* Makefile.in (remote.o): Update.
[deliverable/binutils-gdb.git] / gdb / printcmd.c
1 /* Print values for GNU debugger GDB.
2
3 Copyright (C) 1986, 1987, 1988, 1989, 1990, 1991, 1992, 1993, 1994,
4 1995, 1996, 1997, 1998, 1999, 2000, 2001, 2002, 2003, 2004, 2005, 2006
5 Free Software Foundation, Inc.
6
7 This file is part of GDB.
8
9 This program 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 of the License, or
12 (at your option) any later version.
13
14 This program 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.
18
19 You should have received a copy of the GNU General Public License
20 along with this program; if not, write to the Free Software
21 Foundation, Inc., 51 Franklin Street, Fifth Floor,
22 Boston, MA 02110-1301, USA. */
23
24 #include "defs.h"
25 #include "gdb_string.h"
26 #include "frame.h"
27 #include "symtab.h"
28 #include "gdbtypes.h"
29 #include "value.h"
30 #include "language.h"
31 #include "expression.h"
32 #include "gdbcore.h"
33 #include "gdbcmd.h"
34 #include "target.h"
35 #include "breakpoint.h"
36 #include "demangle.h"
37 #include "valprint.h"
38 #include "annotate.h"
39 #include "symfile.h" /* for overlay functions */
40 #include "objfiles.h" /* ditto */
41 #include "completer.h" /* for completion functions */
42 #include "ui-out.h"
43 #include "gdb_assert.h"
44 #include "block.h"
45 #include "disasm.h"
46
47 #ifdef TUI
48 #include "tui/tui.h" /* For tui_active et.al. */
49 #endif
50
51 extern int asm_demangle; /* Whether to demangle syms in asm printouts */
52 extern int addressprint; /* Whether to print hex addresses in HLL " */
53
54 struct format_data
55 {
56 int count;
57 char format;
58 char size;
59 };
60
61 /* Last specified output format. */
62
63 static char last_format = 'x';
64
65 /* Last specified examination size. 'b', 'h', 'w' or `q'. */
66
67 static char last_size = 'w';
68
69 /* Default address to examine next. */
70
71 static CORE_ADDR next_address;
72
73 /* Last address examined. */
74
75 static CORE_ADDR last_examine_address;
76
77 /* Contents of last address examined.
78 This is not valid past the end of the `x' command! */
79
80 static struct value *last_examine_value;
81
82 /* Largest offset between a symbolic value and an address, that will be
83 printed as `0x1234 <symbol+offset>'. */
84
85 static unsigned int max_symbolic_offset = UINT_MAX;
86 static void
87 show_max_symbolic_offset (struct ui_file *file, int from_tty,
88 struct cmd_list_element *c, const char *value)
89 {
90 fprintf_filtered (file, _("\
91 The largest offset that will be printed in <symbol+1234> form is %s.\n"),
92 value);
93 }
94
95 /* Append the source filename and linenumber of the symbol when
96 printing a symbolic value as `<symbol at filename:linenum>' if set. */
97 static int print_symbol_filename = 0;
98 static void
99 show_print_symbol_filename (struct ui_file *file, int from_tty,
100 struct cmd_list_element *c, const char *value)
101 {
102 fprintf_filtered (file, _("\
103 Printing of source filename and line number with <symbol> is %s.\n"),
104 value);
105 }
106
107 /* Number of auto-display expression currently being displayed.
108 So that we can disable it if we get an error or a signal within it.
109 -1 when not doing one. */
110
111 int current_display_number;
112
113 /* Flag to low-level print routines that this value is being printed
114 in an epoch window. We'd like to pass this as a parameter, but
115 every routine would need to take it. Perhaps we can encapsulate
116 this in the I/O stream once we have GNU stdio. */
117
118 int inspect_it = 0;
119
120 struct display
121 {
122 /* Chain link to next auto-display item. */
123 struct display *next;
124 /* Expression to be evaluated and displayed. */
125 struct expression *exp;
126 /* Item number of this auto-display item. */
127 int number;
128 /* Display format specified. */
129 struct format_data format;
130 /* Innermost block required by this expression when evaluated */
131 struct block *block;
132 /* Status of this display (enabled or disabled) */
133 int enabled_p;
134 };
135
136 /* Chain of expressions whose values should be displayed
137 automatically each time the program stops. */
138
139 static struct display *display_chain;
140
141 static int display_number;
142
143 /* Prototypes for exported functions. */
144
145 void output_command (char *, int);
146
147 void _initialize_printcmd (void);
148
149 /* Prototypes for local functions. */
150
151 static void delete_display (int);
152
153 static void enable_display (char *, int);
154
155 static void disable_display_command (char *, int);
156
157 static void printf_command (char *, int);
158
159 static void display_info (char *, int);
160
161 static void do_one_display (struct display *);
162
163 static void undisplay_command (char *, int);
164
165 static void free_display (struct display *);
166
167 static void display_command (char *, int);
168
169 void x_command (char *, int);
170
171 static void address_info (char *, int);
172
173 static void set_command (char *, int);
174
175 static void call_command (char *, int);
176
177 static void inspect_command (char *, int);
178
179 static void print_command (char *, int);
180
181 static void print_command_1 (char *, int, int);
182
183 static void validate_format (struct format_data, char *);
184
185 static void print_formatted (struct value *, int, int, struct ui_file *);
186
187 static struct format_data decode_format (char **, int, int);
188
189 static void sym_info (char *, int);
190 \f
191
192 /* Decode a format specification. *STRING_PTR should point to it.
193 OFORMAT and OSIZE are used as defaults for the format and size
194 if none are given in the format specification.
195 If OSIZE is zero, then the size field of the returned value
196 should be set only if a size is explicitly specified by the
197 user.
198 The structure returned describes all the data
199 found in the specification. In addition, *STRING_PTR is advanced
200 past the specification and past all whitespace following it. */
201
202 static struct format_data
203 decode_format (char **string_ptr, int oformat, int osize)
204 {
205 struct format_data val;
206 char *p = *string_ptr;
207
208 val.format = '?';
209 val.size = '?';
210 val.count = 1;
211
212 if (*p >= '0' && *p <= '9')
213 val.count = atoi (p);
214 while (*p >= '0' && *p <= '9')
215 p++;
216
217 /* Now process size or format letters that follow. */
218
219 while (1)
220 {
221 if (*p == 'b' || *p == 'h' || *p == 'w' || *p == 'g')
222 val.size = *p++;
223 else if (*p >= 'a' && *p <= 'z')
224 val.format = *p++;
225 else
226 break;
227 }
228
229 while (*p == ' ' || *p == '\t')
230 p++;
231 *string_ptr = p;
232
233 /* Set defaults for format and size if not specified. */
234 if (val.format == '?')
235 {
236 if (val.size == '?')
237 {
238 /* Neither has been specified. */
239 val.format = oformat;
240 val.size = osize;
241 }
242 else
243 /* If a size is specified, any format makes a reasonable
244 default except 'i'. */
245 val.format = oformat == 'i' ? 'x' : oformat;
246 }
247 else if (val.size == '?')
248 switch (val.format)
249 {
250 case 'a':
251 case 's':
252 /* Pick the appropriate size for an address. */
253 if (TARGET_PTR_BIT == 64)
254 val.size = osize ? 'g' : osize;
255 else if (TARGET_PTR_BIT == 32)
256 val.size = osize ? 'w' : osize;
257 else if (TARGET_PTR_BIT == 16)
258 val.size = osize ? 'h' : osize;
259 else
260 /* Bad value for TARGET_PTR_BIT */
261 internal_error (__FILE__, __LINE__, _("failed internal consistency check"));
262 break;
263 case 'f':
264 /* Floating point has to be word or giantword. */
265 if (osize == 'w' || osize == 'g')
266 val.size = osize;
267 else
268 /* Default it to giantword if the last used size is not
269 appropriate. */
270 val.size = osize ? 'g' : osize;
271 break;
272 case 'c':
273 /* Characters default to one byte. */
274 val.size = osize ? 'b' : osize;
275 break;
276 default:
277 /* The default is the size most recently specified. */
278 val.size = osize;
279 }
280
281 return val;
282 }
283 \f
284 /* Print value VAL on stream according to FORMAT, a letter or 0.
285 Do not end with a newline.
286 0 means print VAL according to its own type.
287 SIZE is the letter for the size of datum being printed.
288 This is used to pad hex numbers so they line up. */
289
290 static void
291 print_formatted (struct value *val, int format, int size,
292 struct ui_file *stream)
293 {
294 struct type *type = check_typedef (value_type (val));
295 int len = TYPE_LENGTH (type);
296
297 if (VALUE_LVAL (val) == lval_memory)
298 {
299 next_address = VALUE_ADDRESS (val) + len;
300 }
301
302 switch (format)
303 {
304 case 's':
305 /* FIXME: Need to handle wchar_t's here... */
306 next_address = VALUE_ADDRESS (val)
307 + val_print_string (VALUE_ADDRESS (val), -1, 1, stream);
308 break;
309
310 case 'i':
311 /* The old comment says
312 "Force output out, print_insn not using _filtered".
