solib-svr4.c revision 1.1.1.10 1 1.1 christos /* Handle SVR4 shared libraries for GDB, the GNU Debugger.
2 1.1 christos
3 1.1.1.9 christos Copyright (C) 1990-2024 Free Software Foundation, Inc.
4 1.1 christos
5 1.1 christos This file is part of GDB.
6 1.1 christos
7 1.1 christos This program is free software; you can redistribute it and/or modify
8 1.1 christos it under the terms of the GNU General Public License as published by
9 1.1 christos the Free Software Foundation; either version 3 of the License, or
10 1.1 christos (at your option) any later version.
11 1.1 christos
12 1.1 christos This program is distributed in the hope that it will be useful,
13 1.1 christos but WITHOUT ANY WARRANTY; without even the implied warranty of
14 1.1 christos MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 1.1 christos GNU General Public License for more details.
16 1.1 christos
17 1.1 christos You should have received a copy of the GNU General Public License
18 1.1 christos along with this program. If not, see <http://www.gnu.org/licenses/>. */
19 1.1 christos
20 1.1 christos
21 1.1 christos #include "elf/external.h"
22 1.1 christos #include "elf/common.h"
23 1.1 christos #include "elf/mips.h"
24 1.1 christos
25 1.1.1.10 christos #include "exceptions.h"
26 1.1.1.9 christos #include "extract-store-integer.h"
27 1.1 christos #include "symtab.h"
28 1.1 christos #include "bfd.h"
29 1.1 christos #include "symfile.h"
30 1.1 christos #include "objfiles.h"
31 1.1 christos #include "gdbcore.h"
32 1.1 christos #include "target.h"
33 1.1 christos #include "inferior.h"
34 1.1.1.2 christos #include "infrun.h"
35 1.1 christos #include "regcache.h"
36 1.1.1.6 christos #include "observable.h"
37 1.1 christos
38 1.1 christos #include "solist.h"
39 1.1 christos #include "solib.h"
40 1.1 christos #include "solib-svr4.h"
41 1.1 christos
42 1.1 christos #include "bfd-target.h"
43 1.1 christos #include "elf-bfd.h"
44 1.1 christos #include "exec.h"
45 1.1 christos #include "auxv.h"
46 1.1 christos #include "gdb_bfd.h"
47 1.1 christos #include "probe.h"
48 1.1 christos
49 1.1.1.8 christos #include <map>
50 1.1.1.8 christos
51 1.1 christos static struct link_map_offsets *svr4_fetch_link_map_offsets (void);
52 1.1 christos static int svr4_have_link_map_offsets (void);
53 1.1 christos static void svr4_relocate_main_executable (void);
54 1.1.1.7 christos static void probes_table_remove_objfile_probes (struct objfile *objfile);
55 1.1.1.8 christos static void svr4_iterate_over_objfiles_in_search_order
56 1.1.1.8 christos (gdbarch *gdbarch, iterate_over_objfiles_in_search_order_cb_ftype cb,
57 1.1.1.8 christos objfile *current_objfile);
58 1.1.1.7 christos
59 1.1 christos
60 1.1 christos /* On SVR4 systems, a list of symbols in the dynamic linker where
61 1.1 christos GDB can try to place a breakpoint to monitor shared library
62 1.1 christos events.
63 1.1 christos
64 1.1 christos If none of these symbols are found, or other errors occur, then
65 1.1 christos SVR4 systems will fall back to using a symbol as the "startup
66 1.1 christos mapping complete" breakpoint address. */
67 1.1 christos
68 1.1 christos static const char * const solib_break_names[] =
69 1.1 christos {
70 1.1 christos "r_debug_state",
71 1.1 christos "_r_debug_state",
72 1.1 christos "_dl_debug_state",
73 1.1 christos "rtld_db_dlactivity",
74 1.1 christos "__dl_rtld_db_dlactivity",
75 1.1 christos "_rtld_debug_state",
76 1.1 christos
77 1.1 christos NULL
78 1.1 christos };
79 1.1 christos
80 1.1 christos static const char * const bkpt_names[] =
81 1.1 christos {
82 1.1 christos "_start",
83 1.1 christos "__start",
84 1.1 christos "main",
85 1.1 christos NULL
86 1.1 christos };
87 1.1 christos
88 1.1 christos static const char * const main_name_list[] =
89 1.1 christos {
90 1.1 christos "main_$main",
91 1.1 christos NULL
92 1.1 christos };
93 1.1 christos
94 1.1 christos /* What to do when a probe stop occurs. */
95 1.1 christos
96 1.1 christos enum probe_action
97 1.1 christos {
98 1.1 christos /* Something went seriously wrong. Stop using probes and
99 1.1 christos revert to using the older interface. */
100 1.1 christos PROBES_INTERFACE_FAILED,
101 1.1 christos
102 1.1 christos /* No action is required. The shared object list is still
103 1.1 christos valid. */
104 1.1 christos DO_NOTHING,
105 1.1 christos
106 1.1 christos /* The shared object list should be reloaded entirely. */
107 1.1 christos FULL_RELOAD,
108 1.1 christos
109 1.1 christos /* Attempt to incrementally update the shared object list. If
110 1.1 christos the update fails or is not possible, fall back to reloading
111 1.1 christos the list in full. */
112 1.1 christos UPDATE_OR_RELOAD,
113 1.1 christos };
114 1.1 christos
115 1.1 christos /* A probe's name and its associated action. */
116 1.1 christos
117 1.1 christos struct probe_info
118 1.1 christos {
119 1.1 christos /* The name of the probe. */
120 1.1 christos const char *name;
121 1.1 christos
122 1.1 christos /* What to do when a probe stop occurs. */
123 1.1 christos enum probe_action action;
124 1.1 christos };
125 1.1 christos
126 1.1 christos /* A list of named probes and their associated actions. If all
127 1.1 christos probes are present in the dynamic linker then the probes-based
128 1.1 christos interface will be used. */
129 1.1 christos
130 1.1 christos static const struct probe_info probe_info[] =
131 1.1 christos {
132 1.1 christos { "init_start", DO_NOTHING },
133 1.1 christos { "init_complete", FULL_RELOAD },
134 1.1 christos { "map_start", DO_NOTHING },
135 1.1 christos { "map_failed", DO_NOTHING },
136 1.1 christos { "reloc_complete", UPDATE_OR_RELOAD },
137 1.1 christos { "unmap_start", DO_NOTHING },
138 1.1 christos { "unmap_complete", FULL_RELOAD },
139 1.1 christos };
140 1.1 christos
141 1.1 christos #define NUM_PROBES ARRAY_SIZE (probe_info)
142 1.1 christos
143 1.1 christos /* Return non-zero if GDB_SO_NAME and INFERIOR_SO_NAME represent
144 1.1 christos the same shared library. */
145 1.1 christos
146 1.1 christos static int
147 1.1 christos svr4_same_1 (const char *gdb_so_name, const char *inferior_so_name)
148 1.1 christos {
149 1.1 christos if (strcmp (gdb_so_name, inferior_so_name) == 0)
150 1.1 christos return 1;
151 1.1 christos
152 1.1 christos /* On Solaris, when starting inferior we think that dynamic linker is
153 1.1 christos /usr/lib/ld.so.1, but later on, the table of loaded shared libraries
154 1.1 christos contains /lib/ld.so.1. Sometimes one file is a link to another, but
155 1.1 christos sometimes they have identical content, but are not linked to each
156 1.1 christos other. We don't restrict this check for Solaris, but the chances
157 1.1 christos of running into this situation elsewhere are very low. */
158 1.1 christos if (strcmp (gdb_so_name, "/usr/lib/ld.so.1") == 0
159 1.1 christos && strcmp (inferior_so_name, "/lib/ld.so.1") == 0)
160 1.1 christos return 1;
161 1.1 christos
162 1.1.1.6 christos /* Similarly, we observed the same issue with amd64 and sparcv9, but with
163 1.1 christos different locations. */
164 1.1.1.6 christos if (strcmp (gdb_so_name, "/usr/lib/amd64/ld.so.1") == 0
165 1.1.1.6 christos && strcmp (inferior_so_name, "/lib/amd64/ld.so.1") == 0)
166 1.1.1.6 christos return 1;
167 1.1.1.6 christos
168 1.1 christos if (strcmp (gdb_so_name, "/usr/lib/sparcv9/ld.so.1") == 0
169 1.1 christos && strcmp (inferior_so_name, "/lib/sparcv9/ld.so.1") == 0)
170 1.1 christos return 1;
171 1.1 christos
172 1.1 christos return 0;
173 1.1 christos }
174 1.1 christos
175 1.1.1.9 christos static bool
176 1.1.1.9 christos svr4_same (const char *gdb_name, const char *inferior_name,
177 1.1.1.9 christos const lm_info_svr4 &gdb_lm_info,
178 1.1.1.9 christos const lm_info_svr4 &inferior_lm_info)
179 1.1 christos {
180 1.1.1.9 christos if (!svr4_same_1 (gdb_name, inferior_name))
181 1.1.1.8 christos return false;
182 1.1.1.8 christos
183 1.1.1.8 christos /* There may be different instances of the same library, in different
184 1.1.1.8 christos namespaces. Each instance, however, must have been loaded at a
185 1.1.1.8 christos different address so its relocation offset would be different. */
186 1.1.1.9 christos return gdb_lm_info.l_addr_inferior == inferior_lm_info.l_addr_inferior;
187 1.1.1.9 christos }
188 1.1.1.8 christos
189 1.1.1.9 christos static int
190 1.1.1.9 christos svr4_same (const solib &gdb, const solib &inferior)
191 1.1.1.9 christos {
192 1.1.1.9 christos auto *lmg
193 1.1.1.9 christos = gdb::checked_static_cast<const lm_info_svr4 *> (gdb.lm_info.get ());
194 1.1.1.9 christos auto *lmi
195 1.1.1.9 christos = gdb::checked_static_cast<const lm_info_svr4 *> (inferior.lm_info.get ());
196 1.1.1.9 christos
197 1.1.1.9 christos return svr4_same (gdb.so_original_name.c_str (),
198 1.1.1.9 christos inferior.so_original_name.c_str (), *lmg, *lmi);
199 1.1 christos }
200 1.1 christos
201 1.1.1.9 christos static lm_info_svr4_up
202 1.1 christos lm_info_read (CORE_ADDR lm_addr)
203 1.1 christos {
204 1.1 christos struct link_map_offsets *lmo = svr4_fetch_link_map_offsets ();
205 1.1.1.9 christos lm_info_svr4_up lm_info;
206 1.1 christos
207 1.1.1.6 christos gdb::byte_vector lm (lmo->link_map_size);
208 1.1 christos
209 1.1.1.6 christos if (target_read_memory (lm_addr, lm.data (), lmo->link_map_size) != 0)
210 1.1.1.6 christos warning (_("Error reading shared library list entry at %s"),
211 1.1.1.9 christos paddress (current_inferior ()->arch (), lm_addr));
212 1.1 christos else
213 1.1 christos {
214 1.1.1.9 christos type *ptr_type
215 1.1.1.9 christos = builtin_type (current_inferior ()->arch ())->builtin_data_ptr;
216 1.1 christos
217 1.1.1.9 christos lm_info = std::make_unique<lm_info_svr4> ();
218 1.1 christos lm_info->lm_addr = lm_addr;
219 1.1 christos
220 1.1 christos lm_info->l_addr_inferior = extract_typed_address (&lm[lmo->l_addr_offset],
221 1.1 christos ptr_type);
222 1.1 christos lm_info->l_ld = extract_typed_address (&lm[lmo->l_ld_offset], ptr_type);
223 1.1 christos lm_info->l_next = extract_typed_address (&lm[lmo->l_next_offset],
224 1.1 christos ptr_type);
225 1.1 christos lm_info->l_prev = extract_typed_address (&lm[lmo->l_prev_offset],
226 1.1 christos ptr_type);
227 1.1 christos lm_info->l_name = extract_typed_address (&lm[lmo->l_name_offset],
228 1.1 christos ptr_type);
229 1.1 christos }
230 1.1 christos
231 1.1 christos return lm_info;
232 1.1 christos }
233 1.1 christos
234 1.1 christos static int
235 1.1 christos has_lm_dynamic_from_link_map (void)
236 1.1 christos {
237 1.1 christos struct link_map_offsets *lmo = svr4_fetch_link_map_offsets ();
238 1.1 christos
239 1.1 christos return lmo->l_ld_offset >= 0;
240 1.1 christos }
241 1.1 christos
242 1.1 christos static CORE_ADDR
243 1.1.1.9 christos lm_addr_check (const solib &so, bfd *abfd)
244 1.1 christos {
245 1.1.1.9 christos auto *li = gdb::checked_static_cast<lm_info_svr4 *> (so.lm_info.get ());
246 1.1.1.6 christos
247 1.1.1.6 christos if (!li->l_addr_p)
248 1.1 christos {
249 1.1 christos struct bfd_section *dyninfo_sect;
250 1.1 christos CORE_ADDR l_addr, l_dynaddr, dynaddr;
251 1.1 christos
252 1.1.1.6 christos l_addr = li->l_addr_inferior;
253 1.1 christos
254 1.1 christos if (! abfd || ! has_lm_dynamic_from_link_map ())
255 1.1 christos goto set_addr;
256 1.1 christos
257 1.1.1.6 christos l_dynaddr = li->l_ld;
258 1.1 christos
259 1.1 christos dyninfo_sect = bfd_get_section_by_name (abfd, ".dynamic");
260 1.1 christos if (dyninfo_sect == NULL)
261 1.1 christos goto set_addr;
262 1.1 christos
263 1.1.1.7 christos dynaddr = bfd_section_vma (dyninfo_sect);
264 1.1 christos
265 1.1 christos if (dynaddr + l_addr != l_dynaddr)
266 1.1 christos {
267 1.1 christos CORE_ADDR align = 0x1000;
268 1.1 christos CORE_ADDR minpagesize = align;
269 1.1 christos
270 1.1 christos if (bfd_get_flavour (abfd) == bfd_target_elf_flavour)
271 1.1 christos {
272 1.1 christos Elf_Internal_Ehdr *ehdr = elf_tdata (abfd)->elf_header;
273 1.1 christos Elf_Internal_Phdr *phdr = elf_tdata (abfd)->phdr;
274 1.1 christos int i;
275 1.1 christos
276 1.1 christos align = 1;
277 1.1 christos
278 1.1 christos for (i = 0; i < ehdr->e_phnum; i++)
279 1.1 christos if (phdr[i].p_type == PT_LOAD && phdr[i].p_align > align)
280 1.1 christos align = phdr[i].p_align;
281 1.1 christos
282 1.1 christos minpagesize = get_elf_backend_data (abfd)->minpagesize;
283 1.1 christos }
284 1.1 christos
285 1.1 christos /* Turn it into a mask. */
286 1.1 christos align--;
287 1.1 christos
288 1.1 christos /* If the changes match the alignment requirements, we
289 1.1 christos assume we're using a core file that was generated by the
290 1.1 christos same binary, just prelinked with a different base offset.
291 1.1 christos If it doesn't match, we may have a different binary, the
292 1.1 christos same binary with the dynamic table loaded at an unrelated
293 1.1 christos location, or anything, really. To avoid regressions,
294 1.1 christos don't adjust the base offset in the latter case, although
295 1.1 christos odds are that, if things really changed, debugging won't
296 1.1 christos quite work.
297 1.1 christos
298 1.1 christos One could expect more the condition
299 1.1 christos ((l_addr & align) == 0 && ((l_dynaddr - dynaddr) & align) == 0)
300 1.1 christos but the one below is relaxed for PPC. The PPC kernel supports
301 1.1 christos either 4k or 64k page sizes. To be prepared for 64k pages,
302 1.1 christos PPC ELF files are built using an alignment requirement of 64k.
303 1.1 christos However, when running on a kernel supporting 4k pages, the memory
304 1.1 christos mapping of the library may not actually happen on a 64k boundary!
305 1.1 christos
306 1.1 christos (In the usual case where (l_addr & align) == 0, this check is
307 1.1 christos equivalent to the possibly expected check above.)
308 1.1 christos
309 1.1 christos Even on PPC it must be zero-aligned at least for MINPAGESIZE. */
310 1.1 christos
311 1.1 christos l_addr = l_dynaddr - dynaddr;
312 1.1 christos
313 1.1 christos if ((l_addr & (minpagesize - 1)) == 0
314 1.1 christos && (l_addr & align) == ((l_dynaddr - dynaddr) & align))
315 1.1 christos {
316 1.1 christos if (info_verbose)
317 1.1.1.8 christos gdb_printf (_("Using PIC (Position Independent Code) "
318 1.1.1.8 christos "prelink displacement %s for \"%s\".\n"),
319 1.1.1.9 christos paddress (current_inferior ()->arch (), l_addr),
320 1.1.1.9 christos so.so_name.c_str ());
321 1.1 christos }
322 1.1 christos else
323 1.1 christos {
324 1.1 christos /* There is no way to verify the library file matches. prelink
325 1.1 christos can during prelinking of an unprelinked file (or unprelinking
326 1.1 christos of a prelinked file) shift the DYNAMIC segment by arbitrary
327 1.1 christos offset without any page size alignment. There is no way to
328 1.1 christos find out the ELF header and/or Program Headers for a limited
329 1.1 christos verification if it they match. One could do a verification
330 1.1 christos of the DYNAMIC segment. Still the found address is the best
331 1.1 christos one GDB could find. */
332 1.1 christos
333 1.1 christos warning (_(".dynamic section for \"%s\" "
334 1.1 christos "is not at the expected address "
335 1.1.1.9 christos "(wrong library or version mismatch?)"),
336 1.1.1.9 christos so.so_name.c_str ());
337 1.1 christos }
338 1.1 christos }
339 1.1 christos
340 1.1 christos set_addr:
341 1.1.1.6 christos li->l_addr = l_addr;
342 1.1.1.6 christos li->l_addr_p = 1;
343 1.1 christos }
344 1.1 christos
345 1.1.1.6 christos return li->l_addr;
346 1.1 christos }
347 1.1 christos
348 1.1.1.9 christos struct svr4_so
349 1.1.1.9 christos {
350 1.1.1.9 christos svr4_so (const char *name, lm_info_svr4_up lm_info)
351 1.1.1.9 christos : name (name), lm_info (std::move (lm_info))
352 1.1.1.9 christos {}
353 1.1.1.9 christos
354 1.1.1.9 christos std::string name;
355 1.1.1.9 christos lm_info_svr4_up lm_info;
356 1.1.1.9 christos };
357 1.1.1.9 christos
358 1.1 christos /* Per pspace SVR4 specific data. */
359 1.1 christos
360 1.1 christos struct svr4_info
361 1.1 christos {
362 1.1.1.8 christos /* Base of dynamic linker structures in default namespace. */
363 1.1.1.7 christos CORE_ADDR debug_base = 0;
364 1.1 christos
365 1.1 christos /* Validity flag for debug_loader_offset. */
366 1.1.1.7 christos int debug_loader_offset_p = 0;
367 1.1 christos
368 1.1 christos /* Load address for the dynamic linker, inferred. */
369 1.1.1.7 christos CORE_ADDR debug_loader_offset = 0;
370 1.1 christos
371 1.1 christos /* Name of the dynamic linker, valid if debug_loader_offset_p. */
372 1.1.1.7 christos char *debug_loader_name = nullptr;
373 1.1 christos
374 1.1.1.8 christos /* Load map address for the main executable in default namespace. */
375 1.1.1.7 christos CORE_ADDR main_lm_addr = 0;
376 1.1 christos
377 1.1.1.7 christos CORE_ADDR interp_text_sect_low = 0;
378 1.1.1.7 christos CORE_ADDR interp_text_sect_high = 0;
379 1.1.1.7 christos CORE_ADDR interp_plt_sect_low = 0;
380 1.1.1.7 christos CORE_ADDR interp_plt_sect_high = 0;
381 1.1 christos
382 1.1.1.8 christos /* True if the list of objects was last obtained from the target
383 1.1 christos via qXfer:libraries-svr4:read. */
384 1.1.1.8 christos bool using_xfer = false;
385 1.1 christos
386 1.1 christos /* Table of struct probe_and_action instances, used by the
387 1.1 christos probes-based interface to map breakpoint addresses to probes
388 1.1 christos and their associated actions. Lookup is performed using
389 1.1.1.6 christos probe_and_action->prob->address. */
390 1.1.1.7 christos htab_up probes_table;
391 1.1 christos
392 1.1.1.8 christos /* List of objects loaded into the inferior per namespace, used by the
393 1.1.1.8 christos probes-based interface.
394 1.1.1.8 christos
395 1.1.1.8 christos The namespace is represented by the address of its corresponding
396 1.1.1.9 christos r_debug[_ext] object. We get the namespace id as argument to the
397 1.1.1.8 christos 'reloc_complete' probe but we don't get it when scanning the load map
398 1.1.1.8 christos on attach.
399 1.1.1.8 christos
400 1.1.1.8 christos The r_debug[_ext] objects may move when ld.so itself moves. In that
401 1.1.1.8 christos case, we expect also the global _r_debug to move so we can detect
402 1.1.1.8 christos this and reload everything. The r_debug[_ext] objects are not
403 1.1.1.8 christos expected to move individually.
404 1.1.1.8 christos
405 1.1.1.8 christos The special entry zero is reserved for a linear list to support
406 1.1.1.8 christos gdbstubs that do not support namespaces. */
407 1.1.1.9 christos std::map<CORE_ADDR, std::vector<svr4_so>> solib_lists;
408 1.1 christos };
409 1.1 christos
410 1.1 christos /* Per-program-space data key. */
411 1.1.1.8 christos static const registry<program_space>::key<svr4_info> solib_svr4_pspace_data;
412 1.1.1.8 christos
413 1.1.1.8 christos /* Return whether DEBUG_BASE is the default namespace of INFO. */
414 1.1.1.8 christos
415 1.1.1.8 christos static bool
416 1.1.1.8 christos svr4_is_default_namespace (const svr4_info *info, CORE_ADDR debug_base)
417 1.1.1.8 christos {
418 1.1.1.8 christos return (debug_base == info->debug_base);
419 1.1.1.8 christos }
420 1.1 christos
421 1.1 christos /* Free the probes table. */
422 1.1 christos
423 1.1 christos static void
424 1.1 christos free_probes_table (struct svr4_info *info)
425 1.1 christos {
426 1.1.1.7 christos info->probes_table.reset (nullptr);
427 1.1 christos }
428 1.1 christos
429 1.1.1.7 christos /* Get the svr4 data for program space PSPACE. If none is found yet, add it now.
430 1.1.1.7 christos This function always returns a valid object. */
431 1.1 christos
432 1.1 christos static struct svr4_info *
433 1.1.1.7 christos get_svr4_info (program_space *pspace)
434 1.1 christos {
435 1.1.1.7 christos struct svr4_info *info = solib_svr4_pspace_data.get (pspace);
436 1.1 christos
437 1.1.1.7 christos if (info == NULL)
438 1.1.1.7 christos info = solib_svr4_pspace_data.emplace (pspace);
439 1.1 christos
440 1.1 christos return info;
441 1.1 christos }
442 1.1 christos
443 1.1 christos /* Local function prototypes */
444 1.1 christos
445 1.1 christos static int match_main (const char *);
446 1.1 christos
447 1.1 christos /* Read program header TYPE from inferior memory. The header is found
448 1.1.1.6 christos by scanning the OS auxiliary vector.
449 1.1 christos
450 1.1 christos If TYPE == -1, return the program headers instead of the contents of
451 1.1 christos one program header.
