1 /* PowerPC64-specific support for 64-bit ELF.
2 Copyright 1999, 2000, 2001, 2002, 2003, 2004, 2005, 2006, 2007, 2008,
3 2009, 2010 Free Software Foundation, Inc.
4 Written by Linus Nordberg, Swox AB <info@swox.com>,
5 based on elf32-ppc.c by Ian Lance Taylor.
6 Largely rewritten by Alan Modra.
8 This file is part of BFD, the Binary File Descriptor library.
10 This program is free software; you can redistribute it and/or modify
11 it under the terms of the GNU General Public License as published by
12 the Free Software Foundation; either version 3 of the License, or
13 (at your option) any later version.
15 This program is distributed in the hope that it will be useful,
16 but WITHOUT ANY WARRANTY; without even the implied warranty of
17 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
18 GNU General Public License for more details.
20 You should have received a copy of the GNU General Public License along
21 with this program; if not, write to the Free Software Foundation, Inc.,
22 51 Franklin Street - Fifth Floor, Boston, MA 02110-1301, USA. */
25 /* The 64-bit PowerPC ELF ABI may be found at
26 http://www.linuxbase.org/spec/ELF/ppc64/PPC-elf64abi.txt, and
27 http://www.linuxbase.org/spec/ELF/ppc64/spec/book1.html */
35 #include "elf/ppc64.h"
36 #include "elf64-ppc.h"
38 static bfd_reloc_status_type ppc64_elf_ha_reloc
39 (bfd
*, arelent
*, asymbol
*, void *, asection
*, bfd
*, char **);
40 static bfd_reloc_status_type ppc64_elf_branch_reloc
41 (bfd
*, arelent
*, asymbol
*, void *, asection
*, bfd
*, char **);
42 static bfd_reloc_status_type ppc64_elf_brtaken_reloc
43 (bfd
*, arelent
*, asymbol
*, void *, asection
*, bfd
*, char **);
44 static bfd_reloc_status_type ppc64_elf_sectoff_reloc
45 (bfd
*, arelent
*, asymbol
*, void *, asection
*, bfd
*, char **);
46 static bfd_reloc_status_type ppc64_elf_sectoff_ha_reloc
47 (bfd
*, arelent
*, asymbol
*, void *, asection
*, bfd
*, char **);
48 static bfd_reloc_status_type ppc64_elf_toc_reloc
49 (bfd
*, arelent
*, asymbol
*, void *, asection
*, bfd
*, char **);
50 static bfd_reloc_status_type ppc64_elf_toc_ha_reloc
51 (bfd
*, arelent
*, asymbol
*, void *, asection
*, bfd
*, char **);
52 static bfd_reloc_status_type ppc64_elf_toc64_reloc
53 (bfd
*, arelent
*, asymbol
*, void *, asection
*, bfd
*, char **);
54 static bfd_reloc_status_type ppc64_elf_unhandled_reloc
55 (bfd
*, arelent
*, asymbol
*, void *, asection
*, bfd
*, char **);
56 static bfd_vma opd_entry_value
57 (asection
*, bfd_vma
, asection
**, bfd_vma
*);
59 #define TARGET_LITTLE_SYM bfd_elf64_powerpcle_vec
60 #define TARGET_LITTLE_NAME "elf64-powerpcle"
61 #define TARGET_BIG_SYM bfd_elf64_powerpc_vec
62 #define TARGET_BIG_NAME "elf64-powerpc"
63 #define ELF_ARCH bfd_arch_powerpc
64 #define ELF_MACHINE_CODE EM_PPC64
65 #define ELF_MAXPAGESIZE 0x10000
66 #define ELF_COMMONPAGESIZE 0x1000
67 #define elf_info_to_howto ppc64_elf_info_to_howto
69 #define elf_backend_want_got_sym 0
70 #define elf_backend_want_plt_sym 0
71 #define elf_backend_plt_alignment 3
72 #define elf_backend_plt_not_loaded 1
73 #define elf_backend_got_header_size 8
74 #define elf_backend_can_gc_sections 1
75 #define elf_backend_can_refcount 1
76 #define elf_backend_rela_normal 1
77 #define elf_backend_default_execstack 0
79 #define bfd_elf64_mkobject ppc64_elf_mkobject
80 #define bfd_elf64_bfd_reloc_type_lookup ppc64_elf_reloc_type_lookup
81 #define bfd_elf64_bfd_reloc_name_lookup ppc64_elf_reloc_name_lookup
82 #define bfd_elf64_bfd_merge_private_bfd_data ppc64_elf_merge_private_bfd_data
83 #define bfd_elf64_new_section_hook ppc64_elf_new_section_hook
84 #define bfd_elf64_bfd_link_hash_table_create ppc64_elf_link_hash_table_create
85 #define bfd_elf64_bfd_link_hash_table_free ppc64_elf_link_hash_table_free
86 #define bfd_elf64_get_synthetic_symtab ppc64_elf_get_synthetic_symtab
88 #define elf_backend_object_p ppc64_elf_object_p
89 #define elf_backend_grok_prstatus ppc64_elf_grok_prstatus
90 #define elf_backend_grok_psinfo ppc64_elf_grok_psinfo
91 #define elf_backend_write_core_note ppc64_elf_write_core_note
92 #define elf_backend_create_dynamic_sections ppc64_elf_create_dynamic_sections
93 #define elf_backend_copy_indirect_symbol ppc64_elf_copy_indirect_symbol
94 #define elf_backend_add_symbol_hook ppc64_elf_add_symbol_hook
95 #define elf_backend_check_directives ppc64_elf_process_dot_syms
96 #define elf_backend_as_needed_cleanup ppc64_elf_as_needed_cleanup
97 #define elf_backend_archive_symbol_lookup ppc64_elf_archive_symbol_lookup
98 #define elf_backend_check_relocs ppc64_elf_check_relocs
99 #define elf_backend_gc_keep ppc64_elf_gc_keep
100 #define elf_backend_gc_mark_dynamic_ref ppc64_elf_gc_mark_dynamic_ref
101 #define elf_backend_gc_mark_hook ppc64_elf_gc_mark_hook
102 #define elf_backend_gc_sweep_hook ppc64_elf_gc_sweep_hook
103 #define elf_backend_adjust_dynamic_symbol ppc64_elf_adjust_dynamic_symbol
104 #define elf_backend_hide_symbol ppc64_elf_hide_symbol
105 #define elf_backend_always_size_sections ppc64_elf_func_desc_adjust
106 #define elf_backend_size_dynamic_sections ppc64_elf_size_dynamic_sections
107 #define elf_backend_init_index_section _bfd_elf_init_2_index_sections
108 #define elf_backend_action_discarded ppc64_elf_action_discarded
109 #define elf_backend_relocate_section ppc64_elf_relocate_section
110 #define elf_backend_finish_dynamic_symbol ppc64_elf_finish_dynamic_symbol
111 #define elf_backend_reloc_type_class ppc64_elf_reloc_type_class
112 #define elf_backend_finish_dynamic_sections ppc64_elf_finish_dynamic_sections
113 #define elf_backend_link_output_symbol_hook ppc64_elf_output_symbol_hook
114 #define elf_backend_special_sections ppc64_elf_special_sections
115 #define elf_backend_post_process_headers _bfd_elf_set_osabi
117 /* The name of the dynamic interpreter. This is put in the .interp
119 #define ELF_DYNAMIC_INTERPRETER "/usr/lib/ld.so.1"
121 /* The size in bytes of an entry in the procedure linkage table. */
122 #define PLT_ENTRY_SIZE 24
124 /* The initial size of the plt reserved for the dynamic linker. */
125 #define PLT_INITIAL_ENTRY_SIZE PLT_ENTRY_SIZE
127 /* TOC base pointers offset from start of TOC. */
128 #define TOC_BASE_OFF 0x8000
130 /* Offset of tp and dtp pointers from start of TLS block. */
131 #define TP_OFFSET 0x7000
132 #define DTP_OFFSET 0x8000
134 /* .plt call stub instructions. The normal stub is like this, but
135 sometimes the .plt entry crosses a 64k boundary and we need to
136 insert an addi to adjust r12. */
137 #define PLT_CALL_STUB_SIZE (7*4)
138 #define ADDIS_R12_R2 0x3d820000 /* addis %r12,%r2,xxx@ha */
139 #define STD_R2_40R1 0xf8410028 /* std %r2,40(%r1) */
140 #define LD_R11_0R12 0xe96c0000 /* ld %r11,xxx+0@l(%r12) */
141 #define MTCTR_R11 0x7d6903a6 /* mtctr %r11 */
142 #define LD_R2_0R12 0xe84c0000 /* ld %r2,xxx+8@l(%r12) */
143 /* ld %r11,xxx+16@l(%r12) */
144 #define BCTR 0x4e800420 /* bctr */
147 #define ADDIS_R12_R12 0x3d8c0000 /* addis %r12,%r12,off@ha */
148 #define ADDI_R12_R12 0x398c0000 /* addi %r12,%r12,off@l */
149 #define ADDIS_R2_R2 0x3c420000 /* addis %r2,%r2,off@ha */
150 #define ADDI_R2_R2 0x38420000 /* addi %r2,%r2,off@l */
152 #define LD_R11_0R2 0xe9620000 /* ld %r11,xxx+0(%r2) */
153 #define LD_R2_0R2 0xe8420000 /* ld %r2,xxx+0(%r2) */
155 #define LD_R2_40R1 0xe8410028 /* ld %r2,40(%r1) */
157 /* glink call stub instructions. We enter with the index in R0. */
158 #define GLINK_CALL_STUB_SIZE (16*4)
162 #define MFLR_R12 0x7d8802a6 /* mflr %12 */
163 #define BCL_20_31 0x429f0005 /* bcl 20,31,1f */
165 #define MFLR_R11 0x7d6802a6 /* mflr %11 */
166 #define LD_R2_M16R11 0xe84bfff0 /* ld %2,(0b-1b)(%11) */
167 #define MTLR_R12 0x7d8803a6 /* mtlr %12 */
168 #define ADD_R12_R2_R11 0x7d825a14 /* add %12,%2,%11 */
176 #define NOP 0x60000000
178 /* Some other nops. */
179 #define CROR_151515 0x4def7b82
180 #define CROR_313131 0x4ffffb82
182 /* .glink entries for the first 32k functions are two instructions. */
183 #define LI_R0_0 0x38000000 /* li %r0,0 */
184 #define B_DOT 0x48000000 /* b . */
186 /* After that, we need two instructions to load the index, followed by
188 #define LIS_R0_0 0x3c000000 /* lis %r0,0 */
189 #define ORI_R0_R0_0 0x60000000 /* ori %r0,%r0,0 */
191 /* Instructions used by the save and restore reg functions. */
192 #define STD_R0_0R1 0xf8010000 /* std %r0,0(%r1) */
193 #define STD_R0_0R12 0xf80c0000 /* std %r0,0(%r12) */
194 #define LD_R0_0R1 0xe8010000 /* ld %r0,0(%r1) */
195 #define LD_R0_0R12 0xe80c0000 /* ld %r0,0(%r12) */
196 #define STFD_FR0_0R1 0xd8010000 /* stfd %fr0,0(%r1) */
197 #define LFD_FR0_0R1 0xc8010000 /* lfd %fr0,0(%r1) */
198 #define LI_R12_0 0x39800000 /* li %r12,0 */
199 #define STVX_VR0_R12_R0 0x7c0c01ce /* stvx %v0,%r12,%r0 */
200 #define LVX_VR0_R12_R0 0x7c0c00ce /* lvx %v0,%r12,%r0 */
201 #define MTLR_R0 0x7c0803a6 /* mtlr %r0 */
202 #define BLR 0x4e800020 /* blr */
204 /* Since .opd is an array of descriptors and each entry will end up
205 with identical R_PPC64_RELATIVE relocs, there is really no need to
206 propagate .opd relocs; The dynamic linker should be taught to
207 relocate .opd without reloc entries. */
208 #ifndef NO_OPD_RELOCS
209 #define NO_OPD_RELOCS 0
212 #define ONES(n) (((bfd_vma) 1 << ((n) - 1) << 1) - 1)
214 /* Relocation HOWTO's. */
215 static reloc_howto_type
*ppc64_elf_howto_table
[(int) R_PPC64_max
];
217 static reloc_howto_type ppc64_elf_howto_raw
[] = {
218 /* This reloc does nothing. */
219 HOWTO (R_PPC64_NONE
, /* type */
221 2, /* size (0 = byte, 1 = short, 2 = long) */
223 FALSE
, /* pc_relative */
225 complain_overflow_dont
, /* complain_on_overflow */
226 bfd_elf_generic_reloc
, /* special_function */
227 "R_PPC64_NONE", /* name */
228 FALSE
, /* partial_inplace */
231 FALSE
), /* pcrel_offset */
233 /* A standard 32 bit relocation. */
234 HOWTO (R_PPC64_ADDR32
, /* type */
236 2, /* size (0 = byte, 1 = short, 2 = long) */
238 FALSE
, /* pc_relative */
240 complain_overflow_bitfield
, /* complain_on_overflow */
241 bfd_elf_generic_reloc
, /* special_function */
242 "R_PPC64_ADDR32", /* name */
243 FALSE
, /* partial_inplace */
245 0xffffffff, /* dst_mask */
246 FALSE
), /* pcrel_offset */
248 /* An absolute 26 bit branch; the lower two bits must be zero.
249 FIXME: we don't check that, we just clear them. */
250 HOWTO (R_PPC64_ADDR24
, /* type */
252 2, /* size (0 = byte, 1 = short, 2 = long) */
254 FALSE
, /* pc_relative */
256 complain_overflow_bitfield
, /* complain_on_overflow */
257 bfd_elf_generic_reloc
, /* special_function */
258 "R_PPC64_ADDR24", /* name */
259 FALSE
, /* partial_inplace */
261 0x03fffffc, /* dst_mask */
262 FALSE
), /* pcrel_offset */
264 /* A standard 16 bit relocation. */
265 HOWTO (R_PPC64_ADDR16
, /* type */
267 1, /* size (0 = byte, 1 = short, 2 = long) */
269 FALSE
, /* pc_relative */
271 complain_overflow_bitfield
, /* complain_on_overflow */
272 bfd_elf_generic_reloc
, /* special_function */
273 "R_PPC64_ADDR16", /* name */
274 FALSE
, /* partial_inplace */
276 0xffff, /* dst_mask */
277 FALSE
), /* pcrel_offset */
279 /* A 16 bit relocation without overflow. */
280 HOWTO (R_PPC64_ADDR16_LO
, /* type */
282 1, /* size (0 = byte, 1 = short, 2 = long) */
284 FALSE
, /* pc_relative */
286 complain_overflow_dont
,/* complain_on_overflow */
287 bfd_elf_generic_reloc
, /* special_function */
288 "R_PPC64_ADDR16_LO", /* name */
289 FALSE
, /* partial_inplace */
291 0xffff, /* dst_mask */
292 FALSE
), /* pcrel_offset */
294 /* Bits 16-31 of an address. */
295 HOWTO (R_PPC64_ADDR16_HI
, /* type */
297 1, /* size (0 = byte, 1 = short, 2 = long) */
299 FALSE
, /* pc_relative */
301 complain_overflow_dont
, /* complain_on_overflow */
302 bfd_elf_generic_reloc
, /* special_function */
303 "R_PPC64_ADDR16_HI", /* name */
304 FALSE
, /* partial_inplace */
306 0xffff, /* dst_mask */
307 FALSE
), /* pcrel_offset */
309 /* Bits 16-31 of an address, plus 1 if the contents of the low 16
310 bits, treated as a signed number, is negative. */
311 HOWTO (R_PPC64_ADDR16_HA
, /* type */
313 1, /* size (0 = byte, 1 = short, 2 = long) */
315 FALSE
, /* pc_relative */
317 complain_overflow_dont
, /* complain_on_overflow */
318 ppc64_elf_ha_reloc
, /* special_function */
319 "R_PPC64_ADDR16_HA", /* name */
320 FALSE
, /* partial_inplace */
322 0xffff, /* dst_mask */
323 FALSE
), /* pcrel_offset */
325 /* An absolute 16 bit branch; the lower two bits must be zero.
326 FIXME: we don't check that, we just clear them. */
327 HOWTO (R_PPC64_ADDR14
, /* type */
329 2, /* size (0 = byte, 1 = short, 2 = long) */
331 FALSE
, /* pc_relative */
333 complain_overflow_bitfield
, /* complain_on_overflow */
334 ppc64_elf_branch_reloc
, /* special_function */
335 "R_PPC64_ADDR14", /* name */
336 FALSE
, /* partial_inplace */
338 0x0000fffc, /* dst_mask */
339 FALSE
), /* pcrel_offset */
341 /* An absolute 16 bit branch, for which bit 10 should be set to
342 indicate that the branch is expected to be taken. The lower two
343 bits must be zero. */
344 HOWTO (R_PPC64_ADDR14_BRTAKEN
, /* type */
346 2, /* size (0 = byte, 1 = short, 2 = long) */
348 FALSE
, /* pc_relative */
350 complain_overflow_bitfield
, /* complain_on_overflow */
351 ppc64_elf_brtaken_reloc
, /* special_function */
352 "R_PPC64_ADDR14_BRTAKEN",/* name */
353 FALSE
, /* partial_inplace */
355 0x0000fffc, /* dst_mask */
356 FALSE
), /* pcrel_offset */
358 /* An absolute 16 bit branch, for which bit 10 should be set to
359 indicate that the branch is not expected to be taken. The lower
360 two bits must be zero. */
361 HOWTO (R_PPC64_ADDR14_BRNTAKEN
, /* type */
363 2, /* size (0 = byte, 1 = short, 2 = long) */
365 FALSE
, /* pc_relative */
367 complain_overflow_bitfield
, /* complain_on_overflow */
368 ppc64_elf_brtaken_reloc
, /* special_function */
369 "R_PPC64_ADDR14_BRNTAKEN",/* name */
370 FALSE
, /* partial_inplace */
372 0x0000fffc, /* dst_mask */
373 FALSE
), /* pcrel_offset */
375 /* A relative 26 bit branch; the lower two bits must be zero. */
376 HOWTO (R_PPC64_REL24
, /* type */
378 2, /* size (0 = byte, 1 = short, 2 = long) */
380 TRUE
, /* pc_relative */
382 complain_overflow_signed
, /* complain_on_overflow */
383 ppc64_elf_branch_reloc
, /* special_function */
384 "R_PPC64_REL24", /* name */
385 FALSE
, /* partial_inplace */
387 0x03fffffc, /* dst_mask */
388 TRUE
), /* pcrel_offset */
390 /* A relative 16 bit branch; the lower two bits must be zero. */
391 HOWTO (R_PPC64_REL14
, /* type */
393 2, /* size (0 = byte, 1 = short, 2 = long) */
395 TRUE
, /* pc_relative */
397 complain_overflow_signed
, /* complain_on_overflow */
398 ppc64_elf_branch_reloc
, /* special_function */
399 "R_PPC64_REL14", /* name */
400 FALSE
, /* partial_inplace */
402 0x0000fffc, /* dst_mask */
403 TRUE
), /* pcrel_offset */
405 /* A relative 16 bit branch. Bit 10 should be set to indicate that
406 the branch is expected to be taken. The lower two bits must be
408 HOWTO (R_PPC64_REL14_BRTAKEN
, /* type */
410 2, /* size (0 = byte, 1 = short, 2 = long) */
412 TRUE
, /* pc_relative */
414 complain_overflow_signed
, /* complain_on_overflow */
415 ppc64_elf_brtaken_reloc
, /* special_function */
416 "R_PPC64_REL14_BRTAKEN", /* name */
417 FALSE
, /* partial_inplace */
419 0x0000fffc, /* dst_mask */
420 TRUE
), /* pcrel_offset */
422 /* A relative 16 bit branch. Bit 10 should be set to indicate that
423 the branch is not expected to be taken. The lower two bits must
425 HOWTO (R_PPC64_REL14_BRNTAKEN
, /* type */
427 2, /* size (0 = byte, 1 = short, 2 = long) */
429 TRUE
, /* pc_relative */
431 complain_overflow_signed
, /* complain_on_overflow */
432 ppc64_elf_brtaken_reloc
, /* special_function */
433 "R_PPC64_REL14_BRNTAKEN",/* name */
434 FALSE
, /* partial_inplace */
436 0x0000fffc, /* dst_mask */
437 TRUE
), /* pcrel_offset */
439 /* Like R_PPC64_ADDR16, but referring to the GOT table entry for the
441 HOWTO (R_PPC64_GOT16
, /* type */
443 1, /* size (0 = byte, 1 = short, 2 = long) */
445 FALSE
, /* pc_relative */
447 complain_overflow_signed
, /* complain_on_overflow */
448 ppc64_elf_unhandled_reloc
, /* special_function */
449 "R_PPC64_GOT16", /* name */
450 FALSE
, /* partial_inplace */
452 0xffff, /* dst_mask */
453 FALSE
), /* pcrel_offset */
455 /* Like R_PPC64_ADDR16_LO, but referring to the GOT table entry for
457 HOWTO (R_PPC64_GOT16_LO
, /* type */
459 1, /* size (0 = byte, 1 = short, 2 = long) */
461 FALSE
, /* pc_relative */
463 complain_overflow_dont
, /* complain_on_overflow */
464 ppc64_elf_unhandled_reloc
, /* special_function */
465 "R_PPC64_GOT16_LO", /* name */
466 FALSE
, /* partial_inplace */
468 0xffff, /* dst_mask */
469 FALSE
), /* pcrel_offset */
471 /* Like R_PPC64_ADDR16_HI, but referring to the GOT table entry for
473 HOWTO (R_PPC64_GOT16_HI
, /* type */
475 1, /* size (0 = byte, 1 = short, 2 = long) */
477 FALSE
, /* pc_relative */
479 complain_overflow_dont
,/* complain_on_overflow */
480 ppc64_elf_unhandled_reloc
, /* special_function */
481 "R_PPC64_GOT16_HI", /* name */
482 FALSE
, /* partial_inplace */
484 0xffff, /* dst_mask */
485 FALSE
), /* pcrel_offset */
487 /* Like R_PPC64_ADDR16_HA, but referring to the GOT table entry for
489 HOWTO (R_PPC64_GOT16_HA
, /* type */
491 1, /* size (0 = byte, 1 = short, 2 = long) */
493 FALSE
, /* pc_relative */
495 complain_overflow_dont
,/* complain_on_overflow */
496 ppc64_elf_unhandled_reloc
, /* special_function */
497 "R_PPC64_GOT16_HA", /* name */
498 FALSE
, /* partial_inplace */
500 0xffff, /* dst_mask */
501 FALSE
), /* pcrel_offset */
503 /* This is used only by the dynamic linker. The symbol should exist
504 both in the object being run and in some shared library. The
505 dynamic linker copies the data addressed by the symbol from the
506 shared library into the object, because the object being
507 run has to have the data at some particular address. */
508 HOWTO (R_PPC64_COPY
, /* type */
510 0, /* this one is variable size */
512 FALSE
, /* pc_relative */
514 complain_overflow_dont
, /* complain_on_overflow */
515 ppc64_elf_unhandled_reloc
, /* special_function */
516 "R_PPC64_COPY", /* name */
517 FALSE
, /* partial_inplace */
520 FALSE
), /* pcrel_offset */
522 /* Like R_PPC64_ADDR64, but used when setting global offset table
524 HOWTO (R_PPC64_GLOB_DAT
, /* type */
526 4, /* size (0=byte, 1=short, 2=long, 4=64 bits) */
528 FALSE
, /* pc_relative */
530 complain_overflow_dont
, /* complain_on_overflow */
531 ppc64_elf_unhandled_reloc
, /* special_function */
532 "R_PPC64_GLOB_DAT", /* name */
533 FALSE
, /* partial_inplace */
535 ONES (64), /* dst_mask */
536 FALSE
), /* pcrel_offset */
538 /* Created by the link editor. Marks a procedure linkage table
539 entry for a symbol. */
540 HOWTO (R_PPC64_JMP_SLOT
, /* type */
542 0, /* size (0 = byte, 1 = short, 2 = long) */
544 FALSE
, /* pc_relative */
546 complain_overflow_dont
, /* complain_on_overflow */
547 ppc64_elf_unhandled_reloc
, /* special_function */
548 "R_PPC64_JMP_SLOT", /* name */
549 FALSE
, /* partial_inplace */
552 FALSE
), /* pcrel_offset */
554 /* Used only by the dynamic linker. When the object is run, this
555 doubleword64 is set to the load address of the object, plus the
557 HOWTO (R_PPC64_RELATIVE
, /* type */
559 4, /* size (0=byte, 1=short, 2=long, 4=64 bits) */
561 FALSE
, /* pc_relative */
563 complain_overflow_dont
, /* complain_on_overflow */
564 bfd_elf_generic_reloc
, /* special_function */
565 "R_PPC64_RELATIVE", /* name */
566 FALSE
, /* partial_inplace */
568 ONES (64), /* dst_mask */
569 FALSE
), /* pcrel_offset */
571 /* Like R_PPC64_ADDR32, but may be unaligned. */
572 HOWTO (R_PPC64_UADDR32
, /* type */
574 2, /* size (0 = byte, 1 = short, 2 = long) */
576 FALSE
, /* pc_relative */
578 complain_overflow_bitfield
, /* complain_on_overflow */
579 bfd_elf_generic_reloc
, /* special_function */
580 "R_PPC64_UADDR32", /* name */
581 FALSE
, /* partial_inplace */
583 0xffffffff, /* dst_mask */
584 FALSE
), /* pcrel_offset */
586 /* Like R_PPC64_ADDR16, but may be unaligned. */
587 HOWTO (R_PPC64_UADDR16
, /* type */
589 1, /* size (0 = byte, 1 = short, 2 = long) */
591 FALSE
, /* pc_relative */
593 complain_overflow_bitfield
, /* complain_on_overflow */
594 bfd_elf_generic_reloc
, /* special_function */
595 "R_PPC64_UADDR16", /* name */
596 FALSE
, /* partial_inplace */
598 0xffff, /* dst_mask */
599 FALSE
), /* pcrel_offset */
601 /* 32-bit PC relative. */
602 HOWTO (R_PPC64_REL32
, /* type */
604 2, /* size (0 = byte, 1 = short, 2 = long) */
606 TRUE
, /* pc_relative */
608 /* FIXME: Verify. Was complain_overflow_bitfield. */
609 complain_overflow_signed
, /* complain_on_overflow */
610 bfd_elf_generic_reloc
, /* special_function */
611 "R_PPC64_REL32", /* name */
612 FALSE
, /* partial_inplace */
614 0xffffffff, /* dst_mask */
615 TRUE
), /* pcrel_offset */
617 /* 32-bit relocation to the symbol's procedure linkage table. */
618 HOWTO (R_PPC64_PLT32
, /* type */
620 2, /* size (0 = byte, 1 = short, 2 = long) */
622 FALSE
, /* pc_relative */
624 complain_overflow_bitfield
, /* complain_on_overflow */
625 ppc64_elf_unhandled_reloc
, /* special_function */
626 "R_PPC64_PLT32", /* name */
627 FALSE
, /* partial_inplace */
629 0xffffffff, /* dst_mask */
630 FALSE
), /* pcrel_offset */
632 /* 32-bit PC relative relocation to the symbol's procedure linkage table.
633 FIXME: R_PPC64_PLTREL32 not supported. */
634 HOWTO (R_PPC64_PLTREL32
, /* type */
636 2, /* size (0 = byte, 1 = short, 2 = long) */
638 TRUE
, /* pc_relative */
640 complain_overflow_signed
, /* complain_on_overflow */
641 bfd_elf_generic_reloc
, /* special_function */
642 "R_PPC64_PLTREL32", /* name */
643 FALSE
, /* partial_inplace */
645 0xffffffff, /* dst_mask */
646 TRUE
), /* pcrel_offset */
648 /* Like R_PPC64_ADDR16_LO, but referring to the PLT table entry for
650 HOWTO (R_PPC64_PLT16_LO
, /* type */
652 1, /* size (0 = byte, 1 = short, 2 = long) */
654 FALSE
, /* pc_relative */
656 complain_overflow_dont
, /* complain_on_overflow */
657 ppc64_elf_unhandled_reloc
, /* special_function */
658 "R_PPC64_PLT16_LO", /* name */
659 FALSE
, /* partial_inplace */
661 0xffff, /* dst_mask */
662 FALSE
), /* pcrel_offset */
664 /* Like R_PPC64_ADDR16_HI, but referring to the PLT table entry for
666 HOWTO (R_PPC64_PLT16_HI
, /* type */
668 1, /* size (0 = byte, 1 = short, 2 = long) */
670 FALSE
, /* pc_relative */
672 complain_overflow_dont
, /* complain_on_overflow */
673 ppc64_elf_unhandled_reloc
, /* special_function */
674 "R_PPC64_PLT16_HI", /* name */
675 FALSE
, /* partial_inplace */
677 0xffff, /* dst_mask */
678 FALSE
), /* pcrel_offset */
680 /* Like R_PPC64_ADDR16_HA, but referring to the PLT table entry for
682 HOWTO (R_PPC64_PLT16_HA
, /* type */
684 1, /* size (0 = byte, 1 = short, 2 = long) */
686 FALSE
, /* pc_relative */
688 complain_overflow_dont
, /* complain_on_overflow */
689 ppc64_elf_unhandled_reloc
, /* special_function */
690 "R_PPC64_PLT16_HA", /* name */
691 FALSE
, /* partial_inplace */
693 0xffff, /* dst_mask */
694 FALSE
), /* pcrel_offset */
696 /* 16-bit section relative relocation. */
697 HOWTO (R_PPC64_SECTOFF
, /* type */
699 1, /* size (0 = byte, 1 = short, 2 = long) */
701 FALSE
, /* pc_relative */
703 complain_overflow_bitfield
, /* complain_on_overflow */
704 ppc64_elf_sectoff_reloc
, /* special_function */
705 "R_PPC64_SECTOFF", /* name */
706 FALSE
, /* partial_inplace */
708 0xffff, /* dst_mask */
709 FALSE
), /* pcrel_offset */
711 /* Like R_PPC64_SECTOFF, but no overflow warning. */
712 HOWTO (R_PPC64_SECTOFF_LO
, /* type */
714 1, /* size (0 = byte, 1 = short, 2 = long) */
716 FALSE
, /* pc_relative */
718 complain_overflow_dont
, /* complain_on_overflow */
719 ppc64_elf_sectoff_reloc
, /* special_function */
720 "R_PPC64_SECTOFF_LO", /* name */
721 FALSE
, /* partial_inplace */
723 0xffff, /* dst_mask */
724 FALSE
), /* pcrel_offset */
726 /* 16-bit upper half section relative relocation. */
727 HOWTO (R_PPC64_SECTOFF_HI
, /* type */
729 1, /* size (0 = byte, 1 = short, 2 = long) */
731 FALSE
, /* pc_relative */
733 complain_overflow_dont
, /* complain_on_overflow */
734 ppc64_elf_sectoff_reloc
, /* special_function */
735 "R_PPC64_SECTOFF_HI", /* name */
736 FALSE
, /* partial_inplace */
738 0xffff, /* dst_mask */
739 FALSE
), /* pcrel_offset */
741 /* 16-bit upper half adjusted section relative relocation. */
742 HOWTO (R_PPC64_SECTOFF_HA
, /* type */
744 1, /* size (0 = byte, 1 = short, 2 = long) */
746 FALSE
, /* pc_relative */
748 complain_overflow_dont
, /* complain_on_overflow */
749 ppc64_elf_sectoff_ha_reloc
, /* special_function */
750 "R_PPC64_SECTOFF_HA", /* name */
751 FALSE
, /* partial_inplace */
753 0xffff, /* dst_mask */
754 FALSE
), /* pcrel_offset */
756 /* Like R_PPC64_REL24 without touching the two least significant bits. */
757 HOWTO (R_PPC64_REL30
, /* type */
759 2, /* size (0 = byte, 1 = short, 2 = long) */
761 TRUE
, /* pc_relative */
763 complain_overflow_dont
, /* complain_on_overflow */
764 bfd_elf_generic_reloc
, /* special_function */
765 "R_PPC64_REL30", /* name */
766 FALSE
, /* partial_inplace */
768 0xfffffffc, /* dst_mask */
769 TRUE
), /* pcrel_offset */
771 /* Relocs in the 64-bit PowerPC ELF ABI, not in the 32-bit ABI. */
773 /* A standard 64-bit relocation. */
774 HOWTO (R_PPC64_ADDR64
, /* type */
776 4, /* size (0=byte, 1=short, 2=long, 4=64 bits) */
778 FALSE
, /* pc_relative */
780 complain_overflow_dont
, /* complain_on_overflow */
781 bfd_elf_generic_reloc
, /* special_function */
782 "R_PPC64_ADDR64", /* name */
783 FALSE
, /* partial_inplace */
785 ONES (64), /* dst_mask */
786 FALSE
), /* pcrel_offset */
788 /* The bits 32-47 of an address. */
789 HOWTO (R_PPC64_ADDR16_HIGHER
, /* type */
791 1, /* size (0 = byte, 1 = short, 2 = long) */
793 FALSE
, /* pc_relative */
795 complain_overflow_dont
, /* complain_on_overflow */
796 bfd_elf_generic_reloc
, /* special_function */
797 "R_PPC64_ADDR16_HIGHER", /* name */
798 FALSE
, /* partial_inplace */
800 0xffff, /* dst_mask */
801 FALSE
), /* pcrel_offset */
803 /* The bits 32-47 of an address, plus 1 if the contents of the low
804 16 bits, treated as a signed number, is negative. */
805 HOWTO (R_PPC64_ADDR16_HIGHERA
, /* type */
807 1, /* size (0 = byte, 1 = short, 2 = long) */
809 FALSE
, /* pc_relative */
811 complain_overflow_dont
, /* complain_on_overflow */
812 ppc64_elf_ha_reloc
, /* special_function */
813 "R_PPC64_ADDR16_HIGHERA", /* name */
814 FALSE
, /* partial_inplace */
816 0xffff, /* dst_mask */
817 FALSE
), /* pcrel_offset */
819 /* The bits 48-63 of an address. */
820 HOWTO (R_PPC64_ADDR16_HIGHEST
,/* type */
822 1, /* size (0 = byte, 1 = short, 2 = long) */
824 FALSE
, /* pc_relative */
826 complain_overflow_dont
, /* complain_on_overflow */
827 bfd_elf_generic_reloc
, /* special_function */
828 "R_PPC64_ADDR16_HIGHEST", /* name */
829 FALSE
, /* partial_inplace */
831 0xffff, /* dst_mask */
832 FALSE
), /* pcrel_offset */
834 /* The bits 48-63 of an address, plus 1 if the contents of the low
835 16 bits, treated as a signed number, is negative. */
836 HOWTO (R_PPC64_ADDR16_HIGHESTA
,/* type */
838 1, /* size (0 = byte, 1 = short, 2 = long) */
840 FALSE
, /* pc_relative */
842 complain_overflow_dont
, /* complain_on_overflow */
843 ppc64_elf_ha_reloc
, /* special_function */
844 "R_PPC64_ADDR16_HIGHESTA", /* name */
845 FALSE
, /* partial_inplace */
847 0xffff, /* dst_mask */
848 FALSE
), /* pcrel_offset */
850 /* Like ADDR64, but may be unaligned. */
851 HOWTO (R_PPC64_UADDR64
, /* type */
853 4, /* size (0=byte, 1=short, 2=long, 4=64 bits) */
855 FALSE
, /* pc_relative */
857 complain_overflow_dont
, /* complain_on_overflow */
858 bfd_elf_generic_reloc
, /* special_function */
859 "R_PPC64_UADDR64", /* name */
860 FALSE
, /* partial_inplace */
862 ONES (64), /* dst_mask */
863 FALSE
), /* pcrel_offset */
865 /* 64-bit relative relocation. */
866 HOWTO (R_PPC64_REL64
, /* type */
868 4, /* size (0=byte, 1=short, 2=long, 4=64 bits) */
870 TRUE
, /* pc_relative */
872 complain_overflow_dont
, /* complain_on_overflow */
873 bfd_elf_generic_reloc
, /* special_function */
874 "R_PPC64_REL64", /* name */
875 FALSE
, /* partial_inplace */
877 ONES (64), /* dst_mask */
878 TRUE
), /* pcrel_offset */
880 /* 64-bit relocation to the symbol's procedure linkage table. */
881 HOWTO (R_PPC64_PLT64
, /* type */
883 4, /* size (0=byte, 1=short, 2=long, 4=64 bits) */
885 FALSE
, /* pc_relative */
887 complain_overflow_dont
, /* complain_on_overflow */
888 ppc64_elf_unhandled_reloc
, /* special_function */
889 "R_PPC64_PLT64", /* name */
890 FALSE
, /* partial_inplace */
892 ONES (64), /* dst_mask */
893 FALSE
), /* pcrel_offset */
895 /* 64-bit PC relative relocation to the symbol's procedure linkage
897 /* FIXME: R_PPC64_PLTREL64 not supported. */
898 HOWTO (R_PPC64_PLTREL64
, /* type */
900 4, /* size (0=byte, 1=short, 2=long, 4=64 bits) */
902 TRUE
, /* pc_relative */
904 complain_overflow_dont
, /* complain_on_overflow */
905 ppc64_elf_unhandled_reloc
, /* special_function */
906 "R_PPC64_PLTREL64", /* name */
907 FALSE
, /* partial_inplace */
909 ONES (64), /* dst_mask */
910 TRUE
), /* pcrel_offset */
912 /* 16 bit TOC-relative relocation. */
914 /* R_PPC64_TOC16 47 half16* S + A - .TOC. */
915 HOWTO (R_PPC64_TOC16
, /* type */
917 1, /* size (0 = byte, 1 = short, 2 = long) */
919 FALSE
, /* pc_relative */
921 complain_overflow_signed
, /* complain_on_overflow */
922 ppc64_elf_toc_reloc
, /* special_function */
923 "R_PPC64_TOC16", /* name */
924 FALSE
, /* partial_inplace */
926 0xffff, /* dst_mask */
927 FALSE
), /* pcrel_offset */
929 /* 16 bit TOC-relative relocation without overflow. */
931 /* R_PPC64_TOC16_LO 48 half16 #lo (S + A - .TOC.) */
932 HOWTO (R_PPC64_TOC16_LO
, /* type */
934 1, /* size (0 = byte, 1 = short, 2 = long) */
936 FALSE
, /* pc_relative */
938 complain_overflow_dont
, /* complain_on_overflow */
939 ppc64_elf_toc_reloc
, /* special_function */
940 "R_PPC64_TOC16_LO", /* name */
941 FALSE
, /* partial_inplace */
943 0xffff, /* dst_mask */
944 FALSE
), /* pcrel_offset */
946 /* 16 bit TOC-relative relocation, high 16 bits. */
948 /* R_PPC64_TOC16_HI 49 half16 #hi (S + A - .TOC.) */
949 HOWTO (R_PPC64_TOC16_HI
, /* type */
951 1, /* size (0 = byte, 1 = short, 2 = long) */
953 FALSE
, /* pc_relative */
955 complain_overflow_dont
, /* complain_on_overflow */
956 ppc64_elf_toc_reloc
, /* special_function */
957 "R_PPC64_TOC16_HI", /* name */
958 FALSE
, /* partial_inplace */
960 0xffff, /* dst_mask */
961 FALSE
), /* pcrel_offset */
963 /* 16 bit TOC-relative relocation, high 16 bits, plus 1 if the
964 contents of the low 16 bits, treated as a signed number, is
967 /* R_PPC64_TOC16_HA 50 half16 #ha (S + A - .TOC.) */
968 HOWTO (R_PPC64_TOC16_HA
, /* type */
970 1, /* size (0 = byte, 1 = short, 2 = long) */
972 FALSE
, /* pc_relative */
974 complain_overflow_dont
, /* complain_on_overflow */
975 ppc64_elf_toc_ha_reloc
, /* special_function */
976 "R_PPC64_TOC16_HA", /* name */
977 FALSE
, /* partial_inplace */
979 0xffff, /* dst_mask */
980 FALSE
), /* pcrel_offset */
982 /* 64-bit relocation; insert value of TOC base (.TOC.). */
984 /* R_PPC64_TOC 51 doubleword64 .TOC. */
985 HOWTO (R_PPC64_TOC
, /* type */
987 4, /* size (0=byte, 1=short, 2=long, 4=64 bits) */
989 FALSE
, /* pc_relative */
991 complain_overflow_bitfield
, /* complain_on_overflow */
992 ppc64_elf_toc64_reloc
, /* special_function */
993 "R_PPC64_TOC", /* name */
994 FALSE
, /* partial_inplace */
996 ONES (64), /* dst_mask */
997 FALSE
), /* pcrel_offset */
999 /* Like R_PPC64_GOT16, but also informs the link editor that the
1000 value to relocate may (!) refer to a PLT entry which the link
1001 editor (a) may replace with the symbol value. If the link editor
1002 is unable to fully resolve the symbol, it may (b) create a PLT
1003 entry and store the address to the new PLT entry in the GOT.
