x86-dregs: Print debug registers one per line
[deliverable/binutils-gdb.git] / gdb / dtrace-probe.c
CommitLineData
d4777acb
JM
1/* DTrace probe support for GDB.
2
61baf725 3 Copyright (C) 2014-2017 Free Software Foundation, Inc.
d4777acb
JM
4
5 Contributed by Oracle, 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 3 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, see <http://www.gnu.org/licenses/>. */
21
22#include "defs.h"
23#include "probe.h"
24#include "vec.h"
25#include "elf-bfd.h"
26#include "gdbtypes.h"
27#include "obstack.h"
28#include "objfiles.h"
29#include "complaints.h"
30#include "value.h"
31#include "ax.h"
32#include "ax-gdb.h"
33#include "language.h"
34#include "parser-defs.h"
35#include "inferior.h"
36
37/* The type of the ELF sections where we will find the DOF programs
38 with information about probes. */
39
40#ifndef SHT_SUNW_dof
41# define SHT_SUNW_dof 0x6ffffff4
42#endif
43
44/* Forward declaration. */
45
bf36a1e7 46extern const struct probe_ops dtrace_probe_ops;
d4777acb
JM
47
48/* The following structure represents a single argument for the
49 probe. */
50
51struct dtrace_probe_arg
52{
53 /* The type of the probe argument. */
54 struct type *type;
55
56 /* A string describing the type. */
57 char *type_str;
58
59 /* The argument converted to an internal GDB expression. */
60 struct expression *expr;
61};
62
63typedef struct dtrace_probe_arg dtrace_probe_arg_s;
64DEF_VEC_O (dtrace_probe_arg_s);
65
66/* The following structure represents an enabler for a probe. */
67
68struct dtrace_probe_enabler
69{
70 /* Program counter where the is-enabled probe is installed. The
71 contents (nops, whatever...) stored at this address are
72 architecture dependent. */
73 CORE_ADDR address;
74};
75
76typedef struct dtrace_probe_enabler dtrace_probe_enabler_s;
77DEF_VEC_O (dtrace_probe_enabler_s);
78
79/* The following structure represents a dtrace probe. */
80
81struct dtrace_probe
82{
83 /* Generic information about the probe. This must be the first
84 element of this struct, in order to maintain binary compatibility
85 with the `struct probe' and be able to fully abstract it. */
86 struct probe p;
87
88 /* A probe can have zero or more arguments. */
89 int probe_argc;
90 VEC (dtrace_probe_arg_s) *args;
91
92 /* A probe can have zero or more "enablers" associated with it. */
93 VEC (dtrace_probe_enabler_s) *enablers;
94
95 /* Whether the expressions for the arguments have been built. */
96 unsigned int args_expr_built : 1;
97};
98
99/* Implementation of the probe_is_linespec method. */
100
101static int
102dtrace_probe_is_linespec (const char **linespecp)
103{
104 static const char *const keywords[] = { "-pdtrace", "-probe-dtrace", NULL };
105
106 return probe_is_linespec_by_keyword (linespecp, keywords);
107}
108
109/* DOF programs can contain an arbitrary number of sections of 26
110 different types. In order to support DTrace USDT probes we only
111 need to handle a subset of these section types, fortunately. These
112 section types are defined in the following enumeration.
113
114 See linux/dtrace/dof_defines.h for a complete list of section types
115 along with their values. */
116
117enum dtrace_dof_sect_type
118{
119 /* Null section. */
120 DTRACE_DOF_SECT_TYPE_NONE = 0,
121 /* A dof_ecbdesc_t. */
122 DTRACE_DOF_SECT_TYPE_ECBDESC = 3,
123 /* A string table. */
124 DTRACE_DOF_SECT_TYPE_STRTAB = 8,
125 /* A dof_provider_t */
126 DTRACE_DOF_SECT_TYPE_PROVIDER = 15,
127 /* Array of dof_probe_t */
128 DTRACE_DOF_SECT_TYPE_PROBES = 16,
129 /* An array of probe arg mappings. */
130 DTRACE_DOF_SECT_TYPE_PRARGS = 17,
131 /* An array of probe arg offsets. */
132 DTRACE_DOF_SECT_TYPE_PROFFS = 18,
133 /* An array of probe is-enabled offsets. */
134 DTRACE_DOF_SECT_TYPE_PRENOFFS = 26
135};
136
137/* The following collection of data structures map the structure of
138 DOF entities. Again, we only cover the subset of DOF used to
139 implement USDT probes.
