lbl_id = xstrdup (lbl_id);
3886 add_dwarf_attr (die, attr);
3889 /* Add a section offset attribute value to a DIE. */
3891 static inline void
3892 add_AT_lbl_offset (die, attr_kind, label)
3893 register dw_die_ref die;
3894 register enum dwarf_attribute attr_kind;
3895 register char *label;
3897 register dw_attr_ref attr = (dw_attr_ref) xmalloc (sizeof (dw_attr_node));
3899 attr->dw_attr_next = NULL;
3900 attr->dw_attr = attr_kind;
3901 attr->dw_attr_val.val_class = dw_val_class_lbl_offset;
3902 attr->dw_attr_val.v.val_lbl_id = label;
3903 add_dwarf_attr (die, attr);
3907 /* Test if die refers to an external subroutine. */
3909 static inline int
3910 is_extern_subr_die (die)
3911 register dw_die_ref die;
3913 register dw_attr_ref a;
3914 register int is_subr = FALSE;
3915 register int is_extern = FALSE;
3917 if (die != NULL && die->die_tag == DW_TAG_subprogram)
3919 is_subr = TRUE;
3920 for (a = die->die_attr; a != NULL; a = a->dw_attr_next)
3922 if (a->dw_attr == DW_AT_external
3923 && a->dw_attr_val.val_class == dw_val_class_flag
3924 && a->dw_attr_val.v.val_flag != 0)
3926 is_extern = TRUE;
3927 break;
3932 return is_subr && is_extern;
3935 /* Get the attribute of type attr_kind. */
3937 static inline dw_attr_ref
3938 get_AT (die, attr_kind)
3939 register dw_die_ref die;
3940 register enum dwarf_attribute attr_kind;
3942 register dw_attr_ref a;
3943 register dw_die_ref spec = NULL;
3945 if (die != NULL)
3947 for (a = die->die_attr; a != NULL; a = a->dw_attr_next)
3949 if (a->dw_attr == attr_kind)
3950 return a;
3952 if (a->dw_attr == DW_AT_specification
3953 || a->dw_attr == DW_AT_abstract_origin)
3954 spec = a->dw_attr_val.v.val_die_ref;
3957 if (spec)
3958 return get_AT (spec, attr_kind);
3961 return NULL;
3964 /* Return the "low pc" attribute value, typically associated with
3965 a subprogram DIE. Return null if the "low pc" attribute is
3966 either not prsent, or if it cannot be represented as an
3967 assembler label identifier. */
3969 static inline char *
3970 get_AT_low_pc (die)
3971 register dw_die_ref die;
3973 register dw_attr_ref a = get_AT (die, DW_AT_low_pc);
3975 if (a && a->dw_attr_val.val_class == dw_val_class_lbl_id)
3976 return a->dw_attr_val.v.val_lbl_id;
3978 return NULL;
3981 /* Return the "high pc" attribute value, typically associated with
3982 a subprogram DIE. Return null if the "high pc" attribute is
3983 either not prsent, or if it cannot be represented as an
3984 assembler label identifier. */
3986 static inline char *
3987 get_AT_hi_pc (die)
3988 register dw_die_ref die;
3990 register dw_attr_ref a = get_AT (die, DW_AT_high_pc);
3992 if (a && a->dw_attr_val.val_class == dw_val_class_lbl_id)
3993 return a->dw_attr_val.v.val_lbl_id;
3995 return NULL;
3998 /* Return the value of the string attribute designated by ATTR_KIND, or
3999 NULL if it is not present. */
4001 static inline char *
4002 get_AT_string (die, attr_kind)
4003 register dw_die_ref die;
4004 register enum dwarf_attribute attr_kind;
4006 register dw_attr_ref a = get_AT (die, attr_kind);
4008 if (a && a->dw_attr_val.val_class == dw_val_class_str)
4009 return a->dw_attr_val.v.val_str;
4011 return NULL;
4014 /* Return the value of the flag attribute designated by ATTR_KIND, or -1
4015 if it is not present. */
4017 static inline int
4018 get_AT_flag (die, attr_kind)
4019 register dw_die_ref die;
4020 register enum dwarf_attribute attr_kind;
4022 register dw_attr_ref a = get_AT (die, attr_kind);
4024 if (a && a->dw_attr_val.val_class == dw_val_class_flag)
4025 return a->dw_attr_val.v.val_flag;
4027 return -1;
4030 /* Return the value of the unsigned attribute designated by ATTR_KIND, or 0
4031 if it is not present. */
4033 static inline unsigned
4034 get_AT_unsigned (die, attr_kind)
4035 register dw_die_ref die;
4036 register enum dwarf_attribute attr_kind;
4038 register dw_attr_ref a = get_AT (die, attr_kind);
4040 if (a && a->dw_attr_val.val_class == dw_val_class_unsigned_const)
4041 return a->dw_attr_val.v.val_unsigned;
4043 return 0;
4046 static inline int
4047 is_c_family ()
4049 register unsigned lang = get_AT_unsigned (comp_unit_die, DW_AT_language);
4051 return (lang == DW_LANG_C || lang == DW_LANG_C89
4052 || lang == DW_LANG_C_plus_plus);
4055 static inline int
4056 is_fortran ()
4058 register unsigned lang = get_AT_unsigned (comp_unit_die, DW_AT_language);
4060 return (lang == DW_LANG_Fortran77 || lang == DW_LANG_Fortran90);
4063 /* Remove the specified attribute if present. */
4065 static inline void
4066 remove_AT (die, attr_kind)
4067 register dw_die_ref die;
4068 register enum dwarf_attribute attr_kind;
4070 register dw_attr_ref a;
4071 register dw_attr_ref removed = NULL;
4073 if (die != NULL)
4075 if (die->die_attr->dw_attr == attr_kind)
4077 removed = die->die_attr;
4078 if (die->die_attr_last == die->die_attr)
4079 die->die_attr_last = NULL;
4081 die->die_attr = die->die_attr->dw_attr_next;
4084 else
4085 for (a = die->die_attr; a->dw_attr_next != NULL;
4086 a = a->dw_attr_next)
4087 if (a->dw_attr_next->dw_attr == attr_kind)
4089 removed = a->dw_attr_next;
4090 if (die->die_attr_last == a->dw_attr_next)
4091 die->die_attr_last = a;
4093 a->dw_attr_next = a->dw_attr_next->dw_attr_next;
4094 break;
4097 if (removed != 0)
4098 free (removed);
4102 /* Discard the children of this DIE. */
4104 static inline void
4105 remove_children (die)
4106 register dw_die_ref die;
4108 register dw_die_ref child_die = die->die_child;
4110 die->die_child = NULL;
4111 die->die_child_last = NULL;
4113 while (child_die != NULL)
4115 register dw_die_ref tmp_die = child_die;
4116 register dw_attr_ref a;
4118 child_die = child_die->die_sib;
4120 for (a = tmp_die->die_attr; a != NULL; )
4122 register dw_attr_ref tmp_a = a;
4124 a = a->dw_attr_next;
4125 free (tmp_a);
4128 free (tmp_die);
4132 /* Add a child DIE below its parent. */
4134 static inline void
4135 add_child_die (die, child_die)
4136 register dw_die_ref die;
4137 register dw_die_ref child_die;
4139 if (die != NULL && child_die != NULL)
4141 if (die == child_die)
4142 abort ();
4143 child_die->die_parent = die;
4144 child_die->die_sib = NULL;
4146 if (die->die_child == NULL)
4148 die->die_child = child_die;
4149 die->die_child_last = child_die;
4151 else
4153 die->die_child_last->die_sib = child_die;
4154 die->die_child_last = child_die;
4159 /* Return a pointer to a newly created DIE node. */
4161 static inline dw_die_ref
4162 new_die (tag_value, parent_die)
4163 register enum dwarf_tag tag_value;
4164 register dw_die_ref parent_die;
4166 register dw_die_ref die = (dw_die_ref) xmalloc (sizeof (die_node));
4168 die->die_tag = tag_value;
4169 die->die_abbrev = 0;
4170 die->die_offset = 0;
4171 die->die_child = NULL;
4172 die->die_parent = NULL;
4173 die->die_sib = NULL;
4174 die->die_child_last = NULL;
4175 die->die_attr = NULL;
4176 die->die_attr_last = NULL;
4178 if (parent_die != NULL)
4179 add_child_die (parent_die, die);
4180 else
4182 limbo_die_node *limbo_node;
4184 limbo_node = (limbo_die_node *) xmalloc (sizeof (limbo_die_node));
4185 limbo_node->die = die;
4186 limbo_node->next = limbo_die_list;
4187 limbo_die_list = limbo_node;
4190 return die;
4193 /* Return the DIE associated with the given type specifier. */
4195 static inline dw_die_ref
4196 lookup_type_die (type)
4197 register tree type;
4199 return (dw_die_ref) TYPE_SYMTAB_POINTER (type);
4202 /* Equate a DIE to a given type specifier. */
4204 static void
4205 equate_type_number_to_die (type, type_die)
4206 register tree type;
4207 register dw_die_ref type_die;
4209 TYPE_SYMTAB_POINTER (type) = (char *) type_die;
4212 /* Return the DIE associated with a given declaration. */
4214 static inline dw_die_ref
4215 lookup_decl_die (decl)
4216 register tree decl;
4218 register unsigned decl_id = DECL_UID (decl);
4220 return (decl_id < decl_die_table_in_use
4221 ? decl_die_table[decl_id] : NULL);
4224 /* Equate a DIE to a particular declaration. */
4226 static void
4227 equate_decl_number_to_die (decl, decl_die)
4228 register tree decl;
4229 register dw_die_ref decl_die;
4231 register unsigned decl_id = DECL_UID (decl);
4232 register unsigned num_allocated;
4234 if (decl_id >= decl_die_table_allocated)
4236 num_allocated
4237 = ((decl_id + 1 + DECL_DIE_TABLE_INCREMENT - 1)
4238 / DECL_DIE_TABLE_INCREMENT)
4239 * DECL_DIE_TABLE_INCREMENT;
4241 decl_die_table
4242 = (dw_die_ref *) xrealloc (decl_die_table,
4243 sizeof (dw_die_ref) * num_allocated);
4245 bzero ((char *) &decl_die_table[decl_die_table_allocated],
4246 (num_allocated - decl_die_table_allocated) * sizeof (dw_die_ref));
4247 decl_die_table_allocated = num_allocated;
4250 if (decl_id >= decl_die_table_in_use)
4251 decl_die_table_in_use = (decl_id + 1);
4253 decl_die_table[decl_id] = decl_die;
4256 /* Return a pointer to a newly allocated location description. Location
4257 descriptions are simple expression terms that can be strung
4258 together to form more complicated location (address) descriptions. */
4260 static inline dw_loc_descr_ref
4261 new_loc_descr (op, oprnd1, oprnd2)
4262 register enum dwarf_location_atom op;
4263 register unsigned long oprnd1;
4264 register unsigned long oprnd2;
4266 register dw_loc_descr_ref descr
4267 = (dw_loc_descr_ref) xmalloc (sizeof (dw_loc_descr_node));
4269 descr->dw_loc_next = NULL;
4270 descr->dw_loc_opc = op;
4271 descr->dw_loc_oprnd1.val_class = dw_val_class_unsigned_const;
4272 descr->dw_loc_oprnd1.v.val_unsigned = oprnd1;
4273 descr->dw_loc_oprnd2.val_class = dw_val_class_unsigned_const;
4274 descr->dw_loc_oprnd2.v.val_unsigned = oprnd2;
4276 return descr;
4279 /* Add a location description term to a location description expression. */
4281 static inline void
4282 add_loc_descr (list_head, descr)
4283 register dw_loc_descr_ref *list_head;
4284 register dw_loc_descr_ref descr;
4286 register dw_loc_descr_ref *d;
4288 /* Find the end of the chain. */
4289 for (d = list_head; (*d) != NULL; d = &(*d)->dw_loc_next)
4292 *d = descr;
4295 /* Keep track of the number of spaces used to indent the
4296 output of the debugging routines that print the structure of
4297 the DIE internal representation. */
4298 static int print_indent;
4300 /* Indent the line the number of spaces given by print_indent. */
4302 static inline void
4303 print_spaces (outfile)
4304 FILE *outfile;
4306 fprintf (outfile, "%*s", print_indent, "");
4309 /* Print the information associated with a given DIE, and its children.
4310 This routine is a debugging aid only. */
4312 static void
4313 print_die (die, outfile)
4314 dw_die_ref die;
4315 FILE *outfile;
4317 register dw_attr_ref a;
4318 register dw_die_ref c;
4320 print_spaces (outfile);
4321 fprintf (outfile, "DIE %4lu: %s\n",
4322 die->die_offset, dwarf_tag_name (die->die_tag));
4323 print_spaces (outfile);
4324 fprintf (outfile, " abbrev id: %lu", die->die_abbrev);
4325 fprintf (outfile, " offset: %lu\n", die->die_offset);
4327 for (a = die->die_attr; a != NULL; a = a->dw_attr_next)
4329 print_spaces (outfile);
4330 fprintf (outfile, " %s: ", dwarf_attr_name (a->dw_attr));
4332 switch (a->dw_attr_val.val_class)
4334 case dw_val_class_addr:
4335 fprintf (outfile, "address");
4336 break;
4337 case dw_val_class_loc:
4338 fprintf (outfile, "location descriptor");
4339 break;
4340 case dw_val_class_const:
4341 fprintf (outfile, "%ld", a->dw_attr_val.v.val_int);
4342 break;
4343 case dw_val_class_unsigned_const:
4344 fprintf (outfile, "%lu", a->dw_attr_val.v.val_unsigned);
4345 break;
4346 case dw_val_class_long_long:
4347 fprintf (outfile, "constant (%lu,%lu)",
4348 a->dw_attr_val.v.val_long_long.hi,
4349 a->dw_attr_val.v.val_long_long.low);
4350 break;
4351 case dw_val_class_float:
4352 fprintf (outfile, "floating-point constant");
4353 break;
4354 case dw_val_class_flag:
4355 fprintf (outfile, "%u", a->dw_attr_val.v.val_flag);
4356 break;
4357 case dw_val_class_die_ref:
4358 if (a->dw_attr_val.v.val_die_ref != NULL)
4359 fprintf (outfile, "die -> %lu",
4360 a->dw_attr_val.v.val_die_ref->die_offset);
4361 else
4362 fprintf (outfile, "die -> <null>");
4363 break;
4364 case dw_val_class_lbl_id:
4365 case dw_val_class_lbl_offset:
4366 fprintf (outfile, "label: %s", a->dw_attr_val.v.val_lbl_id);
4367 break;
4368 case dw_val_class_str:
4369 if (a->dw_attr_val.v.val_str != NULL)
4370 fprintf (outfile, "\"%s\"", a->dw_attr_val.v.val_str);
4371 else
4372 fprintf (outfile, "<null>");
4373 break;
4374 default:
4375 break;
4378 fprintf (outfile, "\n");
4381 if (die->die_child != NULL)
4383 print_indent += 4;
4384 for (c = die->die_child; c != NULL; c = c->die_sib)
4385 print_die (c, outfile);
4387 print_indent -= 4;
4391 /* Print the contents of the source code line number correspondence table.
4392 This routine is a debugging aid only. */
4394 static void
4395 print_dwarf_line_table (outfile)
4396 FILE *outfile;
4398 register unsigned i;
4399 register dw_line_info_ref line_info;
4401 fprintf (outfile, "\n\nDWARF source line information\n");
4402 for (i = 1; i < line_info_table_in_use; ++i)
4404 line_info = &line_info_table[i];
4405 fprintf (outfile, "%5d: ", i);
4406 fprintf (outfile, "%-20s", file_table[line_info->dw_file_num]);
4407 fprintf (outfile, "%6ld", line_info->dw_line_num);
4408 fprintf (outfile, "\n");
4411 fprintf (outfile, "\n\n");
4414 /* Print the information collected for a given DIE. */
4416 void
4417 debug_dwarf_die (die)
4418 dw_die_ref die;
4420 print_die (die, stderr);
4423 /* Print all DWARF information collected for the compilation unit.
4424 This routine is a debugging aid only. */
4426 void
4427 debug_dwarf ()
4429 print_indent = 0;
4430 print_die (comp_unit_die, stderr);
4431 if (! DWARF2_ASM_LINE_DEBUG_INFO)
4432 print_dwarf_line_table (stderr);
4435 /* Traverse the DIE, and add a sibling attribute if it may have the
4436 effect of speeding up access to siblings. To save some space,
4437 avoid generating sibling attributes for DIE's without children. */
4439 static void
4440 add_sibling_attributes(die)
4441 register dw_die_ref die;
4443 register dw_die_ref c;
4444 register dw_attr_ref attr;
4445 if (die != comp_unit_die && die->die_child != NULL)
4447 attr = (dw_attr_ref) xmalloc (sizeof (dw_attr_node));
4448 attr->dw_attr_next = NULL;
4449 attr->dw_attr = DW_AT_sibling;
4450 attr->dw_attr_val.val_class = dw_val_class_die_ref;
4451 attr->dw_attr_val.v.val_die_ref = die->die_sib;
4453 /* Add the sibling link to the front of the attribute list. */
4454 attr->dw_attr_next = die->die_attr;
4455 if (die->die_attr == NULL)
4456 die->die_attr_last = attr;
4458 die->die_attr = attr;
4461 for (c = die->die_child; c != NULL; c = c->die_sib)
4462 add_sibling_attributes (c);
4465 /* The format of each DIE (and its attribute value pairs)
4466 is encoded in an abbreviation table. This routine builds the
4467 abbreviation table and assigns a unique abbreviation id for
4468 each abbreviation entry. The children of each die are visited
4469 recursively. */
4471 static void
4472 build_abbrev_table (die)
4473 register dw_die_ref die;
4475 register unsigned long abbrev_id;
4476 register unsigned long n_alloc;
4477 register dw_die_ref c;
4478 register dw_attr_ref d_attr, a_attr;
4479 for (abbrev_id = 1; abbrev_id < abbrev_die_table_in_use; ++abbrev_id)
4481 register dw_die_ref abbrev = abbrev_die_table[abbrev_id];
4483 if (abbrev->die_tag == die->die_tag)
4485 if ((abbrev->die_child != NULL) == (die->die_child != NULL))
4487 a_attr = abbrev->die_attr;
4488 d_attr = die->die_attr;
4490 while (a_attr != NULL && d_attr != NULL)
4492 if ((a_attr->dw_attr != d_attr->dw_attr)
4493 || (value_format (&a_attr->dw_attr_val)
4494 != value_format (&d_attr->dw_attr_val)))
4495 break;
4497 a_attr = a_attr->dw_attr_next;
4498 d_attr = d_attr->dw_attr_next;
4501 if (a_attr == NULL && d_attr == NULL)
4502 break;
4507 if (abbrev_id >= abbrev_die_table_in_use)
4509 if (abbrev_die_table_in_use >= abbrev_die_table_allocated)
4511 n_alloc = abbrev_die_table_allocated + ABBREV_DIE_TABLE_INCREMENT;
4512 abbrev_die_table
4513 = (dw_die_ref *) xrealloc (abbrev_die_table,
4514 sizeof (dw_die_ref) * n_alloc);
4516 bzero ((char *) &abbrev_die_table[abbrev_die_table_allocated],
4517 (n_alloc - abbrev_die_table_allocated) * sizeof (dw_die_ref));
4518 abbrev_die_table_allocated = n_alloc;
4521 ++abbrev_die_table_in_use;
4522 abbrev_die_table[abbrev_id] = die;
4525 die->die_abbrev = abbrev_id;
4526 for (c = die->die_child; c != NULL; c = c->die_sib)
4527 build_abbrev_table (c);
4530 /* Return the size of a string, including the null byte.
4532 This used to treat backslashes as escapes, and hence they were not included
4533 in the count. However, that conflicts with what ASM_OUTPUT_ASCII does,
4534 which treats a backslash as a backslash, escaping it if necessary, and hence
4535 we must include them in the count. */
4537 static unsigned long
4538 size_of_string (str)
4539 register char *str;
4541 return strlen (str) + 1;
4544 /* Return the size of a location descriptor. */
4546 static unsigned long
4547 size_of_loc_descr (loc)
4548 register dw_loc_descr_ref loc;
4550 register unsigned long size = 1;
4552 switch (loc->dw_loc_opc)
4554 case DW_OP_addr:
4555 size += PTR_SIZE;
4556 break;
4557 case DW_OP_const1u:
4558 case DW_OP_const1s:
4559 size += 1;
4560 break;
4561 case DW_OP_const2u:
4562 case DW_OP_const2s:
4563 size += 2;
4564 break;
4565 case DW_OP_const4u:
4566 case DW_OP_const4s:
4567 size += 4;
4568 break;
4569 case DW_OP_const8u:
4570 case DW_OP_const8s:
4571 size += 8;
4572 break;
4573 case DW_OP_constu:
4574 size += size_of_uleb128 (loc->dw_loc_oprnd1.v.val_unsigned);
4575 break;
4576 case DW_OP_consts:
4577 size += size_of_sleb128 (loc->dw_loc_oprnd1.v.val_int);
4578 break;
4579 case DW_OP_pick:
4580 size += 1;
4581 break;
4582 case DW_OP_plus_uconst:
4583 size += size_of_uleb128 (loc->dw_loc_oprnd1.v.val_unsigned);
4584 break;
4585 case DW_OP_skip:
4586 case DW_OP_bra:
4587 size += 2;
4588 break;
4589 case DW_OP_breg0:
4590 case DW_OP_breg1:
4591 case DW_OP_breg2:
4592 case DW_OP_breg3:
4593 case DW_OP_breg4:
4594 case DW_OP_breg5:
4595 case DW_OP_breg6:
4596 case DW_OP_breg7:
4597 case DW_OP_breg8:
4598 case DW_OP_breg9:
4599 case DW_OP_breg10:
4600 case DW_OP_breg11:
4601 case DW_OP_breg12:
4602 case DW_OP_breg13:
4603 case DW_OP_breg14:
4604 case DW_OP_breg15:
4605 case DW_OP_breg16:
4606 case DW_OP_breg17:
4607 case DW_OP_breg18:
4608 case DW_OP_breg19:
4609 case DW_OP_breg20:
4610 case DW_OP_breg21:
4611 case DW_OP_breg22:
4612 case DW_OP_breg23:
4613 case DW_OP_breg24:
4614 case DW_OP_breg25:
4615 case DW_OP_breg26:
4616 case DW_OP_breg27:
4617 case DW_OP_breg28:
4618 case DW_OP_breg29:
4619 case DW_OP_breg30:
4620 case DW_OP_breg31:
4621 size += size_of_sleb128 (loc->dw_loc_oprnd1.v.val_int);
4622 break;
4623 case DW_OP_regx:
4624 size += size_of_uleb128 (loc->dw_loc_oprnd1.v.val_unsigned);
4625 break;
4626 case DW_OP_fbreg:
4627 size += size_of_sleb128 (loc->dw_loc_oprnd1.v.val_int);
4628 break;
4629 case DW_OP_bregx:
4630 size += size_of_uleb128 (loc->dw_loc_oprnd1.v.val_unsigned);
4631 size += size_of_sleb128 (loc->dw_loc_oprnd2.v.val_int);
4632 break;
4633 case DW_OP_piece:
4634 size += size_of_uleb128 (loc->dw_loc_oprnd1.v.val_unsigned);
4635 break;
4636 case DW_OP_deref_size:
4637 case DW_OP_xderef_size:
4638 size += 1;
4639 break;
4640 default:
4641 break;
4644 return size;
4647 /* Return the size of a series of location descriptors. */
4649 static unsigned long
4650 size_of_locs (loc)
4651 register dw_loc_descr_ref loc;
4653 register unsigned long size = 0;
4655 for (; loc != NULL; loc = loc->dw_loc_next)
4656 size += size_of_loc_descr (loc);
4658 return size;
4661 /* Return the power-of-two number of bytes necessary to represent VALUE. */
4663 static int
4664 constant_size (value)
4665 long unsigned value;
4667 int log;
4669 if (value == 0)
4670 log = 0;
4671 else
4672 log = floor_log2 (value);
4674 log = log / 8;
4675 log = 1 << (floor_log2 (log) + 1);
4677 return log;
4680 /* Return the size of a DIE, as it is represented in the
4681 .debug_info section. */
4683 static unsigned long
4684 size_of_die (die)
4685 register dw_die_ref die;
4687 register unsigned long size = 0;
4688 register dw_attr_ref a;
4690 size += size_of_uleb128 (die->die_abbrev);
4691 for (a = die->die_attr; a != NULL; a = a->dw_attr_next)
4693 switch (a->dw_attr_val.val_class)
4695 case dw_val_class_addr:
4696 size += PTR_SIZE;
4697 break;
4698 case dw_val_class_loc:
4700 register unsigned long lsize
4701 = size_of_locs (a->dw_attr_val.v.val_loc);
4703 /* Block length. */
4704 size += constant_size (lsize);
4705 size += lsize;
4707 break;
4708 case dw_val_class_const:
4709 size += 4;
4710 break;
4711 case dw_val_class_unsigned_const:
4712 size += constant_size (a->dw_attr_val.v.val_unsigned);
4713 break;
4714 case dw_val_class_long_long:
4715 size += 1 + 8; /* block */
4716 break;
4717 case dw_val_class_float:
4718 size += 1 + a->dw_attr_val.v.val_float.length * 4; /* block */
4719 break;
4720 case dw_val_class_flag:
4721 size += 1;
4722 break;
4723 case dw_val_class_die_ref:
4724 size += DWARF_OFFSET_SIZE;
4725 break;
4726 case dw_val_class_fde_ref:
4727 size += DWARF_OFFSET_SIZE;
4728 break;
4729 case dw_val_class_lbl_id:
4730 size += PTR_SIZE;
4731 break;
4732 case dw_val_class_lbl_offset:
4733 size += DWARF_OFFSET_SIZE;
4734 break;
4735 case dw_val_class_str:
4736 size += size_of_string (a->dw_attr_val.v.val_str);
4737 break;
4738 default:
4739 abort ();
4743 return size;
4746 /* Size the debugging information associated with a given DIE.
