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Commit | Line | Data |
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4604b34c SG |
1 | /* Tcl/Tk interface routines. |
2 | Copyright 1994, 1995 Free Software Foundation, Inc. | |
3 | ||
4 | Written by Stu Grossman <[email protected]> of Cygnus Support. | |
754e5da2 SG |
5 | |
6 | This file is part of GDB. | |
7 | ||
8 | This program is free software; you can redistribute it and/or modify | |
9 | it under the terms of the GNU General Public License as published by | |
10 | the Free Software Foundation; either version 2 of the License, or | |
11 | (at your option) any later version. | |
12 | ||
13 | This program is distributed in the hope that it will be useful, | |
14 | but WITHOUT ANY WARRANTY; without even the implied warranty of | |
15 | MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the | |
16 | GNU General Public License for more details. | |
17 | ||
18 | You should have received a copy of the GNU General Public License | |
19 | along with this program; if not, write to the Free Software | |
6c9638b4 | 20 | Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA. */ |
754e5da2 SG |
21 | |
22 | #include "defs.h" | |
23 | #include "symtab.h" | |
24 | #include "inferior.h" | |
25 | #include "command.h" | |
26 | #include "bfd.h" | |
27 | #include "symfile.h" | |
28 | #include "objfiles.h" | |
29 | #include "target.h" | |
754e5da2 SG |
30 | #include <tcl.h> |
31 | #include <tk.h> | |
73d3dbd4 | 32 | #ifdef ANSI_PROTOTYPES |
85c613aa C |
33 | #include <stdarg.h> |
34 | #else | |
cd2df226 | 35 | #include <varargs.h> |
85c613aa | 36 | #endif |
cd2df226 SG |
37 | #include <signal.h> |
38 | #include <fcntl.h> | |
8532893d | 39 | #include <unistd.h> |
86db943c SG |
40 | #include <setjmp.h> |
41 | #include "top.h" | |
736a82e7 | 42 | #include <sys/ioctl.h> |
2b576293 | 43 | #include "gdb_string.h" |
09722039 | 44 | #include "dis-asm.h" |
6131622e SG |
45 | #include <stdio.h> |
46 | #include "gdbcmd.h" | |
736a82e7 SG |
47 | |
48 | #ifndef FIOASYNC | |
546b8ca7 SG |
49 | #include <sys/stropts.h> |
50 | #endif | |
754e5da2 | 51 | |
754e5da2 SG |
52 | /* Handle for TCL interpreter */ |
53 | static Tcl_Interp *interp = NULL; | |
54 | ||
55 | /* Handle for TK main window */ | |
56 | static Tk_Window mainWindow = NULL; | |
57 | ||
479f0f18 SG |
58 | static int x_fd; /* X network socket */ |
59 | ||
09722039 SG |
60 | /* This variable determines where memory used for disassembly is read from. |
61 | ||
62 | If > 0, then disassembly comes from the exec file rather than the target | |
63 | (which might be at the other end of a slow serial link). If == 0 then | |
64 | disassembly comes from target. If < 0 disassembly is automatically switched | |
65 | to the target if it's an inferior process, otherwise the exec file is | |
66 | used. | |
67 | */ | |
68 | ||
69 | static int disassemble_from_exec = -1; | |
70 | ||
8c19daa1 SG |
71 | /* Supply malloc calls for tcl/tk. */ |
72 | ||
73 | char * | |
74 | Tcl_Malloc (size) | |
75 | unsigned int size; | |
76 | { | |
77 | return xmalloc (size); | |
78 | } | |
79 | ||
80 | char * | |
81 | Tcl_Realloc (ptr, size) | |
82 | char *ptr; | |
83 | unsigned int size; | |
84 | { | |
85 | return xrealloc (ptr, size); | |
86 | } | |
87 | ||
88 | void | |
89 | Tcl_Free(ptr) | |
90 | char *ptr; | |
91 | { | |
92 | free (ptr); | |
93 | } | |
94 | ||
754e5da2 SG |
95 | static void |
96 | null_routine(arg) | |
97 | int arg; | |
98 | { | |
99 | } | |
100 | ||
546b8ca7 SG |
101 | /* The following routines deal with stdout/stderr data, which is created by |
102 | {f}printf_{un}filtered and friends. gdbtk_fputs and gdbtk_flush are the | |
103 | lowest level of these routines and capture all output from the rest of GDB. | |
104 | Normally they present their data to tcl via callbacks to the following tcl | |
105 | routines: gdbtk_tcl_fputs, gdbtk_tcl_fputs_error, and gdbtk_flush. These | |
106 | in turn call tk routines to update the display. | |
86db943c | 107 | |
546b8ca7 SG |
108 | Under some circumstances, you may want to collect the output so that it can |
109 | be returned as the value of a tcl procedure. This can be done by | |
110 | surrounding the output routines with calls to start_saving_output and | |
111 | finish_saving_output. The saved data can then be retrieved with | |
112 | get_saved_output (but this must be done before the call to | |
113 | finish_saving_output). */ | |
86db943c | 114 | |
546b8ca7 | 115 | /* Dynamic string header for stdout. */ |
86db943c | 116 | |
6131622e | 117 | static Tcl_DString *result_ptr; |
754e5da2 | 118 | \f |
754e5da2 SG |
119 | static void |
120 | gdbtk_flush (stream) | |
121 | FILE *stream; | |
122 | { | |
6131622e | 123 | #if 0 |
86db943c SG |
124 | /* Force immediate screen update */ |
125 | ||
754e5da2 | 126 | Tcl_VarEval (interp, "gdbtk_tcl_flush", NULL); |
6131622e | 127 | #endif |
754e5da2 SG |
128 | } |
129 | ||
8532893d | 130 | static void |
86db943c | 131 | gdbtk_fputs (ptr, stream) |
8532893d | 132 | const char *ptr; |
86db943c | 133 | FILE *stream; |
8532893d | 134 | { |
6131622e | 135 | if (result_ptr) |
45f90c50 | 136 | Tcl_DStringAppend (result_ptr, (char *)ptr, -1); |
6131622e | 137 | else |
86db943c | 138 | { |
6131622e | 139 | Tcl_DString str; |
86db943c | 140 | |
6131622e | 141 | Tcl_DStringInit (&str); |
8532893d | 142 | |
