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c906108c | 1 | /* Support for printing Fortran values for GDB, the GNU debugger. |
a2bd3dcd | 2 | |
6aba47ca | 3 | Copyright (C) 1993, 1994, 1995, 1996, 1998, 1999, 2000, 2003, 2005, 2006, |
0fb0cc75 | 4 | 2007, 2008, 2009 Free Software Foundation, Inc. |
a2bd3dcd | 5 | |
c906108c SS |
6 | Contributed by Motorola. Adapted from the C definitions by Farooq Butt |
7 | ([email protected]), additionally worked over by Stan Shebs. | |
8 | ||
c5aa993b | 9 | This file is part of GDB. |
c906108c | 10 | |
c5aa993b JM |
11 | This program is free software; you can redistribute it and/or modify |
12 | it under the terms of the GNU General Public License as published by | |
a9762ec7 | 13 | the Free Software Foundation; either version 3 of the License, or |
c5aa993b | 14 | (at your option) any later version. |
c906108c | 15 | |
c5aa993b JM |
16 | This program is distributed in the hope that it will be useful, |
17 | but WITHOUT ANY WARRANTY; without even the implied warranty of | |
18 | MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the | |
19 | GNU General Public License for more details. | |
c906108c | 20 | |
c5aa993b | 21 | You should have received a copy of the GNU General Public License |
a9762ec7 | 22 | along with this program. If not, see <http://www.gnu.org/licenses/>. */ |
c906108c SS |
23 | |
24 | #include "defs.h" | |
25 | #include "gdb_string.h" | |
26 | #include "symtab.h" | |
27 | #include "gdbtypes.h" | |
28 | #include "expression.h" | |
29 | #include "value.h" | |
c906108c SS |
30 | #include "valprint.h" |
31 | #include "language.h" | |
c5aa993b | 32 | #include "f-lang.h" |
c906108c SS |
33 | #include "frame.h" |
34 | #include "gdbcore.h" | |
35 | #include "command.h" | |
fe898f56 | 36 | #include "block.h" |
c906108c SS |
37 | |
38 | #if 0 | |
a14ed312 | 39 | static int there_is_a_visible_common_named (char *); |
c906108c SS |
40 | #endif |
41 | ||
a14ed312 KB |
42 | extern void _initialize_f_valprint (void); |
43 | static void info_common_command (char *, int); | |
44 | static void list_all_visible_commons (char *); | |
d9fcf2fb JM |
45 | static void f77_create_arrayprint_offset_tbl (struct type *, |
46 | struct ui_file *); | |
a14ed312 | 47 | static void f77_get_dynamic_length_of_aggregate (struct type *); |
c906108c | 48 | |
c5aa993b | 49 | int f77_array_offset_tbl[MAX_FORTRAN_DIMS + 1][2]; |
c906108c SS |
50 | |
51 | /* Array which holds offsets to be applied to get a row's elements | |
52 | for a given array. Array also holds the size of each subarray. */ | |
53 | ||
54 | /* The following macro gives us the size of the nth dimension, Where | |
c5aa993b | 55 | n is 1 based. */ |
c906108c SS |
56 | |
57 | #define F77_DIM_SIZE(n) (f77_array_offset_tbl[n][1]) | |
58 | ||
c5aa993b | 59 | /* The following gives us the offset for row n where n is 1-based. */ |
c906108c SS |
60 | |
61 | #define F77_DIM_OFFSET(n) (f77_array_offset_tbl[n][0]) | |
62 | ||
c5aa993b | 63 | int |
d78df370 | 64 | f77_get_lowerbound (struct type *type) |
c906108c | 65 | { |
d78df370 JK |
66 | if (TYPE_ARRAY_LOWER_BOUND_IS_UNDEFINED (type)) |
67 | error (_("Lower bound may not be '*' in F77")); | |
c5aa993b | 68 | |
d78df370 | 69 | return TYPE_ARRAY_LOWER_BOUND_VALUE (type); |
c906108c SS |
70 | } |
71 | ||
c5aa993b | 72 | int |
d78df370 | 73 | f77_get_upperbound (struct type *type) |
c906108c | 74 | { |
d78df370 | 75 | if (TYPE_ARRAY_UPPER_BOUND_IS_UNDEFINED (type)) |
