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Commit | Line | Data |
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cfc14b3a MK |
1 | /* Frame unwinder for frames with DWARF Call Frame Information. |
2 | ||
7b6bb8da | 3 | Copyright (C) 2003, 2004, 2005, 2007, 2008, 2009, 2010, 2011 |
0fb0cc75 | 4 | Free Software Foundation, Inc. |
cfc14b3a MK |
5 | |
6 | Contributed by Mark Kettenis. | |
7 | ||
8 | This file is part of GDB. | |
9 | ||
10 | This program is free software; you can redistribute it and/or modify | |
11 | it under the terms of the GNU General Public License as published by | |
a9762ec7 | 12 | the Free Software Foundation; either version 3 of the License, or |
cfc14b3a MK |
13 | (at your option) any later version. |
14 | ||
15 | This program is distributed in the hope that it will be useful, | |
16 | but WITHOUT ANY WARRANTY; without even the implied warranty of | |
17 | MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the | |
18 | GNU General Public License for more details. | |
19 | ||
20 | You should have received a copy of the GNU General Public License | |
a9762ec7 | 21 | along with this program. If not, see <http://www.gnu.org/licenses/>. */ |
cfc14b3a MK |
22 | |
23 | #include "defs.h" | |
24 | #include "dwarf2expr.h" | |
fa8f86ff | 25 | #include "dwarf2.h" |
cfc14b3a MK |
26 | #include "frame.h" |
27 | #include "frame-base.h" | |
28 | #include "frame-unwind.h" | |
29 | #include "gdbcore.h" | |
30 | #include "gdbtypes.h" | |
31 | #include "symtab.h" | |
32 | #include "objfiles.h" | |
33 | #include "regcache.h" | |
f2da6b3a | 34 | #include "value.h" |
cfc14b3a MK |
35 | |
36 | #include "gdb_assert.h" | |
37 | #include "gdb_string.h" | |
38 | ||
6896c0c7 | 39 | #include "complaints.h" |
cfc14b3a | 40 | #include "dwarf2-frame.h" |
9f6f94ff TT |
41 | #include "ax.h" |
42 | #include "dwarf2loc.h" | |
8fbca658 | 43 | #include "exceptions.h" |
cfc14b3a | 44 | |
ae0d2f24 UW |
45 | struct comp_unit; |
46 | ||
cfc14b3a MK |
47 | /* Call Frame Information (CFI). */ |
48 | ||
49 | /* Common Information Entry (CIE). */ | |
50 | ||
51 | struct dwarf2_cie | |
52 | { | |
ae0d2f24 UW |
53 | /* Computation Unit for this CIE. */ |
54 | struct comp_unit *unit; | |
55 | ||
cfc14b3a MK |
56 | /* Offset into the .debug_frame section where this CIE was found. |
57 | Used to identify this CIE. */ | |
58 | ULONGEST cie_pointer; | |
59 | ||
60 | /* Constant that is factored out of all advance location | |
61 | instructions. */ | |
62 | ULONGEST code_alignment_factor; | |
63 | ||
64 | /* Constants that is factored out of all offset instructions. */ | |
65 | LONGEST data_alignment_factor; | |
66 | ||
67 | /* Return address column. */ | |
68 | ULONGEST return_address_register; | |
69 | ||
70 | /* Instruction sequence to initialize a register set. */ | |
852483bc MK |
71 | gdb_byte *initial_instructions; |
72 | gdb_byte *end; | |
cfc14b3a | 73 | |
303b6f5d DJ |
74 | /* Saved augmentation, in case it's needed later. */ |
75 | char *augmentation; | |
76 | ||
cfc14b3a | 77 | /* Encoding of addresses. */ |
852483bc | 78 | gdb_byte encoding; |
cfc14b3a | 79 | |
ae0d2f24 UW |
80 | /* Target address size in bytes. */ |
81 | int addr_size; | |
82 | ||
0963b4bd | 83 | /* Target pointer size in bytes. */ |
8da614df CV |
84 | int ptr_size; |
85 | ||
7131cb6e RH |
86 | /* True if a 'z' augmentation existed. */ |
87 | unsigned char saw_z_augmentation; | |
88 | ||
56c987f6 AO |
89 | /* True if an 'S' augmentation existed. */ |
90 | unsigned char signal_frame; | |
91 | ||
303b6f5d DJ |
92 | /* The version recorded in the CIE. */ |
93 | unsigned char version; | |
2dc7f7b3 TT |
94 | |
95 | /* The segment size. */ | |
96 | unsigned char segment_size; | |
b01c8410 | 97 | }; |
303b6f5d | 98 | |
b01c8410 PP |
99 | struct dwarf2_cie_table |
100 | { | |
101 | int num_entries; | |
102 | struct dwarf2_cie **entries; | |
cfc14b3a MK |
103 | }; |
104 | ||
105 | /* Frame Description Entry (FDE). */ | |
106 | ||
107 | struct dwarf2_fde | |
108 | { | |
109 | /* CIE for this FDE. */ | |
110 | struct dwarf2_cie *cie; | |
111 | ||
112 | /* First location associated with this FDE. */ | |
113 | CORE_ADDR initial_location; | |
114 | ||
115 | /* Number of bytes of program instructions described by this FDE. */ | |
116 | CORE_ADDR address_range; | |
117 | ||
118 | /* Instruction sequence. */ | |
852483bc MK |
119 | gdb_byte *instructions; |
120 | gdb_byte *end; | |
cfc14b3a | 121 | |
4bf8967c AS |
122 | /* True if this FDE is read from a .eh_frame instead of a .debug_frame |
123 | section. */ | |
124 | unsigned char eh_frame_p; | |
b01c8410 | 125 | }; |
4bf8967c | 126 | |
b01c8410 PP |
127 | struct dwarf2_fde_table |
128 | { | |
129 | int num_entries; | |
130 | struct dwarf2_fde **entries; | |
cfc14b3a MK |
131 | }; |
132 | ||
ae0d2f24 UW |
133 | /* A minimal decoding of DWARF2 compilation units. We only decode |
134 | what's needed to get to the call frame information. */ | |
135 | ||
136 | struct comp_unit | |
137 | { | |
138 | /* Keep the bfd convenient. */ | |
139 | bfd *abfd; | |
140 | ||
141 | struct objfile *objfile; | |
142 | ||
ae0d2f24 UW |
143 | /* Pointer to the .debug_frame section loaded into memory. */ |
144 | gdb_byte *dwarf_frame_buffer; | |
145 | ||
146 | /* Length of the loaded .debug_frame section. */ | |
c098b58b | 147 | bfd_size_type dwarf_frame_size; |
ae0d2f24 UW |
148 | |
149 | /* Pointer to the .debug_frame section. */ | |
150 | asection *dwarf_frame_section; | |
151 | ||
152 | /* Base for DW_EH_PE_datarel encodings. */ | |
153 | bfd_vma dbase; | |
154 | ||
155 | /* Base for DW_EH_PE_textrel encodings. */ | |
156 | bfd_vma tbase; | |
157 | }; | |
158 | ||
ac56253d TT |
159 | static struct dwarf2_fde *dwarf2_frame_find_fde (CORE_ADDR *pc, |
160 | CORE_ADDR *out_offset); | |
4fc771b8 DJ |
161 | |
162 | static int dwarf2_frame_adjust_regnum (struct gdbarch *gdbarch, int regnum, | |
163 | int eh_frame_p); | |
ae0d2f24 UW |
164 | |
165 | static CORE_ADDR read_encoded_value (struct comp_unit *unit, gdb_byte encoding, | |
0d45f56e | 166 | int ptr_len, const gdb_byte *buf, |
ae0d2f24 UW |
167 | unsigned int *bytes_read_ptr, |
168 | CORE_ADDR func_base); | |
cfc14b3a MK |
169 | \f |
170 | ||
171 | /* Structure describing a frame state. */ | |
172 | ||
173 | struct dwarf2_frame_state | |
174 | { | |
175 | /* Each register save state can be described in terms of a CFA slot, | |
176 | another register, or a location expression. */ | |
177 | struct dwarf2_frame_state_reg_info | |
178 | { | |
05cbe71a | 179 | struct dwarf2_frame_state_reg *reg; |
cfc14b3a MK |
180 | int num_regs; |
181 | ||
2fd481e1 PP |
182 | LONGEST cfa_offset; |
183 | ULONGEST cfa_reg; | |
184 | enum { | |
185 | CFA_UNSET, | |
186 | CFA_REG_OFFSET, | |
187 | CFA_EXP | |
188 | } cfa_how; | |
0d45f56e | 189 | const gdb_byte *cfa_exp; |
2fd481e1 | 190 | |
cfc14b3a MK |
191 | /* Used to implement DW_CFA_remember_state. */ |
192 | struct dwarf2_frame_state_reg_info *prev; | |
193 | } regs; | |
194 | ||
cfc14b3a MK |
195 | /* The PC described by the current frame state. */ |
196 | CORE_ADDR pc; | |
197 | ||
198 | /* Initial register set from the CIE. | |
199 | Used to implement DW_CFA_restore. */ | |
200 | struct dwarf2_frame_state_reg_info initial; | |
201 | ||
202 | /* The information we care about from the CIE. */ | |
203 | LONGEST data_align; | |
204 | ULONGEST code_align; | |
205 | ULONGEST retaddr_column; | |
303b6f5d DJ |
206 | |
207 | /* Flags for known producer quirks. */ | |
208 | ||
209 | /* The ARM compilers, in DWARF2 mode, assume that DW_CFA_def_cfa | |
210 | and DW_CFA_def_cfa_offset takes a factored offset. */ | |
211 | int armcc_cfa_offsets_sf; | |
212 | ||
213 | /* The ARM compilers, in DWARF2 or DWARF3 mode, may assume that | |
214 | the CFA is defined as REG - OFFSET rather than REG + OFFSET. */ | |
215 | int armcc_cfa_offsets_reversed; | |
cfc14b3a MK |
216 | }; |
217 | ||
218 | /* Store the length the expression for the CFA in the `cfa_reg' field, | |
219 | which is unused in that case. */ | |
220 | #define cfa_exp_len cfa_reg | |
221 | ||
f57d151a | 222 | /* Assert that the register set RS is large enough to store gdbarch_num_regs |
cfc14b3a MK |
223 | columns. If necessary, enlarge the register set. */ |
224 | ||
225 | static void | |
226 | dwarf2_frame_state_alloc_regs (struct dwarf2_frame_state_reg_info *rs, | |
227 | int num_regs) | |
228 | { | |
229 | size_t size = sizeof (struct dwarf2_frame_state_reg); | |
230 | ||
231 | if (num_regs <= rs->num_regs) | |
232 | return; | |
233 | ||
234 | rs->reg = (struct dwarf2_frame_state_reg *) | |
235 | xrealloc (rs->reg, num_regs * size); | |
236 | ||
237 | /* Initialize newly allocated registers. */ | |
2473a4a9 | 238 | memset (rs->reg + rs->num_regs, 0, (num_regs - rs->num_regs) * size); |
cfc14b3a MK |
239 | rs->num_regs = num_regs; |
240 | } | |
241 | ||
242 | /* Copy the register columns in register set RS into newly allocated | |
243 | memory and return a pointer to this newly created copy. */ | |
244 | ||
245 | static struct dwarf2_frame_state_reg * | |
246 | dwarf2_frame_state_copy_regs (struct dwarf2_frame_state_reg_info *rs) | |
247 | { | |
d10891d4 | 248 | size_t size = rs->num_regs * sizeof (struct dwarf2_frame_state_reg); |
cfc14b3a MK |
249 | struct dwarf2_frame_state_reg *reg; |
250 | ||
251 | reg = (struct dwarf2_frame_state_reg *) xmalloc (size); | |
252 | memcpy (reg, rs->reg, size); | |
253 | ||
254 | return reg; | |
255 | } | |
256 | ||
257 | /* Release the memory allocated to register set RS. */ | |
258 | ||
259 | static void | |
260 | dwarf2_frame_state_free_regs (struct dwarf2_frame_state_reg_info *rs) | |
261 | { | |
262 | if (rs) | |
263 | { | |
264 | dwarf2_frame_state_free_regs (rs->prev); | |
265 | ||
266 | xfree (rs->reg); | |
267 | xfree (rs); | |
268 | } | |
269 | } | |
270 | ||
271 | /* Release the memory allocated to the frame state FS. */ | |
272 | ||
273 | static void | |
274 | dwarf2_frame_state_free (void *p) | |
275 | { | |
276 | struct dwarf2_frame_state *fs = p; | |
277 | ||
278 | dwarf2_frame_state_free_regs (fs->initial.prev); | |
279 | dwarf2_frame_state_free_regs (fs->regs.prev); | |
280 | xfree (fs->initial.reg); | |
281 | xfree (fs->regs.reg); | |
282 | xfree (fs); | |
283 | } | |
284 | \f | |
285 | ||
286 | /* Helper functions for execute_stack_op. */ | |
287 | ||
288 | static CORE_ADDR | |
289 | read_reg (void *baton, int reg) | |
290 | { | |
4a4e5149 DJ |
291 | struct frame_info *this_frame = (struct frame_info *) baton; |
292 | struct gdbarch *gdbarch = get_frame_arch (this_frame); | |
cfc14b3a | 293 | int regnum; |
852483bc | 294 | gdb_byte *buf; |
cfc14b3a | 295 | |
ad010def | 296 | regnum = gdbarch_dwarf2_reg_to_regnum (gdbarch, reg); |
cfc14b3a | 297 | |
852483bc | 298 | buf = alloca (register_size (gdbarch, regnum)); |
4a4e5149 | 299 | get_frame_register (this_frame, regnum, buf); |
f2da6b3a DJ |
300 | |
301 | /* Convert the register to an integer. This returns a LONGEST | |
302 | rather than a CORE_ADDR, but unpack_pointer does the same thing | |
303 | under the covers, and this makes more sense for non-pointer | |
304 | registers. Maybe read_reg and the associated interfaces should | |
305 | deal with "struct value" instead of CORE_ADDR. */ | |
306 | return unpack_long (register_type (gdbarch, regnum), buf); | |
cfc14b3a MK |
307 | } |
308 | ||
309 | static void | |
852483bc | 310 | read_mem (void *baton, gdb_byte *buf, CORE_ADDR addr, size_t len) |
cfc14b3a MK |
311 | { |
312 | read_memory (addr, buf, len); | |
313 | } | |
314 | ||
315 | static void | |
0d45f56e | 316 | no_get_frame_base (void *baton, const gdb_byte **start, size_t *length) |
cfc14b3a MK |
317 | { |
318 | internal_error (__FILE__, __LINE__, | |
e2e0b3e5 | 319 | _("Support for DW_OP_fbreg is unimplemented")); |
cfc14b3a MK |
320 | } |
321 | ||
e7802207 TT |
322 | /* Helper function for execute_stack_op. */ |
323 | ||
324 | static CORE_ADDR | |
325 | no_get_frame_cfa (void *baton) | |
326 | { | |
327 | internal_error (__FILE__, __LINE__, | |
328 | _("Support for DW_OP_call_frame_cfa is unimplemented")); | |
