wrong dimension found in ada-lang.c:ada_array_bound_from_type
[deliverable/binutils-gdb.git] / gdb / stap-probe.c
CommitLineData
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1/* SystemTap probe support for GDB.
2
28e7fd62 3 Copyright (C) 2012-2013 Free Software Foundation, Inc.
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4
5 This file is part of GDB.
6
7 This program is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 3 of the License, or
10 (at your option) any later version.
11
12 This program is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
16
17 You should have received a copy of the GNU General Public License
18 along with this program. If not, see <http://www.gnu.org/licenses/>. */
19
20#include "defs.h"
21#include "stap-probe.h"
22#include "probe.h"
23#include "vec.h"
24#include "ui-out.h"
25#include "objfiles.h"
26#include "arch-utils.h"
27#include "command.h"
28#include "gdbcmd.h"
29#include "filenames.h"
30#include "value.h"
31#include "exceptions.h"
32#include "ax.h"
33#include "ax-gdb.h"
34#include "complaints.h"
35#include "cli/cli-utils.h"
36#include "linespec.h"
37#include "user-regs.h"
38#include "parser-defs.h"
39#include "language.h"
40#include "elf-bfd.h"
41
42#include <ctype.h>
43
44/* The name of the SystemTap section where we will find information about
45 the probes. */
46
47#define STAP_BASE_SECTION_NAME ".stapsdt.base"
48
49/* Forward declaration. */
50
51static const struct probe_ops stap_probe_ops;
52
53/* Should we display debug information for the probe's argument expression
54 parsing? */
55
ccce17b0 56static unsigned int stap_expression_debug = 0;
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57
58/* The various possibilities of bitness defined for a probe's argument.
59
60 The relationship is:
61
62 - STAP_ARG_BITNESS_UNDEFINED: The user hasn't specified the bitness.
63 - STAP_ARG_BITNESS_32BIT_UNSIGNED: argument string starts with `4@'.
64 - STAP_ARG_BITNESS_32BIT_SIGNED: argument string starts with `-4@'.
65 - STAP_ARG_BITNESS_64BIT_UNSIGNED: argument string starts with `8@'.
66 - STAP_ARG_BITNESS_64BIT_SIGNED: argument string starts with `-8@'. */
67
68enum stap_arg_bitness
69{
70 STAP_ARG_BITNESS_UNDEFINED,
71 STAP_ARG_BITNESS_32BIT_UNSIGNED,
72 STAP_ARG_BITNESS_32BIT_SIGNED,
73 STAP_ARG_BITNESS_64BIT_UNSIGNED,
74 STAP_ARG_BITNESS_64BIT_SIGNED,
75};
76
77/* The following structure represents a single argument for the probe. */
78
79struct stap_probe_arg
80{
81 /* The bitness of this argument. */
82 enum stap_arg_bitness bitness;
83
84 /* The corresponding `struct type *' to the bitness. */
85 struct type *atype;
86
87 /* The argument converted to an internal GDB expression. */
88 struct expression *aexpr;
89};
90
91typedef struct stap_probe_arg stap_probe_arg_s;
92DEF_VEC_O (stap_probe_arg_s);
93
94struct stap_probe
95{
96 /* Generic information about the probe. This shall be the first element
97 of this struct, in order to maintain binary compatibility with the
98 `struct probe' and be able to fully abstract it. */
99 struct probe p;
100
101 /* If the probe has a semaphore associated, then this is the value of
102 it. */
103 CORE_ADDR sem_addr;
104
105 unsigned int args_parsed : 1;
106 union
107 {
108 const char *text;
109
110 /* Information about each argument. This is an array of `stap_probe_arg',
111 with each entry representing one argument. */
112 VEC (stap_probe_arg_s) *vec;
113 }
114 args_u;
115};
116
117/* When parsing the arguments, we have to establish different precedences
118 for the various kinds of asm operators. This enumeration represents those
119 precedences.
120
121 This logic behind this is available at
122 <http://sourceware.org/binutils/docs/as/Infix-Ops.html#Infix-Ops>, or using
123 the command "info '(as)Infix Ops'". */
124
125enum stap_operand_prec
126{
127 /* Lowest precedence, used for non-recognized operands or for the beginning
128 of the parsing process. */
129 STAP_OPERAND_PREC_NONE = 0,
130
131 /* Precedence of logical OR. */
132 STAP_OPERAND_PREC_LOGICAL_OR,
133
134 /* Precedence of logical AND. */
135 STAP_OPERAND_PREC_LOGICAL_AND,
136
137 /* Precedence of additive (plus, minus) and comparative (equal, less,
138 greater-than, etc) operands. */
139 STAP_OPERAND_PREC_ADD_CMP,
140
141 /* Precedence of bitwise operands (bitwise OR, XOR, bitwise AND,
142 logical NOT). */
143 STAP_OPERAND_PREC_BITWISE,
144
145 /* Precedence of multiplicative operands (multiplication, division,
146 remainder, left shift and right shift). */
147 STAP_OPERAND_PREC_MUL
148};
149
150static void stap_parse_argument_1 (struct stap_parse_info *p, int has_lhs,
151 enum stap_operand_prec prec);
152
153static void stap_parse_argument_conditionally (struct stap_parse_info *p);
154
155/* Returns 1 if *S is an operator, zero otherwise. */
156
fcf57f19 157static int stap_is_operator (const char *op);
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158
159static void
160show_stapexpressiondebug (struct ui_file *file, int from_tty,
161 struct cmd_list_element *c, const char *value)
162{
163 fprintf_filtered (file, _("SystemTap Probe expression debugging is %s.\n"),
164 value);
165}
166
167/* Returns the operator precedence level of OP, or STAP_OPERAND_PREC_NONE
168 if the operator code was not recognized. */
169
170static enum stap_operand_prec
171stap_get_operator_prec (enum exp_opcode op)
172{
173 switch (op)
174 {
175 case BINOP_LOGICAL_OR:
176 return STAP_OPERAND_PREC_LOGICAL_OR;
177
178 case BINOP_LOGICAL_AND:
179 return STAP_OPERAND_PREC_LOGICAL_AND;
180
181 case BINOP_ADD:
182 case BINOP_SUB:
183 case BINOP_EQUAL:
184 case BINOP_NOTEQUAL:
185 case BINOP_LESS:
186 case BINOP_LEQ:
187 case BINOP_GTR:
188 case BINOP_GEQ:
189 return STAP_OPERAND_PREC_ADD_CMP;
190
191 case BINOP_BITWISE_IOR:
192 case BINOP_BITWISE_AND:
193 case BINOP_BITWISE_XOR:
194 case UNOP_LOGICAL_NOT:
195 return STAP_OPERAND_PREC_BITWISE;
196
197 case BINOP_MUL:
198 case BINOP_DIV:
199 case BINOP_REM:
200 case BINOP_LSH:
201 case BINOP_RSH:
202 return STAP_OPERAND_PREC_MUL;
203
204 default:
205 return STAP_OPERAND_PREC_NONE;
206 }
207}
208
209/* Given S, read the operator in it and fills the OP pointer with its code.