452 1.1 christos
453 1.1.1.6 christos Return vector of bytes holding the program header contents, or an empty
454 1.1.1.6 christos optional on failure. If successful and P_ARCH_SIZE is non-NULL, the target
455 1.1.1.6 christos architecture size (32-bit or 64-bit) is returned to *P_ARCH_SIZE. Likewise,
456 1.1.1.6 christos the base address of the section is returned in *BASE_ADDR. */
457 1.1.1.6 christos
458 1.1.1.9 christos static std::optional<gdb::byte_vector>
459 1.1.1.6 christos read_program_header (int type, int *p_arch_size, CORE_ADDR *base_addr)
460 1.1 christos {
461 1.1.1.9 christos bfd_endian byte_order = gdbarch_byte_order (current_inferior ()->arch ());
462 1.1 christos CORE_ADDR at_phdr, at_phent, at_phnum, pt_phdr = 0;
463 1.1 christos int arch_size, sect_size;
464 1.1 christos CORE_ADDR sect_addr;
465 1.1 christos int pt_phdr_p = 0;
466 1.1 christos
467 1.1 christos /* Get required auxv elements from target. */
468 1.1.1.8 christos if (target_auxv_search (AT_PHDR, &at_phdr) <= 0)
469 1.1.1.6 christos return {};
470 1.1.1.8 christos if (target_auxv_search (AT_PHENT, &at_phent) <= 0)
471 1.1.1.6 christos return {};
472 1.1.1.8 christos if (target_auxv_search (AT_PHNUM, &at_phnum) <= 0)
473 1.1.1.6 christos return {};
474 1.1 christos if (!at_phdr || !at_phnum)
475 1.1.1.6 christos return {};
476 1.1 christos
477 1.1 christos /* Determine ELF architecture type. */
478 1.1 christos if (at_phent == sizeof (Elf32_External_Phdr))
479 1.1 christos arch_size = 32;
480 1.1 christos else if (at_phent == sizeof (Elf64_External_Phdr))
481 1.1 christos arch_size = 64;
482 1.1 christos else
483 1.1.1.6 christos return {};
484 1.1 christos
485 1.1 christos /* Find the requested segment. */
486 1.1 christos if (type == -1)
487 1.1 christos {
488 1.1 christos sect_addr = at_phdr;
489 1.1 christos sect_size = at_phent * at_phnum;
490 1.1 christos }
491 1.1 christos else if (arch_size == 32)
492 1.1 christos {
493 1.1 christos Elf32_External_Phdr phdr;
494 1.1 christos int i;
495 1.1 christos
496 1.1 christos /* Search for requested PHDR. */
497 1.1 christos for (i = 0; i < at_phnum; i++)
498 1.1 christos {
499 1.1 christos int p_type;
500 1.1 christos
501 1.1 christos if (target_read_memory (at_phdr + i * sizeof (phdr),
502 1.1 christos (gdb_byte *)&phdr, sizeof (phdr)))
503 1.1.1.6 christos return {};
504 1.1 christos
505 1.1 christos p_type = extract_unsigned_integer ((gdb_byte *) phdr.p_type,
506 1.1 christos 4, byte_order);
507 1.1 christos
508 1.1 christos if (p_type == PT_PHDR)
509 1.1 christos {
510 1.1 christos pt_phdr_p = 1;
511 1.1 christos pt_phdr = extract_unsigned_integer ((gdb_byte *) phdr.p_vaddr,
512 1.1 christos 4, byte_order);
513 1.1 christos }
514 1.1 christos
515 1.1 christos if (p_type == type)
516 1.1 christos break;
517 1.1 christos }
518 1.1 christos
519 1.1 christos if (i == at_phnum)
520 1.1.1.6 christos return {};
521 1.1 christos
522 1.1 christos /* Retrieve address and size. */
523 1.1 christos sect_addr = extract_unsigned_integer ((gdb_byte *)phdr.p_vaddr,
524 1.1 christos 4, byte_order);
525 1.1 christos sect_size = extract_unsigned_integer ((gdb_byte *)phdr.p_memsz,
526 1.1 christos 4, byte_order);
527 1.1 christos }
528 1.1 christos else
529 1.1 christos {
530 1.1 christos Elf64_External_Phdr phdr;
531 1.1 christos int i;
532 1.1 christos
533 1.1 christos /* Search for requested PHDR. */
534 1.1 christos for (i = 0; i < at_phnum; i++)
535 1.1 christos {
536 1.1 christos int p_type;
537 1.1 christos
538 1.1 christos if (target_read_memory (at_phdr + i * sizeof (phdr),
539 1.1 christos (gdb_byte *)&phdr, sizeof (phdr)))
540 1.1.1.6 christos return {};
541 1.1 christos
542 1.1 christos p_type = extract_unsigned_integer ((gdb_byte *) phdr.p_type,
543 1.1 christos 4, byte_order);
544 1.1 christos
545 1.1 christos if (p_type == PT_PHDR)
546 1.1 christos {
547 1.1 christos pt_phdr_p = 1;
548 1.1 christos pt_phdr = extract_unsigned_integer ((gdb_byte *) phdr.p_vaddr,
549 1.1 christos 8, byte_order);
550 1.1 christos }
551 1.1 christos
552 1.1 christos if (p_type == type)
553 1.1 christos break;
554 1.1 christos }
555 1.1 christos
556 1.1 christos if (i == at_phnum)
557 1.1.1.6 christos return {};
558 1.1 christos
559 1.1 christos /* Retrieve address and size. */
560 1.1 christos sect_addr = extract_unsigned_integer ((gdb_byte *)phdr.p_vaddr,
561 1.1 christos 8, byte_order);
562 1.1 christos sect_size = extract_unsigned_integer ((gdb_byte *)phdr.p_memsz,
563 1.1 christos 8, byte_order);
564 1.1 christos }
565 1.1 christos
566 1.1 christos /* PT_PHDR is optional, but we really need it
567 1.1 christos for PIE to make this work in general. */
568 1.1 christos
569 1.1 christos if (pt_phdr_p)
570 1.1 christos {
571 1.1 christos /* at_phdr is real address in memory. pt_phdr is what pheader says it is.
572 1.1 christos Relocation offset is the difference between the two. */
573 1.1 christos sect_addr = sect_addr + (at_phdr - pt_phdr);
574 1.1 christos }
575 1.1 christos
576 1.1 christos /* Read in requested program header. */
577 1.1.1.6 christos gdb::byte_vector buf (sect_size);
578 1.1.1.6 christos if (target_read_memory (sect_addr, buf.data (), sect_size))
579 1.1.1.6 christos return {};
580 1.1 christos
581 1.1.1.7 christos #if defined(__NetBSD__) && defined(__m68k__)
582 1.1.1.7 christos /*
583 1.1.1.7 christos * XXX PR toolchain/56268
584 1.1.1.7 christos *
585 1.1.1.7 christos * For NetBSD/m68k, program header is erroneously readable from core dump,
586 1.1.1.7 christos * although a page containing it is missing. This spoils relocation for
587 1.1.1.7 christos * the main executable, and debugging with core dumps becomes impossible,
588 1.1.1.7 christos * as described in toolchain/56268.
589 1.1.1.7 christos *
590 1.1.1.7 christos * In order to avoid this failure, we carry out consistency check for
591 1.1.1.7 christos * program header; for NetBSD, 1st entry of program header refers program
592 1.1.1.7 christos * header itself. If this is not the case, we should be reading random
593 1.1.1.7 christos * garbage from core dump.
594 1.1.1.7 christos */
595 1.1.1.7 christos if (type == -1 && arch_size == 32)
596 1.1.1.7 christos {
597 1.1.1.7 christos Elf32_External_Phdr phdr;
598 1.1.1.7 christos int p_type, p_filesz, p_memsz;
599 1.1.1.7 christos
600 1.1.1.7 christos if (target_read_memory (at_phdr, (gdb_byte *)&phdr, sizeof (phdr)))
601 1.1.1.7 christos return {};
602 1.1.1.7 christos
603 1.1.1.7 christos p_type = extract_unsigned_integer ((gdb_byte *) phdr.p_type, 4,
604 1.1.1.7 christos byte_order);
605 1.1.1.7 christos p_filesz = extract_unsigned_integer ((gdb_byte *)phdr.p_filesz, 4,
606 1.1.1.7 christos byte_order);
607 1.1.1.7 christos p_memsz = extract_unsigned_integer ((gdb_byte *)phdr.p_memsz, 4,
608 1.1.1.7 christos byte_order);
609 1.1.1.7 christos
610 1.1.1.7 christos if (p_type != PT_PHDR || p_filesz != sect_size || p_memsz != sect_size)
611 1.1.1.7 christos return {};
612 1.1.1.7 christos }
613 1.1.1.7 christos #endif
614 1.1.1.7 christos
615 1.1 christos if (p_arch_size)
616 1.1 christos *p_arch_size = arch_size;
617 1.1.1.4 christos if (base_addr)
618 1.1.1.4 christos *base_addr = sect_addr;
619 1.1 christos
620 1.1 christos return buf;
621 1.1 christos }
622 1.1 christos
623 1.1 christos
624 1.1 christos /* Return program interpreter string. */
625 1.1.1.9 christos static std::optional<gdb::byte_vector>
626 1.1 christos find_program_interpreter (void)
627 1.1 christos {
628 1.1.1.8 christos /* If we have a current exec_bfd, use its section table. */
629 1.1.1.8 christos if (current_program_space->exec_bfd ()
630 1.1.1.8 christos && (bfd_get_flavour (current_program_space->exec_bfd ())
631 1.1.1.8 christos == bfd_target_elf_flavour))
632 1.1 christos {
633 1.1 christos struct bfd_section *interp_sect;
634 1.1 christos
635 1.1.1.8 christos interp_sect = bfd_get_section_by_name (current_program_space->exec_bfd (),
636 1.1.1.8 christos ".interp");
637 1.1 christos if (interp_sect != NULL)
638 1.1 christos {
639 1.1.1.7 christos int sect_size = bfd_section_size (interp_sect);
640 1.1 christos
641 1.1.1.6 christos gdb::byte_vector buf (sect_size);
642 1.1.1.8 christos bool res
643 1.1.1.8 christos = bfd_get_section_contents (current_program_space->exec_bfd (),
644 1.1.1.8 christos interp_sect, buf.data (), 0, sect_size);
645 1.1.1.8 christos if (res)
646 1.1.1.8 christos return buf;
647 1.1 christos }
648 1.1 christos }
649 1.1 christos
650 1.1.1.6 christos /* If we didn't find it, use the target auxiliary vector. */
651 1.1.1.6 christos return read_program_header (PT_INTERP, NULL, NULL);
652 1.1 christos }
653 1.1 christos
654 1.1 christos
655 1.1.1.2 christos /* Scan for DESIRED_DYNTAG in .dynamic section of the target's main executable,
656 1.1.1.10 christos found by consulting the OS auxiliary vector. If DESIRED_DYNTAG is found, 1
657 1.1.1.2 christos is returned and the corresponding PTR is set. */
658 1.1 christos
659 1.1 christos static int
660 1.1.1.4 christos scan_dyntag_auxv (const int desired_dyntag, CORE_ADDR *ptr,
661 1.1.1.4 christos CORE_ADDR *ptr_addr)
662 1.1 christos {
663 1.1.1.9 christos bfd_endian byte_order = gdbarch_byte_order (current_inferior ()->arch ());
664 1.1.1.6 christos int arch_size, step;
665 1.1.1.2 christos long current_dyntag;
666 1.1 christos CORE_ADDR dyn_ptr;
667 1.1.1.4 christos CORE_ADDR base_addr;
668 1.1 christos
669 1.1 christos /* Read in .dynamic section. */
670 1.1.1.9 christos std::optional<gdb::byte_vector> ph_data
671 1.1.1.6 christos = read_program_header (PT_DYNAMIC, &arch_size, &base_addr);
672 1.1.1.6 christos if (!ph_data)
673 1.1 christos return 0;
674 1.1 christos
675 1.1 christos /* Iterate over BUF and scan for DYNTAG. If found, set PTR and return. */
676 1.1 christos step = (arch_size == 32) ? sizeof (Elf32_External_Dyn)
677 1.1 christos : sizeof (Elf64_External_Dyn);
678 1.1.1.6 christos for (gdb_byte *buf = ph_data->data (), *bufend = buf + ph_data->size ();
679 1.1.1.6 christos buf < bufend; buf += step)
680 1.1 christos {
681 1.1 christos if (arch_size == 32)
682 1.1 christos {
683 1.1 christos Elf32_External_Dyn *dynp = (Elf32_External_Dyn *) buf;
684 1.1 christos
685 1.1.1.2 christos current_dyntag = extract_unsigned_integer ((gdb_byte *) dynp->d_tag,
686 1.1 christos 4, byte_order);
687 1.1 christos dyn_ptr = extract_unsigned_integer ((gdb_byte *) dynp->d_un.d_ptr,
688 1.1 christos 4, byte_order);
689 1.1 christos }
690 1.1 christos else
691 1.1 christos {
692 1.1 christos Elf64_External_Dyn *dynp = (Elf64_External_Dyn *) buf;
693 1.1 christos
694 1.1.1.2 christos current_dyntag = extract_unsigned_integer ((gdb_byte *) dynp->d_tag,
695 1.1 christos 8, byte_order);
696 1.1 christos dyn_ptr = extract_unsigned_integer ((gdb_byte *) dynp->d_un.d_ptr,
697 1.1 christos 8, byte_order);
698 1.1 christos }
699 1.1.1.2 christos if (current_dyntag == DT_NULL)
700 1.1 christos break;
701 1.1 christos
702 1.1.1.2 christos if (current_dyntag == desired_dyntag)
703 1.1 christos {
704 1.1 christos if (ptr)
705 1.1 christos *ptr = dyn_ptr;
706 1.1 christos
707 1.1.1.4 christos if (ptr_addr)
708 1.1.1.6 christos *ptr_addr = base_addr + buf - ph_data->data ();
709 1.1.1.4 christos
710 1.1 christos return 1;
711 1.1 christos }
712 1.1 christos }
713 1.1 christos
714 1.1 christos return 0;
715 1.1 christos }
716 1.1 christos
717 1.1 christos /* Locate the base address of dynamic linker structs for SVR4 elf
718 1.1 christos targets.
719 1.1 christos
720 1.1 christos For SVR4 elf targets the address of the dynamic linker's runtime
721 1.1 christos structure is contained within the dynamic info section in the
722 1.1 christos executable file. The dynamic section is also mapped into the
723 1.1 christos inferior address space. Because the runtime loader fills in the
724 1.1 christos real address before starting the inferior, we have to read in the
725 1.1 christos dynamic info section from the inferior address space.
726 1.1 christos If there are any errors while trying to find the address, we
727 1.1 christos silently return 0, otherwise the found address is returned. */
728 1.1 christos
729 1.1 christos static CORE_ADDR
730 1.1 christos elf_locate_base (void)
731 1.1 christos {
732 1.1.1.4 christos CORE_ADDR dyn_ptr, dyn_ptr_addr;
733 1.1 christos
734 1.1.1.8 christos if (!svr4_have_link_map_offsets ())
735 1.1.1.8 christos return 0;
736 1.1.1.8 christos
737 1.1 christos /* Look for DT_MIPS_RLD_MAP first. MIPS executables use this
738 1.1 christos instead of DT_DEBUG, although they sometimes contain an unused
739 1.1 christos DT_DEBUG. */
740 1.1.1.8 christos if (gdb_bfd_scan_elf_dyntag (DT_MIPS_RLD_MAP,
741 1.1.1.8 christos current_program_space->exec_bfd (),
742 1.1.1.8 christos &dyn_ptr, NULL)
743 1.1.1.4 christos || scan_dyntag_auxv (DT_MIPS_RLD_MAP, &dyn_ptr, NULL))
744 1.1 christos {
745 1.1.1.9 christos type *ptr_type
746 1.1.1.9 christos = builtin_type (current_inferior ()->arch ())->builtin_data_ptr;
747 1.1 christos gdb_byte *pbuf;
748 1.1.1.8 christos int pbuf_size = ptr_type->length ();
749 1.1 christos
750 1.1.1.4 christos pbuf = (gdb_byte *) alloca (pbuf_size);
751 1.1 christos /* DT_MIPS_RLD_MAP contains a pointer to the address
752 1.1 christos of the dynamic link structure. */
753 1.1 christos if (target_read_memory (dyn_ptr, pbuf, pbuf_size))
754 1.1 christos return 0;
755 1.1 christos return extract_typed_address (pbuf, ptr_type);
756 1.1 christos }
757 1.1 christos
758 1.1.1.4 christos /* Then check DT_MIPS_RLD_MAP_REL. MIPS executables now use this form
759 1.1.1.4 christos because of needing to support PIE. DT_MIPS_RLD_MAP will also exist
760 1.1.1.4 christos in non-PIE. */
761 1.1.1.8 christos if (gdb_bfd_scan_elf_dyntag (DT_MIPS_RLD_MAP_REL,
762 1.1.1.8 christos current_program_space->exec_bfd (),
763 1.1.1.8 christos &dyn_ptr, &dyn_ptr_addr)
764 1.1.1.4 christos || scan_dyntag_auxv (DT_MIPS_RLD_MAP_REL, &dyn_ptr, &dyn_ptr_addr))
765 1.1.1.4 christos {
766 1.1.1.9 christos type *ptr_type
767 1.1.1.9 christos = builtin_type (current_inferior ()->arch ())->builtin_data_ptr;
768 1.1.1.4 christos gdb_byte *pbuf;
769 1.1.1.8 christos int pbuf_size = ptr_type->length ();
770 1.1.1.4 christos
771 1.1.1.4 christos pbuf = (gdb_byte *) alloca (pbuf_size);
772 1.1.1.4 christos /* DT_MIPS_RLD_MAP_REL contains an offset from the address of the
773 1.1.1.4 christos DT slot to the address of the dynamic link structure. */
774 1.1.1.4 christos if (target_read_memory (dyn_ptr + dyn_ptr_addr, pbuf, pbuf_size))
775 1.1.1.4 christos return 0;
776 1.1.1.4 christos return extract_typed_address (pbuf, ptr_type);
777 1.1.1.4 christos }
778 1.1.1.4 christos
779 1.1 christos /* Find DT_DEBUG. */
780 1.1.1.8 christos if (gdb_bfd_scan_elf_dyntag (DT_DEBUG, current_program_space->exec_bfd (),
781 1.1.1.8 christos &dyn_ptr, NULL)
782 1.1.1.4 christos || scan_dyntag_auxv (DT_DEBUG, &dyn_ptr, NULL))
783 1.1 christos return dyn_ptr;
784 1.1 christos
785 1.1 christos /* This may be a static executable. Look for the symbol
786 1.1 christos conventionally named _r_debug, as a last resort. */
787 1.1.1.10 christos bound_minimal_symbol msymbol
788 1.1.1.10 christos = lookup_minimal_symbol (current_program_space, "_r_debug",
789 1.1.1.10 christos current_program_space->symfile_object_file);
790 1.1.1.2 christos if (msymbol.minsym != NULL)
791 1.1.1.8 christos return msymbol.value_address ();
792 1.1 christos
793 1.1 christos /* DT_DEBUG entry not found. */
794 1.1 christos return 0;
795 1.1 christos }
796 1.1 christos
797 1.1 christos /* Find the first element in the inferior's dynamic link map, and
798 1.1 christos return its address in the inferior. Return zero if the address
799 1.1 christos could not be determined.
800 1.1 christos
801 1.1 christos FIXME: Perhaps we should validate the info somehow, perhaps by
802 1.1 christos checking r_version for a known version number, or r_state for
803 1.1 christos RT_CONSISTENT. */
804 1.1 christos
805 1.1 christos static CORE_ADDR
806 1.1.1.8 christos solib_svr4_r_map (CORE_ADDR debug_base)
807 1.1 christos {
808 1.1 christos struct link_map_offsets *lmo = svr4_fetch_link_map_offsets ();
809 1.1.1.9 christos type *ptr_type
810 1.1.1.9 christos = builtin_type (current_inferior ()->arch ())->builtin_data_ptr;
811 1.1 christos CORE_ADDR addr = 0;
812 1.1 christos
813 1.1.1.7 christos try
814 1.1 christos {
815 1.1.1.8 christos addr = read_memory_typed_address (debug_base + lmo->r_map_offset,
816 1.1.1.8 christos ptr_type);
817 1.1 christos }
818 1.1.1.7 christos catch (const gdb_exception_error &ex)
819 1.1.1.3 christos {
820 1.1.1.3 christos exception_print (gdb_stderr, ex);
821 1.1.1.3 christos }
822 1.1.1.3 christos
823 1.1 christos return addr;
824 1.1 christos }
825 1.1 christos
826 1.1 christos /* Find r_brk from the inferior's debug base. */
827 1.1 christos
828 1.1 christos static CORE_ADDR
829 1.1 christos solib_svr4_r_brk (struct svr4_info *info)
830 1.1 christos {
831 1.1 christos struct link_map_offsets *lmo = svr4_fetch_link_map_offsets ();
832 1.1.1.9 christos type *ptr_type
833 1.1.1.9 christos = builtin_type (current_inferior ()->arch ())->builtin_data_ptr;
834 1.1 christos
835 1.1 christos return read_memory_typed_address (info->debug_base + lmo->r_brk_offset,
836 1.1 christos ptr_type);
837 1.1 christos }
838 1.1 christos
839 1.1 christos /* Find the link map for the dynamic linker (if it is not in the
840 1.1 christos normal list of loaded shared objects). */
841 1.1 christos
842 1.1 christos static CORE_ADDR
843 1.1 christos solib_svr4_r_ldsomap (struct svr4_info *info)
844 1.1 christos {
845 1.1 christos struct link_map_offsets *lmo = svr4_fetch_link_map_offsets ();
846 1.1.1.9 christos type *ptr_type
847 1.1.1.9 christos = builtin_type (current_inferior ()->arch ())->builtin_data_ptr;
848 1.1.1.7 christos enum bfd_endian byte_order = type_byte_order (ptr_type);
849 1.1.1.3 christos ULONGEST version = 0;
850 1.1.1.3 christos
851 1.1.1.7 christos try
852 1.1.1.3 christos {
853 1.1.1.3 christos /* Check version, and return zero if `struct r_debug' doesn't have
854 1.1.1.3 christos the r_ldsomap member. */
855 1.1.1.3 christos version
856 1.1.1.3 christos = read_memory_unsigned_integer (info->debug_base + lmo->r_version_offset,
857 1.1.1.3 christos lmo->r_version_size, byte_order);
858 1.1.1.3 christos }
859 1.1.1.7 christos catch (const gdb_exception_error &ex)
860 1.1.1.3 christos {
861 1.1.1.3 christos exception_print (gdb_stderr, ex);
862 1.1.1.3 christos }
863 1.1 christos
864 1.1 christos if (version < 2 || lmo->r_ldsomap_offset == -1)
865 1.1 christos return 0;
866 1.1 christos
867 1.1 christos return read_memory_typed_address (info->debug_base + lmo->r_ldsomap_offset,
868 1.1 christos ptr_type);
869 1.1 christos }
870 1.1 christos
871 1.1.1.8 christos /* Find the next namespace from the r_next field. */
872 1.1.1.8 christos
873 1.1.1.8 christos static CORE_ADDR
874 1.1.1.8 christos solib_svr4_r_next (CORE_ADDR debug_base)
875 1.1.1.8 christos {
876 1.1.1.8 christos link_map_offsets *lmo = svr4_fetch_link_map_offsets ();
877 1.1.1.9 christos type *ptr_type
878 1.1.1.9 christos = builtin_type (current_inferior ()->arch ())->builtin_data_ptr;
879 1.1.1.8 christos bfd_endian byte_order = type_byte_order (ptr_type);
880 1.1.1.8 christos ULONGEST version = 0;
881 1.1.1.8 christos
882 1.1.1.8 christos try
883 1.1.1.8 christos {
884 1.1.1.8 christos version
885 1.1.1.8 christos = read_memory_unsigned_integer (debug_base + lmo->r_version_offset,
886 1.1.1.8 christos lmo->r_version_size, byte_order);
887 1.1.1.8 christos }
888 1.1.1.8 christos catch (const gdb_exception_error &ex)
889 1.1.1.8 christos {
890 1.1.1.8 christos exception_print (gdb_stderr, ex);
891 1.1.1.8 christos }
892 1.1.1.8 christos
893 1.1.1.8 christos /* The r_next field is added with r_version == 2. */
894 1.1.1.8 christos if (version < 2 || lmo->r_next_offset == -1)
895 1.1.1.8 christos return 0;
896 1.1.1.8 christos
897 1.1.1.8 christos return read_memory_typed_address (debug_base + lmo->r_next_offset,
898 1.1.1.8 christos ptr_type);
899 1.1.1.8 christos }
900 1.1.1.8 christos
901 1.1 christos /* On Solaris systems with some versions of the dynamic linker,
902 1.1 christos ld.so's l_name pointer points to the SONAME in the string table
903 1.1 christos rather than into writable memory. So that GDB can find shared
904 1.1 christos libraries when loading a core file generated by gcore, ensure that
905 1.1 christos memory areas containing the l_name string are saved in the core
906 1.1 christos file. */
907 1.1 christos
908 1.1 christos static int
909 1.1 christos svr4_keep_data_in_core (CORE_ADDR vaddr, unsigned long size)
910 1.1 christos {
911 1.1 christos struct svr4_info *info;
912 1.1 christos CORE_ADDR ldsomap;
913 1.1 christos CORE_ADDR name_lm;
914 1.1 christos
915 1.1.1.7 christos info = get_svr4_info (current_program_space);
916 1.1 christos
917 1.1.1.8 christos info->debug_base = elf_locate_base ();
918 1.1.1.8 christos if (info->debug_base == 0)
919 1.1 christos return 0;
920 1.1 christos
921 1.1 christos ldsomap = solib_svr4_r_ldsomap (info);
922 1.1 christos if (!ldsomap)
923 1.1 christos return 0;
924 1.1 christos
925 1.1.1.6 christos std::unique_ptr<lm_info_svr4> li = lm_info_read (ldsomap);
926 1.1.1.6 christos name_lm = li != NULL ? li->l_name : 0;
927 1.1 christos
928 1.1 christos return (name_lm >= vaddr && name_lm < vaddr + size);
929 1.1 christos }
930 1.1 christos
931 1.1.1.6 christos /* See solist.h. */
932 1.1 christos
933 1.1 christos static int
934 1.1.1.6 christos open_symbol_file_object (int from_tty)
935 1.1 christos {
936 1.1 christos CORE_ADDR lm, l_name;
937 1.1 christos struct link_map_offsets *lmo = svr4_fetch_link_map_offsets ();
938 1.1.1.9 christos type *ptr_type
939 1.1.1.9 christos = builtin_type (current_inferior ()->arch ())->builtin_data_ptr;
940 1.1.1.8 christos int l_name_size = ptr_type->length ();
941 1.1.1.6 christos gdb::byte_vector l_name_buf (l_name_size);
942 1.1.1.7 christos struct svr4_info *info = get_svr4_info (current_program_space);
943 1.1.1.5 christos symfile_add_flags add_flags = 0;
944 1.1.1.5 christos
945 1.1.1.5 christos if (from_tty)
946 1.1.1.5 christos add_flags |= SYMFILE_VERBOSE;
947 1.1 christos
948 1.1.1.8 christos if (current_program_space->symfile_object_file)
949 1.1 christos if (!query (_("Attempt to reload symbols from process? ")))
950 1.1.1.6 christos return 0;
951 1.1 christos
952 1.1 christos /* Always locate the debug struct, in case it has moved. */
953 1.1.1.8 christos info->debug_base = elf_locate_base ();
954 1.1.1.8 christos if (info->debug_base == 0)
955 1.1.1.6 christos return 0; /* failed somehow... */
956 1.1 christos
957 1.1 christos /* First link map member should be the executable. */
958 1.1.1.8 christos lm = solib_svr4_r_map (info->debug_base);
959 1.1 christos if (lm == 0)
960 1.1.1.6 christos return 0; /* failed somehow... */
961 1.1 christos
962 1.1 christos /* Read address of name from target memory to GDB. */
963 1.1.1.6 christos read_memory (lm + lmo->l_name_offset, l_name_buf.data (), l_name_size);
964 1.1 christos
965 1.1 christos /* Convert the address to host format. */
966 1.1.1.6 christos l_name = extract_typed_address (l_name_buf.data (), ptr_type);
967 1.1 christos
968 1.1 christos if (l_name == 0)
969 1.1.1.6 christos return 0; /* No filename. */
970 1.1 christos
971 1.1 christos /* Now fetch the filename from target memory. */
972 1.1.1.7 christos gdb::unique_xmalloc_ptr<char> filename
973 1.1.1.7 christos = target_read_string (l_name, SO_NAME_MAX_PATH_SIZE - 1);
974 1.1 christos
975 1.1.1.7 christos if (filename == nullptr)
976 1.1 christos {
977 1.1.1.7 christos warning (_("failed to read exec filename from attached file"));
978 1.1 christos return 0;
979 1.1 christos }
980 1.1 christos
981 1.1 christos /* Have a pathname: read the symbol file. */
982 1.1.1.6 christos symbol_file_add_main (filename.get (), add_flags);
983 1.1 christos
984 1.1 christos return 1;
985 1.1 christos }
986 1.1 christos
987 1.1 christos /* Data exchange structure for the XML parser as returned by
988 1.1 christos svr4_current_sos_via_xfer_libraries. */
989 1.1 christos
990 1.1 christos struct svr4_library_list
991 1.1 christos {
992 1.1.1.9 christos /* The so list for the current namespace. This is internal to XML
993 1.1.1.8 christos parsing. */
994 1.1.1.9 christos std::vector<svr4_so> *cur_list;
995 1.1 christos
996 1.1 christos /* Inferior address of struct link_map used for the main executable. It is
997 1.1 christos NULL if not known. */
998 1.1 christos CORE_ADDR main_lm;
999 1.1.1.8 christos
1000 1.1.1.8 christos /* List of objects loaded into the inferior per namespace. This does
1001 1.1.1.8 christos not include any default sos.
