1 | /* Support for HPPA 64-bit ELF
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2 | Copyright 1999, 2000, 2001 Free Software Foundation, Inc.
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3 |
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4 | This file is part of BFD, the Binary File Descriptor library.
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5 |
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6 | This program is free software; you can redistribute it and/or modify
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7 | it under the terms of the GNU General Public License as published by
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8 | the Free Software Foundation; either version 2 of the License, or
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9 | (at your option) any later version.
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10 |
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11 | This program is distributed in the hope that it will be useful,
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12 | but WITHOUT ANY WARRANTY; without even the implied warranty of
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13 | MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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14 | GNU General Public License for more details.
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15 |
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16 | You should have received a copy of the GNU General Public License
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17 | along with this program; if not, write to the Free Software
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18 | Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA. */
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19 |
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20 | #include "alloca-conf.h"
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21 | #include "bfd.h"
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22 | #include "sysdep.h"
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23 | #include "libbfd.h"
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24 | #include "elf-bfd.h"
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25 | #include "elf/hppa.h"
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26 | #include "libhppa.h"
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27 | #include "elf64-hppa.h"
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28 | #define ARCH_SIZE 64
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29 |
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30 | #define PLT_ENTRY_SIZE 0x10
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31 | #define DLT_ENTRY_SIZE 0x8
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32 | #define OPD_ENTRY_SIZE 0x20
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33 |
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34 | #define ELF_DYNAMIC_INTERPRETER "/usr/lib/pa20_64/dld.sl"
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35 |
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36 | /* The stub is supposed to load the target address and target's DP
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37 | value out of the PLT, then do an external branch to the target
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38 | address.
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39 |
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40 | LDD PLTOFF(%r27),%r1
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41 | BVE (%r1)
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42 | LDD PLTOFF+8(%r27),%r27
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43 |
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44 | Note that we must use the LDD with a 14 bit displacement, not the one
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45 | with a 5 bit displacement. */
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46 | static char plt_stub[] = {0x53, 0x61, 0x00, 0x00, 0xe8, 0x20, 0xd0, 0x00,
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47 | 0x53, 0x7b, 0x00, 0x00 };
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48 |
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49 | struct elf64_hppa_dyn_hash_entry
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50 | {
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51 | struct bfd_hash_entry root;
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52 |
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53 | /* Offsets for this symbol in various linker sections. */
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54 | bfd_vma dlt_offset;
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55 | bfd_vma plt_offset;
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56 | bfd_vma opd_offset;
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57 | bfd_vma stub_offset;
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58 |
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59 | /* The symbol table entry, if any, that this was derived from. */
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60 | struct elf_link_hash_entry *h;
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61 |
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62 | /* The index of the (possibly local) symbol in the input bfd and its
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63 | associated BFD. Needed so that we can have relocs against local
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64 | symbols in shared libraries. */
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65 | unsigned long sym_indx;
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66 | bfd *owner;
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67 |
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68 | /* Dynamic symbols may need to have two different values. One for
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69 | the dynamic symbol table, one for the normal symbol table.
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70 |
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71 | In such cases we store the symbol's real value and section
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72 | index here so we can restore the real value before we write
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73 | the normal symbol table. */
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74 | bfd_vma st_value;
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75 | int st_shndx;
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76 |
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77 | /* Used to count non-got, non-plt relocations for delayed sizing
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78 | of relocation sections. */
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79 | struct elf64_hppa_dyn_reloc_entry
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80 | {
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81 | /* Next relocation in the chain. */
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82 | struct elf64_hppa_dyn_reloc_entry *next;
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83 |
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84 | /* The type of the relocation. */
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85 | int type;
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86 |
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87 | /* The input section of the relocation. */
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88 | asection *sec;
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89 |
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90 | /* The index of the section symbol for the input section of
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91 | the relocation. Only needed when building shared libraries. */
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92 | int sec_symndx;
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93 |
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94 | /* The offset within the input section of the relocation. */
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95 | bfd_vma offset;
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96 |
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97 | /* The addend for the relocation. */
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98 | bfd_vma addend;
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99 |
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100 | } *reloc_entries;
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101 |
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102 | /* Nonzero if this symbol needs an entry in one of the linker
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103 | sections. */
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104 | unsigned want_dlt;
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105 | unsigned want_plt;
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106 | unsigned want_opd;
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107 | unsigned want_stub;
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108 | };
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109 |
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110 | struct elf64_hppa_dyn_hash_table
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111 | {
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112 | struct bfd_hash_table root;
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113 | };
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114 |
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115 | struct elf64_hppa_link_hash_table
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116 | {
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117 | struct elf_link_hash_table root;
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118 |
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119 | /* Shortcuts to get to the various linker defined sections. */
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120 | asection *dlt_sec;
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121 | asection *dlt_rel_sec;
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122 | asection *plt_sec;
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123 | asection *plt_rel_sec;
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124 | asection *opd_sec;
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125 | asection *opd_rel_sec;
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126 | asection *other_rel_sec;
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127 |
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128 | /* Offset of __gp within .plt section. When the PLT gets large we want
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129 | to slide __gp into the PLT section so that we can continue to use
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130 | single DP relative instructions to load values out of the PLT. */
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131 | bfd_vma gp_offset;
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132 |
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133 | /* Note this is not strictly correct. We should create a stub section for
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134 | each input section with calls. The stub section should be placed before
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135 | the section with the call. */
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136 | asection *stub_sec;
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137 |
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138 | bfd_vma text_segment_base;
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139 | bfd_vma data_segment_base;
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140 |
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141 | struct elf64_hppa_dyn_hash_table dyn_hash_table;
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142 |
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143 | /* We build tables to map from an input section back to its
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144 | symbol index. This is the BFD for which we currently have
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145 | a map. */
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146 | bfd *section_syms_bfd;
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147 |
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148 | /* Array of symbol numbers for each input section attached to the
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149 | current BFD. */
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150 | int *section_syms;
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151 | };
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152 |
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153 | #define elf64_hppa_hash_table(p) \
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154 | ((struct elf64_hppa_link_hash_table *) ((p)->hash))
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155 |
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156 | typedef struct bfd_hash_entry *(*new_hash_entry_func)
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157 | PARAMS ((struct bfd_hash_entry *, struct bfd_hash_table *, const char *));
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158 |
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159 | static boolean elf64_hppa_dyn_hash_table_init
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160 | PARAMS ((struct elf64_hppa_dyn_hash_table *ht, bfd *abfd,
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161 | new_hash_entry_func new));
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162 | static struct bfd_hash_entry *elf64_hppa_new_dyn_hash_entry
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163 | PARAMS ((struct bfd_hash_entry *entry, struct bfd_hash_table *table,
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164 | const char *string));
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165 | static struct bfd_link_hash_table *elf64_hppa_hash_table_create
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166 | PARAMS ((bfd *abfd));
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167 | static struct elf64_hppa_dyn_hash_entry *elf64_hppa_dyn_hash_lookup
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168 | PARAMS ((struct elf64_hppa_dyn_hash_table *table, const char *string,
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169 | boolean create, boolean copy));
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170 | static void elf64_hppa_dyn_hash_traverse
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171 | PARAMS ((struct elf64_hppa_dyn_hash_table *table,
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172 | boolean (*func) (struct elf64_hppa_dyn_hash_entry *, PTR),
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173 | PTR info));
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174 |
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175 | static const char *get_dyn_name
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176 | PARAMS ((asection *, struct elf_link_hash_entry *,
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177 | const Elf_Internal_Rela *, char **, size_t *));
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178 |
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179 | /* This must follow the definitions of the various derived linker
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180 | hash tables and shared functions. */
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181 | #include "elf-hppa.h"
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182 |
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183 | static boolean elf64_hppa_object_p
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184 | PARAMS ((bfd *));
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185 |
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186 | static boolean elf64_hppa_section_from_shdr
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187 | PARAMS ((bfd *, Elf64_Internal_Shdr *, char *));
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188 |
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189 | static void elf64_hppa_post_process_headers
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190 | PARAMS ((bfd *, struct bfd_link_info *));
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191 |
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192 | static boolean elf64_hppa_create_dynamic_sections
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193 | PARAMS ((bfd *, struct bfd_link_info *));
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194 |
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195 | static boolean elf64_hppa_adjust_dynamic_symbol
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196 | PARAMS ((struct bfd_link_info *, struct elf_link_hash_entry *));
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197 |
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198 | static boolean elf64_hppa_size_dynamic_sections
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199 | PARAMS ((bfd *, struct bfd_link_info *));
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200 |
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201 | static boolean elf64_hppa_finish_dynamic_symbol
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202 | PARAMS ((bfd *, struct bfd_link_info *,
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203 | struct elf_link_hash_entry *, Elf_Internal_Sym *));
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204 |
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205 | static boolean elf64_hppa_finish_dynamic_sections
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206 | PARAMS ((bfd *, struct bfd_link_info *));
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207 |
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208 | static boolean elf64_hppa_check_relocs
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209 | PARAMS ((bfd *, struct bfd_link_info *,
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210 | asection *, const Elf_Internal_Rela *));
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211 |
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212 | static boolean elf64_hppa_dynamic_symbol_p
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213 | PARAMS ((struct elf_link_hash_entry *, struct bfd_link_info *));
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214 |
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215 | static boolean elf64_hppa_mark_exported_functions
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216 | PARAMS ((struct elf_link_hash_entry *, PTR));
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217 |
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218 | static boolean elf64_hppa_finalize_opd
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219 | PARAMS ((struct elf64_hppa_dyn_hash_entry *, PTR));
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220 |
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221 | static boolean elf64_hppa_finalize_dlt
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222 | PARAMS ((struct elf64_hppa_dyn_hash_entry *, PTR));
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223 |
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224 | static boolean allocate_global_data_dlt
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225 | PARAMS ((struct elf64_hppa_dyn_hash_entry *, PTR));
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226 |
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227 | static boolean allocate_global_data_plt
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228 | PARAMS ((struct elf64_hppa_dyn_hash_entry *, PTR));
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229 |
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230 | static boolean allocate_global_data_stub
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231 | PARAMS ((struct elf64_hppa_dyn_hash_entry *, PTR));
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232 |
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233 | static boolean allocate_global_data_opd
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234 | PARAMS ((struct elf64_hppa_dyn_hash_entry *, PTR));
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235 |
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236 | static boolean get_reloc_section
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237 | PARAMS ((bfd *, struct elf64_hppa_link_hash_table *, asection *));
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238 |
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239 | static boolean count_dyn_reloc
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240 | PARAMS ((bfd *, struct elf64_hppa_dyn_hash_entry *,
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241 | int, asection *, int, bfd_vma, bfd_vma));
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242 |
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243 | static boolean allocate_dynrel_entries
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244 | PARAMS ((struct elf64_hppa_dyn_hash_entry *, PTR));
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245 |
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246 | static boolean elf64_hppa_finalize_dynreloc
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247 | PARAMS ((struct elf64_hppa_dyn_hash_entry *, PTR));
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248 |
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249 | static boolean get_opd
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250 | PARAMS ((bfd *, struct bfd_link_info *, struct elf64_hppa_link_hash_table *));
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251 |
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252 | static boolean get_plt
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253 | PARAMS ((bfd *, struct bfd_link_info *, struct elf64_hppa_link_hash_table *));
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254 |
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255 | static boolean get_dlt
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256 | PARAMS ((bfd *, struct bfd_link_info *, struct elf64_hppa_link_hash_table *));
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257 |
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258 | static boolean get_stub
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259 | PARAMS ((bfd *, struct bfd_link_info *, struct elf64_hppa_link_hash_table *));
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260 |
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261 | static int elf64_hppa_elf_get_symbol_type
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262 | PARAMS ((Elf_Internal_Sym *, int));
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263 |
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264 | static boolean
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265 | elf64_hppa_dyn_hash_table_init (ht, abfd, new)
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266 | struct elf64_hppa_dyn_hash_table *ht;
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267 | bfd *abfd ATTRIBUTE_UNUSED;
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268 | new_hash_entry_func new;
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269 | {
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270 | memset (ht, 0, sizeof (*ht));
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271 | return bfd_hash_table_init (&ht->root, new);
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272 | }
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273 |
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274 | static struct bfd_hash_entry*
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275 | elf64_hppa_new_dyn_hash_entry (entry, table, string)
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276 | struct bfd_hash_entry *entry;
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277 | struct bfd_hash_table *table;
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278 | const char *string;
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279 | {
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280 | struct elf64_hppa_dyn_hash_entry *ret;
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281 | ret = (struct elf64_hppa_dyn_hash_entry *) entry;
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282 |
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283 | /* Allocate the structure if it has not already been allocated by a
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284 | subclass. */
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285 | if (!ret)
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286 | ret = bfd_hash_allocate (table, sizeof (*ret));
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287 |
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288 | if (!ret)
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289 | return 0;
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290 |
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291 | /* Initialize our local data. All zeros, and definitely easier
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292 | than setting 8 bit fields. */
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293 | memset (ret, 0, sizeof (*ret));
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294 |
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295 | /* Call the allocation method of the superclass. */
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296 | ret = ((struct elf64_hppa_dyn_hash_entry *)
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297 | bfd_hash_newfunc ((struct bfd_hash_entry *) ret, table, string));
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298 |
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299 | return &ret->root;
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300 | }
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301 |
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302 | /* Create the derived linker hash table. The PA64 ELF port uses this
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303 | derived hash table to keep information specific to the PA ElF
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304 | linker (without using static variables). */
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305 |
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306 | static struct bfd_link_hash_table*
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307 | elf64_hppa_hash_table_create (abfd)
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308 | bfd *abfd;
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309 | {
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310 | struct elf64_hppa_link_hash_table *ret;
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311 |
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312 | ret = bfd_zalloc (abfd, sizeof (*ret));
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313 | if (!ret)
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314 | return 0;
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315 | if (!_bfd_elf_link_hash_table_init (&ret->root, abfd,
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316 | _bfd_elf_link_hash_newfunc))
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317 | {
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318 | bfd_release (abfd, ret);
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319 | return 0;
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320 | }
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321 |
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322 | if (!elf64_hppa_dyn_hash_table_init (&ret->dyn_hash_table, abfd,
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323 | elf64_hppa_new_dyn_hash_entry))
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324 | return 0;
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325 | return &ret->root.root;
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326 | }
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327 |
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328 | /* Look up an entry in a PA64 ELF linker hash table. */
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329 |
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330 | static struct elf64_hppa_dyn_hash_entry *
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331 | elf64_hppa_dyn_hash_lookup(table, string, create, copy)
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332 | struct elf64_hppa_dyn_hash_table *table;
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333 | const char *string;
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334 | boolean create, copy;
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335 | {
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336 | return ((struct elf64_hppa_dyn_hash_entry *)
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337 | bfd_hash_lookup (&table->root, string, create, copy));
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338 | }
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339 |
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340 | /* Traverse a PA64 ELF linker hash table. */
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341 |
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342 | static void
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343 | elf64_hppa_dyn_hash_traverse (table, func, info)
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344 | struct elf64_hppa_dyn_hash_table *table;
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345 | boolean (*func) PARAMS ((struct elf64_hppa_dyn_hash_entry *, PTR));
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346 | PTR info;
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347 | {
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348 | (bfd_hash_traverse
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349 | (&table->root,
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350 | (boolean (*) PARAMS ((struct bfd_hash_entry *, PTR))) func,
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351 | info));
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352 | }
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353 | |
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354 |
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355 | /* Return nonzero if ABFD represents a PA2.0 ELF64 file.
