gdb: make jit.c use the inferior_created inferior parameter
[deliverable/binutils-gdb.git] / gdb / jit.c
1 /* Handle JIT code generation in the inferior for GDB, the GNU Debugger.
2
3 Copyright (C) 2009-2020 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 #include <forward_list>
45
46 static std::string jit_reader_dir;
47
48 static const char jit_break_name[] = "__jit_debug_register_code";
49
50 static const char jit_descriptor_name[] = "__jit_debug_descriptor";
51
52 static void jit_inferior_exit_hook (struct inferior *inf);
53
54 /* An unwinder is registered for every gdbarch. This key is used to
55 remember if the unwinder has been registered for a particular
56 gdbarch. */
57
58 static struct gdbarch_data *jit_gdbarch_data;
59
60 /* Non-zero if we want to see trace of jit level stuff. */
61
62 static unsigned int jit_debug = 0;
63
64 static void
65 show_jit_debug (struct ui_file *file, int from_tty,
66 struct cmd_list_element *c, const char *value)
67 {
68 fprintf_filtered (file, _("JIT debugging is %s.\n"), value);
69 }
70
71 struct target_buffer
72 {
73 CORE_ADDR base;
74 ULONGEST size;
75 };
76
77 /* Opening the file is a no-op. */
78
79 static void *
80 mem_bfd_iovec_open (struct bfd *abfd, void *open_closure)
81 {
82 return open_closure;
83 }
84
85 /* Closing the file is just freeing the base/size pair on our side. */
86
87 static int
88 mem_bfd_iovec_close (struct bfd *abfd, void *stream)
89 {
90 xfree (stream);
91
92 /* Zero means success. */
93 return 0;
94 }
95
96 /* For reading the file, we just need to pass through to target_read_memory and
97 fix up the arguments and return values. */
98
99 static file_ptr
100 mem_bfd_iovec_pread (struct bfd *abfd, void *stream, void *buf,
101 file_ptr nbytes, file_ptr offset)
102 {
103 int err;
104 struct target_buffer *buffer = (struct target_buffer *) stream;
105
106 /* If this read will read all of the file, limit it to just the rest. */
107 if (offset + nbytes > buffer->size)
108 nbytes = buffer->size - offset;
109
110 /* If there are no more bytes left, we've reached EOF. */
111 if (nbytes == 0)
112 return 0;
113
114 err = target_read_memory (buffer->base + offset, (gdb_byte *) buf, nbytes);
115 if (err)
116 return -1;
117
118 return nbytes;
119 }
120
121 /* For statting the file, we only support the st_size attribute. */
122
123 static int
124 mem_bfd_iovec_stat (struct bfd *abfd, void *stream, struct stat *sb)
125 {
126 struct target_buffer *buffer = (struct target_buffer*) stream;
127
128 memset (sb, 0, sizeof (struct stat));
129 sb->st_size = buffer->size;
130 return 0;
131 }
132
133 /* Open a BFD from the target's memory. */
134
135 static gdb_bfd_ref_ptr
136 bfd_open_from_target_memory (CORE_ADDR addr, ULONGEST size,
137 const char *target)
138 {
139 struct target_buffer *buffer = XNEW (struct target_buffer);
140
141 buffer->base = addr;
142 buffer->size = size;
143 return gdb_bfd_openr_iovec ("<in-memory>", target,
144 mem_bfd_iovec_open,
145 buffer,
146 mem_bfd_iovec_pread,
147 mem_bfd_iovec_close,
148 mem_bfd_iovec_stat);
149 }
150
151 struct jit_reader
152 {
153 jit_reader (struct gdb_reader_funcs *f, gdb_dlhandle_up &&h)
154 : functions (f), handle (std::move (h))
155 {
156 }
157
158 ~jit_reader ()
159 {
160 functions->destroy (functions);
161 }
162
163 DISABLE_COPY_AND_ASSIGN (jit_reader);
164
165 struct gdb_reader_funcs *functions;
166 gdb_dlhandle_up handle;
167 };
168
169 /* One reader that has been loaded successfully, and can potentially be used to
170 parse debug info. */
171
172 static struct jit_reader *loaded_jit_reader = NULL;
173
174 typedef struct gdb_reader_funcs * (reader_init_fn_type) (void);
175 static const char reader_init_fn_sym[] = "gdb_init_reader";
176
177 /* Try to load FILE_NAME as a JIT debug info reader. */
178
179 static struct jit_reader *
180 jit_reader_load (const char *file_name)
181 {
182 reader_init_fn_type *init_fn;
183 struct gdb_reader_funcs *funcs = NULL;
184
185 if (jit_debug)
186 fprintf_unfiltered (gdb_stdlog, _("Opening shared object %s.\n"),
187 file_name);
188 gdb_dlhandle_up so = gdb_dlopen (file_name);
189
190 init_fn = (reader_init_fn_type *) gdb_dlsym (so, reader_init_fn_sym);
191 if (!init_fn)
192 error (_("Could not locate initialization function: %s."),
193 reader_init_fn_sym);
194
195 if (gdb_dlsym (so, "plugin_is_GPL_compatible") == NULL)
196 error (_("Reader not GPL compatible."));
197
198 funcs = init_fn ();
199 if (funcs->reader_version != GDB_READER_INTERFACE_VERSION)
200 error (_("Reader version does not match GDB version."));
201
202 return new jit_reader (funcs, std::move (so));
203 }
204
205 /* Provides the jit-reader-load command. */
206
207 static void
208 jit_reader_load_command (const char *args, int from_tty)
209 {
210 if (args == NULL)
211 error (_("No reader name provided."));
212 gdb::unique_xmalloc_ptr<char> file (tilde_expand (args));
213
214 if (loaded_jit_reader != NULL)
215 error (_("JIT reader already loaded. Run jit-reader-unload first."));
216
217 if (!IS_ABSOLUTE_PATH (file.get ()))
218 file.reset (xstrprintf ("%s%s%s", jit_reader_dir.c_str (), SLASH_STRING,
219 file.get ()));
220
221 loaded_jit_reader = jit_reader_load (file.get ());
222 reinit_frame_cache ();
223 jit_inferior_created_hook (current_inferior ());
224 }
225
226 /* Provides the jit-reader-unload command. */
227
228 static void
229 jit_reader_unload_command (const char *args, int from_tty)
230 {
231 if (!loaded_jit_reader)
232 error (_("No JIT reader loaded."));