4747 Visits the DIE's children recursively. Updates the global
4748 variable next_die_offset, on each time through. Uses the
4749 current value of next_die_offset to update the die_offset
4750 field in each DIE. */
4752 static void
4753 calc_die_sizes (die)
4754 dw_die_ref die;
4756 register dw_die_ref c;
4757 die->die_offset = next_die_offset;
4758 next_die_offset += size_of_die (die);
4760 for (c = die->die_child; c != NULL; c = c->die_sib)
4761 calc_die_sizes (c);
4763 if (die->die_child != NULL)
4764 /* Count the null byte used to terminate sibling lists. */
4765 next_die_offset += 1;
4768 /* Return the size of the line information prolog generated for the
4769 compilation unit. */
4771 static unsigned long
4772 size_of_line_prolog ()
4774 register unsigned long size;
4775 register unsigned long ft_index;
4777 size = DWARF_LINE_PROLOG_HEADER_SIZE;
4779 /* Count the size of the table giving number of args for each
4780 standard opcode. */
4781 size += DWARF_LINE_OPCODE_BASE - 1;
4783 /* Include directory table is empty (at present). Count only the
4784 null byte used to terminate the table. */
4785 size += 1;
4787 for (ft_index = 1; ft_index < file_table_in_use; ++ft_index)
4789 /* File name entry. */
4790 size += size_of_string (file_table[ft_index]);
4792 /* Include directory index. */
4793 size += size_of_uleb128 (0);
4795 /* Modification time. */
4796 size += size_of_uleb128 (0);
4798 /* File length in bytes. */
4799 size += size_of_uleb128 (0);
4802 /* Count the file table terminator. */
4803 size += 1;
4804 return size;
4807 /* Return the size of the line information generated for this
4808 compilation unit. */
4810 static unsigned long
4811 size_of_line_info ()
4813 register unsigned long size;
4814 register unsigned long lt_index;
4815 register unsigned long current_line;
4816 register long line_offset;
4817 register long line_delta;
4818 register unsigned long current_file;
4819 register unsigned long function;
4820 unsigned long size_of_set_address;
4822 /* Size of a DW_LNE_set_address instruction. */
4823 size_of_set_address = 1 + size_of_uleb128 (1 + PTR_SIZE) + 1 + PTR_SIZE;
4825 /* Version number. */
4826 size = 2;
4828 /* Prolog length specifier. */
4829 size += DWARF_OFFSET_SIZE;
4831 /* Prolog. */
4832 size += size_of_line_prolog ();
4834 current_file = 1;
4835 current_line = 1;
4836 for (lt_index = 1; lt_index < line_info_table_in_use; ++lt_index)
4838 register dw_line_info_ref line_info = &line_info_table[lt_index];
4840 if (line_info->dw_line_num == current_line
4841 && line_info->dw_file_num == current_file)
4842 continue;
4844 /* Advance pc instruction. */
4845 /* ??? See the DW_LNS_advance_pc comment in output_line_info. */
4846 if (0)
4847 size += 1 + 2;
4848 else
4849 size += size_of_set_address;
4851 if (line_info->dw_file_num != current_file)
4853 /* Set file number instruction. */
4854 size += 1;
4855 current_file = line_info->dw_file_num;
4856 size += size_of_uleb128 (current_file);
4859 if (line_info->dw_line_num != current_line)
4861 line_offset = line_info->dw_line_num - current_line;
4862 line_delta = line_offset - DWARF_LINE_BASE;
4863 current_line = line_info->dw_line_num;
4864 if (line_delta >= 0 && line_delta < (DWARF_LINE_RANGE - 1))
4865 /* 1-byte special line number instruction. */
4866 size += 1;
4867 else
4869 /* Advance line instruction. */
4870 size += 1;
4871 size += size_of_sleb128 (line_offset);
4872 /* Generate line entry instruction. */
4873 size += 1;
4878 /* Advance pc instruction. */
4879 if (0)
4880 size += 1 + 2;
4881 else
4882 size += size_of_set_address;
4884 /* End of line number info. marker. */
4885 size += 1 + size_of_uleb128 (1) + 1;
4887 function = 0;
4888 current_file = 1;
4889 current_line = 1;
4890 for (lt_index = 0; lt_index < separate_line_info_table_in_use; )
4892 register dw_separate_line_info_ref line_info
4893 = &separate_line_info_table[lt_index];
4895 if (line_info->dw_line_num == current_line
4896 && line_info->dw_file_num == current_file
4897 && line_info->function == function)
4898 goto cont;
4900 if (function != line_info->function)
4902 function = line_info->function;
4903 /* Set address register instruction. */
4904 size += size_of_set_address;
4906 else
4908 /* Advance pc instruction. */
4909 if (0)
4910 size += 1 + 2;
4911 else
4912 size += size_of_set_address;
4915 if (line_info->dw_file_num != current_file)
4917 /* Set file number instruction. */
4918 size += 1;
4919 current_file = line_info->dw_file_num;
4920 size += size_of_uleb128 (current_file);
4923 if (line_info->dw_line_num != current_line)
4925 line_offset = line_info->dw_line_num - current_line;
4926 line_delta = line_offset - DWARF_LINE_BASE;
4927 current_line = line_info->dw_line_num;
4928 if (line_delta >= 0 && line_delta < (DWARF_LINE_RANGE - 1))
4929 /* 1-byte special line number instruction. */
4930 size += 1;
4931 else
4933 /* Advance line instruction. */
4934 size += 1;
4935 size += size_of_sleb128 (line_offset);
4937 /* Generate line entry instruction. */
4938 size += 1;
4942 cont:
4943 ++lt_index;
4945 /* If we're done with a function, end its sequence. */
4946 if (lt_index == separate_line_info_table_in_use
4947 || separate_line_info_table[lt_index].function != function)
4949 current_file = 1;
4950 current_line = 1;
4952 /* Advance pc instruction. */
4953 if (0)
4954 size += 1 + 2;
4955 else
4956 size += size_of_set_address;
4958 /* End of line number info. marker. */
4959 size += 1 + size_of_uleb128 (1) + 1;
4963 return size;
4966 /* Return the size of the .debug_pubnames table generated for the
4967 compilation unit. */
4969 static unsigned long
4970 size_of_pubnames ()
4972 register unsigned long size;
4973 register unsigned i;
4975 size = DWARF_PUBNAMES_HEADER_SIZE;
4976 for (i = 0; i < pubname_table_in_use; ++i)
4978 register pubname_ref p = &pubname_table[i];
4979 size += DWARF_OFFSET_SIZE + size_of_string (p->name);
4982 size += DWARF_OFFSET_SIZE;
4983 return size;
4986 /* Return the size of the information in the .debug_aranges section. */
4988 static unsigned long
4989 size_of_aranges ()
4991 register unsigned long size;
4993 size = DWARF_ARANGES_HEADER_SIZE;
4995 /* Count the address/length pair for this compilation unit. */
4996 size += 2 * PTR_SIZE;
4997 size += 2 * PTR_SIZE * arange_table_in_use;
4999 /* Count the two zero words used to terminated the address range table. */
5000 size += 2 * PTR_SIZE;
5001 return size;
5004 /* Select the encoding of an attribute value. */
5006 static enum dwarf_form
5007 value_format (v)
5008 dw_val_ref v;
5010 switch (v->val_class)
5012 case dw_val_class_addr:
5013 return DW_FORM_addr;
5014 case dw_val_class_loc:
5015 switch (constant_size (size_of_locs (v->v.val_loc)))
5017 case 1:
5018 return DW_FORM_block1;
5019 case 2:
5020 return DW_FORM_block2;
5021 default:
5022 abort ();
5024 case dw_val_class_const:
5025 return DW_FORM_data4;
5026 case dw_val_class_unsigned_const:
5027 switch (constant_size (v->v.val_unsigned))
5029 case 1:
5030 return DW_FORM_data1;
5031 case 2:
5032 return DW_FORM_data2;
5033 case 4:
5034 return DW_FORM_data4;
5035 case 8:
5036 return DW_FORM_data8;
5037 default:
5038 abort ();
5040 case dw_val_class_long_long:
5041 return DW_FORM_block1;
5042 case dw_val_class_float:
5043 return DW_FORM_block1;
5044 case dw_val_class_flag:
5045 return DW_FORM_flag;
5046 case dw_val_class_die_ref:
5047 return DW_FORM_ref;
5048 case dw_val_class_fde_ref:
5049 return DW_FORM_data;
5050 case dw_val_class_lbl_id:
5051 return DW_FORM_addr;
5052 case dw_val_class_lbl_offset:
5053 return DW_FORM_data;
5054 case dw_val_class_str:
5055 return DW_FORM_string;
5056 default:
5057 abort ();
5061 /* Output the encoding of an attribute value. */
5063 static void
5064 output_value_format (v)
5065 dw_val_ref v;
5067 enum dwarf_form form = value_format (v);
5069 output_uleb128 (form);
5070 if (flag_debug_asm)
5071 fprintf (asm_out_file, " (%s)", dwarf_form_name (form));
5073 fputc ('\n', asm_out_file);
5076 /* Output the .debug_abbrev section which defines the DIE abbreviation
5077 table. */
5079 static void
5080 output_abbrev_section ()
5082 unsigned long abbrev_id;
5084 dw_attr_ref a_attr;
5085 for (abbrev_id = 1; abbrev_id < abbrev_die_table_in_use; ++abbrev_id)
5087 register dw_die_ref abbrev = abbrev_die_table[abbrev_id];
5089 output_uleb128 (abbrev_id);
5090 if (flag_debug_asm)
5091 fprintf (asm_out_file, " (abbrev code)");
5093 fputc ('\n', asm_out_file);
5094 output_uleb128 (abbrev->die_tag);
5095 if (flag_debug_asm)
5096 fprintf (asm_out_file, " (TAG: %s)",
5097 dwarf_tag_name (abbrev->die_tag));
5099 fputc ('\n', asm_out_file);
5100 fprintf (asm_out_file, "\t%s\t0x%x", ASM_BYTE_OP,
5101 abbrev->die_child != NULL ? DW_children_yes : DW_children_no);
5103 if (flag_debug_asm)
5104 fprintf (asm_out_file, "\t%s %s",
5105 ASM_COMMENT_START,
5106 (abbrev->die_child != NULL
5107 ? "DW_children_yes" : "DW_children_no"));
5109 fputc ('\n', asm_out_file);
5111 for (a_attr = abbrev->die_attr; a_attr != NULL;
5112 a_attr = a_attr->dw_attr_next)
5114 output_uleb128 (a_attr->dw_attr);
5115 if (flag_debug_asm)
5116 fprintf (asm_out_file, " (%s)",
5117 dwarf_attr_name (a_attr->dw_attr));
5119 fputc ('\n', asm_out_file);
5120 output_value_format (&a_attr->dw_attr_val);
5123 fprintf (asm_out_file, "\t%s\t0,0\n", ASM_BYTE_OP);
5126 /* Terminate the table. */
5127 fprintf (asm_out_file, "\t%s\t0\n", ASM_BYTE_OP);
5130 /* Output location description stack opcode's operands (if any). */
5132 static void
5133 output_loc_operands (loc)
5134 register dw_loc_descr_ref loc;
5136 register dw_val_ref val1 = &loc->dw_loc_oprnd1;
5137 register dw_val_ref val2 = &loc->dw_loc_oprnd2;
5139 switch (loc->dw_loc_opc)
5141 case DW_OP_addr:
5142 ASM_OUTPUT_DWARF_ADDR_CONST (asm_out_file, val1->v.val_addr);
5143 fputc ('\n', asm_out_file);
5144 break;
5145 case DW_OP_const1u:
5146 case DW_OP_const1s:
5147 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, val1->v.val_flag);
5148 fputc ('\n', asm_out_file);
5149 break;
5150 case DW_OP_const2u:
5151 case DW_OP_const2s:
5152 ASM_OUTPUT_DWARF_DATA2 (asm_out_file, val1->v.val_int);
5153 fputc ('\n', asm_out_file);
5154 break;
5155 case DW_OP_const4u:
5156 case DW_OP_const4s:
5157 ASM_OUTPUT_DWARF_DATA4 (asm_out_file, val1->v.val_int);
5158 fputc ('\n', asm_out_file);
5159 break;
5160 case DW_OP_const8u:
5161 case DW_OP_const8s:
5162 abort ();
5163 fputc ('\n', asm_out_file);
5164 break;
5165 case DW_OP_constu:
5166 output_uleb128 (val1->v.val_unsigned);
5167 fputc ('\n', asm_out_file);
5168 break;
5169 case DW_OP_consts:
5170 output_sleb128 (val1->v.val_int);
5171 fputc ('\n', asm_out_file);
5172 break;
5173 case DW_OP_pick:
5174 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, val1->v.val_int);
5175 fputc ('\n', asm_out_file);
5176 break;
5177 case DW_OP_plus_uconst:
5178 output_uleb128 (val1->v.val_unsigned);
5179 fputc ('\n', asm_out_file);
5180 break;
5181 case DW_OP_skip:
5182 case DW_OP_bra:
5183 ASM_OUTPUT_DWARF_DATA2 (asm_out_file, val1->v.val_int);
5184 fputc ('\n', asm_out_file);
5185 break;
5186 case DW_OP_breg0:
5187 case DW_OP_breg1:
5188 case DW_OP_breg2:
5189 case DW_OP_breg3:
5190 case DW_OP_breg4:
5191 case DW_OP_breg5:
5192 case DW_OP_breg6:
5193 case DW_OP_breg7:
5194 case DW_OP_breg8:
5195 case DW_OP_breg9:
5196 case DW_OP_breg10:
5197 case DW_OP_breg11:
5198 case DW_OP_breg12:
5199 case DW_OP_breg13:
5200 case DW_OP_breg14:
5201 case DW_OP_breg15:
5202 case DW_OP_breg16:
5203 case DW_OP_breg17:
5204 case DW_OP_breg18:
5205 case DW_OP_breg19:
5206 case DW_OP_breg20:
5207 case DW_OP_breg21:
5208 case DW_OP_breg22:
5209 case DW_OP_breg23:
5210 case DW_OP_breg24:
5211 case DW_OP_breg25:
5212 case DW_OP_breg26:
5213 case DW_OP_breg27:
5214 case DW_OP_breg28:
5215 case DW_OP_breg29:
5216 case DW_OP_breg30:
5217 case DW_OP_breg31:
5218 output_sleb128 (val1->v.val_int);
5219 fputc ('\n', asm_out_file);
5220 break;
5221 case DW_OP_regx:
5222 output_uleb128 (val1->v.val_unsigned);
5223 fputc ('\n', asm_out_file);
5224 break;
5225 case DW_OP_fbreg:
5226 output_sleb128 (val1->v.val_int);
5227 fputc ('\n', asm_out_file);
5228 break;
5229 case DW_OP_bregx:
5230 output_uleb128 (val1->v.val_unsigned);
5231 fputc ('\n', asm_out_file);
5232 output_sleb128 (val2->v.val_int);
5233 fputc ('\n', asm_out_file);
5234 break;
5235 case DW_OP_piece:
5236 output_uleb128 (val1->v.val_unsigned);
5237 fputc ('\n', asm_out_file);
5238 break;
5239 case DW_OP_deref_size:
5240 case DW_OP_xderef_size:
5241 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, val1->v.val_flag);
5242 fputc ('\n', asm_out_file);
5243 break;
5244 default:
5245 break;
5249 /* Compute the offset of a sibling. */
5251 static unsigned long
5252 sibling_offset (die)
5253 dw_die_ref die;
5255 unsigned long offset;
5257 if (die->die_child_last == NULL)
5258 offset = die->die_offset + size_of_die (die);
5259 else
5260 offset = sibling_offset (die->die_child_last) + 1;
5262 return offset;
5265 /* Output the DIE and its attributes. Called recursively to generate
5266 the definitions of each child DIE. */
5268 static void
5269 output_die (die)
5270 register dw_die_ref die;
5272 register dw_attr_ref a;
5273 register dw_die_ref c;
5274 register unsigned long ref_offset;
5275 register unsigned long size;
5276 register dw_loc_descr_ref loc;
5278 output_uleb128 (die->die_abbrev);
5279 if (flag_debug_asm)
5280 fprintf (asm_out_file, " (DIE (0x%lx) %s)",
5281 die->die_offset, dwarf_tag_name (die->die_tag));
5283 fputc ('\n', asm_out_file);
5285 for (a = die->die_attr; a != NULL; a = a->dw_attr_next)
5287 switch (a->dw_attr_val.val_class)
5289 case dw_val_class_addr:
5290 ASM_OUTPUT_DWARF_ADDR_CONST (asm_out_file,
5291 a->dw_attr_val.v.val_addr);
5292 break;
5294 case dw_val_class_loc:
5295 size = size_of_locs (a->dw_attr_val.v.val_loc);
5297 /* Output the block length for this list of location operations. */
5298 switch (constant_size (size))
5300 case 1:
5301 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, size);
5302 break;
5303 case 2:
5304 ASM_OUTPUT_DWARF_DATA2 (asm_out_file, size);
5305 break;
5306 default:
5307 abort ();
5310 if (flag_debug_asm)
5311 fprintf (asm_out_file, "\t%s %s",
5312 ASM_COMMENT_START, dwarf_attr_name (a->dw_attr));
5314 fputc ('\n', asm_out_file);
5315 for (loc = a->dw_attr_val.v.val_loc; loc != NULL;
5316 loc = loc->dw_loc_next)
5318 /* Output the opcode. */
5319 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, loc->dw_loc_opc);
5320 if (flag_debug_asm)
5321 fprintf (asm_out_file, "\t%s %s", ASM_COMMENT_START,
5322 dwarf_stack_op_name (loc->dw_loc_opc));
5324 fputc ('\n', asm_out_file);
5326 /* Output the operand(s) (if any). */
5327 output_loc_operands (loc);
5329 break;
5331 case dw_val_class_const:
5332 ASM_OUTPUT_DWARF_DATA4 (asm_out_file, a->dw_attr_val.v.val_int);
5333 break;
5335 case dw_val_class_unsigned_const:
5336 switch (constant_size (a->dw_attr_val.v.val_unsigned))
5338 case 1:
5339 ASM_OUTPUT_DWARF_DATA1 (asm_out_file,
5340 a->dw_attr_val.v.val_unsigned);
5341 break;
5342 case 2:
5343 ASM_OUTPUT_DWARF_DATA2 (asm_out_file,
5344 a->dw_attr_val.v.val_unsigned);
5345 break;
5346 case 4:
5347 ASM_OUTPUT_DWARF_DATA4 (asm_out_file,
5348 a->dw_attr_val.v.val_unsigned);
5349 break;
5350 case 8:
5351 ASM_OUTPUT_DWARF_DATA8 (asm_out_file,
5352 a->dw_attr_val.v.val_long_long.hi,
5353 a->dw_attr_val.v.val_long_long.low);
5354 break;
5355 default:
5356 abort ();
5358 break;
5360 case dw_val_class_long_long:
5361 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, 8);
5362 if (flag_debug_asm)
5363 fprintf (asm_out_file, "\t%s %s",
5364 ASM_COMMENT_START, dwarf_attr_name (a->dw_attr));
5366 fputc ('\n', asm_out_file);
5367 ASM_OUTPUT_DWARF_DATA8 (asm_out_file,
5368 a->dw_attr_val.v.val_long_long.hi,
5369 a->dw_attr_val.v.val_long_long.low);
5371 if (flag_debug_asm)
5372 fprintf (asm_out_file,
5373 "\t%s long long constant", ASM_COMMENT_START);
5375 fputc ('\n', asm_out_file);
5376 break;
5378 case dw_val_class_float:
5380 register unsigned int i;
5381 ASM_OUTPUT_DWARF_DATA1 (asm_out_file,
5382 a->dw_attr_val.v.val_float.length * 4);
5383 if (flag_debug_asm)
5384 fprintf (asm_out_file, "\t%s %s",
5385 ASM_COMMENT_START, dwarf_attr_name (a->dw_attr));
5387 fputc ('\n', asm_out_file);
5388 for (i = 0; i < a->dw_attr_val.v.val_float.length; ++i)
5390 ASM_OUTPUT_DWARF_DATA4 (asm_out_file,
5391 a->dw_attr_val.v.val_float.array[i]);
5392 if (flag_debug_asm)
5393 fprintf (asm_out_file, "\t%s fp constant word %u",
5394 ASM_COMMENT_START, i);
5396 fputc ('\n', asm_out_file);
5398 break;
5401 case dw_val_class_flag:
5402 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, a->dw_attr_val.v.val_flag);
5403 break;
5405 case dw_val_class_die_ref:
5406 if (a->dw_attr_val.v.val_die_ref != NULL)
5407 ref_offset = a->dw_attr_val.v.val_die_ref->die_offset;
5408 else if (a->dw_attr == DW_AT_sibling)
5409 ref_offset = sibling_offset(die);
5410 else
5411 abort ();
5413 ASM_OUTPUT_DWARF_DATA (asm_out_file, ref_offset);
5414 break;
5416 case dw_val_class_fde_ref:
5418 char l1[20];
5419 ASM_GENERATE_INTERNAL_LABEL
5420 (l1, FDE_AFTER_SIZE_LABEL, a->dw_attr_val.v.val_fde_index * 2);
5421 ASM_OUTPUT_DWARF_OFFSET (asm_out_file, l1);
5422 fprintf (asm_out_file, " - %d", DWARF_OFFSET_SIZE);
5424 break;
5426 case dw_val_class_lbl_id:
5427 ASM_OUTPUT_DWARF_ADDR (asm_out_file, a->dw_attr_val.v.val_lbl_id);
5428 break;
5430 case dw_val_class_lbl_offset:
5431 ASM_OUTPUT_DWARF_OFFSET (asm_out_file, a->dw_attr_val.v.val_lbl_id);
5432 break;
5434 case dw_val_class_str:
5435 if (flag_debug_asm)
5436 ASM_OUTPUT_DWARF_STRING (asm_out_file, a->dw_attr_val.v.val_str);
5437 else
5438 ASM_OUTPUT_ASCII (asm_out_file,
5439 a->dw_attr_val.v.val_str,
5440 (int) strlen (a->dw_attr_val.v.val_str) + 1);
5441 break;
5443 default:
5444 abort ();
5447 if (a->dw_attr_val.val_class != dw_val_class_loc
5448 && a->dw_attr_val.val_class != dw_val_class_long_long
5449 && a->dw_attr_val.val_class != dw_val_class_float)
5451 if (flag_debug_asm)
5452 fprintf (asm_out_file, "\t%s %s",
5453 ASM_COMMENT_START, dwarf_attr_name (a->dw_attr));
5455 fputc ('\n', asm_out_file);
5459 for (c = die->die_child; c != NULL; c = c->die_sib)
5460 output_die (c);
5462 if (die->die_child != NULL)
5464 /* Add null byte to terminate sibling list. */
5465 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, 0);
5466 if (flag_debug_asm)
5467 fprintf (asm_out_file, "\t%s end of children of DIE 0x%lx",
5468 ASM_COMMENT_START, die->die_offset);
5470 fputc ('\n', asm_out_file);
5474 /* Output the compilation unit that appears at the beginning of the
5475 .debug_info section, and precedes the DIE descriptions. */
5477 static void
5478 output_compilation_unit_header ()
5480 ASM_OUTPUT_DWARF_DATA (asm_out_file, next_die_offset - DWARF_OFFSET_SIZE);
5481 if (flag_debug_asm)
5482 fprintf (asm_out_file, "\t%s Length of Compilation Unit Info.",
5483 ASM_COMMENT_START);
5485 fputc ('\n', asm_out_file);
5486 ASM_OUTPUT_DWARF_DATA2 (asm_out_file, DWARF_VERSION);
5487 if (flag_debug_asm)
5488 fprintf (asm_out_file, "\t%s DWARF version number", ASM_COMMENT_START);
5490 fputc ('\n', asm_out_file);
5491 ASM_OUTPUT_DWARF_OFFSET (asm_out_file, abbrev_section_label);
5492 if (flag_debug_asm)
5493 fprintf (asm_out_file, "\t%s Offset Into Abbrev. Section",
5494 ASM_COMMENT_START);
5496 fputc ('\n', asm_out_file);
5497 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, PTR_SIZE);
5498 if (flag_debug_asm)
5499 fprintf (asm_out_file, "\t%s Pointer Size (in bytes)", ASM_COMMENT_START);
5501 fputc ('\n', asm_out_file);
5504 /* The DWARF2 pubname for a nested thingy looks like "A::f". The output
5505 of decl_printable_name for C++ looks like "A::f(int)". Let's drop the
5506 argument list, and maybe the scope. */
5508 static const char *
5509 dwarf2_name (decl, scope)
5510 tree decl;
5511 int scope;
5513 return (*decl_printable_name) (decl, scope ? 1 : 0);
5516 /* Add a new entry to .debug_pubnames if appropriate. */
5518 static void
5519 add_pubname (decl, die)
5520 tree decl;
5521 dw_die_ref die;
5523 pubname_ref p;
5525 if (! TREE_PUBLIC (decl))
5526 return;
5528 if (pubname_table_in_use == pubname_table_allocated)
5530 pubname_table_allocated += PUBNAME_TABLE_INCREMENT;
5531 pubname_table = (pubname_ref) xrealloc
5532 (pubname_table, pubname_table_allocated * sizeof (pubname_entry));
5535 p = &pubname_table[pubname_table_in_use++];
5536 p->die = die;
5538 p->name = xstrdup (dwarf2_name (decl, 1));
5541 /* Output the public names table used to speed up access to externally
5542 visible names. For now, only generate entries for externally
5543 visible procedures. */
5545 static void
5546 output_pubnames ()
5548 register unsigned i;
5549 register unsigned long pubnames_length = size_of_pubnames ();
5551 ASM_OUTPUT_DWARF_DATA (asm_out_file, pubnames_length);
5553 if (flag_debug_asm)
5554 fprintf (asm_out_file, "\t%s Length of Public Names Info.",
5555 ASM_COMMENT_START);
5557 fputc ('\n', asm_out_file);
5558 ASM_OUTPUT_DWARF_DATA2 (asm_out_file, DWARF_VERSION);
5560 if (flag_debug_asm)
5561 fprintf (asm_out_file, "\t%s DWARF Version", ASM_COMMENT_START);
5563 fputc ('\n', asm_out_file);
5564 ASM_OUTPUT_DWARF_OFFSET (asm_out_file, debug_info_section_label);
5565 if (flag_debug_asm)
5566 fprintf (asm_out_file, "\t%s Offset of Compilation Unit Info.",
5567 ASM_COMMENT_START);
5569 fputc ('\n', asm_out_file);
5570 ASM_OUTPUT_DWARF_DATA (asm_out_file, next_die_offset);
5571 if (flag_debug_asm)
5572 fprintf (asm_out_file, "\t%s Compilation Unit Length", ASM_COMMENT_START);
5574 fputc ('\n', asm_out_file);
5575 for (i = 0; i < pubname_table_in_use; ++i)
5577 register pubname_ref pub = &pubname_table[i];
5579 ASM_OUTPUT_DWARF_DATA (asm_out_file, pub->die->die_offset);
5580 if (flag_debug_asm)
5581 fprintf (asm_out_file, "\t%s DIE offset", ASM_COMMENT_START);
5583 fputc ('\n', asm_out_file);
5585 if (flag_debug_asm)
5587 ASM_OUTPUT_DWARF_STRING (asm_out_file, pub->name);
5588 fprintf (asm_out_file, "%s external name", ASM_COMMENT_START);
5590 else
5592 ASM_OUTPUT_ASCII (asm_out_file, pub->name,
5593 (int) strlen (pub->name) + 1);
5596 fputc ('\n', asm_out_file);
5599 ASM_OUTPUT_DWARF_DATA (asm_out_file, 0);
5600 fputc ('\n', asm_out_file);
5603 /* Add a new entry to .debug_aranges if appropriate. */
5605 static void
5606 add_arange (decl, die)
5607 tree decl;
5608 dw_die_ref die;
5610 if (! DECL_SECTION_NAME (decl))
5611 return;
5613 if (arange_table_in_use == arange_table_allocated)
5615 arange_table_allocated += ARANGE_TABLE_INCREMENT;
5616 arange_table
5617 = (arange_ref) xrealloc (arange_table,
5618 arange_table_allocated * sizeof (dw_die_ref));
5621 arange_table[arange_table_in_use++] = die;
5624 /* Output the information that goes into the .debug_aranges table.
5625 Namely, define the beginning and ending address range of the
5626 text section generated for this compilation unit. */
5628 static void
5629 output_aranges ()
5631 register unsigned i;
5632 register unsigned long aranges_length = size_of_aranges ();
5634 ASM_OUTPUT_DWARF_DATA (asm_out_file, aranges_length);
5635 if (flag_debug_asm)
5636 fprintf (asm_out_file, "\t%s Length of Address Ranges Info.",
5637 ASM_COMMENT_START);
5639 fputc ('\n', asm_out_file);
5640 ASM_OUTPUT_DWARF_DATA2 (asm_out_file, DWARF_VERSION);
5641 if (flag_debug_asm)
5642 fprintf (asm_out_file, "\t%s DWARF Version", ASM_COMMENT_START);
5644 fputc ('\n', asm_out_file);
5645 ASM_OUTPUT_DWARF_OFFSET (asm_out_file, debug_info_section_label);
5646 if (flag_debug_asm)
5647 fprintf (asm_out_file, "\t%s Offset of Compilation Unit Info.",
5648 ASM_COMMENT_START);
5650 fputc ('\n', asm_out_file);
5651 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, PTR_SIZE);
5652 if (flag_debug_asm)
5653 fprintf (asm_out_file, "\t%s Size of Address", ASM_COMMENT_START);
5655 fputc ('\n', asm_out_file);
5656 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, 0);
5657 if (flag_debug_asm)
5658 fprintf (asm_out_file, "\t%s Size of Segment Descriptor",
5659 ASM_COMMENT_START);
5661 fputc ('\n', asm_out_file);
5662 /* We need to align to twice the pointer size here.