313 I'm not completely sure what that means, I suspect most print_insn
314 now do use _filtered, so I guess it's obsolete.
315 --Yes, it does filter now, and so this is obsolete. -JB */
316
317 /* We often wrap here if there are long symbolic names. */
318 wrap_here (" ");
319 next_address = VALUE_ADDRESS (val)
320 + gdb_print_insn (VALUE_ADDRESS (val), stream);
321 break;
322
323 default:
324 if (format == 0
325 || TYPE_CODE (type) == TYPE_CODE_ARRAY
326 || TYPE_CODE (type) == TYPE_CODE_STRING
327 || TYPE_CODE (type) == TYPE_CODE_STRUCT
328 || TYPE_CODE (type) == TYPE_CODE_UNION
329 || TYPE_CODE (type) == TYPE_CODE_NAMESPACE)
330 /* If format is 0, use the 'natural' format for
331 * that type of value. If the type is non-scalar,
332 * we have to use language rules to print it as
333 * a series of scalars.
334 */
335 value_print (val, stream, format, Val_pretty_default);
336 else
337 /* User specified format, so don't look to the
338 * the type to tell us what to do.
339 */
340 print_scalar_formatted (value_contents (val), type,
341 format, size, stream);
342 }
343 }
344
345 /* Print a scalar of data of type TYPE, pointed to in GDB by VALADDR,
346 according to letters FORMAT and SIZE on STREAM.
347 FORMAT may not be zero. Formats s and i are not supported at this level.
348
349 This is how the elements of an array or structure are printed
350 with a format. */
351
352 void
353 print_scalar_formatted (const void *valaddr, struct type *type,
354 int format, int size, struct ui_file *stream)
355 {
356 LONGEST val_long = 0;
357 unsigned int len = TYPE_LENGTH (type);
358
359 if (len > sizeof(LONGEST) &&
360 (TYPE_CODE (type) == TYPE_CODE_INT
361 || TYPE_CODE (type) == TYPE_CODE_ENUM))
362 {
363 switch (format)
364 {
365 case 'o':
366 print_octal_chars (stream, valaddr, len);
367 return;
368 case 'u':
369 case 'd':
370 print_decimal_chars (stream, valaddr, len);
371 return;
372 case 't':
373 print_binary_chars (stream, valaddr, len);
374 return;
375 case 'x':
376 print_hex_chars (stream, valaddr, len);
377 return;
378 case 'c':
379 print_char_chars (stream, valaddr, len);
380 return;
381 default:
382 break;
383 };
384 }
385
386 if (format != 'f')
387 val_long = unpack_long (type, valaddr);
388
389 /* If the value is a pointer, and pointers and addresses are not the
390 same, then at this point, the value's length (in target bytes) is
391 TARGET_ADDR_BIT/TARGET_CHAR_BIT, not TYPE_LENGTH (type). */
392 if (TYPE_CODE (type) == TYPE_CODE_PTR)
393 len = TARGET_ADDR_BIT / TARGET_CHAR_BIT;
394
395 /* If we are printing it as unsigned, truncate it in case it is actually
396 a negative signed value (e.g. "print/u (short)-1" should print 65535
397 (if shorts are 16 bits) instead of 4294967295). */
398 if (format != 'd')
399 {
400 if (len < sizeof (LONGEST))
401 val_long &= ((LONGEST) 1 << HOST_CHAR_BIT * len) - 1;
402 }
403
404 switch (format)
405 {
406 case 'x':
407 if (!size)
408 {
409 /* no size specified, like in print. Print varying # of digits. */
410 print_longest (stream, 'x', 1, val_long);
411 }
412 else
413 switch (size)
414 {
415 case 'b':
416 case 'h':
417 case 'w':
418 case 'g':
419 print_longest (stream, size, 1, val_long);
420 break;
421 default:
422 error (_("Undefined output size \"%c\"."), size);
423 }
424 break;
425
426 case 'd':
427 print_longest (stream, 'd', 1, val_long);
428 break;
429
430 case 'u':
431 print_longest (stream, 'u', 0, val_long);
432 break;
433
434 case 'o':
435 if (val_long)
436 print_longest (stream, 'o', 1, val_long);
437 else
438 fprintf_filtered (stream, "0");
439 break;
440
441 case 'a':
442 {
443 CORE_ADDR addr = unpack_pointer (type, valaddr);
444 print_address (addr, stream);
445 }
446 break;
447
448 case 'c':
449 value_print (value_from_longest (builtin_type_true_char, val_long),
450 stream, 0, Val_pretty_default);
451 break;
452
453 case 'f':
454 if (len == TYPE_LENGTH (builtin_type_float))
455 type = builtin_type_float;
456 else if (len == TYPE_LENGTH (builtin_type_double))
457 type = builtin_type_double;
458 else if (len == TYPE_LENGTH (builtin_type_long_double))
459 type = builtin_type_long_double;
460 print_floating (valaddr, type, stream);
461 break;
462
463 case 0:
464 internal_error (__FILE__, __LINE__, _("failed internal consistency check"));
465
466 case 't':
467 /* Binary; 't' stands for "two". */
468 {
469 char bits[8 * (sizeof val_long) + 1];
470 char buf[8 * (sizeof val_long) + 32];
471 char *cp = bits;
472 int width;
473
474 if (!size)
475 width = 8 * (sizeof val_long);
476 else
477 switch (size)
478 {
479 case 'b':
480 width = 8;
481 break;
482 case 'h':
483 width = 16;
484 break;
485 case 'w':
486 width = 32;
487 break;
488 case 'g':
489 width = 64;
490 break;
491 default:
492 error (_("Undefined output size \"%c\"."), size);
493 }
494
495 bits[width] = '\0';
496 while (width-- > 0)
497 {
498 bits[width] = (val_long & 1) ? '1' : '0';
499 val_long >>= 1;
500 }
501 if (!size)
502 {
503 while (*cp && *cp == '0')
504 cp++;
505 if (*cp == '\0')
506 cp--;
507 }
508 strcpy (buf, cp);
509 fputs_filtered (buf, stream);
510 }
511 break;
512
513 default:
514 error (_("Undefined output format \"%c\"."), format);
515 }
516 }
517
518 /* Specify default address for `x' command.
519 `info lines' uses this. */
520
521 void
522 set_next_address (CORE_ADDR addr)
523 {
524 next_address = addr;
525
526 /* Make address available to the user as $_. */
527 set_internalvar (lookup_internalvar ("_"),
528 value_from_pointer (lookup_pointer_type (builtin_type_void),
529 addr));
530 }
531
532 /* Optionally print address ADDR symbolically as <SYMBOL+OFFSET> on STREAM,
533 after LEADIN. Print nothing if no symbolic name is found nearby.