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356 |
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357 | Additionally we set the default architecture and machine. */
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358 | static boolean
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359 | elf64_hppa_object_p (abfd)
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360 | bfd *abfd;
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361 | {
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362 | Elf_Internal_Ehdr * i_ehdrp;
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363 | unsigned int flags;
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364 |
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365 | i_ehdrp = elf_elfheader (abfd);
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366 | if (strcmp (bfd_get_target (abfd), "elf64-hppa-linux") == 0)
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367 | {
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368 | if (i_ehdrp->e_ident[EI_OSABI] != ELFOSABI_LINUX)
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369 | return false;
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370 | }
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371 | else
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372 | {
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373 | if (i_ehdrp->e_ident[EI_OSABI] != ELFOSABI_HPUX)
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374 | return false;
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375 | }
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376 |
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377 | flags = i_ehdrp->e_flags;
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378 | switch (flags & (EF_PARISC_ARCH | EF_PARISC_WIDE))
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379 | {
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380 | case EFA_PARISC_1_0:
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381 | return bfd_default_set_arch_mach (abfd, bfd_arch_hppa, 10);
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382 | case EFA_PARISC_1_1:
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383 | return bfd_default_set_arch_mach (abfd, bfd_arch_hppa, 11);
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384 | case EFA_PARISC_2_0:
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385 | return bfd_default_set_arch_mach (abfd, bfd_arch_hppa, 20);
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386 | case EFA_PARISC_2_0 | EF_PARISC_WIDE:
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387 | return bfd_default_set_arch_mach (abfd, bfd_arch_hppa, 25);
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388 | }
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389 | /* Don't be fussy. */
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390 | return true;
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391 | }
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392 |
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393 | /* Given section type (hdr->sh_type), return a boolean indicating
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394 | whether or not the section is an elf64-hppa specific section. */
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395 | static boolean
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396 | elf64_hppa_section_from_shdr (abfd, hdr, name)
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397 | bfd *abfd;
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398 | Elf64_Internal_Shdr *hdr;
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399 | char *name;
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400 | {
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401 | asection *newsect;
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402 |
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403 | switch (hdr->sh_type)
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404 | {
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405 | case SHT_PARISC_EXT:
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406 | if (strcmp (name, ".PARISC.archext") != 0)
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407 | return false;
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408 | break;
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409 | case SHT_PARISC_UNWIND:
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410 | if (strcmp (name, ".PARISC.unwind") != 0)
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411 | return false;
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412 | break;
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413 | case SHT_PARISC_DOC:
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414 | case SHT_PARISC_ANNOT:
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415 | default:
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416 | return false;
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417 | }
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418 |
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419 | if (! _bfd_elf_make_section_from_shdr (abfd, hdr, name))
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420 | return false;
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421 | newsect = hdr->bfd_section;
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422 |
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423 | return true;
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424 | }
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425 |
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426 | /* Construct a string for use in the elf64_hppa_dyn_hash_table. The
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427 | name describes what was once potentially anonymous memory. We
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428 | allocate memory as necessary, possibly reusing PBUF/PLEN. */
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429 |
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430 | static const char *
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431 | get_dyn_name (sec, h, rel, pbuf, plen)
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432 | asection *sec;
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433 | struct elf_link_hash_entry *h;
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434 | const Elf_Internal_Rela *rel;
|
---|
435 | char **pbuf;
|
---|
436 | size_t *plen;
|
---|
437 | {
|
---|
438 | size_t nlen, tlen;
|
---|
439 | char *buf;
|
---|
440 | size_t len;
|
---|
441 |
|
---|
442 | if (h && rel->r_addend == 0)
|
---|
443 | return h->root.root.string;
|
---|
444 |
|
---|
445 | if (h)
|
---|
446 | nlen = strlen (h->root.root.string);
|
---|
447 | else
|
---|
448 | nlen = 8 + 1 + sizeof (rel->r_info) * 2 - 8;
|
---|
449 | tlen = nlen + 1 + sizeof (rel->r_addend) * 2 + 1;
|
---|
450 |
|
---|
451 | len = *plen;
|
---|
452 | buf = *pbuf;
|
---|
453 | if (len < tlen)
|
---|
454 | {
|
---|
455 | if (buf)
|
---|
456 | free (buf);
|
---|
457 | *pbuf = buf = malloc (tlen);
|
---|
458 | *plen = len = tlen;
|
---|
459 | if (!buf)
|
---|
460 | return NULL;
|
---|
461 | }
|
---|
462 |
|
---|
463 | if (h)
|
---|
464 | {
|
---|
465 | memcpy (buf, h->root.root.string, nlen);
|
---|
466 | buf[nlen++] = '+';
|
---|
467 | sprintf_vma (buf + nlen, rel->r_addend);
|
---|
468 | }
|
---|
469 | else
|
---|
470 | {
|
---|
471 | nlen = sprintf (buf, "%x:%lx",
|
---|
472 | sec->id & 0xffffffff,
|
---|
473 | (long) ELF64_R_SYM (rel->r_info));
|
---|
474 | if (rel->r_addend)
|
---|
475 | {
|
---|
476 | buf[nlen++] = '+';
|
---|
477 | sprintf_vma (buf + nlen, rel->r_addend);
|
---|
478 | }
|
---|
479 | }
|
---|
480 |
|
---|
481 | return buf;
|
---|
482 | }
|
---|
483 |
|
---|
484 | /* SEC is a section containing relocs for an input BFD when linking; return
|
---|
485 | a suitable section for holding relocs in the output BFD for a link. */
|
---|
486 |
|
---|
487 | static boolean
|
---|
488 | get_reloc_section (abfd, hppa_info, sec)
|
---|
489 | bfd *abfd;
|
---|
490 | struct elf64_hppa_link_hash_table *hppa_info;
|
---|
491 | asection *sec;
|
---|
492 | {
|
---|
493 | const char *srel_name;
|
---|
494 | asection *srel;
|
---|
495 | bfd *dynobj;
|
---|
496 |
|
---|
497 | srel_name = (bfd_elf_string_from_elf_section
|
---|
498 | (abfd, elf_elfheader(abfd)->e_shstrndx,
|
---|
499 | elf_section_data(sec)->rel_hdr.sh_name));
|
---|
500 | if (srel_name == NULL)
|
---|
501 | return false;
|
---|
502 |
|
---|
503 | BFD_ASSERT ((strncmp (srel_name, ".rela", 5) == 0
|
---|
504 | && strcmp (bfd_get_section_name (abfd, sec),
|
---|
505 | srel_name+5) == 0)
|
---|
506 | || (strncmp (srel_name, ".rel", 4) == 0
|
---|
507 | && strcmp (bfd_get_section_name (abfd, sec),
|
---|
508 | srel_name+4) == 0));
|
---|
509 |
|
---|
510 | dynobj = hppa_info->root.dynobj;
|
---|
511 | if (!dynobj)
|
---|
512 | hppa_info->root.dynobj = dynobj = abfd;
|
---|
513 |
|
---|
514 | srel = bfd_get_section_by_name (dynobj, srel_name);
|
---|
515 | if (srel == NULL)
|
---|
516 | {
|
---|
517 | srel = bfd_make_section (dynobj, srel_name);
|
---|
518 | if (srel == NULL
|
---|
519 | || !bfd_set_section_flags (dynobj, srel,
|
---|
520 | (SEC_ALLOC
|
---|
521 | | SEC_LOAD
|
---|
522 | | SEC_HAS_CONTENTS
|
---|
523 | | SEC_IN_MEMORY
|
---|
524 | | SEC_LINKER_CREATED
|
---|
525 | | SEC_READONLY))
|
---|
526 | || !bfd_set_section_alignment (dynobj, srel, 3))
|
---|
527 | return false;
|
---|
528 | }
|
---|
529 |
|
---|
530 | hppa_info->other_rel_sec = srel;
|
---|
531 | return true;
|
---|
532 | }
|
---|
533 |
|
---|
534 | /* Add a new entry to the list of dynamic relocations against DYN_H.
|
---|
535 |
|
---|
536 | We use this to keep a record of all the FPTR relocations against a
|
---|
537 | particular symbol so that we can create FPTR relocations in the
|
---|
538 | output file. */
|
---|
539 |
|
---|
540 | static boolean
|
---|
541 | count_dyn_reloc (abfd, dyn_h, type, sec, sec_symndx, offset, addend)
|
---|
542 | bfd *abfd;
|
---|
543 | struct elf64_hppa_dyn_hash_entry *dyn_h;
|
---|
544 | int type;
|
---|
545 | asection *sec;
|
---|
546 | int sec_symndx;
|
---|
547 | bfd_vma offset;
|
---|
548 | bfd_vma addend;
|
---|
549 | {
|
---|
550 | struct elf64_hppa_dyn_reloc_entry *rent;
|
---|
551 |
|
---|
552 | rent = (struct elf64_hppa_dyn_reloc_entry *)
|
---|
553 | bfd_alloc (abfd, sizeof (*rent));
|
---|
554 | if (!rent)
|
---|
555 | return false;
|
---|
556 |
|
---|
557 | rent->next = dyn_h->reloc_entries;
|
---|
558 | rent->type = type;
|
---|
559 | rent->sec = sec;
|
---|
560 | rent->sec_symndx = sec_symndx;
|
---|
561 | rent->offset = offset;
|
---|
562 | rent->addend = addend;
|
---|
563 | dyn_h->reloc_entries = rent;
|
---|
564 |
|
---|
565 | return true;
|
---|
566 | }
|
---|
567 |
|
---|
568 | /* Scan the RELOCS and record the type of dynamic entries that each
|
---|
569 | referenced symbol needs. */
|
---|
570 |
|
---|
571 | static boolean
|
---|
572 | elf64_hppa_check_relocs (abfd, info, sec, relocs)
|
---|
573 | bfd *abfd;
|
---|
574 | struct bfd_link_info *info;
|
---|
575 | asection *sec;
|
---|
576 | const Elf_Internal_Rela *relocs;
|
---|
577 | {
|
---|
578 | struct elf64_hppa_link_hash_table *hppa_info;
|
---|
579 | const Elf_Internal_Rela *relend;
|
---|
580 | Elf_Internal_Shdr *symtab_hdr;
|
---|
581 | const Elf_Internal_Rela *rel;
|
---|
582 | asection *dlt, *plt, *stubs;
|
---|
583 | char *buf;
|
---|
584 | size_t buf_len;
|
---|
585 | int sec_symndx;
|
---|
586 |
|
---|
587 | if (info->relocateable)
|
---|
588 | return true;
|
---|
589 |
|
---|
590 | /* If this is the first dynamic object found in the link, create
|
---|
591 | the special sections required for dynamic linking. */
|
---|
592 | if (! elf_hash_table (info)->dynamic_sections_created)
|
---|
593 | {
|
---|
594 | if (! bfd_elf64_link_create_dynamic_sections (abfd, info))
|
---|
595 | return false;
|
---|
596 | }
|
---|
597 |
|
---|
598 | hppa_info = elf64_hppa_hash_table (info);
|
---|
599 | symtab_hdr = &elf_tdata (abfd)->symtab_hdr;
|
---|
600 |
|
---|
601 | /* If necessary, build a new table holding section symbols indices
|
---|
602 | for this BFD. This is disgusting. */
|
---|
603 |
|
---|
604 | if (info->shared && hppa_info->section_syms_bfd != abfd)
|
---|
605 | {
|
---|
606 | unsigned long i;
|
---|
607 | int highest_shndx;
|
---|
608 | Elf_Internal_Sym *local_syms, *isym;
|
---|
609 | Elf64_External_Sym *ext_syms, *esym;
|
---|
610 |
|
---|
611 | /* We're done with the old cache of section index to section symbol
|
---|
612 | index information. Free it.
|
---|
613 |
|
---|
614 | ?!? Note we leak the last section_syms array. Presumably we
|
---|
615 | could free it in one of the later routines in this file. */
|
---|
616 | if (hppa_info->section_syms)
|
---|
617 | free (hppa_info->section_syms);
|
---|
618 |
|
---|
619 | /* Allocate memory for the internal and external symbols. */
|
---|
620 | local_syms
|
---|
621 | = (Elf_Internal_Sym *) bfd_malloc (symtab_hdr->sh_info
|
---|
622 | * sizeof (Elf_Internal_Sym));
|
---|
623 | if (local_syms == NULL)
|
---|
624 | return false;
|
---|
625 |
|
---|
626 | ext_syms
|
---|
627 | = (Elf64_External_Sym *) bfd_malloc (symtab_hdr->sh_info
|
---|
628 | * sizeof (Elf64_External_Sym));
|
---|
629 | if (ext_syms == NULL)
|
---|
630 | {
|
---|
631 | free (local_syms);
|
---|
632 | return false;
|
---|
633 | }
|
---|
634 |
|
---|
635 | /* Read in the local symbols. */
|
---|
636 | if (bfd_seek (abfd, symtab_hdr->sh_offset, SEEK_SET) != 0
|
---|
637 | || bfd_read (ext_syms, 1,
|
---|
638 | (symtab_hdr->sh_info
|
---|
639 | * sizeof (Elf64_External_Sym)), abfd)
|
---|
640 | != (symtab_hdr->sh_info * sizeof (Elf64_External_Sym)))
|
---|
641 | {
|
---|
642 | free (local_syms);
|
---|
643 | free (ext_syms);
|
---|
644 | return false;
|
---|
645 | }
|
---|
646 |
|
---|
647 | /* Swap in the local symbols, also record the highest section index