6131622e | 143 | Tcl_DStringAppend (&str, "gdbtk_tcl_fputs", -1); |
45f90c50 | 144 | Tcl_DStringAppendElement (&str, (char *)ptr); |
8532893d | 145 | |
6131622e SG |
146 | Tcl_Eval (interp, Tcl_DStringValue (&str)); |
147 | Tcl_DStringFree (&str); | |
148 | } | |
8532893d SG |
149 | } |
150 | ||
754e5da2 | 151 | static int |
85c613aa C |
152 | gdbtk_query (query, args) |
153 | char *query; | |
754e5da2 SG |
154 | va_list args; |
155 | { | |
754e5da2 SG |
156 | char buf[200]; |
157 | long val; | |
158 | ||
6131622e | 159 | vsprintf (buf, query, args); |
754e5da2 SG |
160 | Tcl_VarEval (interp, "gdbtk_tcl_query ", "{", buf, "}", NULL); |
161 | ||
162 | val = atol (interp->result); | |
163 | return val; | |
164 | } | |
165 | \f | |
6131622e | 166 | static void |
73d3dbd4 | 167 | #ifdef ANSI_PROTOTYPES |
85c613aa C |
168 | dsprintf_append_element (Tcl_DString *dsp, char *format, ...) |
169 | #else | |
6131622e SG |
170 | dsprintf_append_element (va_alist) |
171 | va_dcl | |
85c613aa | 172 | #endif |
6131622e SG |
173 | { |
174 | va_list args; | |
85c613aa C |
175 | char buf[1024]; |
176 | ||
73d3dbd4 | 177 | #ifdef ANSI_PROTOTYPES |
85c613aa C |
178 | va_start (args, format); |
179 | #else | |
6131622e SG |
180 | Tcl_DString *dsp; |
181 | char *format; | |
6131622e SG |
182 | |
183 | va_start (args); | |
6131622e SG |
184 | dsp = va_arg (args, Tcl_DString *); |
185 | format = va_arg (args, char *); | |
85c613aa | 186 | #endif |
6131622e SG |
187 | |
188 | vsprintf (buf, format, args); | |
189 | ||
190 | Tcl_DStringAppendElement (dsp, buf); | |
191 | } | |
192 | ||
193 | static int | |
194 | gdb_get_breakpoint_list (clientData, interp, argc, argv) | |
195 | ClientData clientData; | |
196 | Tcl_Interp *interp; | |
197 | int argc; | |
198 | char *argv[]; | |
199 | { | |
200 | struct breakpoint *b; | |
201 | extern struct breakpoint *breakpoint_chain; | |
202 | ||
203 | if (argc != 1) | |
204 | error ("wrong # args"); | |
205 | ||
206 | for (b = breakpoint_chain; b; b = b->next) | |
207 | if (b->type == bp_breakpoint) | |
208 | dsprintf_append_element (result_ptr, "%d", b->number); | |
209 | ||
210 | return TCL_OK; | |
211 | } | |
212 | ||
213 | static int | |
214 | gdb_get_breakpoint_info (clientData, interp, argc, argv) | |
215 | ClientData clientData; | |
216 | Tcl_Interp *interp; | |
217 | int argc; | |
218 | char *argv[]; | |
219 | { | |
220 | struct symtab_and_line sal; | |
221 | static char *bptypes[] = {"breakpoint", "hardware breakpoint", "until", | |
222 | "finish", "watchpoint", "hardware watchpoint", | |
223 | "read watchpoint", "access watchpoint", | |
224 | "longjmp", "longjmp resume", "step resume", | |
225 | "through sigtramp", "watchpoint scope", | |
226 | "call dummy" }; | |
227 | static char *bpdisp[] = {"delete", "disable", "donttouch"}; | |
228 | struct command_line *cmd; | |
229 | int bpnum; | |
230 | struct breakpoint *b; | |
231 | extern struct breakpoint *breakpoint_chain; | |
232 | ||
233 | if (argc != 2) | |
234 | error ("wrong # args"); | |
235 | ||
236 | bpnum = atoi (argv[1]); | |
237 | ||
238 | for (b = breakpoint_chain; b; b = b->next) | |
239 | if (b->number == bpnum) | |
240 | break; | |
241 | ||
9468f8aa | 242 | if (!b || b->type != bp_breakpoint) |
6131622e SG |
243 | error ("Breakpoint #%d does not exist", bpnum); |
244 | ||
6131622e SG |
245 | sal = find_pc_line (b->address, 0); |
246 | ||
247 | Tcl_DStringAppendElement (result_ptr, symtab_to_filename (sal.symtab)); | |
248 | dsprintf_append_element (result_ptr, "%d", sal.line); | |
249 | dsprintf_append_element (result_ptr, "0x%lx", b->address); | |
250 | Tcl_DStringAppendElement (result_ptr, bptypes[b->type]); | |
251 | Tcl_DStringAppendElement (result_ptr, b->enable == enabled ? "1" : "0"); | |
252 | Tcl_DStringAppendElement (result_ptr, bpdisp[b->disposition]); | |
253 | dsprintf_append_element (result_ptr, "%d", b->silent); | |
254 | dsprintf_append_element (result_ptr, "%d", b->ignore_count); | |
255 | ||
256 | Tcl_DStringStartSublist (result_ptr); | |
257 | for (cmd = b->commands; cmd; cmd = cmd->next) | |
258 | Tcl_DStringAppendElement (result_ptr, cmd->line); | |
259 | Tcl_DStringEndSublist (result_ptr); | |
260 | ||
261 | Tcl_DStringAppendElement (result_ptr, b->cond_string); | |
262 | ||
263 | dsprintf_append_element (result_ptr, "%d", b->thread); | |
264 | dsprintf_append_element (result_ptr, "%d", b->hit_count); | |
265 | ||
266 | return TCL_OK; | |
267 | } | |
268 | ||
754e5da2 SG |
269 | static void |
270 | breakpoint_notify(b, action) | |
271 | struct breakpoint *b; | |
272 | const char *action; | |
273 | { | |
6131622e | 274 | char buf[100]; |
754e5da2 SG |
275 | int v; |
276 | ||
277 | if (b->type != bp_breakpoint) | |
278 | return; | |
279 | ||
6131622e | 280 | sprintf (buf, "gdbtk_tcl_breakpoint %s %d", action, b->number); |
754e5da2 | 281 | |
6131622e | 282 | v = Tcl_Eval (interp, buf); |
754e5da2 SG |
283 | |
284 | if (v != TCL_OK) | |
285 | { | |
546b8ca7 SG |
286 | gdbtk_fputs (interp->result, gdb_stdout); |
287 | gdbtk_fputs ("\n", gdb_stdout); | |
754e5da2 | 288 | } |
754e5da2 SG |
289 | } |
290 | ||
291 | static void | |
292 | gdbtk_create_breakpoint(b) | |
293 | struct breakpoint *b; | |
294 | { | |
6131622e | 295 | breakpoint_notify (b, "create"); |
754e5da2 SG |
296 | } |
297 | ||
298 | static void | |
299 | gdbtk_delete_breakpoint(b) | |
