b6e51e4f8b4dc45aababed6d5ed5b7c20edddb3c
[deliverable/binutils-gdb.git] / gdb / jit.c
1 /* Handle JIT code generation in the inferior for GDB, the GNU Debugger.
2
3 Copyright (C) 2009-2019 Free Software Foundation, Inc.
4
5 This file is part of GDB.
6
7 This program is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 3 of the License, or
10 (at your option) any later version.
11
12 This program is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
16
17 You should have received a copy of the GNU General Public License
18 along with this program. If not, see <http://www.gnu.org/licenses/>. */
19
20 #include "defs.h"
21
22 #include "jit.h"
23 #include "jit-reader.h"
24 #include "block.h"
25 #include "breakpoint.h"
26 #include "command.h"
27 #include "dictionary.h"
28 #include "filenames.h"
29 #include "frame-unwind.h"
30 #include "gdbcmd.h"
31 #include "gdbcore.h"
32 #include "inferior.h"
33 #include "observable.h"
34 #include "objfiles.h"
35 #include "regcache.h"
36 #include "symfile.h"
37 #include "symtab.h"
38 #include "target.h"
39 #include "gdbsupport/gdb-dlfcn.h"
40 #include <sys/stat.h>
41 #include "gdb_bfd.h"
42 #include "readline/tilde.h"
43 #include "completer.h"
44
45 static std::string jit_reader_dir;
46
47 static const struct objfile_data *jit_objfile_data;
48
49 static const char *const jit_break_name = "__jit_debug_register_code";
50
51 static const char *const jit_descriptor_name = "__jit_debug_descriptor";
52
53 static void jit_inferior_init (struct gdbarch *gdbarch);
54 static void jit_inferior_exit_hook (struct inferior *inf);
55
56 /* An unwinder is registered for every gdbarch. This key is used to
57 remember if the unwinder has been registered for a particular
58 gdbarch. */
59
60 static struct gdbarch_data *jit_gdbarch_data;
61
62 /* Non-zero if we want to see trace of jit level stuff. */
63
64 static unsigned int jit_debug = 0;
65
66 static void
67 show_jit_debug (struct ui_file *file, int from_tty,
68 struct cmd_list_element *c, const char *value)
69 {
70 fprintf_filtered (file, _("JIT debugging is %s.\n"), value);
71 }
72
73 struct target_buffer
74 {
75 CORE_ADDR base;
76 ULONGEST size;
77 };
78
79 /* Opening the file is a no-op. */
80
81 static void *
82 mem_bfd_iovec_open (struct bfd *abfd, void *open_closure)
83 {
84 return open_closure;
85 }
86
87 /* Closing the file is just freeing the base/size pair on our side. */
88
89 static int
90 mem_bfd_iovec_close (struct bfd *abfd, void *stream)
91 {
92 xfree (stream);
93
94 /* Zero means success. */
95 return 0;
96 }
97
98 /* For reading the file, we just need to pass through to target_read_memory and
99 fix up the arguments and return values. */
100
101 static file_ptr
102 mem_bfd_iovec_pread (struct bfd *abfd, void *stream, void *buf,
103 file_ptr nbytes, file_ptr offset)
104 {
105 int err;
106 struct target_buffer *buffer = (struct target_buffer *) stream;
107
108 /* If this read will read all of the file, limit it to just the rest. */
109 if (offset + nbytes > buffer->size)
110 nbytes = buffer->size - offset;
111
112 /* If there are no more bytes left, we've reached EOF. */
113 if (nbytes == 0)
114 return 0;
115
116 err = target_read_memory (buffer->base + offset, (gdb_byte *) buf, nbytes);
117 if (err)
118 return -1;
119
120 return nbytes;
121 }
122
123 /* For statting the file, we only support the st_size attribute. */
124
125 static int
126 mem_bfd_iovec_stat (struct bfd *abfd, void *stream, struct stat *sb)
127 {
128 struct target_buffer *buffer = (struct target_buffer*) stream;
129
130 memset (sb, 0, sizeof (struct stat));
131 sb->st_size = buffer->size;
132 return 0;
133 }
134
135 /* Open a BFD from the target's memory. */
136
137 static gdb_bfd_ref_ptr
138 bfd_open_from_target_memory (CORE_ADDR addr, ULONGEST size, char *target)
139 {
140 struct target_buffer *buffer = XNEW (struct target_buffer);
141
142 buffer->base = addr;
143 buffer->size = size;
144 return gdb_bfd_openr_iovec ("<in-memory>", target,
145 mem_bfd_iovec_open,
146 buffer,
147 mem_bfd_iovec_pread,
148 mem_bfd_iovec_close,
149 mem_bfd_iovec_stat);
150 }
151
152 struct jit_reader
153 {
154 jit_reader (struct gdb_reader_funcs *f, gdb_dlhandle_up &&h)
155 : functions (f), handle (std::move (h))
156 {
157 }
158
159 ~jit_reader ()
160 {
161 functions->destroy (functions);
162 }
163
164 DISABLE_COPY_AND_ASSIGN (jit_reader);
165
166 struct gdb_reader_funcs *functions;
167 gdb_dlhandle_up handle;
168 };
169
170 /* One reader that has been loaded successfully, and can potentially be used to
171 parse debug info. */
172
173 static struct jit_reader *loaded_jit_reader = NULL;
174
175 typedef struct gdb_reader_funcs * (reader_init_fn_type) (void);
176 static const char *reader_init_fn_sym = "gdb_init_reader";
177
178 /* Try to load FILE_NAME as a JIT debug info reader. */
179
180 static struct jit_reader *
181 jit_reader_load (const char *file_name)
182 {
183 reader_init_fn_type *init_fn;
184 struct gdb_reader_funcs *funcs = NULL;
185
186 if (jit_debug)
187 fprintf_unfiltered (gdb_stdlog, _("Opening shared object %s.\n"),
188 file_name);
189 gdb_dlhandle_up so = gdb_dlopen (file_name);
190
191 init_fn = (reader_init_fn_type *) gdb_dlsym (so, reader_init_fn_sym);
192 if (!init_fn)
193 error (_("Could not locate initialization function: %s."),
194 reader_init_fn_sym);
195
196 if (gdb_dlsym (so, "plugin_is_GPL_compatible") == NULL)
197 error (_("Reader not GPL compatible."));
198
199 funcs = init_fn ();
200 if (funcs->reader_version != GDB_READER_INTERFACE_VERSION)
201 error (_("Reader version does not match GDB version."));
202
203 return new jit_reader (funcs, std::move (so));
204 }
205
206 /* Provides the jit-reader-load command. */
207
208 static void
209 jit_reader_load_command (const char *args, int from_tty)
210 {
211 if (args == NULL)
212 error (_("No reader name provided."));
213 gdb::unique_xmalloc_ptr<char> file (tilde_expand (args));
214
215 if (loaded_jit_reader != NULL)
216 error (_("JIT reader already loaded. Run jit-reader-unload first."));
217
218 if (!IS_ABSOLUTE_PATH (file.get ()))
219 file.reset (xstrprintf ("%s%s%s", jit_reader_dir.c_str (), SLASH_STRING,
220 file.get ()));
221
222 loaded_jit_reader = jit_reader_load (file.get ());
223 reinit_frame_cache ();
224 jit_inferior_created_hook ();
225 }
226
227 /* Provides the jit-reader-unload command. */
228
229 static void
230 jit_reader_unload_command (const char *args, int from_tty)
231 {
232 if (!loaded_jit_reader)
233 error (_("No JIT reader loaded."));
234
235 reinit_frame_cache ();
236 jit_inferior_exit_hook (current_inferior ());
237
238 delete loaded_jit_reader;
239 loaded_jit_reader = NULL;
240 }
241
242 /* Per-program space structure recording which objfile has the JIT
243 symbols. */
244
245 struct jit_program_space_data
246 {
247 /* The objfile. This is NULL if no objfile holds the JIT
248 symbols. */
249
250 struct objfile *objfile = nullptr;
251
252 /* If this program space has __jit_debug_register_code, this is the
253 cached address from the minimal symbol. This is used to detect
254 relocations requiring the breakpoint to be re-created. */
255
256 CORE_ADDR cached_code_address = 0;
257
258 /* This is the JIT event breakpoint, or NULL if it has not been
259 set. */
260
261 struct breakpoint *jit_breakpoint = nullptr;
262 };
263
264 static program_space_key<jit_program_space_data> jit_program_space_key;
265
266 /* Per-objfile structure recording the addresses in the program space.