140
141 See linux/dtrace/dof.h header for a complete list of data
142 structures. */
143
144/* Offsets to index the dofh_ident[] array defined below. */
145
146enum dtrace_dof_ident
147{
148 /* First byte of the magic number. */
149 DTRACE_DOF_ID_MAG0 = 0,
150 /* Second byte of the magic number. */
151 DTRACE_DOF_ID_MAG1 = 1,
152 /* Third byte of the magic number. */
153 DTRACE_DOF_ID_MAG2 = 2,
154 /* Fourth byte of the magic number. */
155 DTRACE_DOF_ID_MAG3 = 3,
156 /* An enum_dof_encoding value. */
157 DTRACE_DOF_ID_ENCODING = 5
158};
159
160/* Possible values for dofh_ident[DOF_ID_ENCODING]. */
161
162enum dtrace_dof_encoding
163{
164 /* The DOF program is little-endian. */
165 DTRACE_DOF_ENCODE_LSB = 1,
166 /* The DOF program is big-endian. */
167 DTRACE_DOF_ENCODE_MSB = 2
168};
169
170/* A DOF header, which describes the contents of a DOF program: number
171 of sections, size, etc. */
172
173struct dtrace_dof_hdr
174{
175 /* Identification bytes (see above). */
176 uint8_t dofh_ident[16];
177 /* File attribute flags (if any). */
178 uint32_t dofh_flags;
179 /* Size of file header in bytes. */
180 uint32_t dofh_hdrsize;
181 /* Size of section header in bytes. */
182 uint32_t dofh_secsize;
183 /* Number of section headers. */
184 uint32_t dofh_secnum;
185 /* File offset of section headers. */
186 uint64_t dofh_secoff;
187 /* File size of loadable portion. */
188 uint64_t dofh_loadsz;
189 /* File size of entire DOF file. */
190 uint64_t dofh_filesz;
191 /* Reserved for future use. */
192 uint64_t dofh_pad;
193};
194
195/* A DOF section, whose contents depend on its type. The several
196 supported section types are described in the enum
197 dtrace_dof_sect_type above. */
198
199struct dtrace_dof_sect
200{
201 /* Section type (see the define above). */
202 uint32_t dofs_type;
203 /* Section data memory alignment. */
204 uint32_t dofs_align;
205 /* Section flags (if any). */
206 uint32_t dofs_flags;
207 /* Size of section entry (if table). */
208 uint32_t dofs_entsize;
209 /* DOF + offset points to the section data. */
210 uint64_t dofs_offset;
211 /* Size of section data in bytes. */
212 uint64_t dofs_size;
213};
214
215/* A DOF provider, which is the provider of a probe. */
216
217struct dtrace_dof_provider
218{
219 /* Link to a DTRACE_DOF_SECT_TYPE_STRTAB section. */
220 uint32_t dofpv_strtab;
221 /* Link to a DTRACE_DOF_SECT_TYPE_PROBES section. */
222 uint32_t dofpv_probes;
223 /* Link to a DTRACE_DOF_SECT_TYPE_PRARGS section. */
224 uint32_t dofpv_prargs;
225 /* Link to a DTRACE_DOF_SECT_TYPE_PROFFS section. */
226 uint32_t dofpv_proffs;
227 /* Provider name string. */
228 uint32_t dofpv_name;
229 /* Provider attributes. */
230 uint32_t dofpv_provattr;
231 /* Module attributes. */
232 uint32_t dofpv_modattr;
233 /* Function attributes. */
234 uint32_t dofpv_funcattr;
235 /* Name attributes. */
236 uint32_t dofpv_nameattr;
237 /* Args attributes. */
238 uint32_t dofpv_argsattr;
239 /* Link to a DTRACE_DOF_SECT_PRENOFFS section. */
240 uint32_t dofpv_prenoffs;
241};
242
243/* A set of DOF probes and is-enabled probes sharing a base address
244 and several attributes. The particular locations and attributes of
245 each probe are maintained in arrays in several other DOF sections.