c906108c | 76 | { |
d78df370 JK |
77 | /* We have an assumed size array on our hands. Assume that |
78 | upper_bound == lower_bound so that we show at least 1 element. | |
79 | If the user wants to see more elements, let him manually ask for 'em | |
80 | and we'll subscript the array and show him. */ | |
81 | ||
82 | return f77_get_lowerbound (type); | |
c906108c | 83 | } |
d78df370 JK |
84 | |
85 | return TYPE_ARRAY_UPPER_BOUND_VALUE (type); | |
c906108c SS |
86 | } |
87 | ||
c5aa993b | 88 | /* Obtain F77 adjustable array dimensions */ |
c906108c SS |
89 | |
90 | static void | |
fba45db2 | 91 | f77_get_dynamic_length_of_aggregate (struct type *type) |
c906108c SS |
92 | { |
93 | int upper_bound = -1; | |
c5aa993b JM |
94 | int lower_bound = 1; |
95 | int retcode; | |
96 | ||
c906108c SS |
97 | /* Recursively go all the way down into a possibly multi-dimensional |
98 | F77 array and get the bounds. For simple arrays, this is pretty | |
99 | easy but when the bounds are dynamic, we must be very careful | |
100 | to add up all the lengths correctly. Not doing this right | |
101 | will lead to horrendous-looking arrays in parameter lists. | |
c5aa993b | 102 | |
c906108c | 103 | This function also works for strings which behave very |
c5aa993b JM |
104 | similarly to arrays. */ |
105 | ||
106 | if (TYPE_CODE (TYPE_TARGET_TYPE (type)) == TYPE_CODE_ARRAY | |
107 | || TYPE_CODE (TYPE_TARGET_TYPE (type)) == TYPE_CODE_STRING) | |
c906108c | 108 | f77_get_dynamic_length_of_aggregate (TYPE_TARGET_TYPE (type)); |
c5aa993b JM |
109 | |
110 | /* Recursion ends here, start setting up lengths. */ | |
d78df370 JK |
111 | lower_bound = f77_get_lowerbound (type); |
112 | upper_bound = f77_get_upperbound (type); | |
c5aa993b JM |
113 | |
114 | /* Patch in a valid length value. */ | |
115 | ||
c906108c SS |
116 | TYPE_LENGTH (type) = |
117 | (upper_bound - lower_bound + 1) * TYPE_LENGTH (check_typedef (TYPE_TARGET_TYPE (type))); | |
c5aa993b | 118 | } |
c906108c SS |
119 | |
120 | /* Function that sets up the array offset,size table for the array | |
c5aa993b | 121 | type "type". */ |
c906108c | 122 | |
c5aa993b | 123 | static void |
fba45db2 | 124 | f77_create_arrayprint_offset_tbl (struct type *type, struct ui_file *stream) |
c906108c SS |
125 | { |
126 | struct type *tmp_type; | |
127 | int eltlen; | |
128 | int ndimen = 1; | |
c5aa993b JM |
129 | int upper, lower, retcode; |
130 | ||
131 | tmp_type = type; | |
132 | ||
133 | while ((TYPE_CODE (tmp_type) == TYPE_CODE_ARRAY)) | |
c906108c | 134 | { |
d78df370 JK |
135 | upper = f77_get_upperbound (tmp_type); |
136 | lower = f77_get_lowerbound (tmp_type); | |
c5aa993b | 137 | |
c906108c | 138 | F77_DIM_SIZE (ndimen) = upper - lower + 1; |
c5aa993b | 139 | |
c906108c | 140 | tmp_type = TYPE_TARGET_TYPE (tmp_type); |
c5aa993b | 141 | ndimen++; |
c906108c | 142 | } |
c5aa993b | 143 | |
c906108c SS |
144 | /* Now we multiply eltlen by all the offsets, so that later we |
145 | can print out array elements correctly. Up till now we | |
146 | know an offset to apply to get the item but we also | |
147 | have to know how much to add to get to the next item */ | |
c5aa993b | 148 | |
c906108c | 149 | ndimen--; |
c5aa993b | 150 | eltlen = TYPE_LENGTH (tmp_type); |
c906108c SS |
151 | F77_DIM_OFFSET (ndimen) = eltlen; |
152 | while (--ndimen > 0) | |
153 | { | |
154 | eltlen *= F77_DIM_SIZE (ndimen + 1); | |
155 | F77_DIM_OFFSET (ndimen) = eltlen; | |
156 | } | |
157 | } | |
158 | ||
b3cacbee DL |