5663 If DWARF_OFFSET_SIZE == 4, then we have emitted 12 bytes, and need 4
5664 bytes of padding to align for either 4 or 8 byte pointers. */
5665 ASM_OUTPUT_DWARF_DATA4 (asm_out_file, 0);
5666 /* If DWARF_OFFSET_SIZE == 8, then we have emitted 20 bytes, and need 12
5667 bytes of padding to align for 8 byte pointers. We have already emitted
5668 4 bytes of padding, so emit 8 more here. */
5669 if (DWARF_OFFSET_SIZE == 8)
5670 fprintf (asm_out_file, ",0,0");
5672 if (flag_debug_asm)
5673 fprintf (asm_out_file, "\t%s Pad to %d byte boundary",
5674 ASM_COMMENT_START, 2 * PTR_SIZE);
5676 fputc ('\n', asm_out_file);
5677 ASM_OUTPUT_DWARF_ADDR (asm_out_file, text_section_label);
5678 if (flag_debug_asm)
5679 fprintf (asm_out_file, "\t%s Address", ASM_COMMENT_START);
5681 fputc ('\n', asm_out_file);
5682 ASM_OUTPUT_DWARF_ADDR_DELTA (asm_out_file, text_end_label,
5683 text_section_label);
5684 if (flag_debug_asm)
5685 fprintf (asm_out_file, "%s Length", ASM_COMMENT_START);
5687 fputc ('\n', asm_out_file);
5688 for (i = 0; i < arange_table_in_use; ++i)
5690 dw_die_ref a = arange_table[i];
5692 if (a->die_tag == DW_TAG_subprogram)
5693 ASM_OUTPUT_DWARF_ADDR (asm_out_file, get_AT_low_pc (a));
5694 else
5696 char *name = get_AT_string (a, DW_AT_MIPS_linkage_name);
5697 if (! name)
5698 name = get_AT_string (a, DW_AT_name);
5700 ASM_OUTPUT_DWARF_ADDR (asm_out_file, name);
5703 if (flag_debug_asm)
5704 fprintf (asm_out_file, "\t%s Address", ASM_COMMENT_START);
5706 fputc ('\n', asm_out_file);
5707 if (a->die_tag == DW_TAG_subprogram)
5708 ASM_OUTPUT_DWARF_ADDR_DELTA (asm_out_file, get_AT_hi_pc (a),
5709 get_AT_low_pc (a));
5710 else
5711 ASM_OUTPUT_DWARF_ADDR_DATA (asm_out_file,
5712 get_AT_unsigned (a, DW_AT_byte_size));
5714 if (flag_debug_asm)
5715 fprintf (asm_out_file, "%s Length", ASM_COMMENT_START);
5717 fputc ('\n', asm_out_file);
5720 /* Output the terminator words. */
5721 ASM_OUTPUT_DWARF_ADDR_DATA (asm_out_file, 0);
5722 fputc ('\n', asm_out_file);
5723 ASM_OUTPUT_DWARF_ADDR_DATA (asm_out_file, 0);
5724 fputc ('\n', asm_out_file);
5727 /* Output the source line number correspondence information. This
5728 information goes into the .debug_line section.
5730 If the format of this data changes, then the function size_of_line_info
5731 must also be adjusted the same way. */
5733 static void
5734 output_line_info ()
5736 char line_label[MAX_ARTIFICIAL_LABEL_BYTES];
5737 char prev_line_label[MAX_ARTIFICIAL_LABEL_BYTES];
5738 register unsigned opc;
5739 register unsigned n_op_args;
5740 register unsigned long ft_index;
5741 register unsigned long lt_index;
5742 register unsigned long current_line;
5743 register long line_offset;
5744 register long line_delta;
5745 register unsigned long current_file;
5746 register unsigned long function;
5748 ASM_OUTPUT_DWARF_DATA (asm_out_file, size_of_line_info ());
5749 if (flag_debug_asm)
5750 fprintf (asm_out_file, "\t%s Length of Source Line Info.",
5751 ASM_COMMENT_START);
5753 fputc ('\n', asm_out_file);
5754 ASM_OUTPUT_DWARF_DATA2 (asm_out_file, DWARF_VERSION);
5755 if (flag_debug_asm)
5756 fprintf (asm_out_file, "\t%s DWARF Version", ASM_COMMENT_START);
5758 fputc ('\n', asm_out_file);
5759 ASM_OUTPUT_DWARF_DATA (asm_out_file, size_of_line_prolog ());
5760 if (flag_debug_asm)
5761 fprintf (asm_out_file, "\t%s Prolog Length", ASM_COMMENT_START);
5763 fputc ('\n', asm_out_file);
5764 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DWARF_LINE_MIN_INSTR_LENGTH);
5765 if (flag_debug_asm)
5766 fprintf (asm_out_file, "\t%s Minimum Instruction Length",
5767 ASM_COMMENT_START);
5769 fputc ('\n', asm_out_file);
5770 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DWARF_LINE_DEFAULT_IS_STMT_START);
5771 if (flag_debug_asm)
5772 fprintf (asm_out_file, "\t%s Default is_stmt_start flag",
5773 ASM_COMMENT_START);
5775 fputc ('\n', asm_out_file);
5776 fprintf (asm_out_file, "\t%s\t%d", ASM_BYTE_OP, DWARF_LINE_BASE);
5777 if (flag_debug_asm)
5778 fprintf (asm_out_file, "\t%s Line Base Value (Special Opcodes)",
5779 ASM_COMMENT_START);
5781 fputc ('\n', asm_out_file);
5782 fprintf (asm_out_file, "\t%s\t%u", ASM_BYTE_OP, DWARF_LINE_RANGE);
5783 if (flag_debug_asm)
5784 fprintf (asm_out_file, "\t%s Line Range Value (Special Opcodes)",
5785 ASM_COMMENT_START);
5787 fputc ('\n', asm_out_file);
5788 fprintf (asm_out_file, "\t%s\t%u", ASM_BYTE_OP, DWARF_LINE_OPCODE_BASE);
5789 if (flag_debug_asm)
5790 fprintf (asm_out_file, "\t%s Special Opcode Base", ASM_COMMENT_START);
5792 fputc ('\n', asm_out_file);
5793 for (opc = 1; opc < DWARF_LINE_OPCODE_BASE; ++opc)
5795 switch (opc)
5797 case DW_LNS_advance_pc:
5798 case DW_LNS_advance_line:
5799 case DW_LNS_set_file:
5800 case DW_LNS_set_column:
5801 case DW_LNS_fixed_advance_pc:
5802 n_op_args = 1;
5803 break;
5804 default:
5805 n_op_args = 0;
5806 break;
5808 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, n_op_args);
5809 if (flag_debug_asm)
5810 fprintf (asm_out_file, "\t%s opcode: 0x%x has %d args",
5811 ASM_COMMENT_START, opc, n_op_args);
5812 fputc ('\n', asm_out_file);
5815 if (flag_debug_asm)
5816 fprintf (asm_out_file, "%s Include Directory Table\n", ASM_COMMENT_START);
5818 /* Include directory table is empty, at present */
5819 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, 0);
5820 fputc ('\n', asm_out_file);
5821 if (flag_debug_asm)
5822 fprintf (asm_out_file, "%s File Name Table\n", ASM_COMMENT_START);
5824 for (ft_index = 1; ft_index < file_table_in_use; ++ft_index)
5826 if (flag_debug_asm)
5828 ASM_OUTPUT_DWARF_STRING (asm_out_file, file_table[ft_index]);
5829 fprintf (asm_out_file, "%s File Entry: 0x%lx",
5830 ASM_COMMENT_START, ft_index);
5832 else
5834 ASM_OUTPUT_ASCII (asm_out_file,
5835 file_table[ft_index],
5836 (int) strlen (file_table[ft_index]) + 1);
5839 fputc ('\n', asm_out_file);
5841 /* Include directory index */
5842 output_uleb128 (0);
5843 fputc ('\n', asm_out_file);
5845 /* Modification time */
5846 output_uleb128 (0);
5847 fputc ('\n', asm_out_file);
5849 /* File length in bytes */
5850 output_uleb128 (0);
5851 fputc ('\n', asm_out_file);
5854 /* Terminate the file name table */
5855 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, 0);
5856 fputc ('\n', asm_out_file);
5858 /* We used to set the address register to the first location in the text
5859 section here, but that didn't accomplish anything since we already
5860 have a line note for the opening brace of the first function. */
5862 /* Generate the line number to PC correspondence table, encoded as
5863 a series of state machine operations. */
5864 current_file = 1;
5865 current_line = 1;
5866 strcpy (prev_line_label, text_section_label);
5867 for (lt_index = 1; lt_index < line_info_table_in_use; ++lt_index)
5869 register dw_line_info_ref line_info = &line_info_table[lt_index];
5871 /* Don't emit anything for redundant notes. Just updating the
5872 address doesn't accomplish anything, because we already assume
5873 that anything after the last address is this line. */
5874 if (line_info->dw_line_num == current_line
5875 && line_info->dw_file_num == current_file)
5876 continue;
5878 /* Emit debug info for the address of the current line, choosing
5879 the encoding that uses the least amount of space. */
5880 /* ??? Unfortunately, we have little choice here currently, and must
5881 always use the most general form. Gcc does not know the address
5882 delta itself, so we can't use DW_LNS_advance_pc. There are no known
5883 dwarf2 aware assemblers at this time, so we can't use any special
5884 pseudo ops that would allow the assembler to optimally encode this for
5885 us. Many ports do have length attributes which will give an upper
5886 bound on the address range. We could perhaps use length attributes
5887 to determine when it is safe to use DW_LNS_fixed_advance_pc. */
5888 ASM_GENERATE_INTERNAL_LABEL (line_label, LINE_CODE_LABEL, lt_index);
5889 if (0)
5891 /* This can handle deltas up to 0xffff. This takes 3 bytes. */
5892 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DW_LNS_fixed_advance_pc);
5893 if (flag_debug_asm)
5894 fprintf (asm_out_file, "\t%s DW_LNS_fixed_advance_pc",
5895 ASM_COMMENT_START);
5897 fputc ('\n', asm_out_file);
5898 ASM_OUTPUT_DWARF_DELTA2 (asm_out_file, line_label, prev_line_label);
5899 fputc ('\n', asm_out_file);
5901 else
5903 /* This can handle any delta. This takes 4+PTR_SIZE bytes. */
5904 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, 0);
5905 if (flag_debug_asm)
5906 fprintf (asm_out_file, "\t%s DW_LNE_set_address",
5907 ASM_COMMENT_START);
5908 fputc ('\n', asm_out_file);
5909 output_uleb128 (1 + PTR_SIZE);
5910 fputc ('\n', asm_out_file);
5911 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DW_LNE_set_address);
5912 fputc ('\n', asm_out_file);
5913 ASM_OUTPUT_DWARF_ADDR (asm_out_file, line_label);
5914 fputc ('\n', asm_out_file);
5916 strcpy (prev_line_label, line_label);
5918 /* Emit debug info for the source file of the current line, if
5919 different from the previous line. */
5920 if (line_info->dw_file_num != current_file)
5922 current_file = line_info->dw_file_num;
5923 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DW_LNS_set_file);
5924 if (flag_debug_asm)
5925 fprintf (asm_out_file, "\t%s DW_LNS_set_file", ASM_COMMENT_START);
5927 fputc ('\n', asm_out_file);
5928 output_uleb128 (current_file);
5929 if (flag_debug_asm)
5930 fprintf (asm_out_file, " (\"%s\")", file_table[current_file]);
5932 fputc ('\n', asm_out_file);
5935 /* Emit debug info for the current line number, choosing the encoding
5936 that uses the least amount of space. */
5937 if (line_info->dw_line_num != current_line)
5939 line_offset = line_info->dw_line_num - current_line;
5940 line_delta = line_offset - DWARF_LINE_BASE;
5941 current_line = line_info->dw_line_num;
5942 if (line_delta >= 0 && line_delta < (DWARF_LINE_RANGE - 1))
5944 /* This can handle deltas from -10 to 234, using the current
5945 definitions of DWARF_LINE_BASE and DWARF_LINE_RANGE. This
5946 takes 1 byte. */
5947 ASM_OUTPUT_DWARF_DATA1 (asm_out_file,
5948 DWARF_LINE_OPCODE_BASE + line_delta);
5949 if (flag_debug_asm)
5950 fprintf (asm_out_file,
5951 "\t%s line %ld", ASM_COMMENT_START, current_line);
5953 fputc ('\n', asm_out_file);
5955 else
5957 /* This can handle any delta. This takes at least 4 bytes,
5958 depending on the value being encoded. */
5959 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DW_LNS_advance_line);
5960 if (flag_debug_asm)
5961 fprintf (asm_out_file, "\t%s advance to line %ld",
5962 ASM_COMMENT_START, current_line);
5964 fputc ('\n', asm_out_file);
5965 output_sleb128 (line_offset);
5966 fputc ('\n', asm_out_file);
5967 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DW_LNS_copy);
5968 if (flag_debug_asm)
5969 fprintf (asm_out_file, "\t%s DW_LNS_copy", ASM_COMMENT_START);
5970 fputc ('\n', asm_out_file);
5973 else
5975 /* We still need to start a new row, so output a copy insn. */
5976 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DW_LNS_copy);
5977 if (flag_debug_asm)
5978 fprintf (asm_out_file, "\t%s DW_LNS_copy", ASM_COMMENT_START);
5979 fputc ('\n', asm_out_file);
5983 /* Emit debug info for the address of the end of the function. */
5984 if (0)
5986 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DW_LNS_fixed_advance_pc);
5987 if (flag_debug_asm)
5988 fprintf (asm_out_file, "\t%s DW_LNS_fixed_advance_pc",
5989 ASM_COMMENT_START);
5991 fputc ('\n', asm_out_file);
5992 ASM_OUTPUT_DWARF_DELTA2 (asm_out_file, text_end_label, prev_line_label);
5993 fputc ('\n', asm_out_file);
5995 else
5997 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, 0);
5998 if (flag_debug_asm)
5999 fprintf (asm_out_file, "\t%s DW_LNE_set_address", ASM_COMMENT_START);
6000 fputc ('\n', asm_out_file);
6001 output_uleb128 (1 + PTR_SIZE);
6002 fputc ('\n', asm_out_file);
6003 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DW_LNE_set_address);
6004 fputc ('\n', asm_out_file);
6005 ASM_OUTPUT_DWARF_ADDR (asm_out_file, text_end_label);
6006 fputc ('\n', asm_out_file);
6009 /* Output the marker for the end of the line number info. */
6010 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, 0);
6011 if (flag_debug_asm)
6012 fprintf (asm_out_file, "\t%s DW_LNE_end_sequence", ASM_COMMENT_START);
6014 fputc ('\n', asm_out_file);
6015 output_uleb128 (1);
6016 fputc ('\n', asm_out_file);
6017 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DW_LNE_end_sequence);
6018 fputc ('\n', asm_out_file);
6020 function = 0;
6021 current_file = 1;
6022 current_line = 1;
6023 for (lt_index = 0; lt_index < separate_line_info_table_in_use; )
6025 register dw_separate_line_info_ref line_info
6026 = &separate_line_info_table[lt_index];
6028 /* Don't emit anything for redundant notes. */
6029 if (line_info->dw_line_num == current_line
6030 && line_info->dw_file_num == current_file
6031 && line_info->function == function)
6032 goto cont;
6034 /* Emit debug info for the address of the current line. If this is
6035 a new function, or the first line of a function, then we need
6036 to handle it differently. */
6037 ASM_GENERATE_INTERNAL_LABEL (line_label, SEPARATE_LINE_CODE_LABEL,
6038 lt_index);
6039 if (function != line_info->function)
6041 function = line_info->function;
6043 /* Set the address register to the first line in the function */
6044 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, 0);
6045 if (flag_debug_asm)
6046 fprintf (asm_out_file, "\t%s DW_LNE_set_address",
6047 ASM_COMMENT_START);
6049 fputc ('\n', asm_out_file);
6050 output_uleb128 (1 + PTR_SIZE);
6051 fputc ('\n', asm_out_file);
6052 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DW_LNE_set_address);
6053 fputc ('\n', asm_out_file);
6054 ASM_OUTPUT_DWARF_ADDR (asm_out_file, line_label);
6055 fputc ('\n', asm_out_file);
6057 else
6059 /* ??? See the DW_LNS_advance_pc comment above. */
6060 if (0)
6062 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DW_LNS_fixed_advance_pc);
6063 if (flag_debug_asm)
6064 fprintf (asm_out_file, "\t%s DW_LNS_fixed_advance_pc",
6065 ASM_COMMENT_START);
6067 fputc ('\n', asm_out_file);
6068 ASM_OUTPUT_DWARF_DELTA2 (asm_out_file, line_label,
6069 prev_line_label);
6070 fputc ('\n', asm_out_file);
6072 else
6074 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, 0);
6075 if (flag_debug_asm)
6076 fprintf (asm_out_file, "\t%s DW_LNE_set_address",
6077 ASM_COMMENT_START);
6078 fputc ('\n', asm_out_file);
6079 output_uleb128 (1 + PTR_SIZE);
6080 fputc ('\n', asm_out_file);
6081 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DW_LNE_set_address);
6082 fputc ('\n', asm_out_file);
6083 ASM_OUTPUT_DWARF_ADDR (asm_out_file, line_label);
6084 fputc ('\n', asm_out_file);
6087 strcpy (prev_line_label, line_label);
6089 /* Emit debug info for the source file of the current line, if
6090 different from the previous line. */
6091 if (line_info->dw_file_num != current_file)
6093 current_file = line_info->dw_file_num;
6094 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DW_LNS_set_file);
6095 if (flag_debug_asm)
6096 fprintf (asm_out_file, "\t%s DW_LNS_set_file", ASM_COMMENT_START);
6098 fputc ('\n', asm_out_file);
6099 output_uleb128 (current_file);
6100 if (flag_debug_asm)
6101 fprintf (asm_out_file, " (\"%s\")", file_table[current_file]);
6103 fputc ('\n', asm_out_file);
6106 /* Emit debug info for the current line number, choosing the encoding
6107 that uses the least amount of space. */
6108 if (line_info->dw_line_num != current_line)
6110 line_offset = line_info->dw_line_num - current_line;
6111 line_delta = line_offset - DWARF_LINE_BASE;
6112 current_line = line_info->dw_line_num;
6113 if (line_delta >= 0 && line_delta < (DWARF_LINE_RANGE - 1))
6115 ASM_OUTPUT_DWARF_DATA1 (asm_out_file,
6116 DWARF_LINE_OPCODE_BASE + line_delta);
6117 if (flag_debug_asm)
6118 fprintf (asm_out_file,
6119 "\t%s line %ld", ASM_COMMENT_START, current_line);
6121 fputc ('\n', asm_out_file);
6123 else
6125 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DW_LNS_advance_line);
6126 if (flag_debug_asm)
6127 fprintf (asm_out_file, "\t%s advance to line %ld",
6128 ASM_COMMENT_START, current_line);
6130 fputc ('\n', asm_out_file);
6131 output_sleb128 (line_offset);
6132 fputc ('\n', asm_out_file);
6133 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DW_LNS_copy);
6134 if (flag_debug_asm)
6135 fprintf (asm_out_file, "\t%s DW_LNS_copy", ASM_COMMENT_START);
6136 fputc ('\n', asm_out_file);
6139 else
6141 /* We still need to start a new row, so output a copy insn. */
6142 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DW_LNS_copy);
6143 if (flag_debug_asm)
6144 fprintf (asm_out_file, "\t%s DW_LNS_copy", ASM_COMMENT_START);
6145 fputc ('\n', asm_out_file);
6148 cont:
6149 ++lt_index;
6151 /* If we're done with a function, end its sequence. */
6152 if (lt_index == separate_line_info_table_in_use
6153 || separate_line_info_table[lt_index].function != function)
6155 current_file = 1;
6156 current_line = 1;
6158 /* Emit debug info for the address of the end of the function. */
6159 ASM_GENERATE_INTERNAL_LABEL (line_label, FUNC_END_LABEL, function);
6160 if (0)
6162 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DW_LNS_fixed_advance_pc);
6163 if (flag_debug_asm)
6164 fprintf (asm_out_file, "\t%s DW_LNS_fixed_advance_pc",
6165 ASM_COMMENT_START);
6167 fputc ('\n', asm_out_file);
6168 ASM_OUTPUT_DWARF_DELTA2 (asm_out_file, line_label,
6169 prev_line_label);
6170 fputc ('\n', asm_out_file);
6172 else
6174 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, 0);
6175 if (flag_debug_asm)
6176 fprintf (asm_out_file, "\t%s DW_LNE_set_address",
6177 ASM_COMMENT_START);
6178 fputc ('\n', asm_out_file);
6179 output_uleb128 (1 + PTR_SIZE);
6180 fputc ('\n', asm_out_file);
6181 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DW_LNE_set_address);
6182 fputc ('\n', asm_out_file);
6183 ASM_OUTPUT_DWARF_ADDR (asm_out_file, line_label);
6184 fputc ('\n', asm_out_file);
6187 /* Output the marker for the end of this sequence. */
6188 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, 0);
6189 if (flag_debug_asm)
6190 fprintf (asm_out_file, "\t%s DW_LNE_end_sequence",
6191 ASM_COMMENT_START);
6193 fputc ('\n', asm_out_file);
6194 output_uleb128 (1);
6195 fputc ('\n', asm_out_file);
6196 ASM_OUTPUT_DWARF_DATA1 (asm_out_file, DW_LNE_end_sequence);
6197 fputc ('\n', asm_out_file);
6202 /* Given a pointer to a BLOCK node return non-zero if (and only if) the node
6203 in question represents the outermost pair of curly braces (i.e. the "body
6204 block") of a function or method.
6206 For any BLOCK node representing a "body block" of a function or method, the
6207 BLOCK_SUPERCONTEXT of the node will point to another BLOCK node which
6208 represents the outermost (function) scope for the function or method (i.e.
6209 the one which includes the formal parameters). The BLOCK_SUPERCONTEXT of
6210 *that* node in turn will point to the relevant FUNCTION_DECL node. */
6212 static inline int
6213 is_body_block (stmt)
6214 register tree stmt;
6216 if (TREE_CODE (stmt) == BLOCK)
6218 register tree parent = BLOCK_SUPERCONTEXT (stmt);
6220 if (TREE_CODE (parent) == BLOCK)
6222 register tree grandparent = BLOCK_SUPERCONTEXT (parent);
6224 if (TREE_CODE (grandparent) == FUNCTION_DECL)
6225 return 1;
6229 return 0;
6232 /* Given a pointer to a tree node for some base type, return a pointer to
6233 a DIE that describes the given type.
6235 This routine must only be called for GCC type nodes that correspond to
6236 Dwarf base (fundamental) types. */
6238 static dw_die_ref
6239 base_type_die (type)
6240 register tree type;
6242 register dw_die_ref base_type_result;
6243 register char *type_name;
6244 register enum dwarf_type encoding;
6245 register tree name = TYPE_NAME (type);
6247 if (TREE_CODE (type) == ERROR_MARK
6248 || TREE_CODE (type) == VOID_TYPE)
6249 return 0;
6251 if (TREE_CODE (name) == TYPE_DECL)
6252 name = DECL_NAME (name);
6253 type_name = IDENTIFIER_POINTER (name);
6255 switch (TREE_CODE (type))
6257 case INTEGER_TYPE:
6258 /* Carefully distinguish the C character types, without messing
6259 up if the language is not C. Note that we check only for the names
6260 that contain spaces; other names might occur by coincidence in other
6261 languages. */
6262 if (! (TYPE_PRECISION (type) == CHAR_TYPE_SIZE
6263 && (type == char_type_node
6264 || ! strcmp (type_name, "signed char")
6265 || ! strcmp (type_name, "unsigned char"))))
6267 if (TREE_UNSIGNED (type))
6268 encoding = DW_ATE_unsigned;
6269 else
6270 encoding = DW_ATE_signed;
6271 break;
6273 /* else fall through */
6275 case CHAR_TYPE:
6276 /* GNU Pascal/Ada CHAR type. Not used in C. */
6277 if (TREE_UNSIGNED (type))
6278 encoding = DW_ATE_unsigned_char;
6279 else
6280 encoding = DW_ATE_signed_char;
6281 break;
6283 case REAL_TYPE:
6284 encoding = DW_ATE_float;
6285 break;
6287 case COMPLEX_TYPE:
6288 encoding = DW_ATE_complex_float;
6289 break;
6291 case BOOLEAN_TYPE:
6292 /* GNU FORTRAN/Ada/C++ BOOLEAN type. */
6293 encoding = DW_ATE_boolean;
6294 break;
6296 default:
6297 abort (); /* No other TREE_CODEs are Dwarf fundamental types. */
6300 base_type_result = new_die (DW_TAG_base_type, comp_unit_die);
6301 add_AT_string (base_type_result, DW_AT_name, type_name);
6302 add_AT_unsigned (base_type_result, DW_AT_byte_size,
6303 int_size_in_bytes (type));
6304 add_AT_unsigned (base_type_result, DW_AT_encoding, encoding);
6306 return base_type_result;
6309 /* Given a pointer to an arbitrary ..._TYPE tree node, return a pointer to
6310 the Dwarf "root" type for the given input type. The Dwarf "root" type of
6311 a given type is generally the same as the given type, except that if the
6312 given type is a pointer or reference type, then the root type of the given
6313 type is the root type of the "basis" type for the pointer or reference
6314 type. (This definition of the "root" type is recursive.) Also, the root
6315 type of a `const' qualified type or a `volatile' qualified type is the
6316 root type of the given type without the qualifiers. */
6318 static tree
6319 root_type (type)
6320 register tree type;
6322 if (TREE_CODE (type) == ERROR_MARK)
6323 return error_mark_node;
6325 switch (TREE_CODE (type))
6327 case ERROR_MARK:
6328 return error_mark_node;
6330 case POINTER_TYPE:
6331 case REFERENCE_TYPE:
6332 return type_main_variant (root_type (TREE_TYPE (type)));
6334 default:
6335 return type_main_variant (type);
6339 /* Given a pointer to an arbitrary ..._TYPE tree node, return non-zero if the
6340 given input type is a Dwarf "fundamental" type. Otherwise return null. */
6342 static inline int
6343 is_base_type (type)
6344 register tree type;
6346 switch (TREE_CODE (type))
6348 case ERROR_MARK:
6349 case VOID_TYPE:
6350 case INTEGER_TYPE:
6351 case REAL_TYPE:
6352 case COMPLEX_TYPE:
6353 case BOOLEAN_TYPE:
6354 case CHAR_TYPE:
6355 return 1;
6357 case SET_TYPE:
6358 case ARRAY_TYPE:
6359 case RECORD_TYPE:
6360 case UNION_TYPE:
6361 case QUAL_UNION_TYPE:
6362 case ENUMERAL_TYPE:
6363 case FUNCTION_TYPE:
6364 case METHOD_TYPE:
6365 case POINTER_TYPE:
6366 case REFERENCE_TYPE:
6367 case FILE_TYPE:
6368 case OFFSET_TYPE:
6369 case LANG_TYPE:
6370 return 0;
6372 default:
6373 abort ();
6376 return 0;
6379 /* Given a pointer to an arbitrary ..._TYPE tree node, return a debugging
6380 entry that chains various modifiers in front of the given type. */
6382 static dw_die_ref
6383 modified_type_die (type, is_const_type, is_volatile_type, context_die)
6384 register tree type;
6385 register int is_const_type;
6386 register int is_volatile_type;
6387 register dw_die_ref context_die;
6389 register enum tree_code code = TREE_CODE (type);
6390 register dw_die_ref mod_type_die = NULL;
6391 register dw_die_ref sub_die = NULL;
6392 register tree item_type = NULL;
6394 if (code != ERROR_MARK)
6396 type = build_type_variant (type, is_const_type, is_volatile_type);
6398 mod_type_die = lookup_type_die (type);
6399 if (mod_type_die)
6400 return mod_type_die;
6402 /* Handle C typedef types. */
6403 if (TYPE_NAME (type) && TREE_CODE (TYPE_NAME (type)) == TYPE_DECL
6404 && DECL_ORIGINAL_TYPE (TYPE_NAME (type)))
6406 tree dtype = TREE_TYPE (TYPE_NAME (type));
6407 if (type == dtype)
6409 /* For a named type, use the typedef. */
6410 gen_type_die (type, context_die);
6411 mod_type_die = lookup_type_die (type);
6414 else if (is_const_type < TYPE_READONLY (dtype)
6415 || is_volatile_type < TYPE_VOLATILE (dtype))
6416 /* cv-unqualified version of named type. Just use the unnamed
6417 type to which it refers. */
6418 mod_type_die
6419 = modified_type_die (DECL_ORIGINAL_TYPE (TYPE_NAME (type)),
6420 is_const_type, is_volatile_type,
6421 context_die);
6422 /* Else cv-qualified version of named type; fall through. */
6425 if (mod_type_die)
6426 /* OK */;
6427 else if (is_const_type)
6429 mod_type_die = new_die (DW_TAG_const_type, comp_unit_die);
6430 sub_die = modified_type_die (type, 0, is_volatile_type, context_die);
6432 else if (is_volatile_type)
6434 mod_type_die = new_die (DW_TAG_volatile_type, comp_unit_die);
6435 sub_die = modified_type_die (type, 0, 0, context_die);
6437 else if (code == POINTER_TYPE)
6439 mod_type_die = new_die (DW_TAG_pointer_type, comp_unit_die);
6440 add_AT_unsigned (mod_type_die, DW_AT_byte_size, PTR_SIZE);
6441 #if 0
6442 add_AT_unsigned (mod_type_die, DW_AT_address_class, 0);
6443 #endif
6444 item_type = TREE_TYPE (type);
6446 else if (code == REFERENCE_TYPE)
6448 mod_type_die = new_die (DW_TAG_reference_type, comp_unit_die);
6449 add_AT_unsigned (mod_type_die, DW_AT_byte_size, PTR_SIZE);
6450 #if 0
6451 add_AT_unsigned (mod_type_die, DW_AT_address_class, 0);
6452 #endif
6453 item_type = TREE_TYPE (type);
6455 else if (is_base_type (type))
6456 mod_type_die = base_type_die (type);
6457 else
6459 gen_type_die (type, context_die);
6461 /* We have to get the type_main_variant here (and pass that to the
6462 `lookup_type_die' routine) because the ..._TYPE node we have
6463 might simply be a *copy* of some original type node (where the
6464 copy was created to help us keep track of typedef names) and
6465 that copy might have a different TYPE_UID from the original
6466 ..._TYPE node. */
6467 mod_type_die = lookup_type_die (type_main_variant (type));
6468 if (mod_type_die == NULL)
6469 abort ();
6473 equate_type_number_to_die (type, mod_type_die);
6474 if (item_type)
6475 /* We must do this after the equate_type_number_to_die call, in case
6476 this is a recursive type. This ensures that the modified_type_die
6477 recursion will terminate even if the type is recursive. Recursive
6478 types are possible in Ada. */
6479 sub_die = modified_type_die (item_type,
6480 TYPE_READONLY (item_type),
6481 TYPE_VOLATILE (item_type),
6482 context_die);
6484 if (sub_die != NULL)
6485 add_AT_die_ref (mod_type_die, DW_AT_type, sub_die);
6487 return mod_type_die;
6490 /* Given a pointer to an arbitrary ..._TYPE tree node, return true if it is
6491 an enumerated type. */
6493 static inline int
6494 type_is_enum (type)
6495 register tree type;
6497 return TREE_CODE (type) == ENUMERAL_TYPE;
6500 /* Return a location descriptor that designates a machine register. */
6502 static dw_loc_descr_ref
6503 reg_loc_descriptor (rtl)
6504 register rtx rtl;
6506 register dw_loc_descr_ref loc_result = NULL;
6507 register unsigned reg = reg_number (rtl);
6509 if (reg <= 31)
6510 loc_result = new_loc_descr (DW_OP_reg0 + reg, 0, 0);
6511 else
6512 loc_result = new_loc_descr (DW_OP_regx, reg, 0);
6514 return loc_result;
6517 /* Return a location descriptor that designates a base+offset location. */
6519 static dw_loc_descr_ref
6520 based_loc_descr (reg, offset)
6521 unsigned reg;
6522 long int offset;
6524 register dw_loc_descr_ref loc_result;
6525 /* For the "frame base", we use the frame pointer or stack pointer
6526 registers, since the RTL for local variables is relative to one of
6527 them. */
6528 register unsigned fp_reg = DBX_REGISTER_NUMBER (frame_pointer_needed
6529 ? HARD_FRAME_POINTER_REGNUM
6530 : STACK_POINTER_REGNUM);
6532 if (reg == fp_reg)
6533 loc_result = new_loc_descr (DW_OP_fbreg, offset, 0);
6534 else if (reg <= 31)
6535 loc_result = new_loc_descr (DW_OP_breg0 + reg, offset, 0);
6536 else
6537 loc_result = new_loc_descr (DW_OP_bregx, reg, offset);
6539 return loc_result;
6542 /* Return true if this RTL expression describes a base+offset calculation. */
6544 static inline int
6545 is_based_loc (rtl)
6546 register rtx rtl;
6548 return (GET_CODE (rtl) == PLUS
6549 && ((GET_CODE (XEXP (rtl, 0)) == REG
6550 && GET_CODE (XEXP (rtl, 1)) == CONST_INT)));
6553 /* The following routine converts the RTL for a variable or parameter
6554 (resident in memory) into an equivalent Dwarf representation of a
6555 mechanism for getting the address of that same variable onto the top of a
6556 hypothetical "address evaluation" stack.