246 See the comment in dtrace_process_dof_probe for details on how
247 these attributes are stored. */
248
249struct dtrace_dof_probe
250{
251 /* Probe base address or offset. */
252 uint64_t dofpr_addr;
253 /* Probe function string. */
254 uint32_t dofpr_func;
255 /* Probe name string. */
256 uint32_t dofpr_name;
257 /* Native argument type strings. */
258 uint32_t dofpr_nargv;
259 /* Translated argument type strings. */
260 uint32_t dofpr_xargv;
261 /* Index of first argument mapping. */
262 uint32_t dofpr_argidx;
263 /* Index of first offset entry. */
264 uint32_t dofpr_offidx;
265 /* Native argument count. */
266 uint8_t dofpr_nargc;
267 /* Translated argument count. */
268 uint8_t dofpr_xargc;
269 /* Number of offset entries for probe. */
270 uint16_t dofpr_noffs;
271 /* Index of first is-enabled offset. */
272 uint32_t dofpr_enoffidx;
273 /* Number of is-enabled offsets. */
274 uint16_t dofpr_nenoffs;
275 /* Reserved for future use. */
276 uint16_t dofpr_pad1;
277 /* Reserved for future use. */
278 uint32_t dofpr_pad2;
279};
280
281/* DOF supports two different encodings: MSB (big-endian) and LSB
282 (little-endian). The encoding is itself encoded in the DOF header.
283 The following function returns an unsigned value in the host
284 endianness. */
285
286#define DOF_UINT(dof, field) \
287 extract_unsigned_integer ((gdb_byte *) &(field), \
288 sizeof ((field)), \
289 (((dof)->dofh_ident[DTRACE_DOF_ID_ENCODING] \
290 == DTRACE_DOF_ENCODE_MSB) \
291 ? BFD_ENDIAN_BIG : BFD_ENDIAN_LITTLE))
292
293/* The following macro applies a given byte offset to a DOF (a pointer
294 to a dtrace_dof_hdr structure) and returns the resulting
295 address. */
296
297#define DTRACE_DOF_PTR(dof, offset) (&((char *) (dof))[(offset)])
298
299/* The following macro returns a pointer to the beginning of a given
300 section in a DOF object. The section is referred to by its index
301 in the sections array. */
302
303#define DTRACE_DOF_SECT(dof, idx) \
304 ((struct dtrace_dof_sect *) \
305 DTRACE_DOF_PTR ((dof), \
306 DOF_UINT ((dof), (dof)->dofh_secoff) \
307 + ((idx) * DOF_UINT ((dof), (dof)->dofh_secsize))))
308
309/* Helper function to examine the probe described by the given PROBE
310 and PROVIDER data structures and add it to the PROBESP vector.
311 STRTAB, OFFTAB, EOFFTAB and ARGTAB are pointers to tables in the
312 DOF program containing the attributes for the probe. */
313
314static void
315dtrace_process_dof_probe (struct objfile *objfile,
316 struct gdbarch *gdbarch, VEC (probe_p) **probesp,
317 struct dtrace_dof_hdr *dof,
318 struct dtrace_dof_probe *probe,
319 struct dtrace_dof_provider *provider,
320 char *strtab, char *offtab, char *eofftab,
321 char *argtab, uint64_t strtab_size)
322{
323 int i, j, num_probes, num_enablers;
324 struct cleanup *cleanup;
325 VEC (dtrace_probe_enabler_s) *enablers;
326 char *p;
327
328 /* Each probe section can define zero or more probes of two
329 different types:
330
331 - probe->dofpr_noffs regular probes whose program counters are
332 stored in 32bit words starting at probe->dofpr_addr +
333 offtab[probe->dofpr_offidx].
334
335 - probe->dofpr_nenoffs is-enabled probes whose program counters
336 are stored in 32bit words starting at probe->dofpr_addr +
337 eofftab[probe->dofpr_enoffidx].
338
339 However is-enabled probes are not probes per-se, but an
340 optimization hack that is implemented in the kernel in a very
341 similar way than normal probes. This is how we support
342 is-enabled probes on GDB:
343
344 - Our probes are always DTrace regular probes.
345
346 - Our probes can be associated with zero or more "enablers". The
347 list of enablers is built from the is-enabled probes defined in
348 the Probe section.
349
350 - Probes having a non-empty list of enablers can be enabled or
351 disabled using the `enable probe' and `disable probe' commands
352 respectively. The `Enabled' column in the output of `info
353 probes' will read `yes' if the enablers are activated, `no'
354 otherwise.
355
356 - Probes having an empty list of enablers are always enabled.
357 The `Enabled' column in the output of `info probes' will
358 read `always'.