210 Return 1 on success, zero if the operator was not recognized. */
211
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212static enum exp_opcode
213stap_get_opcode (const char **s)
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214{
215 const char c = **s;
fcf57f19 216 enum exp_opcode op;
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217
218 *s += 1;
219
220 switch (c)
221 {
222 case '*':
fcf57f19 223 op = BINOP_MUL;
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224 break;
225
226 case '/':
fcf57f19 227 op = BINOP_DIV;
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228 break;
229
230 case '%':
fcf57f19 231 op = BINOP_REM;
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232 break;
233
234 case '<':
fcf57f19 235 op = BINOP_LESS;
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236 if (**s == '<')
237 {
238 *s += 1;
fcf57f19 239 op = BINOP_LSH;
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240 }
241 else if (**s == '=')
242 {
243 *s += 1;
fcf57f19 244 op = BINOP_LEQ;
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245 }
246 else if (**s == '>')
247 {
248 *s += 1;
fcf57f19 249 op = BINOP_NOTEQUAL;
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250 }
251 break;
252
253 case '>':
fcf57f19 254 op = BINOP_GTR;
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255 if (**s == '>')
256 {
257 *s += 1;
fcf57f19 258 op = BINOP_RSH;
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259 }
260 else if (**s == '=')
261 {
262 *s += 1;
fcf57f19 263 op = BINOP_GEQ;
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264 }
265 break;
266
267 case '|':
fcf57f19 268 op = BINOP_BITWISE_IOR;
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269 if (**s == '|')
270 {
271 *s += 1;
fcf57f19 272 op = BINOP_LOGICAL_OR;
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273 }
274 break;
275
276 case '&':
fcf57f19 277 op = BINOP_BITWISE_AND;
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278 if (**s == '&')
279 {
280 *s += 1;
fcf57f19 281 op = BINOP_LOGICAL_AND;
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282 }
283 break;
284
285 case '^':
fcf57f19 286 op = BINOP_BITWISE_XOR;
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287 break;
288
289 case '!':
fcf57f19 290 op = UNOP_LOGICAL_NOT;
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291 break;
292
293 case '+':
fcf57f19 294 op = BINOP_ADD;
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295 break;
296
297 case '-':
fcf57f19 298 op = BINOP_SUB;
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299 break;
300
301 case '=':
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302 gdb_assert (**s == '=');
303 op = BINOP_EQUAL;
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304 break;
305
306 default:
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307 internal_error (__FILE__, __LINE__,
308 _("Invalid opcode in expression `%s' for SystemTap"
309 "probe"), *s);
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310 }
311
fcf57f19 312 return op;
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313}
314
315/* Given the bitness of the argument, represented by B, return the
316 corresponding `struct type *'. */
317
318static struct type *
319stap_get_expected_argument_type (struct gdbarch *gdbarch,
320 enum stap_arg_bitness b)
321{
322 switch (b)
323 {
324 case STAP_ARG_BITNESS_UNDEFINED:
325 if (gdbarch_addr_bit (gdbarch) == 32)
326 return builtin_type (gdbarch)->builtin_uint32;
327 else
328 return builtin_type (gdbarch)->builtin_uint64;
329
330 case STAP_ARG_BITNESS_32BIT_SIGNED:
331 return builtin_type (gdbarch)->builtin_int32;
332
333 case STAP_ARG_BITNESS_32BIT_UNSIGNED:
334 return builtin_type (gdbarch)->builtin_uint32;
335
336 case STAP_ARG_BITNESS_64BIT_SIGNED:
337 return builtin_type (gdbarch)->builtin_int64;
338
339 case STAP_ARG_BITNESS_64BIT_UNSIGNED:
340 return builtin_type (gdbarch)->builtin_uint64;
341
342 default:
343 internal_error (__FILE__, __LINE__,
344 _("Undefined bitness for probe."));
345 break;
346 }
347}
348
349/* Function responsible for parsing a register operand according to
350 SystemTap parlance. Assuming:
351
352 RP = register prefix
353 RS = register suffix
354 RIP = register indirection prefix
355 RIS = register indirection suffix
356
357 Then a register operand can be:
358
359 [RIP] [RP] REGISTER [RS] [RIS]
360
361 This function takes care of a register's indirection, displacement and
362 direct access. It also takes into consideration the fact that some
363 registers are named differently inside and outside GDB, e.g., PPC's
364 general-purpose registers are represented by integers in the assembly
365 language (e.g., `15' is the 15th general-purpose register), but inside
366 GDB they have a prefix (the letter `r') appended. */
367
368static void
369stap_parse_register_operand (struct stap_parse_info *p)
370{
371 /* Simple flag to indicate whether we have seen a minus signal before
372 certain number. */
373 int got_minus = 0;
374
375 /* Flags to indicate whether this register access is being displaced and/or
376 indirected. */
377 int disp_p = 0, indirect_p = 0;
378 struct gdbarch *gdbarch = p->gdbarch;
379
380 /* Needed to generate the register name as a part of an expression. */
381 struct stoken str;
382
383 /* Variables used to extract the register name from the probe's
384 argument. */
385 const char *start;
386 char *regname;
387 int len;
388
389 /* Prefixes for the parser. */
390 const char *reg_prefix = gdbarch_stap_register_prefix (gdbarch);
391 const char *reg_ind_prefix
392 = gdbarch_stap_register_indirection_prefix (gdbarch);
393 const char *gdb_reg_prefix = gdbarch_stap_gdb_register_prefix (gdbarch);
394 int reg_prefix_len = reg_prefix ? strlen (reg_prefix) : 0;
395 int reg_ind_prefix_len = reg_ind_prefix ? strlen (reg_ind_prefix) : 0;
396 int gdb_reg_prefix_len = gdb_reg_prefix ? strlen (gdb_reg_prefix) : 0;
397
398 /* Suffixes for the parser. */
399 const char *reg_suffix = gdbarch_stap_register_suffix (gdbarch);
400 const char *reg_ind_suffix
401 = gdbarch_stap_register_indirection_suffix (gdbarch);
402 const char *gdb_reg_suffix = gdbarch_stap_gdb_register_suffix (gdbarch);
403 int reg_suffix_len = reg_suffix ? strlen (reg_suffix) : 0;
404 int reg_ind_suffix_len = reg_ind_suffix ? strlen (reg_ind_suffix) : 0;
405 int gdb_reg_suffix_len = gdb_reg_suffix ? strlen (gdb_reg_suffix) : 0;
406
407 /* Checking for a displacement argument. */
408 if (*p->arg == '+')
409 {
410 /* If it's a plus sign, we don't need to do anything, just advance the
411 pointer. */
412 ++p->arg;
413 }
414
415 if (*p->arg == '-')
416 {
417 got_minus = 1;
418 ++p->arg;
419 }
420
421 if (isdigit (*p->arg))
422 {
423 /* The value of the displacement. */
424 long displacement;
a0bcdaa7 425 char *endp;
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426
427 disp_p = 1;
a0bcdaa7
PA
428 displacement = strtol (p->arg, &endp, 10);