1004 This permits lazy resolution of function symbols at run time.
1005 The link editor may also skip all of this and just (c) emit a
1006 R_PPC64_GLOB_DAT to tie the symbol to the GOT entry. */
1007 /* FIXME: R_PPC64_PLTGOT16 not implemented. */
1008 HOWTO (R_PPC64_PLTGOT16
, /* type */
1010 1, /* size (0 = byte, 1 = short, 2 = long) */
1012 FALSE
, /* pc_relative */
1014 complain_overflow_signed
, /* complain_on_overflow */
1015 ppc64_elf_unhandled_reloc
, /* special_function */
1016 "R_PPC64_PLTGOT16", /* name */
1017 FALSE
, /* partial_inplace */
1019 0xffff, /* dst_mask */
1020 FALSE
), /* pcrel_offset */
1022 /* Like R_PPC64_PLTGOT16, but without overflow. */
1023 /* FIXME: R_PPC64_PLTGOT16_LO not implemented. */
1024 HOWTO (R_PPC64_PLTGOT16_LO
, /* type */
1026 1, /* size (0 = byte, 1 = short, 2 = long) */
1028 FALSE
, /* pc_relative */
1030 complain_overflow_dont
, /* complain_on_overflow */
1031 ppc64_elf_unhandled_reloc
, /* special_function */
1032 "R_PPC64_PLTGOT16_LO", /* name */
1033 FALSE
, /* partial_inplace */
1035 0xffff, /* dst_mask */
1036 FALSE
), /* pcrel_offset */
1038 /* Like R_PPC64_PLT_GOT16, but using bits 16-31 of the address. */
1039 /* FIXME: R_PPC64_PLTGOT16_HI not implemented. */
1040 HOWTO (R_PPC64_PLTGOT16_HI
, /* type */
1041 16, /* rightshift */
1042 1, /* size (0 = byte, 1 = short, 2 = long) */
1044 FALSE
, /* pc_relative */
1046 complain_overflow_dont
, /* complain_on_overflow */
1047 ppc64_elf_unhandled_reloc
, /* special_function */
1048 "R_PPC64_PLTGOT16_HI", /* name */
1049 FALSE
, /* partial_inplace */
1051 0xffff, /* dst_mask */
1052 FALSE
), /* pcrel_offset */
1054 /* Like R_PPC64_PLT_GOT16, but using bits 16-31 of the address, plus
1055 1 if the contents of the low 16 bits, treated as a signed number,
1057 /* FIXME: R_PPC64_PLTGOT16_HA not implemented. */
1058 HOWTO (R_PPC64_PLTGOT16_HA
, /* type */
1059 16, /* rightshift */
1060 1, /* size (0 = byte, 1 = short, 2 = long) */
1062 FALSE
, /* pc_relative */
1064 complain_overflow_dont
,/* complain_on_overflow */
1065 ppc64_elf_unhandled_reloc
, /* special_function */
1066 "R_PPC64_PLTGOT16_HA", /* name */
1067 FALSE
, /* partial_inplace */
1069 0xffff, /* dst_mask */
1070 FALSE
), /* pcrel_offset */
1072 /* Like R_PPC64_ADDR16, but for instructions with a DS field. */
1073 HOWTO (R_PPC64_ADDR16_DS
, /* type */
1075 1, /* size (0 = byte, 1 = short, 2 = long) */
1077 FALSE
, /* pc_relative */
1079 complain_overflow_bitfield
, /* complain_on_overflow */
1080 bfd_elf_generic_reloc
, /* special_function */
1081 "R_PPC64_ADDR16_DS", /* name */
1082 FALSE
, /* partial_inplace */
1084 0xfffc, /* dst_mask */
1085 FALSE
), /* pcrel_offset */
1087 /* Like R_PPC64_ADDR16_LO, but for instructions with a DS field. */
1088 HOWTO (R_PPC64_ADDR16_LO_DS
, /* type */
1090 1, /* size (0 = byte, 1 = short, 2 = long) */
1092 FALSE
, /* pc_relative */
1094 complain_overflow_dont
,/* complain_on_overflow */
1095 bfd_elf_generic_reloc
, /* special_function */
1096 "R_PPC64_ADDR16_LO_DS",/* name */
1097 FALSE
, /* partial_inplace */
1099 0xfffc, /* dst_mask */
1100 FALSE
), /* pcrel_offset */
1102 /* Like R_PPC64_GOT16, but for instructions with a DS field. */
1103 HOWTO (R_PPC64_GOT16_DS
, /* type */
1105 1, /* size (0 = byte, 1 = short, 2 = long) */
1107 FALSE
, /* pc_relative */
1109 complain_overflow_signed
, /* complain_on_overflow */
1110 ppc64_elf_unhandled_reloc
, /* special_function */
1111 "R_PPC64_GOT16_DS", /* name */
1112 FALSE
, /* partial_inplace */
1114 0xfffc, /* dst_mask */
1115 FALSE
), /* pcrel_offset */
1117 /* Like R_PPC64_GOT16_LO, but for instructions with a DS field. */
1118 HOWTO (R_PPC64_GOT16_LO_DS
, /* type */
1120 1, /* size (0 = byte, 1 = short, 2 = long) */
1122 FALSE
, /* pc_relative */
1124 complain_overflow_dont
, /* complain_on_overflow */
1125 ppc64_elf_unhandled_reloc
, /* special_function */
1126 "R_PPC64_GOT16_LO_DS", /* name */
1127 FALSE
, /* partial_inplace */
1129 0xfffc, /* dst_mask */
1130 FALSE
), /* pcrel_offset */
1132 /* Like R_PPC64_PLT16_LO, but for instructions with a DS field. */
1133 HOWTO (R_PPC64_PLT16_LO_DS
, /* type */
1135 1, /* size (0 = byte, 1 = short, 2 = long) */
1137 FALSE
, /* pc_relative */
1139 complain_overflow_dont
, /* complain_on_overflow */
1140 ppc64_elf_unhandled_reloc
, /* special_function */
1141 "R_PPC64_PLT16_LO_DS", /* name */
1142 FALSE
, /* partial_inplace */
1144 0xfffc, /* dst_mask */
1145 FALSE
), /* pcrel_offset */
1147 /* Like R_PPC64_SECTOFF, but for instructions with a DS field. */
1148 HOWTO (R_PPC64_SECTOFF_DS
, /* type */
1150 1, /* size (0 = byte, 1 = short, 2 = long) */
1152 FALSE
, /* pc_relative */
1154 complain_overflow_bitfield
, /* complain_on_overflow */
1155 ppc64_elf_sectoff_reloc
, /* special_function */
1156 "R_PPC64_SECTOFF_DS", /* name */
1157 FALSE
, /* partial_inplace */
1159 0xfffc, /* dst_mask */
1160 FALSE
), /* pcrel_offset */
1162 /* Like R_PPC64_SECTOFF_LO, but for instructions with a DS field. */
1163 HOWTO (R_PPC64_SECTOFF_LO_DS
, /* type */
1165 1, /* size (0 = byte, 1 = short, 2 = long) */
1167 FALSE
, /* pc_relative */
1169 complain_overflow_dont
, /* complain_on_overflow */
1170 ppc64_elf_sectoff_reloc
, /* special_function */
1171 "R_PPC64_SECTOFF_LO_DS",/* name */
1172 FALSE
, /* partial_inplace */
1174 0xfffc, /* dst_mask */
1175 FALSE
), /* pcrel_offset */
1177 /* Like R_PPC64_TOC16, but for instructions with a DS field. */
1178 HOWTO (R_PPC64_TOC16_DS
, /* type */
1180 1, /* size (0 = byte, 1 = short, 2 = long) */
1182 FALSE
, /* pc_relative */
1184 complain_overflow_signed
, /* complain_on_overflow */
1185 ppc64_elf_toc_reloc
, /* special_function */
1186 "R_PPC64_TOC16_DS", /* name */
1187 FALSE
, /* partial_inplace */
1189 0xfffc, /* dst_mask */
1190 FALSE
), /* pcrel_offset */
1192 /* Like R_PPC64_TOC16_LO, but for instructions with a DS field. */
1193 HOWTO (R_PPC64_TOC16_LO_DS
, /* type */
1195 1, /* size (0 = byte, 1 = short, 2 = long) */
1197 FALSE
, /* pc_relative */
1199 complain_overflow_dont
, /* complain_on_overflow */
1200 ppc64_elf_toc_reloc
, /* special_function */
1201 "R_PPC64_TOC16_LO_DS", /* name */
1202 FALSE
, /* partial_inplace */
1204 0xfffc, /* dst_mask */
1205 FALSE
), /* pcrel_offset */
1207 /* Like R_PPC64_PLTGOT16, but for instructions with a DS field. */
1208 /* FIXME: R_PPC64_PLTGOT16_DS not implemented. */
1209 HOWTO (R_PPC64_PLTGOT16_DS
, /* type */
1211 1, /* size (0 = byte, 1 = short, 2 = long) */
1213 FALSE
, /* pc_relative */
1215 complain_overflow_signed
, /* complain_on_overflow */
1216 ppc64_elf_unhandled_reloc
, /* special_function */
1217 "R_PPC64_PLTGOT16_DS", /* name */
1218 FALSE
, /* partial_inplace */
1220 0xfffc, /* dst_mask */
1221 FALSE
), /* pcrel_offset */
1223 /* Like R_PPC64_PLTGOT16_LO, but for instructions with a DS field. */
1224 /* FIXME: R_PPC64_PLTGOT16_LO not implemented. */
1225 HOWTO (R_PPC64_PLTGOT16_LO_DS
,/* type */
1227 1, /* size (0 = byte, 1 = short, 2 = long) */
1229 FALSE
, /* pc_relative */
1231 complain_overflow_dont
, /* complain_on_overflow */
1232 ppc64_elf_unhandled_reloc
, /* special_function */
1233 "R_PPC64_PLTGOT16_LO_DS",/* name */
1234 FALSE
, /* partial_inplace */
1236 0xfffc, /* dst_mask */
1237 FALSE
), /* pcrel_offset */
1239 /* Marker relocs for TLS. */
1242 2, /* size (0 = byte, 1 = short, 2 = long) */
1244 FALSE
, /* pc_relative */
1246 complain_overflow_dont
, /* complain_on_overflow */
1247 bfd_elf_generic_reloc
, /* special_function */
1248 "R_PPC64_TLS", /* name */
1249 FALSE
, /* partial_inplace */
1252 FALSE
), /* pcrel_offset */
1254 HOWTO (R_PPC64_TLSGD
,
1256 2, /* size (0 = byte, 1 = short, 2 = long) */
1258 FALSE
, /* pc_relative */
1260 complain_overflow_dont
, /* complain_on_overflow */
1261 bfd_elf_generic_reloc
, /* special_function */
1262 "R_PPC64_TLSGD", /* name */
1263 FALSE
, /* partial_inplace */
1266 FALSE
), /* pcrel_offset */
1268 HOWTO (R_PPC64_TLSLD
,
1270 2, /* size (0 = byte, 1 = short, 2 = long) */
1272 FALSE
, /* pc_relative */
1274 complain_overflow_dont
, /* complain_on_overflow */
1275 bfd_elf_generic_reloc
, /* special_function */
1276 "R_PPC64_TLSLD", /* name */
1277 FALSE
, /* partial_inplace */
1280 FALSE
), /* pcrel_offset */
1282 /* Computes the load module index of the load module that contains the
1283 definition of its TLS sym. */
1284 HOWTO (R_PPC64_DTPMOD64
,
1286 4, /* size (0 = byte, 1 = short, 2 = long) */
1288 FALSE
, /* pc_relative */
1290 complain_overflow_dont
, /* complain_on_overflow */
1291 ppc64_elf_unhandled_reloc
, /* special_function */
1292 "R_PPC64_DTPMOD64", /* name */
1293 FALSE
, /* partial_inplace */
1295 ONES (64), /* dst_mask */
1296 FALSE
), /* pcrel_offset */
1298 /* Computes a dtv-relative displacement, the difference between the value
1299 of sym+add and the base address of the thread-local storage block that
1300 contains the definition of sym, minus 0x8000. */
1301 HOWTO (R_PPC64_DTPREL64
,
1303 4, /* size (0 = byte, 1 = short, 2 = long) */
1305 FALSE
, /* pc_relative */
1307 complain_overflow_dont
, /* complain_on_overflow */
1308 ppc64_elf_unhandled_reloc
, /* special_function */
1309 "R_PPC64_DTPREL64", /* name */
1310 FALSE
, /* partial_inplace */
1312 ONES (64), /* dst_mask */
1313 FALSE
), /* pcrel_offset */
1315 /* A 16 bit dtprel reloc. */
1316 HOWTO (R_PPC64_DTPREL16
,
1318 1, /* size (0 = byte, 1 = short, 2 = long) */
1320 FALSE
, /* pc_relative */
1322 complain_overflow_signed
, /* complain_on_overflow */
1323 ppc64_elf_unhandled_reloc
, /* special_function */
1324 "R_PPC64_DTPREL16", /* name */
1325 FALSE
, /* partial_inplace */
1327 0xffff, /* dst_mask */
1328 FALSE
), /* pcrel_offset */
1330 /* Like DTPREL16, but no overflow. */
1331 HOWTO (R_PPC64_DTPREL16_LO
,
1333 1, /* size (0 = byte, 1 = short, 2 = long) */
1335 FALSE
, /* pc_relative */
1337 complain_overflow_dont
, /* complain_on_overflow */
1338 ppc64_elf_unhandled_reloc
, /* special_function */
1339 "R_PPC64_DTPREL16_LO", /* name */
1340 FALSE
, /* partial_inplace */
1342 0xffff, /* dst_mask */
1343 FALSE
), /* pcrel_offset */
1345 /* Like DTPREL16_LO, but next higher group of 16 bits. */
1346 HOWTO (R_PPC64_DTPREL16_HI
,
1347 16, /* rightshift */
1348 1, /* size (0 = byte, 1 = short, 2 = long) */
1350 FALSE
, /* pc_relative */
1352 complain_overflow_dont
, /* complain_on_overflow */
1353 ppc64_elf_unhandled_reloc
, /* special_function */
1354 "R_PPC64_DTPREL16_HI", /* name */
1355 FALSE
, /* partial_inplace */
1357 0xffff, /* dst_mask */
1358 FALSE
), /* pcrel_offset */
1360 /* Like DTPREL16_HI, but adjust for low 16 bits. */
1361 HOWTO (R_PPC64_DTPREL16_HA
,
1362 16, /* rightshift */
1363 1, /* size (0 = byte, 1 = short, 2 = long) */
1365 FALSE
, /* pc_relative */
1367 complain_overflow_dont
, /* complain_on_overflow */
1368 ppc64_elf_unhandled_reloc
, /* special_function */
1369 "R_PPC64_DTPREL16_HA", /* name */
1370 FALSE
, /* partial_inplace */
1372 0xffff, /* dst_mask */
1373 FALSE
), /* pcrel_offset */
1375 /* Like DTPREL16_HI, but next higher group of 16 bits. */
1376 HOWTO (R_PPC64_DTPREL16_HIGHER
,
1377 32, /* rightshift */
1378 1, /* size (0 = byte, 1 = short, 2 = long) */
1380 FALSE
, /* pc_relative */
1382 complain_overflow_dont
, /* complain_on_overflow */
1383 ppc64_elf_unhandled_reloc
, /* special_function */
1384 "R_PPC64_DTPREL16_HIGHER", /* name */
1385 FALSE
, /* partial_inplace */
1387 0xffff, /* dst_mask */
1388 FALSE
), /* pcrel_offset */
1390 /* Like DTPREL16_HIGHER, but adjust for low 16 bits. */
1391 HOWTO (R_PPC64_DTPREL16_HIGHERA
,
1392 32, /* rightshift */
1393 1, /* size (0 = byte, 1 = short, 2 = long) */
1395 FALSE
, /* pc_relative */
1397 complain_overflow_dont
, /* complain_on_overflow */
1398 ppc64_elf_unhandled_reloc
, /* special_function */
1399 "R_PPC64_DTPREL16_HIGHERA", /* name */
1400 FALSE
, /* partial_inplace */
1402 0xffff, /* dst_mask */
1403 FALSE
), /* pcrel_offset */
1405 /* Like DTPREL16_HIGHER, but next higher group of 16 bits. */
1406 HOWTO (R_PPC64_DTPREL16_HIGHEST
,
1407 48, /* rightshift */
1408 1, /* size (0 = byte, 1 = short, 2 = long) */
1410 FALSE
, /* pc_relative */
1412 complain_overflow_dont
, /* complain_on_overflow */
1413 ppc64_elf_unhandled_reloc
, /* special_function */
1414 "R_PPC64_DTPREL16_HIGHEST", /* name */
1415 FALSE
, /* partial_inplace */
1417 0xffff, /* dst_mask */
1418 FALSE
), /* pcrel_offset */
1420 /* Like DTPREL16_HIGHEST, but adjust for low 16 bits. */
1421 HOWTO (R_PPC64_DTPREL16_HIGHESTA
,
1422 48, /* rightshift */
1423 1, /* size (0 = byte, 1 = short, 2 = long) */
1425 FALSE
, /* pc_relative */
1427 complain_overflow_dont
, /* complain_on_overflow */
1428 ppc64_elf_unhandled_reloc
, /* special_function */
1429 "R_PPC64_DTPREL16_HIGHESTA", /* name */
1430 FALSE
, /* partial_inplace */
1432 0xffff, /* dst_mask */
1433 FALSE
), /* pcrel_offset */
1435 /* Like DTPREL16, but for insns with a DS field. */
1436 HOWTO (R_PPC64_DTPREL16_DS
,
1438 1, /* size (0 = byte, 1 = short, 2 = long) */
1440 FALSE
, /* pc_relative */
1442 complain_overflow_signed
, /* complain_on_overflow */
1443 ppc64_elf_unhandled_reloc
, /* special_function */
1444 "R_PPC64_DTPREL16_DS", /* name */
1445 FALSE
, /* partial_inplace */
1447 0xfffc, /* dst_mask */
1448 FALSE
), /* pcrel_offset */
1450 /* Like DTPREL16_DS, but no overflow. */
1451 HOWTO (R_PPC64_DTPREL16_LO_DS
,
1453 1, /* size (0 = byte, 1 = short, 2 = long) */
1455 FALSE
, /* pc_relative */
1457 complain_overflow_dont
, /* complain_on_overflow */
1458 ppc64_elf_unhandled_reloc
, /* special_function */
1459 "R_PPC64_DTPREL16_LO_DS", /* name */
1460 FALSE
, /* partial_inplace */
1462 0xfffc, /* dst_mask */
1463 FALSE
), /* pcrel_offset */
1465 /* Computes a tp-relative displacement, the difference between the value of
1466 sym+add and the value of the thread pointer (r13). */
1467 HOWTO (R_PPC64_TPREL64
,
1469 4, /* size (0 = byte, 1 = short, 2 = long) */
1471 FALSE
, /* pc_relative */
1473 complain_overflow_dont
, /* complain_on_overflow */
1474 ppc64_elf_unhandled_reloc
, /* special_function */
1475 "R_PPC64_TPREL64", /* name */
1476 FALSE
, /* partial_inplace */
1478 ONES (64), /* dst_mask */
1479 FALSE
), /* pcrel_offset */
1481 /* A 16 bit tprel reloc. */
1482 HOWTO (R_PPC64_TPREL16
,
1484 1, /* size (0 = byte, 1 = short, 2 = long) */
1486 FALSE
, /* pc_relative */
1488 complain_overflow_signed
, /* complain_on_overflow */
1489 ppc64_elf_unhandled_reloc
, /* special_function */
1490 "R_PPC64_TPREL16", /* name */
1491 FALSE
, /* partial_inplace */
1493 0xffff, /* dst_mask */
1494 FALSE
), /* pcrel_offset */
1496 /* Like TPREL16, but no overflow. */
1497 HOWTO (R_PPC64_TPREL16_LO
,
1499 1, /* size (0 = byte, 1 = short, 2 = long) */
1501 FALSE
, /* pc_relative */
1503 complain_overflow_dont
, /* complain_on_overflow */
1504 ppc64_elf_unhandled_reloc
, /* special_function */
1505 "R_PPC64_TPREL16_LO", /* name */
1506 FALSE
, /* partial_inplace */
1508 0xffff, /* dst_mask */
1509 FALSE
), /* pcrel_offset */
1511 /* Like TPREL16_LO, but next higher group of 16 bits. */
1512 HOWTO (R_PPC64_TPREL16_HI
,
1513 16, /* rightshift */
1514 1, /* size (0 = byte, 1 = short, 2 = long) */
1516 FALSE
, /* pc_relative */
1518 complain_overflow_dont
, /* complain_on_overflow */
1519 ppc64_elf_unhandled_reloc
, /* special_function */
1520 "R_PPC64_TPREL16_HI", /* name */
1521 FALSE
, /* partial_inplace */
1523 0xffff, /* dst_mask */
1524 FALSE
), /* pcrel_offset */
1526 /* Like TPREL16_HI, but adjust for low 16 bits. */
1527 HOWTO (R_PPC64_TPREL16_HA
,
1528 16, /* rightshift */
1529 1, /* size (0 = byte, 1 = short, 2 = long) */
1531 FALSE
, /* pc_relative */
1533 complain_overflow_dont
, /* complain_on_overflow */
1534 ppc64_elf_unhandled_reloc
, /* special_function */
1535 "R_PPC64_TPREL16_HA", /* name */
1536 FALSE
, /* partial_inplace */
1538 0xffff, /* dst_mask */
1539 FALSE
), /* pcrel_offset */
1541 /* Like TPREL16_HI, but next higher group of 16 bits. */
1542 HOWTO (R_PPC64_TPREL16_HIGHER
,
1543 32, /* rightshift */
1544 1, /* size (0 = byte, 1 = short, 2 = long) */
1546 FALSE
, /* pc_relative */
1548 complain_overflow_dont
, /* complain_on_overflow */
1549 ppc64_elf_unhandled_reloc
, /* special_function */
1550 "R_PPC64_TPREL16_HIGHER", /* name */
1551 FALSE
, /* partial_inplace */
1553 0xffff, /* dst_mask */
1554 FALSE
), /* pcrel_offset */
1556 /* Like TPREL16_HIGHER, but adjust for low 16 bits. */
1557 HOWTO (R_PPC64_TPREL16_HIGHERA
,
1558 32, /* rightshift */
1559 1, /* size (0 = byte, 1 = short, 2 = long) */
1561 FALSE
, /* pc_relative */
1563 complain_overflow_dont
, /* complain_on_overflow */
1564 ppc64_elf_unhandled_reloc
, /* special_function */
1565 "R_PPC64_TPREL16_HIGHERA", /* name */
1566 FALSE
, /* partial_inplace */
1568 0xffff, /* dst_mask */
1569 FALSE
), /* pcrel_offset */
1571 /* Like TPREL16_HIGHER, but next higher group of 16 bits. */
1572 HOWTO (R_PPC64_TPREL16_HIGHEST
,
1573 48, /* rightshift */
1574 1, /* size (0 = byte, 1 = short, 2 = long) */
1576 FALSE
, /* pc_relative */
1578 complain_overflow_dont
, /* complain_on_overflow */
1579 ppc64_elf_unhandled_reloc
, /* special_function */
1580 "R_PPC64_TPREL16_HIGHEST", /* name */
1581 FALSE
, /* partial_inplace */
1583 0xffff, /* dst_mask */
1584 FALSE
), /* pcrel_offset */
1586 /* Like TPREL16_HIGHEST, but adjust for low 16 bits. */
1587 HOWTO (R_PPC64_TPREL16_HIGHESTA
,
1588 48, /* rightshift */
1589 1, /* size (0 = byte, 1 = short, 2 = long) */
1591 FALSE
, /* pc_relative */
1593 complain_overflow_dont
, /* complain_on_overflow */
1594 ppc64_elf_unhandled_reloc
, /* special_function */
1595 "R_PPC64_TPREL16_HIGHESTA", /* name */
1596 FALSE
, /* partial_inplace */
1598 0xffff, /* dst_mask */
1599 FALSE
), /* pcrel_offset */
1601 /* Like TPREL16, but for insns with a DS field. */
1602 HOWTO (R_PPC64_TPREL16_DS
,
1604 1, /* size (0 = byte, 1 = short, 2 = long) */
1606 FALSE
, /* pc_relative */
1608 complain_overflow_signed
, /* complain_on_overflow */
1609 ppc64_elf_unhandled_reloc
, /* special_function */
1610 "R_PPC64_TPREL16_DS", /* name */
1611 FALSE
, /* partial_inplace */
1613 0xfffc, /* dst_mask */
1614 FALSE
), /* pcrel_offset */
1616 /* Like TPREL16_DS, but no overflow. */
1617 HOWTO (R_PPC64_TPREL16_LO_DS
,
1619 1, /* size (0 = byte, 1 = short, 2 = long) */
1621 FALSE
, /* pc_relative */
1623 complain_overflow_dont
, /* complain_on_overflow */
1624 ppc64_elf_unhandled_reloc
, /* special_function */
1625 "R_PPC64_TPREL16_LO_DS", /* name */
1626 FALSE
, /* partial_inplace */
1628 0xfffc, /* dst_mask */
1629 FALSE
), /* pcrel_offset */
1631 /* Allocates two contiguous entries in the GOT to hold a tls_index structure,
1632 with values (sym+add)@dtpmod and (sym+add)@dtprel, and computes the offset
1633 to the first entry relative to the TOC base (r2). */
1634 HOWTO (R_PPC64_GOT_TLSGD16
,
1636 1, /* size (0 = byte, 1 = short, 2 = long) */
1638 FALSE
, /* pc_relative */
1640 complain_overflow_signed
, /* complain_on_overflow */
1641 ppc64_elf_unhandled_reloc
, /* special_function */
1642 "R_PPC64_GOT_TLSGD16", /* name */
1643 FALSE
, /* partial_inplace */
1645 0xffff, /* dst_mask */
1646 FALSE
), /* pcrel_offset */
1648 /* Like GOT_TLSGD16, but no overflow. */
1649 HOWTO (R_PPC64_GOT_TLSGD16_LO
,
1651 1, /* size (0 = byte, 1 = short, 2 = long) */
1653 FALSE
, /* pc_relative */
1655 complain_overflow_dont
, /* complain_on_overflow */
1656 ppc64_elf_unhandled_reloc
, /* special_function */
1657 "R_PPC64_GOT_TLSGD16_LO", /* name */
1658 FALSE
, /* partial_inplace */
1660 0xffff, /* dst_mask */
1661 FALSE
), /* pcrel_offset */
1663 /* Like GOT_TLSGD16_LO, but next higher group of 16 bits. */
1664 HOWTO (R_PPC64_GOT_TLSGD16_HI
,
1665 16, /* rightshift */
1666 1, /* size (0 = byte, 1 = short, 2 = long) */
1668 FALSE
, /* pc_relative */
1670 complain_overflow_dont
, /* complain_on_overflow */
1671 ppc64_elf_unhandled_reloc
, /* special_function */
1672 "R_PPC64_GOT_TLSGD16_HI", /* name */
1673 FALSE
, /* partial_inplace */
1675 0xffff, /* dst_mask */
1676 FALSE
), /* pcrel_offset */
1678 /* Like GOT_TLSGD16_HI, but adjust for low 16 bits. */
1679 HOWTO (R_PPC64_GOT_TLSGD16_HA
,
1680 16, /* rightshift */
1681 1, /* size (0 = byte, 1 = short, 2 = long) */
1683 FALSE
, /* pc_relative */
1685 complain_overflow_dont
, /* complain_on_overflow */
1686 ppc64_elf_unhandled_reloc
, /* special_function */
1687 "R_PPC64_GOT_TLSGD16_HA", /* name */
1688 FALSE
, /* partial_inplace */
1690 0xffff, /* dst_mask */
1691 FALSE
), /* pcrel_offset */
1693 /* Allocates two contiguous entries in the GOT to hold a tls_index structure,
1694 with values (sym+add)@dtpmod and zero, and computes the offset to the
1695 first entry relative to the TOC base (r2). */
1696 HOWTO (R_PPC64_GOT_TLSLD16
,
1698 1, /* size (0 = byte, 1 = short, 2 = long) */
1700 FALSE
, /* pc_relative */
1702 complain_overflow_signed
, /* complain_on_overflow */
1703 ppc64_elf_unhandled_reloc
, /* special_function */
1704 "R_PPC64_GOT_TLSLD16", /* name */
1705 FALSE
, /* partial_inplace */
1707 0xffff, /* dst_mask */
1708 FALSE
), /* pcrel_offset */
1710 /* Like GOT_TLSLD16, but no overflow. */
1711 HOWTO (R_PPC64_GOT_TLSLD16_LO
,
1713 1, /* size (0 = byte, 1 = short, 2 = long) */
1715 FALSE
, /* pc_relative */
1717 complain_overflow_dont
, /* complain_on_overflow */
1718 ppc64_elf_unhandled_reloc
, /* special_function */
1719 "R_PPC64_GOT_TLSLD16_LO", /* name */
1720 FALSE
, /* partial_inplace */
1722 0xffff, /* dst_mask */
1723 FALSE
), /* pcrel_offset */
1725 /* Like GOT_TLSLD16_LO, but next higher group of 16 bits. */
1726 HOWTO (R_PPC64_GOT_TLSLD16_HI
,
1727 16, /* rightshift */
1728 1, /* size (0 = byte, 1 = short, 2 = long) */
1730 FALSE
, /* pc_relative */
1732 complain_overflow_dont
, /* complain_on_overflow */
1733 ppc64_elf_unhandled_reloc
, /* special_function */
1734 "R_PPC64_GOT_TLSLD16_HI", /* name */
1735 FALSE
, /* partial_inplace */
1737 0xffff, /* dst_mask */
1738 FALSE
), /* pcrel_offset */
1740 /* Like GOT_TLSLD16_HI, but adjust for low 16 bits. */
1741 HOWTO (R_PPC64_GOT_TLSLD16_HA
,
1742 16, /* rightshift */
1743 1, /* size (0 = byte, 1 = short, 2 = long) */
1745 FALSE
, /* pc_relative */
1747 complain_overflow_dont
, /* complain_on_overflow */
1748 ppc64_elf_unhandled_reloc
, /* special_function */
1749 "R_PPC64_GOT_TLSLD16_HA", /* name */
1750 FALSE
, /* partial_inplace */
1752 0xffff, /* dst_mask */
1753 FALSE
), /* pcrel_offset */
1755 /* Allocates an entry in the GOT with value (sym+add)@dtprel, and computes
1756 the offset to the entry relative to the TOC base (r2). */
1757 HOWTO (R_PPC64_GOT_DTPREL16_DS
,
1759 1, /* size (0 = byte, 1 = short, 2 = long) */
1761 FALSE
, /* pc_relative */
1763 complain_overflow_signed
, /* complain_on_overflow */
1764 ppc64_elf_unhandled_reloc
, /* special_function */
1765 "R_PPC64_GOT_DTPREL16_DS", /* name */
1766 FALSE
, /* partial_inplace */
1768 0xfffc, /* dst_mask */
1769 FALSE
), /* pcrel_offset */
1771 /* Like GOT_DTPREL16_DS, but no overflow. */
1772 HOWTO (R_PPC64_GOT_DTPREL16_LO_DS
,
1774 1, /* size (0 = byte, 1 = short, 2 = long) */
1776 FALSE
, /* pc_relative */
1778 complain_overflow_dont
, /* complain_on_overflow */
1779 ppc64_elf_unhandled_reloc
, /* special_function */
1780 "R_PPC64_GOT_DTPREL16_LO_DS", /* name */
1781 FALSE
, /* partial_inplace */
1783 0xfffc, /* dst_mask */
1784 FALSE
), /* pcrel_offset */
1786 /* Like GOT_DTPREL16_LO_DS, but next higher group of 16 bits. */
1787 HOWTO (R_PPC64_GOT_DTPREL16_HI
,
1788 16, /* rightshift */
1789 1, /* size (0 = byte, 1 = short, 2 = long) */
1791 FALSE
, /* pc_relative */
1793 complain_overflow_dont
, /* complain_on_overflow */
1794 ppc64_elf_unhandled_reloc
, /* special_function */
1795 "R_PPC64_GOT_DTPREL16_HI", /* name */
1796 FALSE
, /* partial_inplace */
1798 0xffff, /* dst_mask */
1799 FALSE
), /* pcrel_offset */
1801 /* Like GOT_DTPREL16_HI, but adjust for low 16 bits. */
1802 HOWTO (R_PPC64_GOT_DTPREL16_HA
,
1803 16, /* rightshift */
1804 1, /* size (0 = byte, 1 = short, 2 = long) */
1806 FALSE
, /* pc_relative */
1808 complain_overflow_dont
, /* complain_on_overflow */
1809 ppc64_elf_unhandled_reloc
, /* special_function */
1810 "R_PPC64_GOT_DTPREL16_HA", /* name */
1811 FALSE
, /* partial_inplace */
1813 0xffff, /* dst_mask */
1814 FALSE
), /* pcrel_offset */
1816 /* Allocates an entry in the GOT with value (sym+add)@tprel, and computes the
1817 offset to the entry relative to the TOC base (r2). */
1818 HOWTO (R_PPC64_GOT_TPREL16_DS
,
1820 1, /* size (0 = byte, 1 = short, 2 = long) */
1822 FALSE
, /* pc_relative */
1824 complain_overflow_signed
, /* complain_on_overflow */
1825 ppc64_elf_unhandled_reloc
, /* special_function */
1826 "R_PPC64_GOT_TPREL16_DS", /* name */
1827 FALSE
, /* partial_inplace */
1829 0xfffc, /* dst_mask */
1830 FALSE
), /* pcrel_offset */
1832 /* Like GOT_TPREL16_DS, but no overflow. */
1833 HOWTO (R_PPC64_GOT_TPREL16_LO_DS
,
1835 1, /* size (0 = byte, 1 = short, 2 = long) */
1837 FALSE
, /* pc_relative */
1839 complain_overflow_dont
, /* complain_on_overflow */
1840 ppc64_elf_unhandled_reloc
, /* special_function */
1841 "R_PPC64_GOT_TPREL16_LO_DS", /* name */
1842 FALSE
, /* partial_inplace */
1844 0xfffc, /* dst_mask */
1845 FALSE
), /* pcrel_offset */
1847 /* Like GOT_TPREL16_LO_DS, but next higher group of 16 bits. */
1848 HOWTO (R_PPC64_GOT_TPREL16_HI
,
1849 16, /* rightshift */
1850 1, /* size (0 = byte, 1 = short, 2 = long) */
1852 FALSE
, /* pc_relative */
1854 complain_overflow_dont
, /* complain_on_overflow */
1855 ppc64_elf_unhandled_reloc
, /* special_function */
1856 "R_PPC64_GOT_TPREL16_HI", /* name */
1857 FALSE
, /* partial_inplace */
1859 0xffff, /* dst_mask */
1860 FALSE
), /* pcrel_offset */
1862 /* Like GOT_TPREL16_HI, but adjust for low 16 bits. */
1863 HOWTO (R_PPC64_GOT_TPREL16_HA
,
1864 16, /* rightshift */
1865 1, /* size (0 = byte, 1 = short, 2 = long) */
1867 FALSE
, /* pc_relative */
1869 complain_overflow_dont
, /* complain_on_overflow */
1870 ppc64_elf_unhandled_reloc
, /* special_function */
1871 "R_PPC64_GOT_TPREL16_HA", /* name */
1872 FALSE
, /* partial_inplace */
1874 0xffff, /* dst_mask */
1875 FALSE
), /* pcrel_offset */
1877 HOWTO (R_PPC64_JMP_IREL
, /* type */
1879 0, /* size (0=byte, 1=short, 2=long, 4=64 bits) */
1881 FALSE
, /* pc_relative */
1883 complain_overflow_dont
, /* complain_on_overflow */
1884 ppc64_elf_unhandled_reloc
, /* special_function */
1885 "R_PPC64_JMP_IREL", /* name */
1886 FALSE
, /* partial_inplace */
1889 FALSE
), /* pcrel_offset */
1891 HOWTO (R_PPC64_IRELATIVE
, /* type */
1893 4, /* size (0=byte, 1=short, 2=long, 4=64 bits) */
1895 FALSE
, /* pc_relative */
1897 complain_overflow_dont
, /* complain_on_overflow */
1898 bfd_elf_generic_reloc
, /* special_function */
1899 "R_PPC64_IRELATIVE", /* name */
1900 FALSE
, /* partial_inplace */
1902 ONES (64), /* dst_mask */
1903 FALSE
), /* pcrel_offset */
1905 /* A 16 bit relative relocation. */
1906 HOWTO (R_PPC64_REL16
, /* type */
1908 1, /* size (0 = byte, 1 = short, 2 = long) */
1910 TRUE
, /* pc_relative */
1912 complain_overflow_bitfield
, /* complain_on_overflow */
1913 bfd_elf_generic_reloc
, /* special_function */
1914 "R_PPC64_REL16", /* name */
1915 FALSE
, /* partial_inplace */
1917 0xffff, /* dst_mask */
1918 TRUE
), /* pcrel_offset */
1920 /* A 16 bit relative relocation without overflow. */
1921 HOWTO (R_PPC64_REL16_LO
, /* type */
1923 1, /* size (0 = byte, 1 = short, 2 = long) */
1925 TRUE
, /* pc_relative */
1927 complain_overflow_dont
,/* complain_on_overflow */
1928 bfd_elf_generic_reloc
, /* special_function */
1929 "R_PPC64_REL16_LO", /* name */
1930 FALSE
, /* partial_inplace */
1932 0xffff, /* dst_mask */
1933 TRUE
), /* pcrel_offset */
1935 /* The high order 16 bits of a relative address. */
1936 HOWTO (R_PPC64_REL16_HI
, /* type */
1937 16, /* rightshift */
1938 1, /* size (0 = byte, 1 = short, 2 = long) */
1940 TRUE
, /* pc_relative */
1942 complain_overflow_dont
, /* complain_on_overflow */
1943 bfd_elf_generic_reloc
, /* special_function */
1944 "R_PPC64_REL16_HI", /* name */
1945 FALSE
, /* partial_inplace */
1947 0xffff, /* dst_mask */
1948 TRUE
), /* pcrel_offset */
1950 /* The high order 16 bits of a relative address, plus 1 if the contents of
1951 the low 16 bits, treated as a signed number, is negative. */
1952 HOWTO (R_PPC64_REL16_HA
, /* type */
1953 16, /* rightshift */
1954 1, /* size (0 = byte, 1 = short, 2 = long) */
1956 TRUE
, /* pc_relative */
1958 complain_overflow_dont
, /* complain_on_overflow */
1959 ppc64_elf_ha_reloc
, /* special_function */
1960 "R_PPC64_REL16_HA", /* name */
1961 FALSE
, /* partial_inplace */
1963 0xffff, /* dst_mask */
1964 TRUE
), /* pcrel_offset */
1966 /* GNU extension to record C++ vtable hierarchy. */
1967 HOWTO (R_PPC64_GNU_VTINHERIT
, /* type */
1969 0, /* size (0 = byte, 1 = short, 2 = long) */
1971 FALSE
, /* pc_relative */
1973 complain_overflow_dont
, /* complain_on_overflow */
1974 NULL
, /* special_function */
1975 "R_PPC64_GNU_VTINHERIT", /* name */
1976 FALSE
, /* partial_inplace */
1979 FALSE
), /* pcrel_offset */
1981 /* GNU extension to record C++ vtable member usage. */
1982 HOWTO (R_PPC64_GNU_VTENTRY
, /* type */
1984 0, /* size (0 = byte, 1 = short, 2 = long) */
1986 FALSE
, /* pc_relative */
1988 complain_overflow_dont
, /* complain_on_overflow */
1989 NULL
, /* special_function */
1990 "R_PPC64_GNU_VTENTRY", /* name */
1991 FALSE
, /* partial_inplace */
1994 FALSE
), /* pcrel_offset */
1998 /* Initialize the ppc64_elf_howto_table, so that linear accesses can
2002 ppc_howto_init (void)
2004 unsigned int i
, type
;
2007 i
< sizeof (ppc64_elf_howto_raw
) / sizeof (ppc64_elf_howto_raw
[0]);
2010 type
= ppc64_elf_howto_raw
[i
].type
;
2011 BFD_ASSERT (type
< (sizeof (ppc64_elf_howto_table
)
2012 / sizeof (ppc64_elf_howto_table
[0])));
2013 ppc64_elf_howto_table
[type
] = &ppc64_elf_howto_raw
[i
];
2017 static reloc_howto_type
*
2018 ppc64_elf_reloc_type_lookup (bfd
*abfd ATTRIBUTE_UNUSED
,
2019 bfd_reloc_code_real_type code
)
2021 enum elf_ppc64_reloc_type r
= R_PPC64_NONE
;
2023 if (!ppc64_elf_howto_table
[R_PPC64_ADDR32
])
2024 /* Initialize howto table if needed. */
2032 case BFD_RELOC_NONE
: r
= R_PPC64_NONE
;
2034 case BFD_RELOC_32
: r
= R_PPC64_ADDR32
;
2036 case BFD_RELOC_PPC_BA26
: r
= R_PPC64_ADDR24
;
2038 case BFD_RELOC_16
: r
= R_PPC64_ADDR16
;
2040 case BFD_RELOC_LO16
: r
= R_PPC64_ADDR16_LO
;
2042 case BFD_RELOC_HI16
: r
= R_PPC64_ADDR16_HI
;
2044 case BFD_RELOC_HI16_S
: r
= R_PPC64_ADDR16_HA
;
2046 case BFD_RELOC_PPC_BA16
: r
= R_PPC64_ADDR14
;
2048 case BFD_RELOC_PPC_BA16_BRTAKEN
: r
= R_PPC64_ADDR14_BRTAKEN
;
2050 case BFD_RELOC_PPC_BA16_BRNTAKEN
: r
= R_PPC64_ADDR14_BRNTAKEN
;
2052 case BFD_RELOC_PPC_B26
: r
= R_PPC64_REL24
;
2054 case BFD_RELOC_PPC_B16
: r
= R_PPC64_REL14
;
2056 case BFD_RELOC_PPC_B16_BRTAKEN
: r
= R_PPC64_REL14_BRTAKEN
;
2058 case BFD_RELOC_PPC_B16_BRNTAKEN
: r
= R_PPC64_REL14_BRNTAKEN
;
2060 case BFD_RELOC_16_GOTOFF
: r
= R_PPC64_GOT16
;
2062 case BFD_RELOC_LO16_GOTOFF
: r
= R_PPC64_GOT16_LO
;
2064 case BFD_RELOC_HI16_GOTOFF
: r
= R_PPC64_GOT16_HI
;
2066 case BFD_RELOC_HI16_S_GOTOFF
: r
= R_PPC64_GOT16_HA
;
2068 case BFD_RELOC_PPC_COPY
: r
= R_PPC64_COPY
;
2070 case BFD_RELOC_PPC_GLOB_DAT
: r
= R_PPC64_GLOB_DAT
;
2072 case BFD_RELOC_32_PCREL
: r
= R_PPC64_REL32
;
2074 case BFD_RELOC_32_PLTOFF
: r
= R_PPC64_PLT32
;
2076 case BFD_RELOC_32_PLT_PCREL
: r
= R_PPC64_PLTREL32
;
2078 case BFD_RELOC_LO16_PLTOFF
: r
= R_PPC64_PLT16_LO
;
2080 case BFD_RELOC_HI16_PLTOFF
: r
= R_PPC64_PLT16_HI
;
2082 case BFD_RELOC_HI16_S_PLTOFF
: r
= R_PPC64_PLT16_HA
;
2084 case BFD_RELOC_16_BASEREL
: r
= R_PPC64_SECTOFF
;
2086 case BFD_RELOC_LO16_BASEREL
: r
= R_PPC64_SECTOFF_LO
;
2088 case BFD_RELOC_HI16_BASEREL
: r
= R_PPC64_SECTOFF_HI
;
2090 case BFD_RELOC_HI16_S_BASEREL
: r
= R_PPC64_SECTOFF_HA
;
2092 case BFD_RELOC_CTOR
: r
= R_PPC64_ADDR64
;
2094 case BFD_RELOC_64
: r
= R_PPC64_ADDR64
;
2096 case BFD_RELOC_PPC64_HIGHER
: r
= R_PPC64_ADDR16_HIGHER
;
2098 case BFD_RELOC_PPC64_HIGHER_S
: r
= R_PPC64_ADDR16_HIGHERA
;
2100 case BFD_RELOC_PPC64_HIGHEST
: r
= R_PPC64_ADDR16_HIGHEST
;
2102 case BFD_RELOC_PPC64_HIGHEST_S
: r
= R_PPC64_ADDR16_HIGHESTA
;
2104 case BFD_RELOC_64_PCREL
: r
= R_PPC64_REL64
;
2106 case BFD_RELOC_64_PLTOFF
: r
= R_PPC64_PLT64
;
2108 case BFD_RELOC_64_PLT_PCREL
: r
= R_PPC64_PLTREL64
;
2110 case BFD_RELOC_PPC_TOC16
: r
= R_PPC64_TOC16
;
2112 case BFD_RELOC_PPC64_TOC16_LO
: r
= R_PPC64_TOC16_LO
;
2114 case BFD_RELOC_PPC64_TOC16_HI
: r
= R_PPC64_TOC16_HI
;
2116 case BFD_RELOC_PPC64_TOC16_HA
: r
= R_PPC64_TOC16_HA
;
2118 case BFD_RELOC_PPC64_TOC
: r
= R_PPC64_TOC
;
2120 case BFD_RELOC_PPC64_PLTGOT16
: r
= R_PPC64_PLTGOT16
;
2122 case BFD_RELOC_PPC64_PLTGOT16_LO
: r
= R_PPC64_PLTGOT16_LO
;
2124 case BFD_RELOC_PPC64_PLTGOT16_HI
: r
= R_PPC64_PLTGOT16_HI
;
2126 case BFD_RELOC_PPC64_PLTGOT16_HA
: r
= R_PPC64_PLTGOT16_HA
;
2128 case BFD_RELOC_PPC64_ADDR16_DS
: r
= R_PPC64_ADDR16_DS
;
2130 case BFD_RELOC_PPC64_ADDR16_LO_DS
: r
= R_PPC64_ADDR16_LO_DS
;
2132 case BFD_RELOC_PPC64_GOT16_DS
: r
= R_PPC64_GOT16_DS
;
2134 case BFD_RELOC_PPC64_GOT16_LO_DS
: r
= R_PPC64_GOT16_LO_DS
;
2136 case BFD_RELOC_PPC64_PLT16_LO_DS
: r
= R_PPC64_PLT16_LO_DS
;
2138 case BFD_RELOC_PPC64_SECTOFF_DS
: r
= R_PPC64_SECTOFF_DS
;
2140 case BFD_RELOC_PPC64_SECTOFF_LO_DS
: r
= R_PPC64_SECTOFF_LO_DS
;
2142 case BFD_RELOC_PPC64_TOC16_DS
: r
= R_PPC64_TOC16_DS
;
2144 case BFD_RELOC_PPC64_TOC16_LO_DS
: r
= R_PPC64_TOC16_LO_DS
;
2146 case BFD_RELOC_PPC64_PLTGOT16_DS
: r
= R_PPC64_PLTGOT16_DS
;
2148 case BFD_RELOC_PPC64_PLTGOT16_LO_DS
: r
= R_PPC64_PLTGOT16_LO_DS
;
2150 case BFD_RELOC_PPC_TLS
: r
= R_PPC64_TLS
;
2152 case BFD_RELOC_PPC_TLSGD
: r
= R_PPC64_TLSGD
;
2154 case BFD_RELOC_PPC_TLSLD
: r
= R_PPC64_TLSLD
;
2156 case BFD_RELOC_PPC_DTPMOD
: r
= R_PPC64_DTPMOD64
;
2158 case BFD_RELOC_PPC_TPREL16
: r
= R_PPC64_TPREL16
;
2160 case BFD_RELOC_PPC_TPREL16_LO
: r
= R_PPC64_TPREL16_LO
;
2162 case BFD_RELOC_PPC_TPREL16_HI
: r
= R_PPC64_TPREL16_HI
;
2164 case BFD_RELOC_PPC_TPREL16_HA
: r
= R_PPC64_TPREL16_HA
;
2166 case BFD_RELOC_PPC_TPREL
: r
= R_PPC64_TPREL64
;
2168 case BFD_RELOC_PPC_DTPREL16
: r
= R_PPC64_DTPREL16
;
2170 case BFD_RELOC_PPC_DTPREL16_LO
: r
= R_PPC64_DTPREL16_LO
;
2172 case BFD_RELOC_PPC_DTPREL16_HI
: r
= R_PPC64_DTPREL16_HI
;
2174 case BFD_RELOC_PPC_DTPREL16_HA
: r
= R_PPC64_DTPREL16_HA
;
2176 case BFD_RELOC_PPC_DTPREL
: r
= R_PPC64_DTPREL64
;
2178 case BFD_RELOC_PPC_GOT_TLSGD16
: r
= R_PPC64_GOT_TLSGD16
;
2180 case BFD_RELOC_PPC_GOT_TLSGD16_LO
: r
= R_PPC64_GOT_TLSGD16_LO
;
2182 case BFD_RELOC_PPC_GOT_TLSGD16_HI
: r
= R_PPC64_GOT_TLSGD16_HI
;
2184 case BFD_RELOC_PPC_GOT_TLSGD16_HA
: r
= R_PPC64_GOT_TLSGD16_HA
;
2186 case BFD_RELOC_PPC_GOT_TLSLD16
: r
= R_PPC64_GOT_TLSLD16
;
2188 case BFD_RELOC_PPC_GOT_TLSLD16_LO
: r
= R_PPC64_GOT_TLSLD16_LO
;
2190 case BFD_RELOC_PPC_GOT_TLSLD16_HI
: r
= R_PPC64_GOT_TLSLD16_HI
;
2192 case BFD_RELOC_PPC_GOT_TLSLD16_HA
: r
= R_PPC64_GOT_TLSLD16_HA
;
2194 case BFD_RELOC_PPC_GOT_TPREL16
: r
= R_PPC64_GOT_TPREL16_DS
;
2196 case BFD_RELOC_PPC_GOT_TPREL16_LO
: r
= R_PPC64_GOT_TPREL16_LO_DS
;
2198 case BFD_RELOC_PPC_GOT_TPREL16_HI
: r
= R_PPC64_GOT_TPREL16_HI
;
2200 case BFD_RELOC_PPC_GOT_TPREL16_HA
: r
= R_PPC64_GOT_TPREL16_HA
;
2202 case BFD_RELOC_PPC_GOT_DTPREL16
: r
= R_PPC64_GOT_DTPREL16_DS
;
2204 case BFD_RELOC_PPC_GOT_DTPREL16_LO
: r
= R_PPC64_GOT_DTPREL16_LO_DS
;
2206 case BFD_RELOC_PPC_GOT_DTPREL16_HI
: r
= R_PPC64_GOT_DTPREL16_HI
;
2208 case BFD_RELOC_PPC_GOT_DTPREL16_HA
: r
= R_PPC64_GOT_DTPREL16_HA
;
2210 case BFD_RELOC_PPC64_TPREL16_DS
: r
= R_PPC64_TPREL16_DS
;
2212 case BFD_RELOC_PPC64_TPREL16_LO_DS
: r
= R_PPC64_TPREL16_LO_DS
;
2214 case BFD_RELOC_PPC64_TPREL16_HIGHER
: r
= R_PPC64_TPREL16_HIGHER
;
2216 case BFD_RELOC_PPC64_TPREL16_HIGHERA
: r
= R_PPC64_TPREL16_HIGHERA
;
2218 case BFD_RELOC_PPC64_TPREL16_HIGHEST
: r
= R_PPC64_TPREL16_HIGHEST
;
2220 case BFD_RELOC_PPC64_TPREL16_HIGHESTA
: r
= R_PPC64_TPREL16_HIGHESTA
;
2222 case BFD_RELOC_PPC64_DTPREL16_DS
: r
= R_PPC64_DTPREL16_DS
;
2224 case BFD_RELOC_PPC64_DTPREL16_LO_DS
: r
= R_PPC64_DTPREL16_LO_DS
;
2226 case BFD_RELOC_PPC64_DTPREL16_HIGHER
: r
= R_PPC64_DTPREL16_HIGHER
;
2228 case BFD_RELOC_PPC64_DTPREL16_HIGHERA
: r
= R_PPC64_DTPREL16_HIGHERA
;
2230 case BFD_RELOC_PPC64_DTPREL16_HIGHEST
: r
= R_PPC64_DTPREL16_HIGHEST
;
2232 case BFD_RELOC_PPC64_DTPREL16_HIGHESTA
: r
= R_PPC64_DTPREL16_HIGHESTA
;
2234 case BFD_RELOC_16_PCREL
: r
= R_PPC64_REL16
;
2236 case BFD_RELOC_LO16_PCREL
: r
= R_PPC64_REL16_LO
;
2238 case BFD_RELOC_HI16_PCREL
: r
= R_PPC64_REL16_HI
;
2240 case BFD_RELOC_HI16_S_PCREL
: r
= R_PPC64_REL16_HA
;
2242 case BFD_RELOC_VTABLE_INHERIT
: r
= R_PPC64_GNU_VTINHERIT
;
2244 case BFD_RELOC_VTABLE_ENTRY
: r
= R_PPC64_GNU_VTENTRY
;
2248 return ppc64_elf_howto_table
[r
];
2251 static reloc_howto_type
*
2252 ppc64_elf_reloc_name_lookup (bfd
*abfd ATTRIBUTE_UNUSED
,
2258 i
< sizeof (ppc64_elf_howto_raw
) / sizeof (ppc64_elf_howto_raw
[0]);
2260 if (ppc64_elf_howto_raw
[i
].name
!= NULL
2261 && strcasecmp (ppc64_elf_howto_raw
[i
].name
, r_name
) == 0)
2262 return &ppc64_elf_howto_raw
[i
];
2267 /* Set the howto pointer for a PowerPC ELF reloc. */
2270 ppc64_elf_info_to_howto (bfd
*abfd ATTRIBUTE_UNUSED
, arelent
*cache_ptr
,
2271 Elf_Internal_Rela
*dst
)
2275 /* Initialize howto table if needed. */
2276 if (!ppc64_elf_howto_table
[R_PPC64_ADDR32
])
2279 type
= ELF64_R_TYPE (dst
->r_info
);
2280 if (type
>= (sizeof (ppc64_elf_howto_table
)
2281 / sizeof (ppc64_elf_howto_table
[0])))
2283 (*_bfd_error_handler
) (_("%B: invalid relocation type %d"),
2285 type
= R_PPC64_NONE
;
2287 cache_ptr
->howto
= ppc64_elf_howto_table
[type
];
2290 /* Handle the R_PPC64_ADDR16_HA and similar relocs. */
2292 static bfd_reloc_status_type
2293 ppc64_elf_ha_reloc (bfd
*abfd
, arelent
*reloc_entry
, asymbol
*symbol
,
2294 void *data
, asection
*input_section
,
2295 bfd
*output_bfd
, char **error_message
)
2297 /* If this is a relocatable link (output_bfd test tells us), just
2298 call the generic function. Any adjustment will be done at final
2300 if (output_bfd
!= NULL
)
2301 return bfd_elf_generic_reloc (abfd
, reloc_entry
, symbol
, data
,
2302 input_section
, output_bfd
, error_message
);
2304 /* Adjust the addend for sign extension of the low 16 bits.
2305 We won't actually be using the low 16 bits, so trashing them
2307 reloc_entry
->addend
+= 0x8000;
2308 return bfd_reloc_continue
;
2311 static bfd_reloc_status_type
2312 ppc64_elf_branch_reloc (bfd
*abfd
, arelent
*reloc_entry
, asymbol
*symbol
,
2313 void *data
, asection
*input_section
,
2314 bfd
*output_bfd
, char **error_message
)
2316 if (output_bfd
!= NULL
)
2317 return bfd_elf_generic_reloc (abfd
, reloc_entry
, symbol
, data
,
2318 input_section
, output_bfd
, error_message
);
2320 if (strcmp (symbol
->section
->name
, ".opd") == 0
2321 && (symbol
->section
->owner
->flags
& DYNAMIC
) == 0)
2323 bfd_vma dest
= opd_entry_value (symbol
->section
,
2324 symbol
->value
+ reloc_entry
->addend
,
2326 if (dest
!= (bfd_vma
) -1)
2327 reloc_entry
->addend
= dest
- (symbol
->value
2328 + symbol
->section
->output_section
->vma
2329 + symbol
->section
->output_offset
);
2331 return bfd_reloc_continue
;
2334 static bfd_reloc_status_type
2335 ppc64_elf_brtaken_reloc (bfd
*abfd
, arelent
*reloc_entry
, asymbol
*symbol
,
2336 void *data
, asection
*input_section
,
2337 bfd
*output_bfd
, char **error_message
)
2340 enum elf_ppc64_reloc_type r_type
;
2341 bfd_size_type octets
;
2342 /* Disabled until we sort out how ld should choose 'y' vs 'at'. */
2343 bfd_boolean is_power4
= FALSE
;
2345 /* If this is a relocatable link (output_bfd test tells us), just
2346 call the generic function. Any adjustment will be done at final
2348 if (output_bfd
!= NULL
)
2349 return bfd_elf_generic_reloc (abfd
, reloc_entry
, symbol
, data
,
2350 input_section
, output_bfd
, error_message
);
2352 octets
= reloc_entry
->address
* bfd_octets_per_byte (abfd
);
2353 insn
= bfd_get_32 (abfd
, (bfd_byte
*) data
+ octets
);
2354 insn
&= ~(0x01 << 21);
2355 r_type
= reloc_entry
->howto
->type
;
2356 if (r_type
== R_PPC64_ADDR14_BRTAKEN
2357 || r_type
== R_PPC64_REL14_BRTAKEN
)
2358 insn
|= 0x01 << 21; /* 'y' or 't' bit, lowest bit of BO field. */
2362 /* Set 'a' bit. This is 0b00010 in BO field for branch
2363 on CR(BI) insns (BO == 001at or 011at), and 0b01000
2364 for branch on CTR insns (BO == 1a00t or 1a01t). */
2365 if ((insn
& (0x14 << 21)) == (0x04 << 21))
2367 else if ((insn
& (0x14 << 21)) == (0x10 << 21))
2377 if (!bfd_is_com_section (symbol
->section
))
2378 target
= symbol
->value
;
2379 target
+= symbol
->section
->output_section
->vma
;
2380 target
+= symbol
->section
->output_offset
;
2381 target
+= reloc_entry
->addend
;
2383 from
= (reloc_entry
->address
2384 + input_section
->output_offset
2385 + input_section
->output_section
->vma
);
2387 /* Invert 'y' bit if not the default. */
2388 if ((bfd_signed_vma
) (target
- from
) < 0)
2391 bfd_put_32 (abfd
, insn
, (bfd_byte
*) data
+ octets
);
2393 return ppc64_elf_branch_reloc (abfd
, reloc_entry
, symbol
, data
,
2394 input_section
, output_bfd
, error_message
);
2397 static bfd_reloc_status_type
2398 ppc64_elf_sectoff_reloc (bfd
*abfd
, arelent
*reloc_entry
, asymbol
*symbol
,
2399 void *data
, asection
*input_section
,
2400 bfd
*output_bfd
, char **error_message
)
2402 /* If this is a relocatable link (output_bfd test tells us), just
2403 call the generic function. Any adjustment will be done at final
2405 if (output_bfd
!= NULL
)
2406 return bfd_elf_generic_reloc (abfd
, reloc_entry
, symbol
, data
,
2407 input_section
, output_bfd
, error_message
);
2409 /* Subtract the symbol section base address. */
2410 reloc_entry
->addend
-= symbol
->section
->output_section
->vma
;
2411 return bfd_reloc_continue
;
2414 static bfd_reloc_status_type
2415 ppc64_elf_sectoff_ha_reloc (bfd
*abfd
, arelent
*reloc_entry
, asymbol
*symbol
,
2416 void *data
, asection
*input_section
,
2417 bfd
*output_bfd
, char **error_message
)
2419 /* If this is a relocatable link (output_bfd test tells us), just
2420 call the generic function. Any adjustment will be done at final
2422 if (output_bfd
!= NULL
)
2423 return bfd_elf_generic_reloc (abfd
, reloc_entry
, symbol
, data
,
2424 input_section
, output_bfd
, error_message
);
2426 /* Subtract the symbol section base address. */
2427 reloc_entry
->addend
-= symbol
->section
->output_section
->vma
;
2429 /* Adjust the addend for sign extension of the low 16 bits. */
2430 reloc_entry
->addend
+= 0x8000;
2431 return bfd_reloc_continue
;
2434 static bfd_reloc_status_type
2435 ppc64_elf_toc_reloc (bfd
*abfd
, arelent
*reloc_entry
, asymbol
*symbol
,
2436 void *data
, asection
*input_section
,
2437 bfd
*output_bfd
, char **error_message
)
2441 /* If this is a relocatable link (output_bfd test tells us), just
2442 call the generic function. Any adjustment will be done at final
2444 if (output_bfd
!= NULL
)
2445 return bfd_elf_generic_reloc (abfd
, reloc_entry
, symbol
, data
,
2446 input_section
, output_bfd
, error_message
);
2448 TOCstart
= _bfd_get_gp_value (input_section
->output_section
->owner
);
2450 TOCstart
= ppc64_elf_toc (input_section
->output_section
->owner
);
2452 /* Subtract the TOC base address. */
2453 reloc_entry
->addend
-= TOCstart
+ TOC_BASE_OFF
;
2454 return bfd_reloc_continue
;
2457 static bfd_reloc_status_type
2458 ppc64_elf_toc_ha_reloc (bfd
*abfd
, arelent
*reloc_entry
, asymbol
*symbol
,
2459 void *data
, asection
*input_section
,
2460 bfd
*output_bfd
, char **error_message
)
2464 /* If this is a relocatable link (output_bfd test tells us), just
2465 call the generic function. Any adjustment will be done at final
2467 if (output_bfd
!= NULL
)
2468 return bfd_elf_generic_reloc (abfd
, reloc_entry
, symbol
, data
,
2469 input_section
, output_bfd
, error_message
);
2471 TOCstart
= _bfd_get_gp_value (input_section
->output_section
->owner
);
2473 TOCstart
= ppc64_elf_toc (input_section
->output_section
->owner
);
2475 /* Subtract the TOC base address. */
2476 reloc_entry
->addend
-= TOCstart
+ TOC_BASE_OFF
;
2478 /* Adjust the addend for sign extension of the low 16 bits. */
2479 reloc_entry
->addend
+= 0x8000;
2480 return bfd_reloc_continue
;
2483 static bfd_reloc_status_type
2484 ppc64_elf_toc64_reloc (bfd
*abfd
, arelent
*reloc_entry
, asymbol
*symbol
,
2485 void *data
, asection
*input_section
,
2486 bfd
*output_bfd
, char **error_message
)
2489 bfd_size_type octets
;
2491 /* If this is a relocatable link (output_bfd test tells us), just
2492 call the generic function. Any adjustment will be done at final
2494 if (output_bfd
!= NULL
)
2495 return bfd_elf_generic_reloc (abfd
, reloc_entry
, symbol
, data
,
2496 input_section
, output_bfd
, error_message
);
2498 TOCstart
= _bfd_get_gp_value (input_section
->output_section
->owner
);
2500 TOCstart
= ppc64_elf_toc (input_section
->output_section
->owner
);
2502 octets
= reloc_entry
->address
* bfd_octets_per_byte (abfd
);
2503 bfd_put_64 (abfd
, TOCstart
+ TOC_BASE_OFF
, (bfd_byte
*) data
+ octets
);
2504 return bfd_reloc_ok
;
2507 static bfd_reloc_status_type
2508 ppc64_elf_unhandled_reloc (bfd
*abfd
, arelent
*reloc_entry
, asymbol
*symbol
,
2509 void *data
, asection
*input_section
,
2510 bfd
*output_bfd
, char **error_message
)
2512 /* If this is a relocatable link (output_bfd test tells us), just
2513 call the generic function. Any adjustment will be done at final
2515 if (output_bfd
!= NULL
)
2516 return bfd_elf_generic_reloc (abfd
, reloc_entry
, symbol
, data
,
2517 input_section
, output_bfd
, error_message
);
2519 if (error_message
!= NULL
)
2521 static char buf
[60];
2522 sprintf (buf
, "generic linker can't handle %s",
2523 reloc_entry
->howto
->name
);
2524 *error_message
= buf
;
2526 return bfd_reloc_dangerous
;
2529 /* Track GOT entries needed for a given symbol. We might need more
2530 than one got entry per symbol. */
2533 struct got_entry
*next
;
2535 /* The symbol addend that we'll be placing in the GOT. */
2538 /* Unlike other ELF targets, we use separate GOT entries for the same
2539 symbol referenced from different input files. This is to support
2540 automatic multiple TOC/GOT sections, where the TOC base can vary
2541 from one input file to another. After partitioning into TOC groups
2542 we merge entries within the group.