|
---|
648 | referenced by the local symbols. */
|
---|
649 | isym = local_syms;
|
---|
650 | esym = ext_syms;
|
---|
651 | highest_shndx = 0;
|
---|
652 | for (i = 0; i < symtab_hdr->sh_info; i++, esym++, isym++)
|
---|
653 | {
|
---|
654 | bfd_elf64_swap_symbol_in (abfd, esym, isym);
|
---|
655 | if (isym->st_shndx > highest_shndx)
|
---|
656 | highest_shndx = isym->st_shndx;
|
---|
657 | }
|
---|
658 |
|
---|
659 | /* Now we can free the external symbols. */
|
---|
660 | free (ext_syms);
|
---|
661 |
|
---|
662 | /* Allocate an array to hold the section index to section symbol index
|
---|
663 | mapping. Bump by one since we start counting at zero. */
|
---|
664 | highest_shndx++;
|
---|
665 | hppa_info->section_syms = (int *) bfd_malloc (highest_shndx
|
---|
666 | * sizeof (int));
|
---|
667 |
|
---|
668 | /* Now walk the local symbols again. If we find a section symbol,
|
---|
669 | record the index of the symbol into the section_syms array. */
|
---|
670 | for (isym = local_syms, i = 0; i < symtab_hdr->sh_info; i++, isym++)
|
---|
671 | {
|
---|
672 | if (ELF_ST_TYPE (isym->st_info) == STT_SECTION)
|
---|
673 | hppa_info->section_syms[isym->st_shndx] = i;
|
---|
674 | }
|
---|
675 |
|
---|
676 | /* We are finished with the local symbols. Get rid of them. */
|
---|
677 | free (local_syms);
|
---|
678 |
|
---|
679 | /* Record which BFD we built the section_syms mapping for. */
|
---|
680 | hppa_info->section_syms_bfd = abfd;
|
---|
681 | }
|
---|
682 |
|
---|
683 | /* Record the symbol index for this input section. We may need it for
|
---|
684 | relocations when building shared libraries. When not building shared
|
---|
685 | libraries this value is never really used, but assign it to zero to
|
---|
686 | prevent out of bounds memory accesses in other routines. */
|
---|
687 | if (info->shared)
|
---|
688 | {
|
---|
689 | sec_symndx = _bfd_elf_section_from_bfd_section (abfd, sec);
|
---|
690 |
|
---|
691 | /* If we did not find a section symbol for this section, then
|
---|
692 | something went terribly wrong above. */
|
---|
693 | if (sec_symndx == -1)
|
---|
694 | return false;
|
---|
695 |
|
---|
696 | sec_symndx = hppa_info->section_syms[sec_symndx];
|
---|
697 | }
|
---|
698 | else
|
---|
699 | sec_symndx = 0;
|
---|
700 |
|
---|
701 | dlt = plt = stubs = NULL;
|
---|
702 | buf = NULL;
|
---|
703 | buf_len = 0;
|
---|
704 |
|
---|
705 | relend = relocs + sec->reloc_count;
|
---|
706 | for (rel = relocs; rel < relend; ++rel)
|
---|
707 | {
|
---|
708 | enum {
|
---|
709 | NEED_DLT = 1,
|
---|
710 | NEED_PLT = 2,
|
---|
711 | NEED_STUB = 4,
|
---|
712 | NEED_OPD = 8,
|
---|
713 | NEED_DYNREL = 16,
|
---|
714 | };
|
---|
715 |
|
---|
716 | struct elf_link_hash_entry *h = NULL;
|
---|
717 | unsigned long r_symndx = ELF64_R_SYM (rel->r_info);
|
---|
718 | struct elf64_hppa_dyn_hash_entry *dyn_h;
|
---|
719 | int need_entry;
|
---|
720 | const char *addr_name;
|
---|
721 | boolean maybe_dynamic;
|
---|
722 | int dynrel_type = R_PARISC_NONE;
|
---|
723 | static reloc_howto_type *howto;
|
---|
724 |
|
---|
725 | if (r_symndx >= symtab_hdr->sh_info)
|
---|
726 | {
|
---|
727 | /* We're dealing with a global symbol -- find its hash entry
|
---|
728 | and mark it as being referenced. */
|
---|
729 | long indx = r_symndx - symtab_hdr->sh_info;
|
---|
730 | h = elf_sym_hashes (abfd)[indx];
|
---|
731 | while (h->root.type == bfd_link_hash_indirect
|
---|
732 | || h->root.type == bfd_link_hash_warning)
|
---|
733 | h = (struct elf_link_hash_entry *) h->root.u.i.link;
|
---|
734 |
|
---|
735 | h->elf_link_hash_flags |= ELF_LINK_HASH_REF_REGULAR;
|
---|
736 | }
|
---|
737 |
|
---|
738 | /* We can only get preliminary data on whether a symbol is
|
---|
739 | locally or externally defined, as not all of the input files
|
---|
740 | have yet been processed. Do something with what we know, as
|
---|
741 | this may help reduce memory usage and processing time later. */
|
---|
742 | maybe_dynamic = false;
|
---|
743 | if (h && ((info->shared && ! info->symbolic)
|
---|
744 | || ! (h->elf_link_hash_flags & ELF_LINK_HASH_DEF_REGULAR)
|
---|
745 | || h->root.type == bfd_link_hash_defweak))
|
---|
746 | maybe_dynamic = true;
|
---|
747 |
|
---|
748 | howto = elf_hppa_howto_table + ELF64_R_TYPE (rel->r_info);
|
---|
749 | need_entry = 0;
|
---|
750 | switch (howto->type)
|
---|
751 | {
|
---|
752 | /* These are simple indirect references to symbols through the
|
---|
753 | DLT. We need to create a DLT entry for any symbols which
|
---|
754 | appears in a DLTIND relocation. */
|
---|
755 | case R_PARISC_DLTIND21L:
|
---|
756 | case R_PARISC_DLTIND14R:
|
---|
757 | case R_PARISC_DLTIND14F:
|
---|
758 | case R_PARISC_DLTIND14WR:
|
---|
759 | case R_PARISC_DLTIND14DR:
|
---|
760 | need_entry = NEED_DLT;
|
---|
761 | break;
|
---|
762 |
|
---|
763 | /* ?!? These need a DLT entry. But I have no idea what to do with
|
---|
764 | the "link time TP value. */
|
---|
765 | case R_PARISC_LTOFF_TP21L:
|
---|
766 | case R_PARISC_LTOFF_TP14R:
|
---|
767 | case R_PARISC_LTOFF_TP14F:
|
---|
768 | case R_PARISC_LTOFF_TP64:
|
---|
769 | case R_PARISC_LTOFF_TP14WR:
|
---|
770 | case R_PARISC_LTOFF_TP14DR:
|
---|
771 | case R_PARISC_LTOFF_TP16F:
|
---|
772 | case R_PARISC_LTOFF_TP16WF:
|
---|
773 | case R_PARISC_LTOFF_TP16DF:
|
---|
774 | need_entry = NEED_DLT;
|
---|
775 | break;
|
---|
776 |
|
---|
777 | /* These are function calls. Depending on their precise target we
|
---|
778 | may need to make a stub for them. The stub uses the PLT, so we
|
---|
779 | need to create PLT entries for these symbols too. */
|
---|
780 | case R_PARISC_PCREL12F:
|
---|
781 | case R_PARISC_PCREL17F:
|
---|
782 | case R_PARISC_PCREL22F:
|
---|
783 | case R_PARISC_PCREL32:
|
---|
784 | case R_PARISC_PCREL64:
|
---|
785 | case R_PARISC_PCREL21L:
|
---|
786 | case R_PARISC_PCREL17R:
|
---|
787 | case R_PARISC_PCREL17C:
|
---|
788 | case R_PARISC_PCREL14R:
|
---|
789 | case R_PARISC_PCREL14F:
|
---|
790 | case R_PARISC_PCREL22C:
|
---|
791 | case R_PARISC_PCREL14WR:
|
---|
792 | case R_PARISC_PCREL14DR:
|
---|
793 | case R_PARISC_PCREL16F:
|
---|
794 | case R_PARISC_PCREL16WF:
|
---|
795 | case R_PARISC_PCREL16DF:
|
---|
796 | need_entry = (NEED_PLT | NEED_STUB);
|
---|
797 | break;
|
---|
798 |
|
---|
799 | case R_PARISC_PLTOFF21L:
|
---|
800 | case R_PARISC_PLTOFF14R:
|
---|
801 | case R_PARISC_PLTOFF14F:
|
---|
802 | case R_PARISC_PLTOFF14WR:
|
---|
803 | case R_PARISC_PLTOFF14DR:
|
---|
804 | case R_PARISC_PLTOFF16F:
|
---|
805 | case R_PARISC_PLTOFF16WF:
|
---|
806 | case R_PARISC_PLTOFF16DF:
|
---|
807 | need_entry = (NEED_PLT);
|
---|
808 | break;
|
---|
809 |
|
---|
810 | case R_PARISC_DIR64:
|
---|
811 | if (info->shared || maybe_dynamic)
|
---|
812 | need_entry = (NEED_DYNREL);
|
---|
813 | dynrel_type = R_PARISC_DIR64;
|
---|
814 | break;
|
---|
815 |
|
---|
816 | /* This is an indirect reference through the DLT to get the address
|
---|
817 | of a OPD descriptor. Thus we need to make a DLT entry that points
|
---|
818 | to an OPD entry. */
|
---|
819 | case R_PARISC_LTOFF_FPTR21L:
|
---|
820 | case R_PARISC_LTOFF_FPTR14R:
|
---|
821 | case R_PARISC_LTOFF_FPTR14WR:
|
---|
822 | case R_PARISC_LTOFF_FPTR14DR:
|
---|
823 | case R_PARISC_LTOFF_FPTR32:
|
---|
824 | case R_PARISC_LTOFF_FPTR64:
|
---|
825 | case R_PARISC_LTOFF_FPTR16F:
|
---|
826 | case R_PARISC_LTOFF_FPTR16WF:
|
---|
827 | case R_PARISC_LTOFF_FPTR16DF:
|
---|
828 | if (info->shared || maybe_dynamic)
|
---|
829 | need_entry = (NEED_DLT | NEED_OPD);
|
---|
830 | else
|
---|
831 | need_entry = (NEED_DLT | NEED_OPD);
|
---|
832 | dynrel_type = R_PARISC_FPTR64;
|
---|
833 | break;
|
---|
834 |
|
---|
835 | /* This is a simple OPD entry. */
|
---|
836 | case R_PARISC_FPTR64:
|
---|
837 | if (info->shared || maybe_dynamic)
|
---|
838 | need_entry = (NEED_OPD | NEED_DYNREL);
|
---|
839 | else
|
---|
840 | need_entry = (NEED_OPD);
|
---|
841 | dynrel_type = R_PARISC_FPTR64;
|
---|
842 | break;
|
---|
843 |
|
---|
844 | /* Add more cases as needed. */
|
---|
845 | }
|
---|
846 |
|
---|
847 | if (!need_entry)
|
---|
848 | continue;
|
---|
849 |
|
---|
850 | /* Collect a canonical name for this address. */
|
---|
851 | addr_name = get_dyn_name (sec, h, rel, &buf, &buf_len);
|
---|
852 |
|
---|
853 | /* Collect the canonical entry data for this address. */
|
---|
854 | dyn_h = elf64_hppa_dyn_hash_lookup (&hppa_info->dyn_hash_table,
|
---|
855 | addr_name, true, true);
|
---|
856 | BFD_ASSERT (dyn_h);
|
---|
857 |
|
---|
858 | /* Stash away enough information to be able to find this symbol
|
---|
859 | regardless of whether or not it is local or global. */
|
---|
860 | dyn_h->h = h;
|
---|
861 | dyn_h->owner = abfd;
|
---|
862 | dyn_h->sym_indx = r_symndx;
|
---|
863 |
|
---|
864 | /* ?!? We may need to do some error checking in here. */
|
---|
865 | /* Create what's needed. */
|
---|
866 | if (need_entry & NEED_DLT)
|
---|
867 | {
|
---|
868 | if (! hppa_info->dlt_sec
|
---|
869 | && ! get_dlt (abfd, info, hppa_info))
|
---|
870 | goto err_out;
|
---|
871 | dyn_h->want_dlt = 1;
|
---|
872 | }
|
---|
873 |
|
---|
874 | if (need_entry & NEED_PLT)
|
---|
875 | {
|
---|
876 | if (! hppa_info->plt_sec
|
---|
877 | && ! get_plt (abfd, info, hppa_info))
|
---|
878 | goto err_out;
|
---|
879 | dyn_h->want_plt = 1;
|
---|
880 | }
|
---|
881 |
|
---|
882 | if (need_entry & NEED_STUB)
|
---|
883 | {
|
---|
884 | if (! hppa_info->stub_sec
|
---|
885 | && ! get_stub (abfd, info, hppa_info))
|
---|
886 | goto err_out;
|
---|
887 | dyn_h->want_stub = 1;
|
---|
888 | }
|
---|
889 |
|
---|
890 | if (need_entry & NEED_OPD)
|
---|
891 | {
|
---|
892 | if (! hppa_info->opd_sec
|
---|
893 | && ! get_opd (abfd, info, hppa_info))
|
---|
894 | goto err_out;
|
---|
895 |
|
---|
896 | dyn_h->want_opd = 1;
|
---|
897 |
|
---|
898 | /* FPTRs are not allocated by the dynamic linker for PA64, though
|
---|
899 | it is possible that will change in the future. */
|
---|
900 |
|
---|
901 | /* This could be a local function that had its address taken, in
|
---|
902 | which case H will be NULL. */
|
---|
903 | if (h)
|
---|
904 | h->elf_link_hash_flags |= ELF_LINK_HASH_NEEDS_PLT;
|
---|
905 | }
|
---|
906 |
|
---|
907 | /* Add a new dynamic relocation to the chain of dynamic
|
---|
908 | relocations for this symbol. */
|
---|
909 | if ((need_entry & NEED_DYNREL) && (sec->flags & SEC_ALLOC))
|
---|
910 | {
|
---|
911 | if (! hppa_info->other_rel_sec
|
---|
912 | && ! get_reloc_section (abfd, hppa_info, sec))
|
---|
913 | goto err_out;
|
---|
914 |
|
---|
915 | if (!count_dyn_reloc (abfd, dyn_h, dynrel_type, sec,
|
---|
916 | sec_symndx, rel->r_offset, rel->r_addend))
|
---|
917 | goto err_out;
|
---|
918 |
|
---|
919 | /* If we are building a shared library and we just recorded
|
---|
920 | a dynamic R_PARISC_FPTR64 relocation, then make sure the
|
---|
921 | section symbol for this section ends up in the dynamic
|
---|
922 | symbol table. */
|
---|
923 | if (info->shared && dynrel_type == R_PARISC_FPTR64
|
---|
924 | && ! (_bfd_elf64_link_record_local_dynamic_symbol
|
---|
925 | (info, abfd, sec_symndx)))
|
---|
926 | return false;
|
---|
927 | }
|
---|
928 | }
|
---|
929 |
|
---|
930 | if (buf)
|
---|
931 | free (buf);
|
---|
932 | return true;
|
---|
933 |
|
---|
934 | err_out:
|
---|
935 | if (buf)
|
---|
936 | free (buf);
|
---|
937 | return false;
|
---|
938 | }
|
---|
939 |
|
---|
940 | struct elf64_hppa_allocate_data
|
---|
941 | {
|
---|
942 | struct bfd_link_info *info;
|
---|
943 | bfd_size_type ofs;
|
---|
944 | };
|
---|
945 |
|
---|
946 | /* Should we do dynamic things to this symbol? */
|
---|
947 |
|
---|
948 | static boolean
|
---|
949 | elf64_hppa_dynamic_symbol_p (h, info)
|
---|
950 | struct elf_link_hash_entry *h;
|
---|
951 | struct bfd_link_info *info;
|
---|
952 | {
|
---|
953 | if (h == NULL)
|
---|
954 | return false;
|
---|
955 |
|
---|
956 | while (h->root.type == bfd_link_hash_indirect
|
---|
957 | || h->root.type == bfd_link_hash_warning)
|
---|
958 | h = (struct elf_link_hash_entry *) h->root.u.i.link;
|
---|
959 |
|
---|
960 | if (h->dynindx == -1)
|
---|
961 | return false;
|
---|
962 |
|
---|
963 | if (h->root.type == bfd_link_hash_undefweak
|
---|
964 | || h->root.type == bfd_link_hash_defweak)
|
---|
965 | return true;
|
---|
966 |
|
---|
967 | if (h->root.root.string[0] == '$' && h->root.root.string[1] == '$')
|
---|
968 | return false;
|
---|
969 |
|
---|
970 | if ((info->shared && !info->symbolic)
|
---|
971 | || ((h->elf_link_hash_flags
|
---|
972 | & (ELF_LINK_HASH_DEF_DYNAMIC | ELF_LINK_HASH_REF_REGULAR))
|
---|
973 | == (ELF_LINK_HASH_DEF_DYNAMIC | ELF_LINK_HASH_REF_REGULAR)))
|
---|
974 | return true;
|
---|
975 |
|
---|
976 | return false;
|
---|
977 | }
|
---|
978 |
|
---|
979 | /* Mark all funtions exported by this file so that we can later allocate
|
---|
980 | entries in .opd for them. */
|
---|
981 |
|
---|
982 | static boolean
|
---|
983 | elf64_hppa_mark_exported_functions (h, data)
|
---|
984 | struct elf_link_hash_entry *h;
|
---|
985 | PTR data;
|
---|
986 | {
|
---|
987 | struct bfd_link_info *info = (struct bfd_link_info *)data;
|
---|
988 | struct elf64_hppa_link_hash_table *hppa_info;
|
---|
989 |
|
---|
990 | hppa_info = elf64_hppa_hash_table (info);
|
---|
991 |
|
---|
992 | if (h
|
---|
993 | && (h->root.type == bfd_link_hash_defined
|
---|
994 | || h->root.type == bfd_link_hash_defweak)
|
---|
995 | && h->root.u.def.section->output_section != NULL
|
---|
996 | && h->type == STT_FUNC)
|
---|
997 | {
|
---|
998 | struct elf64_hppa_dyn_hash_entry *dyn_h;
|
---|
999 |
|
---|
1000 | /* Add this symbol to the PA64 linker hash table. */
|
---|
1001 | dyn_h = elf64_hppa_dyn_hash_lookup (&hppa_info->dyn_hash_table,
|
---|
1002 | h->root.root.string, true, true);
|
---|
1003 | BFD_ASSERT (dyn_h);
|
---|
1004 | dyn_h->h = h;
|
---|
1005 |
|
---|
1006 | if (! hppa_info->opd_sec
|
---|
1007 | && ! get_opd (hppa_info->root.dynobj, info, hppa_info))
|
---|
1008 | return false;