233
234 reinit_frame_cache ();
235 jit_inferior_exit_hook (current_inferior ());
236
237 delete loaded_jit_reader;
238 loaded_jit_reader = NULL;
239 }
240
241 /* Destructor for jiter_objfile_data. */
242
243 jiter_objfile_data::~jiter_objfile_data ()
244 {
245 if (this->jit_breakpoint != nullptr)
246 delete_breakpoint (this->jit_breakpoint);
247 }
248
249 /* Fetch the jiter_objfile_data associated with OBJF. If no data exists
250 yet, make a new structure and attach it. */
251
252 static jiter_objfile_data *
253 get_jiter_objfile_data (objfile *objf)
254 {
255 if (objf->jiter_data == nullptr)
256 objf->jiter_data.reset (new jiter_objfile_data ());
257
258 return objf->jiter_data.get ();
259 }
260
261 /* Remember OBJFILE has been created for struct jit_code_entry located
262 at inferior address ENTRY. */
263
264 static void
265 add_objfile_entry (struct objfile *objfile, CORE_ADDR entry)
266 {
267 gdb_assert (objfile->jited_data == nullptr);
268
269 objfile->jited_data.reset (new jited_objfile_data (entry));
270 }
271
272 /* Helper function for reading the global JIT descriptor from remote
273 memory. Returns true if all went well, false otherwise. */
274
275 static bool
276 jit_read_descriptor (gdbarch *gdbarch,
277 jit_descriptor *descriptor,
278 objfile *jiter)
279 {
280 int err;
281 struct type *ptr_type;
282 int ptr_size;
283 int desc_size;
284 gdb_byte *desc_buf;
285 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
286
287 gdb_assert (jiter != nullptr);
288 jiter_objfile_data *objf_data = jiter->jiter_data.get ();
289 gdb_assert (objf_data != nullptr);
290
291 CORE_ADDR addr = MSYMBOL_VALUE_ADDRESS (jiter, objf_data->descriptor);
292
293 if (jit_debug)
294 fprintf_unfiltered (gdb_stdlog,
295 "jit_read_descriptor, descriptor_addr = %s\n",
296 paddress (gdbarch, addr));
297
298 /* Figure out how big the descriptor is on the remote and how to read it. */
299 ptr_type = builtin_type (gdbarch)->builtin_data_ptr;
300 ptr_size = TYPE_LENGTH (ptr_type);
301 desc_size = 8 + 2 * ptr_size; /* Two 32-bit ints and two pointers. */
302 desc_buf = (gdb_byte *) alloca (desc_size);
303
304 /* Read the descriptor. */
305 err = target_read_memory (addr, desc_buf, desc_size);
306 if (err)
307 {
308 printf_unfiltered (_("Unable to read JIT descriptor from "
309 "remote memory\n"));
310 return false;
311 }
312
313 /* Fix the endianness to match the host. */
314 descriptor->version = extract_unsigned_integer (&desc_buf[0], 4, byte_order);
315 descriptor->action_flag =
316 extract_unsigned_integer (&desc_buf[4], 4, byte_order);
317 descriptor->relevant_entry = extract_typed_address (&desc_buf[8], ptr_type);
318 descriptor->first_entry =
319 extract_typed_address (&desc_buf[8 + ptr_size], ptr_type);
320
321 return true;
322 }
323
324 /* Helper function for reading a JITed code entry from remote memory. */
325
326 static void
327 jit_read_code_entry (struct gdbarch *gdbarch,
328 CORE_ADDR code_addr, struct jit_code_entry *code_entry)
329 {
330 int err, off;
331 struct type *ptr_type;
332 int ptr_size;
333 int entry_size;
334 int align_bytes;
335 gdb_byte *entry_buf;
336 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
337
338 /* Figure out how big the entry is on the remote and how to read it. */
339 ptr_type = builtin_type (gdbarch)->builtin_data_ptr;
340 ptr_size = TYPE_LENGTH (ptr_type);
341
342 /* Figure out where the uint64_t value will be. */
343 align_bytes = type_align (builtin_type (gdbarch)->builtin_uint64);
344 off = 3 * ptr_size;
345 off = (off + (align_bytes - 1)) & ~(align_bytes - 1);
346
347 entry_size = off + 8; /* Three pointers and one 64-bit int. */
348 entry_buf = (gdb_byte *) alloca (entry_size);
349
350 /* Read the entry. */
351 err = target_read_memory (code_addr, entry_buf, entry_size);
352 if (err)
353 error (_("Unable to read JIT code entry from remote memory!"));
354
355 /* Fix the endianness to match the host. */
356 ptr_type = builtin_type (gdbarch)->builtin_data_ptr;
357 code_entry->next_entry = extract_typed_address (&entry_buf[0], ptr_type);
358 code_entry->prev_entry =
359 extract_typed_address (&entry_buf[ptr_size], ptr_type);
360 code_entry->symfile_addr =
361 extract_typed_address (&entry_buf[2 * ptr_size], ptr_type);
362 code_entry->symfile_size =
363 extract_unsigned_integer (&entry_buf[off], 8, byte_order);
364 }
365
366 /* Proxy object for building a block. */
367
368 struct gdb_block
369 {
370 gdb_block (gdb_block *parent, CORE_ADDR begin, CORE_ADDR end,
371 const char *name)
372 : parent (parent),
373 begin (begin),
374 end (end),
375 name (name != nullptr ? xstrdup (name) : nullptr)
376 {}
377
378 /* The parent of this block. */
379 struct gdb_block *parent;
380
381 /* Points to the "real" block that is being built out of this
382 instance. This block will be added to a blockvector, which will
383 then be added to a symtab. */
384 struct block *real_block = nullptr;
385
386 /* The first and last code address corresponding to this block. */
387 CORE_ADDR begin, end;
388
389 /* The name of this block (if any). If this is non-NULL, the
390 FUNCTION symbol symbol is set to this value. */
391 gdb::unique_xmalloc_ptr<char> name;
392 };
393
394 /* Proxy object for building a symtab. */
395
396 struct gdb_symtab
397 {
398 explicit gdb_symtab (const char *file_name)
399 : file_name (file_name != nullptr ? file_name : "")
400 {}
401
402 /* The list of blocks in this symtab. These will eventually be
403 converted to real blocks.