429 p->arg = endp;
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430
431 /* Generating the expression for the displacement. */
432 write_exp_elt_opcode (OP_LONG);
433 write_exp_elt_type (builtin_type (gdbarch)->builtin_long);
434 write_exp_elt_longcst (displacement);
435 write_exp_elt_opcode (OP_LONG);
436 if (got_minus)
437 write_exp_elt_opcode (UNOP_NEG);
438 }
439
440 /* Getting rid of register indirection prefix. */
441 if (reg_ind_prefix
442 && strncmp (p->arg, reg_ind_prefix, reg_ind_prefix_len) == 0)
443 {
444 indirect_p = 1;
445 p->arg += reg_ind_prefix_len;
446 }
447
448 if (disp_p && !indirect_p)
449 error (_("Invalid register displacement syntax on expression `%s'."),
450 p->saved_arg);
451
452 /* Getting rid of register prefix. */
453 if (reg_prefix && strncmp (p->arg, reg_prefix, reg_prefix_len) == 0)
454 p->arg += reg_prefix_len;
455
456 /* Now we should have only the register name. Let's extract it and get
457 the associated number. */
458 start = p->arg;
459
460 /* We assume the register name is composed by letters and numbers. */
461 while (isalnum (*p->arg))
462 ++p->arg;
463
464 len = p->arg - start;
465
466 regname = alloca (len + gdb_reg_prefix_len + gdb_reg_suffix_len + 1);
467 regname[0] = '\0';
468
469 /* We only add the GDB's register prefix/suffix if we are dealing with
470 a numeric register. */
471 if (gdb_reg_prefix && isdigit (*start))
472 {
473 strncpy (regname, gdb_reg_prefix, gdb_reg_prefix_len);
474 strncpy (regname + gdb_reg_prefix_len, start, len);
475
476 if (gdb_reg_suffix)
477 strncpy (regname + gdb_reg_prefix_len + len,
478 gdb_reg_suffix, gdb_reg_suffix_len);
479
480 len += gdb_reg_prefix_len + gdb_reg_suffix_len;
481 }
482 else
483 strncpy (regname, start, len);
484
485 regname[len] = '\0';
486
487 /* Is this a valid register name? */
488 if (user_reg_map_name_to_regnum (gdbarch, regname, len) == -1)
489 error (_("Invalid register name `%s' on expression `%s'."),
490 regname, p->saved_arg);
491
492 write_exp_elt_opcode (OP_REGISTER);
493 str.ptr = regname;
494 str.length = len;
495 write_exp_string (str);
496 write_exp_elt_opcode (OP_REGISTER);
497
498 if (indirect_p)
499 {
500 if (disp_p)
501 write_exp_elt_opcode (BINOP_ADD);
502
503 /* Casting to the expected type. */
504 write_exp_elt_opcode (UNOP_CAST);
505 write_exp_elt_type (lookup_pointer_type (p->arg_type));
506 write_exp_elt_opcode (UNOP_CAST);
507
508 write_exp_elt_opcode (UNOP_IND);
509 }
510
511 /* Getting rid of the register name suffix. */
512 if (reg_suffix)
513 {
514 if (strncmp (p->arg, reg_suffix, reg_suffix_len) != 0)
515 error (_("Missing register name suffix `%s' on expression `%s'."),
516 reg_suffix, p->saved_arg);
517
518 p->arg += reg_suffix_len;
519 }
520
521 /* Getting rid of the register indirection suffix. */
522 if (indirect_p && reg_ind_suffix)
523 {
524 if (strncmp (p->arg, reg_ind_suffix, reg_ind_suffix_len) != 0)
525 error (_("Missing indirection suffix `%s' on expression `%s'."),
526 reg_ind_suffix, p->saved_arg);
527
528 p->arg += reg_ind_suffix_len;
529 }
530}
531
532/* This function is responsible for parsing a single operand.
533
534 A single operand can be:
535
536 - an unary operation (e.g., `-5', `~2', or even with subexpressions
537 like `-(2 + 1)')
538 - a register displacement, which will be treated as a register
539 operand (e.g., `-4(%eax)' on x86)
540 - a numeric constant, or
541 - a register operand (see function `stap_parse_register_operand')
542
543 The function also calls special-handling functions to deal with
544 unrecognized operands, allowing arch-specific parsers to be
545 created. */
546
547static void
548stap_parse_single_operand (struct stap_parse_info *p)
549{
550 struct gdbarch *gdbarch = p->gdbarch;
551
552 /* Prefixes for the parser. */
553 const char *const_prefix = gdbarch_stap_integer_prefix (gdbarch);
554 const char *reg_prefix = gdbarch_stap_register_prefix (gdbarch);
555 const char *reg_ind_prefix
556 = gdbarch_stap_register_indirection_prefix (gdbarch);
557 int const_prefix_len = const_prefix ? strlen (const_prefix) : 0;
558 int reg_prefix_len = reg_prefix ? strlen (reg_prefix) : 0;
559 int reg_ind_prefix_len = reg_ind_prefix ? strlen (reg_ind_prefix) : 0;
560
561 /* Suffixes for the parser. */
562 const char *const_suffix = gdbarch_stap_integer_suffix (gdbarch);
55aa24fb 563 int const_suffix_len = const_suffix ? strlen (const_suffix) : 0;
55aa24fb
SDJ
564
565 /* We first try to parse this token as a "special token". */
566 if (gdbarch_stap_parse_special_token_p (gdbarch))
567 {
568 int ret = gdbarch_stap_parse_special_token (gdbarch, p);
569
570 if (ret)
571 {
572 /* If the return value of the above function is not zero,
573 it means it successfully parsed the special token.
574
575 If it is NULL, we try to parse it using our method. */
576 return;
577 }
578 }
579
580 if (*p->arg == '-' || *p->arg == '~' || *p->arg == '+')
581 {
582 char c = *p->arg;
583 int number;
584
585 /* We use this variable to do a lookahead. */
586 const char *tmp = p->arg;
587
588 ++tmp;
589
590 /* This is an unary operation. Here is a list of allowed tokens
591 here:
592
593 - numeric literal;
594 - number (from register displacement)
595 - subexpression (beginning with `(')
596
597 We handle the register displacement here, and the other cases
598 recursively. */
599 if (p->inside_paren_p)
600 tmp = skip_spaces_const (tmp);
601
602 if (isdigit (*tmp))
a0bcdaa7
PA
603 {
604 char *endp;
605
606 number = strtol (tmp, &endp, 10);
607 tmp = endp;
608 }
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SDJ
609
610 if (!reg_ind_prefix
611 || strncmp (tmp, reg_ind_prefix, reg_ind_prefix_len) != 0)
612 {
613 /* This is not a displacement. We skip the operator, and deal
614 with it later. */
615 ++p->arg;
616 stap_parse_argument_conditionally (p);
617 if (c == '-')
618 write_exp_elt_opcode (UNOP_NEG);
619 else if (c == '~')
620 write_exp_elt_opcode (UNOP_COMPLEMENT);
621 }
622 else
623 {
624 /* If we are here, it means it is a displacement. The only
625 operations allowed here are `-' and `+'. */
626 if (c == '~')
627 error (_("Invalid operator `%c' for register displacement "
628 "on expression `%s'."), c, p->saved_arg);
629
630 stap_parse_register_operand (p);
631 }
632 }
633 else if (isdigit (*p->arg))
634 {
635 /* A temporary variable, needed for lookahead. */
636 const char *tmp = p->arg;
a0bcdaa7 637 char *endp;
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SDJ
638 long number;
639
640 /* We can be dealing with a numeric constant (if `const_prefix' is
641 NULL), or with a register displacement. */
a0bcdaa7
PA
642 number = strtol (tmp, &endp, 10);
643 tmp = endp;
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SDJ
644
645 if (p->inside_paren_p)
646 tmp = skip_spaces_const (tmp);
647 if (!const_prefix && reg_ind_prefix
648 && strncmp (tmp, reg_ind_prefix, reg_ind_prefix_len) != 0)
649 {