159 | |
160 | ||
c906108c SS |
161 | /* Actual function which prints out F77 arrays, Valaddr == address in |
162 | the superior. Address == the address in the inferior. */ | |
7b0090c3 | 163 | |
c5aa993b | 164 | static void |
a2bd3dcd | 165 | f77_print_array_1 (int nss, int ndimensions, struct type *type, |
fc1a4b47 | 166 | const gdb_byte *valaddr, CORE_ADDR address, |
79a45b7d TT |
167 | struct ui_file *stream, int recurse, |
168 | const struct value_print_options *options, | |
b3cacbee | 169 | int *elts) |
c906108c SS |
170 | { |
171 | int i; | |
c5aa993b | 172 | |
c906108c SS |
173 | if (nss != ndimensions) |
174 | { | |
79a45b7d | 175 | for (i = 0; (i < F77_DIM_SIZE (nss) && (*elts) < options->print_max); i++) |
c906108c SS |
176 | { |
177 | fprintf_filtered (stream, "( "); | |
178 | f77_print_array_1 (nss + 1, ndimensions, TYPE_TARGET_TYPE (type), | |
c5aa993b JM |
179 | valaddr + i * F77_DIM_OFFSET (nss), |
180 | address + i * F77_DIM_OFFSET (nss), | |
79a45b7d | 181 | stream, recurse, options, elts); |
c906108c SS |
182 | fprintf_filtered (stream, ") "); |
183 | } | |
79a45b7d | 184 | if (*elts >= options->print_max && i < F77_DIM_SIZE (nss)) |
b3cacbee | 185 | fprintf_filtered (stream, "..."); |
c906108c SS |
186 | } |
187 | else | |
188 | { | |
79a45b7d | 189 | for (i = 0; i < F77_DIM_SIZE (nss) && (*elts) < options->print_max; |
7b0090c3 | 190 | i++, (*elts)++) |
c906108c SS |
191 | { |
192 | val_print (TYPE_TARGET_TYPE (type), | |
193 | valaddr + i * F77_DIM_OFFSET (ndimensions), | |
c5aa993b | 194 | 0, |
c906108c | 195 | address + i * F77_DIM_OFFSET (ndimensions), |
79a45b7d | 196 | stream, recurse, options, current_language); |
c906108c SS |
197 | |
198 | if (i != (F77_DIM_SIZE (nss) - 1)) | |
c5aa993b JM |
199 | fprintf_filtered (stream, ", "); |
200 | ||
79a45b7d TT |
201 | if ((*elts == options->print_max - 1) |
202 | && (i != (F77_DIM_SIZE (nss) - 1))) | |
c906108c SS |
203 | fprintf_filtered (stream, "..."); |
204 | } | |
205 | } | |
206 | } | |
207 | ||
208 | /* This function gets called to print an F77 array, we set up some | |
209 | stuff and then immediately call f77_print_array_1() */ | |
210 | ||
c5aa993b | 211 | static void |
fc1a4b47 | 212 | f77_print_array (struct type *type, const gdb_byte *valaddr, |
a2bd3dcd | 213 | CORE_ADDR address, struct ui_file *stream, |
79a45b7d | 214 | int recurse, const struct value_print_options *options) |
c906108c | 215 | { |
c5aa993b | 216 | int ndimensions; |
b3cacbee | 217 | int elts = 0; |
c5aa993b JM |
218 | |
219 | ndimensions = calc_f77_array_dims (type); | |
220 | ||
c906108c | 221 | if (ndimensions > MAX_FORTRAN_DIMS || ndimensions < 0) |
8a3fe4f8 | 222 | error (_("Type node corrupt! F77 arrays cannot have %d subscripts (%d Max)"), |
c906108c | 223 | ndimensions, MAX_FORTRAN_DIMS); |
c5aa993b | 224 | |
c906108c SS |
225 | /* Since F77 arrays are stored column-major, we set up an |
226 | offset table to get at the various row's elements. The | |
c5aa993b | 227 | offset table contains entries for both offset and subarray size. */ |
c906108c | 228 | |
c5aa993b JM |
229 | f77_create_arrayprint_offset_tbl (type, stream); |
230 | ||
79a45b7d TT |
231 | f77_print_array_1 (1, ndimensions, type, valaddr, address, stream, |
232 | recurse, options, &elts); | |
c5aa993b | 233 | } |
c906108c | 234 | \f |
c5aa993b | 235 | |
c906108c SS |
236 | /* Print data of type TYPE located at VALADDR (within GDB), which came from |