359
360 It follows that if there are DTrace is-enabled probes defined for
361 some provider/name but no DTrace regular probes defined then the
362 GDB user wont be able to enable/disable these conditionals. */
363
364 num_probes = DOF_UINT (dof, probe->dofpr_noffs);
365 if (num_probes == 0)
366 return;
367
368 /* Build the list of enablers for the probes defined in this Probe
369 DOF section. */
370 enablers = NULL;
371 cleanup
372 = make_cleanup (VEC_cleanup (dtrace_probe_enabler_s), &enablers);
373 num_enablers = DOF_UINT (dof, probe->dofpr_nenoffs);
374 for (i = 0; i < num_enablers; i++)
375 {
376 struct dtrace_probe_enabler enabler;
377 uint32_t enabler_offset
378 = ((uint32_t *) eofftab)[DOF_UINT (dof, probe->dofpr_enoffidx) + i];
379
380 enabler.address = DOF_UINT (dof, probe->dofpr_addr)
381 + DOF_UINT (dof, enabler_offset);
382 VEC_safe_push (dtrace_probe_enabler_s, enablers, &enabler);
383 }
384
385 for (i = 0; i < num_probes; i++)
386 {
387 uint32_t probe_offset
388 = ((uint32_t *) offtab)[DOF_UINT (dof, probe->dofpr_offidx) + i];
8d749320
SM
389 struct dtrace_probe *ret =
390 XOBNEW (&objfile->per_bfd->storage_obstack, struct dtrace_probe);
d4777acb
JM
391
392 ret->p.pops = &dtrace_probe_ops;
393 ret->p.arch = gdbarch;
394 ret->args_expr_built = 0;
395
396 /* Set the provider and the name of the probe. */
397 ret->p.provider
398 = xstrdup (strtab + DOF_UINT (dof, provider->dofpv_name));
399 ret->p.name = xstrdup (strtab + DOF_UINT (dof, probe->dofpr_name));
400
401 /* The probe address. */
402 ret->p.address
403 = DOF_UINT (dof, probe->dofpr_addr) + DOF_UINT (dof, probe_offset);
404
405 /* Number of arguments in the probe. */
406 ret->probe_argc = DOF_UINT (dof, probe->dofpr_nargc);
407
408 /* Store argument type descriptions. A description of the type
409 of the argument is in the (J+1)th null-terminated string
410 starting at 'strtab' + 'probe->dofpr_nargv'. */
411 ret->args = NULL;
412 p = strtab + DOF_UINT (dof, probe->dofpr_nargv);
413 for (j = 0; j < ret->probe_argc; j++)
414 {
415 struct dtrace_probe_arg arg;
4d01a485 416 expression_up expr;
d4777acb 417
ffdf88ec
SE
418 /* Set arg.expr to ensure all fields in expr are initialized and
419 the compiler will not warn when arg is used. */
420 arg.expr = NULL;
d4777acb
JM
421 arg.type_str = xstrdup (p);
422
423 /* Use strtab_size as a sentinel. */
424 while (*p++ != '\0' && p - strtab < strtab_size);
425
426 /* Try to parse a type expression from the type string. If
427 this does not work then we set the type to `long
428 int'. */
429 arg.type = builtin_type (gdbarch)->builtin_long;
429e1e81
JB
430
431 TRY
432 {
036e657b 433 expr = parse_expression_with_language (arg.type_str, language_c);
429e1e81
JB
434 }
435 CATCH (ex, RETURN_MASK_ERROR)
436 {
429e1e81
JB
437 }
438 END_CATCH
439
440 if (expr != NULL && expr->elts[0].opcode == OP_TYPE)
d4777acb
JM
441 arg.type = expr->elts[1].type;
442
443 VEC_safe_push (dtrace_probe_arg_s, ret->args, &arg);
444 }
445
446 /* Add the vector of enablers to this probe, if any. */
447 ret->enablers = VEC_copy (dtrace_probe_enabler_s, enablers);
448
449 /* Successfully created probe. */
450 VEC_safe_push (probe_p, *probesp, (struct probe *) ret);
451 }
452
453 do_cleanups (cleanup);
454}
455
456/* Helper function to collect the probes described in the DOF program
457 whose header is pointed by DOF and add them to the PROBESP vector.
