ax-gdb.c revision 1.1 1 /* GDB-specific functions for operating on agent expressions.
2
3 Copyright (C) 1998-2014 Free Software Foundation, Inc.
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 "symtab.h"
22 #include "symfile.h"
23 #include "gdbtypes.h"
24 #include "language.h"
25 #include "value.h"
26 #include "expression.h"
27 #include "command.h"
28 #include "gdbcmd.h"
29 #include "frame.h"
30 #include "target.h"
31 #include "ax.h"
32 #include "ax-gdb.h"
33 #include <string.h>
34 #include "block.h"
35 #include "regcache.h"
36 #include "user-regs.h"
37 #include "dictionary.h"
38 #include "breakpoint.h"
39 #include "tracepoint.h"
40 #include "cp-support.h"
41 #include "arch-utils.h"
42 #include "cli/cli-utils.h"
43 #include "linespec.h"
44
45 #include "valprint.h"
46 #include "c-lang.h"
47
48 #include "format.h"
49
50 /* To make sense of this file, you should read doc/agentexpr.texi.
51 Then look at the types and enums in ax-gdb.h. For the code itself,
52 look at gen_expr, towards the bottom; that's the main function that
53 looks at the GDB expressions and calls everything else to generate
54 code.
55
56 I'm beginning to wonder whether it wouldn't be nicer to internally
57 generate trees, with types, and then spit out the bytecode in
58 linear form afterwards; we could generate fewer `swap', `ext', and
59 `zero_ext' bytecodes that way; it would make good constant folding
60 easier, too. But at the moment, I think we should be willing to
61 pay for the simplicity of this code with less-than-optimal bytecode
62 strings.
63
64 Remember, "GBD" stands for "Great Britain, Dammit!" So be careful. */
65
66
68
69 /* Prototypes for local functions. */
70
71 /* There's a standard order to the arguments of these functions:
72 union exp_element ** --- pointer into expression
73 struct agent_expr * --- agent expression buffer to generate code into
74 struct axs_value * --- describes value left on top of stack */
75
76 static struct value *const_var_ref (struct symbol *var);
77 static struct value *const_expr (union exp_element **pc);
78 static struct value *maybe_const_expr (union exp_element **pc);
79
80 static void gen_traced_pop (struct gdbarch *, struct agent_expr *,
81 struct axs_value *);
82
83 static void gen_sign_extend (struct agent_expr *, struct type *);
84 static void gen_extend (struct agent_expr *, struct type *);
85 static void gen_fetch (struct agent_expr *, struct type *);
86 static void gen_left_shift (struct agent_expr *, int);
87
88
89 static void gen_frame_args_address (struct gdbarch *, struct agent_expr *);
90 static void gen_frame_locals_address (struct gdbarch *, struct agent_expr *);
91 static void gen_offset (struct agent_expr *ax, int offset);
92 static void gen_sym_offset (struct agent_expr *, struct symbol *);
93 static void gen_var_ref (struct gdbarch *, struct agent_expr *ax,
94 struct axs_value *value, struct symbol *var);
95
96
97 static void gen_int_literal (struct agent_expr *ax,
98 struct axs_value *value,
99 LONGEST k, struct type *type);
100
101 static void gen_usual_unary (struct expression *exp, struct agent_expr *ax,
102 struct axs_value *value);
103 static int type_wider_than (struct type *type1, struct type *type2);
104 static struct type *max_type (struct type *type1, struct type *type2);
105 static void gen_conversion (struct agent_expr *ax,
106 struct type *from, struct type *to);
107 static int is_nontrivial_conversion (struct type *from, struct type *to);
108 static void gen_usual_arithmetic (struct expression *exp,
109 struct agent_expr *ax,
110 struct axs_value *value1,
111 struct axs_value *value2);
112 static void gen_integral_promotions (struct expression *exp,
113 struct agent_expr *ax,
114 struct axs_value *value);
115 static void gen_cast (struct agent_expr *ax,
116 struct axs_value *value, struct type *type);
117 static void gen_scale (struct agent_expr *ax,
118 enum agent_op op, struct type *type);
119 static void gen_ptradd (struct agent_expr *ax, struct axs_value *value,
120 struct axs_value *value1, struct axs_value *value2);
121 static void gen_ptrsub (struct agent_expr *ax, struct axs_value *value,
122 struct axs_value *value1, struct axs_value *value2);
123 static void gen_ptrdiff (struct agent_expr *ax, struct axs_value *value,
124 struct axs_value *value1, struct axs_value *value2,
125 struct type *result_type);
126 static void gen_binop (struct agent_expr *ax,
127 struct axs_value *value,
128 struct axs_value *value1,
129 struct axs_value *value2,
130 enum agent_op op,
131 enum agent_op op_unsigned, int may_carry, char *name);
132 static void gen_logical_not (struct agent_expr *ax, struct axs_value *value,
133 struct type *result_type);
134 static void gen_complement (struct agent_expr *ax, struct axs_value *value);
135 static void gen_deref (struct agent_expr *, struct axs_value *);
136 static void gen_address_of (struct agent_expr *, struct axs_value *);
137 static void gen_bitfield_ref (struct expression *exp, struct agent_expr *ax,
138 struct axs_value *value,
139 struct type *type, int start, int end);
140 static void gen_primitive_field (struct expression *exp,
141 struct agent_expr *ax,
142 struct axs_value *value,
143 int offset, int fieldno, struct type *type);
144 static int gen_struct_ref_recursive (struct expression *exp,
145 struct agent_expr *ax,
146 struct axs_value *value,
147 char *field, int offset,
148 struct type *type);
149 static void gen_struct_ref (struct expression *exp, struct agent_expr *ax,
150 struct axs_value *value,
151 char *field,
152 char *operator_name, char *operand_name);
153 static void gen_static_field (struct gdbarch *gdbarch,
154 struct agent_expr *ax, struct axs_value *value,
155 struct type *type, int fieldno);
156 static void gen_repeat (struct expression *exp, union exp_element **pc,
157 struct agent_expr *ax, struct axs_value *value);
158 static void gen_sizeof (struct expression *exp, union exp_element **pc,
159 struct agent_expr *ax, struct axs_value *value,
160 struct type *size_type);
161 static void gen_expr_binop_rest (struct expression *exp,
162 enum exp_opcode op, union exp_element **pc,
163 struct agent_expr *ax,
164 struct axs_value *value,
165 struct axs_value *value1,
166 struct axs_value *value2);
167
168 static void agent_command (char *exp, int from_tty);
169
170
172 /* Detecting constant expressions. */
173
174 /* If the variable reference at *PC is a constant, return its value.
175 Otherwise, return zero.
176
177 Hey, Wally! How can a variable reference be a constant?
178
179 Well, Beav, this function really handles the OP_VAR_VALUE operator,
180 not specifically variable references. GDB uses OP_VAR_VALUE to
181 refer to any kind of symbolic reference: function names, enum
182 elements, and goto labels are all handled through the OP_VAR_VALUE
183 operator, even though they're constants. It makes sense given the
184 situation.
185
186 Gee, Wally, don'cha wonder sometimes if data representations that
187 subvert commonly accepted definitions of terms in favor of heavily
188 context-specific interpretations are really just a tool of the
189 programming hegemony to preserve their power and exclude the
190 proletariat? */
191
192 static struct value *
193 const_var_ref (struct symbol *var)
194 {
195 struct type *type = SYMBOL_TYPE (var);
196
197 switch (SYMBOL_CLASS (var))
198 {
199 case LOC_CONST:
200 return value_from_longest (type, (LONGEST) SYMBOL_VALUE (var));
201
202 case LOC_LABEL:
203 return value_from_pointer (type, (CORE_ADDR) SYMBOL_VALUE_ADDRESS (var));
204
205 default:
206 return 0;
207 }
208 }
209
210
211 /* If the expression starting at *PC has a constant value, return it.
212 Otherwise, return zero. If we return a value, then *PC will be
213 advanced to the end of it. If we return zero, *PC could be
214 anywhere. */
215 static struct value *
216 const_expr (union exp_element **pc)
217 {
218 enum exp_opcode op = (*pc)->opcode;
219 struct value *v1;
220
221 switch (op)
222 {
223 case OP_LONG:
224 {
225 struct type *type = (*pc)[1].type;
226 LONGEST k = (*pc)[2].longconst;
227
228 (*pc) += 4;
229 return value_from_longest (type, k);
230 }
231
232 case OP_VAR_VALUE:
233 {
234 struct value *v = const_var_ref ((*pc)[2].symbol);
235
236 (*pc) += 4;
237 return v;
238 }
239
240 /* We could add more operators in here. */
241
242 case UNOP_NEG:
243 (*pc)++;
244 v1 = const_expr (pc);
245 if (v1)
246 return value_neg (v1);
247 else
248 return 0;
249
250 default:
251 return 0;
252 }
253 }
254
255
256 /* Like const_expr, but guarantee also that *PC is undisturbed if the
257 expression is not constant. */
258 static struct value *
259 maybe_const_expr (union exp_element **pc)
260 {
261 union exp_element *tentative_pc = *pc;
262 struct value *v = const_expr (&tentative_pc);
263
264 /* If we got a value, then update the real PC. */
265 if (v)
266 *pc = tentative_pc;
267
268 return v;
269 }
270
271
273 /* Generating bytecode from GDB expressions: general assumptions */
274
275 /* Here are a few general assumptions made throughout the code; if you
276 want to make a change that contradicts one of these, then you'd
277 better scan things pretty thoroughly.
278
279 - We assume that all values occupy one stack element. For example,
280 sometimes we'll swap to get at the left argument to a binary
281 operator. If we decide that void values should occupy no stack
282 elements, or that synthetic arrays (whose size is determined at
283 run time, created by the `@' operator) should occupy two stack
284 elements (address and length), then this will cause trouble.
285
286 - We assume the stack elements are infinitely wide, and that we
287 don't have to worry what happens if the user requests an
288 operation that is wider than the actual interpreter's stack.
289 That is, it's up to the interpreter to handle directly all the
290 integer widths the user has access to. (Woe betide the language
291 with bignums!)
292
293 - We don't support side effects. Thus, we don't have to worry about
294 GCC's generalized lvalues, function calls, etc.
295
296 - We don't support floating point. Many places where we switch on
297 some type don't bother to include cases for floating point; there
298 may be even more subtle ways this assumption exists. For
299 example, the arguments to % must be integers.
300
301 - We assume all subexpressions have a static, unchanging type. If
302 we tried to support convenience variables, this would be a
303 problem.
304
305 - All values on the stack should always be fully zero- or
306 sign-extended.