2544 Point to the BFD owning this GOT entry. */
2547 /* Zero for non-tls entries, or TLS_TLS and one of TLS_GD, TLS_LD,
2548 TLS_TPREL or TLS_DTPREL for tls entries. */
2549 unsigned char tls_type
;
2551 /* Non-zero if got.ent points to real entry. */
2552 unsigned char is_indirect
;
2554 /* Reference count until size_dynamic_sections, GOT offset thereafter. */
2557 bfd_signed_vma refcount
;
2559 struct got_entry
*ent
;
2563 /* The same for PLT. */
2566 struct plt_entry
*next
;
2572 bfd_signed_vma refcount
;
2577 struct ppc64_elf_obj_tdata
2579 struct elf_obj_tdata elf
;
2581 /* Shortcuts to dynamic linker sections. */
2585 /* Used during garbage collection. We attach global symbols defined
2586 on removed .opd entries to this section so that the sym is removed. */
2587 asection
*deleted_section
;
2589 /* TLS local dynamic got entry handling. Support for multiple GOT
2590 sections means we potentially need one of these for each input bfd. */
2591 struct got_entry tlsld_got
;
2593 /* A copy of relocs before they are modified for --emit-relocs. */
2594 Elf_Internal_Rela
*opd_relocs
;
2596 /* Nonzero if this bfd has small toc/got relocs, ie. that expect
2597 the reloc to be in the range -32768 to 32767. */
2598 unsigned int has_small_toc_reloc
;
2601 #define ppc64_elf_tdata(bfd) \
2602 ((struct ppc64_elf_obj_tdata *) (bfd)->tdata.any)
2604 #define ppc64_tlsld_got(bfd) \
2605 (&ppc64_elf_tdata (bfd)->tlsld_got)
2607 #define is_ppc64_elf(bfd) \
2608 (bfd_get_flavour (bfd) == bfd_target_elf_flavour \
2609 && elf_object_id (bfd) == PPC64_ELF_DATA)
2611 /* Override the generic function because we store some extras. */
2614 ppc64_elf_mkobject (bfd
*abfd
)
2616 return bfd_elf_allocate_object (abfd
, sizeof (struct ppc64_elf_obj_tdata
),
2620 /* Fix bad default arch selected for a 64 bit input bfd when the
2621 default is 32 bit. */
2624 ppc64_elf_object_p (bfd
*abfd
)
2626 if (abfd
->arch_info
->the_default
&& abfd
->arch_info
->bits_per_word
== 32)
2628 Elf_Internal_Ehdr
*i_ehdr
= elf_elfheader (abfd
);
2630 if (i_ehdr
->e_ident
[EI_CLASS
] == ELFCLASS64
)
2632 /* Relies on arch after 32 bit default being 64 bit default. */
2633 abfd
->arch_info
= abfd
->arch_info
->next
;
2634 BFD_ASSERT (abfd
->arch_info
->bits_per_word
== 64);
2640 /* Support for core dump NOTE sections. */
2643 ppc64_elf_grok_prstatus (bfd
*abfd
, Elf_Internal_Note
*note
)
2645 size_t offset
, size
;
2647 if (note
->descsz
!= 504)
2651 elf_tdata (abfd
)->core_signal
= bfd_get_16 (abfd
, note
->descdata
+ 12);
2654 elf_tdata (abfd
)->core_pid
= bfd_get_32 (abfd
, note
->descdata
+ 32);
2660 /* Make a ".reg/999" section. */
2661 return _bfd_elfcore_make_pseudosection (abfd
, ".reg",
2662 size
, note
->descpos
+ offset
);
2666 ppc64_elf_grok_psinfo (bfd
*abfd
, Elf_Internal_Note
*note
)
2668 if (note
->descsz
!= 136)
2671 elf_tdata (abfd
)->core_program
2672 = _bfd_elfcore_strndup (abfd
, note
->descdata
+ 40, 16);
2673 elf_tdata (abfd
)->core_command
2674 = _bfd_elfcore_strndup (abfd
, note
->descdata
+ 56, 80);
2680 ppc64_elf_write_core_note (bfd
*abfd
, char *buf
, int *bufsiz
, int note_type
,
2693 va_start (ap
, note_type
);
2694 memset (data
, 0, 40);
2695 strncpy (data
+ 40, va_arg (ap
, const char *), 16);
2696 strncpy (data
+ 56, va_arg (ap
, const char *), 80);
2698 return elfcore_write_note (abfd
, buf
, bufsiz
,
2699 "CORE", note_type
, data
, sizeof (data
));
2710 va_start (ap
, note_type
);
2711 memset (data
, 0, 112);
2712 pid
= va_arg (ap
, long);
2713 bfd_put_32 (abfd
, pid
, data
+ 32);
2714 cursig
= va_arg (ap
, int);
2715 bfd_put_16 (abfd
, cursig
, data
+ 12);
2716 greg
= va_arg (ap
, const void *);
2717 memcpy (data
+ 112, greg
, 384);
2718 memset (data
+ 496, 0, 8);
2720 return elfcore_write_note (abfd
, buf
, bufsiz
,
2721 "CORE", note_type
, data
, sizeof (data
));
2726 /* Merge backend specific data from an object file to the output
2727 object file when linking. */
2730 ppc64_elf_merge_private_bfd_data (bfd
*ibfd
, bfd
*obfd
)
2732 /* Check if we have the same endianess. */
2733 if (ibfd
->xvec
->byteorder
!= obfd
->xvec
->byteorder
2734 && ibfd
->xvec
->byteorder
!= BFD_ENDIAN_UNKNOWN
2735 && obfd
->xvec
->byteorder
!= BFD_ENDIAN_UNKNOWN
)
2739 if (bfd_big_endian (ibfd
))
2740 msg
= _("%B: compiled for a big endian system "
2741 "and target is little endian");
2743 msg
= _("%B: compiled for a little endian system "
2744 "and target is big endian");
2746 (*_bfd_error_handler
) (msg
, ibfd
);
2748 bfd_set_error (bfd_error_wrong_format
);
2755 /* Add extra PPC sections. */
2757 static const struct bfd_elf_special_section ppc64_elf_special_sections
[]=
2759 { STRING_COMMA_LEN (".plt"), 0, SHT_NOBITS
, 0 },
2760 { STRING_COMMA_LEN (".sbss"), -2, SHT_NOBITS
, SHF_ALLOC
+ SHF_WRITE
},
2761 { STRING_COMMA_LEN (".sdata"), -2, SHT_PROGBITS
, SHF_ALLOC
+ SHF_WRITE
},
2762 { STRING_COMMA_LEN (".toc"), 0, SHT_PROGBITS
, SHF_ALLOC
+ SHF_WRITE
},
2763 { STRING_COMMA_LEN (".toc1"), 0, SHT_PROGBITS
, SHF_ALLOC
+ SHF_WRITE
},
2764 { STRING_COMMA_LEN (".tocbss"), 0, SHT_NOBITS
, SHF_ALLOC
+ SHF_WRITE
},
2765 { NULL
, 0, 0, 0, 0 }
2768 enum _ppc64_sec_type
{
2774 struct _ppc64_elf_section_data
2776 struct bfd_elf_section_data elf
;
2780 /* An array with one entry for each opd function descriptor. */
2781 struct _opd_sec_data
2783 /* Points to the function code section for local opd entries. */
2784 asection
**func_sec
;
2786 /* After editing .opd, adjust references to opd local syms. */
2790 /* An array for toc sections, indexed by offset/8. */
2791 struct _toc_sec_data
2793 /* Specifies the relocation symbol index used at a given toc offset. */
2796 /* And the relocation addend. */
2801 enum _ppc64_sec_type sec_type
:2;
2803 /* Flag set when small branches are detected. Used to
2804 select suitable defaults for the stub group size. */
2805 unsigned int has_14bit_branch
:1;
2808 #define ppc64_elf_section_data(sec) \
2809 ((struct _ppc64_elf_section_data *) elf_section_data (sec))
2812 ppc64_elf_new_section_hook (bfd
*abfd
, asection
*sec
)
2814 if (!sec
->used_by_bfd
)
2816 struct _ppc64_elf_section_data
*sdata
;
2817 bfd_size_type amt
= sizeof (*sdata
);
2819 sdata
= bfd_zalloc (abfd
, amt
);
2822 sec
->used_by_bfd
= sdata
;
2825 return _bfd_elf_new_section_hook (abfd
, sec
);
2828 static struct _opd_sec_data
*
2829 get_opd_info (asection
* sec
)
2832 && ppc64_elf_section_data (sec
) != NULL
2833 && ppc64_elf_section_data (sec
)->sec_type
== sec_opd
)
2834 return &ppc64_elf_section_data (sec
)->u
.opd
;
2838 /* Parameters for the qsort hook. */
2839 static bfd_boolean synthetic_relocatable
;
2841 /* qsort comparison function for ppc64_elf_get_synthetic_symtab. */
2844 compare_symbols (const void *ap
, const void *bp
)
2846 const asymbol
*a
= * (const asymbol
**) ap
;
2847 const asymbol
*b
= * (const asymbol
**) bp
;
2849 /* Section symbols first. */
2850 if ((a
->flags
& BSF_SECTION_SYM
) && !(b
->flags
& BSF_SECTION_SYM
))
2852 if (!(a
->flags
& BSF_SECTION_SYM
) && (b
->flags
& BSF_SECTION_SYM
))
2855 /* then .opd symbols. */
2856 if (strcmp (a
->section
->name
, ".opd") == 0
2857 && strcmp (b
->section
->name
, ".opd") != 0)
2859 if (strcmp (a
->section
->name
, ".opd") != 0
2860 && strcmp (b
->section
->name
, ".opd") == 0)
2863 /* then other code symbols. */
2864 if ((a
->section
->flags
& (SEC_CODE
| SEC_ALLOC
| SEC_THREAD_LOCAL
))
2865 == (SEC_CODE
| SEC_ALLOC
)
2866 && (b
->section
->flags
& (SEC_CODE
| SEC_ALLOC
| SEC_THREAD_LOCAL
))
2867 != (SEC_CODE
| SEC_ALLOC
))
2870 if ((a
->section
->flags
& (SEC_CODE
| SEC_ALLOC
| SEC_THREAD_LOCAL
))
2871 != (SEC_CODE
| SEC_ALLOC
)
2872 && (b
->section
->flags
& (SEC_CODE
| SEC_ALLOC
| SEC_THREAD_LOCAL
))
2873 == (SEC_CODE
| SEC_ALLOC
))
2876 if (synthetic_relocatable
)
2878 if (a
->section
->id
< b
->section
->id
)
2881 if (a
->section
->id
> b
->section
->id
)
2885 if (a
->value
+ a
->section
->vma
< b
->value
+ b
->section
->vma
)
2888 if (a
->value
+ a
->section
->vma
> b
->value
+ b
->section
->vma
)
2891 /* For syms with the same value, prefer strong dynamic global function
2892 syms over other syms. */
2893 if ((a
->flags
& BSF_GLOBAL
) != 0 && (b
->flags
& BSF_GLOBAL
) == 0)
2896 if ((a
->flags
& BSF_GLOBAL
) == 0 && (b
->flags
& BSF_GLOBAL
) != 0)
2899 if ((a
->flags
& BSF_FUNCTION
) != 0 && (b
->flags
& BSF_FUNCTION
) == 0)
2902 if ((a
->flags
& BSF_FUNCTION
) == 0 && (b
->flags
& BSF_FUNCTION
) != 0)
2905 if ((a
->flags
& BSF_WEAK
) == 0 && (b
->flags
& BSF_WEAK
) != 0)
2908 if ((a
->flags
& BSF_WEAK
) != 0 && (b
->flags
& BSF_WEAK
) == 0)
2911 if ((a
->flags
& BSF_DYNAMIC
) != 0 && (b
->flags
& BSF_DYNAMIC
) == 0)
2914 if ((a
->flags
& BSF_DYNAMIC
) == 0 && (b
->flags
& BSF_DYNAMIC
) != 0)
2920 /* Search SYMS for a symbol of the given VALUE. */
2923 sym_exists_at (asymbol
**syms
, long lo
, long hi
, int id
, bfd_vma value
)
2931 mid
= (lo
+ hi
) >> 1;
2932 if (syms
[mid
]->value
+ syms
[mid
]->section
->vma
< value
)
2934 else if (syms
[mid
]->value
+ syms
[mid
]->section
->vma
> value
)
2944 mid
= (lo
+ hi
) >> 1;
2945 if (syms
[mid
]->section
->id
< id
)
2947 else if (syms
[mid
]->section
->id
> id
)
2949 else if (syms
[mid
]->value
< value
)
2951 else if (syms
[mid
]->value
> value
)
2961 section_covers_vma (bfd
*abfd ATTRIBUTE_UNUSED
, asection
*section
, void *ptr
)
2963 bfd_vma vma
= *(bfd_vma
*) ptr
;
2964 return ((section
->flags
& SEC_ALLOC
) != 0
2965 && section
->vma
<= vma
2966 && vma
< section
->vma
+ section
->size
);
2969 /* Create synthetic symbols, effectively restoring "dot-symbol" function
2970 entry syms. Also generate @plt symbols for the glink branch table. */
2973 ppc64_elf_get_synthetic_symtab (bfd
*abfd
,
2974 long static_count
, asymbol
**static_syms
,
2975 long dyn_count
, asymbol
**dyn_syms
,
2982 long symcount
, codesecsym
, codesecsymend
, secsymend
, opdsymend
;
2984 bfd_boolean relocatable
= (abfd
->flags
& (EXEC_P
| DYNAMIC
)) == 0;
2989 opd
= bfd_get_section_by_name (abfd
, ".opd");
2993 symcount
= static_count
;
2995 symcount
+= dyn_count
;
2999 syms
= bfd_malloc ((symcount
+ 1) * sizeof (*syms
));
3003 if (!relocatable
&& static_count
!= 0 && dyn_count
!= 0)
3005 /* Use both symbol tables. */
3006 memcpy (syms
, static_syms
, static_count
* sizeof (*syms
));
3007 memcpy (syms
+ static_count
, dyn_syms
, (dyn_count
+ 1) * sizeof (*syms
));
3009 else if (!relocatable
&& static_count
== 0)
3010 memcpy (syms
, dyn_syms
, (symcount
+ 1) * sizeof (*syms
));
3012 memcpy (syms
, static_syms
, (symcount
+ 1) * sizeof (*syms
));
3014 synthetic_relocatable
= relocatable
;
3015 qsort (syms
, symcount
, sizeof (*syms
), compare_symbols
);
3017 if (!relocatable
&& symcount
> 1)
3020 /* Trim duplicate syms, since we may have merged the normal and
3021 dynamic symbols. Actually, we only care about syms that have
3022 different values, so trim any with the same value. */
3023 for (i
= 1, j
= 1; i
< symcount
; ++i
)
3024 if (syms
[i
- 1]->value
+ syms
[i
- 1]->section
->vma
3025 != syms
[i
]->value
+ syms
[i
]->section
->vma
)
3026 syms
[j
++] = syms
[i
];
3031 if (strcmp (syms
[i
]->section
->name
, ".opd") == 0)
3035 for (; i
< symcount
; ++i
)
3036 if (((syms
[i
]->section
->flags
& (SEC_CODE
| SEC_ALLOC
| SEC_THREAD_LOCAL
))
3037 != (SEC_CODE
| SEC_ALLOC
))
3038 || (syms
[i
]->flags
& BSF_SECTION_SYM
) == 0)
3042 for (; i
< symcount
; ++i
)
3043 if ((syms
[i
]->flags
& BSF_SECTION_SYM
) == 0)
3047 for (; i
< symcount
; ++i
)
3048 if (strcmp (syms
[i
]->section
->name
, ".opd") != 0)
3052 for (; i
< symcount
; ++i
)
3053 if ((syms
[i
]->section
->flags
& (SEC_CODE
| SEC_ALLOC
| SEC_THREAD_LOCAL
))
3054 != (SEC_CODE
| SEC_ALLOC
))
3062 bfd_boolean (*slurp_relocs
) (bfd
*, asection
*, asymbol
**, bfd_boolean
);
3067 if (opdsymend
== secsymend
)
3070 slurp_relocs
= get_elf_backend_data (abfd
)->s
->slurp_reloc_table
;
3071 relcount
= (opd
->flags
& SEC_RELOC
) ? opd
->reloc_count
: 0;
3075 if (!(*slurp_relocs
) (abfd
, opd
, static_syms
, FALSE
))
3082 for (i
= secsymend
, r
= opd
->relocation
; i
< opdsymend
; ++i
)
3086 while (r
< opd
->relocation
+ relcount
3087 && r
->address
< syms
[i
]->value
+ opd
->vma
)
3090 if (r
== opd
->relocation
+ relcount
)
3093 if (r
->address
!= syms
[i
]->value
+ opd
->vma
)
3096 if (r
->howto
->type
!= R_PPC64_ADDR64
)
3099 sym
= *r
->sym_ptr_ptr
;
3100 if (!sym_exists_at (syms
, opdsymend
, symcount
,
3101 sym
->section
->id
, sym
->value
+ r
->addend
))
3104 size
+= sizeof (asymbol
);
3105 size
+= strlen (syms
[i
]->name
) + 2;
3109 s
= *ret
= bfd_malloc (size
);
3116 names
= (char *) (s
+ count
);
3118 for (i
= secsymend
, r
= opd
->relocation
; i
< opdsymend
; ++i
)
3122 while (r
< opd
->relocation
+ relcount
3123 && r
->address
< syms
[i
]->value
+ opd
->vma
)
3126 if (r
== opd
->relocation
+ relcount
)
3129 if (r
->address
!= syms
[i
]->value
+ opd
->vma
)
3132 if (r
->howto
->type
!= R_PPC64_ADDR64
)
3135 sym
= *r
->sym_ptr_ptr
;
3136 if (!sym_exists_at (syms
, opdsymend
, symcount
,
3137 sym
->section
->id
, sym
->value
+ r
->addend
))
3142 s
->flags
|= BSF_SYNTHETIC
;
3143 s
->section
= sym
->section
;
3144 s
->value
= sym
->value
+ r
->addend
;
3147 len
= strlen (syms
[i
]->name
);
3148 memcpy (names
, syms
[i
]->name
, len
+ 1);
3150 /* Have udata.p point back to the original symbol this
3151 synthetic symbol was derived from. */
3152 s
->udata
.p
= syms
[i
];
3159 bfd_boolean (*slurp_relocs
) (bfd
*, asection
*, asymbol
**, bfd_boolean
);
3163 bfd_vma glink_vma
= 0, resolv_vma
= 0;
3164 asection
*dynamic
, *glink
= NULL
, *relplt
= NULL
;
3167 if (!bfd_malloc_and_get_section (abfd
, opd
, &contents
))
3171 free_contents_and_exit
:
3179 for (i
= secsymend
; i
< opdsymend
; ++i
)
3183 /* Ignore bogus symbols. */
3184 if (syms
[i
]->value
> opd
->size
- 8)
3187 ent
= bfd_get_64 (abfd
, contents
+ syms
[i
]->value
);
3188 if (!sym_exists_at (syms
, opdsymend
, symcount
, -1, ent
))
3191 size
+= sizeof (asymbol
);
3192 size
+= strlen (syms
[i
]->name
) + 2;
3196 /* Get start of .glink stubs from DT_PPC64_GLINK. */
3198 && (dynamic
= bfd_get_section_by_name (abfd
, ".dynamic")) != NULL
)
3200 bfd_byte
*dynbuf
, *extdyn
, *extdynend
;
3202 void (*swap_dyn_in
) (bfd
*, const void *, Elf_Internal_Dyn
*);
3204 if (!bfd_malloc_and_get_section (abfd
, dynamic
, &dynbuf
))
3205 goto free_contents_and_exit
;
3207 extdynsize
= get_elf_backend_data (abfd
)->s
->sizeof_dyn
;
3208 swap_dyn_in
= get_elf_backend_data (abfd
)->s
->swap_dyn_in
;
3211 extdynend
= extdyn
+ dynamic
->size
;
3212 for (; extdyn
< extdynend
; extdyn
+= extdynsize
)
3214 Elf_Internal_Dyn dyn
;
3215 (*swap_dyn_in
) (abfd
, extdyn
, &dyn
);
3217 if (dyn
.d_tag
== DT_NULL
)
3220 if (dyn
.d_tag
== DT_PPC64_GLINK
)
3222 /* The first glink stub starts at offset 32; see comment in
3223 ppc64_elf_finish_dynamic_sections. */
3224 glink_vma
= dyn
.d_un
.d_val
+ 32;
3225 /* The .glink section usually does not survive the final
3226 link; search for the section (usually .text) where the
3227 glink stubs now reside. */
3228 glink
= bfd_sections_find_if (abfd
, section_covers_vma
,
3239 /* Determine __glink trampoline by reading the relative branch
3240 from the first glink stub. */
3242 if (bfd_get_section_contents (abfd
, glink
, buf
,
3243 glink_vma
+ 4 - glink
->vma
, 4))
3245 unsigned int insn
= bfd_get_32 (abfd
, buf
);
3247 if ((insn
& ~0x3fffffc) == 0)
3248 resolv_vma
= glink_vma
+ 4 + (insn
^ 0x2000000) - 0x2000000;
3252 size
+= sizeof (asymbol
) + sizeof ("__glink_PLTresolve");
3254 relplt
= bfd_get_section_by_name (abfd
, ".rela.plt");
3257 slurp_relocs
= get_elf_backend_data (abfd
)->s
->slurp_reloc_table
;
3258 if (! (*slurp_relocs
) (abfd
, relplt
, dyn_syms
, TRUE
))
3259 goto free_contents_and_exit
;
3261 plt_count
= relplt
->size
/ sizeof (Elf64_External_Rela
);
3262 size
+= plt_count
* sizeof (asymbol
);
3264 p
= relplt
->relocation
;
3265 for (i
= 0; i
< plt_count
; i
++, p
++)
3267 size
+= strlen ((*p
->sym_ptr_ptr
)->name
) + sizeof ("@plt");
3269 size
+= sizeof ("+0x") - 1 + 16;
3274 s
= *ret
= bfd_malloc (size
);
3276 goto free_contents_and_exit
;
3278 names
= (char *) (s
+ count
+ plt_count
+ (resolv_vma
!= 0));
3280 for (i
= secsymend
; i
< opdsymend
; ++i
)
3284 if (syms
[i
]->value
> opd
->size
- 8)
3287 ent
= bfd_get_64 (abfd
, contents
+ syms
[i
]->value
);
3288 if (!sym_exists_at (syms
, opdsymend
, symcount
, -1, ent
))
3292 asection
*sec
= abfd
->sections
;
3299 long mid
= (lo
+ hi
) >> 1;
3300 if (syms
[mid
]->section
->vma
< ent
)
3302 else if (syms
[mid
]->section
->vma
> ent
)
3306 sec
= syms
[mid
]->section
;
3311 if (lo
>= hi
&& lo
> codesecsym
)
3312 sec
= syms
[lo
- 1]->section
;
3314 for (; sec
!= NULL
; sec
= sec
->next
)
3318 if ((sec
->flags
& SEC_ALLOC
) == 0
3319 || (sec
->flags
& SEC_LOAD
) == 0)
3321 if ((sec
->flags
& SEC_CODE
) != 0)
3324 s
->flags
|= BSF_SYNTHETIC
;
3325 s
->value
= ent
- s
->section
->vma
;
3328 len
= strlen (syms
[i
]->name
);
3329 memcpy (names
, syms
[i
]->name
, len
+ 1);
3331 /* Have udata.p point back to the original symbol this
3332 synthetic symbol was derived from. */
3333 s
->udata
.p
= syms
[i
];
3339 if (glink
!= NULL
&& relplt
!= NULL
)
3343 /* Add a symbol for the main glink trampoline. */
3344 memset (s
, 0, sizeof *s
);
3346 s
->flags
= BSF_GLOBAL
| BSF_SYNTHETIC
;
3348 s
->value
= resolv_vma
- glink
->vma
;
3350 memcpy (names
, "__glink_PLTresolve", sizeof ("__glink_PLTresolve"));
3351 names
+= sizeof ("__glink_PLTresolve");
3356 /* FIXME: It would be very much nicer to put sym@plt on the
3357 stub rather than on the glink branch table entry. The
3358 objdump disassembler would then use a sensible symbol
3359 name on plt calls. The difficulty in doing so is
3360 a) finding the stubs, and,
3361 b) matching stubs against plt entries, and,
3362 c) there can be multiple stubs for a given plt entry.
3364 Solving (a) could be done by code scanning, but older
3365 ppc64 binaries used different stubs to current code.
3366 (b) is the tricky one since you need to known the toc
3367 pointer for at least one function that uses a pic stub to
3368 be able to calculate the plt address referenced.
3369 (c) means gdb would need to set multiple breakpoints (or
3370 find the glink branch itself) when setting breakpoints
3371 for pending shared library loads. */
3372 p
= relplt
->relocation
;
3373 for (i
= 0; i
< plt_count
; i
++, p
++)
3377 *s
= **p
->sym_ptr_ptr
;
3378 /* Undefined syms won't have BSF_LOCAL or BSF_GLOBAL set. Since
3379 we are defining a symbol, ensure one of them is set. */
3380 if ((s
->flags
& BSF_LOCAL
) == 0)
3381 s
->flags
|= BSF_GLOBAL
;
3382 s
->flags
|= BSF_SYNTHETIC
;
3384 s
->value
= glink_vma
- glink
->vma
;
3387 len
= strlen ((*p
->sym_ptr_ptr
)->name
);
3388 memcpy (names
, (*p
->sym_ptr_ptr
)->name
, len
);
3392 memcpy (names
, "+0x", sizeof ("+0x") - 1);
3393 names
+= sizeof ("+0x") - 1;
3394 bfd_sprintf_vma (abfd
, names
, p
->addend
);
3395 names
+= strlen (names
);
3397 memcpy (names
, "@plt", sizeof ("@plt"));
3398 names
+= sizeof ("@plt");
3413 /* The following functions are specific to the ELF linker, while
3414 functions above are used generally. Those named ppc64_elf_* are
3415 called by the main ELF linker code. They appear in this file more
3416 or less in the order in which they are called. eg.
3417 ppc64_elf_check_relocs is called early in the link process,
3418 ppc64_elf_finish_dynamic_sections is one of the last functions
3421 PowerPC64-ELF uses a similar scheme to PowerPC64-XCOFF in that
3422 functions have both a function code symbol and a function descriptor
3423 symbol. A call to foo in a relocatable object file looks like:
3430 The function definition in another object file might be:
3434 . .quad .TOC.@tocbase
3440 When the linker resolves the call during a static link, the branch
3441 unsurprisingly just goes to .foo and the .opd information is unused.
3442 If the function definition is in a shared library, things are a little
3443 different: The call goes via a plt call stub, the opd information gets
3444 copied to the plt, and the linker patches the nop.
3452 . addis 12,2,Lfoo@toc@ha # in practice, the call stub
3453 . addi 12,12,Lfoo@toc@l # is slightly optimized, but
3454 . std 2,40(1) # this is the general idea
3462 . Lfoo: reloc (R_PPC64_JMP_SLOT, foo)
3464 The "reloc ()" notation is supposed to indicate that the linker emits
3465 an R_PPC64_JMP_SLOT reloc against foo. The dynamic linker does the opd
3468 What are the difficulties here? Well, firstly, the relocations
3469 examined by the linker in check_relocs are against the function code
3470 sym .foo, while the dynamic relocation in the plt is emitted against
3471 the function descriptor symbol, foo. Somewhere along the line, we need
3472 to carefully copy dynamic link information from one symbol to the other.
3473 Secondly, the generic part of the elf linker will make .foo a dynamic
3474 symbol as is normal for most other backends. We need foo dynamic
3475 instead, at least for an application final link. However, when
3476 creating a shared library containing foo, we need to have both symbols
3477 dynamic so that references to .foo are satisfied during the early
3478 stages of linking. Otherwise the linker might decide to pull in a
3479 definition from some other object, eg. a static library.
3481 Update: As of August 2004, we support a new convention. Function
3482 calls may use the function descriptor symbol, ie. "bl foo". This
3483 behaves exactly as "bl .foo". */
3485 /* The linker needs to keep track of the number of relocs that it
3486 decides to copy as dynamic relocs in check_relocs for each symbol.
3487 This is so that it can later discard them if they are found to be
3488 unnecessary. We store the information in a field extending the
3489 regular ELF linker hash table. */
3491 struct ppc_dyn_relocs
3493 struct ppc_dyn_relocs
*next
;
3495 /* The input section of the reloc. */
3498 /* Total number of relocs copied for the input section. */
3499 bfd_size_type count
;
3501 /* Number of pc-relative relocs copied for the input section. */
3502 bfd_size_type pc_count
;
3505 /* Of those relocs that might be copied as dynamic relocs, this function
3506 selects those that must be copied when linking a shared library,
3507 even when the symbol is local. */
3510 must_be_dyn_reloc (struct bfd_link_info
*info
,
3511 enum elf_ppc64_reloc_type r_type
)
3523 case R_PPC64_TPREL16
:
3524 case R_PPC64_TPREL16_LO
:
3525 case R_PPC64_TPREL16_HI
:
3526 case R_PPC64_TPREL16_HA
:
3527 case R_PPC64_TPREL16_DS
:
3528 case R_PPC64_TPREL16_LO_DS
:
3529 case R_PPC64_TPREL16_HIGHER
:
3530 case R_PPC64_TPREL16_HIGHERA
:
3531 case R_PPC64_TPREL16_HIGHEST
:
3532 case R_PPC64_TPREL16_HIGHESTA
:
3533 case R_PPC64_TPREL64
:
3534 return !info
->executable
;
3538 /* If ELIMINATE_COPY_RELOCS is non-zero, the linker will try to avoid
3539 copying dynamic variables from a shared lib into an app's dynbss
3540 section, and instead use a dynamic relocation to point into the
3541 shared lib. With code that gcc generates, it's vital that this be
3542 enabled; In the PowerPC64 ABI, the address of a function is actually
3543 the address of a function descriptor, which resides in the .opd
3544 section. gcc uses the descriptor directly rather than going via the
3545 GOT as some other ABI's do, which means that initialized function
3546 pointers must reference the descriptor. Thus, a function pointer
3547 initialized to the address of a function in a shared library will
3548 either require a copy reloc, or a dynamic reloc. Using a copy reloc
3549 redefines the function descriptor symbol to point to the copy. This
3550 presents a problem as a plt entry for that function is also
3551 initialized from the function descriptor symbol and the copy reloc
3552 may not be initialized first. */
3553 #define ELIMINATE_COPY_RELOCS 1
3555 /* Section name for stubs is the associated section name plus this
3557 #define STUB_SUFFIX ".stub"
3560 ppc_stub_long_branch:
3561 Used when a 14 bit branch (or even a 24 bit branch) can't reach its
3562 destination, but a 24 bit branch in a stub section will reach.
3565 ppc_stub_plt_branch:
3566 Similar to the above, but a 24 bit branch in the stub section won't
3567 reach its destination.
3568 . addis %r12,%r2,xxx@toc@ha
3569 . ld %r11,xxx@toc@l(%r12)
3574 Used to call a function in a shared library. If it so happens that
3575 the plt entry referenced crosses a 64k boundary, then an extra
3576 "addi %r12,%r12,xxx@toc@l" will be inserted before the "mtctr".
3577 . addis %r12,%r2,xxx@toc@ha
3579 . ld %r11,xxx+0@toc@l(%r12)
3581 . ld %r2,xxx+8@toc@l(%r12)
3582 . ld %r11,xxx+16@toc@l(%r12)
3585 ppc_stub_long_branch and ppc_stub_plt_branch may also have additional
3586 code to adjust the value and save r2 to support multiple toc sections.
3587 A ppc_stub_long_branch with an r2 offset looks like:
3589 . addis %r2,%r2,off@ha
3590 . addi %r2,%r2,off@l
3593 A ppc_stub_plt_branch with an r2 offset looks like:
3595 . addis %r12,%r2,xxx@toc@ha
3596 . ld %r11,xxx@toc@l(%r12)
3597 . addis %r2,%r2,off@ha
3598 . addi %r2,%r2,off@l
3602 In cases where the "addis" instruction would add zero, the "addis" is
3603 omitted and following instructions modified slightly in some cases.
3606 enum ppc_stub_type
{
3608 ppc_stub_long_branch
,
3609 ppc_stub_long_branch_r2off
,
3610 ppc_stub_plt_branch
,
3611 ppc_stub_plt_branch_r2off
,
3615 struct ppc_stub_hash_entry
{
3617 /* Base hash table entry structure. */
3618 struct bfd_hash_entry root
;
3620 enum ppc_stub_type stub_type
;
3622 /* The stub section. */
3625 /* Offset within stub_sec of the beginning of this stub. */
3626 bfd_vma stub_offset
;
3628 /* Given the symbol's value and its section we can determine its final
3629 value when building the stubs (so the stub knows where to jump. */
3630 bfd_vma target_value
;
3631 asection
*target_section
;
3633 /* The symbol table entry, if any, that this was derived from. */
3634 struct ppc_link_hash_entry
*h
;
3635 struct plt_entry
*plt_ent
;
3637 /* And the reloc addend that this was derived from. */
3640 /* Where this stub is being called from, or, in the case of combined
3641 stub sections, the first input section in the group. */
3645 struct ppc_branch_hash_entry
{
3647 /* Base hash table entry structure. */
3648 struct bfd_hash_entry root
;
3650 /* Offset within branch lookup table. */
3651 unsigned int offset
;
3653 /* Generation marker. */
3657 struct ppc_link_hash_entry
3659 struct elf_link_hash_entry elf
;
3662 /* A pointer to the most recently used stub hash entry against this
3664 struct ppc_stub_hash_entry
*stub_cache
;
3666 /* A pointer to the next symbol starting with a '.' */
3667 struct ppc_link_hash_entry
*next_dot_sym
;
3670 /* Track dynamic relocs copied for this symbol. */
3671 struct ppc_dyn_relocs
*dyn_relocs
;
3673 /* Link between function code and descriptor symbols. */
3674 struct ppc_link_hash_entry
*oh
;
3676 /* Flag function code and descriptor symbols. */
3677 unsigned int is_func
:1;
3678 unsigned int is_func_descriptor
:1;
3679 unsigned int fake
:1;
3681 /* Whether global opd/toc sym has been adjusted or not.
3682 After ppc64_elf_edit_opd/ppc64_elf_edit_toc has run, this flag
3683 should be set for all globals defined in any opd/toc section. */
3684 unsigned int adjust_done
:1;
3686 /* Set if we twiddled this symbol to weak at some stage. */
3687 unsigned int was_undefined
:1;
3689 /* Contexts in which symbol is used in the GOT (or TOC).
3690 TLS_GD .. TLS_EXPLICIT bits are or'd into the mask as the
3691 corresponding relocs are encountered during check_relocs.
3692 tls_optimize clears TLS_GD .. TLS_TPREL when optimizing to
3693 indicate the corresponding GOT entry type is not needed.
3694 tls_optimize may also set TLS_TPRELGD when a GD reloc turns into
3695 a TPREL one. We use a separate flag rather than setting TPREL
3696 just for convenience in distinguishing the two cases. */
3697 #define TLS_GD 1 /* GD reloc. */
3698 #define TLS_LD 2 /* LD reloc. */
3699 #define TLS_TPREL 4 /* TPREL reloc, => IE. */
3700 #define TLS_DTPREL 8 /* DTPREL reloc, => LD. */
3701 #define TLS_TLS 16 /* Any TLS reloc. */
3702 #define TLS_EXPLICIT 32 /* Marks TOC section TLS relocs. */
3703 #define TLS_TPRELGD 64 /* TPREL reloc resulting from GD->IE. */
3704 #define PLT_IFUNC 128 /* STT_GNU_IFUNC. */
3705 unsigned char tls_mask
;
3708 /* ppc64 ELF linker hash table. */
3710 struct ppc_link_hash_table
3712 struct elf_link_hash_table elf
;
3714 /* The stub hash table. */
3715 struct bfd_hash_table stub_hash_table
;
3717 /* Another hash table for plt_branch stubs. */
3718 struct bfd_hash_table branch_hash_table
;
3720 /* Linker stub bfd. */
3723 /* Linker call-backs. */
3724 asection
* (*add_stub_section
) (const char *, asection
*);
3725 void (*layout_sections_again
) (void);
3727 /* Array to keep track of which stub sections have been created, and
3728 information on stub grouping. */
3730 /* This is the section to which stubs in the group will be attached. */
3732 /* The stub section. */
3734 /* Along with elf_gp, specifies the TOC pointer used in this group. */
3738 /* Temp used when calculating TOC pointers. */
3741 asection
*toc_first_sec
;
3743 /* Highest input section id. */
3746 /* Highest output section index. */
3749 /* Used when adding symbols. */
3750 struct ppc_link_hash_entry
*dot_syms
;
3752 /* List of input sections for each output section. */
3753 asection
**input_list
;
3755 /* Short-cuts to get to dynamic linker sections. */
3768 /* Shortcut to .__tls_get_addr and __tls_get_addr. */
3769 struct ppc_link_hash_entry
*tls_get_addr
;
3770 struct ppc_link_hash_entry
*tls_get_addr_fd
;
3772 /* The size of reliplt used by got entry relocs. */
3773 bfd_size_type got_reli_size
;
3776 unsigned long stub_count
[ppc_stub_plt_call
];
3778 /* Number of stubs against global syms. */
3779 unsigned long stub_globals
;
3781 /* Set if we should emit symbols for stubs. */
3782 unsigned int emit_stub_syms
:1;
3784 /* Set if __tls_get_addr optimization should not be done. */
3785 unsigned int no_tls_get_addr_opt
:1;
3787 /* Support for multiple toc sections. */
3788 unsigned int do_multi_toc
:1;
3789 unsigned int multi_toc_needed
:1;
3790 unsigned int second_toc_pass
:1;
3793 unsigned int stub_error
:1;
3795 /* Temp used by ppc64_elf_process_dot_syms. */
3796 unsigned int twiddled_syms
:1;
3798 /* Incremented every time we size stubs. */
3799 unsigned int stub_iteration
;
3801 /* Small local sym cache. */
3802 struct sym_cache sym_cache
;
3805 /* Rename some of the generic section flags to better document how they
3808 /* Nonzero if this section has TLS related relocations. */
3809 #define has_tls_reloc sec_flg0
3811 /* Nonzero if this section has a call to __tls_get_addr. */
3812 #define has_tls_get_addr_call sec_flg1
3814 /* Nonzero if this section has any toc or got relocs. */
3815 #define has_toc_reloc sec_flg2
3817 /* Nonzero if this section has a call to another section that uses
3819 #define makes_toc_func_call sec_flg3
3821 /* Recursion protection when determining above flag. */
3822 #define call_check_in_progress sec_flg4
3824 /* Get the ppc64 ELF linker hash table from a link_info structure. */
3826 #define ppc_hash_table(p) \
3827 (elf_hash_table_id ((struct elf_link_hash_table *) ((p)->hash)) \
3828 == PPC64_ELF_DATA ? ((struct ppc_link_hash_table *) ((p)->hash)) : NULL)
3830 #define ppc_stub_hash_lookup(table, string, create, copy) \
3831 ((struct ppc_stub_hash_entry *) \
3832 bfd_hash_lookup ((table), (string), (create), (copy)))
3834 #define ppc_branch_hash_lookup(table, string, create, copy) \
3835 ((struct ppc_branch_hash_entry *) \
3836 bfd_hash_lookup ((table), (string), (create), (copy)))
3838 /* Create an entry in the stub hash table. */
3840 static struct bfd_hash_entry
*
3841 stub_hash_newfunc (struct bfd_hash_entry
*entry
,
3842 struct bfd_hash_table
*table
,
3845 /* Allocate the structure if it has not already been allocated by a
3849 entry
= bfd_hash_allocate (table
, sizeof (struct ppc_stub_hash_entry
));
3854 /* Call the allocation method of the superclass. */
3855 entry
= bfd_hash_newfunc (entry
, table
, string
);
3858 struct ppc_stub_hash_entry
*eh
;
3860 /* Initialize the local fields. */
3861 eh
= (struct ppc_stub_hash_entry
*) entry
;
3862 eh
->stub_type
= ppc_stub_none
;
3863 eh
->stub_sec
= NULL
;
3864 eh
->stub_offset
= 0;
3865 eh
->target_value
= 0;
3866 eh
->target_section
= NULL
;
3874 /* Create an entry in the branch hash table. */
3876 static struct bfd_hash_entry
*
3877 branch_hash_newfunc (struct bfd_hash_entry
*entry
,
3878 struct bfd_hash_table
*table
,
3881 /* Allocate the structure if it has not already been allocated by a
3885 entry
= bfd_hash_allocate (table
, sizeof (struct ppc_branch_hash_entry
));
3890 /* Call the allocation method of the superclass. */
3891 entry
= bfd_hash_newfunc (entry
, table
, string
);
3894 struct ppc_branch_hash_entry
*eh
;
3896 /* Initialize the local fields. */
3897 eh
= (struct ppc_branch_hash_entry
*) entry
;
3905 /* Create an entry in a ppc64 ELF linker hash table. */
3907 static struct bfd_hash_entry
*
3908 link_hash_newfunc (struct bfd_hash_entry
*entry
,
3909 struct bfd_hash_table
*table
,
3912 /* Allocate the structure if it has not already been allocated by a
3916 entry
= bfd_hash_allocate (table
, sizeof (struct ppc_link_hash_entry
));
3921 /* Call the allocation method of the superclass. */
3922 entry
= _bfd_elf_link_hash_newfunc (entry
, table
, string
);
3925 struct ppc_link_hash_entry
*eh
= (struct ppc_link_hash_entry
*) entry
;
3927 memset (&eh
->u
.stub_cache
, 0,
3928 (sizeof (struct ppc_link_hash_entry
)
3929 - offsetof (struct ppc_link_hash_entry
, u
.stub_cache
)));
3931 /* When making function calls, old ABI code references function entry
3932 points (dot symbols), while new ABI code references the function
3933 descriptor symbol. We need to make any combination of reference and
3934 definition work together, without breaking archive linking.
3936 For a defined function "foo" and an undefined call to "bar":
3937 An old object defines "foo" and ".foo", references ".bar" (possibly
3939 A new object defines "foo" and references "bar".
3941 A new object thus has no problem with its undefined symbols being
3942 satisfied by definitions in an old object. On the other hand, the
3943 old object won't have ".bar" satisfied by a new object.
3945 Keep a list of newly added dot-symbols. */
3947 if (string
[0] == '.')
3949 struct ppc_link_hash_table
*htab
;
3951 htab
= (struct ppc_link_hash_table
*) table
;
3952 eh
->u
.next_dot_sym
= htab
->dot_syms
;
3953 htab
->dot_syms
= eh
;
3960 /* Create a ppc64 ELF linker hash table. */
3962 static struct bfd_link_hash_table
*
3963 ppc64_elf_link_hash_table_create (bfd
*abfd
)
3965 struct ppc_link_hash_table
*htab
;
3966 bfd_size_type amt
= sizeof (struct ppc_link_hash_table
);
3968 htab
= bfd_zmalloc (amt
);
3972 if (!_bfd_elf_link_hash_table_init (&htab
->elf
, abfd
, link_hash_newfunc
,
3973 sizeof (struct ppc_link_hash_entry
),
3980 /* Init the stub hash table too. */
3981 if (!bfd_hash_table_init (&htab
->stub_hash_table
, stub_hash_newfunc
,
3982 sizeof (struct ppc_stub_hash_entry
)))
3985 /* And the branch hash table. */
3986 if (!bfd_hash_table_init (&htab
->branch_hash_table
, branch_hash_newfunc
,
3987 sizeof (struct ppc_branch_hash_entry
)))
3990 /* Initializing two fields of the union is just cosmetic. We really
3991 only care about glist, but when compiled on a 32-bit host the
3992 bfd_vma fields are larger. Setting the bfd_vma to zero makes
3993 debugger inspection of these fields look nicer. */
3994 htab
->elf
.init_got_refcount
.refcount
= 0;
3995 htab
->elf
.init_got_refcount
.glist
= NULL
;
3996 htab
->elf
.init_plt_refcount
.refcount
= 0;
3997 htab
->elf
.init_plt_refcount
.glist
= NULL
;
3998 htab
->elf
.init_got_offset
.offset
= 0;
3999 htab
->elf
.init_got_offset
.glist
= NULL
;
4000 htab
->elf
.init_plt_offset
.offset
= 0;
4001 htab
->elf
.init_plt_offset
.glist
= NULL
;
4003 return &htab
->elf
.root
;
4006 /* Free the derived linker hash table. */
4009 ppc64_elf_link_hash_table_free (struct bfd_link_hash_table
*hash
)
4011 struct ppc_link_hash_table
*ret
= (struct ppc_link_hash_table
*) hash
;
4013 bfd_hash_table_free (&ret
->stub_hash_table
);
4014 bfd_hash_table_free (&ret
->branch_hash_table
);
4015 _bfd_generic_link_hash_table_free (hash
);
4018 /* Satisfy the ELF linker by filling in some fields in our fake bfd. */
4021 ppc64_elf_init_stub_bfd (bfd
*abfd
, struct bfd_link_info
*info
)
4023 struct ppc_link_hash_table
*htab
;
4025 elf_elfheader (abfd
)->e_ident
[EI_CLASS
] = ELFCLASS64
;
4027 /* Always hook our dynamic sections into the first bfd, which is the
4028 linker created stub bfd. This ensures that the GOT header is at
4029 the start of the output TOC section. */
4030 htab
= ppc_hash_table (info
);
4033 htab
->stub_bfd
= abfd
;
4034 htab
->elf
.dynobj
= abfd
;
4037 /* Build a name for an entry in the stub hash table. */
4040 ppc_stub_name (const asection
*input_section
,
4041 const asection
*sym_sec
,
4042 const struct ppc_link_hash_entry
*h
,
4043 const Elf_Internal_Rela
*rel
)
4048 /* rel->r_addend is actually 64 bit, but who uses more than +/- 2^31
4049 offsets from a sym as a branch target? In fact, we could
4050 probably assume the addend is always zero. */
4051 BFD_ASSERT (((int) rel
->r_addend
& 0xffffffff) == rel
->r_addend
);
4055 len
= 8 + 1 + strlen (h
->elf
.root
.root
.string
) + 1 + 8 + 1;
4056 stub_name
= bfd_malloc (len
);
4057 if (stub_name
== NULL
)
4060 sprintf (stub_name
, "%08x.%s+%x",
4061 input_section
->id
& 0xffffffff,
4062 h
->elf
.root
.root
.string
,
4063 (int) rel
->r_addend
& 0xffffffff);
4067 len
= 8 + 1 + 8 + 1 + 8 + 1 + 8 + 1;
4068 stub_name
= bfd_malloc (len
);
4069 if (stub_name
== NULL
)
4072 sprintf (stub_name
, "%08x.%x:%x+%x",
4073 input_section
->id
& 0xffffffff,
4074 sym_sec
->id
& 0xffffffff,
4075 (int) ELF64_R_SYM (rel
->r_info
) & 0xffffffff,
4076 (int) rel
->r_addend
& 0xffffffff);
4078 if (stub_name
[len
- 2] == '+' && stub_name
[len
- 1] == '0')
4079 stub_name
[len
- 2] = 0;
4083 /* Look up an entry in the stub hash. Stub entries are cached because
4084 creating the stub name takes a bit of time. */
4086 static struct ppc_stub_hash_entry
*
4087 ppc_get_stub_entry (const asection
*input_section
,
4088 const asection
*sym_sec
,
4089 struct ppc_link_hash_entry
*h
,
4090 const Elf_Internal_Rela
*rel
,
4091 struct ppc_link_hash_table
*htab
)
4093 struct ppc_stub_hash_entry
*stub_entry
;
4094 const asection
*id_sec
;
4096 /* If this input section is part of a group of sections sharing one
4097 stub section, then use the id of the first section in the group.
4098 Stub names need to include a section id, as there may well be
4099 more than one stub used to reach say, printf, and we need to
4100 distinguish between them. */
4101 id_sec
= htab
->stub_group
[input_section
->id
].link_sec
;
4103 if (h
!= NULL
&& h
->u
.stub_cache
!= NULL
4104 && h
->u
.stub_cache
->h
== h
4105 && h
->u
.stub_cache
->id_sec
== id_sec
)
4107 stub_entry
= h
->u
.stub_cache
;
4113 stub_name
= ppc_stub_name (id_sec
, sym_sec
, h
, rel
);
4114 if (stub_name
== NULL
)
4117 stub_entry
= ppc_stub_hash_lookup (&htab
->stub_hash_table
,
4118 stub_name
, FALSE
, FALSE
);
4120 h
->u
.stub_cache
= stub_entry
;
4128 /* Add a new stub entry to the stub hash. Not all fields of the new
4129 stub entry are initialised. */
4131 static struct ppc_stub_hash_entry
*
4132 ppc_add_stub (const char *stub_name
,
4134 struct ppc_link_hash_table
*htab
)
4138 struct ppc_stub_hash_entry
*stub_entry
;
4140 link_sec
= htab
->stub_group
[section
->id
].link_sec
;
4141 stub_sec
= htab
->stub_group
[section
->id
].stub_sec
;
4142 if (stub_sec
== NULL
)
4144 stub_sec
= htab
->stub_group
[link_sec
->id
].stub_sec
;
4145 if (stub_sec
== NULL
)
4151 namelen
= strlen (link_sec
->name
);
4152 len
= namelen
+ sizeof (STUB_SUFFIX
);
4153 s_name
= bfd_alloc (htab
->stub_bfd
, len
);
4157 memcpy (s_name
, link_sec
->name
, namelen
);
4158 memcpy (s_name
+ namelen
, STUB_SUFFIX
, sizeof (STUB_SUFFIX
));
4159 stub_sec
= (*htab
->add_stub_section
) (s_name
, link_sec
);
4160 if (stub_sec
== NULL
)
4162 htab
->stub_group
[link_sec
->id
].stub_sec
= stub_sec
;
4164 htab
->stub_group
[section
->id
].stub_sec
= stub_sec
;
4167 /* Enter this entry into the linker stub hash table. */
4168 stub_entry
= ppc_stub_hash_lookup (&htab
->stub_hash_table
, stub_name
,
4170 if (stub_entry
== NULL
)
4172 (*_bfd_error_handler
) (_("%B: cannot create stub entry %s"),
4173 section
->owner
, stub_name
);
4177 stub_entry
->stub_sec
= stub_sec
;
4178 stub_entry
->stub_offset
= 0;
4179 stub_entry
->id_sec
= link_sec
;
4183 /* Create sections for linker generated code. */
4186 create_linkage_sections (bfd
*dynobj
, struct bfd_link_info
*info
)
4188 struct ppc_link_hash_table
*htab
;
4191 htab
= ppc_hash_table (info
);
4195 /* Create .sfpr for code to save and restore fp regs. */
4196 flags
= (SEC_ALLOC
| SEC_LOAD
| SEC_CODE
| SEC_READONLY
4197 | SEC_HAS_CONTENTS
| SEC_IN_MEMORY
| SEC_LINKER_CREATED
);
4198 htab
->sfpr
= bfd_make_section_anyway_with_flags (dynobj
, ".sfpr",
4200 if (htab
->sfpr
== NULL
4201 || ! bfd_set_section_alignment (dynobj
, htab
->sfpr
, 2))
4204 /* Create .glink for lazy dynamic linking support. */
4205 htab
->glink
= bfd_make_section_anyway_with_flags (dynobj
, ".glink",
4207 if (htab
->glink
== NULL
4208 || ! bfd_set_section_alignment (dynobj
, htab
->glink
, 3))
4211 flags
= SEC_ALLOC
| SEC_LINKER_CREATED
;
4212 htab
->iplt
= bfd_make_section_anyway_with_flags (dynobj
, ".iplt", flags
);
4213 if (htab
->iplt
== NULL
4214 || ! bfd_set_section_alignment (dynobj
, htab
->iplt
, 3))
4217 flags
= (SEC_ALLOC
| SEC_LOAD
| SEC_READONLY
4218 | SEC_HAS_CONTENTS
| SEC_IN_MEMORY
| SEC_LINKER_CREATED
);
4219 htab
->reliplt
= bfd_make_section_anyway_with_flags (dynobj
,
4222 if (htab
->reliplt
== NULL
4223 || ! bfd_set_section_alignment (dynobj
, htab
->reliplt
, 3))
4226 /* Create branch lookup table for plt_branch stubs. */
4227 flags
= (SEC_ALLOC
| SEC_LOAD
4228 | SEC_HAS_CONTENTS
| SEC_IN_MEMORY
| SEC_LINKER_CREATED
);
4229 htab
->brlt
= bfd_make_section_anyway_with_flags (dynobj
, ".branch_lt",
4231 if (htab
->brlt
== NULL
4232 || ! bfd_set_section_alignment (dynobj
, htab
->brlt
, 3))
4238 flags
= (SEC_ALLOC
| SEC_LOAD
| SEC_READONLY
4239 | SEC_HAS_CONTENTS
| SEC_IN_MEMORY
| SEC_LINKER_CREATED
);
4240 htab
->relbrlt
= bfd_make_section_anyway_with_flags (dynobj
,
4243 if (htab
->relbrlt
== NULL
4244 || ! bfd_set_section_alignment (dynobj
, htab
->relbrlt
, 3))
4250 /* Create .got and .rela.got sections in ABFD, and .got in dynobj if
4251 not already done. */
4254 create_got_section (bfd
*abfd
, struct bfd_link_info
*info
)
4256 asection
*got
, *relgot
;
4258 struct ppc_link_hash_table
*htab
= ppc_hash_table (info
);
4260 if (!is_ppc64_elf (abfd
))
4267 if (! _bfd_elf_create_got_section (htab
->elf
.dynobj
, info
))
4270 htab
->got
= bfd_get_section_by_name (htab
->elf
.dynobj
, ".got");
4275 flags
= (SEC_ALLOC
| SEC_LOAD
| SEC_HAS_CONTENTS
| SEC_IN_MEMORY
4276 | SEC_LINKER_CREATED
);
4278 got
= bfd_make_section_anyway_with_flags (abfd
, ".got", flags
);
4280 || !bfd_set_section_alignment (abfd
, got
, 3))
4283 relgot
= bfd_make_section_anyway_with_flags (abfd
, ".rela.got",
4284 flags
| SEC_READONLY
);
4286 || ! bfd_set_section_alignment (abfd
, relgot
, 3))
4289 ppc64_elf_tdata (abfd
)->got
= got
;
4290 ppc64_elf_tdata (abfd
)->relgot
= relgot
;
4294 /* Create the dynamic sections, and set up shortcuts. */
4297 ppc64_elf_create_dynamic_sections (bfd
*dynobj
, struct bfd_link_info
*info
)
4299 struct ppc_link_hash_table
*htab
;
4301 if (!_bfd_elf_create_dynamic_sections (dynobj
, info
))
4304 htab
= ppc_hash_table (info
);
4309 htab
->got
= bfd_get_section_by_name (dynobj
, ".got");
4310 htab
->plt
= bfd_get_section_by_name (dynobj
, ".plt");
4311 htab
->relplt
= bfd_get_section_by_name (dynobj
, ".rela.plt");
4312 htab
->dynbss
= bfd_get_section_by_name (dynobj
, ".dynbss");
4314 htab
->relbss
= bfd_get_section_by_name (dynobj
, ".rela.bss");
4316 if (!htab
->got
|| !htab
->plt
|| !htab
->relplt
|| !htab
->dynbss
4317 || (!info
->shared
&& !htab
->relbss
))
4323 /* Follow indirect and warning symbol links. */
4325 static inline struct bfd_link_hash_entry
*
4326 follow_link (struct bfd_link_hash_entry
*h
)
4328 while (h
->type
== bfd_link_hash_indirect
4329 || h
->type
== bfd_link_hash_warning
)
4334 static inline struct elf_link_hash_entry
*
4335 elf_follow_link (struct elf_link_hash_entry
*h
)
4337 return (struct elf_link_hash_entry
*) follow_link (&h
->root
);
4340 static inline struct ppc_link_hash_entry
*
4341 ppc_follow_link (struct ppc_link_hash_entry
*h
)
4343 return (struct ppc_link_hash_entry
*) follow_link (&h
->elf
.root
);
4346 /* Merge PLT info on FROM with that on TO. */
4349 move_plt_plist (struct ppc_link_hash_entry
*from
,
4350 struct ppc_link_hash_entry
*to
)
4352 if (from
->elf
.plt
.plist
!= NULL
)
4354 if (to
->elf
.plt
.plist
!= NULL
)
4356 struct plt_entry
**entp
;
4357 struct plt_entry
*ent
;
4359 for (entp
= &from
->elf
.plt
.plist
; (ent
= *entp
) != NULL
; )
4361 struct plt_entry
*dent
;
4363 for (dent
= to
->elf
.plt
.plist
; dent
!= NULL
; dent
= dent
->next
)
4364 if (dent
->addend
== ent
->addend
)
4366 dent
->plt
.refcount
+= ent
->plt
.refcount
;
4373 *entp
= to
->elf
.plt
.plist
;
4376 to
->elf
.plt
.plist
= from
->elf
.plt
.plist
;
4377 from
->elf
.plt
.plist
= NULL
;
4381 /* Copy the extra info we tack onto an elf_link_hash_entry. */
4384 ppc64_elf_copy_indirect_symbol (struct bfd_link_info
*info
,
4385 struct elf_link_hash_entry
*dir
,
4386 struct elf_link_hash_entry
*ind
)
4388 struct ppc_link_hash_entry
*edir
, *eind
;
4390 edir
= (struct ppc_link_hash_entry
*) dir
;
4391 eind
= (struct ppc_link_hash_entry
*) ind
;
4393 /* Copy over any dynamic relocs we may have on the indirect sym. */
4394 if (eind
->dyn_relocs
!= NULL
)
4396 if (edir
->dyn_relocs
!= NULL
)
4398 struct ppc_dyn_relocs
**pp
;
4399 struct ppc_dyn_relocs
*p
;
4401 /* Add reloc counts against the indirect sym to the direct sym
4402 list. Merge any entries against the same section. */
4403 for (pp
= &eind
->dyn_relocs
; (p
= *pp
) != NULL
; )
4405 struct ppc_dyn_relocs
*q
;
4407 for (q
= edir
->dyn_relocs
; q
!= NULL
; q
= q
->next
)
4408 if (q
->sec
== p
->sec
)
4410 q
->pc_count
+= p
->pc_count
;
4411 q
->count
+= p
->count
;
4418 *pp
= edir
->dyn_relocs
;
4421 edir
->dyn_relocs
= eind
->dyn_relocs
;
4422 eind
->dyn_relocs
= NULL
;
4425 edir
->is_func
|= eind
->is_func
;
4426 edir
->is_func_descriptor
|= eind
->is_func_descriptor
;
4427 edir
->tls_mask
|= eind
->tls_mask
;
4428 if (eind
->oh
!= NULL
)
4429 edir
->oh
= ppc_follow_link (eind
->oh
);
4431 /* If called to transfer flags for a weakdef during processing
4432 of elf_adjust_dynamic_symbol, don't copy NON_GOT_REF.
4433 We clear it ourselves for ELIMINATE_COPY_RELOCS. */
4434 if (!(ELIMINATE_COPY_RELOCS
4435 && eind
->elf
.root
.type
!= bfd_link_hash_indirect
4436 && edir
->elf
.dynamic_adjusted
))
4437 edir
->elf
.non_got_ref
|= eind
->elf
.non_got_ref
;
4439 edir
->elf
.ref_dynamic
|= eind
->elf
.ref_dynamic
;
4440 edir
->elf
.ref_regular
|= eind
->elf
.ref_regular
;
4441 edir
->elf
.ref_regular_nonweak
|= eind
->elf
.ref_regular_nonweak
;
4442 edir
->elf
.needs_plt
|= eind
->elf
.needs_plt
;
4444 /* If we were called to copy over info for a weak sym, that's all. */
4445 if (eind
->elf
.root
.type
!= bfd_link_hash_indirect
)
4448 /* Copy over got entries that we may have already seen to the
4449 symbol which just became indirect. */
4450 if (eind
->elf
.got
.glist
!= NULL
)
4452 if (edir
->elf
.got
.glist
!= NULL
)
4454 struct got_entry
**entp
;
4455 struct got_entry
*ent
;
4457 for (entp
= &eind
->elf
.got
.glist
; (ent
= *entp
) != NULL
; )
4459 struct got_entry
*dent
;
4461 for (dent
= edir
->elf
.got
.glist
; dent
!= NULL
; dent
= dent
->next
)
4462 if (dent
->addend
== ent
->addend
4463 && dent
->owner
== ent
->owner
4464 && dent
->tls_type
== ent
->tls_type
)
4466 dent
->got
.refcount
+= ent
->got
.refcount
;
4473 *entp
= edir
->elf
.got
.glist
;
4476 edir
->elf
.got
.glist
= eind
->elf
.got
.glist
;
4477 eind
->elf
.got
.glist
= NULL
;
4480 /* And plt entries. */
4481 move_plt_plist (eind
, edir
);
4483 if (eind
->elf
.dynindx
!= -1)
4485 if (edir
->elf
.dynindx
!= -1)
4486 _bfd_elf_strtab_delref (elf_hash_table (info
)->dynstr
,
4487 edir
->elf
.dynstr_index
);
4488 edir
->elf
.dynindx
= eind
->elf
.dynindx
;
4489 edir
->elf
.dynstr_index
= eind
->elf
.dynstr_index
;
4490 eind
->elf
.dynindx
= -1;
4491 eind
->elf
.dynstr_index
= 0;
4495 /* Find the function descriptor hash entry from the given function code
4496 hash entry FH. Link the entries via their OH fields. */
4498 static struct ppc_link_hash_entry
*
4499 lookup_fdh (struct ppc_link_hash_entry
*fh
, struct ppc_link_hash_table
*htab
)
4501 struct ppc_link_hash_entry
*fdh
= fh
->oh
;
4505 const char *fd_name
= fh
->elf
.root
.root
.string
+ 1;
4507 fdh
= (struct ppc_link_hash_entry
*)
4508 elf_link_hash_lookup (&htab
->elf
, fd_name
, FALSE
, FALSE
, FALSE
);
4512 fdh
->is_func_descriptor
= 1;
4518 return ppc_follow_link (fdh
);
4521 /* Make a fake function descriptor sym for the code sym FH. */
4523 static struct ppc_link_hash_entry
*
4524 make_fdh (struct bfd_link_info
*info
,
4525 struct ppc_link_hash_entry
*fh
)
4529 struct bfd_link_hash_entry
*bh
;
4530 struct ppc_link_hash_entry
*fdh
;
4532 abfd
= fh
->elf
.root
.u
.undef
.abfd
;
4533 newsym
= bfd_make_empty_symbol (abfd
);
4534 newsym
->name
= fh
->elf
.root
.root
.string
+ 1;
4535 newsym
->section
= bfd_und_section_ptr
;
4537 newsym
->flags
= BSF_WEAK
;
4540 if (!_bfd_generic_link_add_one_symbol (info
, abfd
, newsym
->name
,
4541 newsym
->flags
, newsym
->section
,
4542 newsym
->value
, NULL
, FALSE
, FALSE
,
4546 fdh
= (struct ppc_link_hash_entry
*) bh
;
4547 fdh
->elf
.non_elf
= 0;
4549 fdh
->is_func_descriptor
= 1;
4556 /* Fix function descriptor symbols defined in .opd sections to be
4560 ppc64_elf_add_symbol_hook (bfd
*ibfd
,
4561 struct bfd_link_info
*info
,
4562 Elf_Internal_Sym
*isym
,
4563 const char **name ATTRIBUTE_UNUSED
,
4564 flagword
*flags ATTRIBUTE_UNUSED
,
4566 bfd_vma
*value ATTRIBUTE_UNUSED
)
4568 if (ELF_ST_TYPE (isym
->st_info
) == STT_GNU_IFUNC
)
4570 if ((ibfd
->flags
& DYNAMIC
) == 0)
4571 elf_tdata (info
->output_bfd
)->has_ifunc_symbols
= TRUE
;
4573 else if (ELF_ST_TYPE (isym
->st_info
) == STT_FUNC
)
4575 else if (*sec
!= NULL
4576 && strcmp (bfd_get_section_name (ibfd
, *sec
), ".opd") == 0)
4577 isym
->st_info
= ELF_ST_INFO (ELF_ST_BIND (isym
->st_info
), STT_FUNC
);
4582 /* This function makes an old ABI object reference to ".bar" cause the
4583 inclusion of a new ABI object archive that defines "bar".