329 | } | |
330 | ||
8cf6f0b1 TT |
331 | /* Helper function for execute_stack_op. */ |
332 | ||
333 | static CORE_ADDR | |
334 | no_get_frame_pc (void *baton) | |
335 | { | |
3e43a32a MS |
336 | internal_error (__FILE__, __LINE__, _("\ |
337 | Support for DW_OP_GNU_implicit_pointer is unimplemented")); | |
8cf6f0b1 TT |
338 | } |
339 | ||
cfc14b3a MK |
340 | static CORE_ADDR |
341 | no_get_tls_address (void *baton, CORE_ADDR offset) | |
342 | { | |
3e43a32a MS |
343 | internal_error (__FILE__, __LINE__, _("\ |
344 | Support for DW_OP_GNU_push_tls_address is unimplemented")); | |
cfc14b3a MK |
345 | } |
346 | ||
5c631832 JK |
347 | /* Helper function for execute_stack_op. */ |
348 | ||
349 | static void | |
350 | no_dwarf_call (struct dwarf_expr_context *ctx, size_t die_offset) | |
351 | { | |
352 | internal_error (__FILE__, __LINE__, | |
353 | _("Support for DW_OP_call* is invalid in CFI")); | |
354 | } | |
355 | ||
8a9b8146 TT |
356 | /* Helper function for execute_stack_op. */ |
357 | ||
358 | static struct type * | |
359 | no_base_type (struct dwarf_expr_context *ctx, size_t die) | |
360 | { | |
361 | error (_("Support for typed DWARF is not supported in CFI")); | |
362 | } | |
363 | ||
a6a5a945 LM |
364 | /* Execute the required actions for both the DW_CFA_restore and |
365 | DW_CFA_restore_extended instructions. */ | |
366 | static void | |
367 | dwarf2_restore_rule (struct gdbarch *gdbarch, ULONGEST reg_num, | |
368 | struct dwarf2_frame_state *fs, int eh_frame_p) | |
369 | { | |
370 | ULONGEST reg; | |
371 | ||
372 | gdb_assert (fs->initial.reg); | |
373 | reg = dwarf2_frame_adjust_regnum (gdbarch, reg_num, eh_frame_p); | |
374 | dwarf2_frame_state_alloc_regs (&fs->regs, reg + 1); | |
375 | ||
376 | /* Check if this register was explicitly initialized in the | |
377 | CIE initial instructions. If not, default the rule to | |
378 | UNSPECIFIED. */ | |
379 | if (reg < fs->initial.num_regs) | |
380 | fs->regs.reg[reg] = fs->initial.reg[reg]; | |
381 | else | |
382 | fs->regs.reg[reg].how = DWARF2_FRAME_REG_UNSPECIFIED; | |
383 | ||
384 | if (fs->regs.reg[reg].how == DWARF2_FRAME_REG_UNSPECIFIED) | |
385 | complaint (&symfile_complaints, _("\ | |
386 | incomplete CFI data; DW_CFA_restore unspecified\n\ | |
5af949e3 | 387 | register %s (#%d) at %s"), |
a6a5a945 LM |
388 | gdbarch_register_name |
389 | (gdbarch, gdbarch_dwarf2_reg_to_regnum (gdbarch, reg)), | |
390 | gdbarch_dwarf2_reg_to_regnum (gdbarch, reg), | |
5af949e3 | 391 | paddress (gdbarch, fs->pc)); |
a6a5a945 LM |
392 | } |
393 | ||
cfc14b3a | 394 | static CORE_ADDR |
0d45f56e | 395 | execute_stack_op (const gdb_byte *exp, ULONGEST len, int addr_size, |
ac56253d TT |
396 | CORE_ADDR offset, struct frame_info *this_frame, |
397 | CORE_ADDR initial, int initial_in_stack_memory) | |
cfc14b3a MK |
398 | { |
399 | struct dwarf_expr_context *ctx; | |
400 | CORE_ADDR result; | |
4a227398 | 401 | struct cleanup *old_chain; |
cfc14b3a MK |
402 | |
403 | ctx = new_dwarf_expr_context (); | |
4a227398 TT |
404 | old_chain = make_cleanup_free_dwarf_expr_context (ctx); |
405 | ||
f7fd4728 | 406 | ctx->gdbarch = get_frame_arch (this_frame); |
ae0d2f24 | 407 | ctx->addr_size = addr_size; |
ac56253d | 408 | ctx->offset = offset; |
4a4e5149 | 409 | ctx->baton = this_frame; |
cfc14b3a MK |
410 | ctx->read_reg = read_reg; |
411 | ctx->read_mem = read_mem; | |
412 | ctx->get_frame_base = no_get_frame_base; | |
e7802207 | 413 | ctx->get_frame_cfa = no_get_frame_cfa; |
8cf6f0b1 | 414 | ctx->get_frame_pc = no_get_frame_pc; |
cfc14b3a | 415 | ctx->get_tls_address = no_get_tls_address; |
5c631832 | 416 | ctx->dwarf_call = no_dwarf_call; |
8a9b8146 | 417 | ctx->get_base_type = no_base_type; |
cfc14b3a | 418 | |
8a9b8146 | 419 | dwarf_expr_push_address (ctx, initial, initial_in_stack_memory); |
cfc14b3a | 420 | dwarf_expr_eval (ctx, exp, len); |
cfc14b3a | 421 | |
f2c7657e UW |
422 | if (ctx->location == DWARF_VALUE_MEMORY) |
423 | result = dwarf_expr_fetch_address (ctx, 0); | |
424 | else if (ctx->location == DWARF_VALUE_REGISTER) | |
8a9b8146 | 425 | result = read_reg (this_frame, value_as_long (dwarf_expr_fetch (ctx, 0))); |
f2c7657e | 426 | else |
cec03d70 TT |
427 | { |
428 | /* This is actually invalid DWARF, but if we ever do run across | |
429 | it somehow, we might as well support it. So, instead, report | |
430 | it as unimplemented. */ | |
3e43a32a MS |
431 | error (_("\ |
432 | Not implemented: computing unwound register using explicit value operator")); | |
cec03d70 | 433 | } |
cfc14b3a | 434 | |
4a227398 | 435 | do_cleanups (old_chain); |
cfc14b3a MK |
436 | |
437 | return result; | |
438 | } | |
439 | \f | |
440 | ||
441 | static void | |
0d45f56e | 442 | execute_cfa_program (struct dwarf2_fde *fde, const gdb_byte *insn_ptr, |
9f6f94ff TT |
443 | const gdb_byte *insn_end, struct gdbarch *gdbarch, |
444 | CORE_ADDR pc, struct dwarf2_frame_state *fs) | |
cfc14b3a | 445 | { |
ae0d2f24 | 446 | int eh_frame_p = fde->eh_frame_p; |
cfc14b3a | 447 | int bytes_read; |
e17a4113 | 448 | enum bfd_endian byte_order = gdbarch_byte_order (gdbarch); |
cfc14b3a MK |
449 | |
450 | while (insn_ptr < insn_end && fs->pc <= pc) | |
451 | { | |
852483bc | 452 | gdb_byte insn = *insn_ptr++; |
cfc14b3a MK |
453 | ULONGEST utmp, reg; |
454 | LONGEST offset; | |
455 | ||
456 | if ((insn & 0xc0) == DW_CFA_advance_loc) | |
457 | fs->pc += (insn & 0x3f) * fs->code_align; | |
458 | else if ((insn & 0xc0) == DW_CFA_offset) | |
459 | { | |
460 | reg = insn & 0x3f; | |
4fc771b8 | 461 | reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p); |
cfc14b3a MK |
462 | insn_ptr = read_uleb128 (insn_ptr, insn_end, &utmp); |
463 | offset = utmp * fs->data_align; | |
464 | dwarf2_frame_state_alloc_regs (&fs->regs, reg + 1); | |
05cbe71a | 465 | fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_OFFSET; |
cfc14b3a MK |
466 | fs->regs.reg[reg].loc.offset = offset; |
467 | } | |
468 | else if ((insn & 0xc0) == DW_CFA_restore) | |
469 | { | |
cfc14b3a | 470 | reg = insn & 0x3f; |
a6a5a945 | 471 | dwarf2_restore_rule (gdbarch, reg, fs, eh_frame_p); |
cfc14b3a MK |
472 | } |
473 | else | |
474 | { | |
475 | switch (insn) | |
476 | { | |
477 | case DW_CFA_set_loc: | |
ae0d2f24 | 478 | fs->pc = read_encoded_value (fde->cie->unit, fde->cie->encoding, |
8da614df | 479 | fde->cie->ptr_size, insn_ptr, |
ae0d2f24 UW |
480 | &bytes_read, fde->initial_location); |
481 | /* Apply the objfile offset for relocatable objects. */ | |
482 | fs->pc += ANOFFSET (fde->cie->unit->objfile->section_offsets, | |
483 | SECT_OFF_TEXT (fde->cie->unit->objfile)); | |
cfc14b3a MK |
484 | insn_ptr += bytes_read; |
485 | break; | |
486 | ||
487 | case DW_CFA_advance_loc1: | |
e17a4113 | 488 | utmp = extract_unsigned_integer (insn_ptr, 1, byte_order); |
cfc14b3a MK |
489 | fs->pc += utmp * fs->code_align; |
490 | insn_ptr++; | |
491 | break; | |
492 | case DW_CFA_advance_loc2: | |
e17a4113 | 493 | utmp = extract_unsigned_integer (insn_ptr, 2, byte_order); |
cfc14b3a MK |
494 | fs->pc += utmp * fs->code_align; |
495 | insn_ptr += 2; | |
496 | break; | |
497 | case DW_CFA_advance_loc4: | |
e17a4113 | 498 | utmp = extract_unsigned_integer (insn_ptr, 4, byte_order); |
cfc14b3a MK |
499 | fs->pc += utmp * fs->code_align; |
500 | insn_ptr += 4; | |
501 | break; | |
502 | ||
503 | case DW_CFA_offset_extended: | |
504 | insn_ptr = read_uleb128 (insn_ptr, insn_end, ®); | |
4fc771b8 | 505 | reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p); |
cfc14b3a MK |
506 | insn_ptr = read_uleb128 (insn_ptr, insn_end, &utmp); |
507 | offset = utmp * fs->data_align; | |
508 | dwarf2_frame_state_alloc_regs (&fs->regs, reg + 1); | |
05cbe71a | 509 | fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_OFFSET; |
cfc14b3a MK |
510 | fs->regs.reg[reg].loc.offset = offset; |
511 | break; | |
512 | ||
513 | case DW_CFA_restore_extended: | |
cfc14b3a | 514 | insn_ptr = read_uleb128 (insn_ptr, insn_end, ®); |
a6a5a945 | 515 | dwarf2_restore_rule (gdbarch, reg, fs, eh_frame_p); |
cfc14b3a MK |
516 | break; |
517 | ||
518 | case DW_CFA_undefined: | |
519 | insn_ptr = read_uleb128 (insn_ptr, insn_end, ®); | |
4fc771b8 | 520 | reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p); |
cfc14b3a | 521 | dwarf2_frame_state_alloc_regs (&fs->regs, reg + 1); |
05cbe71a | 522 | fs->regs.reg[reg].how = DWARF2_FRAME_REG_UNDEFINED; |
cfc14b3a MK |
523 | break; |
524 | ||
525 | case DW_CFA_same_value: | |
526 | insn_ptr = read_uleb128 (insn_ptr, insn_end, ®); | |
4fc771b8 | 527 | reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p); |
cfc14b3a | 528 | dwarf2_frame_state_alloc_regs (&fs->regs, reg + 1); |
05cbe71a | 529 | fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAME_VALUE; |
cfc14b3a MK |
530 | break; |
531 | ||
532 | case DW_CFA_register: | |
533 | insn_ptr = read_uleb128 (insn_ptr, insn_end, ®); | |
4fc771b8 | 534 | reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p); |
cfc14b3a | 535 | insn_ptr = read_uleb128 (insn_ptr, insn_end, &utmp); |
4fc771b8 | 536 | utmp = dwarf2_frame_adjust_regnum (gdbarch, utmp, eh_frame_p); |
cfc14b3a | 537 | dwarf2_frame_state_alloc_regs (&fs->regs, reg + 1); |
05cbe71a | 538 | fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_REG; |
cfc14b3a MK |
539 | fs->regs.reg[reg].loc.reg = utmp; |
540 | break; | |
541 | ||
542 | case DW_CFA_remember_state: | |
543 | { | |
544 | struct dwarf2_frame_state_reg_info *new_rs; | |
545 | ||
546 | new_rs = XMALLOC (struct dwarf2_frame_state_reg_info); | |
547 | *new_rs = fs->regs; | |
548 | fs->regs.reg = dwarf2_frame_state_copy_regs (&fs->regs); | |
549 | fs->regs.prev = new_rs; | |
550 | } | |
551 | break; | |
552 | ||
553 | case DW_CFA_restore_state: | |
554 | { | |
555 | struct dwarf2_frame_state_reg_info *old_rs = fs->regs.prev; | |
556 | ||
50ea7769 MK |
557 | if (old_rs == NULL) |
558 | { | |
e2e0b3e5 | 559 | complaint (&symfile_complaints, _("\ |
5af949e3 UW |
560 | bad CFI data; mismatched DW_CFA_restore_state at %s"), |
561 | paddress (gdbarch, fs->pc)); | |
50ea7769 MK |
562 | } |
563 | else | |
564 | { | |
565 | xfree (fs->regs.reg); | |
566 | fs->regs = *old_rs; | |
567 | xfree (old_rs); | |
568 | } | |
cfc14b3a MK |
569 | } |
570 | break; | |
571 | ||
572 | case DW_CFA_def_cfa: | |
2fd481e1 | 573 | insn_ptr = read_uleb128 (insn_ptr, insn_end, &fs->regs.cfa_reg); |
cfc14b3a | 574 | insn_ptr = read_uleb128 (insn_ptr, insn_end, &utmp); |
303b6f5d DJ |
575 | |
576 | if (fs->armcc_cfa_offsets_sf) | |
577 | utmp *= fs->data_align; | |
578 | ||
2fd481e1 PP |
579 | fs->regs.cfa_offset = utmp; |
580 | fs->regs.cfa_how = CFA_REG_OFFSET; | |
cfc14b3a MK |
581 | break; |
582 | ||
583 | case DW_CFA_def_cfa_register: | |
2fd481e1 PP |
584 | insn_ptr = read_uleb128 (insn_ptr, insn_end, &fs->regs.cfa_reg); |
585 | fs->regs.cfa_reg = dwarf2_frame_adjust_regnum (gdbarch, | |
586 | fs->regs.cfa_reg, | |
587 | eh_frame_p); | |
588 | fs->regs.cfa_how = CFA_REG_OFFSET; | |
cfc14b3a MK |
589 | break; |
590 | ||
591 | case DW_CFA_def_cfa_offset: | |
852483bc | 592 | insn_ptr = read_uleb128 (insn_ptr, insn_end, &utmp); |
303b6f5d DJ |
593 | |
594 | if (fs->armcc_cfa_offsets_sf) | |
595 | utmp *= fs->data_align; | |
596 | ||
2fd481e1 | 597 | fs->regs.cfa_offset = utmp; |
cfc14b3a MK |
598 | /* cfa_how deliberately not set. */ |
599 | break; | |
600 | ||
a8504492 MK |
601 | case DW_CFA_nop: |
602 | break; | |
603 | ||
cfc14b3a | 604 | case DW_CFA_def_cfa_expression: |
2fd481e1 PP |
605 | insn_ptr = read_uleb128 (insn_ptr, insn_end, |
606 | &fs->regs.cfa_exp_len); | |
607 | fs->regs.cfa_exp = insn_ptr; | |
608 | fs->regs.cfa_how = CFA_EXP; | |
609 | insn_ptr += fs->regs.cfa_exp_len; | |
cfc14b3a MK |
610 | break; |
611 | ||
612 | case DW_CFA_expression: | |
613 | insn_ptr = read_uleb128 (insn_ptr, insn_end, ®); | |
4fc771b8 | 614 | reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p); |
cfc14b3a MK |
615 | dwarf2_frame_state_alloc_regs (&fs->regs, reg + 1); |
616 | insn_ptr = read_uleb128 (insn_ptr, insn_end, &utmp); | |
617 | fs->regs.reg[reg].loc.exp = insn_ptr; | |