6558 When creating memory location descriptors, we are effectively transforming
6559 the RTL for a memory-resident object into its Dwarf postfix expression
6560 equivalent. This routine recursively descends an RTL tree, turning
6561 it into Dwarf postfix code as it goes.
6563 MODE is the mode of the memory reference, needed to handle some
6564 autoincrement addressing modes. */
6566 static dw_loc_descr_ref
6567 mem_loc_descriptor (rtl, mode)
6568 register rtx rtl;
6569 enum machine_mode mode;
6571 dw_loc_descr_ref mem_loc_result = NULL;
6572 /* Note that for a dynamically sized array, the location we will generate a
6573 description of here will be the lowest numbered location which is
6574 actually within the array. That's *not* necessarily the same as the
6575 zeroth element of the array. */
6577 switch (GET_CODE (rtl))
6579 case POST_INC:
6580 case POST_DEC:
6581 /* POST_INC and POST_DEC can be handled just like a SUBREG. So we
6582 just fall into the SUBREG code. */
6584 /* ... fall through ... */
6586 case SUBREG:
6587 /* The case of a subreg may arise when we have a local (register)
6588 variable or a formal (register) parameter which doesn't quite fill
6589 up an entire register. For now, just assume that it is
6590 legitimate to make the Dwarf info refer to the whole register which
6591 contains the given subreg. */
6592 rtl = XEXP (rtl, 0);
6594 /* ... fall through ... */
6596 case REG:
6597 /* Whenever a register number forms a part of the description of the
6598 method for calculating the (dynamic) address of a memory resident
6599 object, DWARF rules require the register number be referred to as
6600 a "base register". This distinction is not based in any way upon
6601 what category of register the hardware believes the given register
6602 belongs to. This is strictly DWARF terminology we're dealing with
6603 here. Note that in cases where the location of a memory-resident
6604 data object could be expressed as: OP_ADD (OP_BASEREG (basereg),
6605 OP_CONST (0)) the actual DWARF location descriptor that we generate
6606 may just be OP_BASEREG (basereg). This may look deceptively like
6607 the object in question was allocated to a register (rather than in
6608 memory) so DWARF consumers need to be aware of the subtle
6609 distinction between OP_REG and OP_BASEREG. */
6610 mem_loc_result = based_loc_descr (reg_number (rtl), 0);
6611 break;
6613 case MEM:
6614 mem_loc_result = mem_loc_descriptor (XEXP (rtl, 0), mode);
6615 add_loc_descr (&mem_loc_result, new_loc_descr (DW_OP_deref, 0, 0));
6616 break;
6618 case LABEL_REF:
6619 /* Some ports can transform a symbol ref into a label ref, because
6620 the symbol ref is too far away and has to be dumped into a constant
6621 pool. */
6622 case CONST:
6623 case SYMBOL_REF:
6624 mem_loc_result = new_loc_descr (DW_OP_addr, 0, 0);
6625 mem_loc_result->dw_loc_oprnd1.val_class = dw_val_class_addr;
6626 mem_loc_result->dw_loc_oprnd1.v.val_addr = addr_to_string (rtl);
6627 break;
6629 case PRE_INC:
6630 case PRE_DEC:
6631 /* Turn these into a PLUS expression and fall into the PLUS code
6632 below. */
6633 rtl = gen_rtx_PLUS (word_mode, XEXP (rtl, 0),
6634 GEN_INT (GET_CODE (rtl) == PRE_INC
6635 ? GET_MODE_UNIT_SIZE (mode)
6636 : - GET_MODE_UNIT_SIZE (mode)));
6638 /* ... fall through ... */
6640 case PLUS:
6641 if (is_based_loc (rtl))
6642 mem_loc_result = based_loc_descr (reg_number (XEXP (rtl, 0)),
6643 INTVAL (XEXP (rtl, 1)));
6644 else
6646 add_loc_descr (&mem_loc_result, mem_loc_descriptor (XEXP (rtl, 0),
6647 mode));
6648 add_loc_descr (&mem_loc_result, mem_loc_descriptor (XEXP (rtl, 1),
6649 mode));
6650 add_loc_descr (&mem_loc_result, new_loc_descr (DW_OP_plus, 0, 0));
6652 break;
6654 case MULT:
6655 /* If a pseudo-reg is optimized away, it is possible for it to
6656 be replaced with a MEM containing a multiply. */
6657 add_loc_descr (&mem_loc_result, mem_loc_descriptor (XEXP (rtl, 0), mode));
6658 add_loc_descr (&mem_loc_result, mem_loc_descriptor (XEXP (rtl, 1), mode));
6659 add_loc_descr (&mem_loc_result, new_loc_descr (DW_OP_mul, 0, 0));
6660 break;
6662 case CONST_INT:
6663 mem_loc_result = new_loc_descr (DW_OP_constu, INTVAL (rtl), 0);
6664 break;
6666 default:
6667 abort ();
6670 return mem_loc_result;
6673 /* Return a descriptor that describes the concatenation of two locations.
6674 This is typically a complex variable. */
6676 static dw_loc_descr_ref
6677 concat_loc_descriptor (x0, x1)
6678 register rtx x0, x1;
6680 dw_loc_descr_ref cc_loc_result = NULL;
6682 if (!is_pseudo_reg (x0)
6683 && (GET_CODE (x0) != MEM || !is_pseudo_reg (XEXP (x0, 0))))
6684 add_loc_descr (&cc_loc_result, loc_descriptor (x0));
6685 add_loc_descr (&cc_loc_result,
6686 new_loc_descr (DW_OP_piece, GET_MODE_SIZE (GET_MODE (x0)), 0));
6688 if (!is_pseudo_reg (x1)
6689 && (GET_CODE (x1) != MEM || !is_pseudo_reg (XEXP (x1, 0))))
6690 add_loc_descr (&cc_loc_result, loc_descriptor (x1));
6691 add_loc_descr (&cc_loc_result,
6692 new_loc_descr (DW_OP_piece, GET_MODE_SIZE (GET_MODE (x1)), 0));
6694 return cc_loc_result;
6697 /* Output a proper Dwarf location descriptor for a variable or parameter
6698 which is either allocated in a register or in a memory location. For a
6699 register, we just generate an OP_REG and the register number. For a
6700 memory location we provide a Dwarf postfix expression describing how to
6701 generate the (dynamic) address of the object onto the address stack. */
6703 static dw_loc_descr_ref
6704 loc_descriptor (rtl)
6705 register rtx rtl;
6707 dw_loc_descr_ref loc_result = NULL;
6708 switch (GET_CODE (rtl))
6710 case SUBREG:
6711 /* The case of a subreg may arise when we have a local (register)
6712 variable or a formal (register) parameter which doesn't quite fill
6713 up an entire register. For now, just assume that it is
6714 legitimate to make the Dwarf info refer to the whole register which
6715 contains the given subreg. */
6716 rtl = XEXP (rtl, 0);
6718 /* ... fall through ... */
6720 case REG:
6721 loc_result = reg_loc_descriptor (rtl);
6722 break;
6724 case MEM:
6725 loc_result = mem_loc_descriptor (XEXP (rtl, 0), GET_MODE (rtl));
6726 break;
6728 case CONCAT:
6729 loc_result = concat_loc_descriptor (XEXP (rtl, 0), XEXP (rtl, 1));
6730 break;
6732 default:
6733 abort ();
6736 return loc_result;
6739 /* Given an unsigned value, round it up to the lowest multiple of `boundary'
6740 which is not less than the value itself. */
6742 static inline unsigned
6743 ceiling (value, boundary)
6744 register unsigned value;
6745 register unsigned boundary;
6747 return (((value + boundary - 1) / boundary) * boundary);
6750 /* Given a pointer to what is assumed to be a FIELD_DECL node, return a
6751 pointer to the declared type for the relevant field variable, or return
6752 `integer_type_node' if the given node turns out to be an
6753 ERROR_MARK node. */
6755 static inline tree
6756 field_type (decl)
6757 register tree decl;
6759 register tree type;
6761 if (TREE_CODE (decl) == ERROR_MARK)
6762 return integer_type_node;
6764 type = DECL_BIT_FIELD_TYPE (decl);
6765 if (type == NULL_TREE)
6766 type = TREE_TYPE (decl);
6768 return type;
6771 /* Given a pointer to a tree node, assumed to be some kind of a ..._TYPE
6772 node, return the alignment in bits for the type, or else return
6773 BITS_PER_WORD if the node actually turns out to be an
6774 ERROR_MARK node. */
6776 static inline unsigned
6777 simple_type_align_in_bits (type)
6778 register tree type;
6780 return (TREE_CODE (type) != ERROR_MARK) ? TYPE_ALIGN (type) : BITS_PER_WORD;
6783 /* Given a pointer to a tree node, assumed to be some kind of a ..._TYPE
6784 node, return the size in bits for the type if it is a constant, or else
6785 return the alignment for the type if the type's size is not constant, or
6786 else return BITS_PER_WORD if the type actually turns out to be an
6787 ERROR_MARK node. */
6789 static inline unsigned
6790 simple_type_size_in_bits (type)
6791 register tree type;
6793 if (TREE_CODE (type) == ERROR_MARK)
6794 return BITS_PER_WORD;
6795 else
6797 register tree type_size_tree = TYPE_SIZE (type);
6799 if (TREE_CODE (type_size_tree) != INTEGER_CST)
6800 return TYPE_ALIGN (type);
6802 return (unsigned) TREE_INT_CST_LOW (type_size_tree);
6806 /* Given a pointer to what is assumed to be a FIELD_DECL node, compute and
6807 return the byte offset of the lowest addressed byte of the "containing
6808 object" for the given FIELD_DECL, or return 0 if we are unable to
6809 determine what that offset is, either because the argument turns out to
6810 be a pointer to an ERROR_MARK node, or because the offset is actually
6811 variable. (We can't handle the latter case just yet). */
6813 static unsigned
6814 field_byte_offset (decl)
6815 register tree decl;
6817 register unsigned type_align_in_bytes;
6818 register unsigned type_align_in_bits;
6819 register unsigned type_size_in_bits;
6820 register unsigned object_offset_in_align_units;
6821 register unsigned object_offset_in_bits;
6822 register unsigned object_offset_in_bytes;
6823 register tree type;
6824 register tree bitpos_tree;
6825 register tree field_size_tree;
6826 register unsigned bitpos_int;
6827 register unsigned deepest_bitpos;
6828 register unsigned field_size_in_bits;
6830 if (TREE_CODE (decl) == ERROR_MARK)
6831 return 0;
6833 if (TREE_CODE (decl) != FIELD_DECL)
6834 abort ();
6836 type = field_type (decl);
6838 bitpos_tree = DECL_FIELD_BITPOS (decl);
6839 field_size_tree = DECL_SIZE (decl);
6841 /* We cannot yet cope with fields whose positions or sizes are variable, so
6842 for now, when we see such things, we simply return 0. Someday, we may
6843 be able to handle such cases, but it will be damn difficult. */
6844 if (TREE_CODE (bitpos_tree) != INTEGER_CST)
6845 return 0;
6846 bitpos_int = (unsigned) TREE_INT_CST_LOW (bitpos_tree);
6848 if (TREE_CODE (field_size_tree) != INTEGER_CST)
6849 return 0;
6851 field_size_in_bits = (unsigned) TREE_INT_CST_LOW (field_size_tree);
6852 type_size_in_bits = simple_type_size_in_bits (type);
6853 type_align_in_bits = simple_type_align_in_bits (type);
6854 type_align_in_bytes = type_align_in_bits / BITS_PER_UNIT;
6856 /* Note that the GCC front-end doesn't make any attempt to keep track of
6857 the starting bit offset (relative to the start of the containing
6858 structure type) of the hypothetical "containing object" for a bit-
6859 field. Thus, when computing the byte offset value for the start of the
6860 "containing object" of a bit-field, we must deduce this information on
6861 our own. This can be rather tricky to do in some cases. For example,
6862 handling the following structure type definition when compiling for an
6863 i386/i486 target (which only aligns long long's to 32-bit boundaries)
6864 can be very tricky:
6866 struct S { int field1; long long field2:31; };
6868 Fortunately, there is a simple rule-of-thumb which can be
6869 used in such cases. When compiling for an i386/i486, GCC will allocate
6870 8 bytes for the structure shown above. It decides to do this based upon
6871 one simple rule for bit-field allocation. Quite simply, GCC allocates
6872 each "containing object" for each bit-field at the first (i.e. lowest
6873 addressed) legitimate alignment boundary (based upon the required
6874 minimum alignment for the declared type of the field) which it can
6875 possibly use, subject to the condition that there is still enough
6876 available space remaining in the containing object (when allocated at
6877 the selected point) to fully accommodate all of the bits of the
6878 bit-field itself. This simple rule makes it obvious why GCC allocates
6879 8 bytes for each object of the structure type shown above. When looking
6880 for a place to allocate the "containing object" for `field2', the
6881 compiler simply tries to allocate a 64-bit "containing object" at each
6882 successive 32-bit boundary (starting at zero) until it finds a place to
6883 allocate that 64- bit field such that at least 31 contiguous (and
6884 previously unallocated) bits remain within that selected 64 bit field.
6885 (As it turns out, for the example above, the compiler finds that it is
6886 OK to allocate the "containing object" 64-bit field at bit-offset zero
6887 within the structure type.) Here we attempt to work backwards from the
6888 limited set of facts we're given, and we try to deduce from those facts,
6889 where GCC must have believed that the containing object started (within
6890 the structure type). The value we deduce is then used (by the callers of
6891 this routine) to generate DW_AT_location and DW_AT_bit_offset attributes
6892 for fields (both bit-fields and, in the case of DW_AT_location, regular
6893 fields as well). */
6895 /* Figure out the bit-distance from the start of the structure to the
6896 "deepest" bit of the bit-field. */
6897 deepest_bitpos = bitpos_int + field_size_in_bits;
6899 /* This is the tricky part. Use some fancy footwork to deduce where the
6900 lowest addressed bit of the containing object must be. */
6901 object_offset_in_bits
6902 = ceiling (deepest_bitpos, type_align_in_bits) - type_size_in_bits;
6904 /* Compute the offset of the containing object in "alignment units". */
6905 object_offset_in_align_units = object_offset_in_bits / type_align_in_bits;
6907 /* Compute the offset of the containing object in bytes. */
6908 object_offset_in_bytes = object_offset_in_align_units * type_align_in_bytes;
6910 return object_offset_in_bytes;
6913 /* The following routines define various Dwarf attributes and any data
6914 associated with them. */
6916 /* Add a location description attribute value to a DIE.
6918 This emits location attributes suitable for whole variables and
6919 whole parameters. Note that the location attributes for struct fields are
6920 generated by the routine `data_member_location_attribute' below. */
6922 static void
6923 add_AT_location_description (die, attr_kind, rtl)
6924 dw_die_ref die;
6925 enum dwarf_attribute attr_kind;
6926 register rtx rtl;
6928 /* Handle a special case. If we are about to output a location descriptor
6929 for a variable or parameter which has been optimized out of existence,
6930 don't do that. A variable which has been optimized out
6931 of existence will have a DECL_RTL value which denotes a pseudo-reg.
6932 Currently, in some rare cases, variables can have DECL_RTL values which
6933 look like (MEM (REG pseudo-reg#)). These cases are due to bugs
6934 elsewhere in the compiler. We treat such cases as if the variable(s) in
6935 question had been optimized out of existence. */
6937 if (is_pseudo_reg (rtl)
6938 || (GET_CODE (rtl) == MEM
6939 && is_pseudo_reg (XEXP (rtl, 0)))
6940 || (GET_CODE (rtl) == CONCAT
6941 && is_pseudo_reg (XEXP (rtl, 0))
6942 && is_pseudo_reg (XEXP (rtl, 1))))
6943 return;
6945 add_AT_loc (die, attr_kind, loc_descriptor (rtl));
6948 /* Attach the specialized form of location attribute used for data
6949 members of struct and union types. In the special case of a
6950 FIELD_DECL node which represents a bit-field, the "offset" part
6951 of this special location descriptor must indicate the distance
6952 in bytes from the lowest-addressed byte of the containing struct
6953 or union type to the lowest-addressed byte of the "containing
6954 object" for the bit-field. (See the `field_byte_offset' function
6955 above).. For any given bit-field, the "containing object" is a
6956 hypothetical object (of some integral or enum type) within which
6957 the given bit-field lives. The type of this hypothetical
6958 "containing object" is always the same as the declared type of
6959 the individual bit-field itself (for GCC anyway... the DWARF
6960 spec doesn't actually mandate this). Note that it is the size
6961 (in bytes) of the hypothetical "containing object" which will
6962 be given in the DW_AT_byte_size attribute for this bit-field.
6963 (See the `byte_size_attribute' function below.) It is also used
6964 when calculating the value of the DW_AT_bit_offset attribute.
6965 (See the `bit_offset_attribute' function below). */
6967 static void
6968 add_data_member_location_attribute (die, decl)
6969 register dw_die_ref die;
6970 register tree decl;
6972 register unsigned long offset;
6973 register dw_loc_descr_ref loc_descr;
6974 register enum dwarf_location_atom op;
6976 if (TREE_CODE (decl) == TREE_VEC)
6977 offset = TREE_INT_CST_LOW (BINFO_OFFSET (decl));
6978 else
6979 offset = field_byte_offset (decl);
6981 /* The DWARF2 standard says that we should assume that the structure address
6982 is already on the stack, so we can specify a structure field address
6983 by using DW_OP_plus_uconst. */
6985 #ifdef MIPS_DEBUGGING_INFO
6986 /* ??? The SGI dwarf reader does not handle the DW_OP_plus_uconst operator
6987 correctly. It works only if we leave the offset on the stack. */
6988 op = DW_OP_constu;
6989 #else
6990 op = DW_OP_plus_uconst;
6991 #endif
6993 loc_descr = new_loc_descr (op, offset, 0);
6994 add_AT_loc (die, DW_AT_data_member_location, loc_descr);
6997 /* Attach an DW_AT_const_value attribute for a variable or a parameter which
6998 does not have a "location" either in memory or in a register. These
6999 things can arise in GNU C when a constant is passed as an actual parameter
7000 to an inlined function. They can also arise in C++ where declared
7001 constants do not necessarily get memory "homes". */
7003 static void
7004 add_const_value_attribute (die, rtl)
7005 register dw_die_ref die;
7006 register rtx rtl;
7008 switch (GET_CODE (rtl))
7010 case CONST_INT:
7011 /* Note that a CONST_INT rtx could represent either an integer or a
7012 floating-point constant. A CONST_INT is used whenever the constant
7013 will fit into a single word. In all such cases, the original mode
7014 of the constant value is wiped out, and the CONST_INT rtx is
7015 assigned VOIDmode. */
7016 add_AT_unsigned (die, DW_AT_const_value, (unsigned) INTVAL (rtl));
7017 break;
7019 case CONST_DOUBLE:
7020 /* Note that a CONST_DOUBLE rtx could represent either an integer or a
7021 floating-point constant. A CONST_DOUBLE is used whenever the
7022 constant requires more than one word in order to be adequately
7023 represented. We output CONST_DOUBLEs as blocks. */
7025 register enum machine_mode mode = GET_MODE (rtl);
7027 if (GET_MODE_CLASS (mode) == MODE_FLOAT)
7029 register unsigned length = GET_MODE_SIZE (mode) / sizeof (long);
7030 long array[4];
7031 REAL_VALUE_TYPE rv;
7033 REAL_VALUE_FROM_CONST_DOUBLE (rv, rtl);
7034 switch (mode)
7036 case SFmode:
7037 REAL_VALUE_TO_TARGET_SINGLE (rv, array[0]);
7038 break;
7040 case DFmode:
7041 REAL_VALUE_TO_TARGET_DOUBLE (rv, array);
7042 break;
7044 case XFmode:
7045 case TFmode:
7046 REAL_VALUE_TO_TARGET_LONG_DOUBLE (rv, array);
7047 break;
7049 default:
7050 abort ();
7053 add_AT_float (die, DW_AT_const_value, length, array);
7055 else
7056 add_AT_long_long (die, DW_AT_const_value,
7057 CONST_DOUBLE_HIGH (rtl), CONST_DOUBLE_LOW (rtl));
7059 break;
7061 case CONST_STRING:
7062 add_AT_string (die, DW_AT_const_value, XSTR (rtl, 0));
7063 break;
7065 case SYMBOL_REF:
7066 case LABEL_REF:
7067 case CONST:
7068 add_AT_addr (die, DW_AT_const_value, addr_to_string (rtl));
7069 break;
7071 case PLUS:
7072 /* In cases where an inlined instance of an inline function is passed
7073 the address of an `auto' variable (which is local to the caller) we
7074 can get a situation where the DECL_RTL of the artificial local
7075 variable (for the inlining) which acts as a stand-in for the
7076 corresponding formal parameter (of the inline function) will look
7077 like (plus:SI (reg:SI FRAME_PTR) (const_int ...)). This is not
7078 exactly a compile-time constant expression, but it isn't the address
7079 of the (artificial) local variable either. Rather, it represents the
7080 *value* which the artificial local variable always has during its
7081 lifetime. We currently have no way to represent such quasi-constant
7082 values in Dwarf, so for now we just punt and generate nothing. */
7083 break;
7085 default:
7086 /* No other kinds of rtx should be possible here. */
7087 abort ();
7092 /* Generate *either* an DW_AT_location attribute or else an DW_AT_const_value
7093 data attribute for a variable or a parameter. We generate the
7094 DW_AT_const_value attribute only in those cases where the given variable
7095 or parameter does not have a true "location" either in memory or in a
7096 register. This can happen (for example) when a constant is passed as an
7097 actual argument in a call to an inline function. (It's possible that
7098 these things can crop up in other ways also.) Note that one type of
7099 constant value which can be passed into an inlined function is a constant
7100 pointer. This can happen for example if an actual argument in an inlined
7101 function call evaluates to a compile-time constant address. */
7103 static void
7104 add_location_or_const_value_attribute (die, decl)
7105 register dw_die_ref die;
7106 register tree decl;
7108 register rtx rtl;
7109 register tree declared_type;
7110 register tree passed_type;
7112 if (TREE_CODE (decl) == ERROR_MARK)
7113 return;
7115 if (TREE_CODE (decl) != VAR_DECL && TREE_CODE (decl) != PARM_DECL)
7116 abort ();
7118 /* Here we have to decide where we are going to say the parameter "lives"
7119 (as far as the debugger is concerned). We only have a couple of
7120 choices. GCC provides us with DECL_RTL and with DECL_INCOMING_RTL.
7122 DECL_RTL normally indicates where the parameter lives during most of the
7123 activation of the function. If optimization is enabled however, this
7124 could be either NULL or else a pseudo-reg. Both of those cases indicate
7125 that the parameter doesn't really live anywhere (as far as the code
7126 generation parts of GCC are concerned) during most of the function's
7127 activation. That will happen (for example) if the parameter is never
7128 referenced within the function.
7130 We could just generate a location descriptor here for all non-NULL
7131 non-pseudo values of DECL_RTL and ignore all of the rest, but we can be
7132 a little nicer than that if we also consider DECL_INCOMING_RTL in cases
7133 where DECL_RTL is NULL or is a pseudo-reg.
7135 Note however that we can only get away with using DECL_INCOMING_RTL as
7136 a backup substitute for DECL_RTL in certain limited cases. In cases
7137 where DECL_ARG_TYPE (decl) indicates the same type as TREE_TYPE (decl),
7138 we can be sure that the parameter was passed using the same type as it is
7139 declared to have within the function, and that its DECL_INCOMING_RTL
7140 points us to a place where a value of that type is passed.
7142 In cases where DECL_ARG_TYPE (decl) and TREE_TYPE (decl) are different,
7143 we cannot (in general) use DECL_INCOMING_RTL as a substitute for DECL_RTL
7144 because in these cases DECL_INCOMING_RTL points us to a value of some
7145 type which is *different* from the type of the parameter itself. Thus,
7146 if we tried to use DECL_INCOMING_RTL to generate a location attribute in
7147 such cases, the debugger would end up (for example) trying to fetch a
7148 `float' from a place which actually contains the first part of a
7149 `double'. That would lead to really incorrect and confusing
7150 output at debug-time.
7152 So, in general, we *do not* use DECL_INCOMING_RTL as a backup for DECL_RTL
7153 in cases where DECL_ARG_TYPE (decl) != TREE_TYPE (decl). There
7154 are a couple of exceptions however. On little-endian machines we can
7155 get away with using DECL_INCOMING_RTL even when DECL_ARG_TYPE (decl) is
7156 not the same as TREE_TYPE (decl), but only when DECL_ARG_TYPE (decl) is
7157 an integral type that is smaller than TREE_TYPE (decl). These cases arise
7158 when (on a little-endian machine) a non-prototyped function has a
7159 parameter declared to be of type `short' or `char'. In such cases,
7160 TREE_TYPE (decl) will be `short' or `char', DECL_ARG_TYPE (decl) will
7161 be `int', and DECL_INCOMING_RTL will point to the lowest-order byte of the
7162 passed `int' value. If the debugger then uses that address to fetch
7163 a `short' or a `char' (on a little-endian machine) the result will be
7164 the correct data, so we allow for such exceptional cases below.