237 | the inferior at address ADDRESS, onto stdio stream STREAM according to | |
79a45b7d | 238 | OPTIONS. The data at VALADDR is in target byte order. |
c5aa993b | 239 | |
c906108c | 240 | If the data are a string pointer, returns the number of string characters |
79a45b7d | 241 | printed. */ |
c906108c SS |
242 | |
243 | int | |
fc1a4b47 | 244 | f_val_print (struct type *type, const gdb_byte *valaddr, int embedded_offset, |
79a45b7d TT |
245 | CORE_ADDR address, struct ui_file *stream, int recurse, |
246 | const struct value_print_options *options) | |
c906108c | 247 | { |
52f0bd74 | 248 | unsigned int i = 0; /* Number of characters printed */ |
c906108c SS |
249 | struct type *elttype; |
250 | LONGEST val; | |
251 | CORE_ADDR addr; | |
2a5e440c | 252 | int index; |
c5aa993b | 253 | |
c906108c SS |
254 | CHECK_TYPEDEF (type); |
255 | switch (TYPE_CODE (type)) | |
256 | { | |
c5aa993b | 257 | case TYPE_CODE_STRING: |
c906108c | 258 | f77_get_dynamic_length_of_aggregate (type); |
6c7a06a3 TT |
259 | LA_PRINT_STRING (stream, builtin_type (current_gdbarch)->builtin_char, |
260 | valaddr, TYPE_LENGTH (type), 0, options); | |
c906108c | 261 | break; |
c5aa993b | 262 | |
c906108c | 263 | case TYPE_CODE_ARRAY: |
c5aa993b | 264 | fprintf_filtered (stream, "("); |
79a45b7d | 265 | f77_print_array (type, valaddr, address, stream, recurse, options); |
c906108c SS |
266 | fprintf_filtered (stream, ")"); |
267 | break; | |
7e86466e | 268 | |
c906108c | 269 | case TYPE_CODE_PTR: |
79a45b7d | 270 | if (options->format && options->format != 's') |
c906108c | 271 | { |
79a45b7d | 272 | print_scalar_formatted (valaddr, type, options, 0, stream); |
c906108c SS |
273 | break; |
274 | } | |
275 | else | |
276 | { | |
277 | addr = unpack_pointer (type, valaddr); | |
278 | elttype = check_typedef (TYPE_TARGET_TYPE (type)); | |
c5aa993b | 279 | |
c906108c SS |
280 | if (TYPE_CODE (elttype) == TYPE_CODE_FUNC) |
281 | { | |
282 | /* Try to print what function it points to. */ | |
283 | print_address_demangle (addr, stream, demangle); | |
284 | /* Return value is irrelevant except for string pointers. */ | |
285 | return 0; | |
286 | } | |
c5aa993b | 287 | |
79a45b7d | 288 | if (options->addressprint && options->format != 's') |
ed49a04f | 289 | fputs_filtered (paddress (addr), stream); |
c5aa993b | 290 | |
c906108c SS |
291 | /* For a pointer to char or unsigned char, also print the string |
292 | pointed to, unless pointer is null. */ | |
293 | if (TYPE_LENGTH (elttype) == 1 | |
294 | && TYPE_CODE (elttype) == TYPE_CODE_INT | |
79a45b7d | 295 | && (options->format == 0 || options->format == 's') |
c906108c | 296 | && addr != 0) |
6c7a06a3 | 297 | i = val_print_string (TYPE_TARGET_TYPE (type), addr, -1, stream, |
79a45b7d | 298 | options); |
c5aa993b | 299 | |
7e86466e RH |
300 | /* Return number of characters printed, including the terminating |
301 | '\0' if we reached the end. val_print_string takes care including | |
302 | the terminating '\0' if necessary. */ | |
303 | return i; | |
304 | } | |
305 | break; | |
306 | ||
307 | case TYPE_CODE_REF: | |
308 | elttype = check_typedef (TYPE_TARGET_TYPE (type)); | |
79a45b7d | 309 | if (options->addressprint) |
7e86466e RH |
310 | { |
311 | CORE_ADDR addr | |
312 | = extract_typed_address (valaddr + embedded_offset, type); | |
313 | fprintf_filtered (stream, "@"); | |
ed49a04f | 314 | fputs_filtered (paddress (addr), stream); |
79a45b7d | 315 | if (options->deref_ref) |
7e86466e RH |
316 | fputs_filtered (": ", stream); |