404
405 This is specifically a linked list, instead of, for example, a vector,
406 because the pointers are returned to the user's debug info reader. So
407 it's important that the objects don't change location during their
408 lifetime (which would happen with a vector of objects getting resized). */
409 std::forward_list<gdb_block> blocks;
410
411 /* The number of blocks inserted. */
412 int nblocks = 0;
413
414 /* A mapping between line numbers to PC. */
415 gdb::unique_xmalloc_ptr<struct linetable> linetable;
416
417 /* The source file for this symtab. */
418 std::string file_name;
419 };
420
421 /* Proxy object for building an object. */
422
423 struct gdb_object
424 {
425 /* Symtabs of this object.
426
427 This is specifically a linked list, instead of, for example, a vector,
428 because the pointers are returned to the user's debug info reader. So
429 it's important that the objects don't change location during their
430 lifetime (which would happen with a vector of objects getting resized). */
431 std::forward_list<gdb_symtab> symtabs;
432 };
433
434 /* The type of the `private' data passed around by the callback
435 functions. */
436
437 typedef CORE_ADDR jit_dbg_reader_data;
438
439 /* The reader calls into this function to read data off the targets
440 address space. */
441
442 static enum gdb_status
443 jit_target_read_impl (GDB_CORE_ADDR target_mem, void *gdb_buf, int len)
444 {
445 int result = target_read_memory ((CORE_ADDR) target_mem,
446 (gdb_byte *) gdb_buf, len);
447 if (result == 0)
448 return GDB_SUCCESS;
449 else
450 return GDB_FAIL;
451 }
452
453 /* The reader calls into this function to create a new gdb_object
454 which it can then pass around to the other callbacks. Right now,
455 all that is required is allocating the memory. */
456
457 static struct gdb_object *
458 jit_object_open_impl (struct gdb_symbol_callbacks *cb)
459 {
460 /* CB is not required right now, but sometime in the future we might
461 need a handle to it, and we'd like to do that without breaking
462 the ABI. */
463 return new gdb_object;
464 }
465
466 /* Readers call into this function to open a new gdb_symtab, which,
467 again, is passed around to other callbacks. */
468
469 static struct gdb_symtab *
470 jit_symtab_open_impl (struct gdb_symbol_callbacks *cb,
471 struct gdb_object *object,
472 const char *file_name)
473 {
474 /* CB stays unused. See comment in jit_object_open_impl. */
475
476 object->symtabs.emplace_front (file_name);
477 return &object->symtabs.front ();
478 }
479
480 /* Called by readers to open a new gdb_block. This function also
481 inserts the new gdb_block in the correct place in the corresponding
482 gdb_symtab. */
483
484 static struct gdb_block *
485 jit_block_open_impl (struct gdb_symbol_callbacks *cb,
486 struct gdb_symtab *symtab, struct gdb_block *parent,
487 GDB_CORE_ADDR begin, GDB_CORE_ADDR end, const char *name)
488 {
489 /* Place the block at the beginning of the list, it will be sorted when the
490 symtab is finalized. */
491 symtab->blocks.emplace_front (parent, begin, end, name);
492 symtab->nblocks++;
493
494 return &symtab->blocks.front ();
495 }
496
497 /* Readers call this to add a line mapping (from PC to line number) to
498 a gdb_symtab. */
499
500 static void
501 jit_symtab_line_mapping_add_impl (struct gdb_symbol_callbacks *cb,
502 struct gdb_symtab *stab, int nlines,
503 struct gdb_line_mapping *map)
504 {
505 int i;
506 int alloc_len;
507
508 if (nlines < 1)
509 return;
510
511 alloc_len = sizeof (struct linetable)
512 + (nlines - 1) * sizeof (struct linetable_entry);
513 stab->linetable.reset (XNEWVAR (struct linetable, alloc_len));
514 stab->linetable->nitems = nlines;
515 for (i = 0; i < nlines; i++)
516 {
517 stab->linetable->item[i].pc = (CORE_ADDR) map[i].pc;
518 stab->linetable->item[i].line = map[i].line;
519 stab->linetable->item[i].is_stmt = 1;
520 }
521 }
522
523 /* Called by readers to close a gdb_symtab. Does not need to do
524 anything as of now. */
525
526 static void
527 jit_symtab_close_impl (struct gdb_symbol_callbacks *cb,
528 struct gdb_symtab *stab)
529 {
530 /* Right now nothing needs to be done here. We may need to do some
531 cleanup here in the future (again, without breaking the plugin
532 ABI). */
533 }
534
535 /* Transform STAB to a proper symtab, and add it it OBJFILE. */
536
537 static void
538 finalize_symtab (struct gdb_symtab *stab, struct objfile *objfile)
539 {
540 struct compunit_symtab *cust;
541 size_t blockvector_size;
542 CORE_ADDR begin, end;
543 struct blockvector *bv;
544
545 int actual_nblocks = FIRST_LOCAL_BLOCK + stab->nblocks;
546
547 /* Sort the blocks in the order they should appear in the blockvector. */
548 stab->blocks.sort([] (const gdb_block &a, const gdb_block &b)
549 {
550 if (a.begin != b.begin)