534 Optionally also print source file and line number, if available.
535 DO_DEMANGLE controls whether to print a symbol in its native "raw" form,
536 or to interpret it as a possible C++ name and convert it back to source
537 form. However note that DO_DEMANGLE can be overridden by the specific
538 settings of the demangle and asm_demangle variables. */
539
540 void
541 print_address_symbolic (CORE_ADDR addr, struct ui_file *stream, int do_demangle,
542 char *leadin)
543 {
544 char *name = NULL;
545 char *filename = NULL;
546 int unmapped = 0;
547 int offset = 0;
548 int line = 0;
549
550 /* throw away both name and filename */
551 struct cleanup *cleanup_chain = make_cleanup (free_current_contents, &name);
552 make_cleanup (free_current_contents, &filename);
553
554 if (build_address_symbolic (addr, do_demangle, &name, &offset, &filename, &line, &unmapped))
555 {
556 do_cleanups (cleanup_chain);
557 return;
558 }
559
560 fputs_filtered (leadin, stream);
561 if (unmapped)
562 fputs_filtered ("<*", stream);
563 else
564 fputs_filtered ("<", stream);
565 fputs_filtered (name, stream);
566 if (offset != 0)
567 fprintf_filtered (stream, "+%u", (unsigned int) offset);
568
569 /* Append source filename and line number if desired. Give specific
570 line # of this addr, if we have it; else line # of the nearest symbol. */
571 if (print_symbol_filename && filename != NULL)
572 {
573 if (line != -1)
574 fprintf_filtered (stream, " at %s:%d", filename, line);
575 else
576 fprintf_filtered (stream, " in %s", filename);
577 }
578 if (unmapped)
579 fputs_filtered ("*>", stream);
580 else
581 fputs_filtered (">", stream);
582
583 do_cleanups (cleanup_chain);
584 }
585
586 /* Given an address ADDR return all the elements needed to print the
587 address in a symbolic form. NAME can be mangled or not depending
588 on DO_DEMANGLE (and also on the asm_demangle global variable,
589 manipulated via ''set print asm-demangle''). Return 0 in case of
590 success, when all the info in the OUT paramters is valid. Return 1
591 otherwise. */
592 int
593 build_address_symbolic (CORE_ADDR addr, /* IN */
594 int do_demangle, /* IN */
595 char **name, /* OUT */
596 int *offset, /* OUT */
597 char **filename, /* OUT */
598 int *line, /* OUT */
599 int *unmapped) /* OUT */
600 {
601 struct minimal_symbol *msymbol;
602 struct symbol *symbol;
603 struct symtab *symtab = 0;
604 CORE_ADDR name_location = 0;
605 asection *section = 0;
606 char *name_temp = "";
607
608 /* Let's say it is unmapped. */
609 *unmapped = 0;
610
611 /* Determine if the address is in an overlay, and whether it is
612 mapped. */
613 if (overlay_debugging)
614 {
615 section = find_pc_overlay (addr);
616 if (pc_in_unmapped_range (addr, section))
617 {
618 *unmapped = 1;
619 addr = overlay_mapped_address (addr, section);
620 }
621 }
622
623 /* First try to find the address in the symbol table, then
624 in the minsyms. Take the closest one. */
625
626 /* This is defective in the sense that it only finds text symbols. So
627 really this is kind of pointless--we should make sure that the
628 minimal symbols have everything we need (by changing that we could
629 save some memory, but for many debug format--ELF/DWARF or
630 anything/stabs--it would be inconvenient to eliminate those minimal
631 symbols anyway). */
632 msymbol = lookup_minimal_symbol_by_pc_section (addr, section);
633 symbol = find_pc_sect_function (addr, section);
634
635 if (symbol)
636 {
637 name_location = BLOCK_START (SYMBOL_BLOCK_VALUE (symbol));
638 if (do_demangle || asm_demangle)
639 name_temp = SYMBOL_PRINT_NAME (symbol);
640 else
641 name_temp = DEPRECATED_SYMBOL_NAME (symbol);
642 }
643
644 if (msymbol != NULL)
645 {
646 if (SYMBOL_VALUE_ADDRESS (msymbol) > name_location || symbol == NULL)
647 {
648 /* The msymbol is closer to the address than the symbol;
649 use the msymbol instead. */
650 symbol = 0;
651 symtab = 0;
652 name_location = SYMBOL_VALUE_ADDRESS (msymbol);
653 if (do_demangle || asm_demangle)
654 name_temp = SYMBOL_PRINT_NAME (msymbol);
655 else
656 name_temp = DEPRECATED_SYMBOL_NAME (msymbol);
657 }
658 }
659 if (symbol == NULL && msymbol == NULL)
660 return 1;
661
662 /* If the nearest symbol is too far away, don't print anything symbolic. */
663
664 /* For when CORE_ADDR is larger than unsigned int, we do math in
665 CORE_ADDR. But when we detect unsigned wraparound in the
666 CORE_ADDR math, we ignore this test and print the offset,
667 because addr+max_symbolic_offset has wrapped through the end
668 of the address space back to the beginning, giving bogus comparison. */
669 if (addr > name_location + max_symbolic_offset
670 && name_location + max_symbolic_offset > name_location)
671 return 1;
672
673 *offset = addr - name_location;
674
675 *name = xstrdup (name_temp);
676
677 if (print_symbol_filename)
678 {
679 struct symtab_and_line sal;
680
681 sal = find_pc_sect_line (addr, section, 0);
682
683 if (sal.symtab)
684 {
685 *filename = xstrdup (sal.symtab->filename);
686 *line = sal.line;
687 }
688 else if (symtab && symbol && symbol->line)
689 {
690 *filename = xstrdup (symtab->filename);
691 *line = symbol->line;
692 }
693 else if (symtab)
694 {
695 *filename = xstrdup (symtab->filename);
696 *line = -1;
697 }
698 }
699 return 0;
700 }
701
702 /* Print address ADDR on STREAM. USE_LOCAL means the same thing as for
703 print_longest. */
704 void
705 deprecated_print_address_numeric (CORE_ADDR addr, int use_local,
706 struct ui_file *stream)
707 {
708 if (use_local)
709 fputs_filtered (paddress (addr), stream);
710 else
711 {
712 int addr_bit = TARGET_ADDR_BIT;
713
714 if (addr_bit < (sizeof (CORE_ADDR) * HOST_CHAR_BIT))
715 addr &= ((CORE_ADDR) 1 << addr_bit) - 1;
716 print_longest (stream, 'x', 0, (ULONGEST) addr);
717 }
718 }
719
720 /* Print address ADDR symbolically on STREAM.
721 First print it as a number. Then perhaps print
722 <SYMBOL + OFFSET> after the number. */
723
724 void
725 print_address (CORE_ADDR addr, struct ui_file *stream)
726 {
727 deprecated_print_address_numeric (addr, 1, stream);
728 print_address_symbolic (addr, stream, asm_demangle, " ");
729 }
730
731 /* Print address ADDR symbolically on STREAM. Parameter DEMANGLE
732 controls whether to print the symbolic name "raw" or demangled.
733 Global setting "addressprint" controls whether to print hex address
734 or not. */
735
736 void
737 print_address_demangle (CORE_ADDR addr, struct ui_file *stream, int do_demangle)
738 {
739 if (addr == 0)
740 {
741 fprintf_filtered (stream, "0");
742 }
743 else if (addressprint)
744 {
745 deprecated_print_address_numeric (addr, 1, stream);
746 print_address_symbolic (addr, stream, do_demangle, " ");
747 }
748 else
749 {
750 print_address_symbolic (addr, stream, do_demangle, "");
751 }
752 }
753 \f
754
755 /* These are the types that $__ will get after an examine command of one
756 of these sizes. */
757
758 static struct type *examine_i_type;
759
760 static struct type *examine_b_type;
761 static struct type *examine_h_type;
762 static struct type *examine_w_type;
763 static struct type *examine_g_type;
764
765 /* Examine data at address ADDR in format FMT.
766 Fetch it from memory and print on gdb_stdout. */
767
768 static void
769 do_examine (struct format_data fmt, CORE_ADDR addr)
770 {
771 char format = 0;
772 char size;
773 int count = 1;
774 struct type *val_type = NULL;
775 int i;
776 int maxelts;
777
778 format = fmt.format;
779 size = fmt.size;
780 count = fmt.count;
781 next_address = addr;
782
783 /* String or instruction format implies fetch single bytes
784 regardless of the specified size. */
785 if (format == 's' || format == 'i')
786 size = 'b';
787
788 if (format == 'i')
789 val_type = examine_i_type;
790 else if (size == 'b')
791 val_type = examine_b_type;
792 else if (size == 'h')
793 val_type = examine_h_type;
794 else if (size == 'w')
795 val_type = examine_w_type;
796 else if (size == 'g')
797 val_type = examine_g_type;
798
799 maxelts = 8;
800 if (size == 'w')
801 maxelts = 4;
802 if (size == 'g')
803 maxelts = 2;
804 if (format == 's' || format == 'i')
805 maxelts = 1;
806
807 /* Print as many objects as specified in COUNT, at most maxelts per line,
808 with the address of the next one at the start of each line. */
809
810 while (count > 0)
811 {
812 QUIT;
813 print_address (next_address, gdb_stdout);
814 printf_filtered (":");
815 for (i = maxelts;
816 i > 0 && count > 0;
817 i--, count--)
818 {
819 printf_filtered ("\t");
820 /* Note that print_formatted sets next_address for the next
821 object. */
822 last_examine_address = next_address;
823
824 if (last_examine_value)
825 value_free (last_examine_value);
826
827 /* The value to be displayed is not fetched greedily.
828 Instead, to avoid the posibility of a fetched value not
829 being used, its retreval is delayed until the print code
830 uses it. When examining an instruction stream, the
831 disassembler will perform its own memory fetch using just
832 the address stored in LAST_EXAMINE_VALUE. FIXME: Should
833 the disassembler be modified so that LAST_EXAMINE_VALUE
834 is left with the byte sequence from the last complete
835 instruction fetched from memory? */
836 last_examine_value = value_at_lazy (val_type, next_address);
837
838 if (last_examine_value)
839 release_value (last_examine_value);
840
841 print_formatted (last_examine_value, format, size, gdb_stdout);
842 }
843 printf_filtered ("\n");
844 gdb_flush (gdb_stdout);
845 }
846 }
847 \f
848 static void
849 validate_format (struct format_data fmt, char *cmdname)
850 {
851 if (fmt.size != 0)
852 error (_("Size letters are meaningless in \"%s\" command."), cmdname);
853 if (fmt.count != 1)
854 error (_("Item count other than 1 is meaningless in \"%s\" command."),
855 cmdname);
856 if (fmt.format == 'i' || fmt.format == 's')
857 error (_("Format letter \"%c\" is meaningless in \"%s\" command."),
858 fmt.format, cmdname);
859 }
860
861 /* Evaluate string EXP as an expression in the current language and
862 print the resulting value. EXP may contain a format specifier as the
863 first argument ("/x myvar" for example, to print myvar in hex).