4584 NAME is a symbol defined in an archive. Return a symbol in the hash
4585 table that might be satisfied by the archive symbols. */
4587 static struct elf_link_hash_entry
*
4588 ppc64_elf_archive_symbol_lookup (bfd
*abfd
,
4589 struct bfd_link_info
*info
,
4592 struct elf_link_hash_entry
*h
;
4596 h
= _bfd_elf_archive_symbol_lookup (abfd
, info
, name
);
4598 /* Don't return this sym if it is a fake function descriptor
4599 created by add_symbol_adjust. */
4600 && !(h
->root
.type
== bfd_link_hash_undefweak
4601 && ((struct ppc_link_hash_entry
*) h
)->fake
))
4607 len
= strlen (name
);
4608 dot_name
= bfd_alloc (abfd
, len
+ 2);
4609 if (dot_name
== NULL
)
4610 return (struct elf_link_hash_entry
*) 0 - 1;
4612 memcpy (dot_name
+ 1, name
, len
+ 1);
4613 h
= _bfd_elf_archive_symbol_lookup (abfd
, info
, dot_name
);
4614 bfd_release (abfd
, dot_name
);
4618 /* This function satisfies all old ABI object references to ".bar" if a
4619 new ABI object defines "bar". Well, at least, undefined dot symbols
4620 are made weak. This stops later archive searches from including an
4621 object if we already have a function descriptor definition. It also
4622 prevents the linker complaining about undefined symbols.
4623 We also check and correct mismatched symbol visibility here. The
4624 most restrictive visibility of the function descriptor and the
4625 function entry symbol is used. */
4628 add_symbol_adjust (struct ppc_link_hash_entry
*eh
, struct bfd_link_info
*info
)
4630 struct ppc_link_hash_table
*htab
;
4631 struct ppc_link_hash_entry
*fdh
;
4633 if (eh
->elf
.root
.type
== bfd_link_hash_indirect
)
4636 if (eh
->elf
.root
.type
== bfd_link_hash_warning
)
4637 eh
= (struct ppc_link_hash_entry
*) eh
->elf
.root
.u
.i
.link
;
4639 if (eh
->elf
.root
.root
.string
[0] != '.')
4642 htab
= ppc_hash_table (info
);
4646 fdh
= lookup_fdh (eh
, htab
);
4649 if (!info
->relocatable
4650 && (eh
->elf
.root
.type
== bfd_link_hash_undefined
4651 || eh
->elf
.root
.type
== bfd_link_hash_undefweak
)
4652 && eh
->elf
.ref_regular
)
4654 /* Make an undefweak function descriptor sym, which is enough to
4655 pull in an --as-needed shared lib, but won't cause link
4656 errors. Archives are handled elsewhere. */
4657 fdh
= make_fdh (info
, eh
);
4660 fdh
->elf
.ref_regular
= 1;
4665 unsigned entry_vis
= ELF_ST_VISIBILITY (eh
->elf
.other
) - 1;
4666 unsigned descr_vis
= ELF_ST_VISIBILITY (fdh
->elf
.other
) - 1;
4667 if (entry_vis
< descr_vis
)
4668 fdh
->elf
.other
+= entry_vis
- descr_vis
;
4669 else if (entry_vis
> descr_vis
)
4670 eh
->elf
.other
+= descr_vis
- entry_vis
;
4672 if ((fdh
->elf
.root
.type
== bfd_link_hash_defined
4673 || fdh
->elf
.root
.type
== bfd_link_hash_defweak
)
4674 && eh
->elf
.root
.type
== bfd_link_hash_undefined
)
4676 eh
->elf
.root
.type
= bfd_link_hash_undefweak
;
4677 eh
->was_undefined
= 1;
4678 htab
->twiddled_syms
= 1;
4685 /* Process list of dot-symbols we made in link_hash_newfunc. */
4688 ppc64_elf_process_dot_syms (bfd
*ibfd
, struct bfd_link_info
*info
)
4690 struct ppc_link_hash_table
*htab
;
4691 struct ppc_link_hash_entry
**p
, *eh
;
4693 if (!is_ppc64_elf (info
->output_bfd
))
4695 htab
= ppc_hash_table (info
);
4699 if (is_ppc64_elf (ibfd
))
4701 p
= &htab
->dot_syms
;
4702 while ((eh
= *p
) != NULL
)
4705 if (!add_symbol_adjust (eh
, info
))
4707 p
= &eh
->u
.next_dot_sym
;
4711 /* Clear the list for non-ppc64 input files. */
4712 p
= &htab
->dot_syms
;
4713 while ((eh
= *p
) != NULL
)
4716 p
= &eh
->u
.next_dot_sym
;
4719 /* We need to fix the undefs list for any syms we have twiddled to
4721 if (htab
->twiddled_syms
)
4723 bfd_link_repair_undef_list (&htab
->elf
.root
);
4724 htab
->twiddled_syms
= 0;
4729 /* Undo hash table changes when an --as-needed input file is determined
4730 not to be needed. */
4733 ppc64_elf_as_needed_cleanup (bfd
*ibfd ATTRIBUTE_UNUSED
,
4734 struct bfd_link_info
*info
)
4736 struct ppc_link_hash_table
*htab
= ppc_hash_table (info
);
4741 htab
->dot_syms
= NULL
;
4745 static struct plt_entry
**
4746 update_local_sym_info (bfd
*abfd
, Elf_Internal_Shdr
*symtab_hdr
,
4747 unsigned long r_symndx
, bfd_vma r_addend
, int tls_type
)
4749 struct got_entry
**local_got_ents
= elf_local_got_ents (abfd
);
4750 struct plt_entry
**local_plt
;
4751 unsigned char *local_got_tls_masks
;
4753 if (local_got_ents
== NULL
)
4755 bfd_size_type size
= symtab_hdr
->sh_info
;
4757 size
*= (sizeof (*local_got_ents
)
4758 + sizeof (*local_plt
)
4759 + sizeof (*local_got_tls_masks
));
4760 local_got_ents
= bfd_zalloc (abfd
, size
);
4761 if (local_got_ents
== NULL
)
4763 elf_local_got_ents (abfd
) = local_got_ents
;
4766 if ((tls_type
& (PLT_IFUNC
| TLS_EXPLICIT
)) == 0)
4768 struct got_entry
*ent
;
4770 for (ent
= local_got_ents
[r_symndx
]; ent
!= NULL
; ent
= ent
->next
)
4771 if (ent
->addend
== r_addend
4772 && ent
->owner
== abfd
4773 && ent
->tls_type
== tls_type
)
4777 bfd_size_type amt
= sizeof (*ent
);
4778 ent
= bfd_alloc (abfd
, amt
);
4781 ent
->next
= local_got_ents
[r_symndx
];
4782 ent
->addend
= r_addend
;
4784 ent
->tls_type
= tls_type
;
4785 ent
->is_indirect
= FALSE
;
4786 ent
->got
.refcount
= 0;
4787 local_got_ents
[r_symndx
] = ent
;
4789 ent
->got
.refcount
+= 1;
4792 local_plt
= (struct plt_entry
**) (local_got_ents
+ symtab_hdr
->sh_info
);
4793 local_got_tls_masks
= (unsigned char *) (local_plt
+ symtab_hdr
->sh_info
);
4794 local_got_tls_masks
[r_symndx
] |= tls_type
;
4796 return local_plt
+ r_symndx
;
4800 update_plt_info (bfd
*abfd
, struct plt_entry
**plist
, bfd_vma addend
)
4802 struct plt_entry
*ent
;
4804 for (ent
= *plist
; ent
!= NULL
; ent
= ent
->next
)
4805 if (ent
->addend
== addend
)
4809 bfd_size_type amt
= sizeof (*ent
);
4810 ent
= bfd_alloc (abfd
, amt
);
4814 ent
->addend
= addend
;
4815 ent
->plt
.refcount
= 0;
4818 ent
->plt
.refcount
+= 1;
4823 is_branch_reloc (enum elf_ppc64_reloc_type r_type
)
4825 return (r_type
== R_PPC64_REL24
4826 || r_type
== R_PPC64_REL14
4827 || r_type
== R_PPC64_REL14_BRTAKEN
4828 || r_type
== R_PPC64_REL14_BRNTAKEN
4829 || r_type
== R_PPC64_ADDR24
4830 || r_type
== R_PPC64_ADDR14
4831 || r_type
== R_PPC64_ADDR14_BRTAKEN
4832 || r_type
== R_PPC64_ADDR14_BRNTAKEN
);
4835 /* Look through the relocs for a section during the first phase, and
4836 calculate needed space in the global offset table, procedure
4837 linkage table, and dynamic reloc sections. */
4840 ppc64_elf_check_relocs (bfd
*abfd
, struct bfd_link_info
*info
,
4841 asection
*sec
, const Elf_Internal_Rela
*relocs
)
4843 struct ppc_link_hash_table
*htab
;
4844 Elf_Internal_Shdr
*symtab_hdr
;
4845 struct elf_link_hash_entry
**sym_hashes
, **sym_hashes_end
;
4846 const Elf_Internal_Rela
*rel
;
4847 const Elf_Internal_Rela
*rel_end
;
4849 asection
**opd_sym_map
;
4850 struct elf_link_hash_entry
*tga
, *dottga
;
4852 if (info
->relocatable
)
4855 /* Don't do anything special with non-loaded, non-alloced sections.
4856 In particular, any relocs in such sections should not affect GOT
4857 and PLT reference counting (ie. we don't allow them to create GOT
4858 or PLT entries), there's no possibility or desire to optimize TLS
4859 relocs, and there's not much point in propagating relocs to shared
4860 libs that the dynamic linker won't relocate. */
4861 if ((sec
->flags
& SEC_ALLOC
) == 0)
4864 BFD_ASSERT (is_ppc64_elf (abfd
));
4866 htab
= ppc_hash_table (info
);
4870 tga
= elf_link_hash_lookup (&htab
->elf
, "__tls_get_addr",
4871 FALSE
, FALSE
, TRUE
);
4872 dottga
= elf_link_hash_lookup (&htab
->elf
, ".__tls_get_addr",
4873 FALSE
, FALSE
, TRUE
);
4874 symtab_hdr
= &elf_symtab_hdr (abfd
);
4876 sym_hashes
= elf_sym_hashes (abfd
);
4877 sym_hashes_end
= (sym_hashes
4878 + symtab_hdr
->sh_size
/ sizeof (Elf64_External_Sym
)
4879 - symtab_hdr
->sh_info
);
4883 if (strcmp (bfd_get_section_name (abfd
, sec
), ".opd") == 0)
4885 /* Garbage collection needs some extra help with .opd sections.
4886 We don't want to necessarily keep everything referenced by
4887 relocs in .opd, as that would keep all functions. Instead,
4888 if we reference an .opd symbol (a function descriptor), we
4889 want to keep the function code symbol's section. This is
4890 easy for global symbols, but for local syms we need to keep
4891 information about the associated function section. */
4894 amt
= sec
->size
* sizeof (*opd_sym_map
) / 8;
4895 opd_sym_map
= bfd_zalloc (abfd
, amt
);
4896 if (opd_sym_map
== NULL
)
4898 ppc64_elf_section_data (sec
)->u
.opd
.func_sec
= opd_sym_map
;
4899 BFD_ASSERT (ppc64_elf_section_data (sec
)->sec_type
== sec_normal
);
4900 ppc64_elf_section_data (sec
)->sec_type
= sec_opd
;
4903 if (htab
->sfpr
== NULL
4904 && !create_linkage_sections (htab
->elf
.dynobj
, info
))
4907 rel_end
= relocs
+ sec
->reloc_count
;
4908 for (rel
= relocs
; rel
< rel_end
; rel
++)
4910 unsigned long r_symndx
;
4911 struct elf_link_hash_entry
*h
;
4912 enum elf_ppc64_reloc_type r_type
;
4914 struct _ppc64_elf_section_data
*ppc64_sec
;
4915 struct plt_entry
**ifunc
;
4917 r_symndx
= ELF64_R_SYM (rel
->r_info
);
4918 if (r_symndx
< symtab_hdr
->sh_info
)
4922 h
= sym_hashes
[r_symndx
- symtab_hdr
->sh_info
];
4923 h
= elf_follow_link (h
);
4930 if (h
->type
== STT_GNU_IFUNC
)
4933 ifunc
= &h
->plt
.plist
;
4938 Elf_Internal_Sym
*isym
= bfd_sym_from_r_symndx (&htab
->sym_cache
,
4943 if (ELF_ST_TYPE (isym
->st_info
) == STT_GNU_IFUNC
)
4945 ifunc
= update_local_sym_info (abfd
, symtab_hdr
, r_symndx
,
4946 rel
->r_addend
, PLT_IFUNC
);
4951 r_type
= ELF64_R_TYPE (rel
->r_info
);
4952 if (is_branch_reloc (r_type
))
4954 if (h
!= NULL
&& (h
== tga
|| h
== dottga
))
4957 && (ELF64_R_TYPE (rel
[-1].r_info
) == R_PPC64_TLSGD
4958 || ELF64_R_TYPE (rel
[-1].r_info
) == R_PPC64_TLSLD
))
4959 /* We have a new-style __tls_get_addr call with a marker
4963 /* Mark this section as having an old-style call. */
4964 sec
->has_tls_get_addr_call
= 1;
4967 /* STT_GNU_IFUNC symbols must have a PLT entry. */
4969 && !update_plt_info (abfd
, ifunc
, rel
->r_addend
))
4977 /* These special tls relocs tie a call to __tls_get_addr with
4978 its parameter symbol. */
4981 case R_PPC64_GOT_TLSLD16
:
4982 case R_PPC64_GOT_TLSLD16_LO
:
4983 case R_PPC64_GOT_TLSLD16_HI
:
4984 case R_PPC64_GOT_TLSLD16_HA
:
4985 tls_type
= TLS_TLS
| TLS_LD
;
4988 case R_PPC64_GOT_TLSGD16
:
4989 case R_PPC64_GOT_TLSGD16_LO
:
4990 case R_PPC64_GOT_TLSGD16_HI
:
4991 case R_PPC64_GOT_TLSGD16_HA
:
4992 tls_type
= TLS_TLS
| TLS_GD
;
4995 case R_PPC64_GOT_TPREL16_DS
:
4996 case R_PPC64_GOT_TPREL16_LO_DS
:
4997 case R_PPC64_GOT_TPREL16_HI
:
4998 case R_PPC64_GOT_TPREL16_HA
:
4999 if (!info
->executable
)
5000 info
->flags
|= DF_STATIC_TLS
;
5001 tls_type
= TLS_TLS
| TLS_TPREL
;
5004 case R_PPC64_GOT_DTPREL16_DS
:
5005 case R_PPC64_GOT_DTPREL16_LO_DS
:
5006 case R_PPC64_GOT_DTPREL16_HI
:
5007 case R_PPC64_GOT_DTPREL16_HA
:
5008 tls_type
= TLS_TLS
| TLS_DTPREL
;
5010 sec
->has_tls_reloc
= 1;
5014 case R_PPC64_GOT16_DS
:
5015 case R_PPC64_GOT16_HA
:
5016 case R_PPC64_GOT16_HI
:
5017 case R_PPC64_GOT16_LO
:
5018 case R_PPC64_GOT16_LO_DS
:
5019 /* This symbol requires a global offset table entry. */
5020 sec
->has_toc_reloc
= 1;
5021 if (r_type
== R_PPC64_GOT_TLSLD16
5022 || r_type
== R_PPC64_GOT_TLSGD16
5023 || r_type
== R_PPC64_GOT_TPREL16_DS
5024 || r_type
== R_PPC64_GOT_DTPREL16_DS
5025 || r_type
== R_PPC64_GOT16
5026 || r_type
== R_PPC64_GOT16_DS
)
5028 htab
->do_multi_toc
= 1;
5029 ppc64_elf_tdata (abfd
)->has_small_toc_reloc
= 1;
5032 if (ppc64_elf_tdata (abfd
)->got
== NULL
5033 && !create_got_section (abfd
, info
))
5038 struct ppc_link_hash_entry
*eh
;
5039 struct got_entry
*ent
;
5041 eh
= (struct ppc_link_hash_entry
*) h
;
5042 for (ent
= eh
->elf
.got
.glist
; ent
!= NULL
; ent
= ent
->next
)
5043 if (ent
->addend
== rel
->r_addend
5044 && ent
->owner
== abfd
5045 && ent
->tls_type
== tls_type
)
5049 bfd_size_type amt
= sizeof (*ent
);
5050 ent
= bfd_alloc (abfd
, amt
);
5053 ent
->next
= eh
->elf
.got
.glist
;
5054 ent
->addend
= rel
->r_addend
;
5056 ent
->tls_type
= tls_type
;
5057 ent
->is_indirect
= FALSE
;
5058 ent
->got
.refcount
= 0;
5059 eh
->elf
.got
.glist
= ent
;
5061 ent
->got
.refcount
+= 1;
5062 eh
->tls_mask
|= tls_type
;
5065 /* This is a global offset table entry for a local symbol. */
5066 if (!update_local_sym_info (abfd
, symtab_hdr
, r_symndx
,
5067 rel
->r_addend
, tls_type
))
5071 case R_PPC64_PLT16_HA
:
5072 case R_PPC64_PLT16_HI
:
5073 case R_PPC64_PLT16_LO
:
5076 /* This symbol requires a procedure linkage table entry. We
5077 actually build the entry in adjust_dynamic_symbol,
5078 because this might be a case of linking PIC code without
5079 linking in any dynamic objects, in which case we don't
5080 need to generate a procedure linkage table after all. */
5083 /* It does not make sense to have a procedure linkage
5084 table entry for a local symbol. */
5085 bfd_set_error (bfd_error_bad_value
);
5090 if (!update_plt_info (abfd
, &h
->plt
.plist
, rel
->r_addend
))
5093 if (h
->root
.root
.string
[0] == '.'
5094 && h
->root
.root
.string
[1] != '\0')
5095 ((struct ppc_link_hash_entry
*) h
)->is_func
= 1;
5099 /* The following relocations don't need to propagate the
5100 relocation if linking a shared object since they are
5101 section relative. */
5102 case R_PPC64_SECTOFF
:
5103 case R_PPC64_SECTOFF_LO
:
5104 case R_PPC64_SECTOFF_HI
:
5105 case R_PPC64_SECTOFF_HA
:
5106 case R_PPC64_SECTOFF_DS
:
5107 case R_PPC64_SECTOFF_LO_DS
:
5108 case R_PPC64_DTPREL16
:
5109 case R_PPC64_DTPREL16_LO
:
5110 case R_PPC64_DTPREL16_HI
:
5111 case R_PPC64_DTPREL16_HA
:
5112 case R_PPC64_DTPREL16_DS
:
5113 case R_PPC64_DTPREL16_LO_DS
:
5114 case R_PPC64_DTPREL16_HIGHER
:
5115 case R_PPC64_DTPREL16_HIGHERA
:
5116 case R_PPC64_DTPREL16_HIGHEST
:
5117 case R_PPC64_DTPREL16_HIGHESTA
:
5122 case R_PPC64_REL16_LO
:
5123 case R_PPC64_REL16_HI
:
5124 case R_PPC64_REL16_HA
:
5128 case R_PPC64_TOC16_DS
:
5129 htab
->do_multi_toc
= 1;
5130 ppc64_elf_tdata (abfd
)->has_small_toc_reloc
= 1;
5131 case R_PPC64_TOC16_LO
:
5132 case R_PPC64_TOC16_HI
:
5133 case R_PPC64_TOC16_HA
:
5134 case R_PPC64_TOC16_LO_DS
:
5135 sec
->has_toc_reloc
= 1;
5138 /* This relocation describes the C++ object vtable hierarchy.
5139 Reconstruct it for later use during GC. */
5140 case R_PPC64_GNU_VTINHERIT
:
5141 if (!bfd_elf_gc_record_vtinherit (abfd
, sec
, h
, rel
->r_offset
))
5145 /* This relocation describes which C++ vtable entries are actually
5146 used. Record for later use during GC. */
5147 case R_PPC64_GNU_VTENTRY
:
5148 BFD_ASSERT (h
!= NULL
);
5150 && !bfd_elf_gc_record_vtentry (abfd
, sec
, h
, rel
->r_addend
))
5155 case R_PPC64_REL14_BRTAKEN
:
5156 case R_PPC64_REL14_BRNTAKEN
:
5158 asection
*dest
= NULL
;
5160 /* Heuristic: If jumping outside our section, chances are
5161 we are going to need a stub. */
5164 /* If the sym is weak it may be overridden later, so
5165 don't assume we know where a weak sym lives. */
5166 if (h
->root
.type
== bfd_link_hash_defined
)
5167 dest
= h
->root
.u
.def
.section
;
5171 Elf_Internal_Sym
*isym
;
5173 isym
= bfd_sym_from_r_symndx (&htab
->sym_cache
,
5178 dest
= bfd_section_from_elf_index (abfd
, isym
->st_shndx
);
5182 ppc64_elf_section_data (sec
)->has_14bit_branch
= 1;
5187 if (h
!= NULL
&& ifunc
== NULL
)
5189 /* We may need a .plt entry if the function this reloc
5190 refers to is in a shared lib. */
5191 if (!update_plt_info (abfd
, &h
->plt
.plist
, rel
->r_addend
))
5194 if (h
->root
.root
.string
[0] == '.'
5195 && h
->root
.root
.string
[1] != '\0')
5196 ((struct ppc_link_hash_entry
*) h
)->is_func
= 1;
5197 if (h
== tga
|| h
== dottga
)
5198 sec
->has_tls_reloc
= 1;
5202 case R_PPC64_TPREL64
:
5203 tls_type
= TLS_EXPLICIT
| TLS_TLS
| TLS_TPREL
;
5204 if (!info
->executable
)
5205 info
->flags
|= DF_STATIC_TLS
;
5208 case R_PPC64_DTPMOD64
:
5209 if (rel
+ 1 < rel_end
5210 && rel
[1].r_info
== ELF64_R_INFO (r_symndx
, R_PPC64_DTPREL64
)
5211 && rel
[1].r_offset
== rel
->r_offset
+ 8)
5212 tls_type
= TLS_EXPLICIT
| TLS_TLS
| TLS_GD
;
5214 tls_type
= TLS_EXPLICIT
| TLS_TLS
| TLS_LD
;
5217 case R_PPC64_DTPREL64
:
5218 tls_type
= TLS_EXPLICIT
| TLS_TLS
| TLS_DTPREL
;
5220 && rel
[-1].r_info
== ELF64_R_INFO (r_symndx
, R_PPC64_DTPMOD64
)
5221 && rel
[-1].r_offset
== rel
->r_offset
- 8)
5222 /* This is the second reloc of a dtpmod, dtprel pair.
5223 Don't mark with TLS_DTPREL. */
5227 sec
->has_tls_reloc
= 1;
5230 struct ppc_link_hash_entry
*eh
;
5231 eh
= (struct ppc_link_hash_entry
*) h
;
5232 eh
->tls_mask
|= tls_type
;
5235 if (!update_local_sym_info (abfd
, symtab_hdr
, r_symndx
,
5236 rel
->r_addend
, tls_type
))
5239 ppc64_sec
= ppc64_elf_section_data (sec
);
5240 if (ppc64_sec
->sec_type
!= sec_toc
)
5244 /* One extra to simplify get_tls_mask. */
5245 amt
= sec
->size
* sizeof (unsigned) / 8 + sizeof (unsigned);
5246 ppc64_sec
->u
.toc
.symndx
= bfd_zalloc (abfd
, amt
);
5247 if (ppc64_sec
->u
.toc
.symndx
== NULL
)
5249 amt
= sec
->size
* sizeof (bfd_vma
) / 8;
5250 ppc64_sec
->u
.toc
.add
= bfd_zalloc (abfd
, amt
);
5251 if (ppc64_sec
->u
.toc
.add
== NULL
)
5253 BFD_ASSERT (ppc64_sec
->sec_type
== sec_normal
);
5254 ppc64_sec
->sec_type
= sec_toc
;
5256 BFD_ASSERT (rel
->r_offset
% 8 == 0);
5257 ppc64_sec
->u
.toc
.symndx
[rel
->r_offset
/ 8] = r_symndx
;
5258 ppc64_sec
->u
.toc
.add
[rel
->r_offset
/ 8] = rel
->r_addend
;
5260 /* Mark the second slot of a GD or LD entry.
5261 -1 to indicate GD and -2 to indicate LD. */
5262 if (tls_type
== (TLS_EXPLICIT
| TLS_TLS
| TLS_GD
))
5263 ppc64_sec
->u
.toc
.symndx
[rel
->r_offset
/ 8 + 1] = -1;
5264 else if (tls_type
== (TLS_EXPLICIT
| TLS_TLS
| TLS_LD
))
5265 ppc64_sec
->u
.toc
.symndx
[rel
->r_offset
/ 8 + 1] = -2;
5268 case R_PPC64_TPREL16
:
5269 case R_PPC64_TPREL16_LO
:
5270 case R_PPC64_TPREL16_HI
:
5271 case R_PPC64_TPREL16_HA
:
5272 case R_PPC64_TPREL16_DS
:
5273 case R_PPC64_TPREL16_LO_DS
:
5274 case R_PPC64_TPREL16_HIGHER
:
5275 case R_PPC64_TPREL16_HIGHERA
:
5276 case R_PPC64_TPREL16_HIGHEST
:
5277 case R_PPC64_TPREL16_HIGHESTA
:
5280 if (!info
->executable
)
5281 info
->flags
|= DF_STATIC_TLS
;
5286 case R_PPC64_ADDR64
:
5287 if (opd_sym_map
!= NULL
5288 && rel
+ 1 < rel_end
5289 && ELF64_R_TYPE ((rel
+ 1)->r_info
) == R_PPC64_TOC
)
5293 if (h
->root
.root
.string
[0] == '.'
5294 && h
->root
.root
.string
[1] != 0
5295 && lookup_fdh ((struct ppc_link_hash_entry
*) h
, htab
))
5298 ((struct ppc_link_hash_entry
*) h
)->is_func
= 1;
5303 Elf_Internal_Sym
*isym
;
5305 isym
= bfd_sym_from_r_symndx (&htab
->sym_cache
,
5310 s
= bfd_section_from_elf_index (abfd
, isym
->st_shndx
);
5311 if (s
!= NULL
&& s
!= sec
)
5312 opd_sym_map
[rel
->r_offset
/ 8] = s
;
5320 case R_PPC64_ADDR14
:
5321 case R_PPC64_ADDR14_BRNTAKEN
:
5322 case R_PPC64_ADDR14_BRTAKEN
:
5323 case R_PPC64_ADDR16
:
5324 case R_PPC64_ADDR16_DS
:
5325 case R_PPC64_ADDR16_HA
:
5326 case R_PPC64_ADDR16_HI
:
5327 case R_PPC64_ADDR16_HIGHER
:
5328 case R_PPC64_ADDR16_HIGHERA
:
5329 case R_PPC64_ADDR16_HIGHEST
:
5330 case R_PPC64_ADDR16_HIGHESTA
:
5331 case R_PPC64_ADDR16_LO
:
5332 case R_PPC64_ADDR16_LO_DS
:
5333 case R_PPC64_ADDR24
:
5334 case R_PPC64_ADDR32
:
5335 case R_PPC64_UADDR16
:
5336 case R_PPC64_UADDR32
:
5337 case R_PPC64_UADDR64
:
5339 if (h
!= NULL
&& !info
->shared
)
5340 /* We may need a copy reloc. */
5343 /* Don't propagate .opd relocs. */
5344 if (NO_OPD_RELOCS
&& opd_sym_map
!= NULL
)
5347 /* If we are creating a shared library, and this is a reloc
5348 against a global symbol, or a non PC relative reloc
5349 against a local symbol, then we need to copy the reloc
5350 into the shared library. However, if we are linking with
5351 -Bsymbolic, we do not need to copy a reloc against a
5352 global symbol which is defined in an object we are
5353 including in the link (i.e., DEF_REGULAR is set). At
5354 this point we have not seen all the input files, so it is
5355 possible that DEF_REGULAR is not set now but will be set
5356 later (it is never cleared). In case of a weak definition,
5357 DEF_REGULAR may be cleared later by a strong definition in
5358 a shared library. We account for that possibility below by
5359 storing information in the dyn_relocs field of the hash
5360 table entry. A similar situation occurs when creating
5361 shared libraries and symbol visibility changes render the
5364 If on the other hand, we are creating an executable, we
5365 may need to keep relocations for symbols satisfied by a
5366 dynamic library if we manage to avoid copy relocs for the
5370 && (must_be_dyn_reloc (info
, r_type
)
5372 && (! info
->symbolic
5373 || h
->root
.type
== bfd_link_hash_defweak
5374 || !h
->def_regular
))))
5375 || (ELIMINATE_COPY_RELOCS
5378 && (h
->root
.type
== bfd_link_hash_defweak
5379 || !h
->def_regular
))
5383 struct ppc_dyn_relocs
*p
;
5384 struct ppc_dyn_relocs
**head
;
5386 /* We must copy these reloc types into the output file.
5387 Create a reloc section in dynobj and make room for
5391 sreloc
= _bfd_elf_make_dynamic_reloc_section
5392 (sec
, htab
->elf
.dynobj
, 3, abfd
, /*rela?*/ TRUE
);
5398 /* If this is a global symbol, we count the number of
5399 relocations we need for this symbol. */
5402 head
= &((struct ppc_link_hash_entry
*) h
)->dyn_relocs
;
5406 /* Track dynamic relocs needed for local syms too.
5407 We really need local syms available to do this
5411 Elf_Internal_Sym
*isym
;
5413 isym
= bfd_sym_from_r_symndx (&htab
->sym_cache
,
5418 s
= bfd_section_from_elf_index (abfd
, isym
->st_shndx
);
5422 vpp
= &elf_section_data (s
)->local_dynrel
;
5423 head
= (struct ppc_dyn_relocs
**) vpp
;
5427 if (p
== NULL
|| p
->sec
!= sec
)
5429 p
= bfd_alloc (htab
->elf
.dynobj
, sizeof *p
);
5440 if (!must_be_dyn_reloc (info
, r_type
))
5453 /* OFFSET in OPD_SEC specifies a function descriptor. Return the address
5454 of the code entry point, and its section. */
5457 opd_entry_value (asection
*opd_sec
,
5459 asection
**code_sec
,
5462 bfd
*opd_bfd
= opd_sec
->owner
;
5463 Elf_Internal_Rela
*relocs
;
5464 Elf_Internal_Rela
*lo
, *hi
, *look
;
5467 /* No relocs implies we are linking a --just-symbols object. */
5468 if (opd_sec
->reloc_count
== 0)
5470 if (!bfd_get_section_contents (opd_bfd
, opd_sec
, &val
, offset
, 8))
5471 return (bfd_vma
) -1;
5473 if (code_sec
!= NULL
)
5475 asection
*sec
, *likely
= NULL
;
5476 for (sec
= opd_bfd
->sections
; sec
!= NULL
; sec
= sec
->next
)
5478 && (sec
->flags
& SEC_LOAD
) != 0
5479 && (sec
->flags
& SEC_ALLOC
) != 0)
5484 if (code_off
!= NULL
)
5485 *code_off
= val
- likely
->vma
;
5491 BFD_ASSERT (is_ppc64_elf (opd_bfd
));
5493 relocs
= ppc64_elf_tdata (opd_bfd
)->opd_relocs
;
5495 relocs
= _bfd_elf_link_read_relocs (opd_bfd
, opd_sec
, NULL
, NULL
, TRUE
);
5497 /* Go find the opd reloc at the sym address. */
5499 BFD_ASSERT (lo
!= NULL
);
5500 hi
= lo
+ opd_sec
->reloc_count
- 1; /* ignore last reloc */
5504 look
= lo
+ (hi
- lo
) / 2;
5505 if (look
->r_offset
< offset
)
5507 else if (look
->r_offset
> offset
)
5511 Elf_Internal_Shdr
*symtab_hdr
= &elf_symtab_hdr (opd_bfd
);
5513 if (ELF64_R_TYPE (look
->r_info
) == R_PPC64_ADDR64
5514 && ELF64_R_TYPE ((look
+ 1)->r_info
) == R_PPC64_TOC
)
5516 unsigned long symndx
= ELF64_R_SYM (look
->r_info
);
5519 if (symndx
< symtab_hdr
->sh_info
)
5521 Elf_Internal_Sym
*sym
;
5523 sym
= (Elf_Internal_Sym
*) symtab_hdr
->contents
;
5526 sym
= bfd_elf_get_elf_syms (opd_bfd
, symtab_hdr
,
5527 symtab_hdr
->sh_info
,
5528 0, NULL
, NULL
, NULL
);
5531 symtab_hdr
->contents
= (bfd_byte
*) sym
;
5535 val
= sym
->st_value
;
5536 sec
= bfd_section_from_elf_index (opd_bfd
, sym
->st_shndx
);
5537 BFD_ASSERT ((sec
->flags
& SEC_MERGE
) == 0);
5541 struct elf_link_hash_entry
**sym_hashes
;
5542 struct elf_link_hash_entry
*rh
;
5544 sym_hashes
= elf_sym_hashes (opd_bfd
);
5545 rh
= sym_hashes
[symndx
- symtab_hdr
->sh_info
];
5546 rh
= elf_follow_link (rh
);
5547 BFD_ASSERT (rh
->root
.type
== bfd_link_hash_defined
5548 || rh
->root
.type
== bfd_link_hash_defweak
);
5549 val
= rh
->root
.u
.def
.value
;
5550 sec
= rh
->root
.u
.def
.section
;
5552 val
+= look
->r_addend
;
5553 if (code_off
!= NULL
)
5555 if (code_sec
!= NULL
)
5557 if (sec
!= NULL
&& sec
->output_section
!= NULL
)
5558 val
+= sec
->output_section
->vma
+ sec
->output_offset
;
5567 /* If FDH is a function descriptor symbol, return the associated code
5568 entry symbol if it is defined. Return NULL otherwise. */
5570 static struct ppc_link_hash_entry
*
5571 defined_code_entry (struct ppc_link_hash_entry
*fdh
)
5573 if (fdh
->is_func_descriptor
)
5575 struct ppc_link_hash_entry
*fh
= ppc_follow_link (fdh
->oh
);
5576 if (fh
->elf
.root
.type
== bfd_link_hash_defined
5577 || fh
->elf
.root
.type
== bfd_link_hash_defweak
)
5583 /* If FH is a function code entry symbol, return the associated
5584 function descriptor symbol if it is defined. Return NULL otherwise. */
5586 static struct ppc_link_hash_entry
*
5587 defined_func_desc (struct ppc_link_hash_entry
*fh
)
5590 && fh
->oh
->is_func_descriptor
)
5592 struct ppc_link_hash_entry
*fdh
= ppc_follow_link (fh
->oh
);
5593 if (fdh
->elf
.root
.type
== bfd_link_hash_defined
5594 || fdh
->elf
.root
.type
== bfd_link_hash_defweak
)
5600 /* Mark all our entry sym sections, both opd and code section. */
5603 ppc64_elf_gc_keep (struct bfd_link_info
*info
)
5605 struct ppc_link_hash_table
*htab
= ppc_hash_table (info
);
5606 struct bfd_sym_chain
*sym
;
5611 for (sym
= info
->gc_sym_list
; sym
!= NULL
; sym
= sym
->next
)
5613 struct ppc_link_hash_entry
*eh
, *fh
;
5616 eh
= (struct ppc_link_hash_entry
*)
5617 elf_link_hash_lookup (&htab
->elf
, sym
->name
, FALSE
, FALSE
, TRUE
);
5620 if (eh
->elf
.root
.type
!= bfd_link_hash_defined
5621 && eh
->elf
.root
.type
!= bfd_link_hash_defweak
)
5624 fh
= defined_code_entry (eh
);
5627 sec
= fh
->elf
.root
.u
.def
.section
;
5628 sec
->flags
|= SEC_KEEP
;
5630 else if (get_opd_info (eh
->elf
.root
.u
.def
.section
) != NULL
5631 && opd_entry_value (eh
->elf
.root
.u
.def
.section
,
5632 eh
->elf
.root
.u
.def
.value
,
5633 &sec
, NULL
) != (bfd_vma
) -1)
5634 sec
->flags
|= SEC_KEEP
;
5636 sec
= eh
->elf
.root
.u
.def
.section
;
5637 sec
->flags
|= SEC_KEEP
;
5641 /* Mark sections containing dynamically referenced symbols. When
5642 building shared libraries, we must assume that any visible symbol is
5646 ppc64_elf_gc_mark_dynamic_ref (struct elf_link_hash_entry
*h
, void *inf
)
5648 struct bfd_link_info
*info
= (struct bfd_link_info
*) inf
;
5649 struct ppc_link_hash_entry
*eh
= (struct ppc_link_hash_entry
*) h
;
5650 struct ppc_link_hash_entry
*fdh
;
5652 if (eh
->elf
.root
.type
== bfd_link_hash_warning
)
5653 eh
= (struct ppc_link_hash_entry
*) eh
->elf
.root
.u
.i
.link
;
5655 /* Dynamic linking info is on the func descriptor sym. */
5656 fdh
= defined_func_desc (eh
);
5660 if ((eh
->elf
.root
.type
== bfd_link_hash_defined
5661 || eh
->elf
.root
.type
== bfd_link_hash_defweak
)
5662 && (eh
->elf
.ref_dynamic
5663 || (!info
->executable
5664 && eh
->elf
.def_regular
5665 && ELF_ST_VISIBILITY (eh
->elf
.other
) != STV_INTERNAL
5666 && ELF_ST_VISIBILITY (eh
->elf
.other
) != STV_HIDDEN
)))
5669 struct ppc_link_hash_entry
*fh
;
5671 eh
->elf
.root
.u
.def
.section
->flags
|= SEC_KEEP
;
5673 /* Function descriptor syms cause the associated
5674 function code sym section to be marked. */
5675 fh
= defined_code_entry (eh
);
5678 code_sec
= fh
->elf
.root
.u
.def
.section
;
5679 code_sec
->flags
|= SEC_KEEP
;
5681 else if (get_opd_info (eh
->elf
.root
.u
.def
.section
) != NULL
5682 && opd_entry_value (eh
->elf
.root
.u
.def
.section
,
5683 eh
->elf
.root
.u
.def
.value
,
5684 &code_sec
, NULL
) != (bfd_vma
) -1)
5685 code_sec
->flags
|= SEC_KEEP
;
5691 /* Return the section that should be marked against GC for a given
5695 ppc64_elf_gc_mark_hook (asection
*sec
,
5696 struct bfd_link_info
*info
,
5697 Elf_Internal_Rela
*rel
,
5698 struct elf_link_hash_entry
*h
,
5699 Elf_Internal_Sym
*sym
)
5703 /* Syms return NULL if we're marking .opd, so we avoid marking all
5704 function sections, as all functions are referenced in .opd. */
5706 if (get_opd_info (sec
) != NULL
)
5711 enum elf_ppc64_reloc_type r_type
;
5712 struct ppc_link_hash_entry
*eh
, *fh
, *fdh
;
5714 r_type
= ELF64_R_TYPE (rel
->r_info
);
5717 case R_PPC64_GNU_VTINHERIT
:
5718 case R_PPC64_GNU_VTENTRY
:
5722 switch (h
->root
.type
)
5724 case bfd_link_hash_defined
:
5725 case bfd_link_hash_defweak
:
5726 eh
= (struct ppc_link_hash_entry
*) h
;
5727 fdh
= defined_func_desc (eh
);
5731 /* Function descriptor syms cause the associated
5732 function code sym section to be marked. */
5733 fh
= defined_code_entry (eh
);
5736 /* They also mark their opd section. */
5737 eh
->elf
.root
.u
.def
.section
->gc_mark
= 1;
5739 rsec
= fh
->elf
.root
.u
.def
.section
;
5741 else if (get_opd_info (eh
->elf
.root
.u
.def
.section
) != NULL
5742 && opd_entry_value (eh
->elf
.root
.u
.def
.section
,
5743 eh
->elf
.root
.u
.def
.value
,
5744 &rsec
, NULL
) != (bfd_vma
) -1)
5745 eh
->elf
.root
.u
.def
.section
->gc_mark
= 1;
5747 rsec
= h
->root
.u
.def
.section
;
5750 case bfd_link_hash_common
:
5751 rsec
= h
->root
.u
.c
.p
->section
;
5755 return _bfd_elf_gc_mark_hook (sec
, info
, rel
, h
, sym
);
5761 struct _opd_sec_data
*opd
;
5763 rsec
= bfd_section_from_elf_index (sec
->owner
, sym
->st_shndx
);
5764 opd
= get_opd_info (rsec
);
5765 if (opd
!= NULL
&& opd
->func_sec
!= NULL
)
5769 rsec
= opd
->func_sec
[(sym
->st_value
+ rel
->r_addend
) / 8];
5776 /* Update the .got, .plt. and dynamic reloc reference counts for the
5777 section being removed. */
5780 ppc64_elf_gc_sweep_hook (bfd
*abfd
, struct bfd_link_info
*info
,
5781 asection
*sec
, const Elf_Internal_Rela
*relocs
)
5783 struct ppc_link_hash_table
*htab
;
5784 Elf_Internal_Shdr
*symtab_hdr
;
5785 struct elf_link_hash_entry
**sym_hashes
;
5786 struct got_entry
**local_got_ents
;
5787 const Elf_Internal_Rela
*rel
, *relend
;
5789 if (info
->relocatable
)
5792 if ((sec
->flags
& SEC_ALLOC
) == 0)
5795 elf_section_data (sec
)->local_dynrel
= NULL
;
5797 htab
= ppc_hash_table (info
);
5801 symtab_hdr
= &elf_symtab_hdr (abfd
);
5802 sym_hashes
= elf_sym_hashes (abfd
);
5803 local_got_ents
= elf_local_got_ents (abfd
);
5805 relend
= relocs
+ sec
->reloc_count
;
5806 for (rel
= relocs
; rel
< relend
; rel
++)
5808 unsigned long r_symndx
;
5809 enum elf_ppc64_reloc_type r_type
;
5810 struct elf_link_hash_entry
*h
= NULL
;
5811 unsigned char tls_type
= 0;
5813 r_symndx
= ELF64_R_SYM (rel
->r_info
);
5814 r_type
= ELF64_R_TYPE (rel
->r_info
);
5815 if (r_symndx
>= symtab_hdr
->sh_info
)
5817 struct ppc_link_hash_entry
*eh
;
5818 struct ppc_dyn_relocs
**pp
;
5819 struct ppc_dyn_relocs
*p
;
5821 h
= sym_hashes
[r_symndx
- symtab_hdr
->sh_info
];
5822 h
= elf_follow_link (h
);
5823 eh
= (struct ppc_link_hash_entry
*) h
;
5825 for (pp
= &eh
->dyn_relocs
; (p
= *pp
) != NULL
; pp
= &p
->next
)
5828 /* Everything must go for SEC. */
5834 if (is_branch_reloc (r_type
))
5836 struct plt_entry
**ifunc
= NULL
;
5839 if (h
->type
== STT_GNU_IFUNC
)
5840 ifunc
= &h
->plt
.plist
;
5842 else if (local_got_ents
!= NULL
)
5844 struct plt_entry
**local_plt
= (struct plt_entry
**)
5845 (local_got_ents
+ symtab_hdr
->sh_info
);
5846 unsigned char *local_got_tls_masks
= (unsigned char *)
5847 (local_plt
+ symtab_hdr
->sh_info
);
5848 if ((local_got_tls_masks
[r_symndx
] & PLT_IFUNC
) != 0)
5849 ifunc
= local_plt
+ r_symndx
;
5853 struct plt_entry
*ent
;
5855 for (ent
= *ifunc
; ent
!= NULL
; ent
= ent
->next
)
5856 if (ent
->addend
== rel
->r_addend
)
5860 if (ent
->plt
.refcount
> 0)
5861 ent
->plt
.refcount
-= 1;
5868 case R_PPC64_GOT_TLSLD16
:
5869 case R_PPC64_GOT_TLSLD16_LO
:
5870 case R_PPC64_GOT_TLSLD16_HI
:
5871 case R_PPC64_GOT_TLSLD16_HA
:
5872 tls_type
= TLS_TLS
| TLS_LD
;
5875 case R_PPC64_GOT_TLSGD16
:
5876 case R_PPC64_GOT_TLSGD16_LO
:
5877 case R_PPC64_GOT_TLSGD16_HI
:
5878 case R_PPC64_GOT_TLSGD16_HA
:
5879 tls_type
= TLS_TLS
| TLS_GD
;
5882 case R_PPC64_GOT_TPREL16_DS
:
5883 case R_PPC64_GOT_TPREL16_LO_DS
:
5884 case R_PPC64_GOT_TPREL16_HI
:
5885 case R_PPC64_GOT_TPREL16_HA
:
5886 tls_type
= TLS_TLS
| TLS_TPREL
;
5889 case R_PPC64_GOT_DTPREL16_DS
:
5890 case R_PPC64_GOT_DTPREL16_LO_DS
:
5891 case R_PPC64_GOT_DTPREL16_HI
:
5892 case R_PPC64_GOT_DTPREL16_HA
:
5893 tls_type
= TLS_TLS
| TLS_DTPREL
;
5897 case R_PPC64_GOT16_DS
:
5898 case R_PPC64_GOT16_HA
:
5899 case R_PPC64_GOT16_HI
:
5900 case R_PPC64_GOT16_LO
:
5901 case R_PPC64_GOT16_LO_DS
:
5904 struct got_entry
*ent
;
5909 ent
= local_got_ents
[r_symndx
];
5911 for (; ent
!= NULL
; ent
= ent
->next
)
5912 if (ent
->addend
== rel
->r_addend
5913 && ent
->owner
== abfd
5914 && ent
->tls_type
== tls_type
)
5918 if (ent
->got
.refcount
> 0)
5919 ent
->got
.refcount
-= 1;
5923 case R_PPC64_PLT16_HA
:
5924 case R_PPC64_PLT16_HI
:
5925 case R_PPC64_PLT16_LO
:
5929 case R_PPC64_REL14_BRNTAKEN
:
5930 case R_PPC64_REL14_BRTAKEN
:
5934 struct plt_entry
*ent
;
5936 for (ent
= h
->plt
.plist
; ent
!= NULL
; ent
= ent
->next
)
5937 if (ent
->addend
== rel
->r_addend
)
5939 if (ent
!= NULL
&& ent
->plt
.refcount
> 0)
5940 ent
->plt
.refcount
-= 1;
5951 /* The maximum size of .sfpr. */
5952 #define SFPR_MAX (218*4)
5954 struct sfpr_def_parms
5956 const char name
[12];
5957 unsigned char lo
, hi
;
5958 bfd_byte
* (*write_ent
) (bfd
*, bfd_byte
*, int);
5959 bfd_byte
* (*write_tail
) (bfd
*, bfd_byte
*, int);
5962 /* Auto-generate _save*, _rest* functions in .sfpr. */
5965 sfpr_define (struct bfd_link_info
*info
, const struct sfpr_def_parms
*parm
)
5967 struct ppc_link_hash_table
*htab
= ppc_hash_table (info
);
5969 size_t len
= strlen (parm
->name
);
5970 bfd_boolean writing
= FALSE
;
5976 memcpy (sym
, parm
->name
, len
);
5979 for (i
= parm
->lo
; i
<= parm
->hi
; i
++)
5981 struct elf_link_hash_entry
*h
;
5983 sym
[len
+ 0] = i
/ 10 + '0';
5984 sym
[len
+ 1] = i
% 10 + '0';
5985 h
= elf_link_hash_lookup (&htab
->elf
, sym
, FALSE
, FALSE
, TRUE
);
5989 h
->root
.type
= bfd_link_hash_defined
;
5990 h
->root
.u
.def
.section
= htab
->sfpr
;
5991 h
->root
.u
.def
.value
= htab
->sfpr
->size
;
5994 _bfd_elf_link_hash_hide_symbol (info
, h
, TRUE
);
5996 if (htab
->sfpr
->contents
== NULL
)
5998 htab
->sfpr
->contents
= bfd_alloc (htab
->elf
.dynobj
, SFPR_MAX
);
5999 if (htab
->sfpr
->contents
== NULL
)
6005 bfd_byte
*p
= htab
->sfpr
->contents
+ htab
->sfpr
->size
;
6007 p
= (*parm
->write_ent
) (htab
->elf
.dynobj
, p
, i
);
6009 p
= (*parm
->write_tail
) (htab
->elf
.dynobj
, p
, i
);
6010 htab
->sfpr
->size
= p
- htab
->sfpr
->contents
;
6018 savegpr0 (bfd
*abfd
, bfd_byte
*p
, int r
)
6020 bfd_put_32 (abfd
, STD_R0_0R1
+ (r
<< 21) + (1 << 16) - (32 - r
) * 8, p
);
6025 savegpr0_tail (bfd
*abfd
, bfd_byte
*p
, int r
)
6027 p
= savegpr0 (abfd
, p
, r
);
6028 bfd_put_32 (abfd
, STD_R0_0R1
+ 16, p
);
6030 bfd_put_32 (abfd
, BLR
, p
);
6035 restgpr0 (bfd
*abfd
, bfd_byte
*p
, int r
)
6037 bfd_put_32 (abfd
, LD_R0_0R1
+ (r
<< 21) + (1 << 16) - (32 - r
) * 8, p
);
6042 restgpr0_tail (bfd
*abfd
, bfd_byte
*p
, int r
)
6044 bfd_put_32 (abfd
, LD_R0_0R1
+ 16, p
);
6046 p
= restgpr0 (abfd
, p
, r
);
6047 bfd_put_32 (abfd
, MTLR_R0
, p
);
6051 p
= restgpr0 (abfd
, p
, 30);
6052 p
= restgpr0 (abfd
, p
, 31);
6054 bfd_put_32 (abfd
, BLR
, p
);
6059 savegpr1 (bfd
*abfd
, bfd_byte
*p
, int r
)
6061 bfd_put_32 (abfd
, STD_R0_0R12
+ (r
<< 21) + (1 << 16) - (32 - r
) * 8, p
);
6066 savegpr1_tail (bfd
*abfd
, bfd_byte
*p
, int r
)
6068 p
= savegpr1 (abfd
, p
, r
);
6069 bfd_put_32 (abfd
, BLR
, p
);
6074 restgpr1 (bfd
*abfd
, bfd_byte
*p
, int r
)
6076 bfd_put_32 (abfd
, LD_R0_0R12
+ (r
<< 21) + (1 << 16) - (32 - r
) * 8, p
);
6081 restgpr1_tail (bfd
*abfd
, bfd_byte
*p
, int r
)
6083 p
= restgpr1 (abfd
, p
, r
);
6084 bfd_put_32 (abfd
, BLR
, p
);
6089 savefpr (bfd
*abfd
, bfd_byte
*p
, int r
)
6091 bfd_put_32 (abfd
, STFD_FR0_0R1
+ (r
<< 21) + (1 << 16) - (32 - r
) * 8, p
);
6096 savefpr0_tail (bfd
*abfd
, bfd_byte
*p
, int r
)
6098 p
= savefpr (abfd
, p
, r
);
6099 bfd_put_32 (abfd
, STD_R0_0R1
+ 16, p
);
6101 bfd_put_32 (abfd
, BLR
, p
);
6106 restfpr (bfd
*abfd
, bfd_byte
*p
, int r
)
6108 bfd_put_32 (abfd
, LFD_FR0_0R1
+ (r
<< 21) + (1 << 16) - (32 - r
) * 8, p
);
6113 restfpr0_tail (bfd
*abfd
, bfd_byte
*p
, int r
)
6115 bfd_put_32 (abfd
, LD_R0_0R1
+ 16, p
);
6117 p
= restfpr (abfd
, p
, r
);
6118 bfd_put_32 (abfd
, MTLR_R0
, p
);
6122 p
= restfpr (abfd
, p
, 30);
6123 p
= restfpr (abfd
, p
, 31);
6125 bfd_put_32 (abfd
, BLR
, p
);
6130 savefpr1_tail (bfd
*abfd
, bfd_byte
*p
, int r
)
6132 p
= savefpr (abfd
, p
, r
);
6133 bfd_put_32 (abfd
, BLR
, p
);
6138 restfpr1_tail (bfd
*abfd
, bfd_byte
*p
, int r
)
6140 p
= restfpr (abfd
, p
, r
);
6141 bfd_put_32 (abfd
, BLR
, p
);
6146 savevr (bfd
*abfd
, bfd_byte
*p
, int r
)
6148 bfd_put_32 (abfd
, LI_R12_0
+ (1 << 16) - (32 - r
) * 16, p
);
6150 bfd_put_32 (abfd
, STVX_VR0_R12_R0
+ (r
<< 21), p
);
6155 savevr_tail (bfd
*abfd
, bfd_byte
*p
, int r
)
6157 p
= savevr (abfd
, p
, r
);
6158 bfd_put_32 (abfd
, BLR
, p
);
6163 restvr (bfd
*abfd
, bfd_byte
*p
, int r
)
6165 bfd_put_32 (abfd
, LI_R12_0
+ (1 << 16) - (32 - r
) * 16, p
);
6167 bfd_put_32 (abfd
, LVX_VR0_R12_R0
+ (r
<< 21), p
);
6172 restvr_tail (bfd
*abfd
, bfd_byte
*p
, int r
)
6174 p
= restvr (abfd
, p
, r
);
6175 bfd_put_32 (abfd
, BLR
, p
);
6179 /* Called via elf_link_hash_traverse to transfer dynamic linking
6180 information on function code symbol entries to their corresponding
6181 function descriptor symbol entries. */
6184 func_desc_adjust (struct elf_link_hash_entry
*h
, void *inf
)
6186 struct bfd_link_info
*info
;
6187 struct ppc_link_hash_table
*htab
;
6188 struct plt_entry
*ent
;
6189 struct ppc_link_hash_entry
*fh
;
6190 struct ppc_link_hash_entry
*fdh
;
6191 bfd_boolean force_local
;
6193 fh
= (struct ppc_link_hash_entry
*) h
;
6194 if (fh
->elf
.root
.type
== bfd_link_hash_indirect
)
6197 if (fh
->elf
.root
.type
== bfd_link_hash_warning
)
6198 fh
= (struct ppc_link_hash_entry
*) fh
->elf
.root
.u
.i
.link
;
6201 htab
= ppc_hash_table (info
);
6205 /* Resolve undefined references to dot-symbols as the value
6206 in the function descriptor, if we have one in a regular object.
6207 This is to satisfy cases like ".quad .foo". Calls to functions
6208 in dynamic objects are handled elsewhere. */
6209 if (fh
->elf
.root
.type
== bfd_link_hash_undefweak
6210 && fh
->was_undefined
6211 && (fdh
= defined_func_desc (fh
)) != NULL
6212 && get_opd_info (fdh
->elf
.root
.u
.def
.section
) != NULL
6213 && opd_entry_value (fdh
->elf
.root
.u
.def
.section
,
6214 fdh
->elf
.root
.u
.def
.value
,
6215 &fh
->elf
.root
.u
.def
.section
,
6216 &fh
->elf
.root
.u
.def
.value
) != (bfd_vma
) -1)
6218 fh
->elf
.root
.type
= fdh
->elf
.root
.type
;
6219 fh
->elf
.forced_local
= 1;
6220 fh
->elf
.def_regular
= fdh
->elf
.def_regular
;
6221 fh
->elf
.def_dynamic
= fdh
->elf
.def_dynamic
;
6224 /* If this is a function code symbol, transfer dynamic linking
6225 information to the function descriptor symbol. */
6229 for (ent
= fh
->elf
.plt
.plist
; ent
!= NULL
; ent
= ent
->next
)
6230 if (ent
->plt
.refcount
> 0)
6233 || fh
->elf
.root
.root
.string
[0] != '.'
6234 || fh
->elf
.root
.root
.string
[1] == '\0')
6237 /* Find the corresponding function descriptor symbol. Create it
6238 as undefined if necessary. */
6240 fdh
= lookup_fdh (fh
, htab
);
6242 && !info
->executable
6243 && (fh
->elf
.root
.type
== bfd_link_hash_undefined
6244 || fh
->elf
.root
.type
== bfd_link_hash_undefweak
))
6246 fdh
= make_fdh (info
, fh
);
6251 /* Fake function descriptors are made undefweak. If the function
6252 code symbol is strong undefined, make the fake sym the same.