551 return a.begin < b.begin;
552
553 return a.end > b.end;
554 });
555
556 cust = allocate_compunit_symtab (objfile, stab->file_name.c_str ());
557 allocate_symtab (cust, stab->file_name.c_str ());
558 add_compunit_symtab_to_objfile (cust);
559
560 /* JIT compilers compile in memory. */
561 COMPUNIT_DIRNAME (cust) = NULL;
562
563 /* Copy over the linetable entry if one was provided. */
564 if (stab->linetable)
565 {
566 size_t size = ((stab->linetable->nitems - 1)
567 * sizeof (struct linetable_entry)
568 + sizeof (struct linetable));
569 SYMTAB_LINETABLE (COMPUNIT_FILETABS (cust))
570 = (struct linetable *) obstack_alloc (&objfile->objfile_obstack, size);
571 memcpy (SYMTAB_LINETABLE (COMPUNIT_FILETABS (cust)),
572 stab->linetable.get (), size);
573 }
574
575 blockvector_size = (sizeof (struct blockvector)
576 + (actual_nblocks - 1) * sizeof (struct block *));
577 bv = (struct blockvector *) obstack_alloc (&objfile->objfile_obstack,
578 blockvector_size);
579 COMPUNIT_BLOCKVECTOR (cust) = bv;
580
581 /* At the end of this function, (begin, end) will contain the PC range this
582 entire blockvector spans. */
583 BLOCKVECTOR_MAP (bv) = NULL;
584 begin = stab->blocks.front ().begin;
585 end = stab->blocks.front ().end;
586 BLOCKVECTOR_NBLOCKS (bv) = actual_nblocks;
587
588 /* First run over all the gdb_block objects, creating a real block
589 object for each. Simultaneously, keep setting the real_block
590 fields. */
591 int block_idx = FIRST_LOCAL_BLOCK;
592 for (gdb_block &gdb_block_iter : stab->blocks)
593 {
594 struct block *new_block = allocate_block (&objfile->objfile_obstack);
595 struct symbol *block_name = new (&objfile->objfile_obstack) symbol;
596 struct type *block_type = arch_type (objfile->arch (),
597 TYPE_CODE_VOID,
598 TARGET_CHAR_BIT,
599 "void");
600
601 BLOCK_MULTIDICT (new_block)
602 = mdict_create_linear (&objfile->objfile_obstack, NULL);
603 /* The address range. */
604 BLOCK_START (new_block) = (CORE_ADDR) gdb_block_iter.begin;
605 BLOCK_END (new_block) = (CORE_ADDR) gdb_block_iter.end;
606
607 /* The name. */
608 SYMBOL_DOMAIN (block_name) = VAR_DOMAIN;
609 SYMBOL_ACLASS_INDEX (block_name) = LOC_BLOCK;
610 symbol_set_symtab (block_name, COMPUNIT_FILETABS (cust));
611 SYMBOL_TYPE (block_name) = lookup_function_type (block_type);
612 SYMBOL_BLOCK_VALUE (block_name) = new_block;
613
614 block_name->m_name = obstack_strdup (&objfile->objfile_obstack,
615 gdb_block_iter.name.get ());
616
617 BLOCK_FUNCTION (new_block) = block_name;
618
619 BLOCKVECTOR_BLOCK (bv, block_idx) = new_block;
620 if (begin > BLOCK_START (new_block))
621 begin = BLOCK_START (new_block);
622 if (end < BLOCK_END (new_block))
623 end = BLOCK_END (new_block);
624
625 gdb_block_iter.real_block = new_block;
626
627 block_idx++;
628 }
629
630 /* Now add the special blocks. */
631 struct block *block_iter = NULL;
632 for (enum block_enum i : { GLOBAL_BLOCK, STATIC_BLOCK })
633 {
634 struct block *new_block;
635
636 new_block = (i == GLOBAL_BLOCK
637 ? allocate_global_block (&objfile->objfile_obstack)
638 : allocate_block (&objfile->objfile_obstack));
639 BLOCK_MULTIDICT (new_block)
640 = mdict_create_linear (&objfile->objfile_obstack, NULL);
641 BLOCK_SUPERBLOCK (new_block) = block_iter;
642 block_iter = new_block;
643
644 BLOCK_START (new_block) = (CORE_ADDR) begin;
645 BLOCK_END (new_block) = (CORE_ADDR) end;
646
647 BLOCKVECTOR_BLOCK (bv, i) = new_block;
648
649 if (i == GLOBAL_BLOCK)
650 set_block_compunit_symtab (new_block, cust);
651 }
652
653 /* Fill up the superblock fields for the real blocks, using the
654 real_block fields populated earlier. */
655 for (gdb_block &gdb_block_iter : stab->blocks)
656 {
657 if (gdb_block_iter.parent != NULL)
658 {
659 /* If the plugin specifically mentioned a parent block, we
660 use that. */
661 BLOCK_SUPERBLOCK (gdb_block_iter.real_block) =
662 gdb_block_iter.parent->real_block;
663 }
664 else
665 {
666 /* And if not, we set a default parent block. */
667 BLOCK_SUPERBLOCK (gdb_block_iter.real_block) =
668 BLOCKVECTOR_BLOCK (bv, STATIC_BLOCK);
669 }
670 }
671 }
672
673 /* Called when closing a gdb_objfile. Converts OBJ to a proper
674 objfile. */
675
676 static void
677 jit_object_close_impl (struct gdb_symbol_callbacks *cb,
678 struct gdb_object *obj)
679 {
680 struct objfile *objfile;
681 jit_dbg_reader_data *priv_data;
682
683 priv_data = (jit_dbg_reader_data *) cb->priv_data;
684
685 objfile = objfile::make (nullptr, "<< JIT compiled code >>",
686 OBJF_NOT_FILENAME);
687 objfile->per_bfd->gdbarch = target_gdbarch ();
688
689 for (gdb_symtab &symtab : obj->symtabs)
690 finalize_symtab (&symtab, objfile);
691
692 add_objfile_entry (objfile, *priv_data);
693
694 delete obj;
695 }
696
697 /* Try to read CODE_ENTRY using the loaded jit reader (if any).