307
308 (I wasn't sure whether to choose this or its opposite --- that
309 only addresses are assumed extended --- but it turns out that
310 neither convention completely eliminates spurious extend
311 operations (if everything is always extended, then you have to
312 extend after add, because it could overflow; if nothing is
313 extended, then you end up producing extends whenever you change
314 sizes), and this is simpler.) */
315
316
318 /* Scan for all static fields in the given class, including any base
319 classes, and generate tracing bytecodes for each. */
320
321 static void
322 gen_trace_static_fields (struct gdbarch *gdbarch,
323 struct agent_expr *ax,
324 struct type *type)
325 {
326 int i, nbases = TYPE_N_BASECLASSES (type);
327 struct axs_value value;
328
329 CHECK_TYPEDEF (type);
330
331 for (i = TYPE_NFIELDS (type) - 1; i >= nbases; i--)
332 {
333 if (field_is_static (&TYPE_FIELD (type, i)))
334 {
335 gen_static_field (gdbarch, ax, &value, type, i);
336 if (value.optimized_out)
337 continue;
338 switch (value.kind)
339 {
340 case axs_lvalue_memory:
341 {
342 /* Initialize the TYPE_LENGTH if it is a typedef. */
343 check_typedef (value.type);
344 ax_const_l (ax, TYPE_LENGTH (value.type));
345 ax_simple (ax, aop_trace);
346 }
347 break;
348
349 case axs_lvalue_register:
350 /* We don't actually need the register's value to be pushed,
351 just note that we need it to be collected. */
352 ax_reg_mask (ax, value.u.reg);
353
354 default:
355 break;
356 }
357 }
358 }
359
360 /* Now scan through base classes recursively. */
361 for (i = 0; i < nbases; i++)
362 {
363 struct type *basetype = check_typedef (TYPE_BASECLASS (type, i));
364
365 gen_trace_static_fields (gdbarch, ax, basetype);
366 }
367 }
368
369 /* Trace the lvalue on the stack, if it needs it. In either case, pop
370 the value. Useful on the left side of a comma, and at the end of
371 an expression being used for tracing. */
372 static void
373 gen_traced_pop (struct gdbarch *gdbarch,
374 struct agent_expr *ax, struct axs_value *value)
375 {
376 int string_trace = 0;
377 if (ax->trace_string
378 && TYPE_CODE (value->type) == TYPE_CODE_PTR
379 && c_textual_element_type (check_typedef (TYPE_TARGET_TYPE (value->type)),
380 's'))
381 string_trace = 1;
382
383 if (ax->tracing)
384 switch (value->kind)
385 {
386 case axs_rvalue:
387 if (string_trace)
388 {
389 ax_const_l (ax, ax->trace_string);
390 ax_simple (ax, aop_tracenz);
391 }
392 else
393 /* We don't trace rvalues, just the lvalues necessary to
394 produce them. So just dispose of this value. */
395 ax_simple (ax, aop_pop);
396 break;
397
398 case axs_lvalue_memory:
399 {
400 if (string_trace)
401 ax_simple (ax, aop_dup);
402
403 /* Initialize the TYPE_LENGTH if it is a typedef. */
404 check_typedef (value->type);
405
406 /* There's no point in trying to use a trace_quick bytecode
407 here, since "trace_quick SIZE pop" is three bytes, whereas
408 "const8 SIZE trace" is also three bytes, does the same
409 thing, and the simplest code which generates that will also
410 work correctly for objects with large sizes. */
411 ax_const_l (ax, TYPE_LENGTH (value->type));
412 ax_simple (ax, aop_trace);
413
414 if (string_trace)
415 {
416 ax_simple (ax, aop_ref32);
417 ax_const_l (ax, ax->trace_string);
418 ax_simple (ax, aop_tracenz);
419 }
420 }
421 break;
422
423 case axs_lvalue_register:
424 /* We don't actually need the register's value to be on the
425 stack, and the target will get heartburn if the register is
426 larger than will fit in a stack, so just mark it for
427 collection and be done with it. */
428 ax_reg_mask (ax, value->u.reg);
429
430 /* But if the register points to a string, assume the value
431 will fit on the stack and push it anyway. */
432 if (string_trace)
433 {
434 ax_reg (ax, value->u.reg);
435 ax_const_l (ax, ax->trace_string);
436 ax_simple (ax, aop_tracenz);
437 }
438 break;
439 }
440 else
441 /* If we're not tracing, just pop the value. */
442 ax_simple (ax, aop_pop);
443
444 /* To trace C++ classes with static fields stored elsewhere. */
445 if (ax->tracing
446 && (TYPE_CODE (value->type) == TYPE_CODE_STRUCT
447 || TYPE_CODE (value->type) == TYPE_CODE_UNION))
448 gen_trace_static_fields (gdbarch, ax, value->type);
449 }
450
451
453
454 /* Generating bytecode from GDB expressions: helper functions */
455
456 /* Assume that the lower bits of the top of the stack is a value of
457 type TYPE, and the upper bits are zero. Sign-extend if necessary. */
458 static void
459 gen_sign_extend (struct agent_expr *ax, struct type *type)
460 {
461 /* Do we need to sign-extend this? */
462 if (!TYPE_UNSIGNED (type))
463 ax_ext (ax, TYPE_LENGTH (type) * TARGET_CHAR_BIT);
464 }
465
466
467 /* Assume the lower bits of the top of the stack hold a value of type
468 TYPE, and the upper bits are garbage. Sign-extend or truncate as
469 needed. */
470 static void
471 gen_extend (struct agent_expr *ax, struct type *type)
472 {
473 int bits = TYPE_LENGTH (type) * TARGET_CHAR_BIT;
474
475 /* I just had to. */
476 ((TYPE_UNSIGNED (type) ? ax_zero_ext : ax_ext) (ax, bits));
477 }
478
479
480 /* Assume that the top of the stack contains a value of type "pointer
481 to TYPE"; generate code to fetch its value. Note that TYPE is the
482 target type, not the pointer type. */
483 static void
484 gen_fetch (struct agent_expr *ax, struct type *type)
485 {
486 if (ax->tracing)
487 {
488 /* Record the area of memory we're about to fetch. */
489 ax_trace_quick (ax, TYPE_LENGTH (type));
490 }
491
492 if (TYPE_CODE (type) == TYPE_CODE_RANGE)
493 type = TYPE_TARGET_TYPE (type);
494
495 switch (TYPE_CODE (type))
496 {
497 case TYPE_CODE_PTR:
498 case TYPE_CODE_REF:
499 case TYPE_CODE_ENUM:
500 case TYPE_CODE_INT:
501 case TYPE_CODE_CHAR:
502 case TYPE_CODE_BOOL:
503 /* It's a scalar value, so we know how to dereference it. How
504 many bytes long is it? */
505 switch (TYPE_LENGTH (type))
506 {
507 case 8 / TARGET_CHAR_BIT:
508 ax_simple (ax, aop_ref8);
509 break;
510 case 16 / TARGET_CHAR_BIT:
511 ax_simple (ax, aop_ref16);
512 break;
513 case 32 / TARGET_CHAR_BIT:
514 ax_simple (ax, aop_ref32);
515 break;
516 case 64 / TARGET_CHAR_BIT:
517 ax_simple (ax, aop_ref64);
518 break;
519
520 /* Either our caller shouldn't have asked us to dereference
521 that pointer (other code's fault), or we're not
522 implementing something we should be (this code's fault).
523 In any case, it's a bug the user shouldn't see. */
524 default:
525 internal_error (__FILE__, __LINE__,
526 _("gen_fetch: strange size"));
527 }
528
529 gen_sign_extend (ax, type);
530 break;
531
532 default:
533 /* Our caller requested us to dereference a pointer from an unsupported
534 type. Error out and give callers a chance to handle the failure
535 gracefully. */
536 error (_("gen_fetch: Unsupported type code `%s'."),
537 TYPE_NAME (type));
538 }
539 }
540
541
542 /* Generate code to left shift the top of the stack by DISTANCE bits, or
543 right shift it by -DISTANCE bits if DISTANCE < 0. This generates
544 unsigned (logical) right shifts. */
545 static void
546 gen_left_shift (struct agent_expr *ax, int distance)
547 {
548 if (distance > 0)
549 {
550 ax_const_l (ax, distance);
551 ax_simple (ax, aop_lsh);
552 }
553 else if (distance < 0)
554 {
555 ax_const_l (ax, -distance);
556 ax_simple (ax, aop_rsh_unsigned);
557 }
558 }
559
560
562
563 /* Generating bytecode from GDB expressions: symbol references */
564
565 /* Generate code to push the base address of the argument portion of
566 the top stack frame. */
567 static void
568 gen_frame_args_address (struct gdbarch *gdbarch, struct agent_expr *ax)
569 {
570 int frame_reg;
571 LONGEST frame_offset;
572
573 gdbarch_virtual_frame_pointer (gdbarch,
574 ax->scope, &frame_reg, &frame_offset);
575 ax_reg (ax, frame_reg);
576 gen_offset (ax, frame_offset);
577 }
578
579
580 /* Generate code to push the base address of the locals portion of the
581 top stack frame. */
582 static void
583 gen_frame_locals_address (struct gdbarch *gdbarch, struct agent_expr *ax)
584 {
585 int frame_reg;
586 LONGEST frame_offset;
587
588 gdbarch_virtual_frame_pointer (gdbarch,
589 ax->scope, &frame_reg, &frame_offset);
590 ax_reg (ax, frame_reg);
591 gen_offset (ax, frame_offset);
592 }
593
594
595 /* Generate code to add OFFSET to the top of the stack. Try to
596 generate short and readable code. We use this for getting to
597 variables on the stack, and structure members. If we were
598 programming in ML, it would be clearer why these are the same
599 thing. */
600 static void
601 gen_offset (struct agent_expr *ax, int offset)
602 {
603 /* It would suffice to simply push the offset and add it, but this
604 makes it easier to read positive and negative offsets in the
605 bytecode. */
606 if (offset > 0)
607 {
608 ax_const_l (ax, offset);
609 ax_simple (ax, aop_add);
610 }
611 else if (offset < 0)
612 {
613 ax_const_l (ax, -offset);
614 ax_simple (ax, aop_sub);
615 }
616 }
617
618
619 /* In many cases, a symbol's value is the offset from some other
620 address (stack frame, base register, etc.) Generate code to add
621 VAR's value to the top of the stack. */
622 static void
623 gen_sym_offset (struct agent_expr *ax, struct symbol *var)
624 {
625 gen_offset (ax, SYMBOL_VALUE (var));
626 }
627
628
629 /* Generate code for a variable reference to AX. The variable is the
630 symbol VAR. Set VALUE to describe the result. */
631
632 static void
633 gen_var_ref (struct gdbarch *gdbarch, struct agent_expr *ax,
634 struct axs_value *value, struct symbol *var)
635 {
636 /* Dereference any typedefs. */
637 value->type = check_typedef (SYMBOL_TYPE (var));
638 value->optimized_out = 0;
639
640 if (SYMBOL_COMPUTED_OPS (var) != NULL)
641 {
642 SYMBOL_COMPUTED_OPS (var)->tracepoint_var_ref (var, gdbarch, ax, value);
643 return;
644 }
645
646 /* I'm imitating the code in read_var_value. */
647 switch (SYMBOL_CLASS (var))
648 {
649 case LOC_CONST: /* A constant, like an enum value. */
650 ax_const_l (ax, (LONGEST) SYMBOL_VALUE (var));
651 value->kind = axs_rvalue;
652 break;
653
654 case LOC_LABEL: /* A goto label, being used as a value. */
655 ax_const_l (ax, (LONGEST) SYMBOL_VALUE_ADDRESS (var));
656 value->kind = axs_rvalue;
657 break;
658
659 case LOC_CONST_BYTES:
660 internal_error (__FILE__, __LINE__,
661 _("gen_var_ref: LOC_CONST_BYTES "
662 "symbols are not supported"));
663
664 /* Variable at a fixed location in memory. Easy. */
665 case LOC_STATIC:
666 /* Push the address of the variable. */
667 ax_const_l (ax, SYMBOL_VALUE_ADDRESS (var));
668 value->kind = axs_lvalue_memory;
669 break;
670
671 case LOC_ARG: /* var lives in argument area of frame */
672 gen_frame_args_address (gdbarch, ax);
673 gen_sym_offset (ax, var);
674 value->kind = axs_lvalue_memory;
675 break;
676
677 case LOC_REF_ARG: /* As above, but the frame slot really
678 holds the address of the variable. */
679 gen_frame_args_address (gdbarch, ax);
680 gen_sym_offset (ax, var);
681 /* Don't assume any particular pointer size. */
682 gen_fetch (ax, builtin_type (gdbarch)->builtin_data_ptr);
683 value->kind = axs_lvalue_memory;
684 break;
685
686 case LOC_LOCAL: /* var lives in locals area of frame */
687 gen_frame_locals_address (gdbarch, ax);
688 gen_sym_offset (ax, var);
689 value->kind = axs_lvalue_memory;
690 break;
691
692 case LOC_TYPEDEF:
693 error (_("Cannot compute value of typedef `%s'."),
694 SYMBOL_PRINT_NAME (var));
695 break;
696
697 case LOC_BLOCK:
698 ax_const_l (ax, BLOCK_START (SYMBOL_BLOCK_VALUE (var)));
699 value->kind = axs_rvalue;
700 break;
701
702 case LOC_REGISTER:
703 /* Don't generate any code at all; in the process of treating
704 this as an lvalue or rvalue, the caller will generate the
705 right code. */
706 value->kind = axs_lvalue_register;
707 value->u.reg = SYMBOL_REGISTER_OPS (var)->register_number (var, gdbarch);
708 break;
709
710 /* A lot like LOC_REF_ARG, but the pointer lives directly in a
711 register, not on the stack. Simpler than LOC_REGISTER
712 because it's just like any other case where the thing
713 has a real address. */
714 case LOC_REGPARM_ADDR:
715 ax_reg (ax, SYMBOL_REGISTER_OPS (var)->register_number (var, gdbarch));
716 value->kind = axs_lvalue_memory;
717 break;
718
719 case LOC_UNRESOLVED:
720 {
721 struct minimal_symbol *msym
722 = lookup_minimal_symbol (SYMBOL_LINKAGE_NAME (var), NULL, NULL);
723
724 if (!msym)
725 error (_("Couldn't resolve symbol `%s'."), SYMBOL_PRINT_NAME (var));
726
727 /* Push the address of the variable. */
728 ax_const_l (ax, SYMBOL_VALUE_ADDRESS (msym));
729 value->kind = axs_lvalue_memory;
730 }
731 break;
732
733 case LOC_COMPUTED:
734 gdb_assert_not_reached (_("LOC_COMPUTED variable missing a method"));
735
736 case LOC_OPTIMIZED_OUT:
737 /* Flag this, but don't say anything; leave it up to callers to
738 warn the user. */
739 value->optimized_out = 1;
740 break;
741
742 default:
743 error (_("Cannot find value of botched symbol `%s'."),
744 SYMBOL_PRINT_NAME (var));
745 break;
746 }
747 }
748
749
751
752 /* Generating bytecode from GDB expressions: literals */
753
754 static void
755 gen_int_literal (struct agent_expr *ax, struct axs_value *value, LONGEST k,
756 struct type *type)
757 {
758 ax_const_l (ax, k);
759 value->kind = axs_rvalue;
760 value->type = check_typedef (type);
761 }
762
763
765
766 /* Generating bytecode from GDB expressions: unary conversions, casts */
767
768 /* Take what's on the top of the stack (as described by VALUE), and
769 try to make an rvalue out of it. Signal an error if we can't do
770 that. */
771 void
772 require_rvalue (struct agent_expr *ax, struct axs_value *value)
773 {
774 /* Only deal with scalars, structs and such may be too large
775 to fit in a stack entry. */
776 value->type = check_typedef (value->type);
777 if (TYPE_CODE (value->type) == TYPE_CODE_ARRAY
778 || TYPE_CODE (value->type) == TYPE_CODE_STRUCT
779 || TYPE_CODE (value->type) == TYPE_CODE_UNION
780 || TYPE_CODE (value->type) == TYPE_CODE_FUNC)
781 error (_("Value not scalar: cannot be an rvalue."));
782
783 switch (value->kind)
784 {
785 case axs_rvalue:
786 /* It's already an rvalue. */
787 break;
788
789 case axs_lvalue_memory:
790 /* The top of stack is the address of the object. Dereference. */
791 gen_fetch (ax, value->type);
792 break;
793
794 case axs_lvalue_register:
795 /* There's nothing on the stack, but value->u.reg is the
796 register number containing the value.