6253 If the function code symbol is defined, then force the fake
6254 descriptor local; We can't support overriding of symbols in a
6255 shared library on a fake descriptor. */
6259 && fdh
->elf
.root
.type
== bfd_link_hash_undefweak
)
6261 if (fh
->elf
.root
.type
== bfd_link_hash_undefined
)
6263 fdh
->elf
.root
.type
= bfd_link_hash_undefined
;
6264 bfd_link_add_undef (&htab
->elf
.root
, &fdh
->elf
.root
);
6266 else if (fh
->elf
.root
.type
== bfd_link_hash_defined
6267 || fh
->elf
.root
.type
== bfd_link_hash_defweak
)
6269 _bfd_elf_link_hash_hide_symbol (info
, &fdh
->elf
, TRUE
);
6274 && !fdh
->elf
.forced_local
6275 && (!info
->executable
6276 || fdh
->elf
.def_dynamic
6277 || fdh
->elf
.ref_dynamic
6278 || (fdh
->elf
.root
.type
== bfd_link_hash_undefweak
6279 && ELF_ST_VISIBILITY (fdh
->elf
.other
) == STV_DEFAULT
)))
6281 if (fdh
->elf
.dynindx
== -1)
6282 if (! bfd_elf_link_record_dynamic_symbol (info
, &fdh
->elf
))
6284 fdh
->elf
.ref_regular
|= fh
->elf
.ref_regular
;
6285 fdh
->elf
.ref_dynamic
|= fh
->elf
.ref_dynamic
;
6286 fdh
->elf
.ref_regular_nonweak
|= fh
->elf
.ref_regular_nonweak
;
6287 fdh
->elf
.non_got_ref
|= fh
->elf
.non_got_ref
;
6288 if (ELF_ST_VISIBILITY (fh
->elf
.other
) == STV_DEFAULT
)
6290 move_plt_plist (fh
, fdh
);
6291 fdh
->elf
.needs_plt
= 1;
6293 fdh
->is_func_descriptor
= 1;
6298 /* Now that the info is on the function descriptor, clear the
6299 function code sym info. Any function code syms for which we
6300 don't have a definition in a regular file, we force local.
6301 This prevents a shared library from exporting syms that have
6302 been imported from another library. Function code syms that
6303 are really in the library we must leave global to prevent the
6304 linker dragging in a definition from a static library. */
6305 force_local
= (!fh
->elf
.def_regular
6307 || !fdh
->elf
.def_regular
6308 || fdh
->elf
.forced_local
);
6309 _bfd_elf_link_hash_hide_symbol (info
, &fh
->elf
, force_local
);
6314 /* Called near the start of bfd_elf_size_dynamic_sections. We use
6315 this hook to a) provide some gcc support functions, and b) transfer
6316 dynamic linking information gathered so far on function code symbol
6317 entries, to their corresponding function descriptor symbol entries. */
6320 ppc64_elf_func_desc_adjust (bfd
*obfd ATTRIBUTE_UNUSED
,
6321 struct bfd_link_info
*info
)
6323 struct ppc_link_hash_table
*htab
;
6325 const struct sfpr_def_parms funcs
[] =
6327 { "_savegpr0_", 14, 31, savegpr0
, savegpr0_tail
},
6328 { "_restgpr0_", 14, 29, restgpr0
, restgpr0_tail
},
6329 { "_restgpr0_", 30, 31, restgpr0
, restgpr0_tail
},
6330 { "_savegpr1_", 14, 31, savegpr1
, savegpr1_tail
},
6331 { "_restgpr1_", 14, 31, restgpr1
, restgpr1_tail
},
6332 { "_savefpr_", 14, 31, savefpr
, savefpr0_tail
},
6333 { "_restfpr_", 14, 29, restfpr
, restfpr0_tail
},
6334 { "_restfpr_", 30, 31, restfpr
, restfpr0_tail
},
6335 { "._savef", 14, 31, savefpr
, savefpr1_tail
},
6336 { "._restf", 14, 31, restfpr
, restfpr1_tail
},
6337 { "_savevr_", 20, 31, savevr
, savevr_tail
},
6338 { "_restvr_", 20, 31, restvr
, restvr_tail
}
6341 htab
= ppc_hash_table (info
);
6345 if (htab
->sfpr
== NULL
)
6346 /* We don't have any relocs. */
6349 /* Provide any missing _save* and _rest* functions. */
6350 htab
->sfpr
->size
= 0;
6351 for (i
= 0; i
< sizeof (funcs
) / sizeof (funcs
[0]); i
++)
6352 if (!sfpr_define (info
, &funcs
[i
]))
6355 elf_link_hash_traverse (&htab
->elf
, func_desc_adjust
, info
);
6357 if (htab
->sfpr
->size
== 0)
6358 htab
->sfpr
->flags
|= SEC_EXCLUDE
;
6363 /* Adjust a symbol defined by a dynamic object and referenced by a
6364 regular object. The current definition is in some section of the
6365 dynamic object, but we're not including those sections. We have to
6366 change the definition to something the rest of the link can
6370 ppc64_elf_adjust_dynamic_symbol (struct bfd_link_info
*info
,
6371 struct elf_link_hash_entry
*h
)
6373 struct ppc_link_hash_table
*htab
;
6376 htab
= ppc_hash_table (info
);
6380 /* Deal with function syms. */
6381 if (h
->type
== STT_FUNC
6382 || h
->type
== STT_GNU_IFUNC
6385 /* Clear procedure linkage table information for any symbol that
6386 won't need a .plt entry. */
6387 struct plt_entry
*ent
;
6388 for (ent
= h
->plt
.plist
; ent
!= NULL
; ent
= ent
->next
)
6389 if (ent
->plt
.refcount
> 0)
6392 || (h
->type
!= STT_GNU_IFUNC
6393 && (SYMBOL_CALLS_LOCAL (info
, h
)
6394 || (ELF_ST_VISIBILITY (h
->other
) != STV_DEFAULT
6395 && h
->root
.type
== bfd_link_hash_undefweak
))))
6397 h
->plt
.plist
= NULL
;
6402 h
->plt
.plist
= NULL
;
6404 /* If this is a weak symbol, and there is a real definition, the
6405 processor independent code will have arranged for us to see the
6406 real definition first, and we can just use the same value. */
6407 if (h
->u
.weakdef
!= NULL
)
6409 BFD_ASSERT (h
->u
.weakdef
->root
.type
== bfd_link_hash_defined
6410 || h
->u
.weakdef
->root
.type
== bfd_link_hash_defweak
);
6411 h
->root
.u
.def
.section
= h
->u
.weakdef
->root
.u
.def
.section
;
6412 h
->root
.u
.def
.value
= h
->u
.weakdef
->root
.u
.def
.value
;
6413 if (ELIMINATE_COPY_RELOCS
)
6414 h
->non_got_ref
= h
->u
.weakdef
->non_got_ref
;
6418 /* If we are creating a shared library, we must presume that the
6419 only references to the symbol are via the global offset table.
6420 For such cases we need not do anything here; the relocations will
6421 be handled correctly by relocate_section. */
6425 /* If there are no references to this symbol that do not use the
6426 GOT, we don't need to generate a copy reloc. */
6427 if (!h
->non_got_ref
)
6430 /* Don't generate a copy reloc for symbols defined in the executable. */
6431 if (!h
->def_dynamic
|| !h
->ref_regular
|| h
->def_regular
)
6434 if (ELIMINATE_COPY_RELOCS
)
6436 struct ppc_link_hash_entry
* eh
;
6437 struct ppc_dyn_relocs
*p
;
6439 eh
= (struct ppc_link_hash_entry
*) h
;
6440 for (p
= eh
->dyn_relocs
; p
!= NULL
; p
= p
->next
)
6442 s
= p
->sec
->output_section
;
6443 if (s
!= NULL
&& (s
->flags
& SEC_READONLY
) != 0)
6447 /* If we didn't find any dynamic relocs in read-only sections, then
6448 we'll be keeping the dynamic relocs and avoiding the copy reloc. */
6456 if (h
->plt
.plist
!= NULL
)
6458 /* We should never get here, but unfortunately there are versions
6459 of gcc out there that improperly (for this ABI) put initialized
6460 function pointers, vtable refs and suchlike in read-only
6461 sections. Allow them to proceed, but warn that this might
6462 break at runtime. */
6463 (*_bfd_error_handler
)
6464 (_("copy reloc against `%s' requires lazy plt linking; "
6465 "avoid setting LD_BIND_NOW=1 or upgrade gcc"),
6466 h
->root
.root
.string
);
6469 /* This is a reference to a symbol defined by a dynamic object which
6470 is not a function. */
6474 (*_bfd_error_handler
) (_("dynamic variable `%s' is zero size"),
6475 h
->root
.root
.string
);
6479 /* We must allocate the symbol in our .dynbss section, which will
6480 become part of the .bss section of the executable. There will be
6481 an entry for this symbol in the .dynsym section. The dynamic
6482 object will contain position independent code, so all references
6483 from the dynamic object to this symbol will go through the global
6484 offset table. The dynamic linker will use the .dynsym entry to
6485 determine the address it must put in the global offset table, so
6486 both the dynamic object and the regular object will refer to the
6487 same memory location for the variable. */
6489 /* We must generate a R_PPC64_COPY reloc to tell the dynamic linker
6490 to copy the initial value out of the dynamic object and into the
6491 runtime process image. We need to remember the offset into the
6492 .rela.bss section we are going to use. */
6493 if ((h
->root
.u
.def
.section
->flags
& SEC_ALLOC
) != 0)
6495 htab
->relbss
->size
+= sizeof (Elf64_External_Rela
);
6501 return _bfd_elf_adjust_dynamic_copy (h
, s
);
6504 /* If given a function descriptor symbol, hide both the function code
6505 sym and the descriptor. */
6507 ppc64_elf_hide_symbol (struct bfd_link_info
*info
,
6508 struct elf_link_hash_entry
*h
,
6509 bfd_boolean force_local
)
6511 struct ppc_link_hash_entry
*eh
;
6512 _bfd_elf_link_hash_hide_symbol (info
, h
, force_local
);
6514 eh
= (struct ppc_link_hash_entry
*) h
;
6515 if (eh
->is_func_descriptor
)
6517 struct ppc_link_hash_entry
*fh
= eh
->oh
;
6522 struct ppc_link_hash_table
*htab
;
6525 /* We aren't supposed to use alloca in BFD because on
6526 systems which do not have alloca the version in libiberty
6527 calls xmalloc, which might cause the program to crash
6528 when it runs out of memory. This function doesn't have a
6529 return status, so there's no way to gracefully return an
6530 error. So cheat. We know that string[-1] can be safely
6531 accessed; It's either a string in an ELF string table,
6532 or allocated in an objalloc structure. */
6534 p
= eh
->elf
.root
.root
.string
- 1;
6537 htab
= ppc_hash_table (info
);
6541 fh
= (struct ppc_link_hash_entry
*)
6542 elf_link_hash_lookup (&htab
->elf
, p
, FALSE
, FALSE
, FALSE
);
6545 /* Unfortunately, if it so happens that the string we were
6546 looking for was allocated immediately before this string,
6547 then we overwrote the string terminator. That's the only
6548 reason the lookup should fail. */
6551 q
= eh
->elf
.root
.root
.string
+ strlen (eh
->elf
.root
.root
.string
);
6552 while (q
>= eh
->elf
.root
.root
.string
&& *q
== *p
)
6554 if (q
< eh
->elf
.root
.root
.string
&& *p
== '.')
6555 fh
= (struct ppc_link_hash_entry
*)
6556 elf_link_hash_lookup (&htab
->elf
, p
, FALSE
, FALSE
, FALSE
);
6565 _bfd_elf_link_hash_hide_symbol (info
, &fh
->elf
, force_local
);
6570 get_sym_h (struct elf_link_hash_entry
**hp
,
6571 Elf_Internal_Sym
**symp
,
6573 unsigned char **tls_maskp
,
6574 Elf_Internal_Sym
**locsymsp
,
6575 unsigned long r_symndx
,
6578 Elf_Internal_Shdr
*symtab_hdr
= &elf_symtab_hdr (ibfd
);
6580 if (r_symndx
>= symtab_hdr
->sh_info
)
6582 struct elf_link_hash_entry
**sym_hashes
= elf_sym_hashes (ibfd
);
6583 struct elf_link_hash_entry
*h
;
6585 h
= sym_hashes
[r_symndx
- symtab_hdr
->sh_info
];
6586 h
= elf_follow_link (h
);
6594 if (symsecp
!= NULL
)
6596 asection
*symsec
= NULL
;
6597 if (h
->root
.type
== bfd_link_hash_defined
6598 || h
->root
.type
== bfd_link_hash_defweak
)
6599 symsec
= h
->root
.u
.def
.section
;
6603 if (tls_maskp
!= NULL
)
6605 struct ppc_link_hash_entry
*eh
;
6607 eh
= (struct ppc_link_hash_entry
*) h
;
6608 *tls_maskp
= &eh
->tls_mask
;
6613 Elf_Internal_Sym
*sym
;
6614 Elf_Internal_Sym
*locsyms
= *locsymsp
;
6616 if (locsyms
== NULL
)
6618 locsyms
= (Elf_Internal_Sym
*) symtab_hdr
->contents
;
6619 if (locsyms
== NULL
)
6620 locsyms
= bfd_elf_get_elf_syms (ibfd
, symtab_hdr
,
6621 symtab_hdr
->sh_info
,
6622 0, NULL
, NULL
, NULL
);
6623 if (locsyms
== NULL
)
6625 *locsymsp
= locsyms
;
6627 sym
= locsyms
+ r_symndx
;
6635 if (symsecp
!= NULL
)
6636 *symsecp
= bfd_section_from_elf_index (ibfd
, sym
->st_shndx
);
6638 if (tls_maskp
!= NULL
)
6640 struct got_entry
**lgot_ents
;
6641 unsigned char *tls_mask
;
6644 lgot_ents
= elf_local_got_ents (ibfd
);
6645 if (lgot_ents
!= NULL
)
6647 struct plt_entry
**local_plt
= (struct plt_entry
**)
6648 (lgot_ents
+ symtab_hdr
->sh_info
);
6649 unsigned char *lgot_masks
= (unsigned char *)
6650 (local_plt
+ symtab_hdr
->sh_info
);
6651 tls_mask
= &lgot_masks
[r_symndx
];
6653 *tls_maskp
= tls_mask
;
6659 /* Returns TLS_MASKP for the given REL symbol. Function return is 0 on
6660 error, 2 on a toc GD type suitable for optimization, 3 on a toc LD
6661 type suitable for optimization, and 1 otherwise. */
6664 get_tls_mask (unsigned char **tls_maskp
,
6665 unsigned long *toc_symndx
,
6666 bfd_vma
*toc_addend
,
6667 Elf_Internal_Sym
**locsymsp
,
6668 const Elf_Internal_Rela
*rel
,
6671 unsigned long r_symndx
;
6673 struct elf_link_hash_entry
*h
;
6674 Elf_Internal_Sym
*sym
;
6678 r_symndx
= ELF64_R_SYM (rel
->r_info
);
6679 if (!get_sym_h (&h
, &sym
, &sec
, tls_maskp
, locsymsp
, r_symndx
, ibfd
))
6682 if ((*tls_maskp
!= NULL
&& **tls_maskp
!= 0)
6684 || ppc64_elf_section_data (sec
)->sec_type
!= sec_toc
)
6687 /* Look inside a TOC section too. */
6690 BFD_ASSERT (h
->root
.type
== bfd_link_hash_defined
);
6691 off
= h
->root
.u
.def
.value
;
6694 off
= sym
->st_value
;
6695 off
+= rel
->r_addend
;
6696 BFD_ASSERT (off
% 8 == 0);
6697 r_symndx
= ppc64_elf_section_data (sec
)->u
.toc
.symndx
[off
/ 8];
6698 next_r
= ppc64_elf_section_data (sec
)->u
.toc
.symndx
[off
/ 8 + 1];
6699 if (toc_symndx
!= NULL
)
6700 *toc_symndx
= r_symndx
;
6701 if (toc_addend
!= NULL
)
6702 *toc_addend
= ppc64_elf_section_data (sec
)->u
.toc
.add
[off
/ 8];
6703 if (!get_sym_h (&h
, &sym
, &sec
, tls_maskp
, locsymsp
, r_symndx
, ibfd
))
6706 || ((h
->root
.type
== bfd_link_hash_defined
6707 || h
->root
.type
== bfd_link_hash_defweak
)
6708 && !h
->def_dynamic
))
6709 && (next_r
== -1 || next_r
== -2))
6714 /* Adjust all global syms defined in opd sections. In gcc generated
6715 code for the old ABI, these will already have been done. */
6718 adjust_opd_syms (struct elf_link_hash_entry
*h
, void *inf ATTRIBUTE_UNUSED
)
6720 struct ppc_link_hash_entry
*eh
;
6722 struct _opd_sec_data
*opd
;
6724 if (h
->root
.type
== bfd_link_hash_indirect
)
6727 if (h
->root
.type
== bfd_link_hash_warning
)
6728 h
= (struct elf_link_hash_entry
*) h
->root
.u
.i
.link
;
6730 if (h
->root
.type
!= bfd_link_hash_defined
6731 && h
->root
.type
!= bfd_link_hash_defweak
)
6734 eh
= (struct ppc_link_hash_entry
*) h
;
6735 if (eh
->adjust_done
)
6738 sym_sec
= eh
->elf
.root
.u
.def
.section
;
6739 opd
= get_opd_info (sym_sec
);
6740 if (opd
!= NULL
&& opd
->adjust
!= NULL
)
6742 long adjust
= opd
->adjust
[eh
->elf
.root
.u
.def
.value
/ 8];
6745 /* This entry has been deleted. */
6746 asection
*dsec
= ppc64_elf_tdata (sym_sec
->owner
)->deleted_section
;
6749 for (dsec
= sym_sec
->owner
->sections
; dsec
; dsec
= dsec
->next
)
6750 if (elf_discarded_section (dsec
))
6752 ppc64_elf_tdata (sym_sec
->owner
)->deleted_section
= dsec
;
6756 eh
->elf
.root
.u
.def
.value
= 0;
6757 eh
->elf
.root
.u
.def
.section
= dsec
;
6760 eh
->elf
.root
.u
.def
.value
+= adjust
;
6761 eh
->adjust_done
= 1;
6766 /* Handles decrementing dynamic reloc counts for the reloc specified by
6767 R_INFO in section SEC. If LOCAL_SYMS is NULL, then H and SYM_SEC
6768 have already been determined. */
6771 dec_dynrel_count (bfd_vma r_info
,
6773 struct bfd_link_info
*info
,
6774 Elf_Internal_Sym
**local_syms
,
6775 struct elf_link_hash_entry
*h
,
6778 enum elf_ppc64_reloc_type r_type
;
6779 struct ppc_dyn_relocs
*p
;
6780 struct ppc_dyn_relocs
**pp
;
6782 /* Can this reloc be dynamic? This switch, and later tests here
6783 should be kept in sync with the code in check_relocs. */
6784 r_type
= ELF64_R_TYPE (r_info
);
6790 case R_PPC64_TPREL16
:
6791 case R_PPC64_TPREL16_LO
:
6792 case R_PPC64_TPREL16_HI
:
6793 case R_PPC64_TPREL16_HA
:
6794 case R_PPC64_TPREL16_DS
:
6795 case R_PPC64_TPREL16_LO_DS
:
6796 case R_PPC64_TPREL16_HIGHER
:
6797 case R_PPC64_TPREL16_HIGHERA
:
6798 case R_PPC64_TPREL16_HIGHEST
:
6799 case R_PPC64_TPREL16_HIGHESTA
:
6803 case R_PPC64_TPREL64
:
6804 case R_PPC64_DTPMOD64
:
6805 case R_PPC64_DTPREL64
:
6806 case R_PPC64_ADDR64
:
6810 case R_PPC64_ADDR14
:
6811 case R_PPC64_ADDR14_BRNTAKEN
:
6812 case R_PPC64_ADDR14_BRTAKEN
:
6813 case R_PPC64_ADDR16
:
6814 case R_PPC64_ADDR16_DS
:
6815 case R_PPC64_ADDR16_HA
:
6816 case R_PPC64_ADDR16_HI
:
6817 case R_PPC64_ADDR16_HIGHER
:
6818 case R_PPC64_ADDR16_HIGHERA
:
6819 case R_PPC64_ADDR16_HIGHEST
:
6820 case R_PPC64_ADDR16_HIGHESTA
:
6821 case R_PPC64_ADDR16_LO
:
6822 case R_PPC64_ADDR16_LO_DS
:
6823 case R_PPC64_ADDR24
:
6824 case R_PPC64_ADDR32
:
6825 case R_PPC64_UADDR16
:
6826 case R_PPC64_UADDR32
:
6827 case R_PPC64_UADDR64
:
6832 if (local_syms
!= NULL
)
6834 unsigned long r_symndx
;
6835 Elf_Internal_Sym
*sym
;
6836 bfd
*ibfd
= sec
->owner
;
6838 r_symndx
= ELF64_R_SYM (r_info
);
6839 if (!get_sym_h (&h
, &sym
, &sym_sec
, NULL
, local_syms
, r_symndx
, ibfd
))
6844 && (must_be_dyn_reloc (info
, r_type
)
6847 || h
->root
.type
== bfd_link_hash_defweak
6848 || !h
->def_regular
))))
6849 || (ELIMINATE_COPY_RELOCS
6852 && (h
->root
.type
== bfd_link_hash_defweak
6853 || !h
->def_regular
)))
6859 pp
= &((struct ppc_link_hash_entry
*) h
)->dyn_relocs
;
6862 if (sym_sec
!= NULL
)
6864 void *vpp
= &elf_section_data (sym_sec
)->local_dynrel
;
6865 pp
= (struct ppc_dyn_relocs
**) vpp
;
6869 void *vpp
= &elf_section_data (sec
)->local_dynrel
;
6870 pp
= (struct ppc_dyn_relocs
**) vpp
;
6873 /* elf_gc_sweep may have already removed all dyn relocs associated
6874 with local syms for a given section. Don't report a dynreloc
6880 while ((p
= *pp
) != NULL
)
6884 if (!must_be_dyn_reloc (info
, r_type
))
6894 (*_bfd_error_handler
) (_("dynreloc miscount for %B, section %A"),
6896 bfd_set_error (bfd_error_bad_value
);
6900 /* Remove unused Official Procedure Descriptor entries. Currently we
6901 only remove those associated with functions in discarded link-once
6902 sections, or weakly defined functions that have been overridden. It
6903 would be possible to remove many more entries for statically linked
6907 ppc64_elf_edit_opd (struct bfd_link_info
*info
, bfd_boolean non_overlapping
)
6910 bfd_boolean some_edited
= FALSE
;
6911 asection
*need_pad
= NULL
;
6913 for (ibfd
= info
->input_bfds
; ibfd
!= NULL
; ibfd
= ibfd
->link_next
)
6916 Elf_Internal_Rela
*relstart
, *rel
, *relend
;
6917 Elf_Internal_Shdr
*symtab_hdr
;
6918 Elf_Internal_Sym
*local_syms
;
6919 struct elf_link_hash_entry
**sym_hashes
;
6921 struct _opd_sec_data
*opd
;
6922 bfd_boolean need_edit
, add_aux_fields
;
6923 bfd_size_type cnt_16b
= 0;
6925 sec
= bfd_get_section_by_name (ibfd
, ".opd");
6926 if (sec
== NULL
|| sec
->size
== 0)
6929 if (sec
->sec_info_type
== ELF_INFO_TYPE_JUST_SYMS
)
6932 if (sec
->output_section
== bfd_abs_section_ptr
)
6935 /* Look through the section relocs. */
6936 if ((sec
->flags
& SEC_RELOC
) == 0 || sec
->reloc_count
== 0)
6940 symtab_hdr
= &elf_symtab_hdr (ibfd
);
6941 sym_hashes
= elf_sym_hashes (ibfd
);
6943 /* Read the relocations. */
6944 relstart
= _bfd_elf_link_read_relocs (ibfd
, sec
, NULL
, NULL
,
6946 if (relstart
== NULL
)
6949 /* First run through the relocs to check they are sane, and to
6950 determine whether we need to edit this opd section. */
6954 relend
= relstart
+ sec
->reloc_count
;
6955 for (rel
= relstart
; rel
< relend
; )
6957 enum elf_ppc64_reloc_type r_type
;
6958 unsigned long r_symndx
;
6960 struct elf_link_hash_entry
*h
;
6961 Elf_Internal_Sym
*sym
;
6963 /* .opd contains a regular array of 16 or 24 byte entries. We're
6964 only interested in the reloc pointing to a function entry
6966 if (rel
->r_offset
!= offset
6967 || rel
+ 1 >= relend
6968 || (rel
+ 1)->r_offset
!= offset
+ 8)
6970 /* If someone messes with .opd alignment then after a
6971 "ld -r" we might have padding in the middle of .opd.
6972 Also, there's nothing to prevent someone putting
6973 something silly in .opd with the assembler. No .opd
6974 optimization for them! */
6976 (*_bfd_error_handler
)
6977 (_("%B: .opd is not a regular array of opd entries"), ibfd
);
6982 if ((r_type
= ELF64_R_TYPE (rel
->r_info
)) != R_PPC64_ADDR64
6983 || (r_type
= ELF64_R_TYPE ((rel
+ 1)->r_info
)) != R_PPC64_TOC
)
6985 (*_bfd_error_handler
)
6986 (_("%B: unexpected reloc type %u in .opd section"),
6992 r_symndx
= ELF64_R_SYM (rel
->r_info
);
6993 if (!get_sym_h (&h
, &sym
, &sym_sec
, NULL
, &local_syms
,
6997 if (sym_sec
== NULL
|| sym_sec
->owner
== NULL
)
6999 const char *sym_name
;
7001 sym_name
= h
->root
.root
.string
;
7003 sym_name
= bfd_elf_sym_name (ibfd
, symtab_hdr
, sym
,
7006 (*_bfd_error_handler
)
7007 (_("%B: undefined sym `%s' in .opd section"),
7013 /* opd entries are always for functions defined in the
7014 current input bfd. If the symbol isn't defined in the
7015 input bfd, then we won't be using the function in this
7016 bfd; It must be defined in a linkonce section in another
7017 bfd, or is weak. It's also possible that we are
7018 discarding the function due to a linker script /DISCARD/,
7019 which we test for via the output_section. */
7020 if (sym_sec
->owner
!= ibfd
7021 || sym_sec
->output_section
== bfd_abs_section_ptr
)
7026 || (rel
+ 1 == relend
&& rel
->r_offset
== offset
+ 16))
7028 if (sec
->size
== offset
+ 24)
7033 if (rel
== relend
&& sec
->size
== offset
+ 16)
7041 if (rel
->r_offset
== offset
+ 24)
7043 else if (rel
->r_offset
!= offset
+ 16)
7045 else if (rel
+ 1 < relend
7046 && ELF64_R_TYPE (rel
[0].r_info
) == R_PPC64_ADDR64
7047 && ELF64_R_TYPE (rel
[1].r_info
) == R_PPC64_TOC
)
7052 else if (rel
+ 2 < relend
7053 && ELF64_R_TYPE (rel
[1].r_info
) == R_PPC64_ADDR64
7054 && ELF64_R_TYPE (rel
[2].r_info
) == R_PPC64_TOC
)
7063 add_aux_fields
= non_overlapping
&& cnt_16b
> 0;
7065 if (need_edit
|| add_aux_fields
)
7067 Elf_Internal_Rela
*write_rel
;
7068 bfd_byte
*rptr
, *wptr
;
7069 bfd_byte
*new_contents
;
7074 new_contents
= NULL
;
7075 amt
= sec
->size
* sizeof (long) / 8;
7076 opd
= &ppc64_elf_section_data (sec
)->u
.opd
;
7077 opd
->adjust
= bfd_zalloc (sec
->owner
, amt
);
7078 if (opd
->adjust
== NULL
)
7080 ppc64_elf_section_data (sec
)->sec_type
= sec_opd
;
7082 /* This seems a waste of time as input .opd sections are all
7083 zeros as generated by gcc, but I suppose there's no reason
7084 this will always be so. We might start putting something in
7085 the third word of .opd entries. */
7086 if ((sec
->flags
& SEC_IN_MEMORY
) == 0)
7089 if (!bfd_malloc_and_get_section (ibfd
, sec
, &loc
))
7094 if (local_syms
!= NULL
7095 && symtab_hdr
->contents
!= (unsigned char *) local_syms
)
7097 if (elf_section_data (sec
)->relocs
!= relstart
)
7101 sec
->contents
= loc
;
7102 sec
->flags
|= (SEC_IN_MEMORY
| SEC_HAS_CONTENTS
);
7105 elf_section_data (sec
)->relocs
= relstart
;
7107 new_contents
= sec
->contents
;
7110 new_contents
= bfd_malloc (sec
->size
+ cnt_16b
* 8);
7111 if (new_contents
== NULL
)
7115 wptr
= new_contents
;
7116 rptr
= sec
->contents
;
7118 write_rel
= relstart
;
7122 for (rel
= relstart
; rel
< relend
; rel
++)
7124 unsigned long r_symndx
;
7126 struct elf_link_hash_entry
*h
;
7127 Elf_Internal_Sym
*sym
;
7129 r_symndx
= ELF64_R_SYM (rel
->r_info
);
7130 if (!get_sym_h (&h
, &sym
, &sym_sec
, NULL
, &local_syms
,
7134 if (rel
->r_offset
== offset
)
7136 struct ppc_link_hash_entry
*fdh
= NULL
;
7138 /* See if the .opd entry is full 24 byte or
7139 16 byte (with fd_aux entry overlapped with next
7142 if ((rel
+ 2 == relend
&& sec
->size
== offset
+ 16)
7143 || (rel
+ 3 < relend
7144 && rel
[2].r_offset
== offset
+ 16
7145 && rel
[3].r_offset
== offset
+ 24
7146 && ELF64_R_TYPE (rel
[2].r_info
) == R_PPC64_ADDR64
7147 && ELF64_R_TYPE (rel
[3].r_info
) == R_PPC64_TOC
))
7151 && h
->root
.root
.string
[0] == '.')
7153 struct ppc_link_hash_table
*htab
;
7155 htab
= ppc_hash_table (info
);
7157 fdh
= lookup_fdh ((struct ppc_link_hash_entry
*) h
,
7160 && fdh
->elf
.root
.type
!= bfd_link_hash_defined
7161 && fdh
->elf
.root
.type
!= bfd_link_hash_defweak
)
7165 skip
= (sym_sec
->owner
!= ibfd
7166 || sym_sec
->output_section
== bfd_abs_section_ptr
);
7169 if (fdh
!= NULL
&& sym_sec
->owner
== ibfd
)
7171 /* Arrange for the function descriptor sym
7173 fdh
->elf
.root
.u
.def
.value
= 0;
7174 fdh
->elf
.root
.u
.def
.section
= sym_sec
;
7176 opd
->adjust
[rel
->r_offset
/ 8] = -1;
7180 /* We'll be keeping this opd entry. */
7184 /* Redefine the function descriptor symbol to
7185 this location in the opd section. It is
7186 necessary to update the value here rather
7187 than using an array of adjustments as we do
7188 for local symbols, because various places
7189 in the generic ELF code use the value
7190 stored in u.def.value. */
7191 fdh
->elf
.root
.u
.def
.value
= wptr
- new_contents
;
7192 fdh
->adjust_done
= 1;
7195 /* Local syms are a bit tricky. We could
7196 tweak them as they can be cached, but
7197 we'd need to look through the local syms
7198 for the function descriptor sym which we
7199 don't have at the moment. So keep an
7200 array of adjustments. */
7201 opd
->adjust
[rel
->r_offset
/ 8]
7202 = (wptr
- new_contents
) - (rptr
- sec
->contents
);
7205 memcpy (wptr
, rptr
, opd_ent_size
);
7206 wptr
+= opd_ent_size
;
7207 if (add_aux_fields
&& opd_ent_size
== 16)
7209 memset (wptr
, '\0', 8);
7213 rptr
+= opd_ent_size
;
7214 offset
+= opd_ent_size
;
7220 && !info
->relocatable
7221 && !dec_dynrel_count (rel
->r_info
, sec
, info
,
7227 /* We need to adjust any reloc offsets to point to the
7228 new opd entries. While we're at it, we may as well
7229 remove redundant relocs. */
7230 rel
->r_offset
+= opd
->adjust
[(offset
- opd_ent_size
) / 8];
7231 if (write_rel
!= rel
)
7232 memcpy (write_rel
, rel
, sizeof (*rel
));
7237 sec
->size
= wptr
- new_contents
;
7238 sec
->reloc_count
= write_rel
- relstart
;
7241 free (sec
->contents
);
7242 sec
->contents
= new_contents
;
7245 /* Fudge the header size too, as this is used later in
7246 elf_bfd_final_link if we are emitting relocs. */
7247 elf_section_data (sec
)->rel_hdr
.sh_size
7248 = sec
->reloc_count
* elf_section_data (sec
)->rel_hdr
.sh_entsize
;
7249 BFD_ASSERT (elf_section_data (sec
)->rel_hdr2
== NULL
);
7252 else if (elf_section_data (sec
)->relocs
!= relstart
)
7255 if (local_syms
!= NULL
7256 && symtab_hdr
->contents
!= (unsigned char *) local_syms
)
7258 if (!info
->keep_memory
)
7261 symtab_hdr
->contents
= (unsigned char *) local_syms
;
7266 elf_link_hash_traverse (elf_hash_table (info
), adjust_opd_syms
, NULL
);
7268 /* If we are doing a final link and the last .opd entry is just 16 byte
7269 long, add a 8 byte padding after it. */
7270 if (need_pad
!= NULL
&& !info
->relocatable
)
7274 if ((need_pad
->flags
& SEC_IN_MEMORY
) == 0)
7276 BFD_ASSERT (need_pad
->size
> 0);
7278 p
= bfd_malloc (need_pad
->size
+ 8);
7282 if (! bfd_get_section_contents (need_pad
->owner
, need_pad
,
7283 p
, 0, need_pad
->size
))
7286 need_pad
->contents
= p
;
7287 need_pad
->flags
|= (SEC_IN_MEMORY
| SEC_HAS_CONTENTS
);
7291 p
= bfd_realloc (need_pad
->contents
, need_pad
->size
+ 8);
7295 need_pad
->contents
= p
;
7298 memset (need_pad
->contents
+ need_pad
->size
, 0, 8);
7299 need_pad
->size
+= 8;
7305 /* Set htab->tls_get_addr and call the generic ELF tls_setup function. */
7308 ppc64_elf_tls_setup (struct bfd_link_info
*info
,
7309 int no_tls_get_addr_opt
,
7312 struct ppc_link_hash_table
*htab
;
7314 htab
= ppc_hash_table (info
);
7319 htab
->do_multi_toc
= 0;
7320 else if (!htab
->do_multi_toc
)
7323 htab
->tls_get_addr
= ((struct ppc_link_hash_entry
*)
7324 elf_link_hash_lookup (&htab
->elf
, ".__tls_get_addr",
7325 FALSE
, FALSE
, TRUE
));
7326 /* Move dynamic linking info to the function descriptor sym. */
7327 if (htab
->tls_get_addr
!= NULL
)
7328 func_desc_adjust (&htab
->tls_get_addr
->elf
, info
);
7329 htab
->tls_get_addr_fd
= ((struct ppc_link_hash_entry
*)
7330 elf_link_hash_lookup (&htab
->elf
, "__tls_get_addr",
7331 FALSE
, FALSE
, TRUE
));
7332 if (!no_tls_get_addr_opt
)
7334 struct elf_link_hash_entry
*opt
, *opt_fd
, *tga
, *tga_fd
;
7336 opt
= elf_link_hash_lookup (&htab
->elf
, ".__tls_get_addr_opt",
7337 FALSE
, FALSE
, TRUE
);
7339 func_desc_adjust (opt
, info
);
7340 opt_fd
= elf_link_hash_lookup (&htab
->elf
, "__tls_get_addr_opt",
7341 FALSE
, FALSE
, TRUE
);
7343 && (opt_fd
->root
.type
== bfd_link_hash_defined
7344 || opt_fd
->root
.type
== bfd_link_hash_defweak
))
7346 /* If glibc supports an optimized __tls_get_addr call stub,
7347 signalled by the presence of __tls_get_addr_opt, and we'll
7348 be calling __tls_get_addr via a plt call stub, then
7349 make __tls_get_addr point to __tls_get_addr_opt. */
7350 tga_fd
= &htab
->tls_get_addr_fd
->elf
;
7351 if (htab
->elf
.dynamic_sections_created
7353 && (tga_fd
->type
== STT_FUNC
7354 || tga_fd
->needs_plt
)
7355 && !(SYMBOL_CALLS_LOCAL (info
, tga_fd
)
7356 || (ELF_ST_VISIBILITY (tga_fd
->other
) != STV_DEFAULT
7357 && tga_fd
->root
.type
== bfd_link_hash_undefweak
)))
7359 struct plt_entry
*ent
;
7361 for (ent
= tga_fd
->plt
.plist
; ent
!= NULL
; ent
= ent
->next
)
7362 if (ent
->plt
.refcount
> 0)
7366 tga_fd
->root
.type
= bfd_link_hash_indirect
;
7367 tga_fd
->root
.u
.i
.link
= &opt_fd
->root
;
7368 ppc64_elf_copy_indirect_symbol (info
, opt_fd
, tga_fd
);
7369 if (opt_fd
->dynindx
!= -1)
7371 /* Use __tls_get_addr_opt in dynamic relocations. */
7372 opt_fd
->dynindx
= -1;
7373 _bfd_elf_strtab_delref (elf_hash_table (info
)->dynstr
,
7374 opt_fd
->dynstr_index
);
7375 if (!bfd_elf_link_record_dynamic_symbol (info
, opt_fd
))
7378 htab
->tls_get_addr_fd
= (struct ppc_link_hash_entry
*) opt_fd
;
7379 tga
= &htab
->tls_get_addr
->elf
;
7380 if (opt
!= NULL
&& tga
!= NULL
)
7382 tga
->root
.type
= bfd_link_hash_indirect
;
7383 tga
->root
.u
.i
.link
= &opt
->root
;
7384 ppc64_elf_copy_indirect_symbol (info
, opt
, tga
);
7385 _bfd_elf_link_hash_hide_symbol (info
, opt
,
7387 htab
->tls_get_addr
= (struct ppc_link_hash_entry
*) opt
;
7389 htab
->tls_get_addr_fd
->oh
= htab
->tls_get_addr
;
7390 htab
->tls_get_addr_fd
->is_func_descriptor
= 1;
7391 if (htab
->tls_get_addr
!= NULL
)
7393 htab
->tls_get_addr
->oh
= htab
->tls_get_addr_fd
;
7394 htab
->tls_get_addr
->is_func
= 1;
7400 no_tls_get_addr_opt
= TRUE
;
7402 htab
->no_tls_get_addr_opt
= no_tls_get_addr_opt
;
7403 return _bfd_elf_tls_setup (info
->output_bfd
, info
);
7406 /* Return TRUE iff REL is a branch reloc with a global symbol matching
7410 branch_reloc_hash_match (const bfd
*ibfd
,
7411 const Elf_Internal_Rela
*rel
,
7412 const struct ppc_link_hash_entry
*hash1
,
7413 const struct ppc_link_hash_entry
*hash2
)
7415 Elf_Internal_Shdr
*symtab_hdr
= &elf_symtab_hdr (ibfd
);
7416 enum elf_ppc64_reloc_type r_type
= ELF64_R_TYPE (rel
->r_info
);
7417 unsigned int r_symndx
= ELF64_R_SYM (rel
->r_info
);
7419 if (r_symndx
>= symtab_hdr
->sh_info
&& is_branch_reloc (r_type
))
7421 struct elf_link_hash_entry
**sym_hashes
= elf_sym_hashes (ibfd
);
7422 struct elf_link_hash_entry
*h
;
7424 h
= sym_hashes
[r_symndx
- symtab_hdr
->sh_info
];
7425 h
= elf_follow_link (h
);
7426 if (h
== &hash1
->elf
|| h
== &hash2
->elf
)
7432 /* Run through all the TLS relocs looking for optimization
7433 opportunities. The linker has been hacked (see ppc64elf.em) to do
7434 a preliminary section layout so that we know the TLS segment
7435 offsets. We can't optimize earlier because some optimizations need
7436 to know the tp offset, and we need to optimize before allocating
7437 dynamic relocations. */
7440 ppc64_elf_tls_optimize (struct bfd_link_info
*info
)
7444 struct ppc_link_hash_table
*htab
;
7447 if (info
->relocatable
|| !info
->executable
)
7450 htab
= ppc_hash_table (info
);
7454 for (ibfd
= info
->input_bfds
; ibfd
!= NULL
; ibfd
= ibfd
->link_next
)
7456 Elf_Internal_Sym
*locsyms
= NULL
;
7457 asection
*toc
= bfd_get_section_by_name (ibfd
, ".toc");
7458 unsigned char *toc_ref
= NULL
;
7460 /* Look at all the sections for this file. Make two passes over
7461 the relocs. On the first pass, mark toc entries involved
7462 with tls relocs, and check that tls relocs involved in
7463 setting up a tls_get_addr call are indeed followed by such a
7464 call. If they are not, exclude them from the optimizations
7465 done on the second pass. */
7466 for (pass
= 0; pass
< 2; ++pass
)
7467 for (sec
= ibfd
->sections
; sec
!= NULL
; sec
= sec
->next
)
7468 if (sec
->has_tls_reloc
&& !bfd_is_abs_section (sec
->output_section
))
7470 Elf_Internal_Rela
*relstart
, *rel
, *relend
;
7472 /* Read the relocations. */
7473 relstart
= _bfd_elf_link_read_relocs (ibfd
, sec
, NULL
, NULL
,
7475 if (relstart
== NULL
)
7478 relend
= relstart
+ sec
->reloc_count
;
7479 for (rel
= relstart
; rel
< relend
; rel
++)
7481 enum elf_ppc64_reloc_type r_type
;
7482 unsigned long r_symndx
;
7483 struct elf_link_hash_entry
*h
;
7484 Elf_Internal_Sym
*sym
;
7486 unsigned char *tls_mask
;
7487 unsigned char tls_set
, tls_clear
, tls_type
= 0;
7489 bfd_boolean ok_tprel
, is_local
;
7490 long toc_ref_index
= 0;
7491 int expecting_tls_get_addr
= 0;
7493 r_symndx
= ELF64_R_SYM (rel
->r_info
);
7494 if (!get_sym_h (&h
, &sym
, &sym_sec
, &tls_mask
, &locsyms
,
7498 if (elf_section_data (sec
)->relocs
!= relstart
)
7500 if (toc_ref
!= NULL
)
7503 && (elf_symtab_hdr (ibfd
).contents
7504 != (unsigned char *) locsyms
))
7511 if (h
->root
.type
== bfd_link_hash_defined
7512 || h
->root
.type
== bfd_link_hash_defweak
)
7513 value
= h
->root
.u
.def
.value
;
7514 else if (h
->root
.type
== bfd_link_hash_undefweak
)
7520 /* Symbols referenced by TLS relocs must be of type
7521 STT_TLS. So no need for .opd local sym adjust. */
7522 value
= sym
->st_value
;
7531 && h
->root
.type
== bfd_link_hash_undefweak
)
7535 value
+= sym_sec
->output_offset
;
7536 value
+= sym_sec
->output_section
->vma
;
7537 value
-= htab
->elf
.tls_sec
->vma
;
7538 ok_tprel
= (value
+ TP_OFFSET
+ ((bfd_vma
) 1 << 31)
7539 < (bfd_vma
) 1 << 32);
7543 r_type
= ELF64_R_TYPE (rel
->r_info
);
7546 case R_PPC64_GOT_TLSLD16
:
7547 case R_PPC64_GOT_TLSLD16_LO
:
7548 expecting_tls_get_addr
= 1;
7551 case R_PPC64_GOT_TLSLD16_HI
:
7552 case R_PPC64_GOT_TLSLD16_HA
:
7553 /* These relocs should never be against a symbol
7554 defined in a shared lib. Leave them alone if
7555 that turns out to be the case. */
7562 tls_type
= TLS_TLS
| TLS_LD
;
7565 case R_PPC64_GOT_TLSGD16
:
7566 case R_PPC64_GOT_TLSGD16_LO
:
7567 expecting_tls_get_addr
= 1;
7570 case R_PPC64_GOT_TLSGD16_HI
:
7571 case R_PPC64_GOT_TLSGD16_HA
:
7577 tls_set
= TLS_TLS
| TLS_TPRELGD
;
7579 tls_type
= TLS_TLS
| TLS_GD
;
7582 case R_PPC64_GOT_TPREL16_DS
:
7583 case R_PPC64_GOT_TPREL16_LO_DS
:
7584 case R_PPC64_GOT_TPREL16_HI
:
7585 case R_PPC64_GOT_TPREL16_HA
:
7590 tls_clear
= TLS_TPREL
;
7591 tls_type
= TLS_TLS
| TLS_TPREL
;
7597 case R_PPC64_TOC16_LO
:
7601 if (sym_sec
== NULL
|| sym_sec
!= toc
)
7604 /* Mark this toc entry as referenced by a TLS
7605 code sequence. We can do that now in the
7606 case of R_PPC64_TLS, and after checking for
7607 tls_get_addr for the TOC16 relocs. */
7608 if (toc_ref
== NULL
)
7610 toc_ref
= bfd_zmalloc (toc
->size
/ 8);
7611 if (toc_ref
== NULL
)
7615 value
= h
->root
.u
.def
.value
;
7617 value
= sym
->st_value
;
7618 value
+= rel
->r_addend
;
7619 BFD_ASSERT (value
< toc
->size
&& value
% 8 == 0);
7620 toc_ref_index
= value
/ 8;
7621 if (r_type
== R_PPC64_TLS
7622 || r_type
== R_PPC64_TLSGD
7623 || r_type
== R_PPC64_TLSLD
)
7625 toc_ref
[toc_ref_index
] = 1;
7629 if (pass
!= 0 && toc_ref
[toc_ref_index
] == 0)
7634 expecting_tls_get_addr
= 2;
7637 case R_PPC64_TPREL64
:
7641 || !toc_ref
[rel
->r_offset
/ 8])
7646 tls_set
= TLS_EXPLICIT
;
7647 tls_clear
= TLS_TPREL
;
7652 case R_PPC64_DTPMOD64
:
7656 || !toc_ref
[rel
->r_offset
/ 8])
7658 if (rel
+ 1 < relend
7660 == ELF64_R_INFO (r_symndx
, R_PPC64_DTPREL64
))
7661 && rel
[1].r_offset
== rel
->r_offset
+ 8)
7665 tls_set
= TLS_EXPLICIT
| TLS_GD
;
7668 tls_set
= TLS_EXPLICIT
| TLS_GD
| TLS_TPRELGD
;
7677 tls_set
= TLS_EXPLICIT
;
7688 if (!expecting_tls_get_addr
7689 || !sec
->has_tls_get_addr_call
)
7692 if (rel
+ 1 < relend
7693 && branch_reloc_hash_match (ibfd
, rel
+ 1,
7695 htab
->tls_get_addr_fd
))
7697 if (expecting_tls_get_addr
== 2)
7699 /* Check for toc tls entries. */
7700 unsigned char *toc_tls
;
7703 retval
= get_tls_mask (&toc_tls
, NULL
, NULL
,
7708 if (retval
> 1 && toc_tls
!= NULL
)
7709 toc_ref
[toc_ref_index
] = 1;
7714 if (expecting_tls_get_addr
!= 1)
7717 /* Uh oh, we didn't find the expected call. We
7718 could just mark this symbol to exclude it
7719 from tls optimization but it's safer to skip
7720 the entire section. */
7721 sec
->has_tls_reloc
= 0;
7725 if (expecting_tls_get_addr
&& htab
->tls_get_addr
!= NULL
)
7727 struct plt_entry
*ent
;
7728 for (ent
= htab
->tls_get_addr
->elf
.plt
.plist
;
7731 if (ent
->addend
== 0)
7733 if (ent
->plt
.refcount
> 0)
7735 ent
->plt
.refcount
-= 1;
7736 expecting_tls_get_addr
= 0;
7742 if (expecting_tls_get_addr
&& htab
->tls_get_addr_fd
!= NULL
)
7744 struct plt_entry
*ent
;
7745 for (ent
= htab
->tls_get_addr_fd
->elf
.plt
.plist
;
7748 if (ent
->addend
== 0)
7750 if (ent
->plt
.refcount
> 0)
7751 ent
->plt
.refcount
-= 1;
7759 if ((tls_set
& TLS_EXPLICIT
) == 0)
7761 struct got_entry
*ent
;
7763 /* Adjust got entry for this reloc. */
7767 ent
= elf_local_got_ents (ibfd
)[r_symndx
];
7769 for (; ent
!= NULL
; ent
= ent
->next
)
7770 if (ent
->addend
== rel
->r_addend
7771 && ent
->owner
== ibfd
7772 && ent
->tls_type
== tls_type
)
7779 /* We managed to get rid of a got entry. */
7780 if (ent
->got
.refcount
> 0)
7781 ent
->got
.refcount
-= 1;
7786 /* If we got rid of a DTPMOD/DTPREL reloc pair then
7787 we'll lose one or two dyn relocs. */
7788 if (!dec_dynrel_count (rel
->r_info
, sec
, info
,
7792 if (tls_set
== (TLS_EXPLICIT
| TLS_GD
))
7794 if (!dec_dynrel_count ((rel
+ 1)->r_info
, sec
, info
,
7800 *tls_mask
|= tls_set
;
7801 *tls_mask
&= ~tls_clear
;
7804 if (elf_section_data (sec
)->relocs
!= relstart
)
7808 if (toc_ref
!= NULL
)
7812 && (elf_symtab_hdr (ibfd
).contents
!= (unsigned char *) locsyms
))
7814 if (!info
->keep_memory
)
7817 elf_symtab_hdr (ibfd
).contents
= (unsigned char *) locsyms
;
7823 /* Called via elf_link_hash_traverse from ppc64_elf_edit_toc to adjust
7824 the values of any global symbols in a toc section that has been
7825 edited. Globals in toc sections should be a rarity, so this function
7826 sets a flag if any are found in toc sections other than the one just
7827 edited, so that futher hash table traversals can be avoided. */
7829 struct adjust_toc_info
7832 unsigned long *skip
;
7833 bfd_boolean global_toc_syms
;
7837 adjust_toc_syms (struct elf_link_hash_entry
*h
, void *inf
)
7839 struct ppc_link_hash_entry
*eh
;
7840 struct adjust_toc_info
*toc_inf
= (struct adjust_toc_info
*) inf
;
7842 if (h
->root
.type
== bfd_link_hash_indirect
)
7845 if (h
->root
.type
== bfd_link_hash_warning
)
7846 h
= (struct elf_link_hash_entry
*) h
->root
.u
.i
.link
;
7848 if (h
->root
.type
!= bfd_link_hash_defined
7849 && h
->root
.type
!= bfd_link_hash_defweak
)
7852 eh
= (struct ppc_link_hash_entry
*) h
;
7853 if (eh
->adjust_done
)
7856 if (eh
->elf
.root
.u
.def
.section
== toc_inf
->toc
)
7858 unsigned long skip
= toc_inf
->skip
[eh
->elf
.root
.u
.def
.value
>> 3];
7859 if (skip
!= (unsigned long) -1)
7860 eh
->elf
.root
.u
.def
.value
-= skip
;
7863 (*_bfd_error_handler
)
7864 (_("%s defined in removed toc entry"), eh
->elf
.root
.root
.string
);
7865 eh
->elf
.root
.u
.def
.section
= &bfd_abs_section
;
7866 eh
->elf
.root
.u
.def
.value
= 0;
7868 eh
->adjust_done
= 1;
7870 else if (strcmp (eh
->elf
.root
.u
.def
.section
->name
, ".toc") == 0)
7871 toc_inf
->global_toc_syms
= TRUE
;
7876 /* Examine all relocs referencing .toc sections in order to remove
7877 unused .toc entries. */
7880 ppc64_elf_edit_toc (struct bfd_link_info
*info
)
7883 struct adjust_toc_info toc_inf
;
7885 toc_inf
.global_toc_syms
= TRUE
;
7886 for (ibfd
= info
->input_bfds
; ibfd
!= NULL
; ibfd
= ibfd
->link_next
)
7888 asection
*toc
, *sec
;
7889 Elf_Internal_Shdr
*symtab_hdr
;
7890 Elf_Internal_Sym
*local_syms
;
7891 struct elf_link_hash_entry
**sym_hashes
;
7892 Elf_Internal_Rela
*relstart
, *rel
;
7893 unsigned long *skip
, *drop
;
7894 unsigned char *used
;
7895 unsigned char *keep
, last
, some_unused
;
7897 toc
= bfd_get_section_by_name (ibfd
, ".toc");
7900 || toc
->sec_info_type
== ELF_INFO_TYPE_JUST_SYMS
7901 || elf_discarded_section (toc
))
7905 symtab_hdr
= &elf_symtab_hdr (ibfd
);
7906 sym_hashes
= elf_sym_hashes (ibfd
);
7908 /* Look at sections dropped from the final link. */
7911 for (sec
= ibfd
->sections
; sec
!= NULL
; sec
= sec
->next
)
7913 if (sec
->reloc_count
== 0
7914 || !elf_discarded_section (sec
)
7915 || get_opd_info (sec
)
7916 || (sec
->flags
& SEC_ALLOC
) == 0
7917 || (sec
->flags
& SEC_DEBUGGING
) != 0)
7920 relstart
= _bfd_elf_link_read_relocs (ibfd
, sec
, NULL
, NULL
, FALSE
);
7921 if (relstart
== NULL
)
7924 /* Run through the relocs to see which toc entries might be
7926 for (rel
= relstart
; rel
< relstart
+ sec
->reloc_count
; ++rel
)
7928 enum elf_ppc64_reloc_type r_type
;
7929 unsigned long r_symndx
;
7931 struct elf_link_hash_entry
*h
;
7932 Elf_Internal_Sym
*sym
;
7935 r_type
= ELF64_R_TYPE (rel
->r_info
);
7942 case R_PPC64_TOC16_LO
:
7943 case R_PPC64_TOC16_HI
:
7944 case R_PPC64_TOC16_HA
:
7945 case R_PPC64_TOC16_DS
:
7946 case R_PPC64_TOC16_LO_DS
:
7950 r_symndx
= ELF64_R_SYM (rel
->r_info
);
7951 if (!get_sym_h (&h
, &sym
, &sym_sec
, NULL
, &local_syms
,
7959 val
= h
->root
.u
.def
.value
;
7961 val
= sym
->st_value
;
7962 val
+= rel
->r_addend
;
7964 if (val
>= toc
->size
)
7967 /* Anything in the toc ought to be aligned to 8 bytes.
7968 If not, don't mark as unused. */
7974 skip
= bfd_zmalloc (sizeof (*skip
) * (toc
->size
+ 7) / 8);
7982 if (elf_section_data (sec
)->relocs
!= relstart
)
7989 used
= bfd_zmalloc (sizeof (*used
) * (toc
->size
+ 7) / 8);
7993 if (local_syms
!= NULL
7994 && symtab_hdr
->contents
!= (unsigned char *) local_syms
)
7998 && elf_section_data (sec
)->relocs
!= relstart
)
8005 /* Now check all kept sections that might reference the toc.