267 This object serves two purposes: for ordinary objfiles, it may
268 cache some symbols related to the JIT interface; and for
269 JIT-created objfiles, it holds some information about the
270 jit_code_entry. */
271
272 struct jit_objfile_data
273 {
274 /* Symbol for __jit_debug_register_code. */
275 struct minimal_symbol *register_code;
276
277 /* Symbol for __jit_debug_descriptor. */
278 struct minimal_symbol *descriptor;
279
280 /* Address of struct jit_code_entry in this objfile. This is only
281 non-zero for objfiles that represent code created by the JIT. */
282 CORE_ADDR addr;
283 };
284
285 /* Fetch the jit_objfile_data associated with OBJF. If no data exists
286 yet, make a new structure and attach it. */
287
288 static struct jit_objfile_data *
289 get_jit_objfile_data (struct objfile *objf)
290 {
291 struct jit_objfile_data *objf_data;
292
293 objf_data = (struct jit_objfile_data *) objfile_data (objf, jit_objfile_data);
294 if (objf_data == NULL)
295 {
296 objf_data = XCNEW (struct jit_objfile_data);
297 set_objfile_data (objf, jit_objfile_data, objf_data);
298 }
299
300 return objf_data;
301 }
302
303 /* Remember OBJFILE has been created for struct jit_code_entry located
304 at inferior address ENTRY. */
305
306 static void
307 add_objfile_entry (struct objfile *objfile, CORE_ADDR entry)
308 {
309 struct jit_objfile_data *objf_data;
310
311 objf_data = get_jit_objfile_data (objfile);
312 objf_data->addr = entry;
313 }
314
315 /* Return jit_program_space_data for current program space. Allocate
316 if not already present. */
317
318 static struct jit_program_space_data *
319 get_jit_program_space_data ()
320 {
321 struct jit_program_space_data *ps_data;
322
323 ps_data = jit_program_space_key.get (current_program_space);
324 if (ps_data == NULL)
325 ps_data = jit_program_space_key.emplace (current_program_space);
326 return ps_data;
327 }
328
329 /* Helper function for reading the global JIT descriptor from remote
330 memory. Returns 1 if all went well, 0 otherwise. */
331
332 static int
333 jit_read_descriptor (struct gdbarch *gdbarch,
334 struct jit_descriptor *descriptor,
335 struct jit_program_space_data *ps_data)
336 {
337 int err;
338 struct type *ptr_type;
339 int ptr_size;
340 int desc_size;
341 gdb_byte *desc_buf;
342 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
343 struct jit_objfile_data *objf_data;
344
345 if (ps_data->objfile == NULL)
346 return 0;
347 objf_data = get_jit_objfile_data (ps_data->objfile);
348 if (objf_data->descriptor == NULL)
349 return 0;
350
351 if (jit_debug)
352 fprintf_unfiltered (gdb_stdlog,
353 "jit_read_descriptor, descriptor_addr = %s\n",
354 paddress (gdbarch, MSYMBOL_VALUE_ADDRESS (ps_data->objfile,
355 objf_data->descriptor)));
356
357 /* Figure out how big the descriptor is on the remote and how to read it. */
358 ptr_type = builtin_type (gdbarch)->builtin_data_ptr;
359 ptr_size = TYPE_LENGTH (ptr_type);
360 desc_size = 8 + 2 * ptr_size; /* Two 32-bit ints and two pointers. */
361 desc_buf = (gdb_byte *) alloca (desc_size);
362
363 /* Read the descriptor. */
364 err = target_read_memory (MSYMBOL_VALUE_ADDRESS (ps_data->objfile,
365 objf_data->descriptor),
366 desc_buf, desc_size);
367 if (err)
368 {
369 printf_unfiltered (_("Unable to read JIT descriptor from "
370 "remote memory\n"));
371 return 0;
372 }
373
374 /* Fix the endianness to match the host. */
375 descriptor->version = extract_unsigned_integer (&desc_buf[0], 4, byte_order);
376 descriptor->action_flag =
377 extract_unsigned_integer (&desc_buf[4], 4, byte_order);
378 descriptor->relevant_entry = extract_typed_address (&desc_buf[8], ptr_type);
379 descriptor->first_entry =
380 extract_typed_address (&desc_buf[8 + ptr_size], ptr_type);
381
382 return 1;
383 }
384
385 /* Helper function for reading a JITed code entry from remote memory. */
386
387 static void
388 jit_read_code_entry (struct gdbarch *gdbarch,
389 CORE_ADDR code_addr, struct jit_code_entry *code_entry)
390 {
391 int err, off;
392 struct type *ptr_type;
393 int ptr_size;
394 int entry_size;
395 int align_bytes;
396 gdb_byte *entry_buf;
397 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
398
399 /* Figure out how big the entry is on the remote and how to read it. */
400 ptr_type = builtin_type (gdbarch)->builtin_data_ptr;
401 ptr_size = TYPE_LENGTH (ptr_type);
402
403 /* Figure out where the uint64_t value will be. */
404 align_bytes = type_align (builtin_type (gdbarch)->builtin_uint64);
405 off = 3 * ptr_size;
406 off = (off + (align_bytes - 1)) & ~(align_bytes - 1);
407
408 entry_size = off + 8; /* Three pointers and one 64-bit int. */
409 entry_buf = (gdb_byte *) alloca (entry_size);
410
411 /* Read the entry. */
412 err = target_read_memory (code_addr, entry_buf, entry_size);
413 if (err)
414 error (_("Unable to read JIT code entry from remote memory!"));
415
416 /* Fix the endianness to match the host. */
417 ptr_type = builtin_type (gdbarch)->builtin_data_ptr;
418 code_entry->next_entry = extract_typed_address (&entry_buf[0], ptr_type);
419 code_entry->prev_entry =
420 extract_typed_address (&entry_buf[ptr_size], ptr_type);
421 code_entry->symfile_addr =
422 extract_typed_address (&entry_buf[2 * ptr_size], ptr_type);
423 code_entry->symfile_size =
424 extract_unsigned_integer (&entry_buf[off], 8, byte_order);
425 }
426
427 /* Proxy object for building a block. */
428
429 struct gdb_block
430 {
431 /* gdb_blocks are linked into a tree structure. Next points to the
432 next node at the same depth as this block and parent to the