458 SECT is the ELF section containing the DOF program and OBJFILE is
459 its containing object file. */
460
461static void
462dtrace_process_dof (asection *sect, struct objfile *objfile,
463 VEC (probe_p) **probesp, struct dtrace_dof_hdr *dof)
464{
d4777acb
JM
465 struct gdbarch *gdbarch = get_objfile_arch (objfile);
466 struct dtrace_dof_sect *section;
467 int i;
468
469 /* The first step is to check for the DOF magic number. If no valid
470 DOF data is found in the section then a complaint is issued to
471 the user and the section skipped. */
472 if (dof->dofh_ident[DTRACE_DOF_ID_MAG0] != 0x7F
473 || dof->dofh_ident[DTRACE_DOF_ID_MAG1] != 'D'
474 || dof->dofh_ident[DTRACE_DOF_ID_MAG2] != 'O'
475 || dof->dofh_ident[DTRACE_DOF_ID_MAG3] != 'F')
476 goto invalid_dof_data;
477
478 /* Make sure the encoding mark is either DTRACE_DOF_ENCODE_LSB or
479 DTRACE_DOF_ENCODE_MSB. */
480 if (dof->dofh_ident[DTRACE_DOF_ID_ENCODING] != DTRACE_DOF_ENCODE_LSB
481 && dof->dofh_ident[DTRACE_DOF_ID_ENCODING] != DTRACE_DOF_ENCODE_MSB)
482 goto invalid_dof_data;
483
484 /* Make sure this DOF is not an enabling DOF, i.e. there are no ECB
485 Description sections. */
486 section = (struct dtrace_dof_sect *) DTRACE_DOF_PTR (dof,
487 DOF_UINT (dof, dof->dofh_secoff));
488 for (i = 0; i < DOF_UINT (dof, dof->dofh_secnum); i++, section++)
489 if (section->dofs_type == DTRACE_DOF_SECT_TYPE_ECBDESC)
490 return;
491
492 /* Iterate over any section of type Provider and extract the probe
493 information from them. If there are no "provider" sections on
494 the DOF then we just return. */
495 section = (struct dtrace_dof_sect *) DTRACE_DOF_PTR (dof,
496 DOF_UINT (dof, dof->dofh_secoff));
497 for (i = 0; i < DOF_UINT (dof, dof->dofh_secnum); i++, section++)
498 if (DOF_UINT (dof, section->dofs_type) == DTRACE_DOF_SECT_TYPE_PROVIDER)
499 {
500 struct dtrace_dof_provider *provider = (struct dtrace_dof_provider *)
501 DTRACE_DOF_PTR (dof, DOF_UINT (dof, section->dofs_offset));
502 struct dtrace_dof_sect *strtab_s
503 = DTRACE_DOF_SECT (dof, DOF_UINT (dof, provider->dofpv_strtab));
504 struct dtrace_dof_sect *probes_s
505 = DTRACE_DOF_SECT (dof, DOF_UINT (dof, provider->dofpv_probes));
506 struct dtrace_dof_sect *args_s
507 = DTRACE_DOF_SECT (dof, DOF_UINT (dof, provider->dofpv_prargs));
508 struct dtrace_dof_sect *offsets_s
509 = DTRACE_DOF_SECT (dof, DOF_UINT (dof, provider->dofpv_proffs));
510 struct dtrace_dof_sect *eoffsets_s
511 = DTRACE_DOF_SECT (dof, DOF_UINT (dof, provider->dofpv_prenoffs));
512 char *strtab = DTRACE_DOF_PTR (dof, DOF_UINT (dof, strtab_s->dofs_offset));
513 char *offtab = DTRACE_DOF_PTR (dof, DOF_UINT (dof, offsets_s->dofs_offset));
514 char *eofftab = DTRACE_DOF_PTR (dof, DOF_UINT (dof, eoffsets_s->dofs_offset));
515 char *argtab = DTRACE_DOF_PTR (dof, DOF_UINT (dof, args_s->dofs_offset));
516 unsigned int entsize = DOF_UINT (dof, probes_s->dofs_entsize);
517 int num_probes;
518
47e9c225
JB
519 if (DOF_UINT (dof, section->dofs_size)
520 < sizeof (struct dtrace_dof_provider))
521 {
522 /* The section is smaller than expected, so do not use it.