650 /* We are dealing with a numeric constant. */
651 write_exp_elt_opcode (OP_LONG);
652 write_exp_elt_type (builtin_type (gdbarch)->builtin_long);
653 write_exp_elt_longcst (number);
654 write_exp_elt_opcode (OP_LONG);
655
656 p->arg = tmp;
657
658 if (const_suffix)
659 {
660 if (strncmp (p->arg, const_suffix, const_suffix_len) == 0)
661 p->arg += const_suffix_len;
662 else
663 error (_("Invalid constant suffix on expression `%s'."),
664 p->saved_arg);
665 }
666 }
667 else if (reg_ind_prefix
668 && strncmp (tmp, reg_ind_prefix, reg_ind_prefix_len) == 0)
669 stap_parse_register_operand (p);
670 else
671 error (_("Unknown numeric token on expression `%s'."),
672 p->saved_arg);
673 }
674 else if (const_prefix
675 && strncmp (p->arg, const_prefix, const_prefix_len) == 0)
676 {
677 /* We are dealing with a numeric constant. */
678 long number;
a0bcdaa7 679 char *endp;
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SDJ
680
681 p->arg += const_prefix_len;
a0bcdaa7
PA
682 number = strtol (p->arg, &endp, 10);
683 p->arg = endp;
55aa24fb
SDJ
684
685 write_exp_elt_opcode (OP_LONG);
686 write_exp_elt_type (builtin_type (gdbarch)->builtin_long);
687 write_exp_elt_longcst (number);
688 write_exp_elt_opcode (OP_LONG);
689
690 if (const_suffix)
691 {
692 if (strncmp (p->arg, const_suffix, const_suffix_len) == 0)
693 p->arg += const_suffix_len;
694 else
695 error (_("Invalid constant suffix on expression `%s'."),
696 p->saved_arg);
697 }
698 }
699 else if ((reg_prefix
700 && strncmp (p->arg, reg_prefix, reg_prefix_len) == 0)
701 || (reg_ind_prefix
702 && strncmp (p->arg, reg_ind_prefix, reg_ind_prefix_len) == 0))
703 stap_parse_register_operand (p);
704 else
705 error (_("Operator `%c' not recognized on expression `%s'."),
706 *p->arg, p->saved_arg);
707}
708
709/* This function parses an argument conditionally, based on single or
710 non-single operands. A non-single operand would be a parenthesized
711 expression (e.g., `(2 + 1)'), and a single operand is anything that
712 starts with `-', `~', `+' (i.e., unary operators), a digit, or
713 something recognized by `gdbarch_stap_is_single_operand'. */
714
715static void
716stap_parse_argument_conditionally (struct stap_parse_info *p)
717{
718 if (*p->arg == '-' || *p->arg == '~' || *p->arg == '+' /* Unary. */
719 || isdigit (*p->arg)
720 || gdbarch_stap_is_single_operand (p->gdbarch, p->arg))
721 stap_parse_single_operand (p);
722 else if (*p->arg == '(')
723 {
724 /* We are dealing with a parenthesized operand. It means we
725 have to parse it as it was a separate expression, without
726 left-side or precedence. */
727 ++p->arg;
728 p->arg = skip_spaces_const (p->arg);
729 ++p->inside_paren_p;
730
731 stap_parse_argument_1 (p, 0, STAP_OPERAND_PREC_NONE);
732
733 --p->inside_paren_p;
734 if (*p->arg != ')')
735 error (_("Missign close-paren on expression `%s'."),
736 p->saved_arg);
737
738 ++p->arg;
739 if (p->inside_paren_p)
740 p->arg = skip_spaces_const (p->arg);
741 }
742 else
743 error (_("Cannot parse expression `%s'."), p->saved_arg);
744}
745
746/* Helper function for `stap_parse_argument'. Please, see its comments to
747 better understand what this function does. */
748
749static void
750stap_parse_argument_1 (struct stap_parse_info *p, int has_lhs,
751 enum stap_operand_prec prec)
752{
753 /* This is an operator-precedence parser.
754
755 We work with left- and right-sides of expressions, and
756 parse them depending on the precedence of the operators
757 we find. */
758
759 if (p->inside_paren_p)
760 p->arg = skip_spaces_const (p->arg);
761
762 if (!has_lhs)
763 {
764 /* We were called without a left-side, either because this is the
765 first call, or because we were called to parse a parenthesized
766 expression. It doesn't really matter; we have to parse the
767 left-side in order to continue the process. */
768 stap_parse_argument_conditionally (p);
769 }
770
771 /* Start to parse the right-side, and to "join" left and right sides
772 depending on the operation specified.
773
774 This loop shall continue until we run out of characters in the input,
775 or until we find a close-parenthesis, which means that we've reached
776 the end of a sub-expression. */
777 while (p->arg && *p->arg && *p->arg != ')' && !isspace (*p->arg))
778 {
779 const char *tmp_exp_buf;
780 enum exp_opcode opcode;
781 enum stap_operand_prec cur_prec;
782
fcf57f19 783 if (!stap_is_operator (p->arg))
55aa24fb
SDJ
784 error (_("Invalid operator `%c' on expression `%s'."), *p->arg,
785 p->saved_arg);
786
787 /* We have to save the current value of the expression buffer because
788 the `stap_get_opcode' modifies it in order to get the current
789 operator. If this operator's precedence is lower than PREC, we
790 should return and not advance the expression buffer pointer. */
791 tmp_exp_buf = p->arg;
fcf57f19 792 opcode = stap_get_opcode (&tmp_exp_buf);
55aa24fb
SDJ
793
794 cur_prec = stap_get_operator_prec (opcode);
795 if (cur_prec < prec)
796 {
797 /* If the precedence of the operator that we are seeing now is
798 lower than the precedence of the first operator seen before
799 this parsing process began, it means we should stop parsing
800 and return. */
801 break;
802 }
803
804 p->arg = tmp_exp_buf;
805 if (p->inside_paren_p)
806 p->arg = skip_spaces_const (p->arg);
807
808 /* Parse the right-side of the expression. */
809 stap_parse_argument_conditionally (p);
810
811 /* While we still have operators, try to parse another
812 right-side, but using the current right-side as a left-side. */
fcf57f19 813 while (*p->arg && stap_is_operator (p->arg))
55aa24fb
SDJ
814 {
815 enum exp_opcode lookahead_opcode;
816 enum stap_operand_prec lookahead_prec;
817
818 /* Saving the current expression buffer position. The explanation
819 is the same as above. */
820 tmp_exp_buf = p->arg;
fcf57f19 821 lookahead_opcode = stap_get_opcode (&tmp_exp_buf);
55aa24fb
SDJ
822 lookahead_prec = stap_get_operator_prec (lookahead_opcode);
823
824 if (lookahead_prec <= prec)
825 {
826 /* If we are dealing with an operator whose precedence is lower
827 than the first one, just abandon the attempt. */
828 break;
829 }
830
831 /* Parse the right-side of the expression, but since we already
832 have a left-side at this point, set `has_lhs' to 1. */
833 stap_parse_argument_1 (p, 1, lookahead_prec);
834 }
835
836 write_exp_elt_opcode (opcode);
837 }
838}
839
840/* Parse a probe's argument.
841
842 Assuming that:
843
844 LP = literal integer prefix
845 LS = literal integer suffix
846
847 RP = register prefix
848 RS = register suffix
849
850 RIP = register indirection prefix
851 RIS = register indirection suffix
852
853 This routine assumes that arguments' tokens are of the form:
854
855 - [LP] NUMBER [LS]
856 - [RP] REGISTER [RS]
857 - [RIP] [RP] REGISTER [RS] [RIS]
858 - If we find a number without LP, we try to parse it as a literal integer
859 constant (if LP == NULL), or as a register displacement.