797
798 When we add floating-point support, this is going to have to
799 change. What about SPARC register pairs, for example? */
800 ax_reg (ax, value->u.reg);
801 gen_extend (ax, value->type);
802 break;
803 }
804
805 value->kind = axs_rvalue;
806 }
807
808
809 /* Assume the top of the stack is described by VALUE, and perform the
810 usual unary conversions. This is motivated by ANSI 6.2.2, but of
811 course GDB expressions are not ANSI; they're the mishmash union of
812 a bunch of languages. Rah.
813
814 NOTE! This function promises to produce an rvalue only when the
815 incoming value is of an appropriate type. In other words, the
816 consumer of the value this function produces may assume the value
817 is an rvalue only after checking its type.
818
819 The immediate issue is that if the user tries to use a structure or
820 union as an operand of, say, the `+' operator, we don't want to try
821 to convert that structure to an rvalue; require_rvalue will bomb on
822 structs and unions. Rather, we want to simply pass the struct
823 lvalue through unchanged, and let `+' raise an error. */
824
825 static void
826 gen_usual_unary (struct expression *exp, struct agent_expr *ax,
827 struct axs_value *value)
828 {
829 /* We don't have to generate any code for the usual integral
830 conversions, since values are always represented as full-width on
831 the stack. Should we tweak the type? */
832
833 /* Some types require special handling. */
834 switch (TYPE_CODE (value->type))
835 {
836 /* Functions get converted to a pointer to the function. */
837 case TYPE_CODE_FUNC:
838 value->type = lookup_pointer_type (value->type);
839 value->kind = axs_rvalue; /* Should always be true, but just in case. */
840 break;
841
842 /* Arrays get converted to a pointer to their first element, and
843 are no longer an lvalue. */
844 case TYPE_CODE_ARRAY:
845 {
846 struct type *elements = TYPE_TARGET_TYPE (value->type);
847
848 value->type = lookup_pointer_type (elements);
849 value->kind = axs_rvalue;
850 /* We don't need to generate any code; the address of the array
851 is also the address of its first element. */
852 }
853 break;
854
855 /* Don't try to convert structures and unions to rvalues. Let the
856 consumer signal an error. */
857 case TYPE_CODE_STRUCT:
858 case TYPE_CODE_UNION:
859 return;
860 }
861
862 /* If the value is an lvalue, dereference it. */
863 require_rvalue (ax, value);
864 }
865
866
867 /* Return non-zero iff the type TYPE1 is considered "wider" than the
868 type TYPE2, according to the rules described in gen_usual_arithmetic. */
869 static int
870 type_wider_than (struct type *type1, struct type *type2)
871 {
872 return (TYPE_LENGTH (type1) > TYPE_LENGTH (type2)
873 || (TYPE_LENGTH (type1) == TYPE_LENGTH (type2)
874 && TYPE_UNSIGNED (type1)
875 && !TYPE_UNSIGNED (type2)));
876 }
877
878
879 /* Return the "wider" of the two types TYPE1 and TYPE2. */
880 static struct type *
881 max_type (struct type *type1, struct type *type2)
882 {
883 return type_wider_than (type1, type2) ? type1 : type2;
884 }
885
886
887 /* Generate code to convert a scalar value of type FROM to type TO. */
888 static void
889 gen_conversion (struct agent_expr *ax, struct type *from, struct type *to)
890 {
891 /* Perhaps there is a more graceful way to state these rules. */
892
893 /* If we're converting to a narrower type, then we need to clear out
894 the upper bits. */
895 if (TYPE_LENGTH (to) < TYPE_LENGTH (from))
896 gen_extend (ax, from);
897
898 /* If the two values have equal width, but different signednesses,
899 then we need to extend. */
900 else if (TYPE_LENGTH (to) == TYPE_LENGTH (from))
901 {
902 if (TYPE_UNSIGNED (from) != TYPE_UNSIGNED (to))
903 gen_extend (ax, to);
904 }
905
906 /* If we're converting to a wider type, and becoming unsigned, then
907 we need to zero out any possible sign bits. */
908 else if (TYPE_LENGTH (to) > TYPE_LENGTH (from))
909 {
910 if (TYPE_UNSIGNED (to))
911 gen_extend (ax, to);
912 }
913 }
914
915
916 /* Return non-zero iff the type FROM will require any bytecodes to be
917 emitted to be converted to the type TO. */
918 static int
919 is_nontrivial_conversion (struct type *from, struct type *to)
920 {
921 struct agent_expr *ax = new_agent_expr (NULL, 0);
922 int nontrivial;
923
924 /* Actually generate the code, and see if anything came out. At the
925 moment, it would be trivial to replicate the code in
926 gen_conversion here, but in the future, when we're supporting
927 floating point and the like, it may not be. Doing things this
928 way allows this function to be independent of the logic in
929 gen_conversion. */
930 gen_conversion (ax, from, to);
931 nontrivial = ax->len > 0;
932 free_agent_expr (ax);
933 return nontrivial;
934 }
935
936
937 /* Generate code to perform the "usual arithmetic conversions" (ANSI C
938 6.2.1.5) for the two operands of an arithmetic operator. This
939 effectively finds a "least upper bound" type for the two arguments,
940 and promotes each argument to that type. *VALUE1 and *VALUE2
941 describe the values as they are passed in, and as they are left. */
942 static void
943 gen_usual_arithmetic (struct expression *exp, struct agent_expr *ax,
944 struct axs_value *value1, struct axs_value *value2)
945 {
946 /* Do the usual binary conversions. */
947 if (TYPE_CODE (value1->type) == TYPE_CODE_INT
948 && TYPE_CODE (value2->type) == TYPE_CODE_INT)
949 {
950 /* The ANSI integral promotions seem to work this way: Order the
951 integer types by size, and then by signedness: an n-bit
952 unsigned type is considered "wider" than an n-bit signed
953 type. Promote to the "wider" of the two types, and always
954 promote at least to int. */
955 struct type *target = max_type (builtin_type (exp->gdbarch)->builtin_int,
956 max_type (value1->type, value2->type));
957
958 /* Deal with value2, on the top of the stack. */
959 gen_conversion (ax, value2->type, target);
960
961 /* Deal with value1, not on the top of the stack. Don't
962 generate the `swap' instructions if we're not actually going
963 to do anything. */
964 if (is_nontrivial_conversion (value1->type, target))
965 {
966 ax_simple (ax, aop_swap);
967 gen_conversion (ax, value1->type, target);
968 ax_simple (ax, aop_swap);
969 }
970
971 value1->type = value2->type = check_typedef (target);
972 }
973 }
974
975
976 /* Generate code to perform the integral promotions (ANSI 6.2.1.1) on
977 the value on the top of the stack, as described by VALUE. Assume
978 the value has integral type. */
979 static void
980 gen_integral_promotions (struct expression *exp, struct agent_expr *ax,
981 struct axs_value *value)
982 {
983 const struct builtin_type *builtin = builtin_type (exp->gdbarch);
984
985 if (!type_wider_than (value->type, builtin->builtin_int))
986 {
987 gen_conversion (ax, value->type, builtin->builtin_int);
988 value->type = builtin->builtin_int;
989 }
990 else if (!type_wider_than (value->type, builtin->builtin_unsigned_int))
991 {
992 gen_conversion (ax, value->type, builtin->builtin_unsigned_int);
993 value->type = builtin->builtin_unsigned_int;
994 }
995 }
996
997
998 /* Generate code for a cast to TYPE. */
999 static void
1000 gen_cast (struct agent_expr *ax, struct axs_value *value, struct type *type)
1001 {
1002 /* GCC does allow casts to yield lvalues, so this should be fixed
1003 before merging these changes into the trunk. */
1004 require_rvalue (ax, value);
1005 /* Dereference typedefs. */
1006 type = check_typedef (type);
1007
1008 switch (TYPE_CODE (type))
1009 {
1010 case TYPE_CODE_PTR:
1011 case TYPE_CODE_REF:
1012 /* It's implementation-defined, and I'll bet this is what GCC
1013 does. */
1014 break;
1015
1016 case TYPE_CODE_ARRAY:
1017 case TYPE_CODE_STRUCT:
1018 case TYPE_CODE_UNION:
1019 case TYPE_CODE_FUNC:
1020 error (_("Invalid type cast: intended type must be scalar."));
1021
1022 case TYPE_CODE_ENUM:
1023 case TYPE_CODE_BOOL:
1024 /* We don't have to worry about the size of the value, because
1025 all our integral values are fully sign-extended, and when
1026 casting pointers we can do anything we like. Is there any
1027 way for us to know what GCC actually does with a cast like
1028 this? */
1029 break;
1030
1031 case TYPE_CODE_INT:
1032 gen_conversion (ax, value->type, type);
1033 break;
1034
1035 case TYPE_CODE_VOID:
1036 /* We could pop the value, and rely on everyone else to check
1037 the type and notice that this value doesn't occupy a stack
1038 slot. But for now, leave the value on the stack, and
1039 preserve the "value == stack element" assumption. */
1040 break;
1041
1042 default:
1043 error (_("Casts to requested type are not yet implemented."));
1044 }
1045
1046 value->type = type;
1047 }
1048
1049
1051
1052 /* Generating bytecode from GDB expressions: arithmetic */
1053
1054 /* Scale the integer on the top of the stack by the size of the target
1055 of the pointer type TYPE. */
1056 static void
1057 gen_scale (struct agent_expr *ax, enum agent_op op, struct type *type)
1058 {
1059 struct type *element = TYPE_TARGET_TYPE (type);
1060
1061 if (TYPE_LENGTH (element) != 1)
1062 {
1063 ax_const_l (ax, TYPE_LENGTH (element));
1064 ax_simple (ax, op);
1065 }
1066 }
1067
1068
1069 /* Generate code for pointer arithmetic PTR + INT. */
1070 static void
1071 gen_ptradd (struct agent_expr *ax, struct axs_value *value,
1072 struct axs_value *value1, struct axs_value *value2)
1073 {
1074 gdb_assert (pointer_type (value1->type));
1075 gdb_assert (TYPE_CODE (value2->type) == TYPE_CODE_INT);
1076
1077 gen_scale (ax, aop_mul, value1->type);
1078 ax_simple (ax, aop_add);
1079 gen_extend (ax, value1->type); /* Catch overflow. */
1080 value->type = value1->type;
1081 value->kind = axs_rvalue;
1082 }
1083
1084
1085 /* Generate code for pointer arithmetic PTR - INT. */
1086 static void
1087 gen_ptrsub (struct agent_expr *ax, struct axs_value *value,
1088 struct axs_value *value1, struct axs_value *value2)
1089 {
1090 gdb_assert (pointer_type (value1->type));
1091 gdb_assert (TYPE_CODE (value2->type) == TYPE_CODE_INT);
1092
1093 gen_scale (ax, aop_mul, value1->type);
1094 ax_simple (ax, aop_sub);
1095 gen_extend (ax, value1->type); /* Catch overflow. */
1096 value->type = value1->type;
1097 value->kind = axs_rvalue;
1098 }
1099
1100
1101 /* Generate code for pointer arithmetic PTR - PTR. */
1102 static void
1103 gen_ptrdiff (struct agent_expr *ax, struct axs_value *value,
1104 struct axs_value *value1, struct axs_value *value2,
1105 struct type *result_type)
1106 {
1107 gdb_assert (pointer_type (value1->type));
1108 gdb_assert (pointer_type (value2->type));
1109
1110 if (TYPE_LENGTH (TYPE_TARGET_TYPE (value1->type))
1111 != TYPE_LENGTH (TYPE_TARGET_TYPE (value2->type)))
1112 error (_("\
1113 First argument of `-' is a pointer, but second argument is neither\n\
1114 an integer nor a pointer of the same type."));
1115
1116 ax_simple (ax, aop_sub);
1117 gen_scale (ax, aop_div_unsigned, value1->type);
1118 value->type = result_type;
1119 value->kind = axs_rvalue;
1120 }
1121
1122 static void
1123 gen_equal (struct agent_expr *ax, struct axs_value *value,
1124 struct axs_value *value1, struct axs_value *value2,
1125 struct type *result_type)
1126 {
1127 if (pointer_type (value1->type) || pointer_type (value2->type))
1128 ax_simple (ax, aop_equal);
1129 else
1130 gen_binop (ax, value, value1, value2,
1131 aop_equal, aop_equal, 0, "equal");
1132 value->type = result_type;
1133 value->kind = axs_rvalue;
1134 }
1135
1136 static void
1137 gen_less (struct agent_expr *ax, struct axs_value *value,
1138 struct axs_value *value1, struct axs_value *value2,
1139 struct type *result_type)
1140 {
1141 if (pointer_type (value1->type) || pointer_type (value2->type))
1142 ax_simple (ax, aop_less_unsigned);
1143 else
1144 gen_binop (ax, value, value1, value2,
1145 aop_less_signed, aop_less_unsigned, 0, "less than");
1146 value->type = result_type;
1147 value->kind = axs_rvalue;
1148 }
1149
1150 /* Generate code for a binary operator that doesn't do pointer magic.