8006 Check the toc itself last. */
8007 for (sec
= (ibfd
->sections
== toc
&& toc
->next
? toc
->next
8010 sec
= (sec
== toc
? NULL
8011 : sec
->next
== NULL
? toc
8012 : sec
->next
== toc
&& toc
->next
? toc
->next
8017 if (sec
->reloc_count
== 0
8018 || elf_discarded_section (sec
)
8019 || get_opd_info (sec
)
8020 || (sec
->flags
& SEC_ALLOC
) == 0
8021 || (sec
->flags
& SEC_DEBUGGING
) != 0)
8024 relstart
= _bfd_elf_link_read_relocs (ibfd
, sec
, NULL
, NULL
, TRUE
);
8025 if (relstart
== NULL
)
8028 /* Mark toc entries referenced as used. */
8031 for (rel
= relstart
; rel
< relstart
+ sec
->reloc_count
; ++rel
)
8033 enum elf_ppc64_reloc_type r_type
;
8034 unsigned long r_symndx
;
8036 struct elf_link_hash_entry
*h
;
8037 Elf_Internal_Sym
*sym
;
8040 r_type
= ELF64_R_TYPE (rel
->r_info
);
8044 case R_PPC64_TOC16_LO
:
8045 case R_PPC64_TOC16_HI
:
8046 case R_PPC64_TOC16_HA
:
8047 case R_PPC64_TOC16_DS
:
8048 case R_PPC64_TOC16_LO_DS
:
8049 /* In case we're taking addresses of toc entries. */
8050 case R_PPC64_ADDR64
:
8057 r_symndx
= ELF64_R_SYM (rel
->r_info
);
8058 if (!get_sym_h (&h
, &sym
, &sym_sec
, NULL
, &local_syms
,
8069 val
= h
->root
.u
.def
.value
;
8071 val
= sym
->st_value
;
8072 val
+= rel
->r_addend
;
8074 if (val
>= toc
->size
)
8077 /* For the toc section, we only mark as used if
8078 this entry itself isn't unused. */
8081 && (used
[rel
->r_offset
>> 3]
8082 || !skip
[rel
->r_offset
>> 3]))
8083 /* Do all the relocs again, to catch reference
8092 /* Merge the used and skip arrays. Assume that TOC
8093 doublewords not appearing as either used or unused belong
8094 to to an entry more than one doubleword in size. */
8095 for (drop
= skip
, keep
= used
, last
= 0, some_unused
= 0;
8096 drop
< skip
+ (toc
->size
+ 7) / 8;
8117 bfd_byte
*contents
, *src
;
8120 /* Shuffle the toc contents, and at the same time convert the
8121 skip array from booleans into offsets. */
8122 if (!bfd_malloc_and_get_section (ibfd
, toc
, &contents
))
8125 elf_section_data (toc
)->this_hdr
.contents
= contents
;
8127 for (src
= contents
, off
= 0, drop
= skip
;
8128 src
< contents
+ toc
->size
;
8133 *drop
= (unsigned long) -1;
8139 memcpy (src
- off
, src
, 8);
8142 toc
->rawsize
= toc
->size
;
8143 toc
->size
= src
- contents
- off
;
8145 if (toc
->reloc_count
!= 0)
8147 Elf_Internal_Rela
*wrel
;
8150 /* Read toc relocs. */
8151 relstart
= _bfd_elf_link_read_relocs (ibfd
, toc
, NULL
, NULL
,
8153 if (relstart
== NULL
)
8156 /* Remove unused toc relocs, and adjust those we keep. */
8158 for (rel
= relstart
; rel
< relstart
+ toc
->reloc_count
; ++rel
)
8159 if (skip
[rel
->r_offset
>> 3] != (unsigned long) -1)
8161 wrel
->r_offset
= rel
->r_offset
- skip
[rel
->r_offset
>> 3];
8162 wrel
->r_info
= rel
->r_info
;
8163 wrel
->r_addend
= rel
->r_addend
;
8166 else if (!dec_dynrel_count (rel
->r_info
, toc
, info
,
8167 &local_syms
, NULL
, NULL
))
8170 toc
->reloc_count
= wrel
- relstart
;
8171 sz
= elf_section_data (toc
)->rel_hdr
.sh_entsize
;
8172 elf_section_data (toc
)->rel_hdr
.sh_size
= toc
->reloc_count
* sz
;
8173 BFD_ASSERT (elf_section_data (toc
)->rel_hdr2
== NULL
);
8176 /* Adjust addends for relocs against the toc section sym. */
8177 for (sec
= ibfd
->sections
; sec
!= NULL
; sec
= sec
->next
)
8179 if (sec
->reloc_count
== 0
8180 || elf_discarded_section (sec
))
8183 relstart
= _bfd_elf_link_read_relocs (ibfd
, sec
, NULL
, NULL
,
8185 if (relstart
== NULL
)
8188 for (rel
= relstart
; rel
< relstart
+ sec
->reloc_count
; ++rel
)
8190 enum elf_ppc64_reloc_type r_type
;
8191 unsigned long r_symndx
;
8193 struct elf_link_hash_entry
*h
;
8194 Elf_Internal_Sym
*sym
;
8196 r_type
= ELF64_R_TYPE (rel
->r_info
);
8203 case R_PPC64_TOC16_LO
:
8204 case R_PPC64_TOC16_HI
:
8205 case R_PPC64_TOC16_HA
:
8206 case R_PPC64_TOC16_DS
:
8207 case R_PPC64_TOC16_LO_DS
:
8208 case R_PPC64_ADDR64
:
8212 r_symndx
= ELF64_R_SYM (rel
->r_info
);
8213 if (!get_sym_h (&h
, &sym
, &sym_sec
, NULL
, &local_syms
,
8217 if (sym_sec
!= toc
|| h
!= NULL
|| sym
->st_value
!= 0)
8220 rel
->r_addend
-= skip
[rel
->r_addend
>> 3];
8224 /* We shouldn't have local or global symbols defined in the TOC,
8225 but handle them anyway. */
8226 if (local_syms
!= NULL
)
8228 Elf_Internal_Sym
*sym
;
8230 for (sym
= local_syms
;
8231 sym
< local_syms
+ symtab_hdr
->sh_info
;
8233 if (sym
->st_value
!= 0
8234 && bfd_section_from_elf_index (ibfd
, sym
->st_shndx
) == toc
)
8236 if (skip
[sym
->st_value
>> 3] != (unsigned long) -1)
8237 sym
->st_value
-= skip
[sym
->st_value
>> 3];
8240 (*_bfd_error_handler
)
8241 (_("%s defined in removed toc entry"),
8242 bfd_elf_sym_name (ibfd
, symtab_hdr
, sym
,
8245 sym
->st_shndx
= SHN_ABS
;
8247 symtab_hdr
->contents
= (unsigned char *) local_syms
;
8251 /* Finally, adjust any global syms defined in the toc. */
8252 if (toc_inf
.global_toc_syms
)
8255 toc_inf
.skip
= skip
;
8256 toc_inf
.global_toc_syms
= FALSE
;
8257 elf_link_hash_traverse (elf_hash_table (info
), adjust_toc_syms
,
8262 if (local_syms
!= NULL
8263 && symtab_hdr
->contents
!= (unsigned char *) local_syms
)
8265 if (!info
->keep_memory
)
8268 symtab_hdr
->contents
= (unsigned char *) local_syms
;
8276 /* Allocate space for one GOT entry. */
8279 allocate_got (struct elf_link_hash_entry
*h
,
8280 struct bfd_link_info
*info
,
8281 struct got_entry
*gent
)
8283 struct ppc_link_hash_table
*htab
= ppc_hash_table (info
);
8285 struct ppc_link_hash_entry
*eh
= (struct ppc_link_hash_entry
*) h
;
8286 int entsize
= (gent
->tls_type
& eh
->tls_mask
& (TLS_GD
| TLS_LD
)
8288 int rentsize
= (gent
->tls_type
& eh
->tls_mask
& TLS_GD
8289 ? 2 : 1) * sizeof (Elf64_External_Rela
);
8290 asection
*got
= ppc64_elf_tdata (gent
->owner
)->got
;
8292 gent
->got
.offset
= got
->size
;
8293 got
->size
+= entsize
;
8295 dyn
= htab
->elf
.dynamic_sections_created
;
8297 || WILL_CALL_FINISH_DYNAMIC_SYMBOL (dyn
, 0, h
))
8298 && (ELF_ST_VISIBILITY (h
->other
) == STV_DEFAULT
8299 || h
->root
.type
!= bfd_link_hash_undefweak
))
8301 asection
*relgot
= ppc64_elf_tdata (gent
->owner
)->relgot
;
8302 relgot
->size
+= rentsize
;
8304 else if (h
->type
== STT_GNU_IFUNC
)
8306 asection
*relgot
= htab
->reliplt
;
8307 relgot
->size
+= rentsize
;
8308 htab
->got_reli_size
+= rentsize
;
8312 /* This function merges got entries in the same toc group. */
8315 merge_got_entries (struct got_entry
**pent
)
8317 struct got_entry
*ent
, *ent2
;
8319 for (ent
= *pent
; ent
!= NULL
; ent
= ent
->next
)
8320 if (!ent
->is_indirect
)
8321 for (ent2
= ent
->next
; ent2
!= NULL
; ent2
= ent2
->next
)
8322 if (!ent2
->is_indirect
8323 && ent2
->addend
== ent
->addend
8324 && ent2
->tls_type
== ent
->tls_type
8325 && elf_gp (ent2
->owner
) == elf_gp (ent
->owner
))
8327 ent2
->is_indirect
= TRUE
;
8328 ent2
->got
.ent
= ent
;
8332 /* Allocate space in .plt, .got and associated reloc sections for
8336 allocate_dynrelocs (struct elf_link_hash_entry
*h
, void *inf
)
8338 struct bfd_link_info
*info
;
8339 struct ppc_link_hash_table
*htab
;
8341 struct ppc_link_hash_entry
*eh
;
8342 struct ppc_dyn_relocs
*p
;
8343 struct got_entry
**pgent
, *gent
;
8345 if (h
->root
.type
== bfd_link_hash_indirect
)
8348 if (h
->root
.type
== bfd_link_hash_warning
)
8349 h
= (struct elf_link_hash_entry
*) h
->root
.u
.i
.link
;
8351 info
= (struct bfd_link_info
*) inf
;
8352 htab
= ppc_hash_table (info
);
8356 if ((htab
->elf
.dynamic_sections_created
8358 && WILL_CALL_FINISH_DYNAMIC_SYMBOL (1, info
->shared
, h
))
8359 || h
->type
== STT_GNU_IFUNC
)
8361 struct plt_entry
*pent
;
8362 bfd_boolean doneone
= FALSE
;
8363 for (pent
= h
->plt
.plist
; pent
!= NULL
; pent
= pent
->next
)
8364 if (pent
->plt
.refcount
> 0)
8366 if (!htab
->elf
.dynamic_sections_created
8367 || h
->dynindx
== -1)
8370 pent
->plt
.offset
= s
->size
;
8371 s
->size
+= PLT_ENTRY_SIZE
;
8376 /* If this is the first .plt entry, make room for the special
8380 s
->size
+= PLT_INITIAL_ENTRY_SIZE
;
8382 pent
->plt
.offset
= s
->size
;
8384 /* Make room for this entry. */
8385 s
->size
+= PLT_ENTRY_SIZE
;
8387 /* Make room for the .glink code. */
8390 s
->size
+= GLINK_CALL_STUB_SIZE
;
8391 /* We need bigger stubs past index 32767. */
8392 if (s
->size
>= GLINK_CALL_STUB_SIZE
+ 32768*2*4)
8396 /* We also need to make an entry in the .rela.plt section. */
8399 s
->size
+= sizeof (Elf64_External_Rela
);
8403 pent
->plt
.offset
= (bfd_vma
) -1;
8406 h
->plt
.plist
= NULL
;
8412 h
->plt
.plist
= NULL
;
8416 eh
= (struct ppc_link_hash_entry
*) h
;
8417 /* Run through the TLS GD got entries first if we're changing them
8419 if ((eh
->tls_mask
& TLS_TPRELGD
) != 0)
8420 for (gent
= h
->got
.glist
; gent
!= NULL
; gent
= gent
->next
)
8421 if (gent
->got
.refcount
> 0
8422 && (gent
->tls_type
& TLS_GD
) != 0)
8424 /* This was a GD entry that has been converted to TPREL. If
8425 there happens to be a TPREL entry we can use that one. */
8426 struct got_entry
*ent
;
8427 for (ent
= h
->got
.glist
; ent
!= NULL
; ent
= ent
->next
)
8428 if (ent
->got
.refcount
> 0
8429 && (ent
->tls_type
& TLS_TPREL
) != 0
8430 && ent
->addend
== gent
->addend
8431 && ent
->owner
== gent
->owner
)
8433 gent
->got
.refcount
= 0;
8437 /* If not, then we'll be using our own TPREL entry. */
8438 if (gent
->got
.refcount
!= 0)
8439 gent
->tls_type
= TLS_TLS
| TLS_TPREL
;
8442 /* Remove any list entry that won't generate a word in the GOT before
8443 we call merge_got_entries. Otherwise we risk merging to empty
8445 pgent
= &h
->got
.glist
;
8446 while ((gent
= *pgent
) != NULL
)
8447 if (gent
->got
.refcount
> 0)
8449 if ((gent
->tls_type
& TLS_LD
) != 0
8452 ppc64_tlsld_got (gent
->owner
)->got
.refcount
+= 1;
8453 *pgent
= gent
->next
;
8456 pgent
= &gent
->next
;
8459 *pgent
= gent
->next
;
8461 if (!htab
->do_multi_toc
)
8462 merge_got_entries (&h
->got
.glist
);
8464 for (gent
= h
->got
.glist
; gent
!= NULL
; gent
= gent
->next
)
8465 if (!gent
->is_indirect
)
8467 /* Make sure this symbol is output as a dynamic symbol.
8468 Undefined weak syms won't yet be marked as dynamic,
8469 nor will all TLS symbols. */
8470 if (h
->dynindx
== -1
8472 && h
->type
!= STT_GNU_IFUNC
8473 && htab
->elf
.dynamic_sections_created
)
8475 if (! bfd_elf_link_record_dynamic_symbol (info
, h
))
8479 if (!is_ppc64_elf (gent
->owner
))
8482 allocate_got (h
, info
, gent
);
8485 if (eh
->dyn_relocs
== NULL
8486 || (!htab
->elf
.dynamic_sections_created
8487 && h
->type
!= STT_GNU_IFUNC
))
8490 /* In the shared -Bsymbolic case, discard space allocated for
8491 dynamic pc-relative relocs against symbols which turn out to be
8492 defined in regular objects. For the normal shared case, discard
8493 space for relocs that have become local due to symbol visibility
8498 /* Relocs that use pc_count are those that appear on a call insn,
8499 or certain REL relocs (see must_be_dyn_reloc) that can be
8500 generated via assembly. We want calls to protected symbols to
8501 resolve directly to the function rather than going via the plt.
8502 If people want function pointer comparisons to work as expected
8503 then they should avoid writing weird assembly. */
8504 if (SYMBOL_CALLS_LOCAL (info
, h
))
8506 struct ppc_dyn_relocs
**pp
;
8508 for (pp
= &eh
->dyn_relocs
; (p
= *pp
) != NULL
; )
8510 p
->count
-= p
->pc_count
;
8519 /* Also discard relocs on undefined weak syms with non-default
8521 if (eh
->dyn_relocs
!= NULL
8522 && h
->root
.type
== bfd_link_hash_undefweak
)
8524 if (ELF_ST_VISIBILITY (h
->other
) != STV_DEFAULT
)
8525 eh
->dyn_relocs
= NULL
;
8527 /* Make sure this symbol is output as a dynamic symbol.
8528 Undefined weak syms won't yet be marked as dynamic. */
8529 else if (h
->dynindx
== -1
8530 && !h
->forced_local
)
8532 if (! bfd_elf_link_record_dynamic_symbol (info
, h
))
8537 else if (h
->type
== STT_GNU_IFUNC
)
8539 if (!h
->non_got_ref
)
8540 eh
->dyn_relocs
= NULL
;
8542 else if (ELIMINATE_COPY_RELOCS
)
8544 /* For the non-shared case, discard space for relocs against
8545 symbols which turn out to need copy relocs or are not
8551 /* Make sure this symbol is output as a dynamic symbol.
8552 Undefined weak syms won't yet be marked as dynamic. */
8553 if (h
->dynindx
== -1
8554 && !h
->forced_local
)
8556 if (! bfd_elf_link_record_dynamic_symbol (info
, h
))
8560 /* If that succeeded, we know we'll be keeping all the
8562 if (h
->dynindx
!= -1)
8566 eh
->dyn_relocs
= NULL
;
8571 /* Finally, allocate space. */
8572 for (p
= eh
->dyn_relocs
; p
!= NULL
; p
= p
->next
)
8574 asection
*sreloc
= elf_section_data (p
->sec
)->sreloc
;
8575 if (!htab
->elf
.dynamic_sections_created
)
8576 sreloc
= htab
->reliplt
;
8577 sreloc
->size
+= p
->count
* sizeof (Elf64_External_Rela
);
8583 /* Find any dynamic relocs that apply to read-only sections. */
8586 readonly_dynrelocs (struct elf_link_hash_entry
*h
, void *inf
)
8588 struct ppc_link_hash_entry
*eh
;
8589 struct ppc_dyn_relocs
*p
;
8591 if (h
->root
.type
== bfd_link_hash_warning
)
8592 h
= (struct elf_link_hash_entry
*) h
->root
.u
.i
.link
;
8594 eh
= (struct ppc_link_hash_entry
*) h
;
8595 for (p
= eh
->dyn_relocs
; p
!= NULL
; p
= p
->next
)
8597 asection
*s
= p
->sec
->output_section
;
8599 if (s
!= NULL
&& (s
->flags
& SEC_READONLY
) != 0)
8601 struct bfd_link_info
*info
= inf
;
8603 info
->flags
|= DF_TEXTREL
;
8605 /* Not an error, just cut short the traversal. */
8612 /* Set the sizes of the dynamic sections. */
8615 ppc64_elf_size_dynamic_sections (bfd
*output_bfd ATTRIBUTE_UNUSED
,
8616 struct bfd_link_info
*info
)
8618 struct ppc_link_hash_table
*htab
;
8623 struct got_entry
*first_tlsld
;
8625 htab
= ppc_hash_table (info
);
8629 dynobj
= htab
->elf
.dynobj
;
8633 if (htab
->elf
.dynamic_sections_created
)
8635 /* Set the contents of the .interp section to the interpreter. */
8636 if (info
->executable
)
8638 s
= bfd_get_section_by_name (dynobj
, ".interp");
8641 s
->size
= sizeof ELF_DYNAMIC_INTERPRETER
;
8642 s
->contents
= (unsigned char *) ELF_DYNAMIC_INTERPRETER
;
8646 /* Set up .got offsets for local syms, and space for local dynamic
8648 for (ibfd
= info
->input_bfds
; ibfd
!= NULL
; ibfd
= ibfd
->link_next
)
8650 struct got_entry
**lgot_ents
;
8651 struct got_entry
**end_lgot_ents
;
8652 struct plt_entry
**local_plt
;
8653 struct plt_entry
**end_local_plt
;
8654 unsigned char *lgot_masks
;
8655 bfd_size_type locsymcount
;
8656 Elf_Internal_Shdr
*symtab_hdr
;
8659 if (!is_ppc64_elf (ibfd
))
8662 for (s
= ibfd
->sections
; s
!= NULL
; s
= s
->next
)
8664 struct ppc_dyn_relocs
*p
;
8666 for (p
= elf_section_data (s
)->local_dynrel
; p
!= NULL
; p
= p
->next
)
8668 if (!bfd_is_abs_section (p
->sec
)
8669 && bfd_is_abs_section (p
->sec
->output_section
))
8671 /* Input section has been discarded, either because
8672 it is a copy of a linkonce section or due to
8673 linker script /DISCARD/, so we'll be discarding
8676 else if (p
->count
!= 0)
8678 srel
= elf_section_data (p
->sec
)->sreloc
;
8679 if (!htab
->elf
.dynamic_sections_created
)
8680 srel
= htab
->reliplt
;
8681 srel
->size
+= p
->count
* sizeof (Elf64_External_Rela
);
8682 if ((p
->sec
->output_section
->flags
& SEC_READONLY
) != 0)
8683 info
->flags
|= DF_TEXTREL
;
8688 lgot_ents
= elf_local_got_ents (ibfd
);
8692 symtab_hdr
= &elf_symtab_hdr (ibfd
);
8693 locsymcount
= symtab_hdr
->sh_info
;
8694 end_lgot_ents
= lgot_ents
+ locsymcount
;
8695 local_plt
= (struct plt_entry
**) end_lgot_ents
;
8696 end_local_plt
= local_plt
+ locsymcount
;
8697 lgot_masks
= (unsigned char *) end_local_plt
;
8698 s
= ppc64_elf_tdata (ibfd
)->got
;
8699 srel
= ppc64_elf_tdata (ibfd
)->relgot
;
8700 for (; lgot_ents
< end_lgot_ents
; ++lgot_ents
, ++lgot_masks
)
8702 struct got_entry
**pent
, *ent
;
8705 while ((ent
= *pent
) != NULL
)
8706 if (ent
->got
.refcount
> 0)
8708 if ((ent
->tls_type
& *lgot_masks
& TLS_LD
) != 0)
8710 ppc64_tlsld_got (ibfd
)->got
.refcount
+= 1;
8715 unsigned int num
= 1;
8716 ent
->got
.offset
= s
->size
;
8717 if ((ent
->tls_type
& *lgot_masks
& TLS_GD
) != 0)
8721 srel
->size
+= num
* sizeof (Elf64_External_Rela
);
8722 else if ((*lgot_masks
& PLT_IFUNC
) != 0)
8725 += num
* sizeof (Elf64_External_Rela
);
8727 += num
* sizeof (Elf64_External_Rela
);
8736 /* Allocate space for calls to local STT_GNU_IFUNC syms in .iplt. */
8737 for (; local_plt
< end_local_plt
; ++local_plt
)
8739 struct plt_entry
*ent
;
8741 for (ent
= *local_plt
; ent
!= NULL
; ent
= ent
->next
)
8742 if (ent
->plt
.refcount
> 0)
8745 ent
->plt
.offset
= s
->size
;
8746 s
->size
+= PLT_ENTRY_SIZE
;
8748 htab
->reliplt
->size
+= sizeof (Elf64_External_Rela
);
8751 ent
->plt
.offset
= (bfd_vma
) -1;
8755 /* Allocate global sym .plt and .got entries, and space for global
8756 sym dynamic relocs. */
8757 elf_link_hash_traverse (&htab
->elf
, allocate_dynrelocs
, info
);
8760 for (ibfd
= info
->input_bfds
; ibfd
!= NULL
; ibfd
= ibfd
->link_next
)
8762 struct got_entry
*ent
;
8764 if (!is_ppc64_elf (ibfd
))
8767 ent
= ppc64_tlsld_got (ibfd
);
8768 if (ent
->got
.refcount
> 0)
8770 if (!htab
->do_multi_toc
&& first_tlsld
!= NULL
)
8772 ent
->is_indirect
= TRUE
;
8773 ent
->got
.ent
= first_tlsld
;
8777 if (first_tlsld
== NULL
)
8779 s
= ppc64_elf_tdata (ibfd
)->got
;
8780 ent
->got
.offset
= s
->size
;
8785 asection
*srel
= ppc64_elf_tdata (ibfd
)->relgot
;
8786 srel
->size
+= sizeof (Elf64_External_Rela
);
8791 ent
->got
.offset
= (bfd_vma
) -1;
8794 /* We now have determined the sizes of the various dynamic sections.
8795 Allocate memory for them. */
8797 for (s
= dynobj
->sections
; s
!= NULL
; s
= s
->next
)
8799 if ((s
->flags
& SEC_LINKER_CREATED
) == 0)
8802 if (s
== htab
->brlt
|| s
== htab
->relbrlt
)
8803 /* These haven't been allocated yet; don't strip. */
8805 else if (s
== htab
->got
8809 || s
== htab
->dynbss
)
8811 /* Strip this section if we don't need it; see the
8814 else if (CONST_STRNEQ (bfd_get_section_name (dynobj
, s
), ".rela"))
8818 if (s
!= htab
->relplt
)
8821 /* We use the reloc_count field as a counter if we need
8822 to copy relocs into the output file. */
8828 /* It's not one of our sections, so don't allocate space. */
8834 /* If we don't need this section, strip it from the
8835 output file. This is mostly to handle .rela.bss and
8836 .rela.plt. We must create both sections in
8837 create_dynamic_sections, because they must be created
8838 before the linker maps input sections to output
8839 sections. The linker does that before
8840 adjust_dynamic_symbol is called, and it is that
8841 function which decides whether anything needs to go
8842 into these sections. */
8843 s
->flags
|= SEC_EXCLUDE
;
8847 if ((s
->flags
& SEC_HAS_CONTENTS
) == 0)
8850 /* Allocate memory for the section contents. We use bfd_zalloc
8851 here in case unused entries are not reclaimed before the
8852 section's contents are written out. This should not happen,
8853 but this way if it does we get a R_PPC64_NONE reloc in .rela
8854 sections instead of garbage.
8855 We also rely on the section contents being zero when writing
8857 s
->contents
= bfd_zalloc (dynobj
, s
->size
);
8858 if (s
->contents
== NULL
)
8862 for (ibfd
= info
->input_bfds
; ibfd
!= NULL
; ibfd
= ibfd
->link_next
)
8864 if (!is_ppc64_elf (ibfd
))
8867 s
= ppc64_elf_tdata (ibfd
)->got
;
8868 if (s
!= NULL
&& s
!= htab
->got
)
8871 s
->flags
|= SEC_EXCLUDE
;
8874 s
->contents
= bfd_zalloc (ibfd
, s
->size
);
8875 if (s
->contents
== NULL
)
8879 s
= ppc64_elf_tdata (ibfd
)->relgot
;
8883 s
->flags
|= SEC_EXCLUDE
;
8886 s
->contents
= bfd_zalloc (ibfd
, s
->size
);
8887 if (s
->contents
== NULL
)
8895 if (htab
->elf
.dynamic_sections_created
)
8897 /* Add some entries to the .dynamic section. We fill in the
8898 values later, in ppc64_elf_finish_dynamic_sections, but we
8899 must add the entries now so that we get the correct size for
8900 the .dynamic section. The DT_DEBUG entry is filled in by the
8901 dynamic linker and used by the debugger. */
8902 #define add_dynamic_entry(TAG, VAL) \
8903 _bfd_elf_add_dynamic_entry (info, TAG, VAL)
8905 if (info
->executable
)
8907 if (!add_dynamic_entry (DT_DEBUG
, 0))
8911 if (htab
->plt
!= NULL
&& htab
->plt
->size
!= 0)
8913 if (!add_dynamic_entry (DT_PLTGOT
, 0)
8914 || !add_dynamic_entry (DT_PLTRELSZ
, 0)
8915 || !add_dynamic_entry (DT_PLTREL
, DT_RELA
)
8916 || !add_dynamic_entry (DT_JMPREL
, 0)
8917 || !add_dynamic_entry (DT_PPC64_GLINK
, 0))
8923 if (!add_dynamic_entry (DT_PPC64_OPD
, 0)
8924 || !add_dynamic_entry (DT_PPC64_OPDSZ
, 0))
8928 if (!htab
->no_tls_get_addr_opt
8929 && htab
->tls_get_addr_fd
!= NULL
8930 && htab
->tls_get_addr_fd
->elf
.plt
.plist
!= NULL
8931 && !add_dynamic_entry (DT_PPC64_TLSOPT
, 0))
8936 if (!add_dynamic_entry (DT_RELA
, 0)
8937 || !add_dynamic_entry (DT_RELASZ
, 0)
8938 || !add_dynamic_entry (DT_RELAENT
, sizeof (Elf64_External_Rela
)))
8941 /* If any dynamic relocs apply to a read-only section,
8942 then we need a DT_TEXTREL entry. */
8943 if ((info
->flags
& DF_TEXTREL
) == 0)
8944 elf_link_hash_traverse (&htab
->elf
, readonly_dynrelocs
, info
);
8946 if ((info
->flags
& DF_TEXTREL
) != 0)
8948 if (!add_dynamic_entry (DT_TEXTREL
, 0))
8953 #undef add_dynamic_entry
8958 /* Determine the type of stub needed, if any, for a call. */
8960 static inline enum ppc_stub_type
8961 ppc_type_of_stub (asection
*input_sec
,
8962 const Elf_Internal_Rela
*rel
,
8963 struct ppc_link_hash_entry
**hash
,
8964 struct plt_entry
**plt_ent
,
8965 bfd_vma destination
)
8967 struct ppc_link_hash_entry
*h
= *hash
;
8969 bfd_vma branch_offset
;
8970 bfd_vma max_branch_offset
;
8971 enum elf_ppc64_reloc_type r_type
;
8975 struct plt_entry
*ent
;
8976 struct ppc_link_hash_entry
*fdh
= h
;
8978 && h
->oh
->is_func_descriptor
)
8979 fdh
= ppc_follow_link (h
->oh
);
8981 for (ent
= fdh
->elf
.plt
.plist
; ent
!= NULL
; ent
= ent
->next
)
8982 if (ent
->addend
== rel
->r_addend
8983 && ent
->plt
.offset
!= (bfd_vma
) -1)
8987 return ppc_stub_plt_call
;
8990 /* Here, we know we don't have a plt entry. If we don't have a
8991 either a defined function descriptor or a defined entry symbol
8992 in a regular object file, then it is pointless trying to make
8993 any other type of stub. */
8994 if (!((fdh
->elf
.root
.type
== bfd_link_hash_defined
8995 || fdh
->elf
.root
.type
== bfd_link_hash_defweak
)
8996 && fdh
->elf
.root
.u
.def
.section
->output_section
!= NULL
)
8997 && !((h
->elf
.root
.type
== bfd_link_hash_defined
8998 || h
->elf
.root
.type
== bfd_link_hash_defweak
)
8999 && h
->elf
.root
.u
.def
.section
->output_section
!= NULL
))
9000 return ppc_stub_none
;
9002 else if (elf_local_got_ents (input_sec
->owner
) != NULL
)
9004 Elf_Internal_Shdr
*symtab_hdr
= &elf_symtab_hdr (input_sec
->owner
);
9005 struct plt_entry
**local_plt
= (struct plt_entry
**)
9006 elf_local_got_ents (input_sec
->owner
) + symtab_hdr
->sh_info
;
9007 unsigned long r_symndx
= ELF64_R_SYM (rel
->r_info
);
9009 if (local_plt
[r_symndx
] != NULL
)
9011 struct plt_entry
*ent
;
9013 for (ent
= local_plt
[r_symndx
]; ent
!= NULL
; ent
= ent
->next
)
9014 if (ent
->addend
== rel
->r_addend
9015 && ent
->plt
.offset
!= (bfd_vma
) -1)
9018 return ppc_stub_plt_call
;
9023 /* Determine where the call point is. */
9024 location
= (input_sec
->output_offset
9025 + input_sec
->output_section
->vma
9028 branch_offset
= destination
- location
;
9029 r_type
= ELF64_R_TYPE (rel
->r_info
);
9031 /* Determine if a long branch stub is needed. */
9032 max_branch_offset
= 1 << 25;
9033 if (r_type
!= R_PPC64_REL24
)
9034 max_branch_offset
= 1 << 15;
9036 if (branch_offset
+ max_branch_offset
>= 2 * max_branch_offset
)
9037 /* We need a stub. Figure out whether a long_branch or plt_branch
9039 return ppc_stub_long_branch
;
9041 return ppc_stub_none
;
9044 /* Build a .plt call stub. */
9046 static inline bfd_byte
*
9047 build_plt_stub (bfd
*obfd
, bfd_byte
*p
, int offset
, Elf_Internal_Rela
*r
)
9049 #define PPC_LO(v) ((v) & 0xffff)
9050 #define PPC_HI(v) (((v) >> 16) & 0xffff)
9051 #define PPC_HA(v) PPC_HI ((v) + 0x8000)
9053 if (PPC_HA (offset
) != 0)
9057 r
[0].r_info
= ELF64_R_INFO (0, R_PPC64_TOC16_HA
);
9058 r
[1].r_offset
= r
[0].r_offset
+ 8;
9059 r
[1].r_info
= ELF64_R_INFO (0, R_PPC64_TOC16_LO_DS
);
9060 r
[1].r_addend
= r
[0].r_addend
;
9061 if (PPC_HA (offset
+ 16) != PPC_HA (offset
))
9063 r
[2].r_offset
= r
[1].r_offset
+ 4;
9064 r
[2].r_info
= ELF64_R_INFO (0, R_PPC64_TOC16_LO
);
9065 r
[2].r_addend
= r
[0].r_addend
;
9069 r
[2].r_offset
= r
[1].r_offset
+ 8;
9070 r
[2].r_info
= ELF64_R_INFO (0, R_PPC64_TOC16_LO_DS
);
9071 r
[2].r_addend
= r
[0].r_addend
+ 8;
9072 r
[3].r_offset
= r
[2].r_offset
+ 4;
9073 r
[3].r_info
= ELF64_R_INFO (0, R_PPC64_TOC16_LO_DS
);
9074 r
[3].r_addend
= r
[0].r_addend
+ 16;
9077 bfd_put_32 (obfd
, ADDIS_R12_R2
| PPC_HA (offset
), p
), p
+= 4;
9078 bfd_put_32 (obfd
, STD_R2_40R1
, p
), p
+= 4;
9079 bfd_put_32 (obfd
, LD_R11_0R12
| PPC_LO (offset
), p
), p
+= 4;
9080 if (PPC_HA (offset
+ 16) != PPC_HA (offset
))
9082 bfd_put_32 (obfd
, ADDI_R12_R12
| PPC_LO (offset
), p
), p
+= 4;
9085 bfd_put_32 (obfd
, MTCTR_R11
, p
), p
+= 4;
9086 bfd_put_32 (obfd
, LD_R2_0R12
| PPC_LO (offset
+ 8), p
), p
+= 4;
9087 bfd_put_32 (obfd
, LD_R11_0R12
| PPC_LO (offset
+ 16), p
), p
+= 4;
9088 bfd_put_32 (obfd
, BCTR
, p
), p
+= 4;
9095 r
[0].r_info
= ELF64_R_INFO (0, R_PPC64_TOC16_DS
);
9096 if (PPC_HA (offset
+ 16) != PPC_HA (offset
))
9098 r
[1].r_offset
= r
[0].r_offset
+ 4;
9099 r
[1].r_info
= ELF64_R_INFO (0, R_PPC64_TOC16
);
9100 r
[1].r_addend
= r
[0].r_addend
;
9104 r
[1].r_offset
= r
[0].r_offset
+ 8;
9105 r
[1].r_info
= ELF64_R_INFO (0, R_PPC64_TOC16_DS
);
9106 r
[1].r_addend
= r
[0].r_addend
+ 16;
9107 r
[2].r_offset
= r
[1].r_offset
+ 4;
9108 r
[2].r_info
= ELF64_R_INFO (0, R_PPC64_TOC16_DS
);
9109 r
[2].r_addend
= r
[0].r_addend
+ 8;
9112 bfd_put_32 (obfd
, STD_R2_40R1
, p
), p
+= 4;
9113 bfd_put_32 (obfd
, LD_R11_0R2
| PPC_LO (offset
), p
), p
+= 4;
9114 if (PPC_HA (offset
+ 16) != PPC_HA (offset
))
9116 bfd_put_32 (obfd
, ADDI_R2_R2
| PPC_LO (offset
), p
), p
+= 4;
9119 bfd_put_32 (obfd
, MTCTR_R11
, p
), p
+= 4;
9120 bfd_put_32 (obfd
, LD_R11_0R2
| PPC_LO (offset
+ 16), p
), p
+= 4;
9121 bfd_put_32 (obfd
, LD_R2_0R2
| PPC_LO (offset
+ 8), p
), p
+= 4;
9122 bfd_put_32 (obfd
, BCTR
, p
), p
+= 4;
9127 /* Build a special .plt call stub for __tls_get_addr. */
9129 #define LD_R11_0R3 0xe9630000
9130 #define LD_R12_0R3 0xe9830000
9131 #define MR_R0_R3 0x7c601b78
9132 #define CMPDI_R11_0 0x2c2b0000
9133 #define ADD_R3_R12_R13 0x7c6c6a14
9134 #define BEQLR 0x4d820020
9135 #define MR_R3_R0 0x7c030378
9136 #define MFLR_R11 0x7d6802a6
9137 #define STD_R11_0R1 0xf9610000
9138 #define BCTRL 0x4e800421
9139 #define LD_R11_0R1 0xe9610000
9140 #define LD_R2_0R1 0xe8410000
9141 #define MTLR_R11 0x7d6803a6
9143 static inline bfd_byte
*
9144 build_tls_get_addr_stub (bfd
*obfd
, bfd_byte
*p
, int offset
,
9145 Elf_Internal_Rela
*r
)
9147 bfd_put_32 (obfd
, LD_R11_0R3
+ 0, p
), p
+= 4;
9148 bfd_put_32 (obfd
, LD_R12_0R3
+ 8, p
), p
+= 4;
9149 bfd_put_32 (obfd
, MR_R0_R3
, p
), p
+= 4;
9150 bfd_put_32 (obfd
, CMPDI_R11_0
, p
), p
+= 4;
9151 bfd_put_32 (obfd
, ADD_R3_R12_R13
, p
), p
+= 4;
9152 bfd_put_32 (obfd
, BEQLR
, p
), p
+= 4;
9153 bfd_put_32 (obfd
, MR_R3_R0
, p
), p
+= 4;
9154 bfd_put_32 (obfd
, MFLR_R11
, p
), p
+= 4;
9155 bfd_put_32 (obfd
, STD_R11_0R1
+ 32, p
), p
+= 4;
9158 r
[0].r_offset
+= 9 * 4;
9159 p
= build_plt_stub (obfd
, p
, offset
, r
);
9160 bfd_put_32 (obfd
, BCTRL
, p
- 4);
9162 bfd_put_32 (obfd
, LD_R11_0R1
+ 32, p
), p
+= 4;
9163 bfd_put_32 (obfd
, LD_R2_0R1
+ 40, p
), p
+= 4;
9164 bfd_put_32 (obfd
, MTLR_R11
, p
), p
+= 4;
9165 bfd_put_32 (obfd
, BLR
, p
), p
+= 4;
9170 static Elf_Internal_Rela
*
9171 get_relocs (asection
*sec
, int count
)
9173 Elf_Internal_Rela
*relocs
;
9174 struct bfd_elf_section_data
*elfsec_data
;
9176 elfsec_data
= elf_section_data (sec
);
9177 relocs
= elfsec_data
->relocs
;
9180 bfd_size_type relsize
;
9181 relsize
= sec
->reloc_count
* sizeof (*relocs
);
9182 relocs
= bfd_alloc (sec
->owner
, relsize
);
9185 elfsec_data
->relocs
= relocs
;
9186 elfsec_data
->rel_hdr
.sh_size
= (sec
->reloc_count
9187 * sizeof (Elf64_External_Rela
));
9188 elfsec_data
->rel_hdr
.sh_entsize
= sizeof (Elf64_External_Rela
);
9189 sec
->reloc_count
= 0;
9191 relocs
+= sec
->reloc_count
;
9192 sec
->reloc_count
+= count
;
9197 ppc_build_one_stub (struct bfd_hash_entry
*gen_entry
, void *in_arg
)
9199 struct ppc_stub_hash_entry
*stub_entry
;
9200 struct ppc_branch_hash_entry
*br_entry
;
9201 struct bfd_link_info
*info
;
9202 struct ppc_link_hash_table
*htab
;
9207 Elf_Internal_Rela
*r
;
9210 /* Massage our args to the form they really have. */
9211 stub_entry
= (struct ppc_stub_hash_entry
*) gen_entry
;
9214 htab
= ppc_hash_table (info
);
9218 /* Make a note of the offset within the stubs for this entry. */
9219 stub_entry
->stub_offset
= stub_entry
->stub_sec
->size
;
9220 loc
= stub_entry
->stub_sec
->contents
+ stub_entry
->stub_offset
;
9222 htab
->stub_count
[stub_entry
->stub_type
- 1] += 1;
9223 switch (stub_entry
->stub_type
)
9225 case ppc_stub_long_branch
:
9226 case ppc_stub_long_branch_r2off
:
9227 /* Branches are relative. This is where we are going to. */
9228 off
= dest
= (stub_entry
->target_value
9229 + stub_entry
->target_section
->output_offset
9230 + stub_entry
->target_section
->output_section
->vma
);
9232 /* And this is where we are coming from. */
9233 off
-= (stub_entry
->stub_offset
9234 + stub_entry
->stub_sec
->output_offset
9235 + stub_entry
->stub_sec
->output_section
->vma
);
9238 if (stub_entry
->stub_type
== ppc_stub_long_branch_r2off
)
9242 r2off
= (htab
->stub_group
[stub_entry
->target_section
->id
].toc_off
9243 - htab
->stub_group
[stub_entry
->id_sec
->id
].toc_off
);
9244 bfd_put_32 (htab
->stub_bfd
, STD_R2_40R1
, loc
);
9247 if (PPC_HA (r2off
) != 0)
9250 bfd_put_32 (htab
->stub_bfd
, ADDIS_R2_R2
| PPC_HA (r2off
), loc
);
9253 bfd_put_32 (htab
->stub_bfd
, ADDI_R2_R2
| PPC_LO (r2off
), loc
);
9257 bfd_put_32 (htab
->stub_bfd
, B_DOT
| (off
& 0x3fffffc), loc
);
9259 if (off
+ (1 << 25) >= (bfd_vma
) (1 << 26))
9261 (*_bfd_error_handler
) (_("long branch stub `%s' offset overflow"),
9262 stub_entry
->root
.string
);
9263 htab
->stub_error
= TRUE
;
9267 if (info
->emitrelocations
)
9269 r
= get_relocs (stub_entry
->stub_sec
, 1);
9272 r
->r_offset
= loc
- stub_entry
->stub_sec
->contents
;
9273 r
->r_info
= ELF64_R_INFO (0, R_PPC64_REL24
);
9275 if (stub_entry
->h
!= NULL
)
9277 struct elf_link_hash_entry
**hashes
;
9278 unsigned long symndx
;
9279 struct ppc_link_hash_entry
*h
;
9281 hashes
= elf_sym_hashes (htab
->stub_bfd
);
9284 bfd_size_type hsize
;
9286 hsize
= (htab
->stub_globals
+ 1) * sizeof (*hashes
);
9287 hashes
= bfd_zalloc (htab
->stub_bfd
, hsize
);
9290 elf_sym_hashes (htab
->stub_bfd
) = hashes
;
9291 htab
->stub_globals
= 1;
9293 symndx
= htab
->stub_globals
++;
9295 hashes
[symndx
] = &h
->elf
;
9296 r
->r_info
= ELF64_R_INFO (symndx
, R_PPC64_REL24
);
9297 if (h
->oh
!= NULL
&& h
->oh
->is_func
)
9298 h
= ppc_follow_link (h
->oh
);
9299 if (h
->elf
.root
.u
.def
.section
!= stub_entry
->target_section
)
9300 /* H is an opd symbol. The addend must be zero. */
9304 off
= (h
->elf
.root
.u
.def
.value
9305 + h
->elf
.root
.u
.def
.section
->output_offset
9306 + h
->elf
.root
.u
.def
.section
->output_section
->vma
);
9313 case ppc_stub_plt_branch
:
9314 case ppc_stub_plt_branch_r2off
:
9315 br_entry
= ppc_branch_hash_lookup (&htab
->branch_hash_table
,
9316 stub_entry
->root
.string
+ 9,
9318 if (br_entry
== NULL
)
9320 (*_bfd_error_handler
) (_("can't find branch stub `%s'"),
9321 stub_entry
->root
.string
);
9322 htab
->stub_error
= TRUE
;
9326 dest
= (stub_entry
->target_value
9327 + stub_entry
->target_section
->output_offset
9328 + stub_entry
->target_section
->output_section
->vma
);
9330 bfd_put_64 (htab
->brlt
->owner
, dest
,
9331 htab
->brlt
->contents
+ br_entry
->offset
);
9333 if (br_entry
->iter
== htab
->stub_iteration
)
9337 if (htab
->relbrlt
!= NULL
)
9339 /* Create a reloc for the branch lookup table entry. */
9340 Elf_Internal_Rela rela
;
9343 rela
.r_offset
= (br_entry
->offset
9344 + htab
->brlt
->output_offset
9345 + htab
->brlt
->output_section
->vma
);
9346 rela
.r_info
= ELF64_R_INFO (0, R_PPC64_RELATIVE
);
9347 rela
.r_addend
= dest
;
9349 rl
= htab
->relbrlt
->contents
;
9350 rl
+= (htab
->relbrlt
->reloc_count
++
9351 * sizeof (Elf64_External_Rela
));
9352 bfd_elf64_swap_reloca_out (htab
->relbrlt
->owner
, &rela
, rl
);
9354 else if (info
->emitrelocations
)
9356 r
= get_relocs (htab
->brlt
, 1);
9359 /* brlt, being SEC_LINKER_CREATED does not go through the
9360 normal reloc processing. Symbols and offsets are not
9361 translated from input file to output file form, so
9362 set up the offset per the output file. */
9363 r
->r_offset
= (br_entry
->offset
9364 + htab
->brlt
->output_offset
9365 + htab
->brlt
->output_section
->vma
);
9366 r
->r_info
= ELF64_R_INFO (0, R_PPC64_RELATIVE
);
9371 dest
= (br_entry
->offset
9372 + htab
->brlt
->output_offset
9373 + htab
->brlt
->output_section
->vma
);
9376 - elf_gp (htab
->brlt
->output_section
->owner
)
9377 - htab
->stub_group
[stub_entry
->id_sec
->id
].toc_off
);
9379 if (off
+ 0x80008000 > 0xffffffff || (off
& 7) != 0)
9381 (*_bfd_error_handler
)
9382 (_("linkage table error against `%s'"),
9383 stub_entry
->root
.string
);
9384 bfd_set_error (bfd_error_bad_value
);
9385 htab
->stub_error
= TRUE
;
9389 if (info
->emitrelocations
)
9391 r
= get_relocs (stub_entry
->stub_sec
, 1 + (PPC_HA (off
) != 0));
9394 r
[0].r_offset
= loc
- stub_entry
->stub_sec
->contents
;
9395 if (bfd_big_endian (info
->output_bfd
))
9397 if (stub_entry
->stub_type
== ppc_stub_plt_branch_r2off
)
9399 r
[0].r_info
= ELF64_R_INFO (0, R_PPC64_TOC16_DS
);
9400 r
[0].r_addend
= dest
;
9401 if (PPC_HA (off
) != 0)
9403 r
[0].r_info
= ELF64_R_INFO (0, R_PPC64_TOC16_HA
);
9404 r
[1].r_offset
= r
[0].r_offset
+ 4;
9405 r
[1].r_info
= ELF64_R_INFO (0, R_PPC64_TOC16_LO_DS
);
9406 r
[1].r_addend
= r
[0].r_addend
;
9410 if (stub_entry
->stub_type
!= ppc_stub_plt_branch_r2off
)
9412 if (PPC_HA (off
) != 0)
9415 bfd_put_32 (htab
->stub_bfd
, ADDIS_R12_R2
| PPC_HA (off
), loc
);
9417 bfd_put_32 (htab
->stub_bfd
, LD_R11_0R12
| PPC_LO (off
), loc
);
9422 bfd_put_32 (htab
->stub_bfd
, LD_R11_0R2
| PPC_LO (off
), loc
);
9429 r2off
= (htab
->stub_group
[stub_entry
->target_section
->id
].toc_off
9430 - htab
->stub_group
[stub_entry
->id_sec
->id
].toc_off
);
9431 bfd_put_32 (htab
->stub_bfd
, STD_R2_40R1
, loc
);
9434 if (PPC_HA (off
) != 0)
9437 bfd_put_32 (htab
->stub_bfd
, ADDIS_R12_R2
| PPC_HA (off
), loc
);
9439 bfd_put_32 (htab
->stub_bfd
, LD_R11_0R12
| PPC_LO (off
), loc
);
9444 bfd_put_32 (htab
->stub_bfd
, LD_R11_0R2
| PPC_LO (off
), loc
);
9448 if (PPC_HA (r2off
) != 0)
9451 bfd_put_32 (htab
->stub_bfd
, ADDIS_R2_R2
| PPC_HA (r2off
), loc
);
9454 bfd_put_32 (htab
->stub_bfd
, ADDI_R2_R2
| PPC_LO (r2off
), loc
);
9457 bfd_put_32 (htab
->stub_bfd
, MTCTR_R11
, loc
);
9459 bfd_put_32 (htab
->stub_bfd
, BCTR
, loc
);
9462 case ppc_stub_plt_call
:
9463 if (stub_entry
->h
!= NULL
9464 && stub_entry
->h
->is_func_descriptor
9465 && stub_entry
->h
->oh
!= NULL
)
9467 struct ppc_link_hash_entry
*fh
= ppc_follow_link (stub_entry
->h
->oh
);
9469 /* If the old-ABI "dot-symbol" is undefined make it weak so
9470 we don't get a link error from RELOC_FOR_GLOBAL_SYMBOL.
9471 FIXME: We used to define the symbol on one of the call
9472 stubs instead, which is why we test symbol section id
9473 against htab->top_id in various places. Likely all
9474 these checks could now disappear. */
9475 if (fh
->elf
.root
.type
== bfd_link_hash_undefined
)
9476 fh
->elf
.root
.type
= bfd_link_hash_undefweak
;
9479 /* Now build the stub. */
9480 dest
= stub_entry
->plt_ent
->plt
.offset
& ~1;
9481 if (dest
>= (bfd_vma
) -2)
9485 if (!htab
->elf
.dynamic_sections_created
9486 || stub_entry
->h
== NULL
9487 || stub_entry
->h
->elf
.dynindx
== -1)
9490 dest
+= plt
->output_offset
+ plt
->output_section
->vma
;
9492 if (stub_entry
->h
== NULL
9493 && (stub_entry
->plt_ent
->plt
.offset
& 1) == 0)
9495 Elf_Internal_Rela rela
;
9498 rela
.r_offset
= dest
;
9499 rela
.r_info
= ELF64_R_INFO (0, R_PPC64_JMP_IREL
);
9500 rela
.r_addend
= (stub_entry
->target_value
9501 + stub_entry
->target_section
->output_offset
9502 + stub_entry
->target_section
->output_section
->vma
);
9504 rl
= (htab
->reliplt
->contents
9505 + (htab
->reliplt
->reloc_count
++
9506 * sizeof (Elf64_External_Rela
)));
9507 bfd_elf64_swap_reloca_out (info
->output_bfd
, &rela
, rl
);
9508 stub_entry
->plt_ent
->plt
.offset
|= 1;
9512 - elf_gp (plt
->output_section
->owner
)
9513 - htab
->stub_group
[stub_entry
->id_sec
->id
].toc_off
);
9515 if (off
+ 0x80008000 > 0xffffffff || (off
& 7) != 0)
9517 (*_bfd_error_handler
)
9518 (_("linkage table error against `%s'"),
9519 stub_entry
->h
!= NULL
9520 ? stub_entry
->h
->elf
.root
.root
.string
9522 bfd_set_error (bfd_error_bad_value
);
9523 htab
->stub_error
= TRUE
;
9528 if (info
->emitrelocations
)
9530 r
= get_relocs (stub_entry
->stub_sec
,
9531 (2 + (PPC_HA (off
) != 0)
9532 + (PPC_HA (off
+ 16) == PPC_HA (off
))));
9535 r
[0].r_offset
= loc
- stub_entry
->stub_sec
->contents
;
9536 if (bfd_big_endian (info
->output_bfd
))
9538 r
[0].r_addend
= dest
;
9540 if (stub_entry
->h
!= NULL
9541 && (stub_entry
->h
== htab
->tls_get_addr_fd
9542 || stub_entry
->h
== htab
->tls_get_addr
)
9543 && !htab
->no_tls_get_addr_opt
)
9544 p
= build_tls_get_addr_stub (htab
->stub_bfd
, loc
, off
, r
);
9546 p
= build_plt_stub (htab
->stub_bfd
, loc
, off
, r
);
9555 stub_entry
->stub_sec
->size
+= size
;
9557 if (htab
->emit_stub_syms
)
9559 struct elf_link_hash_entry
*h
;
9562 const char *const stub_str
[] = { "long_branch",
9563 "long_branch_r2off",
9568 len1
= strlen (stub_str
[stub_entry
->stub_type
- 1]);
9569 len2
= strlen (stub_entry
->root
.string
);
9570 name
= bfd_malloc (len1
+ len2
+ 2);
9573 memcpy (name
, stub_entry
->root
.string
, 9);
9574 memcpy (name
+ 9, stub_str
[stub_entry
->stub_type
- 1], len1
);
9575 memcpy (name
+ len1
+ 9, stub_entry
->root
.string
+ 8, len2
- 8 + 1);
9576 h
= elf_link_hash_lookup (&htab
->elf
, name
, TRUE
, FALSE
, FALSE
);
9579 if (h
->root
.type
== bfd_link_hash_new
)
9581 h
->root
.type
= bfd_link_hash_defined
;
9582 h
->root
.u
.def
.section
= stub_entry
->stub_sec
;
9583 h
->root
.u
.def
.value
= stub_entry
->stub_offset
;
9586 h
->ref_regular_nonweak
= 1;
9587 h
->forced_local
= 1;
9595 /* As above, but don't actually build the stub. Just bump offset so
9596 we know stub section sizes, and select plt_branch stubs where
9597 long_branch stubs won't do. */
9600 ppc_size_one_stub (struct bfd_hash_entry
*gen_entry
, void *in_arg
)
9602 struct ppc_stub_hash_entry
*stub_entry
;
9603 struct bfd_link_info
*info
;
9604 struct ppc_link_hash_table
*htab
;
9608 /* Massage our args to the form they really have. */
9609 stub_entry
= (struct ppc_stub_hash_entry
*) gen_entry
;
9612 htab
= ppc_hash_table (info
);
9616 if (stub_entry
->stub_type
== ppc_stub_plt_call
)
9619 off
= stub_entry
->plt_ent
->plt
.offset
& ~(bfd_vma
) 1;
9620 if (off
>= (bfd_vma
) -2)
9623 if (!htab
->elf
.dynamic_sections_created
9624 || stub_entry
->h
== NULL
9625 || stub_entry
->h
->elf
.dynindx
== -1)
9627 off
+= (plt
->output_offset
9628 + plt
->output_section
->vma
9629 - elf_gp (plt
->output_section
->owner
)
9630 - htab
->stub_group
[stub_entry
->id_sec
->id
].toc_off
);
9632 size
= PLT_CALL_STUB_SIZE
;
9633 if (PPC_HA (off
) == 0)
9635 if (PPC_HA (off
+ 16) != PPC_HA (off
))
9637 if (stub_entry
->h
!= NULL
9638 && (stub_entry
->h
== htab
->tls_get_addr_fd
9639 || stub_entry
->h
== htab
->tls_get_addr
)
9640 && !htab
->no_tls_get_addr_opt
)
9642 if (info
->emitrelocations
)
9644 stub_entry
->stub_sec
->reloc_count
9645 += 2 + (PPC_HA (off
) != 0) + (PPC_HA (off
+ 16) == PPC_HA (off
));
9646 stub_entry
->stub_sec
->flags
|= SEC_RELOC
;
9651 /* ppc_stub_long_branch or ppc_stub_plt_branch, or their r2off
9655 off
= (stub_entry
->target_value
9656 + stub_entry
->target_section
->output_offset
9657 + stub_entry
->target_section
->output_section
->vma
);
9658 off
-= (stub_entry
->stub_sec
->size
9659 + stub_entry
->stub_sec
->output_offset
9660 + stub_entry
->stub_sec
->output_section
->vma
);
9662 /* Reset the stub type from the plt variant in case we now
9663 can reach with a shorter stub. */
9664 if (stub_entry
->stub_type
>= ppc_stub_plt_branch
)
9665 stub_entry
->stub_type
+= ppc_stub_long_branch
- ppc_stub_plt_branch
;
9668 if (stub_entry
->stub_type
== ppc_stub_long_branch_r2off
)
9670 r2off
= (htab
->stub_group
[stub_entry
->target_section
->id
].toc_off
9671 - htab
->stub_group
[stub_entry
->id_sec
->id
].toc_off
);
9673 if (PPC_HA (r2off
) != 0)
9678 /* If the branch offset if too big, use a ppc_stub_plt_branch. */
9679 if (off
+ (1 << 25) >= (bfd_vma
) (1 << 26))
9681 struct ppc_branch_hash_entry
*br_entry
;
9683 br_entry
= ppc_branch_hash_lookup (&htab
->branch_hash_table
,
9684 stub_entry
->root
.string
+ 9,
9686 if (br_entry
== NULL
)
9688 (*_bfd_error_handler
) (_("can't build branch stub `%s'"),
9689 stub_entry
->root
.string
);
9690 htab
->stub_error
= TRUE
;
9694 if (br_entry
->iter
!= htab
->stub_iteration
)
9696 br_entry
->iter
= htab
->stub_iteration
;
9697 br_entry
->offset
= htab
->brlt
->size
;
9698 htab
->brlt
->size
+= 8;
9700 if (htab
->relbrlt
!= NULL
)
9701 htab
->relbrlt
->size
+= sizeof (Elf64_External_Rela
);
9702 else if (info
->emitrelocations
)
9704 htab
->brlt
->reloc_count
+= 1;
9705 htab
->brlt
->flags
|= SEC_RELOC
;
9709 stub_entry
->stub_type
+= ppc_stub_plt_branch
- ppc_stub_long_branch
;
9710 off
= (br_entry
->offset
9711 + htab
->brlt
->output_offset
9712 + htab
->brlt
->output_section
->vma
9713 - elf_gp (htab
->brlt
->output_section
->owner
)
9714 - htab
->stub_group
[stub_entry
->id_sec
->id
].toc_off
);
9716 if (info
->emitrelocations
)
9718 stub_entry
->stub_sec
->reloc_count
+= 1 + (PPC_HA (off
) != 0);
9719 stub_entry
->stub_sec
->flags
|= SEC_RELOC
;
9722 if (stub_entry
->stub_type
!= ppc_stub_plt_branch_r2off
)
9725 if (PPC_HA (off
) != 0)
9731 if (PPC_HA (off
) != 0)
9734 if (PPC_HA (r2off
) != 0)
9738 else if (info
->emitrelocations
)
9740 stub_entry
->stub_sec
->reloc_count
+= 1;
9741 stub_entry
->stub_sec
->flags
|= SEC_RELOC
;
9745 stub_entry
->stub_sec
->size
+= size
;
9749 /* Set up various things so that we can make a list of input sections
9750 for each output section included in the link. Returns -1 on error,
9751 0 when no stubs will be needed, and 1 on success. */
9754 ppc64_elf_setup_section_lists
9755 (struct bfd_link_info
*info
,
9756 asection
*(*add_stub_section
) (const char *, asection
*),
9757 void (*layout_sections_again
) (void))
9760 int top_id
, top_index
, id
;
9762 asection
**input_list
;
9764 struct ppc_link_hash_table
*htab
= ppc_hash_table (info
);
9768 /* Stash our params away. */
9769 htab
->add_stub_section
= add_stub_section
;
9770 htab
->layout_sections_again
= layout_sections_again
;
9772 if (htab
->brlt
== NULL
)
9775 /* Find the top input section id. */
9776 for (input_bfd
= info
->input_bfds
, top_id
= 3;
9778 input_bfd
= input_bfd
->link_next
)
9780 for (section
= input_bfd
->sections
;
9782 section
= section
->next
)
9784 if (top_id
< section
->id
)
9785 top_id
= section
->id
;
9789 htab
->top_id
= top_id
;
9790 amt
= sizeof (struct map_stub
) * (top_id
+ 1);
9791 htab
->stub_group
= bfd_zmalloc (amt
);
9792 if (htab
->stub_group
== NULL
)
9795 /* Set toc_off for com, und, abs and ind sections. */
9796 for (id
= 0; id
< 3; id
++)
9797 htab
->stub_group
[id
].toc_off
= TOC_BASE_OFF
;
9799 /* We can't use output_bfd->section_count here to find the top output
9800 section index as some sections may have been removed, and
9801 strip_excluded_output_sections doesn't renumber the indices. */
9802 for (section
= info
->output_bfd
->sections
, top_index
= 0;
9804 section
= section
->next
)
9806 if (top_index
< section
->index
)
9807 top_index
= section
->index
;
9810 htab
->top_index
= top_index
;
9811 amt
= sizeof (asection
*) * (top_index
+ 1);
9812 input_list
= bfd_zmalloc (amt
);
9813 htab
->input_list
= input_list
;
9814 if (input_list
== NULL
)
9820 /* Set up for first pass at multitoc partitioning. */
9823 ppc64_elf_start_multitoc_partition (struct bfd_link_info
*info
)
9825 struct ppc_link_hash_table
*htab
= ppc_hash_table (info
);
9827 elf_gp (info
->output_bfd
) = ppc64_elf_toc (info
->output_bfd
);
9828 htab
->toc_curr
= elf_gp (info
->output_bfd
);
9829 htab
->toc_bfd
= NULL
;
9830 htab
->toc_first_sec
= NULL
;
9833 /* The linker repeatedly calls this function for each TOC input section
9834 and linker generated GOT section. Group input bfds such that the toc
9835 within a group is less than 64k in size. */
9838 ppc64_elf_next_toc_section (struct bfd_link_info
*info
, asection
*isec
)
9840 struct ppc_link_hash_table
*htab
= ppc_hash_table (info
);
9841 bfd_vma addr
, off
, limit
;
9846 if (!htab
->second_toc_pass
)
9848 /* Keep track of the first .toc or .got section for this input bfd. */
9849 if (htab
->toc_bfd
!= isec
->owner
)
9851 htab
->toc_bfd
= isec
->owner
;
9852 htab
->toc_first_sec
= isec
;
9855 addr
= isec
->output_offset
+ isec
->output_section
->vma
;
9856 off
= addr
- htab
->toc_curr
;
9858 if (ppc64_elf_tdata (isec
->owner
)->has_small_toc_reloc
)
9860 if (off
+ isec
->size
> limit
)
9862 addr
= (htab
->toc_first_sec
->output_offset
9863 + htab
->toc_first_sec
->output_section
->vma
);
9864 htab
->toc_curr
= addr
;
9867 /* toc_curr is the base address of this toc group. Set elf_gp
9868 for the input section to be the offset relative to the
9869 output toc base plus 0x8000. Making the input elf_gp an
9870 offset allows us to move the toc as a whole without
9871 recalculating input elf_gp. */
9872 off
= htab
->toc_curr
- elf_gp (isec
->output_section
->owner
);
9873 off
+= TOC_BASE_OFF
;
9875 /* Die if someone uses a linker script that doesn't keep input
9876 file .toc and .got together. */
9877 if (elf_gp (isec
->owner
) != 0
9878 && elf_gp (isec
->owner
) != off
)
9881 elf_gp (isec
->owner
) = off
;
9885 /* During the second pass toc_first_sec points to the start of
9886 a toc group, and toc_curr is used to track the old elf_gp.