433 parent gdb_block. */
434 struct gdb_block *next, *parent;
435
436 /* Points to the "real" block that is being built out of this
437 instance. This block will be added to a blockvector, which will
438 then be added to a symtab. */
439 struct block *real_block;
440
441 /* The first and last code address corresponding to this block. */
442 CORE_ADDR begin, end;
443
444 /* The name of this block (if any). If this is non-NULL, the
445 FUNCTION symbol symbol is set to this value. */
446 const char *name;
447 };
448
449 /* Proxy object for building a symtab. */
450
451 struct gdb_symtab
452 {
453 /* The list of blocks in this symtab. These will eventually be
454 converted to real blocks. */
455 struct gdb_block *blocks;
456
457 /* The number of blocks inserted. */
458 int nblocks;
459
460 /* A mapping between line numbers to PC. */
461 struct linetable *linetable;
462
463 /* The source file for this symtab. */
464 const char *file_name;
465 struct gdb_symtab *next;
466 };
467
468 /* Proxy object for building an object. */
469
470 struct gdb_object
471 {
472 struct gdb_symtab *symtabs;
473 };
474
475 /* The type of the `private' data passed around by the callback
476 functions. */
477
478 typedef CORE_ADDR jit_dbg_reader_data;
479
480 /* The reader calls into this function to read data off the targets
481 address space. */
482
483 static enum gdb_status
484 jit_target_read_impl (GDB_CORE_ADDR target_mem, void *gdb_buf, int len)
485 {
486 int result = target_read_memory ((CORE_ADDR) target_mem,
487 (gdb_byte *) gdb_buf, len);
488 if (result == 0)
489 return GDB_SUCCESS;
490 else
491 return GDB_FAIL;
492 }
493
494 /* The reader calls into this function to create a new gdb_object
495 which it can then pass around to the other callbacks. Right now,
496 all that is required is allocating the memory. */
497
498 static struct gdb_object *
499 jit_object_open_impl (struct gdb_symbol_callbacks *cb)
500 {
501 /* CB is not required right now, but sometime in the future we might
502 need a handle to it, and we'd like to do that without breaking
503 the ABI. */
504 return XCNEW (struct gdb_object);
505 }
506
507 /* Readers call into this function to open a new gdb_symtab, which,
508 again, is passed around to other callbacks. */
509
510 static struct gdb_symtab *
511 jit_symtab_open_impl (struct gdb_symbol_callbacks *cb,
512 struct gdb_object *object,
513 const char *file_name)
514 {
515 struct gdb_symtab *ret;
516
517 /* CB stays unused. See comment in jit_object_open_impl. */
518
519 ret = XCNEW (struct gdb_symtab);
520 ret->file_name = file_name ? xstrdup (file_name) : xstrdup ("");
521 ret->next = object->symtabs;
522 object->symtabs = ret;
523 return ret;
524 }
525
526 /* Returns true if the block corresponding to old should be placed
527 before the block corresponding to new in the final blockvector. */
528
529 static int
530 compare_block (const struct gdb_block *const old,
531 const struct gdb_block *const newobj)
532 {
533 if (old == NULL)
534 return 1;
535 if (old->begin < newobj->begin)
536 return 1;
537 else if (old->begin == newobj->begin)
538 {
539 if (old->end > newobj->end)
540 return 1;
541 else
542 return 0;
543 }
544 else
545 return 0;
546 }
547
548 /* Called by readers to open a new gdb_block. This function also
549 inserts the new gdb_block in the correct place in the corresponding
550 gdb_symtab. */
551
552 static struct gdb_block *
553 jit_block_open_impl (struct gdb_symbol_callbacks *cb,
554 struct gdb_symtab *symtab, struct gdb_block *parent,
555 GDB_CORE_ADDR begin, GDB_CORE_ADDR end, const char *name)
556 {
557 struct gdb_block *block = XCNEW (struct gdb_block);
558
559 block->next = symtab->blocks;
560 block->begin = (CORE_ADDR) begin;
561 block->end = (CORE_ADDR) end;
562 block->name = name ? xstrdup (name) : NULL;
563 block->parent = parent;
564
565 /* Ensure that the blocks are inserted in the correct (reverse of
566 the order expected by blockvector). */
567 if (compare_block (symtab->blocks, block))
568 {
569 symtab->blocks = block;
570 }
571 else
572 {
573 struct gdb_block *i = symtab->blocks;
574
575 for (;; i = i->next)
576 {
577 /* Guaranteed to terminate, since compare_block (NULL, _)
578 returns 1. */
579 if (compare_block (i->next, block))
580 {
581 block->next = i->next;
582 i->next = block;
583 break;
584 }
585 }
586 }
587 symtab->nblocks++;
588
589 return block;
590 }
591
592 /* Readers call this to add a line mapping (from PC to line number) to
593 a gdb_symtab. */
594
595 static void
596 jit_symtab_line_mapping_add_impl (struct gdb_symbol_callbacks *cb,
597 struct gdb_symtab *stab, int nlines,
598 struct gdb_line_mapping *map)
599 {
600 int i;
601 int alloc_len;
602
603 if (nlines < 1)
604 return;
605
606 alloc_len = sizeof (struct linetable)
607 + (nlines - 1) * sizeof (struct linetable_entry);
608 stab->linetable = (struct linetable *) xmalloc (alloc_len);
609 stab->linetable->nitems = nlines;
610 for (i = 0; i < nlines; i++)
611 {
612 stab->linetable->item[i].pc = (CORE_ADDR) map[i].pc;
613 stab->linetable->item[i].line = map[i].line;
614 }
615 }
616
617 /* Called by readers to close a gdb_symtab. Does not need to do
618 anything as of now. */
619
620 static void
621 jit_symtab_close_impl (struct gdb_symbol_callbacks *cb,
622 struct gdb_symtab *stab)
623 {
624 /* Right now nothing needs to be done here. We may need to do some
625 cleanup here in the future (again, without breaking the plugin
626 ABI). */
627 }
628
629 /* Transform STAB to a proper symtab, and add it it OBJFILE. */