1002 1.1.1.8 christos
1003 1.1.1.8 christos See comment on struct svr4_info.solib_lists. */
1004 1.1.1.9 christos std::map<CORE_ADDR, std::vector<svr4_so>> solib_lists;
1005 1.1 christos };
1006 1.1 christos
1007 1.1.1.7 christos /* This module's 'free_objfile' observer. */
1008 1.1.1.7 christos
1009 1.1.1.7 christos static void
1010 1.1.1.7 christos svr4_free_objfile_observer (struct objfile *objfile)
1011 1.1.1.7 christos {
1012 1.1.1.7 christos probes_table_remove_objfile_probes (objfile);
1013 1.1.1.7 christos }
1014 1.1.1.7 christos
1015 1.1.1.9 christos /* Implement solib_ops.clear_so. */
1016 1.1 christos
1017 1.1 christos static void
1018 1.1.1.9 christos svr4_clear_so (const solib &so)
1019 1.1 christos {
1020 1.1.1.9 christos auto *li = gdb::checked_static_cast<lm_info_svr4 *> (so.lm_info.get ());
1021 1.1.1.6 christos
1022 1.1.1.6 christos if (li != NULL)
1023 1.1.1.6 christos li->l_addr_p = 0;
1024 1.1 christos }
1025 1.1 christos
1026 1.1.1.9 christos /* Create the so_list objects equivalent to the svr4_sos in SOS. */
1027 1.1 christos
1028 1.1.1.10 christos static owning_intrusive_list<solib>
1029 1.1.1.9 christos so_list_from_svr4_sos (const std::vector<svr4_so> &sos)
1030 1.1 christos {
1031 1.1.1.10 christos owning_intrusive_list<solib> dst;
1032 1.1 christos
1033 1.1.1.9 christos for (const svr4_so &so : sos)
1034 1.1 christos {
1035 1.1.1.10 christos auto &newobj = dst.emplace_back ();
1036 1.1 christos
1037 1.1.1.10 christos newobj.so_name = so.name;
1038 1.1.1.10 christos newobj.so_original_name = so.name;
1039 1.1.1.10 christos newobj.lm_info = std::make_unique<lm_info_svr4> (*so.lm_info);
1040 1.1 christos }
1041 1.1 christos
1042 1.1 christos return dst;
1043 1.1 christos }
1044 1.1 christos
1045 1.1 christos #ifdef HAVE_LIBEXPAT
1046 1.1 christos
1047 1.1 christos #include "xml-support.h"
1048 1.1 christos
1049 1.1 christos /* Handle the start of a <library> element. Note: new elements are added
1050 1.1 christos at the tail of the list, keeping the list in order. */
1051 1.1 christos
1052 1.1 christos static void
1053 1.1 christos library_list_start_library (struct gdb_xml_parser *parser,
1054 1.1 christos const struct gdb_xml_element *element,
1055 1.1.1.6 christos void *user_data,
1056 1.1.1.6 christos std::vector<gdb_xml_value> &attributes)
1057 1.1 christos {
1058 1.1.1.4 christos struct svr4_library_list *list = (struct svr4_library_list *) user_data;
1059 1.1.1.4 christos const char *name
1060 1.1.1.6 christos = (const char *) xml_find_attribute (attributes, "name")->value.get ();
1061 1.1.1.4 christos ULONGEST *lmp
1062 1.1.1.6 christos = (ULONGEST *) xml_find_attribute (attributes, "lm")->value.get ();
1063 1.1.1.4 christos ULONGEST *l_addrp
1064 1.1.1.6 christos = (ULONGEST *) xml_find_attribute (attributes, "l_addr")->value.get ();
1065 1.1.1.4 christos ULONGEST *l_ldp
1066 1.1.1.6 christos = (ULONGEST *) xml_find_attribute (attributes, "l_ld")->value.get ();
1067 1.1 christos
1068 1.1.1.9 christos lm_info_svr4_up li = std::make_unique<lm_info_svr4> ();
1069 1.1.1.6 christos li->lm_addr = *lmp;
1070 1.1.1.6 christos li->l_addr_inferior = *l_addrp;
1071 1.1.1.6 christos li->l_ld = *l_ldp;
1072 1.1 christos
1073 1.1.1.9 christos std::vector<svr4_so> *solist;
1074 1.1 christos
1075 1.1.1.8 christos /* Older versions did not supply lmid. Put the element into the flat
1076 1.1.1.8 christos list of the special namespace zero in that case. */
1077 1.1.1.8 christos gdb_xml_value *at_lmid = xml_find_attribute (attributes, "lmid");
1078 1.1.1.8 christos if (at_lmid == nullptr)
1079 1.1.1.9 christos solist = list->cur_list;
1080 1.1.1.8 christos else
1081 1.1.1.8 christos {
1082 1.1.1.8 christos ULONGEST lmid = *(ULONGEST *) at_lmid->value.get ();
1083 1.1.1.9 christos solist = &list->solib_lists[lmid];
1084 1.1.1.8 christos }
1085 1.1.1.9 christos
1086 1.1.1.9 christos solist->emplace_back (name, std::move (li));
1087 1.1 christos }
1088 1.1 christos
1089 1.1 christos /* Handle the start of a <library-list-svr4> element. */
1090 1.1 christos
1091 1.1 christos static void
1092 1.1 christos svr4_library_list_start_list (struct gdb_xml_parser *parser,
1093 1.1 christos const struct gdb_xml_element *element,
1094 1.1.1.6 christos void *user_data,
1095 1.1.1.6 christos std::vector<gdb_xml_value> &attributes)
1096 1.1 christos {
1097 1.1.1.4 christos struct svr4_library_list *list = (struct svr4_library_list *) user_data;
1098 1.1.1.4 christos const char *version
1099 1.1.1.6 christos = (const char *) xml_find_attribute (attributes, "version")->value.get ();
1100 1.1 christos struct gdb_xml_value *main_lm = xml_find_attribute (attributes, "main-lm");
1101 1.1 christos
1102 1.1 christos if (strcmp (version, "1.0") != 0)
1103 1.1 christos gdb_xml_error (parser,
1104 1.1 christos _("SVR4 Library list has unsupported version \"%s\""),
1105 1.1 christos version);
1106 1.1 christos
1107 1.1 christos if (main_lm)
1108 1.1.1.6 christos list->main_lm = *(ULONGEST *) main_lm->value.get ();
1109 1.1.1.8 christos
1110 1.1.1.8 christos /* Older gdbserver do not support namespaces. We use the special
1111 1.1.1.8 christos namespace zero for a linear list of libraries. */
1112 1.1.1.9 christos list->cur_list = &list->solib_lists[0];
1113 1.1 christos }
1114 1.1 christos
1115 1.1 christos /* The allowed elements and attributes for an XML library list.
1116 1.1 christos The root element is a <library-list>. */
1117 1.1 christos
1118 1.1 christos static const struct gdb_xml_attribute svr4_library_attributes[] =
1119 1.1 christos {
1120 1.1 christos { "name", GDB_XML_AF_NONE, NULL, NULL },
1121 1.1 christos { "lm", GDB_XML_AF_NONE, gdb_xml_parse_attr_ulongest, NULL },
1122 1.1 christos { "l_addr", GDB_XML_AF_NONE, gdb_xml_parse_attr_ulongest, NULL },
1123 1.1 christos { "l_ld", GDB_XML_AF_NONE, gdb_xml_parse_attr_ulongest, NULL },
1124 1.1.1.8 christos { "lmid", GDB_XML_AF_NONE, gdb_xml_parse_attr_ulongest, NULL },
1125 1.1 christos { NULL, GDB_XML_AF_NONE, NULL, NULL }
1126 1.1 christos };
1127 1.1 christos
1128 1.1 christos static const struct gdb_xml_element svr4_library_list_children[] =
1129 1.1 christos {
1130 1.1 christos {
1131 1.1 christos "library", svr4_library_attributes, NULL,
1132 1.1 christos GDB_XML_EF_REPEATABLE | GDB_XML_EF_OPTIONAL,
1133 1.1 christos library_list_start_library, NULL
1134 1.1 christos },
1135 1.1 christos { NULL, NULL, NULL, GDB_XML_EF_NONE, NULL, NULL }
1136 1.1 christos };
1137 1.1 christos
1138 1.1 christos static const struct gdb_xml_attribute svr4_library_list_attributes[] =
1139 1.1 christos {
1140 1.1 christos { "version", GDB_XML_AF_NONE, NULL, NULL },
1141 1.1 christos { "main-lm", GDB_XML_AF_OPTIONAL, gdb_xml_parse_attr_ulongest, NULL },
1142 1.1 christos { NULL, GDB_XML_AF_NONE, NULL, NULL }
1143 1.1 christos };
1144 1.1 christos
1145 1.1 christos static const struct gdb_xml_element svr4_library_list_elements[] =
1146 1.1 christos {
1147 1.1 christos { "library-list-svr4", svr4_library_list_attributes, svr4_library_list_children,
1148 1.1 christos GDB_XML_EF_NONE, svr4_library_list_start_list, NULL },
1149 1.1 christos { NULL, NULL, NULL, GDB_XML_EF_NONE, NULL, NULL }
1150 1.1 christos };
1151 1.1 christos
1152 1.1 christos /* Parse qXfer:libraries:read packet into *SO_LIST_RETURN. Return 1 if
1153 1.1 christos
1154 1.1 christos Return 0 if packet not supported, *SO_LIST_RETURN is not modified in such
1155 1.1 christos case. Return 1 if *SO_LIST_RETURN contains the library list, it may be
1156 1.1 christos empty, caller is responsible for freeing all its entries. */
1157 1.1 christos
1158 1.1 christos static int
1159 1.1 christos svr4_parse_libraries (const char *document, struct svr4_library_list *list)
1160 1.1 christos {
1161 1.1.1.8 christos auto cleanup = make_scope_exit ([list] ()
1162 1.1.1.9 christos { list->solib_lists.clear (); });
1163 1.1 christos
1164 1.1.1.9 christos list->cur_list = nullptr;
1165 1.1.1.8 christos list->main_lm = 0;
1166 1.1.1.8 christos list->solib_lists.clear ();
1167 1.1.1.2 christos if (gdb_xml_parse_quick (_("target library list"), "library-list-svr4.dtd",
1168 1.1 christos svr4_library_list_elements, document, list) == 0)
1169 1.1 christos {
1170 1.1 christos /* Parsed successfully, keep the result. */
1171 1.1.1.7 christos cleanup.release ();
1172 1.1 christos return 1;
1173 1.1 christos }
1174 1.1 christos
1175 1.1 christos return 0;
1176 1.1 christos }
1177 1.1 christos
1178 1.1 christos /* Attempt to get so_list from target via qXfer:libraries-svr4:read packet.
1179 1.1 christos
1180 1.1 christos Return 0 if packet not supported, *SO_LIST_RETURN is not modified in such
1181 1.1 christos case. Return 1 if *SO_LIST_RETURN contains the library list, it may be
1182 1.1 christos empty, caller is responsible for freeing all its entries.
1183 1.1 christos
1184 1.1 christos Note that ANNEX must be NULL if the remote does not explicitly allow
1185 1.1 christos qXfer:libraries-svr4:read packets with non-empty annexes. Support for
1186 1.1 christos this can be checked using target_augmented_libraries_svr4_read (). */
1187 1.1 christos
1188 1.1 christos static int
1189 1.1 christos svr4_current_sos_via_xfer_libraries (struct svr4_library_list *list,
1190 1.1 christos const char *annex)
1191 1.1 christos {
1192 1.1 christos gdb_assert (annex == NULL || target_augmented_libraries_svr4_read ());
1193 1.1 christos
1194 1.1 christos /* Fetch the list of shared libraries. */
1195 1.1.1.9 christos std::optional<gdb::char_vector> svr4_library_document
1196 1.1.1.8 christos = target_read_stralloc (current_inferior ()->top_target (),
1197 1.1.1.8 christos TARGET_OBJECT_LIBRARIES_SVR4,
1198 1.1.1.6 christos annex);
1199 1.1.1.6 christos if (!svr4_library_document)
1200 1.1 christos return 0;
1201 1.1 christos
1202 1.1.1.6 christos return svr4_parse_libraries (svr4_library_document->data (), list);
1203 1.1 christos }
1204 1.1 christos
1205 1.1 christos #else
1206 1.1 christos
1207 1.1 christos static int
1208 1.1 christos svr4_current_sos_via_xfer_libraries (struct svr4_library_list *list,
1209 1.1 christos const char *annex)
1210 1.1 christos {
1211 1.1 christos return 0;
1212 1.1 christos }
1213 1.1 christos
1214 1.1 christos #endif
1215 1.1 christos
1216 1.1 christos /* If no shared library information is available from the dynamic
1217 1.1 christos linker, build a fallback list from other sources. */
1218 1.1 christos
1219 1.1.1.10 christos static owning_intrusive_list<solib>
1220 1.1.1.7 christos svr4_default_sos (svr4_info *info)
1221 1.1 christos {
1222 1.1 christos if (!info->debug_loader_offset_p)
1223 1.1.1.9 christos return {};
1224 1.1 christos
1225 1.1.1.9 christos auto li = std::make_unique<lm_info_svr4> ();
1226 1.1 christos
1227 1.1 christos /* Nothing will ever check the other fields if we set l_addr_p. */
1228 1.1.1.8 christos li->l_addr = li->l_addr_inferior = info->debug_loader_offset;
1229 1.1.1.6 christos li->l_addr_p = 1;
1230 1.1 christos
1231 1.1.1.10 christos owning_intrusive_list<solib> sos;
1232 1.1.1.10 christos auto &newobj = sos.emplace_back ();
1233 1.1 christos
1234 1.1.1.10 christos newobj.lm_info = std::move (li);
1235 1.1.1.10 christos newobj.so_name = info->debug_loader_name;
1236 1.1.1.10 christos newobj.so_original_name = newobj.so_name;
1237 1.1.1.9 christos
1238 1.1.1.9 christos return sos;
1239 1.1 christos }
1240 1.1 christos
1241 1.1 christos /* Read the whole inferior libraries chain starting at address LM.
1242 1.1 christos Expect the first entry in the chain's previous entry to be PREV_LM.
1243 1.1.1.9 christos Add the entries to SOS. Ignore the first entry if IGNORE_FIRST and set
1244 1.1.1.9 christos global MAIN_LM_ADDR according to it. Returns nonzero upon success. If zero
1245 1.1.1.9 christos is returned the entries stored to LINK_PTR_PTR are still valid although they may
1246 1.1 christos represent only part of the inferior library list. */
1247 1.1 christos
1248 1.1 christos static int
1249 1.1.1.7 christos svr4_read_so_list (svr4_info *info, CORE_ADDR lm, CORE_ADDR prev_lm,
1250 1.1.1.9 christos std::vector<svr4_so> &sos, int ignore_first)
1251 1.1 christos {
1252 1.1.1.2 christos CORE_ADDR first_l_name = 0;
1253 1.1 christos CORE_ADDR next_lm;
1254 1.1 christos
1255 1.1 christos for (; lm != 0; prev_lm = lm, lm = next_lm)
1256 1.1 christos {
1257 1.1.1.9 christos lm_info_svr4_up li = lm_info_read (lm);
1258 1.1.1.6 christos if (li == NULL)
1259 1.1.1.6 christos return 0;
1260 1.1 christos
1261 1.1.1.6 christos next_lm = li->l_next;
1262 1.1 christos
1263 1.1.1.6 christos if (li->l_prev != prev_lm)
1264 1.1 christos {
1265 1.1 christos warning (_("Corrupted shared library list: %s != %s"),
1266 1.1.1.9 christos paddress (current_inferior ()->arch (), prev_lm),
1267 1.1.1.9 christos paddress (current_inferior ()->arch (), li->l_prev));
1268 1.1 christos return 0;
1269 1.1 christos }
1270 1.1 christos
1271 1.1 christos /* For SVR4 versions, the first entry in the link map is for the
1272 1.1.1.8 christos inferior executable, so we must ignore it. For some versions of
1273 1.1.1.8 christos SVR4, it has no name. For others (Solaris 2.3 for example), it
1274 1.1.1.8 christos does have a name, so we can no longer use a missing name to
1275 1.1.1.8 christos decide when to ignore it. */
1276 1.1.1.6 christos if (ignore_first && li->l_prev == 0)
1277 1.1 christos {
1278 1.1.1.6 christos first_l_name = li->l_name;
1279 1.1.1.6 christos info->main_lm_addr = li->lm_addr;
1280 1.1 christos continue;
1281 1.1 christos }
1282 1.1 christos
1283 1.1 christos /* Extract this shared object's name. */
1284 1.1.1.9 christos gdb::unique_xmalloc_ptr<char> name
1285 1.1.1.7 christos = target_read_string (li->l_name, SO_NAME_MAX_PATH_SIZE - 1);
1286 1.1.1.9 christos if (name == nullptr)
1287 1.1 christos {
1288 1.1 christos /* If this entry's l_name address matches that of the
1289 1.1 christos inferior executable, then this is not a normal shared
1290 1.1 christos object, but (most likely) a vDSO. In this case, silently
1291 1.1 christos skip it; otherwise emit a warning. */
1292 1.1.1.6 christos if (first_l_name == 0 || li->l_name != first_l_name)
1293 1.1.1.7 christos warning (_("Can't read pathname for load map."));
1294 1.1 christos continue;
1295 1.1 christos }
1296 1.1 christos
1297 1.1 christos /* If this entry has no name, or its name matches the name
1298 1.1 christos for the main executable, don't include it in the list. */
1299 1.1.1.9 christos if (*name == '\0' || match_main (name.get ()))
1300 1.1.1.6 christos continue;
1301 1.1 christos
1302 1.1.1.9 christos sos.emplace_back (name.get (), std::move (li));
1303 1.1 christos }
1304 1.1 christos
1305 1.1 christos return 1;
1306 1.1 christos }
1307 1.1 christos
1308 1.1 christos /* Read the full list of currently loaded shared objects directly
1309 1.1 christos from the inferior, without referring to any libraries read and
1310 1.1 christos stored by the probes interface. Handle special cases relating
1311 1.1.1.8 christos to the first elements of the list in default namespace. */
1312 1.1 christos
1313 1.1.1.8 christos static void
1314 1.1 christos svr4_current_sos_direct (struct svr4_info *info)
1315 1.1 christos {
1316 1.1 christos CORE_ADDR lm;
1317 1.1.1.8 christos bool ignore_first;
1318 1.1 christos struct svr4_library_list library_list;
1319 1.1 christos
1320 1.1.1.8 christos /* Remove any old libraries. We're going to read them back in again. */
1321 1.1.1.9 christos info->solib_lists.clear ();
1322 1.1.1.8 christos
1323 1.1 christos /* Fall back to manual examination of the target if the packet is not
1324 1.1 christos supported or gdbserver failed to find DT_DEBUG. gdb.server/solib-list.exp
1325 1.1 christos tests a case where gdbserver cannot find the shared libraries list while
1326 1.1 christos GDB itself is able to find it via SYMFILE_OBJFILE.
