* elf64-x86-64.c (elf_x86_64_check_tls_transition): Allow
[deliverable/binutils-gdb.git] / bfd / elf64-x86-64.c
1 /* X86-64 specific support for ELF
2 Copyright 2000, 2001, 2002, 2003, 2004, 2005, 2006, 2007, 2008, 2009,
3 2010, 2011, 2012, 2013
4 Free Software Foundation, Inc.
5 Contributed by Jan Hubicka <jh@suse.cz>.
6
7 This file is part of BFD, the Binary File Descriptor library.
8
9 This program is free software; you can redistribute it and/or modify
10 it under the terms of the GNU General Public License as published by
11 the Free Software Foundation; either version 3 of the License, or
12 (at your option) any later version.
13
14 This program is distributed in the hope that it will be useful,
15 but WITHOUT ANY WARRANTY; without even the implied warranty of
16 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 GNU General Public License for more details.
18
19 You should have received a copy of the GNU General Public License
20 along with this program; if not, write to the Free Software
21 Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston,
22 MA 02110-1301, USA. */
23
24 #include "sysdep.h"
25 #include "bfd.h"
26 #include "bfdlink.h"
27 #include "libbfd.h"
28 #include "elf-bfd.h"
29 #include "elf-nacl.h"
30 #include "bfd_stdint.h"
31 #include "objalloc.h"
32 #include "hashtab.h"
33 #include "dwarf2.h"
34 #include "libiberty.h"
35
36 #include "elf/x86-64.h"
37
38 #ifdef CORE_HEADER
39 #include <stdarg.h>
40 #include CORE_HEADER
41 #endif
42
43 /* In case we're on a 32-bit machine, construct a 64-bit "-1" value. */
44 #define MINUS_ONE (~ (bfd_vma) 0)
45
46 /* Since both 32-bit and 64-bit x86-64 encode relocation type in the
47 identical manner, we use ELF32_R_TYPE instead of ELF64_R_TYPE to get
48 relocation type. We also use ELF_ST_TYPE instead of ELF64_ST_TYPE
49 since they are the same. */
50
51 #define ABI_64_P(abfd) \
52 (get_elf_backend_data (abfd)->s->elfclass == ELFCLASS64)
53
54 /* The relocation "howto" table. Order of fields:
55 type, rightshift, size, bitsize, pc_relative, bitpos, complain_on_overflow,
56 special_function, name, partial_inplace, src_mask, dst_mask, pcrel_offset. */
57 static reloc_howto_type x86_64_elf_howto_table[] =
58 {
59 HOWTO(R_X86_64_NONE, 0, 0, 0, FALSE, 0, complain_overflow_dont,
60 bfd_elf_generic_reloc, "R_X86_64_NONE", FALSE, 0x00000000, 0x00000000,
61 FALSE),
62 HOWTO(R_X86_64_64, 0, 4, 64, FALSE, 0, complain_overflow_bitfield,
63 bfd_elf_generic_reloc, "R_X86_64_64", FALSE, MINUS_ONE, MINUS_ONE,
64 FALSE),
65 HOWTO(R_X86_64_PC32, 0, 2, 32, TRUE, 0, complain_overflow_signed,
66 bfd_elf_generic_reloc, "R_X86_64_PC32", FALSE, 0xffffffff, 0xffffffff,
67 TRUE),
68 HOWTO(R_X86_64_GOT32, 0, 2, 32, FALSE, 0, complain_overflow_signed,
69 bfd_elf_generic_reloc, "R_X86_64_GOT32", FALSE, 0xffffffff, 0xffffffff,
70 FALSE),
71 HOWTO(R_X86_64_PLT32, 0, 2, 32, TRUE, 0, complain_overflow_signed,
72 bfd_elf_generic_reloc, "R_X86_64_PLT32", FALSE, 0xffffffff, 0xffffffff,
73 TRUE),
74 HOWTO(R_X86_64_COPY, 0, 2, 32, FALSE, 0, complain_overflow_bitfield,
75 bfd_elf_generic_reloc, "R_X86_64_COPY", FALSE, 0xffffffff, 0xffffffff,
76 FALSE),
77 HOWTO(R_X86_64_GLOB_DAT, 0, 4, 64, FALSE, 0, complain_overflow_bitfield,
78 bfd_elf_generic_reloc, "R_X86_64_GLOB_DAT", FALSE, MINUS_ONE,
79 MINUS_ONE, FALSE),
80 HOWTO(R_X86_64_JUMP_SLOT, 0, 4, 64, FALSE, 0, complain_overflow_bitfield,
81 bfd_elf_generic_reloc, "R_X86_64_JUMP_SLOT", FALSE, MINUS_ONE,
82 MINUS_ONE, FALSE),
83 HOWTO(R_X86_64_RELATIVE, 0, 4, 64, FALSE, 0, complain_overflow_bitfield,
84 bfd_elf_generic_reloc, "R_X86_64_RELATIVE", FALSE, MINUS_ONE,
85 MINUS_ONE, FALSE),
86 HOWTO(R_X86_64_GOTPCREL, 0, 2, 32, TRUE, 0, complain_overflow_signed,
87 bfd_elf_generic_reloc, "R_X86_64_GOTPCREL", FALSE, 0xffffffff,
88 0xffffffff, TRUE),
89 HOWTO(R_X86_64_32, 0, 2, 32, FALSE, 0, complain_overflow_unsigned,
90 bfd_elf_generic_reloc, "R_X86_64_32", FALSE, 0xffffffff, 0xffffffff,
91 FALSE),
92 HOWTO(R_X86_64_32S, 0, 2, 32, FALSE, 0, complain_overflow_signed,
93 bfd_elf_generic_reloc, "R_X86_64_32S", FALSE, 0xffffffff, 0xffffffff,
94 FALSE),
95 HOWTO(R_X86_64_16, 0, 1, 16, FALSE, 0, complain_overflow_bitfield,
96 bfd_elf_generic_reloc, "R_X86_64_16", FALSE, 0xffff, 0xffff, FALSE),
97 HOWTO(R_X86_64_PC16,0, 1, 16, TRUE, 0, complain_overflow_bitfield,
98 bfd_elf_generic_reloc, "R_X86_64_PC16", FALSE, 0xffff, 0xffff, TRUE),
99 HOWTO(R_X86_64_8, 0, 0, 8, FALSE, 0, complain_overflow_bitfield,
100 bfd_elf_generic_reloc, "R_X86_64_8", FALSE, 0xff, 0xff, FALSE),
101 HOWTO(R_X86_64_PC8, 0, 0, 8, TRUE, 0, complain_overflow_signed,
102 bfd_elf_generic_reloc, "R_X86_64_PC8", FALSE, 0xff, 0xff, TRUE),
103 HOWTO(R_X86_64_DTPMOD64, 0, 4, 64, FALSE, 0, complain_overflow_bitfield,
104 bfd_elf_generic_reloc, "R_X86_64_DTPMOD64", FALSE, MINUS_ONE,
105 MINUS_ONE, FALSE),
106 HOWTO(R_X86_64_DTPOFF64, 0, 4, 64, FALSE, 0, complain_overflow_bitfield,
107 bfd_elf_generic_reloc, "R_X86_64_DTPOFF64", FALSE, MINUS_ONE,
108 MINUS_ONE, FALSE),
109 HOWTO(R_X86_64_TPOFF64, 0, 4, 64, FALSE, 0, complain_overflow_bitfield,
110 bfd_elf_generic_reloc, "R_X86_64_TPOFF64", FALSE, MINUS_ONE,
111 MINUS_ONE, FALSE),
112 HOWTO(R_X86_64_TLSGD, 0, 2, 32, TRUE, 0, complain_overflow_signed,
113 bfd_elf_generic_reloc, "R_X86_64_TLSGD", FALSE, 0xffffffff,
114 0xffffffff, TRUE),
115 HOWTO(R_X86_64_TLSLD, 0, 2, 32, TRUE, 0, complain_overflow_signed,
116 bfd_elf_generic_reloc, "R_X86_64_TLSLD", FALSE, 0xffffffff,
117 0xffffffff, TRUE),
118 HOWTO(R_X86_64_DTPOFF32, 0, 2, 32, FALSE, 0, complain_overflow_signed,
119 bfd_elf_generic_reloc, "R_X86_64_DTPOFF32", FALSE, 0xffffffff,
120 0xffffffff, FALSE),
121 HOWTO(R_X86_64_GOTTPOFF, 0, 2, 32, TRUE, 0, complain_overflow_signed,
122 bfd_elf_generic_reloc, "R_X86_64_GOTTPOFF", FALSE, 0xffffffff,
123 0xffffffff, TRUE),
124 HOWTO(R_X86_64_TPOFF32, 0, 2, 32, FALSE, 0, complain_overflow_signed,
125 bfd_elf_generic_reloc, "R_X86_64_TPOFF32", FALSE, 0xffffffff,
126 0xffffffff, FALSE),
127 HOWTO(R_X86_64_PC64, 0, 4, 64, TRUE, 0, complain_overflow_bitfield,
128 bfd_elf_generic_reloc, "R_X86_64_PC64", FALSE, MINUS_ONE, MINUS_ONE,
129 TRUE),
130 HOWTO(R_X86_64_GOTOFF64, 0, 4, 64, FALSE, 0, complain_overflow_bitfield,
131 bfd_elf_generic_reloc, "R_X86_64_GOTOFF64",
132 FALSE, MINUS_ONE, MINUS_ONE, FALSE),
133 HOWTO(R_X86_64_GOTPC32, 0, 2, 32, TRUE, 0, complain_overflow_signed,
134 bfd_elf_generic_reloc, "R_X86_64_GOTPC32",
135 FALSE, 0xffffffff, 0xffffffff, TRUE),
136 HOWTO(R_X86_64_GOT64, 0, 4, 64, FALSE, 0, complain_overflow_signed,
137 bfd_elf_generic_reloc, "R_X86_64_GOT64", FALSE, MINUS_ONE, MINUS_ONE,
138 FALSE),
139 HOWTO(R_X86_64_GOTPCREL64, 0, 4, 64, TRUE, 0, complain_overflow_signed,
140 bfd_elf_generic_reloc, "R_X86_64_GOTPCREL64", FALSE, MINUS_ONE,
141 MINUS_ONE, TRUE),
142 HOWTO(R_X86_64_GOTPC64, 0, 4, 64, TRUE, 0, complain_overflow_signed,
143 bfd_elf_generic_reloc, "R_X86_64_GOTPC64",
144 FALSE, MINUS_ONE, MINUS_ONE, TRUE),
145 HOWTO(R_X86_64_GOTPLT64, 0, 4, 64, FALSE, 0, complain_overflow_signed,
146 bfd_elf_generic_reloc, "R_X86_64_GOTPLT64", FALSE, MINUS_ONE,
147 MINUS_ONE, FALSE),
148 HOWTO(R_X86_64_PLTOFF64, 0, 4, 64, FALSE, 0, complain_overflow_signed,
149 bfd_elf_generic_reloc, "R_X86_64_PLTOFF64", FALSE, MINUS_ONE,
150 MINUS_ONE, FALSE),
151 HOWTO(R_X86_64_SIZE32, 0, 2, 32, FALSE, 0, complain_overflow_unsigned,
152 bfd_elf_generic_reloc, "R_X86_64_SIZE32", FALSE, 0xffffffff, 0xffffffff,
153 FALSE),
154 HOWTO(R_X86_64_SIZE64, 0, 4, 64, FALSE, 0, complain_overflow_unsigned,
155 bfd_elf_generic_reloc, "R_X86_64_SIZE64", FALSE, MINUS_ONE, MINUS_ONE,
156 FALSE),
157 HOWTO(R_X86_64_GOTPC32_TLSDESC, 0, 2, 32, TRUE, 0,
158 complain_overflow_bitfield, bfd_elf_generic_reloc,
159 "R_X86_64_GOTPC32_TLSDESC",
160 FALSE, 0xffffffff, 0xffffffff, TRUE),
161 HOWTO(R_X86_64_TLSDESC_CALL, 0, 0, 0, FALSE, 0,
162 complain_overflow_dont, bfd_elf_generic_reloc,
163 "R_X86_64_TLSDESC_CALL",
164 FALSE, 0, 0, FALSE),
165 HOWTO(R_X86_64_TLSDESC, 0, 4, 64, FALSE, 0,
166 complain_overflow_bitfield, bfd_elf_generic_reloc,
167 "R_X86_64_TLSDESC",
168 FALSE, MINUS_ONE, MINUS_ONE, FALSE),
169 HOWTO(R_X86_64_IRELATIVE, 0, 4, 64, FALSE, 0, complain_overflow_bitfield,
170 bfd_elf_generic_reloc, "R_X86_64_IRELATIVE", FALSE, MINUS_ONE,
171 MINUS_ONE, FALSE),
172 HOWTO(R_X86_64_RELATIVE64, 0, 4, 64, FALSE, 0, complain_overflow_bitfield,
173 bfd_elf_generic_reloc, "R_X86_64_RELATIVE64", FALSE, MINUS_ONE,
174 MINUS_ONE, FALSE),
175
176 /* We have a gap in the reloc numbers here.
177 R_X86_64_standard counts the number up to this point, and
178 R_X86_64_vt_offset is the value to subtract from a reloc type of
179 R_X86_64_GNU_VT* to form an index into this table. */
180 #define R_X86_64_standard (R_X86_64_RELATIVE64 + 1)
181 #define R_X86_64_vt_offset (R_X86_64_GNU_VTINHERIT - R_X86_64_standard)
182
183 /* GNU extension to record C++ vtable hierarchy. */
184 HOWTO (R_X86_64_GNU_VTINHERIT, 0, 4, 0, FALSE, 0, complain_overflow_dont,
185 NULL, "R_X86_64_GNU_VTINHERIT", FALSE, 0, 0, FALSE),
186
187 /* GNU extension to record C++ vtable member usage. */
188 HOWTO (R_X86_64_GNU_VTENTRY, 0, 4, 0, FALSE, 0, complain_overflow_dont,
189 _bfd_elf_rel_vtable_reloc_fn, "R_X86_64_GNU_VTENTRY", FALSE, 0, 0,
190 FALSE),
191
192 /* Use complain_overflow_bitfield on R_X86_64_32 for x32. */
193 HOWTO(R_X86_64_32, 0, 2, 32, FALSE, 0, complain_overflow_bitfield,
194 bfd_elf_generic_reloc, "R_X86_64_32", FALSE, 0xffffffff, 0xffffffff,
195 FALSE)
196 };
197
198 #define IS_X86_64_PCREL_TYPE(TYPE) \
199 ( ((TYPE) == R_X86_64_PC8) \
200 || ((TYPE) == R_X86_64_PC16) \
201 || ((TYPE) == R_X86_64_PC32) \
202 || ((TYPE) == R_X86_64_PC64))
203
204 /* Map BFD relocs to the x86_64 elf relocs. */
205 struct elf_reloc_map
206 {
207 bfd_reloc_code_real_type bfd_reloc_val;
208 unsigned char elf_reloc_val;
209 };
210
211 static const struct elf_reloc_map x86_64_reloc_map[] =
212 {
213 { BFD_RELOC_NONE, R_X86_64_NONE, },
214 { BFD_RELOC_64, R_X86_64_64, },
215 { BFD_RELOC_32_PCREL, R_X86_64_PC32, },
216 { BFD_RELOC_X86_64_GOT32, R_X86_64_GOT32,},
217 { BFD_RELOC_X86_64_PLT32, R_X86_64_PLT32,},
218 { BFD_RELOC_X86_64_COPY, R_X86_64_COPY, },
219 { BFD_RELOC_X86_64_GLOB_DAT, R_X86_64_GLOB_DAT, },
220 { BFD_RELOC_X86_64_JUMP_SLOT, R_X86_64_JUMP_SLOT, },
221 { BFD_RELOC_X86_64_RELATIVE, R_X86_64_RELATIVE, },
222 { BFD_RELOC_X86_64_GOTPCREL, R_X86_64_GOTPCREL, },
223 { BFD_RELOC_32, R_X86_64_32, },
224 { BFD_RELOC_X86_64_32S, R_X86_64_32S, },
225 { BFD_RELOC_16, R_X86_64_16, },
226 { BFD_RELOC_16_PCREL, R_X86_64_PC16, },
227 { BFD_RELOC_8, R_X86_64_8, },
228 { BFD_RELOC_8_PCREL, R_X86_64_PC8, },
229 { BFD_RELOC_X86_64_DTPMOD64, R_X86_64_DTPMOD64, },
230 { BFD_RELOC_X86_64_DTPOFF64, R_X86_64_DTPOFF64, },
231 { BFD_RELOC_X86_64_TPOFF64, R_X86_64_TPOFF64, },
232 { BFD_RELOC_X86_64_TLSGD, R_X86_64_TLSGD, },
233 { BFD_RELOC_X86_64_TLSLD, R_X86_64_TLSLD, },
234 { BFD_RELOC_X86_64_DTPOFF32, R_X86_64_DTPOFF32, },
235 { BFD_RELOC_X86_64_GOTTPOFF, R_X86_64_GOTTPOFF, },
236 { BFD_RELOC_X86_64_TPOFF32, R_X86_64_TPOFF32, },
237 { BFD_RELOC_64_PCREL, R_X86_64_PC64, },
238 { BFD_RELOC_X86_64_GOTOFF64, R_X86_64_GOTOFF64, },
239 { BFD_RELOC_X86_64_GOTPC32, R_X86_64_GOTPC32, },
240 { BFD_RELOC_X86_64_GOT64, R_X86_64_GOT64, },
241 { BFD_RELOC_X86_64_GOTPCREL64,R_X86_64_GOTPCREL64, },
242 { BFD_RELOC_X86_64_GOTPC64, R_X86_64_GOTPC64, },
243 { BFD_RELOC_X86_64_GOTPLT64, R_X86_64_GOTPLT64, },
244 { BFD_RELOC_X86_64_PLTOFF64, R_X86_64_PLTOFF64, },
245 { BFD_RELOC_SIZE32, R_X86_64_SIZE32, },
246 { BFD_RELOC_SIZE64, R_X86_64_SIZE64, },
247 { BFD_RELOC_X86_64_GOTPC32_TLSDESC, R_X86_64_GOTPC32_TLSDESC, },
248 { BFD_RELOC_X86_64_TLSDESC_CALL, R_X86_64_TLSDESC_CALL, },
249 { BFD_RELOC_X86_64_TLSDESC, R_X86_64_TLSDESC, },
250 { BFD_RELOC_X86_64_IRELATIVE, R_X86_64_IRELATIVE, },
251 { BFD_RELOC_VTABLE_INHERIT, R_X86_64_GNU_VTINHERIT, },
252 { BFD_RELOC_VTABLE_ENTRY, R_X86_64_GNU_VTENTRY, },
253 };
254
255 static reloc_howto_type *
256 elf_x86_64_rtype_to_howto (bfd *abfd, unsigned r_type)
257 {
258 unsigned i;
259
260 if (r_type == (unsigned int) R_X86_64_32)
261 {
262 if (ABI_64_P (abfd))
263 i = r_type;
264 else
265 i = ARRAY_SIZE (x86_64_elf_howto_table) - 1;
266 }
267 else if (r_type < (unsigned int) R_X86_64_GNU_VTINHERIT
268 || r_type >= (unsigned int) R_X86_64_max)
269 {
270 if (r_type >= (unsigned int) R_X86_64_standard)
271 {
272 (*_bfd_error_handler) (_("%B: invalid relocation type %d"),
273 abfd, (int) r_type);
274 r_type = R_X86_64_NONE;
275 }
276 i = r_type;
277 }
278 else
279 i = r_type - (unsigned int) R_X86_64_vt_offset;
280 BFD_ASSERT (x86_64_elf_howto_table[i].type == r_type);
281 return &x86_64_elf_howto_table[i];
282 }
283
284 /* Given a BFD reloc type, return a HOWTO structure. */
285 static reloc_howto_type *
286 elf_x86_64_reloc_type_lookup (bfd *abfd,
287 bfd_reloc_code_real_type code)
288 {
289 unsigned int i;
290
291 for (i = 0; i < sizeof (x86_64_reloc_map) / sizeof (struct elf_reloc_map);
292 i++)
293 {
294 if (x86_64_reloc_map[i].bfd_reloc_val == code)
295 return elf_x86_64_rtype_to_howto (abfd,
296 x86_64_reloc_map[i].elf_reloc_val);
297 }
298 return 0;
299 }
300
301 static reloc_howto_type *
302 elf_x86_64_reloc_name_lookup (bfd *abfd,
303 const char *r_name)
304 {
305 unsigned int i;
306
307 if (!ABI_64_P (abfd) && strcasecmp (r_name, "R_X86_64_32") == 0)
308 {
309 /* Get x32 R_X86_64_32. */
310 reloc_howto_type *reloc
311 = &x86_64_elf_howto_table[ARRAY_SIZE (x86_64_elf_howto_table) - 1];
312 BFD_ASSERT (reloc->type == (unsigned int) R_X86_64_32);
313 return reloc;
314 }
315
316 for (i = 0; i < ARRAY_SIZE (x86_64_elf_howto_table); i++)
317 if (x86_64_elf_howto_table[i].name != NULL
318 && strcasecmp (x86_64_elf_howto_table[i].name, r_name) == 0)
319 return &x86_64_elf_howto_table[i];
320
321 return NULL;
322 }
323
324 /* Given an x86_64 ELF reloc type, fill in an arelent structure. */
325
326 static void
327 elf_x86_64_info_to_howto (bfd *abfd ATTRIBUTE_UNUSED, arelent *cache_ptr,
328 Elf_Internal_Rela *dst)
329 {
330 unsigned r_type;
331
332 r_type = ELF32_R_TYPE (dst->r_info);
333 cache_ptr->howto = elf_x86_64_rtype_to_howto (abfd, r_type);
334 BFD_ASSERT (r_type == cache_ptr->howto->type);
335 }
336 \f
337 /* Support for core dump NOTE sections. */
338 static bfd_boolean
339 elf_x86_64_grok_prstatus (bfd *abfd, Elf_Internal_Note *note)
340 {
341 int offset;
342 size_t size;
343
344 switch (note->descsz)
345 {
346 default:
347 return FALSE;
348
349 case 296: /* sizeof(istruct elf_prstatus) on Linux/x32 */
350 /* pr_cursig */
351 elf_tdata (abfd)->core->signal = bfd_get_16 (abfd, note->descdata + 12);
352
353 /* pr_pid */
354 elf_tdata (abfd)->core->lwpid = bfd_get_32 (abfd, note->descdata + 24);
355
356 /* pr_reg */
357 offset = 72;
358 size = 216;
359
360 break;
361
362 case 336: /* sizeof(istruct elf_prstatus) on Linux/x86_64 */
363 /* pr_cursig */
364 elf_tdata (abfd)->core->signal
365 = bfd_get_16 (abfd, note->descdata + 12);
366
367 /* pr_pid */
368 elf_tdata (abfd)->core->lwpid
369 = bfd_get_32 (abfd, note->descdata + 32);
370
371 /* pr_reg */
372 offset = 112;
373 size = 216;
374
375 break;
376 }
377
378 /* Make a ".reg/999" section. */
379 return _bfd_elfcore_make_pseudosection (abfd, ".reg",
380 size, note->descpos + offset);
381 }
382
383 static bfd_boolean
384 elf_x86_64_grok_psinfo (bfd *abfd, Elf_Internal_Note *note)
385 {
386 switch (note->descsz)
387 {
388 default:
389 return FALSE;
390
391 case 124: /* sizeof(struct elf_prpsinfo) on Linux/x32 */
392 elf_tdata (abfd)->core->pid
393 = bfd_get_32 (abfd, note->descdata + 12);
394 elf_tdata (abfd)->core->program
395 = _bfd_elfcore_strndup (abfd, note->descdata + 28, 16);
396 elf_tdata (abfd)->core->command
397 = _bfd_elfcore_strndup (abfd, note->descdata + 44, 80);
398 break;
399
400 case 136: /* sizeof(struct elf_prpsinfo) on Linux/x86_64 */
401 elf_tdata (abfd)->core->pid
402 = bfd_get_32 (abfd, note->descdata + 24);
403 elf_tdata (abfd)->core->program
404 = _bfd_elfcore_strndup (abfd, note->descdata + 40, 16);
405 elf_tdata (abfd)->core->command
406 = _bfd_elfcore_strndup (abfd, note->descdata + 56, 80);
407 }
408
409 /* Note that for some reason, a spurious space is tacked
410 onto the end of the args in some (at least one anyway)
411 implementations, so strip it off if it exists. */
412
413 {
414 char *command = elf_tdata (abfd)->core->command;
415 int n = strlen (command);
416
417 if (0 < n && command[n - 1] == ' ')
418 command[n - 1] = '\0';
419 }
420
421 return TRUE;
422 }
423
424 #ifdef CORE_HEADER
425 static char *
426 elf_x86_64_write_core_note (bfd *abfd, char *buf, int *bufsiz,
427 int note_type, ...)