630
631 static void
632 finalize_symtab (struct gdb_symtab *stab, struct objfile *objfile)
633 {
634 struct compunit_symtab *cust;
635 struct gdb_block *gdb_block_iter, *gdb_block_iter_tmp;
636 struct block *block_iter;
637 int actual_nblocks, i;
638 size_t blockvector_size;
639 CORE_ADDR begin, end;
640 struct blockvector *bv;
641
642 actual_nblocks = FIRST_LOCAL_BLOCK + stab->nblocks;
643
644 cust = allocate_compunit_symtab (objfile, stab->file_name);
645 allocate_symtab (cust, stab->file_name);
646 add_compunit_symtab_to_objfile (cust);
647
648 /* JIT compilers compile in memory. */
649 COMPUNIT_DIRNAME (cust) = NULL;
650
651 /* Copy over the linetable entry if one was provided. */
652 if (stab->linetable)
653 {
654 size_t size = ((stab->linetable->nitems - 1)
655 * sizeof (struct linetable_entry)
656 + sizeof (struct linetable));
657 SYMTAB_LINETABLE (COMPUNIT_FILETABS (cust))
658 = (struct linetable *) obstack_alloc (&objfile->objfile_obstack, size);
659 memcpy (SYMTAB_LINETABLE (COMPUNIT_FILETABS (cust)), stab->linetable,
660 size);
661 }
662
663 blockvector_size = (sizeof (struct blockvector)
664 + (actual_nblocks - 1) * sizeof (struct block *));
665 bv = (struct blockvector *) obstack_alloc (&objfile->objfile_obstack,
666 blockvector_size);
667 COMPUNIT_BLOCKVECTOR (cust) = bv;
668
669 /* (begin, end) will contain the PC range this entire blockvector
670 spans. */
671 BLOCKVECTOR_MAP (bv) = NULL;
672 begin = stab->blocks->begin;
673 end = stab->blocks->end;
674 BLOCKVECTOR_NBLOCKS (bv) = actual_nblocks;
675
676 /* First run over all the gdb_block objects, creating a real block
677 object for each. Simultaneously, keep setting the real_block
678 fields. */
679 for (i = (actual_nblocks - 1), gdb_block_iter = stab->blocks;
680 i >= FIRST_LOCAL_BLOCK;
681 i--, gdb_block_iter = gdb_block_iter->next)
682 {
683 struct block *new_block = allocate_block (&objfile->objfile_obstack);
684 struct symbol *block_name = allocate_symbol (objfile);
685 struct type *block_type = arch_type (get_objfile_arch (objfile),
686 TYPE_CODE_VOID,
687 TARGET_CHAR_BIT,
688 "void");
689
690 BLOCK_MULTIDICT (new_block)
691 = mdict_create_linear (&objfile->objfile_obstack, NULL);
692 /* The address range. */
693 BLOCK_START (new_block) = (CORE_ADDR) gdb_block_iter->begin;
694 BLOCK_END (new_block) = (CORE_ADDR) gdb_block_iter->end;
695
696 /* The name. */
697 SYMBOL_DOMAIN (block_name) = VAR_DOMAIN;
698 SYMBOL_ACLASS_INDEX (block_name) = LOC_BLOCK;
699 symbol_set_symtab (block_name, COMPUNIT_FILETABS (cust));
700 SYMBOL_TYPE (block_name) = lookup_function_type (block_type);
701 SYMBOL_BLOCK_VALUE (block_name) = new_block;
702
703 block_name->name = obstack_strdup (&objfile->objfile_obstack,
704 gdb_block_iter->name);
705
706 BLOCK_FUNCTION (new_block) = block_name;
707
708 BLOCKVECTOR_BLOCK (bv, i) = new_block;
709 if (begin > BLOCK_START (new_block))
710 begin = BLOCK_START (new_block);
711 if (end < BLOCK_END (new_block))
712 end = BLOCK_END (new_block);
713
714 gdb_block_iter->real_block = new_block;
715 }
716
717 /* Now add the special blocks. */
718 block_iter = NULL;
719 for (i = 0; i < FIRST_LOCAL_BLOCK; i++)
720 {
721 struct block *new_block;
722
723 new_block = (i == GLOBAL_BLOCK
724 ? allocate_global_block (&objfile->objfile_obstack)
725 : allocate_block (&objfile->objfile_obstack));
726 BLOCK_MULTIDICT (new_block)
727 = mdict_create_linear (&objfile->objfile_obstack, NULL);
728 BLOCK_SUPERBLOCK (new_block) = block_iter;
729 block_iter = new_block;
730
731 BLOCK_START (new_block) = (CORE_ADDR) begin;
732 BLOCK_END (new_block) = (CORE_ADDR) end;
733
734 BLOCKVECTOR_BLOCK (bv, i) = new_block;
735
736 if (i == GLOBAL_BLOCK)
737 set_block_compunit_symtab (new_block, cust);
738 }
739
740 /* Fill up the superblock fields for the real blocks, using the
741 real_block fields populated earlier. */
742 for (gdb_block_iter = stab->blocks;
743 gdb_block_iter;
744 gdb_block_iter = gdb_block_iter->next)
745 {
746 if (gdb_block_iter->parent != NULL)
747 {
748 /* If the plugin specifically mentioned a parent block, we
749 use that. */
750 BLOCK_SUPERBLOCK (gdb_block_iter->real_block) =
751 gdb_block_iter->parent->real_block;
752 }
753 else
754 {
755 /* And if not, we set a default parent block. */
756 BLOCK_SUPERBLOCK (gdb_block_iter->real_block) =
757 BLOCKVECTOR_BLOCK (bv, STATIC_BLOCK);
758 }
759 }
760
761 /* Free memory. */
762 gdb_block_iter = stab->blocks;
763
764 for (gdb_block_iter = stab->blocks, gdb_block_iter_tmp = gdb_block_iter->next;
765 gdb_block_iter;
766 gdb_block_iter = gdb_block_iter_tmp)
767 {
768 xfree ((void *) gdb_block_iter->name);
769 xfree (gdb_block_iter);
770 }
771 xfree (stab->linetable);
772 xfree ((char *) stab->file_name);
773 xfree (stab);
774 }
775
776 /* Called when closing a gdb_objfile. Converts OBJ to a proper
777 objfile. */
778
779 static void
780 jit_object_close_impl (struct gdb_symbol_callbacks *cb,
781 struct gdb_object *obj)
782 {
783 struct gdb_symtab *i, *j;
784 struct objfile *objfile;
785 jit_dbg_reader_data *priv_data;
786
787 priv_data = (jit_dbg_reader_data *) cb->priv_data;
788
789 objfile = new struct objfile (NULL, "<< JIT compiled code >>",
790 OBJF_NOT_FILENAME);
791 objfile->per_bfd->gdbarch = target_gdbarch ();
792
793 j = NULL;
794 for (i = obj->symtabs; i; i = j)
795 {
796 j = i->next;
797 finalize_symtab (i, objfile);
798 }
799 add_objfile_entry (objfile, *priv_data);
800 xfree (obj);
801 }
802
803 /* Try to read CODE_ENTRY using the loaded jit reader (if any).