860 - We count parenthesis, and only skip whitespaces if we are inside them.
861 - If we find an operator, we skip it.
862
863 This function can also call a special function that will try to match
864 unknown tokens. It will return 1 if the argument has been parsed
865 successfully, or zero otherwise. */
866
867static struct expression *
868stap_parse_argument (const char **arg, struct type *atype,
869 struct gdbarch *gdbarch)
870{
871 struct stap_parse_info p;
55aa24fb
SDJ
872 struct cleanup *back_to;
873
874 /* We need to initialize the expression buffer, in order to begin
875 our parsing efforts. The language here does not matter, since we
876 are using our own parser. */
877 initialize_expout (10, current_language, gdbarch);
878 back_to = make_cleanup (free_current_contents, &expout);
879
880 p.saved_arg = *arg;
881 p.arg = *arg;
882 p.arg_type = atype;
883 p.gdbarch = gdbarch;
884 p.inside_paren_p = 0;
885
886 stap_parse_argument_1 (&p, 0, STAP_OPERAND_PREC_NONE);
887
888 discard_cleanups (back_to);
889
890 gdb_assert (p.inside_paren_p == 0);
891
892 /* Casting the final expression to the appropriate type. */
893 write_exp_elt_opcode (UNOP_CAST);
894 write_exp_elt_type (atype);
895 write_exp_elt_opcode (UNOP_CAST);
896
897 reallocate_expout ();
898
899 p.arg = skip_spaces_const (p.arg);
900 *arg = p.arg;
901
902 return expout;
903}
904
905/* Function which parses an argument string from PROBE, correctly splitting
906 the arguments and storing their information in properly ways.
907
908 Consider the following argument string (x86 syntax):
909
910 `4@%eax 4@$10'
911
912 We have two arguments, `%eax' and `$10', both with 32-bit unsigned bitness.
913 This function basically handles them, properly filling some structures with
914 this information. */
915
916static void
08a6411c 917stap_parse_probe_arguments (struct stap_probe *probe, struct gdbarch *gdbarch)
55aa24fb
SDJ
918{
919 const char *cur;
55aa24fb
SDJ
920
921 gdb_assert (!probe->args_parsed);
922 cur = probe->args_u.text;
923 probe->args_parsed = 1;
924 probe->args_u.vec = NULL;
925
926 if (!cur || !*cur || *cur == ':')
927 return;
928
929 while (*cur)
930 {
931 struct stap_probe_arg arg;
932 enum stap_arg_bitness b;
933 int got_minus = 0;
934 struct expression *expr;
935
936 memset (&arg, 0, sizeof (arg));
937
938 /* We expect to find something like:
939
940 N@OP
941
942 Where `N' can be [+,-][4,8]. This is not mandatory, so
943 we check it here. If we don't find it, go to the next
944 state. */
945 if ((*cur == '-' && cur[1] && cur[2] != '@')
946 && cur[1] != '@')
947 arg.bitness = STAP_ARG_BITNESS_UNDEFINED;
948 else
949 {
950 if (*cur == '-')
951 {
952 /* Discard the `-'. */
953 ++cur;
954 got_minus = 1;
955 }
956
957 if (*cur == '4')
958 b = (got_minus ? STAP_ARG_BITNESS_32BIT_SIGNED
959 : STAP_ARG_BITNESS_32BIT_UNSIGNED);
960 else if (*cur == '8')
961 b = (got_minus ? STAP_ARG_BITNESS_64BIT_SIGNED
962 : STAP_ARG_BITNESS_64BIT_UNSIGNED);
963 else
964 {
965 /* We have an error, because we don't expect anything
966 except 4 and 8. */
967 complaint (&symfile_complaints,
968 _("unrecognized bitness `%c' for probe `%s'"),
969 *cur, probe->p.name);
970 return;
971 }
972
973 arg.bitness = b;
974 arg.atype = stap_get_expected_argument_type (gdbarch, b);
975
976 /* Discard the number and the `@' sign. */
977 cur += 2;
978 }
979
980 expr = stap_parse_argument (&cur, arg.atype, gdbarch);
981
982 if (stap_expression_debug)
983 dump_raw_expression (expr, gdb_stdlog,
984 "before conversion to prefix form");
985
986 prefixify_expression (expr);
987
988 if (stap_expression_debug)
989 dump_prefix_expression (expr, gdb_stdlog);
990
991 arg.aexpr = expr;
992
993 /* Start it over again. */
994 cur = skip_spaces_const (cur);
995
996 VEC_safe_push (stap_probe_arg_s, probe->args_u.vec, &arg);
997 }
998}
999
1000/* Given PROBE, returns the number of arguments present in that probe's
1001 argument string. */
1002
1003static unsigned
08a6411c
SDJ
1004stap_get_probe_argument_count (struct probe *probe_generic,
1005 struct frame_info *frame)
55aa24fb
SDJ
1006{
1007 struct stap_probe *probe = (struct stap_probe *) probe_generic;
08a6411c 1008 struct gdbarch *gdbarch = get_frame_arch (frame);
55aa24fb
SDJ
1009
1010 gdb_assert (probe_generic->pops == &stap_probe_ops);
1011
1012 if (!probe->args_parsed)
25f9533e 1013 {
08a6411c
SDJ
1014 if (can_evaluate_probe_arguments (probe_generic))
1015 stap_parse_probe_arguments (probe, gdbarch);
25f9533e
SDJ
1016 else
1017 {
1018 static int have_warned_stap_incomplete = 0;
1019
1020 if (!have_warned_stap_incomplete)
1021 {
1022 warning (_(
1023"The SystemTap SDT probe support is not fully implemented on this target;\n"
1024"you will not be able to inspect the arguments of the probes.\n"
1025"Please report a bug against GDB requesting a port to this target."));
1026 have_warned_stap_incomplete = 1;
1027 }
1028
1029 /* Marking the arguments as "already parsed". */
1030 probe->args_u.vec = NULL;
1031 probe->args_parsed = 1;
1032 }
1033 }
55aa24fb
SDJ
1034
1035 gdb_assert (probe->args_parsed);
1036 return VEC_length (stap_probe_arg_s, probe->args_u.vec);
1037}
1038
1039/* Return 1 if OP is a valid operator inside a probe argument, or zero
1040 otherwise. */
1041
1042static int
fcf57f19 1043stap_is_operator (const char *op)
55aa24fb 1044{
fcf57f19
SDJ
1045 int ret = 1;
1046
1047 switch (*op)
1048 {
1049 case '*':
1050 case '/':
1051 case '%':
1052 case '^':
1053 case '!':
1054 case '+':
1055 case '-':
1056 case '<':
1057 case '>':
1058 case '|':
1059 case '&':
1060 break;
1061
1062 case '=':
1063 if (op[1] != '=')
1064 ret = 0;
1065 break;
1066
1067 default:
1068 /* We didn't find any operator. */
1069 ret = 0;
1070 }
1071
1072 return ret;
55aa24fb
SDJ
1073}
1074
1075static struct stap_probe_arg *
08a6411c 1076stap_get_arg (struct stap_probe *probe, unsigned n, struct gdbarch *gdbarch)
55aa24fb
SDJ
1077{
1078 if (!probe->args_parsed)
08a6411c 1079 stap_parse_probe_arguments (probe, gdbarch);
55aa24fb
SDJ
1080
1081 return VEC_index (stap_probe_arg_s, probe->args_u.vec, n);
1082}
1083
25f9533e
SDJ
1084/* Implement the `can_evaluate_probe_arguments' method of probe_ops. */
1085
1086static int
1087stap_can_evaluate_probe_arguments (struct probe *probe_generic)
1088{
1089 struct stap_probe *stap_probe = (struct stap_probe *) probe_generic;
df6d5441 1090 struct gdbarch *gdbarch = get_objfile_arch (stap_probe->p.objfile);
25f9533e
SDJ
1091
1092 /* For SystemTap probes, we have to guarantee that the method
1093 stap_is_single_operand is defined on gdbarch. If it is not, then it
1094 means that argument evaluation is not implemented on this target. */
1095 return gdbarch_stap_is_single_operand_p (gdbarch);
1096}
1097
55aa24fb
SDJ
1098/* Evaluate the probe's argument N (indexed from 0), returning a value
1099 corresponding to it. Assertion is thrown if N does not exist. */
1100
1101static struct value *
08a6411c
SDJ
1102stap_evaluate_probe_argument (struct probe *probe_generic, unsigned n,
1103 struct frame_info *frame)
55aa24fb
SDJ
1104{
1105 struct stap_probe *stap_probe = (struct stap_probe *) probe_generic;
08a6411c 1106 struct gdbarch *gdbarch = get_frame_arch (frame);
55aa24fb
SDJ
1107 struct stap_probe_arg *arg;
1108 int pos = 0;
1109
1110 gdb_assert (probe_generic->pops == &stap_probe_ops);
1111
08a6411c 1112 arg = stap_get_arg (stap_probe, n, gdbarch);
55aa24fb
SDJ
1113 return evaluate_subexp_standard (arg->atype, arg->aexpr, &pos, EVAL_NORMAL);
1114}
1115
1116/* Compile the probe's argument N (indexed from 0) to agent expression.
