1 // powerpc.cc -- powerpc target support for gold.
3 // Copyright (C) 2008-2016 Free Software Foundation, Inc.
4 // Written by David S. Miller <davem@davemloft.net>
5 // and David Edelsohn <edelsohn@gnu.org>
7 // This file is part of gold.
9 // This program is free software; you can redistribute it and/or modify
10 // it under the terms of the GNU General Public License as published by
11 // the Free Software Foundation; either version 3 of the License, or
12 // (at your option) any later version.
14 // This program is distributed in the hope that it will be useful,
15 // but WITHOUT ANY WARRANTY; without even the implied warranty of
16 // MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 // GNU General Public License for more details.
19 // You should have received a copy of the GNU General Public License
20 // along with this program; if not, write to the Free Software
21 // Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston,
22 // MA 02110-1301, USA.
30 #include "parameters.h"
37 #include "copy-relocs.h"
39 #include "target-reloc.h"
40 #include "target-select.h"
50 template<int size
, bool big_endian
>
51 class Output_data_plt_powerpc
;
53 template<int size
, bool big_endian
>
54 class Output_data_brlt_powerpc
;
56 template<int size
, bool big_endian
>
57 class Output_data_got_powerpc
;
59 template<int size
, bool big_endian
>
60 class Output_data_glink
;
62 template<int size
, bool big_endian
>
65 template<int size
, bool big_endian
>
66 class Output_data_save_res
;
68 template<int size
, bool big_endian
>
71 struct Stub_table_owner
73 Output_section
* output_section
;
74 const Output_section::Input_section
* owner
;
78 is_branch_reloc(unsigned int r_type
);
80 template<int size
, bool big_endian
>
81 class Powerpc_relobj
: public Sized_relobj_file
<size
, big_endian
>
84 typedef typename
elfcpp::Elf_types
<size
>::Elf_Addr Address
;
85 typedef Unordered_set
<Section_id
, Section_id_hash
> Section_refs
;
86 typedef Unordered_map
<Address
, Section_refs
> Access_from
;
88 Powerpc_relobj(const std::string
& name
, Input_file
* input_file
, off_t offset
,
89 const typename
elfcpp::Ehdr
<size
, big_endian
>& ehdr
)
90 : Sized_relobj_file
<size
, big_endian
>(name
, input_file
, offset
, ehdr
),
91 special_(0), has_small_toc_reloc_(false), opd_valid_(false),
92 opd_ent_(), access_from_map_(), has14_(), stub_table_index_(),
93 e_flags_(ehdr
.get_e_flags()), st_other_()
95 this->set_abiversion(0);
101 // Read the symbols then set up st_other vector.
103 do_read_symbols(Read_symbols_data
*);
105 // The .got2 section shndx.
110 return this->special_
;
115 // The .opd section shndx.
122 return this->special_
;
125 // Init OPD entry arrays.
127 init_opd(size_t opd_size
)
129 size_t count
= this->opd_ent_ndx(opd_size
);
130 this->opd_ent_
.resize(count
);
133 // Return section and offset of function entry for .opd + R_OFF.
135 get_opd_ent(Address r_off
, Address
* value
= NULL
) const
137 size_t ndx
= this->opd_ent_ndx(r_off
);
138 gold_assert(ndx
< this->opd_ent_
.size());
139 gold_assert(this->opd_ent_
[ndx
].shndx
!= 0);
141 *value
= this->opd_ent_
[ndx
].off
;
142 return this->opd_ent_
[ndx
].shndx
;
145 // Set section and offset of function entry for .opd + R_OFF.
147 set_opd_ent(Address r_off
, unsigned int shndx
, Address value
)
149 size_t ndx
= this->opd_ent_ndx(r_off
);
150 gold_assert(ndx
< this->opd_ent_
.size());
151 this->opd_ent_
[ndx
].shndx
= shndx
;
152 this->opd_ent_
[ndx
].off
= value
;
155 // Return discard flag for .opd + R_OFF.
157 get_opd_discard(Address r_off
) const
159 size_t ndx
= this->opd_ent_ndx(r_off
);
160 gold_assert(ndx
< this->opd_ent_
.size());
161 return this->opd_ent_
[ndx
].discard
;
164 // Set discard flag for .opd + R_OFF.
166 set_opd_discard(Address r_off
)
168 size_t ndx
= this->opd_ent_ndx(r_off
);
169 gold_assert(ndx
< this->opd_ent_
.size());
170 this->opd_ent_
[ndx
].discard
= true;
175 { return this->opd_valid_
; }
179 { this->opd_valid_
= true; }
181 // Examine .rela.opd to build info about function entry points.
183 scan_opd_relocs(size_t reloc_count
,
184 const unsigned char* prelocs
,
185 const unsigned char* plocal_syms
);
187 // Perform the Sized_relobj_file method, then set up opd info from
190 do_read_relocs(Read_relocs_data
*);
193 do_find_special_sections(Read_symbols_data
* sd
);
195 // Adjust this local symbol value. Return false if the symbol
196 // should be discarded from the output file.
198 do_adjust_local_symbol(Symbol_value
<size
>* lv
) const
200 if (size
== 64 && this->opd_shndx() != 0)
203 if (lv
->input_shndx(&is_ordinary
) != this->opd_shndx())
205 if (this->get_opd_discard(lv
->input_value()))
213 { return &this->access_from_map_
; }
215 // Add a reference from SRC_OBJ, SRC_INDX to this object's .opd
216 // section at DST_OFF.
218 add_reference(Relobj
* src_obj
,
219 unsigned int src_indx
,
220 typename
elfcpp::Elf_types
<size
>::Elf_Addr dst_off
)
222 Section_id
src_id(src_obj
, src_indx
);
223 this->access_from_map_
[dst_off
].insert(src_id
);
226 // Add a reference to the code section specified by the .opd entry
229 add_gc_mark(typename
elfcpp::Elf_types
<size
>::Elf_Addr dst_off
)
231 size_t ndx
= this->opd_ent_ndx(dst_off
);
232 if (ndx
>= this->opd_ent_
.size())
233 this->opd_ent_
.resize(ndx
+ 1);
234 this->opd_ent_
[ndx
].gc_mark
= true;
238 process_gc_mark(Symbol_table
* symtab
)
240 for (size_t i
= 0; i
< this->opd_ent_
.size(); i
++)
241 if (this->opd_ent_
[i
].gc_mark
)
243 unsigned int shndx
= this->opd_ent_
[i
].shndx
;
244 symtab
->gc()->worklist().push_back(Section_id(this, shndx
));
248 // Return offset in output GOT section that this object will use
249 // as a TOC pointer. Won't be just a constant with multi-toc support.
251 toc_base_offset() const
255 set_has_small_toc_reloc()
256 { has_small_toc_reloc_
= true; }
259 has_small_toc_reloc() const
260 { return has_small_toc_reloc_
; }
263 set_has_14bit_branch(unsigned int shndx
)
265 if (shndx
>= this->has14_
.size())
266 this->has14_
.resize(shndx
+ 1);
267 this->has14_
[shndx
] = true;
271 has_14bit_branch(unsigned int shndx
) const
272 { return shndx
< this->has14_
.size() && this->has14_
[shndx
]; }
275 set_stub_table(unsigned int shndx
, unsigned int stub_index
)
277 if (shndx
>= this->stub_table_index_
.size())
278 this->stub_table_index_
.resize(shndx
+ 1);
279 this->stub_table_index_
[shndx
] = stub_index
;
282 Stub_table
<size
, big_endian
>*
283 stub_table(unsigned int shndx
)
285 if (shndx
< this->stub_table_index_
.size())
287 Target_powerpc
<size
, big_endian
>* target
288 = static_cast<Target_powerpc
<size
, big_endian
>*>(
289 parameters
->sized_target
<size
, big_endian
>());
290 unsigned int indx
= this->stub_table_index_
[shndx
];
291 gold_assert(indx
< target
->stub_tables().size());
292 return target
->stub_tables()[indx
];
300 this->stub_table_index_
.clear();
305 { return this->e_flags_
& elfcpp::EF_PPC64_ABI
; }
307 // Set ABI version for input and output
309 set_abiversion(int ver
);
312 ppc64_local_entry_offset(const Symbol
* sym
) const
313 { return elfcpp::ppc64_decode_local_entry(sym
->nonvis() >> 3); }
316 ppc64_local_entry_offset(unsigned int symndx
) const
317 { return elfcpp::ppc64_decode_local_entry(this->st_other_
[symndx
] >> 5); }
328 // Return index into opd_ent_ array for .opd entry at OFF.
329 // .opd entries are 24 bytes long, but they can be spaced 16 bytes
330 // apart when the language doesn't use the last 8-byte word, the
331 // environment pointer. Thus dividing the entry section offset by
332 // 16 will give an index into opd_ent_ that works for either layout
333 // of .opd. (It leaves some elements of the vector unused when .opd
334 // entries are spaced 24 bytes apart, but we don't know the spacing
335 // until relocations are processed, and in any case it is possible
336 // for an object to have some entries spaced 16 bytes apart and
337 // others 24 bytes apart.)
339 opd_ent_ndx(size_t off
) const
342 // For 32-bit the .got2 section shdnx, for 64-bit the .opd section shndx.
343 unsigned int special_
;
345 // For 64-bit, whether this object uses small model relocs to access
347 bool has_small_toc_reloc_
;
349 // Set at the start of gc_process_relocs, when we know opd_ent_
350 // vector is valid. The flag could be made atomic and set in
351 // do_read_relocs with memory_order_release and then tested with
352 // memory_order_acquire, potentially resulting in fewer entries in
356 // The first 8-byte word of an OPD entry gives the address of the
357 // entry point of the function. Relocatable object files have a
358 // relocation on this word. The following vector records the
359 // section and offset specified by these relocations.
360 std::vector
<Opd_ent
> opd_ent_
;
362 // References made to this object's .opd section when running
363 // gc_process_relocs for another object, before the opd_ent_ vector
364 // is valid for this object.
365 Access_from access_from_map_
;
367 // Whether input section has a 14-bit branch reloc.
368 std::vector
<bool> has14_
;
370 // The stub table to use for a given input section.
371 std::vector
<unsigned int> stub_table_index_
;
374 elfcpp::Elf_Word e_flags_
;
376 // ELF st_other field for local symbols.
377 std::vector
<unsigned char> st_other_
;
380 template<int size
, bool big_endian
>
381 class Powerpc_dynobj
: public Sized_dynobj
<size
, big_endian
>
384 typedef typename
elfcpp::Elf_types
<size
>::Elf_Addr Address
;
386 Powerpc_dynobj(const std::string
& name
, Input_file
* input_file
, off_t offset
,
387 const typename
elfcpp::Ehdr
<size
, big_endian
>& ehdr
)
388 : Sized_dynobj
<size
, big_endian
>(name
, input_file
, offset
, ehdr
),
389 opd_shndx_(0), opd_ent_(), e_flags_(ehdr
.get_e_flags())
391 this->set_abiversion(0);
397 // Call Sized_dynobj::do_read_symbols to read the symbols then
398 // read .opd from a dynamic object, filling in opd_ent_ vector,
400 do_read_symbols(Read_symbols_data
*);
402 // The .opd section shndx.
406 return this->opd_shndx_
;
409 // The .opd section address.
413 return this->opd_address_
;
416 // Init OPD entry arrays.
418 init_opd(size_t opd_size
)
420 size_t count
= this->opd_ent_ndx(opd_size
);
421 this->opd_ent_
.resize(count
);
424 // Return section and offset of function entry for .opd + R_OFF.
426 get_opd_ent(Address r_off
, Address
* value
= NULL
) const
428 size_t ndx
= this->opd_ent_ndx(r_off
);
429 gold_assert(ndx
< this->opd_ent_
.size());
430 gold_assert(this->opd_ent_
[ndx
].shndx
!= 0);
432 *value
= this->opd_ent_
[ndx
].off
;
433 return this->opd_ent_
[ndx
].shndx
;
436 // Set section and offset of function entry for .opd + R_OFF.
438 set_opd_ent(Address r_off
, unsigned int shndx
, Address value
)
440 size_t ndx
= this->opd_ent_ndx(r_off
);
441 gold_assert(ndx
< this->opd_ent_
.size());
442 this->opd_ent_
[ndx
].shndx
= shndx
;
443 this->opd_ent_
[ndx
].off
= value
;
448 { return this->e_flags_
& elfcpp::EF_PPC64_ABI
; }
450 // Set ABI version for input and output.
452 set_abiversion(int ver
);
455 // Used to specify extent of executable sections.
458 Sec_info(Address start_
, Address len_
, unsigned int shndx_
)
459 : start(start_
), len(len_
), shndx(shndx_
)
463 operator<(const Sec_info
& that
) const
464 { return this->start
< that
.start
; }
477 // Return index into opd_ent_ array for .opd entry at OFF.
479 opd_ent_ndx(size_t off
) const
482 // For 64-bit the .opd section shndx and address.
483 unsigned int opd_shndx_
;
484 Address opd_address_
;
486 // The first 8-byte word of an OPD entry gives the address of the
487 // entry point of the function. Records the section and offset
488 // corresponding to the address. Note that in dynamic objects,
489 // offset is *not* relative to the section.
490 std::vector
<Opd_ent
> opd_ent_
;
493 elfcpp::Elf_Word e_flags_
;
496 template<int size
, bool big_endian
>
497 class Target_powerpc
: public Sized_target
<size
, big_endian
>
501 Output_data_reloc
<elfcpp::SHT_RELA
, true, size
, big_endian
> Reloc_section
;
502 typedef typename
elfcpp::Elf_types
<size
>::Elf_Addr Address
;
503 typedef typename
elfcpp::Elf_types
<size
>::Elf_Swxword Signed_address
;
504 static const Address invalid_address
= static_cast<Address
>(0) - 1;
505 // Offset of tp and dtp pointers from start of TLS block.
506 static const Address tp_offset
= 0x7000;
507 static const Address dtp_offset
= 0x8000;
510 : Sized_target
<size
, big_endian
>(&powerpc_info
),
511 got_(NULL
), plt_(NULL
), iplt_(NULL
), brlt_section_(NULL
),
512 glink_(NULL
), rela_dyn_(NULL
), copy_relocs_(elfcpp::R_POWERPC_COPY
),
513 tlsld_got_offset_(-1U),
514 stub_tables_(), branch_lookup_table_(), branch_info_(),
515 plt_thread_safe_(false), relax_failed_(false), relax_fail_count_(0),
516 stub_group_size_(0), savres_section_(0)
520 // Process the relocations to determine unreferenced sections for
521 // garbage collection.
523 gc_process_relocs(Symbol_table
* symtab
,
525 Sized_relobj_file
<size
, big_endian
>* object
,
526 unsigned int data_shndx
,
527 unsigned int sh_type
,
528 const unsigned char* prelocs
,
530 Output_section
* output_section
,
531 bool needs_special_offset_handling
,
532 size_t local_symbol_count
,
533 const unsigned char* plocal_symbols
);
535 // Scan the relocations to look for symbol adjustments.
537 scan_relocs(Symbol_table
* symtab
,
539 Sized_relobj_file
<size
, big_endian
>* object
,
540 unsigned int data_shndx
,
541 unsigned int sh_type
,
542 const unsigned char* prelocs
,
544 Output_section
* output_section
,
545 bool needs_special_offset_handling
,
546 size_t local_symbol_count
,
547 const unsigned char* plocal_symbols
);
549 // Map input .toc section to output .got section.
551 do_output_section_name(const Relobj
*, const char* name
, size_t* plen
) const
553 if (size
== 64 && strcmp(name
, ".toc") == 0)
561 // Provide linker defined save/restore functions.
563 define_save_restore_funcs(Layout
*, Symbol_table
*);
565 // No stubs unless a final link.
568 { return !parameters
->options().relocatable(); }
571 do_relax(int, const Input_objects
*, Symbol_table
*, Layout
*, const Task
*);
574 do_plt_fde_location(const Output_data
*, unsigned char*,
575 uint64_t*, off_t
*) const;
577 // Stash info about branches, for stub generation.
579 push_branch(Powerpc_relobj
<size
, big_endian
>* ppc_object
,
580 unsigned int data_shndx
, Address r_offset
,
581 unsigned int r_type
, unsigned int r_sym
, Address addend
)
583 Branch_info
info(ppc_object
, data_shndx
, r_offset
, r_type
, r_sym
, addend
);
584 this->branch_info_
.push_back(info
);
585 if (r_type
== elfcpp::R_POWERPC_REL14
586 || r_type
== elfcpp::R_POWERPC_REL14_BRTAKEN
587 || r_type
== elfcpp::R_POWERPC_REL14_BRNTAKEN
)
588 ppc_object
->set_has_14bit_branch(data_shndx
);
592 do_define_standard_symbols(Symbol_table
*, Layout
*);
594 // Finalize the sections.
596 do_finalize_sections(Layout
*, const Input_objects
*, Symbol_table
*);
598 // Return the value to use for a dynamic which requires special
601 do_dynsym_value(const Symbol
*) const;
603 // Return the PLT address to use for a local symbol.
605 do_plt_address_for_local(const Relobj
*, unsigned int) const;
607 // Return the PLT address to use for a global symbol.
609 do_plt_address_for_global(const Symbol
*) const;
611 // Return the offset to use for the GOT_INDX'th got entry which is
612 // for a local tls symbol specified by OBJECT, SYMNDX.
614 do_tls_offset_for_local(const Relobj
* object
,
616 unsigned int got_indx
) const;
618 // Return the offset to use for the GOT_INDX'th got entry which is
619 // for global tls symbol GSYM.
621 do_tls_offset_for_global(Symbol
* gsym
, unsigned int got_indx
) const;
624 do_function_location(Symbol_location
*) const;
627 do_can_check_for_function_pointers() const
630 // Adjust -fsplit-stack code which calls non-split-stack code.
632 do_calls_non_split(Relobj
* object
, unsigned int shndx
,
633 section_offset_type fnoffset
, section_size_type fnsize
,
634 const unsigned char* prelocs
, size_t reloc_count
,
635 unsigned char* view
, section_size_type view_size
,
636 std::string
* from
, std::string
* to
) const;
638 // Relocate a section.
640 relocate_section(const Relocate_info
<size
, big_endian
>*,
641 unsigned int sh_type
,
642 const unsigned char* prelocs
,
644 Output_section
* output_section
,
645 bool needs_special_offset_handling
,
647 Address view_address
,
648 section_size_type view_size
,
649 const Reloc_symbol_changes
*);
651 // Scan the relocs during a relocatable link.
653 scan_relocatable_relocs(Symbol_table
* symtab
,
655 Sized_relobj_file
<size
, big_endian
>* object
,
656 unsigned int data_shndx
,
657 unsigned int sh_type
,
658 const unsigned char* prelocs
,
660 Output_section
* output_section
,
661 bool needs_special_offset_handling
,
662 size_t local_symbol_count
,
663 const unsigned char* plocal_symbols
,
664 Relocatable_relocs
*);
666 // Scan the relocs for --emit-relocs.
668 emit_relocs_scan(Symbol_table
* symtab
,
670 Sized_relobj_file
<size
, big_endian
>* object
,
671 unsigned int data_shndx
,
672 unsigned int sh_type
,
673 const unsigned char* prelocs
,
675 Output_section
* output_section
,
676 bool needs_special_offset_handling
,
677 size_t local_symbol_count
,
678 const unsigned char* plocal_syms
,
679 Relocatable_relocs
* rr
);
681 // Emit relocations for a section.
683 relocate_relocs(const Relocate_info
<size
, big_endian
>*,
684 unsigned int sh_type
,
685 const unsigned char* prelocs
,
687 Output_section
* output_section
,
688 typename
elfcpp::Elf_types
<size
>::Elf_Off
689 offset_in_output_section
,
691 Address view_address
,
693 unsigned char* reloc_view
,
694 section_size_type reloc_view_size
);
696 // Return whether SYM is defined by the ABI.
698 do_is_defined_by_abi(const Symbol
* sym
) const
700 return strcmp(sym
->name(), "__tls_get_addr") == 0;
703 // Return the size of the GOT section.
707 gold_assert(this->got_
!= NULL
);
708 return this->got_
->data_size();
711 // Get the PLT section.
712 const Output_data_plt_powerpc
<size
, big_endian
>*
715 gold_assert(this->plt_
!= NULL
);
719 // Get the IPLT section.
720 const Output_data_plt_powerpc
<size
, big_endian
>*
723 gold_assert(this->iplt_
!= NULL
);
727 // Get the .glink section.
728 const Output_data_glink
<size
, big_endian
>*
729 glink_section() const
731 gold_assert(this->glink_
!= NULL
);
735 Output_data_glink
<size
, big_endian
>*
738 gold_assert(this->glink_
!= NULL
);
742 bool has_glink() const
743 { return this->glink_
!= NULL
; }
745 // Get the GOT section.
746 const Output_data_got_powerpc
<size
, big_endian
>*
749 gold_assert(this->got_
!= NULL
);
753 // Get the GOT section, creating it if necessary.
754 Output_data_got_powerpc
<size
, big_endian
>*
755 got_section(Symbol_table
*, Layout
*);
758 do_make_elf_object(const std::string
&, Input_file
*, off_t
,
759 const elfcpp::Ehdr
<size
, big_endian
>&);
761 // Return the number of entries in the GOT.
763 got_entry_count() const
765 if (this->got_
== NULL
)
767 return this->got_size() / (size
/ 8);
770 // Return the number of entries in the PLT.
772 plt_entry_count() const;
774 // Return the offset of the first non-reserved PLT entry.
776 first_plt_entry_offset() const
780 if (this->abiversion() >= 2)
785 // Return the size of each PLT entry.
787 plt_entry_size() const
791 if (this->abiversion() >= 2)
796 Output_data_save_res
<size
, big_endian
>*
797 savres_section() const
799 return this->savres_section_
;
802 // Add any special sections for this symbol to the gc work list.
803 // For powerpc64, this adds the code section of a function
806 do_gc_mark_symbol(Symbol_table
* symtab
, Symbol
* sym
) const;
808 // Handle target specific gc actions when adding a gc reference from
809 // SRC_OBJ, SRC_SHNDX to a location specified by DST_OBJ, DST_SHNDX
810 // and DST_OFF. For powerpc64, this adds a referenc to the code
811 // section of a function descriptor.
813 do_gc_add_reference(Symbol_table
* symtab
,
815 unsigned int src_shndx
,
817 unsigned int dst_shndx
,
818 Address dst_off
) const;
820 typedef std::vector
<Stub_table
<size
, big_endian
>*> Stub_tables
;
823 { return this->stub_tables_
; }
825 const Output_data_brlt_powerpc
<size
, big_endian
>*
827 { return this->brlt_section_
; }
830 add_branch_lookup_table(Address to
)
832 unsigned int off
= this->branch_lookup_table_
.size() * (size
/ 8);
833 this->branch_lookup_table_
.insert(std::make_pair(to
, off
));
837 find_branch_lookup_table(Address to
)
839 typename
Branch_lookup_table::const_iterator p
840 = this->branch_lookup_table_
.find(to
);
841 return p
== this->branch_lookup_table_
.end() ? invalid_address
: p
->second
;
845 write_branch_lookup_table(unsigned char *oview
)
847 for (typename
Branch_lookup_table::const_iterator p
848 = this->branch_lookup_table_
.begin();
849 p
!= this->branch_lookup_table_
.end();
852 elfcpp::Swap
<size
, big_endian
>::writeval(oview
+ p
->second
, p
->first
);
857 plt_thread_safe() const
858 { return this->plt_thread_safe_
; }
862 { return this->processor_specific_flags() & elfcpp::EF_PPC64_ABI
; }
865 set_abiversion (int ver
)
867 elfcpp::Elf_Word flags
= this->processor_specific_flags();
868 flags
&= ~elfcpp::EF_PPC64_ABI
;
869 flags
|= ver
& elfcpp::EF_PPC64_ABI
;
870 this->set_processor_specific_flags(flags
);
873 // Offset to to save stack slot
876 { return this->abiversion() < 2 ? 40 : 24; }
892 : tls_get_addr_(NOT_EXPECTED
),
893 relinfo_(NULL
), relnum_(0), r_offset_(0)
898 if (this->tls_get_addr_
!= NOT_EXPECTED
)
905 if (this->relinfo_
!= NULL
)
906 gold_error_at_location(this->relinfo_
, this->relnum_
, this->r_offset_
,
907 _("missing expected __tls_get_addr call"));
911 expect_tls_get_addr_call(
912 const Relocate_info
<size
, big_endian
>* relinfo
,
916 this->tls_get_addr_
= EXPECTED
;
917 this->relinfo_
= relinfo
;
918 this->relnum_
= relnum
;
919 this->r_offset_
= r_offset
;
923 expect_tls_get_addr_call()
924 { this->tls_get_addr_
= EXPECTED
; }
927 skip_next_tls_get_addr_call()
928 {this->tls_get_addr_
= SKIP
; }
931 maybe_skip_tls_get_addr_call(unsigned int r_type
, const Symbol
* gsym
)
933 bool is_tls_call
= ((r_type
== elfcpp::R_POWERPC_REL24
934 || r_type
== elfcpp::R_PPC_PLTREL24
)
936 && strcmp(gsym
->name(), "__tls_get_addr") == 0);
937 Tls_get_addr last_tls
= this->tls_get_addr_
;
938 this->tls_get_addr_
= NOT_EXPECTED
;
939 if (is_tls_call
&& last_tls
!= EXPECTED
)
941 else if (!is_tls_call
&& last_tls
!= NOT_EXPECTED
)
950 // What we're up to regarding calls to __tls_get_addr.
951 // On powerpc, the branch and link insn making a call to
952 // __tls_get_addr is marked with a relocation, R_PPC64_TLSGD,
953 // R_PPC64_TLSLD, R_PPC_TLSGD or R_PPC_TLSLD, in addition to the
954 // usual R_POWERPC_REL24 or R_PPC_PLTREL25 relocation on a call.
955 // The marker relocation always comes first, and has the same
956 // symbol as the reloc on the insn setting up the __tls_get_addr
957 // argument. This ties the arg setup insn with the call insn,
958 // allowing ld to safely optimize away the call. We check that
959 // every call to __tls_get_addr has a marker relocation, and that
960 // every marker relocation is on a call to __tls_get_addr.
961 Tls_get_addr tls_get_addr_
;
962 // Info about the last reloc for error message.
963 const Relocate_info
<size
, big_endian
>* relinfo_
;
968 // The class which scans relocations.
969 class Scan
: protected Track_tls
972 typedef typename
elfcpp::Elf_types
<size
>::Elf_Addr Address
;
975 : Track_tls(), issued_non_pic_error_(false)
979 get_reference_flags(unsigned int r_type
, const Target_powerpc
* target
);
982 local(Symbol_table
* symtab
, Layout
* layout
, Target_powerpc
* target
,
983 Sized_relobj_file
<size
, big_endian
>* object
,
984 unsigned int data_shndx
,
985 Output_section
* output_section
,
986 const elfcpp::Rela
<size
, big_endian
>& reloc
, unsigned int r_type
,
987 const elfcpp::Sym
<size
, big_endian
>& lsym
,
991 global(Symbol_table
* symtab
, Layout
* layout
, Target_powerpc
* target
,
992 Sized_relobj_file
<size
, big_endian
>* object
,
993 unsigned int data_shndx
,
994 Output_section
* output_section
,
995 const elfcpp::Rela
<size
, big_endian
>& reloc
, unsigned int r_type
,
999 local_reloc_may_be_function_pointer(Symbol_table
* , Layout
* ,
1001 Sized_relobj_file
<size
, big_endian
>* relobj
,
1004 const elfcpp::Rela
<size
, big_endian
>& ,
1005 unsigned int r_type
,
1006 const elfcpp::Sym
<size
, big_endian
>&)
1008 // PowerPC64 .opd is not folded, so any identical function text
1009 // may be folded and we'll still keep function addresses distinct.
1010 // That means no reloc is of concern here.
1013 Powerpc_relobj
<size
, big_endian
>* ppcobj
= static_cast
1014 <Powerpc_relobj
<size
, big_endian
>*>(relobj
);
1015 if (ppcobj
->abiversion() == 1)
1018 // For 32-bit and ELFv2, conservatively assume anything but calls to
1019 // function code might be taking the address of the function.
1020 return !is_branch_reloc(r_type
);
1024 global_reloc_may_be_function_pointer(Symbol_table
* , Layout
* ,
1026 Sized_relobj_file
<size
, big_endian
>* relobj
,
1029 const elfcpp::Rela
<size
, big_endian
>& ,
1030 unsigned int r_type
,
1036 Powerpc_relobj
<size
, big_endian
>* ppcobj
= static_cast
1037 <Powerpc_relobj
<size
, big_endian
>*>(relobj
);
1038 if (ppcobj
->abiversion() == 1)
1041 return !is_branch_reloc(r_type
);
1045 reloc_needs_plt_for_ifunc(Target_powerpc
<size
, big_endian
>* target
,
1046 Sized_relobj_file
<size
, big_endian
>* object
,
1047 unsigned int r_type
, bool report_err
);
1051 unsupported_reloc_local(Sized_relobj_file
<size
, big_endian
>*,
1052 unsigned int r_type
);
1055 unsupported_reloc_global(Sized_relobj_file
<size
, big_endian
>*,
1056 unsigned int r_type
, Symbol
*);
1059 generate_tls_call(Symbol_table
* symtab
, Layout
* layout
,
1060 Target_powerpc
* target
);
1063 check_non_pic(Relobj
*, unsigned int r_type
);
1065 // Whether we have issued an error about a non-PIC compilation.
1066 bool issued_non_pic_error_
;
1070 symval_for_branch(const Symbol_table
* symtab
,
1071 const Sized_symbol
<size
>* gsym
,
1072 Powerpc_relobj
<size
, big_endian
>* object
,
1073 Address
*value
, unsigned int *dest_shndx
);
1075 // The class which implements relocation.
1076 class Relocate
: protected Track_tls
1079 // Use 'at' branch hints when true, 'y' when false.
1080 // FIXME maybe: set this with an option.
1081 static const bool is_isa_v2
= true;
1087 // Do a relocation. Return false if the caller should not issue
1088 // any warnings about this relocation.
1090 relocate(const Relocate_info
<size
, big_endian
>*, unsigned int,
1091 Target_powerpc
*, Output_section
*, size_t, const unsigned char*,
1092 const Sized_symbol
<size
>*, const Symbol_value
<size
>*,
1093 unsigned char*, typename
elfcpp::Elf_types
<size
>::Elf_Addr
,
1097 class Relocate_comdat_behavior
1100 // Decide what the linker should do for relocations that refer to
1101 // discarded comdat sections.
1102 inline Comdat_behavior
1103 get(const char* name
)
1105 gold::Default_comdat_behavior default_behavior
;
1106 Comdat_behavior ret
= default_behavior
.get(name
);
1107 if (ret
== CB_WARNING
)
1110 && (strcmp(name
, ".fixup") == 0
1111 || strcmp(name
, ".got2") == 0))
1114 && (strcmp(name
, ".opd") == 0
1115 || strcmp(name
, ".toc") == 0
1116 || strcmp(name
, ".toc1") == 0))
1123 // Optimize the TLS relocation type based on what we know about the
1124 // symbol. IS_FINAL is true if the final address of this symbol is
1125 // known at link time.
1127 tls::Tls_optimization
1128 optimize_tls_gd(bool is_final
)
1130 // If we are generating a shared library, then we can't do anything
1132 if (parameters
->options().shared())
1133 return tls::TLSOPT_NONE
;
1136 return tls::TLSOPT_TO_IE
;
1137 return tls::TLSOPT_TO_LE
;
1140 tls::Tls_optimization
1143 if (parameters
->options().shared())
1144 return tls::TLSOPT_NONE
;
1146 return tls::TLSOPT_TO_LE
;
1149 tls::Tls_optimization
1150 optimize_tls_ie(bool is_final
)
1152 if (!is_final
|| parameters
->options().shared())
1153 return tls::TLSOPT_NONE
;
1155 return tls::TLSOPT_TO_LE
;
1160 make_glink_section(Layout
*);
1162 // Create the PLT section.
1164 make_plt_section(Symbol_table
*, Layout
*);
1167 make_iplt_section(Symbol_table
*, Layout
*);
1170 make_brlt_section(Layout
*);
1172 // Create a PLT entry for a global symbol.
1174 make_plt_entry(Symbol_table
*, Layout
*, Symbol
*);
1176 // Create a PLT entry for a local IFUNC symbol.
1178 make_local_ifunc_plt_entry(Symbol_table
*, Layout
*,
1179 Sized_relobj_file
<size
, big_endian
>*,
1183 // Create a GOT entry for local dynamic __tls_get_addr.
1185 tlsld_got_offset(Symbol_table
* symtab
, Layout
* layout
,
1186 Sized_relobj_file
<size
, big_endian
>* object
);
1189 tlsld_got_offset() const
1191 return this->tlsld_got_offset_
;
1194 // Get the dynamic reloc section, creating it if necessary.
1196 rela_dyn_section(Layout
*);
1198 // Similarly, but for ifunc symbols get the one for ifunc.
1200 rela_dyn_section(Symbol_table
*, Layout
*, bool for_ifunc
);
1202 // Copy a relocation against a global symbol.
1204 copy_reloc(Symbol_table
* symtab
, Layout
* layout
,
1205 Sized_relobj_file
<size
, big_endian
>* object
,
1206 unsigned int shndx
, Output_section
* output_section
,
1207 Symbol
* sym
, const elfcpp::Rela
<size
, big_endian
>& reloc
)
1209 unsigned int r_type
= elfcpp::elf_r_type
<size
>(reloc
.get_r_info());
1210 this->copy_relocs_
.copy_reloc(symtab
, layout
,
1211 symtab
->get_sized_symbol
<size
>(sym
),
1212 object
, shndx
, output_section
,
1213 r_type
, reloc
.get_r_offset(),
1214 reloc
.get_r_addend(),
1215 this->rela_dyn_section(layout
));
1218 // Look over all the input sections, deciding where to place stubs.
1220 group_sections(Layout
*, const Task
*, bool);
1222 // Sort output sections by address.
1223 struct Sort_sections
1226 operator()(const Output_section
* sec1
, const Output_section
* sec2
)
1227 { return sec1
->address() < sec2
->address(); }
1233 Branch_info(Powerpc_relobj
<size
, big_endian
>* ppc_object
,
1234 unsigned int data_shndx
,
1236 unsigned int r_type
,
1239 : object_(ppc_object
), shndx_(data_shndx
), offset_(r_offset
),
1240 r_type_(r_type
), r_sym_(r_sym
), addend_(addend
)
1246 // If this branch needs a plt call stub, or a long branch stub, make one.
1248 make_stub(Stub_table
<size
, big_endian
>*,
1249 Stub_table
<size
, big_endian
>*,
1250 Symbol_table
*) const;
1253 // The branch location..
1254 Powerpc_relobj
<size
, big_endian
>* object_
;
1255 unsigned int shndx_
;
1257 // ..and the branch type and destination.
1258 unsigned int r_type_
;
1259 unsigned int r_sym_
;
1263 // Information about this specific target which we pass to the
1264 // general Target structure.
1265 static Target::Target_info powerpc_info
;
1267 // The types of GOT entries needed for this platform.
1268 // These values are exposed to the ABI in an incremental link.
1269 // Do not renumber existing values without changing the version
1270 // number of the .gnu_incremental_inputs section.
1274 GOT_TYPE_TLSGD
, // double entry for @got@tlsgd
1275 GOT_TYPE_DTPREL
, // entry for @got@dtprel
1276 GOT_TYPE_TPREL
// entry for @got@tprel
1280 Output_data_got_powerpc
<size
, big_endian
>* got_
;
1281 // The PLT section. This is a container for a table of addresses,
1282 // and their relocations. Each address in the PLT has a dynamic
1283 // relocation (R_*_JMP_SLOT) and each address will have a
1284 // corresponding entry in .glink for lazy resolution of the PLT.
1285 // ppc32 initialises the PLT to point at the .glink entry, while
1286 // ppc64 leaves this to ld.so. To make a call via the PLT, the
1287 // linker adds a stub that loads the PLT entry into ctr then
1288 // branches to ctr. There may be more than one stub for each PLT
1289 // entry. DT_JMPREL points at the first PLT dynamic relocation and
1290 // DT_PLTRELSZ gives the total size of PLT dynamic relocations.
1291 Output_data_plt_powerpc
<size
, big_endian
>* plt_
;
1292 // The IPLT section. Like plt_, this is a container for a table of
1293 // addresses and their relocations, specifically for STT_GNU_IFUNC
1294 // functions that resolve locally (STT_GNU_IFUNC functions that
1295 // don't resolve locally go in PLT). Unlike plt_, these have no
1296 // entry in .glink for lazy resolution, and the relocation section
1297 // does not have a 1-1 correspondence with IPLT addresses. In fact,
1298 // the relocation section may contain relocations against
1299 // STT_GNU_IFUNC symbols at locations outside of IPLT. The
1300 // relocation section will appear at the end of other dynamic
1301 // relocations, so that ld.so applies these relocations after other
1302 // dynamic relocations. In a static executable, the relocation
1303 // section is emitted and marked with __rela_iplt_start and
1304 // __rela_iplt_end symbols.
1305 Output_data_plt_powerpc
<size
, big_endian
>* iplt_
;
1306 // Section holding long branch destinations.
1307 Output_data_brlt_powerpc
<size
, big_endian
>* brlt_section_
;
1308 // The .glink section.
1309 Output_data_glink
<size
, big_endian
>* glink_
;
1310 // The dynamic reloc section.
1311 Reloc_section
* rela_dyn_
;
1312 // Relocs saved to avoid a COPY reloc.
1313 Copy_relocs
<elfcpp::SHT_RELA
, size
, big_endian
> copy_relocs_
;
1314 // Offset of the GOT entry for local dynamic __tls_get_addr calls.