804 ENTRY_ADDR is the address of the struct jit_code_entry in the
805 inferior address space. */
806
807 static int
808 jit_reader_try_read_symtab (struct jit_code_entry *code_entry,
809 CORE_ADDR entry_addr)
810 {
811 int status;
812 jit_dbg_reader_data priv_data;
813 struct gdb_reader_funcs *funcs;
814 struct gdb_symbol_callbacks callbacks =
815 {
816 jit_object_open_impl,
817 jit_symtab_open_impl,
818 jit_block_open_impl,
819 jit_symtab_close_impl,
820 jit_object_close_impl,
821
822 jit_symtab_line_mapping_add_impl,
823 jit_target_read_impl,
824
825 &priv_data
826 };
827
828 priv_data = entry_addr;
829
830 if (!loaded_jit_reader)
831 return 0;
832
833 gdb::byte_vector gdb_mem (code_entry->symfile_size);
834
835 status = 1;
836 try
837 {
838 if (target_read_memory (code_entry->symfile_addr, gdb_mem.data (),
839 code_entry->symfile_size))
840 status = 0;
841 }
842 catch (const gdb_exception &e)
843 {
844 status = 0;
845 }
846
847 if (status)
848 {
849 funcs = loaded_jit_reader->functions;
850 if (funcs->read (funcs, &callbacks, gdb_mem.data (),
851 code_entry->symfile_size)
852 != GDB_SUCCESS)
853 status = 0;
854 }
855
856 if (jit_debug && status == 0)
857 fprintf_unfiltered (gdb_stdlog,
858 "Could not read symtab using the loaded JIT reader.\n");
859 return status;
860 }
861
862 /* Try to read CODE_ENTRY using BFD. ENTRY_ADDR is the address of the
863 struct jit_code_entry in the inferior address space. */
864
865 static void
866 jit_bfd_try_read_symtab (struct jit_code_entry *code_entry,
867 CORE_ADDR entry_addr,
868 struct gdbarch *gdbarch)
869 {
870 struct bfd_section *sec;
871 struct objfile *objfile;
872 const struct bfd_arch_info *b;
873
874 if (jit_debug)
875 fprintf_unfiltered (gdb_stdlog,
876 "jit_bfd_try_read_symtab, symfile_addr = %s, "
877 "symfile_size = %s\n",
878 paddress (gdbarch, code_entry->symfile_addr),
879 pulongest (code_entry->symfile_size));
880
881 gdb_bfd_ref_ptr nbfd (bfd_open_from_target_memory (code_entry->symfile_addr,
882 code_entry->symfile_size,
883 gnutarget));
884 if (nbfd == NULL)
885 {
886 puts_unfiltered (_("Error opening JITed symbol file, ignoring it.\n"));
887 return;
888 }
889
890 /* Check the format. NOTE: This initializes important data that GDB uses!
891 We would segfault later without this line. */
892 if (!bfd_check_format (nbfd.get (), bfd_object))
893 {
894 printf_unfiltered (_("\
895 JITed symbol file is not an object file, ignoring it.\n"));
896 return;
897 }
898
899 /* Check bfd arch. */
900 b = gdbarch_bfd_arch_info (gdbarch);
901 if (b->compatible (b, bfd_get_arch_info (nbfd.get ())) != b)
902 warning (_("JITed object file architecture %s is not compatible "
903 "with target architecture %s."),
904 bfd_get_arch_info (nbfd.get ())->printable_name,
905 b->printable_name);
906
907 /* Read the section address information out of the symbol file. Since the
908 file is generated by the JIT at runtime, it should all of the absolute
909 addresses that we care about. */
910 section_addr_info sai;
911 for (sec = nbfd->sections; sec != NULL; sec = sec->next)
912 if ((bfd_section_flags (sec) & (SEC_ALLOC|SEC_LOAD)) != 0)
913 {
914 /* We assume that these virtual addresses are absolute, and do not
915 treat them as offsets. */
916 sai.emplace_back (bfd_section_vma (sec),
917 bfd_section_name (sec),
918 sec->index);
919 }
920
921 /* This call does not take ownership of SAI. */
922 objfile = symbol_file_add_from_bfd (nbfd.get (),
923 bfd_get_filename (nbfd.get ()), 0,
924 &sai,
925 OBJF_SHARED | OBJF_NOT_FILENAME, NULL);
926
927 add_objfile_entry (objfile, entry_addr);
928 }
929
930 /* This function registers code associated with a JIT code entry. It uses the
931 pointer and size pair in the entry to read the symbol file from the remote
932 and then calls symbol_file_add_from_local_memory to add it as though it were
933 a symbol file added by the user. */
934
935 static void
936 jit_register_code (struct gdbarch *gdbarch,
937 CORE_ADDR entry_addr, struct jit_code_entry *code_entry)
938 {
939 int success;
940
941 if (jit_debug)
942 fprintf_unfiltered (gdb_stdlog,
943 "jit_register_code, symfile_addr = %s, "
944 "symfile_size = %s\n",
945 paddress (gdbarch, code_entry->symfile_addr),
946 pulongest (code_entry->symfile_size));
947
948 success = jit_reader_try_read_symtab (code_entry, entry_addr);
949
950 if (!success)
951 jit_bfd_try_read_symtab (code_entry, entry_addr, gdbarch);
952 }
953
954 /* This function unregisters JITed code and frees the corresponding
955 objfile. */
956
957 static void
958 jit_unregister_code (struct objfile *objfile)
959 {
960 if (jit_debug)
961 fprintf_unfiltered (gdb_stdlog, "jit_unregister_code (%s)\n",
962 host_address_to_string (objfile));
963 delete objfile;
964 }
965
966 /* Look up the objfile with this code entry address. */
967
968 static struct objfile *
969 jit_find_objf_with_entry_addr (CORE_ADDR entry_addr)
970 {
971 for (objfile *objf : current_program_space->objfiles ())
972 {
973 struct jit_objfile_data *objf_data;
974
975 objf_data
976 = (struct jit_objfile_data *) objfile_data (objf, jit_objfile_data);
977 if (objf_data != NULL && objf_data->addr == entry_addr)
978 return objf;
979 }
980 return NULL;
981 }
982
983 /* This is called when a breakpoint is deleted. It updates the
984 inferior's cache, if needed. */
985
986 static void
987 jit_breakpoint_deleted (struct breakpoint *b)
988 {
989 struct bp_location *iter;
990
991 if (b->type != bp_jit_event)
992 return;
993
994 for (iter = b->loc; iter != NULL; iter = iter->next)
995 {
996 struct jit_program_space_data *ps_data;
997
998 ps_data = jit_program_space_key.get (iter->pspace);
999 if (ps_data != NULL && ps_data->jit_breakpoint == iter->owner)
1000 {
1001 ps_data->cached_code_address = 0;
1002 ps_data->jit_breakpoint = NULL;
1003 }
1004 }
1005 }
1006
1007 /* (Re-)Initialize the jit breakpoint if necessary.