9887 We use toc_bfd to ensure we only look at each bfd once. */
9888 if (htab
->toc_bfd
== isec
->owner
)
9890 htab
->toc_bfd
= isec
->owner
;
9892 if (htab
->toc_first_sec
== NULL
9893 || htab
->toc_curr
!= elf_gp (isec
->owner
))
9895 htab
->toc_curr
= elf_gp (isec
->owner
);
9896 htab
->toc_first_sec
= isec
;
9898 addr
= (htab
->toc_first_sec
->output_offset
9899 + htab
->toc_first_sec
->output_section
->vma
);
9900 off
= addr
- elf_gp (isec
->output_section
->owner
) + TOC_BASE_OFF
;
9901 elf_gp (isec
->owner
) = off
;
9906 /* Called via elf_link_hash_traverse to merge GOT entries for global
9910 merge_global_got (struct elf_link_hash_entry
*h
, void *inf ATTRIBUTE_UNUSED
)
9912 if (h
->root
.type
== bfd_link_hash_indirect
)
9915 if (h
->root
.type
== bfd_link_hash_warning
)
9916 h
= (struct elf_link_hash_entry
*) h
->root
.u
.i
.link
;
9918 merge_got_entries (&h
->got
.glist
);
9923 /* Called via elf_link_hash_traverse to allocate GOT entries for global
9927 reallocate_got (struct elf_link_hash_entry
*h
, void *inf
)
9929 struct got_entry
*gent
;
9931 if (h
->root
.type
== bfd_link_hash_indirect
)
9934 if (h
->root
.type
== bfd_link_hash_warning
)
9935 h
= (struct elf_link_hash_entry
*) h
->root
.u
.i
.link
;
9937 for (gent
= h
->got
.glist
; gent
!= NULL
; gent
= gent
->next
)
9938 if (!gent
->is_indirect
)
9939 allocate_got (h
, (struct bfd_link_info
*) inf
, gent
);
9943 /* Called on the first multitoc pass after the last call to
9944 ppc64_elf_next_toc_section. This function removes duplicate GOT
9948 ppc64_elf_layout_multitoc (struct bfd_link_info
*info
)
9950 struct ppc_link_hash_table
*htab
= ppc_hash_table (info
);
9951 struct bfd
*ibfd
, *ibfd2
;
9952 bfd_boolean done_something
;
9954 htab
->multi_toc_needed
= htab
->toc_curr
!= elf_gp (info
->output_bfd
);
9956 if (!htab
->do_multi_toc
)
9959 /* Merge global sym got entries within a toc group. */
9960 elf_link_hash_traverse (&htab
->elf
, merge_global_got
, info
);
9962 /* And tlsld_got. */
9963 for (ibfd
= info
->input_bfds
; ibfd
!= NULL
; ibfd
= ibfd
->link_next
)
9965 struct got_entry
*ent
, *ent2
;
9967 if (!is_ppc64_elf (ibfd
))
9970 ent
= ppc64_tlsld_got (ibfd
);
9971 if (!ent
->is_indirect
9972 && ent
->got
.offset
!= (bfd_vma
) -1)
9974 for (ibfd2
= ibfd
->link_next
; ibfd2
!= NULL
; ibfd2
= ibfd2
->link_next
)
9976 if (!is_ppc64_elf (ibfd2
))
9979 ent2
= ppc64_tlsld_got (ibfd2
);
9980 if (!ent2
->is_indirect
9981 && ent2
->got
.offset
!= (bfd_vma
) -1
9982 && elf_gp (ibfd2
) == elf_gp (ibfd
))
9984 ent2
->is_indirect
= TRUE
;
9985 ent2
->got
.ent
= ent
;
9991 /* Zap sizes of got sections. */
9992 htab
->reliplt
->rawsize
= htab
->reliplt
->size
;
9993 htab
->reliplt
->size
-= htab
->got_reli_size
;
9994 htab
->got_reli_size
= 0;
9996 for (ibfd
= info
->input_bfds
; ibfd
!= NULL
; ibfd
= ibfd
->link_next
)
9998 asection
*got
, *relgot
;
10000 if (!is_ppc64_elf (ibfd
))
10003 got
= ppc64_elf_tdata (ibfd
)->got
;
10006 got
->rawsize
= got
->size
;
10008 relgot
= ppc64_elf_tdata (ibfd
)->relgot
;
10009 relgot
->rawsize
= relgot
->size
;
10014 /* Now reallocate the got, local syms first. We don't need to
10015 allocate section contents again since we never increase size. */
10016 for (ibfd
= info
->input_bfds
; ibfd
!= NULL
; ibfd
= ibfd
->link_next
)
10018 struct got_entry
**lgot_ents
;
10019 struct got_entry
**end_lgot_ents
;
10020 struct plt_entry
**local_plt
;
10021 struct plt_entry
**end_local_plt
;
10022 unsigned char *lgot_masks
;
10023 bfd_size_type locsymcount
;
10024 Elf_Internal_Shdr
*symtab_hdr
;
10025 asection
*s
, *srel
;
10027 if (!is_ppc64_elf (ibfd
))
10030 lgot_ents
= elf_local_got_ents (ibfd
);
10034 symtab_hdr
= &elf_symtab_hdr (ibfd
);
10035 locsymcount
= symtab_hdr
->sh_info
;
10036 end_lgot_ents
= lgot_ents
+ locsymcount
;
10037 local_plt
= (struct plt_entry
**) end_lgot_ents
;
10038 end_local_plt
= local_plt
+ locsymcount
;
10039 lgot_masks
= (unsigned char *) end_local_plt
;
10040 s
= ppc64_elf_tdata (ibfd
)->got
;
10041 srel
= ppc64_elf_tdata (ibfd
)->relgot
;
10042 for (; lgot_ents
< end_lgot_ents
; ++lgot_ents
, ++lgot_masks
)
10044 struct got_entry
*ent
;
10046 for (ent
= *lgot_ents
; ent
!= NULL
; ent
= ent
->next
)
10048 unsigned int num
= 1;
10049 ent
->got
.offset
= s
->size
;
10050 if ((ent
->tls_type
& *lgot_masks
& TLS_GD
) != 0)
10052 s
->size
+= num
* 8;
10054 srel
->size
+= num
* sizeof (Elf64_External_Rela
);
10055 else if ((*lgot_masks
& PLT_IFUNC
) != 0)
10057 htab
->reliplt
->size
10058 += num
* sizeof (Elf64_External_Rela
);
10059 htab
->got_reli_size
10060 += num
* sizeof (Elf64_External_Rela
);
10066 elf_link_hash_traverse (&htab
->elf
, reallocate_got
, info
);
10068 for (ibfd
= info
->input_bfds
; ibfd
!= NULL
; ibfd
= ibfd
->link_next
)
10070 struct got_entry
*ent
;
10072 if (!is_ppc64_elf (ibfd
))
10075 ent
= ppc64_tlsld_got (ibfd
);
10076 if (!ent
->is_indirect
10077 && ent
->got
.offset
!= (bfd_vma
) -1)
10079 asection
*s
= ppc64_elf_tdata (ibfd
)->got
;
10080 ent
->got
.offset
= s
->size
;
10084 asection
*srel
= ppc64_elf_tdata (ibfd
)->relgot
;
10085 srel
->size
+= sizeof (Elf64_External_Rela
);
10090 done_something
= htab
->reliplt
->rawsize
!= htab
->reliplt
->size
;
10091 if (!done_something
)
10092 for (ibfd
= info
->input_bfds
; ibfd
!= NULL
; ibfd
= ibfd
->link_next
)
10096 if (!is_ppc64_elf (ibfd
))
10099 got
= ppc64_elf_tdata (ibfd
)->got
;
10102 done_something
= got
->rawsize
!= got
->size
;
10103 if (done_something
)
10108 if (done_something
)
10109 (*htab
->layout_sections_again
) ();
10111 /* Set up for second pass over toc sections to recalculate elf_gp
10112 on input sections. */
10113 htab
->toc_bfd
= NULL
;
10114 htab
->toc_first_sec
= NULL
;
10115 htab
->second_toc_pass
= TRUE
;
10116 return done_something
;
10119 /* Called after second pass of multitoc partitioning. */
10122 ppc64_elf_finish_multitoc_partition (struct bfd_link_info
*info
)
10124 struct ppc_link_hash_table
*htab
= ppc_hash_table (info
);
10129 /* After the second pass, toc_curr tracks the TOC offset used
10130 for code sections below in ppc64_elf_next_input_section. */
10131 htab
->toc_curr
= TOC_BASE_OFF
;
10134 /* No toc references were found in ISEC. If the code in ISEC makes no
10135 calls, then there's no need to use toc adjusting stubs when branching
10136 into ISEC. Actually, indirect calls from ISEC are OK as they will
10137 load r2. Returns -1 on error, 0 for no stub needed, 1 for stub
10138 needed, and 2 if a cyclical call-graph was found but no other reason
10139 for a stub was detected. If called from the top level, a return of
10140 2 means the same as a return of 0. */
10143 toc_adjusting_stub_needed (struct bfd_link_info
*info
, asection
*isec
)
10145 Elf_Internal_Rela
*relstart
, *rel
;
10146 Elf_Internal_Sym
*local_syms
;
10148 struct ppc_link_hash_table
*htab
;
10150 /* We know none of our code bearing sections will need toc stubs. */
10151 if ((isec
->flags
& SEC_LINKER_CREATED
) != 0)
10154 if (isec
->size
== 0)
10157 if (isec
->output_section
== NULL
)
10160 if (isec
->reloc_count
== 0)
10163 relstart
= _bfd_elf_link_read_relocs (isec
->owner
, isec
, NULL
, NULL
,
10164 info
->keep_memory
);
10165 if (relstart
== NULL
)
10168 /* Look for branches to outside of this section. */
10171 htab
= ppc_hash_table (info
);
10175 for (rel
= relstart
; rel
< relstart
+ isec
->reloc_count
; ++rel
)
10177 enum elf_ppc64_reloc_type r_type
;
10178 unsigned long r_symndx
;
10179 struct elf_link_hash_entry
*h
;
10180 struct ppc_link_hash_entry
*eh
;
10181 Elf_Internal_Sym
*sym
;
10183 struct _opd_sec_data
*opd
;
10187 r_type
= ELF64_R_TYPE (rel
->r_info
);
10188 if (r_type
!= R_PPC64_REL24
10189 && r_type
!= R_PPC64_REL14
10190 && r_type
!= R_PPC64_REL14_BRTAKEN
10191 && r_type
!= R_PPC64_REL14_BRNTAKEN
)
10194 r_symndx
= ELF64_R_SYM (rel
->r_info
);
10195 if (!get_sym_h (&h
, &sym
, &sym_sec
, NULL
, &local_syms
, r_symndx
,
10202 /* Calls to dynamic lib functions go through a plt call stub
10204 eh
= (struct ppc_link_hash_entry
*) h
;
10206 && (eh
->elf
.plt
.plist
!= NULL
10208 && ppc_follow_link (eh
->oh
)->elf
.plt
.plist
!= NULL
)))
10214 if (sym_sec
== NULL
)
10215 /* Ignore other undefined symbols. */
10218 /* Assume branches to other sections not included in the link need
10219 stubs too, to cover -R and absolute syms. */
10220 if (sym_sec
->output_section
== NULL
)
10227 sym_value
= sym
->st_value
;
10230 if (h
->root
.type
!= bfd_link_hash_defined
10231 && h
->root
.type
!= bfd_link_hash_defweak
)
10233 sym_value
= h
->root
.u
.def
.value
;
10235 sym_value
+= rel
->r_addend
;
10237 /* If this branch reloc uses an opd sym, find the code section. */
10238 opd
= get_opd_info (sym_sec
);
10241 if (h
== NULL
&& opd
->adjust
!= NULL
)
10245 adjust
= opd
->adjust
[sym
->st_value
/ 8];
10247 /* Assume deleted functions won't ever be called. */
10249 sym_value
+= adjust
;
10252 dest
= opd_entry_value (sym_sec
, sym_value
, &sym_sec
, NULL
);
10253 if (dest
== (bfd_vma
) -1)
10258 + sym_sec
->output_offset
10259 + sym_sec
->output_section
->vma
);
10261 /* Ignore branch to self. */
10262 if (sym_sec
== isec
)
10265 /* If the called function uses the toc, we need a stub. */
10266 if (sym_sec
->has_toc_reloc
10267 || sym_sec
->makes_toc_func_call
)
10273 /* Assume any branch that needs a long branch stub might in fact
10274 need a plt_branch stub. A plt_branch stub uses r2. */
10275 else if (dest
- (isec
->output_offset
10276 + isec
->output_section
->vma
10277 + rel
->r_offset
) + (1 << 25) >= (2 << 25))
10283 /* If calling back to a section in the process of being tested, we
10284 can't say for sure that no toc adjusting stubs are needed, so
10285 don't return zero. */
10286 else if (sym_sec
->call_check_in_progress
)
10289 /* Branches to another section that itself doesn't have any TOC
10290 references are OK. Recursively call ourselves to check. */
10291 else if (sym_sec
->id
<= htab
->top_id
10292 && htab
->stub_group
[sym_sec
->id
].toc_off
== 0)
10296 /* Mark current section as indeterminate, so that other
10297 sections that call back to current won't be marked as
10299 isec
->call_check_in_progress
= 1;
10300 recur
= toc_adjusting_stub_needed (info
, sym_sec
);
10301 isec
->call_check_in_progress
= 0;
10305 /* An error. Exit. */
10309 else if (recur
<= 1)
10311 /* Known result. Mark as checked and set section flag. */
10312 htab
->stub_group
[sym_sec
->id
].toc_off
= 1;
10315 sym_sec
->makes_toc_func_call
= 1;
10322 /* Unknown result. Continue checking. */
10328 if (local_syms
!= NULL
10329 && (elf_symtab_hdr (isec
->owner
).contents
!= (unsigned char *) local_syms
))
10331 if (elf_section_data (isec
)->relocs
!= relstart
)
10337 /* The linker repeatedly calls this function for each input section,
10338 in the order that input sections are linked into output sections.
10339 Build lists of input sections to determine groupings between which
10340 we may insert linker stubs. */
10343 ppc64_elf_next_input_section (struct bfd_link_info
*info
, asection
*isec
)
10345 struct ppc_link_hash_table
*htab
= ppc_hash_table (info
);
10350 if ((isec
->output_section
->flags
& SEC_CODE
) != 0
10351 && isec
->output_section
->index
<= htab
->top_index
)
10353 asection
**list
= htab
->input_list
+ isec
->output_section
->index
;
10354 /* Steal the link_sec pointer for our list. */
10355 #define PREV_SEC(sec) (htab->stub_group[(sec)->id].link_sec)
10356 /* This happens to make the list in reverse order,
10357 which is what we want. */
10358 PREV_SEC (isec
) = *list
;
10362 if (htab
->multi_toc_needed
)
10364 /* If a code section has a function that uses the TOC then we need
10365 to use the right TOC (obviously). Also, make sure that .opd gets
10366 the correct TOC value for R_PPC64_TOC relocs that don't have or
10367 can't find their function symbol (shouldn't ever happen now).
10368 Also specially treat .fixup for the linux kernel. .fixup
10369 contains branches, but only back to the function that hit an
10371 if (isec
->has_toc_reloc
10372 || (isec
->flags
& SEC_CODE
) == 0
10373 || strcmp (isec
->name
, ".fixup") == 0)
10375 if (elf_gp (isec
->owner
) != 0)
10376 htab
->toc_curr
= elf_gp (isec
->owner
);
10378 else if (htab
->stub_group
[isec
->id
].toc_off
== 0)
10380 int ret
= toc_adjusting_stub_needed (info
, isec
);
10384 isec
->makes_toc_func_call
= ret
& 1;
10388 /* Functions that don't use the TOC can belong in any TOC group.
10389 Use the last TOC base. This happens to make _init and _fini
10391 htab
->stub_group
[isec
->id
].toc_off
= htab
->toc_curr
;
10395 /* See whether we can group stub sections together. Grouping stub
10396 sections may result in fewer stubs. More importantly, we need to
10397 put all .init* and .fini* stubs at the beginning of the .init or
10398 .fini output sections respectively, because glibc splits the
10399 _init and _fini functions into multiple parts. Putting a stub in
10400 the middle of a function is not a good idea. */
10403 group_sections (struct ppc_link_hash_table
*htab
,
10404 bfd_size_type stub_group_size
,
10405 bfd_boolean stubs_always_before_branch
)
10408 bfd_size_type stub14_group_size
;
10409 bfd_boolean suppress_size_errors
;
10411 suppress_size_errors
= FALSE
;
10412 stub14_group_size
= stub_group_size
;
10413 if (stub_group_size
== 1)
10415 /* Default values. */
10416 if (stubs_always_before_branch
)
10418 stub_group_size
= 0x1e00000;
10419 stub14_group_size
= 0x7800;
10423 stub_group_size
= 0x1c00000;
10424 stub14_group_size
= 0x7000;
10426 suppress_size_errors
= TRUE
;
10429 list
= htab
->input_list
+ htab
->top_index
;
10432 asection
*tail
= *list
;
10433 while (tail
!= NULL
)
10437 bfd_size_type total
;
10438 bfd_boolean big_sec
;
10442 total
= tail
->size
;
10443 big_sec
= total
> (ppc64_elf_section_data (tail
)->has_14bit_branch
10444 ? stub14_group_size
: stub_group_size
);
10445 if (big_sec
&& !suppress_size_errors
)
10446 (*_bfd_error_handler
) (_("%B section %A exceeds stub group size"),
10447 tail
->owner
, tail
);
10448 curr_toc
= htab
->stub_group
[tail
->id
].toc_off
;
10450 while ((prev
= PREV_SEC (curr
)) != NULL
10451 && ((total
+= curr
->output_offset
- prev
->output_offset
)
10452 < (ppc64_elf_section_data (prev
)->has_14bit_branch
10453 ? stub14_group_size
: stub_group_size
))
10454 && htab
->stub_group
[prev
->id
].toc_off
== curr_toc
)
10457 /* OK, the size from the start of CURR to the end is less
10458 than stub_group_size and thus can be handled by one stub
10459 section. (or the tail section is itself larger than
10460 stub_group_size, in which case we may be toast.) We
10461 should really be keeping track of the total size of stubs
10462 added here, as stubs contribute to the final output
10463 section size. That's a little tricky, and this way will
10464 only break if stubs added make the total size more than
10465 2^25, ie. for the default stub_group_size, if stubs total
10466 more than 2097152 bytes, or nearly 75000 plt call stubs. */
10469 prev
= PREV_SEC (tail
);
10470 /* Set up this stub group. */
10471 htab
->stub_group
[tail
->id
].link_sec
= curr
;
10473 while (tail
!= curr
&& (tail
= prev
) != NULL
);
10475 /* But wait, there's more! Input sections up to stub_group_size
10476 bytes before the stub section can be handled by it too.
10477 Don't do this if we have a really large section after the
10478 stubs, as adding more stubs increases the chance that
10479 branches may not reach into the stub section. */
10480 if (!stubs_always_before_branch
&& !big_sec
)
10483 while (prev
!= NULL
10484 && ((total
+= tail
->output_offset
- prev
->output_offset
)
10485 < (ppc64_elf_section_data (prev
)->has_14bit_branch
10486 ? stub14_group_size
: stub_group_size
))
10487 && htab
->stub_group
[prev
->id
].toc_off
== curr_toc
)
10490 prev
= PREV_SEC (tail
);
10491 htab
->stub_group
[tail
->id
].link_sec
= curr
;
10497 while (list
-- != htab
->input_list
);
10498 free (htab
->input_list
);
10502 /* Determine and set the size of the stub section for a final link.
10504 The basic idea here is to examine all the relocations looking for
10505 PC-relative calls to a target that is unreachable with a "bl"
10509 ppc64_elf_size_stubs (struct bfd_link_info
*info
, bfd_signed_vma group_size
)
10511 bfd_size_type stub_group_size
;
10512 bfd_boolean stubs_always_before_branch
;
10513 struct ppc_link_hash_table
*htab
= ppc_hash_table (info
);
10518 stubs_always_before_branch
= group_size
< 0;
10519 if (group_size
< 0)
10520 stub_group_size
= -group_size
;
10522 stub_group_size
= group_size
;
10524 group_sections (htab
, stub_group_size
, stubs_always_before_branch
);
10529 unsigned int bfd_indx
;
10530 asection
*stub_sec
;
10532 htab
->stub_iteration
+= 1;
10534 for (input_bfd
= info
->input_bfds
, bfd_indx
= 0;
10536 input_bfd
= input_bfd
->link_next
, bfd_indx
++)
10538 Elf_Internal_Shdr
*symtab_hdr
;
10540 Elf_Internal_Sym
*local_syms
= NULL
;
10542 if (!is_ppc64_elf (input_bfd
))
10545 /* We'll need the symbol table in a second. */
10546 symtab_hdr
= &elf_symtab_hdr (input_bfd
);
10547 if (symtab_hdr
->sh_info
== 0)
10550 /* Walk over each section attached to the input bfd. */
10551 for (section
= input_bfd
->sections
;
10553 section
= section
->next
)
10555 Elf_Internal_Rela
*internal_relocs
, *irelaend
, *irela
;
10557 /* If there aren't any relocs, then there's nothing more
10559 if ((section
->flags
& SEC_RELOC
) == 0
10560 || (section
->flags
& SEC_ALLOC
) == 0
10561 || (section
->flags
& SEC_LOAD
) == 0
10562 || (section
->flags
& SEC_CODE
) == 0
10563 || section
->reloc_count
== 0)
10566 /* If this section is a link-once section that will be
10567 discarded, then don't create any stubs. */
10568 if (section
->output_section
== NULL
10569 || section
->output_section
->owner
!= info
->output_bfd
)
10572 /* Get the relocs. */
10574 = _bfd_elf_link_read_relocs (input_bfd
, section
, NULL
, NULL
,
10575 info
->keep_memory
);
10576 if (internal_relocs
== NULL
)
10577 goto error_ret_free_local
;
10579 /* Now examine each relocation. */
10580 irela
= internal_relocs
;
10581 irelaend
= irela
+ section
->reloc_count
;
10582 for (; irela
< irelaend
; irela
++)
10584 enum elf_ppc64_reloc_type r_type
;
10585 unsigned int r_indx
;
10586 enum ppc_stub_type stub_type
;
10587 struct ppc_stub_hash_entry
*stub_entry
;
10588 asection
*sym_sec
, *code_sec
;
10589 bfd_vma sym_value
, code_value
;
10590 bfd_vma destination
;
10591 bfd_boolean ok_dest
;
10592 struct ppc_link_hash_entry
*hash
;
10593 struct ppc_link_hash_entry
*fdh
;
10594 struct elf_link_hash_entry
*h
;
10595 Elf_Internal_Sym
*sym
;
10597 const asection
*id_sec
;
10598 struct _opd_sec_data
*opd
;
10599 struct plt_entry
*plt_ent
;
10601 r_type
= ELF64_R_TYPE (irela
->r_info
);
10602 r_indx
= ELF64_R_SYM (irela
->r_info
);
10604 if (r_type
>= R_PPC64_max
)
10606 bfd_set_error (bfd_error_bad_value
);
10607 goto error_ret_free_internal
;
10610 /* Only look for stubs on branch instructions. */
10611 if (r_type
!= R_PPC64_REL24
10612 && r_type
!= R_PPC64_REL14
10613 && r_type
!= R_PPC64_REL14_BRTAKEN
10614 && r_type
!= R_PPC64_REL14_BRNTAKEN
)
10617 /* Now determine the call target, its name, value,
10619 if (!get_sym_h (&h
, &sym
, &sym_sec
, NULL
, &local_syms
,
10620 r_indx
, input_bfd
))
10621 goto error_ret_free_internal
;
10622 hash
= (struct ppc_link_hash_entry
*) h
;
10629 sym_value
= sym
->st_value
;
10632 else if (hash
->elf
.root
.type
== bfd_link_hash_defined
10633 || hash
->elf
.root
.type
== bfd_link_hash_defweak
)
10635 sym_value
= hash
->elf
.root
.u
.def
.value
;
10636 if (sym_sec
->output_section
!= NULL
)
10639 else if (hash
->elf
.root
.type
== bfd_link_hash_undefweak
10640 || hash
->elf
.root
.type
== bfd_link_hash_undefined
)
10642 /* Recognise an old ABI func code entry sym, and
10643 use the func descriptor sym instead if it is
10645 if (hash
->elf
.root
.root
.string
[0] == '.'
10646 && (fdh
= lookup_fdh (hash
, htab
)) != NULL
)
10648 if (fdh
->elf
.root
.type
== bfd_link_hash_defined
10649 || fdh
->elf
.root
.type
== bfd_link_hash_defweak
)
10651 sym_sec
= fdh
->elf
.root
.u
.def
.section
;
10652 sym_value
= fdh
->elf
.root
.u
.def
.value
;
10653 if (sym_sec
->output_section
!= NULL
)
10662 bfd_set_error (bfd_error_bad_value
);
10663 goto error_ret_free_internal
;
10669 sym_value
+= irela
->r_addend
;
10670 destination
= (sym_value
10671 + sym_sec
->output_offset
10672 + sym_sec
->output_section
->vma
);
10675 code_sec
= sym_sec
;
10676 code_value
= sym_value
;
10677 opd
= get_opd_info (sym_sec
);
10682 if (hash
== NULL
&& opd
->adjust
!= NULL
)
10684 long adjust
= opd
->adjust
[sym_value
/ 8];
10687 code_value
+= adjust
;
10688 sym_value
+= adjust
;
10690 dest
= opd_entry_value (sym_sec
, sym_value
,
10691 &code_sec
, &code_value
);
10692 if (dest
!= (bfd_vma
) -1)
10694 destination
= dest
;
10697 /* Fixup old ABI sym to point at code
10699 hash
->elf
.root
.type
= bfd_link_hash_defweak
;
10700 hash
->elf
.root
.u
.def
.section
= code_sec
;
10701 hash
->elf
.root
.u
.def
.value
= code_value
;
10706 /* Determine what (if any) linker stub is needed. */
10708 stub_type
= ppc_type_of_stub (section
, irela
, &hash
,
10709 &plt_ent
, destination
);
10711 if (stub_type
!= ppc_stub_plt_call
)
10713 /* Check whether we need a TOC adjusting stub.
10714 Since the linker pastes together pieces from
10715 different object files when creating the
10716 _init and _fini functions, it may be that a
10717 call to what looks like a local sym is in
10718 fact a call needing a TOC adjustment. */
10719 if (code_sec
!= NULL
10720 && code_sec
->output_section
!= NULL
10721 && (htab
->stub_group
[code_sec
->id
].toc_off
10722 != htab
->stub_group
[section
->id
].toc_off
)
10723 && (code_sec
->has_toc_reloc
10724 || code_sec
->makes_toc_func_call
))
10725 stub_type
= ppc_stub_long_branch_r2off
;
10728 if (stub_type
== ppc_stub_none
)
10731 /* __tls_get_addr calls might be eliminated. */
10732 if (stub_type
!= ppc_stub_plt_call
10734 && (hash
== htab
->tls_get_addr
10735 || hash
== htab
->tls_get_addr_fd
)
10736 && section
->has_tls_reloc
10737 && irela
!= internal_relocs
)
10739 /* Get tls info. */
10740 unsigned char *tls_mask
;
10742 if (!get_tls_mask (&tls_mask
, NULL
, NULL
, &local_syms
,
10743 irela
- 1, input_bfd
))
10744 goto error_ret_free_internal
;
10745 if (*tls_mask
!= 0)
10749 /* Support for grouping stub sections. */
10750 id_sec
= htab
->stub_group
[section
->id
].link_sec
;
10752 /* Get the name of this stub. */
10753 stub_name
= ppc_stub_name (id_sec
, sym_sec
, hash
, irela
);
10755 goto error_ret_free_internal
;
10757 stub_entry
= ppc_stub_hash_lookup (&htab
->stub_hash_table
,
10758 stub_name
, FALSE
, FALSE
);
10759 if (stub_entry
!= NULL
)
10761 /* The proper stub has already been created. */
10766 stub_entry
= ppc_add_stub (stub_name
, section
, htab
);
10767 if (stub_entry
== NULL
)
10770 error_ret_free_internal
:
10771 if (elf_section_data (section
)->relocs
== NULL
)
10772 free (internal_relocs
);
10773 error_ret_free_local
:
10774 if (local_syms
!= NULL
10775 && (symtab_hdr
->contents
10776 != (unsigned char *) local_syms
))
10781 stub_entry
->stub_type
= stub_type
;
10782 if (stub_type
!= ppc_stub_plt_call
)
10784 stub_entry
->target_value
= code_value
;
10785 stub_entry
->target_section
= code_sec
;
10789 stub_entry
->target_value
= sym_value
;
10790 stub_entry
->target_section
= sym_sec
;
10792 stub_entry
->h
= hash
;
10793 stub_entry
->plt_ent
= plt_ent
;
10794 stub_entry
->addend
= irela
->r_addend
;
10796 if (stub_entry
->h
!= NULL
)
10797 htab
->stub_globals
+= 1;
10800 /* We're done with the internal relocs, free them. */
10801 if (elf_section_data (section
)->relocs
!= internal_relocs
)
10802 free (internal_relocs
);
10805 if (local_syms
!= NULL
10806 && symtab_hdr
->contents
!= (unsigned char *) local_syms
)
10808 if (!info
->keep_memory
)
10811 symtab_hdr
->contents
= (unsigned char *) local_syms
;
10815 /* We may have added some stubs. Find out the new size of the
10817 for (stub_sec
= htab
->stub_bfd
->sections
;
10819 stub_sec
= stub_sec
->next
)
10820 if ((stub_sec
->flags
& SEC_LINKER_CREATED
) == 0)
10822 stub_sec
->rawsize
= stub_sec
->size
;
10823 stub_sec
->size
= 0;
10824 stub_sec
->reloc_count
= 0;
10825 stub_sec
->flags
&= ~SEC_RELOC
;
10828 htab
->brlt
->size
= 0;
10829 htab
->brlt
->reloc_count
= 0;
10830 htab
->brlt
->flags
&= ~SEC_RELOC
;
10831 if (htab
->relbrlt
!= NULL
)
10832 htab
->relbrlt
->size
= 0;
10834 bfd_hash_traverse (&htab
->stub_hash_table
, ppc_size_one_stub
, info
);
10836 if (info
->emitrelocations
10837 && htab
->glink
!= NULL
&& htab
->glink
->size
!= 0)
10839 htab
->glink
->reloc_count
= 1;
10840 htab
->glink
->flags
|= SEC_RELOC
;
10843 for (stub_sec
= htab
->stub_bfd
->sections
;
10845 stub_sec
= stub_sec
->next
)
10846 if ((stub_sec
->flags
& SEC_LINKER_CREATED
) == 0
10847 && stub_sec
->rawsize
!= stub_sec
->size
)
10850 /* Exit from this loop when no stubs have been added, and no stubs
10851 have changed size. */
10852 if (stub_sec
== NULL
)
10855 /* Ask the linker to do its stuff. */
10856 (*htab
->layout_sections_again
) ();
10859 /* It would be nice to strip htab->brlt from the output if the
10860 section is empty, but it's too late. If we strip sections here,
10861 the dynamic symbol table is corrupted since the section symbol
10862 for the stripped section isn't written. */
10867 /* Called after we have determined section placement. If sections
10868 move, we'll be called again. Provide a value for TOCstart. */
10871 ppc64_elf_toc (bfd
*obfd
)
10876 /* The TOC consists of sections .got, .toc, .tocbss, .plt in that
10877 order. The TOC starts where the first of these sections starts. */
10878 s
= bfd_get_section_by_name (obfd
, ".got");
10879 if (s
== NULL
|| (s
->flags
& SEC_EXCLUDE
) != 0)
10880 s
= bfd_get_section_by_name (obfd
, ".toc");
10881 if (s
== NULL
|| (s
->flags
& SEC_EXCLUDE
) != 0)
10882 s
= bfd_get_section_by_name (obfd
, ".tocbss");
10883 if (s
== NULL
|| (s
->flags
& SEC_EXCLUDE
) != 0)
10884 s
= bfd_get_section_by_name (obfd
, ".plt");
10885 if (s
== NULL
|| (s
->flags
& SEC_EXCLUDE
) != 0)
10887 /* This may happen for
10888 o references to TOC base (SYM@toc / TOC[tc0]) without a
10890 o bad linker script
10891 o --gc-sections and empty TOC sections
10893 FIXME: Warn user? */
10895 /* Look for a likely section. We probably won't even be
10897 for (s
= obfd
->sections
; s
!= NULL
; s
= s
->next
)
10898 if ((s
->flags
& (SEC_ALLOC
| SEC_SMALL_DATA
| SEC_READONLY
10900 == (SEC_ALLOC
| SEC_SMALL_DATA
))
10903 for (s
= obfd
->sections
; s
!= NULL
; s
= s
->next
)
10904 if ((s
->flags
& (SEC_ALLOC
| SEC_SMALL_DATA
| SEC_EXCLUDE
))
10905 == (SEC_ALLOC
| SEC_SMALL_DATA
))
10908 for (s
= obfd
->sections
; s
!= NULL
; s
= s
->next
)
10909 if ((s
->flags
& (SEC_ALLOC
| SEC_READONLY
| SEC_EXCLUDE
))
10913 for (s
= obfd
->sections
; s
!= NULL
; s
= s
->next
)
10914 if ((s
->flags
& (SEC_ALLOC
| SEC_EXCLUDE
)) == SEC_ALLOC
)
10920 TOCstart
= s
->output_section
->vma
+ s
->output_offset
;
10925 /* Build all the stubs associated with the current output file.
10926 The stubs are kept in a hash table attached to the main linker
10927 hash table. This function is called via gldelf64ppc_finish. */
10930 ppc64_elf_build_stubs (bfd_boolean emit_stub_syms
,
10931 struct bfd_link_info
*info
,
10934 struct ppc_link_hash_table
*htab
= ppc_hash_table (info
);
10935 asection
*stub_sec
;
10937 int stub_sec_count
= 0;
10942 htab
->emit_stub_syms
= emit_stub_syms
;
10944 /* Allocate memory to hold the linker stubs. */
10945 for (stub_sec
= htab
->stub_bfd
->sections
;
10947 stub_sec
= stub_sec
->next
)
10948 if ((stub_sec
->flags
& SEC_LINKER_CREATED
) == 0
10949 && stub_sec
->size
!= 0)
10951 stub_sec
->contents
= bfd_zalloc (htab
->stub_bfd
, stub_sec
->size
);
10952 if (stub_sec
->contents
== NULL
)
10954 /* We want to check that built size is the same as calculated
10955 size. rawsize is a convenient location to use. */
10956 stub_sec
->rawsize
= stub_sec
->size
;
10957 stub_sec
->size
= 0;
10960 if (htab
->glink
!= NULL
&& htab
->glink
->size
!= 0)
10965 /* Build the .glink plt call stub. */
10966 if (htab
->emit_stub_syms
)
10968 struct elf_link_hash_entry
*h
;
10969 h
= elf_link_hash_lookup (&htab
->elf
, "__glink_PLTresolve",
10970 TRUE
, FALSE
, FALSE
);
10973 if (h
->root
.type
== bfd_link_hash_new
)
10975 h
->root
.type
= bfd_link_hash_defined
;
10976 h
->root
.u
.def
.section
= htab
->glink
;
10977 h
->root
.u
.def
.value
= 8;
10978 h
->ref_regular
= 1;
10979 h
->def_regular
= 1;
10980 h
->ref_regular_nonweak
= 1;
10981 h
->forced_local
= 1;
10985 plt0
= htab
->plt
->output_section
->vma
+ htab
->plt
->output_offset
- 16;
10986 if (info
->emitrelocations
)
10988 Elf_Internal_Rela
*r
= get_relocs (htab
->glink
, 1);
10991 r
->r_offset
= (htab
->glink
->output_offset
10992 + htab
->glink
->output_section
->vma
);
10993 r
->r_info
= ELF64_R_INFO (0, R_PPC64_REL64
);
10994 r
->r_addend
= plt0
;
10996 p
= htab
->glink
->contents
;
10997 plt0
-= htab
->glink
->output_section
->vma
+ htab
->glink
->output_offset
;
10998 bfd_put_64 (htab
->glink
->owner
, plt0
, p
);
11000 bfd_put_32 (htab
->glink
->owner
, MFLR_R12
, p
);
11002 bfd_put_32 (htab
->glink
->owner
, BCL_20_31
, p
);
11004 bfd_put_32 (htab
->glink
->owner
, MFLR_R11
, p
);
11006 bfd_put_32 (htab
->glink
->owner
, LD_R2_M16R11
, p
);
11008 bfd_put_32 (htab
->glink
->owner
, MTLR_R12
, p
);
11010 bfd_put_32 (htab
->glink
->owner
, ADD_R12_R2_R11
, p
);
11012 bfd_put_32 (htab
->glink
->owner
, LD_R11_0R12
, p
);
11014 bfd_put_32 (htab
->glink
->owner
, LD_R2_0R12
| 8, p
);
11016 bfd_put_32 (htab
->glink
->owner
, MTCTR_R11
, p
);
11018 bfd_put_32 (htab
->glink
->owner
, LD_R11_0R12
| 16, p
);
11020 bfd_put_32 (htab
->glink
->owner
, BCTR
, p
);
11022 while (p
- htab
->glink
->contents
< GLINK_CALL_STUB_SIZE
)
11024 bfd_put_32 (htab
->glink
->owner
, NOP
, p
);
11028 /* Build the .glink lazy link call stubs. */
11030 while (p
< htab
->glink
->contents
+ htab
->glink
->size
)
11034 bfd_put_32 (htab
->glink
->owner
, LI_R0_0
| indx
, p
);
11039 bfd_put_32 (htab
->glink
->owner
, LIS_R0_0
| PPC_HI (indx
), p
);
11041 bfd_put_32 (htab
->glink
->owner
, ORI_R0_R0_0
| PPC_LO (indx
), p
);
11044 bfd_put_32 (htab
->glink
->owner
,
11045 B_DOT
| ((htab
->glink
->contents
- p
+ 8) & 0x3fffffc), p
);
11049 htab
->glink
->rawsize
= p
- htab
->glink
->contents
;
11052 if (htab
->brlt
->size
!= 0)
11054 htab
->brlt
->contents
= bfd_zalloc (htab
->brlt
->owner
,
11056 if (htab
->brlt
->contents
== NULL
)
11059 if (htab
->relbrlt
!= NULL
&& htab
->relbrlt
->size
!= 0)
11061 htab
->relbrlt
->contents
= bfd_zalloc (htab
->relbrlt
->owner
,
11062 htab
->relbrlt
->size
);
11063 if (htab
->relbrlt
->contents
== NULL
)
11067 /* Build the stubs as directed by the stub hash table. */
11068 bfd_hash_traverse (&htab
->stub_hash_table
, ppc_build_one_stub
, info
);
11070 if (htab
->relbrlt
!= NULL
)
11071 htab
->relbrlt
->reloc_count
= 0;
11073 for (stub_sec
= htab
->stub_bfd
->sections
;
11075 stub_sec
= stub_sec
->next
)
11076 if ((stub_sec
->flags
& SEC_LINKER_CREATED
) == 0)
11078 stub_sec_count
+= 1;
11079 if (stub_sec
->rawsize
!= stub_sec
->size
)
11083 if (stub_sec
!= NULL
11084 || htab
->glink
->rawsize
!= htab
->glink
->size
)
11086 htab
->stub_error
= TRUE
;
11087 (*_bfd_error_handler
) (_("stubs don't match calculated size"));
11090 if (htab
->stub_error
)
11095 *stats
= bfd_malloc (500);
11096 if (*stats
== NULL
)
11099 sprintf (*stats
, _("linker stubs in %u group%s\n"
11101 " toc adjust %lu\n"
11102 " long branch %lu\n"
11103 " long toc adj %lu\n"
11106 stub_sec_count
== 1 ? "" : "s",
11107 htab
->stub_count
[ppc_stub_long_branch
- 1],
11108 htab
->stub_count
[ppc_stub_long_branch_r2off
- 1],
11109 htab
->stub_count
[ppc_stub_plt_branch
- 1],
11110 htab
->stub_count
[ppc_stub_plt_branch_r2off
- 1],
11111 htab
->stub_count
[ppc_stub_plt_call
- 1]);
11116 /* This function undoes the changes made by add_symbol_adjust. */
11119 undo_symbol_twiddle (struct elf_link_hash_entry
*h
, void *inf ATTRIBUTE_UNUSED
)
11121 struct ppc_link_hash_entry
*eh
;
11123 if (h
->root
.type
== bfd_link_hash_indirect
)
11126 if (h
->root
.type
== bfd_link_hash_warning
)
11127 h
= (struct elf_link_hash_entry
*) h
->root
.u
.i
.link
;
11129 eh
= (struct ppc_link_hash_entry
*) h
;
11130 if (eh
->elf
.root
.type
!= bfd_link_hash_undefweak
|| !eh
->was_undefined
)
11133 eh
->elf
.root
.type
= bfd_link_hash_undefined
;
11138 ppc64_elf_restore_symbols (struct bfd_link_info
*info
)
11140 struct ppc_link_hash_table
*htab
= ppc_hash_table (info
);
11143 elf_link_hash_traverse (&htab
->elf
, undo_symbol_twiddle
, info
);
11146 /* What to do when ld finds relocations against symbols defined in
11147 discarded sections. */
11149 static unsigned int
11150 ppc64_elf_action_discarded (asection
*sec
)
11152 if (strcmp (".opd", sec
->name
) == 0)
11155 if (strcmp (".toc", sec
->name
) == 0)
11158 if (strcmp (".toc1", sec
->name
) == 0)
11161 return _bfd_elf_default_action_discarded (sec
);
11164 /* The RELOCATE_SECTION function is called by the ELF backend linker
11165 to handle the relocations for a section.
11167 The relocs are always passed as Rela structures; if the section
11168 actually uses Rel structures, the r_addend field will always be
11171 This function is responsible for adjust the section contents as
11172 necessary, and (if using Rela relocs and generating a
11173 relocatable output file) adjusting the reloc addend as
11176 This function does not have to worry about setting the reloc
11177 address or the reloc symbol index.
11179 LOCAL_SYMS is a pointer to the swapped in local symbols.
11181 LOCAL_SECTIONS is an array giving the section in the input file
11182 corresponding to the st_shndx field of each local symbol.
11184 The global hash table entry for the global symbols can be found
11185 via elf_sym_hashes (input_bfd).
11187 When generating relocatable output, this function must handle
11188 STB_LOCAL/STT_SECTION symbols specially. The output symbol is
11189 going to be the section symbol corresponding to the output
11190 section, which means that the addend must be adjusted
11194 ppc64_elf_relocate_section (bfd
*output_bfd
,
11195 struct bfd_link_info
*info
,
11197 asection
*input_section
,
11198 bfd_byte
*contents
,
11199 Elf_Internal_Rela
*relocs
,
11200 Elf_Internal_Sym
*local_syms
,
11201 asection
**local_sections
)
11203 struct ppc_link_hash_table
*htab
;
11204 Elf_Internal_Shdr
*symtab_hdr
;
11205 struct elf_link_hash_entry
**sym_hashes
;
11206 Elf_Internal_Rela
*rel
;
11207 Elf_Internal_Rela
*relend
;
11208 Elf_Internal_Rela outrel
;
11210 struct got_entry
**local_got_ents
;
11212 bfd_boolean ret
= TRUE
;
11213 bfd_boolean is_opd
;
11214 /* Disabled until we sort out how ld should choose 'y' vs 'at'. */
11215 bfd_boolean is_power4
= FALSE
;
11216 bfd_vma d_offset
= (bfd_big_endian (output_bfd
) ? 2 : 0);
11218 /* Initialize howto table if needed. */
11219 if (!ppc64_elf_howto_table
[R_PPC64_ADDR32
])
11222 htab
= ppc_hash_table (info
);
11226 /* Don't relocate stub sections. */
11227 if (input_section
->owner
== htab
->stub_bfd
)
11230 BFD_ASSERT (is_ppc64_elf (input_bfd
));
11232 local_got_ents
= elf_local_got_ents (input_bfd
);
11233 TOCstart
= elf_gp (output_bfd
);
11234 symtab_hdr
= &elf_symtab_hdr (input_bfd
);
11235 sym_hashes
= elf_sym_hashes (input_bfd
);
11236 is_opd
= ppc64_elf_section_data (input_section
)->sec_type
== sec_opd
;
11239 relend
= relocs
+ input_section
->reloc_count
;
11240 for (; rel
< relend
; rel
++)
11242 enum elf_ppc64_reloc_type r_type
;
11243 bfd_vma addend
, orig_addend
;
11244 bfd_reloc_status_type r
;
11245 Elf_Internal_Sym
*sym
;
11247 struct elf_link_hash_entry
*h_elf
;
11248 struct ppc_link_hash_entry
*h
;
11249 struct ppc_link_hash_entry
*fdh
;
11250 const char *sym_name
;
11251 unsigned long r_symndx
, toc_symndx
;
11252 bfd_vma toc_addend
;
11253 unsigned char tls_mask
, tls_gd
, tls_type
;
11254 unsigned char sym_type
;
11255 bfd_vma relocation
;
11256 bfd_boolean unresolved_reloc
;
11257 bfd_boolean warned
;
11258 unsigned long insn
, mask
;
11259 struct ppc_stub_hash_entry
*stub_entry
;
11260 bfd_vma max_br_offset
;
11263 r_type
= ELF64_R_TYPE (rel
->r_info
);
11264 r_symndx
= ELF64_R_SYM (rel
->r_info
);
11266 /* For old style R_PPC64_TOC relocs with a zero symbol, use the
11267 symbol of the previous ADDR64 reloc. The symbol gives us the
11268 proper TOC base to use. */
11269 if (rel
->r_info
== ELF64_R_INFO (0, R_PPC64_TOC
)
11271 && ELF64_R_TYPE (rel
[-1].r_info
) == R_PPC64_ADDR64
11273 r_symndx
= ELF64_R_SYM (rel
[-1].r_info
);
11279 unresolved_reloc
= FALSE
;
11281 orig_addend
= rel
->r_addend
;
11283 if (r_symndx
< symtab_hdr
->sh_info
)
11285 /* It's a local symbol. */
11286 struct _opd_sec_data
*opd
;
11288 sym
= local_syms
+ r_symndx
;
11289 sec
= local_sections
[r_symndx
];
11290 sym_name
= bfd_elf_sym_name (input_bfd
, symtab_hdr
, sym
, sec
);
11291 sym_type
= ELF64_ST_TYPE (sym
->st_info
);
11292 relocation
= _bfd_elf_rela_local_sym (output_bfd
, sym
, &sec
, rel
);
11293 opd
= get_opd_info (sec
);
11294 if (opd
!= NULL
&& opd
->adjust
!= NULL
)
11296 long adjust
= opd
->adjust
[(sym
->st_value
+ rel
->r_addend
) / 8];
11301 /* If this is a relocation against the opd section sym
11302 and we have edited .opd, adjust the reloc addend so
11303 that ld -r and ld --emit-relocs output is correct.
