xref: /netbsd/external/gpl3/gdb/dist/gdb/dwarf2/frame.c (revision 1424dfb3)
1 /* Frame unwinder for frames with DWARF Call Frame Information.
2 
3    Copyright (C) 2003-2020 Free Software Foundation, Inc.
4 
5    Contributed by Mark Kettenis.
6 
7    This file is part of GDB.
8 
9    This program is free software; you can redistribute it and/or modify
10    it under the terms of the GNU General Public License as published by
11    the Free Software Foundation; either version 3 of the License, or
12    (at your option) any later version.
13 
14    This program is distributed in the hope that it will be useful,
15    but WITHOUT ANY WARRANTY; without even the implied warranty of
16    MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
17    GNU General Public License for more details.
18 
19    You should have received a copy of the GNU General Public License
20    along with this program.  If not, see <http://www.gnu.org/licenses/>.  */
21 
22 #include "defs.h"
23 #include "dwarf2/expr.h"
24 #include "dwarf2.h"
25 #include "dwarf2/leb.h"
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"
34 #include "value.h"
35 #include "record.h"
36 
37 #include "complaints.h"
38 #include "dwarf2/frame.h"
39 #include "dwarf2/read.h"
40 #include "ax.h"
41 #include "dwarf2/loc.h"
42 #include "dwarf2/frame-tailcall.h"
43 #include "gdbsupport/gdb_binary_search.h"
44 #if GDB_SELF_TEST
45 #include "gdbsupport/selftest.h"
46 #include "selftest-arch.h"
47 #endif
48 #include <unordered_map>
49 
50 #include <algorithm>
51 
52 struct comp_unit;
53 
54 /* Call Frame Information (CFI).  */
55 
56 /* Common Information Entry (CIE).  */
57 
58 struct dwarf2_cie
59 {
60   /* Computation Unit for this CIE.  */
61   struct comp_unit *unit;
62 
63   /* Offset into the .debug_frame section where this CIE was found.
64      Used to identify this CIE.  */
65   ULONGEST cie_pointer;
66 
67   /* Constant that is factored out of all advance location
68      instructions.  */
69   ULONGEST code_alignment_factor;
70 
71   /* Constants that is factored out of all offset instructions.  */
72   LONGEST data_alignment_factor;
73 
74   /* Return address column.  */
75   ULONGEST return_address_register;
76 
77   /* Instruction sequence to initialize a register set.  */
78   const gdb_byte *initial_instructions;
79   const gdb_byte *end;
80 
81   /* Saved augmentation, in case it's needed later.  */
82   char *augmentation;
83 
84   /* Encoding of addresses.  */
85   gdb_byte encoding;
86 
87   /* Target address size in bytes.  */
88   int addr_size;
89 
90   /* Target pointer size in bytes.  */
91   int ptr_size;
92 
93   /* True if a 'z' augmentation existed.  */
94   unsigned char saw_z_augmentation;
95 
96   /* True if an 'S' augmentation existed.  */
97   unsigned char signal_frame;
98 
99   /* The version recorded in the CIE.  */
100   unsigned char version;
101 
102   /* The segment size.  */
103   unsigned char segment_size;
104 };
105 
106 /* The CIE table is used to find CIEs during parsing, but then
107    discarded.  It maps from the CIE's offset to the CIE.  */
108 typedef std::unordered_map<ULONGEST, dwarf2_cie *> dwarf2_cie_table;
109 
110 /* Frame Description Entry (FDE).  */
111 
112 struct dwarf2_fde
113 {
114   /* CIE for this FDE.  */
115   struct dwarf2_cie *cie;
116 
117   /* First location associated with this FDE.  */
118   CORE_ADDR initial_location;
119 
120   /* Number of bytes of program instructions described by this FDE.  */
121   CORE_ADDR address_range;
122 
123   /* Instruction sequence.  */
124   const gdb_byte *instructions;
125   const gdb_byte *end;
126 
127   /* True if this FDE is read from a .eh_frame instead of a .debug_frame
128      section.  */
129   unsigned char eh_frame_p;
130 };
131 
132 typedef std::vector<dwarf2_fde *> dwarf2_fde_table;
133 
134 /* A minimal decoding of DWARF2 compilation units.  We only decode
135    what's needed to get to the call frame information.  */
136 
137 struct comp_unit
138 {
comp_unitcomp_unit139   comp_unit (struct objfile *objf)
140     : abfd (objf->obfd)
141   {
142   }
143 
144   /* Keep the bfd convenient.  */
145   bfd *abfd;
146 
147   /* Pointer to the .debug_frame section loaded into memory.  */
148   const gdb_byte *dwarf_frame_buffer = nullptr;
149 
150   /* Length of the loaded .debug_frame section.  */
151   bfd_size_type dwarf_frame_size = 0;
152 
153   /* Pointer to the .debug_frame section.  */
154   asection *dwarf_frame_section = nullptr;
155 
156   /* Base for DW_EH_PE_datarel encodings.  */
157   bfd_vma dbase = 0;
158 
159   /* Base for DW_EH_PE_textrel encodings.  */
160   bfd_vma tbase = 0;
161 
162   /* The FDE table.  */
163   dwarf2_fde_table fde_table;
164 
165   /* Hold data used by this module.  */
166   auto_obstack obstack;
167 };
168 
169 static struct dwarf2_fde *dwarf2_frame_find_fde
170   (CORE_ADDR *pc, dwarf2_per_objfile **out_per_objfile);
171 
172 static int dwarf2_frame_adjust_regnum (struct gdbarch *gdbarch, int regnum,
173 				       int eh_frame_p);
174 
175 static CORE_ADDR read_encoded_value (struct comp_unit *unit, gdb_byte encoding,
176 				     int ptr_len, const gdb_byte *buf,
177 				     unsigned int *bytes_read_ptr,
178 				     CORE_ADDR func_base);
179 
180 
181 /* See dwarf2-frame.h.  */
182 bool dwarf2_frame_unwinders_enabled_p = true;
183 
184 /* Store the length the expression for the CFA in the `cfa_reg' field,
185    which is unused in that case.  */
186 #define cfa_exp_len cfa_reg
187 
dwarf2_frame_state(CORE_ADDR pc_,struct dwarf2_cie * cie)188 dwarf2_frame_state::dwarf2_frame_state (CORE_ADDR pc_, struct dwarf2_cie *cie)
189   : pc (pc_), data_align (cie->data_alignment_factor),
190     code_align (cie->code_alignment_factor),
191     retaddr_column (cie->return_address_register)
192 {
193 }
194 
195 
196 /* Helper functions for execute_stack_op.  */
197 
198 static CORE_ADDR
read_addr_from_reg(struct frame_info * this_frame,int reg)199 read_addr_from_reg (struct frame_info *this_frame, int reg)
200 {
201   struct gdbarch *gdbarch = get_frame_arch (this_frame);
202   int regnum = dwarf_reg_to_regnum_or_error (gdbarch, reg);
203 
204   return address_from_register (regnum, this_frame);
205 }
206 
207 /* Execute the required actions for both the DW_CFA_restore and
208 DW_CFA_restore_extended instructions.  */
209 static void
dwarf2_restore_rule(struct gdbarch * gdbarch,ULONGEST reg_num,struct dwarf2_frame_state * fs,int eh_frame_p)210 dwarf2_restore_rule (struct gdbarch *gdbarch, ULONGEST reg_num,
211 		     struct dwarf2_frame_state *fs, int eh_frame_p)
212 {
213   ULONGEST reg;
214 
215   reg = dwarf2_frame_adjust_regnum (gdbarch, reg_num, eh_frame_p);
216   fs->regs.alloc_regs (reg + 1);
217 
218   /* Check if this register was explicitly initialized in the
219   CIE initial instructions.  If not, default the rule to
220   UNSPECIFIED.  */
221   if (reg < fs->initial.reg.size ())
222     fs->regs.reg[reg] = fs->initial.reg[reg];
223   else
224     fs->regs.reg[reg].how = DWARF2_FRAME_REG_UNSPECIFIED;
225 
226   if (fs->regs.reg[reg].how == DWARF2_FRAME_REG_UNSPECIFIED)
227     {
228       int regnum = dwarf_reg_to_regnum (gdbarch, reg);
229 
230       complaint (_("\
231 incomplete CFI data; DW_CFA_restore unspecified\n\
232 register %s (#%d) at %s"),
233 		 gdbarch_register_name (gdbarch, regnum), regnum,
234 		 paddress (gdbarch, fs->pc));
235     }
236 }
237 
238 class dwarf_expr_executor : public dwarf_expr_context
239 {
240 public:
241 
dwarf_expr_executor(dwarf2_per_objfile * per_objfile)242   dwarf_expr_executor (dwarf2_per_objfile *per_objfile)
243     : dwarf_expr_context (per_objfile)
244   {}
245 
246   struct frame_info *this_frame;
247 
read_addr_from_reg(int reg)248   CORE_ADDR read_addr_from_reg (int reg) override
249   {
250     return ::read_addr_from_reg (this_frame, reg);
251   }
252 
get_reg_value(struct type * type,int reg)253   struct value *get_reg_value (struct type *type, int reg) override
254   {
255     struct gdbarch *gdbarch = get_frame_arch (this_frame);
256     int regnum = dwarf_reg_to_regnum_or_error (gdbarch, reg);
257 
258     return value_from_register (type, regnum, this_frame);
259   }
260 
read_mem(gdb_byte * buf,CORE_ADDR addr,size_t len)261   void read_mem (gdb_byte *buf, CORE_ADDR addr, size_t len) override
262   {
263     read_memory (addr, buf, len);
264   }
265 
get_frame_base(const gdb_byte ** start,size_t * length)266   void get_frame_base (const gdb_byte **start, size_t *length) override
267   {
268     invalid ("DW_OP_fbreg");
269   }
270 
push_dwarf_reg_entry_value(enum call_site_parameter_kind kind,union call_site_parameter_u kind_u,int deref_size)271   void push_dwarf_reg_entry_value (enum call_site_parameter_kind kind,
272 				   union call_site_parameter_u kind_u,
273 				   int deref_size) override
274   {
275     invalid ("DW_OP_entry_value");
276   }
277 
get_object_address()278   CORE_ADDR get_object_address () override
279   {
280     invalid ("DW_OP_push_object_address");
281   }
282 
get_frame_cfa()283   CORE_ADDR get_frame_cfa () override
284   {
285     invalid ("DW_OP_call_frame_cfa");
286   }
287 
get_tls_address(CORE_ADDR offset)288   CORE_ADDR get_tls_address (CORE_ADDR offset) override
289   {
290     invalid ("DW_OP_form_tls_address");
291   }
292 
dwarf_call(cu_offset die_offset)293   void dwarf_call (cu_offset die_offset) override
294   {
295     invalid ("DW_OP_call*");
296   }
297 
dwarf_variable_value(sect_offset sect_off)298   struct value *dwarf_variable_value (sect_offset sect_off) override
299   {
300     invalid ("DW_OP_GNU_variable_value");
301   }
302 
get_addr_index(unsigned int index)303   CORE_ADDR get_addr_index (unsigned int index) override
304   {
305     invalid ("DW_OP_addrx or DW_OP_GNU_addr_index");
306   }
307 
308  private:
309 
invalid(const char * op)310   void invalid (const char *op) ATTRIBUTE_NORETURN
311   {
312     error (_("%s is invalid in this context"), op);
313   }
314 };
315 
316 static CORE_ADDR
execute_stack_op(const gdb_byte * exp,ULONGEST len,int addr_size,struct frame_info * this_frame,CORE_ADDR initial,int initial_in_stack_memory,dwarf2_per_objfile * per_objfile)317 execute_stack_op (const gdb_byte *exp, ULONGEST len, int addr_size,
318 		  struct frame_info *this_frame, CORE_ADDR initial,
319 		  int initial_in_stack_memory, dwarf2_per_objfile *per_objfile)
320 {
321   CORE_ADDR result;
322 
323   dwarf_expr_executor ctx (per_objfile);
324   scoped_value_mark free_values;
325 
326   ctx.this_frame = this_frame;
327   ctx.gdbarch = get_frame_arch (this_frame);
328   ctx.addr_size = addr_size;
329   ctx.ref_addr_size = -1;
330 
331   ctx.push_address (initial, initial_in_stack_memory);