|
---|
1009 |
|
---|
1010 | dyn_h->want_opd = 1;
|
---|
1011 | /* Put a flag here for output_symbol_hook. */
|
---|
1012 | dyn_h->st_shndx = -1;
|
---|
1013 | h->elf_link_hash_flags |= ELF_LINK_HASH_NEEDS_PLT;
|
---|
1014 | }
|
---|
1015 |
|
---|
1016 | return true;
|
---|
1017 | }
|
---|
1018 |
|
---|
1019 | /* Allocate space for a DLT entry. */
|
---|
1020 |
|
---|
1021 | static boolean
|
---|
1022 | allocate_global_data_dlt (dyn_h, data)
|
---|
1023 | struct elf64_hppa_dyn_hash_entry *dyn_h;
|
---|
1024 | PTR data;
|
---|
1025 | {
|
---|
1026 | struct elf64_hppa_allocate_data *x = (struct elf64_hppa_allocate_data *)data;
|
---|
1027 |
|
---|
1028 | if (dyn_h->want_dlt)
|
---|
1029 | {
|
---|
1030 | struct elf_link_hash_entry *h = dyn_h->h;
|
---|
1031 |
|
---|
1032 | if (x->info->shared)
|
---|
1033 | {
|
---|
1034 | /* Possibly add the symbol to the local dynamic symbol
|
---|
1035 | table since we might need to create a dynamic relocation
|
---|
1036 | against it. */
|
---|
1037 | if (! h
|
---|
1038 | || (h && h->dynindx == -1))
|
---|
1039 | {
|
---|
1040 | bfd *owner;
|
---|
1041 | owner = (h ? h->root.u.def.section->owner : dyn_h->owner);
|
---|
1042 |
|
---|
1043 | if (!_bfd_elf64_link_record_local_dynamic_symbol
|
---|
1044 | (x->info, owner, dyn_h->sym_indx))
|
---|
1045 | return false;
|
---|
1046 | }
|
---|
1047 | }
|
---|
1048 |
|
---|
1049 | dyn_h->dlt_offset = x->ofs;
|
---|
1050 | x->ofs += DLT_ENTRY_SIZE;
|
---|
1051 | }
|
---|
1052 | return true;
|
---|
1053 | }
|
---|
1054 |
|
---|
1055 | /* Allocate space for a DLT.PLT entry. */
|
---|
1056 |
|
---|
1057 | static boolean
|
---|
1058 | allocate_global_data_plt (dyn_h, data)
|
---|
1059 | struct elf64_hppa_dyn_hash_entry *dyn_h;
|
---|
1060 | PTR data;
|
---|
1061 | {
|
---|
1062 | struct elf64_hppa_allocate_data *x = (struct elf64_hppa_allocate_data *)data;
|
---|
1063 |
|
---|
1064 | if (dyn_h->want_plt
|
---|
1065 | && elf64_hppa_dynamic_symbol_p (dyn_h->h, x->info)
|
---|
1066 | && !((dyn_h->h->root.type == bfd_link_hash_defined
|
---|
1067 | || dyn_h->h->root.type == bfd_link_hash_defweak)
|
---|
1068 | && dyn_h->h->root.u.def.section->output_section != NULL))
|
---|
1069 | {
|
---|
1070 | dyn_h->plt_offset = x->ofs;
|
---|
1071 | x->ofs += PLT_ENTRY_SIZE;
|
---|
1072 | if (dyn_h->plt_offset < 0x2000)
|
---|
1073 | elf64_hppa_hash_table (x->info)->gp_offset = dyn_h->plt_offset;
|
---|
1074 | }
|
---|
1075 | else
|
---|
1076 | dyn_h->want_plt = 0;
|
---|
1077 |
|
---|
1078 | return true;
|
---|
1079 | }
|
---|
1080 |
|
---|
1081 | /* Allocate space for a STUB entry. */
|
---|
1082 |
|
---|
1083 | static boolean
|
---|
1084 | allocate_global_data_stub (dyn_h, data)
|
---|
1085 | struct elf64_hppa_dyn_hash_entry *dyn_h;
|
---|
1086 | PTR data;
|
---|
1087 | {
|
---|
1088 | struct elf64_hppa_allocate_data *x = (struct elf64_hppa_allocate_data *)data;
|
---|
1089 |
|
---|
1090 | if (dyn_h->want_stub
|
---|
1091 | && elf64_hppa_dynamic_symbol_p (dyn_h->h, x->info)
|
---|
1092 | && !((dyn_h->h->root.type == bfd_link_hash_defined
|
---|
1093 | || dyn_h->h->root.type == bfd_link_hash_defweak)
|
---|
1094 | && dyn_h->h->root.u.def.section->output_section != NULL))
|
---|
1095 | {
|
---|
1096 | dyn_h->stub_offset = x->ofs;
|
---|
1097 | x->ofs += sizeof (plt_stub);
|
---|
1098 | }
|
---|
1099 | else
|
---|
1100 | dyn_h->want_stub = 0;
|
---|
1101 | return true;
|
---|
1102 | }
|
---|
1103 |
|
---|
1104 | /* Allocate space for a FPTR entry. */
|
---|
1105 |
|
---|
1106 | static boolean
|
---|
1107 | allocate_global_data_opd (dyn_h, data)
|
---|
1108 | struct elf64_hppa_dyn_hash_entry *dyn_h;
|
---|
1109 | PTR data;
|
---|
1110 | {
|
---|
1111 | struct elf64_hppa_allocate_data *x = (struct elf64_hppa_allocate_data *)data;
|
---|
1112 |
|
---|
1113 | if (dyn_h->want_opd)
|
---|
1114 | {
|
---|
1115 | struct elf_link_hash_entry *h = dyn_h->h;
|
---|
1116 |
|
---|
1117 | if (h)
|
---|
1118 | while (h->root.type == bfd_link_hash_indirect
|
---|
1119 | || h->root.type == bfd_link_hash_warning)
|
---|
1120 | h = (struct elf_link_hash_entry *) h->root.u.i.link;
|
---|
1121 |
|
---|
1122 | /* We never need an opd entry for a symbol which is not
|
---|
1123 | defined by this output file. */
|
---|
1124 | if (h && h->root.type == bfd_link_hash_undefined)
|
---|
1125 | dyn_h->want_opd = 0;
|
---|
1126 |
|
---|
1127 | /* If we are creating a shared library, took the address of a local
|
---|
1128 | function or might export this function from this object file, then
|
---|
1129 | we have to create an opd descriptor. */
|
---|
1130 | else if (x->info->shared
|
---|
1131 | || h == NULL
|
---|
1132 | || h->dynindx == -1
|
---|
1133 | || ((h->root.type == bfd_link_hash_defined
|
---|
1134 | || h->root.type == bfd_link_hash_defweak)
|
---|
1135 | && h->root.u.def.section->output_section != NULL))
|
---|
1136 | {
|
---|
1137 | /* If we are creating a shared library, then we will have to
|
---|
1138 | create a runtime relocation for the symbol to properly
|
---|
1139 | initialize the .opd entry. Make sure the symbol gets
|
---|
1140 | added to the dynamic symbol table. */
|
---|
1141 | if (x->info->shared
|
---|
1142 | && (h == NULL || (h->dynindx == -1)))
|
---|
1143 | {
|
---|
1144 | bfd *owner;
|
---|
1145 | owner = (h ? h->root.u.def.section->owner : dyn_h->owner);
|
---|
1146 |
|
---|
1147 | if (!_bfd_elf64_link_record_local_dynamic_symbol
|
---|
1148 | (x->info, owner, dyn_h->sym_indx))
|
---|
1149 | return false;
|
---|
1150 | }
|
---|
1151 |
|
---|
1152 | /* This may not be necessary or desirable anymore now that
|
---|
1153 | we have some support for dealing with section symbols
|
---|
1154 | in dynamic relocs. But name munging does make the result
|
---|
1155 | much easier to debug. ie, the EPLT reloc will reference
|
---|
1156 | a symbol like .foobar, instead of .text + offset. */
|
---|
1157 | if (x->info->shared && h)
|
---|
1158 | {
|
---|
1159 | char *new_name;
|
---|
1160 | struct elf_link_hash_entry *nh;
|
---|
1161 |
|
---|
1162 | new_name = alloca (strlen (h->root.root.string) + 2);
|
---|
1163 | new_name[0] = '.';
|
---|
1164 | strcpy (new_name + 1, h->root.root.string);
|
---|
1165 |
|
---|
1166 | nh = elf_link_hash_lookup (elf_hash_table (x->info),
|
---|
1167 | new_name, true, true, true);
|
---|
1168 |
|
---|
1169 | nh->root.type = h->root.type;
|
---|
1170 | nh->root.u.def.value = h->root.u.def.value;
|
---|
1171 | nh->root.u.def.section = h->root.u.def.section;
|
---|
1172 |
|
---|
1173 | if (! bfd_elf64_link_record_dynamic_symbol (x->info, nh))
|
---|
1174 | return false;
|
---|
1175 |
|
---|
1176 | }
|
---|
1177 | dyn_h->opd_offset = x->ofs;
|
---|
1178 | x->ofs += OPD_ENTRY_SIZE;
|
---|
1179 | }
|
---|
1180 |
|
---|
1181 | /* Otherwise we do not need an opd entry. */
|
---|
1182 | else
|
---|
1183 | dyn_h->want_opd = 0;
|
---|
1184 | }
|
---|
1185 | return true;
|
---|
1186 | }
|
---|
1187 |
|
---|
1188 | /* HP requires the EI_OSABI field to be filled in. The assignment to
|
---|
1189 | EI_ABIVERSION may not be strictly necessary. */
|
---|
1190 |
|
---|
1191 | static void
|
---|
1192 | elf64_hppa_post_process_headers (abfd, link_info)
|
---|
1193 | bfd * abfd;
|
---|
1194 | struct bfd_link_info * link_info ATTRIBUTE_UNUSED;
|
---|
1195 | {
|
---|
1196 | Elf_Internal_Ehdr * i_ehdrp;
|
---|
1197 |
|
---|
1198 | i_ehdrp = elf_elfheader (abfd);
|
---|
1199 |
|
---|
1200 | if (strcmp (bfd_get_target (abfd), "elf64-hppa-linux") == 0)
|
---|
1201 | {
|
---|
1202 | i_ehdrp->e_ident[EI_OSABI] = ELFOSABI_LINUX;
|
---|
1203 | }
|
---|
1204 | else
|
---|
1205 | {
|
---|
1206 | i_ehdrp->e_ident[EI_OSABI] = ELFOSABI_HPUX;
|
---|
1207 | i_ehdrp->e_ident[EI_ABIVERSION] = 1;
|
---|
1208 | }
|
---|
1209 | }
|
---|
1210 |
|
---|
1211 | /* Create function descriptor section (.opd). This section is called .opd
|
---|
1212 | because it contains "official prodecure descriptors". The "official"
|
---|
1213 | refers to the fact that these descriptors are used when taking the address
|
---|
1214 | of a procedure, thus ensuring a unique address for each procedure. */
|
---|
1215 |
|
---|
1216 | static boolean
|
---|
1217 | get_opd (abfd, info, hppa_info)
|
---|
1218 | bfd *abfd;
|
---|
1219 | struct bfd_link_info *info ATTRIBUTE_UNUSED;
|
---|
1220 | struct elf64_hppa_link_hash_table *hppa_info;
|
---|
1221 | {
|
---|
1222 | asection *opd;
|
---|
1223 | bfd *dynobj;
|
---|
1224 |
|
---|
1225 | opd = hppa_info->opd_sec;
|
---|
1226 | if (!opd)
|
---|
1227 | {
|
---|
1228 | dynobj = hppa_info->root.dynobj;
|
---|
1229 | if (!dynobj)
|
---|
1230 | hppa_info->root.dynobj = dynobj = abfd;
|
---|
1231 |
|
---|
1232 | opd = bfd_make_section (dynobj, ".opd");
|
---|
1233 | if (!opd
|
---|
1234 | || !bfd_set_section_flags (dynobj, opd,
|
---|
1235 | (SEC_ALLOC
|
---|
1236 | | SEC_LOAD
|
---|
1237 | | SEC_HAS_CONTENTS
|
---|
1238 | | SEC_IN_MEMORY
|
---|
1239 | | SEC_LINKER_CREATED))
|
---|
1240 | || !bfd_set_section_alignment (abfd, opd, 3))
|
---|
1241 | {
|
---|
1242 | BFD_ASSERT (0);
|
---|
1243 | return false;
|
---|
1244 | }
|
---|
1245 |
|
---|
1246 | hppa_info->opd_sec = opd;
|
---|
1247 | }
|
---|
1248 |
|
---|
1249 | return true;
|
---|
1250 | }
|
---|
1251 |
|
---|
1252 | /* Create the PLT section. */
|
---|
1253 |
|
---|
1254 | static boolean
|
---|
1255 | get_plt (abfd, info, hppa_info)
|
---|
1256 | bfd *abfd;
|
---|
1257 | struct bfd_link_info *info ATTRIBUTE_UNUSED;
|
---|
1258 | struct elf64_hppa_link_hash_table *hppa_info;
|
---|
1259 | {
|
---|
1260 | asection *plt;
|
---|
1261 | bfd *dynobj;
|
---|
1262 |
|
---|
1263 | plt = hppa_info->plt_sec;
|
---|
1264 | if (!plt)
|
---|
1265 | {
|
---|
1266 | dynobj = hppa_info->root.dynobj;
|
---|
1267 | if (!dynobj)
|
---|
1268 | hppa_info->root.dynobj = dynobj = abfd;
|
---|
1269 |
|
---|
1270 | plt = bfd_make_section (dynobj, ".plt");
|
---|
1271 | if (!plt
|
---|
1272 | || !bfd_set_section_flags (dynobj, plt,
|
---|
1273 | (SEC_ALLOC
|
---|
1274 | | SEC_LOAD
|
---|
1275 | | SEC_HAS_CONTENTS
|
---|
1276 | | SEC_IN_MEMORY
|
---|
1277 | | SEC_LINKER_CREATED))
|
---|
1278 | || !bfd_set_section_alignment (abfd, plt, 3))
|
---|
1279 | {
|
---|
1280 | BFD_ASSERT (0);
|
---|
1281 | return false;
|
---|
1282 | }
|
---|
1283 |
|
---|
1284 | hppa_info->plt_sec = plt;
|
---|
1285 | }
|
---|
1286 |
|
---|
1287 | return true;
|
---|
1288 | }
|
---|
1289 |
|
---|
1290 | /* Create the DLT section. */
|
---|
1291 |
|
---|
1292 | static boolean
|
---|
1293 | get_dlt (abfd, info, hppa_info)
|
---|
1294 | bfd *abfd;
|
---|
1295 | struct bfd_link_info *info ATTRIBUTE_UNUSED;
|
---|
1296 | struct elf64_hppa_link_hash_table *hppa_info;
|
---|
1297 | {
|
---|
1298 | asection *dlt;
|
---|
1299 | bfd *dynobj;
|
---|
1300 |
|
---|
1301 | dlt = hppa_info->dlt_sec;
|
---|
1302 | if (!dlt)
|
---|
1303 | {
|
---|
1304 | dynobj = hppa_info->root.dynobj;
|
---|
1305 | if (!dynobj)
|
---|
1306 | hppa_info->root.dynobj = dynobj = abfd;
|
---|
1307 |
|
---|
1308 | dlt = bfd_make_section (dynobj, ".dlt");
|
---|
1309 | if (!dlt
|
---|
1310 | || !bfd_set_section_flags (dynobj, dlt,
|
---|
1311 | (SEC_ALLOC
|
---|
1312 | | SEC_LOAD
|
---|
1313 | | SEC_HAS_CONTENTS
|
---|
1314 | | SEC_IN_MEMORY
|
---|
1315 | | SEC_LINKER_CREATED))
|
---|
1316 | || !bfd_set_section_alignment (abfd, dlt, 3))
|
---|
1317 | {
|
---|
1318 | BFD_ASSERT (0);
|
---|
1319 | return false;
|
---|
1320 | }
|
---|
1321 |
|
---|
1322 | hppa_info->dlt_sec = dlt;
|
---|
1323 | }
|
---|
1324 |
|
---|
1325 | return true;
|
---|
1326 | }
|
---|
1327 |
|
---|
1328 | /* Create the stubs section. */
|
---|
1329 |
|
---|
1330 | static boolean
|
---|
1331 | get_stub (abfd, info, hppa_info)
|
---|
1332 | bfd *abfd;
|
---|
1333 | struct bfd_link_info *info ATTRIBUTE_UNUSED;
|
---|
1334 | struct elf64_hppa_link_hash_table *hppa_info;
|
---|
1335 | {
|
---|
1336 | asection *stub;
|
---|
1337 | bfd *dynobj;
|
---|
1338 |
|
---|
1339 | stub = hppa_info->stub_sec;
|
---|
1340 | if (!stub)
|
---|
1341 | {
|
---|
1342 | dynobj = hppa_info->root.dynobj;
|
---|
1343 | if (!dynobj)
|
---|
1344 | hppa_info->root.dynobj = dynobj = abfd;
|
---|
1345 |
|
---|
1346 | stub = bfd_make_section (dynobj, ".stub");
|
---|
1347 | if (!stub
|
---|
1348 | || !bfd_set_section_flags (dynobj, stub,
|
---|
1349 | (SEC_ALLOC
|
---|
1350 | | SEC_LOAD
|
---|
1351 | | SEC_HAS_CONTENTS
|
---|
1352 | | SEC_IN_MEMORY
|
---|
1353 | | SEC_READONLY
|
---|
1354 | | SEC_LINKER_CREATED))
|
---|
1355 | || !bfd_set_section_alignment (abfd, stub, 3))
|
---|
1356 | {
|
---|
1357 | BFD_ASSERT (0);
|
---|
1358 | return false;
|
---|
1359 | }
|
---|
1360 |
|
---|
1361 | hppa_info->stub_sec = stub;
|
---|
1362 | }
|
---|
1363 |
|
---|
1364 | return true;
|
---|
1365 | }
|
---|
1366 |
|
---|
1367 | /* Create sections necessary for dynamic linking. This is only a rough
|
---|
1368 | cut and will likely change as we learn more about the somewhat
|
---|
1369 | unusual dynamic linking scheme HP uses.
|
---|
1370 |
|
---|
1371 | .stub:
|
---|
1372 | Contains code to implement cross-space calls. The first time one
|
---|
1373 | of the stubs is used it will call into the dynamic linker, later
|
---|
1374 | calls will go straight to the target.
|
---|
1375 |
|
---|
1376 | The only stub we support right now looks like
|
---|
1377 |
|
---|
1378 | ldd OFFSET(%dp),%r1
|
---|
1379 | bve %r0(%r1)
|
---|
1380 | ldd OFFSET+8(%dp),%dp
|
---|
1381 |
|
---|
1382 | Other stubs may be needed in the future. We may want the remove
|
---|
1383 | the break/nop instruction. It is only used right now to keep the
|
---|
1384 | offset of a .plt entry and a .stub entry in sync.
|
---|
1385 |
|
---|
1386 | .dlt:
|
---|
1387 | This is what most people call the .got. HP used a different name.
|
---|
1388 | Losers.
|
---|
1389 |
|
---|
1390 | .rela.dlt:
|
---|
1391 | Relocations for the DLT.
|
---|
1392 |
|
---|
1393 | .plt:
|
---|
1394 | Function pointers as address,gp pairs.
|
---|
1395 |
|
---|
1396 | .rela.plt:
|
---|
1397 | Should contain dynamic IPLT (and EPLT?) relocations.