1327 1.1 christos
1328 1.1 christos Unfortunately statically linked inferiors will also fall back through this
1329 1.1 christos suboptimal code path. */
1330 1.1 christos
1331 1.1 christos info->using_xfer = svr4_current_sos_via_xfer_libraries (&library_list,
1332 1.1 christos NULL);
1333 1.1 christos if (info->using_xfer)
1334 1.1 christos {
1335 1.1 christos if (library_list.main_lm)
1336 1.1 christos info->main_lm_addr = library_list.main_lm;
1337 1.1 christos
1338 1.1.1.8 christos /* Remove an empty special zero namespace so we know that when there
1339 1.1.1.8 christos is one, it is actually used, and we have a flat list without
1340 1.1.1.8 christos namespace information. */
1341 1.1.1.9 christos auto it_0 = library_list.solib_lists.find (0);
1342 1.1.1.9 christos if (it_0 != library_list.solib_lists.end ()
1343 1.1.1.9 christos && it_0->second.empty ())
1344 1.1.1.9 christos library_list.solib_lists.erase (it_0);
1345 1.1.1.8 christos
1346 1.1.1.8 christos /* Replace the (empty) solib_lists in INFO with the one generated
1347 1.1.1.8 christos from the target. We don't want to copy it on assignment and then
1348 1.1.1.8 christos delete the original afterwards, so let's just swap the
1349 1.1.1.8 christos internals. */
1350 1.1.1.8 christos std::swap (info->solib_lists, library_list.solib_lists);
1351 1.1.1.8 christos return;
1352 1.1 christos }
1353 1.1 christos
1354 1.1 christos /* If we can't find the dynamic linker's base structure, this
1355 1.1 christos must not be a dynamically linked executable. Hmm. */
1356 1.1.1.8 christos info->debug_base = elf_locate_base ();
1357 1.1.1.8 christos if (info->debug_base == 0)
1358 1.1.1.8 christos return;
1359 1.1 christos
1360 1.1 christos /* Assume that everything is a library if the dynamic loader was loaded
1361 1.1 christos late by a static executable. */
1362 1.1.1.8 christos if (current_program_space->exec_bfd ()
1363 1.1.1.8 christos && bfd_get_section_by_name (current_program_space->exec_bfd (),
1364 1.1.1.8 christos ".dynamic") == NULL)
1365 1.1.1.8 christos ignore_first = false;
1366 1.1 christos else
1367 1.1.1.8 christos ignore_first = true;
1368 1.1 christos
1369 1.1.1.8 christos auto cleanup = make_scope_exit ([info] ()
1370 1.1.1.9 christos { info->solib_lists.clear (); });
1371 1.1 christos
1372 1.1.1.8 christos /* Collect the sos in each namespace. */
1373 1.1.1.8 christos CORE_ADDR debug_base = info->debug_base;
1374 1.1.1.8 christos for (; debug_base != 0;
1375 1.1.1.8 christos ignore_first = false, debug_base = solib_svr4_r_next (debug_base))
1376 1.1.1.8 christos {
1377 1.1.1.8 christos /* Walk the inferior's link map list, and build our so_list list. */
1378 1.1.1.8 christos lm = solib_svr4_r_map (debug_base);
1379 1.1.1.8 christos if (lm != 0)
1380 1.1.1.9 christos svr4_read_so_list (info, lm, 0, info->solib_lists[debug_base],
1381 1.1.1.9 christos ignore_first);
1382 1.1.1.8 christos }
1383 1.1 christos
1384 1.1 christos /* On Solaris, the dynamic linker is not in the normal list of
1385 1.1 christos shared objects, so make sure we pick it up too. Having
1386 1.1 christos symbol information for the dynamic linker is quite crucial
1387 1.1.1.8 christos for skipping dynamic linker resolver code.
1388 1.1.1.8 christos
1389 1.1.1.8 christos Note that we interpret the ldsomap load map address as 'virtual'
1390 1.1.1.8 christos r_debug object. If we added it to the default namespace (as it was),
1391 1.1.1.8 christos we would probably run into inconsistencies with the load map's
1392 1.1.1.8 christos prev/next links (I wonder if we did). */
1393 1.1.1.8 christos debug_base = solib_svr4_r_ldsomap (info);
1394 1.1.1.8 christos if (debug_base != 0)
1395 1.1.1.8 christos {
1396 1.1.1.8 christos /* Add the dynamic linker's namespace unless we already did. */
1397 1.1.1.8 christos if (info->solib_lists.find (debug_base) == info->solib_lists.end ())
1398 1.1.1.9 christos svr4_read_so_list (info, debug_base, 0, info->solib_lists[debug_base],
1399 1.1.1.9 christos 0);
1400 1.1.1.8 christos }
1401 1.1 christos
1402 1.1.1.7 christos cleanup.release ();
1403 1.1.1.8 christos }
1404 1.1.1.8 christos
1405 1.1.1.8 christos /* Collect sos read and stored by the probes interface. */
1406 1.1.1.8 christos
1407 1.1.1.10 christos static owning_intrusive_list<solib>
1408 1.1.1.8 christos svr4_collect_probes_sos (svr4_info *info)
1409 1.1.1.8 christos {
1410 1.1.1.10 christos owning_intrusive_list<solib> res;
1411 1.1.1.8 christos
1412 1.1.1.9 christos for (const auto &tuple : info->solib_lists)
1413 1.1.1.8 christos {
1414 1.1.1.9 christos const std::vector<svr4_so> &sos = tuple.second;
1415 1.1.1.9 christos res.splice (so_list_from_svr4_sos (sos));
1416 1.1.1.8 christos }
1417 1.1.1.8 christos
1418 1.1.1.9 christos return res;
1419 1.1 christos }
1420 1.1 christos
1421 1.1.1.9 christos /* Implement the main part of the "current_sos" solib_ops
1422 1.1.1.2 christos method. */
1423 1.1 christos
1424 1.1.1.10 christos static owning_intrusive_list<solib>
1425 1.1.1.7 christos svr4_current_sos_1 (svr4_info *info)
1426 1.1 christos {
1427 1.1.1.10 christos owning_intrusive_list<solib> sos;
1428 1.1.1.8 christos
1429 1.1.1.8 christos /* If we're using the probes interface, we can use the cache as it will
1430 1.1.1.8 christos be maintained by probe update/reload actions. */
1431 1.1.1.8 christos if (info->probes_table != nullptr)
1432 1.1.1.8 christos sos = svr4_collect_probes_sos (info);
1433 1.1 christos
1434 1.1.1.8 christos /* If we're not using the probes interface or if we didn't cache
1435 1.1.1.8 christos anything, read the sos to fill the cache, then collect them from the
1436 1.1.1.8 christos cache. */
1437 1.1.1.9 christos if (sos.empty ())
1438 1.1.1.8 christos {
1439 1.1.1.8 christos svr4_current_sos_direct (info);
1440 1.1.1.8 christos
1441 1.1.1.8 christos sos = svr4_collect_probes_sos (info);
1442 1.1.1.9 christos if (sos.empty ())
1443 1.1.1.8 christos sos = svr4_default_sos (info);
1444 1.1.1.8 christos }
1445 1.1.1.8 christos
1446 1.1.1.8 christos return sos;
1447 1.1 christos }
1448 1.1 christos
1449 1.1.1.9 christos /* Implement the "current_sos" solib_ops method. */
1450 1.1.1.2 christos
1451 1.1.1.10 christos static owning_intrusive_list<solib>
1452 1.1.1.9 christos svr4_current_sos ()
1453 1.1.1.2 christos {
1454 1.1.1.7 christos svr4_info *info = get_svr4_info (current_program_space);
1455 1.1.1.10 christos owning_intrusive_list<solib> sos = svr4_current_sos_1 (info);
1456 1.1.1.2 christos struct mem_range vsyscall_range;
1457 1.1.1.2 christos
1458 1.1.1.2 christos /* Filter out the vDSO module, if present. Its symbol file would
1459 1.1.1.2 christos not be found on disk. The vDSO/vsyscall's OBJFILE is instead
1460 1.1.1.2 christos managed by symfile-mem.c:add_vsyscall_page. */
1461 1.1.1.9 christos if (gdbarch_vsyscall_range (current_inferior ()->arch (), &vsyscall_range)
1462 1.1.1.2 christos && vsyscall_range.length != 0)
1463 1.1.1.2 christos {
1464 1.1.1.9 christos for (auto so = sos.begin (); so != sos.end (); )
1465 1.1.1.2 christos {
1466 1.1.1.2 christos /* We can't simply match the vDSO by starting address alone,
1467 1.1.1.2 christos because lm_info->l_addr_inferior (and also l_addr) do not
1468 1.1.1.2 christos necessarily represent the real starting address of the
1469 1.1.1.2 christos ELF if the vDSO's ELF itself is "prelinked". The l_ld
1470 1.1.1.2 christos field (the ".dynamic" section of the shared object)
1471 1.1.1.2 christos always points at the absolute/resolved address though.
1472 1.1.1.2 christos So check whether that address is inside the vDSO's
1473 1.1.1.2 christos mapping instead.
1474 1.1.1.2 christos
1475 1.1.1.2 christos E.g., on Linux 3.16 (x86_64) the vDSO is a regular
1476 1.1.1.2 christos 0-based ELF, and we see:
1477 1.1.1.2 christos
1478 1.1.1.2 christos (gdb) info auxv
1479 1.1.1.2 christos 33 AT_SYSINFO_EHDR System-supplied DSO's ELF header 0x7ffff7ffb000
1480 1.1.1.2 christos (gdb) p/x *_r_debug.r_map.l_next
1481 1.1.1.2 christos $1 = {l_addr = 0x7ffff7ffb000, ..., l_ld = 0x7ffff7ffb318, ...}
1482 1.1.1.2 christos
1483 1.1.1.2 christos And on Linux 2.6.32 (x86_64) we see:
1484 1.1.1.2 christos
1485 1.1.1.2 christos (gdb) info auxv
1486 1.1.1.2 christos 33 AT_SYSINFO_EHDR System-supplied DSO's ELF header 0x7ffff7ffe000
1487 1.1.1.2 christos (gdb) p/x *_r_debug.r_map.l_next
1488 1.1.1.2 christos $5 = {l_addr = 0x7ffff88fe000, ..., l_ld = 0x7ffff7ffe580, ... }
1489 1.1.1.2 christos
1490 1.1.1.2 christos Dumping that vDSO shows:
1491 1.1.1.2 christos
1492 1.1.1.2 christos (gdb) info proc mappings
1493 1.1.1.2 christos 0x7ffff7ffe000 0x7ffff7fff000 0x1000 0 [vdso]
1494 1.1.1.2 christos (gdb) dump memory vdso.bin 0x7ffff7ffe000 0x7ffff7fff000
1495 1.1.1.2 christos # readelf -Wa vdso.bin
1496 1.1.1.2 christos [...]
1497 1.1.1.2 christos Entry point address: 0xffffffffff700700
1498 1.1.1.2 christos [...]
1499 1.1.1.2 christos Section Headers:
1500 1.1.1.2 christos [Nr] Name Type Address Off Size
1501 1.1.1.2 christos [ 0] NULL 0000000000000000 000000 000000
1502 1.1.1.2 christos [ 1] .hash HASH ffffffffff700120 000120 000038
1503 1.1.1.2 christos [ 2] .dynsym DYNSYM ffffffffff700158 000158 0000d8
1504 1.1.1.2 christos [...]
1505 1.1.1.2 christos [ 9] .dynamic DYNAMIC ffffffffff700580 000580 0000f0
1506 1.1.1.2 christos */
1507 1.1.1.6 christos
1508 1.1.1.9 christos auto *li = gdb::checked_static_cast<lm_info_svr4 *> (so->lm_info.get ());
1509 1.1.1.6 christos
1510 1.1.1.9 christos if (vsyscall_range.contains (li->l_ld))
1511 1.1.1.2 christos {
1512 1.1.1.10 christos so = sos.erase (so);
1513 1.1.1.2 christos break;
1514 1.1.1.2 christos }
1515 1.1.1.2 christos
1516 1.1.1.9 christos ++so;
1517 1.1.1.2 christos }
1518 1.1.1.2 christos }
1519 1.1.1.2 christos
1520 1.1.1.9 christos return sos;
1521 1.1.1.2 christos }
1522 1.1.1.2 christos
1523 1.1 christos /* Get the address of the link_map for a given OBJFILE. */
1524 1.1 christos
1525 1.1 christos CORE_ADDR
1526 1.1 christos svr4_fetch_objfile_link_map (struct objfile *objfile)
1527 1.1 christos {
1528 1.1.1.10 christos struct svr4_info *info = get_svr4_info (objfile->pspace ());
1529 1.1 christos
1530 1.1 christos /* Cause svr4_current_sos() to be run if it hasn't been already. */
1531 1.1 christos if (info->main_lm_addr == 0)
1532 1.1.1.5 christos solib_add (NULL, 0, auto_solib_add);
1533 1.1 christos
1534 1.1 christos /* svr4_current_sos() will set main_lm_addr for the main executable. */
1535 1.1.1.8 christos if (objfile == current_program_space->symfile_object_file)
1536 1.1 christos return info->main_lm_addr;
1537 1.1 christos
1538 1.1 christos /* The other link map addresses may be found by examining the list
1539 1.1 christos of shared libraries. */
1540 1.1.1.9 christos for (const solib &so : current_program_space->solibs ())
1541 1.1.1.9 christos if (so.objfile == objfile)
1542 1.1.1.6 christos {
1543 1.1.1.9 christos auto *li
1544 1.1.1.9 christos = gdb::checked_static_cast<lm_info_svr4 *> (so.lm_info.get ());
1545 1.1.1.6 christos
1546 1.1.1.6 christos return li->lm_addr;
1547 1.1.1.6 christos }
1548 1.1 christos
1549 1.1 christos /* Not found! */
1550 1.1 christos return 0;
1551 1.1 christos }
1552 1.1 christos
1553 1.1 christos /* On some systems, the only way to recognize the link map entry for
1554 1.1 christos the main executable file is by looking at its name. Return
1555 1.1 christos non-zero iff SONAME matches one of the known main executable names. */
1556 1.1 christos
1557 1.1 christos static int
1558 1.1 christos match_main (const char *soname)
1559 1.1 christos {
1560 1.1 christos const char * const *mainp;
1561 1.1 christos
1562 1.1 christos for (mainp = main_name_list; *mainp != NULL; mainp++)
1563 1.1 christos {
1564 1.1 christos if (strcmp (soname, *mainp) == 0)
1565 1.1 christos return (1);
1566 1.1 christos }
1567 1.1 christos
1568 1.1 christos return (0);
1569 1.1 christos }
1570 1.1 christos
1571 1.1 christos /* Return 1 if PC lies in the dynamic symbol resolution code of the
1572 1.1 christos SVR4 run time loader. */
1573 1.1 christos
1574 1.1 christos int
1575 1.1 christos svr4_in_dynsym_resolve_code (CORE_ADDR pc)
1576 1.1 christos {
1577 1.1.1.7 christos struct svr4_info *info = get_svr4_info (current_program_space);
1578 1.1 christos
1579 1.1 christos return ((pc >= info->interp_text_sect_low
1580 1.1 christos && pc < info->interp_text_sect_high)
1581 1.1 christos || (pc >= info->interp_plt_sect_low
1582 1.1 christos && pc < info->interp_plt_sect_high)
1583 1.1 christos || in_plt_section (pc)
1584 1.1 christos || in_gnu_ifunc_stub (pc));
1585 1.1 christos }
1586 1.1 christos
1587 1.1 christos /* Given an executable's ABFD and target, compute the entry-point
1588 1.1 christos address. */
1589 1.1 christos
1590 1.1 christos static CORE_ADDR
1591 1.1 christos exec_entry_point (struct bfd *abfd, struct target_ops *targ)
1592 1.1 christos {
1593 1.1 christos CORE_ADDR addr;
1594 1.1 christos
1595 1.1 christos /* KevinB wrote ... for most targets, the address returned by
1596 1.1 christos bfd_get_start_address() is the entry point for the start
1597 1.1 christos function. But, for some targets, bfd_get_start_address() returns
1598 1.1 christos the address of a function descriptor from which the entry point
1599 1.1 christos address may be extracted. This address is extracted by
1600 1.1 christos gdbarch_convert_from_func_ptr_addr(). The method
1601 1.1 christos gdbarch_convert_from_func_ptr_addr() is the merely the identify
1602 1.1 christos function for targets which don't use function descriptors. */
1603 1.1.1.9 christos addr = gdbarch_convert_from_func_ptr_addr (current_inferior ()->arch (),
1604 1.1 christos bfd_get_start_address (abfd),
1605 1.1 christos targ);
1606 1.1.1.9 christos return gdbarch_addr_bits_remove (current_inferior ()->arch (), addr);
1607 1.1 christos }
1608 1.1 christos
1609 1.1 christos /* A probe and its associated action. */
1610 1.1 christos
1611 1.1 christos struct probe_and_action
1612 1.1 christos {
1613 1.1 christos /* The probe. */
1614 1.1.1.6 christos probe *prob;
1615 1.1 christos
1616 1.1.1.2 christos /* The relocated address of the probe. */
1617 1.1.1.2 christos CORE_ADDR address;
1618 1.1.1.2 christos
1619 1.1 christos /* The action. */
1620 1.1 christos enum probe_action action;
1621 1.1.1.7 christos
1622 1.1.1.7 christos /* The objfile where this probe was found. */
1623 1.1.1.7 christos struct objfile *objfile;
1624 1.1 christos };
1625 1.1 christos
1626 1.1 christos /* Returns a hash code for the probe_and_action referenced by p. */
1627 1.1 christos
1628 1.1 christos static hashval_t
1629 1.1 christos hash_probe_and_action (const void *p)
1630 1.1 christos {
1631 1.1.1.4 christos const struct probe_and_action *pa = (const struct probe_and_action *) p;
1632 1.1 christos
1633 1.1.1.2 christos return (hashval_t) pa->address;
1634 1.1 christos }
1635 1.1 christos
1636 1.1 christos /* Returns non-zero if the probe_and_actions referenced by p1 and p2
1637 1.1 christos are equal. */
1638 1.1 christos
1639 1.1 christos static int
1640 1.1 christos equal_probe_and_action (const void *p1, const void *p2)
1641 1.1 christos {
1642 1.1.1.4 christos const struct probe_and_action *pa1 = (const struct probe_and_action *) p1;
1643 1.1.1.4 christos const struct probe_and_action *pa2 = (const struct probe_and_action *) p2;
1644 1.1 christos
1645 1.1.1.2 christos return pa1->address == pa2->address;
1646 1.1 christos }
1647 1.1 christos
1648 1.1.1.7 christos /* Traversal function for probes_table_remove_objfile_probes. */
1649 1.1.1.7 christos
1650 1.1.1.7 christos static int
1651 1.1.1.7 christos probes_table_htab_remove_objfile_probes (void **slot, void *info)
1652 1.1.1.7 christos {
1653 1.1.1.7 christos probe_and_action *pa = (probe_and_action *) *slot;
1654 1.1.1.7 christos struct objfile *objfile = (struct objfile *) info;
1655 1.1.1.7 christos
1656 1.1.1.7 christos if (pa->objfile == objfile)
1657 1.1.1.10 christos htab_clear_slot (get_svr4_info (objfile->pspace ())->probes_table.get (),
1658 1.1.1.7 christos slot);
1659 1.1.1.7 christos
1660 1.1.1.7 christos return 1;
1661 1.1.1.7 christos }
1662 1.1.1.7 christos
1663 1.1.1.7 christos /* Remove all probes that belong to OBJFILE from the probes table. */
1664 1.1.1.7 christos
1665 1.1.1.7 christos static void
1666 1.1.1.7 christos probes_table_remove_objfile_probes (struct objfile *objfile)
1667 1.1.1.7 christos {
1668 1.1.1.10 christos svr4_info *info = solib_svr4_pspace_data.get (objfile->pspace ());
1669 1.1.1.10 christos if (info == nullptr || info->probes_table == nullptr)
1670 1.1.1.10 christos return;
1671 1.1.1.10 christos
1672 1.1.1.10 christos htab_traverse_noresize (info->probes_table.get (),
1673 1.1.1.10 christos probes_table_htab_remove_objfile_probes, objfile);
1674 1.1.1.7 christos }
1675 1.1.1.7 christos
1676 1.1 christos /* Register a solib event probe and its associated action in the
1677 1.1 christos probes table. */
1678 1.1 christos
1679 1.1 christos static void
1680 1.1.1.7 christos register_solib_event_probe (svr4_info *info, struct objfile *objfile,
1681 1.1.1.7 christos probe *prob, CORE_ADDR address,
1682 1.1.1.2 christos enum probe_action action)
1683 1.1 christos {
1684 1.1 christos struct probe_and_action lookup, *pa;
1685 1.1 christos void **slot;
1686 1.1 christos
1687 1.1 christos /* Create the probes table, if necessary. */
1688 1.1 christos if (info->probes_table == NULL)
1689 1.1.1.7 christos info->probes_table.reset (htab_create_alloc (1, hash_probe_and_action,
1690 1.1.1.7 christos equal_probe_and_action,
1691 1.1.1.7 christos xfree, xcalloc, xfree));
1692 1.1 christos
1693 1.1.1.2 christos lookup.address = address;
1694 1.1.1.7 christos slot = htab_find_slot (info->probes_table.get (), &lookup, INSERT);
1695 1.1 christos gdb_assert (*slot == HTAB_EMPTY_ENTRY);
1696 1.1 christos
1697 1.1 christos pa = XCNEW (struct probe_and_action);
1698 1.1.1.6 christos pa->prob = prob;
1699 1.1.1.2 christos pa->address = address;
1700 1.1 christos pa->action = action;
1701 1.1.1.7 christos pa->objfile = objfile;
1702 1.1 christos
1703 1.1 christos *slot = pa;
1704 1.1 christos }
1705 1.1 christos
1706 1.1 christos /* Get the solib event probe at the specified location, and the
1707 1.1 christos action associated with it. Returns NULL if no solib event probe
1708 1.1 christos was found. */
1709 1.1 christos
1710 1.1 christos static struct probe_and_action *
1711 1.1 christos solib_event_probe_at (struct svr4_info *info, CORE_ADDR address)
1712 1.1 christos {
1713 1.1 christos struct probe_and_action lookup;
1714 1.1 christos void **slot;
1715 1.1 christos
1716 1.1.1.2 christos lookup.address = address;
1717 1.1.1.7 christos slot = htab_find_slot (info->probes_table.get (), &lookup, NO_INSERT);
1718 1.1 christos
1719 1.1 christos if (slot == NULL)
1720 1.1 christos return NULL;
1721 1.1 christos
1722 1.1 christos return (struct probe_and_action *) *slot;
1723 1.1 christos }
1724 1.1 christos
1725 1.1 christos /* Decide what action to take when the specified solib event probe is
1726 1.1 christos hit. */
1727 1.1 christos
1728 1.1 christos static enum probe_action
1729 1.1 christos solib_event_probe_action (struct probe_and_action *pa)
1730 1.1 christos {
1731 1.1 christos enum probe_action action;
1732 1.1.1.4 christos unsigned probe_argc = 0;
1733 1.1.1.8 christos frame_info_ptr frame = get_current_frame ();
1734 1.1 christos
1735 1.1 christos action = pa->action;
1736 1.1 christos if (action == DO_NOTHING || action == PROBES_INTERFACE_FAILED)
1737 1.1 christos return action;
1738 1.1 christos
1739 1.1 christos gdb_assert (action == FULL_RELOAD || action == UPDATE_OR_RELOAD);
1740 1.1 christos
1741 1.1 christos /* Check that an appropriate number of arguments has been supplied.