618 | fs->regs.reg[reg].exp_len = utmp; | |
05cbe71a | 619 | fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_EXP; |
cfc14b3a MK |
620 | insn_ptr += utmp; |
621 | break; | |
622 | ||
a8504492 MK |
623 | case DW_CFA_offset_extended_sf: |
624 | insn_ptr = read_uleb128 (insn_ptr, insn_end, ®); | |
4fc771b8 | 625 | reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p); |
a8504492 | 626 | insn_ptr = read_sleb128 (insn_ptr, insn_end, &offset); |
f6da8dd8 | 627 | offset *= fs->data_align; |
a8504492 | 628 | dwarf2_frame_state_alloc_regs (&fs->regs, reg + 1); |
05cbe71a | 629 | fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_OFFSET; |
a8504492 MK |
630 | fs->regs.reg[reg].loc.offset = offset; |
631 | break; | |
632 | ||
46ea248b AO |
633 | case DW_CFA_val_offset: |
634 | insn_ptr = read_uleb128 (insn_ptr, insn_end, ®); | |
635 | dwarf2_frame_state_alloc_regs (&fs->regs, reg + 1); | |
636 | insn_ptr = read_uleb128 (insn_ptr, insn_end, &utmp); | |
637 | offset = utmp * fs->data_align; | |
638 | fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_VAL_OFFSET; | |
639 | fs->regs.reg[reg].loc.offset = offset; | |
640 | break; | |
641 | ||
642 | case DW_CFA_val_offset_sf: | |
643 | insn_ptr = read_uleb128 (insn_ptr, insn_end, ®); | |
644 | dwarf2_frame_state_alloc_regs (&fs->regs, reg + 1); | |
645 | insn_ptr = read_sleb128 (insn_ptr, insn_end, &offset); | |
646 | offset *= fs->data_align; | |
647 | fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_VAL_OFFSET; | |
648 | fs->regs.reg[reg].loc.offset = offset; | |
649 | break; | |
650 | ||
651 | case DW_CFA_val_expression: | |
652 | insn_ptr = read_uleb128 (insn_ptr, insn_end, ®); | |
653 | dwarf2_frame_state_alloc_regs (&fs->regs, reg + 1); | |
654 | insn_ptr = read_uleb128 (insn_ptr, insn_end, &utmp); | |
655 | fs->regs.reg[reg].loc.exp = insn_ptr; | |
656 | fs->regs.reg[reg].exp_len = utmp; | |
657 | fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_VAL_EXP; | |
658 | insn_ptr += utmp; | |
659 | break; | |
660 | ||
a8504492 | 661 | case DW_CFA_def_cfa_sf: |
2fd481e1 PP |
662 | insn_ptr = read_uleb128 (insn_ptr, insn_end, &fs->regs.cfa_reg); |
663 | fs->regs.cfa_reg = dwarf2_frame_adjust_regnum (gdbarch, | |
664 | fs->regs.cfa_reg, | |
665 | eh_frame_p); | |
a8504492 | 666 | insn_ptr = read_sleb128 (insn_ptr, insn_end, &offset); |
2fd481e1 PP |
667 | fs->regs.cfa_offset = offset * fs->data_align; |
668 | fs->regs.cfa_how = CFA_REG_OFFSET; | |
a8504492 MK |
669 | break; |
670 | ||
671 | case DW_CFA_def_cfa_offset_sf: | |
672 | insn_ptr = read_sleb128 (insn_ptr, insn_end, &offset); | |
2fd481e1 | 673 | fs->regs.cfa_offset = offset * fs->data_align; |
a8504492 | 674 | /* cfa_how deliberately not set. */ |
cfc14b3a MK |
675 | break; |
676 | ||
a77f4086 MK |
677 | case DW_CFA_GNU_window_save: |
678 | /* This is SPARC-specific code, and contains hard-coded | |
679 | constants for the register numbering scheme used by | |
680 | GCC. Rather than having a architecture-specific | |
681 | operation that's only ever used by a single | |
682 | architecture, we provide the implementation here. | |
683 | Incidentally that's what GCC does too in its | |
684 | unwinder. */ | |
685 | { | |
4a4e5149 | 686 | int size = register_size (gdbarch, 0); |
9a619af0 | 687 | |
a77f4086 MK |
688 | dwarf2_frame_state_alloc_regs (&fs->regs, 32); |
689 | for (reg = 8; reg < 16; reg++) | |
690 | { | |
691 | fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_REG; | |
692 | fs->regs.reg[reg].loc.reg = reg + 16; | |
693 | } | |
694 | for (reg = 16; reg < 32; reg++) | |
695 | { | |
696 | fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_OFFSET; | |
697 | fs->regs.reg[reg].loc.offset = (reg - 16) * size; | |
698 | } | |
699 | } | |
700 | break; | |
701 | ||
cfc14b3a MK |
702 | case DW_CFA_GNU_args_size: |
703 | /* Ignored. */ | |
704 | insn_ptr = read_uleb128 (insn_ptr, insn_end, &utmp); | |
705 | break; | |
706 | ||
58894217 JK |
707 | case DW_CFA_GNU_negative_offset_extended: |
708 | insn_ptr = read_uleb128 (insn_ptr, insn_end, ®); | |
4fc771b8 | 709 | reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p); |
58894217 JK |
710 | insn_ptr = read_uleb128 (insn_ptr, insn_end, &offset); |
711 | offset *= fs->data_align; | |
712 | dwarf2_frame_state_alloc_regs (&fs->regs, reg + 1); | |
713 | fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_OFFSET; | |
714 | fs->regs.reg[reg].loc.offset = -offset; | |
715 | break; | |
716 | ||
cfc14b3a | 717 | default: |
3e43a32a MS |
718 | internal_error (__FILE__, __LINE__, |
719 | _("Unknown CFI encountered.")); | |
cfc14b3a MK |
720 | } |
721 | } | |
722 | } | |
723 | ||
724 | /* Don't allow remember/restore between CIE and FDE programs. */ | |
725 | dwarf2_frame_state_free_regs (fs->regs.prev); | |
726 | fs->regs.prev = NULL; | |
727 | } | |
8f22cb90 | 728 | \f |
cfc14b3a | 729 | |
8f22cb90 | 730 | /* Architecture-specific operations. */ |
cfc14b3a | 731 | |
8f22cb90 MK |
732 | /* Per-architecture data key. */ |
733 | static struct gdbarch_data *dwarf2_frame_data; | |
734 | ||
735 | struct dwarf2_frame_ops | |
736 | { | |
737 | /* Pre-initialize the register state REG for register REGNUM. */ | |
aff37fc1 DM |
738 | void (*init_reg) (struct gdbarch *, int, struct dwarf2_frame_state_reg *, |
739 | struct frame_info *); | |
3ed09a32 | 740 | |
4a4e5149 | 741 | /* Check whether the THIS_FRAME is a signal trampoline. */ |
3ed09a32 | 742 | int (*signal_frame_p) (struct gdbarch *, struct frame_info *); |
4bf8967c | 743 | |
4fc771b8 DJ |
744 | /* Convert .eh_frame register number to DWARF register number, or |
745 | adjust .debug_frame register number. */ | |
746 | int (*adjust_regnum) (struct gdbarch *, int, int); | |
cfc14b3a MK |
747 | }; |
748 | ||
8f22cb90 MK |
749 | /* Default architecture-specific register state initialization |
750 | function. */ | |
751 | ||
752 | static void | |
753 | dwarf2_frame_default_init_reg (struct gdbarch *gdbarch, int regnum, | |
aff37fc1 | 754 | struct dwarf2_frame_state_reg *reg, |
4a4e5149 | 755 | struct frame_info *this_frame) |
8f22cb90 MK |
756 | { |
757 | /* If we have a register that acts as a program counter, mark it as | |
758 | a destination for the return address. If we have a register that | |
759 | serves as the stack pointer, arrange for it to be filled with the | |
760 | call frame address (CFA). The other registers are marked as | |
761 | unspecified. | |
762 | ||
763 | We copy the return address to the program counter, since many | |
764 | parts in GDB assume that it is possible to get the return address | |
765 | by unwinding the program counter register. However, on ISA's | |
766 | with a dedicated return address register, the CFI usually only | |
767 | contains information to unwind that return address register. | |
768 | ||
769 | The reason we're treating the stack pointer special here is | |
770 | because in many cases GCC doesn't emit CFI for the stack pointer | |
771 | and implicitly assumes that it is equal to the CFA. This makes | |
772 | some sense since the DWARF specification (version 3, draft 8, | |
773 | p. 102) says that: | |
774 | ||
775 | "Typically, the CFA is defined to be the value of the stack | |
776 | pointer at the call site in the previous frame (which may be | |
777 | different from its value on entry to the current frame)." | |
778 | ||
779 | However, this isn't true for all platforms supported by GCC | |
780 | (e.g. IBM S/390 and zSeries). Those architectures should provide | |
781 | their own architecture-specific initialization function. */ | |
05cbe71a | 782 | |
ad010def | 783 | if (regnum == gdbarch_pc_regnum (gdbarch)) |
8f22cb90 | 784 | reg->how = DWARF2_FRAME_REG_RA; |
ad010def | 785 | else if (regnum == gdbarch_sp_regnum (gdbarch)) |
8f22cb90 MK |
786 | reg->how = DWARF2_FRAME_REG_CFA; |
787 | } | |
05cbe71a | 788 | |
8f22cb90 | 789 | /* Return a default for the architecture-specific operations. */ |
05cbe71a | 790 | |
8f22cb90 | 791 | static void * |
030f20e1 | 792 | dwarf2_frame_init (struct obstack *obstack) |
8f22cb90 MK |
793 | { |
794 | struct dwarf2_frame_ops *ops; | |
795 | ||
030f20e1 | 796 | ops = OBSTACK_ZALLOC (obstack, struct dwarf2_frame_ops); |
8f22cb90 MK |
797 | ops->init_reg = dwarf2_frame_default_init_reg; |
798 | return ops; | |
799 | } | |
05cbe71a | 800 | |
8f22cb90 MK |
801 | /* Set the architecture-specific register state initialization |
802 | function for GDBARCH to INIT_REG. */ | |
803 | ||
804 | void | |
805 | dwarf2_frame_set_init_reg (struct gdbarch *gdbarch, | |
806 | void (*init_reg) (struct gdbarch *, int, | |
aff37fc1 DM |
807 | struct dwarf2_frame_state_reg *, |
808 | struct frame_info *)) | |
8f22cb90 | 809 | { |
030f20e1 | 810 | struct dwarf2_frame_ops *ops = gdbarch_data (gdbarch, dwarf2_frame_data); |
8f22cb90 | 811 | |
8f22cb90 MK |
812 | ops->init_reg = init_reg; |
813 | } | |
814 | ||
815 | /* Pre-initialize the register state REG for register REGNUM. */ | |
05cbe71a MK |
816 | |
817 | static void | |
818 | dwarf2_frame_init_reg (struct gdbarch *gdbarch, int regnum, | |
aff37fc1 | 819 | struct dwarf2_frame_state_reg *reg, |
4a4e5149 | 820 | struct frame_info *this_frame) |
05cbe71a | 821 | { |
030f20e1 | 822 | struct dwarf2_frame_ops *ops = gdbarch_data (gdbarch, dwarf2_frame_data); |
8f22cb90 | 823 | |
4a4e5149 | 824 | ops->init_reg (gdbarch, regnum, reg, this_frame); |
05cbe71a | 825 | } |
3ed09a32 DJ |
826 | |
827 | /* Set the architecture-specific signal trampoline recognition | |
828 | function for GDBARCH to SIGNAL_FRAME_P. */ | |
829 | ||
830 | void | |
831 | dwarf2_frame_set_signal_frame_p (struct gdbarch *gdbarch, | |
832 | int (*signal_frame_p) (struct gdbarch *, | |
833 | struct frame_info *)) | |
834 | { | |
835 | struct dwarf2_frame_ops *ops = gdbarch_data (gdbarch, dwarf2_frame_data); | |
836 | ||
837 | ops->signal_frame_p = signal_frame_p; | |
838 | } | |
839 | ||
840 | /* Query the architecture-specific signal frame recognizer for | |
4a4e5149 | 841 | THIS_FRAME. */ |
3ed09a32 DJ |
842 | |
843 | static int | |
844 | dwarf2_frame_signal_frame_p (struct gdbarch *gdbarch, | |
4a4e5149 | 845 | struct frame_info *this_frame) |
3ed09a32 DJ |
846 | { |
847 | struct dwarf2_frame_ops *ops = gdbarch_data (gdbarch, dwarf2_frame_data); | |
848 | ||
849 | if (ops->signal_frame_p == NULL) | |
850 | return 0; | |
4a4e5149 | 851 | return ops->signal_frame_p (gdbarch, this_frame); |
3ed09a32 | 852 | } |
4bf8967c | 853 | |
4fc771b8 DJ |
854 | /* Set the architecture-specific adjustment of .eh_frame and .debug_frame |
855 | register numbers. */ | |
4bf8967c AS |
856 | |
857 | void | |
4fc771b8 DJ |
858 | dwarf2_frame_set_adjust_regnum (struct gdbarch *gdbarch, |
859 | int (*adjust_regnum) (struct gdbarch *, | |
860 | int, int)) | |
4bf8967c AS |
861 | { |
862 | struct dwarf2_frame_ops *ops = gdbarch_data (gdbarch, dwarf2_frame_data); | |
863 | ||
4fc771b8 | 864 | ops->adjust_regnum = adjust_regnum; |
4bf8967c AS |
865 | } |
866 | ||
4fc771b8 DJ |
867 | /* Translate a .eh_frame register to DWARF register, or adjust a .debug_frame |
868 | register. */ | |
4bf8967c | 869 | |
4fc771b8 | 870 | static int |
3e43a32a MS |
871 | dwarf2_frame_adjust_regnum (struct gdbarch *gdbarch, |
872 | int regnum, int eh_frame_p) | |
4bf8967c AS |
873 | { |
874 | struct dwarf2_frame_ops *ops = gdbarch_data (gdbarch, dwarf2_frame_data); | |
875 | ||
4fc771b8 | 876 | if (ops->adjust_regnum == NULL) |
4bf8967c | 877 | return regnum; |
4fc771b8 | 878 | return ops->adjust_regnum (gdbarch, regnum, eh_frame_p); |
4bf8967c | 879 | } |
303b6f5d DJ |
880 | |
881 | static void | |
882 | dwarf2_frame_find_quirks (struct dwarf2_frame_state *fs, | |
883 | struct dwarf2_fde *fde) | |
884 | { | |
303b6f5d DJ |
885 | struct symtab *s; |
886 | ||
887 | s = find_pc_symtab (fs->pc); | |
a6c727b2 | 888 | if (s == NULL) |
303b6f5d DJ |
889 | return; |
890 | ||
a6c727b2 DJ |
891 | if (producer_is_realview (s->producer)) |
892 | { | |
893 | if (fde->cie->version == 1) | |
894 | fs->armcc_cfa_offsets_sf = 1; | |
895 | ||
896 | if (fde->cie->version == 1) | |
897 | fs->armcc_cfa_offsets_reversed = 1; | |