|
---|
1398 |
|
---|
1399 | .opd:
|
---|
1400 | FPTRS
|
---|
1401 |
|
---|
1402 | .rela.opd:
|
---|
1403 | EPLT relocations for symbols exported from shared libraries. */
|
---|
1404 |
|
---|
1405 | static boolean
|
---|
1406 | elf64_hppa_create_dynamic_sections (abfd, info)
|
---|
1407 | bfd *abfd;
|
---|
1408 | struct bfd_link_info *info;
|
---|
1409 | {
|
---|
1410 | asection *s;
|
---|
1411 |
|
---|
1412 | if (! get_stub (abfd, info, elf64_hppa_hash_table (info)))
|
---|
1413 | return false;
|
---|
1414 |
|
---|
1415 | if (! get_dlt (abfd, info, elf64_hppa_hash_table (info)))
|
---|
1416 | return false;
|
---|
1417 |
|
---|
1418 | if (! get_plt (abfd, info, elf64_hppa_hash_table (info)))
|
---|
1419 | return false;
|
---|
1420 |
|
---|
1421 | if (! get_opd (abfd, info, elf64_hppa_hash_table (info)))
|
---|
1422 | return false;
|
---|
1423 |
|
---|
1424 | s = bfd_make_section(abfd, ".rela.dlt");
|
---|
1425 | if (s == NULL
|
---|
1426 | || !bfd_set_section_flags (abfd, s, (SEC_ALLOC | SEC_LOAD
|
---|
1427 | | SEC_HAS_CONTENTS
|
---|
1428 | | SEC_IN_MEMORY
|
---|
1429 | | SEC_READONLY
|
---|
1430 | | SEC_LINKER_CREATED))
|
---|
1431 | || !bfd_set_section_alignment (abfd, s, 3))
|
---|
1432 | return false;
|
---|
1433 | elf64_hppa_hash_table (info)->dlt_rel_sec = s;
|
---|
1434 |
|
---|
1435 | s = bfd_make_section(abfd, ".rela.plt");
|
---|
1436 | if (s == NULL
|
---|
1437 | || !bfd_set_section_flags (abfd, s, (SEC_ALLOC | SEC_LOAD
|
---|
1438 | | SEC_HAS_CONTENTS
|
---|
1439 | | SEC_IN_MEMORY
|
---|
1440 | | SEC_READONLY
|
---|
1441 | | SEC_LINKER_CREATED))
|
---|
1442 | || !bfd_set_section_alignment (abfd, s, 3))
|
---|
1443 | return false;
|
---|
1444 | elf64_hppa_hash_table (info)->plt_rel_sec = s;
|
---|
1445 |
|
---|
1446 | s = bfd_make_section(abfd, ".rela.data");
|
---|
1447 | if (s == NULL
|
---|
1448 | || !bfd_set_section_flags (abfd, s, (SEC_ALLOC | SEC_LOAD
|
---|
1449 | | SEC_HAS_CONTENTS
|
---|
1450 | | SEC_IN_MEMORY
|
---|
1451 | | SEC_READONLY
|
---|
1452 | | SEC_LINKER_CREATED))
|
---|
1453 | || !bfd_set_section_alignment (abfd, s, 3))
|
---|
1454 | return false;
|
---|
1455 | elf64_hppa_hash_table (info)->other_rel_sec = s;
|
---|
1456 |
|
---|
1457 | s = bfd_make_section(abfd, ".rela.opd");
|
---|
1458 | if (s == NULL
|
---|
1459 | || !bfd_set_section_flags (abfd, s, (SEC_ALLOC | SEC_LOAD
|
---|
1460 | | SEC_HAS_CONTENTS
|
---|
1461 | | SEC_IN_MEMORY
|
---|
1462 | | SEC_READONLY
|
---|
1463 | | SEC_LINKER_CREATED))
|
---|
1464 | || !bfd_set_section_alignment (abfd, s, 3))
|
---|
1465 | return false;
|
---|
1466 | elf64_hppa_hash_table (info)->opd_rel_sec = s;
|
---|
1467 |
|
---|
1468 | return true;
|
---|
1469 | }
|
---|
1470 |
|
---|
1471 | /* Allocate dynamic relocations for those symbols that turned out
|
---|
1472 | to be dynamic. */
|
---|
1473 |
|
---|
1474 | static boolean
|
---|
1475 | allocate_dynrel_entries (dyn_h, data)
|
---|
1476 | struct elf64_hppa_dyn_hash_entry *dyn_h;
|
---|
1477 | PTR data;
|
---|
1478 | {
|
---|
1479 | struct elf64_hppa_allocate_data *x = (struct elf64_hppa_allocate_data *)data;
|
---|
1480 | struct elf64_hppa_link_hash_table *hppa_info;
|
---|
1481 | struct elf64_hppa_dyn_reloc_entry *rent;
|
---|
1482 | boolean dynamic_symbol, shared;
|
---|
1483 |
|
---|
1484 | hppa_info = elf64_hppa_hash_table (x->info);
|
---|
1485 | dynamic_symbol = elf64_hppa_dynamic_symbol_p (dyn_h->h, x->info);
|
---|
1486 | shared = x->info->shared;
|
---|
1487 |
|
---|
1488 | /* We may need to allocate relocations for a non-dynamic symbol
|
---|
1489 | when creating a shared library. */
|
---|
1490 | if (!dynamic_symbol && !shared)
|
---|
1491 | return true;
|
---|
1492 |
|
---|
1493 | /* Take care of the normal data relocations. */
|
---|
1494 |
|
---|
1495 | for (rent = dyn_h->reloc_entries; rent; rent = rent->next)
|
---|
1496 | {
|
---|
1497 | switch (rent->type)
|
---|
1498 | {
|
---|
1499 | case R_PARISC_FPTR64:
|
---|
1500 | /* Allocate one iff we are not building a shared library and
|
---|
1501 | !want_opd, which by this point will be true only if we're
|
---|
1502 | actually allocating one statically in the main executable. */
|
---|
1503 | if (!x->info->shared && dyn_h->want_opd)
|
---|
1504 | continue;
|
---|
1505 | break;
|
---|
1506 | }
|
---|
1507 | hppa_info->other_rel_sec->_raw_size += sizeof (Elf64_External_Rela);
|
---|
1508 |
|
---|
1509 | /* Make sure this symbol gets into the dynamic symbol table if it is
|
---|
1510 | not already recorded. ?!? This should not be in the loop since
|
---|
1511 | the symbol need only be added once. */
|
---|
1512 | if (dyn_h->h == 0 || dyn_h->h->dynindx == -1)
|
---|
1513 | if (!_bfd_elf64_link_record_local_dynamic_symbol
|
---|
1514 | (x->info, rent->sec->owner, dyn_h->sym_indx))
|
---|
1515 | return false;
|
---|
1516 | }
|
---|
1517 |
|
---|
1518 | /* Take care of the GOT and PLT relocations. */
|
---|
1519 |
|
---|
1520 | if ((dynamic_symbol || shared) && dyn_h->want_dlt)
|
---|
1521 | hppa_info->dlt_rel_sec->_raw_size += sizeof (Elf64_External_Rela);
|
---|
1522 |
|
---|
1523 | /* If we are building a shared library, then every symbol that has an
|
---|
1524 | opd entry will need an EPLT relocation to relocate the symbol's address
|
---|
1525 | and __gp value based on the runtime load address. */
|
---|
1526 | if (shared && dyn_h->want_opd)
|
---|
1527 | hppa_info->opd_rel_sec->_raw_size += sizeof (Elf64_External_Rela);
|
---|
1528 |
|
---|
1529 | if (dyn_h->want_plt && dynamic_symbol)
|
---|
1530 | {
|
---|
1531 | bfd_size_type t = 0;
|
---|
1532 |
|
---|
1533 | /* Dynamic symbols get one IPLT relocation. Local symbols in
|
---|
1534 | shared libraries get two REL relocations. Local symbols in
|
---|
1535 | main applications get nothing. */
|
---|
1536 | if (dynamic_symbol)
|
---|
1537 | t = sizeof (Elf64_External_Rela);
|
---|
1538 | else if (shared)
|
---|
1539 | t = 2 * sizeof (Elf64_External_Rela);
|
---|
1540 |
|
---|
1541 | hppa_info->plt_rel_sec->_raw_size += t;
|
---|
1542 | }
|
---|
1543 |
|
---|
1544 | return true;
|
---|
1545 | }
|
---|
1546 |
|
---|
1547 | /* Adjust a symbol defined by a dynamic object and referenced by a
|
---|
1548 | regular object. */
|
---|
1549 |
|
---|
1550 | static boolean
|
---|
1551 | elf64_hppa_adjust_dynamic_symbol (info, h)
|
---|
1552 | struct bfd_link_info *info ATTRIBUTE_UNUSED;
|
---|
1553 | struct elf_link_hash_entry *h;
|
---|
1554 | {
|
---|
1555 | /* ??? Undefined symbols with PLT entries should be re-defined
|
---|
1556 | to be the PLT entry. */
|
---|
1557 |
|
---|
1558 | /* If this is a weak symbol, and there is a real definition, the
|
---|
1559 | processor independent code will have arranged for us to see the
|
---|
1560 | real definition first, and we can just use the same value. */
|
---|
1561 | if (h->weakdef != NULL)
|
---|
1562 | {
|
---|
1563 | BFD_ASSERT (h->weakdef->root.type == bfd_link_hash_defined
|
---|
1564 | || h->weakdef->root.type == bfd_link_hash_defweak);
|
---|
1565 | h->root.u.def.section = h->weakdef->root.u.def.section;
|
---|
1566 | h->root.u.def.value = h->weakdef->root.u.def.value;
|
---|
1567 | return true;
|
---|
1568 | }
|
---|
1569 |
|
---|
1570 | /* If this is a reference to a symbol defined by a dynamic object which
|
---|
1571 | is not a function, we might allocate the symbol in our .dynbss section
|
---|
1572 | and allocate a COPY dynamic relocation.
|
---|
1573 |
|
---|
1574 | But PA64 code is canonically PIC, so as a rule we can avoid this sort
|
---|
1575 | of hackery. */
|
---|
1576 |
|
---|
1577 | return true;
|
---|
1578 | }
|
---|
1579 |
|
---|
1580 | /* Set the final sizes of the dynamic sections and allocate memory for
|
---|
1581 | the contents of our special sections. */
|
---|
1582 |
|
---|
1583 | static boolean
|
---|
1584 | elf64_hppa_size_dynamic_sections (output_bfd, info)
|
---|
1585 | bfd *output_bfd;
|
---|
1586 | struct bfd_link_info *info;
|
---|
1587 | {
|
---|
1588 | bfd *dynobj;
|
---|
1589 | asection *s;
|
---|
1590 | boolean plt;
|
---|
1591 | boolean relocs;
|
---|
1592 | boolean reltext;
|
---|
1593 | struct elf64_hppa_allocate_data data;
|
---|
1594 | struct elf64_hppa_link_hash_table *hppa_info;
|
---|
1595 |
|
---|
1596 | hppa_info = elf64_hppa_hash_table (info);
|
---|
1597 |
|
---|
1598 | dynobj = elf_hash_table (info)->dynobj;
|
---|
1599 | BFD_ASSERT (dynobj != NULL);
|
---|
1600 |
|
---|
1601 | if (elf_hash_table (info)->dynamic_sections_created)
|
---|
1602 | {
|
---|
1603 | /* Set the contents of the .interp section to the interpreter. */
|
---|
1604 | if (! info->shared)
|
---|
1605 | {
|
---|
1606 | s = bfd_get_section_by_name (dynobj, ".interp");
|
---|
1607 | BFD_ASSERT (s != NULL);
|
---|
1608 | s->_raw_size = sizeof ELF_DYNAMIC_INTERPRETER;
|
---|
1609 | s->contents = (unsigned char *) ELF_DYNAMIC_INTERPRETER;
|
---|
1610 | }
|
---|
1611 | }
|
---|
1612 | else
|
---|
1613 | {
|
---|
1614 | /* We may have created entries in the .rela.got section.
|
---|
1615 | However, if we are not creating the dynamic sections, we will
|
---|
1616 | not actually use these entries. Reset the size of .rela.dlt,
|
---|
1617 | which will cause it to get stripped from the output file
|
---|
1618 | below. */
|
---|
1619 | s = bfd_get_section_by_name (dynobj, ".rela.dlt");
|
---|
1620 | if (s != NULL)
|
---|
1621 | s->_raw_size = 0;
|
---|
1622 | }
|
---|
1623 |
|
---|
1624 | /* Allocate the GOT entries. */
|
---|
1625 |
|
---|
1626 | data.info = info;
|
---|
1627 | if (elf64_hppa_hash_table (info)->dlt_sec)
|
---|
1628 | {
|
---|
1629 | data.ofs = 0x0;
|
---|
1630 | elf64_hppa_dyn_hash_traverse (&hppa_info->dyn_hash_table,
|
---|
1631 | allocate_global_data_dlt, &data);
|
---|
1632 | hppa_info->dlt_sec->_raw_size = data.ofs;
|
---|
1633 |
|
---|
1634 | data.ofs = 0x0;
|
---|
1635 | elf64_hppa_dyn_hash_traverse (&hppa_info->dyn_hash_table,
|
---|
1636 | allocate_global_data_plt, &data);
|
---|
1637 | hppa_info->plt_sec->_raw_size = data.ofs;
|
---|
1638 |
|
---|
1639 | data.ofs = 0x0;
|
---|
1640 | elf64_hppa_dyn_hash_traverse (&hppa_info->dyn_hash_table,
|
---|
1641 | allocate_global_data_stub, &data);
|
---|
1642 | hppa_info->stub_sec->_raw_size = data.ofs;
|
---|
1643 | }
|
---|
1644 |
|
---|
1645 | /* Mark each function this program exports so that we will allocate
|
---|
1646 | space in the .opd section for each function's FPTR.
|
---|
1647 |
|
---|
1648 | We have to traverse the main linker hash table since we have to
|
---|
1649 | find functions which may not have been mentioned in any relocs. */
|
---|
1650 | elf_link_hash_traverse (elf_hash_table (info),
|
---|
1651 | elf64_hppa_mark_exported_functions,
|
---|
1652 | info);
|
---|
1653 |
|
---|
1654 | /* Allocate space for entries in the .opd section. */
|
---|
1655 | if (elf64_hppa_hash_table (info)->opd_sec)
|
---|
1656 | {
|
---|
1657 | data.ofs = 0;
|
---|
1658 | elf64_hppa_dyn_hash_traverse (&hppa_info->dyn_hash_table,
|
---|
1659 | allocate_global_data_opd, &data);
|
---|
1660 | hppa_info->opd_sec->_raw_size = data.ofs;
|
---|
1661 | }
|
---|
1662 |
|
---|
1663 | /* Now allocate space for dynamic relocations, if necessary. */
|
---|
1664 | if (hppa_info->root.dynamic_sections_created)
|
---|
1665 | elf64_hppa_dyn_hash_traverse (&hppa_info->dyn_hash_table,
|
---|
1666 | allocate_dynrel_entries, &data);
|
---|
1667 |
|
---|
1668 | /* The sizes of all the sections are set. Allocate memory for them. */
|
---|
1669 | plt = false;
|
---|
1670 | relocs = false;
|
---|
1671 | reltext = false;
|
---|
1672 | for (s = dynobj->sections; s != NULL; s = s->next)
|
---|
1673 | {
|
---|
1674 | const char *name;
|
---|
1675 | boolean strip;
|
---|
1676 |
|
---|
1677 | if ((s->flags & SEC_LINKER_CREATED) == 0)
|
---|
1678 | continue;
|
---|
1679 |
|
---|
1680 | /* It's OK to base decisions on the section name, because none
|
---|
1681 | of the dynobj section names depend upon the input files. */
|
---|
1682 | name = bfd_get_section_name (dynobj, s);
|
---|
1683 |
|
---|
1684 | strip = 0;
|
---|
1685 |
|
---|
1686 | if (strcmp (name, ".plt") == 0)
|
---|
1687 | {
|
---|
1688 | if (s->_raw_size == 0)
|
---|
1689 | {
|
---|
1690 | /* Strip this section if we don't need it; see the
|
---|
1691 | comment below. */
|
---|
1692 | strip = true;
|
---|
1693 | }
|
---|
1694 | else
|
---|
1695 | {
|
---|
1696 | /* Remember whether there is a PLT. */
|
---|
1697 | plt = true;
|
---|
1698 | }
|
---|
1699 | }
|
---|
1700 | else if (strcmp (name, ".dlt") == 0)
|
---|
1701 | {
|
---|
1702 | if (s->_raw_size == 0)
|
---|
1703 | {
|
---|
1704 | /* Strip this section if we don't need it; see the
|
---|
1705 | comment below. */
|
---|
1706 | strip = true;
|
---|
1707 | }
|
---|
1708 | }
|
---|
1709 | else if (strcmp (name, ".opd") == 0)
|
---|
1710 | {
|
---|
1711 | if (s->_raw_size == 0)
|
---|
1712 | {
|
---|
1713 | /* Strip this section if we don't need it; see the
|
---|
1714 | comment below. */
|
---|
1715 | strip = true;
|
---|
1716 | }
|
---|
1717 | }
|
---|
1718 | else if (strncmp (name, ".rela", 4) == 0)
|
---|
1719 | {
|
---|
1720 | if (s->_raw_size == 0)
|
---|
1721 | {
|
---|
1722 | /* If we don't need this section, strip it from the
|
---|
1723 | output file. This is mostly to handle .rela.bss and
|
---|
1724 | .rela.plt. We must create both sections in
|
---|
1725 | create_dynamic_sections, because they must be created
|
---|
1726 | before the linker maps input sections to output
|
---|
1727 | sections. The linker does that before
|
---|
1728 | adjust_dynamic_symbol is called, and it is that
|
---|
1729 | function which decides whether anything needs to go
|
---|
1730 | into these sections. */
|
---|
1731 | strip = true;
|
---|
1732 | }
|
---|
1733 | else
|
---|
1734 | {
|
---|
1735 | asection *target;
|
---|
1736 |
|
---|
1737 | /* Remember whether there are any reloc sections other
|
---|
1738 | than .rela.plt. */
|
---|
1739 | if (strcmp (name, ".rela.plt") != 0)
|
---|
1740 | {
|
---|
1741 | const char *outname;
|
---|
1742 |
|
---|
1743 | relocs = true;
|
---|
1744 |
|
---|
1745 | /* If this relocation section applies to a read only
|
---|
1746 | section, then we probably need a DT_TEXTREL
|
---|
1747 | entry. The entries in the .rela.plt section
|
---|
1748 | really apply to the .got section, which we
|
---|
1749 | created ourselves and so know is not readonly. */
|
---|
1750 | outname = bfd_get_section_name (output_bfd,
|
---|
1751 | s->output_section);
|
---|
1752 | target = bfd_get_section_by_name (output_bfd, outname + 4);
|
---|
1753 | if (target != NULL
|
---|
1754 | && (target->flags & SEC_READONLY) != 0
|
---|
1755 | && (target->flags & SEC_ALLOC) != 0)
|
---|
1756 | reltext = true;
|
---|
1757 | }
|
---|
1758 |
|
---|
1759 | /* We use the reloc_count field as a counter if we need
|
---|
1760 | to copy relocs into the output file. */
|
---|
1761 | s->reloc_count = 0;
|
---|
1762 | }
|
---|
1763 | }
|
---|
1764 | else if (strncmp (name, ".dlt", 4) != 0
|
---|
1765 | && strcmp (name, ".stub") != 0
|
---|
1766 | && strcmp (name, ".got") != 0)
|
---|
1767 | {
|
---|
1768 | /* It's not one of our sections, so don't allocate space. */
|
---|
1769 | continue;
|
---|
1770 | }
|
---|
1771 |
|
---|
1772 | if (strip)
|
---|
1773 | {
|
---|
1774 | _bfd_strip_section_from_output (info, s);
|
---|
1775 | continue;
|
---|
1776 | }
|
---|
1777 |
|
---|
1778 | /* Allocate memory for the section contents if it has not
|
---|
1779 | been allocated already. We use bfd_zalloc here in case
|
---|
1780 | unused entries are not reclaimed before the section's
|
---|
1781 | contents are written out. This should not happen, but this
|
---|
1782 | way if it does, we get a R_PARISC_NONE reloc instead of
|
---|
1783 | garbage. */
|
---|
1784 | if (s->contents == NULL)
|
---|
1785 | {
|
---|
1786 | s->contents = (bfd_byte *) bfd_zalloc (dynobj, s->_raw_size);
|
---|
1787 | if (s->contents == NULL && s->_raw_size != 0)
|
---|
1788 | return false;
|
---|
1789 | }
|
---|
1790 | }
|
---|
1791 |
|
---|
1792 | if (elf_hash_table (info)->dynamic_sections_created)
|
---|
1793 | {
|
---|
1794 | /* Always create a DT_PLTGOT. It actually has nothing to do with
|
---|
1795 | the PLT, it is how we communicate the __gp value of a load
|
---|
1796 | module to the dynamic linker. */
|
---|
1797 | if (! bfd_elf64_add_dynamic_entry (info, DT_HP_DLD_FLAGS, 0)
|
---|
1798 | || ! bfd_elf64_add_dynamic_entry (info, DT_PLTGOT, 0))
|
---|
1799 | return false;
|
---|
1800 |
|
---|
1801 | /* Add some entries to the .dynamic section. We fill in the
|
---|
1802 | values later, in elf64_hppa_finish_dynamic_sections, but we
|
---|
1803 | must add the entries now so that we get the correct size for
|
---|
1804 | the .dynamic section. The DT_DEBUG entry is filled in by the
|
---|
1805 | dynamic linker and used by the debugger. */
|
---|
1806 | if (! info->shared)
|
---|
1807 | {
|
---|
1808 | if (! bfd_elf64_add_dynamic_entry (info, DT_DEBUG, 0)
|
---|
1809 | || ! bfd_elf64_add_dynamic_entry (info, DT_HP_DLD_HOOK, 0)
|
---|
1810 | || ! bfd_elf64_add_dynamic_entry (info, DT_HP_LOAD_MAP, 0))
|
---|
1811 | return false;
|
---|
1812 | }
|
---|
1813 |
|
---|
1814 | if (plt)
|
---|
1815 | {
|
---|
1816 | if (! bfd_elf64_add_dynamic_entry (info, DT_PLTRELSZ, 0)
|
---|
1817 | || ! bfd_elf64_add_dynamic_entry (info, DT_PLTREL, DT_RELA)
|
---|
1818 | || ! bfd_elf64_add_dynamic_entry (info, DT_JMPREL, 0))
|
---|
1819 | return false;
|
---|
1820 | }
|
---|
1821 |
|
---|
1822 | if (relocs)
|
---|
1823 | {
|
---|
1824 | if (! bfd_elf64_add_dynamic_entry (info, DT_RELA, 0)
|
---|
1825 | || ! bfd_elf64_add_dynamic_entry (info, DT_RELASZ, 0)
|
---|
1826 | || ! bfd_elf64_add_dynamic_entry (info, DT_RELAENT,
|
---|
1827 | sizeof (Elf64_External_Rela)))
|
---|
1828 | return false;
|
---|
1829 | }
|
---|
1830 |
|
---|
1831 | if (reltext)
|
---|
1832 | {
|
---|
1833 | if (! bfd_elf64_add_dynamic_entry (info, DT_TEXTREL, 0))
|
---|
1834 | return false;
|
---|
1835 | info->flags |= DF_TEXTREL;
|
---|
1836 | }
|
---|
1837 | }
|
---|
1838 |
|
---|
1839 | return true;
|
---|
1840 | }
|
---|
1841 |
|
---|
1842 | /* Called after we have output the symbol into the dynamic symbol
|
---|
1843 | table, but before we output the symbol into the normal symbol
|
---|
1844 | table.