332   ctx.eval (exp, len);
333 
334   if (ctx.location == DWARF_VALUE_MEMORY)
335     result = ctx.fetch_address (0);
336   else if (ctx.location == DWARF_VALUE_REGISTER)
337     result = ctx.read_addr_from_reg (value_as_long (ctx.fetch (0)));
338   else
339     {
340       /* This is actually invalid DWARF, but if we ever do run across
341 	 it somehow, we might as well support it.  So, instead, report
342 	 it as unimplemented.  */
343       error (_("\
344 Not implemented: computing unwound register using explicit value operator"));
345     }
346 
347   return result;
348 }
349 
350 
351 /* Execute FDE program from INSN_PTR possibly up to INSN_END or up to inferior
352    PC.  Modify FS state accordingly.  Return current INSN_PTR where the
353    execution has stopped, one can resume it on the next call.  */
354 
355 static const gdb_byte *
execute_cfa_program(struct dwarf2_fde * fde,const gdb_byte * insn_ptr,const gdb_byte * insn_end,struct gdbarch * gdbarch,CORE_ADDR pc,struct dwarf2_frame_state * fs,CORE_ADDR text_offset)356 execute_cfa_program (struct dwarf2_fde *fde, const gdb_byte *insn_ptr,
357 		     const gdb_byte *insn_end, struct gdbarch *gdbarch,
358 		     CORE_ADDR pc, struct dwarf2_frame_state *fs,
359 		     CORE_ADDR text_offset)
360 {
361   int eh_frame_p = fde->eh_frame_p;
362   unsigned int bytes_read;
363   enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
364 
365   while (insn_ptr < insn_end && fs->pc <= pc)
366     {
367       gdb_byte insn = *insn_ptr++;
368       uint64_t utmp, reg;
369       int64_t offset;
370 
371       if ((insn & 0xc0) == DW_CFA_advance_loc)
372 	fs->pc += (insn & 0x3f) * fs->code_align;
373       else if ((insn & 0xc0) == DW_CFA_offset)
374 	{
375 	  reg = insn & 0x3f;
376 	  reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p);
377 	  insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
378 	  offset = utmp * fs->data_align;
379 	  fs->regs.alloc_regs (reg + 1);
380 	  fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_OFFSET;
381 	  fs->regs.reg[reg].loc.offset = offset;
382 	}
383       else if ((insn & 0xc0) == DW_CFA_restore)
384 	{
385 	  reg = insn & 0x3f;
386 	  dwarf2_restore_rule (gdbarch, reg, fs, eh_frame_p);
387 	}
388       else
389 	{
390 	  switch (insn)
391 	    {
392 	    case DW_CFA_set_loc:
393 	      fs->pc = read_encoded_value (fde->cie->unit, fde->cie->encoding,
394 					   fde->cie->ptr_size, insn_ptr,
395 					   &bytes_read, fde->initial_location);
396 	      /* Apply the text offset for relocatable objects.  */
397 	      fs->pc += text_offset;
398 	      insn_ptr += bytes_read;
399 	      break;
400 
401 	    case DW_CFA_advance_loc1:
402 	      utmp = extract_unsigned_integer (insn_ptr, 1, byte_order);
403 	      fs->pc += utmp * fs->code_align;
404 	      insn_ptr++;
405 	      break;
406 	    case DW_CFA_advance_loc2:
407 	      utmp = extract_unsigned_integer (insn_ptr, 2, byte_order);
408 	      fs->pc += utmp * fs->code_align;
409 	      insn_ptr += 2;
410 	      break;
411 	    case DW_CFA_advance_loc4:
412 	      utmp = extract_unsigned_integer (insn_ptr, 4, byte_order);
413 	      fs->pc += utmp * fs->code_align;
414 	      insn_ptr += 4;
415 	      break;
416 
417 	    case DW_CFA_offset_extended:
418 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
419 	      reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p);
420 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
421 	      offset = utmp * fs->data_align;
422 	      fs->regs.alloc_regs (reg + 1);
423 	      fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_OFFSET;
424 	      fs->regs.reg[reg].loc.offset = offset;
425 	      break;
426 
427 	    case DW_CFA_restore_extended:
428 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
429 	      dwarf2_restore_rule (gdbarch, reg, fs, eh_frame_p);
430 	      break;
431 
432 	    case DW_CFA_undefined:
433 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
434 	      reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p);
435 	      fs->regs.alloc_regs (reg + 1);
436 	      fs->regs.reg[reg].how = DWARF2_FRAME_REG_UNDEFINED;
437 	      break;
438 
439 	    case DW_CFA_same_value:
440 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
441 	      reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p);
442 	      fs->regs.alloc_regs (reg + 1);
443 	      fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAME_VALUE;
444 	      break;
445 
446 	    case DW_CFA_register:
447 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
448 	      reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p);
449 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
450 	      utmp = dwarf2_frame_adjust_regnum (gdbarch, utmp, eh_frame_p);
451 	      fs->regs.alloc_regs (reg + 1);
452 	      fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_REG;
453 	      fs->regs.reg[reg].loc.reg = utmp;
454 	      break;
455 
456 	    case DW_CFA_remember_state:
457 	      {
458 		struct dwarf2_frame_state_reg_info *new_rs;
459 
460 		new_rs = new dwarf2_frame_state_reg_info (fs->regs);
461 		fs->regs.prev = new_rs;
462 	      }
463 	      break;
464 
465 	    case DW_CFA_restore_state:
466 	      {
467 		struct dwarf2_frame_state_reg_info *old_rs = fs->regs.prev;
468 
469 		if (old_rs == NULL)
470 		  {
471 		    complaint (_("\
472 bad CFI data; mismatched DW_CFA_restore_state at %s"),
473 			       paddress (gdbarch, fs->pc));
474 		  }
475 		else
476 		  fs->regs = std::move (*old_rs);
477 	      }
478 	      break;
479 
480 	    case DW_CFA_def_cfa:
481 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
482 	      fs->regs.cfa_reg = reg;
483 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
484 
485 	      if (fs->armcc_cfa_offsets_sf)
486 		utmp *= fs->data_align;
487 
488 	      fs->regs.cfa_offset = utmp;
489 	      fs->regs.cfa_how = CFA_REG_OFFSET;
490 	      break;
491 
492 	    case DW_CFA_def_cfa_register:
493 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
494 	      fs->regs.cfa_reg = dwarf2_frame_adjust_regnum (gdbarch, reg,
495                                                              eh_frame_p);
496 	      fs->regs.cfa_how = CFA_REG_OFFSET;
497 	      break;
498 
499 	    case DW_CFA_def_cfa_offset:
500 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
501 
502 	      if (fs->armcc_cfa_offsets_sf)
503 		utmp *= fs->data_align;
504 
505 	      fs->regs.cfa_offset = utmp;
506 	      /* cfa_how deliberately not set.  */
507 	      break;
508 
509 	    case DW_CFA_nop:
510 	      break;
511 
512 	    case DW_CFA_def_cfa_expression:
513 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
514 	      fs->regs.cfa_exp_len = utmp;
515 	      fs->regs.cfa_exp = insn_ptr;
516 	      fs->regs.cfa_how = CFA_EXP;
517 	      insn_ptr += fs->regs.cfa_exp_len;
518 	      break;
519 
520 	    case DW_CFA_expression:
521 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
522 	      reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p);
523 	      fs->regs.alloc_regs (reg + 1);
524 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
525 	      fs->regs.reg[reg].loc.exp.start = insn_ptr;
526 	      fs->regs.reg[reg].loc.exp.len = utmp;
527 	      fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_EXP;
528 	      insn_ptr += utmp;
529 	      break;
530 
531 	    case DW_CFA_offset_extended_sf:
532 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
533 	      reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p);
534 	      insn_ptr = safe_read_sleb128 (insn_ptr, insn_end, &offset);
535 	      offset *= fs->data_align;
536 	      fs->regs.alloc_regs (reg + 1);
537 	      fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_OFFSET;
538 	      fs->regs.reg[reg].loc.offset = offset;
539 	      break;
540 
541 	    case DW_CFA_val_offset:
542 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
543 	      fs->regs.alloc_regs (reg + 1);
544 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
545 	      offset = utmp * fs->data_align;
546 	      fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_VAL_OFFSET;
547 	      fs->regs.reg[reg].loc.offset = offset;
548 	      break;
549 
550 	    case DW_CFA_val_offset_sf:
551 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
552 	      fs->regs.alloc_regs (reg + 1);
553 	      insn_ptr = safe_read_sleb128 (insn_ptr, insn_end, &offset);
554 	      offset *= fs->data_align;
555 	      fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_VAL_OFFSET;
556 	      fs->regs.reg[reg].loc.offset = offset;
557 	      break;
558 
559 	    case DW_CFA_val_expression:
560 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
561 	      fs->regs.alloc_regs (reg + 1);
562 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
563 	      fs->regs.reg[reg].loc.exp.start = insn_ptr;
564 	      fs->regs.reg[reg].loc.exp.len = utmp;
565 	      fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_VAL_EXP;
566 	      insn_ptr += utmp;
567 	      break;
568 
569 	    case DW_CFA_def_cfa_sf:
570 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
571 	      fs->regs.cfa_reg = dwarf2_frame_adjust_regnum (gdbarch, reg,
572                                                              eh_frame_p);
573 	      insn_ptr = safe_read_sleb128 (insn_ptr, insn_end, &offset);
574 	      fs->regs.cfa_offset = offset * fs->data_align;
575 	      fs->regs.cfa_how = CFA_REG_OFFSET;
576 	      break;
577 
578 	    case DW_CFA_def_cfa_offset_sf:
579 	      insn_ptr = safe_read_sleb128 (insn_ptr, insn_end, &offset);
580 	      fs->regs.cfa_offset = offset * fs->data_align;
581 	      /* cfa_how deliberately not set.  */
582 	      break;
583 
584 	    case DW_CFA_GNU_args_size:
585 	      /* Ignored.  */
586 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
587 	      break;
588 
589 	    case DW_CFA_GNU_negative_offset_extended:
590 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &reg);
591 	      reg = dwarf2_frame_adjust_regnum (gdbarch, reg, eh_frame_p);
592 	      insn_ptr = safe_read_uleb128 (insn_ptr, insn_end, &utmp);
593 	      offset = utmp * fs->data_align;
594 	      fs->regs.alloc_regs (reg + 1);
595 	      fs->regs.reg[reg].how = DWARF2_FRAME_REG_SAVED_OFFSET;
596 	      fs->regs.reg[reg].loc.offset = -offset;
597 	      break;
598 
599 	    default:
600 	      if (insn >= DW_CFA_lo_user && insn <= DW_CFA_hi_user)
601 		{
602 		  /* Handle vendor-specific CFI for different architectures.  */
603 		  if (!gdbarch_execute_dwarf_cfa_vendor_op (gdbarch, insn, fs))
604 		    error (_("Call Frame Instruction op %d in vendor extension "
605 			     "space is not handled on this architecture."),
606 			   insn);