898 | ||
899 | /* The reversed offset problem is present in some compilers | |
900 | using DWARF3, but it was eventually fixed. Check the ARM | |
901 | defined augmentations, which are in the format "armcc" followed | |
902 | by a list of one-character options. The "+" option means | |
903 | this problem is fixed (no quirk needed). If the armcc | |
904 | augmentation is missing, the quirk is needed. */ | |
905 | if (fde->cie->version == 3 | |
906 | && (strncmp (fde->cie->augmentation, "armcc", 5) != 0 | |
907 | || strchr (fde->cie->augmentation + 5, '+') == NULL)) | |
908 | fs->armcc_cfa_offsets_reversed = 1; | |
909 | ||
910 | return; | |
911 | } | |
303b6f5d | 912 | } |
8f22cb90 MK |
913 | \f |
914 | ||
9f6f94ff TT |
915 | void |
916 | dwarf2_compile_cfa_to_ax (struct agent_expr *expr, struct axs_value *loc, | |
917 | struct gdbarch *gdbarch, | |
918 | CORE_ADDR pc, | |
919 | struct dwarf2_per_cu_data *data) | |
920 | { | |
921 | const int num_regs = gdbarch_num_regs (gdbarch) | |
922 | + gdbarch_num_pseudo_regs (gdbarch); | |
923 | struct dwarf2_fde *fde; | |
924 | CORE_ADDR text_offset, cfa; | |
925 | struct dwarf2_frame_state fs; | |
926 | int addr_size; | |
927 | ||
928 | memset (&fs, 0, sizeof (struct dwarf2_frame_state)); | |
929 | ||
930 | fs.pc = pc; | |
931 | ||
932 | /* Find the correct FDE. */ | |
933 | fde = dwarf2_frame_find_fde (&fs.pc, &text_offset); | |
934 | if (fde == NULL) | |
935 | error (_("Could not compute CFA; needed to translate this expression")); | |
936 | ||
937 | /* Extract any interesting information from the CIE. */ | |
938 | fs.data_align = fde->cie->data_alignment_factor; | |
939 | fs.code_align = fde->cie->code_alignment_factor; | |
940 | fs.retaddr_column = fde->cie->return_address_register; | |
941 | addr_size = fde->cie->addr_size; | |
942 | ||
943 | /* Check for "quirks" - known bugs in producers. */ | |
944 | dwarf2_frame_find_quirks (&fs, fde); | |
945 | ||
946 | /* First decode all the insns in the CIE. */ | |
947 | execute_cfa_program (fde, fde->cie->initial_instructions, | |
948 | fde->cie->end, gdbarch, pc, &fs); | |
949 | ||
950 | /* Save the initialized register set. */ | |
951 | fs.initial = fs.regs; | |
952 | fs.initial.reg = dwarf2_frame_state_copy_regs (&fs.regs); | |
953 | ||
954 | /* Then decode the insns in the FDE up to our target PC. */ | |
955 | execute_cfa_program (fde, fde->instructions, fde->end, gdbarch, pc, &fs); | |
956 | ||
957 | /* Calculate the CFA. */ | |
958 | switch (fs.regs.cfa_how) | |
959 | { | |
960 | case CFA_REG_OFFSET: | |
961 | { | |
962 | int regnum = gdbarch_dwarf2_reg_to_regnum (gdbarch, fs.regs.cfa_reg); | |
963 | ||
964 | if (regnum == -1) | |
965 | error (_("Unable to access DWARF register number %d"), | |
966 | (int) fs.regs.cfa_reg); /* FIXME */ | |
967 | ax_reg (expr, regnum); | |
968 | ||
969 | if (fs.regs.cfa_offset != 0) | |
970 | { | |
971 | if (fs.armcc_cfa_offsets_reversed) | |
972 | ax_const_l (expr, -fs.regs.cfa_offset); | |
973 | else | |
974 | ax_const_l (expr, fs.regs.cfa_offset); | |
975 | ax_simple (expr, aop_add); | |
976 | } | |
977 | } | |
978 | break; | |
979 | ||
980 | case CFA_EXP: | |
981 | ax_const_l (expr, text_offset); | |
982 | dwarf2_compile_expr_to_ax (expr, loc, gdbarch, addr_size, | |
983 | fs.regs.cfa_exp, | |
984 | fs.regs.cfa_exp + fs.regs.cfa_exp_len, | |
985 | data); | |
986 | break; | |
987 | ||
988 | default: | |
989 | internal_error (__FILE__, __LINE__, _("Unknown CFA rule.")); | |
990 | } | |
991 | } | |
992 | ||
993 | \f | |
8f22cb90 MK |
994 | struct dwarf2_frame_cache |
995 | { | |
996 | /* DWARF Call Frame Address. */ | |
997 | CORE_ADDR cfa; | |
998 | ||
8fbca658 PA |
999 | /* Set if the return address column was marked as unavailable |
1000 | (required non-collected memory or registers to compute). */ | |
1001 | int unavailable_retaddr; | |
1002 | ||
0228dfb9 DJ |
1003 | /* Set if the return address column was marked as undefined. */ |
1004 | int undefined_retaddr; | |
1005 | ||
8f22cb90 MK |
1006 | /* Saved registers, indexed by GDB register number, not by DWARF |
1007 | register number. */ | |
1008 | struct dwarf2_frame_state_reg *reg; | |
8d5a9abc MK |
1009 | |
1010 | /* Return address register. */ | |
1011 | struct dwarf2_frame_state_reg retaddr_reg; | |
ae0d2f24 UW |
1012 | |
1013 | /* Target address size in bytes. */ | |
1014 | int addr_size; | |
ac56253d TT |
1015 | |
1016 | /* The .text offset. */ | |
1017 | CORE_ADDR text_offset; | |
8f22cb90 | 1018 | }; |
05cbe71a | 1019 | |
b9362cc7 | 1020 | static struct dwarf2_frame_cache * |
4a4e5149 | 1021 | dwarf2_frame_cache (struct frame_info *this_frame, void **this_cache) |
cfc14b3a MK |
1022 | { |
1023 | struct cleanup *old_chain; | |
4a4e5149 | 1024 | struct gdbarch *gdbarch = get_frame_arch (this_frame); |
ad010def UW |
1025 | const int num_regs = gdbarch_num_regs (gdbarch) |
1026 | + gdbarch_num_pseudo_regs (gdbarch); | |
cfc14b3a MK |
1027 | struct dwarf2_frame_cache *cache; |
1028 | struct dwarf2_frame_state *fs; | |
1029 | struct dwarf2_fde *fde; | |
8fbca658 | 1030 | volatile struct gdb_exception ex; |
cfc14b3a MK |
1031 | |
1032 | if (*this_cache) | |
1033 | return *this_cache; | |
1034 | ||
1035 | /* Allocate a new cache. */ | |
1036 | cache = FRAME_OBSTACK_ZALLOC (struct dwarf2_frame_cache); | |
1037 | cache->reg = FRAME_OBSTACK_CALLOC (num_regs, struct dwarf2_frame_state_reg); | |
8fbca658 | 1038 | *this_cache = cache; |
cfc14b3a MK |
1039 | |
1040 | /* Allocate and initialize the frame state. */ | |
8fbca658 | 1041 | fs = XZALLOC (struct dwarf2_frame_state); |
cfc14b3a MK |
1042 | old_chain = make_cleanup (dwarf2_frame_state_free, fs); |
1043 | ||
1044 | /* Unwind the PC. | |
1045 | ||
4a4e5149 | 1046 | Note that if the next frame is never supposed to return (i.e. a call |
cfc14b3a | 1047 | to abort), the compiler might optimize away the instruction at |
4a4e5149 | 1048 | its return address. As a result the return address will |
cfc14b3a | 1049 | point at some random instruction, and the CFI for that |
e4e9607c | 1050 | instruction is probably worthless to us. GCC's unwinder solves |
cfc14b3a MK |
1051 | this problem by substracting 1 from the return address to get an |
1052 | address in the middle of a presumed call instruction (or the | |
1053 | instruction in the associated delay slot). This should only be | |
1054 | done for "normal" frames and not for resume-type frames (signal | |
e4e9607c | 1055 | handlers, sentinel frames, dummy frames). The function |
ad1193e7 | 1056 | get_frame_address_in_block does just this. It's not clear how |
e4e9607c MK |
1057 | reliable the method is though; there is the potential for the |
1058 | register state pre-call being different to that on return. */ | |
4a4e5149 | 1059 | fs->pc = get_frame_address_in_block (this_frame); |
cfc14b3a MK |
1060 | |
1061 | /* Find the correct FDE. */ | |
ac56253d | 1062 | fde = dwarf2_frame_find_fde (&fs->pc, &cache->text_offset); |
cfc14b3a MK |
1063 | gdb_assert (fde != NULL); |
1064 | ||
1065 | /* Extract any interesting information from the CIE. */ | |
1066 | fs->data_align = fde->cie->data_alignment_factor; | |
1067 | fs->code_align = fde->cie->code_alignment_factor; | |
1068 | fs->retaddr_column = fde->cie->return_address_register; | |
ae0d2f24 | 1069 | cache->addr_size = fde->cie->addr_size; |
cfc14b3a | 1070 | |
303b6f5d DJ |
1071 | /* Check for "quirks" - known bugs in producers. */ |
1072 | dwarf2_frame_find_quirks (fs, fde); | |
1073 | ||
cfc14b3a | 1074 | /* First decode all the insns in the CIE. */ |
ae0d2f24 | 1075 | execute_cfa_program (fde, fde->cie->initial_instructions, |
9f6f94ff | 1076 | fde->cie->end, gdbarch, get_frame_pc (this_frame), fs); |
cfc14b3a MK |
1077 | |
1078 | /* Save the initialized register set. */ | |
1079 | fs->initial = fs->regs; | |
1080 | fs->initial.reg = dwarf2_frame_state_copy_regs (&fs->regs); | |
1081 | ||
1082 | /* Then decode the insns in the FDE up to our target PC. */ | |
9f6f94ff TT |
1083 | execute_cfa_program (fde, fde->instructions, fde->end, gdbarch, |
1084 | get_frame_pc (this_frame), fs); | |
cfc14b3a | 1085 | |
8fbca658 | 1086 | TRY_CATCH (ex, RETURN_MASK_ERROR) |
cfc14b3a | 1087 | { |
8fbca658 PA |
1088 | /* Calculate the CFA. */ |
1089 | switch (fs->regs.cfa_how) | |
1090 | { | |
1091 | case CFA_REG_OFFSET: | |
1092 | cache->cfa = read_reg (this_frame, fs->regs.cfa_reg); | |
1093 | if (fs->armcc_cfa_offsets_reversed) | |
1094 | cache->cfa -= fs->regs.cfa_offset; | |
1095 | else | |
1096 | cache->cfa += fs->regs.cfa_offset; | |
1097 | break; | |
1098 | ||
1099 | case CFA_EXP: | |
1100 | cache->cfa = | |
1101 | execute_stack_op (fs->regs.cfa_exp, fs->regs.cfa_exp_len, | |
1102 | cache->addr_size, cache->text_offset, | |
1103 | this_frame, 0, 0); | |
1104 | break; | |
1105 | ||
1106 | default: | |
1107 | internal_error (__FILE__, __LINE__, _("Unknown CFA rule.")); | |
1108 | } | |
1109 | } | |
1110 | if (ex.reason < 0) | |
1111 | { | |
1112 | if (ex.error == NOT_AVAILABLE_ERROR) | |
1113 | { | |
1114 | cache->unavailable_retaddr = 1; | |
1115 | return cache; | |
1116 | } | |
cfc14b3a | 1117 | |
8fbca658 | 1118 | throw_exception (ex); |
cfc14b3a MK |
1119 | } |
1120 | ||
05cbe71a | 1121 | /* Initialize the register state. */ |
3e2c4033 AC |
1122 | { |
1123 | int regnum; | |
e4e9607c | 1124 | |
3e2c4033 | 1125 | for (regnum = 0; regnum < num_regs; regnum++) |
4a4e5149 | 1126 | dwarf2_frame_init_reg (gdbarch, regnum, &cache->reg[regnum], this_frame); |
3e2c4033 AC |
1127 | } |
1128 | ||
1129 | /* Go through the DWARF2 CFI generated table and save its register | |
79c4cb80 MK |
1130 | location information in the cache. Note that we don't skip the |
1131 | return address column; it's perfectly all right for it to | |
1132 | correspond to a real register. If it doesn't correspond to a | |
1133 | real register, or if we shouldn't treat it as such, | |
055d23b8 | 1134 | gdbarch_dwarf2_reg_to_regnum should be defined to return a number outside |
f57d151a | 1135 | the range [0, gdbarch_num_regs). */ |
3e2c4033 AC |
1136 | { |
1137 | int column; /* CFI speak for "register number". */ | |
e4e9607c | 1138 | |
3e2c4033 AC |
1139 | for (column = 0; column < fs->regs.num_regs; column++) |
1140 | { | |
3e2c4033 | 1141 | /* Use the GDB register number as the destination index. */ |
ad010def | 1142 | int regnum = gdbarch_dwarf2_reg_to_regnum (gdbarch, column); |
3e2c4033 AC |
1143 | |
1144 | /* If there's no corresponding GDB register, ignore it. */ | |
1145 | if (regnum < 0 || regnum >= num_regs) | |
1146 | continue; | |
1147 | ||
1148 | /* NOTE: cagney/2003-09-05: CFI should specify the disposition | |
e4e9607c MK |
1149 | of all debug info registers. If it doesn't, complain (but |
1150 | not too loudly). It turns out that GCC assumes that an | |
3e2c4033 AC |
1151 | unspecified register implies "same value" when CFI (draft |
1152 | 7) specifies nothing at all. Such a register could equally | |
1153 | be interpreted as "undefined". Also note that this check | |
e4e9607c MK |
1154 | isn't sufficient; it only checks that all registers in the |
1155 | range [0 .. max column] are specified, and won't detect | |
3e2c4033 | 1156 | problems when a debug info register falls outside of the |
e4e9607c | 1157 | table. We need a way of iterating through all the valid |
3e2c4033 | 1158 | DWARF2 register numbers. */ |
05cbe71a | 1159 | if (fs->regs.reg[column].how == DWARF2_FRAME_REG_UNSPECIFIED) |
f059bf6f AC |
1160 | { |
1161 | if (cache->reg[regnum].how == DWARF2_FRAME_REG_UNSPECIFIED) | |
e2e0b3e5 | 1162 | complaint (&symfile_complaints, _("\ |
5af949e3 | 1163 | incomplete CFI data; unspecified registers (e.g., %s) at %s"), |
f059bf6f | 1164 | gdbarch_register_name (gdbarch, regnum), |
5af949e3 | 1165 | paddress (gdbarch, fs->pc)); |
f059bf6f | 1166 | } |
35889917 MK |
1167 | else |
1168 | cache->reg[regnum] = fs->regs.reg[column]; | |
3e2c4033 AC |
1169 | } |
1170 | } | |
cfc14b3a | 1171 | |
8d5a9abc MK |
1172 | /* Eliminate any DWARF2_FRAME_REG_RA rules, and save the information |