698 ENTRY_ADDR is the address of the struct jit_code_entry in the
699 inferior address space. */
700
701 static int
702 jit_reader_try_read_symtab (struct jit_code_entry *code_entry,
703 CORE_ADDR entry_addr)
704 {
705 int status;
706 jit_dbg_reader_data priv_data;
707 struct gdb_reader_funcs *funcs;
708 struct gdb_symbol_callbacks callbacks =
709 {
710 jit_object_open_impl,
711 jit_symtab_open_impl,
712 jit_block_open_impl,
713 jit_symtab_close_impl,
714 jit_object_close_impl,
715
716 jit_symtab_line_mapping_add_impl,
717 jit_target_read_impl,
718
719 &priv_data
720 };
721
722 priv_data = entry_addr;
723
724 if (!loaded_jit_reader)
725 return 0;
726
727 gdb::byte_vector gdb_mem (code_entry->symfile_size);
728
729 status = 1;
730 try
731 {
732 if (target_read_memory (code_entry->symfile_addr, gdb_mem.data (),
733 code_entry->symfile_size))
734 status = 0;
735 }
736 catch (const gdb_exception &e)
737 {
738 status = 0;
739 }
740
741 if (status)
742 {
743 funcs = loaded_jit_reader->functions;
744 if (funcs->read (funcs, &callbacks, gdb_mem.data (),
745 code_entry->symfile_size)
746 != GDB_SUCCESS)
747 status = 0;
748 }
749
750 if (jit_debug && status == 0)
751 fprintf_unfiltered (gdb_stdlog,
752 "Could not read symtab using the loaded JIT reader.\n");
753 return status;
754 }
755
756 /* Try to read CODE_ENTRY using BFD. ENTRY_ADDR is the address of the
757 struct jit_code_entry in the inferior address space. */
758
759 static void
760 jit_bfd_try_read_symtab (struct jit_code_entry *code_entry,
761 CORE_ADDR entry_addr,
762 struct gdbarch *gdbarch)
763 {
764 struct bfd_section *sec;
765 struct objfile *objfile;
766 const struct bfd_arch_info *b;
767
768 if (jit_debug)
769 fprintf_unfiltered (gdb_stdlog,
770 "jit_bfd_try_read_symtab, symfile_addr = %s, "
771 "symfile_size = %s\n",
772 paddress (gdbarch, code_entry->symfile_addr),
773 pulongest (code_entry->symfile_size));
774
775 gdb_bfd_ref_ptr nbfd (bfd_open_from_target_memory (code_entry->symfile_addr,
776 code_entry->symfile_size,
777 gnutarget));
778 if (nbfd == NULL)
779 {
780 puts_unfiltered (_("Error opening JITed symbol file, ignoring it.\n"));
781 return;
782 }
783
784 /* Check the format. NOTE: This initializes important data that GDB uses!
785 We would segfault later without this line. */
786 if (!bfd_check_format (nbfd.get (), bfd_object))
787 {
788 printf_unfiltered (_("\
789 JITed symbol file is not an object file, ignoring it.\n"));
790 return;
791 }
792
793 /* Check bfd arch. */
794 b = gdbarch_bfd_arch_info (gdbarch);
795 if (b->compatible (b, bfd_get_arch_info (nbfd.get ())) != b)
796 warning (_("JITed object file architecture %s is not compatible "
797 "with target architecture %s."),
798 bfd_get_arch_info (nbfd.get ())->printable_name,
799 b->printable_name);
800
801 /* Read the section address information out of the symbol file. Since the
802 file is generated by the JIT at runtime, it should all of the absolute
803 addresses that we care about. */
804 section_addr_info sai;
805 for (sec = nbfd->sections; sec != NULL; sec = sec->next)
806 if ((bfd_section_flags (sec) & (SEC_ALLOC|SEC_LOAD)) != 0)
807 {
808 /* We assume that these virtual addresses are absolute, and do not
809 treat them as offsets. */
810 sai.emplace_back (bfd_section_vma (sec),
811 bfd_section_name (sec),
812 sec->index);
813 }
814
815 /* This call does not take ownership of SAI. */
816 objfile = symbol_file_add_from_bfd (nbfd.get (),
817 bfd_get_filename (nbfd.get ()), 0,
818 &sai,
819 OBJF_SHARED | OBJF_NOT_FILENAME, NULL);
820
821 add_objfile_entry (objfile, entry_addr);
822 }
823
824 /* This function registers code associated with a JIT code entry. It uses the
825 pointer and size pair in the entry to read the symbol file from the remote
826 and then calls symbol_file_add_from_local_memory to add it as though it were
827 a symbol file added by the user. */
828
829 static void
830 jit_register_code (struct gdbarch *gdbarch,
831 CORE_ADDR entry_addr, struct jit_code_entry *code_entry)
832 {
833 int success;
834
835 if (jit_debug)
836 fprintf_unfiltered (gdb_stdlog,
837 "jit_register_code, symfile_addr = %s, "
838 "symfile_size = %s\n",
839 paddress (gdbarch, code_entry->symfile_addr),
840 pulongest (code_entry->symfile_size));
841
842 success = jit_reader_try_read_symtab (code_entry, entry_addr);
843
844 if (!success)
845 jit_bfd_try_read_symtab (code_entry, entry_addr, gdbarch);
846 }
847
848 /* Look up the objfile with this code entry address. */
849
850 static struct objfile *
851 jit_find_objf_with_entry_addr (CORE_ADDR entry_addr)
852 {
853 for (objfile *objf : current_program_space->objfiles ())
854 {
855 if (objf->jited_data != nullptr && objf->jited_data->addr == entry_addr)
856 return objf;
857 }
858
859 return NULL;
860 }
861
862 /* This is called when a breakpoint is deleted. It updates the
863 inferior's cache, if needed. */
864
865 static void