|
---|
1845 |
|
---|
1846 | For some symbols we had to change their address when outputting
|
---|
1847 | the dynamic symbol table. We undo that change here so that
|
---|
1848 | the symbols have their expected value in the normal symbol
|
---|
1849 | table. Ick. */
|
---|
1850 |
|
---|
1851 | static boolean
|
---|
1852 | elf64_hppa_link_output_symbol_hook (abfd, info, name, sym, input_sec)
|
---|
1853 | bfd *abfd ATTRIBUTE_UNUSED;
|
---|
1854 | struct bfd_link_info *info;
|
---|
1855 | const char *name;
|
---|
1856 | Elf_Internal_Sym *sym;
|
---|
1857 | asection *input_sec ATTRIBUTE_UNUSED;
|
---|
1858 | {
|
---|
1859 | struct elf64_hppa_link_hash_table *hppa_info;
|
---|
1860 | struct elf64_hppa_dyn_hash_entry *dyn_h;
|
---|
1861 |
|
---|
1862 | /* We may be called with the file symbol or section symbols.
|
---|
1863 | They never need munging, so it is safe to ignore them. */
|
---|
1864 | if (!name)
|
---|
1865 | return true;
|
---|
1866 |
|
---|
1867 | /* Get the PA dyn_symbol (if any) associated with NAME. */
|
---|
1868 | hppa_info = elf64_hppa_hash_table (info);
|
---|
1869 | dyn_h = elf64_hppa_dyn_hash_lookup (&hppa_info->dyn_hash_table,
|
---|
1870 | name, false, false);
|
---|
1871 |
|
---|
1872 | /* Function symbols for which we created .opd entries *may* have been
|
---|
1873 | munged by finish_dynamic_symbol and have to be un-munged here.
|
---|
1874 |
|
---|
1875 | Note that finish_dynamic_symbol sometimes turns dynamic symbols
|
---|
1876 | into non-dynamic ones, so we initialize st_shndx to -1 in
|
---|
1877 | mark_exported_functions and check to see if it was overwritten
|
---|
1878 | here instead of just checking dyn_h->h->dynindx. */
|
---|
1879 | if (dyn_h && dyn_h->want_opd && dyn_h->st_shndx != -1)
|
---|
1880 | {
|
---|
1881 | /* Restore the saved value and section index. */
|
---|
1882 | sym->st_value = dyn_h->st_value;
|
---|
1883 | sym->st_shndx = dyn_h->st_shndx;
|
---|
1884 | }
|
---|
1885 |
|
---|
1886 | return true;
|
---|
1887 | }
|
---|
1888 |
|
---|
1889 | /* Finish up dynamic symbol handling. We set the contents of various
|
---|
1890 | dynamic sections here. */
|
---|
1891 |
|
---|
1892 | static boolean
|
---|
1893 | elf64_hppa_finish_dynamic_symbol (output_bfd, info, h, sym)
|
---|
1894 | bfd *output_bfd;
|
---|
1895 | struct bfd_link_info *info;
|
---|
1896 | struct elf_link_hash_entry *h;
|
---|
1897 | Elf_Internal_Sym *sym;
|
---|
1898 | {
|
---|
1899 | asection *stub, *splt, *sdlt, *sopd, *spltrel, *sdltrel;
|
---|
1900 | struct elf64_hppa_link_hash_table *hppa_info;
|
---|
1901 | struct elf64_hppa_dyn_hash_entry *dyn_h;
|
---|
1902 |
|
---|
1903 | hppa_info = elf64_hppa_hash_table (info);
|
---|
1904 | dyn_h = elf64_hppa_dyn_hash_lookup (&hppa_info->dyn_hash_table,
|
---|
1905 | h->root.root.string, false, false);
|
---|
1906 |
|
---|
1907 | stub = hppa_info->stub_sec;
|
---|
1908 | splt = hppa_info->plt_sec;
|
---|
1909 | sdlt = hppa_info->dlt_sec;
|
---|
1910 | sopd = hppa_info->opd_sec;
|
---|
1911 | spltrel = hppa_info->plt_rel_sec;
|
---|
1912 | sdltrel = hppa_info->dlt_rel_sec;
|
---|
1913 |
|
---|
1914 | BFD_ASSERT (stub != NULL && splt != NULL
|
---|
1915 | && sopd != NULL && sdlt != NULL)
|
---|
1916 |
|
---|
1917 | /* Incredible. It is actually necessary to NOT use the symbol's real
|
---|
1918 | value when building the dynamic symbol table for a shared library.
|
---|
1919 | At least for symbols that refer to functions.
|
---|
1920 |
|
---|
1921 | We will store a new value and section index into the symbol long
|
---|
1922 | enough to output it into the dynamic symbol table, then we restore
|
---|
1923 | the original values (in elf64_hppa_link_output_symbol_hook). */
|
---|
1924 | if (dyn_h && dyn_h->want_opd)
|
---|
1925 | {
|
---|
1926 | /* Save away the original value and section index so that we
|
---|
1927 | can restore them later. */
|
---|
1928 | dyn_h->st_value = sym->st_value;
|
---|
1929 | dyn_h->st_shndx = sym->st_shndx;
|
---|
1930 |
|
---|
1931 | /* For the dynamic symbol table entry, we want the value to be
|
---|
1932 | address of this symbol's entry within the .opd section. */
|
---|
1933 | sym->st_value = (dyn_h->opd_offset
|
---|
1934 | + sopd->output_offset
|
---|
1935 | + sopd->output_section->vma);
|
---|
1936 | sym->st_shndx = _bfd_elf_section_from_bfd_section (output_bfd,
|
---|
1937 | sopd->output_section);
|
---|
1938 | }
|
---|
1939 |
|
---|
1940 | /* Initialize a .plt entry if requested. */
|
---|
1941 | if (dyn_h && dyn_h->want_plt
|
---|
1942 | && elf64_hppa_dynamic_symbol_p (dyn_h->h, info))
|
---|
1943 | {
|
---|
1944 | bfd_vma value;
|
---|
1945 | Elf_Internal_Rela rel;
|
---|
1946 |
|
---|
1947 | /* We do not actually care about the value in the PLT entry
|
---|
1948 | if we are creating a shared library and the symbol is
|
---|
1949 | still undefined, we create a dynamic relocation to fill
|
---|
1950 | in the correct value. */
|
---|
1951 | if (info->shared && h->root.type == bfd_link_hash_undefined)
|
---|
1952 | value = 0;
|
---|
1953 | else
|
---|
1954 | value = (h->root.u.def.value + h->root.u.def.section->vma);
|
---|
1955 |
|
---|
1956 | /* Fill in the entry in the procedure linkage table.
|
---|
1957 |
|
---|
1958 | The format of a plt entry is
|
---|
1959 | <funcaddr> <__gp>.
|
---|
1960 |
|
---|
1961 | plt_offset is the offset within the PLT section at which to
|
---|
1962 | install the PLT entry.
|
---|
1963 |
|
---|
1964 | We are modifying the in-memory PLT contents here, so we do not add
|
---|
1965 | in the output_offset of the PLT section. */
|
---|
1966 |
|
---|
1967 | bfd_put_64 (splt->owner, value, splt->contents + dyn_h->plt_offset);
|
---|
1968 | value = _bfd_get_gp_value (splt->output_section->owner);
|
---|
1969 | bfd_put_64 (splt->owner, value, splt->contents + dyn_h->plt_offset + 0x8);
|
---|
1970 |
|
---|
1971 | /* Create a dynamic IPLT relocation for this entry.
|
---|
1972 |
|
---|
1973 | We are creating a relocation in the output file's PLT section,
|
---|
1974 | which is included within the DLT secton. So we do need to include
|
---|
1975 | the PLT's output_offset in the computation of the relocation's
|
---|
1976 | address. */
|
---|
1977 | rel.r_offset = (dyn_h->plt_offset + splt->output_offset
|
---|
1978 | + splt->output_section->vma);
|
---|
1979 | rel.r_info = ELF64_R_INFO (h->dynindx, R_PARISC_IPLT);
|
---|
1980 | rel.r_addend = 0;
|
---|
1981 |
|
---|
1982 | bfd_elf64_swap_reloca_out (splt->output_section->owner, &rel,
|
---|
1983 | (((Elf64_External_Rela *)
|
---|
1984 | spltrel->contents)
|
---|
1985 | + spltrel->reloc_count));
|
---|
1986 | spltrel->reloc_count++;
|
---|
1987 | }
|
---|
1988 |
|
---|
1989 | /* Initialize an external call stub entry if requested. */
|
---|
1990 | if (dyn_h && dyn_h->want_stub
|
---|
1991 | && elf64_hppa_dynamic_symbol_p (dyn_h->h, info))
|
---|
1992 | {
|
---|
1993 | bfd_vma value;
|
---|
1994 | int insn;
|
---|
1995 | unsigned int max_offset;
|
---|
1996 |
|
---|
1997 | /* Install the generic stub template.
|
---|
1998 |
|
---|
1999 | We are modifying the contents of the stub section, so we do not
|
---|
2000 | need to include the stub section's output_offset here. */
|
---|
2001 | memcpy (stub->contents + dyn_h->stub_offset, plt_stub, sizeof (plt_stub));
|
---|
2002 |
|
---|
2003 | /* Fix up the first ldd instruction.
|
---|
2004 |
|
---|
2005 | We are modifying the contents of the STUB section in memory,
|
---|
2006 | so we do not need to include its output offset in this computation.
|
---|
2007 |
|
---|
2008 | Note the plt_offset value is the value of the PLT entry relative to
|
---|
2009 | the start of the PLT section. These instructions will reference
|
---|
2010 | data relative to the value of __gp, which may not necessarily have
|
---|
2011 | the same address as the start of the PLT section.
|
---|
2012 |
|
---|
2013 | gp_offset contains the offset of __gp within the PLT section. */
|
---|
2014 | value = dyn_h->plt_offset - hppa_info->gp_offset;
|
---|
2015 |
|
---|
2016 | insn = bfd_get_32 (stub->owner, stub->contents + dyn_h->stub_offset);
|
---|
2017 | if (output_bfd->arch_info->mach >= 25)
|
---|
2018 | {
|
---|
2019 | /* Wide mode allows 16 bit offsets. */
|
---|
2020 | max_offset = 32768;
|
---|
2021 | insn &= ~ 0xfff1;
|
---|
2022 | insn |= re_assemble_16 (value);
|
---|
2023 | }
|
---|
2024 | else
|
---|
2025 | {
|
---|
2026 | max_offset = 8192;
|
---|
2027 | insn &= ~ 0x3ff1;
|
---|
2028 | insn |= re_assemble_14 (value);
|
---|
2029 | }
|
---|
2030 |
|
---|
2031 | if ((value & 7) || value + max_offset >= 2*max_offset - 8)
|
---|
2032 | {
|
---|
2033 | (*_bfd_error_handler) (_("stub entry for %s cannot load .plt, dp offset = %ld"),
|
---|
2034 | dyn_h->root.string,
|
---|
2035 | (long) value);
|
---|
2036 | return false;
|
---|
2037 | }
|
---|
2038 |
|
---|
2039 | bfd_put_32 (stub->owner, insn,
|
---|
2040 | stub->contents + dyn_h->stub_offset);
|
---|
2041 |
|
---|
2042 | /* Fix up the second ldd instruction. */
|
---|
2043 | value += 8;
|
---|
2044 | insn = bfd_get_32 (stub->owner, stub->contents + dyn_h->stub_offset + 8);
|
---|
2045 | if (output_bfd->arch_info->mach >= 25)
|
---|
2046 | {
|
---|
2047 | insn &= ~ 0xfff1;
|
---|
2048 | insn |= re_assemble_16 (value);
|
---|
2049 | }
|
---|
2050 | else
|
---|
2051 | {
|
---|
2052 | insn &= ~ 0x3ff1;
|
---|
2053 | insn |= re_assemble_14 (value);
|
---|
2054 | }
|
---|
2055 | bfd_put_32 (stub->owner, insn,
|
---|
2056 | stub->contents + dyn_h->stub_offset + 8);
|
---|
2057 | }
|
---|
2058 |
|
---|
2059 | /* Millicode symbols should not be put in the dynamic
|
---|
2060 | symbol table under any circumstances. */
|
---|
2061 | if (ELF_ST_TYPE (sym->st_info) == STT_PARISC_MILLI)
|
---|
2062 | h->dynindx = -1;
|
---|
2063 |
|
---|
2064 | return true;
|
---|
2065 | }
|
---|
2066 |
|
---|
2067 | /* The .opd section contains FPTRs for each function this file
|
---|
2068 | exports. Initialize the FPTR entries. */
|
---|
2069 |
|
---|
2070 | static boolean
|
---|
2071 | elf64_hppa_finalize_opd (dyn_h, data)
|
---|
2072 | struct elf64_hppa_dyn_hash_entry *dyn_h;
|
---|
2073 | PTR data;
|
---|
2074 | {
|
---|
2075 | struct bfd_link_info *info = (struct bfd_link_info *)data;
|
---|
2076 | struct elf64_hppa_link_hash_table *hppa_info;
|
---|
2077 | struct elf_link_hash_entry *h = dyn_h->h;
|
---|
2078 | asection *sopd;
|
---|
2079 | asection *sopdrel;
|
---|
2080 |
|
---|
2081 | hppa_info = elf64_hppa_hash_table (info);
|
---|
2082 | sopd = hppa_info->opd_sec;
|
---|
2083 | sopdrel = hppa_info->opd_rel_sec;
|
---|
2084 |
|
---|
2085 | if (h && dyn_h && dyn_h->want_opd)
|
---|
2086 | {
|
---|
2087 | bfd_vma value;
|
---|
2088 |
|
---|
2089 | /* The first two words of an .opd entry are zero.