300 | struct breakpoint *b; | |
301 | { | |
6131622e | 302 | breakpoint_notify (b, "delete"); |
754e5da2 SG |
303 | } |
304 | ||
305 | static void | |
6131622e | 306 | gdbtk_modify_breakpoint(b) |
754e5da2 SG |
307 | struct breakpoint *b; |
308 | { | |
6131622e | 309 | breakpoint_notify (b, "modify"); |
754e5da2 SG |
310 | } |
311 | \f | |
312 | /* This implements the TCL command `gdb_loc', which returns a list consisting | |
313 | of the source and line number associated with the current pc. */ | |
314 | ||
315 | static int | |
316 | gdb_loc (clientData, interp, argc, argv) | |
317 | ClientData clientData; | |
318 | Tcl_Interp *interp; | |
319 | int argc; | |
320 | char *argv[]; | |
321 | { | |
322 | char *filename; | |
754e5da2 SG |
323 | struct symtab_and_line sal; |
324 | char *funcname; | |
8532893d | 325 | CORE_ADDR pc; |
754e5da2 SG |
326 | |
327 | if (argc == 1) | |
328 | { | |
1dfc8dfb | 329 | pc = selected_frame ? selected_frame->pc : stop_pc; |
754e5da2 SG |
330 | sal = find_pc_line (pc, 0); |
331 | } | |
332 | else if (argc == 2) | |
333 | { | |
754e5da2 | 334 | struct symtabs_and_lines sals; |
8532893d | 335 | int nelts; |
754e5da2 SG |
336 | |
337 | sals = decode_line_spec (argv[1], 1); | |
338 | ||
8532893d SG |
339 | nelts = sals.nelts; |
340 | sal = sals.sals[0]; | |
341 | free (sals.sals); | |
342 | ||
754e5da2 | 343 | if (sals.nelts != 1) |
6131622e | 344 | error ("Ambiguous line spec"); |
754e5da2 | 345 | |
8532893d | 346 | pc = sal.pc; |
754e5da2 SG |
347 | } |
348 | else | |
6131622e | 349 | error ("wrong # args"); |
754e5da2 | 350 | |
754e5da2 | 351 | if (sal.symtab) |
6131622e | 352 | Tcl_DStringAppendElement (result_ptr, sal.symtab->filename); |
754e5da2 | 353 | else |
6131622e | 354 | Tcl_DStringAppendElement (result_ptr, ""); |
8532893d SG |
355 | |
356 | find_pc_partial_function (pc, &funcname, NULL, NULL); | |
6131622e | 357 | Tcl_DStringAppendElement (result_ptr, funcname); |
8532893d | 358 | |
637b1661 | 359 | filename = symtab_to_filename (sal.symtab); |
6131622e | 360 | Tcl_DStringAppendElement (result_ptr, filename); |
8532893d | 361 | |
9468f8aa | 362 | dsprintf_append_element (result_ptr, "%d", sal.line); /* line number */ |
754e5da2 | 363 | |
9468f8aa | 364 | dsprintf_append_element (result_ptr, "0x%lx", pc); /* PC */ |
8532893d | 365 | |
754e5da2 SG |
366 | return TCL_OK; |
367 | } | |
368 | \f | |
09722039 SG |
369 | /* This implements the TCL command `gdb_eval'. */ |
370 | ||
371 | static int | |
372 | gdb_eval (clientData, interp, argc, argv) | |
373 | ClientData clientData; | |
374 | Tcl_Interp *interp; | |
375 | int argc; | |
376 | char *argv[]; | |
377 | { | |
378 | struct expression *expr; | |
379 | struct cleanup *old_chain; | |
380 | value_ptr val; | |
381 | ||
382 | if (argc != 2) | |
6131622e | 383 | error ("wrong # args"); |
09722039 SG |
384 | |
385 | expr = parse_expression (argv[1]); | |
386 | ||
387 | old_chain = make_cleanup (free_current_contents, &expr); | |
388 | ||
389 | val = evaluate_expression (expr); | |
390 | ||
09722039 SG |
391 | val_print (VALUE_TYPE (val), VALUE_CONTENTS (val), VALUE_ADDRESS (val), |
392 | gdb_stdout, 0, 0, 0, 0); | |
09722039 SG |
393 | |
394 | do_cleanups (old_chain); | |
395 | ||
396 | return TCL_OK; | |
397 | } | |
398 | \f | |
5b21fb68 SG |
399 | /* This implements the TCL command `gdb_sourcelines', which returns a list of |
400 | all of the lines containing executable code for the specified source file | |
401 | (ie: lines where you can put breakpoints). */ | |
402 | ||
403 | static int | |
404 | gdb_sourcelines (clientData, interp, argc, argv) | |
405 | ClientData clientData; | |
406 | Tcl_Interp *interp; | |
407 | int argc; | |
408 | char *argv[]; | |
409 | { | |
410 | struct symtab *symtab; | |
411 | struct linetable_entry *le; | |
412 | int nlines; | |
5b21fb68 SG |
413 | |
414 | if (argc != 2) | |
6131622e | 415 | error ("wrong # args"); |
5b21fb68 SG |
416 | |
417 | symtab = lookup_symtab (argv[1]); | |
418 | ||
419 | if (!symtab) | |
6131622e | 420 | error ("No such file"); |
5b21fb68 SG |
421 | |
422 | /* If there's no linetable, or no entries, then we are done. */ | |
423 | ||
424 | if (!symtab->linetable | |
425 | || symtab->linetable->nitems == 0) | |
426 | { | |
6131622e | 427 | Tcl_DStringAppendElement (result_ptr, ""); |
5b21fb68 SG |
428 | return TCL_OK; |
429 | } | |
430 | ||
431 | le = symtab->linetable->item; | |
432 | nlines = symtab->linetable->nitems; | |
433 | ||
434 | for (;nlines > 0; nlines--, le++) | |
435 | { | |
436 | /* If the pc of this line is the same as the pc of the next line, then | |
437 | just skip it. */ | |
438 | if (nlines > 1 | |
439 | && le->pc == (le + 1)->pc) | |
440 | continue; | |
441 | ||
9468f8aa | 442 | dsprintf_append_element (result_ptr, "%d", le->line); |
5b21fb68 SG |
443 | } |
444 | ||
445 | return TCL_OK; | |
446 | } | |
447 | \f | |
746d1df4 SG |
448 | static int |
449 | map_arg_registers (argc, argv, func, argp) | |
450 | int argc; | |
451 | char *argv[]; | |
6131622e | 452 | void (*func) PARAMS ((int regnum, void *argp)); |
746d1df4 SG |
453 | void *argp; |
454 | { | |
455 | int regnum; | |
456 | ||
457 | /* Note that the test for a valid register must include checking the | |
458 | reg_names array because NUM_REGS may be allocated for the union of the | |
459 | register sets within a family of related processors. In this case, the | |