864 */
865
866 static void
867 print_command_1 (char *exp, int inspect, int voidprint)
868 {
869 struct expression *expr;
870 struct cleanup *old_chain = 0;
871 char format = 0;
872 struct value *val;
873 struct format_data fmt;
874 int cleanup = 0;
875
876 /* Pass inspect flag to the rest of the print routines in a global (sigh). */
877 inspect_it = inspect;
878
879 if (exp && *exp == '/')
880 {
881 exp++;
882 fmt = decode_format (&exp, last_format, 0);
883 validate_format (fmt, "print");
884 last_format = format = fmt.format;
885 }
886 else
887 {
888 fmt.count = 1;
889 fmt.format = 0;
890 fmt.size = 0;
891 }
892
893 if (exp && *exp)
894 {
895 struct type *type;
896 expr = parse_expression (exp);
897 old_chain = make_cleanup (free_current_contents, &expr);
898 cleanup = 1;
899 val = evaluate_expression (expr);
900 }
901 else
902 val = access_value_history (0);
903
904 if (voidprint || (val && value_type (val) &&
905 TYPE_CODE (value_type (val)) != TYPE_CODE_VOID))
906 {
907 int histindex = record_latest_value (val);
908
909 if (histindex >= 0)
910 annotate_value_history_begin (histindex, value_type (val));
911 else
912 annotate_value_begin (value_type (val));
913
914 if (inspect)
915 printf_unfiltered ("\031(gdb-makebuffer \"%s\" %d '(\"", exp, histindex);
916 else if (histindex >= 0)
917 printf_filtered ("$%d = ", histindex);
918
919 if (histindex >= 0)
920 annotate_value_history_value ();
921
922 print_formatted (val, format, fmt.size, gdb_stdout);
923 printf_filtered ("\n");
924
925 if (histindex >= 0)
926 annotate_value_history_end ();
927 else
928 annotate_value_end ();
929
930 if (inspect)
931 printf_unfiltered ("\") )\030");
932 }
933
934 if (cleanup)
935 do_cleanups (old_chain);
936 inspect_it = 0; /* Reset print routines to normal */
937 }
938
939 static void
940 print_command (char *exp, int from_tty)
941 {
942 print_command_1 (exp, 0, 1);
943 }
944
945 /* Same as print, except in epoch, it gets its own window */
946 static void
947 inspect_command (char *exp, int from_tty)
948 {
949 extern int epoch_interface;
950
951 print_command_1 (exp, epoch_interface, 1);
952 }
953
954 /* Same as print, except it doesn't print void results. */
955 static void
956 call_command (char *exp, int from_tty)
957 {
958 print_command_1 (exp, 0, 0);
959 }
960
961 void
962 output_command (char *exp, int from_tty)
963 {
964 struct expression *expr;
965 struct cleanup *old_chain;
966 char format = 0;
967 struct value *val;
968 struct format_data fmt;
969
970 fmt.size = 0;
971
972 if (exp && *exp == '/')
973 {
974 exp++;
975 fmt = decode_format (&exp, 0, 0);
976 validate_format (fmt, "output");
977 format = fmt.format;
978 }
979
980 expr = parse_expression (exp);
981 old_chain = make_cleanup (free_current_contents, &expr);
982
983 val = evaluate_expression (expr);
984
985 annotate_value_begin (value_type (val));
986
987 print_formatted (val, format, fmt.size, gdb_stdout);
988
989 annotate_value_end ();
990
991 wrap_here ("");
992 gdb_flush (gdb_stdout);
993
994 do_cleanups (old_chain);
995 }
996
997 static void
998 set_command (char *exp, int from_tty)
999 {
1000 struct expression *expr = parse_expression (exp);
1001 struct cleanup *old_chain =
1002 make_cleanup (free_current_contents, &expr);
1003 evaluate_expression (expr);
1004 do_cleanups (old_chain);
1005 }
1006
1007 static void
1008 sym_info (char *arg, int from_tty)
1009 {
1010 struct minimal_symbol *msymbol;
1011 struct objfile *objfile;
1012 struct obj_section *osect;
1013 asection *sect;
1014 CORE_ADDR addr, sect_addr;
1015 int matches = 0;
1016 unsigned int offset;
1017
1018 if (!arg)
1019 error_no_arg (_("address"));
1020
1021 addr = parse_and_eval_address (arg);
1022 ALL_OBJSECTIONS (objfile, osect)
1023 {
1024 sect = osect->the_bfd_section;
1025 sect_addr = overlay_mapped_address (addr, sect);
1026
1027 if (osect->addr <= sect_addr && sect_addr < osect->endaddr &&
1028 (msymbol = lookup_minimal_symbol_by_pc_section (sect_addr, sect)))
1029 {
1030 matches = 1;
1031 offset = sect_addr - SYMBOL_VALUE_ADDRESS (msymbol);
1032 if (offset)
1033 printf_filtered ("%s + %u in ",
1034 SYMBOL_PRINT_NAME (msymbol), offset);
1035 else
1036 printf_filtered ("%s in ",
1037 SYMBOL_PRINT_NAME (msymbol));
1038 if (pc_in_unmapped_range (addr, sect))
1039 printf_filtered (_("load address range of "));
1040 if (section_is_overlay (sect))
1041 printf_filtered (_("%s overlay "),
1042 section_is_mapped (sect) ? "mapped" : "unmapped");
1043 printf_filtered (_("section %s"), sect->name);
1044 printf_filtered ("\n");
1045 }
1046 }
1047 if (matches == 0)
1048 printf_filtered (_("No symbol matches %s.\n"), arg);
1049 }
1050
1051 static void
1052 address_info (char *exp, int from_tty)
1053 {
1054 struct symbol *sym;
1055 struct minimal_symbol *msymbol;
1056 long val;
1057 long basereg;
1058 asection *section;
1059 CORE_ADDR load_addr;
1060 int is_a_field_of_this; /* C++: lookup_symbol sets this to nonzero
1061 if exp is a field of `this'. */
1062
1063 if (exp == 0)
1064 error (_("Argument required."));
1065
1066 sym = lookup_symbol (exp, get_selected_block (0), VAR_DOMAIN,
1067 &is_a_field_of_this, (struct symtab **) NULL);
1068 if (sym == NULL)
1069 {
1070 if (is_a_field_of_this)
1071 {
1072 printf_filtered ("Symbol \"");
1073 fprintf_symbol_filtered (gdb_stdout, exp,
1074 current_language->la_language, DMGL_ANSI);
1075 printf_filtered ("\" is a field of the local class variable ");
1076 if (current_language->la_language == language_objc)
1077 printf_filtered ("`self'\n"); /* ObjC equivalent of "this" */
1078 else
1079 printf_filtered ("`this'\n");
1080 return;
1081 }
1082
1083 msymbol = lookup_minimal_symbol (exp, NULL, NULL);
1084
1085 if (msymbol != NULL)
1086 {
1087 load_addr = SYMBOL_VALUE_ADDRESS (msymbol);
1088
1089 printf_filtered ("Symbol \"");
1090 fprintf_symbol_filtered (gdb_stdout, exp,
1091 current_language->la_language, DMGL_ANSI);
1092 printf_filtered ("\" is at ");
1093 deprecated_print_address_numeric (load_addr, 1, gdb_stdout);
1094 printf_filtered (" in a file compiled without debugging");
1095 section = SYMBOL_BFD_SECTION (msymbol);
1096 if (section_is_overlay (section))
1097 {
1098 load_addr = overlay_unmapped_address (load_addr, section);
1099 printf_filtered (",\n -- loaded at ");
1100 deprecated_print_address_numeric (load_addr, 1, gdb_stdout);
1101 printf_filtered (" in overlay section %s", section->name);
1102 }
1103 printf_filtered (".\n");
1104 }
1105 else
1106 error (_("No symbol \"%s\" in current context."), exp);
1107 return;
1108 }
1109
1110 printf_filtered ("Symbol \"");
1111 fprintf_symbol_filtered (gdb_stdout, DEPRECATED_SYMBOL_NAME (sym),
1112 current_language->la_language, DMGL_ANSI);
1113 printf_filtered ("\" is ");
1114 val = SYMBOL_VALUE (sym);
1115 basereg = SYMBOL_BASEREG (sym);
1116 section = SYMBOL_BFD_SECTION (sym);
1117
1118 switch (SYMBOL_CLASS (sym))
1119 {
1120 case LOC_CONST:
1121 case LOC_CONST_BYTES:
1122 printf_filtered ("constant");
1123 break;
1124
1125 case LOC_LABEL:
1126 printf_filtered ("a label at address ");
1127 deprecated_print_address_numeric (load_addr = SYMBOL_VALUE_ADDRESS (sym),
1128 1, gdb_stdout);
1129 if (section_is_overlay (section))
1130 {
1131 load_addr = overlay_unmapped_address (load_addr, section);
1132 printf_filtered (",\n -- loaded at ");
1133 deprecated_print_address_numeric (load_addr, 1, gdb_stdout);
1134 printf_filtered (" in overlay section %s", section->name);
1135 }
1136 break;
1137
1138 case LOC_COMPUTED:
1139 case LOC_COMPUTED_ARG:
1140 /* FIXME: cagney/2004-01-26: It should be possible to
1141 unconditionally call the SYMBOL_OPS method when available.