1315 unsigned int tlsld_got_offset_
;
1317 Stub_tables stub_tables_
;
1318 typedef Unordered_map
<Address
, unsigned int> Branch_lookup_table
;
1319 Branch_lookup_table branch_lookup_table_
;
1321 typedef std::vector
<Branch_info
> Branches
;
1322 Branches branch_info_
;
1324 bool plt_thread_safe_
;
1327 int relax_fail_count_
;
1328 int32_t stub_group_size_
;
1330 Output_data_save_res
<size
, big_endian
> *savres_section_
;
1334 Target::Target_info Target_powerpc
<32, true>::powerpc_info
=
1337 true, // is_big_endian
1338 elfcpp::EM_PPC
, // machine_code
1339 false, // has_make_symbol
1340 false, // has_resolve
1341 false, // has_code_fill
1342 true, // is_default_stack_executable
1343 false, // can_icf_inline_merge_sections
1345 "/usr/lib/ld.so.1", // dynamic_linker
1346 0x10000000, // default_text_segment_address
1347 64 * 1024, // abi_pagesize (overridable by -z max-page-size)
1348 4 * 1024, // common_pagesize (overridable by -z common-page-size)
1349 false, // isolate_execinstr
1351 elfcpp::SHN_UNDEF
, // small_common_shndx
1352 elfcpp::SHN_UNDEF
, // large_common_shndx
1353 0, // small_common_section_flags
1354 0, // large_common_section_flags
1355 NULL
, // attributes_section
1356 NULL
, // attributes_vendor
1357 "_start", // entry_symbol_name
1358 32, // hash_entry_size
1362 Target::Target_info Target_powerpc
<32, false>::powerpc_info
=
1365 false, // is_big_endian
1366 elfcpp::EM_PPC
, // machine_code
1367 false, // has_make_symbol
1368 false, // has_resolve
1369 false, // has_code_fill
1370 true, // is_default_stack_executable
1371 false, // can_icf_inline_merge_sections
1373 "/usr/lib/ld.so.1", // dynamic_linker
1374 0x10000000, // default_text_segment_address
1375 64 * 1024, // abi_pagesize (overridable by -z max-page-size)
1376 4 * 1024, // common_pagesize (overridable by -z common-page-size)
1377 false, // isolate_execinstr
1379 elfcpp::SHN_UNDEF
, // small_common_shndx
1380 elfcpp::SHN_UNDEF
, // large_common_shndx
1381 0, // small_common_section_flags
1382 0, // large_common_section_flags
1383 NULL
, // attributes_section
1384 NULL
, // attributes_vendor
1385 "_start", // entry_symbol_name
1386 32, // hash_entry_size
1390 Target::Target_info Target_powerpc
<64, true>::powerpc_info
=
1393 true, // is_big_endian
1394 elfcpp::EM_PPC64
, // machine_code
1395 false, // has_make_symbol
1396 false, // has_resolve
1397 false, // has_code_fill
1398 true, // is_default_stack_executable
1399 false, // can_icf_inline_merge_sections
1401 "/usr/lib/ld.so.1", // dynamic_linker
1402 0x10000000, // default_text_segment_address
1403 64 * 1024, // abi_pagesize (overridable by -z max-page-size)
1404 4 * 1024, // common_pagesize (overridable by -z common-page-size)
1405 false, // isolate_execinstr
1407 elfcpp::SHN_UNDEF
, // small_common_shndx
1408 elfcpp::SHN_UNDEF
, // large_common_shndx
1409 0, // small_common_section_flags
1410 0, // large_common_section_flags
1411 NULL
, // attributes_section
1412 NULL
, // attributes_vendor
1413 "_start", // entry_symbol_name
1414 32, // hash_entry_size
1418 Target::Target_info Target_powerpc
<64, false>::powerpc_info
=
1421 false, // is_big_endian
1422 elfcpp::EM_PPC64
, // machine_code
1423 false, // has_make_symbol
1424 false, // has_resolve
1425 false, // has_code_fill
1426 true, // is_default_stack_executable
1427 false, // can_icf_inline_merge_sections
1429 "/usr/lib/ld.so.1", // dynamic_linker
1430 0x10000000, // default_text_segment_address
1431 64 * 1024, // abi_pagesize (overridable by -z max-page-size)
1432 4 * 1024, // common_pagesize (overridable by -z common-page-size)
1433 false, // isolate_execinstr
1435 elfcpp::SHN_UNDEF
, // small_common_shndx
1436 elfcpp::SHN_UNDEF
, // large_common_shndx
1437 0, // small_common_section_flags
1438 0, // large_common_section_flags
1439 NULL
, // attributes_section
1440 NULL
, // attributes_vendor
1441 "_start", // entry_symbol_name
1442 32, // hash_entry_size
1446 is_branch_reloc(unsigned int r_type
)
1448 return (r_type
== elfcpp::R_POWERPC_REL24
1449 || r_type
== elfcpp::R_PPC_PLTREL24
1450 || r_type
== elfcpp::R_PPC_LOCAL24PC
1451 || r_type
== elfcpp::R_POWERPC_REL14
1452 || r_type
== elfcpp::R_POWERPC_REL14_BRTAKEN
1453 || r_type
== elfcpp::R_POWERPC_REL14_BRNTAKEN
1454 || r_type
== elfcpp::R_POWERPC_ADDR24
1455 || r_type
== elfcpp::R_POWERPC_ADDR14
1456 || r_type
== elfcpp::R_POWERPC_ADDR14_BRTAKEN
1457 || r_type
== elfcpp::R_POWERPC_ADDR14_BRNTAKEN
);
1460 // If INSN is an opcode that may be used with an @tls operand, return
1461 // the transformed insn for TLS optimisation, otherwise return 0. If
1462 // REG is non-zero only match an insn with RB or RA equal to REG.
1464 at_tls_transform(uint32_t insn
, unsigned int reg
)
1466 if ((insn
& (0x3f << 26)) != 31 << 26)
1470 if (reg
== 0 || ((insn
>> 11) & 0x1f) == reg
)
1471 rtra
= insn
& ((1 << 26) - (1 << 16));
1472 else if (((insn
>> 16) & 0x1f) == reg
)
1473 rtra
= (insn
& (0x1f << 21)) | ((insn
& (0x1f << 11)) << 5);
1477 if ((insn
& (0x3ff << 1)) == 266 << 1)
1480 else if ((insn
& (0x1f << 1)) == 23 << 1
1481 && ((insn
& (0x1f << 6)) < 14 << 6
1482 || ((insn
& (0x1f << 6)) >= 16 << 6
1483 && (insn
& (0x1f << 6)) < 24 << 6)))
1484 // load and store indexed -> dform
1485 insn
= (32 | ((insn
>> 6) & 0x1f)) << 26;
1486 else if ((insn
& (((0x1a << 5) | 0x1f) << 1)) == 21 << 1)
1487 // ldx, ldux, stdx, stdux -> ld, ldu, std, stdu
1488 insn
= ((58 | ((insn
>> 6) & 4)) << 26) | ((insn
>> 6) & 1);
1489 else if ((insn
& (((0x1f << 5) | 0x1f) << 1)) == 341 << 1)
1491 insn
= (58 << 26) | 2;
1499 template<int size
, bool big_endian
>
1500 class Powerpc_relocate_functions
1520 typedef Powerpc_relocate_functions
<size
, big_endian
> This
;
1521 typedef typename
elfcpp::Elf_types
<size
>::Elf_Addr Address
;
1522 typedef typename
elfcpp::Elf_types
<size
>::Elf_Swxword SignedAddress
;
1524 template<int valsize
>
1526 has_overflow_signed(Address value
)
1528 // limit = 1 << (valsize - 1) without shift count exceeding size of type
1529 Address limit
= static_cast<Address
>(1) << ((valsize
- 1) >> 1);
1530 limit
<<= ((valsize
- 1) >> 1);
1531 limit
<<= ((valsize
- 1) - 2 * ((valsize
- 1) >> 1));
1532 return value
+ limit
> (limit
<< 1) - 1;
1535 template<int valsize
>
1537 has_overflow_unsigned(Address value
)
1539 Address limit
= static_cast<Address
>(1) << ((valsize
- 1) >> 1);
1540 limit
<<= ((valsize
- 1) >> 1);
1541 limit
<<= ((valsize
- 1) - 2 * ((valsize
- 1) >> 1));
1542 return value
> (limit
<< 1) - 1;
1545 template<int valsize
>
1547 has_overflow_bitfield(Address value
)
1549 return (has_overflow_unsigned
<valsize
>(value
)
1550 && has_overflow_signed
<valsize
>(value
));
1553 template<int valsize
>
1554 static inline Status
1555 overflowed(Address value
, Overflow_check overflow
)
1557 if (overflow
== CHECK_SIGNED
)
1559 if (has_overflow_signed
<valsize
>(value
))
1560 return STATUS_OVERFLOW
;
1562 else if (overflow
== CHECK_UNSIGNED
)
1564 if (has_overflow_unsigned
<valsize
>(value
))
1565 return STATUS_OVERFLOW
;
1567 else if (overflow
== CHECK_BITFIELD
)
1569 if (has_overflow_bitfield
<valsize
>(value
))
1570 return STATUS_OVERFLOW
;
1575 // Do a simple RELA relocation
1576 template<int fieldsize
, int valsize
>
1577 static inline Status
1578 rela(unsigned char* view
, Address value
, Overflow_check overflow
)
1580 typedef typename
elfcpp::Swap
<fieldsize
, big_endian
>::Valtype Valtype
;
1581 Valtype
* wv
= reinterpret_cast<Valtype
*>(view
);
1582 elfcpp::Swap
<fieldsize
, big_endian
>::writeval(wv
, value
);
1583 return overflowed
<valsize
>(value
, overflow
);
1586 template<int fieldsize
, int valsize
>
1587 static inline Status
1588 rela(unsigned char* view
,
1589 unsigned int right_shift
,
1590 typename
elfcpp::Valtype_base
<fieldsize
>::Valtype dst_mask
,
1592 Overflow_check overflow
)
1594 typedef typename
elfcpp::Swap
<fieldsize
, big_endian
>::Valtype Valtype
;
1595 Valtype
* wv
= reinterpret_cast<Valtype
*>(view
);
1596 Valtype val
= elfcpp::Swap
<fieldsize
, big_endian
>::readval(wv
);
1597 Valtype reloc
= value
>> right_shift
;
1600 elfcpp::Swap
<fieldsize
, big_endian
>::writeval(wv
, val
| reloc
);
1601 return overflowed
<valsize
>(value
>> right_shift
, overflow
);
1604 // Do a simple RELA relocation, unaligned.
1605 template<int fieldsize
, int valsize
>
1606 static inline Status
1607 rela_ua(unsigned char* view
, Address value
, Overflow_check overflow
)
1609 elfcpp::Swap_unaligned
<fieldsize
, big_endian
>::writeval(view
, value
);
1610 return overflowed
<valsize
>(value
, overflow
);
1613 template<int fieldsize
, int valsize
>
1614 static inline Status
1615 rela_ua(unsigned char* view
,
1616 unsigned int right_shift
,
1617 typename
elfcpp::Valtype_base
<fieldsize
>::Valtype dst_mask
,
1619 Overflow_check overflow
)
1621 typedef typename
elfcpp::Swap_unaligned
<fieldsize
, big_endian
>::Valtype
1623 Valtype val
= elfcpp::Swap
<fieldsize
, big_endian
>::readval(view
);
1624 Valtype reloc
= value
>> right_shift
;
1627 elfcpp::Swap_unaligned
<fieldsize
, big_endian
>::writeval(view
, val
| reloc
);
1628 return overflowed
<valsize
>(value
>> right_shift
, overflow
);
1632 // R_PPC64_ADDR64: (Symbol + Addend)
1634 addr64(unsigned char* view
, Address value
)
1635 { This::template rela
<64,64>(view
, value
, CHECK_NONE
); }
1637 // R_PPC64_UADDR64: (Symbol + Addend) unaligned
1639 addr64_u(unsigned char* view
, Address value
)
1640 { This::template rela_ua
<64,64>(view
, value
, CHECK_NONE
); }
1642 // R_POWERPC_ADDR32: (Symbol + Addend)
1643 static inline Status
1644 addr32(unsigned char* view
, Address value
, Overflow_check overflow
)
1645 { return This::template rela
<32,32>(view
, value
, overflow
); }
1647 // R_POWERPC_UADDR32: (Symbol + Addend) unaligned
1648 static inline Status
1649 addr32_u(unsigned char* view
, Address value
, Overflow_check overflow
)
1650 { return This::template rela_ua
<32,32>(view
, value
, overflow
); }
1652 // R_POWERPC_ADDR24: (Symbol + Addend) & 0x3fffffc
1653 static inline Status
1654 addr24(unsigned char* view
, Address value
, Overflow_check overflow
)
1656 Status stat
= This::template rela
<32,26>(view
, 0, 0x03fffffc,
1658 if (overflow
!= CHECK_NONE
&& (value
& 3) != 0)
1659 stat
= STATUS_OVERFLOW
;
1663 // R_POWERPC_ADDR16: (Symbol + Addend) & 0xffff
1664 static inline Status
1665 addr16(unsigned char* view
, Address value
, Overflow_check overflow
)
1666 { return This::template rela
<16,16>(view
, value
, overflow
); }
1668 // R_POWERPC_ADDR16: (Symbol + Addend) & 0xffff, unaligned
1669 static inline Status
1670 addr16_u(unsigned char* view
, Address value
, Overflow_check overflow
)
1671 { return This::template rela_ua
<16,16>(view
, value
, overflow
); }
1673 // R_POWERPC_ADDR16_DS: (Symbol + Addend) & 0xfffc
1674 static inline Status
1675 addr16_ds(unsigned char* view
, Address value
, Overflow_check overflow
)
1677 Status stat
= This::template rela
<16,16>(view
, 0, 0xfffc, value
, overflow
);
1678 if ((value
& 3) != 0)
1679 stat
= STATUS_OVERFLOW
;
1683 // R_POWERPC_ADDR16_DQ: (Symbol + Addend) & 0xfff0
1684 static inline Status
1685 addr16_dq(unsigned char* view
, Address value
, Overflow_check overflow
)
1687 Status stat
= This::template rela
<16,16>(view
, 0, 0xfff0, value
, overflow
);
1688 if ((value
& 15) != 0)
1689 stat
= STATUS_OVERFLOW
;
1693 // R_POWERPC_ADDR16_HI: ((Symbol + Addend) >> 16) & 0xffff
1695 addr16_hi(unsigned char* view
, Address value
)
1696 { This::template rela
<16,16>(view
, 16, 0xffff, value
, CHECK_NONE
); }
1698 // R_POWERPC_ADDR16_HA: ((Symbol + Addend + 0x8000) >> 16) & 0xffff
1700 addr16_ha(unsigned char* view
, Address value
)
1701 { This::addr16_hi(view
, value
+ 0x8000); }
1703 // R_POWERPC_ADDR16_HIGHER: ((Symbol + Addend) >> 32) & 0xffff
1705 addr16_hi2(unsigned char* view
, Address value
)
1706 { This::template rela
<16,16>(view
, 32, 0xffff, value
, CHECK_NONE
); }
1708 // R_POWERPC_ADDR16_HIGHERA: ((Symbol + Addend + 0x8000) >> 32) & 0xffff
1710 addr16_ha2(unsigned char* view
, Address value
)
1711 { This::addr16_hi2(view
, value
+ 0x8000); }
1713 // R_POWERPC_ADDR16_HIGHEST: ((Symbol + Addend) >> 48) & 0xffff
1715 addr16_hi3(unsigned char* view
, Address value
)
1716 { This::template rela
<16,16>(view
, 48, 0xffff, value
, CHECK_NONE
); }
1718 // R_POWERPC_ADDR16_HIGHESTA: ((Symbol + Addend + 0x8000) >> 48) & 0xffff
1720 addr16_ha3(unsigned char* view
, Address value
)
1721 { This::addr16_hi3(view
, value
+ 0x8000); }
1723 // R_POWERPC_ADDR14: (Symbol + Addend) & 0xfffc
1724 static inline Status
1725 addr14(unsigned char* view
, Address value
, Overflow_check overflow
)
1727 Status stat
= This::template rela
<32,16>(view
, 0, 0xfffc, value
, overflow
);
1728 if (overflow
!= CHECK_NONE
&& (value
& 3) != 0)
1729 stat
= STATUS_OVERFLOW
;
1733 // R_POWERPC_REL16DX_HA
1734 static inline Status
1735 addr16dx_ha(unsigned char *view
, Address value
, Overflow_check overflow
)
1737 typedef typename
elfcpp::Swap
<32, big_endian
>::Valtype Valtype
;
1738 Valtype
* wv
= reinterpret_cast<Valtype
*>(view
);
1739 Valtype val
= elfcpp::Swap
<32, big_endian
>::readval(wv
);
1741 value
= static_cast<SignedAddress
>(value
) >> 16;
1742 val
|= (value
& 0xffc1) | ((value
& 0x3e) << 15);
1743 elfcpp::Swap
<32, big_endian
>::writeval(wv
, val
);
1744 return overflowed
<16>(value
, overflow
);
1748 // Set ABI version for input and output.
1750 template<int size
, bool big_endian
>
1752 Powerpc_relobj
<size
, big_endian
>::set_abiversion(int ver
)
1754 this->e_flags_
|= ver
;
1755 if (this->abiversion() != 0)
1757 Target_powerpc
<size
, big_endian
>* target
=
1758 static_cast<Target_powerpc
<size
, big_endian
>*>(
1759 parameters
->sized_target
<size
, big_endian
>());
1760 if (target
->abiversion() == 0)
1761 target
->set_abiversion(this->abiversion());
1762 else if (target
->abiversion() != this->abiversion())
1763 gold_error(_("%s: ABI version %d is not compatible "
1764 "with ABI version %d output"),
1765 this->name().c_str(),
1766 this->abiversion(), target
->abiversion());
1771 // Stash away the index of .got2 or .opd in a relocatable object, if
1772 // such a section exists.
1774 template<int size
, bool big_endian
>
1776 Powerpc_relobj
<size
, big_endian
>::do_find_special_sections(
1777 Read_symbols_data
* sd
)
1779 const unsigned char* const pshdrs
= sd
->section_headers
->data();
1780 const unsigned char* namesu
= sd
->section_names
->data();
1781 const char* names
= reinterpret_cast<const char*>(namesu
);
1782 section_size_type names_size
= sd
->section_names_size
;
1783 const unsigned char* s
;
1785 s
= this->template find_shdr
<size
, big_endian
>(pshdrs
,
1786 size
== 32 ? ".got2" : ".opd",
1787 names
, names_size
, NULL
);
1790 unsigned int ndx
= (s
- pshdrs
) / elfcpp::Elf_sizes
<size
>::shdr_size
;
1791 this->special_
= ndx
;
1794 if (this->abiversion() == 0)
1795 this->set_abiversion(1);
1796 else if (this->abiversion() > 1)
1797 gold_error(_("%s: .opd invalid in abiv%d"),
1798 this->name().c_str(), this->abiversion());
1801 return Sized_relobj_file
<size
, big_endian
>::do_find_special_sections(sd
);
1804 // Examine .rela.opd to build info about function entry points.
1806 template<int size
, bool big_endian
>
1808 Powerpc_relobj
<size
, big_endian
>::scan_opd_relocs(
1810 const unsigned char* prelocs
,
1811 const unsigned char* plocal_syms
)
1815 typedef typename Reloc_types
<elfcpp::SHT_RELA
, size
, big_endian
>::Reloc
1817 const int reloc_size
1818 = Reloc_types
<elfcpp::SHT_RELA
, size
, big_endian
>::reloc_size
;
1819 const int sym_size
= elfcpp::Elf_sizes
<size
>::sym_size
;
1820 Address expected_off
= 0;
1821 bool regular
= true;
1822 unsigned int opd_ent_size
= 0;
1824 for (size_t i
= 0; i
< reloc_count
; ++i
, prelocs
+= reloc_size
)
1826 Reltype
reloc(prelocs
);
1827 typename
elfcpp::Elf_types
<size
>::Elf_WXword r_info
1828 = reloc
.get_r_info();
1829 unsigned int r_type
= elfcpp::elf_r_type
<size
>(r_info
);
1830 if (r_type
== elfcpp::R_PPC64_ADDR64
)
1832 unsigned int r_sym
= elfcpp::elf_r_sym
<size
>(r_info
);
1833 typename
elfcpp::Elf_types
<size
>::Elf_Addr value
;
1836 if (r_sym
< this->local_symbol_count())
1838 typename
elfcpp::Sym
<size
, big_endian
>
1839 lsym(plocal_syms
+ r_sym
* sym_size
);
1840 shndx
= lsym
.get_st_shndx();
1841 shndx
= this->adjust_sym_shndx(r_sym
, shndx
, &is_ordinary
);
1842 value
= lsym
.get_st_value();
1845 shndx
= this->symbol_section_and_value(r_sym
, &value
,
1847 this->set_opd_ent(reloc
.get_r_offset(), shndx
,
1848 value
+ reloc
.get_r_addend());
1851 expected_off
= reloc
.get_r_offset();
1852 opd_ent_size
= expected_off
;
1854 else if (expected_off
!= reloc
.get_r_offset())
1856 expected_off
+= opd_ent_size
;
1858 else if (r_type
== elfcpp::R_PPC64_TOC
)
1860 if (expected_off
- opd_ent_size
+ 8 != reloc
.get_r_offset())
1865 gold_warning(_("%s: unexpected reloc type %u in .opd section"),
1866 this->name().c_str(), r_type
);
1870 if (reloc_count
<= 2)
1871 opd_ent_size
= this->section_size(this->opd_shndx());
1872 if (opd_ent_size
!= 24 && opd_ent_size
!= 16)
1876 gold_warning(_("%s: .opd is not a regular array of opd entries"),
1877 this->name().c_str());
1883 template<int size
, bool big_endian
>
1885 Powerpc_relobj
<size
, big_endian
>::do_read_relocs(Read_relocs_data
* rd
)
1887 Sized_relobj_file
<size
, big_endian
>::do_read_relocs(rd
);
1890 for (Read_relocs_data::Relocs_list::iterator p
= rd
->relocs
.begin();
1891 p
!= rd
->relocs
.end();
1894 if (p
->data_shndx
== this->opd_shndx())
1896 uint64_t opd_size
= this->section_size(this->opd_shndx());
1897 gold_assert(opd_size
== static_cast<size_t>(opd_size
));
1900 this->init_opd(opd_size
);
1901 this->scan_opd_relocs(p
->reloc_count
, p
->contents
->data(),
1902 rd
->local_symbols
->data());
1910 // Read the symbols then set up st_other vector.
1912 template<int size
, bool big_endian
>
1914 Powerpc_relobj
<size
, big_endian
>::do_read_symbols(Read_symbols_data
* sd
)
1916 this->base_read_symbols(sd
);
1919 const int shdr_size
= elfcpp::Elf_sizes
<size
>::shdr_size
;
1920 const unsigned char* const pshdrs
= sd
->section_headers
->data();
1921 const unsigned int loccount
= this->do_local_symbol_count();
1924 this->st_other_
.resize(loccount
);
1925 const int sym_size
= elfcpp::Elf_sizes
<size
>::sym_size
;
1926 off_t locsize
= loccount
* sym_size
;
1927 const unsigned int symtab_shndx
= this->symtab_shndx();
1928 const unsigned char *psymtab
= pshdrs
+ symtab_shndx
* shdr_size
;
1929 typename
elfcpp::Shdr
<size
, big_endian
> shdr(psymtab
);
1930 const unsigned char* psyms
= this->get_view(shdr
.get_sh_offset(),
1931 locsize
, true, false);
1933 for (unsigned int i
= 1; i
< loccount
; ++i
, psyms
+= sym_size
)
1935 elfcpp::Sym
<size
, big_endian
> sym(psyms
);
1936 unsigned char st_other
= sym
.get_st_other();
1937 this->st_other_
[i
] = st_other
;
1938 if ((st_other
& elfcpp::STO_PPC64_LOCAL_MASK
) != 0)
1940 if (this->abiversion() == 0)
1941 this->set_abiversion(2);
1942 else if (this->abiversion() < 2)
1943 gold_error(_("%s: local symbol %d has invalid st_other"
1944 " for ABI version 1"),
1945 this->name().c_str(), i
);
1952 template<int size
, bool big_endian
>
1954 Powerpc_dynobj
<size
, big_endian
>::set_abiversion(int ver
)
1956 this->e_flags_
|= ver
;
1957 if (this->abiversion() != 0)
1959 Target_powerpc
<size
, big_endian
>* target
=
1960 static_cast<Target_powerpc
<size
, big_endian
>*>(
1961 parameters
->sized_target
<size
, big_endian
>());
1962 if (target
->abiversion() == 0)
1963 target
->set_abiversion(this->abiversion());
1964 else if (target
->abiversion() != this->abiversion())
1965 gold_error(_("%s: ABI version %d is not compatible "
1966 "with ABI version %d output"),
1967 this->name().c_str(),
1968 this->abiversion(), target
->abiversion());
1973 // Call Sized_dynobj::base_read_symbols to read the symbols then
1974 // read .opd from a dynamic object, filling in opd_ent_ vector,
1976 template<int size
, bool big_endian
>
1978 Powerpc_dynobj
<size
, big_endian
>::do_read_symbols(Read_symbols_data
* sd
)
1980 this->base_read_symbols(sd
);
1983 const int shdr_size
= elfcpp::Elf_sizes
<size
>::shdr_size
;
1984 const unsigned char* const pshdrs
= sd
->section_headers
->data();
1985 const unsigned char* namesu
= sd
->section_names
->data();
1986 const char* names
= reinterpret_cast<const char*>(namesu
);
1987 const unsigned char* s
= NULL
;
1988 const unsigned char* opd
;
1989 section_size_type opd_size
;
1991 // Find and read .opd section.
1994 s
= this->template find_shdr
<size
, big_endian
>(pshdrs
, ".opd", names
,
1995 sd
->section_names_size
,
2000 typename
elfcpp::Shdr
<size
, big_endian
> shdr(s
);
2001 if (shdr
.get_sh_type() == elfcpp::SHT_PROGBITS
2002 && (shdr
.get_sh_flags() & elfcpp::SHF_ALLOC
) != 0)
2004 if (this->abiversion() == 0)
2005 this->set_abiversion(1);
2006 else if (this->abiversion() > 1)
2007 gold_error(_("%s: .opd invalid in abiv%d"),
2008 this->name().c_str(), this->abiversion());
2010 this->opd_shndx_
= (s
- pshdrs
) / shdr_size
;
2011 this->opd_address_
= shdr
.get_sh_addr();
2012 opd_size
= convert_to_section_size_type(shdr
.get_sh_size());
2013 opd
= this->get_view(shdr
.get_sh_offset(), opd_size
,
2019 // Build set of executable sections.
2020 // Using a set is probably overkill. There is likely to be only
2021 // a few executable sections, typically .init, .text and .fini,
2022 // and they are generally grouped together.
2023 typedef std::set
<Sec_info
> Exec_sections
;
2024 Exec_sections exec_sections
;
2026 for (unsigned int i
= 1; i
< this->shnum(); ++i
, s
+= shdr_size
)
2028 typename
elfcpp::Shdr
<size
, big_endian
> shdr(s
);
2029 if (shdr
.get_sh_type() == elfcpp::SHT_PROGBITS
2030 && ((shdr
.get_sh_flags()
2031 & (elfcpp::SHF_ALLOC
| elfcpp::SHF_EXECINSTR
))
2032 == (elfcpp::SHF_ALLOC
| elfcpp::SHF_EXECINSTR
))
2033 && shdr
.get_sh_size() != 0)
2035 exec_sections
.insert(Sec_info(shdr
.get_sh_addr(),
2036 shdr
.get_sh_size(), i
));
2039 if (exec_sections
.empty())
2042 // Look over the OPD entries. This is complicated by the fact
2043 // that some binaries will use two-word entries while others
2044 // will use the standard three-word entries. In most cases
2045 // the third word (the environment pointer for languages like
2046 // Pascal) is unused and will be zero. If the third word is
2047 // used it should not be pointing into executable sections,
2049 this->init_opd(opd_size
);
2050 for (const unsigned char* p
= opd
; p
< opd
+ opd_size
; p
+= 8)
2052 typedef typename
elfcpp::Swap
<64, big_endian
>::Valtype Valtype
;
2053 const Valtype
* valp
= reinterpret_cast<const Valtype
*>(p
);
2054 Valtype val
= elfcpp::Swap
<64, big_endian
>::readval(valp
);
2056 // Chances are that this is the third word of an OPD entry.
2058 typename
Exec_sections::const_iterator e
2059 = exec_sections
.upper_bound(Sec_info(val
, 0, 0));
2060 if (e
!= exec_sections
.begin())
2063 if (e
->start
<= val
&& val
< e
->start
+ e
->len
)
2065 // We have an address in an executable section.
2066 // VAL ought to be the function entry, set it up.
2067 this->set_opd_ent(p
- opd
, e
->shndx
, val
);
2068 // Skip second word of OPD entry, the TOC pointer.
2072 // If we didn't match any executable sections, we likely
2073 // have a non-zero third word in the OPD entry.
2078 // Set up some symbols.
2080 template<int size
, bool big_endian
>
2082 Target_powerpc
<size
, big_endian
>::do_define_standard_symbols(
2083 Symbol_table
* symtab
,
2088 // Define _GLOBAL_OFFSET_TABLE_ to ensure it isn't seen as
2089 // undefined when scanning relocs (and thus requires
2090 // non-relative dynamic relocs). The proper value will be
2092 Symbol
*gotsym
= symtab
->lookup("_GLOBAL_OFFSET_TABLE_", NULL
);
2093 if (gotsym
!= NULL
&& gotsym
->is_undefined())
2095 Target_powerpc
<size
, big_endian
>* target
=
2096 static_cast<Target_powerpc
<size
, big_endian
>*>(
2097 parameters
->sized_target
<size
, big_endian
>());
2098 Output_data_got_powerpc
<size
, big_endian
>* got
2099 = target
->got_section(symtab
, layout
);
2100 symtab
->define_in_output_data("_GLOBAL_OFFSET_TABLE_", NULL
,
2101 Symbol_table::PREDEFINED
,
2105 elfcpp::STV_HIDDEN
, 0,
2109 // Define _SDA_BASE_ at the start of the .sdata section + 32768.
2110 Symbol
*sdasym
= symtab
->lookup("_SDA_BASE_", NULL
);
2111 if (sdasym
!= NULL
&& sdasym
->is_undefined())
2113 Output_data_space
* sdata
= new Output_data_space(4, "** sdata");
2115 = layout
->add_output_section_data(".sdata", 0,
2117 | elfcpp::SHF_WRITE
,
2118 sdata
, ORDER_SMALL_DATA
, false);
2119 symtab
->define_in_output_data("_SDA_BASE_", NULL
,
2120 Symbol_table::PREDEFINED
,
2121 os
, 32768, 0, elfcpp::STT_OBJECT
,
2122 elfcpp::STB_LOCAL
, elfcpp::STV_HIDDEN
,
2128 // Define .TOC. as for 32-bit _GLOBAL_OFFSET_TABLE_
2129 Symbol
*gotsym
= symtab
->lookup(".TOC.", NULL
);
2130 if (gotsym
!= NULL
&& gotsym
->is_undefined())
2132 Target_powerpc
<size
, big_endian
>* target
=
2133 static_cast<Target_powerpc
<size
, big_endian
>*>(
2134 parameters
->sized_target
<size
, big_endian
>());
2135 Output_data_got_powerpc
<size
, big_endian
>* got
2136 = target
->got_section(symtab
, layout
);
2137 symtab
->define_in_output_data(".TOC.", NULL
,
2138 Symbol_table::PREDEFINED
,
2142 elfcpp::STV_HIDDEN
, 0,
2148 // Set up PowerPC target specific relobj.
2150 template<int size
, bool big_endian
>
2152 Target_powerpc
<size
, big_endian
>::do_make_elf_object(
2153 const std::string
& name
,
2154 Input_file
* input_file
,
2155 off_t offset
, const elfcpp::Ehdr
<size
, big_endian
>& ehdr
)
2157 int et
= ehdr
.get_e_type();
2158 // ET_EXEC files are valid input for --just-symbols/-R,
2159 // and we treat them as relocatable objects.
2160 if (et
== elfcpp::ET_REL
2161 || (et
== elfcpp::ET_EXEC
&& input_file
->just_symbols()))
2163 Powerpc_relobj
<size
, big_endian
>* obj
=
2164 new Powerpc_relobj
<size
, big_endian
>(name
, input_file
, offset
, ehdr
);
2168 else if (et
== elfcpp::ET_DYN
)
2170 Powerpc_dynobj
<size
, big_endian
>* obj
=
2171 new Powerpc_dynobj
<size
, big_endian
>(name
, input_file
, offset
, ehdr
);
2177 gold_error(_("%s: unsupported ELF file type %d"), name
.c_str(), et
);
2182 template<int size
, bool big_endian
>
2183 class Output_data_got_powerpc
: public Output_data_got
<size
, big_endian
>
2186 typedef typename
elfcpp::Elf_types
<size
>::Elf_Addr Valtype
;
2187 typedef Output_data_reloc
<elfcpp::SHT_RELA
, true, size
, big_endian
> Rela_dyn
;
2189 Output_data_got_powerpc(Symbol_table
* symtab
, Layout
* layout
)
2190 : Output_data_got
<size
, big_endian
>(),
2191 symtab_(symtab
), layout_(layout
),
2192 header_ent_cnt_(size
== 32 ? 3 : 1),
2193 header_index_(size
== 32 ? 0x2000 : 0)
2196 this->set_addralign(256);
2199 // Override all the Output_data_got methods we use so as to first call
2202 add_global(Symbol
* gsym
, unsigned int got_type
)
2204 this->reserve_ent();
2205 return Output_data_got
<size
, big_endian
>::add_global(gsym
, got_type
);
2209 add_global_plt(Symbol
* gsym
, unsigned int got_type
)
2211 this->reserve_ent();
2212 return Output_data_got
<size
, big_endian
>::add_global_plt(gsym
, got_type
);
2216 add_global_tls(Symbol
* gsym
, unsigned int got_type
)
2217 { return this->add_global_plt(gsym
, got_type
); }
2220 add_global_with_rel(Symbol
* gsym
, unsigned int got_type
,
2221 Output_data_reloc_generic
* rel_dyn
, unsigned int r_type
)
2223 this->reserve_ent();
2224 Output_data_got
<size
, big_endian
>::
2225 add_global_with_rel(gsym
, got_type
, rel_dyn
, r_type
);
2229 add_global_pair_with_rel(Symbol
* gsym
, unsigned int got_type
,
2230 Output_data_reloc_generic
* rel_dyn
,
2231 unsigned int r_type_1
, unsigned int r_type_2
)
2233 this->reserve_ent(2);
2234 Output_data_got
<size
, big_endian
>::
2235 add_global_pair_with_rel(gsym
, got_type
, rel_dyn
, r_type_1
, r_type_2
);
2239 add_local(Relobj
* object
, unsigned int sym_index
, unsigned int got_type
)
2241 this->reserve_ent();
2242 return Output_data_got
<size
, big_endian
>::add_local(object
, sym_index
,
2247 add_local_plt(Relobj
* object
, unsigned int sym_index
, unsigned int got_type
)
2249 this->reserve_ent();
2250 return Output_data_got
<size
, big_endian
>::add_local_plt(object
, sym_index
,
2255 add_local_tls(Relobj
* object
, unsigned int sym_index
, unsigned int got_type
)
2256 { return this->add_local_plt(object
, sym_index
, got_type
); }
2259 add_local_tls_pair(Relobj
* object
, unsigned int sym_index
,
2260 unsigned int got_type
,
2261 Output_data_reloc_generic
* rel_dyn
,
2262 unsigned int r_type
)
2264 this->reserve_ent(2);
2265 Output_data_got
<size
, big_endian
>::
2266 add_local_tls_pair(object
, sym_index
, got_type
, rel_dyn
, r_type
);
2270 add_constant(Valtype constant
)
2272 this->reserve_ent();
2273 return Output_data_got
<size
, big_endian
>::add_constant(constant
);
2277 add_constant_pair(Valtype c1
, Valtype c2
)
2279 this->reserve_ent(2);
2280 return Output_data_got
<size
, big_endian
>::add_constant_pair(c1
, c2
);
2283 // Offset of _GLOBAL_OFFSET_TABLE_.
2287 return this->got_offset(this->header_index_
);
2290 // Offset of base used to access the GOT/TOC.
2291 // The got/toc pointer reg will be set to this value.
2293 got_base_offset(const Powerpc_relobj
<size
, big_endian
>* object
) const
2296 return this->g_o_t();
2298 return (this->output_section()->address()
2299 + object
->toc_base_offset()
2303 // Ensure our GOT has a header.
2305 set_final_data_size()
2307 if (this->header_ent_cnt_
!= 0)
2308 this->make_header();
2309 Output_data_got
<size
, big_endian
>::set_final_data_size();
2312 // First word of GOT header needs some values that are not
2313 // handled by Output_data_got so poke them in here.
2314 // For 32-bit, address of .dynamic, for 64-bit, address of TOCbase.
2316 do_write(Output_file
* of
)
2319 if (size
== 32 && this->layout_
->dynamic_data() != NULL
)
2320 val
= this->layout_
->dynamic_section()->address();
2322 val
= this->output_section()->address() + 0x8000;
2323 this->replace_constant(this->header_index_
, val
);
2324 Output_data_got
<size
, big_endian
>::do_write(of
);
2329 reserve_ent(unsigned int cnt
= 1)
2331 if (this->header_ent_cnt_
== 0)
2333 if (this->num_entries() + cnt
> this->header_index_
)
2334 this->make_header();
2340 this->header_ent_cnt_
= 0;
2341 this->header_index_
= this->num_entries();
2344 Output_data_got
<size
, big_endian
>::add_constant(0);
2345 Output_data_got
<size
, big_endian
>::add_constant(0);
2346 Output_data_got
<size
, big_endian
>::add_constant(0);
2348 // Define _GLOBAL_OFFSET_TABLE_ at the header
2349 Symbol
*gotsym
= this->symtab_
->lookup("_GLOBAL_OFFSET_TABLE_", NULL
);
2352 Sized_symbol
<size
>* sym
= static_cast<Sized_symbol
<size
>*>(gotsym
);
2353 sym
->set_value(this->g_o_t());
2356 this->symtab_
->define_in_output_data("_GLOBAL_OFFSET_TABLE_", NULL
,
2357 Symbol_table::PREDEFINED
,
2358 this, this->g_o_t(), 0,
2361 elfcpp::STV_HIDDEN
, 0,
2365 Output_data_got
<size
, big_endian
>::add_constant(0);
2368 // Stashed pointers.
2369 Symbol_table
* symtab_
;
2373 unsigned int header_ent_cnt_
;
2374 // GOT header index.
2375 unsigned int header_index_
;
2378 // Get the GOT section, creating it if necessary.
2380 template<int size
, bool big_endian
>
2381 Output_data_got_powerpc
<size
, big_endian
>*
2382 Target_powerpc
<size
, big_endian
>::got_section(Symbol_table
* symtab
,
2385 if (this->got_
== NULL
)
2387 gold_assert(symtab
!= NULL
&& layout
!= NULL
);
2390 = new Output_data_got_powerpc
<size
, big_endian
>(symtab
, layout
);
2392 layout
->add_output_section_data(".got", elfcpp::SHT_PROGBITS
,
2393 elfcpp::SHF_ALLOC
| elfcpp::SHF_WRITE
,
2394 this->got_
, ORDER_DATA
, false);
2400 // Get the dynamic reloc section, creating it if necessary.
2402 template<int size
, bool big_endian
>
2403 typename Target_powerpc
<size
, big_endian
>::Reloc_section
*
2404 Target_powerpc
<size
, big_endian
>::rela_dyn_section(Layout
* layout
)
2406 if (this->rela_dyn_
== NULL
)
2408 gold_assert(layout
!= NULL
);
2409 this->rela_dyn_
= new Reloc_section(parameters
->options().combreloc());
2410 layout
->add_output_section_data(".rela.dyn", elfcpp::SHT_RELA
,
2411 elfcpp::SHF_ALLOC
, this->rela_dyn_
,
2412 ORDER_DYNAMIC_RELOCS
, false);
2414 return this->rela_dyn_
;
2417 // Similarly, but for ifunc symbols get the one for ifunc.
2419 template<int size
, bool big_endian
>
2420 typename Target_powerpc
<size
, big_endian
>::Reloc_section
*
2421 Target_powerpc
<size
, big_endian
>::rela_dyn_section(Symbol_table
* symtab
,
2426 return this->rela_dyn_section(layout
);
2428 if (this->iplt_
== NULL
)
2429 this->make_iplt_section(symtab
, layout
);
2430 return this->iplt_
->rel_plt();
2436 // Determine the stub group size. The group size is the absolute
2437 // value of the parameter --stub-group-size. If --stub-group-size
2438 // is passed a negative value, we restrict stubs to be always before
2439 // the stubbed branches.
2440 Stub_control(int32_t size
, bool no_size_errors
)
2441 : state_(NO_GROUP
), stub_group_size_(abs(size
)),
2442 stub14_group_size_(abs(size
) >> 10),
2443 stubs_always_before_branch_(size
< 0),
2444 suppress_size_errors_(no_size_errors
), has14_(false),
2445 group_end_addr_(0), owner_(NULL
), output_section_(NULL
)
2449 // Return true iff input section can be handled by current stub
2452 can_add_to_stub_group(Output_section
* o
,
2453 const Output_section::Input_section
* i
,
2456 const Output_section::Input_section
*
2462 { return output_section_
; }
2465 set_output_and_owner(Output_section
* o
,
2466 const Output_section::Input_section
* i
)
2468 this->output_section_
= o
;
2476 FINDING_STUB_SECTION
,
2481 uint32_t stub_group_size_
;
2482 uint32_t stub14_group_size_
;
2483 bool stubs_always_before_branch_
;
2484 bool suppress_size_errors_
;
2486 uint64_t group_end_addr_
;
2487 // owner_ and output_section_ specify the section to which stubs are
2488 // attached. The stubs are placed at the end of this section.
2489 const Output_section::Input_section
* owner_
;
2490 Output_section
* output_section_
;
2493 // Return true iff input section can be handled by current stub
2494 // group. Sections are presented to this function in reverse order,
2495 // so the first section is the tail of the group.
2498 Stub_control::can_add_to_stub_group(Output_section
* o
,
2499 const Output_section::Input_section
* i
,
2502 bool whole_sec
= o
->order() == ORDER_INIT
|| o
->order() == ORDER_FINI
;
2504 uint64_t start_addr
= o
->address();
2507 // .init and .fini sections are pasted together to form a single
2508 // function. We can't be adding stubs in the middle of the function.