607 		}
608 	      else
609 		internal_error (__FILE__, __LINE__,
610 				_("Unknown CFI encountered."));
611 	    }
612 	}
613     }
614 
615   if (fs->initial.reg.empty ())
616     {
617       /* Don't allow remember/restore between CIE and FDE programs.  */
618       delete fs->regs.prev;
619       fs->regs.prev = NULL;
620     }
621 
622   return insn_ptr;
623 }
624 
625 #if GDB_SELF_TEST
626 
627 namespace selftests {
628 
629 /* Unit test to function execute_cfa_program.  */
630 
631 static void
execute_cfa_program_test(struct gdbarch * gdbarch)632 execute_cfa_program_test (struct gdbarch *gdbarch)
633 {
634   struct dwarf2_fde fde;
635   struct dwarf2_cie cie;
636 
637   memset (&fde, 0, sizeof fde);
638   memset (&cie, 0, sizeof cie);
639 
640   cie.data_alignment_factor = -4;
641   cie.code_alignment_factor = 2;
642   fde.cie = &cie;
643 
644   dwarf2_frame_state fs (0, fde.cie);
645 
646   gdb_byte insns[] =
647     {
648       DW_CFA_def_cfa, 1, 4,  /* DW_CFA_def_cfa: r1 ofs 4 */
649       DW_CFA_offset | 0x2, 1,  /* DW_CFA_offset: r2 at cfa-4 */
650       DW_CFA_remember_state,
651       DW_CFA_restore_state,
652     };
653 
654   const gdb_byte *insn_end = insns + sizeof (insns);
655   const gdb_byte *out = execute_cfa_program (&fde, insns, insn_end, gdbarch,
656 					     0, &fs, 0);
657 
658   SELF_CHECK (out == insn_end);
659   SELF_CHECK (fs.pc == 0);
660 
661   /* The instructions above only use r1 and r2, but the register numbers
662      used are adjusted by dwarf2_frame_adjust_regnum.  */
663   auto r1 = dwarf2_frame_adjust_regnum (gdbarch, 1, fde.eh_frame_p);
664   auto r2 = dwarf2_frame_adjust_regnum (gdbarch, 2, fde.eh_frame_p);
665 
666   SELF_CHECK (fs.regs.reg.size () == (std::max (r1, r2) + 1));
667 
668   SELF_CHECK (fs.regs.reg[r2].how == DWARF2_FRAME_REG_SAVED_OFFSET);
669   SELF_CHECK (fs.regs.reg[r2].loc.offset == -4);
670 
671   for (auto i = 0; i < fs.regs.reg.size (); i++)
672     if (i != r2)
673       SELF_CHECK (fs.regs.reg[i].how == DWARF2_FRAME_REG_UNSPECIFIED);
674 
675   SELF_CHECK (fs.regs.cfa_reg == 1);
676   SELF_CHECK (fs.regs.cfa_offset == 4);
677   SELF_CHECK (fs.regs.cfa_how == CFA_REG_OFFSET);
678   SELF_CHECK (fs.regs.cfa_exp == NULL);
679   SELF_CHECK (fs.regs.prev == NULL);
680 }
681 
682 } // namespace selftests
683 #endif /* GDB_SELF_TEST */
684 
685 
686 
687 /* Architecture-specific operations.  */
688 
689 /* Per-architecture data key.  */
690 static struct gdbarch_data *dwarf2_frame_data;
691 
692 struct dwarf2_frame_ops
693 {
694   /* Pre-initialize the register state REG for register REGNUM.  */
695   void (*init_reg) (struct gdbarch *, int, struct dwarf2_frame_state_reg *,
696 		    struct frame_info *);
697 
698   /* Check whether the THIS_FRAME is a signal trampoline.  */
699   int (*signal_frame_p) (struct gdbarch *, struct frame_info *);
700 
701   /* Convert .eh_frame register number to DWARF register number, or
702      adjust .debug_frame register number.  */
703   int (*adjust_regnum) (struct gdbarch *, int, int);
704 };
705 
706 /* Default architecture-specific register state initialization
707    function.  */
708 
709 static void
dwarf2_frame_default_init_reg(struct gdbarch * gdbarch,int regnum,struct dwarf2_frame_state_reg * reg,struct frame_info * this_frame)710 dwarf2_frame_default_init_reg (struct gdbarch *gdbarch, int regnum,
711 			       struct dwarf2_frame_state_reg *reg,
712 			       struct frame_info *this_frame)
713 {
714   /* If we have a register that acts as a program counter, mark it as
715      a destination for the return address.  If we have a register that
716      serves as the stack pointer, arrange for it to be filled with the
717      call frame address (CFA).  The other registers are marked as
718      unspecified.
719 
720      We copy the return address to the program counter, since many
721      parts in GDB assume that it is possible to get the return address
722      by unwinding the program counter register.  However, on ISA's
723      with a dedicated return address register, the CFI usually only
724      contains information to unwind that return address register.
725 
726      The reason we're treating the stack pointer special here is
727      because in many cases GCC doesn't emit CFI for the stack pointer
728      and implicitly assumes that it is equal to the CFA.  This makes
729      some sense since the DWARF specification (version 3, draft 8,
730      p. 102) says that:
731 
732      "Typically, the CFA is defined to be the value of the stack
733      pointer at the call site in the previous frame (which may be
734      different from its value on entry to the current frame)."
735 
736      However, this isn't true for all platforms supported by GCC
737      (e.g. IBM S/390 and zSeries).  Those architectures should provide
738      their own architecture-specific initialization function.  */
739 
740   if (regnum == gdbarch_pc_regnum (gdbarch))
741     reg->how = DWARF2_FRAME_REG_RA;
742   else if (regnum == gdbarch_sp_regnum (gdbarch))
743     reg->how = DWARF2_FRAME_REG_CFA;
744 }
745 
746 /* Return a default for the architecture-specific operations.  */
747 
748 static void *
dwarf2_frame_init(struct obstack * obstack)749 dwarf2_frame_init (struct obstack *obstack)
750 {
751   struct dwarf2_frame_ops *ops;
752 
753   ops = OBSTACK_ZALLOC (obstack, struct dwarf2_frame_ops);
754   ops->init_reg = dwarf2_frame_default_init_reg;
755   return ops;
756 }
757 
758 /* Set the architecture-specific register state initialization
759    function for GDBARCH to INIT_REG.  */
760 
761 void
dwarf2_frame_set_init_reg(struct gdbarch * gdbarch,void (* init_reg)(struct gdbarch *,int,struct dwarf2_frame_state_reg *,struct frame_info *))762 dwarf2_frame_set_init_reg (struct gdbarch *gdbarch,
763 			   void (*init_reg) (struct gdbarch *, int,
764 					     struct dwarf2_frame_state_reg *,
765 					     struct frame_info *))
766 {
767   struct dwarf2_frame_ops *ops
768     = (struct dwarf2_frame_ops *) gdbarch_data (gdbarch, dwarf2_frame_data);
769 
770   ops->init_reg = init_reg;
771 }
772 
773 /* Pre-initialize the register state REG for register REGNUM.  */
774 
775 static void
dwarf2_frame_init_reg(struct gdbarch * gdbarch,int regnum,struct dwarf2_frame_state_reg * reg,struct frame_info * this_frame)776 dwarf2_frame_init_reg (struct gdbarch *gdbarch, int regnum,
777 		       struct dwarf2_frame_state_reg *reg,
778 		       struct frame_info *this_frame)
779 {
780   struct dwarf2_frame_ops *ops
781     = (struct dwarf2_frame_ops *) gdbarch_data (gdbarch, dwarf2_frame_data);
782 
783   ops->init_reg (gdbarch, regnum, reg, this_frame);
784 }
785 
786 /* Set the architecture-specific signal trampoline recognition
787    function for GDBARCH to SIGNAL_FRAME_P.  */
788 
789 void
dwarf2_frame_set_signal_frame_p(struct gdbarch * gdbarch,int (* signal_frame_p)(struct gdbarch *,struct frame_info *))790 dwarf2_frame_set_signal_frame_p (struct gdbarch *gdbarch,
791 				 int (*signal_frame_p) (struct gdbarch *,
792 							struct frame_info *))
793 {
794   struct dwarf2_frame_ops *ops
795     = (struct dwarf2_frame_ops *) gdbarch_data (gdbarch, dwarf2_frame_data);
796 
797   ops->signal_frame_p = signal_frame_p;
798 }
799 
800 /* Query the architecture-specific signal frame recognizer for
801    THIS_FRAME.  */
802 
803 static int
dwarf2_frame_signal_frame_p(struct gdbarch * gdbarch,struct frame_info * this_frame)804 dwarf2_frame_signal_frame_p (struct gdbarch *gdbarch,
805 			     struct frame_info *this_frame)
806 {
807   struct dwarf2_frame_ops *ops
808     = (struct dwarf2_frame_ops *) gdbarch_data (gdbarch, dwarf2_frame_data);
809 
810   if (ops->signal_frame_p == NULL)
811     return 0;
812   return ops->signal_frame_p (gdbarch, this_frame);
813 }
814 
815 /* Set the architecture-specific adjustment of .eh_frame and .debug_frame
816    register numbers.  */
817 
818 void
dwarf2_frame_set_adjust_regnum(struct gdbarch * gdbarch,int (* adjust_regnum)(struct gdbarch *,int,int))819 dwarf2_frame_set_adjust_regnum (struct gdbarch *gdbarch,
820 				int (*adjust_regnum) (struct gdbarch *,
821 						      int, int))
822 {
823   struct dwarf2_frame_ops *ops
824     = (struct dwarf2_frame_ops *) gdbarch_data (gdbarch, dwarf2_frame_data);
825 
826   ops->adjust_regnum = adjust_regnum;
827 }
828 
829 /* Translate a .eh_frame register to DWARF register, or adjust a .debug_frame
830    register.  */
831 
832 static int
dwarf2_frame_adjust_regnum(struct gdbarch * gdbarch,int regnum,int eh_frame_p)833 dwarf2_frame_adjust_regnum (struct gdbarch *gdbarch,
834 			    int regnum, int eh_frame_p)
835 {
836   struct dwarf2_frame_ops *ops
837     = (struct dwarf2_frame_ops *) gdbarch_data (gdbarch, dwarf2_frame_data);
838 
839   if (ops->adjust_regnum == NULL)
840     return regnum;
841   return ops->adjust_regnum (gdbarch, regnum, eh_frame_p);
842 }
843 
844 static void
dwarf2_frame_find_quirks(struct dwarf2_frame_state * fs,struct dwarf2_fde * fde)845 dwarf2_frame_find_quirks (struct dwarf2_frame_state *fs,
846 			  struct dwarf2_fde *fde)
847 {
848   struct compunit_symtab *cust;
849 
850   cust = find_pc_compunit_symtab (fs->pc);
851   if (cust == NULL)
852     return;
853 
854   if (producer_is_realview (COMPUNIT_PRODUCER (cust)))
855     {
856       if (fde->cie->version == 1)
857 	fs->armcc_cfa_offsets_sf = 1;
858 
859       if (fde->cie->version == 1)
860 	fs->armcc_cfa_offsets_reversed = 1;
861 
862       /* The reversed offset problem is present in some compilers
863 	 using DWARF3, but it was eventually fixed.  Check the ARM
864 	 defined augmentations, which are in the format "armcc" followed
865 	 by a list of one-character options.  The "+" option means
866 	 this problem is fixed (no quirk needed).  If the armcc
867 	 augmentation is missing, the quirk is needed.  */
868       if (fde->cie->version == 3
869 	  && (!startswith (fde->cie->augmentation, "armcc")
870 	      || strchr (fde->cie->augmentation + 5, '+') == NULL))
871 	fs->armcc_cfa_offsets_reversed = 1;
872 
873       return;
874     }
875 }
876 
877 
878 /* See dwarf2-frame.h.  */
879 
880 int
dwarf2_fetch_cfa_info(struct gdbarch * gdbarch,CORE_ADDR pc,struct dwarf2_per_cu_data * data,int * regnum_out,LONGEST * offset_out,CORE_ADDR * text_offset_out,const gdb_byte ** cfa_start_out,const gdb_byte ** cfa_end_out)881 dwarf2_fetch_cfa_info (struct gdbarch *gdbarch, CORE_ADDR pc,
882 		       struct dwarf2_per_cu_data *data,
883 		       int *regnum_out, LONGEST *offset_out,
884 		       CORE_ADDR *text_offset_out,
885 		       const gdb_byte **cfa_start_out,
886 		       const gdb_byte **cfa_end_out)
887 {
888   struct dwarf2_fde *fde;