1117 Assertion is thrown if N does not exist. */
1118
1119static void
6bac7473
SDJ
1120stap_compile_to_ax (struct probe *probe_generic, struct agent_expr *expr,
1121 struct axs_value *value, unsigned n)
55aa24fb
SDJ
1122{
1123 struct stap_probe *stap_probe = (struct stap_probe *) probe_generic;
1124 struct stap_probe_arg *arg;
1125 union exp_element *pc;
1126
1127 gdb_assert (probe_generic->pops == &stap_probe_ops);
1128
08a6411c 1129 arg = stap_get_arg (stap_probe, n, expr->gdbarch);
55aa24fb
SDJ
1130
1131 pc = arg->aexpr->elts;
1132 gen_expr (arg->aexpr, &pc, expr, value);
1133
1134 require_rvalue (expr, value);
1135 value->type = arg->atype;
1136}
1137
1138/* Destroy (free) the data related to PROBE. PROBE memory itself is not feed
1139 as it is allocated from OBJFILE_OBSTACK. */
1140
1141static void
1142stap_probe_destroy (struct probe *probe_generic)
1143{
1144 struct stap_probe *probe = (struct stap_probe *) probe_generic;
1145
1146 gdb_assert (probe_generic->pops == &stap_probe_ops);
1147
1148 if (probe->args_parsed)
1149 {
1150 struct stap_probe_arg *arg;
1151 int ix;
1152
1153 for (ix = 0; VEC_iterate (stap_probe_arg_s, probe->args_u.vec, ix, arg);
1154 ++ix)
1155 xfree (arg->aexpr);
1156 VEC_free (stap_probe_arg_s, probe->args_u.vec);
1157 }
1158}
1159
1160\f
1161
1162/* This is called to compute the value of one of the $_probe_arg*
1163 convenience variables. */
1164
1165static struct value *
1166compute_probe_arg (struct gdbarch *arch, struct internalvar *ivar,
1167 void *data)
1168{
1169 struct frame_info *frame = get_selected_frame (_("No frame selected"));
1170 CORE_ADDR pc = get_frame_pc (frame);
1171 int sel = (int) (uintptr_t) data;
55aa24fb 1172 struct probe *pc_probe;
6bac7473 1173 const struct sym_probe_fns *pc_probe_fns;
55aa24fb
SDJ
1174 unsigned n_args;
1175
1176 /* SEL == -1 means "_probe_argc". */
1177 gdb_assert (sel >= -1);
1178
6bac7473 1179 pc_probe = find_probe_by_pc (pc);
55aa24fb
SDJ
1180 if (pc_probe == NULL)
1181 error (_("No SystemTap probe at PC %s"), core_addr_to_string (pc));
1182
08a6411c 1183 n_args = get_probe_argument_count (pc_probe, frame);
55aa24fb
SDJ
1184 if (sel == -1)
1185 return value_from_longest (builtin_type (arch)->builtin_int, n_args);
1186
1187 if (sel >= n_args)
1188 error (_("Invalid probe argument %d -- probe has %u arguments available"),
1189 sel, n_args);
1190
08a6411c 1191 return evaluate_probe_argument (pc_probe, sel, frame);
55aa24fb
SDJ
1192}
1193
1194/* This is called to compile one of the $_probe_arg* convenience
1195 variables into an agent expression. */
1196
1197static void
1198compile_probe_arg (struct internalvar *ivar, struct agent_expr *expr,
1199 struct axs_value *value, void *data)
1200{
1201 CORE_ADDR pc = expr->scope;
1202 int sel = (int) (uintptr_t) data;
55aa24fb 1203 struct probe *pc_probe;
6bac7473 1204 const struct sym_probe_fns *pc_probe_fns;
2b963b68 1205 int n_args;
08a6411c 1206 struct frame_info *frame = get_selected_frame (NULL);
55aa24fb
SDJ
1207
1208 /* SEL == -1 means "_probe_argc". */
1209 gdb_assert (sel >= -1);
1210
6bac7473 1211 pc_probe = find_probe_by_pc (pc);
55aa24fb
SDJ
1212 if (pc_probe == NULL)
1213 error (_("No SystemTap probe at PC %s"), core_addr_to_string (pc));
1214
08a6411c 1215 n_args = get_probe_argument_count (pc_probe, frame);
6bac7473 1216
55aa24fb
SDJ
1217 if (sel == -1)
1218 {
1219 value->kind = axs_rvalue;
1220 value->type = builtin_type (expr->gdbarch)->builtin_int;
2b963b68 1221 ax_const_l (expr, n_args);
55aa24fb
SDJ
1222 return;
1223 }
1224
1225 gdb_assert (sel >= 0);
2b963b68 1226 if (sel >= n_args)
55aa24fb 1227 error (_("Invalid probe argument %d -- probe has %d arguments available"),
2b963b68 1228 sel, n_args);
55aa24fb 1229
37fbcad0 1230 pc_probe->pops->compile_to_ax (pc_probe, expr, value, sel);
55aa24fb
SDJ
1231}
1232
1233\f
1234
1235/* Set or clear a SystemTap semaphore. ADDRESS is the semaphore's
1236 address. SET is zero if the semaphore should be cleared, or one
1237 if it should be set. This is a helper function for `stap_semaphore_down'
1238 and `stap_semaphore_up'. */
1239
1240static void
1241stap_modify_semaphore (CORE_ADDR address, int set, struct gdbarch *gdbarch)
1242{
1243 gdb_byte bytes[sizeof (LONGEST)];
1244 /* The ABI specifies "unsigned short". */
1245 struct type *type = builtin_type (gdbarch)->builtin_unsigned_short;
1246 ULONGEST value;
1247
1248 if (address == 0)
1249 return;
1250
1251 /* Swallow errors. */
1252 if (target_read_memory (address, bytes, TYPE_LENGTH (type)) != 0)
1253 {
1254 warning (_("Could not read the value of a SystemTap semaphore."));
1255 return;
1256 }
1257
1258 value = extract_unsigned_integer (bytes, TYPE_LENGTH (type),
1259 gdbarch_byte_order (gdbarch));
1260 /* Note that we explicitly don't worry about overflow or
1261 underflow. */
1262 if (set)
1263 ++value;
1264 else
1265 --value;
1266
1267 store_unsigned_integer (bytes, TYPE_LENGTH (type),
1268 gdbarch_byte_order (gdbarch), value);
1269
1270 if (target_write_memory (address, bytes, TYPE_LENGTH (type)) != 0)
1271 warning (_("Could not write the value of a SystemTap semaphore."));
1272}
1273
1274/* Set a SystemTap semaphore. SEM is the semaphore's address. Semaphores
1275 act as reference counters, so calls to this function must be paired with
1276 calls to `stap_semaphore_down'.