2509 this_size
= o
->data_size();
2512 start_addr
+= i
->relobj()->output_section_offset(i
->shndx());
2513 this_size
= i
->data_size();
2517 = has14
? this->stub14_group_size_
: this->stub_group_size_
;
2518 uint64_t end_addr
= start_addr
+ this_size
;
2520 if (this_size
> group_size
&& !this->suppress_size_errors_
)
2521 gold_warning(_("%s:%s exceeds group size"),
2522 i
->relobj()->name().c_str(),
2523 i
->relobj()->section_name(i
->shndx()).c_str());
2525 this->has14_
= this->has14_
|| has14
;
2526 group_size
= this->has14_
? this->stub14_group_size_
: this->stub_group_size_
;
2528 if (this->state_
== HAS_STUB_SECTION
)
2530 // Can we add this section, which is before the stubs, to the
2532 if (this->group_end_addr_
- start_addr
<= group_size
)
2537 // Stubs are added at the end of "owner_".
2538 // The current section can always be the stub owner, except when
2539 // whole_sec is true and the current section isn't the last of
2540 // the pasted sections. (This restriction for the whole_sec
2541 // case is just to simplify the corner case mentioned in
2543 // Note that "owner_" itself is not necessarily part of the
2544 // group of sections served by these stubs!
2545 if (!whole_sec
|| this->output_section_
!= o
)
2548 this->output_section_
= o
;
2551 if (this->state_
== FINDING_STUB_SECTION
)
2553 if (this->group_end_addr_
- start_addr
<= group_size
)
2555 // The group after the stubs has reached maximum size.
2556 // Now see about adding sections before the stubs to the
2557 // group. If the current section has a 14-bit branch and
2558 // the group after the stubs exceeds stub14_group_size_
2559 // (because they didn't have 14-bit branches), don't add
2560 // sections before the stubs: The size of stubs for such a
2561 // large group may exceed the reach of a 14-bit branch.
2562 if (!this->stubs_always_before_branch_
2563 && this_size
<= group_size
2564 && this->group_end_addr_
- end_addr
<= group_size
)
2566 this->state_
= HAS_STUB_SECTION
;
2567 this->group_end_addr_
= end_addr
;
2571 else if (this->state_
== NO_GROUP
)
2573 // Only here on very first use of Stub_control
2574 this->state_
= FINDING_STUB_SECTION
;
2575 this->group_end_addr_
= end_addr
;
2582 // The section fails to fit in the current group. Set up a few
2583 // things for the next group. owner_ and output_section_ will be
2584 // set later after we've retrieved those values for the current
2586 this->state_
= FINDING_STUB_SECTION
;
2587 this->has14_
= has14
;
2588 this->group_end_addr_
= end_addr
;
2592 // Look over all the input sections, deciding where to place stubs.
2594 template<int size
, bool big_endian
>
2596 Target_powerpc
<size
, big_endian
>::group_sections(Layout
* layout
,
2598 bool no_size_errors
)
2600 Stub_control
stub_control(this->stub_group_size_
, no_size_errors
);
2602 // Group input sections and insert stub table
2603 Stub_table_owner
* table_owner
= NULL
;
2604 std::vector
<Stub_table_owner
*> tables
;
2605 Layout::Section_list section_list
;
2606 layout
->get_executable_sections(§ion_list
);
2607 std::stable_sort(section_list
.begin(), section_list
.end(), Sort_sections());
2608 for (Layout::Section_list::reverse_iterator o
= section_list
.rbegin();
2609 o
!= section_list
.rend();
2612 typedef Output_section::Input_section_list Input_section_list
;
2613 for (Input_section_list::const_reverse_iterator i
2614 = (*o
)->input_sections().rbegin();
2615 i
!= (*o
)->input_sections().rend();
2618 if (i
->is_input_section()
2619 || i
->is_relaxed_input_section())
2621 Powerpc_relobj
<size
, big_endian
>* ppcobj
= static_cast
2622 <Powerpc_relobj
<size
, big_endian
>*>(i
->relobj());
2623 bool has14
= ppcobj
->has_14bit_branch(i
->shndx());
2624 if (!stub_control
.can_add_to_stub_group(*o
, &*i
, has14
))
2626 table_owner
->output_section
= stub_control
.output_section();
2627 table_owner
->owner
= stub_control
.owner();
2628 stub_control
.set_output_and_owner(*o
, &*i
);
2631 if (table_owner
== NULL
)
2633 table_owner
= new Stub_table_owner
;
2634 tables
.push_back(table_owner
);
2636 ppcobj
->set_stub_table(i
->shndx(), tables
.size() - 1);
2640 if (table_owner
!= NULL
)
2642 const Output_section::Input_section
* i
= stub_control
.owner();
2644 if (tables
.size() >= 2 && tables
[tables
.size() - 2]->owner
== i
)
2646 // Corner case. A new stub group was made for the first
2647 // section (last one looked at here) for some reason, but
2648 // the first section is already being used as the owner for
2649 // a stub table for following sections. Force it into that
2653 Powerpc_relobj
<size
, big_endian
>* ppcobj
= static_cast
2654 <Powerpc_relobj
<size
, big_endian
>*>(i
->relobj());
2655 ppcobj
->set_stub_table(i
->shndx(), tables
.size() - 1);
2659 table_owner
->output_section
= stub_control
.output_section();
2660 table_owner
->owner
= i
;
2663 for (typename
std::vector
<Stub_table_owner
*>::iterator t
= tables
.begin();
2667 Stub_table
<size
, big_endian
>* stub_table
;
2669 if ((*t
)->owner
->is_input_section())
2670 stub_table
= new Stub_table
<size
, big_endian
>(this,
2671 (*t
)->output_section
,
2673 else if ((*t
)->owner
->is_relaxed_input_section())
2674 stub_table
= static_cast<Stub_table
<size
, big_endian
>*>(
2675 (*t
)->owner
->relaxed_input_section());
2678 this->stub_tables_
.push_back(stub_table
);
2683 static unsigned long
2684 max_branch_delta (unsigned int r_type
)
2686 if (r_type
== elfcpp::R_POWERPC_REL14
2687 || r_type
== elfcpp::R_POWERPC_REL14_BRTAKEN
2688 || r_type
== elfcpp::R_POWERPC_REL14_BRNTAKEN
)
2690 if (r_type
== elfcpp::R_POWERPC_REL24
2691 || r_type
== elfcpp::R_PPC_PLTREL24
2692 || r_type
== elfcpp::R_PPC_LOCAL24PC
)
2697 // If this branch needs a plt call stub, or a long branch stub, make one.
2699 template<int size
, bool big_endian
>
2701 Target_powerpc
<size
, big_endian
>::Branch_info::make_stub(
2702 Stub_table
<size
, big_endian
>* stub_table
,
2703 Stub_table
<size
, big_endian
>* ifunc_stub_table
,
2704 Symbol_table
* symtab
) const
2706 Symbol
* sym
= this->object_
->global_symbol(this->r_sym_
);
2707 if (sym
!= NULL
&& sym
->is_forwarder())
2708 sym
= symtab
->resolve_forwards(sym
);
2709 const Sized_symbol
<size
>* gsym
= static_cast<const Sized_symbol
<size
>*>(sym
);
2710 Target_powerpc
<size
, big_endian
>* target
=
2711 static_cast<Target_powerpc
<size
, big_endian
>*>(
2712 parameters
->sized_target
<size
, big_endian
>());
2714 ? gsym
->use_plt_offset(Scan::get_reference_flags(this->r_type_
, target
))
2715 : this->object_
->local_has_plt_offset(this->r_sym_
))
2719 && target
->abiversion() >= 2
2720 && !parameters
->options().output_is_position_independent()
2721 && !is_branch_reloc(this->r_type_
))
2722 target
->glink_section()->add_global_entry(gsym
);
2725 if (stub_table
== NULL
)
2726 stub_table
= this->object_
->stub_table(this->shndx_
);
2727 if (stub_table
== NULL
)
2729 // This is a ref from a data section to an ifunc symbol.
2730 stub_table
= ifunc_stub_table
;
2732 gold_assert(stub_table
!= NULL
);
2733 Address from
= this->object_
->get_output_section_offset(this->shndx_
);
2734 if (from
!= invalid_address
)
2735 from
+= (this->object_
->output_section(this->shndx_
)->address()
2738 return stub_table
->add_plt_call_entry(from
,
2739 this->object_
, gsym
,
2740 this->r_type_
, this->addend_
);
2742 return stub_table
->add_plt_call_entry(from
,
2743 this->object_
, this->r_sym_
,
2744 this->r_type_
, this->addend_
);
2749 Address max_branch_offset
= max_branch_delta(this->r_type_
);
2750 if (max_branch_offset
== 0)
2752 Address from
= this->object_
->get_output_section_offset(this->shndx_
);
2753 gold_assert(from
!= invalid_address
);
2754 from
+= (this->object_
->output_section(this->shndx_
)->address()
2759 switch (gsym
->source())
2761 case Symbol::FROM_OBJECT
:
2763 Object
* symobj
= gsym
->object();
2764 if (symobj
->is_dynamic()
2765 || symobj
->pluginobj() != NULL
)
2768 unsigned int shndx
= gsym
->shndx(&is_ordinary
);
2769 if (shndx
== elfcpp::SHN_UNDEF
)
2774 case Symbol::IS_UNDEFINED
:
2780 Symbol_table::Compute_final_value_status status
;
2781 to
= symtab
->compute_final_value
<size
>(gsym
, &status
);
2782 if (status
!= Symbol_table::CFVS_OK
)
2785 to
+= this->object_
->ppc64_local_entry_offset(gsym
);
2789 const Symbol_value
<size
>* psymval
2790 = this->object_
->local_symbol(this->r_sym_
);
2791 Symbol_value
<size
> symval
;
2792 typedef Sized_relobj_file
<size
, big_endian
> ObjType
;
2793 typename
ObjType::Compute_final_local_value_status status
2794 = this->object_
->compute_final_local_value(this->r_sym_
, psymval
,
2796 if (status
!= ObjType::CFLV_OK
2797 || !symval
.has_output_value())
2799 to
= symval
.value(this->object_
, 0);
2801 to
+= this->object_
->ppc64_local_entry_offset(this->r_sym_
);
2803 if (!(size
== 32 && this->r_type_
== elfcpp::R_PPC_PLTREL24
))
2804 to
+= this->addend_
;
2805 if (stub_table
== NULL
)
2806 stub_table
= this->object_
->stub_table(this->shndx_
);
2807 if (size
== 64 && target
->abiversion() < 2)
2809 unsigned int dest_shndx
;
2810 if (!target
->symval_for_branch(symtab
, gsym
, this->object_
,
2814 Address delta
= to
- from
;
2815 if (delta
+ max_branch_offset
>= 2 * max_branch_offset
)
2817 if (stub_table
== NULL
)
2819 gold_warning(_("%s:%s: branch in non-executable section,"
2820 " no long branch stub for you"),
2821 this->object_
->name().c_str(),
2822 this->object_
->section_name(this->shndx_
).c_str());
2825 bool save_res
= (size
== 64
2827 && gsym
->source() == Symbol::IN_OUTPUT_DATA
2828 && gsym
->output_data() == target
->savres_section());
2829 return stub_table
->add_long_branch_entry(this->object_
,
2831 from
, to
, save_res
);
2837 // Relaxation hook. This is where we do stub generation.
2839 template<int size
, bool big_endian
>
2841 Target_powerpc
<size
, big_endian
>::do_relax(int pass
,
2842 const Input_objects
*,
2843 Symbol_table
* symtab
,
2847 unsigned int prev_brlt_size
= 0;
2851 = this->abiversion() < 2 && parameters
->options().plt_thread_safe();
2853 && this->abiversion() < 2
2855 && !parameters
->options().user_set_plt_thread_safe())
2857 static const char* const thread_starter
[] =
2861 "_ZNSt6thread15_M_start_threadESt10shared_ptrINS_10_Impl_baseEE",
2863 "aio_init", "aio_read", "aio_write", "aio_fsync", "lio_listio",
2864 "mq_notify", "create_timer",
2869 "GOMP_parallel_start",
2870 "GOMP_parallel_loop_static",
2871 "GOMP_parallel_loop_static_start",
2872 "GOMP_parallel_loop_dynamic",
2873 "GOMP_parallel_loop_dynamic_start",
2874 "GOMP_parallel_loop_guided",
2875 "GOMP_parallel_loop_guided_start",
2876 "GOMP_parallel_loop_runtime",
2877 "GOMP_parallel_loop_runtime_start",
2878 "GOMP_parallel_sections",
2879 "GOMP_parallel_sections_start",
2884 if (parameters
->options().shared())
2888 for (unsigned int i
= 0;
2889 i
< sizeof(thread_starter
) / sizeof(thread_starter
[0]);
2892 Symbol
* sym
= symtab
->lookup(thread_starter
[i
], NULL
);
2893 thread_safe
= (sym
!= NULL
2895 && sym
->in_real_elf());
2901 this->plt_thread_safe_
= thread_safe
;
2906 this->stub_group_size_
= parameters
->options().stub_group_size();
2907 bool no_size_errors
= true;
2908 if (this->stub_group_size_
== 1)
2909 this->stub_group_size_
= 0x1c00000;
2910 else if (this->stub_group_size_
== -1)
2911 this->stub_group_size_
= -0x1e00000;
2913 no_size_errors
= false;
2914 this->group_sections(layout
, task
, no_size_errors
);
2916 else if (this->relax_failed_
&& this->relax_fail_count_
< 3)
2918 this->branch_lookup_table_
.clear();
2919 for (typename
Stub_tables::iterator p
= this->stub_tables_
.begin();
2920 p
!= this->stub_tables_
.end();
2923 (*p
)->clear_stubs(true);
2925 this->stub_tables_
.clear();
2926 this->stub_group_size_
= this->stub_group_size_
/ 4 * 3;
2927 gold_info(_("%s: stub group size is too large; retrying with %#x"),
2928 program_name
, this->stub_group_size_
);
2929 this->group_sections(layout
, task
, true);
2932 // We need address of stub tables valid for make_stub.
2933 for (typename
Stub_tables::iterator p
= this->stub_tables_
.begin();
2934 p
!= this->stub_tables_
.end();
2937 const Powerpc_relobj
<size
, big_endian
>* object
2938 = static_cast<const Powerpc_relobj
<size
, big_endian
>*>((*p
)->relobj());
2939 Address off
= object
->get_output_section_offset((*p
)->shndx());
2940 gold_assert(off
!= invalid_address
);
2941 Output_section
* os
= (*p
)->output_section();
2942 (*p
)->set_address_and_size(os
, off
);
2947 // Clear plt call stubs, long branch stubs and branch lookup table.
2948 prev_brlt_size
= this->branch_lookup_table_
.size();
2949 this->branch_lookup_table_
.clear();
2950 for (typename
Stub_tables::iterator p
= this->stub_tables_
.begin();
2951 p
!= this->stub_tables_
.end();
2954 (*p
)->clear_stubs(false);
2958 // Build all the stubs.
2959 this->relax_failed_
= false;
2960 Stub_table
<size
, big_endian
>* ifunc_stub_table
2961 = this->stub_tables_
.size() == 0 ? NULL
: this->stub_tables_
[0];
2962 Stub_table
<size
, big_endian
>* one_stub_table
2963 = this->stub_tables_
.size() != 1 ? NULL
: ifunc_stub_table
;
2964 for (typename
Branches::const_iterator b
= this->branch_info_
.begin();
2965 b
!= this->branch_info_
.end();
2968 if (!b
->make_stub(one_stub_table
, ifunc_stub_table
, symtab
)
2969 && !this->relax_failed_
)
2971 this->relax_failed_
= true;
2972 this->relax_fail_count_
++;
2973 if (this->relax_fail_count_
< 3)
2978 // Did anything change size?
2979 unsigned int num_huge_branches
= this->branch_lookup_table_
.size();
2980 bool again
= num_huge_branches
!= prev_brlt_size
;
2981 if (size
== 64 && num_huge_branches
!= 0)
2982 this->make_brlt_section(layout
);
2983 if (size
== 64 && again
)
2984 this->brlt_section_
->set_current_size(num_huge_branches
);
2986 typedef Unordered_set
<Output_section
*> Output_sections
;
2987 Output_sections os_need_update
;
2988 for (typename
Stub_tables::iterator p
= this->stub_tables_
.begin();
2989 p
!= this->stub_tables_
.end();
2992 if ((*p
)->size_update())
2995 (*p
)->add_eh_frame(layout
);
2996 os_need_update
.insert((*p
)->output_section());
3000 // Set output section offsets for all input sections in an output
3001 // section that just changed size. Anything past the stubs will
3003 for (typename
Output_sections::iterator p
= os_need_update
.begin();
3004 p
!= os_need_update
.end();
3007 Output_section
* os
= *p
;
3009 typedef Output_section::Input_section_list Input_section_list
;
3010 for (Input_section_list::const_iterator i
= os
->input_sections().begin();
3011 i
!= os
->input_sections().end();
3014 off
= align_address(off
, i
->addralign());
3015 if (i
->is_input_section() || i
->is_relaxed_input_section())
3016 i
->relobj()->set_section_offset(i
->shndx(), off
);
3017 if (i
->is_relaxed_input_section())
3019 Stub_table
<size
, big_endian
>* stub_table
3020 = static_cast<Stub_table
<size
, big_endian
>*>(
3021 i
->relaxed_input_section());
3022 Address stub_table_size
= stub_table
->set_address_and_size(os
, off
);
3023 off
+= stub_table_size
;
3024 // After a few iterations, set current stub table size
3025 // as min size threshold, so later stub tables can only
3028 stub_table
->set_min_size_threshold(stub_table_size
);
3031 off
+= i
->data_size();
3033 // If .branch_lt is part of this output section, then we have
3034 // just done the offset adjustment.
3035 os
->clear_section_offsets_need_adjustment();
3040 && num_huge_branches
!= 0
3041 && parameters
->options().output_is_position_independent())
3043 // Fill in the BRLT relocs.
3044 this->brlt_section_
->reset_brlt_sizes();
3045 for (typename
Branch_lookup_table::const_iterator p
3046 = this->branch_lookup_table_
.begin();
3047 p
!= this->branch_lookup_table_
.end();
3050 this->brlt_section_
->add_reloc(p
->first
, p
->second
);
3052 this->brlt_section_
->finalize_brlt_sizes();
3057 template<int size
, bool big_endian
>
3059 Target_powerpc
<size
, big_endian
>::do_plt_fde_location(const Output_data
* plt
,
3060 unsigned char* oview
,
3064 uint64_t address
= plt
->address();
3065 off_t len
= plt
->data_size();
3067 if (plt
== this->glink_
)
3069 // See Output_data_glink::do_write() for glink contents.
3072 gold_assert(parameters
->doing_static_link());
3073 // Static linking may need stubs, to support ifunc and long
3074 // branches. We need to create an output section for
3075 // .eh_frame early in the link process, to have a place to
3076 // attach stub .eh_frame info. We also need to have
3077 // registered a CIE that matches the stub CIE. Both of
3078 // these requirements are satisfied by creating an FDE and
3079 // CIE for .glink, even though static linking will leave
3080 // .glink zero length.
3081 // ??? Hopefully generating an FDE with a zero address range
3082 // won't confuse anything that consumes .eh_frame info.
3084 else if (size
== 64)
3086 // There is one word before __glink_PLTresolve
3090 else if (parameters
->options().output_is_position_independent())
3092 // There are two FDEs for a position independent glink.
3093 // The first covers the branch table, the second
3094 // __glink_PLTresolve at the end of glink.
3095 off_t resolve_size
= this->glink_
->pltresolve_size
;
3096 if (oview
[9] == elfcpp::DW_CFA_nop
)
3097 len
-= resolve_size
;
3100 address
+= len
- resolve_size
;
3107 // Must be a stub table.
3108 const Stub_table
<size
, big_endian
>* stub_table
3109 = static_cast<const Stub_table
<size
, big_endian
>*>(plt
);
3110 uint64_t stub_address
= stub_table
->stub_address();
3111 len
-= stub_address
- address
;
3112 address
= stub_address
;
3115 *paddress
= address
;
3119 // A class to handle the PLT data.
3121 template<int size
, bool big_endian
>
3122 class Output_data_plt_powerpc
: public Output_section_data_build
3125 typedef Output_data_reloc
<elfcpp::SHT_RELA
, true,
3126 size
, big_endian
> Reloc_section
;
3128 Output_data_plt_powerpc(Target_powerpc
<size
, big_endian
>* targ
,
3129 Reloc_section
* plt_rel
,
3131 : Output_section_data_build(size
== 32 ? 4 : 8),
3137 // Add an entry to the PLT.
3142 add_ifunc_entry(Symbol
*);
3145 add_local_ifunc_entry(Sized_relobj_file
<size
, big_endian
>*, unsigned int);
3147 // Return the .rela.plt section data.
3154 // Return the number of PLT entries.
3158 if (this->current_data_size() == 0)
3160 return ((this->current_data_size() - this->first_plt_entry_offset())
3161 / this->plt_entry_size());
3166 do_adjust_output_section(Output_section
* os
)
3171 // Write to a map file.
3173 do_print_to_mapfile(Mapfile
* mapfile
) const
3174 { mapfile
->print_output_data(this, this->name_
); }
3177 // Return the offset of the first non-reserved PLT entry.
3179 first_plt_entry_offset() const
3181 // IPLT has no reserved entry.
3182 if (this->name_
[3] == 'I')
3184 return this->targ_
->first_plt_entry_offset();
3187 // Return the size of each PLT entry.
3189 plt_entry_size() const
3191 return this->targ_
->plt_entry_size();
3194 // Write out the PLT data.
3196 do_write(Output_file
*);
3198 // The reloc section.
3199 Reloc_section
* rel_
;
3200 // Allows access to .glink for do_write.
3201 Target_powerpc
<size
, big_endian
>* targ_
;
3202 // What to report in map file.
3206 // Add an entry to the PLT.
3208 template<int size
, bool big_endian
>
3210 Output_data_plt_powerpc
<size
, big_endian
>::add_entry(Symbol
* gsym
)
3212 if (!gsym
->has_plt_offset())
3214 section_size_type off
= this->current_data_size();
3216 off
+= this->first_plt_entry_offset();
3217 gsym
->set_plt_offset(off
);
3218 gsym
->set_needs_dynsym_entry();
3219 unsigned int dynrel
= elfcpp::R_POWERPC_JMP_SLOT
;
3220 this->rel_
->add_global(gsym
, dynrel
, this, off
, 0);
3221 off
+= this->plt_entry_size();
3222 this->set_current_data_size(off
);
3226 // Add an entry for a global ifunc symbol that resolves locally, to the IPLT.
3228 template<int size
, bool big_endian
>
3230 Output_data_plt_powerpc
<size
, big_endian
>::add_ifunc_entry(Symbol
* gsym
)
3232 if (!gsym
->has_plt_offset())
3234 section_size_type off
= this->current_data_size();
3235 gsym
->set_plt_offset(off
);
3236 unsigned int dynrel
= elfcpp::R_POWERPC_IRELATIVE
;
3237 if (size
== 64 && this->targ_
->abiversion() < 2)
3238 dynrel
= elfcpp::R_PPC64_JMP_IREL
;
3239 this->rel_
->add_symbolless_global_addend(gsym
, dynrel
, this, off
, 0);
3240 off
+= this->plt_entry_size();
3241 this->set_current_data_size(off
);
3245 // Add an entry for a local ifunc symbol to the IPLT.
3247 template<int size
, bool big_endian
>
3249 Output_data_plt_powerpc
<size
, big_endian
>::add_local_ifunc_entry(
3250 Sized_relobj_file
<size
, big_endian
>* relobj
,
3251 unsigned int local_sym_index
)
3253 if (!relobj
->local_has_plt_offset(local_sym_index
))
3255 section_size_type off
= this->current_data_size();
3256 relobj
->set_local_plt_offset(local_sym_index
, off
);
3257 unsigned int dynrel
= elfcpp::R_POWERPC_IRELATIVE
;
3258 if (size
== 64 && this->targ_
->abiversion() < 2)
3259 dynrel
= elfcpp::R_PPC64_JMP_IREL
;
3260 this->rel_
->add_symbolless_local_addend(relobj
, local_sym_index
, dynrel
,
3262 off
+= this->plt_entry_size();
3263 this->set_current_data_size(off
);
3267 static const uint32_t add_0_11_11
= 0x7c0b5a14;
3268 static const uint32_t add_2_2_11
= 0x7c425a14;
3269 static const uint32_t add_2_2_12
= 0x7c426214;
3270 static const uint32_t add_3_3_2
= 0x7c631214;
3271 static const uint32_t add_3_3_13
= 0x7c636a14;
3272 static const uint32_t add_11_0_11
= 0x7d605a14;
3273 static const uint32_t add_11_2_11
= 0x7d625a14;
3274 static const uint32_t add_11_11_2
= 0x7d6b1214;
3275 static const uint32_t addi_0_12
= 0x380c0000;
3276 static const uint32_t addi_2_2
= 0x38420000;
3277 static const uint32_t addi_3_3
= 0x38630000;
3278 static const uint32_t addi_11_11
= 0x396b0000;
3279 static const uint32_t addi_12_1
= 0x39810000;
3280 static const uint32_t addi_12_12
= 0x398c0000;
3281 static const uint32_t addis_0_2
= 0x3c020000;
3282 static const uint32_t addis_0_13
= 0x3c0d0000;
3283 static const uint32_t addis_2_12
= 0x3c4c0000;
3284 static const uint32_t addis_11_2
= 0x3d620000;
3285 static const uint32_t addis_11_11
= 0x3d6b0000;
3286 static const uint32_t addis_11_30
= 0x3d7e0000;
3287 static const uint32_t addis_12_1
= 0x3d810000;
3288 static const uint32_t addis_12_2
= 0x3d820000;
3289 static const uint32_t addis_12_12
= 0x3d8c0000;
3290 static const uint32_t b
= 0x48000000;
3291 static const uint32_t bcl_20_31
= 0x429f0005;
3292 static const uint32_t bctr
= 0x4e800420;
3293 static const uint32_t blr
= 0x4e800020;
3294 static const uint32_t bnectr_p4
= 0x4ce20420;
3295 static const uint32_t cmpld_7_12_0
= 0x7fac0040;
3296 static const uint32_t cmpldi_2_0
= 0x28220000;
3297 static const uint32_t cror_15_15_15
= 0x4def7b82;
3298 static const uint32_t cror_31_31_31
= 0x4ffffb82;
3299 static const uint32_t ld_0_1
= 0xe8010000;
3300 static const uint32_t ld_0_12
= 0xe80c0000;
3301 static const uint32_t ld_2_1
= 0xe8410000;
3302 static const uint32_t ld_2_2
= 0xe8420000;
3303 static const uint32_t ld_2_11
= 0xe84b0000;
3304 static const uint32_t ld_2_12
= 0xe84c0000;
3305 static const uint32_t ld_11_2
= 0xe9620000;
3306 static const uint32_t ld_11_11
= 0xe96b0000;
3307 static const uint32_t ld_12_2
= 0xe9820000;
3308 static const uint32_t ld_12_11
= 0xe98b0000;
3309 static const uint32_t ld_12_12
= 0xe98c0000;
3310 static const uint32_t lfd_0_1
= 0xc8010000;
3311 static const uint32_t li_0_0
= 0x38000000;
3312 static const uint32_t li_12_0
= 0x39800000;
3313 static const uint32_t lis_0
= 0x3c000000;
3314 static const uint32_t lis_2
= 0x3c400000;
3315 static const uint32_t lis_11
= 0x3d600000;
3316 static const uint32_t lis_12
= 0x3d800000;
3317 static const uint32_t lvx_0_12_0
= 0x7c0c00ce;
3318 static const uint32_t lwz_0_12
= 0x800c0000;
3319 static const uint32_t lwz_11_11
= 0x816b0000;
3320 static const uint32_t lwz_11_30
= 0x817e0000;
3321 static const uint32_t lwz_12_12
= 0x818c0000;
3322 static const uint32_t lwzu_0_12
= 0x840c0000;
3323 static const uint32_t mflr_0
= 0x7c0802a6;
3324 static const uint32_t mflr_11
= 0x7d6802a6;
3325 static const uint32_t mflr_12
= 0x7d8802a6;
3326 static const uint32_t mtctr_0
= 0x7c0903a6;
3327 static const uint32_t mtctr_11
= 0x7d6903a6;
3328 static const uint32_t mtctr_12
= 0x7d8903a6;
3329 static const uint32_t mtlr_0
= 0x7c0803a6;
3330 static const uint32_t mtlr_12
= 0x7d8803a6;
3331 static const uint32_t nop
= 0x60000000;
3332 static const uint32_t ori_0_0_0
= 0x60000000;
3333 static const uint32_t srdi_0_0_2
= 0x7800f082;
3334 static const uint32_t std_0_1
= 0xf8010000;
3335 static const uint32_t std_0_12
= 0xf80c0000;
3336 static const uint32_t std_2_1
= 0xf8410000;
3337 static const uint32_t stfd_0_1
= 0xd8010000;
3338 static const uint32_t stvx_0_12_0
= 0x7c0c01ce;
3339 static const uint32_t sub_11_11_12
= 0x7d6c5850;
3340 static const uint32_t sub_12_12_11
= 0x7d8b6050;
3341 static const uint32_t xor_2_12_12
= 0x7d826278;
3342 static const uint32_t xor_11_12_12
= 0x7d8b6278;
3344 // Write out the PLT.
3346 template<int size
, bool big_endian
>
3348 Output_data_plt_powerpc
<size
, big_endian
>::do_write(Output_file
* of
)
3350 if (size
== 32 && this->name_
[3] != 'I')
3352 const section_size_type offset
= this->offset();
3353 const section_size_type oview_size
3354 = convert_to_section_size_type(this->data_size());
3355 unsigned char* const oview
= of
->get_output_view(offset
, oview_size
);
3356 unsigned char* pov
= oview
;
3357 unsigned char* endpov
= oview
+ oview_size
;
3359 // The address of the .glink branch table
3360 const Output_data_glink
<size
, big_endian
>* glink
3361 = this->targ_
->glink_section();
3362 elfcpp::Elf_types
<32>::Elf_Addr branch_tab
= glink
->address();
3364 while (pov
< endpov
)
3366 elfcpp::Swap
<32, big_endian
>::writeval(pov
, branch_tab
);
3371 of
->write_output_view(offset
, oview_size
, oview
);
3375 // Create the PLT section.
3377 template<int size
, bool big_endian
>
3379 Target_powerpc
<size
, big_endian
>::make_plt_section(Symbol_table
* symtab
,
3382 if (this->plt_
== NULL
)
3384 if (this->got_
== NULL
)
3385 this->got_section(symtab
, layout
);
3387 if (this->glink_
== NULL
)
3388 make_glink_section(layout
);
3390 // Ensure that .rela.dyn always appears before .rela.plt This is
3391 // necessary due to how, on PowerPC and some other targets, .rela.dyn
3392 // needs to include .rela.plt in its range.
3393 this->rela_dyn_section(layout
);
3395 Reloc_section
* plt_rel
= new Reloc_section(false);
3396 layout
->add_output_section_data(".rela.plt", elfcpp::SHT_RELA
,
3397 elfcpp::SHF_ALLOC
, plt_rel
,
3398 ORDER_DYNAMIC_PLT_RELOCS
, false);
3400 = new Output_data_plt_powerpc
<size
, big_endian
>(this, plt_rel
,
3402 layout
->add_output_section_data(".plt",
3404 ? elfcpp::SHT_PROGBITS
3405 : elfcpp::SHT_NOBITS
),
3406 elfcpp::SHF_ALLOC
| elfcpp::SHF_WRITE
,
3415 // Create the IPLT section.
3417 template<int size
, bool big_endian
>
3419 Target_powerpc
<size
, big_endian
>::make_iplt_section(Symbol_table
* symtab
,
3422 if (this->iplt_
== NULL
)
3424 this->make_plt_section(symtab
, layout
);
3426 Reloc_section
* iplt_rel
= new Reloc_section(false);
3427 this->rela_dyn_
->output_section()->add_output_section_data(iplt_rel
);
3429 = new Output_data_plt_powerpc
<size
, big_endian
>(this, iplt_rel
,
3431 this->plt_
->output_section()->add_output_section_data(this->iplt_
);
3435 // A section for huge long branch addresses, similar to plt section.
3437 template<int size
, bool big_endian
>
3438 class Output_data_brlt_powerpc
: public Output_section_data_build
3441 typedef typename
elfcpp::Elf_types
<size
>::Elf_Addr Address
;
3442 typedef Output_data_reloc
<elfcpp::SHT_RELA
, true,
3443 size
, big_endian
> Reloc_section
;
3445 Output_data_brlt_powerpc(Target_powerpc
<size
, big_endian
>* targ
,
3446 Reloc_section
* brlt_rel
)
3447 : Output_section_data_build(size
== 32 ? 4 : 8),
3455 this->reset_data_size();
3456 this->rel_
->reset_data_size();
3460 finalize_brlt_sizes()
3462 this->finalize_data_size();
3463 this->rel_
->finalize_data_size();
3466 // Add a reloc for an entry in the BRLT.
3468 add_reloc(Address to
, unsigned int off
)
3469 { this->rel_
->add_relative(elfcpp::R_POWERPC_RELATIVE
, this, off
, to
); }
3471 // Update section and reloc section size.
3473 set_current_size(unsigned int num_branches
)
3475 this->reset_address_and_file_offset();
3476 this->set_current_data_size(num_branches
* 16);
3477 this->finalize_data_size();
3478 Output_section
* os
= this->output_section();
3479 os
->set_section_offsets_need_adjustment();
3480 if (this->rel_
!= NULL
)
3482 unsigned int reloc_size
3483 = Reloc_types
<elfcpp::SHT_RELA
, size
, big_endian
>::reloc_size
;
3484 this->rel_
->reset_address_and_file_offset();
3485 this->rel_
->set_current_data_size(num_branches
* reloc_size
);
3486 this->rel_
->finalize_data_size();
3487 Output_section
* os
= this->rel_
->output_section();
3488 os
->set_section_offsets_need_adjustment();
3494 do_adjust_output_section(Output_section
* os
)
3499 // Write to a map file.
3501 do_print_to_mapfile(Mapfile
* mapfile
) const
3502 { mapfile
->print_output_data(this, "** BRLT"); }
3505 // Write out the BRLT data.
3507 do_write(Output_file
*);
3509 // The reloc section.
3510 Reloc_section
* rel_
;
3511 Target_powerpc
<size
, big_endian
>* targ_
;
3514 // Make the branch lookup table section.
3516 template<int size
, bool big_endian
>
3518 Target_powerpc
<size
, big_endian
>::make_brlt_section(Layout
* layout
)
3520 if (size
== 64 && this->brlt_section_
== NULL
)
3522 Reloc_section
* brlt_rel
= NULL
;
3523 bool is_pic
= parameters
->options().output_is_position_independent();
3526 // When PIC we can't fill in .branch_lt (like .plt it can be
3527 // a bss style section) but must initialise at runtime via
3528 // dynamic relocats.
3529 this->rela_dyn_section(layout
);
3530 brlt_rel
= new Reloc_section(false);
3531 this->rela_dyn_
->output_section()->add_output_section_data(brlt_rel
);
3534 = new Output_data_brlt_powerpc
<size
, big_endian
>(this, brlt_rel
);
3535 if (this->plt_
&& is_pic
)
3536 this->plt_
->output_section()
3537 ->add_output_section_data(this->brlt_section_
);
3539 layout
->add_output_section_data(".branch_lt",
3540 (is_pic
? elfcpp::SHT_NOBITS
3541 : elfcpp::SHT_PROGBITS
),
3542 elfcpp::SHF_ALLOC
| elfcpp::SHF_WRITE
,
3543 this->brlt_section_
,
3544 (is_pic
? ORDER_SMALL_BSS
3545 : ORDER_SMALL_DATA
),
3550 // Write out .branch_lt when non-PIC.
3552 template<int size
, bool big_endian
>
3554 Output_data_brlt_powerpc
<size
, big_endian
>::do_write(Output_file
* of
)
3556 if (size
== 64 && !parameters
->options().output_is_position_independent())
3558 const section_size_type offset
= this->offset();
3559 const section_size_type oview_size
3560 = convert_to_section_size_type(this->data_size());
3561 unsigned char* const oview
= of
->get_output_view(offset
, oview_size
);
3563 this->targ_
->write_branch_lookup_table(oview
);
3564 of
->write_output_view(offset
, oview_size
, oview
);
3568 static inline uint32_t
3574 static inline uint32_t
3580 static inline uint32_t
3583 return hi(a
+ 0x8000);
3589 static const unsigned char eh_frame_cie
[12];
3593 const unsigned char Eh_cie
<size
>::eh_frame_cie
[] =
3596 'z', 'R', 0, // Augmentation string.
3597 4, // Code alignment.
3598 0x80 - size
/ 8 , // Data alignment.
3600 1, // Augmentation size.
3601 (elfcpp::DW_EH_PE_pcrel
3602 | elfcpp::DW_EH_PE_sdata4
), // FDE encoding.
3603 elfcpp::DW_CFA_def_cfa
, 1, 0 // def_cfa: r1 offset 0.
3606 // Describe __glink_PLTresolve use of LR, 64-bit version ABIv1.
3607 static const unsigned char glink_eh_frame_fde_64v1
[] =
3609 0, 0, 0, 0, // Replaced with offset to .glink.
3610 0, 0, 0, 0, // Replaced with size of .glink.
3611 0, // Augmentation size.
3612 elfcpp::DW_CFA_advance_loc
+ 1,
3613 elfcpp::DW_CFA_register
, 65, 12,
3614 elfcpp::DW_CFA_advance_loc
+ 4,
3615 elfcpp::DW_CFA_restore_extended
, 65
3618 // Describe __glink_PLTresolve use of LR, 64-bit version ABIv2.
3619 static const unsigned char glink_eh_frame_fde_64v2
[] =
3621 0, 0, 0, 0, // Replaced with offset to .glink.
3622 0, 0, 0, 0, // Replaced with size of .glink.
3623 0, // Augmentation size.
3624 elfcpp::DW_CFA_advance_loc
+ 1,
3625 elfcpp::DW_CFA_register
, 65, 0,
3626 elfcpp::DW_CFA_advance_loc
+ 4,
3627 elfcpp::DW_CFA_restore_extended
, 65
3630 // Describe __glink_PLTresolve use of LR, 32-bit version.
3631 static const unsigned char glink_eh_frame_fde_32
[] =
3633 0, 0, 0, 0, // Replaced with offset to .glink.
3634 0, 0, 0, 0, // Replaced with size of .glink.
3635 0, // Augmentation size.
3636 elfcpp::DW_CFA_advance_loc
+ 2,
3637 elfcpp::DW_CFA_register
, 65, 0,
3638 elfcpp::DW_CFA_advance_loc
+ 4,
3639 elfcpp::DW_CFA_restore_extended
, 65
3642 static const unsigned char default_fde
[] =
3644 0, 0, 0, 0, // Replaced with offset to stubs.
3645 0, 0, 0, 0, // Replaced with size of stubs.
3646 0, // Augmentation size.
3647 elfcpp::DW_CFA_nop
, // Pad.
3652 template<bool big_endian
>
3654 write_insn(unsigned char* p
, uint32_t v
)
3656 elfcpp::Swap
<32, big_endian
>::writeval(p
, v
);
3659 // Stub_table holds information about plt and long branch stubs.
3660 // Stubs are built in an area following some input section determined
3661 // by group_sections(). This input section is converted to a relaxed
3662 // input section allowing it to be resized to accommodate the stubs
3664 template<int size
, bool big_endian
>
3665 class Stub_table
: public Output_relaxed_input_section
3668 typedef typename
elfcpp::Elf_types
<size
>::Elf_Addr Address
;
3669 static const Address invalid_address
= static_cast<Address
>(0) - 1;
3671 Stub_table(Target_powerpc
<size
, big_endian
>* targ
,
3672 Output_section
* output_section
,
3673 const Output_section::Input_section
* owner
)
3674 : Output_relaxed_input_section(owner
->relobj(), owner
->shndx(),
3676 ->section_addralign(owner
->shndx())),
3677 targ_(targ
), plt_call_stubs_(), long_branch_stubs_(),
3678 orig_data_size_(owner
->current_data_size()),
3679 plt_size_(0), last_plt_size_(0),
3680 branch_size_(0), last_branch_size_(0), min_size_threshold_(0),
3681 eh_frame_added_(false), need_save_res_(false)
3683 this->set_output_section(output_section
);
3685 std::vector
<Output_relaxed_input_section
*> new_relaxed
;
3686 new_relaxed
.push_back(this);
3687 output_section
->convert_input_sections_to_relaxed_sections(new_relaxed
);
3690 // Add a plt call stub.