1008 Return 0 if the jit breakpoint has been successfully initialized. */
1009
1010 static int
1011 jit_breakpoint_re_set_internal (struct gdbarch *gdbarch,
1012 struct jit_program_space_data *ps_data)
1013 {
1014 struct bound_minimal_symbol reg_symbol;
1015 struct bound_minimal_symbol desc_symbol;
1016 struct jit_objfile_data *objf_data;
1017 CORE_ADDR addr;
1018
1019 if (ps_data->objfile == NULL)
1020 {
1021 /* Lookup the registration symbol. If it is missing, then we
1022 assume we are not attached to a JIT. */
1023 reg_symbol = lookup_bound_minimal_symbol (jit_break_name);
1024 if (reg_symbol.minsym == NULL
1025 || BMSYMBOL_VALUE_ADDRESS (reg_symbol) == 0)
1026 return 1;
1027
1028 desc_symbol = lookup_minimal_symbol (jit_descriptor_name, NULL,
1029 reg_symbol.objfile);
1030 if (desc_symbol.minsym == NULL
1031 || BMSYMBOL_VALUE_ADDRESS (desc_symbol) == 0)
1032 return 1;
1033
1034 objf_data = get_jit_objfile_data (reg_symbol.objfile);
1035 objf_data->register_code = reg_symbol.minsym;
1036 objf_data->descriptor = desc_symbol.minsym;
1037
1038 ps_data->objfile = reg_symbol.objfile;
1039 }
1040 else
1041 objf_data = get_jit_objfile_data (ps_data->objfile);
1042
1043 addr = MSYMBOL_VALUE_ADDRESS (ps_data->objfile, objf_data->register_code);
1044
1045 if (jit_debug)
1046 fprintf_unfiltered (gdb_stdlog,
1047 "jit_breakpoint_re_set_internal, "
1048 "breakpoint_addr = %s\n",
1049 paddress (gdbarch, addr));
1050
1051 if (ps_data->cached_code_address == addr)
1052 return 0;
1053
1054 /* Delete the old breakpoint. */
1055 if (ps_data->jit_breakpoint != NULL)
1056 delete_breakpoint (ps_data->jit_breakpoint);
1057
1058 /* Put a breakpoint in the registration symbol. */
1059 ps_data->cached_code_address = addr;
1060 ps_data->jit_breakpoint = create_jit_event_breakpoint (gdbarch, addr);
1061
1062 return 0;
1063 }
1064
1065 /* The private data passed around in the frame unwind callback
1066 functions. */
1067
1068 struct jit_unwind_private
1069 {
1070 /* Cached register values. See jit_frame_sniffer to see how this
1071 works. */
1072 detached_regcache *regcache;
1073
1074 /* The frame being unwound. */
1075 struct frame_info *this_frame;
1076 };
1077
1078 /* Sets the value of a particular register in this frame. */
1079
1080 static void
1081 jit_unwind_reg_set_impl (struct gdb_unwind_callbacks *cb, int dwarf_regnum,
1082 struct gdb_reg_value *value)
1083 {
1084 struct jit_unwind_private *priv;
1085 int gdb_reg;
1086
1087 priv = (struct jit_unwind_private *) cb->priv_data;
1088
1089 gdb_reg = gdbarch_dwarf2_reg_to_regnum (get_frame_arch (priv->this_frame),
1090 dwarf_regnum);
1091 if (gdb_reg == -1)
1092 {
1093 if (jit_debug)
1094 fprintf_unfiltered (gdb_stdlog,
1095 _("Could not recognize DWARF regnum %d"),
1096 dwarf_regnum);
1097 value->free (value);
1098 return;
1099 }
1100
1101 priv->regcache->raw_supply (gdb_reg, value->value);
1102 value->free (value);
1103 }
1104
1105 static void
1106 reg_value_free_impl (struct gdb_reg_value *value)
1107 {
1108 xfree (value);
1109 }
1110
1111 /* Get the value of register REGNUM in the previous frame. */
1112
1113 static struct gdb_reg_value *
1114 jit_unwind_reg_get_impl (struct gdb_unwind_callbacks *cb, int regnum)
1115 {
1116 struct jit_unwind_private *priv;
1117 struct gdb_reg_value *value;
1118 int gdb_reg, size;
1119 struct gdbarch *frame_arch;
1120
1121 priv = (struct jit_unwind_private *) cb->priv_data;
1122 frame_arch = get_frame_arch (priv->this_frame);
1123
1124 gdb_reg = gdbarch_dwarf2_reg_to_regnum (frame_arch, regnum);
1125 size = register_size (frame_arch, gdb_reg);
1126 value = ((struct gdb_reg_value *)
1127 xmalloc (sizeof (struct gdb_reg_value) + size - 1));
1128 value->defined = deprecated_frame_register_read (priv->this_frame, gdb_reg,
1129 value->value);
1130 value->size = size;
1131 value->free = reg_value_free_impl;
1132 return value;
1133 }
1134
1135 /* gdb_reg_value has a free function, which must be called on each
1136 saved register value. */
1137
1138 static void
1139 jit_dealloc_cache (struct frame_info *this_frame, void *cache)
1140 {
1141 struct jit_unwind_private *priv_data = (struct jit_unwind_private *) cache;
1142
1143 gdb_assert (priv_data->regcache != NULL);
1144 delete priv_data->regcache;
1145 xfree (priv_data);
1146 }
1147
1148 /* The frame sniffer for the pseudo unwinder.