317 | } | |
318 | /* De-reference the reference. */ | |
79a45b7d | 319 | if (options->deref_ref) |
7e86466e RH |
320 | { |
321 | if (TYPE_CODE (elttype) != TYPE_CODE_UNDEF) | |
322 | { | |
323 | struct value *deref_val = | |
324 | value_at | |
325 | (TYPE_TARGET_TYPE (type), | |
d8631d21 | 326 | unpack_pointer (type, valaddr + embedded_offset)); |
79a45b7d TT |
327 | common_val_print (deref_val, stream, recurse, |
328 | options, current_language); | |
7e86466e RH |
329 | } |
330 | else | |
331 | fputs_filtered ("???", stream); | |
c906108c SS |
332 | } |
333 | break; | |
c5aa993b | 334 | |
c906108c | 335 | case TYPE_CODE_FUNC: |
79a45b7d | 336 | if (options->format) |
c906108c | 337 | { |
79a45b7d | 338 | print_scalar_formatted (valaddr, type, options, 0, stream); |
c906108c SS |
339 | break; |
340 | } | |
341 | /* FIXME, we should consider, at least for ANSI C language, eliminating | |
c5aa993b | 342 | the distinction made between FUNCs and POINTERs to FUNCs. */ |
c906108c SS |
343 | fprintf_filtered (stream, "{"); |
344 | type_print (type, "", stream, -1); | |
345 | fprintf_filtered (stream, "} "); | |
346 | /* Try to print what function it points to, and its address. */ | |
347 | print_address_demangle (address, stream, demangle); | |
348 | break; | |
c5aa993b | 349 | |
c906108c | 350 | case TYPE_CODE_INT: |
79a45b7d TT |
351 | if (options->format || options->output_format) |
352 | { | |
353 | struct value_print_options opts = *options; | |
354 | opts.format = (options->format ? options->format | |
355 | : options->output_format); | |
356 | print_scalar_formatted (valaddr, type, &opts, 0, stream); | |
357 | } | |
c906108c SS |
358 | else |
359 | { | |
360 | val_print_type_code_int (type, valaddr, stream); | |
361 | /* C and C++ has no single byte int type, char is used instead. | |
362 | Since we don't know whether the value is really intended to | |
363 | be used as an integer or a character, print the character | |
364 | equivalent as well. */ | |
365 | if (TYPE_LENGTH (type) == 1) | |
366 | { | |
367 | fputs_filtered (" ", stream); | |
368 | LA_PRINT_CHAR ((unsigned char) unpack_long (type, valaddr), | |
6c7a06a3 | 369 | type, stream); |
c906108c SS |
370 | } |
371 | } | |
372 | break; | |
c5aa993b | 373 | |
4f2aea11 | 374 | case TYPE_CODE_FLAGS: |
79a45b7d TT |
375 | if (options->format) |
376 | print_scalar_formatted (valaddr, type, options, 0, stream); | |
4f2aea11 MK |
377 | else |
378 | val_print_type_code_flags (type, valaddr, stream); | |
379 | break; | |
380 | ||
c906108c | 381 | case TYPE_CODE_FLT: |
79a45b7d TT |
382 | if (options->format) |
383 | print_scalar_formatted (valaddr, type, options, 0, stream); | |
c906108c SS |
384 | else |
385 | print_floating (valaddr, type, stream); | |
386 | break; | |
c5aa993b | 387 | |
c906108c SS |
388 | case TYPE_CODE_VOID: |
389 | fprintf_filtered (stream, "VOID"); | |
390 | break; | |
c5aa993b | 391 | |
c906108c SS |
392 | case TYPE_CODE_ERROR: |
393 | fprintf_filtered (stream, "<error type>"); | |
394 | break; | |
c5aa993b | 395 | |
c906108c SS |
396 | case TYPE_CODE_RANGE: |
397 | /* FIXME, we should not ever have to print one of these yet. */ | |
398 | fprintf_filtered (stream, "<range type>"); | |
399 | break; | |
c5aa993b | 400 | |
c906108c | 401 | case TYPE_CODE_BOOL: |
79a45b7d TT |
402 | if (options->format || options->output_format) |
403 | { | |
404 | struct value_print_options opts = *options; | |
405 | opts.format = (options->format ? options->format | |