3692 add_plt_call_entry(Address
,
3693 const Sized_relobj_file
<size
, big_endian
>*,
3699 add_plt_call_entry(Address
,
3700 const Sized_relobj_file
<size
, big_endian
>*,
3705 // Find a given plt call stub.
3707 find_plt_call_entry(const Symbol
*) const;
3710 find_plt_call_entry(const Sized_relobj_file
<size
, big_endian
>*,
3711 unsigned int) const;
3714 find_plt_call_entry(const Sized_relobj_file
<size
, big_endian
>*,
3720 find_plt_call_entry(const Sized_relobj_file
<size
, big_endian
>*,
3725 // Add a long branch stub.
3727 add_long_branch_entry(const Powerpc_relobj
<size
, big_endian
>*,
3728 unsigned int, Address
, Address
, bool);
3731 find_long_branch_entry(const Powerpc_relobj
<size
, big_endian
>*,
3735 can_reach_stub(Address from
, unsigned int off
, unsigned int r_type
)
3737 Address max_branch_offset
= max_branch_delta(r_type
);
3738 if (max_branch_offset
== 0)
3740 gold_assert(from
!= invalid_address
);
3741 Address loc
= off
+ this->stub_address();
3742 return loc
- from
+ max_branch_offset
< 2 * max_branch_offset
;
3746 clear_stubs(bool all
)
3748 this->plt_call_stubs_
.clear();
3749 this->plt_size_
= 0;
3750 this->long_branch_stubs_
.clear();
3751 this->branch_size_
= 0;
3752 this->need_save_res_
= false;
3755 this->last_plt_size_
= 0;
3756 this->last_branch_size_
= 0;
3761 set_address_and_size(const Output_section
* os
, Address off
)
3763 Address start_off
= off
;
3764 off
+= this->orig_data_size_
;
3765 Address my_size
= this->plt_size_
+ this->branch_size_
;
3766 if (this->need_save_res_
)
3767 my_size
+= this->targ_
->savres_section()->data_size();
3769 off
= align_address(off
, this->stub_align());
3770 // Include original section size and alignment padding in size
3771 my_size
+= off
- start_off
;
3772 // Ensure new size is always larger than min size
3773 // threshold. Alignment requirement is included in "my_size", so
3774 // increase "my_size" does not invalidate alignment.
3775 if (my_size
< this->min_size_threshold_
)
3776 my_size
= this->min_size_threshold_
;
3777 this->reset_address_and_file_offset();
3778 this->set_current_data_size(my_size
);
3779 this->set_address_and_file_offset(os
->address() + start_off
,
3780 os
->offset() + start_off
);
3785 stub_address() const
3787 return align_address(this->address() + this->orig_data_size_
,
3788 this->stub_align());
3794 return align_address(this->offset() + this->orig_data_size_
,
3795 this->stub_align());
3800 { return this->plt_size_
; }
3802 void set_min_size_threshold(Address min_size
)
3803 { this->min_size_threshold_
= min_size
; }
3808 Output_section
* os
= this->output_section();
3809 if (os
->addralign() < this->stub_align())
3811 os
->set_addralign(this->stub_align());
3812 // FIXME: get rid of the insane checkpointing.
3813 // We can't increase alignment of the input section to which
3814 // stubs are attached; The input section may be .init which
3815 // is pasted together with other .init sections to form a
3816 // function. Aligning might insert zero padding resulting in
3817 // sigill. However we do need to increase alignment of the
3818 // output section so that the align_address() on offset in
3819 // set_address_and_size() adds the same padding as the
3820 // align_address() on address in stub_address().
3821 // What's more, we need this alignment for the layout done in
3822 // relaxation_loop_body() so that the output section starts at
3823 // a suitably aligned address.
3824 os
->checkpoint_set_addralign(this->stub_align());
3826 if (this->last_plt_size_
!= this->plt_size_
3827 || this->last_branch_size_
!= this->branch_size_
)
3829 this->last_plt_size_
= this->plt_size_
;
3830 this->last_branch_size_
= this->branch_size_
;
3836 // Add .eh_frame info for this stub section. Unlike other linker
3837 // generated .eh_frame this is added late in the link, because we
3838 // only want the .eh_frame info if this particular stub section is
3841 add_eh_frame(Layout
* layout
)
3843 if (!this->eh_frame_added_
)
3845 if (!parameters
->options().ld_generated_unwind_info())
3848 // Since we add stub .eh_frame info late, it must be placed
3849 // after all other linker generated .eh_frame info so that
3850 // merge mapping need not be updated for input sections.
3851 // There is no provision to use a different CIE to that used
3853 if (!this->targ_
->has_glink())
3856 layout
->add_eh_frame_for_plt(this,
3857 Eh_cie
<size
>::eh_frame_cie
,
3858 sizeof (Eh_cie
<size
>::eh_frame_cie
),
3860 sizeof (default_fde
));
3861 this->eh_frame_added_
= true;
3865 Target_powerpc
<size
, big_endian
>*
3871 class Plt_stub_ent_hash
;
3872 typedef Unordered_map
<Plt_stub_ent
, unsigned int,
3873 Plt_stub_ent_hash
> Plt_stub_entries
;
3875 // Alignment of stub section.
3881 unsigned int min_align
= 32;
3882 unsigned int user_align
= 1 << parameters
->options().plt_align();
3883 return std::max(user_align
, min_align
);
3886 // Return the plt offset for the given call stub.
3888 plt_off(typename
Plt_stub_entries::const_iterator p
, bool* is_iplt
) const
3890 const Symbol
* gsym
= p
->first
.sym_
;
3893 *is_iplt
= (gsym
->type() == elfcpp::STT_GNU_IFUNC
3894 && gsym
->can_use_relative_reloc(false));
3895 return gsym
->plt_offset();
3900 const Sized_relobj_file
<size
, big_endian
>* relobj
= p
->first
.object_
;
3901 unsigned int local_sym_index
= p
->first
.locsym_
;
3902 return relobj
->local_plt_offset(local_sym_index
);
3906 // Size of a given plt call stub.
3908 plt_call_size(typename
Plt_stub_entries::const_iterator p
) const
3914 Address plt_addr
= this->plt_off(p
, &is_iplt
);
3916 plt_addr
+= this->targ_
->iplt_section()->address();
3918 plt_addr
+= this->targ_
->plt_section()->address();
3919 Address got_addr
= this->targ_
->got_section()->output_section()->address();
3920 const Powerpc_relobj
<size
, big_endian
>* ppcobj
= static_cast
3921 <const Powerpc_relobj
<size
, big_endian
>*>(p
->first
.object_
);
3922 got_addr
+= ppcobj
->toc_base_offset();
3923 Address off
= plt_addr
- got_addr
;
3924 unsigned int bytes
= 4 * 4 + 4 * (ha(off
) != 0);
3925 if (this->targ_
->abiversion() < 2)
3927 bool static_chain
= parameters
->options().plt_static_chain();
3928 bool thread_safe
= this->targ_
->plt_thread_safe();
3932 + 4 * (ha(off
+ 8 + 8 * static_chain
) != ha(off
)));
3934 unsigned int align
= 1 << parameters
->options().plt_align();
3936 bytes
= (bytes
+ align
- 1) & -align
;
3940 // Return long branch stub size.
3942 branch_stub_size(Address to
)
3945 = this->stub_address() + this->last_plt_size_
+ this->branch_size_
;
3946 if (to
- loc
+ (1 << 25) < 2 << 25)
3948 if (size
== 64 || !parameters
->options().output_is_position_independent())
3955 do_write(Output_file
*);
3957 // Plt call stub keys.
3961 Plt_stub_ent(const Symbol
* sym
)
3962 : sym_(sym
), object_(0), addend_(0), locsym_(0)
3965 Plt_stub_ent(const Sized_relobj_file
<size
, big_endian
>* object
,
3966 unsigned int locsym_index
)
3967 : sym_(NULL
), object_(object
), addend_(0), locsym_(locsym_index
)
3970 Plt_stub_ent(const Sized_relobj_file
<size
, big_endian
>* object
,
3972 unsigned int r_type
,
3974 : sym_(sym
), object_(0), addend_(0), locsym_(0)
3977 this->addend_
= addend
;
3978 else if (parameters
->options().output_is_position_independent()
3979 && r_type
== elfcpp::R_PPC_PLTREL24
)
3981 this->addend_
= addend
;
3982 if (this->addend_
>= 32768)
3983 this->object_
= object
;
3987 Plt_stub_ent(const Sized_relobj_file
<size
, big_endian
>* object
,
3988 unsigned int locsym_index
,
3989 unsigned int r_type
,
3991 : sym_(NULL
), object_(object
), addend_(0), locsym_(locsym_index
)
3994 this->addend_
= addend
;
3995 else if (parameters
->options().output_is_position_independent()
3996 && r_type
== elfcpp::R_PPC_PLTREL24
)
3997 this->addend_
= addend
;
4000 bool operator==(const Plt_stub_ent
& that
) const
4002 return (this->sym_
== that
.sym_
4003 && this->object_
== that
.object_
4004 && this->addend_
== that
.addend_
4005 && this->locsym_
== that
.locsym_
);
4009 const Sized_relobj_file
<size
, big_endian
>* object_
;
4010 typename
elfcpp::Elf_types
<size
>::Elf_Addr addend_
;
4011 unsigned int locsym_
;
4014 class Plt_stub_ent_hash
4017 size_t operator()(const Plt_stub_ent
& ent
) const
4019 return (reinterpret_cast<uintptr_t>(ent
.sym_
)
4020 ^ reinterpret_cast<uintptr_t>(ent
.object_
)
4026 // Long branch stub keys.
4027 class Branch_stub_ent
4030 Branch_stub_ent(const Powerpc_relobj
<size
, big_endian
>* obj
,
4031 Address to
, bool save_res
)
4032 : dest_(to
), toc_base_off_(0), save_res_(save_res
)
4035 toc_base_off_
= obj
->toc_base_offset();
4038 bool operator==(const Branch_stub_ent
& that
) const
4040 return (this->dest_
== that
.dest_
4042 || this->toc_base_off_
== that
.toc_base_off_
));
4046 unsigned int toc_base_off_
;
4050 class Branch_stub_ent_hash
4053 size_t operator()(const Branch_stub_ent
& ent
) const
4054 { return ent
.dest_
^ ent
.toc_base_off_
; }
4057 // In a sane world this would be a global.
4058 Target_powerpc
<size
, big_endian
>* targ_
;
4059 // Map sym/object/addend to stub offset.
4060 Plt_stub_entries plt_call_stubs_
;
4061 // Map destination address to stub offset.
4062 typedef Unordered_map
<Branch_stub_ent
, unsigned int,
4063 Branch_stub_ent_hash
> Branch_stub_entries
;
4064 Branch_stub_entries long_branch_stubs_
;
4065 // size of input section
4066 section_size_type orig_data_size_
;
4068 section_size_type plt_size_
, last_plt_size_
, branch_size_
, last_branch_size_
;
4069 // Some rare cases cause (PR/20529) fluctuation in stub table
4070 // size, which leads to an endless relax loop. This is to be fixed
4071 // by, after the first few iterations, allowing only increase of
4072 // stub table size. This variable sets the minimal possible size of
4073 // a stub table, it is zero for the first few iterations, then
4074 // increases monotonically.
4075 Address min_size_threshold_
;
4076 // Whether .eh_frame info has been created for this stub section.
4077 bool eh_frame_added_
;
4078 // Set if this stub group needs a copy of out-of-line register
4079 // save/restore functions.
4080 bool need_save_res_
;
4083 // Add a plt call stub, if we do not already have one for this
4084 // sym/object/addend combo.
4086 template<int size
, bool big_endian
>
4088 Stub_table
<size
, big_endian
>::add_plt_call_entry(
4090 const Sized_relobj_file
<size
, big_endian
>* object
,
4092 unsigned int r_type
,
4095 Plt_stub_ent
ent(object
, gsym
, r_type
, addend
);
4096 unsigned int off
= this->plt_size_
;
4097 std::pair
<typename
Plt_stub_entries::iterator
, bool> p
4098 = this->plt_call_stubs_
.insert(std::make_pair(ent
, off
));
4100 this->plt_size_
= off
+ this->plt_call_size(p
.first
);
4101 return this->can_reach_stub(from
, off
, r_type
);
4104 template<int size
, bool big_endian
>
4106 Stub_table
<size
, big_endian
>::add_plt_call_entry(
4108 const Sized_relobj_file
<size
, big_endian
>* object
,
4109 unsigned int locsym_index
,
4110 unsigned int r_type
,
4113 Plt_stub_ent
ent(object
, locsym_index
, r_type
, addend
);
4114 unsigned int off
= this->plt_size_
;
4115 std::pair
<typename
Plt_stub_entries::iterator
, bool> p
4116 = this->plt_call_stubs_
.insert(std::make_pair(ent
, off
));
4118 this->plt_size_
= off
+ this->plt_call_size(p
.first
);
4119 return this->can_reach_stub(from
, off
, r_type
);
4122 // Find a plt call stub.
4124 template<int size
, bool big_endian
>
4125 typename Stub_table
<size
, big_endian
>::Address
4126 Stub_table
<size
, big_endian
>::find_plt_call_entry(
4127 const Sized_relobj_file
<size
, big_endian
>* object
,
4129 unsigned int r_type
,
4130 Address addend
) const
4132 Plt_stub_ent
ent(object
, gsym
, r_type
, addend
);
4133 typename
Plt_stub_entries::const_iterator p
= this->plt_call_stubs_
.find(ent
);
4134 return p
== this->plt_call_stubs_
.end() ? invalid_address
: p
->second
;
4137 template<int size
, bool big_endian
>
4138 typename Stub_table
<size
, big_endian
>::Address
4139 Stub_table
<size
, big_endian
>::find_plt_call_entry(const Symbol
* gsym
) const
4141 Plt_stub_ent
ent(gsym
);
4142 typename
Plt_stub_entries::const_iterator p
= this->plt_call_stubs_
.find(ent
);
4143 return p
== this->plt_call_stubs_
.end() ? invalid_address
: p
->second
;
4146 template<int size
, bool big_endian
>
4147 typename Stub_table
<size
, big_endian
>::Address
4148 Stub_table
<size
, big_endian
>::find_plt_call_entry(
4149 const Sized_relobj_file
<size
, big_endian
>* object
,
4150 unsigned int locsym_index
,
4151 unsigned int r_type
,
4152 Address addend
) const
4154 Plt_stub_ent
ent(object
, locsym_index
, r_type
, addend
);
4155 typename
Plt_stub_entries::const_iterator p
= this->plt_call_stubs_
.find(ent
);
4156 return p
== this->plt_call_stubs_
.end() ? invalid_address
: p
->second
;
4159 template<int size
, bool big_endian
>
4160 typename Stub_table
<size
, big_endian
>::Address
4161 Stub_table
<size
, big_endian
>::find_plt_call_entry(
4162 const Sized_relobj_file
<size
, big_endian
>* object
,
4163 unsigned int locsym_index
) const
4165 Plt_stub_ent
ent(object
, locsym_index
);
4166 typename
Plt_stub_entries::const_iterator p
= this->plt_call_stubs_
.find(ent
);
4167 return p
== this->plt_call_stubs_
.end() ? invalid_address
: p
->second
;
4170 // Add a long branch stub if we don't already have one to given
4173 template<int size
, bool big_endian
>
4175 Stub_table
<size
, big_endian
>::add_long_branch_entry(
4176 const Powerpc_relobj
<size
, big_endian
>* object
,
4177 unsigned int r_type
,
4182 Branch_stub_ent
ent(object
, to
, save_res
);
4183 Address off
= this->branch_size_
;
4184 if (this->long_branch_stubs_
.insert(std::make_pair(ent
, off
)).second
)
4187 this->need_save_res_
= true;
4190 unsigned int stub_size
= this->branch_stub_size(to
);
4191 this->branch_size_
= off
+ stub_size
;
4192 if (size
== 64 && stub_size
!= 4)
4193 this->targ_
->add_branch_lookup_table(to
);
4196 return this->can_reach_stub(from
, off
, r_type
);
4199 // Find long branch stub offset.
4201 template<int size
, bool big_endian
>
4202 typename Stub_table
<size
, big_endian
>::Address
4203 Stub_table
<size
, big_endian
>::find_long_branch_entry(
4204 const Powerpc_relobj
<size
, big_endian
>* object
,
4207 Branch_stub_ent
ent(object
, to
, false);
4208 typename
Branch_stub_entries::const_iterator p
4209 = this->long_branch_stubs_
.find(ent
);
4210 if (p
== this->long_branch_stubs_
.end())
4211 return invalid_address
;
4212 if (p
->first
.save_res_
)
4213 return to
- this->targ_
->savres_section()->address() + this->branch_size_
;
4217 // A class to handle .glink.
4219 template<int size
, bool big_endian
>
4220 class Output_data_glink
: public Output_section_data
4223 typedef typename
elfcpp::Elf_types
<size
>::Elf_Addr Address
;
4224 static const Address invalid_address
= static_cast<Address
>(0) - 1;
4225 static const int pltresolve_size
= 16*4;
4227 Output_data_glink(Target_powerpc
<size
, big_endian
>* targ
)
4228 : Output_section_data(16), targ_(targ
), global_entry_stubs_(),
4229 end_branch_table_(), ge_size_(0)
4233 add_eh_frame(Layout
* layout
);
4236 add_global_entry(const Symbol
*);
4239 find_global_entry(const Symbol
*) const;
4242 global_entry_address() const
4244 gold_assert(this->is_data_size_valid());
4245 unsigned int global_entry_off
= (this->end_branch_table_
+ 15) & -16;
4246 return this->address() + global_entry_off
;
4250 // Write to a map file.
4252 do_print_to_mapfile(Mapfile
* mapfile
) const
4253 { mapfile
->print_output_data(this, _("** glink")); }
4257 set_final_data_size();
4261 do_write(Output_file
*);
4263 // Allows access to .got and .plt for do_write.
4264 Target_powerpc
<size
, big_endian
>* targ_
;
4266 // Map sym to stub offset.
4267 typedef Unordered_map
<const Symbol
*, unsigned int> Global_entry_stub_entries
;
4268 Global_entry_stub_entries global_entry_stubs_
;
4270 unsigned int end_branch_table_
, ge_size_
;
4273 template<int size
, bool big_endian
>
4275 Output_data_glink
<size
, big_endian
>::add_eh_frame(Layout
* layout
)
4277 if (!parameters
->options().ld_generated_unwind_info())
4282 if (this->targ_
->abiversion() < 2)
4283 layout
->add_eh_frame_for_plt(this,
4284 Eh_cie
<64>::eh_frame_cie
,
4285 sizeof (Eh_cie
<64>::eh_frame_cie
),
4286 glink_eh_frame_fde_64v1
,
4287 sizeof (glink_eh_frame_fde_64v1
));
4289 layout
->add_eh_frame_for_plt(this,
4290 Eh_cie
<64>::eh_frame_cie
,
4291 sizeof (Eh_cie
<64>::eh_frame_cie
),
4292 glink_eh_frame_fde_64v2
,
4293 sizeof (glink_eh_frame_fde_64v2
));
4297 // 32-bit .glink can use the default since the CIE return
4298 // address reg, LR, is valid.
4299 layout
->add_eh_frame_for_plt(this,
4300 Eh_cie
<32>::eh_frame_cie
,
4301 sizeof (Eh_cie
<32>::eh_frame_cie
),
4303 sizeof (default_fde
));
4304 // Except where LR is used in a PIC __glink_PLTresolve.
4305 if (parameters
->options().output_is_position_independent())
4306 layout
->add_eh_frame_for_plt(this,
4307 Eh_cie
<32>::eh_frame_cie
,
4308 sizeof (Eh_cie
<32>::eh_frame_cie
),
4309 glink_eh_frame_fde_32
,
4310 sizeof (glink_eh_frame_fde_32
));
4314 template<int size
, bool big_endian
>
4316 Output_data_glink
<size
, big_endian
>::add_global_entry(const Symbol
* gsym
)
4318 std::pair
<typename
Global_entry_stub_entries::iterator
, bool> p
4319 = this->global_entry_stubs_
.insert(std::make_pair(gsym
, this->ge_size_
));
4321 this->ge_size_
+= 16;
4324 template<int size
, bool big_endian
>
4325 typename Output_data_glink
<size
, big_endian
>::Address
4326 Output_data_glink
<size
, big_endian
>::find_global_entry(const Symbol
* gsym
) const
4328 typename
Global_entry_stub_entries::const_iterator p
4329 = this->global_entry_stubs_
.find(gsym
);
4330 return p
== this->global_entry_stubs_
.end() ? invalid_address
: p
->second
;
4333 template<int size
, bool big_endian
>
4335 Output_data_glink
<size
, big_endian
>::set_final_data_size()
4337 unsigned int count
= this->targ_
->plt_entry_count();
4338 section_size_type total
= 0;
4344 // space for branch table
4345 total
+= 4 * (count
- 1);
4347 total
+= -total
& 15;
4348 total
+= this->pltresolve_size
;
4352 total
+= this->pltresolve_size
;
4354 // space for branch table
4356 if (this->targ_
->abiversion() < 2)
4360 total
+= 4 * (count
- 0x8000);
4364 this->end_branch_table_
= total
;
4365 total
= (total
+ 15) & -16;
4366 total
+= this->ge_size_
;
4368 this->set_data_size(total
);
4371 // Write out plt and long branch stub code.
4373 template<int size
, bool big_endian
>
4375 Stub_table
<size
, big_endian
>::do_write(Output_file
* of
)
4377 if (this->plt_call_stubs_
.empty()
4378 && this->long_branch_stubs_
.empty())
4381 const section_size_type start_off
= this->offset();
4382 const section_size_type off
= this->stub_offset();
4383 const section_size_type oview_size
=
4384 convert_to_section_size_type(this->data_size() - (off
- start_off
));
4385 unsigned char* const oview
= of
->get_output_view(off
, oview_size
);
4390 const Output_data_got_powerpc
<size
, big_endian
>* got
4391 = this->targ_
->got_section();
4392 Address got_os_addr
= got
->output_section()->address();
4394 if (!this->plt_call_stubs_
.empty())
4396 // The base address of the .plt section.
4397 Address plt_base
= this->targ_
->plt_section()->address();
4398 Address iplt_base
= invalid_address
;
4400 // Write out plt call stubs.
4401 typename
Plt_stub_entries::const_iterator cs
;
4402 for (cs
= this->plt_call_stubs_
.begin();
4403 cs
!= this->plt_call_stubs_
.end();
4407 Address pltoff
= this->plt_off(cs
, &is_iplt
);
4408 Address plt_addr
= pltoff
;
4411 if (iplt_base
== invalid_address
)
4412 iplt_base
= this->targ_
->iplt_section()->address();
4413 plt_addr
+= iplt_base
;
4416 plt_addr
+= plt_base
;
4417 const Powerpc_relobj
<size
, big_endian
>* ppcobj
= static_cast
4418 <const Powerpc_relobj
<size
, big_endian
>*>(cs
->first
.object_
);
4419 Address got_addr
= got_os_addr
+ ppcobj
->toc_base_offset();
4420 Address off
= plt_addr
- got_addr
;
4422 if (off
+ 0x80008000 > 0xffffffff || (off
& 7) != 0)
4423 gold_error(_("%s: linkage table error against `%s'"),
4424 cs
->first
.object_
->name().c_str(),
4425 cs
->first
.sym_
->demangled_name().c_str());
4427 bool plt_load_toc
= this->targ_
->abiversion() < 2;
4429 = plt_load_toc
&& parameters
->options().plt_static_chain();
4431 = plt_load_toc
&& this->targ_
->plt_thread_safe();
4432 bool use_fake_dep
= false;
4433 Address cmp_branch_off
= 0;
4436 unsigned int pltindex
4437 = ((pltoff
- this->targ_
->first_plt_entry_offset())
4438 / this->targ_
->plt_entry_size());
4440 = (this->targ_
->glink_section()->pltresolve_size
4442 if (pltindex
> 32768)
4443 glinkoff
+= (pltindex
- 32768) * 4;
4445 = this->targ_
->glink_section()->address() + glinkoff
;
4447 = (this->stub_address() + cs
->second
+ 24
4448 + 4 * (ha(off
) != 0)
4449 + 4 * (ha(off
+ 8 + 8 * static_chain
) != ha(off
))
4450 + 4 * static_chain
);
4451 cmp_branch_off
= to
- from
;
4452 use_fake_dep
= cmp_branch_off
+ (1 << 25) >= (1 << 26);
4455 p
= oview
+ cs
->second
;
4458 write_insn
<big_endian
>(p
, std_2_1
+ this->targ_
->stk_toc());
4462 write_insn
<big_endian
>(p
, addis_11_2
+ ha(off
));
4464 write_insn
<big_endian
>(p
, ld_12_11
+ l(off
));
4469 write_insn
<big_endian
>(p
, addis_12_2
+ ha(off
));
4471 write_insn
<big_endian
>(p
, ld_12_12
+ l(off
));
4475 && ha(off
+ 8 + 8 * static_chain
) != ha(off
))
4477 write_insn
<big_endian
>(p
, addi_11_11
+ l(off
));
4481 write_insn
<big_endian
>(p
, mtctr_12
);
4487 write_insn
<big_endian
>(p
, xor_2_12_12
);
4489 write_insn
<big_endian
>(p
, add_11_11_2
);
4492 write_insn
<big_endian
>(p
, ld_2_11
+ l(off
+ 8));
4496 write_insn
<big_endian
>(p
, ld_11_11
+ l(off
+ 16));
4503 write_insn
<big_endian
>(p
, std_2_1
+ this->targ_
->stk_toc());
4505 write_insn
<big_endian
>(p
, ld_12_2
+ l(off
));
4508 && ha(off
+ 8 + 8 * static_chain
) != ha(off
))
4510 write_insn
<big_endian
>(p
, addi_2_2
+ l(off
));
4514 write_insn
<big_endian
>(p
, mtctr_12
);
4520 write_insn
<big_endian
>(p
, xor_11_12_12
);
4522 write_insn
<big_endian
>(p
, add_2_2_11
);
4527 write_insn
<big_endian
>(p
, ld_11_2
+ l(off
+ 16));
4530 write_insn
<big_endian
>(p
, ld_2_2
+ l(off
+ 8));
4534 if (thread_safe
&& !use_fake_dep
)
4536 write_insn
<big_endian
>(p
, cmpldi_2_0
);
4538 write_insn
<big_endian
>(p
, bnectr_p4
);
4540 write_insn
<big_endian
>(p
, b
| (cmp_branch_off
& 0x3fffffc));
4543 write_insn
<big_endian
>(p
, bctr
);
4547 // Write out long branch stubs.
4548 typename
Branch_stub_entries::const_iterator bs
;
4549 for (bs
= this->long_branch_stubs_
.begin();
4550 bs
!= this->long_branch_stubs_
.end();
4553 if (bs
->first
.save_res_
)
4555 p
= oview
+ this->plt_size_
+ bs
->second
;
4556 Address loc
= this->stub_address() + this->plt_size_
+ bs
->second
;
4557 Address delta
= bs
->first
.dest_
- loc
;
4558 if (delta
+ (1 << 25) < 2 << 25)
4559 write_insn
<big_endian
>(p
, b
| (delta
& 0x3fffffc));
4563 = this->targ_
->find_branch_lookup_table(bs
->first
.dest_
);
4564 gold_assert(brlt_addr
!= invalid_address
);
4565 brlt_addr
+= this->targ_
->brlt_section()->address();
4566 Address got_addr
= got_os_addr
+ bs
->first
.toc_base_off_
;
4567 Address brltoff
= brlt_addr
- got_addr
;
4568 if (ha(brltoff
) == 0)
4570 write_insn
<big_endian
>(p
, ld_12_2
+ l(brltoff
)), p
+= 4;
4574 write_insn
<big_endian
>(p
, addis_12_2
+ ha(brltoff
)), p
+= 4;
4575 write_insn
<big_endian
>(p
, ld_12_12
+ l(brltoff
)), p
+= 4;
4577 write_insn
<big_endian
>(p
, mtctr_12
), p
+= 4;
4578 write_insn
<big_endian
>(p
, bctr
);
4584 if (!this->plt_call_stubs_
.empty())
4586 // The base address of the .plt section.
4587 Address plt_base
= this->targ_
->plt_section()->address();
4588 Address iplt_base
= invalid_address
;
4589 // The address of _GLOBAL_OFFSET_TABLE_.
4590 Address g_o_t
= invalid_address
;
4592 // Write out plt call stubs.
4593 typename
Plt_stub_entries::const_iterator cs
;
4594 for (cs
= this->plt_call_stubs_
.begin();
4595 cs
!= this->plt_call_stubs_
.end();
4599 Address plt_addr
= this->plt_off(cs
, &is_iplt
);
4602 if (iplt_base
== invalid_address
)
4603 iplt_base
= this->targ_
->iplt_section()->address();
4604 plt_addr
+= iplt_base
;
4607 plt_addr
+= plt_base
;
4609 p
= oview
+ cs
->second
;
4610 if (parameters
->options().output_is_position_independent())
4613 const Powerpc_relobj
<size
, big_endian
>* ppcobj
4614 = (static_cast<const Powerpc_relobj
<size
, big_endian
>*>
4615 (cs
->first
.object_
));
4616 if (ppcobj
!= NULL
&& cs
->first
.addend_
>= 32768)
4618 unsigned int got2
= ppcobj
->got2_shndx();
4619 got_addr
= ppcobj
->get_output_section_offset(got2
);
4620 gold_assert(got_addr
!= invalid_address
);
4621 got_addr
+= (ppcobj
->output_section(got2
)->address()
4622 + cs
->first
.addend_
);
4626 if (g_o_t
== invalid_address
)
4628 const Output_data_got_powerpc
<size
, big_endian
>* got
4629 = this->targ_
->got_section();
4630 g_o_t
= got
->address() + got
->g_o_t();
4635 Address off
= plt_addr
- got_addr
;
4638 write_insn
<big_endian
>(p
+ 0, lwz_11_30
+ l(off
));
4639 write_insn
<big_endian
>(p
+ 4, mtctr_11
);
4640 write_insn
<big_endian
>(p
+ 8, bctr
);
4644 write_insn
<big_endian
>(p
+ 0, addis_11_30
+ ha(off
));
4645 write_insn
<big_endian
>(p
+ 4, lwz_11_11
+ l(off
));
4646 write_insn
<big_endian
>(p
+ 8, mtctr_11
);
4647 write_insn
<big_endian
>(p
+ 12, bctr
);
4652 write_insn
<big_endian
>(p
+ 0, lis_11
+ ha(plt_addr
));
4653 write_insn
<big_endian
>(p
+ 4, lwz_11_11
+ l(plt_addr
));
4654 write_insn
<big_endian
>(p
+ 8, mtctr_11
);
4655 write_insn
<big_endian
>(p
+ 12, bctr
);
4660 // Write out long branch stubs.
4661 typename
Branch_stub_entries::const_iterator bs
;
4662 for (bs
= this->long_branch_stubs_
.begin();
4663 bs
!= this->long_branch_stubs_
.end();
4666 if (bs
->first
.save_res_
)
4668 p
= oview
+ this->plt_size_
+ bs
->second
;
4669 Address loc
= this->stub_address() + this->plt_size_
+ bs
->second
;
4670 Address delta
= bs
->first
.dest_
- loc
;
4671 if (delta
+ (1 << 25) < 2 << 25)
4672 write_insn
<big_endian
>(p
, b
| (delta
& 0x3fffffc));
4673 else if (!parameters
->options().output_is_position_independent())
4675 write_insn
<big_endian
>(p
+ 0, lis_12
+ ha(bs
->first
.dest_
));
4676 write_insn
<big_endian
>(p
+ 4, addi_12_12
+ l(bs
->first
.dest_
));
4677 write_insn
<big_endian
>(p
+ 8, mtctr_12
);
4678 write_insn
<big_endian
>(p
+ 12, bctr
);
4683 write_insn
<big_endian
>(p
+ 0, mflr_0
);
4684 write_insn
<big_endian
>(p
+ 4, bcl_20_31
);
4685 write_insn
<big_endian
>(p
+ 8, mflr_12
);
4686 write_insn
<big_endian
>(p
+ 12, addis_12_12
+ ha(delta
));
4687 write_insn
<big_endian
>(p
+ 16, addi_12_12
+ l(delta
));
4688 write_insn
<big_endian
>(p
+ 20, mtlr_0
);
4689 write_insn
<big_endian
>(p
+ 24, mtctr_12
);
4690 write_insn
<big_endian
>(p
+ 28, bctr
);
4694 if (this->need_save_res_
)
4696 p
= oview
+ this->plt_size_
+ this->branch_size_
;
4697 memcpy (p
, this->targ_
->savres_section()->contents(),
4698 this->targ_
->savres_section()->data_size());
4702 // Write out .glink.
4704 template<int size
, bool big_endian
>
4706 Output_data_glink
<size
, big_endian
>::do_write(Output_file
* of
)
4708 const section_size_type off
= this->offset();
4709 const section_size_type oview_size
=
4710 convert_to_section_size_type(this->data_size());
4711 unsigned char* const oview
= of
->get_output_view(off
, oview_size
);
4714 // The base address of the .plt section.
4715 typedef typename
elfcpp::Elf_types
<size
>::Elf_Addr Address
;
4716 Address plt_base
= this->targ_
->plt_section()->address();
4720 if (this->end_branch_table_
!= 0)
4722 // Write pltresolve stub.
4724 Address after_bcl
= this->address() + 16;
4725 Address pltoff
= plt_base
- after_bcl
;
4727 elfcpp::Swap
<64, big_endian
>::writeval(p
, pltoff
), p
+= 8;
4729 if (this->targ_
->abiversion() < 2)
4731 write_insn
<big_endian
>(p
, mflr_12
), p
+= 4;
4732 write_insn
<big_endian
>(p
, bcl_20_31
), p
+= 4;
4733 write_insn
<big_endian
>(p
, mflr_11
), p
+= 4;
4734 write_insn
<big_endian
>(p
, ld_2_11
+ l(-16)), p
+= 4;
4735 write_insn
<big_endian
>(p
, mtlr_12
), p
+= 4;
4736 write_insn
<big_endian
>(p
, add_11_2_11
), p
+= 4;
4737 write_insn
<big_endian
>(p
, ld_12_11
+ 0), p
+= 4;
4738 write_insn
<big_endian
>(p
, ld_2_11
+ 8), p
+= 4;
4739 write_insn
<big_endian
>(p
, mtctr_12
), p
+= 4;
4740 write_insn
<big_endian
>(p
, ld_11_11
+ 16), p
+= 4;
4744 write_insn
<big_endian
>(p
, mflr_0
), p
+= 4;
4745 write_insn
<big_endian
>(p
, bcl_20_31
), p
+= 4;
4746 write_insn
<big_endian
>(p
, mflr_11
), p
+= 4;
4747 write_insn
<big_endian
>(p
, ld_2_11
+ l(-16)), p
+= 4;
4748 write_insn
<big_endian
>(p
, mtlr_0
), p
+= 4;
4749 write_insn
<big_endian
>(p
, sub_12_12_11
), p
+= 4;
4750 write_insn
<big_endian
>(p
, add_11_2_11
), p
+= 4;
4751 write_insn
<big_endian
>(p
, addi_0_12
+ l(-48)), p
+= 4;
4752 write_insn
<big_endian
>(p
, ld_12_11
+ 0), p
+= 4;
4753 write_insn
<big_endian
>(p
, srdi_0_0_2
), p
+= 4;
4754 write_insn
<big_endian
>(p
, mtctr_12
), p
+= 4;
4755 write_insn
<big_endian
>(p
, ld_11_11
+ 8), p
+= 4;
4757 write_insn
<big_endian
>(p
, bctr
), p
+= 4;
4758 while (p
< oview
+ this->pltresolve_size
)
4759 write_insn
<big_endian
>(p
, nop
), p
+= 4;
4761 // Write lazy link call stubs.
4763 while (p
< oview
+ this->end_branch_table_
)
4765 if (this->targ_
->abiversion() < 2)
4769 write_insn
<big_endian
>(p
, li_0_0
+ indx
), p
+= 4;
4773 write_insn
<big_endian
>(p
, lis_0
+ hi(indx
)), p
+= 4;
4774 write_insn
<big_endian
>(p
, ori_0_0_0
+ l(indx
)), p
+= 4;
4777 uint32_t branch_off
= 8 - (p
- oview
);
4778 write_insn
<big_endian
>(p
, b
+ (branch_off
& 0x3fffffc)), p
+= 4;
4783 Address plt_base
= this->targ_
->plt_section()->address();
4784 Address iplt_base
= invalid_address
;
4785 unsigned int global_entry_off
= (this->end_branch_table_
+ 15) & -16;
4786 Address global_entry_base
= this->address() + global_entry_off
;
4787 typename
Global_entry_stub_entries::const_iterator ge
;
4788 for (ge
= this->global_entry_stubs_
.begin();
4789 ge
!= this->global_entry_stubs_
.end();
4792 p
= oview
+ global_entry_off
+ ge
->second
;
4793 Address plt_addr
= ge
->first
->plt_offset();
4794 if (ge
->first
->type() == elfcpp::STT_GNU_IFUNC
4795 && ge
->first
->can_use_relative_reloc(false))
4797 if (iplt_base
== invalid_address
)
4798 iplt_base
= this->targ_
->iplt_section()->address();
4799 plt_addr
+= iplt_base
;
4802 plt_addr
+= plt_base
;
4803 Address my_addr
= global_entry_base
+ ge
->second
;
4804 Address off
= plt_addr
- my_addr
;
4806 if (off
+ 0x80008000 > 0xffffffff || (off
& 3) != 0)
4807 gold_error(_("%s: linkage table error against `%s'"),
4808 ge
->first
->object()->name().c_str(),
4809 ge
->first
->demangled_name().c_str());
4811 write_insn
<big_endian
>(p
, addis_12_12
+ ha(off
)), p
+= 4;
4812 write_insn
<big_endian
>(p
, ld_12_12
+ l(off
)), p
+= 4;
4813 write_insn
<big_endian
>(p
, mtctr_12
), p
+= 4;
4814 write_insn
<big_endian
>(p
, bctr
);
4819 const Output_data_got_powerpc
<size
, big_endian
>* got
4820 = this->targ_
->got_section();
4821 // The address of _GLOBAL_OFFSET_TABLE_.
4822 Address g_o_t
= got
->address() + got
->g_o_t();
4824 // Write out pltresolve branch table.
4826 unsigned int the_end
= oview_size
- this->pltresolve_size
;
4827 unsigned char* end_p
= oview
+ the_end
;
4828 while (p
< end_p
- 8 * 4)
4829 write_insn
<big_endian
>(p
, b
+ end_p
- p
), p
+= 4;
4831 write_insn
<big_endian
>(p
, nop
), p
+= 4;
4833 // Write out pltresolve call stub.