889   dwarf2_per_objfile *per_objfile;
890   CORE_ADDR pc1 = pc;
891 
892   /* Find the correct FDE.  */
893   fde = dwarf2_frame_find_fde (&pc1, &per_objfile);
894   if (fde == NULL)
895     error (_("Could not compute CFA; needed to translate this expression"));
896 
897   gdb_assert (per_objfile != nullptr);
898 
899   dwarf2_frame_state fs (pc1, fde->cie);
900 
901   /* Check for "quirks" - known bugs in producers.  */
902   dwarf2_frame_find_quirks (&fs, fde);
903 
904   /* First decode all the insns in the CIE.  */
905   execute_cfa_program (fde, fde->cie->initial_instructions,
906 		       fde->cie->end, gdbarch, pc, &fs,
907 		       per_objfile->objfile->text_section_offset ());
908 
909   /* Save the initialized register set.  */
910   fs.initial = fs.regs;
911 
912   /* Then decode the insns in the FDE up to our target PC.  */
913   execute_cfa_program (fde, fde->instructions, fde->end, gdbarch, pc, &fs,
914 		       per_objfile->objfile->text_section_offset ());
915 
916   /* Calculate the CFA.  */
917   switch (fs.regs.cfa_how)
918     {
919     case CFA_REG_OFFSET:
920       {
921 	int regnum = dwarf_reg_to_regnum_or_error (gdbarch, fs.regs.cfa_reg);
922 
923 	*regnum_out = regnum;
924 	if (fs.armcc_cfa_offsets_reversed)
925 	  *offset_out = -fs.regs.cfa_offset;
926 	else
927 	  *offset_out = fs.regs.cfa_offset;
928 	return 1;
929       }
930 
931     case CFA_EXP:
932       *text_offset_out = per_objfile->objfile->text_section_offset ();
933       *cfa_start_out = fs.regs.cfa_exp;
934       *cfa_end_out = fs.regs.cfa_exp + fs.regs.cfa_exp_len;
935       return 0;
936 
937     default:
938       internal_error (__FILE__, __LINE__, _("Unknown CFA rule."));
939     }
940 }
941 
942 
943 struct dwarf2_frame_cache
944 {
945   /* DWARF Call Frame Address.  */
946   CORE_ADDR cfa;
947 
948   /* Set if the return address column was marked as unavailable
949      (required non-collected memory or registers to compute).  */
950   int unavailable_retaddr;
951 
952   /* Set if the return address column was marked as undefined.  */
953   int undefined_retaddr;
954 
955   /* Saved registers, indexed by GDB register number, not by DWARF
956      register number.  */
957   struct dwarf2_frame_state_reg *reg;
958 
959   /* Return address register.  */
960   struct dwarf2_frame_state_reg retaddr_reg;
961 
962   /* Target address size in bytes.  */
963   int addr_size;
964 
965   /* The dwarf2_per_objfile from which this frame description came.  */
966   dwarf2_per_objfile *per_objfile;
967 
968   /* If not NULL then this frame is the bottom frame of a TAILCALL_FRAME
969      sequence.  If NULL then it is a normal case with no TAILCALL_FRAME
970      involved.  Non-bottom frames of a virtual tail call frames chain use
971      dwarf2_tailcall_frame_unwind unwinder so this field does not apply for
972      them.  */
973   void *tailcall_cache;
974 };
975 
976 static struct dwarf2_frame_cache *
dwarf2_frame_cache(struct frame_info * this_frame,void ** this_cache)977 dwarf2_frame_cache (struct frame_info *this_frame, void **this_cache)
978 {
979   struct gdbarch *gdbarch = get_frame_arch (this_frame);
980   const int num_regs = gdbarch_num_cooked_regs (gdbarch);
981   struct dwarf2_frame_cache *cache;
982   struct dwarf2_fde *fde;
983   CORE_ADDR entry_pc;
984   const gdb_byte *instr;
985 
986   if (*this_cache)
987     return (struct dwarf2_frame_cache *) *this_cache;
988 
989   /* Allocate a new cache.  */
990   cache = FRAME_OBSTACK_ZALLOC (struct dwarf2_frame_cache);
991   cache->reg = FRAME_OBSTACK_CALLOC (num_regs, struct dwarf2_frame_state_reg);
992   *this_cache = cache;
993 
994   /* Unwind the PC.
995 
996      Note that if the next frame is never supposed to return (i.e. a call
997      to abort), the compiler might optimize away the instruction at
998      its return address.  As a result the return address will
999      point at some random instruction, and the CFI for that
1000      instruction is probably worthless to us.  GCC's unwinder solves
1001      this problem by substracting 1 from the return address to get an
1002      address in the middle of a presumed call instruction (or the
1003      instruction in the associated delay slot).  This should only be
1004      done for "normal" frames and not for resume-type frames (signal
1005      handlers, sentinel frames, dummy frames).  The function
1006      get_frame_address_in_block does just this.  It's not clear how
1007      reliable the method is though; there is the potential for the
1008      register state pre-call being different to that on return.  */
1009   CORE_ADDR pc1 = get_frame_address_in_block (this_frame);
1010 
1011   /* Find the correct FDE.  */
1012   fde = dwarf2_frame_find_fde (&pc1, &cache->per_objfile);
1013   gdb_assert (fde != NULL);
1014   gdb_assert (cache->per_objfile != nullptr);
1015 
1016   /* Allocate and initialize the frame state.  */
1017   struct dwarf2_frame_state fs (pc1, fde->cie);
1018 
1019   cache->addr_size = fde->cie->addr_size;
1020 
1021   /* Check for "quirks" - known bugs in producers.  */
1022   dwarf2_frame_find_quirks (&fs, fde);
1023 
1024   /* First decode all the insns in the CIE.  */
1025   execute_cfa_program (fde, fde->cie->initial_instructions,
1026 		       fde->cie->end, gdbarch,
1027 		       get_frame_address_in_block (this_frame), &fs,
1028 		       cache->per_objfile->objfile->text_section_offset ());
1029 
1030   /* Save the initialized register set.  */
1031   fs.initial = fs.regs;
1032 
1033   /* Fetching the entry pc for THIS_FRAME won't necessarily result
1034      in an address that's within the range of FDE locations.  This
1035      is due to the possibility of the function occupying non-contiguous
1036      ranges.  */
1037   LONGEST entry_cfa_sp_offset;
1038   int entry_cfa_sp_offset_p = 0;
1039   if (get_frame_func_if_available (this_frame, &entry_pc)
1040       && fde->initial_location <= entry_pc
1041       && entry_pc < fde->initial_location + fde->address_range)
1042     {
1043       /* Decode the insns in the FDE up to the entry PC.  */
1044       instr = execute_cfa_program
1045 	(fde, fde->instructions, fde->end, gdbarch, entry_pc, &fs,
1046 	 cache->per_objfile->objfile->text_section_offset ());
1047 
1048       if (fs.regs.cfa_how == CFA_REG_OFFSET
1049 	  && (dwarf_reg_to_regnum (gdbarch, fs.regs.cfa_reg)
1050 	      == gdbarch_sp_regnum (gdbarch)))
1051 	{
1052 	  entry_cfa_sp_offset = fs.regs.cfa_offset;
1053 	  entry_cfa_sp_offset_p = 1;
1054 	}
1055     }
1056   else
1057     instr = fde->instructions;
1058 
1059   /* Then decode the insns in the FDE up to our target PC.  */
1060   execute_cfa_program (fde, instr, fde->end, gdbarch,
1061 		       get_frame_address_in_block (this_frame), &fs,
1062 		       cache->per_objfile->objfile->text_section_offset ());
1063 
1064   try
1065     {
1066       /* Calculate the CFA.  */
1067       switch (fs.regs.cfa_how)
1068 	{
1069 	case CFA_REG_OFFSET:
1070 	  cache->cfa = read_addr_from_reg (this_frame, fs.regs.cfa_reg);
1071 	  if (fs.armcc_cfa_offsets_reversed)
1072 	    cache->cfa -= fs.regs.cfa_offset;
1073 	  else
1074 	    cache->cfa += fs.regs.cfa_offset;
1075 	  break;
1076 
1077 	case CFA_EXP:
1078 	  cache->cfa =
1079 	    execute_stack_op (fs.regs.cfa_exp, fs.regs.cfa_exp_len,
1080 			      cache->addr_size, this_frame, 0, 0,
1081 			      cache->per_objfile);
1082 	  break;
1083 
1084 	default:
1085 	  internal_error (__FILE__, __LINE__, _("Unknown CFA rule."));
1086 	}
1087     }
1088   catch (const gdb_exception_error &ex)
1089     {
1090       if (ex.error == NOT_AVAILABLE_ERROR)
1091 	{
1092 	  cache->unavailable_retaddr = 1;
1093 	  return cache;
1094 	}
1095 
1096       throw;
1097     }
1098 
1099   /* Initialize the register state.  */
1100   {
1101     int regnum;
1102 
1103     for (regnum = 0; regnum < num_regs; regnum++)
1104       dwarf2_frame_init_reg (gdbarch, regnum, &cache->reg[regnum], this_frame);
1105   }
1106 
1107   /* Go through the DWARF2 CFI generated table and save its register
1108      location information in the cache.  Note that we don't skip the
1109      return address column; it's perfectly all right for it to
1110      correspond to a real register.  */
1111   {
1112     int column;		/* CFI speak for "register number".  */
1113 
1114     for (column = 0; column < fs.regs.reg.size (); column++)
1115       {
1116 	/* Use the GDB register number as the destination index.  */
1117 	int regnum = dwarf_reg_to_regnum (gdbarch, column);
1118 
1119 	/* Protect against a target returning a bad register.  */
1120 	if (regnum < 0 || regnum >= num_regs)
1121 	  continue;
1122 
1123 	/* NOTE: cagney/2003-09-05: CFI should specify the disposition
1124 	   of all debug info registers.  If it doesn't, complain (but
1125 	   not too loudly).  It turns out that GCC assumes that an
1126 	   unspecified register implies "same value" when CFI (draft
1127 	   7) specifies nothing at all.  Such a register could equally
1128 	   be interpreted as "undefined".  Also note that this check
1129 	   isn't sufficient; it only checks that all registers in the
1130 	   range [0 .. max column] are specified, and won't detect
1131 	   problems when a debug info register falls outside of the
1132 	   table.  We need a way of iterating through all the valid
1133 	   DWARF2 register numbers.  */
1134 	if (fs.regs.reg[column].how == DWARF2_FRAME_REG_UNSPECIFIED)
1135 	  {
1136 	    if (cache->reg[regnum].how == DWARF2_FRAME_REG_UNSPECIFIED)
1137 	      complaint (_("\
1138 incomplete CFI data; unspecified registers (e.g., %s) at %s"),
1139 			 gdbarch_register_name (gdbarch, regnum),
1140 			 paddress (gdbarch, fs.pc));
1141 	  }
1142 	else
1143 	  cache->reg[regnum] = fs.regs.reg[column];
1144       }
1145   }
1146 
1147   /* Eliminate any DWARF2_FRAME_REG_RA rules, and save the information
1148      we need for evaluating DWARF2_FRAME_REG_RA_OFFSET rules.  */
1149   {
1150     int regnum;
1151 
1152     for (regnum = 0; regnum < num_regs; regnum++)
1153       {
1154 	if (cache->reg[regnum].how == DWARF2_FRAME_REG_RA
1155 	    || cache->reg[regnum].how == DWARF2_FRAME_REG_RA_OFFSET)
1156 	  {
1157 	    const std::vector<struct dwarf2_frame_state_reg> &regs
1158 	      = fs.regs.reg;
1159 	    ULONGEST retaddr_column = fs.retaddr_column;
1160 
1161 	    /* It seems rather bizarre to specify an "empty" column as
1162                the return adress column.  However, this is exactly
1163                what GCC does on some targets.  It turns out that GCC
1164                assumes that the return address can be found in the
1165                register corresponding to the return address column.