460 | trailing entries of reg_names will change depending upon the particular | |
461 | processor being debugged. */ | |
462 | ||
463 | if (argc == 0) /* No args, just do all the regs */ | |
464 | { | |
465 | for (regnum = 0; | |
466 | regnum < NUM_REGS | |
467 | && reg_names[regnum] != NULL | |
468 | && *reg_names[regnum] != '\000'; | |
469 | regnum++) | |
470 | func (regnum, argp); | |
471 | ||
472 | return TCL_OK; | |
473 | } | |
474 | ||
475 | /* Else, list of register #s, just do listed regs */ | |
476 | for (; argc > 0; argc--, argv++) | |
477 | { | |
478 | regnum = atoi (*argv); | |
479 | ||
480 | if (regnum >= 0 | |
481 | && regnum < NUM_REGS | |
482 | && reg_names[regnum] != NULL | |
483 | && *reg_names[regnum] != '\000') | |
484 | func (regnum, argp); | |
485 | else | |
6131622e | 486 | error ("bad register number"); |
746d1df4 SG |
487 | } |
488 | ||
489 | return TCL_OK; | |
490 | } | |
491 | ||
6131622e | 492 | static void |
746d1df4 SG |
493 | get_register_name (regnum, argp) |
494 | int regnum; | |
495 | void *argp; /* Ignored */ | |
496 | { | |
6131622e | 497 | Tcl_DStringAppendElement (result_ptr, reg_names[regnum]); |
746d1df4 SG |
498 | } |
499 | ||
5b21fb68 SG |
500 | /* This implements the TCL command `gdb_regnames', which returns a list of |
501 | all of the register names. */ | |
502 | ||
503 | static int | |
504 | gdb_regnames (clientData, interp, argc, argv) | |
505 | ClientData clientData; | |
506 | Tcl_Interp *interp; | |
507 | int argc; | |
508 | char *argv[]; | |
509 | { | |
746d1df4 SG |
510 | argc--; |
511 | argv++; | |
512 | ||
513 | return map_arg_registers (argc, argv, get_register_name, 0); | |
514 | } | |
515 | ||
746d1df4 SG |
516 | #ifndef REGISTER_CONVERTIBLE |
517 | #define REGISTER_CONVERTIBLE(x) (0 != 0) | |
518 | #endif | |
519 | ||
520 | #ifndef REGISTER_CONVERT_TO_VIRTUAL | |
521 | #define REGISTER_CONVERT_TO_VIRTUAL(x, y, z, a) | |
522 | #endif | |
523 | ||
524 | #ifndef INVALID_FLOAT | |
525 | #define INVALID_FLOAT(x, y) (0 != 0) | |
526 | #endif | |
527 | ||
6131622e | 528 | static void |
746d1df4 | 529 | get_register (regnum, fp) |
6131622e | 530 | int regnum; |
746d1df4 SG |
531 | void *fp; |
532 | { | |
533 | char raw_buffer[MAX_REGISTER_RAW_SIZE]; | |
534 | char virtual_buffer[MAX_REGISTER_VIRTUAL_SIZE]; | |
535 | int format = (int)fp; | |
536 | ||
537 | if (read_relative_register_raw_bytes (regnum, raw_buffer)) | |
538 | { | |
6131622e | 539 | Tcl_DStringAppendElement (result_ptr, "Optimized out"); |
746d1df4 SG |
540 | return; |
541 | } | |
542 | ||
746d1df4 SG |
543 | /* Convert raw data to virtual format if necessary. */ |
544 | ||
545 | if (REGISTER_CONVERTIBLE (regnum)) | |
546 | { | |
547 | REGISTER_CONVERT_TO_VIRTUAL (regnum, REGISTER_VIRTUAL_TYPE (regnum), | |
548 | raw_buffer, virtual_buffer); | |
549 | } | |
550 | else | |
551 | memcpy (virtual_buffer, raw_buffer, REGISTER_VIRTUAL_SIZE (regnum)); | |
552 | ||
553 | val_print (REGISTER_VIRTUAL_TYPE (regnum), virtual_buffer, 0, | |
554 | gdb_stdout, format, 1, 0, Val_pretty_default); | |
555 | ||
6131622e | 556 | Tcl_DStringAppend (result_ptr, " ", -1); |
746d1df4 SG |
557 | } |
558 | ||
559 | static int | |
560 | gdb_fetch_registers (clientData, interp, argc, argv) | |
561 | ClientData clientData; | |
562 | Tcl_Interp *interp; | |
563 | int argc; | |
564 | char *argv[]; | |
565 | { | |
566 | int format; | |
567 | ||
568 | if (argc < 2) | |
6131622e | 569 | error ("wrong # args"); |
5b21fb68 | 570 | |
746d1df4 SG |
571 | argc--; |
572 | argv++; | |
5b21fb68 | 573 | |
746d1df4 SG |
574 | argc--; |
575 | format = **argv++; | |
576 | ||
577 | return map_arg_registers (argc, argv, get_register, format); | |
578 | } | |
579 | ||
580 | /* This contains the previous values of the registers, since the last call to | |
581 | gdb_changed_register_list. */ | |
582 | ||
583 | static char old_regs[REGISTER_BYTES]; | |
584 | ||
6131622e | 585 | static void |
746d1df4 | 586 | register_changed_p (regnum, argp) |
6131622e | 587 | int regnum; |
746d1df4 SG |
588 | void *argp; /* Ignored */ |
589 | { | |
590 | char raw_buffer[MAX_REGISTER_RAW_SIZE]; | |
591 | char buf[100]; | |
592 | ||
593 | if (read_relative_register_raw_bytes (regnum, raw_buffer)) | |
594 | return; | |
595 | ||
596 | if (memcmp (&old_regs[REGISTER_BYTE (regnum)], raw_buffer, | |
597 | REGISTER_RAW_SIZE (regnum)) == 0) | |
598 | return; | |
599 | ||
600 | /* Found a changed register. Save new value and return it's number. */ | |
601 | ||
602 | memcpy (&old_regs[REGISTER_BYTE (regnum)], raw_buffer, | |
603 | REGISTER_RAW_SIZE (regnum)); | |
604 | ||
9468f8aa | 605 | dsprintf_append_element (result_ptr, "%d", regnum); |
746d1df4 SG |
606 | } |
607 | ||
608 | static int | |
609 | gdb_changed_register_list (clientData, interp, argc, argv) | |
610 | ClientData clientData; | |
611 | Tcl_Interp *interp; | |
612 | int argc; | |
613 | char *argv[]; | |
614 | { | |
746d1df4 SG |
615 | argc--; |
616 | argv++; | |
617 | ||
618 | return map_arg_registers (argc, argv, register_changed_p, NULL); | |
5b21fb68 SG |
619 | } |
620 | \f | |
754e5da2 SG |
621 | /* This implements the TCL command `gdb_cmd', which sends it's argument into |
622 | the GDB command scanner. */ | |
623 | ||
624 | static int | |
625 | gdb_cmd (clientData, interp, argc, argv) | |
626 | ClientData clientData; | |