523 This has been observed on x86-solaris 10. */
524 goto invalid_dof_data;
525 }
526
d4777acb
JM
527 /* Very, unlikely, but could crash gdb if not handled
528 properly. */
529 if (entsize == 0)
530 goto invalid_dof_data;
531
532 num_probes = DOF_UINT (dof, probes_s->dofs_size) / entsize;
533
534 for (i = 0; i < num_probes; i++)
535 {
536 struct dtrace_dof_probe *probe = (struct dtrace_dof_probe *)
537 DTRACE_DOF_PTR (dof, DOF_UINT (dof, probes_s->dofs_offset)
538 + (i * DOF_UINT (dof, probes_s->dofs_entsize)));
539
540 dtrace_process_dof_probe (objfile,
541 gdbarch, probesp,
542 dof, probe,
543 provider, strtab, offtab, eofftab, argtab,
544 DOF_UINT (dof, strtab_s->dofs_size));
545 }
546 }
547
548 return;
549
550 invalid_dof_data:
551 complaint (&symfile_complaints,
552 _("skipping section '%s' which does not contain valid DOF data."),
553 sect->name);
554}
555
556/* Helper function to build the GDB internal expressiosn that, once
557 evaluated, will calculate the values of the arguments of a given
558 PROBE. */
559
560static void
561dtrace_build_arg_exprs (struct dtrace_probe *probe,
562 struct gdbarch *gdbarch)
563{
564 struct parser_state pstate;
565 struct dtrace_probe_arg *arg;
566 int i;
567
568 probe->args_expr_built = 1;
569
570 /* Iterate over the arguments in the probe and build the
571 corresponding GDB internal expression that will generate the
572 value of the argument when executed at the PC of the probe. */
573 for (i = 0; i < probe->probe_argc; i++)
574 {
575 struct cleanup *back_to;
576
577 arg = VEC_index (dtrace_probe_arg_s, probe->args, i);
578
579 /* Initialize the expression buffer in the parser state. The
580 language does not matter, since we are using our own
581 parser. */
582 initialize_expout (&pstate, 10, current_language, gdbarch);
583 back_to = make_cleanup (free_current_contents, &pstate.expout);
584
585 /* The argument value, which is ABI dependent and casted to
586 `long int'. */
587 gdbarch_dtrace_parse_probe_argument (gdbarch, &pstate, i);
588
589 discard_cleanups (back_to);
590
591 /* Casting to the expected type, but only if the type was
592 recognized at probe load time. Otherwise the argument will
593 be evaluated as the long integer passed to the probe. */
594 if (arg->type != NULL)
595 {
596 write_exp_elt_opcode (&pstate, UNOP_CAST);
597 write_exp_elt_type (&pstate, arg->type);
598 write_exp_elt_opcode (&pstate, UNOP_CAST);
599 }
600
601 reallocate_expout (&pstate);
602 arg->expr = pstate.expout;
603 prefixify_expression (arg->expr);
604 }
605}
606
607/* Helper function to return the Nth argument of a given PROBE. */
608
609static struct dtrace_probe_arg *
610dtrace_get_arg (struct dtrace_probe *probe, unsigned n,
611 struct gdbarch *gdbarch)
612{
613 if (!probe->args_expr_built)
614 dtrace_build_arg_exprs (probe, gdbarch);
615
616 return VEC_index (dtrace_probe_arg_s, probe->args, n);
617}
618
619/* Implementation of the get_probes method. */
620
621static void
622dtrace_get_probes (VEC (probe_p) **probesp, struct objfile *objfile)
623{
624 bfd *abfd = objfile->obfd;
625 asection *sect = NULL;
626
627 /* Do nothing in case this is a .debug file, instead of the objfile
628 itself. */
629 if (objfile->separate_debug_objfile_backlink != NULL)
630 return;
631
632 /* Iterate over the sections in OBJFILE looking for DTrace
633 information. */
634 for (sect = abfd->sections; sect != NULL; sect = sect->next)
635 {
636 if (elf_section_data (sect)->this_hdr.sh_type == SHT_SUNW_dof)
637 {
ffdf88ec 638 bfd_byte *dof;
d4777acb
JM
639
640 /* Read the contents of the DOF section and then process it to
641 extract the information of any probe defined into it. */
ffdf88ec 642 if (!bfd_malloc_and_get_section (abfd, sect, &dof))
d4777acb
JM
643 complaint (&symfile_complaints,
644 _("could not obtain the contents of"
645 "section '%s' in objfile `%s'."),
646 sect->name, abfd->filename);
647
ffdf88ec
SE
648 dtrace_process_dof (sect, objfile, probesp,
649 (struct dtrace_dof_hdr *) dof);
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JM
650 xfree (dof);
651 }
652 }
653}
654
655/* Helper function to determine whether a given probe is "enabled" or