1742 1.1 christos We expect:
1743 1.1 christos arg0: Lmid_t lmid (mandatory)
1744 1.1 christos arg1: struct r_debug *debug_base (mandatory)
1745 1.1 christos arg2: struct link_map *new (optional, for incremental updates) */
1746 1.1.1.7 christos try
1747 1.1.1.4 christos {
1748 1.1.1.7 christos probe_argc = pa->prob->get_argument_count (get_frame_arch (frame));
1749 1.1.1.4 christos }
1750 1.1.1.7 christos catch (const gdb_exception_error &ex)
1751 1.1.1.4 christos {
1752 1.1.1.4 christos exception_print (gdb_stderr, ex);
1753 1.1.1.4 christos probe_argc = 0;
1754 1.1.1.4 christos }
1755 1.1.1.4 christos
1756 1.1.1.6 christos /* If get_argument_count throws an exception, probe_argc will be set
1757 1.1.1.6 christos to zero. However, if pa->prob does not have arguments, then
1758 1.1.1.6 christos get_argument_count will succeed but probe_argc will also be zero.
1759 1.1.1.6 christos Both cases happen because of different things, but they are
1760 1.1.1.6 christos treated equally here: action will be set to
1761 1.1.1.4 christos PROBES_INTERFACE_FAILED. */
1762 1.1 christos if (probe_argc == 2)
1763 1.1 christos action = FULL_RELOAD;
1764 1.1 christos else if (probe_argc < 2)
1765 1.1 christos action = PROBES_INTERFACE_FAILED;
1766 1.1 christos
1767 1.1 christos return action;
1768 1.1 christos }
1769 1.1 christos
1770 1.1 christos /* Populate the shared object list by reading the entire list of
1771 1.1 christos shared objects from the inferior. Handle special cases relating
1772 1.1 christos to the first elements of the list. Returns nonzero on success. */
1773 1.1 christos
1774 1.1 christos static int
1775 1.1 christos solist_update_full (struct svr4_info *info)
1776 1.1 christos {
1777 1.1.1.8 christos svr4_current_sos_direct (info);
1778 1.1 christos
1779 1.1 christos return 1;
1780 1.1 christos }
1781 1.1 christos
1782 1.1 christos /* Update the shared object list starting from the link-map entry
1783 1.1 christos passed by the linker in the probe's third argument. Returns
1784 1.1 christos nonzero if the list was successfully updated, or zero to indicate
1785 1.1 christos failure. */
1786 1.1 christos
1787 1.1 christos static int
1788 1.1.1.8 christos solist_update_incremental (svr4_info *info, CORE_ADDR debug_base,
1789 1.1.1.8 christos CORE_ADDR lm)
1790 1.1 christos {
1791 1.1 christos /* Fall back to a full update if we are using a remote target
1792 1.1 christos that does not support incremental transfers. */
1793 1.1 christos if (info->using_xfer && !target_augmented_libraries_svr4_read ())
1794 1.1 christos return 0;
1795 1.1 christos
1796 1.1.1.8 christos /* Fall back to a full update if we used the special namespace zero. We
1797 1.1.1.8 christos wouldn't be able to find the last item in the DEBUG_BASE namespace
1798 1.1.1.8 christos and hence get the prev link wrong. */
1799 1.1.1.8 christos if (info->solib_lists.find (0) != info->solib_lists.end ())
1800 1.1.1.8 christos return 0;
1801 1.1.1.8 christos
1802 1.1.1.9 christos std::vector<svr4_so> &solist = info->solib_lists[debug_base];
1803 1.1.1.8 christos CORE_ADDR prev_lm;
1804 1.1.1.6 christos
1805 1.1.1.9 christos if (solist.empty ())
1806 1.1.1.8 christos {
1807 1.1.1.8 christos /* svr4_current_sos_direct contains logic to handle a number of
1808 1.1.1.8 christos special cases relating to the first elements of the list in
1809 1.1.1.8 christos default namespace. To avoid duplicating this logic we defer to
1810 1.1.1.8 christos solist_update_full in this case. */
1811 1.1.1.8 christos if (svr4_is_default_namespace (info, debug_base))
1812 1.1.1.8 christos return 0;
1813 1.1.1.8 christos
1814 1.1.1.8 christos prev_lm = 0;
1815 1.1.1.8 christos }
1816 1.1.1.8 christos else
1817 1.1.1.9 christos prev_lm = solist.back ().lm_info->lm_addr;
1818 1.1 christos
1819 1.1 christos /* Read the new objects. */
1820 1.1 christos if (info->using_xfer)
1821 1.1 christos {
1822 1.1 christos struct svr4_library_list library_list;
1823 1.1 christos char annex[64];
1824 1.1 christos
1825 1.1.1.8 christos /* Unknown key=value pairs are ignored by the gdbstub. */
1826 1.1.1.8 christos xsnprintf (annex, sizeof (annex), "lmid=%s;start=%s;prev=%s",
1827 1.1.1.8 christos phex_nz (debug_base, sizeof (debug_base)),
1828 1.1 christos phex_nz (lm, sizeof (lm)),
1829 1.1 christos phex_nz (prev_lm, sizeof (prev_lm)));
1830 1.1 christos if (!svr4_current_sos_via_xfer_libraries (&library_list, annex))
1831 1.1 christos return 0;
1832 1.1 christos
1833 1.1.1.8 christos /* Get the so list from the target. We replace the list in the
1834 1.1.1.9 christos target response so we can easily check that the response only
1835 1.1.1.9 christos covers one namespace.
1836 1.1.1.8 christos
1837 1.1.1.8 christos We expect gdbserver to provide updates for the namespace that
1838 1.1.1.9 christos contains LM, which would be this namespace... */
1839 1.1.1.9 christos std::vector<svr4_so> sos;
1840 1.1.1.9 christos auto it_debug_base = library_list.solib_lists.find (debug_base);
1841 1.1.1.9 christos if (it_debug_base != library_list.solib_lists.end ())
1842 1.1.1.9 christos std::swap (sos, it_debug_base->second);
1843 1.1.1.9 christos else
1844 1.1.1.8 christos {
1845 1.1.1.8 christos /* ...or for the special zero namespace for earlier versions... */
1846 1.1.1.9 christos auto it_0 = library_list.solib_lists.find (0);
1847 1.1.1.9 christos if (it_0 != library_list.solib_lists.end ())
1848 1.1.1.9 christos std::swap (sos, it_0->second);
1849 1.1.1.8 christos }
1850 1.1.1.8 christos
1851 1.1.1.8 christos /* ...but nothing else. */
1852 1.1.1.9 christos for (const auto &tuple : library_list.solib_lists)
1853 1.1.1.9 christos gdb_assert (tuple.second.empty ());
1854 1.1.1.8 christos
1855 1.1.1.9 christos std::move (sos.begin (), sos.end (), std::back_inserter (solist));
1856 1.1 christos }
1857 1.1 christos else
1858 1.1 christos {
1859 1.1 christos /* IGNORE_FIRST may safely be set to zero here because the
1860 1.1 christos above check and deferral to solist_update_full ensures
1861 1.1 christos that this call to svr4_read_so_list will never see the
1862 1.1 christos first element. */
1863 1.1.1.9 christos if (!svr4_read_so_list (info, lm, prev_lm, solist, 0))
1864 1.1 christos return 0;
1865 1.1 christos }
1866 1.1 christos
1867 1.1 christos return 1;
1868 1.1 christos }
1869 1.1 christos
1870 1.1 christos /* Disable the probes-based linker interface and revert to the
1871 1.1 christos original interface. We don't reset the breakpoints as the
1872 1.1 christos ones set up for the probes-based interface are adequate. */
1873 1.1 christos
1874 1.1 christos static void
1875 1.1.1.7 christos disable_probes_interface (svr4_info *info)
1876 1.1 christos {
1877 1.1 christos warning (_("Probes-based dynamic linker interface failed.\n"
1878 1.1.1.7 christos "Reverting to original interface."));
1879 1.1 christos
1880 1.1 christos free_probes_table (info);
1881 1.1.1.9 christos info->solib_lists.clear ();
1882 1.1 christos }
1883 1.1 christos
1884 1.1 christos /* Update the solib list as appropriate when using the
1885 1.1 christos probes-based linker interface. Do nothing if using the
1886 1.1 christos standard interface. */
1887 1.1 christos
1888 1.1 christos static void
1889 1.1 christos svr4_handle_solib_event (void)
1890 1.1 christos {
1891 1.1.1.7 christos struct svr4_info *info = get_svr4_info (current_program_space);
1892 1.1 christos struct probe_and_action *pa;
1893 1.1 christos enum probe_action action;
1894 1.1.1.4 christos struct value *val = NULL;
1895 1.1 christos CORE_ADDR pc, debug_base, lm = 0;
1896 1.1.1.8 christos frame_info_ptr frame = get_current_frame ();
1897 1.1 christos
1898 1.1 christos /* Do nothing if not using the probes interface. */
1899 1.1 christos if (info->probes_table == NULL)
1900 1.1 christos return;
1901 1.1 christos
1902 1.1.1.9 christos pc = regcache_read_pc (get_thread_regcache (inferior_thread ()));
1903 1.1.1.9 christos pa = solib_event_probe_at (info, pc);
1904 1.1.1.9 christos if (pa == nullptr)
1905 1.1.1.9 christos {
1906 1.1.1.9 christos /* When some solib ops sits above us, it can respond to a solib event
1907 1.1.1.9 christos by calling in here. This is done assuming that if the current event
1908 1.1.1.9 christos is not an SVR4 solib event, calling here should be a no-op. */
1909 1.1.1.9 christos return;
1910 1.1.1.9 christos }
1911 1.1.1.9 christos
1912 1.1 christos /* If anything goes wrong we revert to the original linker
1913 1.1 christos interface. */
1914 1.1.1.7 christos auto cleanup = make_scope_exit ([info] ()
1915 1.1.1.7 christos {
1916 1.1.1.7 christos disable_probes_interface (info);
1917 1.1.1.7 christos });
1918 1.1 christos
1919 1.1 christos action = solib_event_probe_action (pa);
1920 1.1 christos if (action == PROBES_INTERFACE_FAILED)
1921 1.1.1.7 christos return;
1922 1.1 christos
1923 1.1 christos if (action == DO_NOTHING)
1924 1.1 christos {
1925 1.1.1.7 christos cleanup.release ();
1926 1.1 christos return;
1927 1.1 christos }
1928 1.1 christos
1929 1.1.1.6 christos /* evaluate_argument looks up symbols in the dynamic linker
1930 1.1 christos using find_pc_section. find_pc_section is accelerated by a cache
1931 1.1 christos called the section map. The section map is invalidated every
1932 1.1 christos time a shared library is loaded or unloaded, and if the inferior
1933 1.1 christos is generating a lot of shared library events then the section map
1934 1.1 christos will be updated every time svr4_handle_solib_event is called.
1935 1.1 christos We called find_pc_section in svr4_create_solib_event_breakpoints,
1936 1.1 christos so we can guarantee that the dynamic linker's sections are in the
1937 1.1 christos section map. We can therefore inhibit section map updates across
1938 1.1.1.6 christos these calls to evaluate_argument and save a lot of time. */
1939 1.1.1.6 christos {
1940 1.1.1.6 christos scoped_restore inhibit_updates
1941 1.1.1.6 christos = inhibit_section_map_updates (current_program_space);
1942 1.1 christos
1943 1.1.1.7 christos try
1944 1.1.1.6 christos {
1945 1.1.1.6 christos val = pa->prob->evaluate_argument (1, frame);
1946 1.1.1.6 christos }
1947 1.1.1.7 christos catch (const gdb_exception_error &ex)
1948 1.1.1.6 christos {
1949 1.1.1.6 christos exception_print (gdb_stderr, ex);
1950 1.1.1.6 christos val = NULL;
1951 1.1.1.6 christos }
1952 1.1.1.4 christos
1953 1.1.1.6 christos if (val == NULL)
1954 1.1.1.7 christos return;
1955 1.1 christos
1956 1.1.1.6 christos debug_base = value_as_address (val);
1957 1.1.1.6 christos if (debug_base == 0)
1958 1.1.1.7 christos return;
1959 1.1 christos
1960 1.1.1.8 christos /* If the global _r_debug object moved, we need to reload everything
1961 1.1.1.8 christos since we cannot identify namespaces (by the location of their
1962 1.1.1.8 christos r_debug_ext object) anymore. */
1963 1.1.1.8 christos CORE_ADDR global_debug_base = elf_locate_base ();
1964 1.1.1.8 christos if (global_debug_base != info->debug_base)
1965 1.1.1.8 christos {
1966 1.1.1.8 christos info->debug_base = global_debug_base;
1967 1.1.1.8 christos action = FULL_RELOAD;
1968 1.1.1.8 christos }
1969 1.1.1.8 christos
1970 1.1.1.8 christos if (info->debug_base == 0)
1971 1.1.1.6 christos {
1972 1.1.1.7 christos /* It's possible for the reloc_complete probe to be triggered before
1973 1.1.1.7 christos the linker has set the DT_DEBUG pointer (for example, when the
1974 1.1.1.7 christos linker has finished relocating an LD_AUDIT library or its
1975 1.1.1.7 christos dependencies). Since we can't yet handle libraries from other link
1976 1.1.1.7 christos namespaces, we don't lose anything by ignoring them here. */
1977 1.1.1.7 christos struct value *link_map_id_val;
1978 1.1.1.7 christos try
1979 1.1.1.7 christos {
1980 1.1.1.7 christos link_map_id_val = pa->prob->evaluate_argument (0, frame);
1981 1.1.1.7 christos }
1982 1.1.1.10 christos catch (const gdb_exception_error &)
1983 1.1.1.7 christos {
1984 1.1.1.7 christos link_map_id_val = NULL;
1985 1.1.1.7 christos }
1986 1.1.1.7 christos /* glibc and illumos' libc both define LM_ID_BASE as zero. */
1987 1.1.1.7 christos if (link_map_id_val != NULL && value_as_long (link_map_id_val) != 0)
1988 1.1.1.7 christos action = DO_NOTHING;
1989 1.1.1.7 christos else
1990 1.1.1.7 christos return;
1991 1.1.1.6 christos }
1992 1.1 christos
1993 1.1.1.6 christos if (action == UPDATE_OR_RELOAD)
1994 1.1.1.6 christos {
1995 1.1.1.7 christos try
1996 1.1.1.6 christos {
1997 1.1.1.6 christos val = pa->prob->evaluate_argument (2, frame);
1998 1.1.1.6 christos }
1999 1.1.1.7 christos catch (const gdb_exception_error &ex)
2000 1.1.1.6 christos {
2001 1.1.1.6 christos exception_print (gdb_stderr, ex);
2002 1.1.1.6 christos return;
2003 1.1.1.6 christos }
2004 1.1.1.4 christos
2005 1.1.1.6 christos if (val != NULL)
2006 1.1.1.6 christos lm = value_as_address (val);
2007 1.1 christos
2008 1.1.1.6 christos if (lm == 0)
2009 1.1.1.6 christos action = FULL_RELOAD;
2010 1.1.1.6 christos }
2011 1.1 christos
2012 1.1.1.6 christos /* Resume section map updates. Closing the scope is
2013 1.1.1.6 christos sufficient. */
2014 1.1.1.6 christos }
2015 1.1 christos
2016 1.1 christos if (action == UPDATE_OR_RELOAD)
2017 1.1 christos {
2018 1.1.1.8 christos if (!solist_update_incremental (info, debug_base, lm))
2019 1.1 christos action = FULL_RELOAD;
2020 1.1 christos }
2021 1.1 christos
2022 1.1 christos if (action == FULL_RELOAD)
2023 1.1 christos {
2024 1.1 christos if (!solist_update_full (info))
2025 1.1.1.7 christos return;
2026 1.1 christos }
2027 1.1 christos
2028 1.1.1.7 christos cleanup.release ();
2029 1.1 christos }
2030 1.1 christos
2031 1.1 christos /* Helper function for svr4_update_solib_event_breakpoints. */
2032 1.1 christos
2033 1.1.1.7 christos static bool
2034 1.1.1.7 christos svr4_update_solib_event_breakpoint (struct breakpoint *b)
2035 1.1 christos {
2036 1.1 christos if (b->type != bp_shlib_event)
2037 1.1 christos {
2038 1.1 christos /* Continue iterating. */
2039 1.1.1.7 christos return false;
2040 1.1 christos }
2041 1.1 christos
2042 1.1.1.9 christos for (bp_location &loc : b->locations ())
2043 1.1 christos {
2044 1.1 christos struct svr4_info *info;
2045 1.1 christos struct probe_and_action *pa;
2046 1.1 christos
2047 1.1.1.9 christos info = solib_svr4_pspace_data.get (loc.pspace);
2048 1.1 christos if (info == NULL || info->probes_table == NULL)
2049 1.1 christos continue;
2050 1.1 christos
2051 1.1.1.9 christos pa = solib_event_probe_at (info, loc.address);
2052 1.1 christos if (pa == NULL)
2053 1.1 christos continue;
2054 1.1 christos
2055 1.1 christos if (pa->action == DO_NOTHING)
2056 1.1 christos {
2057 1.1 christos if (b->enable_state == bp_disabled && stop_on_solib_events)
2058 1.1 christos enable_breakpoint (b);
2059 1.1 christos else if (b->enable_state == bp_enabled && !stop_on_solib_events)
2060 1.1 christos disable_breakpoint (b);
2061 1.1 christos }
2062 1.1 christos
2063 1.1 christos break;
2064 1.1 christos }
2065 1.1 christos
2066 1.1 christos /* Continue iterating. */
2067 1.1.1.7 christos return false;
2068 1.1 christos }
2069 1.1 christos
2070 1.1 christos /* Enable or disable optional solib event breakpoints as appropriate.
2071 1.1 christos Called whenever stop_on_solib_events is changed. */
2072 1.1 christos
2073 1.1 christos static void
2074 1.1 christos svr4_update_solib_event_breakpoints (void)
2075 1.1 christos {
2076 1.1.1.9 christos for (breakpoint &bp : all_breakpoints_safe ())
2077 1.1.1.9 christos svr4_update_solib_event_breakpoint (&bp);
2078 1.1 christos }
2079 1.1 christos
2080 1.1 christos /* Create and register solib event breakpoints. PROBES is an array
2081 1.1 christos of NUM_PROBES elements, each of which is vector of probes. A
2082 1.1 christos solib event breakpoint will be created and registered for each
2083 1.1 christos probe. */
2084 1.1 christos
2085 1.1 christos static void
2086 1.1.1.7 christos svr4_create_probe_breakpoints (svr4_info *info, struct gdbarch *gdbarch,
2087 1.1.1.6 christos const std::vector<probe *> *probes,
2088 1.1.1.2 christos struct objfile *objfile)
2089 1.1 christos {
2090 1.1.1.6 christos for (int i = 0; i < NUM_PROBES; i++)
2091 1.1 christos {
2092 1.1 christos enum probe_action action = probe_info[i].action;
2093 1.1 christos
2094 1.1.1.6 christos for (probe *p : probes[i])
2095 1.1 christos {
2096 1.1.1.6 christos CORE_ADDR address = p->get_relocated_address (objfile);
2097 1.1.1.2 christos
2098 1.1.1.8 christos solib_debug_printf ("name=%s, addr=%s", probe_info[i].name,
2099 1.1.1.8 christos paddress (gdbarch, address));
2100 1.1.1.8 christos
2101 1.1.1.2 christos create_solib_event_breakpoint (gdbarch, address);
2102 1.1.1.7 christos register_solib_event_probe (info, objfile, p, address, action);
2103 1.1 christos }
2104 1.1 christos }
2105 1.1 christos
2106 1.1 christos svr4_update_solib_event_breakpoints ();
2107 1.1 christos }
2108 1.1 christos
2109 1.1.1.7 christos /* Find all the glibc named probes. Only if all of the probes are found, then
2110 1.1.1.7 christos create them and return true. Otherwise return false. If WITH_PREFIX is set
2111 1.1.1.7 christos then add "rtld" to the front of the probe names. */
2112 1.1.1.7 christos static bool
2113 1.1.1.7 christos svr4_find_and_create_probe_breakpoints (svr4_info *info,
2114 1.1.1.7 christos struct gdbarch *gdbarch,
2115 1.1.1.7 christos struct obj_section *os,
2116 1.1.1.7 christos bool with_prefix)
2117 1.1.1.7 christos {
2118 1.1.1.8 christos SOLIB_SCOPED_DEBUG_START_END ("objfile=%s, with_prefix=%d",
2119 1.1.1.8 christos os->objfile->original_name, with_prefix);
2120 1.1.1.8 christos
2121 1.1.1.7 christos std::vector<probe *> probes[NUM_PROBES];
2122 1.1.1.7 christos
2123 1.1.1.7 christos for (int i = 0; i < NUM_PROBES; i++)
2124 1.1.1.7 christos {
2125 1.1.1.7 christos const char *name = probe_info[i].name;
2126 1.1.1.7 christos char buf[32];
2127 1.1.1.7 christos
2128 1.1.1.7 christos /* Fedora 17 and Red Hat Enterprise Linux 6.2-6.4 shipped with an early
2129 1.1.1.7 christos version of the probes code in which the probes' names were prefixed
2130 1.1.1.7 christos with "rtld_" and the "map_failed" probe did not exist. The locations
2131 1.1.1.7 christos of the probes are otherwise the same, so we check for probes with
2132 1.1.1.7 christos prefixed names if probes with unprefixed names are not present. */
2133 1.1.1.7 christos if (with_prefix)
2134 1.1.1.7 christos {
2135 1.1.1.7 christos xsnprintf (buf, sizeof (buf), "rtld_%s", name);
2136 1.1.1.7 christos name = buf;
2137 1.1.1.7 christos }
2138 1.1.1.7 christos
2139 1.1.1.7 christos probes[i] = find_probes_in_objfile (os->objfile, "rtld", name);
2140 1.1.1.8 christos solib_debug_printf ("probe=%s, num found=%zu", name, probes[i].size ());
2141 1.1.1.7 christos
2142 1.1.1.7 christos /* Ensure at least one probe for the current name was found. */
2143 1.1.1.7 christos if (probes[i].empty ())
2144 1.1.1.8 christos {
2145 1.1.1.8 christos /* The "map_failed" probe did not exist in early versions of the
2146 1.1.1.8 christos probes code in which the probes' names were prefixed with
2147 1.1.1.8 christos "rtld_".
2148 1.1.1.8 christos
2149 1.1.1.8 christos Additionally, the "map_failed" probe was accidentally removed
2150 1.1.1.8 christos from glibc 2.35 and 2.36, when changes in glibc meant the
2151 1.1.1.8 christos probe could no longer be reached, and the compiler optimized
2152 1.1.1.8 christos the probe away. In this case the probe name doesn't have the
2153 1.1.1.8 christos "rtld_" prefix.
2154 1.1.1.8 christos
2155 1.1.1.8 christos To handle this, and give GDB as much flexibility as possible,
2156 1.1.1.8 christos we make the rule that, if a probe isn't required for the
2157 1.1.1.8 christos correct operation of GDB (i.e. its action is DO_NOTHING), then
2158 1.1.1.8 christos we will still use the probes interface, even if that probe is
2159 1.1.1.8 christos missing.
2160 1.1.1.8 christos
2161 1.1.1.8 christos The only (possible) downside of this is that, if the user has
2162 1.1.1.8 christos 'set stop-on-solib-events on' in effect, then they might get
2163 1.1.1.8 christos fewer events using the probes interface than with the classic
2164 1.1.1.8 christos non-probes interface. */
2165 1.1.1.8 christos if (probe_info[i].action == DO_NOTHING)
2166 1.1.1.8 christos continue;
2167 1.1.1.8 christos else
2168 1.1.1.8 christos return false;
2169 1.1.1.8 christos }
2170 1.1.1.7 christos
2171 1.1.1.7 christos /* Ensure probe arguments can be evaluated. */
2172 1.1.1.7 christos for (probe *p : probes[i])
2173 1.1.1.7 christos {
2174 1.1.1.7 christos if (!p->can_evaluate_arguments ())
2175 1.1.1.7 christos return false;
2176 1.1.1.7 christos /* This will fail if the probe is invalid. This has been seen on Arm
2177 1.1.1.7 christos due to references to symbols that have been resolved away. */
2178 1.1.1.7 christos try
2179 1.1.1.7 christos {
2180 1.1.1.7 christos p->get_argument_count (gdbarch);
2181 1.1.1.7 christos }
2182 1.1.1.7 christos catch (const gdb_exception_error &ex)
2183 1.1.1.7 christos {
2184 1.1.1.7 christos exception_print (gdb_stderr, ex);
2185 1.1.1.7 christos warning (_("Initializing probes-based dynamic linker interface "
2186 1.1.1.7 christos "failed.\nReverting to original interface."));
2187 1.1.1.7 christos return false;
2188 1.1.1.7 christos }
2189 1.1.1.7 christos }
2190 1.1.1.7 christos }
2191 1.1.1.7 christos
2192 1.1.1.7 christos /* All probes found. Now create them. */
2193 1.1.1.8 christos solib_debug_printf ("using probes interface");
2194 1.1.1.7 christos svr4_create_probe_breakpoints (info, gdbarch, probes, os->objfile);
2195 1.1.1.7 christos return true;
2196 1.1.1.7 christos }
2197 1.1.1.7 christos
2198 1.1 christos /* Both the SunOS and the SVR4 dynamic linkers call a marker function
2199 1.1 christos before and after mapping and unmapping shared libraries. The sole
2200 1.1 christos purpose of this method is to allow debuggers to set a breakpoint so
2201 1.1 christos they can track these changes.