428 {
429 const struct elf_backend_data *bed = get_elf_backend_data (abfd);
430 va_list ap;
431 const char *fname, *psargs;
432 long pid;
433 int cursig;
434 const void *gregs;
435
436 switch (note_type)
437 {
438 default:
439 return NULL;
440
441 case NT_PRPSINFO:
442 va_start (ap, note_type);
443 fname = va_arg (ap, const char *);
444 psargs = va_arg (ap, const char *);
445 va_end (ap);
446
447 if (bed->s->elfclass == ELFCLASS32)
448 {
449 prpsinfo32_t data;
450 memset (&data, 0, sizeof (data));
451 strncpy (data.pr_fname, fname, sizeof (data.pr_fname));
452 strncpy (data.pr_psargs, psargs, sizeof (data.pr_psargs));
453 return elfcore_write_note (abfd, buf, bufsiz, "CORE", note_type,
454 &data, sizeof (data));
455 }
456 else
457 {
458 prpsinfo64_t data;
459 memset (&data, 0, sizeof (data));
460 strncpy (data.pr_fname, fname, sizeof (data.pr_fname));
461 strncpy (data.pr_psargs, psargs, sizeof (data.pr_psargs));
462 return elfcore_write_note (abfd, buf, bufsiz, "CORE", note_type,
463 &data, sizeof (data));
464 }
465 /* NOTREACHED */
466
467 case NT_PRSTATUS:
468 va_start (ap, note_type);
469 pid = va_arg (ap, long);
470 cursig = va_arg (ap, int);
471 gregs = va_arg (ap, const void *);
472 va_end (ap);
473
474 if (bed->s->elfclass == ELFCLASS32)
475 {
476 if (bed->elf_machine_code == EM_X86_64)
477 {
478 prstatusx32_t prstat;
479 memset (&prstat, 0, sizeof (prstat));
480 prstat.pr_pid = pid;
481 prstat.pr_cursig = cursig;
482 memcpy (&prstat.pr_reg, gregs, sizeof (prstat.pr_reg));
483 return elfcore_write_note (abfd, buf, bufsiz, "CORE", note_type,
484 &prstat, sizeof (prstat));
485 }
486 else
487 {
488 prstatus32_t prstat;
489 memset (&prstat, 0, sizeof (prstat));
490 prstat.pr_pid = pid;
491 prstat.pr_cursig = cursig;
492 memcpy (&prstat.pr_reg, gregs, sizeof (prstat.pr_reg));
493 return elfcore_write_note (abfd, buf, bufsiz, "CORE", note_type,
494 &prstat, sizeof (prstat));
495 }
496 }
497 else
498 {
499 prstatus64_t prstat;
500 memset (&prstat, 0, sizeof (prstat));
501 prstat.pr_pid = pid;
502 prstat.pr_cursig = cursig;
503 memcpy (&prstat.pr_reg, gregs, sizeof (prstat.pr_reg));
504 return elfcore_write_note (abfd, buf, bufsiz, "CORE", note_type,
505 &prstat, sizeof (prstat));
506 }
507 }
508 /* NOTREACHED */
509 }
510 #endif
511 \f
512 /* Functions for the x86-64 ELF linker. */
513
514 /* The name of the dynamic interpreter. This is put in the .interp
515 section. */
516
517 #define ELF64_DYNAMIC_INTERPRETER "/lib/ld64.so.1"
518 #define ELF32_DYNAMIC_INTERPRETER "/lib/ldx32.so.1"
519
520 /* If ELIMINATE_COPY_RELOCS is non-zero, the linker will try to avoid
521 copying dynamic variables from a shared lib into an app's dynbss
522 section, and instead use a dynamic relocation to point into the
523 shared lib. */
524 #define ELIMINATE_COPY_RELOCS 1
525
526 /* The size in bytes of an entry in the global offset table. */
527
528 #define GOT_ENTRY_SIZE 8
529
530 /* The size in bytes of an entry in the procedure linkage table. */
531
532 #define PLT_ENTRY_SIZE 16
533
534 /* The first entry in a procedure linkage table looks like this. See the
535 SVR4 ABI i386 supplement and the x86-64 ABI to see how this works. */
536
537 static const bfd_byte elf_x86_64_plt0_entry[PLT_ENTRY_SIZE] =
538 {
539 0xff, 0x35, 8, 0, 0, 0, /* pushq GOT+8(%rip) */
540 0xff, 0x25, 16, 0, 0, 0, /* jmpq *GOT+16(%rip) */
541 0x0f, 0x1f, 0x40, 0x00 /* nopl 0(%rax) */
542 };
543
544 /* Subsequent entries in a procedure linkage table look like this. */
545
546 static const bfd_byte elf_x86_64_plt_entry[PLT_ENTRY_SIZE] =
547 {
548 0xff, 0x25, /* jmpq *name@GOTPC(%rip) */
549 0, 0, 0, 0, /* replaced with offset to this symbol in .got. */
550 0x68, /* pushq immediate */
551 0, 0, 0, 0, /* replaced with index into relocation table. */
552 0xe9, /* jmp relative */
553 0, 0, 0, 0 /* replaced with offset to start of .plt0. */
554 };
555
556 /* .eh_frame covering the .plt section. */
557
558 static const bfd_byte elf_x86_64_eh_frame_plt[] =
559 {
560 #define PLT_CIE_LENGTH 20
561 #define PLT_FDE_LENGTH 36
562 #define PLT_FDE_START_OFFSET 4 + PLT_CIE_LENGTH + 8
563 #define PLT_FDE_LEN_OFFSET 4 + PLT_CIE_LENGTH + 12
564 PLT_CIE_LENGTH, 0, 0, 0, /* CIE length */
565 0, 0, 0, 0, /* CIE ID */
566 1, /* CIE version */
567 'z', 'R', 0, /* Augmentation string */
568 1, /* Code alignment factor */
569 0x78, /* Data alignment factor */
570 16, /* Return address column */
571 1, /* Augmentation size */
572 DW_EH_PE_pcrel | DW_EH_PE_sdata4, /* FDE encoding */
573 DW_CFA_def_cfa, 7, 8, /* DW_CFA_def_cfa: r7 (rsp) ofs 8 */
574 DW_CFA_offset + 16, 1, /* DW_CFA_offset: r16 (rip) at cfa-8 */
575 DW_CFA_nop, DW_CFA_nop,
576
577 PLT_FDE_LENGTH, 0, 0, 0, /* FDE length */
578 PLT_CIE_LENGTH + 8, 0, 0, 0, /* CIE pointer */
579 0, 0, 0, 0, /* R_X86_64_PC32 .plt goes here */
580 0, 0, 0, 0, /* .plt size goes here */
581 0, /* Augmentation size */
582 DW_CFA_def_cfa_offset, 16, /* DW_CFA_def_cfa_offset: 16 */
583 DW_CFA_advance_loc + 6, /* DW_CFA_advance_loc: 6 to __PLT__+6 */
584 DW_CFA_def_cfa_offset, 24, /* DW_CFA_def_cfa_offset: 24 */
585 DW_CFA_advance_loc + 10, /* DW_CFA_advance_loc: 10 to __PLT__+16 */
586 DW_CFA_def_cfa_expression, /* DW_CFA_def_cfa_expression */
587 11, /* Block length */
588 DW_OP_breg7, 8, /* DW_OP_breg7 (rsp): 8 */
589 DW_OP_breg16, 0, /* DW_OP_breg16 (rip): 0 */
590 DW_OP_lit15, DW_OP_and, DW_OP_lit11, DW_OP_ge,
591 DW_OP_lit3, DW_OP_shl, DW_OP_plus,
592 DW_CFA_nop, DW_CFA_nop, DW_CFA_nop, DW_CFA_nop
593 };
594
595 /* Architecture-specific backend data for x86-64. */
596
597 struct elf_x86_64_backend_data
598 {
599 /* Templates for the initial PLT entry and for subsequent entries. */
600 const bfd_byte *plt0_entry;
601 const bfd_byte *plt_entry;
602 unsigned int plt_entry_size; /* Size of each PLT entry. */
603
604 /* Offsets into plt0_entry that are to be replaced with GOT[1] and GOT[2]. */
605 unsigned int plt0_got1_offset;
606 unsigned int plt0_got2_offset;
607
608 /* Offset of the end of the PC-relative instruction containing
609 plt0_got2_offset. */
610 unsigned int plt0_got2_insn_end;
611
612 /* Offsets into plt_entry that are to be replaced with... */
613 unsigned int plt_got_offset; /* ... address of this symbol in .got. */
614 unsigned int plt_reloc_offset; /* ... offset into relocation table. */
615 unsigned int plt_plt_offset; /* ... offset to start of .plt. */
616
617 /* Length of the PC-relative instruction containing plt_got_offset. */
618 unsigned int plt_got_insn_size;
619
620 /* Offset of the end of the PC-relative jump to plt0_entry. */
621 unsigned int plt_plt_insn_end;
622
623 /* Offset into plt_entry where the initial value of the GOT entry points. */
624 unsigned int plt_lazy_offset;
625
626 /* .eh_frame covering the .plt section. */
627 const bfd_byte *eh_frame_plt;
628 unsigned int eh_frame_plt_size;
629 };
630
631 #define get_elf_x86_64_arch_data(bed) \
632 ((const struct elf_x86_64_backend_data *) (bed)->arch_data)
633
634 #define get_elf_x86_64_backend_data(abfd) \
635 get_elf_x86_64_arch_data (get_elf_backend_data (abfd))
636
637 #define GET_PLT_ENTRY_SIZE(abfd) \
638 get_elf_x86_64_backend_data (abfd)->plt_entry_size
639
640 /* These are the standard parameters. */
641 static const struct elf_x86_64_backend_data elf_x86_64_arch_bed =
642 {
643 elf_x86_64_plt0_entry, /* plt0_entry */
644 elf_x86_64_plt_entry, /* plt_entry */
645 sizeof (elf_x86_64_plt_entry), /* plt_entry_size */
646 2, /* plt0_got1_offset */
647 8, /* plt0_got2_offset */
648 12, /* plt0_got2_insn_end */
649 2, /* plt_got_offset */
650 7, /* plt_reloc_offset */
651 12, /* plt_plt_offset */
652 6, /* plt_got_insn_size */
653 PLT_ENTRY_SIZE, /* plt_plt_insn_end */
654 6, /* plt_lazy_offset */
655 elf_x86_64_eh_frame_plt, /* eh_frame_plt */
656 sizeof (elf_x86_64_eh_frame_plt), /* eh_frame_plt_size */
657 };
658
659 #define elf_backend_arch_data &elf_x86_64_arch_bed
660
661 /* x86-64 ELF linker hash entry. */
662
663 struct elf_x86_64_link_hash_entry
664 {
665 struct elf_link_hash_entry elf;
666
667 /* Track dynamic relocs copied for this symbol. */
668 struct elf_dyn_relocs *dyn_relocs;
669
670 #define GOT_UNKNOWN 0
671 #define GOT_NORMAL 1
672 #define GOT_TLS_GD 2
673 #define GOT_TLS_IE 3
674 #define GOT_TLS_GDESC 4
675 #define GOT_TLS_GD_BOTH_P(type) \
676 ((type) == (GOT_TLS_GD | GOT_TLS_GDESC))
677 #define GOT_TLS_GD_P(type) \
678 ((type) == GOT_TLS_GD || GOT_TLS_GD_BOTH_P (type))
679 #define GOT_TLS_GDESC_P(type) \
680 ((type) == GOT_TLS_GDESC || GOT_TLS_GD_BOTH_P (type))
681 #define GOT_TLS_GD_ANY_P(type) \
682 (GOT_TLS_GD_P (type) || GOT_TLS_GDESC_P (type))
683 unsigned char tls_type;
684
685 /* Offset of the GOTPLT entry reserved for the TLS descriptor,
686 starting at the end of the jump table. */
687 bfd_vma tlsdesc_got;
688 };
689
690 #define elf_x86_64_hash_entry(ent) \
691 ((struct elf_x86_64_link_hash_entry *)(ent))
692
693 struct elf_x86_64_obj_tdata
694 {
695 struct elf_obj_tdata root;
696
697 /* tls_type for each local got entry. */
698 char *local_got_tls_type;
699
700 /* GOTPLT entries for TLS descriptors. */
701 bfd_vma *local_tlsdesc_gotent;
702 };
703
704 #define elf_x86_64_tdata(abfd) \
705 ((struct elf_x86_64_obj_tdata *) (abfd)->tdata.any)
706
707 #define elf_x86_64_local_got_tls_type(abfd) \
708 (elf_x86_64_tdata (abfd)->local_got_tls_type)
709
710 #define elf_x86_64_local_tlsdesc_gotent(abfd) \
711 (elf_x86_64_tdata (abfd)->local_tlsdesc_gotent)
712
713 #define is_x86_64_elf(bfd) \
714 (bfd_get_flavour (bfd) == bfd_target_elf_flavour \
715 && elf_tdata (bfd) != NULL \
716 && elf_object_id (bfd) == X86_64_ELF_DATA)
717
718 static bfd_boolean
719 elf_x86_64_mkobject (bfd *abfd)
720 {
721 return bfd_elf_allocate_object (abfd, sizeof (struct elf_x86_64_obj_tdata),
722 X86_64_ELF_DATA);
723 }
724
725 /* x86-64 ELF linker hash table. */
726
727 struct elf_x86_64_link_hash_table
728 {
729 struct elf_link_hash_table elf;
730
731 /* Short-cuts to get to dynamic linker sections. */
732 asection *sdynbss;
733 asection *srelbss;
734 asection *plt_eh_frame;
735
736 union
737 {
738 bfd_signed_vma refcount;
739 bfd_vma offset;
740 } tls_ld_got;
741
742 /* The amount of space used by the jump slots in the GOT. */
743 bfd_vma sgotplt_jump_table_size;
744
745 /* Small local sym cache. */
746 struct sym_cache sym_cache;
747
748 bfd_vma (*r_info) (bfd_vma, bfd_vma);
749 bfd_vma (*r_sym) (bfd_vma);
750 unsigned int pointer_r_type;
751 const char *dynamic_interpreter;
752 int dynamic_interpreter_size;
753
754 /* _TLS_MODULE_BASE_ symbol. */
755 struct bfd_link_hash_entry *tls_module_base;
756
757 /* Used by local STT_GNU_IFUNC symbols. */
758 htab_t loc_hash_table;
759 void * loc_hash_memory;
760
761 /* The offset into splt of the PLT entry for the TLS descriptor
762 resolver. Special values are 0, if not necessary (or not found
763 to be necessary yet), and -1 if needed but not determined
764 yet. */
765 bfd_vma tlsdesc_plt;
766 /* The offset into sgot of the GOT entry used by the PLT entry
767 above. */
768 bfd_vma tlsdesc_got;
769
770 /* The index of the next R_X86_64_JUMP_SLOT entry in .rela.plt. */
771 bfd_vma next_jump_slot_index;
772 /* The index of the next R_X86_64_IRELATIVE entry in .rela.plt. */
773 bfd_vma next_irelative_index;
774 };
775
776 /* Get the x86-64 ELF linker hash table from a link_info structure. */
777
778 #define elf_x86_64_hash_table(p) \
779 (elf_hash_table_id ((struct elf_link_hash_table *) ((p)->hash)) \
780 == X86_64_ELF_DATA ? ((struct elf_x86_64_link_hash_table *) ((p)->hash)) : NULL)
781
782 #define elf_x86_64_compute_jump_table_size(htab) \
783 ((htab)->elf.srelplt->reloc_count * GOT_ENTRY_SIZE)
784
785 /* Create an entry in an x86-64 ELF linker hash table. */
786
787 static struct bfd_hash_entry *
788 elf_x86_64_link_hash_newfunc (struct bfd_hash_entry *entry,
789 struct bfd_hash_table *table,
790 const char *string)
791 {
792 /* Allocate the structure if it has not already been allocated by a
793 subclass. */
794 if (entry == NULL)
795 {
796 entry = (struct bfd_hash_entry *)
797 bfd_hash_allocate (table,
798 sizeof (struct elf_x86_64_link_hash_entry));
799 if (entry == NULL)
800 return entry;
801 }
802
803 /* Call the allocation method of the superclass. */
804 entry = _bfd_elf_link_hash_newfunc (entry, table, string);
805 if (entry != NULL)
806 {
807 struct elf_x86_64_link_hash_entry *eh;
808
809 eh = (struct elf_x86_64_link_hash_entry *) entry;
810 eh->dyn_relocs = NULL;
811 eh->tls_type = GOT_UNKNOWN;
812 eh->tlsdesc_got = (bfd_vma) -1;
813 }
814
815 return entry;
816 }
817
818 /* Compute a hash of a local hash entry. We use elf_link_hash_entry
819 for local symbol so that we can handle local STT_GNU_IFUNC symbols
820 as global symbol. We reuse indx and dynstr_index for local symbol
821 hash since they aren't used by global symbols in this backend. */
822
823 static hashval_t
824 elf_x86_64_local_htab_hash (const void *ptr)
825 {
826 struct elf_link_hash_entry *h
827 = (struct elf_link_hash_entry *) ptr;
828 return ELF_LOCAL_SYMBOL_HASH (h->indx, h->dynstr_index);
829 }
830
831 /* Compare local hash entries. */
832
833 static int
834 elf_x86_64_local_htab_eq (const void *ptr1, const void *ptr2)
835 {
836 struct elf_link_hash_entry *h1
837 = (struct elf_link_hash_entry *) ptr1;
838 struct elf_link_hash_entry *h2
839 = (struct elf_link_hash_entry *) ptr2;
840
841 return h1->indx == h2->indx && h1->dynstr_index == h2->dynstr_index;
842 }
843
844 /* Find and/or create a hash entry for local symbol. */
845
846 static struct elf_link_hash_entry *
847 elf_x86_64_get_local_sym_hash (struct elf_x86_64_link_hash_table *htab,
848 bfd *abfd, const Elf_Internal_Rela *rel,
849 bfd_boolean create)
850 {
851 struct elf_x86_64_link_hash_entry e, *ret;
852 asection *sec = abfd->sections;
853 hashval_t h = ELF_LOCAL_SYMBOL_HASH (sec->id,
854 htab->r_sym (rel->r_info));
855 void **slot;
856
857 e.elf.indx = sec->id;
858 e.elf.dynstr_index = htab->r_sym (rel->r_info);
859 slot = htab_find_slot_with_hash (htab->loc_hash_table, &e, h,
860 create ? INSERT : NO_INSERT);
861
862 if (!slot)
863 return NULL;
864
865 if (*slot)
866 {
867 ret = (struct elf_x86_64_link_hash_entry *) *slot;
868 return &ret->elf;
869 }
870
871 ret = (struct elf_x86_64_link_hash_entry *)
872 objalloc_alloc ((struct objalloc *) htab->loc_hash_memory,
873 sizeof (struct elf_x86_64_link_hash_entry));
874 if (ret)
875 {
876 memset (ret, 0, sizeof (*ret));
877 ret->elf.indx = sec->id;
878 ret->elf.dynstr_index = htab->r_sym (rel->r_info);
879 ret->elf.dynindx = -1;
880 *slot = ret;
881 }
882 return &ret->elf;
883 }
884
885 /* Create an X86-64 ELF linker hash table. */
886
887 static struct bfd_link_hash_table *
888 elf_x86_64_link_hash_table_create (bfd *abfd)
889 {
890 struct elf_x86_64_link_hash_table *ret;
891 bfd_size_type amt = sizeof (struct elf_x86_64_link_hash_table);
892
893 ret = (struct elf_x86_64_link_hash_table *) bfd_zmalloc (amt);
894 if (ret == NULL)
895 return NULL;
896
897 if (!_bfd_elf_link_hash_table_init (&ret->elf, abfd,
898 elf_x86_64_link_hash_newfunc,
899 sizeof (struct elf_x86_64_link_hash_entry),
900 X86_64_ELF_DATA))
901 {
902 free (ret);
903 return NULL;
904 }
905
906 if (ABI_64_P (abfd))
907 {
908 ret->r_info = elf64_r_info;
909 ret->r_sym = elf64_r_sym;
910 ret->pointer_r_type = R_X86_64_64;
911 ret->dynamic_interpreter = ELF64_DYNAMIC_INTERPRETER;
912 ret->dynamic_interpreter_size = sizeof ELF64_DYNAMIC_INTERPRETER;
913 }
914 else
915 {
916 ret->r_info = elf32_r_info;
917 ret->r_sym = elf32_r_sym;
918 ret->pointer_r_type = R_X86_64_32;
919 ret->dynamic_interpreter = ELF32_DYNAMIC_INTERPRETER;
920 ret->dynamic_interpreter_size = sizeof ELF32_DYNAMIC_INTERPRETER;
921 }
922
923 ret->loc_hash_table = htab_try_create (1024,
924 elf_x86_64_local_htab_hash,
925 elf_x86_64_local_htab_eq,
926 NULL);
927 ret->loc_hash_memory = objalloc_create ();
928 if (!ret->loc_hash_table || !ret->loc_hash_memory)
929 {
930 free (ret);
931 return NULL;
932 }
933
934 return &ret->elf.root;
935 }
936
937 /* Destroy an X86-64 ELF linker hash table. */
938
939 static void
940 elf_x86_64_link_hash_table_free (struct bfd_link_hash_table *hash)
941 {
942 struct elf_x86_64_link_hash_table *htab
943 = (struct elf_x86_64_link_hash_table *) hash;
944
945 if (htab->loc_hash_table)
946 htab_delete (htab->loc_hash_table);
947 if (htab->loc_hash_memory)
948 objalloc_free ((struct objalloc *) htab->loc_hash_memory);
949 _bfd_elf_link_hash_table_free (hash);
950 }
951
952 /* Create .plt, .rela.plt, .got, .got.plt, .rela.got, .dynbss, and
953 .rela.bss sections in DYNOBJ, and set up shortcuts to them in our
954 hash table. */
955
956 static bfd_boolean
957 elf_x86_64_create_dynamic_sections (bfd *dynobj,
958 struct bfd_link_info *info)
959 {
960 struct elf_x86_64_link_hash_table *htab;
961
962 if (!_bfd_elf_create_dynamic_sections (dynobj, info))
963 return FALSE;
964
965 htab = elf_x86_64_hash_table (info);
966 if (htab == NULL)
967 return FALSE;
968
969 htab->sdynbss = bfd_get_linker_section (dynobj, ".dynbss");
970 if (!info->shared)
971 htab->srelbss = bfd_get_linker_section (dynobj, ".rela.bss");
972
973 if (!htab->sdynbss
974 || (!info->shared && !htab->srelbss))
975 abort ();
976
977 if (!info->no_ld_generated_unwind_info
978 && htab->plt_eh_frame == NULL
979 && htab->elf.splt != NULL)
980 {
981 flagword flags = (SEC_ALLOC | SEC_LOAD | SEC_READONLY
982 | SEC_HAS_CONTENTS | SEC_IN_MEMORY
983 | SEC_LINKER_CREATED);
984 htab->plt_eh_frame
985 = bfd_make_section_anyway_with_flags (dynobj, ".eh_frame", flags);
986 if (htab->plt_eh_frame == NULL
987 || !bfd_set_section_alignment (dynobj, htab->plt_eh_frame, 3))
988 return FALSE;
989 }
990 return TRUE;
991 }
992
993 /* Copy the extra info we tack onto an elf_link_hash_entry. */
994
995 static void
996 elf_x86_64_copy_indirect_symbol (struct bfd_link_info *info,
997 struct elf_link_hash_entry *dir,
998 struct elf_link_hash_entry *ind)
999 {
1000 struct elf_x86_64_link_hash_entry *edir, *eind;
1001
1002 edir = (struct elf_x86_64_link_hash_entry *) dir;
1003 eind = (struct elf_x86_64_link_hash_entry *) ind;
1004
1005 if (eind->dyn_relocs != NULL)
1006 {
1007 if (edir->dyn_relocs != NULL)
1008 {
1009 struct elf_dyn_relocs **pp;
1010 struct elf_dyn_relocs *p;
1011
1012 /* Add reloc counts against the indirect sym to the direct sym
1013 list. Merge any entries against the same section. */
1014 for (pp = &eind->dyn_relocs; (p = *pp) != NULL; )
1015 {
1016 struct elf_dyn_relocs *q;
1017
1018 for (q = edir->dyn_relocs; q != NULL; q = q->next)
1019 if (q->sec == p->sec)
1020 {
1021 q->pc_count += p->pc_count;
1022 q->count += p->count;
1023 *pp = p->next;
1024 break;
1025 }
1026 if (q == NULL)
1027 pp = &p->next;
1028 }
1029 *pp = edir->dyn_relocs;
1030 }
1031
1032 edir->dyn_relocs = eind->dyn_relocs;
1033 eind->dyn_relocs = NULL;
1034 }
1035
1036 if (ind->root.type == bfd_link_hash_indirect
1037 && dir->got.refcount <= 0)
1038 {
1039 edir->tls_type = eind->tls_type;
1040 eind->tls_type = GOT_UNKNOWN;
1041 }
1042
1043 if (ELIMINATE_COPY_RELOCS
1044 && ind->root.type != bfd_link_hash_indirect
1045 && dir->dynamic_adjusted)
1046 {
1047 /* If called to transfer flags for a weakdef during processing
1048 of elf_adjust_dynamic_symbol, don't copy non_got_ref.