|
---|
2090 |
|
---|
2091 | We are modifying the contents of the OPD section in memory, so we
|
---|
2092 | do not need to include its output offset in this computation. */
|
---|
2093 | memset (sopd->contents + dyn_h->opd_offset, 0, 16);
|
---|
2094 |
|
---|
2095 | value = (h->root.u.def.value
|
---|
2096 | + h->root.u.def.section->output_section->vma
|
---|
2097 | + h->root.u.def.section->output_offset);
|
---|
2098 |
|
---|
2099 | /* The next word is the address of the function. */
|
---|
2100 | bfd_put_64 (sopd->owner, value, sopd->contents + dyn_h->opd_offset + 16);
|
---|
2101 |
|
---|
2102 | /* The last word is our local __gp value. */
|
---|
2103 | value = _bfd_get_gp_value (sopd->output_section->owner);
|
---|
2104 | bfd_put_64 (sopd->owner, value, sopd->contents + dyn_h->opd_offset + 24);
|
---|
2105 | }
|
---|
2106 |
|
---|
2107 | /* If we are generating a shared library, we must generate EPLT relocations
|
---|
2108 | for each entry in the .opd, even for static functions (they may have
|
---|
2109 | had their address taken). */
|
---|
2110 | if (info->shared && dyn_h && dyn_h->want_opd)
|
---|
2111 | {
|
---|
2112 | Elf64_Internal_Rela rel;
|
---|
2113 | int dynindx;
|
---|
2114 |
|
---|
2115 | /* We may need to do a relocation against a local symbol, in
|
---|
2116 | which case we have to look up it's dynamic symbol index off
|
---|
2117 | the local symbol hash table. */
|
---|
2118 | if (h && h->dynindx != -1)
|
---|
2119 | dynindx = h->dynindx;
|
---|
2120 | else
|
---|
2121 | dynindx
|
---|
2122 | = _bfd_elf_link_lookup_local_dynindx (info, dyn_h->owner,
|
---|
2123 | dyn_h->sym_indx);
|
---|
2124 |
|
---|
2125 | /* The offset of this relocation is the absolute address of the
|
---|
2126 | .opd entry for this symbol. */
|
---|
2127 | rel.r_offset = (dyn_h->opd_offset + sopd->output_offset
|
---|
2128 | + sopd->output_section->vma);
|
---|
2129 |
|
---|
2130 | /* If H is non-null, then we have an external symbol.
|
---|
2131 |
|
---|
2132 | It is imperative that we use a different dynamic symbol for the
|
---|
2133 | EPLT relocation if the symbol has global scope.
|
---|
2134 |
|
---|
2135 | In the dynamic symbol table, the function symbol will have a value
|
---|
2136 | which is address of the function's .opd entry.
|
---|
2137 |
|
---|
2138 | Thus, we can not use that dynamic symbol for the EPLT relocation
|
---|
2139 | (if we did, the data in the .opd would reference itself rather
|
---|
2140 | than the actual address of the function). Instead we have to use
|
---|
2141 | a new dynamic symbol which has the same value as the original global
|
---|
2142 | function symbol.
|
---|
2143 |
|
---|
2144 | We prefix the original symbol with a "." and use the new symbol in
|
---|
2145 | the EPLT relocation. This new symbol has already been recorded in
|
---|
2146 | the symbol table, we just have to look it up and use it.
|
---|
2147 |
|
---|
2148 | We do not have such problems with static functions because we do
|
---|
2149 | not make their addresses in the dynamic symbol table point to
|
---|
2150 | the .opd entry. Ultimately this should be safe since a static
|
---|
2151 | function can not be directly referenced outside of its shared
|
---|
2152 | library.
|
---|
2153 |
|
---|
2154 | We do have to play similar games for FPTR relocations in shared
|
---|
2155 | libraries, including those for static symbols. See the FPTR
|
---|
2156 | handling in elf64_hppa_finalize_dynreloc. */
|
---|
2157 | if (h)
|
---|
2158 | {
|
---|
2159 | char *new_name;
|
---|
2160 | struct elf_link_hash_entry *nh;
|
---|
2161 |
|
---|
2162 | new_name = alloca (strlen (h->root.root.string) + 2);
|
---|
2163 | new_name[0] = '.';
|
---|
2164 | strcpy (new_name + 1, h->root.root.string);
|
---|
2165 |
|
---|
2166 | nh = elf_link_hash_lookup (elf_hash_table (info),
|
---|
2167 | new_name, false, false, false);
|
---|
2168 |
|
---|
2169 | /* All we really want from the new symbol is its dynamic
|
---|
2170 | symbol index. */
|
---|
2171 | dynindx = nh->dynindx;
|
---|
2172 | }
|
---|
2173 |
|
---|
2174 | rel.r_addend = 0;
|
---|
2175 | rel.r_info = ELF64_R_INFO (dynindx, R_PARISC_EPLT);
|
---|
2176 |
|
---|
2177 | bfd_elf64_swap_reloca_out (sopd->output_section->owner, &rel,
|
---|
2178 | (((Elf64_External_Rela *)
|
---|
2179 | sopdrel->contents)
|
---|
2180 | + sopdrel->reloc_count));
|
---|
2181 | sopdrel->reloc_count++;
|
---|
2182 | }
|
---|
2183 | return true;
|
---|
2184 | }
|
---|
2185 |
|
---|
2186 | /* The .dlt section contains addresses for items referenced through the
|
---|
2187 | dlt. Note that we can have a DLTIND relocation for a local symbol, thus
|
---|
2188 | we can not depend on finish_dynamic_symbol to initialize the .dlt. */
|
---|
2189 |
|
---|
2190 | static boolean
|
---|
2191 | elf64_hppa_finalize_dlt (dyn_h, data)
|
---|
2192 | struct elf64_hppa_dyn_hash_entry *dyn_h;
|
---|
2193 | PTR data;
|
---|
2194 | {
|
---|
2195 | struct bfd_link_info *info = (struct bfd_link_info *)data;
|
---|
2196 | struct elf64_hppa_link_hash_table *hppa_info;
|
---|
2197 | asection *sdlt, *sdltrel;
|
---|
2198 | struct elf_link_hash_entry *h = dyn_h->h;
|
---|
2199 |
|
---|
2200 | hppa_info = elf64_hppa_hash_table (info);
|
---|
2201 |
|
---|
2202 | sdlt = hppa_info->dlt_sec;
|
---|
2203 | sdltrel = hppa_info->dlt_rel_sec;
|
---|
2204 |
|
---|
2205 | /* H/DYN_H may refer to a local variable and we know it's
|
---|
2206 | address, so there is no need to create a relocation. Just install
|
---|
2207 | the proper value into the DLT, note this shortcut can not be
|
---|
2208 | skipped when building a shared library. */
|
---|
2209 | if (! info->shared && h && dyn_h && dyn_h->want_dlt)
|
---|
2210 | {
|
---|
2211 | bfd_vma value;
|
---|
2212 |
|
---|
2213 | /* If we had an LTOFF_FPTR style relocation we want the DLT entry
|
---|
2214 | to point to the FPTR entry in the .opd section.
|
---|
2215 |
|
---|
2216 | We include the OPD's output offset in this computation as
|
---|
2217 | we are referring to an absolute address in the resulting
|
---|
2218 | object file. */
|
---|
2219 | if (dyn_h->want_opd)
|
---|
2220 | {
|
---|
2221 | value = (dyn_h->opd_offset
|
---|
2222 | + hppa_info->opd_sec->output_offset
|
---|
2223 | + hppa_info->opd_sec->output_section->vma);
|
---|
2224 | }
|
---|
2225 | else
|
---|
2226 | {
|
---|
2227 | value = (h->root.u.def.value
|
---|
2228 | + h->root.u.def.section->output_offset);
|
---|
2229 |
|
---|
2230 | if (h->root.u.def.section->output_section)
|
---|
2231 | value += h->root.u.def.section->output_section->vma;
|
---|
2232 | else
|
---|
2233 | value += h->root.u.def.section->vma;
|
---|
2234 | }
|
---|
2235 |
|
---|
2236 | /* We do not need to include the output offset of the DLT section
|
---|
2237 | here because we are modifying the in-memory contents. */
|
---|
2238 | bfd_put_64 (sdlt->owner, value, sdlt->contents + dyn_h->dlt_offset);
|
---|
2239 | }
|
---|
2240 |
|
---|
2241 | /* Create a relocation for the DLT entry assocated with this symbol.
|
---|
2242 | When building a shared library the symbol does not have to be dynamic. */
|
---|
2243 | if (dyn_h->want_dlt
|
---|
2244 | && (elf64_hppa_dynamic_symbol_p (dyn_h->h, info) || info->shared))
|
---|
2245 | {
|
---|
2246 | Elf64_Internal_Rela rel;
|
---|
2247 | int dynindx;
|
---|
2248 |
|
---|
2249 | /* We may need to do a relocation against a local symbol, in
|
---|
2250 | which case we have to look up it's dynamic symbol index off
|
---|
2251 | the local symbol hash table. */
|
---|
2252 | if (h && h->dynindx != -1)
|
---|
2253 | dynindx = h->dynindx;
|
---|
2254 | else
|
---|
2255 | dynindx
|
---|
2256 | = _bfd_elf_link_lookup_local_dynindx (info, dyn_h->owner,
|
---|
2257 | dyn_h->sym_indx);
|
---|
2258 |
|
---|
2259 | /* Create a dynamic relocation for this entry. Do include the output
|
---|
2260 | offset of the DLT entry since we need an absolute address in the
|
---|
2261 | resulting object file. */
|
---|
2262 | rel.r_offset = (dyn_h->dlt_offset + sdlt->output_offset
|
---|
2263 | + sdlt->output_section->vma);
|
---|
2264 | if (h && h->type == STT_FUNC)
|
---|
2265 | rel.r_info = ELF64_R_INFO (dynindx, R_PARISC_FPTR64);
|
---|
2266 | else
|
---|
2267 | rel.r_info = ELF64_R_INFO (dynindx, R_PARISC_DIR64);
|
---|
2268 | rel.r_addend = 0;
|
---|
2269 |
|
---|
2270 | bfd_elf64_swap_reloca_out (sdlt->output_section->owner, &rel,
|
---|
2271 | (((Elf64_External_Rela *)
|
---|
2272 | sdltrel->contents)
|
---|
2273 | + sdltrel->reloc_count));
|
---|
2274 | sdltrel->reloc_count++;
|
---|
2275 | }
|
---|
2276 | return true;
|
---|
2277 | }
|
---|
2278 |
|
---|
2279 | /* Finalize the dynamic relocations. Specifically the FPTR relocations
|
---|
2280 | for dynamic functions used to initialize static data. */
|
---|
2281 |
|
---|
2282 | static boolean
|
---|
2283 | elf64_hppa_finalize_dynreloc (dyn_h, data)
|
---|
2284 | struct elf64_hppa_dyn_hash_entry *dyn_h;
|
---|
2285 | PTR data;
|
---|
2286 | {
|
---|
2287 | struct bfd_link_info *info = (struct bfd_link_info *)data;
|
---|
2288 | struct elf64_hppa_link_hash_table *hppa_info;
|
---|
2289 | struct elf_link_hash_entry *h;
|
---|
2290 | int dynamic_symbol;
|
---|
2291 |
|
---|
2292 | dynamic_symbol = elf64_hppa_dynamic_symbol_p (dyn_h->h, info);
|
---|
2293 |
|
---|
2294 | if (!dynamic_symbol && !info->shared)
|
---|
2295 | return true;
|
---|
2296 |
|
---|
2297 | if (dyn_h->reloc_entries)
|
---|
2298 | {
|
---|
2299 | struct elf64_hppa_dyn_reloc_entry *rent;
|
---|
2300 | int dynindx;
|
---|
2301 |
|
---|
2302 | hppa_info = elf64_hppa_hash_table (info);
|
---|
2303 | h = dyn_h->h;
|
---|
2304 |
|
---|
2305 | /* We may need to do a relocation against a local symbol, in
|
---|
2306 | which case we have to look up it's dynamic symbol index off
|
---|
2307 | the local symbol hash table. */
|
---|
2308 | if (h && h->dynindx != -1)
|
---|
2309 | dynindx = h->dynindx;
|
---|
2310 | else
|
---|
2311 | dynindx
|
---|
2312 | = _bfd_elf_link_lookup_local_dynindx (info, dyn_h->owner,
|
---|
2313 | dyn_h->sym_indx);
|
---|
2314 |
|
---|
2315 | for (rent = dyn_h->reloc_entries; rent; rent = rent->next)
|
---|
2316 | {
|
---|
2317 | Elf64_Internal_Rela rel;
|
---|
2318 |
|
---|
2319 | switch (rent->type)
|
---|
2320 | {
|
---|
2321 | case R_PARISC_FPTR64:
|
---|
2322 | /* Allocate one iff we are not building a shared library and
|
---|
2323 | !want_opd, which by this point will be true only if we're
|
---|
2324 | actually allocating one statically in the main executable. */
|
---|
2325 | if (!info->shared && dyn_h->want_opd)
|
---|
2326 | continue;
|
---|
2327 | break;
|
---|
2328 | }
|
---|
2329 |
|
---|
2330 | /* Create a dynamic relocation for this entry.
|
---|
2331 |
|
---|
2332 | We need the output offset for the reloc's section because
|
---|
2333 | we are creating an absolute address in the resulting object
|
---|
2334 | file. */
|
---|
2335 | rel.r_offset = (rent->offset + rent->sec->output_offset
|
---|
2336 | + rent->sec->output_section->vma);
|
---|
2337 |
|
---|
2338 | /* An FPTR64 relocation implies that we took the address of
|
---|
2339 | a function and that the function has an entry in the .opd
|
---|
2340 | section. We want the FPTR64 relocation to reference the
|
---|
2341 | entry in .opd.
|
---|
2342 |
|
---|
2343 | We could munge the symbol value in the dynamic symbol table
|
---|
2344 | (in fact we already do for functions with global scope) to point
|
---|
2345 | to the .opd entry. Then we could use that dynamic symbol in
|
---|
2346 | this relocation.
|
---|
2347 |
|
---|
2348 | Or we could do something sensible, not munge the symbol's
|
---|
2349 | address and instead just use a different symbol to reference
|
---|
2350 | the .opd entry. At least that seems sensible until you
|
---|
2351 | realize there's no local dynamic symbols we can use for that
|
---|
2352 | purpose. Thus the hair in the check_relocs routine.