627 | Tcl_Interp *interp; | |
628 | int argc; | |
629 | char *argv[]; | |
630 | { | |
754e5da2 | 631 | if (argc != 2) |
6131622e | 632 | error ("wrong # args"); |
754e5da2 | 633 | |
86db943c | 634 | execute_command (argv[1], 1); |
479f0f18 | 635 | |
754e5da2 | 636 | bpstat_do_actions (&stop_bpstat); |
754e5da2 | 637 | |
754e5da2 SG |
638 | return TCL_OK; |
639 | } | |
640 | ||
86db943c SG |
641 | /* This routine acts as a top-level for all GDB code called by tcl/Tk. It |
642 | handles cleanups, and calls to return_to_top_level (usually via error). | |
643 | This is necessary in order to prevent a longjmp out of the bowels of Tk, | |
644 | possibly leaving things in a bad state. Since this routine can be called | |
645 | recursively, it needs to save and restore the contents of the jmp_buf as | |
646 | necessary. */ | |
647 | ||
648 | static int | |
649 | call_wrapper (clientData, interp, argc, argv) | |
650 | ClientData clientData; | |
651 | Tcl_Interp *interp; | |
652 | int argc; | |
653 | char *argv[]; | |
654 | { | |
655 | int val; | |
656 | struct cleanup *saved_cleanup_chain; | |
657 | Tcl_CmdProc *func; | |
658 | jmp_buf saved_error_return; | |
6131622e SG |
659 | Tcl_DString result, *old_result_ptr; |
660 | ||
661 | Tcl_DStringInit (&result); | |
662 | old_result_ptr = result_ptr; | |
663 | result_ptr = &result; | |
86db943c SG |
664 | |
665 | func = (Tcl_CmdProc *)clientData; | |
666 | memcpy (saved_error_return, error_return, sizeof (jmp_buf)); | |
667 | ||
668 | saved_cleanup_chain = save_cleanups (); | |
669 | ||
670 | if (!setjmp (error_return)) | |
671 | val = func (clientData, interp, argc, argv); | |
672 | else | |
673 | { | |
674 | val = TCL_ERROR; /* Flag an error for TCL */ | |
675 | ||
86db943c SG |
676 | gdb_flush (gdb_stderr); /* Flush error output */ |
677 | ||
09722039 SG |
678 | gdb_flush (gdb_stdout); /* Sometimes error output comes here as well */ |
679 | ||
86db943c SG |
680 | /* In case of an error, we may need to force the GUI into idle mode because |
681 | gdbtk_call_command may have bombed out while in the command routine. */ | |
682 | ||
683 | Tcl_VarEval (interp, "gdbtk_tcl_idle", NULL); | |
684 | } | |
685 | ||
686 | do_cleanups (ALL_CLEANUPS); | |
687 | ||
688 | restore_cleanups (saved_cleanup_chain); | |
689 | ||
690 | memcpy (error_return, saved_error_return, sizeof (jmp_buf)); | |
691 | ||
6131622e SG |
692 | Tcl_DStringResult (interp, &result); |
693 | result_ptr = old_result_ptr; | |
694 | ||
86db943c SG |
695 | return val; |
696 | } | |
697 | ||
754e5da2 SG |
698 | static int |
699 | gdb_listfiles (clientData, interp, argc, argv) | |
700 | ClientData clientData; | |
701 | Tcl_Interp *interp; | |
702 | int argc; | |
703 | char *argv[]; | |
704 | { | |
754e5da2 SG |
705 | struct objfile *objfile; |
706 | struct partial_symtab *psymtab; | |
546b8ca7 | 707 | struct symtab *symtab; |
754e5da2 SG |
708 | |
709 | ALL_PSYMTABS (objfile, psymtab) | |
6131622e | 710 | Tcl_DStringAppendElement (result_ptr, psymtab->filename); |
754e5da2 | 711 | |
546b8ca7 | 712 | ALL_SYMTABS (objfile, symtab) |
6131622e | 713 | Tcl_DStringAppendElement (result_ptr, symtab->filename); |
546b8ca7 | 714 | |
754e5da2 SG |
715 | return TCL_OK; |
716 | } | |
479f0f18 SG |
717 | |
718 | static int | |
719 | gdb_stop (clientData, interp, argc, argv) | |
720 | ClientData clientData; | |
721 | Tcl_Interp *interp; | |
722 | int argc; | |
723 | char *argv[]; | |
724 | { | |
6c27841f | 725 | target_stop (); |
546b8ca7 SG |
726 | |
727 | return TCL_OK; | |
479f0f18 | 728 | } |
09722039 SG |
729 | \f |
730 | /* This implements the TCL command `gdb_disassemble'. */ | |
479f0f18 | 731 | |
09722039 SG |
732 | static int |
733 | gdbtk_dis_asm_read_memory (memaddr, myaddr, len, info) | |
734 | bfd_vma memaddr; | |
735 | bfd_byte *myaddr; | |
736 | int len; | |
737 | disassemble_info *info; | |
738 | { | |
739 | extern struct target_ops exec_ops; | |
740 | int res; | |
741 | ||
742 | errno = 0; | |
743 | res = xfer_memory (memaddr, myaddr, len, 0, &exec_ops); | |
744 | ||
745 | if (res == len) | |
746 | return 0; | |
747 | else | |
748 | if (errno == 0) | |
749 | return EIO; | |
750 | else | |
751 | return errno; | |
752 | } | |
753 | ||
754 | /* We need a different sort of line table from the normal one cuz we can't | |
755 | depend upon implicit line-end pc's for lines. This is because of the | |
756 | reordering we are about to do. */ | |
757 | ||
758 | struct my_line_entry { | |
759 | int line; | |
760 | CORE_ADDR start_pc; | |
761 | CORE_ADDR end_pc; | |
762 | }; | |
763 | ||
764 | static int | |
765 | compare_lines (mle1p, mle2p) | |
766 | const PTR mle1p; | |
767 | const PTR mle2p; | |
768 | { | |
769 | struct my_line_entry *mle1, *mle2; | |
770 | int val; | |
771 | ||
772 | mle1 = (struct my_line_entry *) mle1p; | |
773 | mle2 = (struct my_line_entry *) mle2p; | |
774 | ||
775 | val = mle1->line - mle2->line; | |
776 | ||
777 | if (val != 0) | |
778 | return val; | |
779 | ||
780 | return mle1->start_pc - mle2->start_pc; | |
781 | } | |
782 | ||
783 | static int | |
784 | gdb_disassemble (clientData, interp, argc, argv) | |
785 | ClientData clientData; | |
786 | Tcl_Interp *interp; | |
787 | int argc; | |
788 | char *argv[]; | |
789 | { | |
790 | CORE_ADDR pc, low, high; | |
791 | int mixed_source_and_assembly; | |
a76ef70a | 792 | static disassemble_info di = { |