406 | : options->output_format); | |
407 | print_scalar_formatted (valaddr, type, &opts, 0, stream); | |
408 | } | |
c906108c SS |
409 | else |
410 | { | |
b806fb9a | 411 | val = extract_unsigned_integer (valaddr, TYPE_LENGTH (type)); |
c5aa993b JM |
412 | |
413 | if (val == 0) | |
c906108c | 414 | fprintf_filtered (stream, ".FALSE."); |
c5aa993b JM |
415 | else if (val == 1) |
416 | fprintf_filtered (stream, ".TRUE."); | |
417 | else | |
418 | /* Not a legitimate logical type, print as an integer. */ | |
419 | { | |
420 | /* Bash the type code temporarily. */ | |
421 | TYPE_CODE (type) = TYPE_CODE_INT; | |
79a45b7d | 422 | f_val_print (type, valaddr, 0, address, stream, recurse, options); |
c5aa993b JM |
423 | /* Restore the type code so later uses work as intended. */ |
424 | TYPE_CODE (type) = TYPE_CODE_BOOL; | |
425 | } | |
c906108c SS |
426 | } |
427 | break; | |
c5aa993b | 428 | |
c906108c | 429 | case TYPE_CODE_COMPLEX: |
b806fb9a | 430 | type = TYPE_TARGET_TYPE (type); |
c906108c SS |
431 | fputs_filtered ("(", stream); |
432 | print_floating (valaddr, type, stream); | |
433 | fputs_filtered (",", stream); | |
9af97293 | 434 | print_floating (valaddr + TYPE_LENGTH (type), type, stream); |
c906108c SS |
435 | fputs_filtered (")", stream); |
436 | break; | |
c5aa993b | 437 | |
c906108c SS |
438 | case TYPE_CODE_UNDEF: |
439 | /* This happens (without TYPE_FLAG_STUB set) on systems which don't use | |
c5aa993b JM |
440 | dbx xrefs (NO_DBX_XREFS in gcc) if a file has a "struct foo *bar" |
441 | and no complete type for struct foo in that file. */ | |
c906108c SS |
442 | fprintf_filtered (stream, "<incomplete type>"); |
443 | break; | |
c5aa993b | 444 | |
2a5e440c | 445 | case TYPE_CODE_STRUCT: |
9eec4d1e | 446 | case TYPE_CODE_UNION: |
2a5e440c WZ |
447 | /* Starting from the Fortran 90 standard, Fortran supports derived |
448 | types. */ | |
9eec4d1e | 449 | fprintf_filtered (stream, "( "); |
2a5e440c WZ |
450 | for (index = 0; index < TYPE_NFIELDS (type); index++) |
451 | { | |
452 | int offset = TYPE_FIELD_BITPOS (type, index) / 8; | |
453 | f_val_print (TYPE_FIELD_TYPE (type, index), valaddr + offset, | |
79a45b7d | 454 | embedded_offset, address, stream, recurse, options); |
2a5e440c WZ |
455 | if (index != TYPE_NFIELDS (type) - 1) |
456 | fputs_filtered (", ", stream); | |
457 | } | |
9eec4d1e | 458 | fprintf_filtered (stream, " )"); |
2a5e440c WZ |
459 | break; |
460 | ||
c906108c | 461 | default: |
8a3fe4f8 | 462 | error (_("Invalid F77 type code %d in symbol table."), TYPE_CODE (type)); |
c906108c SS |
463 | } |
464 | gdb_flush (stream); | |
465 | return 0; | |
466 | } | |
467 | ||
468 | static void | |
fba45db2 | 469 | list_all_visible_commons (char *funname) |
c906108c | 470 | { |
c5aa993b JM |
471 | SAVED_F77_COMMON_PTR tmp; |
472 | ||
c906108c | 473 | tmp = head_common_list; |
c5aa993b | 474 | |
a3f17187 | 475 | printf_filtered (_("All COMMON blocks visible at this level:\n\n")); |
c5aa993b | 476 | |
c906108c SS |
477 | while (tmp != NULL) |
478 | { | |
762f08a3 | 479 | if (strcmp (tmp->owning_function, funname) == 0) |
c5aa993b JM |
480 | printf_filtered ("%s\n", tmp->name); |
481 | ||
c906108c SS |
482 | tmp = tmp->next; |
483 | } | |
484 | } | |
485 | ||
486 | /* This function is used to print out the values in a given COMMON | |
487 | block. It will always use the most local common block of the | |
c5aa993b | 488 | given name */ |
c906108c | 489 | |