1049 We clear it ourselves for ELIMINATE_COPY_RELOCS. */
1050 dir->ref_dynamic |= ind->ref_dynamic;
1051 dir->ref_regular |= ind->ref_regular;
1052 dir->ref_regular_nonweak |= ind->ref_regular_nonweak;
1053 dir->needs_plt |= ind->needs_plt;
1054 dir->pointer_equality_needed |= ind->pointer_equality_needed;
1055 }
1056 else
1057 _bfd_elf_link_hash_copy_indirect (info, dir, ind);
1058 }
1059
1060 static bfd_boolean
1061 elf64_x86_64_elf_object_p (bfd *abfd)
1062 {
1063 /* Set the right machine number for an x86-64 elf64 file. */
1064 bfd_default_set_arch_mach (abfd, bfd_arch_i386, bfd_mach_x86_64);
1065 return TRUE;
1066 }
1067
1068 static bfd_boolean
1069 elf32_x86_64_elf_object_p (bfd *abfd)
1070 {
1071 /* Set the right machine number for an x86-64 elf32 file. */
1072 bfd_default_set_arch_mach (abfd, bfd_arch_i386, bfd_mach_x64_32);
1073 return TRUE;
1074 }
1075
1076 /* Return TRUE if the TLS access code sequence support transition
1077 from R_TYPE. */
1078
1079 static bfd_boolean
1080 elf_x86_64_check_tls_transition (bfd *abfd,
1081 struct bfd_link_info *info,
1082 asection *sec,
1083 bfd_byte *contents,
1084 Elf_Internal_Shdr *symtab_hdr,
1085 struct elf_link_hash_entry **sym_hashes,
1086 unsigned int r_type,
1087 const Elf_Internal_Rela *rel,
1088 const Elf_Internal_Rela *relend)
1089 {
1090 unsigned int val;
1091 unsigned long r_symndx;
1092 bfd_boolean largepic = FALSE;
1093 struct elf_link_hash_entry *h;
1094 bfd_vma offset;
1095 struct elf_x86_64_link_hash_table *htab;
1096
1097 /* Get the section contents. */
1098 if (contents == NULL)
1099 {
1100 if (elf_section_data (sec)->this_hdr.contents != NULL)
1101 contents = elf_section_data (sec)->this_hdr.contents;
1102 else
1103 {
1104 /* FIXME: How to better handle error condition? */
1105 if (!bfd_malloc_and_get_section (abfd, sec, &contents))
1106 return FALSE;
1107
1108 /* Cache the section contents for elf_link_input_bfd. */
1109 elf_section_data (sec)->this_hdr.contents = contents;
1110 }
1111 }
1112
1113 htab = elf_x86_64_hash_table (info);
1114 offset = rel->r_offset;
1115 switch (r_type)
1116 {
1117 case R_X86_64_TLSGD:
1118 case R_X86_64_TLSLD:
1119 if ((rel + 1) >= relend)
1120 return FALSE;
1121
1122 if (r_type == R_X86_64_TLSGD)
1123 {
1124 /* Check transition from GD access model. For 64bit, only
1125 .byte 0x66; leaq foo@tlsgd(%rip), %rdi
1126 .word 0x6666; rex64; call __tls_get_addr
1127 can transit to different access model. For 32bit, only
1128 leaq foo@tlsgd(%rip), %rdi
1129 .word 0x6666; rex64; call __tls_get_addr
1130 can transit to different access model. For largepic
1131 we also support:
1132 leaq foo@tlsgd(%rip), %rdi
1133 movabsq $__tls_get_addr@pltoff, %rax
1134 addq $rbx, %rax
1135 call *%rax. */
1136
1137 static const unsigned char call[] = { 0x66, 0x66, 0x48, 0xe8 };
1138 static const unsigned char leaq[] = { 0x66, 0x48, 0x8d, 0x3d };
1139
1140 if ((offset + 12) > sec->size)
1141 return FALSE;
1142
1143 if (memcmp (contents + offset + 4, call, 4) != 0)
1144 {
1145 if (!ABI_64_P (abfd)
1146 || (offset + 19) > sec->size
1147 || offset < 3
1148 || memcmp (contents + offset - 3, leaq + 1, 3) != 0
1149 || memcmp (contents + offset + 4, "\x48\xb8", 2) != 0
1150 || memcmp (contents + offset + 14, "\x48\x01\xd8\xff\xd0", 5)
1151 != 0)
1152 return FALSE;
1153 largepic = TRUE;
1154 }
1155 else if (ABI_64_P (abfd))
1156 {
1157 if (offset < 4
1158 || memcmp (contents + offset - 4, leaq, 4) != 0)
1159 return FALSE;
1160 }
1161 else
1162 {
1163 if (offset < 3
1164 || memcmp (contents + offset - 3, leaq + 1, 3) != 0)
1165 return FALSE;
1166 }
1167 }
1168 else
1169 {
1170 /* Check transition from LD access model. Only
1171 leaq foo@tlsld(%rip), %rdi;
1172 call __tls_get_addr
1173 can transit to different access model. For largepic
1174 we also support:
1175 leaq foo@tlsld(%rip), %rdi
1176 movabsq $__tls_get_addr@pltoff, %rax
1177 addq $rbx, %rax
1178 call *%rax. */
1179
1180 static const unsigned char lea[] = { 0x48, 0x8d, 0x3d };
1181
1182 if (offset < 3 || (offset + 9) > sec->size)
1183 return FALSE;
1184
1185 if (memcmp (contents + offset - 3, lea, 3) != 0)
1186 return FALSE;
1187
1188 if (0xe8 != *(contents + offset + 4))
1189 {
1190 if (!ABI_64_P (abfd)
1191 || (offset + 19) > sec->size
1192 || memcmp (contents + offset + 4, "\x48\xb8", 2) != 0
1193 || memcmp (contents + offset + 14, "\x48\x01\xd8\xff\xd0", 5)
1194 != 0)
1195 return FALSE;
1196 largepic = TRUE;
1197 }
1198 }
1199
1200 r_symndx = htab->r_sym (rel[1].r_info);
1201 if (r_symndx < symtab_hdr->sh_info)
1202 return FALSE;
1203
1204 h = sym_hashes[r_symndx - symtab_hdr->sh_info];
1205 /* Use strncmp to check __tls_get_addr since __tls_get_addr
1206 may be versioned. */
1207 return (h != NULL
1208 && h->root.root.string != NULL
1209 && (largepic
1210 ? ELF32_R_TYPE (rel[1].r_info) == R_X86_64_PLTOFF64
1211 : (ELF32_R_TYPE (rel[1].r_info) == R_X86_64_PC32
1212 || ELF32_R_TYPE (rel[1].r_info) == R_X86_64_PLT32))
1213 && (strncmp (h->root.root.string,
1214 "__tls_get_addr", 14) == 0));
1215
1216 case R_X86_64_GOTTPOFF:
1217 /* Check transition from IE access model:
1218 mov foo@gottpoff(%rip), %reg
1219 add foo@gottpoff(%rip), %reg
1220 */
1221
1222 /* Check REX prefix first. */
1223 if (offset >= 3 && (offset + 4) <= sec->size)
1224 {
1225 val = bfd_get_8 (abfd, contents + offset - 3);
1226 if (val != 0x48 && val != 0x4c)
1227 {
1228 /* X32 may have 0x44 REX prefix or no REX prefix. */
1229 if (ABI_64_P (abfd))
1230 return FALSE;
1231 }
1232 }
1233 else
1234 {
1235 /* X32 may not have any REX prefix. */
1236 if (ABI_64_P (abfd))
1237 return FALSE;
1238 if (offset < 2 || (offset + 3) > sec->size)
1239 return FALSE;
1240 }
1241
1242 val = bfd_get_8 (abfd, contents + offset - 2);
1243 if (val != 0x8b && val != 0x03)
1244 return FALSE;
1245
1246 val = bfd_get_8 (abfd, contents + offset - 1);
1247 return (val & 0xc7) == 5;
1248
1249 case R_X86_64_GOTPC32_TLSDESC:
1250 /* Check transition from GDesc access model:
1251 leaq x@tlsdesc(%rip), %rax
1252
1253 Make sure it's a leaq adding rip to a 32-bit offset
1254 into any register, although it's probably almost always
1255 going to be rax. */
1256
1257 if (offset < 3 || (offset + 4) > sec->size)
1258 return FALSE;
1259
1260 val = bfd_get_8 (abfd, contents + offset - 3);
1261 if ((val & 0xfb) != 0x48)
1262 return FALSE;
1263
1264 if (bfd_get_8 (abfd, contents + offset - 2) != 0x8d)
1265 return FALSE;
1266
1267 val = bfd_get_8 (abfd, contents + offset - 1);
1268 return (val & 0xc7) == 0x05;
1269
1270 case R_X86_64_TLSDESC_CALL:
1271 /* Check transition from GDesc access model:
1272 call *x@tlsdesc(%rax)
1273 */
1274 if (offset + 2 <= sec->size)
1275 {
1276 /* Make sure that it's a call *x@tlsdesc(%rax). */
1277 static const unsigned char call[] = { 0xff, 0x10 };
1278 return memcmp (contents + offset, call, 2) == 0;
1279 }
1280
1281 return FALSE;
1282
1283 default:
1284 abort ();
1285 }
1286 }
1287
1288 /* Return TRUE if the TLS access transition is OK or no transition
1289 will be performed. Update R_TYPE if there is a transition. */
1290
1291 static bfd_boolean
1292 elf_x86_64_tls_transition (struct bfd_link_info *info, bfd *abfd,
1293 asection *sec, bfd_byte *contents,
1294 Elf_Internal_Shdr *symtab_hdr,
1295 struct elf_link_hash_entry **sym_hashes,
1296 unsigned int *r_type, int tls_type,
1297 const Elf_Internal_Rela *rel,
1298 const Elf_Internal_Rela *relend,
1299 struct elf_link_hash_entry *h,
1300 unsigned long r_symndx)
1301 {
1302 unsigned int from_type = *r_type;
1303 unsigned int to_type = from_type;
1304 bfd_boolean check = TRUE;
1305
1306 /* Skip TLS transition for functions. */
1307 if (h != NULL
1308 && (h->type == STT_FUNC
1309 || h->type == STT_GNU_IFUNC))
1310 return TRUE;
1311
1312 switch (from_type)
1313 {
1314 case R_X86_64_TLSGD:
1315 case R_X86_64_GOTPC32_TLSDESC:
1316 case R_X86_64_TLSDESC_CALL:
1317 case R_X86_64_GOTTPOFF:
1318 if (info->executable)
1319 {
1320 if (h == NULL)
1321 to_type = R_X86_64_TPOFF32;
1322 else
1323 to_type = R_X86_64_GOTTPOFF;
1324 }
1325
1326 /* When we are called from elf_x86_64_relocate_section,
1327 CONTENTS isn't NULL and there may be additional transitions
1328 based on TLS_TYPE. */
1329 if (contents != NULL)
1330 {
1331 unsigned int new_to_type = to_type;
1332
1333 if (info->executable
1334 && h != NULL
1335 && h->dynindx == -1
1336 && tls_type == GOT_TLS_IE)
1337 new_to_type = R_X86_64_TPOFF32;
1338
1339 if (to_type == R_X86_64_TLSGD
1340 || to_type == R_X86_64_GOTPC32_TLSDESC
1341 || to_type == R_X86_64_TLSDESC_CALL)
1342 {
1343 if (tls_type == GOT_TLS_IE)
1344 new_to_type = R_X86_64_GOTTPOFF;
1345 }
1346
1347 /* We checked the transition before when we were called from
1348 elf_x86_64_check_relocs. We only want to check the new
1349 transition which hasn't been checked before. */
1350 check = new_to_type != to_type && from_type == to_type;
1351 to_type = new_to_type;
1352 }
1353
1354 break;
1355
1356 case R_X86_64_TLSLD:
1357 if (info->executable)
1358 to_type = R_X86_64_TPOFF32;
1359 break;
1360
1361 default:
1362 return TRUE;
1363 }
1364
1365 /* Return TRUE if there is no transition. */
1366 if (from_type == to_type)
1367 return TRUE;
1368
1369 /* Check if the transition can be performed. */
1370 if (check
1371 && ! elf_x86_64_check_tls_transition (abfd, info, sec, contents,
1372 symtab_hdr, sym_hashes,
1373 from_type, rel, relend))
1374 {
1375 reloc_howto_type *from, *to;
1376 const char *name;
1377
1378 from = elf_x86_64_rtype_to_howto (abfd, from_type);
1379 to = elf_x86_64_rtype_to_howto (abfd, to_type);
1380
1381 if (h)
1382 name = h->root.root.string;
1383 else
1384 {
1385 struct elf_x86_64_link_hash_table *htab;
1386
1387 htab = elf_x86_64_hash_table (info);
1388 if (htab == NULL)
1389 name = "*unknown*";
1390 else
1391 {
1392 Elf_Internal_Sym *isym;
1393
1394 isym = bfd_sym_from_r_symndx (&htab->sym_cache,
1395 abfd, r_symndx);
1396 name = bfd_elf_sym_name (abfd, symtab_hdr, isym, NULL);
1397 }
1398 }
1399
1400 (*_bfd_error_handler)
1401 (_("%B: TLS transition from %s to %s against `%s' at 0x%lx "
1402 "in section `%A' failed"),
1403 abfd, sec, from->name, to->name, name,
1404 (unsigned long) rel->r_offset);
1405 bfd_set_error (bfd_error_bad_value);
1406 return FALSE;
1407 }
1408
1409 *r_type = to_type;
1410 return TRUE;
1411 }
1412
1413 /* Look through the relocs for a section during the first phase, and
1414 calculate needed space in the global offset table, procedure
1415 linkage table, and dynamic reloc sections. */
1416
1417 static bfd_boolean
1418 elf_x86_64_check_relocs (bfd *abfd, struct bfd_link_info *info,
1419 asection *sec,
1420 const Elf_Internal_Rela *relocs)
1421 {
1422 struct elf_x86_64_link_hash_table *htab;
1423 Elf_Internal_Shdr *symtab_hdr;
1424 struct elf_link_hash_entry **sym_hashes;
1425 const Elf_Internal_Rela *rel;
1426 const Elf_Internal_Rela *rel_end;
1427 asection *sreloc;
1428
1429 if (info->relocatable)
1430 return TRUE;
1431
1432 BFD_ASSERT (is_x86_64_elf (abfd));
1433
1434 htab = elf_x86_64_hash_table (info);
1435 if (htab == NULL)
1436 return FALSE;
1437
1438 symtab_hdr = &elf_symtab_hdr (abfd);
1439 sym_hashes = elf_sym_hashes (abfd);
1440
1441 sreloc = NULL;
1442
1443 rel_end = relocs + sec->reloc_count;
1444 for (rel = relocs; rel < rel_end; rel++)
1445 {
1446 unsigned int r_type;
1447 unsigned long r_symndx;
1448 struct elf_link_hash_entry *h;
1449 Elf_Internal_Sym *isym;
1450 const char *name;
1451 bfd_boolean size_reloc;
1452
1453 r_symndx = htab->r_sym (rel->r_info);
1454 r_type = ELF32_R_TYPE (rel->r_info);
1455
1456 if (r_symndx >= NUM_SHDR_ENTRIES (symtab_hdr))
1457 {
1458 (*_bfd_error_handler) (_("%B: bad symbol index: %d"),
1459 abfd, r_symndx);
1460 return FALSE;
1461 }
1462
1463 if (r_symndx < symtab_hdr->sh_info)
1464 {
1465 /* A local symbol. */
1466 isym = bfd_sym_from_r_symndx (&htab->sym_cache,
1467 abfd, r_symndx);
1468 if (isym == NULL)
1469 return FALSE;
1470
1471 /* Check relocation against local STT_GNU_IFUNC symbol. */
1472 if (ELF_ST_TYPE (isym->st_info) == STT_GNU_IFUNC)
1473 {
1474 h = elf_x86_64_get_local_sym_hash (htab, abfd, rel,
1475 TRUE);
1476 if (h == NULL)
1477 return FALSE;
1478
1479 /* Fake a STT_GNU_IFUNC symbol. */
1480 h->type = STT_GNU_IFUNC;
1481 h->def_regular = 1;
1482 h->ref_regular = 1;
1483 h->forced_local = 1;
1484 h->root.type = bfd_link_hash_defined;
1485 }
1486 else
1487 h = NULL;
1488 }
1489 else
1490 {
1491 isym = NULL;
1492 h = sym_hashes[r_symndx - symtab_hdr->sh_info];
1493 while (h->root.type == bfd_link_hash_indirect
1494 || h->root.type == bfd_link_hash_warning)
1495 h = (struct elf_link_hash_entry *) h->root.u.i.link;
1496 }
1497
1498 /* Check invalid x32 relocations. */
1499 if (!ABI_64_P (abfd))
1500 switch (r_type)
1501 {
1502 default:
1503 break;
1504
1505 case R_X86_64_DTPOFF64:
1506 case R_X86_64_TPOFF64:
1507 case R_X86_64_PC64:
1508 case R_X86_64_GOTOFF64:
1509 case R_X86_64_GOT64:
1510 case R_X86_64_GOTPCREL64:
1511 case R_X86_64_GOTPC64:
1512 case R_X86_64_GOTPLT64:
1513 case R_X86_64_PLTOFF64:
1514 {
1515 if (h)
1516 name = h->root.root.string;
1517 else
1518 name = bfd_elf_sym_name (abfd, symtab_hdr, isym,
1519 NULL);
1520 (*_bfd_error_handler)
1521 (_("%B: relocation %s against symbol `%s' isn't "
1522 "supported in x32 mode"), abfd,
1523 x86_64_elf_howto_table[r_type].name, name);
1524 bfd_set_error (bfd_error_bad_value);
1525 return FALSE;
1526 }
1527 break;
1528 }
1529
1530 if (h != NULL)
1531 {
1532 /* Create the ifunc sections for static executables. If we
1533 never see an indirect function symbol nor we are building
1534 a static executable, those sections will be empty and
1535 won't appear in output. */
1536 switch (r_type)
1537 {
1538 default:
1539 break;
1540
1541 case R_X86_64_32S:
1542 case R_X86_64_32:
1543 case R_X86_64_64:
1544 case R_X86_64_PC32:
1545 case R_X86_64_PC64:
1546 case R_X86_64_PLT32:
1547 case R_X86_64_GOTPCREL:
1548 case R_X86_64_GOTPCREL64:
1549 if (htab->elf.dynobj == NULL)
1550 htab->elf.dynobj = abfd;
1551 if (!_bfd_elf_create_ifunc_sections (htab->elf.dynobj, info))
1552 return FALSE;
1553 break;
1554 }
1555
1556 /* It is referenced by a non-shared object. */
1557 h->ref_regular = 1;
1558 h->root.non_ir_ref = 1;
1559 }
1560
1561 if (! elf_x86_64_tls_transition (info, abfd, sec, NULL,
1562 symtab_hdr, sym_hashes,
1563 &r_type, GOT_UNKNOWN,
1564 rel, rel_end, h, r_symndx))
1565 return FALSE;
1566
1567 switch (r_type)
1568 {
1569 case R_X86_64_TLSLD:
1570 htab->tls_ld_got.refcount += 1;
1571 goto create_got;
1572
1573 case R_X86_64_TPOFF32:
1574 if (!info->executable && ABI_64_P (abfd))
1575 {
1576 if (h)
1577 name = h->root.root.string;
1578 else
1579 name = bfd_elf_sym_name (abfd, symtab_hdr, isym,
1580 NULL);
1581 (*_bfd_error_handler)
1582 (_("%B: relocation %s against `%s' can not be used when making a shared object; recompile with -fPIC"),
1583 abfd,
1584 x86_64_elf_howto_table[r_type].name, name);
1585 bfd_set_error (bfd_error_bad_value);
1586 return FALSE;
1587 }
1588 break;
1589
1590 case R_X86_64_GOTTPOFF:
1591 if (!info->executable)
1592 info->flags |= DF_STATIC_TLS;
1593 /* Fall through */
1594
1595 case R_X86_64_GOT32:
1596 case R_X86_64_GOTPCREL:
1597 case R_X86_64_TLSGD:
1598 case R_X86_64_GOT64:
1599 case R_X86_64_GOTPCREL64:
1600 case R_X86_64_GOTPLT64:
1601 case R_X86_64_GOTPC32_TLSDESC:
1602 case R_X86_64_TLSDESC_CALL:
1603 /* This symbol requires a global offset table entry. */
1604 {
1605 int tls_type, old_tls_type;
1606
1607 switch (r_type)
1608 {
1609 default: tls_type = GOT_NORMAL; break;
1610 case R_X86_64_TLSGD: tls_type = GOT_TLS_GD; break;
1611 case R_X86_64_GOTTPOFF: tls_type = GOT_TLS_IE; break;
1612 case R_X86_64_GOTPC32_TLSDESC:
1613 case R_X86_64_TLSDESC_CALL:
1614 tls_type = GOT_TLS_GDESC; break;
1615 }
1616
1617 if (h != NULL)
1618 {
1619 if (r_type == R_X86_64_GOTPLT64)
1620 {
1621 /* This relocation indicates that we also need
1622 a PLT entry, as this is a function. We don't need
1623 a PLT entry for local symbols. */
1624 h->needs_plt = 1;
1625 h->plt.refcount += 1;
1626 }
1627 h->got.refcount += 1;
1628 old_tls_type = elf_x86_64_hash_entry (h)->tls_type;
1629 }
1630 else
1631 {
1632 bfd_signed_vma *local_got_refcounts;
1633
1634 /* This is a global offset table entry for a local symbol. */
1635 local_got_refcounts = elf_local_got_refcounts (abfd);
1636 if (local_got_refcounts == NULL)
1637 {
1638 bfd_size_type size;
1639
1640 size = symtab_hdr->sh_info;
1641 size *= sizeof (bfd_signed_vma)
1642 + sizeof (bfd_vma) + sizeof (char);
1643 local_got_refcounts = ((bfd_signed_vma *)
1644 bfd_zalloc (abfd, size));
1645 if (local_got_refcounts == NULL)
1646 return FALSE;
1647 elf_local_got_refcounts (abfd) = local_got_refcounts;
1648 elf_x86_64_local_tlsdesc_gotent (abfd)
1649 = (bfd_vma *) (local_got_refcounts + symtab_hdr->sh_info);
1650 elf_x86_64_local_got_tls_type (abfd)
1651 = (char *) (local_got_refcounts + 2 * symtab_hdr->sh_info);
1652 }
1653 local_got_refcounts[r_symndx] += 1;
1654 old_tls_type
1655 = elf_x86_64_local_got_tls_type (abfd) [r_symndx];
1656 }
1657
1658 /* If a TLS symbol is accessed using IE at least once,
1659 there is no point to use dynamic model for it. */
1660 if (old_tls_type != tls_type && old_tls_type != GOT_UNKNOWN
1661 && (! GOT_TLS_GD_ANY_P (old_tls_type)
1662 || tls_type != GOT_TLS_IE))
1663 {
1664 if (old_tls_type == GOT_TLS_IE && GOT_TLS_GD_ANY_P (tls_type))
1665 tls_type = old_tls_type;
1666 else if (GOT_TLS_GD_ANY_P (old_tls_type)
1667 && GOT_TLS_GD_ANY_P (tls_type))
1668 tls_type |= old_tls_type;
1669 else
1670 {
1671 if (h)
1672 name = h->root.root.string;
1673 else
1674 name = bfd_elf_sym_name (abfd, symtab_hdr,
1675 isym, NULL);
1676 (*_bfd_error_handler)
1677 (_("%B: '%s' accessed both as normal and thread local symbol"),
1678 abfd, name);
1679 bfd_set_error (bfd_error_bad_value);
1680 return FALSE;
1681 }
1682 }
1683
1684 if (old_tls_type != tls_type)
1685 {
1686 if (h != NULL)
1687 elf_x86_64_hash_entry (h)->tls_type = tls_type;
1688 else
1689 elf_x86_64_local_got_tls_type (abfd) [r_symndx] = tls_type;
1690 }
1691 }
1692 /* Fall through */
1693
1694 case R_X86_64_GOTOFF64:
1695 case R_X86_64_GOTPC32:
1696 case R_X86_64_GOTPC64:
1697 create_got:
1698 if (htab->elf.sgot == NULL)
1699 {
1700 if (htab->elf.dynobj == NULL)
1701 htab->elf.dynobj = abfd;
1702 if (!_bfd_elf_create_got_section (htab->elf.dynobj,
1703 info))
1704 return FALSE;
1705 }
1706 break;
1707
1708 case R_X86_64_PLT32:
1709 /* This symbol requires a procedure linkage table entry. We
1710 actually build the entry in adjust_dynamic_symbol,
1711 because this might be a case of linking PIC code which is
1712 never referenced by a dynamic object, in which case we
1713 don't need to generate a procedure linkage table entry
1714 after all. */
1715
1716 /* If this is a local symbol, we resolve it directly without
1717 creating a procedure linkage table entry. */
1718 if (h == NULL)
1719 continue;
1720
1721 h->needs_plt = 1;
1722 h->plt.refcount += 1;
1723 break;
1724
1725 case R_X86_64_PLTOFF64:
1726 /* This tries to form the 'address' of a function relative
1727 to GOT. For global symbols we need a PLT entry. */
1728 if (h != NULL)
1729 {
1730 h->needs_plt = 1;
1731 h->plt.refcount += 1;
1732 }
1733 goto create_got;
1734
1735 case R_X86_64_SIZE32:
1736 case R_X86_64_SIZE64:
1737 size_reloc = TRUE;
1738 goto do_size;
1739
1740 case R_X86_64_32:
1741 if (!ABI_64_P (abfd))
1742 goto pointer;
1743 case R_X86_64_8:
1744 case R_X86_64_16:
1745 case R_X86_64_32S:
1746 /* Let's help debug shared library creation. These relocs
1747 cannot be used in shared libs. Don't error out for
1748 sections we don't care about, such as debug sections or
1749 non-constant sections. */
1750 if (info->shared
1751 && (sec->flags & SEC_ALLOC) != 0
1752 && (sec->flags & SEC_READONLY) != 0)
1753 {
1754 if (h)
1755 name = h->root.root.string;
1756 else
1757 name = bfd_elf_sym_name (abfd, symtab_hdr, isym, NULL);
1758 (*_bfd_error_handler)
1759 (_("%B: relocation %s against `%s' can not be used when making a shared object; recompile with -fPIC"),
1760 abfd, x86_64_elf_howto_table[r_type].name, name);
1761 bfd_set_error (bfd_error_bad_value);
1762 return FALSE;
1763 }
1764 /* Fall through. */
1765
1766 case R_X86_64_PC8:
1767 case R_X86_64_PC16:
1768 case R_X86_64_PC32:
1769 case R_X86_64_PC64:
1770 case R_X86_64_64:
1771 pointer:
1772 if (h != NULL && info->executable)
1773 {
1774 /* If this reloc is in a read-only section, we might
1775 need a copy reloc. We can't check reliably at this
1776 stage whether the section is read-only, as input
1777 sections have not yet been mapped to output sections.
1778 Tentatively set the flag for now, and correct in
1779 adjust_dynamic_symbol. */
1780 h->non_got_ref = 1;
1781
1782 /* We may need a .plt entry if the function this reloc
1783 refers to is in a shared lib. */
1784 h->plt.refcount += 1;
1785 if (r_type != R_X86_64_PC32 && r_type != R_X86_64_PC64)
1786 h->pointer_equality_needed = 1;
1787 }
1788
1789 size_reloc = FALSE;
1790 do_size:
1791 /* If we are creating a shared library, and this is a reloc
1792 against a global symbol, or a non PC relative reloc
1793 against a local symbol, then we need to copy the reloc
1794 into the shared library. However, if we are linking with
1795 -Bsymbolic, we do not need to copy a reloc against a
1796 global symbol which is defined in an object we are
1797 including in the link (i.e., DEF_REGULAR is set). At
1798 this point we have not seen all the input files, so it is
1799 possible that DEF_REGULAR is not set now but will be set
1800 later (it is never cleared). In case of a weak definition,
1801 DEF_REGULAR may be cleared later by a strong definition in
1802 a shared library. We account for that possibility below by
1803 storing information in the relocs_copied field of the hash
1804 table entry. A similar situation occurs when creating
1805 shared libraries and symbol visibility changes render the
1806 symbol local.
1807
1808 If on the other hand, we are creating an executable, we
1809 may need to keep relocations for symbols satisfied by a
1810 dynamic library if we manage to avoid copy relocs for the
1811 symbol. */
1812 if ((info->shared
1813 && (sec->flags & SEC_ALLOC) != 0
1814 && (! IS_X86_64_PCREL_TYPE (r_type)
1815 || (h != NULL
1816 && (! SYMBOLIC_BIND (info, h)
1817 || h->root.type == bfd_link_hash_defweak
1818 || !h->def_regular))))
1819 || (ELIMINATE_COPY_RELOCS
1820 && !info->shared
1821 && (sec->flags & SEC_ALLOC) != 0
1822 && h != NULL
1823 && (h->root.type == bfd_link_hash_defweak
1824 || !h->def_regular)))
1825 {
1826 struct elf_dyn_relocs *p;
1827 struct elf_dyn_relocs **head;
1828
1829 /* We must copy these reloc types into the output file.
1830 Create a reloc section in dynobj and make room for
1831 this reloc. */
1832 if (sreloc == NULL)
1833 {
1834 if (htab->elf.dynobj == NULL)
1835 htab->elf.dynobj = abfd;
1836
1837 sreloc = _bfd_elf_make_dynamic_reloc_section
1838 (sec, htab->elf.dynobj, ABI_64_P (abfd) ? 3 : 2,
1839 abfd, /*rela?*/ TRUE);
1840
1841 if (sreloc == NULL)
1842 return FALSE;
1843 }
1844
1845 /* If this is a global symbol, we count the number of
1846 relocations we need for this symbol. */
1847 if (h != NULL)
1848 {
1849 head = &((struct elf_x86_64_link_hash_entry *) h)->dyn_relocs;
1850 }
1851 else
1852 {
1853 /* Track dynamic relocs needed for local syms too.
1854 We really need local syms available to do this
1855 easily. Oh well. */
1856 asection *s;
1857 void **vpp;
1858
1859 isym = bfd_sym_from_r_symndx (&htab->sym_cache,
1860 abfd, r_symndx);
1861 if (isym == NULL)
1862 return FALSE;
1863
1864 s = bfd_section_from_elf_index (abfd, isym->st_shndx);
1865 if (s == NULL)
1866 s = sec;
1867
1868 /* Beware of type punned pointers vs strict aliasing
1869 rules. */
1870 vpp = &(elf_section_data (s)->local_dynrel);
1871 head = (struct elf_dyn_relocs **)vpp;
1872 }
1873
1874 p = *head;
1875 if (p == NULL || p->sec != sec)
1876 {
1877 bfd_size_type amt = sizeof *p;
1878
1879 p = ((struct elf_dyn_relocs *)
1880 bfd_alloc (htab->elf.dynobj, amt));
1881 if (p == NULL)
1882 return FALSE;
1883 p->next = *head;
1884 *head = p;
1885 p->sec = sec;
1886 p->count = 0;
1887 p->pc_count = 0;
1888 }
1889
1890 p->count += 1;
1891 /* Count size relocation as PC-relative relocation. */
1892 if (IS_X86_64_PCREL_TYPE (r_type) || size_reloc)
1893 p->pc_count += 1;
1894 }
1895 break;
1896
1897 /* This relocation describes the C++ object vtable hierarchy.