866 jit_breakpoint_deleted (struct breakpoint *b)
867 {
868 if (b->type != bp_jit_event)
869 return;
870
871 for (bp_location *iter = b->loc; iter != nullptr; iter = iter->next)
872 {
873 for (objfile *objf : iter->pspace->objfiles ())
874 {
875 jiter_objfile_data *jiter_data = objf->jiter_data.get ();
876
877 if (jiter_data != nullptr
878 && jiter_data->jit_breakpoint == iter->owner)
879 {
880 jiter_data->cached_code_address = 0;
881 jiter_data->jit_breakpoint = nullptr;
882 }
883 }
884 }
885 }
886
887 /* (Re-)Initialize the jit breakpoints for JIT-producing objfiles in
888 PSPACE. */
889
890 static void
891 jit_breakpoint_re_set_internal (struct gdbarch *gdbarch, program_space *pspace)
892 {
893 for (objfile *the_objfile : pspace->objfiles ())
894 {
895 if (the_objfile->skip_jit_symbol_lookup)
896 continue;
897
898 /* Lookup the registration symbol. If it is missing, then we
899 assume we are not attached to a JIT. */
900 bound_minimal_symbol reg_symbol
901 = lookup_minimal_symbol (jit_break_name, nullptr, the_objfile);
902 if (reg_symbol.minsym == NULL
903 || BMSYMBOL_VALUE_ADDRESS (reg_symbol) == 0)
904 {
905 /* No need to repeat the lookup the next time. */
906 the_objfile->skip_jit_symbol_lookup = true;
907 continue;
908 }
909
910 bound_minimal_symbol desc_symbol
911 = lookup_minimal_symbol (jit_descriptor_name, NULL, the_objfile);
912 if (desc_symbol.minsym == NULL
913 || BMSYMBOL_VALUE_ADDRESS (desc_symbol) == 0)
914 {
915 /* No need to repeat the lookup the next time. */
916 the_objfile->skip_jit_symbol_lookup = true;
917 continue;
918 }
919
920 jiter_objfile_data *objf_data
921 = get_jiter_objfile_data (reg_symbol.objfile);
922 objf_data->register_code = reg_symbol.minsym;
923 objf_data->descriptor = desc_symbol.minsym;
924
925 CORE_ADDR addr = MSYMBOL_VALUE_ADDRESS (the_objfile,
926 objf_data->register_code);
927
928 if (jit_debug)
929 fprintf_unfiltered (gdb_stdlog,
930 "jit_breakpoint_re_set_internal, "
931 "breakpoint_addr = %s\n",
932 paddress (gdbarch, addr));
933
934 /* Check if we need to re-create the breakpoint. */
935 if (objf_data->cached_code_address == addr)
936 continue;
937
938 /* Delete the old breakpoint. */
939 if (objf_data->jit_breakpoint != nullptr)
940 delete_breakpoint (objf_data->jit_breakpoint);
941
942 /* Put a breakpoint in the registration symbol. */
943 objf_data->cached_code_address = addr;
944 objf_data->jit_breakpoint = create_jit_event_breakpoint (gdbarch, addr);
945 }
946 }
947
948 /* The private data passed around in the frame unwind callback
949 functions. */
950
951 struct jit_unwind_private
952 {
953 /* Cached register values. See jit_frame_sniffer to see how this
954 works. */
955 detached_regcache *regcache;
956
957 /* The frame being unwound. */
958 struct frame_info *this_frame;
959 };
960
961 /* Sets the value of a particular register in this frame. */
962
963 static void
964 jit_unwind_reg_set_impl (struct gdb_unwind_callbacks *cb, int dwarf_regnum,
965 struct gdb_reg_value *value)
966 {
967 struct jit_unwind_private *priv;
968 int gdb_reg;
969
970 priv = (struct jit_unwind_private *) cb->priv_data;
971
972 gdb_reg = gdbarch_dwarf2_reg_to_regnum (get_frame_arch (priv->this_frame),
973 dwarf_regnum);
974 if (gdb_reg == -1)
975 {
976 if (jit_debug)
977 fprintf_unfiltered (gdb_stdlog,
978 _("Could not recognize DWARF regnum %d"),
979 dwarf_regnum);
980 value->free (value);
981 return;
982 }
983
984 priv->regcache->raw_supply (gdb_reg, value->value);
985 value->free (value);
986 }
987
988 static void
989 reg_value_free_impl (struct gdb_reg_value *value)
990 {
991 xfree (value);
992 }
993
994 /* Get the value of register REGNUM in the previous frame. */
995
996 static struct gdb_reg_value *
997 jit_unwind_reg_get_impl (struct gdb_unwind_callbacks *cb, int regnum)
998 {
999 struct jit_unwind_private *priv;
1000 struct gdb_reg_value *value;
1001 int gdb_reg, size;
1002 struct gdbarch *frame_arch;
1003
1004 priv = (struct jit_unwind_private *) cb->priv_data;
1005 frame_arch = get_frame_arch (priv->this_frame);
1006
1007 gdb_reg = gdbarch_dwarf2_reg_to_regnum (frame_arch, regnum);
1008 size = register_size (frame_arch, gdb_reg);
1009 value = ((struct gdb_reg_value *)
1010 xmalloc (sizeof (struct gdb_reg_value) + size - 1));
1011 value->defined = deprecated_frame_register_read (priv->this_frame, gdb_reg,
1012 value->value);
1013 value->size = size;
1014 value->free = reg_value_free_impl;
1015 return value;
1016 }
1017
1018 /* gdb_reg_value has a free function, which must be called on each
1019 saved register value. */
1020
1021 static void
1022 jit_dealloc_cache (struct frame_info *this_frame, void *cache)
1023 {
1024 struct jit_unwind_private *priv_data = (struct jit_unwind_private *) cache;
1025
1026 gdb_assert (priv_data->regcache != NULL);
1027 delete priv_data->regcache;
1028 xfree (priv_data);
1029 }
1030
1031 /* The frame sniffer for the pseudo unwinder.