1151 We set VALUE to describe the result value; we assume VALUE1 and
1152 VALUE2 describe the two operands, and that they've undergone the
1153 usual binary conversions. MAY_CARRY should be non-zero iff the
1154 result needs to be extended. NAME is the English name of the
1155 operator, used in error messages */
1156 static void
1157 gen_binop (struct agent_expr *ax, struct axs_value *value,
1158 struct axs_value *value1, struct axs_value *value2,
1159 enum agent_op op, enum agent_op op_unsigned,
1160 int may_carry, char *name)
1161 {
1162 /* We only handle INT op INT. */
1163 if ((TYPE_CODE (value1->type) != TYPE_CODE_INT)
1164 || (TYPE_CODE (value2->type) != TYPE_CODE_INT))
1165 error (_("Invalid combination of types in %s."), name);
1166
1167 ax_simple (ax,
1168 TYPE_UNSIGNED (value1->type) ? op_unsigned : op);
1169 if (may_carry)
1170 gen_extend (ax, value1->type); /* catch overflow */
1171 value->type = value1->type;
1172 value->kind = axs_rvalue;
1173 }
1174
1175
1176 static void
1177 gen_logical_not (struct agent_expr *ax, struct axs_value *value,
1178 struct type *result_type)
1179 {
1180 if (TYPE_CODE (value->type) != TYPE_CODE_INT
1181 && TYPE_CODE (value->type) != TYPE_CODE_PTR)
1182 error (_("Invalid type of operand to `!'."));
1183
1184 ax_simple (ax, aop_log_not);
1185 value->type = result_type;
1186 }
1187
1188
1189 static void
1190 gen_complement (struct agent_expr *ax, struct axs_value *value)
1191 {
1192 if (TYPE_CODE (value->type) != TYPE_CODE_INT)
1193 error (_("Invalid type of operand to `~'."));
1194
1195 ax_simple (ax, aop_bit_not);
1196 gen_extend (ax, value->type);
1197 }
1198
1199
1201
1202 /* Generating bytecode from GDB expressions: * & . -> @ sizeof */
1203
1204 /* Dereference the value on the top of the stack. */
1205 static void
1206 gen_deref (struct agent_expr *ax, struct axs_value *value)
1207 {
1208 /* The caller should check the type, because several operators use
1209 this, and we don't know what error message to generate. */
1210 if (!pointer_type (value->type))
1211 internal_error (__FILE__, __LINE__,
1212 _("gen_deref: expected a pointer"));
1213
1214 /* We've got an rvalue now, which is a pointer. We want to yield an
1215 lvalue, whose address is exactly that pointer. So we don't
1216 actually emit any code; we just change the type from "Pointer to
1217 T" to "T", and mark the value as an lvalue in memory. Leave it
1218 to the consumer to actually dereference it. */
1219 value->type = check_typedef (TYPE_TARGET_TYPE (value->type));
1220 if (TYPE_CODE (value->type) == TYPE_CODE_VOID)
1221 error (_("Attempt to dereference a generic pointer."));
1222 value->kind = ((TYPE_CODE (value->type) == TYPE_CODE_FUNC)
1223 ? axs_rvalue : axs_lvalue_memory);
1224 }
1225
1226
1227 /* Produce the address of the lvalue on the top of the stack. */
1228 static void
1229 gen_address_of (struct agent_expr *ax, struct axs_value *value)
1230 {
1231 /* Special case for taking the address of a function. The ANSI
1232 standard describes this as a special case, too, so this
1233 arrangement is not without motivation. */
1234 if (TYPE_CODE (value->type) == TYPE_CODE_FUNC)
1235 /* The value's already an rvalue on the stack, so we just need to
1236 change the type. */
1237 value->type = lookup_pointer_type (value->type);
1238 else
1239 switch (value->kind)
1240 {
1241 case axs_rvalue:
1242 error (_("Operand of `&' is an rvalue, which has no address."));
1243
1244 case axs_lvalue_register:
1245 error (_("Operand of `&' is in a register, and has no address."));
1246
1247 case axs_lvalue_memory:
1248 value->kind = axs_rvalue;
1249 value->type = lookup_pointer_type (value->type);
1250 break;
1251 }
1252 }
1253
1254 /* Generate code to push the value of a bitfield of a structure whose
1255 address is on the top of the stack. START and END give the
1256 starting and one-past-ending *bit* numbers of the field within the
1257 structure. */
1258 static void
1259 gen_bitfield_ref (struct expression *exp, struct agent_expr *ax,
1260 struct axs_value *value, struct type *type,
1261 int start, int end)
1262 {
1263 /* Note that ops[i] fetches 8 << i bits. */
1264 static enum agent_op ops[]
1265 = {aop_ref8, aop_ref16, aop_ref32, aop_ref64};
1266 static int num_ops = (sizeof (ops) / sizeof (ops[0]));
1267
1268 /* We don't want to touch any byte that the bitfield doesn't
1269 actually occupy; we shouldn't make any accesses we're not
1270 explicitly permitted to. We rely here on the fact that the
1271 bytecode `ref' operators work on unaligned addresses.
1272
1273 It takes some fancy footwork to get the stack to work the way
1274 we'd like. Say we're retrieving a bitfield that requires three
1275 fetches. Initially, the stack just contains the address:
1276 addr
1277 For the first fetch, we duplicate the address
1278 addr addr
1279 then add the byte offset, do the fetch, and shift and mask as
1280 needed, yielding a fragment of the value, properly aligned for
1281 the final bitwise or:
1282 addr frag1
1283 then we swap, and repeat the process:
1284 frag1 addr --- address on top
1285 frag1 addr addr --- duplicate it
1286 frag1 addr frag2 --- get second fragment
1287 frag1 frag2 addr --- swap again
1288 frag1 frag2 frag3 --- get third fragment
1289 Notice that, since the third fragment is the last one, we don't
1290 bother duplicating the address this time. Now we have all the
1291 fragments on the stack, and we can simply `or' them together,
1292 yielding the final value of the bitfield. */
1293
1294 /* The first and one-after-last bits in the field, but rounded down
1295 and up to byte boundaries. */
1296 int bound_start = (start / TARGET_CHAR_BIT) * TARGET_CHAR_BIT;
1297 int bound_end = (((end + TARGET_CHAR_BIT - 1)
1298 / TARGET_CHAR_BIT)
1299 * TARGET_CHAR_BIT);
1300
1301 /* current bit offset within the structure */
1302 int offset;
1303
1304 /* The index in ops of the opcode we're considering. */
1305 int op;
1306
1307 /* The number of fragments we generated in the process. Probably
1308 equal to the number of `one' bits in bytesize, but who cares? */
1309 int fragment_count;
1310
1311 /* Dereference any typedefs. */
1312 type = check_typedef (type);
1313
1314 /* Can we fetch the number of bits requested at all? */
1315 if ((end - start) > ((1 << num_ops) * 8))
1316 internal_error (__FILE__, __LINE__,
1317 _("gen_bitfield_ref: bitfield too wide"));
1318
1319 /* Note that we know here that we only need to try each opcode once.
1320 That may not be true on machines with weird byte sizes. */
1321 offset = bound_start;
1322 fragment_count = 0;
1323 for (op = num_ops - 1; op >= 0; op--)
1324 {
1325 /* number of bits that ops[op] would fetch */
1326 int op_size = 8 << op;
1327
1328 /* The stack at this point, from bottom to top, contains zero or
1329 more fragments, then the address. */
1330
1331 /* Does this fetch fit within the bitfield? */
1332 if (offset + op_size <= bound_end)
1333 {
1334 /* Is this the last fragment? */
1335 int last_frag = (offset + op_size == bound_end);
1336
1337 if (!last_frag)
1338 ax_simple (ax, aop_dup); /* keep a copy of the address */
1339
1340 /* Add the offset. */
1341 gen_offset (ax, offset / TARGET_CHAR_BIT);
1342
1343 if (ax->tracing)
1344 {
1345 /* Record the area of memory we're about to fetch. */
1346 ax_trace_quick (ax, op_size / TARGET_CHAR_BIT);
1347 }
1348
1349 /* Perform the fetch. */
1350 ax_simple (ax, ops[op]);
1351
1352 /* Shift the bits we have to their proper position.
1353 gen_left_shift will generate right shifts when the operand
1354 is negative.
1355
1356 A big-endian field diagram to ponder:
1357 byte 0 byte 1 byte 2 byte 3 byte 4 byte 5 byte 6 byte 7
1358 +------++------++------++------++------++------++------++------+
1359 xxxxAAAAAAAAAAAAAAAAAAAAAAAAAAAABBBBBBBBBBBBBBBBCCCCCxxxxxxxxxxx
1360 ^ ^ ^ ^
1361 bit number 16 32 48 53
1362 These are bit numbers as supplied by GDB. Note that the
1363 bit numbers run from right to left once you've fetched the
1364 value!
1365
1366 A little-endian field diagram to ponder:
1367 byte 7 byte 6 byte 5 byte 4 byte 3 byte 2 byte 1 byte 0
1368 +------++------++------++------++------++------++------++------+
1369 xxxxxxxxxxxAAAAABBBBBBBBBBBBBBBBCCCCCCCCCCCCCCCCCCCCCCCCCCCCxxxx
1370 ^ ^ ^ ^ ^
1371 bit number 48 32 16 4 0
1372
1373 In both cases, the most significant end is on the left
1374 (i.e. normal numeric writing order), which means that you
1375 don't go crazy thinking about `left' and `right' shifts.
1376
1377 We don't have to worry about masking yet:
1378 - If they contain garbage off the least significant end, then we
1379 must be looking at the low end of the field, and the right
1380 shift will wipe them out.
1381 - If they contain garbage off the most significant end, then we
1382 must be looking at the most significant end of the word, and
1383 the sign/zero extension will wipe them out.