c5aa993b | 490 | static void |
fba45db2 | 491 | info_common_command (char *comname, int from_tty) |
c906108c | 492 | { |
c5aa993b JM |
493 | SAVED_F77_COMMON_PTR the_common; |
494 | COMMON_ENTRY_PTR entry; | |
c906108c | 495 | struct frame_info *fi; |
52f0bd74 | 496 | char *funname = 0; |
c906108c | 497 | struct symbol *func; |
c5aa993b | 498 | |
c906108c SS |
499 | /* We have been told to display the contents of F77 COMMON |
500 | block supposedly visible in this function. Let us | |
501 | first make sure that it is visible and if so, let | |
c5aa993b JM |
502 | us display its contents */ |
503 | ||
206415a3 | 504 | fi = get_selected_frame (_("No frame selected")); |
c5aa993b | 505 | |
c906108c | 506 | /* The following is generally ripped off from stack.c's routine |
c5aa993b JM |
507 | print_frame_info() */ |
508 | ||
bdd78e62 | 509 | func = find_pc_function (get_frame_pc (fi)); |
c906108c SS |
510 | if (func) |
511 | { | |
512 | /* In certain pathological cases, the symtabs give the wrong | |
c5aa993b JM |
513 | function (when we are in the first function in a file which |
514 | is compiled without debugging symbols, the previous function | |
515 | is compiled with debugging symbols, and the "foo.o" symbol | |
516 | that is supposed to tell us where the file with debugging symbols | |
517 | ends has been truncated by ar because it is longer than 15 | |
518 | characters). | |
519 | ||
520 | So look in the minimal symbol tables as well, and if it comes | |
521 | up with a larger address for the function use that instead. | |
522 | I don't think this can ever cause any problems; there shouldn't | |
523 | be any minimal symbols in the middle of a function. | |
524 | FIXME: (Not necessarily true. What about text labels) */ | |
525 | ||
7c6e0d48 MS |
526 | struct minimal_symbol *msymbol = |
527 | lookup_minimal_symbol_by_pc (get_frame_pc (fi)); | |
c5aa993b | 528 | |
c906108c | 529 | if (msymbol != NULL |
c5aa993b | 530 | && (SYMBOL_VALUE_ADDRESS (msymbol) |
c906108c | 531 | > BLOCK_START (SYMBOL_BLOCK_VALUE (func)))) |
3567439c | 532 | funname = SYMBOL_LINKAGE_NAME (msymbol); |
c906108c | 533 | else |
3567439c | 534 | funname = SYMBOL_LINKAGE_NAME (func); |
c906108c SS |
535 | } |
536 | else | |
537 | { | |
aa1ee363 | 538 | struct minimal_symbol *msymbol = |
bdd78e62 | 539 | lookup_minimal_symbol_by_pc (get_frame_pc (fi)); |
c5aa993b | 540 | |
c906108c | 541 | if (msymbol != NULL) |
3567439c | 542 | funname = SYMBOL_LINKAGE_NAME (msymbol); |
7c6e0d48 MS |
543 | else /* Got no 'funname', code below will fail. */ |
544 | error (_("No function found for frame.")); | |
c906108c | 545 | } |
c5aa993b | 546 | |
c906108c | 547 | /* If comname is NULL, we assume the user wishes to see the |
c5aa993b JM |
548 | which COMMON blocks are visible here and then return */ |
549 | ||
c906108c SS |
550 | if (comname == 0) |
551 | { | |
552 | list_all_visible_commons (funname); | |
c5aa993b | 553 | return; |
c906108c | 554 | } |
c5aa993b JM |
555 | |
556 | the_common = find_common_for_function (comname, funname); | |
557 | ||
c906108c SS |
558 | if (the_common) |
559 | { | |
762f08a3 | 560 | if (strcmp (comname, BLANK_COMMON_NAME_LOCAL) == 0) |
a3f17187 | 561 | printf_filtered (_("Contents of blank COMMON block:\n")); |
c5aa993b | 562 | else |
a3f17187 | 563 | printf_filtered (_("Contents of F77 COMMON block '%s':\n"), comname); |
c5aa993b JM |
564 | |
565 | printf_filtered ("\n"); | |
566 | entry = the_common->entries; | |
567 | ||
c906108c SS |