1032
1033 While this is nominally a frame sniffer, in the case where the JIT
1034 reader actually recognizes the frame, it does a lot more work -- it
1035 unwinds the frame and saves the corresponding register values in
1036 the cache. jit_frame_prev_register simply returns the saved
1037 register values. */
1038
1039 static int
1040 jit_frame_sniffer (const struct frame_unwind *self,
1041 struct frame_info *this_frame, void **cache)
1042 {
1043 struct jit_unwind_private *priv_data;
1044 struct gdb_unwind_callbacks callbacks;
1045 struct gdb_reader_funcs *funcs;
1046
1047 callbacks.reg_get = jit_unwind_reg_get_impl;
1048 callbacks.reg_set = jit_unwind_reg_set_impl;
1049 callbacks.target_read = jit_target_read_impl;
1050
1051 if (loaded_jit_reader == NULL)
1052 return 0;
1053
1054 funcs = loaded_jit_reader->functions;
1055
1056 gdb_assert (!*cache);
1057
1058 *cache = XCNEW (struct jit_unwind_private);
1059 priv_data = (struct jit_unwind_private *) *cache;
1060 /* Take a snapshot of current regcache. */
1061 priv_data->regcache = new detached_regcache (get_frame_arch (this_frame),
1062 true);
1063 priv_data->this_frame = this_frame;
1064
1065 callbacks.priv_data = priv_data;
1066
1067 /* Try to coax the provided unwinder to unwind the stack */
1068 if (funcs->unwind (funcs, &callbacks) == GDB_SUCCESS)
1069 {
1070 if (jit_debug)
1071 fprintf_unfiltered (gdb_stdlog, _("Successfully unwound frame using "
1072 "JIT reader.\n"));
1073 return 1;
1074 }
1075 if (jit_debug)
1076 fprintf_unfiltered (gdb_stdlog, _("Could not unwind frame using "
1077 "JIT reader.\n"));
1078
1079 jit_dealloc_cache (this_frame, *cache);
1080 *cache = NULL;
1081
1082 return 0;
1083 }
1084
1085
1086 /* The frame_id function for the pseudo unwinder. Relays the call to
1087 the loaded plugin. */
1088
1089 static void
1090 jit_frame_this_id (struct frame_info *this_frame, void **cache,
1091 struct frame_id *this_id)
1092 {
1093 struct jit_unwind_private priv;
1094 struct gdb_frame_id frame_id;
1095 struct gdb_reader_funcs *funcs;
1096 struct gdb_unwind_callbacks callbacks;
1097
1098 priv.regcache = NULL;
1099 priv.this_frame = this_frame;
1100
1101 /* We don't expect the frame_id function to set any registers, so we
1102 set reg_set to NULL. */
1103 callbacks.reg_get = jit_unwind_reg_get_impl;
1104 callbacks.reg_set = NULL;
1105 callbacks.target_read = jit_target_read_impl;
1106 callbacks.priv_data = &priv;
1107
1108 gdb_assert (loaded_jit_reader);
1109 funcs = loaded_jit_reader->functions;
1110
1111 frame_id = funcs->get_frame_id (funcs, &callbacks);
1112 *this_id = frame_id_build (frame_id.stack_address, frame_id.code_address);
1113 }
1114
1115 /* Pseudo unwinder function. Reads the previously fetched value for
1116 the register from the cache. */
1117
1118 static struct value *
1119 jit_frame_prev_register (struct frame_info *this_frame, void **cache, int reg)
1120 {
1121 struct jit_unwind_private *priv = (struct jit_unwind_private *) *cache;
1122 struct gdbarch *gdbarch;
1123
1124 if (priv == NULL)
1125 return frame_unwind_got_optimized (this_frame, reg);
1126
1127 gdbarch = priv->regcache->arch ();
1128 gdb_byte *buf = (gdb_byte *) alloca (register_size (gdbarch, reg));
1129 enum register_status status = priv->regcache->cooked_read (reg, buf);
1130
1131 if (status == REG_VALID)
1132 return frame_unwind_got_bytes (this_frame, reg, buf);
1133 else
1134 return frame_unwind_got_optimized (this_frame, reg);
1135 }
1136
1137 /* Relay everything back to the unwinder registered by the JIT debug
1138 info reader.*/
1139
1140 static const struct frame_unwind jit_frame_unwind =
1141 {
1142 NORMAL_FRAME,
1143 default_frame_unwind_stop_reason,
1144 jit_frame_this_id,
1145 jit_frame_prev_register,
1146 NULL,
1147 jit_frame_sniffer,
1148 jit_dealloc_cache
1149 };
1150
1151
1152 /* This is the information that is stored at jit_gdbarch_data for each
1153 architecture. */
1154
1155 struct jit_gdbarch_data_type
1156 {
1157 /* Has the (pseudo) unwinder been prepended? */
1158 int unwinder_registered;
1159 };
1160
1161 /* Check GDBARCH and prepend the pseudo JIT unwinder if needed. */
1162
1163 static void
1164 jit_prepend_unwinder (struct gdbarch *gdbarch)
1165 {
1166 struct jit_gdbarch_data_type *data;
1167
1168 data
1169 = (struct jit_gdbarch_data_type *) gdbarch_data (gdbarch, jit_gdbarch_data);
1170 if (!data->unwinder_registered)
1171 {
1172 frame_unwind_prepend_unwinder (gdbarch, &jit_frame_unwind);
1173 data->unwinder_registered = 1;
1174 }
1175 }
1176
1177 /* Register any already created translations. */
1178
1179 static void
1180 jit_inferior_init (inferior *inf)
1181 {
1182 struct jit_descriptor descriptor;
1183 struct jit_code_entry cur_entry;
1184 CORE_ADDR cur_entry_addr;
1185 struct gdbarch *gdbarch = inf->gdbarch;
1186 program_space *pspace = inf->pspace;
1187
1188 if (jit_debug)
1189 fprintf_unfiltered (gdb_stdlog, "jit_inferior_init\n");
1190
1191 jit_prepend_unwinder (gdbarch);
1192
1193 jit_breakpoint_re_set_internal (gdbarch, pspace);
1194
1195 for (objfile *jiter : pspace->objfiles ())
1196 {
1197 if (jiter->jiter_data == nullptr)
1198 continue;
1199