1384 - If we're in the interior of the word, then there is no garbage
1385 on either end, because the ref operators zero-extend. */
1386 if (gdbarch_byte_order (exp->gdbarch) == BFD_ENDIAN_BIG)
1387 gen_left_shift (ax, end - (offset + op_size));
1388 else
1389 gen_left_shift (ax, offset - start);
1390
1391 if (!last_frag)
1392 /* Bring the copy of the address up to the top. */
1393 ax_simple (ax, aop_swap);
1394
1395 offset += op_size;
1396 fragment_count++;
1397 }
1398 }
1399
1400 /* Generate enough bitwise `or' operations to combine all the
1401 fragments we left on the stack. */
1402 while (fragment_count-- > 1)
1403 ax_simple (ax, aop_bit_or);
1404
1405 /* Sign- or zero-extend the value as appropriate. */
1406 ((TYPE_UNSIGNED (type) ? ax_zero_ext : ax_ext) (ax, end - start));
1407
1408 /* This is *not* an lvalue. Ugh. */
1409 value->kind = axs_rvalue;
1410 value->type = type;
1411 }
1412
1413 /* Generate bytecodes for field number FIELDNO of type TYPE. OFFSET
1414 is an accumulated offset (in bytes), will be nonzero for objects
1415 embedded in other objects, like C++ base classes. Behavior should
1416 generally follow value_primitive_field. */
1417
1418 static void
1419 gen_primitive_field (struct expression *exp,
1420 struct agent_expr *ax, struct axs_value *value,
1421 int offset, int fieldno, struct type *type)
1422 {
1423 /* Is this a bitfield? */
1424 if (TYPE_FIELD_PACKED (type, fieldno))
1425 gen_bitfield_ref (exp, ax, value, TYPE_FIELD_TYPE (type, fieldno),
1426 (offset * TARGET_CHAR_BIT
1427 + TYPE_FIELD_BITPOS (type, fieldno)),
1428 (offset * TARGET_CHAR_BIT
1429 + TYPE_FIELD_BITPOS (type, fieldno)
1430 + TYPE_FIELD_BITSIZE (type, fieldno)));
1431 else
1432 {
1433 gen_offset (ax, offset
1434 + TYPE_FIELD_BITPOS (type, fieldno) / TARGET_CHAR_BIT);
1435 value->kind = axs_lvalue_memory;
1436 value->type = TYPE_FIELD_TYPE (type, fieldno);
1437 }
1438 }
1439
1440 /* Search for the given field in either the given type or one of its
1441 base classes. Return 1 if found, 0 if not. */
1442
1443 static int
1444 gen_struct_ref_recursive (struct expression *exp, struct agent_expr *ax,
1445 struct axs_value *value,
1446 char *field, int offset, struct type *type)
1447 {
1448 int i, rslt;
1449 int nbases = TYPE_N_BASECLASSES (type);
1450
1451 CHECK_TYPEDEF (type);
1452
1453 for (i = TYPE_NFIELDS (type) - 1; i >= nbases; i--)
1454 {
1455 const char *this_name = TYPE_FIELD_NAME (type, i);
1456
1457 if (this_name)
1458 {
1459 if (strcmp (field, this_name) == 0)
1460 {
1461 /* Note that bytecodes for the struct's base (aka
1462 "this") will have been generated already, which will
1463 be unnecessary but not harmful if the static field is
1464 being handled as a global. */
1465 if (field_is_static (&TYPE_FIELD (type, i)))
1466 {
1467 gen_static_field (exp->gdbarch, ax, value, type, i);
1468 if (value->optimized_out)
1469 error (_("static field `%s' has been "
1470 "optimized out, cannot use"),
1471 field);
1472 return 1;
1473 }
1474
1475 gen_primitive_field (exp, ax, value, offset, i, type);
1476 return 1;
1477 }
1478 #if 0 /* is this right? */
1479 if (this_name[0] == '\0')
1480 internal_error (__FILE__, __LINE__,
1481 _("find_field: anonymous unions not supported"));
1482 #endif
1483 }
1484 }
1485
1486 /* Now scan through base classes recursively. */
1487 for (i = 0; i < nbases; i++)
1488 {
1489 struct type *basetype = check_typedef (TYPE_BASECLASS (type, i));
1490
1491 rslt = gen_struct_ref_recursive (exp, ax, value, field,
1492 offset + TYPE_BASECLASS_BITPOS (type, i)
1493 / TARGET_CHAR_BIT,
1494 basetype);
1495 if (rslt)
1496 return 1;
1497 }
1498
1499 /* Not found anywhere, flag so caller can complain. */
1500 return 0;
1501 }
1502
1503 /* Generate code to reference the member named FIELD of a structure or
1504 union. The top of the stack, as described by VALUE, should have
1505 type (pointer to a)* struct/union. OPERATOR_NAME is the name of
1506 the operator being compiled, and OPERAND_NAME is the kind of thing
1507 it operates on; we use them in error messages. */
1508 static void
1509 gen_struct_ref (struct expression *exp, struct agent_expr *ax,
1510 struct axs_value *value, char *field,
1511 char *operator_name, char *operand_name)
1512 {
1513 struct type *type;
1514 int found;
1515
1516 /* Follow pointers until we reach a non-pointer. These aren't the C
1517 semantics, but they're what the normal GDB evaluator does, so we
1518 should at least be consistent. */
1519 while (pointer_type (value->type))
1520 {
1521 require_rvalue (ax, value);
1522 gen_deref (ax, value);
1523 }
1524 type = check_typedef (value->type);
1525
1526 /* This must yield a structure or a union. */
1527 if (TYPE_CODE (type) != TYPE_CODE_STRUCT
1528 && TYPE_CODE (type) != TYPE_CODE_UNION)
1529 error (_("The left operand of `%s' is not a %s."),
1530 operator_name, operand_name);
1531
1532 /* And it must be in memory; we don't deal with structure rvalues,
1533 or structures living in registers. */
1534 if (value->kind != axs_lvalue_memory)
1535 error (_("Structure does not live in memory."));
1536
1537 /* Search through fields and base classes recursively. */
1538 found = gen_struct_ref_recursive (exp, ax, value, field, 0, type);
1539
1540 if (!found)
1541 error (_("Couldn't find member named `%s' in struct/union/class `%s'"),
1542 field, TYPE_TAG_NAME (type));
1543 }
1544
1545 static int
1546 gen_namespace_elt (struct expression *exp,
1547 struct agent_expr *ax, struct axs_value *value,
1548 const struct type *curtype, char *name);
1549 static int
1550 gen_maybe_namespace_elt (struct expression *exp,
1551 struct agent_expr *ax, struct axs_value *value,
1552 const struct type *curtype, char *name);
1553
1554 static void
1555 gen_static_field (struct gdbarch *gdbarch,
1556 struct agent_expr *ax, struct axs_value *value,
1557 struct type *type, int fieldno)
1558 {
1559 if (TYPE_FIELD_LOC_KIND (type, fieldno) == FIELD_LOC_KIND_PHYSADDR)
1560 {
1561 ax_const_l (ax, TYPE_FIELD_STATIC_PHYSADDR (type, fieldno));
1562 value->kind = axs_lvalue_memory;
1563 value->type = TYPE_FIELD_TYPE (type, fieldno);
1564 value->optimized_out = 0;
1565 }
1566 else
1567 {
1568 const char *phys_name = TYPE_FIELD_STATIC_PHYSNAME (type, fieldno);
1569 struct symbol *sym = lookup_symbol (phys_name, 0, VAR_DOMAIN, 0);
1570
1571 if (sym)
1572 {
1573 gen_var_ref (gdbarch, ax, value, sym);
1574
1575 /* Don't error if the value was optimized out, we may be
1576 scanning all static fields and just want to pass over this
1577 and continue with the rest. */
1578 }
1579 else
1580 {
1581 /* Silently assume this was optimized out; class printing
1582 will let the user know why the data is missing. */
1583 value->optimized_out = 1;
1584 }
1585 }
1586 }
1587
1588 static int
1589 gen_struct_elt_for_reference (struct expression *exp,
1590 struct agent_expr *ax, struct axs_value *value,
1591 struct type *type, char *fieldname)
1592 {
1593 struct type *t = type;
1594 int i;
1595
1596 if (TYPE_CODE (t) != TYPE_CODE_STRUCT
1597 && TYPE_CODE (t) != TYPE_CODE_UNION)
1598 internal_error (__FILE__, __LINE__,
1599 _("non-aggregate type to gen_struct_elt_for_reference"));
1600
1601 for (i = TYPE_NFIELDS (t) - 1; i >= TYPE_N_BASECLASSES (t); i--)
1602 {
1603 const char *t_field_name = TYPE_FIELD_NAME (t, i);
1604
1605 if (t_field_name && strcmp (t_field_name, fieldname) == 0)
1606 {
1607 if (field_is_static (&TYPE_FIELD (t, i)))
1608 {
1609 gen_static_field (exp->gdbarch, ax, value, t, i);
1610 if (value->optimized_out)
1611 error (_("static field `%s' has been "
1612 "optimized out, cannot use"),
1613 fieldname);
1614 return 1;
1615 }
1616 if (TYPE_FIELD_PACKED (t, i))
1617 error (_("pointers to bitfield members not allowed"));
1618
1619 /* FIXME we need a way to do "want_address" equivalent */
1620
1621 error (_("Cannot reference non-static field \"%s\""), fieldname);
1622 }
1623 }
1624
1625 /* FIXME add other scoped-reference cases here */
1626
1627 /* Do a last-ditch lookup. */
1628 return gen_maybe_namespace_elt (exp, ax, value, type, fieldname);
1629 }
1630
1631 /* C++: Return the member NAME of the namespace given by the type
1632 CURTYPE. */
1633
1634 static int
1635 gen_namespace_elt (struct expression *exp,
1636 struct agent_expr *ax, struct axs_value *value,
1637 const struct type *curtype, char *name)
1638 {
1639 int found = gen_maybe_namespace_elt (exp, ax, value, curtype, name);
1640
1641 if (!found)
1642 error (_("No symbol \"%s\" in namespace \"%s\"."),
1643 name, TYPE_TAG_NAME (curtype));
1644
1645 return found;
1646 }
1647
1648 /* A helper function used by value_namespace_elt and
1649 value_struct_elt_for_reference. It looks up NAME inside the
1650 context CURTYPE; this works if CURTYPE is a namespace or if CURTYPE
1651 is a class and NAME refers to a type in CURTYPE itself (as opposed
1652 to, say, some base class of CURTYPE). */
1653
1654 static int
1655 gen_maybe_namespace_elt (struct expression *exp,
1656 struct agent_expr *ax, struct axs_value *value,
1657 const struct type *curtype, char *name)
1658 {
1659 const char *namespace_name = TYPE_TAG_NAME (curtype);
1660 struct symbol *sym;
1661
1662 sym = cp_lookup_symbol_namespace (namespace_name, name,
1663 block_for_pc (ax->scope),
1664 VAR_DOMAIN);
1665
1666 if (sym == NULL)
1667 return 0;
1668
1669 gen_var_ref (exp->gdbarch, ax, value, sym);
1670
1671 if (value->optimized_out)
1672 error (_("`%s' has been optimized out, cannot use"),
1673 SYMBOL_PRINT_NAME (sym));
1674
1675 return 1;
1676 }
1677
1678
1679 static int
1680 gen_aggregate_elt_ref (struct expression *exp,
1681 struct agent_expr *ax, struct axs_value *value,
1682 struct type *type, char *field,
1683 char *operator_name, char *operand_name)
1684 {
1685 switch (TYPE_CODE (type))
1686 {
1687 case TYPE_CODE_STRUCT:
1688 case TYPE_CODE_UNION:
1689 return gen_struct_elt_for_reference (exp, ax, value, type, field);
1690 break;
1691 case TYPE_CODE_NAMESPACE:
1692 return gen_namespace_elt (exp, ax, value, type, field);
1693 break;
1694 default:
1695 internal_error (__FILE__, __LINE__,
1696 _("non-aggregate type in gen_aggregate_elt_ref"));
1697 }
1698
1699 return 0;
1700 }
1701
1702 /* Generate code for GDB's magical `repeat' operator.
1703 LVALUE @ INT creates an array INT elements long, and whose elements
1704 have the same type as LVALUE, located in memory so that LVALUE is
1705 its first element. For example, argv[0]@argc gives you the array
1706 of command-line arguments.
1707
1708 Unfortunately, because we have to know the types before we actually
1709 have a value for the expression, we can't implement this perfectly
1710 without changing the type system, having values that occupy two
1711 stack slots, doing weird things with sizeof, etc. So we require
1712 the right operand to be a constant expression. */
1713 static void
1714 gen_repeat (struct expression *exp, union exp_element **pc,
1715 struct agent_expr *ax, struct axs_value *value)
1716 {
1717 struct axs_value value1;
1718
1719 /* We don't want to turn this into an rvalue, so no conversions
1720 here. */
1721 gen_expr (exp, pc, ax, &value1);
1722 if (value1.kind != axs_lvalue_memory)
1723 error (_("Left operand of `@' must be an object in memory."));
1724
1725 /* Evaluate the length; it had better be a constant. */
1726 {
1727 struct value *v = const_expr (pc);
1728 int length;
1729
1730 if (!v)
1731 error (_("Right operand of `@' must be a "
1732 "constant, in agent expressions."));
1733 if (TYPE_CODE (value_type (v)) != TYPE_CODE_INT)
1734 error (_("Right operand of `@' must be an integer."));
1735 length = value_as_long (v);
1736 if (length <= 0)
1737 error (_("Right operand of `@' must be positive."));
1738
1739 /* The top of the stack is already the address of the object, so
1740 all we need to do is frob the type of the lvalue. */
1741 {
1742 /* FIXME-type-allocation: need a way to free this type when we are
1743 done with it. */
1744 struct type *array
1745 = lookup_array_range_type (value1.type, 0, length - 1);
1746
1747 value->kind = axs_lvalue_memory;
1748 value->type = array;
1749 }
1750 }
1751 }
1752
1753
1754 /* Emit code for the `sizeof' operator.
1755 *PC should point at the start of the operand expression; we advance it
1756 to the first instruction after the operand. */
1757 static void
1758 gen_sizeof (struct expression *exp, union exp_element **pc,
1759 struct agent_expr *ax, struct axs_value *value,
1760 struct type *size_type)
1761 {
1762 /* We don't care about the value of the operand expression; we only
1763 care about its type. However, in the current arrangement, the
1764 only way to find an expression's type is to generate code for it.