1166                Incidentally, that's how we should treat a return
1167                address column specifying "same value" too.  */
1168 	    if (fs.retaddr_column < fs.regs.reg.size ()
1169 		&& regs[retaddr_column].how != DWARF2_FRAME_REG_UNSPECIFIED
1170 		&& regs[retaddr_column].how != DWARF2_FRAME_REG_SAME_VALUE)
1171 	      {
1172 		if (cache->reg[regnum].how == DWARF2_FRAME_REG_RA)
1173 		  cache->reg[regnum] = regs[retaddr_column];
1174 		else
1175 		  cache->retaddr_reg = regs[retaddr_column];
1176 	      }
1177 	    else
1178 	      {
1179 		if (cache->reg[regnum].how == DWARF2_FRAME_REG_RA)
1180 		  {
1181 		    cache->reg[regnum].loc.reg = fs.retaddr_column;
1182 		    cache->reg[regnum].how = DWARF2_FRAME_REG_SAVED_REG;
1183 		  }
1184 		else
1185 		  {
1186 		    cache->retaddr_reg.loc.reg = fs.retaddr_column;
1187 		    cache->retaddr_reg.how = DWARF2_FRAME_REG_SAVED_REG;
1188 		  }
1189 	      }
1190 	  }
1191       }
1192   }
1193 
1194   if (fs.retaddr_column < fs.regs.reg.size ()
1195       && fs.regs.reg[fs.retaddr_column].how == DWARF2_FRAME_REG_UNDEFINED)
1196     cache->undefined_retaddr = 1;
1197 
1198   dwarf2_tailcall_sniffer_first (this_frame, &cache->tailcall_cache,
1199 				 (entry_cfa_sp_offset_p
1200 				  ? &entry_cfa_sp_offset : NULL));
1201 
1202   return cache;
1203 }
1204 
1205 static enum unwind_stop_reason
dwarf2_frame_unwind_stop_reason(struct frame_info * this_frame,void ** this_cache)1206 dwarf2_frame_unwind_stop_reason (struct frame_info *this_frame,
1207 				 void **this_cache)
1208 {
1209   struct dwarf2_frame_cache *cache
1210     = dwarf2_frame_cache (this_frame, this_cache);
1211 
1212   if (cache->unavailable_retaddr)
1213     return UNWIND_UNAVAILABLE;
1214 
1215   if (cache->undefined_retaddr)
1216     return UNWIND_OUTERMOST;
1217 
1218   return UNWIND_NO_REASON;
1219 }
1220 
1221 static void
dwarf2_frame_this_id(struct frame_info * this_frame,void ** this_cache,struct frame_id * this_id)1222 dwarf2_frame_this_id (struct frame_info *this_frame, void **this_cache,
1223 		      struct frame_id *this_id)
1224 {
1225   struct dwarf2_frame_cache *cache =
1226     dwarf2_frame_cache (this_frame, this_cache);
1227 
1228   if (cache->unavailable_retaddr)
1229     (*this_id) = frame_id_build_unavailable_stack (get_frame_func (this_frame));
1230   else if (cache->undefined_retaddr)
1231     return;
1232   else
1233     (*this_id) = frame_id_build (cache->cfa, get_frame_func (this_frame));
1234 }
1235 
1236 static struct value *
dwarf2_frame_prev_register(struct frame_info * this_frame,void ** this_cache,int regnum)1237 dwarf2_frame_prev_register (struct frame_info *this_frame, void **this_cache,
1238 			    int regnum)
1239 {
1240   struct gdbarch *gdbarch = get_frame_arch (this_frame);
1241   struct dwarf2_frame_cache *cache =
1242     dwarf2_frame_cache (this_frame, this_cache);
1243   CORE_ADDR addr;
1244   int realnum;
1245 
1246   /* Non-bottom frames of a virtual tail call frames chain use
1247      dwarf2_tailcall_frame_unwind unwinder so this code does not apply for
1248      them.  If dwarf2_tailcall_prev_register_first does not have specific value
1249      unwind the register, tail call frames are assumed to have the register set
1250      of the top caller.  */
1251   if (cache->tailcall_cache)
1252     {
1253       struct value *val;
1254 
1255       val = dwarf2_tailcall_prev_register_first (this_frame,
1256 						 &cache->tailcall_cache,
1257 						 regnum);
1258       if (val)
1259 	return val;
1260     }
1261 
1262   switch (cache->reg[regnum].how)
1263     {
1264     case DWARF2_FRAME_REG_UNDEFINED:
1265       /* If CFI explicitly specified that the value isn't defined,
1266 	 mark it as optimized away; the value isn't available.  */
1267       return frame_unwind_got_optimized (this_frame, regnum);
1268 
1269     case DWARF2_FRAME_REG_SAVED_OFFSET:
1270       addr = cache->cfa + cache->reg[regnum].loc.offset;
1271       return frame_unwind_got_memory (this_frame, regnum, addr);
1272 
1273     case DWARF2_FRAME_REG_SAVED_REG:
1274       realnum = dwarf_reg_to_regnum_or_error
1275 	(gdbarch, cache->reg[regnum].loc.reg);
1276       return frame_unwind_got_register (this_frame, regnum, realnum);
1277 
1278     case DWARF2_FRAME_REG_SAVED_EXP:
1279       addr = execute_stack_op (cache->reg[regnum].loc.exp.start,
1280 			       cache->reg[regnum].loc.exp.len,
1281 			       cache->addr_size,
1282 			       this_frame, cache->cfa, 1,
1283 			       cache->per_objfile);
1284       return frame_unwind_got_memory (this_frame, regnum, addr);
1285 
1286     case DWARF2_FRAME_REG_SAVED_VAL_OFFSET:
1287       addr = cache->cfa + cache->reg[regnum].loc.offset;
1288       return frame_unwind_got_constant (this_frame, regnum, addr);
1289 
1290     case DWARF2_FRAME_REG_SAVED_VAL_EXP:
1291       addr = execute_stack_op (cache->reg[regnum].loc.exp.start,
1292 			       cache->reg[regnum].loc.exp.len,
1293 			       cache->addr_size,
1294 			       this_frame, cache->cfa, 1,
1295 			       cache->per_objfile);
1296       return frame_unwind_got_constant (this_frame, regnum, addr);
1297 
1298     case DWARF2_FRAME_REG_UNSPECIFIED:
1299       /* GCC, in its infinite wisdom decided to not provide unwind
1300 	 information for registers that are "same value".  Since
1301 	 DWARF2 (3 draft 7) doesn't define such behavior, said
1302 	 registers are actually undefined (which is different to CFI
1303 	 "undefined").  Code above issues a complaint about this.
1304 	 Here just fudge the books, assume GCC, and that the value is
1305 	 more inner on the stack.  */
1306       return frame_unwind_got_register (this_frame, regnum, regnum);
1307 
1308     case DWARF2_FRAME_REG_SAME_VALUE:
1309       return frame_unwind_got_register (this_frame, regnum, regnum);
1310 
1311     case DWARF2_FRAME_REG_CFA:
1312       return frame_unwind_got_address (this_frame, regnum, cache->cfa);
1313 
1314     case DWARF2_FRAME_REG_CFA_OFFSET:
1315       addr = cache->cfa + cache->reg[regnum].loc.offset;
1316       return frame_unwind_got_address (this_frame, regnum, addr);
1317 
1318     case DWARF2_FRAME_REG_RA_OFFSET:
1319       addr = cache->reg[regnum].loc.offset;
1320       regnum = dwarf_reg_to_regnum_or_error
1321 	(gdbarch, cache->retaddr_reg.loc.reg);
1322       addr += get_frame_register_unsigned (this_frame, regnum);
1323       return frame_unwind_got_address (this_frame, regnum, addr);
1324 
1325     case DWARF2_FRAME_REG_FN:
1326       return cache->reg[regnum].loc.fn (this_frame, this_cache, regnum);
1327 
1328     default:
1329       internal_error (__FILE__, __LINE__, _("Unknown register rule."));
1330     }
1331 }
1332 
1333 /* Proxy for tailcall_frame_dealloc_cache for bottom frame of a virtual tail
1334    call frames chain.  */
1335 
1336 static void
dwarf2_frame_dealloc_cache(struct frame_info * self,void * this_cache)1337 dwarf2_frame_dealloc_cache (struct frame_info *self, void *this_cache)
1338 {
1339   struct dwarf2_frame_cache *cache = dwarf2_frame_cache (self, &this_cache);
1340 
1341   if (cache->tailcall_cache)
1342     dwarf2_tailcall_frame_unwind.dealloc_cache (self, cache->tailcall_cache);
1343 }
1344 
1345 static int
dwarf2_frame_sniffer(const struct frame_unwind * self,struct frame_info * this_frame,void ** this_cache)1346 dwarf2_frame_sniffer (const struct frame_unwind *self,
1347 		      struct frame_info *this_frame, void **this_cache)
1348 {
1349   if (!dwarf2_frame_unwinders_enabled_p)
1350     return 0;
1351 
1352   /* Grab an address that is guaranteed to reside somewhere within the
1353      function.  get_frame_pc(), with a no-return next function, can
1354      end up returning something past the end of this function's body.
1355      If the frame we're sniffing for is a signal frame whose start
1356      address is placed on the stack by the OS, its FDE must
1357      extend one byte before its start address or we could potentially
1358      select the FDE of the previous function.  */
1359   CORE_ADDR block_addr = get_frame_address_in_block (this_frame);
1360   struct dwarf2_fde *fde = dwarf2_frame_find_fde (&block_addr, NULL);
1361 
1362   if (!fde)
1363     return 0;
1364 
1365   /* On some targets, signal trampolines may have unwind information.
1366      We need to recognize them so that we set the frame type
1367      correctly.  */
1368 
1369   if (fde->cie->signal_frame
1370       || dwarf2_frame_signal_frame_p (get_frame_arch (this_frame),
1371 				      this_frame))
1372     return self->type == SIGTRAMP_FRAME;
1373 
1374   if (self->type != NORMAL_FRAME)
1375     return 0;
1376 
1377   return 1;
1378 }
1379 
1380 static const struct frame_unwind dwarf2_frame_unwind =
1381 {
1382   NORMAL_FRAME,
1383   dwarf2_frame_unwind_stop_reason,
1384   dwarf2_frame_this_id,
1385   dwarf2_frame_prev_register,
1386   NULL,
1387   dwarf2_frame_sniffer,
1388   dwarf2_frame_dealloc_cache
1389 };
1390 
1391 static const struct frame_unwind dwarf2_signal_frame_unwind =
1392 {
1393   SIGTRAMP_FRAME,
1394   dwarf2_frame_unwind_stop_reason,
1395   dwarf2_frame_this_id,
1396   dwarf2_frame_prev_register,
1397   NULL,
1398   dwarf2_frame_sniffer,
1399 
1400   /* TAILCALL_CACHE can never be in such frame to need dealloc_cache.  */
1401   NULL
1402 };
1403 
1404 /* Append the DWARF-2 frame unwinders to GDBARCH's list.  */
1405 
1406 void
dwarf2_append_unwinders(struct gdbarch * gdbarch)1407 dwarf2_append_unwinders (struct gdbarch *gdbarch)
1408 {
1409   frame_unwind_append_unwinder (gdbarch, &dwarf2_frame_unwind);
1410   frame_unwind_append_unwinder (gdbarch, &dwarf2_signal_frame_unwind);
1411 }
1412 
1413 
1414 /* There is no explicitly defined relationship between the CFA and the
1415    location of frame's local variables and arguments/parameters.