1277
1278 This function and `stap_semaphore_down' race with another tool changing
1279 the probes, but that is too rare to care. */
1280
1281static void
1282stap_set_semaphore (struct probe *probe_generic, struct gdbarch *gdbarch)
1283{
1284 struct stap_probe *probe = (struct stap_probe *) probe_generic;
1285
1286 gdb_assert (probe_generic->pops == &stap_probe_ops);
1287
1288 stap_modify_semaphore (probe->sem_addr, 1, gdbarch);
1289}
1290
1291/* Clear a SystemTap semaphore. SEM is the semaphore's address. */
1292
1293static void
1294stap_clear_semaphore (struct probe *probe_generic, struct gdbarch *gdbarch)
1295{
1296 struct stap_probe *probe = (struct stap_probe *) probe_generic;
1297
1298 gdb_assert (probe_generic->pops == &stap_probe_ops);
1299
1300 stap_modify_semaphore (probe->sem_addr, 0, gdbarch);
1301}
1302
1303/* Implementation of `$_probe_arg*' set of variables. */
1304
1305static const struct internalvar_funcs probe_funcs =
1306{
1307 compute_probe_arg,
1308 compile_probe_arg,
1309 NULL
1310};
1311
1312/* Helper function that parses the information contained in a
1313 SystemTap's probe. Basically, the information consists in:
1314
1315 - Probe's PC address;
1316 - Link-time section address of `.stapsdt.base' section;
1317 - Link-time address of the semaphore variable, or ZERO if the
1318 probe doesn't have an associated semaphore;
1319 - Probe's provider name;
1320 - Probe's name;
1321 - Probe's argument format
1322
1323 This function returns 1 if the handling was successful, and zero
1324 otherwise. */
1325
1326static void
1327handle_stap_probe (struct objfile *objfile, struct sdt_note *el,
1328 VEC (probe_p) **probesp, CORE_ADDR base)
1329{
1330 bfd *abfd = objfile->obfd;
1331 int size = bfd_get_arch_size (abfd) / 8;
1332 struct gdbarch *gdbarch = get_objfile_arch (objfile);
55aa24fb
SDJ
1333 struct type *ptr_type = builtin_type (gdbarch)->builtin_data_ptr;
1334 CORE_ADDR base_ref;
1335 const char *probe_args = NULL;
1336 struct stap_probe *ret;
1337
1338 ret = obstack_alloc (&objfile->objfile_obstack, sizeof (*ret));
1339 ret->p.pops = &stap_probe_ops;
6bac7473 1340 ret->p.objfile = objfile;
55aa24fb
SDJ
1341
1342 /* Provider and the name of the probe. */
fe106009 1343 ret->p.provider = (char *) &el->data[3 * size];
55aa24fb
SDJ
1344 ret->p.name = memchr (ret->p.provider, '\0',
1345 (char *) el->data + el->size - ret->p.provider);
1346 /* Making sure there is a name. */
1347 if (!ret->p.name)
1348 {
1349 complaint (&symfile_complaints, _("corrupt probe name when "
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JK
1350 "reading `%s'"),
1351 objfile_name (objfile));
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SDJ
1352
1353 /* There is no way to use a probe without a name or a provider, so
1354 returning zero here makes sense. */
1355 return;
1356 }
1357 else
1358 ++ret->p.name;
1359
1360 /* Retrieving the probe's address. */
1361 ret->p.address = extract_typed_address (&el->data[0], ptr_type);
1362
1363 /* Link-time sh_addr of `.stapsdt.base' section. */
1364 base_ref = extract_typed_address (&el->data[size], ptr_type);
1365
1366 /* Semaphore address. */
1367 ret->sem_addr = extract_typed_address (&el->data[2 * size], ptr_type);
1368
1369 ret->p.address += (ANOFFSET (objfile->section_offsets,
1370 SECT_OFF_TEXT (objfile))
1371 + base - base_ref);
1372 if (ret->sem_addr)
1373 ret->sem_addr += (ANOFFSET (objfile->section_offsets,
1374 SECT_OFF_DATA (objfile))
1375 + base - base_ref);
1376
1377 /* Arguments. We can only extract the argument format if there is a valid
1378 name for this probe. */
1379 probe_args = memchr (ret->p.name, '\0',
1380 (char *) el->data + el->size - ret->p.name);
1381
1382 if (probe_args != NULL)
1383 ++probe_args;
1384
1385 if (probe_args == NULL || (memchr (probe_args, '\0',
1386 (char *) el->data + el->size - ret->p.name)
1387 != el->data + el->size - 1))
1388 {
1389 complaint (&symfile_complaints, _("corrupt probe argument when "
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JK
1390 "reading `%s'"),
1391 objfile_name (objfile));
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1392 /* If the argument string is NULL, it means some problem happened with
1393 it. So we return 0. */
1394 return;
1395 }
1396
1397 ret->args_parsed = 0;
1398 ret->args_u.text = (void *) probe_args;
1399
1400 /* Successfully created probe. */
1401 VEC_safe_push (probe_p, *probesp, (struct probe *) ret);
1402}
1403
1404/* Helper function which tries to find the base address of the SystemTap
1405 base section named STAP_BASE_SECTION_NAME. */
1406
1407static void
1408get_stap_base_address_1 (bfd *abfd, asection *sect, void *obj)
1409{
1410 asection **ret = obj;
1411
1412 if ((sect->flags & (SEC_DATA | SEC_ALLOC | SEC_HAS_CONTENTS))
1413 && sect->name && !strcmp (sect->name, STAP_BASE_SECTION_NAME))
1414 *ret = sect;
1415}
1416
1417/* Helper function which iterates over every section in the BFD file,
1418 trying to find the base address of the SystemTap base section.