1765 So we generate code for the operand, and then throw it away,
1766 replacing it with code that simply pushes its size. */
1767 int start = ax->len;
1768
1769 gen_expr (exp, pc, ax, value);
1770
1771 /* Throw away the code we just generated. */
1772 ax->len = start;
1773
1774 ax_const_l (ax, TYPE_LENGTH (value->type));
1775 value->kind = axs_rvalue;
1776 value->type = size_type;
1777 }
1778
1779
1781 /* Generating bytecode from GDB expressions: general recursive thingy */
1782
1783 /* XXX: i18n */
1784 /* A gen_expr function written by a Gen-X'er guy.
1785 Append code for the subexpression of EXPR starting at *POS_P to AX. */
1786 void
1787 gen_expr (struct expression *exp, union exp_element **pc,
1788 struct agent_expr *ax, struct axs_value *value)
1789 {
1790 /* Used to hold the descriptions of operand expressions. */
1791 struct axs_value value1, value2, value3;
1792 enum exp_opcode op = (*pc)[0].opcode, op2;
1793 int if1, go1, if2, go2, end;
1794 struct type *int_type = builtin_type (exp->gdbarch)->builtin_int;
1795
1796 /* If we're looking at a constant expression, just push its value. */
1797 {
1798 struct value *v = maybe_const_expr (pc);
1799
1800 if (v)
1801 {
1802 ax_const_l (ax, value_as_long (v));
1803 value->kind = axs_rvalue;
1804 value->type = check_typedef (value_type (v));
1805 return;
1806 }
1807 }
1808
1809 /* Otherwise, go ahead and generate code for it. */
1810 switch (op)
1811 {
1812 /* Binary arithmetic operators. */
1813 case BINOP_ADD:
1814 case BINOP_SUB:
1815 case BINOP_MUL:
1816 case BINOP_DIV:
1817 case BINOP_REM:
1818 case BINOP_LSH:
1819 case BINOP_RSH:
1820 case BINOP_SUBSCRIPT:
1821 case BINOP_BITWISE_AND:
1822 case BINOP_BITWISE_IOR:
1823 case BINOP_BITWISE_XOR:
1824 case BINOP_EQUAL:
1825 case BINOP_NOTEQUAL:
1826 case BINOP_LESS:
1827 case BINOP_GTR:
1828 case BINOP_LEQ:
1829 case BINOP_GEQ:
1830 (*pc)++;
1831 gen_expr (exp, pc, ax, &value1);
1832 gen_usual_unary (exp, ax, &value1);
1833 gen_expr_binop_rest (exp, op, pc, ax, value, &value1, &value2);
1834 break;
1835
1836 case BINOP_LOGICAL_AND:
1837 (*pc)++;
1838 /* Generate the obvious sequence of tests and jumps. */
1839 gen_expr (exp, pc, ax, &value1);
1840 gen_usual_unary (exp, ax, &value1);
1841 if1 = ax_goto (ax, aop_if_goto);
1842 go1 = ax_goto (ax, aop_goto);
1843 ax_label (ax, if1, ax->len);
1844 gen_expr (exp, pc, ax, &value2);
1845 gen_usual_unary (exp, ax, &value2);
1846 if2 = ax_goto (ax, aop_if_goto);
1847 go2 = ax_goto (ax, aop_goto);
1848 ax_label (ax, if2, ax->len);
1849 ax_const_l (ax, 1);
1850 end = ax_goto (ax, aop_goto);
1851 ax_label (ax, go1, ax->len);
1852 ax_label (ax, go2, ax->len);
1853 ax_const_l (ax, 0);
1854 ax_label (ax, end, ax->len);
1855 value->kind = axs_rvalue;
1856 value->type = int_type;
1857 break;
1858
1859 case BINOP_LOGICAL_OR:
1860 (*pc)++;
1861 /* Generate the obvious sequence of tests and jumps. */
1862 gen_expr (exp, pc, ax, &value1);
1863 gen_usual_unary (exp, ax, &value1);
1864 if1 = ax_goto (ax, aop_if_goto);
1865 gen_expr (exp, pc, ax, &value2);
1866 gen_usual_unary (exp, ax, &value2);
1867 if2 = ax_goto (ax, aop_if_goto);
1868 ax_const_l (ax, 0);
1869 end = ax_goto (ax, aop_goto);
1870 ax_label (ax, if1, ax->len);
1871 ax_label (ax, if2, ax->len);
1872 ax_const_l (ax, 1);
1873 ax_label (ax, end, ax->len);
1874 value->kind = axs_rvalue;
1875 value->type = int_type;
1876 break;
1877
1878 case TERNOP_COND:
1879 (*pc)++;
1880 gen_expr (exp, pc, ax, &value1);
1881 gen_usual_unary (exp, ax, &value1);
1882 /* For (A ? B : C), it's easiest to generate subexpression
1883 bytecodes in order, but if_goto jumps on true, so we invert
1884 the sense of A. Then we can do B by dropping through, and
1885 jump to do C. */
1886 gen_logical_not (ax, &value1, int_type);
1887 if1 = ax_goto (ax, aop_if_goto);
1888 gen_expr (exp, pc, ax, &value2);
1889 gen_usual_unary (exp, ax, &value2);
1890 end = ax_goto (ax, aop_goto);
1891 ax_label (ax, if1, ax->len);
1892 gen_expr (exp, pc, ax, &value3);
1893 gen_usual_unary (exp, ax, &value3);
1894 ax_label (ax, end, ax->len);
1895 /* This is arbitary - what if B and C are incompatible types? */
1896 value->type = value2.type;
1897 value->kind = value2.kind;
1898 break;
1899
1900 case BINOP_ASSIGN:
1901 (*pc)++;
1902 if ((*pc)[0].opcode == OP_INTERNALVAR)
1903 {
1904 char *name = internalvar_name ((*pc)[1].internalvar);
1905 struct trace_state_variable *tsv;
1906
1907 (*pc) += 3;
1908 gen_expr (exp, pc, ax, value);
1909 tsv = find_trace_state_variable (name);
1910 if (tsv)
1911 {
1912 ax_tsv (ax, aop_setv, tsv->number);
1913 if (ax->tracing)
1914 ax_tsv (ax, aop_tracev, tsv->number);
1915 }
1916 else
1917 error (_("$%s is not a trace state variable, "
1918 "may not assign to it"), name);
1919 }
1920 else
1921 error (_("May only assign to trace state variables"));
1922 break;
1923
1924 case BINOP_ASSIGN_MODIFY:
1925 (*pc)++;
1926 op2 = (*pc)[0].opcode;
1927 (*pc)++;
1928 (*pc)++;
1929 if ((*pc)[0].opcode == OP_INTERNALVAR)
1930 {
1931 char *name = internalvar_name ((*pc)[1].internalvar);
1932 struct trace_state_variable *tsv;
1933
1934 (*pc) += 3;
1935 tsv = find_trace_state_variable (name);
1936 if (tsv)
1937 {
1938 /* The tsv will be the left half of the binary operation. */
1939 ax_tsv (ax, aop_getv, tsv->number);
1940 if (ax->tracing)
1941 ax_tsv (ax, aop_tracev, tsv->number);
1942 /* Trace state variables are always 64-bit integers. */
1943 value1.kind = axs_rvalue;
1944 value1.type = builtin_type (exp->gdbarch)->builtin_long_long;
1945 /* Now do right half of expression. */
1946 gen_expr_binop_rest (exp, op2, pc, ax, value, &value1, &value2);
1947 /* We have a result of the binary op, set the tsv. */
1948 ax_tsv (ax, aop_setv, tsv->number);
1949 if (ax->tracing)
1950 ax_tsv (ax, aop_tracev, tsv->number);
1951 }
1952 else
1953 error (_("$%s is not a trace state variable, "
1954 "may not assign to it"), name);
1955 }
1956 else
1957 error (_("May only assign to trace state variables"));
1958 break;
1959
1960 /* Note that we need to be a little subtle about generating code
1961 for comma. In C, we can do some optimizations here because
1962 we know the left operand is only being evaluated for effect.
1963 However, if the tracing kludge is in effect, then we always
1964 need to evaluate the left hand side fully, so that all the
1965 variables it mentions get traced. */
1966 case BINOP_COMMA:
1967 (*pc)++;
1968 gen_expr (exp, pc, ax, &value1);
1969 /* Don't just dispose of the left operand. We might be tracing,
1970 in which case we want to emit code to trace it if it's an
1971 lvalue. */
1972 gen_traced_pop (exp->gdbarch, ax, &value1);
1973 gen_expr (exp, pc, ax, value);
1974 /* It's the consumer's responsibility to trace the right operand. */
1975 break;
1976
1977 case OP_LONG: /* some integer constant */
1978 {
1979 struct type *type = (*pc)[1].type;
1980 LONGEST k = (*pc)[2].longconst;
1981
1982 (*pc) += 4;
1983 gen_int_literal (ax, value, k, type);
1984 }
1985 break;
1986
1987 case OP_VAR_VALUE:
1988 gen_var_ref (exp->gdbarch, ax, value, (*pc)[2].symbol);
1989
1990 if (value->optimized_out)
1991 error (_("`%s' has been optimized out, cannot use"),
1992 SYMBOL_PRINT_NAME ((*pc)[2].symbol));
1993
1994 (*pc) += 4;
1995 break;
1996
1997 case OP_REGISTER:
1998 {
1999 const char *name = &(*pc)[2].string;
2000 int reg;
2001
2002 (*pc) += 4 + BYTES_TO_EXP_ELEM ((*pc)[1].longconst + 1);
2003 reg = user_reg_map_name_to_regnum (exp->gdbarch, name, strlen (name));
2004 if (reg == -1)
2005 internal_error (__FILE__, __LINE__,
2006 _("Register $%s not available"), name);
2007 /* No support for tracing user registers yet. */
2008 if (reg >= gdbarch_num_regs (exp->gdbarch)
2009 + gdbarch_num_pseudo_regs (exp->gdbarch))
2010 error (_("'%s' is a user-register; "
2011 "GDB cannot yet trace user-register contents."),
2012 name);
2013 value->kind = axs_lvalue_register;
2014 value->u.reg = reg;
2015 value->type = register_type (exp->gdbarch, reg);
2016 }
2017 break;
2018
2019 case OP_INTERNALVAR:
2020 {
2021 struct internalvar *var = (*pc)[1].internalvar;
2022 const char *name = internalvar_name (var);
2023 struct trace_state_variable *tsv;
2024
2025 (*pc) += 3;
2026 tsv = find_trace_state_variable (name);
2027 if (tsv)
2028 {
2029 ax_tsv (ax, aop_getv, tsv->number);
2030 if (ax->tracing)
2031 ax_tsv (ax, aop_tracev, tsv->number);
2032 /* Trace state variables are always 64-bit integers. */
2033 value->kind = axs_rvalue;
2034 value->type = builtin_type (exp->gdbarch)->builtin_long_long;
2035 }
2036 else if (! compile_internalvar_to_ax (var, ax, value))
2037 error (_("$%s is not a trace state variable; GDB agent "
2038 "expressions cannot use convenience variables."), name);
2039 }
2040 break;
2041
2042 /* Weirdo operator: see comments for gen_repeat for details. */
2043 case BINOP_REPEAT:
2044 /* Note that gen_repeat handles its own argument evaluation. */
2045 (*pc)++;
2046 gen_repeat (exp, pc, ax, value);
2047 break;
2048
2049 case UNOP_CAST:
2050 {
2051 struct type *type = (*pc)[1].type;
2052
2053 (*pc) += 3;
2054 gen_expr (exp, pc, ax, value);
2055 gen_cast (ax, value, type);
2056 }
2057 break;
2058
2059 case UNOP_CAST_TYPE:
2060 {
2061 int offset;
2062 struct value *val;
2063 struct type *type;
2064
2065 ++*pc;
2066 offset = *pc - exp->elts;
2067 val = evaluate_subexp (NULL, exp, &offset, EVAL_AVOID_SIDE_EFFECTS);
2068 type = value_type (val);
2069 *pc = &exp->elts[offset];
2070
2071 gen_expr (exp, pc, ax, value);
2072 gen_cast (ax, value, type);
2073 }
2074 break;
2075
2076 case UNOP_MEMVAL:
2077 {
2078 struct type *type = check_typedef ((*pc)[1].type);
2079
2080 (*pc) += 3;
2081 gen_expr (exp, pc, ax, value);
2082
2083 /* If we have an axs_rvalue or an axs_lvalue_memory, then we
2084 already have the right value on the stack. For
2085 axs_lvalue_register, we must convert. */
2086 if (value->kind == axs_lvalue_register)
2087 require_rvalue (ax, value);
2088
2089 value->type = type;
2090 value->kind = axs_lvalue_memory;
2091 }
2092 break;
2093
2094 case UNOP_MEMVAL_TYPE:
2095 {
2096 int offset;
2097 struct value *val;
2098 struct type *type;
2099
2100 ++*pc;
2101 offset = *pc - exp->elts;
2102 val = evaluate_subexp (NULL, exp, &offset, EVAL_AVOID_SIDE_EFFECTS);
2103 type = value_type (val);
2104 *pc = &exp->elts[offset];