1416    Therefore, frame base methods on this page should probably only be
1417    used as a last resort, just to avoid printing total garbage as a
1418    response to the "info frame" command.  */
1419 
1420 static CORE_ADDR
dwarf2_frame_base_address(struct frame_info * this_frame,void ** this_cache)1421 dwarf2_frame_base_address (struct frame_info *this_frame, void **this_cache)
1422 {
1423   struct dwarf2_frame_cache *cache =
1424     dwarf2_frame_cache (this_frame, this_cache);
1425 
1426   return cache->cfa;
1427 }
1428 
1429 static const struct frame_base dwarf2_frame_base =
1430 {
1431   &dwarf2_frame_unwind,
1432   dwarf2_frame_base_address,
1433   dwarf2_frame_base_address,
1434   dwarf2_frame_base_address
1435 };
1436 
1437 const struct frame_base *
dwarf2_frame_base_sniffer(struct frame_info * this_frame)1438 dwarf2_frame_base_sniffer (struct frame_info *this_frame)
1439 {
1440   CORE_ADDR block_addr = get_frame_address_in_block (this_frame);
1441 
1442   if (dwarf2_frame_find_fde (&block_addr, NULL))
1443     return &dwarf2_frame_base;
1444 
1445   return NULL;
1446 }
1447 
1448 /* Compute the CFA for THIS_FRAME, but only if THIS_FRAME came from
1449    the DWARF unwinder.  This is used to implement
1450    DW_OP_call_frame_cfa.  */
1451 
1452 CORE_ADDR
dwarf2_frame_cfa(struct frame_info * this_frame)1453 dwarf2_frame_cfa (struct frame_info *this_frame)
1454 {
1455   if (frame_unwinder_is (this_frame, &record_btrace_tailcall_frame_unwind)
1456       || frame_unwinder_is (this_frame, &record_btrace_frame_unwind))
1457     throw_error (NOT_AVAILABLE_ERROR,
1458 		 _("cfa not available for record btrace target"));
1459 
1460   while (get_frame_type (this_frame) == INLINE_FRAME)
1461     this_frame = get_prev_frame (this_frame);
1462   if (get_frame_unwind_stop_reason (this_frame) == UNWIND_UNAVAILABLE)
1463     throw_error (NOT_AVAILABLE_ERROR,
1464                 _("can't compute CFA for this frame: "
1465                   "required registers or memory are unavailable"));
1466 
1467   if (get_frame_id (this_frame).stack_status != FID_STACK_VALID)
1468     throw_error (NOT_AVAILABLE_ERROR,
1469                 _("can't compute CFA for this frame: "
1470                   "frame base not available"));
1471 
1472   return get_frame_base (this_frame);
1473 }
1474 
1475 /* We store the frame data on the BFD.  This is only done if it is
1476    independent of the address space and so can be shared.  */
1477 static const struct bfd_key<comp_unit> dwarf2_frame_bfd_data;
1478 
1479 /* If any BFD sections require relocations (note; really should be if
1480    any debug info requires relocations), then we store the frame data
1481    on the objfile instead, and do not share it.  */
1482 const struct objfile_key<comp_unit> dwarf2_frame_objfile_data;
1483 
1484 
1485 /* Pointer encoding helper functions.  */
1486 
1487 /* GCC supports exception handling based on DWARF2 CFI.  However, for
1488    technical reasons, it encodes addresses in its FDE's in a different
1489    way.  Several "pointer encodings" are supported.  The encoding
1490    that's used for a particular FDE is determined by the 'R'
1491    augmentation in the associated CIE.  The argument of this
1492    augmentation is a single byte.
1493 
1494    The address can be encoded as 2 bytes, 4 bytes, 8 bytes, or as a
1495    LEB128.  This is encoded in bits 0, 1 and 2.  Bit 3 encodes whether
1496    the address is signed or unsigned.  Bits 4, 5 and 6 encode how the
1497    address should be interpreted (absolute, relative to the current
1498    position in the FDE, ...).  Bit 7, indicates that the address
1499    should be dereferenced.  */
1500 
1501 static gdb_byte
1502 encoding_for_size (unsigned int size)
1503 {
1504   switch (size)
1505     {
1506     case 2:
1507       return DW_EH_PE_udata2;
1508     case 4:
1509       return DW_EH_PE_udata4;
1510     case 8:
1511       return DW_EH_PE_udata8;
1512     default:
1513       internal_error (__FILE__, __LINE__, _("Unsupported address size"));
1514     }
1515 }
1516 
1517 static CORE_ADDR
1518 read_encoded_value (struct comp_unit *unit, gdb_byte encoding,
1519 		    int ptr_len, const gdb_byte *buf,
1520 		    unsigned int *bytes_read_ptr,
1521 		    CORE_ADDR func_base)
1522 {
1523   ptrdiff_t offset;
1524   CORE_ADDR base;
1525 
1526   /* GCC currently doesn't generate DW_EH_PE_indirect encodings for
1527      FDE's.  */
1528   if (encoding & DW_EH_PE_indirect)
1529     internal_error (__FILE__, __LINE__,
1530 		    _("Unsupported encoding: DW_EH_PE_indirect"));
1531 
1532   *bytes_read_ptr = 0;
1533 
1534   switch (encoding & 0x70)
1535     {
1536     case DW_EH_PE_absptr:
1537       base = 0;
1538       break;
1539     case DW_EH_PE_pcrel:
1540       base = bfd_section_vma (unit->dwarf_frame_section);
1541       base += (buf - unit->dwarf_frame_buffer);
1542       break;
1543     case DW_EH_PE_datarel:
1544       base = unit->dbase;
1545       break;
1546     case DW_EH_PE_textrel:
1547       base = unit->tbase;
1548       break;
1549     case DW_EH_PE_funcrel:
1550       base = func_base;
1551       break;
1552     case DW_EH_PE_aligned:
1553       base = 0;
1554       offset = buf - unit->dwarf_frame_buffer;
1555       if ((offset % ptr_len) != 0)
1556 	{
1557 	  *bytes_read_ptr = ptr_len - (offset % ptr_len);
1558 	  buf += *bytes_read_ptr;
1559 	}
1560       break;
1561     default:
1562       internal_error (__FILE__, __LINE__,
1563 		      _("Invalid or unsupported encoding"));
1564     }
1565 
1566   if ((encoding & 0x07) == 0x00)
1567     {
1568       encoding |= encoding_for_size (ptr_len);
1569       if (bfd_get_sign_extend_vma (unit->abfd))
1570 	encoding |= DW_EH_PE_signed;
1571     }
1572 
1573   switch (encoding & 0x0f)
1574     {
1575     case DW_EH_PE_uleb128:
1576       {
1577 	uint64_t value;
1578 	const gdb_byte *end_buf = buf + (sizeof (value) + 1) * 8 / 7;
1579 
1580 	*bytes_read_ptr += safe_read_uleb128 (buf, end_buf, &value) - buf;
1581 	return base + value;
1582       }
1583     case DW_EH_PE_udata2:
1584       *bytes_read_ptr += 2;
1585       return (base + bfd_get_16 (unit->abfd, (bfd_byte *) buf));
1586     case DW_EH_PE_udata4:
1587       *bytes_read_ptr += 4;
1588       return (base + bfd_get_32 (unit->abfd, (bfd_byte *) buf));
1589     case DW_EH_PE_udata8:
1590       *bytes_read_ptr += 8;
1591       return (base + bfd_get_64 (unit->abfd, (bfd_byte *) buf));
1592     case DW_EH_PE_sleb128:
1593       {
1594 	int64_t value;
1595 	const gdb_byte *end_buf = buf + (sizeof (value) + 1) * 8 / 7;
1596 
1597 	*bytes_read_ptr += safe_read_sleb128 (buf, end_buf, &value) - buf;
1598 	return base + value;
1599       }
1600     case DW_EH_PE_sdata2:
1601       *bytes_read_ptr += 2;
1602       return (base + bfd_get_signed_16 (unit->abfd, (bfd_byte *) buf));
1603     case DW_EH_PE_sdata4:
1604       *bytes_read_ptr += 4;
1605       return (base + bfd_get_signed_32 (unit->abfd, (bfd_byte *) buf));
1606     case DW_EH_PE_sdata8:
1607       *bytes_read_ptr += 8;
1608       return (base + bfd_get_signed_64 (unit->abfd, (bfd_byte *) buf));
1609     default:
1610       internal_error (__FILE__, __LINE__,
1611 		      _("Invalid or unsupported encoding"));
1612     }
1613 }
1614 
1615 
1616 /* Find CIE with the given CIE_POINTER in CIE_TABLE.  */
1617 static struct dwarf2_cie *
1618 find_cie (const dwarf2_cie_table &cie_table, ULONGEST cie_pointer)
1619 {
1620   auto iter = cie_table.find (cie_pointer);
1621   if (iter != cie_table.end ())
1622     return iter->second;
1623   return NULL;
1624 }
1625 
1626 static inline int
1627 bsearch_fde_cmp (const dwarf2_fde *fde, CORE_ADDR seek_pc)
1628 {
1629   if (fde->initial_location + fde->address_range <= seek_pc)
1630     return -1;
1631   if (fde->initial_location <= seek_pc)
1632     return 0;
1633   return 1;
1634 }
1635 
1636 /* Find an existing comp_unit for an objfile, if any.  */
1637 
1638 static comp_unit *
1639 find_comp_unit (struct objfile *objfile)
1640 {
1641   bfd *abfd = objfile->obfd;
1642   if (gdb_bfd_requires_relocations (abfd))
1643     return dwarf2_frame_bfd_data.get (abfd);
1644   return dwarf2_frame_objfile_data.get (objfile);
1645 }
1646 
1647 /* Store the comp_unit on OBJFILE, or the corresponding BFD, as
1648    appropriate.  */
1649 
1650 static void
1651 set_comp_unit (struct objfile *objfile, struct comp_unit *unit)
1652 {
1653   bfd *abfd = objfile->obfd;
1654   if (gdb_bfd_requires_relocations (abfd))
1655     return dwarf2_frame_bfd_data.set (abfd, unit);
1656   return dwarf2_frame_objfile_data.set (objfile, unit);
1657 }
1658 
1659 /* Find the FDE for *PC.  Return a pointer to the FDE, and store the
1660    initial location associated with it into *PC.  */
1661 
1662 static struct dwarf2_fde *
1663 dwarf2_frame_find_fde (CORE_ADDR *pc, dwarf2_per_objfile **out_per_objfile)
1664 {
1665   for (objfile *objfile : current_program_space->objfiles ())
1666     {
1667       CORE_ADDR offset;
1668       CORE_ADDR seek_pc;
1669 
1670       comp_unit *unit = find_comp_unit (objfile);
1671       if (unit == NULL)
1672 	{
1673 	  dwarf2_build_frame_info (objfile);
1674 	  unit = find_comp_unit (objfile);
1675 	}
1676       gdb_assert (unit != NULL);
1677 
1678       dwarf2_fde_table *fde_table = &unit->fde_table;
1679       if (fde_table->empty ())
1680 	continue;
1681 
1682       gdb_assert (!objfile->section_offsets.empty ());
1683       offset = objfile->text_section_offset ();
1684 
1685       gdb_assert (!fde_table->empty ());
1686       if (*pc < offset + (*fde_table)[0]->initial_location)
1687         continue;
1688 
1689       seek_pc = *pc - offset;
1690       auto it = gdb::binary_search (fde_table->begin (), fde_table->end (),
1691 				    seek_pc, bsearch_fde_cmp);
1692       if (it != fde_table->end ())
1693         {
1694           *pc = (*it)->initial_location + offset;
1695 	  if (out_per_objfile != nullptr)
1696 	    *out_per_objfile = get_dwarf2_per_objfile (objfile);
1697 
1698           return *it;
1699         }
1700     }
1701   return NULL;
1702 }
1703 
1704 /* Add FDE to FDE_TABLE.  */
1705 static void
1706 add_fde (dwarf2_fde_table *fde_table, struct dwarf2_fde *fde)
1707 {
1708   if (fde->address_range == 0)
1709     /* Discard useless FDEs.  */
1710     return;
1711 
1712   fde_table->push_back (fde);
1713 }
1714 
1715 #define DW64_CIE_ID 0xffffffffffffffffULL
1716 
1717 /* Defines the type of eh_frames that are expected to be decoded: CIE, FDE
1718    or any of them.  */
1719 
1720 enum eh_frame_type
1721 {
1722   EH_CIE_TYPE_ID = 1 << 0,
1723   EH_FDE_TYPE_ID = 1 << 1,
1724   EH_CIE_OR_FDE_TYPE_ID = EH_CIE_TYPE_ID | EH_FDE_TYPE_ID
1725 };
1726 
1727 static const gdb_byte *decode_frame_entry (struct gdbarch *gdbarch,
1728 					   struct comp_unit *unit,
1729 					   const gdb_byte *start,
1730 					   int eh_frame_p,
1731 					   dwarf2_cie_table &cie_table,
1732 					   dwarf2_fde_table *fde_table,
1733 					   enum eh_frame_type entry_type);
1734 
1735 /* Decode the next CIE or FDE, entry_type specifies the expected type.