1898 Reconstruct it for later use during GC. */
1899 case R_X86_64_GNU_VTINHERIT:
1900 if (!bfd_elf_gc_record_vtinherit (abfd, sec, h, rel->r_offset))
1901 return FALSE;
1902 break;
1903
1904 /* This relocation describes which C++ vtable entries are actually
1905 used. Record for later use during GC. */
1906 case R_X86_64_GNU_VTENTRY:
1907 BFD_ASSERT (h != NULL);
1908 if (h != NULL
1909 && !bfd_elf_gc_record_vtentry (abfd, sec, h, rel->r_addend))
1910 return FALSE;
1911 break;
1912
1913 default:
1914 break;
1915 }
1916 }
1917
1918 return TRUE;
1919 }
1920
1921 /* Return the section that should be marked against GC for a given
1922 relocation. */
1923
1924 static asection *
1925 elf_x86_64_gc_mark_hook (asection *sec,
1926 struct bfd_link_info *info,
1927 Elf_Internal_Rela *rel,
1928 struct elf_link_hash_entry *h,
1929 Elf_Internal_Sym *sym)
1930 {
1931 if (h != NULL)
1932 switch (ELF32_R_TYPE (rel->r_info))
1933 {
1934 case R_X86_64_GNU_VTINHERIT:
1935 case R_X86_64_GNU_VTENTRY:
1936 return NULL;
1937 }
1938
1939 return _bfd_elf_gc_mark_hook (sec, info, rel, h, sym);
1940 }
1941
1942 /* Update the got entry reference counts for the section being removed. */
1943
1944 static bfd_boolean
1945 elf_x86_64_gc_sweep_hook (bfd *abfd, struct bfd_link_info *info,
1946 asection *sec,
1947 const Elf_Internal_Rela *relocs)
1948 {
1949 struct elf_x86_64_link_hash_table *htab;
1950 Elf_Internal_Shdr *symtab_hdr;
1951 struct elf_link_hash_entry **sym_hashes;
1952 bfd_signed_vma *local_got_refcounts;
1953 const Elf_Internal_Rela *rel, *relend;
1954
1955 if (info->relocatable)
1956 return TRUE;
1957
1958 htab = elf_x86_64_hash_table (info);
1959 if (htab == NULL)
1960 return FALSE;
1961
1962 elf_section_data (sec)->local_dynrel = NULL;
1963
1964 symtab_hdr = &elf_symtab_hdr (abfd);
1965 sym_hashes = elf_sym_hashes (abfd);
1966 local_got_refcounts = elf_local_got_refcounts (abfd);
1967
1968 htab = elf_x86_64_hash_table (info);
1969 relend = relocs + sec->reloc_count;
1970 for (rel = relocs; rel < relend; rel++)
1971 {
1972 unsigned long r_symndx;
1973 unsigned int r_type;
1974 struct elf_link_hash_entry *h = NULL;
1975
1976 r_symndx = htab->r_sym (rel->r_info);
1977 if (r_symndx >= symtab_hdr->sh_info)
1978 {
1979 h = sym_hashes[r_symndx - symtab_hdr->sh_info];
1980 while (h->root.type == bfd_link_hash_indirect
1981 || h->root.type == bfd_link_hash_warning)
1982 h = (struct elf_link_hash_entry *) h->root.u.i.link;
1983 }
1984 else
1985 {
1986 /* A local symbol. */
1987 Elf_Internal_Sym *isym;
1988
1989 isym = bfd_sym_from_r_symndx (&htab->sym_cache,
1990 abfd, r_symndx);
1991
1992 /* Check relocation against local STT_GNU_IFUNC symbol. */
1993 if (isym != NULL
1994 && ELF_ST_TYPE (isym->st_info) == STT_GNU_IFUNC)
1995 {
1996 h = elf_x86_64_get_local_sym_hash (htab, abfd, rel, FALSE);
1997 if (h == NULL)
1998 abort ();
1999 }
2000 }
2001
2002 if (h)
2003 {
2004 struct elf_x86_64_link_hash_entry *eh;
2005 struct elf_dyn_relocs **pp;
2006 struct elf_dyn_relocs *p;
2007
2008 eh = (struct elf_x86_64_link_hash_entry *) h;
2009
2010 for (pp = &eh->dyn_relocs; (p = *pp) != NULL; pp = &p->next)
2011 if (p->sec == sec)
2012 {
2013 /* Everything must go for SEC. */
2014 *pp = p->next;
2015 break;
2016 }
2017 }
2018
2019 r_type = ELF32_R_TYPE (rel->r_info);
2020 if (! elf_x86_64_tls_transition (info, abfd, sec, NULL,
2021 symtab_hdr, sym_hashes,
2022 &r_type, GOT_UNKNOWN,
2023 rel, relend, h, r_symndx))
2024 return FALSE;
2025
2026 switch (r_type)
2027 {
2028 case R_X86_64_TLSLD:
2029 if (htab->tls_ld_got.refcount > 0)
2030 htab->tls_ld_got.refcount -= 1;
2031 break;
2032
2033 case R_X86_64_TLSGD:
2034 case R_X86_64_GOTPC32_TLSDESC:
2035 case R_X86_64_TLSDESC_CALL:
2036 case R_X86_64_GOTTPOFF:
2037 case R_X86_64_GOT32:
2038 case R_X86_64_GOTPCREL:
2039 case R_X86_64_GOT64:
2040 case R_X86_64_GOTPCREL64:
2041 case R_X86_64_GOTPLT64:
2042 if (h != NULL)
2043 {
2044 if (r_type == R_X86_64_GOTPLT64 && h->plt.refcount > 0)
2045 h->plt.refcount -= 1;
2046 if (h->got.refcount > 0)
2047 h->got.refcount -= 1;
2048 if (h->type == STT_GNU_IFUNC)
2049 {
2050 if (h->plt.refcount > 0)
2051 h->plt.refcount -= 1;
2052 }
2053 }
2054 else if (local_got_refcounts != NULL)
2055 {
2056 if (local_got_refcounts[r_symndx] > 0)
2057 local_got_refcounts[r_symndx] -= 1;
2058 }
2059 break;
2060
2061 case R_X86_64_8:
2062 case R_X86_64_16:
2063 case R_X86_64_32:
2064 case R_X86_64_64:
2065 case R_X86_64_32S:
2066 case R_X86_64_PC8:
2067 case R_X86_64_PC16:
2068 case R_X86_64_PC32:
2069 case R_X86_64_PC64:
2070 case R_X86_64_SIZE32:
2071 case R_X86_64_SIZE64:
2072 if (info->shared
2073 && (h == NULL || h->type != STT_GNU_IFUNC))
2074 break;
2075 /* Fall thru */
2076
2077 case R_X86_64_PLT32:
2078 case R_X86_64_PLTOFF64:
2079 if (h != NULL)
2080 {
2081 if (h->plt.refcount > 0)
2082 h->plt.refcount -= 1;
2083 }
2084 break;
2085
2086 default:
2087 break;
2088 }
2089 }
2090
2091 return TRUE;
2092 }
2093
2094 /* Adjust a symbol defined by a dynamic object and referenced by a
2095 regular object. The current definition is in some section of the
2096 dynamic object, but we're not including those sections. We have to
2097 change the definition to something the rest of the link can
2098 understand. */
2099
2100 static bfd_boolean
2101 elf_x86_64_adjust_dynamic_symbol (struct bfd_link_info *info,
2102 struct elf_link_hash_entry *h)
2103 {
2104 struct elf_x86_64_link_hash_table *htab;
2105 asection *s;
2106 struct elf_x86_64_link_hash_entry *eh;
2107 struct elf_dyn_relocs *p;
2108
2109 /* STT_GNU_IFUNC symbol must go through PLT. */
2110 if (h->type == STT_GNU_IFUNC)
2111 {
2112 /* All local STT_GNU_IFUNC references must be treate as local
2113 calls via local PLT. */
2114 if (h->ref_regular
2115 && SYMBOL_CALLS_LOCAL (info, h))
2116 {
2117 bfd_size_type pc_count = 0, count = 0;
2118 struct elf_dyn_relocs **pp;
2119
2120 eh = (struct elf_x86_64_link_hash_entry *) h;
2121 for (pp = &eh->dyn_relocs; (p = *pp) != NULL; )
2122 {
2123 pc_count += p->pc_count;
2124 p->count -= p->pc_count;
2125 p->pc_count = 0;
2126 count += p->count;
2127 if (p->count == 0)
2128 *pp = p->next;
2129 else
2130 pp = &p->next;
2131 }
2132
2133 if (pc_count || count)
2134 {
2135 h->needs_plt = 1;
2136 h->non_got_ref = 1;
2137 if (h->plt.refcount <= 0)
2138 h->plt.refcount = 1;
2139 else
2140 h->plt.refcount += 1;
2141 }
2142 }
2143
2144 if (h->plt.refcount <= 0)
2145 {
2146 h->plt.offset = (bfd_vma) -1;
2147 h->needs_plt = 0;
2148 }
2149 return TRUE;
2150 }
2151
2152 /* If this is a function, put it in the procedure linkage table. We
2153 will fill in the contents of the procedure linkage table later,
2154 when we know the address of the .got section. */
2155 if (h->type == STT_FUNC
2156 || h->needs_plt)
2157 {
2158 if (h->plt.refcount <= 0
2159 || SYMBOL_CALLS_LOCAL (info, h)
2160 || (ELF_ST_VISIBILITY (h->other) != STV_DEFAULT
2161 && h->root.type == bfd_link_hash_undefweak))
2162 {
2163 /* This case can occur if we saw a PLT32 reloc in an input
2164 file, but the symbol was never referred to by a dynamic
2165 object, or if all references were garbage collected. In
2166 such a case, we don't actually need to build a procedure
2167 linkage table, and we can just do a PC32 reloc instead. */
2168 h->plt.offset = (bfd_vma) -1;
2169 h->needs_plt = 0;
2170 }
2171
2172 return TRUE;
2173 }
2174 else
2175 /* It's possible that we incorrectly decided a .plt reloc was
2176 needed for an R_X86_64_PC32 reloc to a non-function sym in
2177 check_relocs. We can't decide accurately between function and
2178 non-function syms in check-relocs; Objects loaded later in
2179 the link may change h->type. So fix it now. */
2180 h->plt.offset = (bfd_vma) -1;
2181
2182 /* If this is a weak symbol, and there is a real definition, the
2183 processor independent code will have arranged for us to see the
2184 real definition first, and we can just use the same value. */
2185 if (h->u.weakdef != NULL)
2186 {
2187 BFD_ASSERT (h->u.weakdef->root.type == bfd_link_hash_defined
2188 || h->u.weakdef->root.type == bfd_link_hash_defweak);
2189 h->root.u.def.section = h->u.weakdef->root.u.def.section;
2190 h->root.u.def.value = h->u.weakdef->root.u.def.value;
2191 if (ELIMINATE_COPY_RELOCS || info->nocopyreloc)
2192 h->non_got_ref = h->u.weakdef->non_got_ref;
2193 return TRUE;
2194 }
2195
2196 /* This is a reference to a symbol defined by a dynamic object which
2197 is not a function. */
2198
2199 /* If we are creating a shared library, we must presume that the
2200 only references to the symbol are via the global offset table.
2201 For such cases we need not do anything here; the relocations will
2202 be handled correctly by relocate_section. */
2203 if (info->shared)
2204 return TRUE;
2205
2206 /* If there are no references to this symbol that do not use the
2207 GOT, we don't need to generate a copy reloc. */
2208 if (!h->non_got_ref)
2209 return TRUE;
2210
2211 /* If -z nocopyreloc was given, we won't generate them either. */
2212 if (info->nocopyreloc)
2213 {
2214 h->non_got_ref = 0;
2215 return TRUE;
2216 }
2217
2218 if (ELIMINATE_COPY_RELOCS)
2219 {
2220 eh = (struct elf_x86_64_link_hash_entry *) h;
2221 for (p = eh->dyn_relocs; p != NULL; p = p->next)
2222 {
2223 s = p->sec->output_section;
2224 if (s != NULL && (s->flags & SEC_READONLY) != 0)
2225 break;
2226 }
2227
2228 /* If we didn't find any dynamic relocs in read-only sections, then
2229 we'll be keeping the dynamic relocs and avoiding the copy reloc. */
2230 if (p == NULL)
2231 {
2232 h->non_got_ref = 0;
2233 return TRUE;
2234 }
2235 }
2236
2237 /* We must allocate the symbol in our .dynbss section, which will
2238 become part of the .bss section of the executable. There will be
2239 an entry for this symbol in the .dynsym section. The dynamic
2240 object will contain position independent code, so all references
2241 from the dynamic object to this symbol will go through the global
2242 offset table. The dynamic linker will use the .dynsym entry to
2243 determine the address it must put in the global offset table, so
2244 both the dynamic object and the regular object will refer to the
2245 same memory location for the variable. */
2246
2247 htab = elf_x86_64_hash_table (info);
2248 if (htab == NULL)
2249 return FALSE;
2250
2251 /* We must generate a R_X86_64_COPY reloc to tell the dynamic linker
2252 to copy the initial value out of the dynamic object and into the
2253 runtime process image. */
2254 if ((h->root.u.def.section->flags & SEC_ALLOC) != 0 && h->size != 0)
2255 {
2256 const struct elf_backend_data *bed;
2257 bed = get_elf_backend_data (info->output_bfd);
2258 htab->srelbss->size += bed->s->sizeof_rela;
2259 h->needs_copy = 1;
2260 }
2261
2262 s = htab->sdynbss;
2263
2264 return _bfd_elf_adjust_dynamic_copy (h, s);
2265 }
2266
2267 /* Allocate space in .plt, .got and associated reloc sections for
2268 dynamic relocs. */
2269
2270 static bfd_boolean
2271 elf_x86_64_allocate_dynrelocs (struct elf_link_hash_entry *h, void * inf)
2272 {
2273 struct bfd_link_info *info;
2274 struct elf_x86_64_link_hash_table *htab;
2275 struct elf_x86_64_link_hash_entry *eh;
2276 struct elf_dyn_relocs *p;
2277 const struct elf_backend_data *bed;
2278 unsigned int plt_entry_size;
2279
2280 if (h->root.type == bfd_link_hash_indirect)
2281 return TRUE;
2282
2283 eh = (struct elf_x86_64_link_hash_entry *) h;
2284
2285 info = (struct bfd_link_info *) inf;
2286 htab = elf_x86_64_hash_table (info);
2287 if (htab == NULL)
2288 return FALSE;
2289 bed = get_elf_backend_data (info->output_bfd);
2290 plt_entry_size = GET_PLT_ENTRY_SIZE (info->output_bfd);
2291
2292 /* Since STT_GNU_IFUNC symbol must go through PLT, we handle it
2293 here if it is defined and referenced in a non-shared object. */
2294 if (h->type == STT_GNU_IFUNC
2295 && h->def_regular)
2296 return _bfd_elf_allocate_ifunc_dyn_relocs (info, h,
2297 &eh->dyn_relocs,
2298 plt_entry_size,
2299 plt_entry_size,
2300 GOT_ENTRY_SIZE);
2301 else if (htab->elf.dynamic_sections_created
2302 && h->plt.refcount > 0)
2303 {
2304 /* Make sure this symbol is output as a dynamic symbol.
2305 Undefined weak syms won't yet be marked as dynamic. */
2306 if (h->dynindx == -1
2307 && !h->forced_local)
2308 {
2309 if (! bfd_elf_link_record_dynamic_symbol (info, h))
2310 return FALSE;
2311 }
2312
2313 if (info->shared
2314 || WILL_CALL_FINISH_DYNAMIC_SYMBOL (1, 0, h))
2315 {
2316 asection *s = htab->elf.splt;
2317
2318 /* If this is the first .plt entry, make room for the special
2319 first entry. */
2320 if (s->size == 0)
2321 s->size += plt_entry_size;
2322
2323 h->plt.offset = s->size;
2324
2325 /* If this symbol is not defined in a regular file, and we are
2326 not generating a shared library, then set the symbol to this
2327 location in the .plt. This is required to make function
2328 pointers compare as equal between the normal executable and
2329 the shared library. */
2330 if (! info->shared
2331 && !h->def_regular)
2332 {
2333 h->root.u.def.section = s;
2334 h->root.u.def.value = h->plt.offset;
2335 }
2336
2337 /* Make room for this entry. */
2338 s->size += plt_entry_size;
2339
2340 /* We also need to make an entry in the .got.plt section, which
2341 will be placed in the .got section by the linker script. */
2342 htab->elf.sgotplt->size += GOT_ENTRY_SIZE;
2343
2344 /* We also need to make an entry in the .rela.plt section. */
2345 htab->elf.srelplt->size += bed->s->sizeof_rela;
2346 htab->elf.srelplt->reloc_count++;
2347 }
2348 else
2349 {
2350 h->plt.offset = (bfd_vma) -1;
2351 h->needs_plt = 0;
2352 }
2353 }
2354 else
2355 {
2356 h->plt.offset = (bfd_vma) -1;
2357 h->needs_plt = 0;
2358 }
2359
2360 eh->tlsdesc_got = (bfd_vma) -1;
2361
2362 /* If R_X86_64_GOTTPOFF symbol is now local to the binary,
2363 make it a R_X86_64_TPOFF32 requiring no GOT entry. */
2364 if (h->got.refcount > 0
2365 && info->executable
2366 && h->dynindx == -1
2367 && elf_x86_64_hash_entry (h)->tls_type == GOT_TLS_IE)
2368 {
2369 h->got.offset = (bfd_vma) -1;
2370 }
2371 else if (h->got.refcount > 0)
2372 {
2373 asection *s;
2374 bfd_boolean dyn;
2375 int tls_type = elf_x86_64_hash_entry (h)->tls_type;
2376
2377 /* Make sure this symbol is output as a dynamic symbol.
2378 Undefined weak syms won't yet be marked as dynamic. */
2379 if (h->dynindx == -1
2380 && !h->forced_local)
2381 {
2382 if (! bfd_elf_link_record_dynamic_symbol (info, h))
2383 return FALSE;
2384 }
2385
2386 if (GOT_TLS_GDESC_P (tls_type))
2387 {
2388 eh->tlsdesc_got = htab->elf.sgotplt->size
2389 - elf_x86_64_compute_jump_table_size (htab);
2390 htab->elf.sgotplt->size += 2 * GOT_ENTRY_SIZE;
2391 h->got.offset = (bfd_vma) -2;
2392 }
2393 if (! GOT_TLS_GDESC_P (tls_type)
2394 || GOT_TLS_GD_P (tls_type))
2395 {
2396 s = htab->elf.sgot;
2397 h->got.offset = s->size;
2398 s->size += GOT_ENTRY_SIZE;
2399 if (GOT_TLS_GD_P (tls_type))
2400 s->size += GOT_ENTRY_SIZE;
2401 }
2402 dyn = htab->elf.dynamic_sections_created;
2403 /* R_X86_64_TLSGD needs one dynamic relocation if local symbol
2404 and two if global.
2405 R_X86_64_GOTTPOFF needs one dynamic relocation. */
2406 if ((GOT_TLS_GD_P (tls_type) && h->dynindx == -1)
2407 || tls_type == GOT_TLS_IE)
2408 htab->elf.srelgot->size += bed->s->sizeof_rela;
2409 else if (GOT_TLS_GD_P (tls_type))
2410 htab->elf.srelgot->size += 2 * bed->s->sizeof_rela;
2411 else if (! GOT_TLS_GDESC_P (tls_type)
2412 && (ELF_ST_VISIBILITY (h->other) == STV_DEFAULT
2413 || h->root.type != bfd_link_hash_undefweak)
2414 && (info->shared
2415 || WILL_CALL_FINISH_DYNAMIC_SYMBOL (dyn, 0, h)))
2416 htab->elf.srelgot->size += bed->s->sizeof_rela;
2417 if (GOT_TLS_GDESC_P (tls_type))
2418 {
2419 htab->elf.srelplt->size += bed->s->sizeof_rela;
2420 htab->tlsdesc_plt = (bfd_vma) -1;
2421 }
2422 }
2423 else
2424 h->got.offset = (bfd_vma) -1;
2425
2426 if (eh->dyn_relocs == NULL)
2427 return TRUE;
2428
2429 /* In the shared -Bsymbolic case, discard space allocated for
2430 dynamic pc-relative relocs against symbols which turn out to be
2431 defined in regular objects. For the normal shared case, discard
2432 space for pc-relative relocs that have become local due to symbol
2433 visibility changes. */
2434
2435 if (info->shared)
2436 {
2437 /* Relocs that use pc_count are those that appear on a call
2438 insn, or certain REL relocs that can generated via assembly.
2439 We want calls to protected symbols to resolve directly to the
2440 function rather than going via the plt. If people want
2441 function pointer comparisons to work as expected then they
2442 should avoid writing weird assembly. */
2443 if (SYMBOL_CALLS_LOCAL (info, h))
2444 {
2445 struct elf_dyn_relocs **pp;
2446
2447 for (pp = &eh->dyn_relocs; (p = *pp) != NULL; )
2448 {
2449 p->count -= p->pc_count;
2450 p->pc_count = 0;
2451 if (p->count == 0)
2452 *pp = p->next;
2453 else
2454 pp = &p->next;
2455 }
2456 }
2457
2458 /* Also discard relocs on undefined weak syms with non-default
2459 visibility. */
2460 if (eh->dyn_relocs != NULL
2461 && h->root.type == bfd_link_hash_undefweak)
2462 {
2463 if (ELF_ST_VISIBILITY (h->other) != STV_DEFAULT)
2464 eh->dyn_relocs = NULL;
2465
2466 /* Make sure undefined weak symbols are output as a dynamic
2467 symbol in PIEs. */
2468 else if (h->dynindx == -1
2469 && ! h->forced_local
2470 && ! bfd_elf_link_record_dynamic_symbol (info, h))
2471 return FALSE;
2472 }
2473
2474 }
2475 else if (ELIMINATE_COPY_RELOCS)
2476 {
2477 /* For the non-shared case, discard space for relocs against
2478 symbols which turn out to need copy relocs or are not
2479 dynamic. */
2480
2481 if (!h->non_got_ref
2482 && ((h->def_dynamic
2483 && !h->def_regular)
2484 || (htab->elf.dynamic_sections_created
2485 && (h->root.type == bfd_link_hash_undefweak
2486 || h->root.type == bfd_link_hash_undefined))))
2487 {
2488 /* Make sure this symbol is output as a dynamic symbol.
2489 Undefined weak syms won't yet be marked as dynamic. */
2490 if (h->dynindx == -1
2491 && ! h->forced_local
2492 && ! bfd_elf_link_record_dynamic_symbol (info, h))
2493 return FALSE;
2494
2495 /* If that succeeded, we know we'll be keeping all the
2496 relocs. */
2497 if (h->dynindx != -1)
2498 goto keep;
2499 }
2500
2501 eh->dyn_relocs = NULL;
2502
2503 keep: ;
2504 }
2505
2506 /* Finally, allocate space. */
2507 for (p = eh->dyn_relocs; p != NULL; p = p->next)
2508 {
2509 asection * sreloc;
2510
2511 sreloc = elf_section_data (p->sec)->sreloc;
2512
2513 BFD_ASSERT (sreloc != NULL);
2514
2515 sreloc->size += p->count * bed->s->sizeof_rela;
2516 }
2517
2518 return TRUE;
2519 }
2520
2521 /* Allocate space in .plt, .got and associated reloc sections for
2522 local dynamic relocs. */
2523
2524 static bfd_boolean
2525 elf_x86_64_allocate_local_dynrelocs (void **slot, void *inf)
2526 {
2527 struct elf_link_hash_entry *h
2528 = (struct elf_link_hash_entry *) *slot;
2529
2530 if (h->type != STT_GNU_IFUNC
2531 || !h->def_regular
2532 || !h->ref_regular
2533 || !h->forced_local
2534 || h->root.type != bfd_link_hash_defined)
2535 abort ();
2536
2537 return elf_x86_64_allocate_dynrelocs (h, inf);
2538 }
2539
2540 /* Find any dynamic relocs that apply to read-only sections. */
2541
2542 static bfd_boolean
2543 elf_x86_64_readonly_dynrelocs (struct elf_link_hash_entry *h,
2544 void * inf)
2545 {
2546 struct elf_x86_64_link_hash_entry *eh;
2547 struct elf_dyn_relocs *p;
2548
2549 /* Skip local IFUNC symbols. */
2550 if (h->forced_local && h->type == STT_GNU_IFUNC)
2551 return TRUE;
2552
2553 eh = (struct elf_x86_64_link_hash_entry *) h;
2554 for (p = eh->dyn_relocs; p != NULL; p = p->next)
2555 {
2556 asection *s = p->sec->output_section;
2557
2558 if (s != NULL && (s->flags & SEC_READONLY) != 0)
2559 {
2560 struct bfd_link_info *info = (struct bfd_link_info *) inf;
2561
2562 info->flags |= DF_TEXTREL;
2563
2564 if (info->warn_shared_textrel && info->shared)
2565 info->callbacks->einfo (_("%P: %B: warning: relocation against `%s' in readonly section `%A'.\n"),
2566 p->sec->owner, h->root.root.string,
2567 p->sec);
2568
2569 /* Not an error, just cut short the traversal. */
2570 return FALSE;
2571 }
2572 }
2573 return TRUE;
2574 }
2575
2576 /* Convert
2577 mov foo@GOTPCREL(%rip), %reg
2578 to
2579 lea foo(%rip), %reg
2580 with the local symbol, foo. */
2581
2582 static bfd_boolean
2583 elf_x86_64_convert_mov_to_lea (bfd *abfd, asection *sec,
2584 struct bfd_link_info *link_info)
2585 {
2586 Elf_Internal_Shdr *symtab_hdr;
2587 Elf_Internal_Rela *internal_relocs;
2588 Elf_Internal_Rela *irel, *irelend;
2589 bfd_byte *contents;
2590 struct elf_x86_64_link_hash_table *htab;
2591 bfd_boolean changed_contents;
2592 bfd_boolean changed_relocs;
2593 bfd_signed_vma *local_got_refcounts;
2594
2595 /* Don't even try to convert non-ELF outputs. */
2596 if (!is_elf_hash_table (link_info->hash))
2597 return FALSE;
2598
2599 /* Nothing to do if there are no codes, no relocations or no output. */
2600 if ((sec->flags & (SEC_CODE | SEC_RELOC)) != (SEC_CODE | SEC_RELOC)
2601 || sec->reloc_count == 0
2602 || discarded_section (sec))
2603 return TRUE;
2604
2605 symtab_hdr = &elf_tdata (abfd)->symtab_hdr;
2606
2607 /* Load the relocations for this section. */
2608 internal_relocs = (_bfd_elf_link_read_relocs
2609 (abfd, sec, NULL, (Elf_Internal_Rela *) NULL,
2610 link_info->keep_memory));
2611 if (internal_relocs == NULL)
2612 return FALSE;
2613
2614 htab = elf_x86_64_hash_table (link_info);
2615 changed_contents = FALSE;
2616 changed_relocs = FALSE;
2617 local_got_refcounts = elf_local_got_refcounts (abfd);
2618
2619 /* Get the section contents. */
2620 if (elf_section_data (sec)->this_hdr.contents != NULL)
2621 contents = elf_section_data (sec)->this_hdr.contents;
2622 else
2623 {
2624 if (!bfd_malloc_and_get_section (abfd, sec, &contents))
2625 goto error_return;
2626 }
2627
2628 irelend = internal_relocs + sec->reloc_count;
2629 for (irel = internal_relocs; irel < irelend; irel++)
2630 {
2631 unsigned int r_type = ELF32_R_TYPE (irel->r_info);
2632 unsigned int r_symndx = htab->r_sym (irel->r_info);
2633 unsigned int indx;
2634 struct elf_link_hash_entry *h;
2635
2636 if (r_type != R_X86_64_GOTPCREL)
2637 continue;
2638
2639 /* Get the symbol referred to by the reloc. */
2640 if (r_symndx < symtab_hdr->sh_info)
2641 {
2642 Elf_Internal_Sym *isym;
2643
2644 isym = bfd_sym_from_r_symndx (&htab->sym_cache,
2645 abfd, r_symndx);
2646
2647 /* STT_GNU_IFUNC must keep R_X86_64_GOTPCREL relocation. */
2648 if (ELF_ST_TYPE (isym->st_info) != STT_GNU_IFUNC
2649 && bfd_get_8 (input_bfd,
2650 contents + irel->r_offset - 2) == 0x8b)
2651 {
2652 bfd_put_8 (output_bfd, 0x8d,
2653 contents + irel->r_offset - 2);
2654 irel->r_info = htab->r_info (r_symndx, R_X86_64_PC32);
2655 if (local_got_refcounts != NULL
2656 && local_got_refcounts[r_symndx] > 0)
2657 local_got_refcounts[r_symndx] -= 1;
2658 changed_contents = TRUE;
2659 changed_relocs = TRUE;
2660 }
2661 continue;
2662 }
2663
2664 indx = r_symndx - symtab_hdr->sh_info;
2665 h = elf_sym_hashes (abfd)[indx];
2666 BFD_ASSERT (h != NULL);
2667
2668 while (h->root.type == bfd_link_hash_indirect
2669 || h->root.type == bfd_link_hash_warning)
2670 h = (struct elf_link_hash_entry *) h->root.u.i.link;
2671
2672 /* STT_GNU_IFUNC must keep R_X86_64_GOTPCREL relocation. We also
2673 avoid optimizing _DYNAMIC since ld.so may use its link-time
2674 address. */
2675 if (h->def_regular
2676 && h->type != STT_GNU_IFUNC
2677 && h != htab->elf.hdynamic
2678 && SYMBOL_REFERENCES_LOCAL (link_info, h)
2679 && bfd_get_8 (input_bfd,
2680 contents + irel->r_offset - 2) == 0x8b)
2681 {
2682 bfd_put_8 (output_bfd, 0x8d,
2683 contents + irel->r_offset - 2);
2684 irel->r_info = htab->r_info (r_symndx, R_X86_64_PC32);
2685 if (h->got.refcount > 0)
2686 h->got.refcount -= 1;
2687 changed_contents = TRUE;
2688 changed_relocs = TRUE;
2689 }
2690 }
2691
2692 if (contents != NULL
2693 && elf_section_data (sec)->this_hdr.contents != contents)
2694 {
2695 if (!changed_contents && !link_info->keep_memory)
2696 free (contents);
2697 else
2698 {
2699 /* Cache the section contents for elf_link_input_bfd. */
2700 elf_section_data (sec)->this_hdr.contents = contents;
2701 }
2702 }
2703
2704 if (elf_section_data (sec)->relocs != internal_relocs)
2705 {
2706 if (!changed_relocs)
2707 free (internal_relocs);
2708 else
2709 elf_section_data (sec)->relocs = internal_relocs;
2710 }
2711
2712 return TRUE;
2713
2714 error_return:
2715 if (contents != NULL
2716 && elf_section_data (sec)->this_hdr.contents != contents)
2717 free (contents);
2718 if (internal_relocs != NULL
2719 && elf_section_data (sec)->relocs != internal_relocs)
2720 free (internal_relocs);
2721 return FALSE;
2722 }
2723
2724 /* Set the sizes of the dynamic sections. */
2725
2726 static bfd_boolean
2727 elf_x86_64_size_dynamic_sections (bfd *output_bfd,
2728 struct bfd_link_info *info)
2729 {
2730 struct elf_x86_64_link_hash_table *htab;
2731 bfd *dynobj;
2732 asection *s;
2733 bfd_boolean relocs;
2734 bfd *ibfd;
2735 const struct elf_backend_data *bed;
2736
2737 htab = elf_x86_64_hash_table (info);
2738 if (htab == NULL)
2739 return FALSE;
2740 bed = get_elf_backend_data (output_bfd);
2741
2742 dynobj = htab->elf.dynobj;
2743 if (dynobj == NULL)
2744 abort ();
2745
2746 if (htab->elf.dynamic_sections_created)
2747 {
2748 /* Set the contents of the .interp section to the interpreter. */
2749 if (info->executable)
2750 {
2751 s = bfd_get_linker_section (dynobj, ".interp");
2752 if (s == NULL)
2753 abort ();
2754 s->size = htab->dynamic_interpreter_size;
2755 s->contents = (unsigned char *) htab->dynamic_interpreter;
2756 }
2757 }
2758
2759 /* Set up .got offsets for local syms, and space for local dynamic
2760 relocs. */
2761 for (ibfd = info->input_bfds; ibfd != NULL; ibfd = ibfd->link_next)
2762 {
2763 bfd_signed_vma *local_got;
2764 bfd_signed_vma *end_local_got;
2765 char *local_tls_type;
2766 bfd_vma *local_tlsdesc_gotent;
2767 bfd_size_type locsymcount;
2768 Elf_Internal_Shdr *symtab_hdr;
2769 asection *srel;
2770
2771 if (! is_x86_64_elf (ibfd))
2772 continue;
2773
2774 for (s = ibfd->sections; s != NULL; s = s->next)
2775 {
2776 struct elf_dyn_relocs *p;
2777
2778 if (!elf_x86_64_convert_mov_to_lea (ibfd, s, info))
2779 return FALSE;
2780
2781 for (p = (struct elf_dyn_relocs *)
2782 (elf_section_data (s)->local_dynrel);
2783 p != NULL;
2784 p = p->next)
2785 {
2786 if (!bfd_is_abs_section (p->sec)
2787 && bfd_is_abs_section (p->sec->output_section))
2788 {
2789 /* Input section has been discarded, either because
2790 it is a copy of a linkonce section or due to
2791 linker script /DISCARD/, so we'll be discarding
2792 the relocs too. */
2793 }
2794 else if (p->count != 0)
2795 {
2796 srel = elf_section_data (p->sec)->sreloc;
2797 srel->size += p->count * bed->s->sizeof_rela;
2798 if ((p->sec->output_section->flags & SEC_READONLY) != 0
2799 && (info->flags & DF_TEXTREL) == 0)
2800 {
2801 info->flags |= DF_TEXTREL;
2802 if (info->warn_shared_textrel && info->shared)
2803 info->callbacks->einfo (_("%P: %B: warning: relocation in readonly section `%A'.\n"),
2804 p->sec->owner, p->sec);
2805 }
2806 }
2807 }
2808 }
2809
2810 local_got = elf_local_got_refcounts (ibfd);
2811 if (!local_got)
2812 continue;
2813
2814 symtab_hdr = &elf_symtab_hdr (ibfd);
2815 locsymcount = symtab_hdr->sh_info;
2816 end_local_got = local_got + locsymcount;
2817 local_tls_type = elf_x86_64_local_got_tls_type (ibfd);
2818 local_tlsdesc_gotent = elf_x86_64_local_tlsdesc_gotent (ibfd);
2819 s = htab->elf.sgot;
2820 srel = htab->elf.srelgot;
2821 for (; local_got < end_local_got;
2822 ++local_got, ++local_tls_type, ++local_tlsdesc_gotent)
2823 {
2824 *local_tlsdesc_gotent = (bfd_vma) -1;
2825 if (*local_got > 0)
2826 {
2827 if (GOT_TLS_GDESC_P (*local_tls_type))
2828 {
2829 *local_tlsdesc_gotent = htab->elf.sgotplt->size
2830 - elf_x86_64_compute_jump_table_size (htab);
2831 htab->elf.sgotplt->size += 2 * GOT_ENTRY_SIZE;
2832 *local_got = (bfd_vma) -2;
2833 }
2834 if (! GOT_TLS_GDESC_P (*local_tls_type)
2835 || GOT_TLS_GD_P (*local_tls_type))
2836 {
2837 *local_got = s->size;
2838 s->size += GOT_ENTRY_SIZE;
2839 if (GOT_TLS_GD_P (*local_tls_type))
2840 s->size += GOT_ENTRY_SIZE;
2841 }
2842 if (info->shared
2843 || GOT_TLS_GD_ANY_P (*local_tls_type)
2844 || *local_tls_type == GOT_TLS_IE)
2845 {
2846 if (GOT_TLS_GDESC_P (*local_tls_type))
2847 {
2848 htab->elf.srelplt->size
2849 += bed->s->sizeof_rela;
2850 htab->tlsdesc_plt = (bfd_vma) -1;
2851 }
2852 if (! GOT_TLS_GDESC_P (*local_tls_type)
2853 || GOT_TLS_GD_P (*local_tls_type))
2854 srel->size += bed->s->sizeof_rela;
2855 }
2856 }
2857 else
2858 *local_got = (bfd_vma) -1;
2859 }
2860 }
2861
2862 if (htab->tls_ld_got.refcount > 0)
2863 {
2864 /* Allocate 2 got entries and 1 dynamic reloc for R_X86_64_TLSLD
2865 relocs. */
2866 htab->tls_ld_got.offset = htab->elf.sgot->size;
2867 htab->elf.sgot->size += 2 * GOT_ENTRY_SIZE;
2868 htab->elf.srelgot->size += bed->s->sizeof_rela;
2869 }
2870 else
2871 htab->tls_ld_got.offset = -1;
2872
2873 /* Allocate global sym .plt and .got entries, and space for global
2874 sym dynamic relocs. */
2875 elf_link_hash_traverse (&htab->elf, elf_x86_64_allocate_dynrelocs,
2876 info);
2877
2878 /* Allocate .plt and .got entries, and space for local symbols. */
2879 htab_traverse (htab->loc_hash_table,
2880 elf_x86_64_allocate_local_dynrelocs,
2881 info);
2882
2883 /* For every jump slot reserved in the sgotplt, reloc_count is
2884 incremented. However, when we reserve space for TLS descriptors,
2885 it's not incremented, so in order to compute the space reserved
2886 for them, it suffices to multiply the reloc count by the jump
2887 slot size.