1200 /* Read the descriptor so we can check the version number and load
1201 any already JITed functions. */
1202 if (!jit_read_descriptor (gdbarch, &descriptor, jiter))
1203 continue;
1204
1205 /* Check that the version number agrees with that we support. */
1206 if (descriptor.version != 1)
1207 {
1208 printf_unfiltered (_("Unsupported JIT protocol version %ld "
1209 "in descriptor (expected 1)\n"),
1210 (long) descriptor.version);
1211 continue;
1212 }
1213
1214 /* If we've attached to a running program, we need to check the
1215 descriptor to register any functions that were already
1216 generated. */
1217 for (cur_entry_addr = descriptor.first_entry;
1218 cur_entry_addr != 0;
1219 cur_entry_addr = cur_entry.next_entry)
1220 {
1221 jit_read_code_entry (gdbarch, cur_entry_addr, &cur_entry);
1222
1223 /* This hook may be called many times during setup, so make sure
1224 we don't add the same symbol file twice. */
1225 if (jit_find_objf_with_entry_addr (cur_entry_addr) != NULL)
1226 continue;
1227
1228 jit_register_code (gdbarch, cur_entry_addr, &cur_entry);
1229 }
1230 }
1231 }
1232
1233 /* See jit.h. */
1234
1235 void
1236 jit_inferior_created_hook (inferior *inf)
1237 {
1238 jit_inferior_init (inf);
1239 }
1240
1241 /* Exported routine to call to re-set the jit breakpoints,
1242 e.g. when a program is rerun. */
1243
1244 void
1245 jit_breakpoint_re_set (void)
1246 {
1247 jit_breakpoint_re_set_internal (target_gdbarch (), current_program_space);
1248 }
1249
1250 /* This function cleans up any code entries left over when the
1251 inferior exits. We get left over code when the inferior exits
1252 without unregistering its code, for example when it crashes. */
1253
1254 static void
1255 jit_inferior_exit_hook (struct inferior *inf)
1256 {
1257 for (objfile *objf : current_program_space->objfiles_safe ())
1258 {
1259 if (objf->jited_data != nullptr && objf->jited_data->addr != 0)
1260 objf->unlink ();
1261 }
1262 }
1263
1264 void
1265 jit_event_handler (gdbarch *gdbarch, objfile *jiter)
1266 {
1267 struct jit_descriptor descriptor;
1268
1269 /* If we get a JIT breakpoint event for this objfile, it is necessarily a
1270 JITer. */
1271 gdb_assert (jiter->jiter_data != nullptr);
1272
1273 /* Read the descriptor from remote memory. */
1274 if (!jit_read_descriptor (gdbarch, &descriptor, jiter))
1275 return;
1276 CORE_ADDR entry_addr = descriptor.relevant_entry;
1277
1278 /* Do the corresponding action. */
1279 switch (descriptor.action_flag)
1280 {
1281 case JIT_NOACTION:
1282 break;
1283
1284 case JIT_REGISTER:
1285 {
1286 jit_code_entry code_entry;
1287 jit_read_code_entry (gdbarch, entry_addr, &code_entry);
1288 jit_register_code (gdbarch, entry_addr, &code_entry);
1289 break;
1290 }
1291
1292 case JIT_UNREGISTER:
1293 {
1294 objfile *jited = jit_find_objf_with_entry_addr (entry_addr);
1295 if (jited == nullptr)
1296 printf_unfiltered (_("Unable to find JITed code "
1297 "entry at address: %s\n"),
1298 paddress (gdbarch, entry_addr));
1299 else
1300 jited->unlink ();
1301
1302 break;
1303 }
1304
1305 default:
1306 error (_("Unknown action_flag value in JIT descriptor!"));
1307 break;
1308 }
1309 }
1310
1311 /* Initialize the jit_gdbarch_data slot with an instance of struct
1312 jit_gdbarch_data_type */
1313
1314 static void *
1315 jit_gdbarch_data_init (struct obstack *obstack)
1316 {
1317 struct jit_gdbarch_data_type *data =
1318 XOBNEW (obstack, struct jit_gdbarch_data_type);
1319
1320 data->unwinder_registered = 0;
1321
1322 return data;
1323 }
1324
1325 void _initialize_jit ();
1326 void
1327 _initialize_jit ()
1328 {
1329 jit_reader_dir = relocate_gdb_directory (JIT_READER_DIR,
1330 JIT_READER_DIR_RELOCATABLE);
1331 add_setshow_zuinteger_cmd ("jit", class_maintenance, &jit_debug,
1332 _("Set JIT debugging."),
1333 _("Show JIT debugging."),
1334 _("When non-zero, JIT debugging is enabled."),
1335 NULL,
1336 show_jit_debug,
1337 &setdebuglist, &showdebuglist);
1338
1339 gdb::observers::inferior_created.attach (jit_inferior_created_hook);
1340 gdb::observers::inferior_exit.attach (jit_inferior_exit_hook);
1341 gdb::observers::breakpoint_deleted.attach (jit_breakpoint_deleted);
1342
1343 jit_gdbarch_data = gdbarch_data_register_pre_init (jit_gdbarch_data_init);
1344 if (is_dl_available ())
1345 {
1346 struct cmd_list_element *c;
1347
1348 c = add_com ("jit-reader-load", no_class, jit_reader_load_command, _("\
1349 Load FILE as debug info reader and unwinder for JIT compiled code.\n\
1350 Usage: jit-reader-load FILE\n\
1351 Try to load file FILE as a debug info reader (and unwinder) for\n\
1352 JIT compiled code. The file is loaded from " JIT_READER_DIR ",\n\
1353 relocated relative to the GDB executable if required."));
1354 set_cmd_completer (c, filename_completer);
1355
1356 c = add_com ("jit-reader-unload", no_class,
1357 jit_reader_unload_command, _("\
1358 Unload the currently loaded JIT debug info reader.\n\
1359 Usage: jit-reader-unload\n\n\
1360 Do \"help jit-reader-load\" for info on loading debug info readers."));
1361 set_cmd_completer (c, noop_completer);
1362 }
1363 }
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