7166 Note that our goal here is to describe the place where the given formal
7167 parameter lives during most of the function's activation (i.e. between
7168 the end of the prologue and the start of the epilogue). We'll do that
7169 as best as we can. Note however that if the given formal parameter is
7170 modified sometime during the execution of the function, then a stack
7171 backtrace (at debug-time) will show the function as having been
7172 called with the *new* value rather than the value which was
7173 originally passed in. This happens rarely enough that it is not
7174 a major problem, but it *is* a problem, and I'd like to fix it.
7176 A future version of dwarf2out.c may generate two additional
7177 attributes for any given DW_TAG_formal_parameter DIE which will
7178 describe the "passed type" and the "passed location" for the
7179 given formal parameter in addition to the attributes we now
7180 generate to indicate the "declared type" and the "active
7181 location" for each parameter. This additional set of attributes
7182 could be used by debuggers for stack backtraces. Separately, note
7183 that sometimes DECL_RTL can be NULL and DECL_INCOMING_RTL can be
7184 NULL also. This happens (for example) for inlined-instances of
7185 inline function formal parameters which are never referenced.
7186 This really shouldn't be happening. All PARM_DECL nodes should
7187 get valid non-NULL DECL_INCOMING_RTL values, but integrate.c
7188 doesn't currently generate these values for inlined instances of
7189 inline function parameters, so when we see such cases, we are
7190 just out-of-luck for the time being (until integrate.c
7191 gets fixed). */
7193 /* Use DECL_RTL as the "location" unless we find something better. */
7194 rtl = DECL_RTL (decl);
7196 if (TREE_CODE (decl) == PARM_DECL)
7198 if (rtl == NULL_RTX || is_pseudo_reg (rtl))
7200 declared_type = type_main_variant (TREE_TYPE (decl));
7201 passed_type = type_main_variant (DECL_ARG_TYPE (decl));
7203 /* This decl represents a formal parameter which was optimized out.
7204 Note that DECL_INCOMING_RTL may be NULL in here, but we handle
7205 all* cases where (rtl == NULL_RTX) just below. */
7206 if (declared_type == passed_type)
7207 rtl = DECL_INCOMING_RTL (decl);
7208 else if (! BYTES_BIG_ENDIAN
7209 && TREE_CODE (declared_type) == INTEGER_TYPE
7210 && (GET_MODE_SIZE (TYPE_MODE (declared_type))
7211 <= GET_MODE_SIZE (TYPE_MODE (passed_type))))
7212 rtl = DECL_INCOMING_RTL (decl);
7215 /* If the parm was passed in registers, but lives on the stack, then
7216 make a big endian correction if the mode of the type of the
7217 parameter is not the same as the mode of the rtl. */
7218 /* ??? This is the same series of checks that are made in dbxout.c before
7219 we reach the big endian correction code there. It isn't clear if all
7220 of these checks are necessary here, but keeping them all is the safe
7221 thing to do. */
7222 else if (GET_CODE (rtl) == MEM
7223 && XEXP (rtl, 0) != const0_rtx
7224 && ! CONSTANT_P (XEXP (rtl, 0))
7225 /* Not passed in memory. */
7226 && GET_CODE (DECL_INCOMING_RTL (decl)) != MEM
7227 /* Not passed by invisible reference. */
7228 && (GET_CODE (XEXP (rtl, 0)) != REG
7229 || REGNO (XEXP (rtl, 0)) == HARD_FRAME_POINTER_REGNUM
7230 || REGNO (XEXP (rtl, 0)) == STACK_POINTER_REGNUM
7231 #if ARG_POINTER_REGNUM != HARD_FRAME_POINTER_REGNUM
7232 || REGNO (XEXP (rtl, 0)) == ARG_POINTER_REGNUM
7233 #endif
7235 /* Big endian correction check. */
7236 && BYTES_BIG_ENDIAN
7237 && TYPE_MODE (TREE_TYPE (decl)) != GET_MODE (rtl)
7238 && (GET_MODE_SIZE (TYPE_MODE (TREE_TYPE (decl)))
7239 < UNITS_PER_WORD))
7241 int offset = (UNITS_PER_WORD
7242 - GET_MODE_SIZE (TYPE_MODE (TREE_TYPE (decl))));
7243 rtl = gen_rtx_MEM (TYPE_MODE (TREE_TYPE (decl)),
7244 plus_constant (XEXP (rtl, 0), offset));
7248 if (rtl == NULL_RTX)
7249 return;
7251 rtl = eliminate_regs (rtl, 0, NULL_RTX);
7252 #ifdef LEAF_REG_REMAP
7253 if (current_function_uses_only_leaf_regs)
7254 leaf_renumber_regs_insn (rtl);
7255 #endif
7257 switch (GET_CODE (rtl))
7259 case ADDRESSOF:
7260 /* The address of a variable that was optimized away; don't emit
7261 anything. */
7262 break;
7264 case CONST_INT:
7265 case CONST_DOUBLE:
7266 case CONST_STRING:
7267 case SYMBOL_REF:
7268 case LABEL_REF:
7269 case CONST:
7270 case PLUS:
7271 /* DECL_RTL could be (plus (reg ...) (const_int ...)) */
7272 add_const_value_attribute (die, rtl);
7273 break;
7275 case MEM:
7276 case REG:
7277 case SUBREG:
7278 case CONCAT:
7279 add_AT_location_description (die, DW_AT_location, rtl);
7280 break;
7282 default:
7283 abort ();
7287 /* Generate an DW_AT_name attribute given some string value to be included as
7288 the value of the attribute. */
7290 static inline void
7291 add_name_attribute (die, name_string)
7292 register dw_die_ref die;
7293 register const char *name_string;
7295 if (name_string != NULL && *name_string != 0)
7296 add_AT_string (die, DW_AT_name, name_string);
7299 /* Given a tree node describing an array bound (either lower or upper) output
7300 a representation for that bound. */
7302 static void
7303 add_bound_info (subrange_die, bound_attr, bound)
7304 register dw_die_ref subrange_die;
7305 register enum dwarf_attribute bound_attr;
7306 register tree bound;
7308 register unsigned bound_value = 0;
7310 /* If this is an Ada unconstrained array type, then don't emit any debug
7311 info because the array bounds are unknown. They are parameterized when
7312 the type is instantiated. */
7313 if (contains_placeholder_p (bound))
7314 return;
7316 switch (TREE_CODE (bound))
7318 case ERROR_MARK:
7319 return;
7321 /* All fixed-bounds are represented by INTEGER_CST nodes. */
7322 case INTEGER_CST:
7323 bound_value = TREE_INT_CST_LOW (bound);
7324 if (bound_attr == DW_AT_lower_bound
7325 && ((is_c_family () && bound_value == 0)
7326 || (is_fortran () && bound_value == 1)))
7327 /* use the default */;
7328 else
7329 add_AT_unsigned (subrange_die, bound_attr, bound_value);
7330 break;
7332 case CONVERT_EXPR:
7333 case NOP_EXPR:
7334 case NON_LVALUE_EXPR:
7335 add_bound_info (subrange_die, bound_attr, TREE_OPERAND (bound, 0));
7336 break;
7338 case SAVE_EXPR:
7339 /* If optimization is turned on, the SAVE_EXPRs that describe how to
7340 access the upper bound values may be bogus. If they refer to a
7341 register, they may only describe how to get at these values at the
7342 points in the generated code right after they have just been
7343 computed. Worse yet, in the typical case, the upper bound values
7344 will not even *be* computed in the optimized code (though the
7345 number of elements will), so these SAVE_EXPRs are entirely
7346 bogus. In order to compensate for this fact, we check here to see
7347 if optimization is enabled, and if so, we don't add an attribute
7348 for the (unknown and unknowable) upper bound. This should not
7349 cause too much trouble for existing (stupid?) debuggers because
7350 they have to deal with empty upper bounds location descriptions
7351 anyway in order to be able to deal with incomplete array types.
7352 Of course an intelligent debugger (GDB?) should be able to
7353 comprehend that a missing upper bound specification in a array
7354 type used for a storage class `auto' local array variable
7355 indicates that the upper bound is both unknown (at compile- time)
7356 and unknowable (at run-time) due to optimization.
7358 We assume that a MEM rtx is safe because gcc wouldn't put the
7359 value there unless it was going to be used repeatedly in the
7360 function, i.e. for cleanups. */
7361 if (! optimize || GET_CODE (SAVE_EXPR_RTL (bound)) == MEM)
7363 register dw_die_ref ctx = lookup_decl_die (current_function_decl);
7364 register dw_die_ref decl_die = new_die (DW_TAG_variable, ctx);
7365 register rtx loc = SAVE_EXPR_RTL (bound);
7367 /* If the RTL for the SAVE_EXPR is memory, handle the case where
7368 it references an outer function's frame. */
7370 if (GET_CODE (loc) == MEM)
7372 rtx new_addr = fix_lexical_addr (XEXP (loc, 0), bound);
7374 if (XEXP (loc, 0) != new_addr)
7375 loc = gen_rtx_MEM (GET_MODE (loc), new_addr);
7378 add_AT_flag (decl_die, DW_AT_artificial, 1);
7379 add_type_attribute (decl_die, TREE_TYPE (bound), 1, 0, ctx);
7380 add_AT_location_description (decl_die, DW_AT_location, loc);
7381 add_AT_die_ref (subrange_die, bound_attr, decl_die);
7384 /* Else leave out the attribute. */
7385 break;
7387 case MAX_EXPR:
7388 case VAR_DECL:
7389 case COMPONENT_REF:
7390 /* ??? These types of bounds can be created by the Ada front end,
7391 and it isn't clear how to emit debug info for them. */
7392 break;
7394 default:
7395 abort ();
7399 /* Note that the block of subscript information for an array type also
7400 includes information about the element type of type given array type. */
7402 static void
7403 add_subscript_info (type_die, type)
7404 register dw_die_ref type_die;
7405 register tree type;
7407 #ifndef MIPS_DEBUGGING_INFO
7408 register unsigned dimension_number;
7409 #endif
7410 register tree lower, upper;
7411 register dw_die_ref subrange_die;
7413 /* The GNU compilers represent multidimensional array types as sequences of
7414 one dimensional array types whose element types are themselves array
7415 types. Here we squish that down, so that each multidimensional array
7416 type gets only one array_type DIE in the Dwarf debugging info. The draft
7417 Dwarf specification say that we are allowed to do this kind of
7418 compression in C (because there is no difference between an array or
7419 arrays and a multidimensional array in C) but for other source languages
7420 (e.g. Ada) we probably shouldn't do this. */
7422 /* ??? The SGI dwarf reader fails for multidimensional arrays with a
7423 const enum type. E.g. const enum machine_mode insn_operand_mode[2][10].
7424 We work around this by disabling this feature. See also
7425 gen_array_type_die. */
7426 #ifndef MIPS_DEBUGGING_INFO
7427 for (dimension_number = 0;
7428 TREE_CODE (type) == ARRAY_TYPE;
7429 type = TREE_TYPE (type), dimension_number++)
7431 #endif
7432 register tree domain = TYPE_DOMAIN (type);
7434 /* Arrays come in three flavors: Unspecified bounds, fixed bounds,
7435 and (in GNU C only) variable bounds. Handle all three forms
7436 here. */
7437 subrange_die = new_die (DW_TAG_subrange_type, type_die);
7438 if (domain)
7440 /* We have an array type with specified bounds. */
7441 lower = TYPE_MIN_VALUE (domain);
7442 upper = TYPE_MAX_VALUE (domain);
7444 /* define the index type. */
7445 if (TREE_TYPE (domain))
7447 /* ??? This is probably an Ada unnamed subrange type. Ignore the
7448 TREE_TYPE field. We can't emit debug info for this
7449 because it is an unnamed integral type. */
7450 if (TREE_CODE (domain) == INTEGER_TYPE
7451 && TYPE_NAME (domain) == NULL_TREE
7452 && TREE_CODE (TREE_TYPE (domain)) == INTEGER_TYPE
7453 && TYPE_NAME (TREE_TYPE (domain)) == NULL_TREE)
7455 else
7456 add_type_attribute (subrange_die, TREE_TYPE (domain), 0, 0,
7457 type_die);
7460 /* ??? If upper is NULL, the array has unspecified length,
7461 but it does have a lower bound. This happens with Fortran
7462 dimension arr(N:*)
7463 Since the debugger is definitely going to need to know N
7464 to produce useful results, go ahead and output the lower
7465 bound solo, and hope the debugger can cope. */
7467 add_bound_info (subrange_die, DW_AT_lower_bound, lower);
7468 if (upper)
7469 add_bound_info (subrange_die, DW_AT_upper_bound, upper);
7471 else
7472 /* We have an array type with an unspecified length. The DWARF-2
7473 spec does not say how to handle this; let's just leave out the
7474 bounds. */
7478 #ifndef MIPS_DEBUGGING_INFO
7480 #endif
7483 static void
7484 add_byte_size_attribute (die, tree_node)
7485 dw_die_ref die;
7486 register tree tree_node;
7488 register unsigned size;
7490 switch (TREE_CODE (tree_node))
7492 case ERROR_MARK:
7493 size = 0;
7494 break;
7495 case ENUMERAL_TYPE:
7496 case RECORD_TYPE:
7497 case UNION_TYPE:
7498 case QUAL_UNION_TYPE:
7499 size = int_size_in_bytes (tree_node);
7500 break;
7501 case FIELD_DECL:
7502 /* For a data member of a struct or union, the DW_AT_byte_size is
7503 generally given as the number of bytes normally allocated for an
7504 object of the *declared* type of the member itself. This is true
7505 even for bit-fields. */
7506 size = simple_type_size_in_bits (field_type (tree_node)) / BITS_PER_UNIT;
7507 break;
7508 default:
7509 abort ();
7512 /* Note that `size' might be -1 when we get to this point. If it is, that
7513 indicates that the byte size of the entity in question is variable. We
7514 have no good way of expressing this fact in Dwarf at the present time,
7515 so just let the -1 pass on through. */
7517 add_AT_unsigned (die, DW_AT_byte_size, size);
7520 /* For a FIELD_DECL node which represents a bit-field, output an attribute
7521 which specifies the distance in bits from the highest order bit of the
7522 "containing object" for the bit-field to the highest order bit of the
7523 bit-field itself.
7525 For any given bit-field, the "containing object" is a hypothetical
7526 object (of some integral or enum type) within which the given bit-field
7527 lives. The type of this hypothetical "containing object" is always the
7528 same as the declared type of the individual bit-field itself. The
7529 determination of the exact location of the "containing object" for a
7530 bit-field is rather complicated. It's handled by the
7531 `field_byte_offset' function (above).
7533 Note that it is the size (in bytes) of the hypothetical "containing object"
7534 which will be given in the DW_AT_byte_size attribute for this bit-field.
7535 (See `byte_size_attribute' above). */
7537 static inline void
7538 add_bit_offset_attribute (die, decl)
7539 register dw_die_ref die;
7540 register tree decl;
7542 register unsigned object_offset_in_bytes = field_byte_offset (decl);
7543 register tree type = DECL_BIT_FIELD_TYPE (decl);
7544 register tree bitpos_tree = DECL_FIELD_BITPOS (decl);
7545 register unsigned bitpos_int;
7546 register unsigned highest_order_object_bit_offset;
7547 register unsigned highest_order_field_bit_offset;
7548 register unsigned bit_offset;
7550 /* Must be a field and a bit field. */
7551 if (!type
7552 || TREE_CODE (decl) != FIELD_DECL)
7553 abort ();
7555 /* We can't yet handle bit-fields whose offsets are variable, so if we
7556 encounter such things, just return without generating any attribute
7557 whatsoever. */
7558 if (TREE_CODE (bitpos_tree) != INTEGER_CST)
7559 return;
7561 bitpos_int = (unsigned) TREE_INT_CST_LOW (bitpos_tree);
7563 /* Note that the bit offset is always the distance (in bits) from the
7564 highest-order bit of the "containing object" to the highest-order bit of
7565 the bit-field itself. Since the "high-order end" of any object or field
7566 is different on big-endian and little-endian machines, the computation
7567 below must take account of these differences. */
7568 highest_order_object_bit_offset = object_offset_in_bytes * BITS_PER_UNIT;
7569 highest_order_field_bit_offset = bitpos_int;
7571 if (! BYTES_BIG_ENDIAN)
7573 highest_order_field_bit_offset
7574 += (unsigned) TREE_INT_CST_LOW (DECL_SIZE (decl));
7576 highest_order_object_bit_offset += simple_type_size_in_bits (type);
7579 bit_offset
7580 = (! BYTES_BIG_ENDIAN
7581 ? highest_order_object_bit_offset - highest_order_field_bit_offset
7582 : highest_order_field_bit_offset - highest_order_object_bit_offset);
7584 add_AT_unsigned (die, DW_AT_bit_offset, bit_offset);
7587 /* For a FIELD_DECL node which represents a bit field, output an attribute
7588 which specifies the length in bits of the given field. */
7590 static inline void
7591 add_bit_size_attribute (die, decl)
7592 register dw_die_ref die;
7593 register tree decl;
7595 /* Must be a field and a bit field. */
7596 if (TREE_CODE (decl) != FIELD_DECL
7597 || ! DECL_BIT_FIELD_TYPE (decl))
7598 abort ();
7599 add_AT_unsigned (die, DW_AT_bit_size,
7600 (unsigned) TREE_INT_CST_LOW (DECL_SIZE (decl)));
7603 /* If the compiled language is ANSI C, then add a 'prototyped'
7604 attribute, if arg types are given for the parameters of a function. */
7606 static inline void
7607 add_prototyped_attribute (die, func_type)
7608 register dw_die_ref die;
7609 register tree func_type;
7611 if (get_AT_unsigned (comp_unit_die, DW_AT_language) == DW_LANG_C89
7612 && TYPE_ARG_TYPES (func_type) != NULL)
7613 add_AT_flag (die, DW_AT_prototyped, 1);
7617 /* Add an 'abstract_origin' attribute below a given DIE. The DIE is found
7618 by looking in either the type declaration or object declaration
7619 equate table. */
7621 static inline void
7622 add_abstract_origin_attribute (die, origin)
7623 register dw_die_ref die;
7624 register tree origin;
7626 dw_die_ref origin_die = NULL;
7627 if (TREE_CODE_CLASS (TREE_CODE (origin)) == 'd')
7628 origin_die = lookup_decl_die (origin);
7629 else if (TREE_CODE_CLASS (TREE_CODE (origin)) == 't')
7630 origin_die = lookup_type_die (origin);
7632 add_AT_die_ref (die, DW_AT_abstract_origin, origin_die);
7635 /* We do not currently support the pure_virtual attribute. */
7637 static inline void
7638 add_pure_or_virtual_attribute (die, func_decl)
7639 register dw_die_ref die;
7640 register tree func_decl;
7642 if (DECL_VINDEX (func_decl))
7644 add_AT_unsigned (die, DW_AT_virtuality, DW_VIRTUALITY_virtual);
7645 add_AT_loc (die, DW_AT_vtable_elem_location,
7646 new_loc_descr (DW_OP_constu,
7647 TREE_INT_CST_LOW (DECL_VINDEX (func_decl)),
7648 0));
7650 /* GNU extension: Record what type this method came from originally. */
7651 if (debug_info_level > DINFO_LEVEL_TERSE)
7652 add_AT_die_ref (die, DW_AT_containing_type,
7653 lookup_type_die (DECL_CONTEXT (func_decl)));
7657 /* Add source coordinate attributes for the given decl. */
7659 static void
7660 add_src_coords_attributes (die, decl)
7661 register dw_die_ref die;
7662 register tree decl;
7664 register unsigned file_index = lookup_filename (DECL_SOURCE_FILE (decl));
7666 add_AT_unsigned (die, DW_AT_decl_file, file_index);
7667 add_AT_unsigned (die, DW_AT_decl_line, DECL_SOURCE_LINE (decl));
7670 /* Add an DW_AT_name attribute and source coordinate attribute for the
7671 given decl, but only if it actually has a name. */
7673 static void
7674 add_name_and_src_coords_attributes (die, decl)
7675 register dw_die_ref die;
7676 register tree decl;
7678 register tree decl_name;
7680 decl_name = DECL_NAME (decl);
7681 if (decl_name != NULL && IDENTIFIER_POINTER (decl_name) != NULL)
7683 add_name_attribute (die, dwarf2_name (decl, 0));
7684 add_src_coords_attributes (die, decl);
7685 if ((TREE_CODE (decl) == FUNCTION_DECL || TREE_CODE (decl) == VAR_DECL)
7686 && DECL_ASSEMBLER_NAME (decl) != DECL_NAME (decl))
7687 add_AT_string (die, DW_AT_MIPS_linkage_name,
7688 IDENTIFIER_POINTER (DECL_ASSEMBLER_NAME (decl)));
7692 /* Push a new declaration scope. */
7694 static void
7695 push_decl_scope (scope)
7696 tree scope;
7698 tree containing_scope;
7699 int i;
7701 /* Make room in the decl_scope_table, if necessary. */
7702 if (decl_scope_table_allocated == decl_scope_depth)
7704 decl_scope_table_allocated += DECL_SCOPE_TABLE_INCREMENT;
7705 decl_scope_table
7706 = (decl_scope_node *) xrealloc (decl_scope_table,
7707 (decl_scope_table_allocated
7708 * sizeof (decl_scope_node)));
7711 decl_scope_table[decl_scope_depth].scope = scope;
7713 /* Sometimes, while recursively emitting subtypes within a class type,
7714 we end up recuring on a subtype at a higher level then the current
7715 subtype. In such a case, we need to search the decl_scope_table to
7716 find the parent of this subtype. */
7718 if (AGGREGATE_TYPE_P (scope))
7719 containing_scope = TYPE_CONTEXT (scope);
7720 else
7721 containing_scope = NULL_TREE;
7723 /* The normal case. */
7724 if (decl_scope_depth == 0
7725 || containing_scope == NULL_TREE
7726 /* Ignore namespaces for the moment. */
7727 || TREE_CODE (containing_scope) == NAMESPACE_DECL
7728 || containing_scope == decl_scope_table[decl_scope_depth - 1].scope)
7729 decl_scope_table[decl_scope_depth].previous = decl_scope_depth - 1;
7730 else
7732 /* We need to search for the containing_scope. */
7733 for (i = 0; i < decl_scope_depth; i++)
7734 if (decl_scope_table[i].scope == containing_scope)
7735 break;
7737 if (i == decl_scope_depth)
7738 abort ();
7739 else
7740 decl_scope_table[decl_scope_depth].previous = i;
7743 decl_scope_depth++;
7746 /* Return the DIE for the scope that immediately contains this declaration. */
7748 static dw_die_ref
7749 scope_die_for (t, context_die)
7750 register tree t;
7751 register dw_die_ref context_die;
7753 register dw_die_ref scope_die = NULL;
7754 register tree containing_scope;
7755 register int i;
7757 /* Walk back up the declaration tree looking for a place to define
7758 this type. */
7759 if (TREE_CODE_CLASS (TREE_CODE (t)) == 't')
7760 containing_scope = TYPE_CONTEXT (t);
7761 else if (TREE_CODE (t) == FUNCTION_DECL && DECL_VINDEX (t))
7762 containing_scope = decl_class_context (t);
7763 else
7764 containing_scope = DECL_CONTEXT (t);
7766 /* Ignore namespaces for the moment. */
7767 if (containing_scope && TREE_CODE (containing_scope) == NAMESPACE_DECL)
7768 containing_scope = NULL_TREE;
7770 /* Ignore function type "scopes" from the C frontend. They mean that
7771 a tagged type is local to a parmlist of a function declarator, but
7772 that isn't useful to DWARF. */
7773 if (containing_scope && TREE_CODE (containing_scope) == FUNCTION_TYPE)
7774 containing_scope = NULL_TREE;
7776 /* Function-local tags and functions get stuck in limbo until they are
7777 fixed up by decls_for_scope. */
7778 if (context_die == NULL && containing_scope != NULL_TREE
7779 && (TREE_CODE (t) == FUNCTION_DECL || is_tagged_type (t)))
7780 return NULL;
7782 if (containing_scope == NULL_TREE)
7783 scope_die = comp_unit_die;
7784 else
7786 for (i = decl_scope_depth - 1, scope_die = context_die;
7787 i >= 0 && decl_scope_table[i].scope != containing_scope;
7788 (scope_die = scope_die->die_parent,
7789 i = decl_scope_table[i].previous))
7792 /* ??? Integrate_decl_tree does not handle BLOCK_TYPE_TAGS, nor
7793 does it try to handle types defined by TYPE_DECLs. Such types
7794 thus have an incorrect TYPE_CONTEXT, which points to the block
7795 they were originally defined in, instead of the current block
7796 created by function inlining. We try to detect that here and
7797 work around it. */
7799 if (i < 0 && scope_die == comp_unit_die
7800 && TREE_CODE (containing_scope) == BLOCK
7801 && is_tagged_type (t)
7802 && (block_ultimate_origin (decl_scope_table[decl_scope_depth - 1].scope)
7803 == containing_scope))
7805 scope_die = context_die;
7806 /* Since the checks below are no longer applicable. */
7807 i = 0;
7810 if (i < 0)
7812 if (TREE_CODE_CLASS (TREE_CODE (containing_scope)) != 't')
7813 abort ();
7814 if (debug_info_level > DINFO_LEVEL_TERSE
7815 && !TREE_ASM_WRITTEN (containing_scope))
7816 abort ();
7818 /* If none of the current dies are suitable, we get file scope. */
7819 scope_die = comp_unit_die;
7823 return scope_die;
7826 /* Pop a declaration scope. */
7827 static inline void
7828 pop_decl_scope ()
7830 if (decl_scope_depth <= 0)
7831 abort ();
7832 --decl_scope_depth;
7835 /* Many forms of DIEs require a "type description" attribute. This
7836 routine locates the proper "type descriptor" die for the type given
7837 by 'type', and adds an DW_AT_type attribute below the given die. */
7839 static void
7840 add_type_attribute (object_die, type, decl_const, decl_volatile, context_die)
7841 register dw_die_ref object_die;
7842 register tree type;
7843 register int decl_const;
7844 register int decl_volatile;
7845 register dw_die_ref context_die;
7847 register enum tree_code code = TREE_CODE (type);
7848 register dw_die_ref type_die = NULL;
7850 /* ??? If this type is an unnamed subrange type of an integral or
7851 floating-point type, use the inner type. This is because we have no
7852 support for unnamed types in base_type_die. This can happen if this is
7853 an Ada subrange type. Correct solution is emit a subrange type die. */
7854 if ((code == INTEGER_TYPE || code == REAL_TYPE)
7855 && TREE_TYPE (type) != 0 && TYPE_NAME (type) == 0)
7856 type = TREE_TYPE (type), code = TREE_CODE (type);
7858 if (code == ERROR_MARK)
7859 return;
7861 /* Handle a special case. For functions whose return type is void, we
7862 generate *no* type attribute. (Note that no object may have type
7863 `void', so this only applies to function return types). */
7864 if (code == VOID_TYPE)
7865 return;
7867 type_die = modified_type_die (type,
7868 decl_const || TYPE_READONLY (type),
7869 decl_volatile || TYPE_VOLATILE (type),
7870 context_die);
7871 if (type_die != NULL)
7872 add_AT_die_ref (object_die, DW_AT_type, type_die);
7875 /* Given a tree pointer to a struct, class, union, or enum type node, return
7876 a pointer to the (string) tag name for the given type, or zero if the type
7877 was declared without a tag. */
7879 static char *
7880 type_tag (type)
7881 register tree type;
7883 register char *name = 0;
7885 if (TYPE_NAME (type) != 0)
7887 register tree t = 0;
7889 /* Find the IDENTIFIER_NODE for the type name. */
7890 if (TREE_CODE (TYPE_NAME (type)) == IDENTIFIER_NODE)
7891 t = TYPE_NAME (type);
7893 /* The g++ front end makes the TYPE_NAME of *each* tagged type point to
7894 a TYPE_DECL node, regardless of whether or not a `typedef' was
7895 involved. */
7896 else if (TREE_CODE (TYPE_NAME (type)) == TYPE_DECL
7897 && ! DECL_IGNORED_P (TYPE_NAME (type)))
7898 t = DECL_NAME (TYPE_NAME (type));
7900 /* Now get the name as a string, or invent one. */
7901 if (t != 0)
7902 name = IDENTIFIER_POINTER (t);
7905 return (name == 0 || *name == '\0') ? 0 : name;
7908 /* Return the type associated with a data member, make a special check
7909 for bit field types. */
7911 static inline tree
7912 member_declared_type (member)
7913 register tree member;
7915 return (DECL_BIT_FIELD_TYPE (member)
7916 ? DECL_BIT_FIELD_TYPE (member)
7917 : TREE_TYPE (member));
7920 /* Get the decl's label, as described by its RTL. This may be different
7921 from the DECL_NAME name used in the source file. */
7923 #if 0
7924 static char *
7925 decl_start_label (decl)
7926 register tree decl;
7928 rtx x;
7929 char *fnname;
7930 x = DECL_RTL (decl);
7931 if (GET_CODE (x) != MEM)
7932 abort ();
7934 x = XEXP (x, 0);
7935 if (GET_CODE (x) != SYMBOL_REF)
7936 abort ();
7938 fnname = XSTR (x, 0);
7939 return fnname;
7941 #endif
7943 /* These routines generate the internal representation of the DIE's for
7944 the compilation unit. Debugging information is collected by walking
7945 the declaration trees passed in from dwarf2out_decl(). */
7947 static void
7948 gen_array_type_die (type, context_die)
7949 register tree type;
7950 register dw_die_ref context_die;
7952 register dw_die_ref scope_die = scope_die_for (type, context_die);
7953 register dw_die_ref array_die;
7954 register tree element_type;
7956 /* ??? The SGI dwarf reader fails for array of array of enum types unless
7957 the inner array type comes before the outer array type. Thus we must
7958 call gen_type_die before we call new_die. See below also. */
7959 #ifdef MIPS_DEBUGGING_INFO
7960 gen_type_die (TREE_TYPE (type), context_die);
7961 #endif
7963 array_die = new_die (DW_TAG_array_type, scope_die);
7965 #if 0
7966 /* We default the array ordering. SDB will probably do
7967 the right things even if DW_AT_ordering is not present. It's not even
7968 an issue until we start to get into multidimensional arrays anyway. If
7969 SDB is ever caught doing the Wrong Thing for multi-dimensional arrays,
7970 then we'll have to put the DW_AT_ordering attribute back in. (But if
7971 and when we find out that we need to put these in, we will only do so
7972 for multidimensional arrays. */
7973 add_AT_unsigned (array_die, DW_AT_ordering, DW_ORD_row_major);
7974 #endif
7976 #ifdef MIPS_DEBUGGING_INFO
7977 /* The SGI compilers handle arrays of unknown bound by setting
7978 AT_declaration and not emitting any subrange DIEs. */
7979 if (! TYPE_DOMAIN (type))
7980 add_AT_unsigned (array_die, DW_AT_declaration, 1);
7981 else
7982 #endif
7983 add_subscript_info (array_die, type);
7985 equate_type_number_to_die (type, array_die);
7987 /* Add representation of the type of the elements of this array type. */
7988 element_type = TREE_TYPE (type);
7990 /* ??? The SGI dwarf reader fails for multidimensional arrays with a
7991 const enum type. E.g. const enum machine_mode insn_operand_mode[2][10].