d807bd87 | 793 | (fprintf_ftype) fprintf_unfiltered, /* fprintf_func */ |
a76ef70a SG |
794 | gdb_stdout, /* stream */ |
795 | NULL, /* application_data */ | |
796 | 0, /* flags */ | |
797 | NULL, /* private_data */ | |
798 | NULL, /* read_memory_func */ | |
799 | dis_asm_memory_error, /* memory_error_func */ | |
800 | dis_asm_print_address /* print_address_func */ | |
801 | }; | |
09722039 SG |
802 | |
803 | if (argc != 3 && argc != 4) | |
6131622e | 804 | error ("wrong # args"); |
09722039 SG |
805 | |
806 | if (strcmp (argv[1], "source") == 0) | |
807 | mixed_source_and_assembly = 1; | |
808 | else if (strcmp (argv[1], "nosource") == 0) | |
809 | mixed_source_and_assembly = 0; | |
810 | else | |
6131622e | 811 | error ("First arg must be 'source' or 'nosource'"); |
09722039 SG |
812 | |
813 | low = parse_and_eval_address (argv[2]); | |
814 | ||
815 | if (argc == 3) | |
816 | { | |
817 | if (find_pc_partial_function (low, NULL, &low, &high) == 0) | |
6131622e | 818 | error ("No function contains specified address"); |
09722039 SG |
819 | } |
820 | else | |
821 | high = parse_and_eval_address (argv[3]); | |
822 | ||
823 | /* If disassemble_from_exec == -1, then we use the following heuristic to | |
824 | determine whether or not to do disassembly from target memory or from the | |
825 | exec file: | |
826 | ||
827 | If we're debugging a local process, read target memory, instead of the | |
828 | exec file. This makes disassembly of functions in shared libs work | |
829 | correctly. | |
830 | ||
831 | Else, we're debugging a remote process, and should disassemble from the | |
832 | exec file for speed. However, this is no good if the target modifies it's | |
833 | code (for relocation, or whatever). | |
834 | */ | |
835 | ||
836 | if (disassemble_from_exec == -1) | |
837 | if (strcmp (target_shortname, "child") == 0 | |
d7c4766c SS |
838 | || strcmp (target_shortname, "procfs") == 0 |
839 | || strcmp (target_shortname, "vxprocess") == 0) | |
09722039 SG |
840 | disassemble_from_exec = 0; /* It's a child process, read inferior mem */ |
841 | else | |
842 | disassemble_from_exec = 1; /* It's remote, read the exec file */ | |
843 | ||
844 | if (disassemble_from_exec) | |
a76ef70a SG |
845 | di.read_memory_func = gdbtk_dis_asm_read_memory; |
846 | else | |
847 | di.read_memory_func = dis_asm_read_memory; | |
09722039 SG |
848 | |
849 | /* If just doing straight assembly, all we need to do is disassemble | |
850 | everything between low and high. If doing mixed source/assembly, we've | |
851 | got a totally different path to follow. */ | |
852 | ||
853 | if (mixed_source_and_assembly) | |
854 | { /* Come here for mixed source/assembly */ | |
855 | /* The idea here is to present a source-O-centric view of a function to | |
856 | the user. This means that things are presented in source order, with | |
857 | (possibly) out of order assembly immediately following. */ | |
858 | struct symtab *symtab; | |
859 | struct linetable_entry *le; | |
860 | int nlines; | |
c81a3fa9 | 861 | int newlines; |
09722039 SG |
862 | struct my_line_entry *mle; |
863 | struct symtab_and_line sal; | |
864 | int i; | |
865 | int out_of_order; | |
c81a3fa9 | 866 | int next_line; |
09722039 SG |
867 | |
868 | symtab = find_pc_symtab (low); /* Assume symtab is valid for whole PC range */ | |
869 | ||
870 | if (!symtab) | |
871 | goto assembly_only; | |
872 | ||
873 | /* First, convert the linetable to a bunch of my_line_entry's. */ | |
874 | ||
875 | le = symtab->linetable->item; | |
876 | nlines = symtab->linetable->nitems; | |
877 | ||
878 | if (nlines <= 0) | |
879 | goto assembly_only; | |
880 | ||
881 | mle = (struct my_line_entry *) alloca (nlines * sizeof (struct my_line_entry)); | |
882 | ||
883 | out_of_order = 0; | |
884 | ||
c81a3fa9 SG |
885 | /* Copy linetable entries for this function into our data structure, creating |
886 | end_pc's and setting out_of_order as appropriate. */ | |
887 | ||
888 | /* First, skip all the preceding functions. */ | |
889 | ||
890 | for (i = 0; i < nlines - 1 && le[i].pc < low; i++) ; | |
891 | ||
892 | /* Now, copy all entries before the end of this function. */ | |
893 | ||
894 | newlines = 0; | |
895 | for (; i < nlines - 1 && le[i].pc < high; i++) | |
09722039 | 896 | { |
c81a3fa9 SG |
897 | if (le[i].line == le[i + 1].line |
898 | && le[i].pc == le[i + 1].pc) | |
899 | continue; /* Ignore duplicates */ | |
900 | ||
901 | mle[newlines].line = le[i].line; | |
09722039 SG |
902 | if (le[i].line > le[i + 1].line) |
903 | out_of_order = 1; | |
c81a3fa9 SG |
904 | mle[newlines].start_pc = le[i].pc; |
905 | mle[newlines].end_pc = le[i + 1].pc; | |
906 | newlines++; | |
09722039 SG |
907 | } |
908 | ||
c81a3fa9 SG |
909 | /* If we're on the last line, and it's part of the function, then we need to |
910 | get the end pc in a special way. */ | |
911 | ||
912 | if (i == nlines - 1 | |
913 | && le[i].pc < high) | |
914 | { | |
915 | mle[newlines].line = le[i].line; | |
916 | mle[newlines].start_pc = le[i].pc; | |
917 | sal = find_pc_line (le[i].pc, 0); | |
918 | mle[newlines].end_pc = sal.end; | |
919 | newlines++; | |
920 | } | |
09722039 SG |
921 | |
922 | /* Now, sort mle by line #s (and, then by addresses within lines). */ | |
923 | ||
924 | if (out_of_order) | |
c81a3fa9 | 925 | qsort (mle, newlines, sizeof (struct my_line_entry), compare_lines); |