4834 if (parameters
->options().output_is_position_independent())
4836 Address res0_off
= 0;
4837 Address after_bcl_off
= the_end
+ 12;
4838 Address bcl_res0
= after_bcl_off
- res0_off
;
4840 write_insn
<big_endian
>(p
+ 0, addis_11_11
+ ha(bcl_res0
));
4841 write_insn
<big_endian
>(p
+ 4, mflr_0
);
4842 write_insn
<big_endian
>(p
+ 8, bcl_20_31
);
4843 write_insn
<big_endian
>(p
+ 12, addi_11_11
+ l(bcl_res0
));
4844 write_insn
<big_endian
>(p
+ 16, mflr_12
);
4845 write_insn
<big_endian
>(p
+ 20, mtlr_0
);
4846 write_insn
<big_endian
>(p
+ 24, sub_11_11_12
);
4848 Address got_bcl
= g_o_t
+ 4 - (after_bcl_off
+ this->address());
4850 write_insn
<big_endian
>(p
+ 28, addis_12_12
+ ha(got_bcl
));
4851 if (ha(got_bcl
) == ha(got_bcl
+ 4))
4853 write_insn
<big_endian
>(p
+ 32, lwz_0_12
+ l(got_bcl
));
4854 write_insn
<big_endian
>(p
+ 36, lwz_12_12
+ l(got_bcl
+ 4));
4858 write_insn
<big_endian
>(p
+ 32, lwzu_0_12
+ l(got_bcl
));
4859 write_insn
<big_endian
>(p
+ 36, lwz_12_12
+ 4);
4861 write_insn
<big_endian
>(p
+ 40, mtctr_0
);
4862 write_insn
<big_endian
>(p
+ 44, add_0_11_11
);
4863 write_insn
<big_endian
>(p
+ 48, add_11_0_11
);
4864 write_insn
<big_endian
>(p
+ 52, bctr
);
4865 write_insn
<big_endian
>(p
+ 56, nop
);
4866 write_insn
<big_endian
>(p
+ 60, nop
);
4870 Address res0
= this->address();
4872 write_insn
<big_endian
>(p
+ 0, lis_12
+ ha(g_o_t
+ 4));
4873 write_insn
<big_endian
>(p
+ 4, addis_11_11
+ ha(-res0
));
4874 if (ha(g_o_t
+ 4) == ha(g_o_t
+ 8))
4875 write_insn
<big_endian
>(p
+ 8, lwz_0_12
+ l(g_o_t
+ 4));
4877 write_insn
<big_endian
>(p
+ 8, lwzu_0_12
+ l(g_o_t
+ 4));
4878 write_insn
<big_endian
>(p
+ 12, addi_11_11
+ l(-res0
));
4879 write_insn
<big_endian
>(p
+ 16, mtctr_0
);
4880 write_insn
<big_endian
>(p
+ 20, add_0_11_11
);
4881 if (ha(g_o_t
+ 4) == ha(g_o_t
+ 8))
4882 write_insn
<big_endian
>(p
+ 24, lwz_12_12
+ l(g_o_t
+ 8));
4884 write_insn
<big_endian
>(p
+ 24, lwz_12_12
+ 4);
4885 write_insn
<big_endian
>(p
+ 28, add_11_0_11
);
4886 write_insn
<big_endian
>(p
+ 32, bctr
);
4887 write_insn
<big_endian
>(p
+ 36, nop
);
4888 write_insn
<big_endian
>(p
+ 40, nop
);
4889 write_insn
<big_endian
>(p
+ 44, nop
);
4890 write_insn
<big_endian
>(p
+ 48, nop
);
4891 write_insn
<big_endian
>(p
+ 52, nop
);
4892 write_insn
<big_endian
>(p
+ 56, nop
);
4893 write_insn
<big_endian
>(p
+ 60, nop
);
4898 of
->write_output_view(off
, oview_size
, oview
);
4902 // A class to handle linker generated save/restore functions.
4904 template<int size
, bool big_endian
>
4905 class Output_data_save_res
: public Output_section_data_build
4908 Output_data_save_res(Symbol_table
* symtab
);
4910 const unsigned char*
4917 // Write to a map file.
4919 do_print_to_mapfile(Mapfile
* mapfile
) const
4920 { mapfile
->print_output_data(this, _("** save/restore")); }
4923 do_write(Output_file
*);
4926 // The maximum size of save/restore contents.
4927 static const unsigned int savres_max
= 218*4;
4930 savres_define(Symbol_table
* symtab
,
4932 unsigned int lo
, unsigned int hi
,
4933 unsigned char* write_ent(unsigned char*, int),
4934 unsigned char* write_tail(unsigned char*, int));
4936 unsigned char *contents_
;
4939 template<bool big_endian
>
4940 static unsigned char*
4941 savegpr0(unsigned char* p
, int r
)
4943 uint32_t insn
= std_0_1
+ (r
<< 21) + (1 << 16) - (32 - r
) * 8;
4944 write_insn
<big_endian
>(p
, insn
);
4948 template<bool big_endian
>
4949 static unsigned char*
4950 savegpr0_tail(unsigned char* p
, int r
)
4952 p
= savegpr0
<big_endian
>(p
, r
);
4953 uint32_t insn
= std_0_1
+ 16;
4954 write_insn
<big_endian
>(p
, insn
);
4956 write_insn
<big_endian
>(p
, blr
);
4960 template<bool big_endian
>
4961 static unsigned char*
4962 restgpr0(unsigned char* p
, int r
)
4964 uint32_t insn
= ld_0_1
+ (r
<< 21) + (1 << 16) - (32 - r
) * 8;
4965 write_insn
<big_endian
>(p
, insn
);
4969 template<bool big_endian
>
4970 static unsigned char*
4971 restgpr0_tail(unsigned char* p
, int r
)
4973 uint32_t insn
= ld_0_1
+ 16;
4974 write_insn
<big_endian
>(p
, insn
);
4976 p
= restgpr0
<big_endian
>(p
, r
);
4977 write_insn
<big_endian
>(p
, mtlr_0
);
4981 p
= restgpr0
<big_endian
>(p
, 30);
4982 p
= restgpr0
<big_endian
>(p
, 31);
4984 write_insn
<big_endian
>(p
, blr
);
4988 template<bool big_endian
>
4989 static unsigned char*
4990 savegpr1(unsigned char* p
, int r
)
4992 uint32_t insn
= std_0_12
+ (r
<< 21) + (1 << 16) - (32 - r
) * 8;
4993 write_insn
<big_endian
>(p
, insn
);
4997 template<bool big_endian
>
4998 static unsigned char*
4999 savegpr1_tail(unsigned char* p
, int r
)
5001 p
= savegpr1
<big_endian
>(p
, r
);
5002 write_insn
<big_endian
>(p
, blr
);
5006 template<bool big_endian
>
5007 static unsigned char*
5008 restgpr1(unsigned char* p
, int r
)
5010 uint32_t insn
= ld_0_12
+ (r
<< 21) + (1 << 16) - (32 - r
) * 8;
5011 write_insn
<big_endian
>(p
, insn
);
5015 template<bool big_endian
>
5016 static unsigned char*
5017 restgpr1_tail(unsigned char* p
, int r
)
5019 p
= restgpr1
<big_endian
>(p
, r
);
5020 write_insn
<big_endian
>(p
, blr
);
5024 template<bool big_endian
>
5025 static unsigned char*
5026 savefpr(unsigned char* p
, int r
)
5028 uint32_t insn
= stfd_0_1
+ (r
<< 21) + (1 << 16) - (32 - r
) * 8;
5029 write_insn
<big_endian
>(p
, insn
);
5033 template<bool big_endian
>
5034 static unsigned char*
5035 savefpr0_tail(unsigned char* p
, int r
)
5037 p
= savefpr
<big_endian
>(p
, r
);
5038 write_insn
<big_endian
>(p
, std_0_1
+ 16);
5040 write_insn
<big_endian
>(p
, blr
);
5044 template<bool big_endian
>
5045 static unsigned char*
5046 restfpr(unsigned char* p
, int r
)
5048 uint32_t insn
= lfd_0_1
+ (r
<< 21) + (1 << 16) - (32 - r
) * 8;
5049 write_insn
<big_endian
>(p
, insn
);
5053 template<bool big_endian
>
5054 static unsigned char*
5055 restfpr0_tail(unsigned char* p
, int r
)
5057 write_insn
<big_endian
>(p
, ld_0_1
+ 16);
5059 p
= restfpr
<big_endian
>(p
, r
);
5060 write_insn
<big_endian
>(p
, mtlr_0
);
5064 p
= restfpr
<big_endian
>(p
, 30);
5065 p
= restfpr
<big_endian
>(p
, 31);
5067 write_insn
<big_endian
>(p
, blr
);
5071 template<bool big_endian
>
5072 static unsigned char*
5073 savefpr1_tail(unsigned char* p
, int r
)
5075 p
= savefpr
<big_endian
>(p
, r
);
5076 write_insn
<big_endian
>(p
, blr
);
5080 template<bool big_endian
>
5081 static unsigned char*
5082 restfpr1_tail(unsigned char* p
, int r
)
5084 p
= restfpr
<big_endian
>(p
, r
);
5085 write_insn
<big_endian
>(p
, blr
);
5089 template<bool big_endian
>
5090 static unsigned char*
5091 savevr(unsigned char* p
, int r
)
5093 uint32_t insn
= li_12_0
+ (1 << 16) - (32 - r
) * 16;
5094 write_insn
<big_endian
>(p
, insn
);
5096 insn
= stvx_0_12_0
+ (r
<< 21);
5097 write_insn
<big_endian
>(p
, insn
);
5101 template<bool big_endian
>
5102 static unsigned char*
5103 savevr_tail(unsigned char* p
, int r
)
5105 p
= savevr
<big_endian
>(p
, r
);
5106 write_insn
<big_endian
>(p
, blr
);
5110 template<bool big_endian
>
5111 static unsigned char*
5112 restvr(unsigned char* p
, int r
)
5114 uint32_t insn
= li_12_0
+ (1 << 16) - (32 - r
) * 16;
5115 write_insn
<big_endian
>(p
, insn
);
5117 insn
= lvx_0_12_0
+ (r
<< 21);
5118 write_insn
<big_endian
>(p
, insn
);
5122 template<bool big_endian
>
5123 static unsigned char*
5124 restvr_tail(unsigned char* p
, int r
)
5126 p
= restvr
<big_endian
>(p
, r
);
5127 write_insn
<big_endian
>(p
, blr
);
5132 template<int size
, bool big_endian
>
5133 Output_data_save_res
<size
, big_endian
>::Output_data_save_res(
5134 Symbol_table
* symtab
)
5135 : Output_section_data_build(4),
5138 this->savres_define(symtab
,
5139 "_savegpr0_", 14, 31,
5140 savegpr0
<big_endian
>, savegpr0_tail
<big_endian
>);
5141 this->savres_define(symtab
,
5142 "_restgpr0_", 14, 29,
5143 restgpr0
<big_endian
>, restgpr0_tail
<big_endian
>);
5144 this->savres_define(symtab
,
5145 "_restgpr0_", 30, 31,
5146 restgpr0
<big_endian
>, restgpr0_tail
<big_endian
>);
5147 this->savres_define(symtab
,
5148 "_savegpr1_", 14, 31,
5149 savegpr1
<big_endian
>, savegpr1_tail
<big_endian
>);
5150 this->savres_define(symtab
,
5151 "_restgpr1_", 14, 31,
5152 restgpr1
<big_endian
>, restgpr1_tail
<big_endian
>);
5153 this->savres_define(symtab
,
5154 "_savefpr_", 14, 31,
5155 savefpr
<big_endian
>, savefpr0_tail
<big_endian
>);
5156 this->savres_define(symtab
,
5157 "_restfpr_", 14, 29,
5158 restfpr
<big_endian
>, restfpr0_tail
<big_endian
>);
5159 this->savres_define(symtab
,
5160 "_restfpr_", 30, 31,
5161 restfpr
<big_endian
>, restfpr0_tail
<big_endian
>);
5162 this->savres_define(symtab
,
5164 savefpr
<big_endian
>, savefpr1_tail
<big_endian
>);
5165 this->savres_define(symtab
,
5167 restfpr
<big_endian
>, restfpr1_tail
<big_endian
>);
5168 this->savres_define(symtab
,
5170 savevr
<big_endian
>, savevr_tail
<big_endian
>);
5171 this->savres_define(symtab
,
5173 restvr
<big_endian
>, restvr_tail
<big_endian
>);
5176 template<int size
, bool big_endian
>
5178 Output_data_save_res
<size
, big_endian
>::savres_define(
5179 Symbol_table
* symtab
,
5181 unsigned int lo
, unsigned int hi
,
5182 unsigned char* write_ent(unsigned char*, int),
5183 unsigned char* write_tail(unsigned char*, int))
5185 size_t len
= strlen(name
);
5186 bool writing
= false;
5189 memcpy(sym
, name
, len
);
5192 for (unsigned int i
= lo
; i
<= hi
; i
++)
5194 sym
[len
+ 0] = i
/ 10 + '0';
5195 sym
[len
+ 1] = i
% 10 + '0';
5196 Symbol
* gsym
= symtab
->lookup(sym
);
5197 bool refd
= gsym
!= NULL
&& gsym
->is_undefined();
5198 writing
= writing
|| refd
;
5201 if (this->contents_
== NULL
)
5202 this->contents_
= new unsigned char[this->savres_max
];
5204 section_size_type value
= this->current_data_size();
5205 unsigned char* p
= this->contents_
+ value
;
5207 p
= write_ent(p
, i
);
5209 p
= write_tail(p
, i
);
5210 section_size_type cur_size
= p
- this->contents_
;
5211 this->set_current_data_size(cur_size
);
5213 symtab
->define_in_output_data(sym
, NULL
, Symbol_table::PREDEFINED
,
5214 this, value
, cur_size
- value
,
5215 elfcpp::STT_FUNC
, elfcpp::STB_GLOBAL
,
5216 elfcpp::STV_HIDDEN
, 0, false, false);
5221 // Write out save/restore.
5223 template<int size
, bool big_endian
>
5225 Output_data_save_res
<size
, big_endian
>::do_write(Output_file
* of
)
5227 const section_size_type off
= this->offset();
5228 const section_size_type oview_size
=
5229 convert_to_section_size_type(this->data_size());
5230 unsigned char* const oview
= of
->get_output_view(off
, oview_size
);
5231 memcpy(oview
, this->contents_
, oview_size
);
5232 of
->write_output_view(off
, oview_size
, oview
);
5236 // Create the glink section.
5238 template<int size
, bool big_endian
>
5240 Target_powerpc
<size
, big_endian
>::make_glink_section(Layout
* layout
)
5242 if (this->glink_
== NULL
)
5244 this->glink_
= new Output_data_glink
<size
, big_endian
>(this);
5245 this->glink_
->add_eh_frame(layout
);
5246 layout
->add_output_section_data(".text", elfcpp::SHT_PROGBITS
,
5247 elfcpp::SHF_ALLOC
| elfcpp::SHF_EXECINSTR
,
5248 this->glink_
, ORDER_TEXT
, false);
5252 // Create a PLT entry for a global symbol.
5254 template<int size
, bool big_endian
>
5256 Target_powerpc
<size
, big_endian
>::make_plt_entry(Symbol_table
* symtab
,
5260 if (gsym
->type() == elfcpp::STT_GNU_IFUNC
5261 && gsym
->can_use_relative_reloc(false))
5263 if (this->iplt_
== NULL
)
5264 this->make_iplt_section(symtab
, layout
);
5265 this->iplt_
->add_ifunc_entry(gsym
);
5269 if (this->plt_
== NULL
)
5270 this->make_plt_section(symtab
, layout
);
5271 this->plt_
->add_entry(gsym
);
5275 // Make a PLT entry for a local STT_GNU_IFUNC symbol.
5277 template<int size
, bool big_endian
>
5279 Target_powerpc
<size
, big_endian
>::make_local_ifunc_plt_entry(
5280 Symbol_table
* symtab
,
5282 Sized_relobj_file
<size
, big_endian
>* relobj
,
5285 if (this->iplt_
== NULL
)
5286 this->make_iplt_section(symtab
, layout
);
5287 this->iplt_
->add_local_ifunc_entry(relobj
, r_sym
);
5290 // Return the number of entries in the PLT.
5292 template<int size
, bool big_endian
>
5294 Target_powerpc
<size
, big_endian
>::plt_entry_count() const
5296 if (this->plt_
== NULL
)
5298 return this->plt_
->entry_count();
5301 // Create a GOT entry for local dynamic __tls_get_addr calls.
5303 template<int size
, bool big_endian
>
5305 Target_powerpc
<size
, big_endian
>::tlsld_got_offset(
5306 Symbol_table
* symtab
,
5308 Sized_relobj_file
<size
, big_endian
>* object
)
5310 if (this->tlsld_got_offset_
== -1U)
5312 gold_assert(symtab
!= NULL
&& layout
!= NULL
&& object
!= NULL
);
5313 Reloc_section
* rela_dyn
= this->rela_dyn_section(layout
);
5314 Output_data_got_powerpc
<size
, big_endian
>* got
5315 = this->got_section(symtab
, layout
);
5316 unsigned int got_offset
= got
->add_constant_pair(0, 0);
5317 rela_dyn
->add_local(object
, 0, elfcpp::R_POWERPC_DTPMOD
, got
,
5319 this->tlsld_got_offset_
= got_offset
;
5321 return this->tlsld_got_offset_
;
5324 // Get the Reference_flags for a particular relocation.
5326 template<int size
, bool big_endian
>
5328 Target_powerpc
<size
, big_endian
>::Scan::get_reference_flags(
5329 unsigned int r_type
,
5330 const Target_powerpc
* target
)
5336 case elfcpp::R_POWERPC_NONE
:
5337 case elfcpp::R_POWERPC_GNU_VTINHERIT
:
5338 case elfcpp::R_POWERPC_GNU_VTENTRY
:
5339 case elfcpp::R_PPC64_TOC
:
5340 // No symbol reference.
5343 case elfcpp::R_PPC64_ADDR64
:
5344 case elfcpp::R_PPC64_UADDR64
:
5345 case elfcpp::R_POWERPC_ADDR32
:
5346 case elfcpp::R_POWERPC_UADDR32
:
5347 case elfcpp::R_POWERPC_ADDR16
:
5348 case elfcpp::R_POWERPC_UADDR16
:
5349 case elfcpp::R_POWERPC_ADDR16_LO
:
5350 case elfcpp::R_POWERPC_ADDR16_HI
:
5351 case elfcpp::R_POWERPC_ADDR16_HA
:
5352 ref
= Symbol::ABSOLUTE_REF
;
5355 case elfcpp::R_POWERPC_ADDR24
:
5356 case elfcpp::R_POWERPC_ADDR14
:
5357 case elfcpp::R_POWERPC_ADDR14_BRTAKEN
:
5358 case elfcpp::R_POWERPC_ADDR14_BRNTAKEN
:
5359 ref
= Symbol::FUNCTION_CALL
| Symbol::ABSOLUTE_REF
;
5362 case elfcpp::R_PPC64_REL64
:
5363 case elfcpp::R_POWERPC_REL32
:
5364 case elfcpp::R_PPC_LOCAL24PC
:
5365 case elfcpp::R_POWERPC_REL16
:
5366 case elfcpp::R_POWERPC_REL16_LO
:
5367 case elfcpp::R_POWERPC_REL16_HI
:
5368 case elfcpp::R_POWERPC_REL16_HA
:
5369 ref
= Symbol::RELATIVE_REF
;
5372 case elfcpp::R_POWERPC_REL24
:
5373 case elfcpp::R_PPC_PLTREL24
:
5374 case elfcpp::R_POWERPC_REL14
:
5375 case elfcpp::R_POWERPC_REL14_BRTAKEN
:
5376 case elfcpp::R_POWERPC_REL14_BRNTAKEN
:
5377 ref
= Symbol::FUNCTION_CALL
| Symbol::RELATIVE_REF
;
5380 case elfcpp::R_POWERPC_GOT16
:
5381 case elfcpp::R_POWERPC_GOT16_LO
:
5382 case elfcpp::R_POWERPC_GOT16_HI
:
5383 case elfcpp::R_POWERPC_GOT16_HA
:
5384 case elfcpp::R_PPC64_GOT16_DS
:
5385 case elfcpp::R_PPC64_GOT16_LO_DS
:
5386 case elfcpp::R_PPC64_TOC16
:
5387 case elfcpp::R_PPC64_TOC16_LO
:
5388 case elfcpp::R_PPC64_TOC16_HI
:
5389 case elfcpp::R_PPC64_TOC16_HA
:
5390 case elfcpp::R_PPC64_TOC16_DS
:
5391 case elfcpp::R_PPC64_TOC16_LO_DS
:
5392 ref
= Symbol::RELATIVE_REF
;
5395 case elfcpp::R_POWERPC_GOT_TPREL16
:
5396 case elfcpp::R_POWERPC_TLS
:
5397 ref
= Symbol::TLS_REF
;
5400 case elfcpp::R_POWERPC_COPY
:
5401 case elfcpp::R_POWERPC_GLOB_DAT
:
5402 case elfcpp::R_POWERPC_JMP_SLOT
:
5403 case elfcpp::R_POWERPC_RELATIVE
:
5404 case elfcpp::R_POWERPC_DTPMOD
:
5406 // Not expected. We will give an error later.
5410 if (size
== 64 && target
->abiversion() < 2)
5411 ref
|= Symbol::FUNC_DESC_ABI
;
5415 // Report an unsupported relocation against a local symbol.
5417 template<int size
, bool big_endian
>
5419 Target_powerpc
<size
, big_endian
>::Scan::unsupported_reloc_local(
5420 Sized_relobj_file
<size
, big_endian
>* object
,
5421 unsigned int r_type
)
5423 gold_error(_("%s: unsupported reloc %u against local symbol"),
5424 object
->name().c_str(), r_type
);
5427 // We are about to emit a dynamic relocation of type R_TYPE. If the
5428 // dynamic linker does not support it, issue an error.
5430 template<int size
, bool big_endian
>
5432 Target_powerpc
<size
, big_endian
>::Scan::check_non_pic(Relobj
* object
,
5433 unsigned int r_type
)
5435 gold_assert(r_type
!= elfcpp::R_POWERPC_NONE
);
5437 // These are the relocation types supported by glibc for both 32-bit
5438 // and 64-bit powerpc.
5441 case elfcpp::R_POWERPC_NONE
:
5442 case elfcpp::R_POWERPC_RELATIVE
:
5443 case elfcpp::R_POWERPC_GLOB_DAT
:
5444 case elfcpp::R_POWERPC_DTPMOD
:
5445 case elfcpp::R_POWERPC_DTPREL
:
5446 case elfcpp::R_POWERPC_TPREL
:
5447 case elfcpp::R_POWERPC_JMP_SLOT
:
5448 case elfcpp::R_POWERPC_COPY
:
5449 case elfcpp::R_POWERPC_IRELATIVE
:
5450 case elfcpp::R_POWERPC_ADDR32
:
5451 case elfcpp::R_POWERPC_UADDR32
:
5452 case elfcpp::R_POWERPC_ADDR24
:
5453 case elfcpp::R_POWERPC_ADDR16
:
5454 case elfcpp::R_POWERPC_UADDR16
:
5455 case elfcpp::R_POWERPC_ADDR16_LO
:
5456 case elfcpp::R_POWERPC_ADDR16_HI
:
5457 case elfcpp::R_POWERPC_ADDR16_HA
:
5458 case elfcpp::R_POWERPC_ADDR14
:
5459 case elfcpp::R_POWERPC_ADDR14_BRTAKEN
:
5460 case elfcpp::R_POWERPC_ADDR14_BRNTAKEN
:
5461 case elfcpp::R_POWERPC_REL32
:
5462 case elfcpp::R_POWERPC_REL24
:
5463 case elfcpp::R_POWERPC_TPREL16
:
5464 case elfcpp::R_POWERPC_TPREL16_LO
:
5465 case elfcpp::R_POWERPC_TPREL16_HI
:
5466 case elfcpp::R_POWERPC_TPREL16_HA
:
5477 // These are the relocation types supported only on 64-bit.
5478 case elfcpp::R_PPC64_ADDR64
:
5479 case elfcpp::R_PPC64_UADDR64
:
5480 case elfcpp::R_PPC64_JMP_IREL
:
5481 case elfcpp::R_PPC64_ADDR16_DS
:
5482 case elfcpp::R_PPC64_ADDR16_LO_DS
:
5483 case elfcpp::R_PPC64_ADDR16_HIGH
:
5484 case elfcpp::R_PPC64_ADDR16_HIGHA
:
5485 case elfcpp::R_PPC64_ADDR16_HIGHER
:
5486 case elfcpp::R_PPC64_ADDR16_HIGHEST
:
5487 case elfcpp::R_PPC64_ADDR16_HIGHERA
:
5488 case elfcpp::R_PPC64_ADDR16_HIGHESTA
:
5489 case elfcpp::R_PPC64_REL64
:
5490 case elfcpp::R_POWERPC_ADDR30
:
5491 case elfcpp::R_PPC64_TPREL16_DS
:
5492 case elfcpp::R_PPC64_TPREL16_LO_DS
:
5493 case elfcpp::R_PPC64_TPREL16_HIGH
:
5494 case elfcpp::R_PPC64_TPREL16_HIGHA
:
5495 case elfcpp::R_PPC64_TPREL16_HIGHER
:
5496 case elfcpp::R_PPC64_TPREL16_HIGHEST
:
5497 case elfcpp::R_PPC64_TPREL16_HIGHERA
:
5498 case elfcpp::R_PPC64_TPREL16_HIGHESTA
:
5509 // These are the relocation types supported only on 32-bit.
5510 // ??? glibc ld.so doesn't need to support these.
5511 case elfcpp::R_POWERPC_DTPREL16
:
5512 case elfcpp::R_POWERPC_DTPREL16_LO
:
5513 case elfcpp::R_POWERPC_DTPREL16_HI
:
5514 case elfcpp::R_POWERPC_DTPREL16_HA
:
5522 // This prevents us from issuing more than one error per reloc
5523 // section. But we can still wind up issuing more than one
5524 // error per object file.
5525 if (this->issued_non_pic_error_
)
5527 gold_assert(parameters
->options().output_is_position_independent());
5528 object
->error(_("requires unsupported dynamic reloc; "
5529 "recompile with -fPIC"));
5530 this->issued_non_pic_error_
= true;
5534 // Return whether we need to make a PLT entry for a relocation of the
5535 // given type against a STT_GNU_IFUNC symbol.
5537 template<int size
, bool big_endian
>
5539 Target_powerpc
<size
, big_endian
>::Scan::reloc_needs_plt_for_ifunc(
5540 Target_powerpc
<size
, big_endian
>* target
,
5541 Sized_relobj_file
<size
, big_endian
>* object
,
5542 unsigned int r_type
,
5545 // In non-pic code any reference will resolve to the plt call stub
5546 // for the ifunc symbol.
5547 if ((size
== 32 || target
->abiversion() >= 2)
5548 && !parameters
->options().output_is_position_independent())
5553 // Word size refs from data sections are OK, but don't need a PLT entry.
5554 case elfcpp::R_POWERPC_ADDR32
:
5555 case elfcpp::R_POWERPC_UADDR32
:
5560 case elfcpp::R_PPC64_ADDR64
:
5561 case elfcpp::R_PPC64_UADDR64
:
5566 // GOT refs are good, but also don't need a PLT entry.
5567 case elfcpp::R_POWERPC_GOT16
:
5568 case elfcpp::R_POWERPC_GOT16_LO
:
5569 case elfcpp::R_POWERPC_GOT16_HI
:
5570 case elfcpp::R_POWERPC_GOT16_HA
:
5571 case elfcpp::R_PPC64_GOT16_DS
:
5572 case elfcpp::R_PPC64_GOT16_LO_DS
:
5575 // Function calls are good, and these do need a PLT entry.
5576 case elfcpp::R_POWERPC_ADDR24
:
5577 case elfcpp::R_POWERPC_ADDR14
:
5578 case elfcpp::R_POWERPC_ADDR14_BRTAKEN
:
5579 case elfcpp::R_POWERPC_ADDR14_BRNTAKEN
:
5580 case elfcpp::R_POWERPC_REL24
:
5581 case elfcpp::R_PPC_PLTREL24
:
5582 case elfcpp::R_POWERPC_REL14
:
5583 case elfcpp::R_POWERPC_REL14_BRTAKEN
:
5584 case elfcpp::R_POWERPC_REL14_BRNTAKEN
:
5591 // Anything else is a problem.
5592 // If we are building a static executable, the libc startup function
5593 // responsible for applying indirect function relocations is going
5594 // to complain about the reloc type.
5595 // If we are building a dynamic executable, we will have a text
5596 // relocation. The dynamic loader will set the text segment
5597 // writable and non-executable to apply text relocations. So we'll
5598 // segfault when trying to run the indirection function to resolve
5601 gold_error(_("%s: unsupported reloc %u for IFUNC symbol"),
5602 object
->name().c_str(), r_type
);
5606 // Scan a relocation for a local symbol.
5608 template<int size
, bool big_endian
>
5610 Target_powerpc
<size
, big_endian
>::Scan::local(
5611 Symbol_table
* symtab
,
5613 Target_powerpc
<size
, big_endian
>* target
,
5614 Sized_relobj_file
<size
, big_endian
>* object
,
5615 unsigned int data_shndx
,
5616 Output_section
* output_section
,
5617 const elfcpp::Rela
<size
, big_endian
>& reloc
,
5618 unsigned int r_type
,
5619 const elfcpp::Sym
<size
, big_endian
>& lsym
,
5622 this->maybe_skip_tls_get_addr_call(r_type
, NULL
);
5624 if ((size
== 64 && r_type
== elfcpp::R_PPC64_TLSGD
)
5625 || (size
== 32 && r_type
== elfcpp::R_PPC_TLSGD
))
5627 this->expect_tls_get_addr_call();
5628 const tls::Tls_optimization tls_type
= target
->optimize_tls_gd(true);
5629 if (tls_type
!= tls::TLSOPT_NONE
)
5630 this->skip_next_tls_get_addr_call();
5632 else if ((size
== 64 && r_type
== elfcpp::R_PPC64_TLSLD
)
5633 || (size
== 32 && r_type
== elfcpp::R_PPC_TLSLD
))
5635 this->expect_tls_get_addr_call();
5636 const tls::Tls_optimization tls_type
= target
->optimize_tls_ld();
5637 if (tls_type
!= tls::TLSOPT_NONE
)
5638 this->skip_next_tls_get_addr_call();
5641 Powerpc_relobj
<size
, big_endian
>* ppc_object
5642 = static_cast<Powerpc_relobj
<size
, big_endian
>*>(object
);
5647 && data_shndx
== ppc_object
->opd_shndx()
5648 && r_type
== elfcpp::R_PPC64_ADDR64
)
5649 ppc_object
->set_opd_discard(reloc
.get_r_offset());
5653 // A local STT_GNU_IFUNC symbol may require a PLT entry.
5654 bool is_ifunc
= lsym
.get_st_type() == elfcpp::STT_GNU_IFUNC
;
5655 if (is_ifunc
&& this->reloc_needs_plt_for_ifunc(target
, object
, r_type
, true))
5657 unsigned int r_sym
= elfcpp::elf_r_sym
<size
>(reloc
.get_r_info());
5658 target
->push_branch(ppc_object
, data_shndx
, reloc
.get_r_offset(),
5659 r_type
, r_sym
, reloc
.get_r_addend());
5660 target
->make_local_ifunc_plt_entry(symtab
, layout
, object
, r_sym
);
5665 case elfcpp::R_POWERPC_NONE
:
5666 case elfcpp::R_POWERPC_GNU_VTINHERIT
:
5667 case elfcpp::R_POWERPC_GNU_VTENTRY
:
5668 case elfcpp::R_PPC64_TOCSAVE
:
5669 case elfcpp::R_POWERPC_TLS
:
5670 case elfcpp::R_PPC64_ENTRY
:
5673 case elfcpp::R_PPC64_TOC
:
5675 Output_data_got_powerpc
<size
, big_endian
>* got
5676 = target
->got_section(symtab
, layout
);
5677 if (parameters
->options().output_is_position_independent())
5679 Address off
= reloc
.get_r_offset();
5681 && target
->abiversion() < 2
5682 && data_shndx
== ppc_object
->opd_shndx()
5683 && ppc_object
->get_opd_discard(off
- 8))
5686 Reloc_section
* rela_dyn
= target
->rela_dyn_section(layout
);
5687 Powerpc_relobj
<size
, big_endian
>* symobj
= ppc_object
;
5688 rela_dyn
->add_output_section_relative(got
->output_section(),
5689 elfcpp::R_POWERPC_RELATIVE
,
5691 object
, data_shndx
, off
,
5692 symobj
->toc_base_offset());
5697 case elfcpp::R_PPC64_ADDR64
:
5698 case elfcpp::R_PPC64_UADDR64
:
5699 case elfcpp::R_POWERPC_ADDR32
:
5700 case elfcpp::R_POWERPC_UADDR32
:
5701 case elfcpp::R_POWERPC_ADDR24
:
5702 case elfcpp::R_POWERPC_ADDR16
:
5703 case elfcpp::R_POWERPC_ADDR16_LO
:
5704 case elfcpp::R_POWERPC_ADDR16_HI
:
5705 case elfcpp::R_POWERPC_ADDR16_HA
:
5706 case elfcpp::R_POWERPC_UADDR16
:
5707 case elfcpp::R_PPC64_ADDR16_HIGH
:
5708 case elfcpp::R_PPC64_ADDR16_HIGHA
:
5709 case elfcpp::R_PPC64_ADDR16_HIGHER
:
5710 case elfcpp::R_PPC64_ADDR16_HIGHERA
:
5711 case elfcpp::R_PPC64_ADDR16_HIGHEST
:
5712 case elfcpp::R_PPC64_ADDR16_HIGHESTA
:
5713 case elfcpp::R_PPC64_ADDR16_DS
:
5714 case elfcpp::R_PPC64_ADDR16_LO_DS
:
5715 case elfcpp::R_POWERPC_ADDR14
:
5716 case elfcpp::R_POWERPC_ADDR14_BRTAKEN
:
5717 case elfcpp::R_POWERPC_ADDR14_BRNTAKEN
:
5718 // If building a shared library (or a position-independent
5719 // executable), we need to create a dynamic relocation for
5721 if (parameters
->options().output_is_position_independent()
5722 || (size
== 64 && is_ifunc
&& target
->abiversion() < 2))
5724 Reloc_section
* rela_dyn
= target
->rela_dyn_section(symtab
, layout
,
5726 unsigned int r_sym
= elfcpp::elf_r_sym
<size
>(reloc
.get_r_info());
5727 if ((size
== 32 && r_type
== elfcpp::R_POWERPC_ADDR32
)
5728 || (size
== 64 && r_type
== elfcpp::R_PPC64_ADDR64
))
5730 unsigned int dynrel
= (is_ifunc
? elfcpp::R_POWERPC_IRELATIVE
5731 : elfcpp::R_POWERPC_RELATIVE
);
5732 rela_dyn
->add_local_relative(object
, r_sym
, dynrel
,
5733 output_section
, data_shndx
,
5734 reloc
.get_r_offset(),
5735 reloc
.get_r_addend(), false);
5737 else if (lsym
.get_st_type() != elfcpp::STT_SECTION
)
5739 check_non_pic(object
, r_type
);
5740 rela_dyn
->add_local(object
, r_sym
, r_type
, output_section
,
5741 data_shndx
, reloc
.get_r_offset(),
5742 reloc
.get_r_addend());
5746 gold_assert(lsym
.get_st_value() == 0);
5747 unsigned int shndx
= lsym
.get_st_shndx();
5749 shndx
= object
->adjust_sym_shndx(r_sym
, shndx
,
5752 object
->error(_("section symbol %u has bad shndx %u"),
5755 rela_dyn
->add_local_section(object
, shndx
, r_type
,
5756 output_section
, data_shndx
,
5757 reloc
.get_r_offset());
5762 case elfcpp::R_POWERPC_REL24
:
5763 case elfcpp::R_PPC_PLTREL24
:
5764 case elfcpp::R_PPC_LOCAL24PC
:
5765 case elfcpp::R_POWERPC_REL14
:
5766 case elfcpp::R_POWERPC_REL14_BRTAKEN
:
5767 case elfcpp::R_POWERPC_REL14_BRNTAKEN
:
5769 target
->push_branch(ppc_object
, data_shndx
, reloc
.get_r_offset(),
5770 r_type
, elfcpp::elf_r_sym
<size
>(reloc
.get_r_info()),
5771 reloc
.get_r_addend());
5774 case elfcpp::R_PPC64_REL64
:
5775 case elfcpp::R_POWERPC_REL32
:
5776 case elfcpp::R_POWERPC_REL16
:
5777 case elfcpp::R_POWERPC_REL16_LO
:
5778 case elfcpp::R_POWERPC_REL16_HI
:
5779 case elfcpp::R_POWERPC_REL16_HA
:
5780 case elfcpp::R_POWERPC_REL16DX_HA
:
5781 case elfcpp::R_POWERPC_SECTOFF
:
5782 case elfcpp::R_POWERPC_SECTOFF_LO
:
5783 case elfcpp::R_POWERPC_SECTOFF_HI
:
5784 case elfcpp::R_POWERPC_SECTOFF_HA
:
5785 case elfcpp::R_PPC64_SECTOFF_DS
:
5786 case elfcpp::R_PPC64_SECTOFF_LO_DS
:
5787 case elfcpp::R_POWERPC_TPREL16
:
5788 case elfcpp::R_POWERPC_TPREL16_LO
:
5789 case elfcpp::R_POWERPC_TPREL16_HI
:
5790 case elfcpp::R_POWERPC_TPREL16_HA
:
5791 case elfcpp::R_PPC64_TPREL16_DS
:
5792 case elfcpp::R_PPC64_TPREL16_LO_DS
:
5793 case elfcpp::R_PPC64_TPREL16_HIGH
:
5794 case elfcpp::R_PPC64_TPREL16_HIGHA
:
5795 case elfcpp::R_PPC64_TPREL16_HIGHER
:
5796 case elfcpp::R_PPC64_TPREL16_HIGHERA
:
5797 case elfcpp::R_PPC64_TPREL16_HIGHEST
:
5798 case elfcpp::R_PPC64_TPREL16_HIGHESTA
:
5799 case elfcpp::R_POWERPC_DTPREL16
:
5800 case elfcpp::R_POWERPC_DTPREL16_LO
:
5801 case elfcpp::R_POWERPC_DTPREL16_HI
:
5802 case elfcpp::R_POWERPC_DTPREL16_HA
:
5803 case elfcpp::R_PPC64_DTPREL16_DS
:
5804 case elfcpp::R_PPC64_DTPREL16_LO_DS
:
5805 case elfcpp::R_PPC64_DTPREL16_HIGH
:
5806 case elfcpp::R_PPC64_DTPREL16_HIGHA
:
5807 case elfcpp::R_PPC64_DTPREL16_HIGHER
:
5808 case elfcpp::R_PPC64_DTPREL16_HIGHERA
:
5809 case elfcpp::R_PPC64_DTPREL16_HIGHEST
:
5810 case elfcpp::R_PPC64_DTPREL16_HIGHESTA
:
5811 case elfcpp::R_PPC64_TLSGD
:
5812 case elfcpp::R_PPC64_TLSLD
:
5813 case elfcpp::R_PPC64_ADDR64_LOCAL
:
5816 case elfcpp::R_POWERPC_GOT16
:
5817 case elfcpp::R_POWERPC_GOT16_LO
:
5818 case elfcpp::R_POWERPC_GOT16_HI
:
5819 case elfcpp::R_POWERPC_GOT16_HA
:
5820 case elfcpp::R_PPC64_GOT16_DS
:
5821 case elfcpp::R_PPC64_GOT16_LO_DS
:
5823 // The symbol requires a GOT entry.
5824 Output_data_got_powerpc
<size
, big_endian
>* got
5825 = target
->got_section(symtab
, layout
);
5826 unsigned int r_sym
= elfcpp::elf_r_sym
<size
>(reloc
.get_r_info());
5828 if (!parameters
->options().output_is_position_independent())
5831 && (size
== 32 || target
->abiversion() >= 2))
5832 got
->add_local_plt(object
, r_sym
, GOT_TYPE_STANDARD
);
5834 got
->add_local(object
, r_sym
, GOT_TYPE_STANDARD
);
5836 else if (!object
->local_has_got_offset(r_sym
, GOT_TYPE_STANDARD
))
5838 // If we are generating a shared object or a pie, this
5839 // symbol's GOT entry will be set by a dynamic relocation.