2202 1.1 christos
2203 1.1 christos Some versions of the glibc dynamic linker contain named probes
2204 1.1 christos to allow more fine grained stopping. Given the address of the
2205 1.1 christos original marker function, this function attempts to find these
2206 1.1 christos probes, and if found, sets breakpoints on those instead. If the
2207 1.1 christos probes aren't found, a single breakpoint is set on the original
2208 1.1 christos marker function. */
2209 1.1 christos
2210 1.1 christos static void
2211 1.1.1.7 christos svr4_create_solib_event_breakpoints (svr4_info *info, struct gdbarch *gdbarch,
2212 1.1 christos CORE_ADDR address)
2213 1.1 christos {
2214 1.1.1.7 christos struct obj_section *os = find_pc_section (address);
2215 1.1 christos
2216 1.1.1.7 christos if (os == nullptr
2217 1.1.1.7 christos || (!svr4_find_and_create_probe_breakpoints (info, gdbarch, os, false)
2218 1.1.1.7 christos && !svr4_find_and_create_probe_breakpoints (info, gdbarch, os, true)))
2219 1.1.1.8 christos {
2220 1.1.1.8 christos solib_debug_printf ("falling back to r_brk breakpoint: addr=%s",
2221 1.1.1.8 christos paddress (gdbarch, address));
2222 1.1.1.8 christos create_solib_event_breakpoint (gdbarch, address);
2223 1.1.1.8 christos }
2224 1.1 christos }
2225 1.1 christos
2226 1.1 christos /* Arrange for dynamic linker to hit breakpoint.
2227 1.1 christos
2228 1.1 christos Both the SunOS and the SVR4 dynamic linkers have, as part of their
2229 1.1 christos debugger interface, support for arranging for the inferior to hit
2230 1.1 christos a breakpoint after mapping in the shared libraries. This function
2231 1.1 christos enables that breakpoint.
2232 1.1 christos
2233 1.1 christos For SunOS, there is a special flag location (in_debugger) which we
2234 1.1 christos set to 1. When the dynamic linker sees this flag set, it will set
2235 1.1 christos a breakpoint at a location known only to itself, after saving the
2236 1.1 christos original contents of that place and the breakpoint address itself,
2237 1.1.1.9 christos in its own internal structures. When we resume the inferior, it
2238 1.1 christos will eventually take a SIGTRAP when it runs into the breakpoint.
2239 1.1 christos We handle this (in a different place) by restoring the contents of
2240 1.1 christos the breakpointed location (which is only known after it stops),
2241 1.1 christos chasing around to locate the shared libraries that have been
2242 1.1 christos loaded, then resuming.
2243 1.1 christos
2244 1.1 christos For SVR4, the debugger interface structure contains a member (r_brk)
2245 1.1 christos which is statically initialized at the time the shared library is
2246 1.1 christos built, to the offset of a function (_r_debug_state) which is guaran-
2247 1.1 christos teed to be called once before mapping in a library, and again when
2248 1.1 christos the mapping is complete. At the time we are examining this member,
2249 1.1 christos it contains only the unrelocated offset of the function, so we have
2250 1.1 christos to do our own relocation. Later, when the dynamic linker actually
2251 1.1 christos runs, it relocates r_brk to be the actual address of _r_debug_state().
2252 1.1 christos
2253 1.1 christos The debugger interface structure also contains an enumeration which
2254 1.1 christos is set to either RT_ADD or RT_DELETE prior to changing the mapping,
2255 1.1 christos depending upon whether or not the library is being mapped or unmapped,
2256 1.1 christos and then set to RT_CONSISTENT after the library is mapped/unmapped. */
2257 1.1 christos
2258 1.1 christos static int
2259 1.1 christos enable_break (struct svr4_info *info, int from_tty)
2260 1.1 christos {
2261 1.1 christos const char * const *bkpt_namep;
2262 1.1 christos asection *interp_sect;
2263 1.1 christos CORE_ADDR sym_addr;
2264 1.1 christos
2265 1.1 christos info->interp_text_sect_low = info->interp_text_sect_high = 0;
2266 1.1 christos info->interp_plt_sect_low = info->interp_plt_sect_high = 0;
2267 1.1 christos
2268 1.1 christos /* If we already have a shared library list in the target, and
2269 1.1 christos r_debug contains r_brk, set the breakpoint there - this should
2270 1.1 christos mean r_brk has already been relocated. Assume the dynamic linker
2271 1.1 christos is the object containing r_brk. */
2272 1.1 christos
2273 1.1.1.5 christos solib_add (NULL, from_tty, auto_solib_add);
2274 1.1 christos sym_addr = 0;
2275 1.1.1.8 christos if (info->debug_base && solib_svr4_r_map (info->debug_base) != 0)
2276 1.1 christos sym_addr = solib_svr4_r_brk (info);
2277 1.1 christos
2278 1.1 christos if (sym_addr != 0)
2279 1.1 christos {
2280 1.1 christos struct obj_section *os;
2281 1.1 christos
2282 1.1 christos sym_addr = gdbarch_addr_bits_remove
2283 1.1.1.9 christos (current_inferior ()->arch (),
2284 1.1.1.8 christos gdbarch_convert_from_func_ptr_addr
2285 1.1.1.9 christos (current_inferior ()->arch (), sym_addr,
2286 1.1.1.9 christos current_inferior ()->top_target ()));
2287 1.1 christos
2288 1.1 christos /* On at least some versions of Solaris there's a dynamic relocation
2289 1.1 christos on _r_debug.r_brk and SYM_ADDR may not be relocated yet, e.g., if
2290 1.1 christos we get control before the dynamic linker has self-relocated.
2291 1.1 christos Check if SYM_ADDR is in a known section, if it is assume we can
2292 1.1 christos trust its value. This is just a heuristic though, it could go away
2293 1.1 christos or be replaced if it's getting in the way.
2294 1.1 christos
2295 1.1 christos On ARM we need to know whether the ISA of rtld_db_dlactivity (or
2296 1.1 christos however it's spelled in your particular system) is ARM or Thumb.
2297 1.1 christos That knowledge is encoded in the address, if it's Thumb the low bit
2298 1.1 christos is 1. However, we've stripped that info above and it's not clear
2299 1.1 christos what all the consequences are of passing a non-addr_bits_remove'd
2300 1.1 christos address to svr4_create_solib_event_breakpoints. The call to
2301 1.1 christos find_pc_section verifies we know about the address and have some
2302 1.1 christos hope of computing the right kind of breakpoint to use (via
2303 1.1 christos symbol info). It does mean that GDB needs to be pointed at a
2304 1.1 christos non-stripped version of the dynamic linker in order to obtain
2305 1.1 christos information it already knows about. Sigh. */
2306 1.1 christos
2307 1.1 christos os = find_pc_section (sym_addr);
2308 1.1 christos if (os != NULL)
2309 1.1 christos {
2310 1.1 christos /* Record the relocated start and end address of the dynamic linker
2311 1.1 christos text and plt section for svr4_in_dynsym_resolve_code. */
2312 1.1 christos bfd *tmp_bfd;
2313 1.1 christos CORE_ADDR load_addr;
2314 1.1 christos
2315 1.1.1.8 christos tmp_bfd = os->objfile->obfd.get ();
2316 1.1.1.7 christos load_addr = os->objfile->text_section_offset ();
2317 1.1 christos
2318 1.1 christos interp_sect = bfd_get_section_by_name (tmp_bfd, ".text");
2319 1.1 christos if (interp_sect)
2320 1.1 christos {
2321 1.1.1.7 christos info->interp_text_sect_low
2322 1.1.1.7 christos = bfd_section_vma (interp_sect) + load_addr;
2323 1.1.1.7 christos info->interp_text_sect_high
2324 1.1.1.7 christos = info->interp_text_sect_low + bfd_section_size (interp_sect);
2325 1.1 christos }
2326 1.1 christos interp_sect = bfd_get_section_by_name (tmp_bfd, ".plt");
2327 1.1 christos if (interp_sect)
2328 1.1 christos {
2329 1.1.1.7 christos info->interp_plt_sect_low
2330 1.1.1.7 christos = bfd_section_vma (interp_sect) + load_addr;
2331 1.1.1.7 christos info->interp_plt_sect_high
2332 1.1.1.7 christos = info->interp_plt_sect_low + bfd_section_size (interp_sect);
2333 1.1 christos }
2334 1.1 christos
2335 1.1.1.9 christos svr4_create_solib_event_breakpoints
2336 1.1.1.9 christos (info, current_inferior ()->arch (), sym_addr);
2337 1.1 christos return 1;
2338 1.1 christos }
2339 1.1 christos }
2340 1.1 christos
2341 1.1 christos /* Find the program interpreter; if not found, warn the user and drop
2342 1.1 christos into the old breakpoint at symbol code. */
2343 1.1.1.9 christos std::optional<gdb::byte_vector> interp_name_holder
2344 1.1.1.6 christos = find_program_interpreter ();
2345 1.1.1.6 christos if (interp_name_holder)
2346 1.1 christos {
2347 1.1.1.6 christos const char *interp_name = (const char *) interp_name_holder->data ();
2348 1.1 christos CORE_ADDR load_addr = 0;
2349 1.1 christos int load_addr_found = 0;
2350 1.1 christos int loader_found_in_list = 0;
2351 1.1.1.9 christos target_ops_up tmp_bfd_target;
2352 1.1 christos
2353 1.1 christos sym_addr = 0;
2354 1.1 christos
2355 1.1 christos /* Now we need to figure out where the dynamic linker was
2356 1.1.1.8 christos loaded so that we can load its symbols and place a breakpoint
2357 1.1.1.8 christos in the dynamic linker itself.
2358 1.1 christos
2359 1.1.1.8 christos This address is stored on the stack. However, I've been unable
2360 1.1.1.8 christos to find any magic formula to find it for Solaris (appears to
2361 1.1.1.8 christos be trivial on GNU/Linux). Therefore, we have to try an alternate
2362 1.1.1.8 christos mechanism to find the dynamic linker's base address. */
2363 1.1 christos
2364 1.1.1.5 christos gdb_bfd_ref_ptr tmp_bfd;
2365 1.1.1.7 christos try
2366 1.1.1.8 christos {
2367 1.1 christos tmp_bfd = solib_bfd_open (interp_name);
2368 1.1 christos }
2369 1.1.1.7 christos catch (const gdb_exception &ex)
2370 1.1.1.3 christos {
2371 1.1.1.3 christos }
2372 1.1.1.3 christos
2373 1.1 christos if (tmp_bfd == NULL)
2374 1.1 christos goto bkpt_at_symbol;
2375 1.1 christos
2376 1.1 christos /* Now convert the TMP_BFD into a target. That way target, as
2377 1.1.1.8 christos well as BFD operations can be used. */
2378 1.1.1.8 christos tmp_bfd_target = target_bfd_reopen (tmp_bfd);
2379 1.1 christos
2380 1.1 christos /* On a running target, we can get the dynamic linker's base
2381 1.1.1.8 christos address from the shared library table. */
2382 1.1.1.9 christos for (const solib &so : current_program_space->solibs ())
2383 1.1 christos {
2384 1.1.1.9 christos if (svr4_same_1 (interp_name, so.so_original_name.c_str ()))
2385 1.1 christos {
2386 1.1 christos load_addr_found = 1;
2387 1.1 christos loader_found_in_list = 1;
2388 1.1.1.5 christos load_addr = lm_addr_check (so, tmp_bfd.get ());
2389 1.1 christos break;
2390 1.1 christos }
2391 1.1 christos }
2392 1.1 christos
2393 1.1 christos /* If we were not able to find the base address of the loader
2394 1.1.1.10 christos from our so_list, then try using the AT_BASE auxiliary entry. */
2395 1.1 christos if (!load_addr_found)
2396 1.1.1.8 christos if (target_auxv_search (AT_BASE, &load_addr) > 0)
2397 1.1 christos {
2398 1.1.1.9 christos int addr_bit = gdbarch_addr_bit (current_inferior ()->arch ());
2399 1.1 christos
2400 1.1 christos /* Ensure LOAD_ADDR has proper sign in its possible upper bits so
2401 1.1 christos that `+ load_addr' will overflow CORE_ADDR width not creating
2402 1.1 christos invalid addresses like 0x101234567 for 32bit inferiors on 64bit
2403 1.1 christos GDB. */
2404 1.1 christos
2405 1.1 christos if (addr_bit < (sizeof (CORE_ADDR) * HOST_CHAR_BIT))
2406 1.1 christos {
2407 1.1 christos CORE_ADDR space_size = (CORE_ADDR) 1 << addr_bit;
2408 1.1.1.9 christos CORE_ADDR tmp_entry_point
2409 1.1.1.9 christos = exec_entry_point (tmp_bfd.get (), tmp_bfd_target.get ());
2410 1.1 christos
2411 1.1 christos gdb_assert (load_addr < space_size);
2412 1.1 christos
2413 1.1 christos /* TMP_ENTRY_POINT exceeding SPACE_SIZE would be for prelinked
2414 1.1 christos 64bit ld.so with 32bit executable, it should not happen. */
2415 1.1 christos
2416 1.1 christos if (tmp_entry_point < space_size
2417 1.1 christos && tmp_entry_point + load_addr >= space_size)
2418 1.1 christos load_addr -= space_size;
2419 1.1 christos }
2420 1.1 christos
2421 1.1 christos load_addr_found = 1;
2422 1.1 christos }
2423 1.1 christos
2424 1.1 christos /* Otherwise we find the dynamic linker's base address by examining
2425 1.1 christos the current pc (which should point at the entry point for the
2426 1.1 christos dynamic linker) and subtracting the offset of the entry point.
2427 1.1 christos
2428 1.1.1.8 christos This is more fragile than the previous approaches, but is a good
2429 1.1.1.8 christos fallback method because it has actually been working well in
2430 1.1.1.8 christos most cases. */
2431 1.1 christos if (!load_addr_found)
2432 1.1 christos {
2433 1.1.1.9 christos regcache *regcache
2434 1.1.1.9 christos = get_thread_arch_regcache (current_inferior (), inferior_ptid,
2435 1.1.1.9 christos current_inferior ()->arch ());
2436 1.1 christos
2437 1.1 christos load_addr = (regcache_read_pc (regcache)
2438 1.1.1.9 christos - exec_entry_point (tmp_bfd.get (),
2439 1.1.1.9 christos tmp_bfd_target.get ()));
2440 1.1 christos }
2441 1.1 christos
2442 1.1 christos if (!loader_found_in_list)
2443 1.1 christos {
2444 1.1 christos info->debug_loader_name = xstrdup (interp_name);
2445 1.1 christos info->debug_loader_offset_p = 1;
2446 1.1 christos info->debug_loader_offset = load_addr;
2447 1.1.1.5 christos solib_add (NULL, from_tty, auto_solib_add);
2448 1.1 christos }
2449 1.1 christos
2450 1.1 christos /* Record the relocated start and end address of the dynamic linker
2451 1.1.1.8 christos text and plt section for svr4_in_dynsym_resolve_code. */
2452 1.1.1.5 christos interp_sect = bfd_get_section_by_name (tmp_bfd.get (), ".text");
2453 1.1 christos if (interp_sect)
2454 1.1 christos {
2455 1.1.1.7 christos info->interp_text_sect_low
2456 1.1.1.7 christos = bfd_section_vma (interp_sect) + load_addr;
2457 1.1.1.7 christos info->interp_text_sect_high
2458 1.1.1.7 christos = info->interp_text_sect_low + bfd_section_size (interp_sect);
2459 1.1 christos }
2460 1.1.1.5 christos interp_sect = bfd_get_section_by_name (tmp_bfd.get (), ".plt");
2461 1.1 christos if (interp_sect)
2462 1.1 christos {
2463 1.1.1.7 christos info->interp_plt_sect_low
2464 1.1.1.7 christos = bfd_section_vma (interp_sect) + load_addr;
2465 1.1.1.7 christos info->interp_plt_sect_high
2466 1.1.1.7 christos = info->interp_plt_sect_low + bfd_section_size (interp_sect);
2467 1.1 christos }
2468 1.1 christos
2469 1.1 christos /* Now try to set a breakpoint in the dynamic linker. */
2470 1.1 christos for (bkpt_namep = solib_break_names; *bkpt_namep != NULL; bkpt_namep++)
2471 1.1 christos {
2472 1.1.1.9 christos sym_addr
2473 1.1.1.9 christos = (gdb_bfd_lookup_symbol
2474 1.1.1.9 christos (tmp_bfd.get (),
2475 1.1.1.9 christos [=] (const asymbol *sym)
2476 1.1.1.9 christos {
2477 1.1.1.9 christos return (strcmp (sym->name, *bkpt_namep) == 0
2478 1.1.1.9 christos && ((sym->section->flags & (SEC_CODE | SEC_DATA))
2479 1.1.1.9 christos != 0));
2480 1.1.1.9 christos }));
2481 1.1 christos if (sym_addr != 0)
2482 1.1 christos break;
2483 1.1 christos }
2484 1.1 christos
2485 1.1 christos if (sym_addr != 0)
2486 1.1 christos /* Convert 'sym_addr' from a function pointer to an address.
2487 1.1 christos Because we pass tmp_bfd_target instead of the current
2488 1.1 christos target, this will always produce an unrelocated value. */
2489 1.1.1.9 christos sym_addr = gdbarch_convert_from_func_ptr_addr
2490 1.1.1.9 christos (current_inferior ()->arch (), sym_addr,
2491 1.1.1.9 christos tmp_bfd_target.get ());
2492 1.1 christos
2493 1.1 christos if (sym_addr != 0)
2494 1.1 christos {
2495 1.1.1.9 christos svr4_create_solib_event_breakpoints (info,
2496 1.1.1.9 christos current_inferior ()->arch (),
2497 1.1 christos load_addr + sym_addr);
2498 1.1 christos return 1;
2499 1.1 christos }
2500 1.1 christos
2501 1.1 christos /* For whatever reason we couldn't set a breakpoint in the dynamic
2502 1.1.1.8 christos linker. Warn and drop into the old code. */
2503 1.1 christos bkpt_at_symbol:
2504 1.1 christos warning (_("Unable to find dynamic linker breakpoint function.\n"
2505 1.1.1.8 christos "GDB will be unable to debug shared library initializers\n"
2506 1.1.1.8 christos "and track explicitly loaded dynamic code."));
2507 1.1 christos }
2508 1.1 christos
2509 1.1 christos /* Scan through the lists of symbols, trying to look up the symbol and
2510 1.1 christos set a breakpoint there. Terminate loop when we/if we succeed. */
2511 1.1 christos
2512 1.1.1.8 christos objfile *objf = current_program_space->symfile_object_file;
2513 1.1 christos for (bkpt_namep = solib_break_names; *bkpt_namep != NULL; bkpt_namep++)
2514 1.1 christos {
2515 1.1.1.10 christos bound_minimal_symbol msymbol
2516 1.1.1.10 christos = lookup_minimal_symbol (current_program_space, *bkpt_namep, objf);
2517 1.1.1.2 christos if ((msymbol.minsym != NULL)
2518 1.1.1.8 christos && (msymbol.value_address () != 0))
2519 1.1 christos {
2520 1.1.1.8 christos sym_addr = msymbol.value_address ();
2521 1.1.1.8 christos sym_addr = gdbarch_convert_from_func_ptr_addr
2522 1.1.1.9 christos (current_inferior ()->arch (), sym_addr,
2523 1.1.1.9 christos current_inferior ()->top_target ());
2524 1.1.1.9 christos svr4_create_solib_event_breakpoints (info,
2525 1.1.1.9 christos current_inferior ()->arch (),
2526 1.1.1.7 christos sym_addr);
2527 1.1 christos return 1;
2528 1.1 christos }
2529 1.1 christos }
2530 1.1 christos
2531 1.1.1.6 christos if (interp_name_holder && !current_inferior ()->attach_flag)
2532 1.1 christos {
2533 1.1 christos for (bkpt_namep = bkpt_names; *bkpt_namep != NULL; bkpt_namep++)
2534 1.1 christos {
2535 1.1.1.10 christos bound_minimal_symbol msymbol
2536 1.1.1.10 christos = lookup_minimal_symbol (current_program_space, *bkpt_namep, objf);
2537 1.1.1.2 christos if ((msymbol.minsym != NULL)
2538 1.1.1.8 christos && (msymbol.value_address () != 0))
2539 1.1 christos {
2540 1.1.1.8 christos sym_addr = msymbol.value_address ();
2541 1.1.1.8 christos sym_addr = gdbarch_convert_from_func_ptr_addr
2542 1.1.1.9 christos (current_inferior ()->arch (), sym_addr,
2543 1.1.1.8 christos current_inferior ()->top_target ());
2544 1.1.1.9 christos svr4_create_solib_event_breakpoints
2545 1.1.1.9 christos (info, current_inferior ()->arch (), sym_addr);
2546 1.1 christos return 1;
2547 1.1 christos }
2548 1.1 christos }
2549 1.1 christos }
2550 1.1 christos return 0;
2551 1.1 christos }
2552 1.1 christos
2553 1.1.1.6 christos /* Read the ELF program headers from ABFD. */
2554 1.1 christos
2555 1.1.1.9 christos static std::optional<gdb::byte_vector>
2556 1.1.1.6 christos read_program_headers_from_bfd (bfd *abfd)
2557 1.1 christos {
2558 1.1.1.6 christos Elf_Internal_Ehdr *ehdr = elf_elfheader (abfd);
2559 1.1.1.6 christos int phdrs_size = ehdr->e_phnum * ehdr->e_phentsize;
2560 1.1.1.6 christos if (phdrs_size == 0)
2561 1.1.1.6 christos return {};
2562 1.1 christos
2563 1.1.1.6 christos gdb::byte_vector buf (phdrs_size);
2564 1.1 christos if (bfd_seek (abfd, ehdr->e_phoff, SEEK_SET) != 0
2565 1.1.1.9 christos || bfd_read (buf.data (), phdrs_size, abfd) != phdrs_size)
2566 1.1.1.6 christos return {};
2567 1.1 christos
2568 1.1 christos return buf;
2569 1.1 christos }
2570 1.1 christos
2571 1.1 christos /* Return 1 and fill *DISPLACEMENTP with detected PIE offset of inferior
2572 1.1 christos exec_bfd. Otherwise return 0.
2573 1.1 christos
2574 1.1 christos We relocate all of the sections by the same amount. This
2575 1.1 christos behavior is mandated by recent editions of the System V ABI.
2576 1.1 christos According to the System V Application Binary Interface,
2577 1.1 christos Edition 4.1, page 5-5:
2578 1.1 christos
2579 1.1 christos ... Though the system chooses virtual addresses for
2580 1.1 christos individual processes, it maintains the segments' relative
2581 1.1 christos positions. Because position-independent code uses relative
2582 1.1.1.7 christos addressing between segments, the difference between
2583 1.1 christos virtual addresses in memory must match the difference
2584 1.1 christos between virtual addresses in the file. The difference
2585 1.1 christos between the virtual address of any segment in memory and
2586 1.1 christos the corresponding virtual address in the file is thus a
2587 1.1 christos single constant value for any one executable or shared
2588 1.1 christos object in a given process. This difference is the base
2589 1.1 christos address. One use of the base address is to relocate the
2590 1.1 christos memory image of the program during dynamic linking.