1173 | we need for evaluating DWARF2_FRAME_REG_RA_OFFSET rules. */ | |
35889917 MK |
1174 | { |
1175 | int regnum; | |
1176 | ||
1177 | for (regnum = 0; regnum < num_regs; regnum++) | |
1178 | { | |
8d5a9abc MK |
1179 | if (cache->reg[regnum].how == DWARF2_FRAME_REG_RA |
1180 | || cache->reg[regnum].how == DWARF2_FRAME_REG_RA_OFFSET) | |
35889917 | 1181 | { |
05cbe71a MK |
1182 | struct dwarf2_frame_state_reg *retaddr_reg = |
1183 | &fs->regs.reg[fs->retaddr_column]; | |
1184 | ||
d4f10bf2 MK |
1185 | /* It seems rather bizarre to specify an "empty" column as |
1186 | the return adress column. However, this is exactly | |
1187 | what GCC does on some targets. It turns out that GCC | |
1188 | assumes that the return address can be found in the | |
1189 | register corresponding to the return address column. | |
8d5a9abc MK |
1190 | Incidentally, that's how we should treat a return |
1191 | address column specifying "same value" too. */ | |
d4f10bf2 | 1192 | if (fs->retaddr_column < fs->regs.num_regs |
05cbe71a MK |
1193 | && retaddr_reg->how != DWARF2_FRAME_REG_UNSPECIFIED |
1194 | && retaddr_reg->how != DWARF2_FRAME_REG_SAME_VALUE) | |
8d5a9abc MK |
1195 | { |
1196 | if (cache->reg[regnum].how == DWARF2_FRAME_REG_RA) | |
1197 | cache->reg[regnum] = *retaddr_reg; | |
1198 | else | |
1199 | cache->retaddr_reg = *retaddr_reg; | |
1200 | } | |
35889917 MK |
1201 | else |
1202 | { | |
8d5a9abc MK |
1203 | if (cache->reg[regnum].how == DWARF2_FRAME_REG_RA) |
1204 | { | |
1205 | cache->reg[regnum].loc.reg = fs->retaddr_column; | |
1206 | cache->reg[regnum].how = DWARF2_FRAME_REG_SAVED_REG; | |
1207 | } | |
1208 | else | |
1209 | { | |
1210 | cache->retaddr_reg.loc.reg = fs->retaddr_column; | |
1211 | cache->retaddr_reg.how = DWARF2_FRAME_REG_SAVED_REG; | |
1212 | } | |
35889917 MK |
1213 | } |
1214 | } | |
1215 | } | |
1216 | } | |
cfc14b3a | 1217 | |
0228dfb9 DJ |
1218 | if (fs->retaddr_column < fs->regs.num_regs |
1219 | && fs->regs.reg[fs->retaddr_column].how == DWARF2_FRAME_REG_UNDEFINED) | |
1220 | cache->undefined_retaddr = 1; | |
1221 | ||
cfc14b3a MK |
1222 | do_cleanups (old_chain); |
1223 | ||
cfc14b3a MK |
1224 | return cache; |
1225 | } | |
1226 | ||
8fbca658 PA |
1227 | static enum unwind_stop_reason |
1228 | dwarf2_frame_unwind_stop_reason (struct frame_info *this_frame, | |
1229 | void **this_cache) | |
1230 | { | |
1231 | struct dwarf2_frame_cache *cache | |
1232 | = dwarf2_frame_cache (this_frame, this_cache); | |
1233 | ||
1234 | if (cache->unavailable_retaddr) | |
1235 | return UNWIND_UNAVAILABLE; | |
1236 | ||
1237 | if (cache->undefined_retaddr) | |
1238 | return UNWIND_OUTERMOST; | |
1239 | ||
1240 | return UNWIND_NO_REASON; | |
1241 | } | |
1242 | ||
cfc14b3a | 1243 | static void |
4a4e5149 | 1244 | dwarf2_frame_this_id (struct frame_info *this_frame, void **this_cache, |
cfc14b3a MK |
1245 | struct frame_id *this_id) |
1246 | { | |
1247 | struct dwarf2_frame_cache *cache = | |
4a4e5149 | 1248 | dwarf2_frame_cache (this_frame, this_cache); |
cfc14b3a | 1249 | |
8fbca658 PA |
1250 | if (cache->unavailable_retaddr) |
1251 | return; | |
1252 | ||
0228dfb9 DJ |
1253 | if (cache->undefined_retaddr) |
1254 | return; | |
1255 | ||
4a4e5149 | 1256 | (*this_id) = frame_id_build (cache->cfa, get_frame_func (this_frame)); |
93d42b30 DJ |
1257 | } |
1258 | ||
4a4e5149 DJ |
1259 | static struct value * |
1260 | dwarf2_frame_prev_register (struct frame_info *this_frame, void **this_cache, | |
1261 | int regnum) | |
93d42b30 | 1262 | { |
4a4e5149 | 1263 | struct gdbarch *gdbarch = get_frame_arch (this_frame); |
93d42b30 | 1264 | struct dwarf2_frame_cache *cache = |
4a4e5149 DJ |
1265 | dwarf2_frame_cache (this_frame, this_cache); |
1266 | CORE_ADDR addr; | |
1267 | int realnum; | |
cfc14b3a MK |
1268 | |
1269 | switch (cache->reg[regnum].how) | |
1270 | { | |
05cbe71a | 1271 | case DWARF2_FRAME_REG_UNDEFINED: |
3e2c4033 | 1272 | /* If CFI explicitly specified that the value isn't defined, |
e4e9607c | 1273 | mark it as optimized away; the value isn't available. */ |
4a4e5149 | 1274 | return frame_unwind_got_optimized (this_frame, regnum); |
cfc14b3a | 1275 | |
05cbe71a | 1276 | case DWARF2_FRAME_REG_SAVED_OFFSET: |
4a4e5149 DJ |
1277 | addr = cache->cfa + cache->reg[regnum].loc.offset; |
1278 | return frame_unwind_got_memory (this_frame, regnum, addr); | |
cfc14b3a | 1279 | |
05cbe71a | 1280 | case DWARF2_FRAME_REG_SAVED_REG: |
4a4e5149 DJ |
1281 | realnum |
1282 | = gdbarch_dwarf2_reg_to_regnum (gdbarch, cache->reg[regnum].loc.reg); | |
1283 | return frame_unwind_got_register (this_frame, regnum, realnum); | |
cfc14b3a | 1284 | |
05cbe71a | 1285 | case DWARF2_FRAME_REG_SAVED_EXP: |
4a4e5149 DJ |
1286 | addr = execute_stack_op (cache->reg[regnum].loc.exp, |
1287 | cache->reg[regnum].exp_len, | |
ac56253d TT |
1288 | cache->addr_size, cache->text_offset, |
1289 | this_frame, cache->cfa, 1); | |
4a4e5149 | 1290 | return frame_unwind_got_memory (this_frame, regnum, addr); |
cfc14b3a | 1291 | |
46ea248b | 1292 | case DWARF2_FRAME_REG_SAVED_VAL_OFFSET: |
4a4e5149 DJ |
1293 | addr = cache->cfa + cache->reg[regnum].loc.offset; |
1294 | return frame_unwind_got_constant (this_frame, regnum, addr); | |
46ea248b AO |
1295 | |
1296 | case DWARF2_FRAME_REG_SAVED_VAL_EXP: | |
4a4e5149 DJ |
1297 | addr = execute_stack_op (cache->reg[regnum].loc.exp, |
1298 | cache->reg[regnum].exp_len, | |
ac56253d TT |
1299 | cache->addr_size, cache->text_offset, |
1300 | this_frame, cache->cfa, 1); | |
4a4e5149 | 1301 | return frame_unwind_got_constant (this_frame, regnum, addr); |
46ea248b | 1302 | |
05cbe71a | 1303 | case DWARF2_FRAME_REG_UNSPECIFIED: |
3e2c4033 AC |
1304 | /* GCC, in its infinite wisdom decided to not provide unwind |
1305 | information for registers that are "same value". Since | |
1306 | DWARF2 (3 draft 7) doesn't define such behavior, said | |
1307 | registers are actually undefined (which is different to CFI | |
1308 | "undefined"). Code above issues a complaint about this. | |
1309 | Here just fudge the books, assume GCC, and that the value is | |
1310 | more inner on the stack. */ | |
4a4e5149 | 1311 | return frame_unwind_got_register (this_frame, regnum, regnum); |
3e2c4033 | 1312 | |
05cbe71a | 1313 | case DWARF2_FRAME_REG_SAME_VALUE: |
4a4e5149 | 1314 | return frame_unwind_got_register (this_frame, regnum, regnum); |
cfc14b3a | 1315 | |
05cbe71a | 1316 | case DWARF2_FRAME_REG_CFA: |
4a4e5149 | 1317 | return frame_unwind_got_address (this_frame, regnum, cache->cfa); |
35889917 | 1318 | |
ea7963f0 | 1319 | case DWARF2_FRAME_REG_CFA_OFFSET: |
4a4e5149 DJ |
1320 | addr = cache->cfa + cache->reg[regnum].loc.offset; |
1321 | return frame_unwind_got_address (this_frame, regnum, addr); | |
ea7963f0 | 1322 | |
8d5a9abc | 1323 | case DWARF2_FRAME_REG_RA_OFFSET: |
4a4e5149 DJ |
1324 | addr = cache->reg[regnum].loc.offset; |
1325 | regnum = gdbarch_dwarf2_reg_to_regnum | |
1326 | (gdbarch, cache->retaddr_reg.loc.reg); | |
1327 | addr += get_frame_register_unsigned (this_frame, regnum); | |
1328 | return frame_unwind_got_address (this_frame, regnum, addr); | |
8d5a9abc | 1329 | |
b39cc962 DJ |
1330 | case DWARF2_FRAME_REG_FN: |
1331 | return cache->reg[regnum].loc.fn (this_frame, this_cache, regnum); | |
1332 | ||
cfc14b3a | 1333 | default: |
e2e0b3e5 | 1334 | internal_error (__FILE__, __LINE__, _("Unknown register rule.")); |
cfc14b3a MK |
1335 | } |
1336 | } | |
1337 | ||
4a4e5149 DJ |
1338 | static int |
1339 | dwarf2_frame_sniffer (const struct frame_unwind *self, | |
1340 | struct frame_info *this_frame, void **this_cache) | |
cfc14b3a | 1341 | { |
1ce5d6dd | 1342 | /* Grab an address that is guarenteed to reside somewhere within the |
4a4e5149 | 1343 | function. get_frame_pc(), with a no-return next function, can |
93d42b30 DJ |
1344 | end up returning something past the end of this function's body. |
1345 | If the frame we're sniffing for is a signal frame whose start | |
1346 | address is placed on the stack by the OS, its FDE must | |
4a4e5149 DJ |
1347 | extend one byte before its start address or we could potentially |
1348 | select the FDE of the previous function. */ | |
1349 | CORE_ADDR block_addr = get_frame_address_in_block (this_frame); | |
ac56253d | 1350 | struct dwarf2_fde *fde = dwarf2_frame_find_fde (&block_addr, NULL); |
9a619af0 | 1351 | |
56c987f6 | 1352 | if (!fde) |
4a4e5149 | 1353 | return 0; |
3ed09a32 DJ |
1354 | |
1355 | /* On some targets, signal trampolines may have unwind information. | |
1356 | We need to recognize them so that we set the frame type | |
1357 | correctly. */ | |
1358 | ||
56c987f6 | 1359 | if (fde->cie->signal_frame |
4a4e5149 DJ |
1360 | || dwarf2_frame_signal_frame_p (get_frame_arch (this_frame), |
1361 | this_frame)) | |
1362 | return self->type == SIGTRAMP_FRAME; | |
1363 | ||
1364 | return self->type != SIGTRAMP_FRAME; | |
1365 | } | |
1366 | ||
1367 | static const struct frame_unwind dwarf2_frame_unwind = | |
1368 | { | |
1369 | NORMAL_FRAME, | |
8fbca658 | 1370 | dwarf2_frame_unwind_stop_reason, |
4a4e5149 DJ |
1371 | dwarf2_frame_this_id, |
1372 | dwarf2_frame_prev_register, | |
1373 | NULL, | |
1374 | dwarf2_frame_sniffer | |
1375 | }; | |
1376 | ||
1377 | static const struct frame_unwind dwarf2_signal_frame_unwind = | |
1378 | { | |
1379 | SIGTRAMP_FRAME, | |
8fbca658 | 1380 | dwarf2_frame_unwind_stop_reason, |
4a4e5149 DJ |
1381 | dwarf2_frame_this_id, |
1382 | dwarf2_frame_prev_register, | |
1383 | NULL, | |
1384 | dwarf2_frame_sniffer | |
1385 | }; | |
cfc14b3a | 1386 | |
4a4e5149 DJ |
1387 | /* Append the DWARF-2 frame unwinders to GDBARCH's list. */ |
1388 | ||
1389 | void | |
1390 | dwarf2_append_unwinders (struct gdbarch *gdbarch) | |
1391 | { | |
1392 | frame_unwind_append_unwinder (gdbarch, &dwarf2_frame_unwind); | |
1393 | frame_unwind_append_unwinder (gdbarch, &dwarf2_signal_frame_unwind); | |
cfc14b3a MK |
1394 | } |
1395 | \f | |
1396 | ||
1397 | /* There is no explicitly defined relationship between the CFA and the | |
1398 | location of frame's local variables and arguments/parameters. | |
1399 | Therefore, frame base methods on this page should probably only be | |
1400 | used as a last resort, just to avoid printing total garbage as a | |
1401 | response to the "info frame" command. */ | |
1402 | ||
1403 | static CORE_ADDR | |
4a4e5149 | 1404 | dwarf2_frame_base_address (struct frame_info *this_frame, void **this_cache) |
cfc14b3a MK |
1405 | { |
1406 | struct dwarf2_frame_cache *cache = | |
4a4e5149 | 1407 | dwarf2_frame_cache (this_frame, this_cache); |
cfc14b3a MK |
1408 | |
1409 | return cache->cfa; | |
1410 | } | |
1411 | ||
1412 | static const struct frame_base dwarf2_frame_base = | |
1413 | { | |
1414 | &dwarf2_frame_unwind, | |
1415 | dwarf2_frame_base_address, | |
1416 | dwarf2_frame_base_address, | |
1417 | dwarf2_frame_base_address | |
1418 | }; | |
1419 | ||
1420 | const struct frame_base * | |
4a4e5149 | 1421 | dwarf2_frame_base_sniffer (struct frame_info *this_frame) |
cfc14b3a | 1422 | { |
4a4e5149 | 1423 | CORE_ADDR block_addr = get_frame_address_in_block (this_frame); |
9a619af0 | 1424 | |
ac56253d | 1425 | if (dwarf2_frame_find_fde (&block_addr, NULL)) |
cfc14b3a MK |
1426 | return &dwarf2_frame_base; |
1427 | ||
1428 | return NULL; | |
1429 | } | |
e7802207 TT |
1430 | |
1431 | /* Compute the CFA for THIS_FRAME, but only if THIS_FRAME came from | |
1432 | the DWARF unwinder. This is used to implement | |
1433 | DW_OP_call_frame_cfa. */ | |
1434 | ||
1435 | CORE_ADDR | |
1436 | dwarf2_frame_cfa (struct frame_info *this_frame) | |
1437 | { | |
1438 | while (get_frame_type (this_frame) == INLINE_FRAME) | |
1439 | this_frame = get_prev_frame (this_frame); | |
1440 | /* This restriction could be lifted if other unwinders are known to | |
1441 | compute the frame base in a way compatible with the DWARF | |
1442 | unwinder. */ | |
1443 | if (! frame_unwinder_is (this_frame, &dwarf2_frame_unwind)) | |
1444 | error (_("can't compute CFA for this frame")); | |
1445 | return get_frame_base (this_frame); | |
1446 | } | |
cfc14b3a | 1447 | \f |
8f22cb90 | 1448 | const struct objfile_data *dwarf2_frame_objfile_data; |