7992 We work around this by disabling this feature. See also
7993 add_subscript_info. */
7994 #ifndef MIPS_DEBUGGING_INFO
7995 while (TREE_CODE (element_type) == ARRAY_TYPE)
7996 element_type = TREE_TYPE (element_type);
7998 gen_type_die (element_type, context_die);
7999 #endif
8001 add_type_attribute (array_die, element_type, 0, 0, context_die);
8004 static void
8005 gen_set_type_die (type, context_die)
8006 register tree type;
8007 register dw_die_ref context_die;
8009 register dw_die_ref type_die
8010 = new_die (DW_TAG_set_type, scope_die_for (type, context_die));
8012 equate_type_number_to_die (type, type_die);
8013 add_type_attribute (type_die, TREE_TYPE (type), 0, 0, context_die);
8016 #if 0
8017 static void
8018 gen_entry_point_die (decl, context_die)
8019 register tree decl;
8020 register dw_die_ref context_die;
8022 register tree origin = decl_ultimate_origin (decl);
8023 register dw_die_ref decl_die = new_die (DW_TAG_entry_point, context_die);
8024 if (origin != NULL)
8025 add_abstract_origin_attribute (decl_die, origin);
8026 else
8028 add_name_and_src_coords_attributes (decl_die, decl);
8029 add_type_attribute (decl_die, TREE_TYPE (TREE_TYPE (decl)),
8030 0, 0, context_die);
8033 if (DECL_ABSTRACT (decl))
8034 equate_decl_number_to_die (decl, decl_die);
8035 else
8036 add_AT_lbl_id (decl_die, DW_AT_low_pc, decl_start_label (decl));
8038 #endif
8040 /* Remember a type in the pending_types_list. */
8042 static void
8043 pend_type (type)
8044 register tree type;
8046 if (pending_types == pending_types_allocated)
8048 pending_types_allocated += PENDING_TYPES_INCREMENT;
8049 pending_types_list
8050 = (tree *) xrealloc (pending_types_list,
8051 sizeof (tree) * pending_types_allocated);
8054 pending_types_list[pending_types++] = type;
8057 /* Output any pending types (from the pending_types list) which we can output
8058 now (taking into account the scope that we are working on now).
8060 For each type output, remove the given type from the pending_types_list
8061 *before* we try to output it. */
8063 static void
8064 output_pending_types_for_scope (context_die)
8065 register dw_die_ref context_die;
8067 register tree type;
8069 while (pending_types)
8071 --pending_types;
8072 type = pending_types_list[pending_types];
8073 gen_type_die (type, context_die);
8074 if (!TREE_ASM_WRITTEN (type))
8075 abort ();
8079 /* Remember a type in the incomplete_types_list. */
8081 static void
8082 add_incomplete_type (type)
8083 tree type;
8085 if (incomplete_types == incomplete_types_allocated)
8087 incomplete_types_allocated += INCOMPLETE_TYPES_INCREMENT;
8088 incomplete_types_list
8089 = (tree *) xrealloc (incomplete_types_list,
8090 sizeof (tree) * incomplete_types_allocated);
8093 incomplete_types_list[incomplete_types++] = type;
8096 /* Walk through the list of incomplete types again, trying once more to
8097 emit full debugging info for them. */
8099 static void
8100 retry_incomplete_types ()
8102 register tree type;
8104 while (incomplete_types)
8106 --incomplete_types;
8107 type = incomplete_types_list[incomplete_types];
8108 gen_type_die (type, comp_unit_die);
8112 /* Generate a DIE to represent an inlined instance of an enumeration type. */
8114 static void
8115 gen_inlined_enumeration_type_die (type, context_die)
8116 register tree type;
8117 register dw_die_ref context_die;
8119 register dw_die_ref type_die = new_die (DW_TAG_enumeration_type,
8120 scope_die_for (type, context_die));
8122 if (!TREE_ASM_WRITTEN (type))
8123 abort ();
8124 add_abstract_origin_attribute (type_die, type);
8127 /* Generate a DIE to represent an inlined instance of a structure type. */
8129 static void
8130 gen_inlined_structure_type_die (type, context_die)
8131 register tree type;
8132 register dw_die_ref context_die;
8134 register dw_die_ref type_die = new_die (DW_TAG_structure_type,
8135 scope_die_for (type, context_die));
8137 if (!TREE_ASM_WRITTEN (type))
8138 abort ();
8139 add_abstract_origin_attribute (type_die, type);
8142 /* Generate a DIE to represent an inlined instance of a union type. */
8144 static void
8145 gen_inlined_union_type_die (type, context_die)
8146 register tree type;
8147 register dw_die_ref context_die;
8149 register dw_die_ref type_die = new_die (DW_TAG_union_type,
8150 scope_die_for (type, context_die));
8152 if (!TREE_ASM_WRITTEN (type))
8153 abort ();
8154 add_abstract_origin_attribute (type_die, type);
8157 /* Generate a DIE to represent an enumeration type. Note that these DIEs
8158 include all of the information about the enumeration values also. Each
8159 enumerated type name/value is listed as a child of the enumerated type
8160 DIE. */
8162 static void
8163 gen_enumeration_type_die (type, context_die)
8164 register tree type;
8165 register dw_die_ref context_die;
8167 register dw_die_ref type_die = lookup_type_die (type);
8169 if (type_die == NULL)
8171 type_die = new_die (DW_TAG_enumeration_type,
8172 scope_die_for (type, context_die));
8173 equate_type_number_to_die (type, type_die);
8174 add_name_attribute (type_die, type_tag (type));
8176 else if (! TYPE_SIZE (type))
8177 return;
8178 else
8179 remove_AT (type_die, DW_AT_declaration);
8181 /* Handle a GNU C/C++ extension, i.e. incomplete enum types. If the
8182 given enum type is incomplete, do not generate the DW_AT_byte_size
8183 attribute or the DW_AT_element_list attribute. */
8184 if (TYPE_SIZE (type))
8186 register tree link;
8188 TREE_ASM_WRITTEN (type) = 1;
8189 add_byte_size_attribute (type_die, type);
8190 if (TYPE_STUB_DECL (type) != NULL_TREE)
8191 add_src_coords_attributes (type_die, TYPE_STUB_DECL (type));
8193 /* If the first reference to this type was as the return type of an
8194 inline function, then it may not have a parent. Fix this now. */
8195 if (type_die->die_parent == NULL)
8196 add_child_die (scope_die_for (type, context_die), type_die);
8198 for (link = TYPE_FIELDS (type);
8199 link != NULL; link = TREE_CHAIN (link))
8201 register dw_die_ref enum_die = new_die (DW_TAG_enumerator, type_die);
8203 add_name_attribute (enum_die,
8204 IDENTIFIER_POINTER (TREE_PURPOSE (link)));
8205 add_AT_unsigned (enum_die, DW_AT_const_value,
8206 (unsigned) TREE_INT_CST_LOW (TREE_VALUE (link)));
8209 else
8210 add_AT_flag (type_die, DW_AT_declaration, 1);
8214 /* Generate a DIE to represent either a real live formal parameter decl or to
8215 represent just the type of some formal parameter position in some function
8216 type.
8218 Note that this routine is a bit unusual because its argument may be a
8219 ..._DECL node (i.e. either a PARM_DECL or perhaps a VAR_DECL which
8220 represents an inlining of some PARM_DECL) or else some sort of a ..._TYPE
8221 node. If it's the former then this function is being called to output a
8222 DIE to represent a formal parameter object (or some inlining thereof). If
8223 it's the latter, then this function is only being called to output a
8224 DW_TAG_formal_parameter DIE to stand as a placeholder for some formal
8225 argument type of some subprogram type. */
8227 static dw_die_ref
8228 gen_formal_parameter_die (node, context_die)
8229 register tree node;
8230 register dw_die_ref context_die;
8232 register dw_die_ref parm_die
8233 = new_die (DW_TAG_formal_parameter, context_die);
8234 register tree origin;
8236 switch (TREE_CODE_CLASS (TREE_CODE (node)))
8238 case 'd':
8239 origin = decl_ultimate_origin (node);
8240 if (origin != NULL)
8241 add_abstract_origin_attribute (parm_die, origin);
8242 else
8244 add_name_and_src_coords_attributes (parm_die, node);
8245 add_type_attribute (parm_die, TREE_TYPE (node),
8246 TREE_READONLY (node),
8247 TREE_THIS_VOLATILE (node),
8248 context_die);
8249 if (DECL_ARTIFICIAL (node))
8250 add_AT_flag (parm_die, DW_AT_artificial, 1);
8253 equate_decl_number_to_die (node, parm_die);
8254 if (! DECL_ABSTRACT (node))
8255 add_location_or_const_value_attribute (parm_die, node);
8257 break;
8259 case 't':
8260 /* We were called with some kind of a ..._TYPE node. */
8261 add_type_attribute (parm_die, node, 0, 0, context_die);
8262 break;
8264 default:
8265 abort ();
8268 return parm_die;
8271 /* Generate a special type of DIE used as a stand-in for a trailing ellipsis
8272 at the end of an (ANSI prototyped) formal parameters list. */
8274 static void
8275 gen_unspecified_parameters_die (decl_or_type, context_die)
8276 register tree decl_or_type ATTRIBUTE_UNUSED;
8277 register dw_die_ref context_die;
8279 new_die (DW_TAG_unspecified_parameters, context_die);
8282 /* Generate a list of nameless DW_TAG_formal_parameter DIEs (and perhaps a
8283 DW_TAG_unspecified_parameters DIE) to represent the types of the formal
8284 parameters as specified in some function type specification (except for
8285 those which appear as part of a function *definition*).
8287 Note we must be careful here to output all of the parameter DIEs before*
8288 we output any DIEs needed to represent the types of the formal parameters.
8289 This keeps svr4 SDB happy because it (incorrectly) thinks that the first
8290 non-parameter DIE it sees ends the formal parameter list. */
8292 static void
8293 gen_formal_types_die (function_or_method_type, context_die)
8294 register tree function_or_method_type;
8295 register dw_die_ref context_die;
8297 register tree link;
8298 register tree formal_type = NULL;
8299 register tree first_parm_type = TYPE_ARG_TYPES (function_or_method_type);
8301 #if 0
8302 /* In the case where we are generating a formal types list for a C++
8303 non-static member function type, skip over the first thing on the
8304 TYPE_ARG_TYPES list because it only represents the type of the hidden
8305 `this pointer'. The debugger should be able to figure out (without
8306 being explicitly told) that this non-static member function type takes a
8307 `this pointer' and should be able to figure what the type of that hidden
8308 parameter is from the DW_AT_member attribute of the parent
8309 DW_TAG_subroutine_type DIE. */
8310 if (TREE_CODE (function_or_method_type) == METHOD_TYPE)
8311 first_parm_type = TREE_CHAIN (first_parm_type);
8312 #endif
8314 /* Make our first pass over the list of formal parameter types and output a
8315 DW_TAG_formal_parameter DIE for each one. */
8316 for (link = first_parm_type; link; link = TREE_CHAIN (link))
8318 register dw_die_ref parm_die;
8320 formal_type = TREE_VALUE (link);
8321 if (formal_type == void_type_node)
8322 break;
8324 /* Output a (nameless) DIE to represent the formal parameter itself. */
8325 parm_die = gen_formal_parameter_die (formal_type, context_die);
8326 if (TREE_CODE (function_or_method_type) == METHOD_TYPE
8327 && link == first_parm_type)
8328 add_AT_flag (parm_die, DW_AT_artificial, 1);
8331 /* If this function type has an ellipsis, add a
8332 DW_TAG_unspecified_parameters DIE to the end of the parameter list. */
8333 if (formal_type != void_type_node)
8334 gen_unspecified_parameters_die (function_or_method_type, context_die);
8336 /* Make our second (and final) pass over the list of formal parameter types
8337 and output DIEs to represent those types (as necessary). */
8338 for (link = TYPE_ARG_TYPES (function_or_method_type);
8339 link;
8340 link = TREE_CHAIN (link))
8342 formal_type = TREE_VALUE (link);
8343 if (formal_type == void_type_node)
8344 break;
8346 gen_type_die (formal_type, context_die);
8350 /* Generate a DIE to represent a declared function (either file-scope or
8351 block-local). */
8353 static void
8354 gen_subprogram_die (decl, context_die)
8355 register tree decl;
8356 register dw_die_ref context_die;
8358 char label_id[MAX_ARTIFICIAL_LABEL_BYTES];
8359 register tree origin = decl_ultimate_origin (decl);
8360 register dw_die_ref subr_die;
8361 register rtx fp_reg;
8362 register tree fn_arg_types;
8363 register tree outer_scope;
8364 register dw_die_ref old_die = lookup_decl_die (decl);
8365 register int declaration
8366 = (current_function_decl != decl
8367 || (context_die
8368 && (context_die->die_tag == DW_TAG_structure_type
8369 || context_die->die_tag == DW_TAG_union_type)));
8371 if (origin != NULL)
8373 subr_die = new_die (DW_TAG_subprogram, context_die);
8374 add_abstract_origin_attribute (subr_die, origin);
8376 else if (old_die && DECL_ABSTRACT (decl)
8377 && get_AT_unsigned (old_die, DW_AT_inline))
8379 /* This must be a redefinition of an extern inline function.
8380 We can just reuse the old die here. */
8381 subr_die = old_die;
8383 /* Clear out the inlined attribute and parm types. */
8384 remove_AT (subr_die, DW_AT_inline);
8385 remove_children (subr_die);
8387 else if (old_die)
8389 register unsigned file_index
8390 = lookup_filename (DECL_SOURCE_FILE (decl));
8392 if (get_AT_flag (old_die, DW_AT_declaration) != 1)
8394 /* ??? This can happen if there is a bug in the program, for
8395 instance, if it has duplicate function definitions. Ideally,
8396 we should detect this case and ignore it. For now, if we have
8397 already reported an error, any error at all, then assume that
8398 we got here because of a input error, not a dwarf2 bug. */
8399 if (errorcount)
8400 return;
8401 abort ();
8404 /* If the definition comes from the same place as the declaration,
8405 maybe use the old DIE. We always want the DIE for this function
8406 that has the *_pc attributes to be under comp_unit_die so the
8407 debugger can find it. For inlines, that is the concrete instance,
8408 so we can use the old DIE here. For non-inline methods, we want a
8409 specification DIE at toplevel, so we need a new DIE. For local
8410 class methods, this does not apply. */
8411 if ((DECL_ABSTRACT (decl) || old_die->die_parent == comp_unit_die
8412 || context_die == NULL)
8413 && get_AT_unsigned (old_die, DW_AT_decl_file) == file_index
8414 && (get_AT_unsigned (old_die, DW_AT_decl_line)
8415 == (unsigned)DECL_SOURCE_LINE (decl)))
8417 subr_die = old_die;
8419 /* Clear out the declaration attribute and the parm types. */
8420 remove_AT (subr_die, DW_AT_declaration);
8421 remove_children (subr_die);
8423 else
8425 subr_die = new_die (DW_TAG_subprogram, context_die);
8426 add_AT_die_ref (subr_die, DW_AT_specification, old_die);
8427 if (get_AT_unsigned (old_die, DW_AT_decl_file) != file_index)
8428 add_AT_unsigned (subr_die, DW_AT_decl_file, file_index);
8429 if (get_AT_unsigned (old_die, DW_AT_decl_line)
8430 != (unsigned)DECL_SOURCE_LINE (decl))
8431 add_AT_unsigned
8432 (subr_die, DW_AT_decl_line, DECL_SOURCE_LINE (decl));
8435 else
8437 register dw_die_ref scope_die;
8439 if (DECL_CONTEXT (decl))
8440 scope_die = scope_die_for (decl, context_die);
8441 else
8442 /* Don't put block extern declarations under comp_unit_die. */
8443 scope_die = context_die;
8445 subr_die = new_die (DW_TAG_subprogram, scope_die);
8447 if (TREE_PUBLIC (decl))
8448 add_AT_flag (subr_die, DW_AT_external, 1);
8450 add_name_and_src_coords_attributes (subr_die, decl);
8451 if (debug_info_level > DINFO_LEVEL_TERSE)
8453 register tree type = TREE_TYPE (decl);
8455 add_prototyped_attribute (subr_die, type);
8456 add_type_attribute (subr_die, TREE_TYPE (type), 0, 0, context_die);
8459 add_pure_or_virtual_attribute (subr_die, decl);
8460 if (DECL_ARTIFICIAL (decl))
8461 add_AT_flag (subr_die, DW_AT_artificial, 1);
8462 if (TREE_PROTECTED (decl))
8463 add_AT_unsigned (subr_die, DW_AT_accessibility, DW_ACCESS_protected);
8464 else if (TREE_PRIVATE (decl))
8465 add_AT_unsigned (subr_die, DW_AT_accessibility, DW_ACCESS_private);
8468 if (declaration)
8470 add_AT_flag (subr_die, DW_AT_declaration, 1);
8472 /* The first time we see a member function, it is in the context of
8473 the class to which it belongs. We make sure of this by emitting
8474 the class first. The next time is the definition, which is
8475 handled above. The two may come from the same source text. */
8476 if (DECL_CONTEXT (decl))
8477 equate_decl_number_to_die (decl, subr_die);
8479 else if (DECL_ABSTRACT (decl))
8481 /* ??? Checking DECL_DEFER_OUTPUT is correct for static inline functions,
8482 but not for extern inline functions. We can't get this completely
8483 correct because information about whether the function was declared
8484 inline is not saved anywhere. */
8485 if (DECL_DEFER_OUTPUT (decl))
8487 if (DECL_INLINE (decl))
8488 add_AT_unsigned (subr_die, DW_AT_inline, DW_INL_declared_inlined);
8489 else
8490 add_AT_unsigned (subr_die, DW_AT_inline,
8491 DW_INL_declared_not_inlined);
8493 else if (DECL_INLINE (decl))
8494 add_AT_unsigned (subr_die, DW_AT_inline, DW_INL_inlined);
8495 else
8496 abort ();
8498 equate_decl_number_to_die (decl, subr_die);
8500 else if (!DECL_EXTERNAL (decl))
8502 if (origin == NULL_TREE)
8503 equate_decl_number_to_die (decl, subr_die);
8505 ASM_GENERATE_INTERNAL_LABEL (label_id, FUNC_BEGIN_LABEL,
8506 current_funcdef_number);
8507 add_AT_lbl_id (subr_die, DW_AT_low_pc, label_id);
8508 ASM_GENERATE_INTERNAL_LABEL (label_id, FUNC_END_LABEL,
8509 current_funcdef_number);
8510 add_AT_lbl_id (subr_die, DW_AT_high_pc, label_id);
8512 add_pubname (decl, subr_die);
8513 add_arange (decl, subr_die);
8515 #ifdef MIPS_DEBUGGING_INFO
8516 /* Add a reference to the FDE for this routine. */
8517 add_AT_fde_ref (subr_die, DW_AT_MIPS_fde, current_funcdef_fde);
8518 #endif
8520 /* Define the "frame base" location for this routine. We use the
8521 frame pointer or stack pointer registers, since the RTL for local
8522 variables is relative to one of them. */
8523 fp_reg
8524 = frame_pointer_needed ? hard_frame_pointer_rtx : stack_pointer_rtx;
8525 add_AT_loc (subr_die, DW_AT_frame_base, reg_loc_descriptor (fp_reg));
8527 #if 0
8528 /* ??? This fails for nested inline functions, because context_display
8529 is not part of the state saved/restored for inline functions. */
8530 if (current_function_needs_context)
8531 add_AT_location_description (subr_die, DW_AT_static_link,
8532 lookup_static_chain (decl));
8533 #endif
8536 /* Now output descriptions of the arguments for this function. This gets
8537 (unnecessarily?) complex because of the fact that the DECL_ARGUMENT list
8538 for a FUNCTION_DECL doesn't indicate cases where there was a trailing
8539 `...' at the end of the formal parameter list. In order to find out if
8540 there was a trailing ellipsis or not, we must instead look at the type
8541 associated with the FUNCTION_DECL. This will be a node of type
8542 FUNCTION_TYPE. If the chain of type nodes hanging off of this
8543 FUNCTION_TYPE node ends with a void_type_node then there should *not* be
8544 an ellipsis at the end. */
8545 push_decl_scope (decl);
8547 /* In the case where we are describing a mere function declaration, all we
8548 need to do here (and all we *can* do here) is to describe the *types* of
8549 its formal parameters. */
8550 if (debug_info_level <= DINFO_LEVEL_TERSE)
8552 else if (declaration)
8553 gen_formal_types_die (TREE_TYPE (decl), subr_die);
8554 else
8556 /* Generate DIEs to represent all known formal parameters */
8557 register tree arg_decls = DECL_ARGUMENTS (decl);
8558 register tree parm;
8560 /* When generating DIEs, generate the unspecified_parameters DIE
8561 instead if we come across the arg "__builtin_va_alist" */
8562 for (parm = arg_decls; parm; parm = TREE_CHAIN (parm))
8563 if (TREE_CODE (parm) == PARM_DECL)
8565 if (DECL_NAME (parm)
8566 && !strcmp (IDENTIFIER_POINTER (DECL_NAME (parm)),
8567 "__builtin_va_alist"))
8568 gen_unspecified_parameters_die (parm, subr_die);
8569 else
8570 gen_decl_die (parm, subr_die);
8573 /* Decide whether we need a unspecified_parameters DIE at the end.