1736    Return NULL if invalid input, otherwise the next byte to be processed.  */
1737 
1738 static const gdb_byte *
1739 decode_frame_entry_1 (struct gdbarch *gdbarch,
1740 		      struct comp_unit *unit, const gdb_byte *start,
1741 		      int eh_frame_p,
1742                       dwarf2_cie_table &cie_table,
1743                       dwarf2_fde_table *fde_table,
1744                       enum eh_frame_type entry_type)
1745 {
1746   const gdb_byte *buf, *end;
1747   ULONGEST length;
1748   unsigned int bytes_read;
1749   int dwarf64_p;
1750   ULONGEST cie_id;
1751   ULONGEST cie_pointer;
1752   int64_t sleb128;
1753   uint64_t uleb128;
1754 
1755   buf = start;
1756   length = read_initial_length (unit->abfd, buf, &bytes_read, false);
1757   buf += bytes_read;
1758   end = buf + (size_t) length;
1759 
1760   if (length == 0)
1761     return end;
1762 
1763   /* Are we still within the section?  */
1764   if (end <= buf || end > unit->dwarf_frame_buffer + unit->dwarf_frame_size)
1765     return NULL;
1766 
1767   /* Distinguish between 32 and 64-bit encoded frame info.  */
1768   dwarf64_p = (bytes_read == 12);
1769 
1770   /* In a .eh_frame section, zero is used to distinguish CIEs from FDEs.  */
1771   if (eh_frame_p)
1772     cie_id = 0;
1773   else if (dwarf64_p)
1774     cie_id = DW64_CIE_ID;
1775   else
1776     cie_id = DW_CIE_ID;
1777 
1778   if (dwarf64_p)
1779     {
1780       cie_pointer = read_8_bytes (unit->abfd, buf);
1781       buf += 8;
1782     }
1783   else
1784     {
1785       cie_pointer = read_4_bytes (unit->abfd, buf);
1786       buf += 4;
1787     }
1788 
1789   if (cie_pointer == cie_id)
1790     {
1791       /* This is a CIE.  */
1792       struct dwarf2_cie *cie;
1793       char *augmentation;
1794       unsigned int cie_version;
1795 
1796       /* Check that a CIE was expected.  */
1797       if ((entry_type & EH_CIE_TYPE_ID) == 0)
1798 	error (_("Found a CIE when not expecting it."));
1799 
1800       /* Record the offset into the .debug_frame section of this CIE.  */
1801       cie_pointer = start - unit->dwarf_frame_buffer;
1802 
1803       /* Check whether we've already read it.  */
1804       if (find_cie (cie_table, cie_pointer))
1805 	return end;
1806 
1807       cie = XOBNEW (&unit->obstack, struct dwarf2_cie);
1808       cie->initial_instructions = NULL;
1809       cie->cie_pointer = cie_pointer;
1810 
1811       /* The encoding for FDE's in a normal .debug_frame section
1812          depends on the target address size.  */
1813       cie->encoding = DW_EH_PE_absptr;
1814 
1815       /* We'll determine the final value later, but we need to
1816 	 initialize it conservatively.  */
1817       cie->signal_frame = 0;
1818 
1819       /* Check version number.  */
1820       cie_version = read_1_byte (unit->abfd, buf);
1821       if (cie_version != 1 && cie_version != 3 && cie_version != 4)
1822 	return NULL;
1823       cie->version = cie_version;
1824       buf += 1;
1825 
1826       /* Interpret the interesting bits of the augmentation.  */
1827       cie->augmentation = augmentation = (char *) buf;
1828       buf += (strlen (augmentation) + 1);
1829 
1830       /* Ignore armcc augmentations.  We only use them for quirks,
1831 	 and that doesn't happen until later.  */
1832       if (startswith (augmentation, "armcc"))
1833 	augmentation += strlen (augmentation);
1834 
1835       /* The GCC 2.x "eh" augmentation has a pointer immediately
1836          following the augmentation string, so it must be handled
1837          first.  */
1838       if (augmentation[0] == 'e' && augmentation[1] == 'h')
1839 	{
1840 	  /* Skip.  */
1841 	  buf += gdbarch_ptr_bit (gdbarch) / TARGET_CHAR_BIT;
1842 	  augmentation += 2;
1843 	}
1844 
1845       if (cie->version >= 4)
1846 	{
1847 	  /* FIXME: check that this is the same as from the CU header.  */
1848 	  cie->addr_size = read_1_byte (unit->abfd, buf);
1849 	  ++buf;
1850 	  cie->segment_size = read_1_byte (unit->abfd, buf);
1851 	  ++buf;
1852 	}
1853       else
1854 	{
1855 	  cie->addr_size = gdbarch_dwarf2_addr_size (gdbarch);
1856 	  cie->segment_size = 0;
1857 	}
1858       /* Address values in .eh_frame sections are defined to have the
1859 	 target's pointer size.  Watchout: This breaks frame info for
1860 	 targets with pointer size < address size, unless a .debug_frame
1861 	 section exists as well.  */
1862       if (eh_frame_p)
1863 	cie->ptr_size = gdbarch_ptr_bit (gdbarch) / TARGET_CHAR_BIT;
1864       else
1865 	cie->ptr_size = cie->addr_size;
1866 
1867       buf = gdb_read_uleb128 (buf, end, &uleb128);
1868       if (buf == NULL)
1869 	return NULL;
1870       cie->code_alignment_factor = uleb128;
1871 
1872       buf = gdb_read_sleb128 (buf, end, &sleb128);
1873       if (buf == NULL)
1874 	return NULL;
1875       cie->data_alignment_factor = sleb128;
1876 
1877       if (cie_version == 1)
1878 	{
1879 	  cie->return_address_register = read_1_byte (unit->abfd, buf);
1880 	  ++buf;
1881 	}
1882       else
1883 	{
1884 	  buf = gdb_read_uleb128 (buf, end, &uleb128);
1885 	  if (buf == NULL)
1886 	    return NULL;
1887 	  cie->return_address_register = uleb128;
1888 	}
1889 
1890       cie->return_address_register
1891 	= dwarf2_frame_adjust_regnum (gdbarch,
1892 				      cie->return_address_register,
1893 				      eh_frame_p);
1894 
1895       cie->saw_z_augmentation = (*augmentation == 'z');
1896       if (cie->saw_z_augmentation)
1897 	{
1898 	  uint64_t uleb_length;
1899 
1900 	  buf = gdb_read_uleb128 (buf, end, &uleb_length);
1901 	  if (buf == NULL)
1902 	    return NULL;
1903 	  cie->initial_instructions = buf + uleb_length;
1904 	  augmentation++;
1905 	}
1906 
1907       while (*augmentation)
1908 	{
1909 	  /* "L" indicates a byte showing how the LSDA pointer is encoded.  */
1910 	  if (*augmentation == 'L')
1911 	    {
1912 	      /* Skip.  */
1913 	      buf++;
1914 	      augmentation++;
1915 	    }
1916 
1917 	  /* "R" indicates a byte indicating how FDE addresses are encoded.  */
1918 	  else if (*augmentation == 'R')
1919 	    {
1920 	      cie->encoding = *buf++;
1921 	      augmentation++;
1922 	    }
1923 
1924 	  /* "P" indicates a personality routine in the CIE augmentation.  */
1925 	  else if (*augmentation == 'P')
1926 	    {
1927 	      /* Skip.  Avoid indirection since we throw away the result.  */
1928 	      gdb_byte encoding = (*buf++) & ~DW_EH_PE_indirect;
1929 	      read_encoded_value (unit, encoding, cie->ptr_size,
1930 				  buf, &bytes_read, 0);
1931 	      buf += bytes_read;
1932 	      augmentation++;
1933 	    }
1934 
1935 	  /* "S" indicates a signal frame, such that the return
1936 	     address must not be decremented to locate the call frame
1937 	     info for the previous frame; it might even be the first
1938 	     instruction of a function, so decrementing it would take
1939 	     us to a different function.  */
1940 	  else if (*augmentation == 'S')
1941 	    {
1942 	      cie->signal_frame = 1;
1943 	      augmentation++;
1944 	    }
1945 
1946 	  /* Otherwise we have an unknown augmentation.  Assume that either
1947 	     there is no augmentation data, or we saw a 'z' prefix.  */
1948 	  else
1949 	    {
1950 	      if (cie->initial_instructions)
1951 		buf = cie->initial_instructions;
1952 	      break;
1953 	    }
1954 	}
1955 
1956       cie->initial_instructions = buf;
1957       cie->end = end;
1958       cie->unit = unit;
1959 
1960       cie_table[cie->cie_pointer] = cie;
1961     }
1962   else
1963     {
1964       /* This is a FDE.  */
1965       struct dwarf2_fde *fde;
1966       CORE_ADDR addr;
1967 
1968       /* Check that an FDE was expected.  */
1969       if ((entry_type & EH_FDE_TYPE_ID) == 0)
1970 	error (_("Found an FDE when not expecting it."));
1971 
1972       /* In an .eh_frame section, the CIE pointer is the delta between the
1973 	 address within the FDE where the CIE pointer is stored and the
1974 	 address of the CIE.  Convert it to an offset into the .eh_frame
1975 	 section.  */
1976       if (eh_frame_p)
1977 	{
1978 	  cie_pointer = buf - unit->dwarf_frame_buffer - cie_pointer;
1979 	  cie_pointer -= (dwarf64_p ? 8 : 4);
1980 	}
1981 
1982       /* In either case, validate the result is still within the section.  */
1983       if (cie_pointer >= unit->dwarf_frame_size)
1984 	return NULL;
1985 
1986       fde = XOBNEW (&unit->obstack, struct dwarf2_fde);
1987       fde->cie = find_cie (cie_table, cie_pointer);
1988       if (fde->cie == NULL)
1989 	{
1990 	  decode_frame_entry (gdbarch, unit,
1991 			      unit->dwarf_frame_buffer + cie_pointer,
1992 			      eh_frame_p, cie_table, fde_table,
1993 			      EH_CIE_TYPE_ID);
1994 	  fde->cie = find_cie (cie_table, cie_pointer);
1995 	}
1996 
1997       gdb_assert (fde->cie != NULL);
1998 
1999       addr = read_encoded_value (unit, fde->cie->encoding, fde->cie->ptr_size,
2000 				 buf, &bytes_read, 0);
2001       fde->initial_location = gdbarch_adjust_dwarf2_addr (gdbarch, addr);
2002       buf += bytes_read;
2003 
2004       fde->address_range =
2005 	read_encoded_value (unit, fde->cie->encoding & 0x0f,
2006 			    fde->cie->ptr_size, buf, &bytes_read, 0);
2007       addr = gdbarch_adjust_dwarf2_addr (gdbarch, addr + fde->address_range);
2008       fde->address_range = addr - fde->initial_location;
2009       buf += bytes_read;
2010 
2011       /* A 'z' augmentation in the CIE implies the presence of an
2012 	 augmentation field in the FDE as well.  The only thing known
2013 	 to be in here at present is the LSDA entry for EH.  So we
2014 	 can skip the whole thing.  */
2015       if (fde->cie->saw_z_augmentation)
2016 	{
2017 	  uint64_t uleb_length;
2018 
2019 	  buf = gdb_read_uleb128 (buf, end, &uleb_length);
2020 	  if (buf == NULL)
2021 	    return NULL;
2022 	  buf += uleb_length;
2023 	  if (buf > end)
2024 	    return NULL;
2025 	}
2026 
2027       fde->instructions = buf;
2028       fde->end = end;
2029 
2030       fde->eh_frame_p = eh_frame_p;
2031 
2032       add_fde (fde_table, fde);
2033     }
2034 
2035   return end;
2036 }
2037 
2038 /* Read a CIE or FDE in BUF and decode it. Entry_type specifies whether we
2039    expect an FDE or a CIE.  */
2040 
2041 static const gdb_byte *
2042 decode_frame_entry (struct gdbarch *gdbarch,
2043 		    struct comp_unit *unit, const gdb_byte *start,
2044 		    int eh_frame_p,
2045 		    dwarf2_cie_table &cie_table,
2046                     dwarf2_fde_table *fde_table,
2047                     enum eh_frame_type entry_type)
2048 {
2049   enum { NONE, ALIGN4, ALIGN8, FAIL } workaround = NONE;
2050   const gdb_byte *ret;
2051   ptrdiff_t start_offset;
2052 
2053   while (1)
2054     {
2055       ret = decode_frame_entry_1 (gdbarch, unit, start, eh_frame_p,
2056 				  cie_table, fde_table, entry_type);
2057       if (ret != NULL)
2058 	break;
2059 
2060       /* We have corrupt input data of some form.  */
2061 
2062       /* ??? Try, weakly, to work around compiler/assembler/linker bugs
2063 	 and mismatches wrt padding and alignment of debug sections.  */
2064       /* Note that there is no requirement in the standard for any
2065 	 alignment at all in the frame unwind sections.  Testing for
2066 	 alignment before trying to interpret data would be incorrect.