568 | while (entry != NULL) |
569 | { | |
aad95b57 | 570 | print_variable_and_value (NULL, entry->symbol, fi, gdb_stdout, 0); |
c5aa993b | 571 | entry = entry->next; |
c906108c SS |
572 | } |
573 | } | |
c5aa993b | 574 | else |
a3f17187 | 575 | printf_filtered (_("Cannot locate the common block %s in function '%s'\n"), |
c5aa993b | 576 | comname, funname); |
c906108c SS |
577 | } |
578 | ||
579 | /* This function is used to determine whether there is a | |
c5aa993b | 580 | F77 common block visible at the current scope called 'comname'. */ |
c906108c SS |
581 | |
582 | #if 0 | |
583 | static int | |
fba45db2 | 584 | there_is_a_visible_common_named (char *comname) |
c906108c | 585 | { |
c5aa993b | 586 | SAVED_F77_COMMON_PTR the_common; |
c906108c | 587 | struct frame_info *fi; |
52f0bd74 | 588 | char *funname = 0; |
c906108c | 589 | struct symbol *func; |
c5aa993b | 590 | |
c906108c | 591 | if (comname == NULL) |
8a3fe4f8 | 592 | error (_("Cannot deal with NULL common name!")); |
c5aa993b | 593 | |
206415a3 | 594 | fi = get_selected_frame (_("No frame selected")); |
c5aa993b | 595 | |
c906108c | 596 | /* The following is generally ripped off from stack.c's routine |
c5aa993b JM |
597 | print_frame_info() */ |
598 | ||
c906108c SS |
599 | func = find_pc_function (fi->pc); |
600 | if (func) | |
601 | { | |
602 | /* In certain pathological cases, the symtabs give the wrong | |
c5aa993b JM |
603 | function (when we are in the first function in a file which |
604 | is compiled without debugging symbols, the previous function | |
605 | is compiled with debugging symbols, and the "foo.o" symbol | |
606 | that is supposed to tell us where the file with debugging symbols | |
607 | ends has been truncated by ar because it is longer than 15 | |
608 | characters). | |
609 | ||
610 | So look in the minimal symbol tables as well, and if it comes | |
611 | up with a larger address for the function use that instead. | |
612 | I don't think this can ever cause any problems; there shouldn't | |
613 | be any minimal symbols in the middle of a function. | |
614 | FIXME: (Not necessarily true. What about text labels) */ | |
615 | ||
c906108c | 616 | struct minimal_symbol *msymbol = lookup_minimal_symbol_by_pc (fi->pc); |
c5aa993b | 617 | |
c906108c | 618 | if (msymbol != NULL |
c5aa993b | 619 | && (SYMBOL_VALUE_ADDRESS (msymbol) |
c906108c | 620 | > BLOCK_START (SYMBOL_BLOCK_VALUE (func)))) |
3567439c | 621 | funname = SYMBOL_LINKAGE_NAME (msymbol); |
c906108c | 622 | else |
3567439c | 623 | funname = SYMBOL_LINKAGE_NAME (func); |
c906108c SS |
624 | } |
625 | else | |
626 | { | |
aa1ee363 | 627 | struct minimal_symbol *msymbol = |
c5aa993b JM |
628 | lookup_minimal_symbol_by_pc (fi->pc); |
629 | ||
c906108c | 630 | if (msymbol != NULL) |
3567439c | 631 | funname = SYMBOL_LINKAGE_NAME (msymbol); |
c906108c | 632 | } |
c5aa993b JM |
633 | |
634 | the_common = find_common_for_function (comname, funname); | |
635 | ||
c906108c SS |
636 | return (the_common ? 1 : 0); |
637 | } | |
638 | #endif | |
639 | ||
640 | void | |
fba45db2 | 641 | _initialize_f_valprint (void) |
c906108c SS |
642 | { |
643 | add_info ("common", info_common_command, | |
1bedd215 | 644 | _("Print out the values contained in a Fortran COMMON block.")); |
c906108c | 645 | if (xdb_commands) |
c5aa993b | 646 | add_com ("lc", class_info, info_common_command, |
1bedd215 | 647 | _("Print out the values contained in a Fortran COMMON block.")); |
c906108c | 648 | } |