1142 Unfortunately DWARF 2 stores the frame-base (instead of the
1143 function) location in a function's symbol. Oops! For the
1144 moment enable this when/where applicable. */
1145 SYMBOL_OPS (sym)->describe_location (sym, gdb_stdout);
1146 break;
1147
1148 case LOC_REGISTER:
1149 printf_filtered (_("a variable in register %s"), REGISTER_NAME (val));
1150 break;
1151
1152 case LOC_STATIC:
1153 printf_filtered (_("static storage at address "));
1154 deprecated_print_address_numeric (load_addr = SYMBOL_VALUE_ADDRESS (sym),
1155 1, gdb_stdout);
1156 if (section_is_overlay (section))
1157 {
1158 load_addr = overlay_unmapped_address (load_addr, section);
1159 printf_filtered (_(",\n -- loaded at "));
1160 deprecated_print_address_numeric (load_addr, 1, gdb_stdout);
1161 printf_filtered (_(" in overlay section %s"), section->name);
1162 }
1163 break;
1164
1165 case LOC_INDIRECT:
1166 printf_filtered (_("external global (indirect addressing), at address *("));
1167 deprecated_print_address_numeric (load_addr = SYMBOL_VALUE_ADDRESS (sym),
1168 1, gdb_stdout);
1169 printf_filtered (")");
1170 if (section_is_overlay (section))
1171 {
1172 load_addr = overlay_unmapped_address (load_addr, section);
1173 printf_filtered (_(",\n -- loaded at "));
1174 deprecated_print_address_numeric (load_addr, 1, gdb_stdout);
1175 printf_filtered (_(" in overlay section %s"), section->name);
1176 }
1177 break;
1178
1179 case LOC_REGPARM:
1180 printf_filtered (_("an argument in register %s"), REGISTER_NAME (val));
1181 break;
1182
1183 case LOC_REGPARM_ADDR:
1184 printf_filtered (_("address of an argument in register %s"), REGISTER_NAME (val));
1185 break;
1186
1187 case LOC_ARG:
1188 printf_filtered (_("an argument at offset %ld"), val);
1189 break;
1190
1191 case LOC_LOCAL_ARG:
1192 printf_filtered (_("an argument at frame offset %ld"), val);
1193 break;
1194
1195 case LOC_LOCAL:
1196 printf_filtered (_("a local variable at frame offset %ld"), val);
1197 break;
1198
1199 case LOC_REF_ARG:
1200 printf_filtered (_("a reference argument at offset %ld"), val);
1201 break;
1202
1203 case LOC_BASEREG:
1204 printf_filtered (_("a variable at offset %ld from register %s"),
1205 val, REGISTER_NAME (basereg));
1206 break;
1207
1208 case LOC_BASEREG_ARG:
1209 printf_filtered (_("an argument at offset %ld from register %s"),
1210 val, REGISTER_NAME (basereg));
1211 break;
1212
1213 case LOC_TYPEDEF:
1214 printf_filtered (_("a typedef"));
1215 break;
1216
1217 case LOC_BLOCK:
1218 printf_filtered (_("a function at address "));
1219 deprecated_print_address_numeric (load_addr = BLOCK_START (SYMBOL_BLOCK_VALUE (sym)),
1220 1, gdb_stdout);
1221 if (section_is_overlay (section))
1222 {
1223 load_addr = overlay_unmapped_address (load_addr, section);
1224 printf_filtered (_(",\n -- loaded at "));
1225 deprecated_print_address_numeric (load_addr, 1, gdb_stdout);
1226 printf_filtered (_(" in overlay section %s"), section->name);
1227 }
1228 break;
1229
1230 case LOC_UNRESOLVED:
1231 {
1232 struct minimal_symbol *msym;
1233
1234 msym = lookup_minimal_symbol (DEPRECATED_SYMBOL_NAME (sym), NULL, NULL);
1235 if (msym == NULL)
1236 printf_filtered ("unresolved");
1237 else
1238 {
1239 section = SYMBOL_BFD_SECTION (msym);
1240 printf_filtered (_("static storage at address "));
1241 deprecated_print_address_numeric (load_addr = SYMBOL_VALUE_ADDRESS (msym),
1242 1, gdb_stdout);
1243 if (section_is_overlay (section))
1244 {
1245 load_addr = overlay_unmapped_address (load_addr, section);
1246 printf_filtered (_(",\n -- loaded at "));
1247 deprecated_print_address_numeric (load_addr, 1, gdb_stdout);
1248 printf_filtered (_(" in overlay section %s"), section->name);
1249 }
1250 }
1251 }
1252 break;
1253
1254 case LOC_HP_THREAD_LOCAL_STATIC:
1255 printf_filtered (
1256 "a thread-local variable at offset %ld from the thread base register %s",
1257 val, REGISTER_NAME (basereg));
1258 break;
1259
1260 case LOC_OPTIMIZED_OUT:
1261 printf_filtered (_("optimized out"));
1262 break;
1263
1264 default:
1265 printf_filtered (_("of unknown (botched) type"));
1266 break;
1267 }
1268 printf_filtered (".\n");
1269 }
1270 \f
1271 void
1272 x_command (char *exp, int from_tty)
1273 {
1274 struct expression *expr;
1275 struct format_data fmt;
1276 struct cleanup *old_chain;
1277 struct value *val;
1278
1279 fmt.format = last_format;
1280 fmt.size = last_size;
1281 fmt.count = 1;
1282
1283 if (exp && *exp == '/')
1284 {
1285 exp++;
1286 fmt = decode_format (&exp, last_format, last_size);
1287 }
1288
1289 /* If we have an expression, evaluate it and use it as the address. */
1290
1291 if (exp != 0 && *exp != 0)
1292 {
1293 expr = parse_expression (exp);
1294 /* Cause expression not to be there any more
1295 if this command is repeated with Newline.
1296 But don't clobber a user-defined command's definition. */
1297 if (from_tty)
1298 *exp = 0;
1299 old_chain = make_cleanup (free_current_contents, &expr);
1300 val = evaluate_expression (expr);
1301 if (TYPE_CODE (value_type (val)) == TYPE_CODE_REF)
1302 val = value_ind (val);
1303 /* In rvalue contexts, such as this, functions are coerced into
1304 pointers to functions. This makes "x/i main" work. */
1305 if (/* last_format == 'i' && */
1306 TYPE_CODE (value_type (val)) == TYPE_CODE_FUNC
1307 && VALUE_LVAL (val) == lval_memory)
1308 next_address = VALUE_ADDRESS (val);
1309 else
1310 next_address = value_as_address (val);
1311 do_cleanups (old_chain);
1312 }
1313
1314 do_examine (fmt, next_address);
1315
1316 /* If the examine succeeds, we remember its size and format for next time. */
1317 last_size = fmt.size;
1318 last_format = fmt.format;
1319
1320 /* Set a couple of internal variables if appropriate. */
1321 if (last_examine_value)
1322 {
1323 /* Make last address examined available to the user as $_. Use
1324 the correct pointer type. */
1325 struct type *pointer_type
1326 = lookup_pointer_type (value_type (last_examine_value));
1327 set_internalvar (lookup_internalvar ("_"),
1328 value_from_pointer (pointer_type,
1329 last_examine_address));
1330
1331 /* Make contents of last address examined available to the user as $__. */
1332 /* If the last value has not been fetched from memory then don't
1333 fetch it now - instead mark it by voiding the $__ variable. */
1334 if (value_lazy (last_examine_value))
1335 set_internalvar (lookup_internalvar ("__"),
1336 allocate_value (builtin_type_void));
1337 else
1338 set_internalvar (lookup_internalvar ("__"), last_examine_value);
1339 }
1340 }
1341 \f
1342
1343 /* Add an expression to the auto-display chain.
1344 Specify the expression. */
1345
1346 static void
1347 display_command (char *exp, int from_tty)
1348 {
1349 struct format_data fmt;
1350 struct expression *expr;
1351 struct display *new;
1352 int display_it = 1;
1353
1354 #if defined(TUI)
1355 /* NOTE: cagney/2003-02-13 The `tui_active' was previously
1356 `tui_version'. */
1357 if (tui_active && exp != NULL && *exp == '$')
1358 display_it = (tui_set_layout_for_display_command (exp) == TUI_FAILURE);
1359 #endif
1360
1361 if (display_it)
1362 {
1363 if (exp == 0)
1364 {
1365 do_displays ();
1366 return;
1367 }
1368
1369 if (*exp == '/')
1370 {
1371 exp++;
1372 fmt = decode_format (&exp, 0, 0);
1373 if (fmt.size && fmt.format == 0)
1374 fmt.format = 'x';
1375 if (fmt.format == 'i' || fmt.format == 's')
1376 fmt.size = 'b';
1377 }
1378 else
1379 {
1380 fmt.format = 0;
1381 fmt.size = 0;
1382 fmt.count = 0;
1383 }
1384
1385 innermost_block = 0;
1386 expr = parse_expression (exp);
1387
1388 new = (struct display *) xmalloc (sizeof (struct display));
1389
1390 new->exp = expr;
1391 new->block = innermost_block;
1392 new->next = display_chain;
1393 new->number = ++display_number;
1394 new->format = fmt;
1395 new->enabled_p = 1;
1396 display_chain = new;
1397
1398 if (from_tty && target_has_execution)
1399 do_one_display (new);
1400
1401 dont_repeat ();
1402 }
1403 }
1404
1405 static void
1406 free_display (struct display *d)
1407 {
1408 xfree (d->exp);
1409 xfree (d);
1410 }
1411
1412 /* Clear out the display_chain.