2067 
2068 	 However, GCC traditionally arranged for frame sections to be
2069 	 sized such that the FDE length and CIE fields happen to be
2070 	 aligned (in theory, for performance).  This, unfortunately,
2071 	 was done with .align directives, which had the side effect of
2072 	 forcing the section to be aligned by the linker.
2073 
2074 	 This becomes a problem when you have some other producer that
2075 	 creates frame sections that are not as strictly aligned.  That
2076 	 produces a hole in the frame info that gets filled by the
2077 	 linker with zeros.
2078 
2079 	 The GCC behaviour is arguably a bug, but it's effectively now
2080 	 part of the ABI, so we're now stuck with it, at least at the
2081 	 object file level.  A smart linker may decide, in the process
2082 	 of compressing duplicate CIE information, that it can rewrite
2083 	 the entire output section without this extra padding.  */
2084 
2085       start_offset = start - unit->dwarf_frame_buffer;
2086       if (workaround < ALIGN4 && (start_offset & 3) != 0)
2087 	{
2088 	  start += 4 - (start_offset & 3);
2089 	  workaround = ALIGN4;
2090 	  continue;
2091 	}
2092       if (workaround < ALIGN8 && (start_offset & 7) != 0)
2093 	{
2094 	  start += 8 - (start_offset & 7);
2095 	  workaround = ALIGN8;
2096 	  continue;
2097 	}
2098 
2099       /* Nothing left to try.  Arrange to return as if we've consumed
2100 	 the entire input section.  Hopefully we'll get valid info from
2101 	 the other of .debug_frame/.eh_frame.  */
2102       workaround = FAIL;
2103       ret = unit->dwarf_frame_buffer + unit->dwarf_frame_size;
2104       break;
2105     }
2106 
2107   switch (workaround)
2108     {
2109     case NONE:
2110       break;
2111 
2112     case ALIGN4:
2113       complaint (_("\
2114 Corrupt data in %s:%s; align 4 workaround apparently succeeded"),
2115 		 bfd_get_filename (unit->dwarf_frame_section->owner),
2116 		 bfd_section_name (unit->dwarf_frame_section));
2117       break;
2118 
2119     case ALIGN8:
2120       complaint (_("\
2121 Corrupt data in %s:%s; align 8 workaround apparently succeeded"),
2122 		 bfd_get_filename (unit->dwarf_frame_section->owner),
2123 		 bfd_section_name (unit->dwarf_frame_section));
2124       break;
2125 
2126     default:
2127       complaint (_("Corrupt data in %s:%s"),
2128 		 bfd_get_filename (unit->dwarf_frame_section->owner),
2129 		 bfd_section_name (unit->dwarf_frame_section));
2130       break;
2131     }
2132 
2133   return ret;
2134 }
2135 
2136 static bool
2137 fde_is_less_than (const dwarf2_fde *aa, const dwarf2_fde *bb)
2138 {
2139   if (aa->initial_location == bb->initial_location)
2140     {
2141       if (aa->address_range != bb->address_range
2142           && aa->eh_frame_p == 0 && bb->eh_frame_p == 0)
2143         /* Linker bug, e.g. gold/10400.
2144            Work around it by keeping stable sort order.  */
2145         return aa < bb;
2146       else
2147         /* Put eh_frame entries after debug_frame ones.  */
2148         return aa->eh_frame_p < bb->eh_frame_p;
2149     }
2150 
2151   return aa->initial_location < bb->initial_location;
2152 }
2153 
2154 void
2155 dwarf2_build_frame_info (struct objfile *objfile)
2156 {
2157   const gdb_byte *frame_ptr;
2158   dwarf2_cie_table cie_table;
2159   dwarf2_fde_table fde_table;
2160 
2161   struct gdbarch *gdbarch = objfile->arch ();
2162 
2163   /* Build a minimal decoding of the DWARF2 compilation unit.  */
2164   std::unique_ptr<comp_unit> unit (new comp_unit (objfile));
2165 
2166   if (objfile->separate_debug_objfile_backlink == NULL)
2167     {
2168       /* Do not read .eh_frame from separate file as they must be also
2169          present in the main file.  */
2170       dwarf2_get_section_info (objfile, DWARF2_EH_FRAME,
2171                                &unit->dwarf_frame_section,
2172                                &unit->dwarf_frame_buffer,
2173                                &unit->dwarf_frame_size);
2174       if (unit->dwarf_frame_size)
2175         {
2176           asection *got, *txt;
2177 
2178           /* FIXME: kettenis/20030602: This is the DW_EH_PE_datarel base
2179              that is used for the i386/amd64 target, which currently is
2180              the only target in GCC that supports/uses the
2181              DW_EH_PE_datarel encoding.  */
2182           got = bfd_get_section_by_name (unit->abfd, ".got");
2183           if (got)
2184             unit->dbase = got->vma;
2185 
2186           /* GCC emits the DW_EH_PE_textrel encoding type on sh and ia64
2187              so far.  */
2188           txt = bfd_get_section_by_name (unit->abfd, ".text");
2189           if (txt)
2190             unit->tbase = txt->vma;
2191 
2192 	  try
2193 	    {
2194 	      frame_ptr = unit->dwarf_frame_buffer;
2195 	      while (frame_ptr < unit->dwarf_frame_buffer + unit->dwarf_frame_size)
2196 		frame_ptr = decode_frame_entry (gdbarch, unit.get (),
2197 						frame_ptr, 1,
2198 						cie_table, &fde_table,
2199 						EH_CIE_OR_FDE_TYPE_ID);
2200 	    }
2201 
2202 	  catch (const gdb_exception_error &e)
2203 	    {
2204 	      warning (_("skipping .eh_frame info of %s: %s"),
2205 		       objfile_name (objfile), e.what ());
2206 
2207 	      fde_table.clear ();
2208 	      /* The cie_table is discarded below.  */
2209 	    }
2210 
2211 	  cie_table.clear ();
2212         }
2213     }
2214 
2215   dwarf2_get_section_info (objfile, DWARF2_DEBUG_FRAME,
2216                            &unit->dwarf_frame_section,
2217                            &unit->dwarf_frame_buffer,
2218                            &unit->dwarf_frame_size);
2219   if (unit->dwarf_frame_size)
2220     {
2221       size_t num_old_fde_entries = fde_table.size ();
2222 
2223       try
2224 	{
2225 	  frame_ptr = unit->dwarf_frame_buffer;
2226 	  while (frame_ptr < unit->dwarf_frame_buffer + unit->dwarf_frame_size)
2227 	    frame_ptr = decode_frame_entry (gdbarch, unit.get (), frame_ptr, 0,
2228 					    cie_table, &fde_table,
2229 					    EH_CIE_OR_FDE_TYPE_ID);
2230 	}
2231       catch (const gdb_exception_error &e)
2232 	{
2233 	  warning (_("skipping .debug_frame info of %s: %s"),
2234 		   objfile_name (objfile), e.what ());
2235 
2236 	  fde_table.resize (num_old_fde_entries);
2237 	}
2238     }
2239 
2240   struct dwarf2_fde *fde_prev = NULL;
2241   struct dwarf2_fde *first_non_zero_fde = NULL;
2242 
2243   /* Prepare FDE table for lookups.  */
2244   std::sort (fde_table.begin (), fde_table.end (), fde_is_less_than);
2245 
2246   /* Check for leftovers from --gc-sections.  The GNU linker sets
2247      the relevant symbols to zero, but doesn't zero the FDE *end*
2248      ranges because there's no relocation there.  It's (offset,
2249      length), not (start, end).  On targets where address zero is
2250      just another valid address this can be a problem, since the
2251      FDEs appear to be non-empty in the output --- we could pick
2252      out the wrong FDE.  To work around this, when overlaps are
2253      detected, we prefer FDEs that do not start at zero.
2254 
2255      Start by finding the first FDE with non-zero start.  Below
2256      we'll discard all FDEs that start at zero and overlap this
2257      one.  */
2258   for (struct dwarf2_fde *fde : fde_table)
2259     {
2260       if (fde->initial_location != 0)
2261 	{
2262 	  first_non_zero_fde = fde;
2263 	  break;
2264 	}
2265     }
2266 
2267   /* Since we'll be doing bsearch, squeeze out identical (except
2268      for eh_frame_p) fde entries so bsearch result is predictable.
2269      Also discard leftovers from --gc-sections.  */
2270   for (struct dwarf2_fde *fde : fde_table)
2271     {
2272       if (fde->initial_location == 0
2273 	  && first_non_zero_fde != NULL
2274 	  && (first_non_zero_fde->initial_location
2275 	      < fde->initial_location + fde->address_range))
2276 	continue;
2277 
2278       if (fde_prev != NULL
2279 	  && fde_prev->initial_location == fde->initial_location)
2280 	continue;
2281 
2282       unit->fde_table.push_back (fde);
2283       fde_prev = fde;
2284     }
2285   unit->fde_table.shrink_to_fit ();
2286 
2287   set_comp_unit (objfile, unit.release ());
2288 }
2289 
2290 /* Handle 'maintenance show dwarf unwinders'.  */
2291 
2292 static void
2293 show_dwarf_unwinders_enabled_p (struct ui_file *file, int from_tty,
2294 				struct cmd_list_element *c,
2295 				const char *value)
2296 {
2297   fprintf_filtered (file,
2298 		    _("The DWARF stack unwinders are currently %s.\n"),
2299 		    value);
2300 }
2301 
2302 void _initialize_dwarf2_frame ();
2303 void
2304 _initialize_dwarf2_frame ()
2305 {
2306   dwarf2_frame_data = gdbarch_data_register_pre_init (dwarf2_frame_init);
2307 
2308   add_setshow_boolean_cmd ("unwinders", class_obscure,
2309 			   &dwarf2_frame_unwinders_enabled_p , _("\
2310 Set whether the DWARF stack frame unwinders are used."), _("\
2311 Show whether the DWARF stack frame unwinders are used."), _("\
2312 When enabled the DWARF stack frame unwinders can be used for architectures\n\
2313 that support the DWARF unwinders.  Enabling the DWARF unwinders for an\n\
2314 architecture that doesn't support them will have no effect."),
2315 			   NULL,
2316 			   show_dwarf_unwinders_enabled_p,
2317 			   &set_dwarf_cmdlist,
2318 			   &show_dwarf_cmdlist);
2319 
2320 #if GDB_SELF_TEST
2321   selftests::register_test_foreach_arch ("execute_cfa_program",
2322 					 selftests::execute_cfa_program_test);
2323 #endif
2324 }
2325