0d0e1a63 | 1449 | |
cfc14b3a | 1450 | static unsigned int |
852483bc | 1451 | read_1_byte (bfd *abfd, gdb_byte *buf) |
cfc14b3a | 1452 | { |
852483bc | 1453 | return bfd_get_8 (abfd, buf); |
cfc14b3a MK |
1454 | } |
1455 | ||
1456 | static unsigned int | |
852483bc | 1457 | read_4_bytes (bfd *abfd, gdb_byte *buf) |
cfc14b3a | 1458 | { |
852483bc | 1459 | return bfd_get_32 (abfd, buf); |
cfc14b3a MK |
1460 | } |
1461 | ||
1462 | static ULONGEST | |
852483bc | 1463 | read_8_bytes (bfd *abfd, gdb_byte *buf) |
cfc14b3a | 1464 | { |
852483bc | 1465 | return bfd_get_64 (abfd, buf); |
cfc14b3a MK |
1466 | } |
1467 | ||
1468 | static ULONGEST | |
852483bc | 1469 | read_unsigned_leb128 (bfd *abfd, gdb_byte *buf, unsigned int *bytes_read_ptr) |
cfc14b3a MK |
1470 | { |
1471 | ULONGEST result; | |
1472 | unsigned int num_read; | |
1473 | int shift; | |
852483bc | 1474 | gdb_byte byte; |
cfc14b3a MK |
1475 | |
1476 | result = 0; | |
1477 | shift = 0; | |
1478 | num_read = 0; | |
1479 | ||
1480 | do | |
1481 | { | |
1482 | byte = bfd_get_8 (abfd, (bfd_byte *) buf); | |
1483 | buf++; | |
1484 | num_read++; | |
1485 | result |= ((byte & 0x7f) << shift); | |
1486 | shift += 7; | |
1487 | } | |
1488 | while (byte & 0x80); | |
1489 | ||
1490 | *bytes_read_ptr = num_read; | |
1491 | ||
1492 | return result; | |
1493 | } | |
1494 | ||
1495 | static LONGEST | |
852483bc | 1496 | read_signed_leb128 (bfd *abfd, gdb_byte *buf, unsigned int *bytes_read_ptr) |
cfc14b3a MK |
1497 | { |
1498 | LONGEST result; | |
1499 | int shift; | |
1500 | unsigned int num_read; | |
852483bc | 1501 | gdb_byte byte; |
cfc14b3a MK |
1502 | |
1503 | result = 0; | |
1504 | shift = 0; | |
1505 | num_read = 0; | |
1506 | ||
1507 | do | |
1508 | { | |
1509 | byte = bfd_get_8 (abfd, (bfd_byte *) buf); | |
1510 | buf++; | |
1511 | num_read++; | |
1512 | result |= ((byte & 0x7f) << shift); | |
1513 | shift += 7; | |
1514 | } | |
1515 | while (byte & 0x80); | |
1516 | ||
77e0b926 DJ |
1517 | if (shift < 8 * sizeof (result) && (byte & 0x40)) |
1518 | result |= -(((LONGEST)1) << shift); | |
cfc14b3a MK |
1519 | |
1520 | *bytes_read_ptr = num_read; | |
1521 | ||
1522 | return result; | |
1523 | } | |
1524 | ||
1525 | static ULONGEST | |
852483bc | 1526 | read_initial_length (bfd *abfd, gdb_byte *buf, unsigned int *bytes_read_ptr) |
cfc14b3a MK |
1527 | { |
1528 | LONGEST result; | |
1529 | ||
852483bc | 1530 | result = bfd_get_32 (abfd, buf); |
cfc14b3a MK |
1531 | if (result == 0xffffffff) |
1532 | { | |
852483bc | 1533 | result = bfd_get_64 (abfd, buf + 4); |
cfc14b3a MK |
1534 | *bytes_read_ptr = 12; |
1535 | } | |
1536 | else | |
1537 | *bytes_read_ptr = 4; | |
1538 | ||
1539 | return result; | |
1540 | } | |
1541 | \f | |
1542 | ||
1543 | /* Pointer encoding helper functions. */ | |
1544 | ||
1545 | /* GCC supports exception handling based on DWARF2 CFI. However, for | |
1546 | technical reasons, it encodes addresses in its FDE's in a different | |
1547 | way. Several "pointer encodings" are supported. The encoding | |
1548 | that's used for a particular FDE is determined by the 'R' | |
1549 | augmentation in the associated CIE. The argument of this | |
1550 | augmentation is a single byte. | |
1551 | ||
1552 | The address can be encoded as 2 bytes, 4 bytes, 8 bytes, or as a | |
1553 | LEB128. This is encoded in bits 0, 1 and 2. Bit 3 encodes whether | |
1554 | the address is signed or unsigned. Bits 4, 5 and 6 encode how the | |
1555 | address should be interpreted (absolute, relative to the current | |
1556 | position in the FDE, ...). Bit 7, indicates that the address | |
1557 | should be dereferenced. */ | |
1558 | ||
852483bc | 1559 | static gdb_byte |
cfc14b3a MK |
1560 | encoding_for_size (unsigned int size) |
1561 | { | |
1562 | switch (size) | |
1563 | { | |
1564 | case 2: | |
1565 | return DW_EH_PE_udata2; | |
1566 | case 4: | |
1567 | return DW_EH_PE_udata4; | |
1568 | case 8: | |
1569 | return DW_EH_PE_udata8; | |
1570 | default: | |
e2e0b3e5 | 1571 | internal_error (__FILE__, __LINE__, _("Unsupported address size")); |
cfc14b3a MK |
1572 | } |
1573 | } | |
1574 | ||
cfc14b3a | 1575 | static CORE_ADDR |
852483bc | 1576 | read_encoded_value (struct comp_unit *unit, gdb_byte encoding, |
0d45f56e TT |
1577 | int ptr_len, const gdb_byte *buf, |
1578 | unsigned int *bytes_read_ptr, | |
ae0d2f24 | 1579 | CORE_ADDR func_base) |
cfc14b3a | 1580 | { |
68f6cf99 | 1581 | ptrdiff_t offset; |
cfc14b3a MK |
1582 | CORE_ADDR base; |
1583 | ||
1584 | /* GCC currently doesn't generate DW_EH_PE_indirect encodings for | |
1585 | FDE's. */ | |
1586 | if (encoding & DW_EH_PE_indirect) | |
1587 | internal_error (__FILE__, __LINE__, | |
e2e0b3e5 | 1588 | _("Unsupported encoding: DW_EH_PE_indirect")); |
cfc14b3a | 1589 | |
68f6cf99 MK |
1590 | *bytes_read_ptr = 0; |
1591 | ||
cfc14b3a MK |
1592 | switch (encoding & 0x70) |
1593 | { | |
1594 | case DW_EH_PE_absptr: | |
1595 | base = 0; | |
1596 | break; | |
1597 | case DW_EH_PE_pcrel: | |
f2fec864 | 1598 | base = bfd_get_section_vma (unit->abfd, unit->dwarf_frame_section); |
852483bc | 1599 | base += (buf - unit->dwarf_frame_buffer); |
cfc14b3a | 1600 | break; |
0912c7f2 MK |
1601 | case DW_EH_PE_datarel: |
1602 | base = unit->dbase; | |
1603 | break; | |
0fd85043 CV |
1604 | case DW_EH_PE_textrel: |
1605 | base = unit->tbase; | |
1606 | break; | |
03ac2a74 | 1607 | case DW_EH_PE_funcrel: |
ae0d2f24 | 1608 | base = func_base; |
03ac2a74 | 1609 | break; |
68f6cf99 MK |
1610 | case DW_EH_PE_aligned: |
1611 | base = 0; | |
852483bc | 1612 | offset = buf - unit->dwarf_frame_buffer; |
68f6cf99 MK |
1613 | if ((offset % ptr_len) != 0) |
1614 | { | |
1615 | *bytes_read_ptr = ptr_len - (offset % ptr_len); | |
1616 | buf += *bytes_read_ptr; | |
1617 | } | |
1618 | break; | |
cfc14b3a | 1619 | default: |
3e43a32a MS |
1620 | internal_error (__FILE__, __LINE__, |
1621 | _("Invalid or unsupported encoding")); | |
cfc14b3a MK |
1622 | } |
1623 | ||
b04de778 | 1624 | if ((encoding & 0x07) == 0x00) |
f2fec864 DJ |
1625 | { |
1626 | encoding |= encoding_for_size (ptr_len); | |
1627 | if (bfd_get_sign_extend_vma (unit->abfd)) | |
1628 | encoding |= DW_EH_PE_signed; | |
1629 | } | |
cfc14b3a MK |
1630 | |
1631 | switch (encoding & 0x0f) | |
1632 | { | |
a81b10ae MK |
1633 | case DW_EH_PE_uleb128: |
1634 | { | |
1635 | ULONGEST value; | |
0d45f56e | 1636 | const gdb_byte *end_buf = buf + (sizeof (value) + 1) * 8 / 7; |
9a619af0 | 1637 | |
a7289609 | 1638 | *bytes_read_ptr += read_uleb128 (buf, end_buf, &value) - buf; |
a81b10ae MK |
1639 | return base + value; |
1640 | } | |
cfc14b3a | 1641 | case DW_EH_PE_udata2: |
68f6cf99 | 1642 | *bytes_read_ptr += 2; |
cfc14b3a MK |
1643 | return (base + bfd_get_16 (unit->abfd, (bfd_byte *) buf)); |
1644 | case DW_EH_PE_udata4: | |
68f6cf99 | 1645 | *bytes_read_ptr += 4; |
cfc14b3a MK |
1646 | return (base + bfd_get_32 (unit->abfd, (bfd_byte *) buf)); |
1647 | case DW_EH_PE_udata8: | |
68f6cf99 | 1648 | *bytes_read_ptr += 8; |
cfc14b3a | 1649 | return (base + bfd_get_64 (unit->abfd, (bfd_byte *) buf)); |
a81b10ae MK |
1650 | case DW_EH_PE_sleb128: |
1651 | { | |
1652 | LONGEST value; | |
0d45f56e | 1653 | const gdb_byte *end_buf = buf + (sizeof (value) + 1) * 8 / 7; |
9a619af0 | 1654 | |
a7289609 | 1655 | *bytes_read_ptr += read_sleb128 (buf, end_buf, &value) - buf; |
a81b10ae MK |
1656 | return base + value; |
1657 | } | |
cfc14b3a | 1658 | case DW_EH_PE_sdata2: |
68f6cf99 | 1659 | *bytes_read_ptr += 2; |
cfc14b3a MK |
1660 | return (base + bfd_get_signed_16 (unit->abfd, (bfd_byte *) buf)); |
1661 | case DW_EH_PE_sdata4: | |
68f6cf99 | 1662 | *bytes_read_ptr += 4; |
cfc14b3a MK |
1663 | return (base + bfd_get_signed_32 (unit->abfd, (bfd_byte *) buf)); |
1664 | case DW_EH_PE_sdata8: | |
68f6cf99 | 1665 | *bytes_read_ptr += 8; |
cfc14b3a MK |
1666 | return (base + bfd_get_signed_64 (unit->abfd, (bfd_byte *) buf)); |
1667 | default: | |
3e43a32a MS |
1668 | internal_error (__FILE__, __LINE__, |
1669 | _("Invalid or unsupported encoding")); | |
cfc14b3a MK |
1670 | } |
1671 | } | |
1672 | \f | |
1673 | ||
b01c8410 PP |
1674 | static int |
1675 | bsearch_cie_cmp (const void *key, const void *element) | |
cfc14b3a | 1676 | { |
b01c8410 PP |
1677 | ULONGEST cie_pointer = *(ULONGEST *) key; |
1678 | struct dwarf2_cie *cie = *(struct dwarf2_cie **) element; | |
cfc14b3a | 1679 | |
b01c8410 PP |
1680 | if (cie_pointer == cie->cie_pointer) |
1681 | return 0; | |
cfc14b3a | 1682 | |
b01c8410 PP |
1683 | return (cie_pointer < cie->cie_pointer) ? -1 : 1; |
1684 | } | |
1685 | ||
1686 | /* Find CIE with the given CIE_POINTER in CIE_TABLE. */ | |
1687 | static struct dwarf2_cie * | |
1688 | find_cie (struct dwarf2_cie_table *cie_table, ULONGEST cie_pointer) | |
1689 | { | |
1690 | struct dwarf2_cie **p_cie; | |
cfc14b3a | 1691 | |
65a97ab3 PP |
1692 | /* The C standard (ISO/IEC 9899:TC2) requires the BASE argument to |
1693 | bsearch be non-NULL. */ | |
1694 | if (cie_table->entries == NULL) | |
1695 | { | |
1696 | gdb_assert (cie_table->num_entries == 0); | |
1697 | return NULL; | |
1698 | } | |
1699 | ||
b01c8410 PP |
1700 | p_cie = bsearch (&cie_pointer, cie_table->entries, cie_table->num_entries, |
1701 | sizeof (cie_table->entries[0]), bsearch_cie_cmp); | |
1702 | if (p_cie != NULL) | |
1703 | return *p_cie; | |
cfc14b3a MK |
1704 | return NULL; |
1705 | } | |
1706 | ||
b01c8410 | 1707 | /* Add a pointer to new CIE to the CIE_TABLE, allocating space for it. */ |
cfc14b3a | 1708 | static void |
b01c8410 | 1709 | add_cie (struct dwarf2_cie_table *cie_table, struct dwarf2_cie *cie) |
cfc14b3a | 1710 | { |
b01c8410 PP |
1711 | const int n = cie_table->num_entries; |
1712 | ||
1713 | gdb_assert (n < 1 | |
1714 | || cie_table->entries[n - 1]->cie_pointer < cie->cie_pointer); | |
1715 | ||
1716 | cie_table->entries = | |
1717 | xrealloc (cie_table->entries, (n + 1) * sizeof (cie_table->entries[0])); | |
1718 | cie_table->entries[n] = cie; | |
1719 | cie_table->num_entries = n + 1; | |
1720 | } | |
1721 | ||
1722 | static int | |
1723 | bsearch_fde_cmp (const void *key, const void *element) | |
1724 | { | |
1725 | CORE_ADDR seek_pc = *(CORE_ADDR *) key; | |
1726 | struct dwarf2_fde *fde = *(struct dwarf2_fde **) element; | |
9a619af0 | 1727 | |
b01c8410 PP |
1728 | if (seek_pc < fde->initial_location) |
1729 | return -1; | |
1730 | if (seek_pc < fde->initial_location + fde->address_range) | |
1731 | return 0; | |
1732 | return 1; | |
cfc14b3a MK |
1733 | } |
1734 | ||
1735 | /* Find the FDE for *PC. Return a pointer to the FDE, and store the | |
1736 | inital location associated with it into *PC. */ | |
1737 | ||
1738 | static struct dwarf2_fde * | |
ac56253d | 1739 | dwarf2_frame_find_fde (CORE_ADDR *pc, CORE_ADDR *out_offset) |
cfc14b3a MK |
1740 | { |
1741 | struct objfile *objfile; | |
1742 | ||
1743 | ALL_OBJFILES (objfile) | |
1744 | { | |
b01c8410 PP |
1745 | struct dwarf2_fde_table *fde_table; |
1746 | struct dwarf2_fde **p_fde; | |
cfc14b3a | 1747 | CORE_ADDR offset; |
b01c8410 | 1748 | CORE_ADDR seek_pc; |
cfc14b3a | 1749 | |
b01c8410 PP |
1750 | fde_table = objfile_data (objfile, dwarf2_frame_objfile_data); |
1751 | if (fde_table == NULL) | |
be391dca TT |
1752 | { |
1753 | dwarf2_build_frame_info (objfile); | |
1754 | fde_table = objfile_data (objfile, dwarf2_frame_objfile_data); | |
1755 | } | |
1756 | gdb_assert (fde_table != NULL); | |
1757 | ||
1758 | if (fde_table->num_entries == 0) | |
4ae9ee8e DJ |
1759 | continue; |
1760 | ||
1761 | gdb_assert (objfile->section_offsets); | |
1762 | offset = ANOFFSET (objfile->section_offsets, SECT_OFF_TEXT (objfile)); | |
1763 | ||
b01c8410 PP |
1764 | gdb_assert (fde_table->num_entries > 0); |
1765 | if (*pc < offset + fde_table->entries[0]->initial_location) | |
1766 | continue; | |
1767 | ||
1768 | seek_pc = *pc - offset; | |
1769 | p_fde = bsearch (&seek_pc, fde_table->entries, fde_table->num_entries, | |
1770 | sizeof (fde_table->entries[0]), bsearch_fde_cmp); | |
1771 | if (p_fde != NULL) | |
1772 | { | |
1773 | *pc = (*p_fde)->initial_location + offset; | |