2888
2889 PR ld/13302: We start next_irelative_index at the end of .rela.plt
2890 so that R_X86_64_IRELATIVE entries come last. */
2891 if (htab->elf.srelplt)
2892 {
2893 htab->sgotplt_jump_table_size
2894 = elf_x86_64_compute_jump_table_size (htab);
2895 htab->next_irelative_index = htab->elf.srelplt->reloc_count - 1;
2896 }
2897 else if (htab->elf.irelplt)
2898 htab->next_irelative_index = htab->elf.irelplt->reloc_count - 1;
2899
2900 if (htab->tlsdesc_plt)
2901 {
2902 /* If we're not using lazy TLS relocations, don't generate the
2903 PLT and GOT entries they require. */
2904 if ((info->flags & DF_BIND_NOW))
2905 htab->tlsdesc_plt = 0;
2906 else
2907 {
2908 htab->tlsdesc_got = htab->elf.sgot->size;
2909 htab->elf.sgot->size += GOT_ENTRY_SIZE;
2910 /* Reserve room for the initial entry.
2911 FIXME: we could probably do away with it in this case. */
2912 if (htab->elf.splt->size == 0)
2913 htab->elf.splt->size += GET_PLT_ENTRY_SIZE (output_bfd);
2914 htab->tlsdesc_plt = htab->elf.splt->size;
2915 htab->elf.splt->size += GET_PLT_ENTRY_SIZE (output_bfd);
2916 }
2917 }
2918
2919 if (htab->elf.sgotplt)
2920 {
2921 /* Don't allocate .got.plt section if there are no GOT nor PLT
2922 entries and there is no refeence to _GLOBAL_OFFSET_TABLE_. */
2923 if ((htab->elf.hgot == NULL
2924 || !htab->elf.hgot->ref_regular_nonweak)
2925 && (htab->elf.sgotplt->size
2926 == get_elf_backend_data (output_bfd)->got_header_size)
2927 && (htab->elf.splt == NULL
2928 || htab->elf.splt->size == 0)
2929 && (htab->elf.sgot == NULL
2930 || htab->elf.sgot->size == 0)
2931 && (htab->elf.iplt == NULL
2932 || htab->elf.iplt->size == 0)
2933 && (htab->elf.igotplt == NULL
2934 || htab->elf.igotplt->size == 0))
2935 htab->elf.sgotplt->size = 0;
2936 }
2937
2938 if (htab->plt_eh_frame != NULL
2939 && htab->elf.splt != NULL
2940 && htab->elf.splt->size != 0
2941 && !bfd_is_abs_section (htab->elf.splt->output_section)
2942 && _bfd_elf_eh_frame_present (info))
2943 {
2944 const struct elf_x86_64_backend_data *arch_data
2945 = get_elf_x86_64_arch_data (bed);
2946 htab->plt_eh_frame->size = arch_data->eh_frame_plt_size;
2947 }
2948
2949 /* We now have determined the sizes of the various dynamic sections.
2950 Allocate memory for them. */
2951 relocs = FALSE;
2952 for (s = dynobj->sections; s != NULL; s = s->next)
2953 {
2954 if ((s->flags & SEC_LINKER_CREATED) == 0)
2955 continue;
2956
2957 if (s == htab->elf.splt
2958 || s == htab->elf.sgot
2959 || s == htab->elf.sgotplt
2960 || s == htab->elf.iplt
2961 || s == htab->elf.igotplt
2962 || s == htab->plt_eh_frame
2963 || s == htab->sdynbss)
2964 {
2965 /* Strip this section if we don't need it; see the
2966 comment below. */
2967 }
2968 else if (CONST_STRNEQ (bfd_get_section_name (dynobj, s), ".rela"))
2969 {
2970 if (s->size != 0 && s != htab->elf.srelplt)
2971 relocs = TRUE;
2972
2973 /* We use the reloc_count field as a counter if we need
2974 to copy relocs into the output file. */
2975 if (s != htab->elf.srelplt)
2976 s->reloc_count = 0;
2977 }
2978 else
2979 {
2980 /* It's not one of our sections, so don't allocate space. */
2981 continue;
2982 }
2983
2984 if (s->size == 0)
2985 {
2986 /* If we don't need this section, strip it from the
2987 output file. This is mostly to handle .rela.bss and
2988 .rela.plt. We must create both sections in
2989 create_dynamic_sections, because they must be created
2990 before the linker maps input sections to output
2991 sections. The linker does that before
2992 adjust_dynamic_symbol is called, and it is that
2993 function which decides whether anything needs to go
2994 into these sections. */
2995
2996 s->flags |= SEC_EXCLUDE;
2997 continue;
2998 }
2999
3000 if ((s->flags & SEC_HAS_CONTENTS) == 0)
3001 continue;
3002
3003 /* Allocate memory for the section contents. We use bfd_zalloc
3004 here in case unused entries are not reclaimed before the
3005 section's contents are written out. This should not happen,
3006 but this way if it does, we get a R_X86_64_NONE reloc instead
3007 of garbage. */
3008 s->contents = (bfd_byte *) bfd_zalloc (dynobj, s->size);
3009 if (s->contents == NULL)
3010 return FALSE;
3011 }
3012
3013 if (htab->plt_eh_frame != NULL
3014 && htab->plt_eh_frame->contents != NULL)
3015 {
3016 const struct elf_x86_64_backend_data *arch_data
3017 = get_elf_x86_64_arch_data (bed);
3018
3019 memcpy (htab->plt_eh_frame->contents,
3020 arch_data->eh_frame_plt, htab->plt_eh_frame->size);
3021 bfd_put_32 (dynobj, htab->elf.splt->size,
3022 htab->plt_eh_frame->contents + PLT_FDE_LEN_OFFSET);
3023 }
3024
3025 if (htab->elf.dynamic_sections_created)
3026 {
3027 /* Add some entries to the .dynamic section. We fill in the
3028 values later, in elf_x86_64_finish_dynamic_sections, but we
3029 must add the entries now so that we get the correct size for
3030 the .dynamic section. The DT_DEBUG entry is filled in by the
3031 dynamic linker and used by the debugger. */
3032 #define add_dynamic_entry(TAG, VAL) \
3033 _bfd_elf_add_dynamic_entry (info, TAG, VAL)
3034
3035 if (info->executable)
3036 {
3037 if (!add_dynamic_entry (DT_DEBUG, 0))
3038 return FALSE;
3039 }
3040
3041 if (htab->elf.splt->size != 0)
3042 {
3043 if (!add_dynamic_entry (DT_PLTGOT, 0)
3044 || !add_dynamic_entry (DT_PLTRELSZ, 0)
3045 || !add_dynamic_entry (DT_PLTREL, DT_RELA)
3046 || !add_dynamic_entry (DT_JMPREL, 0))
3047 return FALSE;
3048
3049 if (htab->tlsdesc_plt
3050 && (!add_dynamic_entry (DT_TLSDESC_PLT, 0)
3051 || !add_dynamic_entry (DT_TLSDESC_GOT, 0)))
3052 return FALSE;
3053 }
3054
3055 if (relocs)
3056 {
3057 if (!add_dynamic_entry (DT_RELA, 0)
3058 || !add_dynamic_entry (DT_RELASZ, 0)
3059 || !add_dynamic_entry (DT_RELAENT, bed->s->sizeof_rela))
3060 return FALSE;
3061
3062 /* If any dynamic relocs apply to a read-only section,
3063 then we need a DT_TEXTREL entry. */
3064 if ((info->flags & DF_TEXTREL) == 0)
3065 elf_link_hash_traverse (&htab->elf,
3066 elf_x86_64_readonly_dynrelocs,
3067 info);
3068
3069 if ((info->flags & DF_TEXTREL) != 0)
3070 {
3071 if (!add_dynamic_entry (DT_TEXTREL, 0))
3072 return FALSE;
3073 }
3074 }
3075 }
3076 #undef add_dynamic_entry
3077
3078 return TRUE;
3079 }
3080
3081 static bfd_boolean
3082 elf_x86_64_always_size_sections (bfd *output_bfd,
3083 struct bfd_link_info *info)
3084 {
3085 asection *tls_sec = elf_hash_table (info)->tls_sec;
3086
3087 if (tls_sec)
3088 {
3089 struct elf_link_hash_entry *tlsbase;
3090
3091 tlsbase = elf_link_hash_lookup (elf_hash_table (info),
3092 "_TLS_MODULE_BASE_",
3093 FALSE, FALSE, FALSE);
3094
3095 if (tlsbase && tlsbase->type == STT_TLS)
3096 {
3097 struct elf_x86_64_link_hash_table *htab;
3098 struct bfd_link_hash_entry *bh = NULL;
3099 const struct elf_backend_data *bed
3100 = get_elf_backend_data (output_bfd);
3101
3102 htab = elf_x86_64_hash_table (info);
3103 if (htab == NULL)
3104 return FALSE;
3105
3106 if (!(_bfd_generic_link_add_one_symbol
3107 (info, output_bfd, "_TLS_MODULE_BASE_", BSF_LOCAL,
3108 tls_sec, 0, NULL, FALSE,
3109 bed->collect, &bh)))
3110 return FALSE;
3111
3112 htab->tls_module_base = bh;
3113
3114 tlsbase = (struct elf_link_hash_entry *)bh;
3115 tlsbase->def_regular = 1;
3116 tlsbase->other = STV_HIDDEN;
3117 (*bed->elf_backend_hide_symbol) (info, tlsbase, TRUE);
3118 }
3119 }
3120
3121 return TRUE;
3122 }
3123
3124 /* _TLS_MODULE_BASE_ needs to be treated especially when linking
3125 executables. Rather than setting it to the beginning of the TLS
3126 section, we have to set it to the end. This function may be called
3127 multiple times, it is idempotent. */
3128
3129 static void
3130 elf_x86_64_set_tls_module_base (struct bfd_link_info *info)
3131 {
3132 struct elf_x86_64_link_hash_table *htab;
3133 struct bfd_link_hash_entry *base;
3134
3135 if (!info->executable)
3136 return;
3137
3138 htab = elf_x86_64_hash_table (info);
3139 if (htab == NULL)
3140 return;
3141
3142 base = htab->tls_module_base;
3143 if (base == NULL)
3144 return;
3145
3146 base->u.def.value = htab->elf.tls_size;
3147 }
3148
3149 /* Return the base VMA address which should be subtracted from real addresses
3150 when resolving @dtpoff relocation.
3151 This is PT_TLS segment p_vaddr. */
3152
3153 static bfd_vma
3154 elf_x86_64_dtpoff_base (struct bfd_link_info *info)
3155 {
3156 /* If tls_sec is NULL, we should have signalled an error already. */
3157 if (elf_hash_table (info)->tls_sec == NULL)
3158 return 0;
3159 return elf_hash_table (info)->tls_sec->vma;
3160 }
3161
3162 /* Return the relocation value for @tpoff relocation
3163 if STT_TLS virtual address is ADDRESS. */
3164
3165 static bfd_vma
3166 elf_x86_64_tpoff (struct bfd_link_info *info, bfd_vma address)
3167 {
3168 struct elf_link_hash_table *htab = elf_hash_table (info);
3169 const struct elf_backend_data *bed = get_elf_backend_data (info->output_bfd);
3170 bfd_vma static_tls_size;
3171
3172 /* If tls_segment is NULL, we should have signalled an error already. */
3173 if (htab->tls_sec == NULL)
3174 return 0;
3175
3176 /* Consider special static TLS alignment requirements. */
3177 static_tls_size = BFD_ALIGN (htab->tls_size, bed->static_tls_alignment);
3178 return address - static_tls_size - htab->tls_sec->vma;
3179 }
3180
3181 /* Is the instruction before OFFSET in CONTENTS a 32bit relative
3182 branch? */
3183
3184 static bfd_boolean
3185 is_32bit_relative_branch (bfd_byte *contents, bfd_vma offset)
3186 {
3187 /* Opcode Instruction
3188 0xe8 call
3189 0xe9 jump
3190 0x0f 0x8x conditional jump */
3191 return ((offset > 0
3192 && (contents [offset - 1] == 0xe8
3193 || contents [offset - 1] == 0xe9))
3194 || (offset > 1
3195 && contents [offset - 2] == 0x0f
3196 && (contents [offset - 1] & 0xf0) == 0x80));
3197 }
3198
3199 /* Relocate an x86_64 ELF section. */
3200
3201 static bfd_boolean
3202 elf_x86_64_relocate_section (bfd *output_bfd,
3203 struct bfd_link_info *info,
3204 bfd *input_bfd,
3205 asection *input_section,
3206 bfd_byte *contents,
3207 Elf_Internal_Rela *relocs,
3208 Elf_Internal_Sym *local_syms,
3209 asection **local_sections)
3210 {
3211 struct elf_x86_64_link_hash_table *htab;
3212 Elf_Internal_Shdr *symtab_hdr;
3213 struct elf_link_hash_entry **sym_hashes;
3214 bfd_vma *local_got_offsets;
3215 bfd_vma *local_tlsdesc_gotents;
3216 Elf_Internal_Rela *rel;
3217 Elf_Internal_Rela *relend;
3218 const unsigned int plt_entry_size = GET_PLT_ENTRY_SIZE (info->output_bfd);
3219
3220 BFD_ASSERT (is_x86_64_elf (input_bfd));
3221
3222 htab = elf_x86_64_hash_table (info);
3223 if (htab == NULL)
3224 return FALSE;
3225 symtab_hdr = &elf_symtab_hdr (input_bfd);
3226 sym_hashes = elf_sym_hashes (input_bfd);
3227 local_got_offsets = elf_local_got_offsets (input_bfd);
3228 local_tlsdesc_gotents = elf_x86_64_local_tlsdesc_gotent (input_bfd);
3229
3230 elf_x86_64_set_tls_module_base (info);
3231
3232 rel = relocs;
3233 relend = relocs + input_section->reloc_count;
3234 for (; rel < relend; rel++)
3235 {
3236 unsigned int r_type;
3237 reloc_howto_type *howto;
3238 unsigned long r_symndx;
3239 struct elf_link_hash_entry *h;
3240 Elf_Internal_Sym *sym;
3241 asection *sec;
3242 bfd_vma off, offplt;
3243 bfd_vma relocation;
3244 bfd_boolean unresolved_reloc;
3245 bfd_reloc_status_type r;
3246 int tls_type;
3247 asection *base_got;
3248 bfd_vma st_size;
3249
3250 r_type = ELF32_R_TYPE (rel->r_info);
3251 if (r_type == (int) R_X86_64_GNU_VTINHERIT
3252 || r_type == (int) R_X86_64_GNU_VTENTRY)
3253 continue;
3254
3255 if (r_type >= (int) R_X86_64_standard)
3256 {
3257 (*_bfd_error_handler)
3258 (_("%B: unrecognized relocation (0x%x) in section `%A'"),
3259 input_bfd, input_section, r_type);
3260 bfd_set_error (bfd_error_bad_value);
3261 return FALSE;
3262 }
3263
3264 if (r_type != (int) R_X86_64_32
3265 || ABI_64_P (output_bfd))
3266 howto = x86_64_elf_howto_table + r_type;
3267 else
3268 howto = (x86_64_elf_howto_table
3269 + ARRAY_SIZE (x86_64_elf_howto_table) - 1);
3270 r_symndx = htab->r_sym (rel->r_info);
3271 h = NULL;
3272 sym = NULL;
3273 sec = NULL;
3274 unresolved_reloc = FALSE;
3275 if (r_symndx < symtab_hdr->sh_info)
3276 {
3277 sym = local_syms + r_symndx;
3278 sec = local_sections[r_symndx];
3279
3280 relocation = _bfd_elf_rela_local_sym (output_bfd, sym,
3281 &sec, rel);
3282 st_size = sym->st_size;
3283
3284 /* Relocate against local STT_GNU_IFUNC symbol. */
3285 if (!info->relocatable
3286 && ELF_ST_TYPE (sym->st_info) == STT_GNU_IFUNC)
3287 {
3288 h = elf_x86_64_get_local_sym_hash (htab, input_bfd,
3289 rel, FALSE);
3290 if (h == NULL)
3291 abort ();
3292
3293 /* Set STT_GNU_IFUNC symbol value. */
3294 h->root.u.def.value = sym->st_value;
3295 h->root.u.def.section = sec;
3296 }
3297 }
3298 else
3299 {
3300 bfd_boolean warned ATTRIBUTE_UNUSED;
3301
3302 RELOC_FOR_GLOBAL_SYMBOL (info, input_bfd, input_section, rel,
3303 r_symndx, symtab_hdr, sym_hashes,
3304 h, sec, relocation,
3305 unresolved_reloc, warned);
3306 st_size = h->size;
3307 }
3308
3309 if (sec != NULL && discarded_section (sec))
3310 RELOC_AGAINST_DISCARDED_SECTION (info, input_bfd, input_section,
3311 rel, 1, relend, howto, 0, contents);
3312
3313 if (info->relocatable)
3314 continue;
3315
3316 if (rel->r_addend == 0 && !ABI_64_P (output_bfd))
3317 {
3318 if (r_type == R_X86_64_64)
3319 {
3320 /* For x32, treat R_X86_64_64 like R_X86_64_32 and
3321 zero-extend it to 64bit if addend is zero. */
3322 r_type = R_X86_64_32;
3323 memset (contents + rel->r_offset + 4, 0, 4);
3324 }
3325 else if (r_type == R_X86_64_SIZE64)
3326 {
3327 /* For x32, treat R_X86_64_SIZE64 like R_X86_64_SIZE32 and
3328 zero-extend it to 64bit if addend is zero. */
3329 r_type = R_X86_64_SIZE32;
3330 memset (contents + rel->r_offset + 4, 0, 4);
3331 }
3332 }
3333
3334 /* Since STT_GNU_IFUNC symbol must go through PLT, we handle
3335 it here if it is defined in a non-shared object. */
3336 if (h != NULL
3337 && h->type == STT_GNU_IFUNC
3338 && h->def_regular)
3339 {
3340 asection *plt;
3341 bfd_vma plt_index;
3342 const char *name;
3343
3344 if ((input_section->flags & SEC_ALLOC) == 0
3345 || h->plt.offset == (bfd_vma) -1)
3346 abort ();
3347
3348 /* STT_GNU_IFUNC symbol must go through PLT. */
3349 plt = htab->elf.splt ? htab->elf.splt : htab->elf.iplt;
3350 relocation = (plt->output_section->vma
3351 + plt->output_offset + h->plt.offset);
3352
3353 switch (r_type)
3354 {
3355 default:
3356 if (h->root.root.string)
3357 name = h->root.root.string;
3358 else
3359 name = bfd_elf_sym_name (input_bfd, symtab_hdr, sym,
3360 NULL);
3361 (*_bfd_error_handler)
3362 (_("%B: relocation %s against STT_GNU_IFUNC "
3363 "symbol `%s' isn't handled by %s"), input_bfd,
3364 x86_64_elf_howto_table[r_type].name,
3365 name, __FUNCTION__);
3366 bfd_set_error (bfd_error_bad_value);
3367 return FALSE;
3368
3369 case R_X86_64_32S:
3370 if (info->shared)
3371 abort ();
3372 goto do_relocation;
3373
3374 case R_X86_64_32:
3375 if (ABI_64_P (output_bfd))
3376 goto do_relocation;
3377 /* FALLTHROUGH */
3378 case R_X86_64_64:
3379 if (rel->r_addend != 0)
3380 {
3381 if (h->root.root.string)
3382 name = h->root.root.string;
3383 else
3384 name = bfd_elf_sym_name (input_bfd, symtab_hdr,
3385 sym, NULL);
3386 (*_bfd_error_handler)
3387 (_("%B: relocation %s against STT_GNU_IFUNC "
3388 "symbol `%s' has non-zero addend: %d"),
3389 input_bfd, x86_64_elf_howto_table[r_type].name,
3390 name, rel->r_addend);
3391 bfd_set_error (bfd_error_bad_value);
3392 return FALSE;
3393 }
3394
3395 /* Generate dynamic relcoation only when there is a
3396 non-GOT reference in a shared object. */
3397 if (info->shared && h->non_got_ref)
3398 {
3399 Elf_Internal_Rela outrel;
3400 asection *sreloc;
3401
3402 /* Need a dynamic relocation to get the real function
3403 address. */
3404 outrel.r_offset = _bfd_elf_section_offset (output_bfd,
3405 info,
3406 input_section,
3407 rel->r_offset);
3408 if (outrel.r_offset == (bfd_vma) -1
3409 || outrel.r_offset == (bfd_vma) -2)
3410 abort ();
3411
3412 outrel.r_offset += (input_section->output_section->vma
3413 + input_section->output_offset);
3414
3415 if (h->dynindx == -1
3416 || h->forced_local
3417 || info->executable)
3418 {
3419 /* This symbol is resolved locally. */
3420 outrel.r_info = htab->r_info (0, R_X86_64_IRELATIVE);
3421 outrel.r_addend = (h->root.u.def.value
3422 + h->root.u.def.section->output_section->vma
3423 + h->root.u.def.section->output_offset);
3424 }
3425 else
3426 {
3427 outrel.r_info = htab->r_info (h->dynindx, r_type);
3428 outrel.r_addend = 0;
3429 }
3430
3431 sreloc = htab->elf.irelifunc;
3432 elf_append_rela (output_bfd, sreloc, &outrel);
3433
3434 /* If this reloc is against an external symbol, we
3435 do not want to fiddle with the addend. Otherwise,
3436 we need to include the symbol value so that it
3437 becomes an addend for the dynamic reloc. For an
3438 internal symbol, we have updated addend. */
3439 continue;
3440 }
3441 /* FALLTHROUGH */
3442 case R_X86_64_PC32:
3443 case R_X86_64_PC64:
3444 case R_X86_64_PLT32:
3445 goto do_relocation;
3446
3447 case R_X86_64_GOTPCREL:
3448 case R_X86_64_GOTPCREL64:
3449 base_got = htab->elf.sgot;
3450 off = h->got.offset;
3451
3452 if (base_got == NULL)
3453 abort ();
3454
3455 if (off == (bfd_vma) -1)
3456 {
3457 /* We can't use h->got.offset here to save state, or
3458 even just remember the offset, as finish_dynamic_symbol
3459 would use that as offset into .got. */
3460
3461 if (htab->elf.splt != NULL)
3462 {
3463 plt_index = h->plt.offset / plt_entry_size - 1;
3464 off = (plt_index + 3) * GOT_ENTRY_SIZE;
3465 base_got = htab->elf.sgotplt;
3466 }
3467 else
3468 {
3469 plt_index = h->plt.offset / plt_entry_size;
3470 off = plt_index * GOT_ENTRY_SIZE;
3471 base_got = htab->elf.igotplt;
3472 }
3473
3474 if (h->dynindx == -1
3475 || h->forced_local
3476 || info->symbolic)
3477 {
3478 /* This references the local defitionion. We must
3479 initialize this entry in the global offset table.
3480 Since the offset must always be a multiple of 8,
3481 we use the least significant bit to record
3482 whether we have initialized it already.
3483
3484 When doing a dynamic link, we create a .rela.got
3485 relocation entry to initialize the value. This
3486 is done in the finish_dynamic_symbol routine. */
3487 if ((off & 1) != 0)
3488 off &= ~1;
3489 else
3490 {
3491 bfd_put_64 (output_bfd, relocation,
3492 base_got->contents + off);
3493 /* Note that this is harmless for the GOTPLT64
3494 case, as -1 | 1 still is -1. */
3495 h->got.offset |= 1;
3496 }
3497 }
3498 }
3499
3500 relocation = (base_got->output_section->vma
3501 + base_got->output_offset + off);
3502
3503 goto do_relocation;
3504 }
3505 }
3506
3507 /* When generating a shared object, the relocations handled here are
3508 copied into the output file to be resolved at run time. */
3509 switch (r_type)
3510 {
3511 case R_X86_64_GOT32:
3512 case R_X86_64_GOT64:
3513 /* Relocation is to the entry for this symbol in the global
3514 offset table. */
3515 case R_X86_64_GOTPCREL:
3516 case R_X86_64_GOTPCREL64:
3517 /* Use global offset table entry as symbol value. */
3518 case R_X86_64_GOTPLT64:
3519 /* This is the same as GOT64 for relocation purposes, but
3520 indicates the existence of a PLT entry. The difficulty is,
3521 that we must calculate the GOT slot offset from the PLT
3522 offset, if this symbol got a PLT entry (it was global).
3523 Additionally if it's computed from the PLT entry, then that
3524 GOT offset is relative to .got.plt, not to .got. */
3525 base_got = htab->elf.sgot;
3526
3527 if (htab->elf.sgot == NULL)
3528 abort ();
3529
3530 if (h != NULL)
3531 {
3532 bfd_boolean dyn;
3533
3534 off = h->got.offset;
3535 if (h->needs_plt
3536 && h->plt.offset != (bfd_vma)-1
3537 && off == (bfd_vma)-1)
3538 {
3539 /* We can't use h->got.offset here to save
3540 state, or even just remember the offset, as
3541 finish_dynamic_symbol would use that as offset into
3542 .got. */
3543 bfd_vma plt_index = h->plt.offset / plt_entry_size - 1;
3544 off = (plt_index + 3) * GOT_ENTRY_SIZE;
3545 base_got = htab->elf.sgotplt;
3546 }
3547
3548 dyn = htab->elf.dynamic_sections_created;
3549
3550 if (! WILL_CALL_FINISH_DYNAMIC_SYMBOL (dyn, info->shared, h)
3551 || (info->shared
3552 && SYMBOL_REFERENCES_LOCAL (info, h))
3553 || (ELF_ST_VISIBILITY (h->other)
3554 && h->root.type == bfd_link_hash_undefweak))
3555 {
3556 /* This is actually a static link, or it is a -Bsymbolic
3557 link and the symbol is defined locally, or the symbol
3558 was forced to be local because of a version file. We
3559 must initialize this entry in the global offset table.