1419 Returns 1 if found (setting BASE to the proper value), zero otherwise. */
1420
1421static int
1422get_stap_base_address (bfd *obfd, bfd_vma *base)
1423{
1424 asection *ret = NULL;
1425
1426 bfd_map_over_sections (obfd, get_stap_base_address_1, (void *) &ret);
1427
1428 if (!ret)
1429 {
1430 complaint (&symfile_complaints, _("could not obtain base address for "
1431 "SystemTap section on objfile `%s'."),
1432 obfd->filename);
1433 return 0;
1434 }
1435
1436 if (base)
1437 *base = ret->vma;
1438
1439 return 1;
1440}
1441
1442/* Helper function for `elf_get_probes', which gathers information about all
1443 SystemTap probes from OBJFILE. */
1444
1445static void
1446stap_get_probes (VEC (probe_p) **probesp, struct objfile *objfile)
1447{
1448 /* If we are here, then this is the first time we are parsing the
1449 SystemTap probe's information. We basically have to count how many
1450 probes the objfile has, and then fill in the necessary information
1451 for each one. */
1452 bfd *obfd = objfile->obfd;
1453 bfd_vma base;
1454 struct sdt_note *iter;
1455 unsigned save_probesp_len = VEC_length (probe_p, *probesp);
1456
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SDJ
1457 if (objfile->separate_debug_objfile_backlink != NULL)
1458 {
1459 /* This is a .debug file, not the objfile itself. */
1460 return;
1461 }
1462
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SDJ
1463 if (!elf_tdata (obfd)->sdt_note_head)
1464 {
1465 /* There isn't any probe here. */
1466 return;
1467 }
1468
1469 if (!get_stap_base_address (obfd, &base))
1470 {
1471 /* There was an error finding the base address for the section.
1472 Just return NULL. */
1473 return;
1474 }
1475
1476 /* Parsing each probe's information. */
1477 for (iter = elf_tdata (obfd)->sdt_note_head; iter; iter = iter->next)
1478 {
1479 /* We first have to handle all the information about the
1480 probe which is present in the section. */
1481 handle_stap_probe (objfile, iter, probesp, base);
1482 }
1483
1484 if (save_probesp_len == VEC_length (probe_p, *probesp))
1485 {
1486 /* If we are here, it means we have failed to parse every known
1487 probe. */
1488 complaint (&symfile_complaints, _("could not parse SystemTap probe(s) "
1489 "from inferior"));
1490 return;
1491 }
1492}
1493
1494static void
1495stap_relocate (struct probe *probe_generic, CORE_ADDR delta)
1496{
1497 struct stap_probe *probe = (struct stap_probe *) probe_generic;
1498
1499 gdb_assert (probe_generic->pops == &stap_probe_ops);
1500
1501 probe->p.address += delta;
1502 if (probe->sem_addr)
1503 probe->sem_addr += delta;
1504}
1505
1506static int
1507stap_probe_is_linespec (const char **linespecp)
1508{
1509 static const char *const keywords[] = { "-pstap", "-probe-stap", NULL };
1510
1511 return probe_is_linespec_by_keyword (linespecp, keywords);
1512}
1513
1514static void
1515stap_gen_info_probes_table_header (VEC (info_probe_column_s) **heads)
1516{
1517 info_probe_column_s stap_probe_column;
1518
1519 stap_probe_column.field_name = "semaphore";
1520 stap_probe_column.print_name = _("Semaphore");
1521
1522 VEC_safe_push (info_probe_column_s, *heads, &stap_probe_column);
1523}
1524
1525static void
1526stap_gen_info_probes_table_values (struct probe *probe_generic,
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SDJ
1527 VEC (const_char_ptr) **ret)
1528{
1529 struct stap_probe *probe = (struct stap_probe *) probe_generic;
6bac7473 1530 struct gdbarch *gdbarch;
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SDJ
1531 const char *val = NULL;
1532
1533 gdb_assert (probe_generic->pops == &stap_probe_ops);
1534
6bac7473
SDJ
1535 gdbarch = get_objfile_arch (probe->p.objfile);
1536
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SDJ
1537 if (probe->sem_addr)
1538 val = print_core_address (gdbarch, probe->sem_addr);
1539
1540 VEC_safe_push (const_char_ptr, *ret, val);
1541}
1542
1543/* SystemTap probe_ops. */
1544
1545static const struct probe_ops stap_probe_ops =
1546{
1547 stap_probe_is_linespec,
1548 stap_get_probes,
1549 stap_relocate,
1550 stap_get_probe_argument_count,
25f9533e 1551 stap_can_evaluate_probe_arguments,
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SDJ
1552 stap_evaluate_probe_argument,
1553 stap_compile_to_ax,
1554 stap_set_semaphore,
1555 stap_clear_semaphore,
1556 stap_probe_destroy,
1557 stap_gen_info_probes_table_header,
1558 stap_gen_info_probes_table_values,
1559};
1560
1561/* Implementation of the `info probes stap' command. */
1562
1563static void
1564info_probes_stap_command (char *arg, int from_tty)
1565{
1566 info_probes_for_ops (arg, from_tty, &stap_probe_ops);
1567}
1568
1569void _initialize_stap_probe (void);
1570
1571void
1572_initialize_stap_probe (void)
1573{
1574 VEC_safe_push (probe_ops_cp, all_probe_ops, &stap_probe_ops);
1575
ccce17b0
YQ
1576 add_setshow_zuinteger_cmd ("stap-expression", class_maintenance,
1577 &stap_expression_debug,
1578 _("Set SystemTap expression debugging."),
1579 _("Show SystemTap expression debugging."),
1580 _("When non-zero, the internal representation "
1581 "of SystemTap expressions will be printed."),
1582 NULL,
1583 show_stapexpressiondebug,
1584 &setdebuglist, &showdebuglist);
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SDJ
1585
1586 create_internalvar_type_lazy ("_probe_argc", &probe_funcs,
1587 (void *) (uintptr_t) -1);
1588 create_internalvar_type_lazy ("_probe_arg0", &probe_funcs,
1589 (void *) (uintptr_t) 0);
1590 create_internalvar_type_lazy ("_probe_arg1", &probe_funcs,
1591 (void *) (uintptr_t) 1);
1592 create_internalvar_type_lazy ("_probe_arg2", &probe_funcs,
1593 (void *) (uintptr_t) 2);
1594 create_internalvar_type_lazy ("_probe_arg3", &probe_funcs,
1595 (void *) (uintptr_t) 3);
1596 create_internalvar_type_lazy ("_probe_arg4", &probe_funcs,
1597 (void *) (uintptr_t) 4);
1598 create_internalvar_type_lazy ("_probe_arg5", &probe_funcs,
1599 (void *) (uintptr_t) 5);
1600 create_internalvar_type_lazy ("_probe_arg6", &probe_funcs,
1601 (void *) (uintptr_t) 6);
1602 create_internalvar_type_lazy ("_probe_arg7", &probe_funcs,
1603 (void *) (uintptr_t) 7);
1604 create_internalvar_type_lazy ("_probe_arg8", &probe_funcs,
1605 (void *) (uintptr_t) 8);
1606 create_internalvar_type_lazy ("_probe_arg9", &probe_funcs,
1607 (void *) (uintptr_t) 9);
1608 create_internalvar_type_lazy ("_probe_arg10", &probe_funcs,
1609 (void *) (uintptr_t) 10);
1610 create_internalvar_type_lazy ("_probe_arg11", &probe_funcs,
1611 (void *) (uintptr_t) 11);
1612
1613 add_cmd ("stap", class_info, info_probes_stap_command,
1614 _("\
1615Show information about SystemTap static probes.\n\
1616Usage: info probes stap [PROVIDER [NAME [OBJECT]]]\n\
1617Each argument is a regular expression, used to select probes.\n\
1618PROVIDER matches probe provider names.\n\
1619NAME matches the probe names.\n\
1620OBJECT matches the executable or shared library name."),
1621 info_probes_cmdlist_get ());
1622
1623}
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