1413 Done when new symtabs are loaded, since this invalidates
1414 the types stored in many expressions. */
1415
1416 void
1417 clear_displays (void)
1418 {
1419 struct display *d;
1420
1421 while ((d = display_chain) != NULL)
1422 {
1423 xfree (d->exp);
1424 display_chain = d->next;
1425 xfree (d);
1426 }
1427 }
1428
1429 /* Delete the auto-display number NUM. */
1430
1431 static void
1432 delete_display (int num)
1433 {
1434 struct display *d1, *d;
1435
1436 if (!display_chain)
1437 error (_("No display number %d."), num);
1438
1439 if (display_chain->number == num)
1440 {
1441 d1 = display_chain;
1442 display_chain = d1->next;
1443 free_display (d1);
1444 }
1445 else
1446 for (d = display_chain;; d = d->next)
1447 {
1448 if (d->next == 0)
1449 error (_("No display number %d."), num);
1450 if (d->next->number == num)
1451 {
1452 d1 = d->next;
1453 d->next = d1->next;
1454 free_display (d1);
1455 break;
1456 }
1457 }
1458 }
1459
1460 /* Delete some values from the auto-display chain.
1461 Specify the element numbers. */
1462
1463 static void
1464 undisplay_command (char *args, int from_tty)
1465 {
1466 char *p = args;
1467 char *p1;
1468 int num;
1469
1470 if (args == 0)
1471 {
1472 if (query ("Delete all auto-display expressions? "))
1473 clear_displays ();
1474 dont_repeat ();
1475 return;
1476 }
1477
1478 while (*p)
1479 {
1480 p1 = p;
1481 while (*p1 >= '0' && *p1 <= '9')
1482 p1++;
1483 if (*p1 && *p1 != ' ' && *p1 != '\t')
1484 error (_("Arguments must be display numbers."));
1485
1486 num = atoi (p);
1487
1488 delete_display (num);
1489
1490 p = p1;
1491 while (*p == ' ' || *p == '\t')
1492 p++;
1493 }
1494 dont_repeat ();
1495 }
1496
1497 /* Display a single auto-display.
1498 Do nothing if the display cannot be printed in the current context,
1499 or if the display is disabled. */
1500
1501 static void
1502 do_one_display (struct display *d)
1503 {
1504 int within_current_scope;
1505
1506 if (d->enabled_p == 0)
1507 return;
1508
1509 if (d->block)
1510 within_current_scope = contained_in (get_selected_block (0), d->block);
1511 else
1512 within_current_scope = 1;
1513 if (!within_current_scope)
1514 return;
1515
1516 current_display_number = d->number;
1517
1518 annotate_display_begin ();
1519 printf_filtered ("%d", d->number);
1520 annotate_display_number_end ();
1521 printf_filtered (": ");
1522 if (d->format.size)
1523 {
1524 CORE_ADDR addr;
1525 struct value *val;
1526
1527 annotate_display_format ();
1528
1529 printf_filtered ("x/");
1530 if (d->format.count != 1)
1531 printf_filtered ("%d", d->format.count);
1532 printf_filtered ("%c", d->format.format);
1533 if (d->format.format != 'i' && d->format.format != 's')
1534 printf_filtered ("%c", d->format.size);
1535 printf_filtered (" ");
1536
1537 annotate_display_expression ();
1538
1539 print_expression (d->exp, gdb_stdout);
1540 annotate_display_expression_end ();
1541
1542 if (d->format.count != 1)
1543 printf_filtered ("\n");
1544 else
1545 printf_filtered (" ");
1546
1547 val = evaluate_expression (d->exp);
1548 addr = value_as_address (val);
1549 if (d->format.format == 'i')
1550 addr = ADDR_BITS_REMOVE (addr);
1551
1552 annotate_display_value ();
1553
1554 do_examine (d->format, addr);
1555 }
1556 else
1557 {
1558 annotate_display_format ();
1559
1560 if (d->format.format)
1561 printf_filtered ("/%c ", d->format.format);
1562
1563 annotate_display_expression ();
1564
1565 print_expression (d->exp, gdb_stdout);
1566 annotate_display_expression_end ();
1567
1568 printf_filtered (" = ");
1569
1570 annotate_display_expression ();
1571
1572 print_formatted (evaluate_expression (d->exp),
1573 d->format.format, d->format.size, gdb_stdout);
1574 printf_filtered ("\n");
1575 }
1576
1577 annotate_display_end ();
1578
1579 gdb_flush (gdb_stdout);
1580 current_display_number = -1;
1581 }
1582
1583 /* Display all of the values on the auto-display chain which can be
1584 evaluated in the current scope. */
1585
1586 void
1587 do_displays (void)
1588 {
1589 struct display *d;
1590
1591 for (d = display_chain; d; d = d->next)
1592 do_one_display (d);
1593 }
1594
1595 /* Delete the auto-display which we were in the process of displaying.
1596 This is done when there is an error or a signal. */
1597
1598 void
1599 disable_display (int num)
1600 {
1601 struct display *d;
1602
1603 for (d = display_chain; d; d = d->next)
1604 if (d->number == num)
1605 {
1606 d->enabled_p = 0;
1607 return;
1608 }
1609 printf_unfiltered (_("No display number %d.\n"), num);
1610 }
1611
1612 void
1613 disable_current_display (void)
1614 {
1615 if (current_display_number >= 0)
1616 {
1617 disable_display (current_display_number);
1618 fprintf_unfiltered (gdb_stderr, "Disabling display %d to avoid infinite recursion.\n",
1619 current_display_number);
1620 }
1621 current_display_number = -1;
1622 }
1623
1624 static void
1625 display_info (char *ignore, int from_tty)
1626 {
1627 struct display *d;
1628
1629 if (!display_chain)
1630 printf_unfiltered (_("There are no auto-display expressions now.\n"));
1631 else
1632 printf_filtered (_("Auto-display expressions now in effect:\n\
1633 Num Enb Expression\n"));
1634
1635 for (d = display_chain; d; d = d->next)
1636 {
1637 printf_filtered ("%d: %c ", d->number, "ny"[(int) d->enabled_p]);
1638 if (d->format.size)
1639 printf_filtered ("/%d%c%c ", d->format.count, d->format.size,
1640 d->format.format);
1641 else if (d->format.format)
1642 printf_filtered ("/%c ", d->format.format);
1643 print_expression (d->exp, gdb_stdout);
1644 if (d->block && !contained_in (get_selected_block (0), d->block))
1645 printf_filtered (_(" (cannot be evaluated in the current context)"));
1646 printf_filtered ("\n");
1647 gdb_flush (gdb_stdout);
1648 }
1649 }
1650
1651 static void
1652 enable_display (char *args, int from_tty)
1653 {
1654 char *p = args;
1655 char *p1;
1656 int num;
1657 struct display *d;
1658
1659 if (p == 0)
1660 {
1661 for (d = display_chain; d; d = d->next)
1662 d->enabled_p = 1;
1663 }
1664 else
1665 while (*p)
1666 {
1667 p1 = p;
1668 while (*p1 >= '0' && *p1 <= '9')
1669 p1++;
1670 if (*p1 && *p1 != ' ' && *p1 != '\t')
1671 error (_("Arguments must be display numbers."));
1672
1673 num = atoi (p);
1674
1675 for (d = display_chain; d; d = d->next)
1676 if (d->number == num)
1677 {
1678 d->enabled_p = 1;
1679 goto win;
1680 }
1681 printf_unfiltered (_("No display number %d.\n"), num);
1682 win:
1683 p = p1;
1684 while (*p == ' ' || *p == '\t')
1685 p++;
1686 }
1687 }
1688
1689 static void
1690 disable_display_command (char *args, int from_tty)
1691 {
1692 char *p = args;
1693 char *p1;
1694 struct display *d;
1695
1696 if (p == 0)
1697 {
1698 for (d = display_chain; d; d = d->next)
1699 d->enabled_p = 0;
1700 }
1701 else
1702 while (*p)
1703 {
1704 p1 = p;
1705 while (*p1 >= '0' && *p1 <= '9')
1706 p1++;
1707 if (*p1 && *p1 != ' ' && *p1 != '\t')
1708 error (_("Arguments must be display numbers."));
1709
1710 disable_display (atoi (p));
1711
1712 p = p1;
1713 while (*p == ' ' || *p == '\t')
1714 p++;
1715 }
1716 }
1717 \f
1718
1719 /* Print the value in stack frame FRAME of a variable
1720 specified by a struct symbol. */
1721
1722 void
1723 print_variable_value (struct symbol *var, struct frame_info *frame,
1724 struct ui_file *stream)
1725 {
1726 struct value *val = read_var_value (var, frame);
1727
1728 value_print (val, stream, 0, Val_pretty_default);
1729 }
1730
1731 static void
1732 printf_command (char *arg, int from_tty)
1733 {
1734 char *f = NULL;
1735 char *s = arg;
1736 char *string = NULL;
1737 struct value **val_args;
1738 char *substrings;
1739 char *current_substring;
1740 int nargs = 0;
1741 int allocated_args = 20;
1742 struct cleanup *old_cleanups;
1743
1744 val_args = (struct value **) xmalloc (allocated_args
1745 * sizeof (struct value *));