3560 Since the offset must always be a multiple of 8, we
3561 use the least significant bit to record whether we
3562 have initialized it already.
3563
3564 When doing a dynamic link, we create a .rela.got
3565 relocation entry to initialize the value. This is
3566 done in the finish_dynamic_symbol routine. */
3567 if ((off & 1) != 0)
3568 off &= ~1;
3569 else
3570 {
3571 bfd_put_64 (output_bfd, relocation,
3572 base_got->contents + off);
3573 /* Note that this is harmless for the GOTPLT64 case,
3574 as -1 | 1 still is -1. */
3575 h->got.offset |= 1;
3576 }
3577 }
3578 else
3579 unresolved_reloc = FALSE;
3580 }
3581 else
3582 {
3583 if (local_got_offsets == NULL)
3584 abort ();
3585
3586 off = local_got_offsets[r_symndx];
3587
3588 /* The offset must always be a multiple of 8. We use
3589 the least significant bit to record whether we have
3590 already generated the necessary reloc. */
3591 if ((off & 1) != 0)
3592 off &= ~1;
3593 else
3594 {
3595 bfd_put_64 (output_bfd, relocation,
3596 base_got->contents + off);
3597
3598 if (info->shared)
3599 {
3600 asection *s;
3601 Elf_Internal_Rela outrel;
3602
3603 /* We need to generate a R_X86_64_RELATIVE reloc
3604 for the dynamic linker. */
3605 s = htab->elf.srelgot;
3606 if (s == NULL)
3607 abort ();
3608
3609 outrel.r_offset = (base_got->output_section->vma
3610 + base_got->output_offset
3611 + off);
3612 outrel.r_info = htab->r_info (0, R_X86_64_RELATIVE);
3613 outrel.r_addend = relocation;
3614 elf_append_rela (output_bfd, s, &outrel);
3615 }
3616
3617 local_got_offsets[r_symndx] |= 1;
3618 }
3619 }
3620
3621 if (off >= (bfd_vma) -2)
3622 abort ();
3623
3624 relocation = base_got->output_section->vma
3625 + base_got->output_offset + off;
3626 if (r_type != R_X86_64_GOTPCREL && r_type != R_X86_64_GOTPCREL64)
3627 relocation -= htab->elf.sgotplt->output_section->vma
3628 - htab->elf.sgotplt->output_offset;
3629
3630 break;
3631
3632 case R_X86_64_GOTOFF64:
3633 /* Relocation is relative to the start of the global offset
3634 table. */
3635
3636 /* Check to make sure it isn't a protected function symbol
3637 for shared library since it may not be local when used
3638 as function address. */
3639 if (!info->executable
3640 && h
3641 && !SYMBOLIC_BIND (info, h)
3642 && h->def_regular
3643 && h->type == STT_FUNC
3644 && ELF_ST_VISIBILITY (h->other) == STV_PROTECTED)
3645 {
3646 (*_bfd_error_handler)
3647 (_("%B: relocation R_X86_64_GOTOFF64 against protected function `%s' can not be used when making a shared object"),
3648 input_bfd, h->root.root.string);
3649 bfd_set_error (bfd_error_bad_value);
3650 return FALSE;
3651 }
3652
3653 /* Note that sgot is not involved in this
3654 calculation. We always want the start of .got.plt. If we
3655 defined _GLOBAL_OFFSET_TABLE_ in a different way, as is
3656 permitted by the ABI, we might have to change this
3657 calculation. */
3658 relocation -= htab->elf.sgotplt->output_section->vma
3659 + htab->elf.sgotplt->output_offset;
3660 break;
3661
3662 case R_X86_64_GOTPC32:
3663 case R_X86_64_GOTPC64:
3664 /* Use global offset table as symbol value. */
3665 relocation = htab->elf.sgotplt->output_section->vma
3666 + htab->elf.sgotplt->output_offset;
3667 unresolved_reloc = FALSE;
3668 break;
3669
3670 case R_X86_64_PLTOFF64:
3671 /* Relocation is PLT entry relative to GOT. For local
3672 symbols it's the symbol itself relative to GOT. */
3673 if (h != NULL
3674 /* See PLT32 handling. */
3675 && h->plt.offset != (bfd_vma) -1
3676 && htab->elf.splt != NULL)
3677 {
3678 relocation = (htab->elf.splt->output_section->vma
3679 + htab->elf.splt->output_offset
3680 + h->plt.offset);
3681 unresolved_reloc = FALSE;
3682 }
3683
3684 relocation -= htab->elf.sgotplt->output_section->vma
3685 + htab->elf.sgotplt->output_offset;
3686 break;
3687
3688 case R_X86_64_PLT32:
3689 /* Relocation is to the entry for this symbol in the
3690 procedure linkage table. */
3691
3692 /* Resolve a PLT32 reloc against a local symbol directly,
3693 without using the procedure linkage table. */
3694 if (h == NULL)
3695 break;
3696
3697 if (h->plt.offset == (bfd_vma) -1
3698 || htab->elf.splt == NULL)
3699 {
3700 /* We didn't make a PLT entry for this symbol. This
3701 happens when statically linking PIC code, or when
3702 using -Bsymbolic. */
3703 break;
3704 }
3705
3706 relocation = (htab->elf.splt->output_section->vma
3707 + htab->elf.splt->output_offset
3708 + h->plt.offset);
3709 unresolved_reloc = FALSE;
3710 break;
3711
3712 case R_X86_64_SIZE32:
3713 case R_X86_64_SIZE64:
3714 /* Set to symbol size. */
3715 relocation = st_size;
3716 goto direct;
3717
3718 case R_X86_64_PC8:
3719 case R_X86_64_PC16:
3720 case R_X86_64_PC32:
3721 if (info->shared
3722 && (input_section->flags & SEC_ALLOC) != 0
3723 && (input_section->flags & SEC_READONLY) != 0
3724 && h != NULL)
3725 {
3726 bfd_boolean fail = FALSE;
3727 bfd_boolean branch
3728 = (r_type == R_X86_64_PC32
3729 && is_32bit_relative_branch (contents, rel->r_offset));
3730
3731 if (SYMBOL_REFERENCES_LOCAL (info, h))
3732 {
3733 /* Symbol is referenced locally. Make sure it is
3734 defined locally or for a branch. */
3735 fail = !h->def_regular && !branch;
3736 }
3737 else
3738 {
3739 /* Symbol isn't referenced locally. We only allow
3740 branch to symbol with non-default visibility. */
3741 fail = (!branch
3742 || ELF_ST_VISIBILITY (h->other) == STV_DEFAULT);
3743 }
3744
3745 if (fail)
3746 {
3747 const char *fmt;
3748 const char *v;
3749 const char *pic = "";
3750
3751 switch (ELF_ST_VISIBILITY (h->other))
3752 {
3753 case STV_HIDDEN:
3754 v = _("hidden symbol");
3755 break;
3756 case STV_INTERNAL:
3757 v = _("internal symbol");
3758 break;
3759 case STV_PROTECTED:
3760 v = _("protected symbol");
3761 break;
3762 default:
3763 v = _("symbol");
3764 pic = _("; recompile with -fPIC");
3765 break;
3766 }
3767
3768 if (h->def_regular)
3769 fmt = _("%B: relocation %s against %s `%s' can not be used when making a shared object%s");
3770 else
3771 fmt = _("%B: relocation %s against undefined %s `%s' can not be used when making a shared object%s");
3772
3773 (*_bfd_error_handler) (fmt, input_bfd,
3774 x86_64_elf_howto_table[r_type].name,
3775 v, h->root.root.string, pic);
3776 bfd_set_error (bfd_error_bad_value);
3777 return FALSE;
3778 }
3779 }
3780 /* Fall through. */
3781
3782 case R_X86_64_8:
3783 case R_X86_64_16:
3784 case R_X86_64_32:
3785 case R_X86_64_PC64:
3786 case R_X86_64_64:
3787 /* FIXME: The ABI says the linker should make sure the value is
3788 the same when it's zeroextended to 64 bit. */
3789
3790 direct:
3791 if ((input_section->flags & SEC_ALLOC) == 0)
3792 break;
3793
3794 if ((info->shared
3795 && (h == NULL
3796 || ELF_ST_VISIBILITY (h->other) == STV_DEFAULT
3797 || h->root.type != bfd_link_hash_undefweak)
3798 && ((! IS_X86_64_PCREL_TYPE (r_type)
3799 && r_type != R_X86_64_SIZE32
3800 && r_type != R_X86_64_SIZE64)
3801 || ! SYMBOL_CALLS_LOCAL (info, h)))
3802 || (ELIMINATE_COPY_RELOCS
3803 && !info->shared
3804 && h != NULL
3805 && h->dynindx != -1
3806 && !h->non_got_ref
3807 && ((h->def_dynamic
3808 && !h->def_regular)
3809 || h->root.type == bfd_link_hash_undefweak
3810 || h->root.type == bfd_link_hash_undefined)))
3811 {
3812 Elf_Internal_Rela outrel;
3813 bfd_boolean skip, relocate;
3814 asection *sreloc;
3815
3816 /* When generating a shared object, these relocations
3817 are copied into the output file to be resolved at run
3818 time. */
3819 skip = FALSE;
3820 relocate = FALSE;
3821
3822 outrel.r_offset =
3823 _bfd_elf_section_offset (output_bfd, info, input_section,
3824 rel->r_offset);
3825 if (outrel.r_offset == (bfd_vma) -1)
3826 skip = TRUE;
3827 else if (outrel.r_offset == (bfd_vma) -2)
3828 skip = TRUE, relocate = TRUE;
3829
3830 outrel.r_offset += (input_section->output_section->vma
3831 + input_section->output_offset);
3832
3833 if (skip)
3834 memset (&outrel, 0, sizeof outrel);
3835
3836 /* h->dynindx may be -1 if this symbol was marked to
3837 become local. */
3838 else if (h != NULL
3839 && h->dynindx != -1
3840 && (IS_X86_64_PCREL_TYPE (r_type)
3841 || ! info->shared
3842 || ! SYMBOLIC_BIND (info, h)
3843 || ! h->def_regular))
3844 {
3845 outrel.r_info = htab->r_info (h->dynindx, r_type);
3846 outrel.r_addend = rel->r_addend;
3847 }
3848 else
3849 {
3850 /* This symbol is local, or marked to become local. */
3851 if (r_type == htab->pointer_r_type)
3852 {
3853 relocate = TRUE;
3854 outrel.r_info = htab->r_info (0, R_X86_64_RELATIVE);
3855 outrel.r_addend = relocation + rel->r_addend;
3856 }
3857 else if (r_type == R_X86_64_64
3858 && !ABI_64_P (output_bfd))
3859 {
3860 relocate = TRUE;
3861 outrel.r_info = htab->r_info (0,
3862 R_X86_64_RELATIVE64);
3863 outrel.r_addend = relocation + rel->r_addend;
3864 /* Check addend overflow. */
3865 if ((outrel.r_addend & 0x80000000)
3866 != (rel->r_addend & 0x80000000))
3867 {
3868 const char *name;
3869 int addend = rel->r_addend;
3870 if (h && h->root.root.string)
3871 name = h->root.root.string;
3872 else
3873 name = bfd_elf_sym_name (input_bfd, symtab_hdr,
3874 sym, NULL);
3875 if (addend < 0)
3876 (*_bfd_error_handler)
3877 (_("%B: addend -0x%x in relocation %s against "
3878 "symbol `%s' at 0x%lx in section `%A' is "
3879 "out of range"),
3880 input_bfd, input_section, addend,
3881 x86_64_elf_howto_table[r_type].name,
3882 name, (unsigned long) rel->r_offset);
3883 else
3884 (*_bfd_error_handler)
3885 (_("%B: addend 0x%x in relocation %s against "
3886 "symbol `%s' at 0x%lx in section `%A' is "
3887 "out of range"),
3888 input_bfd, input_section, addend,
3889 x86_64_elf_howto_table[r_type].name,
3890 name, (unsigned long) rel->r_offset);
3891 bfd_set_error (bfd_error_bad_value);
3892 return FALSE;
3893 }
3894 }
3895 else
3896 {
3897 long sindx;
3898
3899 if (bfd_is_abs_section (sec))
3900 sindx = 0;
3901 else if (sec == NULL || sec->owner == NULL)
3902 {
3903 bfd_set_error (bfd_error_bad_value);
3904 return FALSE;
3905 }
3906 else
3907 {
3908 asection *osec;
3909
3910 /* We are turning this relocation into one
3911 against a section symbol. It would be
3912 proper to subtract the symbol's value,
3913 osec->vma, from the emitted reloc addend,
3914 but ld.so expects buggy relocs. */
3915 osec = sec->output_section;
3916 sindx = elf_section_data (osec)->dynindx;
3917 if (sindx == 0)
3918 {
3919 asection *oi = htab->elf.text_index_section;
3920 sindx = elf_section_data (oi)->dynindx;
3921 }
3922 BFD_ASSERT (sindx != 0);
3923 }
3924
3925 outrel.r_info = htab->r_info (sindx, r_type);
3926 outrel.r_addend = relocation + rel->r_addend;
3927 }
3928 }
3929
3930 sreloc = elf_section_data (input_section)->sreloc;
3931
3932 if (sreloc == NULL || sreloc->contents == NULL)
3933 {
3934 r = bfd_reloc_notsupported;
3935 goto check_relocation_error;
3936 }
3937
3938 elf_append_rela (output_bfd, sreloc, &outrel);
3939
3940 /* If this reloc is against an external symbol, we do
3941 not want to fiddle with the addend. Otherwise, we
3942 need to include the symbol value so that it becomes
3943 an addend for the dynamic reloc. */
3944 if (! relocate)
3945 continue;
3946 }
3947
3948 break;
3949
3950 case R_X86_64_TLSGD:
3951 case R_X86_64_GOTPC32_TLSDESC:
3952 case R_X86_64_TLSDESC_CALL:
3953 case R_X86_64_GOTTPOFF:
3954 tls_type = GOT_UNKNOWN;
3955 if (h == NULL && local_got_offsets)
3956 tls_type = elf_x86_64_local_got_tls_type (input_bfd) [r_symndx];
3957 else if (h != NULL)
3958 tls_type = elf_x86_64_hash_entry (h)->tls_type;
3959
3960 if (! elf_x86_64_tls_transition (info, input_bfd,
3961 input_section, contents,
3962 symtab_hdr, sym_hashes,
3963 &r_type, tls_type, rel,
3964 relend, h, r_symndx))
3965 return FALSE;
3966
3967 if (r_type == R_X86_64_TPOFF32)
3968 {
3969 bfd_vma roff = rel->r_offset;
3970
3971 BFD_ASSERT (! unresolved_reloc);
3972
3973 if (ELF32_R_TYPE (rel->r_info) == R_X86_64_TLSGD)
3974 {
3975 /* GD->LE transition. For 64bit, change
3976 .byte 0x66; leaq foo@tlsgd(%rip), %rdi
3977 .word 0x6666; rex64; call __tls_get_addr
3978 into:
3979 movq %fs:0, %rax
3980 leaq foo@tpoff(%rax), %rax
3981 For 32bit, change
3982 leaq foo@tlsgd(%rip), %rdi
3983 .word 0x6666; rex64; call __tls_get_addr
3984 into:
3985 movl %fs:0, %eax
3986 leaq foo@tpoff(%rax), %rax
3987 For largepic, change:
3988 leaq foo@tlsgd(%rip), %rdi
3989 movabsq $__tls_get_addr@pltoff, %rax
3990 addq %rbx, %rax
3991 call *%rax
3992 into:
3993 movq %fs:0, %rax
3994 leaq foo@tpoff(%rax), %rax
3995 nopw 0x0(%rax,%rax,1) */
3996 int largepic = 0;
3997 if (ABI_64_P (output_bfd)
3998 && contents[roff + 5] == (bfd_byte) '\xb8')
3999 {
4000 memcpy (contents + roff - 3,
4001 "\x64\x48\x8b\x04\x25\0\0\0\0\x48\x8d\x80"
4002 "\0\0\0\0\x66\x0f\x1f\x44\0", 22);
4003 largepic = 1;
4004 }
4005 else if (ABI_64_P (output_bfd))
4006 memcpy (contents + roff - 4,
4007 "\x64\x48\x8b\x04\x25\0\0\0\0\x48\x8d\x80\0\0\0",
4008 16);
4009 else
4010 memcpy (contents + roff - 3,
4011 "\x64\x8b\x04\x25\0\0\0\0\x48\x8d\x80\0\0\0",
4012 15);
4013 bfd_put_32 (output_bfd,
4014 elf_x86_64_tpoff (info, relocation),
4015 contents + roff + 8 + largepic);
4016 /* Skip R_X86_64_PC32/R_X86_64_PLT32/R_X86_64_PLTOFF64. */
4017 rel++;
4018 continue;
4019 }
4020 else if (ELF32_R_TYPE (rel->r_info) == R_X86_64_GOTPC32_TLSDESC)
4021 {
4022 /* GDesc -> LE transition.
4023 It's originally something like:
4024 leaq x@tlsdesc(%rip), %rax
4025
4026 Change it to:
4027 movl $x@tpoff, %rax. */
4028
4029 unsigned int val, type;
4030
4031 type = bfd_get_8 (input_bfd, contents + roff - 3);
4032 val = bfd_get_8 (input_bfd, contents + roff - 1);
4033 bfd_put_8 (output_bfd, 0x48 | ((type >> 2) & 1),
4034 contents + roff - 3);
4035 bfd_put_8 (output_bfd, 0xc7, contents + roff - 2);
4036 bfd_put_8 (output_bfd, 0xc0 | ((val >> 3) & 7),
4037 contents + roff - 1);
4038 bfd_put_32 (output_bfd,
4039 elf_x86_64_tpoff (info, relocation),
4040 contents + roff);
4041 continue;
4042 }
4043 else if (ELF32_R_TYPE (rel->r_info) == R_X86_64_TLSDESC_CALL)
4044 {
4045 /* GDesc -> LE transition.
4046 It's originally:
4047 call *(%rax)
4048 Turn it into:
4049 xchg %ax,%ax. */
4050 bfd_put_8 (output_bfd, 0x66, contents + roff);
4051 bfd_put_8 (output_bfd, 0x90, contents + roff + 1);
4052 continue;
4053 }
4054 else if (ELF32_R_TYPE (rel->r_info) == R_X86_64_GOTTPOFF)
4055 {
4056 /* IE->LE transition:
4057 Originally it can be one of:
4058 movq foo@gottpoff(%rip), %reg
4059 addq foo@gottpoff(%rip), %reg
4060 We change it into:
4061 movq $foo, %reg
4062 leaq foo(%reg), %reg
4063 addq $foo, %reg. */
4064
4065 unsigned int val, type, reg;
4066
4067 val = bfd_get_8 (input_bfd, contents + roff - 3);
4068 type = bfd_get_8 (input_bfd, contents + roff - 2);
4069 reg = bfd_get_8 (input_bfd, contents + roff - 1);
4070 reg >>= 3;
4071 if (type == 0x8b)
4072 {
4073 /* movq */
4074 if (val == 0x4c)
4075 bfd_put_8 (output_bfd, 0x49,
4076 contents + roff - 3);
4077 else if (!ABI_64_P (output_bfd) && val == 0x44)
4078 bfd_put_8 (output_bfd, 0x41,
4079 contents + roff - 3);
4080 bfd_put_8 (output_bfd, 0xc7,
4081 contents + roff - 2);
4082 bfd_put_8 (output_bfd, 0xc0 | reg,
4083 contents + roff - 1);
4084 }
4085 else if (reg == 4)
4086 {
4087 /* addq -> addq - addressing with %rsp/%r12 is
4088 special */
4089 if (val == 0x4c)
4090 bfd_put_8 (output_bfd, 0x49,
4091 contents + roff - 3);
4092 else if (!ABI_64_P (output_bfd) && val == 0x44)
4093 bfd_put_8 (output_bfd, 0x41,
4094 contents + roff - 3);
4095 bfd_put_8 (output_bfd, 0x81,
4096 contents + roff - 2);
4097 bfd_put_8 (output_bfd, 0xc0 | reg,
4098 contents + roff - 1);
4099 }
4100 else
4101 {
4102 /* addq -> leaq */
4103 if (val == 0x4c)
4104 bfd_put_8 (output_bfd, 0x4d,
4105 contents + roff - 3);
4106 else if (!ABI_64_P (output_bfd) && val == 0x44)
4107 bfd_put_8 (output_bfd, 0x45,
4108 contents + roff - 3);
4109 bfd_put_8 (output_bfd, 0x8d,
4110 contents + roff - 2);
4111 bfd_put_8 (output_bfd, 0x80 | reg | (reg << 3),
4112 contents + roff - 1);
4113 }
4114 bfd_put_32 (output_bfd,
4115 elf_x86_64_tpoff (info, relocation),
4116 contents + roff);
4117 continue;
4118 }
4119 else
4120 BFD_ASSERT (FALSE);
4121 }
4122
4123 if (htab->elf.sgot == NULL)
4124 abort ();
4125
4126 if (h != NULL)
4127 {
4128 off = h->got.offset;
4129 offplt = elf_x86_64_hash_entry (h)->tlsdesc_got;
4130 }
4131 else
4132 {
4133 if (local_got_offsets == NULL)
4134 abort ();
4135
4136 off = local_got_offsets[r_symndx];
4137 offplt = local_tlsdesc_gotents[r_symndx];
4138 }
4139
4140 if ((off & 1) != 0)
4141 off &= ~1;
4142 else
4143 {
4144 Elf_Internal_Rela outrel;
4145 int dr_type, indx;
4146 asection *sreloc;
4147
4148 if (htab->elf.srelgot == NULL)
4149 abort ();
4150
4151 indx = h && h->dynindx != -1 ? h->dynindx : 0;
4152
4153 if (GOT_TLS_GDESC_P (tls_type))
4154 {
4155 outrel.r_info = htab->r_info (indx, R_X86_64_TLSDESC);
4156 BFD_ASSERT (htab->sgotplt_jump_table_size + offplt
4157 + 2 * GOT_ENTRY_SIZE <= htab->elf.sgotplt->size);
4158 outrel.r_offset = (htab->elf.sgotplt->output_section->vma
4159 + htab->elf.sgotplt->output_offset
4160 + offplt
4161 + htab->sgotplt_jump_table_size);
4162 sreloc = htab->elf.srelplt;
4163 if (indx == 0)
4164 outrel.r_addend = relocation - elf_x86_64_dtpoff_base (info);
4165 else
4166 outrel.r_addend = 0;
4167 elf_append_rela (output_bfd, sreloc, &outrel);
4168 }
4169
4170 sreloc = htab->elf.srelgot;
4171
4172 outrel.r_offset = (htab->elf.sgot->output_section->vma
4173 + htab->elf.sgot->output_offset + off);
4174
4175 if (GOT_TLS_GD_P (tls_type))
4176 dr_type = R_X86_64_DTPMOD64;
4177 else if (GOT_TLS_GDESC_P (tls_type))
4178 goto dr_done;
4179 else
4180 dr_type = R_X86_64_TPOFF64;
4181
4182 bfd_put_64 (output_bfd, 0, htab->elf.sgot->contents + off);
4183 outrel.r_addend = 0;
4184 if ((dr_type == R_X86_64_TPOFF64
4185 || dr_type == R_X86_64_TLSDESC) && indx == 0)
4186 outrel.r_addend = relocation - elf_x86_64_dtpoff_base (info);
4187 outrel.r_info = htab->r_info (indx, dr_type);
4188
4189 elf_append_rela (output_bfd, sreloc, &outrel);
4190
4191 if (GOT_TLS_GD_P (tls_type))
4192 {
4193 if (indx == 0)
4194 {
4195 BFD_ASSERT (! unresolved_reloc);
4196 bfd_put_64 (output_bfd,
4197 relocation - elf_x86_64_dtpoff_base (info),
4198 htab->elf.sgot->contents + off + GOT_ENTRY_SIZE);
4199 }
4200 else
4201 {
4202 bfd_put_64 (output_bfd, 0,
4203 htab->elf.sgot->contents + off + GOT_ENTRY_SIZE);
4204 outrel.r_info = htab->r_info (indx,
4205 R_X86_64_DTPOFF64);
4206 outrel.r_offset += GOT_ENTRY_SIZE;
4207 elf_append_rela (output_bfd, sreloc,
4208 &outrel);
4209 }
4210 }
4211
4212 dr_done:
4213 if (h != NULL)
4214 h->got.offset |= 1;
4215 else
4216 local_got_offsets[r_symndx] |= 1;
4217 }
4218
4219 if (off >= (bfd_vma) -2
4220 && ! GOT_TLS_GDESC_P (tls_type))
4221 abort ();
4222 if (r_type == ELF32_R_TYPE (rel->r_info))
4223 {
4224 if (r_type == R_X86_64_GOTPC32_TLSDESC
4225 || r_type == R_X86_64_TLSDESC_CALL)
4226 relocation = htab->elf.sgotplt->output_section->vma
4227 + htab->elf.sgotplt->output_offset
4228 + offplt + htab->sgotplt_jump_table_size;
4229 else
4230 relocation = htab->elf.sgot->output_section->vma
4231 + htab->elf.sgot->output_offset + off;
4232 unresolved_reloc = FALSE;
4233 }
4234 else
4235 {
4236 bfd_vma roff = rel->r_offset;
4237
4238 if (ELF32_R_TYPE (rel->r_info) == R_X86_64_TLSGD)
4239 {
4240 /* GD->IE transition. For 64bit, change
4241 .byte 0x66; leaq foo@tlsgd(%rip), %rdi
4242 .word 0x6666; rex64; call __tls_get_addr@plt
4243 into:
4244 movq %fs:0, %rax
4245 addq foo@gottpoff(%rip), %rax
4246 For 32bit, change
4247 leaq foo@tlsgd(%rip), %rdi
4248 .word 0x6666; rex64; call __tls_get_addr@plt
4249 into:
4250 movl %fs:0, %eax
4251 addq foo@gottpoff(%rip), %rax
4252 For largepic, change:
4253 leaq foo@tlsgd(%rip), %rdi
4254 movabsq $__tls_get_addr@pltoff, %rax
4255 addq %rbx, %rax
4256 call *%rax
4257 into:
4258 movq %fs:0, %rax
4259 addq foo@gottpoff(%rax), %rax
4260 nopw 0x0(%rax,%rax,1) */
4261 int largepic = 0;
4262 if (ABI_64_P (output_bfd)
4263 && contents[roff + 5] == (bfd_byte) '\xb8')
4264 {
4265 memcpy (contents + roff - 3,
4266 "\x64\x48\x8b\x04\x25\0\0\0\0\x48\x03\x05"
4267 "\0\0\0\0\x66\x0f\x1f\x44\0", 22);
4268 largepic = 1;
4269 }
4270 else if (ABI_64_P (output_bfd))
4271 memcpy (contents + roff - 4,
4272 "\x64\x48\x8b\x04\x25\0\0\0\0\x48\x03\x05\0\0\0",
4273 16);
4274 else
4275 memcpy (contents + roff - 3,
4276 "\x64\x8b\x04\x25\0\0\0\0\x48\x03\x05\0\0\0",
4277 15);
4278
4279 relocation = (htab->elf.sgot->output_section->vma
4280 + htab->elf.sgot->output_offset + off
4281 - roff
4282 - largepic
4283 - input_section->output_section->vma
4284 - input_section->output_offset
4285 - 12);
4286 bfd_put_32 (output_bfd, relocation,
4287 contents + roff + 8 + largepic);
4288 /* Skip R_X86_64_PLT32/R_X86_64_PLTOFF64. */
4289 rel++;
4290 continue;
4291 }
4292 else if (ELF32_R_TYPE (rel->r_info) == R_X86_64_GOTPC32_TLSDESC)
4293 {
4294 /* GDesc -> IE transition.
4295 It's originally something like:
4296 leaq x@tlsdesc(%rip), %rax
4297
4298 Change it to:
4299 movq x@gottpoff(%rip), %rax # before xchg %ax,%ax. */
4300
4301 /* Now modify the instruction as appropriate. To
4302 turn a leaq into a movq in the form we use it, it
4303 suffices to change the second byte from 0x8d to
4304 0x8b. */
4305 bfd_put_8 (output_bfd, 0x8b, contents + roff - 2);
4306
4307 bfd_put_32 (output_bfd,
4308 htab->elf.sgot->output_section->vma
4309 + htab->elf.sgot->output_offset + off
4310 - rel->r_offset
4311 - input_section->output_section->vma
4312 - input_section->output_offset
4313 - 4,
4314 contents + roff);
4315 continue;
4316 }
4317 else if (ELF32_R_TYPE (rel->r_info) == R_X86_64_TLSDESC_CALL)
4318 {
4319 /* GDesc -> IE transition.