1149
1150 While this is nominally a frame sniffer, in the case where the JIT
1151 reader actually recognizes the frame, it does a lot more work -- it
1152 unwinds the frame and saves the corresponding register values in
1153 the cache. jit_frame_prev_register simply returns the saved
1154 register values. */
1155
1156 static int
1157 jit_frame_sniffer (const struct frame_unwind *self,
1158 struct frame_info *this_frame, void **cache)
1159 {
1160 struct jit_unwind_private *priv_data;
1161 struct gdb_unwind_callbacks callbacks;
1162 struct gdb_reader_funcs *funcs;
1163
1164 callbacks.reg_get = jit_unwind_reg_get_impl;
1165 callbacks.reg_set = jit_unwind_reg_set_impl;
1166 callbacks.target_read = jit_target_read_impl;
1167
1168 if (loaded_jit_reader == NULL)
1169 return 0;
1170
1171 funcs = loaded_jit_reader->functions;
1172
1173 gdb_assert (!*cache);
1174
1175 *cache = XCNEW (struct jit_unwind_private);
1176 priv_data = (struct jit_unwind_private *) *cache;
1177 /* Take a snapshot of current regcache. */
1178 priv_data->regcache = new detached_regcache (get_frame_arch (this_frame),
1179 true);
1180 priv_data->this_frame = this_frame;
1181
1182 callbacks.priv_data = priv_data;
1183
1184 /* Try to coax the provided unwinder to unwind the stack */
1185 if (funcs->unwind (funcs, &callbacks) == GDB_SUCCESS)
1186 {
1187 if (jit_debug)
1188 fprintf_unfiltered (gdb_stdlog, _("Successfully unwound frame using "
1189 "JIT reader.\n"));
1190 return 1;
1191 }
1192 if (jit_debug)
1193 fprintf_unfiltered (gdb_stdlog, _("Could not unwind frame using "
1194 "JIT reader.\n"));
1195
1196 jit_dealloc_cache (this_frame, *cache);
1197 *cache = NULL;
1198
1199 return 0;
1200 }
1201
1202
1203 /* The frame_id function for the pseudo unwinder. Relays the call to
1204 the loaded plugin. */
1205
1206 static void
1207 jit_frame_this_id (struct frame_info *this_frame, void **cache,
1208 struct frame_id *this_id)
1209 {
1210 struct jit_unwind_private priv;
1211 struct gdb_frame_id frame_id;
1212 struct gdb_reader_funcs *funcs;
1213 struct gdb_unwind_callbacks callbacks;
1214
1215 priv.regcache = NULL;
1216 priv.this_frame = this_frame;
1217
1218 /* We don't expect the frame_id function to set any registers, so we
1219 set reg_set to NULL. */
1220 callbacks.reg_get = jit_unwind_reg_get_impl;
1221 callbacks.reg_set = NULL;
1222 callbacks.target_read = jit_target_read_impl;
1223 callbacks.priv_data = &priv;
1224
1225 gdb_assert (loaded_jit_reader);
1226 funcs = loaded_jit_reader->functions;
1227
1228 frame_id = funcs->get_frame_id (funcs, &callbacks);
1229 *this_id = frame_id_build (frame_id.stack_address, frame_id.code_address);
1230 }
1231
1232 /* Pseudo unwinder function. Reads the previously fetched value for
1233 the register from the cache. */
1234
1235 static struct value *
1236 jit_frame_prev_register (struct frame_info *this_frame, void **cache, int reg)
1237 {
1238 struct jit_unwind_private *priv = (struct jit_unwind_private *) *cache;
1239 struct gdbarch *gdbarch;
1240
1241 if (priv == NULL)
1242 return frame_unwind_got_optimized (this_frame, reg);
1243
1244 gdbarch = priv->regcache->arch ();
1245 gdb_byte *buf = (gdb_byte *) alloca (register_size (gdbarch, reg));
1246 enum register_status status = priv->regcache->cooked_read (reg, buf);
1247
1248 if (status == REG_VALID)
1249 return frame_unwind_got_bytes (this_frame, reg, buf);
1250 else
1251 return frame_unwind_got_optimized (this_frame, reg);
1252 }
1253
1254 /* Relay everything back to the unwinder registered by the JIT debug
1255 info reader.*/
1256
1257 static const struct frame_unwind jit_frame_unwind =
1258 {
1259 NORMAL_FRAME,
1260 default_frame_unwind_stop_reason,
1261 jit_frame_this_id,
1262 jit_frame_prev_register,
1263 NULL,
1264 jit_frame_sniffer,
1265 jit_dealloc_cache
1266 };
1267
1268
1269 /* This is the information that is stored at jit_gdbarch_data for each
1270 architecture. */
1271
1272 struct jit_gdbarch_data_type
1273 {
1274 /* Has the (pseudo) unwinder been prepended? */
1275 int unwinder_registered;
1276 };
1277
1278 /* Check GDBARCH and prepend the pseudo JIT unwinder if needed. */
1279
1280 static void
1281 jit_prepend_unwinder (struct gdbarch *gdbarch)
1282 {
1283 struct jit_gdbarch_data_type *data;
1284
1285 data
1286 = (struct jit_gdbarch_data_type *) gdbarch_data (gdbarch, jit_gdbarch_data);
1287 if (!data->unwinder_registered)
1288 {
1289 frame_unwind_prepend_unwinder (gdbarch, &jit_frame_unwind);
1290 data->unwinder_registered = 1;
1291 }
1292 }
1293
1294 /* Register any already created translations. */
1295
1296 static void
1297 jit_inferior_init (struct gdbarch *gdbarch)
1298 {
1299 struct jit_descriptor descriptor;
1300 struct jit_code_entry cur_entry;
1301 struct jit_program_space_data *ps_data;
1302 CORE_ADDR cur_entry_addr;
1303
1304 if (jit_debug)
1305 fprintf_unfiltered (gdb_stdlog, "jit_inferior_init\n");
1306
1307 jit_prepend_unwinder (gdbarch);
1308
1309 ps_data = get_jit_program_space_data ();
1310 if (jit_breakpoint_re_set_internal (gdbarch, ps_data) != 0)
1311 return;
1312
1313 /* Read the descriptor so we can check the version number and load
1314 any already JITed functions. */
1315 if (!jit_read_descriptor (gdbarch, &descriptor, ps_data))
1316 return;
1317
1318 /* Check that the version number agrees with that we support. */
1319 if (descriptor.version != 1)
1320 {
1321 printf_unfiltered (_("Unsupported JIT protocol version %ld "
1322 "in descriptor (expected 1)\n"),
1323 (long) descriptor.version);
1324 return;
1325 }
1326
1327 /* If we've attached to a running program, we need to check the descriptor