5841 off
= got
->add_constant(0);
5842 object
->set_local_got_offset(r_sym
, GOT_TYPE_STANDARD
, off
);
5844 Reloc_section
* rela_dyn
= target
->rela_dyn_section(symtab
, layout
,
5846 unsigned int dynrel
= (is_ifunc
? elfcpp::R_POWERPC_IRELATIVE
5847 : elfcpp::R_POWERPC_RELATIVE
);
5848 rela_dyn
->add_local_relative(object
, r_sym
, dynrel
,
5849 got
, off
, 0, false);
5854 case elfcpp::R_PPC64_TOC16
:
5855 case elfcpp::R_PPC64_TOC16_LO
:
5856 case elfcpp::R_PPC64_TOC16_HI
:
5857 case elfcpp::R_PPC64_TOC16_HA
:
5858 case elfcpp::R_PPC64_TOC16_DS
:
5859 case elfcpp::R_PPC64_TOC16_LO_DS
:
5860 // We need a GOT section.
5861 target
->got_section(symtab
, layout
);
5864 case elfcpp::R_POWERPC_GOT_TLSGD16
:
5865 case elfcpp::R_POWERPC_GOT_TLSGD16_LO
:
5866 case elfcpp::R_POWERPC_GOT_TLSGD16_HI
:
5867 case elfcpp::R_POWERPC_GOT_TLSGD16_HA
:
5869 const tls::Tls_optimization tls_type
= target
->optimize_tls_gd(true);
5870 if (tls_type
== tls::TLSOPT_NONE
)
5872 Output_data_got_powerpc
<size
, big_endian
>* got
5873 = target
->got_section(symtab
, layout
);
5874 unsigned int r_sym
= elfcpp::elf_r_sym
<size
>(reloc
.get_r_info());
5875 Reloc_section
* rela_dyn
= target
->rela_dyn_section(layout
);
5876 got
->add_local_tls_pair(object
, r_sym
, GOT_TYPE_TLSGD
,
5877 rela_dyn
, elfcpp::R_POWERPC_DTPMOD
);
5879 else if (tls_type
== tls::TLSOPT_TO_LE
)
5881 // no GOT relocs needed for Local Exec.
5888 case elfcpp::R_POWERPC_GOT_TLSLD16
:
5889 case elfcpp::R_POWERPC_GOT_TLSLD16_LO
:
5890 case elfcpp::R_POWERPC_GOT_TLSLD16_HI
:
5891 case elfcpp::R_POWERPC_GOT_TLSLD16_HA
:
5893 const tls::Tls_optimization tls_type
= target
->optimize_tls_ld();
5894 if (tls_type
== tls::TLSOPT_NONE
)
5895 target
->tlsld_got_offset(symtab
, layout
, object
);
5896 else if (tls_type
== tls::TLSOPT_TO_LE
)
5898 // no GOT relocs needed for Local Exec.
5899 if (parameters
->options().emit_relocs())
5901 Output_section
* os
= layout
->tls_segment()->first_section();
5902 gold_assert(os
!= NULL
);
5903 os
->set_needs_symtab_index();
5911 case elfcpp::R_POWERPC_GOT_DTPREL16
:
5912 case elfcpp::R_POWERPC_GOT_DTPREL16_LO
:
5913 case elfcpp::R_POWERPC_GOT_DTPREL16_HI
:
5914 case elfcpp::R_POWERPC_GOT_DTPREL16_HA
:
5916 Output_data_got_powerpc
<size
, big_endian
>* got
5917 = target
->got_section(symtab
, layout
);
5918 unsigned int r_sym
= elfcpp::elf_r_sym
<size
>(reloc
.get_r_info());
5919 got
->add_local_tls(object
, r_sym
, GOT_TYPE_DTPREL
);
5923 case elfcpp::R_POWERPC_GOT_TPREL16
:
5924 case elfcpp::R_POWERPC_GOT_TPREL16_LO
:
5925 case elfcpp::R_POWERPC_GOT_TPREL16_HI
:
5926 case elfcpp::R_POWERPC_GOT_TPREL16_HA
:
5928 const tls::Tls_optimization tls_type
= target
->optimize_tls_ie(true);
5929 if (tls_type
== tls::TLSOPT_NONE
)
5931 unsigned int r_sym
= elfcpp::elf_r_sym
<size
>(reloc
.get_r_info());
5932 if (!object
->local_has_got_offset(r_sym
, GOT_TYPE_TPREL
))
5934 Output_data_got_powerpc
<size
, big_endian
>* got
5935 = target
->got_section(symtab
, layout
);
5936 unsigned int off
= got
->add_constant(0);
5937 object
->set_local_got_offset(r_sym
, GOT_TYPE_TPREL
, off
);
5939 Reloc_section
* rela_dyn
= target
->rela_dyn_section(layout
);
5940 rela_dyn
->add_symbolless_local_addend(object
, r_sym
,
5941 elfcpp::R_POWERPC_TPREL
,
5945 else if (tls_type
== tls::TLSOPT_TO_LE
)
5947 // no GOT relocs needed for Local Exec.
5955 unsupported_reloc_local(object
, r_type
);
5961 case elfcpp::R_POWERPC_GOT_TLSLD16
:
5962 case elfcpp::R_POWERPC_GOT_TLSGD16
:
5963 case elfcpp::R_POWERPC_GOT_TPREL16
:
5964 case elfcpp::R_POWERPC_GOT_DTPREL16
:
5965 case elfcpp::R_POWERPC_GOT16
:
5966 case elfcpp::R_PPC64_GOT16_DS
:
5967 case elfcpp::R_PPC64_TOC16
:
5968 case elfcpp::R_PPC64_TOC16_DS
:
5969 ppc_object
->set_has_small_toc_reloc();
5975 // Report an unsupported relocation against a global symbol.
5977 template<int size
, bool big_endian
>
5979 Target_powerpc
<size
, big_endian
>::Scan::unsupported_reloc_global(
5980 Sized_relobj_file
<size
, big_endian
>* object
,
5981 unsigned int r_type
,
5984 gold_error(_("%s: unsupported reloc %u against global symbol %s"),
5985 object
->name().c_str(), r_type
, gsym
->demangled_name().c_str());
5988 // Scan a relocation for a global symbol.
5990 template<int size
, bool big_endian
>
5992 Target_powerpc
<size
, big_endian
>::Scan::global(
5993 Symbol_table
* symtab
,
5995 Target_powerpc
<size
, big_endian
>* target
,
5996 Sized_relobj_file
<size
, big_endian
>* object
,
5997 unsigned int data_shndx
,
5998 Output_section
* output_section
,
5999 const elfcpp::Rela
<size
, big_endian
>& reloc
,
6000 unsigned int r_type
,
6003 if (this->maybe_skip_tls_get_addr_call(r_type
, gsym
) == Track_tls::SKIP
)
6006 if ((size
== 64 && r_type
== elfcpp::R_PPC64_TLSGD
)
6007 || (size
== 32 && r_type
== elfcpp::R_PPC_TLSGD
))
6009 this->expect_tls_get_addr_call();
6010 const bool final
= gsym
->final_value_is_known();
6011 const tls::Tls_optimization tls_type
= target
->optimize_tls_gd(final
);
6012 if (tls_type
!= tls::TLSOPT_NONE
)
6013 this->skip_next_tls_get_addr_call();
6015 else if ((size
== 64 && r_type
== elfcpp::R_PPC64_TLSLD
)
6016 || (size
== 32 && r_type
== elfcpp::R_PPC_TLSLD
))
6018 this->expect_tls_get_addr_call();
6019 const tls::Tls_optimization tls_type
= target
->optimize_tls_ld();
6020 if (tls_type
!= tls::TLSOPT_NONE
)
6021 this->skip_next_tls_get_addr_call();
6024 Powerpc_relobj
<size
, big_endian
>* ppc_object
6025 = static_cast<Powerpc_relobj
<size
, big_endian
>*>(object
);
6027 // A STT_GNU_IFUNC symbol may require a PLT entry.
6028 bool is_ifunc
= gsym
->type() == elfcpp::STT_GNU_IFUNC
;
6029 bool pushed_ifunc
= false;
6030 if (is_ifunc
&& this->reloc_needs_plt_for_ifunc(target
, object
, r_type
, true))
6032 target
->push_branch(ppc_object
, data_shndx
, reloc
.get_r_offset(),
6033 r_type
, elfcpp::elf_r_sym
<size
>(reloc
.get_r_info()),
6034 reloc
.get_r_addend());
6035 target
->make_plt_entry(symtab
, layout
, gsym
);
6036 pushed_ifunc
= true;
6041 case elfcpp::R_POWERPC_NONE
:
6042 case elfcpp::R_POWERPC_GNU_VTINHERIT
:
6043 case elfcpp::R_POWERPC_GNU_VTENTRY
:
6044 case elfcpp::R_PPC_LOCAL24PC
:
6045 case elfcpp::R_POWERPC_TLS
:
6046 case elfcpp::R_PPC64_ENTRY
:
6049 case elfcpp::R_PPC64_TOC
:
6051 Output_data_got_powerpc
<size
, big_endian
>* got
6052 = target
->got_section(symtab
, layout
);
6053 if (parameters
->options().output_is_position_independent())
6055 Address off
= reloc
.get_r_offset();
6057 && data_shndx
== ppc_object
->opd_shndx()
6058 && ppc_object
->get_opd_discard(off
- 8))
6061 Reloc_section
* rela_dyn
= target
->rela_dyn_section(layout
);
6062 Powerpc_relobj
<size
, big_endian
>* symobj
= ppc_object
;
6063 if (data_shndx
!= ppc_object
->opd_shndx())
6064 symobj
= static_cast
6065 <Powerpc_relobj
<size
, big_endian
>*>(gsym
->object());
6066 rela_dyn
->add_output_section_relative(got
->output_section(),
6067 elfcpp::R_POWERPC_RELATIVE
,
6069 object
, data_shndx
, off
,
6070 symobj
->toc_base_offset());
6075 case elfcpp::R_PPC64_ADDR64
:
6077 && target
->abiversion() < 2
6078 && data_shndx
== ppc_object
->opd_shndx()
6079 && (gsym
->is_defined_in_discarded_section()
6080 || gsym
->object() != object
))
6082 ppc_object
->set_opd_discard(reloc
.get_r_offset());
6086 case elfcpp::R_PPC64_UADDR64
:
6087 case elfcpp::R_POWERPC_ADDR32
:
6088 case elfcpp::R_POWERPC_UADDR32
:
6089 case elfcpp::R_POWERPC_ADDR24
:
6090 case elfcpp::R_POWERPC_ADDR16
:
6091 case elfcpp::R_POWERPC_ADDR16_LO
:
6092 case elfcpp::R_POWERPC_ADDR16_HI
:
6093 case elfcpp::R_POWERPC_ADDR16_HA
:
6094 case elfcpp::R_POWERPC_UADDR16
:
6095 case elfcpp::R_PPC64_ADDR16_HIGH
:
6096 case elfcpp::R_PPC64_ADDR16_HIGHA
:
6097 case elfcpp::R_PPC64_ADDR16_HIGHER
:
6098 case elfcpp::R_PPC64_ADDR16_HIGHERA
:
6099 case elfcpp::R_PPC64_ADDR16_HIGHEST
:
6100 case elfcpp::R_PPC64_ADDR16_HIGHESTA
:
6101 case elfcpp::R_PPC64_ADDR16_DS
:
6102 case elfcpp::R_PPC64_ADDR16_LO_DS
:
6103 case elfcpp::R_POWERPC_ADDR14
:
6104 case elfcpp::R_POWERPC_ADDR14_BRTAKEN
:
6105 case elfcpp::R_POWERPC_ADDR14_BRNTAKEN
:
6107 // Make a PLT entry if necessary.
6108 if (gsym
->needs_plt_entry())
6110 // Since this is not a PC-relative relocation, we may be
6111 // taking the address of a function. In that case we need to
6112 // set the entry in the dynamic symbol table to the address of
6113 // the PLT call stub.
6114 bool need_ifunc_plt
= false;
6115 if ((size
== 32 || target
->abiversion() >= 2)
6116 && gsym
->is_from_dynobj()
6117 && !parameters
->options().output_is_position_independent())
6119 gsym
->set_needs_dynsym_value();
6120 need_ifunc_plt
= true;
6122 if (!is_ifunc
|| (!pushed_ifunc
&& need_ifunc_plt
))
6124 target
->push_branch(ppc_object
, data_shndx
,
6125 reloc
.get_r_offset(), r_type
,
6126 elfcpp::elf_r_sym
<size
>(reloc
.get_r_info()),
6127 reloc
.get_r_addend());
6128 target
->make_plt_entry(symtab
, layout
, gsym
);
6131 // Make a dynamic relocation if necessary.
6132 if (gsym
->needs_dynamic_reloc(Scan::get_reference_flags(r_type
, target
))
6133 || (size
== 64 && is_ifunc
&& target
->abiversion() < 2))
6135 if (!parameters
->options().output_is_position_independent()
6136 && gsym
->may_need_copy_reloc())
6138 target
->copy_reloc(symtab
, layout
, object
,
6139 data_shndx
, output_section
, gsym
, reloc
);
6141 else if ((((size
== 32
6142 && r_type
== elfcpp::R_POWERPC_ADDR32
)
6144 && r_type
== elfcpp::R_PPC64_ADDR64
6145 && target
->abiversion() >= 2))
6146 && gsym
->can_use_relative_reloc(false)
6147 && !(gsym
->visibility() == elfcpp::STV_PROTECTED
6148 && parameters
->options().shared()))
6150 && r_type
== elfcpp::R_PPC64_ADDR64
6151 && target
->abiversion() < 2
6152 && (gsym
->can_use_relative_reloc(false)
6153 || data_shndx
== ppc_object
->opd_shndx())))
6155 Reloc_section
* rela_dyn
6156 = target
->rela_dyn_section(symtab
, layout
, is_ifunc
);
6157 unsigned int dynrel
= (is_ifunc
? elfcpp::R_POWERPC_IRELATIVE
6158 : elfcpp::R_POWERPC_RELATIVE
);
6159 rela_dyn
->add_symbolless_global_addend(
6160 gsym
, dynrel
, output_section
, object
, data_shndx
,
6161 reloc
.get_r_offset(), reloc
.get_r_addend());
6165 Reloc_section
* rela_dyn
6166 = target
->rela_dyn_section(symtab
, layout
, is_ifunc
);
6167 check_non_pic(object
, r_type
);
6168 rela_dyn
->add_global(gsym
, r_type
, output_section
,
6170 reloc
.get_r_offset(),
6171 reloc
.get_r_addend());
6177 case elfcpp::R_PPC_PLTREL24
:
6178 case elfcpp::R_POWERPC_REL24
:
6181 target
->push_branch(ppc_object
, data_shndx
, reloc
.get_r_offset(),
6183 elfcpp::elf_r_sym
<size
>(reloc
.get_r_info()),
6184 reloc
.get_r_addend());
6185 if (gsym
->needs_plt_entry()
6186 || (!gsym
->final_value_is_known()
6187 && (gsym
->is_undefined()
6188 || gsym
->is_from_dynobj()
6189 || gsym
->is_preemptible())))
6190 target
->make_plt_entry(symtab
, layout
, gsym
);
6194 case elfcpp::R_PPC64_REL64
:
6195 case elfcpp::R_POWERPC_REL32
:
6196 // Make a dynamic relocation if necessary.
6197 if (gsym
->needs_dynamic_reloc(Scan::get_reference_flags(r_type
, target
)))
6199 if (!parameters
->options().output_is_position_independent()
6200 && gsym
->may_need_copy_reloc())
6202 target
->copy_reloc(symtab
, layout
, object
,
6203 data_shndx
, output_section
, gsym
,
6208 Reloc_section
* rela_dyn
6209 = target
->rela_dyn_section(symtab
, layout
, is_ifunc
);
6210 check_non_pic(object
, r_type
);
6211 rela_dyn
->add_global(gsym
, r_type
, output_section
, object
,
6212 data_shndx
, reloc
.get_r_offset(),
6213 reloc
.get_r_addend());
6218 case elfcpp::R_POWERPC_REL14
:
6219 case elfcpp::R_POWERPC_REL14_BRTAKEN
:
6220 case elfcpp::R_POWERPC_REL14_BRNTAKEN
:
6222 target
->push_branch(ppc_object
, data_shndx
, reloc
.get_r_offset(),
6223 r_type
, elfcpp::elf_r_sym
<size
>(reloc
.get_r_info()),
6224 reloc
.get_r_addend());
6227 case elfcpp::R_POWERPC_REL16
:
6228 case elfcpp::R_POWERPC_REL16_LO
:
6229 case elfcpp::R_POWERPC_REL16_HI
:
6230 case elfcpp::R_POWERPC_REL16_HA
:
6231 case elfcpp::R_POWERPC_REL16DX_HA
:
6232 case elfcpp::R_POWERPC_SECTOFF
:
6233 case elfcpp::R_POWERPC_SECTOFF_LO
:
6234 case elfcpp::R_POWERPC_SECTOFF_HI
:
6235 case elfcpp::R_POWERPC_SECTOFF_HA
:
6236 case elfcpp::R_PPC64_SECTOFF_DS
:
6237 case elfcpp::R_PPC64_SECTOFF_LO_DS
:
6238 case elfcpp::R_POWERPC_TPREL16
:
6239 case elfcpp::R_POWERPC_TPREL16_LO
:
6240 case elfcpp::R_POWERPC_TPREL16_HI
:
6241 case elfcpp::R_POWERPC_TPREL16_HA
:
6242 case elfcpp::R_PPC64_TPREL16_DS
:
6243 case elfcpp::R_PPC64_TPREL16_LO_DS
:
6244 case elfcpp::R_PPC64_TPREL16_HIGH
:
6245 case elfcpp::R_PPC64_TPREL16_HIGHA
:
6246 case elfcpp::R_PPC64_TPREL16_HIGHER
:
6247 case elfcpp::R_PPC64_TPREL16_HIGHERA
:
6248 case elfcpp::R_PPC64_TPREL16_HIGHEST
:
6249 case elfcpp::R_PPC64_TPREL16_HIGHESTA
:
6250 case elfcpp::R_POWERPC_DTPREL16
:
6251 case elfcpp::R_POWERPC_DTPREL16_LO
:
6252 case elfcpp::R_POWERPC_DTPREL16_HI
:
6253 case elfcpp::R_POWERPC_DTPREL16_HA
:
6254 case elfcpp::R_PPC64_DTPREL16_DS
:
6255 case elfcpp::R_PPC64_DTPREL16_LO_DS
:
6256 case elfcpp::R_PPC64_DTPREL16_HIGH
:
6257 case elfcpp::R_PPC64_DTPREL16_HIGHA
:
6258 case elfcpp::R_PPC64_DTPREL16_HIGHER
:
6259 case elfcpp::R_PPC64_DTPREL16_HIGHERA
:
6260 case elfcpp::R_PPC64_DTPREL16_HIGHEST
:
6261 case elfcpp::R_PPC64_DTPREL16_HIGHESTA
:
6262 case elfcpp::R_PPC64_TLSGD
:
6263 case elfcpp::R_PPC64_TLSLD
:
6264 case elfcpp::R_PPC64_ADDR64_LOCAL
:
6267 case elfcpp::R_POWERPC_GOT16
:
6268 case elfcpp::R_POWERPC_GOT16_LO
:
6269 case elfcpp::R_POWERPC_GOT16_HI
:
6270 case elfcpp::R_POWERPC_GOT16_HA
:
6271 case elfcpp::R_PPC64_GOT16_DS
:
6272 case elfcpp::R_PPC64_GOT16_LO_DS
:
6274 // The symbol requires a GOT entry.
6275 Output_data_got_powerpc
<size
, big_endian
>* got
;
6277 got
= target
->got_section(symtab
, layout
);
6278 if (gsym
->final_value_is_known())
6281 && (size
== 32 || target
->abiversion() >= 2))
6282 got
->add_global_plt(gsym
, GOT_TYPE_STANDARD
);
6284 got
->add_global(gsym
, GOT_TYPE_STANDARD
);
6286 else if (!gsym
->has_got_offset(GOT_TYPE_STANDARD
))
6288 // If we are generating a shared object or a pie, this
6289 // symbol's GOT entry will be set by a dynamic relocation.
6290 unsigned int off
= got
->add_constant(0);
6291 gsym
->set_got_offset(GOT_TYPE_STANDARD
, off
);
6293 Reloc_section
* rela_dyn
6294 = target
->rela_dyn_section(symtab
, layout
, is_ifunc
);
6296 if (gsym
->can_use_relative_reloc(false)
6298 || target
->abiversion() >= 2)
6299 && gsym
->visibility() == elfcpp::STV_PROTECTED
6300 && parameters
->options().shared()))
6302 unsigned int dynrel
= (is_ifunc
? elfcpp::R_POWERPC_IRELATIVE
6303 : elfcpp::R_POWERPC_RELATIVE
);
6304 rela_dyn
->add_global_relative(gsym
, dynrel
, got
, off
, 0, false);
6308 unsigned int dynrel
= elfcpp::R_POWERPC_GLOB_DAT
;
6309 rela_dyn
->add_global(gsym
, dynrel
, got
, off
, 0);
6315 case elfcpp::R_PPC64_TOC16
:
6316 case elfcpp::R_PPC64_TOC16_LO
:
6317 case elfcpp::R_PPC64_TOC16_HI
:
6318 case elfcpp::R_PPC64_TOC16_HA
:
6319 case elfcpp::R_PPC64_TOC16_DS
:
6320 case elfcpp::R_PPC64_TOC16_LO_DS
:
6321 // We need a GOT section.
6322 target
->got_section(symtab
, layout
);
6325 case elfcpp::R_POWERPC_GOT_TLSGD16
:
6326 case elfcpp::R_POWERPC_GOT_TLSGD16_LO
:
6327 case elfcpp::R_POWERPC_GOT_TLSGD16_HI
:
6328 case elfcpp::R_POWERPC_GOT_TLSGD16_HA
:
6330 const bool final
= gsym
->final_value_is_known();
6331 const tls::Tls_optimization tls_type
= target
->optimize_tls_gd(final
);
6332 if (tls_type
== tls::TLSOPT_NONE
)
6334 Output_data_got_powerpc
<size
, big_endian
>* got
6335 = target
->got_section(symtab
, layout
);
6336 Reloc_section
* rela_dyn
= target
->rela_dyn_section(layout
);
6337 got
->add_global_pair_with_rel(gsym
, GOT_TYPE_TLSGD
, rela_dyn
,
6338 elfcpp::R_POWERPC_DTPMOD
,
6339 elfcpp::R_POWERPC_DTPREL
);
6341 else if (tls_type
== tls::TLSOPT_TO_IE
)
6343 if (!gsym
->has_got_offset(GOT_TYPE_TPREL
))
6345 Output_data_got_powerpc
<size
, big_endian
>* got
6346 = target
->got_section(symtab
, layout
);
6347 Reloc_section
* rela_dyn
= target
->rela_dyn_section(layout
);
6348 if (gsym
->is_undefined()
6349 || gsym
->is_from_dynobj())
6351 got
->add_global_with_rel(gsym
, GOT_TYPE_TPREL
, rela_dyn
,
6352 elfcpp::R_POWERPC_TPREL
);
6356 unsigned int off
= got
->add_constant(0);
6357 gsym
->set_got_offset(GOT_TYPE_TPREL
, off
);
6358 unsigned int dynrel
= elfcpp::R_POWERPC_TPREL
;
6359 rela_dyn
->add_symbolless_global_addend(gsym
, dynrel
,
6364 else if (tls_type
== tls::TLSOPT_TO_LE
)
6366 // no GOT relocs needed for Local Exec.
6373 case elfcpp::R_POWERPC_GOT_TLSLD16
:
6374 case elfcpp::R_POWERPC_GOT_TLSLD16_LO
:
6375 case elfcpp::R_POWERPC_GOT_TLSLD16_HI
:
6376 case elfcpp::R_POWERPC_GOT_TLSLD16_HA
:
6378 const tls::Tls_optimization tls_type
= target
->optimize_tls_ld();
6379 if (tls_type
== tls::TLSOPT_NONE
)
6380 target
->tlsld_got_offset(symtab
, layout
, object
);
6381 else if (tls_type
== tls::TLSOPT_TO_LE
)
6383 // no GOT relocs needed for Local Exec.
6384 if (parameters
->options().emit_relocs())
6386 Output_section
* os
= layout
->tls_segment()->first_section();
6387 gold_assert(os
!= NULL
);
6388 os
->set_needs_symtab_index();
6396 case elfcpp::R_POWERPC_GOT_DTPREL16
:
6397 case elfcpp::R_POWERPC_GOT_DTPREL16_LO
:
6398 case elfcpp::R_POWERPC_GOT_DTPREL16_HI
:
6399 case elfcpp::R_POWERPC_GOT_DTPREL16_HA
:
6401 Output_data_got_powerpc
<size
, big_endian
>* got
6402 = target
->got_section(symtab
, layout
);
6403 if (!gsym
->final_value_is_known()
6404 && (gsym
->is_from_dynobj()
6405 || gsym
->is_undefined()
6406 || gsym
->is_preemptible()))
6407 got
->add_global_with_rel(gsym
, GOT_TYPE_DTPREL
,
6408 target
->rela_dyn_section(layout
),
6409 elfcpp::R_POWERPC_DTPREL
);
6411 got
->add_global_tls(gsym
, GOT_TYPE_DTPREL
);
6415 case elfcpp::R_POWERPC_GOT_TPREL16
:
6416 case elfcpp::R_POWERPC_GOT_TPREL16_LO
:
6417 case elfcpp::R_POWERPC_GOT_TPREL16_HI
:
6418 case elfcpp::R_POWERPC_GOT_TPREL16_HA
:
6420 const bool final
= gsym
->final_value_is_known();
6421 const tls::Tls_optimization tls_type
= target
->optimize_tls_ie(final
);
6422 if (tls_type
== tls::TLSOPT_NONE
)
6424 if (!gsym
->has_got_offset(GOT_TYPE_TPREL
))
6426 Output_data_got_powerpc
<size
, big_endian
>* got
6427 = target
->got_section(symtab
, layout
);
6428 Reloc_section
* rela_dyn
= target
->rela_dyn_section(layout
);
6429 if (gsym
->is_undefined()
6430 || gsym
->is_from_dynobj())
6432 got
->add_global_with_rel(gsym
, GOT_TYPE_TPREL
, rela_dyn
,
6433 elfcpp::R_POWERPC_TPREL
);
6437 unsigned int off
= got
->add_constant(0);
6438 gsym
->set_got_offset(GOT_TYPE_TPREL
, off
);
6439 unsigned int dynrel
= elfcpp::R_POWERPC_TPREL
;
6440 rela_dyn
->add_symbolless_global_addend(gsym
, dynrel
,
6445 else if (tls_type
== tls::TLSOPT_TO_LE
)
6447 // no GOT relocs needed for Local Exec.
6455 unsupported_reloc_global(object
, r_type
, gsym
);
6461 case elfcpp::R_POWERPC_GOT_TLSLD16
:
6462 case elfcpp::R_POWERPC_GOT_TLSGD16
:
6463 case elfcpp::R_POWERPC_GOT_TPREL16
:
6464 case elfcpp::R_POWERPC_GOT_DTPREL16
:
6465 case elfcpp::R_POWERPC_GOT16
:
6466 case elfcpp::R_PPC64_GOT16_DS
:
6467 case elfcpp::R_PPC64_TOC16
:
6468 case elfcpp::R_PPC64_TOC16_DS
:
6469 ppc_object
->set_has_small_toc_reloc();
6475 // Process relocations for gc.
6477 template<int size
, bool big_endian
>
6479 Target_powerpc
<size
, big_endian
>::gc_process_relocs(
6480 Symbol_table
* symtab
,
6482 Sized_relobj_file
<size
, big_endian
>* object
,
6483 unsigned int data_shndx
,
6485 const unsigned char* prelocs
,
6487 Output_section
* output_section
,
6488 bool needs_special_offset_handling
,
6489 size_t local_symbol_count
,
6490 const unsigned char* plocal_symbols
)
6492 typedef Target_powerpc
<size
, big_endian
> Powerpc
;
6493 typedef gold::Default_classify_reloc
<elfcpp::SHT_RELA
, size
, big_endian
>
6496 Powerpc_relobj
<size
, big_endian
>* ppc_object
6497 = static_cast<Powerpc_relobj
<size
, big_endian
>*>(object
);
6499 ppc_object
->set_opd_valid();
6500 if (size
== 64 && data_shndx
== ppc_object
->opd_shndx())
6502 typename Powerpc_relobj
<size
, big_endian
>::Access_from::iterator p
;
6503 for (p
= ppc_object
->access_from_map()->begin();
6504 p
!= ppc_object
->access_from_map()->end();
6507 Address dst_off
= p
->first
;
6508 unsigned int dst_indx
= ppc_object
->get_opd_ent(dst_off
);
6509 typename Powerpc_relobj
<size
, big_endian
>::Section_refs::iterator s
;
6510 for (s
= p
->second
.begin(); s
!= p
->second
.end(); ++s
)
6512 Relobj
* src_obj
= s
->first
;
6513 unsigned int src_indx
= s
->second
;
6514 symtab
->gc()->add_reference(src_obj
, src_indx
,
6515 ppc_object
, dst_indx
);
6519 ppc_object
->access_from_map()->clear();
6520 ppc_object
->process_gc_mark(symtab
);
6521 // Don't look at .opd relocs as .opd will reference everything.
6525 gold::gc_process_relocs
<size
, big_endian
, Powerpc
, Scan
, Classify_reloc
>(
6534 needs_special_offset_handling
,
6539 // Handle target specific gc actions when adding a gc reference from
6540 // SRC_OBJ, SRC_SHNDX to a location specified by DST_OBJ, DST_SHNDX
6541 // and DST_OFF. For powerpc64, this adds a referenc to the code
6542 // section of a function descriptor.
6544 template<int size
, bool big_endian
>
6546 Target_powerpc
<size
, big_endian
>::do_gc_add_reference(
6547 Symbol_table
* symtab
,
6549 unsigned int src_shndx
,
6551 unsigned int dst_shndx
,
6552 Address dst_off
) const
6554 if (size
!= 64 || dst_obj
->is_dynamic())
6557 Powerpc_relobj
<size
, big_endian
>* ppc_object
6558 = static_cast<Powerpc_relobj
<size
, big_endian
>*>(dst_obj
);
6559 if (dst_shndx
!= 0 && dst_shndx
== ppc_object
->opd_shndx())
6561 if (ppc_object
->opd_valid())
6563 dst_shndx
= ppc_object
->get_opd_ent(dst_off
);
6564 symtab
->gc()->add_reference(src_obj
, src_shndx
, dst_obj
, dst_shndx
);
6568 // If we haven't run scan_opd_relocs, we must delay
6569 // processing this function descriptor reference.
6570 ppc_object
->add_reference(src_obj
, src_shndx
, dst_off
);
6575 // Add any special sections for this symbol to the gc work list.
6576 // For powerpc64, this adds the code section of a function
6579 template<int size
, bool big_endian
>
6581 Target_powerpc
<size
, big_endian
>::do_gc_mark_symbol(
6582 Symbol_table
* symtab
,
6587 Powerpc_relobj
<size
, big_endian
>* ppc_object
6588 = static_cast<Powerpc_relobj
<size
, big_endian
>*>(sym
->object());
6590 unsigned int shndx
= sym
->shndx(&is_ordinary
);
6591 if (is_ordinary
&& shndx
!= 0 && shndx
== ppc_object
->opd_shndx())
6593 Sized_symbol
<size
>* gsym
= symtab
->get_sized_symbol
<size
>(sym
);
6594 Address dst_off
= gsym
->value();
6595 if (ppc_object
->opd_valid())
6597 unsigned int dst_indx
= ppc_object
->get_opd_ent(dst_off
);
6598 symtab
->gc()->worklist().push_back(Section_id(ppc_object
,
6602 ppc_object
->add_gc_mark(dst_off
);
6607 // For a symbol location in .opd, set LOC to the location of the
6610 template<int size
, bool big_endian
>
6612 Target_powerpc
<size
, big_endian
>::do_function_location(
6613 Symbol_location
* loc
) const
6615 if (size
== 64 && loc
->shndx
!= 0)
6617 if (loc
->object
->is_dynamic())
6619 Powerpc_dynobj
<size
, big_endian
>* ppc_object
6620 = static_cast<Powerpc_dynobj
<size
, big_endian
>*>(loc
->object
);
6621 if (loc
->shndx
== ppc_object
->opd_shndx())
6624 Address off
= loc
->offset
- ppc_object
->opd_address();
6625 loc
->shndx
= ppc_object
->get_opd_ent(off
, &dest_off
);
6626 loc
->offset
= dest_off
;
6631 const Powerpc_relobj
<size
, big_endian
>* ppc_object
6632 = static_cast<const Powerpc_relobj
<size
, big_endian
>*>(loc
->object
);
6633 if (loc
->shndx
== ppc_object
->opd_shndx())
6636 loc
->shndx
= ppc_object
->get_opd_ent(loc
->offset
, &dest_off
);
6637 loc
->offset
= dest_off
;
6643 // FNOFFSET in section SHNDX in OBJECT is the start of a function
6644 // compiled with -fsplit-stack. The function calls non-split-stack
6645 // code. Change the function to ensure it has enough stack space to
6646 // call some random function.
6648 template<int size
, bool big_endian
>
6650 Target_powerpc
<size
, big_endian
>::do_calls_non_split(
6653 section_offset_type fnoffset
,
6654 section_size_type fnsize
,
6655 const unsigned char* prelocs
,
6657 unsigned char* view
,
6658 section_size_type view_size
,
6660 std::string
* to
) const
6662 // 32-bit not supported.
6666 Target::do_calls_non_split(object
, shndx
, fnoffset
, fnsize
,
6667 prelocs
, reloc_count
, view
, view_size
,
6672 // The function always starts with
6673 // ld %r0,-0x7000-64(%r13) # tcbhead_t.__private_ss
6674 // addis %r12,%r1,-allocate@ha
6675 // addi %r12,%r12,-allocate@l
6677 // but note that the addis or addi may be replaced with a nop
6679 unsigned char *entry
= view
+ fnoffset
;
6680 uint32_t insn
= elfcpp::Swap
<32, big_endian
>::readval(entry
);
6682 if ((insn
& 0xffff0000) == addis_2_12
)
6684 /* Skip ELFv2 global entry code. */
6686 insn
= elfcpp::Swap
<32, big_endian
>::readval(entry
);
6689 unsigned char *pinsn
= entry
;
6691 const uint32_t ld_private_ss
= 0xe80d8fc0;
6692 if (insn
== ld_private_ss
)
6694 int32_t allocate
= 0;
6698 insn
= elfcpp::Swap
<32, big_endian
>::readval(pinsn
);
6699 if ((insn
& 0xffff0000) == addis_12_1
)
6700 allocate
+= (insn
& 0xffff) << 16;
6701 else if ((insn
& 0xffff0000) == addi_12_1
6702 || (insn
& 0xffff0000) == addi_12_12
)
6703 allocate
+= ((insn
& 0xffff) ^ 0x8000) - 0x8000;
6704 else if (insn
!= nop
)
6707 if (insn
== cmpld_7_12_0
&& pinsn
== entry
+ 12)
6709 int extra
= parameters
->options().split_stack_adjust_size();
6711 if (allocate
>= 0 || extra
< 0)
6713 object
->error(_("split-stack stack size overflow at "
6714 "section %u offset %0zx"),
6715 shndx
, static_cast<size_t>(fnoffset
));
6719 insn
= addis_12_1
| (((allocate
+ 0x8000) >> 16) & 0xffff);
6720 if (insn
!= addis_12_1
)
6722 elfcpp::Swap
<32, big_endian
>::writeval(pinsn
, insn
);
6724 insn
= addi_12_12
| (allocate
& 0xffff);
6725 if (insn
!= addi_12_12
)
6727 elfcpp::Swap
<32, big_endian
>::writeval(pinsn
, insn
);
6733 insn
= addi_12_1
| (allocate
& 0xffff);
6734 elfcpp::Swap
<32, big_endian
>::writeval(pinsn
, insn
);
6737 if (pinsn
!= entry
+ 12)
6738 elfcpp::Swap
<32, big_endian
>::writeval(pinsn
, nop
);
6746 if (!object
->has_no_split_stack())
6747 object
->error(_("failed to match split-stack sequence at "
6748 "section %u offset %0zx"),
6749 shndx
, static_cast<size_t>(fnoffset
));
6753 // Scan relocations for a section.
6755 template<int size
, bool big_endian
>
6757 Target_powerpc
<size
, big_endian
>::scan_relocs(
6758 Symbol_table
* symtab
,
6760 Sized_relobj_file
<size
, big_endian
>* object
,
6761 unsigned int data_shndx
,
6762 unsigned int sh_type
,
6763 const unsigned char* prelocs
,
6765 Output_section
* output_section
,
6766 bool needs_special_offset_handling
,
6767 size_t local_symbol_count
,
6768 const unsigned char* plocal_symbols
)
6770 typedef Target_powerpc
<size
, big_endian
> Powerpc
;
6771 typedef gold::Default_classify_reloc
<elfcpp::SHT_RELA
, size
, big_endian
>
6774 if (sh_type
== elfcpp::SHT_REL
)
6776 gold_error(_("%s: unsupported REL reloc section"),
6777 object
->name().c_str());
6781 gold::scan_relocs
<size
, big_endian
, Powerpc
, Scan
, Classify_reloc
>(
6790 needs_special_offset_handling
,
6795 // Functor class for processing the global symbol table.
6796 // Removes symbols defined on discarded opd entries.
6798 template<bool big_endian
>
6799 class Global_symbol_visitor_opd
6802 Global_symbol_visitor_opd()
6806 operator()(Sized_symbol
<64>* sym
)
6808 if (sym
->has_symtab_index()
6809 || sym
->source() != Symbol::FROM_OBJECT
6810 || !sym
->in_real_elf())
6813 if (sym
->object()->is_dynamic())
6816 Powerpc_relobj
<64, big_endian
>* symobj
6817 = static_cast<Powerpc_relobj
<64, big_endian
>*>(sym
->object());
6818 if (symobj
->opd_shndx() == 0)
6822 unsigned int shndx
= sym
->shndx(&is_ordinary
);
6823 if (shndx
== symobj
->opd_shndx()
6824 && symobj
->get_opd_discard(sym
->value()))
6826 sym
->set_undefined();
6827 sym
->set_visibility(elfcpp::STV_DEFAULT
);
6828 sym
->set_is_defined_in_discarded_section();
6829 sym
->set_symtab_index(-1U);
6834 template<int size
, bool big_endian
>
6836 Target_powerpc
<size
, big_endian
>::define_save_restore_funcs(
6838 Symbol_table
* symtab
)
6842 Output_data_save_res
<size
, big_endian
>* savres
6843 = new Output_data_save_res
<size
, big_endian
>(symtab
);
6844 this->savres_section_
= savres
;
6845 layout
->add_output_section_data(".text", elfcpp::SHT_PROGBITS
,
6846 elfcpp::SHF_ALLOC
| elfcpp::SHF_EXECINSTR
,
6847 savres
, ORDER_TEXT
, false);
6851 // Sort linker created .got section first (for the header), then input
6852 // sections belonging to files using small model code.
6854 template<bool big_endian
>
6855 class Sort_toc_sections
6859 operator()(const Output_section::Input_section
& is1
,
6860 const Output_section::Input_section
& is2
) const
6862 if (!is1
.is_input_section() && is2
.is_input_section())
6865 = (is1
.is_input_section()
6866 && (static_cast<const Powerpc_relobj
<64, big_endian
>*>(is1
.relobj())
6867 ->has_small_toc_reloc()));
6869 = (is2
.is_input_section()
6870 && (static_cast<const Powerpc_relobj
<64, big_endian
>*>(is2
.relobj())
6871 ->has_small_toc_reloc()));
6872 return small1
&& !small2
;
6876 // Finalize the sections.