4320 It's originally:
4321 call *(%rax)
4322
4323 Change it to:
4324 xchg %ax, %ax. */
4325
4326 bfd_put_8 (output_bfd, 0x66, contents + roff);
4327 bfd_put_8 (output_bfd, 0x90, contents + roff + 1);
4328 continue;
4329 }
4330 else
4331 BFD_ASSERT (FALSE);
4332 }
4333 break;
4334
4335 case R_X86_64_TLSLD:
4336 if (! elf_x86_64_tls_transition (info, input_bfd,
4337 input_section, contents,
4338 symtab_hdr, sym_hashes,
4339 &r_type, GOT_UNKNOWN,
4340 rel, relend, h, r_symndx))
4341 return FALSE;
4342
4343 if (r_type != R_X86_64_TLSLD)
4344 {
4345 /* LD->LE transition:
4346 leaq foo@tlsld(%rip), %rdi; call __tls_get_addr.
4347 For 64bit, we change it into:
4348 .word 0x6666; .byte 0x66; movq %fs:0, %rax.
4349 For 32bit, we change it into:
4350 nopl 0x0(%rax); movl %fs:0, %eax.
4351 For largepic, change:
4352 leaq foo@tlsgd(%rip), %rdi
4353 movabsq $__tls_get_addr@pltoff, %rax
4354 addq %rbx, %rax
4355 call *%rax
4356 into:
4357 data32 data32 data32 nopw %cs:0x0(%rax,%rax,1)
4358 movq %fs:0, %eax */
4359
4360 BFD_ASSERT (r_type == R_X86_64_TPOFF32);
4361 if (ABI_64_P (output_bfd)
4362 && contents[rel->r_offset + 5] == (bfd_byte) '\xb8')
4363 memcpy (contents + rel->r_offset - 3,
4364 "\x66\x66\x66\x66\x2e\x0f\x1f\x84\0\0\0\0\0"
4365 "\x64\x48\x8b\x04\x25\0\0\0", 22);
4366 else if (ABI_64_P (output_bfd))
4367 memcpy (contents + rel->r_offset - 3,
4368 "\x66\x66\x66\x64\x48\x8b\x04\x25\0\0\0", 12);
4369 else
4370 memcpy (contents + rel->r_offset - 3,
4371 "\x0f\x1f\x40\x00\x64\x8b\x04\x25\0\0\0", 12);
4372 /* Skip R_X86_64_PC32/R_X86_64_PLT32/R_X86_64_PLTOFF64. */
4373 rel++;
4374 continue;
4375 }
4376
4377 if (htab->elf.sgot == NULL)
4378 abort ();
4379
4380 off = htab->tls_ld_got.offset;
4381 if (off & 1)
4382 off &= ~1;
4383 else
4384 {
4385 Elf_Internal_Rela outrel;
4386
4387 if (htab->elf.srelgot == NULL)
4388 abort ();
4389
4390 outrel.r_offset = (htab->elf.sgot->output_section->vma
4391 + htab->elf.sgot->output_offset + off);
4392
4393 bfd_put_64 (output_bfd, 0,
4394 htab->elf.sgot->contents + off);
4395 bfd_put_64 (output_bfd, 0,
4396 htab->elf.sgot->contents + off + GOT_ENTRY_SIZE);
4397 outrel.r_info = htab->r_info (0, R_X86_64_DTPMOD64);
4398 outrel.r_addend = 0;
4399 elf_append_rela (output_bfd, htab->elf.srelgot,
4400 &outrel);
4401 htab->tls_ld_got.offset |= 1;
4402 }
4403 relocation = htab->elf.sgot->output_section->vma
4404 + htab->elf.sgot->output_offset + off;
4405 unresolved_reloc = FALSE;
4406 break;
4407
4408 case R_X86_64_DTPOFF32:
4409 if (!info->executable|| (input_section->flags & SEC_CODE) == 0)
4410 relocation -= elf_x86_64_dtpoff_base (info);
4411 else
4412 relocation = elf_x86_64_tpoff (info, relocation);
4413 break;
4414
4415 case R_X86_64_TPOFF32:
4416 case R_X86_64_TPOFF64:
4417 BFD_ASSERT (info->executable);
4418 relocation = elf_x86_64_tpoff (info, relocation);
4419 break;
4420
4421 case R_X86_64_DTPOFF64:
4422 BFD_ASSERT ((input_section->flags & SEC_CODE) == 0);
4423 relocation -= elf_x86_64_dtpoff_base (info);
4424 break;
4425
4426 default:
4427 break;
4428 }
4429
4430 /* Dynamic relocs are not propagated for SEC_DEBUGGING sections
4431 because such sections are not SEC_ALLOC and thus ld.so will
4432 not process them. */
4433 if (unresolved_reloc
4434 && !((input_section->flags & SEC_DEBUGGING) != 0
4435 && h->def_dynamic)
4436 && _bfd_elf_section_offset (output_bfd, info, input_section,
4437 rel->r_offset) != (bfd_vma) -1)
4438 {
4439 (*_bfd_error_handler)
4440 (_("%B(%A+0x%lx): unresolvable %s relocation against symbol `%s'"),
4441 input_bfd,
4442 input_section,
4443 (long) rel->r_offset,
4444 howto->name,
4445 h->root.root.string);
4446 return FALSE;
4447 }
4448
4449 do_relocation:
4450 r = _bfd_final_link_relocate (howto, input_bfd, input_section,
4451 contents, rel->r_offset,
4452 relocation, rel->r_addend);
4453
4454 check_relocation_error:
4455 if (r != bfd_reloc_ok)
4456 {
4457 const char *name;
4458
4459 if (h != NULL)
4460 name = h->root.root.string;
4461 else
4462 {
4463 name = bfd_elf_string_from_elf_section (input_bfd,
4464 symtab_hdr->sh_link,
4465 sym->st_name);
4466 if (name == NULL)
4467 return FALSE;
4468 if (*name == '\0')
4469 name = bfd_section_name (input_bfd, sec);
4470 }
4471
4472 if (r == bfd_reloc_overflow)
4473 {
4474 if (! ((*info->callbacks->reloc_overflow)
4475 (info, (h ? &h->root : NULL), name, howto->name,
4476 (bfd_vma) 0, input_bfd, input_section,
4477 rel->r_offset)))
4478 return FALSE;
4479 }
4480 else
4481 {
4482 (*_bfd_error_handler)
4483 (_("%B(%A+0x%lx): reloc against `%s': error %d"),
4484 input_bfd, input_section,
4485 (long) rel->r_offset, name, (int) r);
4486 return FALSE;
4487 }
4488 }
4489 }
4490
4491 return TRUE;
4492 }
4493
4494 /* Finish up dynamic symbol handling. We set the contents of various
4495 dynamic sections here. */
4496
4497 static bfd_boolean
4498 elf_x86_64_finish_dynamic_symbol (bfd *output_bfd,
4499 struct bfd_link_info *info,
4500 struct elf_link_hash_entry *h,
4501 Elf_Internal_Sym *sym ATTRIBUTE_UNUSED)
4502 {
4503 struct elf_x86_64_link_hash_table *htab;
4504 const struct elf_x86_64_backend_data *const abed
4505 = get_elf_x86_64_backend_data (output_bfd);
4506
4507 htab = elf_x86_64_hash_table (info);
4508 if (htab == NULL)
4509 return FALSE;
4510
4511 if (h->plt.offset != (bfd_vma) -1)
4512 {
4513 bfd_vma plt_index;
4514 bfd_vma got_offset;
4515 Elf_Internal_Rela rela;
4516 bfd_byte *loc;
4517 asection *plt, *gotplt, *relplt;
4518 const struct elf_backend_data *bed;
4519
4520 /* When building a static executable, use .iplt, .igot.plt and
4521 .rela.iplt sections for STT_GNU_IFUNC symbols. */
4522 if (htab->elf.splt != NULL)
4523 {
4524 plt = htab->elf.splt;
4525 gotplt = htab->elf.sgotplt;
4526 relplt = htab->elf.srelplt;
4527 }
4528 else
4529 {
4530 plt = htab->elf.iplt;
4531 gotplt = htab->elf.igotplt;
4532 relplt = htab->elf.irelplt;
4533 }
4534
4535 /* This symbol has an entry in the procedure linkage table. Set
4536 it up. */
4537 if ((h->dynindx == -1
4538 && !((h->forced_local || info->executable)
4539 && h->def_regular
4540 && h->type == STT_GNU_IFUNC))
4541 || plt == NULL
4542 || gotplt == NULL
4543 || relplt == NULL)
4544 abort ();
4545
4546 /* Get the index in the procedure linkage table which
4547 corresponds to this symbol. This is the index of this symbol
4548 in all the symbols for which we are making plt entries. The
4549 first entry in the procedure linkage table is reserved.
4550
4551 Get the offset into the .got table of the entry that
4552 corresponds to this function. Each .got entry is GOT_ENTRY_SIZE
4553 bytes. The first three are reserved for the dynamic linker.
4554
4555 For static executables, we don't reserve anything. */
4556
4557 if (plt == htab->elf.splt)
4558 {
4559 got_offset = h->plt.offset / abed->plt_entry_size - 1;
4560 got_offset = (got_offset + 3) * GOT_ENTRY_SIZE;
4561 }
4562 else
4563 {
4564 got_offset = h->plt.offset / abed->plt_entry_size;
4565 got_offset = got_offset * GOT_ENTRY_SIZE;
4566 }
4567
4568 /* Fill in the entry in the procedure linkage table. */
4569 memcpy (plt->contents + h->plt.offset, abed->plt_entry,
4570 abed->plt_entry_size);
4571
4572 /* Insert the relocation positions of the plt section. */
4573
4574 /* Put offset the PC-relative instruction referring to the GOT entry,
4575 subtracting the size of that instruction. */
4576 bfd_put_32 (output_bfd,
4577 (gotplt->output_section->vma
4578 + gotplt->output_offset
4579 + got_offset
4580 - plt->output_section->vma
4581 - plt->output_offset
4582 - h->plt.offset
4583 - abed->plt_got_insn_size),
4584 plt->contents + h->plt.offset + abed->plt_got_offset);
4585
4586 /* Fill in the entry in the global offset table, initially this
4587 points to the second part of the PLT entry. */
4588 bfd_put_64 (output_bfd, (plt->output_section->vma
4589 + plt->output_offset
4590 + h->plt.offset + abed->plt_lazy_offset),
4591 gotplt->contents + got_offset);
4592
4593 /* Fill in the entry in the .rela.plt section. */
4594 rela.r_offset = (gotplt->output_section->vma
4595 + gotplt->output_offset
4596 + got_offset);
4597 if (h->dynindx == -1
4598 || ((info->executable
4599 || ELF_ST_VISIBILITY (h->other) != STV_DEFAULT)
4600 && h->def_regular
4601 && h->type == STT_GNU_IFUNC))
4602 {
4603 /* If an STT_GNU_IFUNC symbol is locally defined, generate
4604 R_X86_64_IRELATIVE instead of R_X86_64_JUMP_SLOT. */
4605 rela.r_info = htab->r_info (0, R_X86_64_IRELATIVE);
4606 rela.r_addend = (h->root.u.def.value
4607 + h->root.u.def.section->output_section->vma
4608 + h->root.u.def.section->output_offset);
4609 /* R_X86_64_IRELATIVE comes last. */
4610 plt_index = htab->next_irelative_index--;
4611 }
4612 else
4613 {
4614 rela.r_info = htab->r_info (h->dynindx, R_X86_64_JUMP_SLOT);
4615 rela.r_addend = 0;
4616 plt_index = htab->next_jump_slot_index++;
4617 }
4618
4619 /* Don't fill PLT entry for static executables. */
4620 if (plt == htab->elf.splt)
4621 {
4622 /* Put relocation index. */
4623 bfd_put_32 (output_bfd, plt_index,
4624 plt->contents + h->plt.offset + abed->plt_reloc_offset);
4625 /* Put offset for jmp .PLT0. */
4626 bfd_put_32 (output_bfd, - (h->plt.offset + abed->plt_plt_insn_end),
4627 plt->contents + h->plt.offset + abed->plt_plt_offset);
4628 }
4629
4630 bed = get_elf_backend_data (output_bfd);
4631 loc = relplt->contents + plt_index * bed->s->sizeof_rela;
4632 bed->s->swap_reloca_out (output_bfd, &rela, loc);
4633
4634 if (!h->def_regular)
4635 {
4636 /* Mark the symbol as undefined, rather than as defined in
4637 the .plt section. Leave the value if there were any
4638 relocations where pointer equality matters (this is a clue
4639 for the dynamic linker, to make function pointer
4640 comparisons work between an application and shared
4641 library), otherwise set it to zero. If a function is only
4642 called from a binary, there is no need to slow down
4643 shared libraries because of that. */
4644 sym->st_shndx = SHN_UNDEF;
4645 if (!h->pointer_equality_needed)
4646 sym->st_value = 0;
4647 }
4648 }
4649
4650 if (h->got.offset != (bfd_vma) -1
4651 && ! GOT_TLS_GD_ANY_P (elf_x86_64_hash_entry (h)->tls_type)
4652 && elf_x86_64_hash_entry (h)->tls_type != GOT_TLS_IE)
4653 {
4654 Elf_Internal_Rela rela;
4655
4656 /* This symbol has an entry in the global offset table. Set it
4657 up. */
4658 if (htab->elf.sgot == NULL || htab->elf.srelgot == NULL)
4659 abort ();
4660
4661 rela.r_offset = (htab->elf.sgot->output_section->vma
4662 + htab->elf.sgot->output_offset
4663 + (h->got.offset &~ (bfd_vma) 1));
4664
4665 /* If this is a static link, or it is a -Bsymbolic link and the
4666 symbol is defined locally or was forced to be local because
4667 of a version file, we just want to emit a RELATIVE reloc.
4668 The entry in the global offset table will already have been
4669 initialized in the relocate_section function. */
4670 if (h->def_regular
4671 && h->type == STT_GNU_IFUNC)
4672 {
4673 if (info->shared)
4674 {
4675 /* Generate R_X86_64_GLOB_DAT. */
4676 goto do_glob_dat;
4677 }
4678 else
4679 {
4680 asection *plt;
4681
4682 if (!h->pointer_equality_needed)
4683 abort ();
4684
4685 /* For non-shared object, we can't use .got.plt, which
4686 contains the real function addres if we need pointer
4687 equality. We load the GOT entry with the PLT entry. */
4688 plt = htab->elf.splt ? htab->elf.splt : htab->elf.iplt;
4689 bfd_put_64 (output_bfd, (plt->output_section->vma
4690 + plt->output_offset
4691 + h->plt.offset),
4692 htab->elf.sgot->contents + h->got.offset);
4693 return TRUE;
4694 }
4695 }
4696 else if (info->shared
4697 && SYMBOL_REFERENCES_LOCAL (info, h))
4698 {
4699 if (!h->def_regular)
4700 return FALSE;
4701 BFD_ASSERT((h->got.offset & 1) != 0);
4702 rela.r_info = htab->r_info (0, R_X86_64_RELATIVE);
4703 rela.r_addend = (h->root.u.def.value
4704 + h->root.u.def.section->output_section->vma
4705 + h->root.u.def.section->output_offset);
4706 }
4707 else
4708 {
4709 BFD_ASSERT((h->got.offset & 1) == 0);
4710 do_glob_dat:
4711 bfd_put_64 (output_bfd, (bfd_vma) 0,
4712 htab->elf.sgot->contents + h->got.offset);
4713 rela.r_info = htab->r_info (h->dynindx, R_X86_64_GLOB_DAT);
4714 rela.r_addend = 0;
4715 }
4716
4717 elf_append_rela (output_bfd, htab->elf.srelgot, &rela);
4718 }
4719
4720 if (h->needs_copy)
4721 {
4722 Elf_Internal_Rela rela;
4723
4724 /* This symbol needs a copy reloc. Set it up. */
4725
4726 if (h->dynindx == -1
4727 || (h->root.type != bfd_link_hash_defined
4728 && h->root.type != bfd_link_hash_defweak)
4729 || htab->srelbss == NULL)
4730 abort ();
4731
4732 rela.r_offset = (h->root.u.def.value
4733 + h->root.u.def.section->output_section->vma
4734 + h->root.u.def.section->output_offset);
4735 rela.r_info = htab->r_info (h->dynindx, R_X86_64_COPY);
4736 rela.r_addend = 0;
4737 elf_append_rela (output_bfd, htab->srelbss, &rela);
4738 }
4739
4740 return TRUE;
4741 }
4742
4743 /* Finish up local dynamic symbol handling. We set the contents of
4744 various dynamic sections here. */
4745
4746 static bfd_boolean
4747 elf_x86_64_finish_local_dynamic_symbol (void **slot, void *inf)
4748 {
4749 struct elf_link_hash_entry *h
4750 = (struct elf_link_hash_entry *) *slot;
4751 struct bfd_link_info *info
4752 = (struct bfd_link_info *) inf;
4753
4754 return elf_x86_64_finish_dynamic_symbol (info->output_bfd,
4755 info, h, NULL);
4756 }
4757
4758 /* Used to decide how to sort relocs in an optimal manner for the
4759 dynamic linker, before writing them out. */
4760
4761 static enum elf_reloc_type_class
4762 elf_x86_64_reloc_type_class (const struct bfd_link_info *info ATTRIBUTE_UNUSED,
4763 const asection *rel_sec ATTRIBUTE_UNUSED,
4764 const Elf_Internal_Rela *rela)
4765 {
4766 switch ((int) ELF32_R_TYPE (rela->r_info))
4767 {
4768 case R_X86_64_RELATIVE:
4769 case R_X86_64_RELATIVE64:
4770 return reloc_class_relative;
4771 case R_X86_64_JUMP_SLOT:
4772 return reloc_class_plt;
4773 case R_X86_64_COPY:
4774 return reloc_class_copy;
4775 default:
4776 return reloc_class_normal;
4777 }
4778 }
4779
4780 /* Finish up the dynamic sections. */
4781
4782 static bfd_boolean
4783 elf_x86_64_finish_dynamic_sections (bfd *output_bfd,
4784 struct bfd_link_info *info)
4785 {
4786 struct elf_x86_64_link_hash_table *htab;
4787 bfd *dynobj;
4788 asection *sdyn;
4789 const struct elf_x86_64_backend_data *const abed
4790 = get_elf_x86_64_backend_data (output_bfd);
4791
4792 htab = elf_x86_64_hash_table (info);
4793 if (htab == NULL)
4794 return FALSE;
4795
4796 dynobj = htab->elf.dynobj;
4797 sdyn = bfd_get_linker_section (dynobj, ".dynamic");
4798
4799 if (htab->elf.dynamic_sections_created)
4800 {
4801 bfd_byte *dyncon, *dynconend;
4802 const struct elf_backend_data *bed;
4803 bfd_size_type sizeof_dyn;
4804
4805 if (sdyn == NULL || htab->elf.sgot == NULL)
4806 abort ();
4807
4808 bed = get_elf_backend_data (dynobj);
4809 sizeof_dyn = bed->s->sizeof_dyn;
4810 dyncon = sdyn->contents;
4811 dynconend = sdyn->contents + sdyn->size;
4812 for (; dyncon < dynconend; dyncon += sizeof_dyn)
4813 {
4814 Elf_Internal_Dyn dyn;
4815 asection *s;
4816
4817 (*bed->s->swap_dyn_in) (dynobj, dyncon, &dyn);
4818
4819 switch (dyn.d_tag)
4820 {
4821 default:
4822 continue;
4823
4824 case DT_PLTGOT:
4825 s = htab->elf.sgotplt;
4826 dyn.d_un.d_ptr = s->output_section->vma + s->output_offset;
4827 break;
4828
4829 case DT_JMPREL:
4830 dyn.d_un.d_ptr = htab->elf.srelplt->output_section->vma;
4831 break;
4832
4833 case DT_PLTRELSZ:
4834 s = htab->elf.srelplt->output_section;
4835 dyn.d_un.d_val = s->size;
4836 break;
4837
4838 case DT_RELASZ:
4839 /* The procedure linkage table relocs (DT_JMPREL) should
4840 not be included in the overall relocs (DT_RELA).
4841 Therefore, we override the DT_RELASZ entry here to
4842 make it not include the JMPREL relocs. Since the
4843 linker script arranges for .rela.plt to follow all
4844 other relocation sections, we don't have to worry
4845 about changing the DT_RELA entry. */
4846 if (htab->elf.srelplt != NULL)
4847 {
4848 s = htab->elf.srelplt->output_section;
4849 dyn.d_un.d_val -= s->size;
4850 }
4851 break;
4852
4853 case DT_TLSDESC_PLT:
4854 s = htab->elf.splt;
4855 dyn.d_un.d_ptr = s->output_section->vma + s->output_offset
4856 + htab->tlsdesc_plt;
4857 break;
4858
4859 case DT_TLSDESC_GOT:
4860 s = htab->elf.sgot;
4861 dyn.d_un.d_ptr = s->output_section->vma + s->output_offset
4862 + htab->tlsdesc_got;
4863 break;
4864 }
4865
4866 (*bed->s->swap_dyn_out) (output_bfd, &dyn, dyncon);
4867 }
4868
4869 /* Fill in the special first entry in the procedure linkage table. */
4870 if (htab->elf.splt && htab->elf.splt->size > 0)
4871 {
4872 /* Fill in the first entry in the procedure linkage table. */
4873 memcpy (htab->elf.splt->contents,
4874 abed->plt0_entry, abed->plt_entry_size);
4875 /* Add offset for pushq GOT+8(%rip), since the instruction
4876 uses 6 bytes subtract this value. */
4877 bfd_put_32 (output_bfd,
4878 (htab->elf.sgotplt->output_section->vma
4879 + htab->elf.sgotplt->output_offset
4880 + 8
4881 - htab->elf.splt->output_section->vma
4882 - htab->elf.splt->output_offset
4883 - 6),
4884 htab->elf.splt->contents + abed->plt0_got1_offset);
4885 /* Add offset for the PC-relative instruction accessing GOT+16,
4886 subtracting the offset to the end of that instruction. */
4887 bfd_put_32 (output_bfd,
4888 (htab->elf.sgotplt->output_section->vma
4889 + htab->elf.sgotplt->output_offset
4890 + 16
4891 - htab->elf.splt->output_section->vma
4892 - htab->elf.splt->output_offset
4893 - abed->plt0_got2_insn_end),
4894 htab->elf.splt->contents + abed->plt0_got2_offset);
4895
4896 elf_section_data (htab->elf.splt->output_section)
4897 ->this_hdr.sh_entsize = abed->plt_entry_size;
4898
4899 if (htab->tlsdesc_plt)
4900 {
4901 bfd_put_64 (output_bfd, (bfd_vma) 0,
4902 htab->elf.sgot->contents + htab->tlsdesc_got);
4903
4904 memcpy (htab->elf.splt->contents + htab->tlsdesc_plt,
4905 abed->plt0_entry, abed->plt_entry_size);
4906
4907 /* Add offset for pushq GOT+8(%rip), since the
4908 instruction uses 6 bytes subtract this value. */
4909 bfd_put_32 (output_bfd,
4910 (htab->elf.sgotplt->output_section->vma
4911 + htab->elf.sgotplt->output_offset
4912 + 8
4913 - htab->elf.splt->output_section->vma
4914 - htab->elf.splt->output_offset
4915 - htab->tlsdesc_plt
4916 - 6),
4917 htab->elf.splt->contents
4918 + htab->tlsdesc_plt + abed->plt0_got1_offset);
4919 /* Add offset for the PC-relative instruction accessing GOT+TDG,
4920 where TGD stands for htab->tlsdesc_got, subtracting the offset
4921 to the end of that instruction. */
4922 bfd_put_32 (output_bfd,
4923 (htab->elf.sgot->output_section->vma
4924 + htab->elf.sgot->output_offset
4925 + htab->tlsdesc_got
4926 - htab->elf.splt->output_section->vma
4927 - htab->elf.splt->output_offset
4928 - htab->tlsdesc_plt
4929 - abed->plt0_got2_insn_end),
4930 htab->elf.splt->contents
4931 + htab->tlsdesc_plt + abed->plt0_got2_offset);
4932 }
4933 }
4934 }
4935
4936 if (htab->elf.sgotplt)
4937 {
4938 if (bfd_is_abs_section (htab->elf.sgotplt->output_section))
4939 {
4940 (*_bfd_error_handler)
4941 (_("discarded output section: `%A'"), htab->elf.sgotplt);
4942 return FALSE;
4943 }
4944
4945 /* Fill in the first three entries in the global offset table. */
4946 if (htab->elf.sgotplt->size > 0)
4947 {
4948 /* Set the first entry in the global offset table to the address of
4949 the dynamic section. */
4950 if (sdyn == NULL)
4951 bfd_put_64 (output_bfd, (bfd_vma) 0, htab->elf.sgotplt->contents);
4952 else
4953 bfd_put_64 (output_bfd,
4954 sdyn->output_section->vma + sdyn->output_offset,
4955 htab->elf.sgotplt->contents);
4956 /* Write GOT[1] and GOT[2], needed for the dynamic linker. */
4957 bfd_put_64 (output_bfd, (bfd_vma) 0, htab->elf.sgotplt->contents + GOT_ENTRY_SIZE);
4958 bfd_put_64 (output_bfd, (bfd_vma) 0, htab->elf.sgotplt->contents + GOT_ENTRY_SIZE*2);
4959 }
4960
4961 elf_section_data (htab->elf.sgotplt->output_section)->this_hdr.sh_entsize =
4962 GOT_ENTRY_SIZE;
4963 }
4964
4965 /* Adjust .eh_frame for .plt section. */
4966 if (htab->plt_eh_frame != NULL
4967 && htab->plt_eh_frame->contents != NULL)
4968 {
4969 if (htab->elf.splt != NULL
4970 && htab->elf.splt->size != 0
4971 && (htab->elf.splt->flags & SEC_EXCLUDE) == 0
4972 && htab->elf.splt->output_section != NULL
4973 && htab->plt_eh_frame->output_section != NULL)
4974 {
4975 bfd_vma plt_start = htab->elf.splt->output_section->vma;
4976 bfd_vma eh_frame_start = htab->plt_eh_frame->output_section->vma
4977 + htab->plt_eh_frame->output_offset
4978 + PLT_FDE_START_OFFSET;
4979 bfd_put_signed_32 (dynobj, plt_start - eh_frame_start,
4980 htab->plt_eh_frame->contents
4981 + PLT_FDE_START_OFFSET);
4982 }
4983 if (htab->plt_eh_frame->sec_info_type == SEC_INFO_TYPE_EH_FRAME)
4984 {
4985 if (! _bfd_elf_write_section_eh_frame (output_bfd, info,
4986 htab->plt_eh_frame,
4987 htab->plt_eh_frame->contents))
4988 return FALSE;
4989 }
4990 }
4991
4992 if (htab->elf.sgot && htab->elf.sgot->size > 0)
4993 elf_section_data (htab->elf.sgot->output_section)->this_hdr.sh_entsize
4994 = GOT_ENTRY_SIZE;
4995
4996 /* Fill PLT and GOT entries for local STT_GNU_IFUNC symbols. */
4997 htab_traverse (htab->loc_hash_table,
4998 elf_x86_64_finish_local_dynamic_symbol,
4999 info);
5000
5001 return TRUE;
5002 }
5003
5004 /* Return address for Ith PLT stub in section PLT, for relocation REL
5005 or (bfd_vma) -1 if it should not be included. */
5006
5007 static bfd_vma
5008 elf_x86_64_plt_sym_val (bfd_vma i, const asection *plt,
5009 const arelent *rel ATTRIBUTE_UNUSED)
5010 {
5011 return plt->vma + (i + 1) * GET_PLT_ENTRY_SIZE (plt->owner);
5012 }
5013
5014 /* Handle an x86-64 specific section when reading an object file. This
5015 is called when elfcode.h finds a section with an unknown type. */
5016
5017 static bfd_boolean
5018 elf_x86_64_section_from_shdr (bfd *abfd,
5019 Elf_Internal_Shdr *hdr,