8574 There are 2 more cases to do this for: 1) the ansi ... declaration -
8575 this is detectable when the end of the arg list is not a
8576 void_type_node 2) an unprototyped function declaration (not a
8577 definition). This just means that we have no info about the
8578 parameters at all. */
8579 fn_arg_types = TYPE_ARG_TYPES (TREE_TYPE (decl));
8580 if (fn_arg_types != NULL)
8582 /* this is the prototyped case, check for ... */
8583 if (TREE_VALUE (tree_last (fn_arg_types)) != void_type_node)
8584 gen_unspecified_parameters_die (decl, subr_die);
8586 else if (DECL_INITIAL (decl) == NULL_TREE)
8587 gen_unspecified_parameters_die (decl, subr_die);
8590 /* Output Dwarf info for all of the stuff within the body of the function
8591 (if it has one - it may be just a declaration). */
8592 outer_scope = DECL_INITIAL (decl);
8594 /* Note that here, `outer_scope' is a pointer to the outermost BLOCK
8595 node created to represent a function. This outermost BLOCK actually
8596 represents the outermost binding contour for the function, i.e. the
8597 contour in which the function's formal parameters and labels get
8598 declared. Curiously, it appears that the front end doesn't actually
8599 put the PARM_DECL nodes for the current function onto the BLOCK_VARS
8600 list for this outer scope. (They are strung off of the DECL_ARGUMENTS
8601 list for the function instead.) The BLOCK_VARS list for the
8602 `outer_scope' does provide us with a list of the LABEL_DECL nodes for
8603 the function however, and we output DWARF info for those in
8604 decls_for_scope. Just within the `outer_scope' there will be a BLOCK
8605 node representing the function's outermost pair of curly braces, and
8606 any blocks used for the base and member initializers of a C++
8607 constructor function. */
8608 if (! declaration && TREE_CODE (outer_scope) != ERROR_MARK)
8610 current_function_has_inlines = 0;
8611 decls_for_scope (outer_scope, subr_die, 0);
8613 #if 0 && defined (MIPS_DEBUGGING_INFO)
8614 if (current_function_has_inlines)
8616 add_AT_flag (subr_die, DW_AT_MIPS_has_inlines, 1);
8617 if (! comp_unit_has_inlines)
8619 add_AT_flag (comp_unit_die, DW_AT_MIPS_has_inlines, 1);
8620 comp_unit_has_inlines = 1;
8623 #endif
8626 pop_decl_scope ();
8629 /* Generate a DIE to represent a declared data object. */
8631 static void
8632 gen_variable_die (decl, context_die)
8633 register tree decl;
8634 register dw_die_ref context_die;
8636 register tree origin = decl_ultimate_origin (decl);
8637 register dw_die_ref var_die = new_die (DW_TAG_variable, context_die);
8639 dw_die_ref old_die = lookup_decl_die (decl);
8640 int declaration
8641 = (DECL_EXTERNAL (decl)
8642 || current_function_decl != decl_function_context (decl)
8643 || context_die->die_tag == DW_TAG_structure_type
8644 || context_die->die_tag == DW_TAG_union_type);
8646 if (origin != NULL)
8647 add_abstract_origin_attribute (var_die, origin);
8648 /* Loop unrolling can create multiple blocks that refer to the same
8649 static variable, so we must test for the DW_AT_declaration flag. */
8650 /* ??? Loop unrolling/reorder_blocks should perhaps be rewritten to
8651 copy decls and set the DECL_ABSTRACT flag on them instead of
8652 sharing them. */
8653 else if (old_die && TREE_STATIC (decl)
8654 && get_AT_flag (old_die, DW_AT_declaration) == 1)
8656 /* ??? This is an instantiation of a C++ class level static. */
8657 add_AT_die_ref (var_die, DW_AT_specification, old_die);
8658 if (DECL_NAME (decl))
8660 register unsigned file_index
8661 = lookup_filename (DECL_SOURCE_FILE (decl));
8663 if (get_AT_unsigned (old_die, DW_AT_decl_file) != file_index)
8664 add_AT_unsigned (var_die, DW_AT_decl_file, file_index);
8666 if (get_AT_unsigned (old_die, DW_AT_decl_line)
8667 != (unsigned)DECL_SOURCE_LINE (decl))
8669 add_AT_unsigned (var_die, DW_AT_decl_line,
8670 DECL_SOURCE_LINE (decl));
8673 else
8675 add_name_and_src_coords_attributes (var_die, decl);
8676 add_type_attribute (var_die, TREE_TYPE (decl),
8677 TREE_READONLY (decl),
8678 TREE_THIS_VOLATILE (decl), context_die);
8680 if (TREE_PUBLIC (decl))
8681 add_AT_flag (var_die, DW_AT_external, 1);
8683 if (DECL_ARTIFICIAL (decl))
8684 add_AT_flag (var_die, DW_AT_artificial, 1);
8686 if (TREE_PROTECTED (decl))
8687 add_AT_unsigned (var_die, DW_AT_accessibility, DW_ACCESS_protected);
8689 else if (TREE_PRIVATE (decl))
8690 add_AT_unsigned (var_die, DW_AT_accessibility, DW_ACCESS_private);
8693 if (declaration)
8694 add_AT_flag (var_die, DW_AT_declaration, 1);
8696 if ((declaration && decl_class_context (decl)) || DECL_ABSTRACT (decl))
8697 equate_decl_number_to_die (decl, var_die);
8699 if (! declaration && ! DECL_ABSTRACT (decl))
8701 equate_decl_number_to_die (decl, var_die);
8702 add_location_or_const_value_attribute (var_die, decl);
8703 add_pubname (decl, var_die);
8707 /* Generate a DIE to represent a label identifier. */
8709 static void
8710 gen_label_die (decl, context_die)
8711 register tree decl;
8712 register dw_die_ref context_die;
8714 register tree origin = decl_ultimate_origin (decl);
8715 register dw_die_ref lbl_die = new_die (DW_TAG_label, context_die);
8716 register rtx insn;
8717 char label[MAX_ARTIFICIAL_LABEL_BYTES];
8718 char label2[MAX_ARTIFICIAL_LABEL_BYTES];
8720 if (origin != NULL)
8721 add_abstract_origin_attribute (lbl_die, origin);
8722 else
8723 add_name_and_src_coords_attributes (lbl_die, decl);
8725 if (DECL_ABSTRACT (decl))
8726 equate_decl_number_to_die (decl, lbl_die);
8727 else
8729 insn = DECL_RTL (decl);
8731 /* Deleted labels are programmer specified labels which have been
8732 eliminated because of various optimisations. We still emit them
8733 here so that it is possible to put breakpoints on them. */
8734 if (GET_CODE (insn) == CODE_LABEL
8735 || ((GET_CODE (insn) == NOTE
8736 && NOTE_LINE_NUMBER (insn) == NOTE_INSN_DELETED_LABEL)))
8738 /* When optimization is enabled (via -O) some parts of the compiler
8739 (e.g. jump.c and cse.c) may try to delete CODE_LABEL insns which
8740 represent source-level labels which were explicitly declared by
8741 the user. This really shouldn't be happening though, so catch
8742 it if it ever does happen. */
8743 if (INSN_DELETED_P (insn))
8744 abort ();
8746 sprintf (label2, INSN_LABEL_FMT, current_funcdef_number);
8747 ASM_GENERATE_INTERNAL_LABEL (label, label2,
8748 (unsigned) INSN_UID (insn));
8749 add_AT_lbl_id (lbl_die, DW_AT_low_pc, label);
8754 /* Generate a DIE for a lexical block. */
8756 static void
8757 gen_lexical_block_die (stmt, context_die, depth)
8758 register tree stmt;
8759 register dw_die_ref context_die;
8760 int depth;
8762 register dw_die_ref stmt_die = new_die (DW_TAG_lexical_block, context_die);
8763 char label[MAX_ARTIFICIAL_LABEL_BYTES];
8765 if (! BLOCK_ABSTRACT (stmt))
8767 ASM_GENERATE_INTERNAL_LABEL (label, BLOCK_BEGIN_LABEL,
8768 next_block_number);
8769 add_AT_lbl_id (stmt_die, DW_AT_low_pc, label);
8770 ASM_GENERATE_INTERNAL_LABEL (label, BLOCK_END_LABEL, next_block_number);
8771 add_AT_lbl_id (stmt_die, DW_AT_high_pc, label);
8774 push_decl_scope (stmt);
8775 decls_for_scope (stmt, stmt_die, depth);
8776 pop_decl_scope ();
8779 /* Generate a DIE for an inlined subprogram. */
8781 static void
8782 gen_inlined_subroutine_die (stmt, context_die, depth)
8783 register tree stmt;
8784 register dw_die_ref context_die;
8785 int depth;
8787 if (! BLOCK_ABSTRACT (stmt))
8789 register dw_die_ref subr_die
8790 = new_die (DW_TAG_inlined_subroutine, context_die);
8791 register tree decl = block_ultimate_origin (stmt);
8792 char label[MAX_ARTIFICIAL_LABEL_BYTES];
8794 add_abstract_origin_attribute (subr_die, decl);
8795 ASM_GENERATE_INTERNAL_LABEL (label, BLOCK_BEGIN_LABEL,
8796 next_block_number);
8797 add_AT_lbl_id (subr_die, DW_AT_low_pc, label);
8798 ASM_GENERATE_INTERNAL_LABEL (label, BLOCK_END_LABEL, next_block_number);
8799 add_AT_lbl_id (subr_die, DW_AT_high_pc, label);
8800 push_decl_scope (decl);
8801 decls_for_scope (stmt, subr_die, depth);
8802 pop_decl_scope ();
8803 current_function_has_inlines = 1;
8807 /* Generate a DIE for a field in a record, or structure. */
8809 static void
8810 gen_field_die (decl, context_die)
8811 register tree decl;
8812 register dw_die_ref context_die;
8814 register dw_die_ref decl_die = new_die (DW_TAG_member, context_die);
8816 add_name_and_src_coords_attributes (decl_die, decl);
8817 add_type_attribute (decl_die, member_declared_type (decl),
8818 TREE_READONLY (decl), TREE_THIS_VOLATILE (decl),
8819 context_die);
8821 /* If this is a bit field... */
8822 if (DECL_BIT_FIELD_TYPE (decl))
8824 add_byte_size_attribute (decl_die, decl);
8825 add_bit_size_attribute (decl_die, decl);
8826 add_bit_offset_attribute (decl_die, decl);
8829 if (TREE_CODE (DECL_FIELD_CONTEXT (decl)) != UNION_TYPE)
8830 add_data_member_location_attribute (decl_die, decl);
8832 if (DECL_ARTIFICIAL (decl))
8833 add_AT_flag (decl_die, DW_AT_artificial, 1);
8835 if (TREE_PROTECTED (decl))
8836 add_AT_unsigned (decl_die, DW_AT_accessibility, DW_ACCESS_protected);
8838 else if (TREE_PRIVATE (decl))
8839 add_AT_unsigned (decl_die, DW_AT_accessibility, DW_ACCESS_private);
8842 #if 0
8843 /* Don't generate either pointer_type DIEs or reference_type DIEs here.
8844 Use modified_type_die instead.
8845 We keep this code here just in case these types of DIEs may be needed to
8846 represent certain things in other languages (e.g. Pascal) someday. */
8847 static void
8848 gen_pointer_type_die (type, context_die)
8849 register tree type;
8850 register dw_die_ref context_die;
8852 register dw_die_ref ptr_die
8853 = new_die (DW_TAG_pointer_type, scope_die_for (type, context_die));
8855 equate_type_number_to_die (type, ptr_die);
8856 add_type_attribute (ptr_die, TREE_TYPE (type), 0, 0, context_die);
8857 add_AT_unsigned (mod_type_die, DW_AT_byte_size, PTR_SIZE);
8860 /* Don't generate either pointer_type DIEs or reference_type DIEs here.
8861 Use modified_type_die instead.
8862 We keep this code here just in case these types of DIEs may be needed to
8863 represent certain things in other languages (e.g. Pascal) someday. */
8864 static void
8865 gen_reference_type_die (type, context_die)
8866 register tree type;
8867 register dw_die_ref context_die;
8869 register dw_die_ref ref_die
8870 = new_die (DW_TAG_reference_type, scope_die_for (type, context_die));
8872 equate_type_number_to_die (type, ref_die);
8873 add_type_attribute (ref_die, TREE_TYPE (type), 0, 0, context_die);
8874 add_AT_unsigned (mod_type_die, DW_AT_byte_size, PTR_SIZE);
8876 #endif
8878 /* Generate a DIE for a pointer to a member type. */
8879 static void
8880 gen_ptr_to_mbr_type_die (type, context_die)
8881 register tree type;
8882 register dw_die_ref context_die;
8884 register dw_die_ref ptr_die
8885 = new_die (DW_TAG_ptr_to_member_type, scope_die_for (type, context_die));
8887 equate_type_number_to_die (type, ptr_die);
8888 add_AT_die_ref (ptr_die, DW_AT_containing_type,
8889 lookup_type_die (TYPE_OFFSET_BASETYPE (type)));
8890 add_type_attribute (ptr_die, TREE_TYPE (type), 0, 0, context_die);
8893 /* Generate the DIE for the compilation unit. */
8895 static void
8896 gen_compile_unit_die (main_input_filename)
8897 register char *main_input_filename;
8899 char producer[250];
8900 char *wd = getpwd ();
8902 comp_unit_die = new_die (DW_TAG_compile_unit, NULL);
8903 add_name_attribute (comp_unit_die, main_input_filename);
8905 if (wd != NULL)
8906 add_AT_string (comp_unit_die, DW_AT_comp_dir, wd);
8908 sprintf (producer, "%s %s", language_string, version_string);
8910 #ifdef MIPS_DEBUGGING_INFO
8911 /* The MIPS/SGI compilers place the 'cc' command line options in the producer
8912 string. The SGI debugger looks for -g, -g1, -g2, or -g3; if they do
8913 not appear in the producer string, the debugger reaches the conclusion
8914 that the object file is stripped and has no debugging information.
8915 To get the MIPS/SGI debugger to believe that there is debugging
8916 information in the object file, we add a -g to the producer string. */
8917 if (debug_info_level > DINFO_LEVEL_TERSE)
8918 strcat (producer, " -g");
8919 #endif
8921 add_AT_string (comp_unit_die, DW_AT_producer, producer);
8923 if (strcmp (language_string, "GNU C++") == 0)
8924 add_AT_unsigned (comp_unit_die, DW_AT_language, DW_LANG_C_plus_plus);
8926 else if (strcmp (language_string, "GNU Ada") == 0)
8927 add_AT_unsigned (comp_unit_die, DW_AT_language, DW_LANG_Ada83);
8929 else if (strcmp (language_string, "GNU F77") == 0)
8930 add_AT_unsigned (comp_unit_die, DW_AT_language, DW_LANG_Fortran77);
8932 else if (strcmp (language_string, "GNU Pascal") == 0)
8933 add_AT_unsigned (comp_unit_die, DW_AT_language, DW_LANG_Pascal83);
8935 else if (flag_traditional)
8936 add_AT_unsigned (comp_unit_die, DW_AT_language, DW_LANG_C);
8938 else
8939 add_AT_unsigned (comp_unit_die, DW_AT_language, DW_LANG_C89);
8941 #if 0 /* unimplemented */
8942 if (debug_info_level >= DINFO_LEVEL_VERBOSE)
8943 add_AT_unsigned (comp_unit_die, DW_AT_macro_info, 0);
8944 #endif
8947 /* Generate a DIE for a string type. */
8949 static void
8950 gen_string_type_die (type, context_die)
8951 register tree type;
8952 register dw_die_ref context_die;
8954 register dw_die_ref type_die
8955 = new_die (DW_TAG_string_type, scope_die_for (type, context_die));
8957 equate_type_number_to_die (type, type_die);
8959 /* Fudge the string length attribute for now. */
8961 /* TODO: add string length info.
8962 string_length_attribute (TYPE_MAX_VALUE (TYPE_DOMAIN (type)));
8963 bound_representation (upper_bound, 0, 'u'); */
8966 /* Generate the DIE for a base class. */
8968 static void
8969 gen_inheritance_die (binfo, context_die)
8970 register tree binfo;
8971 register dw_die_ref context_die;
8973 dw_die_ref die = new_die (DW_TAG_inheritance, context_die);
8975 add_type_attribute (die, BINFO_TYPE (binfo), 0, 0, context_die);
8976 add_data_member_location_attribute (die, binfo);
8978 if (TREE_VIA_VIRTUAL (binfo))
8979 add_AT_unsigned (die, DW_AT_virtuality, DW_VIRTUALITY_virtual);
8980 if (TREE_VIA_PUBLIC (binfo))
8981 add_AT_unsigned (die, DW_AT_accessibility, DW_ACCESS_public);
8982 else if (TREE_VIA_PROTECTED (binfo))
8983 add_AT_unsigned (die, DW_AT_accessibility, DW_ACCESS_protected);
8986 /* Generate a DIE for a class member. */
8988 static void
8989 gen_member_die (type, context_die)
8990 register tree type;
8991 register dw_die_ref context_die;
8993 register tree member;
8995 /* If this is not an incomplete type, output descriptions of each of its
8996 members. Note that as we output the DIEs necessary to represent the
8997 members of this record or union type, we will also be trying to output
8998 DIEs to represent the *types* of those members. However the `type'
8999 function (above) will specifically avoid generating type DIEs for member
9000 types *within* the list of member DIEs for this (containing) type execpt
9001 for those types (of members) which are explicitly marked as also being
9002 members of this (containing) type themselves. The g++ front- end can
9003 force any given type to be treated as a member of some other
9004 (containing) type by setting the TYPE_CONTEXT of the given (member) type
9005 to point to the TREE node representing the appropriate (containing)
9006 type. */
9008 /* First output info about the base classes. */
9009 if (TYPE_BINFO (type) && TYPE_BINFO_BASETYPES (type))
9011 register tree bases = TYPE_BINFO_BASETYPES (type);
9012 register int n_bases = TREE_VEC_LENGTH (bases);
9013 register int i;
9015 for (i = 0; i < n_bases; i++)
9016 gen_inheritance_die (TREE_VEC_ELT (bases, i), context_die);
9019 /* Now output info about the data members and type members. */
9020 for (member = TYPE_FIELDS (type); member; member = TREE_CHAIN (member))
9021 gen_decl_die (member, context_die);
9023 /* Now output info about the function members (if any). */
9024 for (member = TYPE_METHODS (type); member; member = TREE_CHAIN (member))
9025 gen_decl_die (member, context_die);
9028 /* Generate a DIE for a structure or union type. */
9030 static void
9031 gen_struct_or_union_type_die (type, context_die)
9032 register tree type;
9033 register dw_die_ref context_die;
9035 register dw_die_ref type_die = lookup_type_die (type);
9036 register dw_die_ref scope_die = 0;
9037 register int nested = 0;
9039 if (type_die && ! TYPE_SIZE (type))
9040 return;
9042 if (TYPE_CONTEXT (type) != NULL_TREE
9043 && AGGREGATE_TYPE_P (TYPE_CONTEXT (type)))
9044 nested = 1;
9046 scope_die = scope_die_for (type, context_die);
9048 if (! type_die || (nested && scope_die == comp_unit_die))
9049 /* First occurrence of type or toplevel definition of nested class. */
9051 register dw_die_ref old_die = type_die;
9053 type_die = new_die (TREE_CODE (type) == RECORD_TYPE
9054 ? DW_TAG_structure_type : DW_TAG_union_type,
9055 scope_die);
9056 equate_type_number_to_die (type, type_die);
9057 add_name_attribute (type_die, type_tag (type));
9058 if (old_die)
9059 add_AT_die_ref (type_die, DW_AT_specification, old_die);
9061 else
9062 remove_AT (type_die, DW_AT_declaration);
9064 /* If we're not in the right context to be defining this type, defer to
9065 avoid tricky recursion. */
9066 if (TYPE_SIZE (type) && decl_scope_depth > 0 && scope_die == comp_unit_die)
9068 add_AT_flag (type_die, DW_AT_declaration, 1);
9069 pend_type (type);
9071 /* If this type has been completed, then give it a byte_size attribute and
9072 then give a list of members. */
9073 else if (TYPE_SIZE (type))
9075 /* Prevent infinite recursion in cases where the type of some member of
9076 this type is expressed in terms of this type itself. */
9077 TREE_ASM_WRITTEN (type) = 1;
9078 add_byte_size_attribute (type_die, type);
9079 if (TYPE_STUB_DECL (type) != NULL_TREE)
9080 add_src_coords_attributes (type_die, TYPE_STUB_DECL (type));
9082 /* If the first reference to this type was as the return type of an
9083 inline function, then it may not have a parent. Fix this now. */
9084 if (type_die->die_parent == NULL)
9085 add_child_die (scope_die, type_die);
9087 push_decl_scope (type);
9088 gen_member_die (type, type_die);
9089 pop_decl_scope ();
9091 /* GNU extension: Record what type our vtable lives in. */
9092 if (TYPE_VFIELD (type))
9094 tree vtype = DECL_FCONTEXT (TYPE_VFIELD (type));
9096 gen_type_die (vtype, context_die);
9097 add_AT_die_ref (type_die, DW_AT_containing_type,
9098 lookup_type_die (vtype));
9101 else
9103 add_AT_flag (type_die, DW_AT_declaration, 1);
9105 /* We can't do this for function-local types, and we don't need to. */
9106 if (TREE_PERMANENT (type))
9107 add_incomplete_type (type);
9111 /* Generate a DIE for a subroutine _type_. */
9113 static void
9114 gen_subroutine_type_die (type, context_die)
9115 register tree type;
9116 register dw_die_ref context_die;
9118 register tree return_type = TREE_TYPE (type);
9119 register dw_die_ref subr_die
9120 = new_die (DW_TAG_subroutine_type, scope_die_for (type, context_die));
9122 equate_type_number_to_die (type, subr_die);
9123 add_prototyped_attribute (subr_die, type);
9124 add_type_attribute (subr_die, return_type, 0, 0, context_die);
9125 gen_formal_types_die (type, subr_die);
9128 /* Generate a DIE for a type definition */
9130 static void
9131 gen_typedef_die (decl, context_die)
9132 register tree decl;
9133 register dw_die_ref context_die;
9135 register dw_die_ref type_die;
9136 register tree origin;
9138 if (TREE_ASM_WRITTEN (decl))
9139 return;
9140 TREE_ASM_WRITTEN (decl) = 1;
9142 type_die = new_die (DW_TAG_typedef, scope_die_for (decl, context_die));
9143 origin = decl_ultimate_origin (decl);
9144 if (origin != NULL)
9145 add_abstract_origin_attribute (type_die, origin);
9146 else
9148 register tree type;
9149 add_name_and_src_coords_attributes (type_die, decl);
9150 if (DECL_ORIGINAL_TYPE (decl))
9152 type = DECL_ORIGINAL_TYPE (decl);
9153 equate_type_number_to_die (TREE_TYPE (decl), type_die);
9155 else
9156 type = TREE_TYPE (decl);
9157 add_type_attribute (type_die, type, TREE_READONLY (decl),
9158 TREE_THIS_VOLATILE (decl), context_die);
9161 if (DECL_ABSTRACT (decl))
9162 equate_decl_number_to_die (decl, type_die);
9165 /* Generate a type description DIE. */
9167 static void
9168 gen_type_die (type, context_die)
9169 register tree type;
9170 register dw_die_ref context_die;
9172 if (type == NULL_TREE || type == error_mark_node)
9173 return;
9175 /* We are going to output a DIE to represent the unqualified version of
9176 this type (i.e. without any const or volatile qualifiers) so get the
9177 main variant (i.e. the unqualified version) of this type now. */
9178 type = type_main_variant (type);
9180 if (TREE_ASM_WRITTEN (type))
9181 return;
9183 if (TYPE_NAME (type) && TREE_CODE (TYPE_NAME (type)) == TYPE_DECL
9184 && DECL_ORIGINAL_TYPE (TYPE_NAME (type)))
9186 TREE_ASM_WRITTEN (type) = 1;
9187 gen_decl_die (TYPE_NAME (type), context_die);
9188 return;
9191 switch (TREE_CODE (type))
9193 case ERROR_MARK:
9194 break;
9196 case POINTER_TYPE:
9197 case REFERENCE_TYPE:
9198 /* We must set TREE_ASM_WRITTEN in case this is a recursive type. This
9199 ensures that the gen_type_die recursion will terminate even if the
9200 type is recursive. Recursive types are possible in Ada. */
9201 /* ??? We could perhaps do this for all types before the switch
9202 statement. */
9203 TREE_ASM_WRITTEN (type) = 1;
9205 /* For these types, all that is required is that we output a DIE (or a
9206 set of DIEs) to represent the "basis" type. */
9207 gen_type_die (TREE_TYPE (type), context_die);
9208 break;
9210 case OFFSET_TYPE:
9211 /* This code is used for C++ pointer-to-data-member types.
9212 Output a description of the relevant class type. */
9213 gen_type_die (TYPE_OFFSET_BASETYPE (type), context_die);
9215 /* Output a description of the type of the object pointed to. */
9216 gen_type_die (TREE_TYPE (type), context_die);
9218 /* Now output a DIE to represent this pointer-to-data-member type
9219 itself. */
9220 gen_ptr_to_mbr_type_die (type, context_die);
9221 break;
9223 case SET_TYPE:
9224 gen_type_die (TYPE_DOMAIN (type), context_die);
9225 gen_set_type_die (type, context_die);
9226 break;
9228 case FILE_TYPE:
9229 gen_type_die (TREE_TYPE (type), context_die);
9230 abort (); /* No way to represent these in Dwarf yet! */
9231 break;
9233 case FUNCTION_TYPE:
9234 /* Force out return type (in case it wasn't forced out already). */
9235 gen_type_die (TREE_TYPE (type), context_die);
9236 gen_subroutine_type_die (type, context_die);
9237 break;
9239 case METHOD_TYPE:
9240 /* Force out return type (in case it wasn't forced out already). */
9241 gen_type_die (TREE_TYPE (type), context_die);
9242 gen_subroutine_type_die (type, context_die);
9243 break;
9245 case ARRAY_TYPE:
9246 if (TYPE_STRING_FLAG (type) && TREE_CODE (TREE_TYPE (type)) == CHAR_TYPE)
9248 gen_type_die (TREE_TYPE (type), context_die);
9249 gen_string_type_die (type, context_die);
9251 else
9252 gen_array_type_die (type, context_die);
9253 break;
9255 case ENUMERAL_TYPE:
9256 case RECORD_TYPE:
9257 case UNION_TYPE:
9258 case QUAL_UNION_TYPE:
9259 /* If this is a nested type whose containing class hasn't been
9260 written out yet, writing it out will cover this one, too. */
9261 if (TYPE_CONTEXT (type)
9262 && AGGREGATE_TYPE_P (TYPE_CONTEXT (type))
9263 && ! TREE_ASM_WRITTEN (TYPE_CONTEXT (type)))
9265 gen_type_die (TYPE_CONTEXT (type), context_die);
9267 if (TREE_ASM_WRITTEN (TYPE_CONTEXT (type)))
9268 return;
9270 /* If that failed, attach ourselves to the stub. */
9271 push_decl_scope (TYPE_CONTEXT (type));
9272 context_die = lookup_type_die (TYPE_CONTEXT (type));
9275 if (TREE_CODE (type) == ENUMERAL_TYPE)
9276 gen_enumeration_type_die (type, context_die);
9277 else
9278 gen_struct_or_union_type_die (type, context_die);
9280 if (TYPE_CONTEXT (type)
9281 && AGGREGATE_TYPE_P (TYPE_CONTEXT (type))
9282 && ! TREE_ASM_WRITTEN (TYPE_CONTEXT (type)))
9283 pop_decl_scope ();
9285 /* Don't set TREE_ASM_WRITTEN on an incomplete struct; we want to fix
9286 it up if it is ever completed. gen_*_type_die will set it for us
9287 when appropriate. */
9288 return;
9290 case VOID_TYPE:
9291 case INTEGER_TYPE:
9292 case REAL_TYPE:
9293 case COMPLEX_TYPE:
9294 case BOOLEAN_TYPE:
9295 case CHAR_TYPE:
9296 /* No DIEs needed for fundamental types. */
9297 break;
9299 case LANG_TYPE:
9300 /* No Dwarf representation currently defined. */
9301 break;
9303 default:
9304 abort ();
9307 TREE_ASM_WRITTEN (type) = 1;
9310 /* Generate a DIE for a tagged type instantiation. */
9312 static void
9313 gen_tagged_type_instantiation_die (type, context_die)
9314 register tree type;
9315 register dw_die_ref context_die;
9317 if (type == NULL_TREE || type == error_mark_node)
9318 return;
9320 /* We are going to output a DIE to represent the unqualified version of
9321 this type (i.e. without any const or volatile qualifiers) so make sure
9322 that we have the main variant (i.e. the unqualified version) of this
9323 type now. */
9324 if (type != type_main_variant (type)
9325 || !TREE_ASM_WRITTEN (type))
9326 abort ();
9328 switch (TREE_CODE (type))
9330 case ERROR_MARK:
9331 break;
9333 case ENUMERAL_TYPE:
9334 gen_inlined_enumeration_type_die (type, context_die);
9335 break;
9337 case RECORD_TYPE:
9338 gen_inlined_structure_type_die (type, context_die);
9339 break;
9341 case UNION_TYPE:
9342 case QUAL_UNION_TYPE:
9343 gen_inlined_union_type_die (type, context_die);
9344 break;
9346 default:
9347 abort ();
9351 /* Generate a DW_TAG_lexical_block DIE followed by DIEs to represent all of the
9352 things which are local to the given block. */
9354 static void
9355 gen_block_die (stmt, context_die, depth)
9356 register tree stmt;
9357 register dw_die_ref context_die;
9358 int depth;
9360 register int must_output_die = 0;
9361 register tree origin;
9362 register tree decl;
9363 register enum tree_code origin_code;
9365 /* Ignore blocks never really used to make RTL. */
9367 if (stmt == NULL_TREE || !TREE_USED (stmt))
9368 return;
9370 /* Determine the "ultimate origin" of this block. This block may be an
9371 inlined instance of an inlined instance of inline function, so we have
9372 to trace all of the way back through the origin chain to find out what
9373 sort of node actually served as the original seed for the creation of
9374 the current block. */
9375 origin = block_ultimate_origin (stmt);
9376 origin_code = (origin != NULL) ? TREE_CODE (origin) : ERROR_MARK;
9378 /* Determine if we need to output any Dwarf DIEs at all to represent this
9379 block. */
9380 if (origin_code == FUNCTION_DECL)
9381 /* The outer scopes for inlinings *must* always be represented. We
9382 generate DW_TAG_inlined_subroutine DIEs for them. (See below.) */
9383 must_output_die = 1;
9384 else
9386 /* In the case where the current block represents an inlining of the
9387 "body block" of an inline function, we must *NOT* output any DIE for
9388 this block because we have already output a DIE to represent the
9389 whole inlined function scope and the "body block" of any function
9390 doesn't really represent a different scope according to ANSI C
9391 rules. So we check here to make sure that this block does not
9392 represent a "body block inlining" before trying to set the
9393 `must_output_die' flag. */
9394 if (! is_body_block (origin ? origin : stmt))
9396 /* Determine if this block directly contains any "significant"
9397 local declarations which we will need to output DIEs for. */
9398 if (debug_info_level > DINFO_LEVEL_TERSE)
9399 /* We are not in terse mode so *any* local declaration counts
9400 as being a "significant" one. */
9401 must_output_die = (BLOCK_VARS (stmt) != NULL);
9402 else
9403 /* We are in terse mode, so only local (nested) function
9404 definitions count as "significant" local declarations. */
9405 for (decl = BLOCK_VARS (stmt);
9406 decl != NULL; decl = TREE_CHAIN (decl))
9407 if (TREE_CODE (decl) == FUNCTION_DECL
9408 && DECL_INITIAL (decl))
9410 must_output_die = 1;
9411 break;
9416 /* It would be a waste of space to generate a Dwarf DW_TAG_lexical_block
9417 DIE for any block which contains no significant local declarations at
9418 all. Rather, in such cases we just call `decls_for_scope' so that any
9419 needed Dwarf info for any sub-blocks will get properly generated. Note
9420 that in terse mode, our definition of what constitutes a "significant"
9421 local declaration gets restricted to include only inlined function
9422 instances and local (nested) function definitions. */
9423 if (must_output_die)
9425 if (origin_code == FUNCTION_DECL)
9426 gen_inlined_subroutine_die (stmt, context_die, depth);
9427 else
9428 gen_lexical_block_die (stmt, context_die, depth);
9430 else
9431 decls_for_scope (stmt, context_die, depth);
9434 /* Generate all of the decls declared within a given scope and (recursively)
9435 all of its sub-blocks. */
9437 static void
9438 decls_for_scope (stmt, context_die, depth)
9439 register tree stmt;
9440 register dw_die_ref context_die;
9441 int depth;
9443 register tree decl;
9444 register tree subblocks;
9446 /* Ignore blocks never really used to make RTL. */
9447 if (stmt == NULL_TREE || ! TREE_USED (stmt))
9448 return;
9450 if (!BLOCK_ABSTRACT (stmt) && depth > 0)
9451 next_block_number++;
9453 /* Output the DIEs to represent all of the data objects and typedefs
9454 declared directly within this block but not within any nested
9455 sub-blocks. Also, nested function and tag DIEs have been
9456 generated with a parent of NULL; fix that up now. */
9457 for (decl = BLOCK_VARS (stmt);
9458 decl != NULL; decl = TREE_CHAIN (decl))
9460 register dw_die_ref die;
9462 if (TREE_CODE (decl) == FUNCTION_DECL)
9463 die = lookup_decl_die (decl);
9464 else if (TREE_CODE (decl) == TYPE_DECL && TYPE_DECL_IS_STUB (decl))
9465 die = lookup_type_die (TREE_TYPE (decl));
9466 else
9467 die = NULL;
9469 if (die != NULL && die->die_parent == NULL)
9470 add_child_die (context_die, die);
9471 else
9472 gen_decl_die (decl, context_die);
9475 /* Output the DIEs to represent all sub-blocks (and the items declared
9476 therein) of this block. */
9477 for (subblocks = BLOCK_SUBBLOCKS (stmt);
9478 subblocks != NULL;
9479 subblocks = BLOCK_CHAIN (subblocks))
9480 gen_block_die (subblocks, context_die, depth + 1);
9483 /* Is this a typedef we can avoid emitting? */
9485 static inline int
9486 is_redundant_typedef (decl)
9487 register tree decl;
9489 if (TYPE_DECL_IS_STUB (decl))
9490 return 1;
9492 if (DECL_ARTIFICIAL (decl)
9493 && DECL_CONTEXT (decl)
9494 && is_tagged_type (DECL_CONTEXT (decl))
9495 && TREE_CODE (TYPE_NAME (DECL_CONTEXT (decl))) == TYPE_DECL
9496 && DECL_NAME (decl) == DECL_NAME (TYPE_NAME (DECL_CONTEXT (decl))))
9497 /* Also ignore the artificial member typedef for the class name. */
9498 return 1;
9500 return 0;
9503 /* Generate Dwarf debug information for a decl described by DECL. */
9505 static void
9506 gen_decl_die (decl, context_die)
9507 register tree decl;
9508 register dw_die_ref context_die;
9510 register tree origin;
9512 /* Make a note of the decl node we are going to be working on. We may need
9513 to give the user the source coordinates of where it appeared in case we
9514 notice (later on) that something about it looks screwy. */
9515 dwarf_last_decl = decl;
9517 if (TREE_CODE (decl) == ERROR_MARK)
9518 return;
9520 /* If this ..._DECL node is marked to be ignored, then ignore it. But don't
9521 ignore a function definition, since that would screw up our count of
9522 blocks, and that in turn will completely screw up the labels we will
9523 reference in subsequent DW_AT_low_pc and DW_AT_high_pc attributes (for
9524 subsequent blocks). */
9525 if (DECL_IGNORED_P (decl) && TREE_CODE (decl) != FUNCTION_DECL)
9526 return;
9528 switch (TREE_CODE (decl))
9530 case CONST_DECL:
9531 /* The individual enumerators of an enum type get output when we output
9532 the Dwarf representation of the relevant enum type itself. */
9533 break;
9535 case FUNCTION_DECL:
9536 /* Don't output any DIEs to represent mere function declarations,
9537 unless they are class members or explicit block externs. */
9538 if (DECL_INITIAL (decl) == NULL_TREE && DECL_CONTEXT (decl) == NULL_TREE
9539 && (current_function_decl == NULL_TREE || ! DECL_ARTIFICIAL (decl)))
9540 break;
9542 if (debug_info_level > DINFO_LEVEL_TERSE)
9544 /* Before we describe the FUNCTION_DECL itself, make sure that we
9545 have described its return type. */
9546 gen_type_die (TREE_TYPE (TREE_TYPE (decl)), context_die);
9548 /* And its containing type. */
9549 origin = decl_class_context (decl);
9550 if (origin != NULL_TREE)
9551 gen_type_die (origin, context_die);
9553 /* And its virtual context. */
9554 if (DECL_VINDEX (decl) != NULL_TREE)
9555 gen_type_die (DECL_CONTEXT (decl), context_die);
9558 /* Now output a DIE to represent the function itself. */
9559 gen_subprogram_die (decl, context_die);
9560 break;
9562 case TYPE_DECL:
9563 /* If we are in terse mode, don't generate any DIEs to represent any
9564 actual typedefs. */
9565 if (debug_info_level <= DINFO_LEVEL_TERSE)
9566 break;
9568 /* In the special case of a TYPE_DECL node representing the
9569 declaration of some type tag, if the given TYPE_DECL is marked as
9570 having been instantiated from some other (original) TYPE_DECL node
9571 (e.g. one which was generated within the original definition of an
9572 inline function) we have to generate a special (abbreviated)
9573 DW_TAG_structure_type, DW_TAG_union_type, or DW_TAG_enumeration_type
9574 DIE here. */
9575 if (TYPE_DECL_IS_STUB (decl) && DECL_ABSTRACT_ORIGIN (decl) != NULL_TREE)
9577 gen_tagged_type_instantiation_die (TREE_TYPE (decl), context_die);
9578 break;
9581 if (is_redundant_typedef (decl))
9582 gen_type_die (TREE_TYPE (decl), context_die);
9583 else
9584 /* Output a DIE to represent the typedef itself. */
9585 gen_typedef_die (decl, context_die);
9586 break;
9588 case LABEL_DECL:
9589 if (debug_info_level >= DINFO_LEVEL_NORMAL)
9590 gen_label_die (decl, context_die);
9591 break;
9593 case VAR_DECL:
9594 /* If we are in terse mode, don't generate any DIEs to represent any
9595 variable declarations or definitions. */
9596 if (debug_info_level <= DINFO_LEVEL_TERSE)
9597 break;
9599 /* Output any DIEs that are needed to specify the type of this data
9600 object. */
9601 gen_type_die (TREE_TYPE (decl), context_die);
9603 /* And its containing type. */
9604 origin = decl_class_context (decl);
9605 if (origin != NULL_TREE)
9606 gen_type_die (origin, context_die);
9608 /* Now output the DIE to represent the data object itself. This gets
9609 complicated because of the possibility that the VAR_DECL really
9610 represents an inlined instance of a formal parameter for an inline
9611 function. */
9612 origin = decl_ultimate_origin (decl);
9613 if (origin != NULL_TREE && TREE_CODE (origin) == PARM_DECL)
9614 gen_formal_parameter_die (decl, context_die);
9615 else
9616 gen_variable_die (decl, context_die);
9617 break;
9619 case FIELD_DECL:
9620 /* Ignore the nameless fields that are used to skip bits, but
9621 handle C++ anonymous unions. */
9622 if (DECL_NAME (decl) != NULL_TREE
9623 || TREE_CODE (TREE_TYPE (decl)) == UNION_TYPE)
9625 gen_type_die (member_declared_type (decl), context_die);
9626 gen_field_die (decl, context_die);
9628 break;
9630 case PARM_DECL:
9631 gen_type_die (TREE_TYPE (decl), context_die);
9632 gen_formal_parameter_die (decl, context_die);
9633 break;
9635 default:
9636 abort ();
9640 /* Write the debugging output for DECL. */
9642 void
9643 dwarf2out_decl (decl)
9644 register tree decl;
9646 register dw_die_ref context_die = comp_unit_die;
9648 if (TREE_CODE (decl) == ERROR_MARK)
9649 return;
9651 /* If this ..._DECL node is marked to be ignored, then ignore it. We gotta
9652 hope that the node in question doesn't represent a function definition.