2591 1.1 christos
2592 1.1 christos The same language also appears in Edition 4.0 of the System V
2593 1.1 christos ABI and is left unspecified in some of the earlier editions.
2594 1.1 christos
2595 1.1 christos Decide if the objfile needs to be relocated. As indicated above, we will
2596 1.1 christos only be here when execution is stopped. But during attachment PC can be at
2597 1.1 christos arbitrary address therefore regcache_read_pc can be misleading (contrary to
2598 1.1 christos the auxv AT_ENTRY value). Moreover for executable with interpreter section
2599 1.1 christos regcache_read_pc would point to the interpreter and not the main executable.
2600 1.1 christos
2601 1.1 christos So, to summarize, relocations are necessary when the start address obtained
2602 1.1 christos from the executable is different from the address in auxv AT_ENTRY entry.
2603 1.1 christos
2604 1.1 christos [ The astute reader will note that we also test to make sure that
2605 1.1 christos the executable in question has the DYNAMIC flag set. It is my
2606 1.1 christos opinion that this test is unnecessary (undesirable even). It
2607 1.1 christos was added to avoid inadvertent relocation of an executable
2608 1.1 christos whose e_type member in the ELF header is not ET_DYN. There may
2609 1.1 christos be a time in the future when it is desirable to do relocations
2610 1.1 christos on other types of files as well in which case this condition
2611 1.1.1.9 christos should either be removed or modified to accommodate the new file
2612 1.1 christos type. - Kevin, Nov 2000. ] */
2613 1.1 christos
2614 1.1 christos static int
2615 1.1 christos svr4_exec_displacement (CORE_ADDR *displacementp)
2616 1.1 christos {
2617 1.1 christos /* ENTRY_POINT is a possible function descriptor - before
2618 1.1 christos a call to gdbarch_convert_from_func_ptr_addr. */
2619 1.1.1.3 christos CORE_ADDR entry_point, exec_displacement;
2620 1.1 christos
2621 1.1.1.8 christos if (current_program_space->exec_bfd () == NULL)
2622 1.1 christos return 0;
2623 1.1 christos
2624 1.1 christos /* Therefore for ELF it is ET_EXEC and not ET_DYN. Both shared libraries
2625 1.1 christos being executed themselves and PIE (Position Independent Executable)
2626 1.1 christos executables are ET_DYN. */
2627 1.1 christos
2628 1.1.1.8 christos if ((bfd_get_file_flags (current_program_space->exec_bfd ()) & DYNAMIC) == 0)
2629 1.1 christos return 0;
2630 1.1 christos
2631 1.1.1.8 christos if (target_auxv_search (AT_ENTRY, &entry_point) <= 0)
2632 1.1 christos return 0;
2633 1.1 christos
2634 1.1.1.8 christos exec_displacement
2635 1.1.1.8 christos = entry_point - bfd_get_start_address (current_program_space->exec_bfd ());
2636 1.1 christos
2637 1.1.1.3 christos /* Verify the EXEC_DISPLACEMENT candidate complies with the required page
2638 1.1 christos alignment. It is cheaper than the program headers comparison below. */
2639 1.1 christos
2640 1.1.1.8 christos if (bfd_get_flavour (current_program_space->exec_bfd ())
2641 1.1.1.8 christos == bfd_target_elf_flavour)
2642 1.1 christos {
2643 1.1.1.8 christos const struct elf_backend_data *elf
2644 1.1.1.8 christos = get_elf_backend_data (current_program_space->exec_bfd ());
2645 1.1 christos
2646 1.1 christos /* p_align of PT_LOAD segments does not specify any alignment but
2647 1.1 christos only congruency of addresses:
2648 1.1 christos p_offset % p_align == p_vaddr % p_align
2649 1.1 christos Kernel is free to load the executable with lower alignment. */
2650 1.1 christos
2651 1.1.1.3 christos if ((exec_displacement & (elf->minpagesize - 1)) != 0)
2652 1.1 christos return 0;
2653 1.1 christos }
2654 1.1 christos
2655 1.1.1.10 christos /* Verify that the auxiliary vector describes the same file as exec_bfd, by
2656 1.1.1.10 christos comparing their program headers. If the program headers in the auxiliary
2657 1.1 christos vector do not match the program headers in the executable, then we are
2658 1.1 christos looking at a different file than the one used by the kernel - for
2659 1.1 christos instance, "gdb program" connected to "gdbserver :PORT ld.so program". */
2660 1.1 christos
2661 1.1.1.8 christos if (bfd_get_flavour (current_program_space->exec_bfd ())
2662 1.1.1.8 christos == bfd_target_elf_flavour)
2663 1.1 christos {
2664 1.1.1.6 christos /* Be optimistic and return 0 only if GDB was able to verify the headers
2665 1.1 christos really do not match. */
2666 1.1 christos int arch_size;
2667 1.1 christos
2668 1.1.1.9 christos std::optional<gdb::byte_vector> phdrs_target
2669 1.1.1.6 christos = read_program_header (-1, &arch_size, NULL);
2670 1.1.1.9 christos std::optional<gdb::byte_vector> phdrs_binary
2671 1.1.1.8 christos = read_program_headers_from_bfd (current_program_space->exec_bfd ());
2672 1.1.1.6 christos if (phdrs_target && phdrs_binary)
2673 1.1 christos {
2674 1.1.1.9 christos bfd_endian byte_order = gdbarch_byte_order (current_inferior ()->arch ());
2675 1.1 christos
2676 1.1 christos /* We are dealing with three different addresses. EXEC_BFD
2677 1.1 christos represents current address in on-disk file. target memory content
2678 1.1 christos may be different from EXEC_BFD as the file may have been prelinked
2679 1.1 christos to a different address after the executable has been loaded.
2680 1.1 christos Moreover the address of placement in target memory can be
2681 1.1 christos different from what the program headers in target memory say -
2682 1.1 christos this is the goal of PIE.
2683 1.1 christos
2684 1.1 christos Detected DISPLACEMENT covers both the offsets of PIE placement and
2685 1.1 christos possible new prelink performed after start of the program. Here
2686 1.1 christos relocate BUF and BUF2 just by the EXEC_BFD vs. target memory
2687 1.1 christos content offset for the verification purpose. */
2688 1.1 christos
2689 1.1.1.6 christos if (phdrs_target->size () != phdrs_binary->size ()
2690 1.1.1.8 christos || bfd_get_arch_size (current_program_space->exec_bfd ()) != arch_size)
2691 1.1.1.6 christos return 0;
2692 1.1 christos else if (arch_size == 32
2693 1.1.1.6 christos && phdrs_target->size () >= sizeof (Elf32_External_Phdr)
2694 1.1.1.8 christos && phdrs_target->size () % sizeof (Elf32_External_Phdr) == 0)
2695 1.1 christos {
2696 1.1.1.8 christos Elf_Internal_Ehdr *ehdr2
2697 1.1.1.8 christos = elf_tdata (current_program_space->exec_bfd ())->elf_header;
2698 1.1.1.8 christos Elf_Internal_Phdr *phdr2
2699 1.1.1.8 christos = elf_tdata (current_program_space->exec_bfd ())->phdr;
2700 1.1 christos CORE_ADDR displacement = 0;
2701 1.1 christos int i;
2702 1.1 christos
2703 1.1 christos /* DISPLACEMENT could be found more easily by the difference of
2704 1.1 christos ehdr2->e_entry. But we haven't read the ehdr yet, and we
2705 1.1 christos already have enough information to compute that displacement
2706 1.1 christos with what we've read. */
2707 1.1 christos
2708 1.1 christos for (i = 0; i < ehdr2->e_phnum; i++)
2709 1.1 christos if (phdr2[i].p_type == PT_LOAD)
2710 1.1 christos {
2711 1.1 christos Elf32_External_Phdr *phdrp;
2712 1.1 christos gdb_byte *buf_vaddr_p, *buf_paddr_p;
2713 1.1 christos CORE_ADDR vaddr, paddr;
2714 1.1 christos CORE_ADDR displacement_vaddr = 0;
2715 1.1 christos CORE_ADDR displacement_paddr = 0;
2716 1.1 christos
2717 1.1.1.6 christos phdrp = &((Elf32_External_Phdr *) phdrs_target->data ())[i];
2718 1.1 christos buf_vaddr_p = (gdb_byte *) &phdrp->p_vaddr;
2719 1.1 christos buf_paddr_p = (gdb_byte *) &phdrp->p_paddr;
2720 1.1 christos
2721 1.1 christos vaddr = extract_unsigned_integer (buf_vaddr_p, 4,
2722 1.1 christos byte_order);
2723 1.1 christos displacement_vaddr = vaddr - phdr2[i].p_vaddr;
2724 1.1 christos
2725 1.1 christos paddr = extract_unsigned_integer (buf_paddr_p, 4,
2726 1.1 christos byte_order);
2727 1.1 christos displacement_paddr = paddr - phdr2[i].p_paddr;
2728 1.1 christos
2729 1.1 christos if (displacement_vaddr == displacement_paddr)
2730 1.1 christos displacement = displacement_vaddr;
2731 1.1 christos
2732 1.1 christos break;
2733 1.1 christos }
2734 1.1 christos
2735 1.1.1.6 christos /* Now compare program headers from the target and the binary
2736 1.1.1.8 christos with optional DISPLACEMENT. */
2737 1.1 christos
2738 1.1.1.6 christos for (i = 0;
2739 1.1.1.6 christos i < phdrs_target->size () / sizeof (Elf32_External_Phdr);
2740 1.1.1.6 christos i++)
2741 1.1 christos {
2742 1.1 christos Elf32_External_Phdr *phdrp;
2743 1.1 christos Elf32_External_Phdr *phdr2p;
2744 1.1 christos gdb_byte *buf_vaddr_p, *buf_paddr_p;
2745 1.1 christos CORE_ADDR vaddr, paddr;
2746 1.1 christos asection *plt2_asect;
2747 1.1 christos
2748 1.1.1.6 christos phdrp = &((Elf32_External_Phdr *) phdrs_target->data ())[i];
2749 1.1 christos buf_vaddr_p = (gdb_byte *) &phdrp->p_vaddr;
2750 1.1 christos buf_paddr_p = (gdb_byte *) &phdrp->p_paddr;
2751 1.1.1.6 christos phdr2p = &((Elf32_External_Phdr *) phdrs_binary->data ())[i];
2752 1.1 christos
2753 1.1 christos /* PT_GNU_STACK is an exception by being never relocated by
2754 1.1 christos prelink as its addresses are always zero. */
2755 1.1 christos
2756 1.1 christos if (memcmp (phdrp, phdr2p, sizeof (*phdrp)) == 0)
2757 1.1 christos continue;
2758 1.1 christos
2759 1.1 christos /* Check also other adjustment combinations - PR 11786. */
2760 1.1 christos
2761 1.1 christos vaddr = extract_unsigned_integer (buf_vaddr_p, 4,
2762 1.1 christos byte_order);
2763 1.1 christos vaddr -= displacement;
2764 1.1 christos store_unsigned_integer (buf_vaddr_p, 4, byte_order, vaddr);
2765 1.1 christos
2766 1.1 christos paddr = extract_unsigned_integer (buf_paddr_p, 4,
2767 1.1 christos byte_order);
2768 1.1 christos paddr -= displacement;
2769 1.1 christos store_unsigned_integer (buf_paddr_p, 4, byte_order, paddr);
2770 1.1 christos
2771 1.1 christos if (memcmp (phdrp, phdr2p, sizeof (*phdrp)) == 0)
2772 1.1 christos continue;
2773 1.1 christos
2774 1.1 christos /* Strip modifies the flags and alignment of PT_GNU_RELRO.
2775 1.1 christos CentOS-5 has problems with filesz, memsz as well.
2776 1.1.1.6 christos Strip also modifies memsz of PT_TLS.
2777 1.1 christos See PR 11786. */
2778 1.1.1.6 christos if (phdr2[i].p_type == PT_GNU_RELRO
2779 1.1.1.6 christos || phdr2[i].p_type == PT_TLS)
2780 1.1 christos {
2781 1.1 christos Elf32_External_Phdr tmp_phdr = *phdrp;
2782 1.1 christos Elf32_External_Phdr tmp_phdr2 = *phdr2p;
2783 1.1 christos
2784 1.1 christos memset (tmp_phdr.p_filesz, 0, 4);
2785 1.1 christos memset (tmp_phdr.p_memsz, 0, 4);
2786 1.1 christos memset (tmp_phdr.p_flags, 0, 4);
2787 1.1 christos memset (tmp_phdr.p_align, 0, 4);
2788 1.1 christos memset (tmp_phdr2.p_filesz, 0, 4);
2789 1.1 christos memset (tmp_phdr2.p_memsz, 0, 4);
2790 1.1 christos memset (tmp_phdr2.p_flags, 0, 4);
2791 1.1 christos memset (tmp_phdr2.p_align, 0, 4);
2792 1.1 christos
2793 1.1 christos if (memcmp (&tmp_phdr, &tmp_phdr2, sizeof (tmp_phdr))
2794 1.1 christos == 0)
2795 1.1 christos continue;
2796 1.1 christos }
2797 1.1 christos
2798 1.1 christos /* prelink can convert .plt SHT_NOBITS to SHT_PROGBITS. */
2799 1.1.1.8 christos bfd *exec_bfd = current_program_space->exec_bfd ();
2800 1.1 christos plt2_asect = bfd_get_section_by_name (exec_bfd, ".plt");
2801 1.1 christos if (plt2_asect)
2802 1.1 christos {
2803 1.1 christos int content2;
2804 1.1 christos gdb_byte *buf_filesz_p = (gdb_byte *) &phdrp->p_filesz;
2805 1.1 christos CORE_ADDR filesz;
2806 1.1 christos
2807 1.1.1.7 christos content2 = (bfd_section_flags (plt2_asect)
2808 1.1 christos & SEC_HAS_CONTENTS) != 0;
2809 1.1 christos
2810 1.1 christos filesz = extract_unsigned_integer (buf_filesz_p, 4,
2811 1.1 christos byte_order);
2812 1.1 christos
2813 1.1 christos /* PLT2_ASECT is from on-disk file (exec_bfd) while
2814 1.1 christos FILESZ is from the in-memory image. */
2815 1.1 christos if (content2)
2816 1.1.1.7 christos filesz += bfd_section_size (plt2_asect);
2817 1.1 christos else
2818 1.1.1.7 christos filesz -= bfd_section_size (plt2_asect);
2819 1.1 christos
2820 1.1 christos store_unsigned_integer (buf_filesz_p, 4, byte_order,
2821 1.1 christos filesz);
2822 1.1 christos
2823 1.1 christos if (memcmp (phdrp, phdr2p, sizeof (*phdrp)) == 0)
2824 1.1 christos continue;
2825 1.1 christos }
2826 1.1 christos
2827 1.1.1.6 christos return 0;
2828 1.1 christos }
2829 1.1 christos }
2830 1.1 christos else if (arch_size == 64
2831 1.1.1.6 christos && phdrs_target->size () >= sizeof (Elf64_External_Phdr)
2832 1.1.1.8 christos && phdrs_target->size () % sizeof (Elf64_External_Phdr) == 0)
2833 1.1 christos {
2834 1.1.1.8 christos Elf_Internal_Ehdr *ehdr2
2835 1.1.1.8 christos = elf_tdata (current_program_space->exec_bfd ())->elf_header;
2836 1.1.1.8 christos Elf_Internal_Phdr *phdr2
2837 1.1.1.8 christos = elf_tdata (current_program_space->exec_bfd ())->phdr;
2838 1.1 christos CORE_ADDR displacement = 0;
2839 1.1 christos int i;
2840 1.1 christos
2841 1.1 christos /* DISPLACEMENT could be found more easily by the difference of
2842 1.1 christos ehdr2->e_entry. But we haven't read the ehdr yet, and we
2843 1.1 christos already have enough information to compute that displacement
2844 1.1 christos with what we've read. */
2845 1.1 christos
2846 1.1 christos for (i = 0; i < ehdr2->e_phnum; i++)
2847 1.1 christos if (phdr2[i].p_type == PT_LOAD)
2848 1.1 christos {
2849 1.1 christos Elf64_External_Phdr *phdrp;
2850 1.1 christos gdb_byte *buf_vaddr_p, *buf_paddr_p;
2851 1.1 christos CORE_ADDR vaddr, paddr;
2852 1.1 christos CORE_ADDR displacement_vaddr = 0;
2853 1.1 christos CORE_ADDR displacement_paddr = 0;
2854 1.1 christos
2855 1.1.1.6 christos phdrp = &((Elf64_External_Phdr *) phdrs_target->data ())[i];
2856 1.1 christos buf_vaddr_p = (gdb_byte *) &phdrp->p_vaddr;
2857 1.1 christos buf_paddr_p = (gdb_byte *) &phdrp->p_paddr;
2858 1.1 christos
2859 1.1 christos vaddr = extract_unsigned_integer (buf_vaddr_p, 8,
2860 1.1 christos byte_order);
2861 1.1 christos displacement_vaddr = vaddr - phdr2[i].p_vaddr;
2862 1.1 christos
2863 1.1 christos paddr = extract_unsigned_integer (buf_paddr_p, 8,
2864 1.1 christos byte_order);
2865 1.1 christos displacement_paddr = paddr - phdr2[i].p_paddr;
2866 1.1 christos
2867 1.1 christos if (displacement_vaddr == displacement_paddr)
2868 1.1 christos displacement = displacement_vaddr;
2869 1.1 christos
2870 1.1 christos break;
2871 1.1 christos }
2872 1.1 christos
2873 1.1 christos /* Now compare BUF and BUF2 with optional DISPLACEMENT. */
2874 1.1 christos
2875 1.1.1.6 christos for (i = 0;
2876 1.1.1.6 christos i < phdrs_target->size () / sizeof (Elf64_External_Phdr);
2877 1.1.1.6 christos i++)
2878 1.1 christos {
2879 1.1 christos Elf64_External_Phdr *phdrp;
2880 1.1 christos Elf64_External_Phdr *phdr2p;
2881 1.1 christos gdb_byte *buf_vaddr_p, *buf_paddr_p;
2882 1.1 christos CORE_ADDR vaddr, paddr;
2883 1.1 christos asection *plt2_asect;
2884 1.1 christos
2885 1.1.1.6 christos phdrp = &((Elf64_External_Phdr *) phdrs_target->data ())[i];
2886 1.1 christos buf_vaddr_p = (gdb_byte *) &phdrp->p_vaddr;
2887 1.1 christos buf_paddr_p = (gdb_byte *) &phdrp->p_paddr;
2888 1.1.1.6 christos phdr2p = &((Elf64_External_Phdr *) phdrs_binary->data ())[i];
2889 1.1 christos
2890 1.1 christos /* PT_GNU_STACK is an exception by being never relocated by
2891 1.1 christos prelink as its addresses are always zero. */
2892 1.1 christos
2893 1.1 christos if (memcmp (phdrp, phdr2p, sizeof (*phdrp)) == 0)
2894 1.1 christos continue;
2895 1.1 christos
2896 1.1 christos /* Check also other adjustment combinations - PR 11786. */
2897 1.1 christos
2898 1.1 christos vaddr = extract_unsigned_integer (buf_vaddr_p, 8,
2899 1.1 christos byte_order);
2900 1.1 christos vaddr -= displacement;
2901 1.1 christos store_unsigned_integer (buf_vaddr_p, 8, byte_order, vaddr);
2902 1.1 christos
2903 1.1 christos paddr = extract_unsigned_integer (buf_paddr_p, 8,
2904 1.1 christos byte_order);
2905 1.1 christos paddr -= displacement;
2906 1.1 christos store_unsigned_integer (buf_paddr_p, 8, byte_order, paddr);
2907 1.1 christos
2908 1.1 christos if (memcmp (phdrp, phdr2p, sizeof (*phdrp)) == 0)
2909 1.1 christos continue;
2910 1.1 christos
2911 1.1 christos /* Strip modifies the flags and alignment of PT_GNU_RELRO.
2912 1.1 christos CentOS-5 has problems with filesz, memsz as well.
2913 1.1.1.6 christos Strip also modifies memsz of PT_TLS.
2914 1.1 christos See PR 11786. */
2915 1.1.1.6 christos if (phdr2[i].p_type == PT_GNU_RELRO
2916 1.1.1.6 christos || phdr2[i].p_type == PT_TLS)
2917 1.1 christos {
2918 1.1 christos Elf64_External_Phdr tmp_phdr = *phdrp;
2919 1.1 christos Elf64_External_Phdr tmp_phdr2 = *phdr2p;
2920 1.1 christos
2921 1.1 christos memset (tmp_phdr.p_filesz, 0, 8);
2922 1.1 christos memset (tmp_phdr.p_memsz, 0, 8);
2923 1.1 christos memset (tmp_phdr.p_flags, 0, 4);
2924 1.1 christos memset (tmp_phdr.p_align, 0, 8);
2925 1.1 christos memset (tmp_phdr2.p_filesz, 0, 8);
2926 1.1 christos memset (tmp_phdr2.p_memsz, 0, 8);
2927 1.1 christos memset (tmp_phdr2.p_flags, 0, 4);
2928 1.1 christos memset (tmp_phdr2.p_align, 0, 8);
2929 1.1 christos
2930 1.1 christos if (memcmp (&tmp_phdr, &tmp_phdr2, sizeof (tmp_phdr))
2931 1.1 christos == 0)
2932 1.1 christos continue;
2933 1.1 christos }
2934 1.1 christos
2935 1.1 christos /* prelink can convert .plt SHT_NOBITS to SHT_PROGBITS. */
2936 1.1.1.8 christos plt2_asect
2937 1.1.1.8 christos = bfd_get_section_by_name (current_program_space->exec_bfd (),
2938 1.1.1.8 christos ".plt");
2939 1.1 christos if (plt2_asect)
2940 1.1 christos {
2941 1.1 christos int content2;
2942 1.1 christos gdb_byte *buf_filesz_p = (gdb_byte *) &phdrp->p_filesz;
2943 1.1 christos CORE_ADDR filesz;
2944 1.1 christos
2945 1.1.1.7 christos content2 = (bfd_section_flags (plt2_asect)
2946 1.1 christos & SEC_HAS_CONTENTS) != 0;
2947 1.1 christos
2948 1.1 christos filesz = extract_unsigned_integer (buf_filesz_p, 8,
2949 1.1 christos byte_order);
2950 1.1 christos
2951 1.1.1.8 christos /* PLT2_ASECT is from on-disk file (current
2952 1.1.1.8 christos exec_bfd) while FILESZ is from the in-memory
2953 1.1.1.8 christos image. */
2954 1.1 christos if (content2)
2955 1.1.1.7 christos filesz += bfd_section_size (plt2_asect);
2956 1.1 christos else
2957 1.1.1.7 christos filesz -= bfd_section_size (plt2_asect);
2958 1.1 christos
2959 1.1 christos store_unsigned_integer (buf_filesz_p, 8, byte_order,
2960 1.1 christos filesz);
2961 1.1 christos
2962 1.1 christos if (memcmp (phdrp, phdr2p, sizeof (*phdrp)) == 0)
2963 1.1 christos continue;
2964 1.1 christos }
2965 1.1 christos
2966 1.1.1.6 christos return 0;
2967 1.1 christos }
2968 1.1 christos }
2969 1.1 christos else
2970 1.1.1.6 christos return 0;
2971 1.1 christos }
2972 1.1 christos }
2973 1.1 christos
2974 1.1 christos if (info_verbose)
2975 1.1 christos {
2976 1.1 christos /* It can be printed repeatedly as there is no easy way to check
2977 1.1 christos the executable symbols/file has been already relocated to
2978 1.1 christos displacement. */
2979 1.1 christos
2980 1.1.1.8 christos gdb_printf (_("Using PIE (Position Independent Executable) "
2981 1.1.1.8 christos "displacement %s for \"%s\".\n"),
2982 1.1.1.9 christos paddress (current_inferior ()->arch (), exec_displacement),
2983 1.1.1.8 christos bfd_get_filename (current_program_space->exec_bfd ()));
2984 1.1 christos }
2985 1.1 christos
2986 1.1.1.3 christos *displacementp = exec_displacement;
2987 1.1 christos return 1;
2988 1.1 christos }
2989 1.1 christos
2990 1.1 christos /* Relocate the main executable. This function should be called upon
2991 1.1 christos stopping the inferior process at the entry point to the program.