656 "disabled". A disabled probe is a probe in which one or more
657 enablers are disabled. */
658
659static int
660dtrace_probe_is_enabled (struct dtrace_probe *probe)
661{
662 int i;
663 struct gdbarch *gdbarch = probe->p.arch;
664 struct dtrace_probe_enabler *enabler;
665
666 for (i = 0;
667 VEC_iterate (dtrace_probe_enabler_s, probe->enablers, i, enabler);
668 i++)
669 if (!gdbarch_dtrace_probe_is_enabled (gdbarch, enabler->address))
670 return 0;
671
672 return 1;
673}
674
675/* Implementation of the get_probe_address method. */
676
677static CORE_ADDR
678dtrace_get_probe_address (struct probe *probe, struct objfile *objfile)
679{
680 gdb_assert (probe->pops == &dtrace_probe_ops);
681 return probe->address + ANOFFSET (objfile->section_offsets,
682 SECT_OFF_DATA (objfile));
683}
684
685/* Implementation of the get_probe_argument_count method. */
686
687static unsigned
688dtrace_get_probe_argument_count (struct probe *probe_generic,
689 struct frame_info *frame)
690{
691 struct dtrace_probe *dtrace_probe = (struct dtrace_probe *) probe_generic;
692
693 gdb_assert (probe_generic->pops == &dtrace_probe_ops);
694
695 return dtrace_probe->probe_argc;
696}
697
698/* Implementation of the can_evaluate_probe_arguments method. */
699
700static int
701dtrace_can_evaluate_probe_arguments (struct probe *probe_generic)
702{
703 struct gdbarch *gdbarch = probe_generic->arch;
704
705 gdb_assert (probe_generic->pops == &dtrace_probe_ops);
706 return gdbarch_dtrace_parse_probe_argument_p (gdbarch);
707}
708
709/* Implementation of the evaluate_probe_argument method. */
710
711static struct value *
712dtrace_evaluate_probe_argument (struct probe *probe_generic, unsigned n,
713 struct frame_info *frame)
714{
715 struct gdbarch *gdbarch = probe_generic->arch;
716 struct dtrace_probe *dtrace_probe = (struct dtrace_probe *) probe_generic;
717 struct dtrace_probe_arg *arg;
718 int pos = 0;
719
720 gdb_assert (probe_generic->pops == &dtrace_probe_ops);
721
722 arg = dtrace_get_arg (dtrace_probe, n, gdbarch);
723 return evaluate_subexp_standard (arg->type, arg->expr, &pos, EVAL_NORMAL);
724}
725
726/* Implementation of the compile_to_ax method. */
727
728static void
729dtrace_compile_to_ax (struct probe *probe_generic, struct agent_expr *expr,
730 struct axs_value *value, unsigned n)
731{
732 struct dtrace_probe *dtrace_probe = (struct dtrace_probe *) probe_generic;
733 struct dtrace_probe_arg *arg;
734 union exp_element *pc;
735
736 gdb_assert (probe_generic->pops == &dtrace_probe_ops);
737
738 arg = dtrace_get_arg (dtrace_probe, n, expr->gdbarch);
739
740 pc = arg->expr->elts;
741 gen_expr (arg->expr, &pc, expr, value);
742
743 require_rvalue (expr, value);
744 value->type = arg->type;
745}
746
747/* Implementation of the probe_destroy method. */
748
749static void
750dtrace_probe_destroy (struct probe *probe_generic)
751{
752 struct dtrace_probe *probe = (struct dtrace_probe *) probe_generic;
753 struct dtrace_probe_arg *arg;
754 int i;
755
756 gdb_assert (probe_generic->pops == &dtrace_probe_ops);
757
758 for (i = 0; VEC_iterate (dtrace_probe_arg_s, probe->args, i, arg); i++)
759 {
760 xfree (arg->type_str);
761 xfree (arg->expr);
762 }
763
764 VEC_free (dtrace_probe_enabler_s, probe->enablers);
765 VEC_free (dtrace_probe_arg_s, probe->args);
766}
767
768/* Implementation of the type_name method. */
769
770static const char *
771dtrace_type_name (struct probe *probe_generic)
772{
773 gdb_assert (probe_generic->pops == &dtrace_probe_ops);
774 return "dtrace";
775}
776
777/* Implementation of the gen_info_probes_table_header method. */
778
779static void
780dtrace_gen_info_probes_table_header (VEC (info_probe_column_s) **heads)
781{
782 info_probe_column_s dtrace_probe_column;
783
784 dtrace_probe_column.field_name = "enabled";
785 dtrace_probe_column.print_name = _("Enabled");
786
787 VEC_safe_push (info_probe_column_s, *heads, &dtrace_probe_column);
788}
789
790/* Implementation of the gen_info_probes_table_values method. */
791
792static void
793dtrace_gen_info_probes_table_values (struct probe *probe_generic,
794 VEC (const_char_ptr) **ret)
795{
796 struct dtrace_probe *probe = (struct dtrace_probe *) probe_generic;