5020 const char *name,
5021 int shindex)
5022 {
5023 if (hdr->sh_type != SHT_X86_64_UNWIND)
5024 return FALSE;
5025
5026 if (! _bfd_elf_make_section_from_shdr (abfd, hdr, name, shindex))
5027 return FALSE;
5028
5029 return TRUE;
5030 }
5031
5032 /* Hook called by the linker routine which adds symbols from an object
5033 file. We use it to put SHN_X86_64_LCOMMON items in .lbss, instead
5034 of .bss. */
5035
5036 static bfd_boolean
5037 elf_x86_64_add_symbol_hook (bfd *abfd,
5038 struct bfd_link_info *info,
5039 Elf_Internal_Sym *sym,
5040 const char **namep ATTRIBUTE_UNUSED,
5041 flagword *flagsp ATTRIBUTE_UNUSED,
5042 asection **secp,
5043 bfd_vma *valp)
5044 {
5045 asection *lcomm;
5046
5047 switch (sym->st_shndx)
5048 {
5049 case SHN_X86_64_LCOMMON:
5050 lcomm = bfd_get_section_by_name (abfd, "LARGE_COMMON");
5051 if (lcomm == NULL)
5052 {
5053 lcomm = bfd_make_section_with_flags (abfd,
5054 "LARGE_COMMON",
5055 (SEC_ALLOC
5056 | SEC_IS_COMMON
5057 | SEC_LINKER_CREATED));
5058 if (lcomm == NULL)
5059 return FALSE;
5060 elf_section_flags (lcomm) |= SHF_X86_64_LARGE;
5061 }
5062 *secp = lcomm;
5063 *valp = sym->st_size;
5064 return TRUE;
5065 }
5066
5067 if ((abfd->flags & DYNAMIC) == 0
5068 && (ELF_ST_TYPE (sym->st_info) == STT_GNU_IFUNC
5069 || ELF_ST_BIND (sym->st_info) == STB_GNU_UNIQUE))
5070 elf_tdata (info->output_bfd)->has_gnu_symbols = TRUE;
5071
5072 return TRUE;
5073 }
5074
5075
5076 /* Given a BFD section, try to locate the corresponding ELF section
5077 index. */
5078
5079 static bfd_boolean
5080 elf_x86_64_elf_section_from_bfd_section (bfd *abfd ATTRIBUTE_UNUSED,
5081 asection *sec, int *index_return)
5082 {
5083 if (sec == &_bfd_elf_large_com_section)
5084 {
5085 *index_return = SHN_X86_64_LCOMMON;
5086 return TRUE;
5087 }
5088 return FALSE;
5089 }
5090
5091 /* Process a symbol. */
5092
5093 static void
5094 elf_x86_64_symbol_processing (bfd *abfd ATTRIBUTE_UNUSED,
5095 asymbol *asym)
5096 {
5097 elf_symbol_type *elfsym = (elf_symbol_type *) asym;
5098
5099 switch (elfsym->internal_elf_sym.st_shndx)
5100 {
5101 case SHN_X86_64_LCOMMON:
5102 asym->section = &_bfd_elf_large_com_section;
5103 asym->value = elfsym->internal_elf_sym.st_size;
5104 /* Common symbol doesn't set BSF_GLOBAL. */
5105 asym->flags &= ~BSF_GLOBAL;
5106 break;
5107 }
5108 }
5109
5110 static bfd_boolean
5111 elf_x86_64_common_definition (Elf_Internal_Sym *sym)
5112 {
5113 return (sym->st_shndx == SHN_COMMON
5114 || sym->st_shndx == SHN_X86_64_LCOMMON);
5115 }
5116
5117 static unsigned int
5118 elf_x86_64_common_section_index (asection *sec)
5119 {
5120 if ((elf_section_flags (sec) & SHF_X86_64_LARGE) == 0)
5121 return SHN_COMMON;
5122 else
5123 return SHN_X86_64_LCOMMON;
5124 }
5125
5126 static asection *
5127 elf_x86_64_common_section (asection *sec)
5128 {
5129 if ((elf_section_flags (sec) & SHF_X86_64_LARGE) == 0)
5130 return bfd_com_section_ptr;
5131 else
5132 return &_bfd_elf_large_com_section;
5133 }
5134
5135 static bfd_boolean
5136 elf_x86_64_merge_symbol (struct elf_link_hash_entry *h,
5137 const Elf_Internal_Sym *sym,
5138 asection **psec,
5139 bfd_boolean newdef,
5140 bfd_boolean olddef,
5141 bfd *oldbfd,
5142 const asection *oldsec)
5143 {
5144 /* A normal common symbol and a large common symbol result in a
5145 normal common symbol. We turn the large common symbol into a
5146 normal one. */
5147 if (!olddef
5148 && h->root.type == bfd_link_hash_common
5149 && !newdef
5150 && bfd_is_com_section (*psec)
5151 && oldsec != *psec)
5152 {
5153 if (sym->st_shndx == SHN_COMMON
5154 && (elf_section_flags (oldsec) & SHF_X86_64_LARGE) != 0)
5155 {
5156 h->root.u.c.p->section
5157 = bfd_make_section_old_way (oldbfd, "COMMON");
5158 h->root.u.c.p->section->flags = SEC_ALLOC;
5159 }
5160 else if (sym->st_shndx == SHN_X86_64_LCOMMON
5161 && (elf_section_flags (oldsec) & SHF_X86_64_LARGE) == 0)
5162 *psec = bfd_com_section_ptr;
5163 }
5164
5165 return TRUE;
5166 }
5167
5168 static int
5169 elf_x86_64_additional_program_headers (bfd *abfd,
5170 struct bfd_link_info *info ATTRIBUTE_UNUSED)
5171 {
5172 asection *s;
5173 int count = 0;
5174
5175 /* Check to see if we need a large readonly segment. */
5176 s = bfd_get_section_by_name (abfd, ".lrodata");
5177 if (s && (s->flags & SEC_LOAD))
5178 count++;
5179
5180 /* Check to see if we need a large data segment. Since .lbss sections
5181 is placed right after the .bss section, there should be no need for
5182 a large data segment just because of .lbss. */
5183 s = bfd_get_section_by_name (abfd, ".ldata");
5184 if (s && (s->flags & SEC_LOAD))
5185 count++;
5186
5187 return count;
5188 }
5189
5190 /* Return TRUE if symbol should be hashed in the `.gnu.hash' section. */
5191
5192 static bfd_boolean
5193 elf_x86_64_hash_symbol (struct elf_link_hash_entry *h)
5194 {
5195 if (h->plt.offset != (bfd_vma) -1
5196 && !h->def_regular
5197 && !h->pointer_equality_needed)
5198 return FALSE;
5199
5200 return _bfd_elf_hash_symbol (h);
5201 }
5202
5203 /* Return TRUE iff relocations for INPUT are compatible with OUTPUT. */
5204
5205 static bfd_boolean
5206 elf_x86_64_relocs_compatible (const bfd_target *input,
5207 const bfd_target *output)
5208 {
5209 return ((xvec_get_elf_backend_data (input)->s->elfclass
5210 == xvec_get_elf_backend_data (output)->s->elfclass)
5211 && _bfd_elf_relocs_compatible (input, output));
5212 }
5213
5214 static const struct bfd_elf_special_section
5215 elf_x86_64_special_sections[]=
5216 {
5217 { STRING_COMMA_LEN (".gnu.linkonce.lb"), -2, SHT_NOBITS, SHF_ALLOC + SHF_WRITE + SHF_X86_64_LARGE},
5218 { STRING_COMMA_LEN (".gnu.linkonce.lr"), -2, SHT_PROGBITS, SHF_ALLOC + SHF_X86_64_LARGE},
5219 { STRING_COMMA_LEN (".gnu.linkonce.lt"), -2, SHT_PROGBITS, SHF_ALLOC + SHF_EXECINSTR + SHF_X86_64_LARGE},
5220 { STRING_COMMA_LEN (".lbss"), -2, SHT_NOBITS, SHF_ALLOC + SHF_WRITE + SHF_X86_64_LARGE},
5221 { STRING_COMMA_LEN (".ldata"), -2, SHT_PROGBITS, SHF_ALLOC + SHF_WRITE + SHF_X86_64_LARGE},
5222 { STRING_COMMA_LEN (".lrodata"), -2, SHT_PROGBITS, SHF_ALLOC + SHF_X86_64_LARGE},
5223 { NULL, 0, 0, 0, 0 }
5224 };
5225
5226 #define TARGET_LITTLE_SYM bfd_elf64_x86_64_vec
5227 #define TARGET_LITTLE_NAME "elf64-x86-64"
5228 #define ELF_ARCH bfd_arch_i386
5229 #define ELF_TARGET_ID X86_64_ELF_DATA
5230 #define ELF_MACHINE_CODE EM_X86_64
5231 #define ELF_MAXPAGESIZE 0x200000
5232 #define ELF_MINPAGESIZE 0x1000
5233 #define ELF_COMMONPAGESIZE 0x1000
5234
5235 #define elf_backend_can_gc_sections 1
5236 #define elf_backend_can_refcount 1
5237 #define elf_backend_want_got_plt 1
5238 #define elf_backend_plt_readonly 1
5239 #define elf_backend_want_plt_sym 0
5240 #define elf_backend_got_header_size (GOT_ENTRY_SIZE*3)
5241 #define elf_backend_rela_normal 1
5242 #define elf_backend_plt_alignment 4
5243
5244 #define elf_info_to_howto elf_x86_64_info_to_howto
5245
5246 #define bfd_elf64_bfd_link_hash_table_create \
5247 elf_x86_64_link_hash_table_create
5248 #define bfd_elf64_bfd_link_hash_table_free \
5249 elf_x86_64_link_hash_table_free
5250 #define bfd_elf64_bfd_reloc_type_lookup elf_x86_64_reloc_type_lookup
5251 #define bfd_elf64_bfd_reloc_name_lookup \
5252 elf_x86_64_reloc_name_lookup
5253
5254 #define elf_backend_adjust_dynamic_symbol elf_x86_64_adjust_dynamic_symbol
5255 #define elf_backend_relocs_compatible elf_x86_64_relocs_compatible
5256 #define elf_backend_check_relocs elf_x86_64_check_relocs
5257 #define elf_backend_copy_indirect_symbol elf_x86_64_copy_indirect_symbol
5258 #define elf_backend_create_dynamic_sections elf_x86_64_create_dynamic_sections
5259 #define elf_backend_finish_dynamic_sections elf_x86_64_finish_dynamic_sections
5260 #define elf_backend_finish_dynamic_symbol elf_x86_64_finish_dynamic_symbol
5261 #define elf_backend_gc_mark_hook elf_x86_64_gc_mark_hook
5262 #define elf_backend_gc_sweep_hook elf_x86_64_gc_sweep_hook
5263 #define elf_backend_grok_prstatus elf_x86_64_grok_prstatus
5264 #define elf_backend_grok_psinfo elf_x86_64_grok_psinfo
5265 #ifdef CORE_HEADER
5266 #define elf_backend_write_core_note elf_x86_64_write_core_note
5267 #endif
5268 #define elf_backend_reloc_type_class elf_x86_64_reloc_type_class
5269 #define elf_backend_relocate_section elf_x86_64_relocate_section
5270 #define elf_backend_size_dynamic_sections elf_x86_64_size_dynamic_sections
5271 #define elf_backend_always_size_sections elf_x86_64_always_size_sections
5272 #define elf_backend_init_index_section _bfd_elf_init_1_index_section
5273 #define elf_backend_plt_sym_val elf_x86_64_plt_sym_val
5274 #define elf_backend_object_p elf64_x86_64_elf_object_p
5275 #define bfd_elf64_mkobject elf_x86_64_mkobject
5276
5277 #define elf_backend_section_from_shdr \
5278 elf_x86_64_section_from_shdr
5279
5280 #define elf_backend_section_from_bfd_section \
5281 elf_x86_64_elf_section_from_bfd_section
5282 #define elf_backend_add_symbol_hook \
5283 elf_x86_64_add_symbol_hook
5284 #define elf_backend_symbol_processing \
5285 elf_x86_64_symbol_processing
5286 #define elf_backend_common_section_index \
5287 elf_x86_64_common_section_index
5288 #define elf_backend_common_section \
5289 elf_x86_64_common_section
5290 #define elf_backend_common_definition \
5291 elf_x86_64_common_definition
5292 #define elf_backend_merge_symbol \
5293 elf_x86_64_merge_symbol
5294 #define elf_backend_special_sections \
5295 elf_x86_64_special_sections
5296 #define elf_backend_additional_program_headers \
5297 elf_x86_64_additional_program_headers
5298 #define elf_backend_hash_symbol \
5299 elf_x86_64_hash_symbol
5300
5301 #define elf_backend_post_process_headers _bfd_elf_set_osabi
5302
5303 #include "elf64-target.h"
5304
5305 /* FreeBSD support. */
5306
5307 #undef TARGET_LITTLE_SYM
5308 #define TARGET_LITTLE_SYM bfd_elf64_x86_64_freebsd_vec
5309 #undef TARGET_LITTLE_NAME
5310 #define TARGET_LITTLE_NAME "elf64-x86-64-freebsd"
5311
5312 #undef ELF_OSABI
5313 #define ELF_OSABI ELFOSABI_FREEBSD
5314
5315 #undef elf64_bed
5316 #define elf64_bed elf64_x86_64_fbsd_bed
5317
5318 #include "elf64-target.h"
5319
5320 /* Solaris 2 support. */
5321
5322 #undef TARGET_LITTLE_SYM
5323 #define TARGET_LITTLE_SYM bfd_elf64_x86_64_sol2_vec
5324 #undef TARGET_LITTLE_NAME
5325 #define TARGET_LITTLE_NAME "elf64-x86-64-sol2"
5326
5327 /* Restore default: we cannot use ELFOSABI_SOLARIS, otherwise ELFOSABI_NONE
5328 objects won't be recognized. */
5329 #undef ELF_OSABI
5330
5331 #undef elf64_bed
5332 #define elf64_bed elf64_x86_64_sol2_bed
5333
5334 /* The 64-bit static TLS arena size is rounded to the nearest 16-byte
5335 boundary. */
5336 #undef elf_backend_static_tls_alignment
5337 #define elf_backend_static_tls_alignment 16
5338
5339 /* The Solaris 2 ABI requires a plt symbol on all platforms.
5340
5341 Cf. Linker and Libraries Guide, Ch. 2, Link-Editor, Generating the Output
5342 File, p.63. */
5343 #undef elf_backend_want_plt_sym
5344 #define elf_backend_want_plt_sym 1
5345
5346 #include "elf64-target.h"
5347
5348 /* Native Client support. */
5349
5350 #undef TARGET_LITTLE_SYM
5351 #define TARGET_LITTLE_SYM bfd_elf64_x86_64_nacl_vec
5352 #undef TARGET_LITTLE_NAME
5353 #define TARGET_LITTLE_NAME "elf64-x86-64-nacl"
5354 #undef elf64_bed
5355 #define elf64_bed elf64_x86_64_nacl_bed
5356
5357 #undef ELF_MAXPAGESIZE
5358 #undef ELF_MINPAGESIZE
5359 #undef ELF_COMMONPAGESIZE
5360 #define ELF_MAXPAGESIZE 0x10000
5361 #define ELF_MINPAGESIZE 0x10000
5362 #define ELF_COMMONPAGESIZE 0x10000
5363
5364 /* Restore defaults. */
5365 #undef ELF_OSABI
5366 #undef elf_backend_static_tls_alignment
5367 #undef elf_backend_want_plt_sym
5368 #define elf_backend_want_plt_sym 0
5369
5370 /* NaCl uses substantially different PLT entries for the same effects. */
5371
5372 #undef elf_backend_plt_alignment
5373 #define elf_backend_plt_alignment 5
5374 #define NACL_PLT_ENTRY_SIZE 64
5375 #define NACLMASK 0xe0 /* 32-byte alignment mask. */
5376
5377 static const bfd_byte elf_x86_64_nacl_plt0_entry[NACL_PLT_ENTRY_SIZE] =
5378 {
5379 0xff, 0x35, 8, 0, 0, 0, /* pushq GOT+8(%rip) */
5380 0x4c, 0x8b, 0x1d, 16, 0, 0, 0, /* mov GOT+16(%rip), %r11 */
5381 0x41, 0x83, 0xe3, NACLMASK, /* and $-32, %r11d */
5382 0x4d, 0x01, 0xfb, /* add %r15, %r11 */
5383 0x41, 0xff, 0xe3, /* jmpq *%r11 */
5384
5385 /* 9-byte nop sequence to pad out to the next 32-byte boundary. */
5386 0x2e, 0x0f, 0x1f, 0x84, 0, 0, 0, 0, 0, /* nopl %cs:0x0(%rax,%rax,1) */
5387
5388 /* 32 bytes of nop to pad out to the standard size. */
5389 0x66, 0x66, 0x66, 0x66, 0x66, 0x66, /* excess data32 prefixes */
5390 0x2e, 0x0f, 0x1f, 0x84, 0, 0, 0, 0, 0, /* nopw %cs:0x0(%rax,%rax,1) */
5391 0x66, 0x66, 0x66, 0x66, 0x66, 0x66, /* excess data32 prefixes */
5392 0x2e, 0x0f, 0x1f, 0x84, 0, 0, 0, 0, 0, /* nopw %cs:0x0(%rax,%rax,1) */
5393 0x66, /* excess data32 prefix */
5394 0x90 /* nop */
5395 };
5396
5397 static const bfd_byte elf_x86_64_nacl_plt_entry[NACL_PLT_ENTRY_SIZE] =
5398 {
5399 0x4c, 0x8b, 0x1d, 0, 0, 0, 0, /* mov name@GOTPCREL(%rip),%r11 */
5400 0x41, 0x83, 0xe3, NACLMASK, /* and $-32, %r11d */
5401 0x4d, 0x01, 0xfb, /* add %r15, %r11 */
5402 0x41, 0xff, 0xe3, /* jmpq *%r11 */
5403
5404 /* 15-byte nop sequence to pad out to the next 32-byte boundary. */
5405 0x66, 0x66, 0x66, 0x66, 0x66, 0x66, /* excess data32 prefixes */
5406 0x2e, 0x0f, 0x1f, 0x84, 0, 0, 0, 0, 0, /* nopw %cs:0x0(%rax,%rax,1) */
5407
5408 /* Lazy GOT entries point here (32-byte aligned). */
5409 0x68, /* pushq immediate */
5410 0, 0, 0, 0, /* replaced with index into relocation table. */
5411 0xe9, /* jmp relative */
5412 0, 0, 0, 0, /* replaced with offset to start of .plt0. */
5413
5414 /* 22 bytes of nop to pad out to the standard size. */
5415 0x66, 0x66, 0x66, 0x66, 0x66, 0x66, /* excess data32 prefixes */
5416 0x2e, 0x0f, 0x1f, 0x84, 0, 0, 0, 0, 0, /* nopw %cs:0x0(%rax,%rax,1) */
5417 0x0f, 0x1f, 0x80, 0, 0, 0, 0, /* nopl 0x0(%rax) */
5418 };
5419
5420 /* .eh_frame covering the .plt section. */
5421
5422 static const bfd_byte elf_x86_64_nacl_eh_frame_plt[] =
5423 {
5424 #if (PLT_CIE_LENGTH != 20 \
5425 || PLT_FDE_LENGTH != 36 \
5426 || PLT_FDE_START_OFFSET != 4 + PLT_CIE_LENGTH + 8 \
5427 || PLT_FDE_LEN_OFFSET != 4 + PLT_CIE_LENGTH + 12)
5428 # error "Need elf_x86_64_backend_data parameters for eh_frame_plt offsets!"
5429 #endif
5430 PLT_CIE_LENGTH, 0, 0, 0, /* CIE length */
5431 0, 0, 0, 0, /* CIE ID */
5432 1, /* CIE version */
5433 'z', 'R', 0, /* Augmentation string */
5434 1, /* Code alignment factor */
5435 0x78, /* Data alignment factor */
5436 16, /* Return address column */
5437 1, /* Augmentation size */
5438 DW_EH_PE_pcrel | DW_EH_PE_sdata4, /* FDE encoding */
5439 DW_CFA_def_cfa, 7, 8, /* DW_CFA_def_cfa: r7 (rsp) ofs 8 */
5440 DW_CFA_offset + 16, 1, /* DW_CFA_offset: r16 (rip) at cfa-8 */
5441 DW_CFA_nop, DW_CFA_nop,
5442
5443 PLT_FDE_LENGTH, 0, 0, 0, /* FDE length */
5444 PLT_CIE_LENGTH + 8, 0, 0, 0,/* CIE pointer */
5445 0, 0, 0, 0, /* R_X86_64_PC32 .plt goes here */
5446 0, 0, 0, 0, /* .plt size goes here */
5447 0, /* Augmentation size */
5448 DW_CFA_def_cfa_offset, 16, /* DW_CFA_def_cfa_offset: 16 */
5449 DW_CFA_advance_loc + 6, /* DW_CFA_advance_loc: 6 to __PLT__+6 */
5450 DW_CFA_def_cfa_offset, 24, /* DW_CFA_def_cfa_offset: 24 */
5451 DW_CFA_advance_loc + 58, /* DW_CFA_advance_loc: 58 to __PLT__+64 */
5452 DW_CFA_def_cfa_expression, /* DW_CFA_def_cfa_expression */
5453 13, /* Block length */
5454 DW_OP_breg7, 8, /* DW_OP_breg7 (rsp): 8 */
5455 DW_OP_breg16, 0, /* DW_OP_breg16 (rip): 0 */
5456 DW_OP_const1u, 63, DW_OP_and, DW_OP_const1u, 37, DW_OP_ge,
5457 DW_OP_lit3, DW_OP_shl, DW_OP_plus,
5458 DW_CFA_nop, DW_CFA_nop
5459 };
5460
5461 static const struct elf_x86_64_backend_data elf_x86_64_nacl_arch_bed =
5462 {
5463 elf_x86_64_nacl_plt0_entry, /* plt0_entry */
5464 elf_x86_64_nacl_plt_entry, /* plt_entry */
5465 NACL_PLT_ENTRY_SIZE, /* plt_entry_size */
5466 2, /* plt0_got1_offset */
5467 9, /* plt0_got2_offset */
5468 13, /* plt0_got2_insn_end */
5469 3, /* plt_got_offset */
5470 33, /* plt_reloc_offset */
5471 38, /* plt_plt_offset */
5472 7, /* plt_got_insn_size */
5473 42, /* plt_plt_insn_end */
5474 32, /* plt_lazy_offset */
5475 elf_x86_64_nacl_eh_frame_plt, /* eh_frame_plt */
5476 sizeof (elf_x86_64_nacl_eh_frame_plt), /* eh_frame_plt_size */
5477 };
5478
5479 #undef elf_backend_arch_data
5480 #define elf_backend_arch_data &elf_x86_64_nacl_arch_bed
5481
5482 #undef elf_backend_modify_segment_map
5483 #define elf_backend_modify_segment_map nacl_modify_segment_map
5484 #undef elf_backend_modify_program_headers
5485 #define elf_backend_modify_program_headers nacl_modify_program_headers
5486 #undef elf_backend_final_write_processing
5487 #define elf_backend_final_write_processing nacl_final_write_processing
5488
5489 #include "elf64-target.h"
5490
5491 /* Native Client x32 support. */
5492
5493 #undef TARGET_LITTLE_SYM
5494 #define TARGET_LITTLE_SYM bfd_elf32_x86_64_nacl_vec
5495 #undef TARGET_LITTLE_NAME
5496 #define TARGET_LITTLE_NAME "elf32-x86-64-nacl"
5497 #undef elf32_bed
5498 #define elf32_bed elf32_x86_64_nacl_bed
5499
5500 #define bfd_elf32_bfd_link_hash_table_create \
5501 elf_x86_64_link_hash_table_create
5502 #define bfd_elf32_bfd_link_hash_table_free \
5503 elf_x86_64_link_hash_table_free
5504 #define bfd_elf32_bfd_reloc_type_lookup \
5505 elf_x86_64_reloc_type_lookup
5506 #define bfd_elf32_bfd_reloc_name_lookup \
5507 elf_x86_64_reloc_name_lookup
5508 #define bfd_elf32_mkobject \
5509 elf_x86_64_mkobject
5510
5511 #undef elf_backend_object_p
5512 #define elf_backend_object_p \
5513 elf32_x86_64_elf_object_p
5514
5515 #undef elf_backend_bfd_from_remote_memory
5516 #define elf_backend_bfd_from_remote_memory \
5517 _bfd_elf32_bfd_from_remote_memory
5518
5519 #undef elf_backend_size_info
5520 #define elf_backend_size_info \
5521 _bfd_elf32_size_info
5522
5523 #include "elf32-target.h"
5524
5525 /* Restore defaults. */
5526 #undef elf_backend_object_p
5527 #define elf_backend_object_p elf64_x86_64_elf_object_p
5528 #undef elf_backend_bfd_from_remote_memory
5529 #undef elf_backend_size_info
5530 #undef elf_backend_modify_segment_map
5531 #undef elf_backend_modify_program_headers
5532 #undef elf_backend_final_write_processing
5533
5534 /* Intel L1OM support. */
5535
5536 static bfd_boolean
5537 elf64_l1om_elf_object_p (bfd *abfd)
5538 {
5539 /* Set the right machine number for an L1OM elf64 file. */
5540 bfd_default_set_arch_mach (abfd, bfd_arch_l1om, bfd_mach_l1om);
5541 return TRUE;
5542 }
5543
5544 #undef TARGET_LITTLE_SYM
5545 #define TARGET_LITTLE_SYM bfd_elf64_l1om_vec
5546 #undef TARGET_LITTLE_NAME
5547 #define TARGET_LITTLE_NAME "elf64-l1om"
5548 #undef ELF_ARCH
5549 #define ELF_ARCH bfd_arch_l1om
5550
5551 #undef ELF_MACHINE_CODE
5552 #define ELF_MACHINE_CODE EM_L1OM
5553
5554 #undef ELF_OSABI
5555
5556 #undef elf64_bed
5557 #define elf64_bed elf64_l1om_bed
5558
5559 #undef elf_backend_object_p
5560 #define elf_backend_object_p elf64_l1om_elf_object_p
5561
5562 /* Restore defaults. */
5563 #undef ELF_MAXPAGESIZE
5564 #undef ELF_MINPAGESIZE
5565 #undef ELF_COMMONPAGESIZE
5566 #define ELF_MAXPAGESIZE 0x200000
5567 #define ELF_MINPAGESIZE 0x1000
5568 #define ELF_COMMONPAGESIZE 0x1000
5569 #undef elf_backend_plt_alignment
5570 #define elf_backend_plt_alignment 4
5571 #undef elf_backend_arch_data
5572 #define elf_backend_arch_data &elf_x86_64_arch_bed
5573
5574 #include "elf64-target.h"
5575
5576 /* FreeBSD L1OM support. */
5577
5578 #undef TARGET_LITTLE_SYM
5579 #define TARGET_LITTLE_SYM bfd_elf64_l1om_freebsd_vec
5580 #undef TARGET_LITTLE_NAME
5581 #define TARGET_LITTLE_NAME "elf64-l1om-freebsd"
5582
5583 #undef ELF_OSABI
5584 #define ELF_OSABI ELFOSABI_FREEBSD
5585
5586 #undef elf64_bed
5587 #define elf64_bed elf64_l1om_fbsd_bed
5588
5589 #include "elf64-target.h"
5590
5591 /* Intel K1OM support. */
5592
5593 static bfd_boolean
5594 elf64_k1om_elf_object_p (bfd *abfd)
5595 {
5596 /* Set the right machine number for an K1OM elf64 file. */
5597 bfd_default_set_arch_mach (abfd, bfd_arch_k1om, bfd_mach_k1om);
5598 return TRUE;
5599 }
5600
5601 #undef TARGET_LITTLE_SYM
5602 #define TARGET_LITTLE_SYM bfd_elf64_k1om_vec
5603 #undef TARGET_LITTLE_NAME
5604 #define TARGET_LITTLE_NAME "elf64-k1om"
5605 #undef ELF_ARCH
5606 #define ELF_ARCH bfd_arch_k1om
5607
5608 #undef ELF_MACHINE_CODE
5609 #define ELF_MACHINE_CODE EM_K1OM
5610
5611 #undef ELF_OSABI
5612
5613 #undef elf64_bed
5614 #define elf64_bed elf64_k1om_bed
5615
5616 #undef elf_backend_object_p
5617 #define elf_backend_object_p elf64_k1om_elf_object_p
5618
5619 #undef elf_backend_static_tls_alignment
5620
5621 #undef elf_backend_want_plt_sym
5622 #define elf_backend_want_plt_sym 0
5623
5624 #include "elf64-target.h"
5625
5626 /* FreeBSD K1OM support. */
5627
5628 #undef TARGET_LITTLE_SYM
5629 #define TARGET_LITTLE_SYM bfd_elf64_k1om_freebsd_vec
5630 #undef TARGET_LITTLE_NAME
5631 #define TARGET_LITTLE_NAME "elf64-k1om-freebsd"
5632
5633 #undef ELF_OSABI
5634 #define ELF_OSABI ELFOSABI_FREEBSD
5635
5636 #undef elf64_bed
5637 #define elf64_bed elf64_k1om_fbsd_bed
5638
5639 #include "elf64-target.h"
5640
5641 /* 32bit x86-64 support. */
5642
5643 #undef TARGET_LITTLE_SYM
5644 #define TARGET_LITTLE_SYM bfd_elf32_x86_64_vec
5645 #undef TARGET_LITTLE_NAME
5646 #define TARGET_LITTLE_NAME "elf32-x86-64"
5647 #undef elf32_bed
5648
5649 #undef ELF_ARCH
5650 #define ELF_ARCH bfd_arch_i386
5651
5652 #undef ELF_MACHINE_CODE
5653 #define ELF_MACHINE_CODE EM_X86_64
5654
5655 #undef ELF_OSABI
5656
5657 #undef elf_backend_object_p
5658 #define elf_backend_object_p \
5659 elf32_x86_64_elf_object_p
5660
5661 #undef elf_backend_bfd_from_remote_memory
5662 #define elf_backend_bfd_from_remote_memory \
5663 _bfd_elf32_bfd_from_remote_memory
5664
5665 #undef elf_backend_size_info
5666 #define elf_backend_size_info \
5667 _bfd_elf32_size_info
5668
5669 #include "elf32-target.h"
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