2105
2106 gen_expr (exp, pc, ax, value);
2107
2108 /* If we have an axs_rvalue or an axs_lvalue_memory, then we
2109 already have the right value on the stack. For
2110 axs_lvalue_register, we must convert. */
2111 if (value->kind == axs_lvalue_register)
2112 require_rvalue (ax, value);
2113
2114 value->type = type;
2115 value->kind = axs_lvalue_memory;
2116 }
2117 break;
2118
2119 case UNOP_PLUS:
2120 (*pc)++;
2121 /* + FOO is equivalent to 0 + FOO, which can be optimized. */
2122 gen_expr (exp, pc, ax, value);
2123 gen_usual_unary (exp, ax, value);
2124 break;
2125
2126 case UNOP_NEG:
2127 (*pc)++;
2128 /* -FOO is equivalent to 0 - FOO. */
2129 gen_int_literal (ax, &value1, 0,
2130 builtin_type (exp->gdbarch)->builtin_int);
2131 gen_usual_unary (exp, ax, &value1); /* shouldn't do much */
2132 gen_expr (exp, pc, ax, &value2);
2133 gen_usual_unary (exp, ax, &value2);
2134 gen_usual_arithmetic (exp, ax, &value1, &value2);
2135 gen_binop (ax, value, &value1, &value2, aop_sub, aop_sub, 1, "negation");
2136 break;
2137
2138 case UNOP_LOGICAL_NOT:
2139 (*pc)++;
2140 gen_expr (exp, pc, ax, value);
2141 gen_usual_unary (exp, ax, value);
2142 gen_logical_not (ax, value, int_type);
2143 break;
2144
2145 case UNOP_COMPLEMENT:
2146 (*pc)++;
2147 gen_expr (exp, pc, ax, value);
2148 gen_usual_unary (exp, ax, value);
2149 gen_integral_promotions (exp, ax, value);
2150 gen_complement (ax, value);
2151 break;
2152
2153 case UNOP_IND:
2154 (*pc)++;
2155 gen_expr (exp, pc, ax, value);
2156 gen_usual_unary (exp, ax, value);
2157 if (!pointer_type (value->type))
2158 error (_("Argument of unary `*' is not a pointer."));
2159 gen_deref (ax, value);
2160 break;
2161
2162 case UNOP_ADDR:
2163 (*pc)++;
2164 gen_expr (exp, pc, ax, value);
2165 gen_address_of (ax, value);
2166 break;
2167
2168 case UNOP_SIZEOF:
2169 (*pc)++;
2170 /* Notice that gen_sizeof handles its own operand, unlike most
2171 of the other unary operator functions. This is because we
2172 have to throw away the code we generate. */
2173 gen_sizeof (exp, pc, ax, value,
2174 builtin_type (exp->gdbarch)->builtin_int);
2175 break;
2176
2177 case STRUCTOP_STRUCT:
2178 case STRUCTOP_PTR:
2179 {
2180 int length = (*pc)[1].longconst;
2181 char *name = &(*pc)[2].string;
2182
2183 (*pc) += 4 + BYTES_TO_EXP_ELEM (length + 1);
2184 gen_expr (exp, pc, ax, value);
2185 if (op == STRUCTOP_STRUCT)
2186 gen_struct_ref (exp, ax, value, name, ".", "structure or union");
2187 else if (op == STRUCTOP_PTR)
2188 gen_struct_ref (exp, ax, value, name, "->",
2189 "pointer to a structure or union");
2190 else
2191 /* If this `if' chain doesn't handle it, then the case list
2192 shouldn't mention it, and we shouldn't be here. */
2193 internal_error (__FILE__, __LINE__,
2194 _("gen_expr: unhandled struct case"));
2195 }
2196 break;
2197
2198 case OP_THIS:
2199 {
2200 struct symbol *sym, *func;
2201 struct block *b;
2202 const struct language_defn *lang;
2203
2204 b = block_for_pc (ax->scope);
2205 func = block_linkage_function (b);
2206 lang = language_def (SYMBOL_LANGUAGE (func));
2207
2208 sym = lookup_language_this (lang, b);
2209 if (!sym)
2210 error (_("no `%s' found"), lang->la_name_of_this);
2211
2212 gen_var_ref (exp->gdbarch, ax, value, sym);
2213
2214 if (value->optimized_out)
2215 error (_("`%s' has been optimized out, cannot use"),
2216 SYMBOL_PRINT_NAME (sym));
2217
2218 (*pc) += 2;
2219 }
2220 break;
2221
2222 case OP_SCOPE:
2223 {
2224 struct type *type = (*pc)[1].type;
2225 int length = longest_to_int ((*pc)[2].longconst);
2226 char *name = &(*pc)[3].string;
2227 int found;
2228
2229 found = gen_aggregate_elt_ref (exp, ax, value, type, name,
2230 "?", "??");
2231 if (!found)
2232 error (_("There is no field named %s"), name);
2233 (*pc) += 5 + BYTES_TO_EXP_ELEM (length + 1);
2234 }
2235 break;
2236
2237 case OP_TYPE:
2238 case OP_TYPEOF:
2239 case OP_DECLTYPE:
2240 error (_("Attempt to use a type name as an expression."));
2241
2242 default:
2243 error (_("Unsupported operator %s (%d) in expression."),
2244 op_name (exp, op), op);
2245 }
2246 }
2247
2248 /* This handles the middle-to-right-side of code generation for binary
2249 expressions, which is shared between regular binary operations and
2250 assign-modify (+= and friends) expressions. */
2251
2252 static void
2253 gen_expr_binop_rest (struct expression *exp,
2254 enum exp_opcode op, union exp_element **pc,
2255 struct agent_expr *ax, struct axs_value *value,
2256 struct axs_value *value1, struct axs_value *value2)
2257 {
2258 struct type *int_type = builtin_type (exp->gdbarch)->builtin_int;
2259
2260 gen_expr (exp, pc, ax, value2);
2261 gen_usual_unary (exp, ax, value2);
2262 gen_usual_arithmetic (exp, ax, value1, value2);
2263 switch (op)
2264 {
2265 case BINOP_ADD:
2266 if (TYPE_CODE (value1->type) == TYPE_CODE_INT
2267 && pointer_type (value2->type))
2268 {
2269 /* Swap the values and proceed normally. */
2270 ax_simple (ax, aop_swap);
2271 gen_ptradd (ax, value, value2, value1);
2272 }
2273 else if (pointer_type (value1->type)
2274 && TYPE_CODE (value2->type) == TYPE_CODE_INT)
2275 gen_ptradd (ax, value, value1, value2);
2276 else
2277 gen_binop (ax, value, value1, value2,
2278 aop_add, aop_add, 1, "addition");
2279 break;
2280 case BINOP_SUB:
2281 if (pointer_type (value1->type)
2282 && TYPE_CODE (value2->type) == TYPE_CODE_INT)
2283 gen_ptrsub (ax,value, value1, value2);
2284 else if (pointer_type (value1->type)
2285 && pointer_type (value2->type))
2286 /* FIXME --- result type should be ptrdiff_t */
2287 gen_ptrdiff (ax, value, value1, value2,
2288 builtin_type (exp->gdbarch)->builtin_long);
2289 else
2290 gen_binop (ax, value, value1, value2,
2291 aop_sub, aop_sub, 1, "subtraction");
2292 break;
2293 case BINOP_MUL:
2294 gen_binop (ax, value, value1, value2,
2295 aop_mul, aop_mul, 1, "multiplication");
2296 break;
2297 case BINOP_DIV:
2298 gen_binop (ax, value, value1, value2,
2299 aop_div_signed, aop_div_unsigned, 1, "division");
2300 break;
2301 case BINOP_REM:
2302 gen_binop (ax, value, value1, value2,
2303 aop_rem_signed, aop_rem_unsigned, 1, "remainder");
2304 break;
2305 case BINOP_LSH:
2306 gen_binop (ax, value, value1, value2,
2307 aop_lsh, aop_lsh, 1, "left shift");
2308 break;
2309 case BINOP_RSH:
2310 gen_binop (ax, value, value1, value2,
2311 aop_rsh_signed, aop_rsh_unsigned, 1, "right shift");
2312 break;
2313 case BINOP_SUBSCRIPT:
2314 {
2315 struct type *type;
2316
2317 if (binop_types_user_defined_p (op, value1->type, value2->type))
2318 {
2319 error (_("cannot subscript requested type: "
2320 "cannot call user defined functions"));
2321 }
2322 else
2323 {
2324 /* If the user attempts to subscript something that is not
2325 an array or pointer type (like a plain int variable for
2326 example), then report this as an error. */
2327 type = check_typedef (value1->type);
2328 if (TYPE_CODE (type) != TYPE_CODE_ARRAY
2329 && TYPE_CODE (type) != TYPE_CODE_PTR)
2330 {
2331 if (TYPE_NAME (type))
2332 error (_("cannot subscript something of type `%s'"),
2333 TYPE_NAME (type));
2334 else
2335 error (_("cannot subscript requested type"));
2336 }
2337 }
2338
2339 if (!is_integral_type (value2->type))
2340 error (_("Argument to arithmetic operation "
2341 "not a number or boolean."));
2342
2343 gen_ptradd (ax, value, value1, value2);
2344 gen_deref (ax, value);
2345 break;
2346 }
2347 case BINOP_BITWISE_AND:
2348 gen_binop (ax, value, value1, value2,
2349 aop_bit_and, aop_bit_and, 0, "bitwise and");
2350 break;
2351
2352 case BINOP_BITWISE_IOR:
2353 gen_binop (ax, value, value1, value2,
2354 aop_bit_or, aop_bit_or, 0, "bitwise or");
2355 break;
2356
2357 case BINOP_BITWISE_XOR:
2358 gen_binop (ax, value, value1, value2,
2359 aop_bit_xor, aop_bit_xor, 0, "bitwise exclusive-or");
2360 break;
2361
2362 case BINOP_EQUAL:
2363 gen_equal (ax, value, value1, value2, int_type);
2364 break;
2365
2366 case BINOP_NOTEQUAL:
2367 gen_equal (ax, value, value1, value2, int_type);
2368 gen_logical_not (ax, value, int_type);
2369 break;
2370
2371 case BINOP_LESS:
2372 gen_less (ax, value, value1, value2, int_type);
2373 break;
2374
2375 case BINOP_GTR:
2376 ax_simple (ax, aop_swap);
2377 gen_less (ax, value, value1, value2, int_type);
2378 break;
2379
2380 case BINOP_LEQ:
2381 ax_simple (ax, aop_swap);
2382 gen_less (ax, value, value1, value2, int_type);
2383 gen_logical_not (ax, value, int_type);
2384 break;
2385
2386 case BINOP_GEQ:
2387 gen_less (ax, value, value1, value2, int_type);
2388 gen_logical_not (ax, value, int_type);
2389 break;
2390
2391 default:
2392 /* We should only list operators in the outer case statement
2393 that we actually handle in the inner case statement. */
2394 internal_error (__FILE__, __LINE__,
2395 _("gen_expr: op case sets don't match"));
2396 }
2397 }
2398
2399
2401 /* Given a single variable and a scope, generate bytecodes to trace
2402 its value. This is for use in situations where we have only a
2403 variable's name, and no parsed expression; for instance, when the
2404 name comes from a list of local variables of a function. */
2405
2406 struct agent_expr *
2407 gen_trace_for_var (CORE_ADDR scope, struct gdbarch *gdbarch,
2408 struct symbol *var, int trace_string)
2409 {
2410 struct cleanup *old_chain = 0;
2411 struct agent_expr *ax = new_agent_expr (gdbarch, scope);
2412 struct axs_value value;
2413
2414 old_chain = make_cleanup_free_agent_expr (ax);
2415
2416 ax->tracing = 1;
2417 ax->trace_string = trace_string;
2418 gen_var_ref (gdbarch, ax, &value, var);
2419
2420 /* If there is no actual variable to trace, flag it by returning
2421 an empty agent expression. */
2422 if (value.optimized_out)
2423 {
2424 do_cleanups (old_chain);
2425 return NULL;
2426 }
2427
2428 /* Make sure we record the final object, and get rid of it. */
2429 gen_traced_pop (gdbarch, ax, &value);
2430
2431 /* Oh, and terminate. */
2432 ax_simple (ax, aop_end);
2433
2434 /* We have successfully built the agent expr, so cancel the cleanup
2435 request. If we add more cleanups that we always want done, this
2436 will have to get more complicated. */
2437 discard_cleanups (old_chain);
2438 return ax;
2439 }
2440
2441 /* Generating bytecode from GDB expressions: driver */
2442
2443 /* Given a GDB expression EXPR, return bytecode to trace its value.