09722039 SG |
926 | |
927 | /* Now, for each line entry, emit the specified lines (unless they have been | |
928 | emitted before), followed by the assembly code for that line. */ | |
929 | ||
c81a3fa9 SG |
930 | next_line = 0; /* Force out first line */ |
931 | for (i = 0; i < newlines; i++) | |
09722039 | 932 | { |
c81a3fa9 SG |
933 | /* Print out everything from next_line to the current line. */ |
934 | ||
935 | if (mle[i].line >= next_line) | |
09722039 | 936 | { |
c81a3fa9 SG |
937 | if (next_line != 0) |
938 | print_source_lines (symtab, next_line, mle[i].line + 1, 0); | |
09722039 | 939 | else |
c81a3fa9 SG |
940 | print_source_lines (symtab, mle[i].line, mle[i].line + 1, 0); |
941 | ||
942 | next_line = mle[i].line + 1; | |
09722039 | 943 | } |
c81a3fa9 | 944 | |
09722039 SG |
945 | for (pc = mle[i].start_pc; pc < mle[i].end_pc; ) |
946 | { | |
947 | QUIT; | |
948 | fputs_unfiltered (" ", gdb_stdout); | |
949 | print_address (pc, gdb_stdout); | |
950 | fputs_unfiltered (":\t ", gdb_stdout); | |
d039851f | 951 | pc += (*tm_print_insn) (pc, &di); |
09722039 SG |
952 | fputs_unfiltered ("\n", gdb_stdout); |
953 | } | |
954 | } | |
955 | } | |
956 | else | |
957 | { | |
958 | assembly_only: | |
959 | for (pc = low; pc < high; ) | |
960 | { | |
961 | QUIT; | |
962 | fputs_unfiltered (" ", gdb_stdout); | |
963 | print_address (pc, gdb_stdout); | |
964 | fputs_unfiltered (":\t ", gdb_stdout); | |
d039851f | 965 | pc += (*tm_print_insn) (pc, &di); |
09722039 SG |
966 | fputs_unfiltered ("\n", gdb_stdout); |
967 | } | |
968 | } | |
969 | ||
09722039 SG |
970 | gdb_flush (gdb_stdout); |
971 | ||
972 | return TCL_OK; | |
973 | } | |
754e5da2 SG |
974 | \f |
975 | static void | |
976 | tk_command (cmd, from_tty) | |
977 | char *cmd; | |
978 | int from_tty; | |
979 | { | |
546b8ca7 SG |
980 | int retval; |
981 | char *result; | |
982 | struct cleanup *old_chain; | |
983 | ||
984 | retval = Tcl_Eval (interp, cmd); | |
985 | ||
986 | result = strdup (interp->result); | |
754e5da2 | 987 | |
546b8ca7 SG |
988 | old_chain = make_cleanup (free, result); |
989 | ||
990 | if (retval != TCL_OK) | |
991 | error (result); | |
992 | ||
993 | printf_unfiltered ("%s\n", result); | |
994 | ||
995 | do_cleanups (old_chain); | |
754e5da2 SG |
996 | } |
997 | ||
998 | static void | |
999 | cleanup_init (ignored) | |
1000 | int ignored; | |
1001 | { | |
1002 | if (mainWindow != NULL) | |
1003 | Tk_DestroyWindow (mainWindow); | |
1004 | mainWindow = NULL; | |
1005 | ||
1006 | if (interp != NULL) | |
1007 | Tcl_DeleteInterp (interp); | |
1008 | interp = NULL; | |
1009 | } | |
1010 | ||
637b1661 SG |
1011 | /* Come here during long calculations to check for GUI events. Usually invoked |
1012 | via the QUIT macro. */ | |
1013 | ||
1014 | static void | |
1015 | gdbtk_interactive () | |
1016 | { | |
1017 | /* Tk_DoOneEvent (TK_DONT_WAIT|TK_IDLE_EVENTS); */ | |
1018 | } | |
1019 | ||
479f0f18 SG |
1020 | /* Come here when there is activity on the X file descriptor. */ |
1021 | ||
1022 | static void | |
1023 | x_event (signo) | |
1024 | int signo; | |
1025 | { | |
1026 | /* Process pending events */ | |
1027 | ||
1028 | while (Tk_DoOneEvent (TK_DONT_WAIT|TK_ALL_EVENTS) != 0); | |
1029 | } | |
1030 | ||
1031 | static int | |
1032 | gdbtk_wait (pid, ourstatus) | |
1033 | int pid; | |
1034 | struct target_waitstatus *ourstatus; | |
1035 | { | |
736a82e7 SG |
1036 | struct sigaction action; |
1037 | static sigset_t nullsigmask = {0}; | |
1038 | ||
1039 | #ifndef SA_RESTART | |
1040 | /* Needed for SunOS 4.1.x */ | |
1041 | #define SA_RESTART 0 | |
546b8ca7 | 1042 | #endif |
479f0f18 | 1043 | |
736a82e7 SG |
1044 | action.sa_handler = x_event; |
1045 | action.sa_mask = nullsigmask; | |
1046 | action.sa_flags = SA_RESTART; | |
1047 | sigaction(SIGIO, &action, NULL); | |
1048 | ||
479f0f18 SG |
1049 | pid = target_wait (pid, ourstatus); |
1050 | ||
736a82e7 SG |
1051 | action.sa_handler = SIG_IGN; |
1052 | sigaction(SIGIO, &action, NULL); | |
479f0f18 SG |
1053 | |
1054 | return pid; | |
1055 | } | |
1056 | ||
1057 | /* This is called from execute_command, and provides a wrapper around | |
1058 | various command routines in a place where both protocol messages and | |
1059 | user input both flow through. Mostly this is used for indicating whether | |
1060 | the target process is running or not. | |
1061 | */ | |
1062 | ||
1063 | static void | |
1064 | gdbtk_call_command (cmdblk, arg, from_tty) | |
1065 | struct cmd_list_element *cmdblk; | |
1066 | char *arg; | |
1067 | int from_tty; | |
1068 | { | |
1069 | if (cmdblk->class == class_run) | |
1070 | { | |
1071 | Tcl_VarEval (interp, "gdbtk_tcl_busy", NULL); | |
1072 | (*cmdblk->function.cfunc)(arg, from_tty); | |
1073 | Tcl_VarEval (interp, "gdbtk_tcl_idle", NULL); | |
1074 | } | |
1075 | else | |
1076 | (*cmdblk->function.cfunc)(arg, from_tty); | |
1077 | } | |
1078 | ||
754e5da2 SG |
1079 | static void |
1080 | gdbtk_init () | |
1081 | { | |
1082 | struct cleanup *old_chain; | |
1083 | char *gdbtk_filename; | |
479f0f18 | 1084 | int i; |
736a82e7 SG |
1085 | struct sigaction action; |
1086 | static sigset_t nullsigmask = {0}; | |
754e5da2 SG |
1087 | |
1088 | old_chain = make_cleanup (cleanup_init, 0); | |
1089 | ||
1090 | /* First init tcl and tk. */ | |
1091 | ||
1092 | interp = Tcl_CreateInterp (); | |
1093 | ||
1094 | if (!interp) | |