6878 template<int size
, bool big_endian
>
6880 Target_powerpc
<size
, big_endian
>::do_finalize_sections(
6882 const Input_objects
*,
6883 Symbol_table
* symtab
)
6885 if (parameters
->doing_static_link())
6887 // At least some versions of glibc elf-init.o have a strong
6888 // reference to __rela_iplt marker syms. A weak ref would be
6890 if (this->iplt_
!= NULL
)
6892 Reloc_section
* rel
= this->iplt_
->rel_plt();
6893 symtab
->define_in_output_data("__rela_iplt_start", NULL
,
6894 Symbol_table::PREDEFINED
, rel
, 0, 0,
6895 elfcpp::STT_NOTYPE
, elfcpp::STB_GLOBAL
,
6896 elfcpp::STV_HIDDEN
, 0, false, true);
6897 symtab
->define_in_output_data("__rela_iplt_end", NULL
,
6898 Symbol_table::PREDEFINED
, rel
, 0, 0,
6899 elfcpp::STT_NOTYPE
, elfcpp::STB_GLOBAL
,
6900 elfcpp::STV_HIDDEN
, 0, true, true);
6904 symtab
->define_as_constant("__rela_iplt_start", NULL
,
6905 Symbol_table::PREDEFINED
, 0, 0,
6906 elfcpp::STT_NOTYPE
, elfcpp::STB_GLOBAL
,
6907 elfcpp::STV_HIDDEN
, 0, true, false);
6908 symtab
->define_as_constant("__rela_iplt_end", NULL
,
6909 Symbol_table::PREDEFINED
, 0, 0,
6910 elfcpp::STT_NOTYPE
, elfcpp::STB_GLOBAL
,
6911 elfcpp::STV_HIDDEN
, 0, true, false);
6917 typedef Global_symbol_visitor_opd
<big_endian
> Symbol_visitor
;
6918 symtab
->for_all_symbols
<64, Symbol_visitor
>(Symbol_visitor());
6920 if (!parameters
->options().relocatable())
6922 this->define_save_restore_funcs(layout
, symtab
);
6924 // Annoyingly, we need to make these sections now whether or
6925 // not we need them. If we delay until do_relax then we
6926 // need to mess with the relaxation machinery checkpointing.
6927 this->got_section(symtab
, layout
);
6928 this->make_brlt_section(layout
);
6930 if (parameters
->options().toc_sort())
6932 Output_section
* os
= this->got_
->output_section();
6933 if (os
!= NULL
&& os
->input_sections().size() > 1)
6934 std::stable_sort(os
->input_sections().begin(),
6935 os
->input_sections().end(),
6936 Sort_toc_sections
<big_endian
>());
6941 // Fill in some more dynamic tags.
6942 Output_data_dynamic
* odyn
= layout
->dynamic_data();
6945 const Reloc_section
* rel_plt
= (this->plt_
== NULL
6947 : this->plt_
->rel_plt());
6948 layout
->add_target_dynamic_tags(false, this->plt_
, rel_plt
,
6949 this->rela_dyn_
, true, size
== 32);
6953 if (this->got_
!= NULL
)
6955 this->got_
->finalize_data_size();
6956 odyn
->add_section_plus_offset(elfcpp::DT_PPC_GOT
,
6957 this->got_
, this->got_
->g_o_t());
6962 if (this->glink_
!= NULL
)
6964 this->glink_
->finalize_data_size();
6965 odyn
->add_section_plus_offset(elfcpp::DT_PPC64_GLINK
,
6967 (this->glink_
->pltresolve_size
6973 // Emit any relocs we saved in an attempt to avoid generating COPY
6975 if (this->copy_relocs_
.any_saved_relocs())
6976 this->copy_relocs_
.emit(this->rela_dyn_section(layout
));
6979 // Return TRUE iff INSN is one we expect on a _LO variety toc/got
6983 ok_lo_toc_insn(uint32_t insn
)
6985 return ((insn
& (0x3f << 26)) == 14u << 26 /* addi */
6986 || (insn
& (0x3f << 26)) == 32u << 26 /* lwz */
6987 || (insn
& (0x3f << 26)) == 34u << 26 /* lbz */
6988 || (insn
& (0x3f << 26)) == 36u << 26 /* stw */
6989 || (insn
& (0x3f << 26)) == 38u << 26 /* stb */
6990 || (insn
& (0x3f << 26)) == 40u << 26 /* lhz */
6991 || (insn
& (0x3f << 26)) == 42u << 26 /* lha */
6992 || (insn
& (0x3f << 26)) == 44u << 26 /* sth */
6993 || (insn
& (0x3f << 26)) == 46u << 26 /* lmw */
6994 || (insn
& (0x3f << 26)) == 47u << 26 /* stmw */
6995 || (insn
& (0x3f << 26)) == 48u << 26 /* lfs */
6996 || (insn
& (0x3f << 26)) == 50u << 26 /* lfd */
6997 || (insn
& (0x3f << 26)) == 52u << 26 /* stfs */
6998 || (insn
& (0x3f << 26)) == 54u << 26 /* stfd */
6999 || ((insn
& (0x3f << 26)) == 58u << 26 /* lwa,ld,lmd */
7001 || ((insn
& (0x3f << 26)) == 62u << 26 /* std, stmd */
7002 && ((insn
& 3) == 0 || (insn
& 3) == 3))
7003 || (insn
& (0x3f << 26)) == 12u << 26 /* addic */);
7006 // Return the value to use for a branch relocation.
7008 template<int size
, bool big_endian
>
7010 Target_powerpc
<size
, big_endian
>::symval_for_branch(
7011 const Symbol_table
* symtab
,
7012 const Sized_symbol
<size
>* gsym
,
7013 Powerpc_relobj
<size
, big_endian
>* object
,
7015 unsigned int *dest_shndx
)
7017 if (size
== 32 || this->abiversion() >= 2)
7021 // If the symbol is defined in an opd section, ie. is a function
7022 // descriptor, use the function descriptor code entry address
7023 Powerpc_relobj
<size
, big_endian
>* symobj
= object
;
7025 && gsym
->source() != Symbol::FROM_OBJECT
)
7028 symobj
= static_cast<Powerpc_relobj
<size
, big_endian
>*>(gsym
->object());
7029 unsigned int shndx
= symobj
->opd_shndx();
7032 Address opd_addr
= symobj
->get_output_section_offset(shndx
);
7033 if (opd_addr
== invalid_address
)
7035 opd_addr
+= symobj
->output_section_address(shndx
);
7036 if (*value
>= opd_addr
&& *value
< opd_addr
+ symobj
->section_size(shndx
))
7039 *dest_shndx
= symobj
->get_opd_ent(*value
- opd_addr
, &sec_off
);
7040 if (symtab
->is_section_folded(symobj
, *dest_shndx
))
7043 = symtab
->icf()->get_folded_section(symobj
, *dest_shndx
);
7044 symobj
= static_cast<Powerpc_relobj
<size
, big_endian
>*>(folded
.first
);
7045 *dest_shndx
= folded
.second
;
7047 Address sec_addr
= symobj
->get_output_section_offset(*dest_shndx
);
7048 if (sec_addr
== invalid_address
)
7051 sec_addr
+= symobj
->output_section(*dest_shndx
)->address();
7052 *value
= sec_addr
+ sec_off
;
7057 // Perform a relocation.
7059 template<int size
, bool big_endian
>
7061 Target_powerpc
<size
, big_endian
>::Relocate::relocate(
7062 const Relocate_info
<size
, big_endian
>* relinfo
,
7064 Target_powerpc
* target
,
7067 const unsigned char* preloc
,
7068 const Sized_symbol
<size
>* gsym
,
7069 const Symbol_value
<size
>* psymval
,
7070 unsigned char* view
,
7072 section_size_type view_size
)
7077 const elfcpp::Rela
<size
, big_endian
> rela(preloc
);
7078 unsigned int r_type
= elfcpp::elf_r_type
<size
>(rela
.get_r_info());
7079 switch (this->maybe_skip_tls_get_addr_call(r_type
, gsym
))
7081 case Track_tls::NOT_EXPECTED
:
7082 gold_error_at_location(relinfo
, relnum
, rela
.get_r_offset(),
7083 _("__tls_get_addr call lacks marker reloc"));
7085 case Track_tls::EXPECTED
:
7086 // We have already complained.
7088 case Track_tls::SKIP
:
7090 case Track_tls::NORMAL
:
7094 typedef Powerpc_relocate_functions
<size
, big_endian
> Reloc
;
7095 typedef typename
elfcpp::Swap
<32, big_endian
>::Valtype Insn
;
7096 typedef typename Reloc_types
<elfcpp::SHT_RELA
,
7097 size
, big_endian
>::Reloc Reltype
;
7098 // Offset from start of insn to d-field reloc.
7099 const int d_offset
= big_endian
? 2 : 0;
7101 Powerpc_relobj
<size
, big_endian
>* const object
7102 = static_cast<Powerpc_relobj
<size
, big_endian
>*>(relinfo
->object
);
7104 bool has_stub_value
= false;
7105 unsigned int r_sym
= elfcpp::elf_r_sym
<size
>(rela
.get_r_info());
7107 ? gsym
->use_plt_offset(Scan::get_reference_flags(r_type
, target
))
7108 : object
->local_has_plt_offset(r_sym
))
7109 && (!psymval
->is_ifunc_symbol()
7110 || Scan::reloc_needs_plt_for_ifunc(target
, object
, r_type
, false)))
7114 && target
->abiversion() >= 2
7115 && !parameters
->options().output_is_position_independent()
7116 && !is_branch_reloc(r_type
))
7118 Address off
= target
->glink_section()->find_global_entry(gsym
);
7119 if (off
!= invalid_address
)
7121 value
= target
->glink_section()->global_entry_address() + off
;
7122 has_stub_value
= true;
7127 Stub_table
<size
, big_endian
>* stub_table
7128 = object
->stub_table(relinfo
->data_shndx
);
7129 if (stub_table
== NULL
)
7131 // This is a ref from a data section to an ifunc symbol.
7132 if (target
->stub_tables().size() != 0)
7133 stub_table
= target
->stub_tables()[0];
7135 if (stub_table
!= NULL
)
7139 off
= stub_table
->find_plt_call_entry(object
, gsym
, r_type
,
7140 rela
.get_r_addend());
7142 off
= stub_table
->find_plt_call_entry(object
, r_sym
, r_type
,
7143 rela
.get_r_addend());
7144 if (off
!= invalid_address
)
7146 value
= stub_table
->stub_address() + off
;
7147 has_stub_value
= true;
7151 // We don't care too much about bogus debug references to
7152 // non-local functions, but otherwise there had better be a plt
7153 // call stub or global entry stub as appropriate.
7154 gold_assert(has_stub_value
|| !(os
->flags() & elfcpp::SHF_ALLOC
));
7157 if (r_type
== elfcpp::R_POWERPC_GOT16
7158 || r_type
== elfcpp::R_POWERPC_GOT16_LO
7159 || r_type
== elfcpp::R_POWERPC_GOT16_HI
7160 || r_type
== elfcpp::R_POWERPC_GOT16_HA
7161 || r_type
== elfcpp::R_PPC64_GOT16_DS
7162 || r_type
== elfcpp::R_PPC64_GOT16_LO_DS
)
7166 gold_assert(gsym
->has_got_offset(GOT_TYPE_STANDARD
));
7167 value
= gsym
->got_offset(GOT_TYPE_STANDARD
);
7171 unsigned int r_sym
= elfcpp::elf_r_sym
<size
>(rela
.get_r_info());
7172 gold_assert(object
->local_has_got_offset(r_sym
, GOT_TYPE_STANDARD
));
7173 value
= object
->local_got_offset(r_sym
, GOT_TYPE_STANDARD
);
7175 value
-= target
->got_section()->got_base_offset(object
);
7177 else if (r_type
== elfcpp::R_PPC64_TOC
)
7179 value
= (target
->got_section()->output_section()->address()
7180 + object
->toc_base_offset());
7182 else if (gsym
!= NULL
7183 && (r_type
== elfcpp::R_POWERPC_REL24
7184 || r_type
== elfcpp::R_PPC_PLTREL24
)
7189 typedef typename
elfcpp::Swap
<32, big_endian
>::Valtype Valtype
;
7190 Valtype
* wv
= reinterpret_cast<Valtype
*>(view
);
7191 bool can_plt_call
= false;
7192 if (rela
.get_r_offset() + 8 <= view_size
)
7194 Valtype insn
= elfcpp::Swap
<32, big_endian
>::readval(wv
);
7195 Valtype insn2
= elfcpp::Swap
<32, big_endian
>::readval(wv
+ 1);
7198 || insn2
== cror_15_15_15
|| insn2
== cror_31_31_31
))
7200 elfcpp::Swap
<32, big_endian
>::
7201 writeval(wv
+ 1, ld_2_1
+ target
->stk_toc());
7202 can_plt_call
= true;
7207 // If we don't have a branch and link followed by a nop,
7208 // we can't go via the plt because there is no place to
7209 // put a toc restoring instruction.
7210 // Unless we know we won't be returning.
7211 if (strcmp(gsym
->name(), "__libc_start_main") == 0)
7212 can_plt_call
= true;
7216 // g++ as of 20130507 emits self-calls without a
7217 // following nop. This is arguably wrong since we have
7218 // conflicting information. On the one hand a global
7219 // symbol and on the other a local call sequence, but
7220 // don't error for this special case.
7221 // It isn't possible to cheaply verify we have exactly
7222 // such a call. Allow all calls to the same section.
7224 Address code
= value
;
7225 if (gsym
->source() == Symbol::FROM_OBJECT
7226 && gsym
->object() == object
)
7228 unsigned int dest_shndx
= 0;
7229 if (target
->abiversion() < 2)
7231 Address addend
= rela
.get_r_addend();
7232 code
= psymval
->value(object
, addend
);
7233 target
->symval_for_branch(relinfo
->symtab
, gsym
, object
,
7234 &code
, &dest_shndx
);
7237 if (dest_shndx
== 0)
7238 dest_shndx
= gsym
->shndx(&is_ordinary
);
7239 ok
= dest_shndx
== relinfo
->data_shndx
;
7243 gold_error_at_location(relinfo
, relnum
, rela
.get_r_offset(),
7244 _("call lacks nop, can't restore toc; "
7245 "recompile with -fPIC"));
7251 else if (r_type
== elfcpp::R_POWERPC_GOT_TLSGD16
7252 || r_type
== elfcpp::R_POWERPC_GOT_TLSGD16_LO
7253 || r_type
== elfcpp::R_POWERPC_GOT_TLSGD16_HI
7254 || r_type
== elfcpp::R_POWERPC_GOT_TLSGD16_HA
)
7256 // First instruction of a global dynamic sequence, arg setup insn.
7257 const bool final
= gsym
== NULL
|| gsym
->final_value_is_known();
7258 const tls::Tls_optimization tls_type
= target
->optimize_tls_gd(final
);
7259 enum Got_type got_type
= GOT_TYPE_STANDARD
;
7260 if (tls_type
== tls::TLSOPT_NONE
)
7261 got_type
= GOT_TYPE_TLSGD
;
7262 else if (tls_type
== tls::TLSOPT_TO_IE
)
7263 got_type
= GOT_TYPE_TPREL
;
7264 if (got_type
!= GOT_TYPE_STANDARD
)
7268 gold_assert(gsym
->has_got_offset(got_type
));
7269 value
= gsym
->got_offset(got_type
);
7273 unsigned int r_sym
= elfcpp::elf_r_sym
<size
>(rela
.get_r_info());
7274 gold_assert(object
->local_has_got_offset(r_sym
, got_type
));
7275 value
= object
->local_got_offset(r_sym
, got_type
);
7277 value
-= target
->got_section()->got_base_offset(object
);
7279 if (tls_type
== tls::TLSOPT_TO_IE
)
7281 if (r_type
== elfcpp::R_POWERPC_GOT_TLSGD16
7282 || r_type
== elfcpp::R_POWERPC_GOT_TLSGD16_LO
)
7284 Insn
* iview
= reinterpret_cast<Insn
*>(view
- d_offset
);
7285 Insn insn
= elfcpp::Swap
<32, big_endian
>::readval(iview
);
7286 insn
&= (1 << 26) - (1 << 16); // extract rt,ra from addi
7288 insn
|= 32 << 26; // lwz
7290 insn
|= 58 << 26; // ld
7291 elfcpp::Swap
<32, big_endian
>::writeval(iview
, insn
);
7293 r_type
+= (elfcpp::R_POWERPC_GOT_TPREL16
7294 - elfcpp::R_POWERPC_GOT_TLSGD16
);
7296 else if (tls_type
== tls::TLSOPT_TO_LE
)
7298 if (r_type
== elfcpp::R_POWERPC_GOT_TLSGD16
7299 || r_type
== elfcpp::R_POWERPC_GOT_TLSGD16_LO
)
7301 Insn
* iview
= reinterpret_cast<Insn
*>(view
- d_offset
);
7302 Insn insn
= elfcpp::Swap
<32, big_endian
>::readval(iview
);
7303 insn
&= (1 << 26) - (1 << 21); // extract rt
7308 elfcpp::Swap
<32, big_endian
>::writeval(iview
, insn
);
7309 r_type
= elfcpp::R_POWERPC_TPREL16_HA
;
7310 value
= psymval
->value(object
, rela
.get_r_addend());
7314 Insn
* iview
= reinterpret_cast<Insn
*>(view
- d_offset
);
7316 elfcpp::Swap
<32, big_endian
>::writeval(iview
, insn
);
7317 r_type
= elfcpp::R_POWERPC_NONE
;
7321 else if (r_type
== elfcpp::R_POWERPC_GOT_TLSLD16
7322 || r_type
== elfcpp::R_POWERPC_GOT_TLSLD16_LO
7323 || r_type
== elfcpp::R_POWERPC_GOT_TLSLD16_HI
7324 || r_type
== elfcpp::R_POWERPC_GOT_TLSLD16_HA
)
7326 // First instruction of a local dynamic sequence, arg setup insn.
7327 const tls::Tls_optimization tls_type
= target
->optimize_tls_ld();
7328 if (tls_type
== tls::TLSOPT_NONE
)
7330 value
= target
->tlsld_got_offset();
7331 value
-= target
->got_section()->got_base_offset(object
);
7335 gold_assert(tls_type
== tls::TLSOPT_TO_LE
);
7336 if (r_type
== elfcpp::R_POWERPC_GOT_TLSLD16
7337 || r_type
== elfcpp::R_POWERPC_GOT_TLSLD16_LO
)
7339 Insn
* iview
= reinterpret_cast<Insn
*>(view
- d_offset
);
7340 Insn insn
= elfcpp::Swap
<32, big_endian
>::readval(iview
);
7341 insn
&= (1 << 26) - (1 << 21); // extract rt
7346 elfcpp::Swap
<32, big_endian
>::writeval(iview
, insn
);
7347 r_type
= elfcpp::R_POWERPC_TPREL16_HA
;
7352 Insn
* iview
= reinterpret_cast<Insn
*>(view
- d_offset
);
7354 elfcpp::Swap
<32, big_endian
>::writeval(iview
, insn
);
7355 r_type
= elfcpp::R_POWERPC_NONE
;
7359 else if (r_type
== elfcpp::R_POWERPC_GOT_DTPREL16
7360 || r_type
== elfcpp::R_POWERPC_GOT_DTPREL16_LO
7361 || r_type
== elfcpp::R_POWERPC_GOT_DTPREL16_HI
7362 || r_type
== elfcpp::R_POWERPC_GOT_DTPREL16_HA
)
7364 // Accesses relative to a local dynamic sequence address,
7365 // no optimisation here.
7368 gold_assert(gsym
->has_got_offset(GOT_TYPE_DTPREL
));
7369 value
= gsym
->got_offset(GOT_TYPE_DTPREL
);
7373 unsigned int r_sym
= elfcpp::elf_r_sym
<size
>(rela
.get_r_info());
7374 gold_assert(object
->local_has_got_offset(r_sym
, GOT_TYPE_DTPREL
));
7375 value
= object
->local_got_offset(r_sym
, GOT_TYPE_DTPREL
);
7377 value
-= target
->got_section()->got_base_offset(object
);
7379 else if (r_type
== elfcpp::R_POWERPC_GOT_TPREL16
7380 || r_type
== elfcpp::R_POWERPC_GOT_TPREL16_LO
7381 || r_type
== elfcpp::R_POWERPC_GOT_TPREL16_HI
7382 || r_type
== elfcpp::R_POWERPC_GOT_TPREL16_HA
)
7384 // First instruction of initial exec sequence.
7385 const bool final
= gsym
== NULL
|| gsym
->final_value_is_known();
7386 const tls::Tls_optimization tls_type
= target
->optimize_tls_ie(final
);
7387 if (tls_type
== tls::TLSOPT_NONE
)
7391 gold_assert(gsym
->has_got_offset(GOT_TYPE_TPREL
));
7392 value
= gsym
->got_offset(GOT_TYPE_TPREL
);
7396 unsigned int r_sym
= elfcpp::elf_r_sym
<size
>(rela
.get_r_info());
7397 gold_assert(object
->local_has_got_offset(r_sym
, GOT_TYPE_TPREL
));
7398 value
= object
->local_got_offset(r_sym
, GOT_TYPE_TPREL
);
7400 value
-= target
->got_section()->got_base_offset(object
);
7404 gold_assert(tls_type
== tls::TLSOPT_TO_LE
);
7405 if (r_type
== elfcpp::R_POWERPC_GOT_TPREL16
7406 || r_type
== elfcpp::R_POWERPC_GOT_TPREL16_LO
)
7408 Insn
* iview
= reinterpret_cast<Insn
*>(view
- d_offset
);
7409 Insn insn
= elfcpp::Swap
<32, big_endian
>::readval(iview
);
7410 insn
&= (1 << 26) - (1 << 21); // extract rt from ld
7415 elfcpp::Swap
<32, big_endian
>::writeval(iview
, insn
);
7416 r_type
= elfcpp::R_POWERPC_TPREL16_HA
;
7417 value
= psymval
->value(object
, rela
.get_r_addend());
7421 Insn
* iview
= reinterpret_cast<Insn
*>(view
- d_offset
);
7423 elfcpp::Swap
<32, big_endian
>::writeval(iview
, insn
);
7424 r_type
= elfcpp::R_POWERPC_NONE
;
7428 else if ((size
== 64 && r_type
== elfcpp::R_PPC64_TLSGD
)
7429 || (size
== 32 && r_type
== elfcpp::R_PPC_TLSGD
))
7431 // Second instruction of a global dynamic sequence,
7432 // the __tls_get_addr call
7433 this->expect_tls_get_addr_call(relinfo
, relnum
, rela
.get_r_offset());
7434 const bool final
= gsym
== NULL
|| gsym
->final_value_is_known();
7435 const tls::Tls_optimization tls_type
= target
->optimize_tls_gd(final
);
7436 if (tls_type
!= tls::TLSOPT_NONE
)
7438 if (tls_type
== tls::TLSOPT_TO_IE
)
7440 Insn
* iview
= reinterpret_cast<Insn
*>(view
);
7441 Insn insn
= add_3_3_13
;
7444 elfcpp::Swap
<32, big_endian
>::writeval(iview
, insn
);
7445 r_type
= elfcpp::R_POWERPC_NONE
;
7449 Insn
* iview
= reinterpret_cast<Insn
*>(view
);
7450 Insn insn
= addi_3_3
;
7451 elfcpp::Swap
<32, big_endian
>::writeval(iview
, insn
);
7452 r_type
= elfcpp::R_POWERPC_TPREL16_LO
;
7454 value
= psymval
->value(object
, rela
.get_r_addend());
7456 this->skip_next_tls_get_addr_call();
7459 else if ((size
== 64 && r_type
== elfcpp::R_PPC64_TLSLD
)
7460 || (size
== 32 && r_type
== elfcpp::R_PPC_TLSLD
))
7462 // Second instruction of a local dynamic sequence,
7463 // the __tls_get_addr call
7464 this->expect_tls_get_addr_call(relinfo
, relnum
, rela
.get_r_offset());
7465 const tls::Tls_optimization tls_type
= target
->optimize_tls_ld();
7466 if (tls_type
== tls::TLSOPT_TO_LE
)
7468 Insn
* iview
= reinterpret_cast<Insn
*>(view
);
7469 Insn insn
= addi_3_3
;
7470 elfcpp::Swap
<32, big_endian
>::writeval(iview
, insn
);
7471 this->skip_next_tls_get_addr_call();
7472 r_type
= elfcpp::R_POWERPC_TPREL16_LO
;
7477 else if (r_type
== elfcpp::R_POWERPC_TLS
)
7479 // Second instruction of an initial exec sequence
7480 const bool final
= gsym
== NULL
|| gsym
->final_value_is_known();
7481 const tls::Tls_optimization tls_type
= target
->optimize_tls_ie(final
);
7482 if (tls_type
== tls::TLSOPT_TO_LE
)
7484 Insn
* iview
= reinterpret_cast<Insn
*>(view
);
7485 Insn insn
= elfcpp::Swap
<32, big_endian
>::readval(iview
);
7486 unsigned int reg
= size
== 32 ? 2 : 13;
7487 insn
= at_tls_transform(insn
, reg
);
7488 gold_assert(insn
!= 0);
7489 elfcpp::Swap
<32, big_endian
>::writeval(iview
, insn
);
7490 r_type
= elfcpp::R_POWERPC_TPREL16_LO
;
7492 value
= psymval
->value(object
, rela
.get_r_addend());
7495 else if (!has_stub_value
)
7498 if (!(size
== 32 && r_type
== elfcpp::R_PPC_PLTREL24
))
7499 addend
= rela
.get_r_addend();
7500 value
= psymval
->value(object
, addend
);
7501 if (size
== 64 && is_branch_reloc(r_type
))
7503 if (target
->abiversion() >= 2)
7506 value
+= object
->ppc64_local_entry_offset(gsym
);
7508 value
+= object
->ppc64_local_entry_offset(r_sym
);
7512 unsigned int dest_shndx
;
7513 target
->symval_for_branch(relinfo
->symtab
, gsym
, object
,
7514 &value
, &dest_shndx
);
7517 Address max_branch_offset
= max_branch_delta(r_type
);
7518 if (max_branch_offset
!= 0
7519 && value
- address
+ max_branch_offset
>= 2 * max_branch_offset
)
7521 Stub_table
<size
, big_endian
>* stub_table
7522 = object
->stub_table(relinfo
->data_shndx
);
7523 if (stub_table
!= NULL
)
7525 Address off
= stub_table
->find_long_branch_entry(object
, value
);
7526 if (off
!= invalid_address
)
7528 value
= (stub_table
->stub_address() + stub_table
->plt_size()
7530 has_stub_value
= true;
7538 case elfcpp::R_PPC64_REL64
:
7539 case elfcpp::R_POWERPC_REL32
:
7540 case elfcpp::R_POWERPC_REL24
:
7541 case elfcpp::R_PPC_PLTREL24
:
7542 case elfcpp::R_PPC_LOCAL24PC
:
7543 case elfcpp::R_POWERPC_REL16
:
7544 case elfcpp::R_POWERPC_REL16_LO
:
7545 case elfcpp::R_POWERPC_REL16_HI
:
7546 case elfcpp::R_POWERPC_REL16_HA
:
7547 case elfcpp::R_POWERPC_REL16DX_HA
:
7548 case elfcpp::R_POWERPC_REL14
:
7549 case elfcpp::R_POWERPC_REL14_BRTAKEN
:
7550 case elfcpp::R_POWERPC_REL14_BRNTAKEN
:
7554 case elfcpp::R_PPC64_TOC16
:
7555 case elfcpp::R_PPC64_TOC16_LO
:
7556 case elfcpp::R_PPC64_TOC16_HI
:
7557 case elfcpp::R_PPC64_TOC16_HA
:
7558 case elfcpp::R_PPC64_TOC16_DS
:
7559 case elfcpp::R_PPC64_TOC16_LO_DS
:
7560 // Subtract the TOC base address.
7561 value
-= (target
->got_section()->output_section()->address()
7562 + object
->toc_base_offset());
7565 case elfcpp::R_POWERPC_SECTOFF
:
7566 case elfcpp::R_POWERPC_SECTOFF_LO
:
7567 case elfcpp::R_POWERPC_SECTOFF_HI
:
7568 case elfcpp::R_POWERPC_SECTOFF_HA
:
7569 case elfcpp::R_PPC64_SECTOFF_DS
:
7570 case elfcpp::R_PPC64_SECTOFF_LO_DS
:
7572 value
-= os
->address();
7575 case elfcpp::R_PPC64_TPREL16_DS
:
7576 case elfcpp::R_PPC64_TPREL16_LO_DS
:
7577 case elfcpp::R_PPC64_TPREL16_HIGH
:
7578 case elfcpp::R_PPC64_TPREL16_HIGHA
:
7580 // R_PPC_TLSGD, R_PPC_TLSLD, R_PPC_EMB_RELST_LO, R_PPC_EMB_RELST_HI
7582 case elfcpp::R_POWERPC_TPREL16
:
7583 case elfcpp::R_POWERPC_TPREL16_LO
:
7584 case elfcpp::R_POWERPC_TPREL16_HI
:
7585 case elfcpp::R_POWERPC_TPREL16_HA
:
7586 case elfcpp::R_POWERPC_TPREL
:
7587 case elfcpp::R_PPC64_TPREL16_HIGHER
:
7588 case elfcpp::R_PPC64_TPREL16_HIGHERA
:
7589 case elfcpp::R_PPC64_TPREL16_HIGHEST
:
7590 case elfcpp::R_PPC64_TPREL16_HIGHESTA
:
7591 // tls symbol values are relative to tls_segment()->vaddr()
7595 case elfcpp::R_PPC64_DTPREL16_DS
:
7596 case elfcpp::R_PPC64_DTPREL16_LO_DS
:
7597 case elfcpp::R_PPC64_DTPREL16_HIGHER
:
7598 case elfcpp::R_PPC64_DTPREL16_HIGHERA
:
7599 case elfcpp::R_PPC64_DTPREL16_HIGHEST
:
7600 case elfcpp::R_PPC64_DTPREL16_HIGHESTA
:
7602 // R_PPC_EMB_NADDR32, R_PPC_EMB_NADDR16, R_PPC_EMB_NADDR16_LO
7603 // R_PPC_EMB_NADDR16_HI, R_PPC_EMB_NADDR16_HA, R_PPC_EMB_SDAI16
7605 case elfcpp::R_POWERPC_DTPREL16
:
7606 case elfcpp::R_POWERPC_DTPREL16_LO
:
7607 case elfcpp::R_POWERPC_DTPREL16_HI
:
7608 case elfcpp::R_POWERPC_DTPREL16_HA
:
7609 case elfcpp::R_POWERPC_DTPREL
:
7610 case elfcpp::R_PPC64_DTPREL16_HIGH
:
7611 case elfcpp::R_PPC64_DTPREL16_HIGHA
:
7612 // tls symbol values are relative to tls_segment()->vaddr()
7613 value
-= dtp_offset
;
7616 case elfcpp::R_PPC64_ADDR64_LOCAL
:
7618 value
+= object
->ppc64_local_entry_offset(gsym
);
7620 value
+= object
->ppc64_local_entry_offset(r_sym
);
7627 Insn branch_bit
= 0;
7630 case elfcpp::R_POWERPC_ADDR14_BRTAKEN
:
7631 case elfcpp::R_POWERPC_REL14_BRTAKEN
:
7632 branch_bit
= 1 << 21;
7633 case elfcpp::R_POWERPC_ADDR14_BRNTAKEN
:
7634 case elfcpp::R_POWERPC_REL14_BRNTAKEN
:
7636 Insn
* iview
= reinterpret_cast<Insn
*>(view
);
7637 Insn insn
= elfcpp::Swap
<32, big_endian
>::readval(iview
);
7640 if (this->is_isa_v2
)
7642 // Set 'a' bit. This is 0b00010 in BO field for branch
7643 // on CR(BI) insns (BO == 001at or 011at), and 0b01000
7644 // for branch on CTR insns (BO == 1a00t or 1a01t).
7645 if ((insn
& (0x14 << 21)) == (0x04 << 21))
7647 else if ((insn
& (0x14 << 21)) == (0x10 << 21))
7654 // Invert 'y' bit if not the default.
7655 if (static_cast<Signed_address
>(value
) < 0)
7658 elfcpp::Swap
<32, big_endian
>::writeval(iview
, insn
);
7668 // Multi-instruction sequences that access the TOC can be
7669 // optimized, eg. addis ra,r2,0; addi rb,ra,x;
7670 // to nop; addi rb,r2,x;
7676 case elfcpp::R_POWERPC_GOT_TLSLD16_HA
:
7677 case elfcpp::R_POWERPC_GOT_TLSGD16_HA
:
7678 case elfcpp::R_POWERPC_GOT_TPREL16_HA
:
7679 case elfcpp::R_POWERPC_GOT_DTPREL16_HA
:
7680 case elfcpp::R_POWERPC_GOT16_HA
:
7681 case elfcpp::R_PPC64_TOC16_HA
:
7682 if (parameters
->options().toc_optimize())
7684 Insn
* iview
= reinterpret_cast<Insn
*>(view
- d_offset
);
7685 Insn insn
= elfcpp::Swap
<32, big_endian
>::readval(iview
);
7686 if ((insn
& ((0x3f << 26) | 0x1f << 16))
7687 != ((15u << 26) | (2 << 16)) /* addis rt,2,imm */)
7688 gold_error_at_location(relinfo
, relnum
, rela
.get_r_offset(),
7689 _("toc optimization is not supported "
7690 "for %#08x instruction"), insn
);
7691 else if (value
+ 0x8000 < 0x10000)
7693 elfcpp::Swap
<32, big_endian
>::writeval(iview
, nop
);
7699 case elfcpp::R_POWERPC_GOT_TLSLD16_LO
:
7700 case elfcpp::R_POWERPC_GOT_TLSGD16_LO
:
7701 case elfcpp::R_POWERPC_GOT_TPREL16_LO
:
7702 case elfcpp::R_POWERPC_GOT_DTPREL16_LO
:
7703 case elfcpp::R_POWERPC_GOT16_LO
:
7704 case elfcpp::R_PPC64_GOT16_LO_DS
:
7705 case elfcpp::R_PPC64_TOC16_LO
:
7706 case elfcpp::R_PPC64_TOC16_LO_DS
:
7707 if (parameters
->options().toc_optimize())
7709 Insn
* iview
= reinterpret_cast<Insn
*>(view
- d_offset
);
7710 Insn insn
= elfcpp::Swap
<32, big_endian
>::readval(iview
);
7711 if (!ok_lo_toc_insn(insn
))
7712 gold_error_at_location(relinfo
, relnum
, rela
.get_r_offset(),
7713 _("toc optimization is not supported "
7714 "for %#08x instruction"), insn
);
7715 else if (value
+ 0x8000 < 0x10000)
7717 if ((insn
& (0x3f << 26)) == 12u << 26 /* addic */)
7719 // Transform addic to addi when we change reg.
7720 insn
&= ~((0x3f << 26) | (0x1f << 16));
7721 insn
|= (14u << 26) | (2 << 16);
7725 insn
&= ~(0x1f << 16);
7728 elfcpp::Swap
<32, big_endian
>::writeval(iview
, insn
);
7733 case elfcpp::R_PPC64_ENTRY
:
7734 value
= (target
->got_section()->output_section()->address()
7735 + object
->toc_base_offset());
7736 if (value
+ 0x80008000 <= 0xffffffff
7737 && !parameters
->options().output_is_position_independent())
7739 Insn
* iview
= reinterpret_cast<Insn
*>(view
);
7740 Insn insn1
= elfcpp::Swap
<32, big_endian
>::readval(iview
);
7741 Insn insn2
= elfcpp::Swap
<32, big_endian
>::readval(iview
+ 1);
7743 if ((insn1
& ~0xfffc) == ld_2_12
7744 && insn2
== add_2_2_12
)
7746 insn1
= lis_2
+ ha(value
);
7747 elfcpp::Swap
<32, big_endian
>::writeval(iview
, insn1
);
7748 insn2
= addi_2_2
+ l(value
);
7749 elfcpp::Swap
<32, big_endian
>::writeval(iview
+ 1, insn2
);
7756 if (value
+ 0x80008000 <= 0xffffffff)
7758 Insn
* iview
= reinterpret_cast<Insn
*>(view
);
7759 Insn insn1
= elfcpp::Swap
<32, big_endian
>::readval(iview
);
7760 Insn insn2
= elfcpp::Swap
<32, big_endian
>::readval(iview
+ 1);
7762 if ((insn1
& ~0xfffc) == ld_2_12
7763 && insn2
== add_2_2_12
)
7765 insn1
= addis_2_12
+ ha(value
);
7766 elfcpp::Swap
<32, big_endian
>::writeval(iview
, insn1
);
7767 insn2
= addi_2_2
+ l(value
);
7768 elfcpp::Swap
<32, big_endian
>::writeval(iview
+ 1, insn2
);
7775 case elfcpp::R_POWERPC_REL16_LO
:
7776 // If we are generating a non-PIC executable, edit
7777 // 0: addis 2,12,.TOC.-0b@ha
7778 // addi 2,2,.TOC.-0b@l
7779 // used by ELFv2 global entry points to set up r2, to
7782 // if .TOC. is in range. */
7783 if (value
+ address
- 4 + 0x80008000 <= 0xffffffff
7786 && target
->abiversion() >= 2
7787 && !parameters
->options().output_is_position_independent()
7788 && rela
.get_r_addend() == d_offset
+ 4
7790 && strcmp(gsym
->name(), ".TOC.") == 0)
7792 const int reloc_size
7793 = Reloc_types
<elfcpp::SHT_RELA
, size
, big_endian
>::reloc_size
;
7794 Reltype
prev_rela(preloc
- reloc_size
);
7795 if ((prev_rela
.get_r_info()
7796 == elfcpp::elf_r_info
<size
>(r_sym
,
7797 elfcpp::R_POWERPC_REL16_HA
))
7798 && prev_rela
.get_r_offset() + 4 == rela
.get_r_offset()
7799 && prev_rela
.get_r_addend() + 4 == rela
.get_r_addend())
7801 Insn
* iview
= reinterpret_cast<Insn
*>(view
- d_offset
);
7802 Insn insn1
= elfcpp::Swap
<32, big_endian
>::readval(iview
- 1);
7803 Insn insn2
= elfcpp::Swap
<32, big_endian
>::readval(iview
);
7805 if ((insn1
& 0xffff0000) == addis_2_12
7806 && (insn2
& 0xffff0000) == addi_2_2
)
7808 insn1
= lis_2
+ ha(value
+ address
- 4);
7809 elfcpp::Swap
<32, big_endian
>::writeval(iview
- 1, insn1
);
7810 insn2
= addi_2_2
+ l(value
+ address
- 4);
7811 elfcpp::Swap
<32, big_endian
>::writeval(iview
, insn2
);
7814 relinfo
->rr
->set_strategy(relnum
- 1,
7815 Relocatable_relocs::RELOC_SPECIAL
);
7816 relinfo
->rr
->set_strategy(relnum
,
7817 Relocatable_relocs::RELOC_SPECIAL
);
7827 typename
Reloc::Overflow_check overflow
= Reloc::CHECK_NONE
;
7828 elfcpp::Shdr
<size
, big_endian
> shdr(relinfo
->data_shdr
);
7831 case elfcpp::R_POWERPC_ADDR32
:
7832 case elfcpp::R_POWERPC_UADDR32
:
7834 overflow
= Reloc::CHECK_BITFIELD
;
7837 case elfcpp::R_POWERPC_REL32
:
7838 case elfcpp::R_POWERPC_REL16DX_HA
:
7840 overflow
= Reloc::CHECK_SIGNED
;
7843 case elfcpp::R_POWERPC_UADDR16
:
7844 overflow
= Reloc::CHECK_BITFIELD
;
7847 case elfcpp::R_POWERPC_ADDR16
:
7848 // We really should have three separate relocations,
7849 // one for 16-bit data, one for insns with 16-bit signed fields,
7850 // and one for insns with 16-bit unsigned fields.