2444 The result will use the `trace' and `trace_quick' bytecodes to
2445 record the value of all memory touched by the expression. The
2446 caller can then use the ax_reqs function to discover which
2447 registers it relies upon. */
2448 struct agent_expr *
2449 gen_trace_for_expr (CORE_ADDR scope, struct expression *expr,
2450 int trace_string)
2451 {
2452 struct cleanup *old_chain = 0;
2453 struct agent_expr *ax = new_agent_expr (expr->gdbarch, scope);
2454 union exp_element *pc;
2455 struct axs_value value;
2456
2457 old_chain = make_cleanup_free_agent_expr (ax);
2458
2459 pc = expr->elts;
2460 ax->tracing = 1;
2461 ax->trace_string = trace_string;
2462 value.optimized_out = 0;
2463 gen_expr (expr, &pc, ax, &value);
2464
2465 /* Make sure we record the final object, and get rid of it. */
2466 gen_traced_pop (expr->gdbarch, ax, &value);
2467
2468 /* Oh, and terminate. */
2469 ax_simple (ax, aop_end);
2470
2471 /* We have successfully built the agent expr, so cancel the cleanup
2472 request. If we add more cleanups that we always want done, this
2473 will have to get more complicated. */
2474 discard_cleanups (old_chain);
2475 return ax;
2476 }
2477
2478 /* Given a GDB expression EXPR, return a bytecode sequence that will
2479 evaluate and return a result. The bytecodes will do a direct
2480 evaluation, using the current data on the target, rather than
2481 recording blocks of memory and registers for later use, as
2482 gen_trace_for_expr does. The generated bytecode sequence leaves
2483 the result of expression evaluation on the top of the stack. */
2484
2485 struct agent_expr *
2486 gen_eval_for_expr (CORE_ADDR scope, struct expression *expr)
2487 {
2488 struct cleanup *old_chain = 0;
2489 struct agent_expr *ax = new_agent_expr (expr->gdbarch, scope);
2490 union exp_element *pc;
2491 struct axs_value value;
2492
2493 old_chain = make_cleanup_free_agent_expr (ax);
2494
2495 pc = expr->elts;
2496 ax->tracing = 0;
2497 value.optimized_out = 0;
2498 gen_expr (expr, &pc, ax, &value);
2499
2500 require_rvalue (ax, &value);
2501
2502 /* Oh, and terminate. */
2503 ax_simple (ax, aop_end);
2504
2505 /* We have successfully built the agent expr, so cancel the cleanup
2506 request. If we add more cleanups that we always want done, this
2507 will have to get more complicated. */
2508 discard_cleanups (old_chain);
2509 return ax;
2510 }
2511
2512 struct agent_expr *
2513 gen_trace_for_return_address (CORE_ADDR scope, struct gdbarch *gdbarch,
2514 int trace_string)
2515 {
2516 struct cleanup *old_chain = 0;
2517 struct agent_expr *ax = new_agent_expr (gdbarch, scope);
2518 struct axs_value value;
2519
2520 old_chain = make_cleanup_free_agent_expr (ax);
2521
2522 ax->tracing = 1;
2523 ax->trace_string = trace_string;
2524
2525 gdbarch_gen_return_address (gdbarch, ax, &value, scope);
2526
2527 /* Make sure we record the final object, and get rid of it. */
2528 gen_traced_pop (gdbarch, ax, &value);
2529
2530 /* Oh, and terminate. */
2531 ax_simple (ax, aop_end);
2532
2533 /* We have successfully built the agent expr, so cancel the cleanup
2534 request. If we add more cleanups that we always want done, this
2535 will have to get more complicated. */
2536 discard_cleanups (old_chain);
2537 return ax;
2538 }
2539
2540 /* Given a collection of printf-style arguments, generate code to
2541 evaluate the arguments and pass everything to a special
2542 bytecode. */
2543
2544 struct agent_expr *
2545 gen_printf (CORE_ADDR scope, struct gdbarch *gdbarch,
2546 CORE_ADDR function, LONGEST channel,
2547 const char *format, int fmtlen,
2548 struct format_piece *frags,
2549 int nargs, struct expression **exprs)
2550 {
2551 struct cleanup *old_chain = 0;
2552 struct agent_expr *ax = new_agent_expr (gdbarch, scope);
2553 union exp_element *pc;
2554 struct axs_value value;
2555 int tem;
2556
2557 old_chain = make_cleanup_free_agent_expr (ax);
2558
2559 /* We're computing values, not doing side effects. */
2560 ax->tracing = 0;
2561
2562 /* Evaluate and push the args on the stack in reverse order,
2563 for simplicity of collecting them on the target side. */
2564 for (tem = nargs - 1; tem >= 0; --tem)
2565 {
2566 pc = exprs[tem]->elts;
2567 value.optimized_out = 0;
2568 gen_expr (exprs[tem], &pc, ax, &value);
2569 require_rvalue (ax, &value);
2570 }
2571
2572 /* Push function and channel. */
2573 ax_const_l (ax, channel);
2574 ax_const_l (ax, function);
2575
2576 /* Issue the printf bytecode proper. */
2577 ax_simple (ax, aop_printf);
2578 ax_simple (ax, nargs);
2579 ax_string (ax, format, fmtlen);
2580
2581 /* And terminate. */
2582 ax_simple (ax, aop_end);
2583
2584 /* We have successfully built the agent expr, so cancel the cleanup
2585 request. If we add more cleanups that we always want done, this
2586 will have to get more complicated. */
2587 discard_cleanups (old_chain);
2588
2589 return ax;
2590 }
2591
2592 static void
2593 agent_eval_command_one (const char *exp, int eval, CORE_ADDR pc)
2594 {
2595 struct cleanup *old_chain = 0;
2596 struct expression *expr;
2597 struct agent_expr *agent;
2598 const char *arg;
2599 int trace_string = 0;
2600
2601 if (!eval)
2602 {
2603 if (*exp == '/')
2604 exp = decode_agent_options (exp, &trace_string);
2605 }
2606
2607 arg = exp;
2608 if (!eval && strcmp (arg, "$_ret") == 0)
2609 {
2610 agent = gen_trace_for_return_address (pc, get_current_arch (),
2611 trace_string);
2612 old_chain = make_cleanup_free_agent_expr (agent);
2613 }
2614 else
2615 {
2616 expr = parse_exp_1 (&arg, pc, block_for_pc (pc), 0);
2617 old_chain = make_cleanup (free_current_contents, &expr);
2618 if (eval)
2619 {
2620 gdb_assert (trace_string == 0);
2621 agent = gen_eval_for_expr (pc, expr);
2622 }
2623 else
2624 agent = gen_trace_for_expr (pc, expr, trace_string);
2625 make_cleanup_free_agent_expr (agent);
2626 }
2627
2628 ax_reqs (agent);
2629 ax_print (gdb_stdout, agent);
2630
2631 /* It would be nice to call ax_reqs here to gather some general info
2632 about the expression, and then print out the result. */
2633
2634 do_cleanups (old_chain);
2635 dont_repeat ();
2636 }
2637
2638 static void
2639 agent_command_1 (char *exp, int eval)
2640 {
2641 /* We don't deal with overlay debugging at the moment. We need to
2642 think more carefully about this. If you copy this code into
2643 another command, change the error message; the user shouldn't
2644 have to know anything about agent expressions. */
2645 if (overlay_debugging)
2646 error (_("GDB can't do agent expression translation with overlays."));
2647
2648 if (exp == 0)
2649 error_no_arg (_("expression to translate"));
2650
2651 if (check_for_argument (&exp, "-at", sizeof ("-at") - 1))
2652 {
2653 struct linespec_result canonical;
2654 int ix;
2655 struct linespec_sals *iter;
2656 struct cleanup *old_chain;
2657
2658 exp = skip_spaces (exp);
2659 init_linespec_result (&canonical);
2660 decode_line_full (&exp, DECODE_LINE_FUNFIRSTLINE,
2661 (struct symtab *) NULL, 0, &canonical,
2662 NULL, NULL);
2663 old_chain = make_cleanup_destroy_linespec_result (&canonical);
2664 exp = skip_spaces (exp);
2665 if (exp[0] == ',')
2666 {
2667 exp++;
2668 exp = skip_spaces (exp);
2669 }
2670 for (ix = 0; VEC_iterate (linespec_sals, canonical.sals, ix, iter); ++ix)
2671 {
2672 int i;
2673
2674 for (i = 0; i < iter->sals.nelts; i++)
2675 agent_eval_command_one (exp, eval, iter->sals.sals[i].pc);
2676 }
2677 do_cleanups (old_chain);
2678 }
2679 else
2680 agent_eval_command_one (exp, eval, get_frame_pc (get_current_frame ()));
2681
2682 dont_repeat ();
2683 }
2684
2685 static void
2686 agent_command (char *exp, int from_tty)
2687 {
2688 agent_command_1 (exp, 0);
2689 }
2690
2691 /* Parse the given expression, compile it into an agent expression
2692 that does direct evaluation, and display the resulting
2693 expression. */
2694
2695 static void
2696 agent_eval_command (char *exp, int from_tty)
2697 {
2698 agent_command_1 (exp, 1);
2699 }
2700
2701 /* Parse the given expression, compile it into an agent expression
2702 that does a printf, and display the resulting expression. */
2703
2704 static void
2705 maint_agent_printf_command (char *exp, int from_tty)
2706 {
2707 struct cleanup *old_chain = 0;
2708 struct expression *expr;
2709 struct expression *argvec[100];
2710 struct agent_expr *agent;
2711 struct frame_info *fi = get_current_frame (); /* need current scope */
2712 const char *cmdrest;
2713 const char *format_start, *format_end;
2714 struct format_piece *fpieces;
2715 int nargs;
2716
2717 /* We don't deal with overlay debugging at the moment. We need to
2718 think more carefully about this. If you copy this code into
2719 another command, change the error message; the user shouldn't
2720 have to know anything about agent expressions. */
2721 if (overlay_debugging)
2722 error (_("GDB can't do agent expression translation with overlays."));
2723
2724 if (exp == 0)
2725 error_no_arg (_("expression to translate"));
2726
2727 cmdrest = exp;
2728
2729 cmdrest = skip_spaces_const (cmdrest);
2730
2731 if (*cmdrest++ != '"')
2732 error (_("Must start with a format string."));
2733
2734 format_start = cmdrest;
2735
2736 fpieces = parse_format_string (&cmdrest);
2737
2738 old_chain = make_cleanup (free_format_pieces_cleanup, &fpieces);
2739
2740 format_end = cmdrest;
2741
2742 if (*cmdrest++ != '"')
2743 error (_("Bad format string, non-terminated '\"'."));
2744
2745 cmdrest = skip_spaces_const (cmdrest);
2746
2747 if (*cmdrest != ',' && *cmdrest != 0)
2748 error (_("Invalid argument syntax"));
2749
2750 if (*cmdrest == ',')
2751 cmdrest++;
2752 cmdrest = skip_spaces_const (cmdrest);
2753
2754 nargs = 0;
2755 while (*cmdrest != '\0')
2756 {
2757 const char *cmd1;
2758
2759 cmd1 = cmdrest;
2760 expr = parse_exp_1 (&cmd1, 0, (struct block *) 0, 1);
2761 argvec[nargs] = expr;
2762 ++nargs;
2763 cmdrest = cmd1;
2764 if (*cmdrest == ',')
2765 ++cmdrest;
2766 /* else complain? */
2767 }
2768
2769
2770 agent = gen_printf (get_frame_pc (fi), get_current_arch (), 0, 0,
2771 format_start, format_end - format_start,
2772 fpieces, nargs, argvec);
2773 make_cleanup_free_agent_expr (agent);
2774 ax_reqs (agent);
2775 ax_print (gdb_stdout, agent);
2776
2777 /* It would be nice to call ax_reqs here to gather some general info
2778 about the expression, and then print out the result. */
2779
2780 do_cleanups (old_chain);
2781 dont_repeat ();
2782 }
2783
2784
2786 /* Initialization code. */
2787
2788 void _initialize_ax_gdb (void);
2789 void
2790 _initialize_ax_gdb (void)
2791 {
2792 add_cmd ("agent", class_maintenance, agent_command,
2793 _("\
2794 Translate an expression into remote agent bytecode for tracing.\n\
2795 Usage: maint agent [-at location,] EXPRESSION\n\
2796 If -at is given, generate remote agent bytecode for this location.\n\
2797 If not, generate remote agent bytecode for current frame pc address."),
2798 &maintenancelist);
2799
2800 add_cmd ("agent-eval", class_maintenance, agent_eval_command,
2801 _("\
2802 Translate an expression into remote agent bytecode for evaluation.\n\
2803 Usage: maint agent-eval [-at location,] EXPRESSION\n\
2804 If -at is given, generate remote agent bytecode for this location.\n\
2805 If not, generate remote agent bytecode for current frame pc address."),
2806 &maintenancelist);
2807
2808 add_cmd ("agent-printf", class_maintenance, maint_agent_printf_command,
2809 _("Translate an expression into remote "
2810 "agent bytecode for evaluation and display the bytecodes."),
2811 &maintenancelist);
2812 }
2813