11304 If it is a reloc against some other .opd symbol,
11305 then the symbol value will be adjusted later. */
11306 if (ELF_ST_TYPE (sym
->st_info
) == STT_SECTION
)
11307 rel
->r_addend
+= adjust
;
11309 relocation
+= adjust
;
11315 RELOC_FOR_GLOBAL_SYMBOL (info
, input_bfd
, input_section
, rel
,
11316 r_symndx
, symtab_hdr
, sym_hashes
,
11317 h_elf
, sec
, relocation
,
11318 unresolved_reloc
, warned
);
11319 sym_name
= h_elf
->root
.root
.string
;
11320 sym_type
= h_elf
->type
;
11322 h
= (struct ppc_link_hash_entry
*) h_elf
;
11324 if (sec
!= NULL
&& elf_discarded_section (sec
))
11326 /* For relocs against symbols from removed linkonce sections,
11327 or sections discarded by a linker script, we just want the
11328 section contents zeroed. Avoid any special processing. */
11329 _bfd_clear_contents (ppc64_elf_howto_table
[r_type
], input_bfd
,
11330 contents
+ rel
->r_offset
);
11336 if (info
->relocatable
)
11339 /* TLS optimizations. Replace instruction sequences and relocs
11340 based on information we collected in tls_optimize. We edit
11341 RELOCS so that --emit-relocs will output something sensible
11342 for the final instruction stream. */
11347 tls_mask
= h
->tls_mask
;
11348 else if (local_got_ents
!= NULL
)
11350 struct plt_entry
**local_plt
= (struct plt_entry
**)
11351 (local_got_ents
+ symtab_hdr
->sh_info
);
11352 unsigned char *lgot_masks
= (unsigned char *)
11353 (local_plt
+ symtab_hdr
->sh_info
);
11354 tls_mask
= lgot_masks
[r_symndx
];
11357 && (r_type
== R_PPC64_TLS
11358 || r_type
== R_PPC64_TLSGD
11359 || r_type
== R_PPC64_TLSLD
))
11361 /* Check for toc tls entries. */
11362 unsigned char *toc_tls
;
11364 if (!get_tls_mask (&toc_tls
, &toc_symndx
, &toc_addend
,
11365 &local_syms
, rel
, input_bfd
))
11369 tls_mask
= *toc_tls
;
11372 /* Check that tls relocs are used with tls syms, and non-tls
11373 relocs are used with non-tls syms. */
11375 && r_type
!= R_PPC64_NONE
11377 || h
->elf
.root
.type
== bfd_link_hash_defined
11378 || h
->elf
.root
.type
== bfd_link_hash_defweak
)
11379 && (IS_PPC64_TLS_RELOC (r_type
)
11380 != (sym_type
== STT_TLS
11381 || (sym_type
== STT_SECTION
11382 && (sec
->flags
& SEC_THREAD_LOCAL
) != 0))))
11385 && (r_type
== R_PPC64_TLS
11386 || r_type
== R_PPC64_TLSGD
11387 || r_type
== R_PPC64_TLSLD
))
11388 /* R_PPC64_TLS is OK against a symbol in the TOC. */
11391 (*_bfd_error_handler
)
11392 (!IS_PPC64_TLS_RELOC (r_type
)
11393 ? _("%B(%A+0x%lx): %s used with TLS symbol %s")
11394 : _("%B(%A+0x%lx): %s used with non-TLS symbol %s"),
11397 (long) rel
->r_offset
,
11398 ppc64_elf_howto_table
[r_type
]->name
,
11402 /* Ensure reloc mapping code below stays sane. */
11403 if (R_PPC64_TOC16_LO_DS
!= R_PPC64_TOC16_DS
+ 1
11404 || R_PPC64_TOC16_LO
!= R_PPC64_TOC16
+ 1
11405 || (R_PPC64_GOT_TLSLD16
& 3) != (R_PPC64_GOT_TLSGD16
& 3)
11406 || (R_PPC64_GOT_TLSLD16_LO
& 3) != (R_PPC64_GOT_TLSGD16_LO
& 3)
11407 || (R_PPC64_GOT_TLSLD16_HI
& 3) != (R_PPC64_GOT_TLSGD16_HI
& 3)
11408 || (R_PPC64_GOT_TLSLD16_HA
& 3) != (R_PPC64_GOT_TLSGD16_HA
& 3)
11409 || (R_PPC64_GOT_TLSLD16
& 3) != (R_PPC64_GOT_TPREL16_DS
& 3)
11410 || (R_PPC64_GOT_TLSLD16_LO
& 3) != (R_PPC64_GOT_TPREL16_LO_DS
& 3)
11411 || (R_PPC64_GOT_TLSLD16_HI
& 3) != (R_PPC64_GOT_TPREL16_HI
& 3)
11412 || (R_PPC64_GOT_TLSLD16_HA
& 3) != (R_PPC64_GOT_TPREL16_HA
& 3))
11420 case R_PPC64_TOC16
:
11421 case R_PPC64_TOC16_LO
:
11422 case R_PPC64_TOC16_DS
:
11423 case R_PPC64_TOC16_LO_DS
:
11425 /* Check for toc tls entries. */
11426 unsigned char *toc_tls
;
11429 retval
= get_tls_mask (&toc_tls
, &toc_symndx
, &toc_addend
,
11430 &local_syms
, rel
, input_bfd
);
11436 tls_mask
= *toc_tls
;
11437 if (r_type
== R_PPC64_TOC16_DS
11438 || r_type
== R_PPC64_TOC16_LO_DS
)
11441 && (tls_mask
& (TLS_DTPREL
| TLS_TPREL
)) == 0)
11446 /* If we found a GD reloc pair, then we might be
11447 doing a GD->IE transition. */
11450 tls_gd
= TLS_TPRELGD
;
11451 if (tls_mask
!= 0 && (tls_mask
& TLS_GD
) == 0)
11454 else if (retval
== 3)
11456 if (tls_mask
!= 0 && (tls_mask
& TLS_LD
) == 0)
11464 case R_PPC64_GOT_TPREL16_DS
:
11465 case R_PPC64_GOT_TPREL16_LO_DS
:
11467 && (tls_mask
& TLS_TPREL
) == 0)
11470 insn
= bfd_get_32 (output_bfd
, contents
+ rel
->r_offset
- d_offset
);
11472 insn
|= 0x3c0d0000; /* addis 0,13,0 */
11473 bfd_put_32 (output_bfd
, insn
, contents
+ rel
->r_offset
- d_offset
);
11474 r_type
= R_PPC64_TPREL16_HA
;
11475 if (toc_symndx
!= 0)
11477 rel
->r_info
= ELF64_R_INFO (toc_symndx
, r_type
);
11478 rel
->r_addend
= toc_addend
;
11479 /* We changed the symbol. Start over in order to
11480 get h, sym, sec etc. right. */
11485 rel
->r_info
= ELF64_R_INFO (r_symndx
, r_type
);
11491 && (tls_mask
& TLS_TPREL
) == 0)
11493 insn
= bfd_get_32 (output_bfd
, contents
+ rel
->r_offset
);
11494 insn
= _bfd_elf_ppc_at_tls_transform (insn
, 13);
11497 bfd_put_32 (output_bfd
, insn
, contents
+ rel
->r_offset
);
11498 /* Was PPC64_TLS which sits on insn boundary, now
11499 PPC64_TPREL16_LO which is at low-order half-word. */
11500 rel
->r_offset
+= d_offset
;
11501 r_type
= R_PPC64_TPREL16_LO
;
11502 if (toc_symndx
!= 0)
11504 rel
->r_info
= ELF64_R_INFO (toc_symndx
, r_type
);
11505 rel
->r_addend
= toc_addend
;
11506 /* We changed the symbol. Start over in order to
11507 get h, sym, sec etc. right. */
11512 rel
->r_info
= ELF64_R_INFO (r_symndx
, r_type
);
11516 case R_PPC64_GOT_TLSGD16_HI
:
11517 case R_PPC64_GOT_TLSGD16_HA
:
11518 tls_gd
= TLS_TPRELGD
;
11519 if (tls_mask
!= 0 && (tls_mask
& TLS_GD
) == 0)
11523 case R_PPC64_GOT_TLSLD16_HI
:
11524 case R_PPC64_GOT_TLSLD16_HA
:
11525 if (tls_mask
!= 0 && (tls_mask
& TLS_LD
) == 0)
11528 if ((tls_mask
& tls_gd
) != 0)
11529 r_type
= (((r_type
- (R_PPC64_GOT_TLSGD16
& 3)) & 3)
11530 + R_PPC64_GOT_TPREL16_DS
);
11533 bfd_put_32 (output_bfd
, NOP
, contents
+ rel
->r_offset
);
11534 rel
->r_offset
-= d_offset
;
11535 r_type
= R_PPC64_NONE
;
11537 rel
->r_info
= ELF64_R_INFO (r_symndx
, r_type
);
11541 case R_PPC64_GOT_TLSGD16
:
11542 case R_PPC64_GOT_TLSGD16_LO
:
11543 tls_gd
= TLS_TPRELGD
;
11544 if (tls_mask
!= 0 && (tls_mask
& TLS_GD
) == 0)
11548 case R_PPC64_GOT_TLSLD16
:
11549 case R_PPC64_GOT_TLSLD16_LO
:
11550 if (tls_mask
!= 0 && (tls_mask
& TLS_LD
) == 0)
11552 unsigned int insn1
, insn2
, insn3
;
11556 offset
= (bfd_vma
) -1;
11557 /* If not using the newer R_PPC64_TLSGD/LD to mark
11558 __tls_get_addr calls, we must trust that the call
11559 stays with its arg setup insns, ie. that the next
11560 reloc is the __tls_get_addr call associated with
11561 the current reloc. Edit both insns. */
11562 if (input_section
->has_tls_get_addr_call
11563 && rel
+ 1 < relend
11564 && branch_reloc_hash_match (input_bfd
, rel
+ 1,
11565 htab
->tls_get_addr
,
11566 htab
->tls_get_addr_fd
))
11567 offset
= rel
[1].r_offset
;
11568 if ((tls_mask
& tls_gd
) != 0)
11571 insn1
= bfd_get_32 (output_bfd
,
11572 contents
+ rel
->r_offset
- d_offset
);
11573 insn1
&= (1 << 26) - (1 << 2);
11574 insn1
|= 58 << 26; /* ld */
11575 insn2
= 0x7c636a14; /* add 3,3,13 */
11576 if (offset
!= (bfd_vma
) -1)
11577 rel
[1].r_info
= ELF64_R_INFO (STN_UNDEF
, R_PPC64_NONE
);
11578 if ((tls_mask
& TLS_EXPLICIT
) == 0)
11579 r_type
= (((r_type
- (R_PPC64_GOT_TLSGD16
& 3)) & 3)
11580 + R_PPC64_GOT_TPREL16_DS
);
11582 r_type
+= R_PPC64_TOC16_DS
- R_PPC64_TOC16
;
11583 rel
->r_info
= ELF64_R_INFO (r_symndx
, r_type
);
11588 insn1
= 0x3c6d0000; /* addis 3,13,0 */
11589 insn2
= 0x38630000; /* addi 3,3,0 */
11592 /* Was an LD reloc. */
11594 sec
= local_sections
[toc_symndx
];
11596 r_symndx
< symtab_hdr
->sh_info
;
11598 if (local_sections
[r_symndx
] == sec
)
11600 if (r_symndx
>= symtab_hdr
->sh_info
)
11602 rel
->r_addend
= htab
->elf
.tls_sec
->vma
+ DTP_OFFSET
;
11604 rel
->r_addend
-= (local_syms
[r_symndx
].st_value
11605 + sec
->output_offset
11606 + sec
->output_section
->vma
);
11608 else if (toc_symndx
!= 0)
11610 r_symndx
= toc_symndx
;
11611 rel
->r_addend
= toc_addend
;
11613 r_type
= R_PPC64_TPREL16_HA
;
11614 rel
->r_info
= ELF64_R_INFO (r_symndx
, r_type
);
11615 if (offset
!= (bfd_vma
) -1)
11617 rel
[1].r_info
= ELF64_R_INFO (r_symndx
,
11618 R_PPC64_TPREL16_LO
);
11619 rel
[1].r_offset
= offset
+ d_offset
;
11620 rel
[1].r_addend
= rel
->r_addend
;
11623 bfd_put_32 (output_bfd
, insn1
,
11624 contents
+ rel
->r_offset
- d_offset
);
11625 if (offset
!= (bfd_vma
) -1)
11627 insn3
= bfd_get_32 (output_bfd
,
11628 contents
+ offset
+ 4);
11630 || insn3
== CROR_151515
|| insn3
== CROR_313131
)
11632 rel
[1].r_offset
+= 4;
11633 bfd_put_32 (output_bfd
, insn2
, contents
+ offset
+ 4);
11636 bfd_put_32 (output_bfd
, insn2
, contents
+ offset
);
11638 if ((tls_mask
& tls_gd
) == 0
11639 && (tls_gd
== 0 || toc_symndx
!= 0))
11641 /* We changed the symbol. Start over in order
11642 to get h, sym, sec etc. right. */
11649 case R_PPC64_TLSGD
:
11650 if (tls_mask
!= 0 && (tls_mask
& TLS_GD
) == 0)
11652 unsigned int insn2
, insn3
;
11653 bfd_vma offset
= rel
->r_offset
;
11655 if ((tls_mask
& TLS_TPRELGD
) != 0)
11658 r_type
= R_PPC64_NONE
;
11659 insn2
= 0x7c636a14; /* add 3,3,13 */
11664 if (toc_symndx
!= 0)
11666 r_symndx
= toc_symndx
;
11667 rel
->r_addend
= toc_addend
;
11669 r_type
= R_PPC64_TPREL16_LO
;
11670 rel
->r_offset
= offset
+ d_offset
;
11671 insn2
= 0x38630000; /* addi 3,3,0 */
11673 rel
->r_info
= ELF64_R_INFO (r_symndx
, r_type
);
11674 /* Zap the reloc on the _tls_get_addr call too. */
11675 BFD_ASSERT (offset
== rel
[1].r_offset
);
11676 rel
[1].r_info
= ELF64_R_INFO (STN_UNDEF
, R_PPC64_NONE
);
11677 insn3
= bfd_get_32 (output_bfd
,
11678 contents
+ offset
+ 4);
11680 || insn3
== CROR_151515
|| insn3
== CROR_313131
)
11682 rel
->r_offset
+= 4;
11683 bfd_put_32 (output_bfd
, insn2
, contents
+ offset
+ 4);
11686 bfd_put_32 (output_bfd
, insn2
, contents
+ offset
);
11687 if ((tls_mask
& TLS_TPRELGD
) == 0 && toc_symndx
!= 0)
11695 case R_PPC64_TLSLD
:
11696 if (tls_mask
!= 0 && (tls_mask
& TLS_LD
) == 0)
11698 unsigned int insn2
, insn3
;
11699 bfd_vma offset
= rel
->r_offset
;
11702 sec
= local_sections
[toc_symndx
];
11704 r_symndx
< symtab_hdr
->sh_info
;
11706 if (local_sections
[r_symndx
] == sec
)
11708 if (r_symndx
>= symtab_hdr
->sh_info
)
11710 rel
->r_addend
= htab
->elf
.tls_sec
->vma
+ DTP_OFFSET
;
11712 rel
->r_addend
-= (local_syms
[r_symndx
].st_value
11713 + sec
->output_offset
11714 + sec
->output_section
->vma
);
11716 r_type
= R_PPC64_TPREL16_LO
;
11717 rel
->r_info
= ELF64_R_INFO (r_symndx
, r_type
);
11718 rel
->r_offset
= offset
+ d_offset
;
11719 /* Zap the reloc on the _tls_get_addr call too. */
11720 BFD_ASSERT (offset
== rel
[1].r_offset
);
11721 rel
[1].r_info
= ELF64_R_INFO (STN_UNDEF
, R_PPC64_NONE
);
11722 insn2
= 0x38630000; /* addi 3,3,0 */
11723 insn3
= bfd_get_32 (output_bfd
,
11724 contents
+ offset
+ 4);
11726 || insn3
== CROR_151515
|| insn3
== CROR_313131
)
11728 rel
->r_offset
+= 4;
11729 bfd_put_32 (output_bfd
, insn2
, contents
+ offset
+ 4);
11732 bfd_put_32 (output_bfd
, insn2
, contents
+ offset
);
11738 case R_PPC64_DTPMOD64
:
11739 if (rel
+ 1 < relend
11740 && rel
[1].r_info
== ELF64_R_INFO (r_symndx
, R_PPC64_DTPREL64
)
11741 && rel
[1].r_offset
== rel
->r_offset
+ 8)
11743 if ((tls_mask
& TLS_GD
) == 0)
11745 rel
[1].r_info
= ELF64_R_INFO (r_symndx
, R_PPC64_NONE
);
11746 if ((tls_mask
& TLS_TPRELGD
) != 0)
11747 r_type
= R_PPC64_TPREL64
;
11750 bfd_put_64 (output_bfd
, 1, contents
+ rel
->r_offset
);
11751 r_type
= R_PPC64_NONE
;
11753 rel
->r_info
= ELF64_R_INFO (r_symndx
, r_type
);
11758 if ((tls_mask
& TLS_LD
) == 0)
11760 bfd_put_64 (output_bfd
, 1, contents
+ rel
->r_offset
);
11761 r_type
= R_PPC64_NONE
;
11762 rel
->r_info
= ELF64_R_INFO (r_symndx
, r_type
);
11767 case R_PPC64_TPREL64
:
11768 if ((tls_mask
& TLS_TPREL
) == 0)
11770 r_type
= R_PPC64_NONE
;
11771 rel
->r_info
= ELF64_R_INFO (r_symndx
, r_type
);
11776 /* Handle other relocations that tweak non-addend part of insn. */
11778 max_br_offset
= 1 << 25;
11779 addend
= rel
->r_addend
;
11785 /* Branch taken prediction relocations. */
11786 case R_PPC64_ADDR14_BRTAKEN
:
11787 case R_PPC64_REL14_BRTAKEN
:
11788 insn
= 0x01 << 21; /* 'y' or 't' bit, lowest bit of BO field. */
11791 /* Branch not taken prediction relocations. */
11792 case R_PPC64_ADDR14_BRNTAKEN
:
11793 case R_PPC64_REL14_BRNTAKEN
:
11794 insn
|= bfd_get_32 (output_bfd
,
11795 contents
+ rel
->r_offset
) & ~(0x01 << 21);
11798 case R_PPC64_REL14
:
11799 max_br_offset
= 1 << 15;
11802 case R_PPC64_REL24
:
11803 /* Calls to functions with a different TOC, such as calls to
11804 shared objects, need to alter the TOC pointer. This is
11805 done using a linkage stub. A REL24 branching to these
11806 linkage stubs needs to be followed by a nop, as the nop
11807 will be replaced with an instruction to restore the TOC
11813 && h
->oh
->is_func_descriptor
)
11814 fdh
= ppc_follow_link (h
->oh
);
11816 && fdh
->elf
.plt
.plist
!= NULL
)
11818 && sec
->output_section
!= NULL
11819 && sec
->id
<= htab
->top_id
11820 && (htab
->stub_group
[sec
->id
].toc_off
11821 != htab
->stub_group
[input_section
->id
].toc_off
))
11823 && ELF_ST_TYPE (sym
->st_info
) == STT_GNU_IFUNC
))
11824 && (stub_entry
= ppc_get_stub_entry (input_section
, sec
, fdh
,
11825 rel
, htab
)) != NULL
11826 && (stub_entry
->stub_type
== ppc_stub_plt_call
11827 || stub_entry
->stub_type
== ppc_stub_plt_branch_r2off
11828 || stub_entry
->stub_type
== ppc_stub_long_branch_r2off
))
11830 bfd_boolean can_plt_call
= FALSE
;
11832 if (rel
->r_offset
+ 8 <= input_section
->size
)
11835 nop
= bfd_get_32 (input_bfd
, contents
+ rel
->r_offset
+ 4);
11837 || nop
== CROR_151515
|| nop
== CROR_313131
)
11840 && (h
== htab
->tls_get_addr_fd
11841 || h
== htab
->tls_get_addr
)
11842 && !htab
->no_tls_get_addr_opt
)
11844 /* Special stub used, leave nop alone. */
11847 bfd_put_32 (input_bfd
, LD_R2_40R1
,
11848 contents
+ rel
->r_offset
+ 4);
11849 can_plt_call
= TRUE
;
11855 if (stub_entry
->stub_type
== ppc_stub_plt_call
)
11857 /* If this is a plain branch rather than a branch
11858 and link, don't require a nop. However, don't
11859 allow tail calls in a shared library as they
11860 will result in r2 being corrupted. */
11862 br
= bfd_get_32 (input_bfd
, contents
+ rel
->r_offset
);
11863 if (info
->executable
&& (br
& 1) == 0)
11864 can_plt_call
= TRUE
;
11869 && strcmp (h
->elf
.root
.root
.string
,
11870 ".__libc_start_main") == 0)
11872 /* Allow crt1 branch to go via a toc adjusting stub. */
11873 can_plt_call
= TRUE
;
11877 if (strcmp (input_section
->output_section
->name
,
11879 || strcmp (input_section
->output_section
->name
,
11881 (*_bfd_error_handler
)
11882 (_("%B(%A+0x%lx): automatic multiple TOCs "
11883 "not supported using your crt files; "
11884 "recompile with -mminimal-toc or upgrade gcc"),
11887 (long) rel
->r_offset
);
11889 (*_bfd_error_handler
)
11890 (_("%B(%A+0x%lx): sibling call optimization to `%s' "
11891 "does not allow automatic multiple TOCs; "
11892 "recompile with -mminimal-toc or "
11893 "-fno-optimize-sibling-calls, "
11894 "or make `%s' extern"),
11897 (long) rel
->r_offset
,
11900 bfd_set_error (bfd_error_bad_value
);
11906 && stub_entry
->stub_type
== ppc_stub_plt_call
)
11907 unresolved_reloc
= FALSE
;
11910 if (stub_entry
== NULL
11911 && get_opd_info (sec
) != NULL
)
11913 /* The branch destination is the value of the opd entry. */
11914 bfd_vma off
= (relocation
+ addend
11915 - sec
->output_section
->vma
11916 - sec
->output_offset
);
11917 bfd_vma dest
= opd_entry_value (sec
, off
, NULL
, NULL
);
11918 if (dest
!= (bfd_vma
) -1)
11925 /* If the branch is out of reach we ought to have a long
11927 from
= (rel
->r_offset
11928 + input_section
->output_offset
11929 + input_section
->output_section
->vma
);
11931 if (stub_entry
== NULL
11932 && (relocation
+ addend
- from
+ max_br_offset
11933 >= 2 * max_br_offset
)
11934 && r_type
!= R_PPC64_ADDR14_BRTAKEN
11935 && r_type
!= R_PPC64_ADDR14_BRNTAKEN
)
11936 stub_entry
= ppc_get_stub_entry (input_section
, sec
, h
, rel
,
11939 if (stub_entry
!= NULL
)
11941 /* Munge up the value and addend so that we call the stub
11942 rather than the procedure directly. */
11943 relocation
= (stub_entry
->stub_offset
11944 + stub_entry
->stub_sec
->output_offset
11945 + stub_entry
->stub_sec
->output_section
->vma
);
11953 /* Set 'a' bit. This is 0b00010 in BO field for branch
11954 on CR(BI) insns (BO == 001at or 011at), and 0b01000
11955 for branch on CTR insns (BO == 1a00t or 1a01t). */
11956 if ((insn
& (0x14 << 21)) == (0x04 << 21))
11957 insn
|= 0x02 << 21;
11958 else if ((insn
& (0x14 << 21)) == (0x10 << 21))
11959 insn
|= 0x08 << 21;
11965 /* Invert 'y' bit if not the default. */
11966 if ((bfd_signed_vma
) (relocation
+ addend
- from
) < 0)
11967 insn
^= 0x01 << 21;
11970 bfd_put_32 (output_bfd
, insn
, contents
+ rel
->r_offset
);
11973 /* NOP out calls to undefined weak functions.
11974 We can thus call a weak function without first
11975 checking whether the function is defined. */
11977 && h
->elf
.root
.type
== bfd_link_hash_undefweak
11978 && h
->elf
.dynindx
== -1
11979 && r_type
== R_PPC64_REL24
11983 bfd_put_32 (output_bfd
, NOP
, contents
+ rel
->r_offset
);
11989 /* Set `addend'. */
11994 (*_bfd_error_handler
)
11995 (_("%B: unknown relocation type %d for symbol %s"),
11996 input_bfd
, (int) r_type
, sym_name
);
11998 bfd_set_error (bfd_error_bad_value
);
12004 case R_PPC64_TLSGD
:
12005 case R_PPC64_TLSLD
:
12006 case R_PPC64_GNU_VTINHERIT
:
12007 case R_PPC64_GNU_VTENTRY
:
12010 /* GOT16 relocations. Like an ADDR16 using the symbol's
12011 address in the GOT as relocation value instead of the
12012 symbol's value itself. Also, create a GOT entry for the
12013 symbol and put the symbol value there. */
12014 case R_PPC64_GOT_TLSGD16
:
12015 case R_PPC64_GOT_TLSGD16_LO
:
12016 case R_PPC64_GOT_TLSGD16_HI
:
12017 case R_PPC64_GOT_TLSGD16_HA
:
12018 tls_type
= TLS_TLS
| TLS_GD
;
12021 case R_PPC64_GOT_TLSLD16
:
12022 case R_PPC64_GOT_TLSLD16_LO
:
12023 case R_PPC64_GOT_TLSLD16_HI
:
12024 case R_PPC64_GOT_TLSLD16_HA
:
12025 tls_type
= TLS_TLS
| TLS_LD
;
12028 case R_PPC64_GOT_TPREL16_DS
:
12029 case R_PPC64_GOT_TPREL16_LO_DS
:
12030 case R_PPC64_GOT_TPREL16_HI
:
12031 case R_PPC64_GOT_TPREL16_HA
:
12032 tls_type
= TLS_TLS
| TLS_TPREL
;
12035 case R_PPC64_GOT_DTPREL16_DS
:
12036 case R_PPC64_GOT_DTPREL16_LO_DS
:
12037 case R_PPC64_GOT_DTPREL16_HI
:
12038 case R_PPC64_GOT_DTPREL16_HA
:
12039 tls_type
= TLS_TLS
| TLS_DTPREL
;
12042 case R_PPC64_GOT16
:
12043 case R_PPC64_GOT16_LO
:
12044 case R_PPC64_GOT16_HI
:
12045 case R_PPC64_GOT16_HA
:
12046 case R_PPC64_GOT16_DS
:
12047 case R_PPC64_GOT16_LO_DS
:
12050 /* Relocation is to the entry for this symbol in the global
12055 unsigned long indx
= 0;
12056 struct got_entry
*ent
;
12058 if (tls_type
== (TLS_TLS
| TLS_LD
)
12060 || !h
->elf
.def_dynamic
))
12061 ent
= ppc64_tlsld_got (input_bfd
);
12067 bfd_boolean dyn
= htab
->elf
.dynamic_sections_created
;
12068 if (!WILL_CALL_FINISH_DYNAMIC_SYMBOL (dyn
, info
->shared
,
12071 && SYMBOL_REFERENCES_LOCAL (info
, &h
->elf
)))
12072 /* This is actually a static link, or it is a
12073 -Bsymbolic link and the symbol is defined
12074 locally, or the symbol was forced to be local
12075 because of a version file. */
12079 indx
= h
->elf
.dynindx
;
12080 unresolved_reloc
= FALSE
;
12082 ent
= h
->elf
.got
.glist
;
12086 if (local_got_ents
== NULL
)
12088 ent
= local_got_ents
[r_symndx
];
12091 for (; ent
!= NULL
; ent
= ent
->next
)
12092 if (ent
->addend
== orig_addend
12093 && ent
->owner
== input_bfd
12094 && ent
->tls_type
== tls_type
)
12100 if (ent
->is_indirect
)
12101 ent
= ent
->got
.ent
;
12102 offp
= &ent
->got
.offset
;
12103 got
= ppc64_elf_tdata (ent
->owner
)->got
;
12107 /* The offset must always be a multiple of 8. We use the
12108 least significant bit to record whether we have already
12109 processed this entry. */
12111 if ((off
& 1) != 0)
12115 /* Generate relocs for the dynamic linker, except in
12116 the case of TLSLD where we'll use one entry per
12124 ? h
->elf
.type
== STT_GNU_IFUNC
12125 : ELF_ST_TYPE (sym
->st_info
) == STT_GNU_IFUNC
);
12126 if ((info
->shared
|| indx
!= 0)
12128 || (tls_type
== (TLS_TLS
| TLS_LD
)
12129 && !h
->elf
.def_dynamic
)
12130 || ELF_ST_VISIBILITY (h
->elf
.other
) == STV_DEFAULT
12131 || h
->elf
.root
.type
!= bfd_link_hash_undefweak
))
12132 relgot
= ppc64_elf_tdata (ent
->owner
)->relgot
;
12134 relgot
= htab
->reliplt
;
12135 if (relgot
!= NULL
)
12137 outrel
.r_offset
= (got
->output_section
->vma
12138 + got
->output_offset
12140 outrel
.r_addend
= addend
;
12141 if (tls_type
& (TLS_LD
| TLS_GD
))
12143 outrel
.r_addend
= 0;
12144 outrel
.r_info
= ELF64_R_INFO (indx
, R_PPC64_DTPMOD64
);
12145 if (tls_type
== (TLS_TLS
| TLS_GD
))
12147 loc
= relgot
->contents
;
12148 loc
+= (relgot
->reloc_count
++
12149 * sizeof (Elf64_External_Rela
));
12150 bfd_elf64_swap_reloca_out (output_bfd
,
12152 outrel
.r_offset
+= 8;
12153 outrel
.r_addend
= addend
;
12155 = ELF64_R_INFO (indx
, R_PPC64_DTPREL64
);
12158 else if (tls_type
== (TLS_TLS
| TLS_DTPREL
))
12159 outrel
.r_info
= ELF64_R_INFO (indx
, R_PPC64_DTPREL64
);
12160 else if (tls_type
== (TLS_TLS
| TLS_TPREL
))
12161 outrel
.r_info
= ELF64_R_INFO (indx
, R_PPC64_TPREL64
);
12162 else if (indx
!= 0)
12163 outrel
.r_info
= ELF64_R_INFO (indx
, R_PPC64_GLOB_DAT
);
12167 outrel
.r_info
= ELF64_R_INFO (0, R_PPC64_IRELATIVE
);
12169 outrel
.r_info
= ELF64_R_INFO (0, R_PPC64_RELATIVE
);
12171 /* Write the .got section contents for the sake
12173 loc
= got
->contents
+ off
;
12174 bfd_put_64 (output_bfd
, outrel
.r_addend
+ relocation
,
12178 if (indx
== 0 && tls_type
!= (TLS_TLS
| TLS_LD
))
12180 outrel
.r_addend
+= relocation
;
12181 if (tls_type
& (TLS_GD
| TLS_DTPREL
| TLS_TPREL
))
12182 outrel
.r_addend
-= htab
->elf
.tls_sec
->vma
;
12184 loc
= relgot
->contents
;
12185 loc
+= (relgot
->reloc_count
++
12186 * sizeof (Elf64_External_Rela
));
12187 bfd_elf64_swap_reloca_out (output_bfd
, &outrel
, loc
);
12190 /* Init the .got section contents here if we're not
12191 emitting a reloc. */
12194 relocation
+= addend
;
12195 if (tls_type
== (TLS_TLS
| TLS_LD
))
12197 else if (tls_type
!= 0)
12199 relocation
-= htab
->elf
.tls_sec
->vma
+ DTP_OFFSET
;
12200 if (tls_type
== (TLS_TLS
| TLS_TPREL
))
12201 relocation
+= DTP_OFFSET
- TP_OFFSET
;
12203 if (tls_type
== (TLS_TLS
| TLS_GD
))
12205 bfd_put_64 (output_bfd
, relocation
,
12206 got
->contents
+ off
+ 8);
12211 bfd_put_64 (output_bfd
, relocation
,
12212 got
->contents
+ off
);
12216 if (off
>= (bfd_vma
) -2)
12219 relocation
= got
->output_section
->vma
+ got
->output_offset
+ off
;
12220 addend
= -(TOCstart
+ htab
->stub_group
[input_section
->id
].toc_off
);
12224 case R_PPC64_PLT16_HA
:
12225 case R_PPC64_PLT16_HI
:
12226 case R_PPC64_PLT16_LO
:
12227 case R_PPC64_PLT32
:
12228 case R_PPC64_PLT64
:
12229 /* Relocation is to the entry for this symbol in the
12230 procedure linkage table. */
12232 /* Resolve a PLT reloc against a local symbol directly,
12233 without using the procedure linkage table. */
12237 /* It's possible that we didn't make a PLT entry for this
12238 symbol. This happens when statically linking PIC code,
12239 or when using -Bsymbolic. Go find a match if there is a
12241 if (htab
->plt
!= NULL
)
12243 struct plt_entry
*ent
;
12244 for (ent
= h
->elf
.plt
.plist
; ent
!= NULL
; ent
= ent
->next
)
12245 if (ent
->addend
== orig_addend
12246 && ent
->plt
.offset
!= (bfd_vma
) -1)
12248 relocation
= (htab
->plt
->output_section
->vma
12249 + htab
->plt
->output_offset
12250 + ent
->plt
.offset
);
12251 unresolved_reloc
= FALSE
;
12257 /* Relocation value is TOC base. */
12258 relocation
= TOCstart
;
12260 relocation
+= htab
->stub_group
[input_section
->id
].toc_off
;
12261 else if (unresolved_reloc
)
12263 else if (sec
!= NULL
&& sec
->id
<= htab
->top_id
)
12264 relocation
+= htab
->stub_group
[sec
->id
].toc_off
;
12266 unresolved_reloc
= TRUE
;
12269 /* TOC16 relocs. We want the offset relative to the TOC base,
12270 which is the address of the start of the TOC plus 0x8000.
12271 The TOC consists of sections .got, .toc, .tocbss, and .plt,
12273 case R_PPC64_TOC16
:
12274 case R_PPC64_TOC16_LO
:
12275 case R_PPC64_TOC16_HI
:
12276 case R_PPC64_TOC16_DS
:
12277 case R_PPC64_TOC16_LO_DS
:
12278 case R_PPC64_TOC16_HA
:
12279 addend
-= TOCstart
+ htab
->stub_group
[input_section
->id
].toc_off
;
12282 /* Relocate against the beginning of the section. */
12283 case R_PPC64_SECTOFF
:
12284 case R_PPC64_SECTOFF_LO
:
12285 case R_PPC64_SECTOFF_HI
:
12286 case R_PPC64_SECTOFF_DS
:
12287 case R_PPC64_SECTOFF_LO_DS
:
12288 case R_PPC64_SECTOFF_HA
:
12290 addend
-= sec
->output_section
->vma
;
12293 case R_PPC64_REL16
:
12294 case R_PPC64_REL16_LO
:
12295 case R_PPC64_REL16_HI
:
12296 case R_PPC64_REL16_HA
:
12299 case R_PPC64_REL14
:
12300 case R_PPC64_REL14_BRNTAKEN
:
12301 case R_PPC64_REL14_BRTAKEN
:
12302 case R_PPC64_REL24
:
12305 case R_PPC64_TPREL16
:
12306 case R_PPC64_TPREL16_LO
:
12307 case R_PPC64_TPREL16_HI
:
12308 case R_PPC64_TPREL16_HA
:
12309 case R_PPC64_TPREL16_DS
:
12310 case R_PPC64_TPREL16_LO_DS
:
12311 case R_PPC64_TPREL16_HIGHER
:
12312 case R_PPC64_TPREL16_HIGHERA
:
12313 case R_PPC64_TPREL16_HIGHEST
:
12314 case R_PPC64_TPREL16_HIGHESTA
:
12316 && h
->elf
.root
.type
== bfd_link_hash_undefweak
12317 && h
->elf
.dynindx
== -1)
12319 /* Make this relocation against an undefined weak symbol
12320 resolve to zero. This is really just a tweak, since
12321 code using weak externs ought to check that they are
12322 defined before using them. */
12323 bfd_byte
*p
= contents
+ rel
->r_offset
- d_offset
;
12325 insn
= bfd_get_32 (output_bfd
, p
);
12326 insn
= _bfd_elf_ppc_at_tprel_transform (insn
, 13);
12328 bfd_put_32 (output_bfd
, insn
, p
);
12331 addend
-= htab
->elf
.tls_sec
->vma
+ TP_OFFSET
;
12333 /* The TPREL16 relocs shouldn't really be used in shared
12334 libs as they will result in DT_TEXTREL being set, but
12335 support them anyway. */
12339 case R_PPC64_DTPREL16
:
12340 case R_PPC64_DTPREL16_LO
:
12341 case R_PPC64_DTPREL16_HI
:
12342 case R_PPC64_DTPREL16_HA
:
12343 case R_PPC64_DTPREL16_DS
:
12344 case R_PPC64_DTPREL16_LO_DS
:
12345 case R_PPC64_DTPREL16_HIGHER
:
12346 case R_PPC64_DTPREL16_HIGHERA
:
12347 case R_PPC64_DTPREL16_HIGHEST
:
12348 case R_PPC64_DTPREL16_HIGHESTA
:
12349 addend
-= htab
->elf
.tls_sec
->vma
+ DTP_OFFSET
;
12352 case R_PPC64_DTPMOD64
:
12357 case R_PPC64_TPREL64
:
12358 addend
-= htab
->elf
.tls_sec
->vma
+ TP_OFFSET
;
12361 case R_PPC64_DTPREL64
:
12362 addend
-= htab
->elf
.tls_sec
->vma
+ DTP_OFFSET
;
12365 /* Relocations that may need to be propagated if this is a
12367 case R_PPC64_REL30
:
12368 case R_PPC64_REL32
:
12369 case R_PPC64_REL64
:
12370 case R_PPC64_ADDR14
:
12371 case R_PPC64_ADDR14_BRNTAKEN
:
12372 case R_PPC64_ADDR14_BRTAKEN
:
12373 case R_PPC64_ADDR16
:
12374 case R_PPC64_ADDR16_DS
:
12375 case R_PPC64_ADDR16_HA
:
12376 case R_PPC64_ADDR16_HI
:
12377 case R_PPC64_ADDR16_HIGHER
:
12378 case R_PPC64_ADDR16_HIGHERA
:
12379 case R_PPC64_ADDR16_HIGHEST
:
12380 case R_PPC64_ADDR16_HIGHESTA
:
12381 case R_PPC64_ADDR16_LO
:
12382 case R_PPC64_ADDR16_LO_DS
:
12383 case R_PPC64_ADDR24
:
12384 case R_PPC64_ADDR32
:
12385 case R_PPC64_ADDR64
:
12386 case R_PPC64_UADDR16
:
12387 case R_PPC64_UADDR32
:
12388 case R_PPC64_UADDR64
:
12390 if ((input_section
->flags
& SEC_ALLOC
) == 0)
12393 if (NO_OPD_RELOCS
&& is_opd
)
12398 || ELF_ST_VISIBILITY (h
->elf
.other
) == STV_DEFAULT
12399 || h
->elf
.root
.type
!= bfd_link_hash_undefweak
)
12400 && (must_be_dyn_reloc (info
, r_type
)
12401 || !SYMBOL_CALLS_LOCAL (info
, &h
->elf
)))
12402 || (ELIMINATE_COPY_RELOCS
12405 && h
->elf
.dynindx
!= -1
12406 && !h
->elf
.non_got_ref
12407 && !h
->elf
.def_regular
)
12410 ? h
->elf
.type
== STT_GNU_IFUNC
12411 : ELF_ST_TYPE (sym
->st_info
) == STT_GNU_IFUNC
)))
12413 bfd_boolean skip
, relocate
;
12417 /* When generating a dynamic object, these relocations
12418 are copied into the output file to be resolved at run
12424 out_off
= _bfd_elf_section_offset (output_bfd
, info
,
12425 input_section
, rel
->r_offset
);
12426 if (out_off
== (bfd_vma
) -1)
12428 else if (out_off
== (bfd_vma
) -2)
12429 skip
= TRUE
, relocate
= TRUE
;
12430 out_off
+= (input_section
->output_section
->vma
12431 + input_section
->output_offset
);
12432 outrel
.r_offset
= out_off
;
12433 outrel
.r_addend
= rel
->r_addend
;
12435 /* Optimize unaligned reloc use. */
12436 if ((r_type
== R_PPC64_ADDR64
&& (out_off
& 7) != 0)
12437 || (r_type
== R_PPC64_UADDR64
&& (out_off
& 7) == 0))
12438 r_type
^= R_PPC64_ADDR64
^ R_PPC64_UADDR64
;
12439 else if ((r_type
== R_PPC64_ADDR32
&& (out_off
& 3) != 0)
12440 || (r_type
== R_PPC64_UADDR32
&& (out_off
& 3) == 0))
12441 r_type
^= R_PPC64_ADDR32
^ R_PPC64_UADDR32
;
12442 else if ((r_type
== R_PPC64_ADDR16
&& (out_off
& 1) != 0)
12443 || (r_type
== R_PPC64_UADDR16
&& (out_off
& 1) == 0))
12444 r_type
^= R_PPC64_ADDR16
^ R_PPC64_UADDR16
;
12447 memset (&outrel
, 0, sizeof outrel
);
12448 else if (!SYMBOL_REFERENCES_LOCAL (info
, &h
->elf
)
12450 && r_type
!= R_PPC64_TOC
)
12451 outrel
.r_info
= ELF64_R_INFO (h
->elf
.dynindx
, r_type
);
12454 /* This symbol is local, or marked to become local,
12455 or this is an opd section reloc which must point
12456 at a local function. */
12457 outrel
.r_addend
+= relocation
;
12458 if (r_type
== R_PPC64_ADDR64
|| r_type
== R_PPC64_TOC
)
12460 if (is_opd
&& h
!= NULL
)
12462 /* Lie about opd entries. This case occurs
12463 when building shared libraries and we
12464 reference a function in another shared
12465 lib. The same thing happens for a weak
12466 definition in an application that's
12467 overridden by a strong definition in a
12468 shared lib. (I believe this is a generic
12469 bug in binutils handling of weak syms.)
12470 In these cases we won't use the opd
12471 entry in this lib. */
12472 unresolved_reloc
= FALSE
;
12475 && r_type
== R_PPC64_ADDR64
12477 ? h
->elf
.type
== STT_GNU_IFUNC
12478 : ELF_ST_TYPE (sym
->st_info
) == STT_GNU_IFUNC
))
12479 outrel
.r_info
= ELF64_R_INFO (0, R_PPC64_IRELATIVE
);
12482 outrel
.r_info
= ELF64_R_INFO (0, R_PPC64_RELATIVE
);
12484 /* We need to relocate .opd contents for ld.so.
12485 Prelink also wants simple and consistent rules
12486 for relocs. This make all RELATIVE relocs have
12487 *r_offset equal to r_addend. */
12496 ? h
->elf
.type
== STT_GNU_IFUNC
12497 : ELF_ST_TYPE (sym
->st_info
) == STT_GNU_IFUNC
)
12499 (*_bfd_error_handler
)
12500 (_("%B(%A+0x%lx): relocation %s for indirect "
12501 "function %s unsupported"),
12504 (long) rel
->r_offset
,
12505 ppc64_elf_howto_table
[r_type
]->name
,
12509 else if (r_symndx
== 0 || bfd_is_abs_section (sec
))
12511 else if (sec
== NULL
|| sec
->owner
== NULL
)
12513 bfd_set_error (bfd_error_bad_value
);
12520 osec
= sec
->output_section
;
12521 indx
= elf_section_data (osec
)->dynindx
;
12525 if ((osec
->flags
& SEC_READONLY
) == 0
12526 && htab
->elf
.data_index_section
!= NULL
)
12527 osec
= htab
->elf
.data_index_section
;
12529 osec
= htab
->elf
.text_index_section
;
12530 indx
= elf_section_data (osec
)->dynindx
;
12532 BFD_ASSERT (indx
!= 0);
12534 /* We are turning this relocation into one
12535 against a section symbol, so subtract out
12536 the output section's address but not the
12537 offset of the input section in the output
12539 outrel
.r_addend
-= osec
->vma
;
12542 outrel
.r_info
= ELF64_R_INFO (indx
, r_type
);
12546 sreloc
= elf_section_data (input_section
)->sreloc
;
12547 if (!htab
->elf
.dynamic_sections_created
)
12548 sreloc
= htab
->reliplt
;
12549 if (sreloc
== NULL
)
12552 if (sreloc
->reloc_count
* sizeof (Elf64_External_Rela
)
12555 loc
= sreloc
->contents
;
12556 loc
+= sreloc
->reloc_count
++ * sizeof (Elf64_External_Rela
);
12557 bfd_elf64_swap_reloca_out (output_bfd
, &outrel
, loc
);
12559 /* If this reloc is against an external symbol, it will
12560 be computed at runtime, so there's no need to do
12561 anything now. However, for the sake of prelink ensure
12562 that the section contents are a known value. */
12565 unresolved_reloc
= FALSE
;
12566 /* The value chosen here is quite arbitrary as ld.so
12567 ignores section contents except for the special
12568 case of .opd where the contents might be accessed
12569 before relocation. Choose zero, as that won't
12570 cause reloc overflow. */
12573 /* Use *r_offset == r_addend for R_PPC64_ADDR64 relocs
12574 to improve backward compatibility with older
12576 if (r_type
== R_PPC64_ADDR64
)
12577 addend
= outrel
.r_addend
;
12578 /* Adjust pc_relative relocs to have zero in *r_offset. */
12579 else if (ppc64_elf_howto_table
[r_type
]->pc_relative
)
12580 addend
= (input_section
->output_section
->vma
12581 + input_section
->output_offset
12588 case R_PPC64_GLOB_DAT
:
12589 case R_PPC64_JMP_SLOT
:
12590 case R_PPC64_JMP_IREL
:
12591 case R_PPC64_RELATIVE
:
12592 /* We shouldn't ever see these dynamic relocs in relocatable
12594 /* Fall through. */
12596 case R_PPC64_PLTGOT16
:
12597 case R_PPC64_PLTGOT16_DS
:
12598 case R_PPC64_PLTGOT16_HA
:
12599 case R_PPC64_PLTGOT16_HI
:
12600 case R_PPC64_PLTGOT16_LO
:
12601 case R_PPC64_PLTGOT16_LO_DS
:
12602 case R_PPC64_PLTREL32
:
12603 case R_PPC64_PLTREL64
:
12604 /* These ones haven't been implemented yet. */
12606 (*_bfd_error_handler
)
12607 (_("%B: relocation %s is not supported for symbol %s."),
12609 ppc64_elf_howto_table
[r_type
]->name
, sym_name
);
12611 bfd_set_error (bfd_error_invalid_operation
);
12616 /* Do any further special processing. */
12622 case R_PPC64_ADDR16_HA
:
12623 case R_PPC64_REL16_HA
:
12624 case R_PPC64_ADDR16_HIGHERA
:
12625 case R_PPC64_ADDR16_HIGHESTA
:
12626 case R_PPC64_TOC16_HA
:
12627 case R_PPC64_SECTOFF_HA
:
12628 case R_PPC64_TPREL16_HA
:
12629 case R_PPC64_DTPREL16_HA
:
12630 case R_PPC64_TPREL16_HIGHER
:
12631 case R_PPC64_TPREL16_HIGHERA
:
12632 case R_PPC64_TPREL16_HIGHEST
:
12633 case R_PPC64_TPREL16_HIGHESTA
:
12634 case R_PPC64_DTPREL16_HIGHER
:
12635 case R_PPC64_DTPREL16_HIGHERA
:
12636 case R_PPC64_DTPREL16_HIGHEST
:
12637 case R_PPC64_DTPREL16_HIGHESTA
:
12638 /* It's just possible that this symbol is a weak symbol
12639 that's not actually defined anywhere. In that case,
12640 'sec' would be NULL, and we should leave the symbol
12641 alone (it will be set to zero elsewhere in the link). */
12646 case R_PPC64_GOT16_HA
:
12647 case R_PPC64_PLTGOT16_HA
:
12648 case R_PPC64_PLT16_HA
:
12649 case R_PPC64_GOT_TLSGD16_HA
:
12650 case R_PPC64_GOT_TLSLD16_HA
:
12651 case R_PPC64_GOT_TPREL16_HA
:
12652 case R_PPC64_GOT_DTPREL16_HA
:
12653 /* Add 0x10000 if sign bit in 0:15 is set.
12654 Bits 0:15 are not used. */
12658 case R_PPC64_ADDR16_DS
:
12659 case R_PPC64_ADDR16_LO_DS
:
12660 case R_PPC64_GOT16_DS
:
12661 case R_PPC64_GOT16_LO_DS
:
12662 case R_PPC64_PLT16_LO_DS
:
12663 case R_PPC64_SECTOFF_DS
:
12664 case R_PPC64_SECTOFF_LO_DS
:
12665 case R_PPC64_TOC16_DS
:
12666 case R_PPC64_TOC16_LO_DS
:
12667 case R_PPC64_PLTGOT16_DS
:
12668 case R_PPC64_PLTGOT16_LO_DS
:
12669 case R_PPC64_GOT_TPREL16_DS
:
12670 case R_PPC64_GOT_TPREL16_LO_DS
:
12671 case R_PPC64_GOT_DTPREL16_DS
:
12672 case R_PPC64_GOT_DTPREL16_LO_DS
:
12673 case R_PPC64_TPREL16_DS
:
12674 case R_PPC64_TPREL16_LO_DS
:
12675 case R_PPC64_DTPREL16_DS
:
12676 case R_PPC64_DTPREL16_LO_DS
:
12677 insn
= bfd_get_32 (input_bfd
, contents
+ (rel
->r_offset
& ~3));
12679 /* If this reloc is against an lq insn, then the value must be
12680 a multiple of 16. This is somewhat of a hack, but the
12681 "correct" way to do this by defining _DQ forms of all the
12682 _DS relocs bloats all reloc switches in this file. It
12683 doesn't seem to make much sense to use any of these relocs
12684 in data, so testing the insn should be safe. */
12685 if ((insn
& (0x3f << 26)) == (56u << 26))
12687 if (((relocation
+ addend
) & mask
) != 0)
12689 (*_bfd_error_handler
)
12690 (_("%B: error: relocation %s not a multiple of %d"),
12692 ppc64_elf_howto_table
[r_type
]->name
,
12694 bfd_set_error (bfd_error_bad_value
);
12701 /* Dynamic relocs are not propagated for SEC_DEBUGGING sections
12702 because such sections are not SEC_ALLOC and thus ld.so will
12703 not process them. */
12704 if (unresolved_reloc
12705 && !((input_section
->flags
& SEC_DEBUGGING
) != 0
12706 && h
->elf
.def_dynamic
))
12708 (*_bfd_error_handler
)
12709 (_("%B(%A+0x%lx): unresolvable %s relocation against symbol `%s'"),
12712 (long) rel
->r_offset
,
12713 ppc64_elf_howto_table
[(int) r_type
]->name
,
12714 h
->elf
.root
.root
.string
);
12718 r
= _bfd_final_link_relocate (ppc64_elf_howto_table
[(int) r_type
],
12726 if (r
!= bfd_reloc_ok
)
12728 if (sym_name
== NULL
)
12729 sym_name
= "(null)";
12730 if (r
== bfd_reloc_overflow
)
12735 && h
->elf
.root
.type
== bfd_link_hash_undefweak
12736 && ppc64_elf_howto_table
[r_type
]->pc_relative
)
12738 /* Assume this is a call protected by other code that
12739 detects the symbol is undefined. If this is the case,
12740 we can safely ignore the overflow. If not, the
12741 program is hosed anyway, and a little warning isn't
12747 if (!((*info
->callbacks
->reloc_overflow
)
12748 (info
, (h
? &h
->elf
.root
: NULL
), sym_name
,
12749 ppc64_elf_howto_table
[r_type
]->name
,
12750 orig_addend
, input_bfd
, input_section
, rel
->r_offset
)))
12755 (*_bfd_error_handler
)
12756 (_("%B(%A+0x%lx): %s reloc against `%s': error %d"),
12759 (long) rel
->r_offset
,
12760 ppc64_elf_howto_table
[r_type
]->name
,
12768 /* If we're emitting relocations, then shortly after this function
12769 returns, reloc offsets and addends for this section will be
12770 adjusted. Worse, reloc symbol indices will be for the output
12771 file rather than the input. Save a copy of the relocs for
12772 opd_entry_value. */
12773 if (is_opd
&& (info
->emitrelocations
|| info
->relocatable
))
12776 amt
= input_section
->reloc_count
* sizeof (Elf_Internal_Rela
);
12777 rel
= bfd_alloc (input_bfd
, amt
);
12778 BFD_ASSERT (ppc64_elf_tdata (input_bfd
)->opd_relocs
== NULL
);
12779 ppc64_elf_tdata (input_bfd
)->opd_relocs
= rel
;
12782 memcpy (rel
, relocs
, amt
);
12787 /* Adjust the value of any local symbols in opd sections. */
12790 ppc64_elf_output_symbol_hook (struct bfd_link_info
*info
,
12791 const char *name ATTRIBUTE_UNUSED
,
12792 Elf_Internal_Sym
*elfsym
,
12793 asection
*input_sec
,
12794 struct elf_link_hash_entry
*h
)
12796 struct _opd_sec_data
*opd
;
12803 opd
= get_opd_info (input_sec
);
12804 if (opd
== NULL
|| opd
->adjust
== NULL
)
12807 value
= elfsym
->st_value
- input_sec
->output_offset
;
12808 if (!info
->relocatable
)
12809 value
-= input_sec
->output_section
->vma
;
12811 adjust
= opd
->adjust
[value
/ 8];
12815 elfsym
->st_value
+= adjust
;
12819 /* Finish up dynamic symbol handling. We set the contents of various
12820 dynamic sections here. */
12823 ppc64_elf_finish_dynamic_symbol (bfd
*output_bfd
,
12824 struct bfd_link_info
*info
,
12825 struct elf_link_hash_entry
*h
,
12826 Elf_Internal_Sym
*sym
)
12828 struct ppc_link_hash_table
*htab
;
12829 struct plt_entry
*ent
;
12830 Elf_Internal_Rela rela
;
12833 htab
= ppc_hash_table (info
);
12837 for (ent
= h
->plt
.plist
; ent
!= NULL
; ent
= ent
->next
)
12838 if (ent
->plt
.offset
!= (bfd_vma
) -1)
12840 /* This symbol has an entry in the procedure linkage
12841 table. Set it up. */
12842 if (!htab
->elf
.dynamic_sections_created
12843 || h
->dynindx
== -1)
12845 BFD_ASSERT (h
->type
== STT_GNU_IFUNC
12847 && (h
->root
.type
== bfd_link_hash_defined
12848 || h
->root
.type
== bfd_link_hash_defweak
));
12849 rela
.r_offset
= (htab
->iplt
->output_section
->vma
12850 + htab
->iplt
->output_offset
12851 + ent
->plt
.offset
);
12852 rela
.r_info
= ELF64_R_INFO (0, R_PPC64_JMP_IREL
);
12853 rela
.r_addend
= (h
->root
.u
.def
.value
12854 + h
->root
.u
.def
.section
->output_offset
12855 + h
->root
.u
.def
.section
->output_section
->vma
12857 loc
= (htab
->reliplt
->contents
12858 + (htab
->reliplt
->reloc_count
++
12859 * sizeof (Elf64_External_Rela
)));
12863 rela
.r_offset
= (htab
->plt
->output_section
->vma
12864 + htab
->plt
->output_offset
12865 + ent
->plt
.offset
);
12866 rela
.r_info
= ELF64_R_INFO (h
->dynindx
, R_PPC64_JMP_SLOT
);
12867 rela
.r_addend
= ent
->addend
;
12868 loc
= (htab
->relplt
->contents
12869 + ((ent
->plt
.offset
- PLT_INITIAL_ENTRY_SIZE
)
12870 / (PLT_ENTRY_SIZE
/ sizeof (Elf64_External_Rela
))));
12872 bfd_elf64_swap_reloca_out (output_bfd
, &rela
, loc
);
12877 /* This symbol needs a copy reloc. Set it up. */
12879 if (h
->dynindx
== -1
12880 || (h
->root
.type
!= bfd_link_hash_defined
12881 && h
->root
.type
!= bfd_link_hash_defweak
)
12882 || htab
->relbss
== NULL
)
12885 rela
.r_offset
= (h
->root
.u
.def
.value
12886 + h
->root
.u
.def
.section
->output_section
->vma
12887 + h
->root
.u
.def
.section
->output_offset
);
12888 rela
.r_info
= ELF64_R_INFO (h
->dynindx
, R_PPC64_COPY
);
12890 loc
= htab
->relbss
->contents
;
12891 loc
+= htab
->relbss
->reloc_count
++ * sizeof (Elf64_External_Rela
);
12892 bfd_elf64_swap_reloca_out (output_bfd
, &rela
, loc
);
12895 /* Mark some specially defined symbols as absolute. */
12896 if (strcmp (h
->root
.root
.string
, "_DYNAMIC") == 0)
12897 sym
->st_shndx
= SHN_ABS
;
12902 /* Used to decide how to sort relocs in an optimal manner for the
12903 dynamic linker, before writing them out. */
12905 static enum elf_reloc_type_class
12906 ppc64_elf_reloc_type_class (const Elf_Internal_Rela
*rela
)
12908 enum elf_ppc64_reloc_type r_type
;
12910 r_type
= ELF64_R_TYPE (rela
->r_info
);
12913 case R_PPC64_RELATIVE
:
12914 return reloc_class_relative
;
12915 case R_PPC64_JMP_SLOT
:
12916 return reloc_class_plt
;
12918 return reloc_class_copy
;
12920 return reloc_class_normal
;
12924 /* Finish up the dynamic sections. */
12927 ppc64_elf_finish_dynamic_sections (bfd
*output_bfd
,
12928 struct bfd_link_info
*info
)
12930 struct ppc_link_hash_table
*htab
;
12934 htab
= ppc_hash_table (info
);
12938 dynobj
= htab
->elf
.dynobj
;
12939 sdyn
= bfd_get_section_by_name (dynobj
, ".dynamic");
12941 if (htab
->elf
.dynamic_sections_created
)
12943 Elf64_External_Dyn
*dyncon
, *dynconend
;
12945 if (sdyn
== NULL
|| htab
->got
== NULL
)
12948 dyncon
= (Elf64_External_Dyn
*) sdyn
->contents
;
12949 dynconend
= (Elf64_External_Dyn
*) (sdyn
->contents
+ sdyn
->size
);
12950 for (; dyncon
< dynconend
; dyncon
++)
12952 Elf_Internal_Dyn dyn
;
12955 bfd_elf64_swap_dyn_in (dynobj
, dyncon
, &dyn
);
12962 case DT_PPC64_GLINK
:
12964 dyn
.d_un
.d_ptr
= s
->output_section
->vma
+ s
->output_offset
;
12965 /* We stupidly defined DT_PPC64_GLINK to be the start
12966 of glink rather than the first entry point, which is
12967 what ld.so needs, and now have a bigger stub to
12968 support automatic multiple TOCs. */
12969 dyn
.d_un
.d_ptr
+= GLINK_CALL_STUB_SIZE
- 32;
12973 s
= bfd_get_section_by_name (output_bfd
, ".opd");
12976 dyn
.d_un
.d_ptr
= s
->vma
;
12979 case DT_PPC64_OPDSZ
:
12980 s
= bfd_get_section_by_name (output_bfd
, ".opd");
12983 dyn
.d_un
.d_val
= s
->size
;
12988 dyn
.d_un
.d_ptr
= s
->output_section
->vma
+ s
->output_offset
;
12993 dyn
.d_un
.d_ptr
= s
->output_section
->vma
+ s
->output_offset
;
12997 dyn
.d_un
.d_val
= htab
->relplt
->size
;
13001 /* Don't count procedure linkage table relocs in the
13002 overall reloc count. */
13006 dyn
.d_un
.d_val
-= s
->size
;
13010 /* We may not be using the standard ELF linker script.
13011 If .rela.plt is the first .rela section, we adjust
13012 DT_RELA to not include it. */
13016 if (dyn
.d_un
.d_ptr
!= s
->output_section
->vma
+ s
->output_offset
)
13018 dyn
.d_un
.d_ptr
+= s
->size
;
13022 bfd_elf64_swap_dyn_out (output_bfd
, &dyn
, dyncon
);
13026 if (htab
->got
!= NULL
&& htab
->got
->size
!= 0)
13028 /* Fill in the first entry in the global offset table.
13029 We use it to hold the link-time TOCbase. */
13030 bfd_put_64 (output_bfd
,
13031 elf_gp (output_bfd
) + TOC_BASE_OFF
,
13032 htab
->got
->contents
);
13034 /* Set .got entry size. */
13035 elf_section_data (htab
->got
->output_section
)->this_hdr
.sh_entsize
= 8;
13038 if (htab
->plt
!= NULL
&& htab
->plt
->size
!= 0)
13040 /* Set .plt entry size. */
13041 elf_section_data (htab
->plt
->output_section
)->this_hdr
.sh_entsize
13045 /* brlt is SEC_LINKER_CREATED, so we need to write out relocs for
13046 brlt ourselves if emitrelocations. */
13047 if (htab
->brlt
!= NULL
13048 && htab
->brlt
->reloc_count
!= 0
13049 && !_bfd_elf_link_output_relocs (output_bfd
,
13051 &elf_section_data (htab
->brlt
)->rel_hdr
,
13052 elf_section_data (htab
->brlt
)->relocs
,
13056 if (htab
->glink
!= NULL
13057 && htab
->glink
->reloc_count
!= 0
13058 && !_bfd_elf_link_output_relocs (output_bfd
,
13060 &elf_section_data (htab
->glink
)->rel_hdr
,
13061 elf_section_data (htab
->glink
)->relocs
,
13065 /* We need to handle writing out multiple GOT sections ourselves,
13066 since we didn't add them to DYNOBJ. We know dynobj is the first
13068 while ((dynobj
= dynobj
->link_next
) != NULL
)
13072 if (!is_ppc64_elf (dynobj
))
13075 s
= ppc64_elf_tdata (dynobj
)->got
;
13078 && s
->output_section
!= bfd_abs_section_ptr
13079 && !bfd_set_section_contents (output_bfd
, s
->output_section
,
13080 s
->contents
, s
->output_offset
,
13083 s
= ppc64_elf_tdata (dynobj
)->relgot
;
13086 && s
->output_section
!= bfd_abs_section_ptr
13087 && !bfd_set_section_contents (output_bfd
, s
->output_section
,
13088 s
->contents
, s
->output_offset
,
13096 #include "elf64-target.h"