ac56253d TT |
1774 | if (out_offset) |
1775 | *out_offset = offset; | |
b01c8410 PP |
1776 | return *p_fde; |
1777 | } | |
cfc14b3a | 1778 | } |
cfc14b3a MK |
1779 | return NULL; |
1780 | } | |
1781 | ||
b01c8410 | 1782 | /* Add a pointer to new FDE to the FDE_TABLE, allocating space for it. */ |
cfc14b3a | 1783 | static void |
b01c8410 | 1784 | add_fde (struct dwarf2_fde_table *fde_table, struct dwarf2_fde *fde) |
cfc14b3a | 1785 | { |
b01c8410 PP |
1786 | if (fde->address_range == 0) |
1787 | /* Discard useless FDEs. */ | |
1788 | return; | |
1789 | ||
1790 | fde_table->num_entries += 1; | |
1791 | fde_table->entries = | |
1792 | xrealloc (fde_table->entries, | |
1793 | fde_table->num_entries * sizeof (fde_table->entries[0])); | |
1794 | fde_table->entries[fde_table->num_entries - 1] = fde; | |
cfc14b3a MK |
1795 | } |
1796 | ||
1797 | #ifdef CC_HAS_LONG_LONG | |
1798 | #define DW64_CIE_ID 0xffffffffffffffffULL | |
1799 | #else | |
1800 | #define DW64_CIE_ID ~0 | |
1801 | #endif | |
1802 | ||
852483bc | 1803 | static gdb_byte *decode_frame_entry (struct comp_unit *unit, gdb_byte *start, |
b01c8410 PP |
1804 | int eh_frame_p, |
1805 | struct dwarf2_cie_table *cie_table, | |
1806 | struct dwarf2_fde_table *fde_table); | |
cfc14b3a | 1807 | |
6896c0c7 RH |
1808 | /* Decode the next CIE or FDE. Return NULL if invalid input, otherwise |
1809 | the next byte to be processed. */ | |
852483bc | 1810 | static gdb_byte * |
b01c8410 PP |
1811 | decode_frame_entry_1 (struct comp_unit *unit, gdb_byte *start, int eh_frame_p, |
1812 | struct dwarf2_cie_table *cie_table, | |
1813 | struct dwarf2_fde_table *fde_table) | |
cfc14b3a | 1814 | { |
5e2b427d | 1815 | struct gdbarch *gdbarch = get_objfile_arch (unit->objfile); |
852483bc | 1816 | gdb_byte *buf, *end; |
cfc14b3a MK |
1817 | LONGEST length; |
1818 | unsigned int bytes_read; | |
6896c0c7 RH |
1819 | int dwarf64_p; |
1820 | ULONGEST cie_id; | |
cfc14b3a | 1821 | ULONGEST cie_pointer; |
cfc14b3a | 1822 | |
6896c0c7 | 1823 | buf = start; |
cfc14b3a MK |
1824 | length = read_initial_length (unit->abfd, buf, &bytes_read); |
1825 | buf += bytes_read; | |
1826 | end = buf + length; | |
1827 | ||
0963b4bd | 1828 | /* Are we still within the section? */ |
6896c0c7 RH |
1829 | if (end > unit->dwarf_frame_buffer + unit->dwarf_frame_size) |
1830 | return NULL; | |
1831 | ||
cfc14b3a MK |
1832 | if (length == 0) |
1833 | return end; | |
1834 | ||
6896c0c7 RH |
1835 | /* Distinguish between 32 and 64-bit encoded frame info. */ |
1836 | dwarf64_p = (bytes_read == 12); | |
cfc14b3a | 1837 | |
6896c0c7 | 1838 | /* In a .eh_frame section, zero is used to distinguish CIEs from FDEs. */ |
cfc14b3a MK |
1839 | if (eh_frame_p) |
1840 | cie_id = 0; | |
1841 | else if (dwarf64_p) | |
1842 | cie_id = DW64_CIE_ID; | |
6896c0c7 RH |
1843 | else |
1844 | cie_id = DW_CIE_ID; | |
cfc14b3a MK |
1845 | |
1846 | if (dwarf64_p) | |
1847 | { | |
1848 | cie_pointer = read_8_bytes (unit->abfd, buf); | |
1849 | buf += 8; | |
1850 | } | |
1851 | else | |
1852 | { | |
1853 | cie_pointer = read_4_bytes (unit->abfd, buf); | |
1854 | buf += 4; | |
1855 | } | |
1856 | ||
1857 | if (cie_pointer == cie_id) | |
1858 | { | |
1859 | /* This is a CIE. */ | |
1860 | struct dwarf2_cie *cie; | |
1861 | char *augmentation; | |
28ba0b33 | 1862 | unsigned int cie_version; |
cfc14b3a MK |
1863 | |
1864 | /* Record the offset into the .debug_frame section of this CIE. */ | |
1865 | cie_pointer = start - unit->dwarf_frame_buffer; | |
1866 | ||
1867 | /* Check whether we've already read it. */ | |
b01c8410 | 1868 | if (find_cie (cie_table, cie_pointer)) |
cfc14b3a MK |
1869 | return end; |
1870 | ||
1871 | cie = (struct dwarf2_cie *) | |
8b92e4d5 | 1872 | obstack_alloc (&unit->objfile->objfile_obstack, |
cfc14b3a MK |
1873 | sizeof (struct dwarf2_cie)); |
1874 | cie->initial_instructions = NULL; | |
1875 | cie->cie_pointer = cie_pointer; | |
1876 | ||
1877 | /* The encoding for FDE's in a normal .debug_frame section | |
32b05c07 MK |
1878 | depends on the target address size. */ |
1879 | cie->encoding = DW_EH_PE_absptr; | |
cfc14b3a | 1880 | |
56c987f6 AO |
1881 | /* We'll determine the final value later, but we need to |
1882 | initialize it conservatively. */ | |
1883 | cie->signal_frame = 0; | |
1884 | ||
cfc14b3a | 1885 | /* Check version number. */ |
28ba0b33 | 1886 | cie_version = read_1_byte (unit->abfd, buf); |
2dc7f7b3 | 1887 | if (cie_version != 1 && cie_version != 3 && cie_version != 4) |
6896c0c7 | 1888 | return NULL; |
303b6f5d | 1889 | cie->version = cie_version; |
cfc14b3a MK |
1890 | buf += 1; |
1891 | ||
1892 | /* Interpret the interesting bits of the augmentation. */ | |
303b6f5d | 1893 | cie->augmentation = augmentation = (char *) buf; |
852483bc | 1894 | buf += (strlen (augmentation) + 1); |
cfc14b3a | 1895 | |
303b6f5d DJ |
1896 | /* Ignore armcc augmentations. We only use them for quirks, |
1897 | and that doesn't happen until later. */ | |
1898 | if (strncmp (augmentation, "armcc", 5) == 0) | |
1899 | augmentation += strlen (augmentation); | |
1900 | ||
cfc14b3a MK |
1901 | /* The GCC 2.x "eh" augmentation has a pointer immediately |
1902 | following the augmentation string, so it must be handled | |
1903 | first. */ | |
1904 | if (augmentation[0] == 'e' && augmentation[1] == 'h') | |
1905 | { | |
1906 | /* Skip. */ | |
5e2b427d | 1907 | buf += gdbarch_ptr_bit (gdbarch) / TARGET_CHAR_BIT; |
cfc14b3a MK |
1908 | augmentation += 2; |
1909 | } | |
1910 | ||
2dc7f7b3 TT |
1911 | if (cie->version >= 4) |
1912 | { | |
1913 | /* FIXME: check that this is the same as from the CU header. */ | |
1914 | cie->addr_size = read_1_byte (unit->abfd, buf); | |
1915 | ++buf; | |
1916 | cie->segment_size = read_1_byte (unit->abfd, buf); | |
1917 | ++buf; | |
1918 | } | |
1919 | else | |
1920 | { | |
8da614df | 1921 | cie->addr_size = gdbarch_dwarf2_addr_size (gdbarch); |
2dc7f7b3 TT |
1922 | cie->segment_size = 0; |
1923 | } | |
8da614df CV |
1924 | /* Address values in .eh_frame sections are defined to have the |
1925 | target's pointer size. Watchout: This breaks frame info for | |
1926 | targets with pointer size < address size, unless a .debug_frame | |
0963b4bd | 1927 | section exists as well. */ |
8da614df CV |
1928 | if (eh_frame_p) |
1929 | cie->ptr_size = gdbarch_ptr_bit (gdbarch) / TARGET_CHAR_BIT; | |
1930 | else | |
1931 | cie->ptr_size = cie->addr_size; | |
2dc7f7b3 | 1932 | |
cfc14b3a MK |
1933 | cie->code_alignment_factor = |
1934 | read_unsigned_leb128 (unit->abfd, buf, &bytes_read); | |
1935 | buf += bytes_read; | |
1936 | ||
1937 | cie->data_alignment_factor = | |
1938 | read_signed_leb128 (unit->abfd, buf, &bytes_read); | |
1939 | buf += bytes_read; | |
1940 | ||
28ba0b33 PB |
1941 | if (cie_version == 1) |
1942 | { | |
1943 | cie->return_address_register = read_1_byte (unit->abfd, buf); | |
1944 | bytes_read = 1; | |
1945 | } | |
1946 | else | |
1947 | cie->return_address_register = read_unsigned_leb128 (unit->abfd, buf, | |
1948 | &bytes_read); | |
4fc771b8 | 1949 | cie->return_address_register |
5e2b427d | 1950 | = dwarf2_frame_adjust_regnum (gdbarch, |
4fc771b8 DJ |
1951 | cie->return_address_register, |
1952 | eh_frame_p); | |
4bf8967c | 1953 | |
28ba0b33 | 1954 | buf += bytes_read; |
cfc14b3a | 1955 | |
7131cb6e RH |
1956 | cie->saw_z_augmentation = (*augmentation == 'z'); |
1957 | if (cie->saw_z_augmentation) | |
cfc14b3a MK |
1958 | { |
1959 | ULONGEST length; | |
1960 | ||
1961 | length = read_unsigned_leb128 (unit->abfd, buf, &bytes_read); | |
1962 | buf += bytes_read; | |
6896c0c7 RH |
1963 | if (buf > end) |
1964 | return NULL; | |
cfc14b3a MK |
1965 | cie->initial_instructions = buf + length; |
1966 | augmentation++; | |
1967 | } | |
1968 | ||
1969 | while (*augmentation) | |
1970 | { | |
1971 | /* "L" indicates a byte showing how the LSDA pointer is encoded. */ | |
1972 | if (*augmentation == 'L') | |
1973 | { | |
1974 | /* Skip. */ | |
1975 | buf++; | |
1976 | augmentation++; | |
1977 | } | |
1978 | ||
1979 | /* "R" indicates a byte indicating how FDE addresses are encoded. */ | |
1980 | else if (*augmentation == 'R') | |
1981 | { | |
1982 | cie->encoding = *buf++; | |
1983 | augmentation++; | |
1984 | } | |
1985 | ||
1986 | /* "P" indicates a personality routine in the CIE augmentation. */ | |
1987 | else if (*augmentation == 'P') | |
1988 | { | |
1234d960 | 1989 | /* Skip. Avoid indirection since we throw away the result. */ |
852483bc | 1990 | gdb_byte encoding = (*buf++) & ~DW_EH_PE_indirect; |
8da614df | 1991 | read_encoded_value (unit, encoding, cie->ptr_size, |
ae0d2f24 | 1992 | buf, &bytes_read, 0); |
f724bf08 | 1993 | buf += bytes_read; |
cfc14b3a MK |
1994 | augmentation++; |
1995 | } | |
1996 | ||
56c987f6 AO |
1997 | /* "S" indicates a signal frame, such that the return |
1998 | address must not be decremented to locate the call frame | |
1999 | info for the previous frame; it might even be the first | |
2000 | instruction of a function, so decrementing it would take | |
2001 | us to a different function. */ | |
2002 | else if (*augmentation == 'S') | |
2003 | { | |
2004 | cie->signal_frame = 1; | |
2005 | augmentation++; | |
2006 | } | |
2007 | ||
3e9a2e52 DJ |
2008 | /* Otherwise we have an unknown augmentation. Assume that either |
2009 | there is no augmentation data, or we saw a 'z' prefix. */ | |
cfc14b3a MK |
2010 | else |
2011 | { | |
3e9a2e52 DJ |
2012 | if (cie->initial_instructions) |
2013 | buf = cie->initial_instructions; | |
cfc14b3a MK |
2014 | break; |
2015 | } | |
2016 | } | |
2017 | ||
2018 | cie->initial_instructions = buf; | |
2019 | cie->end = end; | |
b01c8410 | 2020 | cie->unit = unit; |
cfc14b3a | 2021 | |
b01c8410 | 2022 | add_cie (cie_table, cie); |
cfc14b3a MK |
2023 | } |
2024 | else | |
2025 | { | |
2026 | /* This is a FDE. */ | |
2027 | struct dwarf2_fde *fde; | |
2028 | ||
6896c0c7 RH |
2029 | /* In an .eh_frame section, the CIE pointer is the delta between the |
2030 | address within the FDE where the CIE pointer is stored and the | |
2031 | address of the CIE. Convert it to an offset into the .eh_frame | |
2032 | section. */ | |
cfc14b3a MK |
2033 | if (eh_frame_p) |
2034 | { | |
cfc14b3a MK |
2035 | cie_pointer = buf - unit->dwarf_frame_buffer - cie_pointer; |
2036 | cie_pointer -= (dwarf64_p ? 8 : 4); | |
2037 | } | |
2038 | ||
6896c0c7 RH |
2039 | /* In either case, validate the result is still within the section. */ |
2040 | if (cie_pointer >= unit->dwarf_frame_size) | |
2041 | return NULL; | |
2042 | ||
cfc14b3a | 2043 | fde = (struct dwarf2_fde *) |
8b92e4d5 | 2044 | obstack_alloc (&unit->objfile->objfile_obstack, |
cfc14b3a | 2045 | sizeof (struct dwarf2_fde)); |
b01c8410 | 2046 | fde->cie = find_cie (cie_table, cie_pointer); |
cfc14b3a MK |
2047 | if (fde->cie == NULL) |
2048 | { | |
2049 | decode_frame_entry (unit, unit->dwarf_frame_buffer + cie_pointer, | |
b01c8410 PP |
2050 | eh_frame_p, cie_table, fde_table); |
2051 | fde->cie = find_cie (cie_table, cie_pointer); | |
cfc14b3a MK |
2052 | } |
2053 | ||
2054 | gdb_assert (fde->cie != NULL); | |
2055 | ||
2056 | fde->initial_location = | |
8da614df | 2057 | read_encoded_value (unit, fde->cie->encoding, fde->cie->ptr_size, |
ae0d2f24 | 2058 | buf, &bytes_read, 0); |
cfc14b3a MK |
2059 | buf += bytes_read; |
2060 | ||
2061 | fde->address_range = | |
ae0d2f24 | 2062 | read_encoded_value (unit, fde->cie->encoding & 0x0f, |
8da614df | 2063 | fde->cie->ptr_size, buf, &bytes_read, 0); |
cfc14b3a MK |
2064 | buf += bytes_read; |
2065 | ||
7131cb6e RH |
2066 | /* A 'z' augmentation in the CIE implies the presence of an |
2067 | augmentation field in the FDE as well. The only thing known | |
2068 | to be in here at present is the LSDA entry for EH. So we | |
2069 | can skip the whole thing. */ | |
2070 | if (fde->cie->saw_z_augmentation) | |
2071 | { | |
2072 | ULONGEST length; | |
2073 | ||
2074 | length = read_unsigned_leb128 (unit->abfd, buf, &bytes_read); | |
2075 | buf += bytes_read + length; | |
6896c0c7 RH |
2076 | if (buf > end) |
2077 | return NULL; | |
7131cb6e RH |
2078 | } |
2079 | ||