1746 old_cleanups = make_cleanup (free_current_contents, &val_args);
1747
1748 if (s == 0)
1749 error_no_arg (_("format-control string and values to print"));
1750
1751 /* Skip white space before format string */
1752 while (*s == ' ' || *s == '\t')
1753 s++;
1754
1755 /* A format string should follow, enveloped in double quotes */
1756 if (*s++ != '"')
1757 error (_("Bad format string, missing '\"'."));
1758
1759 /* Parse the format-control string and copy it into the string STRING,
1760 processing some kinds of escape sequence. */
1761
1762 f = string = (char *) alloca (strlen (s) + 1);
1763
1764 while (*s != '"')
1765 {
1766 int c = *s++;
1767 switch (c)
1768 {
1769 case '\0':
1770 error (_("Bad format string, non-terminated '\"'."));
1771
1772 case '\\':
1773 switch (c = *s++)
1774 {
1775 case '\\':
1776 *f++ = '\\';
1777 break;
1778 case 'a':
1779 *f++ = '\a';
1780 break;
1781 case 'b':
1782 *f++ = '\b';
1783 break;
1784 case 'f':
1785 *f++ = '\f';
1786 break;
1787 case 'n':
1788 *f++ = '\n';
1789 break;
1790 case 'r':
1791 *f++ = '\r';
1792 break;
1793 case 't':
1794 *f++ = '\t';
1795 break;
1796 case 'v':
1797 *f++ = '\v';
1798 break;
1799 case '"':
1800 *f++ = '"';
1801 break;
1802 default:
1803 /* ??? TODO: handle other escape sequences */
1804 error (_("Unrecognized escape character \\%c in format string."),
1805 c);
1806 }
1807 break;
1808
1809 default:
1810 *f++ = c;
1811 }
1812 }
1813
1814 /* Skip over " and following space and comma. */
1815 s++;
1816 *f++ = '\0';
1817 while (*s == ' ' || *s == '\t')
1818 s++;
1819
1820 if (*s != ',' && *s != 0)
1821 error (_("Invalid argument syntax"));
1822
1823 if (*s == ',')
1824 s++;
1825 while (*s == ' ' || *s == '\t')
1826 s++;
1827
1828 /* Need extra space for the '\0's. Doubling the size is sufficient. */
1829 substrings = alloca (strlen (string) * 2);
1830 current_substring = substrings;
1831
1832 {
1833 /* Now scan the string for %-specs and see what kinds of args they want.
1834 argclass[I] classifies the %-specs so we can give printf_filtered
1835 something of the right size. */
1836
1837 enum argclass
1838 {
1839 no_arg, int_arg, string_arg, double_arg, long_long_arg
1840 };
1841 enum argclass *argclass;
1842 enum argclass this_argclass;
1843 char *last_arg;
1844 int nargs_wanted;
1845 int lcount;
1846 int i;
1847
1848 argclass = (enum argclass *) alloca (strlen (s) * sizeof *argclass);
1849 nargs_wanted = 0;
1850 f = string;
1851 last_arg = string;
1852 while (*f)
1853 if (*f++ == '%')
1854 {
1855 lcount = 0;
1856 while (strchr ("0123456789.hlL-+ #", *f))
1857 {
1858 if (*f == 'l' || *f == 'L')
1859 lcount++;
1860 f++;
1861 }
1862 switch (*f)
1863 {
1864 case 's':
1865 this_argclass = string_arg;
1866 break;
1867
1868 case 'e':
1869 case 'f':
1870 case 'g':
1871 this_argclass = double_arg;
1872 break;
1873
1874 case '*':
1875 error (_("`*' not supported for precision or width in printf"));
1876
1877 case 'n':
1878 error (_("Format specifier `n' not supported in printf"));
1879
1880 case '%':
1881 this_argclass = no_arg;
1882 break;
1883
1884 default:
1885 if (lcount > 1)
1886 this_argclass = long_long_arg;
1887 else
1888 this_argclass = int_arg;
1889 break;
1890 }
1891 f++;
1892 if (this_argclass != no_arg)
1893 {
1894 strncpy (current_substring, last_arg, f - last_arg);
1895 current_substring += f - last_arg;
1896 *current_substring++ = '\0';
1897 last_arg = f;
1898 argclass[nargs_wanted++] = this_argclass;
1899 }
1900 }
1901
1902 /* Now, parse all arguments and evaluate them.
1903 Store the VALUEs in VAL_ARGS. */
1904
1905 while (*s != '\0')
1906 {
1907 char *s1;
1908 if (nargs == allocated_args)
1909 val_args = (struct value **) xrealloc ((char *) val_args,
1910 (allocated_args *= 2)
1911 * sizeof (struct value *));
1912 s1 = s;
1913 val_args[nargs] = parse_to_comma_and_eval (&s1);
1914
1915 /* If format string wants a float, unchecked-convert the value to
1916 floating point of the same size */
1917
1918 if (argclass[nargs] == double_arg)
1919 {
1920 struct type *type = value_type (val_args[nargs]);
1921 if (TYPE_LENGTH (type) == sizeof (float))
1922 deprecated_set_value_type (val_args[nargs], builtin_type_float);
1923 if (TYPE_LENGTH (type) == sizeof (double))
1924 deprecated_set_value_type (val_args[nargs], builtin_type_double);
1925 }
1926 nargs++;
1927 s = s1;
1928 if (*s == ',')
1929 s++;
1930 }
1931
1932 if (nargs != nargs_wanted)
1933 error (_("Wrong number of arguments for specified format-string"));
1934
1935 /* Now actually print them. */
1936 current_substring = substrings;
1937 for (i = 0; i < nargs; i++)
1938 {
1939 switch (argclass[i])
1940 {
1941 case string_arg:
1942 {
1943 gdb_byte *str;
1944 CORE_ADDR tem;
1945 int j;
1946 tem = value_as_address (val_args[i]);
1947
1948 /* This is a %s argument. Find the length of the string. */
1949 for (j = 0;; j++)
1950 {
1951 gdb_byte c;
1952 QUIT;
1953 read_memory (tem + j, &c, 1);
1954 if (c == 0)
1955 break;
1956 }
1957
1958 /* Copy the string contents into a string inside GDB. */
1959 str = (gdb_byte *) alloca (j + 1);
1960 if (j != 0)
1961 read_memory (tem, str, j);
1962 str[j] = 0;
1963
1964 printf_filtered (current_substring, (char *) str);
1965 }
1966 break;
1967 case double_arg:
1968 {
1969 double val = value_as_double (val_args[i]);
1970 printf_filtered (current_substring, val);
1971 break;
1972 }
1973 case long_long_arg:
1974 #if defined (CC_HAS_LONG_LONG) && defined (PRINTF_HAS_LONG_LONG)
1975 {
1976 long long val = value_as_long (val_args[i]);
1977 printf_filtered (current_substring, val);
1978 break;
1979 }
1980 #else
1981 error (_("long long not supported in printf"));
1982 #endif
1983 case int_arg:
1984 {
1985 /* FIXME: there should be separate int_arg and long_arg. */
1986 long val = value_as_long (val_args[i]);
1987 printf_filtered (current_substring, val);
1988 break;
1989 }
1990 default: /* purecov: deadcode */
1991 error (_("internal error in printf_command")); /* purecov: deadcode */
1992 }
1993 /* Skip to the next substring. */
1994 current_substring += strlen (current_substring) + 1;
1995 }
1996 /* Print the portion of the format string after the last argument. */
1997 puts_filtered (last_arg);
1998 }
1999 do_cleanups (old_cleanups);
2000 }
2001
2002 void
2003 _initialize_printcmd (void)
2004 {
2005 struct cmd_list_element *c;
2006
2007 current_display_number = -1;
2008
2009 add_info ("address", address_info,
2010 _("Describe where symbol SYM is stored."));
2011
2012 add_info ("symbol", sym_info, _("\
2013 Describe what symbol is at location ADDR.\n\
2014 Only for symbols with fixed locations (global or static scope)."));
2015
2016 add_com ("x", class_vars, x_command, _("\
2017 Examine memory: x/FMT ADDRESS.\n\
2018 ADDRESS is an expression for the memory address to examine.\n\
2019 FMT is a repeat count followed by a format letter and a size letter.\n\
2020 Format letters are o(octal), x(hex), d(decimal), u(unsigned decimal),\n\
2021 t(binary), f(float), a(address), i(instruction), c(char) and s(string).\n\
2022 Size letters are b(byte), h(halfword), w(word), g(giant, 8 bytes).\n\
2023 The specified number of objects of the specified size are printed\n\
2024 according to the format.\n\n\
2025 Defaults for format and size letters are those previously used.\n\
2026 Default count is 1. Default address is following last thing printed\n\
2027 with this command or \"print\"."));
2028
2029 #if 0
2030 add_com ("whereis", class_vars, whereis_command,
2031 _("Print line number and file of definition of variable."));
2032 #endif
2033
2034 add_info ("display", display_info, _("\
2035 Expressions to display when program stops, with code numbers."));
2036
2037 add_cmd ("undisplay", class_vars, undisplay_command, _("\
2038 Cancel some expressions to be displayed when program stops.\n\