9653 If it does, then totally ignoring it is bound to screw up our count of
9654 blocks, and that in turn will completely screw up the labels we will
9655 reference in subsequent DW_AT_low_pc and DW_AT_high_pc attributes (for
9656 subsequent blocks). (It's too bad that BLOCK nodes don't carry their
9657 own sequence numbers with them!) */
9658 if (DECL_IGNORED_P (decl))
9660 if (TREE_CODE (decl) == FUNCTION_DECL
9661 && DECL_INITIAL (decl) != NULL)
9662 abort ();
9664 return;
9667 switch (TREE_CODE (decl))
9669 case FUNCTION_DECL:
9670 /* Ignore this FUNCTION_DECL if it refers to a builtin declaration of a
9671 builtin function. Explicit programmer-supplied declarations of
9672 these same functions should NOT be ignored however. */
9673 if (DECL_EXTERNAL (decl) && DECL_FUNCTION_CODE (decl))
9674 return;
9676 /* What we would really like to do here is to filter out all mere
9677 file-scope declarations of file-scope functions which are never
9678 referenced later within this translation unit (and keep all of ones
9679 that *are* referenced later on) but we aren't clairvoyant, so we have
9680 no idea which functions will be referenced in the future (i.e. later
9681 on within the current translation unit). So here we just ignore all
9682 file-scope function declarations which are not also definitions. If
9683 and when the debugger needs to know something about these functions,
9684 it wil have to hunt around and find the DWARF information associated
9685 with the definition of the function. Note that we can't just check
9686 `DECL_EXTERNAL' to find out which FUNCTION_DECL nodes represent
9687 definitions and which ones represent mere declarations. We have to
9688 check `DECL_INITIAL' instead. That's because the C front-end
9689 supports some weird semantics for "extern inline" function
9690 definitions. These can get inlined within the current translation
9691 unit (an thus, we need to generate DWARF info for their abstract
9692 instances so that the DWARF info for the concrete inlined instances
9693 can have something to refer to) but the compiler never generates any
9694 out-of-lines instances of such things (despite the fact that they
9695 *are* definitions). The important point is that the C front-end
9696 marks these "extern inline" functions as DECL_EXTERNAL, but we need
9697 to generate DWARF for them anyway. Note that the C++ front-end also
9698 plays some similar games for inline function definitions appearing
9699 within include files which also contain
9700 `#pragma interface' pragmas. */
9701 if (DECL_INITIAL (decl) == NULL_TREE)
9702 return;
9704 /* If we're a nested function, initially use a parent of NULL; if we're
9705 a plain function, this will be fixed up in decls_for_scope. If
9706 we're a method, it will be ignored, since we already have a DIE. */
9707 if (decl_function_context (decl))
9708 context_die = NULL;
9710 break;
9712 case VAR_DECL:
9713 /* Ignore this VAR_DECL if it refers to a file-scope extern data object
9714 declaration and if the declaration was never even referenced from
9715 within this entire compilation unit. We suppress these DIEs in
9716 order to save space in the .debug section (by eliminating entries
9717 which are probably useless). Note that we must not suppress
9718 block-local extern declarations (whether used or not) because that
9719 would screw-up the debugger's name lookup mechanism and cause it to
9720 miss things which really ought to be in scope at a given point. */
9721 if (DECL_EXTERNAL (decl) && !TREE_USED (decl))
9722 return;
9724 /* If we are in terse mode, don't generate any DIEs to represent any
9725 variable declarations or definitions. */
9726 if (debug_info_level <= DINFO_LEVEL_TERSE)
9727 return;
9728 break;
9730 case TYPE_DECL:
9731 /* Don't bother trying to generate any DIEs to represent any of the
9732 normal built-in types for the language we are compiling. */
9733 if (DECL_SOURCE_LINE (decl) == 0)
9735 /* OK, we need to generate one for `bool' so GDB knows what type
9736 comparisons have. */
9737 if ((get_AT_unsigned (comp_unit_die, DW_AT_language)
9738 == DW_LANG_C_plus_plus)
9739 && TREE_CODE (TREE_TYPE (decl)) == BOOLEAN_TYPE)
9740 modified_type_die (TREE_TYPE (decl), 0, 0, NULL);
9742 return;
9745 /* If we are in terse mode, don't generate any DIEs for types. */
9746 if (debug_info_level <= DINFO_LEVEL_TERSE)
9747 return;
9749 /* If we're a function-scope tag, initially use a parent of NULL;
9750 this will be fixed up in decls_for_scope. */
9751 if (decl_function_context (decl))
9752 context_die = NULL;
9754 break;
9756 default:
9757 return;
9760 gen_decl_die (decl, context_die);
9761 output_pending_types_for_scope (comp_unit_die);
9764 /* Output a marker (i.e. a label) for the beginning of the generated code for
9765 a lexical block. */
9767 void
9768 dwarf2out_begin_block (blocknum)
9769 register unsigned blocknum;
9771 function_section (current_function_decl);
9772 ASM_OUTPUT_INTERNAL_LABEL (asm_out_file, BLOCK_BEGIN_LABEL, blocknum);
9775 /* Output a marker (i.e. a label) for the end of the generated code for a
9776 lexical block. */
9778 void
9779 dwarf2out_end_block (blocknum)
9780 register unsigned blocknum;
9782 function_section (current_function_decl);
9783 ASM_OUTPUT_INTERNAL_LABEL (asm_out_file, BLOCK_END_LABEL, blocknum);
9786 /* Output a marker (i.e. a label) at a point in the assembly code which
9787 corresponds to a given source level label. */
9789 void
9790 dwarf2out_label (insn)
9791 register rtx insn;
9793 char label[MAX_ARTIFICIAL_LABEL_BYTES];
9795 if (debug_info_level >= DINFO_LEVEL_NORMAL)
9797 function_section (current_function_decl);
9798 sprintf (label, INSN_LABEL_FMT, current_funcdef_number);
9799 ASM_OUTPUT_INTERNAL_LABEL (asm_out_file, label,
9800 (unsigned) INSN_UID (insn));
9804 /* Lookup a filename (in the list of filenames that we know about here in
9805 dwarf2out.c) and return its "index". The index of each (known) filename is
9806 just a unique number which is associated with only that one filename.
9807 We need such numbers for the sake of generating labels
9808 (in the .debug_sfnames section) and references to those
9809 files numbers (in the .debug_srcinfo and.debug_macinfo sections).
9810 If the filename given as an argument is not found in our current list,
9811 add it to the list and assign it the next available unique index number.
9812 In order to speed up searches, we remember the index of the filename
9813 was looked up last. This handles the majority of all searches. */
9815 static unsigned
9816 lookup_filename (file_name)
9817 const char *file_name;
9819 static unsigned last_file_lookup_index = 0;
9820 register unsigned i;
9822 /* Check to see if the file name that was searched on the previous call
9823 matches this file name. If so, return the index. */
9824 if (last_file_lookup_index != 0)
9825 if (strcmp (file_name, file_table[last_file_lookup_index]) == 0)
9826 return last_file_lookup_index;
9828 /* Didn't match the previous lookup, search the table */
9829 for (i = 1; i < file_table_in_use; ++i)
9830 if (strcmp (file_name, file_table[i]) == 0)
9832 last_file_lookup_index = i;
9833 return i;
9836 /* Prepare to add a new table entry by making sure there is enough space in
9837 the table to do so. If not, expand the current table. */
9838 if (file_table_in_use == file_table_allocated)
9840 file_table_allocated += FILE_TABLE_INCREMENT;
9841 file_table
9842 = (char **) xrealloc (file_table,
9843 file_table_allocated * sizeof (char *));
9846 /* Add the new entry to the end of the filename table. */
9847 file_table[file_table_in_use] = xstrdup (file_name);
9848 last_file_lookup_index = file_table_in_use++;
9850 return last_file_lookup_index;
9853 /* Output a label to mark the beginning of a source code line entry
9854 and record information relating to this source line, in
9855 'line_info_table' for later output of the .debug_line section. */
9857 void
9858 dwarf2out_line (filename, line)
9859 register const char *filename;
9860 register unsigned line;
9862 if (debug_info_level >= DINFO_LEVEL_NORMAL)
9864 function_section (current_function_decl);
9866 if (DWARF2_ASM_LINE_DEBUG_INFO)
9868 static const char *lastfile;
9870 /* Emit the .file and .loc directives understood by GNU as. */
9871 if (lastfile == 0 || strcmp (filename, lastfile))
9873 fprintf (asm_out_file, "\t.file 0 \"%s\"\n", filename);
9874 lastfile = filename;
9877 fprintf (asm_out_file, "\t.loc 0 %d 0\n", line);
9879 /* Indicate that line number info exists. */
9880 ++line_info_table_in_use;
9882 /* Indicate that multiple line number tables exist. */
9883 if (DECL_SECTION_NAME (current_function_decl))
9884 ++separate_line_info_table_in_use;
9886 else if (DECL_SECTION_NAME (current_function_decl))
9888 register dw_separate_line_info_ref line_info;
9889 ASM_OUTPUT_INTERNAL_LABEL (asm_out_file, SEPARATE_LINE_CODE_LABEL,
9890 separate_line_info_table_in_use);
9891 if (flag_debug_asm)
9892 fprintf (asm_out_file, "\t%s line %d", ASM_COMMENT_START, line);
9893 fputc ('\n', asm_out_file);
9895 /* expand the line info table if necessary */
9896 if (separate_line_info_table_in_use
9897 == separate_line_info_table_allocated)
9899 separate_line_info_table_allocated += LINE_INFO_TABLE_INCREMENT;
9900 separate_line_info_table
9901 = (dw_separate_line_info_ref)
9902 xrealloc (separate_line_info_table,
9903 separate_line_info_table_allocated
9904 * sizeof (dw_separate_line_info_entry));
9907 /* Add the new entry at the end of the line_info_table. */
9908 line_info
9909 = &separate_line_info_table[separate_line_info_table_in_use++];
9910 line_info->dw_file_num = lookup_filename (filename);
9911 line_info->dw_line_num = line;
9912 line_info->function = current_funcdef_number;
9914 else
9916 register dw_line_info_ref line_info;
9918 ASM_OUTPUT_INTERNAL_LABEL (asm_out_file, LINE_CODE_LABEL,
9919 line_info_table_in_use);
9920 if (flag_debug_asm)
9921 fprintf (asm_out_file, "\t%s line %d", ASM_COMMENT_START, line);
9922 fputc ('\n', asm_out_file);
9924 /* Expand the line info table if necessary. */
9925 if (line_info_table_in_use == line_info_table_allocated)
9927 line_info_table_allocated += LINE_INFO_TABLE_INCREMENT;
9928 line_info_table
9929 = (dw_line_info_ref)
9930 xrealloc (line_info_table,
9931 (line_info_table_allocated
9932 * sizeof (dw_line_info_entry)));
9935 /* Add the new entry at the end of the line_info_table. */
9936 line_info = &line_info_table[line_info_table_in_use++];
9937 line_info->dw_file_num = lookup_filename (filename);
9938 line_info->dw_line_num = line;
9943 /* Record the beginning of a new source file, for later output
9944 of the .debug_macinfo section. At present, unimplemented. */
9946 void
9947 dwarf2out_start_source_file (filename)
9948 register const char *filename ATTRIBUTE_UNUSED;
9952 /* Record the end of a source file, for later output
9953 of the .debug_macinfo section. At present, unimplemented. */
9955 void
9956 dwarf2out_end_source_file ()
9960 /* Called from check_newline in c-parse.y. The `buffer' parameter contains
9961 the tail part of the directive line, i.e. the part which is past the
9962 initial whitespace, #, whitespace, directive-name, whitespace part. */
9964 void
9965 dwarf2out_define (lineno, buffer)
9966 register unsigned lineno ATTRIBUTE_UNUSED;
9967 register const char *buffer ATTRIBUTE_UNUSED;
9969 static int initialized = 0;
9970 if (!initialized)
9972 dwarf2out_start_source_file (primary_filename);
9973 initialized = 1;
9977 /* Called from check_newline in c-parse.y. The `buffer' parameter contains
9978 the tail part of the directive line, i.e. the part which is past the
9979 initial whitespace, #, whitespace, directive-name, whitespace part. */
9981 void
9982 dwarf2out_undef (lineno, buffer)
9983 register unsigned lineno ATTRIBUTE_UNUSED;
9984 register const char *buffer ATTRIBUTE_UNUSED;
9988 /* Set up for Dwarf output at the start of compilation. */
9990 void
9991 dwarf2out_init (asm_out_file, main_input_filename)
9992 register FILE *asm_out_file;
9993 register char *main_input_filename;
9995 /* Remember the name of the primary input file. */
9996 primary_filename = main_input_filename;
9998 /* Allocate the initial hunk of the file_table. */
9999 file_table = (char **) xcalloc (FILE_TABLE_INCREMENT, sizeof (char *));
10000 file_table_allocated = FILE_TABLE_INCREMENT;
10002 /* Skip the first entry - file numbers begin at 1. */
10003 file_table_in_use = 1;
10005 /* Allocate the initial hunk of the decl_die_table. */
10006 decl_die_table
10007 = (dw_die_ref *) xcalloc (DECL_DIE_TABLE_INCREMENT, sizeof (dw_die_ref));
10008 decl_die_table_allocated = DECL_DIE_TABLE_INCREMENT;
10009 decl_die_table_in_use = 0;
10011 /* Allocate the initial hunk of the decl_scope_table. */
10012 decl_scope_table
10013 = (decl_scope_node *) xcalloc (DECL_SCOPE_TABLE_INCREMENT,
10014 sizeof (decl_scope_node));
10015 decl_scope_table_allocated = DECL_SCOPE_TABLE_INCREMENT;
10016 decl_scope_depth = 0;
10018 /* Allocate the initial hunk of the abbrev_die_table. */
10019 abbrev_die_table
10020 = (dw_die_ref *) xcalloc (ABBREV_DIE_TABLE_INCREMENT,
10021 sizeof (dw_die_ref));
10022 abbrev_die_table_allocated = ABBREV_DIE_TABLE_INCREMENT;
10023 /* Zero-th entry is allocated, but unused */
10024 abbrev_die_table_in_use = 1;
10026 /* Allocate the initial hunk of the line_info_table. */
10027 line_info_table
10028 = (dw_line_info_ref) xcalloc (LINE_INFO_TABLE_INCREMENT,
10029 sizeof (dw_line_info_entry));
10030 line_info_table_allocated = LINE_INFO_TABLE_INCREMENT;
10031 /* Zero-th entry is allocated, but unused */
10032 line_info_table_in_use = 1;
10034 /* Generate the initial DIE for the .debug section. Note that the (string)
10035 value given in the DW_AT_name attribute of the DW_TAG_compile_unit DIE
10036 will (typically) be a relative pathname and that this pathname should be
10037 taken as being relative to the directory from which the compiler was
10038 invoked when the given (base) source file was compiled. */
10039 gen_compile_unit_die (main_input_filename);
10041 ASM_GENERATE_INTERNAL_LABEL (text_end_label, TEXT_END_LABEL, 0);
10042 ASM_GENERATE_INTERNAL_LABEL (abbrev_section_label, ABBREV_SECTION_LABEL, 0);
10043 if (DWARF2_GENERATE_TEXT_SECTION_LABEL)
10044 ASM_GENERATE_INTERNAL_LABEL (text_section_label, TEXT_SECTION_LABEL, 0);
10045 else
10046 strcpy (text_section_label, stripattributes (TEXT_SECTION));
10047 ASM_GENERATE_INTERNAL_LABEL (debug_info_section_label,
10048 DEBUG_INFO_SECTION_LABEL, 0);
10049 ASM_GENERATE_INTERNAL_LABEL (debug_line_section_label,
10050 DEBUG_LINE_SECTION_LABEL, 0);
10052 ASM_OUTPUT_SECTION (asm_out_file, ABBREV_SECTION);
10053 ASM_OUTPUT_LABEL (asm_out_file, abbrev_section_label);
10054 ASM_OUTPUT_SECTION (asm_out_file, TEXT_SECTION);
10055 if (DWARF2_GENERATE_TEXT_SECTION_LABEL)
10056 ASM_OUTPUT_LABEL (asm_out_file, text_section_label);
10057 ASM_OUTPUT_SECTION (asm_out_file, DEBUG_INFO_SECTION);
10058 ASM_OUTPUT_LABEL (asm_out_file, debug_info_section_label);
10059 ASM_OUTPUT_SECTION (asm_out_file, DEBUG_LINE_SECTION);
10060 ASM_OUTPUT_LABEL (asm_out_file, debug_line_section_label);
10063 /* Output stuff that dwarf requires at the end of every file,
10064 and generate the DWARF-2 debugging info. */
10066 void
10067 dwarf2out_finish ()
10069 limbo_die_node *node, *next_node;
10070 dw_die_ref die;
10071 dw_attr_ref a;
10073 /* Traverse the limbo die list, and add parent/child links. The only
10074 dies without parents that should be here are concrete instances of
10075 inline functions, and the comp_unit_die. We can ignore the comp_unit_die.
10076 For concrete instances, we can get the parent die from the abstract
10077 instance. */
10078 for (node = limbo_die_list; node; node = next_node)
10080 next_node = node->next;
10081 die = node->die;
10083 if (die->die_parent == NULL)
10085 a = get_AT (die, DW_AT_abstract_origin);
10086 if (a)
10087 add_child_die (a->dw_attr_val.v.val_die_ref->die_parent, die);
10088 else if (die == comp_unit_die)
10090 else
10091 abort ();
10093 free (node);
10096 /* Walk through the list of incomplete types again, trying once more to
10097 emit full debugging info for them. */
10098 retry_incomplete_types ();
10100 /* Traverse the DIE tree and add sibling attributes to those DIE's
10101 that have children. */
10102 add_sibling_attributes (comp_unit_die);
10104 /* Output a terminator label for the .text section. */
10105 fputc ('\n', asm_out_file);
10106 ASM_OUTPUT_SECTION (asm_out_file, TEXT_SECTION);
10107 ASM_OUTPUT_INTERNAL_LABEL (asm_out_file, TEXT_END_LABEL, 0);
10109 #if 0
10110 /* Output a terminator label for the .data section. */
10111 fputc ('\n', asm_out_file);
10112 ASM_OUTPUT_SECTION (asm_out_file, DATA_SECTION);
10113 ASM_OUTPUT_INTERNAL_LABEL (asm_out_file, DATA_END_LABEL, 0);
10115 /* Output a terminator label for the .bss section. */
10116 fputc ('\n', asm_out_file);
10117 ASM_OUTPUT_SECTION (asm_out_file, BSS_SECTION);
10118 ASM_OUTPUT_INTERNAL_LABEL (asm_out_file, BSS_END_LABEL, 0);
10119 #endif
10121 /* Output the source line correspondence table. */
10122 if (line_info_table_in_use > 1 || separate_line_info_table_in_use)
10124 if (! DWARF2_ASM_LINE_DEBUG_INFO)
10126 fputc ('\n', asm_out_file);
10127 ASM_OUTPUT_SECTION (asm_out_file, DEBUG_LINE_SECTION);
10128 output_line_info ();
10131 /* We can only use the low/high_pc attributes if all of the code
10132 was in .text. */
10133 if (separate_line_info_table_in_use == 0)
10135 add_AT_lbl_id (comp_unit_die, DW_AT_low_pc, text_section_label);
10136 add_AT_lbl_id (comp_unit_die, DW_AT_high_pc, text_end_label);
10139 add_AT_lbl_offset (comp_unit_die, DW_AT_stmt_list,
10140 debug_line_section_label);
10143 /* Output the abbreviation table. */
10144 fputc ('\n', asm_out_file);
10145 ASM_OUTPUT_SECTION (asm_out_file, ABBREV_SECTION);
10146 build_abbrev_table (comp_unit_die);
10147 output_abbrev_section ();
10149 /* Initialize the beginning DIE offset - and calculate sizes/offsets. */
10150 next_die_offset = DWARF_COMPILE_UNIT_HEADER_SIZE;
10151 calc_die_sizes (comp_unit_die);
10153 /* Output debugging information. */
10154 fputc ('\n', asm_out_file);
10155 ASM_OUTPUT_SECTION (asm_out_file, DEBUG_INFO_SECTION);
10156 output_compilation_unit_header ();
10157 output_die (comp_unit_die);
10159 if (pubname_table_in_use)
10161 /* Output public names table. */
10162 fputc ('\n', asm_out_file);
10163 ASM_OUTPUT_SECTION (asm_out_file, PUBNAMES_SECTION);
10164 output_pubnames ();
10167 if (fde_table_in_use)
10169 /* Output the address range information. */
10170 fputc ('\n', asm_out_file);
10171 ASM_OUTPUT_SECTION (asm_out_file, ARANGES_SECTION);
10172 output_aranges ();
10175 #endif /* DWARF2_DEBUGGING_INFO */