|
---|
2353 |
|
---|
2354 | We use a section symbol recorded by check_relocs as the
|
---|
2355 | base symbol for the relocation. The addend is the difference
|
---|
2356 | between the section symbol and the address of the .opd entry. */
|
---|
2357 | if (info->shared && rent->type == R_PARISC_FPTR64)
|
---|
2358 | {
|
---|
2359 | bfd_vma value, value2;
|
---|
2360 |
|
---|
2361 | /* First compute the address of the opd entry for this symbol. */
|
---|
2362 | value = (dyn_h->opd_offset
|
---|
2363 | + hppa_info->opd_sec->output_section->vma
|
---|
2364 | + hppa_info->opd_sec->output_offset);
|
---|
2365 |
|
---|
2366 | /* Compute the value of the start of the section with
|
---|
2367 | the relocation. */
|
---|
2368 | value2 = (rent->sec->output_section->vma
|
---|
2369 | + rent->sec->output_offset);
|
---|
2370 |
|
---|
2371 | /* Compute the difference between the start of the section
|
---|
2372 | with the relocation and the opd entry. */
|
---|
2373 | value -= value2;
|
---|
2374 |
|
---|
2375 | /* The result becomes the addend of the relocation. */
|
---|
2376 | rel.r_addend = value;
|
---|
2377 |
|
---|
2378 | /* The section symbol becomes the symbol for the dynamic
|
---|
2379 | relocation. */
|
---|
2380 | dynindx
|
---|
2381 | = _bfd_elf_link_lookup_local_dynindx (info,
|
---|
2382 | rent->sec->owner,
|
---|
2383 | rent->sec_symndx);
|
---|
2384 | }
|
---|
2385 | else
|
---|
2386 | rel.r_addend = rent->addend;
|
---|
2387 |
|
---|
2388 | rel.r_info = ELF64_R_INFO (dynindx, rent->type);
|
---|
2389 |
|
---|
2390 | bfd_elf64_swap_reloca_out (hppa_info->other_rel_sec->output_section->owner,
|
---|
2391 | &rel,
|
---|
2392 | (((Elf64_External_Rela *)
|
---|
2393 | hppa_info->other_rel_sec->contents)
|
---|
2394 | + hppa_info->other_rel_sec->reloc_count));
|
---|
2395 | hppa_info->other_rel_sec->reloc_count++;
|
---|
2396 | }
|
---|
2397 | }
|
---|
2398 |
|
---|
2399 | return true;
|
---|
2400 | }
|
---|
2401 |
|
---|
2402 | /* Finish up the dynamic sections. */
|
---|
2403 |
|
---|
2404 | static boolean
|
---|
2405 | elf64_hppa_finish_dynamic_sections (output_bfd, info)
|
---|
2406 | bfd *output_bfd;
|
---|
2407 | struct bfd_link_info *info;
|
---|
2408 | {
|
---|
2409 | bfd *dynobj;
|
---|
2410 | asection *sdyn;
|
---|
2411 | struct elf64_hppa_link_hash_table *hppa_info;
|
---|
2412 |
|
---|
2413 | hppa_info = elf64_hppa_hash_table (info);
|
---|
2414 |
|
---|
2415 | /* Finalize the contents of the .opd section. */
|
---|
2416 | elf64_hppa_dyn_hash_traverse (&hppa_info->dyn_hash_table,
|
---|
2417 | elf64_hppa_finalize_opd,
|
---|
2418 | info);
|
---|
2419 |
|
---|
2420 | elf64_hppa_dyn_hash_traverse (&hppa_info->dyn_hash_table,
|
---|
2421 | elf64_hppa_finalize_dynreloc,
|
---|
2422 | info);
|
---|
2423 |
|
---|
2424 | /* Finalize the contents of the .dlt section. */
|
---|
2425 | dynobj = elf_hash_table (info)->dynobj;
|
---|
2426 | /* Finalize the contents of the .dlt section. */
|
---|
2427 | elf64_hppa_dyn_hash_traverse (&hppa_info->dyn_hash_table,
|
---|
2428 | elf64_hppa_finalize_dlt,
|
---|
2429 | info);
|
---|
2430 |
|
---|
2431 | sdyn = bfd_get_section_by_name (dynobj, ".dynamic");
|
---|
2432 |
|
---|
2433 | if (elf_hash_table (info)->dynamic_sections_created)
|
---|
2434 | {
|
---|
2435 | Elf64_External_Dyn *dyncon, *dynconend;
|
---|
2436 |
|
---|
2437 | BFD_ASSERT (sdyn != NULL);
|
---|
2438 |
|
---|
2439 | dyncon = (Elf64_External_Dyn *) sdyn->contents;
|
---|
2440 | dynconend = (Elf64_External_Dyn *) (sdyn->contents + sdyn->_raw_size);
|
---|
2441 | for (; dyncon < dynconend; dyncon++)
|
---|
2442 | {
|
---|
2443 | Elf_Internal_Dyn dyn;
|
---|
2444 | asection *s;
|
---|
2445 |
|
---|
2446 | bfd_elf64_swap_dyn_in (dynobj, dyncon, &dyn);
|
---|
2447 |
|
---|
2448 | switch (dyn.d_tag)
|
---|
2449 | {
|
---|
2450 | default:
|
---|
2451 | break;
|
---|
2452 |
|
---|
2453 | case DT_HP_LOAD_MAP:
|
---|
2454 | /* Compute the absolute address of 16byte scratchpad area
|
---|
2455 | for the dynamic linker.
|
---|
2456 |
|
---|
2457 | By convention the linker script will allocate the scratchpad
|
---|
2458 | area at the start of the .data section. So all we have to
|
---|
2459 | to is find the start of the .data section. */
|
---|
2460 | s = bfd_get_section_by_name (output_bfd, ".data");
|
---|
2461 | dyn.d_un.d_ptr = s->vma;
|
---|
2462 | bfd_elf64_swap_dyn_out (output_bfd, &dyn, dyncon);
|
---|
2463 | break;
|
---|
2464 |
|
---|
2465 | case DT_PLTGOT:
|
---|
2466 | /* HP's use PLTGOT to set the GOT register. */
|
---|
2467 | dyn.d_un.d_ptr = _bfd_get_gp_value (output_bfd);
|
---|
2468 | bfd_elf64_swap_dyn_out (output_bfd, &dyn, dyncon);
|
---|
2469 | break;
|
---|
2470 |
|
---|
2471 | case DT_JMPREL:
|
---|
2472 | s = hppa_info->plt_rel_sec;
|
---|
2473 | dyn.d_un.d_ptr = s->output_section->vma + s->output_offset;
|
---|
2474 | bfd_elf64_swap_dyn_out (output_bfd, &dyn, dyncon);
|
---|
2475 | break;
|
---|
2476 |
|
---|
2477 | case DT_PLTRELSZ:
|
---|
2478 | s = hppa_info->plt_rel_sec;
|
---|
2479 | dyn.d_un.d_val = s->_raw_size;
|
---|
2480 | bfd_elf64_swap_dyn_out (output_bfd, &dyn, dyncon);
|
---|
2481 | break;
|
---|
2482 |
|
---|
2483 | case DT_RELA:
|
---|
2484 | s = hppa_info->other_rel_sec;
|
---|
2485 | if (! s)
|
---|
2486 | s = hppa_info->dlt_rel_sec;
|
---|
2487 | dyn.d_un.d_ptr = s->output_section->vma + s->output_offset;
|
---|
2488 | bfd_elf64_swap_dyn_out (output_bfd, &dyn, dyncon);
|
---|
2489 | break;
|
---|
2490 |
|
---|
2491 | case DT_RELASZ:
|
---|
2492 | s = hppa_info->other_rel_sec;
|
---|
2493 | dyn.d_un.d_val = s->_raw_size;
|
---|
2494 | s = hppa_info->dlt_rel_sec;
|
---|
2495 | dyn.d_un.d_val += s->_raw_size;
|
---|
2496 | s = hppa_info->opd_rel_sec;
|
---|
2497 | dyn.d_un.d_val += s->_raw_size;
|
---|
2498 | /* There is some question about whether or not the size of
|
---|
2499 | the PLT relocs should be included here. HP's tools do
|
---|
2500 | it, so we'll emulate them. */
|
---|
2501 | s = hppa_info->plt_rel_sec;
|
---|
2502 | dyn.d_un.d_val += s->_raw_size;
|
---|
2503 | bfd_elf64_swap_dyn_out (output_bfd, &dyn, dyncon);
|
---|
2504 | break;
|
---|
2505 |
|
---|
2506 | }
|
---|
2507 | }
|
---|
2508 | }
|
---|
2509 |
|
---|
2510 | return true;
|
---|
2511 | }
|
---|
2512 |
|
---|
2513 | /* Return the number of additional phdrs we will need.
|
---|
2514 |
|
---|
2515 | The generic ELF code only creates PT_PHDRs for executables. The HP
|
---|
2516 | dynamic linker requires PT_PHDRs for dynamic libraries too.
|
---|
2517 |
|
---|
2518 | This routine indicates that the backend needs one additional program
|
---|
2519 | header for that case.
|
---|
2520 |
|
---|
2521 | Note we do not have access to the link info structure here, so we have
|
---|
2522 | to guess whether or not we are building a shared library based on the
|
---|
2523 | existence of a .interp section. */
|
---|
2524 |
|
---|
2525 | static int
|
---|
2526 | elf64_hppa_additional_program_headers (abfd)
|
---|
2527 | bfd *abfd;
|
---|
2528 | {
|
---|
2529 | asection *s;
|
---|
2530 |
|
---|
2531 | /* If we are creating a shared library, then we have to create a
|
---|
2532 | PT_PHDR segment. HP's dynamic linker chokes without it. */
|
---|
2533 | s = bfd_get_section_by_name (abfd, ".interp");
|
---|
2534 | if (! s)
|
---|
2535 | return 1;
|
---|
2536 | return 0;
|
---|
2537 | }
|
---|
2538 |
|
---|
2539 | /* Allocate and initialize any program headers required by this
|
---|
2540 | specific backend.
|
---|
2541 |
|
---|
2542 | The generic ELF code only creates PT_PHDRs for executables. The HP
|
---|
2543 | dynamic linker requires PT_PHDRs for dynamic libraries too.
|
---|
2544 |
|
---|
2545 | This allocates the PT_PHDR and initializes it in a manner suitable
|
---|
2546 | for the HP linker.
|
---|
2547 |
|
---|
2548 | Note we do not have access to the link info structure here, so we have
|
---|
2549 | to guess whether or not we are building a shared library based on the
|
---|
2550 | existence of a .interp section. */
|
---|
2551 |
|
---|
2552 | static boolean
|
---|
2553 | elf64_hppa_modify_segment_map (abfd)
|
---|
2554 | bfd *abfd;
|
---|
2555 | {
|
---|
2556 | struct elf_segment_map *m;
|
---|
2557 | asection *s;
|
---|
2558 |
|
---|
2559 | s = bfd_get_section_by_name (abfd, ".interp");
|
---|
2560 | if (! s)
|
---|
2561 | {
|
---|
2562 | for (m = elf_tdata (abfd)->segment_map; m != NULL; m = m->next)
|
---|
2563 | if (m->p_type == PT_PHDR)
|
---|
2564 | break;
|
---|
2565 | if (m == NULL)
|
---|
2566 | {
|
---|
2567 | m = (struct elf_segment_map *) bfd_zalloc (abfd, sizeof *m);
|
---|
2568 | if (m == NULL)
|
---|
2569 | return false;
|
---|
2570 |
|
---|
2571 | m->p_type = PT_PHDR;
|
---|
2572 | m->p_flags = PF_R | PF_X;
|
---|
2573 | m->p_flags_valid = 1;
|
---|
2574 | m->p_paddr_valid = 1;
|
---|
2575 | m->includes_phdrs = 1;
|
---|
2576 |
|
---|
2577 | m->next = elf_tdata (abfd)->segment_map;
|
---|
2578 | elf_tdata (abfd)->segment_map = m;
|
---|
2579 | }
|
---|
2580 | }
|
---|
2581 |
|
---|
2582 | for (m = elf_tdata (abfd)->segment_map; m != NULL; m = m->next)
|
---|
2583 | if (m->p_type == PT_LOAD)
|
---|
2584 | {
|
---|
2585 | unsigned int i;
|
---|
2586 |
|
---|
2587 | for (i = 0; i < m->count; i++)
|
---|
2588 | {
|
---|
2589 | /* The code "hint" is not really a hint. It is a requirement
|
---|
2590 | for certain versions of the HP dynamic linker. Worse yet,
|
---|
2591 | it must be set even if the shared library does not have
|
---|
2592 | any code in its "text" segment (thus the check for .hash
|
---|
2593 | to catch this situation). */
|
---|
2594 | if (m->sections[i]->flags & SEC_CODE
|
---|
2595 | || (strcmp (m->sections[i]->name, ".hash") == 0))
|
---|
2596 | m->p_flags |= (PF_X | PF_HP_CODE);
|
---|
2597 | }
|
---|
2598 | }
|
---|
2599 |
|
---|
2600 | return true;
|
---|
2601 | }
|
---|
2602 |
|
---|
2603 | /* Called when writing out an object file to decide the type of a
|
---|
2604 | symbol. */
|
---|
2605 | static int
|
---|
2606 | elf64_hppa_elf_get_symbol_type (elf_sym, type)
|
---|
2607 | Elf_Internal_Sym *elf_sym;
|
---|
2608 | int type;
|
---|
2609 | {
|
---|
2610 | if (ELF_ST_TYPE (elf_sym->st_info) == STT_PARISC_MILLI)
|
---|
2611 | return STT_PARISC_MILLI;
|
---|
2612 | else
|
---|
2613 | return type;
|
---|
2614 | }
|
---|
2615 |
|
---|
2616 | /* The hash bucket size is the standard one, namely 4. */
|
---|
2617 |
|
---|
2618 | const struct elf_size_info hppa64_elf_size_info =
|
---|
2619 | {
|
---|
2620 | sizeof (Elf64_External_Ehdr),
|
---|
2621 | sizeof (Elf64_External_Phdr),
|
---|
2622 | sizeof (Elf64_External_Shdr),
|
---|
2623 | sizeof (Elf64_External_Rel),
|
---|
2624 | sizeof (Elf64_External_Rela),
|
---|
2625 | sizeof (Elf64_External_Sym),
|
---|
2626 | sizeof (Elf64_External_Dyn),
|
---|
2627 | sizeof (Elf_External_Note),
|
---|
2628 | 4,
|
---|
2629 | 1,
|
---|
2630 | 64, 8,
|
---|
2631 | ELFCLASS64, EV_CURRENT,
|
---|
2632 | bfd_elf64_write_out_phdrs,
|
---|
2633 | bfd_elf64_write_shdrs_and_ehdr,
|
---|
2634 | bfd_elf64_write_relocs,
|
---|
2635 | bfd_elf64_swap_symbol_out,
|
---|
2636 | bfd_elf64_slurp_reloc_table,
|
---|
2637 | bfd_elf64_slurp_symbol_table,
|
---|
2638 | bfd_elf64_swap_dyn_in,
|
---|
2639 | bfd_elf64_swap_dyn_out,
|
---|
2640 | NULL,
|
---|
2641 | NULL,
|
---|
2642 | NULL,
|
---|
2643 | NULL
|
---|
2644 | };
|
---|
2645 |
|
---|
2646 | #define TARGET_BIG_SYM bfd_elf64_hppa_vec
|
---|
2647 | #define TARGET_BIG_NAME "elf64-hppa"
|
---|
2648 | #define ELF_ARCH bfd_arch_hppa
|
---|
2649 | #define ELF_MACHINE_CODE EM_PARISC
|
---|
2650 | /* This is not strictly correct. The maximum page size for PA2.0 is
|
---|
2651 | 64M. But everything still uses 4k. */
|
---|
2652 | #define ELF_MAXPAGESIZE 0x1000
|
---|
2653 | #define bfd_elf64_bfd_reloc_type_lookup elf_hppa_reloc_type_lookup
|
---|
2654 | #define bfd_elf64_bfd_is_local_label_name elf_hppa_is_local_label_name
|
---|
2655 | #define elf_info_to_howto elf_hppa_info_to_howto
|
---|
2656 | #define elf_info_to_howto_rel elf_hppa_info_to_howto_rel
|
---|
2657 |
|
---|
2658 | #define elf_backend_section_from_shdr elf64_hppa_section_from_shdr
|
---|
2659 | #define elf_backend_object_p elf64_hppa_object_p
|
---|
2660 | #define elf_backend_final_write_processing \
|
---|
2661 | elf_hppa_final_write_processing
|
---|
2662 | #define elf_backend_fake_sections elf_hppa_fake_sections
|
---|
2663 | #define elf_backend_add_symbol_hook elf_hppa_add_symbol_hook
|
---|
2664 |
|
---|
2665 | #define elf_backend_relocate_section elf_hppa_relocate_section
|
---|
2666 |
|
---|
2667 | #define bfd_elf64_bfd_final_link elf_hppa_final_link
|
---|
2668 |
|
---|
2669 | #define elf_backend_create_dynamic_sections \
|
---|
2670 | elf64_hppa_create_dynamic_sections
|
---|
2671 | #define elf_backend_post_process_headers elf64_hppa_post_process_headers
|
---|
2672 |
|
---|
2673 | #define elf_backend_adjust_dynamic_symbol \
|
---|
2674 | elf64_hppa_adjust_dynamic_symbol
|
---|
2675 |
|
---|
2676 | #define elf_backend_size_dynamic_sections \
|
---|
2677 | elf64_hppa_size_dynamic_sections
|
---|
2678 |
|
---|
2679 | #define elf_backend_finish_dynamic_symbol \
|
---|
2680 | elf64_hppa_finish_dynamic_symbol
|
---|
2681 | #define elf_backend_finish_dynamic_sections \
|
---|
2682 | elf64_hppa_finish_dynamic_sections
|
---|
2683 |
|
---|
2684 | /* Stuff for the BFD linker: */
|
---|
2685 | #define bfd_elf64_bfd_link_hash_table_create \
|
---|
2686 | elf64_hppa_hash_table_create
|
---|
2687 |
|
---|
2688 | #define elf_backend_check_relocs \
|
---|
2689 | elf64_hppa_check_relocs
|
---|
2690 |
|
---|
2691 | #define elf_backend_size_info \
|
---|
2692 | hppa64_elf_size_info
|
---|
2693 |
|
---|
2694 | #define elf_backend_additional_program_headers \
|
---|
2695 | elf64_hppa_additional_program_headers
|
---|
2696 |
|
---|
2697 | #define elf_backend_modify_segment_map \
|
---|
2698 | elf64_hppa_modify_segment_map
|
---|
2699 |
|
---|
2700 | #define elf_backend_link_output_symbol_hook \
|
---|
2701 | elf64_hppa_link_output_symbol_hook
|
---|
2702 |
|
---|
2703 | #define elf_backend_want_got_plt 0
|
---|
2704 | #define elf_backend_plt_readonly 0
|
---|
2705 | #define elf_backend_want_plt_sym 0
|
---|
2706 | #define elf_backend_got_header_size 0
|
---|
2707 | #define elf_backend_plt_header_size 0
|
---|
2708 | #define elf_backend_type_change_ok true
|
---|
2709 | #define elf_backend_get_symbol_type elf64_hppa_elf_get_symbol_type
|
---|
2710 |
|
---|
2711 | #include "elf64-target.h"
|
---|
2712 |
|
---|
2713 | #undef TARGET_BIG_SYM
|
---|
2714 | #define TARGET_BIG_SYM bfd_elf64_hppa_linux_vec
|
---|
2715 | #undef TARGET_BIG_NAME
|
---|
2716 | #define TARGET_BIG_NAME "elf64-hppa-linux"
|
---|
2717 |
|
---|
2718 | #define INCLUDED_TARGET_FILE 1
|
---|
2719 | #include "elf64-target.h"
|
---|