7851 overflow
= Reloc::CHECK_BITFIELD
;
7852 if ((shdr
.get_sh_flags() & elfcpp::SHF_EXECINSTR
) != 0)
7853 overflow
= Reloc::CHECK_LOW_INSN
;
7856 case elfcpp::R_POWERPC_ADDR16_HI
:
7857 case elfcpp::R_POWERPC_ADDR16_HA
:
7858 case elfcpp::R_POWERPC_GOT16_HI
:
7859 case elfcpp::R_POWERPC_GOT16_HA
:
7860 case elfcpp::R_POWERPC_PLT16_HI
:
7861 case elfcpp::R_POWERPC_PLT16_HA
:
7862 case elfcpp::R_POWERPC_SECTOFF_HI
:
7863 case elfcpp::R_POWERPC_SECTOFF_HA
:
7864 case elfcpp::R_PPC64_TOC16_HI
:
7865 case elfcpp::R_PPC64_TOC16_HA
:
7866 case elfcpp::R_PPC64_PLTGOT16_HI
:
7867 case elfcpp::R_PPC64_PLTGOT16_HA
:
7868 case elfcpp::R_POWERPC_TPREL16_HI
:
7869 case elfcpp::R_POWERPC_TPREL16_HA
:
7870 case elfcpp::R_POWERPC_DTPREL16_HI
:
7871 case elfcpp::R_POWERPC_DTPREL16_HA
:
7872 case elfcpp::R_POWERPC_GOT_TLSGD16_HI
:
7873 case elfcpp::R_POWERPC_GOT_TLSGD16_HA
:
7874 case elfcpp::R_POWERPC_GOT_TLSLD16_HI
:
7875 case elfcpp::R_POWERPC_GOT_TLSLD16_HA
:
7876 case elfcpp::R_POWERPC_GOT_TPREL16_HI
:
7877 case elfcpp::R_POWERPC_GOT_TPREL16_HA
:
7878 case elfcpp::R_POWERPC_GOT_DTPREL16_HI
:
7879 case elfcpp::R_POWERPC_GOT_DTPREL16_HA
:
7880 case elfcpp::R_POWERPC_REL16_HI
:
7881 case elfcpp::R_POWERPC_REL16_HA
:
7883 overflow
= Reloc::CHECK_HIGH_INSN
;
7886 case elfcpp::R_POWERPC_REL16
:
7887 case elfcpp::R_PPC64_TOC16
:
7888 case elfcpp::R_POWERPC_GOT16
:
7889 case elfcpp::R_POWERPC_SECTOFF
:
7890 case elfcpp::R_POWERPC_TPREL16
:
7891 case elfcpp::R_POWERPC_DTPREL16
:
7892 case elfcpp::R_POWERPC_GOT_TLSGD16
:
7893 case elfcpp::R_POWERPC_GOT_TLSLD16
:
7894 case elfcpp::R_POWERPC_GOT_TPREL16
:
7895 case elfcpp::R_POWERPC_GOT_DTPREL16
:
7896 overflow
= Reloc::CHECK_LOW_INSN
;
7899 case elfcpp::R_POWERPC_ADDR24
:
7900 case elfcpp::R_POWERPC_ADDR14
:
7901 case elfcpp::R_POWERPC_ADDR14_BRTAKEN
:
7902 case elfcpp::R_POWERPC_ADDR14_BRNTAKEN
:
7903 case elfcpp::R_PPC64_ADDR16_DS
:
7904 case elfcpp::R_POWERPC_REL24
:
7905 case elfcpp::R_PPC_PLTREL24
:
7906 case elfcpp::R_PPC_LOCAL24PC
:
7907 case elfcpp::R_PPC64_TPREL16_DS
:
7908 case elfcpp::R_PPC64_DTPREL16_DS
:
7909 case elfcpp::R_PPC64_TOC16_DS
:
7910 case elfcpp::R_PPC64_GOT16_DS
:
7911 case elfcpp::R_PPC64_SECTOFF_DS
:
7912 case elfcpp::R_POWERPC_REL14
:
7913 case elfcpp::R_POWERPC_REL14_BRTAKEN
:
7914 case elfcpp::R_POWERPC_REL14_BRNTAKEN
:
7915 overflow
= Reloc::CHECK_SIGNED
;
7919 Insn
* iview
= reinterpret_cast<Insn
*>(view
- d_offset
);
7922 if (overflow
== Reloc::CHECK_LOW_INSN
7923 || overflow
== Reloc::CHECK_HIGH_INSN
)
7925 insn
= elfcpp::Swap
<32, big_endian
>::readval(iview
);
7927 if ((insn
& (0x3f << 26)) == 10u << 26 /* cmpli */)
7928 overflow
= Reloc::CHECK_BITFIELD
;
7929 else if (overflow
== Reloc::CHECK_LOW_INSN
7930 ? ((insn
& (0x3f << 26)) == 28u << 26 /* andi */
7931 || (insn
& (0x3f << 26)) == 24u << 26 /* ori */
7932 || (insn
& (0x3f << 26)) == 26u << 26 /* xori */)
7933 : ((insn
& (0x3f << 26)) == 29u << 26 /* andis */
7934 || (insn
& (0x3f << 26)) == 25u << 26 /* oris */
7935 || (insn
& (0x3f << 26)) == 27u << 26 /* xoris */))
7936 overflow
= Reloc::CHECK_UNSIGNED
;
7938 overflow
= Reloc::CHECK_SIGNED
;
7941 bool maybe_dq_reloc
= false;
7942 typename Powerpc_relocate_functions
<size
, big_endian
>::Status status
7943 = Powerpc_relocate_functions
<size
, big_endian
>::STATUS_OK
;
7946 case elfcpp::R_POWERPC_NONE
:
7947 case elfcpp::R_POWERPC_TLS
:
7948 case elfcpp::R_POWERPC_GNU_VTINHERIT
:
7949 case elfcpp::R_POWERPC_GNU_VTENTRY
:
7952 case elfcpp::R_PPC64_ADDR64
:
7953 case elfcpp::R_PPC64_REL64
:
7954 case elfcpp::R_PPC64_TOC
:
7955 case elfcpp::R_PPC64_ADDR64_LOCAL
:
7956 Reloc::addr64(view
, value
);
7959 case elfcpp::R_POWERPC_TPREL
:
7960 case elfcpp::R_POWERPC_DTPREL
:
7962 Reloc::addr64(view
, value
);
7964 status
= Reloc::addr32(view
, value
, overflow
);
7967 case elfcpp::R_PPC64_UADDR64
:
7968 Reloc::addr64_u(view
, value
);
7971 case elfcpp::R_POWERPC_ADDR32
:
7972 status
= Reloc::addr32(view
, value
, overflow
);
7975 case elfcpp::R_POWERPC_REL32
:
7976 case elfcpp::R_POWERPC_UADDR32
:
7977 status
= Reloc::addr32_u(view
, value
, overflow
);
7980 case elfcpp::R_POWERPC_ADDR24
:
7981 case elfcpp::R_POWERPC_REL24
:
7982 case elfcpp::R_PPC_PLTREL24
:
7983 case elfcpp::R_PPC_LOCAL24PC
:
7984 status
= Reloc::addr24(view
, value
, overflow
);
7987 case elfcpp::R_POWERPC_GOT_DTPREL16
:
7988 case elfcpp::R_POWERPC_GOT_DTPREL16_LO
:
7989 case elfcpp::R_POWERPC_GOT_TPREL16
:
7990 case elfcpp::R_POWERPC_GOT_TPREL16_LO
:
7993 // On ppc64 these are all ds form
7994 maybe_dq_reloc
= true;
7997 case elfcpp::R_POWERPC_ADDR16
:
7998 case elfcpp::R_POWERPC_REL16
:
7999 case elfcpp::R_PPC64_TOC16
:
8000 case elfcpp::R_POWERPC_GOT16
:
8001 case elfcpp::R_POWERPC_SECTOFF
:
8002 case elfcpp::R_POWERPC_TPREL16
:
8003 case elfcpp::R_POWERPC_DTPREL16
:
8004 case elfcpp::R_POWERPC_GOT_TLSGD16
:
8005 case elfcpp::R_POWERPC_GOT_TLSLD16
:
8006 case elfcpp::R_POWERPC_ADDR16_LO
:
8007 case elfcpp::R_POWERPC_REL16_LO
:
8008 case elfcpp::R_PPC64_TOC16_LO
:
8009 case elfcpp::R_POWERPC_GOT16_LO
:
8010 case elfcpp::R_POWERPC_SECTOFF_LO
:
8011 case elfcpp::R_POWERPC_TPREL16_LO
:
8012 case elfcpp::R_POWERPC_DTPREL16_LO
:
8013 case elfcpp::R_POWERPC_GOT_TLSGD16_LO
:
8014 case elfcpp::R_POWERPC_GOT_TLSLD16_LO
:
8016 status
= Reloc::addr16(view
, value
, overflow
);
8018 maybe_dq_reloc
= true;
8021 case elfcpp::R_POWERPC_UADDR16
:
8022 status
= Reloc::addr16_u(view
, value
, overflow
);
8025 case elfcpp::R_PPC64_ADDR16_HIGH
:
8026 case elfcpp::R_PPC64_TPREL16_HIGH
:
8027 case elfcpp::R_PPC64_DTPREL16_HIGH
:
8029 // R_PPC_EMB_MRKREF, R_PPC_EMB_RELST_LO, R_PPC_EMB_RELST_HA
8031 case elfcpp::R_POWERPC_ADDR16_HI
:
8032 case elfcpp::R_POWERPC_REL16_HI
:
8033 case elfcpp::R_PPC64_TOC16_HI
:
8034 case elfcpp::R_POWERPC_GOT16_HI
:
8035 case elfcpp::R_POWERPC_SECTOFF_HI
:
8036 case elfcpp::R_POWERPC_TPREL16_HI
:
8037 case elfcpp::R_POWERPC_DTPREL16_HI
:
8038 case elfcpp::R_POWERPC_GOT_TLSGD16_HI
:
8039 case elfcpp::R_POWERPC_GOT_TLSLD16_HI
:
8040 case elfcpp::R_POWERPC_GOT_TPREL16_HI
:
8041 case elfcpp::R_POWERPC_GOT_DTPREL16_HI
:
8042 Reloc::addr16_hi(view
, value
);
8045 case elfcpp::R_PPC64_ADDR16_HIGHA
:
8046 case elfcpp::R_PPC64_TPREL16_HIGHA
:
8047 case elfcpp::R_PPC64_DTPREL16_HIGHA
:
8049 // R_PPC_EMB_RELSEC16, R_PPC_EMB_RELST_HI, R_PPC_EMB_BIT_FLD
8051 case elfcpp::R_POWERPC_ADDR16_HA
:
8052 case elfcpp::R_POWERPC_REL16_HA
:
8053 case elfcpp::R_PPC64_TOC16_HA
:
8054 case elfcpp::R_POWERPC_GOT16_HA
:
8055 case elfcpp::R_POWERPC_SECTOFF_HA
:
8056 case elfcpp::R_POWERPC_TPREL16_HA
:
8057 case elfcpp::R_POWERPC_DTPREL16_HA
:
8058 case elfcpp::R_POWERPC_GOT_TLSGD16_HA
:
8059 case elfcpp::R_POWERPC_GOT_TLSLD16_HA
:
8060 case elfcpp::R_POWERPC_GOT_TPREL16_HA
:
8061 case elfcpp::R_POWERPC_GOT_DTPREL16_HA
:
8062 Reloc::addr16_ha(view
, value
);
8065 case elfcpp::R_POWERPC_REL16DX_HA
:
8066 status
= Reloc::addr16dx_ha(view
, value
, overflow
);
8069 case elfcpp::R_PPC64_DTPREL16_HIGHER
:
8071 // R_PPC_EMB_NADDR16_LO
8073 case elfcpp::R_PPC64_ADDR16_HIGHER
:
8074 case elfcpp::R_PPC64_TPREL16_HIGHER
:
8075 Reloc::addr16_hi2(view
, value
);
8078 case elfcpp::R_PPC64_DTPREL16_HIGHERA
:
8080 // R_PPC_EMB_NADDR16_HI
8082 case elfcpp::R_PPC64_ADDR16_HIGHERA
:
8083 case elfcpp::R_PPC64_TPREL16_HIGHERA
:
8084 Reloc::addr16_ha2(view
, value
);
8087 case elfcpp::R_PPC64_DTPREL16_HIGHEST
:
8089 // R_PPC_EMB_NADDR16_HA
8091 case elfcpp::R_PPC64_ADDR16_HIGHEST
:
8092 case elfcpp::R_PPC64_TPREL16_HIGHEST
:
8093 Reloc::addr16_hi3(view
, value
);
8096 case elfcpp::R_PPC64_DTPREL16_HIGHESTA
:
8100 case elfcpp::R_PPC64_ADDR16_HIGHESTA
:
8101 case elfcpp::R_PPC64_TPREL16_HIGHESTA
:
8102 Reloc::addr16_ha3(view
, value
);
8105 case elfcpp::R_PPC64_DTPREL16_DS
:
8106 case elfcpp::R_PPC64_DTPREL16_LO_DS
:
8108 // R_PPC_EMB_NADDR32, R_PPC_EMB_NADDR16
8110 case elfcpp::R_PPC64_TPREL16_DS
:
8111 case elfcpp::R_PPC64_TPREL16_LO_DS
:
8113 // R_PPC_TLSGD, R_PPC_TLSLD
8115 case elfcpp::R_PPC64_ADDR16_DS
:
8116 case elfcpp::R_PPC64_ADDR16_LO_DS
:
8117 case elfcpp::R_PPC64_TOC16_DS
:
8118 case elfcpp::R_PPC64_TOC16_LO_DS
:
8119 case elfcpp::R_PPC64_GOT16_DS
:
8120 case elfcpp::R_PPC64_GOT16_LO_DS
:
8121 case elfcpp::R_PPC64_SECTOFF_DS
:
8122 case elfcpp::R_PPC64_SECTOFF_LO_DS
:
8123 maybe_dq_reloc
= true;
8126 case elfcpp::R_POWERPC_ADDR14
:
8127 case elfcpp::R_POWERPC_ADDR14_BRTAKEN
:
8128 case elfcpp::R_POWERPC_ADDR14_BRNTAKEN
:
8129 case elfcpp::R_POWERPC_REL14
:
8130 case elfcpp::R_POWERPC_REL14_BRTAKEN
:
8131 case elfcpp::R_POWERPC_REL14_BRNTAKEN
:
8132 status
= Reloc::addr14(view
, value
, overflow
);
8135 case elfcpp::R_POWERPC_COPY
:
8136 case elfcpp::R_POWERPC_GLOB_DAT
:
8137 case elfcpp::R_POWERPC_JMP_SLOT
:
8138 case elfcpp::R_POWERPC_RELATIVE
:
8139 case elfcpp::R_POWERPC_DTPMOD
:
8140 case elfcpp::R_PPC64_JMP_IREL
:
8141 case elfcpp::R_POWERPC_IRELATIVE
:
8142 gold_error_at_location(relinfo
, relnum
, rela
.get_r_offset(),
8143 _("unexpected reloc %u in object file"),
8147 case elfcpp::R_PPC_EMB_SDA21
:
8152 // R_PPC64_TOCSAVE. For the time being this can be ignored.
8156 case elfcpp::R_PPC_EMB_SDA2I16
:
8157 case elfcpp::R_PPC_EMB_SDA2REL
:
8160 // R_PPC64_TLSGD, R_PPC64_TLSLD
8163 case elfcpp::R_POWERPC_PLT32
:
8164 case elfcpp::R_POWERPC_PLTREL32
:
8165 case elfcpp::R_POWERPC_PLT16_LO
:
8166 case elfcpp::R_POWERPC_PLT16_HI
:
8167 case elfcpp::R_POWERPC_PLT16_HA
:
8168 case elfcpp::R_PPC_SDAREL16
:
8169 case elfcpp::R_POWERPC_ADDR30
:
8170 case elfcpp::R_PPC64_PLT64
:
8171 case elfcpp::R_PPC64_PLTREL64
:
8172 case elfcpp::R_PPC64_PLTGOT16
:
8173 case elfcpp::R_PPC64_PLTGOT16_LO
:
8174 case elfcpp::R_PPC64_PLTGOT16_HI
:
8175 case elfcpp::R_PPC64_PLTGOT16_HA
:
8176 case elfcpp::R_PPC64_PLT16_LO_DS
:
8177 case elfcpp::R_PPC64_PLTGOT16_DS
:
8178 case elfcpp::R_PPC64_PLTGOT16_LO_DS
:
8179 case elfcpp::R_PPC_EMB_RELSDA
:
8180 case elfcpp::R_PPC_TOC16
:
8183 gold_error_at_location(relinfo
, relnum
, rela
.get_r_offset(),
8184 _("unsupported reloc %u"),
8192 insn
= elfcpp::Swap
<32, big_endian
>::readval(iview
);
8194 if ((insn
& (0x3f << 26)) == 56u << 26 /* lq */
8195 || ((insn
& (0x3f << 26)) == (61u << 26) /* lxv, stxv */
8196 && (insn
& 3) == 1))
8197 status
= Reloc::addr16_dq(view
, value
, overflow
);
8199 || (insn
& (0x3f << 26)) == 58u << 26 /* ld,ldu,lwa */
8200 || (insn
& (0x3f << 26)) == 62u << 26 /* std,stdu,stq */
8201 || (insn
& (0x3f << 26)) == 57u << 26 /* lfdp */
8202 || (insn
& (0x3f << 26)) == 61u << 26 /* stfdp */)
8203 status
= Reloc::addr16_ds(view
, value
, overflow
);
8205 status
= Reloc::addr16(view
, value
, overflow
);
8208 if (status
!= Powerpc_relocate_functions
<size
, big_endian
>::STATUS_OK
8211 && gsym
->is_undefined()
8212 && is_branch_reloc(r_type
))))
8214 gold_error_at_location(relinfo
, relnum
, rela
.get_r_offset(),
8215 _("relocation overflow"));
8217 gold_info(_("try relinking with a smaller --stub-group-size"));
8223 // Relocate section data.
8225 template<int size
, bool big_endian
>
8227 Target_powerpc
<size
, big_endian
>::relocate_section(
8228 const Relocate_info
<size
, big_endian
>* relinfo
,
8229 unsigned int sh_type
,
8230 const unsigned char* prelocs
,
8232 Output_section
* output_section
,
8233 bool needs_special_offset_handling
,
8234 unsigned char* view
,
8236 section_size_type view_size
,
8237 const Reloc_symbol_changes
* reloc_symbol_changes
)
8239 typedef Target_powerpc
<size
, big_endian
> Powerpc
;
8240 typedef typename Target_powerpc
<size
, big_endian
>::Relocate Powerpc_relocate
;
8241 typedef typename Target_powerpc
<size
, big_endian
>::Relocate_comdat_behavior
8242 Powerpc_comdat_behavior
;
8243 typedef gold::Default_classify_reloc
<elfcpp::SHT_RELA
, size
, big_endian
>
8246 gold_assert(sh_type
== elfcpp::SHT_RELA
);
8248 gold::relocate_section
<size
, big_endian
, Powerpc
, Powerpc_relocate
,
8249 Powerpc_comdat_behavior
, Classify_reloc
>(
8255 needs_special_offset_handling
,
8259 reloc_symbol_changes
);
8262 template<int size
, bool big_endian
>
8263 class Powerpc_scan_relocatable_reloc
8266 typedef typename Reloc_types
<elfcpp::SHT_RELA
, size
, big_endian
>::Reloc
8268 static const int reloc_size
=
8269 Reloc_types
<elfcpp::SHT_RELA
, size
, big_endian
>::reloc_size
;
8270 static const int sh_type
= elfcpp::SHT_RELA
;
8272 // Return the symbol referred to by the relocation.
8273 static inline unsigned int
8274 get_r_sym(const Reltype
* reloc
)
8275 { return elfcpp::elf_r_sym
<size
>(reloc
->get_r_info()); }
8277 // Return the type of the relocation.
8278 static inline unsigned int
8279 get_r_type(const Reltype
* reloc
)
8280 { return elfcpp::elf_r_type
<size
>(reloc
->get_r_info()); }
8282 // Return the strategy to use for a local symbol which is not a
8283 // section symbol, given the relocation type.
8284 inline Relocatable_relocs::Reloc_strategy
8285 local_non_section_strategy(unsigned int r_type
, Relobj
*, unsigned int r_sym
)
8287 if (r_type
== 0 && r_sym
== 0)
8288 return Relocatable_relocs::RELOC_DISCARD
;
8289 return Relocatable_relocs::RELOC_COPY
;
8292 // Return the strategy to use for a local symbol which is a section
8293 // symbol, given the relocation type.
8294 inline Relocatable_relocs::Reloc_strategy
8295 local_section_strategy(unsigned int, Relobj
*)
8297 return Relocatable_relocs::RELOC_ADJUST_FOR_SECTION_RELA
;
8300 // Return the strategy to use for a global symbol, given the
8301 // relocation type, the object, and the symbol index.
8302 inline Relocatable_relocs::Reloc_strategy
8303 global_strategy(unsigned int r_type
, Relobj
*, unsigned int)
8305 if (r_type
== elfcpp::R_PPC_PLTREL24
)
8306 return Relocatable_relocs::RELOC_SPECIAL
;
8307 return Relocatable_relocs::RELOC_COPY
;
8311 // Scan the relocs during a relocatable link.
8313 template<int size
, bool big_endian
>
8315 Target_powerpc
<size
, big_endian
>::scan_relocatable_relocs(
8316 Symbol_table
* symtab
,
8318 Sized_relobj_file
<size
, big_endian
>* object
,
8319 unsigned int data_shndx
,
8320 unsigned int sh_type
,
8321 const unsigned char* prelocs
,
8323 Output_section
* output_section
,
8324 bool needs_special_offset_handling
,
8325 size_t local_symbol_count
,
8326 const unsigned char* plocal_symbols
,
8327 Relocatable_relocs
* rr
)
8329 typedef Powerpc_scan_relocatable_reloc
<size
, big_endian
> Scan_strategy
;
8331 gold_assert(sh_type
== elfcpp::SHT_RELA
);
8333 gold::scan_relocatable_relocs
<size
, big_endian
, Scan_strategy
>(
8341 needs_special_offset_handling
,
8347 // Scan the relocs for --emit-relocs.
8349 template<int size
, bool big_endian
>
8351 Target_powerpc
<size
, big_endian
>::emit_relocs_scan(
8352 Symbol_table
* symtab
,
8354 Sized_relobj_file
<size
, big_endian
>* object
,
8355 unsigned int data_shndx
,
8356 unsigned int sh_type
,
8357 const unsigned char* prelocs
,
8359 Output_section
* output_section
,
8360 bool needs_special_offset_handling
,
8361 size_t local_symbol_count
,
8362 const unsigned char* plocal_syms
,
8363 Relocatable_relocs
* rr
)
8365 typedef gold::Default_classify_reloc
<elfcpp::SHT_RELA
, size
, big_endian
>
8367 typedef gold::Default_emit_relocs_strategy
<Classify_reloc
>
8368 Emit_relocs_strategy
;
8370 gold_assert(sh_type
== elfcpp::SHT_RELA
);
8372 gold::scan_relocatable_relocs
<size
, big_endian
, Emit_relocs_strategy
>(
8380 needs_special_offset_handling
,
8386 // Emit relocations for a section.
8387 // This is a modified version of the function by the same name in
8388 // target-reloc.h. Using relocate_special_relocatable for
8389 // R_PPC_PLTREL24 would require duplication of the entire body of the
8390 // loop, so we may as well duplicate the whole thing.
8392 template<int size
, bool big_endian
>
8394 Target_powerpc
<size
, big_endian
>::relocate_relocs(
8395 const Relocate_info
<size
, big_endian
>* relinfo
,
8396 unsigned int sh_type
,
8397 const unsigned char* prelocs
,
8399 Output_section
* output_section
,
8400 typename
elfcpp::Elf_types
<size
>::Elf_Off offset_in_output_section
,
8402 Address view_address
,
8404 unsigned char* reloc_view
,
8405 section_size_type reloc_view_size
)
8407 gold_assert(sh_type
== elfcpp::SHT_RELA
);
8409 typedef typename Reloc_types
<elfcpp::SHT_RELA
, size
, big_endian
>::Reloc
8411 typedef typename Reloc_types
<elfcpp::SHT_RELA
, size
, big_endian
>::Reloc_write
8413 const int reloc_size
8414 = Reloc_types
<elfcpp::SHT_RELA
, size
, big_endian
>::reloc_size
;
8415 // Offset from start of insn to d-field reloc.
8416 const int d_offset
= big_endian
? 2 : 0;
8418 Powerpc_relobj
<size
, big_endian
>* const object
8419 = static_cast<Powerpc_relobj
<size
, big_endian
>*>(relinfo
->object
);
8420 const unsigned int local_count
= object
->local_symbol_count();
8421 unsigned int got2_shndx
= object
->got2_shndx();
8422 Address got2_addend
= 0;
8423 if (got2_shndx
!= 0)
8425 got2_addend
= object
->get_output_section_offset(got2_shndx
);
8426 gold_assert(got2_addend
!= invalid_address
);
8429 unsigned char* pwrite
= reloc_view
;
8430 bool zap_next
= false;
8431 for (size_t i
= 0; i
< reloc_count
; ++i
, prelocs
+= reloc_size
)
8433 Relocatable_relocs::Reloc_strategy strategy
= relinfo
->rr
->strategy(i
);
8434 if (strategy
== Relocatable_relocs::RELOC_DISCARD
)
8437 Reltype
reloc(prelocs
);
8438 Reltype_write
reloc_write(pwrite
);
8440 Address offset
= reloc
.get_r_offset();
8441 typename
elfcpp::Elf_types
<size
>::Elf_WXword r_info
= reloc
.get_r_info();
8442 unsigned int r_sym
= elfcpp::elf_r_sym
<size
>(r_info
);
8443 unsigned int r_type
= elfcpp::elf_r_type
<size
>(r_info
);
8444 const unsigned int orig_r_sym
= r_sym
;
8445 typename
elfcpp::Elf_types
<size
>::Elf_Swxword addend
8446 = reloc
.get_r_addend();
8447 const Symbol
* gsym
= NULL
;
8451 // We could arrange to discard these and other relocs for
8452 // tls optimised sequences in the strategy methods, but for
8453 // now do as BFD ld does.
8454 r_type
= elfcpp::R_POWERPC_NONE
;
8458 // Get the new symbol index.
8459 Output_section
* os
= NULL
;
8460 if (r_sym
< local_count
)
8464 case Relocatable_relocs::RELOC_COPY
:
8465 case Relocatable_relocs::RELOC_SPECIAL
:
8468 r_sym
= object
->symtab_index(r_sym
);
8469 gold_assert(r_sym
!= -1U);
8473 case Relocatable_relocs::RELOC_ADJUST_FOR_SECTION_RELA
:
8475 // We are adjusting a section symbol. We need to find
8476 // the symbol table index of the section symbol for
8477 // the output section corresponding to input section
8478 // in which this symbol is defined.
8479 gold_assert(r_sym
< local_count
);
8481 unsigned int shndx
=
8482 object
->local_symbol_input_shndx(r_sym
, &is_ordinary
);
8483 gold_assert(is_ordinary
);
8484 os
= object
->output_section(shndx
);
8485 gold_assert(os
!= NULL
);
8486 gold_assert(os
->needs_symtab_index());
8487 r_sym
= os
->symtab_index();
8497 gsym
= object
->global_symbol(r_sym
);
8498 gold_assert(gsym
!= NULL
);
8499 if (gsym
->is_forwarder())
8500 gsym
= relinfo
->symtab
->resolve_forwards(gsym
);
8502 gold_assert(gsym
->has_symtab_index());
8503 r_sym
= gsym
->symtab_index();
8506 // Get the new offset--the location in the output section where
8507 // this relocation should be applied.
8508 if (static_cast<Address
>(offset_in_output_section
) != invalid_address
)
8509 offset
+= offset_in_output_section
;
8512 section_offset_type sot_offset
=
8513 convert_types
<section_offset_type
, Address
>(offset
);
8514 section_offset_type new_sot_offset
=
8515 output_section
->output_offset(object
, relinfo
->data_shndx
,
8517 gold_assert(new_sot_offset
!= -1);
8518 offset
= new_sot_offset
;
8521 // In an object file, r_offset is an offset within the section.
8522 // In an executable or dynamic object, generated by
8523 // --emit-relocs, r_offset is an absolute address.
8524 if (!parameters
->options().relocatable())
8526 offset
+= view_address
;
8527 if (static_cast<Address
>(offset_in_output_section
) != invalid_address
)
8528 offset
-= offset_in_output_section
;
8531 // Handle the reloc addend based on the strategy.
8532 if (strategy
== Relocatable_relocs::RELOC_COPY
)
8534 else if (strategy
== Relocatable_relocs::RELOC_ADJUST_FOR_SECTION_RELA
)
8536 const Symbol_value
<size
>* psymval
= object
->local_symbol(orig_r_sym
);
8537 gold_assert(os
!= NULL
);
8538 addend
= psymval
->value(object
, addend
) - os
->address();
8540 else if (strategy
== Relocatable_relocs::RELOC_SPECIAL
)
8544 if (addend
>= 32768)
8545 addend
+= got2_addend
;
8547 else if (r_type
== elfcpp::R_POWERPC_REL16_HA
)
8549 r_type
= elfcpp::R_POWERPC_ADDR16_HA
;
8552 else if (r_type
== elfcpp::R_POWERPC_REL16_LO
)
8554 r_type
= elfcpp::R_POWERPC_ADDR16_LO
;
8555 addend
-= d_offset
+ 4;
8561 if (!parameters
->options().relocatable())
8563 if (r_type
== elfcpp::R_POWERPC_GOT_TLSGD16
8564 || r_type
== elfcpp::R_POWERPC_GOT_TLSGD16_LO
8565 || r_type
== elfcpp::R_POWERPC_GOT_TLSGD16_HI
8566 || r_type
== elfcpp::R_POWERPC_GOT_TLSGD16_HA
)
8568 // First instruction of a global dynamic sequence,
8570 const bool final
= gsym
== NULL
|| gsym
->final_value_is_known();
8571 switch (this->optimize_tls_gd(final
))
8573 case tls::TLSOPT_TO_IE
:
8574 r_type
+= (elfcpp::R_POWERPC_GOT_TPREL16
8575 - elfcpp::R_POWERPC_GOT_TLSGD16
);
8577 case tls::TLSOPT_TO_LE
:
8578 if (r_type
== elfcpp::R_POWERPC_GOT_TLSGD16
8579 || r_type
== elfcpp::R_POWERPC_GOT_TLSGD16_LO
)
8580 r_type
= elfcpp::R_POWERPC_TPREL16_HA
;
8583 r_type
= elfcpp::R_POWERPC_NONE
;
8591 else if (r_type
== elfcpp::R_POWERPC_GOT_TLSLD16
8592 || r_type
== elfcpp::R_POWERPC_GOT_TLSLD16_LO
8593 || r_type
== elfcpp::R_POWERPC_GOT_TLSLD16_HI
8594 || r_type
== elfcpp::R_POWERPC_GOT_TLSLD16_HA
)
8596 // First instruction of a local dynamic sequence,
8598 if (this->optimize_tls_ld() == tls::TLSOPT_TO_LE
)
8600 if (r_type
== elfcpp::R_POWERPC_GOT_TLSLD16
8601 || r_type
== elfcpp::R_POWERPC_GOT_TLSLD16_LO
)
8603 r_type
= elfcpp::R_POWERPC_TPREL16_HA
;
8604 const Output_section
* os
= relinfo
->layout
->tls_segment()
8606 gold_assert(os
!= NULL
);
8607 gold_assert(os
->needs_symtab_index());
8608 r_sym
= os
->symtab_index();
8609 addend
= dtp_offset
;
8613 r_type
= elfcpp::R_POWERPC_NONE
;
8618 else if (r_type
== elfcpp::R_POWERPC_GOT_TPREL16
8619 || r_type
== elfcpp::R_POWERPC_GOT_TPREL16_LO
8620 || r_type
== elfcpp::R_POWERPC_GOT_TPREL16_HI
8621 || r_type
== elfcpp::R_POWERPC_GOT_TPREL16_HA
)
8623 // First instruction of initial exec sequence.
8624 const bool final
= gsym
== NULL
|| gsym
->final_value_is_known();
8625 if (this->optimize_tls_ie(final
) == tls::TLSOPT_TO_LE
)
8627 if (r_type
== elfcpp::R_POWERPC_GOT_TPREL16
8628 || r_type
== elfcpp::R_POWERPC_GOT_TPREL16_LO
)
8629 r_type
= elfcpp::R_POWERPC_TPREL16_HA
;
8632 r_type
= elfcpp::R_POWERPC_NONE
;
8637 else if ((size
== 64 && r_type
== elfcpp::R_PPC64_TLSGD
)
8638 || (size
== 32 && r_type
== elfcpp::R_PPC_TLSGD
))
8640 // Second instruction of a global dynamic sequence,
8641 // the __tls_get_addr call
8642 const bool final
= gsym
== NULL
|| gsym
->final_value_is_known();
8643 switch (this->optimize_tls_gd(final
))
8645 case tls::TLSOPT_TO_IE
:
8646 r_type
= elfcpp::R_POWERPC_NONE
;
8649 case tls::TLSOPT_TO_LE
:
8650 r_type
= elfcpp::R_POWERPC_TPREL16_LO
;
8658 else if ((size
== 64 && r_type
== elfcpp::R_PPC64_TLSLD
)
8659 || (size
== 32 && r_type
== elfcpp::R_PPC_TLSLD
))
8661 // Second instruction of a local dynamic sequence,
8662 // the __tls_get_addr call
8663 if (this->optimize_tls_ld() == tls::TLSOPT_TO_LE
)
8665 const Output_section
* os
= relinfo
->layout
->tls_segment()
8667 gold_assert(os
!= NULL
);
8668 gold_assert(os
->needs_symtab_index());
8669 r_sym
= os
->symtab_index();
8670 addend
= dtp_offset
;
8671 r_type
= elfcpp::R_POWERPC_TPREL16_LO
;
8676 else if (r_type
== elfcpp::R_POWERPC_TLS
)
8678 // Second instruction of an initial exec sequence
8679 const bool final
= gsym
== NULL
|| gsym
->final_value_is_known();
8680 if (this->optimize_tls_ie(final
) == tls::TLSOPT_TO_LE
)
8682 r_type
= elfcpp::R_POWERPC_TPREL16_LO
;
8688 reloc_write
.put_r_offset(offset
);
8689 reloc_write
.put_r_info(elfcpp::elf_r_info
<size
>(r_sym
, r_type
));
8690 reloc_write
.put_r_addend(addend
);
8692 pwrite
+= reloc_size
;
8695 gold_assert(static_cast<section_size_type
>(pwrite
- reloc_view
)
8696 == reloc_view_size
);
8699 // Return the value to use for a dynamic symbol which requires special
8700 // treatment. This is how we support equality comparisons of function
8701 // pointers across shared library boundaries, as described in the
8702 // processor specific ABI supplement.
8704 template<int size
, bool big_endian
>
8706 Target_powerpc
<size
, big_endian
>::do_dynsym_value(const Symbol
* gsym
) const
8710 gold_assert(gsym
->is_from_dynobj() && gsym
->has_plt_offset());
8711 for (typename
Stub_tables::const_iterator p
= this->stub_tables_
.begin();
8712 p
!= this->stub_tables_
.end();
8715 Address off
= (*p
)->find_plt_call_entry(gsym
);
8716 if (off
!= invalid_address
)
8717 return (*p
)->stub_address() + off
;
8720 else if (this->abiversion() >= 2)
8722 Address off
= this->glink_section()->find_global_entry(gsym
);
8723 if (off
!= invalid_address
)
8724 return this->glink_section()->global_entry_address() + off
;
8729 // Return the PLT address to use for a local symbol.
8730 template<int size
, bool big_endian
>
8732 Target_powerpc
<size
, big_endian
>::do_plt_address_for_local(
8733 const Relobj
* object
,
8734 unsigned int symndx
) const
8738 const Sized_relobj
<size
, big_endian
>* relobj
8739 = static_cast<const Sized_relobj
<size
, big_endian
>*>(object
);
8740 for (typename
Stub_tables::const_iterator p
= this->stub_tables_
.begin();
8741 p
!= this->stub_tables_
.end();
8744 Address off
= (*p
)->find_plt_call_entry(relobj
->sized_relobj(),
8746 if (off
!= invalid_address
)
8747 return (*p
)->stub_address() + off
;
8753 // Return the PLT address to use for a global symbol.
8754 template<int size
, bool big_endian
>
8756 Target_powerpc
<size
, big_endian
>::do_plt_address_for_global(
8757 const Symbol
* gsym
) const
8761 for (typename
Stub_tables::const_iterator p
= this->stub_tables_
.begin();
8762 p
!= this->stub_tables_
.end();
8765 Address off
= (*p
)->find_plt_call_entry(gsym
);
8766 if (off
!= invalid_address
)
8767 return (*p
)->stub_address() + off
;
8770 else if (this->abiversion() >= 2)
8772 Address off
= this->glink_section()->find_global_entry(gsym
);
8773 if (off
!= invalid_address
)
8774 return this->glink_section()->global_entry_address() + off
;
8779 // Return the offset to use for the GOT_INDX'th got entry which is
8780 // for a local tls symbol specified by OBJECT, SYMNDX.
8781 template<int size
, bool big_endian
>
8783 Target_powerpc
<size
, big_endian
>::do_tls_offset_for_local(
8784 const Relobj
* object
,
8785 unsigned int symndx
,
8786 unsigned int got_indx
) const
8788 const Powerpc_relobj
<size
, big_endian
>* ppc_object
8789 = static_cast<const Powerpc_relobj
<size
, big_endian
>*>(object
);
8790 if (ppc_object
->local_symbol(symndx
)->is_tls_symbol())
8792 for (Got_type got_type
= GOT_TYPE_TLSGD
;
8793 got_type
<= GOT_TYPE_TPREL
;
8794 got_type
= Got_type(got_type
+ 1))
8795 if (ppc_object
->local_has_got_offset(symndx
, got_type
))
8797 unsigned int off
= ppc_object
->local_got_offset(symndx
, got_type
);
8798 if (got_type
== GOT_TYPE_TLSGD
)
8800 if (off
== got_indx
* (size
/ 8))
8802 if (got_type
== GOT_TYPE_TPREL
)
8812 // Return the offset to use for the GOT_INDX'th got entry which is
8813 // for global tls symbol GSYM.
8814 template<int size
, bool big_endian
>
8816 Target_powerpc
<size
, big_endian
>::do_tls_offset_for_global(
8818 unsigned int got_indx
) const
8820 if (gsym
->type() == elfcpp::STT_TLS
)
8822 for (Got_type got_type
= GOT_TYPE_TLSGD
;
8823 got_type
<= GOT_TYPE_TPREL
;
8824 got_type
= Got_type(got_type
+ 1))
8825 if (gsym
->has_got_offset(got_type
))
8827 unsigned int off
= gsym
->got_offset(got_type
);
8828 if (got_type
== GOT_TYPE_TLSGD
)
8830 if (off
== got_indx
* (size
/ 8))
8832 if (got_type
== GOT_TYPE_TPREL
)
8842 // The selector for powerpc object files.
8844 template<int size
, bool big_endian
>
8845 class Target_selector_powerpc
: public Target_selector
8848 Target_selector_powerpc()
8849 : Target_selector(size
== 64 ? elfcpp::EM_PPC64
: elfcpp::EM_PPC
,
8852 ? (big_endian
? "elf64-powerpc" : "elf64-powerpcle")
8853 : (big_endian
? "elf32-powerpc" : "elf32-powerpcle")),
8855 ? (big_endian
? "elf64ppc" : "elf64lppc")
8856 : (big_endian
? "elf32ppc" : "elf32lppc")))
8860 do_instantiate_target()
8861 { return new Target_powerpc
<size
, big_endian
>(); }
8864 Target_selector_powerpc
<32, true> target_selector_ppc32
;
8865 Target_selector_powerpc
<32, false> target_selector_ppc32le
;
8866 Target_selector_powerpc
<64, true> target_selector_ppc64
;
8867 Target_selector_powerpc
<64, false> target_selector_ppc64le
;
8869 // Instantiate these constants for -O0
8870 template<int size
, bool big_endian
>
8871 const int Output_data_glink
<size
, big_endian
>::pltresolve_size
;
8872 template<int size
, bool big_endian
>
8873 const typename Output_data_glink
<size
, big_endian
>::Address
8874 Output_data_glink
<size
, big_endian
>::invalid_address
;
8875 template<int size
, bool big_endian
>
8876 const typename Stub_table
<size
, big_endian
>::Address
8877 Stub_table
<size
, big_endian
>::invalid_address
;
8878 template<int size
, bool big_endian
>
8879 const typename Target_powerpc
<size
, big_endian
>::Address
8880 Target_powerpc
<size
, big_endian
>::invalid_address
;
8882 } // End anonymous namespace.