1095 | error ("Tcl_CreateInterp failed"); | |
1096 | ||
1097 | mainWindow = Tk_CreateMainWindow (interp, NULL, "gdb", "Gdb"); | |
1098 | ||
1099 | if (!mainWindow) | |
1100 | return; /* DISPLAY probably not set */ | |
1101 | ||
1102 | if (Tcl_Init(interp) != TCL_OK) | |
1103 | error ("Tcl_Init failed: %s", interp->result); | |
1104 | ||
1105 | if (Tk_Init(interp) != TCL_OK) | |
1106 | error ("Tk_Init failed: %s", interp->result); | |
1107 | ||
86db943c SG |
1108 | Tcl_CreateCommand (interp, "gdb_cmd", call_wrapper, gdb_cmd, NULL); |
1109 | Tcl_CreateCommand (interp, "gdb_loc", call_wrapper, gdb_loc, NULL); | |
1110 | Tcl_CreateCommand (interp, "gdb_sourcelines", call_wrapper, gdb_sourcelines, | |
1111 | NULL); | |
1112 | Tcl_CreateCommand (interp, "gdb_listfiles", call_wrapper, gdb_listfiles, | |
746d1df4 | 1113 | NULL); |
86db943c SG |
1114 | Tcl_CreateCommand (interp, "gdb_stop", call_wrapper, gdb_stop, NULL); |
1115 | Tcl_CreateCommand (interp, "gdb_regnames", call_wrapper, gdb_regnames, NULL); | |
1116 | Tcl_CreateCommand (interp, "gdb_fetch_registers", call_wrapper, | |
1117 | gdb_fetch_registers, NULL); | |
1118 | Tcl_CreateCommand (interp, "gdb_changed_register_list", call_wrapper, | |
1119 | gdb_changed_register_list, NULL); | |
09722039 SG |
1120 | Tcl_CreateCommand (interp, "gdb_disassemble", call_wrapper, |
1121 | gdb_disassemble, NULL); | |
1122 | Tcl_CreateCommand (interp, "gdb_eval", call_wrapper, gdb_eval, NULL); | |
6131622e SG |
1123 | Tcl_CreateCommand (interp, "gdb_get_breakpoint_list", call_wrapper, |
1124 | gdb_get_breakpoint_list, NULL); | |
1125 | Tcl_CreateCommand (interp, "gdb_get_breakpoint_info", call_wrapper, | |
1126 | gdb_get_breakpoint_info, NULL); | |
754e5da2 | 1127 | |
09722039 | 1128 | command_loop_hook = Tk_MainLoop; |
09722039 SG |
1129 | print_frame_info_listing_hook = null_routine; |
1130 | query_hook = gdbtk_query; | |
1131 | flush_hook = gdbtk_flush; | |
1132 | create_breakpoint_hook = gdbtk_create_breakpoint; | |
1133 | delete_breakpoint_hook = gdbtk_delete_breakpoint; | |
6131622e | 1134 | modify_breakpoint_hook = gdbtk_modify_breakpoint; |
09722039 SG |
1135 | interactive_hook = gdbtk_interactive; |
1136 | target_wait_hook = gdbtk_wait; | |
1137 | call_command_hook = gdbtk_call_command; | |
754e5da2 | 1138 | |
cd2df226 | 1139 | /* Get the file descriptor for the X server */ |
479f0f18 | 1140 | |
cd2df226 | 1141 | x_fd = ConnectionNumber (Tk_Display (mainWindow)); |
479f0f18 SG |
1142 | |
1143 | /* Setup for I/O interrupts */ | |
1144 | ||
736a82e7 SG |
1145 | action.sa_mask = nullsigmask; |
1146 | action.sa_flags = 0; | |
1147 | action.sa_handler = SIG_IGN; | |
1148 | sigaction(SIGIO, &action, NULL); | |
1149 | ||
1150 | #ifdef FIOASYNC | |
1151 | i = 1; | |
1152 | if (ioctl (x_fd, FIOASYNC, &i)) | |
1153 | perror_with_name ("gdbtk_init: ioctl FIOASYNC failed"); | |
479f0f18 | 1154 | |
77a89957 | 1155 | #ifdef SIOCSPGRP |
736a82e7 SG |
1156 | i = getpid(); |
1157 | if (ioctl (x_fd, SIOCSPGRP, &i)) | |
1158 | perror_with_name ("gdbtk_init: ioctl SIOCSPGRP failed"); | |
45f90c50 MM |
1159 | |
1160 | #else | |
1161 | #ifdef F_SETOWN | |
1162 | i = getpid(); | |
1163 | if (fcntl (x_fd, F_SETOWN, i)) | |
1164 | perror_with_name ("gdbtk_init: fcntl F_SETOWN failed"); | |
1165 | #endif /* F_SETOWN */ | |
1166 | #endif /* !SIOCSPGRP */ | |
546b8ca7 SG |
1167 | #else |
1168 | if (ioctl (x_fd, I_SETSIG, S_INPUT|S_RDNORM) < 0) | |
736a82e7 SG |
1169 | perror_with_name ("gdbtk_init: ioctl I_SETSIG failed"); |
1170 | #endif /* ifndef FIOASYNC */ | |
479f0f18 | 1171 | |
754e5da2 SG |
1172 | add_com ("tk", class_obscure, tk_command, |
1173 | "Send a command directly into tk."); | |
09722039 | 1174 | |
09722039 SG |
1175 | Tcl_LinkVar (interp, "disassemble-from-exec", (char *)&disassemble_from_exec, |
1176 | TCL_LINK_INT); | |
1177 | ||
1178 | /* Load up gdbtk.tcl after all the environment stuff has been setup. */ | |
1179 | ||
1180 | gdbtk_filename = getenv ("GDBTK_FILENAME"); | |
1181 | if (!gdbtk_filename) | |
1182 | if (access ("gdbtk.tcl", R_OK) == 0) | |
1183 | gdbtk_filename = "gdbtk.tcl"; | |
1184 | else | |
1185 | gdbtk_filename = GDBTK_FILENAME; | |
1186 | ||
724498fd SG |
1187 | /* Defer setup of fputs_unfiltered_hook to near the end so that error messages |
1188 | prior to this point go to stdout/stderr. */ | |
1189 | ||
1190 | fputs_unfiltered_hook = gdbtk_fputs; | |
1191 | ||
09722039 | 1192 | if (Tcl_EvalFile (interp, gdbtk_filename) != TCL_OK) |
724498fd SG |
1193 | { |
1194 | fputs_unfiltered_hook = NULL; /* Force errors to stdout/stderr */ | |
1195 | ||
1196 | fprintf_unfiltered (stderr, "%s:%d: %s\n", gdbtk_filename, | |
1197 | interp->errorLine, interp->result); | |
b66051ec SG |
1198 | |
1199 | fputs_unfiltered ("Stack trace:\n", gdb_stderr); | |
1200 | fputs_unfiltered (Tcl_GetVar (interp, "errorInfo", 0), gdb_stderr); | |
1201 | error (""); | |
724498fd | 1202 | } |
09722039 SG |
1203 | |
1204 | discard_cleanups (old_chain); | |
754e5da2 SG |
1205 | } |
1206 | ||
1207 | /* Come here during initialze_all_files () */ | |
1208 | ||
1209 | void | |
1210 | _initialize_gdbtk () | |
1211 | { | |
c5197511 SG |
1212 | if (use_windows) |
1213 | { | |
1214 | /* Tell the rest of the world that Gdbtk is now set up. */ | |
754e5da2 | 1215 | |
c5197511 SG |
1216 | init_ui_hook = gdbtk_init; |
1217 | } | |
754e5da2 | 1218 | } |