2039 Arguments are the code numbers of the expressions to stop displaying.\n\
2040 No argument means cancel all automatic-display expressions.\n\
2041 \"delete display\" has the same effect as this command.\n\
2042 Do \"info display\" to see current list of code numbers."),
2043 &cmdlist);
2044
2045 add_com ("display", class_vars, display_command, _("\
2046 Print value of expression EXP each time the program stops.\n\
2047 /FMT may be used before EXP as in the \"print\" command.\n\
2048 /FMT \"i\" or \"s\" or including a size-letter is allowed,\n\
2049 as in the \"x\" command, and then EXP is used to get the address to examine\n\
2050 and examining is done as in the \"x\" command.\n\n\
2051 With no argument, display all currently requested auto-display expressions.\n\
2052 Use \"undisplay\" to cancel display requests previously made."));
2053
2054 add_cmd ("display", class_vars, enable_display, _("\
2055 Enable some expressions to be displayed when program stops.\n\
2056 Arguments are the code numbers of the expressions to resume displaying.\n\
2057 No argument means enable all automatic-display expressions.\n\
2058 Do \"info display\" to see current list of code numbers."), &enablelist);
2059
2060 add_cmd ("display", class_vars, disable_display_command, _("\
2061 Disable some expressions to be displayed when program stops.\n\
2062 Arguments are the code numbers of the expressions to stop displaying.\n\
2063 No argument means disable all automatic-display expressions.\n\
2064 Do \"info display\" to see current list of code numbers."), &disablelist);
2065
2066 add_cmd ("display", class_vars, undisplay_command, _("\
2067 Cancel some expressions to be displayed when program stops.\n\
2068 Arguments are the code numbers of the expressions to stop displaying.\n\
2069 No argument means cancel all automatic-display expressions.\n\
2070 Do \"info display\" to see current list of code numbers."), &deletelist);
2071
2072 add_com ("printf", class_vars, printf_command, _("\
2073 printf \"printf format string\", arg1, arg2, arg3, ..., argn\n\
2074 This is useful for formatted output in user-defined commands."));
2075
2076 add_com ("output", class_vars, output_command, _("\
2077 Like \"print\" but don't put in value history and don't print newline.\n\
2078 This is useful in user-defined commands."));
2079
2080 add_prefix_cmd ("set", class_vars, set_command, _("\
2081 Evaluate expression EXP and assign result to variable VAR, using assignment\n\
2082 syntax appropriate for the current language (VAR = EXP or VAR := EXP for\n\
2083 example). VAR may be a debugger \"convenience\" variable (names starting\n\
2084 with $), a register (a few standard names starting with $), or an actual\n\
2085 variable in the program being debugged. EXP is any valid expression.\n\
2086 Use \"set variable\" for variables with names identical to set subcommands.\n\
2087 \n\
2088 With a subcommand, this command modifies parts of the gdb environment.\n\
2089 You can see these environment settings with the \"show\" command."),
2090 &setlist, "set ", 1, &cmdlist);
2091 if (dbx_commands)
2092 add_com ("assign", class_vars, set_command, _("\
2093 Evaluate expression EXP and assign result to variable VAR, using assignment\n\
2094 syntax appropriate for the current language (VAR = EXP or VAR := EXP for\n\
2095 example). VAR may be a debugger \"convenience\" variable (names starting\n\
2096 with $), a register (a few standard names starting with $), or an actual\n\
2097 variable in the program being debugged. EXP is any valid expression.\n\
2098 Use \"set variable\" for variables with names identical to set subcommands.\n\
2099 \nWith a subcommand, this command modifies parts of the gdb environment.\n\
2100 You can see these environment settings with the \"show\" command."));
2101
2102 /* "call" is the same as "set", but handy for dbx users to call fns. */
2103 c = add_com ("call", class_vars, call_command, _("\
2104 Call a function in the program.\n\
2105 The argument is the function name and arguments, in the notation of the\n\
2106 current working language. The result is printed and saved in the value\n\
2107 history, if it is not void."));
2108 set_cmd_completer (c, location_completer);
2109
2110 add_cmd ("variable", class_vars, set_command, _("\
2111 Evaluate expression EXP and assign result to variable VAR, using assignment\n\
2112 syntax appropriate for the current language (VAR = EXP or VAR := EXP for\n\
2113 example). VAR may be a debugger \"convenience\" variable (names starting\n\
2114 with $), a register (a few standard names starting with $), or an actual\n\
2115 variable in the program being debugged. EXP is any valid expression.\n\
2116 This may usually be abbreviated to simply \"set\"."),
2117 &setlist);
2118
2119 c = add_com ("print", class_vars, print_command, _("\
2120 Print value of expression EXP.\n\
2121 Variables accessible are those of the lexical environment of the selected\n\
2122 stack frame, plus all those whose scope is global or an entire file.\n\
2123 \n\
2124 $NUM gets previous value number NUM. $ and $$ are the last two values.\n\
2125 $$NUM refers to NUM'th value back from the last one.\n\
2126 Names starting with $ refer to registers (with the values they would have\n\
2127 if the program were to return to the stack frame now selected, restoring\n\
2128 all registers saved by frames farther in) or else to debugger\n\
2129 \"convenience\" variables (any such name not a known register).\n\
2130 Use assignment expressions to give values to convenience variables.\n\
2131 \n\
2132 {TYPE}ADREXP refers to a datum of data type TYPE, located at address ADREXP.\n\
2133 @ is a binary operator for treating consecutive data objects\n\
2134 anywhere in memory as an array. FOO@NUM gives an array whose first\n\
2135 element is FOO, whose second element is stored in the space following\n\
2136 where FOO is stored, etc. FOO must be an expression whose value\n\
2137 resides in memory.\n\
2138 \n\
2139 EXP may be preceded with /FMT, where FMT is a format letter\n\
2140 but no count or size letter (see \"x\" command)."));
2141 set_cmd_completer (c, location_completer);
2142 add_com_alias ("p", "print", class_vars, 1);
2143
2144 c = add_com ("inspect", class_vars, inspect_command, _("\
2145 Same as \"print\" command, except that if you are running in the epoch\n\
2146 environment, the value is printed in its own window."));
2147 set_cmd_completer (c, location_completer);
2148
2149 add_setshow_uinteger_cmd ("max-symbolic-offset", no_class,
2150 &max_symbolic_offset, _("\
2151 Set the largest offset that will be printed in <symbol+1234> form."), _("\
2152 Show the largest offset that will be printed in <symbol+1234> form."), NULL,
2153 NULL,
2154 show_max_symbolic_offset,
2155 &setprintlist, &showprintlist);
2156 add_setshow_boolean_cmd ("symbol-filename", no_class,
2157 &print_symbol_filename, _("\
2158 Set printing of source filename and line number with <symbol>."), _("\
2159 Show printing of source filename and line number with <symbol>."), NULL,
2160 NULL,
2161 show_print_symbol_filename,
2162 &setprintlist, &showprintlist);
2163
2164 /* For examine/instruction a single byte quantity is specified as
2165 the data. This avoids problems with value_at_lazy() requiring a
2166 valid data type (and rejecting VOID). */
2167 examine_i_type = init_type (TYPE_CODE_INT, 1, 0, "examine_i_type", NULL);
2168
2169 examine_b_type = init_type (TYPE_CODE_INT, 1, 0, "examine_b_type", NULL);
2170 examine_h_type = init_type (TYPE_CODE_INT, 2, 0, "examine_h_type", NULL);
2171 examine_w_type = init_type (TYPE_CODE_INT, 4, 0, "examine_w_type", NULL);
2172 examine_g_type = init_type (TYPE_CODE_INT, 8, 0, "examine_g_type", NULL);
2173
2174 }
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