797 const char *val = NULL;
798
799 gdb_assert (probe_generic->pops == &dtrace_probe_ops);
800
801 if (VEC_empty (dtrace_probe_enabler_s, probe->enablers))
802 val = "always";
803 else if (!gdbarch_dtrace_probe_is_enabled_p (probe_generic->arch))
804 val = "unknown";
805 else if (dtrace_probe_is_enabled (probe))
806 val = "yes";
807 else
808 val = "no";
809
810 VEC_safe_push (const_char_ptr, *ret, val);
811}
812
813/* Implementation of the enable_probe method. */
814
815static void
816dtrace_enable_probe (struct probe *probe)
817{
818 struct gdbarch *gdbarch = probe->arch;
819 struct dtrace_probe *dtrace_probe = (struct dtrace_probe *) probe;
820 struct dtrace_probe_enabler *enabler;
821 int i;
822
823 gdb_assert (probe->pops == &dtrace_probe_ops);
824
825 /* Enabling a dtrace probe implies patching the text section of the
826 running process, so make sure the inferior is indeed running. */
827 if (ptid_equal (inferior_ptid, null_ptid))
828 error (_("No inferior running"));
829
830 /* Fast path. */
831 if (dtrace_probe_is_enabled (dtrace_probe))
832 return;
833
834 /* Iterate over all defined enabler in the given probe and enable
835 them all using the corresponding gdbarch hook. */
836
837 for (i = 0;
838 VEC_iterate (dtrace_probe_enabler_s, dtrace_probe->enablers, i, enabler);
839 i++)
840 if (gdbarch_dtrace_enable_probe_p (gdbarch))
841 gdbarch_dtrace_enable_probe (gdbarch, enabler->address);
842}
843
844
845/* Implementation of the disable_probe method. */
846
847static void
848dtrace_disable_probe (struct probe *probe)
849{
850 struct gdbarch *gdbarch = probe->arch;
851 struct dtrace_probe *dtrace_probe = (struct dtrace_probe *) probe;
852 struct dtrace_probe_enabler *enabler;
853 int i;
854
855 gdb_assert (probe->pops == &dtrace_probe_ops);
856
857 /* Disabling a dtrace probe implies patching the text section of the
858 running process, so make sure the inferior is indeed running. */
859 if (ptid_equal (inferior_ptid, null_ptid))
860 error (_("No inferior running"));
861
862 /* Fast path. */
863 if (!dtrace_probe_is_enabled (dtrace_probe))
864 return;
865
866 /* Are we trying to disable a probe that does not have any enabler
867 associated? */
868 if (VEC_empty (dtrace_probe_enabler_s, dtrace_probe->enablers))
869 error (_("Probe %s:%s cannot be disabled: no enablers."), probe->provider, probe->name);
870
871 /* Iterate over all defined enabler in the given probe and disable
872 them all using the corresponding gdbarch hook. */
873
874 for (i = 0;
875 VEC_iterate (dtrace_probe_enabler_s, dtrace_probe->enablers, i, enabler);
876 i++)
877 if (gdbarch_dtrace_disable_probe_p (gdbarch))
878 gdbarch_dtrace_disable_probe (gdbarch, enabler->address);
879}
880
881/* DTrace probe_ops. */
882
bf36a1e7 883const struct probe_ops dtrace_probe_ops =
d4777acb
JM
884{
885 dtrace_probe_is_linespec,
886 dtrace_get_probes,
887 dtrace_get_probe_address,
888 dtrace_get_probe_argument_count,
889 dtrace_can_evaluate_probe_arguments,
890 dtrace_evaluate_probe_argument,
891 dtrace_compile_to_ax,
892 NULL, /* set_semaphore */
893 NULL, /* clear_semaphore */
894 dtrace_probe_destroy,
895 dtrace_type_name,
896 dtrace_gen_info_probes_table_header,
897 dtrace_gen_info_probes_table_values,
898 dtrace_enable_probe,
899 dtrace_disable_probe
900};
901
902/* Implementation of the `info probes dtrace' command. */
903
904static void
905info_probes_dtrace_command (char *arg, int from_tty)
906{
907 info_probes_for_ops (arg, from_tty, &dtrace_probe_ops);
908}
909
910void _initialize_dtrace_probe (void);
911
912void
913_initialize_dtrace_probe (void)
914{
915 VEC_safe_push (probe_ops_cp, all_probe_ops, &dtrace_probe_ops);
916
917 add_cmd ("dtrace", class_info, info_probes_dtrace_command,
918 _("\
919Show information about DTrace static probes.\n\
920Usage: info probes dtrace [PROVIDER [NAME [OBJECT]]]\n\
921Each argument is a regular expression, used to select probes.\n\
922PROVIDER matches probe provider names.\n\
923NAME matches the probe names.\n\
924OBJECT matches the executable or shared library name."),
925 info_probes_cmdlist_get ());
926}
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