1328 to register any functions that were already generated. */
1329 for (cur_entry_addr = descriptor.first_entry;
1330 cur_entry_addr != 0;
1331 cur_entry_addr = cur_entry.next_entry)
1332 {
1333 jit_read_code_entry (gdbarch, cur_entry_addr, &cur_entry);
1334
1335 /* This hook may be called many times during setup, so make sure we don't
1336 add the same symbol file twice. */
1337 if (jit_find_objf_with_entry_addr (cur_entry_addr) != NULL)
1338 continue;
1339
1340 jit_register_code (gdbarch, cur_entry_addr, &cur_entry);
1341 }
1342 }
1343
1344 /* inferior_created observer. */
1345
1346 static void
1347 jit_inferior_created (struct target_ops *ops, int from_tty)
1348 {
1349 jit_inferior_created_hook ();
1350 }
1351
1352 /* Exported routine to call when an inferior has been created. */
1353
1354 void
1355 jit_inferior_created_hook (void)
1356 {
1357 jit_inferior_init (target_gdbarch ());
1358 }
1359
1360 /* Exported routine to call to re-set the jit breakpoints,
1361 e.g. when a program is rerun. */
1362
1363 void
1364 jit_breakpoint_re_set (void)
1365 {
1366 jit_breakpoint_re_set_internal (target_gdbarch (),
1367 get_jit_program_space_data ());
1368 }
1369
1370 /* This function cleans up any code entries left over when the
1371 inferior exits. We get left over code when the inferior exits
1372 without unregistering its code, for example when it crashes. */
1373
1374 static void
1375 jit_inferior_exit_hook (struct inferior *inf)
1376 {
1377 for (objfile *objf : current_program_space->objfiles_safe ())
1378 {
1379 struct jit_objfile_data *objf_data
1380 = (struct jit_objfile_data *) objfile_data (objf, jit_objfile_data);
1381
1382 if (objf_data != NULL && objf_data->addr != 0)
1383 jit_unregister_code (objf);
1384 }
1385 }
1386
1387 void
1388 jit_event_handler (struct gdbarch *gdbarch)
1389 {
1390 struct jit_descriptor descriptor;
1391 struct jit_code_entry code_entry;
1392 CORE_ADDR entry_addr;
1393 struct objfile *objf;
1394
1395 /* Read the descriptor from remote memory. */
1396 if (!jit_read_descriptor (gdbarch, &descriptor,
1397 get_jit_program_space_data ()))
1398 return;
1399 entry_addr = descriptor.relevant_entry;
1400
1401 /* Do the corresponding action. */
1402 switch (descriptor.action_flag)
1403 {
1404 case JIT_NOACTION:
1405 break;
1406 case JIT_REGISTER:
1407 jit_read_code_entry (gdbarch, entry_addr, &code_entry);
1408 jit_register_code (gdbarch, entry_addr, &code_entry);
1409 break;
1410 case JIT_UNREGISTER:
1411 objf = jit_find_objf_with_entry_addr (entry_addr);
1412 if (objf == NULL)
1413 printf_unfiltered (_("Unable to find JITed code "
1414 "entry at address: %s\n"),
1415 paddress (gdbarch, entry_addr));
1416 else
1417 jit_unregister_code (objf);
1418
1419 break;
1420 default:
1421 error (_("Unknown action_flag value in JIT descriptor!"));
1422 break;
1423 }
1424 }
1425
1426 /* Called to free the data allocated to the jit_program_space_data slot. */
1427
1428 static void
1429 free_objfile_data (struct objfile *objfile, void *data)
1430 {
1431 struct jit_objfile_data *objf_data = (struct jit_objfile_data *) data;
1432
1433 if (objf_data->register_code != NULL)
1434 {
1435 struct jit_program_space_data *ps_data;
1436
1437 ps_data = jit_program_space_key.get (objfile->pspace);
1438 if (ps_data != NULL && ps_data->objfile == objfile)
1439 {
1440 ps_data->objfile = NULL;
1441 if (ps_data->jit_breakpoint != NULL)
1442 delete_breakpoint (ps_data->jit_breakpoint);
1443 ps_data->cached_code_address = 0;
1444 }
1445 }
1446
1447 xfree (data);
1448 }
1449
1450 /* Initialize the jit_gdbarch_data slot with an instance of struct
1451 jit_gdbarch_data_type */
1452
1453 static void *
1454 jit_gdbarch_data_init (struct obstack *obstack)
1455 {
1456 struct jit_gdbarch_data_type *data =
1457 XOBNEW (obstack, struct jit_gdbarch_data_type);
1458
1459 data->unwinder_registered = 0;
1460
1461 return data;
1462 }
1463
1464 void
1465 _initialize_jit (void)
1466 {
1467 jit_reader_dir = relocate_gdb_directory (JIT_READER_DIR,
1468 JIT_READER_DIR_RELOCATABLE);
1469 add_setshow_zuinteger_cmd ("jit", class_maintenance, &jit_debug,
1470 _("Set JIT debugging."),
1471 _("Show JIT debugging."),
1472 _("When non-zero, JIT debugging is enabled."),
1473 NULL,
1474 show_jit_debug,
1475 &setdebuglist, &showdebuglist);
1476
1477 gdb::observers::inferior_created.attach (jit_inferior_created);
1478 gdb::observers::inferior_exit.attach (jit_inferior_exit_hook);
1479 gdb::observers::breakpoint_deleted.attach (jit_breakpoint_deleted);
1480
1481 jit_objfile_data =
1482 register_objfile_data_with_cleanup (NULL, free_objfile_data);
1483 jit_gdbarch_data = gdbarch_data_register_pre_init (jit_gdbarch_data_init);
1484 if (is_dl_available ())
1485 {
1486 struct cmd_list_element *c;
1487
1488 c = add_com ("jit-reader-load", no_class, jit_reader_load_command, _("\
1489 Load FILE as debug info reader and unwinder for JIT compiled code.\n\
1490 Usage: jit-reader-load FILE\n\
1491 Try to load file FILE as a debug info reader (and unwinder) for\n\
1492 JIT compiled code. The file is loaded from " JIT_READER_DIR ",\n\
1493 relocated relative to the GDB executable if required."));
1494 set_cmd_completer (c, filename_completer);
1495
1496 c = add_com ("jit-reader-unload", no_class,
1497 jit_reader_unload_command, _("\
1498 Unload the currently loaded JIT debug info reader.\n\
1499 Usage: jit-reader-unload\n\n\
1500 Do \"help jit-reader-load\" for info on loading debug info readers."));
1501 set_cmd_completer (c, noop_completer);
1502 }
1503 }
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