cfc14b3a MK |
2080 | fde->instructions = buf; |
2081 | fde->end = end; | |
2082 | ||
4bf8967c AS |
2083 | fde->eh_frame_p = eh_frame_p; |
2084 | ||
b01c8410 | 2085 | add_fde (fde_table, fde); |
cfc14b3a MK |
2086 | } |
2087 | ||
2088 | return end; | |
2089 | } | |
6896c0c7 RH |
2090 | |
2091 | /* Read a CIE or FDE in BUF and decode it. */ | |
852483bc | 2092 | static gdb_byte * |
b01c8410 PP |
2093 | decode_frame_entry (struct comp_unit *unit, gdb_byte *start, int eh_frame_p, |
2094 | struct dwarf2_cie_table *cie_table, | |
2095 | struct dwarf2_fde_table *fde_table) | |
6896c0c7 RH |
2096 | { |
2097 | enum { NONE, ALIGN4, ALIGN8, FAIL } workaround = NONE; | |
852483bc | 2098 | gdb_byte *ret; |
6896c0c7 RH |
2099 | ptrdiff_t start_offset; |
2100 | ||
2101 | while (1) | |
2102 | { | |
b01c8410 PP |
2103 | ret = decode_frame_entry_1 (unit, start, eh_frame_p, |
2104 | cie_table, fde_table); | |
6896c0c7 RH |
2105 | if (ret != NULL) |
2106 | break; | |
2107 | ||
2108 | /* We have corrupt input data of some form. */ | |
2109 | ||
2110 | /* ??? Try, weakly, to work around compiler/assembler/linker bugs | |
2111 | and mismatches wrt padding and alignment of debug sections. */ | |
2112 | /* Note that there is no requirement in the standard for any | |
2113 | alignment at all in the frame unwind sections. Testing for | |
2114 | alignment before trying to interpret data would be incorrect. | |
2115 | ||
2116 | However, GCC traditionally arranged for frame sections to be | |
2117 | sized such that the FDE length and CIE fields happen to be | |
2118 | aligned (in theory, for performance). This, unfortunately, | |
2119 | was done with .align directives, which had the side effect of | |
2120 | forcing the section to be aligned by the linker. | |
2121 | ||
2122 | This becomes a problem when you have some other producer that | |
2123 | creates frame sections that are not as strictly aligned. That | |
2124 | produces a hole in the frame info that gets filled by the | |
2125 | linker with zeros. | |
2126 | ||
2127 | The GCC behaviour is arguably a bug, but it's effectively now | |
2128 | part of the ABI, so we're now stuck with it, at least at the | |
2129 | object file level. A smart linker may decide, in the process | |
2130 | of compressing duplicate CIE information, that it can rewrite | |
2131 | the entire output section without this extra padding. */ | |
2132 | ||
2133 | start_offset = start - unit->dwarf_frame_buffer; | |
2134 | if (workaround < ALIGN4 && (start_offset & 3) != 0) | |
2135 | { | |
2136 | start += 4 - (start_offset & 3); | |
2137 | workaround = ALIGN4; | |
2138 | continue; | |
2139 | } | |
2140 | if (workaround < ALIGN8 && (start_offset & 7) != 0) | |
2141 | { | |
2142 | start += 8 - (start_offset & 7); | |
2143 | workaround = ALIGN8; | |
2144 | continue; | |
2145 | } | |
2146 | ||
2147 | /* Nothing left to try. Arrange to return as if we've consumed | |
2148 | the entire input section. Hopefully we'll get valid info from | |
2149 | the other of .debug_frame/.eh_frame. */ | |
2150 | workaround = FAIL; | |
2151 | ret = unit->dwarf_frame_buffer + unit->dwarf_frame_size; | |
2152 | break; | |
2153 | } | |
2154 | ||
2155 | switch (workaround) | |
2156 | { | |
2157 | case NONE: | |
2158 | break; | |
2159 | ||
2160 | case ALIGN4: | |
3e43a32a MS |
2161 | complaint (&symfile_complaints, _("\ |
2162 | Corrupt data in %s:%s; align 4 workaround apparently succeeded"), | |
6896c0c7 RH |
2163 | unit->dwarf_frame_section->owner->filename, |
2164 | unit->dwarf_frame_section->name); | |
2165 | break; | |
2166 | ||
2167 | case ALIGN8: | |
3e43a32a MS |
2168 | complaint (&symfile_complaints, _("\ |
2169 | Corrupt data in %s:%s; align 8 workaround apparently succeeded"), | |
6896c0c7 RH |
2170 | unit->dwarf_frame_section->owner->filename, |
2171 | unit->dwarf_frame_section->name); | |
2172 | break; | |
2173 | ||
2174 | default: | |
2175 | complaint (&symfile_complaints, | |
e2e0b3e5 | 2176 | _("Corrupt data in %s:%s"), |
6896c0c7 RH |
2177 | unit->dwarf_frame_section->owner->filename, |
2178 | unit->dwarf_frame_section->name); | |
2179 | break; | |
2180 | } | |
2181 | ||
2182 | return ret; | |
2183 | } | |
cfc14b3a MK |
2184 | \f |
2185 | ||
cfc14b3a | 2186 | /* Imported from dwarf2read.c. */ |
3e43a32a MS |
2187 | extern void dwarf2_get_section_info (struct objfile *, const char *, |
2188 | asection **, gdb_byte **, | |
2189 | bfd_size_type *); | |
cfc14b3a | 2190 | |
b01c8410 PP |
2191 | static int |
2192 | qsort_fde_cmp (const void *a, const void *b) | |
2193 | { | |
2194 | struct dwarf2_fde *aa = *(struct dwarf2_fde **)a; | |
2195 | struct dwarf2_fde *bb = *(struct dwarf2_fde **)b; | |
e5af178f | 2196 | |
b01c8410 | 2197 | if (aa->initial_location == bb->initial_location) |
e5af178f PP |
2198 | { |
2199 | if (aa->address_range != bb->address_range | |
2200 | && aa->eh_frame_p == 0 && bb->eh_frame_p == 0) | |
2201 | /* Linker bug, e.g. gold/10400. | |
2202 | Work around it by keeping stable sort order. */ | |
2203 | return (a < b) ? -1 : 1; | |
2204 | else | |
2205 | /* Put eh_frame entries after debug_frame ones. */ | |
2206 | return aa->eh_frame_p - bb->eh_frame_p; | |
2207 | } | |
b01c8410 PP |
2208 | |
2209 | return (aa->initial_location < bb->initial_location) ? -1 : 1; | |
2210 | } | |
2211 | ||
cfc14b3a MK |
2212 | void |
2213 | dwarf2_build_frame_info (struct objfile *objfile) | |
2214 | { | |
ae0d2f24 | 2215 | struct comp_unit *unit; |
852483bc | 2216 | gdb_byte *frame_ptr; |
b01c8410 PP |
2217 | struct dwarf2_cie_table cie_table; |
2218 | struct dwarf2_fde_table fde_table; | |
be391dca | 2219 | struct dwarf2_fde_table *fde_table2; |
b01c8410 PP |
2220 | |
2221 | cie_table.num_entries = 0; | |
2222 | cie_table.entries = NULL; | |
2223 | ||
2224 | fde_table.num_entries = 0; | |
2225 | fde_table.entries = NULL; | |
cfc14b3a MK |
2226 | |
2227 | /* Build a minimal decoding of the DWARF2 compilation unit. */ | |
ae0d2f24 UW |
2228 | unit = (struct comp_unit *) obstack_alloc (&objfile->objfile_obstack, |
2229 | sizeof (struct comp_unit)); | |
2230 | unit->abfd = objfile->obfd; | |
2231 | unit->objfile = objfile; | |
2232 | unit->dbase = 0; | |
2233 | unit->tbase = 0; | |
cfc14b3a | 2234 | |
dce234bc PP |
2235 | dwarf2_get_section_info (objfile, ".eh_frame", |
2236 | &unit->dwarf_frame_section, | |
2237 | &unit->dwarf_frame_buffer, | |
2238 | &unit->dwarf_frame_size); | |
2239 | if (unit->dwarf_frame_size) | |
cfc14b3a | 2240 | { |
0fd85043 | 2241 | asection *got, *txt; |
0912c7f2 | 2242 | |
0912c7f2 | 2243 | /* FIXME: kettenis/20030602: This is the DW_EH_PE_datarel base |
37b517aa MK |
2244 | that is used for the i386/amd64 target, which currently is |
2245 | the only target in GCC that supports/uses the | |
2246 | DW_EH_PE_datarel encoding. */ | |
ae0d2f24 | 2247 | got = bfd_get_section_by_name (unit->abfd, ".got"); |
0912c7f2 | 2248 | if (got) |
ae0d2f24 | 2249 | unit->dbase = got->vma; |
0912c7f2 | 2250 | |
22c7ba1a MK |
2251 | /* GCC emits the DW_EH_PE_textrel encoding type on sh and ia64 |
2252 | so far. */ | |
ae0d2f24 | 2253 | txt = bfd_get_section_by_name (unit->abfd, ".text"); |
0fd85043 | 2254 | if (txt) |
ae0d2f24 | 2255 | unit->tbase = txt->vma; |
0fd85043 | 2256 | |
ae0d2f24 UW |
2257 | frame_ptr = unit->dwarf_frame_buffer; |
2258 | while (frame_ptr < unit->dwarf_frame_buffer + unit->dwarf_frame_size) | |
b01c8410 PP |
2259 | frame_ptr = decode_frame_entry (unit, frame_ptr, 1, |
2260 | &cie_table, &fde_table); | |
2261 | ||
2262 | if (cie_table.num_entries != 0) | |
2263 | { | |
2264 | /* Reinit cie_table: debug_frame has different CIEs. */ | |
2265 | xfree (cie_table.entries); | |
2266 | cie_table.num_entries = 0; | |
2267 | cie_table.entries = NULL; | |
2268 | } | |
cfc14b3a MK |
2269 | } |
2270 | ||
dce234bc PP |
2271 | dwarf2_get_section_info (objfile, ".debug_frame", |
2272 | &unit->dwarf_frame_section, | |
2273 | &unit->dwarf_frame_buffer, | |
2274 | &unit->dwarf_frame_size); | |
2275 | if (unit->dwarf_frame_size) | |
cfc14b3a | 2276 | { |
ae0d2f24 UW |
2277 | frame_ptr = unit->dwarf_frame_buffer; |
2278 | while (frame_ptr < unit->dwarf_frame_buffer + unit->dwarf_frame_size) | |
b01c8410 PP |
2279 | frame_ptr = decode_frame_entry (unit, frame_ptr, 0, |
2280 | &cie_table, &fde_table); | |
2281 | } | |
2282 | ||
2283 | /* Discard the cie_table, it is no longer needed. */ | |
2284 | if (cie_table.num_entries != 0) | |
2285 | { | |
2286 | xfree (cie_table.entries); | |
2287 | cie_table.entries = NULL; /* Paranoia. */ | |
2288 | cie_table.num_entries = 0; /* Paranoia. */ | |
2289 | } | |
2290 | ||
be391dca TT |
2291 | /* Copy fde_table to obstack: it is needed at runtime. */ |
2292 | fde_table2 = (struct dwarf2_fde_table *) | |
2293 | obstack_alloc (&objfile->objfile_obstack, sizeof (*fde_table2)); | |
2294 | ||
2295 | if (fde_table.num_entries == 0) | |
2296 | { | |
2297 | fde_table2->entries = NULL; | |
2298 | fde_table2->num_entries = 0; | |
2299 | } | |
2300 | else | |
b01c8410 | 2301 | { |
875cdfbb PA |
2302 | struct dwarf2_fde *fde_prev = NULL; |
2303 | struct dwarf2_fde *first_non_zero_fde = NULL; | |
2304 | int i; | |
b01c8410 PP |
2305 | |
2306 | /* Prepare FDE table for lookups. */ | |
2307 | qsort (fde_table.entries, fde_table.num_entries, | |
2308 | sizeof (fde_table.entries[0]), qsort_fde_cmp); | |
2309 | ||
875cdfbb PA |
2310 | /* Check for leftovers from --gc-sections. The GNU linker sets |
2311 | the relevant symbols to zero, but doesn't zero the FDE *end* | |
2312 | ranges because there's no relocation there. It's (offset, | |
2313 | length), not (start, end). On targets where address zero is | |
2314 | just another valid address this can be a problem, since the | |
2315 | FDEs appear to be non-empty in the output --- we could pick | |
2316 | out the wrong FDE. To work around this, when overlaps are | |
2317 | detected, we prefer FDEs that do not start at zero. | |
2318 | ||
2319 | Start by finding the first FDE with non-zero start. Below | |
2320 | we'll discard all FDEs that start at zero and overlap this | |
2321 | one. */ | |
2322 | for (i = 0; i < fde_table.num_entries; i++) | |
2323 | { | |
2324 | struct dwarf2_fde *fde = fde_table.entries[i]; | |
b01c8410 | 2325 | |
875cdfbb PA |
2326 | if (fde->initial_location != 0) |
2327 | { | |
2328 | first_non_zero_fde = fde; | |
2329 | break; | |
2330 | } | |
2331 | } | |
2332 | ||
2333 | /* Since we'll be doing bsearch, squeeze out identical (except | |
2334 | for eh_frame_p) fde entries so bsearch result is predictable. | |
2335 | Also discard leftovers from --gc-sections. */ | |
be391dca | 2336 | fde_table2->num_entries = 0; |
875cdfbb PA |
2337 | for (i = 0; i < fde_table.num_entries; i++) |
2338 | { | |
2339 | struct dwarf2_fde *fde = fde_table.entries[i]; | |
2340 | ||
2341 | if (fde->initial_location == 0 | |
2342 | && first_non_zero_fde != NULL | |
2343 | && (first_non_zero_fde->initial_location | |
2344 | < fde->initial_location + fde->address_range)) | |
2345 | continue; | |
2346 | ||
2347 | if (fde_prev != NULL | |
2348 | && fde_prev->initial_location == fde->initial_location) | |
2349 | continue; | |
2350 | ||
2351 | obstack_grow (&objfile->objfile_obstack, &fde_table.entries[i], | |
2352 | sizeof (fde_table.entries[0])); | |
2353 | ++fde_table2->num_entries; | |
2354 | fde_prev = fde; | |
2355 | } | |
b01c8410 | 2356 | fde_table2->entries = obstack_finish (&objfile->objfile_obstack); |
b01c8410 PP |
2357 | |
2358 | /* Discard the original fde_table. */ | |
2359 | xfree (fde_table.entries); | |
cfc14b3a | 2360 | } |
be391dca TT |
2361 | |
2362 | set_objfile_data (objfile, dwarf2_frame_objfile_data, fde_table2); | |
cfc14b3a | 2363 | } |
0d0e1a63 MK |
2364 | |
2365 | /* Provide a prototype to silence -Wmissing-prototypes. */ | |
2366 | void _initialize_dwarf2_frame (void); | |
2367 | ||
2368 | void | |
2369 | _initialize_dwarf2_frame (void) | |
2370 | { | |
030f20e1 | 2371 | dwarf2_frame_data = gdbarch_data_register_pre_init (dwarf2_frame_init); |
8f22cb90 | 2372 | dwarf2_frame_objfile_data = register_objfile_data (); |
0d0e1a63 | 2373 | } |