2992 1.1 christos The entry point from BFD is compared to the AT_ENTRY of AUXV and if they are
2993 1.1 christos different, the main executable is relocated by the proper amount. */
2994 1.1 christos
2995 1.1 christos static void
2996 1.1 christos svr4_relocate_main_executable (void)
2997 1.1 christos {
2998 1.1 christos CORE_ADDR displacement;
2999 1.1 christos
3000 1.1 christos /* If we are re-running this executable, SYMFILE_OBJFILE->SECTION_OFFSETS
3001 1.1 christos probably contains the offsets computed using the PIE displacement
3002 1.1 christos from the previous run, which of course are irrelevant for this run.
3003 1.1 christos So we need to determine the new PIE displacement and recompute the
3004 1.1 christos section offsets accordingly, even if SYMFILE_OBJFILE->SECTION_OFFSETS
3005 1.1 christos already contains pre-computed offsets.
3006 1.1 christos
3007 1.1 christos If we cannot compute the PIE displacement, either:
3008 1.1 christos
3009 1.1 christos - The executable is not PIE.
3010 1.1 christos
3011 1.1 christos - SYMFILE_OBJFILE does not match the executable started in the target.
3012 1.1 christos This can happen for main executable symbols loaded at the host while
3013 1.1 christos `ld.so --ld-args main-executable' is loaded in the target.
3014 1.1 christos
3015 1.1 christos Then we leave the section offsets untouched and use them as is for
3016 1.1 christos this run. Either:
3017 1.1 christos
3018 1.1 christos - These section offsets were properly reset earlier, and thus
3019 1.1 christos already contain the correct values. This can happen for instance
3020 1.1 christos when reconnecting via the remote protocol to a target that supports
3021 1.1 christos the `qOffsets' packet.
3022 1.1 christos
3023 1.1 christos - The section offsets were not reset earlier, and the best we can
3024 1.1 christos hope is that the old offsets are still applicable to the new run. */
3025 1.1 christos
3026 1.1 christos if (! svr4_exec_displacement (&displacement))
3027 1.1 christos return;
3028 1.1 christos
3029 1.1 christos /* Even DISPLACEMENT 0 is a valid new difference of in-memory vs. in-file
3030 1.1 christos addresses. */
3031 1.1 christos
3032 1.1.1.8 christos objfile *objf = current_program_space->symfile_object_file;
3033 1.1.1.8 christos if (objf)
3034 1.1 christos {
3035 1.1.1.8 christos section_offsets new_offsets (objf->section_offsets.size (),
3036 1.1.1.7 christos displacement);
3037 1.1.1.8 christos objfile_relocate (objf, new_offsets);
3038 1.1 christos }
3039 1.1.1.8 christos else if (current_program_space->exec_bfd ())
3040 1.1 christos {
3041 1.1 christos asection *asect;
3042 1.1 christos
3043 1.1.1.8 christos bfd *exec_bfd = current_program_space->exec_bfd ();
3044 1.1 christos for (asect = exec_bfd->sections; asect != NULL; asect = asect->next)
3045 1.1 christos exec_set_section_address (bfd_get_filename (exec_bfd), asect->index,
3046 1.1.1.7 christos bfd_section_vma (asect) + displacement);
3047 1.1 christos }
3048 1.1 christos }
3049 1.1 christos
3050 1.1 christos /* Implement the "create_inferior_hook" target_solib_ops method.
3051 1.1 christos
3052 1.1 christos For SVR4 executables, this first instruction is either the first
3053 1.1 christos instruction in the dynamic linker (for dynamically linked
3054 1.1 christos executables) or the instruction at "start" for statically linked
3055 1.1 christos executables. For dynamically linked executables, the system
3056 1.1 christos first exec's /lib/libc.so.N, which contains the dynamic linker,
3057 1.1 christos and starts it running. The dynamic linker maps in any needed
3058 1.1 christos shared libraries, maps in the actual user executable, and then
3059 1.1 christos jumps to "start" in the user executable.
3060 1.1 christos
3061 1.1 christos We can arrange to cooperate with the dynamic linker to discover the
3062 1.1 christos names of shared libraries that are dynamically linked, and the base
3063 1.1 christos addresses to which they are linked.
3064 1.1 christos
3065 1.1 christos This function is responsible for discovering those names and
3066 1.1 christos addresses, and saving sufficient information about them to allow
3067 1.1 christos their symbols to be read at a later time. */
3068 1.1 christos
3069 1.1 christos static void
3070 1.1 christos svr4_solib_create_inferior_hook (int from_tty)
3071 1.1 christos {
3072 1.1 christos struct svr4_info *info;
3073 1.1 christos
3074 1.1.1.7 christos info = get_svr4_info (current_program_space);
3075 1.1 christos
3076 1.1 christos /* Clear the probes-based interface's state. */
3077 1.1 christos free_probes_table (info);
3078 1.1.1.9 christos info->solib_lists.clear ();
3079 1.1 christos
3080 1.1 christos /* Relocate the main executable if necessary. */
3081 1.1 christos svr4_relocate_main_executable ();
3082 1.1 christos
3083 1.1 christos /* No point setting a breakpoint in the dynamic linker if we can't
3084 1.1 christos hit it (e.g., a core file, or a trace file). */
3085 1.1.1.8 christos if (!target_has_execution ())
3086 1.1 christos return;
3087 1.1 christos
3088 1.1 christos if (!svr4_have_link_map_offsets ())
3089 1.1 christos return;
3090 1.1 christos
3091 1.1 christos if (!enable_break (info, from_tty))
3092 1.1 christos return;
3093 1.1 christos }
3094 1.1 christos
3095 1.1 christos static void
3096 1.1.1.9 christos svr4_clear_solib (program_space *pspace)
3097 1.1 christos {
3098 1.1.1.9 christos svr4_info *info = get_svr4_info (pspace);
3099 1.1 christos info->debug_base = 0;
3100 1.1 christos info->debug_loader_offset_p = 0;
3101 1.1 christos info->debug_loader_offset = 0;
3102 1.1 christos xfree (info->debug_loader_name);
3103 1.1 christos info->debug_loader_name = NULL;
3104 1.1 christos }
3105 1.1 christos
3106 1.1 christos /* Clear any bits of ADDR that wouldn't fit in a target-format
3107 1.1 christos data pointer. "Data pointer" here refers to whatever sort of
3108 1.1 christos address the dynamic linker uses to manage its sections. At the
3109 1.1 christos moment, we don't support shared libraries on any processors where
3110 1.1 christos code and data pointers are different sizes.
3111 1.1 christos
3112 1.1 christos This isn't really the right solution. What we really need here is
3113 1.1 christos a way to do arithmetic on CORE_ADDR values that respects the
3114 1.1 christos natural pointer/address correspondence. (For example, on the MIPS,
3115 1.1 christos converting a 32-bit pointer to a 64-bit CORE_ADDR requires you to
3116 1.1 christos sign-extend the value. There, simply truncating the bits above
3117 1.1 christos gdbarch_ptr_bit, as we do below, is no good.) This should probably
3118 1.1 christos be a new gdbarch method or something. */
3119 1.1 christos static CORE_ADDR
3120 1.1 christos svr4_truncate_ptr (CORE_ADDR addr)
3121 1.1 christos {
3122 1.1.1.9 christos if (gdbarch_ptr_bit (current_inferior ()->arch ()) == sizeof (CORE_ADDR) * 8)
3123 1.1 christos /* We don't need to truncate anything, and the bit twiddling below
3124 1.1 christos will fail due to overflow problems. */
3125 1.1 christos return addr;
3126 1.1 christos else
3127 1.1.1.9 christos return addr & (((CORE_ADDR) 1 << gdbarch_ptr_bit (current_inferior ()->arch ())) - 1);
3128 1.1 christos }
3129 1.1 christos
3130 1.1 christos
3131 1.1 christos static void
3132 1.1.1.9 christos svr4_relocate_section_addresses (solib &so, target_section *sec)
3133 1.1 christos {
3134 1.1 christos bfd *abfd = sec->the_bfd_section->owner;
3135 1.1 christos
3136 1.1 christos sec->addr = svr4_truncate_ptr (sec->addr + lm_addr_check (so, abfd));
3137 1.1 christos sec->endaddr = svr4_truncate_ptr (sec->endaddr + lm_addr_check (so, abfd));
3138 1.1 christos }
3139 1.1 christos
3140 1.1 christos
3142 1.1 christos /* Architecture-specific operations. */
3143 1.1 christos
3144 1.1 christos struct solib_svr4_ops
3145 1.1 christos {
3146 1.1.1.8 christos /* Return a description of the layout of `struct link_map'. */
3147 1.1 christos struct link_map_offsets *(*fetch_link_map_offsets)(void) = nullptr;
3148 1.1 christos };
3149 1.1.1.8 christos
3150 1.1.1.8 christos /* Per-architecture data key. */
3151 1.1.1.8 christos static const registry<gdbarch>::key<struct solib_svr4_ops> solib_svr4_data;
3152 1.1 christos
3153 1.1 christos /* Return a default for the architecture-specific operations. */
3154 1.1.1.8 christos
3155 1.1.1.8 christos static struct solib_svr4_ops *
3156 1.1 christos get_ops (struct gdbarch *gdbarch)
3157 1.1.1.8 christos {
3158 1.1.1.8 christos struct solib_svr4_ops *ops = solib_svr4_data.get (gdbarch);
3159 1.1.1.8 christos if (ops == nullptr)
3160 1.1 christos ops = solib_svr4_data.emplace (gdbarch);
3161 1.1 christos return ops;
3162 1.1 christos }
3163 1.1 christos
3164 1.1 christos /* Set the architecture-specific `struct link_map_offsets' fetcher for
3165 1.1 christos GDBARCH to FLMO. Also, install SVR4 solib_ops into GDBARCH. */
3166 1.1 christos
3167 1.1 christos void
3168 1.1.1.8 christos set_solib_svr4_fetch_link_map_offsets (struct gdbarch *gdbarch,
3169 1.1 christos struct link_map_offsets *(*flmo) (void))
3170 1.1.1.8 christos {
3171 1.1 christos struct solib_svr4_ops *ops = get_ops (gdbarch);
3172 1.1 christos
3173 1.1 christos ops->fetch_link_map_offsets = flmo;
3174 1.1.1.8 christos
3175 1.1.1.7 christos set_gdbarch_so_ops (gdbarch, &svr4_so_ops);
3176 1.1.1.7 christos set_gdbarch_iterate_over_objfiles_in_search_order
3177 1.1 christos (gdbarch, svr4_iterate_over_objfiles_in_search_order);
3178 1.1 christos }
3179 1.1 christos
3180 1.1 christos /* Fetch a link_map_offsets structure using the architecture-specific
3181 1.1 christos `struct link_map_offsets' fetcher. */
3182 1.1 christos
3183 1.1 christos static struct link_map_offsets *
3184 1.1 christos svr4_fetch_link_map_offsets (void)
3185 1.1.1.9 christos {
3186 1.1 christos struct solib_svr4_ops *ops = get_ops (current_inferior ()->arch ());
3187 1.1 christos
3188 1.1 christos gdb_assert (ops->fetch_link_map_offsets);
3189 1.1 christos return ops->fetch_link_map_offsets ();
3190 1.1 christos }
3191 1.1 christos
3192 1.1 christos /* Return 1 if a link map offset fetcher has been defined, 0 otherwise. */
3193 1.1 christos
3194 1.1 christos static int
3195 1.1 christos svr4_have_link_map_offsets (void)
3196 1.1.1.9 christos {
3197 1.1 christos struct solib_svr4_ops *ops = get_ops (current_inferior ()->arch ());
3198 1.1 christos
3199 1.1 christos return (ops->fetch_link_map_offsets != NULL);
3200 1.1 christos }
3201 1.1 christos
3202 1.1 christos
3204 1.1.1.7 christos /* Most OS'es that have SVR4-style ELF dynamic libraries define a
3205 1.1 christos `struct r_debug' and a `struct link_map' that are binary compatible
3206 1.1 christos with the original SVR4 implementation. */
3207 1.1 christos
3208 1.1 christos /* Fetch (and possibly build) an appropriate `struct link_map_offsets'
3209 1.1 christos for an ILP32 SVR4 system. */
3210 1.1 christos
3211 1.1 christos struct link_map_offsets *
3212 1.1 christos svr4_ilp32_fetch_link_map_offsets (void)
3213 1.1 christos {
3214 1.1 christos static struct link_map_offsets lmo;
3215 1.1 christos static struct link_map_offsets *lmp = NULL;
3216 1.1 christos
3217 1.1 christos if (lmp == NULL)
3218 1.1 christos {
3219 1.1 christos lmp = &lmo;
3220 1.1 christos
3221 1.1 christos lmo.r_version_offset = 0;
3222 1.1 christos lmo.r_version_size = 4;
3223 1.1 christos lmo.r_map_offset = 4;
3224 1.1.1.8 christos lmo.r_brk_offset = 8;
3225 1.1 christos lmo.r_ldsomap_offset = 20;
3226 1.1 christos lmo.r_next_offset = -1;
3227 1.1 christos
3228 1.1 christos /* Everything we need is in the first 20 bytes. */
3229 1.1 christos lmo.link_map_size = 20;
3230 1.1 christos lmo.l_addr_offset = 0;
3231 1.1 christos lmo.l_name_offset = 4;
3232 1.1 christos lmo.l_ld_offset = 8;
3233 1.1 christos lmo.l_next_offset = 12;
3234 1.1 christos lmo.l_prev_offset = 16;
3235 1.1 christos }
3236 1.1 christos
3237 1.1 christos return lmp;
3238 1.1 christos }
3239 1.1 christos
3240 1.1 christos /* Fetch (and possibly build) an appropriate `struct link_map_offsets'
3241 1.1 christos for an LP64 SVR4 system. */
3242 1.1 christos
3243 1.1 christos struct link_map_offsets *
3244 1.1 christos svr4_lp64_fetch_link_map_offsets (void)
3245 1.1 christos {
3246 1.1 christos static struct link_map_offsets lmo;
3247 1.1 christos static struct link_map_offsets *lmp = NULL;
3248 1.1 christos
3249 1.1 christos if (lmp == NULL)
3250 1.1 christos {
3251 1.1 christos lmp = &lmo;
3252 1.1 christos
3253 1.1 christos lmo.r_version_offset = 0;
3254 1.1 christos lmo.r_version_size = 4;
3255 1.1 christos lmo.r_map_offset = 8;
3256 1.1.1.8 christos lmo.r_brk_offset = 16;
3257 1.1 christos lmo.r_ldsomap_offset = 40;
3258 1.1 christos lmo.r_next_offset = -1;
3259 1.1 christos
3260 1.1 christos /* Everything we need is in the first 40 bytes. */
3261 1.1 christos lmo.link_map_size = 40;
3262 1.1 christos lmo.l_addr_offset = 0;
3263 1.1 christos lmo.l_name_offset = 8;
3264 1.1 christos lmo.l_ld_offset = 16;
3265 1.1 christos lmo.l_next_offset = 24;
3266 1.1 christos lmo.l_prev_offset = 32;
3267 1.1 christos }
3268 1.1 christos
3269 1.1 christos return lmp;
3270 1.1 christos }
3271 1.1.1.8 christos
3272 1.1.1.8 christos
3274 1.1.1.8 christos /* Return the DSO matching OBJFILE or nullptr if none can be found. */
3275 1.1.1.8 christos
3276 1.1.1.8 christos static const solib *
3277 1.1.1.8 christos find_solib_for_objfile (struct objfile *objfile)
3278 1.1.1.8 christos {
3279 1.1.1.8 christos if (objfile == nullptr)
3280 1.1.1.8 christos return nullptr;
3281 1.1.1.8 christos
3282 1.1.1.8 christos /* If OBJFILE is a separate debug object file, look for the original
3283 1.1.1.8 christos object file. */
3284 1.1.1.9 christos if (objfile->separate_debug_objfile_backlink != nullptr)
3285 1.1.1.9 christos objfile = objfile->separate_debug_objfile_backlink;
3286 1.1.1.9 christos
3287 1.1.1.8 christos for (const solib &so : current_program_space->solibs ())
3288 1.1.1.8 christos if (so.objfile == objfile)
3289 1.1.1.8 christos return &so;
3290 1.1.1.8 christos
3291 1.1.1.8 christos return nullptr;
3292 1.1.1.8 christos }
3293 1.1.1.8 christos
3294 1.1.1.8 christos /* Return the address of the r_debug object for the namespace containing
3295 1.1.1.8 christos SOLIB or zero if it cannot be found. This may happen when symbol files
3296 1.1.1.8 christos are added manually, for example, or with the main executable.
3297 1.1.1.8 christos
3298 1.1.1.8 christos Current callers treat zero as initial namespace so they are doing the
3299 1.1.1.9 christos right thing for the main executable. */
3300 1.1.1.8 christos
3301 1.1.1.8 christos static CORE_ADDR
3302 1.1.1.8 christos find_debug_base_for_solib (const solib *solib)
3303 1.1.1.8 christos {
3304 1.1.1.8 christos if (solib == nullptr)
3305 1.1.1.8 christos return 0;
3306 1.1.1.9 christos
3307 1.1.1.9 christos svr4_info *info = get_svr4_info (current_program_space);
3308 1.1.1.9 christos gdb_assert (info != nullptr);
3309 1.1.1.9 christos
3310 1.1.1.9 christos auto *lm_info
3311 1.1.1.8 christos = gdb::checked_static_cast<const lm_info_svr4 *> (solib->lm_info.get ());
3312 1.1.1.8 christos
3313 1.1.1.9 christos for (const auto &tuple : info->solib_lists)
3314 1.1.1.8 christos {
3315 1.1.1.9 christos CORE_ADDR debug_base = tuple.first;
3316 1.1.1.9 christos const std::vector<svr4_so> &sos = tuple.second;
3317 1.1.1.9 christos
3318 1.1.1.8 christos for (const svr4_so &so : sos)
3319 1.1.1.8 christos if (svr4_same (solib->so_original_name.c_str (), so.name.c_str (),
3320 1.1.1.8 christos *lm_info, *so.lm_info))
3321 1.1.1.8 christos return debug_base;
3322 1.1.1.8 christos }
3323 1.1 christos
3324 1.1.1.7 christos return 0;
3325 1.1.1.8 christos }
3326 1.1.1.8 christos
3327 1.1.1.8 christos /* Search order for ELF DSOs linked with -Bsymbolic. Those DSOs have a
3328 1.1.1.8 christos different rule for symbol lookup. The lookup begins here in the DSO,
3329 1.1 christos not in the main executable. When starting from CURRENT_OBJFILE, we
3330 1.1.1.7 christos stay in the same namespace as that file. Otherwise, we only consider
3331 1.1.1.7 christos the initial namespace. */
3332 1.1.1.8 christos
3333 1.1.1.8 christos static void
3334 1.1 christos svr4_iterate_over_objfiles_in_search_order
3335 1.1.1.7 christos (gdbarch *gdbarch, iterate_over_objfiles_in_search_order_cb_ftype cb,
3336 1.1.1.7 christos objfile *current_objfile)
3337 1.1 christos {
3338 1.1.1.7 christos bool checked_current_objfile = false;
3339 1.1 christos if (current_objfile != nullptr)
3340 1.1.1.7 christos {
3341 1.1.1.8 christos bfd *abfd;
3342 1.1 christos
3343 1.1.1.8 christos if (current_objfile->separate_debug_objfile_backlink != nullptr)
3344 1.1.1.8 christos current_objfile = current_objfile->separate_debug_objfile_backlink;
3345 1.1.1.7 christos
3346 1.1.1.8 christos if (current_objfile == current_program_space->symfile_object_file)
3347 1.1 christos abfd = current_program_space->exec_bfd ();
3348 1.1.1.7 christos else
3349 1.1.1.8 christos abfd = current_objfile->obfd.get ();
3350 1.1.1.7 christos
3351 1.1.1.7 christos if (abfd != nullptr
3352 1.1.1.8 christos && gdb_bfd_scan_elf_dyntag (DT_SYMBOLIC, abfd, nullptr, nullptr) == 1)
3353 1.1.1.7 christos {
3354 1.1.1.7 christos checked_current_objfile = true;
3355 1.1.1.7 christos if (cb (current_objfile))
3356 1.1.1.7 christos return;
3357 1.1.1.8 christos }
3358 1.1.1.8 christos }
3359 1.1.1.8 christos
3360 1.1.1.9 christos /* The linker namespace to iterate identified by the address of its
3361 1.1.1.8 christos r_debug object, defaulting to the initial namespace. */
3362 1.1.1.8 christos CORE_ADDR initial = elf_locate_base ();
3363 1.1.1.8 christos const solib *curr_solib = find_solib_for_objfile (current_objfile);
3364 1.1.1.8 christos CORE_ADDR debug_base = find_debug_base_for_solib (curr_solib);
3365 1.1.1.7 christos if (debug_base == 0)
3366 1.1.1.7 christos debug_base = initial;
3367 1.1.1.7 christos
3368 1.1.1.7 christos for (objfile *objfile : current_program_space->objfiles ())
3369 1.1.1.8 christos {
3370 1.1.1.8 christos if (checked_current_objfile && objfile == current_objfile)
3371 1.1.1.8 christos continue;
3372 1.1.1.8 christos
3373 1.1.1.8 christos /* Try to determine the namespace into which objfile was loaded.
3374 1.1.1.8 christos
3375 1.1.1.9 christos If we fail, e.g. for manually added symbol files or for the main
3376 1.1.1.8 christos executable, we assume that they were added to the initial
3377 1.1.1.8 christos namespace. */
3378 1.1.1.8 christos const solib *solib = find_solib_for_objfile (objfile);
3379 1.1.1.8 christos CORE_ADDR solib_base = find_debug_base_for_solib (solib);
3380 1.1.1.8 christos if (solib_base == 0)
3381 1.1.1.8 christos solib_base = initial;
3382 1.1.1.8 christos
3383 1.1.1.8 christos /* Ignore objfiles that were added to a different namespace. */
3384 1.1.1.8 christos if (solib_base != debug_base)
3385 1.1.1.7 christos continue;
3386 1.1.1.7 christos
3387 1.1 christos if (cb (objfile))
3388 1.1 christos return;
3389 1.1.1.10 christos }
3390 1.1.1.10 christos }
3391 1.1.1.10 christos
3392 1.1.1.10 christos /* See solib_ops::find_solib_addr in solist.h. */
3393 1.1.1.10 christos
3394 1.1.1.10 christos static std::optional<CORE_ADDR>
3395 1.1.1.10 christos svr4_find_solib_addr (solib &so)
3396 1.1.1.10 christos {
3397 1.1.1.10 christos auto *li = gdb::checked_static_cast<lm_info_svr4 *> (so.lm_info.get ());
3398 1.1.1.9 christos return li->l_addr_inferior;
3399 1.1.1.8 christos }
3400 1.1.1.8 christos
3401 1.1.1.8 christos const struct solib_ops svr4_so_ops =
3402 1.1.1.8 christos {
3403 1.1.1.8 christos svr4_relocate_section_addresses,
3404 1.1.1.8 christos svr4_clear_so,
3405 1.1.1.8 christos svr4_clear_solib,
3406 1.1.1.8 christos svr4_solib_create_inferior_hook,
3407 1.1.1.8 christos svr4_current_sos,
3408 1.1.1.8 christos open_symbol_file_object,
3409 1.1.1.8 christos svr4_in_dynsym_resolve_code,
3410 1.1.1.8 christos solib_bfd_open,
3411 1.1.1.8 christos svr4_same,
3412 1.1.1.10 christos svr4_keep_data_in_core,
3413 1.1.1.8 christos svr4_update_solib_event_breakpoints,
3414 1.1.1.8 christos svr4_handle_solib_event,
3415 1.1.1.7 christos svr4_find_solib_addr,
3416 1.1 christos };
3417 1.1.1.7 christos
3418 1.1 christos void _initialize_svr4_solib ();
3419 1.1.1.8 christos void
3420 1.1.1.8 christos _initialize_svr4_solib ()
3421 1.1 christos {
3422 gdb::observers::free_objfile.attach (svr4_free_objfile_observer,
3423 "solib-svr4");
3424 }
3425